4c5890deeb8793d93ff6b526b5564c501df0a40a
[gcc.git] / gcc / cp / pt.c
1 /* Handle parameterized types (templates) for GNU -*- C++ -*-.
2 Copyright (C) 1992-2018 Free Software Foundation, Inc.
3 Written by Ken Raeburn (raeburn@cygnus.com) while at Watchmaker Computing.
4 Rewritten by Jason Merrill (jason@cygnus.com).
5
6 This file is part of GCC.
7
8 GCC is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 3, or (at your option)
11 any later version.
12
13 GCC is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
17
18 You should have received a copy of the GNU General Public License
19 along with GCC; see the file COPYING3. If not see
20 <http://www.gnu.org/licenses/>. */
21
22 /* Known bugs or deficiencies include:
23
24 all methods must be provided in header files; can't use a source
25 file that contains only the method templates and "just win". */
26
27 #include "config.h"
28 #include "system.h"
29 #include "coretypes.h"
30 #include "cp-tree.h"
31 #include "timevar.h"
32 #include "stringpool.h"
33 #include "varasm.h"
34 #include "attribs.h"
35 #include "stor-layout.h"
36 #include "intl.h"
37 #include "c-family/c-objc.h"
38 #include "cp-objcp-common.h"
39 #include "toplev.h"
40 #include "tree-iterator.h"
41 #include "type-utils.h"
42 #include "gimplify.h"
43 #include "gcc-rich-location.h"
44 #include "selftest.h"
45
46 /* The type of functions taking a tree, and some additional data, and
47 returning an int. */
48 typedef int (*tree_fn_t) (tree, void*);
49
50 /* The PENDING_TEMPLATES is a TREE_LIST of templates whose
51 instantiations have been deferred, either because their definitions
52 were not yet available, or because we were putting off doing the work. */
53 struct GTY ((chain_next ("%h.next"))) pending_template
54 {
55 struct pending_template *next;
56 struct tinst_level *tinst;
57 };
58
59 static GTY(()) struct pending_template *pending_templates;
60 static GTY(()) struct pending_template *last_pending_template;
61
62 int processing_template_parmlist;
63 static int template_header_count;
64
65 static GTY(()) tree saved_trees;
66 static vec<int> inline_parm_levels;
67
68 static GTY(()) struct tinst_level *current_tinst_level;
69
70 static GTY(()) tree saved_access_scope;
71
72 /* Live only within one (recursive) call to tsubst_expr. We use
73 this to pass the statement expression node from the STMT_EXPR
74 to the EXPR_STMT that is its result. */
75 static tree cur_stmt_expr;
76
77 // -------------------------------------------------------------------------- //
78 // Local Specialization Stack
79 //
80 // Implementation of the RAII helper for creating new local
81 // specializations.
82 local_specialization_stack::local_specialization_stack (lss_policy policy)
83 : saved (local_specializations)
84 {
85 if (policy == lss_blank || !saved)
86 local_specializations = new hash_map<tree, tree>;
87 else
88 local_specializations = new hash_map<tree, tree>(*saved);
89 }
90
91 local_specialization_stack::~local_specialization_stack ()
92 {
93 delete local_specializations;
94 local_specializations = saved;
95 }
96
97 /* True if we've recursed into fn_type_unification too many times. */
98 static bool excessive_deduction_depth;
99
100 struct GTY((for_user)) spec_entry
101 {
102 tree tmpl;
103 tree args;
104 tree spec;
105 };
106
107 struct spec_hasher : ggc_ptr_hash<spec_entry>
108 {
109 static hashval_t hash (spec_entry *);
110 static bool equal (spec_entry *, spec_entry *);
111 };
112
113 static GTY (()) hash_table<spec_hasher> *decl_specializations;
114
115 static GTY (()) hash_table<spec_hasher> *type_specializations;
116
117 /* Contains canonical template parameter types. The vector is indexed by
118 the TEMPLATE_TYPE_IDX of the template parameter. Each element is a
119 TREE_LIST, whose TREE_VALUEs contain the canonical template
120 parameters of various types and levels. */
121 static GTY(()) vec<tree, va_gc> *canonical_template_parms;
122
123 #define UNIFY_ALLOW_NONE 0
124 #define UNIFY_ALLOW_MORE_CV_QUAL 1
125 #define UNIFY_ALLOW_LESS_CV_QUAL 2
126 #define UNIFY_ALLOW_DERIVED 4
127 #define UNIFY_ALLOW_INTEGER 8
128 #define UNIFY_ALLOW_OUTER_LEVEL 16
129 #define UNIFY_ALLOW_OUTER_MORE_CV_QUAL 32
130 #define UNIFY_ALLOW_OUTER_LESS_CV_QUAL 64
131
132 enum template_base_result {
133 tbr_incomplete_type,
134 tbr_ambiguous_baseclass,
135 tbr_success
136 };
137
138 static void push_access_scope (tree);
139 static void pop_access_scope (tree);
140 static bool resolve_overloaded_unification (tree, tree, tree, tree,
141 unification_kind_t, int,
142 bool);
143 static int try_one_overload (tree, tree, tree, tree, tree,
144 unification_kind_t, int, bool, bool);
145 static int unify (tree, tree, tree, tree, int, bool);
146 static void add_pending_template (tree);
147 static tree reopen_tinst_level (struct tinst_level *);
148 static tree tsubst_initializer_list (tree, tree);
149 static tree get_partial_spec_bindings (tree, tree, tree);
150 static tree coerce_template_parms (tree, tree, tree, tsubst_flags_t,
151 bool, bool);
152 static tree coerce_innermost_template_parms (tree, tree, tree, tsubst_flags_t,
153 bool, bool);
154 static void tsubst_enum (tree, tree, tree);
155 static tree add_to_template_args (tree, tree);
156 static tree add_outermost_template_args (tree, tree);
157 static bool check_instantiated_args (tree, tree, tsubst_flags_t);
158 static int maybe_adjust_types_for_deduction (unification_kind_t, tree*, tree*,
159 tree);
160 static int type_unification_real (tree, tree, tree, const tree *,
161 unsigned int, int, unification_kind_t, int,
162 vec<deferred_access_check, va_gc> **,
163 bool);
164 static void note_template_header (int);
165 static tree convert_nontype_argument_function (tree, tree, tsubst_flags_t);
166 static tree convert_nontype_argument (tree, tree, tsubst_flags_t);
167 static tree convert_template_argument (tree, tree, tree,
168 tsubst_flags_t, int, tree);
169 static tree for_each_template_parm (tree, tree_fn_t, void*,
170 hash_set<tree> *, bool, tree_fn_t = NULL);
171 static tree expand_template_argument_pack (tree);
172 static tree build_template_parm_index (int, int, int, tree, tree);
173 static bool inline_needs_template_parms (tree, bool);
174 static void push_inline_template_parms_recursive (tree, int);
175 static tree reduce_template_parm_level (tree, tree, int, tree, tsubst_flags_t);
176 static int mark_template_parm (tree, void *);
177 static int template_parm_this_level_p (tree, void *);
178 static tree tsubst_friend_function (tree, tree);
179 static tree tsubst_friend_class (tree, tree);
180 static int can_complete_type_without_circularity (tree);
181 static tree get_bindings (tree, tree, tree, bool);
182 static int template_decl_level (tree);
183 static int check_cv_quals_for_unify (int, tree, tree);
184 static void template_parm_level_and_index (tree, int*, int*);
185 static int unify_pack_expansion (tree, tree, tree,
186 tree, unification_kind_t, bool, bool);
187 static tree copy_template_args (tree);
188 static tree tsubst_template_arg (tree, tree, tsubst_flags_t, tree);
189 static tree tsubst_template_args (tree, tree, tsubst_flags_t, tree);
190 static tree tsubst_template_parms (tree, tree, tsubst_flags_t);
191 static tree most_specialized_partial_spec (tree, tsubst_flags_t);
192 static tree tsubst_aggr_type (tree, tree, tsubst_flags_t, tree, int);
193 static tree tsubst_arg_types (tree, tree, tree, tsubst_flags_t, tree);
194 static tree tsubst_function_type (tree, tree, tsubst_flags_t, tree);
195 static bool check_specialization_scope (void);
196 static tree process_partial_specialization (tree);
197 static void set_current_access_from_decl (tree);
198 static enum template_base_result get_template_base (tree, tree, tree, tree,
199 bool , tree *);
200 static tree try_class_unification (tree, tree, tree, tree, bool);
201 static int coerce_template_template_parms (tree, tree, tsubst_flags_t,
202 tree, tree);
203 static bool template_template_parm_bindings_ok_p (tree, tree);
204 static void tsubst_default_arguments (tree, tsubst_flags_t);
205 static tree for_each_template_parm_r (tree *, int *, void *);
206 static tree copy_default_args_to_explicit_spec_1 (tree, tree);
207 static void copy_default_args_to_explicit_spec (tree);
208 static bool invalid_nontype_parm_type_p (tree, tsubst_flags_t);
209 static bool dependent_template_arg_p (tree);
210 static bool any_template_arguments_need_structural_equality_p (tree);
211 static bool dependent_type_p_r (tree);
212 static tree tsubst_copy (tree, tree, tsubst_flags_t, tree);
213 static tree tsubst_decl (tree, tree, tsubst_flags_t);
214 static void perform_typedefs_access_check (tree tmpl, tree targs);
215 static void append_type_to_template_for_access_check_1 (tree, tree, tree,
216 location_t);
217 static tree listify (tree);
218 static tree listify_autos (tree, tree);
219 static tree tsubst_template_parm (tree, tree, tsubst_flags_t);
220 static tree instantiate_alias_template (tree, tree, tsubst_flags_t);
221 static bool complex_alias_template_p (const_tree tmpl);
222 static tree tsubst_attributes (tree, tree, tsubst_flags_t, tree);
223 static tree canonicalize_expr_argument (tree, tsubst_flags_t);
224 static tree make_argument_pack (tree);
225 static void register_parameter_specializations (tree, tree);
226 static tree enclosing_instantiation_of (tree tctx);
227
228 /* Make the current scope suitable for access checking when we are
229 processing T. T can be FUNCTION_DECL for instantiated function
230 template, VAR_DECL for static member variable, or TYPE_DECL for
231 alias template (needed by instantiate_decl). */
232
233 static void
234 push_access_scope (tree t)
235 {
236 gcc_assert (VAR_OR_FUNCTION_DECL_P (t)
237 || TREE_CODE (t) == TYPE_DECL);
238
239 if (DECL_FRIEND_CONTEXT (t))
240 push_nested_class (DECL_FRIEND_CONTEXT (t));
241 else if (DECL_CLASS_SCOPE_P (t))
242 push_nested_class (DECL_CONTEXT (t));
243 else
244 push_to_top_level ();
245
246 if (TREE_CODE (t) == FUNCTION_DECL)
247 {
248 saved_access_scope = tree_cons
249 (NULL_TREE, current_function_decl, saved_access_scope);
250 current_function_decl = t;
251 }
252 }
253
254 /* Restore the scope set up by push_access_scope. T is the node we
255 are processing. */
256
257 static void
258 pop_access_scope (tree t)
259 {
260 if (TREE_CODE (t) == FUNCTION_DECL)
261 {
262 current_function_decl = TREE_VALUE (saved_access_scope);
263 saved_access_scope = TREE_CHAIN (saved_access_scope);
264 }
265
266 if (DECL_FRIEND_CONTEXT (t) || DECL_CLASS_SCOPE_P (t))
267 pop_nested_class ();
268 else
269 pop_from_top_level ();
270 }
271
272 /* Do any processing required when DECL (a member template
273 declaration) is finished. Returns the TEMPLATE_DECL corresponding
274 to DECL, unless it is a specialization, in which case the DECL
275 itself is returned. */
276
277 tree
278 finish_member_template_decl (tree decl)
279 {
280 if (decl == error_mark_node)
281 return error_mark_node;
282
283 gcc_assert (DECL_P (decl));
284
285 if (TREE_CODE (decl) == TYPE_DECL)
286 {
287 tree type;
288
289 type = TREE_TYPE (decl);
290 if (type == error_mark_node)
291 return error_mark_node;
292 if (MAYBE_CLASS_TYPE_P (type)
293 && CLASSTYPE_TEMPLATE_INFO (type)
294 && !CLASSTYPE_TEMPLATE_SPECIALIZATION (type))
295 {
296 tree tmpl = CLASSTYPE_TI_TEMPLATE (type);
297 check_member_template (tmpl);
298 return tmpl;
299 }
300 return NULL_TREE;
301 }
302 else if (TREE_CODE (decl) == FIELD_DECL)
303 error ("data member %qD cannot be a member template", decl);
304 else if (DECL_TEMPLATE_INFO (decl))
305 {
306 if (!DECL_TEMPLATE_SPECIALIZATION (decl))
307 {
308 check_member_template (DECL_TI_TEMPLATE (decl));
309 return DECL_TI_TEMPLATE (decl);
310 }
311 else
312 return decl;
313 }
314 else
315 error ("invalid member template declaration %qD", decl);
316
317 return error_mark_node;
318 }
319
320 /* Create a template info node. */
321
322 tree
323 build_template_info (tree template_decl, tree template_args)
324 {
325 tree result = make_node (TEMPLATE_INFO);
326 TI_TEMPLATE (result) = template_decl;
327 TI_ARGS (result) = template_args;
328 return result;
329 }
330
331 /* Return the template info node corresponding to T, whatever T is. */
332
333 tree
334 get_template_info (const_tree t)
335 {
336 tree tinfo = NULL_TREE;
337
338 if (!t || t == error_mark_node)
339 return NULL;
340
341 if (TREE_CODE (t) == NAMESPACE_DECL
342 || TREE_CODE (t) == PARM_DECL)
343 return NULL;
344
345 if (DECL_P (t) && DECL_LANG_SPECIFIC (t))
346 tinfo = DECL_TEMPLATE_INFO (t);
347
348 if (!tinfo && DECL_IMPLICIT_TYPEDEF_P (t))
349 t = TREE_TYPE (t);
350
351 if (OVERLOAD_TYPE_P (t))
352 tinfo = TYPE_TEMPLATE_INFO (t);
353 else if (TREE_CODE (t) == BOUND_TEMPLATE_TEMPLATE_PARM)
354 tinfo = TEMPLATE_TEMPLATE_PARM_TEMPLATE_INFO (t);
355
356 return tinfo;
357 }
358
359 /* Returns the template nesting level of the indicated class TYPE.
360
361 For example, in:
362 template <class T>
363 struct A
364 {
365 template <class U>
366 struct B {};
367 };
368
369 A<T>::B<U> has depth two, while A<T> has depth one.
370 Both A<T>::B<int> and A<int>::B<U> have depth one, if
371 they are instantiations, not specializations.
372
373 This function is guaranteed to return 0 if passed NULL_TREE so
374 that, for example, `template_class_depth (current_class_type)' is
375 always safe. */
376
377 int
378 template_class_depth (tree type)
379 {
380 int depth;
381
382 for (depth = 0; type && TREE_CODE (type) != NAMESPACE_DECL; )
383 {
384 tree tinfo = get_template_info (type);
385
386 if (tinfo && PRIMARY_TEMPLATE_P (TI_TEMPLATE (tinfo))
387 && uses_template_parms (INNERMOST_TEMPLATE_ARGS (TI_ARGS (tinfo))))
388 ++depth;
389
390 if (DECL_P (type))
391 type = CP_DECL_CONTEXT (type);
392 else if (LAMBDA_TYPE_P (type))
393 type = LAMBDA_TYPE_EXTRA_SCOPE (type);
394 else
395 type = CP_TYPE_CONTEXT (type);
396 }
397
398 return depth;
399 }
400
401 /* Subroutine of maybe_begin_member_template_processing.
402 Returns true if processing DECL needs us to push template parms. */
403
404 static bool
405 inline_needs_template_parms (tree decl, bool nsdmi)
406 {
407 if (!decl || (!nsdmi && ! DECL_TEMPLATE_INFO (decl)))
408 return false;
409
410 return (TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (most_general_template (decl)))
411 > (processing_template_decl + DECL_TEMPLATE_SPECIALIZATION (decl)));
412 }
413
414 /* Subroutine of maybe_begin_member_template_processing.
415 Push the template parms in PARMS, starting from LEVELS steps into the
416 chain, and ending at the beginning, since template parms are listed
417 innermost first. */
418
419 static void
420 push_inline_template_parms_recursive (tree parmlist, int levels)
421 {
422 tree parms = TREE_VALUE (parmlist);
423 int i;
424
425 if (levels > 1)
426 push_inline_template_parms_recursive (TREE_CHAIN (parmlist), levels - 1);
427
428 ++processing_template_decl;
429 current_template_parms
430 = tree_cons (size_int (processing_template_decl),
431 parms, current_template_parms);
432 TEMPLATE_PARMS_FOR_INLINE (current_template_parms) = 1;
433
434 begin_scope (TREE_VEC_LENGTH (parms) ? sk_template_parms : sk_template_spec,
435 NULL);
436 for (i = 0; i < TREE_VEC_LENGTH (parms); ++i)
437 {
438 tree parm = TREE_VALUE (TREE_VEC_ELT (parms, i));
439
440 if (error_operand_p (parm))
441 continue;
442
443 gcc_assert (DECL_P (parm));
444
445 switch (TREE_CODE (parm))
446 {
447 case TYPE_DECL:
448 case TEMPLATE_DECL:
449 pushdecl (parm);
450 break;
451
452 case PARM_DECL:
453 /* Push the CONST_DECL. */
454 pushdecl (TEMPLATE_PARM_DECL (DECL_INITIAL (parm)));
455 break;
456
457 default:
458 gcc_unreachable ();
459 }
460 }
461 }
462
463 /* Restore the template parameter context for a member template, a
464 friend template defined in a class definition, or a non-template
465 member of template class. */
466
467 void
468 maybe_begin_member_template_processing (tree decl)
469 {
470 tree parms;
471 int levels = 0;
472 bool nsdmi = TREE_CODE (decl) == FIELD_DECL;
473
474 if (nsdmi)
475 {
476 tree ctx = DECL_CONTEXT (decl);
477 decl = (CLASSTYPE_TEMPLATE_INFO (ctx)
478 /* Disregard full specializations (c++/60999). */
479 && uses_template_parms (ctx)
480 ? CLASSTYPE_TI_TEMPLATE (ctx) : NULL_TREE);
481 }
482
483 if (inline_needs_template_parms (decl, nsdmi))
484 {
485 parms = DECL_TEMPLATE_PARMS (most_general_template (decl));
486 levels = TMPL_PARMS_DEPTH (parms) - processing_template_decl;
487
488 if (DECL_TEMPLATE_SPECIALIZATION (decl))
489 {
490 --levels;
491 parms = TREE_CHAIN (parms);
492 }
493
494 push_inline_template_parms_recursive (parms, levels);
495 }
496
497 /* Remember how many levels of template parameters we pushed so that
498 we can pop them later. */
499 inline_parm_levels.safe_push (levels);
500 }
501
502 /* Undo the effects of maybe_begin_member_template_processing. */
503
504 void
505 maybe_end_member_template_processing (void)
506 {
507 int i;
508 int last;
509
510 if (inline_parm_levels.length () == 0)
511 return;
512
513 last = inline_parm_levels.pop ();
514 for (i = 0; i < last; ++i)
515 {
516 --processing_template_decl;
517 current_template_parms = TREE_CHAIN (current_template_parms);
518 poplevel (0, 0, 0);
519 }
520 }
521
522 /* Return a new template argument vector which contains all of ARGS,
523 but has as its innermost set of arguments the EXTRA_ARGS. */
524
525 static tree
526 add_to_template_args (tree args, tree extra_args)
527 {
528 tree new_args;
529 int extra_depth;
530 int i;
531 int j;
532
533 if (args == NULL_TREE || extra_args == error_mark_node)
534 return extra_args;
535
536 extra_depth = TMPL_ARGS_DEPTH (extra_args);
537 new_args = make_tree_vec (TMPL_ARGS_DEPTH (args) + extra_depth);
538
539 for (i = 1; i <= TMPL_ARGS_DEPTH (args); ++i)
540 SET_TMPL_ARGS_LEVEL (new_args, i, TMPL_ARGS_LEVEL (args, i));
541
542 for (j = 1; j <= extra_depth; ++j, ++i)
543 SET_TMPL_ARGS_LEVEL (new_args, i, TMPL_ARGS_LEVEL (extra_args, j));
544
545 return new_args;
546 }
547
548 /* Like add_to_template_args, but only the outermost ARGS are added to
549 the EXTRA_ARGS. In particular, all but TMPL_ARGS_DEPTH
550 (EXTRA_ARGS) levels are added. This function is used to combine
551 the template arguments from a partial instantiation with the
552 template arguments used to attain the full instantiation from the
553 partial instantiation. */
554
555 static tree
556 add_outermost_template_args (tree args, tree extra_args)
557 {
558 tree new_args;
559
560 /* If there are more levels of EXTRA_ARGS than there are ARGS,
561 something very fishy is going on. */
562 gcc_assert (TMPL_ARGS_DEPTH (args) >= TMPL_ARGS_DEPTH (extra_args));
563
564 /* If *all* the new arguments will be the EXTRA_ARGS, just return
565 them. */
566 if (TMPL_ARGS_DEPTH (args) == TMPL_ARGS_DEPTH (extra_args))
567 return extra_args;
568
569 /* For the moment, we make ARGS look like it contains fewer levels. */
570 TREE_VEC_LENGTH (args) -= TMPL_ARGS_DEPTH (extra_args);
571
572 new_args = add_to_template_args (args, extra_args);
573
574 /* Now, we restore ARGS to its full dimensions. */
575 TREE_VEC_LENGTH (args) += TMPL_ARGS_DEPTH (extra_args);
576
577 return new_args;
578 }
579
580 /* Return the N levels of innermost template arguments from the ARGS. */
581
582 tree
583 get_innermost_template_args (tree args, int n)
584 {
585 tree new_args;
586 int extra_levels;
587 int i;
588
589 gcc_assert (n >= 0);
590
591 /* If N is 1, just return the innermost set of template arguments. */
592 if (n == 1)
593 return TMPL_ARGS_LEVEL (args, TMPL_ARGS_DEPTH (args));
594
595 /* If we're not removing anything, just return the arguments we were
596 given. */
597 extra_levels = TMPL_ARGS_DEPTH (args) - n;
598 gcc_assert (extra_levels >= 0);
599 if (extra_levels == 0)
600 return args;
601
602 /* Make a new set of arguments, not containing the outer arguments. */
603 new_args = make_tree_vec (n);
604 for (i = 1; i <= n; ++i)
605 SET_TMPL_ARGS_LEVEL (new_args, i,
606 TMPL_ARGS_LEVEL (args, i + extra_levels));
607
608 return new_args;
609 }
610
611 /* The inverse of get_innermost_template_args: Return all but the innermost
612 EXTRA_LEVELS levels of template arguments from the ARGS. */
613
614 static tree
615 strip_innermost_template_args (tree args, int extra_levels)
616 {
617 tree new_args;
618 int n = TMPL_ARGS_DEPTH (args) - extra_levels;
619 int i;
620
621 gcc_assert (n >= 0);
622
623 /* If N is 1, just return the outermost set of template arguments. */
624 if (n == 1)
625 return TMPL_ARGS_LEVEL (args, 1);
626
627 /* If we're not removing anything, just return the arguments we were
628 given. */
629 gcc_assert (extra_levels >= 0);
630 if (extra_levels == 0)
631 return args;
632
633 /* Make a new set of arguments, not containing the inner arguments. */
634 new_args = make_tree_vec (n);
635 for (i = 1; i <= n; ++i)
636 SET_TMPL_ARGS_LEVEL (new_args, i,
637 TMPL_ARGS_LEVEL (args, i));
638
639 return new_args;
640 }
641
642 /* We've got a template header coming up; push to a new level for storing
643 the parms. */
644
645 void
646 begin_template_parm_list (void)
647 {
648 /* We use a non-tag-transparent scope here, which causes pushtag to
649 put tags in this scope, rather than in the enclosing class or
650 namespace scope. This is the right thing, since we want
651 TEMPLATE_DECLS, and not TYPE_DECLS for template classes. For a
652 global template class, push_template_decl handles putting the
653 TEMPLATE_DECL into top-level scope. For a nested template class,
654 e.g.:
655
656 template <class T> struct S1 {
657 template <class T> struct S2 {};
658 };
659
660 pushtag contains special code to insert the TEMPLATE_DECL for S2
661 at the right scope. */
662 begin_scope (sk_template_parms, NULL);
663 ++processing_template_decl;
664 ++processing_template_parmlist;
665 note_template_header (0);
666
667 /* Add a dummy parameter level while we process the parameter list. */
668 current_template_parms
669 = tree_cons (size_int (processing_template_decl),
670 make_tree_vec (0),
671 current_template_parms);
672 }
673
674 /* This routine is called when a specialization is declared. If it is
675 invalid to declare a specialization here, an error is reported and
676 false is returned, otherwise this routine will return true. */
677
678 static bool
679 check_specialization_scope (void)
680 {
681 tree scope = current_scope ();
682
683 /* [temp.expl.spec]
684
685 An explicit specialization shall be declared in the namespace of
686 which the template is a member, or, for member templates, in the
687 namespace of which the enclosing class or enclosing class
688 template is a member. An explicit specialization of a member
689 function, member class or static data member of a class template
690 shall be declared in the namespace of which the class template
691 is a member. */
692 if (scope && TREE_CODE (scope) != NAMESPACE_DECL)
693 {
694 error ("explicit specialization in non-namespace scope %qD", scope);
695 return false;
696 }
697
698 /* [temp.expl.spec]
699
700 In an explicit specialization declaration for a member of a class
701 template or a member template that appears in namespace scope,
702 the member template and some of its enclosing class templates may
703 remain unspecialized, except that the declaration shall not
704 explicitly specialize a class member template if its enclosing
705 class templates are not explicitly specialized as well. */
706 if (current_template_parms)
707 {
708 error ("enclosing class templates are not explicitly specialized");
709 return false;
710 }
711
712 return true;
713 }
714
715 /* We've just seen template <>. */
716
717 bool
718 begin_specialization (void)
719 {
720 begin_scope (sk_template_spec, NULL);
721 note_template_header (1);
722 return check_specialization_scope ();
723 }
724
725 /* Called at then end of processing a declaration preceded by
726 template<>. */
727
728 void
729 end_specialization (void)
730 {
731 finish_scope ();
732 reset_specialization ();
733 }
734
735 /* Any template <>'s that we have seen thus far are not referring to a
736 function specialization. */
737
738 void
739 reset_specialization (void)
740 {
741 processing_specialization = 0;
742 template_header_count = 0;
743 }
744
745 /* We've just seen a template header. If SPECIALIZATION is nonzero,
746 it was of the form template <>. */
747
748 static void
749 note_template_header (int specialization)
750 {
751 processing_specialization = specialization;
752 template_header_count++;
753 }
754
755 /* We're beginning an explicit instantiation. */
756
757 void
758 begin_explicit_instantiation (void)
759 {
760 gcc_assert (!processing_explicit_instantiation);
761 processing_explicit_instantiation = true;
762 }
763
764
765 void
766 end_explicit_instantiation (void)
767 {
768 gcc_assert (processing_explicit_instantiation);
769 processing_explicit_instantiation = false;
770 }
771
772 /* An explicit specialization or partial specialization of TMPL is being
773 declared. Check that the namespace in which the specialization is
774 occurring is permissible. Returns false iff it is invalid to
775 specialize TMPL in the current namespace. */
776
777 static bool
778 check_specialization_namespace (tree tmpl)
779 {
780 tree tpl_ns = decl_namespace_context (tmpl);
781
782 /* [tmpl.expl.spec]
783
784 An explicit specialization shall be declared in a namespace enclosing the
785 specialized template. An explicit specialization whose declarator-id is
786 not qualified shall be declared in the nearest enclosing namespace of the
787 template, or, if the namespace is inline (7.3.1), any namespace from its
788 enclosing namespace set. */
789 if (current_scope() != DECL_CONTEXT (tmpl)
790 && !at_namespace_scope_p ())
791 {
792 error ("specialization of %qD must appear at namespace scope", tmpl);
793 return false;
794 }
795
796 if (is_nested_namespace (current_namespace, tpl_ns, cxx_dialect < cxx11))
797 /* Same or enclosing namespace. */
798 return true;
799 else
800 {
801 permerror (input_location,
802 "specialization of %qD in different namespace", tmpl);
803 inform (DECL_SOURCE_LOCATION (tmpl),
804 " from definition of %q#D", tmpl);
805 return false;
806 }
807 }
808
809 /* SPEC is an explicit instantiation. Check that it is valid to
810 perform this explicit instantiation in the current namespace. */
811
812 static void
813 check_explicit_instantiation_namespace (tree spec)
814 {
815 tree ns;
816
817 /* DR 275: An explicit instantiation shall appear in an enclosing
818 namespace of its template. */
819 ns = decl_namespace_context (spec);
820 if (!is_nested_namespace (current_namespace, ns))
821 permerror (input_location, "explicit instantiation of %qD in namespace %qD "
822 "(which does not enclose namespace %qD)",
823 spec, current_namespace, ns);
824 }
825
826 // Returns the type of a template specialization only if that
827 // specialization needs to be defined. Otherwise (e.g., if the type has
828 // already been defined), the function returns NULL_TREE.
829 static tree
830 maybe_new_partial_specialization (tree type)
831 {
832 // An implicit instantiation of an incomplete type implies
833 // the definition of a new class template.
834 //
835 // template<typename T>
836 // struct S;
837 //
838 // template<typename T>
839 // struct S<T*>;
840 //
841 // Here, S<T*> is an implicit instantiation of S whose type
842 // is incomplete.
843 if (CLASSTYPE_IMPLICIT_INSTANTIATION (type) && !COMPLETE_TYPE_P (type))
844 return type;
845
846 // It can also be the case that TYPE is a completed specialization.
847 // Continuing the previous example, suppose we also declare:
848 //
849 // template<typename T>
850 // requires Integral<T>
851 // struct S<T*>;
852 //
853 // Here, S<T*> refers to the specialization S<T*> defined
854 // above. However, we need to differentiate definitions because
855 // we intend to define a new partial specialization. In this case,
856 // we rely on the fact that the constraints are different for
857 // this declaration than that above.
858 //
859 // Note that we also get here for injected class names and
860 // late-parsed template definitions. We must ensure that we
861 // do not create new type declarations for those cases.
862 if (flag_concepts && CLASSTYPE_TEMPLATE_SPECIALIZATION (type))
863 {
864 tree tmpl = CLASSTYPE_TI_TEMPLATE (type);
865 tree args = CLASSTYPE_TI_ARGS (type);
866
867 // If there are no template parameters, this cannot be a new
868 // partial template specializtion?
869 if (!current_template_parms)
870 return NULL_TREE;
871
872 // The injected-class-name is not a new partial specialization.
873 if (DECL_SELF_REFERENCE_P (TYPE_NAME (type)))
874 return NULL_TREE;
875
876 // If the constraints are not the same as those of the primary
877 // then, we can probably create a new specialization.
878 tree type_constr = current_template_constraints ();
879
880 if (type == TREE_TYPE (tmpl))
881 {
882 tree main_constr = get_constraints (tmpl);
883 if (equivalent_constraints (type_constr, main_constr))
884 return NULL_TREE;
885 }
886
887 // Also, if there's a pre-existing specialization with matching
888 // constraints, then this also isn't new.
889 tree specs = DECL_TEMPLATE_SPECIALIZATIONS (tmpl);
890 while (specs)
891 {
892 tree spec_tmpl = TREE_VALUE (specs);
893 tree spec_args = TREE_PURPOSE (specs);
894 tree spec_constr = get_constraints (spec_tmpl);
895 if (comp_template_args (args, spec_args)
896 && equivalent_constraints (type_constr, spec_constr))
897 return NULL_TREE;
898 specs = TREE_CHAIN (specs);
899 }
900
901 // Create a new type node (and corresponding type decl)
902 // for the newly declared specialization.
903 tree t = make_class_type (TREE_CODE (type));
904 CLASSTYPE_DECLARED_CLASS (t) = CLASSTYPE_DECLARED_CLASS (type);
905 SET_TYPE_TEMPLATE_INFO (t, build_template_info (tmpl, args));
906
907 /* We only need a separate type node for storing the definition of this
908 partial specialization; uses of S<T*> are unconstrained, so all are
909 equivalent. So keep TYPE_CANONICAL the same. */
910 TYPE_CANONICAL (t) = TYPE_CANONICAL (type);
911
912 // Build the corresponding type decl.
913 tree d = create_implicit_typedef (DECL_NAME (tmpl), t);
914 DECL_CONTEXT (d) = TYPE_CONTEXT (t);
915 DECL_SOURCE_LOCATION (d) = input_location;
916
917 return t;
918 }
919
920 return NULL_TREE;
921 }
922
923 /* The TYPE is being declared. If it is a template type, that means it
924 is a partial specialization. Do appropriate error-checking. */
925
926 tree
927 maybe_process_partial_specialization (tree type)
928 {
929 tree context;
930
931 if (type == error_mark_node)
932 return error_mark_node;
933
934 /* A lambda that appears in specialization context is not itself a
935 specialization. */
936 if (CLASS_TYPE_P (type) && CLASSTYPE_LAMBDA_EXPR (type))
937 return type;
938
939 if (TREE_CODE (type) == BOUND_TEMPLATE_TEMPLATE_PARM)
940 {
941 error ("name of class shadows template template parameter %qD",
942 TYPE_NAME (type));
943 return error_mark_node;
944 }
945
946 context = TYPE_CONTEXT (type);
947
948 if (TYPE_ALIAS_P (type))
949 {
950 tree tinfo = TYPE_ALIAS_TEMPLATE_INFO (type);
951
952 if (tinfo && DECL_ALIAS_TEMPLATE_P (TI_TEMPLATE (tinfo)))
953 error ("specialization of alias template %qD",
954 TI_TEMPLATE (tinfo));
955 else
956 error ("explicit specialization of non-template %qT", type);
957 return error_mark_node;
958 }
959 else if (CLASS_TYPE_P (type) && CLASSTYPE_USE_TEMPLATE (type))
960 {
961 /* This is for ordinary explicit specialization and partial
962 specialization of a template class such as:
963
964 template <> class C<int>;
965
966 or:
967
968 template <class T> class C<T*>;
969
970 Make sure that `C<int>' and `C<T*>' are implicit instantiations. */
971
972 if (tree t = maybe_new_partial_specialization (type))
973 {
974 if (!check_specialization_namespace (CLASSTYPE_TI_TEMPLATE (t))
975 && !at_namespace_scope_p ())
976 return error_mark_node;
977 SET_CLASSTYPE_TEMPLATE_SPECIALIZATION (t);
978 DECL_SOURCE_LOCATION (TYPE_MAIN_DECL (t)) = input_location;
979 if (processing_template_decl)
980 {
981 tree decl = push_template_decl (TYPE_MAIN_DECL (t));
982 if (decl == error_mark_node)
983 return error_mark_node;
984 return TREE_TYPE (decl);
985 }
986 }
987 else if (CLASSTYPE_TEMPLATE_INSTANTIATION (type))
988 error ("specialization of %qT after instantiation", type);
989 else if (errorcount && !processing_specialization
990 && CLASSTYPE_TEMPLATE_SPECIALIZATION (type)
991 && !uses_template_parms (CLASSTYPE_TI_ARGS (type)))
992 /* Trying to define a specialization either without a template<> header
993 or in an inappropriate place. We've already given an error, so just
994 bail now so we don't actually define the specialization. */
995 return error_mark_node;
996 }
997 else if (CLASS_TYPE_P (type)
998 && !CLASSTYPE_USE_TEMPLATE (type)
999 && CLASSTYPE_TEMPLATE_INFO (type)
1000 && context && CLASS_TYPE_P (context)
1001 && CLASSTYPE_TEMPLATE_INFO (context))
1002 {
1003 /* This is for an explicit specialization of member class
1004 template according to [temp.expl.spec/18]:
1005
1006 template <> template <class U> class C<int>::D;
1007
1008 The context `C<int>' must be an implicit instantiation.
1009 Otherwise this is just a member class template declared
1010 earlier like:
1011
1012 template <> class C<int> { template <class U> class D; };
1013 template <> template <class U> class C<int>::D;
1014
1015 In the first case, `C<int>::D' is a specialization of `C<T>::D'
1016 while in the second case, `C<int>::D' is a primary template
1017 and `C<T>::D' may not exist. */
1018
1019 if (CLASSTYPE_IMPLICIT_INSTANTIATION (context)
1020 && !COMPLETE_TYPE_P (type))
1021 {
1022 tree t;
1023 tree tmpl = CLASSTYPE_TI_TEMPLATE (type);
1024
1025 if (current_namespace
1026 != decl_namespace_context (tmpl))
1027 {
1028 permerror (input_location,
1029 "specializing %q#T in different namespace", type);
1030 permerror (DECL_SOURCE_LOCATION (tmpl),
1031 " from definition of %q#D", tmpl);
1032 }
1033
1034 /* Check for invalid specialization after instantiation:
1035
1036 template <> template <> class C<int>::D<int>;
1037 template <> template <class U> class C<int>::D; */
1038
1039 for (t = DECL_TEMPLATE_INSTANTIATIONS (tmpl);
1040 t; t = TREE_CHAIN (t))
1041 {
1042 tree inst = TREE_VALUE (t);
1043 if (CLASSTYPE_TEMPLATE_SPECIALIZATION (inst)
1044 || !COMPLETE_OR_OPEN_TYPE_P (inst))
1045 {
1046 /* We already have a full specialization of this partial
1047 instantiation, or a full specialization has been
1048 looked up but not instantiated. Reassign it to the
1049 new member specialization template. */
1050 spec_entry elt;
1051 spec_entry *entry;
1052
1053 elt.tmpl = most_general_template (tmpl);
1054 elt.args = CLASSTYPE_TI_ARGS (inst);
1055 elt.spec = inst;
1056
1057 type_specializations->remove_elt (&elt);
1058
1059 elt.tmpl = tmpl;
1060 elt.args = INNERMOST_TEMPLATE_ARGS (elt.args);
1061
1062 spec_entry **slot
1063 = type_specializations->find_slot (&elt, INSERT);
1064 entry = ggc_alloc<spec_entry> ();
1065 *entry = elt;
1066 *slot = entry;
1067 }
1068 else
1069 /* But if we've had an implicit instantiation, that's a
1070 problem ([temp.expl.spec]/6). */
1071 error ("specialization %qT after instantiation %qT",
1072 type, inst);
1073 }
1074
1075 /* Mark TYPE as a specialization. And as a result, we only
1076 have one level of template argument for the innermost
1077 class template. */
1078 SET_CLASSTYPE_TEMPLATE_SPECIALIZATION (type);
1079 DECL_SOURCE_LOCATION (TYPE_MAIN_DECL (type)) = input_location;
1080 CLASSTYPE_TI_ARGS (type)
1081 = INNERMOST_TEMPLATE_ARGS (CLASSTYPE_TI_ARGS (type));
1082 }
1083 }
1084 else if (processing_specialization)
1085 {
1086 /* Someday C++0x may allow for enum template specialization. */
1087 if (cxx_dialect > cxx98 && TREE_CODE (type) == ENUMERAL_TYPE
1088 && CLASS_TYPE_P (context) && CLASSTYPE_USE_TEMPLATE (context))
1089 pedwarn (input_location, OPT_Wpedantic, "template specialization "
1090 "of %qD not allowed by ISO C++", type);
1091 else
1092 {
1093 error ("explicit specialization of non-template %qT", type);
1094 return error_mark_node;
1095 }
1096 }
1097
1098 return type;
1099 }
1100
1101 /* Returns nonzero if we can optimize the retrieval of specializations
1102 for TMPL, a TEMPLATE_DECL. In particular, for such a template, we
1103 do not use DECL_TEMPLATE_SPECIALIZATIONS at all. */
1104
1105 static inline bool
1106 optimize_specialization_lookup_p (tree tmpl)
1107 {
1108 return (DECL_FUNCTION_TEMPLATE_P (tmpl)
1109 && DECL_CLASS_SCOPE_P (tmpl)
1110 /* DECL_CLASS_SCOPE_P holds of T::f even if T is a template
1111 parameter. */
1112 && CLASS_TYPE_P (DECL_CONTEXT (tmpl))
1113 /* The optimized lookup depends on the fact that the
1114 template arguments for the member function template apply
1115 purely to the containing class, which is not true if the
1116 containing class is an explicit or partial
1117 specialization. */
1118 && !CLASSTYPE_TEMPLATE_SPECIALIZATION (DECL_CONTEXT (tmpl))
1119 && !DECL_MEMBER_TEMPLATE_P (tmpl)
1120 && !DECL_CONV_FN_P (tmpl)
1121 /* It is possible to have a template that is not a member
1122 template and is not a member of a template class:
1123
1124 template <typename T>
1125 struct S { friend A::f(); };
1126
1127 Here, the friend function is a template, but the context does
1128 not have template information. The optimized lookup relies
1129 on having ARGS be the template arguments for both the class
1130 and the function template. */
1131 && !DECL_FRIEND_P (DECL_TEMPLATE_RESULT (tmpl)));
1132 }
1133
1134 /* Make sure ARGS doesn't use any inappropriate typedefs; we should have
1135 gone through coerce_template_parms by now. */
1136
1137 static void
1138 verify_unstripped_args_1 (tree inner)
1139 {
1140 for (int i = 0; i < TREE_VEC_LENGTH (inner); ++i)
1141 {
1142 tree arg = TREE_VEC_ELT (inner, i);
1143 if (TREE_CODE (arg) == TEMPLATE_DECL)
1144 /* OK */;
1145 else if (TYPE_P (arg))
1146 gcc_assert (strip_typedefs (arg, NULL) == arg);
1147 else if (ARGUMENT_PACK_P (arg))
1148 verify_unstripped_args_1 (ARGUMENT_PACK_ARGS (arg));
1149 else if (strip_typedefs (TREE_TYPE (arg), NULL) != TREE_TYPE (arg))
1150 /* Allow typedefs on the type of a non-type argument, since a
1151 parameter can have them. */;
1152 else
1153 gcc_assert (strip_typedefs_expr (arg, NULL) == arg);
1154 }
1155 }
1156
1157 static void
1158 verify_unstripped_args (tree args)
1159 {
1160 ++processing_template_decl;
1161 if (!any_dependent_template_arguments_p (args))
1162 verify_unstripped_args_1 (INNERMOST_TEMPLATE_ARGS (args));
1163 --processing_template_decl;
1164 }
1165
1166 /* Retrieve the specialization (in the sense of [temp.spec] - a
1167 specialization is either an instantiation or an explicit
1168 specialization) of TMPL for the given template ARGS. If there is
1169 no such specialization, return NULL_TREE. The ARGS are a vector of
1170 arguments, or a vector of vectors of arguments, in the case of
1171 templates with more than one level of parameters.
1172
1173 If TMPL is a type template and CLASS_SPECIALIZATIONS_P is true,
1174 then we search for a partial specialization matching ARGS. This
1175 parameter is ignored if TMPL is not a class template.
1176
1177 We can also look up a FIELD_DECL, if it is a lambda capture pack; the
1178 result is a NONTYPE_ARGUMENT_PACK. */
1179
1180 static tree
1181 retrieve_specialization (tree tmpl, tree args, hashval_t hash)
1182 {
1183 if (tmpl == NULL_TREE)
1184 return NULL_TREE;
1185
1186 if (args == error_mark_node)
1187 return NULL_TREE;
1188
1189 gcc_assert (TREE_CODE (tmpl) == TEMPLATE_DECL
1190 || TREE_CODE (tmpl) == FIELD_DECL);
1191
1192 /* There should be as many levels of arguments as there are
1193 levels of parameters. */
1194 gcc_assert (TMPL_ARGS_DEPTH (args)
1195 == (TREE_CODE (tmpl) == TEMPLATE_DECL
1196 ? TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (tmpl))
1197 : template_class_depth (DECL_CONTEXT (tmpl))));
1198
1199 if (flag_checking)
1200 verify_unstripped_args (args);
1201
1202 /* Lambda functions in templates aren't instantiated normally, but through
1203 tsubst_lambda_expr. */
1204 if (lambda_fn_in_template_p (tmpl))
1205 return NULL_TREE;
1206
1207 if (optimize_specialization_lookup_p (tmpl))
1208 {
1209 /* The template arguments actually apply to the containing
1210 class. Find the class specialization with those
1211 arguments. */
1212 tree class_template = CLASSTYPE_TI_TEMPLATE (DECL_CONTEXT (tmpl));
1213 tree class_specialization
1214 = retrieve_specialization (class_template, args, 0);
1215 if (!class_specialization)
1216 return NULL_TREE;
1217
1218 /* Find the instance of TMPL. */
1219 tree fns = get_class_binding (class_specialization, DECL_NAME (tmpl));
1220 for (ovl_iterator iter (fns); iter; ++iter)
1221 {
1222 tree fn = *iter;
1223 if (DECL_TEMPLATE_INFO (fn) && DECL_TI_TEMPLATE (fn) == tmpl
1224 /* using-declarations can add base methods to the method vec,
1225 and we don't want those here. */
1226 && DECL_CONTEXT (fn) == class_specialization)
1227 return fn;
1228 }
1229 return NULL_TREE;
1230 }
1231 else
1232 {
1233 spec_entry *found;
1234 spec_entry elt;
1235 hash_table<spec_hasher> *specializations;
1236
1237 elt.tmpl = tmpl;
1238 elt.args = args;
1239 elt.spec = NULL_TREE;
1240
1241 if (DECL_CLASS_TEMPLATE_P (tmpl))
1242 specializations = type_specializations;
1243 else
1244 specializations = decl_specializations;
1245
1246 if (hash == 0)
1247 hash = spec_hasher::hash (&elt);
1248 found = specializations->find_with_hash (&elt, hash);
1249 if (found)
1250 return found->spec;
1251 }
1252
1253 return NULL_TREE;
1254 }
1255
1256 /* Like retrieve_specialization, but for local declarations. */
1257
1258 tree
1259 retrieve_local_specialization (tree tmpl)
1260 {
1261 if (local_specializations == NULL)
1262 return NULL_TREE;
1263
1264 tree *slot = local_specializations->get (tmpl);
1265 return slot ? *slot : NULL_TREE;
1266 }
1267
1268 /* Returns nonzero iff DECL is a specialization of TMPL. */
1269
1270 int
1271 is_specialization_of (tree decl, tree tmpl)
1272 {
1273 tree t;
1274
1275 if (TREE_CODE (decl) == FUNCTION_DECL)
1276 {
1277 for (t = decl;
1278 t != NULL_TREE;
1279 t = DECL_TEMPLATE_INFO (t) ? DECL_TI_TEMPLATE (t) : NULL_TREE)
1280 if (t == tmpl)
1281 return 1;
1282 }
1283 else
1284 {
1285 gcc_assert (TREE_CODE (decl) == TYPE_DECL);
1286
1287 for (t = TREE_TYPE (decl);
1288 t != NULL_TREE;
1289 t = CLASSTYPE_USE_TEMPLATE (t)
1290 ? TREE_TYPE (CLASSTYPE_TI_TEMPLATE (t)) : NULL_TREE)
1291 if (same_type_ignoring_top_level_qualifiers_p (t, TREE_TYPE (tmpl)))
1292 return 1;
1293 }
1294
1295 return 0;
1296 }
1297
1298 /* Returns nonzero iff DECL is a specialization of friend declaration
1299 FRIEND_DECL according to [temp.friend]. */
1300
1301 bool
1302 is_specialization_of_friend (tree decl, tree friend_decl)
1303 {
1304 bool need_template = true;
1305 int template_depth;
1306
1307 gcc_assert (TREE_CODE (decl) == FUNCTION_DECL
1308 || TREE_CODE (decl) == TYPE_DECL);
1309
1310 /* For [temp.friend/6] when FRIEND_DECL is an ordinary member function
1311 of a template class, we want to check if DECL is a specialization
1312 if this. */
1313 if (TREE_CODE (friend_decl) == FUNCTION_DECL
1314 && DECL_TEMPLATE_INFO (friend_decl)
1315 && !DECL_USE_TEMPLATE (friend_decl))
1316 {
1317 /* We want a TEMPLATE_DECL for `is_specialization_of'. */
1318 friend_decl = DECL_TI_TEMPLATE (friend_decl);
1319 need_template = false;
1320 }
1321 else if (TREE_CODE (friend_decl) == TEMPLATE_DECL
1322 && !PRIMARY_TEMPLATE_P (friend_decl))
1323 need_template = false;
1324
1325 /* There is nothing to do if this is not a template friend. */
1326 if (TREE_CODE (friend_decl) != TEMPLATE_DECL)
1327 return false;
1328
1329 if (is_specialization_of (decl, friend_decl))
1330 return true;
1331
1332 /* [temp.friend/6]
1333 A member of a class template may be declared to be a friend of a
1334 non-template class. In this case, the corresponding member of
1335 every specialization of the class template is a friend of the
1336 class granting friendship.
1337
1338 For example, given a template friend declaration
1339
1340 template <class T> friend void A<T>::f();
1341
1342 the member function below is considered a friend
1343
1344 template <> struct A<int> {
1345 void f();
1346 };
1347
1348 For this type of template friend, TEMPLATE_DEPTH below will be
1349 nonzero. To determine if DECL is a friend of FRIEND, we first
1350 check if the enclosing class is a specialization of another. */
1351
1352 template_depth = template_class_depth (CP_DECL_CONTEXT (friend_decl));
1353 if (template_depth
1354 && DECL_CLASS_SCOPE_P (decl)
1355 && is_specialization_of (TYPE_NAME (DECL_CONTEXT (decl)),
1356 CLASSTYPE_TI_TEMPLATE (DECL_CONTEXT (friend_decl))))
1357 {
1358 /* Next, we check the members themselves. In order to handle
1359 a few tricky cases, such as when FRIEND_DECL's are
1360
1361 template <class T> friend void A<T>::g(T t);
1362 template <class T> template <T t> friend void A<T>::h();
1363
1364 and DECL's are
1365
1366 void A<int>::g(int);
1367 template <int> void A<int>::h();
1368
1369 we need to figure out ARGS, the template arguments from
1370 the context of DECL. This is required for template substitution
1371 of `T' in the function parameter of `g' and template parameter
1372 of `h' in the above examples. Here ARGS corresponds to `int'. */
1373
1374 tree context = DECL_CONTEXT (decl);
1375 tree args = NULL_TREE;
1376 int current_depth = 0;
1377
1378 while (current_depth < template_depth)
1379 {
1380 if (CLASSTYPE_TEMPLATE_INFO (context))
1381 {
1382 if (current_depth == 0)
1383 args = TYPE_TI_ARGS (context);
1384 else
1385 args = add_to_template_args (TYPE_TI_ARGS (context), args);
1386 current_depth++;
1387 }
1388 context = TYPE_CONTEXT (context);
1389 }
1390
1391 if (TREE_CODE (decl) == FUNCTION_DECL)
1392 {
1393 bool is_template;
1394 tree friend_type;
1395 tree decl_type;
1396 tree friend_args_type;
1397 tree decl_args_type;
1398
1399 /* Make sure that both DECL and FRIEND_DECL are templates or
1400 non-templates. */
1401 is_template = DECL_TEMPLATE_INFO (decl)
1402 && PRIMARY_TEMPLATE_P (DECL_TI_TEMPLATE (decl));
1403 if (need_template ^ is_template)
1404 return false;
1405 else if (is_template)
1406 {
1407 /* If both are templates, check template parameter list. */
1408 tree friend_parms
1409 = tsubst_template_parms (DECL_TEMPLATE_PARMS (friend_decl),
1410 args, tf_none);
1411 if (!comp_template_parms
1412 (DECL_TEMPLATE_PARMS (DECL_TI_TEMPLATE (decl)),
1413 friend_parms))
1414 return false;
1415
1416 decl_type = TREE_TYPE (DECL_TI_TEMPLATE (decl));
1417 }
1418 else
1419 decl_type = TREE_TYPE (decl);
1420
1421 friend_type = tsubst_function_type (TREE_TYPE (friend_decl), args,
1422 tf_none, NULL_TREE);
1423 if (friend_type == error_mark_node)
1424 return false;
1425
1426 /* Check if return types match. */
1427 if (!same_type_p (TREE_TYPE (decl_type), TREE_TYPE (friend_type)))
1428 return false;
1429
1430 /* Check if function parameter types match, ignoring the
1431 `this' parameter. */
1432 friend_args_type = TYPE_ARG_TYPES (friend_type);
1433 decl_args_type = TYPE_ARG_TYPES (decl_type);
1434 if (DECL_NONSTATIC_MEMBER_FUNCTION_P (friend_decl))
1435 friend_args_type = TREE_CHAIN (friend_args_type);
1436 if (DECL_NONSTATIC_MEMBER_FUNCTION_P (decl))
1437 decl_args_type = TREE_CHAIN (decl_args_type);
1438
1439 return compparms (decl_args_type, friend_args_type);
1440 }
1441 else
1442 {
1443 /* DECL is a TYPE_DECL */
1444 bool is_template;
1445 tree decl_type = TREE_TYPE (decl);
1446
1447 /* Make sure that both DECL and FRIEND_DECL are templates or
1448 non-templates. */
1449 is_template
1450 = CLASSTYPE_TEMPLATE_INFO (decl_type)
1451 && PRIMARY_TEMPLATE_P (CLASSTYPE_TI_TEMPLATE (decl_type));
1452
1453 if (need_template ^ is_template)
1454 return false;
1455 else if (is_template)
1456 {
1457 tree friend_parms;
1458 /* If both are templates, check the name of the two
1459 TEMPLATE_DECL's first because is_friend didn't. */
1460 if (DECL_NAME (CLASSTYPE_TI_TEMPLATE (decl_type))
1461 != DECL_NAME (friend_decl))
1462 return false;
1463
1464 /* Now check template parameter list. */
1465 friend_parms
1466 = tsubst_template_parms (DECL_TEMPLATE_PARMS (friend_decl),
1467 args, tf_none);
1468 return comp_template_parms
1469 (DECL_TEMPLATE_PARMS (CLASSTYPE_TI_TEMPLATE (decl_type)),
1470 friend_parms);
1471 }
1472 else
1473 return (DECL_NAME (decl)
1474 == DECL_NAME (friend_decl));
1475 }
1476 }
1477 return false;
1478 }
1479
1480 /* Register the specialization SPEC as a specialization of TMPL with
1481 the indicated ARGS. IS_FRIEND indicates whether the specialization
1482 is actually just a friend declaration. ATTRLIST is the list of
1483 attributes that the specialization is declared with or NULL when
1484 it isn't. Returns SPEC, or an equivalent prior declaration, if
1485 available.
1486
1487 We also store instantiations of field packs in the hash table, even
1488 though they are not themselves templates, to make lookup easier. */
1489
1490 static tree
1491 register_specialization (tree spec, tree tmpl, tree args, bool is_friend,
1492 hashval_t hash)
1493 {
1494 tree fn;
1495 spec_entry **slot = NULL;
1496 spec_entry elt;
1497
1498 gcc_assert ((TREE_CODE (tmpl) == TEMPLATE_DECL && DECL_P (spec))
1499 || (TREE_CODE (tmpl) == FIELD_DECL
1500 && TREE_CODE (spec) == NONTYPE_ARGUMENT_PACK));
1501
1502 if (TREE_CODE (spec) == FUNCTION_DECL
1503 && uses_template_parms (DECL_TI_ARGS (spec)))
1504 /* This is the FUNCTION_DECL for a partial instantiation. Don't
1505 register it; we want the corresponding TEMPLATE_DECL instead.
1506 We use `uses_template_parms (DECL_TI_ARGS (spec))' rather than
1507 the more obvious `uses_template_parms (spec)' to avoid problems
1508 with default function arguments. In particular, given
1509 something like this:
1510
1511 template <class T> void f(T t1, T t = T())
1512
1513 the default argument expression is not substituted for in an
1514 instantiation unless and until it is actually needed. */
1515 return spec;
1516
1517 if (optimize_specialization_lookup_p (tmpl))
1518 /* We don't put these specializations in the hash table, but we might
1519 want to give an error about a mismatch. */
1520 fn = retrieve_specialization (tmpl, args, 0);
1521 else
1522 {
1523 elt.tmpl = tmpl;
1524 elt.args = args;
1525 elt.spec = spec;
1526
1527 if (hash == 0)
1528 hash = spec_hasher::hash (&elt);
1529
1530 slot =
1531 decl_specializations->find_slot_with_hash (&elt, hash, INSERT);
1532 if (*slot)
1533 fn = ((spec_entry *) *slot)->spec;
1534 else
1535 fn = NULL_TREE;
1536 }
1537
1538 /* We can sometimes try to re-register a specialization that we've
1539 already got. In particular, regenerate_decl_from_template calls
1540 duplicate_decls which will update the specialization list. But,
1541 we'll still get called again here anyhow. It's more convenient
1542 to simply allow this than to try to prevent it. */
1543 if (fn == spec)
1544 return spec;
1545 else if (fn && DECL_TEMPLATE_SPECIALIZATION (spec))
1546 {
1547 if (DECL_TEMPLATE_INSTANTIATION (fn))
1548 {
1549 if (DECL_ODR_USED (fn)
1550 || DECL_EXPLICIT_INSTANTIATION (fn))
1551 {
1552 error ("specialization of %qD after instantiation",
1553 fn);
1554 return error_mark_node;
1555 }
1556 else
1557 {
1558 tree clone;
1559 /* This situation should occur only if the first
1560 specialization is an implicit instantiation, the
1561 second is an explicit specialization, and the
1562 implicit instantiation has not yet been used. That
1563 situation can occur if we have implicitly
1564 instantiated a member function and then specialized
1565 it later.
1566
1567 We can also wind up here if a friend declaration that
1568 looked like an instantiation turns out to be a
1569 specialization:
1570
1571 template <class T> void foo(T);
1572 class S { friend void foo<>(int) };
1573 template <> void foo(int);
1574
1575 We transform the existing DECL in place so that any
1576 pointers to it become pointers to the updated
1577 declaration.
1578
1579 If there was a definition for the template, but not
1580 for the specialization, we want this to look as if
1581 there were no definition, and vice versa. */
1582 DECL_INITIAL (fn) = NULL_TREE;
1583 duplicate_decls (spec, fn, is_friend);
1584 /* The call to duplicate_decls will have applied
1585 [temp.expl.spec]:
1586
1587 An explicit specialization of a function template
1588 is inline only if it is explicitly declared to be,
1589 and independently of whether its function template
1590 is.
1591
1592 to the primary function; now copy the inline bits to
1593 the various clones. */
1594 FOR_EACH_CLONE (clone, fn)
1595 {
1596 DECL_DECLARED_INLINE_P (clone)
1597 = DECL_DECLARED_INLINE_P (fn);
1598 DECL_SOURCE_LOCATION (clone)
1599 = DECL_SOURCE_LOCATION (fn);
1600 DECL_DELETED_FN (clone)
1601 = DECL_DELETED_FN (fn);
1602 }
1603 check_specialization_namespace (tmpl);
1604
1605 return fn;
1606 }
1607 }
1608 else if (DECL_TEMPLATE_SPECIALIZATION (fn))
1609 {
1610 tree dd = duplicate_decls (spec, fn, is_friend);
1611 if (dd == error_mark_node)
1612 /* We've already complained in duplicate_decls. */
1613 return error_mark_node;
1614
1615 if (dd == NULL_TREE && DECL_INITIAL (spec))
1616 /* Dup decl failed, but this is a new definition. Set the
1617 line number so any errors match this new
1618 definition. */
1619 DECL_SOURCE_LOCATION (fn) = DECL_SOURCE_LOCATION (spec);
1620
1621 return fn;
1622 }
1623 }
1624 else if (fn)
1625 return duplicate_decls (spec, fn, is_friend);
1626
1627 /* A specialization must be declared in the same namespace as the
1628 template it is specializing. */
1629 if (DECL_P (spec) && DECL_TEMPLATE_SPECIALIZATION (spec)
1630 && !check_specialization_namespace (tmpl))
1631 DECL_CONTEXT (spec) = DECL_CONTEXT (tmpl);
1632
1633 if (slot != NULL /* !optimize_specialization_lookup_p (tmpl) */)
1634 {
1635 spec_entry *entry = ggc_alloc<spec_entry> ();
1636 gcc_assert (tmpl && args && spec);
1637 *entry = elt;
1638 *slot = entry;
1639 if ((TREE_CODE (spec) == FUNCTION_DECL && DECL_NAMESPACE_SCOPE_P (spec)
1640 && PRIMARY_TEMPLATE_P (tmpl)
1641 && DECL_SAVED_TREE (DECL_TEMPLATE_RESULT (tmpl)) == NULL_TREE)
1642 || variable_template_p (tmpl))
1643 /* If TMPL is a forward declaration of a template function, keep a list
1644 of all specializations in case we need to reassign them to a friend
1645 template later in tsubst_friend_function.
1646
1647 Also keep a list of all variable template instantiations so that
1648 process_partial_specialization can check whether a later partial
1649 specialization would have used it. */
1650 DECL_TEMPLATE_INSTANTIATIONS (tmpl)
1651 = tree_cons (args, spec, DECL_TEMPLATE_INSTANTIATIONS (tmpl));
1652 }
1653
1654 return spec;
1655 }
1656
1657 /* Returns true iff two spec_entry nodes are equivalent. */
1658
1659 int comparing_specializations;
1660
1661 bool
1662 spec_hasher::equal (spec_entry *e1, spec_entry *e2)
1663 {
1664 int equal;
1665
1666 ++comparing_specializations;
1667 equal = (e1->tmpl == e2->tmpl
1668 && comp_template_args (e1->args, e2->args));
1669 if (equal && flag_concepts
1670 /* tmpl could be a FIELD_DECL for a capture pack. */
1671 && TREE_CODE (e1->tmpl) == TEMPLATE_DECL
1672 && VAR_P (DECL_TEMPLATE_RESULT (e1->tmpl))
1673 && uses_template_parms (e1->args))
1674 {
1675 /* Partial specializations of a variable template can be distinguished by
1676 constraints. */
1677 tree c1 = e1->spec ? get_constraints (e1->spec) : NULL_TREE;
1678 tree c2 = e2->spec ? get_constraints (e2->spec) : NULL_TREE;
1679 equal = equivalent_constraints (c1, c2);
1680 }
1681 --comparing_specializations;
1682
1683 return equal;
1684 }
1685
1686 /* Returns a hash for a template TMPL and template arguments ARGS. */
1687
1688 static hashval_t
1689 hash_tmpl_and_args (tree tmpl, tree args)
1690 {
1691 hashval_t val = iterative_hash_object (DECL_UID (tmpl), 0);
1692 return iterative_hash_template_arg (args, val);
1693 }
1694
1695 /* Returns a hash for a spec_entry node based on the TMPL and ARGS members,
1696 ignoring SPEC. */
1697
1698 hashval_t
1699 spec_hasher::hash (spec_entry *e)
1700 {
1701 return hash_tmpl_and_args (e->tmpl, e->args);
1702 }
1703
1704 /* Recursively calculate a hash value for a template argument ARG, for use
1705 in the hash tables of template specializations. */
1706
1707 hashval_t
1708 iterative_hash_template_arg (tree arg, hashval_t val)
1709 {
1710 unsigned HOST_WIDE_INT i;
1711 enum tree_code code;
1712 char tclass;
1713
1714 if (arg == NULL_TREE)
1715 return iterative_hash_object (arg, val);
1716
1717 if (!TYPE_P (arg))
1718 STRIP_NOPS (arg);
1719
1720 if (TREE_CODE (arg) == ARGUMENT_PACK_SELECT)
1721 gcc_unreachable ();
1722
1723 code = TREE_CODE (arg);
1724 tclass = TREE_CODE_CLASS (code);
1725
1726 val = iterative_hash_object (code, val);
1727
1728 switch (code)
1729 {
1730 case ERROR_MARK:
1731 return val;
1732
1733 case IDENTIFIER_NODE:
1734 return iterative_hash_object (IDENTIFIER_HASH_VALUE (arg), val);
1735
1736 case TREE_VEC:
1737 {
1738 int i, len = TREE_VEC_LENGTH (arg);
1739 for (i = 0; i < len; ++i)
1740 val = iterative_hash_template_arg (TREE_VEC_ELT (arg, i), val);
1741 return val;
1742 }
1743
1744 case TYPE_PACK_EXPANSION:
1745 case EXPR_PACK_EXPANSION:
1746 val = iterative_hash_template_arg (PACK_EXPANSION_PATTERN (arg), val);
1747 return iterative_hash_template_arg (PACK_EXPANSION_EXTRA_ARGS (arg), val);
1748
1749 case TYPE_ARGUMENT_PACK:
1750 case NONTYPE_ARGUMENT_PACK:
1751 return iterative_hash_template_arg (ARGUMENT_PACK_ARGS (arg), val);
1752
1753 case TREE_LIST:
1754 for (; arg; arg = TREE_CHAIN (arg))
1755 val = iterative_hash_template_arg (TREE_VALUE (arg), val);
1756 return val;
1757
1758 case OVERLOAD:
1759 for (lkp_iterator iter (arg); iter; ++iter)
1760 val = iterative_hash_template_arg (*iter, val);
1761 return val;
1762
1763 case CONSTRUCTOR:
1764 {
1765 tree field, value;
1766 iterative_hash_template_arg (TREE_TYPE (arg), val);
1767 FOR_EACH_CONSTRUCTOR_ELT (CONSTRUCTOR_ELTS (arg), i, field, value)
1768 {
1769 val = iterative_hash_template_arg (field, val);
1770 val = iterative_hash_template_arg (value, val);
1771 }
1772 return val;
1773 }
1774
1775 case PARM_DECL:
1776 if (!DECL_ARTIFICIAL (arg))
1777 {
1778 val = iterative_hash_object (DECL_PARM_INDEX (arg), val);
1779 val = iterative_hash_object (DECL_PARM_LEVEL (arg), val);
1780 }
1781 return iterative_hash_template_arg (TREE_TYPE (arg), val);
1782
1783 case TARGET_EXPR:
1784 return iterative_hash_template_arg (TARGET_EXPR_INITIAL (arg), val);
1785
1786 case PTRMEM_CST:
1787 val = iterative_hash_template_arg (PTRMEM_CST_CLASS (arg), val);
1788 return iterative_hash_template_arg (PTRMEM_CST_MEMBER (arg), val);
1789
1790 case TEMPLATE_PARM_INDEX:
1791 val = iterative_hash_template_arg
1792 (TREE_TYPE (TEMPLATE_PARM_DECL (arg)), val);
1793 val = iterative_hash_object (TEMPLATE_PARM_LEVEL (arg), val);
1794 return iterative_hash_object (TEMPLATE_PARM_IDX (arg), val);
1795
1796 case TRAIT_EXPR:
1797 val = iterative_hash_object (TRAIT_EXPR_KIND (arg), val);
1798 val = iterative_hash_template_arg (TRAIT_EXPR_TYPE1 (arg), val);
1799 return iterative_hash_template_arg (TRAIT_EXPR_TYPE2 (arg), val);
1800
1801 case BASELINK:
1802 val = iterative_hash_template_arg (BINFO_TYPE (BASELINK_BINFO (arg)),
1803 val);
1804 return iterative_hash_template_arg (DECL_NAME (get_first_fn (arg)),
1805 val);
1806
1807 case MODOP_EXPR:
1808 val = iterative_hash_template_arg (TREE_OPERAND (arg, 0), val);
1809 code = TREE_CODE (TREE_OPERAND (arg, 1));
1810 val = iterative_hash_object (code, val);
1811 return iterative_hash_template_arg (TREE_OPERAND (arg, 2), val);
1812
1813 case LAMBDA_EXPR:
1814 /* A lambda can't appear in a template arg, but don't crash on
1815 erroneous input. */
1816 gcc_assert (seen_error ());
1817 return val;
1818
1819 case CAST_EXPR:
1820 case IMPLICIT_CONV_EXPR:
1821 case STATIC_CAST_EXPR:
1822 case REINTERPRET_CAST_EXPR:
1823 case CONST_CAST_EXPR:
1824 case DYNAMIC_CAST_EXPR:
1825 case NEW_EXPR:
1826 val = iterative_hash_template_arg (TREE_TYPE (arg), val);
1827 /* Now hash operands as usual. */
1828 break;
1829
1830 default:
1831 break;
1832 }
1833
1834 switch (tclass)
1835 {
1836 case tcc_type:
1837 if (alias_template_specialization_p (arg))
1838 {
1839 // We want an alias specialization that survived strip_typedefs
1840 // to hash differently from its TYPE_CANONICAL, to avoid hash
1841 // collisions that compare as different in template_args_equal.
1842 // These could be dependent specializations that strip_typedefs
1843 // left alone, or untouched specializations because
1844 // coerce_template_parms returns the unconverted template
1845 // arguments if it sees incomplete argument packs.
1846 tree ti = TYPE_ALIAS_TEMPLATE_INFO (arg);
1847 return hash_tmpl_and_args (TI_TEMPLATE (ti), TI_ARGS (ti));
1848 }
1849 if (TYPE_CANONICAL (arg))
1850 return iterative_hash_object (TYPE_HASH (TYPE_CANONICAL (arg)),
1851 val);
1852 else if (TREE_CODE (arg) == DECLTYPE_TYPE)
1853 return iterative_hash_template_arg (DECLTYPE_TYPE_EXPR (arg), val);
1854 /* Otherwise just compare the types during lookup. */
1855 return val;
1856
1857 case tcc_declaration:
1858 case tcc_constant:
1859 return iterative_hash_expr (arg, val);
1860
1861 default:
1862 gcc_assert (IS_EXPR_CODE_CLASS (tclass));
1863 {
1864 unsigned n = cp_tree_operand_length (arg);
1865 for (i = 0; i < n; ++i)
1866 val = iterative_hash_template_arg (TREE_OPERAND (arg, i), val);
1867 return val;
1868 }
1869 }
1870 gcc_unreachable ();
1871 return 0;
1872 }
1873
1874 /* Unregister the specialization SPEC as a specialization of TMPL.
1875 Replace it with NEW_SPEC, if NEW_SPEC is non-NULL. Returns true
1876 if the SPEC was listed as a specialization of TMPL.
1877
1878 Note that SPEC has been ggc_freed, so we can't look inside it. */
1879
1880 bool
1881 reregister_specialization (tree spec, tree tinfo, tree new_spec)
1882 {
1883 spec_entry *entry;
1884 spec_entry elt;
1885
1886 elt.tmpl = most_general_template (TI_TEMPLATE (tinfo));
1887 elt.args = TI_ARGS (tinfo);
1888 elt.spec = NULL_TREE;
1889
1890 entry = decl_specializations->find (&elt);
1891 if (entry != NULL)
1892 {
1893 gcc_assert (entry->spec == spec || entry->spec == new_spec);
1894 gcc_assert (new_spec != NULL_TREE);
1895 entry->spec = new_spec;
1896 return 1;
1897 }
1898
1899 return 0;
1900 }
1901
1902 /* Like register_specialization, but for local declarations. We are
1903 registering SPEC, an instantiation of TMPL. */
1904
1905 void
1906 register_local_specialization (tree spec, tree tmpl)
1907 {
1908 gcc_assert (tmpl != spec);
1909 local_specializations->put (tmpl, spec);
1910 }
1911
1912 /* TYPE is a class type. Returns true if TYPE is an explicitly
1913 specialized class. */
1914
1915 bool
1916 explicit_class_specialization_p (tree type)
1917 {
1918 if (!CLASSTYPE_TEMPLATE_SPECIALIZATION (type))
1919 return false;
1920 return !uses_template_parms (CLASSTYPE_TI_ARGS (type));
1921 }
1922
1923 /* Print the list of functions at FNS, going through all the overloads
1924 for each element of the list. Alternatively, FNS can not be a
1925 TREE_LIST, in which case it will be printed together with all the
1926 overloads.
1927
1928 MORE and *STR should respectively be FALSE and NULL when the function
1929 is called from the outside. They are used internally on recursive
1930 calls. print_candidates manages the two parameters and leaves NULL
1931 in *STR when it ends. */
1932
1933 static void
1934 print_candidates_1 (tree fns, char **str, bool more = false)
1935 {
1936 if (TREE_CODE (fns) == TREE_LIST)
1937 for (; fns; fns = TREE_CHAIN (fns))
1938 print_candidates_1 (TREE_VALUE (fns), str, more || TREE_CHAIN (fns));
1939 else
1940 for (lkp_iterator iter (fns); iter;)
1941 {
1942 tree cand = *iter;
1943 ++iter;
1944
1945 const char *pfx = *str;
1946 if (!pfx)
1947 {
1948 if (more || iter)
1949 pfx = _("candidates are:");
1950 else
1951 pfx = _("candidate is:");
1952 *str = get_spaces (pfx);
1953 }
1954 inform (DECL_SOURCE_LOCATION (cand), "%s %#qD", pfx, cand);
1955 }
1956 }
1957
1958 /* Print the list of candidate FNS in an error message. FNS can also
1959 be a TREE_LIST of non-functions in the case of an ambiguous lookup. */
1960
1961 void
1962 print_candidates (tree fns)
1963 {
1964 char *str = NULL;
1965 print_candidates_1 (fns, &str);
1966 free (str);
1967 }
1968
1969 /* Get a (possibly) constrained template declaration for the
1970 purpose of ordering candidates. */
1971 static tree
1972 get_template_for_ordering (tree list)
1973 {
1974 gcc_assert (TREE_CODE (list) == TREE_LIST);
1975 tree f = TREE_VALUE (list);
1976 if (tree ti = DECL_TEMPLATE_INFO (f))
1977 return TI_TEMPLATE (ti);
1978 return f;
1979 }
1980
1981 /* Among candidates having the same signature, return the
1982 most constrained or NULL_TREE if there is no best candidate.
1983 If the signatures of candidates vary (e.g., template
1984 specialization vs. member function), then there can be no
1985 most constrained.
1986
1987 Note that we don't compare constraints on the functions
1988 themselves, but rather those of their templates. */
1989 static tree
1990 most_constrained_function (tree candidates)
1991 {
1992 // Try to find the best candidate in a first pass.
1993 tree champ = candidates;
1994 for (tree c = TREE_CHAIN (champ); c; c = TREE_CHAIN (c))
1995 {
1996 int winner = more_constrained (get_template_for_ordering (champ),
1997 get_template_for_ordering (c));
1998 if (winner == -1)
1999 champ = c; // The candidate is more constrained
2000 else if (winner == 0)
2001 return NULL_TREE; // Neither is more constrained
2002 }
2003
2004 // Verify that the champ is better than previous candidates.
2005 for (tree c = candidates; c != champ; c = TREE_CHAIN (c)) {
2006 if (!more_constrained (get_template_for_ordering (champ),
2007 get_template_for_ordering (c)))
2008 return NULL_TREE;
2009 }
2010
2011 return champ;
2012 }
2013
2014
2015 /* Returns the template (one of the functions given by TEMPLATE_ID)
2016 which can be specialized to match the indicated DECL with the
2017 explicit template args given in TEMPLATE_ID. The DECL may be
2018 NULL_TREE if none is available. In that case, the functions in
2019 TEMPLATE_ID are non-members.
2020
2021 If NEED_MEMBER_TEMPLATE is nonzero the function is known to be a
2022 specialization of a member template.
2023
2024 The TEMPLATE_COUNT is the number of references to qualifying
2025 template classes that appeared in the name of the function. See
2026 check_explicit_specialization for a more accurate description.
2027
2028 TSK indicates what kind of template declaration (if any) is being
2029 declared. TSK_TEMPLATE indicates that the declaration given by
2030 DECL, though a FUNCTION_DECL, has template parameters, and is
2031 therefore a template function.
2032
2033 The template args (those explicitly specified and those deduced)
2034 are output in a newly created vector *TARGS_OUT.
2035
2036 If it is impossible to determine the result, an error message is
2037 issued. The error_mark_node is returned to indicate failure. */
2038
2039 static tree
2040 determine_specialization (tree template_id,
2041 tree decl,
2042 tree* targs_out,
2043 int need_member_template,
2044 int template_count,
2045 tmpl_spec_kind tsk)
2046 {
2047 tree fns;
2048 tree targs;
2049 tree explicit_targs;
2050 tree candidates = NULL_TREE;
2051
2052 /* A TREE_LIST of templates of which DECL may be a specialization.
2053 The TREE_VALUE of each node is a TEMPLATE_DECL. The
2054 corresponding TREE_PURPOSE is the set of template arguments that,
2055 when used to instantiate the template, would produce a function
2056 with the signature of DECL. */
2057 tree templates = NULL_TREE;
2058 int header_count;
2059 cp_binding_level *b;
2060
2061 *targs_out = NULL_TREE;
2062
2063 if (template_id == error_mark_node || decl == error_mark_node)
2064 return error_mark_node;
2065
2066 /* We shouldn't be specializing a member template of an
2067 unspecialized class template; we already gave an error in
2068 check_specialization_scope, now avoid crashing. */
2069 if (!VAR_P (decl)
2070 && template_count && DECL_CLASS_SCOPE_P (decl)
2071 && template_class_depth (DECL_CONTEXT (decl)) > 0)
2072 {
2073 gcc_assert (errorcount);
2074 return error_mark_node;
2075 }
2076
2077 fns = TREE_OPERAND (template_id, 0);
2078 explicit_targs = TREE_OPERAND (template_id, 1);
2079
2080 if (fns == error_mark_node)
2081 return error_mark_node;
2082
2083 /* Check for baselinks. */
2084 if (BASELINK_P (fns))
2085 fns = BASELINK_FUNCTIONS (fns);
2086
2087 if (TREE_CODE (decl) == FUNCTION_DECL && !is_overloaded_fn (fns))
2088 {
2089 error ("%qD is not a function template", fns);
2090 return error_mark_node;
2091 }
2092 else if (VAR_P (decl) && !variable_template_p (fns))
2093 {
2094 error ("%qD is not a variable template", fns);
2095 return error_mark_node;
2096 }
2097
2098 /* Count the number of template headers specified for this
2099 specialization. */
2100 header_count = 0;
2101 for (b = current_binding_level;
2102 b->kind == sk_template_parms;
2103 b = b->level_chain)
2104 ++header_count;
2105
2106 tree orig_fns = fns;
2107
2108 if (variable_template_p (fns))
2109 {
2110 tree parms = INNERMOST_TEMPLATE_PARMS (DECL_TEMPLATE_PARMS (fns));
2111 targs = coerce_template_parms (parms, explicit_targs, fns,
2112 tf_warning_or_error,
2113 /*req_all*/true, /*use_defarg*/true);
2114 if (targs != error_mark_node)
2115 templates = tree_cons (targs, fns, templates);
2116 }
2117 else for (lkp_iterator iter (fns); iter; ++iter)
2118 {
2119 tree fn = *iter;
2120
2121 if (TREE_CODE (fn) == TEMPLATE_DECL)
2122 {
2123 tree decl_arg_types;
2124 tree fn_arg_types;
2125 tree insttype;
2126
2127 /* In case of explicit specialization, we need to check if
2128 the number of template headers appearing in the specialization
2129 is correct. This is usually done in check_explicit_specialization,
2130 but the check done there cannot be exhaustive when specializing
2131 member functions. Consider the following code:
2132
2133 template <> void A<int>::f(int);
2134 template <> template <> void A<int>::f(int);
2135
2136 Assuming that A<int> is not itself an explicit specialization
2137 already, the first line specializes "f" which is a non-template
2138 member function, whilst the second line specializes "f" which
2139 is a template member function. So both lines are syntactically
2140 correct, and check_explicit_specialization does not reject
2141 them.
2142
2143 Here, we can do better, as we are matching the specialization
2144 against the declarations. We count the number of template
2145 headers, and we check if they match TEMPLATE_COUNT + 1
2146 (TEMPLATE_COUNT is the number of qualifying template classes,
2147 plus there must be another header for the member template
2148 itself).
2149
2150 Notice that if header_count is zero, this is not a
2151 specialization but rather a template instantiation, so there
2152 is no check we can perform here. */
2153 if (header_count && header_count != template_count + 1)
2154 continue;
2155
2156 /* Check that the number of template arguments at the
2157 innermost level for DECL is the same as for FN. */
2158 if (current_binding_level->kind == sk_template_parms
2159 && !current_binding_level->explicit_spec_p
2160 && (TREE_VEC_LENGTH (DECL_INNERMOST_TEMPLATE_PARMS (fn))
2161 != TREE_VEC_LENGTH (INNERMOST_TEMPLATE_PARMS
2162 (current_template_parms))))
2163 continue;
2164
2165 /* DECL might be a specialization of FN. */
2166 decl_arg_types = TYPE_ARG_TYPES (TREE_TYPE (decl));
2167 fn_arg_types = TYPE_ARG_TYPES (TREE_TYPE (fn));
2168
2169 /* For a non-static member function, we need to make sure
2170 that the const qualification is the same. Since
2171 get_bindings does not try to merge the "this" parameter,
2172 we must do the comparison explicitly. */
2173 if (DECL_NONSTATIC_MEMBER_FUNCTION_P (fn))
2174 {
2175 if (!same_type_p (TREE_VALUE (fn_arg_types),
2176 TREE_VALUE (decl_arg_types)))
2177 continue;
2178
2179 /* And the ref-qualification. */
2180 if (type_memfn_rqual (TREE_TYPE (decl))
2181 != type_memfn_rqual (TREE_TYPE (fn)))
2182 continue;
2183 }
2184
2185 /* Skip the "this" parameter and, for constructors of
2186 classes with virtual bases, the VTT parameter. A
2187 full specialization of a constructor will have a VTT
2188 parameter, but a template never will. */
2189 decl_arg_types
2190 = skip_artificial_parms_for (decl, decl_arg_types);
2191 fn_arg_types
2192 = skip_artificial_parms_for (fn, fn_arg_types);
2193
2194 /* Function templates cannot be specializations; there are
2195 no partial specializations of functions. Therefore, if
2196 the type of DECL does not match FN, there is no
2197 match.
2198
2199 Note that it should never be the case that we have both
2200 candidates added here, and for regular member functions
2201 below. */
2202 if (tsk == tsk_template)
2203 {
2204 if (compparms (fn_arg_types, decl_arg_types))
2205 candidates = tree_cons (NULL_TREE, fn, candidates);
2206 continue;
2207 }
2208
2209 /* See whether this function might be a specialization of this
2210 template. Suppress access control because we might be trying
2211 to make this specialization a friend, and we have already done
2212 access control for the declaration of the specialization. */
2213 push_deferring_access_checks (dk_no_check);
2214 targs = get_bindings (fn, decl, explicit_targs, /*check_ret=*/true);
2215 pop_deferring_access_checks ();
2216
2217 if (!targs)
2218 /* We cannot deduce template arguments that when used to
2219 specialize TMPL will produce DECL. */
2220 continue;
2221
2222 if (uses_template_parms (targs))
2223 /* We deduced something involving 'auto', which isn't a valid
2224 template argument. */
2225 continue;
2226
2227 /* Remove, from the set of candidates, all those functions
2228 whose constraints are not satisfied. */
2229 if (flag_concepts && !constraints_satisfied_p (fn, targs))
2230 continue;
2231
2232 // Then, try to form the new function type.
2233 insttype = tsubst (TREE_TYPE (fn), targs, tf_fndecl_type, NULL_TREE);
2234 if (insttype == error_mark_node)
2235 continue;
2236 fn_arg_types
2237 = skip_artificial_parms_for (fn, TYPE_ARG_TYPES (insttype));
2238 if (!compparms (fn_arg_types, decl_arg_types))
2239 continue;
2240
2241 /* Save this template, and the arguments deduced. */
2242 templates = tree_cons (targs, fn, templates);
2243 }
2244 else if (need_member_template)
2245 /* FN is an ordinary member function, and we need a
2246 specialization of a member template. */
2247 ;
2248 else if (TREE_CODE (fn) != FUNCTION_DECL)
2249 /* We can get IDENTIFIER_NODEs here in certain erroneous
2250 cases. */
2251 ;
2252 else if (!DECL_FUNCTION_MEMBER_P (fn))
2253 /* This is just an ordinary non-member function. Nothing can
2254 be a specialization of that. */
2255 ;
2256 else if (DECL_ARTIFICIAL (fn))
2257 /* Cannot specialize functions that are created implicitly. */
2258 ;
2259 else
2260 {
2261 tree decl_arg_types;
2262
2263 /* This is an ordinary member function. However, since
2264 we're here, we can assume its enclosing class is a
2265 template class. For example,
2266
2267 template <typename T> struct S { void f(); };
2268 template <> void S<int>::f() {}
2269
2270 Here, S<int>::f is a non-template, but S<int> is a
2271 template class. If FN has the same type as DECL, we
2272 might be in business. */
2273
2274 if (!DECL_TEMPLATE_INFO (fn))
2275 /* Its enclosing class is an explicit specialization
2276 of a template class. This is not a candidate. */
2277 continue;
2278
2279 if (!same_type_p (TREE_TYPE (TREE_TYPE (decl)),
2280 TREE_TYPE (TREE_TYPE (fn))))
2281 /* The return types differ. */
2282 continue;
2283
2284 /* Adjust the type of DECL in case FN is a static member. */
2285 decl_arg_types = TYPE_ARG_TYPES (TREE_TYPE (decl));
2286 if (DECL_STATIC_FUNCTION_P (fn)
2287 && DECL_NONSTATIC_MEMBER_FUNCTION_P (decl))
2288 decl_arg_types = TREE_CHAIN (decl_arg_types);
2289
2290 if (!compparms (TYPE_ARG_TYPES (TREE_TYPE (fn)),
2291 decl_arg_types))
2292 continue;
2293
2294 if (DECL_NONSTATIC_MEMBER_FUNCTION_P (fn)
2295 && (type_memfn_rqual (TREE_TYPE (decl))
2296 != type_memfn_rqual (TREE_TYPE (fn))))
2297 continue;
2298
2299 // If the deduced arguments do not satisfy the constraints,
2300 // this is not a candidate.
2301 if (flag_concepts && !constraints_satisfied_p (fn))
2302 continue;
2303
2304 // Add the candidate.
2305 candidates = tree_cons (NULL_TREE, fn, candidates);
2306 }
2307 }
2308
2309 if (templates && TREE_CHAIN (templates))
2310 {
2311 /* We have:
2312
2313 [temp.expl.spec]
2314
2315 It is possible for a specialization with a given function
2316 signature to be instantiated from more than one function
2317 template. In such cases, explicit specification of the
2318 template arguments must be used to uniquely identify the
2319 function template specialization being specialized.
2320
2321 Note that here, there's no suggestion that we're supposed to
2322 determine which of the candidate templates is most
2323 specialized. However, we, also have:
2324
2325 [temp.func.order]
2326
2327 Partial ordering of overloaded function template
2328 declarations is used in the following contexts to select
2329 the function template to which a function template
2330 specialization refers:
2331
2332 -- when an explicit specialization refers to a function
2333 template.
2334
2335 So, we do use the partial ordering rules, at least for now.
2336 This extension can only serve to make invalid programs valid,
2337 so it's safe. And, there is strong anecdotal evidence that
2338 the committee intended the partial ordering rules to apply;
2339 the EDG front end has that behavior, and John Spicer claims
2340 that the committee simply forgot to delete the wording in
2341 [temp.expl.spec]. */
2342 tree tmpl = most_specialized_instantiation (templates);
2343 if (tmpl != error_mark_node)
2344 {
2345 templates = tmpl;
2346 TREE_CHAIN (templates) = NULL_TREE;
2347 }
2348 }
2349
2350 // Concepts allows multiple declarations of member functions
2351 // with the same signature. Like above, we need to rely on
2352 // on the partial ordering of those candidates to determine which
2353 // is the best.
2354 if (flag_concepts && candidates && TREE_CHAIN (candidates))
2355 {
2356 if (tree cand = most_constrained_function (candidates))
2357 {
2358 candidates = cand;
2359 TREE_CHAIN (cand) = NULL_TREE;
2360 }
2361 }
2362
2363 if (templates == NULL_TREE && candidates == NULL_TREE)
2364 {
2365 error ("template-id %qD for %q+D does not match any template "
2366 "declaration", template_id, decl);
2367 if (header_count && header_count != template_count + 1)
2368 inform (input_location, "saw %d %<template<>%>, need %d for "
2369 "specializing a member function template",
2370 header_count, template_count + 1);
2371 else
2372 print_candidates (orig_fns);
2373 return error_mark_node;
2374 }
2375 else if ((templates && TREE_CHAIN (templates))
2376 || (candidates && TREE_CHAIN (candidates))
2377 || (templates && candidates))
2378 {
2379 error ("ambiguous template specialization %qD for %q+D",
2380 template_id, decl);
2381 candidates = chainon (candidates, templates);
2382 print_candidates (candidates);
2383 return error_mark_node;
2384 }
2385
2386 /* We have one, and exactly one, match. */
2387 if (candidates)
2388 {
2389 tree fn = TREE_VALUE (candidates);
2390 *targs_out = copy_node (DECL_TI_ARGS (fn));
2391
2392 // Propagate the candidate's constraints to the declaration.
2393 set_constraints (decl, get_constraints (fn));
2394
2395 /* DECL is a re-declaration or partial instantiation of a template
2396 function. */
2397 if (TREE_CODE (fn) == TEMPLATE_DECL)
2398 return fn;
2399 /* It was a specialization of an ordinary member function in a
2400 template class. */
2401 return DECL_TI_TEMPLATE (fn);
2402 }
2403
2404 /* It was a specialization of a template. */
2405 targs = DECL_TI_ARGS (DECL_TEMPLATE_RESULT (TREE_VALUE (templates)));
2406 if (TMPL_ARGS_HAVE_MULTIPLE_LEVELS (targs))
2407 {
2408 *targs_out = copy_node (targs);
2409 SET_TMPL_ARGS_LEVEL (*targs_out,
2410 TMPL_ARGS_DEPTH (*targs_out),
2411 TREE_PURPOSE (templates));
2412 }
2413 else
2414 *targs_out = TREE_PURPOSE (templates);
2415 return TREE_VALUE (templates);
2416 }
2417
2418 /* Returns a chain of parameter types, exactly like the SPEC_TYPES,
2419 but with the default argument values filled in from those in the
2420 TMPL_TYPES. */
2421
2422 static tree
2423 copy_default_args_to_explicit_spec_1 (tree spec_types,
2424 tree tmpl_types)
2425 {
2426 tree new_spec_types;
2427
2428 if (!spec_types)
2429 return NULL_TREE;
2430
2431 if (spec_types == void_list_node)
2432 return void_list_node;
2433
2434 /* Substitute into the rest of the list. */
2435 new_spec_types =
2436 copy_default_args_to_explicit_spec_1 (TREE_CHAIN (spec_types),
2437 TREE_CHAIN (tmpl_types));
2438
2439 /* Add the default argument for this parameter. */
2440 return hash_tree_cons (TREE_PURPOSE (tmpl_types),
2441 TREE_VALUE (spec_types),
2442 new_spec_types);
2443 }
2444
2445 /* DECL is an explicit specialization. Replicate default arguments
2446 from the template it specializes. (That way, code like:
2447
2448 template <class T> void f(T = 3);
2449 template <> void f(double);
2450 void g () { f (); }
2451
2452 works, as required.) An alternative approach would be to look up
2453 the correct default arguments at the call-site, but this approach
2454 is consistent with how implicit instantiations are handled. */
2455
2456 static void
2457 copy_default_args_to_explicit_spec (tree decl)
2458 {
2459 tree tmpl;
2460 tree spec_types;
2461 tree tmpl_types;
2462 tree new_spec_types;
2463 tree old_type;
2464 tree new_type;
2465 tree t;
2466 tree object_type = NULL_TREE;
2467 tree in_charge = NULL_TREE;
2468 tree vtt = NULL_TREE;
2469
2470 /* See if there's anything we need to do. */
2471 tmpl = DECL_TI_TEMPLATE (decl);
2472 tmpl_types = TYPE_ARG_TYPES (TREE_TYPE (DECL_TEMPLATE_RESULT (tmpl)));
2473 for (t = tmpl_types; t; t = TREE_CHAIN (t))
2474 if (TREE_PURPOSE (t))
2475 break;
2476 if (!t)
2477 return;
2478
2479 old_type = TREE_TYPE (decl);
2480 spec_types = TYPE_ARG_TYPES (old_type);
2481
2482 if (DECL_NONSTATIC_MEMBER_FUNCTION_P (decl))
2483 {
2484 /* Remove the this pointer, but remember the object's type for
2485 CV quals. */
2486 object_type = TREE_TYPE (TREE_VALUE (spec_types));
2487 spec_types = TREE_CHAIN (spec_types);
2488 tmpl_types = TREE_CHAIN (tmpl_types);
2489
2490 if (DECL_HAS_IN_CHARGE_PARM_P (decl))
2491 {
2492 /* DECL may contain more parameters than TMPL due to the extra
2493 in-charge parameter in constructors and destructors. */
2494 in_charge = spec_types;
2495 spec_types = TREE_CHAIN (spec_types);
2496 }
2497 if (DECL_HAS_VTT_PARM_P (decl))
2498 {
2499 vtt = spec_types;
2500 spec_types = TREE_CHAIN (spec_types);
2501 }
2502 }
2503
2504 /* Compute the merged default arguments. */
2505 new_spec_types =
2506 copy_default_args_to_explicit_spec_1 (spec_types, tmpl_types);
2507
2508 /* Compute the new FUNCTION_TYPE. */
2509 if (object_type)
2510 {
2511 if (vtt)
2512 new_spec_types = hash_tree_cons (TREE_PURPOSE (vtt),
2513 TREE_VALUE (vtt),
2514 new_spec_types);
2515
2516 if (in_charge)
2517 /* Put the in-charge parameter back. */
2518 new_spec_types = hash_tree_cons (TREE_PURPOSE (in_charge),
2519 TREE_VALUE (in_charge),
2520 new_spec_types);
2521
2522 new_type = build_method_type_directly (object_type,
2523 TREE_TYPE (old_type),
2524 new_spec_types);
2525 }
2526 else
2527 new_type = build_function_type (TREE_TYPE (old_type),
2528 new_spec_types);
2529 new_type = cp_build_type_attribute_variant (new_type,
2530 TYPE_ATTRIBUTES (old_type));
2531 new_type = cxx_copy_lang_qualifiers (new_type, old_type);
2532
2533 TREE_TYPE (decl) = new_type;
2534 }
2535
2536 /* Return the number of template headers we expect to see for a definition
2537 or specialization of CTYPE or one of its non-template members. */
2538
2539 int
2540 num_template_headers_for_class (tree ctype)
2541 {
2542 int num_templates = 0;
2543
2544 while (ctype && CLASS_TYPE_P (ctype))
2545 {
2546 /* You're supposed to have one `template <...>' for every
2547 template class, but you don't need one for a full
2548 specialization. For example:
2549
2550 template <class T> struct S{};
2551 template <> struct S<int> { void f(); };
2552 void S<int>::f () {}
2553
2554 is correct; there shouldn't be a `template <>' for the
2555 definition of `S<int>::f'. */
2556 if (!CLASSTYPE_TEMPLATE_INFO (ctype))
2557 /* If CTYPE does not have template information of any
2558 kind, then it is not a template, nor is it nested
2559 within a template. */
2560 break;
2561 if (explicit_class_specialization_p (ctype))
2562 break;
2563 if (PRIMARY_TEMPLATE_P (CLASSTYPE_TI_TEMPLATE (ctype)))
2564 ++num_templates;
2565
2566 ctype = TYPE_CONTEXT (ctype);
2567 }
2568
2569 return num_templates;
2570 }
2571
2572 /* Do a simple sanity check on the template headers that precede the
2573 variable declaration DECL. */
2574
2575 void
2576 check_template_variable (tree decl)
2577 {
2578 tree ctx = CP_DECL_CONTEXT (decl);
2579 int wanted = num_template_headers_for_class (ctx);
2580 if (DECL_LANG_SPECIFIC (decl) && DECL_TEMPLATE_INFO (decl)
2581 && PRIMARY_TEMPLATE_P (DECL_TI_TEMPLATE (decl)))
2582 {
2583 if (cxx_dialect < cxx14)
2584 pedwarn (DECL_SOURCE_LOCATION (decl), 0,
2585 "variable templates only available with "
2586 "-std=c++14 or -std=gnu++14");
2587
2588 // Namespace-scope variable templates should have a template header.
2589 ++wanted;
2590 }
2591 if (template_header_count > wanted)
2592 {
2593 bool warned = pedwarn (DECL_SOURCE_LOCATION (decl), 0,
2594 "too many template headers for %qD "
2595 "(should be %d)",
2596 decl, wanted);
2597 if (warned && CLASS_TYPE_P (ctx)
2598 && CLASSTYPE_TEMPLATE_SPECIALIZATION (ctx))
2599 inform (DECL_SOURCE_LOCATION (decl),
2600 "members of an explicitly specialized class are defined "
2601 "without a template header");
2602 }
2603 }
2604
2605 /* An explicit specialization whose declarator-id or class-head-name is not
2606 qualified shall be declared in the nearest enclosing namespace of the
2607 template, or, if the namespace is inline (7.3.1), any namespace from its
2608 enclosing namespace set.
2609
2610 If the name declared in the explicit instantiation is an unqualified name,
2611 the explicit instantiation shall appear in the namespace where its template
2612 is declared or, if that namespace is inline (7.3.1), any namespace from its
2613 enclosing namespace set. */
2614
2615 void
2616 check_unqualified_spec_or_inst (tree t, location_t loc)
2617 {
2618 tree tmpl = most_general_template (t);
2619 if (DECL_NAMESPACE_SCOPE_P (tmpl)
2620 && !is_nested_namespace (current_namespace,
2621 CP_DECL_CONTEXT (tmpl), true))
2622 {
2623 if (processing_specialization)
2624 permerror (loc, "explicit specialization of %qD outside its "
2625 "namespace must use a nested-name-specifier", tmpl);
2626 else if (processing_explicit_instantiation
2627 && cxx_dialect >= cxx11)
2628 /* This was allowed in C++98, so only pedwarn. */
2629 pedwarn (loc, OPT_Wpedantic, "explicit instantiation of %qD "
2630 "outside its namespace must use a nested-name-"
2631 "specifier", tmpl);
2632 }
2633 }
2634
2635 /* Warn for a template specialization SPEC that is missing some of a set
2636 of function or type attributes that the template TEMPL is declared with.
2637 ATTRLIST is a list of additional attributes that SPEC should be taken
2638 to ultimately be declared with. */
2639
2640 static void
2641 warn_spec_missing_attributes (tree tmpl, tree spec, tree attrlist)
2642 {
2643 if (DECL_FUNCTION_TEMPLATE_P (tmpl))
2644 tmpl = DECL_TEMPLATE_RESULT (tmpl);
2645
2646 if (TREE_CODE (tmpl) != FUNCTION_DECL)
2647 return;
2648
2649 /* Avoid warning if either declaration or its type is deprecated. */
2650 if (TREE_DEPRECATED (tmpl)
2651 || TREE_DEPRECATED (spec))
2652 return;
2653
2654 tree tmpl_type = TREE_TYPE (tmpl);
2655 tree spec_type = TREE_TYPE (spec);
2656
2657 if (TREE_DEPRECATED (tmpl_type)
2658 || TREE_DEPRECATED (spec_type)
2659 || TREE_DEPRECATED (TREE_TYPE (tmpl_type))
2660 || TREE_DEPRECATED (TREE_TYPE (spec_type)))
2661 return;
2662
2663 tree tmpl_attrs[] = { DECL_ATTRIBUTES (tmpl), TYPE_ATTRIBUTES (tmpl_type) };
2664 tree spec_attrs[] = { DECL_ATTRIBUTES (spec), TYPE_ATTRIBUTES (spec_type) };
2665
2666 if (!spec_attrs[0])
2667 spec_attrs[0] = attrlist;
2668 else if (!spec_attrs[1])
2669 spec_attrs[1] = attrlist;
2670
2671 /* Avoid warning if the primary has no attributes. */
2672 if (!tmpl_attrs[0] && !tmpl_attrs[1])
2673 return;
2674
2675 /* Avoid warning if either declaration contains an attribute on
2676 the white list below. */
2677 const char* const whitelist[] = {
2678 "error", "warning"
2679 };
2680
2681 for (unsigned i = 0; i != 2; ++i)
2682 for (unsigned j = 0; j != sizeof whitelist / sizeof *whitelist; ++j)
2683 if (lookup_attribute (whitelist[j], tmpl_attrs[i])
2684 || lookup_attribute (whitelist[j], spec_attrs[i]))
2685 return;
2686
2687 /* Avoid warning if the difference between the primary and
2688 the specialization is not in one of the attributes below. */
2689 const char* const blacklist[] = {
2690 "alloc_align", "alloc_size", "assume_aligned", "format",
2691 "format_arg", "malloc", "nonnull"
2692 };
2693
2694 /* Put together a list of the black listed attributes that the primary
2695 template is declared with that the specialization is not, in case
2696 it's not apparent from the most recent declaration of the primary. */
2697 unsigned nattrs = 0;
2698 pretty_printer str;
2699
2700 for (unsigned i = 0; i != sizeof blacklist / sizeof *blacklist; ++i)
2701 {
2702 for (unsigned j = 0; j != 2; ++j)
2703 {
2704 if (!lookup_attribute (blacklist[i], tmpl_attrs[j]))
2705 continue;
2706
2707 for (unsigned k = 0; k != 1 + !!spec_attrs[1]; ++k)
2708 {
2709 if (lookup_attribute (blacklist[i], spec_attrs[k]))
2710 break;
2711
2712 if (nattrs)
2713 pp_string (&str, ", ");
2714 pp_begin_quote (&str, pp_show_color (global_dc->printer));
2715 pp_string (&str, blacklist[i]);
2716 pp_end_quote (&str, pp_show_color (global_dc->printer));
2717 ++nattrs;
2718 }
2719 }
2720 }
2721
2722 if (!nattrs)
2723 return;
2724
2725 if (warning_at (DECL_SOURCE_LOCATION (spec), OPT_Wmissing_attributes,
2726 "explicit specialization %q#D may be missing attributes",
2727 spec))
2728 inform (DECL_SOURCE_LOCATION (tmpl),
2729 nattrs > 1
2730 ? G_("missing primary template attributes %s")
2731 : G_("missing primary template attribute %s"),
2732 pp_formatted_text (&str));
2733 }
2734
2735 /* Check to see if the function just declared, as indicated in
2736 DECLARATOR, and in DECL, is a specialization of a function
2737 template. We may also discover that the declaration is an explicit
2738 instantiation at this point.
2739
2740 Returns DECL, or an equivalent declaration that should be used
2741 instead if all goes well. Issues an error message if something is
2742 amiss. Returns error_mark_node if the error is not easily
2743 recoverable.
2744
2745 FLAGS is a bitmask consisting of the following flags:
2746
2747 2: The function has a definition.
2748 4: The function is a friend.
2749
2750 The TEMPLATE_COUNT is the number of references to qualifying
2751 template classes that appeared in the name of the function. For
2752 example, in
2753
2754 template <class T> struct S { void f(); };
2755 void S<int>::f();
2756
2757 the TEMPLATE_COUNT would be 1. However, explicitly specialized
2758 classes are not counted in the TEMPLATE_COUNT, so that in
2759
2760 template <class T> struct S {};
2761 template <> struct S<int> { void f(); }
2762 template <> void S<int>::f();
2763
2764 the TEMPLATE_COUNT would be 0. (Note that this declaration is
2765 invalid; there should be no template <>.)
2766
2767 If the function is a specialization, it is marked as such via
2768 DECL_TEMPLATE_SPECIALIZATION. Furthermore, its DECL_TEMPLATE_INFO
2769 is set up correctly, and it is added to the list of specializations
2770 for that template. */
2771
2772 tree
2773 check_explicit_specialization (tree declarator,
2774 tree decl,
2775 int template_count,
2776 int flags,
2777 tree attrlist)
2778 {
2779 int have_def = flags & 2;
2780 int is_friend = flags & 4;
2781 bool is_concept = flags & 8;
2782 int specialization = 0;
2783 int explicit_instantiation = 0;
2784 int member_specialization = 0;
2785 tree ctype = DECL_CLASS_CONTEXT (decl);
2786 tree dname = DECL_NAME (decl);
2787 tmpl_spec_kind tsk;
2788
2789 if (is_friend)
2790 {
2791 if (!processing_specialization)
2792 tsk = tsk_none;
2793 else
2794 tsk = tsk_excessive_parms;
2795 }
2796 else
2797 tsk = current_tmpl_spec_kind (template_count);
2798
2799 switch (tsk)
2800 {
2801 case tsk_none:
2802 if (processing_specialization && !VAR_P (decl))
2803 {
2804 specialization = 1;
2805 SET_DECL_TEMPLATE_SPECIALIZATION (decl);
2806 }
2807 else if (TREE_CODE (declarator) == TEMPLATE_ID_EXPR)
2808 {
2809 if (is_friend)
2810 /* This could be something like:
2811
2812 template <class T> void f(T);
2813 class S { friend void f<>(int); } */
2814 specialization = 1;
2815 else
2816 {
2817 /* This case handles bogus declarations like template <>
2818 template <class T> void f<int>(); */
2819
2820 error ("template-id %qD in declaration of primary template",
2821 declarator);
2822 return decl;
2823 }
2824 }
2825 break;
2826
2827 case tsk_invalid_member_spec:
2828 /* The error has already been reported in
2829 check_specialization_scope. */
2830 return error_mark_node;
2831
2832 case tsk_invalid_expl_inst:
2833 error ("template parameter list used in explicit instantiation");
2834
2835 /* Fall through. */
2836
2837 case tsk_expl_inst:
2838 if (have_def)
2839 error ("definition provided for explicit instantiation");
2840
2841 explicit_instantiation = 1;
2842 break;
2843
2844 case tsk_excessive_parms:
2845 case tsk_insufficient_parms:
2846 if (tsk == tsk_excessive_parms)
2847 error ("too many template parameter lists in declaration of %qD",
2848 decl);
2849 else if (template_header_count)
2850 error("too few template parameter lists in declaration of %qD", decl);
2851 else
2852 error("explicit specialization of %qD must be introduced by "
2853 "%<template <>%>", decl);
2854
2855 /* Fall through. */
2856 case tsk_expl_spec:
2857 if (is_concept)
2858 error ("explicit specialization declared %<concept%>");
2859
2860 if (VAR_P (decl) && TREE_CODE (declarator) != TEMPLATE_ID_EXPR)
2861 /* In cases like template<> constexpr bool v = true;
2862 We'll give an error in check_template_variable. */
2863 break;
2864
2865 SET_DECL_TEMPLATE_SPECIALIZATION (decl);
2866 if (ctype)
2867 member_specialization = 1;
2868 else
2869 specialization = 1;
2870 break;
2871
2872 case tsk_template:
2873 if (TREE_CODE (declarator) == TEMPLATE_ID_EXPR)
2874 {
2875 /* This case handles bogus declarations like template <>
2876 template <class T> void f<int>(); */
2877
2878 if (!uses_template_parms (declarator))
2879 error ("template-id %qD in declaration of primary template",
2880 declarator);
2881 else if (variable_template_p (TREE_OPERAND (declarator, 0)))
2882 {
2883 /* Partial specialization of variable template. */
2884 SET_DECL_TEMPLATE_SPECIALIZATION (decl);
2885 specialization = 1;
2886 goto ok;
2887 }
2888 else if (cxx_dialect < cxx14)
2889 error ("non-type partial specialization %qD "
2890 "is not allowed", declarator);
2891 else
2892 error ("non-class, non-variable partial specialization %qD "
2893 "is not allowed", declarator);
2894 return decl;
2895 ok:;
2896 }
2897
2898 if (ctype && CLASSTYPE_TEMPLATE_INSTANTIATION (ctype))
2899 /* This is a specialization of a member template, without
2900 specialization the containing class. Something like:
2901
2902 template <class T> struct S {
2903 template <class U> void f (U);
2904 };
2905 template <> template <class U> void S<int>::f(U) {}
2906
2907 That's a specialization -- but of the entire template. */
2908 specialization = 1;
2909 break;
2910
2911 default:
2912 gcc_unreachable ();
2913 }
2914
2915 if ((specialization || member_specialization)
2916 /* This doesn't apply to variable templates. */
2917 && (TREE_CODE (TREE_TYPE (decl)) == FUNCTION_TYPE
2918 || TREE_CODE (TREE_TYPE (decl)) == METHOD_TYPE))
2919 {
2920 tree t = TYPE_ARG_TYPES (TREE_TYPE (decl));
2921 for (; t; t = TREE_CHAIN (t))
2922 if (TREE_PURPOSE (t))
2923 {
2924 permerror (input_location,
2925 "default argument specified in explicit specialization");
2926 break;
2927 }
2928 }
2929
2930 if (specialization || member_specialization || explicit_instantiation)
2931 {
2932 tree tmpl = NULL_TREE;
2933 tree targs = NULL_TREE;
2934 bool was_template_id = (TREE_CODE (declarator) == TEMPLATE_ID_EXPR);
2935
2936 /* Make sure that the declarator is a TEMPLATE_ID_EXPR. */
2937 if (!was_template_id)
2938 {
2939 tree fns;
2940
2941 gcc_assert (identifier_p (declarator));
2942 if (ctype)
2943 fns = dname;
2944 else
2945 {
2946 /* If there is no class context, the explicit instantiation
2947 must be at namespace scope. */
2948 gcc_assert (DECL_NAMESPACE_SCOPE_P (decl));
2949
2950 /* Find the namespace binding, using the declaration
2951 context. */
2952 fns = lookup_qualified_name (CP_DECL_CONTEXT (decl), dname,
2953 false, true);
2954 if (fns == error_mark_node)
2955 /* If lookup fails, look for a friend declaration so we can
2956 give a better diagnostic. */
2957 fns = lookup_qualified_name (CP_DECL_CONTEXT (decl), dname,
2958 /*type*/false, /*complain*/true,
2959 /*hidden*/true);
2960
2961 if (fns == error_mark_node || !is_overloaded_fn (fns))
2962 {
2963 error ("%qD is not a template function", dname);
2964 fns = error_mark_node;
2965 }
2966 }
2967
2968 declarator = lookup_template_function (fns, NULL_TREE);
2969 }
2970
2971 if (declarator == error_mark_node)
2972 return error_mark_node;
2973
2974 if (ctype != NULL_TREE && TYPE_BEING_DEFINED (ctype))
2975 {
2976 if (!explicit_instantiation)
2977 /* A specialization in class scope. This is invalid,
2978 but the error will already have been flagged by
2979 check_specialization_scope. */
2980 return error_mark_node;
2981 else
2982 {
2983 /* It's not valid to write an explicit instantiation in
2984 class scope, e.g.:
2985
2986 class C { template void f(); }
2987
2988 This case is caught by the parser. However, on
2989 something like:
2990
2991 template class C { void f(); };
2992
2993 (which is invalid) we can get here. The error will be
2994 issued later. */
2995 ;
2996 }
2997
2998 return decl;
2999 }
3000 else if (ctype != NULL_TREE
3001 && (identifier_p (TREE_OPERAND (declarator, 0))))
3002 {
3003 // We'll match variable templates in start_decl.
3004 if (VAR_P (decl))
3005 return decl;
3006
3007 /* Find the list of functions in ctype that have the same
3008 name as the declared function. */
3009 tree name = TREE_OPERAND (declarator, 0);
3010
3011 if (constructor_name_p (name, ctype))
3012 {
3013 if (DECL_CONSTRUCTOR_P (decl)
3014 ? !TYPE_HAS_USER_CONSTRUCTOR (ctype)
3015 : !CLASSTYPE_DESTRUCTOR (ctype))
3016 {
3017 /* From [temp.expl.spec]:
3018
3019 If such an explicit specialization for the member
3020 of a class template names an implicitly-declared
3021 special member function (clause _special_), the
3022 program is ill-formed.
3023
3024 Similar language is found in [temp.explicit]. */
3025 error ("specialization of implicitly-declared special member function");
3026 return error_mark_node;
3027 }
3028
3029 name = DECL_NAME (decl);
3030 }
3031
3032 /* For a type-conversion operator, We might be looking for
3033 `operator int' which will be a specialization of
3034 `operator T'. Grab all the conversion operators, and
3035 then select from them. */
3036 tree fns = get_class_binding (ctype, IDENTIFIER_CONV_OP_P (name)
3037 ? conv_op_identifier : name);
3038
3039 if (fns == NULL_TREE)
3040 {
3041 error ("no member function %qD declared in %qT", name, ctype);
3042 return error_mark_node;
3043 }
3044 else
3045 TREE_OPERAND (declarator, 0) = fns;
3046 }
3047
3048 /* Figure out what exactly is being specialized at this point.
3049 Note that for an explicit instantiation, even one for a
3050 member function, we cannot tell a priori whether the
3051 instantiation is for a member template, or just a member
3052 function of a template class. Even if a member template is
3053 being instantiated, the member template arguments may be
3054 elided if they can be deduced from the rest of the
3055 declaration. */
3056 tmpl = determine_specialization (declarator, decl,
3057 &targs,
3058 member_specialization,
3059 template_count,
3060 tsk);
3061
3062 if (!tmpl || tmpl == error_mark_node)
3063 /* We couldn't figure out what this declaration was
3064 specializing. */
3065 return error_mark_node;
3066 else
3067 {
3068 if (TREE_CODE (decl) == FUNCTION_DECL
3069 && DECL_HIDDEN_FRIEND_P (tmpl))
3070 {
3071 if (pedwarn (DECL_SOURCE_LOCATION (decl), 0,
3072 "friend declaration %qD is not visible to "
3073 "explicit specialization", tmpl))
3074 inform (DECL_SOURCE_LOCATION (tmpl),
3075 "friend declaration here");
3076 }
3077 else if (!ctype && !is_friend
3078 && CP_DECL_CONTEXT (decl) == current_namespace)
3079 check_unqualified_spec_or_inst (tmpl, DECL_SOURCE_LOCATION (decl));
3080
3081 tree gen_tmpl = most_general_template (tmpl);
3082
3083 if (explicit_instantiation)
3084 {
3085 /* We don't set DECL_EXPLICIT_INSTANTIATION here; that
3086 is done by do_decl_instantiation later. */
3087
3088 int arg_depth = TMPL_ARGS_DEPTH (targs);
3089 int parm_depth = TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (tmpl));
3090
3091 if (arg_depth > parm_depth)
3092 {
3093 /* If TMPL is not the most general template (for
3094 example, if TMPL is a friend template that is
3095 injected into namespace scope), then there will
3096 be too many levels of TARGS. Remove some of them
3097 here. */
3098 int i;
3099 tree new_targs;
3100
3101 new_targs = make_tree_vec (parm_depth);
3102 for (i = arg_depth - parm_depth; i < arg_depth; ++i)
3103 TREE_VEC_ELT (new_targs, i - (arg_depth - parm_depth))
3104 = TREE_VEC_ELT (targs, i);
3105 targs = new_targs;
3106 }
3107
3108 return instantiate_template (tmpl, targs, tf_error);
3109 }
3110
3111 /* If we thought that the DECL was a member function, but it
3112 turns out to be specializing a static member function,
3113 make DECL a static member function as well. */
3114 if (DECL_FUNCTION_TEMPLATE_P (tmpl)
3115 && DECL_STATIC_FUNCTION_P (tmpl)
3116 && DECL_NONSTATIC_MEMBER_FUNCTION_P (decl))
3117 revert_static_member_fn (decl);
3118
3119 /* If this is a specialization of a member template of a
3120 template class, we want to return the TEMPLATE_DECL, not
3121 the specialization of it. */
3122 if (tsk == tsk_template && !was_template_id)
3123 {
3124 tree result = DECL_TEMPLATE_RESULT (tmpl);
3125 SET_DECL_TEMPLATE_SPECIALIZATION (tmpl);
3126 DECL_INITIAL (result) = NULL_TREE;
3127 if (have_def)
3128 {
3129 tree parm;
3130 DECL_SOURCE_LOCATION (tmpl) = DECL_SOURCE_LOCATION (decl);
3131 DECL_SOURCE_LOCATION (result)
3132 = DECL_SOURCE_LOCATION (decl);
3133 /* We want to use the argument list specified in the
3134 definition, not in the original declaration. */
3135 DECL_ARGUMENTS (result) = DECL_ARGUMENTS (decl);
3136 for (parm = DECL_ARGUMENTS (result); parm;
3137 parm = DECL_CHAIN (parm))
3138 DECL_CONTEXT (parm) = result;
3139 }
3140 return register_specialization (tmpl, gen_tmpl, targs,
3141 is_friend, 0);
3142 }
3143
3144 /* Set up the DECL_TEMPLATE_INFO for DECL. */
3145 DECL_TEMPLATE_INFO (decl) = build_template_info (tmpl, targs);
3146
3147 if (was_template_id)
3148 TINFO_USED_TEMPLATE_ID (DECL_TEMPLATE_INFO (decl)) = true;
3149
3150 /* Inherit default function arguments from the template
3151 DECL is specializing. */
3152 if (DECL_FUNCTION_TEMPLATE_P (tmpl))
3153 copy_default_args_to_explicit_spec (decl);
3154
3155 /* This specialization has the same protection as the
3156 template it specializes. */
3157 TREE_PRIVATE (decl) = TREE_PRIVATE (gen_tmpl);
3158 TREE_PROTECTED (decl) = TREE_PROTECTED (gen_tmpl);
3159
3160 /* 7.1.1-1 [dcl.stc]
3161
3162 A storage-class-specifier shall not be specified in an
3163 explicit specialization...
3164
3165 The parser rejects these, so unless action is taken here,
3166 explicit function specializations will always appear with
3167 global linkage.
3168
3169 The action recommended by the C++ CWG in response to C++
3170 defect report 605 is to make the storage class and linkage
3171 of the explicit specialization match the templated function:
3172
3173 http://www.open-std.org/jtc1/sc22/wg21/docs/cwg_active.html#605
3174 */
3175 if (tsk == tsk_expl_spec && DECL_FUNCTION_TEMPLATE_P (gen_tmpl))
3176 {
3177 tree tmpl_func = DECL_TEMPLATE_RESULT (gen_tmpl);
3178 gcc_assert (TREE_CODE (tmpl_func) == FUNCTION_DECL);
3179
3180 /* A concept cannot be specialized. */
3181 if (DECL_DECLARED_CONCEPT_P (tmpl_func))
3182 {
3183 error ("explicit specialization of function concept %qD",
3184 gen_tmpl);
3185 return error_mark_node;
3186 }
3187
3188 /* This specialization has the same linkage and visibility as
3189 the function template it specializes. */
3190 TREE_PUBLIC (decl) = TREE_PUBLIC (tmpl_func);
3191 if (! TREE_PUBLIC (decl))
3192 {
3193 DECL_INTERFACE_KNOWN (decl) = 1;
3194 DECL_NOT_REALLY_EXTERN (decl) = 1;
3195 }
3196 DECL_THIS_STATIC (decl) = DECL_THIS_STATIC (tmpl_func);
3197 if (DECL_VISIBILITY_SPECIFIED (tmpl_func))
3198 {
3199 DECL_VISIBILITY_SPECIFIED (decl) = 1;
3200 DECL_VISIBILITY (decl) = DECL_VISIBILITY (tmpl_func);
3201 }
3202 }
3203
3204 /* If DECL is a friend declaration, declared using an
3205 unqualified name, the namespace associated with DECL may
3206 have been set incorrectly. For example, in:
3207
3208 template <typename T> void f(T);
3209 namespace N {
3210 struct S { friend void f<int>(int); }
3211 }
3212
3213 we will have set the DECL_CONTEXT for the friend
3214 declaration to N, rather than to the global namespace. */
3215 if (DECL_NAMESPACE_SCOPE_P (decl))
3216 DECL_CONTEXT (decl) = DECL_CONTEXT (tmpl);
3217
3218 if (is_friend && !have_def)
3219 /* This is not really a declaration of a specialization.
3220 It's just the name of an instantiation. But, it's not
3221 a request for an instantiation, either. */
3222 SET_DECL_IMPLICIT_INSTANTIATION (decl);
3223 else if (TREE_CODE (decl) == FUNCTION_DECL)
3224 /* A specialization is not necessarily COMDAT. */
3225 DECL_COMDAT (decl) = (TREE_PUBLIC (decl)
3226 && DECL_DECLARED_INLINE_P (decl));
3227 else if (VAR_P (decl))
3228 DECL_COMDAT (decl) = false;
3229
3230 /* If this is a full specialization, register it so that we can find
3231 it again. Partial specializations will be registered in
3232 process_partial_specialization. */
3233 if (!processing_template_decl)
3234 {
3235 warn_spec_missing_attributes (gen_tmpl, decl, attrlist);
3236
3237 decl = register_specialization (decl, gen_tmpl, targs,
3238 is_friend, 0);
3239 }
3240
3241
3242 /* A 'structor should already have clones. */
3243 gcc_assert (decl == error_mark_node
3244 || variable_template_p (tmpl)
3245 || !(DECL_CONSTRUCTOR_P (decl)
3246 || DECL_DESTRUCTOR_P (decl))
3247 || DECL_CLONED_FUNCTION_P (DECL_CHAIN (decl)));
3248 }
3249 }
3250
3251 return decl;
3252 }
3253
3254 /* Returns 1 iff PARMS1 and PARMS2 are identical sets of template
3255 parameters. These are represented in the same format used for
3256 DECL_TEMPLATE_PARMS. */
3257
3258 int
3259 comp_template_parms (const_tree parms1, const_tree parms2)
3260 {
3261 const_tree p1;
3262 const_tree p2;
3263
3264 if (parms1 == parms2)
3265 return 1;
3266
3267 for (p1 = parms1, p2 = parms2;
3268 p1 != NULL_TREE && p2 != NULL_TREE;
3269 p1 = TREE_CHAIN (p1), p2 = TREE_CHAIN (p2))
3270 {
3271 tree t1 = TREE_VALUE (p1);
3272 tree t2 = TREE_VALUE (p2);
3273 int i;
3274
3275 gcc_assert (TREE_CODE (t1) == TREE_VEC);
3276 gcc_assert (TREE_CODE (t2) == TREE_VEC);
3277
3278 if (TREE_VEC_LENGTH (t1) != TREE_VEC_LENGTH (t2))
3279 return 0;
3280
3281 for (i = 0; i < TREE_VEC_LENGTH (t2); ++i)
3282 {
3283 tree parm1 = TREE_VALUE (TREE_VEC_ELT (t1, i));
3284 tree parm2 = TREE_VALUE (TREE_VEC_ELT (t2, i));
3285
3286 /* If either of the template parameters are invalid, assume
3287 they match for the sake of error recovery. */
3288 if (error_operand_p (parm1) || error_operand_p (parm2))
3289 return 1;
3290
3291 if (TREE_CODE (parm1) != TREE_CODE (parm2))
3292 return 0;
3293
3294 if (TREE_CODE (parm1) == TEMPLATE_TYPE_PARM
3295 && (TEMPLATE_TYPE_PARAMETER_PACK (parm1)
3296 == TEMPLATE_TYPE_PARAMETER_PACK (parm2)))
3297 continue;
3298 else if (!same_type_p (TREE_TYPE (parm1), TREE_TYPE (parm2)))
3299 return 0;
3300 }
3301 }
3302
3303 if ((p1 != NULL_TREE) != (p2 != NULL_TREE))
3304 /* One set of parameters has more parameters lists than the
3305 other. */
3306 return 0;
3307
3308 return 1;
3309 }
3310
3311 /* Determine whether PARM is a parameter pack. */
3312
3313 bool
3314 template_parameter_pack_p (const_tree parm)
3315 {
3316 /* Determine if we have a non-type template parameter pack. */
3317 if (TREE_CODE (parm) == PARM_DECL)
3318 return (DECL_TEMPLATE_PARM_P (parm)
3319 && TEMPLATE_PARM_PARAMETER_PACK (DECL_INITIAL (parm)));
3320 if (TREE_CODE (parm) == TEMPLATE_PARM_INDEX)
3321 return TEMPLATE_PARM_PARAMETER_PACK (parm);
3322
3323 /* If this is a list of template parameters, we could get a
3324 TYPE_DECL or a TEMPLATE_DECL. */
3325 if (TREE_CODE (parm) == TYPE_DECL || TREE_CODE (parm) == TEMPLATE_DECL)
3326 parm = TREE_TYPE (parm);
3327
3328 /* Otherwise it must be a type template parameter. */
3329 return ((TREE_CODE (parm) == TEMPLATE_TYPE_PARM
3330 || TREE_CODE (parm) == TEMPLATE_TEMPLATE_PARM)
3331 && TEMPLATE_TYPE_PARAMETER_PACK (parm));
3332 }
3333
3334 /* Determine if T is a function parameter pack. */
3335
3336 bool
3337 function_parameter_pack_p (const_tree t)
3338 {
3339 if (t && TREE_CODE (t) == PARM_DECL)
3340 return DECL_PACK_P (t);
3341 return false;
3342 }
3343
3344 /* Return the function template declaration of PRIMARY_FUNC_TMPL_INST.
3345 PRIMARY_FUNC_TMPL_INST is a primary function template instantiation. */
3346
3347 tree
3348 get_function_template_decl (const_tree primary_func_tmpl_inst)
3349 {
3350 if (! primary_func_tmpl_inst
3351 || TREE_CODE (primary_func_tmpl_inst) != FUNCTION_DECL
3352 || ! primary_template_specialization_p (primary_func_tmpl_inst))
3353 return NULL;
3354
3355 return DECL_TEMPLATE_RESULT (DECL_TI_TEMPLATE (primary_func_tmpl_inst));
3356 }
3357
3358 /* Return true iff the function parameter PARAM_DECL was expanded
3359 from the function parameter pack PACK. */
3360
3361 bool
3362 function_parameter_expanded_from_pack_p (tree param_decl, tree pack)
3363 {
3364 if (DECL_ARTIFICIAL (param_decl)
3365 || !function_parameter_pack_p (pack))
3366 return false;
3367
3368 /* The parameter pack and its pack arguments have the same
3369 DECL_PARM_INDEX. */
3370 return DECL_PARM_INDEX (pack) == DECL_PARM_INDEX (param_decl);
3371 }
3372
3373 /* Determine whether ARGS describes a variadic template args list,
3374 i.e., one that is terminated by a template argument pack. */
3375
3376 static bool
3377 template_args_variadic_p (tree args)
3378 {
3379 int nargs;
3380 tree last_parm;
3381
3382 if (args == NULL_TREE)
3383 return false;
3384
3385 args = INNERMOST_TEMPLATE_ARGS (args);
3386 nargs = TREE_VEC_LENGTH (args);
3387
3388 if (nargs == 0)
3389 return false;
3390
3391 last_parm = TREE_VEC_ELT (args, nargs - 1);
3392
3393 return ARGUMENT_PACK_P (last_parm);
3394 }
3395
3396 /* Generate a new name for the parameter pack name NAME (an
3397 IDENTIFIER_NODE) that incorporates its */
3398
3399 static tree
3400 make_ith_pack_parameter_name (tree name, int i)
3401 {
3402 /* Munge the name to include the parameter index. */
3403 #define NUMBUF_LEN 128
3404 char numbuf[NUMBUF_LEN];
3405 char* newname;
3406 int newname_len;
3407
3408 if (name == NULL_TREE)
3409 return name;
3410 snprintf (numbuf, NUMBUF_LEN, "%i", i);
3411 newname_len = IDENTIFIER_LENGTH (name)
3412 + strlen (numbuf) + 2;
3413 newname = (char*)alloca (newname_len);
3414 snprintf (newname, newname_len,
3415 "%s#%i", IDENTIFIER_POINTER (name), i);
3416 return get_identifier (newname);
3417 }
3418
3419 /* Return true if T is a primary function, class or alias template
3420 specialization, not including the template pattern. */
3421
3422 bool
3423 primary_template_specialization_p (const_tree t)
3424 {
3425 if (!t)
3426 return false;
3427
3428 if (TREE_CODE (t) == FUNCTION_DECL || VAR_P (t))
3429 return (DECL_LANG_SPECIFIC (t)
3430 && DECL_USE_TEMPLATE (t)
3431 && DECL_TEMPLATE_INFO (t)
3432 && PRIMARY_TEMPLATE_P (DECL_TI_TEMPLATE (t)));
3433 else if (CLASS_TYPE_P (t) && !TYPE_DECL_ALIAS_P (TYPE_NAME (t)))
3434 return (CLASSTYPE_TEMPLATE_INFO (t)
3435 && CLASSTYPE_USE_TEMPLATE (t)
3436 && PRIMARY_TEMPLATE_P (CLASSTYPE_TI_TEMPLATE (t)));
3437 else if (alias_template_specialization_p (t))
3438 return true;
3439 return false;
3440 }
3441
3442 /* Return true if PARM is a template template parameter. */
3443
3444 bool
3445 template_template_parameter_p (const_tree parm)
3446 {
3447 return DECL_TEMPLATE_TEMPLATE_PARM_P (parm);
3448 }
3449
3450 /* Return true iff PARM is a DECL representing a type template
3451 parameter. */
3452
3453 bool
3454 template_type_parameter_p (const_tree parm)
3455 {
3456 return (parm
3457 && (TREE_CODE (parm) == TYPE_DECL
3458 || TREE_CODE (parm) == TEMPLATE_DECL)
3459 && DECL_TEMPLATE_PARM_P (parm));
3460 }
3461
3462 /* Return the template parameters of T if T is a
3463 primary template instantiation, NULL otherwise. */
3464
3465 tree
3466 get_primary_template_innermost_parameters (const_tree t)
3467 {
3468 tree parms = NULL, template_info = NULL;
3469
3470 if ((template_info = get_template_info (t))
3471 && primary_template_specialization_p (t))
3472 parms = INNERMOST_TEMPLATE_PARMS
3473 (DECL_TEMPLATE_PARMS (TI_TEMPLATE (template_info)));
3474
3475 return parms;
3476 }
3477
3478 /* Return the template parameters of the LEVELth level from the full list
3479 of template parameters PARMS. */
3480
3481 tree
3482 get_template_parms_at_level (tree parms, int level)
3483 {
3484 tree p;
3485 if (!parms
3486 || TREE_CODE (parms) != TREE_LIST
3487 || level > TMPL_PARMS_DEPTH (parms))
3488 return NULL_TREE;
3489
3490 for (p = parms; p; p = TREE_CHAIN (p))
3491 if (TMPL_PARMS_DEPTH (p) == level)
3492 return p;
3493
3494 return NULL_TREE;
3495 }
3496
3497 /* Returns the template arguments of T if T is a template instantiation,
3498 NULL otherwise. */
3499
3500 tree
3501 get_template_innermost_arguments (const_tree t)
3502 {
3503 tree args = NULL, template_info = NULL;
3504
3505 if ((template_info = get_template_info (t))
3506 && TI_ARGS (template_info))
3507 args = INNERMOST_TEMPLATE_ARGS (TI_ARGS (template_info));
3508
3509 return args;
3510 }
3511
3512 /* Return the argument pack elements of T if T is a template argument pack,
3513 NULL otherwise. */
3514
3515 tree
3516 get_template_argument_pack_elems (const_tree t)
3517 {
3518 if (TREE_CODE (t) != TYPE_ARGUMENT_PACK
3519 && TREE_CODE (t) != NONTYPE_ARGUMENT_PACK)
3520 return NULL;
3521
3522 return ARGUMENT_PACK_ARGS (t);
3523 }
3524
3525 /* In an ARGUMENT_PACK_SELECT, the actual underlying argument that the
3526 ARGUMENT_PACK_SELECT represents. */
3527
3528 static tree
3529 argument_pack_select_arg (tree t)
3530 {
3531 tree args = ARGUMENT_PACK_ARGS (ARGUMENT_PACK_SELECT_FROM_PACK (t));
3532 tree arg = TREE_VEC_ELT (args, ARGUMENT_PACK_SELECT_INDEX (t));
3533
3534 /* If the selected argument is an expansion E, that most likely means we were
3535 called from gen_elem_of_pack_expansion_instantiation during the
3536 substituting of an argument pack (of which the Ith element is a pack
3537 expansion, where I is ARGUMENT_PACK_SELECT_INDEX) into a pack expansion.
3538 In this case, the Ith element resulting from this substituting is going to
3539 be a pack expansion, which pattern is the pattern of E. Let's return the
3540 pattern of E, and gen_elem_of_pack_expansion_instantiation will build the
3541 resulting pack expansion from it. */
3542 if (PACK_EXPANSION_P (arg))
3543 {
3544 /* Make sure we aren't throwing away arg info. */
3545 gcc_assert (!PACK_EXPANSION_EXTRA_ARGS (arg));
3546 arg = PACK_EXPANSION_PATTERN (arg);
3547 }
3548
3549 return arg;
3550 }
3551
3552
3553 /* True iff FN is a function representing a built-in variadic parameter
3554 pack. */
3555
3556 bool
3557 builtin_pack_fn_p (tree fn)
3558 {
3559 if (!fn
3560 || TREE_CODE (fn) != FUNCTION_DECL
3561 || !DECL_IS_BUILTIN (fn))
3562 return false;
3563
3564 if (id_equal (DECL_NAME (fn), "__integer_pack"))
3565 return true;
3566
3567 return false;
3568 }
3569
3570 /* True iff CALL is a call to a function representing a built-in variadic
3571 parameter pack. */
3572
3573 static bool
3574 builtin_pack_call_p (tree call)
3575 {
3576 if (TREE_CODE (call) != CALL_EXPR)
3577 return false;
3578 return builtin_pack_fn_p (CALL_EXPR_FN (call));
3579 }
3580
3581 /* Return a TREE_VEC for the expansion of __integer_pack(HI). */
3582
3583 static tree
3584 expand_integer_pack (tree call, tree args, tsubst_flags_t complain,
3585 tree in_decl)
3586 {
3587 tree ohi = CALL_EXPR_ARG (call, 0);
3588 tree hi = tsubst_copy_and_build (ohi, args, complain, in_decl,
3589 false/*fn*/, true/*int_cst*/);
3590
3591 if (value_dependent_expression_p (hi))
3592 {
3593 if (hi != ohi)
3594 {
3595 call = copy_node (call);
3596 CALL_EXPR_ARG (call, 0) = hi;
3597 }
3598 tree ex = make_pack_expansion (call, complain);
3599 tree vec = make_tree_vec (1);
3600 TREE_VEC_ELT (vec, 0) = ex;
3601 return vec;
3602 }
3603 else
3604 {
3605 hi = cxx_constant_value (hi);
3606 int len = valid_constant_size_p (hi) ? tree_to_shwi (hi) : -1;
3607
3608 /* Calculate the largest value of len that won't make the size of the vec
3609 overflow an int. The compiler will exceed resource limits long before
3610 this, but it seems a decent place to diagnose. */
3611 int max = ((INT_MAX - sizeof (tree_vec)) / sizeof (tree)) + 1;
3612
3613 if (len < 0 || len > max)
3614 {
3615 if ((complain & tf_error)
3616 && hi != error_mark_node)
3617 error ("argument to __integer_pack must be between 0 and %d", max);
3618 return error_mark_node;
3619 }
3620
3621 tree vec = make_tree_vec (len);
3622
3623 for (int i = 0; i < len; ++i)
3624 TREE_VEC_ELT (vec, i) = size_int (i);
3625
3626 return vec;
3627 }
3628 }
3629
3630 /* Return a TREE_VEC for the expansion of built-in template parameter pack
3631 CALL. */
3632
3633 static tree
3634 expand_builtin_pack_call (tree call, tree args, tsubst_flags_t complain,
3635 tree in_decl)
3636 {
3637 if (!builtin_pack_call_p (call))
3638 return NULL_TREE;
3639
3640 tree fn = CALL_EXPR_FN (call);
3641
3642 if (id_equal (DECL_NAME (fn), "__integer_pack"))
3643 return expand_integer_pack (call, args, complain, in_decl);
3644
3645 return NULL_TREE;
3646 }
3647
3648 /* Structure used to track the progress of find_parameter_packs_r. */
3649 struct find_parameter_pack_data
3650 {
3651 /* TREE_LIST that will contain all of the parameter packs found by
3652 the traversal. */
3653 tree* parameter_packs;
3654
3655 /* Set of AST nodes that have been visited by the traversal. */
3656 hash_set<tree> *visited;
3657
3658 /* True iff we're making a type pack expansion. */
3659 bool type_pack_expansion_p;
3660 };
3661
3662 /* Identifies all of the argument packs that occur in a template
3663 argument and appends them to the TREE_LIST inside DATA, which is a
3664 find_parameter_pack_data structure. This is a subroutine of
3665 make_pack_expansion and uses_parameter_packs. */
3666 static tree
3667 find_parameter_packs_r (tree *tp, int *walk_subtrees, void* data)
3668 {
3669 tree t = *tp;
3670 struct find_parameter_pack_data* ppd =
3671 (struct find_parameter_pack_data*)data;
3672 bool parameter_pack_p = false;
3673
3674 /* Handle type aliases/typedefs. */
3675 if (TYPE_ALIAS_P (t))
3676 {
3677 if (tree tinfo = TYPE_ALIAS_TEMPLATE_INFO (t))
3678 cp_walk_tree (&TI_ARGS (tinfo),
3679 &find_parameter_packs_r,
3680 ppd, ppd->visited);
3681 *walk_subtrees = 0;
3682 return NULL_TREE;
3683 }
3684
3685 /* Identify whether this is a parameter pack or not. */
3686 switch (TREE_CODE (t))
3687 {
3688 case TEMPLATE_PARM_INDEX:
3689 if (TEMPLATE_PARM_PARAMETER_PACK (t))
3690 parameter_pack_p = true;
3691 break;
3692
3693 case TEMPLATE_TYPE_PARM:
3694 t = TYPE_MAIN_VARIANT (t);
3695 /* FALLTHRU */
3696 case TEMPLATE_TEMPLATE_PARM:
3697 /* If the placeholder appears in the decl-specifier-seq of a function
3698 parameter pack (14.6.3), or the type-specifier-seq of a type-id that
3699 is a pack expansion, the invented template parameter is a template
3700 parameter pack. */
3701 if (ppd->type_pack_expansion_p && is_auto (t))
3702 TEMPLATE_TYPE_PARAMETER_PACK (t) = true;
3703 if (TEMPLATE_TYPE_PARAMETER_PACK (t))
3704 parameter_pack_p = true;
3705 break;
3706
3707 case FIELD_DECL:
3708 case PARM_DECL:
3709 if (DECL_PACK_P (t))
3710 {
3711 /* We don't want to walk into the type of a PARM_DECL,
3712 because we don't want to see the type parameter pack. */
3713 *walk_subtrees = 0;
3714 parameter_pack_p = true;
3715 }
3716 break;
3717
3718 case VAR_DECL:
3719 if (DECL_PACK_P (t))
3720 {
3721 /* We don't want to walk into the type of a variadic capture proxy,
3722 because we don't want to see the type parameter pack. */
3723 *walk_subtrees = 0;
3724 parameter_pack_p = true;
3725 }
3726 else if (variable_template_specialization_p (t))
3727 {
3728 cp_walk_tree (&DECL_TI_ARGS (t),
3729 find_parameter_packs_r,
3730 ppd, ppd->visited);
3731 *walk_subtrees = 0;
3732 }
3733 break;
3734
3735 case CALL_EXPR:
3736 if (builtin_pack_call_p (t))
3737 parameter_pack_p = true;
3738 break;
3739
3740 case BASES:
3741 parameter_pack_p = true;
3742 break;
3743 default:
3744 /* Not a parameter pack. */
3745 break;
3746 }
3747
3748 if (parameter_pack_p)
3749 {
3750 /* Add this parameter pack to the list. */
3751 *ppd->parameter_packs = tree_cons (NULL_TREE, t, *ppd->parameter_packs);
3752 }
3753
3754 if (TYPE_P (t))
3755 cp_walk_tree (&TYPE_CONTEXT (t),
3756 &find_parameter_packs_r, ppd, ppd->visited);
3757
3758 /* This switch statement will return immediately if we don't find a
3759 parameter pack. */
3760 switch (TREE_CODE (t))
3761 {
3762 case TEMPLATE_PARM_INDEX:
3763 return NULL_TREE;
3764
3765 case BOUND_TEMPLATE_TEMPLATE_PARM:
3766 /* Check the template itself. */
3767 cp_walk_tree (&TREE_TYPE (TYPE_TI_TEMPLATE (t)),
3768 &find_parameter_packs_r, ppd, ppd->visited);
3769 /* Check the template arguments. */
3770 cp_walk_tree (&TYPE_TI_ARGS (t), &find_parameter_packs_r, ppd,
3771 ppd->visited);
3772 *walk_subtrees = 0;
3773 return NULL_TREE;
3774
3775 case TEMPLATE_TYPE_PARM:
3776 case TEMPLATE_TEMPLATE_PARM:
3777 return NULL_TREE;
3778
3779 case PARM_DECL:
3780 return NULL_TREE;
3781
3782 case DECL_EXPR:
3783 /* Ignore the declaration of a capture proxy for a parameter pack. */
3784 if (is_capture_proxy (DECL_EXPR_DECL (t)))
3785 *walk_subtrees = 0;
3786 return NULL_TREE;
3787
3788 case RECORD_TYPE:
3789 if (TYPE_PTRMEMFUNC_P (t))
3790 return NULL_TREE;
3791 /* Fall through. */
3792
3793 case UNION_TYPE:
3794 case ENUMERAL_TYPE:
3795 if (TYPE_TEMPLATE_INFO (t))
3796 cp_walk_tree (&TYPE_TI_ARGS (t),
3797 &find_parameter_packs_r, ppd, ppd->visited);
3798
3799 *walk_subtrees = 0;
3800 return NULL_TREE;
3801
3802 case TEMPLATE_DECL:
3803 if (!DECL_TEMPLATE_TEMPLATE_PARM_P (t))
3804 return NULL_TREE;
3805 gcc_fallthrough();
3806
3807 case CONSTRUCTOR:
3808 cp_walk_tree (&TREE_TYPE (t),
3809 &find_parameter_packs_r, ppd, ppd->visited);
3810 return NULL_TREE;
3811
3812 case TYPENAME_TYPE:
3813 cp_walk_tree (&TYPENAME_TYPE_FULLNAME (t), &find_parameter_packs_r,
3814 ppd, ppd->visited);
3815 *walk_subtrees = 0;
3816 return NULL_TREE;
3817
3818 case TYPE_PACK_EXPANSION:
3819 case EXPR_PACK_EXPANSION:
3820 *walk_subtrees = 0;
3821 return NULL_TREE;
3822
3823 case INTEGER_TYPE:
3824 cp_walk_tree (&TYPE_MAX_VALUE (t), &find_parameter_packs_r,
3825 ppd, ppd->visited);
3826 *walk_subtrees = 0;
3827 return NULL_TREE;
3828
3829 case IDENTIFIER_NODE:
3830 cp_walk_tree (&TREE_TYPE (t), &find_parameter_packs_r, ppd,
3831 ppd->visited);
3832 *walk_subtrees = 0;
3833 return NULL_TREE;
3834
3835 case LAMBDA_EXPR:
3836 {
3837 /* Look at explicit captures. */
3838 for (tree cap = LAMBDA_EXPR_CAPTURE_LIST (t);
3839 cap; cap = TREE_CHAIN (cap))
3840 cp_walk_tree (&TREE_VALUE (cap), &find_parameter_packs_r, ppd,
3841 ppd->visited);
3842 /* Since we defer implicit capture, look in the body as well. */
3843 tree fn = lambda_function (t);
3844 cp_walk_tree (&DECL_SAVED_TREE (fn), &find_parameter_packs_r, ppd,
3845 ppd->visited);
3846 *walk_subtrees = 0;
3847 return NULL_TREE;
3848 }
3849
3850 case DECLTYPE_TYPE:
3851 {
3852 /* When traversing a DECLTYPE_TYPE_EXPR, we need to set
3853 type_pack_expansion_p to false so that any placeholders
3854 within the expression don't get marked as parameter packs. */
3855 bool type_pack_expansion_p = ppd->type_pack_expansion_p;
3856 ppd->type_pack_expansion_p = false;
3857 cp_walk_tree (&DECLTYPE_TYPE_EXPR (t), &find_parameter_packs_r,
3858 ppd, ppd->visited);
3859 ppd->type_pack_expansion_p = type_pack_expansion_p;
3860 *walk_subtrees = 0;
3861 return NULL_TREE;
3862 }
3863
3864 default:
3865 return NULL_TREE;
3866 }
3867
3868 return NULL_TREE;
3869 }
3870
3871 /* Determines if the expression or type T uses any parameter packs. */
3872 bool
3873 uses_parameter_packs (tree t)
3874 {
3875 tree parameter_packs = NULL_TREE;
3876 struct find_parameter_pack_data ppd;
3877 ppd.parameter_packs = &parameter_packs;
3878 ppd.visited = new hash_set<tree>;
3879 ppd.type_pack_expansion_p = false;
3880 cp_walk_tree (&t, &find_parameter_packs_r, &ppd, ppd.visited);
3881 delete ppd.visited;
3882 return parameter_packs != NULL_TREE;
3883 }
3884
3885 /* Turn ARG, which may be an expression, type, or a TREE_LIST
3886 representation a base-class initializer into a parameter pack
3887 expansion. If all goes well, the resulting node will be an
3888 EXPR_PACK_EXPANSION, TYPE_PACK_EXPANSION, or TREE_LIST,
3889 respectively. */
3890 tree
3891 make_pack_expansion (tree arg, tsubst_flags_t complain)
3892 {
3893 tree result;
3894 tree parameter_packs = NULL_TREE;
3895 bool for_types = false;
3896 struct find_parameter_pack_data ppd;
3897
3898 if (!arg || arg == error_mark_node)
3899 return arg;
3900
3901 if (TREE_CODE (arg) == TREE_LIST && TREE_PURPOSE (arg))
3902 {
3903 /* A TREE_LIST with a non-null TREE_PURPOSE is for a base
3904 class initializer. In this case, the TREE_PURPOSE will be a
3905 _TYPE node (representing the base class expansion we're
3906 initializing) and the TREE_VALUE will be a TREE_LIST
3907 containing the initialization arguments.
3908
3909 The resulting expansion looks somewhat different from most
3910 expansions. Rather than returning just one _EXPANSION, we
3911 return a TREE_LIST whose TREE_PURPOSE is a
3912 TYPE_PACK_EXPANSION containing the bases that will be
3913 initialized. The TREE_VALUE will be identical to the
3914 original TREE_VALUE, which is a list of arguments that will
3915 be passed to each base. We do not introduce any new pack
3916 expansion nodes into the TREE_VALUE (although it is possible
3917 that some already exist), because the TREE_PURPOSE and
3918 TREE_VALUE all need to be expanded together with the same
3919 _EXPANSION node. Note that the TYPE_PACK_EXPANSION in the
3920 resulting TREE_PURPOSE will mention the parameter packs in
3921 both the bases and the arguments to the bases. */
3922 tree purpose;
3923 tree value;
3924 tree parameter_packs = NULL_TREE;
3925
3926 /* Determine which parameter packs will be used by the base
3927 class expansion. */
3928 ppd.visited = new hash_set<tree>;
3929 ppd.parameter_packs = &parameter_packs;
3930 ppd.type_pack_expansion_p = true;
3931 gcc_assert (TYPE_P (TREE_PURPOSE (arg)));
3932 cp_walk_tree (&TREE_PURPOSE (arg), &find_parameter_packs_r,
3933 &ppd, ppd.visited);
3934
3935 if (parameter_packs == NULL_TREE)
3936 {
3937 if (complain & tf_error)
3938 error ("base initializer expansion %qT contains no parameter packs",
3939 arg);
3940 delete ppd.visited;
3941 return error_mark_node;
3942 }
3943
3944 if (TREE_VALUE (arg) != void_type_node)
3945 {
3946 /* Collect the sets of parameter packs used in each of the
3947 initialization arguments. */
3948 for (value = TREE_VALUE (arg); value; value = TREE_CHAIN (value))
3949 {
3950 /* Determine which parameter packs will be expanded in this
3951 argument. */
3952 cp_walk_tree (&TREE_VALUE (value), &find_parameter_packs_r,
3953 &ppd, ppd.visited);
3954 }
3955 }
3956
3957 delete ppd.visited;
3958
3959 /* Create the pack expansion type for the base type. */
3960 purpose = cxx_make_type (TYPE_PACK_EXPANSION);
3961 SET_PACK_EXPANSION_PATTERN (purpose, TREE_PURPOSE (arg));
3962 PACK_EXPANSION_PARAMETER_PACKS (purpose) = parameter_packs;
3963 PACK_EXPANSION_LOCAL_P (purpose) = at_function_scope_p ();
3964
3965 /* Just use structural equality for these TYPE_PACK_EXPANSIONS;
3966 they will rarely be compared to anything. */
3967 SET_TYPE_STRUCTURAL_EQUALITY (purpose);
3968
3969 return tree_cons (purpose, TREE_VALUE (arg), NULL_TREE);
3970 }
3971
3972 if (TYPE_P (arg) || TREE_CODE (arg) == TEMPLATE_DECL)
3973 for_types = true;
3974
3975 /* Build the PACK_EXPANSION_* node. */
3976 result = for_types
3977 ? cxx_make_type (TYPE_PACK_EXPANSION)
3978 : make_node (EXPR_PACK_EXPANSION);
3979 SET_PACK_EXPANSION_PATTERN (result, arg);
3980 if (TREE_CODE (result) == EXPR_PACK_EXPANSION)
3981 {
3982 /* Propagate type and const-expression information. */
3983 TREE_TYPE (result) = TREE_TYPE (arg);
3984 TREE_CONSTANT (result) = TREE_CONSTANT (arg);
3985 /* Mark this read now, since the expansion might be length 0. */
3986 mark_exp_read (arg);
3987 }
3988 else
3989 /* Just use structural equality for these TYPE_PACK_EXPANSIONS;
3990 they will rarely be compared to anything. */
3991 SET_TYPE_STRUCTURAL_EQUALITY (result);
3992
3993 /* Determine which parameter packs will be expanded. */
3994 ppd.parameter_packs = &parameter_packs;
3995 ppd.visited = new hash_set<tree>;
3996 ppd.type_pack_expansion_p = TYPE_P (arg);
3997 cp_walk_tree (&arg, &find_parameter_packs_r, &ppd, ppd.visited);
3998 delete ppd.visited;
3999
4000 /* Make sure we found some parameter packs. */
4001 if (parameter_packs == NULL_TREE)
4002 {
4003 if (complain & tf_error)
4004 {
4005 if (TYPE_P (arg))
4006 error ("expansion pattern %qT contains no parameter packs", arg);
4007 else
4008 error ("expansion pattern %qE contains no parameter packs", arg);
4009 }
4010 return error_mark_node;
4011 }
4012 PACK_EXPANSION_PARAMETER_PACKS (result) = parameter_packs;
4013
4014 PACK_EXPANSION_LOCAL_P (result) = at_function_scope_p ();
4015
4016 return result;
4017 }
4018
4019 /* Checks T for any "bare" parameter packs, which have not yet been
4020 expanded, and issues an error if any are found. This operation can
4021 only be done on full expressions or types (e.g., an expression
4022 statement, "if" condition, etc.), because we could have expressions like:
4023
4024 foo(f(g(h(args)))...)
4025
4026 where "args" is a parameter pack. check_for_bare_parameter_packs
4027 should not be called for the subexpressions args, h(args),
4028 g(h(args)), or f(g(h(args))), because we would produce erroneous
4029 error messages.
4030
4031 Returns TRUE and emits an error if there were bare parameter packs,
4032 returns FALSE otherwise. */
4033 bool
4034 check_for_bare_parameter_packs (tree t)
4035 {
4036 tree parameter_packs = NULL_TREE;
4037 struct find_parameter_pack_data ppd;
4038
4039 if (!processing_template_decl || !t || t == error_mark_node)
4040 return false;
4041
4042 /* A lambda might use a parameter pack from the containing context. */
4043 if (current_class_type && LAMBDA_TYPE_P (current_class_type)
4044 && CLASSTYPE_TEMPLATE_INFO (current_class_type))
4045 return false;
4046
4047 if (TREE_CODE (t) == TYPE_DECL)
4048 t = TREE_TYPE (t);
4049
4050 ppd.parameter_packs = &parameter_packs;
4051 ppd.visited = new hash_set<tree>;
4052 ppd.type_pack_expansion_p = false;
4053 cp_walk_tree (&t, &find_parameter_packs_r, &ppd, ppd.visited);
4054 delete ppd.visited;
4055
4056 if (parameter_packs)
4057 {
4058 location_t loc = EXPR_LOC_OR_LOC (t, input_location);
4059 error_at (loc, "parameter packs not expanded with %<...%>:");
4060 while (parameter_packs)
4061 {
4062 tree pack = TREE_VALUE (parameter_packs);
4063 tree name = NULL_TREE;
4064
4065 if (TREE_CODE (pack) == TEMPLATE_TYPE_PARM
4066 || TREE_CODE (pack) == TEMPLATE_TEMPLATE_PARM)
4067 name = TYPE_NAME (pack);
4068 else if (TREE_CODE (pack) == TEMPLATE_PARM_INDEX)
4069 name = DECL_NAME (TEMPLATE_PARM_DECL (pack));
4070 else if (TREE_CODE (pack) == CALL_EXPR)
4071 name = DECL_NAME (CALL_EXPR_FN (pack));
4072 else
4073 name = DECL_NAME (pack);
4074
4075 if (name)
4076 inform (loc, " %qD", name);
4077 else
4078 inform (loc, " <anonymous>");
4079
4080 parameter_packs = TREE_CHAIN (parameter_packs);
4081 }
4082
4083 return true;
4084 }
4085
4086 return false;
4087 }
4088
4089 /* Expand any parameter packs that occur in the template arguments in
4090 ARGS. */
4091 tree
4092 expand_template_argument_pack (tree args)
4093 {
4094 if (args == error_mark_node)
4095 return error_mark_node;
4096
4097 tree result_args = NULL_TREE;
4098 int in_arg, out_arg = 0, nargs = args ? TREE_VEC_LENGTH (args) : 0;
4099 int num_result_args = -1;
4100 int non_default_args_count = -1;
4101
4102 /* First, determine if we need to expand anything, and the number of
4103 slots we'll need. */
4104 for (in_arg = 0; in_arg < nargs; ++in_arg)
4105 {
4106 tree arg = TREE_VEC_ELT (args, in_arg);
4107 if (arg == NULL_TREE)
4108 return args;
4109 if (ARGUMENT_PACK_P (arg))
4110 {
4111 int num_packed = TREE_VEC_LENGTH (ARGUMENT_PACK_ARGS (arg));
4112 if (num_result_args < 0)
4113 num_result_args = in_arg + num_packed;
4114 else
4115 num_result_args += num_packed;
4116 }
4117 else
4118 {
4119 if (num_result_args >= 0)
4120 num_result_args++;
4121 }
4122 }
4123
4124 /* If no expansion is necessary, we're done. */
4125 if (num_result_args < 0)
4126 return args;
4127
4128 /* Expand arguments. */
4129 result_args = make_tree_vec (num_result_args);
4130 if (NON_DEFAULT_TEMPLATE_ARGS_COUNT (args))
4131 non_default_args_count =
4132 GET_NON_DEFAULT_TEMPLATE_ARGS_COUNT (args);
4133 for (in_arg = 0; in_arg < nargs; ++in_arg)
4134 {
4135 tree arg = TREE_VEC_ELT (args, in_arg);
4136 if (ARGUMENT_PACK_P (arg))
4137 {
4138 tree packed = ARGUMENT_PACK_ARGS (arg);
4139 int i, num_packed = TREE_VEC_LENGTH (packed);
4140 for (i = 0; i < num_packed; ++i, ++out_arg)
4141 TREE_VEC_ELT (result_args, out_arg) = TREE_VEC_ELT(packed, i);
4142 if (non_default_args_count > 0)
4143 non_default_args_count += num_packed - 1;
4144 }
4145 else
4146 {
4147 TREE_VEC_ELT (result_args, out_arg) = arg;
4148 ++out_arg;
4149 }
4150 }
4151 if (non_default_args_count >= 0)
4152 SET_NON_DEFAULT_TEMPLATE_ARGS_COUNT (result_args, non_default_args_count);
4153 return result_args;
4154 }
4155
4156 /* Checks if DECL shadows a template parameter.
4157
4158 [temp.local]: A template-parameter shall not be redeclared within its
4159 scope (including nested scopes).
4160
4161 Emits an error and returns TRUE if the DECL shadows a parameter,
4162 returns FALSE otherwise. */
4163
4164 bool
4165 check_template_shadow (tree decl)
4166 {
4167 tree olddecl;
4168
4169 /* If we're not in a template, we can't possibly shadow a template
4170 parameter. */
4171 if (!current_template_parms)
4172 return true;
4173
4174 /* Figure out what we're shadowing. */
4175 decl = OVL_FIRST (decl);
4176 olddecl = innermost_non_namespace_value (DECL_NAME (decl));
4177
4178 /* If there's no previous binding for this name, we're not shadowing
4179 anything, let alone a template parameter. */
4180 if (!olddecl)
4181 return true;
4182
4183 /* If we're not shadowing a template parameter, we're done. Note
4184 that OLDDECL might be an OVERLOAD (or perhaps even an
4185 ERROR_MARK), so we can't just blithely assume it to be a _DECL
4186 node. */
4187 if (!DECL_P (olddecl) || !DECL_TEMPLATE_PARM_P (olddecl))
4188 return true;
4189
4190 /* We check for decl != olddecl to avoid bogus errors for using a
4191 name inside a class. We check TPFI to avoid duplicate errors for
4192 inline member templates. */
4193 if (decl == olddecl
4194 || (DECL_TEMPLATE_PARM_P (decl)
4195 && TEMPLATE_PARMS_FOR_INLINE (current_template_parms)))
4196 return true;
4197
4198 /* Don't complain about the injected class name, as we've already
4199 complained about the class itself. */
4200 if (DECL_SELF_REFERENCE_P (decl))
4201 return false;
4202
4203 if (DECL_TEMPLATE_PARM_P (decl))
4204 error ("declaration of template parameter %q+D shadows "
4205 "template parameter", decl);
4206 else
4207 error ("declaration of %q+#D shadows template parameter", decl);
4208 inform (DECL_SOURCE_LOCATION (olddecl),
4209 "template parameter %qD declared here", olddecl);
4210 return false;
4211 }
4212
4213 /* Return a new TEMPLATE_PARM_INDEX with the indicated INDEX, LEVEL,
4214 ORIG_LEVEL, DECL, and TYPE. */
4215
4216 static tree
4217 build_template_parm_index (int index,
4218 int level,
4219 int orig_level,
4220 tree decl,
4221 tree type)
4222 {
4223 tree t = make_node (TEMPLATE_PARM_INDEX);
4224 TEMPLATE_PARM_IDX (t) = index;
4225 TEMPLATE_PARM_LEVEL (t) = level;
4226 TEMPLATE_PARM_ORIG_LEVEL (t) = orig_level;
4227 TEMPLATE_PARM_DECL (t) = decl;
4228 TREE_TYPE (t) = type;
4229 TREE_CONSTANT (t) = TREE_CONSTANT (decl);
4230 TREE_READONLY (t) = TREE_READONLY (decl);
4231
4232 return t;
4233 }
4234
4235 /* Find the canonical type parameter for the given template type
4236 parameter. Returns the canonical type parameter, which may be TYPE
4237 if no such parameter existed. */
4238
4239 static tree
4240 canonical_type_parameter (tree type)
4241 {
4242 tree list;
4243 int idx = TEMPLATE_TYPE_IDX (type);
4244 if (!canonical_template_parms)
4245 vec_alloc (canonical_template_parms, idx + 1);
4246
4247 if (canonical_template_parms->length () <= (unsigned) idx)
4248 vec_safe_grow_cleared (canonical_template_parms, idx + 1);
4249
4250 list = (*canonical_template_parms)[idx];
4251 while (list && !comptypes (type, TREE_VALUE (list), COMPARE_STRUCTURAL))
4252 list = TREE_CHAIN (list);
4253
4254 if (list)
4255 return TREE_VALUE (list);
4256 else
4257 {
4258 (*canonical_template_parms)[idx]
4259 = tree_cons (NULL_TREE, type, (*canonical_template_parms)[idx]);
4260 return type;
4261 }
4262 }
4263
4264 /* Return a TEMPLATE_PARM_INDEX, similar to INDEX, but whose
4265 TEMPLATE_PARM_LEVEL has been decreased by LEVELS. If such a
4266 TEMPLATE_PARM_INDEX already exists, it is returned; otherwise, a
4267 new one is created. */
4268
4269 static tree
4270 reduce_template_parm_level (tree index, tree type, int levels, tree args,
4271 tsubst_flags_t complain)
4272 {
4273 if (TEMPLATE_PARM_DESCENDANTS (index) == NULL_TREE
4274 || (TEMPLATE_PARM_LEVEL (TEMPLATE_PARM_DESCENDANTS (index))
4275 != TEMPLATE_PARM_LEVEL (index) - levels)
4276 || !same_type_p (type, TREE_TYPE (TEMPLATE_PARM_DESCENDANTS (index))))
4277 {
4278 tree orig_decl = TEMPLATE_PARM_DECL (index);
4279 tree decl, t;
4280
4281 decl = build_decl (DECL_SOURCE_LOCATION (orig_decl),
4282 TREE_CODE (orig_decl), DECL_NAME (orig_decl), type);
4283 TREE_CONSTANT (decl) = TREE_CONSTANT (orig_decl);
4284 TREE_READONLY (decl) = TREE_READONLY (orig_decl);
4285 DECL_ARTIFICIAL (decl) = 1;
4286 SET_DECL_TEMPLATE_PARM_P (decl);
4287
4288 t = build_template_parm_index (TEMPLATE_PARM_IDX (index),
4289 TEMPLATE_PARM_LEVEL (index) - levels,
4290 TEMPLATE_PARM_ORIG_LEVEL (index),
4291 decl, type);
4292 TEMPLATE_PARM_DESCENDANTS (index) = t;
4293 TEMPLATE_PARM_PARAMETER_PACK (t)
4294 = TEMPLATE_PARM_PARAMETER_PACK (index);
4295
4296 /* Template template parameters need this. */
4297 if (TREE_CODE (decl) == TEMPLATE_DECL)
4298 {
4299 DECL_TEMPLATE_RESULT (decl)
4300 = build_decl (DECL_SOURCE_LOCATION (decl),
4301 TYPE_DECL, DECL_NAME (decl), type);
4302 DECL_ARTIFICIAL (DECL_TEMPLATE_RESULT (decl)) = true;
4303 DECL_TEMPLATE_PARMS (decl) = tsubst_template_parms
4304 (DECL_TEMPLATE_PARMS (orig_decl), args, complain);
4305 }
4306 }
4307
4308 return TEMPLATE_PARM_DESCENDANTS (index);
4309 }
4310
4311 /* Process information from new template parameter PARM and append it
4312 to the LIST being built. This new parameter is a non-type
4313 parameter iff IS_NON_TYPE is true. This new parameter is a
4314 parameter pack iff IS_PARAMETER_PACK is true. The location of PARM
4315 is in PARM_LOC. */
4316
4317 tree
4318 process_template_parm (tree list, location_t parm_loc, tree parm,
4319 bool is_non_type, bool is_parameter_pack)
4320 {
4321 tree decl = 0;
4322 int idx = 0;
4323
4324 gcc_assert (TREE_CODE (parm) == TREE_LIST);
4325 tree defval = TREE_PURPOSE (parm);
4326 tree constr = TREE_TYPE (parm);
4327
4328 if (list)
4329 {
4330 tree p = tree_last (list);
4331
4332 if (p && TREE_VALUE (p) != error_mark_node)
4333 {
4334 p = TREE_VALUE (p);
4335 if (TREE_CODE (p) == TYPE_DECL || TREE_CODE (p) == TEMPLATE_DECL)
4336 idx = TEMPLATE_TYPE_IDX (TREE_TYPE (p));
4337 else
4338 idx = TEMPLATE_PARM_IDX (DECL_INITIAL (p));
4339 }
4340
4341 ++idx;
4342 }
4343
4344 if (is_non_type)
4345 {
4346 parm = TREE_VALUE (parm);
4347
4348 SET_DECL_TEMPLATE_PARM_P (parm);
4349
4350 if (TREE_TYPE (parm) != error_mark_node)
4351 {
4352 /* [temp.param]
4353
4354 The top-level cv-qualifiers on the template-parameter are
4355 ignored when determining its type. */
4356 TREE_TYPE (parm) = TYPE_MAIN_VARIANT (TREE_TYPE (parm));
4357 if (invalid_nontype_parm_type_p (TREE_TYPE (parm), 1))
4358 TREE_TYPE (parm) = error_mark_node;
4359 else if (uses_parameter_packs (TREE_TYPE (parm))
4360 && !is_parameter_pack
4361 /* If we're in a nested template parameter list, the template
4362 template parameter could be a parameter pack. */
4363 && processing_template_parmlist == 1)
4364 {
4365 /* This template parameter is not a parameter pack, but it
4366 should be. Complain about "bare" parameter packs. */
4367 check_for_bare_parameter_packs (TREE_TYPE (parm));
4368
4369 /* Recover by calling this a parameter pack. */
4370 is_parameter_pack = true;
4371 }
4372 }
4373
4374 /* A template parameter is not modifiable. */
4375 TREE_CONSTANT (parm) = 1;
4376 TREE_READONLY (parm) = 1;
4377 decl = build_decl (parm_loc,
4378 CONST_DECL, DECL_NAME (parm), TREE_TYPE (parm));
4379 TREE_CONSTANT (decl) = 1;
4380 TREE_READONLY (decl) = 1;
4381 DECL_INITIAL (parm) = DECL_INITIAL (decl)
4382 = build_template_parm_index (idx, processing_template_decl,
4383 processing_template_decl,
4384 decl, TREE_TYPE (parm));
4385
4386 TEMPLATE_PARM_PARAMETER_PACK (DECL_INITIAL (parm))
4387 = is_parameter_pack;
4388 }
4389 else
4390 {
4391 tree t;
4392 parm = TREE_VALUE (TREE_VALUE (parm));
4393
4394 if (parm && TREE_CODE (parm) == TEMPLATE_DECL)
4395 {
4396 t = cxx_make_type (TEMPLATE_TEMPLATE_PARM);
4397 /* This is for distinguishing between real templates and template
4398 template parameters */
4399 TREE_TYPE (parm) = t;
4400 TREE_TYPE (DECL_TEMPLATE_RESULT (parm)) = t;
4401 decl = parm;
4402 }
4403 else
4404 {
4405 t = cxx_make_type (TEMPLATE_TYPE_PARM);
4406 /* parm is either IDENTIFIER_NODE or NULL_TREE. */
4407 decl = build_decl (parm_loc,
4408 TYPE_DECL, parm, t);
4409 }
4410
4411 TYPE_NAME (t) = decl;
4412 TYPE_STUB_DECL (t) = decl;
4413 parm = decl;
4414 TEMPLATE_TYPE_PARM_INDEX (t)
4415 = build_template_parm_index (idx, processing_template_decl,
4416 processing_template_decl,
4417 decl, TREE_TYPE (parm));
4418 TEMPLATE_TYPE_PARAMETER_PACK (t) = is_parameter_pack;
4419 TYPE_CANONICAL (t) = canonical_type_parameter (t);
4420 }
4421 DECL_ARTIFICIAL (decl) = 1;
4422 SET_DECL_TEMPLATE_PARM_P (decl);
4423
4424 /* Build requirements for the type/template parameter.
4425 This must be done after SET_DECL_TEMPLATE_PARM_P or
4426 process_template_parm could fail. */
4427 tree reqs = finish_shorthand_constraint (parm, constr);
4428
4429 pushdecl (decl);
4430
4431 if (defval && TREE_CODE (defval) == OVERLOAD)
4432 lookup_keep (defval, true);
4433
4434 /* Build the parameter node linking the parameter declaration,
4435 its default argument (if any), and its constraints (if any). */
4436 parm = build_tree_list (defval, parm);
4437 TEMPLATE_PARM_CONSTRAINTS (parm) = reqs;
4438
4439 return chainon (list, parm);
4440 }
4441
4442 /* The end of a template parameter list has been reached. Process the
4443 tree list into a parameter vector, converting each parameter into a more
4444 useful form. Type parameters are saved as IDENTIFIER_NODEs, and others
4445 as PARM_DECLs. */
4446
4447 tree
4448 end_template_parm_list (tree parms)
4449 {
4450 int nparms;
4451 tree parm, next;
4452 tree saved_parmlist = make_tree_vec (list_length (parms));
4453
4454 /* Pop the dummy parameter level and add the real one. */
4455 current_template_parms = TREE_CHAIN (current_template_parms);
4456
4457 current_template_parms
4458 = tree_cons (size_int (processing_template_decl),
4459 saved_parmlist, current_template_parms);
4460
4461 for (parm = parms, nparms = 0; parm; parm = next, nparms++)
4462 {
4463 next = TREE_CHAIN (parm);
4464 TREE_VEC_ELT (saved_parmlist, nparms) = parm;
4465 TREE_CHAIN (parm) = NULL_TREE;
4466 }
4467
4468 --processing_template_parmlist;
4469
4470 return saved_parmlist;
4471 }
4472
4473 // Explicitly indicate the end of the template parameter list. We assume
4474 // that the current template parameters have been constructed and/or
4475 // managed explicitly, as when creating new template template parameters
4476 // from a shorthand constraint.
4477 void
4478 end_template_parm_list ()
4479 {
4480 --processing_template_parmlist;
4481 }
4482
4483 /* end_template_decl is called after a template declaration is seen. */
4484
4485 void
4486 end_template_decl (void)
4487 {
4488 reset_specialization ();
4489
4490 if (! processing_template_decl)
4491 return;
4492
4493 /* This matches the pushlevel in begin_template_parm_list. */
4494 finish_scope ();
4495
4496 --processing_template_decl;
4497 current_template_parms = TREE_CHAIN (current_template_parms);
4498 }
4499
4500 /* Takes a TREE_LIST representing a template parameter and convert it
4501 into an argument suitable to be passed to the type substitution
4502 functions. Note that If the TREE_LIST contains an error_mark
4503 node, the returned argument is error_mark_node. */
4504
4505 tree
4506 template_parm_to_arg (tree t)
4507 {
4508
4509 if (t == NULL_TREE
4510 || TREE_CODE (t) != TREE_LIST)
4511 return t;
4512
4513 if (error_operand_p (TREE_VALUE (t)))
4514 return error_mark_node;
4515
4516 t = TREE_VALUE (t);
4517
4518 if (TREE_CODE (t) == TYPE_DECL
4519 || TREE_CODE (t) == TEMPLATE_DECL)
4520 {
4521 t = TREE_TYPE (t);
4522
4523 if (TEMPLATE_TYPE_PARAMETER_PACK (t))
4524 {
4525 /* Turn this argument into a TYPE_ARGUMENT_PACK
4526 with a single element, which expands T. */
4527 tree vec = make_tree_vec (1);
4528 if (CHECKING_P)
4529 SET_NON_DEFAULT_TEMPLATE_ARGS_COUNT (vec, TREE_VEC_LENGTH (vec));
4530
4531 TREE_VEC_ELT (vec, 0) = make_pack_expansion (t);
4532
4533 t = cxx_make_type (TYPE_ARGUMENT_PACK);
4534 SET_ARGUMENT_PACK_ARGS (t, vec);
4535 }
4536 }
4537 else
4538 {
4539 t = DECL_INITIAL (t);
4540
4541 if (TEMPLATE_PARM_PARAMETER_PACK (t))
4542 {
4543 /* Turn this argument into a NONTYPE_ARGUMENT_PACK
4544 with a single element, which expands T. */
4545 tree vec = make_tree_vec (1);
4546 if (CHECKING_P)
4547 SET_NON_DEFAULT_TEMPLATE_ARGS_COUNT (vec, TREE_VEC_LENGTH (vec));
4548
4549 t = convert_from_reference (t);
4550 TREE_VEC_ELT (vec, 0) = make_pack_expansion (t);
4551
4552 t = make_node (NONTYPE_ARGUMENT_PACK);
4553 SET_ARGUMENT_PACK_ARGS (t, vec);
4554 }
4555 else
4556 t = convert_from_reference (t);
4557 }
4558 return t;
4559 }
4560
4561 /* Given a single level of template parameters (a TREE_VEC), return it
4562 as a set of template arguments. */
4563
4564 static tree
4565 template_parms_level_to_args (tree parms)
4566 {
4567 tree a = copy_node (parms);
4568 TREE_TYPE (a) = NULL_TREE;
4569 for (int i = TREE_VEC_LENGTH (a) - 1; i >= 0; --i)
4570 TREE_VEC_ELT (a, i) = template_parm_to_arg (TREE_VEC_ELT (a, i));
4571
4572 if (CHECKING_P)
4573 SET_NON_DEFAULT_TEMPLATE_ARGS_COUNT (a, TREE_VEC_LENGTH (a));
4574
4575 return a;
4576 }
4577
4578 /* Given a set of template parameters, return them as a set of template
4579 arguments. The template parameters are represented as a TREE_VEC, in
4580 the form documented in cp-tree.h for template arguments. */
4581
4582 static tree
4583 template_parms_to_args (tree parms)
4584 {
4585 tree header;
4586 tree args = NULL_TREE;
4587 int length = TMPL_PARMS_DEPTH (parms);
4588 int l = length;
4589
4590 /* If there is only one level of template parameters, we do not
4591 create a TREE_VEC of TREE_VECs. Instead, we return a single
4592 TREE_VEC containing the arguments. */
4593 if (length > 1)
4594 args = make_tree_vec (length);
4595
4596 for (header = parms; header; header = TREE_CHAIN (header))
4597 {
4598 tree a = template_parms_level_to_args (TREE_VALUE (header));
4599
4600 if (length > 1)
4601 TREE_VEC_ELT (args, --l) = a;
4602 else
4603 args = a;
4604 }
4605
4606 return args;
4607 }
4608
4609 /* Within the declaration of a template, return the currently active
4610 template parameters as an argument TREE_VEC. */
4611
4612 static tree
4613 current_template_args (void)
4614 {
4615 return template_parms_to_args (current_template_parms);
4616 }
4617
4618 /* Update the declared TYPE by doing any lookups which were thought to be
4619 dependent, but are not now that we know the SCOPE of the declarator. */
4620
4621 tree
4622 maybe_update_decl_type (tree orig_type, tree scope)
4623 {
4624 tree type = orig_type;
4625
4626 if (type == NULL_TREE)
4627 return type;
4628
4629 if (TREE_CODE (orig_type) == TYPE_DECL)
4630 type = TREE_TYPE (type);
4631
4632 if (scope && TYPE_P (scope) && dependent_type_p (scope)
4633 && dependent_type_p (type)
4634 /* Don't bother building up the args in this case. */
4635 && TREE_CODE (type) != TEMPLATE_TYPE_PARM)
4636 {
4637 /* tsubst in the args corresponding to the template parameters,
4638 including auto if present. Most things will be unchanged, but
4639 make_typename_type and tsubst_qualified_id will resolve
4640 TYPENAME_TYPEs and SCOPE_REFs that were previously dependent. */
4641 tree args = current_template_args ();
4642 tree auto_node = type_uses_auto (type);
4643 tree pushed;
4644 if (auto_node)
4645 {
4646 tree auto_vec = make_tree_vec (1);
4647 TREE_VEC_ELT (auto_vec, 0) = auto_node;
4648 args = add_to_template_args (args, auto_vec);
4649 }
4650 pushed = push_scope (scope);
4651 type = tsubst (type, args, tf_warning_or_error, NULL_TREE);
4652 if (pushed)
4653 pop_scope (scope);
4654 }
4655
4656 if (type == error_mark_node)
4657 return orig_type;
4658
4659 if (TREE_CODE (orig_type) == TYPE_DECL)
4660 {
4661 if (same_type_p (type, TREE_TYPE (orig_type)))
4662 type = orig_type;
4663 else
4664 type = TYPE_NAME (type);
4665 }
4666 return type;
4667 }
4668
4669 /* Return a TEMPLATE_DECL corresponding to DECL, using the indicated
4670 template PARMS and constraints, CONSTR. If MEMBER_TEMPLATE_P is true,
4671 the new template is a member template. */
4672
4673 static tree
4674 build_template_decl (tree decl, tree parms, bool member_template_p)
4675 {
4676 tree tmpl = build_lang_decl (TEMPLATE_DECL, DECL_NAME (decl), NULL_TREE);
4677 SET_DECL_LANGUAGE (tmpl, DECL_LANGUAGE (decl));
4678 DECL_TEMPLATE_PARMS (tmpl) = parms;
4679 DECL_CONTEXT (tmpl) = DECL_CONTEXT (decl);
4680 DECL_SOURCE_LOCATION (tmpl) = DECL_SOURCE_LOCATION (decl);
4681 DECL_MEMBER_TEMPLATE_P (tmpl) = member_template_p;
4682
4683 return tmpl;
4684 }
4685
4686 struct template_parm_data
4687 {
4688 /* The level of the template parameters we are currently
4689 processing. */
4690 int level;
4691
4692 /* The index of the specialization argument we are currently
4693 processing. */
4694 int current_arg;
4695
4696 /* An array whose size is the number of template parameters. The
4697 elements are nonzero if the parameter has been used in any one
4698 of the arguments processed so far. */
4699 int* parms;
4700
4701 /* An array whose size is the number of template arguments. The
4702 elements are nonzero if the argument makes use of template
4703 parameters of this level. */
4704 int* arg_uses_template_parms;
4705 };
4706
4707 /* Subroutine of push_template_decl used to see if each template
4708 parameter in a partial specialization is used in the explicit
4709 argument list. If T is of the LEVEL given in DATA (which is
4710 treated as a template_parm_data*), then DATA->PARMS is marked
4711 appropriately. */
4712
4713 static int
4714 mark_template_parm (tree t, void* data)
4715 {
4716 int level;
4717 int idx;
4718 struct template_parm_data* tpd = (struct template_parm_data*) data;
4719
4720 template_parm_level_and_index (t, &level, &idx);
4721
4722 if (level == tpd->level)
4723 {
4724 tpd->parms[idx] = 1;
4725 tpd->arg_uses_template_parms[tpd->current_arg] = 1;
4726 }
4727
4728 /* In C++17 the type of a non-type argument is a deduced context. */
4729 if (cxx_dialect >= cxx17
4730 && TREE_CODE (t) == TEMPLATE_PARM_INDEX)
4731 for_each_template_parm (TREE_TYPE (t),
4732 &mark_template_parm,
4733 data,
4734 NULL,
4735 /*include_nondeduced_p=*/false);
4736
4737 /* Return zero so that for_each_template_parm will continue the
4738 traversal of the tree; we want to mark *every* template parm. */
4739 return 0;
4740 }
4741
4742 /* Process the partial specialization DECL. */
4743
4744 static tree
4745 process_partial_specialization (tree decl)
4746 {
4747 tree type = TREE_TYPE (decl);
4748 tree tinfo = get_template_info (decl);
4749 tree maintmpl = TI_TEMPLATE (tinfo);
4750 tree specargs = TI_ARGS (tinfo);
4751 tree inner_args = INNERMOST_TEMPLATE_ARGS (specargs);
4752 tree main_inner_parms = DECL_INNERMOST_TEMPLATE_PARMS (maintmpl);
4753 tree inner_parms;
4754 tree inst;
4755 int nargs = TREE_VEC_LENGTH (inner_args);
4756 int ntparms;
4757 int i;
4758 bool did_error_intro = false;
4759 struct template_parm_data tpd;
4760 struct template_parm_data tpd2;
4761
4762 gcc_assert (current_template_parms);
4763
4764 /* A concept cannot be specialized. */
4765 if (flag_concepts && variable_concept_p (maintmpl))
4766 {
4767 error ("specialization of variable concept %q#D", maintmpl);
4768 return error_mark_node;
4769 }
4770
4771 inner_parms = INNERMOST_TEMPLATE_PARMS (current_template_parms);
4772 ntparms = TREE_VEC_LENGTH (inner_parms);
4773
4774 /* We check that each of the template parameters given in the
4775 partial specialization is used in the argument list to the
4776 specialization. For example:
4777
4778 template <class T> struct S;
4779 template <class T> struct S<T*>;
4780
4781 The second declaration is OK because `T*' uses the template
4782 parameter T, whereas
4783
4784 template <class T> struct S<int>;
4785
4786 is no good. Even trickier is:
4787
4788 template <class T>
4789 struct S1
4790 {
4791 template <class U>
4792 struct S2;
4793 template <class U>
4794 struct S2<T>;
4795 };
4796
4797 The S2<T> declaration is actually invalid; it is a
4798 full-specialization. Of course,
4799
4800 template <class U>
4801 struct S2<T (*)(U)>;
4802
4803 or some such would have been OK. */
4804 tpd.level = TMPL_PARMS_DEPTH (current_template_parms);
4805 tpd.parms = XALLOCAVEC (int, ntparms);
4806 memset (tpd.parms, 0, sizeof (int) * ntparms);
4807
4808 tpd.arg_uses_template_parms = XALLOCAVEC (int, nargs);
4809 memset (tpd.arg_uses_template_parms, 0, sizeof (int) * nargs);
4810 for (i = 0; i < nargs; ++i)
4811 {
4812 tpd.current_arg = i;
4813 for_each_template_parm (TREE_VEC_ELT (inner_args, i),
4814 &mark_template_parm,
4815 &tpd,
4816 NULL,
4817 /*include_nondeduced_p=*/false);
4818 }
4819 for (i = 0; i < ntparms; ++i)
4820 if (tpd.parms[i] == 0)
4821 {
4822 /* One of the template parms was not used in a deduced context in the
4823 specialization. */
4824 if (!did_error_intro)
4825 {
4826 error ("template parameters not deducible in "
4827 "partial specialization:");
4828 did_error_intro = true;
4829 }
4830
4831 inform (input_location, " %qD",
4832 TREE_VALUE (TREE_VEC_ELT (inner_parms, i)));
4833 }
4834
4835 if (did_error_intro)
4836 return error_mark_node;
4837
4838 /* [temp.class.spec]
4839
4840 The argument list of the specialization shall not be identical to
4841 the implicit argument list of the primary template. */
4842 tree main_args
4843 = TI_ARGS (get_template_info (DECL_TEMPLATE_RESULT (maintmpl)));
4844 if (comp_template_args (inner_args, INNERMOST_TEMPLATE_ARGS (main_args))
4845 && (!flag_concepts
4846 || !strictly_subsumes (current_template_constraints (),
4847 get_constraints (maintmpl))))
4848 {
4849 if (!flag_concepts)
4850 error ("partial specialization %q+D does not specialize "
4851 "any template arguments; to define the primary template, "
4852 "remove the template argument list", decl);
4853 else
4854 error ("partial specialization %q+D does not specialize any "
4855 "template arguments and is not more constrained than "
4856 "the primary template; to define the primary template, "
4857 "remove the template argument list", decl);
4858 inform (DECL_SOURCE_LOCATION (maintmpl), "primary template here");
4859 }
4860
4861 /* A partial specialization that replaces multiple parameters of the
4862 primary template with a pack expansion is less specialized for those
4863 parameters. */
4864 if (nargs < DECL_NTPARMS (maintmpl))
4865 {
4866 error ("partial specialization is not more specialized than the "
4867 "primary template because it replaces multiple parameters "
4868 "with a pack expansion");
4869 inform (DECL_SOURCE_LOCATION (maintmpl), "primary template here");
4870 /* Avoid crash in process_partial_specialization. */
4871 return decl;
4872 }
4873
4874 /* If we aren't in a dependent class, we can actually try deduction. */
4875 else if (tpd.level == 1
4876 /* FIXME we should be able to handle a partial specialization of a
4877 partial instantiation, but currently we can't (c++/41727). */
4878 && TMPL_ARGS_DEPTH (specargs) == 1
4879 && !get_partial_spec_bindings (maintmpl, maintmpl, specargs))
4880 {
4881 if (permerror (input_location, "partial specialization %qD is not "
4882 "more specialized than", decl))
4883 inform (DECL_SOURCE_LOCATION (maintmpl), "primary template %qD",
4884 maintmpl);
4885 }
4886
4887 /* [temp.class.spec]
4888
4889 A partially specialized non-type argument expression shall not
4890 involve template parameters of the partial specialization except
4891 when the argument expression is a simple identifier.
4892
4893 The type of a template parameter corresponding to a specialized
4894 non-type argument shall not be dependent on a parameter of the
4895 specialization.
4896
4897 Also, we verify that pack expansions only occur at the
4898 end of the argument list. */
4899 gcc_assert (nargs == DECL_NTPARMS (maintmpl));
4900 tpd2.parms = 0;
4901 for (i = 0; i < nargs; ++i)
4902 {
4903 tree parm = TREE_VALUE (TREE_VEC_ELT (main_inner_parms, i));
4904 tree arg = TREE_VEC_ELT (inner_args, i);
4905 tree packed_args = NULL_TREE;
4906 int j, len = 1;
4907
4908 if (ARGUMENT_PACK_P (arg))
4909 {
4910 /* Extract the arguments from the argument pack. We'll be
4911 iterating over these in the following loop. */
4912 packed_args = ARGUMENT_PACK_ARGS (arg);
4913 len = TREE_VEC_LENGTH (packed_args);
4914 }
4915
4916 for (j = 0; j < len; j++)
4917 {
4918 if (packed_args)
4919 /* Get the Jth argument in the parameter pack. */
4920 arg = TREE_VEC_ELT (packed_args, j);
4921
4922 if (PACK_EXPANSION_P (arg))
4923 {
4924 /* Pack expansions must come at the end of the
4925 argument list. */
4926 if ((packed_args && j < len - 1)
4927 || (!packed_args && i < nargs - 1))
4928 {
4929 if (TREE_CODE (arg) == EXPR_PACK_EXPANSION)
4930 error ("parameter pack argument %qE must be at the "
4931 "end of the template argument list", arg);
4932 else
4933 error ("parameter pack argument %qT must be at the "
4934 "end of the template argument list", arg);
4935 }
4936 }
4937
4938 if (TREE_CODE (arg) == EXPR_PACK_EXPANSION)
4939 /* We only care about the pattern. */
4940 arg = PACK_EXPANSION_PATTERN (arg);
4941
4942 if (/* These first two lines are the `non-type' bit. */
4943 !TYPE_P (arg)
4944 && TREE_CODE (arg) != TEMPLATE_DECL
4945 /* This next two lines are the `argument expression is not just a
4946 simple identifier' condition and also the `specialized
4947 non-type argument' bit. */
4948 && TREE_CODE (arg) != TEMPLATE_PARM_INDEX
4949 && !(REFERENCE_REF_P (arg)
4950 && TREE_CODE (TREE_OPERAND (arg, 0)) == TEMPLATE_PARM_INDEX))
4951 {
4952 if ((!packed_args && tpd.arg_uses_template_parms[i])
4953 || (packed_args && uses_template_parms (arg)))
4954 error ("template argument %qE involves template parameter(s)",
4955 arg);
4956 else
4957 {
4958 /* Look at the corresponding template parameter,
4959 marking which template parameters its type depends
4960 upon. */
4961 tree type = TREE_TYPE (parm);
4962
4963 if (!tpd2.parms)
4964 {
4965 /* We haven't yet initialized TPD2. Do so now. */
4966 tpd2.arg_uses_template_parms = XALLOCAVEC (int, nargs);
4967 /* The number of parameters here is the number in the
4968 main template, which, as checked in the assertion
4969 above, is NARGS. */
4970 tpd2.parms = XALLOCAVEC (int, nargs);
4971 tpd2.level =
4972 TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (maintmpl));
4973 }
4974
4975 /* Mark the template parameters. But this time, we're
4976 looking for the template parameters of the main
4977 template, not in the specialization. */
4978 tpd2.current_arg = i;
4979 tpd2.arg_uses_template_parms[i] = 0;
4980 memset (tpd2.parms, 0, sizeof (int) * nargs);
4981 for_each_template_parm (type,
4982 &mark_template_parm,
4983 &tpd2,
4984 NULL,
4985 /*include_nondeduced_p=*/false);
4986
4987 if (tpd2.arg_uses_template_parms [i])
4988 {
4989 /* The type depended on some template parameters.
4990 If they are fully specialized in the
4991 specialization, that's OK. */
4992 int j;
4993 int count = 0;
4994 for (j = 0; j < nargs; ++j)
4995 if (tpd2.parms[j] != 0
4996 && tpd.arg_uses_template_parms [j])
4997 ++count;
4998 if (count != 0)
4999 error_n (input_location, count,
5000 "type %qT of template argument %qE depends "
5001 "on a template parameter",
5002 "type %qT of template argument %qE depends "
5003 "on template parameters",
5004 type,
5005 arg);
5006 }
5007 }
5008 }
5009 }
5010 }
5011
5012 /* We should only get here once. */
5013 if (TREE_CODE (decl) == TYPE_DECL)
5014 gcc_assert (!COMPLETE_TYPE_P (type));
5015
5016 // Build the template decl.
5017 tree tmpl = build_template_decl (decl, current_template_parms,
5018 DECL_MEMBER_TEMPLATE_P (maintmpl));
5019 TREE_TYPE (tmpl) = type;
5020 DECL_TEMPLATE_RESULT (tmpl) = decl;
5021 SET_DECL_TEMPLATE_SPECIALIZATION (tmpl);
5022 DECL_TEMPLATE_INFO (tmpl) = build_template_info (maintmpl, specargs);
5023 DECL_PRIMARY_TEMPLATE (tmpl) = maintmpl;
5024
5025 /* Give template template parms a DECL_CONTEXT of the template
5026 for which they are a parameter. */
5027 for (i = 0; i < ntparms; ++i)
5028 {
5029 tree parm = TREE_VALUE (TREE_VEC_ELT (inner_parms, i));
5030 if (TREE_CODE (parm) == TEMPLATE_DECL)
5031 DECL_CONTEXT (parm) = tmpl;
5032 }
5033
5034 if (VAR_P (decl))
5035 /* We didn't register this in check_explicit_specialization so we could
5036 wait until the constraints were set. */
5037 decl = register_specialization (decl, maintmpl, specargs, false, 0);
5038 else
5039 associate_classtype_constraints (type);
5040
5041 DECL_TEMPLATE_SPECIALIZATIONS (maintmpl)
5042 = tree_cons (specargs, tmpl,
5043 DECL_TEMPLATE_SPECIALIZATIONS (maintmpl));
5044 TREE_TYPE (DECL_TEMPLATE_SPECIALIZATIONS (maintmpl)) = type;
5045
5046 for (inst = DECL_TEMPLATE_INSTANTIATIONS (maintmpl); inst;
5047 inst = TREE_CHAIN (inst))
5048 {
5049 tree instance = TREE_VALUE (inst);
5050 if (TYPE_P (instance)
5051 ? (COMPLETE_TYPE_P (instance)
5052 && CLASSTYPE_IMPLICIT_INSTANTIATION (instance))
5053 : DECL_TEMPLATE_INSTANTIATION (instance))
5054 {
5055 tree spec = most_specialized_partial_spec (instance, tf_none);
5056 tree inst_decl = (DECL_P (instance)
5057 ? instance : TYPE_NAME (instance));
5058 if (!spec)
5059 /* OK */;
5060 else if (spec == error_mark_node)
5061 permerror (input_location,
5062 "declaration of %qD ambiguates earlier template "
5063 "instantiation for %qD", decl, inst_decl);
5064 else if (TREE_VALUE (spec) == tmpl)
5065 permerror (input_location,
5066 "partial specialization of %qD after instantiation "
5067 "of %qD", decl, inst_decl);
5068 }
5069 }
5070
5071 return decl;
5072 }
5073
5074 /* PARM is a template parameter of some form; return the corresponding
5075 TEMPLATE_PARM_INDEX. */
5076
5077 static tree
5078 get_template_parm_index (tree parm)
5079 {
5080 if (TREE_CODE (parm) == PARM_DECL
5081 || TREE_CODE (parm) == CONST_DECL)
5082 parm = DECL_INITIAL (parm);
5083 else if (TREE_CODE (parm) == TYPE_DECL
5084 || TREE_CODE (parm) == TEMPLATE_DECL)
5085 parm = TREE_TYPE (parm);
5086 if (TREE_CODE (parm) == TEMPLATE_TYPE_PARM
5087 || TREE_CODE (parm) == BOUND_TEMPLATE_TEMPLATE_PARM
5088 || TREE_CODE (parm) == TEMPLATE_TEMPLATE_PARM)
5089 parm = TEMPLATE_TYPE_PARM_INDEX (parm);
5090 gcc_assert (TREE_CODE (parm) == TEMPLATE_PARM_INDEX);
5091 return parm;
5092 }
5093
5094 /* Subroutine of fixed_parameter_pack_p below. Look for any template
5095 parameter packs used by the template parameter PARM. */
5096
5097 static void
5098 fixed_parameter_pack_p_1 (tree parm, struct find_parameter_pack_data *ppd)
5099 {
5100 /* A type parm can't refer to another parm. */
5101 if (TREE_CODE (parm) == TYPE_DECL || parm == error_mark_node)
5102 return;
5103 else if (TREE_CODE (parm) == PARM_DECL)
5104 {
5105 cp_walk_tree (&TREE_TYPE (parm), &find_parameter_packs_r,
5106 ppd, ppd->visited);
5107 return;
5108 }
5109
5110 gcc_assert (TREE_CODE (parm) == TEMPLATE_DECL);
5111
5112 tree vec = INNERMOST_TEMPLATE_PARMS (DECL_TEMPLATE_PARMS (parm));
5113 for (int i = 0; i < TREE_VEC_LENGTH (vec); ++i)
5114 fixed_parameter_pack_p_1 (TREE_VALUE (TREE_VEC_ELT (vec, i)), ppd);
5115 }
5116
5117 /* PARM is a template parameter pack. Return any parameter packs used in
5118 its type or the type of any of its template parameters. If there are
5119 any such packs, it will be instantiated into a fixed template parameter
5120 list by partial instantiation rather than be fully deduced. */
5121
5122 tree
5123 fixed_parameter_pack_p (tree parm)
5124 {
5125 /* This can only be true in a member template. */
5126 if (TEMPLATE_PARM_ORIG_LEVEL (get_template_parm_index (parm)) < 2)
5127 return NULL_TREE;
5128 /* This can only be true for a parameter pack. */
5129 if (!template_parameter_pack_p (parm))
5130 return NULL_TREE;
5131 /* A type parm can't refer to another parm. */
5132 if (TREE_CODE (parm) == TYPE_DECL)
5133 return NULL_TREE;
5134
5135 tree parameter_packs = NULL_TREE;
5136 struct find_parameter_pack_data ppd;
5137 ppd.parameter_packs = &parameter_packs;
5138 ppd.visited = new hash_set<tree>;
5139 ppd.type_pack_expansion_p = false;
5140
5141 fixed_parameter_pack_p_1 (parm, &ppd);
5142
5143 delete ppd.visited;
5144 return parameter_packs;
5145 }
5146
5147 /* Check that a template declaration's use of default arguments and
5148 parameter packs is not invalid. Here, PARMS are the template
5149 parameters. IS_PRIMARY is true if DECL is the thing declared by
5150 a primary template. IS_PARTIAL is true if DECL is a partial
5151 specialization.
5152
5153 IS_FRIEND_DECL is nonzero if DECL is either a non-defining friend
5154 function template declaration or a friend class template
5155 declaration. In the function case, 1 indicates a declaration, 2
5156 indicates a redeclaration. When IS_FRIEND_DECL=2, no errors are
5157 emitted for extraneous default arguments.
5158
5159 Returns TRUE if there were no errors found, FALSE otherwise. */
5160
5161 bool
5162 check_default_tmpl_args (tree decl, tree parms, bool is_primary,
5163 bool is_partial, int is_friend_decl)
5164 {
5165 const char *msg;
5166 int last_level_to_check;
5167 tree parm_level;
5168 bool no_errors = true;
5169
5170 /* [temp.param]
5171
5172 A default template-argument shall not be specified in a
5173 function template declaration or a function template definition, nor
5174 in the template-parameter-list of the definition of a member of a
5175 class template. */
5176
5177 if (TREE_CODE (CP_DECL_CONTEXT (decl)) == FUNCTION_DECL
5178 || (TREE_CODE (decl) == FUNCTION_DECL && DECL_LOCAL_FUNCTION_P (decl)))
5179 /* You can't have a function template declaration in a local
5180 scope, nor you can you define a member of a class template in a
5181 local scope. */
5182 return true;
5183
5184 if ((TREE_CODE (decl) == TYPE_DECL
5185 && TREE_TYPE (decl)
5186 && LAMBDA_TYPE_P (TREE_TYPE (decl)))
5187 || (TREE_CODE (decl) == FUNCTION_DECL
5188 && LAMBDA_FUNCTION_P (decl)))
5189 /* A lambda doesn't have an explicit declaration; don't complain
5190 about the parms of the enclosing class. */
5191 return true;
5192
5193 if (current_class_type
5194 && !TYPE_BEING_DEFINED (current_class_type)
5195 && DECL_LANG_SPECIFIC (decl)
5196 && DECL_DECLARES_FUNCTION_P (decl)
5197 /* If this is either a friend defined in the scope of the class
5198 or a member function. */
5199 && (DECL_FUNCTION_MEMBER_P (decl)
5200 ? same_type_p (DECL_CONTEXT (decl), current_class_type)
5201 : DECL_FRIEND_CONTEXT (decl)
5202 ? same_type_p (DECL_FRIEND_CONTEXT (decl), current_class_type)
5203 : false)
5204 /* And, if it was a member function, it really was defined in
5205 the scope of the class. */
5206 && (!DECL_FUNCTION_MEMBER_P (decl)
5207 || DECL_INITIALIZED_IN_CLASS_P (decl)))
5208 /* We already checked these parameters when the template was
5209 declared, so there's no need to do it again now. This function
5210 was defined in class scope, but we're processing its body now
5211 that the class is complete. */
5212 return true;
5213
5214 /* Core issue 226 (C++0x only): the following only applies to class
5215 templates. */
5216 if (is_primary
5217 && ((cxx_dialect == cxx98) || TREE_CODE (decl) != FUNCTION_DECL))
5218 {
5219 /* [temp.param]
5220
5221 If a template-parameter has a default template-argument, all
5222 subsequent template-parameters shall have a default
5223 template-argument supplied. */
5224 for (parm_level = parms; parm_level; parm_level = TREE_CHAIN (parm_level))
5225 {
5226 tree inner_parms = TREE_VALUE (parm_level);
5227 int ntparms = TREE_VEC_LENGTH (inner_parms);
5228 int seen_def_arg_p = 0;
5229 int i;
5230
5231 for (i = 0; i < ntparms; ++i)
5232 {
5233 tree parm = TREE_VEC_ELT (inner_parms, i);
5234
5235 if (parm == error_mark_node)
5236 continue;
5237
5238 if (TREE_PURPOSE (parm))
5239 seen_def_arg_p = 1;
5240 else if (seen_def_arg_p
5241 && !template_parameter_pack_p (TREE_VALUE (parm)))
5242 {
5243 error ("no default argument for %qD", TREE_VALUE (parm));
5244 /* For better subsequent error-recovery, we indicate that
5245 there should have been a default argument. */
5246 TREE_PURPOSE (parm) = error_mark_node;
5247 no_errors = false;
5248 }
5249 else if (!is_partial
5250 && !is_friend_decl
5251 /* Don't complain about an enclosing partial
5252 specialization. */
5253 && parm_level == parms
5254 && TREE_CODE (decl) == TYPE_DECL
5255 && i < ntparms - 1
5256 && template_parameter_pack_p (TREE_VALUE (parm))
5257 /* A fixed parameter pack will be partially
5258 instantiated into a fixed length list. */
5259 && !fixed_parameter_pack_p (TREE_VALUE (parm)))
5260 {
5261 /* A primary class template can only have one
5262 parameter pack, at the end of the template
5263 parameter list. */
5264
5265 error ("parameter pack %q+D must be at the end of the"
5266 " template parameter list", TREE_VALUE (parm));
5267
5268 TREE_VALUE (TREE_VEC_ELT (inner_parms, i))
5269 = error_mark_node;
5270 no_errors = false;
5271 }
5272 }
5273 }
5274 }
5275
5276 if (((cxx_dialect == cxx98) && TREE_CODE (decl) != TYPE_DECL)
5277 || is_partial
5278 || !is_primary
5279 || is_friend_decl)
5280 /* For an ordinary class template, default template arguments are
5281 allowed at the innermost level, e.g.:
5282 template <class T = int>
5283 struct S {};
5284 but, in a partial specialization, they're not allowed even
5285 there, as we have in [temp.class.spec]:
5286
5287 The template parameter list of a specialization shall not
5288 contain default template argument values.
5289
5290 So, for a partial specialization, or for a function template
5291 (in C++98/C++03), we look at all of them. */
5292 ;
5293 else
5294 /* But, for a primary class template that is not a partial
5295 specialization we look at all template parameters except the
5296 innermost ones. */
5297 parms = TREE_CHAIN (parms);
5298
5299 /* Figure out what error message to issue. */
5300 if (is_friend_decl == 2)
5301 msg = G_("default template arguments may not be used in function template "
5302 "friend re-declaration");
5303 else if (is_friend_decl)
5304 msg = G_("default template arguments may not be used in template "
5305 "friend declarations");
5306 else if (TREE_CODE (decl) == FUNCTION_DECL && (cxx_dialect == cxx98))
5307 msg = G_("default template arguments may not be used in function templates "
5308 "without -std=c++11 or -std=gnu++11");
5309 else if (is_partial)
5310 msg = G_("default template arguments may not be used in "
5311 "partial specializations");
5312 else if (current_class_type && CLASSTYPE_IS_TEMPLATE (current_class_type))
5313 msg = G_("default argument for template parameter for class enclosing %qD");
5314 else
5315 /* Per [temp.param]/9, "A default template-argument shall not be
5316 specified in the template-parameter-lists of the definition of
5317 a member of a class template that appears outside of the member's
5318 class.", thus if we aren't handling a member of a class template
5319 there is no need to examine the parameters. */
5320 return true;
5321
5322 if (current_class_type && TYPE_BEING_DEFINED (current_class_type))
5323 /* If we're inside a class definition, there's no need to
5324 examine the parameters to the class itself. On the one
5325 hand, they will be checked when the class is defined, and,
5326 on the other, default arguments are valid in things like:
5327 template <class T = double>
5328 struct S { template <class U> void f(U); };
5329 Here the default argument for `S' has no bearing on the
5330 declaration of `f'. */
5331 last_level_to_check = template_class_depth (current_class_type) + 1;
5332 else
5333 /* Check everything. */
5334 last_level_to_check = 0;
5335
5336 for (parm_level = parms;
5337 parm_level && TMPL_PARMS_DEPTH (parm_level) >= last_level_to_check;
5338 parm_level = TREE_CHAIN (parm_level))
5339 {
5340 tree inner_parms = TREE_VALUE (parm_level);
5341 int i;
5342 int ntparms;
5343
5344 ntparms = TREE_VEC_LENGTH (inner_parms);
5345 for (i = 0; i < ntparms; ++i)
5346 {
5347 if (TREE_VEC_ELT (inner_parms, i) == error_mark_node)
5348 continue;
5349
5350 if (TREE_PURPOSE (TREE_VEC_ELT (inner_parms, i)))
5351 {
5352 if (msg)
5353 {
5354 no_errors = false;
5355 if (is_friend_decl == 2)
5356 return no_errors;
5357
5358 error (msg, decl);
5359 msg = 0;
5360 }
5361
5362 /* Clear out the default argument so that we are not
5363 confused later. */
5364 TREE_PURPOSE (TREE_VEC_ELT (inner_parms, i)) = NULL_TREE;
5365 }
5366 }
5367
5368 /* At this point, if we're still interested in issuing messages,
5369 they must apply to classes surrounding the object declared. */
5370 if (msg)
5371 msg = G_("default argument for template parameter for class "
5372 "enclosing %qD");
5373 }
5374
5375 return no_errors;
5376 }
5377
5378 /* Worker for push_template_decl_real, called via
5379 for_each_template_parm. DATA is really an int, indicating the
5380 level of the parameters we are interested in. If T is a template
5381 parameter of that level, return nonzero. */
5382
5383 static int
5384 template_parm_this_level_p (tree t, void* data)
5385 {
5386 int this_level = *(int *)data;
5387 int level;
5388
5389 if (TREE_CODE (t) == TEMPLATE_PARM_INDEX)
5390 level = TEMPLATE_PARM_LEVEL (t);
5391 else
5392 level = TEMPLATE_TYPE_LEVEL (t);
5393 return level == this_level;
5394 }
5395
5396 /* Worker for uses_outer_template_parms, called via for_each_template_parm.
5397 DATA is really an int, indicating the innermost outer level of parameters.
5398 If T is a template parameter of that level or further out, return
5399 nonzero. */
5400
5401 static int
5402 template_parm_outer_level (tree t, void *data)
5403 {
5404 int this_level = *(int *)data;
5405 int level;
5406
5407 if (TREE_CODE (t) == TEMPLATE_PARM_INDEX)
5408 level = TEMPLATE_PARM_LEVEL (t);
5409 else
5410 level = TEMPLATE_TYPE_LEVEL (t);
5411 return level <= this_level;
5412 }
5413
5414 /* Creates a TEMPLATE_DECL for the indicated DECL using the template
5415 parameters given by current_template_args, or reuses a
5416 previously existing one, if appropriate. Returns the DECL, or an
5417 equivalent one, if it is replaced via a call to duplicate_decls.
5418
5419 If IS_FRIEND is true, DECL is a friend declaration. */
5420
5421 tree
5422 push_template_decl_real (tree decl, bool is_friend)
5423 {
5424 tree tmpl;
5425 tree args;
5426 tree info;
5427 tree ctx;
5428 bool is_primary;
5429 bool is_partial;
5430 int new_template_p = 0;
5431 /* True if the template is a member template, in the sense of
5432 [temp.mem]. */
5433 bool member_template_p = false;
5434
5435 if (decl == error_mark_node || !current_template_parms)
5436 return error_mark_node;
5437
5438 /* See if this is a partial specialization. */
5439 is_partial = ((DECL_IMPLICIT_TYPEDEF_P (decl)
5440 && TREE_CODE (TREE_TYPE (decl)) != ENUMERAL_TYPE
5441 && CLASSTYPE_TEMPLATE_SPECIALIZATION (TREE_TYPE (decl)))
5442 || (VAR_P (decl)
5443 && DECL_LANG_SPECIFIC (decl)
5444 && DECL_TEMPLATE_SPECIALIZATION (decl)
5445 && TINFO_USED_TEMPLATE_ID (DECL_TEMPLATE_INFO (decl))));
5446
5447 if (TREE_CODE (decl) == FUNCTION_DECL && DECL_FRIEND_P (decl))
5448 is_friend = true;
5449
5450 if (is_friend)
5451 /* For a friend, we want the context of the friend, not
5452 the type of which it is a friend. */
5453 ctx = CP_DECL_CONTEXT (decl);
5454 else if (CP_DECL_CONTEXT (decl)
5455 && TREE_CODE (CP_DECL_CONTEXT (decl)) != NAMESPACE_DECL)
5456 /* In the case of a virtual function, we want the class in which
5457 it is defined. */
5458 ctx = CP_DECL_CONTEXT (decl);
5459 else
5460 /* Otherwise, if we're currently defining some class, the DECL
5461 is assumed to be a member of the class. */
5462 ctx = current_scope ();
5463
5464 if (ctx && TREE_CODE (ctx) == NAMESPACE_DECL)
5465 ctx = NULL_TREE;
5466
5467 if (!DECL_CONTEXT (decl))
5468 DECL_CONTEXT (decl) = FROB_CONTEXT (current_namespace);
5469
5470 /* See if this is a primary template. */
5471 if (is_friend && ctx
5472 && uses_template_parms_level (ctx, processing_template_decl))
5473 /* A friend template that specifies a class context, i.e.
5474 template <typename T> friend void A<T>::f();
5475 is not primary. */
5476 is_primary = false;
5477 else if (TREE_CODE (decl) == TYPE_DECL
5478 && LAMBDA_TYPE_P (TREE_TYPE (decl)))
5479 is_primary = false;
5480 else
5481 is_primary = template_parm_scope_p ();
5482
5483 if (is_primary)
5484 {
5485 warning (OPT_Wtemplates, "template %qD declared", decl);
5486
5487 if (DECL_CLASS_SCOPE_P (decl))
5488 member_template_p = true;
5489 if (TREE_CODE (decl) == TYPE_DECL
5490 && anon_aggrname_p (DECL_NAME (decl)))
5491 {
5492 error ("template class without a name");
5493 return error_mark_node;
5494 }
5495 else if (TREE_CODE (decl) == FUNCTION_DECL)
5496 {
5497 if (member_template_p)
5498 {
5499 if (DECL_OVERRIDE_P (decl) || DECL_FINAL_P (decl))
5500 error ("member template %qD may not have virt-specifiers", decl);
5501 }
5502 if (DECL_DESTRUCTOR_P (decl))
5503 {
5504 /* [temp.mem]
5505
5506 A destructor shall not be a member template. */
5507 error ("destructor %qD declared as member template", decl);
5508 return error_mark_node;
5509 }
5510 if (IDENTIFIER_NEWDEL_OP_P (DECL_NAME (decl))
5511 && (!prototype_p (TREE_TYPE (decl))
5512 || TYPE_ARG_TYPES (TREE_TYPE (decl)) == void_list_node
5513 || !TREE_CHAIN (TYPE_ARG_TYPES (TREE_TYPE (decl)))
5514 || (TREE_CHAIN (TYPE_ARG_TYPES (TREE_TYPE (decl)))
5515 == void_list_node)))
5516 {
5517 /* [basic.stc.dynamic.allocation]
5518
5519 An allocation function can be a function
5520 template. ... Template allocation functions shall
5521 have two or more parameters. */
5522 error ("invalid template declaration of %qD", decl);
5523 return error_mark_node;
5524 }
5525 }
5526 else if (DECL_IMPLICIT_TYPEDEF_P (decl)
5527 && CLASS_TYPE_P (TREE_TYPE (decl)))
5528 {
5529 /* Class template, set TEMPLATE_TYPE_PARM_FOR_CLASS. */
5530 tree parms = INNERMOST_TEMPLATE_PARMS (current_template_parms);
5531 for (int i = 0; i < TREE_VEC_LENGTH (parms); ++i)
5532 {
5533 tree t = TREE_VALUE (TREE_VEC_ELT (parms, i));
5534 if (TREE_CODE (t) == TYPE_DECL)
5535 t = TREE_TYPE (t);
5536 if (TREE_CODE (t) == TEMPLATE_TYPE_PARM)
5537 TEMPLATE_TYPE_PARM_FOR_CLASS (t) = true;
5538 }
5539 }
5540 else if (TREE_CODE (decl) == TYPE_DECL
5541 && TYPE_DECL_ALIAS_P (decl))
5542 /* alias-declaration */
5543 gcc_assert (!DECL_ARTIFICIAL (decl));
5544 else if (VAR_P (decl))
5545 /* C++14 variable template. */;
5546 else
5547 {
5548 error ("template declaration of %q#D", decl);
5549 return error_mark_node;
5550 }
5551 }
5552
5553 /* Check to see that the rules regarding the use of default
5554 arguments are not being violated. We check args for a friend
5555 functions when we know whether it's a definition, introducing
5556 declaration or re-declaration. */
5557 if (!is_friend || TREE_CODE (decl) != FUNCTION_DECL)
5558 check_default_tmpl_args (decl, current_template_parms,
5559 is_primary, is_partial, is_friend);
5560
5561 /* Ensure that there are no parameter packs in the type of this
5562 declaration that have not been expanded. */
5563 if (TREE_CODE (decl) == FUNCTION_DECL)
5564 {
5565 /* Check each of the arguments individually to see if there are
5566 any bare parameter packs. */
5567 tree type = TREE_TYPE (decl);
5568 tree arg = DECL_ARGUMENTS (decl);
5569 tree argtype = TYPE_ARG_TYPES (type);
5570
5571 while (arg && argtype)
5572 {
5573 if (!DECL_PACK_P (arg)
5574 && check_for_bare_parameter_packs (TREE_TYPE (arg)))
5575 {
5576 /* This is a PARM_DECL that contains unexpanded parameter
5577 packs. We have already complained about this in the
5578 check_for_bare_parameter_packs call, so just replace
5579 these types with ERROR_MARK_NODE. */
5580 TREE_TYPE (arg) = error_mark_node;
5581 TREE_VALUE (argtype) = error_mark_node;
5582 }
5583
5584 arg = DECL_CHAIN (arg);
5585 argtype = TREE_CHAIN (argtype);
5586 }
5587
5588 /* Check for bare parameter packs in the return type and the
5589 exception specifiers. */
5590 if (check_for_bare_parameter_packs (TREE_TYPE (type)))
5591 /* Errors were already issued, set return type to int
5592 as the frontend doesn't expect error_mark_node as
5593 the return type. */
5594 TREE_TYPE (type) = integer_type_node;
5595 if (check_for_bare_parameter_packs (TYPE_RAISES_EXCEPTIONS (type)))
5596 TYPE_RAISES_EXCEPTIONS (type) = NULL_TREE;
5597 }
5598 else if (check_for_bare_parameter_packs ((TREE_CODE (decl) == TYPE_DECL
5599 && TYPE_DECL_ALIAS_P (decl))
5600 ? DECL_ORIGINAL_TYPE (decl)
5601 : TREE_TYPE (decl)))
5602 {
5603 TREE_TYPE (decl) = error_mark_node;
5604 return error_mark_node;
5605 }
5606
5607 if (is_partial)
5608 return process_partial_specialization (decl);
5609
5610 args = current_template_args ();
5611
5612 if (!ctx
5613 || TREE_CODE (ctx) == FUNCTION_DECL
5614 || (CLASS_TYPE_P (ctx) && TYPE_BEING_DEFINED (ctx))
5615 || (TREE_CODE (decl) == TYPE_DECL
5616 && LAMBDA_TYPE_P (TREE_TYPE (decl)))
5617 || (is_friend && !DECL_TEMPLATE_INFO (decl)))
5618 {
5619 if (DECL_LANG_SPECIFIC (decl)
5620 && DECL_TEMPLATE_INFO (decl)
5621 && DECL_TI_TEMPLATE (decl))
5622 tmpl = DECL_TI_TEMPLATE (decl);
5623 /* If DECL is a TYPE_DECL for a class-template, then there won't
5624 be DECL_LANG_SPECIFIC. The information equivalent to
5625 DECL_TEMPLATE_INFO is found in TYPE_TEMPLATE_INFO instead. */
5626 else if (DECL_IMPLICIT_TYPEDEF_P (decl)
5627 && TYPE_TEMPLATE_INFO (TREE_TYPE (decl))
5628 && TYPE_TI_TEMPLATE (TREE_TYPE (decl)))
5629 {
5630 /* Since a template declaration already existed for this
5631 class-type, we must be redeclaring it here. Make sure
5632 that the redeclaration is valid. */
5633 redeclare_class_template (TREE_TYPE (decl),
5634 current_template_parms,
5635 current_template_constraints ());
5636 /* We don't need to create a new TEMPLATE_DECL; just use the
5637 one we already had. */
5638 tmpl = TYPE_TI_TEMPLATE (TREE_TYPE (decl));
5639 }
5640 else
5641 {
5642 tmpl = build_template_decl (decl, current_template_parms,
5643 member_template_p);
5644 new_template_p = 1;
5645
5646 if (DECL_LANG_SPECIFIC (decl)
5647 && DECL_TEMPLATE_SPECIALIZATION (decl))
5648 {
5649 /* A specialization of a member template of a template
5650 class. */
5651 SET_DECL_TEMPLATE_SPECIALIZATION (tmpl);
5652 DECL_TEMPLATE_INFO (tmpl) = DECL_TEMPLATE_INFO (decl);
5653 DECL_TEMPLATE_INFO (decl) = NULL_TREE;
5654 }
5655 }
5656 }
5657 else
5658 {
5659 tree a, t, current, parms;
5660 int i;
5661 tree tinfo = get_template_info (decl);
5662
5663 if (!tinfo)
5664 {
5665 error ("template definition of non-template %q#D", decl);
5666 return error_mark_node;
5667 }
5668
5669 tmpl = TI_TEMPLATE (tinfo);
5670
5671 if (DECL_FUNCTION_TEMPLATE_P (tmpl)
5672 && DECL_TEMPLATE_INFO (decl) && DECL_TI_ARGS (decl)
5673 && DECL_TEMPLATE_SPECIALIZATION (decl)
5674 && DECL_MEMBER_TEMPLATE_P (tmpl))
5675 {
5676 tree new_tmpl;
5677
5678 /* The declaration is a specialization of a member
5679 template, declared outside the class. Therefore, the
5680 innermost template arguments will be NULL, so we
5681 replace them with the arguments determined by the
5682 earlier call to check_explicit_specialization. */
5683 args = DECL_TI_ARGS (decl);
5684
5685 new_tmpl
5686 = build_template_decl (decl, current_template_parms,
5687 member_template_p);
5688 DECL_TEMPLATE_RESULT (new_tmpl) = decl;
5689 TREE_TYPE (new_tmpl) = TREE_TYPE (decl);
5690 DECL_TI_TEMPLATE (decl) = new_tmpl;
5691 SET_DECL_TEMPLATE_SPECIALIZATION (new_tmpl);
5692 DECL_TEMPLATE_INFO (new_tmpl)
5693 = build_template_info (tmpl, args);
5694
5695 register_specialization (new_tmpl,
5696 most_general_template (tmpl),
5697 args,
5698 is_friend, 0);
5699 return decl;
5700 }
5701
5702 /* Make sure the template headers we got make sense. */
5703
5704 parms = DECL_TEMPLATE_PARMS (tmpl);
5705 i = TMPL_PARMS_DEPTH (parms);
5706 if (TMPL_ARGS_DEPTH (args) != i)
5707 {
5708 error ("expected %d levels of template parms for %q#D, got %d",
5709 i, decl, TMPL_ARGS_DEPTH (args));
5710 DECL_INTERFACE_KNOWN (decl) = 1;
5711 return error_mark_node;
5712 }
5713 else
5714 for (current = decl; i > 0; --i, parms = TREE_CHAIN (parms))
5715 {
5716 a = TMPL_ARGS_LEVEL (args, i);
5717 t = INNERMOST_TEMPLATE_PARMS (parms);
5718
5719 if (TREE_VEC_LENGTH (t) != TREE_VEC_LENGTH (a))
5720 {
5721 if (current == decl)
5722 error ("got %d template parameters for %q#D",
5723 TREE_VEC_LENGTH (a), decl);
5724 else
5725 error ("got %d template parameters for %q#T",
5726 TREE_VEC_LENGTH (a), current);
5727 error (" but %d required", TREE_VEC_LENGTH (t));
5728 /* Avoid crash in import_export_decl. */
5729 DECL_INTERFACE_KNOWN (decl) = 1;
5730 return error_mark_node;
5731 }
5732
5733 if (current == decl)
5734 current = ctx;
5735 else if (current == NULL_TREE)
5736 /* Can happen in erroneous input. */
5737 break;
5738 else
5739 current = get_containing_scope (current);
5740 }
5741
5742 /* Check that the parms are used in the appropriate qualifying scopes
5743 in the declarator. */
5744 if (!comp_template_args
5745 (TI_ARGS (tinfo),
5746 TI_ARGS (get_template_info (DECL_TEMPLATE_RESULT (tmpl)))))
5747 {
5748 error ("template arguments to %qD do not match original "
5749 "template %qD", decl, DECL_TEMPLATE_RESULT (tmpl));
5750 if (!uses_template_parms (TI_ARGS (tinfo)))
5751 inform (input_location, "use %<template<>%> for"
5752 " an explicit specialization");
5753 /* Avoid crash in import_export_decl. */
5754 DECL_INTERFACE_KNOWN (decl) = 1;
5755 return error_mark_node;
5756 }
5757 }
5758
5759 DECL_TEMPLATE_RESULT (tmpl) = decl;
5760 TREE_TYPE (tmpl) = TREE_TYPE (decl);
5761
5762 /* Push template declarations for global functions and types. Note
5763 that we do not try to push a global template friend declared in a
5764 template class; such a thing may well depend on the template
5765 parameters of the class. */
5766 if (new_template_p && !ctx
5767 && !(is_friend && template_class_depth (current_class_type) > 0))
5768 {
5769 tmpl = pushdecl_namespace_level (tmpl, is_friend);
5770 if (tmpl == error_mark_node)
5771 return error_mark_node;
5772
5773 /* Hide template friend classes that haven't been declared yet. */
5774 if (is_friend && TREE_CODE (decl) == TYPE_DECL)
5775 {
5776 DECL_ANTICIPATED (tmpl) = 1;
5777 DECL_FRIEND_P (tmpl) = 1;
5778 }
5779 }
5780
5781 if (is_primary)
5782 {
5783 tree parms = DECL_TEMPLATE_PARMS (tmpl);
5784
5785 DECL_PRIMARY_TEMPLATE (tmpl) = tmpl;
5786
5787 /* Give template template parms a DECL_CONTEXT of the template
5788 for which they are a parameter. */
5789 parms = INNERMOST_TEMPLATE_PARMS (parms);
5790 for (int i = TREE_VEC_LENGTH (parms) - 1; i >= 0; --i)
5791 {
5792 tree parm = TREE_VALUE (TREE_VEC_ELT (parms, i));
5793 if (TREE_CODE (parm) == TEMPLATE_DECL)
5794 DECL_CONTEXT (parm) = tmpl;
5795 }
5796
5797 if (TREE_CODE (decl) == TYPE_DECL
5798 && TYPE_DECL_ALIAS_P (decl)
5799 && complex_alias_template_p (tmpl))
5800 TEMPLATE_DECL_COMPLEX_ALIAS_P (tmpl) = true;
5801 }
5802
5803 /* The DECL_TI_ARGS of DECL contains full set of arguments referring
5804 back to its most general template. If TMPL is a specialization,
5805 ARGS may only have the innermost set of arguments. Add the missing
5806 argument levels if necessary. */
5807 if (DECL_TEMPLATE_INFO (tmpl))
5808 args = add_outermost_template_args (DECL_TI_ARGS (tmpl), args);
5809
5810 info = build_template_info (tmpl, args);
5811
5812 if (DECL_IMPLICIT_TYPEDEF_P (decl))
5813 SET_TYPE_TEMPLATE_INFO (TREE_TYPE (tmpl), info);
5814 else
5815 {
5816 if (is_primary)
5817 retrofit_lang_decl (decl);
5818 if (DECL_LANG_SPECIFIC (decl))
5819 DECL_TEMPLATE_INFO (decl) = info;
5820 }
5821
5822 if (flag_implicit_templates
5823 && !is_friend
5824 && TREE_PUBLIC (decl)
5825 && VAR_OR_FUNCTION_DECL_P (decl))
5826 /* Set DECL_COMDAT on template instantiations; if we force
5827 them to be emitted by explicit instantiation or -frepo,
5828 mark_needed will tell cgraph to do the right thing. */
5829 DECL_COMDAT (decl) = true;
5830
5831 return DECL_TEMPLATE_RESULT (tmpl);
5832 }
5833
5834 tree
5835 push_template_decl (tree decl)
5836 {
5837 return push_template_decl_real (decl, false);
5838 }
5839
5840 /* FN is an inheriting constructor that inherits from the constructor
5841 template INHERITED; turn FN into a constructor template with a matching
5842 template header. */
5843
5844 tree
5845 add_inherited_template_parms (tree fn, tree inherited)
5846 {
5847 tree inner_parms
5848 = INNERMOST_TEMPLATE_PARMS (DECL_TEMPLATE_PARMS (inherited));
5849 inner_parms = copy_node (inner_parms);
5850 tree parms
5851 = tree_cons (size_int (processing_template_decl + 1),
5852 inner_parms, current_template_parms);
5853 tree tmpl = build_template_decl (fn, parms, /*member*/true);
5854 tree args = template_parms_to_args (parms);
5855 DECL_TEMPLATE_INFO (fn) = build_template_info (tmpl, args);
5856 TREE_TYPE (tmpl) = TREE_TYPE (fn);
5857 DECL_TEMPLATE_RESULT (tmpl) = fn;
5858 DECL_ARTIFICIAL (tmpl) = true;
5859 DECL_PRIMARY_TEMPLATE (tmpl) = tmpl;
5860 return tmpl;
5861 }
5862
5863 /* Called when a class template TYPE is redeclared with the indicated
5864 template PARMS, e.g.:
5865
5866 template <class T> struct S;
5867 template <class T> struct S {}; */
5868
5869 bool
5870 redeclare_class_template (tree type, tree parms, tree cons)
5871 {
5872 tree tmpl;
5873 tree tmpl_parms;
5874 int i;
5875
5876 if (!TYPE_TEMPLATE_INFO (type))
5877 {
5878 error ("%qT is not a template type", type);
5879 return false;
5880 }
5881
5882 tmpl = TYPE_TI_TEMPLATE (type);
5883 if (!PRIMARY_TEMPLATE_P (tmpl))
5884 /* The type is nested in some template class. Nothing to worry
5885 about here; there are no new template parameters for the nested
5886 type. */
5887 return true;
5888
5889 if (!parms)
5890 {
5891 error ("template specifiers not specified in declaration of %qD",
5892 tmpl);
5893 return false;
5894 }
5895
5896 parms = INNERMOST_TEMPLATE_PARMS (parms);
5897 tmpl_parms = DECL_INNERMOST_TEMPLATE_PARMS (tmpl);
5898
5899 if (TREE_VEC_LENGTH (parms) != TREE_VEC_LENGTH (tmpl_parms))
5900 {
5901 error_n (input_location, TREE_VEC_LENGTH (parms),
5902 "redeclared with %d template parameter",
5903 "redeclared with %d template parameters",
5904 TREE_VEC_LENGTH (parms));
5905 inform_n (DECL_SOURCE_LOCATION (tmpl), TREE_VEC_LENGTH (tmpl_parms),
5906 "previous declaration %qD used %d template parameter",
5907 "previous declaration %qD used %d template parameters",
5908 tmpl, TREE_VEC_LENGTH (tmpl_parms));
5909 return false;
5910 }
5911
5912 for (i = 0; i < TREE_VEC_LENGTH (tmpl_parms); ++i)
5913 {
5914 tree tmpl_parm;
5915 tree parm;
5916 tree tmpl_default;
5917 tree parm_default;
5918
5919 if (TREE_VEC_ELT (tmpl_parms, i) == error_mark_node
5920 || TREE_VEC_ELT (parms, i) == error_mark_node)
5921 continue;
5922
5923 tmpl_parm = TREE_VALUE (TREE_VEC_ELT (tmpl_parms, i));
5924 if (error_operand_p (tmpl_parm))
5925 return false;
5926
5927 parm = TREE_VALUE (TREE_VEC_ELT (parms, i));
5928 tmpl_default = TREE_PURPOSE (TREE_VEC_ELT (tmpl_parms, i));
5929 parm_default = TREE_PURPOSE (TREE_VEC_ELT (parms, i));
5930
5931 /* TMPL_PARM and PARM can be either TYPE_DECL, PARM_DECL, or
5932 TEMPLATE_DECL. */
5933 if (TREE_CODE (tmpl_parm) != TREE_CODE (parm)
5934 || (TREE_CODE (tmpl_parm) != TYPE_DECL
5935 && !same_type_p (TREE_TYPE (tmpl_parm), TREE_TYPE (parm)))
5936 || (TREE_CODE (tmpl_parm) != PARM_DECL
5937 && (TEMPLATE_TYPE_PARAMETER_PACK (TREE_TYPE (tmpl_parm))
5938 != TEMPLATE_TYPE_PARAMETER_PACK (TREE_TYPE (parm))))
5939 || (TREE_CODE (tmpl_parm) == PARM_DECL
5940 && (TEMPLATE_PARM_PARAMETER_PACK (DECL_INITIAL (tmpl_parm))
5941 != TEMPLATE_PARM_PARAMETER_PACK (DECL_INITIAL (parm)))))
5942 {
5943 error ("template parameter %q+#D", tmpl_parm);
5944 error ("redeclared here as %q#D", parm);
5945 return false;
5946 }
5947
5948 if (tmpl_default != NULL_TREE && parm_default != NULL_TREE)
5949 {
5950 /* We have in [temp.param]:
5951
5952 A template-parameter may not be given default arguments
5953 by two different declarations in the same scope. */
5954 error_at (input_location, "redefinition of default argument for %q#D", parm);
5955 inform (DECL_SOURCE_LOCATION (tmpl_parm),
5956 "original definition appeared here");
5957 return false;
5958 }
5959
5960 if (parm_default != NULL_TREE)
5961 /* Update the previous template parameters (which are the ones
5962 that will really count) with the new default value. */
5963 TREE_PURPOSE (TREE_VEC_ELT (tmpl_parms, i)) = parm_default;
5964 else if (tmpl_default != NULL_TREE)
5965 /* Update the new parameters, too; they'll be used as the
5966 parameters for any members. */
5967 TREE_PURPOSE (TREE_VEC_ELT (parms, i)) = tmpl_default;
5968
5969 /* Give each template template parm in this redeclaration a
5970 DECL_CONTEXT of the template for which they are a parameter. */
5971 if (TREE_CODE (parm) == TEMPLATE_DECL)
5972 {
5973 gcc_assert (DECL_CONTEXT (parm) == NULL_TREE);
5974 DECL_CONTEXT (parm) = tmpl;
5975 }
5976
5977 if (TREE_CODE (parm) == TYPE_DECL)
5978 TEMPLATE_TYPE_PARM_FOR_CLASS (TREE_TYPE (parm)) = true;
5979 }
5980
5981 // Cannot redeclare a class template with a different set of constraints.
5982 if (!equivalent_constraints (get_constraints (tmpl), cons))
5983 {
5984 error_at (input_location, "redeclaration %q#D with different "
5985 "constraints", tmpl);
5986 inform (DECL_SOURCE_LOCATION (tmpl),
5987 "original declaration appeared here");
5988 }
5989
5990 return true;
5991 }
5992
5993 /* The actual substitution part of instantiate_non_dependent_expr_sfinae,
5994 to be used when the caller has already checked
5995 (processing_template_decl
5996 && !instantiation_dependent_expression_p (expr)
5997 && potential_constant_expression (expr))
5998 and cleared processing_template_decl. */
5999
6000 tree
6001 instantiate_non_dependent_expr_internal (tree expr, tsubst_flags_t complain)
6002 {
6003 return tsubst_copy_and_build (expr,
6004 /*args=*/NULL_TREE,
6005 complain,
6006 /*in_decl=*/NULL_TREE,
6007 /*function_p=*/false,
6008 /*integral_constant_expression_p=*/true);
6009 }
6010
6011 /* Simplify EXPR if it is a non-dependent expression. Returns the
6012 (possibly simplified) expression. */
6013
6014 tree
6015 instantiate_non_dependent_expr_sfinae (tree expr, tsubst_flags_t complain)
6016 {
6017 if (expr == NULL_TREE)
6018 return NULL_TREE;
6019
6020 /* If we're in a template, but EXPR isn't value dependent, simplify
6021 it. We're supposed to treat:
6022
6023 template <typename T> void f(T[1 + 1]);
6024 template <typename T> void f(T[2]);
6025
6026 as two declarations of the same function, for example. */
6027 if (processing_template_decl
6028 && is_nondependent_constant_expression (expr))
6029 {
6030 processing_template_decl_sentinel s;
6031 expr = instantiate_non_dependent_expr_internal (expr, complain);
6032 }
6033 return expr;
6034 }
6035
6036 tree
6037 instantiate_non_dependent_expr (tree expr)
6038 {
6039 return instantiate_non_dependent_expr_sfinae (expr, tf_error);
6040 }
6041
6042 /* Like instantiate_non_dependent_expr, but return NULL_TREE rather than
6043 an uninstantiated expression. */
6044
6045 tree
6046 instantiate_non_dependent_or_null (tree expr)
6047 {
6048 if (expr == NULL_TREE)
6049 return NULL_TREE;
6050 if (processing_template_decl)
6051 {
6052 if (!is_nondependent_constant_expression (expr))
6053 expr = NULL_TREE;
6054 else
6055 {
6056 processing_template_decl_sentinel s;
6057 expr = instantiate_non_dependent_expr_internal (expr, tf_error);
6058 }
6059 }
6060 return expr;
6061 }
6062
6063 /* True iff T is a specialization of a variable template. */
6064
6065 bool
6066 variable_template_specialization_p (tree t)
6067 {
6068 if (!VAR_P (t) || !DECL_LANG_SPECIFIC (t) || !DECL_TEMPLATE_INFO (t))
6069 return false;
6070 tree tmpl = DECL_TI_TEMPLATE (t);
6071 return variable_template_p (tmpl);
6072 }
6073
6074 /* Return TRUE iff T is a type alias, a TEMPLATE_DECL for an alias
6075 template declaration, or a TYPE_DECL for an alias declaration. */
6076
6077 bool
6078 alias_type_or_template_p (tree t)
6079 {
6080 if (t == NULL_TREE)
6081 return false;
6082 return ((TREE_CODE (t) == TYPE_DECL && TYPE_DECL_ALIAS_P (t))
6083 || (TYPE_P (t)
6084 && TYPE_NAME (t)
6085 && TYPE_DECL_ALIAS_P (TYPE_NAME (t)))
6086 || DECL_ALIAS_TEMPLATE_P (t));
6087 }
6088
6089 /* Return TRUE iff T is a specialization of an alias template. */
6090
6091 bool
6092 alias_template_specialization_p (const_tree t)
6093 {
6094 /* It's an alias template specialization if it's an alias and its
6095 TYPE_NAME is a specialization of a primary template. */
6096 if (TYPE_ALIAS_P (t))
6097 if (tree tinfo = TYPE_ALIAS_TEMPLATE_INFO (t))
6098 return PRIMARY_TEMPLATE_P (TI_TEMPLATE (tinfo));
6099
6100 return false;
6101 }
6102
6103 /* An alias template is complex from a SFINAE perspective if a template-id
6104 using that alias can be ill-formed when the expansion is not, as with
6105 the void_t template. We determine this by checking whether the
6106 expansion for the alias template uses all its template parameters. */
6107
6108 struct uses_all_template_parms_data
6109 {
6110 int level;
6111 bool *seen;
6112 };
6113
6114 static int
6115 uses_all_template_parms_r (tree t, void *data_)
6116 {
6117 struct uses_all_template_parms_data &data
6118 = *(struct uses_all_template_parms_data*)data_;
6119 tree idx = get_template_parm_index (t);
6120
6121 if (TEMPLATE_PARM_LEVEL (idx) == data.level)
6122 data.seen[TEMPLATE_PARM_IDX (idx)] = true;
6123 return 0;
6124 }
6125
6126 static bool
6127 complex_alias_template_p (const_tree tmpl)
6128 {
6129 struct uses_all_template_parms_data data;
6130 tree pat = DECL_ORIGINAL_TYPE (DECL_TEMPLATE_RESULT (tmpl));
6131 tree parms = DECL_TEMPLATE_PARMS (tmpl);
6132 data.level = TMPL_PARMS_DEPTH (parms);
6133 int len = TREE_VEC_LENGTH (INNERMOST_TEMPLATE_PARMS (parms));
6134 data.seen = XALLOCAVEC (bool, len);
6135 for (int i = 0; i < len; ++i)
6136 data.seen[i] = false;
6137
6138 for_each_template_parm (pat, uses_all_template_parms_r, &data, NULL, true);
6139 for (int i = 0; i < len; ++i)
6140 if (!data.seen[i])
6141 return true;
6142 return false;
6143 }
6144
6145 /* Return TRUE iff T is a specialization of a complex alias template with
6146 dependent template-arguments. */
6147
6148 bool
6149 dependent_alias_template_spec_p (const_tree t)
6150 {
6151 if (!alias_template_specialization_p (t))
6152 return false;
6153
6154 tree tinfo = TYPE_ALIAS_TEMPLATE_INFO (t);
6155 if (!TEMPLATE_DECL_COMPLEX_ALIAS_P (TI_TEMPLATE (tinfo)))
6156 return false;
6157
6158 tree args = INNERMOST_TEMPLATE_ARGS (TI_ARGS (tinfo));
6159 if (!any_dependent_template_arguments_p (args))
6160 return false;
6161
6162 return true;
6163 }
6164
6165 /* Return the number of innermost template parameters in TMPL. */
6166
6167 static int
6168 num_innermost_template_parms (tree tmpl)
6169 {
6170 tree parms = INNERMOST_TEMPLATE_PARMS (DECL_TEMPLATE_PARMS (tmpl));
6171 return TREE_VEC_LENGTH (parms);
6172 }
6173
6174 /* Return either TMPL or another template that it is equivalent to under DR
6175 1286: An alias that just changes the name of a template is equivalent to
6176 the other template. */
6177
6178 static tree
6179 get_underlying_template (tree tmpl)
6180 {
6181 gcc_assert (TREE_CODE (tmpl) == TEMPLATE_DECL);
6182 while (DECL_ALIAS_TEMPLATE_P (tmpl))
6183 {
6184 /* Determine if the alias is equivalent to an underlying template. */
6185 tree orig_type = DECL_ORIGINAL_TYPE (DECL_TEMPLATE_RESULT (tmpl));
6186 tree tinfo = TYPE_TEMPLATE_INFO_MAYBE_ALIAS (orig_type);
6187 if (!tinfo)
6188 break;
6189
6190 tree underlying = TI_TEMPLATE (tinfo);
6191 if (!PRIMARY_TEMPLATE_P (underlying)
6192 || (num_innermost_template_parms (tmpl)
6193 != num_innermost_template_parms (underlying)))
6194 break;
6195
6196 tree alias_args = INNERMOST_TEMPLATE_ARGS
6197 (template_parms_to_args (DECL_TEMPLATE_PARMS (tmpl)));
6198 if (!comp_template_args (TI_ARGS (tinfo), alias_args))
6199 break;
6200
6201 /* Alias is equivalent. Strip it and repeat. */
6202 tmpl = underlying;
6203 }
6204
6205 return tmpl;
6206 }
6207
6208 /* Subroutine of convert_nontype_argument. Converts EXPR to TYPE, which
6209 must be a reference-to-function or a pointer-to-function type, as specified
6210 in [temp.arg.nontype]: disambiguate EXPR if it is an overload set,
6211 and check that the resulting function has external linkage. */
6212
6213 static tree
6214 convert_nontype_argument_function (tree type, tree expr,
6215 tsubst_flags_t complain)
6216 {
6217 tree fns = expr;
6218 tree fn, fn_no_ptr;
6219 linkage_kind linkage;
6220
6221 fn = instantiate_type (type, fns, tf_none);
6222 if (fn == error_mark_node)
6223 return error_mark_node;
6224
6225 if (value_dependent_expression_p (fn))
6226 goto accept;
6227
6228 fn_no_ptr = strip_fnptr_conv (fn);
6229 if (TREE_CODE (fn_no_ptr) == ADDR_EXPR)
6230 fn_no_ptr = TREE_OPERAND (fn_no_ptr, 0);
6231 if (BASELINK_P (fn_no_ptr))
6232 fn_no_ptr = BASELINK_FUNCTIONS (fn_no_ptr);
6233
6234 /* [temp.arg.nontype]/1
6235
6236 A template-argument for a non-type, non-template template-parameter
6237 shall be one of:
6238 [...]
6239 -- the address of an object or function with external [C++11: or
6240 internal] linkage. */
6241
6242 if (TREE_CODE (fn_no_ptr) != FUNCTION_DECL)
6243 {
6244 if (complain & tf_error)
6245 {
6246 error ("%qE is not a valid template argument for type %qT",
6247 expr, type);
6248 if (TYPE_PTR_P (type))
6249 inform (input_location, "it must be the address of a function "
6250 "with external linkage");
6251 else
6252 inform (input_location, "it must be the name of a function with "
6253 "external linkage");
6254 }
6255 return NULL_TREE;
6256 }
6257
6258 linkage = decl_linkage (fn_no_ptr);
6259 if (cxx_dialect >= cxx11 ? linkage == lk_none : linkage != lk_external)
6260 {
6261 if (complain & tf_error)
6262 {
6263 if (cxx_dialect >= cxx11)
6264 error ("%qE is not a valid template argument for type %qT "
6265 "because %qD has no linkage",
6266 expr, type, fn_no_ptr);
6267 else
6268 error ("%qE is not a valid template argument for type %qT "
6269 "because %qD does not have external linkage",
6270 expr, type, fn_no_ptr);
6271 }
6272 return NULL_TREE;
6273 }
6274
6275 accept:
6276 if (TYPE_REF_P (type))
6277 {
6278 if (REFERENCE_REF_P (fn))
6279 fn = TREE_OPERAND (fn, 0);
6280 else
6281 fn = build_address (fn);
6282 }
6283 if (!same_type_ignoring_top_level_qualifiers_p (type, TREE_TYPE (fn)))
6284 fn = build_nop (type, fn);
6285
6286 return fn;
6287 }
6288
6289 /* Subroutine of convert_nontype_argument.
6290 Check if EXPR of type TYPE is a valid pointer-to-member constant.
6291 Emit an error otherwise. */
6292
6293 static bool
6294 check_valid_ptrmem_cst_expr (tree type, tree expr,
6295 tsubst_flags_t complain)
6296 {
6297 location_t loc = EXPR_LOC_OR_LOC (expr, input_location);
6298 tree orig_expr = expr;
6299 STRIP_NOPS (expr);
6300 if (null_ptr_cst_p (expr))
6301 return true;
6302 if (TREE_CODE (expr) == PTRMEM_CST
6303 && same_type_p (TYPE_PTRMEM_CLASS_TYPE (type),
6304 PTRMEM_CST_CLASS (expr)))
6305 return true;
6306 if (cxx_dialect >= cxx11 && null_member_pointer_value_p (expr))
6307 return true;
6308 if (processing_template_decl
6309 && TREE_CODE (expr) == ADDR_EXPR
6310 && TREE_CODE (TREE_OPERAND (expr, 0)) == OFFSET_REF)
6311 return true;
6312 if (complain & tf_error)
6313 {
6314 error_at (loc, "%qE is not a valid template argument for type %qT",
6315 orig_expr, type);
6316 if (TREE_CODE (expr) != PTRMEM_CST)
6317 inform (loc, "it must be a pointer-to-member of the form %<&X::Y%>");
6318 else
6319 inform (loc, "because it is a member of %qT", PTRMEM_CST_CLASS (expr));
6320 }
6321 return false;
6322 }
6323
6324 /* Returns TRUE iff the address of OP is value-dependent.
6325
6326 14.6.2.4 [temp.dep.temp]:
6327 A non-integral non-type template-argument is dependent if its type is
6328 dependent or it has either of the following forms
6329 qualified-id
6330 & qualified-id
6331 and contains a nested-name-specifier which specifies a class-name that
6332 names a dependent type.
6333
6334 We generalize this to just say that the address of a member of a
6335 dependent class is value-dependent; the above doesn't cover the
6336 address of a static data member named with an unqualified-id. */
6337
6338 static bool
6339 has_value_dependent_address (tree op)
6340 {
6341 /* We could use get_inner_reference here, but there's no need;
6342 this is only relevant for template non-type arguments, which
6343 can only be expressed as &id-expression. */
6344 if (DECL_P (op))
6345 {
6346 tree ctx = CP_DECL_CONTEXT (op);
6347 if (TYPE_P (ctx) && dependent_type_p (ctx))
6348 return true;
6349 }
6350
6351 return false;
6352 }
6353
6354 /* The next set of functions are used for providing helpful explanatory
6355 diagnostics for failed overload resolution. Their messages should be
6356 indented by two spaces for consistency with the messages in
6357 call.c */
6358
6359 static int
6360 unify_success (bool /*explain_p*/)
6361 {
6362 return 0;
6363 }
6364
6365 /* Other failure functions should call this one, to provide a single function
6366 for setting a breakpoint on. */
6367
6368 static int
6369 unify_invalid (bool /*explain_p*/)
6370 {
6371 return 1;
6372 }
6373
6374 static int
6375 unify_parameter_deduction_failure (bool explain_p, tree parm)
6376 {
6377 if (explain_p)
6378 inform (input_location,
6379 " couldn't deduce template parameter %qD", parm);
6380 return unify_invalid (explain_p);
6381 }
6382
6383 static int
6384 unify_cv_qual_mismatch (bool explain_p, tree parm, tree arg)
6385 {
6386 if (explain_p)
6387 inform (input_location,
6388 " types %qT and %qT have incompatible cv-qualifiers",
6389 parm, arg);
6390 return unify_invalid (explain_p);
6391 }
6392
6393 static int
6394 unify_type_mismatch (bool explain_p, tree parm, tree arg)
6395 {
6396 if (explain_p)
6397 inform (input_location, " mismatched types %qT and %qT", parm, arg);
6398 return unify_invalid (explain_p);
6399 }
6400
6401 static int
6402 unify_parameter_pack_mismatch (bool explain_p, tree parm, tree arg)
6403 {
6404 if (explain_p)
6405 inform (input_location,
6406 " template parameter %qD is not a parameter pack, but "
6407 "argument %qD is",
6408 parm, arg);
6409 return unify_invalid (explain_p);
6410 }
6411
6412 static int
6413 unify_ptrmem_cst_mismatch (bool explain_p, tree parm, tree arg)
6414 {
6415 if (explain_p)
6416 inform (input_location,
6417 " template argument %qE does not match "
6418 "pointer-to-member constant %qE",
6419 arg, parm);
6420 return unify_invalid (explain_p);
6421 }
6422
6423 static int
6424 unify_expression_unequal (bool explain_p, tree parm, tree arg)
6425 {
6426 if (explain_p)
6427 inform (input_location, " %qE is not equivalent to %qE", parm, arg);
6428 return unify_invalid (explain_p);
6429 }
6430
6431 static int
6432 unify_parameter_pack_inconsistent (bool explain_p, tree old_arg, tree new_arg)
6433 {
6434 if (explain_p)
6435 inform (input_location,
6436 " inconsistent parameter pack deduction with %qT and %qT",
6437 old_arg, new_arg);
6438 return unify_invalid (explain_p);
6439 }
6440
6441 static int
6442 unify_inconsistency (bool explain_p, tree parm, tree first, tree second)
6443 {
6444 if (explain_p)
6445 {
6446 if (TYPE_P (parm))
6447 inform (input_location,
6448 " deduced conflicting types for parameter %qT (%qT and %qT)",
6449 parm, first, second);
6450 else
6451 inform (input_location,
6452 " deduced conflicting values for non-type parameter "
6453 "%qE (%qE and %qE)", parm, first, second);
6454 }
6455 return unify_invalid (explain_p);
6456 }
6457
6458 static int
6459 unify_vla_arg (bool explain_p, tree arg)
6460 {
6461 if (explain_p)
6462 inform (input_location,
6463 " variable-sized array type %qT is not "
6464 "a valid template argument",
6465 arg);
6466 return unify_invalid (explain_p);
6467 }
6468
6469 static int
6470 unify_method_type_error (bool explain_p, tree arg)
6471 {
6472 if (explain_p)
6473 inform (input_location,
6474 " member function type %qT is not a valid template argument",
6475 arg);
6476 return unify_invalid (explain_p);
6477 }
6478
6479 static int
6480 unify_arity (bool explain_p, int have, int wanted, bool least_p = false)
6481 {
6482 if (explain_p)
6483 {
6484 if (least_p)
6485 inform_n (input_location, wanted,
6486 " candidate expects at least %d argument, %d provided",
6487 " candidate expects at least %d arguments, %d provided",
6488 wanted, have);
6489 else
6490 inform_n (input_location, wanted,
6491 " candidate expects %d argument, %d provided",
6492 " candidate expects %d arguments, %d provided",
6493 wanted, have);
6494 }
6495 return unify_invalid (explain_p);
6496 }
6497
6498 static int
6499 unify_too_many_arguments (bool explain_p, int have, int wanted)
6500 {
6501 return unify_arity (explain_p, have, wanted);
6502 }
6503
6504 static int
6505 unify_too_few_arguments (bool explain_p, int have, int wanted,
6506 bool least_p = false)
6507 {
6508 return unify_arity (explain_p, have, wanted, least_p);
6509 }
6510
6511 static int
6512 unify_arg_conversion (bool explain_p, tree to_type,
6513 tree from_type, tree arg)
6514 {
6515 if (explain_p)
6516 inform (EXPR_LOC_OR_LOC (arg, input_location),
6517 " cannot convert %qE (type %qT) to type %qT",
6518 arg, from_type, to_type);
6519 return unify_invalid (explain_p);
6520 }
6521
6522 static int
6523 unify_no_common_base (bool explain_p, enum template_base_result r,
6524 tree parm, tree arg)
6525 {
6526 if (explain_p)
6527 switch (r)
6528 {
6529 case tbr_ambiguous_baseclass:
6530 inform (input_location, " %qT is an ambiguous base class of %qT",
6531 parm, arg);
6532 break;
6533 default:
6534 inform (input_location, " %qT is not derived from %qT", arg, parm);
6535 break;
6536 }
6537 return unify_invalid (explain_p);
6538 }
6539
6540 static int
6541 unify_inconsistent_template_template_parameters (bool explain_p)
6542 {
6543 if (explain_p)
6544 inform (input_location,
6545 " template parameters of a template template argument are "
6546 "inconsistent with other deduced template arguments");
6547 return unify_invalid (explain_p);
6548 }
6549
6550 static int
6551 unify_template_deduction_failure (bool explain_p, tree parm, tree arg)
6552 {
6553 if (explain_p)
6554 inform (input_location,
6555 " can't deduce a template for %qT from non-template type %qT",
6556 parm, arg);
6557 return unify_invalid (explain_p);
6558 }
6559
6560 static int
6561 unify_template_argument_mismatch (bool explain_p, tree parm, tree arg)
6562 {
6563 if (explain_p)
6564 inform (input_location,
6565 " template argument %qE does not match %qE", arg, parm);
6566 return unify_invalid (explain_p);
6567 }
6568
6569 /* Attempt to convert the non-type template parameter EXPR to the
6570 indicated TYPE. If the conversion is successful, return the
6571 converted value. If the conversion is unsuccessful, return
6572 NULL_TREE if we issued an error message, or error_mark_node if we
6573 did not. We issue error messages for out-and-out bad template
6574 parameters, but not simply because the conversion failed, since we
6575 might be just trying to do argument deduction. Both TYPE and EXPR
6576 must be non-dependent.
6577
6578 The conversion follows the special rules described in
6579 [temp.arg.nontype], and it is much more strict than an implicit
6580 conversion.
6581
6582 This function is called twice for each template argument (see
6583 lookup_template_class for a more accurate description of this
6584 problem). This means that we need to handle expressions which
6585 are not valid in a C++ source, but can be created from the
6586 first call (for instance, casts to perform conversions). These
6587 hacks can go away after we fix the double coercion problem. */
6588
6589 static tree
6590 convert_nontype_argument (tree type, tree expr, tsubst_flags_t complain)
6591 {
6592 tree expr_type;
6593 location_t loc = EXPR_LOC_OR_LOC (expr, input_location);
6594 tree orig_expr = expr;
6595
6596 /* Detect immediately string literals as invalid non-type argument.
6597 This special-case is not needed for correctness (we would easily
6598 catch this later), but only to provide better diagnostic for this
6599 common user mistake. As suggested by DR 100, we do not mention
6600 linkage issues in the diagnostic as this is not the point. */
6601 /* FIXME we're making this OK. */
6602 if (TREE_CODE (expr) == STRING_CST)
6603 {
6604 if (complain & tf_error)
6605 error ("%qE is not a valid template argument for type %qT "
6606 "because string literals can never be used in this context",
6607 expr, type);
6608 return NULL_TREE;
6609 }
6610
6611 /* Add the ADDR_EXPR now for the benefit of
6612 value_dependent_expression_p. */
6613 if (TYPE_PTROBV_P (type)
6614 && TREE_CODE (TREE_TYPE (expr)) == ARRAY_TYPE)
6615 {
6616 expr = decay_conversion (expr, complain);
6617 if (expr == error_mark_node)
6618 return error_mark_node;
6619 }
6620
6621 /* If we are in a template, EXPR may be non-dependent, but still
6622 have a syntactic, rather than semantic, form. For example, EXPR
6623 might be a SCOPE_REF, rather than the VAR_DECL to which the
6624 SCOPE_REF refers. Preserving the qualifying scope is necessary
6625 so that access checking can be performed when the template is
6626 instantiated -- but here we need the resolved form so that we can
6627 convert the argument. */
6628 bool non_dep = false;
6629 if (TYPE_REF_OBJ_P (type)
6630 && has_value_dependent_address (expr))
6631 /* If we want the address and it's value-dependent, don't fold. */;
6632 else if (processing_template_decl
6633 && is_nondependent_constant_expression (expr))
6634 non_dep = true;
6635 if (error_operand_p (expr))
6636 return error_mark_node;
6637 expr_type = TREE_TYPE (expr);
6638
6639 /* If the argument is non-dependent, perform any conversions in
6640 non-dependent context as well. */
6641 processing_template_decl_sentinel s (non_dep);
6642 if (non_dep)
6643 expr = instantiate_non_dependent_expr_internal (expr, complain);
6644
6645 if (value_dependent_expression_p (expr))
6646 expr = canonicalize_expr_argument (expr, complain);
6647
6648 /* 14.3.2/5: The null pointer{,-to-member} conversion is applied
6649 to a non-type argument of "nullptr". */
6650 if (NULLPTR_TYPE_P (expr_type) && TYPE_PTR_OR_PTRMEM_P (type))
6651 expr = fold_simple (convert (type, expr));
6652
6653 /* In C++11, integral or enumeration non-type template arguments can be
6654 arbitrary constant expressions. Pointer and pointer to
6655 member arguments can be general constant expressions that evaluate
6656 to a null value, but otherwise still need to be of a specific form. */
6657 if (cxx_dialect >= cxx11)
6658 {
6659 if (TREE_CODE (expr) == PTRMEM_CST)
6660 /* A PTRMEM_CST is already constant, and a valid template
6661 argument for a parameter of pointer to member type, we just want
6662 to leave it in that form rather than lower it to a
6663 CONSTRUCTOR. */;
6664 else if (INTEGRAL_OR_ENUMERATION_TYPE_P (type)
6665 || cxx_dialect >= cxx17)
6666 {
6667 /* C++17: A template-argument for a non-type template-parameter shall
6668 be a converted constant expression (8.20) of the type of the
6669 template-parameter. */
6670 expr = build_converted_constant_expr (type, expr, complain);
6671 if (expr == error_mark_node)
6672 return error_mark_node;
6673 expr = maybe_constant_value (expr);
6674 expr = convert_from_reference (expr);
6675 }
6676 else if (TYPE_PTR_OR_PTRMEM_P (type))
6677 {
6678 tree folded = maybe_constant_value (expr);
6679 if (TYPE_PTR_P (type) ? integer_zerop (folded)
6680 : null_member_pointer_value_p (folded))
6681 expr = folded;
6682 }
6683 }
6684
6685 if (TYPE_REF_P (type))
6686 expr = mark_lvalue_use (expr);
6687 else
6688 expr = mark_rvalue_use (expr);
6689
6690 /* HACK: Due to double coercion, we can get a
6691 NOP_EXPR<REFERENCE_TYPE>(ADDR_EXPR<POINTER_TYPE> (arg)) here,
6692 which is the tree that we built on the first call (see
6693 below when coercing to reference to object or to reference to
6694 function). We just strip everything and get to the arg.
6695 See g++.old-deja/g++.oliva/template4.C and g++.dg/template/nontype9.C
6696 for examples. */
6697 if (TYPE_REF_OBJ_P (type) || TYPE_REFFN_P (type))
6698 {
6699 tree probe_type, probe = expr;
6700 if (REFERENCE_REF_P (probe))
6701 probe = TREE_OPERAND (probe, 0);
6702 probe_type = TREE_TYPE (probe);
6703 if (TREE_CODE (probe) == NOP_EXPR)
6704 {
6705 /* ??? Maybe we could use convert_from_reference here, but we
6706 would need to relax its constraints because the NOP_EXPR
6707 could actually change the type to something more cv-qualified,
6708 and this is not folded by convert_from_reference. */
6709 tree addr = TREE_OPERAND (probe, 0);
6710 if (TYPE_REF_P (probe_type)
6711 && TREE_CODE (addr) == ADDR_EXPR
6712 && TYPE_PTR_P (TREE_TYPE (addr))
6713 && (same_type_ignoring_top_level_qualifiers_p
6714 (TREE_TYPE (probe_type),
6715 TREE_TYPE (TREE_TYPE (addr)))))
6716 {
6717 expr = TREE_OPERAND (addr, 0);
6718 expr_type = TREE_TYPE (probe_type);
6719 }
6720 }
6721 }
6722
6723 /* [temp.arg.nontype]/5, bullet 1
6724
6725 For a non-type template-parameter of integral or enumeration type,
6726 integral promotions (_conv.prom_) and integral conversions
6727 (_conv.integral_) are applied. */
6728 if (INTEGRAL_OR_ENUMERATION_TYPE_P (type))
6729 {
6730 if (cxx_dialect < cxx11)
6731 {
6732 tree t = build_converted_constant_expr (type, expr, complain);
6733 t = maybe_constant_value (t);
6734 if (t != error_mark_node)
6735 expr = t;
6736 }
6737
6738 if (!same_type_ignoring_top_level_qualifiers_p (type, TREE_TYPE (expr)))
6739 return error_mark_node;
6740
6741 /* Notice that there are constant expressions like '4 % 0' which
6742 do not fold into integer constants. */
6743 if (TREE_CODE (expr) != INTEGER_CST
6744 && !value_dependent_expression_p (expr))
6745 {
6746 if (complain & tf_error)
6747 {
6748 int errs = errorcount, warns = warningcount + werrorcount;
6749 if (!require_potential_constant_expression (expr))
6750 expr = error_mark_node;
6751 else
6752 expr = cxx_constant_value (expr);
6753 if (errorcount > errs || warningcount + werrorcount > warns)
6754 inform (loc, "in template argument for type %qT", type);
6755 if (expr == error_mark_node)
6756 return NULL_TREE;
6757 /* else cxx_constant_value complained but gave us
6758 a real constant, so go ahead. */
6759 if (TREE_CODE (expr) != INTEGER_CST)
6760 {
6761 /* Some assemble time constant expressions like
6762 (intptr_t)&&lab1 - (intptr_t)&&lab2 or
6763 4 + (intptr_t)&&var satisfy reduced_constant_expression_p
6764 as we can emit them into .rodata initializers of
6765 variables, yet they can't fold into an INTEGER_CST at
6766 compile time. Refuse them here. */
6767 gcc_checking_assert (reduced_constant_expression_p (expr));
6768 error_at (loc, "template argument %qE for type %qT not "
6769 "a constant integer", expr, type);
6770 return NULL_TREE;
6771 }
6772 }
6773 else
6774 return NULL_TREE;
6775 }
6776
6777 /* Avoid typedef problems. */
6778 if (TREE_TYPE (expr) != type)
6779 expr = fold_convert (type, expr);
6780 }
6781 /* [temp.arg.nontype]/5, bullet 2
6782
6783 For a non-type template-parameter of type pointer to object,
6784 qualification conversions (_conv.qual_) and the array-to-pointer
6785 conversion (_conv.array_) are applied. */
6786 else if (TYPE_PTROBV_P (type))
6787 {
6788 tree decayed = expr;
6789
6790 /* Look through any NOP_EXPRs around an ADDR_EXPR, whether they come from
6791 decay_conversion or an explicit cast. If it's a problematic cast,
6792 we'll complain about it below. */
6793 if (TREE_CODE (expr) == NOP_EXPR)
6794 {
6795 tree probe = expr;
6796 STRIP_NOPS (probe);
6797 if (TREE_CODE (probe) == ADDR_EXPR
6798 && TYPE_PTR_P (TREE_TYPE (probe)))
6799 {
6800 expr = probe;
6801 expr_type = TREE_TYPE (expr);
6802 }
6803 }
6804
6805 /* [temp.arg.nontype]/1 (TC1 version, DR 49):
6806
6807 A template-argument for a non-type, non-template template-parameter
6808 shall be one of: [...]
6809
6810 -- the name of a non-type template-parameter;
6811 -- the address of an object or function with external linkage, [...]
6812 expressed as "& id-expression" where the & is optional if the name
6813 refers to a function or array, or if the corresponding
6814 template-parameter is a reference.
6815
6816 Here, we do not care about functions, as they are invalid anyway
6817 for a parameter of type pointer-to-object. */
6818
6819 if (value_dependent_expression_p (expr))
6820 /* Non-type template parameters are OK. */
6821 ;
6822 else if (cxx_dialect >= cxx11 && integer_zerop (expr))
6823 /* Null pointer values are OK in C++11. */;
6824 else if (TREE_CODE (expr) != ADDR_EXPR)
6825 {
6826 if (VAR_P (expr))
6827 {
6828 if (complain & tf_error)
6829 error ("%qD is not a valid template argument "
6830 "because %qD is a variable, not the address of "
6831 "a variable", orig_expr, expr);
6832 return NULL_TREE;
6833 }
6834 if (INDIRECT_TYPE_P (expr_type))
6835 {
6836 if (complain & tf_error)
6837 error ("%qE is not a valid template argument for %qT "
6838 "because it is not the address of a variable",
6839 orig_expr, type);
6840 return NULL_TREE;
6841 }
6842 /* Other values, like integer constants, might be valid
6843 non-type arguments of some other type. */
6844 return error_mark_node;
6845 }
6846 else
6847 {
6848 tree decl = TREE_OPERAND (expr, 0);
6849
6850 if (!VAR_P (decl))
6851 {
6852 if (complain & tf_error)
6853 error ("%qE is not a valid template argument of type %qT "
6854 "because %qE is not a variable", orig_expr, type, decl);
6855 return NULL_TREE;
6856 }
6857 else if (cxx_dialect < cxx11 && !DECL_EXTERNAL_LINKAGE_P (decl))
6858 {
6859 if (complain & tf_error)
6860 error ("%qE is not a valid template argument of type %qT "
6861 "because %qD does not have external linkage",
6862 orig_expr, type, decl);
6863 return NULL_TREE;
6864 }
6865 else if ((cxx_dialect >= cxx11 && cxx_dialect < cxx17)
6866 && decl_linkage (decl) == lk_none)
6867 {
6868 if (complain & tf_error)
6869 error ("%qE is not a valid template argument of type %qT "
6870 "because %qD has no linkage", orig_expr, type, decl);
6871 return NULL_TREE;
6872 }
6873 /* C++17: For a non-type template-parameter of reference or pointer
6874 type, the value of the constant expression shall not refer to (or
6875 for a pointer type, shall not be the address of):
6876 * a subobject (4.5),
6877 * a temporary object (15.2),
6878 * a string literal (5.13.5),
6879 * the result of a typeid expression (8.2.8), or
6880 * a predefined __func__ variable (11.4.1). */
6881 else if (DECL_ARTIFICIAL (decl))
6882 {
6883 if (complain & tf_error)
6884 error ("the address of %qD is not a valid template argument",
6885 decl);
6886 return NULL_TREE;
6887 }
6888 else if (!same_type_ignoring_top_level_qualifiers_p
6889 (strip_array_types (TREE_TYPE (type)),
6890 strip_array_types (TREE_TYPE (decl))))
6891 {
6892 if (complain & tf_error)
6893 error ("the address of the %qT subobject of %qD is not a "
6894 "valid template argument", TREE_TYPE (type), decl);
6895 return NULL_TREE;
6896 }
6897 else if (!TREE_STATIC (decl) && !DECL_EXTERNAL (decl))
6898 {
6899 if (complain & tf_error)
6900 error ("the address of %qD is not a valid template argument "
6901 "because it does not have static storage duration",
6902 decl);
6903 return NULL_TREE;
6904 }
6905 }
6906
6907 expr = decayed;
6908
6909 expr = perform_qualification_conversions (type, expr);
6910 if (expr == error_mark_node)
6911 return error_mark_node;
6912 }
6913 /* [temp.arg.nontype]/5, bullet 3
6914
6915 For a non-type template-parameter of type reference to object, no
6916 conversions apply. The type referred to by the reference may be more
6917 cv-qualified than the (otherwise identical) type of the
6918 template-argument. The template-parameter is bound directly to the
6919 template-argument, which must be an lvalue. */
6920 else if (TYPE_REF_OBJ_P (type))
6921 {
6922 if (!same_type_ignoring_top_level_qualifiers_p (TREE_TYPE (type),
6923 expr_type))
6924 return error_mark_node;
6925
6926 if (!at_least_as_qualified_p (TREE_TYPE (type), expr_type))
6927 {
6928 if (complain & tf_error)
6929 error ("%qE is not a valid template argument for type %qT "
6930 "because of conflicts in cv-qualification", expr, type);
6931 return NULL_TREE;
6932 }
6933
6934 if (!lvalue_p (expr))
6935 {
6936 if (complain & tf_error)
6937 error ("%qE is not a valid template argument for type %qT "
6938 "because it is not an lvalue", expr, type);
6939 return NULL_TREE;
6940 }
6941
6942 /* [temp.arg.nontype]/1
6943
6944 A template-argument for a non-type, non-template template-parameter
6945 shall be one of: [...]
6946
6947 -- the address of an object or function with external linkage. */
6948 if (INDIRECT_REF_P (expr)
6949 && TYPE_REF_OBJ_P (TREE_TYPE (TREE_OPERAND (expr, 0))))
6950 {
6951 expr = TREE_OPERAND (expr, 0);
6952 if (DECL_P (expr))
6953 {
6954 if (complain & tf_error)
6955 error ("%q#D is not a valid template argument for type %qT "
6956 "because a reference variable does not have a constant "
6957 "address", expr, type);
6958 return NULL_TREE;
6959 }
6960 }
6961
6962 if (TYPE_REF_OBJ_P (TREE_TYPE (expr))
6963 && value_dependent_expression_p (expr))
6964 /* OK, dependent reference. We don't want to ask whether a DECL is
6965 itself value-dependent, since what we want here is its address. */;
6966 else
6967 {
6968 if (!DECL_P (expr))
6969 {
6970 if (complain & tf_error)
6971 error ("%qE is not a valid template argument for type %qT "
6972 "because it is not an object with linkage",
6973 expr, type);
6974 return NULL_TREE;
6975 }
6976
6977 /* DR 1155 allows internal linkage in C++11 and up. */
6978 linkage_kind linkage = decl_linkage (expr);
6979 if (linkage < (cxx_dialect >= cxx11 ? lk_internal : lk_external))
6980 {
6981 if (complain & tf_error)
6982 error ("%qE is not a valid template argument for type %qT "
6983 "because object %qD does not have linkage",
6984 expr, type, expr);
6985 return NULL_TREE;
6986 }
6987
6988 expr = build_address (expr);
6989 }
6990
6991 if (!same_type_p (type, TREE_TYPE (expr)))
6992 expr = build_nop (type, expr);
6993 }
6994 /* [temp.arg.nontype]/5, bullet 4
6995
6996 For a non-type template-parameter of type pointer to function, only
6997 the function-to-pointer conversion (_conv.func_) is applied. If the
6998 template-argument represents a set of overloaded functions (or a
6999 pointer to such), the matching function is selected from the set
7000 (_over.over_). */
7001 else if (TYPE_PTRFN_P (type))
7002 {
7003 /* If the argument is a template-id, we might not have enough
7004 context information to decay the pointer. */
7005 if (!type_unknown_p (expr_type))
7006 {
7007 expr = decay_conversion (expr, complain);
7008 if (expr == error_mark_node)
7009 return error_mark_node;
7010 }
7011
7012 if (cxx_dialect >= cxx11 && integer_zerop (expr))
7013 /* Null pointer values are OK in C++11. */
7014 return perform_qualification_conversions (type, expr);
7015
7016 expr = convert_nontype_argument_function (type, expr, complain);
7017 if (!expr || expr == error_mark_node)
7018 return expr;
7019 }
7020 /* [temp.arg.nontype]/5, bullet 5
7021
7022 For a non-type template-parameter of type reference to function, no
7023 conversions apply. If the template-argument represents a set of
7024 overloaded functions, the matching function is selected from the set
7025 (_over.over_). */
7026 else if (TYPE_REFFN_P (type))
7027 {
7028 if (TREE_CODE (expr) == ADDR_EXPR)
7029 {
7030 if (complain & tf_error)
7031 {
7032 error ("%qE is not a valid template argument for type %qT "
7033 "because it is a pointer", expr, type);
7034 inform (input_location, "try using %qE instead",
7035 TREE_OPERAND (expr, 0));
7036 }
7037 return NULL_TREE;
7038 }
7039
7040 expr = convert_nontype_argument_function (type, expr, complain);
7041 if (!expr || expr == error_mark_node)
7042 return expr;
7043 }
7044 /* [temp.arg.nontype]/5, bullet 6
7045
7046 For a non-type template-parameter of type pointer to member function,
7047 no conversions apply. If the template-argument represents a set of
7048 overloaded member functions, the matching member function is selected
7049 from the set (_over.over_). */
7050 else if (TYPE_PTRMEMFUNC_P (type))
7051 {
7052 expr = instantiate_type (type, expr, tf_none);
7053 if (expr == error_mark_node)
7054 return error_mark_node;
7055
7056 /* [temp.arg.nontype] bullet 1 says the pointer to member
7057 expression must be a pointer-to-member constant. */
7058 if (!value_dependent_expression_p (expr)
7059 && !check_valid_ptrmem_cst_expr (type, expr, complain))
7060 return NULL_TREE;
7061
7062 /* Repeated conversion can't deal with a conversion that turns PTRMEM_CST
7063 into a CONSTRUCTOR, so build up a new PTRMEM_CST instead. */
7064 if (fnptr_conv_p (type, TREE_TYPE (expr)))
7065 expr = make_ptrmem_cst (type, PTRMEM_CST_MEMBER (expr));
7066 }
7067 /* [temp.arg.nontype]/5, bullet 7
7068
7069 For a non-type template-parameter of type pointer to data member,
7070 qualification conversions (_conv.qual_) are applied. */
7071 else if (TYPE_PTRDATAMEM_P (type))
7072 {
7073 /* [temp.arg.nontype] bullet 1 says the pointer to member
7074 expression must be a pointer-to-member constant. */
7075 if (!value_dependent_expression_p (expr)
7076 && !check_valid_ptrmem_cst_expr (type, expr, complain))
7077 return NULL_TREE;
7078
7079 expr = perform_qualification_conversions (type, expr);
7080 if (expr == error_mark_node)
7081 return expr;
7082 }
7083 else if (NULLPTR_TYPE_P (type))
7084 {
7085 if (!NULLPTR_TYPE_P (TREE_TYPE (expr)))
7086 {
7087 if (complain & tf_error)
7088 error ("%qE is not a valid template argument for type %qT "
7089 "because it is of type %qT", expr, type, TREE_TYPE (expr));
7090 return NULL_TREE;
7091 }
7092 return expr;
7093 }
7094 /* A template non-type parameter must be one of the above. */
7095 else
7096 gcc_unreachable ();
7097
7098 /* Sanity check: did we actually convert the argument to the
7099 right type? */
7100 gcc_assert (same_type_ignoring_top_level_qualifiers_p
7101 (type, TREE_TYPE (expr)));
7102 return convert_from_reference (expr);
7103 }
7104
7105 /* Subroutine of coerce_template_template_parms, which returns 1 if
7106 PARM_PARM and ARG_PARM match using the rule for the template
7107 parameters of template template parameters. Both PARM and ARG are
7108 template parameters; the rest of the arguments are the same as for
7109 coerce_template_template_parms.
7110 */
7111 static int
7112 coerce_template_template_parm (tree parm,
7113 tree arg,
7114 tsubst_flags_t complain,
7115 tree in_decl,
7116 tree outer_args)
7117 {
7118 if (arg == NULL_TREE || error_operand_p (arg)
7119 || parm == NULL_TREE || error_operand_p (parm))
7120 return 0;
7121
7122 if (TREE_CODE (arg) != TREE_CODE (parm))
7123 return 0;
7124
7125 switch (TREE_CODE (parm))
7126 {
7127 case TEMPLATE_DECL:
7128 /* We encounter instantiations of templates like
7129 template <template <template <class> class> class TT>
7130 class C; */
7131 {
7132 tree parmparm = DECL_INNERMOST_TEMPLATE_PARMS (parm);
7133 tree argparm = DECL_INNERMOST_TEMPLATE_PARMS (arg);
7134
7135 if (!coerce_template_template_parms
7136 (parmparm, argparm, complain, in_decl, outer_args))
7137 return 0;
7138 }
7139 /* Fall through. */
7140
7141 case TYPE_DECL:
7142 if (TEMPLATE_TYPE_PARAMETER_PACK (TREE_TYPE (arg))
7143 && !TEMPLATE_TYPE_PARAMETER_PACK (TREE_TYPE (parm)))
7144 /* Argument is a parameter pack but parameter is not. */
7145 return 0;
7146 break;
7147
7148 case PARM_DECL:
7149 /* The tsubst call is used to handle cases such as
7150
7151 template <int> class C {};
7152 template <class T, template <T> class TT> class D {};
7153 D<int, C> d;
7154
7155 i.e. the parameter list of TT depends on earlier parameters. */
7156 if (!uses_template_parms (TREE_TYPE (arg)))
7157 {
7158 tree t = tsubst (TREE_TYPE (parm), outer_args, complain, in_decl);
7159 if (!uses_template_parms (t)
7160 && !same_type_p (t, TREE_TYPE (arg)))
7161 return 0;
7162 }
7163
7164 if (TEMPLATE_PARM_PARAMETER_PACK (DECL_INITIAL (arg))
7165 && !TEMPLATE_PARM_PARAMETER_PACK (DECL_INITIAL (parm)))
7166 /* Argument is a parameter pack but parameter is not. */
7167 return 0;
7168
7169 break;
7170
7171 default:
7172 gcc_unreachable ();
7173 }
7174
7175 return 1;
7176 }
7177
7178 /* Coerce template argument list ARGLIST for use with template
7179 template-parameter TEMPL. */
7180
7181 static tree
7182 coerce_template_args_for_ttp (tree templ, tree arglist,
7183 tsubst_flags_t complain)
7184 {
7185 /* Consider an example where a template template parameter declared as
7186
7187 template <class T, class U = std::allocator<T> > class TT
7188
7189 The template parameter level of T and U are one level larger than
7190 of TT. To proper process the default argument of U, say when an
7191 instantiation `TT<int>' is seen, we need to build the full
7192 arguments containing {int} as the innermost level. Outer levels,
7193 available when not appearing as default template argument, can be
7194 obtained from the arguments of the enclosing template.
7195
7196 Suppose that TT is later substituted with std::vector. The above
7197 instantiation is `TT<int, std::allocator<T> >' with TT at
7198 level 1, and T at level 2, while the template arguments at level 1
7199 becomes {std::vector} and the inner level 2 is {int}. */
7200
7201 tree outer = DECL_CONTEXT (templ);
7202 if (outer)
7203 {
7204 if (DECL_TEMPLATE_SPECIALIZATION (outer))
7205 /* We want arguments for the partial specialization, not arguments for
7206 the primary template. */
7207 outer = template_parms_to_args (DECL_TEMPLATE_PARMS (outer));
7208 else
7209 outer = TI_ARGS (get_template_info (DECL_TEMPLATE_RESULT (outer)));
7210 }
7211 else if (current_template_parms)
7212 {
7213 /* This is an argument of the current template, so we haven't set
7214 DECL_CONTEXT yet. */
7215 tree relevant_template_parms;
7216
7217 /* Parameter levels that are greater than the level of the given
7218 template template parm are irrelevant. */
7219 relevant_template_parms = current_template_parms;
7220 while (TMPL_PARMS_DEPTH (relevant_template_parms)
7221 != TEMPLATE_TYPE_LEVEL (TREE_TYPE (templ)))
7222 relevant_template_parms = TREE_CHAIN (relevant_template_parms);
7223
7224 outer = template_parms_to_args (relevant_template_parms);
7225 }
7226
7227 if (outer)
7228 arglist = add_to_template_args (outer, arglist);
7229
7230 tree parmlist = DECL_INNERMOST_TEMPLATE_PARMS (templ);
7231 return coerce_template_parms (parmlist, arglist, templ,
7232 complain,
7233 /*require_all_args=*/true,
7234 /*use_default_args=*/true);
7235 }
7236
7237 /* A cache of template template parameters with match-all default
7238 arguments. */
7239 static GTY((deletable)) hash_map<tree,tree> *defaulted_ttp_cache;
7240 static void
7241 store_defaulted_ttp (tree v, tree t)
7242 {
7243 if (!defaulted_ttp_cache)
7244 defaulted_ttp_cache = hash_map<tree,tree>::create_ggc (13);
7245 defaulted_ttp_cache->put (v, t);
7246 }
7247 static tree
7248 lookup_defaulted_ttp (tree v)
7249 {
7250 if (defaulted_ttp_cache)
7251 if (tree *p = defaulted_ttp_cache->get (v))
7252 return *p;
7253 return NULL_TREE;
7254 }
7255
7256 /* T is a bound template template-parameter. Copy its arguments into default
7257 arguments of the template template-parameter's template parameters. */
7258
7259 static tree
7260 add_defaults_to_ttp (tree otmpl)
7261 {
7262 if (tree c = lookup_defaulted_ttp (otmpl))
7263 return c;
7264
7265 tree ntmpl = copy_node (otmpl);
7266
7267 tree ntype = copy_node (TREE_TYPE (otmpl));
7268 TYPE_STUB_DECL (ntype) = TYPE_NAME (ntype) = ntmpl;
7269 TYPE_MAIN_VARIANT (ntype) = ntype;
7270 TYPE_POINTER_TO (ntype) = TYPE_REFERENCE_TO (ntype) = NULL_TREE;
7271 TYPE_NAME (ntype) = ntmpl;
7272 SET_TYPE_STRUCTURAL_EQUALITY (ntype);
7273
7274 tree idx = TEMPLATE_TYPE_PARM_INDEX (ntype)
7275 = copy_node (TEMPLATE_TYPE_PARM_INDEX (ntype));
7276 TEMPLATE_PARM_DECL (idx) = ntmpl;
7277 TREE_TYPE (ntmpl) = TREE_TYPE (idx) = ntype;
7278
7279 tree oparms = DECL_TEMPLATE_PARMS (otmpl);
7280 tree parms = DECL_TEMPLATE_PARMS (ntmpl) = copy_node (oparms);
7281 TREE_CHAIN (parms) = TREE_CHAIN (oparms);
7282 tree vec = TREE_VALUE (parms) = copy_node (TREE_VALUE (parms));
7283 for (int i = 0; i < TREE_VEC_LENGTH (vec); ++i)
7284 {
7285 tree o = TREE_VEC_ELT (vec, i);
7286 if (!template_parameter_pack_p (TREE_VALUE (o)))
7287 {
7288 tree n = TREE_VEC_ELT (vec, i) = copy_node (o);
7289 TREE_PURPOSE (n) = any_targ_node;
7290 }
7291 }
7292
7293 store_defaulted_ttp (otmpl, ntmpl);
7294 return ntmpl;
7295 }
7296
7297 /* ARG is a bound potential template template-argument, and PARGS is a list
7298 of arguments for the corresponding template template-parameter. Adjust
7299 PARGS as appropriate for application to ARG's template, and if ARG is a
7300 BOUND_TEMPLATE_TEMPLATE_PARM, possibly adjust it to add default template
7301 arguments to the template template parameter. */
7302
7303 static tree
7304 coerce_ttp_args_for_tta (tree& arg, tree pargs, tsubst_flags_t complain)
7305 {
7306 ++processing_template_decl;
7307 tree arg_tmpl = TYPE_TI_TEMPLATE (arg);
7308 if (DECL_TEMPLATE_TEMPLATE_PARM_P (arg_tmpl))
7309 {
7310 /* When comparing two template template-parameters in partial ordering,
7311 rewrite the one currently being used as an argument to have default
7312 arguments for all parameters. */
7313 arg_tmpl = add_defaults_to_ttp (arg_tmpl);
7314 pargs = coerce_template_args_for_ttp (arg_tmpl, pargs, complain);
7315 if (pargs != error_mark_node)
7316 arg = bind_template_template_parm (TREE_TYPE (arg_tmpl),
7317 TYPE_TI_ARGS (arg));
7318 }
7319 else
7320 {
7321 tree aparms
7322 = INNERMOST_TEMPLATE_PARMS (DECL_TEMPLATE_PARMS (arg_tmpl));
7323 pargs = coerce_template_parms (aparms, pargs, arg_tmpl, complain,
7324 /*require_all*/true,
7325 /*use_default*/true);
7326 }
7327 --processing_template_decl;
7328 return pargs;
7329 }
7330
7331 /* Subroutine of unify for the case when PARM is a
7332 BOUND_TEMPLATE_TEMPLATE_PARM. */
7333
7334 static int
7335 unify_bound_ttp_args (tree tparms, tree targs, tree parm, tree& arg,
7336 bool explain_p)
7337 {
7338 tree parmvec = TYPE_TI_ARGS (parm);
7339 tree argvec = INNERMOST_TEMPLATE_ARGS (TYPE_TI_ARGS (arg));
7340
7341 /* The template template parm might be variadic and the argument
7342 not, so flatten both argument lists. */
7343 parmvec = expand_template_argument_pack (parmvec);
7344 argvec = expand_template_argument_pack (argvec);
7345
7346 if (flag_new_ttp)
7347 {
7348 /* In keeping with P0522R0, adjust P's template arguments
7349 to apply to A's template; then flatten it again. */
7350 tree nparmvec = parmvec;
7351 nparmvec = coerce_ttp_args_for_tta (arg, parmvec, tf_none);
7352 nparmvec = expand_template_argument_pack (nparmvec);
7353
7354 if (unify (tparms, targs, nparmvec, argvec,
7355 UNIFY_ALLOW_NONE, explain_p))
7356 return 1;
7357
7358 /* If the P0522 adjustment eliminated a pack expansion, deduce
7359 empty packs. */
7360 if (flag_new_ttp
7361 && TREE_VEC_LENGTH (nparmvec) < TREE_VEC_LENGTH (parmvec)
7362 && unify_pack_expansion (tparms, targs, parmvec, argvec,
7363 DEDUCE_EXACT, /*sub*/true, explain_p))
7364 return 1;
7365 }
7366 else
7367 {
7368 /* Deduce arguments T, i from TT<T> or TT<i>.
7369 We check each element of PARMVEC and ARGVEC individually
7370 rather than the whole TREE_VEC since they can have
7371 different number of elements, which is allowed under N2555. */
7372
7373 int len = TREE_VEC_LENGTH (parmvec);
7374
7375 /* Check if the parameters end in a pack, making them
7376 variadic. */
7377 int parm_variadic_p = 0;
7378 if (len > 0
7379 && PACK_EXPANSION_P (TREE_VEC_ELT (parmvec, len - 1)))
7380 parm_variadic_p = 1;
7381
7382 for (int i = 0; i < len - parm_variadic_p; ++i)
7383 /* If the template argument list of P contains a pack
7384 expansion that is not the last template argument, the
7385 entire template argument list is a non-deduced
7386 context. */
7387 if (PACK_EXPANSION_P (TREE_VEC_ELT (parmvec, i)))
7388 return unify_success (explain_p);
7389
7390 if (TREE_VEC_LENGTH (argvec) < len - parm_variadic_p)
7391 return unify_too_few_arguments (explain_p,
7392 TREE_VEC_LENGTH (argvec), len);
7393
7394 for (int i = 0; i < len - parm_variadic_p; ++i)
7395 if (unify (tparms, targs,
7396 TREE_VEC_ELT (parmvec, i),
7397 TREE_VEC_ELT (argvec, i),
7398 UNIFY_ALLOW_NONE, explain_p))
7399 return 1;
7400
7401 if (parm_variadic_p
7402 && unify_pack_expansion (tparms, targs,
7403 parmvec, argvec,
7404 DEDUCE_EXACT,
7405 /*subr=*/true, explain_p))
7406 return 1;
7407 }
7408
7409 return 0;
7410 }
7411
7412 /* Return 1 if PARM_PARMS and ARG_PARMS matches using rule for
7413 template template parameters. Both PARM_PARMS and ARG_PARMS are
7414 vectors of TREE_LIST nodes containing TYPE_DECL, TEMPLATE_DECL
7415 or PARM_DECL.
7416
7417 Consider the example:
7418 template <class T> class A;
7419 template<template <class U> class TT> class B;
7420
7421 For B<A>, PARM_PARMS are the parameters to TT, while ARG_PARMS are
7422 the parameters to A, and OUTER_ARGS contains A. */
7423
7424 static int
7425 coerce_template_template_parms (tree parm_parms,
7426 tree arg_parms,
7427 tsubst_flags_t complain,
7428 tree in_decl,
7429 tree outer_args)
7430 {
7431 int nparms, nargs, i;
7432 tree parm, arg;
7433 int variadic_p = 0;
7434
7435 gcc_assert (TREE_CODE (parm_parms) == TREE_VEC);
7436 gcc_assert (TREE_CODE (arg_parms) == TREE_VEC);
7437
7438 nparms = TREE_VEC_LENGTH (parm_parms);
7439 nargs = TREE_VEC_LENGTH (arg_parms);
7440
7441 if (flag_new_ttp)
7442 {
7443 /* P0522R0: A template template-parameter P is at least as specialized as
7444 a template template-argument A if, given the following rewrite to two
7445 function templates, the function template corresponding to P is at
7446 least as specialized as the function template corresponding to A
7447 according to the partial ordering rules for function templates
7448 ([temp.func.order]). Given an invented class template X with the
7449 template parameter list of A (including default arguments):
7450
7451 * Each of the two function templates has the same template parameters,
7452 respectively, as P or A.
7453
7454 * Each function template has a single function parameter whose type is
7455 a specialization of X with template arguments corresponding to the
7456 template parameters from the respective function template where, for
7457 each template parameter PP in the template parameter list of the
7458 function template, a corresponding template argument AA is formed. If
7459 PP declares a parameter pack, then AA is the pack expansion
7460 PP... ([temp.variadic]); otherwise, AA is the id-expression PP.
7461
7462 If the rewrite produces an invalid type, then P is not at least as
7463 specialized as A. */
7464
7465 /* So coerce P's args to apply to A's parms, and then deduce between A's
7466 args and the converted args. If that succeeds, A is at least as
7467 specialized as P, so they match.*/
7468 tree pargs = template_parms_level_to_args (parm_parms);
7469 ++processing_template_decl;
7470 pargs = coerce_template_parms (arg_parms, pargs, NULL_TREE, tf_none,
7471 /*require_all*/true, /*use_default*/true);
7472 --processing_template_decl;
7473 if (pargs != error_mark_node)
7474 {
7475 tree targs = make_tree_vec (nargs);
7476 tree aargs = template_parms_level_to_args (arg_parms);
7477 if (!unify (arg_parms, targs, aargs, pargs, UNIFY_ALLOW_NONE,
7478 /*explain*/false))
7479 return 1;
7480 }
7481 }
7482
7483 /* Determine whether we have a parameter pack at the end of the
7484 template template parameter's template parameter list. */
7485 if (TREE_VEC_ELT (parm_parms, nparms - 1) != error_mark_node)
7486 {
7487 parm = TREE_VALUE (TREE_VEC_ELT (parm_parms, nparms - 1));
7488
7489 if (error_operand_p (parm))
7490 return 0;
7491
7492 switch (TREE_CODE (parm))
7493 {
7494 case TEMPLATE_DECL:
7495 case TYPE_DECL:
7496 if (TEMPLATE_TYPE_PARAMETER_PACK (TREE_TYPE (parm)))
7497 variadic_p = 1;
7498 break;
7499
7500 case PARM_DECL:
7501 if (TEMPLATE_PARM_PARAMETER_PACK (DECL_INITIAL (parm)))
7502 variadic_p = 1;
7503 break;
7504
7505 default:
7506 gcc_unreachable ();
7507 }
7508 }
7509
7510 if (nargs != nparms
7511 && !(variadic_p && nargs >= nparms - 1))
7512 return 0;
7513
7514 /* Check all of the template parameters except the parameter pack at
7515 the end (if any). */
7516 for (i = 0; i < nparms - variadic_p; ++i)
7517 {
7518 if (TREE_VEC_ELT (parm_parms, i) == error_mark_node
7519 || TREE_VEC_ELT (arg_parms, i) == error_mark_node)
7520 continue;
7521
7522 parm = TREE_VALUE (TREE_VEC_ELT (parm_parms, i));
7523 arg = TREE_VALUE (TREE_VEC_ELT (arg_parms, i));
7524
7525 if (!coerce_template_template_parm (parm, arg, complain, in_decl,
7526 outer_args))
7527 return 0;
7528
7529 }
7530
7531 if (variadic_p)
7532 {
7533 /* Check each of the template parameters in the template
7534 argument against the template parameter pack at the end of
7535 the template template parameter. */
7536 if (TREE_VEC_ELT (parm_parms, i) == error_mark_node)
7537 return 0;
7538
7539 parm = TREE_VALUE (TREE_VEC_ELT (parm_parms, i));
7540
7541 for (; i < nargs; ++i)
7542 {
7543 if (TREE_VEC_ELT (arg_parms, i) == error_mark_node)
7544 continue;
7545
7546 arg = TREE_VALUE (TREE_VEC_ELT (arg_parms, i));
7547
7548 if (!coerce_template_template_parm (parm, arg, complain, in_decl,
7549 outer_args))
7550 return 0;
7551 }
7552 }
7553
7554 return 1;
7555 }
7556
7557 /* Verifies that the deduced template arguments (in TARGS) for the
7558 template template parameters (in TPARMS) represent valid bindings,
7559 by comparing the template parameter list of each template argument
7560 to the template parameter list of its corresponding template
7561 template parameter, in accordance with DR150. This
7562 routine can only be called after all template arguments have been
7563 deduced. It will return TRUE if all of the template template
7564 parameter bindings are okay, FALSE otherwise. */
7565 bool
7566 template_template_parm_bindings_ok_p (tree tparms, tree targs)
7567 {
7568 int i, ntparms = TREE_VEC_LENGTH (tparms);
7569 bool ret = true;
7570
7571 /* We're dealing with template parms in this process. */
7572 ++processing_template_decl;
7573
7574 targs = INNERMOST_TEMPLATE_ARGS (targs);
7575
7576 for (i = 0; i < ntparms; ++i)
7577 {
7578 tree tparm = TREE_VALUE (TREE_VEC_ELT (tparms, i));
7579 tree targ = TREE_VEC_ELT (targs, i);
7580
7581 if (TREE_CODE (tparm) == TEMPLATE_DECL && targ)
7582 {
7583 tree packed_args = NULL_TREE;
7584 int idx, len = 1;
7585
7586 if (ARGUMENT_PACK_P (targ))
7587 {
7588 /* Look inside the argument pack. */
7589 packed_args = ARGUMENT_PACK_ARGS (targ);
7590 len = TREE_VEC_LENGTH (packed_args);
7591 }
7592
7593 for (idx = 0; idx < len; ++idx)
7594 {
7595 tree targ_parms = NULL_TREE;
7596
7597 if (packed_args)
7598 /* Extract the next argument from the argument
7599 pack. */
7600 targ = TREE_VEC_ELT (packed_args, idx);
7601
7602 if (PACK_EXPANSION_P (targ))
7603 /* Look at the pattern of the pack expansion. */
7604 targ = PACK_EXPANSION_PATTERN (targ);
7605
7606 /* Extract the template parameters from the template
7607 argument. */
7608 if (TREE_CODE (targ) == TEMPLATE_DECL)
7609 targ_parms = DECL_INNERMOST_TEMPLATE_PARMS (targ);
7610 else if (TREE_CODE (targ) == TEMPLATE_TEMPLATE_PARM)
7611 targ_parms = DECL_INNERMOST_TEMPLATE_PARMS (TYPE_NAME (targ));
7612
7613 /* Verify that we can coerce the template template
7614 parameters from the template argument to the template
7615 parameter. This requires an exact match. */
7616 if (targ_parms
7617 && !coerce_template_template_parms
7618 (DECL_INNERMOST_TEMPLATE_PARMS (tparm),
7619 targ_parms,
7620 tf_none,
7621 tparm,
7622 targs))
7623 {
7624 ret = false;
7625 goto out;
7626 }
7627 }
7628 }
7629 }
7630
7631 out:
7632
7633 --processing_template_decl;
7634 return ret;
7635 }
7636
7637 /* Since type attributes aren't mangled, we need to strip them from
7638 template type arguments. */
7639
7640 static tree
7641 canonicalize_type_argument (tree arg, tsubst_flags_t complain)
7642 {
7643 if (!arg || arg == error_mark_node || arg == TYPE_CANONICAL (arg))
7644 return arg;
7645 bool removed_attributes = false;
7646 tree canon = strip_typedefs (arg, &removed_attributes);
7647 if (removed_attributes
7648 && (complain & tf_warning))
7649 warning (OPT_Wignored_attributes,
7650 "ignoring attributes on template argument %qT", arg);
7651 return canon;
7652 }
7653
7654 /* And from inside dependent non-type arguments like sizeof(Type). */
7655
7656 static tree
7657 canonicalize_expr_argument (tree arg, tsubst_flags_t complain)
7658 {
7659 if (!arg || arg == error_mark_node)
7660 return arg;
7661 bool removed_attributes = false;
7662 tree canon = strip_typedefs_expr (arg, &removed_attributes);
7663 if (removed_attributes
7664 && (complain & tf_warning))
7665 warning (OPT_Wignored_attributes,
7666 "ignoring attributes in template argument %qE", arg);
7667 return canon;
7668 }
7669
7670 // A template declaration can be substituted for a constrained
7671 // template template parameter only when the argument is more
7672 // constrained than the parameter.
7673 static bool
7674 is_compatible_template_arg (tree parm, tree arg)
7675 {
7676 tree parm_cons = get_constraints (parm);
7677
7678 /* For now, allow constrained template template arguments
7679 and unconstrained template template parameters. */
7680 if (parm_cons == NULL_TREE)
7681 return true;
7682
7683 tree arg_cons = get_constraints (arg);
7684
7685 // If the template parameter is constrained, we need to rewrite its
7686 // constraints in terms of the ARG's template parameters. This ensures
7687 // that all of the template parameter types will have the same depth.
7688 //
7689 // Note that this is only valid when coerce_template_template_parm is
7690 // true for the innermost template parameters of PARM and ARG. In other
7691 // words, because coercion is successful, this conversion will be valid.
7692 if (parm_cons)
7693 {
7694 tree args = template_parms_to_args (DECL_TEMPLATE_PARMS (arg));
7695 parm_cons = tsubst_constraint_info (parm_cons,
7696 INNERMOST_TEMPLATE_ARGS (args),
7697 tf_none, NULL_TREE);
7698 if (parm_cons == error_mark_node)
7699 return false;
7700 }
7701
7702 return subsumes (parm_cons, arg_cons);
7703 }
7704
7705 // Convert a placeholder argument into a binding to the original
7706 // parameter. The original parameter is saved as the TREE_TYPE of
7707 // ARG.
7708 static inline tree
7709 convert_wildcard_argument (tree parm, tree arg)
7710 {
7711 TREE_TYPE (arg) = parm;
7712 return arg;
7713 }
7714
7715 /* We can't fully resolve ARG given as a non-type template argument to TYPE,
7716 because one of them is dependent. But we need to represent the
7717 conversion for the benefit of cp_tree_equal. */
7718
7719 static tree
7720 maybe_convert_nontype_argument (tree type, tree arg)
7721 {
7722 /* Auto parms get no conversion. */
7723 if (type_uses_auto (type))
7724 return arg;
7725 /* We don't need or want to add this conversion now if we're going to use the
7726 argument for deduction. */
7727 if (value_dependent_expression_p (arg))
7728 return arg;
7729
7730 type = cv_unqualified (type);
7731 tree argtype = TREE_TYPE (arg);
7732 if (same_type_p (type, argtype))
7733 return arg;
7734
7735 arg = build1 (IMPLICIT_CONV_EXPR, type, arg);
7736 IMPLICIT_CONV_EXPR_NONTYPE_ARG (arg) = true;
7737 return arg;
7738 }
7739
7740 /* Convert the indicated template ARG as necessary to match the
7741 indicated template PARM. Returns the converted ARG, or
7742 error_mark_node if the conversion was unsuccessful. Error and
7743 warning messages are issued under control of COMPLAIN. This
7744 conversion is for the Ith parameter in the parameter list. ARGS is
7745 the full set of template arguments deduced so far. */
7746
7747 static tree
7748 convert_template_argument (tree parm,
7749 tree arg,
7750 tree args,
7751 tsubst_flags_t complain,
7752 int i,
7753 tree in_decl)
7754 {
7755 tree orig_arg;
7756 tree val;
7757 int is_type, requires_type, is_tmpl_type, requires_tmpl_type;
7758
7759 if (parm == error_mark_node)
7760 return error_mark_node;
7761
7762 /* Trivially convert placeholders. */
7763 if (TREE_CODE (arg) == WILDCARD_DECL)
7764 return convert_wildcard_argument (parm, arg);
7765
7766 if (arg == any_targ_node)
7767 return arg;
7768
7769 if (TREE_CODE (arg) == TREE_LIST
7770 && TREE_CODE (TREE_VALUE (arg)) == OFFSET_REF)
7771 {
7772 /* The template argument was the name of some
7773 member function. That's usually
7774 invalid, but static members are OK. In any
7775 case, grab the underlying fields/functions
7776 and issue an error later if required. */
7777 orig_arg = TREE_VALUE (arg);
7778 TREE_TYPE (arg) = unknown_type_node;
7779 }
7780
7781 orig_arg = arg;
7782
7783 requires_tmpl_type = TREE_CODE (parm) == TEMPLATE_DECL;
7784 requires_type = (TREE_CODE (parm) == TYPE_DECL
7785 || requires_tmpl_type);
7786
7787 /* When determining whether an argument pack expansion is a template,
7788 look at the pattern. */
7789 if (TREE_CODE (arg) == TYPE_PACK_EXPANSION)
7790 arg = PACK_EXPANSION_PATTERN (arg);
7791
7792 /* Deal with an injected-class-name used as a template template arg. */
7793 if (requires_tmpl_type && CLASS_TYPE_P (arg))
7794 {
7795 tree t = maybe_get_template_decl_from_type_decl (TYPE_NAME (arg));
7796 if (TREE_CODE (t) == TEMPLATE_DECL)
7797 {
7798 if (cxx_dialect >= cxx11)
7799 /* OK under DR 1004. */;
7800 else if (complain & tf_warning_or_error)
7801 pedwarn (input_location, OPT_Wpedantic, "injected-class-name %qD"
7802 " used as template template argument", TYPE_NAME (arg));
7803 else if (flag_pedantic_errors)
7804 t = arg;
7805
7806 arg = t;
7807 }
7808 }
7809
7810 is_tmpl_type =
7811 ((TREE_CODE (arg) == TEMPLATE_DECL
7812 && TREE_CODE (DECL_TEMPLATE_RESULT (arg)) == TYPE_DECL)
7813 || (requires_tmpl_type && TREE_CODE (arg) == TYPE_ARGUMENT_PACK)
7814 || TREE_CODE (arg) == TEMPLATE_TEMPLATE_PARM
7815 || TREE_CODE (arg) == UNBOUND_CLASS_TEMPLATE);
7816
7817 if (is_tmpl_type
7818 && (TREE_CODE (arg) == TEMPLATE_TEMPLATE_PARM
7819 || TREE_CODE (arg) == UNBOUND_CLASS_TEMPLATE))
7820 arg = TYPE_STUB_DECL (arg);
7821
7822 is_type = TYPE_P (arg) || is_tmpl_type;
7823
7824 if (requires_type && ! is_type && TREE_CODE (arg) == SCOPE_REF
7825 && TREE_CODE (TREE_OPERAND (arg, 0)) == TEMPLATE_TYPE_PARM)
7826 {
7827 if (TREE_CODE (TREE_OPERAND (arg, 1)) == BIT_NOT_EXPR)
7828 {
7829 if (complain & tf_error)
7830 error ("invalid use of destructor %qE as a type", orig_arg);
7831 return error_mark_node;
7832 }
7833
7834 permerror (input_location,
7835 "to refer to a type member of a template parameter, "
7836 "use %<typename %E%>", orig_arg);
7837
7838 orig_arg = make_typename_type (TREE_OPERAND (arg, 0),
7839 TREE_OPERAND (arg, 1),
7840 typename_type,
7841 complain);
7842 arg = orig_arg;
7843 is_type = 1;
7844 }
7845 if (is_type != requires_type)
7846 {
7847 if (in_decl)
7848 {
7849 if (complain & tf_error)
7850 {
7851 error ("type/value mismatch at argument %d in template "
7852 "parameter list for %qD",
7853 i + 1, in_decl);
7854 if (is_type)
7855 inform (input_location,
7856 " expected a constant of type %qT, got %qT",
7857 TREE_TYPE (parm),
7858 (DECL_P (arg) ? DECL_NAME (arg) : orig_arg));
7859 else if (requires_tmpl_type)
7860 inform (input_location,
7861 " expected a class template, got %qE", orig_arg);
7862 else
7863 inform (input_location,
7864 " expected a type, got %qE", orig_arg);
7865 }
7866 }
7867 return error_mark_node;
7868 }
7869 if (is_tmpl_type ^ requires_tmpl_type)
7870 {
7871 if (in_decl && (complain & tf_error))
7872 {
7873 error ("type/value mismatch at argument %d in template "
7874 "parameter list for %qD",
7875 i + 1, in_decl);
7876 if (is_tmpl_type)
7877 inform (input_location,
7878 " expected a type, got %qT", DECL_NAME (arg));
7879 else
7880 inform (input_location,
7881 " expected a class template, got %qT", orig_arg);
7882 }
7883 return error_mark_node;
7884 }
7885
7886 if (template_parameter_pack_p (parm) && ARGUMENT_PACK_P (orig_arg))
7887 /* We already did the appropriate conversion when packing args. */
7888 val = orig_arg;
7889 else if (is_type)
7890 {
7891 if (requires_tmpl_type)
7892 {
7893 if (TREE_CODE (TREE_TYPE (arg)) == UNBOUND_CLASS_TEMPLATE)
7894 /* The number of argument required is not known yet.
7895 Just accept it for now. */
7896 val = orig_arg;
7897 else
7898 {
7899 tree parmparm = DECL_INNERMOST_TEMPLATE_PARMS (parm);
7900 tree argparm;
7901
7902 /* Strip alias templates that are equivalent to another
7903 template. */
7904 arg = get_underlying_template (arg);
7905 argparm = DECL_INNERMOST_TEMPLATE_PARMS (arg);
7906
7907 if (coerce_template_template_parms (parmparm, argparm,
7908 complain, in_decl,
7909 args))
7910 {
7911 val = arg;
7912
7913 /* TEMPLATE_TEMPLATE_PARM node is preferred over
7914 TEMPLATE_DECL. */
7915 if (val != error_mark_node)
7916 {
7917 if (DECL_TEMPLATE_TEMPLATE_PARM_P (val))
7918 val = TREE_TYPE (val);
7919 if (TREE_CODE (orig_arg) == TYPE_PACK_EXPANSION)
7920 val = make_pack_expansion (val, complain);
7921 }
7922 }
7923 else
7924 {
7925 if (in_decl && (complain & tf_error))
7926 {
7927 error ("type/value mismatch at argument %d in "
7928 "template parameter list for %qD",
7929 i + 1, in_decl);
7930 inform (input_location,
7931 " expected a template of type %qD, got %qT",
7932 parm, orig_arg);
7933 }
7934
7935 val = error_mark_node;
7936 }
7937
7938 // Check that the constraints are compatible before allowing the
7939 // substitution.
7940 if (val != error_mark_node)
7941 if (!is_compatible_template_arg (parm, arg))
7942 {
7943 if (in_decl && (complain & tf_error))
7944 {
7945 error ("constraint mismatch at argument %d in "
7946 "template parameter list for %qD",
7947 i + 1, in_decl);
7948 inform (input_location, " expected %qD but got %qD",
7949 parm, arg);
7950 }
7951 val = error_mark_node;
7952 }
7953 }
7954 }
7955 else
7956 val = orig_arg;
7957 /* We only form one instance of each template specialization.
7958 Therefore, if we use a non-canonical variant (i.e., a
7959 typedef), any future messages referring to the type will use
7960 the typedef, which is confusing if those future uses do not
7961 themselves also use the typedef. */
7962 if (TYPE_P (val))
7963 val = canonicalize_type_argument (val, complain);
7964 }
7965 else
7966 {
7967 tree t = TREE_TYPE (parm);
7968
7969 if (TEMPLATE_PARM_LEVEL (get_template_parm_index (parm))
7970 > TMPL_ARGS_DEPTH (args))
7971 /* We don't have enough levels of args to do any substitution. This
7972 can happen in the context of -fnew-ttp-matching. */;
7973 else if (tree a = type_uses_auto (t))
7974 {
7975 t = do_auto_deduction (t, arg, a, complain, adc_unify, args);
7976 if (t == error_mark_node)
7977 return error_mark_node;
7978 }
7979 else
7980 t = tsubst (t, args, complain, in_decl);
7981
7982 if (invalid_nontype_parm_type_p (t, complain))
7983 return error_mark_node;
7984
7985 if (!type_dependent_expression_p (orig_arg)
7986 && !uses_template_parms (t))
7987 /* We used to call digest_init here. However, digest_init
7988 will report errors, which we don't want when complain
7989 is zero. More importantly, digest_init will try too
7990 hard to convert things: for example, `0' should not be
7991 converted to pointer type at this point according to
7992 the standard. Accepting this is not merely an
7993 extension, since deciding whether or not these
7994 conversions can occur is part of determining which
7995 function template to call, or whether a given explicit
7996 argument specification is valid. */
7997 val = convert_nontype_argument (t, orig_arg, complain);
7998 else
7999 {
8000 val = canonicalize_expr_argument (orig_arg, complain);
8001 val = maybe_convert_nontype_argument (t, val);
8002 }
8003
8004
8005 if (val == NULL_TREE)
8006 val = error_mark_node;
8007 else if (val == error_mark_node && (complain & tf_error))
8008 error ("could not convert template argument %qE from %qT to %qT",
8009 orig_arg, TREE_TYPE (orig_arg), t);
8010
8011 if (INDIRECT_REF_P (val))
8012 {
8013 /* Reject template arguments that are references to built-in
8014 functions with no library fallbacks. */
8015 const_tree inner = TREE_OPERAND (val, 0);
8016 const_tree innertype = TREE_TYPE (inner);
8017 if (innertype
8018 && TYPE_REF_P (innertype)
8019 && TREE_CODE (TREE_TYPE (innertype)) == FUNCTION_TYPE
8020 && TREE_OPERAND_LENGTH (inner) > 0
8021 && reject_gcc_builtin (TREE_OPERAND (inner, 0)))
8022 return error_mark_node;
8023 }
8024
8025 if (TREE_CODE (val) == SCOPE_REF)
8026 {
8027 /* Strip typedefs from the SCOPE_REF. */
8028 tree type = canonicalize_type_argument (TREE_TYPE (val), complain);
8029 tree scope = canonicalize_type_argument (TREE_OPERAND (val, 0),
8030 complain);
8031 val = build_qualified_name (type, scope, TREE_OPERAND (val, 1),
8032 QUALIFIED_NAME_IS_TEMPLATE (val));
8033 }
8034 }
8035
8036 return val;
8037 }
8038
8039 /* Coerces the remaining template arguments in INNER_ARGS (from
8040 ARG_IDX to the end) into the parameter pack at PARM_IDX in PARMS.
8041 Returns the coerced argument pack. PARM_IDX is the position of this
8042 parameter in the template parameter list. ARGS is the original
8043 template argument list. */
8044 static tree
8045 coerce_template_parameter_pack (tree parms,
8046 int parm_idx,
8047 tree args,
8048 tree inner_args,
8049 int arg_idx,
8050 tree new_args,
8051 int* lost,
8052 tree in_decl,
8053 tsubst_flags_t complain)
8054 {
8055 tree parm = TREE_VEC_ELT (parms, parm_idx);
8056 int nargs = inner_args ? NUM_TMPL_ARGS (inner_args) : 0;
8057 tree packed_args;
8058 tree argument_pack;
8059 tree packed_parms = NULL_TREE;
8060
8061 if (arg_idx > nargs)
8062 arg_idx = nargs;
8063
8064 if (tree packs = fixed_parameter_pack_p (TREE_VALUE (parm)))
8065 {
8066 /* When the template parameter is a non-type template parameter pack
8067 or template template parameter pack whose type or template
8068 parameters use parameter packs, we know exactly how many arguments
8069 we are looking for. Build a vector of the instantiated decls for
8070 these template parameters in PACKED_PARMS. */
8071 /* We can't use make_pack_expansion here because it would interpret a
8072 _DECL as a use rather than a declaration. */
8073 tree decl = TREE_VALUE (parm);
8074 tree exp = cxx_make_type (TYPE_PACK_EXPANSION);
8075 SET_PACK_EXPANSION_PATTERN (exp, decl);
8076 PACK_EXPANSION_PARAMETER_PACKS (exp) = packs;
8077 SET_TYPE_STRUCTURAL_EQUALITY (exp);
8078
8079 TREE_VEC_LENGTH (args)--;
8080 packed_parms = tsubst_pack_expansion (exp, args, complain, decl);
8081 TREE_VEC_LENGTH (args)++;
8082
8083 if (packed_parms == error_mark_node)
8084 return error_mark_node;
8085
8086 /* If we're doing a partial instantiation of a member template,
8087 verify that all of the types used for the non-type
8088 template parameter pack are, in fact, valid for non-type
8089 template parameters. */
8090 if (arg_idx < nargs
8091 && PACK_EXPANSION_P (TREE_VEC_ELT (inner_args, arg_idx)))
8092 {
8093 int j, len = TREE_VEC_LENGTH (packed_parms);
8094 for (j = 0; j < len; ++j)
8095 {
8096 tree t = TREE_TYPE (TREE_VEC_ELT (packed_parms, j));
8097 if (invalid_nontype_parm_type_p (t, complain))
8098 return error_mark_node;
8099 }
8100 /* We don't know how many args we have yet, just
8101 use the unconverted ones for now. */
8102 return NULL_TREE;
8103 }
8104
8105 packed_args = make_tree_vec (TREE_VEC_LENGTH (packed_parms));
8106 }
8107 /* Check if we have a placeholder pack, which indicates we're
8108 in the context of a introduction list. In that case we want
8109 to match this pack to the single placeholder. */
8110 else if (arg_idx < nargs
8111 && TREE_CODE (TREE_VEC_ELT (inner_args, arg_idx)) == WILDCARD_DECL
8112 && WILDCARD_PACK_P (TREE_VEC_ELT (inner_args, arg_idx)))
8113 {
8114 nargs = arg_idx + 1;
8115 packed_args = make_tree_vec (1);
8116 }
8117 else
8118 packed_args = make_tree_vec (nargs - arg_idx);
8119
8120 /* Convert the remaining arguments, which will be a part of the
8121 parameter pack "parm". */
8122 int first_pack_arg = arg_idx;
8123 for (; arg_idx < nargs; ++arg_idx)
8124 {
8125 tree arg = TREE_VEC_ELT (inner_args, arg_idx);
8126 tree actual_parm = TREE_VALUE (parm);
8127 int pack_idx = arg_idx - first_pack_arg;
8128
8129 if (packed_parms)
8130 {
8131 /* Once we've packed as many args as we have types, stop. */
8132 if (pack_idx >= TREE_VEC_LENGTH (packed_parms))
8133 break;
8134 else if (PACK_EXPANSION_P (arg))
8135 /* We don't know how many args we have yet, just
8136 use the unconverted ones for now. */
8137 return NULL_TREE;
8138 else
8139 actual_parm = TREE_VEC_ELT (packed_parms, pack_idx);
8140 }
8141
8142 if (arg == error_mark_node)
8143 {
8144 if (complain & tf_error)
8145 error ("template argument %d is invalid", arg_idx + 1);
8146 }
8147 else
8148 arg = convert_template_argument (actual_parm,
8149 arg, new_args, complain, parm_idx,
8150 in_decl);
8151 if (arg == error_mark_node)
8152 (*lost)++;
8153 TREE_VEC_ELT (packed_args, pack_idx) = arg;
8154 }
8155
8156 if (arg_idx - first_pack_arg < TREE_VEC_LENGTH (packed_args)
8157 && TREE_VEC_LENGTH (packed_args) > 0)
8158 {
8159 if (complain & tf_error)
8160 error ("wrong number of template arguments (%d, should be %d)",
8161 arg_idx - first_pack_arg, TREE_VEC_LENGTH (packed_args));
8162 return error_mark_node;
8163 }
8164
8165 if (TREE_CODE (TREE_VALUE (parm)) == TYPE_DECL
8166 || TREE_CODE (TREE_VALUE (parm)) == TEMPLATE_DECL)
8167 argument_pack = cxx_make_type (TYPE_ARGUMENT_PACK);
8168 else
8169 {
8170 argument_pack = make_node (NONTYPE_ARGUMENT_PACK);
8171 TREE_CONSTANT (argument_pack) = 1;
8172 }
8173
8174 SET_ARGUMENT_PACK_ARGS (argument_pack, packed_args);
8175 if (CHECKING_P)
8176 SET_NON_DEFAULT_TEMPLATE_ARGS_COUNT (packed_args,
8177 TREE_VEC_LENGTH (packed_args));
8178 return argument_pack;
8179 }
8180
8181 /* Returns the number of pack expansions in the template argument vector
8182 ARGS. */
8183
8184 static int
8185 pack_expansion_args_count (tree args)
8186 {
8187 int i;
8188 int count = 0;
8189 if (args)
8190 for (i = 0; i < TREE_VEC_LENGTH (args); ++i)
8191 {
8192 tree elt = TREE_VEC_ELT (args, i);
8193 if (elt && PACK_EXPANSION_P (elt))
8194 ++count;
8195 }
8196 return count;
8197 }
8198
8199 /* Convert all template arguments to their appropriate types, and
8200 return a vector containing the innermost resulting template
8201 arguments. If any error occurs, return error_mark_node. Error and
8202 warning messages are issued under control of COMPLAIN.
8203
8204 If REQUIRE_ALL_ARGS is false, argument deduction will be performed
8205 for arguments not specified in ARGS. Otherwise, if
8206 USE_DEFAULT_ARGS is true, default arguments will be used to fill in
8207 unspecified arguments. If REQUIRE_ALL_ARGS is true, but
8208 USE_DEFAULT_ARGS is false, then all arguments must be specified in
8209 ARGS. */
8210
8211 static tree
8212 coerce_template_parms (tree parms,
8213 tree args,
8214 tree in_decl,
8215 tsubst_flags_t complain,
8216 bool require_all_args,
8217 bool use_default_args)
8218 {
8219 int nparms, nargs, parm_idx, arg_idx, lost = 0;
8220 tree orig_inner_args;
8221 tree inner_args;
8222 tree new_args;
8223 tree new_inner_args;
8224 int saved_unevaluated_operand;
8225 int saved_inhibit_evaluation_warnings;
8226
8227 /* When used as a boolean value, indicates whether this is a
8228 variadic template parameter list. Since it's an int, we can also
8229 subtract it from nparms to get the number of non-variadic
8230 parameters. */
8231 int variadic_p = 0;
8232 int variadic_args_p = 0;
8233 int post_variadic_parms = 0;
8234
8235 /* Adjustment to nparms for fixed parameter packs. */
8236 int fixed_pack_adjust = 0;
8237 int fixed_packs = 0;
8238 int missing = 0;
8239
8240 /* Likewise for parameters with default arguments. */
8241 int default_p = 0;
8242
8243 if (args == error_mark_node)
8244 return error_mark_node;
8245
8246 nparms = TREE_VEC_LENGTH (parms);
8247
8248 /* Determine if there are any parameter packs or default arguments. */
8249 for (parm_idx = 0; parm_idx < nparms; ++parm_idx)
8250 {
8251 tree parm = TREE_VEC_ELT (parms, parm_idx);
8252 if (variadic_p)
8253 ++post_variadic_parms;
8254 if (template_parameter_pack_p (TREE_VALUE (parm)))
8255 ++variadic_p;
8256 if (TREE_PURPOSE (parm))
8257 ++default_p;
8258 }
8259
8260 inner_args = orig_inner_args = INNERMOST_TEMPLATE_ARGS (args);
8261 /* If there are no parameters that follow a parameter pack, we need to
8262 expand any argument packs so that we can deduce a parameter pack from
8263 some non-packed args followed by an argument pack, as in variadic85.C.
8264 If there are such parameters, we need to leave argument packs intact
8265 so the arguments are assigned properly. This can happen when dealing
8266 with a nested class inside a partial specialization of a class
8267 template, as in variadic92.C, or when deducing a template parameter pack
8268 from a sub-declarator, as in variadic114.C. */
8269 if (!post_variadic_parms)
8270 inner_args = expand_template_argument_pack (inner_args);
8271
8272 /* Count any pack expansion args. */
8273 variadic_args_p = pack_expansion_args_count (inner_args);
8274
8275 nargs = inner_args ? NUM_TMPL_ARGS (inner_args) : 0;
8276 if ((nargs - variadic_args_p > nparms && !variadic_p)
8277 || (nargs < nparms - variadic_p
8278 && require_all_args
8279 && !variadic_args_p
8280 && (!use_default_args
8281 || (TREE_VEC_ELT (parms, nargs) != error_mark_node
8282 && !TREE_PURPOSE (TREE_VEC_ELT (parms, nargs))))))
8283 {
8284 bad_nargs:
8285 if (complain & tf_error)
8286 {
8287 if (variadic_p || default_p)
8288 {
8289 nparms -= variadic_p + default_p;
8290 error ("wrong number of template arguments "
8291 "(%d, should be at least %d)", nargs, nparms);
8292 }
8293 else
8294 error ("wrong number of template arguments "
8295 "(%d, should be %d)", nargs, nparms);
8296
8297 if (in_decl)
8298 inform (DECL_SOURCE_LOCATION (in_decl),
8299 "provided for %qD", in_decl);
8300 }
8301
8302 return error_mark_node;
8303 }
8304 /* We can't pass a pack expansion to a non-pack parameter of an alias
8305 template (DR 1430). */
8306 else if (in_decl
8307 && (DECL_ALIAS_TEMPLATE_P (in_decl)
8308 || concept_template_p (in_decl))
8309 && variadic_args_p
8310 && nargs - variadic_args_p < nparms - variadic_p)
8311 {
8312 if (complain & tf_error)
8313 {
8314 for (int i = 0; i < TREE_VEC_LENGTH (inner_args); ++i)
8315 {
8316 tree arg = TREE_VEC_ELT (inner_args, i);
8317 tree parm = TREE_VALUE (TREE_VEC_ELT (parms, i));
8318
8319 if (PACK_EXPANSION_P (arg)
8320 && !template_parameter_pack_p (parm))
8321 {
8322 if (DECL_ALIAS_TEMPLATE_P (in_decl))
8323 error_at (location_of (arg),
8324 "pack expansion argument for non-pack parameter "
8325 "%qD of alias template %qD", parm, in_decl);
8326 else
8327 error_at (location_of (arg),
8328 "pack expansion argument for non-pack parameter "
8329 "%qD of concept %qD", parm, in_decl);
8330 inform (DECL_SOURCE_LOCATION (parm), "declared here");
8331 goto found;
8332 }
8333 }
8334 gcc_unreachable ();
8335 found:;
8336 }
8337 return error_mark_node;
8338 }
8339
8340 /* We need to evaluate the template arguments, even though this
8341 template-id may be nested within a "sizeof". */
8342 saved_unevaluated_operand = cp_unevaluated_operand;
8343 cp_unevaluated_operand = 0;
8344 saved_inhibit_evaluation_warnings = c_inhibit_evaluation_warnings;
8345 c_inhibit_evaluation_warnings = 0;
8346 new_inner_args = make_tree_vec (nparms);
8347 new_args = add_outermost_template_args (args, new_inner_args);
8348 int pack_adjust = 0;
8349 for (parm_idx = 0, arg_idx = 0; parm_idx < nparms; parm_idx++, arg_idx++)
8350 {
8351 tree arg;
8352 tree parm;
8353
8354 /* Get the Ith template parameter. */
8355 parm = TREE_VEC_ELT (parms, parm_idx);
8356
8357 if (parm == error_mark_node)
8358 {
8359 TREE_VEC_ELT (new_inner_args, arg_idx) = error_mark_node;
8360 continue;
8361 }
8362
8363 /* Calculate the next argument. */
8364 if (arg_idx < nargs)
8365 arg = TREE_VEC_ELT (inner_args, arg_idx);
8366 else
8367 arg = NULL_TREE;
8368
8369 if (template_parameter_pack_p (TREE_VALUE (parm))
8370 && !(arg && ARGUMENT_PACK_P (arg)))
8371 {
8372 /* Some arguments will be placed in the
8373 template parameter pack PARM. */
8374 arg = coerce_template_parameter_pack (parms, parm_idx, args,
8375 inner_args, arg_idx,
8376 new_args, &lost,
8377 in_decl, complain);
8378
8379 if (arg == NULL_TREE)
8380 {
8381 /* We don't know how many args we have yet, just use the
8382 unconverted (and still packed) ones for now. */
8383 new_inner_args = orig_inner_args;
8384 arg_idx = nargs;
8385 break;
8386 }
8387
8388 TREE_VEC_ELT (new_inner_args, parm_idx) = arg;
8389
8390 /* Store this argument. */
8391 if (arg == error_mark_node)
8392 {
8393 lost++;
8394 /* We are done with all of the arguments. */
8395 arg_idx = nargs;
8396 break;
8397 }
8398 else
8399 {
8400 pack_adjust = TREE_VEC_LENGTH (ARGUMENT_PACK_ARGS (arg)) - 1;
8401 arg_idx += pack_adjust;
8402 if (fixed_parameter_pack_p (TREE_VALUE (parm)))
8403 {
8404 ++fixed_packs;
8405 fixed_pack_adjust += pack_adjust;
8406 }
8407 }
8408
8409 continue;
8410 }
8411 else if (arg)
8412 {
8413 if (PACK_EXPANSION_P (arg))
8414 {
8415 /* "If every valid specialization of a variadic template
8416 requires an empty template parameter pack, the template is
8417 ill-formed, no diagnostic required." So check that the
8418 pattern works with this parameter. */
8419 tree pattern = PACK_EXPANSION_PATTERN (arg);
8420 tree conv = convert_template_argument (TREE_VALUE (parm),
8421 pattern, new_args,
8422 complain, parm_idx,
8423 in_decl);
8424 if (conv == error_mark_node)
8425 {
8426 if (complain & tf_error)
8427 inform (input_location, "so any instantiation with a "
8428 "non-empty parameter pack would be ill-formed");
8429 ++lost;
8430 }
8431 else if (TYPE_P (conv) && !TYPE_P (pattern))
8432 /* Recover from missing typename. */
8433 TREE_VEC_ELT (inner_args, arg_idx)
8434 = make_pack_expansion (conv, complain);
8435
8436 /* We don't know how many args we have yet, just
8437 use the unconverted ones for now. */
8438 new_inner_args = inner_args;
8439 arg_idx = nargs;
8440 break;
8441 }
8442 }
8443 else if (require_all_args)
8444 {
8445 /* There must be a default arg in this case. */
8446 arg = tsubst_template_arg (TREE_PURPOSE (parm), new_args,
8447 complain, in_decl);
8448 /* The position of the first default template argument,
8449 is also the number of non-defaulted arguments in NEW_INNER_ARGS.
8450 Record that. */
8451 if (!NON_DEFAULT_TEMPLATE_ARGS_COUNT (new_inner_args))
8452 SET_NON_DEFAULT_TEMPLATE_ARGS_COUNT (new_inner_args,
8453 arg_idx - pack_adjust);
8454 }
8455 else
8456 break;
8457
8458 if (arg == error_mark_node)
8459 {
8460 if (complain & tf_error)
8461 error ("template argument %d is invalid", arg_idx + 1);
8462 }
8463 else if (!arg)
8464 {
8465 /* This can occur if there was an error in the template
8466 parameter list itself (which we would already have
8467 reported) that we are trying to recover from, e.g., a class
8468 template with a parameter list such as
8469 template<typename..., typename> (cpp0x/variadic150.C). */
8470 ++lost;
8471
8472 /* This can also happen with a fixed parameter pack (71834). */
8473 if (arg_idx >= nargs)
8474 ++missing;
8475 }
8476 else
8477 arg = convert_template_argument (TREE_VALUE (parm),
8478 arg, new_args, complain,
8479 parm_idx, in_decl);
8480
8481 if (arg == error_mark_node)
8482 lost++;
8483 TREE_VEC_ELT (new_inner_args, arg_idx - pack_adjust) = arg;
8484 }
8485 cp_unevaluated_operand = saved_unevaluated_operand;
8486 c_inhibit_evaluation_warnings = saved_inhibit_evaluation_warnings;
8487
8488 if (missing || arg_idx < nargs - variadic_args_p)
8489 {
8490 /* If we had fixed parameter packs, we didn't know how many arguments we
8491 actually needed earlier; now we do. */
8492 nparms += fixed_pack_adjust;
8493 variadic_p -= fixed_packs;
8494 goto bad_nargs;
8495 }
8496
8497 if (arg_idx < nargs)
8498 {
8499 /* We had some pack expansion arguments that will only work if the packs
8500 are empty, but wait until instantiation time to complain.
8501 See variadic-ttp3.C. */
8502 int len = nparms + (nargs - arg_idx);
8503 tree args = make_tree_vec (len);
8504 int i = 0;
8505 for (; i < nparms; ++i)
8506 TREE_VEC_ELT (args, i) = TREE_VEC_ELT (new_inner_args, i);
8507 for (; i < len; ++i, ++arg_idx)
8508 TREE_VEC_ELT (args, i) = TREE_VEC_ELT (inner_args,
8509 arg_idx - pack_adjust);
8510 new_inner_args = args;
8511 }
8512
8513 if (lost)
8514 {
8515 gcc_assert (!(complain & tf_error) || seen_error ());
8516 return error_mark_node;
8517 }
8518
8519 if (CHECKING_P && !NON_DEFAULT_TEMPLATE_ARGS_COUNT (new_inner_args))
8520 SET_NON_DEFAULT_TEMPLATE_ARGS_COUNT (new_inner_args,
8521 TREE_VEC_LENGTH (new_inner_args));
8522
8523 return new_inner_args;
8524 }
8525
8526 /* Convert all template arguments to their appropriate types, and
8527 return a vector containing the innermost resulting template
8528 arguments. If any error occurs, return error_mark_node. Error and
8529 warning messages are not issued.
8530
8531 Note that no function argument deduction is performed, and default
8532 arguments are used to fill in unspecified arguments. */
8533 tree
8534 coerce_template_parms (tree parms, tree args, tree in_decl)
8535 {
8536 return coerce_template_parms (parms, args, in_decl, tf_none, true, true);
8537 }
8538
8539 /* Convert all template arguments to their appropriate type, and
8540 instantiate default arguments as needed. This returns a vector
8541 containing the innermost resulting template arguments, or
8542 error_mark_node if unsuccessful. */
8543 tree
8544 coerce_template_parms (tree parms, tree args, tree in_decl,
8545 tsubst_flags_t complain)
8546 {
8547 return coerce_template_parms (parms, args, in_decl, complain, true, true);
8548 }
8549
8550 /* Like coerce_template_parms. If PARMS represents all template
8551 parameters levels, this function returns a vector of vectors
8552 representing all the resulting argument levels. Note that in this
8553 case, only the innermost arguments are coerced because the
8554 outermost ones are supposed to have been coerced already.
8555
8556 Otherwise, if PARMS represents only (the innermost) vector of
8557 parameters, this function returns a vector containing just the
8558 innermost resulting arguments. */
8559
8560 static tree
8561 coerce_innermost_template_parms (tree parms,
8562 tree args,
8563 tree in_decl,
8564 tsubst_flags_t complain,
8565 bool require_all_args,
8566 bool use_default_args)
8567 {
8568 int parms_depth = TMPL_PARMS_DEPTH (parms);
8569 int args_depth = TMPL_ARGS_DEPTH (args);
8570 tree coerced_args;
8571
8572 if (parms_depth > 1)
8573 {
8574 coerced_args = make_tree_vec (parms_depth);
8575 tree level;
8576 int cur_depth;
8577
8578 for (level = parms, cur_depth = parms_depth;
8579 parms_depth > 0 && level != NULL_TREE;
8580 level = TREE_CHAIN (level), --cur_depth)
8581 {
8582 tree l;
8583 if (cur_depth == args_depth)
8584 l = coerce_template_parms (TREE_VALUE (level),
8585 args, in_decl, complain,
8586 require_all_args,
8587 use_default_args);
8588 else
8589 l = TMPL_ARGS_LEVEL (args, cur_depth);
8590
8591 if (l == error_mark_node)
8592 return error_mark_node;
8593
8594 SET_TMPL_ARGS_LEVEL (coerced_args, cur_depth, l);
8595 }
8596 }
8597 else
8598 coerced_args = coerce_template_parms (INNERMOST_TEMPLATE_PARMS (parms),
8599 args, in_decl, complain,
8600 require_all_args,
8601 use_default_args);
8602 return coerced_args;
8603 }
8604
8605 /* Returns 1 if template args OT and NT are equivalent. */
8606
8607 int
8608 template_args_equal (tree ot, tree nt, bool partial_order /* = false */)
8609 {
8610 if (nt == ot)
8611 return 1;
8612 if (nt == NULL_TREE || ot == NULL_TREE)
8613 return false;
8614 if (nt == any_targ_node || ot == any_targ_node)
8615 return true;
8616
8617 if (TREE_CODE (nt) == TREE_VEC)
8618 /* For member templates */
8619 return TREE_CODE (ot) == TREE_VEC && comp_template_args (ot, nt);
8620 else if (PACK_EXPANSION_P (ot))
8621 return (PACK_EXPANSION_P (nt)
8622 && template_args_equal (PACK_EXPANSION_PATTERN (ot),
8623 PACK_EXPANSION_PATTERN (nt))
8624 && template_args_equal (PACK_EXPANSION_EXTRA_ARGS (ot),
8625 PACK_EXPANSION_EXTRA_ARGS (nt)));
8626 else if (ARGUMENT_PACK_P (ot))
8627 {
8628 int i, len;
8629 tree opack, npack;
8630
8631 if (!ARGUMENT_PACK_P (nt))
8632 return 0;
8633
8634 opack = ARGUMENT_PACK_ARGS (ot);
8635 npack = ARGUMENT_PACK_ARGS (nt);
8636 len = TREE_VEC_LENGTH (opack);
8637 if (TREE_VEC_LENGTH (npack) != len)
8638 return 0;
8639 for (i = 0; i < len; ++i)
8640 if (!template_args_equal (TREE_VEC_ELT (opack, i),
8641 TREE_VEC_ELT (npack, i)))
8642 return 0;
8643 return 1;
8644 }
8645 else if (ot && TREE_CODE (ot) == ARGUMENT_PACK_SELECT)
8646 gcc_unreachable ();
8647 else if (TYPE_P (nt))
8648 {
8649 if (!TYPE_P (ot))
8650 return false;
8651 /* Don't treat an alias template specialization with dependent
8652 arguments as equivalent to its underlying type when used as a
8653 template argument; we need them to be distinct so that we
8654 substitute into the specialization arguments at instantiation
8655 time. And aliases can't be equivalent without being ==, so
8656 we don't need to look any deeper.
8657
8658 During partial ordering, however, we need to treat them normally so
8659 that we can order uses of the same alias with different
8660 cv-qualification (79960). */
8661 if (!partial_order
8662 && (TYPE_ALIAS_P (nt) || TYPE_ALIAS_P (ot)))
8663 return false;
8664 else
8665 return same_type_p (ot, nt);
8666 }
8667 else if (TREE_CODE (ot) == TREE_VEC || TYPE_P (ot))
8668 return 0;
8669 else
8670 {
8671 /* Try to treat a template non-type argument that has been converted
8672 to the parameter type as equivalent to one that hasn't yet. */
8673 for (enum tree_code code1 = TREE_CODE (ot);
8674 CONVERT_EXPR_CODE_P (code1)
8675 || code1 == NON_LVALUE_EXPR;
8676 code1 = TREE_CODE (ot))
8677 ot = TREE_OPERAND (ot, 0);
8678 for (enum tree_code code2 = TREE_CODE (nt);
8679 CONVERT_EXPR_CODE_P (code2)
8680 || code2 == NON_LVALUE_EXPR;
8681 code2 = TREE_CODE (nt))
8682 nt = TREE_OPERAND (nt, 0);
8683
8684 return cp_tree_equal (ot, nt);
8685 }
8686 }
8687
8688 /* Returns 1 iff the OLDARGS and NEWARGS are in fact identical sets of
8689 template arguments. Returns 0 otherwise, and updates OLDARG_PTR and
8690 NEWARG_PTR with the offending arguments if they are non-NULL. */
8691
8692 int
8693 comp_template_args (tree oldargs, tree newargs,
8694 tree *oldarg_ptr, tree *newarg_ptr,
8695 bool partial_order)
8696 {
8697 int i;
8698
8699 if (oldargs == newargs)
8700 return 1;
8701
8702 if (!oldargs || !newargs)
8703 return 0;
8704
8705 if (TREE_VEC_LENGTH (oldargs) != TREE_VEC_LENGTH (newargs))
8706 return 0;
8707
8708 for (i = 0; i < TREE_VEC_LENGTH (oldargs); ++i)
8709 {
8710 tree nt = TREE_VEC_ELT (newargs, i);
8711 tree ot = TREE_VEC_ELT (oldargs, i);
8712
8713 if (! template_args_equal (ot, nt, partial_order))
8714 {
8715 if (oldarg_ptr != NULL)
8716 *oldarg_ptr = ot;
8717 if (newarg_ptr != NULL)
8718 *newarg_ptr = nt;
8719 return 0;
8720 }
8721 }
8722 return 1;
8723 }
8724
8725 inline bool
8726 comp_template_args_porder (tree oargs, tree nargs)
8727 {
8728 return comp_template_args (oargs, nargs, NULL, NULL, true);
8729 }
8730
8731 /* Implement a freelist interface for objects of type T.
8732
8733 Head is a separate object, rather than a regular member, so that we
8734 can define it as a GTY deletable pointer, which is highly
8735 desirable. A data member could be declared that way, but then the
8736 containing object would implicitly get GTY((user)), which would
8737 prevent us from instantiating freelists as global objects.
8738 Although this way we can create freelist global objects, they're
8739 such thin wrappers that instantiating temporaries at every use
8740 loses nothing and saves permanent storage for the freelist object.
8741
8742 Member functions next, anew, poison and reinit have default
8743 implementations that work for most of the types we're interested
8744 in, but if they don't work for some type, they should be explicitly
8745 specialized. See the comments before them for requirements, and
8746 the example specializations for the tree_list_freelist. */
8747 template <typename T>
8748 class freelist
8749 {
8750 /* Return the next object in a chain. We could just do type
8751 punning, but if we access the object with its underlying type, we
8752 avoid strict-aliasing trouble. This needs only work between
8753 poison and reinit. */
8754 static T *&next (T *obj) { return obj->next; }
8755
8756 /* Return a newly allocated, uninitialized or minimally-initialized
8757 object of type T. Any initialization performed by anew should
8758 either remain across the life of the object and the execution of
8759 poison, or be redone by reinit. */
8760 static T *anew () { return ggc_alloc<T> (); }
8761
8762 /* Optionally scribble all over the bits holding the object, so that
8763 they become (mostly?) uninitialized memory. This is called while
8764 preparing to make the object part of the free list. */
8765 static void poison (T *obj) {
8766 T *p ATTRIBUTE_UNUSED = obj;
8767 T **q ATTRIBUTE_UNUSED = &next (obj);
8768
8769 #ifdef ENABLE_GC_CHECKING
8770 /* Poison the data, to indicate the data is garbage. */
8771 VALGRIND_DISCARD (VALGRIND_MAKE_MEM_UNDEFINED (p, sizeof (*p)));
8772 memset (p, 0xa5, sizeof (*p));
8773 #endif
8774 /* Let valgrind know the object is free. */
8775 VALGRIND_DISCARD (VALGRIND_MAKE_MEM_NOACCESS (p, sizeof (*p)));
8776
8777 /* Let valgrind know the next portion of the object is available,
8778 but uninitialized. */
8779 VALGRIND_DISCARD (VALGRIND_MAKE_MEM_UNDEFINED (q, sizeof (*q)));
8780 }
8781
8782 /* Bring an object that underwent at least one lifecycle after anew
8783 and before the most recent free and poison, back to a usable
8784 state, reinitializing whatever is needed for it to be
8785 functionally equivalent to an object just allocated and returned
8786 by anew. This may poison or clear the next field, used by
8787 freelist housekeeping after poison was called. */
8788 static void reinit (T *obj) {
8789 T **q ATTRIBUTE_UNUSED = &next (obj);
8790
8791 #ifdef ENABLE_GC_CHECKING
8792 memset (q, 0xa5, sizeof (*q));
8793 #endif
8794 /* Let valgrind know the entire object is available, but
8795 uninitialized. */
8796 VALGRIND_DISCARD (VALGRIND_MAKE_MEM_UNDEFINED (obj, sizeof (*obj)));
8797 }
8798
8799 /* Reference a GTY-deletable pointer that points to the first object
8800 in the free list proper. */
8801 T *&head;
8802 public:
8803 /* Construct a freelist object chaining objects off of HEAD. */
8804 freelist (T *&head) : head(head) {}
8805
8806 /* Add OBJ to the free object list. The former head becomes OBJ's
8807 successor. */
8808 void free (T *obj)
8809 {
8810 poison (obj);
8811 next (obj) = head;
8812 head = obj;
8813 }
8814
8815 /* Take an object from the free list, if one is available, or
8816 allocate a new one. Objects taken from the free list should be
8817 regarded as filled with garbage, except for bits that are
8818 configured to be preserved across free and alloc. */
8819 T *alloc ()
8820 {
8821 if (head)
8822 {
8823 T *obj = head;
8824 head = next (head);
8825 reinit (obj);
8826 return obj;
8827 }
8828 else
8829 return anew ();
8830 }
8831 };
8832
8833 /* Explicitly specialize the interfaces for freelist<tree_node>: we
8834 want to allocate a TREE_LIST using the usual interface, and ensure
8835 TREE_CHAIN remains functional. Alas, we have to duplicate a bit of
8836 build_tree_list logic in reinit, so this could go out of sync. */
8837 template <>
8838 inline tree &
8839 freelist<tree_node>::next (tree obj)
8840 {
8841 return TREE_CHAIN (obj);
8842 }
8843 template <>
8844 inline tree
8845 freelist<tree_node>::anew ()
8846 {
8847 return build_tree_list (NULL, NULL);
8848 }
8849 template <>
8850 inline void
8851 freelist<tree_node>::poison (tree obj ATTRIBUTE_UNUSED)
8852 {
8853 int size ATTRIBUTE_UNUSED = sizeof (tree_list);
8854 tree p ATTRIBUTE_UNUSED = obj;
8855 tree_base *b ATTRIBUTE_UNUSED = &obj->base;
8856 tree *q ATTRIBUTE_UNUSED = &next (obj);
8857
8858 #ifdef ENABLE_GC_CHECKING
8859 gcc_checking_assert (TREE_CODE (obj) == TREE_LIST);
8860
8861 /* Poison the data, to indicate the data is garbage. */
8862 VALGRIND_DISCARD (VALGRIND_MAKE_MEM_UNDEFINED (p, size));
8863 memset (p, 0xa5, size);
8864 #endif
8865 /* Let valgrind know the object is free. */
8866 VALGRIND_DISCARD (VALGRIND_MAKE_MEM_NOACCESS (p, size));
8867 /* But we still want to use the TREE_CODE and TREE_CHAIN parts. */
8868 VALGRIND_DISCARD (VALGRIND_MAKE_MEM_DEFINED (b, sizeof (*b)));
8869 VALGRIND_DISCARD (VALGRIND_MAKE_MEM_UNDEFINED (q, sizeof (*q)));
8870
8871 #ifdef ENABLE_GC_CHECKING
8872 VALGRIND_DISCARD (VALGRIND_MAKE_MEM_UNDEFINED (b, sizeof (*b)));
8873 /* Keep TREE_CHAIN functional. */
8874 TREE_SET_CODE (obj, TREE_LIST);
8875 #else
8876 VALGRIND_DISCARD (VALGRIND_MAKE_MEM_DEFINED (b, sizeof (*b)));
8877 #endif
8878 }
8879 template <>
8880 inline void
8881 freelist<tree_node>::reinit (tree obj ATTRIBUTE_UNUSED)
8882 {
8883 tree_base *b ATTRIBUTE_UNUSED = &obj->base;
8884
8885 #ifdef ENABLE_GC_CHECKING
8886 gcc_checking_assert (TREE_CODE (obj) == TREE_LIST);
8887 VALGRIND_DISCARD (VALGRIND_MAKE_MEM_UNDEFINED (obj, sizeof (tree_list)));
8888 memset (obj, 0, sizeof (tree_list));
8889 #endif
8890
8891 /* Let valgrind know the entire object is available, but
8892 uninitialized. */
8893 VALGRIND_DISCARD (VALGRIND_MAKE_MEM_UNDEFINED (obj, sizeof (tree_list)));
8894
8895 #ifdef ENABLE_GC_CHECKING
8896 TREE_SET_CODE (obj, TREE_LIST);
8897 #else
8898 VALGRIND_DISCARD (VALGRIND_MAKE_MEM_DEFINED (b, sizeof (*b)));
8899 #endif
8900 }
8901
8902 /* Point to the first object in the TREE_LIST freelist. */
8903 static GTY((deletable)) tree tree_list_freelist_head;
8904 /* Return the/an actual TREE_LIST freelist. */
8905 static inline freelist<tree_node>
8906 tree_list_freelist ()
8907 {
8908 return tree_list_freelist_head;
8909 }
8910
8911 /* Point to the first object in the tinst_level freelist. */
8912 static GTY((deletable)) tinst_level *tinst_level_freelist_head;
8913 /* Return the/an actual tinst_level freelist. */
8914 static inline freelist<tinst_level>
8915 tinst_level_freelist ()
8916 {
8917 return tinst_level_freelist_head;
8918 }
8919
8920 /* Point to the first object in the pending_template freelist. */
8921 static GTY((deletable)) pending_template *pending_template_freelist_head;
8922 /* Return the/an actual pending_template freelist. */
8923 static inline freelist<pending_template>
8924 pending_template_freelist ()
8925 {
8926 return pending_template_freelist_head;
8927 }
8928
8929 /* Build the TREE_LIST object out of a split list, store it
8930 permanently, and return it. */
8931 tree
8932 tinst_level::to_list ()
8933 {
8934 gcc_assert (split_list_p ());
8935 tree ret = tree_list_freelist ().alloc ();
8936 TREE_PURPOSE (ret) = tldcl;
8937 TREE_VALUE (ret) = targs;
8938 tldcl = ret;
8939 targs = NULL;
8940 gcc_assert (tree_list_p ());
8941 return ret;
8942 }
8943
8944 const unsigned short tinst_level::refcount_infinity;
8945
8946 /* Increment OBJ's refcount unless it is already infinite. */
8947 static tinst_level *
8948 inc_refcount_use (tinst_level *obj)
8949 {
8950 if (obj && obj->refcount != tinst_level::refcount_infinity)
8951 ++obj->refcount;
8952 return obj;
8953 }
8954
8955 /* Release storage for OBJ and node, if it's a TREE_LIST. */
8956 void
8957 tinst_level::free (tinst_level *obj)
8958 {
8959 if (obj->tree_list_p ())
8960 tree_list_freelist ().free (obj->get_node ());
8961 tinst_level_freelist ().free (obj);
8962 }
8963
8964 /* Decrement OBJ's refcount if not infinite. If it reaches zero, release
8965 OBJ's DECL and OBJ, and start over with the tinst_level object that
8966 used to be referenced by OBJ's NEXT. */
8967 static void
8968 dec_refcount_use (tinst_level *obj)
8969 {
8970 while (obj
8971 && obj->refcount != tinst_level::refcount_infinity
8972 && !--obj->refcount)
8973 {
8974 tinst_level *next = obj->next;
8975 tinst_level::free (obj);
8976 obj = next;
8977 }
8978 }
8979
8980 /* Modify PTR so that it points to OBJ, adjusting the refcounts of OBJ
8981 and of the former PTR. Omitting the second argument is equivalent
8982 to passing (T*)NULL; this is allowed because passing the
8983 zero-valued integral constant NULL confuses type deduction and/or
8984 overload resolution. */
8985 template <typename T>
8986 static void
8987 set_refcount_ptr (T *& ptr, T *obj = NULL)
8988 {
8989 T *save = ptr;
8990 ptr = inc_refcount_use (obj);
8991 dec_refcount_use (save);
8992 }
8993
8994 static void
8995 add_pending_template (tree d)
8996 {
8997 tree ti = (TYPE_P (d)
8998 ? CLASSTYPE_TEMPLATE_INFO (d)
8999 : DECL_TEMPLATE_INFO (d));
9000 struct pending_template *pt;
9001 int level;
9002
9003 if (TI_PENDING_TEMPLATE_FLAG (ti))
9004 return;
9005
9006 /* We are called both from instantiate_decl, where we've already had a
9007 tinst_level pushed, and instantiate_template, where we haven't.
9008 Compensate. */
9009 gcc_assert (TREE_CODE (d) != TREE_LIST);
9010 level = !current_tinst_level
9011 || current_tinst_level->maybe_get_node () != d;
9012
9013 if (level)
9014 push_tinst_level (d);
9015
9016 pt = pending_template_freelist ().alloc ();
9017 pt->next = NULL;
9018 pt->tinst = NULL;
9019 set_refcount_ptr (pt->tinst, current_tinst_level);
9020 if (last_pending_template)
9021 last_pending_template->next = pt;
9022 else
9023 pending_templates = pt;
9024
9025 last_pending_template = pt;
9026
9027 TI_PENDING_TEMPLATE_FLAG (ti) = 1;
9028
9029 if (level)
9030 pop_tinst_level ();
9031 }
9032
9033
9034 /* Return a TEMPLATE_ID_EXPR corresponding to the indicated FNS and
9035 ARGLIST. Valid choices for FNS are given in the cp-tree.def
9036 documentation for TEMPLATE_ID_EXPR. */
9037
9038 tree
9039 lookup_template_function (tree fns, tree arglist)
9040 {
9041 tree type;
9042
9043 if (fns == error_mark_node || arglist == error_mark_node)
9044 return error_mark_node;
9045
9046 gcc_assert (!arglist || TREE_CODE (arglist) == TREE_VEC);
9047
9048 if (!is_overloaded_fn (fns) && !identifier_p (fns))
9049 {
9050 error ("%q#D is not a function template", fns);
9051 return error_mark_node;
9052 }
9053
9054 if (BASELINK_P (fns))
9055 {
9056 BASELINK_FUNCTIONS (fns) = build2 (TEMPLATE_ID_EXPR,
9057 unknown_type_node,
9058 BASELINK_FUNCTIONS (fns),
9059 arglist);
9060 return fns;
9061 }
9062
9063 type = TREE_TYPE (fns);
9064 if (TREE_CODE (fns) == OVERLOAD || !type)
9065 type = unknown_type_node;
9066
9067 return build2 (TEMPLATE_ID_EXPR, type, fns, arglist);
9068 }
9069
9070 /* Within the scope of a template class S<T>, the name S gets bound
9071 (in build_self_reference) to a TYPE_DECL for the class, not a
9072 TEMPLATE_DECL. If DECL is a TYPE_DECL for current_class_type,
9073 or one of its enclosing classes, and that type is a template,
9074 return the associated TEMPLATE_DECL. Otherwise, the original
9075 DECL is returned.
9076
9077 Also handle the case when DECL is a TREE_LIST of ambiguous
9078 injected-class-names from different bases. */
9079
9080 tree
9081 maybe_get_template_decl_from_type_decl (tree decl)
9082 {
9083 if (decl == NULL_TREE)
9084 return decl;
9085
9086 /* DR 176: A lookup that finds an injected-class-name (10.2
9087 [class.member.lookup]) can result in an ambiguity in certain cases
9088 (for example, if it is found in more than one base class). If all of
9089 the injected-class-names that are found refer to specializations of
9090 the same class template, and if the name is followed by a
9091 template-argument-list, the reference refers to the class template
9092 itself and not a specialization thereof, and is not ambiguous. */
9093 if (TREE_CODE (decl) == TREE_LIST)
9094 {
9095 tree t, tmpl = NULL_TREE;
9096 for (t = decl; t; t = TREE_CHAIN (t))
9097 {
9098 tree elt = maybe_get_template_decl_from_type_decl (TREE_VALUE (t));
9099 if (!tmpl)
9100 tmpl = elt;
9101 else if (tmpl != elt)
9102 break;
9103 }
9104 if (tmpl && t == NULL_TREE)
9105 return tmpl;
9106 else
9107 return decl;
9108 }
9109
9110 return (decl != NULL_TREE
9111 && DECL_SELF_REFERENCE_P (decl)
9112 && CLASSTYPE_TEMPLATE_INFO (TREE_TYPE (decl)))
9113 ? CLASSTYPE_TI_TEMPLATE (TREE_TYPE (decl)) : decl;
9114 }
9115
9116 /* Given an IDENTIFIER_NODE (or type TEMPLATE_DECL) and a chain of
9117 parameters, find the desired type.
9118
9119 D1 is the PTYPENAME terminal, and ARGLIST is the list of arguments.
9120
9121 IN_DECL, if non-NULL, is the template declaration we are trying to
9122 instantiate.
9123
9124 If ENTERING_SCOPE is nonzero, we are about to enter the scope of
9125 the class we are looking up.
9126
9127 Issue error and warning messages under control of COMPLAIN.
9128
9129 If the template class is really a local class in a template
9130 function, then the FUNCTION_CONTEXT is the function in which it is
9131 being instantiated.
9132
9133 ??? Note that this function is currently called *twice* for each
9134 template-id: the first time from the parser, while creating the
9135 incomplete type (finish_template_type), and the second type during the
9136 real instantiation (instantiate_template_class). This is surely something
9137 that we want to avoid. It also causes some problems with argument
9138 coercion (see convert_nontype_argument for more information on this). */
9139
9140 static tree
9141 lookup_template_class_1 (tree d1, tree arglist, tree in_decl, tree context,
9142 int entering_scope, tsubst_flags_t complain)
9143 {
9144 tree templ = NULL_TREE, parmlist;
9145 tree t;
9146 spec_entry **slot;
9147 spec_entry *entry;
9148 spec_entry elt;
9149 hashval_t hash;
9150
9151 if (identifier_p (d1))
9152 {
9153 tree value = innermost_non_namespace_value (d1);
9154 if (value && DECL_TEMPLATE_TEMPLATE_PARM_P (value))
9155 templ = value;
9156 else
9157 {
9158 if (context)
9159 push_decl_namespace (context);
9160 templ = lookup_name (d1);
9161 templ = maybe_get_template_decl_from_type_decl (templ);
9162 if (context)
9163 pop_decl_namespace ();
9164 }
9165 if (templ)
9166 context = DECL_CONTEXT (templ);
9167 }
9168 else if (TREE_CODE (d1) == TYPE_DECL && MAYBE_CLASS_TYPE_P (TREE_TYPE (d1)))
9169 {
9170 tree type = TREE_TYPE (d1);
9171
9172 /* If we are declaring a constructor, say A<T>::A<T>, we will get
9173 an implicit typename for the second A. Deal with it. */
9174 if (TREE_CODE (type) == TYPENAME_TYPE && TREE_TYPE (type))
9175 type = TREE_TYPE (type);
9176
9177 if (CLASSTYPE_TEMPLATE_INFO (type))
9178 {
9179 templ = CLASSTYPE_TI_TEMPLATE (type);
9180 d1 = DECL_NAME (templ);
9181 }
9182 }
9183 else if (TREE_CODE (d1) == ENUMERAL_TYPE
9184 || (TYPE_P (d1) && MAYBE_CLASS_TYPE_P (d1)))
9185 {
9186 templ = TYPE_TI_TEMPLATE (d1);
9187 d1 = DECL_NAME (templ);
9188 }
9189 else if (DECL_TYPE_TEMPLATE_P (d1))
9190 {
9191 templ = d1;
9192 d1 = DECL_NAME (templ);
9193 context = DECL_CONTEXT (templ);
9194 }
9195 else if (DECL_TEMPLATE_TEMPLATE_PARM_P (d1))
9196 {
9197 templ = d1;
9198 d1 = DECL_NAME (templ);
9199 }
9200
9201 /* Issue an error message if we didn't find a template. */
9202 if (! templ)
9203 {
9204 if (complain & tf_error)
9205 error ("%qT is not a template", d1);
9206 return error_mark_node;
9207 }
9208
9209 if (TREE_CODE (templ) != TEMPLATE_DECL
9210 /* Make sure it's a user visible template, if it was named by
9211 the user. */
9212 || ((complain & tf_user) && !DECL_TEMPLATE_PARM_P (templ)
9213 && !PRIMARY_TEMPLATE_P (templ)))
9214 {
9215 if (complain & tf_error)
9216 {
9217 error ("non-template type %qT used as a template", d1);
9218 if (in_decl)
9219 error ("for template declaration %q+D", in_decl);
9220 }
9221 return error_mark_node;
9222 }
9223
9224 complain &= ~tf_user;
9225
9226 /* An alias that just changes the name of a template is equivalent to the
9227 other template, so if any of the arguments are pack expansions, strip
9228 the alias to avoid problems with a pack expansion passed to a non-pack
9229 alias template parameter (DR 1430). */
9230 if (pack_expansion_args_count (INNERMOST_TEMPLATE_ARGS (arglist)))
9231 templ = get_underlying_template (templ);
9232
9233 if (DECL_TEMPLATE_TEMPLATE_PARM_P (templ))
9234 {
9235 tree parm;
9236 tree arglist2 = coerce_template_args_for_ttp (templ, arglist, complain);
9237 if (arglist2 == error_mark_node
9238 || (!uses_template_parms (arglist2)
9239 && check_instantiated_args (templ, arglist2, complain)))
9240 return error_mark_node;
9241
9242 parm = bind_template_template_parm (TREE_TYPE (templ), arglist2);
9243 return parm;
9244 }
9245 else
9246 {
9247 tree template_type = TREE_TYPE (templ);
9248 tree gen_tmpl;
9249 tree type_decl;
9250 tree found = NULL_TREE;
9251 int arg_depth;
9252 int parm_depth;
9253 int is_dependent_type;
9254 int use_partial_inst_tmpl = false;
9255
9256 if (template_type == error_mark_node)
9257 /* An error occurred while building the template TEMPL, and a
9258 diagnostic has most certainly been emitted for that
9259 already. Let's propagate that error. */
9260 return error_mark_node;
9261
9262 gen_tmpl = most_general_template (templ);
9263 parmlist = DECL_TEMPLATE_PARMS (gen_tmpl);
9264 parm_depth = TMPL_PARMS_DEPTH (parmlist);
9265 arg_depth = TMPL_ARGS_DEPTH (arglist);
9266
9267 if (arg_depth == 1 && parm_depth > 1)
9268 {
9269 /* We've been given an incomplete set of template arguments.
9270 For example, given:
9271
9272 template <class T> struct S1 {
9273 template <class U> struct S2 {};
9274 template <class U> struct S2<U*> {};
9275 };
9276
9277 we will be called with an ARGLIST of `U*', but the
9278 TEMPLATE will be `template <class T> template
9279 <class U> struct S1<T>::S2'. We must fill in the missing
9280 arguments. */
9281 tree ti = TYPE_TEMPLATE_INFO_MAYBE_ALIAS (TREE_TYPE (templ));
9282 arglist = add_outermost_template_args (TI_ARGS (ti), arglist);
9283 arg_depth = TMPL_ARGS_DEPTH (arglist);
9284 }
9285
9286 /* Now we should have enough arguments. */
9287 gcc_assert (parm_depth == arg_depth);
9288
9289 /* From here on, we're only interested in the most general
9290 template. */
9291
9292 /* Calculate the BOUND_ARGS. These will be the args that are
9293 actually tsubst'd into the definition to create the
9294 instantiation. */
9295 arglist = coerce_innermost_template_parms (parmlist, arglist, gen_tmpl,
9296 complain,
9297 /*require_all_args=*/true,
9298 /*use_default_args=*/true);
9299
9300 if (arglist == error_mark_node)
9301 /* We were unable to bind the arguments. */
9302 return error_mark_node;
9303
9304 /* In the scope of a template class, explicit references to the
9305 template class refer to the type of the template, not any
9306 instantiation of it. For example, in:
9307
9308 template <class T> class C { void f(C<T>); }
9309
9310 the `C<T>' is just the same as `C'. Outside of the
9311 class, however, such a reference is an instantiation. */
9312 if (entering_scope
9313 || !PRIMARY_TEMPLATE_P (gen_tmpl)
9314 || currently_open_class (template_type))
9315 {
9316 tree tinfo = TYPE_TEMPLATE_INFO (template_type);
9317
9318 if (tinfo && comp_template_args (TI_ARGS (tinfo), arglist))
9319 return template_type;
9320 }
9321
9322 /* If we already have this specialization, return it. */
9323 elt.tmpl = gen_tmpl;
9324 elt.args = arglist;
9325 elt.spec = NULL_TREE;
9326 hash = spec_hasher::hash (&elt);
9327 entry = type_specializations->find_with_hash (&elt, hash);
9328
9329 if (entry)
9330 return entry->spec;
9331
9332 /* If the the template's constraints are not satisfied,
9333 then we cannot form a valid type.
9334
9335 Note that the check is deferred until after the hash
9336 lookup. This prevents redundant checks on previously
9337 instantiated specializations. */
9338 if (flag_concepts && !constraints_satisfied_p (gen_tmpl, arglist))
9339 {
9340 if (complain & tf_error)
9341 {
9342 error ("template constraint failure");
9343 diagnose_constraints (input_location, gen_tmpl, arglist);
9344 }
9345 return error_mark_node;
9346 }
9347
9348 is_dependent_type = uses_template_parms (arglist);
9349
9350 /* If the deduced arguments are invalid, then the binding
9351 failed. */
9352 if (!is_dependent_type
9353 && check_instantiated_args (gen_tmpl,
9354 INNERMOST_TEMPLATE_ARGS (arglist),
9355 complain))
9356 return error_mark_node;
9357
9358 if (!is_dependent_type
9359 && !PRIMARY_TEMPLATE_P (gen_tmpl)
9360 && !LAMBDA_TYPE_P (TREE_TYPE (gen_tmpl))
9361 && TREE_CODE (CP_DECL_CONTEXT (gen_tmpl)) == NAMESPACE_DECL)
9362 {
9363 found = xref_tag_from_type (TREE_TYPE (gen_tmpl),
9364 DECL_NAME (gen_tmpl),
9365 /*tag_scope=*/ts_global);
9366 return found;
9367 }
9368
9369 context = tsubst (DECL_CONTEXT (gen_tmpl), arglist,
9370 complain, in_decl);
9371 if (context == error_mark_node)
9372 return error_mark_node;
9373
9374 if (!context)
9375 context = global_namespace;
9376
9377 /* Create the type. */
9378 if (DECL_ALIAS_TEMPLATE_P (gen_tmpl))
9379 {
9380 /* The user referred to a specialization of an alias
9381 template represented by GEN_TMPL.
9382
9383 [temp.alias]/2 says:
9384
9385 When a template-id refers to the specialization of an
9386 alias template, it is equivalent to the associated
9387 type obtained by substitution of its
9388 template-arguments for the template-parameters in the
9389 type-id of the alias template. */
9390
9391 t = tsubst (TREE_TYPE (gen_tmpl), arglist, complain, in_decl);
9392 /* Note that the call above (by indirectly calling
9393 register_specialization in tsubst_decl) registers the
9394 TYPE_DECL representing the specialization of the alias
9395 template. So next time someone substitutes ARGLIST for
9396 the template parms into the alias template (GEN_TMPL),
9397 she'll get that TYPE_DECL back. */
9398
9399 if (t == error_mark_node)
9400 return t;
9401 }
9402 else if (TREE_CODE (template_type) == ENUMERAL_TYPE)
9403 {
9404 if (!is_dependent_type)
9405 {
9406 set_current_access_from_decl (TYPE_NAME (template_type));
9407 t = start_enum (TYPE_IDENTIFIER (template_type), NULL_TREE,
9408 tsubst (ENUM_UNDERLYING_TYPE (template_type),
9409 arglist, complain, in_decl),
9410 tsubst_attributes (TYPE_ATTRIBUTES (template_type),
9411 arglist, complain, in_decl),
9412 SCOPED_ENUM_P (template_type), NULL);
9413
9414 if (t == error_mark_node)
9415 return t;
9416 }
9417 else
9418 {
9419 /* We don't want to call start_enum for this type, since
9420 the values for the enumeration constants may involve
9421 template parameters. And, no one should be interested
9422 in the enumeration constants for such a type. */
9423 t = cxx_make_type (ENUMERAL_TYPE);
9424 SET_SCOPED_ENUM_P (t, SCOPED_ENUM_P (template_type));
9425 }
9426 SET_OPAQUE_ENUM_P (t, OPAQUE_ENUM_P (template_type));
9427 ENUM_FIXED_UNDERLYING_TYPE_P (t)
9428 = ENUM_FIXED_UNDERLYING_TYPE_P (template_type);
9429 }
9430 else if (CLASS_TYPE_P (template_type))
9431 {
9432 /* Lambda closures are regenerated in tsubst_lambda_expr, not
9433 instantiated here. */
9434 gcc_assert (!LAMBDA_TYPE_P (template_type));
9435
9436 t = make_class_type (TREE_CODE (template_type));
9437 CLASSTYPE_DECLARED_CLASS (t)
9438 = CLASSTYPE_DECLARED_CLASS (template_type);
9439 SET_CLASSTYPE_IMPLICIT_INSTANTIATION (t);
9440
9441 /* A local class. Make sure the decl gets registered properly. */
9442 if (context == current_function_decl)
9443 if (pushtag (DECL_NAME (gen_tmpl), t, /*tag_scope=*/ts_current)
9444 == error_mark_node)
9445 return error_mark_node;
9446
9447 if (comp_template_args (CLASSTYPE_TI_ARGS (template_type), arglist))
9448 /* This instantiation is another name for the primary
9449 template type. Set the TYPE_CANONICAL field
9450 appropriately. */
9451 TYPE_CANONICAL (t) = template_type;
9452 else if (any_template_arguments_need_structural_equality_p (arglist))
9453 /* Some of the template arguments require structural
9454 equality testing, so this template class requires
9455 structural equality testing. */
9456 SET_TYPE_STRUCTURAL_EQUALITY (t);
9457 }
9458 else
9459 gcc_unreachable ();
9460
9461 /* If we called start_enum or pushtag above, this information
9462 will already be set up. */
9463 if (!TYPE_NAME (t))
9464 {
9465 TYPE_CONTEXT (t) = FROB_CONTEXT (context);
9466
9467 type_decl = create_implicit_typedef (DECL_NAME (gen_tmpl), t);
9468 DECL_CONTEXT (type_decl) = TYPE_CONTEXT (t);
9469 DECL_SOURCE_LOCATION (type_decl)
9470 = DECL_SOURCE_LOCATION (TYPE_STUB_DECL (template_type));
9471 }
9472 else
9473 type_decl = TYPE_NAME (t);
9474
9475 if (CLASS_TYPE_P (template_type))
9476 {
9477 TREE_PRIVATE (type_decl)
9478 = TREE_PRIVATE (TYPE_MAIN_DECL (template_type));
9479 TREE_PROTECTED (type_decl)
9480 = TREE_PROTECTED (TYPE_MAIN_DECL (template_type));
9481 if (CLASSTYPE_VISIBILITY_SPECIFIED (template_type))
9482 {
9483 DECL_VISIBILITY_SPECIFIED (type_decl) = 1;
9484 DECL_VISIBILITY (type_decl) = CLASSTYPE_VISIBILITY (template_type);
9485 }
9486 }
9487
9488 if (OVERLOAD_TYPE_P (t)
9489 && !DECL_ALIAS_TEMPLATE_P (gen_tmpl))
9490 {
9491 static const char *tags[] = {"abi_tag", "may_alias"};
9492
9493 for (unsigned ix = 0; ix != 2; ix++)
9494 {
9495 tree attributes
9496 = lookup_attribute (tags[ix], TYPE_ATTRIBUTES (template_type));
9497
9498 if (attributes)
9499 TYPE_ATTRIBUTES (t)
9500 = tree_cons (TREE_PURPOSE (attributes),
9501 TREE_VALUE (attributes),
9502 TYPE_ATTRIBUTES (t));
9503 }
9504 }
9505
9506 /* Let's consider the explicit specialization of a member
9507 of a class template specialization that is implicitly instantiated,
9508 e.g.:
9509 template<class T>
9510 struct S
9511 {
9512 template<class U> struct M {}; //#0
9513 };
9514
9515 template<>
9516 template<>
9517 struct S<int>::M<char> //#1
9518 {
9519 int i;
9520 };
9521 [temp.expl.spec]/4 says this is valid.
9522
9523 In this case, when we write:
9524 S<int>::M<char> m;
9525
9526 M is instantiated from the CLASSTYPE_TI_TEMPLATE of #1, not from
9527 the one of #0.
9528
9529 When we encounter #1, we want to store the partial instantiation
9530 of M (template<class T> S<int>::M<T>) in its CLASSTYPE_TI_TEMPLATE.
9531
9532 For all cases other than this "explicit specialization of member of a
9533 class template", we just want to store the most general template into
9534 the CLASSTYPE_TI_TEMPLATE of M.
9535
9536 This case of "explicit specialization of member of a class template"
9537 only happens when:
9538 1/ the enclosing class is an instantiation of, and therefore not
9539 the same as, the context of the most general template, and
9540 2/ we aren't looking at the partial instantiation itself, i.e.
9541 the innermost arguments are not the same as the innermost parms of
9542 the most general template.
9543
9544 So it's only when 1/ and 2/ happens that we want to use the partial
9545 instantiation of the member template in lieu of its most general
9546 template. */
9547
9548 if (PRIMARY_TEMPLATE_P (gen_tmpl)
9549 && TMPL_ARGS_HAVE_MULTIPLE_LEVELS (arglist)
9550 /* the enclosing class must be an instantiation... */
9551 && CLASS_TYPE_P (context)
9552 && !same_type_p (context, DECL_CONTEXT (gen_tmpl)))
9553 {
9554 TREE_VEC_LENGTH (arglist)--;
9555 ++processing_template_decl;
9556 tree tinfo = TYPE_TEMPLATE_INFO_MAYBE_ALIAS (TREE_TYPE (gen_tmpl));
9557 tree partial_inst_args =
9558 tsubst (INNERMOST_TEMPLATE_ARGS (TI_ARGS (tinfo)),
9559 arglist, complain, NULL_TREE);
9560 --processing_template_decl;
9561 TREE_VEC_LENGTH (arglist)++;
9562 if (partial_inst_args == error_mark_node)
9563 return error_mark_node;
9564 use_partial_inst_tmpl =
9565 /*...and we must not be looking at the partial instantiation
9566 itself. */
9567 !comp_template_args (INNERMOST_TEMPLATE_ARGS (arglist),
9568 partial_inst_args);
9569 }
9570
9571 if (!use_partial_inst_tmpl)
9572 /* This case is easy; there are no member templates involved. */
9573 found = gen_tmpl;
9574 else
9575 {
9576 /* This is a full instantiation of a member template. Find
9577 the partial instantiation of which this is an instance. */
9578
9579 /* Temporarily reduce by one the number of levels in the ARGLIST
9580 so as to avoid comparing the last set of arguments. */
9581 TREE_VEC_LENGTH (arglist)--;
9582 found = tsubst (gen_tmpl, arglist, complain, NULL_TREE);
9583 TREE_VEC_LENGTH (arglist)++;
9584 /* FOUND is either a proper class type, or an alias
9585 template specialization. In the later case, it's a
9586 TYPE_DECL, resulting from the substituting of arguments
9587 for parameters in the TYPE_DECL of the alias template
9588 done earlier. So be careful while getting the template
9589 of FOUND. */
9590 found = (TREE_CODE (found) == TEMPLATE_DECL
9591 ? found
9592 : (TREE_CODE (found) == TYPE_DECL
9593 ? DECL_TI_TEMPLATE (found)
9594 : CLASSTYPE_TI_TEMPLATE (found)));
9595 }
9596
9597 // Build template info for the new specialization.
9598 SET_TYPE_TEMPLATE_INFO (t, build_template_info (found, arglist));
9599
9600 elt.spec = t;
9601 slot = type_specializations->find_slot_with_hash (&elt, hash, INSERT);
9602 entry = ggc_alloc<spec_entry> ();
9603 *entry = elt;
9604 *slot = entry;
9605
9606 /* Note this use of the partial instantiation so we can check it
9607 later in maybe_process_partial_specialization. */
9608 DECL_TEMPLATE_INSTANTIATIONS (found)
9609 = tree_cons (arglist, t,
9610 DECL_TEMPLATE_INSTANTIATIONS (found));
9611
9612 if (TREE_CODE (template_type) == ENUMERAL_TYPE && !is_dependent_type
9613 && !DECL_ALIAS_TEMPLATE_P (gen_tmpl))
9614 /* Now that the type has been registered on the instantiations
9615 list, we set up the enumerators. Because the enumeration
9616 constants may involve the enumeration type itself, we make
9617 sure to register the type first, and then create the
9618 constants. That way, doing tsubst_expr for the enumeration
9619 constants won't result in recursive calls here; we'll find
9620 the instantiation and exit above. */
9621 tsubst_enum (template_type, t, arglist);
9622
9623 if (CLASS_TYPE_P (template_type) && is_dependent_type)
9624 /* If the type makes use of template parameters, the
9625 code that generates debugging information will crash. */
9626 DECL_IGNORED_P (TYPE_MAIN_DECL (t)) = 1;
9627
9628 /* Possibly limit visibility based on template args. */
9629 TREE_PUBLIC (type_decl) = 1;
9630 determine_visibility (type_decl);
9631
9632 inherit_targ_abi_tags (t);
9633
9634 return t;
9635 }
9636 }
9637
9638 /* Wrapper for lookup_template_class_1. */
9639
9640 tree
9641 lookup_template_class (tree d1, tree arglist, tree in_decl, tree context,
9642 int entering_scope, tsubst_flags_t complain)
9643 {
9644 tree ret;
9645 timevar_push (TV_TEMPLATE_INST);
9646 ret = lookup_template_class_1 (d1, arglist, in_decl, context,
9647 entering_scope, complain);
9648 timevar_pop (TV_TEMPLATE_INST);
9649 return ret;
9650 }
9651
9652 /* Return a TEMPLATE_ID_EXPR for the given variable template and ARGLIST. */
9653
9654 tree
9655 lookup_template_variable (tree templ, tree arglist)
9656 {
9657 /* The type of the expression is NULL_TREE since the template-id could refer
9658 to an explicit or partial specialization. */
9659 tree type = NULL_TREE;
9660 if (flag_concepts && variable_concept_p (templ))
9661 /* Except that concepts are always bool. */
9662 type = boolean_type_node;
9663 return build2 (TEMPLATE_ID_EXPR, type, templ, arglist);
9664 }
9665
9666 /* Instantiate a variable declaration from a TEMPLATE_ID_EXPR for use. */
9667
9668 tree
9669 finish_template_variable (tree var, tsubst_flags_t complain)
9670 {
9671 tree templ = TREE_OPERAND (var, 0);
9672 tree arglist = TREE_OPERAND (var, 1);
9673
9674 /* We never want to return a VAR_DECL for a variable concept, since they
9675 aren't instantiated. In a template, leave the TEMPLATE_ID_EXPR alone. */
9676 bool concept_p = flag_concepts && variable_concept_p (templ);
9677 if (concept_p && processing_template_decl)
9678 return var;
9679
9680 tree tmpl_args = DECL_TI_ARGS (DECL_TEMPLATE_RESULT (templ));
9681 arglist = add_outermost_template_args (tmpl_args, arglist);
9682
9683 templ = most_general_template (templ);
9684 tree parms = DECL_TEMPLATE_PARMS (templ);
9685 arglist = coerce_innermost_template_parms (parms, arglist, templ, complain,
9686 /*req_all*/true,
9687 /*use_default*/true);
9688
9689 if (flag_concepts && !constraints_satisfied_p (templ, arglist))
9690 {
9691 if (complain & tf_error)
9692 {
9693 error ("use of invalid variable template %qE", var);
9694 diagnose_constraints (location_of (var), templ, arglist);
9695 }
9696 return error_mark_node;
9697 }
9698
9699 /* If a template-id refers to a specialization of a variable
9700 concept, then the expression is true if and only if the
9701 concept's constraints are satisfied by the given template
9702 arguments.
9703
9704 NOTE: This is an extension of Concepts Lite TS that
9705 allows constraints to be used in expressions. */
9706 if (concept_p)
9707 {
9708 tree decl = DECL_TEMPLATE_RESULT (templ);
9709 return evaluate_variable_concept (decl, arglist);
9710 }
9711
9712 return instantiate_template (templ, arglist, complain);
9713 }
9714
9715 /* Construct a TEMPLATE_ID_EXPR for the given variable template TEMPL having
9716 TARGS template args, and instantiate it if it's not dependent. */
9717
9718 tree
9719 lookup_and_finish_template_variable (tree templ, tree targs,
9720 tsubst_flags_t complain)
9721 {
9722 templ = lookup_template_variable (templ, targs);
9723 if (!any_dependent_template_arguments_p (targs))
9724 {
9725 templ = finish_template_variable (templ, complain);
9726 mark_used (templ);
9727 }
9728
9729 return convert_from_reference (templ);
9730 }
9731
9732 \f
9733 struct pair_fn_data
9734 {
9735 tree_fn_t fn;
9736 tree_fn_t any_fn;
9737 void *data;
9738 /* True when we should also visit template parameters that occur in
9739 non-deduced contexts. */
9740 bool include_nondeduced_p;
9741 hash_set<tree> *visited;
9742 };
9743
9744 /* Called from for_each_template_parm via walk_tree. */
9745
9746 static tree
9747 for_each_template_parm_r (tree *tp, int *walk_subtrees, void *d)
9748 {
9749 tree t = *tp;
9750 struct pair_fn_data *pfd = (struct pair_fn_data *) d;
9751 tree_fn_t fn = pfd->fn;
9752 void *data = pfd->data;
9753 tree result = NULL_TREE;
9754
9755 #define WALK_SUBTREE(NODE) \
9756 do \
9757 { \
9758 result = for_each_template_parm (NODE, fn, data, pfd->visited, \
9759 pfd->include_nondeduced_p, \
9760 pfd->any_fn); \
9761 if (result) goto out; \
9762 } \
9763 while (0)
9764
9765 if (pfd->any_fn && (*pfd->any_fn)(t, data))
9766 return t;
9767
9768 if (TYPE_P (t)
9769 && (pfd->include_nondeduced_p || TREE_CODE (t) != TYPENAME_TYPE))
9770 WALK_SUBTREE (TYPE_CONTEXT (t));
9771
9772 switch (TREE_CODE (t))
9773 {
9774 case RECORD_TYPE:
9775 if (TYPE_PTRMEMFUNC_P (t))
9776 break;
9777 /* Fall through. */
9778
9779 case UNION_TYPE:
9780 case ENUMERAL_TYPE:
9781 if (!TYPE_TEMPLATE_INFO (t))
9782 *walk_subtrees = 0;
9783 else
9784 WALK_SUBTREE (TYPE_TI_ARGS (t));
9785 break;
9786
9787 case INTEGER_TYPE:
9788 WALK_SUBTREE (TYPE_MIN_VALUE (t));
9789 WALK_SUBTREE (TYPE_MAX_VALUE (t));
9790 break;
9791
9792 case METHOD_TYPE:
9793 /* Since we're not going to walk subtrees, we have to do this
9794 explicitly here. */
9795 WALK_SUBTREE (TYPE_METHOD_BASETYPE (t));
9796 /* Fall through. */
9797
9798 case FUNCTION_TYPE:
9799 /* Check the return type. */
9800 WALK_SUBTREE (TREE_TYPE (t));
9801
9802 /* Check the parameter types. Since default arguments are not
9803 instantiated until they are needed, the TYPE_ARG_TYPES may
9804 contain expressions that involve template parameters. But,
9805 no-one should be looking at them yet. And, once they're
9806 instantiated, they don't contain template parameters, so
9807 there's no point in looking at them then, either. */
9808 {
9809 tree parm;
9810
9811 for (parm = TYPE_ARG_TYPES (t); parm; parm = TREE_CHAIN (parm))
9812 WALK_SUBTREE (TREE_VALUE (parm));
9813
9814 /* Since we've already handled the TYPE_ARG_TYPES, we don't
9815 want walk_tree walking into them itself. */
9816 *walk_subtrees = 0;
9817 }
9818
9819 if (flag_noexcept_type)
9820 {
9821 tree spec = TYPE_RAISES_EXCEPTIONS (t);
9822 if (spec)
9823 WALK_SUBTREE (TREE_PURPOSE (spec));
9824 }
9825 break;
9826
9827 case TYPEOF_TYPE:
9828 case DECLTYPE_TYPE:
9829 case UNDERLYING_TYPE:
9830 if (pfd->include_nondeduced_p
9831 && for_each_template_parm (TYPE_VALUES_RAW (t), fn, data,
9832 pfd->visited,
9833 pfd->include_nondeduced_p,
9834 pfd->any_fn))
9835 return error_mark_node;
9836 *walk_subtrees = false;
9837 break;
9838
9839 case FUNCTION_DECL:
9840 case VAR_DECL:
9841 if (DECL_LANG_SPECIFIC (t) && DECL_TEMPLATE_INFO (t))
9842 WALK_SUBTREE (DECL_TI_ARGS (t));
9843 /* Fall through. */
9844
9845 case PARM_DECL:
9846 case CONST_DECL:
9847 if (TREE_CODE (t) == CONST_DECL && DECL_TEMPLATE_PARM_P (t))
9848 WALK_SUBTREE (DECL_INITIAL (t));
9849 if (DECL_CONTEXT (t)
9850 && pfd->include_nondeduced_p)
9851 WALK_SUBTREE (DECL_CONTEXT (t));
9852 break;
9853
9854 case BOUND_TEMPLATE_TEMPLATE_PARM:
9855 /* Record template parameters such as `T' inside `TT<T>'. */
9856 WALK_SUBTREE (TYPE_TI_ARGS (t));
9857 /* Fall through. */
9858
9859 case TEMPLATE_TEMPLATE_PARM:
9860 case TEMPLATE_TYPE_PARM:
9861 case TEMPLATE_PARM_INDEX:
9862 if (fn && (*fn)(t, data))
9863 return t;
9864 else if (!fn)
9865 return t;
9866 break;
9867
9868 case TEMPLATE_DECL:
9869 /* A template template parameter is encountered. */
9870 if (DECL_TEMPLATE_TEMPLATE_PARM_P (t))
9871 WALK_SUBTREE (TREE_TYPE (t));
9872
9873 /* Already substituted template template parameter */
9874 *walk_subtrees = 0;
9875 break;
9876
9877 case TYPENAME_TYPE:
9878 /* A template-id in a TYPENAME_TYPE might be a deduced context after
9879 partial instantiation. */
9880 WALK_SUBTREE (TYPENAME_TYPE_FULLNAME (t));
9881 break;
9882
9883 case CONSTRUCTOR:
9884 if (TREE_TYPE (t) && TYPE_PTRMEMFUNC_P (TREE_TYPE (t))
9885 && pfd->include_nondeduced_p)
9886 WALK_SUBTREE (TYPE_PTRMEMFUNC_FN_TYPE (TREE_TYPE (t)));
9887 break;
9888
9889 case INDIRECT_REF:
9890 case COMPONENT_REF:
9891 /* If there's no type, then this thing must be some expression
9892 involving template parameters. */
9893 if (!fn && !TREE_TYPE (t))
9894 return error_mark_node;
9895 break;
9896
9897 case MODOP_EXPR:
9898 case CAST_EXPR:
9899 case IMPLICIT_CONV_EXPR:
9900 case REINTERPRET_CAST_EXPR:
9901 case CONST_CAST_EXPR:
9902 case STATIC_CAST_EXPR:
9903 case DYNAMIC_CAST_EXPR:
9904 case ARROW_EXPR:
9905 case DOTSTAR_EXPR:
9906 case TYPEID_EXPR:
9907 case PSEUDO_DTOR_EXPR:
9908 if (!fn)
9909 return error_mark_node;
9910 break;
9911
9912 default:
9913 break;
9914 }
9915
9916 #undef WALK_SUBTREE
9917
9918 /* We didn't find any template parameters we liked. */
9919 out:
9920 return result;
9921 }
9922
9923 /* For each TEMPLATE_TYPE_PARM, TEMPLATE_TEMPLATE_PARM,
9924 BOUND_TEMPLATE_TEMPLATE_PARM or TEMPLATE_PARM_INDEX in T,
9925 call FN with the parameter and the DATA.
9926 If FN returns nonzero, the iteration is terminated, and
9927 for_each_template_parm returns 1. Otherwise, the iteration
9928 continues. If FN never returns a nonzero value, the value
9929 returned by for_each_template_parm is 0. If FN is NULL, it is
9930 considered to be the function which always returns 1.
9931
9932 If INCLUDE_NONDEDUCED_P, then this routine will also visit template
9933 parameters that occur in non-deduced contexts. When false, only
9934 visits those template parameters that can be deduced. */
9935
9936 static tree
9937 for_each_template_parm (tree t, tree_fn_t fn, void* data,
9938 hash_set<tree> *visited,
9939 bool include_nondeduced_p,
9940 tree_fn_t any_fn)
9941 {
9942 struct pair_fn_data pfd;
9943 tree result;
9944
9945 /* Set up. */
9946 pfd.fn = fn;
9947 pfd.any_fn = any_fn;
9948 pfd.data = data;
9949 pfd.include_nondeduced_p = include_nondeduced_p;
9950
9951 /* Walk the tree. (Conceptually, we would like to walk without
9952 duplicates, but for_each_template_parm_r recursively calls
9953 for_each_template_parm, so we would need to reorganize a fair
9954 bit to use walk_tree_without_duplicates, so we keep our own
9955 visited list.) */
9956 if (visited)
9957 pfd.visited = visited;
9958 else
9959 pfd.visited = new hash_set<tree>;
9960 result = cp_walk_tree (&t,
9961 for_each_template_parm_r,
9962 &pfd,
9963 pfd.visited);
9964
9965 /* Clean up. */
9966 if (!visited)
9967 {
9968 delete pfd.visited;
9969 pfd.visited = 0;
9970 }
9971
9972 return result;
9973 }
9974
9975 /* Returns true if T depends on any template parameter. */
9976
9977 int
9978 uses_template_parms (tree t)
9979 {
9980 if (t == NULL_TREE)
9981 return false;
9982
9983 bool dependent_p;
9984 int saved_processing_template_decl;
9985
9986 saved_processing_template_decl = processing_template_decl;
9987 if (!saved_processing_template_decl)
9988 processing_template_decl = 1;
9989 if (TYPE_P (t))
9990 dependent_p = dependent_type_p (t);
9991 else if (TREE_CODE (t) == TREE_VEC)
9992 dependent_p = any_dependent_template_arguments_p (t);
9993 else if (TREE_CODE (t) == TREE_LIST)
9994 dependent_p = (uses_template_parms (TREE_VALUE (t))
9995 || uses_template_parms (TREE_CHAIN (t)));
9996 else if (TREE_CODE (t) == TYPE_DECL)
9997 dependent_p = dependent_type_p (TREE_TYPE (t));
9998 else if (DECL_P (t)
9999 || EXPR_P (t)
10000 || TREE_CODE (t) == TEMPLATE_PARM_INDEX
10001 || TREE_CODE (t) == OVERLOAD
10002 || BASELINK_P (t)
10003 || identifier_p (t)
10004 || TREE_CODE (t) == TRAIT_EXPR
10005 || TREE_CODE (t) == CONSTRUCTOR
10006 || CONSTANT_CLASS_P (t))
10007 dependent_p = (type_dependent_expression_p (t)
10008 || value_dependent_expression_p (t));
10009 else
10010 {
10011 gcc_assert (t == error_mark_node);
10012 dependent_p = false;
10013 }
10014
10015 processing_template_decl = saved_processing_template_decl;
10016
10017 return dependent_p;
10018 }
10019
10020 /* Returns true iff current_function_decl is an incompletely instantiated
10021 template. Useful instead of processing_template_decl because the latter
10022 is set to 0 during instantiate_non_dependent_expr. */
10023
10024 bool
10025 in_template_function (void)
10026 {
10027 tree fn = current_function_decl;
10028 bool ret;
10029 ++processing_template_decl;
10030 ret = (fn && DECL_LANG_SPECIFIC (fn)
10031 && DECL_TEMPLATE_INFO (fn)
10032 && any_dependent_template_arguments_p (DECL_TI_ARGS (fn)));
10033 --processing_template_decl;
10034 return ret;
10035 }
10036
10037 /* Returns true if T depends on any template parameter with level LEVEL. */
10038
10039 bool
10040 uses_template_parms_level (tree t, int level)
10041 {
10042 return for_each_template_parm (t, template_parm_this_level_p, &level, NULL,
10043 /*include_nondeduced_p=*/true);
10044 }
10045
10046 /* Returns true if the signature of DECL depends on any template parameter from
10047 its enclosing class. */
10048
10049 bool
10050 uses_outer_template_parms (tree decl)
10051 {
10052 int depth = template_class_depth (CP_DECL_CONTEXT (decl));
10053 if (depth == 0)
10054 return false;
10055 if (for_each_template_parm (TREE_TYPE (decl), template_parm_outer_level,
10056 &depth, NULL, /*include_nondeduced_p=*/true))
10057 return true;
10058 if (PRIMARY_TEMPLATE_P (decl)
10059 && for_each_template_parm (INNERMOST_TEMPLATE_PARMS
10060 (DECL_TEMPLATE_PARMS (decl)),
10061 template_parm_outer_level,
10062 &depth, NULL, /*include_nondeduced_p=*/true))
10063 return true;
10064 tree ci = get_constraints (decl);
10065 if (ci)
10066 ci = CI_ASSOCIATED_CONSTRAINTS (ci);
10067 if (ci && for_each_template_parm (ci, template_parm_outer_level,
10068 &depth, NULL, /*nondeduced*/true))
10069 return true;
10070 return false;
10071 }
10072
10073 /* Returns TRUE iff INST is an instantiation we don't need to do in an
10074 ill-formed translation unit, i.e. a variable or function that isn't
10075 usable in a constant expression. */
10076
10077 static inline bool
10078 neglectable_inst_p (tree d)
10079 {
10080 return (d && DECL_P (d)
10081 && !undeduced_auto_decl (d)
10082 && !(TREE_CODE (d) == FUNCTION_DECL ? DECL_DECLARED_CONSTEXPR_P (d)
10083 : decl_maybe_constant_var_p (d)));
10084 }
10085
10086 /* Returns TRUE iff we should refuse to instantiate DECL because it's
10087 neglectable and instantiated from within an erroneous instantiation. */
10088
10089 static bool
10090 limit_bad_template_recursion (tree decl)
10091 {
10092 struct tinst_level *lev = current_tinst_level;
10093 int errs = errorcount + sorrycount;
10094 if (lev == NULL || errs == 0 || !neglectable_inst_p (decl))
10095 return false;
10096
10097 for (; lev; lev = lev->next)
10098 if (neglectable_inst_p (lev->maybe_get_node ()))
10099 break;
10100
10101 return (lev && errs > lev->errors);
10102 }
10103
10104 static int tinst_depth;
10105 extern int max_tinst_depth;
10106 int depth_reached;
10107
10108 static GTY(()) struct tinst_level *last_error_tinst_level;
10109
10110 /* We're starting to instantiate D; record the template instantiation context
10111 at LOC for diagnostics and to restore it later. */
10112
10113 static bool
10114 push_tinst_level_loc (tree tldcl, tree targs, location_t loc)
10115 {
10116 struct tinst_level *new_level;
10117
10118 if (tinst_depth >= max_tinst_depth)
10119 {
10120 /* Tell error.c not to try to instantiate any templates. */
10121 at_eof = 2;
10122 fatal_error (input_location,
10123 "template instantiation depth exceeds maximum of %d"
10124 " (use -ftemplate-depth= to increase the maximum)",
10125 max_tinst_depth);
10126 return false;
10127 }
10128
10129 /* If the current instantiation caused problems, don't let it instantiate
10130 anything else. Do allow deduction substitution and decls usable in
10131 constant expressions. */
10132 if (!targs && limit_bad_template_recursion (tldcl))
10133 return false;
10134
10135 /* When not -quiet, dump template instantiations other than functions, since
10136 announce_function will take care of those. */
10137 if (!quiet_flag && !targs
10138 && TREE_CODE (tldcl) != TREE_LIST
10139 && TREE_CODE (tldcl) != FUNCTION_DECL)
10140 fprintf (stderr, " %s", decl_as_string (tldcl, TFF_DECL_SPECIFIERS));
10141
10142 new_level = tinst_level_freelist ().alloc ();
10143 new_level->tldcl = tldcl;
10144 new_level->targs = targs;
10145 new_level->locus = loc;
10146 new_level->errors = errorcount + sorrycount;
10147 new_level->next = NULL;
10148 new_level->refcount = 0;
10149 set_refcount_ptr (new_level->next, current_tinst_level);
10150 set_refcount_ptr (current_tinst_level, new_level);
10151
10152 ++tinst_depth;
10153 if (GATHER_STATISTICS && (tinst_depth > depth_reached))
10154 depth_reached = tinst_depth;
10155
10156 return true;
10157 }
10158
10159 /* We're starting substitution of TMPL<ARGS>; record the template
10160 substitution context for diagnostics and to restore it later. */
10161
10162 static bool
10163 push_tinst_level (tree tmpl, tree args)
10164 {
10165 return push_tinst_level_loc (tmpl, args, input_location);
10166 }
10167
10168 /* We're starting to instantiate D; record INPUT_LOCATION and the
10169 template instantiation context for diagnostics and to restore it
10170 later. */
10171
10172 bool
10173 push_tinst_level (tree d)
10174 {
10175 return push_tinst_level_loc (d, input_location);
10176 }
10177
10178 /* Likewise, but record LOC as the program location. */
10179
10180 bool
10181 push_tinst_level_loc (tree d, location_t loc)
10182 {
10183 gcc_assert (TREE_CODE (d) != TREE_LIST);
10184 return push_tinst_level_loc (d, NULL, loc);
10185 }
10186
10187 /* We're done instantiating this template; return to the instantiation
10188 context. */
10189
10190 void
10191 pop_tinst_level (void)
10192 {
10193 /* Restore the filename and line number stashed away when we started
10194 this instantiation. */
10195 input_location = current_tinst_level->locus;
10196 set_refcount_ptr (current_tinst_level, current_tinst_level->next);
10197 --tinst_depth;
10198 }
10199
10200 /* We're instantiating a deferred template; restore the template
10201 instantiation context in which the instantiation was requested, which
10202 is one step out from LEVEL. Return the corresponding DECL or TYPE. */
10203
10204 static tree
10205 reopen_tinst_level (struct tinst_level *level)
10206 {
10207 struct tinst_level *t;
10208
10209 tinst_depth = 0;
10210 for (t = level; t; t = t->next)
10211 ++tinst_depth;
10212
10213 set_refcount_ptr (current_tinst_level, level);
10214 pop_tinst_level ();
10215 if (current_tinst_level)
10216 current_tinst_level->errors = errorcount+sorrycount;
10217 return level->maybe_get_node ();
10218 }
10219
10220 /* Returns the TINST_LEVEL which gives the original instantiation
10221 context. */
10222
10223 struct tinst_level *
10224 outermost_tinst_level (void)
10225 {
10226 struct tinst_level *level = current_tinst_level;
10227 if (level)
10228 while (level->next)
10229 level = level->next;
10230 return level;
10231 }
10232
10233 /* DECL is a friend FUNCTION_DECL or TEMPLATE_DECL. ARGS is the
10234 vector of template arguments, as for tsubst.
10235
10236 Returns an appropriate tsubst'd friend declaration. */
10237
10238 static tree
10239 tsubst_friend_function (tree decl, tree args)
10240 {
10241 tree new_friend;
10242
10243 if (TREE_CODE (decl) == FUNCTION_DECL
10244 && DECL_TEMPLATE_INSTANTIATION (decl)
10245 && TREE_CODE (DECL_TI_TEMPLATE (decl)) != TEMPLATE_DECL)
10246 /* This was a friend declared with an explicit template
10247 argument list, e.g.:
10248
10249 friend void f<>(T);
10250
10251 to indicate that f was a template instantiation, not a new
10252 function declaration. Now, we have to figure out what
10253 instantiation of what template. */
10254 {
10255 tree template_id, arglist, fns;
10256 tree new_args;
10257 tree tmpl;
10258 tree ns = decl_namespace_context (TYPE_MAIN_DECL (current_class_type));
10259
10260 /* Friend functions are looked up in the containing namespace scope.
10261 We must enter that scope, to avoid finding member functions of the
10262 current class with same name. */
10263 push_nested_namespace (ns);
10264 fns = tsubst_expr (DECL_TI_TEMPLATE (decl), args,
10265 tf_warning_or_error, NULL_TREE,
10266 /*integral_constant_expression_p=*/false);
10267 pop_nested_namespace (ns);
10268 arglist = tsubst (DECL_TI_ARGS (decl), args,
10269 tf_warning_or_error, NULL_TREE);
10270 template_id = lookup_template_function (fns, arglist);
10271
10272 new_friend = tsubst (decl, args, tf_warning_or_error, NULL_TREE);
10273 tmpl = determine_specialization (template_id, new_friend,
10274 &new_args,
10275 /*need_member_template=*/0,
10276 TREE_VEC_LENGTH (args),
10277 tsk_none);
10278 return instantiate_template (tmpl, new_args, tf_error);
10279 }
10280
10281 new_friend = tsubst (decl, args, tf_warning_or_error, NULL_TREE);
10282
10283 /* The NEW_FRIEND will look like an instantiation, to the
10284 compiler, but is not an instantiation from the point of view of
10285 the language. For example, we might have had:
10286
10287 template <class T> struct S {
10288 template <class U> friend void f(T, U);
10289 };
10290
10291 Then, in S<int>, template <class U> void f(int, U) is not an
10292 instantiation of anything. */
10293 if (new_friend == error_mark_node)
10294 return error_mark_node;
10295
10296 DECL_USE_TEMPLATE (new_friend) = 0;
10297 if (TREE_CODE (decl) == TEMPLATE_DECL)
10298 {
10299 DECL_USE_TEMPLATE (DECL_TEMPLATE_RESULT (new_friend)) = 0;
10300 DECL_SAVED_TREE (DECL_TEMPLATE_RESULT (new_friend))
10301 = DECL_SAVED_TREE (DECL_TEMPLATE_RESULT (decl));
10302 }
10303
10304 /* The mangled name for the NEW_FRIEND is incorrect. The function
10305 is not a template instantiation and should not be mangled like
10306 one. Therefore, we forget the mangling here; we'll recompute it
10307 later if we need it. */
10308 if (TREE_CODE (new_friend) != TEMPLATE_DECL)
10309 {
10310 SET_DECL_RTL (new_friend, NULL);
10311 SET_DECL_ASSEMBLER_NAME (new_friend, NULL_TREE);
10312 }
10313
10314 if (DECL_NAMESPACE_SCOPE_P (new_friend))
10315 {
10316 tree old_decl;
10317 tree new_friend_template_info;
10318 tree new_friend_result_template_info;
10319 tree ns;
10320 int new_friend_is_defn;
10321
10322 /* We must save some information from NEW_FRIEND before calling
10323 duplicate decls since that function will free NEW_FRIEND if
10324 possible. */
10325 new_friend_template_info = DECL_TEMPLATE_INFO (new_friend);
10326 new_friend_is_defn =
10327 (DECL_INITIAL (DECL_TEMPLATE_RESULT
10328 (template_for_substitution (new_friend)))
10329 != NULL_TREE);
10330 if (TREE_CODE (new_friend) == TEMPLATE_DECL)
10331 {
10332 /* This declaration is a `primary' template. */
10333 DECL_PRIMARY_TEMPLATE (new_friend) = new_friend;
10334
10335 new_friend_result_template_info
10336 = DECL_TEMPLATE_INFO (DECL_TEMPLATE_RESULT (new_friend));
10337 }
10338 else
10339 new_friend_result_template_info = NULL_TREE;
10340
10341 /* Inside pushdecl_namespace_level, we will push into the
10342 current namespace. However, the friend function should go
10343 into the namespace of the template. */
10344 ns = decl_namespace_context (new_friend);
10345 push_nested_namespace (ns);
10346 old_decl = pushdecl_namespace_level (new_friend, /*is_friend=*/true);
10347 pop_nested_namespace (ns);
10348
10349 if (old_decl == error_mark_node)
10350 return error_mark_node;
10351
10352 if (old_decl != new_friend)
10353 {
10354 /* This new friend declaration matched an existing
10355 declaration. For example, given:
10356
10357 template <class T> void f(T);
10358 template <class U> class C {
10359 template <class T> friend void f(T) {}
10360 };
10361
10362 the friend declaration actually provides the definition
10363 of `f', once C has been instantiated for some type. So,
10364 old_decl will be the out-of-class template declaration,
10365 while new_friend is the in-class definition.
10366
10367 But, if `f' was called before this point, the
10368 instantiation of `f' will have DECL_TI_ARGS corresponding
10369 to `T' but not to `U', references to which might appear
10370 in the definition of `f'. Previously, the most general
10371 template for an instantiation of `f' was the out-of-class
10372 version; now it is the in-class version. Therefore, we
10373 run through all specialization of `f', adding to their
10374 DECL_TI_ARGS appropriately. In particular, they need a
10375 new set of outer arguments, corresponding to the
10376 arguments for this class instantiation.
10377
10378 The same situation can arise with something like this:
10379
10380 friend void f(int);
10381 template <class T> class C {
10382 friend void f(T) {}
10383 };
10384
10385 when `C<int>' is instantiated. Now, `f(int)' is defined
10386 in the class. */
10387
10388 if (!new_friend_is_defn)
10389 /* On the other hand, if the in-class declaration does
10390 *not* provide a definition, then we don't want to alter
10391 existing definitions. We can just leave everything
10392 alone. */
10393 ;
10394 else
10395 {
10396 tree new_template = TI_TEMPLATE (new_friend_template_info);
10397 tree new_args = TI_ARGS (new_friend_template_info);
10398
10399 /* Overwrite whatever template info was there before, if
10400 any, with the new template information pertaining to
10401 the declaration. */
10402 DECL_TEMPLATE_INFO (old_decl) = new_friend_template_info;
10403
10404 if (TREE_CODE (old_decl) != TEMPLATE_DECL)
10405 {
10406 /* We should have called reregister_specialization in
10407 duplicate_decls. */
10408 gcc_assert (retrieve_specialization (new_template,
10409 new_args, 0)
10410 == old_decl);
10411
10412 /* Instantiate it if the global has already been used. */
10413 if (DECL_ODR_USED (old_decl))
10414 instantiate_decl (old_decl, /*defer_ok=*/true,
10415 /*expl_inst_class_mem_p=*/false);
10416 }
10417 else
10418 {
10419 tree t;
10420
10421 /* Indicate that the old function template is a partial
10422 instantiation. */
10423 DECL_TEMPLATE_INFO (DECL_TEMPLATE_RESULT (old_decl))
10424 = new_friend_result_template_info;
10425
10426 gcc_assert (new_template
10427 == most_general_template (new_template));
10428 gcc_assert (new_template != old_decl);
10429
10430 /* Reassign any specializations already in the hash table
10431 to the new more general template, and add the
10432 additional template args. */
10433 for (t = DECL_TEMPLATE_INSTANTIATIONS (old_decl);
10434 t != NULL_TREE;
10435 t = TREE_CHAIN (t))
10436 {
10437 tree spec = TREE_VALUE (t);
10438 spec_entry elt;
10439
10440 elt.tmpl = old_decl;
10441 elt.args = DECL_TI_ARGS (spec);
10442 elt.spec = NULL_TREE;
10443
10444 decl_specializations->remove_elt (&elt);
10445
10446 DECL_TI_ARGS (spec)
10447 = add_outermost_template_args (new_args,
10448 DECL_TI_ARGS (spec));
10449
10450 register_specialization
10451 (spec, new_template, DECL_TI_ARGS (spec), true, 0);
10452
10453 }
10454 DECL_TEMPLATE_INSTANTIATIONS (old_decl) = NULL_TREE;
10455 }
10456 }
10457
10458 /* The information from NEW_FRIEND has been merged into OLD_DECL
10459 by duplicate_decls. */
10460 new_friend = old_decl;
10461 }
10462 }
10463 else
10464 {
10465 tree context = DECL_CONTEXT (new_friend);
10466 bool dependent_p;
10467
10468 /* In the code
10469 template <class T> class C {
10470 template <class U> friend void C1<U>::f (); // case 1
10471 friend void C2<T>::f (); // case 2
10472 };
10473 we only need to make sure CONTEXT is a complete type for
10474 case 2. To distinguish between the two cases, we note that
10475 CONTEXT of case 1 remains dependent type after tsubst while
10476 this isn't true for case 2. */
10477 ++processing_template_decl;
10478 dependent_p = dependent_type_p (context);
10479 --processing_template_decl;
10480
10481 if (!dependent_p
10482 && !complete_type_or_else (context, NULL_TREE))
10483 return error_mark_node;
10484
10485 if (COMPLETE_TYPE_P (context))
10486 {
10487 tree fn = new_friend;
10488 /* do_friend adds the TEMPLATE_DECL for any member friend
10489 template even if it isn't a member template, i.e.
10490 template <class T> friend A<T>::f();
10491 Look through it in that case. */
10492 if (TREE_CODE (fn) == TEMPLATE_DECL
10493 && !PRIMARY_TEMPLATE_P (fn))
10494 fn = DECL_TEMPLATE_RESULT (fn);
10495 /* Check to see that the declaration is really present, and,
10496 possibly obtain an improved declaration. */
10497 fn = check_classfn (context, fn, NULL_TREE);
10498
10499 if (fn)
10500 new_friend = fn;
10501 }
10502 }
10503
10504 return new_friend;
10505 }
10506
10507 /* FRIEND_TMPL is a friend TEMPLATE_DECL. ARGS is the vector of
10508 template arguments, as for tsubst.
10509
10510 Returns an appropriate tsubst'd friend type or error_mark_node on
10511 failure. */
10512
10513 static tree
10514 tsubst_friend_class (tree friend_tmpl, tree args)
10515 {
10516 tree tmpl;
10517
10518 if (DECL_TEMPLATE_TEMPLATE_PARM_P (friend_tmpl))
10519 {
10520 tmpl = tsubst (TREE_TYPE (friend_tmpl), args, tf_none, NULL_TREE);
10521 return TREE_TYPE (tmpl);
10522 }
10523
10524 tree context = CP_DECL_CONTEXT (friend_tmpl);
10525 if (TREE_CODE (context) == NAMESPACE_DECL)
10526 push_nested_namespace (context);
10527 else
10528 push_nested_class (context);
10529
10530 tmpl = lookup_name_real (DECL_NAME (friend_tmpl), /*prefer_type=*/false,
10531 /*non_class=*/false, /*block_p=*/false,
10532 /*namespaces_only=*/false, LOOKUP_HIDDEN);
10533
10534 if (tmpl && DECL_CLASS_TEMPLATE_P (tmpl))
10535 {
10536 /* The friend template has already been declared. Just
10537 check to see that the declarations match, and install any new
10538 default parameters. We must tsubst the default parameters,
10539 of course. We only need the innermost template parameters
10540 because that is all that redeclare_class_template will look
10541 at. */
10542 if (TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (friend_tmpl))
10543 > TMPL_ARGS_DEPTH (args))
10544 {
10545 tree parms = tsubst_template_parms (DECL_TEMPLATE_PARMS (friend_tmpl),
10546 args, tf_warning_or_error);
10547 location_t saved_input_location = input_location;
10548 input_location = DECL_SOURCE_LOCATION (friend_tmpl);
10549 tree cons = get_constraints (tmpl);
10550 redeclare_class_template (TREE_TYPE (tmpl), parms, cons);
10551 input_location = saved_input_location;
10552 }
10553 }
10554 else
10555 {
10556 /* The friend template has not already been declared. In this
10557 case, the instantiation of the template class will cause the
10558 injection of this template into the namespace scope. */
10559 tmpl = tsubst (friend_tmpl, args, tf_warning_or_error, NULL_TREE);
10560
10561 if (tmpl != error_mark_node)
10562 {
10563 /* The new TMPL is not an instantiation of anything, so we
10564 forget its origins. We don't reset CLASSTYPE_TI_TEMPLATE
10565 for the new type because that is supposed to be the
10566 corresponding template decl, i.e., TMPL. */
10567 DECL_USE_TEMPLATE (tmpl) = 0;
10568 DECL_TEMPLATE_INFO (tmpl) = NULL_TREE;
10569 CLASSTYPE_USE_TEMPLATE (TREE_TYPE (tmpl)) = 0;
10570 CLASSTYPE_TI_ARGS (TREE_TYPE (tmpl))
10571 = INNERMOST_TEMPLATE_ARGS (CLASSTYPE_TI_ARGS (TREE_TYPE (tmpl)));
10572
10573 /* It is hidden. */
10574 retrofit_lang_decl (DECL_TEMPLATE_RESULT (tmpl));
10575 DECL_ANTICIPATED (tmpl)
10576 = DECL_ANTICIPATED (DECL_TEMPLATE_RESULT (tmpl)) = true;
10577
10578 /* Inject this template into the enclosing namspace scope. */
10579 tmpl = pushdecl_namespace_level (tmpl, true);
10580 }
10581 }
10582
10583 if (TREE_CODE (context) == NAMESPACE_DECL)
10584 pop_nested_namespace (context);
10585 else
10586 pop_nested_class ();
10587
10588 return TREE_TYPE (tmpl);
10589 }
10590
10591 /* Returns zero if TYPE cannot be completed later due to circularity.
10592 Otherwise returns one. */
10593
10594 static int
10595 can_complete_type_without_circularity (tree type)
10596 {
10597 if (type == NULL_TREE || type == error_mark_node)
10598 return 0;
10599 else if (COMPLETE_TYPE_P (type))
10600 return 1;
10601 else if (TREE_CODE (type) == ARRAY_TYPE)
10602 return can_complete_type_without_circularity (TREE_TYPE (type));
10603 else if (CLASS_TYPE_P (type)
10604 && TYPE_BEING_DEFINED (TYPE_MAIN_VARIANT (type)))
10605 return 0;
10606 else
10607 return 1;
10608 }
10609
10610 static tree tsubst_omp_clauses (tree, enum c_omp_region_type, tree,
10611 tsubst_flags_t, tree);
10612
10613 /* Instantiate a single dependent attribute T (a TREE_LIST), and return either
10614 T or a new TREE_LIST, possibly a chain in the case of a pack expansion. */
10615
10616 static tree
10617 tsubst_attribute (tree t, tree *decl_p, tree args,
10618 tsubst_flags_t complain, tree in_decl)
10619 {
10620 gcc_assert (ATTR_IS_DEPENDENT (t));
10621
10622 tree val = TREE_VALUE (t);
10623 if (val == NULL_TREE)
10624 /* Nothing to do. */;
10625 else if ((flag_openmp || flag_openmp_simd)
10626 && is_attribute_p ("omp declare simd",
10627 get_attribute_name (t)))
10628 {
10629 tree clauses = TREE_VALUE (val);
10630 clauses = tsubst_omp_clauses (clauses, C_ORT_OMP_DECLARE_SIMD, args,
10631 complain, in_decl);
10632 c_omp_declare_simd_clauses_to_decls (*decl_p, clauses);
10633 clauses = finish_omp_clauses (clauses, C_ORT_OMP_DECLARE_SIMD);
10634 tree parms = DECL_ARGUMENTS (*decl_p);
10635 clauses
10636 = c_omp_declare_simd_clauses_to_numbers (parms, clauses);
10637 if (clauses)
10638 val = build_tree_list (NULL_TREE, clauses);
10639 else
10640 val = NULL_TREE;
10641 }
10642 /* If the first attribute argument is an identifier, don't
10643 pass it through tsubst. Attributes like mode, format,
10644 cleanup and several target specific attributes expect it
10645 unmodified. */
10646 else if (attribute_takes_identifier_p (get_attribute_name (t)))
10647 {
10648 tree chain
10649 = tsubst_expr (TREE_CHAIN (val), args, complain, in_decl,
10650 /*integral_constant_expression_p=*/false);
10651 if (chain != TREE_CHAIN (val))
10652 val = tree_cons (NULL_TREE, TREE_VALUE (val), chain);
10653 }
10654 else if (PACK_EXPANSION_P (val))
10655 {
10656 /* An attribute pack expansion. */
10657 tree purp = TREE_PURPOSE (t);
10658 tree pack = tsubst_pack_expansion (val, args, complain, in_decl);
10659 if (pack == error_mark_node)
10660 return error_mark_node;
10661 int len = TREE_VEC_LENGTH (pack);
10662 tree list = NULL_TREE;
10663 tree *q = &list;
10664 for (int i = 0; i < len; ++i)
10665 {
10666 tree elt = TREE_VEC_ELT (pack, i);
10667 *q = build_tree_list (purp, elt);
10668 q = &TREE_CHAIN (*q);
10669 }
10670 return list;
10671 }
10672 else
10673 val = tsubst_expr (val, args, complain, in_decl,
10674 /*integral_constant_expression_p=*/false);
10675
10676 if (val != TREE_VALUE (t))
10677 return build_tree_list (TREE_PURPOSE (t), val);
10678 return t;
10679 }
10680
10681 /* Instantiate any dependent attributes in ATTRIBUTES, returning either it
10682 unchanged or a new TREE_LIST chain. */
10683
10684 static tree
10685 tsubst_attributes (tree attributes, tree args,
10686 tsubst_flags_t complain, tree in_decl)
10687 {
10688 tree last_dep = NULL_TREE;
10689
10690 for (tree t = attributes; t; t = TREE_CHAIN (t))
10691 if (ATTR_IS_DEPENDENT (t))
10692 {
10693 last_dep = t;
10694 attributes = copy_list (attributes);
10695 break;
10696 }
10697
10698 if (last_dep)
10699 for (tree *p = &attributes; *p; )
10700 {
10701 tree t = *p;
10702 if (ATTR_IS_DEPENDENT (t))
10703 {
10704 tree subst = tsubst_attribute (t, NULL, args, complain, in_decl);
10705 if (subst != t)
10706 {
10707 *p = subst;
10708 while (*p)
10709 p = &TREE_CHAIN (*p);
10710 *p = TREE_CHAIN (t);
10711 continue;
10712 }
10713 }
10714 p = &TREE_CHAIN (*p);
10715 }
10716
10717 return attributes;
10718 }
10719
10720 /* Apply any attributes which had to be deferred until instantiation
10721 time. DECL_P, ATTRIBUTES and ATTR_FLAGS are as cplus_decl_attributes;
10722 ARGS, COMPLAIN, IN_DECL are as tsubst. */
10723
10724 static void
10725 apply_late_template_attributes (tree *decl_p, tree attributes, int attr_flags,
10726 tree args, tsubst_flags_t complain, tree in_decl)
10727 {
10728 tree last_dep = NULL_TREE;
10729 tree t;
10730 tree *p;
10731
10732 if (attributes == NULL_TREE)
10733 return;
10734
10735 if (DECL_P (*decl_p))
10736 {
10737 if (TREE_TYPE (*decl_p) == error_mark_node)
10738 return;
10739 p = &DECL_ATTRIBUTES (*decl_p);
10740 /* DECL_ATTRIBUTES comes from copy_node in tsubst_decl, and is identical
10741 to our attributes parameter. */
10742 gcc_assert (*p == attributes);
10743 }
10744 else
10745 {
10746 p = &TYPE_ATTRIBUTES (*decl_p);
10747 /* TYPE_ATTRIBUTES was set up (with abi_tag and may_alias) in
10748 lookup_template_class_1, and should be preserved. */
10749 gcc_assert (*p != attributes);
10750 while (*p)
10751 p = &TREE_CHAIN (*p);
10752 }
10753
10754 for (t = attributes; t; t = TREE_CHAIN (t))
10755 if (ATTR_IS_DEPENDENT (t))
10756 {
10757 last_dep = t;
10758 attributes = copy_list (attributes);
10759 break;
10760 }
10761
10762 *p = attributes;
10763 if (last_dep)
10764 {
10765 tree late_attrs = NULL_TREE;
10766 tree *q = &late_attrs;
10767
10768 for (; *p; )
10769 {
10770 t = *p;
10771 if (ATTR_IS_DEPENDENT (t))
10772 {
10773 *p = TREE_CHAIN (t);
10774 TREE_CHAIN (t) = NULL_TREE;
10775 *q = tsubst_attribute (t, decl_p, args, complain, in_decl);
10776 while (*q)
10777 q = &TREE_CHAIN (*q);
10778 }
10779 else
10780 p = &TREE_CHAIN (t);
10781 }
10782
10783 cplus_decl_attributes (decl_p, late_attrs, attr_flags);
10784 }
10785 }
10786
10787 /* Perform (or defer) access check for typedefs that were referenced
10788 from within the template TMPL code.
10789 This is a subroutine of instantiate_decl and instantiate_class_template.
10790 TMPL is the template to consider and TARGS is the list of arguments of
10791 that template. */
10792
10793 static void
10794 perform_typedefs_access_check (tree tmpl, tree targs)
10795 {
10796 location_t saved_location;
10797 unsigned i;
10798 qualified_typedef_usage_t *iter;
10799
10800 if (!tmpl
10801 || (!CLASS_TYPE_P (tmpl)
10802 && TREE_CODE (tmpl) != FUNCTION_DECL))
10803 return;
10804
10805 saved_location = input_location;
10806 FOR_EACH_VEC_SAFE_ELT (get_types_needing_access_check (tmpl), i, iter)
10807 {
10808 tree type_decl = iter->typedef_decl;
10809 tree type_scope = iter->context;
10810
10811 if (!type_decl || !type_scope || !CLASS_TYPE_P (type_scope))
10812 continue;
10813
10814 if (uses_template_parms (type_decl))
10815 type_decl = tsubst (type_decl, targs, tf_error, NULL_TREE);
10816 if (uses_template_parms (type_scope))
10817 type_scope = tsubst (type_scope, targs, tf_error, NULL_TREE);
10818
10819 /* Make access check error messages point to the location
10820 of the use of the typedef. */
10821 input_location = iter->locus;
10822 perform_or_defer_access_check (TYPE_BINFO (type_scope),
10823 type_decl, type_decl,
10824 tf_warning_or_error);
10825 }
10826 input_location = saved_location;
10827 }
10828
10829 static tree
10830 instantiate_class_template_1 (tree type)
10831 {
10832 tree templ, args, pattern, t, member;
10833 tree typedecl;
10834 tree pbinfo;
10835 tree base_list;
10836 unsigned int saved_maximum_field_alignment;
10837 tree fn_context;
10838
10839 if (type == error_mark_node)
10840 return error_mark_node;
10841
10842 if (COMPLETE_OR_OPEN_TYPE_P (type)
10843 || uses_template_parms (type))
10844 return type;
10845
10846 /* Figure out which template is being instantiated. */
10847 templ = most_general_template (CLASSTYPE_TI_TEMPLATE (type));
10848 gcc_assert (TREE_CODE (templ) == TEMPLATE_DECL);
10849
10850 /* Mark the type as in the process of being defined. */
10851 TYPE_BEING_DEFINED (type) = 1;
10852
10853 /* Determine what specialization of the original template to
10854 instantiate. */
10855 t = most_specialized_partial_spec (type, tf_warning_or_error);
10856 if (t == error_mark_node)
10857 return error_mark_node;
10858 else if (t)
10859 {
10860 /* This TYPE is actually an instantiation of a partial
10861 specialization. We replace the innermost set of ARGS with
10862 the arguments appropriate for substitution. For example,
10863 given:
10864
10865 template <class T> struct S {};
10866 template <class T> struct S<T*> {};
10867
10868 and supposing that we are instantiating S<int*>, ARGS will
10869 presently be {int*} -- but we need {int}. */
10870 pattern = TREE_TYPE (t);
10871 args = TREE_PURPOSE (t);
10872 }
10873 else
10874 {
10875 pattern = TREE_TYPE (templ);
10876 args = CLASSTYPE_TI_ARGS (type);
10877 }
10878
10879 /* If the template we're instantiating is incomplete, then clearly
10880 there's nothing we can do. */
10881 if (!COMPLETE_TYPE_P (pattern))
10882 {
10883 /* We can try again later. */
10884 TYPE_BEING_DEFINED (type) = 0;
10885 return type;
10886 }
10887
10888 /* If we've recursively instantiated too many templates, stop. */
10889 if (! push_tinst_level (type))
10890 return type;
10891
10892 /* We may be in the middle of deferred access check. Disable
10893 it now. */
10894 push_deferring_access_checks (dk_no_deferred);
10895
10896 int saved_unevaluated_operand = cp_unevaluated_operand;
10897 int saved_inhibit_evaluation_warnings = c_inhibit_evaluation_warnings;
10898
10899 fn_context = decl_function_context (TYPE_MAIN_DECL (type));
10900 /* Also avoid push_to_top_level for a lambda in an NSDMI. */
10901 if (!fn_context && LAMBDA_TYPE_P (type) && TYPE_CLASS_SCOPE_P (type))
10902 fn_context = error_mark_node;
10903 if (!fn_context)
10904 push_to_top_level ();
10905 else
10906 {
10907 cp_unevaluated_operand = 0;
10908 c_inhibit_evaluation_warnings = 0;
10909 }
10910 /* Use #pragma pack from the template context. */
10911 saved_maximum_field_alignment = maximum_field_alignment;
10912 maximum_field_alignment = TYPE_PRECISION (pattern);
10913
10914 SET_CLASSTYPE_INTERFACE_UNKNOWN (type);
10915
10916 /* Set the input location to the most specialized template definition.
10917 This is needed if tsubsting causes an error. */
10918 typedecl = TYPE_MAIN_DECL (pattern);
10919 input_location = DECL_SOURCE_LOCATION (TYPE_NAME (type)) =
10920 DECL_SOURCE_LOCATION (typedecl);
10921
10922 TYPE_PACKED (type) = TYPE_PACKED (pattern);
10923 SET_TYPE_ALIGN (type, TYPE_ALIGN (pattern));
10924 TYPE_USER_ALIGN (type) = TYPE_USER_ALIGN (pattern);
10925 CLASSTYPE_NON_AGGREGATE (type) = CLASSTYPE_NON_AGGREGATE (pattern);
10926 if (ANON_AGGR_TYPE_P (pattern))
10927 SET_ANON_AGGR_TYPE_P (type);
10928 if (CLASSTYPE_VISIBILITY_SPECIFIED (pattern))
10929 {
10930 CLASSTYPE_VISIBILITY_SPECIFIED (type) = 1;
10931 CLASSTYPE_VISIBILITY (type) = CLASSTYPE_VISIBILITY (pattern);
10932 /* Adjust visibility for template arguments. */
10933 determine_visibility (TYPE_MAIN_DECL (type));
10934 }
10935 if (CLASS_TYPE_P (type))
10936 CLASSTYPE_FINAL (type) = CLASSTYPE_FINAL (pattern);
10937
10938 pbinfo = TYPE_BINFO (pattern);
10939
10940 /* We should never instantiate a nested class before its enclosing
10941 class; we need to look up the nested class by name before we can
10942 instantiate it, and that lookup should instantiate the enclosing
10943 class. */
10944 gcc_assert (!DECL_CLASS_SCOPE_P (TYPE_MAIN_DECL (pattern))
10945 || COMPLETE_OR_OPEN_TYPE_P (TYPE_CONTEXT (type)));
10946
10947 base_list = NULL_TREE;
10948 if (BINFO_N_BASE_BINFOS (pbinfo))
10949 {
10950 tree pbase_binfo;
10951 tree pushed_scope;
10952 int i;
10953
10954 /* We must enter the scope containing the type, as that is where
10955 the accessibility of types named in dependent bases are
10956 looked up from. */
10957 pushed_scope = push_scope (CP_TYPE_CONTEXT (type));
10958
10959 /* Substitute into each of the bases to determine the actual
10960 basetypes. */
10961 for (i = 0; BINFO_BASE_ITERATE (pbinfo, i, pbase_binfo); i++)
10962 {
10963 tree base;
10964 tree access = BINFO_BASE_ACCESS (pbinfo, i);
10965 tree expanded_bases = NULL_TREE;
10966 int idx, len = 1;
10967
10968 if (PACK_EXPANSION_P (BINFO_TYPE (pbase_binfo)))
10969 {
10970 expanded_bases =
10971 tsubst_pack_expansion (BINFO_TYPE (pbase_binfo),
10972 args, tf_error, NULL_TREE);
10973 if (expanded_bases == error_mark_node)
10974 continue;
10975
10976 len = TREE_VEC_LENGTH (expanded_bases);
10977 }
10978
10979 for (idx = 0; idx < len; idx++)
10980 {
10981 if (expanded_bases)
10982 /* Extract the already-expanded base class. */
10983 base = TREE_VEC_ELT (expanded_bases, idx);
10984 else
10985 /* Substitute to figure out the base class. */
10986 base = tsubst (BINFO_TYPE (pbase_binfo), args, tf_error,
10987 NULL_TREE);
10988
10989 if (base == error_mark_node)
10990 continue;
10991
10992 base_list = tree_cons (access, base, base_list);
10993 if (BINFO_VIRTUAL_P (pbase_binfo))
10994 TREE_TYPE (base_list) = integer_type_node;
10995 }
10996 }
10997
10998 /* The list is now in reverse order; correct that. */
10999 base_list = nreverse (base_list);
11000
11001 if (pushed_scope)
11002 pop_scope (pushed_scope);
11003 }
11004 /* Now call xref_basetypes to set up all the base-class
11005 information. */
11006 xref_basetypes (type, base_list);
11007
11008 apply_late_template_attributes (&type, TYPE_ATTRIBUTES (pattern),
11009 (int) ATTR_FLAG_TYPE_IN_PLACE,
11010 args, tf_error, NULL_TREE);
11011 fixup_attribute_variants (type);
11012
11013 /* Now that our base classes are set up, enter the scope of the
11014 class, so that name lookups into base classes, etc. will work
11015 correctly. This is precisely analogous to what we do in
11016 begin_class_definition when defining an ordinary non-template
11017 class, except we also need to push the enclosing classes. */
11018 push_nested_class (type);
11019
11020 /* Now members are processed in the order of declaration. */
11021 for (member = CLASSTYPE_DECL_LIST (pattern);
11022 member; member = TREE_CHAIN (member))
11023 {
11024 tree t = TREE_VALUE (member);
11025
11026 if (TREE_PURPOSE (member))
11027 {
11028 if (TYPE_P (t))
11029 {
11030 if (LAMBDA_TYPE_P (t))
11031 /* A closure type for a lambda in an NSDMI or default argument.
11032 Ignore it; it will be regenerated when needed. */
11033 continue;
11034
11035 /* Build new CLASSTYPE_NESTED_UTDS. */
11036
11037 tree newtag;
11038 bool class_template_p;
11039
11040 class_template_p = (TREE_CODE (t) != ENUMERAL_TYPE
11041 && TYPE_LANG_SPECIFIC (t)
11042 && CLASSTYPE_IS_TEMPLATE (t));
11043 /* If the member is a class template, then -- even after
11044 substitution -- there may be dependent types in the
11045 template argument list for the class. We increment
11046 PROCESSING_TEMPLATE_DECL so that dependent_type_p, as
11047 that function will assume that no types are dependent
11048 when outside of a template. */
11049 if (class_template_p)
11050 ++processing_template_decl;
11051 newtag = tsubst (t, args, tf_error, NULL_TREE);
11052 if (class_template_p)
11053 --processing_template_decl;
11054 if (newtag == error_mark_node)
11055 continue;
11056
11057 if (TREE_CODE (newtag) != ENUMERAL_TYPE)
11058 {
11059 tree name = TYPE_IDENTIFIER (t);
11060
11061 if (class_template_p)
11062 /* Unfortunately, lookup_template_class sets
11063 CLASSTYPE_IMPLICIT_INSTANTIATION for a partial
11064 instantiation (i.e., for the type of a member
11065 template class nested within a template class.)
11066 This behavior is required for
11067 maybe_process_partial_specialization to work
11068 correctly, but is not accurate in this case;
11069 the TAG is not an instantiation of anything.
11070 (The corresponding TEMPLATE_DECL is an
11071 instantiation, but the TYPE is not.) */
11072 CLASSTYPE_USE_TEMPLATE (newtag) = 0;
11073
11074 /* Now, we call pushtag to put this NEWTAG into the scope of
11075 TYPE. We first set up the IDENTIFIER_TYPE_VALUE to avoid
11076 pushtag calling push_template_decl. We don't have to do
11077 this for enums because it will already have been done in
11078 tsubst_enum. */
11079 if (name)
11080 SET_IDENTIFIER_TYPE_VALUE (name, newtag);
11081 pushtag (name, newtag, /*tag_scope=*/ts_current);
11082 }
11083 }
11084 else if (DECL_DECLARES_FUNCTION_P (t))
11085 {
11086 tree r;
11087
11088 if (TREE_CODE (t) == TEMPLATE_DECL)
11089 ++processing_template_decl;
11090 r = tsubst (t, args, tf_error, NULL_TREE);
11091 if (TREE_CODE (t) == TEMPLATE_DECL)
11092 --processing_template_decl;
11093 set_current_access_from_decl (r);
11094 finish_member_declaration (r);
11095 /* Instantiate members marked with attribute used. */
11096 if (r != error_mark_node && DECL_PRESERVE_P (r))
11097 mark_used (r);
11098 if (TREE_CODE (r) == FUNCTION_DECL
11099 && DECL_OMP_DECLARE_REDUCTION_P (r))
11100 cp_check_omp_declare_reduction (r);
11101 }
11102 else if ((DECL_CLASS_TEMPLATE_P (t) || DECL_IMPLICIT_TYPEDEF_P (t))
11103 && LAMBDA_TYPE_P (TREE_TYPE (t)))
11104 /* A closure type for a lambda in an NSDMI or default argument.
11105 Ignore it; it will be regenerated when needed. */;
11106 else
11107 {
11108 /* Build new TYPE_FIELDS. */
11109 if (TREE_CODE (t) == STATIC_ASSERT)
11110 {
11111 tree condition;
11112
11113 ++c_inhibit_evaluation_warnings;
11114 condition =
11115 tsubst_expr (STATIC_ASSERT_CONDITION (t), args,
11116 tf_warning_or_error, NULL_TREE,
11117 /*integral_constant_expression_p=*/true);
11118 --c_inhibit_evaluation_warnings;
11119
11120 finish_static_assert (condition,
11121 STATIC_ASSERT_MESSAGE (t),
11122 STATIC_ASSERT_SOURCE_LOCATION (t),
11123 /*member_p=*/true);
11124 }
11125 else if (TREE_CODE (t) != CONST_DECL)
11126 {
11127 tree r;
11128 tree vec = NULL_TREE;
11129 int len = 1;
11130
11131 /* The file and line for this declaration, to
11132 assist in error message reporting. Since we
11133 called push_tinst_level above, we don't need to
11134 restore these. */
11135 input_location = DECL_SOURCE_LOCATION (t);
11136
11137 if (TREE_CODE (t) == TEMPLATE_DECL)
11138 ++processing_template_decl;
11139 r = tsubst (t, args, tf_warning_or_error, NULL_TREE);
11140 if (TREE_CODE (t) == TEMPLATE_DECL)
11141 --processing_template_decl;
11142
11143 if (TREE_CODE (r) == TREE_VEC)
11144 {
11145 /* A capture pack became multiple fields. */
11146 vec = r;
11147 len = TREE_VEC_LENGTH (vec);
11148 }
11149
11150 for (int i = 0; i < len; ++i)
11151 {
11152 if (vec)
11153 r = TREE_VEC_ELT (vec, i);
11154 if (VAR_P (r))
11155 {
11156 /* In [temp.inst]:
11157
11158 [t]he initialization (and any associated
11159 side-effects) of a static data member does
11160 not occur unless the static data member is
11161 itself used in a way that requires the
11162 definition of the static data member to
11163 exist.
11164
11165 Therefore, we do not substitute into the
11166 initialized for the static data member here. */
11167 finish_static_data_member_decl
11168 (r,
11169 /*init=*/NULL_TREE,
11170 /*init_const_expr_p=*/false,
11171 /*asmspec_tree=*/NULL_TREE,
11172 /*flags=*/0);
11173 /* Instantiate members marked with attribute used. */
11174 if (r != error_mark_node && DECL_PRESERVE_P (r))
11175 mark_used (r);
11176 }
11177 else if (TREE_CODE (r) == FIELD_DECL)
11178 {
11179 /* Determine whether R has a valid type and can be
11180 completed later. If R is invalid, then its type
11181 is replaced by error_mark_node. */
11182 tree rtype = TREE_TYPE (r);
11183 if (can_complete_type_without_circularity (rtype))
11184 complete_type (rtype);
11185
11186 if (!complete_or_array_type_p (rtype))
11187 {
11188 /* If R's type couldn't be completed and
11189 it isn't a flexible array member (whose
11190 type is incomplete by definition) give
11191 an error. */
11192 cxx_incomplete_type_error (r, rtype);
11193 TREE_TYPE (r) = error_mark_node;
11194 }
11195 else if (TREE_CODE (rtype) == ARRAY_TYPE
11196 && TYPE_DOMAIN (rtype) == NULL_TREE
11197 && (TREE_CODE (type) == UNION_TYPE
11198 || TREE_CODE (type) == QUAL_UNION_TYPE))
11199 {
11200 error ("flexible array member %qD in union", r);
11201 TREE_TYPE (r) = error_mark_node;
11202 }
11203 }
11204
11205 /* If it is a TYPE_DECL for a class-scoped ENUMERAL_TYPE,
11206 such a thing will already have been added to the field
11207 list by tsubst_enum in finish_member_declaration in the
11208 CLASSTYPE_NESTED_UTDS case above. */
11209 if (!(TREE_CODE (r) == TYPE_DECL
11210 && TREE_CODE (TREE_TYPE (r)) == ENUMERAL_TYPE
11211 && DECL_ARTIFICIAL (r)))
11212 {
11213 set_current_access_from_decl (r);
11214 finish_member_declaration (r);
11215 }
11216 }
11217 }
11218 }
11219 }
11220 else
11221 {
11222 if (TYPE_P (t) || DECL_CLASS_TEMPLATE_P (t)
11223 || DECL_TEMPLATE_TEMPLATE_PARM_P (t))
11224 {
11225 /* Build new CLASSTYPE_FRIEND_CLASSES. */
11226
11227 tree friend_type = t;
11228 bool adjust_processing_template_decl = false;
11229
11230 if (TREE_CODE (friend_type) == TEMPLATE_DECL)
11231 {
11232 /* template <class T> friend class C; */
11233 friend_type = tsubst_friend_class (friend_type, args);
11234 adjust_processing_template_decl = true;
11235 }
11236 else if (TREE_CODE (friend_type) == UNBOUND_CLASS_TEMPLATE)
11237 {
11238 /* template <class T> friend class C::D; */
11239 friend_type = tsubst (friend_type, args,
11240 tf_warning_or_error, NULL_TREE);
11241 if (TREE_CODE (friend_type) == TEMPLATE_DECL)
11242 friend_type = TREE_TYPE (friend_type);
11243 adjust_processing_template_decl = true;
11244 }
11245 else if (TREE_CODE (friend_type) == TYPENAME_TYPE
11246 || TREE_CODE (friend_type) == TEMPLATE_TYPE_PARM)
11247 {
11248 /* This could be either
11249
11250 friend class T::C;
11251
11252 when dependent_type_p is false or
11253
11254 template <class U> friend class T::C;
11255
11256 otherwise. */
11257 /* Bump processing_template_decl in case this is something like
11258 template <class T> friend struct A<T>::B. */
11259 ++processing_template_decl;
11260 friend_type = tsubst (friend_type, args,
11261 tf_warning_or_error, NULL_TREE);
11262 if (dependent_type_p (friend_type))
11263 adjust_processing_template_decl = true;
11264 --processing_template_decl;
11265 }
11266 else if (TREE_CODE (friend_type) != BOUND_TEMPLATE_TEMPLATE_PARM
11267 && !CLASSTYPE_USE_TEMPLATE (friend_type)
11268 && TYPE_HIDDEN_P (friend_type))
11269 {
11270 /* friend class C;
11271
11272 where C hasn't been declared yet. Let's lookup name
11273 from namespace scope directly, bypassing any name that
11274 come from dependent base class. */
11275 tree ns = decl_namespace_context (TYPE_MAIN_DECL (friend_type));
11276
11277 /* The call to xref_tag_from_type does injection for friend
11278 classes. */
11279 push_nested_namespace (ns);
11280 friend_type =
11281 xref_tag_from_type (friend_type, NULL_TREE,
11282 /*tag_scope=*/ts_current);
11283 pop_nested_namespace (ns);
11284 }
11285 else if (uses_template_parms (friend_type))
11286 /* friend class C<T>; */
11287 friend_type = tsubst (friend_type, args,
11288 tf_warning_or_error, NULL_TREE);
11289 /* Otherwise it's
11290
11291 friend class C;
11292
11293 where C is already declared or
11294
11295 friend class C<int>;
11296
11297 We don't have to do anything in these cases. */
11298
11299 if (adjust_processing_template_decl)
11300 /* Trick make_friend_class into realizing that the friend
11301 we're adding is a template, not an ordinary class. It's
11302 important that we use make_friend_class since it will
11303 perform some error-checking and output cross-reference
11304 information. */
11305 ++processing_template_decl;
11306
11307 if (friend_type != error_mark_node)
11308 make_friend_class (type, friend_type, /*complain=*/false);
11309
11310 if (adjust_processing_template_decl)
11311 --processing_template_decl;
11312 }
11313 else
11314 {
11315 /* Build new DECL_FRIENDLIST. */
11316 tree r;
11317
11318 /* The file and line for this declaration, to
11319 assist in error message reporting. Since we
11320 called push_tinst_level above, we don't need to
11321 restore these. */
11322 input_location = DECL_SOURCE_LOCATION (t);
11323
11324 if (TREE_CODE (t) == TEMPLATE_DECL)
11325 {
11326 ++processing_template_decl;
11327 push_deferring_access_checks (dk_no_check);
11328 }
11329
11330 r = tsubst_friend_function (t, args);
11331 add_friend (type, r, /*complain=*/false);
11332 if (TREE_CODE (t) == TEMPLATE_DECL)
11333 {
11334 pop_deferring_access_checks ();
11335 --processing_template_decl;
11336 }
11337 }
11338 }
11339 }
11340
11341 if (fn_context)
11342 {
11343 /* Restore these before substituting into the lambda capture
11344 initializers. */
11345 cp_unevaluated_operand = saved_unevaluated_operand;
11346 c_inhibit_evaluation_warnings = saved_inhibit_evaluation_warnings;
11347 }
11348
11349 /* Set the file and line number information to whatever is given for
11350 the class itself. This puts error messages involving generated
11351 implicit functions at a predictable point, and the same point
11352 that would be used for non-template classes. */
11353 input_location = DECL_SOURCE_LOCATION (typedecl);
11354
11355 unreverse_member_declarations (type);
11356 finish_struct_1 (type);
11357 TYPE_BEING_DEFINED (type) = 0;
11358
11359 /* We don't instantiate default arguments for member functions. 14.7.1:
11360
11361 The implicit instantiation of a class template specialization causes
11362 the implicit instantiation of the declarations, but not of the
11363 definitions or default arguments, of the class member functions,
11364 member classes, static data members and member templates.... */
11365
11366 /* Some typedefs referenced from within the template code need to be access
11367 checked at template instantiation time, i.e now. These types were
11368 added to the template at parsing time. Let's get those and perform
11369 the access checks then. */
11370 perform_typedefs_access_check (pattern, args);
11371 perform_deferred_access_checks (tf_warning_or_error);
11372 pop_nested_class ();
11373 maximum_field_alignment = saved_maximum_field_alignment;
11374 if (!fn_context)
11375 pop_from_top_level ();
11376 pop_deferring_access_checks ();
11377 pop_tinst_level ();
11378
11379 /* The vtable for a template class can be emitted in any translation
11380 unit in which the class is instantiated. When there is no key
11381 method, however, finish_struct_1 will already have added TYPE to
11382 the keyed_classes. */
11383 if (TYPE_CONTAINS_VPTR_P (type) && CLASSTYPE_KEY_METHOD (type))
11384 vec_safe_push (keyed_classes, type);
11385
11386 return type;
11387 }
11388
11389 /* Wrapper for instantiate_class_template_1. */
11390
11391 tree
11392 instantiate_class_template (tree type)
11393 {
11394 tree ret;
11395 timevar_push (TV_TEMPLATE_INST);
11396 ret = instantiate_class_template_1 (type);
11397 timevar_pop (TV_TEMPLATE_INST);
11398 return ret;
11399 }
11400
11401 static tree
11402 tsubst_template_arg (tree t, tree args, tsubst_flags_t complain, tree in_decl)
11403 {
11404 tree r;
11405
11406 if (!t)
11407 r = t;
11408 else if (TYPE_P (t))
11409 r = tsubst (t, args, complain, in_decl);
11410 else
11411 {
11412 if (!(complain & tf_warning))
11413 ++c_inhibit_evaluation_warnings;
11414 r = tsubst_expr (t, args, complain, in_decl,
11415 /*integral_constant_expression_p=*/true);
11416 if (!(complain & tf_warning))
11417 --c_inhibit_evaluation_warnings;
11418 }
11419 return r;
11420 }
11421
11422 /* Given a function parameter pack TMPL_PARM and some function parameters
11423 instantiated from it at *SPEC_P, return a NONTYPE_ARGUMENT_PACK of them
11424 and set *SPEC_P to point at the next point in the list. */
11425
11426 tree
11427 extract_fnparm_pack (tree tmpl_parm, tree *spec_p)
11428 {
11429 /* Collect all of the extra "packed" parameters into an
11430 argument pack. */
11431 tree parmvec;
11432 tree argpack = make_node (NONTYPE_ARGUMENT_PACK);
11433 tree spec_parm = *spec_p;
11434 int i, len;
11435
11436 for (len = 0; spec_parm; ++len, spec_parm = TREE_CHAIN (spec_parm))
11437 if (tmpl_parm
11438 && !function_parameter_expanded_from_pack_p (spec_parm, tmpl_parm))
11439 break;
11440
11441 /* Fill in PARMVEC and PARMTYPEVEC with all of the parameters. */
11442 parmvec = make_tree_vec (len);
11443 spec_parm = *spec_p;
11444 for (i = 0; i < len; i++, spec_parm = DECL_CHAIN (spec_parm))
11445 {
11446 tree elt = spec_parm;
11447 if (DECL_PACK_P (elt))
11448 elt = make_pack_expansion (elt);
11449 TREE_VEC_ELT (parmvec, i) = elt;
11450 }
11451
11452 /* Build the argument packs. */
11453 SET_ARGUMENT_PACK_ARGS (argpack, parmvec);
11454 *spec_p = spec_parm;
11455
11456 return argpack;
11457 }
11458
11459 /* Give a chain SPEC_PARM of PARM_DECLs, pack them into a
11460 NONTYPE_ARGUMENT_PACK. */
11461
11462 static tree
11463 make_fnparm_pack (tree spec_parm)
11464 {
11465 return extract_fnparm_pack (NULL_TREE, &spec_parm);
11466 }
11467
11468 /* Return 1 if the Ith element of the argument pack ARG_PACK is a
11469 pack expansion with no extra args, 2 if it has extra args, or 0
11470 if it is not a pack expansion. */
11471
11472 static int
11473 argument_pack_element_is_expansion_p (tree arg_pack, int i)
11474 {
11475 tree vec = ARGUMENT_PACK_ARGS (arg_pack);
11476 if (i >= TREE_VEC_LENGTH (vec))
11477 return 0;
11478 tree elt = TREE_VEC_ELT (vec, i);
11479 if (DECL_P (elt))
11480 /* A decl pack is itself an expansion. */
11481 elt = TREE_TYPE (elt);
11482 if (!PACK_EXPANSION_P (elt))
11483 return 0;
11484 if (PACK_EXPANSION_EXTRA_ARGS (elt))
11485 return 2;
11486 return 1;
11487 }
11488
11489
11490 /* Creates and return an ARGUMENT_PACK_SELECT tree node. */
11491
11492 static tree
11493 make_argument_pack_select (tree arg_pack, unsigned index)
11494 {
11495 tree aps = make_node (ARGUMENT_PACK_SELECT);
11496
11497 ARGUMENT_PACK_SELECT_FROM_PACK (aps) = arg_pack;
11498 ARGUMENT_PACK_SELECT_INDEX (aps) = index;
11499
11500 return aps;
11501 }
11502
11503 /* This is a subroutine of tsubst_pack_expansion.
11504
11505 It returns TRUE if we need to use the PACK_EXPANSION_EXTRA_ARGS
11506 mechanism to store the (non complete list of) arguments of the
11507 substitution and return a non substituted pack expansion, in order
11508 to wait for when we have enough arguments to really perform the
11509 substitution. */
11510
11511 static bool
11512 use_pack_expansion_extra_args_p (tree parm_packs,
11513 int arg_pack_len,
11514 bool has_empty_arg)
11515 {
11516 /* If one pack has an expansion and another pack has a normal
11517 argument or if one pack has an empty argument and an another
11518 one hasn't then tsubst_pack_expansion cannot perform the
11519 substitution and need to fall back on the
11520 PACK_EXPANSION_EXTRA mechanism. */
11521 if (parm_packs == NULL_TREE)
11522 return false;
11523 else if (has_empty_arg)
11524 return true;
11525
11526 bool has_expansion_arg = false;
11527 for (int i = 0 ; i < arg_pack_len; ++i)
11528 {
11529 bool has_non_expansion_arg = false;
11530 for (tree parm_pack = parm_packs;
11531 parm_pack;
11532 parm_pack = TREE_CHAIN (parm_pack))
11533 {
11534 tree arg = TREE_VALUE (parm_pack);
11535
11536 int exp = argument_pack_element_is_expansion_p (arg, i);
11537 if (exp == 2)
11538 /* We can't substitute a pack expansion with extra args into
11539 our pattern. */
11540 return true;
11541 else if (exp)
11542 has_expansion_arg = true;
11543 else
11544 has_non_expansion_arg = true;
11545 }
11546
11547 if (has_expansion_arg && has_non_expansion_arg)
11548 return true;
11549 }
11550 return false;
11551 }
11552
11553 /* [temp.variadic]/6 says that:
11554
11555 The instantiation of a pack expansion [...]
11556 produces a list E1,E2, ..., En, where N is the number of elements
11557 in the pack expansion parameters.
11558
11559 This subroutine of tsubst_pack_expansion produces one of these Ei.
11560
11561 PATTERN is the pattern of the pack expansion. PARM_PACKS is a
11562 TREE_LIST in which each TREE_PURPOSE is a parameter pack of
11563 PATTERN, and each TREE_VALUE is its corresponding argument pack.
11564 INDEX is the index 'i' of the element Ei to produce. ARGS,
11565 COMPLAIN, and IN_DECL are the same parameters as for the
11566 tsubst_pack_expansion function.
11567
11568 The function returns the resulting Ei upon successful completion,
11569 or error_mark_node.
11570
11571 Note that this function possibly modifies the ARGS parameter, so
11572 it's the responsibility of the caller to restore it. */
11573
11574 static tree
11575 gen_elem_of_pack_expansion_instantiation (tree pattern,
11576 tree parm_packs,
11577 unsigned index,
11578 tree args /* This parm gets
11579 modified. */,
11580 tsubst_flags_t complain,
11581 tree in_decl)
11582 {
11583 tree t;
11584 bool ith_elem_is_expansion = false;
11585
11586 /* For each parameter pack, change the substitution of the parameter
11587 pack to the ith argument in its argument pack, then expand the
11588 pattern. */
11589 for (tree pack = parm_packs; pack; pack = TREE_CHAIN (pack))
11590 {
11591 tree parm = TREE_PURPOSE (pack);
11592 tree arg_pack = TREE_VALUE (pack);
11593 tree aps; /* instance of ARGUMENT_PACK_SELECT. */
11594
11595 ith_elem_is_expansion |=
11596 argument_pack_element_is_expansion_p (arg_pack, index);
11597
11598 /* Select the Ith argument from the pack. */
11599 if (TREE_CODE (parm) == PARM_DECL
11600 || VAR_P (parm)
11601 || TREE_CODE (parm) == FIELD_DECL)
11602 {
11603 if (index == 0)
11604 {
11605 aps = make_argument_pack_select (arg_pack, index);
11606 if (!mark_used (parm, complain) && !(complain & tf_error))
11607 return error_mark_node;
11608 register_local_specialization (aps, parm);
11609 }
11610 else
11611 aps = retrieve_local_specialization (parm);
11612 }
11613 else
11614 {
11615 int idx, level;
11616 template_parm_level_and_index (parm, &level, &idx);
11617
11618 if (index == 0)
11619 {
11620 aps = make_argument_pack_select (arg_pack, index);
11621 /* Update the corresponding argument. */
11622 TMPL_ARG (args, level, idx) = aps;
11623 }
11624 else
11625 /* Re-use the ARGUMENT_PACK_SELECT. */
11626 aps = TMPL_ARG (args, level, idx);
11627 }
11628 ARGUMENT_PACK_SELECT_INDEX (aps) = index;
11629 }
11630
11631 /* Substitute into the PATTERN with the (possibly altered)
11632 arguments. */
11633 if (pattern == in_decl)
11634 /* Expanding a fixed parameter pack from
11635 coerce_template_parameter_pack. */
11636 t = tsubst_decl (pattern, args, complain);
11637 else if (pattern == error_mark_node)
11638 t = error_mark_node;
11639 else if (constraint_p (pattern))
11640 {
11641 if (processing_template_decl)
11642 t = tsubst_constraint (pattern, args, complain, in_decl);
11643 else
11644 t = (constraints_satisfied_p (pattern, args)
11645 ? boolean_true_node : boolean_false_node);
11646 }
11647 else if (!TYPE_P (pattern))
11648 t = tsubst_expr (pattern, args, complain, in_decl,
11649 /*integral_constant_expression_p=*/false);
11650 else
11651 t = tsubst (pattern, args, complain, in_decl);
11652
11653 /* If the Ith argument pack element is a pack expansion, then
11654 the Ith element resulting from the substituting is going to
11655 be a pack expansion as well. */
11656 if (ith_elem_is_expansion)
11657 t = make_pack_expansion (t, complain);
11658
11659 return t;
11660 }
11661
11662 /* When the unexpanded parameter pack in a fold expression expands to an empty
11663 sequence, the value of the expression is as follows; the program is
11664 ill-formed if the operator is not listed in this table.
11665
11666 && true
11667 || false
11668 , void() */
11669
11670 tree
11671 expand_empty_fold (tree t, tsubst_flags_t complain)
11672 {
11673 tree_code code = (tree_code)TREE_INT_CST_LOW (TREE_OPERAND (t, 0));
11674 if (!FOLD_EXPR_MODIFY_P (t))
11675 switch (code)
11676 {
11677 case TRUTH_ANDIF_EXPR:
11678 return boolean_true_node;
11679 case TRUTH_ORIF_EXPR:
11680 return boolean_false_node;
11681 case COMPOUND_EXPR:
11682 return void_node;
11683 default:
11684 break;
11685 }
11686
11687 if (complain & tf_error)
11688 error_at (location_of (t),
11689 "fold of empty expansion over %O", code);
11690 return error_mark_node;
11691 }
11692
11693 /* Given a fold-expression T and a current LEFT and RIGHT operand,
11694 form an expression that combines the two terms using the
11695 operator of T. */
11696
11697 static tree
11698 fold_expression (tree t, tree left, tree right, tsubst_flags_t complain)
11699 {
11700 tree op = FOLD_EXPR_OP (t);
11701 tree_code code = (tree_code)TREE_INT_CST_LOW (op);
11702
11703 // Handle compound assignment operators.
11704 if (FOLD_EXPR_MODIFY_P (t))
11705 return build_x_modify_expr (input_location, left, code, right, complain);
11706
11707 switch (code)
11708 {
11709 case COMPOUND_EXPR:
11710 return build_x_compound_expr (input_location, left, right, complain);
11711 case DOTSTAR_EXPR:
11712 return build_m_component_ref (left, right, complain);
11713 default:
11714 return build_x_binary_op (input_location, code,
11715 left, TREE_CODE (left),
11716 right, TREE_CODE (right),
11717 /*overload=*/NULL,
11718 complain);
11719 }
11720 }
11721
11722 /* Substitute ARGS into the pack of a fold expression T. */
11723
11724 static inline tree
11725 tsubst_fold_expr_pack (tree t, tree args, tsubst_flags_t complain, tree in_decl)
11726 {
11727 return tsubst_pack_expansion (FOLD_EXPR_PACK (t), args, complain, in_decl);
11728 }
11729
11730 /* Substitute ARGS into the pack of a fold expression T. */
11731
11732 static inline tree
11733 tsubst_fold_expr_init (tree t, tree args, tsubst_flags_t complain, tree in_decl)
11734 {
11735 return tsubst_expr (FOLD_EXPR_INIT (t), args, complain, in_decl, false);
11736 }
11737
11738 /* Expand a PACK of arguments into a grouped as left fold.
11739 Given a pack containing elements A0, A1, ..., An and an
11740 operator @, this builds the expression:
11741
11742 ((A0 @ A1) @ A2) ... @ An
11743
11744 Note that PACK must not be empty.
11745
11746 The operator is defined by the original fold expression T. */
11747
11748 static tree
11749 expand_left_fold (tree t, tree pack, tsubst_flags_t complain)
11750 {
11751 tree left = TREE_VEC_ELT (pack, 0);
11752 for (int i = 1; i < TREE_VEC_LENGTH (pack); ++i)
11753 {
11754 tree right = TREE_VEC_ELT (pack, i);
11755 left = fold_expression (t, left, right, complain);
11756 }
11757 return left;
11758 }
11759
11760 /* Substitute into a unary left fold expression. */
11761
11762 static tree
11763 tsubst_unary_left_fold (tree t, tree args, tsubst_flags_t complain,
11764 tree in_decl)
11765 {
11766 tree pack = tsubst_fold_expr_pack (t, args, complain, in_decl);
11767 if (pack == error_mark_node)
11768 return error_mark_node;
11769 if (PACK_EXPANSION_P (pack))
11770 {
11771 tree r = copy_node (t);
11772 FOLD_EXPR_PACK (r) = pack;
11773 return r;
11774 }
11775 if (TREE_VEC_LENGTH (pack) == 0)
11776 return expand_empty_fold (t, complain);
11777 else
11778 return expand_left_fold (t, pack, complain);
11779 }
11780
11781 /* Substitute into a binary left fold expression.
11782
11783 Do ths by building a single (non-empty) vector of argumnts and
11784 building the expression from those elements. */
11785
11786 static tree
11787 tsubst_binary_left_fold (tree t, tree args, tsubst_flags_t complain,
11788 tree in_decl)
11789 {
11790 tree pack = tsubst_fold_expr_pack (t, args, complain, in_decl);
11791 if (pack == error_mark_node)
11792 return error_mark_node;
11793 tree init = tsubst_fold_expr_init (t, args, complain, in_decl);
11794 if (init == error_mark_node)
11795 return error_mark_node;
11796
11797 if (PACK_EXPANSION_P (pack))
11798 {
11799 tree r = copy_node (t);
11800 FOLD_EXPR_PACK (r) = pack;
11801 FOLD_EXPR_INIT (r) = init;
11802 return r;
11803 }
11804
11805 tree vec = make_tree_vec (TREE_VEC_LENGTH (pack) + 1);
11806 TREE_VEC_ELT (vec, 0) = init;
11807 for (int i = 0; i < TREE_VEC_LENGTH (pack); ++i)
11808 TREE_VEC_ELT (vec, i + 1) = TREE_VEC_ELT (pack, i);
11809
11810 return expand_left_fold (t, vec, complain);
11811 }
11812
11813 /* Expand a PACK of arguments into a grouped as right fold.
11814 Given a pack containing elementns A0, A1, ..., and an
11815 operator @, this builds the expression:
11816
11817 A0@ ... (An-2 @ (An-1 @ An))
11818
11819 Note that PACK must not be empty.
11820
11821 The operator is defined by the original fold expression T. */
11822
11823 tree
11824 expand_right_fold (tree t, tree pack, tsubst_flags_t complain)
11825 {
11826 // Build the expression.
11827 int n = TREE_VEC_LENGTH (pack);
11828 tree right = TREE_VEC_ELT (pack, n - 1);
11829 for (--n; n != 0; --n)
11830 {
11831 tree left = TREE_VEC_ELT (pack, n - 1);
11832 right = fold_expression (t, left, right, complain);
11833 }
11834 return right;
11835 }
11836
11837 /* Substitute into a unary right fold expression. */
11838
11839 static tree
11840 tsubst_unary_right_fold (tree t, tree args, tsubst_flags_t complain,
11841 tree in_decl)
11842 {
11843 tree pack = tsubst_fold_expr_pack (t, args, complain, in_decl);
11844 if (pack == error_mark_node)
11845 return error_mark_node;
11846 if (PACK_EXPANSION_P (pack))
11847 {
11848 tree r = copy_node (t);
11849 FOLD_EXPR_PACK (r) = pack;
11850 return r;
11851 }
11852 if (TREE_VEC_LENGTH (pack) == 0)
11853 return expand_empty_fold (t, complain);
11854 else
11855 return expand_right_fold (t, pack, complain);
11856 }
11857
11858 /* Substitute into a binary right fold expression.
11859
11860 Do ths by building a single (non-empty) vector of arguments and
11861 building the expression from those elements. */
11862
11863 static tree
11864 tsubst_binary_right_fold (tree t, tree args, tsubst_flags_t complain,
11865 tree in_decl)
11866 {
11867 tree pack = tsubst_fold_expr_pack (t, args, complain, in_decl);
11868 if (pack == error_mark_node)
11869 return error_mark_node;
11870 tree init = tsubst_fold_expr_init (t, args, complain, in_decl);
11871 if (init == error_mark_node)
11872 return error_mark_node;
11873
11874 if (PACK_EXPANSION_P (pack))
11875 {
11876 tree r = copy_node (t);
11877 FOLD_EXPR_PACK (r) = pack;
11878 FOLD_EXPR_INIT (r) = init;
11879 return r;
11880 }
11881
11882 int n = TREE_VEC_LENGTH (pack);
11883 tree vec = make_tree_vec (n + 1);
11884 for (int i = 0; i < n; ++i)
11885 TREE_VEC_ELT (vec, i) = TREE_VEC_ELT (pack, i);
11886 TREE_VEC_ELT (vec, n) = init;
11887
11888 return expand_right_fold (t, vec, complain);
11889 }
11890
11891 /* Walk through the pattern of a pack expansion, adding everything in
11892 local_specializations to a list. */
11893
11894 struct el_data
11895 {
11896 hash_set<tree> internal;
11897 tree extra;
11898 tsubst_flags_t complain;
11899
11900 el_data (tsubst_flags_t c)
11901 : extra (NULL_TREE), complain (c) {}
11902 };
11903 static tree
11904 extract_locals_r (tree *tp, int */*walk_subtrees*/, void *data_)
11905 {
11906 el_data &data = *reinterpret_cast<el_data*>(data_);
11907 tree *extra = &data.extra;
11908 tsubst_flags_t complain = data.complain;
11909
11910 if (TYPE_P (*tp) && typedef_variant_p (*tp))
11911 /* Remember local typedefs (85214). */
11912 tp = &TYPE_NAME (*tp);
11913
11914 if (TREE_CODE (*tp) == DECL_EXPR)
11915 data.internal.add (DECL_EXPR_DECL (*tp));
11916 else if (tree spec = retrieve_local_specialization (*tp))
11917 {
11918 if (data.internal.contains (*tp))
11919 /* Don't mess with variables declared within the pattern. */
11920 return NULL_TREE;
11921 if (TREE_CODE (spec) == NONTYPE_ARGUMENT_PACK)
11922 {
11923 /* Maybe pull out the PARM_DECL for a partial instantiation. */
11924 tree args = ARGUMENT_PACK_ARGS (spec);
11925 if (TREE_VEC_LENGTH (args) == 1)
11926 {
11927 tree elt = TREE_VEC_ELT (args, 0);
11928 if (PACK_EXPANSION_P (elt))
11929 elt = PACK_EXPANSION_PATTERN (elt);
11930 if (DECL_PACK_P (elt))
11931 spec = elt;
11932 }
11933 if (TREE_CODE (spec) == NONTYPE_ARGUMENT_PACK)
11934 {
11935 /* Handle lambda capture here, since we aren't doing any
11936 substitution now, and so tsubst_copy won't call
11937 process_outer_var_ref. */
11938 tree args = ARGUMENT_PACK_ARGS (spec);
11939 int len = TREE_VEC_LENGTH (args);
11940 for (int i = 0; i < len; ++i)
11941 {
11942 tree arg = TREE_VEC_ELT (args, i);
11943 tree carg = arg;
11944 if (outer_automatic_var_p (arg))
11945 carg = process_outer_var_ref (arg, complain);
11946 if (carg != arg)
11947 {
11948 /* Make a new NONTYPE_ARGUMENT_PACK of the capture
11949 proxies. */
11950 if (i == 0)
11951 {
11952 spec = copy_node (spec);
11953 args = copy_node (args);
11954 SET_ARGUMENT_PACK_ARGS (spec, args);
11955 register_local_specialization (spec, *tp);
11956 }
11957 TREE_VEC_ELT (args, i) = carg;
11958 }
11959 }
11960 }
11961 }
11962 if (outer_automatic_var_p (spec))
11963 spec = process_outer_var_ref (spec, complain);
11964 *extra = tree_cons (*tp, spec, *extra);
11965 }
11966 return NULL_TREE;
11967 }
11968 static tree
11969 extract_local_specs (tree pattern, tsubst_flags_t complain)
11970 {
11971 el_data data (complain);
11972 cp_walk_tree_without_duplicates (&pattern, extract_locals_r, &data);
11973 return data.extra;
11974 }
11975
11976 /* Extract any uses of local_specializations from PATTERN and add them to ARGS
11977 for use in PACK_EXPANSION_EXTRA_ARGS. */
11978
11979 tree
11980 build_extra_args (tree pattern, tree args, tsubst_flags_t complain)
11981 {
11982 tree extra = args;
11983 if (local_specializations)
11984 if (tree locals = extract_local_specs (pattern, complain))
11985 extra = tree_cons (NULL_TREE, extra, locals);
11986 return extra;
11987 }
11988
11989 /* Apply any local specializations from PACK_EXPANSION_EXTRA_ARGS and add the
11990 normal template args to ARGS. */
11991
11992 tree
11993 add_extra_args (tree extra, tree args)
11994 {
11995 if (extra && TREE_CODE (extra) == TREE_LIST)
11996 {
11997 for (tree elt = TREE_CHAIN (extra); elt; elt = TREE_CHAIN (elt))
11998 {
11999 /* The partial instantiation involved local declarations collected in
12000 extract_local_specs; map from the general template to our local
12001 context. */
12002 tree gen = TREE_PURPOSE (elt);
12003 tree inst = TREE_VALUE (elt);
12004 if (DECL_P (inst))
12005 if (tree local = retrieve_local_specialization (inst))
12006 inst = local;
12007 /* else inst is already a full instantiation of the pack. */
12008 register_local_specialization (inst, gen);
12009 }
12010 gcc_assert (!TREE_PURPOSE (extra));
12011 extra = TREE_VALUE (extra);
12012 }
12013 return add_to_template_args (extra, args);
12014 }
12015
12016 /* Substitute ARGS into T, which is an pack expansion
12017 (i.e. TYPE_PACK_EXPANSION or EXPR_PACK_EXPANSION). Returns a
12018 TREE_VEC with the substituted arguments, a PACK_EXPANSION_* node
12019 (if only a partial substitution could be performed) or
12020 ERROR_MARK_NODE if there was an error. */
12021 tree
12022 tsubst_pack_expansion (tree t, tree args, tsubst_flags_t complain,
12023 tree in_decl)
12024 {
12025 tree pattern;
12026 tree pack, packs = NULL_TREE;
12027 bool unsubstituted_packs = false;
12028 bool unsubstituted_fn_pack = false;
12029 int i, len = -1;
12030 tree result;
12031 hash_map<tree, tree> *saved_local_specializations = NULL;
12032 bool need_local_specializations = false;
12033 int levels;
12034
12035 gcc_assert (PACK_EXPANSION_P (t));
12036 pattern = PACK_EXPANSION_PATTERN (t);
12037
12038 /* Add in any args remembered from an earlier partial instantiation. */
12039 args = add_extra_args (PACK_EXPANSION_EXTRA_ARGS (t), args);
12040
12041 levels = TMPL_ARGS_DEPTH (args);
12042
12043 /* Determine the argument packs that will instantiate the parameter
12044 packs used in the expansion expression. While we're at it,
12045 compute the number of arguments to be expanded and make sure it
12046 is consistent. */
12047 for (pack = PACK_EXPANSION_PARAMETER_PACKS (t); pack;
12048 pack = TREE_CHAIN (pack))
12049 {
12050 tree parm_pack = TREE_VALUE (pack);
12051 tree arg_pack = NULL_TREE;
12052 tree orig_arg = NULL_TREE;
12053 int level = 0;
12054
12055 if (TREE_CODE (parm_pack) == BASES)
12056 {
12057 gcc_assert (parm_pack == pattern);
12058 if (BASES_DIRECT (parm_pack))
12059 return calculate_direct_bases (tsubst_expr (BASES_TYPE (parm_pack),
12060 args, complain,
12061 in_decl, false),
12062 complain);
12063 else
12064 return calculate_bases (tsubst_expr (BASES_TYPE (parm_pack),
12065 args, complain, in_decl,
12066 false), complain);
12067 }
12068 else if (builtin_pack_call_p (parm_pack))
12069 {
12070 if (parm_pack != pattern)
12071 {
12072 if (complain & tf_error)
12073 sorry ("%qE is not the entire pattern of the pack expansion",
12074 parm_pack);
12075 return error_mark_node;
12076 }
12077 return expand_builtin_pack_call (parm_pack, args,
12078 complain, in_decl);
12079 }
12080 else if (TREE_CODE (parm_pack) == PARM_DECL)
12081 {
12082 /* We know we have correct local_specializations if this
12083 expansion is at function scope, or if we're dealing with a
12084 local parameter in a requires expression; for the latter,
12085 tsubst_requires_expr set it up appropriately. */
12086 if (PACK_EXPANSION_LOCAL_P (t) || CONSTRAINT_VAR_P (parm_pack))
12087 arg_pack = retrieve_local_specialization (parm_pack);
12088 else
12089 /* We can't rely on local_specializations for a parameter
12090 name used later in a function declaration (such as in a
12091 late-specified return type). Even if it exists, it might
12092 have the wrong value for a recursive call. */
12093 need_local_specializations = true;
12094
12095 if (!arg_pack)
12096 {
12097 /* This parameter pack was used in an unevaluated context. Just
12098 make a dummy decl, since it's only used for its type. */
12099 ++cp_unevaluated_operand;
12100 arg_pack = tsubst_decl (parm_pack, args, complain);
12101 --cp_unevaluated_operand;
12102 if (arg_pack && DECL_PACK_P (arg_pack))
12103 /* Partial instantiation of the parm_pack, we can't build
12104 up an argument pack yet. */
12105 arg_pack = NULL_TREE;
12106 else
12107 arg_pack = make_fnparm_pack (arg_pack);
12108 }
12109 else if (argument_pack_element_is_expansion_p (arg_pack, 0))
12110 /* This argument pack isn't fully instantiated yet. We set this
12111 flag rather than clear arg_pack because we do want to do the
12112 optimization below, and we don't want to substitute directly
12113 into the pattern (as that would expose a NONTYPE_ARGUMENT_PACK
12114 where it isn't expected). */
12115 unsubstituted_fn_pack = true;
12116 }
12117 else if (is_normal_capture_proxy (parm_pack))
12118 {
12119 arg_pack = retrieve_local_specialization (parm_pack);
12120 if (argument_pack_element_is_expansion_p (arg_pack, 0))
12121 unsubstituted_fn_pack = true;
12122 }
12123 else
12124 {
12125 int idx;
12126 template_parm_level_and_index (parm_pack, &level, &idx);
12127
12128 if (level <= levels)
12129 arg_pack = TMPL_ARG (args, level, idx);
12130 }
12131
12132 orig_arg = arg_pack;
12133 if (arg_pack && TREE_CODE (arg_pack) == ARGUMENT_PACK_SELECT)
12134 arg_pack = ARGUMENT_PACK_SELECT_FROM_PACK (arg_pack);
12135
12136 if (arg_pack && !ARGUMENT_PACK_P (arg_pack))
12137 /* This can only happen if we forget to expand an argument
12138 pack somewhere else. Just return an error, silently. */
12139 {
12140 result = make_tree_vec (1);
12141 TREE_VEC_ELT (result, 0) = error_mark_node;
12142 return result;
12143 }
12144
12145 if (arg_pack)
12146 {
12147 int my_len =
12148 TREE_VEC_LENGTH (ARGUMENT_PACK_ARGS (arg_pack));
12149
12150 /* Don't bother trying to do a partial substitution with
12151 incomplete packs; we'll try again after deduction. */
12152 if (ARGUMENT_PACK_INCOMPLETE_P (arg_pack))
12153 return t;
12154
12155 if (len < 0)
12156 len = my_len;
12157 else if (len != my_len
12158 && !unsubstituted_fn_pack)
12159 {
12160 if (!(complain & tf_error))
12161 /* Fail quietly. */;
12162 else if (TREE_CODE (t) == TYPE_PACK_EXPANSION)
12163 error ("mismatched argument pack lengths while expanding %qT",
12164 pattern);
12165 else
12166 error ("mismatched argument pack lengths while expanding %qE",
12167 pattern);
12168 return error_mark_node;
12169 }
12170
12171 /* Keep track of the parameter packs and their corresponding
12172 argument packs. */
12173 packs = tree_cons (parm_pack, arg_pack, packs);
12174 TREE_TYPE (packs) = orig_arg;
12175 }
12176 else
12177 {
12178 /* We can't substitute for this parameter pack. We use a flag as
12179 well as the missing_level counter because function parameter
12180 packs don't have a level. */
12181 gcc_assert (processing_template_decl || is_auto (parm_pack));
12182 unsubstituted_packs = true;
12183 }
12184 }
12185
12186 /* If the expansion is just T..., return the matching argument pack, unless
12187 we need to call convert_from_reference on all the elements. This is an
12188 important optimization; see c++/68422. */
12189 if (!unsubstituted_packs
12190 && TREE_PURPOSE (packs) == pattern)
12191 {
12192 tree args = ARGUMENT_PACK_ARGS (TREE_VALUE (packs));
12193
12194 /* If the argument pack is a single pack expansion, pull it out. */
12195 if (TREE_VEC_LENGTH (args) == 1
12196 && pack_expansion_args_count (args))
12197 return TREE_VEC_ELT (args, 0);
12198
12199 /* Types need no adjustment, nor does sizeof..., and if we still have
12200 some pack expansion args we won't do anything yet. */
12201 if (TREE_CODE (t) == TYPE_PACK_EXPANSION
12202 || PACK_EXPANSION_SIZEOF_P (t)
12203 || pack_expansion_args_count (args))
12204 return args;
12205 /* Also optimize expression pack expansions if we can tell that the
12206 elements won't have reference type. */
12207 tree type = TREE_TYPE (pattern);
12208 if (type && !TYPE_REF_P (type)
12209 && !PACK_EXPANSION_P (type)
12210 && !WILDCARD_TYPE_P (type))
12211 return args;
12212 /* Otherwise use the normal path so we get convert_from_reference. */
12213 }
12214
12215 /* We cannot expand this expansion expression, because we don't have
12216 all of the argument packs we need. */
12217 if (use_pack_expansion_extra_args_p (packs, len, unsubstituted_packs))
12218 {
12219 /* We got some full packs, but we can't substitute them in until we
12220 have values for all the packs. So remember these until then. */
12221
12222 t = make_pack_expansion (pattern, complain);
12223 PACK_EXPANSION_EXTRA_ARGS (t)
12224 = build_extra_args (pattern, args, complain);
12225 return t;
12226 }
12227 else if (unsubstituted_packs)
12228 {
12229 /* There were no real arguments, we're just replacing a parameter
12230 pack with another version of itself. Substitute into the
12231 pattern and return a PACK_EXPANSION_*. The caller will need to
12232 deal with that. */
12233 if (TREE_CODE (t) == EXPR_PACK_EXPANSION)
12234 t = tsubst_expr (pattern, args, complain, in_decl,
12235 /*integral_constant_expression_p=*/false);
12236 else
12237 t = tsubst (pattern, args, complain, in_decl);
12238 t = make_pack_expansion (t, complain);
12239 return t;
12240 }
12241
12242 gcc_assert (len >= 0);
12243
12244 if (need_local_specializations)
12245 {
12246 /* We're in a late-specified return type, so create our own local
12247 specializations map; the current map is either NULL or (in the
12248 case of recursive unification) might have bindings that we don't
12249 want to use or alter. */
12250 saved_local_specializations = local_specializations;
12251 local_specializations = new hash_map<tree, tree>;
12252 }
12253
12254 /* For each argument in each argument pack, substitute into the
12255 pattern. */
12256 result = make_tree_vec (len);
12257 tree elem_args = copy_template_args (args);
12258 for (i = 0; i < len; ++i)
12259 {
12260 t = gen_elem_of_pack_expansion_instantiation (pattern, packs,
12261 i,
12262 elem_args, complain,
12263 in_decl);
12264 TREE_VEC_ELT (result, i) = t;
12265 if (t == error_mark_node)
12266 {
12267 result = error_mark_node;
12268 break;
12269 }
12270 }
12271
12272 /* Update ARGS to restore the substitution from parameter packs to
12273 their argument packs. */
12274 for (pack = packs; pack; pack = TREE_CHAIN (pack))
12275 {
12276 tree parm = TREE_PURPOSE (pack);
12277
12278 if (TREE_CODE (parm) == PARM_DECL
12279 || VAR_P (parm)
12280 || TREE_CODE (parm) == FIELD_DECL)
12281 register_local_specialization (TREE_TYPE (pack), parm);
12282 else
12283 {
12284 int idx, level;
12285
12286 if (TREE_VALUE (pack) == NULL_TREE)
12287 continue;
12288
12289 template_parm_level_and_index (parm, &level, &idx);
12290
12291 /* Update the corresponding argument. */
12292 if (TMPL_ARGS_HAVE_MULTIPLE_LEVELS (args))
12293 TREE_VEC_ELT (TREE_VEC_ELT (args, level -1 ), idx) =
12294 TREE_TYPE (pack);
12295 else
12296 TREE_VEC_ELT (args, idx) = TREE_TYPE (pack);
12297 }
12298 }
12299
12300 if (need_local_specializations)
12301 {
12302 delete local_specializations;
12303 local_specializations = saved_local_specializations;
12304 }
12305
12306 /* If the dependent pack arguments were such that we end up with only a
12307 single pack expansion again, there's no need to keep it in a TREE_VEC. */
12308 if (len == 1 && TREE_CODE (result) == TREE_VEC
12309 && PACK_EXPANSION_P (TREE_VEC_ELT (result, 0)))
12310 return TREE_VEC_ELT (result, 0);
12311
12312 return result;
12313 }
12314
12315 /* Given PARM_DECL PARM, find the corresponding PARM_DECL in the template
12316 TMPL. We do this using DECL_PARM_INDEX, which should work even with
12317 parameter packs; all parms generated from a function parameter pack will
12318 have the same DECL_PARM_INDEX. */
12319
12320 tree
12321 get_pattern_parm (tree parm, tree tmpl)
12322 {
12323 tree pattern = DECL_TEMPLATE_RESULT (tmpl);
12324 tree patparm;
12325
12326 if (DECL_ARTIFICIAL (parm))
12327 {
12328 for (patparm = DECL_ARGUMENTS (pattern);
12329 patparm; patparm = DECL_CHAIN (patparm))
12330 if (DECL_ARTIFICIAL (patparm)
12331 && DECL_NAME (parm) == DECL_NAME (patparm))
12332 break;
12333 }
12334 else
12335 {
12336 patparm = FUNCTION_FIRST_USER_PARM (DECL_TEMPLATE_RESULT (tmpl));
12337 patparm = chain_index (DECL_PARM_INDEX (parm)-1, patparm);
12338 gcc_assert (DECL_PARM_INDEX (patparm)
12339 == DECL_PARM_INDEX (parm));
12340 }
12341
12342 return patparm;
12343 }
12344
12345 /* Make an argument pack out of the TREE_VEC VEC. */
12346
12347 static tree
12348 make_argument_pack (tree vec)
12349 {
12350 tree pack;
12351 tree elt = TREE_VEC_ELT (vec, 0);
12352 if (TYPE_P (elt))
12353 pack = cxx_make_type (TYPE_ARGUMENT_PACK);
12354 else
12355 {
12356 pack = make_node (NONTYPE_ARGUMENT_PACK);
12357 TREE_CONSTANT (pack) = 1;
12358 }
12359 SET_ARGUMENT_PACK_ARGS (pack, vec);
12360 return pack;
12361 }
12362
12363 /* Return an exact copy of template args T that can be modified
12364 independently. */
12365
12366 static tree
12367 copy_template_args (tree t)
12368 {
12369 if (t == error_mark_node)
12370 return t;
12371
12372 int len = TREE_VEC_LENGTH (t);
12373 tree new_vec = make_tree_vec (len);
12374
12375 for (int i = 0; i < len; ++i)
12376 {
12377 tree elt = TREE_VEC_ELT (t, i);
12378 if (elt && TREE_CODE (elt) == TREE_VEC)
12379 elt = copy_template_args (elt);
12380 TREE_VEC_ELT (new_vec, i) = elt;
12381 }
12382
12383 NON_DEFAULT_TEMPLATE_ARGS_COUNT (new_vec)
12384 = NON_DEFAULT_TEMPLATE_ARGS_COUNT (t);
12385
12386 return new_vec;
12387 }
12388
12389 /* Substitute ARGS into the vector or list of template arguments T. */
12390
12391 static tree
12392 tsubst_template_args (tree t, tree args, tsubst_flags_t complain, tree in_decl)
12393 {
12394 tree orig_t = t;
12395 int len, need_new = 0, i, expanded_len_adjust = 0, out;
12396 tree *elts;
12397
12398 if (t == error_mark_node)
12399 return error_mark_node;
12400
12401 len = TREE_VEC_LENGTH (t);
12402 elts = XALLOCAVEC (tree, len);
12403
12404 for (i = 0; i < len; i++)
12405 {
12406 tree orig_arg = TREE_VEC_ELT (t, i);
12407 tree new_arg;
12408
12409 if (TREE_CODE (orig_arg) == TREE_VEC)
12410 new_arg = tsubst_template_args (orig_arg, args, complain, in_decl);
12411 else if (PACK_EXPANSION_P (orig_arg))
12412 {
12413 /* Substitute into an expansion expression. */
12414 new_arg = tsubst_pack_expansion (orig_arg, args, complain, in_decl);
12415
12416 if (TREE_CODE (new_arg) == TREE_VEC)
12417 /* Add to the expanded length adjustment the number of
12418 expanded arguments. We subtract one from this
12419 measurement, because the argument pack expression
12420 itself is already counted as 1 in
12421 LEN. EXPANDED_LEN_ADJUST can actually be negative, if
12422 the argument pack is empty. */
12423 expanded_len_adjust += TREE_VEC_LENGTH (new_arg) - 1;
12424 }
12425 else if (ARGUMENT_PACK_P (orig_arg))
12426 {
12427 /* Substitute into each of the arguments. */
12428 new_arg = TYPE_P (orig_arg)
12429 ? cxx_make_type (TREE_CODE (orig_arg))
12430 : make_node (TREE_CODE (orig_arg));
12431
12432 tree pack_args = tsubst_template_args (ARGUMENT_PACK_ARGS (orig_arg),
12433 args, complain, in_decl);
12434 if (pack_args == error_mark_node)
12435 new_arg = error_mark_node;
12436 else
12437 SET_ARGUMENT_PACK_ARGS (new_arg, pack_args);
12438
12439 if (TREE_CODE (new_arg) == NONTYPE_ARGUMENT_PACK)
12440 TREE_CONSTANT (new_arg) = TREE_CONSTANT (orig_arg);
12441 }
12442 else
12443 new_arg = tsubst_template_arg (orig_arg, args, complain, in_decl);
12444
12445 if (new_arg == error_mark_node)
12446 return error_mark_node;
12447
12448 elts[i] = new_arg;
12449 if (new_arg != orig_arg)
12450 need_new = 1;
12451 }
12452
12453 if (!need_new)
12454 return t;
12455
12456 /* Make space for the expanded arguments coming from template
12457 argument packs. */
12458 t = make_tree_vec (len + expanded_len_adjust);
12459 /* ORIG_T can contain TREE_VECs. That happens if ORIG_T contains the
12460 arguments for a member template.
12461 In that case each TREE_VEC in ORIG_T represents a level of template
12462 arguments, and ORIG_T won't carry any non defaulted argument count.
12463 It will rather be the nested TREE_VECs that will carry one.
12464 In other words, ORIG_T carries a non defaulted argument count only
12465 if it doesn't contain any nested TREE_VEC. */
12466 if (NON_DEFAULT_TEMPLATE_ARGS_COUNT (orig_t))
12467 {
12468 int count = GET_NON_DEFAULT_TEMPLATE_ARGS_COUNT (orig_t);
12469 count += expanded_len_adjust;
12470 SET_NON_DEFAULT_TEMPLATE_ARGS_COUNT (t, count);
12471 }
12472 for (i = 0, out = 0; i < len; i++)
12473 {
12474 if ((PACK_EXPANSION_P (TREE_VEC_ELT (orig_t, i))
12475 || ARGUMENT_PACK_P (TREE_VEC_ELT (orig_t, i)))
12476 && TREE_CODE (elts[i]) == TREE_VEC)
12477 {
12478 int idx;
12479
12480 /* Now expand the template argument pack "in place". */
12481 for (idx = 0; idx < TREE_VEC_LENGTH (elts[i]); idx++, out++)
12482 TREE_VEC_ELT (t, out) = TREE_VEC_ELT (elts[i], idx);
12483 }
12484 else
12485 {
12486 TREE_VEC_ELT (t, out) = elts[i];
12487 out++;
12488 }
12489 }
12490
12491 return t;
12492 }
12493
12494 /* Substitute ARGS into one level PARMS of template parameters. */
12495
12496 static tree
12497 tsubst_template_parms_level (tree parms, tree args, tsubst_flags_t complain)
12498 {
12499 if (parms == error_mark_node)
12500 return error_mark_node;
12501
12502 tree new_vec = make_tree_vec (TREE_VEC_LENGTH (parms));
12503
12504 for (int i = 0; i < TREE_VEC_LENGTH (new_vec); ++i)
12505 {
12506 tree tuple = TREE_VEC_ELT (parms, i);
12507
12508 if (tuple == error_mark_node)
12509 continue;
12510
12511 TREE_VEC_ELT (new_vec, i) =
12512 tsubst_template_parm (tuple, args, complain);
12513 }
12514
12515 return new_vec;
12516 }
12517
12518 /* Return the result of substituting ARGS into the template parameters
12519 given by PARMS. If there are m levels of ARGS and m + n levels of
12520 PARMS, then the result will contain n levels of PARMS. For
12521 example, if PARMS is `template <class T> template <class U>
12522 template <T*, U, class V>' and ARGS is {{int}, {double}} then the
12523 result will be `template <int*, double, class V>'. */
12524
12525 static tree
12526 tsubst_template_parms (tree parms, tree args, tsubst_flags_t complain)
12527 {
12528 tree r = NULL_TREE;
12529 tree* new_parms;
12530
12531 /* When substituting into a template, we must set
12532 PROCESSING_TEMPLATE_DECL as the template parameters may be
12533 dependent if they are based on one-another, and the dependency
12534 predicates are short-circuit outside of templates. */
12535 ++processing_template_decl;
12536
12537 for (new_parms = &r;
12538 parms && TMPL_PARMS_DEPTH (parms) > TMPL_ARGS_DEPTH (args);
12539 new_parms = &(TREE_CHAIN (*new_parms)),
12540 parms = TREE_CHAIN (parms))
12541 {
12542 tree new_vec = tsubst_template_parms_level (TREE_VALUE (parms),
12543 args, complain);
12544 *new_parms =
12545 tree_cons (size_int (TMPL_PARMS_DEPTH (parms)
12546 - TMPL_ARGS_DEPTH (args)),
12547 new_vec, NULL_TREE);
12548 }
12549
12550 --processing_template_decl;
12551
12552 return r;
12553 }
12554
12555 /* Return the result of substituting ARGS into one template parameter
12556 given by T. T Must be a TREE_LIST which TREE_VALUE is the template
12557 parameter and which TREE_PURPOSE is the default argument of the
12558 template parameter. */
12559
12560 static tree
12561 tsubst_template_parm (tree t, tree args, tsubst_flags_t complain)
12562 {
12563 tree default_value, parm_decl;
12564
12565 if (args == NULL_TREE
12566 || t == NULL_TREE
12567 || t == error_mark_node)
12568 return t;
12569
12570 gcc_assert (TREE_CODE (t) == TREE_LIST);
12571
12572 default_value = TREE_PURPOSE (t);
12573 parm_decl = TREE_VALUE (t);
12574
12575 parm_decl = tsubst (parm_decl, args, complain, NULL_TREE);
12576 if (TREE_CODE (parm_decl) == PARM_DECL
12577 && invalid_nontype_parm_type_p (TREE_TYPE (parm_decl), complain))
12578 parm_decl = error_mark_node;
12579 default_value = tsubst_template_arg (default_value, args,
12580 complain, NULL_TREE);
12581
12582 return build_tree_list (default_value, parm_decl);
12583 }
12584
12585 /* Substitute the ARGS into the indicated aggregate (or enumeration)
12586 type T. If T is not an aggregate or enumeration type, it is
12587 handled as if by tsubst. IN_DECL is as for tsubst. If
12588 ENTERING_SCOPE is nonzero, T is the context for a template which
12589 we are presently tsubst'ing. Return the substituted value. */
12590
12591 static tree
12592 tsubst_aggr_type (tree t,
12593 tree args,
12594 tsubst_flags_t complain,
12595 tree in_decl,
12596 int entering_scope)
12597 {
12598 if (t == NULL_TREE)
12599 return NULL_TREE;
12600
12601 switch (TREE_CODE (t))
12602 {
12603 case RECORD_TYPE:
12604 if (TYPE_PTRMEMFUNC_P (t))
12605 return tsubst (TYPE_PTRMEMFUNC_FN_TYPE (t), args, complain, in_decl);
12606
12607 /* Fall through. */
12608 case ENUMERAL_TYPE:
12609 case UNION_TYPE:
12610 if (TYPE_TEMPLATE_INFO (t) && uses_template_parms (t))
12611 {
12612 tree argvec;
12613 tree context;
12614 tree r;
12615 int saved_unevaluated_operand;
12616 int saved_inhibit_evaluation_warnings;
12617
12618 /* In "sizeof(X<I>)" we need to evaluate "I". */
12619 saved_unevaluated_operand = cp_unevaluated_operand;
12620 cp_unevaluated_operand = 0;
12621 saved_inhibit_evaluation_warnings = c_inhibit_evaluation_warnings;
12622 c_inhibit_evaluation_warnings = 0;
12623
12624 /* First, determine the context for the type we are looking
12625 up. */
12626 context = TYPE_CONTEXT (t);
12627 if (context && TYPE_P (context))
12628 {
12629 context = tsubst_aggr_type (context, args, complain,
12630 in_decl, /*entering_scope=*/1);
12631 /* If context is a nested class inside a class template,
12632 it may still need to be instantiated (c++/33959). */
12633 context = complete_type (context);
12634 }
12635
12636 /* Then, figure out what arguments are appropriate for the
12637 type we are trying to find. For example, given:
12638
12639 template <class T> struct S;
12640 template <class T, class U> void f(T, U) { S<U> su; }
12641
12642 and supposing that we are instantiating f<int, double>,
12643 then our ARGS will be {int, double}, but, when looking up
12644 S we only want {double}. */
12645 argvec = tsubst_template_args (TYPE_TI_ARGS (t), args,
12646 complain, in_decl);
12647 if (argvec == error_mark_node)
12648 r = error_mark_node;
12649 else
12650 {
12651 r = lookup_template_class (t, argvec, in_decl, context,
12652 entering_scope, complain);
12653 r = cp_build_qualified_type_real (r, cp_type_quals (t), complain);
12654 }
12655
12656 cp_unevaluated_operand = saved_unevaluated_operand;
12657 c_inhibit_evaluation_warnings = saved_inhibit_evaluation_warnings;
12658
12659 return r;
12660 }
12661 else
12662 /* This is not a template type, so there's nothing to do. */
12663 return t;
12664
12665 default:
12666 return tsubst (t, args, complain, in_decl);
12667 }
12668 }
12669
12670 static GTY((cache)) tree_cache_map *defarg_inst;
12671
12672 /* Substitute into the default argument ARG (a default argument for
12673 FN), which has the indicated TYPE. */
12674
12675 tree
12676 tsubst_default_argument (tree fn, int parmnum, tree type, tree arg,
12677 tsubst_flags_t complain)
12678 {
12679 tree saved_class_ptr = NULL_TREE;
12680 tree saved_class_ref = NULL_TREE;
12681 int errs = errorcount + sorrycount;
12682
12683 /* This can happen in invalid code. */
12684 if (TREE_CODE (arg) == DEFAULT_ARG)
12685 return arg;
12686
12687 tree parm = FUNCTION_FIRST_USER_PARM (fn);
12688 parm = chain_index (parmnum, parm);
12689 tree parmtype = TREE_TYPE (parm);
12690 if (DECL_BY_REFERENCE (parm))
12691 parmtype = TREE_TYPE (parmtype);
12692 if (parmtype == error_mark_node)
12693 return error_mark_node;
12694
12695 gcc_assert (same_type_ignoring_top_level_qualifiers_p (type, parmtype));
12696
12697 tree *slot;
12698 if (defarg_inst && (slot = defarg_inst->get (parm)))
12699 return *slot;
12700
12701 /* This default argument came from a template. Instantiate the
12702 default argument here, not in tsubst. In the case of
12703 something like:
12704
12705 template <class T>
12706 struct S {
12707 static T t();
12708 void f(T = t());
12709 };
12710
12711 we must be careful to do name lookup in the scope of S<T>,
12712 rather than in the current class. */
12713 push_access_scope (fn);
12714 /* The "this" pointer is not valid in a default argument. */
12715 if (cfun)
12716 {
12717 saved_class_ptr = current_class_ptr;
12718 cp_function_chain->x_current_class_ptr = NULL_TREE;
12719 saved_class_ref = current_class_ref;
12720 cp_function_chain->x_current_class_ref = NULL_TREE;
12721 }
12722
12723 start_lambda_scope (parm);
12724
12725 push_deferring_access_checks(dk_no_deferred);
12726 /* The default argument expression may cause implicitly defined
12727 member functions to be synthesized, which will result in garbage
12728 collection. We must treat this situation as if we were within
12729 the body of function so as to avoid collecting live data on the
12730 stack. */
12731 ++function_depth;
12732 arg = tsubst_expr (arg, DECL_TI_ARGS (fn),
12733 complain, NULL_TREE,
12734 /*integral_constant_expression_p=*/false);
12735 --function_depth;
12736 pop_deferring_access_checks();
12737
12738 finish_lambda_scope ();
12739
12740 /* Restore the "this" pointer. */
12741 if (cfun)
12742 {
12743 cp_function_chain->x_current_class_ptr = saved_class_ptr;
12744 cp_function_chain->x_current_class_ref = saved_class_ref;
12745 }
12746
12747 if (errorcount+sorrycount > errs
12748 && (complain & tf_warning_or_error))
12749 inform (input_location,
12750 " when instantiating default argument for call to %qD", fn);
12751
12752 /* Make sure the default argument is reasonable. */
12753 arg = check_default_argument (type, arg, complain);
12754
12755 pop_access_scope (fn);
12756
12757 if (arg != error_mark_node && !cp_unevaluated_operand)
12758 {
12759 if (!defarg_inst)
12760 defarg_inst = tree_cache_map::create_ggc (37);
12761 defarg_inst->put (parm, arg);
12762 }
12763
12764 return arg;
12765 }
12766
12767 /* Substitute into all the default arguments for FN. */
12768
12769 static void
12770 tsubst_default_arguments (tree fn, tsubst_flags_t complain)
12771 {
12772 tree arg;
12773 tree tmpl_args;
12774
12775 tmpl_args = DECL_TI_ARGS (fn);
12776
12777 /* If this function is not yet instantiated, we certainly don't need
12778 its default arguments. */
12779 if (uses_template_parms (tmpl_args))
12780 return;
12781 /* Don't do this again for clones. */
12782 if (DECL_CLONED_FUNCTION_P (fn))
12783 return;
12784
12785 int i = 0;
12786 for (arg = TYPE_ARG_TYPES (TREE_TYPE (fn));
12787 arg;
12788 arg = TREE_CHAIN (arg), ++i)
12789 if (TREE_PURPOSE (arg))
12790 TREE_PURPOSE (arg) = tsubst_default_argument (fn, i,
12791 TREE_VALUE (arg),
12792 TREE_PURPOSE (arg),
12793 complain);
12794 }
12795
12796 /* Subroutine of tsubst_decl for the case when T is a FUNCTION_DECL. */
12797
12798 static tree
12799 tsubst_function_decl (tree t, tree args, tsubst_flags_t complain,
12800 tree lambda_fntype)
12801 {
12802 tree gen_tmpl, argvec;
12803 hashval_t hash = 0;
12804 tree in_decl = t;
12805
12806 /* Nobody should be tsubst'ing into non-template functions. */
12807 gcc_assert (DECL_TEMPLATE_INFO (t) != NULL_TREE);
12808
12809 if (TREE_CODE (DECL_TI_TEMPLATE (t)) == TEMPLATE_DECL)
12810 {
12811 /* If T is not dependent, just return it. */
12812 if (!uses_template_parms (DECL_TI_ARGS (t)))
12813 return t;
12814
12815 /* Calculate the most general template of which R is a
12816 specialization. */
12817 gen_tmpl = most_general_template (DECL_TI_TEMPLATE (t));
12818
12819 /* We're substituting a lambda function under tsubst_lambda_expr but not
12820 directly from it; find the matching function we're already inside.
12821 But don't do this if T is a generic lambda with a single level of
12822 template parms, as in that case we're doing a normal instantiation. */
12823 if (LAMBDA_FUNCTION_P (t) && !lambda_fntype
12824 && (!generic_lambda_fn_p (t)
12825 || TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (gen_tmpl)) > 1))
12826 return enclosing_instantiation_of (t);
12827
12828 /* Calculate the complete set of arguments used to
12829 specialize R. */
12830 argvec = tsubst_template_args (DECL_TI_ARGS
12831 (DECL_TEMPLATE_RESULT
12832 (DECL_TI_TEMPLATE (t))),
12833 args, complain, in_decl);
12834 if (argvec == error_mark_node)
12835 return error_mark_node;
12836
12837 /* Check to see if we already have this specialization. */
12838 if (!lambda_fntype)
12839 {
12840 hash = hash_tmpl_and_args (gen_tmpl, argvec);
12841 if (tree spec = retrieve_specialization (gen_tmpl, argvec, hash))
12842 return spec;
12843 }
12844
12845 /* We can see more levels of arguments than parameters if
12846 there was a specialization of a member template, like
12847 this:
12848
12849 template <class T> struct S { template <class U> void f(); }
12850 template <> template <class U> void S<int>::f(U);
12851
12852 Here, we'll be substituting into the specialization,
12853 because that's where we can find the code we actually
12854 want to generate, but we'll have enough arguments for
12855 the most general template.
12856
12857 We also deal with the peculiar case:
12858
12859 template <class T> struct S {
12860 template <class U> friend void f();
12861 };
12862 template <class U> void f() {}
12863 template S<int>;
12864 template void f<double>();
12865
12866 Here, the ARGS for the instantiation of will be {int,
12867 double}. But, we only need as many ARGS as there are
12868 levels of template parameters in CODE_PATTERN. We are
12869 careful not to get fooled into reducing the ARGS in
12870 situations like:
12871
12872 template <class T> struct S { template <class U> void f(U); }
12873 template <class T> template <> void S<T>::f(int) {}
12874
12875 which we can spot because the pattern will be a
12876 specialization in this case. */
12877 int args_depth = TMPL_ARGS_DEPTH (args);
12878 int parms_depth =
12879 TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (DECL_TI_TEMPLATE (t)));
12880
12881 if (args_depth > parms_depth && !DECL_TEMPLATE_SPECIALIZATION (t))
12882 args = get_innermost_template_args (args, parms_depth);
12883 }
12884 else
12885 {
12886 /* This special case arises when we have something like this:
12887
12888 template <class T> struct S {
12889 friend void f<int>(int, double);
12890 };
12891
12892 Here, the DECL_TI_TEMPLATE for the friend declaration
12893 will be an IDENTIFIER_NODE. We are being called from
12894 tsubst_friend_function, and we want only to create a
12895 new decl (R) with appropriate types so that we can call
12896 determine_specialization. */
12897 gen_tmpl = NULL_TREE;
12898 argvec = NULL_TREE;
12899 }
12900
12901 tree closure = (lambda_fntype ? TYPE_METHOD_BASETYPE (lambda_fntype)
12902 : NULL_TREE);
12903 tree ctx = closure ? closure : DECL_CONTEXT (t);
12904 bool member = ctx && TYPE_P (ctx);
12905
12906 if (member && !closure)
12907 ctx = tsubst_aggr_type (ctx, args,
12908 complain, t, /*entering_scope=*/1);
12909
12910 tree type = (lambda_fntype ? lambda_fntype
12911 : tsubst (TREE_TYPE (t), args,
12912 complain | tf_fndecl_type, in_decl));
12913 if (type == error_mark_node)
12914 return error_mark_node;
12915
12916 /* If we hit excessive deduction depth, the type is bogus even if
12917 it isn't error_mark_node, so don't build a decl. */
12918 if (excessive_deduction_depth)
12919 return error_mark_node;
12920
12921 /* We do NOT check for matching decls pushed separately at this
12922 point, as they may not represent instantiations of this
12923 template, and in any case are considered separate under the
12924 discrete model. */
12925 tree r = copy_decl (t);
12926 DECL_USE_TEMPLATE (r) = 0;
12927 TREE_TYPE (r) = type;
12928 /* Clear out the mangled name and RTL for the instantiation. */
12929 SET_DECL_ASSEMBLER_NAME (r, NULL_TREE);
12930 SET_DECL_RTL (r, NULL);
12931 /* Leave DECL_INITIAL set on deleted instantiations. */
12932 if (!DECL_DELETED_FN (r))
12933 DECL_INITIAL (r) = NULL_TREE;
12934 DECL_CONTEXT (r) = ctx;
12935
12936 /* OpenMP UDRs have the only argument a reference to the declared
12937 type. We want to diagnose if the declared type is a reference,
12938 which is invalid, but as references to references are usually
12939 quietly merged, diagnose it here. */
12940 if (DECL_OMP_DECLARE_REDUCTION_P (t))
12941 {
12942 tree argtype
12943 = TREE_TYPE (TREE_VALUE (TYPE_ARG_TYPES (TREE_TYPE (t))));
12944 argtype = tsubst (argtype, args, complain, in_decl);
12945 if (TYPE_REF_P (argtype))
12946 error_at (DECL_SOURCE_LOCATION (t),
12947 "reference type %qT in "
12948 "%<#pragma omp declare reduction%>", argtype);
12949 if (strchr (IDENTIFIER_POINTER (DECL_NAME (t)), '~') == NULL)
12950 DECL_NAME (r) = omp_reduction_id (ERROR_MARK, DECL_NAME (t),
12951 argtype);
12952 }
12953
12954 if (member && DECL_CONV_FN_P (r))
12955 /* Type-conversion operator. Reconstruct the name, in
12956 case it's the name of one of the template's parameters. */
12957 DECL_NAME (r) = make_conv_op_name (TREE_TYPE (type));
12958
12959 tree parms = DECL_ARGUMENTS (t);
12960 if (closure)
12961 parms = DECL_CHAIN (parms);
12962 parms = tsubst (parms, args, complain, t);
12963 for (tree parm = parms; parm; parm = DECL_CHAIN (parm))
12964 DECL_CONTEXT (parm) = r;
12965 if (closure)
12966 {
12967 tree tparm = build_this_parm (r, closure, type_memfn_quals (type));
12968 DECL_CHAIN (tparm) = parms;
12969 parms = tparm;
12970 }
12971 DECL_ARGUMENTS (r) = parms;
12972 DECL_RESULT (r) = NULL_TREE;
12973
12974 TREE_STATIC (r) = 0;
12975 TREE_PUBLIC (r) = TREE_PUBLIC (t);
12976 DECL_EXTERNAL (r) = 1;
12977 /* If this is an instantiation of a function with internal
12978 linkage, we already know what object file linkage will be
12979 assigned to the instantiation. */
12980 DECL_INTERFACE_KNOWN (r) = !TREE_PUBLIC (r);
12981 DECL_DEFER_OUTPUT (r) = 0;
12982 DECL_CHAIN (r) = NULL_TREE;
12983 DECL_PENDING_INLINE_INFO (r) = 0;
12984 DECL_PENDING_INLINE_P (r) = 0;
12985 DECL_SAVED_TREE (r) = NULL_TREE;
12986 DECL_STRUCT_FUNCTION (r) = NULL;
12987 TREE_USED (r) = 0;
12988 /* We'll re-clone as appropriate in instantiate_template. */
12989 DECL_CLONED_FUNCTION (r) = NULL_TREE;
12990
12991 /* If we aren't complaining now, return on error before we register
12992 the specialization so that we'll complain eventually. */
12993 if ((complain & tf_error) == 0
12994 && IDENTIFIER_ANY_OP_P (DECL_NAME (r))
12995 && !grok_op_properties (r, /*complain=*/false))
12996 return error_mark_node;
12997
12998 /* When instantiating a constrained member, substitute
12999 into the constraints to create a new constraint. */
13000 if (tree ci = get_constraints (t))
13001 if (member)
13002 {
13003 ci = tsubst_constraint_info (ci, argvec, complain, NULL_TREE);
13004 set_constraints (r, ci);
13005 }
13006
13007 /* Set up the DECL_TEMPLATE_INFO for R. There's no need to do
13008 this in the special friend case mentioned above where
13009 GEN_TMPL is NULL. */
13010 if (gen_tmpl && !closure)
13011 {
13012 DECL_TEMPLATE_INFO (r)
13013 = build_template_info (gen_tmpl, argvec);
13014 SET_DECL_IMPLICIT_INSTANTIATION (r);
13015
13016 tree new_r
13017 = register_specialization (r, gen_tmpl, argvec, false, hash);
13018 if (new_r != r)
13019 /* We instantiated this while substituting into
13020 the type earlier (template/friend54.C). */
13021 return new_r;
13022
13023 /* We're not supposed to instantiate default arguments
13024 until they are called, for a template. But, for a
13025 declaration like:
13026
13027 template <class T> void f ()
13028 { extern void g(int i = T()); }
13029
13030 we should do the substitution when the template is
13031 instantiated. We handle the member function case in
13032 instantiate_class_template since the default arguments
13033 might refer to other members of the class. */
13034 if (!member
13035 && !PRIMARY_TEMPLATE_P (gen_tmpl)
13036 && !uses_template_parms (argvec))
13037 tsubst_default_arguments (r, complain);
13038 }
13039 else
13040 DECL_TEMPLATE_INFO (r) = NULL_TREE;
13041
13042 /* Copy the list of befriending classes. */
13043 for (tree *friends = &DECL_BEFRIENDING_CLASSES (r);
13044 *friends;
13045 friends = &TREE_CHAIN (*friends))
13046 {
13047 *friends = copy_node (*friends);
13048 TREE_VALUE (*friends)
13049 = tsubst (TREE_VALUE (*friends), args, complain, in_decl);
13050 }
13051
13052 if (DECL_CONSTRUCTOR_P (r) || DECL_DESTRUCTOR_P (r))
13053 {
13054 maybe_retrofit_in_chrg (r);
13055 if (DECL_CONSTRUCTOR_P (r) && !grok_ctor_properties (ctx, r))
13056 return error_mark_node;
13057 /* If this is an instantiation of a member template, clone it.
13058 If it isn't, that'll be handled by
13059 clone_constructors_and_destructors. */
13060 if (PRIMARY_TEMPLATE_P (gen_tmpl))
13061 clone_function_decl (r, /*update_methods=*/false);
13062 }
13063 else if ((complain & tf_error) != 0
13064 && IDENTIFIER_ANY_OP_P (DECL_NAME (r))
13065 && !grok_op_properties (r, /*complain=*/true))
13066 return error_mark_node;
13067
13068 if (DECL_FRIEND_P (t) && DECL_FRIEND_CONTEXT (t))
13069 SET_DECL_FRIEND_CONTEXT (r,
13070 tsubst (DECL_FRIEND_CONTEXT (t),
13071 args, complain, in_decl));
13072
13073 /* Possibly limit visibility based on template args. */
13074 DECL_VISIBILITY (r) = VISIBILITY_DEFAULT;
13075 if (DECL_VISIBILITY_SPECIFIED (t))
13076 {
13077 DECL_VISIBILITY_SPECIFIED (r) = 0;
13078 DECL_ATTRIBUTES (r)
13079 = remove_attribute ("visibility", DECL_ATTRIBUTES (r));
13080 }
13081 determine_visibility (r);
13082 if (DECL_DEFAULTED_OUTSIDE_CLASS_P (r)
13083 && !processing_template_decl)
13084 defaulted_late_check (r);
13085
13086 apply_late_template_attributes (&r, DECL_ATTRIBUTES (r), 0,
13087 args, complain, in_decl);
13088 return r;
13089 }
13090
13091 /* Subroutine of tsubst_decl for the case when T is a TEMPLATE_DECL. */
13092
13093 static tree
13094 tsubst_template_decl (tree t, tree args, tsubst_flags_t complain,
13095 tree lambda_fntype)
13096 {
13097 /* We can get here when processing a member function template,
13098 member class template, or template template parameter. */
13099 tree decl = DECL_TEMPLATE_RESULT (t);
13100 tree in_decl = t;
13101 tree spec;
13102 tree tmpl_args;
13103 tree full_args;
13104 tree r;
13105 hashval_t hash = 0;
13106
13107 if (DECL_TEMPLATE_TEMPLATE_PARM_P (t))
13108 {
13109 /* Template template parameter is treated here. */
13110 tree new_type = tsubst (TREE_TYPE (t), args, complain, in_decl);
13111 if (new_type == error_mark_node)
13112 r = error_mark_node;
13113 /* If we get a real template back, return it. This can happen in
13114 the context of most_specialized_partial_spec. */
13115 else if (TREE_CODE (new_type) == TEMPLATE_DECL)
13116 r = new_type;
13117 else
13118 /* The new TEMPLATE_DECL was built in
13119 reduce_template_parm_level. */
13120 r = TEMPLATE_TEMPLATE_PARM_TEMPLATE_DECL (new_type);
13121 return r;
13122 }
13123
13124 if (!lambda_fntype)
13125 {
13126 /* We might already have an instance of this template.
13127 The ARGS are for the surrounding class type, so the
13128 full args contain the tsubst'd args for the context,
13129 plus the innermost args from the template decl. */
13130 tmpl_args = DECL_CLASS_TEMPLATE_P (t)
13131 ? CLASSTYPE_TI_ARGS (TREE_TYPE (t))
13132 : DECL_TI_ARGS (DECL_TEMPLATE_RESULT (t));
13133 /* Because this is a template, the arguments will still be
13134 dependent, even after substitution. If
13135 PROCESSING_TEMPLATE_DECL is not set, the dependency
13136 predicates will short-circuit. */
13137 ++processing_template_decl;
13138 full_args = tsubst_template_args (tmpl_args, args,
13139 complain, in_decl);
13140 --processing_template_decl;
13141 if (full_args == error_mark_node)
13142 return error_mark_node;
13143
13144 /* If this is a default template template argument,
13145 tsubst might not have changed anything. */
13146 if (full_args == tmpl_args)
13147 return t;
13148
13149 hash = hash_tmpl_and_args (t, full_args);
13150 spec = retrieve_specialization (t, full_args, hash);
13151 if (spec != NULL_TREE)
13152 return spec;
13153 }
13154
13155 /* Make a new template decl. It will be similar to the
13156 original, but will record the current template arguments.
13157 We also create a new function declaration, which is just
13158 like the old one, but points to this new template, rather
13159 than the old one. */
13160 r = copy_decl (t);
13161 gcc_assert (DECL_LANG_SPECIFIC (r) != 0);
13162 DECL_CHAIN (r) = NULL_TREE;
13163
13164 // Build new template info linking to the original template decl.
13165 if (!lambda_fntype)
13166 {
13167 DECL_TEMPLATE_INFO (r) = build_template_info (t, args);
13168 SET_DECL_IMPLICIT_INSTANTIATION (r);
13169 }
13170 else
13171 DECL_TEMPLATE_INFO (r) = NULL_TREE;
13172
13173 /* The template parameters for this new template are all the
13174 template parameters for the old template, except the
13175 outermost level of parameters. */
13176 DECL_TEMPLATE_PARMS (r)
13177 = tsubst_template_parms (DECL_TEMPLATE_PARMS (t), args,
13178 complain);
13179
13180 if (TREE_CODE (decl) == TYPE_DECL
13181 && !TYPE_DECL_ALIAS_P (decl))
13182 {
13183 tree new_type;
13184 ++processing_template_decl;
13185 new_type = tsubst (TREE_TYPE (t), args, complain, in_decl);
13186 --processing_template_decl;
13187 if (new_type == error_mark_node)
13188 return error_mark_node;
13189
13190 TREE_TYPE (r) = new_type;
13191 /* For a partial specialization, we need to keep pointing to
13192 the primary template. */
13193 if (!DECL_TEMPLATE_SPECIALIZATION (t))
13194 CLASSTYPE_TI_TEMPLATE (new_type) = r;
13195 DECL_TEMPLATE_RESULT (r) = TYPE_MAIN_DECL (new_type);
13196 DECL_TI_ARGS (r) = CLASSTYPE_TI_ARGS (new_type);
13197 DECL_CONTEXT (r) = TYPE_CONTEXT (new_type);
13198 }
13199 else
13200 {
13201 tree new_decl;
13202 ++processing_template_decl;
13203 if (TREE_CODE (decl) == FUNCTION_DECL)
13204 new_decl = tsubst_function_decl (decl, args, complain, lambda_fntype);
13205 else
13206 new_decl = tsubst (decl, args, complain, in_decl);
13207 --processing_template_decl;
13208 if (new_decl == error_mark_node)
13209 return error_mark_node;
13210
13211 DECL_TEMPLATE_RESULT (r) = new_decl;
13212 TREE_TYPE (r) = TREE_TYPE (new_decl);
13213 DECL_CONTEXT (r) = DECL_CONTEXT (new_decl);
13214 if (lambda_fntype)
13215 {
13216 tree args = template_parms_to_args (DECL_TEMPLATE_PARMS (r));
13217 DECL_TEMPLATE_INFO (new_decl) = build_template_info (r, args);
13218 }
13219 else
13220 {
13221 DECL_TI_TEMPLATE (new_decl) = r;
13222 DECL_TI_ARGS (r) = DECL_TI_ARGS (new_decl);
13223 }
13224 }
13225
13226 DECL_TEMPLATE_INSTANTIATIONS (r) = NULL_TREE;
13227 DECL_TEMPLATE_SPECIALIZATIONS (r) = NULL_TREE;
13228
13229 if (PRIMARY_TEMPLATE_P (t))
13230 DECL_PRIMARY_TEMPLATE (r) = r;
13231
13232 if (TREE_CODE (decl) != TYPE_DECL && !VAR_P (decl)
13233 && !lambda_fntype)
13234 /* Record this non-type partial instantiation. */
13235 register_specialization (r, t,
13236 DECL_TI_ARGS (DECL_TEMPLATE_RESULT (r)),
13237 false, hash);
13238
13239 return r;
13240 }
13241
13242 /* True if FN is the op() for a lambda in an uninstantiated template. */
13243
13244 bool
13245 lambda_fn_in_template_p (tree fn)
13246 {
13247 if (!fn || !LAMBDA_FUNCTION_P (fn))
13248 return false;
13249 tree closure = DECL_CONTEXT (fn);
13250 return CLASSTYPE_TEMPLATE_INFO (closure) != NULL_TREE;
13251 }
13252
13253 /* We're instantiating a variable from template function TCTX. Return the
13254 corresponding current enclosing scope. This gets complicated because lambda
13255 functions in templates are regenerated rather than instantiated, but generic
13256 lambda functions are subsequently instantiated. */
13257
13258 static tree
13259 enclosing_instantiation_of (tree otctx)
13260 {
13261 tree tctx = otctx;
13262 tree fn = current_function_decl;
13263 int lambda_count = 0;
13264
13265 for (; tctx && lambda_fn_in_template_p (tctx);
13266 tctx = decl_function_context (tctx))
13267 ++lambda_count;
13268 for (; fn; fn = decl_function_context (fn))
13269 {
13270 tree ofn = fn;
13271 int flambda_count = 0;
13272 for (; flambda_count < lambda_count && fn && LAMBDA_FUNCTION_P (fn);
13273 fn = decl_function_context (fn))
13274 ++flambda_count;
13275 if ((fn && DECL_TEMPLATE_INFO (fn))
13276 ? most_general_template (fn) != most_general_template (tctx)
13277 : fn != tctx)
13278 continue;
13279 gcc_assert (DECL_NAME (ofn) == DECL_NAME (otctx)
13280 || DECL_CONV_FN_P (ofn));
13281 return ofn;
13282 }
13283 gcc_unreachable ();
13284 }
13285
13286 /* Substitute the ARGS into the T, which is a _DECL. Return the
13287 result of the substitution. Issue error and warning messages under
13288 control of COMPLAIN. */
13289
13290 static tree
13291 tsubst_decl (tree t, tree args, tsubst_flags_t complain)
13292 {
13293 #define RETURN(EXP) do { r = (EXP); goto out; } while(0)
13294 location_t saved_loc;
13295 tree r = NULL_TREE;
13296 tree in_decl = t;
13297 hashval_t hash = 0;
13298
13299 /* Set the filename and linenumber to improve error-reporting. */
13300 saved_loc = input_location;
13301 input_location = DECL_SOURCE_LOCATION (t);
13302
13303 switch (TREE_CODE (t))
13304 {
13305 case TEMPLATE_DECL:
13306 r = tsubst_template_decl (t, args, complain, /*lambda*/NULL_TREE);
13307 break;
13308
13309 case FUNCTION_DECL:
13310 r = tsubst_function_decl (t, args, complain, /*lambda*/NULL_TREE);
13311 break;
13312
13313 case PARM_DECL:
13314 {
13315 tree type = NULL_TREE;
13316 int i, len = 1;
13317 tree expanded_types = NULL_TREE;
13318 tree prev_r = NULL_TREE;
13319 tree first_r = NULL_TREE;
13320
13321 if (DECL_PACK_P (t))
13322 {
13323 /* If there is a local specialization that isn't a
13324 parameter pack, it means that we're doing a "simple"
13325 substitution from inside tsubst_pack_expansion. Just
13326 return the local specialization (which will be a single
13327 parm). */
13328 tree spec = retrieve_local_specialization (t);
13329 if (spec
13330 && TREE_CODE (spec) == PARM_DECL
13331 && TREE_CODE (TREE_TYPE (spec)) != TYPE_PACK_EXPANSION)
13332 RETURN (spec);
13333
13334 /* Expand the TYPE_PACK_EXPANSION that provides the types for
13335 the parameters in this function parameter pack. */
13336 expanded_types = tsubst_pack_expansion (TREE_TYPE (t), args,
13337 complain, in_decl);
13338 if (TREE_CODE (expanded_types) == TREE_VEC)
13339 {
13340 len = TREE_VEC_LENGTH (expanded_types);
13341
13342 /* Zero-length parameter packs are boring. Just substitute
13343 into the chain. */
13344 if (len == 0)
13345 RETURN (tsubst (TREE_CHAIN (t), args, complain,
13346 TREE_CHAIN (t)));
13347 }
13348 else
13349 {
13350 /* All we did was update the type. Make a note of that. */
13351 type = expanded_types;
13352 expanded_types = NULL_TREE;
13353 }
13354 }
13355
13356 /* Loop through all of the parameters we'll build. When T is
13357 a function parameter pack, LEN is the number of expanded
13358 types in EXPANDED_TYPES; otherwise, LEN is 1. */
13359 r = NULL_TREE;
13360 for (i = 0; i < len; ++i)
13361 {
13362 prev_r = r;
13363 r = copy_node (t);
13364 if (DECL_TEMPLATE_PARM_P (t))
13365 SET_DECL_TEMPLATE_PARM_P (r);
13366
13367 if (expanded_types)
13368 /* We're on the Ith parameter of the function parameter
13369 pack. */
13370 {
13371 /* Get the Ith type. */
13372 type = TREE_VEC_ELT (expanded_types, i);
13373
13374 /* Rename the parameter to include the index. */
13375 DECL_NAME (r)
13376 = make_ith_pack_parameter_name (DECL_NAME (r), i);
13377 }
13378 else if (!type)
13379 /* We're dealing with a normal parameter. */
13380 type = tsubst (TREE_TYPE (t), args, complain, in_decl);
13381
13382 type = type_decays_to (type);
13383 TREE_TYPE (r) = type;
13384 cp_apply_type_quals_to_decl (cp_type_quals (type), r);
13385
13386 if (DECL_INITIAL (r))
13387 {
13388 if (TREE_CODE (DECL_INITIAL (r)) != TEMPLATE_PARM_INDEX)
13389 DECL_INITIAL (r) = TREE_TYPE (r);
13390 else
13391 DECL_INITIAL (r) = tsubst (DECL_INITIAL (r), args,
13392 complain, in_decl);
13393 }
13394
13395 DECL_CONTEXT (r) = NULL_TREE;
13396
13397 if (!DECL_TEMPLATE_PARM_P (r))
13398 DECL_ARG_TYPE (r) = type_passed_as (type);
13399
13400 apply_late_template_attributes (&r, DECL_ATTRIBUTES (r), 0,
13401 args, complain, in_decl);
13402
13403 /* Keep track of the first new parameter we
13404 generate. That's what will be returned to the
13405 caller. */
13406 if (!first_r)
13407 first_r = r;
13408
13409 /* Build a proper chain of parameters when substituting
13410 into a function parameter pack. */
13411 if (prev_r)
13412 DECL_CHAIN (prev_r) = r;
13413 }
13414
13415 /* If cp_unevaluated_operand is set, we're just looking for a
13416 single dummy parameter, so don't keep going. */
13417 if (DECL_CHAIN (t) && !cp_unevaluated_operand)
13418 DECL_CHAIN (r) = tsubst (DECL_CHAIN (t), args,
13419 complain, DECL_CHAIN (t));
13420
13421 /* FIRST_R contains the start of the chain we've built. */
13422 r = first_r;
13423 }
13424 break;
13425
13426 case FIELD_DECL:
13427 {
13428 tree type = NULL_TREE;
13429 tree vec = NULL_TREE;
13430 tree expanded_types = NULL_TREE;
13431 int len = 1;
13432
13433 if (PACK_EXPANSION_P (TREE_TYPE (t)))
13434 {
13435 /* This field is a lambda capture pack. Return a TREE_VEC of
13436 the expanded fields to instantiate_class_template_1. */
13437 expanded_types = tsubst_pack_expansion (TREE_TYPE (t), args,
13438 complain, in_decl);
13439 if (TREE_CODE (expanded_types) == TREE_VEC)
13440 {
13441 len = TREE_VEC_LENGTH (expanded_types);
13442 vec = make_tree_vec (len);
13443 }
13444 else
13445 {
13446 /* All we did was update the type. Make a note of that. */
13447 type = expanded_types;
13448 expanded_types = NULL_TREE;
13449 }
13450 }
13451
13452 for (int i = 0; i < len; ++i)
13453 {
13454 r = copy_decl (t);
13455 if (expanded_types)
13456 {
13457 type = TREE_VEC_ELT (expanded_types, i);
13458 DECL_NAME (r)
13459 = make_ith_pack_parameter_name (DECL_NAME (r), i);
13460 }
13461 else if (!type)
13462 type = tsubst (TREE_TYPE (t), args, complain, in_decl);
13463
13464 if (type == error_mark_node)
13465 RETURN (error_mark_node);
13466 TREE_TYPE (r) = type;
13467 cp_apply_type_quals_to_decl (cp_type_quals (type), r);
13468
13469 if (DECL_C_BIT_FIELD (r))
13470 /* For bit-fields, DECL_BIT_FIELD_REPRESENTATIVE gives the
13471 number of bits. */
13472 DECL_BIT_FIELD_REPRESENTATIVE (r)
13473 = tsubst_expr (DECL_BIT_FIELD_REPRESENTATIVE (t), args,
13474 complain, in_decl,
13475 /*integral_constant_expression_p=*/true);
13476 if (DECL_INITIAL (t))
13477 {
13478 /* Set up DECL_TEMPLATE_INFO so that we can get at the
13479 NSDMI in perform_member_init. Still set DECL_INITIAL
13480 so that we know there is one. */
13481 DECL_INITIAL (r) = void_node;
13482 gcc_assert (DECL_LANG_SPECIFIC (r) == NULL);
13483 retrofit_lang_decl (r);
13484 DECL_TEMPLATE_INFO (r) = build_template_info (t, args);
13485 }
13486 /* We don't have to set DECL_CONTEXT here; it is set by
13487 finish_member_declaration. */
13488 DECL_CHAIN (r) = NULL_TREE;
13489
13490 apply_late_template_attributes (&r, DECL_ATTRIBUTES (r), 0,
13491 args, complain, in_decl);
13492
13493 if (vec)
13494 TREE_VEC_ELT (vec, i) = r;
13495 }
13496
13497 if (vec)
13498 r = vec;
13499 }
13500 break;
13501
13502 case USING_DECL:
13503 /* We reach here only for member using decls. We also need to check
13504 uses_template_parms because DECL_DEPENDENT_P is not set for a
13505 using-declaration that designates a member of the current
13506 instantiation (c++/53549). */
13507 if (DECL_DEPENDENT_P (t)
13508 || uses_template_parms (USING_DECL_SCOPE (t)))
13509 {
13510 tree scope = USING_DECL_SCOPE (t);
13511 tree name = tsubst_copy (DECL_NAME (t), args, complain, in_decl);
13512 if (PACK_EXPANSION_P (scope))
13513 {
13514 tree vec = tsubst_pack_expansion (scope, args, complain, in_decl);
13515 int len = TREE_VEC_LENGTH (vec);
13516 r = make_tree_vec (len);
13517 for (int i = 0; i < len; ++i)
13518 {
13519 tree escope = TREE_VEC_ELT (vec, i);
13520 tree elt = do_class_using_decl (escope, name);
13521 if (!elt)
13522 {
13523 r = error_mark_node;
13524 break;
13525 }
13526 else
13527 {
13528 TREE_PROTECTED (elt) = TREE_PROTECTED (t);
13529 TREE_PRIVATE (elt) = TREE_PRIVATE (t);
13530 }
13531 TREE_VEC_ELT (r, i) = elt;
13532 }
13533 }
13534 else
13535 {
13536 tree inst_scope = tsubst_copy (USING_DECL_SCOPE (t), args,
13537 complain, in_decl);
13538 r = do_class_using_decl (inst_scope, name);
13539 if (!r)
13540 r = error_mark_node;
13541 else
13542 {
13543 TREE_PROTECTED (r) = TREE_PROTECTED (t);
13544 TREE_PRIVATE (r) = TREE_PRIVATE (t);
13545 }
13546 }
13547 }
13548 else
13549 {
13550 r = copy_node (t);
13551 DECL_CHAIN (r) = NULL_TREE;
13552 }
13553 break;
13554
13555 case TYPE_DECL:
13556 case VAR_DECL:
13557 {
13558 tree argvec = NULL_TREE;
13559 tree gen_tmpl = NULL_TREE;
13560 tree spec;
13561 tree tmpl = NULL_TREE;
13562 tree ctx;
13563 tree type = NULL_TREE;
13564 bool local_p;
13565
13566 if (TREE_TYPE (t) == error_mark_node)
13567 RETURN (error_mark_node);
13568
13569 if (TREE_CODE (t) == TYPE_DECL
13570 && t == TYPE_MAIN_DECL (TREE_TYPE (t)))
13571 {
13572 /* If this is the canonical decl, we don't have to
13573 mess with instantiations, and often we can't (for
13574 typename, template type parms and such). Note that
13575 TYPE_NAME is not correct for the above test if
13576 we've copied the type for a typedef. */
13577 type = tsubst (TREE_TYPE (t), args, complain, in_decl);
13578 if (type == error_mark_node)
13579 RETURN (error_mark_node);
13580 r = TYPE_NAME (type);
13581 break;
13582 }
13583
13584 /* Check to see if we already have the specialization we
13585 need. */
13586 spec = NULL_TREE;
13587 if (DECL_CLASS_SCOPE_P (t) || DECL_NAMESPACE_SCOPE_P (t))
13588 {
13589 /* T is a static data member or namespace-scope entity.
13590 We have to substitute into namespace-scope variables
13591 (not just variable templates) because of cases like:
13592
13593 template <class T> void f() { extern T t; }
13594
13595 where the entity referenced is not known until
13596 instantiation time. */
13597 local_p = false;
13598 ctx = DECL_CONTEXT (t);
13599 if (DECL_CLASS_SCOPE_P (t))
13600 {
13601 ctx = tsubst_aggr_type (ctx, args,
13602 complain,
13603 in_decl, /*entering_scope=*/1);
13604 /* If CTX is unchanged, then T is in fact the
13605 specialization we want. That situation occurs when
13606 referencing a static data member within in its own
13607 class. We can use pointer equality, rather than
13608 same_type_p, because DECL_CONTEXT is always
13609 canonical... */
13610 if (ctx == DECL_CONTEXT (t)
13611 /* ... unless T is a member template; in which
13612 case our caller can be willing to create a
13613 specialization of that template represented
13614 by T. */
13615 && !(DECL_TI_TEMPLATE (t)
13616 && DECL_MEMBER_TEMPLATE_P (DECL_TI_TEMPLATE (t))))
13617 spec = t;
13618 }
13619
13620 if (!spec)
13621 {
13622 tmpl = DECL_TI_TEMPLATE (t);
13623 gen_tmpl = most_general_template (tmpl);
13624 argvec = tsubst (DECL_TI_ARGS (t), args, complain, in_decl);
13625 if (argvec != error_mark_node)
13626 argvec = (coerce_innermost_template_parms
13627 (DECL_TEMPLATE_PARMS (gen_tmpl),
13628 argvec, t, complain,
13629 /*all*/true, /*defarg*/true));
13630 if (argvec == error_mark_node)
13631 RETURN (error_mark_node);
13632 hash = hash_tmpl_and_args (gen_tmpl, argvec);
13633 spec = retrieve_specialization (gen_tmpl, argvec, hash);
13634 }
13635 }
13636 else
13637 {
13638 /* A local variable. */
13639 local_p = true;
13640 /* Subsequent calls to pushdecl will fill this in. */
13641 ctx = NULL_TREE;
13642 /* Unless this is a reference to a static variable from an
13643 enclosing function, in which case we need to fill it in now. */
13644 if (TREE_STATIC (t))
13645 {
13646 tree fn = enclosing_instantiation_of (DECL_CONTEXT (t));
13647 if (fn != current_function_decl)
13648 ctx = fn;
13649 }
13650 spec = retrieve_local_specialization (t);
13651 }
13652 /* If we already have the specialization we need, there is
13653 nothing more to do. */
13654 if (spec)
13655 {
13656 r = spec;
13657 break;
13658 }
13659
13660 /* Create a new node for the specialization we need. */
13661 r = copy_decl (t);
13662 if (type == NULL_TREE)
13663 {
13664 if (is_typedef_decl (t))
13665 type = DECL_ORIGINAL_TYPE (t);
13666 else
13667 type = TREE_TYPE (t);
13668 if (VAR_P (t)
13669 && VAR_HAD_UNKNOWN_BOUND (t)
13670 && type != error_mark_node)
13671 type = strip_array_domain (type);
13672 tree sub_args = args;
13673 if (tree auto_node = type_uses_auto (type))
13674 {
13675 /* Mask off any template args past the variable's context so we
13676 don't replace the auto with an unrelated argument. */
13677 int nouter = TEMPLATE_TYPE_LEVEL (auto_node) - 1;
13678 int extra = TMPL_ARGS_DEPTH (args) - nouter;
13679 if (extra > 0)
13680 /* This should never happen with the new lambda instantiation
13681 model, but keep the handling just in case. */
13682 gcc_assert (!CHECKING_P),
13683 sub_args = strip_innermost_template_args (args, extra);
13684 }
13685 type = tsubst (type, sub_args, complain, in_decl);
13686 }
13687 if (VAR_P (r))
13688 {
13689 DECL_INITIALIZED_P (r) = 0;
13690 DECL_TEMPLATE_INSTANTIATED (r) = 0;
13691 if (type == error_mark_node)
13692 RETURN (error_mark_node);
13693 if (TREE_CODE (type) == FUNCTION_TYPE)
13694 {
13695 /* It may seem that this case cannot occur, since:
13696
13697 typedef void f();
13698 void g() { f x; }
13699
13700 declares a function, not a variable. However:
13701
13702 typedef void f();
13703 template <typename T> void g() { T t; }
13704 template void g<f>();
13705
13706 is an attempt to declare a variable with function
13707 type. */
13708 error ("variable %qD has function type",
13709 /* R is not yet sufficiently initialized, so we
13710 just use its name. */
13711 DECL_NAME (r));
13712 RETURN (error_mark_node);
13713 }
13714 type = complete_type (type);
13715 /* Wait until cp_finish_decl to set this again, to handle
13716 circular dependency (template/instantiate6.C). */
13717 DECL_INITIALIZED_BY_CONSTANT_EXPRESSION_P (r) = 0;
13718 type = check_var_type (DECL_NAME (r), type);
13719
13720 if (DECL_HAS_VALUE_EXPR_P (t))
13721 {
13722 tree ve = DECL_VALUE_EXPR (t);
13723 ve = tsubst_expr (ve, args, complain, in_decl,
13724 /*constant_expression_p=*/false);
13725 if (REFERENCE_REF_P (ve))
13726 {
13727 gcc_assert (TYPE_REF_P (type));
13728 ve = TREE_OPERAND (ve, 0);
13729 }
13730 SET_DECL_VALUE_EXPR (r, ve);
13731 }
13732 if (CP_DECL_THREAD_LOCAL_P (r)
13733 && !processing_template_decl)
13734 set_decl_tls_model (r, decl_default_tls_model (r));
13735 }
13736 else if (DECL_SELF_REFERENCE_P (t))
13737 SET_DECL_SELF_REFERENCE_P (r);
13738 TREE_TYPE (r) = type;
13739 cp_apply_type_quals_to_decl (cp_type_quals (type), r);
13740 DECL_CONTEXT (r) = ctx;
13741 /* Clear out the mangled name and RTL for the instantiation. */
13742 SET_DECL_ASSEMBLER_NAME (r, NULL_TREE);
13743 if (CODE_CONTAINS_STRUCT (TREE_CODE (t), TS_DECL_WRTL))
13744 SET_DECL_RTL (r, NULL);
13745 /* The initializer must not be expanded until it is required;
13746 see [temp.inst]. */
13747 DECL_INITIAL (r) = NULL_TREE;
13748 DECL_SIZE (r) = DECL_SIZE_UNIT (r) = 0;
13749 if (VAR_P (r))
13750 {
13751 if (DECL_LANG_SPECIFIC (r))
13752 SET_DECL_DEPENDENT_INIT_P (r, false);
13753
13754 SET_DECL_MODE (r, VOIDmode);
13755
13756 /* Possibly limit visibility based on template args. */
13757 DECL_VISIBILITY (r) = VISIBILITY_DEFAULT;
13758 if (DECL_VISIBILITY_SPECIFIED (t))
13759 {
13760 DECL_VISIBILITY_SPECIFIED (r) = 0;
13761 DECL_ATTRIBUTES (r)
13762 = remove_attribute ("visibility", DECL_ATTRIBUTES (r));
13763 }
13764 determine_visibility (r);
13765 }
13766
13767 if (!local_p)
13768 {
13769 /* A static data member declaration is always marked
13770 external when it is declared in-class, even if an
13771 initializer is present. We mimic the non-template
13772 processing here. */
13773 DECL_EXTERNAL (r) = 1;
13774 if (DECL_NAMESPACE_SCOPE_P (t))
13775 DECL_NOT_REALLY_EXTERN (r) = 1;
13776
13777 DECL_TEMPLATE_INFO (r) = build_template_info (tmpl, argvec);
13778 SET_DECL_IMPLICIT_INSTANTIATION (r);
13779 register_specialization (r, gen_tmpl, argvec, false, hash);
13780 }
13781 else
13782 {
13783 if (DECL_LANG_SPECIFIC (r))
13784 DECL_TEMPLATE_INFO (r) = NULL_TREE;
13785 if (!cp_unevaluated_operand)
13786 register_local_specialization (r, t);
13787 }
13788
13789 DECL_CHAIN (r) = NULL_TREE;
13790
13791 apply_late_template_attributes (&r, DECL_ATTRIBUTES (r),
13792 /*flags=*/0,
13793 args, complain, in_decl);
13794
13795 /* Preserve a typedef that names a type. */
13796 if (is_typedef_decl (r) && type != error_mark_node)
13797 {
13798 DECL_ORIGINAL_TYPE (r) = NULL_TREE;
13799 set_underlying_type (r);
13800 if (TYPE_DECL_ALIAS_P (r))
13801 /* An alias template specialization can be dependent
13802 even if its underlying type is not. */
13803 TYPE_DEPENDENT_P_VALID (TREE_TYPE (r)) = false;
13804 }
13805
13806 layout_decl (r, 0);
13807 }
13808 break;
13809
13810 default:
13811 gcc_unreachable ();
13812 }
13813 #undef RETURN
13814
13815 out:
13816 /* Restore the file and line information. */
13817 input_location = saved_loc;
13818
13819 return r;
13820 }
13821
13822 /* Substitute into the ARG_TYPES of a function type.
13823 If END is a TREE_CHAIN, leave it and any following types
13824 un-substituted. */
13825
13826 static tree
13827 tsubst_arg_types (tree arg_types,
13828 tree args,
13829 tree end,
13830 tsubst_flags_t complain,
13831 tree in_decl)
13832 {
13833 tree remaining_arg_types;
13834 tree type = NULL_TREE;
13835 int i = 1;
13836 tree expanded_args = NULL_TREE;
13837 tree default_arg;
13838
13839 if (!arg_types || arg_types == void_list_node || arg_types == end)
13840 return arg_types;
13841
13842 remaining_arg_types = tsubst_arg_types (TREE_CHAIN (arg_types),
13843 args, end, complain, in_decl);
13844 if (remaining_arg_types == error_mark_node)
13845 return error_mark_node;
13846
13847 if (PACK_EXPANSION_P (TREE_VALUE (arg_types)))
13848 {
13849 /* For a pack expansion, perform substitution on the
13850 entire expression. Later on, we'll handle the arguments
13851 one-by-one. */
13852 expanded_args = tsubst_pack_expansion (TREE_VALUE (arg_types),
13853 args, complain, in_decl);
13854
13855 if (TREE_CODE (expanded_args) == TREE_VEC)
13856 /* So that we'll spin through the parameters, one by one. */
13857 i = TREE_VEC_LENGTH (expanded_args);
13858 else
13859 {
13860 /* We only partially substituted into the parameter
13861 pack. Our type is TYPE_PACK_EXPANSION. */
13862 type = expanded_args;
13863 expanded_args = NULL_TREE;
13864 }
13865 }
13866
13867 while (i > 0) {
13868 --i;
13869
13870 if (expanded_args)
13871 type = TREE_VEC_ELT (expanded_args, i);
13872 else if (!type)
13873 type = tsubst (TREE_VALUE (arg_types), args, complain, in_decl);
13874
13875 if (type == error_mark_node)
13876 return error_mark_node;
13877 if (VOID_TYPE_P (type))
13878 {
13879 if (complain & tf_error)
13880 {
13881 error ("invalid parameter type %qT", type);
13882 if (in_decl)
13883 error ("in declaration %q+D", in_decl);
13884 }
13885 return error_mark_node;
13886 }
13887 /* DR 657. */
13888 if (abstract_virtuals_error_sfinae (ACU_PARM, type, complain))
13889 return error_mark_node;
13890
13891 /* Do array-to-pointer, function-to-pointer conversion, and ignore
13892 top-level qualifiers as required. */
13893 type = cv_unqualified (type_decays_to (type));
13894
13895 /* We do not substitute into default arguments here. The standard
13896 mandates that they be instantiated only when needed, which is
13897 done in build_over_call. */
13898 default_arg = TREE_PURPOSE (arg_types);
13899
13900 /* Except that we do substitute default arguments under tsubst_lambda_expr,
13901 since the new op() won't have any associated template arguments for us
13902 to refer to later. */
13903 if (lambda_fn_in_template_p (in_decl))
13904 default_arg = tsubst_copy_and_build (default_arg, args, complain, in_decl,
13905 false/*fn*/, false/*constexpr*/);
13906
13907 if (default_arg && TREE_CODE (default_arg) == DEFAULT_ARG)
13908 {
13909 /* We've instantiated a template before its default arguments
13910 have been parsed. This can happen for a nested template
13911 class, and is not an error unless we require the default
13912 argument in a call of this function. */
13913 remaining_arg_types =
13914 tree_cons (default_arg, type, remaining_arg_types);
13915 vec_safe_push (DEFARG_INSTANTIATIONS(default_arg), remaining_arg_types);
13916 }
13917 else
13918 remaining_arg_types =
13919 hash_tree_cons (default_arg, type, remaining_arg_types);
13920 }
13921
13922 return remaining_arg_types;
13923 }
13924
13925 /* Substitute into a FUNCTION_TYPE or METHOD_TYPE. This routine does
13926 *not* handle the exception-specification for FNTYPE, because the
13927 initial substitution of explicitly provided template parameters
13928 during argument deduction forbids substitution into the
13929 exception-specification:
13930
13931 [temp.deduct]
13932
13933 All references in the function type of the function template to the
13934 corresponding template parameters are replaced by the specified tem-
13935 plate argument values. If a substitution in a template parameter or
13936 in the function type of the function template results in an invalid
13937 type, type deduction fails. [Note: The equivalent substitution in
13938 exception specifications is done only when the function is instanti-
13939 ated, at which point a program is ill-formed if the substitution
13940 results in an invalid type.] */
13941
13942 static tree
13943 tsubst_function_type (tree t,
13944 tree args,
13945 tsubst_flags_t complain,
13946 tree in_decl)
13947 {
13948 tree return_type;
13949 tree arg_types = NULL_TREE;
13950 tree fntype;
13951
13952 /* The TYPE_CONTEXT is not used for function/method types. */
13953 gcc_assert (TYPE_CONTEXT (t) == NULL_TREE);
13954
13955 /* DR 1227: Mixing immediate and non-immediate contexts in deduction
13956 failure. */
13957 bool late_return_type_p = TYPE_HAS_LATE_RETURN_TYPE (t);
13958
13959 if (late_return_type_p)
13960 {
13961 /* Substitute the argument types. */
13962 arg_types = tsubst_arg_types (TYPE_ARG_TYPES (t), args, NULL_TREE,
13963 complain, in_decl);
13964 if (arg_types == error_mark_node)
13965 return error_mark_node;
13966
13967 tree save_ccp = current_class_ptr;
13968 tree save_ccr = current_class_ref;
13969 tree this_type = (TREE_CODE (t) == METHOD_TYPE
13970 ? TREE_TYPE (TREE_VALUE (arg_types)) : NULL_TREE);
13971 bool do_inject = this_type && CLASS_TYPE_P (this_type);
13972 if (do_inject)
13973 {
13974 /* DR 1207: 'this' is in scope in the trailing return type. */
13975 inject_this_parameter (this_type, cp_type_quals (this_type));
13976 }
13977
13978 /* Substitute the return type. */
13979 return_type = tsubst (TREE_TYPE (t), args, complain, in_decl);
13980
13981 if (do_inject)
13982 {
13983 current_class_ptr = save_ccp;
13984 current_class_ref = save_ccr;
13985 }
13986 }
13987 else
13988 /* Substitute the return type. */
13989 return_type = tsubst (TREE_TYPE (t), args, complain, in_decl);
13990
13991 if (return_type == error_mark_node)
13992 return error_mark_node;
13993 /* DR 486 clarifies that creation of a function type with an
13994 invalid return type is a deduction failure. */
13995 if (TREE_CODE (return_type) == ARRAY_TYPE
13996 || TREE_CODE (return_type) == FUNCTION_TYPE)
13997 {
13998 if (complain & tf_error)
13999 {
14000 if (TREE_CODE (return_type) == ARRAY_TYPE)
14001 error ("function returning an array");
14002 else
14003 error ("function returning a function");
14004 }
14005 return error_mark_node;
14006 }
14007 /* And DR 657. */
14008 if (abstract_virtuals_error_sfinae (ACU_RETURN, return_type, complain))
14009 return error_mark_node;
14010
14011 if (!late_return_type_p)
14012 {
14013 /* Substitute the argument types. */
14014 arg_types = tsubst_arg_types (TYPE_ARG_TYPES (t), args, NULL_TREE,
14015 complain, in_decl);
14016 if (arg_types == error_mark_node)
14017 return error_mark_node;
14018 }
14019
14020 /* Construct a new type node and return it. */
14021 if (TREE_CODE (t) == FUNCTION_TYPE)
14022 {
14023 fntype = build_function_type (return_type, arg_types);
14024 fntype = apply_memfn_quals (fntype, type_memfn_quals (t));
14025 }
14026 else
14027 {
14028 tree r = TREE_TYPE (TREE_VALUE (arg_types));
14029 /* Don't pick up extra function qualifiers from the basetype. */
14030 r = cp_build_qualified_type_real (r, type_memfn_quals (t), complain);
14031 if (! MAYBE_CLASS_TYPE_P (r))
14032 {
14033 /* [temp.deduct]
14034
14035 Type deduction may fail for any of the following
14036 reasons:
14037
14038 -- Attempting to create "pointer to member of T" when T
14039 is not a class type. */
14040 if (complain & tf_error)
14041 error ("creating pointer to member function of non-class type %qT",
14042 r);
14043 return error_mark_node;
14044 }
14045
14046 fntype = build_method_type_directly (r, return_type,
14047 TREE_CHAIN (arg_types));
14048 }
14049 fntype = cp_build_type_attribute_variant (fntype, TYPE_ATTRIBUTES (t));
14050
14051 /* See comment above. */
14052 tree raises = NULL_TREE;
14053 cp_ref_qualifier rqual = type_memfn_rqual (t);
14054 fntype = build_cp_fntype_variant (fntype, rqual, raises, late_return_type_p);
14055
14056 return fntype;
14057 }
14058
14059 /* FNTYPE is a FUNCTION_TYPE or METHOD_TYPE. Substitute the template
14060 ARGS into that specification, and return the substituted
14061 specification. If there is no specification, return NULL_TREE. */
14062
14063 static tree
14064 tsubst_exception_specification (tree fntype,
14065 tree args,
14066 tsubst_flags_t complain,
14067 tree in_decl,
14068 bool defer_ok)
14069 {
14070 tree specs;
14071 tree new_specs;
14072
14073 specs = TYPE_RAISES_EXCEPTIONS (fntype);
14074 new_specs = NULL_TREE;
14075 if (specs && TREE_PURPOSE (specs))
14076 {
14077 /* A noexcept-specifier. */
14078 tree expr = TREE_PURPOSE (specs);
14079 if (TREE_CODE (expr) == INTEGER_CST)
14080 new_specs = expr;
14081 else if (defer_ok)
14082 {
14083 /* Defer instantiation of noexcept-specifiers to avoid
14084 excessive instantiations (c++/49107). */
14085 new_specs = make_node (DEFERRED_NOEXCEPT);
14086 if (DEFERRED_NOEXCEPT_SPEC_P (specs))
14087 {
14088 /* We already partially instantiated this member template,
14089 so combine the new args with the old. */
14090 DEFERRED_NOEXCEPT_PATTERN (new_specs)
14091 = DEFERRED_NOEXCEPT_PATTERN (expr);
14092 DEFERRED_NOEXCEPT_ARGS (new_specs)
14093 = add_to_template_args (DEFERRED_NOEXCEPT_ARGS (expr), args);
14094 }
14095 else
14096 {
14097 DEFERRED_NOEXCEPT_PATTERN (new_specs) = expr;
14098 DEFERRED_NOEXCEPT_ARGS (new_specs) = args;
14099 }
14100 }
14101 else
14102 new_specs = tsubst_copy_and_build
14103 (expr, args, complain, in_decl, /*function_p=*/false,
14104 /*integral_constant_expression_p=*/true);
14105 new_specs = build_noexcept_spec (new_specs, complain);
14106 }
14107 else if (specs)
14108 {
14109 if (! TREE_VALUE (specs))
14110 new_specs = specs;
14111 else
14112 while (specs)
14113 {
14114 tree spec;
14115 int i, len = 1;
14116 tree expanded_specs = NULL_TREE;
14117
14118 if (PACK_EXPANSION_P (TREE_VALUE (specs)))
14119 {
14120 /* Expand the pack expansion type. */
14121 expanded_specs = tsubst_pack_expansion (TREE_VALUE (specs),
14122 args, complain,
14123 in_decl);
14124
14125 if (expanded_specs == error_mark_node)
14126 return error_mark_node;
14127 else if (TREE_CODE (expanded_specs) == TREE_VEC)
14128 len = TREE_VEC_LENGTH (expanded_specs);
14129 else
14130 {
14131 /* We're substituting into a member template, so
14132 we got a TYPE_PACK_EXPANSION back. Add that
14133 expansion and move on. */
14134 gcc_assert (TREE_CODE (expanded_specs)
14135 == TYPE_PACK_EXPANSION);
14136 new_specs = add_exception_specifier (new_specs,
14137 expanded_specs,
14138 complain);
14139 specs = TREE_CHAIN (specs);
14140 continue;
14141 }
14142 }
14143
14144 for (i = 0; i < len; ++i)
14145 {
14146 if (expanded_specs)
14147 spec = TREE_VEC_ELT (expanded_specs, i);
14148 else
14149 spec = tsubst (TREE_VALUE (specs), args, complain, in_decl);
14150 if (spec == error_mark_node)
14151 return spec;
14152 new_specs = add_exception_specifier (new_specs, spec,
14153 complain);
14154 }
14155
14156 specs = TREE_CHAIN (specs);
14157 }
14158 }
14159 return new_specs;
14160 }
14161
14162 /* Take the tree structure T and replace template parameters used
14163 therein with the argument vector ARGS. IN_DECL is an associated
14164 decl for diagnostics. If an error occurs, returns ERROR_MARK_NODE.
14165 Issue error and warning messages under control of COMPLAIN. Note
14166 that we must be relatively non-tolerant of extensions here, in
14167 order to preserve conformance; if we allow substitutions that
14168 should not be allowed, we may allow argument deductions that should
14169 not succeed, and therefore report ambiguous overload situations
14170 where there are none. In theory, we could allow the substitution,
14171 but indicate that it should have failed, and allow our caller to
14172 make sure that the right thing happens, but we don't try to do this
14173 yet.
14174
14175 This function is used for dealing with types, decls and the like;
14176 for expressions, use tsubst_expr or tsubst_copy. */
14177
14178 tree
14179 tsubst (tree t, tree args, tsubst_flags_t complain, tree in_decl)
14180 {
14181 enum tree_code code;
14182 tree type, r = NULL_TREE;
14183
14184 if (t == NULL_TREE || t == error_mark_node
14185 || t == integer_type_node
14186 || t == void_type_node
14187 || t == char_type_node
14188 || t == unknown_type_node
14189 || TREE_CODE (t) == NAMESPACE_DECL
14190 || TREE_CODE (t) == TRANSLATION_UNIT_DECL)
14191 return t;
14192
14193 if (DECL_P (t))
14194 return tsubst_decl (t, args, complain);
14195
14196 if (args == NULL_TREE)
14197 return t;
14198
14199 code = TREE_CODE (t);
14200
14201 if (code == IDENTIFIER_NODE)
14202 type = IDENTIFIER_TYPE_VALUE (t);
14203 else
14204 type = TREE_TYPE (t);
14205
14206 gcc_assert (type != unknown_type_node);
14207
14208 /* Reuse typedefs. We need to do this to handle dependent attributes,
14209 such as attribute aligned. */
14210 if (TYPE_P (t)
14211 && typedef_variant_p (t))
14212 {
14213 tree decl = TYPE_NAME (t);
14214
14215 if (alias_template_specialization_p (t))
14216 {
14217 /* DECL represents an alias template and we want to
14218 instantiate it. */
14219 tree tmpl = most_general_template (DECL_TI_TEMPLATE (decl));
14220 tree gen_args = tsubst (DECL_TI_ARGS (decl), args, complain, in_decl);
14221 r = instantiate_alias_template (tmpl, gen_args, complain);
14222 }
14223 else if (DECL_CLASS_SCOPE_P (decl)
14224 && CLASSTYPE_TEMPLATE_INFO (DECL_CONTEXT (decl))
14225 && uses_template_parms (DECL_CONTEXT (decl)))
14226 {
14227 tree tmpl = most_general_template (DECL_TI_TEMPLATE (decl));
14228 tree gen_args = tsubst (DECL_TI_ARGS (decl), args, complain, in_decl);
14229 r = retrieve_specialization (tmpl, gen_args, 0);
14230 }
14231 else if (DECL_FUNCTION_SCOPE_P (decl)
14232 && DECL_TEMPLATE_INFO (DECL_CONTEXT (decl))
14233 && uses_template_parms (DECL_TI_ARGS (DECL_CONTEXT (decl))))
14234 r = retrieve_local_specialization (decl);
14235 else
14236 /* The typedef is from a non-template context. */
14237 return t;
14238
14239 if (r)
14240 {
14241 r = TREE_TYPE (r);
14242 r = cp_build_qualified_type_real
14243 (r, cp_type_quals (t) | cp_type_quals (r),
14244 complain | tf_ignore_bad_quals);
14245 return r;
14246 }
14247 else
14248 {
14249 /* We don't have an instantiation yet, so drop the typedef. */
14250 int quals = cp_type_quals (t);
14251 t = DECL_ORIGINAL_TYPE (decl);
14252 t = cp_build_qualified_type_real (t, quals,
14253 complain | tf_ignore_bad_quals);
14254 }
14255 }
14256
14257 bool fndecl_type = (complain & tf_fndecl_type);
14258 complain &= ~tf_fndecl_type;
14259
14260 if (type
14261 && code != TYPENAME_TYPE
14262 && code != TEMPLATE_TYPE_PARM
14263 && code != TEMPLATE_PARM_INDEX
14264 && code != IDENTIFIER_NODE
14265 && code != FUNCTION_TYPE
14266 && code != METHOD_TYPE)
14267 type = tsubst (type, args, complain, in_decl);
14268 if (type == error_mark_node)
14269 return error_mark_node;
14270
14271 switch (code)
14272 {
14273 case RECORD_TYPE:
14274 case UNION_TYPE:
14275 case ENUMERAL_TYPE:
14276 return tsubst_aggr_type (t, args, complain, in_decl,
14277 /*entering_scope=*/0);
14278
14279 case ERROR_MARK:
14280 case IDENTIFIER_NODE:
14281 case VOID_TYPE:
14282 case REAL_TYPE:
14283 case COMPLEX_TYPE:
14284 case VECTOR_TYPE:
14285 case BOOLEAN_TYPE:
14286 case NULLPTR_TYPE:
14287 case LANG_TYPE:
14288 return t;
14289
14290 case INTEGER_TYPE:
14291 if (t == integer_type_node)
14292 return t;
14293
14294 if (TREE_CODE (TYPE_MIN_VALUE (t)) == INTEGER_CST
14295 && TREE_CODE (TYPE_MAX_VALUE (t)) == INTEGER_CST)
14296 return t;
14297
14298 {
14299 tree max, omax = TREE_OPERAND (TYPE_MAX_VALUE (t), 0);
14300
14301 max = tsubst_expr (omax, args, complain, in_decl,
14302 /*integral_constant_expression_p=*/false);
14303
14304 /* Fix up type of the magic NOP_EXPR with TREE_SIDE_EFFECTS if
14305 needed. */
14306 if (TREE_CODE (max) == NOP_EXPR
14307 && TREE_SIDE_EFFECTS (omax)
14308 && !TREE_TYPE (max))
14309 TREE_TYPE (max) = TREE_TYPE (TREE_OPERAND (max, 0));
14310
14311 /* If we're in a partial instantiation, preserve the magic NOP_EXPR
14312 with TREE_SIDE_EFFECTS that indicates this is not an integral
14313 constant expression. */
14314 if (processing_template_decl
14315 && TREE_SIDE_EFFECTS (omax) && TREE_CODE (omax) == NOP_EXPR)
14316 {
14317 gcc_assert (TREE_CODE (max) == NOP_EXPR);
14318 TREE_SIDE_EFFECTS (max) = 1;
14319 }
14320
14321 return compute_array_index_type (NULL_TREE, max, complain);
14322 }
14323
14324 case TEMPLATE_TYPE_PARM:
14325 case TEMPLATE_TEMPLATE_PARM:
14326 case BOUND_TEMPLATE_TEMPLATE_PARM:
14327 case TEMPLATE_PARM_INDEX:
14328 {
14329 int idx;
14330 int level;
14331 int levels;
14332 tree arg = NULL_TREE;
14333
14334 /* Early in template argument deduction substitution, we don't
14335 want to reduce the level of 'auto', or it will be confused
14336 with a normal template parm in subsequent deduction. */
14337 if (is_auto (t) && (complain & tf_partial))
14338 return t;
14339
14340 r = NULL_TREE;
14341
14342 gcc_assert (TREE_VEC_LENGTH (args) > 0);
14343 template_parm_level_and_index (t, &level, &idx);
14344
14345 levels = TMPL_ARGS_DEPTH (args);
14346 if (level <= levels
14347 && TREE_VEC_LENGTH (TMPL_ARGS_LEVEL (args, level)) > 0)
14348 {
14349 arg = TMPL_ARG (args, level, idx);
14350
14351 /* See through ARGUMENT_PACK_SELECT arguments. */
14352 if (arg && TREE_CODE (arg) == ARGUMENT_PACK_SELECT)
14353 arg = argument_pack_select_arg (arg);
14354 }
14355
14356 if (arg == error_mark_node)
14357 return error_mark_node;
14358 else if (arg != NULL_TREE)
14359 {
14360 if (ARGUMENT_PACK_P (arg))
14361 /* If ARG is an argument pack, we don't actually want to
14362 perform a substitution here, because substitutions
14363 for argument packs are only done
14364 element-by-element. We can get to this point when
14365 substituting the type of a non-type template
14366 parameter pack, when that type actually contains
14367 template parameter packs from an outer template, e.g.,
14368
14369 template<typename... Types> struct A {
14370 template<Types... Values> struct B { };
14371 }; */
14372 return t;
14373
14374 if (code == TEMPLATE_TYPE_PARM)
14375 {
14376 int quals;
14377 gcc_assert (TYPE_P (arg));
14378
14379 quals = cp_type_quals (arg) | cp_type_quals (t);
14380
14381 return cp_build_qualified_type_real
14382 (arg, quals, complain | tf_ignore_bad_quals);
14383 }
14384 else if (code == BOUND_TEMPLATE_TEMPLATE_PARM)
14385 {
14386 /* We are processing a type constructed from a
14387 template template parameter. */
14388 tree argvec = tsubst (TYPE_TI_ARGS (t),
14389 args, complain, in_decl);
14390 if (argvec == error_mark_node)
14391 return error_mark_node;
14392
14393 gcc_assert (TREE_CODE (arg) == TEMPLATE_TEMPLATE_PARM
14394 || TREE_CODE (arg) == TEMPLATE_DECL
14395 || TREE_CODE (arg) == UNBOUND_CLASS_TEMPLATE);
14396
14397 if (TREE_CODE (arg) == UNBOUND_CLASS_TEMPLATE)
14398 /* Consider this code:
14399
14400 template <template <class> class Template>
14401 struct Internal {
14402 template <class Arg> using Bind = Template<Arg>;
14403 };
14404
14405 template <template <class> class Template, class Arg>
14406 using Instantiate = Template<Arg>; //#0
14407
14408 template <template <class> class Template,
14409 class Argument>
14410 using Bind =
14411 Instantiate<Internal<Template>::template Bind,
14412 Argument>; //#1
14413
14414 When #1 is parsed, the
14415 BOUND_TEMPLATE_TEMPLATE_PARM representing the
14416 parameter `Template' in #0 matches the
14417 UNBOUND_CLASS_TEMPLATE representing the argument
14418 `Internal<Template>::template Bind'; We then want
14419 to assemble the type `Bind<Argument>' that can't
14420 be fully created right now, because
14421 `Internal<Template>' not being complete, the Bind
14422 template cannot be looked up in that context. So
14423 we need to "store" `Bind<Argument>' for later
14424 when the context of Bind becomes complete. Let's
14425 store that in a TYPENAME_TYPE. */
14426 return make_typename_type (TYPE_CONTEXT (arg),
14427 build_nt (TEMPLATE_ID_EXPR,
14428 TYPE_IDENTIFIER (arg),
14429 argvec),
14430 typename_type,
14431 complain);
14432
14433 /* We can get a TEMPLATE_TEMPLATE_PARM here when we
14434 are resolving nested-types in the signature of a
14435 member function templates. Otherwise ARG is a
14436 TEMPLATE_DECL and is the real template to be
14437 instantiated. */
14438 if (TREE_CODE (arg) == TEMPLATE_TEMPLATE_PARM)
14439 arg = TYPE_NAME (arg);
14440
14441 r = lookup_template_class (arg,
14442 argvec, in_decl,
14443 DECL_CONTEXT (arg),
14444 /*entering_scope=*/0,
14445 complain);
14446 return cp_build_qualified_type_real
14447 (r, cp_type_quals (t) | cp_type_quals (r), complain);
14448 }
14449 else if (code == TEMPLATE_TEMPLATE_PARM)
14450 return arg;
14451 else
14452 /* TEMPLATE_PARM_INDEX. */
14453 return convert_from_reference (unshare_expr (arg));
14454 }
14455
14456 if (level == 1)
14457 /* This can happen during the attempted tsubst'ing in
14458 unify. This means that we don't yet have any information
14459 about the template parameter in question. */
14460 return t;
14461
14462 /* If we get here, we must have been looking at a parm for a
14463 more deeply nested template. Make a new version of this
14464 template parameter, but with a lower level. */
14465 switch (code)
14466 {
14467 case TEMPLATE_TYPE_PARM:
14468 case TEMPLATE_TEMPLATE_PARM:
14469 case BOUND_TEMPLATE_TEMPLATE_PARM:
14470 if (cp_type_quals (t))
14471 {
14472 r = tsubst (TYPE_MAIN_VARIANT (t), args, complain, in_decl);
14473 r = cp_build_qualified_type_real
14474 (r, cp_type_quals (t),
14475 complain | (code == TEMPLATE_TYPE_PARM
14476 ? tf_ignore_bad_quals : 0));
14477 }
14478 else if (TREE_CODE (t) == TEMPLATE_TYPE_PARM
14479 && PLACEHOLDER_TYPE_CONSTRAINTS (t)
14480 && (r = (TEMPLATE_PARM_DESCENDANTS
14481 (TEMPLATE_TYPE_PARM_INDEX (t))))
14482 && (r = TREE_TYPE (r))
14483 && !PLACEHOLDER_TYPE_CONSTRAINTS (r))
14484 /* Break infinite recursion when substituting the constraints
14485 of a constrained placeholder. */;
14486 else
14487 {
14488 r = copy_type (t);
14489 TEMPLATE_TYPE_PARM_INDEX (r)
14490 = reduce_template_parm_level (TEMPLATE_TYPE_PARM_INDEX (t),
14491 r, levels, args, complain);
14492 TYPE_STUB_DECL (r) = TYPE_NAME (r) = TEMPLATE_TYPE_DECL (r);
14493 TYPE_MAIN_VARIANT (r) = r;
14494 TYPE_POINTER_TO (r) = NULL_TREE;
14495 TYPE_REFERENCE_TO (r) = NULL_TREE;
14496
14497 if (TREE_CODE (t) == TEMPLATE_TYPE_PARM)
14498 {
14499 /* Propagate constraints on placeholders. */
14500 if (tree constr = PLACEHOLDER_TYPE_CONSTRAINTS (t))
14501 PLACEHOLDER_TYPE_CONSTRAINTS (r)
14502 = tsubst_constraint (constr, args, complain, in_decl);
14503 else if (tree pl = CLASS_PLACEHOLDER_TEMPLATE (t))
14504 {
14505 pl = tsubst_copy (pl, args, complain, in_decl);
14506 CLASS_PLACEHOLDER_TEMPLATE (r) = pl;
14507 }
14508 }
14509
14510 if (TREE_CODE (r) == TEMPLATE_TEMPLATE_PARM)
14511 /* We have reduced the level of the template
14512 template parameter, but not the levels of its
14513 template parameters, so canonical_type_parameter
14514 will not be able to find the canonical template
14515 template parameter for this level. Thus, we
14516 require structural equality checking to compare
14517 TEMPLATE_TEMPLATE_PARMs. */
14518 SET_TYPE_STRUCTURAL_EQUALITY (r);
14519 else if (TYPE_STRUCTURAL_EQUALITY_P (t))
14520 SET_TYPE_STRUCTURAL_EQUALITY (r);
14521 else
14522 TYPE_CANONICAL (r) = canonical_type_parameter (r);
14523
14524 if (code == BOUND_TEMPLATE_TEMPLATE_PARM)
14525 {
14526 tree tinfo = TYPE_TEMPLATE_INFO (t);
14527 /* We might need to substitute into the types of non-type
14528 template parameters. */
14529 tree tmpl = tsubst (TI_TEMPLATE (tinfo), args,
14530 complain, in_decl);
14531 if (tmpl == error_mark_node)
14532 return error_mark_node;
14533 tree argvec = tsubst (TI_ARGS (tinfo), args,
14534 complain, in_decl);
14535 if (argvec == error_mark_node)
14536 return error_mark_node;
14537
14538 TEMPLATE_TEMPLATE_PARM_TEMPLATE_INFO (r)
14539 = build_template_info (tmpl, argvec);
14540 }
14541 }
14542 break;
14543
14544 case TEMPLATE_PARM_INDEX:
14545 /* OK, now substitute the type of the non-type parameter. We
14546 couldn't do it earlier because it might be an auto parameter,
14547 and we wouldn't need to if we had an argument. */
14548 type = tsubst (type, args, complain, in_decl);
14549 if (type == error_mark_node)
14550 return error_mark_node;
14551 r = reduce_template_parm_level (t, type, levels, args, complain);
14552 break;
14553
14554 default:
14555 gcc_unreachable ();
14556 }
14557
14558 return r;
14559 }
14560
14561 case TREE_LIST:
14562 {
14563 tree purpose, value, chain;
14564
14565 if (t == void_list_node)
14566 return t;
14567
14568 purpose = TREE_PURPOSE (t);
14569 if (purpose)
14570 {
14571 purpose = tsubst (purpose, args, complain, in_decl);
14572 if (purpose == error_mark_node)
14573 return error_mark_node;
14574 }
14575 value = TREE_VALUE (t);
14576 if (value)
14577 {
14578 value = tsubst (value, args, complain, in_decl);
14579 if (value == error_mark_node)
14580 return error_mark_node;
14581 }
14582 chain = TREE_CHAIN (t);
14583 if (chain && chain != void_type_node)
14584 {
14585 chain = tsubst (chain, args, complain, in_decl);
14586 if (chain == error_mark_node)
14587 return error_mark_node;
14588 }
14589 if (purpose == TREE_PURPOSE (t)
14590 && value == TREE_VALUE (t)
14591 && chain == TREE_CHAIN (t))
14592 return t;
14593 return hash_tree_cons (purpose, value, chain);
14594 }
14595
14596 case TREE_BINFO:
14597 /* We should never be tsubsting a binfo. */
14598 gcc_unreachable ();
14599
14600 case TREE_VEC:
14601 /* A vector of template arguments. */
14602 gcc_assert (!type);
14603 return tsubst_template_args (t, args, complain, in_decl);
14604
14605 case POINTER_TYPE:
14606 case REFERENCE_TYPE:
14607 {
14608 if (type == TREE_TYPE (t) && TREE_CODE (type) != METHOD_TYPE)
14609 return t;
14610
14611 /* [temp.deduct]
14612
14613 Type deduction may fail for any of the following
14614 reasons:
14615
14616 -- Attempting to create a pointer to reference type.
14617 -- Attempting to create a reference to a reference type or
14618 a reference to void.
14619
14620 Core issue 106 says that creating a reference to a reference
14621 during instantiation is no longer a cause for failure. We
14622 only enforce this check in strict C++98 mode. */
14623 if ((TYPE_REF_P (type)
14624 && (((cxx_dialect == cxx98) && flag_iso) || code != REFERENCE_TYPE))
14625 || (code == REFERENCE_TYPE && VOID_TYPE_P (type)))
14626 {
14627 static location_t last_loc;
14628
14629 /* We keep track of the last time we issued this error
14630 message to avoid spewing a ton of messages during a
14631 single bad template instantiation. */
14632 if (complain & tf_error
14633 && last_loc != input_location)
14634 {
14635 if (VOID_TYPE_P (type))
14636 error ("forming reference to void");
14637 else if (code == POINTER_TYPE)
14638 error ("forming pointer to reference type %qT", type);
14639 else
14640 error ("forming reference to reference type %qT", type);
14641 last_loc = input_location;
14642 }
14643
14644 return error_mark_node;
14645 }
14646 else if (TREE_CODE (type) == FUNCTION_TYPE
14647 && (type_memfn_quals (type) != TYPE_UNQUALIFIED
14648 || type_memfn_rqual (type) != REF_QUAL_NONE))
14649 {
14650 if (complain & tf_error)
14651 {
14652 if (code == POINTER_TYPE)
14653 error ("forming pointer to qualified function type %qT",
14654 type);
14655 else
14656 error ("forming reference to qualified function type %qT",
14657 type);
14658 }
14659 return error_mark_node;
14660 }
14661 else if (code == POINTER_TYPE)
14662 {
14663 r = build_pointer_type (type);
14664 if (TREE_CODE (type) == METHOD_TYPE)
14665 r = build_ptrmemfunc_type (r);
14666 }
14667 else if (TYPE_REF_P (type))
14668 /* In C++0x, during template argument substitution, when there is an
14669 attempt to create a reference to a reference type, reference
14670 collapsing is applied as described in [14.3.1/4 temp.arg.type]:
14671
14672 "If a template-argument for a template-parameter T names a type
14673 that is a reference to a type A, an attempt to create the type
14674 'lvalue reference to cv T' creates the type 'lvalue reference to
14675 A,' while an attempt to create the type type rvalue reference to
14676 cv T' creates the type T"
14677 */
14678 r = cp_build_reference_type
14679 (TREE_TYPE (type),
14680 TYPE_REF_IS_RVALUE (t) && TYPE_REF_IS_RVALUE (type));
14681 else
14682 r = cp_build_reference_type (type, TYPE_REF_IS_RVALUE (t));
14683 r = cp_build_qualified_type_real (r, cp_type_quals (t), complain);
14684
14685 if (r != error_mark_node)
14686 /* Will this ever be needed for TYPE_..._TO values? */
14687 layout_type (r);
14688
14689 return r;
14690 }
14691 case OFFSET_TYPE:
14692 {
14693 r = tsubst (TYPE_OFFSET_BASETYPE (t), args, complain, in_decl);
14694 if (r == error_mark_node || !MAYBE_CLASS_TYPE_P (r))
14695 {
14696 /* [temp.deduct]
14697
14698 Type deduction may fail for any of the following
14699 reasons:
14700
14701 -- Attempting to create "pointer to member of T" when T
14702 is not a class type. */
14703 if (complain & tf_error)
14704 error ("creating pointer to member of non-class type %qT", r);
14705 return error_mark_node;
14706 }
14707 if (TYPE_REF_P (type))
14708 {
14709 if (complain & tf_error)
14710 error ("creating pointer to member reference type %qT", type);
14711 return error_mark_node;
14712 }
14713 if (VOID_TYPE_P (type))
14714 {
14715 if (complain & tf_error)
14716 error ("creating pointer to member of type void");
14717 return error_mark_node;
14718 }
14719 gcc_assert (TREE_CODE (type) != METHOD_TYPE);
14720 if (TREE_CODE (type) == FUNCTION_TYPE)
14721 {
14722 /* The type of the implicit object parameter gets its
14723 cv-qualifiers from the FUNCTION_TYPE. */
14724 tree memptr;
14725 tree method_type
14726 = build_memfn_type (type, r, type_memfn_quals (type),
14727 type_memfn_rqual (type));
14728 memptr = build_ptrmemfunc_type (build_pointer_type (method_type));
14729 return cp_build_qualified_type_real (memptr, cp_type_quals (t),
14730 complain);
14731 }
14732 else
14733 return cp_build_qualified_type_real (build_ptrmem_type (r, type),
14734 cp_type_quals (t),
14735 complain);
14736 }
14737 case FUNCTION_TYPE:
14738 case METHOD_TYPE:
14739 {
14740 tree fntype;
14741 tree specs;
14742 fntype = tsubst_function_type (t, args, complain, in_decl);
14743 if (fntype == error_mark_node)
14744 return error_mark_node;
14745
14746 /* Substitute the exception specification. */
14747 specs = tsubst_exception_specification (t, args, complain, in_decl,
14748 /*defer_ok*/fndecl_type);
14749 if (specs == error_mark_node)
14750 return error_mark_node;
14751 if (specs)
14752 fntype = build_exception_variant (fntype, specs);
14753 return fntype;
14754 }
14755 case ARRAY_TYPE:
14756 {
14757 tree domain = tsubst (TYPE_DOMAIN (t), args, complain, in_decl);
14758 if (domain == error_mark_node)
14759 return error_mark_node;
14760
14761 /* As an optimization, we avoid regenerating the array type if
14762 it will obviously be the same as T. */
14763 if (type == TREE_TYPE (t) && domain == TYPE_DOMAIN (t))
14764 return t;
14765
14766 /* These checks should match the ones in create_array_type_for_decl.
14767
14768 [temp.deduct]
14769
14770 The deduction may fail for any of the following reasons:
14771
14772 -- Attempting to create an array with an element type that
14773 is void, a function type, or a reference type, or [DR337]
14774 an abstract class type. */
14775 if (VOID_TYPE_P (type)
14776 || TREE_CODE (type) == FUNCTION_TYPE
14777 || (TREE_CODE (type) == ARRAY_TYPE
14778 && TYPE_DOMAIN (type) == NULL_TREE)
14779 || TYPE_REF_P (type))
14780 {
14781 if (complain & tf_error)
14782 error ("creating array of %qT", type);
14783 return error_mark_node;
14784 }
14785
14786 if (abstract_virtuals_error_sfinae (ACU_ARRAY, type, complain))
14787 return error_mark_node;
14788
14789 r = build_cplus_array_type (type, domain);
14790
14791 if (!valid_array_size_p (input_location, r, in_decl,
14792 (complain & tf_error)))
14793 return error_mark_node;
14794
14795 if (TYPE_USER_ALIGN (t))
14796 {
14797 SET_TYPE_ALIGN (r, TYPE_ALIGN (t));
14798 TYPE_USER_ALIGN (r) = 1;
14799 }
14800
14801 return r;
14802 }
14803
14804 case TYPENAME_TYPE:
14805 {
14806 tree ctx = tsubst_aggr_type (TYPE_CONTEXT (t), args, complain,
14807 in_decl, /*entering_scope=*/1);
14808 if (ctx == error_mark_node)
14809 return error_mark_node;
14810
14811 tree f = tsubst_copy (TYPENAME_TYPE_FULLNAME (t), args,
14812 complain, in_decl);
14813 if (f == error_mark_node)
14814 return error_mark_node;
14815
14816 if (!MAYBE_CLASS_TYPE_P (ctx))
14817 {
14818 if (complain & tf_error)
14819 error ("%qT is not a class, struct, or union type", ctx);
14820 return error_mark_node;
14821 }
14822 else if (!uses_template_parms (ctx) && !TYPE_BEING_DEFINED (ctx))
14823 {
14824 /* Normally, make_typename_type does not require that the CTX
14825 have complete type in order to allow things like:
14826
14827 template <class T> struct S { typename S<T>::X Y; };
14828
14829 But, such constructs have already been resolved by this
14830 point, so here CTX really should have complete type, unless
14831 it's a partial instantiation. */
14832 ctx = complete_type (ctx);
14833 if (!COMPLETE_TYPE_P (ctx))
14834 {
14835 if (complain & tf_error)
14836 cxx_incomplete_type_error (NULL_TREE, ctx);
14837 return error_mark_node;
14838 }
14839 }
14840
14841 f = make_typename_type (ctx, f, typename_type,
14842 complain | tf_keep_type_decl);
14843 if (f == error_mark_node)
14844 return f;
14845 if (TREE_CODE (f) == TYPE_DECL)
14846 {
14847 complain |= tf_ignore_bad_quals;
14848 f = TREE_TYPE (f);
14849 }
14850
14851 if (TREE_CODE (f) != TYPENAME_TYPE)
14852 {
14853 if (TYPENAME_IS_ENUM_P (t) && TREE_CODE (f) != ENUMERAL_TYPE)
14854 {
14855 if (complain & tf_error)
14856 error ("%qT resolves to %qT, which is not an enumeration type",
14857 t, f);
14858 else
14859 return error_mark_node;
14860 }
14861 else if (TYPENAME_IS_CLASS_P (t) && !CLASS_TYPE_P (f))
14862 {
14863 if (complain & tf_error)
14864 error ("%qT resolves to %qT, which is is not a class type",
14865 t, f);
14866 else
14867 return error_mark_node;
14868 }
14869 }
14870
14871 return cp_build_qualified_type_real
14872 (f, cp_type_quals (f) | cp_type_quals (t), complain);
14873 }
14874
14875 case UNBOUND_CLASS_TEMPLATE:
14876 {
14877 tree ctx = tsubst_aggr_type (TYPE_CONTEXT (t), args, complain,
14878 in_decl, /*entering_scope=*/1);
14879 tree name = TYPE_IDENTIFIER (t);
14880 tree parm_list = DECL_TEMPLATE_PARMS (TYPE_NAME (t));
14881
14882 if (ctx == error_mark_node || name == error_mark_node)
14883 return error_mark_node;
14884
14885 if (parm_list)
14886 parm_list = tsubst_template_parms (parm_list, args, complain);
14887 return make_unbound_class_template (ctx, name, parm_list, complain);
14888 }
14889
14890 case TYPEOF_TYPE:
14891 {
14892 tree type;
14893
14894 ++cp_unevaluated_operand;
14895 ++c_inhibit_evaluation_warnings;
14896
14897 type = tsubst_expr (TYPEOF_TYPE_EXPR (t), args,
14898 complain, in_decl,
14899 /*integral_constant_expression_p=*/false);
14900
14901 --cp_unevaluated_operand;
14902 --c_inhibit_evaluation_warnings;
14903
14904 type = finish_typeof (type);
14905 return cp_build_qualified_type_real (type,
14906 cp_type_quals (t)
14907 | cp_type_quals (type),
14908 complain);
14909 }
14910
14911 case DECLTYPE_TYPE:
14912 {
14913 tree type;
14914
14915 ++cp_unevaluated_operand;
14916 ++c_inhibit_evaluation_warnings;
14917
14918 type = tsubst_copy_and_build (DECLTYPE_TYPE_EXPR (t), args,
14919 complain|tf_decltype, in_decl,
14920 /*function_p*/false,
14921 /*integral_constant_expression*/false);
14922
14923 if (DECLTYPE_FOR_INIT_CAPTURE (t))
14924 {
14925 if (type == NULL_TREE)
14926 {
14927 if (complain & tf_error)
14928 error ("empty initializer in lambda init-capture");
14929 type = error_mark_node;
14930 }
14931 else if (TREE_CODE (type) == TREE_LIST)
14932 type = build_x_compound_expr_from_list (type, ELK_INIT, complain);
14933 }
14934
14935 --cp_unevaluated_operand;
14936 --c_inhibit_evaluation_warnings;
14937
14938 if (DECLTYPE_FOR_LAMBDA_CAPTURE (t))
14939 type = lambda_capture_field_type (type,
14940 DECLTYPE_FOR_INIT_CAPTURE (t),
14941 DECLTYPE_FOR_REF_CAPTURE (t));
14942 else if (DECLTYPE_FOR_LAMBDA_PROXY (t))
14943 type = lambda_proxy_type (type);
14944 else
14945 {
14946 bool id = DECLTYPE_TYPE_ID_EXPR_OR_MEMBER_ACCESS_P (t);
14947 if (id && TREE_CODE (DECLTYPE_TYPE_EXPR (t)) == BIT_NOT_EXPR
14948 && EXPR_P (type))
14949 /* In a template ~id could be either a complement expression
14950 or an unqualified-id naming a destructor; if instantiating
14951 it produces an expression, it's not an id-expression or
14952 member access. */
14953 id = false;
14954 type = finish_decltype_type (type, id, complain);
14955 }
14956 return cp_build_qualified_type_real (type,
14957 cp_type_quals (t)
14958 | cp_type_quals (type),
14959 complain | tf_ignore_bad_quals);
14960 }
14961
14962 case UNDERLYING_TYPE:
14963 {
14964 tree type = tsubst (UNDERLYING_TYPE_TYPE (t), args,
14965 complain, in_decl);
14966 return finish_underlying_type (type);
14967 }
14968
14969 case TYPE_ARGUMENT_PACK:
14970 case NONTYPE_ARGUMENT_PACK:
14971 {
14972 tree r;
14973
14974 if (code == NONTYPE_ARGUMENT_PACK)
14975 r = make_node (code);
14976 else
14977 r = cxx_make_type (code);
14978
14979 tree pack_args = ARGUMENT_PACK_ARGS (t);
14980 pack_args = tsubst_template_args (pack_args, args, complain, in_decl);
14981 SET_ARGUMENT_PACK_ARGS (r, pack_args);
14982
14983 return r;
14984 }
14985
14986 case VOID_CST:
14987 case INTEGER_CST:
14988 case REAL_CST:
14989 case STRING_CST:
14990 case PLUS_EXPR:
14991 case MINUS_EXPR:
14992 case NEGATE_EXPR:
14993 case NOP_EXPR:
14994 case INDIRECT_REF:
14995 case ADDR_EXPR:
14996 case CALL_EXPR:
14997 case ARRAY_REF:
14998 case SCOPE_REF:
14999 /* We should use one of the expression tsubsts for these codes. */
15000 gcc_unreachable ();
15001
15002 default:
15003 sorry ("use of %qs in template", get_tree_code_name (code));
15004 return error_mark_node;
15005 }
15006 }
15007
15008 /* tsubst a BASELINK. OBJECT_TYPE, if non-NULL, is the type of the
15009 expression on the left-hand side of the "." or "->" operator. We
15010 only do the lookup if we had a dependent BASELINK. Otherwise we
15011 adjust it onto the instantiated heirarchy. */
15012
15013 static tree
15014 tsubst_baselink (tree baselink, tree object_type,
15015 tree args, tsubst_flags_t complain, tree in_decl)
15016 {
15017 bool qualified_p = BASELINK_QUALIFIED_P (baselink);
15018 tree qualifying_scope = BINFO_TYPE (BASELINK_ACCESS_BINFO (baselink));
15019 qualifying_scope = tsubst (qualifying_scope, args, complain, in_decl);
15020
15021 tree optype = BASELINK_OPTYPE (baselink);
15022 optype = tsubst (optype, args, complain, in_decl);
15023
15024 tree template_args = NULL_TREE;
15025 bool template_id_p = false;
15026 tree fns = BASELINK_FUNCTIONS (baselink);
15027 if (TREE_CODE (fns) == TEMPLATE_ID_EXPR)
15028 {
15029 template_id_p = true;
15030 template_args = TREE_OPERAND (fns, 1);
15031 fns = TREE_OPERAND (fns, 0);
15032 if (template_args)
15033 template_args = tsubst_template_args (template_args, args,
15034 complain, in_decl);
15035 }
15036
15037 tree binfo_type = BINFO_TYPE (BASELINK_BINFO (baselink));
15038 binfo_type = tsubst (binfo_type, args, complain, in_decl);
15039 bool dependent_p = binfo_type != BINFO_TYPE (BASELINK_BINFO (baselink));
15040
15041 if (dependent_p)
15042 {
15043 tree name = OVL_NAME (fns);
15044 if (IDENTIFIER_CONV_OP_P (name))
15045 name = make_conv_op_name (optype);
15046
15047 if (name == complete_dtor_identifier)
15048 /* Treat as-if non-dependent below. */
15049 dependent_p = false;
15050
15051 baselink = lookup_fnfields (qualifying_scope, name, /*protect=*/1);
15052 if (!baselink)
15053 {
15054 if ((complain & tf_error)
15055 && constructor_name_p (name, qualifying_scope))
15056 error ("cannot call constructor %<%T::%D%> directly",
15057 qualifying_scope, name);
15058 return error_mark_node;
15059 }
15060
15061 if (BASELINK_P (baselink))
15062 fns = BASELINK_FUNCTIONS (baselink);
15063 }
15064 else
15065 /* We're going to overwrite pieces below, make a duplicate. */
15066 baselink = copy_node (baselink);
15067
15068 /* If lookup found a single function, mark it as used at this point.
15069 (If lookup found multiple functions the one selected later by
15070 overload resolution will be marked as used at that point.) */
15071 if (!template_id_p && !really_overloaded_fn (fns))
15072 {
15073 tree fn = OVL_FIRST (fns);
15074 bool ok = mark_used (fn, complain);
15075 if (!ok && !(complain & tf_error))
15076 return error_mark_node;
15077 if (ok && BASELINK_P (baselink))
15078 /* We might have instantiated an auto function. */
15079 TREE_TYPE (baselink) = TREE_TYPE (fn);
15080 }
15081
15082 if (BASELINK_P (baselink))
15083 {
15084 /* Add back the template arguments, if present. */
15085 if (template_id_p)
15086 BASELINK_FUNCTIONS (baselink)
15087 = build2 (TEMPLATE_ID_EXPR, unknown_type_node, fns, template_args);
15088
15089 /* Update the conversion operator type. */
15090 BASELINK_OPTYPE (baselink) = optype;
15091 }
15092
15093 if (!object_type)
15094 object_type = current_class_type;
15095
15096 if (qualified_p || !dependent_p)
15097 {
15098 baselink = adjust_result_of_qualified_name_lookup (baselink,
15099 qualifying_scope,
15100 object_type);
15101 if (!qualified_p)
15102 /* We need to call adjust_result_of_qualified_name_lookup in case the
15103 destructor names a base class, but we unset BASELINK_QUALIFIED_P
15104 so that we still get virtual function binding. */
15105 BASELINK_QUALIFIED_P (baselink) = false;
15106 }
15107
15108 return baselink;
15109 }
15110
15111 /* Like tsubst_expr for a SCOPE_REF, given by QUALIFIED_ID. DONE is
15112 true if the qualified-id will be a postfix-expression in-and-of
15113 itself; false if more of the postfix-expression follows the
15114 QUALIFIED_ID. ADDRESS_P is true if the qualified-id is the operand
15115 of "&". */
15116
15117 static tree
15118 tsubst_qualified_id (tree qualified_id, tree args,
15119 tsubst_flags_t complain, tree in_decl,
15120 bool done, bool address_p)
15121 {
15122 tree expr;
15123 tree scope;
15124 tree name;
15125 bool is_template;
15126 tree template_args;
15127 location_t loc = UNKNOWN_LOCATION;
15128
15129 gcc_assert (TREE_CODE (qualified_id) == SCOPE_REF);
15130
15131 /* Figure out what name to look up. */
15132 name = TREE_OPERAND (qualified_id, 1);
15133 if (TREE_CODE (name) == TEMPLATE_ID_EXPR)
15134 {
15135 is_template = true;
15136 loc = EXPR_LOCATION (name);
15137 template_args = TREE_OPERAND (name, 1);
15138 if (template_args)
15139 template_args = tsubst_template_args (template_args, args,
15140 complain, in_decl);
15141 if (template_args == error_mark_node)
15142 return error_mark_node;
15143 name = TREE_OPERAND (name, 0);
15144 }
15145 else
15146 {
15147 is_template = false;
15148 template_args = NULL_TREE;
15149 }
15150
15151 /* Substitute into the qualifying scope. When there are no ARGS, we
15152 are just trying to simplify a non-dependent expression. In that
15153 case the qualifying scope may be dependent, and, in any case,
15154 substituting will not help. */
15155 scope = TREE_OPERAND (qualified_id, 0);
15156 if (args)
15157 {
15158 scope = tsubst (scope, args, complain, in_decl);
15159 expr = tsubst_copy (name, args, complain, in_decl);
15160 }
15161 else
15162 expr = name;
15163
15164 if (dependent_scope_p (scope))
15165 {
15166 if (is_template)
15167 expr = build_min_nt_loc (loc, TEMPLATE_ID_EXPR, expr, template_args);
15168 tree r = build_qualified_name (NULL_TREE, scope, expr,
15169 QUALIFIED_NAME_IS_TEMPLATE (qualified_id));
15170 REF_PARENTHESIZED_P (r) = REF_PARENTHESIZED_P (qualified_id);
15171 return r;
15172 }
15173
15174 if (!BASELINK_P (name) && !DECL_P (expr))
15175 {
15176 if (TREE_CODE (expr) == BIT_NOT_EXPR)
15177 {
15178 /* A BIT_NOT_EXPR is used to represent a destructor. */
15179 if (!check_dtor_name (scope, TREE_OPERAND (expr, 0)))
15180 {
15181 error ("qualifying type %qT does not match destructor name ~%qT",
15182 scope, TREE_OPERAND (expr, 0));
15183 expr = error_mark_node;
15184 }
15185 else
15186 expr = lookup_qualified_name (scope, complete_dtor_identifier,
15187 /*is_type_p=*/0, false);
15188 }
15189 else
15190 expr = lookup_qualified_name (scope, expr, /*is_type_p=*/0, false);
15191 if (TREE_CODE (TREE_CODE (expr) == TEMPLATE_DECL
15192 ? DECL_TEMPLATE_RESULT (expr) : expr) == TYPE_DECL)
15193 {
15194 if (complain & tf_error)
15195 {
15196 error ("dependent-name %qE is parsed as a non-type, but "
15197 "instantiation yields a type", qualified_id);
15198 inform (input_location, "say %<typename %E%> if a type is meant", qualified_id);
15199 }
15200 return error_mark_node;
15201 }
15202 }
15203
15204 if (DECL_P (expr))
15205 {
15206 check_accessibility_of_qualified_id (expr, /*object_type=*/NULL_TREE,
15207 scope);
15208 /* Remember that there was a reference to this entity. */
15209 if (!mark_used (expr, complain) && !(complain & tf_error))
15210 return error_mark_node;
15211 }
15212
15213 if (expr == error_mark_node || TREE_CODE (expr) == TREE_LIST)
15214 {
15215 if (complain & tf_error)
15216 qualified_name_lookup_error (scope,
15217 TREE_OPERAND (qualified_id, 1),
15218 expr, input_location);
15219 return error_mark_node;
15220 }
15221
15222 if (is_template)
15223 {
15224 /* We may be repeating a check already done during parsing, but
15225 if it was well-formed and passed then, it will pass again
15226 now, and if it didn't, we wouldn't have got here. The case
15227 we want to catch is when we couldn't tell then, and can now,
15228 namely when templ prior to substitution was an
15229 identifier. */
15230 if (flag_concepts && check_auto_in_tmpl_args (expr, template_args))
15231 return error_mark_node;
15232
15233 if (variable_template_p (expr))
15234 expr = lookup_and_finish_template_variable (expr, template_args,
15235 complain);
15236 else
15237 expr = lookup_template_function (expr, template_args);
15238 }
15239
15240 if (expr == error_mark_node && complain & tf_error)
15241 qualified_name_lookup_error (scope, TREE_OPERAND (qualified_id, 1),
15242 expr, input_location);
15243 else if (TYPE_P (scope))
15244 {
15245 expr = (adjust_result_of_qualified_name_lookup
15246 (expr, scope, current_nonlambda_class_type ()));
15247 expr = (finish_qualified_id_expr
15248 (scope, expr, done, address_p && PTRMEM_OK_P (qualified_id),
15249 QUALIFIED_NAME_IS_TEMPLATE (qualified_id),
15250 /*template_arg_p=*/false, complain));
15251 }
15252
15253 /* Expressions do not generally have reference type. */
15254 if (TREE_CODE (expr) != SCOPE_REF
15255 /* However, if we're about to form a pointer-to-member, we just
15256 want the referenced member referenced. */
15257 && TREE_CODE (expr) != OFFSET_REF)
15258 expr = convert_from_reference (expr);
15259
15260 if (REF_PARENTHESIZED_P (qualified_id))
15261 expr = force_paren_expr (expr);
15262
15263 return expr;
15264 }
15265
15266 /* tsubst the initializer for a VAR_DECL. INIT is the unsubstituted
15267 initializer, DECL is the substituted VAR_DECL. Other arguments are as
15268 for tsubst. */
15269
15270 static tree
15271 tsubst_init (tree init, tree decl, tree args,
15272 tsubst_flags_t complain, tree in_decl)
15273 {
15274 if (!init)
15275 return NULL_TREE;
15276
15277 init = tsubst_expr (init, args, complain, in_decl, false);
15278
15279 if (!init && TREE_TYPE (decl) != error_mark_node)
15280 {
15281 /* If we had an initializer but it
15282 instantiated to nothing,
15283 value-initialize the object. This will
15284 only occur when the initializer was a
15285 pack expansion where the parameter packs
15286 used in that expansion were of length
15287 zero. */
15288 init = build_value_init (TREE_TYPE (decl),
15289 complain);
15290 if (TREE_CODE (init) == AGGR_INIT_EXPR)
15291 init = get_target_expr_sfinae (init, complain);
15292 if (TREE_CODE (init) == TARGET_EXPR)
15293 TARGET_EXPR_DIRECT_INIT_P (init) = true;
15294 }
15295
15296 return init;
15297 }
15298
15299 /* Like tsubst, but deals with expressions. This function just replaces
15300 template parms; to finish processing the resultant expression, use
15301 tsubst_copy_and_build or tsubst_expr. */
15302
15303 static tree
15304 tsubst_copy (tree t, tree args, tsubst_flags_t complain, tree in_decl)
15305 {
15306 enum tree_code code;
15307 tree r;
15308
15309 if (t == NULL_TREE || t == error_mark_node || args == NULL_TREE)
15310 return t;
15311
15312 code = TREE_CODE (t);
15313
15314 switch (code)
15315 {
15316 case PARM_DECL:
15317 r = retrieve_local_specialization (t);
15318
15319 if (r == NULL_TREE)
15320 {
15321 /* We get here for a use of 'this' in an NSDMI. */
15322 if (DECL_NAME (t) == this_identifier && current_class_ptr)
15323 return current_class_ptr;
15324
15325 /* This can happen for a parameter name used later in a function
15326 declaration (such as in a late-specified return type). Just
15327 make a dummy decl, since it's only used for its type. */
15328 gcc_assert (cp_unevaluated_operand != 0);
15329 r = tsubst_decl (t, args, complain);
15330 /* Give it the template pattern as its context; its true context
15331 hasn't been instantiated yet and this is good enough for
15332 mangling. */
15333 DECL_CONTEXT (r) = DECL_CONTEXT (t);
15334 }
15335
15336 if (TREE_CODE (r) == ARGUMENT_PACK_SELECT)
15337 r = argument_pack_select_arg (r);
15338 if (!mark_used (r, complain) && !(complain & tf_error))
15339 return error_mark_node;
15340 return r;
15341
15342 case CONST_DECL:
15343 {
15344 tree enum_type;
15345 tree v;
15346
15347 if (DECL_TEMPLATE_PARM_P (t))
15348 return tsubst_copy (DECL_INITIAL (t), args, complain, in_decl);
15349 /* There is no need to substitute into namespace-scope
15350 enumerators. */
15351 if (DECL_NAMESPACE_SCOPE_P (t))
15352 return t;
15353 /* If ARGS is NULL, then T is known to be non-dependent. */
15354 if (args == NULL_TREE)
15355 return scalar_constant_value (t);
15356
15357 /* Unfortunately, we cannot just call lookup_name here.
15358 Consider:
15359
15360 template <int I> int f() {
15361 enum E { a = I };
15362 struct S { void g() { E e = a; } };
15363 };
15364
15365 When we instantiate f<7>::S::g(), say, lookup_name is not
15366 clever enough to find f<7>::a. */
15367 enum_type
15368 = tsubst_aggr_type (DECL_CONTEXT (t), args, complain, in_decl,
15369 /*entering_scope=*/0);
15370
15371 for (v = TYPE_VALUES (enum_type);
15372 v != NULL_TREE;
15373 v = TREE_CHAIN (v))
15374 if (TREE_PURPOSE (v) == DECL_NAME (t))
15375 return TREE_VALUE (v);
15376
15377 /* We didn't find the name. That should never happen; if
15378 name-lookup found it during preliminary parsing, we
15379 should find it again here during instantiation. */
15380 gcc_unreachable ();
15381 }
15382 return t;
15383
15384 case FIELD_DECL:
15385 if (DECL_CONTEXT (t))
15386 {
15387 tree ctx;
15388
15389 ctx = tsubst_aggr_type (DECL_CONTEXT (t), args, complain, in_decl,
15390 /*entering_scope=*/1);
15391 if (ctx != DECL_CONTEXT (t))
15392 {
15393 tree r = lookup_field (ctx, DECL_NAME (t), 0, false);
15394 if (!r)
15395 {
15396 if (complain & tf_error)
15397 error ("using invalid field %qD", t);
15398 return error_mark_node;
15399 }
15400 return r;
15401 }
15402 }
15403
15404 return t;
15405
15406 case VAR_DECL:
15407 case FUNCTION_DECL:
15408 if (DECL_LANG_SPECIFIC (t) && DECL_TEMPLATE_INFO (t))
15409 r = tsubst (t, args, complain, in_decl);
15410 else if (local_variable_p (t)
15411 && uses_template_parms (DECL_CONTEXT (t)))
15412 {
15413 r = retrieve_local_specialization (t);
15414 if (r == NULL_TREE)
15415 {
15416 /* First try name lookup to find the instantiation. */
15417 r = lookup_name (DECL_NAME (t));
15418 if (r && !is_capture_proxy (r))
15419 {
15420 /* Make sure that the one we found is the one we want. */
15421 tree ctx = enclosing_instantiation_of (DECL_CONTEXT (t));
15422 if (ctx != DECL_CONTEXT (r))
15423 r = NULL_TREE;
15424 }
15425
15426 if (r)
15427 /* OK */;
15428 else
15429 {
15430 /* This can happen for a variable used in a
15431 late-specified return type of a local lambda, or for a
15432 local static or constant. Building a new VAR_DECL
15433 should be OK in all those cases. */
15434 r = tsubst_decl (t, args, complain);
15435 if (local_specializations)
15436 /* Avoid infinite recursion (79640). */
15437 register_local_specialization (r, t);
15438 if (decl_maybe_constant_var_p (r))
15439 {
15440 /* We can't call cp_finish_decl, so handle the
15441 initializer by hand. */
15442 tree init = tsubst_init (DECL_INITIAL (t), r, args,
15443 complain, in_decl);
15444 if (!processing_template_decl)
15445 init = maybe_constant_init (init);
15446 if (processing_template_decl
15447 ? potential_constant_expression (init)
15448 : reduced_constant_expression_p (init))
15449 DECL_INITIALIZED_BY_CONSTANT_EXPRESSION_P (r)
15450 = TREE_CONSTANT (r) = true;
15451 DECL_INITIAL (r) = init;
15452 if (tree auto_node = type_uses_auto (TREE_TYPE (r)))
15453 TREE_TYPE (r)
15454 = do_auto_deduction (TREE_TYPE (r), init, auto_node,
15455 complain, adc_variable_type);
15456 }
15457 gcc_assert (cp_unevaluated_operand || TREE_STATIC (r)
15458 || decl_constant_var_p (r)
15459 || errorcount || sorrycount);
15460 if (!processing_template_decl
15461 && !TREE_STATIC (r))
15462 r = process_outer_var_ref (r, complain);
15463 }
15464 /* Remember this for subsequent uses. */
15465 if (local_specializations)
15466 register_local_specialization (r, t);
15467 }
15468 if (TREE_CODE (r) == ARGUMENT_PACK_SELECT)
15469 r = argument_pack_select_arg (r);
15470 }
15471 else
15472 r = t;
15473 if (!mark_used (r, complain))
15474 return error_mark_node;
15475 return r;
15476
15477 case NAMESPACE_DECL:
15478 return t;
15479
15480 case OVERLOAD:
15481 /* An OVERLOAD will always be a non-dependent overload set; an
15482 overload set from function scope will just be represented with an
15483 IDENTIFIER_NODE, and from class scope with a BASELINK. */
15484 gcc_assert (!uses_template_parms (t));
15485 /* We must have marked any lookups as persistent. */
15486 gcc_assert (!OVL_LOOKUP_P (t) || OVL_USED_P (t));
15487 return t;
15488
15489 case BASELINK:
15490 return tsubst_baselink (t, current_nonlambda_class_type (),
15491 args, complain, in_decl);
15492
15493 case TEMPLATE_DECL:
15494 if (DECL_TEMPLATE_TEMPLATE_PARM_P (t))
15495 return tsubst (TREE_TYPE (DECL_TEMPLATE_RESULT (t)),
15496 args, complain, in_decl);
15497 else if (DECL_FUNCTION_TEMPLATE_P (t) && DECL_MEMBER_TEMPLATE_P (t))
15498 return tsubst (t, args, complain, in_decl);
15499 else if (DECL_CLASS_SCOPE_P (t)
15500 && uses_template_parms (DECL_CONTEXT (t)))
15501 {
15502 /* Template template argument like the following example need
15503 special treatment:
15504
15505 template <template <class> class TT> struct C {};
15506 template <class T> struct D {
15507 template <class U> struct E {};
15508 C<E> c; // #1
15509 };
15510 D<int> d; // #2
15511
15512 We are processing the template argument `E' in #1 for
15513 the template instantiation #2. Originally, `E' is a
15514 TEMPLATE_DECL with `D<T>' as its DECL_CONTEXT. Now we
15515 have to substitute this with one having context `D<int>'. */
15516
15517 tree context = tsubst (DECL_CONTEXT (t), args, complain, in_decl);
15518 if (dependent_scope_p (context))
15519 {
15520 /* When rewriting a constructor into a deduction guide, a
15521 non-dependent name can become dependent, so memtmpl<args>
15522 becomes context::template memtmpl<args>. */
15523 tree type = tsubst (TREE_TYPE (t), args, complain, in_decl);
15524 return build_qualified_name (type, context, DECL_NAME (t),
15525 /*template*/true);
15526 }
15527 return lookup_field (context, DECL_NAME(t), 0, false);
15528 }
15529 else
15530 /* Ordinary template template argument. */
15531 return t;
15532
15533 case NON_LVALUE_EXPR:
15534 case VIEW_CONVERT_EXPR:
15535 {
15536 /* Handle location wrappers by substituting the wrapped node
15537 first, *then* reusing the resulting type. Doing the type
15538 first ensures that we handle template parameters and
15539 parameter pack expansions. */
15540 gcc_assert (location_wrapper_p (t));
15541 tree op0 = tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl);
15542 return maybe_wrap_with_location (op0, EXPR_LOCATION (t));
15543 }
15544
15545 case CAST_EXPR:
15546 case REINTERPRET_CAST_EXPR:
15547 case CONST_CAST_EXPR:
15548 case STATIC_CAST_EXPR:
15549 case DYNAMIC_CAST_EXPR:
15550 case IMPLICIT_CONV_EXPR:
15551 case CONVERT_EXPR:
15552 case NOP_EXPR:
15553 {
15554 tree type = tsubst (TREE_TYPE (t), args, complain, in_decl);
15555 tree op0 = tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl);
15556 return build1 (code, type, op0);
15557 }
15558
15559 case SIZEOF_EXPR:
15560 if (PACK_EXPANSION_P (TREE_OPERAND (t, 0))
15561 || ARGUMENT_PACK_P (TREE_OPERAND (t, 0)))
15562 {
15563 tree expanded, op = TREE_OPERAND (t, 0);
15564 int len = 0;
15565
15566 if (SIZEOF_EXPR_TYPE_P (t))
15567 op = TREE_TYPE (op);
15568
15569 ++cp_unevaluated_operand;
15570 ++c_inhibit_evaluation_warnings;
15571 /* We only want to compute the number of arguments. */
15572 if (PACK_EXPANSION_P (op))
15573 expanded = tsubst_pack_expansion (op, args, complain, in_decl);
15574 else
15575 expanded = tsubst_template_args (ARGUMENT_PACK_ARGS (op),
15576 args, complain, in_decl);
15577 --cp_unevaluated_operand;
15578 --c_inhibit_evaluation_warnings;
15579
15580 if (TREE_CODE (expanded) == TREE_VEC)
15581 {
15582 len = TREE_VEC_LENGTH (expanded);
15583 /* Set TREE_USED for the benefit of -Wunused. */
15584 for (int i = 0; i < len; i++)
15585 if (DECL_P (TREE_VEC_ELT (expanded, i)))
15586 TREE_USED (TREE_VEC_ELT (expanded, i)) = true;
15587 }
15588
15589 if (expanded == error_mark_node)
15590 return error_mark_node;
15591 else if (PACK_EXPANSION_P (expanded)
15592 || (TREE_CODE (expanded) == TREE_VEC
15593 && pack_expansion_args_count (expanded)))
15594
15595 {
15596 if (PACK_EXPANSION_P (expanded))
15597 /* OK. */;
15598 else if (TREE_VEC_LENGTH (expanded) == 1)
15599 expanded = TREE_VEC_ELT (expanded, 0);
15600 else
15601 expanded = make_argument_pack (expanded);
15602
15603 if (TYPE_P (expanded))
15604 return cxx_sizeof_or_alignof_type (expanded, SIZEOF_EXPR,
15605 false,
15606 complain & tf_error);
15607 else
15608 return cxx_sizeof_or_alignof_expr (expanded, SIZEOF_EXPR,
15609 complain & tf_error);
15610 }
15611 else
15612 return build_int_cst (size_type_node, len);
15613 }
15614 if (SIZEOF_EXPR_TYPE_P (t))
15615 {
15616 r = tsubst (TREE_TYPE (TREE_OPERAND (t, 0)),
15617 args, complain, in_decl);
15618 r = build1 (NOP_EXPR, r, error_mark_node);
15619 r = build1 (SIZEOF_EXPR,
15620 tsubst (TREE_TYPE (t), args, complain, in_decl), r);
15621 SIZEOF_EXPR_TYPE_P (r) = 1;
15622 return r;
15623 }
15624 /* Fall through */
15625
15626 case INDIRECT_REF:
15627 case NEGATE_EXPR:
15628 case TRUTH_NOT_EXPR:
15629 case BIT_NOT_EXPR:
15630 case ADDR_EXPR:
15631 case UNARY_PLUS_EXPR: /* Unary + */
15632 case ALIGNOF_EXPR:
15633 case AT_ENCODE_EXPR:
15634 case ARROW_EXPR:
15635 case THROW_EXPR:
15636 case TYPEID_EXPR:
15637 case REALPART_EXPR:
15638 case IMAGPART_EXPR:
15639 case PAREN_EXPR:
15640 {
15641 tree type = tsubst (TREE_TYPE (t), args, complain, in_decl);
15642 tree op0 = tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl);
15643 r = build1 (code, type, op0);
15644 if (code == ALIGNOF_EXPR)
15645 ALIGNOF_EXPR_STD_P (r) = ALIGNOF_EXPR_STD_P (t);
15646 return r;
15647 }
15648
15649 case COMPONENT_REF:
15650 {
15651 tree object;
15652 tree name;
15653
15654 object = tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl);
15655 name = TREE_OPERAND (t, 1);
15656 if (TREE_CODE (name) == BIT_NOT_EXPR)
15657 {
15658 name = tsubst_copy (TREE_OPERAND (name, 0), args,
15659 complain, in_decl);
15660 name = build1 (BIT_NOT_EXPR, NULL_TREE, name);
15661 }
15662 else if (TREE_CODE (name) == SCOPE_REF
15663 && TREE_CODE (TREE_OPERAND (name, 1)) == BIT_NOT_EXPR)
15664 {
15665 tree base = tsubst_copy (TREE_OPERAND (name, 0), args,
15666 complain, in_decl);
15667 name = TREE_OPERAND (name, 1);
15668 name = tsubst_copy (TREE_OPERAND (name, 0), args,
15669 complain, in_decl);
15670 name = build1 (BIT_NOT_EXPR, NULL_TREE, name);
15671 name = build_qualified_name (/*type=*/NULL_TREE,
15672 base, name,
15673 /*template_p=*/false);
15674 }
15675 else if (BASELINK_P (name))
15676 name = tsubst_baselink (name,
15677 non_reference (TREE_TYPE (object)),
15678 args, complain,
15679 in_decl);
15680 else
15681 name = tsubst_copy (name, args, complain, in_decl);
15682 return build_nt (COMPONENT_REF, object, name, NULL_TREE);
15683 }
15684
15685 case PLUS_EXPR:
15686 case MINUS_EXPR:
15687 case MULT_EXPR:
15688 case TRUNC_DIV_EXPR:
15689 case CEIL_DIV_EXPR:
15690 case FLOOR_DIV_EXPR:
15691 case ROUND_DIV_EXPR:
15692 case EXACT_DIV_EXPR:
15693 case BIT_AND_EXPR:
15694 case BIT_IOR_EXPR:
15695 case BIT_XOR_EXPR:
15696 case TRUNC_MOD_EXPR:
15697 case FLOOR_MOD_EXPR:
15698 case TRUTH_ANDIF_EXPR:
15699 case TRUTH_ORIF_EXPR:
15700 case TRUTH_AND_EXPR:
15701 case TRUTH_OR_EXPR:
15702 case RSHIFT_EXPR:
15703 case LSHIFT_EXPR:
15704 case RROTATE_EXPR:
15705 case LROTATE_EXPR:
15706 case EQ_EXPR:
15707 case NE_EXPR:
15708 case MAX_EXPR:
15709 case MIN_EXPR:
15710 case LE_EXPR:
15711 case GE_EXPR:
15712 case LT_EXPR:
15713 case GT_EXPR:
15714 case COMPOUND_EXPR:
15715 case DOTSTAR_EXPR:
15716 case MEMBER_REF:
15717 case PREDECREMENT_EXPR:
15718 case PREINCREMENT_EXPR:
15719 case POSTDECREMENT_EXPR:
15720 case POSTINCREMENT_EXPR:
15721 {
15722 tree op0 = tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl);
15723 tree op1 = tsubst_copy (TREE_OPERAND (t, 1), args, complain, in_decl);
15724 return build_nt (code, op0, op1);
15725 }
15726
15727 case SCOPE_REF:
15728 {
15729 tree op0 = tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl);
15730 tree op1 = tsubst_copy (TREE_OPERAND (t, 1), args, complain, in_decl);
15731 return build_qualified_name (/*type=*/NULL_TREE, op0, op1,
15732 QUALIFIED_NAME_IS_TEMPLATE (t));
15733 }
15734
15735 case ARRAY_REF:
15736 {
15737 tree op0 = tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl);
15738 tree op1 = tsubst_copy (TREE_OPERAND (t, 1), args, complain, in_decl);
15739 return build_nt (ARRAY_REF, op0, op1, NULL_TREE, NULL_TREE);
15740 }
15741
15742 case CALL_EXPR:
15743 {
15744 int n = VL_EXP_OPERAND_LENGTH (t);
15745 tree result = build_vl_exp (CALL_EXPR, n);
15746 int i;
15747 for (i = 0; i < n; i++)
15748 TREE_OPERAND (t, i) = tsubst_copy (TREE_OPERAND (t, i), args,
15749 complain, in_decl);
15750 return result;
15751 }
15752
15753 case COND_EXPR:
15754 case MODOP_EXPR:
15755 case PSEUDO_DTOR_EXPR:
15756 case VEC_PERM_EXPR:
15757 {
15758 tree op0 = tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl);
15759 tree op1 = tsubst_copy (TREE_OPERAND (t, 1), args, complain, in_decl);
15760 tree op2 = tsubst_copy (TREE_OPERAND (t, 2), args, complain, in_decl);
15761 r = build_nt (code, op0, op1, op2);
15762 TREE_NO_WARNING (r) = TREE_NO_WARNING (t);
15763 return r;
15764 }
15765
15766 case NEW_EXPR:
15767 {
15768 tree op0 = tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl);
15769 tree op1 = tsubst_copy (TREE_OPERAND (t, 1), args, complain, in_decl);
15770 tree op2 = tsubst_copy (TREE_OPERAND (t, 2), args, complain, in_decl);
15771 r = build_nt (code, op0, op1, op2);
15772 NEW_EXPR_USE_GLOBAL (r) = NEW_EXPR_USE_GLOBAL (t);
15773 return r;
15774 }
15775
15776 case DELETE_EXPR:
15777 {
15778 tree op0 = tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl);
15779 tree op1 = tsubst_copy (TREE_OPERAND (t, 1), args, complain, in_decl);
15780 r = build_nt (code, op0, op1);
15781 DELETE_EXPR_USE_GLOBAL (r) = DELETE_EXPR_USE_GLOBAL (t);
15782 DELETE_EXPR_USE_VEC (r) = DELETE_EXPR_USE_VEC (t);
15783 return r;
15784 }
15785
15786 case TEMPLATE_ID_EXPR:
15787 {
15788 /* Substituted template arguments */
15789 tree fn = TREE_OPERAND (t, 0);
15790 tree targs = TREE_OPERAND (t, 1);
15791
15792 fn = tsubst_copy (fn, args, complain, in_decl);
15793 if (targs)
15794 targs = tsubst_template_args (targs, args, complain, in_decl);
15795
15796 return lookup_template_function (fn, targs);
15797 }
15798
15799 case TREE_LIST:
15800 {
15801 tree purpose, value, chain;
15802
15803 if (t == void_list_node)
15804 return t;
15805
15806 purpose = TREE_PURPOSE (t);
15807 if (purpose)
15808 purpose = tsubst_copy (purpose, args, complain, in_decl);
15809 value = TREE_VALUE (t);
15810 if (value)
15811 value = tsubst_copy (value, args, complain, in_decl);
15812 chain = TREE_CHAIN (t);
15813 if (chain && chain != void_type_node)
15814 chain = tsubst_copy (chain, args, complain, in_decl);
15815 if (purpose == TREE_PURPOSE (t)
15816 && value == TREE_VALUE (t)
15817 && chain == TREE_CHAIN (t))
15818 return t;
15819 return tree_cons (purpose, value, chain);
15820 }
15821
15822 case RECORD_TYPE:
15823 case UNION_TYPE:
15824 case ENUMERAL_TYPE:
15825 case INTEGER_TYPE:
15826 case TEMPLATE_TYPE_PARM:
15827 case TEMPLATE_TEMPLATE_PARM:
15828 case BOUND_TEMPLATE_TEMPLATE_PARM:
15829 case TEMPLATE_PARM_INDEX:
15830 case POINTER_TYPE:
15831 case REFERENCE_TYPE:
15832 case OFFSET_TYPE:
15833 case FUNCTION_TYPE:
15834 case METHOD_TYPE:
15835 case ARRAY_TYPE:
15836 case TYPENAME_TYPE:
15837 case UNBOUND_CLASS_TEMPLATE:
15838 case TYPEOF_TYPE:
15839 case DECLTYPE_TYPE:
15840 case TYPE_DECL:
15841 return tsubst (t, args, complain, in_decl);
15842
15843 case USING_DECL:
15844 t = DECL_NAME (t);
15845 /* Fall through. */
15846 case IDENTIFIER_NODE:
15847 if (IDENTIFIER_CONV_OP_P (t))
15848 {
15849 tree new_type = tsubst (TREE_TYPE (t), args, complain, in_decl);
15850 return make_conv_op_name (new_type);
15851 }
15852 else
15853 return t;
15854
15855 case CONSTRUCTOR:
15856 /* This is handled by tsubst_copy_and_build. */
15857 gcc_unreachable ();
15858
15859 case VA_ARG_EXPR:
15860 {
15861 tree op0 = tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl);
15862 tree type = tsubst (TREE_TYPE (t), args, complain, in_decl);
15863 return build_x_va_arg (EXPR_LOCATION (t), op0, type);
15864 }
15865
15866 case CLEANUP_POINT_EXPR:
15867 /* We shouldn't have built any of these during initial template
15868 generation. Instead, they should be built during instantiation
15869 in response to the saved STMT_IS_FULL_EXPR_P setting. */
15870 gcc_unreachable ();
15871
15872 case OFFSET_REF:
15873 {
15874 tree type = tsubst (TREE_TYPE (t), args, complain, in_decl);
15875 tree op0 = tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl);
15876 tree op1 = tsubst_copy (TREE_OPERAND (t, 1), args, complain, in_decl);
15877 r = build2 (code, type, op0, op1);
15878 PTRMEM_OK_P (r) = PTRMEM_OK_P (t);
15879 if (!mark_used (TREE_OPERAND (r, 1), complain)
15880 && !(complain & tf_error))
15881 return error_mark_node;
15882 return r;
15883 }
15884
15885 case EXPR_PACK_EXPANSION:
15886 error ("invalid use of pack expansion expression");
15887 return error_mark_node;
15888
15889 case NONTYPE_ARGUMENT_PACK:
15890 error ("use %<...%> to expand argument pack");
15891 return error_mark_node;
15892
15893 case VOID_CST:
15894 gcc_checking_assert (t == void_node && VOID_TYPE_P (TREE_TYPE (t)));
15895 return t;
15896
15897 case INTEGER_CST:
15898 case REAL_CST:
15899 case STRING_CST:
15900 case COMPLEX_CST:
15901 {
15902 /* Instantiate any typedefs in the type. */
15903 tree type = tsubst (TREE_TYPE (t), args, complain, in_decl);
15904 r = fold_convert (type, t);
15905 gcc_assert (TREE_CODE (r) == code);
15906 return r;
15907 }
15908
15909 case PTRMEM_CST:
15910 /* These can sometimes show up in a partial instantiation, but never
15911 involve template parms. */
15912 gcc_assert (!uses_template_parms (t));
15913 return t;
15914
15915 case UNARY_LEFT_FOLD_EXPR:
15916 return tsubst_unary_left_fold (t, args, complain, in_decl);
15917 case UNARY_RIGHT_FOLD_EXPR:
15918 return tsubst_unary_right_fold (t, args, complain, in_decl);
15919 case BINARY_LEFT_FOLD_EXPR:
15920 return tsubst_binary_left_fold (t, args, complain, in_decl);
15921 case BINARY_RIGHT_FOLD_EXPR:
15922 return tsubst_binary_right_fold (t, args, complain, in_decl);
15923 case PREDICT_EXPR:
15924 return t;
15925
15926 case DEBUG_BEGIN_STMT:
15927 /* ??? There's no point in copying it for now, but maybe some
15928 day it will contain more information, such as a pointer back
15929 to the containing function, inlined copy or so. */
15930 return t;
15931
15932 default:
15933 /* We shouldn't get here, but keep going if !flag_checking. */
15934 if (flag_checking)
15935 gcc_unreachable ();
15936 return t;
15937 }
15938 }
15939
15940 /* Helper function for tsubst_omp_clauses, used for instantiation of
15941 OMP_CLAUSE_DECL of clauses. */
15942
15943 static tree
15944 tsubst_omp_clause_decl (tree decl, tree args, tsubst_flags_t complain,
15945 tree in_decl)
15946 {
15947 if (decl == NULL_TREE)
15948 return NULL_TREE;
15949
15950 /* Handle an OpenMP array section represented as a TREE_LIST (or
15951 OMP_CLAUSE_DEPEND_KIND). An OMP_CLAUSE_DEPEND (with a depend
15952 kind of OMP_CLAUSE_DEPEND_SINK) can also be represented as a
15953 TREE_LIST. We can handle it exactly the same as an array section
15954 (purpose, value, and a chain), even though the nomenclature
15955 (low_bound, length, etc) is different. */
15956 if (TREE_CODE (decl) == TREE_LIST)
15957 {
15958 tree low_bound
15959 = tsubst_expr (TREE_PURPOSE (decl), args, complain, in_decl,
15960 /*integral_constant_expression_p=*/false);
15961 tree length = tsubst_expr (TREE_VALUE (decl), args, complain, in_decl,
15962 /*integral_constant_expression_p=*/false);
15963 tree chain = tsubst_omp_clause_decl (TREE_CHAIN (decl), args, complain,
15964 in_decl);
15965 if (TREE_PURPOSE (decl) == low_bound
15966 && TREE_VALUE (decl) == length
15967 && TREE_CHAIN (decl) == chain)
15968 return decl;
15969 tree ret = tree_cons (low_bound, length, chain);
15970 OMP_CLAUSE_DEPEND_SINK_NEGATIVE (ret)
15971 = OMP_CLAUSE_DEPEND_SINK_NEGATIVE (decl);
15972 return ret;
15973 }
15974 tree ret = tsubst_expr (decl, args, complain, in_decl,
15975 /*integral_constant_expression_p=*/false);
15976 /* Undo convert_from_reference tsubst_expr could have called. */
15977 if (decl
15978 && REFERENCE_REF_P (ret)
15979 && !REFERENCE_REF_P (decl))
15980 ret = TREE_OPERAND (ret, 0);
15981 return ret;
15982 }
15983
15984 /* Like tsubst_copy, but specifically for OpenMP clauses. */
15985
15986 static tree
15987 tsubst_omp_clauses (tree clauses, enum c_omp_region_type ort,
15988 tree args, tsubst_flags_t complain, tree in_decl)
15989 {
15990 tree new_clauses = NULL_TREE, nc, oc;
15991 tree linear_no_step = NULL_TREE;
15992
15993 for (oc = clauses; oc ; oc = OMP_CLAUSE_CHAIN (oc))
15994 {
15995 nc = copy_node (oc);
15996 OMP_CLAUSE_CHAIN (nc) = new_clauses;
15997 new_clauses = nc;
15998
15999 switch (OMP_CLAUSE_CODE (nc))
16000 {
16001 case OMP_CLAUSE_LASTPRIVATE:
16002 if (OMP_CLAUSE_LASTPRIVATE_STMT (oc))
16003 {
16004 OMP_CLAUSE_LASTPRIVATE_STMT (nc) = push_stmt_list ();
16005 tsubst_expr (OMP_CLAUSE_LASTPRIVATE_STMT (oc), args, complain,
16006 in_decl, /*integral_constant_expression_p=*/false);
16007 OMP_CLAUSE_LASTPRIVATE_STMT (nc)
16008 = pop_stmt_list (OMP_CLAUSE_LASTPRIVATE_STMT (nc));
16009 }
16010 /* FALLTHRU */
16011 case OMP_CLAUSE_PRIVATE:
16012 case OMP_CLAUSE_SHARED:
16013 case OMP_CLAUSE_FIRSTPRIVATE:
16014 case OMP_CLAUSE_COPYIN:
16015 case OMP_CLAUSE_COPYPRIVATE:
16016 case OMP_CLAUSE_UNIFORM:
16017 case OMP_CLAUSE_DEPEND:
16018 case OMP_CLAUSE_FROM:
16019 case OMP_CLAUSE_TO:
16020 case OMP_CLAUSE_MAP:
16021 case OMP_CLAUSE_USE_DEVICE_PTR:
16022 case OMP_CLAUSE_IS_DEVICE_PTR:
16023 OMP_CLAUSE_DECL (nc)
16024 = tsubst_omp_clause_decl (OMP_CLAUSE_DECL (oc), args, complain,
16025 in_decl);
16026 break;
16027 case OMP_CLAUSE_TILE:
16028 case OMP_CLAUSE_IF:
16029 case OMP_CLAUSE_NUM_THREADS:
16030 case OMP_CLAUSE_SCHEDULE:
16031 case OMP_CLAUSE_COLLAPSE:
16032 case OMP_CLAUSE_FINAL:
16033 case OMP_CLAUSE_DEVICE:
16034 case OMP_CLAUSE_DIST_SCHEDULE:
16035 case OMP_CLAUSE_NUM_TEAMS:
16036 case OMP_CLAUSE_THREAD_LIMIT:
16037 case OMP_CLAUSE_SAFELEN:
16038 case OMP_CLAUSE_SIMDLEN:
16039 case OMP_CLAUSE_NUM_TASKS:
16040 case OMP_CLAUSE_GRAINSIZE:
16041 case OMP_CLAUSE_PRIORITY:
16042 case OMP_CLAUSE_ORDERED:
16043 case OMP_CLAUSE_HINT:
16044 case OMP_CLAUSE_NUM_GANGS:
16045 case OMP_CLAUSE_NUM_WORKERS:
16046 case OMP_CLAUSE_VECTOR_LENGTH:
16047 case OMP_CLAUSE_WORKER:
16048 case OMP_CLAUSE_VECTOR:
16049 case OMP_CLAUSE_ASYNC:
16050 case OMP_CLAUSE_WAIT:
16051 OMP_CLAUSE_OPERAND (nc, 0)
16052 = tsubst_expr (OMP_CLAUSE_OPERAND (oc, 0), args, complain,
16053 in_decl, /*integral_constant_expression_p=*/false);
16054 break;
16055 case OMP_CLAUSE_REDUCTION:
16056 if (OMP_CLAUSE_REDUCTION_PLACEHOLDER (oc))
16057 {
16058 tree placeholder = OMP_CLAUSE_REDUCTION_PLACEHOLDER (oc);
16059 if (TREE_CODE (placeholder) == SCOPE_REF)
16060 {
16061 tree scope = tsubst (TREE_OPERAND (placeholder, 0), args,
16062 complain, in_decl);
16063 OMP_CLAUSE_REDUCTION_PLACEHOLDER (nc)
16064 = build_qualified_name (NULL_TREE, scope,
16065 TREE_OPERAND (placeholder, 1),
16066 false);
16067 }
16068 else
16069 gcc_assert (identifier_p (placeholder));
16070 }
16071 OMP_CLAUSE_DECL (nc)
16072 = tsubst_omp_clause_decl (OMP_CLAUSE_DECL (oc), args, complain,
16073 in_decl);
16074 break;
16075 case OMP_CLAUSE_GANG:
16076 case OMP_CLAUSE_ALIGNED:
16077 OMP_CLAUSE_DECL (nc)
16078 = tsubst_omp_clause_decl (OMP_CLAUSE_DECL (oc), args, complain,
16079 in_decl);
16080 OMP_CLAUSE_OPERAND (nc, 1)
16081 = tsubst_expr (OMP_CLAUSE_OPERAND (oc, 1), args, complain,
16082 in_decl, /*integral_constant_expression_p=*/false);
16083 break;
16084 case OMP_CLAUSE_LINEAR:
16085 OMP_CLAUSE_DECL (nc)
16086 = tsubst_omp_clause_decl (OMP_CLAUSE_DECL (oc), args, complain,
16087 in_decl);
16088 if (OMP_CLAUSE_LINEAR_STEP (oc) == NULL_TREE)
16089 {
16090 gcc_assert (!linear_no_step);
16091 linear_no_step = nc;
16092 }
16093 else if (OMP_CLAUSE_LINEAR_VARIABLE_STRIDE (oc))
16094 OMP_CLAUSE_LINEAR_STEP (nc)
16095 = tsubst_omp_clause_decl (OMP_CLAUSE_LINEAR_STEP (oc), args,
16096 complain, in_decl);
16097 else
16098 OMP_CLAUSE_LINEAR_STEP (nc)
16099 = tsubst_expr (OMP_CLAUSE_LINEAR_STEP (oc), args, complain,
16100 in_decl,
16101 /*integral_constant_expression_p=*/false);
16102 break;
16103 case OMP_CLAUSE_NOWAIT:
16104 case OMP_CLAUSE_DEFAULT:
16105 case OMP_CLAUSE_UNTIED:
16106 case OMP_CLAUSE_MERGEABLE:
16107 case OMP_CLAUSE_INBRANCH:
16108 case OMP_CLAUSE_NOTINBRANCH:
16109 case OMP_CLAUSE_PROC_BIND:
16110 case OMP_CLAUSE_FOR:
16111 case OMP_CLAUSE_PARALLEL:
16112 case OMP_CLAUSE_SECTIONS:
16113 case OMP_CLAUSE_TASKGROUP:
16114 case OMP_CLAUSE_NOGROUP:
16115 case OMP_CLAUSE_THREADS:
16116 case OMP_CLAUSE_SIMD:
16117 case OMP_CLAUSE_DEFAULTMAP:
16118 case OMP_CLAUSE_INDEPENDENT:
16119 case OMP_CLAUSE_AUTO:
16120 case OMP_CLAUSE_SEQ:
16121 break;
16122 default:
16123 gcc_unreachable ();
16124 }
16125 if ((ort & C_ORT_OMP_DECLARE_SIMD) == C_ORT_OMP)
16126 switch (OMP_CLAUSE_CODE (nc))
16127 {
16128 case OMP_CLAUSE_SHARED:
16129 case OMP_CLAUSE_PRIVATE:
16130 case OMP_CLAUSE_FIRSTPRIVATE:
16131 case OMP_CLAUSE_LASTPRIVATE:
16132 case OMP_CLAUSE_COPYPRIVATE:
16133 case OMP_CLAUSE_LINEAR:
16134 case OMP_CLAUSE_REDUCTION:
16135 case OMP_CLAUSE_USE_DEVICE_PTR:
16136 case OMP_CLAUSE_IS_DEVICE_PTR:
16137 /* tsubst_expr on SCOPE_REF results in returning
16138 finish_non_static_data_member result. Undo that here. */
16139 if (TREE_CODE (OMP_CLAUSE_DECL (oc)) == SCOPE_REF
16140 && (TREE_CODE (TREE_OPERAND (OMP_CLAUSE_DECL (oc), 1))
16141 == IDENTIFIER_NODE))
16142 {
16143 tree t = OMP_CLAUSE_DECL (nc);
16144 tree v = t;
16145 while (v)
16146 switch (TREE_CODE (v))
16147 {
16148 case COMPONENT_REF:
16149 case MEM_REF:
16150 case INDIRECT_REF:
16151 CASE_CONVERT:
16152 case POINTER_PLUS_EXPR:
16153 v = TREE_OPERAND (v, 0);
16154 continue;
16155 case PARM_DECL:
16156 if (DECL_CONTEXT (v) == current_function_decl
16157 && DECL_ARTIFICIAL (v)
16158 && DECL_NAME (v) == this_identifier)
16159 OMP_CLAUSE_DECL (nc) = TREE_OPERAND (t, 1);
16160 /* FALLTHRU */
16161 default:
16162 v = NULL_TREE;
16163 break;
16164 }
16165 }
16166 else if (VAR_P (OMP_CLAUSE_DECL (oc))
16167 && DECL_HAS_VALUE_EXPR_P (OMP_CLAUSE_DECL (oc))
16168 && DECL_ARTIFICIAL (OMP_CLAUSE_DECL (oc))
16169 && DECL_LANG_SPECIFIC (OMP_CLAUSE_DECL (oc))
16170 && DECL_OMP_PRIVATIZED_MEMBER (OMP_CLAUSE_DECL (oc)))
16171 {
16172 tree decl = OMP_CLAUSE_DECL (nc);
16173 if (VAR_P (decl))
16174 {
16175 retrofit_lang_decl (decl);
16176 DECL_OMP_PRIVATIZED_MEMBER (decl) = 1;
16177 }
16178 }
16179 break;
16180 default:
16181 break;
16182 }
16183 }
16184
16185 new_clauses = nreverse (new_clauses);
16186 if (ort != C_ORT_OMP_DECLARE_SIMD)
16187 {
16188 new_clauses = finish_omp_clauses (new_clauses, ort);
16189 if (linear_no_step)
16190 for (nc = new_clauses; nc; nc = OMP_CLAUSE_CHAIN (nc))
16191 if (nc == linear_no_step)
16192 {
16193 OMP_CLAUSE_LINEAR_STEP (nc) = NULL_TREE;
16194 break;
16195 }
16196 }
16197 return new_clauses;
16198 }
16199
16200 /* Like tsubst_copy_and_build, but unshare TREE_LIST nodes. */
16201
16202 static tree
16203 tsubst_copy_asm_operands (tree t, tree args, tsubst_flags_t complain,
16204 tree in_decl)
16205 {
16206 #define RECUR(t) tsubst_copy_asm_operands (t, args, complain, in_decl)
16207
16208 tree purpose, value, chain;
16209
16210 if (t == NULL)
16211 return t;
16212
16213 if (TREE_CODE (t) != TREE_LIST)
16214 return tsubst_copy_and_build (t, args, complain, in_decl,
16215 /*function_p=*/false,
16216 /*integral_constant_expression_p=*/false);
16217
16218 if (t == void_list_node)
16219 return t;
16220
16221 purpose = TREE_PURPOSE (t);
16222 if (purpose)
16223 purpose = RECUR (purpose);
16224 value = TREE_VALUE (t);
16225 if (value)
16226 {
16227 if (TREE_CODE (value) != LABEL_DECL)
16228 value = RECUR (value);
16229 else
16230 {
16231 value = lookup_label (DECL_NAME (value));
16232 gcc_assert (TREE_CODE (value) == LABEL_DECL);
16233 TREE_USED (value) = 1;
16234 }
16235 }
16236 chain = TREE_CHAIN (t);
16237 if (chain && chain != void_type_node)
16238 chain = RECUR (chain);
16239 return tree_cons (purpose, value, chain);
16240 #undef RECUR
16241 }
16242
16243 /* Used to temporarily communicate the list of #pragma omp parallel
16244 clauses to #pragma omp for instantiation if they are combined
16245 together. */
16246
16247 static tree *omp_parallel_combined_clauses;
16248
16249 /* Substitute one OMP_FOR iterator. */
16250
16251 static void
16252 tsubst_omp_for_iterator (tree t, int i, tree declv, tree orig_declv,
16253 tree initv, tree condv, tree incrv, tree *clauses,
16254 tree args, tsubst_flags_t complain, tree in_decl,
16255 bool integral_constant_expression_p)
16256 {
16257 #define RECUR(NODE) \
16258 tsubst_expr ((NODE), args, complain, in_decl, \
16259 integral_constant_expression_p)
16260 tree decl, init, cond, incr;
16261
16262 init = TREE_VEC_ELT (OMP_FOR_INIT (t), i);
16263 gcc_assert (TREE_CODE (init) == MODIFY_EXPR);
16264
16265 if (orig_declv && OMP_FOR_ORIG_DECLS (t))
16266 {
16267 tree o = TREE_VEC_ELT (OMP_FOR_ORIG_DECLS (t), i);
16268 TREE_VEC_ELT (orig_declv, i) = RECUR (o);
16269 }
16270
16271 decl = TREE_OPERAND (init, 0);
16272 init = TREE_OPERAND (init, 1);
16273 tree decl_expr = NULL_TREE;
16274 if (init && TREE_CODE (init) == DECL_EXPR)
16275 {
16276 /* We need to jump through some hoops to handle declarations in the
16277 init-statement, since we might need to handle auto deduction,
16278 but we need to keep control of initialization. */
16279 decl_expr = init;
16280 init = DECL_INITIAL (DECL_EXPR_DECL (init));
16281 decl = tsubst_decl (decl, args, complain);
16282 }
16283 else
16284 {
16285 if (TREE_CODE (decl) == SCOPE_REF)
16286 {
16287 decl = RECUR (decl);
16288 if (TREE_CODE (decl) == COMPONENT_REF)
16289 {
16290 tree v = decl;
16291 while (v)
16292 switch (TREE_CODE (v))
16293 {
16294 case COMPONENT_REF:
16295 case MEM_REF:
16296 case INDIRECT_REF:
16297 CASE_CONVERT:
16298 case POINTER_PLUS_EXPR:
16299 v = TREE_OPERAND (v, 0);
16300 continue;
16301 case PARM_DECL:
16302 if (DECL_CONTEXT (v) == current_function_decl
16303 && DECL_ARTIFICIAL (v)
16304 && DECL_NAME (v) == this_identifier)
16305 {
16306 decl = TREE_OPERAND (decl, 1);
16307 decl = omp_privatize_field (decl, false);
16308 }
16309 /* FALLTHRU */
16310 default:
16311 v = NULL_TREE;
16312 break;
16313 }
16314 }
16315 }
16316 else
16317 decl = RECUR (decl);
16318 }
16319 init = RECUR (init);
16320
16321 tree auto_node = type_uses_auto (TREE_TYPE (decl));
16322 if (auto_node && init)
16323 TREE_TYPE (decl)
16324 = do_auto_deduction (TREE_TYPE (decl), init, auto_node, complain);
16325
16326 gcc_assert (!type_dependent_expression_p (decl));
16327
16328 if (!CLASS_TYPE_P (TREE_TYPE (decl)))
16329 {
16330 if (decl_expr)
16331 {
16332 /* Declare the variable, but don't let that initialize it. */
16333 tree init_sav = DECL_INITIAL (DECL_EXPR_DECL (decl_expr));
16334 DECL_INITIAL (DECL_EXPR_DECL (decl_expr)) = NULL_TREE;
16335 RECUR (decl_expr);
16336 DECL_INITIAL (DECL_EXPR_DECL (decl_expr)) = init_sav;
16337 }
16338
16339 cond = RECUR (TREE_VEC_ELT (OMP_FOR_COND (t), i));
16340 incr = TREE_VEC_ELT (OMP_FOR_INCR (t), i);
16341 if (TREE_CODE (incr) == MODIFY_EXPR)
16342 {
16343 tree lhs = RECUR (TREE_OPERAND (incr, 0));
16344 tree rhs = RECUR (TREE_OPERAND (incr, 1));
16345 incr = build_x_modify_expr (EXPR_LOCATION (incr), lhs,
16346 NOP_EXPR, rhs, complain);
16347 }
16348 else
16349 incr = RECUR (incr);
16350 TREE_VEC_ELT (declv, i) = decl;
16351 TREE_VEC_ELT (initv, i) = init;
16352 TREE_VEC_ELT (condv, i) = cond;
16353 TREE_VEC_ELT (incrv, i) = incr;
16354 return;
16355 }
16356
16357 if (decl_expr)
16358 {
16359 /* Declare and initialize the variable. */
16360 RECUR (decl_expr);
16361 init = NULL_TREE;
16362 }
16363 else if (init)
16364 {
16365 tree *pc;
16366 int j;
16367 for (j = (omp_parallel_combined_clauses == NULL ? 1 : 0); j < 2; j++)
16368 {
16369 for (pc = j ? clauses : omp_parallel_combined_clauses; *pc; )
16370 {
16371 if (OMP_CLAUSE_CODE (*pc) == OMP_CLAUSE_PRIVATE
16372 && OMP_CLAUSE_DECL (*pc) == decl)
16373 break;
16374 else if (OMP_CLAUSE_CODE (*pc) == OMP_CLAUSE_LASTPRIVATE
16375 && OMP_CLAUSE_DECL (*pc) == decl)
16376 {
16377 if (j)
16378 break;
16379 /* Move lastprivate (decl) clause to OMP_FOR_CLAUSES. */
16380 tree c = *pc;
16381 *pc = OMP_CLAUSE_CHAIN (c);
16382 OMP_CLAUSE_CHAIN (c) = *clauses;
16383 *clauses = c;
16384 }
16385 else if (OMP_CLAUSE_CODE (*pc) == OMP_CLAUSE_FIRSTPRIVATE
16386 && OMP_CLAUSE_DECL (*pc) == decl)
16387 {
16388 error ("iteration variable %qD should not be firstprivate",
16389 decl);
16390 *pc = OMP_CLAUSE_CHAIN (*pc);
16391 }
16392 else if (OMP_CLAUSE_CODE (*pc) == OMP_CLAUSE_REDUCTION
16393 && OMP_CLAUSE_DECL (*pc) == decl)
16394 {
16395 error ("iteration variable %qD should not be reduction",
16396 decl);
16397 *pc = OMP_CLAUSE_CHAIN (*pc);
16398 }
16399 else
16400 pc = &OMP_CLAUSE_CHAIN (*pc);
16401 }
16402 if (*pc)
16403 break;
16404 }
16405 if (*pc == NULL_TREE)
16406 {
16407 tree c = build_omp_clause (input_location, OMP_CLAUSE_PRIVATE);
16408 OMP_CLAUSE_DECL (c) = decl;
16409 c = finish_omp_clauses (c, C_ORT_OMP);
16410 if (c)
16411 {
16412 OMP_CLAUSE_CHAIN (c) = *clauses;
16413 *clauses = c;
16414 }
16415 }
16416 }
16417 cond = TREE_VEC_ELT (OMP_FOR_COND (t), i);
16418 if (COMPARISON_CLASS_P (cond))
16419 {
16420 tree op0 = RECUR (TREE_OPERAND (cond, 0));
16421 tree op1 = RECUR (TREE_OPERAND (cond, 1));
16422 cond = build2 (TREE_CODE (cond), boolean_type_node, op0, op1);
16423 }
16424 else
16425 cond = RECUR (cond);
16426 incr = TREE_VEC_ELT (OMP_FOR_INCR (t), i);
16427 switch (TREE_CODE (incr))
16428 {
16429 case PREINCREMENT_EXPR:
16430 case PREDECREMENT_EXPR:
16431 case POSTINCREMENT_EXPR:
16432 case POSTDECREMENT_EXPR:
16433 incr = build2 (TREE_CODE (incr), TREE_TYPE (decl),
16434 RECUR (TREE_OPERAND (incr, 0)), NULL_TREE);
16435 break;
16436 case MODIFY_EXPR:
16437 if (TREE_CODE (TREE_OPERAND (incr, 1)) == PLUS_EXPR
16438 || TREE_CODE (TREE_OPERAND (incr, 1)) == MINUS_EXPR)
16439 {
16440 tree rhs = TREE_OPERAND (incr, 1);
16441 tree lhs = RECUR (TREE_OPERAND (incr, 0));
16442 tree rhs0 = RECUR (TREE_OPERAND (rhs, 0));
16443 tree rhs1 = RECUR (TREE_OPERAND (rhs, 1));
16444 incr = build2 (MODIFY_EXPR, TREE_TYPE (decl), lhs,
16445 build2 (TREE_CODE (rhs), TREE_TYPE (decl),
16446 rhs0, rhs1));
16447 }
16448 else
16449 incr = RECUR (incr);
16450 break;
16451 case MODOP_EXPR:
16452 if (TREE_CODE (TREE_OPERAND (incr, 1)) == PLUS_EXPR
16453 || TREE_CODE (TREE_OPERAND (incr, 1)) == MINUS_EXPR)
16454 {
16455 tree lhs = RECUR (TREE_OPERAND (incr, 0));
16456 incr = build2 (MODIFY_EXPR, TREE_TYPE (decl), lhs,
16457 build2 (TREE_CODE (TREE_OPERAND (incr, 1)),
16458 TREE_TYPE (decl), lhs,
16459 RECUR (TREE_OPERAND (incr, 2))));
16460 }
16461 else if (TREE_CODE (TREE_OPERAND (incr, 1)) == NOP_EXPR
16462 && (TREE_CODE (TREE_OPERAND (incr, 2)) == PLUS_EXPR
16463 || (TREE_CODE (TREE_OPERAND (incr, 2)) == MINUS_EXPR)))
16464 {
16465 tree rhs = TREE_OPERAND (incr, 2);
16466 tree lhs = RECUR (TREE_OPERAND (incr, 0));
16467 tree rhs0 = RECUR (TREE_OPERAND (rhs, 0));
16468 tree rhs1 = RECUR (TREE_OPERAND (rhs, 1));
16469 incr = build2 (MODIFY_EXPR, TREE_TYPE (decl), lhs,
16470 build2 (TREE_CODE (rhs), TREE_TYPE (decl),
16471 rhs0, rhs1));
16472 }
16473 else
16474 incr = RECUR (incr);
16475 break;
16476 default:
16477 incr = RECUR (incr);
16478 break;
16479 }
16480
16481 TREE_VEC_ELT (declv, i) = decl;
16482 TREE_VEC_ELT (initv, i) = init;
16483 TREE_VEC_ELT (condv, i) = cond;
16484 TREE_VEC_ELT (incrv, i) = incr;
16485 #undef RECUR
16486 }
16487
16488 /* Helper function of tsubst_expr, find OMP_TEAMS inside
16489 of OMP_TARGET's body. */
16490
16491 static tree
16492 tsubst_find_omp_teams (tree *tp, int *walk_subtrees, void *)
16493 {
16494 *walk_subtrees = 0;
16495 switch (TREE_CODE (*tp))
16496 {
16497 case OMP_TEAMS:
16498 return *tp;
16499 case BIND_EXPR:
16500 case STATEMENT_LIST:
16501 *walk_subtrees = 1;
16502 break;
16503 default:
16504 break;
16505 }
16506 return NULL_TREE;
16507 }
16508
16509 /* Helper function for tsubst_expr. For decomposition declaration
16510 artificial base DECL, which is tsubsted PATTERN_DECL, tsubst
16511 also the corresponding decls representing the identifiers
16512 of the decomposition declaration. Return DECL if successful
16513 or error_mark_node otherwise, set *FIRST to the first decl
16514 in the list chained through DECL_CHAIN and *CNT to the number
16515 of such decls. */
16516
16517 static tree
16518 tsubst_decomp_names (tree decl, tree pattern_decl, tree args,
16519 tsubst_flags_t complain, tree in_decl, tree *first,
16520 unsigned int *cnt)
16521 {
16522 tree decl2, decl3, prev = decl;
16523 *cnt = 0;
16524 gcc_assert (DECL_NAME (decl) == NULL_TREE);
16525 for (decl2 = DECL_CHAIN (pattern_decl);
16526 decl2
16527 && VAR_P (decl2)
16528 && DECL_DECOMPOSITION_P (decl2)
16529 && DECL_NAME (decl2);
16530 decl2 = DECL_CHAIN (decl2))
16531 {
16532 if (TREE_TYPE (decl2) == error_mark_node && *cnt == 0)
16533 {
16534 gcc_assert (errorcount);
16535 return error_mark_node;
16536 }
16537 (*cnt)++;
16538 gcc_assert (DECL_DECOMP_BASE (decl2) == pattern_decl);
16539 gcc_assert (DECL_HAS_VALUE_EXPR_P (decl2));
16540 tree v = DECL_VALUE_EXPR (decl2);
16541 DECL_HAS_VALUE_EXPR_P (decl2) = 0;
16542 SET_DECL_VALUE_EXPR (decl2, NULL_TREE);
16543 decl3 = tsubst (decl2, args, complain, in_decl);
16544 SET_DECL_VALUE_EXPR (decl2, v);
16545 DECL_HAS_VALUE_EXPR_P (decl2) = 1;
16546 if (VAR_P (decl3))
16547 DECL_TEMPLATE_INSTANTIATED (decl3) = 1;
16548 else
16549 {
16550 gcc_assert (errorcount);
16551 decl = error_mark_node;
16552 continue;
16553 }
16554 maybe_push_decl (decl3);
16555 if (error_operand_p (decl3))
16556 decl = error_mark_node;
16557 else if (decl != error_mark_node
16558 && DECL_CHAIN (decl3) != prev
16559 && decl != prev)
16560 {
16561 gcc_assert (errorcount);
16562 decl = error_mark_node;
16563 }
16564 else
16565 prev = decl3;
16566 }
16567 *first = prev;
16568 return decl;
16569 }
16570
16571 /* Like tsubst_copy for expressions, etc. but also does semantic
16572 processing. */
16573
16574 tree
16575 tsubst_expr (tree t, tree args, tsubst_flags_t complain, tree in_decl,
16576 bool integral_constant_expression_p)
16577 {
16578 #define RETURN(EXP) do { r = (EXP); goto out; } while(0)
16579 #define RECUR(NODE) \
16580 tsubst_expr ((NODE), args, complain, in_decl, \
16581 integral_constant_expression_p)
16582
16583 tree stmt, tmp;
16584 tree r;
16585 location_t loc;
16586
16587 if (t == NULL_TREE || t == error_mark_node)
16588 return t;
16589
16590 loc = input_location;
16591 if (EXPR_HAS_LOCATION (t))
16592 input_location = EXPR_LOCATION (t);
16593 if (STATEMENT_CODE_P (TREE_CODE (t)))
16594 current_stmt_tree ()->stmts_are_full_exprs_p = STMT_IS_FULL_EXPR_P (t);
16595
16596 switch (TREE_CODE (t))
16597 {
16598 case STATEMENT_LIST:
16599 {
16600 tree_stmt_iterator i;
16601 for (i = tsi_start (t); !tsi_end_p (i); tsi_next (&i))
16602 RECUR (tsi_stmt (i));
16603 break;
16604 }
16605
16606 case CTOR_INITIALIZER:
16607 finish_mem_initializers (tsubst_initializer_list
16608 (TREE_OPERAND (t, 0), args));
16609 break;
16610
16611 case RETURN_EXPR:
16612 finish_return_stmt (RECUR (TREE_OPERAND (t, 0)));
16613 break;
16614
16615 case EXPR_STMT:
16616 tmp = RECUR (EXPR_STMT_EXPR (t));
16617 if (EXPR_STMT_STMT_EXPR_RESULT (t))
16618 finish_stmt_expr_expr (tmp, cur_stmt_expr);
16619 else
16620 finish_expr_stmt (tmp);
16621 break;
16622
16623 case USING_STMT:
16624 finish_local_using_directive (USING_STMT_NAMESPACE (t),
16625 /*attribs=*/NULL_TREE);
16626 break;
16627
16628 case DECL_EXPR:
16629 {
16630 tree decl, pattern_decl;
16631 tree init;
16632
16633 pattern_decl = decl = DECL_EXPR_DECL (t);
16634 if (TREE_CODE (decl) == LABEL_DECL)
16635 finish_label_decl (DECL_NAME (decl));
16636 else if (TREE_CODE (decl) == USING_DECL)
16637 {
16638 tree scope = USING_DECL_SCOPE (decl);
16639 tree name = DECL_NAME (decl);
16640
16641 scope = tsubst (scope, args, complain, in_decl);
16642 decl = lookup_qualified_name (scope, name,
16643 /*is_type_p=*/false,
16644 /*complain=*/false);
16645 if (decl == error_mark_node || TREE_CODE (decl) == TREE_LIST)
16646 qualified_name_lookup_error (scope, name, decl, input_location);
16647 else
16648 finish_local_using_decl (decl, scope, name);
16649 }
16650 else if (is_capture_proxy (decl)
16651 && !DECL_TEMPLATE_INSTANTIATION (current_function_decl))
16652 {
16653 /* We're in tsubst_lambda_expr, we've already inserted a new
16654 capture proxy, so look it up and register it. */
16655 tree inst;
16656 if (DECL_PACK_P (decl))
16657 {
16658 inst = (retrieve_local_specialization
16659 (DECL_CAPTURED_VARIABLE (decl)));
16660 gcc_assert (TREE_CODE (inst) == NONTYPE_ARGUMENT_PACK);
16661 }
16662 else
16663 {
16664 inst = lookup_name_real (DECL_NAME (decl), 0, 0,
16665 /*block_p=*/true, 0, LOOKUP_HIDDEN);
16666 gcc_assert (inst != decl && is_capture_proxy (inst));
16667 }
16668 register_local_specialization (inst, decl);
16669 break;
16670 }
16671 else if (DECL_IMPLICIT_TYPEDEF_P (decl)
16672 && LAMBDA_TYPE_P (TREE_TYPE (decl)))
16673 /* Don't copy the old closure; we'll create a new one in
16674 tsubst_lambda_expr. */
16675 break;
16676 else
16677 {
16678 init = DECL_INITIAL (decl);
16679 decl = tsubst (decl, args, complain, in_decl);
16680 if (decl != error_mark_node)
16681 {
16682 /* By marking the declaration as instantiated, we avoid
16683 trying to instantiate it. Since instantiate_decl can't
16684 handle local variables, and since we've already done
16685 all that needs to be done, that's the right thing to
16686 do. */
16687 if (VAR_P (decl))
16688 DECL_TEMPLATE_INSTANTIATED (decl) = 1;
16689 if (VAR_P (decl)
16690 && ANON_AGGR_TYPE_P (TREE_TYPE (decl)))
16691 /* Anonymous aggregates are a special case. */
16692 finish_anon_union (decl);
16693 else if (is_capture_proxy (DECL_EXPR_DECL (t)))
16694 {
16695 DECL_CONTEXT (decl) = current_function_decl;
16696 if (DECL_NAME (decl) == this_identifier)
16697 {
16698 tree lam = DECL_CONTEXT (current_function_decl);
16699 lam = CLASSTYPE_LAMBDA_EXPR (lam);
16700 LAMBDA_EXPR_THIS_CAPTURE (lam) = decl;
16701 }
16702 insert_capture_proxy (decl);
16703 }
16704 else if (DECL_IMPLICIT_TYPEDEF_P (t))
16705 /* We already did a pushtag. */;
16706 else if (TREE_CODE (decl) == FUNCTION_DECL
16707 && DECL_OMP_DECLARE_REDUCTION_P (decl)
16708 && DECL_FUNCTION_SCOPE_P (pattern_decl))
16709 {
16710 DECL_CONTEXT (decl) = NULL_TREE;
16711 pushdecl (decl);
16712 DECL_CONTEXT (decl) = current_function_decl;
16713 cp_check_omp_declare_reduction (decl);
16714 }
16715 else
16716 {
16717 int const_init = false;
16718 maybe_push_decl (decl);
16719 if (VAR_P (decl)
16720 && DECL_PRETTY_FUNCTION_P (decl))
16721 {
16722 /* For __PRETTY_FUNCTION__ we have to adjust the
16723 initializer. */
16724 const char *const name
16725 = cxx_printable_name (current_function_decl, 2);
16726 init = cp_fname_init (name, &TREE_TYPE (decl));
16727 }
16728 else
16729 init = tsubst_init (init, decl, args, complain, in_decl);
16730
16731 if (VAR_P (decl))
16732 const_init = (DECL_INITIALIZED_BY_CONSTANT_EXPRESSION_P
16733 (pattern_decl));
16734 if (VAR_P (decl)
16735 && DECL_DECOMPOSITION_P (decl)
16736 && TREE_TYPE (pattern_decl) != error_mark_node)
16737 {
16738 unsigned int cnt;
16739 tree first;
16740 tree ndecl
16741 = tsubst_decomp_names (decl, pattern_decl, args,
16742 complain, in_decl, &first, &cnt);
16743 if (ndecl != error_mark_node)
16744 cp_maybe_mangle_decomp (ndecl, first, cnt);
16745 cp_finish_decl (decl, init, const_init, NULL_TREE, 0);
16746 if (ndecl != error_mark_node)
16747 cp_finish_decomp (ndecl, first, cnt);
16748 }
16749 else
16750 cp_finish_decl (decl, init, const_init, NULL_TREE, 0);
16751 }
16752 }
16753 }
16754
16755 break;
16756 }
16757
16758 case FOR_STMT:
16759 stmt = begin_for_stmt (NULL_TREE, NULL_TREE);
16760 RECUR (FOR_INIT_STMT (t));
16761 finish_init_stmt (stmt);
16762 tmp = RECUR (FOR_COND (t));
16763 finish_for_cond (tmp, stmt, false, 0);
16764 tmp = RECUR (FOR_EXPR (t));
16765 finish_for_expr (tmp, stmt);
16766 {
16767 bool prev = note_iteration_stmt_body_start ();
16768 RECUR (FOR_BODY (t));
16769 note_iteration_stmt_body_end (prev);
16770 }
16771 finish_for_stmt (stmt);
16772 break;
16773
16774 case RANGE_FOR_STMT:
16775 {
16776 /* Construct another range_for, if this is not a final
16777 substitution (for inside inside a generic lambda of a
16778 template). Otherwise convert to a regular for. */
16779 tree decl, expr;
16780 stmt = (processing_template_decl
16781 ? begin_range_for_stmt (NULL_TREE, NULL_TREE)
16782 : begin_for_stmt (NULL_TREE, NULL_TREE));
16783 decl = RANGE_FOR_DECL (t);
16784 decl = tsubst (decl, args, complain, in_decl);
16785 maybe_push_decl (decl);
16786 expr = RECUR (RANGE_FOR_EXPR (t));
16787
16788 tree decomp_first = NULL_TREE;
16789 unsigned decomp_cnt = 0;
16790 if (VAR_P (decl) && DECL_DECOMPOSITION_P (decl))
16791 decl = tsubst_decomp_names (decl, RANGE_FOR_DECL (t), args,
16792 complain, in_decl,
16793 &decomp_first, &decomp_cnt);
16794
16795 if (processing_template_decl)
16796 {
16797 RANGE_FOR_IVDEP (stmt) = RANGE_FOR_IVDEP (t);
16798 RANGE_FOR_UNROLL (stmt) = RANGE_FOR_UNROLL (t);
16799 finish_range_for_decl (stmt, decl, expr);
16800 }
16801 else
16802 {
16803 unsigned short unroll = (RANGE_FOR_UNROLL (t)
16804 ? tree_to_uhwi (RANGE_FOR_UNROLL (t)) : 0);
16805 stmt = cp_convert_range_for (stmt, decl, expr,
16806 decomp_first, decomp_cnt,
16807 RANGE_FOR_IVDEP (t), unroll);
16808 }
16809
16810 bool prev = note_iteration_stmt_body_start ();
16811 RECUR (RANGE_FOR_BODY (t));
16812 note_iteration_stmt_body_end (prev);
16813 finish_for_stmt (stmt);
16814 }
16815 break;
16816
16817 case WHILE_STMT:
16818 stmt = begin_while_stmt ();
16819 tmp = RECUR (WHILE_COND (t));
16820 finish_while_stmt_cond (tmp, stmt, false, 0);
16821 {
16822 bool prev = note_iteration_stmt_body_start ();
16823 RECUR (WHILE_BODY (t));
16824 note_iteration_stmt_body_end (prev);
16825 }
16826 finish_while_stmt (stmt);
16827 break;
16828
16829 case DO_STMT:
16830 stmt = begin_do_stmt ();
16831 {
16832 bool prev = note_iteration_stmt_body_start ();
16833 RECUR (DO_BODY (t));
16834 note_iteration_stmt_body_end (prev);
16835 }
16836 finish_do_body (stmt);
16837 tmp = RECUR (DO_COND (t));
16838 finish_do_stmt (tmp, stmt, false, 0);
16839 break;
16840
16841 case IF_STMT:
16842 stmt = begin_if_stmt ();
16843 IF_STMT_CONSTEXPR_P (stmt) = IF_STMT_CONSTEXPR_P (t);
16844 if (IF_STMT_CONSTEXPR_P (t))
16845 args = add_extra_args (IF_STMT_EXTRA_ARGS (t), args);
16846 tmp = RECUR (IF_COND (t));
16847 tmp = finish_if_stmt_cond (tmp, stmt);
16848 if (IF_STMT_CONSTEXPR_P (t)
16849 && instantiation_dependent_expression_p (tmp))
16850 {
16851 /* We're partially instantiating a generic lambda, but the condition
16852 of the constexpr if is still dependent. Don't substitute into the
16853 branches now, just remember the template arguments. */
16854 do_poplevel (IF_SCOPE (stmt));
16855 IF_COND (stmt) = IF_COND (t);
16856 THEN_CLAUSE (stmt) = THEN_CLAUSE (t);
16857 ELSE_CLAUSE (stmt) = ELSE_CLAUSE (t);
16858 IF_STMT_EXTRA_ARGS (stmt) = build_extra_args (t, args, complain);
16859 add_stmt (stmt);
16860 break;
16861 }
16862 if (IF_STMT_CONSTEXPR_P (t) && integer_zerop (tmp))
16863 /* Don't instantiate the THEN_CLAUSE. */;
16864 else
16865 {
16866 bool inhibit = integer_zerop (fold_non_dependent_expr (tmp));
16867 if (inhibit)
16868 ++c_inhibit_evaluation_warnings;
16869 RECUR (THEN_CLAUSE (t));
16870 if (inhibit)
16871 --c_inhibit_evaluation_warnings;
16872 }
16873 finish_then_clause (stmt);
16874
16875 if (IF_STMT_CONSTEXPR_P (t) && integer_nonzerop (tmp))
16876 /* Don't instantiate the ELSE_CLAUSE. */;
16877 else if (ELSE_CLAUSE (t))
16878 {
16879 bool inhibit = integer_nonzerop (fold_non_dependent_expr (tmp));
16880 begin_else_clause (stmt);
16881 if (inhibit)
16882 ++c_inhibit_evaluation_warnings;
16883 RECUR (ELSE_CLAUSE (t));
16884 if (inhibit)
16885 --c_inhibit_evaluation_warnings;
16886 finish_else_clause (stmt);
16887 }
16888
16889 finish_if_stmt (stmt);
16890 break;
16891
16892 case BIND_EXPR:
16893 if (BIND_EXPR_BODY_BLOCK (t))
16894 stmt = begin_function_body ();
16895 else
16896 stmt = begin_compound_stmt (BIND_EXPR_TRY_BLOCK (t)
16897 ? BCS_TRY_BLOCK : 0);
16898
16899 RECUR (BIND_EXPR_BODY (t));
16900
16901 if (BIND_EXPR_BODY_BLOCK (t))
16902 finish_function_body (stmt);
16903 else
16904 finish_compound_stmt (stmt);
16905 break;
16906
16907 case BREAK_STMT:
16908 finish_break_stmt ();
16909 break;
16910
16911 case CONTINUE_STMT:
16912 finish_continue_stmt ();
16913 break;
16914
16915 case SWITCH_STMT:
16916 stmt = begin_switch_stmt ();
16917 tmp = RECUR (SWITCH_STMT_COND (t));
16918 finish_switch_cond (tmp, stmt);
16919 RECUR (SWITCH_STMT_BODY (t));
16920 finish_switch_stmt (stmt);
16921 break;
16922
16923 case CASE_LABEL_EXPR:
16924 {
16925 tree low = RECUR (CASE_LOW (t));
16926 tree high = RECUR (CASE_HIGH (t));
16927 tree l = finish_case_label (EXPR_LOCATION (t), low, high);
16928 if (l && TREE_CODE (l) == CASE_LABEL_EXPR)
16929 FALLTHROUGH_LABEL_P (CASE_LABEL (l))
16930 = FALLTHROUGH_LABEL_P (CASE_LABEL (t));
16931 }
16932 break;
16933
16934 case LABEL_EXPR:
16935 {
16936 tree decl = LABEL_EXPR_LABEL (t);
16937 tree label;
16938
16939 label = finish_label_stmt (DECL_NAME (decl));
16940 if (TREE_CODE (label) == LABEL_DECL)
16941 FALLTHROUGH_LABEL_P (label) = FALLTHROUGH_LABEL_P (decl);
16942 if (DECL_ATTRIBUTES (decl) != NULL_TREE)
16943 cplus_decl_attributes (&label, DECL_ATTRIBUTES (decl), 0);
16944 }
16945 break;
16946
16947 case GOTO_EXPR:
16948 tmp = GOTO_DESTINATION (t);
16949 if (TREE_CODE (tmp) != LABEL_DECL)
16950 /* Computed goto's must be tsubst'd into. On the other hand,
16951 non-computed gotos must not be; the identifier in question
16952 will have no binding. */
16953 tmp = RECUR (tmp);
16954 else
16955 tmp = DECL_NAME (tmp);
16956 finish_goto_stmt (tmp);
16957 break;
16958
16959 case ASM_EXPR:
16960 {
16961 tree string = RECUR (ASM_STRING (t));
16962 tree outputs = tsubst_copy_asm_operands (ASM_OUTPUTS (t), args,
16963 complain, in_decl);
16964 tree inputs = tsubst_copy_asm_operands (ASM_INPUTS (t), args,
16965 complain, in_decl);
16966 tree clobbers = tsubst_copy_asm_operands (ASM_CLOBBERS (t), args,
16967 complain, in_decl);
16968 tree labels = tsubst_copy_asm_operands (ASM_LABELS (t), args,
16969 complain, in_decl);
16970 tmp = finish_asm_stmt (ASM_VOLATILE_P (t), string, outputs, inputs,
16971 clobbers, labels);
16972 tree asm_expr = tmp;
16973 if (TREE_CODE (asm_expr) == CLEANUP_POINT_EXPR)
16974 asm_expr = TREE_OPERAND (asm_expr, 0);
16975 ASM_INPUT_P (asm_expr) = ASM_INPUT_P (t);
16976 }
16977 break;
16978
16979 case TRY_BLOCK:
16980 if (CLEANUP_P (t))
16981 {
16982 stmt = begin_try_block ();
16983 RECUR (TRY_STMTS (t));
16984 finish_cleanup_try_block (stmt);
16985 finish_cleanup (RECUR (TRY_HANDLERS (t)), stmt);
16986 }
16987 else
16988 {
16989 tree compound_stmt = NULL_TREE;
16990
16991 if (FN_TRY_BLOCK_P (t))
16992 stmt = begin_function_try_block (&compound_stmt);
16993 else
16994 stmt = begin_try_block ();
16995
16996 RECUR (TRY_STMTS (t));
16997
16998 if (FN_TRY_BLOCK_P (t))
16999 finish_function_try_block (stmt);
17000 else
17001 finish_try_block (stmt);
17002
17003 RECUR (TRY_HANDLERS (t));
17004 if (FN_TRY_BLOCK_P (t))
17005 finish_function_handler_sequence (stmt, compound_stmt);
17006 else
17007 finish_handler_sequence (stmt);
17008 }
17009 break;
17010
17011 case HANDLER:
17012 {
17013 tree decl = HANDLER_PARMS (t);
17014
17015 if (decl)
17016 {
17017 decl = tsubst (decl, args, complain, in_decl);
17018 /* Prevent instantiate_decl from trying to instantiate
17019 this variable. We've already done all that needs to be
17020 done. */
17021 if (decl != error_mark_node)
17022 DECL_TEMPLATE_INSTANTIATED (decl) = 1;
17023 }
17024 stmt = begin_handler ();
17025 finish_handler_parms (decl, stmt);
17026 RECUR (HANDLER_BODY (t));
17027 finish_handler (stmt);
17028 }
17029 break;
17030
17031 case TAG_DEFN:
17032 tmp = tsubst (TREE_TYPE (t), args, complain, NULL_TREE);
17033 if (CLASS_TYPE_P (tmp))
17034 {
17035 /* Local classes are not independent templates; they are
17036 instantiated along with their containing function. And this
17037 way we don't have to deal with pushing out of one local class
17038 to instantiate a member of another local class. */
17039 /* Closures are handled by the LAMBDA_EXPR. */
17040 gcc_assert (!LAMBDA_TYPE_P (TREE_TYPE (t)));
17041 complete_type (tmp);
17042 for (tree fld = TYPE_FIELDS (tmp); fld; fld = DECL_CHAIN (fld))
17043 if ((VAR_P (fld)
17044 || (TREE_CODE (fld) == FUNCTION_DECL
17045 && !DECL_ARTIFICIAL (fld)))
17046 && DECL_TEMPLATE_INSTANTIATION (fld))
17047 instantiate_decl (fld, /*defer_ok=*/false,
17048 /*expl_inst_class=*/false);
17049 }
17050 break;
17051
17052 case STATIC_ASSERT:
17053 {
17054 tree condition;
17055
17056 ++c_inhibit_evaluation_warnings;
17057 condition =
17058 tsubst_expr (STATIC_ASSERT_CONDITION (t),
17059 args,
17060 complain, in_decl,
17061 /*integral_constant_expression_p=*/true);
17062 --c_inhibit_evaluation_warnings;
17063
17064 finish_static_assert (condition,
17065 STATIC_ASSERT_MESSAGE (t),
17066 STATIC_ASSERT_SOURCE_LOCATION (t),
17067 /*member_p=*/false);
17068 }
17069 break;
17070
17071 case OACC_KERNELS:
17072 case OACC_PARALLEL:
17073 tmp = tsubst_omp_clauses (OMP_CLAUSES (t), C_ORT_ACC, args, complain,
17074 in_decl);
17075 stmt = begin_omp_parallel ();
17076 RECUR (OMP_BODY (t));
17077 finish_omp_construct (TREE_CODE (t), stmt, tmp);
17078 break;
17079
17080 case OMP_PARALLEL:
17081 r = push_omp_privatization_clauses (OMP_PARALLEL_COMBINED (t));
17082 tmp = tsubst_omp_clauses (OMP_PARALLEL_CLAUSES (t), C_ORT_OMP, args,
17083 complain, in_decl);
17084 if (OMP_PARALLEL_COMBINED (t))
17085 omp_parallel_combined_clauses = &tmp;
17086 stmt = begin_omp_parallel ();
17087 RECUR (OMP_PARALLEL_BODY (t));
17088 gcc_assert (omp_parallel_combined_clauses == NULL);
17089 OMP_PARALLEL_COMBINED (finish_omp_parallel (tmp, stmt))
17090 = OMP_PARALLEL_COMBINED (t);
17091 pop_omp_privatization_clauses (r);
17092 break;
17093
17094 case OMP_TASK:
17095 r = push_omp_privatization_clauses (false);
17096 tmp = tsubst_omp_clauses (OMP_TASK_CLAUSES (t), C_ORT_OMP, args,
17097 complain, in_decl);
17098 stmt = begin_omp_task ();
17099 RECUR (OMP_TASK_BODY (t));
17100 finish_omp_task (tmp, stmt);
17101 pop_omp_privatization_clauses (r);
17102 break;
17103
17104 case OMP_FOR:
17105 case OMP_SIMD:
17106 case OMP_DISTRIBUTE:
17107 case OMP_TASKLOOP:
17108 case OACC_LOOP:
17109 {
17110 tree clauses, body, pre_body;
17111 tree declv = NULL_TREE, initv = NULL_TREE, condv = NULL_TREE;
17112 tree orig_declv = NULL_TREE;
17113 tree incrv = NULL_TREE;
17114 enum c_omp_region_type ort = C_ORT_OMP;
17115 int i;
17116
17117 if (TREE_CODE (t) == OACC_LOOP)
17118 ort = C_ORT_ACC;
17119
17120 r = push_omp_privatization_clauses (OMP_FOR_INIT (t) == NULL_TREE);
17121 clauses = tsubst_omp_clauses (OMP_FOR_CLAUSES (t), ort, args, complain,
17122 in_decl);
17123 if (OMP_FOR_INIT (t) != NULL_TREE)
17124 {
17125 declv = make_tree_vec (TREE_VEC_LENGTH (OMP_FOR_INIT (t)));
17126 if (OMP_FOR_ORIG_DECLS (t))
17127 orig_declv = make_tree_vec (TREE_VEC_LENGTH (OMP_FOR_INIT (t)));
17128 initv = make_tree_vec (TREE_VEC_LENGTH (OMP_FOR_INIT (t)));
17129 condv = make_tree_vec (TREE_VEC_LENGTH (OMP_FOR_INIT (t)));
17130 incrv = make_tree_vec (TREE_VEC_LENGTH (OMP_FOR_INIT (t)));
17131 }
17132
17133 stmt = begin_omp_structured_block ();
17134
17135 pre_body = push_stmt_list ();
17136 RECUR (OMP_FOR_PRE_BODY (t));
17137 pre_body = pop_stmt_list (pre_body);
17138
17139 if (OMP_FOR_INIT (t) != NULL_TREE)
17140 for (i = 0; i < TREE_VEC_LENGTH (OMP_FOR_INIT (t)); i++)
17141 tsubst_omp_for_iterator (t, i, declv, orig_declv, initv, condv,
17142 incrv, &clauses, args, complain, in_decl,
17143 integral_constant_expression_p);
17144 omp_parallel_combined_clauses = NULL;
17145
17146 body = push_stmt_list ();
17147 RECUR (OMP_FOR_BODY (t));
17148 body = pop_stmt_list (body);
17149
17150 if (OMP_FOR_INIT (t) != NULL_TREE)
17151 t = finish_omp_for (EXPR_LOCATION (t), TREE_CODE (t), declv,
17152 orig_declv, initv, condv, incrv, body, pre_body,
17153 NULL, clauses);
17154 else
17155 {
17156 t = make_node (TREE_CODE (t));
17157 TREE_TYPE (t) = void_type_node;
17158 OMP_FOR_BODY (t) = body;
17159 OMP_FOR_PRE_BODY (t) = pre_body;
17160 OMP_FOR_CLAUSES (t) = clauses;
17161 SET_EXPR_LOCATION (t, EXPR_LOCATION (t));
17162 add_stmt (t);
17163 }
17164
17165 add_stmt (finish_omp_structured_block (stmt));
17166 pop_omp_privatization_clauses (r);
17167 }
17168 break;
17169
17170 case OMP_SECTIONS:
17171 omp_parallel_combined_clauses = NULL;
17172 /* FALLTHRU */
17173 case OMP_SINGLE:
17174 case OMP_TEAMS:
17175 case OMP_CRITICAL:
17176 r = push_omp_privatization_clauses (TREE_CODE (t) == OMP_TEAMS
17177 && OMP_TEAMS_COMBINED (t));
17178 tmp = tsubst_omp_clauses (OMP_CLAUSES (t), C_ORT_OMP, args, complain,
17179 in_decl);
17180 stmt = push_stmt_list ();
17181 RECUR (OMP_BODY (t));
17182 stmt = pop_stmt_list (stmt);
17183
17184 t = copy_node (t);
17185 OMP_BODY (t) = stmt;
17186 OMP_CLAUSES (t) = tmp;
17187 add_stmt (t);
17188 pop_omp_privatization_clauses (r);
17189 break;
17190
17191 case OACC_DATA:
17192 case OMP_TARGET_DATA:
17193 case OMP_TARGET:
17194 tmp = tsubst_omp_clauses (OMP_CLAUSES (t), (TREE_CODE (t) == OACC_DATA)
17195 ? C_ORT_ACC : C_ORT_OMP, args, complain,
17196 in_decl);
17197 keep_next_level (true);
17198 stmt = begin_omp_structured_block ();
17199
17200 RECUR (OMP_BODY (t));
17201 stmt = finish_omp_structured_block (stmt);
17202
17203 t = copy_node (t);
17204 OMP_BODY (t) = stmt;
17205 OMP_CLAUSES (t) = tmp;
17206 if (TREE_CODE (t) == OMP_TARGET && OMP_TARGET_COMBINED (t))
17207 {
17208 tree teams = cp_walk_tree (&stmt, tsubst_find_omp_teams, NULL, NULL);
17209 if (teams)
17210 {
17211 /* For combined target teams, ensure the num_teams and
17212 thread_limit clause expressions are evaluated on the host,
17213 before entering the target construct. */
17214 tree c;
17215 for (c = OMP_TEAMS_CLAUSES (teams);
17216 c; c = OMP_CLAUSE_CHAIN (c))
17217 if ((OMP_CLAUSE_CODE (c) == OMP_CLAUSE_NUM_TEAMS
17218 || OMP_CLAUSE_CODE (c) == OMP_CLAUSE_THREAD_LIMIT)
17219 && TREE_CODE (OMP_CLAUSE_OPERAND (c, 0)) != INTEGER_CST)
17220 {
17221 tree expr = OMP_CLAUSE_OPERAND (c, 0);
17222 expr = force_target_expr (TREE_TYPE (expr), expr, tf_none);
17223 if (expr == error_mark_node)
17224 continue;
17225 tmp = TARGET_EXPR_SLOT (expr);
17226 add_stmt (expr);
17227 OMP_CLAUSE_OPERAND (c, 0) = expr;
17228 tree tc = build_omp_clause (OMP_CLAUSE_LOCATION (c),
17229 OMP_CLAUSE_FIRSTPRIVATE);
17230 OMP_CLAUSE_DECL (tc) = tmp;
17231 OMP_CLAUSE_CHAIN (tc) = OMP_TARGET_CLAUSES (t);
17232 OMP_TARGET_CLAUSES (t) = tc;
17233 }
17234 }
17235 }
17236 add_stmt (t);
17237 break;
17238
17239 case OACC_DECLARE:
17240 t = copy_node (t);
17241 tmp = tsubst_omp_clauses (OACC_DECLARE_CLAUSES (t), C_ORT_ACC, args,
17242 complain, in_decl);
17243 OACC_DECLARE_CLAUSES (t) = tmp;
17244 add_stmt (t);
17245 break;
17246
17247 case OMP_TARGET_UPDATE:
17248 case OMP_TARGET_ENTER_DATA:
17249 case OMP_TARGET_EXIT_DATA:
17250 tmp = tsubst_omp_clauses (OMP_STANDALONE_CLAUSES (t), C_ORT_OMP, args,
17251 complain, in_decl);
17252 t = copy_node (t);
17253 OMP_STANDALONE_CLAUSES (t) = tmp;
17254 add_stmt (t);
17255 break;
17256
17257 case OACC_ENTER_DATA:
17258 case OACC_EXIT_DATA:
17259 case OACC_UPDATE:
17260 tmp = tsubst_omp_clauses (OMP_STANDALONE_CLAUSES (t), C_ORT_ACC, args,
17261 complain, in_decl);
17262 t = copy_node (t);
17263 OMP_STANDALONE_CLAUSES (t) = tmp;
17264 add_stmt (t);
17265 break;
17266
17267 case OMP_ORDERED:
17268 tmp = tsubst_omp_clauses (OMP_ORDERED_CLAUSES (t), C_ORT_OMP, args,
17269 complain, in_decl);
17270 stmt = push_stmt_list ();
17271 RECUR (OMP_BODY (t));
17272 stmt = pop_stmt_list (stmt);
17273
17274 t = copy_node (t);
17275 OMP_BODY (t) = stmt;
17276 OMP_ORDERED_CLAUSES (t) = tmp;
17277 add_stmt (t);
17278 break;
17279
17280 case OMP_SECTION:
17281 case OMP_MASTER:
17282 case OMP_TASKGROUP:
17283 stmt = push_stmt_list ();
17284 RECUR (OMP_BODY (t));
17285 stmt = pop_stmt_list (stmt);
17286
17287 t = copy_node (t);
17288 OMP_BODY (t) = stmt;
17289 add_stmt (t);
17290 break;
17291
17292 case OMP_ATOMIC:
17293 gcc_assert (OMP_ATOMIC_DEPENDENT_P (t));
17294 if (TREE_CODE (TREE_OPERAND (t, 1)) != MODIFY_EXPR)
17295 {
17296 tree op1 = TREE_OPERAND (t, 1);
17297 tree rhs1 = NULL_TREE;
17298 tree lhs, rhs;
17299 if (TREE_CODE (op1) == COMPOUND_EXPR)
17300 {
17301 rhs1 = RECUR (TREE_OPERAND (op1, 0));
17302 op1 = TREE_OPERAND (op1, 1);
17303 }
17304 lhs = RECUR (TREE_OPERAND (op1, 0));
17305 rhs = RECUR (TREE_OPERAND (op1, 1));
17306 finish_omp_atomic (OMP_ATOMIC, TREE_CODE (op1), lhs, rhs,
17307 NULL_TREE, NULL_TREE, rhs1,
17308 OMP_ATOMIC_SEQ_CST (t));
17309 }
17310 else
17311 {
17312 tree op1 = TREE_OPERAND (t, 1);
17313 tree v = NULL_TREE, lhs, rhs = NULL_TREE, lhs1 = NULL_TREE;
17314 tree rhs1 = NULL_TREE;
17315 enum tree_code code = TREE_CODE (TREE_OPERAND (op1, 1));
17316 enum tree_code opcode = NOP_EXPR;
17317 if (code == OMP_ATOMIC_READ)
17318 {
17319 v = RECUR (TREE_OPERAND (op1, 0));
17320 lhs = RECUR (TREE_OPERAND (TREE_OPERAND (op1, 1), 0));
17321 }
17322 else if (code == OMP_ATOMIC_CAPTURE_OLD
17323 || code == OMP_ATOMIC_CAPTURE_NEW)
17324 {
17325 tree op11 = TREE_OPERAND (TREE_OPERAND (op1, 1), 1);
17326 v = RECUR (TREE_OPERAND (op1, 0));
17327 lhs1 = RECUR (TREE_OPERAND (TREE_OPERAND (op1, 1), 0));
17328 if (TREE_CODE (op11) == COMPOUND_EXPR)
17329 {
17330 rhs1 = RECUR (TREE_OPERAND (op11, 0));
17331 op11 = TREE_OPERAND (op11, 1);
17332 }
17333 lhs = RECUR (TREE_OPERAND (op11, 0));
17334 rhs = RECUR (TREE_OPERAND (op11, 1));
17335 opcode = TREE_CODE (op11);
17336 if (opcode == MODIFY_EXPR)
17337 opcode = NOP_EXPR;
17338 }
17339 else
17340 {
17341 code = OMP_ATOMIC;
17342 lhs = RECUR (TREE_OPERAND (op1, 0));
17343 rhs = RECUR (TREE_OPERAND (op1, 1));
17344 }
17345 finish_omp_atomic (code, opcode, lhs, rhs, v, lhs1, rhs1,
17346 OMP_ATOMIC_SEQ_CST (t));
17347 }
17348 break;
17349
17350 case TRANSACTION_EXPR:
17351 {
17352 int flags = 0;
17353 flags |= (TRANSACTION_EXPR_OUTER (t) ? TM_STMT_ATTR_OUTER : 0);
17354 flags |= (TRANSACTION_EXPR_RELAXED (t) ? TM_STMT_ATTR_RELAXED : 0);
17355
17356 if (TRANSACTION_EXPR_IS_STMT (t))
17357 {
17358 tree body = TRANSACTION_EXPR_BODY (t);
17359 tree noex = NULL_TREE;
17360 if (TREE_CODE (body) == MUST_NOT_THROW_EXPR)
17361 {
17362 noex = MUST_NOT_THROW_COND (body);
17363 if (noex == NULL_TREE)
17364 noex = boolean_true_node;
17365 body = TREE_OPERAND (body, 0);
17366 }
17367 stmt = begin_transaction_stmt (input_location, NULL, flags);
17368 RECUR (body);
17369 finish_transaction_stmt (stmt, NULL, flags, RECUR (noex));
17370 }
17371 else
17372 {
17373 stmt = build_transaction_expr (EXPR_LOCATION (t),
17374 RECUR (TRANSACTION_EXPR_BODY (t)),
17375 flags, NULL_TREE);
17376 RETURN (stmt);
17377 }
17378 }
17379 break;
17380
17381 case MUST_NOT_THROW_EXPR:
17382 {
17383 tree op0 = RECUR (TREE_OPERAND (t, 0));
17384 tree cond = RECUR (MUST_NOT_THROW_COND (t));
17385 RETURN (build_must_not_throw_expr (op0, cond));
17386 }
17387
17388 case EXPR_PACK_EXPANSION:
17389 error ("invalid use of pack expansion expression");
17390 RETURN (error_mark_node);
17391
17392 case NONTYPE_ARGUMENT_PACK:
17393 error ("use %<...%> to expand argument pack");
17394 RETURN (error_mark_node);
17395
17396 case COMPOUND_EXPR:
17397 tmp = RECUR (TREE_OPERAND (t, 0));
17398 if (tmp == NULL_TREE)
17399 /* If the first operand was a statement, we're done with it. */
17400 RETURN (RECUR (TREE_OPERAND (t, 1)));
17401 RETURN (build_x_compound_expr (EXPR_LOCATION (t), tmp,
17402 RECUR (TREE_OPERAND (t, 1)),
17403 complain));
17404
17405 case ANNOTATE_EXPR:
17406 tmp = RECUR (TREE_OPERAND (t, 0));
17407 RETURN (build3_loc (EXPR_LOCATION (t), ANNOTATE_EXPR,
17408 TREE_TYPE (tmp), tmp,
17409 RECUR (TREE_OPERAND (t, 1)),
17410 RECUR (TREE_OPERAND (t, 2))));
17411
17412 default:
17413 gcc_assert (!STATEMENT_CODE_P (TREE_CODE (t)));
17414
17415 RETURN (tsubst_copy_and_build (t, args, complain, in_decl,
17416 /*function_p=*/false,
17417 integral_constant_expression_p));
17418 }
17419
17420 RETURN (NULL_TREE);
17421 out:
17422 input_location = loc;
17423 return r;
17424 #undef RECUR
17425 #undef RETURN
17426 }
17427
17428 /* Instantiate the special body of the artificial DECL_OMP_DECLARE_REDUCTION
17429 function. For description of the body see comment above
17430 cp_parser_omp_declare_reduction_exprs. */
17431
17432 static void
17433 tsubst_omp_udr (tree t, tree args, tsubst_flags_t complain, tree in_decl)
17434 {
17435 if (t == NULL_TREE || t == error_mark_node)
17436 return;
17437
17438 gcc_assert (TREE_CODE (t) == STATEMENT_LIST);
17439
17440 tree_stmt_iterator tsi;
17441 int i;
17442 tree stmts[7];
17443 memset (stmts, 0, sizeof stmts);
17444 for (i = 0, tsi = tsi_start (t);
17445 i < 7 && !tsi_end_p (tsi);
17446 i++, tsi_next (&tsi))
17447 stmts[i] = tsi_stmt (tsi);
17448 gcc_assert (tsi_end_p (tsi));
17449
17450 if (i >= 3)
17451 {
17452 gcc_assert (TREE_CODE (stmts[0]) == DECL_EXPR
17453 && TREE_CODE (stmts[1]) == DECL_EXPR);
17454 tree omp_out = tsubst (DECL_EXPR_DECL (stmts[0]),
17455 args, complain, in_decl);
17456 tree omp_in = tsubst (DECL_EXPR_DECL (stmts[1]),
17457 args, complain, in_decl);
17458 DECL_CONTEXT (omp_out) = current_function_decl;
17459 DECL_CONTEXT (omp_in) = current_function_decl;
17460 keep_next_level (true);
17461 tree block = begin_omp_structured_block ();
17462 tsubst_expr (stmts[2], args, complain, in_decl, false);
17463 block = finish_omp_structured_block (block);
17464 block = maybe_cleanup_point_expr_void (block);
17465 add_decl_expr (omp_out);
17466 if (TREE_NO_WARNING (DECL_EXPR_DECL (stmts[0])))
17467 TREE_NO_WARNING (omp_out) = 1;
17468 add_decl_expr (omp_in);
17469 finish_expr_stmt (block);
17470 }
17471 if (i >= 6)
17472 {
17473 gcc_assert (TREE_CODE (stmts[3]) == DECL_EXPR
17474 && TREE_CODE (stmts[4]) == DECL_EXPR);
17475 tree omp_priv = tsubst (DECL_EXPR_DECL (stmts[3]),
17476 args, complain, in_decl);
17477 tree omp_orig = tsubst (DECL_EXPR_DECL (stmts[4]),
17478 args, complain, in_decl);
17479 DECL_CONTEXT (omp_priv) = current_function_decl;
17480 DECL_CONTEXT (omp_orig) = current_function_decl;
17481 keep_next_level (true);
17482 tree block = begin_omp_structured_block ();
17483 tsubst_expr (stmts[5], args, complain, in_decl, false);
17484 block = finish_omp_structured_block (block);
17485 block = maybe_cleanup_point_expr_void (block);
17486 cp_walk_tree (&block, cp_remove_omp_priv_cleanup_stmt, omp_priv, NULL);
17487 add_decl_expr (omp_priv);
17488 add_decl_expr (omp_orig);
17489 finish_expr_stmt (block);
17490 if (i == 7)
17491 add_decl_expr (omp_orig);
17492 }
17493 }
17494
17495 /* T is a postfix-expression that is not being used in a function
17496 call. Return the substituted version of T. */
17497
17498 static tree
17499 tsubst_non_call_postfix_expression (tree t, tree args,
17500 tsubst_flags_t complain,
17501 tree in_decl)
17502 {
17503 if (TREE_CODE (t) == SCOPE_REF)
17504 t = tsubst_qualified_id (t, args, complain, in_decl,
17505 /*done=*/false, /*address_p=*/false);
17506 else
17507 t = tsubst_copy_and_build (t, args, complain, in_decl,
17508 /*function_p=*/false,
17509 /*integral_constant_expression_p=*/false);
17510
17511 return t;
17512 }
17513
17514 /* T is a LAMBDA_EXPR. Generate a new LAMBDA_EXPR for the current
17515 instantiation context. Instantiating a pack expansion containing a lambda
17516 might result in multiple lambdas all based on the same lambda in the
17517 template. */
17518
17519 tree
17520 tsubst_lambda_expr (tree t, tree args, tsubst_flags_t complain, tree in_decl)
17521 {
17522 tree oldfn = lambda_function (t);
17523 in_decl = oldfn;
17524
17525 tree r = build_lambda_expr ();
17526
17527 LAMBDA_EXPR_LOCATION (r)
17528 = LAMBDA_EXPR_LOCATION (t);
17529 LAMBDA_EXPR_DEFAULT_CAPTURE_MODE (r)
17530 = LAMBDA_EXPR_DEFAULT_CAPTURE_MODE (t);
17531 LAMBDA_EXPR_MUTABLE_P (r) = LAMBDA_EXPR_MUTABLE_P (t);
17532
17533 if (LAMBDA_EXPR_EXTRA_SCOPE (t) == NULL_TREE)
17534 LAMBDA_EXPR_EXTRA_SCOPE (r) = NULL_TREE;
17535 else
17536 record_lambda_scope (r);
17537
17538 gcc_assert (LAMBDA_EXPR_THIS_CAPTURE (t) == NULL_TREE
17539 && LAMBDA_EXPR_PENDING_PROXIES (t) == NULL);
17540
17541 for (tree cap = LAMBDA_EXPR_CAPTURE_LIST (t); cap;
17542 cap = TREE_CHAIN (cap))
17543 {
17544 tree field = TREE_PURPOSE (cap);
17545 if (PACK_EXPANSION_P (field))
17546 field = PACK_EXPANSION_PATTERN (field);
17547 field = tsubst_decl (field, args, complain);
17548
17549 if (field == error_mark_node)
17550 return error_mark_node;
17551
17552 tree init = TREE_VALUE (cap);
17553 if (PACK_EXPANSION_P (init))
17554 init = tsubst_pack_expansion (init, args, complain, in_decl);
17555 else
17556 init = tsubst_copy_and_build (init, args, complain, in_decl,
17557 /*fn*/false, /*constexpr*/false);
17558
17559 if (TREE_CODE (field) == TREE_VEC)
17560 {
17561 int len = TREE_VEC_LENGTH (field);
17562 gcc_assert (TREE_CODE (init) == TREE_VEC
17563 && TREE_VEC_LENGTH (init) == len);
17564 for (int i = 0; i < len; ++i)
17565 LAMBDA_EXPR_CAPTURE_LIST (r)
17566 = tree_cons (TREE_VEC_ELT (field, i),
17567 TREE_VEC_ELT (init, i),
17568 LAMBDA_EXPR_CAPTURE_LIST (r));
17569 }
17570 else
17571 {
17572 LAMBDA_EXPR_CAPTURE_LIST (r)
17573 = tree_cons (field, init, LAMBDA_EXPR_CAPTURE_LIST (r));
17574
17575 if (id_equal (DECL_NAME (field), "__this"))
17576 LAMBDA_EXPR_THIS_CAPTURE (r) = field;
17577 }
17578 }
17579
17580 tree type = begin_lambda_type (r);
17581 if (type == error_mark_node)
17582 return error_mark_node;
17583
17584 /* Do this again now that LAMBDA_EXPR_EXTRA_SCOPE is set. */
17585 determine_visibility (TYPE_NAME (type));
17586
17587 register_capture_members (LAMBDA_EXPR_CAPTURE_LIST (r));
17588
17589 tree oldtmpl = (generic_lambda_fn_p (oldfn)
17590 ? DECL_TI_TEMPLATE (oldfn)
17591 : NULL_TREE);
17592
17593 tree fntype = static_fn_type (oldfn);
17594 if (oldtmpl)
17595 ++processing_template_decl;
17596 fntype = tsubst (fntype, args, complain, in_decl);
17597 if (oldtmpl)
17598 --processing_template_decl;
17599
17600 if (fntype == error_mark_node)
17601 r = error_mark_node;
17602 else
17603 {
17604 /* Fix the type of 'this'. */
17605 fntype = build_memfn_type (fntype, type,
17606 type_memfn_quals (fntype),
17607 type_memfn_rqual (fntype));
17608 tree fn, tmpl;
17609 if (oldtmpl)
17610 {
17611 tmpl = tsubst_template_decl (oldtmpl, args, complain, fntype);
17612 fn = DECL_TEMPLATE_RESULT (tmpl);
17613 finish_member_declaration (tmpl);
17614 }
17615 else
17616 {
17617 tmpl = NULL_TREE;
17618 fn = tsubst_function_decl (oldfn, args, complain, fntype);
17619 finish_member_declaration (fn);
17620 }
17621
17622 /* Let finish_function set this. */
17623 DECL_DECLARED_CONSTEXPR_P (fn) = false;
17624
17625 bool nested = cfun;
17626 if (nested)
17627 push_function_context ();
17628 else
17629 /* Still increment function_depth so that we don't GC in the
17630 middle of an expression. */
17631 ++function_depth;
17632
17633 local_specialization_stack s (lss_copy);
17634
17635 tree body = start_lambda_function (fn, r);
17636
17637 register_parameter_specializations (oldfn, fn);
17638
17639 if (oldtmpl)
17640 {
17641 /* We might not partially instantiate some parts of the function, so
17642 copy these flags from the original template. */
17643 language_function *ol = DECL_STRUCT_FUNCTION (oldfn)->language;
17644 current_function_returns_value = ol->returns_value;
17645 current_function_returns_null = ol->returns_null;
17646 current_function_returns_abnormally = ol->returns_abnormally;
17647 current_function_infinite_loop = ol->infinite_loop;
17648 }
17649
17650 tsubst_expr (DECL_SAVED_TREE (oldfn), args, complain, r,
17651 /*constexpr*/false);
17652
17653 finish_lambda_function (body);
17654
17655 if (nested)
17656 pop_function_context ();
17657 else
17658 --function_depth;
17659
17660 /* The capture list was built up in reverse order; fix that now. */
17661 LAMBDA_EXPR_CAPTURE_LIST (r)
17662 = nreverse (LAMBDA_EXPR_CAPTURE_LIST (r));
17663
17664 LAMBDA_EXPR_THIS_CAPTURE (r) = NULL_TREE;
17665
17666 maybe_add_lambda_conv_op (type);
17667 }
17668
17669 finish_struct (type, /*attr*/NULL_TREE);
17670
17671 insert_pending_capture_proxies ();
17672
17673 return r;
17674 }
17675
17676 /* Like tsubst but deals with expressions and performs semantic
17677 analysis. FUNCTION_P is true if T is the "F" in "F (ARGS)". */
17678
17679 tree
17680 tsubst_copy_and_build (tree t,
17681 tree args,
17682 tsubst_flags_t complain,
17683 tree in_decl,
17684 bool function_p,
17685 bool integral_constant_expression_p)
17686 {
17687 #define RETURN(EXP) do { retval = (EXP); goto out; } while(0)
17688 #define RECUR(NODE) \
17689 tsubst_copy_and_build (NODE, args, complain, in_decl, \
17690 /*function_p=*/false, \
17691 integral_constant_expression_p)
17692
17693 tree retval, op1;
17694 location_t loc;
17695
17696 if (t == NULL_TREE || t == error_mark_node)
17697 return t;
17698
17699 loc = input_location;
17700 if (EXPR_HAS_LOCATION (t))
17701 input_location = EXPR_LOCATION (t);
17702
17703 /* N3276 decltype magic only applies to calls at the top level or on the
17704 right side of a comma. */
17705 tsubst_flags_t decltype_flag = (complain & tf_decltype);
17706 complain &= ~tf_decltype;
17707
17708 switch (TREE_CODE (t))
17709 {
17710 case USING_DECL:
17711 t = DECL_NAME (t);
17712 /* Fall through. */
17713 case IDENTIFIER_NODE:
17714 {
17715 tree decl;
17716 cp_id_kind idk;
17717 bool non_integral_constant_expression_p;
17718 const char *error_msg;
17719
17720 if (IDENTIFIER_CONV_OP_P (t))
17721 {
17722 tree new_type = tsubst (TREE_TYPE (t), args, complain, in_decl);
17723 t = make_conv_op_name (new_type);
17724 }
17725
17726 /* Look up the name. */
17727 decl = lookup_name (t);
17728
17729 /* By convention, expressions use ERROR_MARK_NODE to indicate
17730 failure, not NULL_TREE. */
17731 if (decl == NULL_TREE)
17732 decl = error_mark_node;
17733
17734 decl = finish_id_expression (t, decl, NULL_TREE,
17735 &idk,
17736 integral_constant_expression_p,
17737 /*allow_non_integral_constant_expression_p=*/(cxx_dialect >= cxx11),
17738 &non_integral_constant_expression_p,
17739 /*template_p=*/false,
17740 /*done=*/true,
17741 /*address_p=*/false,
17742 /*template_arg_p=*/false,
17743 &error_msg,
17744 input_location);
17745 if (error_msg)
17746 error (error_msg);
17747 if (!function_p && identifier_p (decl))
17748 {
17749 if (complain & tf_error)
17750 unqualified_name_lookup_error (decl);
17751 decl = error_mark_node;
17752 }
17753 RETURN (decl);
17754 }
17755
17756 case TEMPLATE_ID_EXPR:
17757 {
17758 tree object;
17759 tree templ = RECUR (TREE_OPERAND (t, 0));
17760 tree targs = TREE_OPERAND (t, 1);
17761
17762 if (targs)
17763 targs = tsubst_template_args (targs, args, complain, in_decl);
17764 if (targs == error_mark_node)
17765 RETURN (error_mark_node);
17766
17767 if (TREE_CODE (templ) == SCOPE_REF)
17768 {
17769 tree name = TREE_OPERAND (templ, 1);
17770 tree tid = lookup_template_function (name, targs);
17771 TREE_OPERAND (templ, 1) = tid;
17772 RETURN (templ);
17773 }
17774
17775 if (variable_template_p (templ))
17776 RETURN (lookup_and_finish_template_variable (templ, targs, complain));
17777
17778 if (TREE_CODE (templ) == COMPONENT_REF)
17779 {
17780 object = TREE_OPERAND (templ, 0);
17781 templ = TREE_OPERAND (templ, 1);
17782 }
17783 else
17784 object = NULL_TREE;
17785 templ = lookup_template_function (templ, targs);
17786
17787 if (object)
17788 RETURN (build3 (COMPONENT_REF, TREE_TYPE (templ),
17789 object, templ, NULL_TREE));
17790 else
17791 RETURN (baselink_for_fns (templ));
17792 }
17793
17794 case INDIRECT_REF:
17795 {
17796 tree r = RECUR (TREE_OPERAND (t, 0));
17797
17798 if (REFERENCE_REF_P (t))
17799 {
17800 /* A type conversion to reference type will be enclosed in
17801 such an indirect ref, but the substitution of the cast
17802 will have also added such an indirect ref. */
17803 r = convert_from_reference (r);
17804 }
17805 else
17806 r = build_x_indirect_ref (input_location, r, RO_UNARY_STAR,
17807 complain|decltype_flag);
17808
17809 if (REF_PARENTHESIZED_P (t))
17810 r = force_paren_expr (r);
17811
17812 RETURN (r);
17813 }
17814
17815 case NOP_EXPR:
17816 {
17817 tree type = tsubst (TREE_TYPE (t), args, complain, in_decl);
17818 tree op0 = RECUR (TREE_OPERAND (t, 0));
17819 RETURN (build_nop (type, op0));
17820 }
17821
17822 case IMPLICIT_CONV_EXPR:
17823 {
17824 tree type = tsubst (TREE_TYPE (t), args, complain, in_decl);
17825 tree expr = RECUR (TREE_OPERAND (t, 0));
17826 if (dependent_type_p (type) || type_dependent_expression_p (expr))
17827 {
17828 retval = copy_node (t);
17829 TREE_TYPE (retval) = type;
17830 TREE_OPERAND (retval, 0) = expr;
17831 RETURN (retval);
17832 }
17833 if (IMPLICIT_CONV_EXPR_NONTYPE_ARG (t))
17834 /* We'll pass this to convert_nontype_argument again, we don't need
17835 to actually perform any conversion here. */
17836 RETURN (expr);
17837 int flags = LOOKUP_IMPLICIT;
17838 if (IMPLICIT_CONV_EXPR_DIRECT_INIT (t))
17839 flags = LOOKUP_NORMAL;
17840 RETURN (perform_implicit_conversion_flags (type, expr, complain,
17841 flags));
17842 }
17843
17844 case CONVERT_EXPR:
17845 {
17846 tree type = tsubst (TREE_TYPE (t), args, complain, in_decl);
17847 tree op0 = RECUR (TREE_OPERAND (t, 0));
17848 if (op0 == error_mark_node)
17849 RETURN (error_mark_node);
17850 RETURN (build1 (CONVERT_EXPR, type, op0));
17851 }
17852
17853 case CAST_EXPR:
17854 case REINTERPRET_CAST_EXPR:
17855 case CONST_CAST_EXPR:
17856 case DYNAMIC_CAST_EXPR:
17857 case STATIC_CAST_EXPR:
17858 {
17859 tree type;
17860 tree op, r = NULL_TREE;
17861
17862 type = tsubst (TREE_TYPE (t), args, complain, in_decl);
17863 if (integral_constant_expression_p
17864 && !cast_valid_in_integral_constant_expression_p (type))
17865 {
17866 if (complain & tf_error)
17867 error ("a cast to a type other than an integral or "
17868 "enumeration type cannot appear in a constant-expression");
17869 RETURN (error_mark_node);
17870 }
17871
17872 op = RECUR (TREE_OPERAND (t, 0));
17873
17874 warning_sentinel s(warn_useless_cast);
17875 warning_sentinel s2(warn_ignored_qualifiers);
17876 switch (TREE_CODE (t))
17877 {
17878 case CAST_EXPR:
17879 r = build_functional_cast (type, op, complain);
17880 break;
17881 case REINTERPRET_CAST_EXPR:
17882 r = build_reinterpret_cast (type, op, complain);
17883 break;
17884 case CONST_CAST_EXPR:
17885 r = build_const_cast (type, op, complain);
17886 break;
17887 case DYNAMIC_CAST_EXPR:
17888 r = build_dynamic_cast (type, op, complain);
17889 break;
17890 case STATIC_CAST_EXPR:
17891 r = build_static_cast (type, op, complain);
17892 break;
17893 default:
17894 gcc_unreachable ();
17895 }
17896
17897 RETURN (r);
17898 }
17899
17900 case POSTDECREMENT_EXPR:
17901 case POSTINCREMENT_EXPR:
17902 op1 = tsubst_non_call_postfix_expression (TREE_OPERAND (t, 0),
17903 args, complain, in_decl);
17904 RETURN (build_x_unary_op (input_location, TREE_CODE (t), op1,
17905 complain|decltype_flag));
17906
17907 case PREDECREMENT_EXPR:
17908 case PREINCREMENT_EXPR:
17909 case NEGATE_EXPR:
17910 case BIT_NOT_EXPR:
17911 case ABS_EXPR:
17912 case TRUTH_NOT_EXPR:
17913 case UNARY_PLUS_EXPR: /* Unary + */
17914 case REALPART_EXPR:
17915 case IMAGPART_EXPR:
17916 RETURN (build_x_unary_op (input_location, TREE_CODE (t),
17917 RECUR (TREE_OPERAND (t, 0)),
17918 complain|decltype_flag));
17919
17920 case FIX_TRUNC_EXPR:
17921 gcc_unreachable ();
17922
17923 case ADDR_EXPR:
17924 op1 = TREE_OPERAND (t, 0);
17925 if (TREE_CODE (op1) == LABEL_DECL)
17926 RETURN (finish_label_address_expr (DECL_NAME (op1),
17927 EXPR_LOCATION (op1)));
17928 if (TREE_CODE (op1) == SCOPE_REF)
17929 op1 = tsubst_qualified_id (op1, args, complain, in_decl,
17930 /*done=*/true, /*address_p=*/true);
17931 else
17932 op1 = tsubst_non_call_postfix_expression (op1, args, complain,
17933 in_decl);
17934 RETURN (build_x_unary_op (input_location, ADDR_EXPR, op1,
17935 complain|decltype_flag));
17936
17937 case PLUS_EXPR:
17938 case MINUS_EXPR:
17939 case MULT_EXPR:
17940 case TRUNC_DIV_EXPR:
17941 case CEIL_DIV_EXPR:
17942 case FLOOR_DIV_EXPR:
17943 case ROUND_DIV_EXPR:
17944 case EXACT_DIV_EXPR:
17945 case BIT_AND_EXPR:
17946 case BIT_IOR_EXPR:
17947 case BIT_XOR_EXPR:
17948 case TRUNC_MOD_EXPR:
17949 case FLOOR_MOD_EXPR:
17950 case TRUTH_ANDIF_EXPR:
17951 case TRUTH_ORIF_EXPR:
17952 case TRUTH_AND_EXPR:
17953 case TRUTH_OR_EXPR:
17954 case RSHIFT_EXPR:
17955 case LSHIFT_EXPR:
17956 case RROTATE_EXPR:
17957 case LROTATE_EXPR:
17958 case EQ_EXPR:
17959 case NE_EXPR:
17960 case MAX_EXPR:
17961 case MIN_EXPR:
17962 case LE_EXPR:
17963 case GE_EXPR:
17964 case LT_EXPR:
17965 case GT_EXPR:
17966 case MEMBER_REF:
17967 case DOTSTAR_EXPR:
17968 {
17969 warning_sentinel s1(warn_type_limits);
17970 warning_sentinel s2(warn_div_by_zero);
17971 warning_sentinel s3(warn_logical_op);
17972 warning_sentinel s4(warn_tautological_compare);
17973 tree op0 = RECUR (TREE_OPERAND (t, 0));
17974 tree op1 = RECUR (TREE_OPERAND (t, 1));
17975 tree r = build_x_binary_op
17976 (input_location, TREE_CODE (t),
17977 op0,
17978 (TREE_NO_WARNING (TREE_OPERAND (t, 0))
17979 ? ERROR_MARK
17980 : TREE_CODE (TREE_OPERAND (t, 0))),
17981 op1,
17982 (TREE_NO_WARNING (TREE_OPERAND (t, 1))
17983 ? ERROR_MARK
17984 : TREE_CODE (TREE_OPERAND (t, 1))),
17985 /*overload=*/NULL,
17986 complain|decltype_flag);
17987 if (EXPR_P (r) && TREE_NO_WARNING (t))
17988 TREE_NO_WARNING (r) = TREE_NO_WARNING (t);
17989
17990 RETURN (r);
17991 }
17992
17993 case POINTER_PLUS_EXPR:
17994 {
17995 tree op0 = RECUR (TREE_OPERAND (t, 0));
17996 tree op1 = RECUR (TREE_OPERAND (t, 1));
17997 RETURN (fold_build_pointer_plus (op0, op1));
17998 }
17999
18000 case SCOPE_REF:
18001 RETURN (tsubst_qualified_id (t, args, complain, in_decl, /*done=*/true,
18002 /*address_p=*/false));
18003 case ARRAY_REF:
18004 op1 = tsubst_non_call_postfix_expression (TREE_OPERAND (t, 0),
18005 args, complain, in_decl);
18006 RETURN (build_x_array_ref (EXPR_LOCATION (t), op1,
18007 RECUR (TREE_OPERAND (t, 1)),
18008 complain|decltype_flag));
18009
18010 case SIZEOF_EXPR:
18011 if (PACK_EXPANSION_P (TREE_OPERAND (t, 0))
18012 || ARGUMENT_PACK_P (TREE_OPERAND (t, 0)))
18013 RETURN (tsubst_copy (t, args, complain, in_decl));
18014 /* Fall through */
18015
18016 case ALIGNOF_EXPR:
18017 {
18018 tree r;
18019
18020 op1 = TREE_OPERAND (t, 0);
18021 if (TREE_CODE (t) == SIZEOF_EXPR && SIZEOF_EXPR_TYPE_P (t))
18022 op1 = TREE_TYPE (op1);
18023 bool std_alignof = (TREE_CODE (t) == ALIGNOF_EXPR
18024 && ALIGNOF_EXPR_STD_P (t));
18025 if (!args)
18026 {
18027 /* When there are no ARGS, we are trying to evaluate a
18028 non-dependent expression from the parser. Trying to do
18029 the substitutions may not work. */
18030 if (!TYPE_P (op1))
18031 op1 = TREE_TYPE (op1);
18032 }
18033 else
18034 {
18035 ++cp_unevaluated_operand;
18036 ++c_inhibit_evaluation_warnings;
18037 if (TYPE_P (op1))
18038 op1 = tsubst (op1, args, complain, in_decl);
18039 else
18040 op1 = tsubst_copy_and_build (op1, args, complain, in_decl,
18041 /*function_p=*/false,
18042 /*integral_constant_expression_p=*/
18043 false);
18044 --cp_unevaluated_operand;
18045 --c_inhibit_evaluation_warnings;
18046 }
18047 if (TYPE_P (op1))
18048 r = cxx_sizeof_or_alignof_type (op1, TREE_CODE (t), std_alignof,
18049 complain & tf_error);
18050 else
18051 r = cxx_sizeof_or_alignof_expr (op1, TREE_CODE (t),
18052 complain & tf_error);
18053 if (TREE_CODE (t) == SIZEOF_EXPR && r != error_mark_node)
18054 {
18055 if (TREE_CODE (r) != SIZEOF_EXPR || TYPE_P (op1))
18056 {
18057 if (!processing_template_decl && TYPE_P (op1))
18058 {
18059 r = build_min (SIZEOF_EXPR, size_type_node,
18060 build1 (NOP_EXPR, op1, error_mark_node));
18061 SIZEOF_EXPR_TYPE_P (r) = 1;
18062 }
18063 else
18064 r = build_min (SIZEOF_EXPR, size_type_node, op1);
18065 TREE_SIDE_EFFECTS (r) = 0;
18066 TREE_READONLY (r) = 1;
18067 }
18068 SET_EXPR_LOCATION (r, EXPR_LOCATION (t));
18069 }
18070 RETURN (r);
18071 }
18072
18073 case AT_ENCODE_EXPR:
18074 {
18075 op1 = TREE_OPERAND (t, 0);
18076 ++cp_unevaluated_operand;
18077 ++c_inhibit_evaluation_warnings;
18078 op1 = tsubst_copy_and_build (op1, args, complain, in_decl,
18079 /*function_p=*/false,
18080 /*integral_constant_expression_p=*/false);
18081 --cp_unevaluated_operand;
18082 --c_inhibit_evaluation_warnings;
18083 RETURN (objc_build_encode_expr (op1));
18084 }
18085
18086 case NOEXCEPT_EXPR:
18087 op1 = TREE_OPERAND (t, 0);
18088 ++cp_unevaluated_operand;
18089 ++c_inhibit_evaluation_warnings;
18090 ++cp_noexcept_operand;
18091 op1 = tsubst_copy_and_build (op1, args, complain, in_decl,
18092 /*function_p=*/false,
18093 /*integral_constant_expression_p=*/false);
18094 --cp_unevaluated_operand;
18095 --c_inhibit_evaluation_warnings;
18096 --cp_noexcept_operand;
18097 RETURN (finish_noexcept_expr (op1, complain));
18098
18099 case MODOP_EXPR:
18100 {
18101 warning_sentinel s(warn_div_by_zero);
18102 tree lhs = RECUR (TREE_OPERAND (t, 0));
18103 tree rhs = RECUR (TREE_OPERAND (t, 2));
18104 tree r = build_x_modify_expr
18105 (EXPR_LOCATION (t), lhs, TREE_CODE (TREE_OPERAND (t, 1)), rhs,
18106 complain|decltype_flag);
18107 /* TREE_NO_WARNING must be set if either the expression was
18108 parenthesized or it uses an operator such as >>= rather
18109 than plain assignment. In the former case, it was already
18110 set and must be copied. In the latter case,
18111 build_x_modify_expr sets it and it must not be reset
18112 here. */
18113 if (TREE_NO_WARNING (t))
18114 TREE_NO_WARNING (r) = TREE_NO_WARNING (t);
18115
18116 RETURN (r);
18117 }
18118
18119 case ARROW_EXPR:
18120 op1 = tsubst_non_call_postfix_expression (TREE_OPERAND (t, 0),
18121 args, complain, in_decl);
18122 /* Remember that there was a reference to this entity. */
18123 if (DECL_P (op1)
18124 && !mark_used (op1, complain) && !(complain & tf_error))
18125 RETURN (error_mark_node);
18126 RETURN (build_x_arrow (input_location, op1, complain));
18127
18128 case NEW_EXPR:
18129 {
18130 tree placement = RECUR (TREE_OPERAND (t, 0));
18131 tree init = RECUR (TREE_OPERAND (t, 3));
18132 vec<tree, va_gc> *placement_vec;
18133 vec<tree, va_gc> *init_vec;
18134 tree ret;
18135
18136 if (placement == NULL_TREE)
18137 placement_vec = NULL;
18138 else
18139 {
18140 placement_vec = make_tree_vector ();
18141 for (; placement != NULL_TREE; placement = TREE_CHAIN (placement))
18142 vec_safe_push (placement_vec, TREE_VALUE (placement));
18143 }
18144
18145 /* If there was an initializer in the original tree, but it
18146 instantiated to an empty list, then we should pass a
18147 non-NULL empty vector to tell build_new that it was an
18148 empty initializer() rather than no initializer. This can
18149 only happen when the initializer is a pack expansion whose
18150 parameter packs are of length zero. */
18151 if (init == NULL_TREE && TREE_OPERAND (t, 3) == NULL_TREE)
18152 init_vec = NULL;
18153 else
18154 {
18155 init_vec = make_tree_vector ();
18156 if (init == void_node)
18157 gcc_assert (init_vec != NULL);
18158 else
18159 {
18160 for (; init != NULL_TREE; init = TREE_CHAIN (init))
18161 vec_safe_push (init_vec, TREE_VALUE (init));
18162 }
18163 }
18164
18165 /* Avoid passing an enclosing decl to valid_array_size_p. */
18166 in_decl = NULL_TREE;
18167
18168 tree op1 = tsubst (TREE_OPERAND (t, 1), args, complain, in_decl);
18169 tree op2 = RECUR (TREE_OPERAND (t, 2));
18170 ret = build_new (&placement_vec, op1, op2, &init_vec,
18171 NEW_EXPR_USE_GLOBAL (t),
18172 complain);
18173
18174 if (placement_vec != NULL)
18175 release_tree_vector (placement_vec);
18176 if (init_vec != NULL)
18177 release_tree_vector (init_vec);
18178
18179 RETURN (ret);
18180 }
18181
18182 case DELETE_EXPR:
18183 {
18184 tree op0 = RECUR (TREE_OPERAND (t, 0));
18185 tree op1 = RECUR (TREE_OPERAND (t, 1));
18186 RETURN (delete_sanity (op0, op1,
18187 DELETE_EXPR_USE_VEC (t),
18188 DELETE_EXPR_USE_GLOBAL (t),
18189 complain));
18190 }
18191
18192 case COMPOUND_EXPR:
18193 {
18194 tree op0 = tsubst_copy_and_build (TREE_OPERAND (t, 0), args,
18195 complain & ~tf_decltype, in_decl,
18196 /*function_p=*/false,
18197 integral_constant_expression_p);
18198 RETURN (build_x_compound_expr (EXPR_LOCATION (t),
18199 op0,
18200 RECUR (TREE_OPERAND (t, 1)),
18201 complain|decltype_flag));
18202 }
18203
18204 case CALL_EXPR:
18205 {
18206 tree function;
18207 vec<tree, va_gc> *call_args;
18208 unsigned int nargs, i;
18209 bool qualified_p;
18210 bool koenig_p;
18211 tree ret;
18212
18213 function = CALL_EXPR_FN (t);
18214 /* Internal function with no arguments. */
18215 if (function == NULL_TREE && call_expr_nargs (t) == 0)
18216 RETURN (t);
18217
18218 /* When we parsed the expression, we determined whether or
18219 not Koenig lookup should be performed. */
18220 koenig_p = KOENIG_LOOKUP_P (t);
18221 if (function == NULL_TREE)
18222 {
18223 koenig_p = false;
18224 qualified_p = false;
18225 }
18226 else if (TREE_CODE (function) == SCOPE_REF)
18227 {
18228 qualified_p = true;
18229 function = tsubst_qualified_id (function, args, complain, in_decl,
18230 /*done=*/false,
18231 /*address_p=*/false);
18232 }
18233 else if (koenig_p && identifier_p (function))
18234 {
18235 /* Do nothing; calling tsubst_copy_and_build on an identifier
18236 would incorrectly perform unqualified lookup again.
18237
18238 Note that we can also have an IDENTIFIER_NODE if the earlier
18239 unqualified lookup found a member function; in that case
18240 koenig_p will be false and we do want to do the lookup
18241 again to find the instantiated member function.
18242
18243 FIXME but doing that causes c++/15272, so we need to stop
18244 using IDENTIFIER_NODE in that situation. */
18245 qualified_p = false;
18246 }
18247 else
18248 {
18249 if (TREE_CODE (function) == COMPONENT_REF)
18250 {
18251 tree op = TREE_OPERAND (function, 1);
18252
18253 qualified_p = (TREE_CODE (op) == SCOPE_REF
18254 || (BASELINK_P (op)
18255 && BASELINK_QUALIFIED_P (op)));
18256 }
18257 else
18258 qualified_p = false;
18259
18260 if (TREE_CODE (function) == ADDR_EXPR
18261 && TREE_CODE (TREE_OPERAND (function, 0)) == FUNCTION_DECL)
18262 /* Avoid error about taking the address of a constructor. */
18263 function = TREE_OPERAND (function, 0);
18264
18265 function = tsubst_copy_and_build (function, args, complain,
18266 in_decl,
18267 !qualified_p,
18268 integral_constant_expression_p);
18269
18270 if (BASELINK_P (function))
18271 qualified_p = true;
18272 }
18273
18274 nargs = call_expr_nargs (t);
18275 call_args = make_tree_vector ();
18276 for (i = 0; i < nargs; ++i)
18277 {
18278 tree arg = CALL_EXPR_ARG (t, i);
18279
18280 if (!PACK_EXPANSION_P (arg))
18281 vec_safe_push (call_args, RECUR (CALL_EXPR_ARG (t, i)));
18282 else
18283 {
18284 /* Expand the pack expansion and push each entry onto
18285 CALL_ARGS. */
18286 arg = tsubst_pack_expansion (arg, args, complain, in_decl);
18287 if (TREE_CODE (arg) == TREE_VEC)
18288 {
18289 unsigned int len, j;
18290
18291 len = TREE_VEC_LENGTH (arg);
18292 for (j = 0; j < len; ++j)
18293 {
18294 tree value = TREE_VEC_ELT (arg, j);
18295 if (value != NULL_TREE)
18296 value = convert_from_reference (value);
18297 vec_safe_push (call_args, value);
18298 }
18299 }
18300 else
18301 {
18302 /* A partial substitution. Add one entry. */
18303 vec_safe_push (call_args, arg);
18304 }
18305 }
18306 }
18307
18308 /* We do not perform argument-dependent lookup if normal
18309 lookup finds a non-function, in accordance with the
18310 expected resolution of DR 218. */
18311 if (koenig_p
18312 && ((is_overloaded_fn (function)
18313 /* If lookup found a member function, the Koenig lookup is
18314 not appropriate, even if an unqualified-name was used
18315 to denote the function. */
18316 && !DECL_FUNCTION_MEMBER_P (get_first_fn (function)))
18317 || identifier_p (function))
18318 /* Only do this when substitution turns a dependent call
18319 into a non-dependent call. */
18320 && type_dependent_expression_p_push (t)
18321 && !any_type_dependent_arguments_p (call_args))
18322 function = perform_koenig_lookup (function, call_args, tf_none);
18323
18324 if (function != NULL_TREE
18325 && identifier_p (function)
18326 && !any_type_dependent_arguments_p (call_args))
18327 {
18328 if (koenig_p && (complain & tf_warning_or_error))
18329 {
18330 /* For backwards compatibility and good diagnostics, try
18331 the unqualified lookup again if we aren't in SFINAE
18332 context. */
18333 tree unq = (tsubst_copy_and_build
18334 (function, args, complain, in_decl, true,
18335 integral_constant_expression_p));
18336 if (unq == error_mark_node)
18337 {
18338 release_tree_vector (call_args);
18339 RETURN (error_mark_node);
18340 }
18341
18342 if (unq != function)
18343 {
18344 /* In a lambda fn, we have to be careful to not
18345 introduce new this captures. Legacy code can't
18346 be using lambdas anyway, so it's ok to be
18347 stricter. */
18348 bool in_lambda = (current_class_type
18349 && LAMBDA_TYPE_P (current_class_type));
18350 char const *const msg
18351 = G_("%qD was not declared in this scope, "
18352 "and no declarations were found by "
18353 "argument-dependent lookup at the point "
18354 "of instantiation");
18355
18356 bool diag = true;
18357 if (in_lambda)
18358 error_at (EXPR_LOC_OR_LOC (t, input_location),
18359 msg, function);
18360 else
18361 diag = permerror (EXPR_LOC_OR_LOC (t, input_location),
18362 msg, function);
18363 if (diag)
18364 {
18365 tree fn = unq;
18366
18367 if (INDIRECT_REF_P (fn))
18368 fn = TREE_OPERAND (fn, 0);
18369 if (is_overloaded_fn (fn))
18370 fn = get_first_fn (fn);
18371
18372 if (!DECL_P (fn))
18373 /* Can't say anything more. */;
18374 else if (DECL_CLASS_SCOPE_P (fn))
18375 {
18376 location_t loc = EXPR_LOC_OR_LOC (t,
18377 input_location);
18378 inform (loc,
18379 "declarations in dependent base %qT are "
18380 "not found by unqualified lookup",
18381 DECL_CLASS_CONTEXT (fn));
18382 if (current_class_ptr)
18383 inform (loc,
18384 "use %<this->%D%> instead", function);
18385 else
18386 inform (loc,
18387 "use %<%T::%D%> instead",
18388 current_class_name, function);
18389 }
18390 else
18391 inform (DECL_SOURCE_LOCATION (fn),
18392 "%qD declared here, later in the "
18393 "translation unit", fn);
18394 if (in_lambda)
18395 {
18396 release_tree_vector (call_args);
18397 RETURN (error_mark_node);
18398 }
18399 }
18400
18401 function = unq;
18402 }
18403 }
18404 if (identifier_p (function))
18405 {
18406 if (complain & tf_error)
18407 unqualified_name_lookup_error (function);
18408 release_tree_vector (call_args);
18409 RETURN (error_mark_node);
18410 }
18411 }
18412
18413 /* Remember that there was a reference to this entity. */
18414 if (function != NULL_TREE
18415 && DECL_P (function)
18416 && !mark_used (function, complain) && !(complain & tf_error))
18417 {
18418 release_tree_vector (call_args);
18419 RETURN (error_mark_node);
18420 }
18421
18422 /* Put back tf_decltype for the actual call. */
18423 complain |= decltype_flag;
18424
18425 if (function == NULL_TREE)
18426 switch (CALL_EXPR_IFN (t))
18427 {
18428 case IFN_LAUNDER:
18429 gcc_assert (nargs == 1);
18430 if (vec_safe_length (call_args) != 1)
18431 {
18432 error_at (EXPR_LOC_OR_LOC (t, input_location),
18433 "wrong number of arguments to "
18434 "%<__builtin_launder%>");
18435 ret = error_mark_node;
18436 }
18437 else
18438 ret = finish_builtin_launder (EXPR_LOC_OR_LOC (t,
18439 input_location),
18440 (*call_args)[0], complain);
18441 break;
18442
18443 default:
18444 /* Unsupported internal function with arguments. */
18445 gcc_unreachable ();
18446 }
18447 else if (TREE_CODE (function) == OFFSET_REF
18448 || TREE_CODE (function) == DOTSTAR_EXPR
18449 || TREE_CODE (function) == MEMBER_REF)
18450 ret = build_offset_ref_call_from_tree (function, &call_args,
18451 complain);
18452 else if (TREE_CODE (function) == COMPONENT_REF)
18453 {
18454 tree instance = TREE_OPERAND (function, 0);
18455 tree fn = TREE_OPERAND (function, 1);
18456
18457 if (processing_template_decl
18458 && (type_dependent_expression_p (instance)
18459 || (!BASELINK_P (fn)
18460 && TREE_CODE (fn) != FIELD_DECL)
18461 || type_dependent_expression_p (fn)
18462 || any_type_dependent_arguments_p (call_args)))
18463 ret = build_min_nt_call_vec (function, call_args);
18464 else if (!BASELINK_P (fn))
18465 ret = finish_call_expr (function, &call_args,
18466 /*disallow_virtual=*/false,
18467 /*koenig_p=*/false,
18468 complain);
18469 else
18470 ret = (build_new_method_call
18471 (instance, fn,
18472 &call_args, NULL_TREE,
18473 qualified_p ? LOOKUP_NONVIRTUAL : LOOKUP_NORMAL,
18474 /*fn_p=*/NULL,
18475 complain));
18476 }
18477 else
18478 ret = finish_call_expr (function, &call_args,
18479 /*disallow_virtual=*/qualified_p,
18480 koenig_p,
18481 complain);
18482
18483 release_tree_vector (call_args);
18484
18485 if (ret != error_mark_node)
18486 {
18487 bool op = CALL_EXPR_OPERATOR_SYNTAX (t);
18488 bool ord = CALL_EXPR_ORDERED_ARGS (t);
18489 bool rev = CALL_EXPR_REVERSE_ARGS (t);
18490 bool thk = CALL_FROM_THUNK_P (t);
18491 if (op || ord || rev || thk)
18492 {
18493 function = extract_call_expr (ret);
18494 CALL_EXPR_OPERATOR_SYNTAX (function) = op;
18495 CALL_EXPR_ORDERED_ARGS (function) = ord;
18496 CALL_EXPR_REVERSE_ARGS (function) = rev;
18497 if (thk)
18498 {
18499 if (TREE_CODE (function) == CALL_EXPR)
18500 CALL_FROM_THUNK_P (function) = true;
18501 else
18502 AGGR_INIT_FROM_THUNK_P (function) = true;
18503 /* The thunk location is not interesting. */
18504 SET_EXPR_LOCATION (function, UNKNOWN_LOCATION);
18505 }
18506 }
18507 }
18508
18509 RETURN (ret);
18510 }
18511
18512 case COND_EXPR:
18513 {
18514 tree cond = RECUR (TREE_OPERAND (t, 0));
18515 tree folded_cond = fold_non_dependent_expr (cond);
18516 tree exp1, exp2;
18517
18518 if (TREE_CODE (folded_cond) == INTEGER_CST)
18519 {
18520 if (integer_zerop (folded_cond))
18521 {
18522 ++c_inhibit_evaluation_warnings;
18523 exp1 = RECUR (TREE_OPERAND (t, 1));
18524 --c_inhibit_evaluation_warnings;
18525 exp2 = RECUR (TREE_OPERAND (t, 2));
18526 }
18527 else
18528 {
18529 exp1 = RECUR (TREE_OPERAND (t, 1));
18530 ++c_inhibit_evaluation_warnings;
18531 exp2 = RECUR (TREE_OPERAND (t, 2));
18532 --c_inhibit_evaluation_warnings;
18533 }
18534 cond = folded_cond;
18535 }
18536 else
18537 {
18538 exp1 = RECUR (TREE_OPERAND (t, 1));
18539 exp2 = RECUR (TREE_OPERAND (t, 2));
18540 }
18541
18542 warning_sentinel s(warn_duplicated_branches);
18543 RETURN (build_x_conditional_expr (EXPR_LOCATION (t),
18544 cond, exp1, exp2, complain));
18545 }
18546
18547 case PSEUDO_DTOR_EXPR:
18548 {
18549 tree op0 = RECUR (TREE_OPERAND (t, 0));
18550 tree op1 = RECUR (TREE_OPERAND (t, 1));
18551 tree op2 = tsubst (TREE_OPERAND (t, 2), args, complain, in_decl);
18552 RETURN (finish_pseudo_destructor_expr (op0, op1, op2,
18553 input_location));
18554 }
18555
18556 case TREE_LIST:
18557 {
18558 tree purpose, value, chain;
18559
18560 if (t == void_list_node)
18561 RETURN (t);
18562
18563 if ((TREE_PURPOSE (t) && PACK_EXPANSION_P (TREE_PURPOSE (t)))
18564 || (TREE_VALUE (t) && PACK_EXPANSION_P (TREE_VALUE (t))))
18565 {
18566 /* We have pack expansions, so expand those and
18567 create a new list out of it. */
18568 tree purposevec = NULL_TREE;
18569 tree valuevec = NULL_TREE;
18570 tree chain;
18571 int i, len = -1;
18572
18573 /* Expand the argument expressions. */
18574 if (TREE_PURPOSE (t))
18575 purposevec = tsubst_pack_expansion (TREE_PURPOSE (t), args,
18576 complain, in_decl);
18577 if (TREE_VALUE (t))
18578 valuevec = tsubst_pack_expansion (TREE_VALUE (t), args,
18579 complain, in_decl);
18580
18581 /* Build the rest of the list. */
18582 chain = TREE_CHAIN (t);
18583 if (chain && chain != void_type_node)
18584 chain = RECUR (chain);
18585
18586 /* Determine the number of arguments. */
18587 if (purposevec && TREE_CODE (purposevec) == TREE_VEC)
18588 {
18589 len = TREE_VEC_LENGTH (purposevec);
18590 gcc_assert (!valuevec || len == TREE_VEC_LENGTH (valuevec));
18591 }
18592 else if (TREE_CODE (valuevec) == TREE_VEC)
18593 len = TREE_VEC_LENGTH (valuevec);
18594 else
18595 {
18596 /* Since we only performed a partial substitution into
18597 the argument pack, we only RETURN (a single list
18598 node. */
18599 if (purposevec == TREE_PURPOSE (t)
18600 && valuevec == TREE_VALUE (t)
18601 && chain == TREE_CHAIN (t))
18602 RETURN (t);
18603
18604 RETURN (tree_cons (purposevec, valuevec, chain));
18605 }
18606
18607 /* Convert the argument vectors into a TREE_LIST */
18608 i = len;
18609 while (i > 0)
18610 {
18611 /* Grab the Ith values. */
18612 i--;
18613 purpose = purposevec ? TREE_VEC_ELT (purposevec, i)
18614 : NULL_TREE;
18615 value
18616 = valuevec ? convert_from_reference (TREE_VEC_ELT (valuevec, i))
18617 : NULL_TREE;
18618
18619 /* Build the list (backwards). */
18620 chain = tree_cons (purpose, value, chain);
18621 }
18622
18623 RETURN (chain);
18624 }
18625
18626 purpose = TREE_PURPOSE (t);
18627 if (purpose)
18628 purpose = RECUR (purpose);
18629 value = TREE_VALUE (t);
18630 if (value)
18631 value = RECUR (value);
18632 chain = TREE_CHAIN (t);
18633 if (chain && chain != void_type_node)
18634 chain = RECUR (chain);
18635 if (purpose == TREE_PURPOSE (t)
18636 && value == TREE_VALUE (t)
18637 && chain == TREE_CHAIN (t))
18638 RETURN (t);
18639 RETURN (tree_cons (purpose, value, chain));
18640 }
18641
18642 case COMPONENT_REF:
18643 {
18644 tree object;
18645 tree object_type;
18646 tree member;
18647 tree r;
18648
18649 object = tsubst_non_call_postfix_expression (TREE_OPERAND (t, 0),
18650 args, complain, in_decl);
18651 /* Remember that there was a reference to this entity. */
18652 if (DECL_P (object)
18653 && !mark_used (object, complain) && !(complain & tf_error))
18654 RETURN (error_mark_node);
18655 object_type = TREE_TYPE (object);
18656
18657 member = TREE_OPERAND (t, 1);
18658 if (BASELINK_P (member))
18659 member = tsubst_baselink (member,
18660 non_reference (TREE_TYPE (object)),
18661 args, complain, in_decl);
18662 else
18663 member = tsubst_copy (member, args, complain, in_decl);
18664 if (member == error_mark_node)
18665 RETURN (error_mark_node);
18666
18667 if (TREE_CODE (member) == FIELD_DECL)
18668 {
18669 r = finish_non_static_data_member (member, object, NULL_TREE);
18670 if (TREE_CODE (r) == COMPONENT_REF)
18671 REF_PARENTHESIZED_P (r) = REF_PARENTHESIZED_P (t);
18672 RETURN (r);
18673 }
18674 else if (type_dependent_expression_p (object))
18675 /* We can't do much here. */;
18676 else if (!CLASS_TYPE_P (object_type))
18677 {
18678 if (scalarish_type_p (object_type))
18679 {
18680 tree s = NULL_TREE;
18681 tree dtor = member;
18682
18683 if (TREE_CODE (dtor) == SCOPE_REF)
18684 {
18685 s = TREE_OPERAND (dtor, 0);
18686 dtor = TREE_OPERAND (dtor, 1);
18687 }
18688 if (TREE_CODE (dtor) == BIT_NOT_EXPR)
18689 {
18690 dtor = TREE_OPERAND (dtor, 0);
18691 if (TYPE_P (dtor))
18692 RETURN (finish_pseudo_destructor_expr
18693 (object, s, dtor, input_location));
18694 }
18695 }
18696 }
18697 else if (TREE_CODE (member) == SCOPE_REF
18698 && TREE_CODE (TREE_OPERAND (member, 1)) == TEMPLATE_ID_EXPR)
18699 {
18700 /* Lookup the template functions now that we know what the
18701 scope is. */
18702 tree scope = TREE_OPERAND (member, 0);
18703 tree tmpl = TREE_OPERAND (TREE_OPERAND (member, 1), 0);
18704 tree args = TREE_OPERAND (TREE_OPERAND (member, 1), 1);
18705 member = lookup_qualified_name (scope, tmpl,
18706 /*is_type_p=*/false,
18707 /*complain=*/false);
18708 if (BASELINK_P (member))
18709 {
18710 BASELINK_FUNCTIONS (member)
18711 = build_nt (TEMPLATE_ID_EXPR, BASELINK_FUNCTIONS (member),
18712 args);
18713 member = (adjust_result_of_qualified_name_lookup
18714 (member, BINFO_TYPE (BASELINK_BINFO (member)),
18715 object_type));
18716 }
18717 else
18718 {
18719 qualified_name_lookup_error (scope, tmpl, member,
18720 input_location);
18721 RETURN (error_mark_node);
18722 }
18723 }
18724 else if (TREE_CODE (member) == SCOPE_REF
18725 && !CLASS_TYPE_P (TREE_OPERAND (member, 0))
18726 && TREE_CODE (TREE_OPERAND (member, 0)) != NAMESPACE_DECL)
18727 {
18728 if (complain & tf_error)
18729 {
18730 if (TYPE_P (TREE_OPERAND (member, 0)))
18731 error ("%qT is not a class or namespace",
18732 TREE_OPERAND (member, 0));
18733 else
18734 error ("%qD is not a class or namespace",
18735 TREE_OPERAND (member, 0));
18736 }
18737 RETURN (error_mark_node);
18738 }
18739
18740 r = finish_class_member_access_expr (object, member,
18741 /*template_p=*/false,
18742 complain);
18743 if (TREE_CODE (r) == COMPONENT_REF)
18744 REF_PARENTHESIZED_P (r) = REF_PARENTHESIZED_P (t);
18745 RETURN (r);
18746 }
18747
18748 case THROW_EXPR:
18749 RETURN (build_throw
18750 (RECUR (TREE_OPERAND (t, 0))));
18751
18752 case CONSTRUCTOR:
18753 {
18754 vec<constructor_elt, va_gc> *n;
18755 constructor_elt *ce;
18756 unsigned HOST_WIDE_INT idx;
18757 tree type = tsubst (TREE_TYPE (t), args, complain, in_decl);
18758 bool process_index_p;
18759 int newlen;
18760 bool need_copy_p = false;
18761 tree r;
18762
18763 if (type == error_mark_node)
18764 RETURN (error_mark_node);
18765
18766 /* We do not want to process the index of aggregate
18767 initializers as they are identifier nodes which will be
18768 looked up by digest_init. */
18769 process_index_p = !(type && MAYBE_CLASS_TYPE_P (type));
18770
18771 n = vec_safe_copy (CONSTRUCTOR_ELTS (t));
18772 newlen = vec_safe_length (n);
18773 FOR_EACH_VEC_SAFE_ELT (n, idx, ce)
18774 {
18775 if (ce->index && process_index_p
18776 /* An identifier index is looked up in the type
18777 being initialized, not the current scope. */
18778 && TREE_CODE (ce->index) != IDENTIFIER_NODE)
18779 ce->index = RECUR (ce->index);
18780
18781 if (PACK_EXPANSION_P (ce->value))
18782 {
18783 /* Substitute into the pack expansion. */
18784 ce->value = tsubst_pack_expansion (ce->value, args, complain,
18785 in_decl);
18786
18787 if (ce->value == error_mark_node
18788 || PACK_EXPANSION_P (ce->value))
18789 ;
18790 else if (TREE_VEC_LENGTH (ce->value) == 1)
18791 /* Just move the argument into place. */
18792 ce->value = TREE_VEC_ELT (ce->value, 0);
18793 else
18794 {
18795 /* Update the length of the final CONSTRUCTOR
18796 arguments vector, and note that we will need to
18797 copy.*/
18798 newlen = newlen + TREE_VEC_LENGTH (ce->value) - 1;
18799 need_copy_p = true;
18800 }
18801 }
18802 else
18803 ce->value = RECUR (ce->value);
18804 }
18805
18806 if (need_copy_p)
18807 {
18808 vec<constructor_elt, va_gc> *old_n = n;
18809
18810 vec_alloc (n, newlen);
18811 FOR_EACH_VEC_ELT (*old_n, idx, ce)
18812 {
18813 if (TREE_CODE (ce->value) == TREE_VEC)
18814 {
18815 int i, len = TREE_VEC_LENGTH (ce->value);
18816 for (i = 0; i < len; ++i)
18817 CONSTRUCTOR_APPEND_ELT (n, 0,
18818 TREE_VEC_ELT (ce->value, i));
18819 }
18820 else
18821 CONSTRUCTOR_APPEND_ELT (n, 0, ce->value);
18822 }
18823 }
18824
18825 r = build_constructor (init_list_type_node, n);
18826 CONSTRUCTOR_IS_DIRECT_INIT (r) = CONSTRUCTOR_IS_DIRECT_INIT (t);
18827
18828 if (TREE_HAS_CONSTRUCTOR (t))
18829 {
18830 fcl_t cl = fcl_functional;
18831 if (CONSTRUCTOR_C99_COMPOUND_LITERAL (t))
18832 cl = fcl_c99;
18833 RETURN (finish_compound_literal (type, r, complain, cl));
18834 }
18835
18836 TREE_TYPE (r) = type;
18837 RETURN (r);
18838 }
18839
18840 case TYPEID_EXPR:
18841 {
18842 tree operand_0 = TREE_OPERAND (t, 0);
18843 if (TYPE_P (operand_0))
18844 {
18845 operand_0 = tsubst (operand_0, args, complain, in_decl);
18846 RETURN (get_typeid (operand_0, complain));
18847 }
18848 else
18849 {
18850 operand_0 = RECUR (operand_0);
18851 RETURN (build_typeid (operand_0, complain));
18852 }
18853 }
18854
18855 case VAR_DECL:
18856 if (!args)
18857 RETURN (t);
18858 /* Fall through */
18859
18860 case PARM_DECL:
18861 {
18862 tree r = tsubst_copy (t, args, complain, in_decl);
18863 /* ??? We're doing a subset of finish_id_expression here. */
18864 if (VAR_P (r)
18865 && !processing_template_decl
18866 && !cp_unevaluated_operand
18867 && (TREE_STATIC (r) || DECL_EXTERNAL (r))
18868 && CP_DECL_THREAD_LOCAL_P (r))
18869 {
18870 if (tree wrap = get_tls_wrapper_fn (r))
18871 /* Replace an evaluated use of the thread_local variable with
18872 a call to its wrapper. */
18873 r = build_cxx_call (wrap, 0, NULL, tf_warning_or_error);
18874 }
18875 else if (outer_automatic_var_p (r))
18876 r = process_outer_var_ref (r, complain);
18877
18878 if (!TYPE_REF_P (TREE_TYPE (t)))
18879 /* If the original type was a reference, we'll be wrapped in
18880 the appropriate INDIRECT_REF. */
18881 r = convert_from_reference (r);
18882 RETURN (r);
18883 }
18884
18885 case VA_ARG_EXPR:
18886 {
18887 tree op0 = RECUR (TREE_OPERAND (t, 0));
18888 tree type = tsubst (TREE_TYPE (t), args, complain, in_decl);
18889 RETURN (build_x_va_arg (EXPR_LOCATION (t), op0, type));
18890 }
18891
18892 case OFFSETOF_EXPR:
18893 {
18894 tree object_ptr
18895 = tsubst_copy_and_build (TREE_OPERAND (t, 1), args, complain,
18896 in_decl, /*function_p=*/false,
18897 /*integral_constant_expression_p=*/false);
18898 RETURN (finish_offsetof (object_ptr,
18899 RECUR (TREE_OPERAND (t, 0)),
18900 EXPR_LOCATION (t)));
18901 }
18902
18903 case ADDRESSOF_EXPR:
18904 RETURN (cp_build_addressof (EXPR_LOCATION (t),
18905 RECUR (TREE_OPERAND (t, 0)), complain));
18906
18907 case TRAIT_EXPR:
18908 {
18909 tree type1 = tsubst (TRAIT_EXPR_TYPE1 (t), args,
18910 complain, in_decl);
18911
18912 tree type2 = TRAIT_EXPR_TYPE2 (t);
18913 if (type2 && TREE_CODE (type2) == TREE_LIST)
18914 type2 = RECUR (type2);
18915 else if (type2)
18916 type2 = tsubst (type2, args, complain, in_decl);
18917
18918 RETURN (finish_trait_expr (TRAIT_EXPR_KIND (t), type1, type2));
18919 }
18920
18921 case STMT_EXPR:
18922 {
18923 tree old_stmt_expr = cur_stmt_expr;
18924 tree stmt_expr = begin_stmt_expr ();
18925
18926 cur_stmt_expr = stmt_expr;
18927 tsubst_expr (STMT_EXPR_STMT (t), args, complain, in_decl,
18928 integral_constant_expression_p);
18929 stmt_expr = finish_stmt_expr (stmt_expr, false);
18930 cur_stmt_expr = old_stmt_expr;
18931
18932 /* If the resulting list of expression statement is empty,
18933 fold it further into void_node. */
18934 if (empty_expr_stmt_p (stmt_expr))
18935 stmt_expr = void_node;
18936
18937 RETURN (stmt_expr);
18938 }
18939
18940 case LAMBDA_EXPR:
18941 {
18942 tree r = tsubst_lambda_expr (t, args, complain, in_decl);
18943
18944 RETURN (build_lambda_object (r));
18945 }
18946
18947 case TARGET_EXPR:
18948 /* We can get here for a constant initializer of non-dependent type.
18949 FIXME stop folding in cp_parser_initializer_clause. */
18950 {
18951 tree r = get_target_expr_sfinae (RECUR (TARGET_EXPR_INITIAL (t)),
18952 complain);
18953 RETURN (r);
18954 }
18955
18956 case TRANSACTION_EXPR:
18957 RETURN (tsubst_expr(t, args, complain, in_decl,
18958 integral_constant_expression_p));
18959
18960 case PAREN_EXPR:
18961 RETURN (finish_parenthesized_expr (RECUR (TREE_OPERAND (t, 0))));
18962
18963 case VEC_PERM_EXPR:
18964 {
18965 tree op0 = RECUR (TREE_OPERAND (t, 0));
18966 tree op1 = RECUR (TREE_OPERAND (t, 1));
18967 tree op2 = RECUR (TREE_OPERAND (t, 2));
18968 RETURN (build_x_vec_perm_expr (input_location, op0, op1, op2,
18969 complain));
18970 }
18971
18972 case REQUIRES_EXPR:
18973 RETURN (tsubst_requires_expr (t, args, complain, in_decl));
18974
18975 case NON_LVALUE_EXPR:
18976 case VIEW_CONVERT_EXPR:
18977 /* We should only see these for location wrapper nodes, or within
18978 instantiate_non_dependent_expr (when args is NULL_TREE). */
18979 gcc_assert (location_wrapper_p (t) || args == NULL_TREE);
18980 if (location_wrapper_p (t))
18981 RETURN (maybe_wrap_with_location (RECUR (TREE_OPERAND (t, 0)),
18982 EXPR_LOCATION (t)));
18983 /* fallthrough. */
18984
18985 default:
18986 /* Handle Objective-C++ constructs, if appropriate. */
18987 {
18988 tree subst
18989 = objcp_tsubst_copy_and_build (t, args, complain,
18990 in_decl, /*function_p=*/false);
18991 if (subst)
18992 RETURN (subst);
18993 }
18994 RETURN (tsubst_copy (t, args, complain, in_decl));
18995 }
18996
18997 #undef RECUR
18998 #undef RETURN
18999 out:
19000 input_location = loc;
19001 return retval;
19002 }
19003
19004 /* Verify that the instantiated ARGS are valid. For type arguments,
19005 make sure that the type's linkage is ok. For non-type arguments,
19006 make sure they are constants if they are integral or enumerations.
19007 Emit an error under control of COMPLAIN, and return TRUE on error. */
19008
19009 static bool
19010 check_instantiated_arg (tree tmpl, tree t, tsubst_flags_t complain)
19011 {
19012 if (dependent_template_arg_p (t))
19013 return false;
19014 if (ARGUMENT_PACK_P (t))
19015 {
19016 tree vec = ARGUMENT_PACK_ARGS (t);
19017 int len = TREE_VEC_LENGTH (vec);
19018 bool result = false;
19019 int i;
19020
19021 for (i = 0; i < len; ++i)
19022 if (check_instantiated_arg (tmpl, TREE_VEC_ELT (vec, i), complain))
19023 result = true;
19024 return result;
19025 }
19026 else if (TYPE_P (t))
19027 {
19028 /* [basic.link]: A name with no linkage (notably, the name
19029 of a class or enumeration declared in a local scope)
19030 shall not be used to declare an entity with linkage.
19031 This implies that names with no linkage cannot be used as
19032 template arguments
19033
19034 DR 757 relaxes this restriction for C++0x. */
19035 tree nt = (cxx_dialect > cxx98 ? NULL_TREE
19036 : no_linkage_check (t, /*relaxed_p=*/false));
19037
19038 if (nt)
19039 {
19040 /* DR 488 makes use of a type with no linkage cause
19041 type deduction to fail. */
19042 if (complain & tf_error)
19043 {
19044 if (TYPE_UNNAMED_P (nt))
19045 error ("%qT is/uses unnamed type", t);
19046 else
19047 error ("template argument for %qD uses local type %qT",
19048 tmpl, t);
19049 }
19050 return true;
19051 }
19052 /* In order to avoid all sorts of complications, we do not
19053 allow variably-modified types as template arguments. */
19054 else if (variably_modified_type_p (t, NULL_TREE))
19055 {
19056 if (complain & tf_error)
19057 error ("%qT is a variably modified type", t);
19058 return true;
19059 }
19060 }
19061 /* Class template and alias template arguments should be OK. */
19062 else if (DECL_TYPE_TEMPLATE_P (t))
19063 ;
19064 /* A non-type argument of integral or enumerated type must be a
19065 constant. */
19066 else if (TREE_TYPE (t)
19067 && INTEGRAL_OR_ENUMERATION_TYPE_P (TREE_TYPE (t))
19068 && !REFERENCE_REF_P (t)
19069 && !TREE_CONSTANT (t))
19070 {
19071 if (complain & tf_error)
19072 error ("integral expression %qE is not constant", t);
19073 return true;
19074 }
19075 return false;
19076 }
19077
19078 static bool
19079 check_instantiated_args (tree tmpl, tree args, tsubst_flags_t complain)
19080 {
19081 int ix, len = DECL_NTPARMS (tmpl);
19082 bool result = false;
19083
19084 for (ix = 0; ix != len; ix++)
19085 {
19086 if (check_instantiated_arg (tmpl, TREE_VEC_ELT (args, ix), complain))
19087 result = true;
19088 }
19089 if (result && (complain & tf_error))
19090 error (" trying to instantiate %qD", tmpl);
19091 return result;
19092 }
19093
19094 /* We're out of SFINAE context now, so generate diagnostics for the access
19095 errors we saw earlier when instantiating D from TMPL and ARGS. */
19096
19097 static void
19098 recheck_decl_substitution (tree d, tree tmpl, tree args)
19099 {
19100 tree pattern = DECL_TEMPLATE_RESULT (tmpl);
19101 tree type = TREE_TYPE (pattern);
19102 location_t loc = input_location;
19103
19104 push_access_scope (d);
19105 push_deferring_access_checks (dk_no_deferred);
19106 input_location = DECL_SOURCE_LOCATION (pattern);
19107 tsubst (type, args, tf_warning_or_error, d);
19108 input_location = loc;
19109 pop_deferring_access_checks ();
19110 pop_access_scope (d);
19111 }
19112
19113 /* Instantiate the indicated variable, function, or alias template TMPL with
19114 the template arguments in TARG_PTR. */
19115
19116 static tree
19117 instantiate_template_1 (tree tmpl, tree orig_args, tsubst_flags_t complain)
19118 {
19119 tree targ_ptr = orig_args;
19120 tree fndecl;
19121 tree gen_tmpl;
19122 tree spec;
19123 bool access_ok = true;
19124
19125 if (tmpl == error_mark_node)
19126 return error_mark_node;
19127
19128 gcc_assert (TREE_CODE (tmpl) == TEMPLATE_DECL);
19129
19130 /* If this function is a clone, handle it specially. */
19131 if (DECL_CLONED_FUNCTION_P (tmpl))
19132 {
19133 tree spec;
19134 tree clone;
19135
19136 /* Use DECL_ABSTRACT_ORIGIN because only FUNCTION_DECLs have
19137 DECL_CLONED_FUNCTION. */
19138 spec = instantiate_template (DECL_ABSTRACT_ORIGIN (tmpl),
19139 targ_ptr, complain);
19140 if (spec == error_mark_node)
19141 return error_mark_node;
19142
19143 /* Look for the clone. */
19144 FOR_EACH_CLONE (clone, spec)
19145 if (DECL_NAME (clone) == DECL_NAME (tmpl))
19146 return clone;
19147 /* We should always have found the clone by now. */
19148 gcc_unreachable ();
19149 return NULL_TREE;
19150 }
19151
19152 if (targ_ptr == error_mark_node)
19153 return error_mark_node;
19154
19155 /* Check to see if we already have this specialization. */
19156 gen_tmpl = most_general_template (tmpl);
19157 if (TMPL_ARGS_DEPTH (targ_ptr)
19158 < TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (gen_tmpl)))
19159 /* targ_ptr only has the innermost template args, so add the outer ones
19160 from tmpl, which could be either a partial instantiation or gen_tmpl (in
19161 the case of a non-dependent call within a template definition). */
19162 targ_ptr = (add_outermost_template_args
19163 (DECL_TI_ARGS (DECL_TEMPLATE_RESULT (tmpl)),
19164 targ_ptr));
19165
19166 /* It would be nice to avoid hashing here and then again in tsubst_decl,
19167 but it doesn't seem to be on the hot path. */
19168 spec = retrieve_specialization (gen_tmpl, targ_ptr, 0);
19169
19170 gcc_assert (tmpl == gen_tmpl
19171 || ((fndecl = retrieve_specialization (tmpl, orig_args, 0))
19172 == spec)
19173 || fndecl == NULL_TREE);
19174
19175 if (spec != NULL_TREE)
19176 {
19177 if (FNDECL_HAS_ACCESS_ERRORS (spec))
19178 {
19179 if (complain & tf_error)
19180 recheck_decl_substitution (spec, gen_tmpl, targ_ptr);
19181 return error_mark_node;
19182 }
19183 return spec;
19184 }
19185
19186 if (check_instantiated_args (gen_tmpl, INNERMOST_TEMPLATE_ARGS (targ_ptr),
19187 complain))
19188 return error_mark_node;
19189
19190 /* We are building a FUNCTION_DECL, during which the access of its
19191 parameters and return types have to be checked. However this
19192 FUNCTION_DECL which is the desired context for access checking
19193 is not built yet. We solve this chicken-and-egg problem by
19194 deferring all checks until we have the FUNCTION_DECL. */
19195 push_deferring_access_checks (dk_deferred);
19196
19197 /* Instantiation of the function happens in the context of the function
19198 template, not the context of the overload resolution we're doing. */
19199 push_to_top_level ();
19200 /* If there are dependent arguments, e.g. because we're doing partial
19201 ordering, make sure processing_template_decl stays set. */
19202 if (uses_template_parms (targ_ptr))
19203 ++processing_template_decl;
19204 if (DECL_CLASS_SCOPE_P (gen_tmpl))
19205 {
19206 tree ctx = tsubst_aggr_type (DECL_CONTEXT (gen_tmpl), targ_ptr,
19207 complain, gen_tmpl, true);
19208 push_nested_class (ctx);
19209 }
19210
19211 tree pattern = DECL_TEMPLATE_RESULT (gen_tmpl);
19212
19213 fndecl = NULL_TREE;
19214 if (VAR_P (pattern))
19215 {
19216 /* We need to determine if we're using a partial or explicit
19217 specialization now, because the type of the variable could be
19218 different. */
19219 tree tid = lookup_template_variable (gen_tmpl, targ_ptr);
19220 tree elt = most_specialized_partial_spec (tid, complain);
19221 if (elt == error_mark_node)
19222 pattern = error_mark_node;
19223 else if (elt)
19224 {
19225 tree partial_tmpl = TREE_VALUE (elt);
19226 tree partial_args = TREE_PURPOSE (elt);
19227 tree partial_pat = DECL_TEMPLATE_RESULT (partial_tmpl);
19228 fndecl = tsubst (partial_pat, partial_args, complain, gen_tmpl);
19229 }
19230 }
19231
19232 /* Substitute template parameters to obtain the specialization. */
19233 if (fndecl == NULL_TREE)
19234 fndecl = tsubst (pattern, targ_ptr, complain, gen_tmpl);
19235 if (DECL_CLASS_SCOPE_P (gen_tmpl))
19236 pop_nested_class ();
19237 pop_from_top_level ();
19238
19239 if (fndecl == error_mark_node)
19240 {
19241 pop_deferring_access_checks ();
19242 return error_mark_node;
19243 }
19244
19245 /* The DECL_TI_TEMPLATE should always be the immediate parent
19246 template, not the most general template. */
19247 DECL_TI_TEMPLATE (fndecl) = tmpl;
19248 DECL_TI_ARGS (fndecl) = targ_ptr;
19249
19250 /* Now we know the specialization, compute access previously
19251 deferred. Do no access control for inheriting constructors,
19252 as we already checked access for the inherited constructor. */
19253 if (!(flag_new_inheriting_ctors
19254 && DECL_INHERITED_CTOR (fndecl)))
19255 {
19256 push_access_scope (fndecl);
19257 if (!perform_deferred_access_checks (complain))
19258 access_ok = false;
19259 pop_access_scope (fndecl);
19260 }
19261 pop_deferring_access_checks ();
19262
19263 /* If we've just instantiated the main entry point for a function,
19264 instantiate all the alternate entry points as well. We do this
19265 by cloning the instantiation of the main entry point, not by
19266 instantiating the template clones. */
19267 if (DECL_CHAIN (gen_tmpl) && DECL_CLONED_FUNCTION_P (DECL_CHAIN (gen_tmpl)))
19268 clone_function_decl (fndecl, /*update_methods=*/false);
19269
19270 if (!access_ok)
19271 {
19272 if (!(complain & tf_error))
19273 {
19274 /* Remember to reinstantiate when we're out of SFINAE so the user
19275 can see the errors. */
19276 FNDECL_HAS_ACCESS_ERRORS (fndecl) = true;
19277 }
19278 return error_mark_node;
19279 }
19280 return fndecl;
19281 }
19282
19283 /* Wrapper for instantiate_template_1. */
19284
19285 tree
19286 instantiate_template (tree tmpl, tree orig_args, tsubst_flags_t complain)
19287 {
19288 tree ret;
19289 timevar_push (TV_TEMPLATE_INST);
19290 ret = instantiate_template_1 (tmpl, orig_args, complain);
19291 timevar_pop (TV_TEMPLATE_INST);
19292 return ret;
19293 }
19294
19295 /* Instantiate the alias template TMPL with ARGS. Also push a template
19296 instantiation level, which instantiate_template doesn't do because
19297 functions and variables have sufficient context established by the
19298 callers. */
19299
19300 static tree
19301 instantiate_alias_template (tree tmpl, tree args, tsubst_flags_t complain)
19302 {
19303 if (tmpl == error_mark_node || args == error_mark_node)
19304 return error_mark_node;
19305 if (!push_tinst_level (tmpl, args))
19306 return error_mark_node;
19307
19308 args =
19309 coerce_innermost_template_parms (DECL_TEMPLATE_PARMS (tmpl),
19310 args, tmpl, complain,
19311 /*require_all_args=*/true,
19312 /*use_default_args=*/true);
19313
19314 tree r = instantiate_template (tmpl, args, complain);
19315 pop_tinst_level ();
19316
19317 return r;
19318 }
19319
19320 /* PARM is a template parameter pack for FN. Returns true iff
19321 PARM is used in a deducible way in the argument list of FN. */
19322
19323 static bool
19324 pack_deducible_p (tree parm, tree fn)
19325 {
19326 tree t = FUNCTION_FIRST_USER_PARMTYPE (fn);
19327 for (; t; t = TREE_CHAIN (t))
19328 {
19329 tree type = TREE_VALUE (t);
19330 tree packs;
19331 if (!PACK_EXPANSION_P (type))
19332 continue;
19333 for (packs = PACK_EXPANSION_PARAMETER_PACKS (type);
19334 packs; packs = TREE_CHAIN (packs))
19335 if (template_args_equal (TREE_VALUE (packs), parm))
19336 {
19337 /* The template parameter pack is used in a function parameter
19338 pack. If this is the end of the parameter list, the
19339 template parameter pack is deducible. */
19340 if (TREE_CHAIN (t) == void_list_node)
19341 return true;
19342 else
19343 /* Otherwise, not. Well, it could be deduced from
19344 a non-pack parameter, but doing so would end up with
19345 a deduction mismatch, so don't bother. */
19346 return false;
19347 }
19348 }
19349 /* The template parameter pack isn't used in any function parameter
19350 packs, but it might be used deeper, e.g. tuple<Args...>. */
19351 return true;
19352 }
19353
19354 /* The FN is a TEMPLATE_DECL for a function. ARGS is an array with
19355 NARGS elements of the arguments that are being used when calling
19356 it. TARGS is a vector into which the deduced template arguments
19357 are placed.
19358
19359 Returns either a FUNCTION_DECL for the matching specialization of FN or
19360 NULL_TREE if no suitable specialization can be found. If EXPLAIN_P is
19361 true, diagnostics will be printed to explain why it failed.
19362
19363 If FN is a conversion operator, or we are trying to produce a specific
19364 specialization, RETURN_TYPE is the return type desired.
19365
19366 The EXPLICIT_TARGS are explicit template arguments provided via a
19367 template-id.
19368
19369 The parameter STRICT is one of:
19370
19371 DEDUCE_CALL:
19372 We are deducing arguments for a function call, as in
19373 [temp.deduct.call]. If RETURN_TYPE is non-null, we are
19374 deducing arguments for a call to the result of a conversion
19375 function template, as in [over.call.object].
19376
19377 DEDUCE_CONV:
19378 We are deducing arguments for a conversion function, as in
19379 [temp.deduct.conv].
19380
19381 DEDUCE_EXACT:
19382 We are deducing arguments when doing an explicit instantiation
19383 as in [temp.explicit], when determining an explicit specialization
19384 as in [temp.expl.spec], or when taking the address of a function
19385 template, as in [temp.deduct.funcaddr]. */
19386
19387 tree
19388 fn_type_unification (tree fn,
19389 tree explicit_targs,
19390 tree targs,
19391 const tree *args,
19392 unsigned int nargs,
19393 tree return_type,
19394 unification_kind_t strict,
19395 int flags,
19396 bool explain_p,
19397 bool decltype_p)
19398 {
19399 tree parms;
19400 tree fntype;
19401 tree decl = NULL_TREE;
19402 tsubst_flags_t complain = (explain_p ? tf_warning_or_error : tf_none);
19403 bool ok;
19404 static int deduction_depth;
19405
19406 tree orig_fn = fn;
19407 if (flag_new_inheriting_ctors)
19408 fn = strip_inheriting_ctors (fn);
19409
19410 tree tparms = DECL_INNERMOST_TEMPLATE_PARMS (fn);
19411 tree r = error_mark_node;
19412
19413 tree full_targs = targs;
19414 if (TMPL_ARGS_DEPTH (targs)
19415 < TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (fn)))
19416 full_targs = (add_outermost_template_args
19417 (DECL_TI_ARGS (DECL_TEMPLATE_RESULT (fn)),
19418 targs));
19419
19420 if (decltype_p)
19421 complain |= tf_decltype;
19422
19423 /* In C++0x, it's possible to have a function template whose type depends
19424 on itself recursively. This is most obvious with decltype, but can also
19425 occur with enumeration scope (c++/48969). So we need to catch infinite
19426 recursion and reject the substitution at deduction time; this function
19427 will return error_mark_node for any repeated substitution.
19428
19429 This also catches excessive recursion such as when f<N> depends on
19430 f<N-1> across all integers, and returns error_mark_node for all the
19431 substitutions back up to the initial one.
19432
19433 This is, of course, not reentrant. */
19434 if (excessive_deduction_depth)
19435 return error_mark_node;
19436 ++deduction_depth;
19437
19438 gcc_assert (TREE_CODE (fn) == TEMPLATE_DECL);
19439
19440 fntype = TREE_TYPE (fn);
19441 if (explicit_targs)
19442 {
19443 /* [temp.deduct]
19444
19445 The specified template arguments must match the template
19446 parameters in kind (i.e., type, nontype, template), and there
19447 must not be more arguments than there are parameters;
19448 otherwise type deduction fails.
19449
19450 Nontype arguments must match the types of the corresponding
19451 nontype template parameters, or must be convertible to the
19452 types of the corresponding nontype parameters as specified in
19453 _temp.arg.nontype_, otherwise type deduction fails.
19454
19455 All references in the function type of the function template
19456 to the corresponding template parameters are replaced by the
19457 specified template argument values. If a substitution in a
19458 template parameter or in the function type of the function
19459 template results in an invalid type, type deduction fails. */
19460 int i, len = TREE_VEC_LENGTH (tparms);
19461 location_t loc = input_location;
19462 bool incomplete = false;
19463
19464 if (explicit_targs == error_mark_node)
19465 goto fail;
19466
19467 if (TMPL_ARGS_DEPTH (explicit_targs)
19468 < TMPL_ARGS_DEPTH (full_targs))
19469 explicit_targs = add_outermost_template_args (full_targs,
19470 explicit_targs);
19471
19472 /* Adjust any explicit template arguments before entering the
19473 substitution context. */
19474 explicit_targs
19475 = (coerce_template_parms (tparms, explicit_targs, NULL_TREE,
19476 complain,
19477 /*require_all_args=*/false,
19478 /*use_default_args=*/false));
19479 if (explicit_targs == error_mark_node)
19480 goto fail;
19481
19482 /* Substitute the explicit args into the function type. This is
19483 necessary so that, for instance, explicitly declared function
19484 arguments can match null pointed constants. If we were given
19485 an incomplete set of explicit args, we must not do semantic
19486 processing during substitution as we could create partial
19487 instantiations. */
19488 for (i = 0; i < len; i++)
19489 {
19490 tree parm = TREE_VALUE (TREE_VEC_ELT (tparms, i));
19491 bool parameter_pack = false;
19492 tree targ = TREE_VEC_ELT (explicit_targs, i);
19493
19494 /* Dig out the actual parm. */
19495 if (TREE_CODE (parm) == TYPE_DECL
19496 || TREE_CODE (parm) == TEMPLATE_DECL)
19497 {
19498 parm = TREE_TYPE (parm);
19499 parameter_pack = TEMPLATE_TYPE_PARAMETER_PACK (parm);
19500 }
19501 else if (TREE_CODE (parm) == PARM_DECL)
19502 {
19503 parm = DECL_INITIAL (parm);
19504 parameter_pack = TEMPLATE_PARM_PARAMETER_PACK (parm);
19505 }
19506
19507 if (!parameter_pack && targ == NULL_TREE)
19508 /* No explicit argument for this template parameter. */
19509 incomplete = true;
19510
19511 if (parameter_pack && pack_deducible_p (parm, fn))
19512 {
19513 /* Mark the argument pack as "incomplete". We could
19514 still deduce more arguments during unification.
19515 We remove this mark in type_unification_real. */
19516 if (targ)
19517 {
19518 ARGUMENT_PACK_INCOMPLETE_P(targ) = 1;
19519 ARGUMENT_PACK_EXPLICIT_ARGS (targ)
19520 = ARGUMENT_PACK_ARGS (targ);
19521 }
19522
19523 /* We have some incomplete argument packs. */
19524 incomplete = true;
19525 }
19526 }
19527
19528 if (!push_tinst_level (fn, explicit_targs))
19529 {
19530 excessive_deduction_depth = true;
19531 goto fail;
19532 }
19533 processing_template_decl += incomplete;
19534 input_location = DECL_SOURCE_LOCATION (fn);
19535 /* Ignore any access checks; we'll see them again in
19536 instantiate_template and they might have the wrong
19537 access path at this point. */
19538 push_deferring_access_checks (dk_deferred);
19539 fntype = tsubst (TREE_TYPE (fn), explicit_targs,
19540 complain | tf_partial | tf_fndecl_type, NULL_TREE);
19541 pop_deferring_access_checks ();
19542 input_location = loc;
19543 processing_template_decl -= incomplete;
19544 pop_tinst_level ();
19545
19546 if (fntype == error_mark_node)
19547 goto fail;
19548
19549 /* Place the explicitly specified arguments in TARGS. */
19550 explicit_targs = INNERMOST_TEMPLATE_ARGS (explicit_targs);
19551 for (i = NUM_TMPL_ARGS (explicit_targs); i--;)
19552 TREE_VEC_ELT (targs, i) = TREE_VEC_ELT (explicit_targs, i);
19553 }
19554
19555 /* Never do unification on the 'this' parameter. */
19556 parms = skip_artificial_parms_for (fn, TYPE_ARG_TYPES (fntype));
19557
19558 if (return_type && strict == DEDUCE_CALL)
19559 {
19560 /* We're deducing for a call to the result of a template conversion
19561 function. The parms we really want are in return_type. */
19562 if (INDIRECT_TYPE_P (return_type))
19563 return_type = TREE_TYPE (return_type);
19564 parms = TYPE_ARG_TYPES (return_type);
19565 }
19566 else if (return_type)
19567 {
19568 tree *new_args;
19569
19570 parms = tree_cons (NULL_TREE, TREE_TYPE (fntype), parms);
19571 new_args = XALLOCAVEC (tree, nargs + 1);
19572 new_args[0] = return_type;
19573 memcpy (new_args + 1, args, nargs * sizeof (tree));
19574 args = new_args;
19575 ++nargs;
19576 }
19577
19578 /* We allow incomplete unification without an error message here
19579 because the standard doesn't seem to explicitly prohibit it. Our
19580 callers must be ready to deal with unification failures in any
19581 event. */
19582
19583 /* If we aren't explaining yet, push tinst context so we can see where
19584 any errors (e.g. from class instantiations triggered by instantiation
19585 of default template arguments) come from. If we are explaining, this
19586 context is redundant. */
19587 if (!explain_p && !push_tinst_level (fn, targs))
19588 {
19589 excessive_deduction_depth = true;
19590 goto fail;
19591 }
19592
19593 /* type_unification_real will pass back any access checks from default
19594 template argument substitution. */
19595 vec<deferred_access_check, va_gc> *checks;
19596 checks = NULL;
19597
19598 ok = !type_unification_real (DECL_INNERMOST_TEMPLATE_PARMS (fn),
19599 full_targs, parms, args, nargs, /*subr=*/0,
19600 strict, flags, &checks, explain_p);
19601 if (!explain_p)
19602 pop_tinst_level ();
19603 if (!ok)
19604 goto fail;
19605
19606 /* Now that we have bindings for all of the template arguments,
19607 ensure that the arguments deduced for the template template
19608 parameters have compatible template parameter lists. We cannot
19609 check this property before we have deduced all template
19610 arguments, because the template parameter types of a template
19611 template parameter might depend on prior template parameters
19612 deduced after the template template parameter. The following
19613 ill-formed example illustrates this issue:
19614
19615 template<typename T, template<T> class C> void f(C<5>, T);
19616
19617 template<int N> struct X {};
19618
19619 void g() {
19620 f(X<5>(), 5l); // error: template argument deduction fails
19621 }
19622
19623 The template parameter list of 'C' depends on the template type
19624 parameter 'T', but 'C' is deduced to 'X' before 'T' is deduced to
19625 'long'. Thus, we can't check that 'C' cannot bind to 'X' at the
19626 time that we deduce 'C'. */
19627 if (!template_template_parm_bindings_ok_p
19628 (DECL_INNERMOST_TEMPLATE_PARMS (fn), targs))
19629 {
19630 unify_inconsistent_template_template_parameters (explain_p);
19631 goto fail;
19632 }
19633
19634 /* All is well so far. Now, check:
19635
19636 [temp.deduct]
19637
19638 When all template arguments have been deduced, all uses of
19639 template parameters in nondeduced contexts are replaced with
19640 the corresponding deduced argument values. If the
19641 substitution results in an invalid type, as described above,
19642 type deduction fails. */
19643 if (!push_tinst_level (fn, targs))
19644 {
19645 excessive_deduction_depth = true;
19646 goto fail;
19647 }
19648
19649 /* Also collect access checks from the instantiation. */
19650 reopen_deferring_access_checks (checks);
19651
19652 decl = instantiate_template (fn, targs, complain);
19653
19654 checks = get_deferred_access_checks ();
19655 pop_deferring_access_checks ();
19656
19657 pop_tinst_level ();
19658
19659 if (decl == error_mark_node)
19660 goto fail;
19661
19662 /* Now perform any access checks encountered during substitution. */
19663 push_access_scope (decl);
19664 ok = perform_access_checks (checks, complain);
19665 pop_access_scope (decl);
19666 if (!ok)
19667 goto fail;
19668
19669 /* If we're looking for an exact match, check that what we got
19670 is indeed an exact match. It might not be if some template
19671 parameters are used in non-deduced contexts. But don't check
19672 for an exact match if we have dependent template arguments;
19673 in that case we're doing partial ordering, and we already know
19674 that we have two candidates that will provide the actual type. */
19675 if (strict == DEDUCE_EXACT && !any_dependent_template_arguments_p (targs))
19676 {
19677 tree substed = TREE_TYPE (decl);
19678 unsigned int i;
19679
19680 tree sarg
19681 = skip_artificial_parms_for (decl, TYPE_ARG_TYPES (substed));
19682 if (return_type)
19683 sarg = tree_cons (NULL_TREE, TREE_TYPE (substed), sarg);
19684 for (i = 0; i < nargs && sarg; ++i, sarg = TREE_CHAIN (sarg))
19685 if (!same_type_p (args[i], TREE_VALUE (sarg)))
19686 {
19687 unify_type_mismatch (explain_p, args[i],
19688 TREE_VALUE (sarg));
19689 goto fail;
19690 }
19691 }
19692
19693 /* After doing deduction with the inherited constructor, actually return an
19694 instantiation of the inheriting constructor. */
19695 if (orig_fn != fn)
19696 decl = instantiate_template (orig_fn, targs, complain);
19697
19698 r = decl;
19699
19700 fail:
19701 --deduction_depth;
19702 if (excessive_deduction_depth)
19703 {
19704 if (deduction_depth == 0)
19705 /* Reset once we're all the way out. */
19706 excessive_deduction_depth = false;
19707 }
19708
19709 return r;
19710 }
19711
19712 /* Adjust types before performing type deduction, as described in
19713 [temp.deduct.call] and [temp.deduct.conv]. The rules in these two
19714 sections are symmetric. PARM is the type of a function parameter
19715 or the return type of the conversion function. ARG is the type of
19716 the argument passed to the call, or the type of the value
19717 initialized with the result of the conversion function.
19718 ARG_EXPR is the original argument expression, which may be null. */
19719
19720 static int
19721 maybe_adjust_types_for_deduction (unification_kind_t strict,
19722 tree* parm,
19723 tree* arg,
19724 tree arg_expr)
19725 {
19726 int result = 0;
19727
19728 switch (strict)
19729 {
19730 case DEDUCE_CALL:
19731 break;
19732
19733 case DEDUCE_CONV:
19734 /* Swap PARM and ARG throughout the remainder of this
19735 function; the handling is precisely symmetric since PARM
19736 will initialize ARG rather than vice versa. */
19737 std::swap (parm, arg);
19738 break;
19739
19740 case DEDUCE_EXACT:
19741 /* Core issue #873: Do the DR606 thing (see below) for these cases,
19742 too, but here handle it by stripping the reference from PARM
19743 rather than by adding it to ARG. */
19744 if (TYPE_REF_P (*parm)
19745 && TYPE_REF_IS_RVALUE (*parm)
19746 && TREE_CODE (TREE_TYPE (*parm)) == TEMPLATE_TYPE_PARM
19747 && cp_type_quals (TREE_TYPE (*parm)) == TYPE_UNQUALIFIED
19748 && TYPE_REF_P (*arg)
19749 && !TYPE_REF_IS_RVALUE (*arg))
19750 *parm = TREE_TYPE (*parm);
19751 /* Nothing else to do in this case. */
19752 return 0;
19753
19754 default:
19755 gcc_unreachable ();
19756 }
19757
19758 if (!TYPE_REF_P (*parm))
19759 {
19760 /* [temp.deduct.call]
19761
19762 If P is not a reference type:
19763
19764 --If A is an array type, the pointer type produced by the
19765 array-to-pointer standard conversion (_conv.array_) is
19766 used in place of A for type deduction; otherwise,
19767
19768 --If A is a function type, the pointer type produced by
19769 the function-to-pointer standard conversion
19770 (_conv.func_) is used in place of A for type deduction;
19771 otherwise,
19772
19773 --If A is a cv-qualified type, the top level
19774 cv-qualifiers of A's type are ignored for type
19775 deduction. */
19776 if (TREE_CODE (*arg) == ARRAY_TYPE)
19777 *arg = build_pointer_type (TREE_TYPE (*arg));
19778 else if (TREE_CODE (*arg) == FUNCTION_TYPE)
19779 *arg = build_pointer_type (*arg);
19780 else
19781 *arg = TYPE_MAIN_VARIANT (*arg);
19782 }
19783
19784 /* [14.8.2.1/3 temp.deduct.call], "A forwarding reference is an rvalue
19785 reference to a cv-unqualified template parameter that does not represent a
19786 template parameter of a class template (during class template argument
19787 deduction (13.3.1.8)). If P is a forwarding reference and the argument is
19788 an lvalue, the type "lvalue reference to A" is used in place of A for type
19789 deduction. */
19790 if (TYPE_REF_P (*parm)
19791 && TYPE_REF_IS_RVALUE (*parm)
19792 && TREE_CODE (TREE_TYPE (*parm)) == TEMPLATE_TYPE_PARM
19793 && !TEMPLATE_TYPE_PARM_FOR_CLASS (TREE_TYPE (*parm))
19794 && cp_type_quals (TREE_TYPE (*parm)) == TYPE_UNQUALIFIED
19795 && (arg_expr ? lvalue_p (arg_expr)
19796 /* try_one_overload doesn't provide an arg_expr, but
19797 functions are always lvalues. */
19798 : TREE_CODE (*arg) == FUNCTION_TYPE))
19799 *arg = build_reference_type (*arg);
19800
19801 /* [temp.deduct.call]
19802
19803 If P is a cv-qualified type, the top level cv-qualifiers
19804 of P's type are ignored for type deduction. If P is a
19805 reference type, the type referred to by P is used for
19806 type deduction. */
19807 *parm = TYPE_MAIN_VARIANT (*parm);
19808 if (TYPE_REF_P (*parm))
19809 {
19810 *parm = TREE_TYPE (*parm);
19811 result |= UNIFY_ALLOW_OUTER_MORE_CV_QUAL;
19812 }
19813
19814 /* DR 322. For conversion deduction, remove a reference type on parm
19815 too (which has been swapped into ARG). */
19816 if (strict == DEDUCE_CONV && TYPE_REF_P (*arg))
19817 *arg = TREE_TYPE (*arg);
19818
19819 return result;
19820 }
19821
19822 /* Subroutine of unify_one_argument. PARM is a function parameter of a
19823 template which does contain any deducible template parameters; check if
19824 ARG is a suitable match for it. STRICT, FLAGS and EXPLAIN_P are as in
19825 unify_one_argument. */
19826
19827 static int
19828 check_non_deducible_conversion (tree parm, tree arg, int strict,
19829 int flags, bool explain_p)
19830 {
19831 tree type;
19832
19833 if (!TYPE_P (arg))
19834 type = TREE_TYPE (arg);
19835 else
19836 type = arg;
19837
19838 if (same_type_p (parm, type))
19839 return unify_success (explain_p);
19840
19841 if (strict == DEDUCE_CONV)
19842 {
19843 if (can_convert_arg (type, parm, NULL_TREE, flags,
19844 explain_p ? tf_warning_or_error : tf_none))
19845 return unify_success (explain_p);
19846 }
19847 else if (strict != DEDUCE_EXACT)
19848 {
19849 if (can_convert_arg (parm, type,
19850 TYPE_P (arg) ? NULL_TREE : arg,
19851 flags, explain_p ? tf_warning_or_error : tf_none))
19852 return unify_success (explain_p);
19853 }
19854
19855 if (strict == DEDUCE_EXACT)
19856 return unify_type_mismatch (explain_p, parm, arg);
19857 else
19858 return unify_arg_conversion (explain_p, parm, type, arg);
19859 }
19860
19861 static bool uses_deducible_template_parms (tree type);
19862
19863 /* Returns true iff the expression EXPR is one from which a template
19864 argument can be deduced. In other words, if it's an undecorated
19865 use of a template non-type parameter. */
19866
19867 static bool
19868 deducible_expression (tree expr)
19869 {
19870 /* Strip implicit conversions. */
19871 while (CONVERT_EXPR_P (expr))
19872 expr = TREE_OPERAND (expr, 0);
19873 return (TREE_CODE (expr) == TEMPLATE_PARM_INDEX);
19874 }
19875
19876 /* Returns true iff the array domain DOMAIN uses a template parameter in a
19877 deducible way; that is, if it has a max value of <PARM> - 1. */
19878
19879 static bool
19880 deducible_array_bound (tree domain)
19881 {
19882 if (domain == NULL_TREE)
19883 return false;
19884
19885 tree max = TYPE_MAX_VALUE (domain);
19886 if (TREE_CODE (max) != MINUS_EXPR)
19887 return false;
19888
19889 return deducible_expression (TREE_OPERAND (max, 0));
19890 }
19891
19892 /* Returns true iff the template arguments ARGS use a template parameter
19893 in a deducible way. */
19894
19895 static bool
19896 deducible_template_args (tree args)
19897 {
19898 for (int i = 0; i < TREE_VEC_LENGTH (args); ++i)
19899 {
19900 bool deducible;
19901 tree elt = TREE_VEC_ELT (args, i);
19902 if (ARGUMENT_PACK_P (elt))
19903 deducible = deducible_template_args (ARGUMENT_PACK_ARGS (elt));
19904 else
19905 {
19906 if (PACK_EXPANSION_P (elt))
19907 elt = PACK_EXPANSION_PATTERN (elt);
19908 if (TREE_CODE (elt) == TEMPLATE_TEMPLATE_PARM)
19909 deducible = true;
19910 else if (TYPE_P (elt))
19911 deducible = uses_deducible_template_parms (elt);
19912 else
19913 deducible = deducible_expression (elt);
19914 }
19915 if (deducible)
19916 return true;
19917 }
19918 return false;
19919 }
19920
19921 /* Returns true iff TYPE contains any deducible references to template
19922 parameters, as per 14.8.2.5. */
19923
19924 static bool
19925 uses_deducible_template_parms (tree type)
19926 {
19927 if (PACK_EXPANSION_P (type))
19928 type = PACK_EXPANSION_PATTERN (type);
19929
19930 /* T
19931 cv-list T
19932 TT<T>
19933 TT<i>
19934 TT<> */
19935 if (TREE_CODE (type) == TEMPLATE_TYPE_PARM
19936 || TREE_CODE (type) == BOUND_TEMPLATE_TEMPLATE_PARM)
19937 return true;
19938
19939 /* T*
19940 T&
19941 T&& */
19942 if (INDIRECT_TYPE_P (type))
19943 return uses_deducible_template_parms (TREE_TYPE (type));
19944
19945 /* T[integer-constant ]
19946 type [i] */
19947 if (TREE_CODE (type) == ARRAY_TYPE)
19948 return (uses_deducible_template_parms (TREE_TYPE (type))
19949 || deducible_array_bound (TYPE_DOMAIN (type)));
19950
19951 /* T type ::*
19952 type T::*
19953 T T::*
19954 T (type ::*)()
19955 type (T::*)()
19956 type (type ::*)(T)
19957 type (T::*)(T)
19958 T (type ::*)(T)
19959 T (T::*)()
19960 T (T::*)(T) */
19961 if (TYPE_PTRMEM_P (type))
19962 return (uses_deducible_template_parms (TYPE_PTRMEM_CLASS_TYPE (type))
19963 || (uses_deducible_template_parms
19964 (TYPE_PTRMEM_POINTED_TO_TYPE (type))));
19965
19966 /* template-name <T> (where template-name refers to a class template)
19967 template-name <i> (where template-name refers to a class template) */
19968 if (CLASS_TYPE_P (type)
19969 && CLASSTYPE_TEMPLATE_INFO (type)
19970 && PRIMARY_TEMPLATE_P (CLASSTYPE_TI_TEMPLATE (type)))
19971 return deducible_template_args (INNERMOST_TEMPLATE_ARGS
19972 (CLASSTYPE_TI_ARGS (type)));
19973
19974 /* type (T)
19975 T()
19976 T(T) */
19977 if (TREE_CODE (type) == FUNCTION_TYPE
19978 || TREE_CODE (type) == METHOD_TYPE)
19979 {
19980 if (uses_deducible_template_parms (TREE_TYPE (type)))
19981 return true;
19982 tree parm = TYPE_ARG_TYPES (type);
19983 if (TREE_CODE (type) == METHOD_TYPE)
19984 parm = TREE_CHAIN (parm);
19985 for (; parm; parm = TREE_CHAIN (parm))
19986 if (uses_deducible_template_parms (TREE_VALUE (parm)))
19987 return true;
19988 }
19989
19990 return false;
19991 }
19992
19993 /* Subroutine of type_unification_real and unify_pack_expansion to
19994 handle unification of a single P/A pair. Parameters are as
19995 for those functions. */
19996
19997 static int
19998 unify_one_argument (tree tparms, tree targs, tree parm, tree arg,
19999 int subr, unification_kind_t strict,
20000 bool explain_p)
20001 {
20002 tree arg_expr = NULL_TREE;
20003 int arg_strict;
20004
20005 if (arg == error_mark_node || parm == error_mark_node)
20006 return unify_invalid (explain_p);
20007 if (arg == unknown_type_node)
20008 /* We can't deduce anything from this, but we might get all the
20009 template args from other function args. */
20010 return unify_success (explain_p);
20011
20012 /* Implicit conversions (Clause 4) will be performed on a function
20013 argument to convert it to the type of the corresponding function
20014 parameter if the parameter type contains no template-parameters that
20015 participate in template argument deduction. */
20016 if (strict != DEDUCE_EXACT
20017 && TYPE_P (parm) && !uses_deducible_template_parms (parm))
20018 /* For function parameters with no deducible template parameters,
20019 just return. We'll check non-dependent conversions later. */
20020 return unify_success (explain_p);
20021
20022 switch (strict)
20023 {
20024 case DEDUCE_CALL:
20025 arg_strict = (UNIFY_ALLOW_OUTER_LEVEL
20026 | UNIFY_ALLOW_MORE_CV_QUAL
20027 | UNIFY_ALLOW_DERIVED);
20028 break;
20029
20030 case DEDUCE_CONV:
20031 arg_strict = UNIFY_ALLOW_LESS_CV_QUAL;
20032 break;
20033
20034 case DEDUCE_EXACT:
20035 arg_strict = UNIFY_ALLOW_NONE;
20036 break;
20037
20038 default:
20039 gcc_unreachable ();
20040 }
20041
20042 /* We only do these transformations if this is the top-level
20043 parameter_type_list in a call or declaration matching; in other
20044 situations (nested function declarators, template argument lists) we
20045 won't be comparing a type to an expression, and we don't do any type
20046 adjustments. */
20047 if (!subr)
20048 {
20049 if (!TYPE_P (arg))
20050 {
20051 gcc_assert (TREE_TYPE (arg) != NULL_TREE);
20052 if (type_unknown_p (arg))
20053 {
20054 /* [temp.deduct.type] A template-argument can be
20055 deduced from a pointer to function or pointer
20056 to member function argument if the set of
20057 overloaded functions does not contain function
20058 templates and at most one of a set of
20059 overloaded functions provides a unique
20060 match. */
20061 resolve_overloaded_unification (tparms, targs, parm,
20062 arg, strict,
20063 arg_strict, explain_p);
20064 /* If a unique match was not found, this is a
20065 non-deduced context, so we still succeed. */
20066 return unify_success (explain_p);
20067 }
20068
20069 arg_expr = arg;
20070 arg = unlowered_expr_type (arg);
20071 if (arg == error_mark_node)
20072 return unify_invalid (explain_p);
20073 }
20074
20075 arg_strict |=
20076 maybe_adjust_types_for_deduction (strict, &parm, &arg, arg_expr);
20077 }
20078 else
20079 if ((TYPE_P (parm) || TREE_CODE (parm) == TEMPLATE_DECL)
20080 != (TYPE_P (arg) || TREE_CODE (arg) == TEMPLATE_DECL))
20081 return unify_template_argument_mismatch (explain_p, parm, arg);
20082
20083 /* For deduction from an init-list we need the actual list. */
20084 if (arg_expr && BRACE_ENCLOSED_INITIALIZER_P (arg_expr))
20085 arg = arg_expr;
20086 return unify (tparms, targs, parm, arg, arg_strict, explain_p);
20087 }
20088
20089 /* for_each_template_parm callback that always returns 0. */
20090
20091 static int
20092 zero_r (tree, void *)
20093 {
20094 return 0;
20095 }
20096
20097 /* for_each_template_parm any_fn callback to handle deduction of a template
20098 type argument from the type of an array bound. */
20099
20100 static int
20101 array_deduction_r (tree t, void *data)
20102 {
20103 tree_pair_p d = (tree_pair_p)data;
20104 tree &tparms = d->purpose;
20105 tree &targs = d->value;
20106
20107 if (TREE_CODE (t) == ARRAY_TYPE)
20108 if (tree dom = TYPE_DOMAIN (t))
20109 if (tree max = TYPE_MAX_VALUE (dom))
20110 {
20111 if (TREE_CODE (max) == MINUS_EXPR)
20112 max = TREE_OPERAND (max, 0);
20113 if (TREE_CODE (max) == TEMPLATE_PARM_INDEX)
20114 unify (tparms, targs, TREE_TYPE (max), size_type_node,
20115 UNIFY_ALLOW_NONE, /*explain*/false);
20116 }
20117
20118 /* Keep walking. */
20119 return 0;
20120 }
20121
20122 /* Try to deduce any not-yet-deduced template type arguments from the type of
20123 an array bound. This is handled separately from unify because 14.8.2.5 says
20124 "The type of a type parameter is only deduced from an array bound if it is
20125 not otherwise deduced." */
20126
20127 static void
20128 try_array_deduction (tree tparms, tree targs, tree parm)
20129 {
20130 tree_pair_s data = { tparms, targs };
20131 hash_set<tree> visited;
20132 for_each_template_parm (parm, zero_r, &data, &visited,
20133 /*nondeduced*/false, array_deduction_r);
20134 }
20135
20136 /* Most parms like fn_type_unification.
20137
20138 If SUBR is 1, we're being called recursively (to unify the
20139 arguments of a function or method parameter of a function
20140 template).
20141
20142 CHECKS is a pointer to a vector of access checks encountered while
20143 substituting default template arguments. */
20144
20145 static int
20146 type_unification_real (tree tparms,
20147 tree full_targs,
20148 tree xparms,
20149 const tree *xargs,
20150 unsigned int xnargs,
20151 int subr,
20152 unification_kind_t strict,
20153 int flags,
20154 vec<deferred_access_check, va_gc> **checks,
20155 bool explain_p)
20156 {
20157 tree parm, arg;
20158 int i;
20159 int ntparms = TREE_VEC_LENGTH (tparms);
20160 int saw_undeduced = 0;
20161 tree parms;
20162 const tree *args;
20163 unsigned int nargs;
20164 unsigned int ia;
20165
20166 gcc_assert (TREE_CODE (tparms) == TREE_VEC);
20167 gcc_assert (xparms == NULL_TREE || TREE_CODE (xparms) == TREE_LIST);
20168 gcc_assert (ntparms > 0);
20169
20170 tree targs = INNERMOST_TEMPLATE_ARGS (full_targs);
20171
20172 /* Reset the number of non-defaulted template arguments contained
20173 in TARGS. */
20174 NON_DEFAULT_TEMPLATE_ARGS_COUNT (targs) = NULL_TREE;
20175
20176 again:
20177 parms = xparms;
20178 args = xargs;
20179 nargs = xnargs;
20180
20181 ia = 0;
20182 while (parms && parms != void_list_node
20183 && ia < nargs)
20184 {
20185 parm = TREE_VALUE (parms);
20186
20187 if (TREE_CODE (parm) == TYPE_PACK_EXPANSION
20188 && (!TREE_CHAIN (parms) || TREE_CHAIN (parms) == void_list_node))
20189 /* For a function parameter pack that occurs at the end of the
20190 parameter-declaration-list, the type A of each remaining
20191 argument of the call is compared with the type P of the
20192 declarator-id of the function parameter pack. */
20193 break;
20194
20195 parms = TREE_CHAIN (parms);
20196
20197 if (TREE_CODE (parm) == TYPE_PACK_EXPANSION)
20198 /* For a function parameter pack that does not occur at the
20199 end of the parameter-declaration-list, the type of the
20200 parameter pack is a non-deduced context. */
20201 continue;
20202
20203 arg = args[ia];
20204 ++ia;
20205
20206 if (unify_one_argument (tparms, full_targs, parm, arg, subr, strict,
20207 explain_p))
20208 return 1;
20209 }
20210
20211 if (parms
20212 && parms != void_list_node
20213 && TREE_CODE (TREE_VALUE (parms)) == TYPE_PACK_EXPANSION)
20214 {
20215 /* Unify the remaining arguments with the pack expansion type. */
20216 tree argvec;
20217 tree parmvec = make_tree_vec (1);
20218
20219 /* Allocate a TREE_VEC and copy in all of the arguments */
20220 argvec = make_tree_vec (nargs - ia);
20221 for (i = 0; ia < nargs; ++ia, ++i)
20222 TREE_VEC_ELT (argvec, i) = args[ia];
20223
20224 /* Copy the parameter into parmvec. */
20225 TREE_VEC_ELT (parmvec, 0) = TREE_VALUE (parms);
20226 if (unify_pack_expansion (tparms, full_targs, parmvec, argvec, strict,
20227 /*subr=*/subr, explain_p))
20228 return 1;
20229
20230 /* Advance to the end of the list of parameters. */
20231 parms = TREE_CHAIN (parms);
20232 }
20233
20234 /* Fail if we've reached the end of the parm list, and more args
20235 are present, and the parm list isn't variadic. */
20236 if (ia < nargs && parms == void_list_node)
20237 return unify_too_many_arguments (explain_p, nargs, ia);
20238 /* Fail if parms are left and they don't have default values and
20239 they aren't all deduced as empty packs (c++/57397). This is
20240 consistent with sufficient_parms_p. */
20241 if (parms && parms != void_list_node
20242 && TREE_PURPOSE (parms) == NULL_TREE)
20243 {
20244 unsigned int count = nargs;
20245 tree p = parms;
20246 bool type_pack_p;
20247 do
20248 {
20249 type_pack_p = TREE_CODE (TREE_VALUE (p)) == TYPE_PACK_EXPANSION;
20250 if (!type_pack_p)
20251 count++;
20252 p = TREE_CHAIN (p);
20253 }
20254 while (p && p != void_list_node);
20255 if (count != nargs)
20256 return unify_too_few_arguments (explain_p, ia, count,
20257 type_pack_p);
20258 }
20259
20260 if (!subr)
20261 {
20262 tsubst_flags_t complain = (explain_p
20263 ? tf_warning_or_error
20264 : tf_none);
20265 bool tried_array_deduction = (cxx_dialect < cxx17);
20266
20267 for (i = 0; i < ntparms; i++)
20268 {
20269 tree targ = TREE_VEC_ELT (targs, i);
20270 tree tparm = TREE_VEC_ELT (tparms, i);
20271
20272 /* Clear the "incomplete" flags on all argument packs now so that
20273 substituting them into later default arguments works. */
20274 if (targ && ARGUMENT_PACK_P (targ))
20275 {
20276 ARGUMENT_PACK_INCOMPLETE_P (targ) = 0;
20277 ARGUMENT_PACK_EXPLICIT_ARGS (targ) = NULL_TREE;
20278 }
20279
20280 if (targ || tparm == error_mark_node)
20281 continue;
20282 tparm = TREE_VALUE (tparm);
20283
20284 if (TREE_CODE (tparm) == TYPE_DECL
20285 && !tried_array_deduction)
20286 {
20287 try_array_deduction (tparms, targs, xparms);
20288 tried_array_deduction = true;
20289 if (TREE_VEC_ELT (targs, i))
20290 continue;
20291 }
20292
20293 /* If this is an undeduced nontype parameter that depends on
20294 a type parameter, try another pass; its type may have been
20295 deduced from a later argument than the one from which
20296 this parameter can be deduced. */
20297 if (TREE_CODE (tparm) == PARM_DECL
20298 && uses_template_parms (TREE_TYPE (tparm))
20299 && saw_undeduced < 2)
20300 {
20301 saw_undeduced = 1;
20302 continue;
20303 }
20304
20305 /* Core issue #226 (C++0x) [temp.deduct]:
20306
20307 If a template argument has not been deduced, its
20308 default template argument, if any, is used.
20309
20310 When we are in C++98 mode, TREE_PURPOSE will either
20311 be NULL_TREE or ERROR_MARK_NODE, so we do not need
20312 to explicitly check cxx_dialect here. */
20313 if (TREE_PURPOSE (TREE_VEC_ELT (tparms, i)))
20314 /* OK, there is a default argument. Wait until after the
20315 conversion check to do substitution. */
20316 continue;
20317
20318 /* If the type parameter is a parameter pack, then it will
20319 be deduced to an empty parameter pack. */
20320 if (template_parameter_pack_p (tparm))
20321 {
20322 tree arg;
20323
20324 if (TREE_CODE (tparm) == TEMPLATE_PARM_INDEX)
20325 {
20326 arg = make_node (NONTYPE_ARGUMENT_PACK);
20327 TREE_CONSTANT (arg) = 1;
20328 }
20329 else
20330 arg = cxx_make_type (TYPE_ARGUMENT_PACK);
20331
20332 SET_ARGUMENT_PACK_ARGS (arg, make_tree_vec (0));
20333
20334 TREE_VEC_ELT (targs, i) = arg;
20335 continue;
20336 }
20337
20338 return unify_parameter_deduction_failure (explain_p, tparm);
20339 }
20340
20341 /* DR 1391: All parameters have args, now check non-dependent parms for
20342 convertibility. */
20343 if (saw_undeduced < 2)
20344 for (ia = 0, parms = xparms, args = xargs, nargs = xnargs;
20345 parms && parms != void_list_node && ia < nargs; )
20346 {
20347 parm = TREE_VALUE (parms);
20348
20349 if (TREE_CODE (parm) == TYPE_PACK_EXPANSION
20350 && (!TREE_CHAIN (parms)
20351 || TREE_CHAIN (parms) == void_list_node))
20352 /* For a function parameter pack that occurs at the end of the
20353 parameter-declaration-list, the type A of each remaining
20354 argument of the call is compared with the type P of the
20355 declarator-id of the function parameter pack. */
20356 break;
20357
20358 parms = TREE_CHAIN (parms);
20359
20360 if (TREE_CODE (parm) == TYPE_PACK_EXPANSION)
20361 /* For a function parameter pack that does not occur at the
20362 end of the parameter-declaration-list, the type of the
20363 parameter pack is a non-deduced context. */
20364 continue;
20365
20366 arg = args[ia];
20367 ++ia;
20368
20369 if (uses_template_parms (parm))
20370 continue;
20371 if (check_non_deducible_conversion (parm, arg, strict, flags,
20372 explain_p))
20373 return 1;
20374 }
20375
20376 /* Now substitute into the default template arguments. */
20377 for (i = 0; i < ntparms; i++)
20378 {
20379 tree targ = TREE_VEC_ELT (targs, i);
20380 tree tparm = TREE_VEC_ELT (tparms, i);
20381
20382 if (targ || tparm == error_mark_node)
20383 continue;
20384 tree parm = TREE_VALUE (tparm);
20385 tree arg = TREE_PURPOSE (tparm);
20386 reopen_deferring_access_checks (*checks);
20387 location_t save_loc = input_location;
20388 if (DECL_P (parm))
20389 input_location = DECL_SOURCE_LOCATION (parm);
20390 if (saw_undeduced == 1)
20391 ++processing_template_decl;
20392
20393 if (saw_undeduced == 1
20394 && TREE_CODE (parm) == PARM_DECL
20395 && uses_template_parms (TREE_TYPE (parm)))
20396 {
20397 /* The type of this non-type parameter depends on undeduced
20398 parameters. Don't try to use its default argument yet,
20399 but do check whether the arguments we already have cause
20400 substitution failure, so that that happens before we try
20401 later default arguments (78489). */
20402 tree type = tsubst (TREE_TYPE (parm), full_targs, complain,
20403 NULL_TREE);
20404 if (type == error_mark_node)
20405 arg = error_mark_node;
20406 else
20407 arg = NULL_TREE;
20408 }
20409 else
20410 {
20411 arg = tsubst_template_arg (arg, full_targs, complain, NULL_TREE);
20412
20413 if (!uses_template_parms (arg))
20414 arg = convert_template_argument (parm, arg, full_targs,
20415 complain, i, NULL_TREE);
20416 else if (saw_undeduced == 1)
20417 arg = NULL_TREE;
20418 else
20419 arg = error_mark_node;
20420 }
20421
20422 if (saw_undeduced == 1)
20423 --processing_template_decl;
20424 input_location = save_loc;
20425 *checks = get_deferred_access_checks ();
20426 pop_deferring_access_checks ();
20427
20428 if (arg == error_mark_node)
20429 return 1;
20430 else if (arg)
20431 {
20432 TREE_VEC_ELT (targs, i) = arg;
20433 /* The position of the first default template argument,
20434 is also the number of non-defaulted arguments in TARGS.
20435 Record that. */
20436 if (!NON_DEFAULT_TEMPLATE_ARGS_COUNT (targs))
20437 SET_NON_DEFAULT_TEMPLATE_ARGS_COUNT (targs, i);
20438 }
20439 }
20440
20441 if (saw_undeduced++ == 1)
20442 goto again;
20443 }
20444
20445 if (CHECKING_P && !NON_DEFAULT_TEMPLATE_ARGS_COUNT (targs))
20446 SET_NON_DEFAULT_TEMPLATE_ARGS_COUNT (targs, TREE_VEC_LENGTH (targs));
20447
20448 return unify_success (explain_p);
20449 }
20450
20451 /* Subroutine of type_unification_real. Args are like the variables
20452 at the call site. ARG is an overloaded function (or template-id);
20453 we try deducing template args from each of the overloads, and if
20454 only one succeeds, we go with that. Modifies TARGS and returns
20455 true on success. */
20456
20457 static bool
20458 resolve_overloaded_unification (tree tparms,
20459 tree targs,
20460 tree parm,
20461 tree arg,
20462 unification_kind_t strict,
20463 int sub_strict,
20464 bool explain_p)
20465 {
20466 tree tempargs = copy_node (targs);
20467 int good = 0;
20468 tree goodfn = NULL_TREE;
20469 bool addr_p;
20470
20471 if (TREE_CODE (arg) == ADDR_EXPR)
20472 {
20473 arg = TREE_OPERAND (arg, 0);
20474 addr_p = true;
20475 }
20476 else
20477 addr_p = false;
20478
20479 if (TREE_CODE (arg) == COMPONENT_REF)
20480 /* Handle `&x' where `x' is some static or non-static member
20481 function name. */
20482 arg = TREE_OPERAND (arg, 1);
20483
20484 if (TREE_CODE (arg) == OFFSET_REF)
20485 arg = TREE_OPERAND (arg, 1);
20486
20487 /* Strip baselink information. */
20488 if (BASELINK_P (arg))
20489 arg = BASELINK_FUNCTIONS (arg);
20490
20491 if (TREE_CODE (arg) == TEMPLATE_ID_EXPR)
20492 {
20493 /* If we got some explicit template args, we need to plug them into
20494 the affected templates before we try to unify, in case the
20495 explicit args will completely resolve the templates in question. */
20496
20497 int ok = 0;
20498 tree expl_subargs = TREE_OPERAND (arg, 1);
20499 arg = TREE_OPERAND (arg, 0);
20500
20501 for (lkp_iterator iter (arg); iter; ++iter)
20502 {
20503 tree fn = *iter;
20504 tree subargs, elem;
20505
20506 if (TREE_CODE (fn) != TEMPLATE_DECL)
20507 continue;
20508
20509 subargs = coerce_template_parms (DECL_INNERMOST_TEMPLATE_PARMS (fn),
20510 expl_subargs, NULL_TREE, tf_none,
20511 /*require_all_args=*/true,
20512 /*use_default_args=*/true);
20513 if (subargs != error_mark_node
20514 && !any_dependent_template_arguments_p (subargs))
20515 {
20516 elem = TREE_TYPE (instantiate_template (fn, subargs, tf_none));
20517 if (try_one_overload (tparms, targs, tempargs, parm,
20518 elem, strict, sub_strict, addr_p, explain_p)
20519 && (!goodfn || !same_type_p (goodfn, elem)))
20520 {
20521 goodfn = elem;
20522 ++good;
20523 }
20524 }
20525 else if (subargs)
20526 ++ok;
20527 }
20528 /* If no templates (or more than one) are fully resolved by the
20529 explicit arguments, this template-id is a non-deduced context; it
20530 could still be OK if we deduce all template arguments for the
20531 enclosing call through other arguments. */
20532 if (good != 1)
20533 good = ok;
20534 }
20535 else if (TREE_CODE (arg) != OVERLOAD
20536 && TREE_CODE (arg) != FUNCTION_DECL)
20537 /* If ARG is, for example, "(0, &f)" then its type will be unknown
20538 -- but the deduction does not succeed because the expression is
20539 not just the function on its own. */
20540 return false;
20541 else
20542 for (lkp_iterator iter (arg); iter; ++iter)
20543 {
20544 tree fn = *iter;
20545 if (try_one_overload (tparms, targs, tempargs, parm, TREE_TYPE (fn),
20546 strict, sub_strict, addr_p, explain_p)
20547 && (!goodfn || !decls_match (goodfn, fn)))
20548 {
20549 goodfn = fn;
20550 ++good;
20551 }
20552 }
20553
20554 /* [temp.deduct.type] A template-argument can be deduced from a pointer
20555 to function or pointer to member function argument if the set of
20556 overloaded functions does not contain function templates and at most
20557 one of a set of overloaded functions provides a unique match.
20558
20559 So if we found multiple possibilities, we return success but don't
20560 deduce anything. */
20561
20562 if (good == 1)
20563 {
20564 int i = TREE_VEC_LENGTH (targs);
20565 for (; i--; )
20566 if (TREE_VEC_ELT (tempargs, i))
20567 {
20568 tree old = TREE_VEC_ELT (targs, i);
20569 tree new_ = TREE_VEC_ELT (tempargs, i);
20570 if (new_ && old && ARGUMENT_PACK_P (old)
20571 && ARGUMENT_PACK_EXPLICIT_ARGS (old))
20572 /* Don't forget explicit template arguments in a pack. */
20573 ARGUMENT_PACK_EXPLICIT_ARGS (new_)
20574 = ARGUMENT_PACK_EXPLICIT_ARGS (old);
20575 TREE_VEC_ELT (targs, i) = new_;
20576 }
20577 }
20578 if (good)
20579 return true;
20580
20581 return false;
20582 }
20583
20584 /* Core DR 115: In contexts where deduction is done and fails, or in
20585 contexts where deduction is not done, if a template argument list is
20586 specified and it, along with any default template arguments, identifies
20587 a single function template specialization, then the template-id is an
20588 lvalue for the function template specialization. */
20589
20590 tree
20591 resolve_nondeduced_context (tree orig_expr, tsubst_flags_t complain)
20592 {
20593 tree expr, offset, baselink;
20594 bool addr;
20595
20596 if (!type_unknown_p (orig_expr))
20597 return orig_expr;
20598
20599 expr = orig_expr;
20600 addr = false;
20601 offset = NULL_TREE;
20602 baselink = NULL_TREE;
20603
20604 if (TREE_CODE (expr) == ADDR_EXPR)
20605 {
20606 expr = TREE_OPERAND (expr, 0);
20607 addr = true;
20608 }
20609 if (TREE_CODE (expr) == OFFSET_REF)
20610 {
20611 offset = expr;
20612 expr = TREE_OPERAND (expr, 1);
20613 }
20614 if (BASELINK_P (expr))
20615 {
20616 baselink = expr;
20617 expr = BASELINK_FUNCTIONS (expr);
20618 }
20619
20620 if (TREE_CODE (expr) == TEMPLATE_ID_EXPR)
20621 {
20622 int good = 0;
20623 tree goodfn = NULL_TREE;
20624
20625 /* If we got some explicit template args, we need to plug them into
20626 the affected templates before we try to unify, in case the
20627 explicit args will completely resolve the templates in question. */
20628
20629 tree expl_subargs = TREE_OPERAND (expr, 1);
20630 tree arg = TREE_OPERAND (expr, 0);
20631 tree badfn = NULL_TREE;
20632 tree badargs = NULL_TREE;
20633
20634 for (lkp_iterator iter (arg); iter; ++iter)
20635 {
20636 tree fn = *iter;
20637 tree subargs, elem;
20638
20639 if (TREE_CODE (fn) != TEMPLATE_DECL)
20640 continue;
20641
20642 subargs = coerce_template_parms (DECL_INNERMOST_TEMPLATE_PARMS (fn),
20643 expl_subargs, NULL_TREE, tf_none,
20644 /*require_all_args=*/true,
20645 /*use_default_args=*/true);
20646 if (subargs != error_mark_node
20647 && !any_dependent_template_arguments_p (subargs))
20648 {
20649 elem = instantiate_template (fn, subargs, tf_none);
20650 if (elem == error_mark_node)
20651 {
20652 badfn = fn;
20653 badargs = subargs;
20654 }
20655 else if (elem && (!goodfn || !decls_match (goodfn, elem)))
20656 {
20657 goodfn = elem;
20658 ++good;
20659 }
20660 }
20661 }
20662 if (good == 1)
20663 {
20664 mark_used (goodfn);
20665 expr = goodfn;
20666 if (baselink)
20667 expr = build_baselink (BASELINK_BINFO (baselink),
20668 BASELINK_ACCESS_BINFO (baselink),
20669 expr, BASELINK_OPTYPE (baselink));
20670 if (offset)
20671 {
20672 tree base
20673 = TYPE_MAIN_VARIANT (TREE_TYPE (TREE_OPERAND (offset, 0)));
20674 expr = build_offset_ref (base, expr, addr, complain);
20675 }
20676 if (addr)
20677 expr = cp_build_addr_expr (expr, complain);
20678 return expr;
20679 }
20680 else if (good == 0 && badargs && (complain & tf_error))
20681 /* There were no good options and at least one bad one, so let the
20682 user know what the problem is. */
20683 instantiate_template (badfn, badargs, complain);
20684 }
20685 return orig_expr;
20686 }
20687
20688 /* Subroutine of resolve_overloaded_unification; does deduction for a single
20689 overload. Fills TARGS with any deduced arguments, or error_mark_node if
20690 different overloads deduce different arguments for a given parm.
20691 ADDR_P is true if the expression for which deduction is being
20692 performed was of the form "& fn" rather than simply "fn".
20693
20694 Returns 1 on success. */
20695
20696 static int
20697 try_one_overload (tree tparms,
20698 tree orig_targs,
20699 tree targs,
20700 tree parm,
20701 tree arg,
20702 unification_kind_t strict,
20703 int sub_strict,
20704 bool addr_p,
20705 bool explain_p)
20706 {
20707 int nargs;
20708 tree tempargs;
20709 int i;
20710
20711 if (arg == error_mark_node)
20712 return 0;
20713
20714 /* [temp.deduct.type] A template-argument can be deduced from a pointer
20715 to function or pointer to member function argument if the set of
20716 overloaded functions does not contain function templates and at most
20717 one of a set of overloaded functions provides a unique match.
20718
20719 So if this is a template, just return success. */
20720
20721 if (uses_template_parms (arg))
20722 return 1;
20723
20724 if (TREE_CODE (arg) == METHOD_TYPE)
20725 arg = build_ptrmemfunc_type (build_pointer_type (arg));
20726 else if (addr_p)
20727 arg = build_pointer_type (arg);
20728
20729 sub_strict |= maybe_adjust_types_for_deduction (strict, &parm, &arg, NULL);
20730
20731 /* We don't copy orig_targs for this because if we have already deduced
20732 some template args from previous args, unify would complain when we
20733 try to deduce a template parameter for the same argument, even though
20734 there isn't really a conflict. */
20735 nargs = TREE_VEC_LENGTH (targs);
20736 tempargs = make_tree_vec (nargs);
20737
20738 if (unify (tparms, tempargs, parm, arg, sub_strict, explain_p))
20739 return 0;
20740
20741 /* First make sure we didn't deduce anything that conflicts with
20742 explicitly specified args. */
20743 for (i = nargs; i--; )
20744 {
20745 tree elt = TREE_VEC_ELT (tempargs, i);
20746 tree oldelt = TREE_VEC_ELT (orig_targs, i);
20747
20748 if (!elt)
20749 /*NOP*/;
20750 else if (uses_template_parms (elt))
20751 /* Since we're unifying against ourselves, we will fill in
20752 template args used in the function parm list with our own
20753 template parms. Discard them. */
20754 TREE_VEC_ELT (tempargs, i) = NULL_TREE;
20755 else if (oldelt && ARGUMENT_PACK_P (oldelt))
20756 {
20757 /* Check that the argument at each index of the deduced argument pack
20758 is equivalent to the corresponding explicitly specified argument.
20759 We may have deduced more arguments than were explicitly specified,
20760 and that's OK. */
20761
20762 /* We used to assert ARGUMENT_PACK_INCOMPLETE_P (oldelt) here, but
20763 that's wrong if we deduce the same argument pack from multiple
20764 function arguments: it's only incomplete the first time. */
20765
20766 tree explicit_pack = ARGUMENT_PACK_ARGS (oldelt);
20767 tree deduced_pack = ARGUMENT_PACK_ARGS (elt);
20768
20769 if (TREE_VEC_LENGTH (deduced_pack)
20770 < TREE_VEC_LENGTH (explicit_pack))
20771 return 0;
20772
20773 for (int j = 0; j < TREE_VEC_LENGTH (explicit_pack); j++)
20774 if (!template_args_equal (TREE_VEC_ELT (explicit_pack, j),
20775 TREE_VEC_ELT (deduced_pack, j)))
20776 return 0;
20777 }
20778 else if (oldelt && !template_args_equal (oldelt, elt))
20779 return 0;
20780 }
20781
20782 for (i = nargs; i--; )
20783 {
20784 tree elt = TREE_VEC_ELT (tempargs, i);
20785
20786 if (elt)
20787 TREE_VEC_ELT (targs, i) = elt;
20788 }
20789
20790 return 1;
20791 }
20792
20793 /* PARM is a template class (perhaps with unbound template
20794 parameters). ARG is a fully instantiated type. If ARG can be
20795 bound to PARM, return ARG, otherwise return NULL_TREE. TPARMS and
20796 TARGS are as for unify. */
20797
20798 static tree
20799 try_class_unification (tree tparms, tree targs, tree parm, tree arg,
20800 bool explain_p)
20801 {
20802 tree copy_of_targs;
20803
20804 if (!CLASSTYPE_SPECIALIZATION_OF_PRIMARY_TEMPLATE_P (arg))
20805 return NULL_TREE;
20806 else if (TREE_CODE (parm) == BOUND_TEMPLATE_TEMPLATE_PARM)
20807 /* Matches anything. */;
20808 else if (most_general_template (CLASSTYPE_TI_TEMPLATE (arg))
20809 != most_general_template (CLASSTYPE_TI_TEMPLATE (parm)))
20810 return NULL_TREE;
20811
20812 /* We need to make a new template argument vector for the call to
20813 unify. If we used TARGS, we'd clutter it up with the result of
20814 the attempted unification, even if this class didn't work out.
20815 We also don't want to commit ourselves to all the unifications
20816 we've already done, since unification is supposed to be done on
20817 an argument-by-argument basis. In other words, consider the
20818 following pathological case:
20819
20820 template <int I, int J, int K>
20821 struct S {};
20822
20823 template <int I, int J>
20824 struct S<I, J, 2> : public S<I, I, I>, S<J, J, J> {};
20825
20826 template <int I, int J, int K>
20827 void f(S<I, J, K>, S<I, I, I>);
20828
20829 void g() {
20830 S<0, 0, 0> s0;
20831 S<0, 1, 2> s2;
20832
20833 f(s0, s2);
20834 }
20835
20836 Now, by the time we consider the unification involving `s2', we
20837 already know that we must have `f<0, 0, 0>'. But, even though
20838 `S<0, 1, 2>' is derived from `S<0, 0, 0>', the code is invalid
20839 because there are two ways to unify base classes of S<0, 1, 2>
20840 with S<I, I, I>. If we kept the already deduced knowledge, we
20841 would reject the possibility I=1. */
20842 copy_of_targs = make_tree_vec (TREE_VEC_LENGTH (targs));
20843
20844 if (TREE_CODE (parm) == BOUND_TEMPLATE_TEMPLATE_PARM)
20845 {
20846 if (unify_bound_ttp_args (tparms, copy_of_targs, parm, arg, explain_p))
20847 return NULL_TREE;
20848 return arg;
20849 }
20850
20851 /* If unification failed, we're done. */
20852 if (unify (tparms, copy_of_targs, CLASSTYPE_TI_ARGS (parm),
20853 CLASSTYPE_TI_ARGS (arg), UNIFY_ALLOW_NONE, explain_p))
20854 return NULL_TREE;
20855
20856 return arg;
20857 }
20858
20859 /* Given a template type PARM and a class type ARG, find the unique
20860 base type in ARG that is an instance of PARM. We do not examine
20861 ARG itself; only its base-classes. If there is not exactly one
20862 appropriate base class, return NULL_TREE. PARM may be the type of
20863 a partial specialization, as well as a plain template type. Used
20864 by unify. */
20865
20866 static enum template_base_result
20867 get_template_base (tree tparms, tree targs, tree parm, tree arg,
20868 bool explain_p, tree *result)
20869 {
20870 tree rval = NULL_TREE;
20871 tree binfo;
20872
20873 gcc_assert (RECORD_OR_UNION_CODE_P (TREE_CODE (arg)));
20874
20875 binfo = TYPE_BINFO (complete_type (arg));
20876 if (!binfo)
20877 {
20878 /* The type could not be completed. */
20879 *result = NULL_TREE;
20880 return tbr_incomplete_type;
20881 }
20882
20883 /* Walk in inheritance graph order. The search order is not
20884 important, and this avoids multiple walks of virtual bases. */
20885 for (binfo = TREE_CHAIN (binfo); binfo; binfo = TREE_CHAIN (binfo))
20886 {
20887 tree r = try_class_unification (tparms, targs, parm,
20888 BINFO_TYPE (binfo), explain_p);
20889
20890 if (r)
20891 {
20892 /* If there is more than one satisfactory baseclass, then:
20893
20894 [temp.deduct.call]
20895
20896 If they yield more than one possible deduced A, the type
20897 deduction fails.
20898
20899 applies. */
20900 if (rval && !same_type_p (r, rval))
20901 {
20902 *result = NULL_TREE;
20903 return tbr_ambiguous_baseclass;
20904 }
20905
20906 rval = r;
20907 }
20908 }
20909
20910 *result = rval;
20911 return tbr_success;
20912 }
20913
20914 /* Returns the level of DECL, which declares a template parameter. */
20915
20916 static int
20917 template_decl_level (tree decl)
20918 {
20919 switch (TREE_CODE (decl))
20920 {
20921 case TYPE_DECL:
20922 case TEMPLATE_DECL:
20923 return TEMPLATE_TYPE_LEVEL (TREE_TYPE (decl));
20924
20925 case PARM_DECL:
20926 return TEMPLATE_PARM_LEVEL (DECL_INITIAL (decl));
20927
20928 default:
20929 gcc_unreachable ();
20930 }
20931 return 0;
20932 }
20933
20934 /* Decide whether ARG can be unified with PARM, considering only the
20935 cv-qualifiers of each type, given STRICT as documented for unify.
20936 Returns nonzero iff the unification is OK on that basis. */
20937
20938 static int
20939 check_cv_quals_for_unify (int strict, tree arg, tree parm)
20940 {
20941 int arg_quals = cp_type_quals (arg);
20942 int parm_quals = cp_type_quals (parm);
20943
20944 if (TREE_CODE (parm) == TEMPLATE_TYPE_PARM
20945 && !(strict & UNIFY_ALLOW_OUTER_MORE_CV_QUAL))
20946 {
20947 /* Although a CVR qualifier is ignored when being applied to a
20948 substituted template parameter ([8.3.2]/1 for example), that
20949 does not allow us to unify "const T" with "int&" because both
20950 types are not of the form "cv-list T" [14.8.2.5 temp.deduct.type].
20951 It is ok when we're allowing additional CV qualifiers
20952 at the outer level [14.8.2.1]/3,1st bullet. */
20953 if ((TYPE_REF_P (arg)
20954 || TREE_CODE (arg) == FUNCTION_TYPE
20955 || TREE_CODE (arg) == METHOD_TYPE)
20956 && (parm_quals & (TYPE_QUAL_CONST | TYPE_QUAL_VOLATILE)))
20957 return 0;
20958
20959 if ((!INDIRECT_TYPE_P (arg) && TREE_CODE (arg) != TEMPLATE_TYPE_PARM)
20960 && (parm_quals & TYPE_QUAL_RESTRICT))
20961 return 0;
20962 }
20963
20964 if (!(strict & (UNIFY_ALLOW_MORE_CV_QUAL | UNIFY_ALLOW_OUTER_MORE_CV_QUAL))
20965 && (arg_quals & parm_quals) != parm_quals)
20966 return 0;
20967
20968 if (!(strict & (UNIFY_ALLOW_LESS_CV_QUAL | UNIFY_ALLOW_OUTER_LESS_CV_QUAL))
20969 && (parm_quals & arg_quals) != arg_quals)
20970 return 0;
20971
20972 return 1;
20973 }
20974
20975 /* Determines the LEVEL and INDEX for the template parameter PARM. */
20976 void
20977 template_parm_level_and_index (tree parm, int* level, int* index)
20978 {
20979 if (TREE_CODE (parm) == TEMPLATE_TYPE_PARM
20980 || TREE_CODE (parm) == TEMPLATE_TEMPLATE_PARM
20981 || TREE_CODE (parm) == BOUND_TEMPLATE_TEMPLATE_PARM)
20982 {
20983 *index = TEMPLATE_TYPE_IDX (parm);
20984 *level = TEMPLATE_TYPE_LEVEL (parm);
20985 }
20986 else
20987 {
20988 *index = TEMPLATE_PARM_IDX (parm);
20989 *level = TEMPLATE_PARM_LEVEL (parm);
20990 }
20991 }
20992
20993 #define RECUR_AND_CHECK_FAILURE(TP, TA, P, A, S, EP) \
20994 do { \
20995 if (unify (TP, TA, P, A, S, EP)) \
20996 return 1; \
20997 } while (0)
20998
20999 /* Unifies the remaining arguments in PACKED_ARGS with the pack
21000 expansion at the end of PACKED_PARMS. Returns 0 if the type
21001 deduction succeeds, 1 otherwise. STRICT is the same as in
21002 fn_type_unification. CALL_ARGS_P is true iff PACKED_ARGS is actually a
21003 function call argument list. We'll need to adjust the arguments to make them
21004 types. SUBR tells us if this is from a recursive call to
21005 type_unification_real, or for comparing two template argument
21006 lists. */
21007
21008 static int
21009 unify_pack_expansion (tree tparms, tree targs, tree packed_parms,
21010 tree packed_args, unification_kind_t strict,
21011 bool subr, bool explain_p)
21012 {
21013 tree parm
21014 = TREE_VEC_ELT (packed_parms, TREE_VEC_LENGTH (packed_parms) - 1);
21015 tree pattern = PACK_EXPANSION_PATTERN (parm);
21016 tree pack, packs = NULL_TREE;
21017 int i, start = TREE_VEC_LENGTH (packed_parms) - 1;
21018
21019 /* Add in any args remembered from an earlier partial instantiation. */
21020 targs = add_to_template_args (PACK_EXPANSION_EXTRA_ARGS (parm), targs);
21021 int levels = TMPL_ARGS_DEPTH (targs);
21022
21023 packed_args = expand_template_argument_pack (packed_args);
21024
21025 int len = TREE_VEC_LENGTH (packed_args);
21026
21027 /* Determine the parameter packs we will be deducing from the
21028 pattern, and record their current deductions. */
21029 for (pack = PACK_EXPANSION_PARAMETER_PACKS (parm);
21030 pack; pack = TREE_CHAIN (pack))
21031 {
21032 tree parm_pack = TREE_VALUE (pack);
21033 int idx, level;
21034
21035 /* Only template parameter packs can be deduced, not e.g. function
21036 parameter packs or __bases or __integer_pack. */
21037 if (!TEMPLATE_PARM_P (parm_pack))
21038 continue;
21039
21040 /* Determine the index and level of this parameter pack. */
21041 template_parm_level_and_index (parm_pack, &level, &idx);
21042 if (level < levels)
21043 continue;
21044
21045 /* Keep track of the parameter packs and their corresponding
21046 argument packs. */
21047 packs = tree_cons (parm_pack, TMPL_ARG (targs, level, idx), packs);
21048 TREE_TYPE (packs) = make_tree_vec (len - start);
21049 }
21050
21051 /* Loop through all of the arguments that have not yet been
21052 unified and unify each with the pattern. */
21053 for (i = start; i < len; i++)
21054 {
21055 tree parm;
21056 bool any_explicit = false;
21057 tree arg = TREE_VEC_ELT (packed_args, i);
21058
21059 /* For each parameter pack, set its TMPL_ARG to either NULL_TREE
21060 or the element of its argument pack at the current index if
21061 this argument was explicitly specified. */
21062 for (pack = packs; pack; pack = TREE_CHAIN (pack))
21063 {
21064 int idx, level;
21065 tree arg, pargs;
21066 template_parm_level_and_index (TREE_PURPOSE (pack), &level, &idx);
21067
21068 arg = NULL_TREE;
21069 if (TREE_VALUE (pack)
21070 && (pargs = ARGUMENT_PACK_EXPLICIT_ARGS (TREE_VALUE (pack)))
21071 && (i - start < TREE_VEC_LENGTH (pargs)))
21072 {
21073 any_explicit = true;
21074 arg = TREE_VEC_ELT (pargs, i - start);
21075 }
21076 TMPL_ARG (targs, level, idx) = arg;
21077 }
21078
21079 /* If we had explicit template arguments, substitute them into the
21080 pattern before deduction. */
21081 if (any_explicit)
21082 {
21083 /* Some arguments might still be unspecified or dependent. */
21084 bool dependent;
21085 ++processing_template_decl;
21086 dependent = any_dependent_template_arguments_p (targs);
21087 if (!dependent)
21088 --processing_template_decl;
21089 parm = tsubst (pattern, targs,
21090 explain_p ? tf_warning_or_error : tf_none,
21091 NULL_TREE);
21092 if (dependent)
21093 --processing_template_decl;
21094 if (parm == error_mark_node)
21095 return 1;
21096 }
21097 else
21098 parm = pattern;
21099
21100 /* Unify the pattern with the current argument. */
21101 if (unify_one_argument (tparms, targs, parm, arg, subr, strict,
21102 explain_p))
21103 return 1;
21104
21105 /* For each parameter pack, collect the deduced value. */
21106 for (pack = packs; pack; pack = TREE_CHAIN (pack))
21107 {
21108 int idx, level;
21109 template_parm_level_and_index (TREE_PURPOSE (pack), &level, &idx);
21110
21111 TREE_VEC_ELT (TREE_TYPE (pack), i - start) =
21112 TMPL_ARG (targs, level, idx);
21113 }
21114 }
21115
21116 /* Verify that the results of unification with the parameter packs
21117 produce results consistent with what we've seen before, and make
21118 the deduced argument packs available. */
21119 for (pack = packs; pack; pack = TREE_CHAIN (pack))
21120 {
21121 tree old_pack = TREE_VALUE (pack);
21122 tree new_args = TREE_TYPE (pack);
21123 int i, len = TREE_VEC_LENGTH (new_args);
21124 int idx, level;
21125 bool nondeduced_p = false;
21126
21127 /* By default keep the original deduced argument pack.
21128 If necessary, more specific code is going to update the
21129 resulting deduced argument later down in this function. */
21130 template_parm_level_and_index (TREE_PURPOSE (pack), &level, &idx);
21131 TMPL_ARG (targs, level, idx) = old_pack;
21132
21133 /* If NEW_ARGS contains any NULL_TREE entries, we didn't
21134 actually deduce anything. */
21135 for (i = 0; i < len && !nondeduced_p; ++i)
21136 if (TREE_VEC_ELT (new_args, i) == NULL_TREE)
21137 nondeduced_p = true;
21138 if (nondeduced_p)
21139 continue;
21140
21141 if (old_pack && ARGUMENT_PACK_INCOMPLETE_P (old_pack))
21142 {
21143 /* If we had fewer function args than explicit template args,
21144 just use the explicits. */
21145 tree explicit_args = ARGUMENT_PACK_EXPLICIT_ARGS (old_pack);
21146 int explicit_len = TREE_VEC_LENGTH (explicit_args);
21147 if (len < explicit_len)
21148 new_args = explicit_args;
21149 }
21150
21151 if (!old_pack)
21152 {
21153 tree result;
21154 /* Build the deduced *_ARGUMENT_PACK. */
21155 if (TREE_CODE (TREE_PURPOSE (pack)) == TEMPLATE_PARM_INDEX)
21156 {
21157 result = make_node (NONTYPE_ARGUMENT_PACK);
21158 TREE_CONSTANT (result) = 1;
21159 }
21160 else
21161 result = cxx_make_type (TYPE_ARGUMENT_PACK);
21162
21163 SET_ARGUMENT_PACK_ARGS (result, new_args);
21164
21165 /* Note the deduced argument packs for this parameter
21166 pack. */
21167 TMPL_ARG (targs, level, idx) = result;
21168 }
21169 else if (ARGUMENT_PACK_INCOMPLETE_P (old_pack)
21170 && (ARGUMENT_PACK_ARGS (old_pack)
21171 == ARGUMENT_PACK_EXPLICIT_ARGS (old_pack)))
21172 {
21173 /* We only had the explicitly-provided arguments before, but
21174 now we have a complete set of arguments. */
21175 tree explicit_args = ARGUMENT_PACK_EXPLICIT_ARGS (old_pack);
21176
21177 SET_ARGUMENT_PACK_ARGS (old_pack, new_args);
21178 ARGUMENT_PACK_INCOMPLETE_P (old_pack) = 1;
21179 ARGUMENT_PACK_EXPLICIT_ARGS (old_pack) = explicit_args;
21180 }
21181 else
21182 {
21183 tree bad_old_arg = NULL_TREE, bad_new_arg = NULL_TREE;
21184 tree old_args = ARGUMENT_PACK_ARGS (old_pack);
21185
21186 if (!comp_template_args (old_args, new_args,
21187 &bad_old_arg, &bad_new_arg))
21188 /* Inconsistent unification of this parameter pack. */
21189 return unify_parameter_pack_inconsistent (explain_p,
21190 bad_old_arg,
21191 bad_new_arg);
21192 }
21193 }
21194
21195 return unify_success (explain_p);
21196 }
21197
21198 /* Handle unification of the domain of an array. PARM_DOM and ARG_DOM are
21199 INTEGER_TYPEs representing the TYPE_DOMAIN of ARRAY_TYPEs. The other
21200 parameters and return value are as for unify. */
21201
21202 static int
21203 unify_array_domain (tree tparms, tree targs,
21204 tree parm_dom, tree arg_dom,
21205 bool explain_p)
21206 {
21207 tree parm_max;
21208 tree arg_max;
21209 bool parm_cst;
21210 bool arg_cst;
21211
21212 /* Our representation of array types uses "N - 1" as the
21213 TYPE_MAX_VALUE for an array with "N" elements, if "N" is
21214 not an integer constant. We cannot unify arbitrarily
21215 complex expressions, so we eliminate the MINUS_EXPRs
21216 here. */
21217 parm_max = TYPE_MAX_VALUE (parm_dom);
21218 parm_cst = TREE_CODE (parm_max) == INTEGER_CST;
21219 if (!parm_cst)
21220 {
21221 gcc_assert (TREE_CODE (parm_max) == MINUS_EXPR);
21222 parm_max = TREE_OPERAND (parm_max, 0);
21223 }
21224 arg_max = TYPE_MAX_VALUE (arg_dom);
21225 arg_cst = TREE_CODE (arg_max) == INTEGER_CST;
21226 if (!arg_cst)
21227 {
21228 /* The ARG_MAX may not be a simple MINUS_EXPR, if we are
21229 trying to unify the type of a variable with the type
21230 of a template parameter. For example:
21231
21232 template <unsigned int N>
21233 void f (char (&) [N]);
21234 int g();
21235 void h(int i) {
21236 char a[g(i)];
21237 f(a);
21238 }
21239
21240 Here, the type of the ARG will be "int [g(i)]", and
21241 may be a SAVE_EXPR, etc. */
21242 if (TREE_CODE (arg_max) != MINUS_EXPR)
21243 return unify_vla_arg (explain_p, arg_dom);
21244 arg_max = TREE_OPERAND (arg_max, 0);
21245 }
21246
21247 /* If only one of the bounds used a MINUS_EXPR, compensate
21248 by adding one to the other bound. */
21249 if (parm_cst && !arg_cst)
21250 parm_max = fold_build2_loc (input_location, PLUS_EXPR,
21251 integer_type_node,
21252 parm_max,
21253 integer_one_node);
21254 else if (arg_cst && !parm_cst)
21255 arg_max = fold_build2_loc (input_location, PLUS_EXPR,
21256 integer_type_node,
21257 arg_max,
21258 integer_one_node);
21259
21260 return unify (tparms, targs, parm_max, arg_max,
21261 UNIFY_ALLOW_INTEGER, explain_p);
21262 }
21263
21264 /* Returns whether T, a P or A in unify, is a type, template or expression. */
21265
21266 enum pa_kind_t { pa_type, pa_tmpl, pa_expr };
21267
21268 static pa_kind_t
21269 pa_kind (tree t)
21270 {
21271 if (PACK_EXPANSION_P (t))
21272 t = PACK_EXPANSION_PATTERN (t);
21273 if (TREE_CODE (t) == TEMPLATE_TEMPLATE_PARM
21274 || TREE_CODE (t) == UNBOUND_CLASS_TEMPLATE
21275 || DECL_TYPE_TEMPLATE_P (t))
21276 return pa_tmpl;
21277 else if (TYPE_P (t))
21278 return pa_type;
21279 else
21280 return pa_expr;
21281 }
21282
21283 /* Deduce the value of template parameters. TPARMS is the (innermost)
21284 set of template parameters to a template. TARGS is the bindings
21285 for those template parameters, as determined thus far; TARGS may
21286 include template arguments for outer levels of template parameters
21287 as well. PARM is a parameter to a template function, or a
21288 subcomponent of that parameter; ARG is the corresponding argument.
21289 This function attempts to match PARM with ARG in a manner
21290 consistent with the existing assignments in TARGS. If more values
21291 are deduced, then TARGS is updated.
21292
21293 Returns 0 if the type deduction succeeds, 1 otherwise. The
21294 parameter STRICT is a bitwise or of the following flags:
21295
21296 UNIFY_ALLOW_NONE:
21297 Require an exact match between PARM and ARG.
21298 UNIFY_ALLOW_MORE_CV_QUAL:
21299 Allow the deduced ARG to be more cv-qualified (by qualification
21300 conversion) than ARG.
21301 UNIFY_ALLOW_LESS_CV_QUAL:
21302 Allow the deduced ARG to be less cv-qualified than ARG.
21303 UNIFY_ALLOW_DERIVED:
21304 Allow the deduced ARG to be a template base class of ARG,
21305 or a pointer to a template base class of the type pointed to by
21306 ARG.
21307 UNIFY_ALLOW_INTEGER:
21308 Allow any integral type to be deduced. See the TEMPLATE_PARM_INDEX
21309 case for more information.
21310 UNIFY_ALLOW_OUTER_LEVEL:
21311 This is the outermost level of a deduction. Used to determine validity
21312 of qualification conversions. A valid qualification conversion must
21313 have const qualified pointers leading up to the inner type which
21314 requires additional CV quals, except at the outer level, where const
21315 is not required [conv.qual]. It would be normal to set this flag in
21316 addition to setting UNIFY_ALLOW_MORE_CV_QUAL.
21317 UNIFY_ALLOW_OUTER_MORE_CV_QUAL:
21318 This is the outermost level of a deduction, and PARM can be more CV
21319 qualified at this point.
21320 UNIFY_ALLOW_OUTER_LESS_CV_QUAL:
21321 This is the outermost level of a deduction, and PARM can be less CV
21322 qualified at this point. */
21323
21324 static int
21325 unify (tree tparms, tree targs, tree parm, tree arg, int strict,
21326 bool explain_p)
21327 {
21328 int idx;
21329 tree targ;
21330 tree tparm;
21331 int strict_in = strict;
21332 tsubst_flags_t complain = (explain_p
21333 ? tf_warning_or_error
21334 : tf_none);
21335
21336 /* I don't think this will do the right thing with respect to types.
21337 But the only case I've seen it in so far has been array bounds, where
21338 signedness is the only information lost, and I think that will be
21339 okay. */
21340 while (CONVERT_EXPR_P (parm))
21341 parm = TREE_OPERAND (parm, 0);
21342
21343 if (arg == error_mark_node)
21344 return unify_invalid (explain_p);
21345 if (arg == unknown_type_node
21346 || arg == init_list_type_node)
21347 /* We can't deduce anything from this, but we might get all the
21348 template args from other function args. */
21349 return unify_success (explain_p);
21350
21351 if (parm == any_targ_node || arg == any_targ_node)
21352 return unify_success (explain_p);
21353
21354 /* If PARM uses template parameters, then we can't bail out here,
21355 even if ARG == PARM, since we won't record unifications for the
21356 template parameters. We might need them if we're trying to
21357 figure out which of two things is more specialized. */
21358 if (arg == parm && !uses_template_parms (parm))
21359 return unify_success (explain_p);
21360
21361 /* Handle init lists early, so the rest of the function can assume
21362 we're dealing with a type. */
21363 if (BRACE_ENCLOSED_INITIALIZER_P (arg))
21364 {
21365 tree elt, elttype;
21366 unsigned i;
21367 tree orig_parm = parm;
21368
21369 /* Replace T with std::initializer_list<T> for deduction. */
21370 if (TREE_CODE (parm) == TEMPLATE_TYPE_PARM
21371 && flag_deduce_init_list)
21372 parm = listify (parm);
21373
21374 if (!is_std_init_list (parm)
21375 && TREE_CODE (parm) != ARRAY_TYPE)
21376 /* We can only deduce from an initializer list argument if the
21377 parameter is std::initializer_list or an array; otherwise this
21378 is a non-deduced context. */
21379 return unify_success (explain_p);
21380
21381 if (TREE_CODE (parm) == ARRAY_TYPE)
21382 elttype = TREE_TYPE (parm);
21383 else
21384 {
21385 elttype = TREE_VEC_ELT (CLASSTYPE_TI_ARGS (parm), 0);
21386 /* Deduction is defined in terms of a single type, so just punt
21387 on the (bizarre) std::initializer_list<T...>. */
21388 if (PACK_EXPANSION_P (elttype))
21389 return unify_success (explain_p);
21390 }
21391
21392 FOR_EACH_CONSTRUCTOR_VALUE (CONSTRUCTOR_ELTS (arg), i, elt)
21393 {
21394 int elt_strict = strict;
21395
21396 if (elt == error_mark_node)
21397 return unify_invalid (explain_p);
21398
21399 if (!BRACE_ENCLOSED_INITIALIZER_P (elt))
21400 {
21401 tree type = TREE_TYPE (elt);
21402 if (type == error_mark_node)
21403 return unify_invalid (explain_p);
21404 /* It should only be possible to get here for a call. */
21405 gcc_assert (elt_strict & UNIFY_ALLOW_OUTER_LEVEL);
21406 elt_strict |= maybe_adjust_types_for_deduction
21407 (DEDUCE_CALL, &elttype, &type, elt);
21408 elt = type;
21409 }
21410
21411 RECUR_AND_CHECK_FAILURE (tparms, targs, elttype, elt, elt_strict,
21412 explain_p);
21413 }
21414
21415 if (TREE_CODE (parm) == ARRAY_TYPE
21416 && deducible_array_bound (TYPE_DOMAIN (parm)))
21417 {
21418 /* Also deduce from the length of the initializer list. */
21419 tree max = size_int (CONSTRUCTOR_NELTS (arg));
21420 tree idx = compute_array_index_type (NULL_TREE, max, tf_none);
21421 if (idx == error_mark_node)
21422 return unify_invalid (explain_p);
21423 return unify_array_domain (tparms, targs, TYPE_DOMAIN (parm),
21424 idx, explain_p);
21425 }
21426
21427 /* If the std::initializer_list<T> deduction worked, replace the
21428 deduced A with std::initializer_list<A>. */
21429 if (orig_parm != parm)
21430 {
21431 idx = TEMPLATE_TYPE_IDX (orig_parm);
21432 targ = TREE_VEC_ELT (INNERMOST_TEMPLATE_ARGS (targs), idx);
21433 targ = listify (targ);
21434 TREE_VEC_ELT (INNERMOST_TEMPLATE_ARGS (targs), idx) = targ;
21435 }
21436 return unify_success (explain_p);
21437 }
21438
21439 /* If parm and arg aren't the same kind of thing (template, type, or
21440 expression), fail early. */
21441 if (pa_kind (parm) != pa_kind (arg))
21442 return unify_invalid (explain_p);
21443
21444 /* Immediately reject some pairs that won't unify because of
21445 cv-qualification mismatches. */
21446 if (TREE_CODE (arg) == TREE_CODE (parm)
21447 && TYPE_P (arg)
21448 /* It is the elements of the array which hold the cv quals of an array
21449 type, and the elements might be template type parms. We'll check
21450 when we recurse. */
21451 && TREE_CODE (arg) != ARRAY_TYPE
21452 /* We check the cv-qualifiers when unifying with template type
21453 parameters below. We want to allow ARG `const T' to unify with
21454 PARM `T' for example, when computing which of two templates
21455 is more specialized, for example. */
21456 && TREE_CODE (arg) != TEMPLATE_TYPE_PARM
21457 && !check_cv_quals_for_unify (strict_in, arg, parm))
21458 return unify_cv_qual_mismatch (explain_p, parm, arg);
21459
21460 if (!(strict & UNIFY_ALLOW_OUTER_LEVEL)
21461 && TYPE_P (parm) && !CP_TYPE_CONST_P (parm))
21462 strict &= ~UNIFY_ALLOW_MORE_CV_QUAL;
21463 strict &= ~UNIFY_ALLOW_OUTER_LEVEL;
21464 strict &= ~UNIFY_ALLOW_DERIVED;
21465 strict &= ~UNIFY_ALLOW_OUTER_MORE_CV_QUAL;
21466 strict &= ~UNIFY_ALLOW_OUTER_LESS_CV_QUAL;
21467
21468 switch (TREE_CODE (parm))
21469 {
21470 case TYPENAME_TYPE:
21471 case SCOPE_REF:
21472 case UNBOUND_CLASS_TEMPLATE:
21473 /* In a type which contains a nested-name-specifier, template
21474 argument values cannot be deduced for template parameters used
21475 within the nested-name-specifier. */
21476 return unify_success (explain_p);
21477
21478 case TEMPLATE_TYPE_PARM:
21479 case TEMPLATE_TEMPLATE_PARM:
21480 case BOUND_TEMPLATE_TEMPLATE_PARM:
21481 tparm = TREE_VALUE (TREE_VEC_ELT (tparms, 0));
21482 if (error_operand_p (tparm))
21483 return unify_invalid (explain_p);
21484
21485 if (TEMPLATE_TYPE_LEVEL (parm)
21486 != template_decl_level (tparm))
21487 /* The PARM is not one we're trying to unify. Just check
21488 to see if it matches ARG. */
21489 {
21490 if (TREE_CODE (arg) == TREE_CODE (parm)
21491 && (is_auto (parm) ? is_auto (arg)
21492 : same_type_p (parm, arg)))
21493 return unify_success (explain_p);
21494 else
21495 return unify_type_mismatch (explain_p, parm, arg);
21496 }
21497 idx = TEMPLATE_TYPE_IDX (parm);
21498 targ = TREE_VEC_ELT (INNERMOST_TEMPLATE_ARGS (targs), idx);
21499 tparm = TREE_VALUE (TREE_VEC_ELT (tparms, idx));
21500 if (error_operand_p (tparm))
21501 return unify_invalid (explain_p);
21502
21503 /* Check for mixed types and values. */
21504 if ((TREE_CODE (parm) == TEMPLATE_TYPE_PARM
21505 && TREE_CODE (tparm) != TYPE_DECL)
21506 || (TREE_CODE (parm) == TEMPLATE_TEMPLATE_PARM
21507 && TREE_CODE (tparm) != TEMPLATE_DECL))
21508 gcc_unreachable ();
21509
21510 if (TREE_CODE (parm) == BOUND_TEMPLATE_TEMPLATE_PARM)
21511 {
21512 if ((strict_in & UNIFY_ALLOW_DERIVED)
21513 && CLASS_TYPE_P (arg))
21514 {
21515 /* First try to match ARG directly. */
21516 tree t = try_class_unification (tparms, targs, parm, arg,
21517 explain_p);
21518 if (!t)
21519 {
21520 /* Otherwise, look for a suitable base of ARG, as below. */
21521 enum template_base_result r;
21522 r = get_template_base (tparms, targs, parm, arg,
21523 explain_p, &t);
21524 if (!t)
21525 return unify_no_common_base (explain_p, r, parm, arg);
21526 arg = t;
21527 }
21528 }
21529 /* ARG must be constructed from a template class or a template
21530 template parameter. */
21531 else if (TREE_CODE (arg) != BOUND_TEMPLATE_TEMPLATE_PARM
21532 && !CLASSTYPE_SPECIALIZATION_OF_PRIMARY_TEMPLATE_P (arg))
21533 return unify_template_deduction_failure (explain_p, parm, arg);
21534
21535 /* Deduce arguments T, i from TT<T> or TT<i>. */
21536 if (unify_bound_ttp_args (tparms, targs, parm, arg, explain_p))
21537 return 1;
21538
21539 arg = TYPE_TI_TEMPLATE (arg);
21540
21541 /* Fall through to deduce template name. */
21542 }
21543
21544 if (TREE_CODE (parm) == TEMPLATE_TEMPLATE_PARM
21545 || TREE_CODE (parm) == BOUND_TEMPLATE_TEMPLATE_PARM)
21546 {
21547 /* Deduce template name TT from TT, TT<>, TT<T> and TT<i>. */
21548
21549 /* Simple cases: Value already set, does match or doesn't. */
21550 if (targ != NULL_TREE && template_args_equal (targ, arg))
21551 return unify_success (explain_p);
21552 else if (targ)
21553 return unify_inconsistency (explain_p, parm, targ, arg);
21554 }
21555 else
21556 {
21557 /* If PARM is `const T' and ARG is only `int', we don't have
21558 a match unless we are allowing additional qualification.
21559 If ARG is `const int' and PARM is just `T' that's OK;
21560 that binds `const int' to `T'. */
21561 if (!check_cv_quals_for_unify (strict_in | UNIFY_ALLOW_LESS_CV_QUAL,
21562 arg, parm))
21563 return unify_cv_qual_mismatch (explain_p, parm, arg);
21564
21565 /* Consider the case where ARG is `const volatile int' and
21566 PARM is `const T'. Then, T should be `volatile int'. */
21567 arg = cp_build_qualified_type_real
21568 (arg, cp_type_quals (arg) & ~cp_type_quals (parm), tf_none);
21569 if (arg == error_mark_node)
21570 return unify_invalid (explain_p);
21571
21572 /* Simple cases: Value already set, does match or doesn't. */
21573 if (targ != NULL_TREE && same_type_p (targ, arg))
21574 return unify_success (explain_p);
21575 else if (targ)
21576 return unify_inconsistency (explain_p, parm, targ, arg);
21577
21578 /* Make sure that ARG is not a variable-sized array. (Note
21579 that were talking about variable-sized arrays (like
21580 `int[n]'), rather than arrays of unknown size (like
21581 `int[]').) We'll get very confused by such a type since
21582 the bound of the array is not constant, and therefore
21583 not mangleable. Besides, such types are not allowed in
21584 ISO C++, so we can do as we please here. We do allow
21585 them for 'auto' deduction, since that isn't ABI-exposed. */
21586 if (!is_auto (parm) && variably_modified_type_p (arg, NULL_TREE))
21587 return unify_vla_arg (explain_p, arg);
21588
21589 /* Strip typedefs as in convert_template_argument. */
21590 arg = canonicalize_type_argument (arg, tf_none);
21591 }
21592
21593 /* If ARG is a parameter pack or an expansion, we cannot unify
21594 against it unless PARM is also a parameter pack. */
21595 if ((template_parameter_pack_p (arg) || PACK_EXPANSION_P (arg))
21596 && !template_parameter_pack_p (parm))
21597 return unify_parameter_pack_mismatch (explain_p, parm, arg);
21598
21599 /* If the argument deduction results is a METHOD_TYPE,
21600 then there is a problem.
21601 METHOD_TYPE doesn't map to any real C++ type the result of
21602 the deduction can not be of that type. */
21603 if (TREE_CODE (arg) == METHOD_TYPE)
21604 return unify_method_type_error (explain_p, arg);
21605
21606 TREE_VEC_ELT (INNERMOST_TEMPLATE_ARGS (targs), idx) = arg;
21607 return unify_success (explain_p);
21608
21609 case TEMPLATE_PARM_INDEX:
21610 tparm = TREE_VALUE (TREE_VEC_ELT (tparms, 0));
21611 if (error_operand_p (tparm))
21612 return unify_invalid (explain_p);
21613
21614 if (TEMPLATE_PARM_LEVEL (parm)
21615 != template_decl_level (tparm))
21616 {
21617 /* The PARM is not one we're trying to unify. Just check
21618 to see if it matches ARG. */
21619 int result = !(TREE_CODE (arg) == TREE_CODE (parm)
21620 && cp_tree_equal (parm, arg));
21621 if (result)
21622 unify_expression_unequal (explain_p, parm, arg);
21623 return result;
21624 }
21625
21626 idx = TEMPLATE_PARM_IDX (parm);
21627 targ = TREE_VEC_ELT (INNERMOST_TEMPLATE_ARGS (targs), idx);
21628
21629 if (targ)
21630 {
21631 if ((strict & UNIFY_ALLOW_INTEGER)
21632 && TREE_TYPE (targ) && TREE_TYPE (arg)
21633 && CP_INTEGRAL_TYPE_P (TREE_TYPE (targ)))
21634 /* We're deducing from an array bound, the type doesn't matter. */
21635 arg = fold_convert (TREE_TYPE (targ), arg);
21636 int x = !cp_tree_equal (targ, arg);
21637 if (x)
21638 unify_inconsistency (explain_p, parm, targ, arg);
21639 return x;
21640 }
21641
21642 /* [temp.deduct.type] If, in the declaration of a function template
21643 with a non-type template-parameter, the non-type
21644 template-parameter is used in an expression in the function
21645 parameter-list and, if the corresponding template-argument is
21646 deduced, the template-argument type shall match the type of the
21647 template-parameter exactly, except that a template-argument
21648 deduced from an array bound may be of any integral type.
21649 The non-type parameter might use already deduced type parameters. */
21650 tparm = TREE_TYPE (parm);
21651 if (TEMPLATE_PARM_LEVEL (parm) > TMPL_ARGS_DEPTH (targs))
21652 /* We don't have enough levels of args to do any substitution. This
21653 can happen in the context of -fnew-ttp-matching. */;
21654 else
21655 {
21656 ++processing_template_decl;
21657 tparm = tsubst (tparm, targs, tf_none, NULL_TREE);
21658 --processing_template_decl;
21659
21660 if (tree a = type_uses_auto (tparm))
21661 {
21662 tparm = do_auto_deduction (tparm, arg, a, complain, adc_unify);
21663 if (tparm == error_mark_node)
21664 return 1;
21665 }
21666 }
21667
21668 if (!TREE_TYPE (arg))
21669 /* Template-parameter dependent expression. Just accept it for now.
21670 It will later be processed in convert_template_argument. */
21671 ;
21672 else if (same_type_p (non_reference (TREE_TYPE (arg)),
21673 non_reference (tparm)))
21674 /* OK */;
21675 else if ((strict & UNIFY_ALLOW_INTEGER)
21676 && CP_INTEGRAL_TYPE_P (tparm))
21677 /* Convert the ARG to the type of PARM; the deduced non-type
21678 template argument must exactly match the types of the
21679 corresponding parameter. */
21680 arg = fold (build_nop (tparm, arg));
21681 else if (uses_template_parms (tparm))
21682 {
21683 /* We haven't deduced the type of this parameter yet. */
21684 if (cxx_dialect >= cxx17
21685 /* We deduce from array bounds in try_array_deduction. */
21686 && !(strict & UNIFY_ALLOW_INTEGER))
21687 {
21688 /* Deduce it from the non-type argument. */
21689 tree atype = TREE_TYPE (arg);
21690 RECUR_AND_CHECK_FAILURE (tparms, targs,
21691 tparm, atype,
21692 UNIFY_ALLOW_NONE, explain_p);
21693 }
21694 else
21695 /* Try again later. */
21696 return unify_success (explain_p);
21697 }
21698 else
21699 return unify_type_mismatch (explain_p, tparm, TREE_TYPE (arg));
21700
21701 /* If ARG is a parameter pack or an expansion, we cannot unify
21702 against it unless PARM is also a parameter pack. */
21703 if ((template_parameter_pack_p (arg) || PACK_EXPANSION_P (arg))
21704 && !TEMPLATE_PARM_PARAMETER_PACK (parm))
21705 return unify_parameter_pack_mismatch (explain_p, parm, arg);
21706
21707 {
21708 bool removed_attr = false;
21709 arg = strip_typedefs_expr (arg, &removed_attr);
21710 }
21711 TREE_VEC_ELT (INNERMOST_TEMPLATE_ARGS (targs), idx) = arg;
21712 return unify_success (explain_p);
21713
21714 case PTRMEM_CST:
21715 {
21716 /* A pointer-to-member constant can be unified only with
21717 another constant. */
21718 if (TREE_CODE (arg) != PTRMEM_CST)
21719 return unify_ptrmem_cst_mismatch (explain_p, parm, arg);
21720
21721 /* Just unify the class member. It would be useless (and possibly
21722 wrong, depending on the strict flags) to unify also
21723 PTRMEM_CST_CLASS, because we want to be sure that both parm and
21724 arg refer to the same variable, even if through different
21725 classes. For instance:
21726
21727 struct A { int x; };
21728 struct B : A { };
21729
21730 Unification of &A::x and &B::x must succeed. */
21731 return unify (tparms, targs, PTRMEM_CST_MEMBER (parm),
21732 PTRMEM_CST_MEMBER (arg), strict, explain_p);
21733 }
21734
21735 case POINTER_TYPE:
21736 {
21737 if (!TYPE_PTR_P (arg))
21738 return unify_type_mismatch (explain_p, parm, arg);
21739
21740 /* [temp.deduct.call]
21741
21742 A can be another pointer or pointer to member type that can
21743 be converted to the deduced A via a qualification
21744 conversion (_conv.qual_).
21745
21746 We pass down STRICT here rather than UNIFY_ALLOW_NONE.
21747 This will allow for additional cv-qualification of the
21748 pointed-to types if appropriate. */
21749
21750 if (TREE_CODE (TREE_TYPE (arg)) == RECORD_TYPE)
21751 /* The derived-to-base conversion only persists through one
21752 level of pointers. */
21753 strict |= (strict_in & UNIFY_ALLOW_DERIVED);
21754
21755 return unify (tparms, targs, TREE_TYPE (parm),
21756 TREE_TYPE (arg), strict, explain_p);
21757 }
21758
21759 case REFERENCE_TYPE:
21760 if (!TYPE_REF_P (arg))
21761 return unify_type_mismatch (explain_p, parm, arg);
21762 return unify (tparms, targs, TREE_TYPE (parm), TREE_TYPE (arg),
21763 strict & UNIFY_ALLOW_MORE_CV_QUAL, explain_p);
21764
21765 case ARRAY_TYPE:
21766 if (TREE_CODE (arg) != ARRAY_TYPE)
21767 return unify_type_mismatch (explain_p, parm, arg);
21768 if ((TYPE_DOMAIN (parm) == NULL_TREE)
21769 != (TYPE_DOMAIN (arg) == NULL_TREE))
21770 return unify_type_mismatch (explain_p, parm, arg);
21771 RECUR_AND_CHECK_FAILURE (tparms, targs, TREE_TYPE (parm), TREE_TYPE (arg),
21772 strict & UNIFY_ALLOW_MORE_CV_QUAL, explain_p);
21773 if (TYPE_DOMAIN (parm) != NULL_TREE)
21774 return unify_array_domain (tparms, targs, TYPE_DOMAIN (parm),
21775 TYPE_DOMAIN (arg), explain_p);
21776 return unify_success (explain_p);
21777
21778 case REAL_TYPE:
21779 case COMPLEX_TYPE:
21780 case VECTOR_TYPE:
21781 case INTEGER_TYPE:
21782 case BOOLEAN_TYPE:
21783 case ENUMERAL_TYPE:
21784 case VOID_TYPE:
21785 case NULLPTR_TYPE:
21786 if (TREE_CODE (arg) != TREE_CODE (parm))
21787 return unify_type_mismatch (explain_p, parm, arg);
21788
21789 /* We have already checked cv-qualification at the top of the
21790 function. */
21791 if (!same_type_ignoring_top_level_qualifiers_p (arg, parm))
21792 return unify_type_mismatch (explain_p, parm, arg);
21793
21794 /* As far as unification is concerned, this wins. Later checks
21795 will invalidate it if necessary. */
21796 return unify_success (explain_p);
21797
21798 /* Types INTEGER_CST and MINUS_EXPR can come from array bounds. */
21799 /* Type INTEGER_CST can come from ordinary constant template args. */
21800 case INTEGER_CST:
21801 while (CONVERT_EXPR_P (arg))
21802 arg = TREE_OPERAND (arg, 0);
21803
21804 if (TREE_CODE (arg) != INTEGER_CST)
21805 return unify_template_argument_mismatch (explain_p, parm, arg);
21806 return (tree_int_cst_equal (parm, arg)
21807 ? unify_success (explain_p)
21808 : unify_template_argument_mismatch (explain_p, parm, arg));
21809
21810 case TREE_VEC:
21811 {
21812 int i, len, argslen;
21813 int parm_variadic_p = 0;
21814
21815 if (TREE_CODE (arg) != TREE_VEC)
21816 return unify_template_argument_mismatch (explain_p, parm, arg);
21817
21818 len = TREE_VEC_LENGTH (parm);
21819 argslen = TREE_VEC_LENGTH (arg);
21820
21821 /* Check for pack expansions in the parameters. */
21822 for (i = 0; i < len; ++i)
21823 {
21824 if (PACK_EXPANSION_P (TREE_VEC_ELT (parm, i)))
21825 {
21826 if (i == len - 1)
21827 /* We can unify against something with a trailing
21828 parameter pack. */
21829 parm_variadic_p = 1;
21830 else
21831 /* [temp.deduct.type]/9: If the template argument list of
21832 P contains a pack expansion that is not the last
21833 template argument, the entire template argument list
21834 is a non-deduced context. */
21835 return unify_success (explain_p);
21836 }
21837 }
21838
21839 /* If we don't have enough arguments to satisfy the parameters
21840 (not counting the pack expression at the end), or we have
21841 too many arguments for a parameter list that doesn't end in
21842 a pack expression, we can't unify. */
21843 if (parm_variadic_p
21844 ? argslen < len - parm_variadic_p
21845 : argslen != len)
21846 return unify_arity (explain_p, TREE_VEC_LENGTH (arg), len);
21847
21848 /* Unify all of the parameters that precede the (optional)
21849 pack expression. */
21850 for (i = 0; i < len - parm_variadic_p; ++i)
21851 {
21852 RECUR_AND_CHECK_FAILURE (tparms, targs,
21853 TREE_VEC_ELT (parm, i),
21854 TREE_VEC_ELT (arg, i),
21855 UNIFY_ALLOW_NONE, explain_p);
21856 }
21857 if (parm_variadic_p)
21858 return unify_pack_expansion (tparms, targs, parm, arg,
21859 DEDUCE_EXACT,
21860 /*subr=*/true, explain_p);
21861 return unify_success (explain_p);
21862 }
21863
21864 case RECORD_TYPE:
21865 case UNION_TYPE:
21866 if (TREE_CODE (arg) != TREE_CODE (parm))
21867 return unify_type_mismatch (explain_p, parm, arg);
21868
21869 if (TYPE_PTRMEMFUNC_P (parm))
21870 {
21871 if (!TYPE_PTRMEMFUNC_P (arg))
21872 return unify_type_mismatch (explain_p, parm, arg);
21873
21874 return unify (tparms, targs,
21875 TYPE_PTRMEMFUNC_FN_TYPE (parm),
21876 TYPE_PTRMEMFUNC_FN_TYPE (arg),
21877 strict, explain_p);
21878 }
21879 else if (TYPE_PTRMEMFUNC_P (arg))
21880 return unify_type_mismatch (explain_p, parm, arg);
21881
21882 if (CLASSTYPE_TEMPLATE_INFO (parm))
21883 {
21884 tree t = NULL_TREE;
21885
21886 if (strict_in & UNIFY_ALLOW_DERIVED)
21887 {
21888 /* First, we try to unify the PARM and ARG directly. */
21889 t = try_class_unification (tparms, targs,
21890 parm, arg, explain_p);
21891
21892 if (!t)
21893 {
21894 /* Fallback to the special case allowed in
21895 [temp.deduct.call]:
21896
21897 If P is a class, and P has the form
21898 template-id, then A can be a derived class of
21899 the deduced A. Likewise, if P is a pointer to
21900 a class of the form template-id, A can be a
21901 pointer to a derived class pointed to by the
21902 deduced A. */
21903 enum template_base_result r;
21904 r = get_template_base (tparms, targs, parm, arg,
21905 explain_p, &t);
21906
21907 if (!t)
21908 {
21909 /* Don't give the derived diagnostic if we're
21910 already dealing with the same template. */
21911 bool same_template
21912 = (CLASSTYPE_TEMPLATE_INFO (arg)
21913 && (CLASSTYPE_TI_TEMPLATE (parm)
21914 == CLASSTYPE_TI_TEMPLATE (arg)));
21915 return unify_no_common_base (explain_p && !same_template,
21916 r, parm, arg);
21917 }
21918 }
21919 }
21920 else if (CLASSTYPE_TEMPLATE_INFO (arg)
21921 && (CLASSTYPE_TI_TEMPLATE (parm)
21922 == CLASSTYPE_TI_TEMPLATE (arg)))
21923 /* Perhaps PARM is something like S<U> and ARG is S<int>.
21924 Then, we should unify `int' and `U'. */
21925 t = arg;
21926 else
21927 /* There's no chance of unification succeeding. */
21928 return unify_type_mismatch (explain_p, parm, arg);
21929
21930 return unify (tparms, targs, CLASSTYPE_TI_ARGS (parm),
21931 CLASSTYPE_TI_ARGS (t), UNIFY_ALLOW_NONE, explain_p);
21932 }
21933 else if (!same_type_ignoring_top_level_qualifiers_p (parm, arg))
21934 return unify_type_mismatch (explain_p, parm, arg);
21935 return unify_success (explain_p);
21936
21937 case METHOD_TYPE:
21938 case FUNCTION_TYPE:
21939 {
21940 unsigned int nargs;
21941 tree *args;
21942 tree a;
21943 unsigned int i;
21944
21945 if (TREE_CODE (arg) != TREE_CODE (parm))
21946 return unify_type_mismatch (explain_p, parm, arg);
21947
21948 /* CV qualifications for methods can never be deduced, they must
21949 match exactly. We need to check them explicitly here,
21950 because type_unification_real treats them as any other
21951 cv-qualified parameter. */
21952 if (TREE_CODE (parm) == METHOD_TYPE
21953 && (!check_cv_quals_for_unify
21954 (UNIFY_ALLOW_NONE,
21955 class_of_this_parm (arg),
21956 class_of_this_parm (parm))))
21957 return unify_cv_qual_mismatch (explain_p, parm, arg);
21958 if (TREE_CODE (arg) == FUNCTION_TYPE
21959 && type_memfn_quals (parm) != type_memfn_quals (arg))
21960 return unify_cv_qual_mismatch (explain_p, parm, arg);
21961 if (type_memfn_rqual (parm) != type_memfn_rqual (arg))
21962 return unify_type_mismatch (explain_p, parm, arg);
21963
21964 RECUR_AND_CHECK_FAILURE (tparms, targs, TREE_TYPE (parm),
21965 TREE_TYPE (arg), UNIFY_ALLOW_NONE, explain_p);
21966
21967 nargs = list_length (TYPE_ARG_TYPES (arg));
21968 args = XALLOCAVEC (tree, nargs);
21969 for (a = TYPE_ARG_TYPES (arg), i = 0;
21970 a != NULL_TREE && a != void_list_node;
21971 a = TREE_CHAIN (a), ++i)
21972 args[i] = TREE_VALUE (a);
21973 nargs = i;
21974
21975 if (type_unification_real (tparms, targs, TYPE_ARG_TYPES (parm),
21976 args, nargs, 1, DEDUCE_EXACT,
21977 LOOKUP_NORMAL, NULL, explain_p))
21978 return 1;
21979
21980 if (flag_noexcept_type)
21981 {
21982 tree pspec = TYPE_RAISES_EXCEPTIONS (parm);
21983 tree aspec = canonical_eh_spec (TYPE_RAISES_EXCEPTIONS (arg));
21984 if (pspec == NULL_TREE) pspec = noexcept_false_spec;
21985 if (aspec == NULL_TREE) aspec = noexcept_false_spec;
21986 if (TREE_PURPOSE (pspec) && TREE_PURPOSE (aspec)
21987 && uses_template_parms (TREE_PURPOSE (pspec)))
21988 RECUR_AND_CHECK_FAILURE (tparms, targs, TREE_PURPOSE (pspec),
21989 TREE_PURPOSE (aspec),
21990 UNIFY_ALLOW_NONE, explain_p);
21991 else if (nothrow_spec_p (pspec) && !nothrow_spec_p (aspec))
21992 return unify_type_mismatch (explain_p, parm, arg);
21993 }
21994
21995 return 0;
21996 }
21997
21998 case OFFSET_TYPE:
21999 /* Unify a pointer to member with a pointer to member function, which
22000 deduces the type of the member as a function type. */
22001 if (TYPE_PTRMEMFUNC_P (arg))
22002 {
22003 /* Check top-level cv qualifiers */
22004 if (!check_cv_quals_for_unify (UNIFY_ALLOW_NONE, arg, parm))
22005 return unify_cv_qual_mismatch (explain_p, parm, arg);
22006
22007 RECUR_AND_CHECK_FAILURE (tparms, targs, TYPE_OFFSET_BASETYPE (parm),
22008 TYPE_PTRMEMFUNC_OBJECT_TYPE (arg),
22009 UNIFY_ALLOW_NONE, explain_p);
22010
22011 /* Determine the type of the function we are unifying against. */
22012 tree fntype = static_fn_type (arg);
22013
22014 return unify (tparms, targs, TREE_TYPE (parm), fntype, strict, explain_p);
22015 }
22016
22017 if (TREE_CODE (arg) != OFFSET_TYPE)
22018 return unify_type_mismatch (explain_p, parm, arg);
22019 RECUR_AND_CHECK_FAILURE (tparms, targs, TYPE_OFFSET_BASETYPE (parm),
22020 TYPE_OFFSET_BASETYPE (arg),
22021 UNIFY_ALLOW_NONE, explain_p);
22022 return unify (tparms, targs, TREE_TYPE (parm), TREE_TYPE (arg),
22023 strict, explain_p);
22024
22025 case CONST_DECL:
22026 if (DECL_TEMPLATE_PARM_P (parm))
22027 return unify (tparms, targs, DECL_INITIAL (parm), arg, strict, explain_p);
22028 if (arg != scalar_constant_value (parm))
22029 return unify_template_argument_mismatch (explain_p, parm, arg);
22030 return unify_success (explain_p);
22031
22032 case FIELD_DECL:
22033 case TEMPLATE_DECL:
22034 /* Matched cases are handled by the ARG == PARM test above. */
22035 return unify_template_argument_mismatch (explain_p, parm, arg);
22036
22037 case VAR_DECL:
22038 /* We might get a variable as a non-type template argument in parm if the
22039 corresponding parameter is type-dependent. Make any necessary
22040 adjustments based on whether arg is a reference. */
22041 if (CONSTANT_CLASS_P (arg))
22042 parm = fold_non_dependent_expr (parm);
22043 else if (REFERENCE_REF_P (arg))
22044 {
22045 tree sub = TREE_OPERAND (arg, 0);
22046 STRIP_NOPS (sub);
22047 if (TREE_CODE (sub) == ADDR_EXPR)
22048 arg = TREE_OPERAND (sub, 0);
22049 }
22050 /* Now use the normal expression code to check whether they match. */
22051 goto expr;
22052
22053 case TYPE_ARGUMENT_PACK:
22054 case NONTYPE_ARGUMENT_PACK:
22055 return unify (tparms, targs, ARGUMENT_PACK_ARGS (parm),
22056 ARGUMENT_PACK_ARGS (arg), strict, explain_p);
22057
22058 case TYPEOF_TYPE:
22059 case DECLTYPE_TYPE:
22060 case UNDERLYING_TYPE:
22061 /* Cannot deduce anything from TYPEOF_TYPE, DECLTYPE_TYPE,
22062 or UNDERLYING_TYPE nodes. */
22063 return unify_success (explain_p);
22064
22065 case ERROR_MARK:
22066 /* Unification fails if we hit an error node. */
22067 return unify_invalid (explain_p);
22068
22069 case INDIRECT_REF:
22070 if (REFERENCE_REF_P (parm))
22071 {
22072 bool pexp = PACK_EXPANSION_P (arg);
22073 if (pexp)
22074 arg = PACK_EXPANSION_PATTERN (arg);
22075 if (REFERENCE_REF_P (arg))
22076 arg = TREE_OPERAND (arg, 0);
22077 if (pexp)
22078 arg = make_pack_expansion (arg, complain);
22079 return unify (tparms, targs, TREE_OPERAND (parm, 0), arg,
22080 strict, explain_p);
22081 }
22082 /* FALLTHRU */
22083
22084 default:
22085 /* An unresolved overload is a nondeduced context. */
22086 if (is_overloaded_fn (parm) || type_unknown_p (parm))
22087 return unify_success (explain_p);
22088 gcc_assert (EXPR_P (parm) || TREE_CODE (parm) == TRAIT_EXPR);
22089 expr:
22090 /* We must be looking at an expression. This can happen with
22091 something like:
22092
22093 template <int I>
22094 void foo(S<I>, S<I + 2>);
22095
22096 This is a "nondeduced context":
22097
22098 [deduct.type]
22099
22100 The nondeduced contexts are:
22101
22102 --A type that is a template-id in which one or more of
22103 the template-arguments is an expression that references
22104 a template-parameter.
22105
22106 In these cases, we assume deduction succeeded, but don't
22107 actually infer any unifications. */
22108
22109 if (!uses_template_parms (parm)
22110 && !template_args_equal (parm, arg))
22111 return unify_expression_unequal (explain_p, parm, arg);
22112 else
22113 return unify_success (explain_p);
22114 }
22115 }
22116 #undef RECUR_AND_CHECK_FAILURE
22117 \f
22118 /* Note that DECL can be defined in this translation unit, if
22119 required. */
22120
22121 static void
22122 mark_definable (tree decl)
22123 {
22124 tree clone;
22125 DECL_NOT_REALLY_EXTERN (decl) = 1;
22126 FOR_EACH_CLONE (clone, decl)
22127 DECL_NOT_REALLY_EXTERN (clone) = 1;
22128 }
22129
22130 /* Called if RESULT is explicitly instantiated, or is a member of an
22131 explicitly instantiated class. */
22132
22133 void
22134 mark_decl_instantiated (tree result, int extern_p)
22135 {
22136 SET_DECL_EXPLICIT_INSTANTIATION (result);
22137
22138 /* If this entity has already been written out, it's too late to
22139 make any modifications. */
22140 if (TREE_ASM_WRITTEN (result))
22141 return;
22142
22143 /* For anonymous namespace we don't need to do anything. */
22144 if (decl_anon_ns_mem_p (result))
22145 {
22146 gcc_assert (!TREE_PUBLIC (result));
22147 return;
22148 }
22149
22150 if (TREE_CODE (result) != FUNCTION_DECL)
22151 /* The TREE_PUBLIC flag for function declarations will have been
22152 set correctly by tsubst. */
22153 TREE_PUBLIC (result) = 1;
22154
22155 /* This might have been set by an earlier implicit instantiation. */
22156 DECL_COMDAT (result) = 0;
22157
22158 if (extern_p)
22159 DECL_NOT_REALLY_EXTERN (result) = 0;
22160 else
22161 {
22162 mark_definable (result);
22163 mark_needed (result);
22164 /* Always make artificials weak. */
22165 if (DECL_ARTIFICIAL (result) && flag_weak)
22166 comdat_linkage (result);
22167 /* For WIN32 we also want to put explicit instantiations in
22168 linkonce sections. */
22169 else if (TREE_PUBLIC (result))
22170 maybe_make_one_only (result);
22171 if (TREE_CODE (result) == FUNCTION_DECL
22172 && DECL_TEMPLATE_INSTANTIATED (result))
22173 /* If the function has already been instantiated, clear DECL_EXTERNAL,
22174 since start_preparsed_function wouldn't have if we had an earlier
22175 extern explicit instantiation. */
22176 DECL_EXTERNAL (result) = 0;
22177 }
22178
22179 /* If EXTERN_P, then this function will not be emitted -- unless
22180 followed by an explicit instantiation, at which point its linkage
22181 will be adjusted. If !EXTERN_P, then this function will be
22182 emitted here. In neither circumstance do we want
22183 import_export_decl to adjust the linkage. */
22184 DECL_INTERFACE_KNOWN (result) = 1;
22185 }
22186
22187 /* Subroutine of more_specialized_fn: check whether TARGS is missing any
22188 important template arguments. If any are missing, we check whether
22189 they're important by using error_mark_node for substituting into any
22190 args that were used for partial ordering (the ones between ARGS and END)
22191 and seeing if it bubbles up. */
22192
22193 static bool
22194 check_undeduced_parms (tree targs, tree args, tree end)
22195 {
22196 bool found = false;
22197 int i;
22198 for (i = TREE_VEC_LENGTH (targs) - 1; i >= 0; --i)
22199 if (TREE_VEC_ELT (targs, i) == NULL_TREE)
22200 {
22201 found = true;
22202 TREE_VEC_ELT (targs, i) = error_mark_node;
22203 }
22204 if (found)
22205 {
22206 tree substed = tsubst_arg_types (args, targs, end, tf_none, NULL_TREE);
22207 if (substed == error_mark_node)
22208 return true;
22209 }
22210 return false;
22211 }
22212
22213 /* Given two function templates PAT1 and PAT2, return:
22214
22215 1 if PAT1 is more specialized than PAT2 as described in [temp.func.order].
22216 -1 if PAT2 is more specialized than PAT1.
22217 0 if neither is more specialized.
22218
22219 LEN indicates the number of parameters we should consider
22220 (defaulted parameters should not be considered).
22221
22222 The 1998 std underspecified function template partial ordering, and
22223 DR214 addresses the issue. We take pairs of arguments, one from
22224 each of the templates, and deduce them against each other. One of
22225 the templates will be more specialized if all the *other*
22226 template's arguments deduce against its arguments and at least one
22227 of its arguments *does* *not* deduce against the other template's
22228 corresponding argument. Deduction is done as for class templates.
22229 The arguments used in deduction have reference and top level cv
22230 qualifiers removed. Iff both arguments were originally reference
22231 types *and* deduction succeeds in both directions, an lvalue reference
22232 wins against an rvalue reference and otherwise the template
22233 with the more cv-qualified argument wins for that pairing (if
22234 neither is more cv-qualified, they both are equal). Unlike regular
22235 deduction, after all the arguments have been deduced in this way,
22236 we do *not* verify the deduced template argument values can be
22237 substituted into non-deduced contexts.
22238
22239 The logic can be a bit confusing here, because we look at deduce1 and
22240 targs1 to see if pat2 is at least as specialized, and vice versa; if we
22241 can find template arguments for pat1 to make arg1 look like arg2, that
22242 means that arg2 is at least as specialized as arg1. */
22243
22244 int
22245 more_specialized_fn (tree pat1, tree pat2, int len)
22246 {
22247 tree decl1 = DECL_TEMPLATE_RESULT (pat1);
22248 tree decl2 = DECL_TEMPLATE_RESULT (pat2);
22249 tree targs1 = make_tree_vec (DECL_NTPARMS (pat1));
22250 tree targs2 = make_tree_vec (DECL_NTPARMS (pat2));
22251 tree tparms1 = DECL_INNERMOST_TEMPLATE_PARMS (pat1);
22252 tree tparms2 = DECL_INNERMOST_TEMPLATE_PARMS (pat2);
22253 tree args1 = TYPE_ARG_TYPES (TREE_TYPE (decl1));
22254 tree args2 = TYPE_ARG_TYPES (TREE_TYPE (decl2));
22255 tree origs1, origs2;
22256 bool lose1 = false;
22257 bool lose2 = false;
22258
22259 /* Remove the this parameter from non-static member functions. If
22260 one is a non-static member function and the other is not a static
22261 member function, remove the first parameter from that function
22262 also. This situation occurs for operator functions where we
22263 locate both a member function (with this pointer) and non-member
22264 operator (with explicit first operand). */
22265 if (DECL_NONSTATIC_MEMBER_FUNCTION_P (decl1))
22266 {
22267 len--; /* LEN is the number of significant arguments for DECL1 */
22268 args1 = TREE_CHAIN (args1);
22269 if (!DECL_STATIC_FUNCTION_P (decl2))
22270 args2 = TREE_CHAIN (args2);
22271 }
22272 else if (DECL_NONSTATIC_MEMBER_FUNCTION_P (decl2))
22273 {
22274 args2 = TREE_CHAIN (args2);
22275 if (!DECL_STATIC_FUNCTION_P (decl1))
22276 {
22277 len--;
22278 args1 = TREE_CHAIN (args1);
22279 }
22280 }
22281
22282 /* If only one is a conversion operator, they are unordered. */
22283 if (DECL_CONV_FN_P (decl1) != DECL_CONV_FN_P (decl2))
22284 return 0;
22285
22286 /* Consider the return type for a conversion function */
22287 if (DECL_CONV_FN_P (decl1))
22288 {
22289 args1 = tree_cons (NULL_TREE, TREE_TYPE (TREE_TYPE (decl1)), args1);
22290 args2 = tree_cons (NULL_TREE, TREE_TYPE (TREE_TYPE (decl2)), args2);
22291 len++;
22292 }
22293
22294 processing_template_decl++;
22295
22296 origs1 = args1;
22297 origs2 = args2;
22298
22299 while (len--
22300 /* Stop when an ellipsis is seen. */
22301 && args1 != NULL_TREE && args2 != NULL_TREE)
22302 {
22303 tree arg1 = TREE_VALUE (args1);
22304 tree arg2 = TREE_VALUE (args2);
22305 int deduce1, deduce2;
22306 int quals1 = -1;
22307 int quals2 = -1;
22308 int ref1 = 0;
22309 int ref2 = 0;
22310
22311 if (TREE_CODE (arg1) == TYPE_PACK_EXPANSION
22312 && TREE_CODE (arg2) == TYPE_PACK_EXPANSION)
22313 {
22314 /* When both arguments are pack expansions, we need only
22315 unify the patterns themselves. */
22316 arg1 = PACK_EXPANSION_PATTERN (arg1);
22317 arg2 = PACK_EXPANSION_PATTERN (arg2);
22318
22319 /* This is the last comparison we need to do. */
22320 len = 0;
22321 }
22322
22323 /* DR 1847: If a particular P contains no template-parameters that
22324 participate in template argument deduction, that P is not used to
22325 determine the ordering. */
22326 if (!uses_deducible_template_parms (arg1)
22327 && !uses_deducible_template_parms (arg2))
22328 goto next;
22329
22330 if (TYPE_REF_P (arg1))
22331 {
22332 ref1 = TYPE_REF_IS_RVALUE (arg1) + 1;
22333 arg1 = TREE_TYPE (arg1);
22334 quals1 = cp_type_quals (arg1);
22335 }
22336
22337 if (TYPE_REF_P (arg2))
22338 {
22339 ref2 = TYPE_REF_IS_RVALUE (arg2) + 1;
22340 arg2 = TREE_TYPE (arg2);
22341 quals2 = cp_type_quals (arg2);
22342 }
22343
22344 arg1 = TYPE_MAIN_VARIANT (arg1);
22345 arg2 = TYPE_MAIN_VARIANT (arg2);
22346
22347 if (TREE_CODE (arg1) == TYPE_PACK_EXPANSION)
22348 {
22349 int i, len2 = remaining_arguments (args2);
22350 tree parmvec = make_tree_vec (1);
22351 tree argvec = make_tree_vec (len2);
22352 tree ta = args2;
22353
22354 /* Setup the parameter vector, which contains only ARG1. */
22355 TREE_VEC_ELT (parmvec, 0) = arg1;
22356
22357 /* Setup the argument vector, which contains the remaining
22358 arguments. */
22359 for (i = 0; i < len2; i++, ta = TREE_CHAIN (ta))
22360 TREE_VEC_ELT (argvec, i) = TREE_VALUE (ta);
22361
22362 deduce1 = (unify_pack_expansion (tparms1, targs1, parmvec,
22363 argvec, DEDUCE_EXACT,
22364 /*subr=*/true, /*explain_p=*/false)
22365 == 0);
22366
22367 /* We cannot deduce in the other direction, because ARG1 is
22368 a pack expansion but ARG2 is not. */
22369 deduce2 = 0;
22370 }
22371 else if (TREE_CODE (arg2) == TYPE_PACK_EXPANSION)
22372 {
22373 int i, len1 = remaining_arguments (args1);
22374 tree parmvec = make_tree_vec (1);
22375 tree argvec = make_tree_vec (len1);
22376 tree ta = args1;
22377
22378 /* Setup the parameter vector, which contains only ARG1. */
22379 TREE_VEC_ELT (parmvec, 0) = arg2;
22380
22381 /* Setup the argument vector, which contains the remaining
22382 arguments. */
22383 for (i = 0; i < len1; i++, ta = TREE_CHAIN (ta))
22384 TREE_VEC_ELT (argvec, i) = TREE_VALUE (ta);
22385
22386 deduce2 = (unify_pack_expansion (tparms2, targs2, parmvec,
22387 argvec, DEDUCE_EXACT,
22388 /*subr=*/true, /*explain_p=*/false)
22389 == 0);
22390
22391 /* We cannot deduce in the other direction, because ARG2 is
22392 a pack expansion but ARG1 is not.*/
22393 deduce1 = 0;
22394 }
22395
22396 else
22397 {
22398 /* The normal case, where neither argument is a pack
22399 expansion. */
22400 deduce1 = (unify (tparms1, targs1, arg1, arg2,
22401 UNIFY_ALLOW_NONE, /*explain_p=*/false)
22402 == 0);
22403 deduce2 = (unify (tparms2, targs2, arg2, arg1,
22404 UNIFY_ALLOW_NONE, /*explain_p=*/false)
22405 == 0);
22406 }
22407
22408 /* If we couldn't deduce arguments for tparms1 to make arg1 match
22409 arg2, then arg2 is not as specialized as arg1. */
22410 if (!deduce1)
22411 lose2 = true;
22412 if (!deduce2)
22413 lose1 = true;
22414
22415 /* "If, for a given type, deduction succeeds in both directions
22416 (i.e., the types are identical after the transformations above)
22417 and both P and A were reference types (before being replaced with
22418 the type referred to above):
22419 - if the type from the argument template was an lvalue reference and
22420 the type from the parameter template was not, the argument type is
22421 considered to be more specialized than the other; otherwise,
22422 - if the type from the argument template is more cv-qualified
22423 than the type from the parameter template (as described above),
22424 the argument type is considered to be more specialized than the other;
22425 otherwise,
22426 - neither type is more specialized than the other." */
22427
22428 if (deduce1 && deduce2)
22429 {
22430 if (ref1 && ref2 && ref1 != ref2)
22431 {
22432 if (ref1 > ref2)
22433 lose1 = true;
22434 else
22435 lose2 = true;
22436 }
22437 else if (quals1 != quals2 && quals1 >= 0 && quals2 >= 0)
22438 {
22439 if ((quals1 & quals2) == quals2)
22440 lose2 = true;
22441 if ((quals1 & quals2) == quals1)
22442 lose1 = true;
22443 }
22444 }
22445
22446 if (lose1 && lose2)
22447 /* We've failed to deduce something in either direction.
22448 These must be unordered. */
22449 break;
22450
22451 next:
22452
22453 if (TREE_CODE (arg1) == TYPE_PACK_EXPANSION
22454 || TREE_CODE (arg2) == TYPE_PACK_EXPANSION)
22455 /* We have already processed all of the arguments in our
22456 handing of the pack expansion type. */
22457 len = 0;
22458
22459 args1 = TREE_CHAIN (args1);
22460 args2 = TREE_CHAIN (args2);
22461 }
22462
22463 /* "In most cases, all template parameters must have values in order for
22464 deduction to succeed, but for partial ordering purposes a template
22465 parameter may remain without a value provided it is not used in the
22466 types being used for partial ordering."
22467
22468 Thus, if we are missing any of the targs1 we need to substitute into
22469 origs1, then pat2 is not as specialized as pat1. This can happen when
22470 there is a nondeduced context. */
22471 if (!lose2 && check_undeduced_parms (targs1, origs1, args1))
22472 lose2 = true;
22473 if (!lose1 && check_undeduced_parms (targs2, origs2, args2))
22474 lose1 = true;
22475
22476 processing_template_decl--;
22477
22478 /* If both deductions succeed, the partial ordering selects the more
22479 constrained template. */
22480 if (!lose1 && !lose2)
22481 {
22482 tree c1 = get_constraints (DECL_TEMPLATE_RESULT (pat1));
22483 tree c2 = get_constraints (DECL_TEMPLATE_RESULT (pat2));
22484 lose1 = !subsumes_constraints (c1, c2);
22485 lose2 = !subsumes_constraints (c2, c1);
22486 }
22487
22488 /* All things being equal, if the next argument is a pack expansion
22489 for one function but not for the other, prefer the
22490 non-variadic function. FIXME this is bogus; see c++/41958. */
22491 if (lose1 == lose2
22492 && args1 && TREE_VALUE (args1)
22493 && args2 && TREE_VALUE (args2))
22494 {
22495 lose1 = TREE_CODE (TREE_VALUE (args1)) == TYPE_PACK_EXPANSION;
22496 lose2 = TREE_CODE (TREE_VALUE (args2)) == TYPE_PACK_EXPANSION;
22497 }
22498
22499 if (lose1 == lose2)
22500 return 0;
22501 else if (!lose1)
22502 return 1;
22503 else
22504 return -1;
22505 }
22506
22507 /* Determine which of two partial specializations of TMPL is more
22508 specialized.
22509
22510 PAT1 is a TREE_LIST whose TREE_VALUE is the TEMPLATE_DECL corresponding
22511 to the first partial specialization. The TREE_PURPOSE is the
22512 innermost set of template parameters for the partial
22513 specialization. PAT2 is similar, but for the second template.
22514
22515 Return 1 if the first partial specialization is more specialized;
22516 -1 if the second is more specialized; 0 if neither is more
22517 specialized.
22518
22519 See [temp.class.order] for information about determining which of
22520 two templates is more specialized. */
22521
22522 static int
22523 more_specialized_partial_spec (tree tmpl, tree pat1, tree pat2)
22524 {
22525 tree targs;
22526 int winner = 0;
22527 bool any_deductions = false;
22528
22529 tree tmpl1 = TREE_VALUE (pat1);
22530 tree tmpl2 = TREE_VALUE (pat2);
22531 tree specargs1 = TI_ARGS (get_template_info (DECL_TEMPLATE_RESULT (tmpl1)));
22532 tree specargs2 = TI_ARGS (get_template_info (DECL_TEMPLATE_RESULT (tmpl2)));
22533
22534 /* Just like what happens for functions, if we are ordering between
22535 different template specializations, we may encounter dependent
22536 types in the arguments, and we need our dependency check functions
22537 to behave correctly. */
22538 ++processing_template_decl;
22539 targs = get_partial_spec_bindings (tmpl, tmpl1, specargs2);
22540 if (targs)
22541 {
22542 --winner;
22543 any_deductions = true;
22544 }
22545
22546 targs = get_partial_spec_bindings (tmpl, tmpl2, specargs1);
22547 if (targs)
22548 {
22549 ++winner;
22550 any_deductions = true;
22551 }
22552 --processing_template_decl;
22553
22554 /* If both deductions succeed, the partial ordering selects the more
22555 constrained template. */
22556 if (!winner && any_deductions)
22557 return more_constrained (tmpl1, tmpl2);
22558
22559 /* In the case of a tie where at least one of the templates
22560 has a parameter pack at the end, the template with the most
22561 non-packed parameters wins. */
22562 if (winner == 0
22563 && any_deductions
22564 && (template_args_variadic_p (TREE_PURPOSE (pat1))
22565 || template_args_variadic_p (TREE_PURPOSE (pat2))))
22566 {
22567 tree args1 = INNERMOST_TEMPLATE_ARGS (TREE_PURPOSE (pat1));
22568 tree args2 = INNERMOST_TEMPLATE_ARGS (TREE_PURPOSE (pat2));
22569 int len1 = TREE_VEC_LENGTH (args1);
22570 int len2 = TREE_VEC_LENGTH (args2);
22571
22572 /* We don't count the pack expansion at the end. */
22573 if (template_args_variadic_p (TREE_PURPOSE (pat1)))
22574 --len1;
22575 if (template_args_variadic_p (TREE_PURPOSE (pat2)))
22576 --len2;
22577
22578 if (len1 > len2)
22579 return 1;
22580 else if (len1 < len2)
22581 return -1;
22582 }
22583
22584 return winner;
22585 }
22586
22587 /* Return the template arguments that will produce the function signature
22588 DECL from the function template FN, with the explicit template
22589 arguments EXPLICIT_ARGS. If CHECK_RETTYPE is true, the return type must
22590 also match. Return NULL_TREE if no satisfactory arguments could be
22591 found. */
22592
22593 static tree
22594 get_bindings (tree fn, tree decl, tree explicit_args, bool check_rettype)
22595 {
22596 int ntparms = DECL_NTPARMS (fn);
22597 tree targs = make_tree_vec (ntparms);
22598 tree decl_type = TREE_TYPE (decl);
22599 tree decl_arg_types;
22600 tree *args;
22601 unsigned int nargs, ix;
22602 tree arg;
22603
22604 gcc_assert (decl != DECL_TEMPLATE_RESULT (fn));
22605
22606 /* Never do unification on the 'this' parameter. */
22607 decl_arg_types = skip_artificial_parms_for (decl,
22608 TYPE_ARG_TYPES (decl_type));
22609
22610 nargs = list_length (decl_arg_types);
22611 args = XALLOCAVEC (tree, nargs);
22612 for (arg = decl_arg_types, ix = 0;
22613 arg != NULL_TREE && arg != void_list_node;
22614 arg = TREE_CHAIN (arg), ++ix)
22615 args[ix] = TREE_VALUE (arg);
22616
22617 if (fn_type_unification (fn, explicit_args, targs,
22618 args, ix,
22619 (check_rettype || DECL_CONV_FN_P (fn)
22620 ? TREE_TYPE (decl_type) : NULL_TREE),
22621 DEDUCE_EXACT, LOOKUP_NORMAL, /*explain_p=*/false,
22622 /*decltype*/false)
22623 == error_mark_node)
22624 return NULL_TREE;
22625
22626 return targs;
22627 }
22628
22629 /* Return the innermost template arguments that, when applied to a partial
22630 specialization SPEC_TMPL of TMPL, yield the ARGS.
22631
22632 For example, suppose we have:
22633
22634 template <class T, class U> struct S {};
22635 template <class T> struct S<T*, int> {};
22636
22637 Then, suppose we want to get `S<double*, int>'. SPEC_TMPL will be the
22638 partial specialization and the ARGS will be {double*, int}. The resulting
22639 vector will be {double}, indicating that `T' is bound to `double'. */
22640
22641 static tree
22642 get_partial_spec_bindings (tree tmpl, tree spec_tmpl, tree args)
22643 {
22644 tree tparms = DECL_INNERMOST_TEMPLATE_PARMS (spec_tmpl);
22645 tree spec_args
22646 = TI_ARGS (get_template_info (DECL_TEMPLATE_RESULT (spec_tmpl)));
22647 int i, ntparms = TREE_VEC_LENGTH (tparms);
22648 tree deduced_args;
22649 tree innermost_deduced_args;
22650
22651 innermost_deduced_args = make_tree_vec (ntparms);
22652 if (TMPL_ARGS_HAVE_MULTIPLE_LEVELS (args))
22653 {
22654 deduced_args = copy_node (args);
22655 SET_TMPL_ARGS_LEVEL (deduced_args,
22656 TMPL_ARGS_DEPTH (deduced_args),
22657 innermost_deduced_args);
22658 }
22659 else
22660 deduced_args = innermost_deduced_args;
22661
22662 bool tried_array_deduction = (cxx_dialect < cxx17);
22663 again:
22664 if (unify (tparms, deduced_args,
22665 INNERMOST_TEMPLATE_ARGS (spec_args),
22666 INNERMOST_TEMPLATE_ARGS (args),
22667 UNIFY_ALLOW_NONE, /*explain_p=*/false))
22668 return NULL_TREE;
22669
22670 for (i = 0; i < ntparms; ++i)
22671 if (! TREE_VEC_ELT (innermost_deduced_args, i))
22672 {
22673 if (!tried_array_deduction)
22674 {
22675 try_array_deduction (tparms, innermost_deduced_args,
22676 INNERMOST_TEMPLATE_ARGS (spec_args));
22677 tried_array_deduction = true;
22678 if (TREE_VEC_ELT (innermost_deduced_args, i))
22679 goto again;
22680 }
22681 return NULL_TREE;
22682 }
22683
22684 if (!push_tinst_level (spec_tmpl, deduced_args))
22685 {
22686 excessive_deduction_depth = true;
22687 return NULL_TREE;
22688 }
22689
22690 /* Verify that nondeduced template arguments agree with the type
22691 obtained from argument deduction.
22692
22693 For example:
22694
22695 struct A { typedef int X; };
22696 template <class T, class U> struct C {};
22697 template <class T> struct C<T, typename T::X> {};
22698
22699 Then with the instantiation `C<A, int>', we can deduce that
22700 `T' is `A' but unify () does not check whether `typename T::X'
22701 is `int'. */
22702 spec_args = tsubst (spec_args, deduced_args, tf_none, NULL_TREE);
22703
22704 if (spec_args != error_mark_node)
22705 spec_args = coerce_template_parms (DECL_INNERMOST_TEMPLATE_PARMS (tmpl),
22706 INNERMOST_TEMPLATE_ARGS (spec_args),
22707 tmpl, tf_none, false, false);
22708
22709 pop_tinst_level ();
22710
22711 if (spec_args == error_mark_node
22712 /* We only need to check the innermost arguments; the other
22713 arguments will always agree. */
22714 || !comp_template_args_porder (INNERMOST_TEMPLATE_ARGS (spec_args),
22715 INNERMOST_TEMPLATE_ARGS (args)))
22716 return NULL_TREE;
22717
22718 /* Now that we have bindings for all of the template arguments,
22719 ensure that the arguments deduced for the template template
22720 parameters have compatible template parameter lists. See the use
22721 of template_template_parm_bindings_ok_p in fn_type_unification
22722 for more information. */
22723 if (!template_template_parm_bindings_ok_p (tparms, deduced_args))
22724 return NULL_TREE;
22725
22726 return deduced_args;
22727 }
22728
22729 // Compare two function templates T1 and T2 by deducing bindings
22730 // from one against the other. If both deductions succeed, compare
22731 // constraints to see which is more constrained.
22732 static int
22733 more_specialized_inst (tree t1, tree t2)
22734 {
22735 int fate = 0;
22736 int count = 0;
22737
22738 if (get_bindings (t1, DECL_TEMPLATE_RESULT (t2), NULL_TREE, true))
22739 {
22740 --fate;
22741 ++count;
22742 }
22743
22744 if (get_bindings (t2, DECL_TEMPLATE_RESULT (t1), NULL_TREE, true))
22745 {
22746 ++fate;
22747 ++count;
22748 }
22749
22750 // If both deductions succeed, then one may be more constrained.
22751 if (count == 2 && fate == 0)
22752 fate = more_constrained (t1, t2);
22753
22754 return fate;
22755 }
22756
22757 /* TEMPLATES is a TREE_LIST. Each TREE_VALUE is a TEMPLATE_DECL.
22758 Return the TREE_LIST node with the most specialized template, if
22759 any. If there is no most specialized template, the error_mark_node
22760 is returned.
22761
22762 Note that this function does not look at, or modify, the
22763 TREE_PURPOSE or TREE_TYPE of any of the nodes. Since the node
22764 returned is one of the elements of INSTANTIATIONS, callers may
22765 store information in the TREE_PURPOSE or TREE_TYPE of the nodes,
22766 and retrieve it from the value returned. */
22767
22768 tree
22769 most_specialized_instantiation (tree templates)
22770 {
22771 tree fn, champ;
22772
22773 ++processing_template_decl;
22774
22775 champ = templates;
22776 for (fn = TREE_CHAIN (templates); fn; fn = TREE_CHAIN (fn))
22777 {
22778 gcc_assert (TREE_VALUE (champ) != TREE_VALUE (fn));
22779 int fate = more_specialized_inst (TREE_VALUE (champ), TREE_VALUE (fn));
22780 if (fate == -1)
22781 champ = fn;
22782 else if (!fate)
22783 {
22784 /* Equally specialized, move to next function. If there
22785 is no next function, nothing's most specialized. */
22786 fn = TREE_CHAIN (fn);
22787 champ = fn;
22788 if (!fn)
22789 break;
22790 }
22791 }
22792
22793 if (champ)
22794 /* Now verify that champ is better than everything earlier in the
22795 instantiation list. */
22796 for (fn = templates; fn != champ; fn = TREE_CHAIN (fn)) {
22797 if (more_specialized_inst (TREE_VALUE (champ), TREE_VALUE (fn)) != 1)
22798 {
22799 champ = NULL_TREE;
22800 break;
22801 }
22802 }
22803
22804 processing_template_decl--;
22805
22806 if (!champ)
22807 return error_mark_node;
22808
22809 return champ;
22810 }
22811
22812 /* If DECL is a specialization of some template, return the most
22813 general such template. Otherwise, returns NULL_TREE.
22814
22815 For example, given:
22816
22817 template <class T> struct S { template <class U> void f(U); };
22818
22819 if TMPL is `template <class U> void S<int>::f(U)' this will return
22820 the full template. This function will not trace past partial
22821 specializations, however. For example, given in addition:
22822
22823 template <class T> struct S<T*> { template <class U> void f(U); };
22824
22825 if TMPL is `template <class U> void S<int*>::f(U)' this will return
22826 `template <class T> template <class U> S<T*>::f(U)'. */
22827
22828 tree
22829 most_general_template (tree decl)
22830 {
22831 if (TREE_CODE (decl) != TEMPLATE_DECL)
22832 {
22833 if (tree tinfo = get_template_info (decl))
22834 decl = TI_TEMPLATE (tinfo);
22835 /* The TI_TEMPLATE can be an IDENTIFIER_NODE for a
22836 template friend, or a FIELD_DECL for a capture pack. */
22837 if (TREE_CODE (decl) != TEMPLATE_DECL)
22838 return NULL_TREE;
22839 }
22840
22841 /* Look for more and more general templates. */
22842 while (DECL_LANG_SPECIFIC (decl) && DECL_TEMPLATE_INFO (decl))
22843 {
22844 /* The DECL_TI_TEMPLATE can be an IDENTIFIER_NODE in some cases.
22845 (See cp-tree.h for details.) */
22846 if (TREE_CODE (DECL_TI_TEMPLATE (decl)) != TEMPLATE_DECL)
22847 break;
22848
22849 if (CLASS_TYPE_P (TREE_TYPE (decl))
22850 && !TYPE_DECL_ALIAS_P (TYPE_NAME (TREE_TYPE (decl)))
22851 && CLASSTYPE_TEMPLATE_SPECIALIZATION (TREE_TYPE (decl)))
22852 break;
22853
22854 /* Stop if we run into an explicitly specialized class template. */
22855 if (!DECL_NAMESPACE_SCOPE_P (decl)
22856 && DECL_CONTEXT (decl)
22857 && CLASSTYPE_TEMPLATE_SPECIALIZATION (DECL_CONTEXT (decl)))
22858 break;
22859
22860 decl = DECL_TI_TEMPLATE (decl);
22861 }
22862
22863 return decl;
22864 }
22865
22866 /* Return the most specialized of the template partial specializations
22867 which can produce TARGET, a specialization of some class or variable
22868 template. The value returned is actually a TREE_LIST; the TREE_VALUE is
22869 a TEMPLATE_DECL node corresponding to the partial specialization, while
22870 the TREE_PURPOSE is the set of template arguments that must be
22871 substituted into the template pattern in order to generate TARGET.
22872
22873 If the choice of partial specialization is ambiguous, a diagnostic
22874 is issued, and the error_mark_node is returned. If there are no
22875 partial specializations matching TARGET, then NULL_TREE is
22876 returned, indicating that the primary template should be used. */
22877
22878 static tree
22879 most_specialized_partial_spec (tree target, tsubst_flags_t complain)
22880 {
22881 tree list = NULL_TREE;
22882 tree t;
22883 tree champ;
22884 int fate;
22885 bool ambiguous_p;
22886 tree outer_args = NULL_TREE;
22887 tree tmpl, args;
22888
22889 if (TYPE_P (target))
22890 {
22891 tree tinfo = CLASSTYPE_TEMPLATE_INFO (target);
22892 tmpl = TI_TEMPLATE (tinfo);
22893 args = TI_ARGS (tinfo);
22894 }
22895 else if (TREE_CODE (target) == TEMPLATE_ID_EXPR)
22896 {
22897 tmpl = TREE_OPERAND (target, 0);
22898 args = TREE_OPERAND (target, 1);
22899 }
22900 else if (VAR_P (target))
22901 {
22902 tree tinfo = DECL_TEMPLATE_INFO (target);
22903 tmpl = TI_TEMPLATE (tinfo);
22904 args = TI_ARGS (tinfo);
22905 }
22906 else
22907 gcc_unreachable ();
22908
22909 tree main_tmpl = most_general_template (tmpl);
22910
22911 /* For determining which partial specialization to use, only the
22912 innermost args are interesting. */
22913 if (TMPL_ARGS_HAVE_MULTIPLE_LEVELS (args))
22914 {
22915 outer_args = strip_innermost_template_args (args, 1);
22916 args = INNERMOST_TEMPLATE_ARGS (args);
22917 }
22918
22919 for (t = DECL_TEMPLATE_SPECIALIZATIONS (main_tmpl); t; t = TREE_CHAIN (t))
22920 {
22921 tree spec_args;
22922 tree spec_tmpl = TREE_VALUE (t);
22923
22924 if (outer_args)
22925 {
22926 /* Substitute in the template args from the enclosing class. */
22927 ++processing_template_decl;
22928 spec_tmpl = tsubst (spec_tmpl, outer_args, tf_none, NULL_TREE);
22929 --processing_template_decl;
22930 }
22931
22932 if (spec_tmpl == error_mark_node)
22933 return error_mark_node;
22934
22935 spec_args = get_partial_spec_bindings (tmpl, spec_tmpl, args);
22936 if (spec_args)
22937 {
22938 if (outer_args)
22939 spec_args = add_to_template_args (outer_args, spec_args);
22940
22941 /* Keep the candidate only if the constraints are satisfied,
22942 or if we're not compiling with concepts. */
22943 if (!flag_concepts
22944 || constraints_satisfied_p (spec_tmpl, spec_args))
22945 {
22946 list = tree_cons (spec_args, TREE_VALUE (t), list);
22947 TREE_TYPE (list) = TREE_TYPE (t);
22948 }
22949 }
22950 }
22951
22952 if (! list)
22953 return NULL_TREE;
22954
22955 ambiguous_p = false;
22956 t = list;
22957 champ = t;
22958 t = TREE_CHAIN (t);
22959 for (; t; t = TREE_CHAIN (t))
22960 {
22961 fate = more_specialized_partial_spec (tmpl, champ, t);
22962 if (fate == 1)
22963 ;
22964 else
22965 {
22966 if (fate == 0)
22967 {
22968 t = TREE_CHAIN (t);
22969 if (! t)
22970 {
22971 ambiguous_p = true;
22972 break;
22973 }
22974 }
22975 champ = t;
22976 }
22977 }
22978
22979 if (!ambiguous_p)
22980 for (t = list; t && t != champ; t = TREE_CHAIN (t))
22981 {
22982 fate = more_specialized_partial_spec (tmpl, champ, t);
22983 if (fate != 1)
22984 {
22985 ambiguous_p = true;
22986 break;
22987 }
22988 }
22989
22990 if (ambiguous_p)
22991 {
22992 const char *str;
22993 char *spaces = NULL;
22994 if (!(complain & tf_error))
22995 return error_mark_node;
22996 if (TYPE_P (target))
22997 error ("ambiguous template instantiation for %q#T", target);
22998 else
22999 error ("ambiguous template instantiation for %q#D", target);
23000 str = ngettext ("candidate is:", "candidates are:", list_length (list));
23001 for (t = list; t; t = TREE_CHAIN (t))
23002 {
23003 tree subst = build_tree_list (TREE_VALUE (t), TREE_PURPOSE (t));
23004 inform (DECL_SOURCE_LOCATION (TREE_VALUE (t)),
23005 "%s %#qS", spaces ? spaces : str, subst);
23006 spaces = spaces ? spaces : get_spaces (str);
23007 }
23008 free (spaces);
23009 return error_mark_node;
23010 }
23011
23012 return champ;
23013 }
23014
23015 /* Explicitly instantiate DECL. */
23016
23017 void
23018 do_decl_instantiation (tree decl, tree storage)
23019 {
23020 tree result = NULL_TREE;
23021 int extern_p = 0;
23022
23023 if (!decl || decl == error_mark_node)
23024 /* An error occurred, for which grokdeclarator has already issued
23025 an appropriate message. */
23026 return;
23027 else if (! DECL_LANG_SPECIFIC (decl))
23028 {
23029 error ("explicit instantiation of non-template %q#D", decl);
23030 return;
23031 }
23032
23033 bool var_templ = (DECL_TEMPLATE_INFO (decl)
23034 && variable_template_p (DECL_TI_TEMPLATE (decl)));
23035
23036 if (VAR_P (decl) && !var_templ)
23037 {
23038 /* There is an asymmetry here in the way VAR_DECLs and
23039 FUNCTION_DECLs are handled by grokdeclarator. In the case of
23040 the latter, the DECL we get back will be marked as a
23041 template instantiation, and the appropriate
23042 DECL_TEMPLATE_INFO will be set up. This does not happen for
23043 VAR_DECLs so we do the lookup here. Probably, grokdeclarator
23044 should handle VAR_DECLs as it currently handles
23045 FUNCTION_DECLs. */
23046 if (!DECL_CLASS_SCOPE_P (decl))
23047 {
23048 error ("%qD is not a static data member of a class template", decl);
23049 return;
23050 }
23051 result = lookup_field (DECL_CONTEXT (decl), DECL_NAME (decl), 0, false);
23052 if (!result || !VAR_P (result))
23053 {
23054 error ("no matching template for %qD found", decl);
23055 return;
23056 }
23057 if (!same_type_p (TREE_TYPE (result), TREE_TYPE (decl)))
23058 {
23059 error ("type %qT for explicit instantiation %qD does not match "
23060 "declared type %qT", TREE_TYPE (result), decl,
23061 TREE_TYPE (decl));
23062 return;
23063 }
23064 }
23065 else if (TREE_CODE (decl) != FUNCTION_DECL && !var_templ)
23066 {
23067 error ("explicit instantiation of %q#D", decl);
23068 return;
23069 }
23070 else
23071 result = decl;
23072
23073 /* Check for various error cases. Note that if the explicit
23074 instantiation is valid the RESULT will currently be marked as an
23075 *implicit* instantiation; DECL_EXPLICIT_INSTANTIATION is not set
23076 until we get here. */
23077
23078 if (DECL_TEMPLATE_SPECIALIZATION (result))
23079 {
23080 /* DR 259 [temp.spec].
23081
23082 Both an explicit instantiation and a declaration of an explicit
23083 specialization shall not appear in a program unless the explicit
23084 instantiation follows a declaration of the explicit specialization.
23085
23086 For a given set of template parameters, if an explicit
23087 instantiation of a template appears after a declaration of an
23088 explicit specialization for that template, the explicit
23089 instantiation has no effect. */
23090 return;
23091 }
23092 else if (DECL_EXPLICIT_INSTANTIATION (result))
23093 {
23094 /* [temp.spec]
23095
23096 No program shall explicitly instantiate any template more
23097 than once.
23098
23099 We check DECL_NOT_REALLY_EXTERN so as not to complain when
23100 the first instantiation was `extern' and the second is not,
23101 and EXTERN_P for the opposite case. */
23102 if (DECL_NOT_REALLY_EXTERN (result) && !extern_p)
23103 permerror (input_location, "duplicate explicit instantiation of %q#D", result);
23104 /* If an "extern" explicit instantiation follows an ordinary
23105 explicit instantiation, the template is instantiated. */
23106 if (extern_p)
23107 return;
23108 }
23109 else if (!DECL_IMPLICIT_INSTANTIATION (result))
23110 {
23111 error ("no matching template for %qD found", result);
23112 return;
23113 }
23114 else if (!DECL_TEMPLATE_INFO (result))
23115 {
23116 permerror (input_location, "explicit instantiation of non-template %q#D", result);
23117 return;
23118 }
23119
23120 if (storage == NULL_TREE)
23121 ;
23122 else if (storage == ridpointers[(int) RID_EXTERN])
23123 {
23124 if (!in_system_header_at (input_location) && (cxx_dialect == cxx98))
23125 pedwarn (input_location, OPT_Wpedantic,
23126 "ISO C++ 1998 forbids the use of %<extern%> on explicit "
23127 "instantiations");
23128 extern_p = 1;
23129 }
23130 else
23131 error ("storage class %qD applied to template instantiation", storage);
23132
23133 check_explicit_instantiation_namespace (result);
23134 mark_decl_instantiated (result, extern_p);
23135 if (! extern_p)
23136 instantiate_decl (result, /*defer_ok=*/true,
23137 /*expl_inst_class_mem_p=*/false);
23138 }
23139
23140 static void
23141 mark_class_instantiated (tree t, int extern_p)
23142 {
23143 SET_CLASSTYPE_EXPLICIT_INSTANTIATION (t);
23144 SET_CLASSTYPE_INTERFACE_KNOWN (t);
23145 CLASSTYPE_INTERFACE_ONLY (t) = extern_p;
23146 TYPE_DECL_SUPPRESS_DEBUG (TYPE_NAME (t)) = extern_p;
23147 if (! extern_p)
23148 {
23149 CLASSTYPE_DEBUG_REQUESTED (t) = 1;
23150 rest_of_type_compilation (t, 1);
23151 }
23152 }
23153
23154 /* Called from do_type_instantiation through binding_table_foreach to
23155 do recursive instantiation for the type bound in ENTRY. */
23156 static void
23157 bt_instantiate_type_proc (binding_entry entry, void *data)
23158 {
23159 tree storage = *(tree *) data;
23160
23161 if (MAYBE_CLASS_TYPE_P (entry->type)
23162 && CLASSTYPE_TEMPLATE_INFO (entry->type)
23163 && !uses_template_parms (CLASSTYPE_TI_ARGS (entry->type)))
23164 do_type_instantiation (TYPE_MAIN_DECL (entry->type), storage, 0);
23165 }
23166
23167 /* Perform an explicit instantiation of template class T. STORAGE, if
23168 non-null, is the RID for extern, inline or static. COMPLAIN is
23169 nonzero if this is called from the parser, zero if called recursively,
23170 since the standard is unclear (as detailed below). */
23171
23172 void
23173 do_type_instantiation (tree t, tree storage, tsubst_flags_t complain)
23174 {
23175 int extern_p = 0;
23176 int nomem_p = 0;
23177 int static_p = 0;
23178 int previous_instantiation_extern_p = 0;
23179
23180 if (TREE_CODE (t) == TYPE_DECL)
23181 t = TREE_TYPE (t);
23182
23183 if (! CLASS_TYPE_P (t) || ! CLASSTYPE_TEMPLATE_INFO (t))
23184 {
23185 tree tmpl =
23186 (TYPE_TEMPLATE_INFO (t)) ? TYPE_TI_TEMPLATE (t) : NULL;
23187 if (tmpl)
23188 error ("explicit instantiation of non-class template %qD", tmpl);
23189 else
23190 error ("explicit instantiation of non-template type %qT", t);
23191 return;
23192 }
23193
23194 complete_type (t);
23195
23196 if (!COMPLETE_TYPE_P (t))
23197 {
23198 if (complain & tf_error)
23199 error ("explicit instantiation of %q#T before definition of template",
23200 t);
23201 return;
23202 }
23203
23204 if (storage != NULL_TREE)
23205 {
23206 if (!in_system_header_at (input_location))
23207 {
23208 if (storage == ridpointers[(int) RID_EXTERN])
23209 {
23210 if (cxx_dialect == cxx98)
23211 pedwarn (input_location, OPT_Wpedantic,
23212 "ISO C++ 1998 forbids the use of %<extern%> on "
23213 "explicit instantiations");
23214 }
23215 else
23216 pedwarn (input_location, OPT_Wpedantic,
23217 "ISO C++ forbids the use of %qE"
23218 " on explicit instantiations", storage);
23219 }
23220
23221 if (storage == ridpointers[(int) RID_INLINE])
23222 nomem_p = 1;
23223 else if (storage == ridpointers[(int) RID_EXTERN])
23224 extern_p = 1;
23225 else if (storage == ridpointers[(int) RID_STATIC])
23226 static_p = 1;
23227 else
23228 {
23229 error ("storage class %qD applied to template instantiation",
23230 storage);
23231 extern_p = 0;
23232 }
23233 }
23234
23235 if (CLASSTYPE_TEMPLATE_SPECIALIZATION (t))
23236 {
23237 /* DR 259 [temp.spec].
23238
23239 Both an explicit instantiation and a declaration of an explicit
23240 specialization shall not appear in a program unless the explicit
23241 instantiation follows a declaration of the explicit specialization.
23242
23243 For a given set of template parameters, if an explicit
23244 instantiation of a template appears after a declaration of an
23245 explicit specialization for that template, the explicit
23246 instantiation has no effect. */
23247 return;
23248 }
23249 else if (CLASSTYPE_EXPLICIT_INSTANTIATION (t))
23250 {
23251 /* [temp.spec]
23252
23253 No program shall explicitly instantiate any template more
23254 than once.
23255
23256 If PREVIOUS_INSTANTIATION_EXTERN_P, then the first explicit
23257 instantiation was `extern'. If EXTERN_P then the second is.
23258 These cases are OK. */
23259 previous_instantiation_extern_p = CLASSTYPE_INTERFACE_ONLY (t);
23260
23261 if (!previous_instantiation_extern_p && !extern_p
23262 && (complain & tf_error))
23263 permerror (input_location, "duplicate explicit instantiation of %q#T", t);
23264
23265 /* If we've already instantiated the template, just return now. */
23266 if (!CLASSTYPE_INTERFACE_ONLY (t))
23267 return;
23268 }
23269
23270 check_explicit_instantiation_namespace (TYPE_NAME (t));
23271 mark_class_instantiated (t, extern_p);
23272
23273 if (nomem_p)
23274 return;
23275
23276 /* In contrast to implicit instantiation, where only the
23277 declarations, and not the definitions, of members are
23278 instantiated, we have here:
23279
23280 [temp.explicit]
23281
23282 The explicit instantiation of a class template specialization
23283 implies the instantiation of all of its members not
23284 previously explicitly specialized in the translation unit
23285 containing the explicit instantiation.
23286
23287 Of course, we can't instantiate member template classes, since we
23288 don't have any arguments for them. Note that the standard is
23289 unclear on whether the instantiation of the members are
23290 *explicit* instantiations or not. However, the most natural
23291 interpretation is that it should be an explicit
23292 instantiation. */
23293 for (tree fld = TYPE_FIELDS (t); fld; fld = DECL_CHAIN (fld))
23294 if ((VAR_P (fld)
23295 || (TREE_CODE (fld) == FUNCTION_DECL
23296 && !static_p
23297 && user_provided_p (fld)))
23298 && DECL_TEMPLATE_INSTANTIATION (fld))
23299 {
23300 mark_decl_instantiated (fld, extern_p);
23301 if (! extern_p)
23302 instantiate_decl (fld, /*defer_ok=*/true,
23303 /*expl_inst_class_mem_p=*/true);
23304 }
23305
23306 if (CLASSTYPE_NESTED_UTDS (t))
23307 binding_table_foreach (CLASSTYPE_NESTED_UTDS (t),
23308 bt_instantiate_type_proc, &storage);
23309 }
23310
23311 /* Given a function DECL, which is a specialization of TMPL, modify
23312 DECL to be a re-instantiation of TMPL with the same template
23313 arguments. TMPL should be the template into which tsubst'ing
23314 should occur for DECL, not the most general template.
23315
23316 One reason for doing this is a scenario like this:
23317
23318 template <class T>
23319 void f(const T&, int i);
23320
23321 void g() { f(3, 7); }
23322
23323 template <class T>
23324 void f(const T& t, const int i) { }
23325
23326 Note that when the template is first instantiated, with
23327 instantiate_template, the resulting DECL will have no name for the
23328 first parameter, and the wrong type for the second. So, when we go
23329 to instantiate the DECL, we regenerate it. */
23330
23331 static void
23332 regenerate_decl_from_template (tree decl, tree tmpl, tree args)
23333 {
23334 /* The arguments used to instantiate DECL, from the most general
23335 template. */
23336 tree code_pattern;
23337
23338 code_pattern = DECL_TEMPLATE_RESULT (tmpl);
23339
23340 /* Make sure that we can see identifiers, and compute access
23341 correctly. */
23342 push_access_scope (decl);
23343
23344 if (TREE_CODE (decl) == FUNCTION_DECL)
23345 {
23346 tree decl_parm;
23347 tree pattern_parm;
23348 tree specs;
23349 int args_depth;
23350 int parms_depth;
23351
23352 args_depth = TMPL_ARGS_DEPTH (args);
23353 parms_depth = TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (tmpl));
23354 if (args_depth > parms_depth)
23355 args = get_innermost_template_args (args, parms_depth);
23356
23357 specs = tsubst_exception_specification (TREE_TYPE (code_pattern),
23358 args, tf_error, NULL_TREE,
23359 /*defer_ok*/false);
23360 if (specs && specs != error_mark_node)
23361 TREE_TYPE (decl) = build_exception_variant (TREE_TYPE (decl),
23362 specs);
23363
23364 /* Merge parameter declarations. */
23365 decl_parm = skip_artificial_parms_for (decl,
23366 DECL_ARGUMENTS (decl));
23367 pattern_parm
23368 = skip_artificial_parms_for (code_pattern,
23369 DECL_ARGUMENTS (code_pattern));
23370 while (decl_parm && !DECL_PACK_P (pattern_parm))
23371 {
23372 tree parm_type;
23373 tree attributes;
23374
23375 if (DECL_NAME (decl_parm) != DECL_NAME (pattern_parm))
23376 DECL_NAME (decl_parm) = DECL_NAME (pattern_parm);
23377 parm_type = tsubst (TREE_TYPE (pattern_parm), args, tf_error,
23378 NULL_TREE);
23379 parm_type = type_decays_to (parm_type);
23380 if (!same_type_p (TREE_TYPE (decl_parm), parm_type))
23381 TREE_TYPE (decl_parm) = parm_type;
23382 attributes = DECL_ATTRIBUTES (pattern_parm);
23383 if (DECL_ATTRIBUTES (decl_parm) != attributes)
23384 {
23385 DECL_ATTRIBUTES (decl_parm) = attributes;
23386 cplus_decl_attributes (&decl_parm, attributes, /*flags=*/0);
23387 }
23388 decl_parm = DECL_CHAIN (decl_parm);
23389 pattern_parm = DECL_CHAIN (pattern_parm);
23390 }
23391 /* Merge any parameters that match with the function parameter
23392 pack. */
23393 if (pattern_parm && DECL_PACK_P (pattern_parm))
23394 {
23395 int i, len;
23396 tree expanded_types;
23397 /* Expand the TYPE_PACK_EXPANSION that provides the types for
23398 the parameters in this function parameter pack. */
23399 expanded_types = tsubst_pack_expansion (TREE_TYPE (pattern_parm),
23400 args, tf_error, NULL_TREE);
23401 len = TREE_VEC_LENGTH (expanded_types);
23402 for (i = 0; i < len; i++)
23403 {
23404 tree parm_type;
23405 tree attributes;
23406
23407 if (DECL_NAME (decl_parm) != DECL_NAME (pattern_parm))
23408 /* Rename the parameter to include the index. */
23409 DECL_NAME (decl_parm) =
23410 make_ith_pack_parameter_name (DECL_NAME (pattern_parm), i);
23411 parm_type = TREE_VEC_ELT (expanded_types, i);
23412 parm_type = type_decays_to (parm_type);
23413 if (!same_type_p (TREE_TYPE (decl_parm), parm_type))
23414 TREE_TYPE (decl_parm) = parm_type;
23415 attributes = DECL_ATTRIBUTES (pattern_parm);
23416 if (DECL_ATTRIBUTES (decl_parm) != attributes)
23417 {
23418 DECL_ATTRIBUTES (decl_parm) = attributes;
23419 cplus_decl_attributes (&decl_parm, attributes, /*flags=*/0);
23420 }
23421 decl_parm = DECL_CHAIN (decl_parm);
23422 }
23423 }
23424 /* Merge additional specifiers from the CODE_PATTERN. */
23425 if (DECL_DECLARED_INLINE_P (code_pattern)
23426 && !DECL_DECLARED_INLINE_P (decl))
23427 DECL_DECLARED_INLINE_P (decl) = 1;
23428 }
23429 else if (VAR_P (decl))
23430 {
23431 start_lambda_scope (decl);
23432 DECL_INITIAL (decl) =
23433 tsubst_expr (DECL_INITIAL (code_pattern), args,
23434 tf_error, DECL_TI_TEMPLATE (decl),
23435 /*integral_constant_expression_p=*/false);
23436 finish_lambda_scope ();
23437 if (VAR_HAD_UNKNOWN_BOUND (decl))
23438 TREE_TYPE (decl) = tsubst (TREE_TYPE (code_pattern), args,
23439 tf_error, DECL_TI_TEMPLATE (decl));
23440 }
23441 else
23442 gcc_unreachable ();
23443
23444 pop_access_scope (decl);
23445 }
23446
23447 /* Return the TEMPLATE_DECL into which DECL_TI_ARGS(DECL) should be
23448 substituted to get DECL. */
23449
23450 tree
23451 template_for_substitution (tree decl)
23452 {
23453 tree tmpl = DECL_TI_TEMPLATE (decl);
23454
23455 /* Set TMPL to the template whose DECL_TEMPLATE_RESULT is the pattern
23456 for the instantiation. This is not always the most general
23457 template. Consider, for example:
23458
23459 template <class T>
23460 struct S { template <class U> void f();
23461 template <> void f<int>(); };
23462
23463 and an instantiation of S<double>::f<int>. We want TD to be the
23464 specialization S<T>::f<int>, not the more general S<T>::f<U>. */
23465 while (/* An instantiation cannot have a definition, so we need a
23466 more general template. */
23467 DECL_TEMPLATE_INSTANTIATION (tmpl)
23468 /* We must also deal with friend templates. Given:
23469
23470 template <class T> struct S {
23471 template <class U> friend void f() {};
23472 };
23473
23474 S<int>::f<U> say, is not an instantiation of S<T>::f<U>,
23475 so far as the language is concerned, but that's still
23476 where we get the pattern for the instantiation from. On
23477 other hand, if the definition comes outside the class, say:
23478
23479 template <class T> struct S {
23480 template <class U> friend void f();
23481 };
23482 template <class U> friend void f() {}
23483
23484 we don't need to look any further. That's what the check for
23485 DECL_INITIAL is for. */
23486 || (TREE_CODE (decl) == FUNCTION_DECL
23487 && DECL_FRIEND_PSEUDO_TEMPLATE_INSTANTIATION (tmpl)
23488 && !DECL_INITIAL (DECL_TEMPLATE_RESULT (tmpl))))
23489 {
23490 /* The present template, TD, should not be a definition. If it
23491 were a definition, we should be using it! Note that we
23492 cannot restructure the loop to just keep going until we find
23493 a template with a definition, since that might go too far if
23494 a specialization was declared, but not defined. */
23495
23496 /* Fetch the more general template. */
23497 tmpl = DECL_TI_TEMPLATE (tmpl);
23498 }
23499
23500 return tmpl;
23501 }
23502
23503 /* Returns true if we need to instantiate this template instance even if we
23504 know we aren't going to emit it. */
23505
23506 bool
23507 always_instantiate_p (tree decl)
23508 {
23509 /* We always instantiate inline functions so that we can inline them. An
23510 explicit instantiation declaration prohibits implicit instantiation of
23511 non-inline functions. With high levels of optimization, we would
23512 normally inline non-inline functions -- but we're not allowed to do
23513 that for "extern template" functions. Therefore, we check
23514 DECL_DECLARED_INLINE_P, rather than possibly_inlined_p. */
23515 return ((TREE_CODE (decl) == FUNCTION_DECL
23516 && (DECL_DECLARED_INLINE_P (decl)
23517 || type_uses_auto (TREE_TYPE (TREE_TYPE (decl)))))
23518 /* And we need to instantiate static data members so that
23519 their initializers are available in integral constant
23520 expressions. */
23521 || (VAR_P (decl)
23522 && decl_maybe_constant_var_p (decl)));
23523 }
23524
23525 /* If FN has a noexcept-specifier that hasn't been instantiated yet,
23526 instantiate it now, modifying TREE_TYPE (fn). Returns false on
23527 error, true otherwise. */
23528
23529 bool
23530 maybe_instantiate_noexcept (tree fn, tsubst_flags_t complain)
23531 {
23532 tree fntype, spec, noex, clone;
23533
23534 /* Don't instantiate a noexcept-specification from template context. */
23535 if (processing_template_decl
23536 && (!flag_noexcept_type || type_dependent_expression_p (fn)))
23537 return true;
23538
23539 if (DECL_CLONED_FUNCTION_P (fn))
23540 fn = DECL_CLONED_FUNCTION (fn);
23541 fntype = TREE_TYPE (fn);
23542 spec = TYPE_RAISES_EXCEPTIONS (fntype);
23543
23544 if (!spec || !TREE_PURPOSE (spec))
23545 return true;
23546
23547 noex = TREE_PURPOSE (spec);
23548
23549 if (TREE_CODE (noex) == DEFERRED_NOEXCEPT)
23550 {
23551 static hash_set<tree>* fns = new hash_set<tree>;
23552 bool added = false;
23553 if (DEFERRED_NOEXCEPT_PATTERN (noex) == NULL_TREE)
23554 spec = get_defaulted_eh_spec (fn, complain);
23555 else if (!(added = !fns->add (fn)))
23556 {
23557 /* If hash_set::add returns true, the element was already there. */
23558 location_t loc = EXPR_LOC_OR_LOC (DEFERRED_NOEXCEPT_PATTERN (noex),
23559 DECL_SOURCE_LOCATION (fn));
23560 error_at (loc,
23561 "exception specification of %qD depends on itself",
23562 fn);
23563 spec = noexcept_false_spec;
23564 }
23565 else if (push_tinst_level (fn))
23566 {
23567 push_access_scope (fn);
23568 push_deferring_access_checks (dk_no_deferred);
23569 input_location = DECL_SOURCE_LOCATION (fn);
23570 noex = tsubst_copy_and_build (DEFERRED_NOEXCEPT_PATTERN (noex),
23571 DEFERRED_NOEXCEPT_ARGS (noex),
23572 tf_warning_or_error, fn,
23573 /*function_p=*/false,
23574 /*integral_constant_expression_p=*/true);
23575 spec = build_noexcept_spec (noex, tf_warning_or_error);
23576 pop_deferring_access_checks ();
23577 pop_access_scope (fn);
23578 pop_tinst_level ();
23579 if (spec == error_mark_node)
23580 spec = noexcept_false_spec;
23581 }
23582 else
23583 spec = noexcept_false_spec;
23584
23585 if (added)
23586 fns->remove (fn);
23587
23588 if (spec == error_mark_node)
23589 return false;
23590
23591 TREE_TYPE (fn) = build_exception_variant (fntype, spec);
23592 }
23593
23594 FOR_EACH_CLONE (clone, fn)
23595 {
23596 if (TREE_TYPE (clone) == fntype)
23597 TREE_TYPE (clone) = TREE_TYPE (fn);
23598 else
23599 TREE_TYPE (clone) = build_exception_variant (TREE_TYPE (clone), spec);
23600 }
23601
23602 return true;
23603 }
23604
23605 /* We're starting to process the function INST, an instantiation of PATTERN;
23606 add their parameters to local_specializations. */
23607
23608 static void
23609 register_parameter_specializations (tree pattern, tree inst)
23610 {
23611 tree tmpl_parm = DECL_ARGUMENTS (pattern);
23612 tree spec_parm = DECL_ARGUMENTS (inst);
23613 if (DECL_NONSTATIC_MEMBER_FUNCTION_P (inst))
23614 {
23615 register_local_specialization (spec_parm, tmpl_parm);
23616 spec_parm = skip_artificial_parms_for (inst, spec_parm);
23617 tmpl_parm = skip_artificial_parms_for (pattern, tmpl_parm);
23618 }
23619 for (; tmpl_parm; tmpl_parm = DECL_CHAIN (tmpl_parm))
23620 {
23621 if (!DECL_PACK_P (tmpl_parm))
23622 {
23623 register_local_specialization (spec_parm, tmpl_parm);
23624 spec_parm = DECL_CHAIN (spec_parm);
23625 }
23626 else
23627 {
23628 /* Register the (value) argument pack as a specialization of
23629 TMPL_PARM, then move on. */
23630 tree argpack = extract_fnparm_pack (tmpl_parm, &spec_parm);
23631 register_local_specialization (argpack, tmpl_parm);
23632 }
23633 }
23634 gcc_assert (!spec_parm);
23635 }
23636
23637 /* Produce the definition of D, a _DECL generated from a template. If
23638 DEFER_OK is true, then we don't have to actually do the
23639 instantiation now; we just have to do it sometime. Normally it is
23640 an error if this is an explicit instantiation but D is undefined.
23641 EXPL_INST_CLASS_MEM_P is true iff D is a member of an explicitly
23642 instantiated class template. */
23643
23644 tree
23645 instantiate_decl (tree d, bool defer_ok, bool expl_inst_class_mem_p)
23646 {
23647 tree tmpl = DECL_TI_TEMPLATE (d);
23648 tree gen_args;
23649 tree args;
23650 tree td;
23651 tree code_pattern;
23652 tree spec;
23653 tree gen_tmpl;
23654 bool pattern_defined;
23655 location_t saved_loc = input_location;
23656 int saved_unevaluated_operand = cp_unevaluated_operand;
23657 int saved_inhibit_evaluation_warnings = c_inhibit_evaluation_warnings;
23658 bool external_p;
23659 bool deleted_p;
23660
23661 /* This function should only be used to instantiate templates for
23662 functions and static member variables. */
23663 gcc_assert (VAR_OR_FUNCTION_DECL_P (d));
23664
23665 /* A concept is never instantiated. */
23666 gcc_assert (!DECL_DECLARED_CONCEPT_P (d));
23667
23668 /* Variables are never deferred; if instantiation is required, they
23669 are instantiated right away. That allows for better code in the
23670 case that an expression refers to the value of the variable --
23671 if the variable has a constant value the referring expression can
23672 take advantage of that fact. */
23673 if (VAR_P (d))
23674 defer_ok = false;
23675
23676 /* Don't instantiate cloned functions. Instead, instantiate the
23677 functions they cloned. */
23678 if (TREE_CODE (d) == FUNCTION_DECL && DECL_CLONED_FUNCTION_P (d))
23679 d = DECL_CLONED_FUNCTION (d);
23680
23681 if (DECL_TEMPLATE_INSTANTIATED (d)
23682 || (TREE_CODE (d) == FUNCTION_DECL
23683 && DECL_DEFAULTED_FN (d) && DECL_INITIAL (d))
23684 || DECL_TEMPLATE_SPECIALIZATION (d))
23685 /* D has already been instantiated or explicitly specialized, so
23686 there's nothing for us to do here.
23687
23688 It might seem reasonable to check whether or not D is an explicit
23689 instantiation, and, if so, stop here. But when an explicit
23690 instantiation is deferred until the end of the compilation,
23691 DECL_EXPLICIT_INSTANTIATION is set, even though we still need to do
23692 the instantiation. */
23693 return d;
23694
23695 /* Check to see whether we know that this template will be
23696 instantiated in some other file, as with "extern template"
23697 extension. */
23698 external_p = (DECL_INTERFACE_KNOWN (d) && DECL_REALLY_EXTERN (d));
23699
23700 /* In general, we do not instantiate such templates. */
23701 if (external_p && !always_instantiate_p (d))
23702 return d;
23703
23704 gen_tmpl = most_general_template (tmpl);
23705 gen_args = DECL_TI_ARGS (d);
23706
23707 if (tmpl != gen_tmpl)
23708 /* We should already have the extra args. */
23709 gcc_assert (TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (gen_tmpl))
23710 == TMPL_ARGS_DEPTH (gen_args));
23711 /* And what's in the hash table should match D. */
23712 gcc_assert ((spec = retrieve_specialization (gen_tmpl, gen_args, 0)) == d
23713 || spec == NULL_TREE);
23714
23715 /* This needs to happen before any tsubsting. */
23716 if (! push_tinst_level (d))
23717 return d;
23718
23719 timevar_push (TV_TEMPLATE_INST);
23720
23721 /* Set TD to the template whose DECL_TEMPLATE_RESULT is the pattern
23722 for the instantiation. */
23723 td = template_for_substitution (d);
23724 args = gen_args;
23725
23726 if (VAR_P (d))
23727 {
23728 /* Look up an explicit specialization, if any. */
23729 tree tid = lookup_template_variable (gen_tmpl, gen_args);
23730 tree elt = most_specialized_partial_spec (tid, tf_warning_or_error);
23731 if (elt && elt != error_mark_node)
23732 {
23733 td = TREE_VALUE (elt);
23734 args = TREE_PURPOSE (elt);
23735 }
23736 }
23737
23738 code_pattern = DECL_TEMPLATE_RESULT (td);
23739
23740 /* We should never be trying to instantiate a member of a class
23741 template or partial specialization. */
23742 gcc_assert (d != code_pattern);
23743
23744 if ((DECL_NAMESPACE_SCOPE_P (d) && !DECL_INITIALIZED_IN_CLASS_P (d))
23745 || DECL_TEMPLATE_SPECIALIZATION (td))
23746 /* In the case of a friend template whose definition is provided
23747 outside the class, we may have too many arguments. Drop the
23748 ones we don't need. The same is true for specializations. */
23749 args = get_innermost_template_args
23750 (args, TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (td)));
23751
23752 if (TREE_CODE (d) == FUNCTION_DECL)
23753 {
23754 deleted_p = DECL_DELETED_FN (code_pattern);
23755 pattern_defined = ((DECL_SAVED_TREE (code_pattern) != NULL_TREE
23756 && DECL_INITIAL (code_pattern) != error_mark_node)
23757 || DECL_DEFAULTED_FN (code_pattern)
23758 || deleted_p);
23759 }
23760 else
23761 {
23762 deleted_p = false;
23763 if (DECL_CLASS_SCOPE_P (code_pattern))
23764 pattern_defined = (! DECL_IN_AGGR_P (code_pattern)
23765 || DECL_INLINE_VAR_P (code_pattern));
23766 else
23767 pattern_defined = ! DECL_EXTERNAL (code_pattern);
23768 }
23769
23770 /* We may be in the middle of deferred access check. Disable it now. */
23771 push_deferring_access_checks (dk_no_deferred);
23772
23773 /* Unless an explicit instantiation directive has already determined
23774 the linkage of D, remember that a definition is available for
23775 this entity. */
23776 if (pattern_defined
23777 && !DECL_INTERFACE_KNOWN (d)
23778 && !DECL_NOT_REALLY_EXTERN (d))
23779 mark_definable (d);
23780
23781 DECL_SOURCE_LOCATION (td) = DECL_SOURCE_LOCATION (code_pattern);
23782 DECL_SOURCE_LOCATION (d) = DECL_SOURCE_LOCATION (code_pattern);
23783 input_location = DECL_SOURCE_LOCATION (d);
23784
23785 /* If D is a member of an explicitly instantiated class template,
23786 and no definition is available, treat it like an implicit
23787 instantiation. */
23788 if (!pattern_defined && expl_inst_class_mem_p
23789 && DECL_EXPLICIT_INSTANTIATION (d))
23790 {
23791 /* Leave linkage flags alone on instantiations with anonymous
23792 visibility. */
23793 if (TREE_PUBLIC (d))
23794 {
23795 DECL_NOT_REALLY_EXTERN (d) = 0;
23796 DECL_INTERFACE_KNOWN (d) = 0;
23797 }
23798 SET_DECL_IMPLICIT_INSTANTIATION (d);
23799 }
23800
23801 /* Defer all other templates, unless we have been explicitly
23802 forbidden from doing so. */
23803 if (/* If there is no definition, we cannot instantiate the
23804 template. */
23805 ! pattern_defined
23806 /* If it's OK to postpone instantiation, do so. */
23807 || defer_ok
23808 /* If this is a static data member that will be defined
23809 elsewhere, we don't want to instantiate the entire data
23810 member, but we do want to instantiate the initializer so that
23811 we can substitute that elsewhere. */
23812 || (external_p && VAR_P (d))
23813 /* Handle here a deleted function too, avoid generating
23814 its body (c++/61080). */
23815 || deleted_p)
23816 {
23817 /* The definition of the static data member is now required so
23818 we must substitute the initializer. */
23819 if (VAR_P (d)
23820 && !DECL_INITIAL (d)
23821 && DECL_INITIAL (code_pattern))
23822 {
23823 tree ns;
23824 tree init;
23825 bool const_init = false;
23826 bool enter_context = DECL_CLASS_SCOPE_P (d);
23827
23828 ns = decl_namespace_context (d);
23829 push_nested_namespace (ns);
23830 if (enter_context)
23831 push_nested_class (DECL_CONTEXT (d));
23832 init = tsubst_expr (DECL_INITIAL (code_pattern),
23833 args,
23834 tf_warning_or_error, NULL_TREE,
23835 /*integral_constant_expression_p=*/false);
23836 /* If instantiating the initializer involved instantiating this
23837 again, don't call cp_finish_decl twice. */
23838 if (!DECL_INITIAL (d))
23839 {
23840 /* Make sure the initializer is still constant, in case of
23841 circular dependency (template/instantiate6.C). */
23842 const_init
23843 = DECL_INITIALIZED_BY_CONSTANT_EXPRESSION_P (code_pattern);
23844 cp_finish_decl (d, init, /*init_const_expr_p=*/const_init,
23845 /*asmspec_tree=*/NULL_TREE,
23846 LOOKUP_ONLYCONVERTING);
23847 }
23848 if (enter_context)
23849 pop_nested_class ();
23850 pop_nested_namespace (ns);
23851 }
23852
23853 /* We restore the source position here because it's used by
23854 add_pending_template. */
23855 input_location = saved_loc;
23856
23857 if (at_eof && !pattern_defined
23858 && DECL_EXPLICIT_INSTANTIATION (d)
23859 && DECL_NOT_REALLY_EXTERN (d))
23860 /* [temp.explicit]
23861
23862 The definition of a non-exported function template, a
23863 non-exported member function template, or a non-exported
23864 member function or static data member of a class template
23865 shall be present in every translation unit in which it is
23866 explicitly instantiated. */
23867 permerror (input_location, "explicit instantiation of %qD "
23868 "but no definition available", d);
23869
23870 /* If we're in unevaluated context, we just wanted to get the
23871 constant value; this isn't an odr use, so don't queue
23872 a full instantiation. */
23873 if (cp_unevaluated_operand != 0)
23874 goto out;
23875 /* ??? Historically, we have instantiated inline functions, even
23876 when marked as "extern template". */
23877 if (!(external_p && VAR_P (d)))
23878 add_pending_template (d);
23879 goto out;
23880 }
23881 /* Tell the repository that D is available in this translation unit
23882 -- and see if it is supposed to be instantiated here. */
23883 if (TREE_PUBLIC (d) && !DECL_REALLY_EXTERN (d) && !repo_emit_p (d))
23884 {
23885 /* In a PCH file, despite the fact that the repository hasn't
23886 requested instantiation in the PCH it is still possible that
23887 an instantiation will be required in a file that includes the
23888 PCH. */
23889 if (pch_file)
23890 add_pending_template (d);
23891 /* Instantiate inline functions so that the inliner can do its
23892 job, even though we'll not be emitting a copy of this
23893 function. */
23894 if (!(TREE_CODE (d) == FUNCTION_DECL && possibly_inlined_p (d)))
23895 goto out;
23896 }
23897
23898 bool push_to_top, nested;
23899 tree fn_context;
23900 fn_context = decl_function_context (d);
23901 if (LAMBDA_FUNCTION_P (d))
23902 /* tsubst_lambda_expr resolved any references to enclosing functions. */
23903 fn_context = NULL_TREE;
23904 nested = current_function_decl != NULL_TREE;
23905 push_to_top = !(nested && fn_context == current_function_decl);
23906
23907 vec<tree> omp_privatization_save;
23908 if (nested)
23909 save_omp_privatization_clauses (omp_privatization_save);
23910
23911 if (push_to_top)
23912 push_to_top_level ();
23913 else
23914 {
23915 gcc_assert (!processing_template_decl);
23916 push_function_context ();
23917 cp_unevaluated_operand = 0;
23918 c_inhibit_evaluation_warnings = 0;
23919 }
23920
23921 /* Mark D as instantiated so that recursive calls to
23922 instantiate_decl do not try to instantiate it again. */
23923 DECL_TEMPLATE_INSTANTIATED (d) = 1;
23924
23925 /* Regenerate the declaration in case the template has been modified
23926 by a subsequent redeclaration. */
23927 regenerate_decl_from_template (d, td, args);
23928
23929 /* We already set the file and line above. Reset them now in case
23930 they changed as a result of calling regenerate_decl_from_template. */
23931 input_location = DECL_SOURCE_LOCATION (d);
23932
23933 if (VAR_P (d))
23934 {
23935 tree init;
23936 bool const_init = false;
23937
23938 /* Clear out DECL_RTL; whatever was there before may not be right
23939 since we've reset the type of the declaration. */
23940 SET_DECL_RTL (d, NULL);
23941 DECL_IN_AGGR_P (d) = 0;
23942
23943 /* The initializer is placed in DECL_INITIAL by
23944 regenerate_decl_from_template so we don't need to
23945 push/pop_access_scope again here. Pull it out so that
23946 cp_finish_decl can process it. */
23947 init = DECL_INITIAL (d);
23948 DECL_INITIAL (d) = NULL_TREE;
23949 DECL_INITIALIZED_P (d) = 0;
23950
23951 /* Clear DECL_EXTERNAL so that cp_finish_decl will process the
23952 initializer. That function will defer actual emission until
23953 we have a chance to determine linkage. */
23954 DECL_EXTERNAL (d) = 0;
23955
23956 /* Enter the scope of D so that access-checking works correctly. */
23957 bool enter_context = DECL_CLASS_SCOPE_P (d);
23958 if (enter_context)
23959 push_nested_class (DECL_CONTEXT (d));
23960
23961 const_init = DECL_INITIALIZED_BY_CONSTANT_EXPRESSION_P (code_pattern);
23962 cp_finish_decl (d, init, const_init, NULL_TREE, 0);
23963
23964 if (enter_context)
23965 pop_nested_class ();
23966
23967 if (variable_template_p (gen_tmpl))
23968 note_variable_template_instantiation (d);
23969 }
23970 else if (TREE_CODE (d) == FUNCTION_DECL && DECL_DEFAULTED_FN (code_pattern))
23971 synthesize_method (d);
23972 else if (TREE_CODE (d) == FUNCTION_DECL)
23973 {
23974 /* Set up the list of local specializations. */
23975 local_specialization_stack lss (push_to_top ? lss_blank : lss_copy);
23976 tree block = NULL_TREE;
23977
23978 /* Set up context. */
23979 if (DECL_OMP_DECLARE_REDUCTION_P (code_pattern)
23980 && TREE_CODE (DECL_CONTEXT (code_pattern)) == FUNCTION_DECL)
23981 block = push_stmt_list ();
23982 else
23983 start_preparsed_function (d, NULL_TREE, SF_PRE_PARSED);
23984
23985 /* Some typedefs referenced from within the template code need to be
23986 access checked at template instantiation time, i.e now. These
23987 types were added to the template at parsing time. Let's get those
23988 and perform the access checks then. */
23989 perform_typedefs_access_check (DECL_TEMPLATE_RESULT (td),
23990 args);
23991
23992 /* Create substitution entries for the parameters. */
23993 register_parameter_specializations (code_pattern, d);
23994
23995 /* Substitute into the body of the function. */
23996 if (DECL_OMP_DECLARE_REDUCTION_P (code_pattern))
23997 tsubst_omp_udr (DECL_SAVED_TREE (code_pattern), args,
23998 tf_warning_or_error, tmpl);
23999 else
24000 {
24001 tsubst_expr (DECL_SAVED_TREE (code_pattern), args,
24002 tf_warning_or_error, tmpl,
24003 /*integral_constant_expression_p=*/false);
24004
24005 /* Set the current input_location to the end of the function
24006 so that finish_function knows where we are. */
24007 input_location
24008 = DECL_STRUCT_FUNCTION (code_pattern)->function_end_locus;
24009
24010 /* Remember if we saw an infinite loop in the template. */
24011 current_function_infinite_loop
24012 = DECL_STRUCT_FUNCTION (code_pattern)->language->infinite_loop;
24013 }
24014
24015 /* Finish the function. */
24016 if (DECL_OMP_DECLARE_REDUCTION_P (code_pattern)
24017 && TREE_CODE (DECL_CONTEXT (code_pattern)) == FUNCTION_DECL)
24018 DECL_SAVED_TREE (d) = pop_stmt_list (block);
24019 else
24020 {
24021 d = finish_function (/*inline_p=*/false);
24022 expand_or_defer_fn (d);
24023 }
24024
24025 if (DECL_OMP_DECLARE_REDUCTION_P (code_pattern))
24026 cp_check_omp_declare_reduction (d);
24027 }
24028
24029 /* We're not deferring instantiation any more. */
24030 TI_PENDING_TEMPLATE_FLAG (DECL_TEMPLATE_INFO (d)) = 0;
24031
24032 if (push_to_top)
24033 pop_from_top_level ();
24034 else
24035 pop_function_context ();
24036
24037 if (nested)
24038 restore_omp_privatization_clauses (omp_privatization_save);
24039
24040 out:
24041 pop_deferring_access_checks ();
24042 timevar_pop (TV_TEMPLATE_INST);
24043 pop_tinst_level ();
24044 input_location = saved_loc;
24045 cp_unevaluated_operand = saved_unevaluated_operand;
24046 c_inhibit_evaluation_warnings = saved_inhibit_evaluation_warnings;
24047
24048 return d;
24049 }
24050
24051 /* Run through the list of templates that we wish we could
24052 instantiate, and instantiate any we can. RETRIES is the
24053 number of times we retry pending template instantiation. */
24054
24055 void
24056 instantiate_pending_templates (int retries)
24057 {
24058 int reconsider;
24059 location_t saved_loc = input_location;
24060
24061 /* Instantiating templates may trigger vtable generation. This in turn
24062 may require further template instantiations. We place a limit here
24063 to avoid infinite loop. */
24064 if (pending_templates && retries >= max_tinst_depth)
24065 {
24066 tree decl = pending_templates->tinst->maybe_get_node ();
24067
24068 fatal_error (input_location,
24069 "template instantiation depth exceeds maximum of %d"
24070 " instantiating %q+D, possibly from virtual table generation"
24071 " (use -ftemplate-depth= to increase the maximum)",
24072 max_tinst_depth, decl);
24073 if (TREE_CODE (decl) == FUNCTION_DECL)
24074 /* Pretend that we defined it. */
24075 DECL_INITIAL (decl) = error_mark_node;
24076 return;
24077 }
24078
24079 do
24080 {
24081 struct pending_template **t = &pending_templates;
24082 struct pending_template *last = NULL;
24083 reconsider = 0;
24084 while (*t)
24085 {
24086 tree instantiation = reopen_tinst_level ((*t)->tinst);
24087 bool complete = false;
24088
24089 if (TYPE_P (instantiation))
24090 {
24091 if (!COMPLETE_TYPE_P (instantiation))
24092 {
24093 instantiate_class_template (instantiation);
24094 if (CLASSTYPE_TEMPLATE_INSTANTIATION (instantiation))
24095 for (tree fld = TYPE_FIELDS (instantiation);
24096 fld; fld = TREE_CHAIN (fld))
24097 if ((VAR_P (fld)
24098 || (TREE_CODE (fld) == FUNCTION_DECL
24099 && !DECL_ARTIFICIAL (fld)))
24100 && DECL_TEMPLATE_INSTANTIATION (fld))
24101 instantiate_decl (fld,
24102 /*defer_ok=*/false,
24103 /*expl_inst_class_mem_p=*/false);
24104
24105 if (COMPLETE_TYPE_P (instantiation))
24106 reconsider = 1;
24107 }
24108
24109 complete = COMPLETE_TYPE_P (instantiation);
24110 }
24111 else
24112 {
24113 if (!DECL_TEMPLATE_SPECIALIZATION (instantiation)
24114 && !DECL_TEMPLATE_INSTANTIATED (instantiation))
24115 {
24116 instantiation
24117 = instantiate_decl (instantiation,
24118 /*defer_ok=*/false,
24119 /*expl_inst_class_mem_p=*/false);
24120 if (DECL_TEMPLATE_INSTANTIATED (instantiation))
24121 reconsider = 1;
24122 }
24123
24124 complete = (DECL_TEMPLATE_SPECIALIZATION (instantiation)
24125 || DECL_TEMPLATE_INSTANTIATED (instantiation));
24126 }
24127
24128 if (complete)
24129 {
24130 /* If INSTANTIATION has been instantiated, then we don't
24131 need to consider it again in the future. */
24132 struct pending_template *drop = *t;
24133 *t = (*t)->next;
24134 set_refcount_ptr (drop->tinst);
24135 pending_template_freelist ().free (drop);
24136 }
24137 else
24138 {
24139 last = *t;
24140 t = &(*t)->next;
24141 }
24142 tinst_depth = 0;
24143 set_refcount_ptr (current_tinst_level);
24144 }
24145 last_pending_template = last;
24146 }
24147 while (reconsider);
24148
24149 input_location = saved_loc;
24150 }
24151
24152 /* Substitute ARGVEC into T, which is a list of initializers for
24153 either base class or a non-static data member. The TREE_PURPOSEs
24154 are DECLs, and the TREE_VALUEs are the initializer values. Used by
24155 instantiate_decl. */
24156
24157 static tree
24158 tsubst_initializer_list (tree t, tree argvec)
24159 {
24160 tree inits = NULL_TREE;
24161 tree target_ctor = error_mark_node;
24162
24163 for (; t; t = TREE_CHAIN (t))
24164 {
24165 tree decl;
24166 tree init;
24167 tree expanded_bases = NULL_TREE;
24168 tree expanded_arguments = NULL_TREE;
24169 int i, len = 1;
24170
24171 if (TREE_CODE (TREE_PURPOSE (t)) == TYPE_PACK_EXPANSION)
24172 {
24173 tree expr;
24174 tree arg;
24175
24176 /* Expand the base class expansion type into separate base
24177 classes. */
24178 expanded_bases = tsubst_pack_expansion (TREE_PURPOSE (t), argvec,
24179 tf_warning_or_error,
24180 NULL_TREE);
24181 if (expanded_bases == error_mark_node)
24182 continue;
24183
24184 /* We'll be building separate TREE_LISTs of arguments for
24185 each base. */
24186 len = TREE_VEC_LENGTH (expanded_bases);
24187 expanded_arguments = make_tree_vec (len);
24188 for (i = 0; i < len; i++)
24189 TREE_VEC_ELT (expanded_arguments, i) = NULL_TREE;
24190
24191 /* Build a dummy EXPR_PACK_EXPANSION that will be used to
24192 expand each argument in the TREE_VALUE of t. */
24193 expr = make_node (EXPR_PACK_EXPANSION);
24194 PACK_EXPANSION_LOCAL_P (expr) = true;
24195 PACK_EXPANSION_PARAMETER_PACKS (expr) =
24196 PACK_EXPANSION_PARAMETER_PACKS (TREE_PURPOSE (t));
24197
24198 if (TREE_VALUE (t) == void_type_node)
24199 /* VOID_TYPE_NODE is used to indicate
24200 value-initialization. */
24201 {
24202 for (i = 0; i < len; i++)
24203 TREE_VEC_ELT (expanded_arguments, i) = void_type_node;
24204 }
24205 else
24206 {
24207 /* Substitute parameter packs into each argument in the
24208 TREE_LIST. */
24209 in_base_initializer = 1;
24210 for (arg = TREE_VALUE (t); arg; arg = TREE_CHAIN (arg))
24211 {
24212 tree expanded_exprs;
24213
24214 /* Expand the argument. */
24215 SET_PACK_EXPANSION_PATTERN (expr, TREE_VALUE (arg));
24216 expanded_exprs
24217 = tsubst_pack_expansion (expr, argvec,
24218 tf_warning_or_error,
24219 NULL_TREE);
24220 if (expanded_exprs == error_mark_node)
24221 continue;
24222
24223 /* Prepend each of the expanded expressions to the
24224 corresponding TREE_LIST in EXPANDED_ARGUMENTS. */
24225 for (i = 0; i < len; i++)
24226 {
24227 TREE_VEC_ELT (expanded_arguments, i) =
24228 tree_cons (NULL_TREE,
24229 TREE_VEC_ELT (expanded_exprs, i),
24230 TREE_VEC_ELT (expanded_arguments, i));
24231 }
24232 }
24233 in_base_initializer = 0;
24234
24235 /* Reverse all of the TREE_LISTs in EXPANDED_ARGUMENTS,
24236 since we built them backwards. */
24237 for (i = 0; i < len; i++)
24238 {
24239 TREE_VEC_ELT (expanded_arguments, i) =
24240 nreverse (TREE_VEC_ELT (expanded_arguments, i));
24241 }
24242 }
24243 }
24244
24245 for (i = 0; i < len; ++i)
24246 {
24247 if (expanded_bases)
24248 {
24249 decl = TREE_VEC_ELT (expanded_bases, i);
24250 decl = expand_member_init (decl);
24251 init = TREE_VEC_ELT (expanded_arguments, i);
24252 }
24253 else
24254 {
24255 tree tmp;
24256 decl = tsubst_copy (TREE_PURPOSE (t), argvec,
24257 tf_warning_or_error, NULL_TREE);
24258
24259 decl = expand_member_init (decl);
24260 if (decl && !DECL_P (decl))
24261 in_base_initializer = 1;
24262
24263 init = TREE_VALUE (t);
24264 tmp = init;
24265 if (init != void_type_node)
24266 init = tsubst_expr (init, argvec,
24267 tf_warning_or_error, NULL_TREE,
24268 /*integral_constant_expression_p=*/false);
24269 if (init == NULL_TREE && tmp != NULL_TREE)
24270 /* If we had an initializer but it instantiated to nothing,
24271 value-initialize the object. This will only occur when
24272 the initializer was a pack expansion where the parameter
24273 packs used in that expansion were of length zero. */
24274 init = void_type_node;
24275 in_base_initializer = 0;
24276 }
24277
24278 if (target_ctor != error_mark_node
24279 && init != error_mark_node)
24280 {
24281 error ("mem-initializer for %qD follows constructor delegation",
24282 decl);
24283 return inits;
24284 }
24285 /* Look for a target constructor. */
24286 if (init != error_mark_node
24287 && decl && CLASS_TYPE_P (decl)
24288 && same_type_p (decl, current_class_type))
24289 {
24290 maybe_warn_cpp0x (CPP0X_DELEGATING_CTORS);
24291 if (inits)
24292 {
24293 error ("constructor delegation follows mem-initializer for %qD",
24294 TREE_PURPOSE (inits));
24295 continue;
24296 }
24297 target_ctor = init;
24298 }
24299
24300 if (decl)
24301 {
24302 init = build_tree_list (decl, init);
24303 TREE_CHAIN (init) = inits;
24304 inits = init;
24305 }
24306 }
24307 }
24308 return inits;
24309 }
24310
24311 /* Set CURRENT_ACCESS_SPECIFIER based on the protection of DECL. */
24312
24313 static void
24314 set_current_access_from_decl (tree decl)
24315 {
24316 if (TREE_PRIVATE (decl))
24317 current_access_specifier = access_private_node;
24318 else if (TREE_PROTECTED (decl))
24319 current_access_specifier = access_protected_node;
24320 else
24321 current_access_specifier = access_public_node;
24322 }
24323
24324 /* Instantiate an enumerated type. TAG is the template type, NEWTAG
24325 is the instantiation (which should have been created with
24326 start_enum) and ARGS are the template arguments to use. */
24327
24328 static void
24329 tsubst_enum (tree tag, tree newtag, tree args)
24330 {
24331 tree e;
24332
24333 if (SCOPED_ENUM_P (newtag))
24334 begin_scope (sk_scoped_enum, newtag);
24335
24336 for (e = TYPE_VALUES (tag); e; e = TREE_CHAIN (e))
24337 {
24338 tree value;
24339 tree decl;
24340
24341 decl = TREE_VALUE (e);
24342 /* Note that in a template enum, the TREE_VALUE is the
24343 CONST_DECL, not the corresponding INTEGER_CST. */
24344 value = tsubst_expr (DECL_INITIAL (decl),
24345 args, tf_warning_or_error, NULL_TREE,
24346 /*integral_constant_expression_p=*/true);
24347
24348 /* Give this enumeration constant the correct access. */
24349 set_current_access_from_decl (decl);
24350
24351 /* Actually build the enumerator itself. Here we're assuming that
24352 enumerators can't have dependent attributes. */
24353 build_enumerator (DECL_NAME (decl), value, newtag,
24354 DECL_ATTRIBUTES (decl), DECL_SOURCE_LOCATION (decl));
24355 }
24356
24357 if (SCOPED_ENUM_P (newtag))
24358 finish_scope ();
24359
24360 finish_enum_value_list (newtag);
24361 finish_enum (newtag);
24362
24363 DECL_SOURCE_LOCATION (TYPE_NAME (newtag))
24364 = DECL_SOURCE_LOCATION (TYPE_NAME (tag));
24365 }
24366
24367 /* DECL is a FUNCTION_DECL that is a template specialization. Return
24368 its type -- but without substituting the innermost set of template
24369 arguments. So, innermost set of template parameters will appear in
24370 the type. */
24371
24372 tree
24373 get_mostly_instantiated_function_type (tree decl)
24374 {
24375 /* For a function, DECL_TI_TEMPLATE is partially instantiated. */
24376 return TREE_TYPE (DECL_TI_TEMPLATE (decl));
24377 }
24378
24379 /* Return truthvalue if we're processing a template different from
24380 the last one involved in diagnostics. */
24381 bool
24382 problematic_instantiation_changed (void)
24383 {
24384 return current_tinst_level != last_error_tinst_level;
24385 }
24386
24387 /* Remember current template involved in diagnostics. */
24388 void
24389 record_last_problematic_instantiation (void)
24390 {
24391 set_refcount_ptr (last_error_tinst_level, current_tinst_level);
24392 }
24393
24394 struct tinst_level *
24395 current_instantiation (void)
24396 {
24397 return current_tinst_level;
24398 }
24399
24400 /* Return TRUE if current_function_decl is being instantiated, false
24401 otherwise. */
24402
24403 bool
24404 instantiating_current_function_p (void)
24405 {
24406 return (current_instantiation ()
24407 && (current_instantiation ()->maybe_get_node ()
24408 == current_function_decl));
24409 }
24410
24411 /* [temp.param] Check that template non-type parm TYPE is of an allowable
24412 type. Return false for ok, true for disallowed. Issue error and
24413 inform messages under control of COMPLAIN. */
24414
24415 static bool
24416 invalid_nontype_parm_type_p (tree type, tsubst_flags_t complain)
24417 {
24418 if (INTEGRAL_OR_ENUMERATION_TYPE_P (type))
24419 return false;
24420 else if (TYPE_PTR_P (type))
24421 return false;
24422 else if (TYPE_REF_P (type)
24423 && !TYPE_REF_IS_RVALUE (type))
24424 return false;
24425 else if (TYPE_PTRMEM_P (type))
24426 return false;
24427 else if (TREE_CODE (type) == TEMPLATE_TYPE_PARM)
24428 return false;
24429 else if (TREE_CODE (type) == TYPENAME_TYPE)
24430 return false;
24431 else if (TREE_CODE (type) == DECLTYPE_TYPE)
24432 return false;
24433 else if (TREE_CODE (type) == NULLPTR_TYPE)
24434 return false;
24435 /* A bound template template parm could later be instantiated to have a valid
24436 nontype parm type via an alias template. */
24437 else if (cxx_dialect >= cxx11
24438 && TREE_CODE (type) == BOUND_TEMPLATE_TEMPLATE_PARM)
24439 return false;
24440
24441 if (complain & tf_error)
24442 {
24443 if (type == error_mark_node)
24444 inform (input_location, "invalid template non-type parameter");
24445 else
24446 error ("%q#T is not a valid type for a template non-type parameter",
24447 type);
24448 }
24449 return true;
24450 }
24451
24452 /* Returns TRUE if TYPE is dependent, in the sense of [temp.dep.type].
24453 Assumes that TYPE really is a type, and not the ERROR_MARK_NODE.*/
24454
24455 static bool
24456 dependent_type_p_r (tree type)
24457 {
24458 tree scope;
24459
24460 /* [temp.dep.type]
24461
24462 A type is dependent if it is:
24463
24464 -- a template parameter. Template template parameters are types
24465 for us (since TYPE_P holds true for them) so we handle
24466 them here. */
24467 if (TREE_CODE (type) == TEMPLATE_TYPE_PARM
24468 || TREE_CODE (type) == TEMPLATE_TEMPLATE_PARM)
24469 return true;
24470 /* -- a qualified-id with a nested-name-specifier which contains a
24471 class-name that names a dependent type or whose unqualified-id
24472 names a dependent type. */
24473 if (TREE_CODE (type) == TYPENAME_TYPE)
24474 return true;
24475
24476 /* An alias template specialization can be dependent even if the
24477 resulting type is not. */
24478 if (dependent_alias_template_spec_p (type))
24479 return true;
24480
24481 /* -- a cv-qualified type where the cv-unqualified type is
24482 dependent.
24483 No code is necessary for this bullet; the code below handles
24484 cv-qualified types, and we don't want to strip aliases with
24485 TYPE_MAIN_VARIANT because of DR 1558. */
24486 /* -- a compound type constructed from any dependent type. */
24487 if (TYPE_PTRMEM_P (type))
24488 return (dependent_type_p (TYPE_PTRMEM_CLASS_TYPE (type))
24489 || dependent_type_p (TYPE_PTRMEM_POINTED_TO_TYPE
24490 (type)));
24491 else if (INDIRECT_TYPE_P (type))
24492 return dependent_type_p (TREE_TYPE (type));
24493 else if (TREE_CODE (type) == FUNCTION_TYPE
24494 || TREE_CODE (type) == METHOD_TYPE)
24495 {
24496 tree arg_type;
24497
24498 if (dependent_type_p (TREE_TYPE (type)))
24499 return true;
24500 for (arg_type = TYPE_ARG_TYPES (type);
24501 arg_type;
24502 arg_type = TREE_CHAIN (arg_type))
24503 if (dependent_type_p (TREE_VALUE (arg_type)))
24504 return true;
24505 if (cxx_dialect >= cxx17)
24506 /* A value-dependent noexcept-specifier makes the type dependent. */
24507 if (tree spec = TYPE_RAISES_EXCEPTIONS (type))
24508 if (tree noex = TREE_PURPOSE (spec))
24509 /* Treat DEFERRED_NOEXCEPT as non-dependent, since it doesn't
24510 affect overload resolution and treating it as dependent breaks
24511 things. */
24512 if (TREE_CODE (noex) != DEFERRED_NOEXCEPT
24513 && value_dependent_expression_p (noex))
24514 return true;
24515 return false;
24516 }
24517 /* -- an array type constructed from any dependent type or whose
24518 size is specified by a constant expression that is
24519 value-dependent.
24520
24521 We checked for type- and value-dependence of the bounds in
24522 compute_array_index_type, so TYPE_DEPENDENT_P is already set. */
24523 if (TREE_CODE (type) == ARRAY_TYPE)
24524 {
24525 if (TYPE_DOMAIN (type)
24526 && dependent_type_p (TYPE_DOMAIN (type)))
24527 return true;
24528 return dependent_type_p (TREE_TYPE (type));
24529 }
24530
24531 /* -- a template-id in which either the template name is a template
24532 parameter ... */
24533 if (TREE_CODE (type) == BOUND_TEMPLATE_TEMPLATE_PARM)
24534 return true;
24535 /* ... or any of the template arguments is a dependent type or
24536 an expression that is type-dependent or value-dependent. */
24537 else if (CLASS_TYPE_P (type) && CLASSTYPE_TEMPLATE_INFO (type)
24538 && (any_dependent_template_arguments_p
24539 (INNERMOST_TEMPLATE_ARGS (CLASSTYPE_TI_ARGS (type)))))
24540 return true;
24541
24542 /* All TYPEOF_TYPEs, DECLTYPE_TYPEs, and UNDERLYING_TYPEs are
24543 dependent; if the argument of the `typeof' expression is not
24544 type-dependent, then it should already been have resolved. */
24545 if (TREE_CODE (type) == TYPEOF_TYPE
24546 || TREE_CODE (type) == DECLTYPE_TYPE
24547 || TREE_CODE (type) == UNDERLYING_TYPE)
24548 return true;
24549
24550 /* A template argument pack is dependent if any of its packed
24551 arguments are. */
24552 if (TREE_CODE (type) == TYPE_ARGUMENT_PACK)
24553 {
24554 tree args = ARGUMENT_PACK_ARGS (type);
24555 int i, len = TREE_VEC_LENGTH (args);
24556 for (i = 0; i < len; ++i)
24557 if (dependent_template_arg_p (TREE_VEC_ELT (args, i)))
24558 return true;
24559 }
24560
24561 /* All TYPE_PACK_EXPANSIONs are dependent, because parameter packs must
24562 be template parameters. */
24563 if (TREE_CODE (type) == TYPE_PACK_EXPANSION)
24564 return true;
24565
24566 if (any_dependent_type_attributes_p (TYPE_ATTRIBUTES (type)))
24567 return true;
24568
24569 /* The standard does not specifically mention types that are local
24570 to template functions or local classes, but they should be
24571 considered dependent too. For example:
24572
24573 template <int I> void f() {
24574 enum E { a = I };
24575 S<sizeof (E)> s;
24576 }
24577
24578 The size of `E' cannot be known until the value of `I' has been
24579 determined. Therefore, `E' must be considered dependent. */
24580 scope = TYPE_CONTEXT (type);
24581 if (scope && TYPE_P (scope))
24582 return dependent_type_p (scope);
24583 /* Don't use type_dependent_expression_p here, as it can lead
24584 to infinite recursion trying to determine whether a lambda
24585 nested in a lambda is dependent (c++/47687). */
24586 else if (scope && TREE_CODE (scope) == FUNCTION_DECL
24587 && DECL_LANG_SPECIFIC (scope)
24588 && DECL_TEMPLATE_INFO (scope)
24589 && (any_dependent_template_arguments_p
24590 (INNERMOST_TEMPLATE_ARGS (DECL_TI_ARGS (scope)))))
24591 return true;
24592
24593 /* Other types are non-dependent. */
24594 return false;
24595 }
24596
24597 /* Returns TRUE if TYPE is dependent, in the sense of
24598 [temp.dep.type]. Note that a NULL type is considered dependent. */
24599
24600 bool
24601 dependent_type_p (tree type)
24602 {
24603 /* If there are no template parameters in scope, then there can't be
24604 any dependent types. */
24605 if (!processing_template_decl)
24606 {
24607 /* If we are not processing a template, then nobody should be
24608 providing us with a dependent type. */
24609 gcc_assert (type);
24610 gcc_assert (TREE_CODE (type) != TEMPLATE_TYPE_PARM || is_auto (type));
24611 return false;
24612 }
24613
24614 /* If the type is NULL, we have not computed a type for the entity
24615 in question; in that case, the type is dependent. */
24616 if (!type)
24617 return true;
24618
24619 /* Erroneous types can be considered non-dependent. */
24620 if (type == error_mark_node)
24621 return false;
24622
24623 /* Getting here with global_type_node means we improperly called this
24624 function on the TREE_TYPE of an IDENTIFIER_NODE. */
24625 gcc_checking_assert (type != global_type_node);
24626
24627 /* If we have not already computed the appropriate value for TYPE,
24628 do so now. */
24629 if (!TYPE_DEPENDENT_P_VALID (type))
24630 {
24631 TYPE_DEPENDENT_P (type) = dependent_type_p_r (type);
24632 TYPE_DEPENDENT_P_VALID (type) = 1;
24633 }
24634
24635 return TYPE_DEPENDENT_P (type);
24636 }
24637
24638 /* Returns TRUE if SCOPE is a dependent scope, in which we can't do any
24639 lookup. In other words, a dependent type that is not the current
24640 instantiation. */
24641
24642 bool
24643 dependent_scope_p (tree scope)
24644 {
24645 return (scope && TYPE_P (scope) && dependent_type_p (scope)
24646 && !currently_open_class (scope));
24647 }
24648
24649 /* T is a SCOPE_REF. Return whether it represents a non-static member of
24650 an unknown base of 'this' (and is therefore instantiation-dependent). */
24651
24652 static bool
24653 unknown_base_ref_p (tree t)
24654 {
24655 if (!current_class_ptr)
24656 return false;
24657
24658 tree mem = TREE_OPERAND (t, 1);
24659 if (shared_member_p (mem))
24660 return false;
24661
24662 tree cur = current_nonlambda_class_type ();
24663 if (!any_dependent_bases_p (cur))
24664 return false;
24665
24666 tree ctx = TREE_OPERAND (t, 0);
24667 if (DERIVED_FROM_P (ctx, cur))
24668 return false;
24669
24670 return true;
24671 }
24672
24673 /* T is a SCOPE_REF; return whether we need to consider it
24674 instantiation-dependent so that we can check access at instantiation
24675 time even though we know which member it resolves to. */
24676
24677 static bool
24678 instantiation_dependent_scope_ref_p (tree t)
24679 {
24680 if (DECL_P (TREE_OPERAND (t, 1))
24681 && CLASS_TYPE_P (TREE_OPERAND (t, 0))
24682 && !unknown_base_ref_p (t)
24683 && accessible_in_template_p (TREE_OPERAND (t, 0),
24684 TREE_OPERAND (t, 1)))
24685 return false;
24686 else
24687 return true;
24688 }
24689
24690 /* Returns TRUE if the EXPRESSION is value-dependent, in the sense of
24691 [temp.dep.constexpr]. EXPRESSION is already known to be a constant
24692 expression. */
24693
24694 /* Note that this predicate is not appropriate for general expressions;
24695 only constant expressions (that satisfy potential_constant_expression)
24696 can be tested for value dependence. */
24697
24698 bool
24699 value_dependent_expression_p (tree expression)
24700 {
24701 if (!processing_template_decl || expression == NULL_TREE)
24702 return false;
24703
24704 /* A type-dependent expression is also value-dependent. */
24705 if (type_dependent_expression_p (expression))
24706 return true;
24707
24708 switch (TREE_CODE (expression))
24709 {
24710 case BASELINK:
24711 /* A dependent member function of the current instantiation. */
24712 return dependent_type_p (BINFO_TYPE (BASELINK_BINFO (expression)));
24713
24714 case FUNCTION_DECL:
24715 /* A dependent member function of the current instantiation. */
24716 if (DECL_CLASS_SCOPE_P (expression)
24717 && dependent_type_p (DECL_CONTEXT (expression)))
24718 return true;
24719 break;
24720
24721 case IDENTIFIER_NODE:
24722 /* A name that has not been looked up -- must be dependent. */
24723 return true;
24724
24725 case TEMPLATE_PARM_INDEX:
24726 /* A non-type template parm. */
24727 return true;
24728
24729 case CONST_DECL:
24730 /* A non-type template parm. */
24731 if (DECL_TEMPLATE_PARM_P (expression))
24732 return true;
24733 return value_dependent_expression_p (DECL_INITIAL (expression));
24734
24735 case VAR_DECL:
24736 /* A constant with literal type and is initialized
24737 with an expression that is value-dependent. */
24738 if (DECL_DEPENDENT_INIT_P (expression)
24739 /* FIXME cp_finish_decl doesn't fold reference initializers. */
24740 || TYPE_REF_P (TREE_TYPE (expression)))
24741 return true;
24742 if (DECL_HAS_VALUE_EXPR_P (expression))
24743 {
24744 tree value_expr = DECL_VALUE_EXPR (expression);
24745 if (value_dependent_expression_p (value_expr))
24746 return true;
24747 }
24748 return false;
24749
24750 case DYNAMIC_CAST_EXPR:
24751 case STATIC_CAST_EXPR:
24752 case CONST_CAST_EXPR:
24753 case REINTERPRET_CAST_EXPR:
24754 case CAST_EXPR:
24755 case IMPLICIT_CONV_EXPR:
24756 /* These expressions are value-dependent if the type to which
24757 the cast occurs is dependent or the expression being casted
24758 is value-dependent. */
24759 {
24760 tree type = TREE_TYPE (expression);
24761
24762 if (dependent_type_p (type))
24763 return true;
24764
24765 /* A functional cast has a list of operands. */
24766 expression = TREE_OPERAND (expression, 0);
24767 if (!expression)
24768 {
24769 /* If there are no operands, it must be an expression such
24770 as "int()". This should not happen for aggregate types
24771 because it would form non-constant expressions. */
24772 gcc_assert (cxx_dialect >= cxx11
24773 || INTEGRAL_OR_ENUMERATION_TYPE_P (type));
24774
24775 return false;
24776 }
24777
24778 if (TREE_CODE (expression) == TREE_LIST)
24779 return any_value_dependent_elements_p (expression);
24780
24781 return value_dependent_expression_p (expression);
24782 }
24783
24784 case SIZEOF_EXPR:
24785 if (SIZEOF_EXPR_TYPE_P (expression))
24786 return dependent_type_p (TREE_TYPE (TREE_OPERAND (expression, 0)));
24787 /* FALLTHRU */
24788 case ALIGNOF_EXPR:
24789 case TYPEID_EXPR:
24790 /* A `sizeof' expression is value-dependent if the operand is
24791 type-dependent or is a pack expansion. */
24792 expression = TREE_OPERAND (expression, 0);
24793 if (PACK_EXPANSION_P (expression))
24794 return true;
24795 else if (TYPE_P (expression))
24796 return dependent_type_p (expression);
24797 return instantiation_dependent_uneval_expression_p (expression);
24798
24799 case AT_ENCODE_EXPR:
24800 /* An 'encode' expression is value-dependent if the operand is
24801 type-dependent. */
24802 expression = TREE_OPERAND (expression, 0);
24803 return dependent_type_p (expression);
24804
24805 case NOEXCEPT_EXPR:
24806 expression = TREE_OPERAND (expression, 0);
24807 return instantiation_dependent_uneval_expression_p (expression);
24808
24809 case SCOPE_REF:
24810 /* All instantiation-dependent expressions should also be considered
24811 value-dependent. */
24812 return instantiation_dependent_scope_ref_p (expression);
24813
24814 case COMPONENT_REF:
24815 return (value_dependent_expression_p (TREE_OPERAND (expression, 0))
24816 || value_dependent_expression_p (TREE_OPERAND (expression, 1)));
24817
24818 case NONTYPE_ARGUMENT_PACK:
24819 /* A NONTYPE_ARGUMENT_PACK is value-dependent if any packed argument
24820 is value-dependent. */
24821 {
24822 tree values = ARGUMENT_PACK_ARGS (expression);
24823 int i, len = TREE_VEC_LENGTH (values);
24824
24825 for (i = 0; i < len; ++i)
24826 if (value_dependent_expression_p (TREE_VEC_ELT (values, i)))
24827 return true;
24828
24829 return false;
24830 }
24831
24832 case TRAIT_EXPR:
24833 {
24834 tree type2 = TRAIT_EXPR_TYPE2 (expression);
24835
24836 if (dependent_type_p (TRAIT_EXPR_TYPE1 (expression)))
24837 return true;
24838
24839 if (!type2)
24840 return false;
24841
24842 if (TREE_CODE (type2) != TREE_LIST)
24843 return dependent_type_p (type2);
24844
24845 for (; type2; type2 = TREE_CHAIN (type2))
24846 if (dependent_type_p (TREE_VALUE (type2)))
24847 return true;
24848
24849 return false;
24850 }
24851
24852 case MODOP_EXPR:
24853 return ((value_dependent_expression_p (TREE_OPERAND (expression, 0)))
24854 || (value_dependent_expression_p (TREE_OPERAND (expression, 2))));
24855
24856 case ARRAY_REF:
24857 return ((value_dependent_expression_p (TREE_OPERAND (expression, 0)))
24858 || (value_dependent_expression_p (TREE_OPERAND (expression, 1))));
24859
24860 case ADDR_EXPR:
24861 {
24862 tree op = TREE_OPERAND (expression, 0);
24863 return (value_dependent_expression_p (op)
24864 || has_value_dependent_address (op));
24865 }
24866
24867 case REQUIRES_EXPR:
24868 /* Treat all requires-expressions as value-dependent so
24869 we don't try to fold them. */
24870 return true;
24871
24872 case TYPE_REQ:
24873 return dependent_type_p (TREE_OPERAND (expression, 0));
24874
24875 case CALL_EXPR:
24876 {
24877 if (value_dependent_expression_p (CALL_EXPR_FN (expression)))
24878 return true;
24879 tree fn = get_callee_fndecl (expression);
24880 int i, nargs;
24881 nargs = call_expr_nargs (expression);
24882 for (i = 0; i < nargs; ++i)
24883 {
24884 tree op = CALL_EXPR_ARG (expression, i);
24885 /* In a call to a constexpr member function, look through the
24886 implicit ADDR_EXPR on the object argument so that it doesn't
24887 cause the call to be considered value-dependent. We also
24888 look through it in potential_constant_expression. */
24889 if (i == 0 && fn && DECL_DECLARED_CONSTEXPR_P (fn)
24890 && DECL_NONSTATIC_MEMBER_FUNCTION_P (fn)
24891 && TREE_CODE (op) == ADDR_EXPR)
24892 op = TREE_OPERAND (op, 0);
24893 if (value_dependent_expression_p (op))
24894 return true;
24895 }
24896 return false;
24897 }
24898
24899 case TEMPLATE_ID_EXPR:
24900 return variable_concept_p (TREE_OPERAND (expression, 0));
24901
24902 case CONSTRUCTOR:
24903 {
24904 unsigned ix;
24905 tree val;
24906 if (dependent_type_p (TREE_TYPE (expression)))
24907 return true;
24908 FOR_EACH_CONSTRUCTOR_VALUE (CONSTRUCTOR_ELTS (expression), ix, val)
24909 if (value_dependent_expression_p (val))
24910 return true;
24911 return false;
24912 }
24913
24914 case STMT_EXPR:
24915 /* Treat a GNU statement expression as dependent to avoid crashing
24916 under instantiate_non_dependent_expr; it can't be constant. */
24917 return true;
24918
24919 default:
24920 /* A constant expression is value-dependent if any subexpression is
24921 value-dependent. */
24922 switch (TREE_CODE_CLASS (TREE_CODE (expression)))
24923 {
24924 case tcc_reference:
24925 case tcc_unary:
24926 case tcc_comparison:
24927 case tcc_binary:
24928 case tcc_expression:
24929 case tcc_vl_exp:
24930 {
24931 int i, len = cp_tree_operand_length (expression);
24932
24933 for (i = 0; i < len; i++)
24934 {
24935 tree t = TREE_OPERAND (expression, i);
24936
24937 /* In some cases, some of the operands may be missing.
24938 (For example, in the case of PREDECREMENT_EXPR, the
24939 amount to increment by may be missing.) That doesn't
24940 make the expression dependent. */
24941 if (t && value_dependent_expression_p (t))
24942 return true;
24943 }
24944 }
24945 break;
24946 default:
24947 break;
24948 }
24949 break;
24950 }
24951
24952 /* The expression is not value-dependent. */
24953 return false;
24954 }
24955
24956 /* Returns TRUE if the EXPRESSION is type-dependent, in the sense of
24957 [temp.dep.expr]. Note that an expression with no type is
24958 considered dependent. Other parts of the compiler arrange for an
24959 expression with type-dependent subexpressions to have no type, so
24960 this function doesn't have to be fully recursive. */
24961
24962 bool
24963 type_dependent_expression_p (tree expression)
24964 {
24965 if (!processing_template_decl)
24966 return false;
24967
24968 if (expression == NULL_TREE || expression == error_mark_node)
24969 return false;
24970
24971 STRIP_ANY_LOCATION_WRAPPER (expression);
24972
24973 /* An unresolved name is always dependent. */
24974 if (identifier_p (expression)
24975 || TREE_CODE (expression) == USING_DECL
24976 || TREE_CODE (expression) == WILDCARD_DECL)
24977 return true;
24978
24979 /* A fold expression is type-dependent. */
24980 if (TREE_CODE (expression) == UNARY_LEFT_FOLD_EXPR
24981 || TREE_CODE (expression) == UNARY_RIGHT_FOLD_EXPR
24982 || TREE_CODE (expression) == BINARY_LEFT_FOLD_EXPR
24983 || TREE_CODE (expression) == BINARY_RIGHT_FOLD_EXPR)
24984 return true;
24985
24986 /* Some expression forms are never type-dependent. */
24987 if (TREE_CODE (expression) == PSEUDO_DTOR_EXPR
24988 || TREE_CODE (expression) == SIZEOF_EXPR
24989 || TREE_CODE (expression) == ALIGNOF_EXPR
24990 || TREE_CODE (expression) == AT_ENCODE_EXPR
24991 || TREE_CODE (expression) == NOEXCEPT_EXPR
24992 || TREE_CODE (expression) == TRAIT_EXPR
24993 || TREE_CODE (expression) == TYPEID_EXPR
24994 || TREE_CODE (expression) == DELETE_EXPR
24995 || TREE_CODE (expression) == VEC_DELETE_EXPR
24996 || TREE_CODE (expression) == THROW_EXPR
24997 || TREE_CODE (expression) == REQUIRES_EXPR)
24998 return false;
24999
25000 /* The types of these expressions depends only on the type to which
25001 the cast occurs. */
25002 if (TREE_CODE (expression) == DYNAMIC_CAST_EXPR
25003 || TREE_CODE (expression) == STATIC_CAST_EXPR
25004 || TREE_CODE (expression) == CONST_CAST_EXPR
25005 || TREE_CODE (expression) == REINTERPRET_CAST_EXPR
25006 || TREE_CODE (expression) == IMPLICIT_CONV_EXPR
25007 || TREE_CODE (expression) == CAST_EXPR)
25008 return dependent_type_p (TREE_TYPE (expression));
25009
25010 /* The types of these expressions depends only on the type created
25011 by the expression. */
25012 if (TREE_CODE (expression) == NEW_EXPR
25013 || TREE_CODE (expression) == VEC_NEW_EXPR)
25014 {
25015 /* For NEW_EXPR tree nodes created inside a template, either
25016 the object type itself or a TREE_LIST may appear as the
25017 operand 1. */
25018 tree type = TREE_OPERAND (expression, 1);
25019 if (TREE_CODE (type) == TREE_LIST)
25020 /* This is an array type. We need to check array dimensions
25021 as well. */
25022 return dependent_type_p (TREE_VALUE (TREE_PURPOSE (type)))
25023 || value_dependent_expression_p
25024 (TREE_OPERAND (TREE_VALUE (type), 1));
25025 else
25026 return dependent_type_p (type);
25027 }
25028
25029 if (TREE_CODE (expression) == SCOPE_REF)
25030 {
25031 tree scope = TREE_OPERAND (expression, 0);
25032 tree name = TREE_OPERAND (expression, 1);
25033
25034 /* 14.6.2.2 [temp.dep.expr]: An id-expression is type-dependent if it
25035 contains an identifier associated by name lookup with one or more
25036 declarations declared with a dependent type, or...a
25037 nested-name-specifier or qualified-id that names a member of an
25038 unknown specialization. */
25039 return (type_dependent_expression_p (name)
25040 || dependent_scope_p (scope));
25041 }
25042
25043 if (TREE_CODE (expression) == TEMPLATE_DECL
25044 && !DECL_TEMPLATE_TEMPLATE_PARM_P (expression))
25045 return uses_outer_template_parms (expression);
25046
25047 if (TREE_CODE (expression) == STMT_EXPR)
25048 expression = stmt_expr_value_expr (expression);
25049
25050 if (BRACE_ENCLOSED_INITIALIZER_P (expression))
25051 {
25052 tree elt;
25053 unsigned i;
25054
25055 FOR_EACH_CONSTRUCTOR_VALUE (CONSTRUCTOR_ELTS (expression), i, elt)
25056 {
25057 if (type_dependent_expression_p (elt))
25058 return true;
25059 }
25060 return false;
25061 }
25062
25063 /* A static data member of the current instantiation with incomplete
25064 array type is type-dependent, as the definition and specializations
25065 can have different bounds. */
25066 if (VAR_P (expression)
25067 && DECL_CLASS_SCOPE_P (expression)
25068 && dependent_type_p (DECL_CONTEXT (expression))
25069 && VAR_HAD_UNKNOWN_BOUND (expression))
25070 return true;
25071
25072 /* An array of unknown bound depending on a variadic parameter, eg:
25073
25074 template<typename... Args>
25075 void foo (Args... args)
25076 {
25077 int arr[] = { args... };
25078 }
25079
25080 template<int... vals>
25081 void bar ()
25082 {
25083 int arr[] = { vals... };
25084 }
25085
25086 If the array has no length and has an initializer, it must be that
25087 we couldn't determine its length in cp_complete_array_type because
25088 it is dependent. */
25089 if (VAR_P (expression)
25090 && TREE_TYPE (expression) != NULL_TREE
25091 && TREE_CODE (TREE_TYPE (expression)) == ARRAY_TYPE
25092 && !TYPE_DOMAIN (TREE_TYPE (expression))
25093 && DECL_INITIAL (expression))
25094 return true;
25095
25096 /* A function or variable template-id is type-dependent if it has any
25097 dependent template arguments. */
25098 if (VAR_OR_FUNCTION_DECL_P (expression)
25099 && DECL_LANG_SPECIFIC (expression)
25100 && DECL_TEMPLATE_INFO (expression))
25101 {
25102 /* Consider the innermost template arguments, since those are the ones
25103 that come from the template-id; the template arguments for the
25104 enclosing class do not make it type-dependent unless they are used in
25105 the type of the decl. */
25106 if (PRIMARY_TEMPLATE_P (DECL_TI_TEMPLATE (expression))
25107 && (any_dependent_template_arguments_p
25108 (INNERMOST_TEMPLATE_ARGS (DECL_TI_ARGS (expression)))))
25109 return true;
25110 }
25111
25112 /* Otherwise, if the function decl isn't from a dependent scope, it can't be
25113 type-dependent. Checking this is important for functions with auto return
25114 type, which looks like a dependent type. */
25115 if (TREE_CODE (expression) == FUNCTION_DECL
25116 && !(DECL_CLASS_SCOPE_P (expression)
25117 && dependent_type_p (DECL_CONTEXT (expression)))
25118 && !(DECL_LANG_SPECIFIC (expression)
25119 && DECL_FRIEND_P (expression)
25120 && (!DECL_FRIEND_CONTEXT (expression)
25121 || dependent_type_p (DECL_FRIEND_CONTEXT (expression))))
25122 && !DECL_LOCAL_FUNCTION_P (expression))
25123 {
25124 gcc_assert (!dependent_type_p (TREE_TYPE (expression))
25125 || undeduced_auto_decl (expression));
25126 return false;
25127 }
25128
25129 /* Always dependent, on the number of arguments if nothing else. */
25130 if (TREE_CODE (expression) == EXPR_PACK_EXPANSION)
25131 return true;
25132
25133 if (TREE_TYPE (expression) == unknown_type_node)
25134 {
25135 if (TREE_CODE (expression) == ADDR_EXPR)
25136 return type_dependent_expression_p (TREE_OPERAND (expression, 0));
25137 if (TREE_CODE (expression) == COMPONENT_REF
25138 || TREE_CODE (expression) == OFFSET_REF)
25139 {
25140 if (type_dependent_expression_p (TREE_OPERAND (expression, 0)))
25141 return true;
25142 expression = TREE_OPERAND (expression, 1);
25143 if (identifier_p (expression))
25144 return false;
25145 }
25146 /* SCOPE_REF with non-null TREE_TYPE is always non-dependent. */
25147 if (TREE_CODE (expression) == SCOPE_REF)
25148 return false;
25149
25150 if (BASELINK_P (expression))
25151 {
25152 if (BASELINK_OPTYPE (expression)
25153 && dependent_type_p (BASELINK_OPTYPE (expression)))
25154 return true;
25155 expression = BASELINK_FUNCTIONS (expression);
25156 }
25157
25158 if (TREE_CODE (expression) == TEMPLATE_ID_EXPR)
25159 {
25160 if (any_dependent_template_arguments_p
25161 (TREE_OPERAND (expression, 1)))
25162 return true;
25163 expression = TREE_OPERAND (expression, 0);
25164 if (identifier_p (expression))
25165 return true;
25166 }
25167
25168 gcc_assert (TREE_CODE (expression) == OVERLOAD
25169 || TREE_CODE (expression) == FUNCTION_DECL);
25170
25171 for (lkp_iterator iter (expression); iter; ++iter)
25172 if (type_dependent_expression_p (*iter))
25173 return true;
25174
25175 return false;
25176 }
25177
25178 gcc_assert (TREE_CODE (expression) != TYPE_DECL);
25179
25180 /* Dependent type attributes might not have made it from the decl to
25181 the type yet. */
25182 if (DECL_P (expression)
25183 && any_dependent_type_attributes_p (DECL_ATTRIBUTES (expression)))
25184 return true;
25185
25186 return (dependent_type_p (TREE_TYPE (expression)));
25187 }
25188
25189 /* [temp.dep.expr]/5: A class member access expression (5.2.5) is
25190 type-dependent if the expression refers to a member of the current
25191 instantiation and the type of the referenced member is dependent, or the
25192 class member access expression refers to a member of an unknown
25193 specialization.
25194
25195 This function returns true if the OBJECT in such a class member access
25196 expression is of an unknown specialization. */
25197
25198 bool
25199 type_dependent_object_expression_p (tree object)
25200 {
25201 /* An IDENTIFIER_NODE can sometimes have a TREE_TYPE, but it's still
25202 dependent. */
25203 if (TREE_CODE (object) == IDENTIFIER_NODE)
25204 return true;
25205 tree scope = TREE_TYPE (object);
25206 return (!scope || dependent_scope_p (scope));
25207 }
25208
25209 /* walk_tree callback function for instantiation_dependent_expression_p,
25210 below. Returns non-zero if a dependent subexpression is found. */
25211
25212 static tree
25213 instantiation_dependent_r (tree *tp, int *walk_subtrees,
25214 void * /*data*/)
25215 {
25216 if (TYPE_P (*tp))
25217 {
25218 /* We don't have to worry about decltype currently because decltype
25219 of an instantiation-dependent expr is a dependent type. This
25220 might change depending on the resolution of DR 1172. */
25221 *walk_subtrees = false;
25222 return NULL_TREE;
25223 }
25224 enum tree_code code = TREE_CODE (*tp);
25225 switch (code)
25226 {
25227 /* Don't treat an argument list as dependent just because it has no
25228 TREE_TYPE. */
25229 case TREE_LIST:
25230 case TREE_VEC:
25231 case NONTYPE_ARGUMENT_PACK:
25232 return NULL_TREE;
25233
25234 case TEMPLATE_PARM_INDEX:
25235 return *tp;
25236
25237 /* Handle expressions with type operands. */
25238 case SIZEOF_EXPR:
25239 case ALIGNOF_EXPR:
25240 case TYPEID_EXPR:
25241 case AT_ENCODE_EXPR:
25242 {
25243 tree op = TREE_OPERAND (*tp, 0);
25244 if (code == SIZEOF_EXPR && SIZEOF_EXPR_TYPE_P (*tp))
25245 op = TREE_TYPE (op);
25246 if (TYPE_P (op))
25247 {
25248 if (dependent_type_p (op))
25249 return *tp;
25250 else
25251 {
25252 *walk_subtrees = false;
25253 return NULL_TREE;
25254 }
25255 }
25256 break;
25257 }
25258
25259 case COMPONENT_REF:
25260 if (identifier_p (TREE_OPERAND (*tp, 1)))
25261 /* In a template, finish_class_member_access_expr creates a
25262 COMPONENT_REF with an IDENTIFIER_NODE for op1 even if it isn't
25263 type-dependent, so that we can check access control at
25264 instantiation time (PR 42277). See also Core issue 1273. */
25265 return *tp;
25266 break;
25267
25268 case SCOPE_REF:
25269 if (instantiation_dependent_scope_ref_p (*tp))
25270 return *tp;
25271 else
25272 break;
25273
25274 /* Treat statement-expressions as dependent. */
25275 case BIND_EXPR:
25276 return *tp;
25277
25278 /* Treat requires-expressions as dependent. */
25279 case REQUIRES_EXPR:
25280 return *tp;
25281
25282 case CALL_EXPR:
25283 /* Treat calls to function concepts as dependent. */
25284 if (function_concept_check_p (*tp))
25285 return *tp;
25286 break;
25287
25288 case TEMPLATE_ID_EXPR:
25289 /* And variable concepts. */
25290 if (variable_concept_p (TREE_OPERAND (*tp, 0)))
25291 return *tp;
25292 break;
25293
25294 default:
25295 break;
25296 }
25297
25298 if (type_dependent_expression_p (*tp))
25299 return *tp;
25300 else
25301 return NULL_TREE;
25302 }
25303
25304 /* Returns TRUE if the EXPRESSION is instantiation-dependent, in the
25305 sense defined by the ABI:
25306
25307 "An expression is instantiation-dependent if it is type-dependent
25308 or value-dependent, or it has a subexpression that is type-dependent
25309 or value-dependent."
25310
25311 Except don't actually check value-dependence for unevaluated expressions,
25312 because in sizeof(i) we don't care about the value of i. Checking
25313 type-dependence will in turn check value-dependence of array bounds/template
25314 arguments as needed. */
25315
25316 bool
25317 instantiation_dependent_uneval_expression_p (tree expression)
25318 {
25319 tree result;
25320
25321 if (!processing_template_decl)
25322 return false;
25323
25324 if (expression == error_mark_node)
25325 return false;
25326
25327 result = cp_walk_tree_without_duplicates (&expression,
25328 instantiation_dependent_r, NULL);
25329 return result != NULL_TREE;
25330 }
25331
25332 /* As above, but also check value-dependence of the expression as a whole. */
25333
25334 bool
25335 instantiation_dependent_expression_p (tree expression)
25336 {
25337 return (instantiation_dependent_uneval_expression_p (expression)
25338 || value_dependent_expression_p (expression));
25339 }
25340
25341 /* Like type_dependent_expression_p, but it also works while not processing
25342 a template definition, i.e. during substitution or mangling. */
25343
25344 bool
25345 type_dependent_expression_p_push (tree expr)
25346 {
25347 bool b;
25348 ++processing_template_decl;
25349 b = type_dependent_expression_p (expr);
25350 --processing_template_decl;
25351 return b;
25352 }
25353
25354 /* Returns TRUE if ARGS contains a type-dependent expression. */
25355
25356 bool
25357 any_type_dependent_arguments_p (const vec<tree, va_gc> *args)
25358 {
25359 unsigned int i;
25360 tree arg;
25361
25362 FOR_EACH_VEC_SAFE_ELT (args, i, arg)
25363 {
25364 if (type_dependent_expression_p (arg))
25365 return true;
25366 }
25367 return false;
25368 }
25369
25370 /* Returns TRUE if LIST (a TREE_LIST whose TREE_VALUEs are
25371 expressions) contains any type-dependent expressions. */
25372
25373 bool
25374 any_type_dependent_elements_p (const_tree list)
25375 {
25376 for (; list; list = TREE_CHAIN (list))
25377 if (type_dependent_expression_p (TREE_VALUE (list)))
25378 return true;
25379
25380 return false;
25381 }
25382
25383 /* Returns TRUE if LIST (a TREE_LIST whose TREE_VALUEs are
25384 expressions) contains any value-dependent expressions. */
25385
25386 bool
25387 any_value_dependent_elements_p (const_tree list)
25388 {
25389 for (; list; list = TREE_CHAIN (list))
25390 if (value_dependent_expression_p (TREE_VALUE (list)))
25391 return true;
25392
25393 return false;
25394 }
25395
25396 /* Returns TRUE if the ARG (a template argument) is dependent. */
25397
25398 bool
25399 dependent_template_arg_p (tree arg)
25400 {
25401 if (!processing_template_decl)
25402 return false;
25403
25404 /* Assume a template argument that was wrongly written by the user
25405 is dependent. This is consistent with what
25406 any_dependent_template_arguments_p [that calls this function]
25407 does. */
25408 if (!arg || arg == error_mark_node)
25409 return true;
25410
25411 if (TREE_CODE (arg) == ARGUMENT_PACK_SELECT)
25412 arg = argument_pack_select_arg (arg);
25413
25414 if (TREE_CODE (arg) == TEMPLATE_TEMPLATE_PARM)
25415 return true;
25416 if (TREE_CODE (arg) == TEMPLATE_DECL)
25417 {
25418 if (DECL_TEMPLATE_PARM_P (arg))
25419 return true;
25420 /* A member template of a dependent class is not necessarily
25421 type-dependent, but it is a dependent template argument because it
25422 will be a member of an unknown specialization to that template. */
25423 tree scope = CP_DECL_CONTEXT (arg);
25424 return TYPE_P (scope) && dependent_type_p (scope);
25425 }
25426 else if (ARGUMENT_PACK_P (arg))
25427 {
25428 tree args = ARGUMENT_PACK_ARGS (arg);
25429 int i, len = TREE_VEC_LENGTH (args);
25430 for (i = 0; i < len; ++i)
25431 {
25432 if (dependent_template_arg_p (TREE_VEC_ELT (args, i)))
25433 return true;
25434 }
25435
25436 return false;
25437 }
25438 else if (TYPE_P (arg))
25439 return dependent_type_p (arg);
25440 else
25441 return (type_dependent_expression_p (arg)
25442 || value_dependent_expression_p (arg));
25443 }
25444
25445 /* Returns true if ARGS (a collection of template arguments) contains
25446 any types that require structural equality testing. */
25447
25448 bool
25449 any_template_arguments_need_structural_equality_p (tree args)
25450 {
25451 int i;
25452 int j;
25453
25454 if (!args)
25455 return false;
25456 if (args == error_mark_node)
25457 return true;
25458
25459 for (i = 0; i < TMPL_ARGS_DEPTH (args); ++i)
25460 {
25461 tree level = TMPL_ARGS_LEVEL (args, i + 1);
25462 for (j = 0; j < TREE_VEC_LENGTH (level); ++j)
25463 {
25464 tree arg = TREE_VEC_ELT (level, j);
25465 tree packed_args = NULL_TREE;
25466 int k, len = 1;
25467
25468 if (ARGUMENT_PACK_P (arg))
25469 {
25470 /* Look inside the argument pack. */
25471 packed_args = ARGUMENT_PACK_ARGS (arg);
25472 len = TREE_VEC_LENGTH (packed_args);
25473 }
25474
25475 for (k = 0; k < len; ++k)
25476 {
25477 if (packed_args)
25478 arg = TREE_VEC_ELT (packed_args, k);
25479
25480 if (error_operand_p (arg))
25481 return true;
25482 else if (TREE_CODE (arg) == TEMPLATE_DECL)
25483 continue;
25484 else if (TYPE_P (arg) && TYPE_STRUCTURAL_EQUALITY_P (arg))
25485 return true;
25486 else if (!TYPE_P (arg) && TREE_TYPE (arg)
25487 && TYPE_STRUCTURAL_EQUALITY_P (TREE_TYPE (arg)))
25488 return true;
25489 }
25490 }
25491 }
25492
25493 return false;
25494 }
25495
25496 /* Returns true if ARGS (a collection of template arguments) contains
25497 any dependent arguments. */
25498
25499 bool
25500 any_dependent_template_arguments_p (const_tree args)
25501 {
25502 int i;
25503 int j;
25504
25505 if (!args)
25506 return false;
25507 if (args == error_mark_node)
25508 return true;
25509
25510 for (i = 0; i < TMPL_ARGS_DEPTH (args); ++i)
25511 {
25512 const_tree level = TMPL_ARGS_LEVEL (args, i + 1);
25513 for (j = 0; j < TREE_VEC_LENGTH (level); ++j)
25514 if (dependent_template_arg_p (TREE_VEC_ELT (level, j)))
25515 return true;
25516 }
25517
25518 return false;
25519 }
25520
25521 /* Returns true if ARGS contains any errors. */
25522
25523 bool
25524 any_erroneous_template_args_p (const_tree args)
25525 {
25526 int i;
25527 int j;
25528
25529 if (args == error_mark_node)
25530 return true;
25531
25532 if (args && TREE_CODE (args) != TREE_VEC)
25533 {
25534 if (tree ti = get_template_info (args))
25535 args = TI_ARGS (ti);
25536 else
25537 args = NULL_TREE;
25538 }
25539
25540 if (!args)
25541 return false;
25542
25543 for (i = 0; i < TMPL_ARGS_DEPTH (args); ++i)
25544 {
25545 const_tree level = TMPL_ARGS_LEVEL (args, i + 1);
25546 for (j = 0; j < TREE_VEC_LENGTH (level); ++j)
25547 if (error_operand_p (TREE_VEC_ELT (level, j)))
25548 return true;
25549 }
25550
25551 return false;
25552 }
25553
25554 /* Returns TRUE if the template TMPL is type-dependent. */
25555
25556 bool
25557 dependent_template_p (tree tmpl)
25558 {
25559 if (TREE_CODE (tmpl) == OVERLOAD)
25560 {
25561 for (lkp_iterator iter (tmpl); iter; ++iter)
25562 if (dependent_template_p (*iter))
25563 return true;
25564 return false;
25565 }
25566
25567 /* Template template parameters are dependent. */
25568 if (DECL_TEMPLATE_TEMPLATE_PARM_P (tmpl)
25569 || TREE_CODE (tmpl) == TEMPLATE_TEMPLATE_PARM)
25570 return true;
25571 /* So are names that have not been looked up. */
25572 if (TREE_CODE (tmpl) == SCOPE_REF || identifier_p (tmpl))
25573 return true;
25574 return false;
25575 }
25576
25577 /* Returns TRUE if the specialization TMPL<ARGS> is dependent. */
25578
25579 bool
25580 dependent_template_id_p (tree tmpl, tree args)
25581 {
25582 return (dependent_template_p (tmpl)
25583 || any_dependent_template_arguments_p (args));
25584 }
25585
25586 /* Returns TRUE if OMP_FOR with DECLV, INITV, CONDV and INCRV vectors
25587 are dependent. */
25588
25589 bool
25590 dependent_omp_for_p (tree declv, tree initv, tree condv, tree incrv)
25591 {
25592 int i;
25593
25594 if (!processing_template_decl)
25595 return false;
25596
25597 for (i = 0; i < TREE_VEC_LENGTH (declv); i++)
25598 {
25599 tree decl = TREE_VEC_ELT (declv, i);
25600 tree init = TREE_VEC_ELT (initv, i);
25601 tree cond = TREE_VEC_ELT (condv, i);
25602 tree incr = TREE_VEC_ELT (incrv, i);
25603
25604 if (type_dependent_expression_p (decl)
25605 || TREE_CODE (decl) == SCOPE_REF)
25606 return true;
25607
25608 if (init && type_dependent_expression_p (init))
25609 return true;
25610
25611 if (type_dependent_expression_p (cond))
25612 return true;
25613
25614 if (COMPARISON_CLASS_P (cond)
25615 && (type_dependent_expression_p (TREE_OPERAND (cond, 0))
25616 || type_dependent_expression_p (TREE_OPERAND (cond, 1))))
25617 return true;
25618
25619 if (TREE_CODE (incr) == MODOP_EXPR)
25620 {
25621 if (type_dependent_expression_p (TREE_OPERAND (incr, 0))
25622 || type_dependent_expression_p (TREE_OPERAND (incr, 2)))
25623 return true;
25624 }
25625 else if (type_dependent_expression_p (incr))
25626 return true;
25627 else if (TREE_CODE (incr) == MODIFY_EXPR)
25628 {
25629 if (type_dependent_expression_p (TREE_OPERAND (incr, 0)))
25630 return true;
25631 else if (BINARY_CLASS_P (TREE_OPERAND (incr, 1)))
25632 {
25633 tree t = TREE_OPERAND (incr, 1);
25634 if (type_dependent_expression_p (TREE_OPERAND (t, 0))
25635 || type_dependent_expression_p (TREE_OPERAND (t, 1)))
25636 return true;
25637 }
25638 }
25639 }
25640
25641 return false;
25642 }
25643
25644 /* TYPE is a TYPENAME_TYPE. Returns the ordinary TYPE to which the
25645 TYPENAME_TYPE corresponds. Returns the original TYPENAME_TYPE if
25646 no such TYPE can be found. Note that this function peers inside
25647 uninstantiated templates and therefore should be used only in
25648 extremely limited situations. ONLY_CURRENT_P restricts this
25649 peering to the currently open classes hierarchy (which is required
25650 when comparing types). */
25651
25652 tree
25653 resolve_typename_type (tree type, bool only_current_p)
25654 {
25655 tree scope;
25656 tree name;
25657 tree decl;
25658 int quals;
25659 tree pushed_scope;
25660 tree result;
25661
25662 gcc_assert (TREE_CODE (type) == TYPENAME_TYPE);
25663
25664 scope = TYPE_CONTEXT (type);
25665 /* We shouldn't have built a TYPENAME_TYPE with a non-dependent scope. */
25666 gcc_checking_assert (uses_template_parms (scope));
25667
25668 /* Usually the non-qualified identifier of a TYPENAME_TYPE is
25669 TYPE_IDENTIFIER (type). But when 'type' is a typedef variant of
25670 a TYPENAME_TYPE node, then TYPE_NAME (type) is set to the TYPE_DECL representing
25671 the typedef. In that case TYPE_IDENTIFIER (type) is not the non-qualified
25672 identifier of the TYPENAME_TYPE anymore.
25673 So by getting the TYPE_IDENTIFIER of the _main declaration_ of the
25674 TYPENAME_TYPE instead, we avoid messing up with a possible
25675 typedef variant case. */
25676 name = TYPE_IDENTIFIER (TYPE_MAIN_VARIANT (type));
25677
25678 /* If the SCOPE is itself a TYPENAME_TYPE, then we need to resolve
25679 it first before we can figure out what NAME refers to. */
25680 if (TREE_CODE (scope) == TYPENAME_TYPE)
25681 {
25682 if (TYPENAME_IS_RESOLVING_P (scope))
25683 /* Given a class template A with a dependent base with nested type C,
25684 typedef typename A::C::C C will land us here, as trying to resolve
25685 the initial A::C leads to the local C typedef, which leads back to
25686 A::C::C. So we break the recursion now. */
25687 return type;
25688 else
25689 scope = resolve_typename_type (scope, only_current_p);
25690 }
25691 /* If we don't know what SCOPE refers to, then we cannot resolve the
25692 TYPENAME_TYPE. */
25693 if (!CLASS_TYPE_P (scope))
25694 return type;
25695 /* If this is a typedef, we don't want to look inside (c++/11987). */
25696 if (typedef_variant_p (type))
25697 return type;
25698 /* If SCOPE isn't the template itself, it will not have a valid
25699 TYPE_FIELDS list. */
25700 if (same_type_p (scope, CLASSTYPE_PRIMARY_TEMPLATE_TYPE (scope)))
25701 /* scope is either the template itself or a compatible instantiation
25702 like X<T>, so look up the name in the original template. */
25703 scope = CLASSTYPE_PRIMARY_TEMPLATE_TYPE (scope);
25704 /* If scope has no fields, it can't be a current instantiation. Check this
25705 before currently_open_class to avoid infinite recursion (71515). */
25706 if (!TYPE_FIELDS (scope))
25707 return type;
25708 /* If the SCOPE is not the current instantiation, there's no reason
25709 to look inside it. */
25710 if (only_current_p && !currently_open_class (scope))
25711 return type;
25712 /* Enter the SCOPE so that name lookup will be resolved as if we
25713 were in the class definition. In particular, SCOPE will no
25714 longer be considered a dependent type. */
25715 pushed_scope = push_scope (scope);
25716 /* Look up the declaration. */
25717 decl = lookup_member (scope, name, /*protect=*/0, /*want_type=*/true,
25718 tf_warning_or_error);
25719
25720 result = NULL_TREE;
25721
25722 /* For a TYPENAME_TYPE like "typename X::template Y<T>", we want to
25723 find a TEMPLATE_DECL. Otherwise, we want to find a TYPE_DECL. */
25724 tree fullname = TYPENAME_TYPE_FULLNAME (type);
25725 if (!decl)
25726 /*nop*/;
25727 else if (identifier_p (fullname)
25728 && TREE_CODE (decl) == TYPE_DECL)
25729 {
25730 result = TREE_TYPE (decl);
25731 if (result == error_mark_node)
25732 result = NULL_TREE;
25733 }
25734 else if (TREE_CODE (fullname) == TEMPLATE_ID_EXPR
25735 && DECL_CLASS_TEMPLATE_P (decl))
25736 {
25737 /* Obtain the template and the arguments. */
25738 tree tmpl = TREE_OPERAND (fullname, 0);
25739 if (TREE_CODE (tmpl) == IDENTIFIER_NODE)
25740 {
25741 /* We get here with a plain identifier because a previous tentative
25742 parse of the nested-name-specifier as part of a ptr-operator saw
25743 ::template X<A>. The use of ::template is necessary in a
25744 ptr-operator, but wrong in a declarator-id.
25745
25746 [temp.names]: In a qualified-id of a declarator-id, the keyword
25747 template shall not appear at the top level. */
25748 pedwarn (EXPR_LOC_OR_LOC (fullname, input_location), OPT_Wpedantic,
25749 "keyword %<template%> not allowed in declarator-id");
25750 tmpl = decl;
25751 }
25752 tree args = TREE_OPERAND (fullname, 1);
25753 /* Instantiate the template. */
25754 result = lookup_template_class (tmpl, args, NULL_TREE, NULL_TREE,
25755 /*entering_scope=*/true,
25756 tf_error | tf_user);
25757 if (result == error_mark_node)
25758 result = NULL_TREE;
25759 }
25760
25761 /* Leave the SCOPE. */
25762 if (pushed_scope)
25763 pop_scope (pushed_scope);
25764
25765 /* If we failed to resolve it, return the original typename. */
25766 if (!result)
25767 return type;
25768
25769 /* If lookup found a typename type, resolve that too. */
25770 if (TREE_CODE (result) == TYPENAME_TYPE && !TYPENAME_IS_RESOLVING_P (result))
25771 {
25772 /* Ill-formed programs can cause infinite recursion here, so we
25773 must catch that. */
25774 TYPENAME_IS_RESOLVING_P (result) = 1;
25775 result = resolve_typename_type (result, only_current_p);
25776 TYPENAME_IS_RESOLVING_P (result) = 0;
25777 }
25778
25779 /* Qualify the resulting type. */
25780 quals = cp_type_quals (type);
25781 if (quals)
25782 result = cp_build_qualified_type (result, cp_type_quals (result) | quals);
25783
25784 return result;
25785 }
25786
25787 /* EXPR is an expression which is not type-dependent. Return a proxy
25788 for EXPR that can be used to compute the types of larger
25789 expressions containing EXPR. */
25790
25791 tree
25792 build_non_dependent_expr (tree expr)
25793 {
25794 tree orig_expr = expr;
25795 tree inner_expr;
25796
25797 /* When checking, try to get a constant value for all non-dependent
25798 expressions in order to expose bugs in *_dependent_expression_p
25799 and constexpr. This can affect code generation, see PR70704, so
25800 only do this for -fchecking=2. */
25801 if (flag_checking > 1
25802 && cxx_dialect >= cxx11
25803 /* Don't do this during nsdmi parsing as it can lead to
25804 unexpected recursive instantiations. */
25805 && !parsing_nsdmi ()
25806 /* Don't do this during concept expansion either and for
25807 the same reason. */
25808 && !expanding_concept ())
25809 fold_non_dependent_expr (expr);
25810
25811 STRIP_ANY_LOCATION_WRAPPER (expr);
25812
25813 /* Preserve OVERLOADs; the functions must be available to resolve
25814 types. */
25815 inner_expr = expr;
25816 if (TREE_CODE (inner_expr) == STMT_EXPR)
25817 inner_expr = stmt_expr_value_expr (inner_expr);
25818 if (TREE_CODE (inner_expr) == ADDR_EXPR)
25819 inner_expr = TREE_OPERAND (inner_expr, 0);
25820 if (TREE_CODE (inner_expr) == COMPONENT_REF)
25821 inner_expr = TREE_OPERAND (inner_expr, 1);
25822 if (is_overloaded_fn (inner_expr)
25823 || TREE_CODE (inner_expr) == OFFSET_REF)
25824 return orig_expr;
25825 /* There is no need to return a proxy for a variable. */
25826 if (VAR_P (expr))
25827 return orig_expr;
25828 /* Preserve string constants; conversions from string constants to
25829 "char *" are allowed, even though normally a "const char *"
25830 cannot be used to initialize a "char *". */
25831 if (TREE_CODE (expr) == STRING_CST)
25832 return orig_expr;
25833 /* Preserve void and arithmetic constants, as an optimization -- there is no
25834 reason to create a new node. */
25835 if (TREE_CODE (expr) == VOID_CST
25836 || TREE_CODE (expr) == INTEGER_CST
25837 || TREE_CODE (expr) == REAL_CST)
25838 return orig_expr;
25839 /* Preserve THROW_EXPRs -- all throw-expressions have type "void".
25840 There is at least one place where we want to know that a
25841 particular expression is a throw-expression: when checking a ?:
25842 expression, there are special rules if the second or third
25843 argument is a throw-expression. */
25844 if (TREE_CODE (expr) == THROW_EXPR)
25845 return orig_expr;
25846
25847 /* Don't wrap an initializer list, we need to be able to look inside. */
25848 if (BRACE_ENCLOSED_INITIALIZER_P (expr))
25849 return orig_expr;
25850
25851 /* Don't wrap a dummy object, we need to be able to test for it. */
25852 if (is_dummy_object (expr))
25853 return orig_expr;
25854
25855 if (TREE_CODE (expr) == COND_EXPR)
25856 return build3 (COND_EXPR,
25857 TREE_TYPE (expr),
25858 TREE_OPERAND (expr, 0),
25859 (TREE_OPERAND (expr, 1)
25860 ? build_non_dependent_expr (TREE_OPERAND (expr, 1))
25861 : build_non_dependent_expr (TREE_OPERAND (expr, 0))),
25862 build_non_dependent_expr (TREE_OPERAND (expr, 2)));
25863 if (TREE_CODE (expr) == COMPOUND_EXPR
25864 && !COMPOUND_EXPR_OVERLOADED (expr))
25865 return build2 (COMPOUND_EXPR,
25866 TREE_TYPE (expr),
25867 TREE_OPERAND (expr, 0),
25868 build_non_dependent_expr (TREE_OPERAND (expr, 1)));
25869
25870 /* If the type is unknown, it can't really be non-dependent */
25871 gcc_assert (TREE_TYPE (expr) != unknown_type_node);
25872
25873 /* Otherwise, build a NON_DEPENDENT_EXPR. */
25874 return build1_loc (EXPR_LOCATION (orig_expr), NON_DEPENDENT_EXPR,
25875 TREE_TYPE (expr), expr);
25876 }
25877
25878 /* ARGS is a vector of expressions as arguments to a function call.
25879 Replace the arguments with equivalent non-dependent expressions.
25880 This modifies ARGS in place. */
25881
25882 void
25883 make_args_non_dependent (vec<tree, va_gc> *args)
25884 {
25885 unsigned int ix;
25886 tree arg;
25887
25888 FOR_EACH_VEC_SAFE_ELT (args, ix, arg)
25889 {
25890 tree newarg = build_non_dependent_expr (arg);
25891 if (newarg != arg)
25892 (*args)[ix] = newarg;
25893 }
25894 }
25895
25896 /* Returns a type which represents 'auto' or 'decltype(auto)'. We use a
25897 TEMPLATE_TYPE_PARM with a level one deeper than the actual template
25898 parms. If set_canonical is true, we set TYPE_CANONICAL on it. */
25899
25900 static tree
25901 make_auto_1 (tree name, bool set_canonical)
25902 {
25903 tree au = cxx_make_type (TEMPLATE_TYPE_PARM);
25904 TYPE_NAME (au) = build_decl (input_location,
25905 TYPE_DECL, name, au);
25906 TYPE_STUB_DECL (au) = TYPE_NAME (au);
25907 TEMPLATE_TYPE_PARM_INDEX (au) = build_template_parm_index
25908 (0, processing_template_decl + 1, processing_template_decl + 1,
25909 TYPE_NAME (au), NULL_TREE);
25910 if (set_canonical)
25911 TYPE_CANONICAL (au) = canonical_type_parameter (au);
25912 DECL_ARTIFICIAL (TYPE_NAME (au)) = 1;
25913 SET_DECL_TEMPLATE_PARM_P (TYPE_NAME (au));
25914
25915 return au;
25916 }
25917
25918 tree
25919 make_decltype_auto (void)
25920 {
25921 return make_auto_1 (decltype_auto_identifier, true);
25922 }
25923
25924 tree
25925 make_auto (void)
25926 {
25927 return make_auto_1 (auto_identifier, true);
25928 }
25929
25930 /* Return a C++17 deduction placeholder for class template TMPL. */
25931
25932 tree
25933 make_template_placeholder (tree tmpl)
25934 {
25935 tree t = make_auto_1 (DECL_NAME (tmpl), true);
25936 CLASS_PLACEHOLDER_TEMPLATE (t) = tmpl;
25937 return t;
25938 }
25939
25940 /* True iff T is a C++17 class template deduction placeholder. */
25941
25942 bool
25943 template_placeholder_p (tree t)
25944 {
25945 return is_auto (t) && CLASS_PLACEHOLDER_TEMPLATE (t);
25946 }
25947
25948 /* Make a "constrained auto" type-specifier. This is an
25949 auto type with constraints that must be associated after
25950 deduction. The constraint is formed from the given
25951 CONC and its optional sequence of arguments, which are
25952 non-null if written as partial-concept-id. */
25953
25954 tree
25955 make_constrained_auto (tree con, tree args)
25956 {
25957 tree type = make_auto_1 (auto_identifier, false);
25958
25959 /* Build the constraint. */
25960 tree tmpl = DECL_TI_TEMPLATE (con);
25961 tree expr = VAR_P (con) ? tmpl : ovl_make (tmpl);
25962 expr = build_concept_check (expr, type, args);
25963
25964 tree constr = normalize_expression (expr);
25965 PLACEHOLDER_TYPE_CONSTRAINTS (type) = constr;
25966
25967 /* Our canonical type depends on the constraint. */
25968 TYPE_CANONICAL (type) = canonical_type_parameter (type);
25969
25970 /* Attach the constraint to the type declaration. */
25971 tree decl = TYPE_NAME (type);
25972 return decl;
25973 }
25974
25975 /* Given type ARG, return std::initializer_list<ARG>. */
25976
25977 static tree
25978 listify (tree arg)
25979 {
25980 tree std_init_list = get_namespace_binding (std_node, init_list_identifier);
25981
25982 if (!std_init_list || !DECL_CLASS_TEMPLATE_P (std_init_list))
25983 {
25984 gcc_rich_location richloc (input_location);
25985 maybe_add_include_fixit (&richloc, "<initializer_list>");
25986 error_at (&richloc,
25987 "deducing from brace-enclosed initializer list"
25988 " requires %<#include <initializer_list>%>");
25989
25990 return error_mark_node;
25991 }
25992 tree argvec = make_tree_vec (1);
25993 TREE_VEC_ELT (argvec, 0) = arg;
25994
25995 return lookup_template_class (std_init_list, argvec, NULL_TREE,
25996 NULL_TREE, 0, tf_warning_or_error);
25997 }
25998
25999 /* Replace auto in TYPE with std::initializer_list<auto>. */
26000
26001 static tree
26002 listify_autos (tree type, tree auto_node)
26003 {
26004 tree init_auto = listify (auto_node);
26005 tree argvec = make_tree_vec (1);
26006 TREE_VEC_ELT (argvec, 0) = init_auto;
26007 if (processing_template_decl)
26008 argvec = add_to_template_args (current_template_args (), argvec);
26009 return tsubst (type, argvec, tf_warning_or_error, NULL_TREE);
26010 }
26011
26012 /* Hash traits for hashing possibly constrained 'auto'
26013 TEMPLATE_TYPE_PARMs for use by do_auto_deduction. */
26014
26015 struct auto_hash : default_hash_traits<tree>
26016 {
26017 static inline hashval_t hash (tree);
26018 static inline bool equal (tree, tree);
26019 };
26020
26021 /* Hash the 'auto' T. */
26022
26023 inline hashval_t
26024 auto_hash::hash (tree t)
26025 {
26026 if (tree c = PLACEHOLDER_TYPE_CONSTRAINTS (t))
26027 /* Matching constrained-type-specifiers denote the same template
26028 parameter, so hash the constraint. */
26029 return hash_placeholder_constraint (c);
26030 else
26031 /* But unconstrained autos are all separate, so just hash the pointer. */
26032 return iterative_hash_object (t, 0);
26033 }
26034
26035 /* Compare two 'auto's. */
26036
26037 inline bool
26038 auto_hash::equal (tree t1, tree t2)
26039 {
26040 if (t1 == t2)
26041 return true;
26042
26043 tree c1 = PLACEHOLDER_TYPE_CONSTRAINTS (t1);
26044 tree c2 = PLACEHOLDER_TYPE_CONSTRAINTS (t2);
26045
26046 /* Two unconstrained autos are distinct. */
26047 if (!c1 || !c2)
26048 return false;
26049
26050 return equivalent_placeholder_constraints (c1, c2);
26051 }
26052
26053 /* for_each_template_parm callback for extract_autos: if t is a (possibly
26054 constrained) auto, add it to the vector. */
26055
26056 static int
26057 extract_autos_r (tree t, void *data)
26058 {
26059 hash_table<auto_hash> &hash = *(hash_table<auto_hash>*)data;
26060 if (is_auto (t))
26061 {
26062 /* All the autos were built with index 0; fix that up now. */
26063 tree *p = hash.find_slot (t, INSERT);
26064 unsigned idx;
26065 if (*p)
26066 /* If this is a repeated constrained-type-specifier, use the index we
26067 chose before. */
26068 idx = TEMPLATE_PARM_IDX (TEMPLATE_TYPE_PARM_INDEX (*p));
26069 else
26070 {
26071 /* Otherwise this is new, so use the current count. */
26072 *p = t;
26073 idx = hash.elements () - 1;
26074 }
26075 TEMPLATE_PARM_IDX (TEMPLATE_TYPE_PARM_INDEX (t)) = idx;
26076 }
26077
26078 /* Always keep walking. */
26079 return 0;
26080 }
26081
26082 /* Return a TREE_VEC of the 'auto's used in type under the Concepts TS, which
26083 says they can appear anywhere in the type. */
26084
26085 static tree
26086 extract_autos (tree type)
26087 {
26088 hash_set<tree> visited;
26089 hash_table<auto_hash> hash (2);
26090
26091 for_each_template_parm (type, extract_autos_r, &hash, &visited, true);
26092
26093 tree tree_vec = make_tree_vec (hash.elements());
26094 for (hash_table<auto_hash>::iterator iter = hash.begin();
26095 iter != hash.end(); ++iter)
26096 {
26097 tree elt = *iter;
26098 unsigned i = TEMPLATE_PARM_IDX (TEMPLATE_TYPE_PARM_INDEX (elt));
26099 TREE_VEC_ELT (tree_vec, i)
26100 = build_tree_list (NULL_TREE, TYPE_NAME (elt));
26101 }
26102
26103 return tree_vec;
26104 }
26105
26106 /* The stem for deduction guide names. */
26107 const char *const dguide_base = "__dguide_";
26108
26109 /* Return the name for a deduction guide for class template TMPL. */
26110
26111 tree
26112 dguide_name (tree tmpl)
26113 {
26114 tree type = (TYPE_P (tmpl) ? tmpl : TREE_TYPE (tmpl));
26115 tree tname = TYPE_IDENTIFIER (type);
26116 char *buf = (char *) alloca (1 + strlen (dguide_base)
26117 + IDENTIFIER_LENGTH (tname));
26118 memcpy (buf, dguide_base, strlen (dguide_base));
26119 memcpy (buf + strlen (dguide_base), IDENTIFIER_POINTER (tname),
26120 IDENTIFIER_LENGTH (tname) + 1);
26121 tree dname = get_identifier (buf);
26122 TREE_TYPE (dname) = type;
26123 return dname;
26124 }
26125
26126 /* True if NAME is the name of a deduction guide. */
26127
26128 bool
26129 dguide_name_p (tree name)
26130 {
26131 return (TREE_CODE (name) == IDENTIFIER_NODE
26132 && TREE_TYPE (name)
26133 && !strncmp (IDENTIFIER_POINTER (name), dguide_base,
26134 strlen (dguide_base)));
26135 }
26136
26137 /* True if FN is a deduction guide. */
26138
26139 bool
26140 deduction_guide_p (const_tree fn)
26141 {
26142 if (DECL_P (fn))
26143 if (tree name = DECL_NAME (fn))
26144 return dguide_name_p (name);
26145 return false;
26146 }
26147
26148 /* True if FN is the copy deduction guide, i.e. A(A)->A. */
26149
26150 bool
26151 copy_guide_p (const_tree fn)
26152 {
26153 gcc_assert (deduction_guide_p (fn));
26154 if (!DECL_ARTIFICIAL (fn))
26155 return false;
26156 tree parms = FUNCTION_FIRST_USER_PARMTYPE (DECL_TI_TEMPLATE (fn));
26157 return (TREE_CHAIN (parms) == void_list_node
26158 && same_type_p (TREE_VALUE (parms), TREE_TYPE (DECL_NAME (fn))));
26159 }
26160
26161 /* True if FN is a guide generated from a constructor template. */
26162
26163 bool
26164 template_guide_p (const_tree fn)
26165 {
26166 gcc_assert (deduction_guide_p (fn));
26167 if (!DECL_ARTIFICIAL (fn))
26168 return false;
26169 tree tmpl = DECL_TI_TEMPLATE (fn);
26170 if (tree org = DECL_ABSTRACT_ORIGIN (tmpl))
26171 return PRIMARY_TEMPLATE_P (org);
26172 return false;
26173 }
26174
26175 /* OLDDECL is a _DECL for a template parameter. Return a similar parameter at
26176 LEVEL:INDEX, using tsubst_args and complain for substitution into non-type
26177 template parameter types. Note that the handling of template template
26178 parameters relies on current_template_parms being set appropriately for the
26179 new template. */
26180
26181 static tree
26182 rewrite_template_parm (tree olddecl, unsigned index, unsigned level,
26183 tree tsubst_args, tsubst_flags_t complain)
26184 {
26185 if (olddecl == error_mark_node)
26186 return error_mark_node;
26187
26188 tree oldidx = get_template_parm_index (olddecl);
26189
26190 tree newtype;
26191 if (TREE_CODE (olddecl) == TYPE_DECL
26192 || TREE_CODE (olddecl) == TEMPLATE_DECL)
26193 {
26194 tree oldtype = TREE_TYPE (olddecl);
26195 newtype = cxx_make_type (TREE_CODE (oldtype));
26196 TYPE_MAIN_VARIANT (newtype) = newtype;
26197 if (TREE_CODE (oldtype) == TEMPLATE_TYPE_PARM)
26198 TEMPLATE_TYPE_PARM_FOR_CLASS (newtype)
26199 = TEMPLATE_TYPE_PARM_FOR_CLASS (oldtype);
26200 }
26201 else
26202 {
26203 newtype = TREE_TYPE (olddecl);
26204 if (type_uses_auto (newtype))
26205 {
26206 // Substitute once to fix references to other template parameters.
26207 newtype = tsubst (newtype, tsubst_args,
26208 complain|tf_partial, NULL_TREE);
26209 // Now substitute again to reduce the level of the auto.
26210 newtype = tsubst (newtype, current_template_args (),
26211 complain, NULL_TREE);
26212 }
26213 else
26214 newtype = tsubst (newtype, tsubst_args,
26215 complain, NULL_TREE);
26216 }
26217
26218 tree newdecl
26219 = build_decl (DECL_SOURCE_LOCATION (olddecl), TREE_CODE (olddecl),
26220 DECL_NAME (olddecl), newtype);
26221 SET_DECL_TEMPLATE_PARM_P (newdecl);
26222
26223 tree newidx;
26224 if (TREE_CODE (olddecl) == TYPE_DECL
26225 || TREE_CODE (olddecl) == TEMPLATE_DECL)
26226 {
26227 newidx = TEMPLATE_TYPE_PARM_INDEX (newtype)
26228 = build_template_parm_index (index, level, level,
26229 newdecl, newtype);
26230 TEMPLATE_PARM_PARAMETER_PACK (newidx)
26231 = TEMPLATE_PARM_PARAMETER_PACK (oldidx);
26232 TYPE_STUB_DECL (newtype) = TYPE_NAME (newtype) = newdecl;
26233 TYPE_CANONICAL (newtype) = canonical_type_parameter (newtype);
26234
26235 if (TREE_CODE (olddecl) == TEMPLATE_DECL)
26236 {
26237 DECL_TEMPLATE_RESULT (newdecl)
26238 = build_decl (DECL_SOURCE_LOCATION (olddecl), TYPE_DECL,
26239 DECL_NAME (olddecl), newtype);
26240 DECL_ARTIFICIAL (DECL_TEMPLATE_RESULT (newdecl)) = true;
26241 // First create a copy (ttargs) of tsubst_args with an
26242 // additional level for the template template parameter's own
26243 // template parameters (ttparms).
26244 tree ttparms = (INNERMOST_TEMPLATE_PARMS
26245 (DECL_TEMPLATE_PARMS (olddecl)));
26246 const int depth = TMPL_ARGS_DEPTH (tsubst_args);
26247 tree ttargs = make_tree_vec (depth + 1);
26248 for (int i = 0; i < depth; ++i)
26249 TREE_VEC_ELT (ttargs, i) = TREE_VEC_ELT (tsubst_args, i);
26250 TREE_VEC_ELT (ttargs, depth)
26251 = template_parms_level_to_args (ttparms);
26252 // Substitute ttargs into ttparms to fix references to
26253 // other template parameters.
26254 ttparms = tsubst_template_parms_level (ttparms, ttargs,
26255 complain|tf_partial);
26256 // Now substitute again with args based on tparms, to reduce
26257 // the level of the ttparms.
26258 ttargs = current_template_args ();
26259 ttparms = tsubst_template_parms_level (ttparms, ttargs,
26260 complain);
26261 // Finally, tack the adjusted parms onto tparms.
26262 ttparms = tree_cons (size_int (depth), ttparms,
26263 current_template_parms);
26264 DECL_TEMPLATE_PARMS (newdecl) = ttparms;
26265 }
26266 }
26267 else
26268 {
26269 tree oldconst = TEMPLATE_PARM_DECL (oldidx);
26270 tree newconst
26271 = build_decl (DECL_SOURCE_LOCATION (oldconst),
26272 TREE_CODE (oldconst),
26273 DECL_NAME (oldconst), newtype);
26274 TREE_CONSTANT (newconst) = TREE_CONSTANT (newdecl)
26275 = TREE_READONLY (newconst) = TREE_READONLY (newdecl) = true;
26276 SET_DECL_TEMPLATE_PARM_P (newconst);
26277 newidx = build_template_parm_index (index, level, level,
26278 newconst, newtype);
26279 TEMPLATE_PARM_PARAMETER_PACK (newidx)
26280 = TEMPLATE_PARM_PARAMETER_PACK (oldidx);
26281 DECL_INITIAL (newdecl) = DECL_INITIAL (newconst) = newidx;
26282 }
26283
26284 return newdecl;
26285 }
26286
26287 /* Returns a C++17 class deduction guide template based on the constructor
26288 CTOR. As a special case, CTOR can be a RECORD_TYPE for an implicit default
26289 guide, or REFERENCE_TYPE for an implicit copy/move guide. */
26290
26291 static tree
26292 build_deduction_guide (tree ctor, tree outer_args, tsubst_flags_t complain)
26293 {
26294 tree type, tparms, targs, fparms, fargs, ci;
26295 bool memtmpl = false;
26296 bool explicit_p;
26297 location_t loc;
26298 tree fn_tmpl = NULL_TREE;
26299
26300 if (TYPE_P (ctor))
26301 {
26302 type = ctor;
26303 bool copy_p = TYPE_REF_P (type);
26304 if (copy_p)
26305 {
26306 type = TREE_TYPE (type);
26307 fparms = tree_cons (NULL_TREE, type, void_list_node);
26308 }
26309 else
26310 fparms = void_list_node;
26311
26312 tree ctmpl = CLASSTYPE_TI_TEMPLATE (type);
26313 tparms = DECL_TEMPLATE_PARMS (ctmpl);
26314 targs = CLASSTYPE_TI_ARGS (type);
26315 ci = NULL_TREE;
26316 fargs = NULL_TREE;
26317 loc = DECL_SOURCE_LOCATION (ctmpl);
26318 explicit_p = false;
26319 }
26320 else
26321 {
26322 ++processing_template_decl;
26323 bool ok = true;
26324
26325 fn_tmpl
26326 = (TREE_CODE (ctor) == TEMPLATE_DECL ? ctor
26327 : DECL_TI_TEMPLATE (ctor));
26328 if (outer_args)
26329 fn_tmpl = tsubst (fn_tmpl, outer_args, complain, ctor);
26330 ctor = DECL_TEMPLATE_RESULT (fn_tmpl);
26331
26332 type = DECL_CONTEXT (ctor);
26333
26334 tparms = DECL_TEMPLATE_PARMS (fn_tmpl);
26335 /* If type is a member class template, DECL_TI_ARGS (ctor) will have
26336 fully specialized args for the enclosing class. Strip those off, as
26337 the deduction guide won't have those template parameters. */
26338 targs = get_innermost_template_args (DECL_TI_ARGS (ctor),
26339 TMPL_PARMS_DEPTH (tparms));
26340 /* Discard the 'this' parameter. */
26341 fparms = FUNCTION_ARG_CHAIN (ctor);
26342 fargs = TREE_CHAIN (DECL_ARGUMENTS (ctor));
26343 ci = get_constraints (ctor);
26344 loc = DECL_SOURCE_LOCATION (ctor);
26345 explicit_p = DECL_NONCONVERTING_P (ctor);
26346
26347 if (PRIMARY_TEMPLATE_P (fn_tmpl))
26348 {
26349 memtmpl = true;
26350
26351 /* For a member template constructor, we need to flatten the two
26352 template parameter lists into one, and then adjust the function
26353 signature accordingly. This gets...complicated. */
26354 tree save_parms = current_template_parms;
26355
26356 /* For a member template we should have two levels of parms/args, one
26357 for the class and one for the constructor. We stripped
26358 specialized args for further enclosing classes above. */
26359 const int depth = 2;
26360 gcc_assert (TMPL_ARGS_DEPTH (targs) == depth);
26361
26362 /* Template args for translating references to the two-level template
26363 parameters into references to the one-level template parameters we
26364 are creating. */
26365 tree tsubst_args = copy_node (targs);
26366 TMPL_ARGS_LEVEL (tsubst_args, depth)
26367 = copy_node (TMPL_ARGS_LEVEL (tsubst_args, depth));
26368
26369 /* Template parms for the constructor template. */
26370 tree ftparms = TREE_VALUE (tparms);
26371 unsigned flen = TREE_VEC_LENGTH (ftparms);
26372 /* Template parms for the class template. */
26373 tparms = TREE_CHAIN (tparms);
26374 tree ctparms = TREE_VALUE (tparms);
26375 unsigned clen = TREE_VEC_LENGTH (ctparms);
26376 /* Template parms for the deduction guide start as a copy of the
26377 template parms for the class. We set current_template_parms for
26378 lookup_template_class_1. */
26379 current_template_parms = tparms = copy_node (tparms);
26380 tree new_vec = TREE_VALUE (tparms) = make_tree_vec (flen + clen);
26381 for (unsigned i = 0; i < clen; ++i)
26382 TREE_VEC_ELT (new_vec, i) = TREE_VEC_ELT (ctparms, i);
26383
26384 /* Now we need to rewrite the constructor parms to append them to the
26385 class parms. */
26386 for (unsigned i = 0; i < flen; ++i)
26387 {
26388 unsigned index = i + clen;
26389 unsigned level = 1;
26390 tree oldelt = TREE_VEC_ELT (ftparms, i);
26391 tree olddecl = TREE_VALUE (oldelt);
26392 tree newdecl = rewrite_template_parm (olddecl, index, level,
26393 tsubst_args, complain);
26394 if (newdecl == error_mark_node)
26395 ok = false;
26396 tree newdef = tsubst_template_arg (TREE_PURPOSE (oldelt),
26397 tsubst_args, complain, ctor);
26398 tree list = build_tree_list (newdef, newdecl);
26399 TEMPLATE_PARM_CONSTRAINTS (list)
26400 = tsubst_constraint_info (TEMPLATE_PARM_CONSTRAINTS (oldelt),
26401 tsubst_args, complain, ctor);
26402 TREE_VEC_ELT (new_vec, index) = list;
26403 TMPL_ARG (tsubst_args, depth, i) = template_parm_to_arg (list);
26404 }
26405
26406 /* Now we have a final set of template parms to substitute into the
26407 function signature. */
26408 targs = template_parms_to_args (tparms);
26409 fparms = tsubst_arg_types (fparms, tsubst_args, NULL_TREE,
26410 complain, ctor);
26411 fargs = tsubst (fargs, tsubst_args, complain, ctor);
26412 if (ci)
26413 ci = tsubst_constraint_info (ci, tsubst_args, complain, ctor);
26414
26415 current_template_parms = save_parms;
26416 }
26417
26418 --processing_template_decl;
26419 if (!ok)
26420 return error_mark_node;
26421 }
26422
26423 if (!memtmpl)
26424 {
26425 /* Copy the parms so we can set DECL_PRIMARY_TEMPLATE. */
26426 tparms = copy_node (tparms);
26427 INNERMOST_TEMPLATE_PARMS (tparms)
26428 = copy_node (INNERMOST_TEMPLATE_PARMS (tparms));
26429 }
26430
26431 tree fntype = build_function_type (type, fparms);
26432 tree ded_fn = build_lang_decl_loc (loc,
26433 FUNCTION_DECL,
26434 dguide_name (type), fntype);
26435 DECL_ARGUMENTS (ded_fn) = fargs;
26436 DECL_ARTIFICIAL (ded_fn) = true;
26437 DECL_NONCONVERTING_P (ded_fn) = explicit_p;
26438 tree ded_tmpl = build_template_decl (ded_fn, tparms, /*member*/false);
26439 DECL_ARTIFICIAL (ded_tmpl) = true;
26440 DECL_TEMPLATE_RESULT (ded_tmpl) = ded_fn;
26441 TREE_TYPE (ded_tmpl) = TREE_TYPE (ded_fn);
26442 DECL_TEMPLATE_INFO (ded_fn) = build_template_info (ded_tmpl, targs);
26443 DECL_PRIMARY_TEMPLATE (ded_tmpl) = ded_tmpl;
26444 if (DECL_P (ctor))
26445 DECL_ABSTRACT_ORIGIN (ded_tmpl) = fn_tmpl;
26446 if (ci)
26447 set_constraints (ded_tmpl, ci);
26448
26449 return ded_tmpl;
26450 }
26451
26452 /* Deduce template arguments for the class template placeholder PTYPE for
26453 template TMPL based on the initializer INIT, and return the resulting
26454 type. */
26455
26456 static tree
26457 do_class_deduction (tree ptype, tree tmpl, tree init, int flags,
26458 tsubst_flags_t complain)
26459 {
26460 if (!DECL_CLASS_TEMPLATE_P (tmpl))
26461 {
26462 /* We should have handled this in the caller. */
26463 if (DECL_TEMPLATE_TEMPLATE_PARM_P (tmpl))
26464 return ptype;
26465 if (complain & tf_error)
26466 error ("non-class template %qT used without template arguments", tmpl);
26467 return error_mark_node;
26468 }
26469
26470 tree type = TREE_TYPE (tmpl);
26471
26472 bool try_list_ctor = false;
26473
26474 vec<tree,va_gc> *args;
26475 if (init == NULL_TREE
26476 || TREE_CODE (init) == TREE_LIST)
26477 args = make_tree_vector_from_list (init);
26478 else if (BRACE_ENCLOSED_INITIALIZER_P (init))
26479 {
26480 try_list_ctor = TYPE_HAS_LIST_CTOR (type);
26481 if (try_list_ctor && CONSTRUCTOR_NELTS (init) == 1)
26482 {
26483 /* As an exception, the first phase in 16.3.1.7 (considering the
26484 initializer list as a single argument) is omitted if the
26485 initializer list consists of a single expression of type cv U,
26486 where U is a specialization of C or a class derived from a
26487 specialization of C. */
26488 tree elt = CONSTRUCTOR_ELT (init, 0)->value;
26489 tree etype = TREE_TYPE (elt);
26490
26491 tree tparms = INNERMOST_TEMPLATE_PARMS (DECL_TEMPLATE_PARMS (tmpl));
26492 tree targs = make_tree_vec (TREE_VEC_LENGTH (tparms));
26493 int err = unify (tparms, targs, type, etype,
26494 UNIFY_ALLOW_DERIVED, /*explain*/false);
26495 if (err == 0)
26496 try_list_ctor = false;
26497 ggc_free (targs);
26498 }
26499 if (try_list_ctor || is_std_init_list (type))
26500 args = make_tree_vector_single (init);
26501 else
26502 args = make_tree_vector_from_ctor (init);
26503 }
26504 else
26505 args = make_tree_vector_single (init);
26506
26507 tree dname = dguide_name (tmpl);
26508 tree cands = lookup_qualified_name (CP_DECL_CONTEXT (tmpl), dname,
26509 /*type*/false, /*complain*/false,
26510 /*hidden*/false);
26511 bool elided = false;
26512 if (cands == error_mark_node)
26513 cands = NULL_TREE;
26514
26515 /* Prune explicit deduction guides in copy-initialization context. */
26516 if (flags & LOOKUP_ONLYCONVERTING)
26517 {
26518 for (lkp_iterator iter (cands); !elided && iter; ++iter)
26519 if (DECL_NONCONVERTING_P (STRIP_TEMPLATE (*iter)))
26520 elided = true;
26521
26522 if (elided)
26523 {
26524 /* Found a nonconverting guide, prune the candidates. */
26525 tree pruned = NULL_TREE;
26526 for (lkp_iterator iter (cands); iter; ++iter)
26527 if (!DECL_NONCONVERTING_P (STRIP_TEMPLATE (*iter)))
26528 pruned = lookup_add (*iter, pruned);
26529
26530 cands = pruned;
26531 }
26532 }
26533
26534 tree outer_args = NULL_TREE;
26535 if (DECL_CLASS_SCOPE_P (tmpl)
26536 && CLASSTYPE_TEMPLATE_INFO (DECL_CONTEXT (tmpl)))
26537 {
26538 outer_args = CLASSTYPE_TI_ARGS (DECL_CONTEXT (tmpl));
26539 type = TREE_TYPE (most_general_template (tmpl));
26540 }
26541
26542 bool saw_ctor = false;
26543 // FIXME cache artificial deduction guides
26544 for (ovl_iterator iter (CLASSTYPE_CONSTRUCTORS (type)); iter; ++iter)
26545 {
26546 /* Skip inherited constructors. */
26547 if (iter.using_p ())
26548 continue;
26549
26550 tree guide = build_deduction_guide (*iter, outer_args, complain);
26551 if (guide == error_mark_node)
26552 return error_mark_node;
26553 if ((flags & LOOKUP_ONLYCONVERTING)
26554 && DECL_NONCONVERTING_P (STRIP_TEMPLATE (guide)))
26555 elided = true;
26556 else
26557 cands = lookup_add (guide, cands);
26558
26559 saw_ctor = true;
26560 }
26561
26562 tree call = error_mark_node;
26563
26564 /* If this is list-initialization and the class has a list constructor, first
26565 try deducing from the list as a single argument, as [over.match.list]. */
26566 tree list_cands = NULL_TREE;
26567 if (try_list_ctor && cands)
26568 for (lkp_iterator iter (cands); iter; ++iter)
26569 {
26570 tree dg = *iter;
26571 if (is_list_ctor (dg))
26572 list_cands = lookup_add (dg, list_cands);
26573 }
26574 if (list_cands)
26575 {
26576 ++cp_unevaluated_operand;
26577 call = build_new_function_call (list_cands, &args, tf_decltype);
26578 --cp_unevaluated_operand;
26579
26580 if (call == error_mark_node)
26581 {
26582 /* That didn't work, now try treating the list as a sequence of
26583 arguments. */
26584 release_tree_vector (args);
26585 args = make_tree_vector_from_ctor (init);
26586 }
26587 }
26588
26589 /* Maybe generate an implicit deduction guide. */
26590 if (call == error_mark_node && args->length () < 2)
26591 {
26592 tree gtype = NULL_TREE;
26593
26594 if (args->length () == 1)
26595 /* Generate a copy guide. */
26596 gtype = build_reference_type (type);
26597 else if (!saw_ctor)
26598 /* Generate a default guide. */
26599 gtype = type;
26600
26601 if (gtype)
26602 {
26603 tree guide = build_deduction_guide (gtype, outer_args, complain);
26604 if (guide == error_mark_node)
26605 return error_mark_node;
26606 cands = lookup_add (guide, cands);
26607 }
26608 }
26609
26610 if (elided && !cands)
26611 {
26612 error ("cannot deduce template arguments for copy-initialization"
26613 " of %qT, as it has no non-explicit deduction guides or "
26614 "user-declared constructors", type);
26615 return error_mark_node;
26616 }
26617 else if (!cands && call == error_mark_node)
26618 {
26619 error ("cannot deduce template arguments of %qT, as it has no viable "
26620 "deduction guides", type);
26621 return error_mark_node;
26622 }
26623
26624 if (call == error_mark_node)
26625 {
26626 ++cp_unevaluated_operand;
26627 call = build_new_function_call (cands, &args, tf_decltype);
26628 --cp_unevaluated_operand;
26629 }
26630
26631 if (call == error_mark_node && (complain & tf_warning_or_error))
26632 {
26633 error ("class template argument deduction failed:");
26634
26635 ++cp_unevaluated_operand;
26636 call = build_new_function_call (cands, &args, complain | tf_decltype);
26637 --cp_unevaluated_operand;
26638
26639 if (elided)
26640 inform (input_location, "explicit deduction guides not considered "
26641 "for copy-initialization");
26642 }
26643
26644 release_tree_vector (args);
26645
26646 return cp_build_qualified_type (TREE_TYPE (call), cp_type_quals (ptype));
26647 }
26648
26649 /* Replace occurrences of 'auto' in TYPE with the appropriate type deduced
26650 from INIT. AUTO_NODE is the TEMPLATE_TYPE_PARM used for 'auto' in TYPE.
26651 The CONTEXT determines the context in which auto deduction is performed
26652 and is used to control error diagnostics. FLAGS are the LOOKUP_* flags.
26653 OUTER_TARGS are used during template argument deduction
26654 (context == adc_unify) to properly substitute the result, and is ignored
26655 in other contexts.
26656
26657 For partial-concept-ids, extra args may be appended to the list of deduced
26658 template arguments prior to determining constraint satisfaction. */
26659
26660 tree
26661 do_auto_deduction (tree type, tree init, tree auto_node,
26662 tsubst_flags_t complain, auto_deduction_context context,
26663 tree outer_targs, int flags)
26664 {
26665 tree targs;
26666
26667 if (init == error_mark_node)
26668 return error_mark_node;
26669
26670 if (init && type_dependent_expression_p (init)
26671 && context != adc_unify)
26672 /* Defining a subset of type-dependent expressions that we can deduce
26673 from ahead of time isn't worth the trouble. */
26674 return type;
26675
26676 /* Similarly, we can't deduce from another undeduced decl. */
26677 if (init && undeduced_auto_decl (init))
26678 return type;
26679
26680 if (tree tmpl = CLASS_PLACEHOLDER_TEMPLATE (auto_node))
26681 /* C++17 class template argument deduction. */
26682 return do_class_deduction (type, tmpl, init, flags, complain);
26683
26684 if (init == NULL_TREE || TREE_TYPE (init) == NULL_TREE)
26685 /* Nothing we can do with this, even in deduction context. */
26686 return type;
26687
26688 /* [dcl.spec.auto]: Obtain P from T by replacing the occurrences of auto
26689 with either a new invented type template parameter U or, if the
26690 initializer is a braced-init-list (8.5.4), with
26691 std::initializer_list<U>. */
26692 if (BRACE_ENCLOSED_INITIALIZER_P (init))
26693 {
26694 if (!DIRECT_LIST_INIT_P (init))
26695 type = listify_autos (type, auto_node);
26696 else if (CONSTRUCTOR_NELTS (init) == 1)
26697 init = CONSTRUCTOR_ELT (init, 0)->value;
26698 else
26699 {
26700 if (complain & tf_warning_or_error)
26701 {
26702 if (permerror (input_location, "direct-list-initialization of "
26703 "%<auto%> requires exactly one element"))
26704 inform (input_location,
26705 "for deduction to %<std::initializer_list%>, use copy-"
26706 "list-initialization (i.e. add %<=%> before the %<{%>)");
26707 }
26708 type = listify_autos (type, auto_node);
26709 }
26710 }
26711
26712 if (type == error_mark_node)
26713 return error_mark_node;
26714
26715 init = resolve_nondeduced_context (init, complain);
26716
26717 if (context == adc_decomp_type
26718 && auto_node == type
26719 && init != error_mark_node
26720 && TREE_CODE (TREE_TYPE (init)) == ARRAY_TYPE)
26721 /* [dcl.decomp]/1 - if decomposition declaration has no ref-qualifiers
26722 and initializer has array type, deduce cv-qualified array type. */
26723 return cp_build_qualified_type_real (TREE_TYPE (init), TYPE_QUALS (type),
26724 complain);
26725 else if (AUTO_IS_DECLTYPE (auto_node))
26726 {
26727 bool id = (DECL_P (init)
26728 || ((TREE_CODE (init) == COMPONENT_REF
26729 || TREE_CODE (init) == SCOPE_REF)
26730 && !REF_PARENTHESIZED_P (init)));
26731 targs = make_tree_vec (1);
26732 TREE_VEC_ELT (targs, 0)
26733 = finish_decltype_type (init, id, tf_warning_or_error);
26734 if (type != auto_node)
26735 {
26736 if (complain & tf_error)
26737 error ("%qT as type rather than plain %<decltype(auto)%>", type);
26738 return error_mark_node;
26739 }
26740 }
26741 else
26742 {
26743 tree parms = build_tree_list (NULL_TREE, type);
26744 tree tparms;
26745
26746 if (flag_concepts)
26747 tparms = extract_autos (type);
26748 else
26749 {
26750 tparms = make_tree_vec (1);
26751 TREE_VEC_ELT (tparms, 0)
26752 = build_tree_list (NULL_TREE, TYPE_NAME (auto_node));
26753 }
26754
26755 targs = make_tree_vec (TREE_VEC_LENGTH (tparms));
26756 int val = type_unification_real (tparms, targs, parms, &init, 1, 0,
26757 DEDUCE_CALL, LOOKUP_NORMAL,
26758 NULL, /*explain_p=*/false);
26759 if (val > 0)
26760 {
26761 if (processing_template_decl)
26762 /* Try again at instantiation time. */
26763 return type;
26764 if (type && type != error_mark_node
26765 && (complain & tf_error))
26766 /* If type is error_mark_node a diagnostic must have been
26767 emitted by now. Also, having a mention to '<type error>'
26768 in the diagnostic is not really useful to the user. */
26769 {
26770 if (cfun && auto_node == current_function_auto_return_pattern
26771 && LAMBDA_FUNCTION_P (current_function_decl))
26772 error ("unable to deduce lambda return type from %qE", init);
26773 else
26774 error ("unable to deduce %qT from %qE", type, init);
26775 type_unification_real (tparms, targs, parms, &init, 1, 0,
26776 DEDUCE_CALL, LOOKUP_NORMAL,
26777 NULL, /*explain_p=*/true);
26778 }
26779 return error_mark_node;
26780 }
26781 }
26782
26783 /* Check any placeholder constraints against the deduced type. */
26784 if (flag_concepts && !processing_template_decl)
26785 if (tree constr = PLACEHOLDER_TYPE_CONSTRAINTS (auto_node))
26786 {
26787 /* Use the deduced type to check the associated constraints. If we
26788 have a partial-concept-id, rebuild the argument list so that
26789 we check using the extra arguments. */
26790 gcc_assert (TREE_CODE (constr) == CHECK_CONSTR);
26791 tree cargs = CHECK_CONSTR_ARGS (constr);
26792 if (TREE_VEC_LENGTH (cargs) > 1)
26793 {
26794 cargs = copy_node (cargs);
26795 TREE_VEC_ELT (cargs, 0) = TREE_VEC_ELT (targs, 0);
26796 }
26797 else
26798 cargs = targs;
26799 if (!constraints_satisfied_p (constr, cargs))
26800 {
26801 if (complain & tf_warning_or_error)
26802 {
26803 switch (context)
26804 {
26805 case adc_unspecified:
26806 case adc_unify:
26807 error("placeholder constraints not satisfied");
26808 break;
26809 case adc_variable_type:
26810 case adc_decomp_type:
26811 error ("deduced initializer does not satisfy "
26812 "placeholder constraints");
26813 break;
26814 case adc_return_type:
26815 error ("deduced return type does not satisfy "
26816 "placeholder constraints");
26817 break;
26818 case adc_requirement:
26819 error ("deduced expression type does not satisfy "
26820 "placeholder constraints");
26821 break;
26822 }
26823 diagnose_constraints (input_location, constr, targs);
26824 }
26825 return error_mark_node;
26826 }
26827 }
26828
26829 if (processing_template_decl && context != adc_unify)
26830 outer_targs = current_template_args ();
26831 targs = add_to_template_args (outer_targs, targs);
26832 return tsubst (type, targs, complain, NULL_TREE);
26833 }
26834
26835 /* Substitutes LATE_RETURN_TYPE for 'auto' in TYPE and returns the
26836 result. */
26837
26838 tree
26839 splice_late_return_type (tree type, tree late_return_type)
26840 {
26841 if (is_auto (type))
26842 {
26843 if (late_return_type)
26844 return late_return_type;
26845
26846 tree idx = get_template_parm_index (type);
26847 if (TEMPLATE_PARM_LEVEL (idx) <= processing_template_decl)
26848 /* In an abbreviated function template we didn't know we were dealing
26849 with a function template when we saw the auto return type, so update
26850 it to have the correct level. */
26851 return make_auto_1 (TYPE_IDENTIFIER (type), true);
26852 }
26853 return type;
26854 }
26855
26856 /* Returns true iff TYPE is a TEMPLATE_TYPE_PARM representing 'auto' or
26857 'decltype(auto)' or a deduced class template. */
26858
26859 bool
26860 is_auto (const_tree type)
26861 {
26862 if (TREE_CODE (type) == TEMPLATE_TYPE_PARM
26863 && (TYPE_IDENTIFIER (type) == auto_identifier
26864 || TYPE_IDENTIFIER (type) == decltype_auto_identifier
26865 || CLASS_PLACEHOLDER_TEMPLATE (type)))
26866 return true;
26867 else
26868 return false;
26869 }
26870
26871 /* for_each_template_parm callback for type_uses_auto. */
26872
26873 int
26874 is_auto_r (tree tp, void */*data*/)
26875 {
26876 return is_auto (tp);
26877 }
26878
26879 /* Returns the TEMPLATE_TYPE_PARM in TYPE representing `auto' iff TYPE contains
26880 a use of `auto'. Returns NULL_TREE otherwise. */
26881
26882 tree
26883 type_uses_auto (tree type)
26884 {
26885 if (type == NULL_TREE)
26886 return NULL_TREE;
26887 else if (flag_concepts)
26888 {
26889 /* The Concepts TS allows multiple autos in one type-specifier; just
26890 return the first one we find, do_auto_deduction will collect all of
26891 them. */
26892 if (uses_template_parms (type))
26893 return for_each_template_parm (type, is_auto_r, /*data*/NULL,
26894 /*visited*/NULL, /*nondeduced*/false);
26895 else
26896 return NULL_TREE;
26897 }
26898 else
26899 return find_type_usage (type, is_auto);
26900 }
26901
26902 /* Report ill-formed occurrences of auto types in ARGUMENTS. If
26903 concepts are enabled, auto is acceptable in template arguments, but
26904 only when TEMPL identifies a template class. Return TRUE if any
26905 such errors were reported. */
26906
26907 bool
26908 check_auto_in_tmpl_args (tree tmpl, tree args)
26909 {
26910 /* If there were previous errors, nevermind. */
26911 if (!args || TREE_CODE (args) != TREE_VEC)
26912 return false;
26913
26914 /* If TMPL is an identifier, we're parsing and we can't tell yet
26915 whether TMPL is supposed to be a type, a function or a variable.
26916 We'll only be able to tell during template substitution, so we
26917 expect to be called again then. If concepts are enabled and we
26918 know we have a type, we're ok. */
26919 if (flag_concepts
26920 && (identifier_p (tmpl)
26921 || (DECL_P (tmpl)
26922 && (DECL_TYPE_TEMPLATE_P (tmpl)
26923 || DECL_TEMPLATE_TEMPLATE_PARM_P (tmpl)))))
26924 return false;
26925
26926 /* Quickly search for any occurrences of auto; usually there won't
26927 be any, and then we'll avoid allocating the vector. */
26928 if (!type_uses_auto (args))
26929 return false;
26930
26931 bool errors = false;
26932
26933 tree vec = extract_autos (args);
26934 for (int i = 0; i < TREE_VEC_LENGTH (vec); i++)
26935 {
26936 tree xauto = TREE_VALUE (TREE_VEC_ELT (vec, i));
26937 error_at (DECL_SOURCE_LOCATION (xauto),
26938 "invalid use of %qT in template argument", xauto);
26939 errors = true;
26940 }
26941
26942 return errors;
26943 }
26944
26945 /* For a given template T, return the vector of typedefs referenced
26946 in T for which access check is needed at T instantiation time.
26947 T is either a FUNCTION_DECL or a RECORD_TYPE.
26948 Those typedefs were added to T by the function
26949 append_type_to_template_for_access_check. */
26950
26951 vec<qualified_typedef_usage_t, va_gc> *
26952 get_types_needing_access_check (tree t)
26953 {
26954 tree ti;
26955 vec<qualified_typedef_usage_t, va_gc> *result = NULL;
26956
26957 if (!t || t == error_mark_node)
26958 return NULL;
26959
26960 if (!(ti = get_template_info (t)))
26961 return NULL;
26962
26963 if (CLASS_TYPE_P (t)
26964 || TREE_CODE (t) == FUNCTION_DECL)
26965 {
26966 if (!TI_TEMPLATE (ti))
26967 return NULL;
26968
26969 result = TI_TYPEDEFS_NEEDING_ACCESS_CHECKING (ti);
26970 }
26971
26972 return result;
26973 }
26974
26975 /* Append the typedef TYPE_DECL used in template T to a list of typedefs
26976 tied to T. That list of typedefs will be access checked at
26977 T instantiation time.
26978 T is either a FUNCTION_DECL or a RECORD_TYPE.
26979 TYPE_DECL is a TYPE_DECL node representing a typedef.
26980 SCOPE is the scope through which TYPE_DECL is accessed.
26981 LOCATION is the location of the usage point of TYPE_DECL.
26982
26983 This function is a subroutine of
26984 append_type_to_template_for_access_check. */
26985
26986 static void
26987 append_type_to_template_for_access_check_1 (tree t,
26988 tree type_decl,
26989 tree scope,
26990 location_t location)
26991 {
26992 qualified_typedef_usage_t typedef_usage;
26993 tree ti;
26994
26995 if (!t || t == error_mark_node)
26996 return;
26997
26998 gcc_assert ((TREE_CODE (t) == FUNCTION_DECL
26999 || CLASS_TYPE_P (t))
27000 && type_decl
27001 && TREE_CODE (type_decl) == TYPE_DECL
27002 && scope);
27003
27004 if (!(ti = get_template_info (t)))
27005 return;
27006
27007 gcc_assert (TI_TEMPLATE (ti));
27008
27009 typedef_usage.typedef_decl = type_decl;
27010 typedef_usage.context = scope;
27011 typedef_usage.locus = location;
27012
27013 vec_safe_push (TI_TYPEDEFS_NEEDING_ACCESS_CHECKING (ti), typedef_usage);
27014 }
27015
27016 /* Append TYPE_DECL to the template TEMPL.
27017 TEMPL is either a class type, a FUNCTION_DECL or a a TEMPLATE_DECL.
27018 At TEMPL instanciation time, TYPE_DECL will be checked to see
27019 if it can be accessed through SCOPE.
27020 LOCATION is the location of the usage point of TYPE_DECL.
27021
27022 e.g. consider the following code snippet:
27023
27024 class C
27025 {
27026 typedef int myint;
27027 };
27028
27029 template<class U> struct S
27030 {
27031 C::myint mi; // <-- usage point of the typedef C::myint
27032 };
27033
27034 S<char> s;
27035
27036 At S<char> instantiation time, we need to check the access of C::myint
27037 In other words, we need to check the access of the myint typedef through
27038 the C scope. For that purpose, this function will add the myint typedef
27039 and the scope C through which its being accessed to a list of typedefs
27040 tied to the template S. That list will be walked at template instantiation
27041 time and access check performed on each typedefs it contains.
27042 Note that this particular code snippet should yield an error because
27043 myint is private to C. */
27044
27045 void
27046 append_type_to_template_for_access_check (tree templ,
27047 tree type_decl,
27048 tree scope,
27049 location_t location)
27050 {
27051 qualified_typedef_usage_t *iter;
27052 unsigned i;
27053
27054 gcc_assert (type_decl && (TREE_CODE (type_decl) == TYPE_DECL));
27055
27056 /* Make sure we don't append the type to the template twice. */
27057 FOR_EACH_VEC_SAFE_ELT (get_types_needing_access_check (templ), i, iter)
27058 if (iter->typedef_decl == type_decl && scope == iter->context)
27059 return;
27060
27061 append_type_to_template_for_access_check_1 (templ, type_decl,
27062 scope, location);
27063 }
27064
27065 /* Convert the generic type parameters in PARM that match the types given in the
27066 range [START_IDX, END_IDX) from the current_template_parms into generic type
27067 packs. */
27068
27069 tree
27070 convert_generic_types_to_packs (tree parm, int start_idx, int end_idx)
27071 {
27072 tree current = current_template_parms;
27073 int depth = TMPL_PARMS_DEPTH (current);
27074 current = INNERMOST_TEMPLATE_PARMS (current);
27075 tree replacement = make_tree_vec (TREE_VEC_LENGTH (current));
27076
27077 for (int i = 0; i < start_idx; ++i)
27078 TREE_VEC_ELT (replacement, i)
27079 = TREE_TYPE (TREE_VALUE (TREE_VEC_ELT (current, i)));
27080
27081 for (int i = start_idx; i < end_idx; ++i)
27082 {
27083 /* Create a distinct parameter pack type from the current parm and add it
27084 to the replacement args to tsubst below into the generic function
27085 parameter. */
27086
27087 tree o = TREE_TYPE (TREE_VALUE
27088 (TREE_VEC_ELT (current, i)));
27089 tree t = copy_type (o);
27090 TEMPLATE_TYPE_PARM_INDEX (t)
27091 = reduce_template_parm_level (TEMPLATE_TYPE_PARM_INDEX (o),
27092 o, 0, 0, tf_none);
27093 TREE_TYPE (TEMPLATE_TYPE_DECL (t)) = t;
27094 TYPE_STUB_DECL (t) = TYPE_NAME (t) = TEMPLATE_TYPE_DECL (t);
27095 TYPE_MAIN_VARIANT (t) = t;
27096 TEMPLATE_TYPE_PARAMETER_PACK (t) = true;
27097 TYPE_CANONICAL (t) = canonical_type_parameter (t);
27098 TREE_VEC_ELT (replacement, i) = t;
27099 TREE_VALUE (TREE_VEC_ELT (current, i)) = TREE_CHAIN (t);
27100 }
27101
27102 for (int i = end_idx, e = TREE_VEC_LENGTH (current); i < e; ++i)
27103 TREE_VEC_ELT (replacement, i)
27104 = TREE_TYPE (TREE_VALUE (TREE_VEC_ELT (current, i)));
27105
27106 /* If there are more levels then build up the replacement with the outer
27107 template parms. */
27108 if (depth > 1)
27109 replacement = add_to_template_args (template_parms_to_args
27110 (TREE_CHAIN (current_template_parms)),
27111 replacement);
27112
27113 return tsubst (parm, replacement, tf_none, NULL_TREE);
27114 }
27115
27116 /* Entries in the decl_constraint hash table. */
27117 struct GTY((for_user)) constr_entry
27118 {
27119 tree decl;
27120 tree ci;
27121 };
27122
27123 /* Hashing function and equality for constraint entries. */
27124 struct constr_hasher : ggc_ptr_hash<constr_entry>
27125 {
27126 static hashval_t hash (constr_entry *e)
27127 {
27128 return (hashval_t)DECL_UID (e->decl);
27129 }
27130
27131 static bool equal (constr_entry *e1, constr_entry *e2)
27132 {
27133 return e1->decl == e2->decl;
27134 }
27135 };
27136
27137 /* A mapping from declarations to constraint information. Note that
27138 both templates and their underlying declarations are mapped to the
27139 same constraint information.
27140
27141 FIXME: This is defined in pt.c because garbage collection
27142 code is not being generated for constraint.cc. */
27143
27144 static GTY (()) hash_table<constr_hasher> *decl_constraints;
27145
27146 /* Returns the template constraints of declaration T. If T is not
27147 constrained, return NULL_TREE. Note that T must be non-null. */
27148
27149 tree
27150 get_constraints (tree t)
27151 {
27152 if (!flag_concepts)
27153 return NULL_TREE;
27154
27155 gcc_assert (DECL_P (t));
27156 if (TREE_CODE (t) == TEMPLATE_DECL)
27157 t = DECL_TEMPLATE_RESULT (t);
27158 constr_entry elt = { t, NULL_TREE };
27159 constr_entry* found = decl_constraints->find (&elt);
27160 if (found)
27161 return found->ci;
27162 else
27163 return NULL_TREE;
27164 }
27165
27166 /* Associate the given constraint information CI with the declaration
27167 T. If T is a template, then the constraints are associated with
27168 its underlying declaration. Don't build associations if CI is
27169 NULL_TREE. */
27170
27171 void
27172 set_constraints (tree t, tree ci)
27173 {
27174 if (!ci)
27175 return;
27176 gcc_assert (t && flag_concepts);
27177 if (TREE_CODE (t) == TEMPLATE_DECL)
27178 t = DECL_TEMPLATE_RESULT (t);
27179 gcc_assert (!get_constraints (t));
27180 constr_entry elt = {t, ci};
27181 constr_entry** slot = decl_constraints->find_slot (&elt, INSERT);
27182 constr_entry* entry = ggc_alloc<constr_entry> ();
27183 *entry = elt;
27184 *slot = entry;
27185 }
27186
27187 /* Remove the associated constraints of the declaration T. */
27188
27189 void
27190 remove_constraints (tree t)
27191 {
27192 gcc_assert (DECL_P (t));
27193 if (TREE_CODE (t) == TEMPLATE_DECL)
27194 t = DECL_TEMPLATE_RESULT (t);
27195
27196 constr_entry elt = {t, NULL_TREE};
27197 constr_entry** slot = decl_constraints->find_slot (&elt, NO_INSERT);
27198 if (slot)
27199 decl_constraints->clear_slot (slot);
27200 }
27201
27202 /* Memoized satisfaction results for declarations. This
27203 maps the pair (constraint_info, arguments) to the result computed
27204 by constraints_satisfied_p. */
27205
27206 struct GTY((for_user)) constraint_sat_entry
27207 {
27208 tree ci;
27209 tree args;
27210 tree result;
27211 };
27212
27213 /* Hashing function and equality for constraint entries. */
27214
27215 struct constraint_sat_hasher : ggc_ptr_hash<constraint_sat_entry>
27216 {
27217 static hashval_t hash (constraint_sat_entry *e)
27218 {
27219 hashval_t val = iterative_hash_object(e->ci, 0);
27220 return iterative_hash_template_arg (e->args, val);
27221 }
27222
27223 static bool equal (constraint_sat_entry *e1, constraint_sat_entry *e2)
27224 {
27225 return e1->ci == e2->ci && comp_template_args (e1->args, e2->args);
27226 }
27227 };
27228
27229 /* Memoized satisfaction results for concept checks. */
27230
27231 struct GTY((for_user)) concept_spec_entry
27232 {
27233 tree tmpl;
27234 tree args;
27235 tree result;
27236 };
27237
27238 /* Hashing function and equality for constraint entries. */
27239
27240 struct concept_spec_hasher : ggc_ptr_hash<concept_spec_entry>
27241 {
27242 static hashval_t hash (concept_spec_entry *e)
27243 {
27244 return hash_tmpl_and_args (e->tmpl, e->args);
27245 }
27246
27247 static bool equal (concept_spec_entry *e1, concept_spec_entry *e2)
27248 {
27249 ++comparing_specializations;
27250 bool eq = e1->tmpl == e2->tmpl && comp_template_args (e1->args, e2->args);
27251 --comparing_specializations;
27252 return eq;
27253 }
27254 };
27255
27256 static GTY (()) hash_table<constraint_sat_hasher> *constraint_memos;
27257 static GTY (()) hash_table<concept_spec_hasher> *concept_memos;
27258
27259 /* Search for a memoized satisfaction result. Returns one of the
27260 truth value nodes if previously memoized, or NULL_TREE otherwise. */
27261
27262 tree
27263 lookup_constraint_satisfaction (tree ci, tree args)
27264 {
27265 constraint_sat_entry elt = { ci, args, NULL_TREE };
27266 constraint_sat_entry* found = constraint_memos->find (&elt);
27267 if (found)
27268 return found->result;
27269 else
27270 return NULL_TREE;
27271 }
27272
27273 /* Memoize the result of a satisfication test. Returns the saved result. */
27274
27275 tree
27276 memoize_constraint_satisfaction (tree ci, tree args, tree result)
27277 {
27278 constraint_sat_entry elt = {ci, args, result};
27279 constraint_sat_entry** slot = constraint_memos->find_slot (&elt, INSERT);
27280 constraint_sat_entry* entry = ggc_alloc<constraint_sat_entry> ();
27281 *entry = elt;
27282 *slot = entry;
27283 return result;
27284 }
27285
27286 /* Search for a memoized satisfaction result for a concept. */
27287
27288 tree
27289 lookup_concept_satisfaction (tree tmpl, tree args)
27290 {
27291 concept_spec_entry elt = { tmpl, args, NULL_TREE };
27292 concept_spec_entry* found = concept_memos->find (&elt);
27293 if (found)
27294 return found->result;
27295 else
27296 return NULL_TREE;
27297 }
27298
27299 /* Memoize the result of a concept check. Returns the saved result. */
27300
27301 tree
27302 memoize_concept_satisfaction (tree tmpl, tree args, tree result)
27303 {
27304 concept_spec_entry elt = {tmpl, args, result};
27305 concept_spec_entry** slot = concept_memos->find_slot (&elt, INSERT);
27306 concept_spec_entry* entry = ggc_alloc<concept_spec_entry> ();
27307 *entry = elt;
27308 *slot = entry;
27309 return result;
27310 }
27311
27312 static GTY (()) hash_table<concept_spec_hasher> *concept_expansions;
27313
27314 /* Returns a prior concept specialization. This returns the substituted
27315 and normalized constraints defined by the concept. */
27316
27317 tree
27318 get_concept_expansion (tree tmpl, tree args)
27319 {
27320 concept_spec_entry elt = { tmpl, args, NULL_TREE };
27321 concept_spec_entry* found = concept_expansions->find (&elt);
27322 if (found)
27323 return found->result;
27324 else
27325 return NULL_TREE;
27326 }
27327
27328 /* Save a concept expansion for later. */
27329
27330 tree
27331 save_concept_expansion (tree tmpl, tree args, tree def)
27332 {
27333 concept_spec_entry elt = {tmpl, args, def};
27334 concept_spec_entry** slot = concept_expansions->find_slot (&elt, INSERT);
27335 concept_spec_entry* entry = ggc_alloc<concept_spec_entry> ();
27336 *entry = elt;
27337 *slot = entry;
27338 return def;
27339 }
27340
27341 static hashval_t
27342 hash_subsumption_args (tree t1, tree t2)
27343 {
27344 gcc_assert (TREE_CODE (t1) == CHECK_CONSTR);
27345 gcc_assert (TREE_CODE (t2) == CHECK_CONSTR);
27346 int val = 0;
27347 val = iterative_hash_object (CHECK_CONSTR_CONCEPT (t1), val);
27348 val = iterative_hash_template_arg (CHECK_CONSTR_ARGS (t1), val);
27349 val = iterative_hash_object (CHECK_CONSTR_CONCEPT (t2), val);
27350 val = iterative_hash_template_arg (CHECK_CONSTR_ARGS (t2), val);
27351 return val;
27352 }
27353
27354 /* Compare the constraints of two subsumption entries. The LEFT1 and
27355 LEFT2 arguments comprise the first subsumption pair and the RIGHT1
27356 and RIGHT2 arguments comprise the second. These are all CHECK_CONSTRs. */
27357
27358 static bool
27359 comp_subsumption_args (tree left1, tree left2, tree right1, tree right2)
27360 {
27361 if (CHECK_CONSTR_CONCEPT (left1) == CHECK_CONSTR_CONCEPT (right1))
27362 if (CHECK_CONSTR_CONCEPT (left2) == CHECK_CONSTR_CONCEPT (right2))
27363 if (comp_template_args (CHECK_CONSTR_ARGS (left1),
27364 CHECK_CONSTR_ARGS (right1)))
27365 return comp_template_args (CHECK_CONSTR_ARGS (left2),
27366 CHECK_CONSTR_ARGS (right2));
27367 return false;
27368 }
27369
27370 /* Key/value pair for learning and memoizing subsumption results. This
27371 associates a pair of check constraints (including arguments) with
27372 a boolean value indicating the result. */
27373
27374 struct GTY((for_user)) subsumption_entry
27375 {
27376 tree t1;
27377 tree t2;
27378 bool result;
27379 };
27380
27381 /* Hashing function and equality for constraint entries. */
27382
27383 struct subsumption_hasher : ggc_ptr_hash<subsumption_entry>
27384 {
27385 static hashval_t hash (subsumption_entry *e)
27386 {
27387 return hash_subsumption_args (e->t1, e->t2);
27388 }
27389
27390 static bool equal (subsumption_entry *e1, subsumption_entry *e2)
27391 {
27392 ++comparing_specializations;
27393 bool eq = comp_subsumption_args(e1->t1, e1->t2, e2->t1, e2->t2);
27394 --comparing_specializations;
27395 return eq;
27396 }
27397 };
27398
27399 static GTY (()) hash_table<subsumption_hasher> *subsumption_table;
27400
27401 /* Search for a previously cached subsumption result. */
27402
27403 bool*
27404 lookup_subsumption_result (tree t1, tree t2)
27405 {
27406 subsumption_entry elt = { t1, t2, false };
27407 subsumption_entry* found = subsumption_table->find (&elt);
27408 if (found)
27409 return &found->result;
27410 else
27411 return 0;
27412 }
27413
27414 /* Save a subsumption result. */
27415
27416 bool
27417 save_subsumption_result (tree t1, tree t2, bool result)
27418 {
27419 subsumption_entry elt = {t1, t2, result};
27420 subsumption_entry** slot = subsumption_table->find_slot (&elt, INSERT);
27421 subsumption_entry* entry = ggc_alloc<subsumption_entry> ();
27422 *entry = elt;
27423 *slot = entry;
27424 return result;
27425 }
27426
27427 /* Set up the hash table for constraint association. */
27428
27429 void
27430 init_constraint_processing (void)
27431 {
27432 if (!flag_concepts)
27433 return;
27434
27435 decl_constraints = hash_table<constr_hasher>::create_ggc(37);
27436 constraint_memos = hash_table<constraint_sat_hasher>::create_ggc(37);
27437 concept_memos = hash_table<concept_spec_hasher>::create_ggc(37);
27438 concept_expansions = hash_table<concept_spec_hasher>::create_ggc(37);
27439 subsumption_table = hash_table<subsumption_hasher>::create_ggc(37);
27440 }
27441
27442 /* __integer_pack(N) in a pack expansion expands to a sequence of numbers from
27443 0..N-1. */
27444
27445 void
27446 declare_integer_pack (void)
27447 {
27448 tree ipfn = push_library_fn (get_identifier ("__integer_pack"),
27449 build_function_type_list (integer_type_node,
27450 integer_type_node,
27451 NULL_TREE),
27452 NULL_TREE, ECF_CONST);
27453 DECL_DECLARED_CONSTEXPR_P (ipfn) = true;
27454 DECL_BUILT_IN_CLASS (ipfn) = BUILT_IN_FRONTEND;
27455 }
27456
27457 /* Set up the hash tables for template instantiations. */
27458
27459 void
27460 init_template_processing (void)
27461 {
27462 decl_specializations = hash_table<spec_hasher>::create_ggc (37);
27463 type_specializations = hash_table<spec_hasher>::create_ggc (37);
27464
27465 if (cxx_dialect >= cxx11)
27466 declare_integer_pack ();
27467 }
27468
27469 /* Print stats about the template hash tables for -fstats. */
27470
27471 void
27472 print_template_statistics (void)
27473 {
27474 fprintf (stderr, "decl_specializations: size %ld, %ld elements, "
27475 "%f collisions\n", (long) decl_specializations->size (),
27476 (long) decl_specializations->elements (),
27477 decl_specializations->collisions ());
27478 fprintf (stderr, "type_specializations: size %ld, %ld elements, "
27479 "%f collisions\n", (long) type_specializations->size (),
27480 (long) type_specializations->elements (),
27481 type_specializations->collisions ());
27482 }
27483
27484 #if CHECKING_P
27485
27486 namespace selftest {
27487
27488 /* Verify that build_non_dependent_expr () works, for various expressions,
27489 and that location wrappers don't affect the results. */
27490
27491 static void
27492 test_build_non_dependent_expr ()
27493 {
27494 location_t loc = BUILTINS_LOCATION;
27495
27496 /* Verify constants, without and with location wrappers. */
27497 tree int_cst = build_int_cst (integer_type_node, 42);
27498 ASSERT_EQ (int_cst, build_non_dependent_expr (int_cst));
27499
27500 tree wrapped_int_cst = maybe_wrap_with_location (int_cst, loc);
27501 ASSERT_TRUE (location_wrapper_p (wrapped_int_cst));
27502 ASSERT_EQ (wrapped_int_cst, build_non_dependent_expr (wrapped_int_cst));
27503
27504 tree string_lit = build_string (4, "foo");
27505 TREE_TYPE (string_lit) = char_array_type_node;
27506 string_lit = fix_string_type (string_lit);
27507 ASSERT_EQ (string_lit, build_non_dependent_expr (string_lit));
27508
27509 tree wrapped_string_lit = maybe_wrap_with_location (string_lit, loc);
27510 ASSERT_TRUE (location_wrapper_p (wrapped_string_lit));
27511 ASSERT_EQ (wrapped_string_lit,
27512 build_non_dependent_expr (wrapped_string_lit));
27513 }
27514
27515 /* Verify that type_dependent_expression_p () works correctly, even
27516 in the presence of location wrapper nodes. */
27517
27518 static void
27519 test_type_dependent_expression_p ()
27520 {
27521 location_t loc = BUILTINS_LOCATION;
27522
27523 tree name = get_identifier ("foo");
27524
27525 /* If no templates are involved, nothing is type-dependent. */
27526 gcc_assert (!processing_template_decl);
27527 ASSERT_FALSE (type_dependent_expression_p (name));
27528
27529 ++processing_template_decl;
27530
27531 /* Within a template, an unresolved name is always type-dependent. */
27532 ASSERT_TRUE (type_dependent_expression_p (name));
27533
27534 /* Ensure it copes with NULL_TREE and errors. */
27535 ASSERT_FALSE (type_dependent_expression_p (NULL_TREE));
27536 ASSERT_FALSE (type_dependent_expression_p (error_mark_node));
27537
27538 /* A USING_DECL in a template should be type-dependent, even if wrapped
27539 with a location wrapper (PR c++/83799). */
27540 tree using_decl = build_lang_decl (USING_DECL, name, NULL_TREE);
27541 TREE_TYPE (using_decl) = integer_type_node;
27542 ASSERT_TRUE (type_dependent_expression_p (using_decl));
27543 tree wrapped_using_decl = maybe_wrap_with_location (using_decl, loc);
27544 ASSERT_TRUE (location_wrapper_p (wrapped_using_decl));
27545 ASSERT_TRUE (type_dependent_expression_p (wrapped_using_decl));
27546
27547 --processing_template_decl;
27548 }
27549
27550 /* Run all of the selftests within this file. */
27551
27552 void
27553 cp_pt_c_tests ()
27554 {
27555 test_build_non_dependent_expr ();
27556 test_type_dependent_expression_p ();
27557 }
27558
27559 } // namespace selftest
27560
27561 #endif /* #if CHECKING_P */
27562
27563 #include "gt-cp-pt.h"