PR c++/82165 - enum bitfields and operator overloading.
[gcc.git] / gcc / cp / call.c
1 /* Functions related to invoking -*- C++ -*- methods and overloaded functions.
2 Copyright (C) 1987-2019 Free Software Foundation, Inc.
3 Contributed by Michael Tiemann (tiemann@cygnus.com) and
4 modified by Brendan Kehoe (brendan@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
23 /* High-level class interface. */
24
25 #include "config.h"
26 #include "system.h"
27 #include "coretypes.h"
28 #include "target.h"
29 #include "cp-tree.h"
30 #include "timevar.h"
31 #include "stringpool.h"
32 #include "cgraph.h"
33 #include "stor-layout.h"
34 #include "trans-mem.h"
35 #include "flags.h"
36 #include "toplev.h"
37 #include "intl.h"
38 #include "convert.h"
39 #include "langhooks.h"
40 #include "c-family/c-objc.h"
41 #include "internal-fn.h"
42 #include "stringpool.h"
43 #include "attribs.h"
44 #include "gcc-rich-location.h"
45
46 /* The various kinds of conversion. */
47
48 enum conversion_kind {
49 ck_identity,
50 ck_lvalue,
51 ck_fnptr,
52 ck_qual,
53 ck_std,
54 ck_ptr,
55 ck_pmem,
56 ck_base,
57 ck_ref_bind,
58 ck_user,
59 ck_ambig,
60 ck_list,
61 ck_aggr,
62 ck_rvalue
63 };
64
65 /* The rank of the conversion. Order of the enumerals matters; better
66 conversions should come earlier in the list. */
67
68 enum conversion_rank {
69 cr_identity,
70 cr_exact,
71 cr_promotion,
72 cr_std,
73 cr_pbool,
74 cr_user,
75 cr_ellipsis,
76 cr_bad
77 };
78
79 /* An implicit conversion sequence, in the sense of [over.best.ics].
80 The first conversion to be performed is at the end of the chain.
81 That conversion is always a cr_identity conversion. */
82
83 struct conversion {
84 /* The kind of conversion represented by this step. */
85 conversion_kind kind;
86 /* The rank of this conversion. */
87 conversion_rank rank;
88 BOOL_BITFIELD user_conv_p : 1;
89 BOOL_BITFIELD ellipsis_p : 1;
90 BOOL_BITFIELD this_p : 1;
91 /* True if this conversion would be permitted with a bending of
92 language standards, e.g. disregarding pointer qualifiers or
93 converting integers to pointers. */
94 BOOL_BITFIELD bad_p : 1;
95 /* If KIND is ck_ref_bind ck_base_conv, true to indicate that a
96 temporary should be created to hold the result of the
97 conversion. If KIND is ck_ambig or ck_user, true means force
98 copy-initialization. */
99 BOOL_BITFIELD need_temporary_p : 1;
100 /* If KIND is ck_ptr or ck_pmem, true to indicate that a conversion
101 from a pointer-to-derived to pointer-to-base is being performed. */
102 BOOL_BITFIELD base_p : 1;
103 /* If KIND is ck_ref_bind, true when either an lvalue reference is
104 being bound to an lvalue expression or an rvalue reference is
105 being bound to an rvalue expression. If KIND is ck_rvalue or ck_base,
106 true when we are treating an lvalue as an rvalue (12.8p33). If
107 ck_identity, we will be binding a reference directly or decaying to
108 a pointer. */
109 BOOL_BITFIELD rvaluedness_matches_p: 1;
110 BOOL_BITFIELD check_narrowing: 1;
111 /* Whether check_narrowing should only check TREE_CONSTANTs; used
112 in build_converted_constant_expr. */
113 BOOL_BITFIELD check_narrowing_const_only: 1;
114 /* The type of the expression resulting from the conversion. */
115 tree type;
116 union {
117 /* The next conversion in the chain. Since the conversions are
118 arranged from outermost to innermost, the NEXT conversion will
119 actually be performed before this conversion. This variant is
120 used only when KIND is neither ck_identity, ck_ambig nor
121 ck_list. Please use the next_conversion function instead
122 of using this field directly. */
123 conversion *next;
124 /* The expression at the beginning of the conversion chain. This
125 variant is used only if KIND is ck_identity or ck_ambig. */
126 tree expr;
127 /* The array of conversions for an initializer_list, so this
128 variant is used only when KIN D is ck_list. */
129 conversion **list;
130 } u;
131 /* The function candidate corresponding to this conversion
132 sequence. This field is only used if KIND is ck_user. */
133 struct z_candidate *cand;
134 };
135
136 #define CONVERSION_RANK(NODE) \
137 ((NODE)->bad_p ? cr_bad \
138 : (NODE)->ellipsis_p ? cr_ellipsis \
139 : (NODE)->user_conv_p ? cr_user \
140 : (NODE)->rank)
141
142 #define BAD_CONVERSION_RANK(NODE) \
143 ((NODE)->ellipsis_p ? cr_ellipsis \
144 : (NODE)->user_conv_p ? cr_user \
145 : (NODE)->rank)
146
147 static struct obstack conversion_obstack;
148 static bool conversion_obstack_initialized;
149 struct rejection_reason;
150
151 static struct z_candidate * tourney (struct z_candidate *, tsubst_flags_t);
152 static int equal_functions (tree, tree);
153 static int joust (struct z_candidate *, struct z_candidate *, bool,
154 tsubst_flags_t);
155 static int compare_ics (conversion *, conversion *);
156 static void maybe_warn_class_memaccess (location_t, tree,
157 const vec<tree, va_gc> *);
158 static tree build_over_call (struct z_candidate *, int, tsubst_flags_t);
159 #define convert_like(CONV, EXPR, COMPLAIN) \
160 convert_like_real ((CONV), (EXPR), NULL_TREE, 0, \
161 /*issue_conversion_warnings=*/true, \
162 /*c_cast_p=*/false, (COMPLAIN))
163 #define convert_like_with_context(CONV, EXPR, FN, ARGNO, COMPLAIN ) \
164 convert_like_real ((CONV), (EXPR), (FN), (ARGNO), \
165 /*issue_conversion_warnings=*/true, \
166 /*c_cast_p=*/false, (COMPLAIN))
167 static tree convert_like_real (conversion *, tree, tree, int, bool,
168 bool, tsubst_flags_t);
169 static void op_error (const op_location_t &, enum tree_code, enum tree_code,
170 tree, tree, tree, bool);
171 static struct z_candidate *build_user_type_conversion_1 (tree, tree, int,
172 tsubst_flags_t);
173 static void print_z_candidate (location_t, const char *, struct z_candidate *);
174 static void print_z_candidates (location_t, struct z_candidate *);
175 static tree build_this (tree);
176 static struct z_candidate *splice_viable (struct z_candidate *, bool, bool *);
177 static bool any_strictly_viable (struct z_candidate *);
178 static struct z_candidate *add_template_candidate
179 (struct z_candidate **, tree, tree, tree, tree, const vec<tree, va_gc> *,
180 tree, tree, tree, int, unification_kind_t, tsubst_flags_t);
181 static struct z_candidate *add_template_candidate_real
182 (struct z_candidate **, tree, tree, tree, tree, const vec<tree, va_gc> *,
183 tree, tree, tree, int, tree, unification_kind_t, tsubst_flags_t);
184 static void add_builtin_candidates
185 (struct z_candidate **, enum tree_code, enum tree_code,
186 tree, tree *, int, tsubst_flags_t);
187 static void add_builtin_candidate
188 (struct z_candidate **, enum tree_code, enum tree_code,
189 tree, tree, tree, tree *, tree *, int, tsubst_flags_t);
190 static bool is_complete (tree);
191 static void build_builtin_candidate
192 (struct z_candidate **, tree, tree, tree, tree *, tree *,
193 int, tsubst_flags_t);
194 static struct z_candidate *add_conv_candidate
195 (struct z_candidate **, tree, tree, const vec<tree, va_gc> *, tree,
196 tree, tsubst_flags_t);
197 static struct z_candidate *add_function_candidate
198 (struct z_candidate **, tree, tree, tree, const vec<tree, va_gc> *, tree,
199 tree, int, conversion**, tsubst_flags_t);
200 static conversion *implicit_conversion (tree, tree, tree, bool, int,
201 tsubst_flags_t);
202 static conversion *reference_binding (tree, tree, tree, bool, int,
203 tsubst_flags_t);
204 static conversion *build_conv (conversion_kind, tree, conversion *);
205 static conversion *build_list_conv (tree, tree, int, tsubst_flags_t);
206 static conversion *next_conversion (conversion *);
207 static bool is_subseq (conversion *, conversion *);
208 static conversion *maybe_handle_ref_bind (conversion **);
209 static void maybe_handle_implicit_object (conversion **);
210 static struct z_candidate *add_candidate
211 (struct z_candidate **, tree, tree, const vec<tree, va_gc> *, size_t,
212 conversion **, tree, tree, int, struct rejection_reason *, int);
213 static tree source_type (conversion *);
214 static void add_warning (struct z_candidate *, struct z_candidate *);
215 static bool reference_compatible_p (tree, tree);
216 static conversion *direct_reference_binding (tree, conversion *);
217 static bool promoted_arithmetic_type_p (tree);
218 static conversion *conditional_conversion (tree, tree, tsubst_flags_t);
219 static char *name_as_c_string (tree, tree, bool *);
220 static tree prep_operand (tree);
221 static void add_candidates (tree, tree, const vec<tree, va_gc> *, tree, tree,
222 bool, tree, tree, int, struct z_candidate **,
223 tsubst_flags_t);
224 static conversion *merge_conversion_sequences (conversion *, conversion *);
225 static tree build_temp (tree, tree, int, diagnostic_t *, tsubst_flags_t);
226
227 /* Returns nonzero iff the destructor name specified in NAME matches BASETYPE.
228 NAME can take many forms... */
229
230 bool
231 check_dtor_name (tree basetype, tree name)
232 {
233 /* Just accept something we've already complained about. */
234 if (name == error_mark_node)
235 return true;
236
237 if (TREE_CODE (name) == TYPE_DECL)
238 name = TREE_TYPE (name);
239 else if (TYPE_P (name))
240 /* OK */;
241 else if (identifier_p (name))
242 {
243 if ((MAYBE_CLASS_TYPE_P (basetype)
244 || TREE_CODE (basetype) == ENUMERAL_TYPE)
245 && name == constructor_name (basetype))
246 return true;
247 else
248 name = get_type_value (name);
249 }
250 else
251 {
252 /* In the case of:
253
254 template <class T> struct S { ~S(); };
255 int i;
256 i.~S();
257
258 NAME will be a class template. */
259 gcc_assert (DECL_CLASS_TEMPLATE_P (name));
260 return false;
261 }
262
263 if (!name || name == error_mark_node)
264 return false;
265 return same_type_p (TYPE_MAIN_VARIANT (basetype), TYPE_MAIN_VARIANT (name));
266 }
267
268 /* We want the address of a function or method. We avoid creating a
269 pointer-to-member function. */
270
271 tree
272 build_addr_func (tree function, tsubst_flags_t complain)
273 {
274 tree type = TREE_TYPE (function);
275
276 /* We have to do these by hand to avoid real pointer to member
277 functions. */
278 if (TREE_CODE (type) == METHOD_TYPE)
279 {
280 if (TREE_CODE (function) == OFFSET_REF)
281 {
282 tree object = build_address (TREE_OPERAND (function, 0));
283 return get_member_function_from_ptrfunc (&object,
284 TREE_OPERAND (function, 1),
285 complain);
286 }
287 function = build_address (function);
288 }
289 else
290 function = decay_conversion (function, complain, /*reject_builtin=*/false);
291
292 return function;
293 }
294
295 /* Build a CALL_EXPR, we can handle FUNCTION_TYPEs, METHOD_TYPEs, or
296 POINTER_TYPE to those. Note, pointer to member function types
297 (TYPE_PTRMEMFUNC_P) must be handled by our callers. There are
298 two variants. build_call_a is the primitive taking an array of
299 arguments, while build_call_n is a wrapper that handles varargs. */
300
301 tree
302 build_call_n (tree function, int n, ...)
303 {
304 if (n == 0)
305 return build_call_a (function, 0, NULL);
306 else
307 {
308 tree *argarray = XALLOCAVEC (tree, n);
309 va_list ap;
310 int i;
311
312 va_start (ap, n);
313 for (i = 0; i < n; i++)
314 argarray[i] = va_arg (ap, tree);
315 va_end (ap);
316 return build_call_a (function, n, argarray);
317 }
318 }
319
320 /* Update various flags in cfun and the call itself based on what is being
321 called. Split out of build_call_a so that bot_manip can use it too. */
322
323 void
324 set_flags_from_callee (tree call)
325 {
326 /* Handle both CALL_EXPRs and AGGR_INIT_EXPRs. */
327 tree decl = cp_get_callee_fndecl_nofold (call);
328
329 /* We check both the decl and the type; a function may be known not to
330 throw without being declared throw(). */
331 bool nothrow = decl && TREE_NOTHROW (decl);
332 tree callee = cp_get_callee (call);
333 if (callee)
334 nothrow |= TYPE_NOTHROW_P (TREE_TYPE (TREE_TYPE (callee)));
335 else if (TREE_CODE (call) == CALL_EXPR
336 && internal_fn_flags (CALL_EXPR_IFN (call)) & ECF_NOTHROW)
337 nothrow = true;
338
339 if (!nothrow && at_function_scope_p () && cfun && cp_function_chain)
340 cp_function_chain->can_throw = 1;
341
342 if (decl && TREE_THIS_VOLATILE (decl) && cfun && cp_function_chain)
343 current_function_returns_abnormally = 1;
344
345 TREE_NOTHROW (call) = nothrow;
346 }
347
348 tree
349 build_call_a (tree function, int n, tree *argarray)
350 {
351 tree decl;
352 tree result_type;
353 tree fntype;
354 int i;
355
356 function = build_addr_func (function, tf_warning_or_error);
357
358 gcc_assert (TYPE_PTR_P (TREE_TYPE (function)));
359 fntype = TREE_TYPE (TREE_TYPE (function));
360 gcc_assert (FUNC_OR_METHOD_TYPE_P (fntype));
361 result_type = TREE_TYPE (fntype);
362 /* An rvalue has no cv-qualifiers. */
363 if (SCALAR_TYPE_P (result_type) || VOID_TYPE_P (result_type))
364 result_type = cv_unqualified (result_type);
365
366 function = build_call_array_loc (input_location,
367 result_type, function, n, argarray);
368 set_flags_from_callee (function);
369
370 decl = get_callee_fndecl (function);
371
372 if (decl && !TREE_USED (decl))
373 {
374 /* We invoke build_call directly for several library
375 functions. These may have been declared normally if
376 we're building libgcc, so we can't just check
377 DECL_ARTIFICIAL. */
378 gcc_assert (DECL_ARTIFICIAL (decl)
379 || !strncmp (IDENTIFIER_POINTER (DECL_NAME (decl)),
380 "__", 2));
381 mark_used (decl);
382 }
383
384 require_complete_eh_spec_types (fntype, decl);
385
386 TREE_HAS_CONSTRUCTOR (function) = (decl && DECL_CONSTRUCTOR_P (decl));
387
388 /* Don't pass empty class objects by value. This is useful
389 for tags in STL, which are used to control overload resolution.
390 We don't need to handle other cases of copying empty classes. */
391 if (!decl || !fndecl_built_in_p (decl))
392 for (i = 0; i < n; i++)
393 {
394 tree arg = CALL_EXPR_ARG (function, i);
395 if (is_empty_class (TREE_TYPE (arg))
396 && simple_empty_class_p (TREE_TYPE (arg), arg, INIT_EXPR))
397 {
398 tree t = build0 (EMPTY_CLASS_EXPR, TREE_TYPE (arg));
399 arg = build2 (COMPOUND_EXPR, TREE_TYPE (t), arg, t);
400 CALL_EXPR_ARG (function, i) = arg;
401 }
402 }
403
404 return function;
405 }
406
407 /* New overloading code. */
408
409 struct z_candidate;
410
411 struct candidate_warning {
412 z_candidate *loser;
413 candidate_warning *next;
414 };
415
416 /* Information for providing diagnostics about why overloading failed. */
417
418 enum rejection_reason_code {
419 rr_none,
420 rr_arity,
421 rr_explicit_conversion,
422 rr_template_conversion,
423 rr_arg_conversion,
424 rr_bad_arg_conversion,
425 rr_template_unification,
426 rr_invalid_copy,
427 rr_inherited_ctor,
428 rr_constraint_failure
429 };
430
431 struct conversion_info {
432 /* The index of the argument, 0-based. */
433 int n_arg;
434 /* The actual argument or its type. */
435 tree from;
436 /* The type of the parameter. */
437 tree to_type;
438 /* The location of the argument. */
439 location_t loc;
440 };
441
442 struct rejection_reason {
443 enum rejection_reason_code code;
444 union {
445 /* Information about an arity mismatch. */
446 struct {
447 /* The expected number of arguments. */
448 int expected;
449 /* The actual number of arguments in the call. */
450 int actual;
451 /* Whether the call was a varargs call. */
452 bool call_varargs_p;
453 } arity;
454 /* Information about an argument conversion mismatch. */
455 struct conversion_info conversion;
456 /* Same, but for bad argument conversions. */
457 struct conversion_info bad_conversion;
458 /* Information about template unification failures. These are the
459 parameters passed to fn_type_unification. */
460 struct {
461 tree tmpl;
462 tree explicit_targs;
463 int num_targs;
464 const tree *args;
465 unsigned int nargs;
466 tree return_type;
467 unification_kind_t strict;
468 int flags;
469 } template_unification;
470 /* Information about template instantiation failures. These are the
471 parameters passed to instantiate_template. */
472 struct {
473 tree tmpl;
474 tree targs;
475 } template_instantiation;
476 } u;
477 };
478
479 struct z_candidate {
480 /* The FUNCTION_DECL that will be called if this candidate is
481 selected by overload resolution. */
482 tree fn;
483 /* If not NULL_TREE, the first argument to use when calling this
484 function. */
485 tree first_arg;
486 /* The rest of the arguments to use when calling this function. If
487 there are no further arguments this may be NULL or it may be an
488 empty vector. */
489 const vec<tree, va_gc> *args;
490 /* The implicit conversion sequences for each of the arguments to
491 FN. */
492 conversion **convs;
493 /* The number of implicit conversion sequences. */
494 size_t num_convs;
495 /* If FN is a user-defined conversion, the standard conversion
496 sequence from the type returned by FN to the desired destination
497 type. */
498 conversion *second_conv;
499 struct rejection_reason *reason;
500 /* If FN is a member function, the binfo indicating the path used to
501 qualify the name of FN at the call site. This path is used to
502 determine whether or not FN is accessible if it is selected by
503 overload resolution. The DECL_CONTEXT of FN will always be a
504 (possibly improper) base of this binfo. */
505 tree access_path;
506 /* If FN is a non-static member function, the binfo indicating the
507 subobject to which the `this' pointer should be converted if FN
508 is selected by overload resolution. The type pointed to by
509 the `this' pointer must correspond to the most derived class
510 indicated by the CONVERSION_PATH. */
511 tree conversion_path;
512 tree template_decl;
513 tree explicit_targs;
514 candidate_warning *warnings;
515 z_candidate *next;
516 int viable;
517
518 /* The flags active in add_candidate. */
519 int flags;
520 };
521
522 /* Returns true iff T is a null pointer constant in the sense of
523 [conv.ptr]. */
524
525 bool
526 null_ptr_cst_p (tree t)
527 {
528 tree type = TREE_TYPE (t);
529
530 /* [conv.ptr]
531
532 A null pointer constant is an integer literal ([lex.icon]) with value
533 zero or a prvalue of type std::nullptr_t. */
534 if (NULLPTR_TYPE_P (type))
535 return true;
536
537 if (cxx_dialect >= cxx11)
538 {
539 STRIP_ANY_LOCATION_WRAPPER (t);
540
541 /* Core issue 903 says only literal 0 is a null pointer constant. */
542 if (TREE_CODE (t) == INTEGER_CST
543 && !TREE_OVERFLOW (t)
544 && TREE_CODE (type) == INTEGER_TYPE
545 && integer_zerop (t)
546 && !char_type_p (type))
547 return true;
548 }
549 else if (CP_INTEGRAL_TYPE_P (type))
550 {
551 t = fold_non_dependent_expr (t, tf_none);
552 STRIP_NOPS (t);
553 if (integer_zerop (t) && !TREE_OVERFLOW (t))
554 return true;
555 }
556
557 return false;
558 }
559
560 /* Returns true iff T is a null member pointer value (4.11). */
561
562 bool
563 null_member_pointer_value_p (tree t)
564 {
565 tree type = TREE_TYPE (t);
566 if (!type)
567 return false;
568 else if (TYPE_PTRMEMFUNC_P (type))
569 return (TREE_CODE (t) == CONSTRUCTOR
570 && CONSTRUCTOR_NELTS (t)
571 && integer_zerop (CONSTRUCTOR_ELT (t, 0)->value));
572 else if (TYPE_PTRDATAMEM_P (type))
573 return integer_all_onesp (t);
574 else
575 return false;
576 }
577
578 /* Returns nonzero if PARMLIST consists of only default parms,
579 ellipsis, and/or undeduced parameter packs. */
580
581 bool
582 sufficient_parms_p (const_tree parmlist)
583 {
584 for (; parmlist && parmlist != void_list_node;
585 parmlist = TREE_CHAIN (parmlist))
586 if (!TREE_PURPOSE (parmlist)
587 && !PACK_EXPANSION_P (TREE_VALUE (parmlist)))
588 return false;
589 return true;
590 }
591
592 /* Allocate N bytes of memory from the conversion obstack. The memory
593 is zeroed before being returned. */
594
595 static void *
596 conversion_obstack_alloc (size_t n)
597 {
598 void *p;
599 if (!conversion_obstack_initialized)
600 {
601 gcc_obstack_init (&conversion_obstack);
602 conversion_obstack_initialized = true;
603 }
604 p = obstack_alloc (&conversion_obstack, n);
605 memset (p, 0, n);
606 return p;
607 }
608
609 /* Allocate rejection reasons. */
610
611 static struct rejection_reason *
612 alloc_rejection (enum rejection_reason_code code)
613 {
614 struct rejection_reason *p;
615 p = (struct rejection_reason *) conversion_obstack_alloc (sizeof *p);
616 p->code = code;
617 return p;
618 }
619
620 static struct rejection_reason *
621 arity_rejection (tree first_arg, int expected, int actual)
622 {
623 struct rejection_reason *r = alloc_rejection (rr_arity);
624 int adjust = first_arg != NULL_TREE;
625 r->u.arity.expected = expected - adjust;
626 r->u.arity.actual = actual - adjust;
627 return r;
628 }
629
630 static struct rejection_reason *
631 arg_conversion_rejection (tree first_arg, int n_arg, tree from, tree to,
632 location_t loc)
633 {
634 struct rejection_reason *r = alloc_rejection (rr_arg_conversion);
635 int adjust = first_arg != NULL_TREE;
636 r->u.conversion.n_arg = n_arg - adjust;
637 r->u.conversion.from = from;
638 r->u.conversion.to_type = to;
639 r->u.conversion.loc = loc;
640 return r;
641 }
642
643 static struct rejection_reason *
644 bad_arg_conversion_rejection (tree first_arg, int n_arg, tree from, tree to,
645 location_t loc)
646 {
647 struct rejection_reason *r = alloc_rejection (rr_bad_arg_conversion);
648 int adjust = first_arg != NULL_TREE;
649 r->u.bad_conversion.n_arg = n_arg - adjust;
650 r->u.bad_conversion.from = from;
651 r->u.bad_conversion.to_type = to;
652 r->u.bad_conversion.loc = loc;
653 return r;
654 }
655
656 static struct rejection_reason *
657 explicit_conversion_rejection (tree from, tree to)
658 {
659 struct rejection_reason *r = alloc_rejection (rr_explicit_conversion);
660 r->u.conversion.n_arg = 0;
661 r->u.conversion.from = from;
662 r->u.conversion.to_type = to;
663 r->u.conversion.loc = UNKNOWN_LOCATION;
664 return r;
665 }
666
667 static struct rejection_reason *
668 template_conversion_rejection (tree from, tree to)
669 {
670 struct rejection_reason *r = alloc_rejection (rr_template_conversion);
671 r->u.conversion.n_arg = 0;
672 r->u.conversion.from = from;
673 r->u.conversion.to_type = to;
674 r->u.conversion.loc = UNKNOWN_LOCATION;
675 return r;
676 }
677
678 static struct rejection_reason *
679 template_unification_rejection (tree tmpl, tree explicit_targs, tree targs,
680 const tree *args, unsigned int nargs,
681 tree return_type, unification_kind_t strict,
682 int flags)
683 {
684 size_t args_n_bytes = sizeof (*args) * nargs;
685 tree *args1 = (tree *) conversion_obstack_alloc (args_n_bytes);
686 struct rejection_reason *r = alloc_rejection (rr_template_unification);
687 r->u.template_unification.tmpl = tmpl;
688 r->u.template_unification.explicit_targs = explicit_targs;
689 r->u.template_unification.num_targs = TREE_VEC_LENGTH (targs);
690 /* Copy args to our own storage. */
691 memcpy (args1, args, args_n_bytes);
692 r->u.template_unification.args = args1;
693 r->u.template_unification.nargs = nargs;
694 r->u.template_unification.return_type = return_type;
695 r->u.template_unification.strict = strict;
696 r->u.template_unification.flags = flags;
697 return r;
698 }
699
700 static struct rejection_reason *
701 template_unification_error_rejection (void)
702 {
703 return alloc_rejection (rr_template_unification);
704 }
705
706 static struct rejection_reason *
707 invalid_copy_with_fn_template_rejection (void)
708 {
709 struct rejection_reason *r = alloc_rejection (rr_invalid_copy);
710 return r;
711 }
712
713 static struct rejection_reason *
714 inherited_ctor_rejection (void)
715 {
716 struct rejection_reason *r = alloc_rejection (rr_inherited_ctor);
717 return r;
718 }
719
720 // Build a constraint failure record, saving information into the
721 // template_instantiation field of the rejection. If FN is not a template
722 // declaration, the TMPL member is the FN declaration and TARGS is empty.
723
724 static struct rejection_reason *
725 constraint_failure (tree fn)
726 {
727 struct rejection_reason *r = alloc_rejection (rr_constraint_failure);
728 if (tree ti = DECL_TEMPLATE_INFO (fn))
729 {
730 r->u.template_instantiation.tmpl = TI_TEMPLATE (ti);
731 r->u.template_instantiation.targs = TI_ARGS (ti);
732 }
733 else
734 {
735 r->u.template_instantiation.tmpl = fn;
736 r->u.template_instantiation.targs = NULL_TREE;
737 }
738 return r;
739 }
740
741 /* Dynamically allocate a conversion. */
742
743 static conversion *
744 alloc_conversion (conversion_kind kind)
745 {
746 conversion *c;
747 c = (conversion *) conversion_obstack_alloc (sizeof (conversion));
748 c->kind = kind;
749 return c;
750 }
751
752 /* Make sure that all memory on the conversion obstack has been
753 freed. */
754
755 void
756 validate_conversion_obstack (void)
757 {
758 if (conversion_obstack_initialized)
759 gcc_assert ((obstack_next_free (&conversion_obstack)
760 == obstack_base (&conversion_obstack)));
761 }
762
763 /* Dynamically allocate an array of N conversions. */
764
765 static conversion **
766 alloc_conversions (size_t n)
767 {
768 return (conversion **) conversion_obstack_alloc (n * sizeof (conversion *));
769 }
770
771 static conversion *
772 build_conv (conversion_kind code, tree type, conversion *from)
773 {
774 conversion *t;
775 conversion_rank rank = CONVERSION_RANK (from);
776
777 /* Note that the caller is responsible for filling in t->cand for
778 user-defined conversions. */
779 t = alloc_conversion (code);
780 t->type = type;
781 t->u.next = from;
782
783 switch (code)
784 {
785 case ck_ptr:
786 case ck_pmem:
787 case ck_base:
788 case ck_std:
789 if (rank < cr_std)
790 rank = cr_std;
791 break;
792
793 case ck_qual:
794 case ck_fnptr:
795 if (rank < cr_exact)
796 rank = cr_exact;
797 break;
798
799 default:
800 break;
801 }
802 t->rank = rank;
803 t->user_conv_p = (code == ck_user || from->user_conv_p);
804 t->bad_p = from->bad_p;
805 t->base_p = false;
806 return t;
807 }
808
809 /* Represent a conversion from CTOR, a braced-init-list, to TYPE, a
810 specialization of std::initializer_list<T>, if such a conversion is
811 possible. */
812
813 static conversion *
814 build_list_conv (tree type, tree ctor, int flags, tsubst_flags_t complain)
815 {
816 tree elttype = TREE_VEC_ELT (CLASSTYPE_TI_ARGS (type), 0);
817 unsigned len = CONSTRUCTOR_NELTS (ctor);
818 conversion **subconvs = alloc_conversions (len);
819 conversion *t;
820 unsigned i;
821 tree val;
822
823 /* Within a list-initialization we can have more user-defined
824 conversions. */
825 flags &= ~LOOKUP_NO_CONVERSION;
826 /* But no narrowing conversions. */
827 flags |= LOOKUP_NO_NARROWING;
828
829 /* Can't make an array of these types. */
830 if (TYPE_REF_P (elttype)
831 || TREE_CODE (elttype) == FUNCTION_TYPE
832 || VOID_TYPE_P (elttype))
833 return NULL;
834
835 FOR_EACH_CONSTRUCTOR_VALUE (CONSTRUCTOR_ELTS (ctor), i, val)
836 {
837 conversion *sub
838 = implicit_conversion (elttype, TREE_TYPE (val), val,
839 false, flags, complain);
840 if (sub == NULL)
841 return NULL;
842
843 subconvs[i] = sub;
844 }
845
846 t = alloc_conversion (ck_list);
847 t->type = type;
848 t->u.list = subconvs;
849 t->rank = cr_exact;
850
851 for (i = 0; i < len; ++i)
852 {
853 conversion *sub = subconvs[i];
854 if (sub->rank > t->rank)
855 t->rank = sub->rank;
856 if (sub->user_conv_p)
857 t->user_conv_p = true;
858 if (sub->bad_p)
859 t->bad_p = true;
860 }
861
862 return t;
863 }
864
865 /* Return the next conversion of the conversion chain (if applicable),
866 or NULL otherwise. Please use this function instead of directly
867 accessing fields of struct conversion. */
868
869 static conversion *
870 next_conversion (conversion *conv)
871 {
872 if (conv == NULL
873 || conv->kind == ck_identity
874 || conv->kind == ck_ambig
875 || conv->kind == ck_list)
876 return NULL;
877 return conv->u.next;
878 }
879
880 /* Subroutine of build_aggr_conv: check whether CTOR, a braced-init-list,
881 is a valid aggregate initializer for array type ATYPE. */
882
883 static bool
884 can_convert_array (tree atype, tree ctor, int flags, tsubst_flags_t complain)
885 {
886 unsigned i;
887 tree elttype = TREE_TYPE (atype);
888 for (i = 0; i < CONSTRUCTOR_NELTS (ctor); ++i)
889 {
890 tree val = CONSTRUCTOR_ELT (ctor, i)->value;
891 bool ok;
892 if (TREE_CODE (elttype) == ARRAY_TYPE
893 && TREE_CODE (val) == CONSTRUCTOR)
894 ok = can_convert_array (elttype, val, flags, complain);
895 else
896 ok = can_convert_arg (elttype, TREE_TYPE (val), val, flags,
897 complain);
898 if (!ok)
899 return false;
900 }
901 return true;
902 }
903
904 /* Helper for build_aggr_conv. Return true if FIELD is in PSET, or if
905 FIELD has ANON_AGGR_TYPE_P and any initializable field in there recursively
906 is in PSET. */
907
908 static bool
909 field_in_pset (hash_set<tree, true> &pset, tree field)
910 {
911 if (pset.contains (field))
912 return true;
913 if (ANON_AGGR_TYPE_P (TREE_TYPE (field)))
914 for (field = TYPE_FIELDS (TREE_TYPE (field));
915 field; field = DECL_CHAIN (field))
916 {
917 field = next_initializable_field (field);
918 if (field == NULL_TREE)
919 break;
920 if (field_in_pset (pset, field))
921 return true;
922 }
923 return false;
924 }
925
926 /* Represent a conversion from CTOR, a braced-init-list, to TYPE, an
927 aggregate class, if such a conversion is possible. */
928
929 static conversion *
930 build_aggr_conv (tree type, tree ctor, int flags, tsubst_flags_t complain)
931 {
932 unsigned HOST_WIDE_INT i = 0;
933 conversion *c;
934 tree field = next_initializable_field (TYPE_FIELDS (type));
935 tree empty_ctor = NULL_TREE;
936 hash_set<tree, true> pset;
937
938 /* We already called reshape_init in implicit_conversion. */
939
940 /* The conversions within the init-list aren't affected by the enclosing
941 context; they're always simple copy-initialization. */
942 flags = LOOKUP_IMPLICIT|LOOKUP_NO_NARROWING;
943
944 /* For designated initializers, verify that each initializer is convertible
945 to corresponding TREE_TYPE (ce->index) and mark those FIELD_DECLs as
946 visited. In the following loop then ignore already visited
947 FIELD_DECLs. */
948 if (CONSTRUCTOR_IS_DESIGNATED_INIT (ctor))
949 {
950 tree idx, val;
951 FOR_EACH_CONSTRUCTOR_ELT (CONSTRUCTOR_ELTS (ctor), i, idx, val)
952 {
953 if (idx && TREE_CODE (idx) == FIELD_DECL)
954 {
955 tree ftype = TREE_TYPE (idx);
956 bool ok;
957
958 if (TREE_CODE (ftype) == ARRAY_TYPE
959 && TREE_CODE (val) == CONSTRUCTOR)
960 ok = can_convert_array (ftype, val, flags, complain);
961 else
962 ok = can_convert_arg (ftype, TREE_TYPE (val), val, flags,
963 complain);
964
965 if (!ok)
966 return NULL;
967 /* For unions, there should be just one initializer. */
968 if (TREE_CODE (type) == UNION_TYPE)
969 {
970 field = NULL_TREE;
971 i = 1;
972 break;
973 }
974 pset.add (idx);
975 }
976 else
977 return NULL;
978 }
979 }
980
981 for (; field; field = next_initializable_field (DECL_CHAIN (field)))
982 {
983 tree ftype = TREE_TYPE (field);
984 tree val;
985 bool ok;
986
987 if (!pset.is_empty () && field_in_pset (pset, field))
988 continue;
989 if (i < CONSTRUCTOR_NELTS (ctor))
990 {
991 val = CONSTRUCTOR_ELT (ctor, i)->value;
992 ++i;
993 }
994 else if (DECL_INITIAL (field))
995 val = get_nsdmi (field, /*ctor*/false, complain);
996 else if (TYPE_REF_P (ftype))
997 /* Value-initialization of reference is ill-formed. */
998 return NULL;
999 else
1000 {
1001 if (empty_ctor == NULL_TREE)
1002 empty_ctor = build_constructor (init_list_type_node, NULL);
1003 val = empty_ctor;
1004 }
1005
1006 if (TREE_CODE (ftype) == ARRAY_TYPE
1007 && TREE_CODE (val) == CONSTRUCTOR)
1008 ok = can_convert_array (ftype, val, flags, complain);
1009 else
1010 ok = can_convert_arg (ftype, TREE_TYPE (val), val, flags,
1011 complain);
1012
1013 if (!ok)
1014 return NULL;
1015
1016 if (TREE_CODE (type) == UNION_TYPE)
1017 break;
1018 }
1019
1020 if (i < CONSTRUCTOR_NELTS (ctor))
1021 return NULL;
1022
1023 c = alloc_conversion (ck_aggr);
1024 c->type = type;
1025 c->rank = cr_exact;
1026 c->user_conv_p = true;
1027 c->check_narrowing = true;
1028 c->u.next = NULL;
1029 return c;
1030 }
1031
1032 /* Represent a conversion from CTOR, a braced-init-list, to TYPE, an
1033 array type, if such a conversion is possible. */
1034
1035 static conversion *
1036 build_array_conv (tree type, tree ctor, int flags, tsubst_flags_t complain)
1037 {
1038 conversion *c;
1039 unsigned HOST_WIDE_INT len = CONSTRUCTOR_NELTS (ctor);
1040 tree elttype = TREE_TYPE (type);
1041 unsigned i;
1042 tree val;
1043 bool bad = false;
1044 bool user = false;
1045 enum conversion_rank rank = cr_exact;
1046
1047 /* We might need to propagate the size from the element to the array. */
1048 complete_type (type);
1049
1050 if (TYPE_DOMAIN (type)
1051 && !variably_modified_type_p (TYPE_DOMAIN (type), NULL_TREE))
1052 {
1053 unsigned HOST_WIDE_INT alen = tree_to_uhwi (array_type_nelts_top (type));
1054 if (alen < len)
1055 return NULL;
1056 }
1057
1058 flags = LOOKUP_IMPLICIT|LOOKUP_NO_NARROWING;
1059
1060 FOR_EACH_CONSTRUCTOR_VALUE (CONSTRUCTOR_ELTS (ctor), i, val)
1061 {
1062 conversion *sub
1063 = implicit_conversion (elttype, TREE_TYPE (val), val,
1064 false, flags, complain);
1065 if (sub == NULL)
1066 return NULL;
1067
1068 if (sub->rank > rank)
1069 rank = sub->rank;
1070 if (sub->user_conv_p)
1071 user = true;
1072 if (sub->bad_p)
1073 bad = true;
1074 }
1075
1076 c = alloc_conversion (ck_aggr);
1077 c->type = type;
1078 c->rank = rank;
1079 c->user_conv_p = user;
1080 c->bad_p = bad;
1081 c->u.next = NULL;
1082 return c;
1083 }
1084
1085 /* Represent a conversion from CTOR, a braced-init-list, to TYPE, a
1086 complex type, if such a conversion is possible. */
1087
1088 static conversion *
1089 build_complex_conv (tree type, tree ctor, int flags,
1090 tsubst_flags_t complain)
1091 {
1092 conversion *c;
1093 unsigned HOST_WIDE_INT len = CONSTRUCTOR_NELTS (ctor);
1094 tree elttype = TREE_TYPE (type);
1095 unsigned i;
1096 tree val;
1097 bool bad = false;
1098 bool user = false;
1099 enum conversion_rank rank = cr_exact;
1100
1101 if (len != 2)
1102 return NULL;
1103
1104 flags = LOOKUP_IMPLICIT|LOOKUP_NO_NARROWING;
1105
1106 FOR_EACH_CONSTRUCTOR_VALUE (CONSTRUCTOR_ELTS (ctor), i, val)
1107 {
1108 conversion *sub
1109 = implicit_conversion (elttype, TREE_TYPE (val), val,
1110 false, flags, complain);
1111 if (sub == NULL)
1112 return NULL;
1113
1114 if (sub->rank > rank)
1115 rank = sub->rank;
1116 if (sub->user_conv_p)
1117 user = true;
1118 if (sub->bad_p)
1119 bad = true;
1120 }
1121
1122 c = alloc_conversion (ck_aggr);
1123 c->type = type;
1124 c->rank = rank;
1125 c->user_conv_p = user;
1126 c->bad_p = bad;
1127 c->u.next = NULL;
1128 return c;
1129 }
1130
1131 /* Build a representation of the identity conversion from EXPR to
1132 itself. The TYPE should match the type of EXPR, if EXPR is non-NULL. */
1133
1134 static conversion *
1135 build_identity_conv (tree type, tree expr)
1136 {
1137 conversion *c;
1138
1139 c = alloc_conversion (ck_identity);
1140 c->type = type;
1141 c->u.expr = expr;
1142
1143 return c;
1144 }
1145
1146 /* Converting from EXPR to TYPE was ambiguous in the sense that there
1147 were multiple user-defined conversions to accomplish the job.
1148 Build a conversion that indicates that ambiguity. */
1149
1150 static conversion *
1151 build_ambiguous_conv (tree type, tree expr)
1152 {
1153 conversion *c;
1154
1155 c = alloc_conversion (ck_ambig);
1156 c->type = type;
1157 c->u.expr = expr;
1158
1159 return c;
1160 }
1161
1162 tree
1163 strip_top_quals (tree t)
1164 {
1165 if (TREE_CODE (t) == ARRAY_TYPE)
1166 return t;
1167 return cp_build_qualified_type (t, 0);
1168 }
1169
1170 /* Returns the standard conversion path (see [conv]) from type FROM to type
1171 TO, if any. For proper handling of null pointer constants, you must
1172 also pass the expression EXPR to convert from. If C_CAST_P is true,
1173 this conversion is coming from a C-style cast. */
1174
1175 static conversion *
1176 standard_conversion (tree to, tree from, tree expr, bool c_cast_p,
1177 int flags, tsubst_flags_t complain)
1178 {
1179 enum tree_code fcode, tcode;
1180 conversion *conv;
1181 bool fromref = false;
1182 tree qualified_to;
1183
1184 to = non_reference (to);
1185 if (TYPE_REF_P (from))
1186 {
1187 fromref = true;
1188 from = TREE_TYPE (from);
1189 }
1190 qualified_to = to;
1191 to = strip_top_quals (to);
1192 from = strip_top_quals (from);
1193
1194 if (expr && type_unknown_p (expr))
1195 {
1196 if (TYPE_PTRFN_P (to) || TYPE_PTRMEMFUNC_P (to))
1197 {
1198 tsubst_flags_t tflags = tf_conv;
1199 expr = instantiate_type (to, expr, tflags);
1200 if (expr == error_mark_node)
1201 return NULL;
1202 from = TREE_TYPE (expr);
1203 }
1204 else if (TREE_CODE (to) == BOOLEAN_TYPE)
1205 {
1206 /* Necessary for eg, TEMPLATE_ID_EXPRs (c++/50961). */
1207 expr = resolve_nondeduced_context (expr, complain);
1208 from = TREE_TYPE (expr);
1209 }
1210 }
1211
1212 fcode = TREE_CODE (from);
1213 tcode = TREE_CODE (to);
1214
1215 conv = build_identity_conv (from, expr);
1216 if (fcode == FUNCTION_TYPE || fcode == ARRAY_TYPE)
1217 {
1218 from = type_decays_to (from);
1219 fcode = TREE_CODE (from);
1220 /* Tell convert_like_real that we're using the address. */
1221 conv->rvaluedness_matches_p = true;
1222 conv = build_conv (ck_lvalue, from, conv);
1223 }
1224 /* Wrapping a ck_rvalue around a class prvalue (as a result of using
1225 obvalue_p) seems odd, since it's already a prvalue, but that's how we
1226 express the copy constructor call required by copy-initialization. */
1227 else if (fromref || (expr && obvalue_p (expr)))
1228 {
1229 if (expr)
1230 {
1231 tree bitfield_type;
1232 bitfield_type = is_bitfield_expr_with_lowered_type (expr);
1233 if (bitfield_type)
1234 {
1235 from = strip_top_quals (bitfield_type);
1236 fcode = TREE_CODE (from);
1237 }
1238 }
1239 conv = build_conv (ck_rvalue, from, conv);
1240 if (flags & LOOKUP_PREFER_RVALUE)
1241 /* Tell convert_like_real to set LOOKUP_PREFER_RVALUE. */
1242 conv->rvaluedness_matches_p = true;
1243 }
1244
1245 /* Allow conversion between `__complex__' data types. */
1246 if (tcode == COMPLEX_TYPE && fcode == COMPLEX_TYPE)
1247 {
1248 /* The standard conversion sequence to convert FROM to TO is
1249 the standard conversion sequence to perform componentwise
1250 conversion. */
1251 conversion *part_conv = standard_conversion
1252 (TREE_TYPE (to), TREE_TYPE (from), NULL_TREE, c_cast_p, flags,
1253 complain);
1254
1255 if (part_conv)
1256 {
1257 conv = build_conv (part_conv->kind, to, conv);
1258 conv->rank = part_conv->rank;
1259 }
1260 else
1261 conv = NULL;
1262
1263 return conv;
1264 }
1265
1266 if (same_type_p (from, to))
1267 {
1268 if (CLASS_TYPE_P (to) && conv->kind == ck_rvalue)
1269 conv->type = qualified_to;
1270 return conv;
1271 }
1272
1273 /* [conv.ptr]
1274 A null pointer constant can be converted to a pointer type; ... A
1275 null pointer constant of integral type can be converted to an
1276 rvalue of type std::nullptr_t. */
1277 if ((tcode == POINTER_TYPE || TYPE_PTRMEM_P (to)
1278 || NULLPTR_TYPE_P (to))
1279 && ((expr && null_ptr_cst_p (expr))
1280 || NULLPTR_TYPE_P (from)))
1281 conv = build_conv (ck_std, to, conv);
1282 else if ((tcode == INTEGER_TYPE && fcode == POINTER_TYPE)
1283 || (tcode == POINTER_TYPE && fcode == INTEGER_TYPE))
1284 {
1285 /* For backwards brain damage compatibility, allow interconversion of
1286 pointers and integers with a pedwarn. */
1287 conv = build_conv (ck_std, to, conv);
1288 conv->bad_p = true;
1289 }
1290 else if (UNSCOPED_ENUM_P (to) && fcode == INTEGER_TYPE)
1291 {
1292 /* For backwards brain damage compatibility, allow interconversion of
1293 enums and integers with a pedwarn. */
1294 conv = build_conv (ck_std, to, conv);
1295 conv->bad_p = true;
1296 }
1297 else if ((tcode == POINTER_TYPE && fcode == POINTER_TYPE)
1298 || (TYPE_PTRDATAMEM_P (to) && TYPE_PTRDATAMEM_P (from)))
1299 {
1300 tree to_pointee;
1301 tree from_pointee;
1302
1303 if (tcode == POINTER_TYPE)
1304 {
1305 to_pointee = TREE_TYPE (to);
1306 from_pointee = TREE_TYPE (from);
1307
1308 /* Since this is the target of a pointer, it can't have function
1309 qualifiers, so any TYPE_QUALS must be for attributes const or
1310 noreturn. Strip them. */
1311 if (TREE_CODE (to_pointee) == FUNCTION_TYPE
1312 && TYPE_QUALS (to_pointee))
1313 to_pointee = build_qualified_type (to_pointee, TYPE_UNQUALIFIED);
1314 if (TREE_CODE (from_pointee) == FUNCTION_TYPE
1315 && TYPE_QUALS (from_pointee))
1316 from_pointee = build_qualified_type (from_pointee, TYPE_UNQUALIFIED);
1317 }
1318 else
1319 {
1320 to_pointee = TYPE_PTRMEM_POINTED_TO_TYPE (to);
1321 from_pointee = TYPE_PTRMEM_POINTED_TO_TYPE (from);
1322 }
1323
1324 if (tcode == POINTER_TYPE
1325 && same_type_ignoring_top_level_qualifiers_p (from_pointee,
1326 to_pointee))
1327 ;
1328 else if (VOID_TYPE_P (to_pointee)
1329 && !TYPE_PTRDATAMEM_P (from)
1330 && TREE_CODE (from_pointee) != FUNCTION_TYPE)
1331 {
1332 tree nfrom = TREE_TYPE (from);
1333 /* Don't try to apply restrict to void. */
1334 int quals = cp_type_quals (nfrom) & ~TYPE_QUAL_RESTRICT;
1335 from_pointee = cp_build_qualified_type (void_type_node, quals);
1336 from = build_pointer_type (from_pointee);
1337 conv = build_conv (ck_ptr, from, conv);
1338 }
1339 else if (TYPE_PTRDATAMEM_P (from))
1340 {
1341 tree fbase = TYPE_PTRMEM_CLASS_TYPE (from);
1342 tree tbase = TYPE_PTRMEM_CLASS_TYPE (to);
1343
1344 if (same_type_p (fbase, tbase))
1345 /* No base conversion needed. */;
1346 else if (DERIVED_FROM_P (fbase, tbase)
1347 && (same_type_ignoring_top_level_qualifiers_p
1348 (from_pointee, to_pointee)))
1349 {
1350 from = build_ptrmem_type (tbase, from_pointee);
1351 conv = build_conv (ck_pmem, from, conv);
1352 }
1353 else
1354 return NULL;
1355 }
1356 else if (CLASS_TYPE_P (from_pointee)
1357 && CLASS_TYPE_P (to_pointee)
1358 /* [conv.ptr]
1359
1360 An rvalue of type "pointer to cv D," where D is a
1361 class type, can be converted to an rvalue of type
1362 "pointer to cv B," where B is a base class (clause
1363 _class.derived_) of D. If B is an inaccessible
1364 (clause _class.access_) or ambiguous
1365 (_class.member.lookup_) base class of D, a program
1366 that necessitates this conversion is ill-formed.
1367 Therefore, we use DERIVED_FROM_P, and do not check
1368 access or uniqueness. */
1369 && DERIVED_FROM_P (to_pointee, from_pointee))
1370 {
1371 from_pointee
1372 = cp_build_qualified_type (to_pointee,
1373 cp_type_quals (from_pointee));
1374 from = build_pointer_type (from_pointee);
1375 conv = build_conv (ck_ptr, from, conv);
1376 conv->base_p = true;
1377 }
1378
1379 if (same_type_p (from, to))
1380 /* OK */;
1381 else if (c_cast_p && comp_ptr_ttypes_const (to, from))
1382 /* In a C-style cast, we ignore CV-qualification because we
1383 are allowed to perform a static_cast followed by a
1384 const_cast. */
1385 conv = build_conv (ck_qual, to, conv);
1386 else if (!c_cast_p && comp_ptr_ttypes (to_pointee, from_pointee))
1387 conv = build_conv (ck_qual, to, conv);
1388 else if (expr && string_conv_p (to, expr, 0))
1389 /* converting from string constant to char *. */
1390 conv = build_conv (ck_qual, to, conv);
1391 else if (fnptr_conv_p (to, from))
1392 conv = build_conv (ck_fnptr, to, conv);
1393 /* Allow conversions among compatible ObjC pointer types (base
1394 conversions have been already handled above). */
1395 else if (c_dialect_objc ()
1396 && objc_compare_types (to, from, -4, NULL_TREE))
1397 conv = build_conv (ck_ptr, to, conv);
1398 else if (ptr_reasonably_similar (to_pointee, from_pointee))
1399 {
1400 conv = build_conv (ck_ptr, to, conv);
1401 conv->bad_p = true;
1402 }
1403 else
1404 return NULL;
1405
1406 from = to;
1407 }
1408 else if (TYPE_PTRMEMFUNC_P (to) && TYPE_PTRMEMFUNC_P (from))
1409 {
1410 tree fromfn = TREE_TYPE (TYPE_PTRMEMFUNC_FN_TYPE (from));
1411 tree tofn = TREE_TYPE (TYPE_PTRMEMFUNC_FN_TYPE (to));
1412 tree fbase = class_of_this_parm (fromfn);
1413 tree tbase = class_of_this_parm (tofn);
1414
1415 if (!DERIVED_FROM_P (fbase, tbase))
1416 return NULL;
1417
1418 tree fstat = static_fn_type (fromfn);
1419 tree tstat = static_fn_type (tofn);
1420 if (same_type_p (tstat, fstat)
1421 || fnptr_conv_p (tstat, fstat))
1422 /* OK */;
1423 else
1424 return NULL;
1425
1426 if (!same_type_p (fbase, tbase))
1427 {
1428 from = build_memfn_type (fstat,
1429 tbase,
1430 cp_type_quals (tbase),
1431 type_memfn_rqual (tofn));
1432 from = build_ptrmemfunc_type (build_pointer_type (from));
1433 conv = build_conv (ck_pmem, from, conv);
1434 conv->base_p = true;
1435 }
1436 if (fnptr_conv_p (tstat, fstat))
1437 conv = build_conv (ck_fnptr, to, conv);
1438 }
1439 else if (tcode == BOOLEAN_TYPE)
1440 {
1441 /* [conv.bool]
1442
1443 A prvalue of arithmetic, unscoped enumeration, pointer, or pointer
1444 to member type can be converted to a prvalue of type bool. ...
1445 For direct-initialization (8.5 [dcl.init]), a prvalue of type
1446 std::nullptr_t can be converted to a prvalue of type bool; */
1447 if (ARITHMETIC_TYPE_P (from)
1448 || UNSCOPED_ENUM_P (from)
1449 || fcode == POINTER_TYPE
1450 || TYPE_PTRMEM_P (from)
1451 || NULLPTR_TYPE_P (from))
1452 {
1453 conv = build_conv (ck_std, to, conv);
1454 if (fcode == POINTER_TYPE
1455 || TYPE_PTRDATAMEM_P (from)
1456 || (TYPE_PTRMEMFUNC_P (from)
1457 && conv->rank < cr_pbool)
1458 || NULLPTR_TYPE_P (from))
1459 conv->rank = cr_pbool;
1460 if (NULLPTR_TYPE_P (from) && (flags & LOOKUP_ONLYCONVERTING))
1461 conv->bad_p = true;
1462 if (flags & LOOKUP_NO_NARROWING)
1463 conv->check_narrowing = true;
1464 return conv;
1465 }
1466
1467 return NULL;
1468 }
1469 /* We don't check for ENUMERAL_TYPE here because there are no standard
1470 conversions to enum type. */
1471 /* As an extension, allow conversion to complex type. */
1472 else if (ARITHMETIC_TYPE_P (to))
1473 {
1474 if (! (INTEGRAL_CODE_P (fcode)
1475 || (fcode == REAL_TYPE && !(flags & LOOKUP_NO_NON_INTEGRAL)))
1476 || SCOPED_ENUM_P (from))
1477 return NULL;
1478
1479 /* If we're parsing an enum with no fixed underlying type, we're
1480 dealing with an incomplete type, which renders the conversion
1481 ill-formed. */
1482 if (!COMPLETE_TYPE_P (from))
1483 return NULL;
1484
1485 conv = build_conv (ck_std, to, conv);
1486
1487 /* Give this a better rank if it's a promotion. */
1488 if (same_type_p (to, type_promotes_to (from))
1489 && next_conversion (conv)->rank <= cr_promotion)
1490 conv->rank = cr_promotion;
1491 }
1492 else if (fcode == VECTOR_TYPE && tcode == VECTOR_TYPE
1493 && vector_types_convertible_p (from, to, false))
1494 return build_conv (ck_std, to, conv);
1495 else if (MAYBE_CLASS_TYPE_P (to) && MAYBE_CLASS_TYPE_P (from)
1496 && is_properly_derived_from (from, to))
1497 {
1498 if (conv->kind == ck_rvalue)
1499 conv = next_conversion (conv);
1500 conv = build_conv (ck_base, to, conv);
1501 /* The derived-to-base conversion indicates the initialization
1502 of a parameter with base type from an object of a derived
1503 type. A temporary object is created to hold the result of
1504 the conversion unless we're binding directly to a reference. */
1505 conv->need_temporary_p = !(flags & LOOKUP_NO_TEMP_BIND);
1506 if (flags & LOOKUP_PREFER_RVALUE)
1507 /* Tell convert_like_real to set LOOKUP_PREFER_RVALUE. */
1508 conv->rvaluedness_matches_p = true;
1509 }
1510 else
1511 return NULL;
1512
1513 if (flags & LOOKUP_NO_NARROWING)
1514 conv->check_narrowing = true;
1515
1516 return conv;
1517 }
1518
1519 /* Returns nonzero if T1 is reference-related to T2. */
1520
1521 bool
1522 reference_related_p (tree t1, tree t2)
1523 {
1524 if (t1 == error_mark_node || t2 == error_mark_node)
1525 return false;
1526
1527 t1 = TYPE_MAIN_VARIANT (t1);
1528 t2 = TYPE_MAIN_VARIANT (t2);
1529
1530 /* [dcl.init.ref]
1531
1532 Given types "cv1 T1" and "cv2 T2," "cv1 T1" is reference-related
1533 to "cv2 T2" if T1 is the same type as T2, or T1 is a base class
1534 of T2. */
1535 return (same_type_p (t1, t2)
1536 || (CLASS_TYPE_P (t1) && CLASS_TYPE_P (t2)
1537 && DERIVED_FROM_P (t1, t2)));
1538 }
1539
1540 /* Returns nonzero if T1 is reference-compatible with T2. */
1541
1542 static bool
1543 reference_compatible_p (tree t1, tree t2)
1544 {
1545 /* [dcl.init.ref]
1546
1547 "cv1 T1" is reference compatible with "cv2 T2" if
1548 * T1 is reference-related to T2 or
1549 * T2 is "noexcept function" and T1 is "function", where the
1550 function types are otherwise the same,
1551 and cv1 is the same cv-qualification as, or greater cv-qualification
1552 than, cv2. */
1553 return ((reference_related_p (t1, t2)
1554 || fnptr_conv_p (t1, t2))
1555 && at_least_as_qualified_p (t1, t2));
1556 }
1557
1558 /* A reference of the indicated TYPE is being bound directly to the
1559 expression represented by the implicit conversion sequence CONV.
1560 Return a conversion sequence for this binding. */
1561
1562 static conversion *
1563 direct_reference_binding (tree type, conversion *conv)
1564 {
1565 tree t;
1566
1567 gcc_assert (TYPE_REF_P (type));
1568 gcc_assert (!TYPE_REF_P (conv->type));
1569
1570 t = TREE_TYPE (type);
1571
1572 if (conv->kind == ck_identity)
1573 /* Mark the identity conv as to not decay to rvalue. */
1574 conv->rvaluedness_matches_p = true;
1575
1576 /* [over.ics.rank]
1577
1578 When a parameter of reference type binds directly
1579 (_dcl.init.ref_) to an argument expression, the implicit
1580 conversion sequence is the identity conversion, unless the
1581 argument expression has a type that is a derived class of the
1582 parameter type, in which case the implicit conversion sequence is
1583 a derived-to-base Conversion.
1584
1585 If the parameter binds directly to the result of applying a
1586 conversion function to the argument expression, the implicit
1587 conversion sequence is a user-defined conversion sequence
1588 (_over.ics.user_), with the second standard conversion sequence
1589 either an identity conversion or, if the conversion function
1590 returns an entity of a type that is a derived class of the
1591 parameter type, a derived-to-base conversion. */
1592 if (is_properly_derived_from (conv->type, t))
1593 {
1594 /* Represent the derived-to-base conversion. */
1595 conv = build_conv (ck_base, t, conv);
1596 /* We will actually be binding to the base-class subobject in
1597 the derived class, so we mark this conversion appropriately.
1598 That way, convert_like knows not to generate a temporary. */
1599 conv->need_temporary_p = false;
1600 }
1601
1602 return build_conv (ck_ref_bind, type, conv);
1603 }
1604
1605 /* Returns the conversion path from type FROM to reference type TO for
1606 purposes of reference binding. For lvalue binding, either pass a
1607 reference type to FROM or an lvalue expression to EXPR. If the
1608 reference will be bound to a temporary, NEED_TEMPORARY_P is set for
1609 the conversion returned. If C_CAST_P is true, this
1610 conversion is coming from a C-style cast. */
1611
1612 static conversion *
1613 reference_binding (tree rto, tree rfrom, tree expr, bool c_cast_p, int flags,
1614 tsubst_flags_t complain)
1615 {
1616 conversion *conv = NULL;
1617 tree to = TREE_TYPE (rto);
1618 tree from = rfrom;
1619 tree tfrom;
1620 bool related_p;
1621 bool compatible_p;
1622 cp_lvalue_kind gl_kind;
1623 bool is_lvalue;
1624
1625 if (TREE_CODE (to) == FUNCTION_TYPE && expr && type_unknown_p (expr))
1626 {
1627 expr = instantiate_type (to, expr, tf_none);
1628 if (expr == error_mark_node)
1629 return NULL;
1630 from = TREE_TYPE (expr);
1631 }
1632
1633 bool copy_list_init = false;
1634 if (expr && BRACE_ENCLOSED_INITIALIZER_P (expr))
1635 {
1636 maybe_warn_cpp0x (CPP0X_INITIALIZER_LISTS);
1637 /* DR 1288: Otherwise, if the initializer list has a single element
1638 of type E and ... [T's] referenced type is reference-related to E,
1639 the object or reference is initialized from that element... */
1640 if (CONSTRUCTOR_NELTS (expr) == 1)
1641 {
1642 tree elt = CONSTRUCTOR_ELT (expr, 0)->value;
1643 if (error_operand_p (elt))
1644 return NULL;
1645 tree etype = TREE_TYPE (elt);
1646 if (reference_related_p (to, etype))
1647 {
1648 expr = elt;
1649 from = etype;
1650 goto skip;
1651 }
1652 }
1653 /* Otherwise, if T is a reference type, a prvalue temporary of the type
1654 referenced by T is copy-list-initialized, and the reference is bound
1655 to that temporary. */
1656 copy_list_init = true;
1657 skip:;
1658 }
1659
1660 if (TYPE_REF_P (from))
1661 {
1662 from = TREE_TYPE (from);
1663 if (!TYPE_REF_IS_RVALUE (rfrom)
1664 || TREE_CODE (from) == FUNCTION_TYPE)
1665 gl_kind = clk_ordinary;
1666 else
1667 gl_kind = clk_rvalueref;
1668 }
1669 else if (expr)
1670 gl_kind = lvalue_kind (expr);
1671 else if (CLASS_TYPE_P (from)
1672 || TREE_CODE (from) == ARRAY_TYPE)
1673 gl_kind = clk_class;
1674 else
1675 gl_kind = clk_none;
1676
1677 /* Don't allow a class prvalue when LOOKUP_NO_TEMP_BIND. */
1678 if ((flags & LOOKUP_NO_TEMP_BIND)
1679 && (gl_kind & clk_class))
1680 gl_kind = clk_none;
1681
1682 /* Same mask as real_lvalue_p. */
1683 is_lvalue = gl_kind && !(gl_kind & (clk_rvalueref|clk_class));
1684
1685 tfrom = from;
1686 if ((gl_kind & clk_bitfield) != 0)
1687 tfrom = unlowered_expr_type (expr);
1688
1689 /* Figure out whether or not the types are reference-related and
1690 reference compatible. We have to do this after stripping
1691 references from FROM. */
1692 related_p = reference_related_p (to, tfrom);
1693 /* If this is a C cast, first convert to an appropriately qualified
1694 type, so that we can later do a const_cast to the desired type. */
1695 if (related_p && c_cast_p
1696 && !at_least_as_qualified_p (to, tfrom))
1697 to = cp_build_qualified_type (to, cp_type_quals (tfrom));
1698 compatible_p = reference_compatible_p (to, tfrom);
1699
1700 /* Directly bind reference when target expression's type is compatible with
1701 the reference and expression is an lvalue. In DR391, the wording in
1702 [8.5.3/5 dcl.init.ref] is changed to also require direct bindings for
1703 const and rvalue references to rvalues of compatible class type.
1704 We should also do direct bindings for non-class xvalues. */
1705 if ((related_p || compatible_p) && gl_kind)
1706 {
1707 /* [dcl.init.ref]
1708
1709 If the initializer expression
1710
1711 -- is an lvalue (but not an lvalue for a bit-field), and "cv1 T1"
1712 is reference-compatible with "cv2 T2,"
1713
1714 the reference is bound directly to the initializer expression
1715 lvalue.
1716
1717 [...]
1718 If the initializer expression is an rvalue, with T2 a class type,
1719 and "cv1 T1" is reference-compatible with "cv2 T2", the reference
1720 is bound to the object represented by the rvalue or to a sub-object
1721 within that object. */
1722
1723 conv = build_identity_conv (tfrom, expr);
1724 conv = direct_reference_binding (rto, conv);
1725
1726 if (TYPE_REF_P (rfrom))
1727 /* Handle rvalue reference to function properly. */
1728 conv->rvaluedness_matches_p
1729 = (TYPE_REF_IS_RVALUE (rto) == TYPE_REF_IS_RVALUE (rfrom));
1730 else
1731 conv->rvaluedness_matches_p
1732 = (TYPE_REF_IS_RVALUE (rto) == !is_lvalue);
1733
1734 if ((gl_kind & clk_bitfield) != 0
1735 || ((gl_kind & clk_packed) != 0 && !TYPE_PACKED (to)))
1736 /* For the purposes of overload resolution, we ignore the fact
1737 this expression is a bitfield or packed field. (In particular,
1738 [over.ics.ref] says specifically that a function with a
1739 non-const reference parameter is viable even if the
1740 argument is a bitfield.)
1741
1742 However, when we actually call the function we must create
1743 a temporary to which to bind the reference. If the
1744 reference is volatile, or isn't const, then we cannot make
1745 a temporary, so we just issue an error when the conversion
1746 actually occurs. */
1747 conv->need_temporary_p = true;
1748
1749 /* Don't allow binding of lvalues (other than function lvalues) to
1750 rvalue references. */
1751 if (is_lvalue && TYPE_REF_IS_RVALUE (rto)
1752 && TREE_CODE (to) != FUNCTION_TYPE)
1753 conv->bad_p = true;
1754
1755 /* Nor the reverse. */
1756 if (!is_lvalue && !TYPE_REF_IS_RVALUE (rto)
1757 && (!CP_TYPE_CONST_NON_VOLATILE_P (to)
1758 || (flags & LOOKUP_NO_RVAL_BIND))
1759 && TREE_CODE (to) != FUNCTION_TYPE)
1760 conv->bad_p = true;
1761
1762 if (!compatible_p)
1763 conv->bad_p = true;
1764
1765 return conv;
1766 }
1767 /* [class.conv.fct] A conversion function is never used to convert a
1768 (possibly cv-qualified) object to the (possibly cv-qualified) same
1769 object type (or a reference to it), to a (possibly cv-qualified) base
1770 class of that type (or a reference to it).... */
1771 else if (CLASS_TYPE_P (from) && !related_p
1772 && !(flags & LOOKUP_NO_CONVERSION))
1773 {
1774 /* [dcl.init.ref]
1775
1776 If the initializer expression
1777
1778 -- has a class type (i.e., T2 is a class type) can be
1779 implicitly converted to an lvalue of type "cv3 T3," where
1780 "cv1 T1" is reference-compatible with "cv3 T3". (this
1781 conversion is selected by enumerating the applicable
1782 conversion functions (_over.match.ref_) and choosing the
1783 best one through overload resolution. (_over.match_).
1784
1785 the reference is bound to the lvalue result of the conversion
1786 in the second case. */
1787 z_candidate *cand = build_user_type_conversion_1 (rto, expr, flags,
1788 complain);
1789 if (cand)
1790 return cand->second_conv;
1791 }
1792
1793 /* From this point on, we conceptually need temporaries, even if we
1794 elide them. Only the cases above are "direct bindings". */
1795 if (flags & LOOKUP_NO_TEMP_BIND)
1796 return NULL;
1797
1798 /* [over.ics.rank]
1799
1800 When a parameter of reference type is not bound directly to an
1801 argument expression, the conversion sequence is the one required
1802 to convert the argument expression to the underlying type of the
1803 reference according to _over.best.ics_. Conceptually, this
1804 conversion sequence corresponds to copy-initializing a temporary
1805 of the underlying type with the argument expression. Any
1806 difference in top-level cv-qualification is subsumed by the
1807 initialization itself and does not constitute a conversion. */
1808
1809 /* [dcl.init.ref]
1810
1811 Otherwise, the reference shall be an lvalue reference to a
1812 non-volatile const type, or the reference shall be an rvalue
1813 reference.
1814
1815 We try below to treat this as a bad conversion to improve diagnostics,
1816 but if TO is an incomplete class, we need to reject this conversion
1817 now to avoid unnecessary instantiation. */
1818 if (!CP_TYPE_CONST_NON_VOLATILE_P (to) && !TYPE_REF_IS_RVALUE (rto)
1819 && !COMPLETE_TYPE_P (to))
1820 return NULL;
1821
1822 /* We're generating a temporary now, but don't bind any more in the
1823 conversion (specifically, don't slice the temporary returned by a
1824 conversion operator). */
1825 flags |= LOOKUP_NO_TEMP_BIND;
1826
1827 /* Core issue 899: When [copy-]initializing a temporary to be bound
1828 to the first parameter of a copy constructor (12.8) called with
1829 a single argument in the context of direct-initialization,
1830 explicit conversion functions are also considered.
1831
1832 So don't set LOOKUP_ONLYCONVERTING in that case. */
1833 if (!(flags & LOOKUP_COPY_PARM))
1834 flags |= LOOKUP_ONLYCONVERTING;
1835
1836 if (!conv)
1837 conv = implicit_conversion (to, from, expr, c_cast_p,
1838 flags, complain);
1839 if (!conv)
1840 return NULL;
1841
1842 if (conv->user_conv_p)
1843 {
1844 if (copy_list_init)
1845 /* Remember this was copy-list-initialization. */
1846 conv->need_temporary_p = true;
1847
1848 /* If initializing the temporary used a conversion function,
1849 recalculate the second conversion sequence. */
1850 for (conversion *t = conv; t; t = next_conversion (t))
1851 if (t->kind == ck_user
1852 && DECL_CONV_FN_P (t->cand->fn))
1853 {
1854 tree ftype = TREE_TYPE (TREE_TYPE (t->cand->fn));
1855 /* A prvalue of non-class type is cv-unqualified. */
1856 if (!TYPE_REF_P (ftype) && !CLASS_TYPE_P (ftype))
1857 ftype = cv_unqualified (ftype);
1858 int sflags = (flags|LOOKUP_NO_CONVERSION)&~LOOKUP_NO_TEMP_BIND;
1859 conversion *new_second
1860 = reference_binding (rto, ftype, NULL_TREE, c_cast_p,
1861 sflags, complain);
1862 if (!new_second)
1863 return NULL;
1864 return merge_conversion_sequences (t, new_second);
1865 }
1866 }
1867
1868 conv = build_conv (ck_ref_bind, rto, conv);
1869 /* This reference binding, unlike those above, requires the
1870 creation of a temporary. */
1871 conv->need_temporary_p = true;
1872 conv->rvaluedness_matches_p = TYPE_REF_IS_RVALUE (rto);
1873
1874 /* [dcl.init.ref]
1875
1876 Otherwise, the reference shall be an lvalue reference to a
1877 non-volatile const type, or the reference shall be an rvalue
1878 reference. */
1879 if (!CP_TYPE_CONST_NON_VOLATILE_P (to) && !TYPE_REF_IS_RVALUE (rto))
1880 conv->bad_p = true;
1881
1882 /* [dcl.init.ref]
1883
1884 Otherwise, a temporary of type "cv1 T1" is created and
1885 initialized from the initializer expression using the rules for a
1886 non-reference copy initialization. If T1 is reference-related to
1887 T2, cv1 must be the same cv-qualification as, or greater
1888 cv-qualification than, cv2; otherwise, the program is ill-formed. */
1889 if (related_p && !at_least_as_qualified_p (to, from))
1890 conv->bad_p = true;
1891
1892 return conv;
1893 }
1894
1895 /* Returns the implicit conversion sequence (see [over.ics]) from type
1896 FROM to type TO. The optional expression EXPR may affect the
1897 conversion. FLAGS are the usual overloading flags. If C_CAST_P is
1898 true, this conversion is coming from a C-style cast. */
1899
1900 static conversion *
1901 implicit_conversion (tree to, tree from, tree expr, bool c_cast_p,
1902 int flags, tsubst_flags_t complain)
1903 {
1904 conversion *conv;
1905
1906 if (from == error_mark_node || to == error_mark_node
1907 || expr == error_mark_node)
1908 return NULL;
1909
1910 /* Other flags only apply to the primary function in overload
1911 resolution, or after we've chosen one. */
1912 flags &= (LOOKUP_ONLYCONVERTING|LOOKUP_NO_CONVERSION|LOOKUP_COPY_PARM
1913 |LOOKUP_NO_TEMP_BIND|LOOKUP_NO_RVAL_BIND|LOOKUP_PREFER_RVALUE
1914 |LOOKUP_NO_NARROWING|LOOKUP_PROTECT|LOOKUP_NO_NON_INTEGRAL);
1915
1916 /* FIXME: actually we don't want warnings either, but we can't just
1917 have 'complain &= ~(tf_warning|tf_error)' because it would cause
1918 the regression of, eg, g++.old-deja/g++.benjamin/16077.C.
1919 We really ought not to issue that warning until we've committed
1920 to that conversion. */
1921 complain &= ~tf_error;
1922
1923 /* Call reshape_init early to remove redundant braces. */
1924 if (expr && BRACE_ENCLOSED_INITIALIZER_P (expr)
1925 && CLASS_TYPE_P (to)
1926 && COMPLETE_TYPE_P (complete_type (to))
1927 && !CLASSTYPE_NON_AGGREGATE (to))
1928 {
1929 expr = reshape_init (to, expr, complain);
1930 if (expr == error_mark_node)
1931 return NULL;
1932 from = TREE_TYPE (expr);
1933 }
1934
1935 if (TYPE_REF_P (to))
1936 conv = reference_binding (to, from, expr, c_cast_p, flags, complain);
1937 else
1938 conv = standard_conversion (to, from, expr, c_cast_p, flags, complain);
1939
1940 if (conv)
1941 return conv;
1942
1943 if (expr && BRACE_ENCLOSED_INITIALIZER_P (expr))
1944 {
1945 if (is_std_init_list (to) && !CONSTRUCTOR_IS_DESIGNATED_INIT (expr))
1946 return build_list_conv (to, expr, flags, complain);
1947
1948 /* As an extension, allow list-initialization of _Complex. */
1949 if (TREE_CODE (to) == COMPLEX_TYPE
1950 && !CONSTRUCTOR_IS_DESIGNATED_INIT (expr))
1951 {
1952 conv = build_complex_conv (to, expr, flags, complain);
1953 if (conv)
1954 return conv;
1955 }
1956
1957 /* Allow conversion from an initializer-list with one element to a
1958 scalar type. */
1959 if (SCALAR_TYPE_P (to))
1960 {
1961 int nelts = CONSTRUCTOR_NELTS (expr);
1962 tree elt;
1963
1964 if (nelts == 0)
1965 elt = build_value_init (to, tf_none);
1966 else if (nelts == 1 && !CONSTRUCTOR_IS_DESIGNATED_INIT (expr))
1967 elt = CONSTRUCTOR_ELT (expr, 0)->value;
1968 else
1969 elt = error_mark_node;
1970
1971 conv = implicit_conversion (to, TREE_TYPE (elt), elt,
1972 c_cast_p, flags, complain);
1973 if (conv)
1974 {
1975 conv->check_narrowing = true;
1976 if (BRACE_ENCLOSED_INITIALIZER_P (elt))
1977 /* Too many levels of braces, i.e. '{{1}}'. */
1978 conv->bad_p = true;
1979 return conv;
1980 }
1981 }
1982 else if (TREE_CODE (to) == ARRAY_TYPE)
1983 return build_array_conv (to, expr, flags, complain);
1984 }
1985
1986 if (expr != NULL_TREE
1987 && (MAYBE_CLASS_TYPE_P (from)
1988 || MAYBE_CLASS_TYPE_P (to))
1989 && (flags & LOOKUP_NO_CONVERSION) == 0)
1990 {
1991 struct z_candidate *cand;
1992
1993 if (CLASS_TYPE_P (to)
1994 && BRACE_ENCLOSED_INITIALIZER_P (expr)
1995 && !CLASSTYPE_NON_AGGREGATE (complete_type (to)))
1996 return build_aggr_conv (to, expr, flags, complain);
1997
1998 cand = build_user_type_conversion_1 (to, expr, flags, complain);
1999 if (cand)
2000 {
2001 if (BRACE_ENCLOSED_INITIALIZER_P (expr)
2002 && CONSTRUCTOR_NELTS (expr) == 1
2003 && !is_list_ctor (cand->fn))
2004 {
2005 /* "If C is not an initializer-list constructor and the
2006 initializer list has a single element of type cv U, where U is
2007 X or a class derived from X, the implicit conversion sequence
2008 has Exact Match rank if U is X, or Conversion rank if U is
2009 derived from X." */
2010 tree elt = CONSTRUCTOR_ELT (expr, 0)->value;
2011 tree elttype = TREE_TYPE (elt);
2012 if (reference_related_p (to, elttype))
2013 return implicit_conversion (to, elttype, elt,
2014 c_cast_p, flags, complain);
2015 }
2016 conv = cand->second_conv;
2017 }
2018
2019 /* We used to try to bind a reference to a temporary here, but that
2020 is now handled after the recursive call to this function at the end
2021 of reference_binding. */
2022 return conv;
2023 }
2024
2025 return NULL;
2026 }
2027
2028 /* Like implicit_conversion, but return NULL if the conversion is bad.
2029
2030 This is not static so that check_non_deducible_conversion can call it within
2031 add_template_candidate_real as part of overload resolution; it should not be
2032 called outside of overload resolution. */
2033
2034 conversion *
2035 good_conversion (tree to, tree from, tree expr,
2036 int flags, tsubst_flags_t complain)
2037 {
2038 conversion *c = implicit_conversion (to, from, expr, /*cast*/false,
2039 flags, complain);
2040 if (c && c->bad_p)
2041 c = NULL;
2042 return c;
2043 }
2044
2045 /* Add a new entry to the list of candidates. Used by the add_*_candidate
2046 functions. ARGS will not be changed until a single candidate is
2047 selected. */
2048
2049 static struct z_candidate *
2050 add_candidate (struct z_candidate **candidates,
2051 tree fn, tree first_arg, const vec<tree, va_gc> *args,
2052 size_t num_convs, conversion **convs,
2053 tree access_path, tree conversion_path,
2054 int viable, struct rejection_reason *reason,
2055 int flags)
2056 {
2057 struct z_candidate *cand = (struct z_candidate *)
2058 conversion_obstack_alloc (sizeof (struct z_candidate));
2059
2060 cand->fn = fn;
2061 cand->first_arg = first_arg;
2062 cand->args = args;
2063 cand->convs = convs;
2064 cand->num_convs = num_convs;
2065 cand->access_path = access_path;
2066 cand->conversion_path = conversion_path;
2067 cand->viable = viable;
2068 cand->reason = reason;
2069 cand->next = *candidates;
2070 cand->flags = flags;
2071 *candidates = cand;
2072
2073 return cand;
2074 }
2075
2076 /* Return the number of remaining arguments in the parameter list
2077 beginning with ARG. */
2078
2079 int
2080 remaining_arguments (tree arg)
2081 {
2082 int n;
2083
2084 for (n = 0; arg != NULL_TREE && arg != void_list_node;
2085 arg = TREE_CHAIN (arg))
2086 n++;
2087
2088 return n;
2089 }
2090
2091 /* [over.match.copy]: When initializing a temporary object (12.2) to be bound
2092 to the first parameter of a constructor where the parameter is of type
2093 "reference to possibly cv-qualified T" and the constructor is called with a
2094 single argument in the context of direct-initialization of an object of type
2095 "cv2 T", explicit conversion functions are also considered.
2096
2097 So set LOOKUP_COPY_PARM to let reference_binding know that
2098 it's being called in that context. */
2099
2100 int
2101 conv_flags (int i, int nargs, tree fn, tree arg, int flags)
2102 {
2103 int lflags = flags;
2104 tree t;
2105 if (i == 0 && nargs == 1 && DECL_CONSTRUCTOR_P (fn)
2106 && (t = FUNCTION_FIRST_USER_PARMTYPE (fn))
2107 && (same_type_ignoring_top_level_qualifiers_p
2108 (non_reference (TREE_VALUE (t)), DECL_CONTEXT (fn))))
2109 {
2110 if (!(flags & LOOKUP_ONLYCONVERTING))
2111 lflags |= LOOKUP_COPY_PARM;
2112 if ((flags & LOOKUP_LIST_INIT_CTOR)
2113 && BRACE_ENCLOSED_INITIALIZER_P (arg))
2114 lflags |= LOOKUP_NO_CONVERSION;
2115 }
2116 else
2117 lflags |= LOOKUP_ONLYCONVERTING;
2118
2119 return lflags;
2120 }
2121
2122 /* Create an overload candidate for the function or method FN called
2123 with the argument list FIRST_ARG/ARGS and add it to CANDIDATES.
2124 FLAGS is passed on to implicit_conversion.
2125
2126 This does not change ARGS.
2127
2128 CTYPE, if non-NULL, is the type we want to pretend this function
2129 comes from for purposes of overload resolution. */
2130
2131 static struct z_candidate *
2132 add_function_candidate (struct z_candidate **candidates,
2133 tree fn, tree ctype, tree first_arg,
2134 const vec<tree, va_gc> *args, tree access_path,
2135 tree conversion_path, int flags,
2136 conversion **convs,
2137 tsubst_flags_t complain)
2138 {
2139 tree parmlist = TYPE_ARG_TYPES (TREE_TYPE (fn));
2140 int i, len;
2141 tree parmnode;
2142 tree orig_first_arg = first_arg;
2143 int skip;
2144 int viable = 1;
2145 struct rejection_reason *reason = NULL;
2146
2147 /* At this point we should not see any functions which haven't been
2148 explicitly declared, except for friend functions which will have
2149 been found using argument dependent lookup. */
2150 gcc_assert (!DECL_ANTICIPATED (fn) || DECL_HIDDEN_FRIEND_P (fn));
2151
2152 /* The `this', `in_chrg' and VTT arguments to constructors are not
2153 considered in overload resolution. */
2154 if (DECL_CONSTRUCTOR_P (fn))
2155 {
2156 if (ctor_omit_inherited_parms (fn))
2157 /* Bring back parameters omitted from an inherited ctor. */
2158 parmlist = FUNCTION_FIRST_USER_PARMTYPE (DECL_ORIGIN (fn));
2159 else
2160 parmlist = skip_artificial_parms_for (fn, parmlist);
2161 skip = num_artificial_parms_for (fn);
2162 if (skip > 0 && first_arg != NULL_TREE)
2163 {
2164 --skip;
2165 first_arg = NULL_TREE;
2166 }
2167 }
2168 else
2169 skip = 0;
2170
2171 len = vec_safe_length (args) - skip + (first_arg != NULL_TREE ? 1 : 0);
2172 if (!convs)
2173 convs = alloc_conversions (len);
2174
2175 /* 13.3.2 - Viable functions [over.match.viable]
2176 First, to be a viable function, a candidate function shall have enough
2177 parameters to agree in number with the arguments in the list.
2178
2179 We need to check this first; otherwise, checking the ICSes might cause
2180 us to produce an ill-formed template instantiation. */
2181
2182 parmnode = parmlist;
2183 for (i = 0; i < len; ++i)
2184 {
2185 if (parmnode == NULL_TREE || parmnode == void_list_node)
2186 break;
2187 parmnode = TREE_CHAIN (parmnode);
2188 }
2189
2190 if ((i < len && parmnode)
2191 || !sufficient_parms_p (parmnode))
2192 {
2193 int remaining = remaining_arguments (parmnode);
2194 viable = 0;
2195 reason = arity_rejection (first_arg, i + remaining, len);
2196 }
2197
2198 /* An inherited constructor (12.6.3 [class.inhctor.init]) that has a first
2199 parameter of type "reference to cv C" (including such a constructor
2200 instantiated from a template) is excluded from the set of candidate
2201 functions when used to construct an object of type D with an argument list
2202 containing a single argument if C is reference-related to D. */
2203 if (viable && len == 1 && parmlist && DECL_CONSTRUCTOR_P (fn)
2204 && flag_new_inheriting_ctors
2205 && DECL_INHERITED_CTOR (fn))
2206 {
2207 tree ptype = non_reference (TREE_VALUE (parmlist));
2208 tree dtype = DECL_CONTEXT (fn);
2209 tree btype = DECL_INHERITED_CTOR_BASE (fn);
2210 if (reference_related_p (ptype, dtype)
2211 && reference_related_p (btype, ptype))
2212 {
2213 viable = false;
2214 reason = inherited_ctor_rejection ();
2215 }
2216 }
2217
2218 /* Second, for a function to be viable, its constraints must be
2219 satisfied. */
2220 if (flag_concepts && viable
2221 && !constraints_satisfied_p (fn))
2222 {
2223 reason = constraint_failure (fn);
2224 viable = false;
2225 }
2226
2227 /* When looking for a function from a subobject from an implicit
2228 copy/move constructor/operator=, don't consider anything that takes (a
2229 reference to) an unrelated type. See c++/44909 and core 1092. */
2230 if (viable && parmlist && (flags & LOOKUP_DEFAULTED))
2231 {
2232 if (DECL_CONSTRUCTOR_P (fn))
2233 i = 1;
2234 else if (DECL_ASSIGNMENT_OPERATOR_P (fn)
2235 && DECL_OVERLOADED_OPERATOR_IS (fn, NOP_EXPR))
2236 i = 2;
2237 else
2238 i = 0;
2239 if (i && len == i)
2240 {
2241 parmnode = chain_index (i-1, parmlist);
2242 if (!reference_related_p (non_reference (TREE_VALUE (parmnode)),
2243 ctype))
2244 viable = 0;
2245 }
2246
2247 /* This only applies at the top level. */
2248 flags &= ~LOOKUP_DEFAULTED;
2249 }
2250
2251 if (! viable)
2252 goto out;
2253
2254 /* Third, for F to be a viable function, there shall exist for each
2255 argument an implicit conversion sequence that converts that argument
2256 to the corresponding parameter of F. */
2257
2258 parmnode = parmlist;
2259
2260 for (i = 0; i < len; ++i)
2261 {
2262 tree argtype, to_type;
2263 tree arg;
2264 conversion *t;
2265 int is_this;
2266
2267 if (parmnode == void_list_node)
2268 break;
2269
2270 if (convs[i])
2271 {
2272 /* Already set during deduction. */
2273 parmnode = TREE_CHAIN (parmnode);
2274 continue;
2275 }
2276
2277 if (i == 0 && first_arg != NULL_TREE)
2278 arg = first_arg;
2279 else
2280 arg = CONST_CAST_TREE (
2281 (*args)[i + skip - (first_arg != NULL_TREE ? 1 : 0)]);
2282 argtype = lvalue_type (arg);
2283
2284 is_this = (i == 0 && DECL_NONSTATIC_MEMBER_FUNCTION_P (fn)
2285 && ! DECL_CONSTRUCTOR_P (fn));
2286
2287 if (parmnode)
2288 {
2289 tree parmtype = TREE_VALUE (parmnode);
2290
2291 parmnode = TREE_CHAIN (parmnode);
2292
2293 /* The type of the implicit object parameter ('this') for
2294 overload resolution is not always the same as for the
2295 function itself; conversion functions are considered to
2296 be members of the class being converted, and functions
2297 introduced by a using-declaration are considered to be
2298 members of the class that uses them.
2299
2300 Since build_over_call ignores the ICS for the `this'
2301 parameter, we can just change the parm type. */
2302 if (ctype && is_this)
2303 {
2304 parmtype = cp_build_qualified_type
2305 (ctype, cp_type_quals (TREE_TYPE (parmtype)));
2306 if (FUNCTION_REF_QUALIFIED (TREE_TYPE (fn)))
2307 {
2308 /* If the function has a ref-qualifier, the implicit
2309 object parameter has reference type. */
2310 bool rv = FUNCTION_RVALUE_QUALIFIED (TREE_TYPE (fn));
2311 parmtype = cp_build_reference_type (parmtype, rv);
2312 /* The special handling of 'this' conversions in compare_ics
2313 does not apply if there is a ref-qualifier. */
2314 is_this = false;
2315 }
2316 else
2317 {
2318 parmtype = build_pointer_type (parmtype);
2319 /* We don't use build_this here because we don't want to
2320 capture the object argument until we've chosen a
2321 non-static member function. */
2322 arg = build_address (arg);
2323 argtype = lvalue_type (arg);
2324 }
2325 }
2326
2327 int lflags = conv_flags (i, len-skip, fn, arg, flags);
2328
2329 t = implicit_conversion (parmtype, argtype, arg,
2330 /*c_cast_p=*/false, lflags, complain);
2331 to_type = parmtype;
2332 }
2333 else
2334 {
2335 t = build_identity_conv (argtype, arg);
2336 t->ellipsis_p = true;
2337 to_type = argtype;
2338 }
2339
2340 if (t && is_this)
2341 t->this_p = true;
2342
2343 convs[i] = t;
2344 if (! t)
2345 {
2346 viable = 0;
2347 reason = arg_conversion_rejection (first_arg, i, argtype, to_type,
2348 EXPR_LOCATION (arg));
2349 break;
2350 }
2351
2352 if (t->bad_p)
2353 {
2354 viable = -1;
2355 reason = bad_arg_conversion_rejection (first_arg, i, arg, to_type,
2356 EXPR_LOCATION (arg));
2357
2358 }
2359 }
2360
2361 out:
2362 return add_candidate (candidates, fn, orig_first_arg, args, len, convs,
2363 access_path, conversion_path, viable, reason, flags);
2364 }
2365
2366 /* Create an overload candidate for the conversion function FN which will
2367 be invoked for expression OBJ, producing a pointer-to-function which
2368 will in turn be called with the argument list FIRST_ARG/ARGLIST,
2369 and add it to CANDIDATES. This does not change ARGLIST. FLAGS is
2370 passed on to implicit_conversion.
2371
2372 Actually, we don't really care about FN; we care about the type it
2373 converts to. There may be multiple conversion functions that will
2374 convert to that type, and we rely on build_user_type_conversion_1 to
2375 choose the best one; so when we create our candidate, we record the type
2376 instead of the function. */
2377
2378 static struct z_candidate *
2379 add_conv_candidate (struct z_candidate **candidates, tree fn, tree obj,
2380 const vec<tree, va_gc> *arglist,
2381 tree access_path, tree conversion_path,
2382 tsubst_flags_t complain)
2383 {
2384 tree totype = TREE_TYPE (TREE_TYPE (fn));
2385 int i, len, viable, flags;
2386 tree parmlist, parmnode;
2387 conversion **convs;
2388 struct rejection_reason *reason;
2389
2390 for (parmlist = totype; TREE_CODE (parmlist) != FUNCTION_TYPE; )
2391 parmlist = TREE_TYPE (parmlist);
2392 parmlist = TYPE_ARG_TYPES (parmlist);
2393
2394 len = vec_safe_length (arglist) + 1;
2395 convs = alloc_conversions (len);
2396 parmnode = parmlist;
2397 viable = 1;
2398 flags = LOOKUP_IMPLICIT;
2399 reason = NULL;
2400
2401 /* Don't bother looking up the same type twice. */
2402 if (*candidates && (*candidates)->fn == totype)
2403 return NULL;
2404
2405 for (i = 0; i < len; ++i)
2406 {
2407 tree arg, argtype, convert_type = NULL_TREE;
2408 conversion *t;
2409
2410 if (i == 0)
2411 arg = obj;
2412 else
2413 arg = (*arglist)[i - 1];
2414 argtype = lvalue_type (arg);
2415
2416 if (i == 0)
2417 {
2418 t = build_identity_conv (argtype, NULL_TREE);
2419 t = build_conv (ck_user, totype, t);
2420 /* Leave the 'cand' field null; we'll figure out the conversion in
2421 convert_like_real if this candidate is chosen. */
2422 convert_type = totype;
2423 }
2424 else if (parmnode == void_list_node)
2425 break;
2426 else if (parmnode)
2427 {
2428 t = implicit_conversion (TREE_VALUE (parmnode), argtype, arg,
2429 /*c_cast_p=*/false, flags, complain);
2430 convert_type = TREE_VALUE (parmnode);
2431 }
2432 else
2433 {
2434 t = build_identity_conv (argtype, arg);
2435 t->ellipsis_p = true;
2436 convert_type = argtype;
2437 }
2438
2439 convs[i] = t;
2440 if (! t)
2441 break;
2442
2443 if (t->bad_p)
2444 {
2445 viable = -1;
2446 reason = bad_arg_conversion_rejection (NULL_TREE, i, arg, convert_type,
2447 EXPR_LOCATION (arg));
2448 }
2449
2450 if (i == 0)
2451 continue;
2452
2453 if (parmnode)
2454 parmnode = TREE_CHAIN (parmnode);
2455 }
2456
2457 if (i < len
2458 || ! sufficient_parms_p (parmnode))
2459 {
2460 int remaining = remaining_arguments (parmnode);
2461 viable = 0;
2462 reason = arity_rejection (NULL_TREE, i + remaining, len);
2463 }
2464
2465 return add_candidate (candidates, totype, obj, arglist, len, convs,
2466 access_path, conversion_path, viable, reason, flags);
2467 }
2468
2469 static void
2470 build_builtin_candidate (struct z_candidate **candidates, tree fnname,
2471 tree type1, tree type2, tree *args, tree *argtypes,
2472 int flags, tsubst_flags_t complain)
2473 {
2474 conversion *t;
2475 conversion **convs;
2476 size_t num_convs;
2477 int viable = 1, i;
2478 tree types[2];
2479 struct rejection_reason *reason = NULL;
2480
2481 types[0] = type1;
2482 types[1] = type2;
2483
2484 num_convs = args[2] ? 3 : (args[1] ? 2 : 1);
2485 convs = alloc_conversions (num_convs);
2486
2487 /* TRUTH_*_EXPR do "contextual conversion to bool", which means explicit
2488 conversion ops are allowed. We handle that here by just checking for
2489 boolean_type_node because other operators don't ask for it. COND_EXPR
2490 also does contextual conversion to bool for the first operand, but we
2491 handle that in build_conditional_expr, and type1 here is operand 2. */
2492 if (type1 != boolean_type_node)
2493 flags |= LOOKUP_ONLYCONVERTING;
2494
2495 for (i = 0; i < 2; ++i)
2496 {
2497 if (! args[i])
2498 break;
2499
2500 t = implicit_conversion (types[i], argtypes[i], args[i],
2501 /*c_cast_p=*/false, flags, complain);
2502 if (! t)
2503 {
2504 viable = 0;
2505 /* We need something for printing the candidate. */
2506 t = build_identity_conv (types[i], NULL_TREE);
2507 reason = arg_conversion_rejection (NULL_TREE, i, argtypes[i],
2508 types[i], EXPR_LOCATION (args[i]));
2509 }
2510 else if (t->bad_p)
2511 {
2512 viable = 0;
2513 reason = bad_arg_conversion_rejection (NULL_TREE, i, args[i],
2514 types[i],
2515 EXPR_LOCATION (args[i]));
2516 }
2517 convs[i] = t;
2518 }
2519
2520 /* For COND_EXPR we rearranged the arguments; undo that now. */
2521 if (args[2])
2522 {
2523 convs[2] = convs[1];
2524 convs[1] = convs[0];
2525 t = implicit_conversion (boolean_type_node, argtypes[2], args[2],
2526 /*c_cast_p=*/false, flags,
2527 complain);
2528 if (t)
2529 convs[0] = t;
2530 else
2531 {
2532 viable = 0;
2533 reason = arg_conversion_rejection (NULL_TREE, 0, argtypes[2],
2534 boolean_type_node,
2535 EXPR_LOCATION (args[2]));
2536 }
2537 }
2538
2539 add_candidate (candidates, fnname, /*first_arg=*/NULL_TREE, /*args=*/NULL,
2540 num_convs, convs,
2541 /*access_path=*/NULL_TREE,
2542 /*conversion_path=*/NULL_TREE,
2543 viable, reason, flags);
2544 }
2545
2546 static bool
2547 is_complete (tree t)
2548 {
2549 return COMPLETE_TYPE_P (complete_type (t));
2550 }
2551
2552 /* Returns nonzero if TYPE is a promoted arithmetic type. */
2553
2554 static bool
2555 promoted_arithmetic_type_p (tree type)
2556 {
2557 /* [over.built]
2558
2559 In this section, the term promoted integral type is used to refer
2560 to those integral types which are preserved by integral promotion
2561 (including e.g. int and long but excluding e.g. char).
2562 Similarly, the term promoted arithmetic type refers to promoted
2563 integral types plus floating types. */
2564 return ((CP_INTEGRAL_TYPE_P (type)
2565 && same_type_p (type_promotes_to (type), type))
2566 || TREE_CODE (type) == REAL_TYPE);
2567 }
2568
2569 /* Create any builtin operator overload candidates for the operator in
2570 question given the converted operand types TYPE1 and TYPE2. The other
2571 args are passed through from add_builtin_candidates to
2572 build_builtin_candidate.
2573
2574 TYPE1 and TYPE2 may not be permissible, and we must filter them.
2575 If CODE is requires candidates operands of the same type of the kind
2576 of which TYPE1 and TYPE2 are, we add both candidates
2577 CODE (TYPE1, TYPE1) and CODE (TYPE2, TYPE2). */
2578
2579 static void
2580 add_builtin_candidate (struct z_candidate **candidates, enum tree_code code,
2581 enum tree_code code2, tree fnname, tree type1,
2582 tree type2, tree *args, tree *argtypes, int flags,
2583 tsubst_flags_t complain)
2584 {
2585 switch (code)
2586 {
2587 case POSTINCREMENT_EXPR:
2588 case POSTDECREMENT_EXPR:
2589 args[1] = integer_zero_node;
2590 type2 = integer_type_node;
2591 break;
2592 default:
2593 break;
2594 }
2595
2596 switch (code)
2597 {
2598
2599 /* 4 For every pair T, VQ), where T is an arithmetic or enumeration type,
2600 and VQ is either volatile or empty, there exist candidate operator
2601 functions of the form
2602 VQ T& operator++(VQ T&);
2603 T operator++(VQ T&, int);
2604 5 For every pair T, VQ), where T is an enumeration type or an arithmetic
2605 type other than bool, and VQ is either volatile or empty, there exist
2606 candidate operator functions of the form
2607 VQ T& operator--(VQ T&);
2608 T operator--(VQ T&, int);
2609 6 For every pair T, VQ), where T is a cv-qualified or cv-unqualified
2610 complete object type, and VQ is either volatile or empty, there exist
2611 candidate operator functions of the form
2612 T*VQ& operator++(T*VQ&);
2613 T*VQ& operator--(T*VQ&);
2614 T* operator++(T*VQ&, int);
2615 T* operator--(T*VQ&, int); */
2616
2617 case POSTDECREMENT_EXPR:
2618 case PREDECREMENT_EXPR:
2619 if (TREE_CODE (type1) == BOOLEAN_TYPE)
2620 return;
2621 /* FALLTHRU */
2622 case POSTINCREMENT_EXPR:
2623 case PREINCREMENT_EXPR:
2624 if (ARITHMETIC_TYPE_P (type1) || TYPE_PTROB_P (type1))
2625 {
2626 type1 = build_reference_type (type1);
2627 break;
2628 }
2629 return;
2630
2631 /* 7 For every cv-qualified or cv-unqualified object type T, there
2632 exist candidate operator functions of the form
2633
2634 T& operator*(T*);
2635
2636 8 For every function type T, there exist candidate operator functions of
2637 the form
2638 T& operator*(T*); */
2639
2640 case INDIRECT_REF:
2641 if (TYPE_PTR_P (type1)
2642 && (TYPE_PTROB_P (type1)
2643 || TREE_CODE (TREE_TYPE (type1)) == FUNCTION_TYPE))
2644 break;
2645 return;
2646
2647 /* 9 For every type T, there exist candidate operator functions of the form
2648 T* operator+(T*);
2649
2650 10For every promoted arithmetic type T, there exist candidate operator
2651 functions of the form
2652 T operator+(T);
2653 T operator-(T); */
2654
2655 case UNARY_PLUS_EXPR: /* unary + */
2656 if (TYPE_PTR_P (type1))
2657 break;
2658 /* FALLTHRU */
2659 case NEGATE_EXPR:
2660 if (ARITHMETIC_TYPE_P (type1))
2661 break;
2662 return;
2663
2664 /* 11For every promoted integral type T, there exist candidate operator
2665 functions of the form
2666 T operator~(T); */
2667
2668 case BIT_NOT_EXPR:
2669 if (INTEGRAL_OR_UNSCOPED_ENUMERATION_TYPE_P (type1))
2670 break;
2671 return;
2672
2673 /* 12For every quintuple C1, C2, T, CV1, CV2), where C2 is a class type, C1
2674 is the same type as C2 or is a derived class of C2, T is a complete
2675 object type or a function type, and CV1 and CV2 are cv-qualifier-seqs,
2676 there exist candidate operator functions of the form
2677 CV12 T& operator->*(CV1 C1*, CV2 T C2::*);
2678 where CV12 is the union of CV1 and CV2. */
2679
2680 case MEMBER_REF:
2681 if (TYPE_PTR_P (type1) && TYPE_PTRMEM_P (type2))
2682 {
2683 tree c1 = TREE_TYPE (type1);
2684 tree c2 = TYPE_PTRMEM_CLASS_TYPE (type2);
2685
2686 if (MAYBE_CLASS_TYPE_P (c1) && DERIVED_FROM_P (c2, c1)
2687 && (TYPE_PTRMEMFUNC_P (type2)
2688 || is_complete (TYPE_PTRMEM_POINTED_TO_TYPE (type2))))
2689 break;
2690 }
2691 return;
2692
2693 /* 13For every pair of promoted arithmetic types L and R, there exist can-
2694 didate operator functions of the form
2695 LR operator*(L, R);
2696 LR operator/(L, R);
2697 LR operator+(L, R);
2698 LR operator-(L, R);
2699 bool operator<(L, R);
2700 bool operator>(L, R);
2701 bool operator<=(L, R);
2702 bool operator>=(L, R);
2703 bool operator==(L, R);
2704 bool operator!=(L, R);
2705 where LR is the result of the usual arithmetic conversions between
2706 types L and R.
2707
2708 14For every pair of types T and I, where T is a cv-qualified or cv-
2709 unqualified complete object type and I is a promoted integral type,
2710 there exist candidate operator functions of the form
2711 T* operator+(T*, I);
2712 T& operator[](T*, I);
2713 T* operator-(T*, I);
2714 T* operator+(I, T*);
2715 T& operator[](I, T*);
2716
2717 15For every T, where T is a pointer to complete object type, there exist
2718 candidate operator functions of the form112)
2719 ptrdiff_t operator-(T, T);
2720
2721 16For every pointer or enumeration type T, there exist candidate operator
2722 functions of the form
2723 bool operator<(T, T);
2724 bool operator>(T, T);
2725 bool operator<=(T, T);
2726 bool operator>=(T, T);
2727 bool operator==(T, T);
2728 bool operator!=(T, T);
2729
2730 17For every pointer to member type T, there exist candidate operator
2731 functions of the form
2732 bool operator==(T, T);
2733 bool operator!=(T, T); */
2734
2735 case MINUS_EXPR:
2736 if (TYPE_PTROB_P (type1) && TYPE_PTROB_P (type2))
2737 break;
2738 if (TYPE_PTROB_P (type1)
2739 && INTEGRAL_OR_UNSCOPED_ENUMERATION_TYPE_P (type2))
2740 {
2741 type2 = ptrdiff_type_node;
2742 break;
2743 }
2744 /* FALLTHRU */
2745 case MULT_EXPR:
2746 case TRUNC_DIV_EXPR:
2747 if (ARITHMETIC_TYPE_P (type1) && ARITHMETIC_TYPE_P (type2))
2748 break;
2749 return;
2750
2751 case EQ_EXPR:
2752 case NE_EXPR:
2753 if ((TYPE_PTRMEMFUNC_P (type1) && TYPE_PTRMEMFUNC_P (type2))
2754 || (TYPE_PTRDATAMEM_P (type1) && TYPE_PTRDATAMEM_P (type2)))
2755 break;
2756 if (TYPE_PTRMEM_P (type1) && null_ptr_cst_p (args[1]))
2757 {
2758 type2 = type1;
2759 break;
2760 }
2761 if (TYPE_PTRMEM_P (type2) && null_ptr_cst_p (args[0]))
2762 {
2763 type1 = type2;
2764 break;
2765 }
2766 /* Fall through. */
2767 case LT_EXPR:
2768 case GT_EXPR:
2769 case LE_EXPR:
2770 case GE_EXPR:
2771 case MAX_EXPR:
2772 case MIN_EXPR:
2773 if (ARITHMETIC_TYPE_P (type1) && ARITHMETIC_TYPE_P (type2))
2774 break;
2775 if (TYPE_PTR_P (type1) && TYPE_PTR_P (type2))
2776 break;
2777 if (TREE_CODE (type1) == ENUMERAL_TYPE
2778 && TREE_CODE (type2) == ENUMERAL_TYPE)
2779 break;
2780 if (TYPE_PTR_P (type1)
2781 && null_ptr_cst_p (args[1]))
2782 {
2783 type2 = type1;
2784 break;
2785 }
2786 if (null_ptr_cst_p (args[0])
2787 && TYPE_PTR_P (type2))
2788 {
2789 type1 = type2;
2790 break;
2791 }
2792 return;
2793
2794 case PLUS_EXPR:
2795 if (ARITHMETIC_TYPE_P (type1) && ARITHMETIC_TYPE_P (type2))
2796 break;
2797 /* FALLTHRU */
2798 case ARRAY_REF:
2799 if (INTEGRAL_OR_UNSCOPED_ENUMERATION_TYPE_P (type1) && TYPE_PTROB_P (type2))
2800 {
2801 type1 = ptrdiff_type_node;
2802 break;
2803 }
2804 if (TYPE_PTROB_P (type1) && INTEGRAL_OR_UNSCOPED_ENUMERATION_TYPE_P (type2))
2805 {
2806 type2 = ptrdiff_type_node;
2807 break;
2808 }
2809 return;
2810
2811 /* 18For every pair of promoted integral types L and R, there exist candi-
2812 date operator functions of the form
2813 LR operator%(L, R);
2814 LR operator&(L, R);
2815 LR operator^(L, R);
2816 LR operator|(L, R);
2817 L operator<<(L, R);
2818 L operator>>(L, R);
2819 where LR is the result of the usual arithmetic conversions between
2820 types L and R. */
2821
2822 case TRUNC_MOD_EXPR:
2823 case BIT_AND_EXPR:
2824 case BIT_IOR_EXPR:
2825 case BIT_XOR_EXPR:
2826 case LSHIFT_EXPR:
2827 case RSHIFT_EXPR:
2828 if (INTEGRAL_OR_UNSCOPED_ENUMERATION_TYPE_P (type1) && INTEGRAL_OR_UNSCOPED_ENUMERATION_TYPE_P (type2))
2829 break;
2830 return;
2831
2832 /* 19For every triple L, VQ, R), where L is an arithmetic or enumeration
2833 type, VQ is either volatile or empty, and R is a promoted arithmetic
2834 type, there exist candidate operator functions of the form
2835 VQ L& operator=(VQ L&, R);
2836 VQ L& operator*=(VQ L&, R);
2837 VQ L& operator/=(VQ L&, R);
2838 VQ L& operator+=(VQ L&, R);
2839 VQ L& operator-=(VQ L&, R);
2840
2841 20For every pair T, VQ), where T is any type and VQ is either volatile
2842 or empty, there exist candidate operator functions of the form
2843 T*VQ& operator=(T*VQ&, T*);
2844
2845 21For every pair T, VQ), where T is a pointer to member type and VQ is
2846 either volatile or empty, there exist candidate operator functions of
2847 the form
2848 VQ T& operator=(VQ T&, T);
2849
2850 22For every triple T, VQ, I), where T is a cv-qualified or cv-
2851 unqualified complete object type, VQ is either volatile or empty, and
2852 I is a promoted integral type, there exist candidate operator func-
2853 tions of the form
2854 T*VQ& operator+=(T*VQ&, I);
2855 T*VQ& operator-=(T*VQ&, I);
2856
2857 23For every triple L, VQ, R), where L is an integral or enumeration
2858 type, VQ is either volatile or empty, and R is a promoted integral
2859 type, there exist candidate operator functions of the form
2860
2861 VQ L& operator%=(VQ L&, R);
2862 VQ L& operator<<=(VQ L&, R);
2863 VQ L& operator>>=(VQ L&, R);
2864 VQ L& operator&=(VQ L&, R);
2865 VQ L& operator^=(VQ L&, R);
2866 VQ L& operator|=(VQ L&, R); */
2867
2868 case MODIFY_EXPR:
2869 switch (code2)
2870 {
2871 case PLUS_EXPR:
2872 case MINUS_EXPR:
2873 if (TYPE_PTROB_P (type1) && INTEGRAL_OR_UNSCOPED_ENUMERATION_TYPE_P (type2))
2874 {
2875 type2 = ptrdiff_type_node;
2876 break;
2877 }
2878 /* FALLTHRU */
2879 case MULT_EXPR:
2880 case TRUNC_DIV_EXPR:
2881 if (ARITHMETIC_TYPE_P (type1) && ARITHMETIC_TYPE_P (type2))
2882 break;
2883 return;
2884
2885 case TRUNC_MOD_EXPR:
2886 case BIT_AND_EXPR:
2887 case BIT_IOR_EXPR:
2888 case BIT_XOR_EXPR:
2889 case LSHIFT_EXPR:
2890 case RSHIFT_EXPR:
2891 if (INTEGRAL_OR_UNSCOPED_ENUMERATION_TYPE_P (type1) && INTEGRAL_OR_UNSCOPED_ENUMERATION_TYPE_P (type2))
2892 break;
2893 return;
2894
2895 case NOP_EXPR:
2896 if (ARITHMETIC_TYPE_P (type1) && ARITHMETIC_TYPE_P (type2))
2897 break;
2898 if ((TYPE_PTRMEMFUNC_P (type1) && TYPE_PTRMEMFUNC_P (type2))
2899 || (TYPE_PTR_P (type1) && TYPE_PTR_P (type2))
2900 || (TYPE_PTRDATAMEM_P (type1) && TYPE_PTRDATAMEM_P (type2))
2901 || ((TYPE_PTRMEMFUNC_P (type1)
2902 || TYPE_PTR_P (type1))
2903 && null_ptr_cst_p (args[1])))
2904 {
2905 type2 = type1;
2906 break;
2907 }
2908 return;
2909
2910 default:
2911 gcc_unreachable ();
2912 }
2913 type1 = build_reference_type (type1);
2914 break;
2915
2916 case COND_EXPR:
2917 /* [over.built]
2918
2919 For every pair of promoted arithmetic types L and R, there
2920 exist candidate operator functions of the form
2921
2922 LR operator?(bool, L, R);
2923
2924 where LR is the result of the usual arithmetic conversions
2925 between types L and R.
2926
2927 For every type T, where T is a pointer or pointer-to-member
2928 type, there exist candidate operator functions of the form T
2929 operator?(bool, T, T); */
2930
2931 if (promoted_arithmetic_type_p (type1)
2932 && promoted_arithmetic_type_p (type2))
2933 /* That's OK. */
2934 break;
2935
2936 /* Otherwise, the types should be pointers. */
2937 if (!TYPE_PTR_OR_PTRMEM_P (type1) || !TYPE_PTR_OR_PTRMEM_P (type2))
2938 return;
2939
2940 /* We don't check that the two types are the same; the logic
2941 below will actually create two candidates; one in which both
2942 parameter types are TYPE1, and one in which both parameter
2943 types are TYPE2. */
2944 break;
2945
2946 case REALPART_EXPR:
2947 case IMAGPART_EXPR:
2948 if (ARITHMETIC_TYPE_P (type1))
2949 break;
2950 return;
2951
2952 default:
2953 gcc_unreachable ();
2954 }
2955
2956 /* Make sure we don't create builtin candidates with dependent types. */
2957 bool u1 = uses_template_parms (type1);
2958 bool u2 = type2 ? uses_template_parms (type2) : false;
2959 if (u1 || u2)
2960 {
2961 /* Try to recover if one of the types is non-dependent. But if
2962 there's only one type, there's nothing we can do. */
2963 if (!type2)
2964 return;
2965 /* And we lose if both are dependent. */
2966 if (u1 && u2)
2967 return;
2968 /* Or if they have different forms. */
2969 if (TREE_CODE (type1) != TREE_CODE (type2))
2970 return;
2971
2972 if (u1 && !u2)
2973 type1 = type2;
2974 else if (u2 && !u1)
2975 type2 = type1;
2976 }
2977
2978 /* If we're dealing with two pointer types or two enumeral types,
2979 we need candidates for both of them. */
2980 if (type2 && !same_type_p (type1, type2)
2981 && TREE_CODE (type1) == TREE_CODE (type2)
2982 && (TYPE_REF_P (type1)
2983 || (TYPE_PTR_P (type1) && TYPE_PTR_P (type2))
2984 || (TYPE_PTRDATAMEM_P (type1) && TYPE_PTRDATAMEM_P (type2))
2985 || TYPE_PTRMEMFUNC_P (type1)
2986 || MAYBE_CLASS_TYPE_P (type1)
2987 || TREE_CODE (type1) == ENUMERAL_TYPE))
2988 {
2989 if (TYPE_PTR_OR_PTRMEM_P (type1))
2990 {
2991 tree cptype = composite_pointer_type (type1, type2,
2992 error_mark_node,
2993 error_mark_node,
2994 CPO_CONVERSION,
2995 tf_none);
2996 if (cptype != error_mark_node)
2997 {
2998 build_builtin_candidate
2999 (candidates, fnname, cptype, cptype, args, argtypes,
3000 flags, complain);
3001 return;
3002 }
3003 }
3004
3005 build_builtin_candidate
3006 (candidates, fnname, type1, type1, args, argtypes, flags, complain);
3007 build_builtin_candidate
3008 (candidates, fnname, type2, type2, args, argtypes, flags, complain);
3009 return;
3010 }
3011
3012 build_builtin_candidate
3013 (candidates, fnname, type1, type2, args, argtypes, flags, complain);
3014 }
3015
3016 tree
3017 type_decays_to (tree type)
3018 {
3019 if (TREE_CODE (type) == ARRAY_TYPE)
3020 return build_pointer_type (TREE_TYPE (type));
3021 if (TREE_CODE (type) == FUNCTION_TYPE)
3022 return build_pointer_type (type);
3023 return type;
3024 }
3025
3026 /* There are three conditions of builtin candidates:
3027
3028 1) bool-taking candidates. These are the same regardless of the input.
3029 2) pointer-pair taking candidates. These are generated for each type
3030 one of the input types converts to.
3031 3) arithmetic candidates. According to the standard, we should generate
3032 all of these, but I'm trying not to...
3033
3034 Here we generate a superset of the possible candidates for this particular
3035 case. That is a subset of the full set the standard defines, plus some
3036 other cases which the standard disallows. add_builtin_candidate will
3037 filter out the invalid set. */
3038
3039 static void
3040 add_builtin_candidates (struct z_candidate **candidates, enum tree_code code,
3041 enum tree_code code2, tree fnname, tree *args,
3042 int flags, tsubst_flags_t complain)
3043 {
3044 int ref1, i;
3045 int enum_p = 0;
3046 tree type, argtypes[3], t;
3047 /* TYPES[i] is the set of possible builtin-operator parameter types
3048 we will consider for the Ith argument. */
3049 vec<tree, va_gc> *types[2];
3050 unsigned ix;
3051
3052 for (i = 0; i < 3; ++i)
3053 {
3054 if (args[i])
3055 argtypes[i] = unlowered_expr_type (args[i]);
3056 else
3057 argtypes[i] = NULL_TREE;
3058 }
3059
3060 switch (code)
3061 {
3062 /* 4 For every pair T, VQ), where T is an arithmetic or enumeration type,
3063 and VQ is either volatile or empty, there exist candidate operator
3064 functions of the form
3065 VQ T& operator++(VQ T&); */
3066
3067 case POSTINCREMENT_EXPR:
3068 case PREINCREMENT_EXPR:
3069 case POSTDECREMENT_EXPR:
3070 case PREDECREMENT_EXPR:
3071 case MODIFY_EXPR:
3072 ref1 = 1;
3073 break;
3074
3075 /* 24There also exist candidate operator functions of the form
3076 bool operator!(bool);
3077 bool operator&&(bool, bool);
3078 bool operator||(bool, bool); */
3079
3080 case TRUTH_NOT_EXPR:
3081 build_builtin_candidate
3082 (candidates, fnname, boolean_type_node,
3083 NULL_TREE, args, argtypes, flags, complain);
3084 return;
3085
3086 case TRUTH_ORIF_EXPR:
3087 case TRUTH_ANDIF_EXPR:
3088 build_builtin_candidate
3089 (candidates, fnname, boolean_type_node,
3090 boolean_type_node, args, argtypes, flags, complain);
3091 return;
3092
3093 case ADDR_EXPR:
3094 case COMPOUND_EXPR:
3095 case COMPONENT_REF:
3096 return;
3097
3098 case COND_EXPR:
3099 case EQ_EXPR:
3100 case NE_EXPR:
3101 case LT_EXPR:
3102 case LE_EXPR:
3103 case GT_EXPR:
3104 case GE_EXPR:
3105 enum_p = 1;
3106 /* Fall through. */
3107
3108 default:
3109 ref1 = 0;
3110 }
3111
3112 types[0] = make_tree_vector ();
3113 types[1] = make_tree_vector ();
3114
3115 for (i = 0; i < 2; ++i)
3116 {
3117 if (! args[i])
3118 ;
3119 else if (MAYBE_CLASS_TYPE_P (argtypes[i]))
3120 {
3121 tree convs;
3122
3123 if (i == 0 && code == MODIFY_EXPR && code2 == NOP_EXPR)
3124 return;
3125
3126 convs = lookup_conversions (argtypes[i]);
3127
3128 if (code == COND_EXPR)
3129 {
3130 if (lvalue_p (args[i]))
3131 vec_safe_push (types[i], build_reference_type (argtypes[i]));
3132
3133 vec_safe_push (types[i], TYPE_MAIN_VARIANT (argtypes[i]));
3134 }
3135
3136 else if (! convs)
3137 return;
3138
3139 for (; convs; convs = TREE_CHAIN (convs))
3140 {
3141 type = TREE_TYPE (convs);
3142
3143 if (i == 0 && ref1
3144 && (!TYPE_REF_P (type)
3145 || CP_TYPE_CONST_P (TREE_TYPE (type))))
3146 continue;
3147
3148 if (code == COND_EXPR && TYPE_REF_P (type))
3149 vec_safe_push (types[i], type);
3150
3151 type = non_reference (type);
3152 if (i != 0 || ! ref1)
3153 {
3154 type = cv_unqualified (type_decays_to (type));
3155 if (enum_p && TREE_CODE (type) == ENUMERAL_TYPE)
3156 vec_safe_push (types[i], type);
3157 if (INTEGRAL_OR_UNSCOPED_ENUMERATION_TYPE_P (type))
3158 type = type_promotes_to (type);
3159 }
3160
3161 if (! vec_member (type, types[i]))
3162 vec_safe_push (types[i], type);
3163 }
3164 }
3165 else
3166 {
3167 if (code == COND_EXPR && lvalue_p (args[i]))
3168 vec_safe_push (types[i], build_reference_type (argtypes[i]));
3169 type = non_reference (argtypes[i]);
3170 if (i != 0 || ! ref1)
3171 {
3172 type = cv_unqualified (type_decays_to (type));
3173 if (enum_p && UNSCOPED_ENUM_P (type))
3174 vec_safe_push (types[i], type);
3175 if (INTEGRAL_OR_UNSCOPED_ENUMERATION_TYPE_P (type))
3176 type = type_promotes_to (type);
3177 }
3178 vec_safe_push (types[i], type);
3179 }
3180 }
3181
3182 /* Run through the possible parameter types of both arguments,
3183 creating candidates with those parameter types. */
3184 FOR_EACH_VEC_ELT_REVERSE (*(types[0]), ix, t)
3185 {
3186 unsigned jx;
3187 tree u;
3188
3189 if (!types[1]->is_empty ())
3190 FOR_EACH_VEC_ELT_REVERSE (*(types[1]), jx, u)
3191 add_builtin_candidate
3192 (candidates, code, code2, fnname, t,
3193 u, args, argtypes, flags, complain);
3194 else
3195 add_builtin_candidate
3196 (candidates, code, code2, fnname, t,
3197 NULL_TREE, args, argtypes, flags, complain);
3198 }
3199
3200 release_tree_vector (types[0]);
3201 release_tree_vector (types[1]);
3202 }
3203
3204
3205 /* If TMPL can be successfully instantiated as indicated by
3206 EXPLICIT_TARGS and ARGLIST, adds the instantiation to CANDIDATES.
3207
3208 TMPL is the template. EXPLICIT_TARGS are any explicit template
3209 arguments. ARGLIST is the arguments provided at the call-site.
3210 This does not change ARGLIST. The RETURN_TYPE is the desired type
3211 for conversion operators. If OBJ is NULL_TREE, FLAGS and CTYPE are
3212 as for add_function_candidate. If an OBJ is supplied, FLAGS and
3213 CTYPE are ignored, and OBJ is as for add_conv_candidate. */
3214
3215 static struct z_candidate*
3216 add_template_candidate_real (struct z_candidate **candidates, tree tmpl,
3217 tree ctype, tree explicit_targs, tree first_arg,
3218 const vec<tree, va_gc> *arglist, tree return_type,
3219 tree access_path, tree conversion_path,
3220 int flags, tree obj, unification_kind_t strict,
3221 tsubst_flags_t complain)
3222 {
3223 int ntparms = DECL_NTPARMS (tmpl);
3224 tree targs = make_tree_vec (ntparms);
3225 unsigned int len = vec_safe_length (arglist);
3226 unsigned int nargs = (first_arg == NULL_TREE ? 0 : 1) + len;
3227 unsigned int skip_without_in_chrg = 0;
3228 tree first_arg_without_in_chrg = first_arg;
3229 tree *args_without_in_chrg;
3230 unsigned int nargs_without_in_chrg;
3231 unsigned int ia, ix;
3232 tree arg;
3233 struct z_candidate *cand;
3234 tree fn;
3235 struct rejection_reason *reason = NULL;
3236 int errs;
3237 conversion **convs = NULL;
3238
3239 /* We don't do deduction on the in-charge parameter, the VTT
3240 parameter or 'this'. */
3241 if (DECL_NONSTATIC_MEMBER_FUNCTION_P (tmpl))
3242 {
3243 if (first_arg_without_in_chrg != NULL_TREE)
3244 first_arg_without_in_chrg = NULL_TREE;
3245 else if (return_type && strict == DEDUCE_CALL)
3246 /* We're deducing for a call to the result of a template conversion
3247 function, so the args don't contain 'this'; leave them alone. */;
3248 else
3249 ++skip_without_in_chrg;
3250 }
3251
3252 if ((DECL_MAYBE_IN_CHARGE_CONSTRUCTOR_P (tmpl)
3253 || DECL_BASE_CONSTRUCTOR_P (tmpl))
3254 && CLASSTYPE_VBASECLASSES (DECL_CONTEXT (tmpl)))
3255 {
3256 if (first_arg_without_in_chrg != NULL_TREE)
3257 first_arg_without_in_chrg = NULL_TREE;
3258 else
3259 ++skip_without_in_chrg;
3260 }
3261
3262 if (len < skip_without_in_chrg)
3263 return NULL;
3264
3265 if (DECL_CONSTRUCTOR_P (tmpl) && nargs == 2
3266 && same_type_ignoring_top_level_qualifiers_p (TREE_TYPE (first_arg),
3267 TREE_TYPE ((*arglist)[0])))
3268 {
3269 /* 12.8/6 says, "A declaration of a constructor for a class X is
3270 ill-formed if its first parameter is of type (optionally cv-qualified)
3271 X and either there are no other parameters or else all other
3272 parameters have default arguments. A member function template is never
3273 instantiated to produce such a constructor signature."
3274
3275 So if we're trying to copy an object of the containing class, don't
3276 consider a template constructor that has a first parameter type that
3277 is just a template parameter, as we would deduce a signature that we
3278 would then reject in the code below. */
3279 if (tree firstparm = FUNCTION_FIRST_USER_PARMTYPE (tmpl))
3280 {
3281 firstparm = TREE_VALUE (firstparm);
3282 if (PACK_EXPANSION_P (firstparm))
3283 firstparm = PACK_EXPANSION_PATTERN (firstparm);
3284 if (TREE_CODE (firstparm) == TEMPLATE_TYPE_PARM)
3285 {
3286 gcc_assert (!explicit_targs);
3287 reason = invalid_copy_with_fn_template_rejection ();
3288 goto fail;
3289 }
3290 }
3291 }
3292
3293 nargs_without_in_chrg = ((first_arg_without_in_chrg != NULL_TREE ? 1 : 0)
3294 + (len - skip_without_in_chrg));
3295 args_without_in_chrg = XALLOCAVEC (tree, nargs_without_in_chrg);
3296 ia = 0;
3297 if (first_arg_without_in_chrg != NULL_TREE)
3298 {
3299 args_without_in_chrg[ia] = first_arg_without_in_chrg;
3300 ++ia;
3301 }
3302 for (ix = skip_without_in_chrg;
3303 vec_safe_iterate (arglist, ix, &arg);
3304 ++ix)
3305 {
3306 args_without_in_chrg[ia] = arg;
3307 ++ia;
3308 }
3309 gcc_assert (ia == nargs_without_in_chrg);
3310
3311 errs = errorcount+sorrycount;
3312 if (!obj)
3313 convs = alloc_conversions (nargs);
3314 fn = fn_type_unification (tmpl, explicit_targs, targs,
3315 args_without_in_chrg,
3316 nargs_without_in_chrg,
3317 return_type, strict, flags, convs,
3318 false, complain & tf_decltype);
3319
3320 if (fn == error_mark_node)
3321 {
3322 /* Don't repeat unification later if it already resulted in errors. */
3323 if (errorcount+sorrycount == errs)
3324 reason = template_unification_rejection (tmpl, explicit_targs,
3325 targs, args_without_in_chrg,
3326 nargs_without_in_chrg,
3327 return_type, strict, flags);
3328 else
3329 reason = template_unification_error_rejection ();
3330 goto fail;
3331 }
3332
3333 /* Now the explicit specifier might have been deduced; check if this
3334 declaration is explicit. If it is and we're ignoring non-converting
3335 constructors, don't add this function to the set of candidates. */
3336 if ((flags & LOOKUP_ONLYCONVERTING) && DECL_NONCONVERTING_P (fn))
3337 return NULL;
3338
3339 if (DECL_CONSTRUCTOR_P (fn) && nargs == 2)
3340 {
3341 tree arg_types = FUNCTION_FIRST_USER_PARMTYPE (fn);
3342 if (arg_types && same_type_p (TYPE_MAIN_VARIANT (TREE_VALUE (arg_types)),
3343 ctype))
3344 {
3345 /* We're trying to produce a constructor with a prohibited signature,
3346 as discussed above; handle here any cases we didn't catch then,
3347 such as X(X<T>). */
3348 reason = invalid_copy_with_fn_template_rejection ();
3349 goto fail;
3350 }
3351 }
3352
3353 if (obj != NULL_TREE)
3354 /* Aha, this is a conversion function. */
3355 cand = add_conv_candidate (candidates, fn, obj, arglist,
3356 access_path, conversion_path, complain);
3357 else
3358 cand = add_function_candidate (candidates, fn, ctype,
3359 first_arg, arglist, access_path,
3360 conversion_path, flags, convs, complain);
3361 if (DECL_TI_TEMPLATE (fn) != tmpl)
3362 /* This situation can occur if a member template of a template
3363 class is specialized. Then, instantiate_template might return
3364 an instantiation of the specialization, in which case the
3365 DECL_TI_TEMPLATE field will point at the original
3366 specialization. For example:
3367
3368 template <class T> struct S { template <class U> void f(U);
3369 template <> void f(int) {}; };
3370 S<double> sd;
3371 sd.f(3);
3372
3373 Here, TMPL will be template <class U> S<double>::f(U).
3374 And, instantiate template will give us the specialization
3375 template <> S<double>::f(int). But, the DECL_TI_TEMPLATE field
3376 for this will point at template <class T> template <> S<T>::f(int),
3377 so that we can find the definition. For the purposes of
3378 overload resolution, however, we want the original TMPL. */
3379 cand->template_decl = build_template_info (tmpl, targs);
3380 else
3381 cand->template_decl = DECL_TEMPLATE_INFO (fn);
3382 cand->explicit_targs = explicit_targs;
3383
3384 return cand;
3385 fail:
3386 return add_candidate (candidates, tmpl, first_arg, arglist, nargs, NULL,
3387 access_path, conversion_path, 0, reason, flags);
3388 }
3389
3390
3391 static struct z_candidate *
3392 add_template_candidate (struct z_candidate **candidates, tree tmpl, tree ctype,
3393 tree explicit_targs, tree first_arg,
3394 const vec<tree, va_gc> *arglist, tree return_type,
3395 tree access_path, tree conversion_path, int flags,
3396 unification_kind_t strict, tsubst_flags_t complain)
3397 {
3398 return
3399 add_template_candidate_real (candidates, tmpl, ctype,
3400 explicit_targs, first_arg, arglist,
3401 return_type, access_path, conversion_path,
3402 flags, NULL_TREE, strict, complain);
3403 }
3404
3405 /* Create an overload candidate for the conversion function template TMPL,
3406 returning RETURN_TYPE, which will be invoked for expression OBJ to produce a
3407 pointer-to-function which will in turn be called with the argument list
3408 ARGLIST, and add it to CANDIDATES. This does not change ARGLIST. FLAGS is
3409 passed on to implicit_conversion. */
3410
3411 static struct z_candidate *
3412 add_template_conv_candidate (struct z_candidate **candidates, tree tmpl,
3413 tree obj,
3414 const vec<tree, va_gc> *arglist,
3415 tree return_type, tree access_path,
3416 tree conversion_path, tsubst_flags_t complain)
3417 {
3418 /* Making this work broke PR 71117 and 85118, so until the committee resolves
3419 core issue 2189, let's disable this candidate if there are any call
3420 operators. */
3421 if (*candidates)
3422 return NULL;
3423
3424 return
3425 add_template_candidate_real (candidates, tmpl, NULL_TREE, NULL_TREE,
3426 NULL_TREE, arglist, return_type, access_path,
3427 conversion_path, 0, obj, DEDUCE_CALL,
3428 complain);
3429 }
3430
3431 /* The CANDS are the set of candidates that were considered for
3432 overload resolution. Return the set of viable candidates, or CANDS
3433 if none are viable. If any of the candidates were viable, set
3434 *ANY_VIABLE_P to true. STRICT_P is true if a candidate should be
3435 considered viable only if it is strictly viable. */
3436
3437 static struct z_candidate*
3438 splice_viable (struct z_candidate *cands,
3439 bool strict_p,
3440 bool *any_viable_p)
3441 {
3442 struct z_candidate *viable;
3443 struct z_candidate **last_viable;
3444 struct z_candidate **cand;
3445 bool found_strictly_viable = false;
3446
3447 /* Be strict inside templates, since build_over_call won't actually
3448 do the conversions to get pedwarns. */
3449 if (processing_template_decl)
3450 strict_p = true;
3451
3452 viable = NULL;
3453 last_viable = &viable;
3454 *any_viable_p = false;
3455
3456 cand = &cands;
3457 while (*cand)
3458 {
3459 struct z_candidate *c = *cand;
3460 if (!strict_p
3461 && (c->viable == 1 || TREE_CODE (c->fn) == TEMPLATE_DECL))
3462 {
3463 /* Be strict in the presence of a viable candidate. Also if
3464 there are template candidates, so that we get deduction errors
3465 for them instead of silently preferring a bad conversion. */
3466 strict_p = true;
3467 if (viable && !found_strictly_viable)
3468 {
3469 /* Put any spliced near matches back onto the main list so
3470 that we see them if there is no strict match. */
3471 *any_viable_p = false;
3472 *last_viable = cands;
3473 cands = viable;
3474 viable = NULL;
3475 last_viable = &viable;
3476 }
3477 }
3478
3479 if (strict_p ? c->viable == 1 : c->viable)
3480 {
3481 *last_viable = c;
3482 *cand = c->next;
3483 c->next = NULL;
3484 last_viable = &c->next;
3485 *any_viable_p = true;
3486 if (c->viable == 1)
3487 found_strictly_viable = true;
3488 }
3489 else
3490 cand = &c->next;
3491 }
3492
3493 return viable ? viable : cands;
3494 }
3495
3496 static bool
3497 any_strictly_viable (struct z_candidate *cands)
3498 {
3499 for (; cands; cands = cands->next)
3500 if (cands->viable == 1)
3501 return true;
3502 return false;
3503 }
3504
3505 /* OBJ is being used in an expression like "OBJ.f (...)". In other
3506 words, it is about to become the "this" pointer for a member
3507 function call. Take the address of the object. */
3508
3509 static tree
3510 build_this (tree obj)
3511 {
3512 /* In a template, we are only concerned about the type of the
3513 expression, so we can take a shortcut. */
3514 if (processing_template_decl)
3515 return build_address (obj);
3516
3517 return cp_build_addr_expr (obj, tf_warning_or_error);
3518 }
3519
3520 /* Returns true iff functions are equivalent. Equivalent functions are
3521 not '==' only if one is a function-local extern function or if
3522 both are extern "C". */
3523
3524 static inline int
3525 equal_functions (tree fn1, tree fn2)
3526 {
3527 if (TREE_CODE (fn1) != TREE_CODE (fn2))
3528 return 0;
3529 if (TREE_CODE (fn1) == TEMPLATE_DECL)
3530 return fn1 == fn2;
3531 if (DECL_LOCAL_FUNCTION_P (fn1) || DECL_LOCAL_FUNCTION_P (fn2)
3532 || DECL_EXTERN_C_FUNCTION_P (fn1))
3533 return decls_match (fn1, fn2);
3534 return fn1 == fn2;
3535 }
3536
3537 /* Print information about a candidate FN being rejected due to INFO. */
3538
3539 static void
3540 print_conversion_rejection (location_t loc, struct conversion_info *info,
3541 tree fn)
3542 {
3543 tree from = info->from;
3544 if (!TYPE_P (from))
3545 from = lvalue_type (from);
3546 if (info->n_arg == -1)
3547 {
3548 /* Conversion of implicit `this' argument failed. */
3549 if (!TYPE_P (info->from))
3550 /* A bad conversion for 'this' must be discarding cv-quals. */
3551 inform (loc, " passing %qT as %<this%> "
3552 "argument discards qualifiers",
3553 from);
3554 else
3555 inform (loc, " no known conversion for implicit "
3556 "%<this%> parameter from %qH to %qI",
3557 from, info->to_type);
3558 }
3559 else if (!TYPE_P (info->from))
3560 {
3561 if (info->n_arg >= 0)
3562 inform (loc, " conversion of argument %d would be ill-formed:",
3563 info->n_arg + 1);
3564 perform_implicit_conversion (info->to_type, info->from,
3565 tf_warning_or_error);
3566 }
3567 else if (info->n_arg == -2)
3568 /* Conversion of conversion function return value failed. */
3569 inform (loc, " no known conversion from %qH to %qI",
3570 from, info->to_type);
3571 else
3572 {
3573 if (TREE_CODE (fn) == FUNCTION_DECL)
3574 loc = get_fndecl_argument_location (fn, info->n_arg);
3575 inform (loc, " no known conversion for argument %d from %qH to %qI",
3576 info->n_arg + 1, from, info->to_type);
3577 }
3578 }
3579
3580 /* Print information about a candidate with WANT parameters and we found
3581 HAVE. */
3582
3583 static void
3584 print_arity_information (location_t loc, unsigned int have, unsigned int want)
3585 {
3586 inform_n (loc, want,
3587 " candidate expects %d argument, %d provided",
3588 " candidate expects %d arguments, %d provided",
3589 want, have);
3590 }
3591
3592 /* Print information about one overload candidate CANDIDATE. MSGSTR
3593 is the text to print before the candidate itself.
3594
3595 NOTE: Unlike most diagnostic functions in GCC, MSGSTR is expected
3596 to have been run through gettext by the caller. This wart makes
3597 life simpler in print_z_candidates and for the translators. */
3598
3599 static void
3600 print_z_candidate (location_t loc, const char *msgstr,
3601 struct z_candidate *candidate)
3602 {
3603 const char *msg = (msgstr == NULL
3604 ? ""
3605 : ACONCAT ((_(msgstr), " ", NULL)));
3606 tree fn = candidate->fn;
3607 if (flag_new_inheriting_ctors)
3608 fn = strip_inheriting_ctors (fn);
3609 location_t cloc = location_of (fn);
3610
3611 if (identifier_p (fn))
3612 {
3613 cloc = loc;
3614 if (candidate->num_convs == 3)
3615 inform (cloc, "%s%<%D(%T, %T, %T)%> (built-in)", msg, fn,
3616 candidate->convs[0]->type,
3617 candidate->convs[1]->type,
3618 candidate->convs[2]->type);
3619 else if (candidate->num_convs == 2)
3620 inform (cloc, "%s%<%D(%T, %T)%> (built-in)", msg, fn,
3621 candidate->convs[0]->type,
3622 candidate->convs[1]->type);
3623 else
3624 inform (cloc, "%s%<%D(%T)%> (built-in)", msg, fn,
3625 candidate->convs[0]->type);
3626 }
3627 else if (TYPE_P (fn))
3628 inform (cloc, "%s%qT (conversion)", msg, fn);
3629 else if (candidate->viable == -1)
3630 inform (cloc, "%s%#qD (near match)", msg, fn);
3631 else if (DECL_DELETED_FN (fn))
3632 inform (cloc, "%s%#qD (deleted)", msg, fn);
3633 else
3634 inform (cloc, "%s%#qD", msg, fn);
3635 if (fn != candidate->fn)
3636 {
3637 cloc = location_of (candidate->fn);
3638 inform (cloc, " inherited here");
3639 }
3640 /* Give the user some information about why this candidate failed. */
3641 if (candidate->reason != NULL)
3642 {
3643 struct rejection_reason *r = candidate->reason;
3644
3645 switch (r->code)
3646 {
3647 case rr_arity:
3648 print_arity_information (cloc, r->u.arity.actual,
3649 r->u.arity.expected);
3650 break;
3651 case rr_arg_conversion:
3652 print_conversion_rejection (cloc, &r->u.conversion, fn);
3653 break;
3654 case rr_bad_arg_conversion:
3655 print_conversion_rejection (cloc, &r->u.bad_conversion, fn);
3656 break;
3657 case rr_explicit_conversion:
3658 inform (cloc, " return type %qT of explicit conversion function "
3659 "cannot be converted to %qT with a qualification "
3660 "conversion", r->u.conversion.from,
3661 r->u.conversion.to_type);
3662 break;
3663 case rr_template_conversion:
3664 inform (cloc, " conversion from return type %qT of template "
3665 "conversion function specialization to %qT is not an "
3666 "exact match", r->u.conversion.from,
3667 r->u.conversion.to_type);
3668 break;
3669 case rr_template_unification:
3670 /* We use template_unification_error_rejection if unification caused
3671 actual non-SFINAE errors, in which case we don't need to repeat
3672 them here. */
3673 if (r->u.template_unification.tmpl == NULL_TREE)
3674 {
3675 inform (cloc, " substitution of deduced template arguments "
3676 "resulted in errors seen above");
3677 break;
3678 }
3679 /* Re-run template unification with diagnostics. */
3680 inform (cloc, " template argument deduction/substitution failed:");
3681 fn_type_unification (r->u.template_unification.tmpl,
3682 r->u.template_unification.explicit_targs,
3683 (make_tree_vec
3684 (r->u.template_unification.num_targs)),
3685 r->u.template_unification.args,
3686 r->u.template_unification.nargs,
3687 r->u.template_unification.return_type,
3688 r->u.template_unification.strict,
3689 r->u.template_unification.flags,
3690 NULL, true, false);
3691 break;
3692 case rr_invalid_copy:
3693 inform (cloc,
3694 " a constructor taking a single argument of its own "
3695 "class type is invalid");
3696 break;
3697 case rr_constraint_failure:
3698 {
3699 tree tmpl = r->u.template_instantiation.tmpl;
3700 tree args = r->u.template_instantiation.targs;
3701 diagnose_constraints (cloc, tmpl, args);
3702 }
3703 break;
3704 case rr_inherited_ctor:
3705 inform (cloc, " an inherited constructor is not a candidate for "
3706 "initialization from an expression of the same or derived "
3707 "type");
3708 break;
3709 case rr_none:
3710 default:
3711 /* This candidate didn't have any issues or we failed to
3712 handle a particular code. Either way... */
3713 gcc_unreachable ();
3714 }
3715 }
3716 }
3717
3718 static void
3719 print_z_candidates (location_t loc, struct z_candidate *candidates)
3720 {
3721 struct z_candidate *cand1;
3722 struct z_candidate **cand2;
3723
3724 if (!candidates)
3725 return;
3726
3727 /* Remove non-viable deleted candidates. */
3728 cand1 = candidates;
3729 for (cand2 = &cand1; *cand2; )
3730 {
3731 if (TREE_CODE ((*cand2)->fn) == FUNCTION_DECL
3732 && !(*cand2)->viable
3733 && DECL_DELETED_FN ((*cand2)->fn))
3734 *cand2 = (*cand2)->next;
3735 else
3736 cand2 = &(*cand2)->next;
3737 }
3738 /* ...if there are any non-deleted ones. */
3739 if (cand1)
3740 candidates = cand1;
3741
3742 /* There may be duplicates in the set of candidates. We put off
3743 checking this condition as long as possible, since we have no way
3744 to eliminate duplicates from a set of functions in less than n^2
3745 time. Now we are about to emit an error message, so it is more
3746 permissible to go slowly. */
3747 for (cand1 = candidates; cand1; cand1 = cand1->next)
3748 {
3749 tree fn = cand1->fn;
3750 /* Skip builtin candidates and conversion functions. */
3751 if (!DECL_P (fn))
3752 continue;
3753 cand2 = &cand1->next;
3754 while (*cand2)
3755 {
3756 if (DECL_P ((*cand2)->fn)
3757 && equal_functions (fn, (*cand2)->fn))
3758 *cand2 = (*cand2)->next;
3759 else
3760 cand2 = &(*cand2)->next;
3761 }
3762 }
3763
3764 for (; candidates; candidates = candidates->next)
3765 print_z_candidate (loc, N_("candidate:"), candidates);
3766 }
3767
3768 /* USER_SEQ is a user-defined conversion sequence, beginning with a
3769 USER_CONV. STD_SEQ is the standard conversion sequence applied to
3770 the result of the conversion function to convert it to the final
3771 desired type. Merge the two sequences into a single sequence,
3772 and return the merged sequence. */
3773
3774 static conversion *
3775 merge_conversion_sequences (conversion *user_seq, conversion *std_seq)
3776 {
3777 conversion **t;
3778 bool bad = user_seq->bad_p;
3779
3780 gcc_assert (user_seq->kind == ck_user);
3781
3782 /* Find the end of the second conversion sequence. */
3783 for (t = &std_seq; (*t)->kind != ck_identity; t = &((*t)->u.next))
3784 {
3785 /* The entire sequence is a user-conversion sequence. */
3786 (*t)->user_conv_p = true;
3787 if (bad)
3788 (*t)->bad_p = true;
3789 }
3790
3791 if ((*t)->rvaluedness_matches_p)
3792 /* We're binding a reference directly to the result of the conversion.
3793 build_user_type_conversion_1 stripped the REFERENCE_TYPE from the return
3794 type, but we want it back. */
3795 user_seq->type = TREE_TYPE (TREE_TYPE (user_seq->cand->fn));
3796
3797 /* Replace the identity conversion with the user conversion
3798 sequence. */
3799 *t = user_seq;
3800
3801 return std_seq;
3802 }
3803
3804 /* Handle overload resolution for initializing an object of class type from
3805 an initializer list. First we look for a suitable constructor that
3806 takes a std::initializer_list; if we don't find one, we then look for a
3807 non-list constructor.
3808
3809 Parameters are as for add_candidates, except that the arguments are in
3810 the form of a CONSTRUCTOR (the initializer list) rather than a vector, and
3811 the RETURN_TYPE parameter is replaced by TOTYPE, the desired type. */
3812
3813 static void
3814 add_list_candidates (tree fns, tree first_arg,
3815 const vec<tree, va_gc> *args, tree totype,
3816 tree explicit_targs, bool template_only,
3817 tree conversion_path, tree access_path,
3818 int flags,
3819 struct z_candidate **candidates,
3820 tsubst_flags_t complain)
3821 {
3822 gcc_assert (*candidates == NULL);
3823
3824 /* We're looking for a ctor for list-initialization. */
3825 flags |= LOOKUP_LIST_INIT_CTOR;
3826 /* And we don't allow narrowing conversions. We also use this flag to
3827 avoid the copy constructor call for copy-list-initialization. */
3828 flags |= LOOKUP_NO_NARROWING;
3829
3830 unsigned nart = num_artificial_parms_for (OVL_FIRST (fns)) - 1;
3831 tree init_list = (*args)[nart];
3832
3833 /* Always use the default constructor if the list is empty (DR 990). */
3834 if (CONSTRUCTOR_NELTS (init_list) == 0
3835 && TYPE_HAS_DEFAULT_CONSTRUCTOR (totype))
3836 ;
3837 /* If the class has a list ctor, try passing the list as a single
3838 argument first, but only consider list ctors. */
3839 else if (TYPE_HAS_LIST_CTOR (totype))
3840 {
3841 flags |= LOOKUP_LIST_ONLY;
3842 add_candidates (fns, first_arg, args, NULL_TREE,
3843 explicit_targs, template_only, conversion_path,
3844 access_path, flags, candidates, complain);
3845 if (any_strictly_viable (*candidates))
3846 return;
3847 }
3848
3849 /* Expand the CONSTRUCTOR into a new argument vec. */
3850 vec<tree, va_gc> *new_args;
3851 vec_alloc (new_args, nart + CONSTRUCTOR_NELTS (init_list));
3852 for (unsigned i = 0; i < nart; ++i)
3853 new_args->quick_push ((*args)[i]);
3854 for (unsigned i = 0; i < CONSTRUCTOR_NELTS (init_list); ++i)
3855 new_args->quick_push (CONSTRUCTOR_ELT (init_list, i)->value);
3856
3857 /* We aren't looking for list-ctors anymore. */
3858 flags &= ~LOOKUP_LIST_ONLY;
3859 /* We allow more user-defined conversions within an init-list. */
3860 flags &= ~LOOKUP_NO_CONVERSION;
3861
3862 add_candidates (fns, first_arg, new_args, NULL_TREE,
3863 explicit_targs, template_only, conversion_path,
3864 access_path, flags, candidates, complain);
3865 }
3866
3867 /* Returns the best overload candidate to perform the requested
3868 conversion. This function is used for three the overloading situations
3869 described in [over.match.copy], [over.match.conv], and [over.match.ref].
3870 If TOTYPE is a REFERENCE_TYPE, we're trying to find a direct binding as
3871 per [dcl.init.ref], so we ignore temporary bindings. */
3872
3873 static struct z_candidate *
3874 build_user_type_conversion_1 (tree totype, tree expr, int flags,
3875 tsubst_flags_t complain)
3876 {
3877 struct z_candidate *candidates, *cand;
3878 tree fromtype;
3879 tree ctors = NULL_TREE;
3880 tree conv_fns = NULL_TREE;
3881 conversion *conv = NULL;
3882 tree first_arg = NULL_TREE;
3883 vec<tree, va_gc> *args = NULL;
3884 bool any_viable_p;
3885 int convflags;
3886
3887 if (!expr)
3888 return NULL;
3889
3890 fromtype = TREE_TYPE (expr);
3891
3892 /* We represent conversion within a hierarchy using RVALUE_CONV and
3893 BASE_CONV, as specified by [over.best.ics]; these become plain
3894 constructor calls, as specified in [dcl.init]. */
3895 gcc_assert (!MAYBE_CLASS_TYPE_P (fromtype) || !MAYBE_CLASS_TYPE_P (totype)
3896 || !DERIVED_FROM_P (totype, fromtype));
3897
3898 if (CLASS_TYPE_P (totype))
3899 /* Use lookup_fnfields_slot instead of lookup_fnfields to avoid
3900 creating a garbage BASELINK; constructors can't be inherited. */
3901 ctors = get_class_binding (totype, complete_ctor_identifier);
3902
3903 if (MAYBE_CLASS_TYPE_P (fromtype))
3904 {
3905 tree to_nonref = non_reference (totype);
3906 if (same_type_ignoring_top_level_qualifiers_p (to_nonref, fromtype) ||
3907 (CLASS_TYPE_P (to_nonref) && CLASS_TYPE_P (fromtype)
3908 && DERIVED_FROM_P (to_nonref, fromtype)))
3909 {
3910 /* [class.conv.fct] A conversion function is never used to
3911 convert a (possibly cv-qualified) object to the (possibly
3912 cv-qualified) same object type (or a reference to it), to a
3913 (possibly cv-qualified) base class of that type (or a
3914 reference to it)... */
3915 }
3916 else
3917 conv_fns = lookup_conversions (fromtype);
3918 }
3919
3920 candidates = 0;
3921 flags |= LOOKUP_NO_CONVERSION;
3922 if (BRACE_ENCLOSED_INITIALIZER_P (expr))
3923 flags |= LOOKUP_NO_NARROWING;
3924
3925 /* It's OK to bind a temporary for converting constructor arguments, but
3926 not in converting the return value of a conversion operator. */
3927 convflags = ((flags & LOOKUP_NO_TEMP_BIND) | LOOKUP_NO_CONVERSION
3928 | (flags & LOOKUP_NO_NARROWING));
3929 flags &= ~LOOKUP_NO_TEMP_BIND;
3930
3931 if (ctors)
3932 {
3933 int ctorflags = flags;
3934
3935 first_arg = build_dummy_object (totype);
3936
3937 /* We should never try to call the abstract or base constructor
3938 from here. */
3939 gcc_assert (!DECL_HAS_IN_CHARGE_PARM_P (OVL_FIRST (ctors))
3940 && !DECL_HAS_VTT_PARM_P (OVL_FIRST (ctors)));
3941
3942 args = make_tree_vector_single (expr);
3943 if (BRACE_ENCLOSED_INITIALIZER_P (expr))
3944 {
3945 /* List-initialization. */
3946 add_list_candidates (ctors, first_arg, args, totype, NULL_TREE,
3947 false, TYPE_BINFO (totype), TYPE_BINFO (totype),
3948 ctorflags, &candidates, complain);
3949 }
3950 else
3951 {
3952 add_candidates (ctors, first_arg, args, NULL_TREE, NULL_TREE, false,
3953 TYPE_BINFO (totype), TYPE_BINFO (totype),
3954 ctorflags, &candidates, complain);
3955 }
3956
3957 for (cand = candidates; cand; cand = cand->next)
3958 {
3959 cand->second_conv = build_identity_conv (totype, NULL_TREE);
3960
3961 /* If totype isn't a reference, and LOOKUP_NO_TEMP_BIND isn't
3962 set, then this is copy-initialization. In that case, "The
3963 result of the call is then used to direct-initialize the
3964 object that is the destination of the copy-initialization."
3965 [dcl.init]
3966
3967 We represent this in the conversion sequence with an
3968 rvalue conversion, which means a constructor call. */
3969 if (!TYPE_REF_P (totype)
3970 && !(convflags & LOOKUP_NO_TEMP_BIND))
3971 cand->second_conv
3972 = build_conv (ck_rvalue, totype, cand->second_conv);
3973 }
3974 }
3975
3976 if (conv_fns)
3977 {
3978 if (BRACE_ENCLOSED_INITIALIZER_P (expr))
3979 first_arg = CONSTRUCTOR_ELT (expr, 0)->value;
3980 else
3981 first_arg = expr;
3982 }
3983
3984 for (; conv_fns; conv_fns = TREE_CHAIN (conv_fns))
3985 {
3986 tree conversion_path = TREE_PURPOSE (conv_fns);
3987 struct z_candidate *old_candidates;
3988
3989 /* If we are called to convert to a reference type, we are trying to
3990 find a direct binding, so don't even consider temporaries. If
3991 we don't find a direct binding, the caller will try again to
3992 look for a temporary binding. */
3993 if (TYPE_REF_P (totype))
3994 convflags |= LOOKUP_NO_TEMP_BIND;
3995
3996 old_candidates = candidates;
3997 add_candidates (TREE_VALUE (conv_fns), first_arg, NULL, totype,
3998 NULL_TREE, false,
3999 conversion_path, TYPE_BINFO (fromtype),
4000 flags, &candidates, complain);
4001
4002 for (cand = candidates; cand != old_candidates; cand = cand->next)
4003 {
4004 tree rettype = TREE_TYPE (TREE_TYPE (cand->fn));
4005 conversion *ics
4006 = implicit_conversion (totype,
4007 rettype,
4008 0,
4009 /*c_cast_p=*/false, convflags,
4010 complain);
4011
4012 /* If LOOKUP_NO_TEMP_BIND isn't set, then this is
4013 copy-initialization. In that case, "The result of the
4014 call is then used to direct-initialize the object that is
4015 the destination of the copy-initialization." [dcl.init]
4016
4017 We represent this in the conversion sequence with an
4018 rvalue conversion, which means a constructor call. But
4019 don't add a second rvalue conversion if there's already
4020 one there. Which there really shouldn't be, but it's
4021 harmless since we'd add it here anyway. */
4022 if (ics && MAYBE_CLASS_TYPE_P (totype) && ics->kind != ck_rvalue
4023 && !(convflags & LOOKUP_NO_TEMP_BIND))
4024 ics = build_conv (ck_rvalue, totype, ics);
4025
4026 cand->second_conv = ics;
4027
4028 if (!ics)
4029 {
4030 cand->viable = 0;
4031 cand->reason = arg_conversion_rejection (NULL_TREE, -2,
4032 rettype, totype,
4033 EXPR_LOCATION (expr));
4034 }
4035 else if (TYPE_REF_P (totype) && !ics->rvaluedness_matches_p
4036 && TREE_CODE (TREE_TYPE (totype)) != FUNCTION_TYPE)
4037 {
4038 /* If we are called to convert to a reference type, we are trying
4039 to find a direct binding per [over.match.ref], so rvaluedness
4040 must match for non-functions. */
4041 cand->viable = 0;
4042 }
4043 else if (DECL_NONCONVERTING_P (cand->fn)
4044 && ics->rank > cr_exact)
4045 {
4046 /* 13.3.1.5: For direct-initialization, those explicit
4047 conversion functions that are not hidden within S and
4048 yield type T or a type that can be converted to type T
4049 with a qualification conversion (4.4) are also candidate
4050 functions. */
4051 /* 13.3.1.6 doesn't have a parallel restriction, but it should;
4052 I've raised this issue with the committee. --jason 9/2011 */
4053 cand->viable = -1;
4054 cand->reason = explicit_conversion_rejection (rettype, totype);
4055 }
4056 else if (cand->viable == 1 && ics->bad_p)
4057 {
4058 cand->viable = -1;
4059 cand->reason
4060 = bad_arg_conversion_rejection (NULL_TREE, -2,
4061 rettype, totype,
4062 EXPR_LOCATION (expr));
4063 }
4064 else if (primary_template_specialization_p (cand->fn)
4065 && ics->rank > cr_exact)
4066 {
4067 /* 13.3.3.1.2: If the user-defined conversion is specified by
4068 a specialization of a conversion function template, the
4069 second standard conversion sequence shall have exact match
4070 rank. */
4071 cand->viable = -1;
4072 cand->reason = template_conversion_rejection (rettype, totype);
4073 }
4074 }
4075 }
4076
4077 candidates = splice_viable (candidates, false, &any_viable_p);
4078 if (!any_viable_p)
4079 {
4080 if (args)
4081 release_tree_vector (args);
4082 return NULL;
4083 }
4084
4085 cand = tourney (candidates, complain);
4086 if (cand == NULL)
4087 {
4088 if (complain & tf_error)
4089 {
4090 auto_diagnostic_group d;
4091 error ("conversion from %qH to %qI is ambiguous",
4092 fromtype, totype);
4093 print_z_candidates (location_of (expr), candidates);
4094 }
4095
4096 cand = candidates; /* any one will do */
4097 cand->second_conv = build_ambiguous_conv (totype, expr);
4098 cand->second_conv->user_conv_p = true;
4099 if (!any_strictly_viable (candidates))
4100 cand->second_conv->bad_p = true;
4101 if (flags & LOOKUP_ONLYCONVERTING)
4102 cand->second_conv->need_temporary_p = true;
4103 /* If there are viable candidates, don't set ICS_BAD_FLAG; an
4104 ambiguous conversion is no worse than another user-defined
4105 conversion. */
4106
4107 return cand;
4108 }
4109
4110 tree convtype;
4111 if (!DECL_CONSTRUCTOR_P (cand->fn))
4112 convtype = non_reference (TREE_TYPE (TREE_TYPE (cand->fn)));
4113 else if (cand->second_conv->kind == ck_rvalue)
4114 /* DR 5: [in the first step of copy-initialization]...if the function
4115 is a constructor, the call initializes a temporary of the
4116 cv-unqualified version of the destination type. */
4117 convtype = cv_unqualified (totype);
4118 else
4119 convtype = totype;
4120 /* Build the user conversion sequence. */
4121 conv = build_conv
4122 (ck_user,
4123 convtype,
4124 build_identity_conv (TREE_TYPE (expr), expr));
4125 conv->cand = cand;
4126 if (cand->viable == -1)
4127 conv->bad_p = true;
4128
4129 /* We're performing the maybe-rvalue overload resolution and
4130 a conversion function is in play. Reject converting the return
4131 value of the conversion function to a base class. */
4132 if ((flags & LOOKUP_PREFER_RVALUE) && !DECL_CONSTRUCTOR_P (cand->fn))
4133 for (conversion *t = cand->second_conv; t; t = next_conversion (t))
4134 if (t->kind == ck_base)
4135 return NULL;
4136
4137 /* Remember that this was a list-initialization. */
4138 if (flags & LOOKUP_NO_NARROWING)
4139 conv->check_narrowing = true;
4140
4141 /* Combine it with the second conversion sequence. */
4142 cand->second_conv = merge_conversion_sequences (conv,
4143 cand->second_conv);
4144
4145 return cand;
4146 }
4147
4148 /* Wrapper for above. */
4149
4150 tree
4151 build_user_type_conversion (tree totype, tree expr, int flags,
4152 tsubst_flags_t complain)
4153 {
4154 struct z_candidate *cand;
4155 tree ret;
4156
4157 bool subtime = timevar_cond_start (TV_OVERLOAD);
4158 cand = build_user_type_conversion_1 (totype, expr, flags, complain);
4159
4160 if (cand)
4161 {
4162 if (cand->second_conv->kind == ck_ambig)
4163 ret = error_mark_node;
4164 else
4165 {
4166 expr = convert_like (cand->second_conv, expr, complain);
4167 ret = convert_from_reference (expr);
4168 }
4169 }
4170 else
4171 ret = NULL_TREE;
4172
4173 timevar_cond_stop (TV_OVERLOAD, subtime);
4174 return ret;
4175 }
4176
4177 /* Worker for build_converted_constant_expr. */
4178
4179 static tree
4180 build_converted_constant_expr_internal (tree type, tree expr,
4181 int flags, tsubst_flags_t complain)
4182 {
4183 conversion *conv;
4184 void *p;
4185 tree t;
4186 location_t loc = cp_expr_loc_or_input_loc (expr);
4187
4188 if (error_operand_p (expr))
4189 return error_mark_node;
4190
4191 /* Get the high-water mark for the CONVERSION_OBSTACK. */
4192 p = conversion_obstack_alloc (0);
4193
4194 conv = implicit_conversion (type, TREE_TYPE (expr), expr,
4195 /*c_cast_p=*/false, flags, complain);
4196
4197 /* A converted constant expression of type T is an expression, implicitly
4198 converted to type T, where the converted expression is a constant
4199 expression and the implicit conversion sequence contains only
4200
4201 * user-defined conversions,
4202 * lvalue-to-rvalue conversions (7.1),
4203 * array-to-pointer conversions (7.2),
4204 * function-to-pointer conversions (7.3),
4205 * qualification conversions (7.5),
4206 * integral promotions (7.6),
4207 * integral conversions (7.8) other than narrowing conversions (11.6.4),
4208 * null pointer conversions (7.11) from std::nullptr_t,
4209 * null member pointer conversions (7.12) from std::nullptr_t, and
4210 * function pointer conversions (7.13),
4211
4212 and where the reference binding (if any) binds directly. */
4213
4214 for (conversion *c = conv;
4215 conv && c->kind != ck_identity;
4216 c = next_conversion (c))
4217 {
4218 switch (c->kind)
4219 {
4220 /* A conversion function is OK. If it isn't constexpr, we'll
4221 complain later that the argument isn't constant. */
4222 case ck_user:
4223 /* The lvalue-to-rvalue conversion is OK. */
4224 case ck_rvalue:
4225 /* Array-to-pointer and function-to-pointer. */
4226 case ck_lvalue:
4227 /* Function pointer conversions. */
4228 case ck_fnptr:
4229 /* Qualification conversions. */
4230 case ck_qual:
4231 break;
4232
4233 case ck_ref_bind:
4234 if (c->need_temporary_p)
4235 {
4236 if (complain & tf_error)
4237 error_at (loc, "initializing %qH with %qI in converted "
4238 "constant expression does not bind directly",
4239 type, next_conversion (c)->type);
4240 conv = NULL;
4241 }
4242 break;
4243
4244 case ck_base:
4245 case ck_pmem:
4246 case ck_ptr:
4247 case ck_std:
4248 t = next_conversion (c)->type;
4249 if (INTEGRAL_OR_ENUMERATION_TYPE_P (t)
4250 && INTEGRAL_OR_ENUMERATION_TYPE_P (type))
4251 /* Integral promotion or conversion. */
4252 break;
4253 if (NULLPTR_TYPE_P (t))
4254 /* Conversion from nullptr to pointer or pointer-to-member. */
4255 break;
4256
4257 if (complain & tf_error)
4258 error_at (loc, "conversion from %qH to %qI in a "
4259 "converted constant expression", t, type);
4260 /* fall through. */
4261
4262 default:
4263 conv = NULL;
4264 break;
4265 }
4266 }
4267
4268 /* Avoid confusing convert_nontype_argument by introducing
4269 a redundant conversion to the same reference type. */
4270 if (conv && conv->kind == ck_ref_bind
4271 && REFERENCE_REF_P (expr))
4272 {
4273 tree ref = TREE_OPERAND (expr, 0);
4274 if (same_type_p (type, TREE_TYPE (ref)))
4275 return ref;
4276 }
4277
4278 if (conv)
4279 {
4280 /* Don't copy a class in a template. */
4281 if (CLASS_TYPE_P (type) && conv->kind == ck_rvalue
4282 && processing_template_decl)
4283 conv = next_conversion (conv);
4284
4285 conv->check_narrowing = true;
4286 conv->check_narrowing_const_only = true;
4287 expr = convert_like (conv, expr, complain);
4288 }
4289 else
4290 {
4291 if (complain & tf_error)
4292 error_at (loc, "could not convert %qE from %qH to %qI", expr,
4293 TREE_TYPE (expr), type);
4294 expr = error_mark_node;
4295 }
4296
4297 /* Free all the conversions we allocated. */
4298 obstack_free (&conversion_obstack, p);
4299
4300 return expr;
4301 }
4302
4303 /* Subroutine of convert_nontype_argument.
4304
4305 EXPR is an expression used in a context that requires a converted
4306 constant-expression, such as a template non-type parameter. Do any
4307 necessary conversions (that are permitted for converted
4308 constant-expressions) to convert it to the desired type.
4309
4310 This function doesn't consider explicit conversion functions. If
4311 you mean to use "a contextually converted constant expression of type
4312 bool", use build_converted_constant_bool_expr.
4313
4314 If conversion is successful, returns the converted expression;
4315 otherwise, returns error_mark_node. */
4316
4317 tree
4318 build_converted_constant_expr (tree type, tree expr, tsubst_flags_t complain)
4319 {
4320 return build_converted_constant_expr_internal (type, expr, LOOKUP_IMPLICIT,
4321 complain);
4322 }
4323
4324 /* Used to create "a contextually converted constant expression of type
4325 bool". This differs from build_converted_constant_expr in that it
4326 also considers explicit conversion functions. */
4327
4328 tree
4329 build_converted_constant_bool_expr (tree expr, tsubst_flags_t complain)
4330 {
4331 return build_converted_constant_expr_internal (boolean_type_node, expr,
4332 LOOKUP_NORMAL, complain);
4333 }
4334
4335 /* Do any initial processing on the arguments to a function call. */
4336
4337 static vec<tree, va_gc> *
4338 resolve_args (vec<tree, va_gc> *args, tsubst_flags_t complain)
4339 {
4340 unsigned int ix;
4341 tree arg;
4342
4343 FOR_EACH_VEC_SAFE_ELT (args, ix, arg)
4344 {
4345 if (error_operand_p (arg))
4346 return NULL;
4347 else if (VOID_TYPE_P (TREE_TYPE (arg)))
4348 {
4349 if (complain & tf_error)
4350 error ("invalid use of void expression");
4351 return NULL;
4352 }
4353 else if (invalid_nonstatic_memfn_p (EXPR_LOCATION (arg), arg, complain))
4354 return NULL;
4355 }
4356 return args;
4357 }
4358
4359 /* Perform overload resolution on FN, which is called with the ARGS.
4360
4361 Return the candidate function selected by overload resolution, or
4362 NULL if the event that overload resolution failed. In the case
4363 that overload resolution fails, *CANDIDATES will be the set of
4364 candidates considered, and ANY_VIABLE_P will be set to true or
4365 false to indicate whether or not any of the candidates were
4366 viable.
4367
4368 The ARGS should already have gone through RESOLVE_ARGS before this
4369 function is called. */
4370
4371 static struct z_candidate *
4372 perform_overload_resolution (tree fn,
4373 const vec<tree, va_gc> *args,
4374 struct z_candidate **candidates,
4375 bool *any_viable_p, tsubst_flags_t complain)
4376 {
4377 struct z_candidate *cand;
4378 tree explicit_targs;
4379 int template_only;
4380
4381 bool subtime = timevar_cond_start (TV_OVERLOAD);
4382
4383 explicit_targs = NULL_TREE;
4384 template_only = 0;
4385
4386 *candidates = NULL;
4387 *any_viable_p = true;
4388
4389 /* Check FN. */
4390 gcc_assert (OVL_P (fn) || TREE_CODE (fn) == TEMPLATE_ID_EXPR);
4391
4392 if (TREE_CODE (fn) == TEMPLATE_ID_EXPR)
4393 {
4394 explicit_targs = TREE_OPERAND (fn, 1);
4395 fn = TREE_OPERAND (fn, 0);
4396 template_only = 1;
4397 }
4398
4399 /* Add the various candidate functions. */
4400 add_candidates (fn, NULL_TREE, args, NULL_TREE,
4401 explicit_targs, template_only,
4402 /*conversion_path=*/NULL_TREE,
4403 /*access_path=*/NULL_TREE,
4404 LOOKUP_NORMAL,
4405 candidates, complain);
4406
4407 *candidates = splice_viable (*candidates, false, any_viable_p);
4408 if (*any_viable_p)
4409 cand = tourney (*candidates, complain);
4410 else
4411 cand = NULL;
4412
4413 timevar_cond_stop (TV_OVERLOAD, subtime);
4414 return cand;
4415 }
4416
4417 /* Print an error message about being unable to build a call to FN with
4418 ARGS. ANY_VIABLE_P indicates whether any candidate functions could
4419 be located; CANDIDATES is a possibly empty list of such
4420 functions. */
4421
4422 static void
4423 print_error_for_call_failure (tree fn, vec<tree, va_gc> *args,
4424 struct z_candidate *candidates)
4425 {
4426 tree targs = NULL_TREE;
4427 if (TREE_CODE (fn) == TEMPLATE_ID_EXPR)
4428 {
4429 targs = TREE_OPERAND (fn, 1);
4430 fn = TREE_OPERAND (fn, 0);
4431 }
4432 tree name = OVL_NAME (fn);
4433 location_t loc = location_of (name);
4434 if (targs)
4435 name = lookup_template_function (name, targs);
4436
4437 auto_diagnostic_group d;
4438 if (!any_strictly_viable (candidates))
4439 error_at (loc, "no matching function for call to %<%D(%A)%>",
4440 name, build_tree_list_vec (args));
4441 else
4442 error_at (loc, "call of overloaded %<%D(%A)%> is ambiguous",
4443 name, build_tree_list_vec (args));
4444 if (candidates)
4445 print_z_candidates (loc, candidates);
4446 }
4447
4448 /* Return an expression for a call to FN (a namespace-scope function,
4449 or a static member function) with the ARGS. This may change
4450 ARGS. */
4451
4452 tree
4453 build_new_function_call (tree fn, vec<tree, va_gc> **args,
4454 tsubst_flags_t complain)
4455 {
4456 struct z_candidate *candidates, *cand;
4457 bool any_viable_p;
4458 void *p;
4459 tree result;
4460
4461 if (args != NULL && *args != NULL)
4462 {
4463 *args = resolve_args (*args, complain);
4464 if (*args == NULL)
4465 return error_mark_node;
4466 }
4467
4468 if (flag_tm)
4469 tm_malloc_replacement (fn);
4470
4471 /* Get the high-water mark for the CONVERSION_OBSTACK. */
4472 p = conversion_obstack_alloc (0);
4473
4474 cand = perform_overload_resolution (fn, *args, &candidates, &any_viable_p,
4475 complain);
4476
4477 if (!cand)
4478 {
4479 if (complain & tf_error)
4480 {
4481 // If there is a single (non-viable) function candidate,
4482 // let the error be diagnosed by cp_build_function_call_vec.
4483 if (!any_viable_p && candidates && ! candidates->next
4484 && (TREE_CODE (candidates->fn) == FUNCTION_DECL))
4485 return cp_build_function_call_vec (candidates->fn, args, complain);
4486
4487 // Otherwise, emit notes for non-viable candidates.
4488 print_error_for_call_failure (fn, *args, candidates);
4489 }
4490 result = error_mark_node;
4491 }
4492 else
4493 {
4494 int flags = LOOKUP_NORMAL;
4495 /* If fn is template_id_expr, the call has explicit template arguments
4496 (e.g. func<int>(5)), communicate this info to build_over_call
4497 through flags so that later we can use it to decide whether to warn
4498 about peculiar null pointer conversion. */
4499 if (TREE_CODE (fn) == TEMPLATE_ID_EXPR)
4500 {
4501 /* If overload resolution selects a specialization of a
4502 function concept for non-dependent template arguments,
4503 the expression is true if the constraints are satisfied
4504 and false otherwise.
4505
4506 NOTE: This is an extension of Concepts Lite TS that
4507 allows constraints to be used in expressions. */
4508 if (flag_concepts && !processing_template_decl)
4509 {
4510 tree tmpl = DECL_TI_TEMPLATE (cand->fn);
4511 tree targs = DECL_TI_ARGS (cand->fn);
4512 tree decl = DECL_TEMPLATE_RESULT (tmpl);
4513 if (DECL_DECLARED_CONCEPT_P (decl))
4514 return evaluate_function_concept (decl, targs);
4515 }
4516
4517 flags |= LOOKUP_EXPLICIT_TMPL_ARGS;
4518 }
4519
4520 result = build_over_call (cand, flags, complain);
4521 }
4522
4523 /* Free all the conversions we allocated. */
4524 obstack_free (&conversion_obstack, p);
4525
4526 return result;
4527 }
4528
4529 /* Build a call to a global operator new. FNNAME is the name of the
4530 operator (either "operator new" or "operator new[]") and ARGS are
4531 the arguments provided. This may change ARGS. *SIZE points to the
4532 total number of bytes required by the allocation, and is updated if
4533 that is changed here. *COOKIE_SIZE is non-NULL if a cookie should
4534 be used. If this function determines that no cookie should be
4535 used, after all, *COOKIE_SIZE is set to NULL_TREE. If SIZE_CHECK
4536 is not NULL_TREE, it is evaluated before calculating the final
4537 array size, and if it fails, the array size is replaced with
4538 (size_t)-1 (usually triggering a std::bad_alloc exception). If FN
4539 is non-NULL, it will be set, upon return, to the allocation
4540 function called. */
4541
4542 tree
4543 build_operator_new_call (tree fnname, vec<tree, va_gc> **args,
4544 tree *size, tree *cookie_size,
4545 tree align_arg, tree size_check,
4546 tree *fn, tsubst_flags_t complain)
4547 {
4548 tree original_size = *size;
4549 tree fns;
4550 struct z_candidate *candidates;
4551 struct z_candidate *cand = NULL;
4552 bool any_viable_p;
4553
4554 if (fn)
4555 *fn = NULL_TREE;
4556 /* Set to (size_t)-1 if the size check fails. */
4557 if (size_check != NULL_TREE)
4558 {
4559 tree errval = TYPE_MAX_VALUE (sizetype);
4560 if (cxx_dialect >= cxx11 && flag_exceptions)
4561 errval = throw_bad_array_new_length ();
4562 *size = fold_build3 (COND_EXPR, sizetype, size_check,
4563 original_size, errval);
4564 }
4565 vec_safe_insert (*args, 0, *size);
4566 *args = resolve_args (*args, complain);
4567 if (*args == NULL)
4568 return error_mark_node;
4569
4570 /* Based on:
4571
4572 [expr.new]
4573
4574 If this lookup fails to find the name, or if the allocated type
4575 is not a class type, the allocation function's name is looked
4576 up in the global scope.
4577
4578 we disregard block-scope declarations of "operator new". */
4579 fns = lookup_name_real (fnname, 0, 1, /*block_p=*/false, 0, 0);
4580 fns = lookup_arg_dependent (fnname, fns, *args);
4581
4582 if (align_arg)
4583 {
4584 vec<tree, va_gc>* align_args
4585 = vec_copy_and_insert (*args, align_arg, 1);
4586 cand = perform_overload_resolution (fns, align_args, &candidates,
4587 &any_viable_p, tf_none);
4588 if (cand)
4589 *args = align_args;
4590 /* If no aligned allocation function matches, try again without the
4591 alignment. */
4592 }
4593
4594 /* Figure out what function is being called. */
4595 if (!cand)
4596 cand = perform_overload_resolution (fns, *args, &candidates, &any_viable_p,
4597 complain);
4598
4599 /* If no suitable function could be found, issue an error message
4600 and give up. */
4601 if (!cand)
4602 {
4603 if (complain & tf_error)
4604 print_error_for_call_failure (fns, *args, candidates);
4605 return error_mark_node;
4606 }
4607
4608 /* If a cookie is required, add some extra space. Whether
4609 or not a cookie is required cannot be determined until
4610 after we know which function was called. */
4611 if (*cookie_size)
4612 {
4613 bool use_cookie = true;
4614 tree arg_types;
4615
4616 arg_types = TYPE_ARG_TYPES (TREE_TYPE (cand->fn));
4617 /* Skip the size_t parameter. */
4618 arg_types = TREE_CHAIN (arg_types);
4619 /* Check the remaining parameters (if any). */
4620 if (arg_types
4621 && TREE_CHAIN (arg_types) == void_list_node
4622 && same_type_p (TREE_VALUE (arg_types),
4623 ptr_type_node))
4624 use_cookie = false;
4625 /* If we need a cookie, adjust the number of bytes allocated. */
4626 if (use_cookie)
4627 {
4628 /* Update the total size. */
4629 *size = size_binop (PLUS_EXPR, original_size, *cookie_size);
4630 if (size_check)
4631 {
4632 /* Set to (size_t)-1 if the size check fails. */
4633 gcc_assert (size_check != NULL_TREE);
4634 *size = fold_build3 (COND_EXPR, sizetype, size_check,
4635 *size, TYPE_MAX_VALUE (sizetype));
4636 }
4637 /* Update the argument list to reflect the adjusted size. */
4638 (**args)[0] = *size;
4639 }
4640 else
4641 *cookie_size = NULL_TREE;
4642 }
4643
4644 /* Tell our caller which function we decided to call. */
4645 if (fn)
4646 *fn = cand->fn;
4647
4648 /* Build the CALL_EXPR. */
4649 return build_over_call (cand, LOOKUP_NORMAL, complain);
4650 }
4651
4652 /* Build a new call to operator(). This may change ARGS. */
4653
4654 static tree
4655 build_op_call_1 (tree obj, vec<tree, va_gc> **args, tsubst_flags_t complain)
4656 {
4657 struct z_candidate *candidates = 0, *cand;
4658 tree fns, convs, first_mem_arg = NULL_TREE;
4659 bool any_viable_p;
4660 tree result = NULL_TREE;
4661 void *p;
4662
4663 obj = mark_lvalue_use (obj);
4664
4665 if (error_operand_p (obj))
4666 return error_mark_node;
4667
4668 tree type = TREE_TYPE (obj);
4669
4670 obj = prep_operand (obj);
4671
4672 if (TYPE_PTRMEMFUNC_P (type))
4673 {
4674 if (complain & tf_error)
4675 /* It's no good looking for an overloaded operator() on a
4676 pointer-to-member-function. */
4677 error ("pointer-to-member function %qE cannot be called without "
4678 "an object; consider using %<.*%> or %<->*%>", obj);
4679 return error_mark_node;
4680 }
4681
4682 if (TYPE_BINFO (type))
4683 {
4684 fns = lookup_fnfields (TYPE_BINFO (type), call_op_identifier, 1);
4685 if (fns == error_mark_node)
4686 return error_mark_node;
4687 }
4688 else
4689 fns = NULL_TREE;
4690
4691 if (args != NULL && *args != NULL)
4692 {
4693 *args = resolve_args (*args, complain);
4694 if (*args == NULL)
4695 return error_mark_node;
4696 }
4697
4698 /* Get the high-water mark for the CONVERSION_OBSTACK. */
4699 p = conversion_obstack_alloc (0);
4700
4701 if (fns)
4702 {
4703 first_mem_arg = obj;
4704
4705 add_candidates (BASELINK_FUNCTIONS (fns),
4706 first_mem_arg, *args, NULL_TREE,
4707 NULL_TREE, false,
4708 BASELINK_BINFO (fns), BASELINK_ACCESS_BINFO (fns),
4709 LOOKUP_NORMAL, &candidates, complain);
4710 }
4711
4712 convs = lookup_conversions (type);
4713
4714 for (; convs; convs = TREE_CHAIN (convs))
4715 {
4716 tree totype = TREE_TYPE (convs);
4717
4718 if (TYPE_PTRFN_P (totype)
4719 || TYPE_REFFN_P (totype)
4720 || (TYPE_REF_P (totype)
4721 && TYPE_PTRFN_P (TREE_TYPE (totype))))
4722 for (ovl_iterator iter (TREE_VALUE (convs)); iter; ++iter)
4723 {
4724 tree fn = *iter;
4725
4726 if (DECL_NONCONVERTING_P (fn))
4727 continue;
4728
4729 if (TREE_CODE (fn) == TEMPLATE_DECL)
4730 add_template_conv_candidate
4731 (&candidates, fn, obj, *args, totype,
4732 /*access_path=*/NULL_TREE,
4733 /*conversion_path=*/NULL_TREE, complain);
4734 else
4735 add_conv_candidate (&candidates, fn, obj,
4736 *args, /*conversion_path=*/NULL_TREE,
4737 /*access_path=*/NULL_TREE, complain);
4738 }
4739 }
4740
4741 /* Be strict here because if we choose a bad conversion candidate, the
4742 errors we get won't mention the call context. */
4743 candidates = splice_viable (candidates, true, &any_viable_p);
4744 if (!any_viable_p)
4745 {
4746 if (complain & tf_error)
4747 {
4748 auto_diagnostic_group d;
4749 error ("no match for call to %<(%T) (%A)%>", TREE_TYPE (obj),
4750 build_tree_list_vec (*args));
4751 print_z_candidates (location_of (TREE_TYPE (obj)), candidates);
4752 }
4753 result = error_mark_node;
4754 }
4755 else
4756 {
4757 cand = tourney (candidates, complain);
4758 if (cand == 0)
4759 {
4760 if (complain & tf_error)
4761 {
4762 auto_diagnostic_group d;
4763 error ("call of %<(%T) (%A)%> is ambiguous",
4764 TREE_TYPE (obj), build_tree_list_vec (*args));
4765 print_z_candidates (location_of (TREE_TYPE (obj)), candidates);
4766 }
4767 result = error_mark_node;
4768 }
4769 else if (TREE_CODE (cand->fn) == FUNCTION_DECL
4770 && DECL_OVERLOADED_OPERATOR_P (cand->fn)
4771 && DECL_OVERLOADED_OPERATOR_IS (cand->fn, CALL_EXPR))
4772 result = build_over_call (cand, LOOKUP_NORMAL, complain);
4773 else
4774 {
4775 if (TREE_CODE (cand->fn) == FUNCTION_DECL)
4776 obj = convert_like_with_context (cand->convs[0], obj, cand->fn,
4777 -1, complain);
4778 else
4779 {
4780 gcc_checking_assert (TYPE_P (cand->fn));
4781 obj = convert_like (cand->convs[0], obj, complain);
4782 }
4783 obj = convert_from_reference (obj);
4784 result = cp_build_function_call_vec (obj, args, complain);
4785 }
4786 }
4787
4788 /* Free all the conversions we allocated. */
4789 obstack_free (&conversion_obstack, p);
4790
4791 return result;
4792 }
4793
4794 /* Wrapper for above. */
4795
4796 tree
4797 build_op_call (tree obj, vec<tree, va_gc> **args, tsubst_flags_t complain)
4798 {
4799 tree ret;
4800 bool subtime = timevar_cond_start (TV_OVERLOAD);
4801 ret = build_op_call_1 (obj, args, complain);
4802 timevar_cond_stop (TV_OVERLOAD, subtime);
4803 return ret;
4804 }
4805
4806 /* Called by op_error to prepare format strings suitable for the error
4807 function. It concatenates a prefix (controlled by MATCH), ERRMSG,
4808 and a suffix (controlled by NTYPES). */
4809
4810 static const char *
4811 op_error_string (const char *errmsg, int ntypes, bool match)
4812 {
4813 const char *msg;
4814
4815 const char *msgp = concat (match ? G_("ambiguous overload for ")
4816 : G_("no match for "), errmsg, NULL);
4817
4818 if (ntypes == 3)
4819 msg = concat (msgp, G_(" (operand types are %qT, %qT, and %qT)"), NULL);
4820 else if (ntypes == 2)
4821 msg = concat (msgp, G_(" (operand types are %qT and %qT)"), NULL);
4822 else
4823 msg = concat (msgp, G_(" (operand type is %qT)"), NULL);
4824
4825 return msg;
4826 }
4827
4828 static void
4829 op_error (const op_location_t &loc,
4830 enum tree_code code, enum tree_code code2,
4831 tree arg1, tree arg2, tree arg3, bool match)
4832 {
4833 bool assop = code == MODIFY_EXPR;
4834 const char *opname = OVL_OP_INFO (assop, assop ? code2 : code)->name;
4835
4836 switch (code)
4837 {
4838 case COND_EXPR:
4839 if (flag_diagnostics_show_caret)
4840 error_at (loc, op_error_string (G_("ternary %<operator?:%>"),
4841 3, match),
4842 TREE_TYPE (arg1), TREE_TYPE (arg2), TREE_TYPE (arg3));
4843 else
4844 error_at (loc, op_error_string (G_("ternary %<operator?:%> "
4845 "in %<%E ? %E : %E%>"), 3, match),
4846 arg1, arg2, arg3,
4847 TREE_TYPE (arg1), TREE_TYPE (arg2), TREE_TYPE (arg3));
4848 break;
4849
4850 case POSTINCREMENT_EXPR:
4851 case POSTDECREMENT_EXPR:
4852 if (flag_diagnostics_show_caret)
4853 error_at (loc, op_error_string (G_("%<operator%s%>"), 1, match),
4854 opname, TREE_TYPE (arg1));
4855 else
4856 error_at (loc, op_error_string (G_("%<operator%s%> in %<%E%s%>"),
4857 1, match),
4858 opname, arg1, opname, TREE_TYPE (arg1));
4859 break;
4860
4861 case ARRAY_REF:
4862 if (flag_diagnostics_show_caret)
4863 error_at (loc, op_error_string (G_("%<operator[]%>"), 2, match),
4864 TREE_TYPE (arg1), TREE_TYPE (arg2));
4865 else
4866 error_at (loc, op_error_string (G_("%<operator[]%> in %<%E[%E]%>"),
4867 2, match),
4868 arg1, arg2, TREE_TYPE (arg1), TREE_TYPE (arg2));
4869 break;
4870
4871 case REALPART_EXPR:
4872 case IMAGPART_EXPR:
4873 if (flag_diagnostics_show_caret)
4874 error_at (loc, op_error_string (G_("%qs"), 1, match),
4875 opname, TREE_TYPE (arg1));
4876 else
4877 error_at (loc, op_error_string (G_("%qs in %<%s %E%>"), 1, match),
4878 opname, opname, arg1, TREE_TYPE (arg1));
4879 break;
4880
4881 default:
4882 if (arg2)
4883 if (flag_diagnostics_show_caret)
4884 {
4885 binary_op_rich_location richloc (loc, arg1, arg2, true);
4886 error_at (&richloc,
4887 op_error_string (G_("%<operator%s%>"), 2, match),
4888 opname, TREE_TYPE (arg1), TREE_TYPE (arg2));
4889 }
4890 else
4891 error_at (loc, op_error_string (G_("%<operator%s%> in %<%E %s %E%>"),
4892 2, match),
4893 opname, arg1, opname, arg2,
4894 TREE_TYPE (arg1), TREE_TYPE (arg2));
4895 else
4896 if (flag_diagnostics_show_caret)
4897 error_at (loc, op_error_string (G_("%<operator%s%>"), 1, match),
4898 opname, TREE_TYPE (arg1));
4899 else
4900 error_at (loc, op_error_string (G_("%<operator%s%> in %<%s%E%>"),
4901 1, match),
4902 opname, opname, arg1, TREE_TYPE (arg1));
4903 break;
4904 }
4905 }
4906
4907 /* Return the implicit conversion sequence that could be used to
4908 convert E1 to E2 in [expr.cond]. */
4909
4910 static conversion *
4911 conditional_conversion (tree e1, tree e2, tsubst_flags_t complain)
4912 {
4913 tree t1 = non_reference (TREE_TYPE (e1));
4914 tree t2 = non_reference (TREE_TYPE (e2));
4915 conversion *conv;
4916 bool good_base;
4917
4918 /* [expr.cond]
4919
4920 If E2 is an lvalue: E1 can be converted to match E2 if E1 can be
4921 implicitly converted (clause _conv_) to the type "lvalue reference to
4922 T2", subject to the constraint that in the conversion the
4923 reference must bind directly (_dcl.init.ref_) to an lvalue.
4924
4925 If E2 is an xvalue: E1 can be converted to match E2 if E1 can be
4926 implicitly converted to the type "rvalue reference to T2", subject to
4927 the constraint that the reference must bind directly. */
4928 if (glvalue_p (e2))
4929 {
4930 tree rtype = cp_build_reference_type (t2, !lvalue_p (e2));
4931 conv = implicit_conversion (rtype,
4932 t1,
4933 e1,
4934 /*c_cast_p=*/false,
4935 LOOKUP_NO_TEMP_BIND|LOOKUP_NO_RVAL_BIND
4936 |LOOKUP_ONLYCONVERTING,
4937 complain);
4938 if (conv && !conv->bad_p)
4939 return conv;
4940 }
4941
4942 /* If E2 is a prvalue or if neither of the conversions above can be done
4943 and at least one of the operands has (possibly cv-qualified) class
4944 type: */
4945 if (!CLASS_TYPE_P (t1) && !CLASS_TYPE_P (t2))
4946 return NULL;
4947
4948 /* [expr.cond]
4949
4950 If E1 and E2 have class type, and the underlying class types are
4951 the same or one is a base class of the other: E1 can be converted
4952 to match E2 if the class of T2 is the same type as, or a base
4953 class of, the class of T1, and the cv-qualification of T2 is the
4954 same cv-qualification as, or a greater cv-qualification than, the
4955 cv-qualification of T1. If the conversion is applied, E1 is
4956 changed to an rvalue of type T2 that still refers to the original
4957 source class object (or the appropriate subobject thereof). */
4958 if (CLASS_TYPE_P (t1) && CLASS_TYPE_P (t2)
4959 && ((good_base = DERIVED_FROM_P (t2, t1)) || DERIVED_FROM_P (t1, t2)))
4960 {
4961 if (good_base && at_least_as_qualified_p (t2, t1))
4962 {
4963 conv = build_identity_conv (t1, e1);
4964 if (!same_type_p (TYPE_MAIN_VARIANT (t1),
4965 TYPE_MAIN_VARIANT (t2)))
4966 conv = build_conv (ck_base, t2, conv);
4967 else
4968 conv = build_conv (ck_rvalue, t2, conv);
4969 return conv;
4970 }
4971 else
4972 return NULL;
4973 }
4974 else
4975 /* [expr.cond]
4976
4977 Otherwise: E1 can be converted to match E2 if E1 can be implicitly
4978 converted to the type that expression E2 would have if E2 were
4979 converted to an rvalue (or the type it has, if E2 is an rvalue). */
4980 return implicit_conversion (t2, t1, e1, /*c_cast_p=*/false,
4981 LOOKUP_IMPLICIT, complain);
4982 }
4983
4984 /* Implement [expr.cond]. ARG1, ARG2, and ARG3 are the three
4985 arguments to the conditional expression. */
4986
4987 static tree
4988 build_conditional_expr_1 (const op_location_t &loc,
4989 tree arg1, tree arg2, tree arg3,
4990 tsubst_flags_t complain)
4991 {
4992 tree arg2_type;
4993 tree arg3_type;
4994 tree result = NULL_TREE;
4995 tree result_type = NULL_TREE;
4996 bool is_glvalue = true;
4997 struct z_candidate *candidates = 0;
4998 struct z_candidate *cand;
4999 void *p;
5000 tree orig_arg2, orig_arg3;
5001
5002 /* As a G++ extension, the second argument to the conditional can be
5003 omitted. (So that `a ? : c' is roughly equivalent to `a ? a :
5004 c'.) If the second operand is omitted, make sure it is
5005 calculated only once. */
5006 if (!arg2)
5007 {
5008 if (complain & tf_error)
5009 pedwarn (loc, OPT_Wpedantic,
5010 "ISO C++ forbids omitting the middle term of "
5011 "a %<?:%> expression");
5012
5013 if ((complain & tf_warning) && !truth_value_p (TREE_CODE (arg1)))
5014 warn_for_omitted_condop (loc, arg1);
5015
5016 /* Make sure that lvalues remain lvalues. See g++.oliva/ext1.C. */
5017 if (lvalue_p (arg1))
5018 arg2 = arg1 = cp_stabilize_reference (arg1);
5019 else
5020 arg2 = arg1 = cp_save_expr (arg1);
5021 }
5022
5023 /* If something has already gone wrong, just pass that fact up the
5024 tree. */
5025 if (error_operand_p (arg1)
5026 || error_operand_p (arg2)
5027 || error_operand_p (arg3))
5028 return error_mark_node;
5029
5030 orig_arg2 = arg2;
5031 orig_arg3 = arg3;
5032
5033 if (VECTOR_INTEGER_TYPE_P (TREE_TYPE (arg1)))
5034 {
5035 tree arg1_type = TREE_TYPE (arg1);
5036
5037 /* If arg1 is another cond_expr choosing between -1 and 0,
5038 then we can use its comparison. It may help to avoid
5039 additional comparison, produce more accurate diagnostics
5040 and enables folding. */
5041 if (TREE_CODE (arg1) == VEC_COND_EXPR
5042 && integer_minus_onep (TREE_OPERAND (arg1, 1))
5043 && integer_zerop (TREE_OPERAND (arg1, 2)))
5044 arg1 = TREE_OPERAND (arg1, 0);
5045
5046 arg1 = force_rvalue (arg1, complain);
5047 arg2 = force_rvalue (arg2, complain);
5048 arg3 = force_rvalue (arg3, complain);
5049
5050 /* force_rvalue can return error_mark on valid arguments. */
5051 if (error_operand_p (arg1)
5052 || error_operand_p (arg2)
5053 || error_operand_p (arg3))
5054 return error_mark_node;
5055
5056 arg2_type = TREE_TYPE (arg2);
5057 arg3_type = TREE_TYPE (arg3);
5058
5059 if (!VECTOR_TYPE_P (arg2_type)
5060 && !VECTOR_TYPE_P (arg3_type))
5061 {
5062 /* Rely on the error messages of the scalar version. */
5063 tree scal = build_conditional_expr_1 (loc, integer_one_node,
5064 orig_arg2, orig_arg3, complain);
5065 if (scal == error_mark_node)
5066 return error_mark_node;
5067 tree stype = TREE_TYPE (scal);
5068 tree ctype = TREE_TYPE (arg1_type);
5069 if (TYPE_SIZE (stype) != TYPE_SIZE (ctype)
5070 || (!INTEGRAL_TYPE_P (stype) && !SCALAR_FLOAT_TYPE_P (stype)))
5071 {
5072 if (complain & tf_error)
5073 error_at (loc, "inferred scalar type %qT is not an integer or "
5074 "floating-point type of the same size as %qT", stype,
5075 COMPARISON_CLASS_P (arg1)
5076 ? TREE_TYPE (TREE_TYPE (TREE_OPERAND (arg1, 0)))
5077 : ctype);
5078 return error_mark_node;
5079 }
5080
5081 tree vtype = build_opaque_vector_type (stype,
5082 TYPE_VECTOR_SUBPARTS (arg1_type));
5083 /* We could pass complain & tf_warning to unsafe_conversion_p,
5084 but the warnings (like Wsign-conversion) have already been
5085 given by the scalar build_conditional_expr_1. We still check
5086 unsafe_conversion_p to forbid truncating long long -> float. */
5087 if (unsafe_conversion_p (loc, stype, arg2, NULL_TREE, false))
5088 {
5089 if (complain & tf_error)
5090 error_at (loc, "conversion of scalar %qH to vector %qI "
5091 "involves truncation", arg2_type, vtype);
5092 return error_mark_node;
5093 }
5094 if (unsafe_conversion_p (loc, stype, arg3, NULL_TREE, false))
5095 {
5096 if (complain & tf_error)
5097 error_at (loc, "conversion of scalar %qH to vector %qI "
5098 "involves truncation", arg3_type, vtype);
5099 return error_mark_node;
5100 }
5101
5102 arg2 = cp_convert (stype, arg2, complain);
5103 arg2 = save_expr (arg2);
5104 arg2 = build_vector_from_val (vtype, arg2);
5105 arg2_type = vtype;
5106 arg3 = cp_convert (stype, arg3, complain);
5107 arg3 = save_expr (arg3);
5108 arg3 = build_vector_from_val (vtype, arg3);
5109 arg3_type = vtype;
5110 }
5111
5112 if (VECTOR_TYPE_P (arg2_type) != VECTOR_TYPE_P (arg3_type))
5113 {
5114 enum stv_conv convert_flag =
5115 scalar_to_vector (loc, VEC_COND_EXPR, arg2, arg3,
5116 complain & tf_error);
5117
5118 switch (convert_flag)
5119 {
5120 case stv_error:
5121 return error_mark_node;
5122 case stv_firstarg:
5123 {
5124 arg2 = save_expr (arg2);
5125 arg2 = convert (TREE_TYPE (arg3_type), arg2);
5126 arg2 = build_vector_from_val (arg3_type, arg2);
5127 arg2_type = TREE_TYPE (arg2);
5128 break;
5129 }
5130 case stv_secondarg:
5131 {
5132 arg3 = save_expr (arg3);
5133 arg3 = convert (TREE_TYPE (arg2_type), arg3);
5134 arg3 = build_vector_from_val (arg2_type, arg3);
5135 arg3_type = TREE_TYPE (arg3);
5136 break;
5137 }
5138 default:
5139 break;
5140 }
5141 }
5142
5143 if (!same_type_p (arg2_type, arg3_type)
5144 || maybe_ne (TYPE_VECTOR_SUBPARTS (arg1_type),
5145 TYPE_VECTOR_SUBPARTS (arg2_type))
5146 || TYPE_SIZE (arg1_type) != TYPE_SIZE (arg2_type))
5147 {
5148 if (complain & tf_error)
5149 error_at (loc,
5150 "incompatible vector types in conditional expression: "
5151 "%qT, %qT and %qT", TREE_TYPE (arg1),
5152 TREE_TYPE (orig_arg2), TREE_TYPE (orig_arg3));
5153 return error_mark_node;
5154 }
5155
5156 if (!COMPARISON_CLASS_P (arg1))
5157 {
5158 tree cmp_type = build_same_sized_truth_vector_type (arg1_type);
5159 arg1 = build2 (NE_EXPR, cmp_type, arg1, build_zero_cst (arg1_type));
5160 }
5161 return build3_loc (loc, VEC_COND_EXPR, arg2_type, arg1, arg2, arg3);
5162 }
5163
5164 /* [expr.cond]
5165
5166 The first expression is implicitly converted to bool (clause
5167 _conv_). */
5168 arg1 = perform_implicit_conversion_flags (boolean_type_node, arg1, complain,
5169 LOOKUP_NORMAL);
5170 if (error_operand_p (arg1))
5171 return error_mark_node;
5172
5173 /* [expr.cond]
5174
5175 If either the second or the third operand has type (possibly
5176 cv-qualified) void, then the lvalue-to-rvalue (_conv.lval_),
5177 array-to-pointer (_conv.array_), and function-to-pointer
5178 (_conv.func_) standard conversions are performed on the second
5179 and third operands. */
5180 arg2_type = unlowered_expr_type (arg2);
5181 arg3_type = unlowered_expr_type (arg3);
5182 if (VOID_TYPE_P (arg2_type) || VOID_TYPE_P (arg3_type))
5183 {
5184 /* 'void' won't help in resolving an overloaded expression on the
5185 other side, so require it to resolve by itself. */
5186 if (arg2_type == unknown_type_node)
5187 {
5188 arg2 = resolve_nondeduced_context_or_error (arg2, complain);
5189 arg2_type = TREE_TYPE (arg2);
5190 }
5191 if (arg3_type == unknown_type_node)
5192 {
5193 arg3 = resolve_nondeduced_context_or_error (arg3, complain);
5194 arg3_type = TREE_TYPE (arg3);
5195 }
5196
5197 /* [expr.cond]
5198
5199 One of the following shall hold:
5200
5201 --The second or the third operand (but not both) is a
5202 throw-expression (_except.throw_); the result is of the type
5203 and value category of the other.
5204
5205 --Both the second and the third operands have type void; the
5206 result is of type void and is a prvalue. */
5207 if (TREE_CODE (arg2) == THROW_EXPR
5208 && TREE_CODE (arg3) != THROW_EXPR)
5209 {
5210 result_type = arg3_type;
5211 is_glvalue = glvalue_p (arg3);
5212 }
5213 else if (TREE_CODE (arg2) != THROW_EXPR
5214 && TREE_CODE (arg3) == THROW_EXPR)
5215 {
5216 result_type = arg2_type;
5217 is_glvalue = glvalue_p (arg2);
5218 }
5219 else if (VOID_TYPE_P (arg2_type) && VOID_TYPE_P (arg3_type))
5220 {
5221 result_type = void_type_node;
5222 is_glvalue = false;
5223 }
5224 else
5225 {
5226 if (complain & tf_error)
5227 {
5228 if (VOID_TYPE_P (arg2_type))
5229 error_at (cp_expr_loc_or_loc (arg3, loc),
5230 "second operand to the conditional operator "
5231 "is of type %<void%>, but the third operand is "
5232 "neither a throw-expression nor of type %<void%>");
5233 else
5234 error_at (cp_expr_loc_or_loc (arg2, loc),
5235 "third operand to the conditional operator "
5236 "is of type %<void%>, but the second operand is "
5237 "neither a throw-expression nor of type %<void%>");
5238 }
5239 return error_mark_node;
5240 }
5241
5242 goto valid_operands;
5243 }
5244 /* [expr.cond]
5245
5246 Otherwise, if the second and third operand have different types,
5247 and either has (possibly cv-qualified) class type, or if both are
5248 glvalues of the same value category and the same type except for
5249 cv-qualification, an attempt is made to convert each of those operands
5250 to the type of the other. */
5251 else if (!same_type_p (arg2_type, arg3_type)
5252 && (CLASS_TYPE_P (arg2_type) || CLASS_TYPE_P (arg3_type)
5253 || (same_type_ignoring_top_level_qualifiers_p (arg2_type,
5254 arg3_type)
5255 && glvalue_p (arg2) && glvalue_p (arg3)
5256 && lvalue_p (arg2) == lvalue_p (arg3))))
5257 {
5258 conversion *conv2;
5259 conversion *conv3;
5260 bool converted = false;
5261
5262 /* Get the high-water mark for the CONVERSION_OBSTACK. */
5263 p = conversion_obstack_alloc (0);
5264
5265 conv2 = conditional_conversion (arg2, arg3, complain);
5266 conv3 = conditional_conversion (arg3, arg2, complain);
5267
5268 /* [expr.cond]
5269
5270 If both can be converted, or one can be converted but the
5271 conversion is ambiguous, the program is ill-formed. If
5272 neither can be converted, the operands are left unchanged and
5273 further checking is performed as described below. If exactly
5274 one conversion is possible, that conversion is applied to the
5275 chosen operand and the converted operand is used in place of
5276 the original operand for the remainder of this section. */
5277 if ((conv2 && !conv2->bad_p
5278 && conv3 && !conv3->bad_p)
5279 || (conv2 && conv2->kind == ck_ambig)
5280 || (conv3 && conv3->kind == ck_ambig))
5281 {
5282 if (complain & tf_error)
5283 {
5284 error_at (loc, "operands to %<?:%> have different types "
5285 "%qT and %qT",
5286 arg2_type, arg3_type);
5287 if (conv2 && !conv2->bad_p && conv3 && !conv3->bad_p)
5288 inform (loc, " and each type can be converted to the other");
5289 else if (conv2 && conv2->kind == ck_ambig)
5290 convert_like (conv2, arg2, complain);
5291 else
5292 convert_like (conv3, arg3, complain);
5293 }
5294 result = error_mark_node;
5295 }
5296 else if (conv2 && !conv2->bad_p)
5297 {
5298 arg2 = convert_like (conv2, arg2, complain);
5299 arg2 = convert_from_reference (arg2);
5300 arg2_type = TREE_TYPE (arg2);
5301 /* Even if CONV2 is a valid conversion, the result of the
5302 conversion may be invalid. For example, if ARG3 has type
5303 "volatile X", and X does not have a copy constructor
5304 accepting a "volatile X&", then even if ARG2 can be
5305 converted to X, the conversion will fail. */
5306 if (error_operand_p (arg2))
5307 result = error_mark_node;
5308 converted = true;
5309 }
5310 else if (conv3 && !conv3->bad_p)
5311 {
5312 arg3 = convert_like (conv3, arg3, complain);
5313 arg3 = convert_from_reference (arg3);
5314 arg3_type = TREE_TYPE (arg3);
5315 if (error_operand_p (arg3))
5316 result = error_mark_node;
5317 converted = true;
5318 }
5319
5320 /* Free all the conversions we allocated. */
5321 obstack_free (&conversion_obstack, p);
5322
5323 if (result)
5324 return result;
5325
5326 /* If, after the conversion, both operands have class type,
5327 treat the cv-qualification of both operands as if it were the
5328 union of the cv-qualification of the operands.
5329
5330 The standard is not clear about what to do in this
5331 circumstance. For example, if the first operand has type
5332 "const X" and the second operand has a user-defined
5333 conversion to "volatile X", what is the type of the second
5334 operand after this step? Making it be "const X" (matching
5335 the first operand) seems wrong, as that discards the
5336 qualification without actually performing a copy. Leaving it
5337 as "volatile X" seems wrong as that will result in the
5338 conditional expression failing altogether, even though,
5339 according to this step, the one operand could be converted to
5340 the type of the other. */
5341 if (converted
5342 && CLASS_TYPE_P (arg2_type)
5343 && cp_type_quals (arg2_type) != cp_type_quals (arg3_type))
5344 arg2_type = arg3_type =
5345 cp_build_qualified_type (arg2_type,
5346 cp_type_quals (arg2_type)
5347 | cp_type_quals (arg3_type));
5348 }
5349
5350 /* [expr.cond]
5351
5352 If the second and third operands are glvalues of the same value
5353 category and have the same type, the result is of that type and
5354 value category. */
5355 if (((lvalue_p (arg2) && lvalue_p (arg3))
5356 || (xvalue_p (arg2) && xvalue_p (arg3)))
5357 && same_type_p (arg2_type, arg3_type))
5358 {
5359 result_type = arg2_type;
5360 arg2 = mark_lvalue_use (arg2);
5361 arg3 = mark_lvalue_use (arg3);
5362 goto valid_operands;
5363 }
5364
5365 /* [expr.cond]
5366
5367 Otherwise, the result is an rvalue. If the second and third
5368 operand do not have the same type, and either has (possibly
5369 cv-qualified) class type, overload resolution is used to
5370 determine the conversions (if any) to be applied to the operands
5371 (_over.match.oper_, _over.built_). */
5372 is_glvalue = false;
5373 if (!same_type_p (arg2_type, arg3_type)
5374 && (CLASS_TYPE_P (arg2_type) || CLASS_TYPE_P (arg3_type)))
5375 {
5376 tree args[3];
5377 conversion *conv;
5378 bool any_viable_p;
5379
5380 /* Rearrange the arguments so that add_builtin_candidate only has
5381 to know about two args. In build_builtin_candidate, the
5382 arguments are unscrambled. */
5383 args[0] = arg2;
5384 args[1] = arg3;
5385 args[2] = arg1;
5386 add_builtin_candidates (&candidates,
5387 COND_EXPR,
5388 NOP_EXPR,
5389 ovl_op_identifier (false, COND_EXPR),
5390 args,
5391 LOOKUP_NORMAL, complain);
5392
5393 /* [expr.cond]
5394
5395 If the overload resolution fails, the program is
5396 ill-formed. */
5397 candidates = splice_viable (candidates, false, &any_viable_p);
5398 if (!any_viable_p)
5399 {
5400 if (complain & tf_error)
5401 error_at (loc, "operands to %<?:%> have different types %qT and %qT",
5402 arg2_type, arg3_type);
5403 return error_mark_node;
5404 }
5405 cand = tourney (candidates, complain);
5406 if (!cand)
5407 {
5408 if (complain & tf_error)
5409 {
5410 auto_diagnostic_group d;
5411 op_error (loc, COND_EXPR, NOP_EXPR, arg1, arg2, arg3, FALSE);
5412 print_z_candidates (loc, candidates);
5413 }
5414 return error_mark_node;
5415 }
5416
5417 /* [expr.cond]
5418
5419 Otherwise, the conversions thus determined are applied, and
5420 the converted operands are used in place of the original
5421 operands for the remainder of this section. */
5422 conv = cand->convs[0];
5423 arg1 = convert_like (conv, arg1, complain);
5424 conv = cand->convs[1];
5425 arg2 = convert_like (conv, arg2, complain);
5426 arg2_type = TREE_TYPE (arg2);
5427 conv = cand->convs[2];
5428 arg3 = convert_like (conv, arg3, complain);
5429 arg3_type = TREE_TYPE (arg3);
5430 }
5431
5432 /* [expr.cond]
5433
5434 Lvalue-to-rvalue (_conv.lval_), array-to-pointer (_conv.array_),
5435 and function-to-pointer (_conv.func_) standard conversions are
5436 performed on the second and third operands.
5437
5438 We need to force the lvalue-to-rvalue conversion here for class types,
5439 so we get TARGET_EXPRs; trying to deal with a COND_EXPR of class rvalues
5440 that isn't wrapped with a TARGET_EXPR plays havoc with exception
5441 regions. */
5442
5443 arg2 = force_rvalue (arg2, complain);
5444 if (!CLASS_TYPE_P (arg2_type))
5445 arg2_type = TREE_TYPE (arg2);
5446
5447 arg3 = force_rvalue (arg3, complain);
5448 if (!CLASS_TYPE_P (arg3_type))
5449 arg3_type = TREE_TYPE (arg3);
5450
5451 if (arg2 == error_mark_node || arg3 == error_mark_node)
5452 return error_mark_node;
5453
5454 /* [expr.cond]
5455
5456 After those conversions, one of the following shall hold:
5457
5458 --The second and third operands have the same type; the result is of
5459 that type. */
5460 if (same_type_p (arg2_type, arg3_type))
5461 result_type = arg2_type;
5462 /* [expr.cond]
5463
5464 --The second and third operands have arithmetic or enumeration
5465 type; the usual arithmetic conversions are performed to bring
5466 them to a common type, and the result is of that type. */
5467 else if ((ARITHMETIC_TYPE_P (arg2_type)
5468 || UNSCOPED_ENUM_P (arg2_type))
5469 && (ARITHMETIC_TYPE_P (arg3_type)
5470 || UNSCOPED_ENUM_P (arg3_type)))
5471 {
5472 /* In this case, there is always a common type. */
5473 result_type = type_after_usual_arithmetic_conversions (arg2_type,
5474 arg3_type);
5475 if (complain & tf_warning)
5476 do_warn_double_promotion (result_type, arg2_type, arg3_type,
5477 "implicit conversion from %qH to %qI to "
5478 "match other result of conditional",
5479 loc);
5480
5481 if (TREE_CODE (arg2_type) == ENUMERAL_TYPE
5482 && TREE_CODE (arg3_type) == ENUMERAL_TYPE)
5483 {
5484 tree stripped_orig_arg2 = tree_strip_any_location_wrapper (orig_arg2);
5485 tree stripped_orig_arg3 = tree_strip_any_location_wrapper (orig_arg3);
5486 if (TREE_CODE (stripped_orig_arg2) == CONST_DECL
5487 && TREE_CODE (stripped_orig_arg3) == CONST_DECL
5488 && (DECL_CONTEXT (stripped_orig_arg2)
5489 == DECL_CONTEXT (stripped_orig_arg3)))
5490 /* Two enumerators from the same enumeration can have different
5491 types when the enumeration is still being defined. */;
5492 else if (complain & tf_warning)
5493 warning_at (loc, OPT_Wenum_compare, "enumerated mismatch "
5494 "in conditional expression: %qT vs %qT",
5495 arg2_type, arg3_type);
5496 }
5497 else if (extra_warnings
5498 && ((TREE_CODE (arg2_type) == ENUMERAL_TYPE
5499 && !same_type_p (arg3_type, type_promotes_to (arg2_type)))
5500 || (TREE_CODE (arg3_type) == ENUMERAL_TYPE
5501 && !same_type_p (arg2_type,
5502 type_promotes_to (arg3_type)))))
5503 {
5504 if (complain & tf_warning)
5505 warning_at (loc, OPT_Wextra, "enumerated and non-enumerated "
5506 "type in conditional expression");
5507 }
5508
5509 arg2 = perform_implicit_conversion (result_type, arg2, complain);
5510 arg3 = perform_implicit_conversion (result_type, arg3, complain);
5511 }
5512 /* [expr.cond]
5513
5514 --The second and third operands have pointer type, or one has
5515 pointer type and the other is a null pointer constant; pointer
5516 conversions (_conv.ptr_) and qualification conversions
5517 (_conv.qual_) are performed to bring them to their composite
5518 pointer type (_expr.rel_). The result is of the composite
5519 pointer type.
5520
5521 --The second and third operands have pointer to member type, or
5522 one has pointer to member type and the other is a null pointer
5523 constant; pointer to member conversions (_conv.mem_) and
5524 qualification conversions (_conv.qual_) are performed to bring
5525 them to a common type, whose cv-qualification shall match the
5526 cv-qualification of either the second or the third operand.
5527 The result is of the common type. */
5528 else if ((null_ptr_cst_p (arg2)
5529 && TYPE_PTR_OR_PTRMEM_P (arg3_type))
5530 || (null_ptr_cst_p (arg3)
5531 && TYPE_PTR_OR_PTRMEM_P (arg2_type))
5532 || (TYPE_PTR_P (arg2_type) && TYPE_PTR_P (arg3_type))
5533 || (TYPE_PTRDATAMEM_P (arg2_type) && TYPE_PTRDATAMEM_P (arg3_type))
5534 || (TYPE_PTRMEMFUNC_P (arg2_type) && TYPE_PTRMEMFUNC_P (arg3_type)))
5535 {
5536 result_type = composite_pointer_type (arg2_type, arg3_type, arg2,
5537 arg3, CPO_CONDITIONAL_EXPR,
5538 complain);
5539 if (result_type == error_mark_node)
5540 return error_mark_node;
5541 arg2 = perform_implicit_conversion (result_type, arg2, complain);
5542 arg3 = perform_implicit_conversion (result_type, arg3, complain);
5543 }
5544
5545 if (!result_type)
5546 {
5547 if (complain & tf_error)
5548 error_at (loc, "operands to %<?:%> have different types %qT and %qT",
5549 arg2_type, arg3_type);
5550 return error_mark_node;
5551 }
5552
5553 if (arg2 == error_mark_node || arg3 == error_mark_node)
5554 return error_mark_node;
5555
5556 valid_operands:
5557 if (processing_template_decl && is_glvalue)
5558 {
5559 /* Let lvalue_kind know this was a glvalue. */
5560 tree arg = (result_type == arg2_type ? arg2 : arg3);
5561 result_type = cp_build_reference_type (result_type, xvalue_p (arg));
5562 }
5563
5564 result = build3_loc (loc, COND_EXPR, result_type, arg1, arg2, arg3);
5565
5566 /* If the ARG2 and ARG3 are the same and don't have side-effects,
5567 warn here, because the COND_EXPR will be turned into ARG2. */
5568 if (warn_duplicated_branches
5569 && (complain & tf_warning)
5570 && (arg2 == arg3 || operand_equal_p (arg2, arg3, 0)))
5571 warning_at (EXPR_LOCATION (result), OPT_Wduplicated_branches,
5572 "this condition has identical branches");
5573
5574 /* We can't use result_type below, as fold might have returned a
5575 throw_expr. */
5576
5577 if (!is_glvalue)
5578 {
5579 /* Expand both sides into the same slot, hopefully the target of
5580 the ?: expression. We used to check for TARGET_EXPRs here,
5581 but now we sometimes wrap them in NOP_EXPRs so the test would
5582 fail. */
5583 if (CLASS_TYPE_P (TREE_TYPE (result)))
5584 result = get_target_expr_sfinae (result, complain);
5585 /* If this expression is an rvalue, but might be mistaken for an
5586 lvalue, we must add a NON_LVALUE_EXPR. */
5587 result = rvalue (result);
5588 }
5589 else
5590 result = force_paren_expr (result);
5591
5592 return result;
5593 }
5594
5595 /* Wrapper for above. */
5596
5597 tree
5598 build_conditional_expr (const op_location_t &loc,
5599 tree arg1, tree arg2, tree arg3,
5600 tsubst_flags_t complain)
5601 {
5602 tree ret;
5603 bool subtime = timevar_cond_start (TV_OVERLOAD);
5604 ret = build_conditional_expr_1 (loc, arg1, arg2, arg3, complain);
5605 timevar_cond_stop (TV_OVERLOAD, subtime);
5606 return ret;
5607 }
5608
5609 /* OPERAND is an operand to an expression. Perform necessary steps
5610 required before using it. If OPERAND is NULL_TREE, NULL_TREE is
5611 returned. */
5612
5613 static tree
5614 prep_operand (tree operand)
5615 {
5616 if (operand)
5617 {
5618 if (CLASS_TYPE_P (TREE_TYPE (operand))
5619 && CLASSTYPE_TEMPLATE_INSTANTIATION (TREE_TYPE (operand)))
5620 /* Make sure the template type is instantiated now. */
5621 instantiate_class_template (TYPE_MAIN_VARIANT (TREE_TYPE (operand)));
5622 }
5623
5624 return operand;
5625 }
5626
5627 /* Add each of the viable functions in FNS (a FUNCTION_DECL or
5628 OVERLOAD) to the CANDIDATES, returning an updated list of
5629 CANDIDATES. The ARGS are the arguments provided to the call;
5630 if FIRST_ARG is non-null it is the implicit object argument,
5631 otherwise the first element of ARGS is used if needed. The
5632 EXPLICIT_TARGS are explicit template arguments provided.
5633 TEMPLATE_ONLY is true if only template functions should be
5634 considered. CONVERSION_PATH, ACCESS_PATH, and FLAGS are as for
5635 add_function_candidate. */
5636
5637 static void
5638 add_candidates (tree fns, tree first_arg, const vec<tree, va_gc> *args,
5639 tree return_type,
5640 tree explicit_targs, bool template_only,
5641 tree conversion_path, tree access_path,
5642 int flags,
5643 struct z_candidate **candidates,
5644 tsubst_flags_t complain)
5645 {
5646 tree ctype;
5647 const vec<tree, va_gc> *non_static_args;
5648 bool check_list_ctor = false;
5649 bool check_converting = false;
5650 unification_kind_t strict;
5651
5652 if (!fns)
5653 return;
5654
5655 /* Precalculate special handling of constructors and conversion ops. */
5656 tree fn = OVL_FIRST (fns);
5657 if (DECL_CONV_FN_P (fn))
5658 {
5659 check_list_ctor = false;
5660 check_converting = (flags & LOOKUP_ONLYCONVERTING) != 0;
5661 if (flags & LOOKUP_NO_CONVERSION)
5662 /* We're doing return_type(x). */
5663 strict = DEDUCE_CONV;
5664 else
5665 /* We're doing x.operator return_type(). */
5666 strict = DEDUCE_EXACT;
5667 /* [over.match.funcs] For conversion functions, the function
5668 is considered to be a member of the class of the implicit
5669 object argument for the purpose of defining the type of
5670 the implicit object parameter. */
5671 ctype = TYPE_MAIN_VARIANT (TREE_TYPE (first_arg));
5672 }
5673 else
5674 {
5675 if (DECL_CONSTRUCTOR_P (fn))
5676 {
5677 check_list_ctor = (flags & LOOKUP_LIST_ONLY) != 0;
5678 /* For list-initialization we consider explicit constructors
5679 and complain if one is chosen. */
5680 check_converting
5681 = ((flags & (LOOKUP_ONLYCONVERTING|LOOKUP_LIST_INIT_CTOR))
5682 == LOOKUP_ONLYCONVERTING);
5683 }
5684 strict = DEDUCE_CALL;
5685 ctype = conversion_path ? BINFO_TYPE (conversion_path) : NULL_TREE;
5686 }
5687
5688 if (first_arg)
5689 non_static_args = args;
5690 else
5691 /* Delay creating the implicit this parameter until it is needed. */
5692 non_static_args = NULL;
5693
5694 for (lkp_iterator iter (fns); iter; ++iter)
5695 {
5696 fn = *iter;
5697
5698 if (check_converting && DECL_NONCONVERTING_P (fn))
5699 continue;
5700 if (check_list_ctor && !is_list_ctor (fn))
5701 continue;
5702
5703 tree fn_first_arg = NULL_TREE;
5704 const vec<tree, va_gc> *fn_args = args;
5705
5706 if (DECL_NONSTATIC_MEMBER_FUNCTION_P (fn))
5707 {
5708 /* Figure out where the object arg comes from. If this
5709 function is a non-static member and we didn't get an
5710 implicit object argument, move it out of args. */
5711 if (first_arg == NULL_TREE)
5712 {
5713 unsigned int ix;
5714 tree arg;
5715 vec<tree, va_gc> *tempvec;
5716 vec_alloc (tempvec, args->length () - 1);
5717 for (ix = 1; args->iterate (ix, &arg); ++ix)
5718 tempvec->quick_push (arg);
5719 non_static_args = tempvec;
5720 first_arg = (*args)[0];
5721 }
5722
5723 fn_first_arg = first_arg;
5724 fn_args = non_static_args;
5725 }
5726
5727 if (TREE_CODE (fn) == TEMPLATE_DECL)
5728 add_template_candidate (candidates,
5729 fn,
5730 ctype,
5731 explicit_targs,
5732 fn_first_arg,
5733 fn_args,
5734 return_type,
5735 access_path,
5736 conversion_path,
5737 flags,
5738 strict,
5739 complain);
5740 else if (!template_only)
5741 add_function_candidate (candidates,
5742 fn,
5743 ctype,
5744 fn_first_arg,
5745 fn_args,
5746 access_path,
5747 conversion_path,
5748 flags,
5749 NULL,
5750 complain);
5751 }
5752 }
5753
5754 /* Returns 1 if P0145R2 says that the LHS of operator CODE is evaluated first,
5755 -1 if the RHS is evaluated first, or 0 if the order is unspecified. */
5756
5757 static int
5758 op_is_ordered (tree_code code)
5759 {
5760 switch (code)
5761 {
5762 // 5. b @= a
5763 case MODIFY_EXPR:
5764 return (flag_strong_eval_order > 1 ? -1 : 0);
5765
5766 // 6. a[b]
5767 case ARRAY_REF:
5768 return (flag_strong_eval_order > 1 ? 1 : 0);
5769
5770 // 1. a.b
5771 // Not overloadable (yet).
5772 // 2. a->b
5773 // Only one argument.
5774 // 3. a->*b
5775 case MEMBER_REF:
5776 // 7. a << b
5777 case LSHIFT_EXPR:
5778 // 8. a >> b
5779 case RSHIFT_EXPR:
5780 return (flag_strong_eval_order ? 1 : 0);
5781
5782 default:
5783 return 0;
5784 }
5785 }
5786
5787 static tree
5788 build_new_op_1 (const op_location_t &loc, enum tree_code code, int flags,
5789 tree arg1, tree arg2, tree arg3, tree *overload,
5790 tsubst_flags_t complain)
5791 {
5792 struct z_candidate *candidates = 0, *cand;
5793 vec<tree, va_gc> *arglist;
5794 tree args[3];
5795 tree result = NULL_TREE;
5796 bool result_valid_p = false;
5797 enum tree_code code2 = NOP_EXPR;
5798 enum tree_code code_orig_arg1 = ERROR_MARK;
5799 enum tree_code code_orig_arg2 = ERROR_MARK;
5800 conversion *conv;
5801 void *p;
5802 bool strict_p;
5803 bool any_viable_p;
5804
5805 if (error_operand_p (arg1)
5806 || error_operand_p (arg2)
5807 || error_operand_p (arg3))
5808 return error_mark_node;
5809
5810 bool ismodop = code == MODIFY_EXPR;
5811 if (ismodop)
5812 {
5813 code2 = TREE_CODE (arg3);
5814 arg3 = NULL_TREE;
5815 }
5816 tree fnname = ovl_op_identifier (ismodop, ismodop ? code2 : code);
5817
5818 tree arg1_type = unlowered_expr_type (arg1);
5819 tree arg2_type = arg2 ? unlowered_expr_type (arg2) : NULL_TREE;
5820
5821 arg1 = prep_operand (arg1);
5822
5823 bool memonly = false;
5824 switch (code)
5825 {
5826 case NEW_EXPR:
5827 case VEC_NEW_EXPR:
5828 case VEC_DELETE_EXPR:
5829 case DELETE_EXPR:
5830 /* Use build_op_new_call and build_op_delete_call instead. */
5831 gcc_unreachable ();
5832
5833 case CALL_EXPR:
5834 /* Use build_op_call instead. */
5835 gcc_unreachable ();
5836
5837 case TRUTH_ORIF_EXPR:
5838 case TRUTH_ANDIF_EXPR:
5839 case TRUTH_AND_EXPR:
5840 case TRUTH_OR_EXPR:
5841 /* These are saved for the sake of warn_logical_operator. */
5842 code_orig_arg1 = TREE_CODE (arg1);
5843 code_orig_arg2 = TREE_CODE (arg2);
5844 break;
5845 case GT_EXPR:
5846 case LT_EXPR:
5847 case GE_EXPR:
5848 case LE_EXPR:
5849 case EQ_EXPR:
5850 case NE_EXPR:
5851 /* These are saved for the sake of maybe_warn_bool_compare. */
5852 code_orig_arg1 = TREE_CODE (arg1_type);
5853 code_orig_arg2 = TREE_CODE (arg2_type);
5854 break;
5855
5856 /* =, ->, [], () must be non-static member functions. */
5857 case MODIFY_EXPR:
5858 if (code2 != NOP_EXPR)
5859 break;
5860 /* FALLTHRU */
5861 case COMPONENT_REF:
5862 case ARRAY_REF:
5863 memonly = true;
5864 break;
5865
5866 default:
5867 break;
5868 }
5869
5870 arg2 = prep_operand (arg2);
5871 arg3 = prep_operand (arg3);
5872
5873 if (code == COND_EXPR)
5874 /* Use build_conditional_expr instead. */
5875 gcc_unreachable ();
5876 else if (! OVERLOAD_TYPE_P (arg1_type)
5877 && (! arg2 || ! OVERLOAD_TYPE_P (arg2_type)))
5878 goto builtin;
5879
5880 if (code == POSTINCREMENT_EXPR || code == POSTDECREMENT_EXPR)
5881 arg2 = integer_zero_node;
5882
5883 vec_alloc (arglist, 3);
5884 arglist->quick_push (arg1);
5885 if (arg2 != NULL_TREE)
5886 arglist->quick_push (arg2);
5887 if (arg3 != NULL_TREE)
5888 arglist->quick_push (arg3);
5889
5890 /* Get the high-water mark for the CONVERSION_OBSTACK. */
5891 p = conversion_obstack_alloc (0);
5892
5893 /* Add namespace-scope operators to the list of functions to
5894 consider. */
5895 if (!memonly)
5896 {
5897 tree fns = lookup_name_real (fnname, 0, 1, /*block_p=*/true, 0, 0);
5898 fns = lookup_arg_dependent (fnname, fns, arglist);
5899 add_candidates (fns, NULL_TREE, arglist, NULL_TREE,
5900 NULL_TREE, false, NULL_TREE, NULL_TREE,
5901 flags, &candidates, complain);
5902 }
5903
5904 args[0] = arg1;
5905 args[1] = arg2;
5906 args[2] = NULL_TREE;
5907
5908 /* Add class-member operators to the candidate set. */
5909 if (CLASS_TYPE_P (arg1_type))
5910 {
5911 tree fns;
5912
5913 fns = lookup_fnfields (arg1_type, fnname, 1);
5914 if (fns == error_mark_node)
5915 {
5916 result = error_mark_node;
5917 goto user_defined_result_ready;
5918 }
5919 if (fns)
5920 add_candidates (BASELINK_FUNCTIONS (fns),
5921 NULL_TREE, arglist, NULL_TREE,
5922 NULL_TREE, false,
5923 BASELINK_BINFO (fns),
5924 BASELINK_ACCESS_BINFO (fns),
5925 flags, &candidates, complain);
5926 }
5927 /* Per 13.3.1.2/3, 2nd bullet, if no operand has a class type, then
5928 only non-member functions that have type T1 or reference to
5929 cv-qualified-opt T1 for the first argument, if the first argument
5930 has an enumeration type, or T2 or reference to cv-qualified-opt
5931 T2 for the second argument, if the second argument has an
5932 enumeration type. Filter out those that don't match. */
5933 else if (! arg2 || ! CLASS_TYPE_P (arg2_type))
5934 {
5935 struct z_candidate **candp, **next;
5936
5937 for (candp = &candidates; *candp; candp = next)
5938 {
5939 tree parmlist, parmtype;
5940 int i, nargs = (arg2 ? 2 : 1);
5941
5942 cand = *candp;
5943 next = &cand->next;
5944
5945 parmlist = TYPE_ARG_TYPES (TREE_TYPE (cand->fn));
5946
5947 for (i = 0; i < nargs; ++i)
5948 {
5949 parmtype = TREE_VALUE (parmlist);
5950
5951 if (TYPE_REF_P (parmtype))
5952 parmtype = TREE_TYPE (parmtype);
5953 if (TREE_CODE (unlowered_expr_type (args[i])) == ENUMERAL_TYPE
5954 && (same_type_ignoring_top_level_qualifiers_p
5955 (unlowered_expr_type (args[i]), parmtype)))
5956 break;
5957
5958 parmlist = TREE_CHAIN (parmlist);
5959 }
5960
5961 /* No argument has an appropriate type, so remove this
5962 candidate function from the list. */
5963 if (i == nargs)
5964 {
5965 *candp = cand->next;
5966 next = candp;
5967 }
5968 }
5969 }
5970
5971 add_builtin_candidates (&candidates, code, code2, fnname, args,
5972 flags, complain);
5973
5974 switch (code)
5975 {
5976 case COMPOUND_EXPR:
5977 case ADDR_EXPR:
5978 /* For these, the built-in candidates set is empty
5979 [over.match.oper]/3. We don't want non-strict matches
5980 because exact matches are always possible with built-in
5981 operators. The built-in candidate set for COMPONENT_REF
5982 would be empty too, but since there are no such built-in
5983 operators, we accept non-strict matches for them. */
5984 strict_p = true;
5985 break;
5986
5987 default:
5988 strict_p = false;
5989 break;
5990 }
5991
5992 candidates = splice_viable (candidates, strict_p, &any_viable_p);
5993 if (!any_viable_p)
5994 {
5995 switch (code)
5996 {
5997 case POSTINCREMENT_EXPR:
5998 case POSTDECREMENT_EXPR:
5999 /* Don't try anything fancy if we're not allowed to produce
6000 errors. */
6001 if (!(complain & tf_error))
6002 return error_mark_node;
6003
6004 /* Look for an `operator++ (int)'. Pre-1985 C++ didn't
6005 distinguish between prefix and postfix ++ and
6006 operator++() was used for both, so we allow this with
6007 -fpermissive. */
6008 else
6009 {
6010 const char *msg = (flag_permissive)
6011 ? G_("no %<%D(int)%> declared for postfix %qs,"
6012 " trying prefix operator instead")
6013 : G_("no %<%D(int)%> declared for postfix %qs");
6014 permerror (loc, msg, fnname, OVL_OP_INFO (false, code)->name);
6015 }
6016
6017 if (!flag_permissive)
6018 return error_mark_node;
6019
6020 if (code == POSTINCREMENT_EXPR)
6021 code = PREINCREMENT_EXPR;
6022 else
6023 code = PREDECREMENT_EXPR;
6024 result = build_new_op_1 (loc, code, flags, arg1, NULL_TREE,
6025 NULL_TREE, overload, complain);
6026 break;
6027
6028 /* The caller will deal with these. */
6029 case ADDR_EXPR:
6030 case COMPOUND_EXPR:
6031 case COMPONENT_REF:
6032 result = NULL_TREE;
6033 result_valid_p = true;
6034 break;
6035
6036 default:
6037 if (complain & tf_error)
6038 {
6039 /* If one of the arguments of the operator represents
6040 an invalid use of member function pointer, try to report
6041 a meaningful error ... */
6042 if (invalid_nonstatic_memfn_p (loc, arg1, tf_error)
6043 || invalid_nonstatic_memfn_p (loc, arg2, tf_error)
6044 || invalid_nonstatic_memfn_p (loc, arg3, tf_error))
6045 /* We displayed the error message. */;
6046 else
6047 {
6048 /* ... Otherwise, report the more generic
6049 "no matching operator found" error */
6050 auto_diagnostic_group d;
6051 op_error (loc, code, code2, arg1, arg2, arg3, FALSE);
6052 print_z_candidates (loc, candidates);
6053 }
6054 }
6055 result = error_mark_node;
6056 break;
6057 }
6058 }
6059 else
6060 {
6061 cand = tourney (candidates, complain);
6062 if (cand == 0)
6063 {
6064 if (complain & tf_error)
6065 {
6066 auto_diagnostic_group d;
6067 op_error (loc, code, code2, arg1, arg2, arg3, TRUE);
6068 print_z_candidates (loc, candidates);
6069 }
6070 result = error_mark_node;
6071 }
6072 else if (TREE_CODE (cand->fn) == FUNCTION_DECL)
6073 {
6074 if (overload)
6075 *overload = cand->fn;
6076
6077 if (resolve_args (arglist, complain) == NULL)
6078 result = error_mark_node;
6079 else
6080 result = build_over_call (cand, LOOKUP_NORMAL, complain);
6081
6082 if (trivial_fn_p (cand->fn))
6083 /* There won't be a CALL_EXPR. */;
6084 else if (result && result != error_mark_node)
6085 {
6086 tree call = extract_call_expr (result);
6087 CALL_EXPR_OPERATOR_SYNTAX (call) = true;
6088
6089 if (processing_template_decl && DECL_HIDDEN_FRIEND_P (cand->fn))
6090 /* This prevents build_new_function_call from discarding this
6091 function during instantiation of the enclosing template. */
6092 KOENIG_LOOKUP_P (call) = 1;
6093
6094 /* Specify evaluation order as per P0145R2. */
6095 CALL_EXPR_ORDERED_ARGS (call) = false;
6096 switch (op_is_ordered (code))
6097 {
6098 case -1:
6099 CALL_EXPR_REVERSE_ARGS (call) = true;
6100 break;
6101
6102 case 1:
6103 CALL_EXPR_ORDERED_ARGS (call) = true;
6104 break;
6105
6106 default:
6107 break;
6108 }
6109 }
6110 }
6111 else
6112 {
6113 /* Give any warnings we noticed during overload resolution. */
6114 if (cand->warnings && (complain & tf_warning))
6115 {
6116 struct candidate_warning *w;
6117 for (w = cand->warnings; w; w = w->next)
6118 joust (cand, w->loser, 1, complain);
6119 }
6120
6121 /* Check for comparison of different enum types. */
6122 switch (code)
6123 {
6124 case GT_EXPR:
6125 case LT_EXPR:
6126 case GE_EXPR:
6127 case LE_EXPR:
6128 case EQ_EXPR:
6129 case NE_EXPR:
6130 if (TREE_CODE (arg1_type) == ENUMERAL_TYPE
6131 && TREE_CODE (arg2_type) == ENUMERAL_TYPE
6132 && (TYPE_MAIN_VARIANT (arg1_type)
6133 != TYPE_MAIN_VARIANT (arg2_type))
6134 && (complain & tf_warning))
6135 {
6136 warning (OPT_Wenum_compare,
6137 "comparison between %q#T and %q#T",
6138 arg1_type, arg2_type);
6139 }
6140 break;
6141 default:
6142 break;
6143 }
6144
6145 /* "If a built-in candidate is selected by overload resolution, the
6146 operands of class type are converted to the types of the
6147 corresponding parameters of the selected operation function,
6148 except that the second standard conversion sequence of a
6149 user-defined conversion sequence (12.3.3.1.2) is not applied." */
6150 conv = cand->convs[0];
6151 if (conv->user_conv_p)
6152 {
6153 while (conv->kind != ck_user)
6154 conv = next_conversion (conv);
6155 arg1 = convert_like (conv, arg1, complain);
6156 }
6157
6158 if (arg2)
6159 {
6160 conv = cand->convs[1];
6161 if (conv->user_conv_p)
6162 {
6163 while (conv->kind != ck_user)
6164 conv = next_conversion (conv);
6165 arg2 = convert_like (conv, arg2, complain);
6166 }
6167 }
6168
6169 if (arg3)
6170 {
6171 conv = cand->convs[2];
6172 if (conv->user_conv_p)
6173 {
6174 while (conv->kind != ck_user)
6175 conv = next_conversion (conv);
6176 arg3 = convert_like (conv, arg3, complain);
6177 }
6178 }
6179 }
6180 }
6181
6182 user_defined_result_ready:
6183
6184 /* Free all the conversions we allocated. */
6185 obstack_free (&conversion_obstack, p);
6186
6187 if (result || result_valid_p)
6188 return result;
6189
6190 builtin:
6191 switch (code)
6192 {
6193 case MODIFY_EXPR:
6194 return cp_build_modify_expr (loc, arg1, code2, arg2, complain);
6195
6196 case INDIRECT_REF:
6197 return cp_build_indirect_ref (arg1, RO_UNARY_STAR, complain);
6198
6199 case TRUTH_ANDIF_EXPR:
6200 case TRUTH_ORIF_EXPR:
6201 case TRUTH_AND_EXPR:
6202 case TRUTH_OR_EXPR:
6203 if (complain & tf_warning)
6204 warn_logical_operator (loc, code, boolean_type_node,
6205 code_orig_arg1, arg1,
6206 code_orig_arg2, arg2);
6207 /* Fall through. */
6208 case GT_EXPR:
6209 case LT_EXPR:
6210 case GE_EXPR:
6211 case LE_EXPR:
6212 case EQ_EXPR:
6213 case NE_EXPR:
6214 if ((complain & tf_warning)
6215 && ((code_orig_arg1 == BOOLEAN_TYPE)
6216 ^ (code_orig_arg2 == BOOLEAN_TYPE)))
6217 maybe_warn_bool_compare (loc, code, arg1, arg2);
6218 if (complain & tf_warning && warn_tautological_compare)
6219 warn_tautological_cmp (loc, code, arg1, arg2);
6220 /* Fall through. */
6221 case PLUS_EXPR:
6222 case MINUS_EXPR:
6223 case MULT_EXPR:
6224 case TRUNC_DIV_EXPR:
6225 case MAX_EXPR:
6226 case MIN_EXPR:
6227 case LSHIFT_EXPR:
6228 case RSHIFT_EXPR:
6229 case TRUNC_MOD_EXPR:
6230 case BIT_AND_EXPR:
6231 case BIT_IOR_EXPR:
6232 case BIT_XOR_EXPR:
6233 return cp_build_binary_op (loc, code, arg1, arg2, complain);
6234
6235 case UNARY_PLUS_EXPR:
6236 case NEGATE_EXPR:
6237 case BIT_NOT_EXPR:
6238 case TRUTH_NOT_EXPR:
6239 case PREINCREMENT_EXPR:
6240 case POSTINCREMENT_EXPR:
6241 case PREDECREMENT_EXPR:
6242 case POSTDECREMENT_EXPR:
6243 case REALPART_EXPR:
6244 case IMAGPART_EXPR:
6245 case ABS_EXPR:
6246 return cp_build_unary_op (code, arg1, false, complain);
6247
6248 case ARRAY_REF:
6249 return cp_build_array_ref (input_location, arg1, arg2, complain);
6250
6251 case MEMBER_REF:
6252 return build_m_component_ref (cp_build_indirect_ref (arg1, RO_ARROW_STAR,
6253 complain),
6254 arg2, complain);
6255
6256 /* The caller will deal with these. */
6257 case ADDR_EXPR:
6258 case COMPONENT_REF:
6259 case COMPOUND_EXPR:
6260 return NULL_TREE;
6261
6262 default:
6263 gcc_unreachable ();
6264 }
6265 return NULL_TREE;
6266 }
6267
6268 /* Wrapper for above. */
6269
6270 tree
6271 build_new_op (const op_location_t &loc, enum tree_code code, int flags,
6272 tree arg1, tree arg2, tree arg3,
6273 tree *overload, tsubst_flags_t complain)
6274 {
6275 tree ret;
6276 bool subtime = timevar_cond_start (TV_OVERLOAD);
6277 ret = build_new_op_1 (loc, code, flags, arg1, arg2, arg3,
6278 overload, complain);
6279 timevar_cond_stop (TV_OVERLOAD, subtime);
6280 return ret;
6281 }
6282
6283 /* CALL was returned by some call-building function; extract the actual
6284 CALL_EXPR from any bits that have been tacked on, e.g. by
6285 convert_from_reference. */
6286
6287 tree
6288 extract_call_expr (tree call)
6289 {
6290 while (TREE_CODE (call) == COMPOUND_EXPR)
6291 call = TREE_OPERAND (call, 1);
6292 if (REFERENCE_REF_P (call))
6293 call = TREE_OPERAND (call, 0);
6294 if (TREE_CODE (call) == TARGET_EXPR)
6295 call = TARGET_EXPR_INITIAL (call);
6296 gcc_assert (TREE_CODE (call) == CALL_EXPR
6297 || TREE_CODE (call) == AGGR_INIT_EXPR
6298 || call == error_mark_node);
6299 return call;
6300 }
6301
6302 /* Returns true if FN has two parameters, of which the second has type
6303 size_t. */
6304
6305 static bool
6306 second_parm_is_size_t (tree fn)
6307 {
6308 tree t = FUNCTION_ARG_CHAIN (fn);
6309 if (!t || !same_type_p (TREE_VALUE (t), size_type_node))
6310 return false;
6311 t = TREE_CHAIN (t);
6312 if (t == void_list_node)
6313 return true;
6314 return false;
6315 }
6316
6317 /* True if T, an allocation function, has std::align_val_t as its second
6318 argument. */
6319
6320 bool
6321 aligned_allocation_fn_p (tree t)
6322 {
6323 if (!aligned_new_threshold)
6324 return false;
6325
6326 tree a = FUNCTION_ARG_CHAIN (t);
6327 return (a && same_type_p (TREE_VALUE (a), align_type_node));
6328 }
6329
6330 /* True if T is std::destroying_delete_t. */
6331
6332 static bool
6333 std_destroying_delete_t_p (tree t)
6334 {
6335 return (TYPE_CONTEXT (t) == std_node
6336 && id_equal (TYPE_IDENTIFIER (t), "destroying_delete_t"));
6337 }
6338
6339 /* A deallocation function with at least two parameters whose second parameter
6340 type is of type std::destroying_delete_t is a destroying operator delete. A
6341 destroying operator delete shall be a class member function named operator
6342 delete. [ Note: Array deletion cannot use a destroying operator
6343 delete. --end note ] */
6344
6345 tree
6346 destroying_delete_p (tree t)
6347 {
6348 tree a = TYPE_ARG_TYPES (TREE_TYPE (t));
6349 if (!a || !TREE_CHAIN (a))
6350 return NULL_TREE;
6351 tree type = TREE_VALUE (TREE_CHAIN (a));
6352 return std_destroying_delete_t_p (type) ? type : NULL_TREE;
6353 }
6354
6355 struct dealloc_info
6356 {
6357 bool sized;
6358 bool aligned;
6359 tree destroying;
6360 };
6361
6362 /* Returns true iff T, an element of an OVERLOAD chain, is a usual deallocation
6363 function (3.7.4.2 [basic.stc.dynamic.deallocation]). If so, and DI is
6364 non-null, also set *DI. */
6365
6366 static bool
6367 usual_deallocation_fn_p (tree t, dealloc_info *di)
6368 {
6369 if (di) *di = dealloc_info();
6370
6371 /* A template instance is never a usual deallocation function,
6372 regardless of its signature. */
6373 if (TREE_CODE (t) == TEMPLATE_DECL
6374 || primary_template_specialization_p (t))
6375 return false;
6376
6377 /* A usual deallocation function is a deallocation function whose parameters
6378 after the first are
6379 - optionally, a parameter of type std::destroying_delete_t, then
6380 - optionally, a parameter of type std::size_t, then
6381 - optionally, a parameter of type std::align_val_t. */
6382 bool global = DECL_NAMESPACE_SCOPE_P (t);
6383 tree chain = FUNCTION_ARG_CHAIN (t);
6384 if (chain && destroying_delete_p (t))
6385 {
6386 if (di) di->destroying = TREE_VALUE (chain);
6387 chain = TREE_CHAIN (chain);
6388 }
6389 if (chain
6390 && (!global || flag_sized_deallocation)
6391 && same_type_p (TREE_VALUE (chain), size_type_node))
6392 {
6393 if (di) di->sized = true;
6394 chain = TREE_CHAIN (chain);
6395 }
6396 if (chain && aligned_new_threshold
6397 && same_type_p (TREE_VALUE (chain), align_type_node))
6398 {
6399 if (di) di->aligned = true;
6400 chain = TREE_CHAIN (chain);
6401 }
6402 return (chain == void_list_node);
6403 }
6404
6405 /* Just return whether FN is a usual deallocation function. */
6406
6407 bool
6408 usual_deallocation_fn_p (tree fn)
6409 {
6410 return usual_deallocation_fn_p (fn, NULL);
6411 }
6412
6413 /* Build a call to operator delete. This has to be handled very specially,
6414 because the restrictions on what signatures match are different from all
6415 other call instances. For a normal delete, only a delete taking (void *)
6416 or (void *, size_t) is accepted. For a placement delete, only an exact
6417 match with the placement new is accepted.
6418
6419 CODE is either DELETE_EXPR or VEC_DELETE_EXPR.
6420 ADDR is the pointer to be deleted.
6421 SIZE is the size of the memory block to be deleted.
6422 GLOBAL_P is true if the delete-expression should not consider
6423 class-specific delete operators.
6424 PLACEMENT is the corresponding placement new call, or NULL_TREE.
6425
6426 If this call to "operator delete" is being generated as part to
6427 deallocate memory allocated via a new-expression (as per [expr.new]
6428 which requires that if the initialization throws an exception then
6429 we call a deallocation function), then ALLOC_FN is the allocation
6430 function. */
6431
6432 tree
6433 build_op_delete_call (enum tree_code code, tree addr, tree size,
6434 bool global_p, tree placement,
6435 tree alloc_fn, tsubst_flags_t complain)
6436 {
6437 tree fn = NULL_TREE;
6438 tree fns, fnname, type, t;
6439 dealloc_info di_fn = { };
6440
6441 if (addr == error_mark_node)
6442 return error_mark_node;
6443
6444 type = strip_array_types (TREE_TYPE (TREE_TYPE (addr)));
6445
6446 fnname = ovl_op_identifier (false, code);
6447
6448 if (CLASS_TYPE_P (type)
6449 && COMPLETE_TYPE_P (complete_type (type))
6450 && !global_p)
6451 /* In [class.free]
6452
6453 If the result of the lookup is ambiguous or inaccessible, or if
6454 the lookup selects a placement deallocation function, the
6455 program is ill-formed.
6456
6457 Therefore, we ask lookup_fnfields to complain about ambiguity. */
6458 {
6459 fns = lookup_fnfields (TYPE_BINFO (type), fnname, 1);
6460 if (fns == error_mark_node)
6461 return error_mark_node;
6462 }
6463 else
6464 fns = NULL_TREE;
6465
6466 if (fns == NULL_TREE)
6467 fns = lookup_name_nonclass (fnname);
6468
6469 /* Strip const and volatile from addr. */
6470 tree oaddr = addr;
6471 addr = cp_convert (ptr_type_node, addr, complain);
6472
6473 if (placement)
6474 {
6475 /* "A declaration of a placement deallocation function matches the
6476 declaration of a placement allocation function if it has the same
6477 number of parameters and, after parameter transformations (8.3.5),
6478 all parameter types except the first are identical."
6479
6480 So we build up the function type we want and ask instantiate_type
6481 to get it for us. */
6482 t = FUNCTION_ARG_CHAIN (alloc_fn);
6483 t = tree_cons (NULL_TREE, ptr_type_node, t);
6484 t = build_function_type (void_type_node, t);
6485
6486 fn = instantiate_type (t, fns, tf_none);
6487 if (fn == error_mark_node)
6488 return NULL_TREE;
6489
6490 fn = MAYBE_BASELINK_FUNCTIONS (fn);
6491
6492 /* "If the lookup finds the two-parameter form of a usual deallocation
6493 function (3.7.4.2) and that function, considered as a placement
6494 deallocation function, would have been selected as a match for the
6495 allocation function, the program is ill-formed." */
6496 if (second_parm_is_size_t (fn))
6497 {
6498 const char *const msg1
6499 = G_("exception cleanup for this placement new selects "
6500 "non-placement %<operator delete%>");
6501 const char *const msg2
6502 = G_("%qD is a usual (non-placement) deallocation "
6503 "function in C++14 (or with %<-fsized-deallocation%>)");
6504
6505 /* But if the class has an operator delete (void *), then that is
6506 the usual deallocation function, so we shouldn't complain
6507 about using the operator delete (void *, size_t). */
6508 if (DECL_CLASS_SCOPE_P (fn))
6509 for (lkp_iterator iter (MAYBE_BASELINK_FUNCTIONS (fns));
6510 iter; ++iter)
6511 {
6512 tree elt = *iter;
6513 if (usual_deallocation_fn_p (elt)
6514 && FUNCTION_ARG_CHAIN (elt) == void_list_node)
6515 goto ok;
6516 }
6517 /* Before C++14 a two-parameter global deallocation function is
6518 always a placement deallocation function, but warn if
6519 -Wc++14-compat. */
6520 else if (!flag_sized_deallocation)
6521 {
6522 if (complain & tf_warning)
6523 {
6524 auto_diagnostic_group d;
6525 if (warning (OPT_Wc__14_compat, msg1))
6526 inform (DECL_SOURCE_LOCATION (fn), msg2, fn);
6527 }
6528 goto ok;
6529 }
6530
6531 if (complain & tf_warning_or_error)
6532 {
6533 auto_diagnostic_group d;
6534 if (permerror (input_location, msg1))
6535 {
6536 /* Only mention C++14 for namespace-scope delete. */
6537 if (DECL_NAMESPACE_SCOPE_P (fn))
6538 inform (DECL_SOURCE_LOCATION (fn), msg2, fn);
6539 else
6540 inform (DECL_SOURCE_LOCATION (fn),
6541 "%qD is a usual (non-placement) deallocation "
6542 "function", fn);
6543 }
6544 }
6545 else
6546 return error_mark_node;
6547 ok:;
6548 }
6549 }
6550 else
6551 /* "Any non-placement deallocation function matches a non-placement
6552 allocation function. If the lookup finds a single matching
6553 deallocation function, that function will be called; otherwise, no
6554 deallocation function will be called." */
6555 for (lkp_iterator iter (MAYBE_BASELINK_FUNCTIONS (fns)); iter; ++iter)
6556 {
6557 tree elt = *iter;
6558 dealloc_info di_elt;
6559 if (usual_deallocation_fn_p (elt, &di_elt))
6560 {
6561 if (!fn)
6562 {
6563 fn = elt;
6564 di_fn = di_elt;
6565 continue;
6566 }
6567
6568 /* -- If any of the deallocation functions is a destroying
6569 operator delete, all deallocation functions that are not
6570 destroying operator deletes are eliminated from further
6571 consideration. */
6572 if (di_elt.destroying != di_fn.destroying)
6573 {
6574 if (di_elt.destroying)
6575 {
6576 fn = elt;
6577 di_fn = di_elt;
6578 }
6579 continue;
6580 }
6581
6582 /* -- If the type has new-extended alignment, a function with a
6583 parameter of type std::align_val_t is preferred; otherwise a
6584 function without such a parameter is preferred. If exactly one
6585 preferred function is found, that function is selected and the
6586 selection process terminates. If more than one preferred
6587 function is found, all non-preferred functions are eliminated
6588 from further consideration. */
6589 if (aligned_new_threshold)
6590 {
6591 bool want_align = type_has_new_extended_alignment (type);
6592 if (di_elt.aligned != di_fn.aligned)
6593 {
6594 if (want_align == di_elt.aligned)
6595 {
6596 fn = elt;
6597 di_fn = di_elt;
6598 }
6599 continue;
6600 }
6601 }
6602
6603 /* -- If the deallocation functions have class scope, the one
6604 without a parameter of type std::size_t is selected. */
6605 bool want_size;
6606 if (DECL_CLASS_SCOPE_P (fn))
6607 want_size = false;
6608
6609 /* -- If the type is complete and if, for the second alternative
6610 (delete array) only, the operand is a pointer to a class type
6611 with a non-trivial destructor or a (possibly multi-dimensional)
6612 array thereof, the function with a parameter of type std::size_t
6613 is selected.
6614
6615 -- Otherwise, it is unspecified whether a deallocation function
6616 with a parameter of type std::size_t is selected. */
6617 else
6618 {
6619 want_size = COMPLETE_TYPE_P (type);
6620 if (code == VEC_DELETE_EXPR
6621 && !TYPE_VEC_NEW_USES_COOKIE (type))
6622 /* We need a cookie to determine the array size. */
6623 want_size = false;
6624 }
6625 gcc_assert (di_fn.sized != di_elt.sized);
6626 if (want_size == di_elt.sized)
6627 {
6628 fn = elt;
6629 di_fn = di_elt;
6630 }
6631 }
6632 }
6633
6634 /* If we have a matching function, call it. */
6635 if (fn)
6636 {
6637 gcc_assert (TREE_CODE (fn) == FUNCTION_DECL);
6638
6639 /* If the FN is a member function, make sure that it is
6640 accessible. */
6641 if (BASELINK_P (fns))
6642 perform_or_defer_access_check (BASELINK_BINFO (fns), fn, fn,
6643 complain);
6644
6645 /* Core issue 901: It's ok to new a type with deleted delete. */
6646 if (DECL_DELETED_FN (fn) && alloc_fn)
6647 return NULL_TREE;
6648
6649 if (placement)
6650 {
6651 /* The placement args might not be suitable for overload
6652 resolution at this point, so build the call directly. */
6653 int nargs = call_expr_nargs (placement);
6654 tree *argarray = XALLOCAVEC (tree, nargs);
6655 int i;
6656 argarray[0] = addr;
6657 for (i = 1; i < nargs; i++)
6658 argarray[i] = CALL_EXPR_ARG (placement, i);
6659 if (!mark_used (fn, complain) && !(complain & tf_error))
6660 return error_mark_node;
6661 return build_cxx_call (fn, nargs, argarray, complain);
6662 }
6663 else
6664 {
6665 tree destroying = di_fn.destroying;
6666 if (destroying)
6667 {
6668 /* Strip const and volatile from addr but retain the type of the
6669 object. */
6670 tree rtype = TREE_TYPE (TREE_TYPE (oaddr));
6671 rtype = cv_unqualified (rtype);
6672 rtype = TYPE_POINTER_TO (rtype);
6673 addr = cp_convert (rtype, oaddr, complain);
6674 destroying = build_functional_cast (destroying, NULL_TREE,
6675 complain);
6676 }
6677
6678 tree ret;
6679 releasing_vec args;
6680 args->quick_push (addr);
6681 if (destroying)
6682 args->quick_push (destroying);
6683 if (di_fn.sized)
6684 args->quick_push (size);
6685 if (di_fn.aligned)
6686 {
6687 tree al = build_int_cst (align_type_node, TYPE_ALIGN_UNIT (type));
6688 args->quick_push (al);
6689 }
6690 ret = cp_build_function_call_vec (fn, &args, complain);
6691 return ret;
6692 }
6693 }
6694
6695 /* [expr.new]
6696
6697 If no unambiguous matching deallocation function can be found,
6698 propagating the exception does not cause the object's memory to
6699 be freed. */
6700 if (alloc_fn)
6701 {
6702 if ((complain & tf_warning)
6703 && !placement)
6704 warning (0, "no corresponding deallocation function for %qD",
6705 alloc_fn);
6706 return NULL_TREE;
6707 }
6708
6709 if (complain & tf_error)
6710 error ("no suitable %<operator %s%> for %qT",
6711 OVL_OP_INFO (false, code)->name, type);
6712 return error_mark_node;
6713 }
6714
6715 /* Issue diagnostics about a disallowed access of DECL, using DIAG_DECL
6716 in the diagnostics.
6717
6718 If ISSUE_ERROR is true, then issue an error about the
6719 access, followed by a note showing the declaration.
6720 Otherwise, just show the note. */
6721
6722 void
6723 complain_about_access (tree decl, tree diag_decl, bool issue_error)
6724 {
6725 if (TREE_PRIVATE (decl))
6726 {
6727 if (issue_error)
6728 error ("%q#D is private within this context", diag_decl);
6729 inform (DECL_SOURCE_LOCATION (diag_decl),
6730 "declared private here");
6731 }
6732 else if (TREE_PROTECTED (decl))
6733 {
6734 if (issue_error)
6735 error ("%q#D is protected within this context", diag_decl);
6736 inform (DECL_SOURCE_LOCATION (diag_decl),
6737 "declared protected here");
6738 }
6739 else
6740 {
6741 if (issue_error)
6742 error ("%q#D is inaccessible within this context", diag_decl);
6743 inform (DECL_SOURCE_LOCATION (diag_decl), "declared here");
6744 }
6745 }
6746
6747 /* If the current scope isn't allowed to access DECL along
6748 BASETYPE_PATH, give an error. The most derived class in
6749 BASETYPE_PATH is the one used to qualify DECL. DIAG_DECL is
6750 the declaration to use in the error diagnostic. */
6751
6752 bool
6753 enforce_access (tree basetype_path, tree decl, tree diag_decl,
6754 tsubst_flags_t complain, access_failure_info *afi)
6755 {
6756 gcc_assert (TREE_CODE (basetype_path) == TREE_BINFO);
6757
6758 if (flag_new_inheriting_ctors
6759 && DECL_INHERITED_CTOR (decl))
6760 {
6761 /* 7.3.3/18: The additional constructors are accessible if they would be
6762 accessible when used to construct an object of the corresponding base
6763 class. */
6764 decl = strip_inheriting_ctors (decl);
6765 basetype_path = lookup_base (basetype_path, DECL_CONTEXT (decl),
6766 ba_any, NULL, complain);
6767 }
6768
6769 if (!accessible_p (basetype_path, decl, true))
6770 {
6771 if (flag_new_inheriting_ctors)
6772 diag_decl = strip_inheriting_ctors (diag_decl);
6773 if (complain & tf_error)
6774 complain_about_access (decl, diag_decl, true);
6775 if (afi)
6776 afi->record_access_failure (basetype_path, decl, diag_decl);
6777 return false;
6778 }
6779
6780 return true;
6781 }
6782
6783 /* Initialize a temporary of type TYPE with EXPR. The FLAGS are a
6784 bitwise or of LOOKUP_* values. If any errors are warnings are
6785 generated, set *DIAGNOSTIC_FN to "error" or "warning",
6786 respectively. If no diagnostics are generated, set *DIAGNOSTIC_FN
6787 to NULL. */
6788
6789 static tree
6790 build_temp (tree expr, tree type, int flags,
6791 diagnostic_t *diagnostic_kind, tsubst_flags_t complain)
6792 {
6793 int savew, savee;
6794
6795 *diagnostic_kind = DK_UNSPECIFIED;
6796
6797 /* If the source is a packed field, calling the copy constructor will require
6798 binding the field to the reference parameter to the copy constructor, and
6799 we'll end up with an infinite loop. If we can use a bitwise copy, then
6800 do that now. */
6801 if ((lvalue_kind (expr) & clk_packed)
6802 && CLASS_TYPE_P (TREE_TYPE (expr))
6803 && !type_has_nontrivial_copy_init (TREE_TYPE (expr)))
6804 return get_target_expr_sfinae (expr, complain);
6805
6806 savew = warningcount + werrorcount, savee = errorcount;
6807 releasing_vec args (make_tree_vector_single (expr));
6808 expr = build_special_member_call (NULL_TREE, complete_ctor_identifier,
6809 &args, type, flags, complain);
6810 if (warningcount + werrorcount > savew)
6811 *diagnostic_kind = DK_WARNING;
6812 else if (errorcount > savee)
6813 *diagnostic_kind = DK_ERROR;
6814 return expr;
6815 }
6816
6817 /* Get any location for EXPR, falling back to input_location.
6818
6819 If the result is in a system header and is the virtual location for
6820 a token coming from the expansion of a macro, unwind it to the
6821 location of the expansion point of the macro (e.g. to avoid the
6822 diagnostic being suppressed for expansions of NULL where "NULL" is
6823 in a system header). */
6824
6825 static location_t
6826 get_location_for_expr_unwinding_for_system_header (tree expr)
6827 {
6828 location_t loc = EXPR_LOC_OR_LOC (expr, input_location);
6829 loc = expansion_point_location_if_in_system_header (loc);
6830 return loc;
6831 }
6832
6833 /* Perform warnings about peculiar, but valid, conversions from/to NULL.
6834 Also handle a subset of zero as null warnings.
6835 EXPR is implicitly converted to type TOTYPE.
6836 FN and ARGNUM are used for diagnostics. */
6837
6838 static void
6839 conversion_null_warnings (tree totype, tree expr, tree fn, int argnum)
6840 {
6841 /* Issue warnings about peculiar, but valid, uses of NULL. */
6842 if (TREE_CODE (totype) != BOOLEAN_TYPE
6843 && ARITHMETIC_TYPE_P (totype)
6844 && null_node_p (expr))
6845 {
6846 location_t loc = get_location_for_expr_unwinding_for_system_header (expr);
6847 if (fn)
6848 {
6849 auto_diagnostic_group d;
6850 if (warning_at (loc, OPT_Wconversion_null,
6851 "passing NULL to non-pointer argument %P of %qD",
6852 argnum, fn))
6853 inform (get_fndecl_argument_location (fn, argnum),
6854 " declared here");
6855 }
6856 else
6857 warning_at (loc, OPT_Wconversion_null,
6858 "converting to non-pointer type %qT from NULL", totype);
6859 }
6860
6861 /* Issue warnings if "false" is converted to a NULL pointer */
6862 else if (TREE_CODE (TREE_TYPE (expr)) == BOOLEAN_TYPE
6863 && TYPE_PTR_P (totype))
6864 {
6865 location_t loc = get_location_for_expr_unwinding_for_system_header (expr);
6866 if (fn)
6867 {
6868 auto_diagnostic_group d;
6869 if (warning_at (loc, OPT_Wconversion_null,
6870 "converting %<false%> to pointer type for argument "
6871 "%P of %qD", argnum, fn))
6872 inform (get_fndecl_argument_location (fn, argnum),
6873 " declared here");
6874 }
6875 else
6876 warning_at (loc, OPT_Wconversion_null,
6877 "converting %<false%> to pointer type %qT", totype);
6878 }
6879 /* Handle zero as null pointer warnings for cases other
6880 than EQ_EXPR and NE_EXPR */
6881 else if ((TYPE_PTR_OR_PTRMEM_P (totype) || NULLPTR_TYPE_P (totype))
6882 && null_ptr_cst_p (expr))
6883 {
6884 location_t loc = get_location_for_expr_unwinding_for_system_header (expr);
6885 maybe_warn_zero_as_null_pointer_constant (expr, loc);
6886 }
6887 }
6888
6889 /* We gave a diagnostic during a conversion. If this was in the second
6890 standard conversion sequence of a user-defined conversion sequence, say
6891 which user-defined conversion. */
6892
6893 static void
6894 maybe_print_user_conv_context (conversion *convs)
6895 {
6896 if (convs->user_conv_p)
6897 for (conversion *t = convs; t; t = next_conversion (t))
6898 if (t->kind == ck_user)
6899 {
6900 print_z_candidate (0, N_(" after user-defined conversion:"),
6901 t->cand);
6902 break;
6903 }
6904 }
6905
6906 /* Locate the parameter with the given index within FNDECL.
6907 ARGNUM is zero based, -1 indicates the `this' argument of a method.
6908 Return the location of the FNDECL itself if there are problems. */
6909
6910 location_t
6911 get_fndecl_argument_location (tree fndecl, int argnum)
6912 {
6913 /* The locations of implicitly-declared functions are likely to be
6914 more meaningful than those of their parameters. */
6915 if (DECL_ARTIFICIAL (fndecl))
6916 return DECL_SOURCE_LOCATION (fndecl);
6917
6918 int i;
6919 tree param;
6920
6921 /* Locate param by index within DECL_ARGUMENTS (fndecl). */
6922 for (i = 0, param = FUNCTION_FIRST_USER_PARM (fndecl);
6923 i < argnum && param;
6924 i++, param = TREE_CHAIN (param))
6925 ;
6926
6927 /* If something went wrong (e.g. if we have a builtin and thus no arguments),
6928 return the location of FNDECL. */
6929 if (param == NULL)
6930 return DECL_SOURCE_LOCATION (fndecl);
6931
6932 return DECL_SOURCE_LOCATION (param);
6933 }
6934
6935 /* If FNDECL is non-NULL, issue a note highlighting ARGNUM
6936 within its declaration (or the fndecl itself if something went
6937 wrong). */
6938
6939 void
6940 maybe_inform_about_fndecl_for_bogus_argument_init (tree fn, int argnum)
6941 {
6942 if (fn)
6943 inform (get_fndecl_argument_location (fn, argnum),
6944 " initializing argument %P of %qD", argnum, fn);
6945 }
6946
6947 /* Perform the conversions in CONVS on the expression EXPR. FN and
6948 ARGNUM are used for diagnostics. ARGNUM is zero based, -1
6949 indicates the `this' argument of a method. INNER is nonzero when
6950 being called to continue a conversion chain. It is negative when a
6951 reference binding will be applied, positive otherwise. If
6952 ISSUE_CONVERSION_WARNINGS is true, warnings about suspicious
6953 conversions will be emitted if appropriate. If C_CAST_P is true,
6954 this conversion is coming from a C-style cast; in that case,
6955 conversions to inaccessible bases are permitted. */
6956
6957 static tree
6958 convert_like_real (conversion *convs, tree expr, tree fn, int argnum,
6959 bool issue_conversion_warnings,
6960 bool c_cast_p, tsubst_flags_t complain)
6961 {
6962 tree totype = convs->type;
6963 diagnostic_t diag_kind;
6964 int flags;
6965 location_t loc = cp_expr_loc_or_input_loc (expr);
6966
6967 if (convs->bad_p && !(complain & tf_error))
6968 return error_mark_node;
6969
6970 if (convs->bad_p
6971 && convs->kind != ck_user
6972 && convs->kind != ck_list
6973 && convs->kind != ck_ambig
6974 && (convs->kind != ck_ref_bind
6975 || (convs->user_conv_p && next_conversion (convs)->bad_p))
6976 && (convs->kind != ck_rvalue
6977 || SCALAR_TYPE_P (totype))
6978 && convs->kind != ck_base)
6979 {
6980 bool complained = false;
6981 conversion *t = convs;
6982
6983 /* Give a helpful error if this is bad because of excess braces. */
6984 if (BRACE_ENCLOSED_INITIALIZER_P (expr)
6985 && SCALAR_TYPE_P (totype)
6986 && CONSTRUCTOR_NELTS (expr) > 0
6987 && BRACE_ENCLOSED_INITIALIZER_P (CONSTRUCTOR_ELT (expr, 0)->value))
6988 {
6989 complained = permerror (loc, "too many braces around initializer "
6990 "for %qT", totype);
6991 while (BRACE_ENCLOSED_INITIALIZER_P (expr)
6992 && CONSTRUCTOR_NELTS (expr) == 1)
6993 expr = CONSTRUCTOR_ELT (expr, 0)->value;
6994 }
6995
6996 /* Give a helpful error if this is bad because a conversion to bool
6997 from std::nullptr_t requires direct-initialization. */
6998 if (NULLPTR_TYPE_P (TREE_TYPE (expr))
6999 && TREE_CODE (totype) == BOOLEAN_TYPE)
7000 complained = permerror (loc, "converting to %qH from %qI requires "
7001 "direct-initialization",
7002 totype, TREE_TYPE (expr));
7003
7004 for (; t ; t = next_conversion (t))
7005 {
7006 if (t->kind == ck_user && t->cand->reason)
7007 {
7008 auto_diagnostic_group d;
7009 complained = permerror (loc, "invalid user-defined conversion "
7010 "from %qH to %qI", TREE_TYPE (expr),
7011 totype);
7012 if (complained)
7013 print_z_candidate (loc, N_("candidate is:"), t->cand);
7014 expr = convert_like_real (t, expr, fn, argnum,
7015 /*issue_conversion_warnings=*/false,
7016 /*c_cast_p=*/false,
7017 complain);
7018 if (convs->kind == ck_ref_bind)
7019 expr = convert_to_reference (totype, expr, CONV_IMPLICIT,
7020 LOOKUP_NORMAL, NULL_TREE,
7021 complain);
7022 else
7023 expr = cp_convert (totype, expr, complain);
7024 if (complained)
7025 maybe_inform_about_fndecl_for_bogus_argument_init (fn, argnum);
7026 return expr;
7027 }
7028 else if (t->kind == ck_user || !t->bad_p)
7029 {
7030 expr = convert_like_real (t, expr, fn, argnum,
7031 /*issue_conversion_warnings=*/false,
7032 /*c_cast_p=*/false,
7033 complain);
7034 break;
7035 }
7036 else if (t->kind == ck_ambig)
7037 return convert_like_real (t, expr, fn, argnum,
7038 /*issue_conversion_warnings=*/false,
7039 /*c_cast_p=*/false,
7040 complain);
7041 else if (t->kind == ck_identity)
7042 break;
7043 }
7044 if (!complained)
7045 {
7046 range_label_for_type_mismatch label (TREE_TYPE (expr), totype);
7047 gcc_rich_location richloc (loc, &label);
7048 complained = permerror (&richloc,
7049 "invalid conversion from %qH to %qI",
7050 TREE_TYPE (expr), totype);
7051 }
7052 if (complained)
7053 maybe_inform_about_fndecl_for_bogus_argument_init (fn, argnum);
7054
7055 return cp_convert (totype, expr, complain);
7056 }
7057
7058 if (issue_conversion_warnings && (complain & tf_warning))
7059 conversion_null_warnings (totype, expr, fn, argnum);
7060
7061 switch (convs->kind)
7062 {
7063 case ck_user:
7064 {
7065 struct z_candidate *cand = convs->cand;
7066
7067 if (cand == NULL)
7068 /* We chose the surrogate function from add_conv_candidate, now we
7069 actually need to build the conversion. */
7070 cand = build_user_type_conversion_1 (totype, expr,
7071 LOOKUP_NO_CONVERSION, complain);
7072
7073 tree convfn = cand->fn;
7074
7075 /* When converting from an init list we consider explicit
7076 constructors, but actually trying to call one is an error. */
7077 if (DECL_NONCONVERTING_P (convfn) && DECL_CONSTRUCTOR_P (convfn)
7078 && BRACE_ENCLOSED_INITIALIZER_P (expr)
7079 /* Unless this is for direct-list-initialization. */
7080 && (!CONSTRUCTOR_IS_DIRECT_INIT (expr) || convs->need_temporary_p)
7081 /* And in C++98 a default constructor can't be explicit. */
7082 && cxx_dialect >= cxx11)
7083 {
7084 if (!(complain & tf_error))
7085 return error_mark_node;
7086 location_t loc = location_of (expr);
7087 if (CONSTRUCTOR_NELTS (expr) == 0
7088 && FUNCTION_FIRST_USER_PARMTYPE (convfn) != void_list_node)
7089 {
7090 auto_diagnostic_group d;
7091 if (pedwarn (loc, 0, "converting to %qT from initializer list "
7092 "would use explicit constructor %qD",
7093 totype, convfn))
7094 inform (loc, "in C++11 and above a default constructor "
7095 "can be explicit");
7096 }
7097 else
7098 error ("converting to %qT from initializer list would use "
7099 "explicit constructor %qD", totype, convfn);
7100 }
7101
7102 /* If we're initializing from {}, it's value-initialization. */
7103 if (BRACE_ENCLOSED_INITIALIZER_P (expr)
7104 && CONSTRUCTOR_NELTS (expr) == 0
7105 && TYPE_HAS_DEFAULT_CONSTRUCTOR (totype)
7106 && !processing_template_decl)
7107 {
7108 bool direct = CONSTRUCTOR_IS_DIRECT_INIT (expr);
7109 if (abstract_virtuals_error_sfinae (NULL_TREE, totype, complain))
7110 return error_mark_node;
7111 expr = build_value_init (totype, complain);
7112 expr = get_target_expr_sfinae (expr, complain);
7113 if (expr != error_mark_node)
7114 {
7115 TARGET_EXPR_LIST_INIT_P (expr) = true;
7116 TARGET_EXPR_DIRECT_INIT_P (expr) = direct;
7117 }
7118 return expr;
7119 }
7120
7121 /* We don't know here whether EXPR is being used as an lvalue or
7122 rvalue, but we know it's read. */
7123 mark_exp_read (expr);
7124
7125 /* Pass LOOKUP_NO_CONVERSION so rvalue/base handling knows not to allow
7126 any more UDCs. */
7127 expr = build_over_call (cand, LOOKUP_NORMAL|LOOKUP_NO_CONVERSION,
7128 complain);
7129
7130 /* If this is a constructor or a function returning an aggr type,
7131 we need to build up a TARGET_EXPR. */
7132 if (DECL_CONSTRUCTOR_P (convfn))
7133 {
7134 expr = build_cplus_new (totype, expr, complain);
7135
7136 /* Remember that this was list-initialization. */
7137 if (convs->check_narrowing && expr != error_mark_node)
7138 TARGET_EXPR_LIST_INIT_P (expr) = true;
7139 }
7140
7141 return expr;
7142 }
7143 case ck_identity:
7144 if (BRACE_ENCLOSED_INITIALIZER_P (expr))
7145 {
7146 int nelts = CONSTRUCTOR_NELTS (expr);
7147 if (nelts == 0)
7148 expr = build_value_init (totype, complain);
7149 else if (nelts == 1)
7150 expr = CONSTRUCTOR_ELT (expr, 0)->value;
7151 else
7152 gcc_unreachable ();
7153 }
7154 expr = mark_use (expr, /*rvalue_p=*/!convs->rvaluedness_matches_p,
7155 /*read_p=*/true, UNKNOWN_LOCATION,
7156 /*reject_builtin=*/true);
7157
7158 if (type_unknown_p (expr))
7159 expr = instantiate_type (totype, expr, complain);
7160 if (expr == null_node
7161 && INTEGRAL_OR_UNSCOPED_ENUMERATION_TYPE_P (totype))
7162 /* If __null has been converted to an integer type, we do not want to
7163 continue to warn about uses of EXPR as an integer, rather than as a
7164 pointer. */
7165 expr = build_int_cst (totype, 0);
7166 return expr;
7167 case ck_ambig:
7168 /* We leave bad_p off ck_ambig because overload resolution considers
7169 it valid, it just fails when we try to perform it. So we need to
7170 check complain here, too. */
7171 if (complain & tf_error)
7172 {
7173 /* Call build_user_type_conversion again for the error. */
7174 int flags = (convs->need_temporary_p
7175 ? LOOKUP_IMPLICIT : LOOKUP_NORMAL);
7176 build_user_type_conversion (totype, convs->u.expr, flags, complain);
7177 gcc_assert (seen_error ());
7178 maybe_inform_about_fndecl_for_bogus_argument_init (fn, argnum);
7179 }
7180 return error_mark_node;
7181
7182 case ck_list:
7183 {
7184 /* Conversion to std::initializer_list<T>. */
7185 tree elttype = TREE_VEC_ELT (CLASSTYPE_TI_ARGS (totype), 0);
7186 unsigned len = CONSTRUCTOR_NELTS (expr);
7187 tree array;
7188
7189 if (len)
7190 {
7191 tree val; unsigned ix;
7192
7193 tree new_ctor = build_constructor (init_list_type_node, NULL);
7194
7195 /* Convert all the elements. */
7196 FOR_EACH_CONSTRUCTOR_VALUE (CONSTRUCTOR_ELTS (expr), ix, val)
7197 {
7198 tree sub = convert_like_real (convs->u.list[ix], val, fn,
7199 argnum, false, false, complain);
7200 if (sub == error_mark_node)
7201 return sub;
7202 if (!BRACE_ENCLOSED_INITIALIZER_P (val)
7203 && !check_narrowing (TREE_TYPE (sub), val, complain))
7204 return error_mark_node;
7205 CONSTRUCTOR_APPEND_ELT (CONSTRUCTOR_ELTS (new_ctor),
7206 NULL_TREE, sub);
7207 if (!TREE_CONSTANT (sub))
7208 TREE_CONSTANT (new_ctor) = false;
7209 }
7210 /* Build up the array. */
7211 elttype = cp_build_qualified_type
7212 (elttype, cp_type_quals (elttype) | TYPE_QUAL_CONST);
7213 array = build_array_of_n_type (elttype, len);
7214 array = finish_compound_literal (array, new_ctor, complain);
7215 /* Take the address explicitly rather than via decay_conversion
7216 to avoid the error about taking the address of a temporary. */
7217 array = cp_build_addr_expr (array, complain);
7218 }
7219 else
7220 array = nullptr_node;
7221
7222 array = cp_convert (build_pointer_type (elttype), array, complain);
7223 if (array == error_mark_node)
7224 return error_mark_node;
7225
7226 /* Build up the initializer_list object. Note: fail gracefully
7227 if the object cannot be completed because, for example, no
7228 definition is provided (c++/80956). */
7229 totype = complete_type_or_maybe_complain (totype, NULL_TREE, complain);
7230 if (!totype)
7231 return error_mark_node;
7232 tree field = next_initializable_field (TYPE_FIELDS (totype));
7233 vec<constructor_elt, va_gc> *vec = NULL;
7234 CONSTRUCTOR_APPEND_ELT (vec, field, array);
7235 field = next_initializable_field (DECL_CHAIN (field));
7236 CONSTRUCTOR_APPEND_ELT (vec, field, size_int (len));
7237 tree new_ctor = build_constructor (totype, vec);
7238 return get_target_expr_sfinae (new_ctor, complain);
7239 }
7240
7241 case ck_aggr:
7242 if (TREE_CODE (totype) == COMPLEX_TYPE)
7243 {
7244 tree real = CONSTRUCTOR_ELT (expr, 0)->value;
7245 tree imag = CONSTRUCTOR_ELT (expr, 1)->value;
7246 real = perform_implicit_conversion (TREE_TYPE (totype),
7247 real, complain);
7248 imag = perform_implicit_conversion (TREE_TYPE (totype),
7249 imag, complain);
7250 expr = build2 (COMPLEX_EXPR, totype, real, imag);
7251 return expr;
7252 }
7253 expr = reshape_init (totype, expr, complain);
7254 expr = get_target_expr_sfinae (digest_init (totype, expr, complain),
7255 complain);
7256 if (expr != error_mark_node)
7257 TARGET_EXPR_LIST_INIT_P (expr) = true;
7258 return expr;
7259
7260 default:
7261 break;
7262 };
7263
7264 expr = convert_like_real (next_conversion (convs), expr, fn, argnum,
7265 convs->kind == ck_ref_bind
7266 ? issue_conversion_warnings : false,
7267 c_cast_p, complain);
7268 if (expr == error_mark_node)
7269 return error_mark_node;
7270
7271 switch (convs->kind)
7272 {
7273 case ck_rvalue:
7274 expr = decay_conversion (expr, complain);
7275 if (expr == error_mark_node)
7276 {
7277 if (complain & tf_error)
7278 {
7279 auto_diagnostic_group d;
7280 maybe_print_user_conv_context (convs);
7281 maybe_inform_about_fndecl_for_bogus_argument_init (fn, argnum);
7282 }
7283 return error_mark_node;
7284 }
7285
7286 if (! MAYBE_CLASS_TYPE_P (totype))
7287 return expr;
7288
7289 /* Don't introduce copies when passing arguments along to the inherited
7290 constructor. */
7291 if (current_function_decl
7292 && flag_new_inheriting_ctors
7293 && DECL_INHERITED_CTOR (current_function_decl))
7294 return expr;
7295
7296 if (TREE_CODE (expr) == TARGET_EXPR
7297 && TARGET_EXPR_LIST_INIT_P (expr))
7298 /* Copy-list-initialization doesn't actually involve a copy. */
7299 return expr;
7300
7301 /* Fall through. */
7302 case ck_base:
7303 if (convs->kind == ck_base && !convs->need_temporary_p)
7304 {
7305 /* We are going to bind a reference directly to a base-class
7306 subobject of EXPR. */
7307 /* Build an expression for `*((base*) &expr)'. */
7308 expr = convert_to_base (expr, totype,
7309 !c_cast_p, /*nonnull=*/true, complain);
7310 return expr;
7311 }
7312
7313 /* Copy-initialization where the cv-unqualified version of the source
7314 type is the same class as, or a derived class of, the class of the
7315 destination [is treated as direct-initialization]. [dcl.init] */
7316 flags = LOOKUP_NORMAL;
7317 if (convs->user_conv_p)
7318 /* This conversion is being done in the context of a user-defined
7319 conversion (i.e. the second step of copy-initialization), so
7320 don't allow any more. */
7321 flags |= LOOKUP_NO_CONVERSION;
7322 else
7323 flags |= LOOKUP_ONLYCONVERTING;
7324 if (convs->rvaluedness_matches_p)
7325 /* standard_conversion got LOOKUP_PREFER_RVALUE. */
7326 flags |= LOOKUP_PREFER_RVALUE;
7327 expr = build_temp (expr, totype, flags, &diag_kind, complain);
7328 if (diag_kind && complain)
7329 {
7330 auto_diagnostic_group d;
7331 maybe_print_user_conv_context (convs);
7332 maybe_inform_about_fndecl_for_bogus_argument_init (fn, argnum);
7333 }
7334
7335 return build_cplus_new (totype, expr, complain);
7336
7337 case ck_ref_bind:
7338 {
7339 tree ref_type = totype;
7340
7341 if (convs->bad_p && !next_conversion (convs)->bad_p)
7342 {
7343 tree extype = TREE_TYPE (expr);
7344 auto_diagnostic_group d;
7345 if (TYPE_REF_IS_RVALUE (ref_type)
7346 && lvalue_p (expr))
7347 error_at (loc, "cannot bind rvalue reference of type %qH to "
7348 "lvalue of type %qI", totype, extype);
7349 else if (!TYPE_REF_IS_RVALUE (ref_type) && !lvalue_p (expr)
7350 && !CP_TYPE_CONST_NON_VOLATILE_P (TREE_TYPE (ref_type)))
7351 error_at (loc, "cannot bind non-const lvalue reference of "
7352 "type %qH to an rvalue of type %qI", totype, extype);
7353 else if (!reference_compatible_p (TREE_TYPE (totype), extype))
7354 error_at (loc, "binding reference of type %qH to %qI "
7355 "discards qualifiers", totype, extype);
7356 else
7357 gcc_unreachable ();
7358 maybe_print_user_conv_context (convs);
7359 maybe_inform_about_fndecl_for_bogus_argument_init (fn, argnum);
7360
7361 return error_mark_node;
7362 }
7363
7364 /* If necessary, create a temporary.
7365
7366 VA_ARG_EXPR and CONSTRUCTOR expressions are special cases
7367 that need temporaries, even when their types are reference
7368 compatible with the type of reference being bound, so the
7369 upcoming call to cp_build_addr_expr doesn't fail. */
7370 if (convs->need_temporary_p
7371 || TREE_CODE (expr) == CONSTRUCTOR
7372 || TREE_CODE (expr) == VA_ARG_EXPR)
7373 {
7374 /* Otherwise, a temporary of type "cv1 T1" is created and
7375 initialized from the initializer expression using the rules
7376 for a non-reference copy-initialization (8.5). */
7377
7378 tree type = TREE_TYPE (ref_type);
7379 cp_lvalue_kind lvalue = lvalue_kind (expr);
7380
7381 gcc_assert (same_type_ignoring_top_level_qualifiers_p
7382 (type, next_conversion (convs)->type));
7383 if (!CP_TYPE_CONST_NON_VOLATILE_P (type)
7384 && !TYPE_REF_IS_RVALUE (ref_type))
7385 {
7386 /* If the reference is volatile or non-const, we
7387 cannot create a temporary. */
7388 if (lvalue & clk_bitfield)
7389 error_at (loc, "cannot bind bit-field %qE to %qT",
7390 expr, ref_type);
7391 else if (lvalue & clk_packed)
7392 error_at (loc, "cannot bind packed field %qE to %qT",
7393 expr, ref_type);
7394 else
7395 error_at (loc, "cannot bind rvalue %qE to %qT",
7396 expr, ref_type);
7397 return error_mark_node;
7398 }
7399 /* If the source is a packed field, and we must use a copy
7400 constructor, then building the target expr will require
7401 binding the field to the reference parameter to the
7402 copy constructor, and we'll end up with an infinite
7403 loop. If we can use a bitwise copy, then we'll be
7404 OK. */
7405 if ((lvalue & clk_packed)
7406 && CLASS_TYPE_P (type)
7407 && type_has_nontrivial_copy_init (type))
7408 {
7409 error_at (loc, "cannot bind packed field %qE to %qT",
7410 expr, ref_type);
7411 return error_mark_node;
7412 }
7413 if (lvalue & clk_bitfield)
7414 {
7415 expr = convert_bitfield_to_declared_type (expr);
7416 expr = fold_convert (type, expr);
7417 }
7418 expr = build_target_expr_with_type (expr, type, complain);
7419 }
7420
7421 /* Take the address of the thing to which we will bind the
7422 reference. */
7423 expr = cp_build_addr_expr (expr, complain);
7424 if (expr == error_mark_node)
7425 return error_mark_node;
7426
7427 /* Convert it to a pointer to the type referred to by the
7428 reference. This will adjust the pointer if a derived to
7429 base conversion is being performed. */
7430 expr = cp_convert (build_pointer_type (TREE_TYPE (ref_type)),
7431 expr, complain);
7432 /* Convert the pointer to the desired reference type. */
7433 return build_nop (ref_type, expr);
7434 }
7435
7436 case ck_lvalue:
7437 return decay_conversion (expr, complain);
7438
7439 case ck_fnptr:
7440 /* ??? Should the address of a transaction-safe pointer point to the TM
7441 clone, and this conversion look up the primary function? */
7442 return build_nop (totype, expr);
7443
7444 case ck_qual:
7445 /* Warn about deprecated conversion if appropriate. */
7446 if (complain & tf_warning)
7447 string_conv_p (totype, expr, 1);
7448 break;
7449
7450 case ck_ptr:
7451 if (convs->base_p)
7452 expr = convert_to_base (expr, totype, !c_cast_p,
7453 /*nonnull=*/false, complain);
7454 return build_nop (totype, expr);
7455
7456 case ck_pmem:
7457 return convert_ptrmem (totype, expr, /*allow_inverse_p=*/false,
7458 c_cast_p, complain);
7459
7460 default:
7461 break;
7462 }
7463
7464 if (convs->check_narrowing
7465 && !check_narrowing (totype, expr, complain,
7466 convs->check_narrowing_const_only))
7467 return error_mark_node;
7468
7469 warning_sentinel w (warn_zero_as_null_pointer_constant);
7470 if (issue_conversion_warnings)
7471 expr = cp_convert_and_check (totype, expr, complain);
7472 else
7473 expr = cp_convert (totype, expr, complain);
7474
7475 return expr;
7476 }
7477
7478 /* ARG is being passed to a varargs function. Perform any conversions
7479 required. Return the converted value. */
7480
7481 tree
7482 convert_arg_to_ellipsis (tree arg, tsubst_flags_t complain)
7483 {
7484 tree arg_type;
7485 location_t loc = cp_expr_loc_or_input_loc (arg);
7486
7487 /* [expr.call]
7488
7489 The lvalue-to-rvalue, array-to-pointer, and function-to-pointer
7490 standard conversions are performed. */
7491 arg = decay_conversion (arg, complain);
7492 arg_type = TREE_TYPE (arg);
7493 /* [expr.call]
7494
7495 If the argument has integral or enumeration type that is subject
7496 to the integral promotions (_conv.prom_), or a floating-point
7497 type that is subject to the floating-point promotion
7498 (_conv.fpprom_), the value of the argument is converted to the
7499 promoted type before the call. */
7500 if (TREE_CODE (arg_type) == REAL_TYPE
7501 && (TYPE_PRECISION (arg_type)
7502 < TYPE_PRECISION (double_type_node))
7503 && !DECIMAL_FLOAT_MODE_P (TYPE_MODE (arg_type)))
7504 {
7505 if ((complain & tf_warning)
7506 && warn_double_promotion && !c_inhibit_evaluation_warnings)
7507 warning_at (loc, OPT_Wdouble_promotion,
7508 "implicit conversion from %qH to %qI when passing "
7509 "argument to function",
7510 arg_type, double_type_node);
7511 arg = convert_to_real_nofold (double_type_node, arg);
7512 }
7513 else if (NULLPTR_TYPE_P (arg_type))
7514 arg = null_pointer_node;
7515 else if (INTEGRAL_OR_ENUMERATION_TYPE_P (arg_type))
7516 {
7517 if (SCOPED_ENUM_P (arg_type))
7518 {
7519 tree prom = cp_convert (ENUM_UNDERLYING_TYPE (arg_type), arg,
7520 complain);
7521 prom = cp_perform_integral_promotions (prom, complain);
7522 if (abi_version_crosses (6)
7523 && TYPE_MODE (TREE_TYPE (prom)) != TYPE_MODE (arg_type)
7524 && (complain & tf_warning))
7525 warning_at (loc, OPT_Wabi, "scoped enum %qT passed through %<...%>"
7526 "as %qT before %<-fabi-version=6%>, %qT after",
7527 arg_type,
7528 TREE_TYPE (prom), ENUM_UNDERLYING_TYPE (arg_type));
7529 if (!abi_version_at_least (6))
7530 arg = prom;
7531 }
7532 else
7533 arg = cp_perform_integral_promotions (arg, complain);
7534 }
7535
7536 arg = require_complete_type_sfinae (arg, complain);
7537 arg_type = TREE_TYPE (arg);
7538
7539 if (arg != error_mark_node
7540 /* In a template (or ill-formed code), we can have an incomplete type
7541 even after require_complete_type_sfinae, in which case we don't know
7542 whether it has trivial copy or not. */
7543 && COMPLETE_TYPE_P (arg_type)
7544 && !cp_unevaluated_operand)
7545 {
7546 /* [expr.call] 5.2.2/7:
7547 Passing a potentially-evaluated argument of class type (Clause 9)
7548 with a non-trivial copy constructor or a non-trivial destructor
7549 with no corresponding parameter is conditionally-supported, with
7550 implementation-defined semantics.
7551
7552 We support it as pass-by-invisible-reference, just like a normal
7553 value parameter.
7554
7555 If the call appears in the context of a sizeof expression,
7556 it is not potentially-evaluated. */
7557 if (type_has_nontrivial_copy_init (arg_type)
7558 || TYPE_HAS_NONTRIVIAL_DESTRUCTOR (arg_type))
7559 {
7560 arg = force_rvalue (arg, complain);
7561 if (complain & tf_warning)
7562 warning (OPT_Wconditionally_supported,
7563 "passing objects of non-trivially-copyable "
7564 "type %q#T through %<...%> is conditionally supported",
7565 arg_type);
7566 return build1 (ADDR_EXPR, build_reference_type (arg_type), arg);
7567 }
7568 /* Build up a real lvalue-to-rvalue conversion in case the
7569 copy constructor is trivial but not callable. */
7570 else if (CLASS_TYPE_P (arg_type))
7571 force_rvalue (arg, complain);
7572
7573 }
7574
7575 return arg;
7576 }
7577
7578 /* va_arg (EXPR, TYPE) is a builtin. Make sure it is not abused. */
7579
7580 tree
7581 build_x_va_arg (location_t loc, tree expr, tree type)
7582 {
7583 if (processing_template_decl)
7584 {
7585 tree r = build_min (VA_ARG_EXPR, type, expr);
7586 SET_EXPR_LOCATION (r, loc);
7587 return r;
7588 }
7589
7590 type = complete_type_or_else (type, NULL_TREE);
7591
7592 if (expr == error_mark_node || !type)
7593 return error_mark_node;
7594
7595 expr = mark_lvalue_use (expr);
7596
7597 if (TYPE_REF_P (type))
7598 {
7599 error ("cannot receive reference type %qT through %<...%>", type);
7600 return error_mark_node;
7601 }
7602
7603 if (type_has_nontrivial_copy_init (type)
7604 || TYPE_HAS_NONTRIVIAL_DESTRUCTOR (type))
7605 {
7606 /* conditionally-supported behavior [expr.call] 5.2.2/7. Let's treat
7607 it as pass by invisible reference. */
7608 warning_at (loc, OPT_Wconditionally_supported,
7609 "receiving objects of non-trivially-copyable type %q#T "
7610 "through %<...%> is conditionally-supported", type);
7611
7612 tree ref = cp_build_reference_type (type, false);
7613 expr = build_va_arg (loc, expr, ref);
7614 return convert_from_reference (expr);
7615 }
7616
7617 tree ret = build_va_arg (loc, expr, type);
7618 if (CLASS_TYPE_P (type))
7619 /* Wrap the VA_ARG_EXPR in a TARGET_EXPR now so other code doesn't need to
7620 know how to handle it. */
7621 ret = get_target_expr (ret);
7622 return ret;
7623 }
7624
7625 /* TYPE has been given to va_arg. Apply the default conversions which
7626 would have happened when passed via ellipsis. Return the promoted
7627 type, or the passed type if there is no change. */
7628
7629 tree
7630 cxx_type_promotes_to (tree type)
7631 {
7632 tree promote;
7633
7634 /* Perform the array-to-pointer and function-to-pointer
7635 conversions. */
7636 type = type_decays_to (type);
7637
7638 promote = type_promotes_to (type);
7639 if (same_type_p (type, promote))
7640 promote = type;
7641
7642 return promote;
7643 }
7644
7645 /* ARG is a default argument expression being passed to a parameter of
7646 the indicated TYPE, which is a parameter to FN. PARMNUM is the
7647 zero-based argument number. Do any required conversions. Return
7648 the converted value. */
7649
7650 static GTY(()) vec<tree, va_gc> *default_arg_context;
7651 void
7652 push_defarg_context (tree fn)
7653 { vec_safe_push (default_arg_context, fn); }
7654
7655 void
7656 pop_defarg_context (void)
7657 { default_arg_context->pop (); }
7658
7659 tree
7660 convert_default_arg (tree type, tree arg, tree fn, int parmnum,
7661 tsubst_flags_t complain)
7662 {
7663 int i;
7664 tree t;
7665
7666 /* See through clones. */
7667 fn = DECL_ORIGIN (fn);
7668 /* And inheriting ctors. */
7669 if (flag_new_inheriting_ctors)
7670 fn = strip_inheriting_ctors (fn);
7671
7672 /* Detect recursion. */
7673 FOR_EACH_VEC_SAFE_ELT (default_arg_context, i, t)
7674 if (t == fn)
7675 {
7676 if (complain & tf_error)
7677 error ("recursive evaluation of default argument for %q#D", fn);
7678 return error_mark_node;
7679 }
7680
7681 /* If the ARG is an unparsed default argument expression, the
7682 conversion cannot be performed. */
7683 if (TREE_CODE (arg) == DEFERRED_PARSE)
7684 {
7685 if (complain & tf_error)
7686 error ("call to %qD uses the default argument for parameter %P, which "
7687 "is not yet defined", fn, parmnum);
7688 return error_mark_node;
7689 }
7690
7691 push_defarg_context (fn);
7692
7693 if (fn && DECL_TEMPLATE_INFO (fn))
7694 arg = tsubst_default_argument (fn, parmnum, type, arg, complain);
7695
7696 /* Due to:
7697
7698 [dcl.fct.default]
7699
7700 The names in the expression are bound, and the semantic
7701 constraints are checked, at the point where the default
7702 expressions appears.
7703
7704 we must not perform access checks here. */
7705 push_deferring_access_checks (dk_no_check);
7706 /* We must make a copy of ARG, in case subsequent processing
7707 alters any part of it. */
7708 arg = break_out_target_exprs (arg, /*clear location*/true);
7709
7710 arg = convert_for_initialization (0, type, arg, LOOKUP_IMPLICIT,
7711 ICR_DEFAULT_ARGUMENT, fn, parmnum,
7712 complain);
7713 arg = convert_for_arg_passing (type, arg, complain);
7714 pop_deferring_access_checks();
7715
7716 pop_defarg_context ();
7717
7718 return arg;
7719 }
7720
7721 /* Returns the type which will really be used for passing an argument of
7722 type TYPE. */
7723
7724 tree
7725 type_passed_as (tree type)
7726 {
7727 /* Pass classes with copy ctors by invisible reference. */
7728 if (TREE_ADDRESSABLE (type))
7729 {
7730 type = build_reference_type (type);
7731 /* There are no other pointers to this temporary. */
7732 type = cp_build_qualified_type (type, TYPE_QUAL_RESTRICT);
7733 }
7734 else if (targetm.calls.promote_prototypes (NULL_TREE)
7735 && INTEGRAL_TYPE_P (type)
7736 && COMPLETE_TYPE_P (type)
7737 && tree_int_cst_lt (TYPE_SIZE (type), TYPE_SIZE (integer_type_node)))
7738 type = integer_type_node;
7739
7740 return type;
7741 }
7742
7743 /* Actually perform the appropriate conversion. */
7744
7745 tree
7746 convert_for_arg_passing (tree type, tree val, tsubst_flags_t complain)
7747 {
7748 tree bitfield_type;
7749
7750 /* If VAL is a bitfield, then -- since it has already been converted
7751 to TYPE -- it cannot have a precision greater than TYPE.
7752
7753 If it has a smaller precision, we must widen it here. For
7754 example, passing "int f:3;" to a function expecting an "int" will
7755 not result in any conversion before this point.
7756
7757 If the precision is the same we must not risk widening. For
7758 example, the COMPONENT_REF for a 32-bit "long long" bitfield will
7759 often have type "int", even though the C++ type for the field is
7760 "long long". If the value is being passed to a function
7761 expecting an "int", then no conversions will be required. But,
7762 if we call convert_bitfield_to_declared_type, the bitfield will
7763 be converted to "long long". */
7764 bitfield_type = is_bitfield_expr_with_lowered_type (val);
7765 if (bitfield_type
7766 && TYPE_PRECISION (TREE_TYPE (val)) < TYPE_PRECISION (type))
7767 val = convert_to_integer_nofold (TYPE_MAIN_VARIANT (bitfield_type), val);
7768
7769 if (val == error_mark_node)
7770 ;
7771 /* Pass classes with copy ctors by invisible reference. */
7772 else if (TREE_ADDRESSABLE (type))
7773 val = build1 (ADDR_EXPR, build_reference_type (type), val);
7774 else if (targetm.calls.promote_prototypes (NULL_TREE)
7775 && INTEGRAL_TYPE_P (type)
7776 && COMPLETE_TYPE_P (type)
7777 && tree_int_cst_lt (TYPE_SIZE (type), TYPE_SIZE (integer_type_node)))
7778 val = cp_perform_integral_promotions (val, complain);
7779 if (complain & tf_warning)
7780 {
7781 if (warn_suggest_attribute_format)
7782 {
7783 tree rhstype = TREE_TYPE (val);
7784 const enum tree_code coder = TREE_CODE (rhstype);
7785 const enum tree_code codel = TREE_CODE (type);
7786 if ((codel == POINTER_TYPE || codel == REFERENCE_TYPE)
7787 && coder == codel
7788 && check_missing_format_attribute (type, rhstype))
7789 warning (OPT_Wsuggest_attribute_format,
7790 "argument of function call might be a candidate "
7791 "for a format attribute");
7792 }
7793 maybe_warn_parm_abi (type, cp_expr_loc_or_input_loc (val));
7794 }
7795
7796 if (complain & tf_warning)
7797 warn_for_address_or_pointer_of_packed_member (type, val);
7798
7799 return val;
7800 }
7801
7802 /* Returns non-zero iff FN is a function with magic varargs, i.e. ones for
7803 which just decay_conversion or no conversions at all should be done.
7804 This is true for some builtins which don't act like normal functions.
7805 Return 2 if no conversions at all should be done, 1 if just
7806 decay_conversion. Return 3 for special treatment of the 3rd argument
7807 for __builtin_*_overflow_p. */
7808
7809 int
7810 magic_varargs_p (tree fn)
7811 {
7812 if (DECL_BUILT_IN_CLASS (fn) == BUILT_IN_NORMAL)
7813 switch (DECL_FUNCTION_CODE (fn))
7814 {
7815 case BUILT_IN_CLASSIFY_TYPE:
7816 case BUILT_IN_CONSTANT_P:
7817 case BUILT_IN_NEXT_ARG:
7818 case BUILT_IN_VA_START:
7819 return 1;
7820
7821 case BUILT_IN_ADD_OVERFLOW_P:
7822 case BUILT_IN_SUB_OVERFLOW_P:
7823 case BUILT_IN_MUL_OVERFLOW_P:
7824 return 3;
7825
7826 default:;
7827 return lookup_attribute ("type generic",
7828 TYPE_ATTRIBUTES (TREE_TYPE (fn))) != 0;
7829 }
7830
7831 return 0;
7832 }
7833
7834 /* Returns the decl of the dispatcher function if FN is a function version. */
7835
7836 tree
7837 get_function_version_dispatcher (tree fn)
7838 {
7839 tree dispatcher_decl = NULL;
7840
7841 gcc_assert (TREE_CODE (fn) == FUNCTION_DECL
7842 && DECL_FUNCTION_VERSIONED (fn));
7843
7844 gcc_assert (targetm.get_function_versions_dispatcher);
7845 dispatcher_decl = targetm.get_function_versions_dispatcher (fn);
7846
7847 if (dispatcher_decl == NULL)
7848 {
7849 error_at (input_location, "use of multiversioned function "
7850 "without a default");
7851 return NULL;
7852 }
7853
7854 retrofit_lang_decl (dispatcher_decl);
7855 gcc_assert (dispatcher_decl != NULL);
7856 return dispatcher_decl;
7857 }
7858
7859 /* fn is a function version dispatcher that is marked used. Mark all the
7860 semantically identical function versions it will dispatch as used. */
7861
7862 void
7863 mark_versions_used (tree fn)
7864 {
7865 struct cgraph_node *node;
7866 struct cgraph_function_version_info *node_v;
7867 struct cgraph_function_version_info *it_v;
7868
7869 gcc_assert (TREE_CODE (fn) == FUNCTION_DECL);
7870
7871 node = cgraph_node::get (fn);
7872 if (node == NULL)
7873 return;
7874
7875 gcc_assert (node->dispatcher_function);
7876
7877 node_v = node->function_version ();
7878 if (node_v == NULL)
7879 return;
7880
7881 /* All semantically identical versions are chained. Traverse and mark each
7882 one of them as used. */
7883 it_v = node_v->next;
7884 while (it_v != NULL)
7885 {
7886 mark_used (it_v->this_node->decl);
7887 it_v = it_v->next;
7888 }
7889 }
7890
7891 /* Build a call to "the copy constructor" for the type of A, even if it
7892 wouldn't be selected by normal overload resolution. Used for
7893 diagnostics. */
7894
7895 static tree
7896 call_copy_ctor (tree a, tsubst_flags_t complain)
7897 {
7898 tree ctype = TYPE_MAIN_VARIANT (TREE_TYPE (a));
7899 tree binfo = TYPE_BINFO (ctype);
7900 tree copy = get_copy_ctor (ctype, complain);
7901 copy = build_baselink (binfo, binfo, copy, NULL_TREE);
7902 tree ob = build_dummy_object (ctype);
7903 releasing_vec args (make_tree_vector_single (a));
7904 tree r = build_new_method_call (ob, copy, &args, NULL_TREE,
7905 LOOKUP_NORMAL, NULL, complain);
7906 return r;
7907 }
7908
7909 /* Return true iff T refers to a base field. */
7910
7911 static bool
7912 is_base_field_ref (tree t)
7913 {
7914 STRIP_NOPS (t);
7915 if (TREE_CODE (t) == ADDR_EXPR)
7916 t = TREE_OPERAND (t, 0);
7917 if (TREE_CODE (t) == COMPONENT_REF)
7918 t = TREE_OPERAND (t, 1);
7919 if (TREE_CODE (t) == FIELD_DECL)
7920 return DECL_FIELD_IS_BASE (t);
7921 return false;
7922 }
7923
7924 /* We can't elide a copy from a function returning by value to a base
7925 subobject, as the callee might clobber tail padding. Return true iff this
7926 could be that case. */
7927
7928 static bool
7929 unsafe_copy_elision_p (tree target, tree exp)
7930 {
7931 /* Copy elision only happens with a TARGET_EXPR. */
7932 if (TREE_CODE (exp) != TARGET_EXPR)
7933 return false;
7934 tree type = TYPE_MAIN_VARIANT (TREE_TYPE (exp));
7935 /* It's safe to elide the copy for a class with no tail padding. */
7936 if (tree_int_cst_equal (TYPE_SIZE (type), CLASSTYPE_SIZE (type)))
7937 return false;
7938 /* It's safe to elide the copy if we aren't initializing a base object. */
7939 if (!is_base_field_ref (target))
7940 return false;
7941 tree init = TARGET_EXPR_INITIAL (exp);
7942 /* build_compound_expr pushes COMPOUND_EXPR inside TARGET_EXPR. */
7943 while (TREE_CODE (init) == COMPOUND_EXPR)
7944 init = TREE_OPERAND (init, 1);
7945 if (TREE_CODE (init) == COND_EXPR)
7946 {
7947 /* We'll end up copying from each of the arms of the COND_EXPR directly
7948 into the target, so look at them. */
7949 if (tree op = TREE_OPERAND (init, 1))
7950 if (unsafe_copy_elision_p (target, op))
7951 return true;
7952 return unsafe_copy_elision_p (target, TREE_OPERAND (init, 2));
7953 }
7954 return (TREE_CODE (init) == AGGR_INIT_EXPR
7955 && !AGGR_INIT_VIA_CTOR_P (init));
7956 }
7957
7958 /* True iff C is a conversion that binds a reference to a prvalue. */
7959
7960 static bool
7961 conv_binds_ref_to_prvalue (conversion *c)
7962 {
7963 if (c->kind != ck_ref_bind)
7964 return false;
7965 if (c->need_temporary_p)
7966 return true;
7967
7968 c = next_conversion (c);
7969
7970 if (c->kind == ck_rvalue)
7971 return true;
7972 if (c->kind == ck_user && !TYPE_REF_P (c->type))
7973 return true;
7974 if (c->kind == ck_identity && c->u.expr
7975 && TREE_CODE (c->u.expr) == TARGET_EXPR)
7976 return true;
7977
7978 return false;
7979 }
7980
7981 /* Call the trivial destructor for INSTANCE, which can be either an lvalue of
7982 class type or a pointer to class type. */
7983
7984 tree
7985 build_trivial_dtor_call (tree instance)
7986 {
7987 gcc_assert (!is_dummy_object (instance));
7988
7989 if (!flag_lifetime_dse)
7990 {
7991 no_clobber:
7992 return fold_convert (void_type_node, instance);
7993 }
7994
7995 if (INDIRECT_TYPE_P (TREE_TYPE (instance)))
7996 {
7997 if (VOID_TYPE_P (TREE_TYPE (TREE_TYPE (instance))))
7998 goto no_clobber;
7999 instance = cp_build_fold_indirect_ref (instance);
8000 }
8001
8002 /* A trivial destructor should still clobber the object. */
8003 tree clobber = build_clobber (TREE_TYPE (instance));
8004 return build2 (MODIFY_EXPR, void_type_node,
8005 instance, clobber);
8006 }
8007
8008 /* Subroutine of the various build_*_call functions. Overload resolution
8009 has chosen a winning candidate CAND; build up a CALL_EXPR accordingly.
8010 ARGS is a TREE_LIST of the unconverted arguments to the call. FLAGS is a
8011 bitmask of various LOOKUP_* flags which apply to the call itself. */
8012
8013 static tree
8014 build_over_call (struct z_candidate *cand, int flags, tsubst_flags_t complain)
8015 {
8016 tree fn = cand->fn;
8017 const vec<tree, va_gc> *args = cand->args;
8018 tree first_arg = cand->first_arg;
8019 conversion **convs = cand->convs;
8020 conversion *conv;
8021 tree parm = TYPE_ARG_TYPES (TREE_TYPE (fn));
8022 int parmlen;
8023 tree val;
8024 int i = 0;
8025 int j = 0;
8026 unsigned int arg_index = 0;
8027 int is_method = 0;
8028 int nargs;
8029 tree *argarray;
8030 bool already_used = false;
8031
8032 /* In a template, there is no need to perform all of the work that
8033 is normally done. We are only interested in the type of the call
8034 expression, i.e., the return type of the function. Any semantic
8035 errors will be deferred until the template is instantiated. */
8036 if (processing_template_decl)
8037 {
8038 tree expr, addr;
8039 tree return_type;
8040 const tree *argarray;
8041 unsigned int nargs;
8042
8043 if (undeduced_auto_decl (fn))
8044 mark_used (fn, complain);
8045 else
8046 /* Otherwise set TREE_USED for the benefit of -Wunused-function.
8047 See PR80598. */
8048 TREE_USED (fn) = 1;
8049
8050 return_type = TREE_TYPE (TREE_TYPE (fn));
8051 nargs = vec_safe_length (args);
8052 if (first_arg == NULL_TREE)
8053 argarray = args->address ();
8054 else
8055 {
8056 tree *alcarray;
8057 unsigned int ix;
8058 tree arg;
8059
8060 ++nargs;
8061 alcarray = XALLOCAVEC (tree, nargs);
8062 alcarray[0] = build_this (first_arg);
8063 FOR_EACH_VEC_SAFE_ELT (args, ix, arg)
8064 alcarray[ix + 1] = arg;
8065 argarray = alcarray;
8066 }
8067
8068 addr = build_addr_func (fn, complain);
8069 if (addr == error_mark_node)
8070 return error_mark_node;
8071 expr = build_call_array_loc (input_location, return_type,
8072 addr, nargs, argarray);
8073 if (TREE_THIS_VOLATILE (fn) && cfun)
8074 current_function_returns_abnormally = 1;
8075 return convert_from_reference (expr);
8076 }
8077
8078 /* Give any warnings we noticed during overload resolution. */
8079 if (cand->warnings && (complain & tf_warning))
8080 {
8081 struct candidate_warning *w;
8082 for (w = cand->warnings; w; w = w->next)
8083 joust (cand, w->loser, 1, complain);
8084 }
8085
8086 /* Core issue 2327: P0135 doesn't say how to handle the case where the
8087 argument to the copy constructor ends up being a prvalue after
8088 conversion. Let's do the normal processing, but pretend we aren't
8089 actually using the copy constructor. */
8090 bool force_elide = false;
8091 if (cxx_dialect >= cxx17
8092 && cand->num_convs == 1
8093 && DECL_COMPLETE_CONSTRUCTOR_P (fn)
8094 && (DECL_COPY_CONSTRUCTOR_P (fn)
8095 || DECL_MOVE_CONSTRUCTOR_P (fn))
8096 && conv_binds_ref_to_prvalue (convs[0]))
8097 {
8098 force_elide = true;
8099 goto not_really_used;
8100 }
8101
8102 /* OK, we're actually calling this inherited constructor; set its deletedness
8103 appropriately. We can get away with doing this here because calling is
8104 the only way to refer to a constructor. */
8105 if (DECL_INHERITED_CTOR (fn))
8106 deduce_inheriting_ctor (fn);
8107
8108 /* Make =delete work with SFINAE. */
8109 if (DECL_DELETED_FN (fn))
8110 {
8111 if (complain & tf_error)
8112 mark_used (fn);
8113 return error_mark_node;
8114 }
8115
8116 if (DECL_FUNCTION_MEMBER_P (fn))
8117 {
8118 tree access_fn;
8119 /* If FN is a template function, two cases must be considered.
8120 For example:
8121
8122 struct A {
8123 protected:
8124 template <class T> void f();
8125 };
8126 template <class T> struct B {
8127 protected:
8128 void g();
8129 };
8130 struct C : A, B<int> {
8131 using A::f; // #1
8132 using B<int>::g; // #2
8133 };
8134
8135 In case #1 where `A::f' is a member template, DECL_ACCESS is
8136 recorded in the primary template but not in its specialization.
8137 We check access of FN using its primary template.
8138
8139 In case #2, where `B<int>::g' has a DECL_TEMPLATE_INFO simply
8140 because it is a member of class template B, DECL_ACCESS is
8141 recorded in the specialization `B<int>::g'. We cannot use its
8142 primary template because `B<T>::g' and `B<int>::g' may have
8143 different access. */
8144 if (DECL_TEMPLATE_INFO (fn)
8145 && DECL_MEMBER_TEMPLATE_P (DECL_TI_TEMPLATE (fn)))
8146 access_fn = DECL_TI_TEMPLATE (fn);
8147 else
8148 access_fn = fn;
8149 if (!perform_or_defer_access_check (cand->access_path, access_fn,
8150 fn, complain))
8151 return error_mark_node;
8152 }
8153
8154 /* If we're checking for implicit delete, don't bother with argument
8155 conversions. */
8156 if (flags & LOOKUP_SPECULATIVE)
8157 {
8158 if (cand->viable == 1)
8159 return fn;
8160 else if (!(complain & tf_error))
8161 /* Reject bad conversions now. */
8162 return error_mark_node;
8163 /* else continue to get conversion error. */
8164 }
8165
8166 not_really_used:
8167
8168 /* N3276 magic doesn't apply to nested calls. */
8169 tsubst_flags_t decltype_flag = (complain & tf_decltype);
8170 complain &= ~tf_decltype;
8171 /* No-Cleanup doesn't apply to nested calls either. */
8172 tsubst_flags_t no_cleanup_complain = complain;
8173 complain &= ~tf_no_cleanup;
8174
8175 /* Find maximum size of vector to hold converted arguments. */
8176 parmlen = list_length (parm);
8177 nargs = vec_safe_length (args) + (first_arg != NULL_TREE ? 1 : 0);
8178 if (parmlen > nargs)
8179 nargs = parmlen;
8180 argarray = XALLOCAVEC (tree, nargs);
8181
8182 /* The implicit parameters to a constructor are not considered by overload
8183 resolution, and must be of the proper type. */
8184 if (DECL_CONSTRUCTOR_P (fn))
8185 {
8186 tree object_arg;
8187 if (first_arg != NULL_TREE)
8188 {
8189 object_arg = first_arg;
8190 first_arg = NULL_TREE;
8191 }
8192 else
8193 {
8194 object_arg = (*args)[arg_index];
8195 ++arg_index;
8196 }
8197 argarray[j++] = build_this (object_arg);
8198 parm = TREE_CHAIN (parm);
8199 /* We should never try to call the abstract constructor. */
8200 gcc_assert (!DECL_HAS_IN_CHARGE_PARM_P (fn));
8201
8202 if (DECL_HAS_VTT_PARM_P (fn))
8203 {
8204 argarray[j++] = (*args)[arg_index];
8205 ++arg_index;
8206 parm = TREE_CHAIN (parm);
8207 }
8208
8209 if (flags & LOOKUP_PREFER_RVALUE)
8210 {
8211 /* The implicit move specified in 15.8.3/3 fails "...if the type of
8212 the first parameter of the selected constructor is not an rvalue
8213 reference to the object's type (possibly cv-qualified)...." */
8214 gcc_assert (!(complain & tf_error));
8215 tree ptype = convs[0]->type;
8216 if (!TYPE_REF_P (ptype)
8217 || !TYPE_REF_IS_RVALUE (ptype)
8218 || CONVERSION_RANK (convs[0]) > cr_exact)
8219 return error_mark_node;
8220 }
8221 }
8222 /* Bypass access control for 'this' parameter. */
8223 else if (TREE_CODE (TREE_TYPE (fn)) == METHOD_TYPE)
8224 {
8225 tree parmtype = TREE_VALUE (parm);
8226 tree arg = build_this (first_arg != NULL_TREE
8227 ? first_arg
8228 : (*args)[arg_index]);
8229 tree argtype = TREE_TYPE (arg);
8230 tree converted_arg;
8231 tree base_binfo;
8232
8233 if (arg == error_mark_node)
8234 return error_mark_node;
8235
8236 if (convs[i]->bad_p)
8237 {
8238 if (complain & tf_error)
8239 {
8240 auto_diagnostic_group d;
8241 if (permerror (input_location, "passing %qT as %<this%> "
8242 "argument discards qualifiers",
8243 TREE_TYPE (argtype)))
8244 inform (DECL_SOURCE_LOCATION (fn), " in call to %qD", fn);
8245 }
8246 else
8247 return error_mark_node;
8248 }
8249
8250 /* Optimize away vtable lookup if we know that this
8251 function can't be overridden. We need to check if
8252 the context and the type where we found fn are the same,
8253 actually FN might be defined in a different class
8254 type because of a using-declaration. In this case, we
8255 do not want to perform a non-virtual call. Note that
8256 resolves_to_fixed_type_p checks CLASSTYPE_FINAL too. */
8257 if (DECL_FINAL_P (fn)
8258 || (resolves_to_fixed_type_p (arg, 0)
8259 && same_type_ignoring_top_level_qualifiers_p
8260 (DECL_CONTEXT (fn), BINFO_TYPE (cand->conversion_path))))
8261 flags |= LOOKUP_NONVIRTUAL;
8262
8263 /* [class.mfct.nonstatic]: If a nonstatic member function of a class
8264 X is called for an object that is not of type X, or of a type
8265 derived from X, the behavior is undefined.
8266
8267 So we can assume that anything passed as 'this' is non-null, and
8268 optimize accordingly. */
8269 gcc_assert (TYPE_PTR_P (parmtype));
8270 /* Convert to the base in which the function was declared. */
8271 gcc_assert (cand->conversion_path != NULL_TREE);
8272 converted_arg = build_base_path (PLUS_EXPR,
8273 arg,
8274 cand->conversion_path,
8275 1, complain);
8276 /* Check that the base class is accessible. */
8277 if (!accessible_base_p (TREE_TYPE (argtype),
8278 BINFO_TYPE (cand->conversion_path), true))
8279 {
8280 if (complain & tf_error)
8281 error ("%qT is not an accessible base of %qT",
8282 BINFO_TYPE (cand->conversion_path),
8283 TREE_TYPE (argtype));
8284 else
8285 return error_mark_node;
8286 }
8287 /* If fn was found by a using declaration, the conversion path
8288 will be to the derived class, not the base declaring fn. We
8289 must convert from derived to base. */
8290 base_binfo = lookup_base (TREE_TYPE (TREE_TYPE (converted_arg)),
8291 TREE_TYPE (parmtype), ba_unique,
8292 NULL, complain);
8293 converted_arg = build_base_path (PLUS_EXPR, converted_arg,
8294 base_binfo, 1, complain);
8295
8296 argarray[j++] = converted_arg;
8297 parm = TREE_CHAIN (parm);
8298 if (first_arg != NULL_TREE)
8299 first_arg = NULL_TREE;
8300 else
8301 ++arg_index;
8302 ++i;
8303 is_method = 1;
8304 }
8305
8306 gcc_assert (first_arg == NULL_TREE);
8307 for (; arg_index < vec_safe_length (args) && parm;
8308 parm = TREE_CHAIN (parm), ++arg_index, ++i)
8309 {
8310 tree type = TREE_VALUE (parm);
8311 tree arg = (*args)[arg_index];
8312 bool conversion_warning = true;
8313
8314 conv = convs[i];
8315
8316 /* If the argument is NULL and used to (implicitly) instantiate a
8317 template function (and bind one of the template arguments to
8318 the type of 'long int'), we don't want to warn about passing NULL
8319 to non-pointer argument.
8320 For example, if we have this template function:
8321
8322 template<typename T> void func(T x) {}
8323
8324 we want to warn (when -Wconversion is enabled) in this case:
8325
8326 void foo() {
8327 func<int>(NULL);
8328 }
8329
8330 but not in this case:
8331
8332 void foo() {
8333 func(NULL);
8334 }
8335 */
8336 if (null_node_p (arg)
8337 && DECL_TEMPLATE_INFO (fn)
8338 && cand->template_decl
8339 && !(flags & LOOKUP_EXPLICIT_TMPL_ARGS))
8340 conversion_warning = false;
8341
8342 /* Set user_conv_p on the argument conversions, so rvalue/base handling
8343 knows not to allow any more UDCs. This needs to happen after we
8344 process cand->warnings. */
8345 if (flags & LOOKUP_NO_CONVERSION)
8346 conv->user_conv_p = true;
8347
8348 tsubst_flags_t arg_complain = complain;
8349 if (!conversion_warning)
8350 arg_complain &= ~tf_warning;
8351
8352 val = convert_like_with_context (conv, arg, fn, i - is_method,
8353 arg_complain);
8354 val = convert_for_arg_passing (type, val, arg_complain);
8355
8356 if (val == error_mark_node)
8357 return error_mark_node;
8358 else
8359 argarray[j++] = val;
8360 }
8361
8362 /* Default arguments */
8363 for (; parm && parm != void_list_node; parm = TREE_CHAIN (parm), i++)
8364 {
8365 if (TREE_VALUE (parm) == error_mark_node)
8366 return error_mark_node;
8367 val = convert_default_arg (TREE_VALUE (parm),
8368 TREE_PURPOSE (parm),
8369 fn, i - is_method,
8370 complain);
8371 if (val == error_mark_node)
8372 return error_mark_node;
8373 argarray[j++] = val;
8374 }
8375
8376 /* Ellipsis */
8377 int magic = magic_varargs_p (fn);
8378 for (; arg_index < vec_safe_length (args); ++arg_index)
8379 {
8380 tree a = (*args)[arg_index];
8381 if ((magic == 3 && arg_index == 2) || magic == 2)
8382 {
8383 /* Do no conversions for certain magic varargs. */
8384 a = mark_type_use (a);
8385 if (TREE_CODE (a) == FUNCTION_DECL && reject_gcc_builtin (a))
8386 return error_mark_node;
8387 }
8388 else if (magic != 0)
8389 /* For other magic varargs only do decay_conversion. */
8390 a = decay_conversion (a, complain);
8391 else if (DECL_CONSTRUCTOR_P (fn)
8392 && same_type_ignoring_top_level_qualifiers_p (DECL_CONTEXT (fn),
8393 TREE_TYPE (a)))
8394 {
8395 /* Avoid infinite recursion trying to call A(...). */
8396 if (complain & tf_error)
8397 /* Try to call the actual copy constructor for a good error. */
8398 call_copy_ctor (a, complain);
8399 return error_mark_node;
8400 }
8401 else
8402 a = convert_arg_to_ellipsis (a, complain);
8403 if (a == error_mark_node)
8404 return error_mark_node;
8405 argarray[j++] = a;
8406 }
8407
8408 gcc_assert (j <= nargs);
8409 nargs = j;
8410
8411 /* Avoid to do argument-transformation, if warnings for format, and for
8412 nonnull are disabled. Just in case that at least one of them is active
8413 the check_function_arguments function might warn about something. */
8414
8415 bool warned_p = false;
8416 if (warn_nonnull
8417 || warn_format
8418 || warn_suggest_attribute_format
8419 || warn_restrict)
8420 {
8421 tree *fargs = (!nargs ? argarray
8422 : (tree *) alloca (nargs * sizeof (tree)));
8423 for (j = 0; j < nargs; j++)
8424 {
8425 /* For -Wformat undo the implicit passing by hidden reference
8426 done by convert_arg_to_ellipsis. */
8427 if (TREE_CODE (argarray[j]) == ADDR_EXPR
8428 && TYPE_REF_P (TREE_TYPE (argarray[j])))
8429 fargs[j] = TREE_OPERAND (argarray[j], 0);
8430 else
8431 fargs[j] = argarray[j];
8432 }
8433
8434 warned_p = check_function_arguments (input_location, fn, TREE_TYPE (fn),
8435 nargs, fargs, NULL);
8436 }
8437
8438 if (DECL_INHERITED_CTOR (fn))
8439 {
8440 /* Check for passing ellipsis arguments to an inherited constructor. We
8441 could handle this by open-coding the inherited constructor rather than
8442 defining it, but let's not bother now. */
8443 if (!cp_unevaluated_operand
8444 && cand->num_convs
8445 && cand->convs[cand->num_convs-1]->ellipsis_p)
8446 {
8447 if (complain & tf_error)
8448 {
8449 sorry ("passing arguments to ellipsis of inherited constructor "
8450 "%qD", cand->fn);
8451 inform (DECL_SOURCE_LOCATION (cand->fn), "declared here");
8452 }
8453 return error_mark_node;
8454 }
8455
8456 /* A base constructor inheriting from a virtual base doesn't get the
8457 inherited arguments, just this and __vtt. */
8458 if (ctor_omit_inherited_parms (fn))
8459 nargs = 2;
8460 }
8461
8462 /* Avoid actually calling copy constructors and copy assignment operators,
8463 if possible. */
8464
8465 if (! flag_elide_constructors && !force_elide)
8466 /* Do things the hard way. */;
8467 else if (cand->num_convs == 1
8468 && (DECL_COPY_CONSTRUCTOR_P (fn)
8469 || DECL_MOVE_CONSTRUCTOR_P (fn))
8470 /* It's unsafe to elide the constructor when handling
8471 a noexcept-expression, it may evaluate to the wrong
8472 value (c++/53025). */
8473 && (force_elide || cp_noexcept_operand == 0))
8474 {
8475 tree targ;
8476 tree arg = argarray[num_artificial_parms_for (fn)];
8477 tree fa;
8478 bool trivial = trivial_fn_p (fn);
8479
8480 /* Pull out the real argument, disregarding const-correctness. */
8481 targ = arg;
8482 /* Strip the reference binding for the constructor parameter. */
8483 if (CONVERT_EXPR_P (targ)
8484 && TYPE_REF_P (TREE_TYPE (targ)))
8485 targ = TREE_OPERAND (targ, 0);
8486 /* But don't strip any other reference bindings; binding a temporary to a
8487 reference prevents copy elision. */
8488 while ((CONVERT_EXPR_P (targ)
8489 && !TYPE_REF_P (TREE_TYPE (targ)))
8490 || TREE_CODE (targ) == NON_LVALUE_EXPR)
8491 targ = TREE_OPERAND (targ, 0);
8492 if (TREE_CODE (targ) == ADDR_EXPR)
8493 {
8494 targ = TREE_OPERAND (targ, 0);
8495 if (!same_type_ignoring_top_level_qualifiers_p
8496 (TREE_TYPE (TREE_TYPE (arg)), TREE_TYPE (targ)))
8497 targ = NULL_TREE;
8498 }
8499 else
8500 targ = NULL_TREE;
8501
8502 if (targ)
8503 arg = targ;
8504 else
8505 arg = cp_build_fold_indirect_ref (arg);
8506
8507 /* In C++17 we shouldn't be copying a TARGET_EXPR except into a base
8508 subobject. */
8509 if (CHECKING_P && cxx_dialect >= cxx17)
8510 gcc_assert (TREE_CODE (arg) != TARGET_EXPR
8511 || force_elide
8512 /* It's from binding the ref parm to a packed field. */
8513 || convs[0]->need_temporary_p
8514 || seen_error ()
8515 /* See unsafe_copy_elision_p. */
8516 || DECL_BASE_CONSTRUCTOR_P (fn));
8517
8518 fa = argarray[0];
8519 bool unsafe = unsafe_copy_elision_p (fa, arg);
8520 bool eliding_temp = (TREE_CODE (arg) == TARGET_EXPR && !unsafe);
8521
8522 /* [class.copy]: the copy constructor is implicitly defined even if the
8523 implementation elided its use. But don't warn about deprecation when
8524 eliding a temporary, as then no copy is actually performed. */
8525 warning_sentinel s (warn_deprecated_copy, eliding_temp);
8526 if (force_elide)
8527 /* The language says this isn't called. */;
8528 else if (!trivial)
8529 {
8530 if (!mark_used (fn, complain) && !(complain & tf_error))
8531 return error_mark_node;
8532 already_used = true;
8533 }
8534 else
8535 cp_warn_deprecated_use (fn, complain);
8536
8537 /* If we're creating a temp and we already have one, don't create a
8538 new one. If we're not creating a temp but we get one, use
8539 INIT_EXPR to collapse the temp into our target. Otherwise, if the
8540 ctor is trivial, do a bitwise copy with a simple TARGET_EXPR for a
8541 temp or an INIT_EXPR otherwise. */
8542 if (is_dummy_object (fa))
8543 {
8544 if (TREE_CODE (arg) == TARGET_EXPR)
8545 return arg;
8546 else if (trivial)
8547 return force_target_expr (DECL_CONTEXT (fn), arg, complain);
8548 }
8549 else if ((trivial || TREE_CODE (arg) == TARGET_EXPR)
8550 && !unsafe)
8551 {
8552 tree to = cp_stabilize_reference (cp_build_fold_indirect_ref (fa));
8553
8554 val = build2 (INIT_EXPR, DECL_CONTEXT (fn), to, arg);
8555 return val;
8556 }
8557 }
8558 else if (DECL_ASSIGNMENT_OPERATOR_P (fn)
8559 && DECL_OVERLOADED_OPERATOR_IS (fn, NOP_EXPR)
8560 && trivial_fn_p (fn))
8561 {
8562 tree to = cp_stabilize_reference
8563 (cp_build_fold_indirect_ref (argarray[0]));
8564 tree type = TREE_TYPE (to);
8565 tree as_base = CLASSTYPE_AS_BASE (type);
8566 tree arg = argarray[1];
8567 location_t loc = cp_expr_loc_or_input_loc (arg);
8568
8569 if (is_really_empty_class (type, /*ignore_vptr*/true))
8570 {
8571 /* Avoid copying empty classes. */
8572 val = build2 (COMPOUND_EXPR, type, arg, to);
8573 TREE_NO_WARNING (val) = 1;
8574 }
8575 else if (tree_int_cst_equal (TYPE_SIZE (type), TYPE_SIZE (as_base)))
8576 {
8577 if (is_std_init_list (type)
8578 && conv_binds_ref_to_prvalue (convs[1]))
8579 warning_at (loc, OPT_Winit_list_lifetime,
8580 "assignment from temporary %<initializer_list%> does "
8581 "not extend the lifetime of the underlying array");
8582 arg = cp_build_fold_indirect_ref (arg);
8583 val = build2 (MODIFY_EXPR, TREE_TYPE (to), to, arg);
8584 }
8585 else
8586 {
8587 /* We must only copy the non-tail padding parts. */
8588 tree arg0, arg2, t;
8589 tree array_type, alias_set;
8590
8591 arg2 = TYPE_SIZE_UNIT (as_base);
8592 arg0 = cp_build_addr_expr (to, complain);
8593
8594 array_type = build_array_type (unsigned_char_type_node,
8595 build_index_type
8596 (size_binop (MINUS_EXPR,
8597 arg2, size_int (1))));
8598 alias_set = build_int_cst (build_pointer_type (type), 0);
8599 t = build2 (MODIFY_EXPR, void_type_node,
8600 build2 (MEM_REF, array_type, arg0, alias_set),
8601 build2 (MEM_REF, array_type, arg, alias_set));
8602 val = build2 (COMPOUND_EXPR, TREE_TYPE (to), t, to);
8603 TREE_NO_WARNING (val) = 1;
8604 }
8605
8606 cp_warn_deprecated_use (fn, complain);
8607
8608 return val;
8609 }
8610 else if (trivial_fn_p (fn))
8611 {
8612 if (DECL_DESTRUCTOR_P (fn))
8613 return build_trivial_dtor_call (argarray[0]);
8614 else if (default_ctor_p (fn))
8615 {
8616 if (is_dummy_object (argarray[0]))
8617 return force_target_expr (DECL_CONTEXT (fn), void_node,
8618 no_cleanup_complain);
8619 else
8620 return cp_build_fold_indirect_ref (argarray[0]);
8621 }
8622 }
8623
8624 gcc_assert (!force_elide);
8625
8626 if (!already_used
8627 && !mark_used (fn, complain))
8628 return error_mark_node;
8629
8630 /* Warn if the built-in writes to an object of a non-trivial type. */
8631 if (warn_class_memaccess
8632 && vec_safe_length (args) >= 2
8633 && DECL_BUILT_IN_CLASS (fn) == BUILT_IN_NORMAL)
8634 maybe_warn_class_memaccess (input_location, fn, args);
8635
8636 if (DECL_VINDEX (fn) && (flags & LOOKUP_NONVIRTUAL) == 0)
8637 {
8638 tree t;
8639 tree binfo = lookup_base (TREE_TYPE (TREE_TYPE (argarray[0])),
8640 DECL_CONTEXT (fn),
8641 ba_any, NULL, complain);
8642 gcc_assert (binfo && binfo != error_mark_node);
8643
8644 argarray[0] = build_base_path (PLUS_EXPR, argarray[0], binfo, 1,
8645 complain);
8646 if (TREE_SIDE_EFFECTS (argarray[0]))
8647 argarray[0] = save_expr (argarray[0]);
8648 t = build_pointer_type (TREE_TYPE (fn));
8649 fn = build_vfn_ref (argarray[0], DECL_VINDEX (fn));
8650 TREE_TYPE (fn) = t;
8651 }
8652 else
8653 {
8654 fn = build_addr_func (fn, complain);
8655 if (fn == error_mark_node)
8656 return error_mark_node;
8657 }
8658
8659 tree call = build_cxx_call (fn, nargs, argarray, complain|decltype_flag);
8660 if (call == error_mark_node)
8661 return call;
8662 if (cand->flags & LOOKUP_LIST_INIT_CTOR)
8663 {
8664 tree c = extract_call_expr (call);
8665 /* build_new_op_1 will clear this when appropriate. */
8666 CALL_EXPR_ORDERED_ARGS (c) = true;
8667 }
8668 if (warned_p)
8669 {
8670 tree c = extract_call_expr (call);
8671 if (TREE_CODE (c) == CALL_EXPR)
8672 TREE_NO_WARNING (c) = 1;
8673 }
8674 return call;
8675 }
8676
8677 namespace
8678 {
8679
8680 /* Return the DECL of the first non-static subobject of class TYPE
8681 that satisfies the predicate PRED or null if none can be found. */
8682
8683 template <class Predicate>
8684 tree
8685 first_non_static_field (tree type, Predicate pred)
8686 {
8687 if (!type || !CLASS_TYPE_P (type))
8688 return NULL_TREE;
8689
8690 for (tree field = TYPE_FIELDS (type); field; field = DECL_CHAIN (field))
8691 {
8692 if (TREE_CODE (field) != FIELD_DECL)
8693 continue;
8694 if (TREE_STATIC (field))
8695 continue;
8696 if (pred (field))
8697 return field;
8698 }
8699
8700 int i = 0;
8701
8702 for (tree base_binfo, binfo = TYPE_BINFO (type);
8703 BINFO_BASE_ITERATE (binfo, i, base_binfo); i++)
8704 {
8705 tree base = TREE_TYPE (base_binfo);
8706 if (pred (base))
8707 return base;
8708 if (tree field = first_non_static_field (base, pred))
8709 return field;
8710 }
8711
8712 return NULL_TREE;
8713 }
8714
8715 struct NonPublicField
8716 {
8717 bool operator() (const_tree t)
8718 {
8719 return DECL_P (t) && (TREE_PRIVATE (t) || TREE_PROTECTED (t));
8720 }
8721 };
8722
8723 /* Return the DECL of the first non-public subobject of class TYPE
8724 or null if none can be found. */
8725
8726 static inline tree
8727 first_non_public_field (tree type)
8728 {
8729 return first_non_static_field (type, NonPublicField ());
8730 }
8731
8732 struct NonTrivialField
8733 {
8734 bool operator() (const_tree t)
8735 {
8736 return !trivial_type_p (DECL_P (t) ? TREE_TYPE (t) : t);
8737 }
8738 };
8739
8740 /* Return the DECL of the first non-trivial subobject of class TYPE
8741 or null if none can be found. */
8742
8743 static inline tree
8744 first_non_trivial_field (tree type)
8745 {
8746 return first_non_static_field (type, NonTrivialField ());
8747 }
8748
8749 } /* unnamed namespace */
8750
8751 /* Return true if all copy and move assignment operator overloads for
8752 class TYPE are trivial and at least one of them is not deleted and,
8753 when ACCESS is set, accessible. Return false otherwise. Set
8754 HASASSIGN to true when the TYPE has a (not necessarily trivial)
8755 copy or move assignment. */
8756
8757 static bool
8758 has_trivial_copy_assign_p (tree type, bool access, bool *hasassign)
8759 {
8760 tree fns = get_class_binding (type, assign_op_identifier);
8761 bool all_trivial = true;
8762
8763 /* Iterate over overloads of the assignment operator, checking
8764 accessible copy assignments for triviality. */
8765
8766 for (ovl_iterator oi (fns); oi; ++oi)
8767 {
8768 tree f = *oi;
8769
8770 /* Skip operators that aren't copy assignments. */
8771 if (!copy_fn_p (f))
8772 continue;
8773
8774 bool accessible = (!access || !(TREE_PRIVATE (f) || TREE_PROTECTED (f))
8775 || accessible_p (TYPE_BINFO (type), f, true));
8776
8777 /* Skip template assignment operators and deleted functions. */
8778 if (TREE_CODE (f) != FUNCTION_DECL || DECL_DELETED_FN (f))
8779 continue;
8780
8781 if (accessible)
8782 *hasassign = true;
8783
8784 if (!accessible || !trivial_fn_p (f))
8785 all_trivial = false;
8786
8787 /* Break early when both properties have been determined. */
8788 if (*hasassign && !all_trivial)
8789 break;
8790 }
8791
8792 /* Return true if they're all trivial and one of the expressions
8793 TYPE() = TYPE() or TYPE() = (TYPE&)() is valid. */
8794 tree ref = cp_build_reference_type (type, false);
8795 return (all_trivial
8796 && (is_trivially_xible (MODIFY_EXPR, type, type)
8797 || is_trivially_xible (MODIFY_EXPR, type, ref)));
8798 }
8799
8800 /* Return true if all copy and move ctor overloads for class TYPE are
8801 trivial and at least one of them is not deleted and, when ACCESS is
8802 set, accessible. Return false otherwise. Set each element of HASCTOR[]
8803 to true when the TYPE has a (not necessarily trivial) default and copy
8804 (or move) ctor, respectively. */
8805
8806 static bool
8807 has_trivial_copy_p (tree type, bool access, bool hasctor[2])
8808 {
8809 tree fns = get_class_binding (type, complete_ctor_identifier);
8810 bool all_trivial = true;
8811
8812 for (ovl_iterator oi (fns); oi; ++oi)
8813 {
8814 tree f = *oi;
8815
8816 /* Skip template constructors. */
8817 if (TREE_CODE (f) != FUNCTION_DECL)
8818 continue;
8819
8820 bool cpy_or_move_ctor_p = copy_fn_p (f);
8821
8822 /* Skip ctors other than default, copy, and move. */
8823 if (!cpy_or_move_ctor_p && !default_ctor_p (f))
8824 continue;
8825
8826 if (DECL_DELETED_FN (f))
8827 continue;
8828
8829 bool accessible = (!access || !(TREE_PRIVATE (f) || TREE_PROTECTED (f))
8830 || accessible_p (TYPE_BINFO (type), f, true));
8831
8832 if (accessible)
8833 hasctor[cpy_or_move_ctor_p] = true;
8834
8835 if (cpy_or_move_ctor_p && (!accessible || !trivial_fn_p (f)))
8836 all_trivial = false;
8837
8838 /* Break early when both properties have been determined. */
8839 if (hasctor[0] && hasctor[1] && !all_trivial)
8840 break;
8841 }
8842
8843 return all_trivial;
8844 }
8845
8846 /* Issue a warning on a call to the built-in function FNDECL if it is
8847 a raw memory write whose destination is not an object of (something
8848 like) trivial or standard layout type with a non-deleted assignment
8849 and copy ctor. Detects const correctness violations, corrupting
8850 references, virtual table pointers, and bypassing non-trivial
8851 assignments. */
8852
8853 static void
8854 maybe_warn_class_memaccess (location_t loc, tree fndecl,
8855 const vec<tree, va_gc> *args)
8856 {
8857 /* Except for bcopy where it's second, the destination pointer is
8858 the first argument for all functions handled here. Compute
8859 the index of the destination and source arguments. */
8860 unsigned dstidx = DECL_FUNCTION_CODE (fndecl) == BUILT_IN_BCOPY;
8861 unsigned srcidx = !dstidx;
8862
8863 tree dest = (*args)[dstidx];
8864 if (!TREE_TYPE (dest) || !INDIRECT_TYPE_P (TREE_TYPE (dest)))
8865 return;
8866
8867 tree srctype = NULL_TREE;
8868
8869 /* Determine the type of the pointed-to object and whether it's
8870 a complete class type. */
8871 tree desttype = TREE_TYPE (TREE_TYPE (dest));
8872
8873 if (!desttype || !COMPLETE_TYPE_P (desttype) || !CLASS_TYPE_P (desttype))
8874 return;
8875
8876 /* Check to see if the raw memory call is made by a non-static member
8877 function with THIS as the destination argument for the destination
8878 type. If so, and if the class has no non-trivial bases or members,
8879 be more permissive. */
8880 if (current_function_decl
8881 && DECL_NONSTATIC_MEMBER_FUNCTION_P (current_function_decl)
8882 && is_this_parameter (tree_strip_nop_conversions (dest)))
8883 {
8884 tree ctx = DECL_CONTEXT (current_function_decl);
8885 bool special = same_type_ignoring_top_level_qualifiers_p (ctx, desttype);
8886 tree binfo = TYPE_BINFO (ctx);
8887
8888 if (special
8889 && !BINFO_VTABLE (binfo)
8890 && !first_non_trivial_field (desttype))
8891 return;
8892 }
8893
8894 /* True if the class is trivial. */
8895 bool trivial = trivial_type_p (desttype);
8896
8897 /* Set to true if DESTYPE has an accessible copy assignment. */
8898 bool hasassign = false;
8899 /* True if all of the class' overloaded copy assignment operators
8900 are all trivial (and not deleted) and at least one of them is
8901 accessible. */
8902 bool trivassign = has_trivial_copy_assign_p (desttype, true, &hasassign);
8903
8904 /* Set to true if DESTTYPE has an accessible default and copy ctor,
8905 respectively. */
8906 bool hasctors[2] = { false, false };
8907
8908 /* True if all of the class' overloaded copy constructors are all
8909 trivial (and not deleted) and at least one of them is accessible. */
8910 bool trivcopy = has_trivial_copy_p (desttype, true, hasctors);
8911
8912 /* Set FLD to the first private/protected member of the class. */
8913 tree fld = trivial ? first_non_public_field (desttype) : NULL_TREE;
8914
8915 /* The warning format string. */
8916 const char *warnfmt = NULL;
8917 /* A suggested alternative to offer instead of the raw memory call.
8918 Empty string when none can be come up with. */
8919 const char *suggest = "";
8920 bool warned = false;
8921
8922 switch (DECL_FUNCTION_CODE (fndecl))
8923 {
8924 case BUILT_IN_MEMSET:
8925 if (!integer_zerop (maybe_constant_value ((*args)[1])))
8926 {
8927 /* Diagnose setting non-copy-assignable or non-trivial types,
8928 or types with a private member, to (potentially) non-zero
8929 bytes. Since the value of the bytes being written is unknown,
8930 suggest using assignment instead (if one exists). Also warn
8931 for writes into objects for which zero-initialization doesn't
8932 mean all bits clear (pointer-to-member data, where null is all
8933 bits set). Since the value being written is (most likely)
8934 non-zero, simply suggest assignment (but not copy assignment). */
8935 suggest = "; use assignment instead";
8936 if (!trivassign)
8937 warnfmt = G_("%qD writing to an object of type %#qT with "
8938 "no trivial copy-assignment");
8939 else if (!trivial)
8940 warnfmt = G_("%qD writing to an object of non-trivial type %#qT%s");
8941 else if (fld)
8942 {
8943 const char *access = TREE_PRIVATE (fld) ? "private" : "protected";
8944 warned = warning_at (loc, OPT_Wclass_memaccess,
8945 "%qD writing to an object of type %#qT with "
8946 "%qs member %qD",
8947 fndecl, desttype, access, fld);
8948 }
8949 else if (!zero_init_p (desttype))
8950 warnfmt = G_("%qD writing to an object of type %#qT containing "
8951 "a pointer to data member%s");
8952
8953 break;
8954 }
8955 /* Fall through. */
8956
8957 case BUILT_IN_BZERO:
8958 /* Similarly to the above, diagnose clearing non-trivial or non-
8959 standard layout objects, or objects of types with no assignmenmt.
8960 Since the value being written is known to be zero, suggest either
8961 copy assignment, copy ctor, or default ctor as an alternative,
8962 depending on what's available. */
8963
8964 if (hasassign && hasctors[0])
8965 suggest = G_("; use assignment or value-initialization instead");
8966 else if (hasassign)
8967 suggest = G_("; use assignment instead");
8968 else if (hasctors[0])
8969 suggest = G_("; use value-initialization instead");
8970
8971 if (!trivassign)
8972 warnfmt = G_("%qD clearing an object of type %#qT with "
8973 "no trivial copy-assignment%s");
8974 else if (!trivial)
8975 warnfmt = G_("%qD clearing an object of non-trivial type %#qT%s");
8976 else if (!zero_init_p (desttype))
8977 warnfmt = G_("%qD clearing an object of type %#qT containing "
8978 "a pointer-to-member%s");
8979 break;
8980
8981 case BUILT_IN_BCOPY:
8982 case BUILT_IN_MEMCPY:
8983 case BUILT_IN_MEMMOVE:
8984 case BUILT_IN_MEMPCPY:
8985 /* Determine the type of the source object. */
8986 srctype = TREE_TYPE ((*args)[srcidx]);
8987 if (!srctype || !INDIRECT_TYPE_P (srctype))
8988 srctype = void_type_node;
8989 else
8990 srctype = TREE_TYPE (srctype);
8991
8992 /* Since it's impossible to determine wheter the byte copy is
8993 being used in place of assignment to an existing object or
8994 as a substitute for initialization, assume it's the former.
8995 Determine the best alternative to use instead depending on
8996 what's not deleted. */
8997 if (hasassign && hasctors[1])
8998 suggest = G_("; use copy-assignment or copy-initialization instead");
8999 else if (hasassign)
9000 suggest = G_("; use copy-assignment instead");
9001 else if (hasctors[1])
9002 suggest = G_("; use copy-initialization instead");
9003
9004 if (!trivassign)
9005 warnfmt = G_("%qD writing to an object of type %#qT with no trivial "
9006 "copy-assignment%s");
9007 else if (!trivially_copyable_p (desttype))
9008 warnfmt = G_("%qD writing to an object of non-trivially copyable "
9009 "type %#qT%s");
9010 else if (!trivcopy)
9011 warnfmt = G_("%qD writing to an object with a deleted copy constructor");
9012
9013 else if (!trivial
9014 && !VOID_TYPE_P (srctype)
9015 && !char_type_p (TYPE_MAIN_VARIANT (srctype))
9016 && !same_type_ignoring_top_level_qualifiers_p (desttype,
9017 srctype))
9018 {
9019 /* Warn when copying into a non-trivial object from an object
9020 of a different type other than void or char. */
9021 warned = warning_at (loc, OPT_Wclass_memaccess,
9022 "%qD copying an object of non-trivial type "
9023 "%#qT from an array of %#qT",
9024 fndecl, desttype, srctype);
9025 }
9026 else if (fld
9027 && !VOID_TYPE_P (srctype)
9028 && !char_type_p (TYPE_MAIN_VARIANT (srctype))
9029 && !same_type_ignoring_top_level_qualifiers_p (desttype,
9030 srctype))
9031 {
9032 const char *access = TREE_PRIVATE (fld) ? "private" : "protected";
9033 warned = warning_at (loc, OPT_Wclass_memaccess,
9034 "%qD copying an object of type %#qT with "
9035 "%qs member %qD from an array of %#qT; use "
9036 "assignment or copy-initialization instead",
9037 fndecl, desttype, access, fld, srctype);
9038 }
9039 else if (!trivial && vec_safe_length (args) > 2)
9040 {
9041 tree sz = maybe_constant_value ((*args)[2]);
9042 if (!tree_fits_uhwi_p (sz))
9043 break;
9044
9045 /* Finally, warn on partial copies. */
9046 unsigned HOST_WIDE_INT typesize
9047 = tree_to_uhwi (TYPE_SIZE_UNIT (desttype));
9048 if (unsigned HOST_WIDE_INT partial = tree_to_uhwi (sz) % typesize)
9049 warned = warning_at (loc, OPT_Wclass_memaccess,
9050 (typesize - partial > 1
9051 ? G_("%qD writing to an object of "
9052 "a non-trivial type %#qT leaves %wu "
9053 "bytes unchanged")
9054 : G_("%qD writing to an object of "
9055 "a non-trivial type %#qT leaves %wu "
9056 "byte unchanged")),
9057 fndecl, desttype, typesize - partial);
9058 }
9059 break;
9060
9061 case BUILT_IN_REALLOC:
9062
9063 if (!trivially_copyable_p (desttype))
9064 warnfmt = G_("%qD moving an object of non-trivially copyable type "
9065 "%#qT; use %<new%> and %<delete%> instead");
9066 else if (!trivcopy)
9067 warnfmt = G_("%qD moving an object of type %#qT with deleted copy "
9068 "constructor; use %<new%> and %<delete%> instead");
9069 else if (!get_dtor (desttype, tf_none))
9070 warnfmt = G_("%qD moving an object of type %#qT with deleted "
9071 "destructor");
9072 else if (!trivial)
9073 {
9074 tree sz = maybe_constant_value ((*args)[1]);
9075 if (TREE_CODE (sz) == INTEGER_CST
9076 && tree_int_cst_lt (sz, TYPE_SIZE_UNIT (desttype)))
9077 /* Finally, warn on reallocation into insufficient space. */
9078 warned = warning_at (loc, OPT_Wclass_memaccess,
9079 "%qD moving an object of non-trivial type "
9080 "%#qT and size %E into a region of size %E",
9081 fndecl, desttype, TYPE_SIZE_UNIT (desttype),
9082 sz);
9083 }
9084 break;
9085
9086 default:
9087 return;
9088 }
9089
9090 if (warnfmt)
9091 {
9092 if (suggest)
9093 warned = warning_at (loc, OPT_Wclass_memaccess,
9094 warnfmt, fndecl, desttype, suggest);
9095 else
9096 warned = warning_at (loc, OPT_Wclass_memaccess,
9097 warnfmt, fndecl, desttype);
9098 }
9099
9100 if (warned)
9101 inform (location_of (desttype), "%#qT declared here", desttype);
9102 }
9103
9104 /* Build and return a call to FN, using NARGS arguments in ARGARRAY.
9105 This function performs no overload resolution, conversion, or other
9106 high-level operations. */
9107
9108 tree
9109 build_cxx_call (tree fn, int nargs, tree *argarray,
9110 tsubst_flags_t complain)
9111 {
9112 tree fndecl;
9113
9114 /* Remember roughly where this call is. */
9115 location_t loc = cp_expr_loc_or_input_loc (fn);
9116 fn = build_call_a (fn, nargs, argarray);
9117 SET_EXPR_LOCATION (fn, loc);
9118
9119 fndecl = get_callee_fndecl (fn);
9120
9121 /* Check that arguments to builtin functions match the expectations. */
9122 if (fndecl
9123 && !processing_template_decl
9124 && fndecl_built_in_p (fndecl, BUILT_IN_NORMAL))
9125 {
9126 int i;
9127
9128 /* We need to take care that values to BUILT_IN_NORMAL
9129 are reduced. */
9130 for (i = 0; i < nargs; i++)
9131 argarray[i] = maybe_constant_value (argarray[i]);
9132
9133 if (!check_builtin_function_arguments (EXPR_LOCATION (fn), vNULL, fndecl,
9134 nargs, argarray))
9135 return error_mark_node;
9136 }
9137
9138 if (VOID_TYPE_P (TREE_TYPE (fn)))
9139 return fn;
9140
9141 /* 5.2.2/11: If a function call is a prvalue of object type: if the
9142 function call is either the operand of a decltype-specifier or the
9143 right operand of a comma operator that is the operand of a
9144 decltype-specifier, a temporary object is not introduced for the
9145 prvalue. The type of the prvalue may be incomplete. */
9146 if (!(complain & tf_decltype))
9147 {
9148 fn = require_complete_type_sfinae (fn, complain);
9149 if (fn == error_mark_node)
9150 return error_mark_node;
9151
9152 if (MAYBE_CLASS_TYPE_P (TREE_TYPE (fn)))
9153 {
9154 fn = build_cplus_new (TREE_TYPE (fn), fn, complain);
9155 maybe_warn_parm_abi (TREE_TYPE (fn), loc);
9156 }
9157 }
9158 return convert_from_reference (fn);
9159 }
9160
9161 /* Returns the value to use for the in-charge parameter when making a
9162 call to a function with the indicated NAME.
9163
9164 FIXME:Can't we find a neater way to do this mapping? */
9165
9166 tree
9167 in_charge_arg_for_name (tree name)
9168 {
9169 if (IDENTIFIER_CTOR_P (name))
9170 {
9171 if (name == complete_ctor_identifier)
9172 return integer_one_node;
9173 gcc_checking_assert (name == base_ctor_identifier);
9174 }
9175 else
9176 {
9177 if (name == complete_dtor_identifier)
9178 return integer_two_node;
9179 else if (name == deleting_dtor_identifier)
9180 return integer_three_node;
9181 gcc_checking_assert (name == base_dtor_identifier);
9182 }
9183
9184 return integer_zero_node;
9185 }
9186
9187 /* We've built up a constructor call RET. Complain if it delegates to the
9188 constructor we're currently compiling. */
9189
9190 static void
9191 check_self_delegation (tree ret)
9192 {
9193 if (TREE_CODE (ret) == TARGET_EXPR)
9194 ret = TARGET_EXPR_INITIAL (ret);
9195 tree fn = cp_get_callee_fndecl_nofold (ret);
9196 if (fn && DECL_ABSTRACT_ORIGIN (fn) == current_function_decl)
9197 error ("constructor delegates to itself");
9198 }
9199
9200 /* Build a call to a constructor, destructor, or an assignment
9201 operator for INSTANCE, an expression with class type. NAME
9202 indicates the special member function to call; *ARGS are the
9203 arguments. ARGS may be NULL. This may change ARGS. BINFO
9204 indicates the base of INSTANCE that is to be passed as the `this'
9205 parameter to the member function called.
9206
9207 FLAGS are the LOOKUP_* flags to use when processing the call.
9208
9209 If NAME indicates a complete object constructor, INSTANCE may be
9210 NULL_TREE. In this case, the caller will call build_cplus_new to
9211 store the newly constructed object into a VAR_DECL. */
9212
9213 tree
9214 build_special_member_call (tree instance, tree name, vec<tree, va_gc> **args,
9215 tree binfo, int flags, tsubst_flags_t complain)
9216 {
9217 tree fns;
9218 /* The type of the subobject to be constructed or destroyed. */
9219 tree class_type;
9220 vec<tree, va_gc> *allocated = NULL;
9221 tree ret;
9222
9223 gcc_assert (IDENTIFIER_CDTOR_P (name) || name == assign_op_identifier);
9224
9225 if (error_operand_p (instance))
9226 return error_mark_node;
9227
9228 if (IDENTIFIER_DTOR_P (name))
9229 {
9230 gcc_assert (args == NULL || vec_safe_is_empty (*args));
9231 if (!type_build_dtor_call (TREE_TYPE (instance)))
9232 /* Shortcut to avoid lazy destructor declaration. */
9233 return build_trivial_dtor_call (instance);
9234 }
9235
9236 if (TYPE_P (binfo))
9237 {
9238 /* Resolve the name. */
9239 if (!complete_type_or_maybe_complain (binfo, NULL_TREE, complain))
9240 return error_mark_node;
9241
9242 binfo = TYPE_BINFO (binfo);
9243 }
9244
9245 gcc_assert (binfo != NULL_TREE);
9246
9247 class_type = BINFO_TYPE (binfo);
9248
9249 /* Handle the special case where INSTANCE is NULL_TREE. */
9250 if (name == complete_ctor_identifier && !instance)
9251 instance = build_dummy_object (class_type);
9252 else
9253 {
9254 /* Convert to the base class, if necessary. */
9255 if (!same_type_ignoring_top_level_qualifiers_p
9256 (TREE_TYPE (instance), BINFO_TYPE (binfo)))
9257 {
9258 if (IDENTIFIER_CDTOR_P (name))
9259 /* For constructors and destructors, either the base is
9260 non-virtual, or it is virtual but we are doing the
9261 conversion from a constructor or destructor for the
9262 complete object. In either case, we can convert
9263 statically. */
9264 instance = convert_to_base_statically (instance, binfo);
9265 else
9266 {
9267 /* However, for assignment operators, we must convert
9268 dynamically if the base is virtual. */
9269 gcc_checking_assert (name == assign_op_identifier);
9270 instance = build_base_path (PLUS_EXPR, instance,
9271 binfo, /*nonnull=*/1, complain);
9272 }
9273 }
9274 }
9275
9276 gcc_assert (instance != NULL_TREE);
9277
9278 /* In C++17, "If the initializer expression is a prvalue and the
9279 cv-unqualified version of the source type is the same class as the class
9280 of the destination, the initializer expression is used to initialize the
9281 destination object." Handle that here to avoid doing overload
9282 resolution. */
9283 if (cxx_dialect >= cxx17
9284 && args && vec_safe_length (*args) == 1
9285 && name == complete_ctor_identifier)
9286 {
9287 tree arg = (**args)[0];
9288
9289 if (BRACE_ENCLOSED_INITIALIZER_P (arg)
9290 && !TYPE_HAS_LIST_CTOR (class_type)
9291 && CONSTRUCTOR_NELTS (arg) == 1)
9292 arg = CONSTRUCTOR_ELT (arg, 0)->value;
9293
9294 if ((TREE_CODE (arg) == TARGET_EXPR
9295 || TREE_CODE (arg) == CONSTRUCTOR)
9296 && (same_type_ignoring_top_level_qualifiers_p
9297 (class_type, TREE_TYPE (arg))))
9298 {
9299 if (is_dummy_object (instance))
9300 return arg;
9301 else if (TREE_CODE (arg) == TARGET_EXPR)
9302 TARGET_EXPR_DIRECT_INIT_P (arg) = true;
9303
9304 if ((complain & tf_error)
9305 && (flags & LOOKUP_DELEGATING_CONS))
9306 check_self_delegation (arg);
9307 /* Avoid change of behavior on Wunused-var-2.C. */
9308 instance = mark_lvalue_use (instance);
9309 return build2 (INIT_EXPR, class_type, instance, arg);
9310 }
9311 }
9312
9313 fns = lookup_fnfields (binfo, name, 1);
9314
9315 /* When making a call to a constructor or destructor for a subobject
9316 that uses virtual base classes, pass down a pointer to a VTT for
9317 the subobject. */
9318 if ((name == base_ctor_identifier
9319 || name == base_dtor_identifier)
9320 && CLASSTYPE_VBASECLASSES (class_type))
9321 {
9322 tree vtt;
9323 tree sub_vtt;
9324
9325 /* If the current function is a complete object constructor
9326 or destructor, then we fetch the VTT directly.
9327 Otherwise, we look it up using the VTT we were given. */
9328 vtt = DECL_CHAIN (CLASSTYPE_VTABLES (current_class_type));
9329 vtt = decay_conversion (vtt, complain);
9330 if (vtt == error_mark_node)
9331 return error_mark_node;
9332 vtt = build_if_in_charge (vtt, current_vtt_parm);
9333 if (BINFO_SUBVTT_INDEX (binfo))
9334 sub_vtt = fold_build_pointer_plus (vtt, BINFO_SUBVTT_INDEX (binfo));
9335 else
9336 sub_vtt = vtt;
9337
9338 if (args == NULL)
9339 {
9340 allocated = make_tree_vector ();
9341 args = &allocated;
9342 }
9343
9344 vec_safe_insert (*args, 0, sub_vtt);
9345 }
9346
9347 ret = build_new_method_call (instance, fns, args,
9348 TYPE_BINFO (BINFO_TYPE (binfo)),
9349 flags, /*fn=*/NULL,
9350 complain);
9351
9352 if (allocated != NULL)
9353 release_tree_vector (allocated);
9354
9355 if ((complain & tf_error)
9356 && (flags & LOOKUP_DELEGATING_CONS)
9357 && name == complete_ctor_identifier)
9358 check_self_delegation (ret);
9359
9360 return ret;
9361 }
9362
9363 /* Return the NAME, as a C string. The NAME indicates a function that
9364 is a member of TYPE. *FREE_P is set to true if the caller must
9365 free the memory returned.
9366
9367 Rather than go through all of this, we should simply set the names
9368 of constructors and destructors appropriately, and dispense with
9369 ctor_identifier, dtor_identifier, etc. */
9370
9371 static char *
9372 name_as_c_string (tree name, tree type, bool *free_p)
9373 {
9374 const char *pretty_name;
9375
9376 /* Assume that we will not allocate memory. */
9377 *free_p = false;
9378 /* Constructors and destructors are special. */
9379 if (IDENTIFIER_CDTOR_P (name))
9380 {
9381 pretty_name
9382 = identifier_to_locale (IDENTIFIER_POINTER (constructor_name (type)));
9383 /* For a destructor, add the '~'. */
9384 if (IDENTIFIER_DTOR_P (name))
9385 {
9386 pretty_name = concat ("~", pretty_name, NULL);
9387 /* Remember that we need to free the memory allocated. */
9388 *free_p = true;
9389 }
9390 }
9391 else if (IDENTIFIER_CONV_OP_P (name))
9392 {
9393 pretty_name = concat ("operator ",
9394 type_as_string_translate (TREE_TYPE (name),
9395 TFF_PLAIN_IDENTIFIER),
9396 NULL);
9397 /* Remember that we need to free the memory allocated. */
9398 *free_p = true;
9399 }
9400 else
9401 pretty_name = identifier_to_locale (IDENTIFIER_POINTER (name));
9402
9403 return CONST_CAST (char *, pretty_name);
9404 }
9405
9406 /* If CANDIDATES contains exactly one candidate, return it, otherwise
9407 return NULL. */
9408
9409 static z_candidate *
9410 single_z_candidate (z_candidate *candidates)
9411 {
9412 if (candidates == NULL)
9413 return NULL;
9414
9415 if (candidates->next)
9416 return NULL;
9417
9418 return candidates;
9419 }
9420
9421 /* If CANDIDATE is invalid due to a bad argument type, return the
9422 pertinent conversion_info.
9423
9424 Otherwise, return NULL. */
9425
9426 static const conversion_info *
9427 maybe_get_bad_conversion_for_unmatched_call (const z_candidate *candidate)
9428 {
9429 /* Must be an rr_arg_conversion or rr_bad_arg_conversion. */
9430 rejection_reason *r = candidate->reason;
9431
9432 if (r == NULL)
9433 return NULL;
9434
9435 switch (r->code)
9436 {
9437 default:
9438 return NULL;
9439
9440 case rr_arg_conversion:
9441 return &r->u.conversion;
9442
9443 case rr_bad_arg_conversion:
9444 return &r->u.bad_conversion;
9445 }
9446 }
9447
9448 /* Issue an error and note complaining about a bad argument type at a
9449 callsite with a single candidate FNDECL.
9450
9451 ARG_LOC is the location of the argument (or UNKNOWN_LOCATION, in which
9452 case input_location is used).
9453 FROM_TYPE is the type of the actual argument; TO_TYPE is the type of
9454 the formal parameter. */
9455
9456 void
9457 complain_about_bad_argument (location_t arg_loc,
9458 tree from_type, tree to_type,
9459 tree fndecl, int parmnum)
9460 {
9461 auto_diagnostic_group d;
9462 range_label_for_type_mismatch rhs_label (from_type, to_type);
9463 range_label *label = &rhs_label;
9464 if (arg_loc == UNKNOWN_LOCATION)
9465 {
9466 arg_loc = input_location;
9467 label = NULL;
9468 }
9469 gcc_rich_location richloc (arg_loc, label);
9470 error_at (&richloc,
9471 "cannot convert %qH to %qI",
9472 from_type, to_type);
9473 maybe_inform_about_fndecl_for_bogus_argument_init (fndecl,
9474 parmnum);
9475 }
9476
9477 /* Subroutine of build_new_method_call_1, for where there are no viable
9478 candidates for the call. */
9479
9480 static void
9481 complain_about_no_candidates_for_method_call (tree instance,
9482 z_candidate *candidates,
9483 tree explicit_targs,
9484 tree basetype,
9485 tree optype, tree name,
9486 bool skip_first_for_error,
9487 vec<tree, va_gc> *user_args)
9488 {
9489 auto_diagnostic_group d;
9490 if (!COMPLETE_OR_OPEN_TYPE_P (basetype))
9491 cxx_incomplete_type_error (instance, basetype);
9492 else if (optype)
9493 error ("no matching function for call to %<%T::operator %T(%A)%#V%>",
9494 basetype, optype, build_tree_list_vec (user_args),
9495 TREE_TYPE (instance));
9496 else
9497 {
9498 /* Special-case for when there's a single candidate that's failing
9499 due to a bad argument type. */
9500 if (z_candidate *candidate = single_z_candidate (candidates))
9501 if (const conversion_info *conv
9502 = maybe_get_bad_conversion_for_unmatched_call (candidate))
9503 {
9504 complain_about_bad_argument (conv->loc,
9505 conv->from, conv->to_type,
9506 candidate->fn, conv->n_arg);
9507 return;
9508 }
9509
9510 tree arglist = build_tree_list_vec (user_args);
9511 tree errname = name;
9512 bool twiddle = false;
9513 if (IDENTIFIER_CDTOR_P (errname))
9514 {
9515 twiddle = IDENTIFIER_DTOR_P (errname);
9516 errname = constructor_name (basetype);
9517 }
9518 if (explicit_targs)
9519 errname = lookup_template_function (errname, explicit_targs);
9520 if (skip_first_for_error)
9521 arglist = TREE_CHAIN (arglist);
9522 error ("no matching function for call to %<%T::%s%E(%A)%#V%>",
9523 basetype, &"~"[!twiddle], errname, arglist,
9524 TREE_TYPE (instance));
9525 }
9526 print_z_candidates (location_of (name), candidates);
9527 }
9528
9529 /* Build a call to "INSTANCE.FN (ARGS)". If FN_P is non-NULL, it will
9530 be set, upon return, to the function called. ARGS may be NULL.
9531 This may change ARGS. */
9532
9533 static tree
9534 build_new_method_call_1 (tree instance, tree fns, vec<tree, va_gc> **args,
9535 tree conversion_path, int flags,
9536 tree *fn_p, tsubst_flags_t complain)
9537 {
9538 struct z_candidate *candidates = 0, *cand;
9539 tree explicit_targs = NULL_TREE;
9540 tree basetype = NULL_TREE;
9541 tree access_binfo;
9542 tree optype;
9543 tree first_mem_arg = NULL_TREE;
9544 tree name;
9545 bool skip_first_for_error;
9546 vec<tree, va_gc> *user_args;
9547 tree call;
9548 tree fn;
9549 int template_only = 0;
9550 bool any_viable_p;
9551 tree orig_instance;
9552 tree orig_fns;
9553 vec<tree, va_gc> *orig_args = NULL;
9554 void *p;
9555
9556 gcc_assert (instance != NULL_TREE);
9557
9558 /* We don't know what function we're going to call, yet. */
9559 if (fn_p)
9560 *fn_p = NULL_TREE;
9561
9562 if (error_operand_p (instance)
9563 || !fns || error_operand_p (fns))
9564 return error_mark_node;
9565
9566 if (!BASELINK_P (fns))
9567 {
9568 if (complain & tf_error)
9569 error ("call to non-function %qD", fns);
9570 return error_mark_node;
9571 }
9572
9573 orig_instance = instance;
9574 orig_fns = fns;
9575
9576 /* Dismantle the baselink to collect all the information we need. */
9577 if (!conversion_path)
9578 conversion_path = BASELINK_BINFO (fns);
9579 access_binfo = BASELINK_ACCESS_BINFO (fns);
9580 optype = BASELINK_OPTYPE (fns);
9581 fns = BASELINK_FUNCTIONS (fns);
9582 if (TREE_CODE (fns) == TEMPLATE_ID_EXPR)
9583 {
9584 explicit_targs = TREE_OPERAND (fns, 1);
9585 fns = TREE_OPERAND (fns, 0);
9586 template_only = 1;
9587 }
9588 gcc_assert (OVL_P (fns));
9589 fn = OVL_FIRST (fns);
9590 name = DECL_NAME (fn);
9591
9592 basetype = TYPE_MAIN_VARIANT (TREE_TYPE (instance));
9593 gcc_assert (CLASS_TYPE_P (basetype));
9594
9595 user_args = args == NULL ? NULL : *args;
9596 /* Under DR 147 A::A() is an invalid constructor call,
9597 not a functional cast. */
9598 if (DECL_MAYBE_IN_CHARGE_CONSTRUCTOR_P (fn))
9599 {
9600 if (! (complain & tf_error))
9601 return error_mark_node;
9602
9603 basetype = DECL_CONTEXT (fn);
9604 name = constructor_name (basetype);
9605 auto_diagnostic_group d;
9606 if (permerror (input_location,
9607 "cannot call constructor %<%T::%D%> directly",
9608 basetype, name))
9609 inform (input_location, "for a function-style cast, remove the "
9610 "redundant %<::%D%>", name);
9611 call = build_functional_cast (basetype, build_tree_list_vec (user_args),
9612 complain);
9613 return call;
9614 }
9615
9616 if (processing_template_decl)
9617 {
9618 orig_args = args == NULL ? NULL : make_tree_vector_copy (*args);
9619 instance = build_non_dependent_expr (instance);
9620 if (args != NULL)
9621 make_args_non_dependent (*args);
9622 }
9623
9624 /* Process the argument list. */
9625 if (args != NULL && *args != NULL)
9626 {
9627 *args = resolve_args (*args, complain);
9628 if (*args == NULL)
9629 return error_mark_node;
9630 user_args = *args;
9631 }
9632
9633 /* Consider the object argument to be used even if we end up selecting a
9634 static member function. */
9635 instance = mark_type_use (instance);
9636
9637 /* Figure out whether to skip the first argument for the error
9638 message we will display to users if an error occurs. We don't
9639 want to display any compiler-generated arguments. The "this"
9640 pointer hasn't been added yet. However, we must remove the VTT
9641 pointer if this is a call to a base-class constructor or
9642 destructor. */
9643 skip_first_for_error = false;
9644 if (IDENTIFIER_CDTOR_P (name))
9645 {
9646 /* Callers should explicitly indicate whether they want to ctor
9647 the complete object or just the part without virtual bases. */
9648 gcc_assert (name != ctor_identifier);
9649
9650 /* Remove the VTT pointer, if present. */
9651 if ((name == base_ctor_identifier || name == base_dtor_identifier)
9652 && CLASSTYPE_VBASECLASSES (basetype))
9653 skip_first_for_error = true;
9654
9655 /* It's OK to call destructors and constructors on cv-qualified
9656 objects. Therefore, convert the INSTANCE to the unqualified
9657 type, if necessary. */
9658 if (!same_type_p (basetype, TREE_TYPE (instance)))
9659 {
9660 instance = build_this (instance);
9661 instance = build_nop (build_pointer_type (basetype), instance);
9662 instance = build_fold_indirect_ref (instance);
9663 }
9664 }
9665 else
9666 gcc_assert (!DECL_DESTRUCTOR_P (fn) && !DECL_CONSTRUCTOR_P (fn));
9667
9668 /* For the overload resolution we need to find the actual `this`
9669 that would be captured if the call turns out to be to a
9670 non-static member function. Do not actually capture it at this
9671 point. */
9672 if (DECL_CONSTRUCTOR_P (fn))
9673 /* Constructors don't use the enclosing 'this'. */
9674 first_mem_arg = instance;
9675 else
9676 first_mem_arg = maybe_resolve_dummy (instance, false);
9677
9678 /* Get the high-water mark for the CONVERSION_OBSTACK. */
9679 p = conversion_obstack_alloc (0);
9680
9681 /* The number of arguments artificial parms in ARGS; we subtract one because
9682 there's no 'this' in ARGS. */
9683 unsigned skip = num_artificial_parms_for (fn) - 1;
9684
9685 /* If CONSTRUCTOR_IS_DIRECT_INIT is set, this was a T{ } form
9686 initializer, not T({ }). */
9687 if (DECL_CONSTRUCTOR_P (fn)
9688 && vec_safe_length (user_args) > skip
9689 && DIRECT_LIST_INIT_P ((*user_args)[skip]))
9690 {
9691 tree init_list = (*user_args)[skip];
9692 tree init = NULL_TREE;
9693
9694 gcc_assert (user_args->length () == skip + 1
9695 && !(flags & LOOKUP_ONLYCONVERTING));
9696
9697 /* If the initializer list has no elements and T is a class type with
9698 a default constructor, the object is value-initialized. Handle
9699 this here so we don't need to handle it wherever we use
9700 build_special_member_call. */
9701 if (CONSTRUCTOR_NELTS (init_list) == 0
9702 && TYPE_HAS_DEFAULT_CONSTRUCTOR (basetype)
9703 /* For a user-provided default constructor, use the normal
9704 mechanisms so that protected access works. */
9705 && type_has_non_user_provided_default_constructor (basetype)
9706 && !processing_template_decl)
9707 init = build_value_init (basetype, complain);
9708
9709 /* If BASETYPE is an aggregate, we need to do aggregate
9710 initialization. */
9711 else if (CP_AGGREGATE_TYPE_P (basetype))
9712 {
9713 init = reshape_init (basetype, init_list, complain);
9714 init = digest_init (basetype, init, complain);
9715 }
9716
9717 if (init)
9718 {
9719 if (is_dummy_object (instance))
9720 return get_target_expr_sfinae (init, complain);
9721 init = build2 (INIT_EXPR, TREE_TYPE (instance), instance, init);
9722 TREE_SIDE_EFFECTS (init) = true;
9723 return init;
9724 }
9725
9726 /* Otherwise go ahead with overload resolution. */
9727 add_list_candidates (fns, first_mem_arg, user_args,
9728 basetype, explicit_targs, template_only,
9729 conversion_path, access_binfo, flags,
9730 &candidates, complain);
9731 }
9732 else
9733 add_candidates (fns, first_mem_arg, user_args, optype,
9734 explicit_targs, template_only, conversion_path,
9735 access_binfo, flags, &candidates, complain);
9736
9737 any_viable_p = false;
9738 candidates = splice_viable (candidates, false, &any_viable_p);
9739
9740 if (!any_viable_p)
9741 {
9742 if (complain & tf_error)
9743 complain_about_no_candidates_for_method_call (instance, candidates,
9744 explicit_targs, basetype,
9745 optype, name,
9746 skip_first_for_error,
9747 user_args);
9748 call = error_mark_node;
9749 }
9750 else
9751 {
9752 cand = tourney (candidates, complain);
9753 if (cand == 0)
9754 {
9755 char *pretty_name;
9756 bool free_p;
9757 tree arglist;
9758
9759 if (complain & tf_error)
9760 {
9761 pretty_name = name_as_c_string (name, basetype, &free_p);
9762 arglist = build_tree_list_vec (user_args);
9763 if (skip_first_for_error)
9764 arglist = TREE_CHAIN (arglist);
9765 auto_diagnostic_group d;
9766 if (!any_strictly_viable (candidates))
9767 error ("no matching function for call to %<%s(%A)%>",
9768 pretty_name, arglist);
9769 else
9770 error ("call of overloaded %<%s(%A)%> is ambiguous",
9771 pretty_name, arglist);
9772 print_z_candidates (location_of (name), candidates);
9773 if (free_p)
9774 free (pretty_name);
9775 }
9776 call = error_mark_node;
9777 }
9778 else
9779 {
9780 fn = cand->fn;
9781 call = NULL_TREE;
9782
9783 if (!(flags & LOOKUP_NONVIRTUAL)
9784 && DECL_PURE_VIRTUAL_P (fn)
9785 && instance == current_class_ref
9786 && (complain & tf_warning))
9787 {
9788 /* This is not an error, it is runtime undefined
9789 behavior. */
9790 if (!current_function_decl)
9791 warning (0, "pure virtual %q#D called from "
9792 "non-static data member initializer", fn);
9793 else if (DECL_CONSTRUCTOR_P (current_function_decl)
9794 || DECL_DESTRUCTOR_P (current_function_decl))
9795 warning (0, (DECL_CONSTRUCTOR_P (current_function_decl)
9796 ? G_("pure virtual %q#D called from constructor")
9797 : G_("pure virtual %q#D called from destructor")),
9798 fn);
9799 }
9800
9801 if (TREE_CODE (TREE_TYPE (fn)) == METHOD_TYPE
9802 && !DECL_CONSTRUCTOR_P (fn)
9803 && is_dummy_object (instance))
9804 {
9805 instance = maybe_resolve_dummy (instance, true);
9806 if (instance == error_mark_node)
9807 call = error_mark_node;
9808 else if (!is_dummy_object (instance))
9809 {
9810 /* We captured 'this' in the current lambda now that
9811 we know we really need it. */
9812 cand->first_arg = instance;
9813 }
9814 else if (any_dependent_bases_p ())
9815 /* We can't tell until instantiation time whether we can use
9816 *this as the implicit object argument. */;
9817 else
9818 {
9819 if (complain & tf_error)
9820 error ("cannot call member function %qD without object",
9821 fn);
9822 call = error_mark_node;
9823 }
9824 }
9825
9826 if (call != error_mark_node)
9827 {
9828 if (explicit_targs)
9829 flags |= LOOKUP_EXPLICIT_TMPL_ARGS;
9830 /* Now we know what function is being called. */
9831 if (fn_p)
9832 *fn_p = fn;
9833 /* Build the actual CALL_EXPR. */
9834 call = build_over_call (cand, flags, complain);
9835 /* In an expression of the form `a->f()' where `f' turns
9836 out to be a static member function, `a' is
9837 none-the-less evaluated. */
9838 if (TREE_CODE (TREE_TYPE (fn)) != METHOD_TYPE
9839 && !is_dummy_object (instance)
9840 && TREE_SIDE_EFFECTS (instance))
9841 {
9842 /* But avoid the implicit lvalue-rvalue conversion when 'a'
9843 is volatile. */
9844 tree a = instance;
9845 if (TREE_THIS_VOLATILE (a))
9846 a = build_this (a);
9847 call = build2 (COMPOUND_EXPR, TREE_TYPE (call), a, call);
9848 }
9849 else if (call != error_mark_node
9850 && DECL_DESTRUCTOR_P (cand->fn)
9851 && !VOID_TYPE_P (TREE_TYPE (call)))
9852 /* An explicit call of the form "x->~X()" has type
9853 "void". However, on platforms where destructors
9854 return "this" (i.e., those where
9855 targetm.cxx.cdtor_returns_this is true), such calls
9856 will appear to have a return value of pointer type
9857 to the low-level call machinery. We do not want to
9858 change the low-level machinery, since we want to be
9859 able to optimize "delete f()" on such platforms as
9860 "operator delete(~X(f()))" (rather than generating
9861 "t = f(), ~X(t), operator delete (t)"). */
9862 call = build_nop (void_type_node, call);
9863 }
9864 }
9865 }
9866
9867 if (processing_template_decl && call != error_mark_node)
9868 {
9869 bool cast_to_void = false;
9870
9871 if (TREE_CODE (call) == COMPOUND_EXPR)
9872 call = TREE_OPERAND (call, 1);
9873 else if (TREE_CODE (call) == NOP_EXPR)
9874 {
9875 cast_to_void = true;
9876 call = TREE_OPERAND (call, 0);
9877 }
9878 if (INDIRECT_REF_P (call))
9879 call = TREE_OPERAND (call, 0);
9880 call = (build_min_non_dep_call_vec
9881 (call,
9882 build_min (COMPONENT_REF, TREE_TYPE (CALL_EXPR_FN (call)),
9883 orig_instance, orig_fns, NULL_TREE),
9884 orig_args));
9885 SET_EXPR_LOCATION (call, input_location);
9886 call = convert_from_reference (call);
9887 if (cast_to_void)
9888 call = build_nop (void_type_node, call);
9889 }
9890
9891 /* Free all the conversions we allocated. */
9892 obstack_free (&conversion_obstack, p);
9893
9894 if (orig_args != NULL)
9895 release_tree_vector (orig_args);
9896
9897 return call;
9898 }
9899
9900 /* Wrapper for above. */
9901
9902 tree
9903 build_new_method_call (tree instance, tree fns, vec<tree, va_gc> **args,
9904 tree conversion_path, int flags,
9905 tree *fn_p, tsubst_flags_t complain)
9906 {
9907 tree ret;
9908 bool subtime = timevar_cond_start (TV_OVERLOAD);
9909 ret = build_new_method_call_1 (instance, fns, args, conversion_path, flags,
9910 fn_p, complain);
9911 timevar_cond_stop (TV_OVERLOAD, subtime);
9912 return ret;
9913 }
9914
9915 /* Returns true iff standard conversion sequence ICS1 is a proper
9916 subsequence of ICS2. */
9917
9918 static bool
9919 is_subseq (conversion *ics1, conversion *ics2)
9920 {
9921 /* We can assume that a conversion of the same code
9922 between the same types indicates a subsequence since we only get
9923 here if the types we are converting from are the same. */
9924
9925 while (ics1->kind == ck_rvalue
9926 || ics1->kind == ck_lvalue)
9927 ics1 = next_conversion (ics1);
9928
9929 while (1)
9930 {
9931 while (ics2->kind == ck_rvalue
9932 || ics2->kind == ck_lvalue)
9933 ics2 = next_conversion (ics2);
9934
9935 if (ics2->kind == ck_user
9936 || ics2->kind == ck_ambig
9937 || ics2->kind == ck_aggr
9938 || ics2->kind == ck_list
9939 || ics2->kind == ck_identity)
9940 /* At this point, ICS1 cannot be a proper subsequence of
9941 ICS2. We can get a USER_CONV when we are comparing the
9942 second standard conversion sequence of two user conversion
9943 sequences. */
9944 return false;
9945
9946 ics2 = next_conversion (ics2);
9947
9948 while (ics2->kind == ck_rvalue
9949 || ics2->kind == ck_lvalue)
9950 ics2 = next_conversion (ics2);
9951
9952 if (ics2->kind == ics1->kind
9953 && same_type_p (ics2->type, ics1->type)
9954 && (ics1->kind == ck_identity
9955 || same_type_p (next_conversion (ics2)->type,
9956 next_conversion (ics1)->type)))
9957 return true;
9958 }
9959 }
9960
9961 /* Returns nonzero iff DERIVED is derived from BASE. The inputs may
9962 be any _TYPE nodes. */
9963
9964 bool
9965 is_properly_derived_from (tree derived, tree base)
9966 {
9967 if (!CLASS_TYPE_P (derived) || !CLASS_TYPE_P (base))
9968 return false;
9969
9970 /* We only allow proper derivation here. The DERIVED_FROM_P macro
9971 considers every class derived from itself. */
9972 return (!same_type_ignoring_top_level_qualifiers_p (derived, base)
9973 && DERIVED_FROM_P (base, derived));
9974 }
9975
9976 /* We build the ICS for an implicit object parameter as a pointer
9977 conversion sequence. However, such a sequence should be compared
9978 as if it were a reference conversion sequence. If ICS is the
9979 implicit conversion sequence for an implicit object parameter,
9980 modify it accordingly. */
9981
9982 static void
9983 maybe_handle_implicit_object (conversion **ics)
9984 {
9985 if ((*ics)->this_p)
9986 {
9987 /* [over.match.funcs]
9988
9989 For non-static member functions, the type of the
9990 implicit object parameter is "reference to cv X"
9991 where X is the class of which the function is a
9992 member and cv is the cv-qualification on the member
9993 function declaration. */
9994 conversion *t = *ics;
9995 tree reference_type;
9996
9997 /* The `this' parameter is a pointer to a class type. Make the
9998 implicit conversion talk about a reference to that same class
9999 type. */
10000 reference_type = TREE_TYPE (t->type);
10001 reference_type = build_reference_type (reference_type);
10002
10003 if (t->kind == ck_qual)
10004 t = next_conversion (t);
10005 if (t->kind == ck_ptr)
10006 t = next_conversion (t);
10007 t = build_identity_conv (TREE_TYPE (t->type), NULL_TREE);
10008 t = direct_reference_binding (reference_type, t);
10009 t->this_p = 1;
10010 t->rvaluedness_matches_p = 0;
10011 *ics = t;
10012 }
10013 }
10014
10015 /* If *ICS is a REF_BIND set *ICS to the remainder of the conversion,
10016 and return the initial reference binding conversion. Otherwise,
10017 leave *ICS unchanged and return NULL. */
10018
10019 static conversion *
10020 maybe_handle_ref_bind (conversion **ics)
10021 {
10022 if ((*ics)->kind == ck_ref_bind)
10023 {
10024 conversion *old_ics = *ics;
10025 *ics = next_conversion (old_ics);
10026 (*ics)->user_conv_p = old_ics->user_conv_p;
10027 return old_ics;
10028 }
10029
10030 return NULL;
10031 }
10032
10033 /* Compare two implicit conversion sequences according to the rules set out in
10034 [over.ics.rank]. Return values:
10035
10036 1: ics1 is better than ics2
10037 -1: ics2 is better than ics1
10038 0: ics1 and ics2 are indistinguishable */
10039
10040 static int
10041 compare_ics (conversion *ics1, conversion *ics2)
10042 {
10043 tree from_type1;
10044 tree from_type2;
10045 tree to_type1;
10046 tree to_type2;
10047 tree deref_from_type1 = NULL_TREE;
10048 tree deref_from_type2 = NULL_TREE;
10049 tree deref_to_type1 = NULL_TREE;
10050 tree deref_to_type2 = NULL_TREE;
10051 conversion_rank rank1, rank2;
10052
10053 /* REF_BINDING is nonzero if the result of the conversion sequence
10054 is a reference type. In that case REF_CONV is the reference
10055 binding conversion. */
10056 conversion *ref_conv1;
10057 conversion *ref_conv2;
10058
10059 /* Compare badness before stripping the reference conversion. */
10060 if (ics1->bad_p > ics2->bad_p)
10061 return -1;
10062 else if (ics1->bad_p < ics2->bad_p)
10063 return 1;
10064
10065 /* Handle implicit object parameters. */
10066 maybe_handle_implicit_object (&ics1);
10067 maybe_handle_implicit_object (&ics2);
10068
10069 /* Handle reference parameters. */
10070 ref_conv1 = maybe_handle_ref_bind (&ics1);
10071 ref_conv2 = maybe_handle_ref_bind (&ics2);
10072
10073 /* List-initialization sequence L1 is a better conversion sequence than
10074 list-initialization sequence L2 if L1 converts to
10075 std::initializer_list<X> for some X and L2 does not. */
10076 if (ics1->kind == ck_list && ics2->kind != ck_list)
10077 return 1;
10078 if (ics2->kind == ck_list && ics1->kind != ck_list)
10079 return -1;
10080
10081 /* [over.ics.rank]
10082
10083 When comparing the basic forms of implicit conversion sequences (as
10084 defined in _over.best.ics_)
10085
10086 --a standard conversion sequence (_over.ics.scs_) is a better
10087 conversion sequence than a user-defined conversion sequence
10088 or an ellipsis conversion sequence, and
10089
10090 --a user-defined conversion sequence (_over.ics.user_) is a
10091 better conversion sequence than an ellipsis conversion sequence
10092 (_over.ics.ellipsis_). */
10093 /* Use BAD_CONVERSION_RANK because we already checked for a badness
10094 mismatch. If both ICS are bad, we try to make a decision based on
10095 what would have happened if they'd been good. This is not an
10096 extension, we'll still give an error when we build up the call; this
10097 just helps us give a more helpful error message. */
10098 rank1 = BAD_CONVERSION_RANK (ics1);
10099 rank2 = BAD_CONVERSION_RANK (ics2);
10100
10101 if (rank1 > rank2)
10102 return -1;
10103 else if (rank1 < rank2)
10104 return 1;
10105
10106 if (ics1->ellipsis_p)
10107 /* Both conversions are ellipsis conversions. */
10108 return 0;
10109
10110 /* User-defined conversion sequence U1 is a better conversion sequence
10111 than another user-defined conversion sequence U2 if they contain the
10112 same user-defined conversion operator or constructor and if the sec-
10113 ond standard conversion sequence of U1 is better than the second
10114 standard conversion sequence of U2. */
10115
10116 /* Handle list-conversion with the same code even though it isn't always
10117 ranked as a user-defined conversion and it doesn't have a second
10118 standard conversion sequence; it will still have the desired effect.
10119 Specifically, we need to do the reference binding comparison at the
10120 end of this function. */
10121
10122 if (ics1->user_conv_p || ics1->kind == ck_list
10123 || ics1->kind == ck_aggr || ics2->kind == ck_aggr)
10124 {
10125 conversion *t1;
10126 conversion *t2;
10127
10128 for (t1 = ics1; t1 && t1->kind != ck_user; t1 = next_conversion (t1))
10129 if (t1->kind == ck_ambig || t1->kind == ck_aggr
10130 || t1->kind == ck_list)
10131 break;
10132 for (t2 = ics2; t2 && t2->kind != ck_user; t2 = next_conversion (t2))
10133 if (t2->kind == ck_ambig || t2->kind == ck_aggr
10134 || t2->kind == ck_list)
10135 break;
10136
10137 if (!t1 || !t2 || t1->kind != t2->kind)
10138 return 0;
10139 else if (t1->kind == ck_user)
10140 {
10141 tree f1 = t1->cand ? t1->cand->fn : t1->type;
10142 tree f2 = t2->cand ? t2->cand->fn : t2->type;
10143 if (f1 != f2)
10144 return 0;
10145 }
10146 else
10147 {
10148 /* For ambiguous or aggregate conversions, use the target type as
10149 a proxy for the conversion function. */
10150 if (!same_type_ignoring_top_level_qualifiers_p (t1->type, t2->type))
10151 return 0;
10152 }
10153
10154 /* We can just fall through here, after setting up
10155 FROM_TYPE1 and FROM_TYPE2. */
10156 from_type1 = t1->type;
10157 from_type2 = t2->type;
10158 }
10159 else
10160 {
10161 conversion *t1;
10162 conversion *t2;
10163
10164 /* We're dealing with two standard conversion sequences.
10165
10166 [over.ics.rank]
10167
10168 Standard conversion sequence S1 is a better conversion
10169 sequence than standard conversion sequence S2 if
10170
10171 --S1 is a proper subsequence of S2 (comparing the conversion
10172 sequences in the canonical form defined by _over.ics.scs_,
10173 excluding any Lvalue Transformation; the identity
10174 conversion sequence is considered to be a subsequence of
10175 any non-identity conversion sequence */
10176
10177 t1 = ics1;
10178 while (t1->kind != ck_identity)
10179 t1 = next_conversion (t1);
10180 from_type1 = t1->type;
10181
10182 t2 = ics2;
10183 while (t2->kind != ck_identity)
10184 t2 = next_conversion (t2);
10185 from_type2 = t2->type;
10186 }
10187
10188 /* One sequence can only be a subsequence of the other if they start with
10189 the same type. They can start with different types when comparing the
10190 second standard conversion sequence in two user-defined conversion
10191 sequences. */
10192 if (same_type_p (from_type1, from_type2))
10193 {
10194 if (is_subseq (ics1, ics2))
10195 return 1;
10196 if (is_subseq (ics2, ics1))
10197 return -1;
10198 }
10199
10200 /* [over.ics.rank]
10201
10202 Or, if not that,
10203
10204 --the rank of S1 is better than the rank of S2 (by the rules
10205 defined below):
10206
10207 Standard conversion sequences are ordered by their ranks: an Exact
10208 Match is a better conversion than a Promotion, which is a better
10209 conversion than a Conversion.
10210
10211 Two conversion sequences with the same rank are indistinguishable
10212 unless one of the following rules applies:
10213
10214 --A conversion that does not a convert a pointer, pointer to member,
10215 or std::nullptr_t to bool is better than one that does.
10216
10217 The ICS_STD_RANK automatically handles the pointer-to-bool rule,
10218 so that we do not have to check it explicitly. */
10219 if (ics1->rank < ics2->rank)
10220 return 1;
10221 else if (ics2->rank < ics1->rank)
10222 return -1;
10223
10224 to_type1 = ics1->type;
10225 to_type2 = ics2->type;
10226
10227 /* A conversion from scalar arithmetic type to complex is worse than a
10228 conversion between scalar arithmetic types. */
10229 if (same_type_p (from_type1, from_type2)
10230 && ARITHMETIC_TYPE_P (from_type1)
10231 && ARITHMETIC_TYPE_P (to_type1)
10232 && ARITHMETIC_TYPE_P (to_type2)
10233 && ((TREE_CODE (to_type1) == COMPLEX_TYPE)
10234 != (TREE_CODE (to_type2) == COMPLEX_TYPE)))
10235 {
10236 if (TREE_CODE (to_type1) == COMPLEX_TYPE)
10237 return -1;
10238 else
10239 return 1;
10240 }
10241
10242 if (TYPE_PTR_P (from_type1)
10243 && TYPE_PTR_P (from_type2)
10244 && TYPE_PTR_P (to_type1)
10245 && TYPE_PTR_P (to_type2))
10246 {
10247 deref_from_type1 = TREE_TYPE (from_type1);
10248 deref_from_type2 = TREE_TYPE (from_type2);
10249 deref_to_type1 = TREE_TYPE (to_type1);
10250 deref_to_type2 = TREE_TYPE (to_type2);
10251 }
10252 /* The rules for pointers to members A::* are just like the rules
10253 for pointers A*, except opposite: if B is derived from A then
10254 A::* converts to B::*, not vice versa. For that reason, we
10255 switch the from_ and to_ variables here. */
10256 else if ((TYPE_PTRDATAMEM_P (from_type1) && TYPE_PTRDATAMEM_P (from_type2)
10257 && TYPE_PTRDATAMEM_P (to_type1) && TYPE_PTRDATAMEM_P (to_type2))
10258 || (TYPE_PTRMEMFUNC_P (from_type1)
10259 && TYPE_PTRMEMFUNC_P (from_type2)
10260 && TYPE_PTRMEMFUNC_P (to_type1)
10261 && TYPE_PTRMEMFUNC_P (to_type2)))
10262 {
10263 deref_to_type1 = TYPE_PTRMEM_CLASS_TYPE (from_type1);
10264 deref_to_type2 = TYPE_PTRMEM_CLASS_TYPE (from_type2);
10265 deref_from_type1 = TYPE_PTRMEM_CLASS_TYPE (to_type1);
10266 deref_from_type2 = TYPE_PTRMEM_CLASS_TYPE (to_type2);
10267 }
10268
10269 if (deref_from_type1 != NULL_TREE
10270 && RECORD_OR_UNION_CODE_P (TREE_CODE (deref_from_type1))
10271 && RECORD_OR_UNION_CODE_P (TREE_CODE (deref_from_type2)))
10272 {
10273 /* This was one of the pointer or pointer-like conversions.
10274
10275 [over.ics.rank]
10276
10277 --If class B is derived directly or indirectly from class A,
10278 conversion of B* to A* is better than conversion of B* to
10279 void*, and conversion of A* to void* is better than
10280 conversion of B* to void*. */
10281 if (VOID_TYPE_P (deref_to_type1)
10282 && VOID_TYPE_P (deref_to_type2))
10283 {
10284 if (is_properly_derived_from (deref_from_type1,
10285 deref_from_type2))
10286 return -1;
10287 else if (is_properly_derived_from (deref_from_type2,
10288 deref_from_type1))
10289 return 1;
10290 }
10291 else if (VOID_TYPE_P (deref_to_type1)
10292 || VOID_TYPE_P (deref_to_type2))
10293 {
10294 if (same_type_p (deref_from_type1, deref_from_type2))
10295 {
10296 if (VOID_TYPE_P (deref_to_type2))
10297 {
10298 if (is_properly_derived_from (deref_from_type1,
10299 deref_to_type1))
10300 return 1;
10301 }
10302 /* We know that DEREF_TO_TYPE1 is `void' here. */
10303 else if (is_properly_derived_from (deref_from_type1,
10304 deref_to_type2))
10305 return -1;
10306 }
10307 }
10308 else if (RECORD_OR_UNION_CODE_P (TREE_CODE (deref_to_type1))
10309 && RECORD_OR_UNION_CODE_P (TREE_CODE (deref_to_type2)))
10310 {
10311 /* [over.ics.rank]
10312
10313 --If class B is derived directly or indirectly from class A
10314 and class C is derived directly or indirectly from B,
10315
10316 --conversion of C* to B* is better than conversion of C* to
10317 A*,
10318
10319 --conversion of B* to A* is better than conversion of C* to
10320 A* */
10321 if (same_type_p (deref_from_type1, deref_from_type2))
10322 {
10323 if (is_properly_derived_from (deref_to_type1,
10324 deref_to_type2))
10325 return 1;
10326 else if (is_properly_derived_from (deref_to_type2,
10327 deref_to_type1))
10328 return -1;
10329 }
10330 else if (same_type_p (deref_to_type1, deref_to_type2))
10331 {
10332 if (is_properly_derived_from (deref_from_type2,
10333 deref_from_type1))
10334 return 1;
10335 else if (is_properly_derived_from (deref_from_type1,
10336 deref_from_type2))
10337 return -1;
10338 }
10339 }
10340 }
10341 else if (CLASS_TYPE_P (non_reference (from_type1))
10342 && same_type_p (from_type1, from_type2))
10343 {
10344 tree from = non_reference (from_type1);
10345
10346 /* [over.ics.rank]
10347
10348 --binding of an expression of type C to a reference of type
10349 B& is better than binding an expression of type C to a
10350 reference of type A&
10351
10352 --conversion of C to B is better than conversion of C to A, */
10353 if (is_properly_derived_from (from, to_type1)
10354 && is_properly_derived_from (from, to_type2))
10355 {
10356 if (is_properly_derived_from (to_type1, to_type2))
10357 return 1;
10358 else if (is_properly_derived_from (to_type2, to_type1))
10359 return -1;
10360 }
10361 }
10362 else if (CLASS_TYPE_P (non_reference (to_type1))
10363 && same_type_p (to_type1, to_type2))
10364 {
10365 tree to = non_reference (to_type1);
10366
10367 /* [over.ics.rank]
10368
10369 --binding of an expression of type B to a reference of type
10370 A& is better than binding an expression of type C to a
10371 reference of type A&,
10372
10373 --conversion of B to A is better than conversion of C to A */
10374 if (is_properly_derived_from (from_type1, to)
10375 && is_properly_derived_from (from_type2, to))
10376 {
10377 if (is_properly_derived_from (from_type2, from_type1))
10378 return 1;
10379 else if (is_properly_derived_from (from_type1, from_type2))
10380 return -1;
10381 }
10382 }
10383
10384 /* [over.ics.rank]
10385
10386 --S1 and S2 differ only in their qualification conversion and yield
10387 similar types T1 and T2 (_conv.qual_), respectively, and the cv-
10388 qualification signature of type T1 is a proper subset of the cv-
10389 qualification signature of type T2 */
10390 if (ics1->kind == ck_qual
10391 && ics2->kind == ck_qual
10392 && same_type_p (from_type1, from_type2))
10393 {
10394 int result = comp_cv_qual_signature (to_type1, to_type2);
10395 if (result != 0)
10396 return result;
10397 }
10398
10399 /* [over.ics.rank]
10400
10401 --S1 and S2 are reference bindings (_dcl.init.ref_) and neither refers
10402 to an implicit object parameter of a non-static member function
10403 declared without a ref-qualifier, and either S1 binds an lvalue
10404 reference to an lvalue and S2 binds an rvalue reference or S1 binds an
10405 rvalue reference to an rvalue and S2 binds an lvalue reference (C++0x
10406 draft standard, 13.3.3.2)
10407
10408 --S1 and S2 are reference bindings (_dcl.init.ref_), and the
10409 types to which the references refer are the same type except for
10410 top-level cv-qualifiers, and the type to which the reference
10411 initialized by S2 refers is more cv-qualified than the type to
10412 which the reference initialized by S1 refers.
10413
10414 DR 1328 [over.match.best]: the context is an initialization by
10415 conversion function for direct reference binding (13.3.1.6) of a
10416 reference to function type, the return type of F1 is the same kind of
10417 reference (i.e. lvalue or rvalue) as the reference being initialized,
10418 and the return type of F2 is not. */
10419
10420 if (ref_conv1 && ref_conv2)
10421 {
10422 if (!ref_conv1->this_p && !ref_conv2->this_p
10423 && (ref_conv1->rvaluedness_matches_p
10424 != ref_conv2->rvaluedness_matches_p)
10425 && (same_type_p (ref_conv1->type, ref_conv2->type)
10426 || (TYPE_REF_IS_RVALUE (ref_conv1->type)
10427 != TYPE_REF_IS_RVALUE (ref_conv2->type))))
10428 {
10429 if (ref_conv1->bad_p
10430 && !same_type_p (TREE_TYPE (ref_conv1->type),
10431 TREE_TYPE (ref_conv2->type)))
10432 /* Don't prefer a bad conversion that drops cv-quals to a bad
10433 conversion with the wrong rvalueness. */
10434 return 0;
10435 return (ref_conv1->rvaluedness_matches_p
10436 - ref_conv2->rvaluedness_matches_p);
10437 }
10438
10439 if (same_type_ignoring_top_level_qualifiers_p (to_type1, to_type2))
10440 {
10441 int q1 = cp_type_quals (TREE_TYPE (ref_conv1->type));
10442 int q2 = cp_type_quals (TREE_TYPE (ref_conv2->type));
10443 if (ref_conv1->bad_p)
10444 {
10445 /* Prefer the one that drops fewer cv-quals. */
10446 tree ftype = next_conversion (ref_conv1)->type;
10447 int fquals = cp_type_quals (ftype);
10448 q1 ^= fquals;
10449 q2 ^= fquals;
10450 }
10451 return comp_cv_qualification (q2, q1);
10452 }
10453 }
10454
10455 /* Neither conversion sequence is better than the other. */
10456 return 0;
10457 }
10458
10459 /* The source type for this standard conversion sequence. */
10460
10461 static tree
10462 source_type (conversion *t)
10463 {
10464 for (;; t = next_conversion (t))
10465 {
10466 if (t->kind == ck_user
10467 || t->kind == ck_ambig
10468 || t->kind == ck_identity)
10469 return t->type;
10470 }
10471 gcc_unreachable ();
10472 }
10473
10474 /* Note a warning about preferring WINNER to LOSER. We do this by storing
10475 a pointer to LOSER and re-running joust to produce the warning if WINNER
10476 is actually used. */
10477
10478 static void
10479 add_warning (struct z_candidate *winner, struct z_candidate *loser)
10480 {
10481 candidate_warning *cw = (candidate_warning *)
10482 conversion_obstack_alloc (sizeof (candidate_warning));
10483 cw->loser = loser;
10484 cw->next = winner->warnings;
10485 winner->warnings = cw;
10486 }
10487
10488 /* CAND is a constructor candidate in joust in C++17 and up. If it copies a
10489 prvalue returned from a conversion function, replace CAND with the candidate
10490 for the conversion and return true. Otherwise, return false. */
10491
10492 static bool
10493 joust_maybe_elide_copy (z_candidate *&cand)
10494 {
10495 tree fn = cand->fn;
10496 if (!DECL_COPY_CONSTRUCTOR_P (fn) && !DECL_MOVE_CONSTRUCTOR_P (fn))
10497 return false;
10498 conversion *conv = cand->convs[0];
10499 gcc_checking_assert (conv->kind == ck_ref_bind);
10500 conv = next_conversion (conv);
10501 if (conv->kind == ck_user && !TYPE_REF_P (conv->type))
10502 {
10503 gcc_checking_assert (same_type_ignoring_top_level_qualifiers_p
10504 (conv->type, DECL_CONTEXT (fn)));
10505 z_candidate *uc = conv->cand;
10506 if (DECL_CONV_FN_P (uc->fn))
10507 {
10508 cand = uc;
10509 return true;
10510 }
10511 }
10512 return false;
10513 }
10514
10515 /* Compare two candidates for overloading as described in
10516 [over.match.best]. Return values:
10517
10518 1: cand1 is better than cand2
10519 -1: cand2 is better than cand1
10520 0: cand1 and cand2 are indistinguishable */
10521
10522 static int
10523 joust (struct z_candidate *cand1, struct z_candidate *cand2, bool warn,
10524 tsubst_flags_t complain)
10525 {
10526 int winner = 0;
10527 int off1 = 0, off2 = 0;
10528 size_t i;
10529 size_t len;
10530
10531 /* Candidates that involve bad conversions are always worse than those
10532 that don't. */
10533 if (cand1->viable > cand2->viable)
10534 return 1;
10535 if (cand1->viable < cand2->viable)
10536 return -1;
10537
10538 /* If we have two pseudo-candidates for conversions to the same type,
10539 or two candidates for the same function, arbitrarily pick one. */
10540 if (cand1->fn == cand2->fn
10541 && (IS_TYPE_OR_DECL_P (cand1->fn)))
10542 return 1;
10543
10544 /* Prefer a non-deleted function over an implicitly deleted move
10545 constructor or assignment operator. This differs slightly from the
10546 wording for issue 1402 (which says the move op is ignored by overload
10547 resolution), but this way produces better error messages. */
10548 if (TREE_CODE (cand1->fn) == FUNCTION_DECL
10549 && TREE_CODE (cand2->fn) == FUNCTION_DECL
10550 && DECL_DELETED_FN (cand1->fn) != DECL_DELETED_FN (cand2->fn))
10551 {
10552 if (DECL_DELETED_FN (cand1->fn) && DECL_DEFAULTED_FN (cand1->fn)
10553 && move_fn_p (cand1->fn))
10554 return -1;
10555 if (DECL_DELETED_FN (cand2->fn) && DECL_DEFAULTED_FN (cand2->fn)
10556 && move_fn_p (cand2->fn))
10557 return 1;
10558 }
10559
10560 /* a viable function F1
10561 is defined to be a better function than another viable function F2 if
10562 for all arguments i, ICSi(F1) is not a worse conversion sequence than
10563 ICSi(F2), and then */
10564
10565 /* for some argument j, ICSj(F1) is a better conversion sequence than
10566 ICSj(F2) */
10567
10568 /* For comparing static and non-static member functions, we ignore
10569 the implicit object parameter of the non-static function. The
10570 standard says to pretend that the static function has an object
10571 parm, but that won't work with operator overloading. */
10572 len = cand1->num_convs;
10573 if (len != cand2->num_convs)
10574 {
10575 int static_1 = DECL_STATIC_FUNCTION_P (cand1->fn);
10576 int static_2 = DECL_STATIC_FUNCTION_P (cand2->fn);
10577
10578 if (DECL_CONSTRUCTOR_P (cand1->fn)
10579 && is_list_ctor (cand1->fn) != is_list_ctor (cand2->fn))
10580 /* We're comparing a near-match list constructor and a near-match
10581 non-list constructor. Just treat them as unordered. */
10582 return 0;
10583
10584 gcc_assert (static_1 != static_2);
10585
10586 if (static_1)
10587 off2 = 1;
10588 else
10589 {
10590 off1 = 1;
10591 --len;
10592 }
10593 }
10594
10595 /* Handle C++17 copy elision in [over.match.ctor] (direct-init) context. The
10596 standard currently says that only constructors are candidates, but if one
10597 copies a prvalue returned by a conversion function we want to treat the
10598 conversion as the candidate instead.
10599
10600 Clang does something similar, as discussed at
10601 http://lists.isocpp.org/core/2017/10/3166.php
10602 http://lists.isocpp.org/core/2019/03/5721.php */
10603 int elided_tiebreaker = 0;
10604 if (len == 1 && cxx_dialect >= cxx17
10605 && DECL_P (cand1->fn)
10606 && DECL_COMPLETE_CONSTRUCTOR_P (cand1->fn)
10607 && !(cand1->flags & LOOKUP_ONLYCONVERTING))
10608 {
10609 bool elided1 = joust_maybe_elide_copy (cand1);
10610 bool elided2 = joust_maybe_elide_copy (cand2);
10611 /* As a tiebreaker below we will prefer a constructor to a conversion
10612 operator exposed this way. */
10613 elided_tiebreaker = elided2 - elided1;
10614 }
10615
10616 for (i = 0; i < len; ++i)
10617 {
10618 conversion *t1 = cand1->convs[i + off1];
10619 conversion *t2 = cand2->convs[i + off2];
10620 int comp = compare_ics (t1, t2);
10621
10622 if (comp != 0)
10623 {
10624 if ((complain & tf_warning)
10625 && warn_sign_promo
10626 && (CONVERSION_RANK (t1) + CONVERSION_RANK (t2)
10627 == cr_std + cr_promotion)
10628 && t1->kind == ck_std
10629 && t2->kind == ck_std
10630 && TREE_CODE (t1->type) == INTEGER_TYPE
10631 && TREE_CODE (t2->type) == INTEGER_TYPE
10632 && (TYPE_PRECISION (t1->type)
10633 == TYPE_PRECISION (t2->type))
10634 && (TYPE_UNSIGNED (next_conversion (t1)->type)
10635 || (TREE_CODE (next_conversion (t1)->type)
10636 == ENUMERAL_TYPE)))
10637 {
10638 tree type = next_conversion (t1)->type;
10639 tree type1, type2;
10640 struct z_candidate *w, *l;
10641 if (comp > 0)
10642 type1 = t1->type, type2 = t2->type,
10643 w = cand1, l = cand2;
10644 else
10645 type1 = t2->type, type2 = t1->type,
10646 w = cand2, l = cand1;
10647
10648 if (warn)
10649 {
10650 warning (OPT_Wsign_promo, "passing %qT chooses %qT over %qT",
10651 type, type1, type2);
10652 warning (OPT_Wsign_promo, " in call to %qD", w->fn);
10653 }
10654 else
10655 add_warning (w, l);
10656 }
10657
10658 if (winner && comp != winner)
10659 {
10660 winner = 0;
10661 goto tweak;
10662 }
10663 winner = comp;
10664 }
10665 }
10666
10667 /* warn about confusing overload resolution for user-defined conversions,
10668 either between a constructor and a conversion op, or between two
10669 conversion ops. */
10670 if ((complain & tf_warning)
10671 && winner && warn_conversion && cand1->second_conv
10672 && (!DECL_CONSTRUCTOR_P (cand1->fn) || !DECL_CONSTRUCTOR_P (cand2->fn))
10673 && winner != compare_ics (cand1->second_conv, cand2->second_conv))
10674 {
10675 struct z_candidate *w, *l;
10676 bool give_warning = false;
10677
10678 if (winner == 1)
10679 w = cand1, l = cand2;
10680 else
10681 w = cand2, l = cand1;
10682
10683 /* We don't want to complain about `X::operator T1 ()'
10684 beating `X::operator T2 () const', when T2 is a no less
10685 cv-qualified version of T1. */
10686 if (DECL_CONTEXT (w->fn) == DECL_CONTEXT (l->fn)
10687 && !DECL_CONSTRUCTOR_P (w->fn) && !DECL_CONSTRUCTOR_P (l->fn))
10688 {
10689 tree t = TREE_TYPE (TREE_TYPE (l->fn));
10690 tree f = TREE_TYPE (TREE_TYPE (w->fn));
10691
10692 if (TREE_CODE (t) == TREE_CODE (f) && INDIRECT_TYPE_P (t))
10693 {
10694 t = TREE_TYPE (t);
10695 f = TREE_TYPE (f);
10696 }
10697 if (!comp_ptr_ttypes (t, f))
10698 give_warning = true;
10699 }
10700 else
10701 give_warning = true;
10702
10703 if (!give_warning)
10704 /*NOP*/;
10705 else if (warn)
10706 {
10707 tree source = source_type (w->convs[0]);
10708 if (INDIRECT_TYPE_P (source))
10709 source = TREE_TYPE (source);
10710 auto_diagnostic_group d;
10711 if (warning (OPT_Wconversion, "choosing %qD over %qD", w->fn, l->fn)
10712 && warning (OPT_Wconversion, " for conversion from %qH to %qI",
10713 source, w->second_conv->type))
10714 {
10715 inform (input_location, " because conversion sequence "
10716 "for the argument is better");
10717 }
10718 }
10719 else
10720 add_warning (w, l);
10721 }
10722
10723 if (winner)
10724 return winner;
10725
10726 /* Put this tiebreaker first, so that we don't try to look at second_conv of
10727 a constructor candidate that doesn't have one. */
10728 if (elided_tiebreaker)
10729 return elided_tiebreaker;
10730
10731 /* DR 495 moved this tiebreaker above the template ones. */
10732 /* or, if not that,
10733 the context is an initialization by user-defined conversion (see
10734 _dcl.init_ and _over.match.user_) and the standard conversion
10735 sequence from the return type of F1 to the destination type (i.e.,
10736 the type of the entity being initialized) is a better conversion
10737 sequence than the standard conversion sequence from the return type
10738 of F2 to the destination type. */
10739
10740 if (cand1->second_conv)
10741 {
10742 winner = compare_ics (cand1->second_conv, cand2->second_conv);
10743 if (winner)
10744 return winner;
10745 }
10746
10747 /* or, if not that,
10748 F1 is a non-template function and F2 is a template function
10749 specialization. */
10750
10751 if (!cand1->template_decl && cand2->template_decl)
10752 return 1;
10753 else if (cand1->template_decl && !cand2->template_decl)
10754 return -1;
10755
10756 /* or, if not that,
10757 F1 and F2 are template functions and the function template for F1 is
10758 more specialized than the template for F2 according to the partial
10759 ordering rules. */
10760
10761 if (cand1->template_decl && cand2->template_decl)
10762 {
10763 winner = more_specialized_fn
10764 (TI_TEMPLATE (cand1->template_decl),
10765 TI_TEMPLATE (cand2->template_decl),
10766 /* [temp.func.order]: The presence of unused ellipsis and default
10767 arguments has no effect on the partial ordering of function
10768 templates. add_function_candidate() will not have
10769 counted the "this" argument for constructors. */
10770 cand1->num_convs + DECL_CONSTRUCTOR_P (cand1->fn));
10771 if (winner)
10772 return winner;
10773 }
10774
10775 // C++ Concepts
10776 // or, if not that, F1 is more constrained than F2.
10777 if (flag_concepts && DECL_P (cand1->fn) && DECL_P (cand2->fn))
10778 {
10779 winner = more_constrained (cand1->fn, cand2->fn);
10780 if (winner)
10781 return winner;
10782 }
10783
10784 /* F1 is generated from a deduction-guide (13.3.1.8) and F2 is not */
10785 if (deduction_guide_p (cand1->fn))
10786 {
10787 gcc_assert (deduction_guide_p (cand2->fn));
10788 /* We distinguish between candidates from an explicit deduction guide and
10789 candidates built from a constructor based on DECL_ARTIFICIAL. */
10790 int art1 = DECL_ARTIFICIAL (cand1->fn);
10791 int art2 = DECL_ARTIFICIAL (cand2->fn);
10792 if (art1 != art2)
10793 return art2 - art1;
10794
10795 if (art1)
10796 {
10797 /* Prefer the special copy guide over a declared copy/move
10798 constructor. */
10799 if (copy_guide_p (cand1->fn))
10800 return 1;
10801 if (copy_guide_p (cand2->fn))
10802 return -1;
10803
10804 /* Prefer a candidate generated from a non-template constructor. */
10805 int tg1 = template_guide_p (cand1->fn);
10806 int tg2 = template_guide_p (cand2->fn);
10807 if (tg1 != tg2)
10808 return tg2 - tg1;
10809 }
10810 }
10811
10812 /* F1 is a member of a class D, F2 is a member of a base class B of D, and
10813 for all arguments the corresponding parameters of F1 and F2 have the same
10814 type (CWG 2273/2277). */
10815 if (DECL_P (cand1->fn) && DECL_CLASS_SCOPE_P (cand1->fn)
10816 && !DECL_CONV_FN_P (cand1->fn)
10817 && DECL_P (cand2->fn) && DECL_CLASS_SCOPE_P (cand2->fn)
10818 && !DECL_CONV_FN_P (cand2->fn))
10819 {
10820 tree base1 = DECL_CONTEXT (strip_inheriting_ctors (cand1->fn));
10821 tree base2 = DECL_CONTEXT (strip_inheriting_ctors (cand2->fn));
10822
10823 bool used1 = false;
10824 bool used2 = false;
10825 if (base1 == base2)
10826 /* No difference. */;
10827 else if (DERIVED_FROM_P (base1, base2))
10828 used1 = true;
10829 else if (DERIVED_FROM_P (base2, base1))
10830 used2 = true;
10831
10832 if (int diff = used2 - used1)
10833 {
10834 for (i = 0; i < len; ++i)
10835 {
10836 conversion *t1 = cand1->convs[i + off1];
10837 conversion *t2 = cand2->convs[i + off2];
10838 if (!same_type_p (t1->type, t2->type))
10839 break;
10840 }
10841 if (i == len)
10842 return diff;
10843 }
10844 }
10845
10846 /* Check whether we can discard a builtin candidate, either because we
10847 have two identical ones or matching builtin and non-builtin candidates.
10848
10849 (Pedantically in the latter case the builtin which matched the user
10850 function should not be added to the overload set, but we spot it here.
10851
10852 [over.match.oper]
10853 ... the builtin candidates include ...
10854 - do not have the same parameter type list as any non-template
10855 non-member candidate. */
10856
10857 if (identifier_p (cand1->fn) || identifier_p (cand2->fn))
10858 {
10859 for (i = 0; i < len; ++i)
10860 if (!same_type_p (cand1->convs[i]->type,
10861 cand2->convs[i]->type))
10862 break;
10863 if (i == cand1->num_convs)
10864 {
10865 if (cand1->fn == cand2->fn)
10866 /* Two built-in candidates; arbitrarily pick one. */
10867 return 1;
10868 else if (identifier_p (cand1->fn))
10869 /* cand1 is built-in; prefer cand2. */
10870 return -1;
10871 else
10872 /* cand2 is built-in; prefer cand1. */
10873 return 1;
10874 }
10875 }
10876
10877 /* For candidates of a multi-versioned function, make the version with
10878 the highest priority win. This version will be checked for dispatching
10879 first. If this version can be inlined into the caller, the front-end
10880 will simply make a direct call to this function. */
10881
10882 if (TREE_CODE (cand1->fn) == FUNCTION_DECL
10883 && DECL_FUNCTION_VERSIONED (cand1->fn)
10884 && TREE_CODE (cand2->fn) == FUNCTION_DECL
10885 && DECL_FUNCTION_VERSIONED (cand2->fn))
10886 {
10887 tree f1 = TREE_TYPE (cand1->fn);
10888 tree f2 = TREE_TYPE (cand2->fn);
10889 tree p1 = TYPE_ARG_TYPES (f1);
10890 tree p2 = TYPE_ARG_TYPES (f2);
10891
10892 /* Check if cand1->fn and cand2->fn are versions of the same function. It
10893 is possible that cand1->fn and cand2->fn are function versions but of
10894 different functions. Check types to see if they are versions of the same
10895 function. */
10896 if (compparms (p1, p2)
10897 && same_type_p (TREE_TYPE (f1), TREE_TYPE (f2)))
10898 {
10899 /* Always make the version with the higher priority, more
10900 specialized, win. */
10901 gcc_assert (targetm.compare_version_priority);
10902 if (targetm.compare_version_priority (cand1->fn, cand2->fn) >= 0)
10903 return 1;
10904 else
10905 return -1;
10906 }
10907 }
10908
10909 /* If the two function declarations represent the same function (this can
10910 happen with declarations in multiple scopes and arg-dependent lookup),
10911 arbitrarily choose one. But first make sure the default args we're
10912 using match. */
10913 if (DECL_P (cand1->fn) && DECL_P (cand2->fn)
10914 && equal_functions (cand1->fn, cand2->fn))
10915 {
10916 tree parms1 = TYPE_ARG_TYPES (TREE_TYPE (cand1->fn));
10917 tree parms2 = TYPE_ARG_TYPES (TREE_TYPE (cand2->fn));
10918
10919 gcc_assert (!DECL_CONSTRUCTOR_P (cand1->fn));
10920
10921 for (i = 0; i < len; ++i)
10922 {
10923 /* Don't crash if the fn is variadic. */
10924 if (!parms1)
10925 break;
10926 parms1 = TREE_CHAIN (parms1);
10927 parms2 = TREE_CHAIN (parms2);
10928 }
10929
10930 if (off1)
10931 parms1 = TREE_CHAIN (parms1);
10932 else if (off2)
10933 parms2 = TREE_CHAIN (parms2);
10934
10935 for (; parms1; ++i)
10936 {
10937 if (!cp_tree_equal (TREE_PURPOSE (parms1),
10938 TREE_PURPOSE (parms2)))
10939 {
10940 if (warn)
10941 {
10942 if (complain & tf_error)
10943 {
10944 auto_diagnostic_group d;
10945 if (permerror (input_location,
10946 "default argument mismatch in "
10947 "overload resolution"))
10948 {
10949 inform (DECL_SOURCE_LOCATION (cand1->fn),
10950 " candidate 1: %q#F", cand1->fn);
10951 inform (DECL_SOURCE_LOCATION (cand2->fn),
10952 " candidate 2: %q#F", cand2->fn);
10953 }
10954 }
10955 else
10956 return 0;
10957 }
10958 else
10959 add_warning (cand1, cand2);
10960 break;
10961 }
10962 parms1 = TREE_CHAIN (parms1);
10963 parms2 = TREE_CHAIN (parms2);
10964 }
10965
10966 return 1;
10967 }
10968
10969 tweak:
10970
10971 /* Extension: If the worst conversion for one candidate is better than the
10972 worst conversion for the other, take the first. */
10973 if (!pedantic && (complain & tf_warning_or_error))
10974 {
10975 conversion_rank rank1 = cr_identity, rank2 = cr_identity;
10976 struct z_candidate *w = 0, *l = 0;
10977
10978 for (i = 0; i < len; ++i)
10979 {
10980 if (CONVERSION_RANK (cand1->convs[i+off1]) > rank1)
10981 rank1 = CONVERSION_RANK (cand1->convs[i+off1]);
10982 if (CONVERSION_RANK (cand2->convs[i + off2]) > rank2)
10983 rank2 = CONVERSION_RANK (cand2->convs[i + off2]);
10984 }
10985 if (rank1 < rank2)
10986 winner = 1, w = cand1, l = cand2;
10987 if (rank1 > rank2)
10988 winner = -1, w = cand2, l = cand1;
10989 if (winner)
10990 {
10991 /* Don't choose a deleted function over ambiguity. */
10992 if (DECL_P (w->fn) && DECL_DELETED_FN (w->fn))
10993 return 0;
10994 if (warn)
10995 {
10996 auto_diagnostic_group d;
10997 if (pedwarn (input_location, 0,
10998 "ISO C++ says that these are ambiguous, even "
10999 "though the worst conversion for the first is "
11000 "better than the worst conversion for the second:"))
11001 {
11002 print_z_candidate (input_location, N_("candidate 1:"), w);
11003 print_z_candidate (input_location, N_("candidate 2:"), l);
11004 }
11005 }
11006 else
11007 add_warning (w, l);
11008 return winner;
11009 }
11010 }
11011
11012 gcc_assert (!winner);
11013 return 0;
11014 }
11015
11016 /* Given a list of candidates for overloading, find the best one, if any.
11017 This algorithm has a worst case of O(2n) (winner is last), and a best
11018 case of O(n/2) (totally ambiguous); much better than a sorting
11019 algorithm. */
11020
11021 static struct z_candidate *
11022 tourney (struct z_candidate *candidates, tsubst_flags_t complain)
11023 {
11024 struct z_candidate *champ = candidates, *challenger;
11025 int fate;
11026 int champ_compared_to_predecessor = 0;
11027
11028 /* Walk through the list once, comparing each current champ to the next
11029 candidate, knocking out a candidate or two with each comparison. */
11030
11031 for (challenger = champ->next; challenger; )
11032 {
11033 fate = joust (champ, challenger, 0, complain);
11034 if (fate == 1)
11035 challenger = challenger->next;
11036 else
11037 {
11038 if (fate == 0)
11039 {
11040 champ = challenger->next;
11041 if (champ == 0)
11042 return NULL;
11043 champ_compared_to_predecessor = 0;
11044 }
11045 else
11046 {
11047 champ = challenger;
11048 champ_compared_to_predecessor = 1;
11049 }
11050
11051 challenger = champ->next;
11052 }
11053 }
11054
11055 /* Make sure the champ is better than all the candidates it hasn't yet
11056 been compared to. */
11057
11058 for (challenger = candidates;
11059 challenger != champ
11060 && !(champ_compared_to_predecessor && challenger->next == champ);
11061 challenger = challenger->next)
11062 {
11063 fate = joust (champ, challenger, 0, complain);
11064 if (fate != 1)
11065 return NULL;
11066 }
11067
11068 return champ;
11069 }
11070
11071 /* Returns nonzero if things of type FROM can be converted to TO. */
11072
11073 bool
11074 can_convert (tree to, tree from, tsubst_flags_t complain)
11075 {
11076 tree arg = NULL_TREE;
11077 /* implicit_conversion only considers user-defined conversions
11078 if it has an expression for the call argument list. */
11079 if (CLASS_TYPE_P (from) || CLASS_TYPE_P (to))
11080 arg = build1 (CAST_EXPR, from, NULL_TREE);
11081 return can_convert_arg (to, from, arg, LOOKUP_IMPLICIT, complain);
11082 }
11083
11084 /* Returns nonzero if things of type FROM can be converted to TO with a
11085 standard conversion. */
11086
11087 bool
11088 can_convert_standard (tree to, tree from, tsubst_flags_t complain)
11089 {
11090 return can_convert_arg (to, from, NULL_TREE, LOOKUP_IMPLICIT, complain);
11091 }
11092
11093 /* Returns nonzero if ARG (of type FROM) can be converted to TO. */
11094
11095 bool
11096 can_convert_arg (tree to, tree from, tree arg, int flags,
11097 tsubst_flags_t complain)
11098 {
11099 conversion *t;
11100 void *p;
11101 bool ok_p;
11102
11103 /* Get the high-water mark for the CONVERSION_OBSTACK. */
11104 p = conversion_obstack_alloc (0);
11105 /* We want to discard any access checks done for this test,
11106 as we might not be in the appropriate access context and
11107 we'll do the check again when we actually perform the
11108 conversion. */
11109 push_deferring_access_checks (dk_deferred);
11110
11111 t = implicit_conversion (to, from, arg, /*c_cast_p=*/false,
11112 flags, complain);
11113 ok_p = (t && !t->bad_p);
11114
11115 /* Discard the access checks now. */
11116 pop_deferring_access_checks ();
11117 /* Free all the conversions we allocated. */
11118 obstack_free (&conversion_obstack, p);
11119
11120 return ok_p;
11121 }
11122
11123 /* Like can_convert_arg, but allows dubious conversions as well. */
11124
11125 bool
11126 can_convert_arg_bad (tree to, tree from, tree arg, int flags,
11127 tsubst_flags_t complain)
11128 {
11129 conversion *t;
11130 void *p;
11131
11132 /* Get the high-water mark for the CONVERSION_OBSTACK. */
11133 p = conversion_obstack_alloc (0);
11134 /* Try to perform the conversion. */
11135 t = implicit_conversion (to, from, arg, /*c_cast_p=*/false,
11136 flags, complain);
11137 /* Free all the conversions we allocated. */
11138 obstack_free (&conversion_obstack, p);
11139
11140 return t != NULL;
11141 }
11142
11143 /* Convert EXPR to TYPE. Return the converted expression.
11144
11145 Note that we allow bad conversions here because by the time we get to
11146 this point we are committed to doing the conversion. If we end up
11147 doing a bad conversion, convert_like will complain. */
11148
11149 tree
11150 perform_implicit_conversion_flags (tree type, tree expr,
11151 tsubst_flags_t complain, int flags)
11152 {
11153 conversion *conv;
11154 void *p;
11155 location_t loc = cp_expr_loc_or_input_loc (expr);
11156
11157 if (TYPE_REF_P (type))
11158 expr = mark_lvalue_use (expr);
11159 else
11160 expr = mark_rvalue_use (expr);
11161
11162 if (error_operand_p (expr))
11163 return error_mark_node;
11164
11165 /* Get the high-water mark for the CONVERSION_OBSTACK. */
11166 p = conversion_obstack_alloc (0);
11167
11168 conv = implicit_conversion (type, TREE_TYPE (expr), expr,
11169 /*c_cast_p=*/false,
11170 flags, complain);
11171
11172 if (!conv)
11173 {
11174 if (complain & tf_error)
11175 {
11176 /* If expr has unknown type, then it is an overloaded function.
11177 Call instantiate_type to get good error messages. */
11178 if (TREE_TYPE (expr) == unknown_type_node)
11179 instantiate_type (type, expr, complain);
11180 else if (invalid_nonstatic_memfn_p (loc, expr, complain))
11181 /* We gave an error. */;
11182 else
11183 {
11184 range_label_for_type_mismatch label (TREE_TYPE (expr), type);
11185 gcc_rich_location rich_loc (loc, &label);
11186 error_at (&rich_loc, "could not convert %qE from %qH to %qI",
11187 expr, TREE_TYPE (expr), type);
11188 }
11189 }
11190 expr = error_mark_node;
11191 }
11192 else if (processing_template_decl && conv->kind != ck_identity)
11193 {
11194 /* In a template, we are only concerned about determining the
11195 type of non-dependent expressions, so we do not have to
11196 perform the actual conversion. But for initializers, we
11197 need to be able to perform it at instantiation
11198 (or instantiate_non_dependent_expr) time. */
11199 expr = build1 (IMPLICIT_CONV_EXPR, type, expr);
11200 if (!(flags & LOOKUP_ONLYCONVERTING))
11201 IMPLICIT_CONV_EXPR_DIRECT_INIT (expr) = true;
11202 if (flags & LOOKUP_NO_NARROWING)
11203 IMPLICIT_CONV_EXPR_BRACED_INIT (expr) = true;
11204 }
11205 else
11206 expr = convert_like (conv, expr, complain);
11207
11208 /* Free all the conversions we allocated. */
11209 obstack_free (&conversion_obstack, p);
11210
11211 return expr;
11212 }
11213
11214 tree
11215 perform_implicit_conversion (tree type, tree expr, tsubst_flags_t complain)
11216 {
11217 return perform_implicit_conversion_flags (type, expr, complain,
11218 LOOKUP_IMPLICIT);
11219 }
11220
11221 /* Convert EXPR to TYPE (as a direct-initialization) if that is
11222 permitted. If the conversion is valid, the converted expression is
11223 returned. Otherwise, NULL_TREE is returned, except in the case
11224 that TYPE is a class type; in that case, an error is issued. If
11225 C_CAST_P is true, then this direct-initialization is taking
11226 place as part of a static_cast being attempted as part of a C-style
11227 cast. */
11228
11229 tree
11230 perform_direct_initialization_if_possible (tree type,
11231 tree expr,
11232 bool c_cast_p,
11233 tsubst_flags_t complain)
11234 {
11235 conversion *conv;
11236 void *p;
11237
11238 if (type == error_mark_node || error_operand_p (expr))
11239 return error_mark_node;
11240 /* [dcl.init]
11241
11242 If the destination type is a (possibly cv-qualified) class type:
11243
11244 -- If the initialization is direct-initialization ...,
11245 constructors are considered. ... If no constructor applies, or
11246 the overload resolution is ambiguous, the initialization is
11247 ill-formed. */
11248 if (CLASS_TYPE_P (type))
11249 {
11250 releasing_vec args (make_tree_vector_single (expr));
11251 expr = build_special_member_call (NULL_TREE, complete_ctor_identifier,
11252 &args, type, LOOKUP_NORMAL, complain);
11253 return build_cplus_new (type, expr, complain);
11254 }
11255
11256 /* Get the high-water mark for the CONVERSION_OBSTACK. */
11257 p = conversion_obstack_alloc (0);
11258
11259 conv = implicit_conversion (type, TREE_TYPE (expr), expr,
11260 c_cast_p,
11261 LOOKUP_NORMAL, complain);
11262 if (!conv || conv->bad_p)
11263 expr = NULL_TREE;
11264 else if (processing_template_decl && conv->kind != ck_identity)
11265 {
11266 /* In a template, we are only concerned about determining the
11267 type of non-dependent expressions, so we do not have to
11268 perform the actual conversion. But for initializers, we
11269 need to be able to perform it at instantiation
11270 (or instantiate_non_dependent_expr) time. */
11271 expr = build1 (IMPLICIT_CONV_EXPR, type, expr);
11272 IMPLICIT_CONV_EXPR_DIRECT_INIT (expr) = true;
11273 }
11274 else
11275 expr = convert_like_real (conv, expr, NULL_TREE, 0,
11276 /*issue_conversion_warnings=*/false,
11277 c_cast_p,
11278 complain);
11279
11280 /* Free all the conversions we allocated. */
11281 obstack_free (&conversion_obstack, p);
11282
11283 return expr;
11284 }
11285
11286 /* When initializing a reference that lasts longer than a full-expression,
11287 this special rule applies:
11288
11289 [class.temporary]
11290
11291 The temporary to which the reference is bound or the temporary
11292 that is the complete object to which the reference is bound
11293 persists for the lifetime of the reference.
11294
11295 The temporaries created during the evaluation of the expression
11296 initializing the reference, except the temporary to which the
11297 reference is bound, are destroyed at the end of the
11298 full-expression in which they are created.
11299
11300 In that case, we store the converted expression into a new
11301 VAR_DECL in a new scope.
11302
11303 However, we want to be careful not to create temporaries when
11304 they are not required. For example, given:
11305
11306 struct B {};
11307 struct D : public B {};
11308 D f();
11309 const B& b = f();
11310
11311 there is no need to copy the return value from "f"; we can just
11312 extend its lifetime. Similarly, given:
11313
11314 struct S {};
11315 struct T { operator S(); };
11316 T t;
11317 const S& s = t;
11318
11319 we can extend the lifetime of the return value of the conversion
11320 operator.
11321
11322 The next several functions are involved in this lifetime extension. */
11323
11324 /* DECL is a VAR_DECL or FIELD_DECL whose type is a REFERENCE_TYPE. The
11325 reference is being bound to a temporary. Create and return a new
11326 VAR_DECL with the indicated TYPE; this variable will store the value to
11327 which the reference is bound. */
11328
11329 tree
11330 make_temporary_var_for_ref_to_temp (tree decl, tree type)
11331 {
11332 tree var = create_temporary_var (type);
11333
11334 /* Register the variable. */
11335 if (VAR_P (decl)
11336 && (TREE_STATIC (decl) || CP_DECL_THREAD_LOCAL_P (decl)))
11337 {
11338 /* Namespace-scope or local static; give it a mangled name. */
11339
11340 /* If an initializer is visible to multiple translation units, those
11341 translation units must agree on the addresses of the
11342 temporaries. Therefore the temporaries must be given a consistent name
11343 and vague linkage. The mangled name of a temporary is the name of the
11344 non-temporary object in whose initializer they appear, prefixed with
11345 GR and suffixed with a sequence number mangled using the usual rules
11346 for a seq-id. Temporaries are numbered with a pre-order, depth-first,
11347 left-to-right walk of the complete initializer. */
11348
11349 TREE_STATIC (var) = TREE_STATIC (decl);
11350 TREE_PUBLIC (var) = TREE_PUBLIC (decl);
11351 if (vague_linkage_p (decl))
11352 comdat_linkage (var);
11353
11354 CP_DECL_THREAD_LOCAL_P (var) = CP_DECL_THREAD_LOCAL_P (decl);
11355 set_decl_tls_model (var, DECL_TLS_MODEL (decl));
11356
11357 tree name = mangle_ref_init_variable (decl);
11358 DECL_NAME (var) = name;
11359 SET_DECL_ASSEMBLER_NAME (var, name);
11360 }
11361 else
11362 /* Create a new cleanup level if necessary. */
11363 maybe_push_cleanup_level (type);
11364
11365 return pushdecl (var);
11366 }
11367
11368 /* EXPR is the initializer for a variable DECL of reference or
11369 std::initializer_list type. Create, push and return a new VAR_DECL
11370 for the initializer so that it will live as long as DECL. Any
11371 cleanup for the new variable is returned through CLEANUP, and the
11372 code to initialize the new variable is returned through INITP. */
11373
11374 static tree
11375 set_up_extended_ref_temp (tree decl, tree expr, vec<tree, va_gc> **cleanups,
11376 tree *initp)
11377 {
11378 tree init;
11379 tree type;
11380 tree var;
11381
11382 /* Create the temporary variable. */
11383 type = TREE_TYPE (expr);
11384 var = make_temporary_var_for_ref_to_temp (decl, type);
11385 layout_decl (var, 0);
11386 /* If the rvalue is the result of a function call it will be
11387 a TARGET_EXPR. If it is some other construct (such as a
11388 member access expression where the underlying object is
11389 itself the result of a function call), turn it into a
11390 TARGET_EXPR here. It is important that EXPR be a
11391 TARGET_EXPR below since otherwise the INIT_EXPR will
11392 attempt to make a bitwise copy of EXPR to initialize
11393 VAR. */
11394 if (TREE_CODE (expr) != TARGET_EXPR)
11395 expr = get_target_expr (expr);
11396
11397 if (TREE_CODE (decl) == FIELD_DECL
11398 && extra_warnings && !TREE_NO_WARNING (decl))
11399 {
11400 warning (OPT_Wextra, "a temporary bound to %qD only persists "
11401 "until the constructor exits", decl);
11402 TREE_NO_WARNING (decl) = true;
11403 }
11404
11405 /* Recursively extend temps in this initializer. */
11406 TARGET_EXPR_INITIAL (expr)
11407 = extend_ref_init_temps (decl, TARGET_EXPR_INITIAL (expr), cleanups);
11408
11409 /* Any reference temp has a non-trivial initializer. */
11410 DECL_NONTRIVIALLY_INITIALIZED_P (var) = true;
11411
11412 /* If the initializer is constant, put it in DECL_INITIAL so we get
11413 static initialization and use in constant expressions. */
11414 init = maybe_constant_init (expr);
11415 /* As in store_init_value. */
11416 init = cp_fully_fold (init);
11417 if (TREE_CONSTANT (init))
11418 {
11419 if (literal_type_p (type) && CP_TYPE_CONST_NON_VOLATILE_P (type))
11420 {
11421 /* 5.19 says that a constant expression can include an
11422 lvalue-rvalue conversion applied to "a glvalue of literal type
11423 that refers to a non-volatile temporary object initialized
11424 with a constant expression". Rather than try to communicate
11425 that this VAR_DECL is a temporary, just mark it constexpr. */
11426 DECL_DECLARED_CONSTEXPR_P (var) = true;
11427 DECL_INITIALIZED_BY_CONSTANT_EXPRESSION_P (var) = true;
11428 TREE_CONSTANT (var) = true;
11429 TREE_READONLY (var) = true;
11430 }
11431 DECL_INITIAL (var) = init;
11432 init = NULL_TREE;
11433 }
11434 else
11435 /* Create the INIT_EXPR that will initialize the temporary
11436 variable. */
11437 init = split_nonconstant_init (var, expr);
11438 if (at_function_scope_p ())
11439 {
11440 add_decl_expr (var);
11441
11442 if (TREE_STATIC (var))
11443 init = add_stmt_to_compound (init, register_dtor_fn (var));
11444 else
11445 {
11446 tree cleanup = cxx_maybe_build_cleanup (var, tf_warning_or_error);
11447 if (cleanup)
11448 vec_safe_push (*cleanups, cleanup);
11449 }
11450
11451 /* We must be careful to destroy the temporary only
11452 after its initialization has taken place. If the
11453 initialization throws an exception, then the
11454 destructor should not be run. We cannot simply
11455 transform INIT into something like:
11456
11457 (INIT, ({ CLEANUP_STMT; }))
11458
11459 because emit_local_var always treats the
11460 initializer as a full-expression. Thus, the
11461 destructor would run too early; it would run at the
11462 end of initializing the reference variable, rather
11463 than at the end of the block enclosing the
11464 reference variable.
11465
11466 The solution is to pass back a cleanup expression
11467 which the caller is responsible for attaching to
11468 the statement tree. */
11469 }
11470 else
11471 {
11472 rest_of_decl_compilation (var, /*toplev=*/1, at_eof);
11473 if (TYPE_HAS_NONTRIVIAL_DESTRUCTOR (type))
11474 {
11475 if (CP_DECL_THREAD_LOCAL_P (var))
11476 tls_aggregates = tree_cons (NULL_TREE, var,
11477 tls_aggregates);
11478 else
11479 static_aggregates = tree_cons (NULL_TREE, var,
11480 static_aggregates);
11481 }
11482 else
11483 /* Check whether the dtor is callable. */
11484 cxx_maybe_build_cleanup (var, tf_warning_or_error);
11485 }
11486 /* Avoid -Wunused-variable warning (c++/38958). */
11487 if (TYPE_HAS_NONTRIVIAL_DESTRUCTOR (type)
11488 && VAR_P (decl))
11489 TREE_USED (decl) = DECL_READ_P (decl) = true;
11490
11491 *initp = init;
11492 return var;
11493 }
11494
11495 /* Convert EXPR to the indicated reference TYPE, in a way suitable for
11496 initializing a variable of that TYPE. */
11497
11498 tree
11499 initialize_reference (tree type, tree expr,
11500 int flags, tsubst_flags_t complain)
11501 {
11502 conversion *conv;
11503 void *p;
11504 location_t loc = cp_expr_loc_or_input_loc (expr);
11505
11506 if (type == error_mark_node || error_operand_p (expr))
11507 return error_mark_node;
11508
11509 /* Get the high-water mark for the CONVERSION_OBSTACK. */
11510 p = conversion_obstack_alloc (0);
11511
11512 conv = reference_binding (type, TREE_TYPE (expr), expr, /*c_cast_p=*/false,
11513 flags, complain);
11514 if (!conv || conv->bad_p)
11515 {
11516 if (complain & tf_error)
11517 {
11518 if (conv)
11519 convert_like (conv, expr, complain);
11520 else if (!CP_TYPE_CONST_P (TREE_TYPE (type))
11521 && !TYPE_REF_IS_RVALUE (type)
11522 && !lvalue_p (expr))
11523 error_at (loc, "invalid initialization of non-const reference of "
11524 "type %qH from an rvalue of type %qI",
11525 type, TREE_TYPE (expr));
11526 else
11527 error_at (loc, "invalid initialization of reference of type "
11528 "%qH from expression of type %qI", type,
11529 TREE_TYPE (expr));
11530 }
11531 return error_mark_node;
11532 }
11533
11534 if (conv->kind == ck_ref_bind)
11535 /* Perform the conversion. */
11536 expr = convert_like (conv, expr, complain);
11537 else if (conv->kind == ck_ambig)
11538 /* We gave an error in build_user_type_conversion_1. */
11539 expr = error_mark_node;
11540 else
11541 gcc_unreachable ();
11542
11543 /* Free all the conversions we allocated. */
11544 obstack_free (&conversion_obstack, p);
11545
11546 return expr;
11547 }
11548
11549 /* Subroutine of extend_ref_init_temps. Possibly extend one initializer,
11550 which is bound either to a reference or a std::initializer_list. */
11551
11552 static tree
11553 extend_ref_init_temps_1 (tree decl, tree init, vec<tree, va_gc> **cleanups)
11554 {
11555 tree sub = init;
11556 tree *p;
11557 STRIP_NOPS (sub);
11558 if (TREE_CODE (sub) == COMPOUND_EXPR)
11559 {
11560 TREE_OPERAND (sub, 1)
11561 = extend_ref_init_temps_1 (decl, TREE_OPERAND (sub, 1), cleanups);
11562 return init;
11563 }
11564 if (TREE_CODE (sub) != ADDR_EXPR)
11565 return init;
11566 /* Deal with binding to a subobject. */
11567 for (p = &TREE_OPERAND (sub, 0);
11568 (TREE_CODE (*p) == COMPONENT_REF
11569 || TREE_CODE (*p) == ARRAY_REF); )
11570 p = &TREE_OPERAND (*p, 0);
11571 if (TREE_CODE (*p) == TARGET_EXPR)
11572 {
11573 tree subinit = NULL_TREE;
11574 *p = set_up_extended_ref_temp (decl, *p, cleanups, &subinit);
11575 recompute_tree_invariant_for_addr_expr (sub);
11576 if (init != sub)
11577 init = fold_convert (TREE_TYPE (init), sub);
11578 if (subinit)
11579 init = build2 (COMPOUND_EXPR, TREE_TYPE (init), subinit, init);
11580 }
11581 return init;
11582 }
11583
11584 /* INIT is part of the initializer for DECL. If there are any
11585 reference or initializer lists being initialized, extend their
11586 lifetime to match that of DECL. */
11587
11588 tree
11589 extend_ref_init_temps (tree decl, tree init, vec<tree, va_gc> **cleanups)
11590 {
11591 tree type = TREE_TYPE (init);
11592 if (processing_template_decl)
11593 return init;
11594 if (TYPE_REF_P (type))
11595 init = extend_ref_init_temps_1 (decl, init, cleanups);
11596 else
11597 {
11598 tree ctor = init;
11599 if (TREE_CODE (ctor) == TARGET_EXPR)
11600 ctor = TARGET_EXPR_INITIAL (ctor);
11601 if (TREE_CODE (ctor) == CONSTRUCTOR)
11602 {
11603 if (is_std_init_list (type))
11604 {
11605 /* The temporary array underlying a std::initializer_list
11606 is handled like a reference temporary. */
11607 tree array = CONSTRUCTOR_ELT (ctor, 0)->value;
11608 array = extend_ref_init_temps_1 (decl, array, cleanups);
11609 CONSTRUCTOR_ELT (ctor, 0)->value = array;
11610 }
11611 else
11612 {
11613 unsigned i;
11614 constructor_elt *p;
11615 vec<constructor_elt, va_gc> *elts = CONSTRUCTOR_ELTS (ctor);
11616 FOR_EACH_VEC_SAFE_ELT (elts, i, p)
11617 p->value = extend_ref_init_temps (decl, p->value, cleanups);
11618 }
11619 recompute_constructor_flags (ctor);
11620 if (decl_maybe_constant_var_p (decl) && TREE_CONSTANT (ctor))
11621 DECL_INITIALIZED_BY_CONSTANT_EXPRESSION_P (decl) = true;
11622 }
11623 }
11624
11625 return init;
11626 }
11627
11628 /* Returns true iff an initializer for TYPE could contain temporaries that
11629 need to be extended because they are bound to references or
11630 std::initializer_list. */
11631
11632 bool
11633 type_has_extended_temps (tree type)
11634 {
11635 type = strip_array_types (type);
11636 if (TYPE_REF_P (type))
11637 return true;
11638 if (CLASS_TYPE_P (type))
11639 {
11640 if (is_std_init_list (type))
11641 return true;
11642 for (tree f = next_initializable_field (TYPE_FIELDS (type));
11643 f; f = next_initializable_field (DECL_CHAIN (f)))
11644 if (type_has_extended_temps (TREE_TYPE (f)))
11645 return true;
11646 }
11647 return false;
11648 }
11649
11650 /* Returns true iff TYPE is some variant of std::initializer_list. */
11651
11652 bool
11653 is_std_init_list (tree type)
11654 {
11655 if (!TYPE_P (type))
11656 return false;
11657 if (cxx_dialect == cxx98)
11658 return false;
11659 /* Look through typedefs. */
11660 type = TYPE_MAIN_VARIANT (type);
11661 return (CLASS_TYPE_P (type)
11662 && CP_TYPE_CONTEXT (type) == std_node
11663 && init_list_identifier == DECL_NAME (TYPE_NAME (type)));
11664 }
11665
11666 /* Returns true iff DECL is a list constructor: i.e. a constructor which
11667 will accept an argument list of a single std::initializer_list<T>. */
11668
11669 bool
11670 is_list_ctor (tree decl)
11671 {
11672 tree args = FUNCTION_FIRST_USER_PARMTYPE (decl);
11673 tree arg;
11674
11675 if (!args || args == void_list_node)
11676 return false;
11677
11678 arg = non_reference (TREE_VALUE (args));
11679 if (!is_std_init_list (arg))
11680 return false;
11681
11682 args = TREE_CHAIN (args);
11683
11684 if (args && args != void_list_node && !TREE_PURPOSE (args))
11685 /* There are more non-defaulted parms. */
11686 return false;
11687
11688 return true;
11689 }
11690
11691 #include "gt-cp-call.h"