builtins.c (fold_builtin_signbit): Use build_zero_cst instead of fold_convert.
[gcc.git] / gcc / cp / typeck.c
1 /* Build expressions with type checking for C++ compiler.
2 Copyright (C) 1987, 1988, 1989, 1992, 1993, 1994, 1995, 1996, 1997, 1998,
3 1999, 2000, 2001, 2002, 2003, 2004, 2005, 2006, 2007, 2008, 2009, 2010
4 Free Software Foundation, Inc.
5 Hacked by Michael Tiemann (tiemann@cygnus.com)
6
7 This file is part of GCC.
8
9 GCC is free software; you can redistribute it and/or modify
10 it under the terms of the GNU General Public License as published by
11 the Free Software Foundation; either version 3, or (at your option)
12 any later version.
13
14 GCC is distributed in the hope that it will be useful,
15 but WITHOUT ANY WARRANTY; without even the implied warranty of
16 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 GNU General Public License for more details.
18
19 You should have received a copy of the GNU General Public License
20 along with GCC; see the file COPYING3. If not see
21 <http://www.gnu.org/licenses/>. */
22
23
24 /* This file is part of the C++ front end.
25 It contains routines to build C++ expressions given their operands,
26 including computing the types of the result, C and C++ specific error
27 checks, and some optimization. */
28
29 #include "config.h"
30 #include "system.h"
31 #include "coretypes.h"
32 #include "tm.h"
33 #include "tree.h"
34 #include "cp-tree.h"
35 #include "flags.h"
36 #include "output.h"
37 #include "toplev.h"
38 #include "diagnostic.h"
39 #include "intl.h"
40 #include "target.h"
41 #include "convert.h"
42 #include "c-family/c-common.h"
43 #include "params.h"
44
45 static tree pfn_from_ptrmemfunc (tree);
46 static tree delta_from_ptrmemfunc (tree);
47 static tree convert_for_assignment (tree, tree, impl_conv_rhs, tree, int,
48 tsubst_flags_t, int);
49 static tree cp_pointer_int_sum (enum tree_code, tree, tree);
50 static tree rationalize_conditional_expr (enum tree_code, tree,
51 tsubst_flags_t);
52 static int comp_ptr_ttypes_real (tree, tree, int);
53 static bool comp_except_types (tree, tree, bool);
54 static bool comp_array_types (const_tree, const_tree, bool);
55 static tree pointer_diff (tree, tree, tree);
56 static tree get_delta_difference (tree, tree, bool, bool, tsubst_flags_t);
57 static void casts_away_constness_r (tree *, tree *);
58 static bool casts_away_constness (tree, tree);
59 static void maybe_warn_about_returning_address_of_local (tree);
60 static tree lookup_destructor (tree, tree, tree);
61 static void warn_args_num (location_t, tree, bool);
62 static int convert_arguments (tree, VEC(tree,gc) **, tree, int,
63 tsubst_flags_t);
64
65 /* Do `exp = require_complete_type (exp);' to make sure exp
66 does not have an incomplete type. (That includes void types.)
67 Returns error_mark_node if the VALUE does not have
68 complete type when this function returns. */
69
70 tree
71 require_complete_type_sfinae (tree value, tsubst_flags_t complain)
72 {
73 tree type;
74
75 if (processing_template_decl || value == error_mark_node)
76 return value;
77
78 if (TREE_CODE (value) == OVERLOAD)
79 type = unknown_type_node;
80 else
81 type = TREE_TYPE (value);
82
83 if (type == error_mark_node)
84 return error_mark_node;
85
86 /* First, detect a valid value with a complete type. */
87 if (COMPLETE_TYPE_P (type))
88 return value;
89
90 if (complete_type_or_maybe_complain (type, value, complain))
91 return value;
92 else
93 return error_mark_node;
94 }
95
96 tree
97 require_complete_type (tree value)
98 {
99 return require_complete_type_sfinae (value, tf_warning_or_error);
100 }
101
102 /* Try to complete TYPE, if it is incomplete. For example, if TYPE is
103 a template instantiation, do the instantiation. Returns TYPE,
104 whether or not it could be completed, unless something goes
105 horribly wrong, in which case the error_mark_node is returned. */
106
107 tree
108 complete_type (tree type)
109 {
110 if (type == NULL_TREE)
111 /* Rather than crash, we return something sure to cause an error
112 at some point. */
113 return error_mark_node;
114
115 if (type == error_mark_node || COMPLETE_TYPE_P (type))
116 ;
117 else if (TREE_CODE (type) == ARRAY_TYPE && TYPE_DOMAIN (type))
118 {
119 tree t = complete_type (TREE_TYPE (type));
120 unsigned int needs_constructing, has_nontrivial_dtor;
121 if (COMPLETE_TYPE_P (t) && !dependent_type_p (type))
122 layout_type (type);
123 needs_constructing
124 = TYPE_NEEDS_CONSTRUCTING (TYPE_MAIN_VARIANT (t));
125 has_nontrivial_dtor
126 = TYPE_HAS_NONTRIVIAL_DESTRUCTOR (TYPE_MAIN_VARIANT (t));
127 for (t = TYPE_MAIN_VARIANT (type); t; t = TYPE_NEXT_VARIANT (t))
128 {
129 TYPE_NEEDS_CONSTRUCTING (t) = needs_constructing;
130 TYPE_HAS_NONTRIVIAL_DESTRUCTOR (t) = has_nontrivial_dtor;
131 }
132 }
133 else if (CLASS_TYPE_P (type) && CLASSTYPE_TEMPLATE_INSTANTIATION (type))
134 instantiate_class_template (TYPE_MAIN_VARIANT (type));
135
136 return type;
137 }
138
139 /* Like complete_type, but issue an error if the TYPE cannot be completed.
140 VALUE is used for informative diagnostics.
141 Returns NULL_TREE if the type cannot be made complete. */
142
143 tree
144 complete_type_or_maybe_complain (tree type, tree value, tsubst_flags_t complain)
145 {
146 type = complete_type (type);
147 if (type == error_mark_node)
148 /* We already issued an error. */
149 return NULL_TREE;
150 else if (!COMPLETE_TYPE_P (type))
151 {
152 if (complain & tf_error)
153 cxx_incomplete_type_diagnostic (value, type, DK_ERROR);
154 return NULL_TREE;
155 }
156 else
157 return type;
158 }
159
160 tree
161 complete_type_or_else (tree type, tree value)
162 {
163 return complete_type_or_maybe_complain (type, value, tf_warning_or_error);
164 }
165
166 /* Return truthvalue of whether type of EXP is instantiated. */
167
168 int
169 type_unknown_p (const_tree exp)
170 {
171 return (TREE_CODE (exp) == TREE_LIST
172 || TREE_TYPE (exp) == unknown_type_node);
173 }
174
175 \f
176 /* Return the common type of two parameter lists.
177 We assume that comptypes has already been done and returned 1;
178 if that isn't so, this may crash.
179
180 As an optimization, free the space we allocate if the parameter
181 lists are already common. */
182
183 static tree
184 commonparms (tree p1, tree p2)
185 {
186 tree oldargs = p1, newargs, n;
187 int i, len;
188 int any_change = 0;
189
190 len = list_length (p1);
191 newargs = tree_last (p1);
192
193 if (newargs == void_list_node)
194 i = 1;
195 else
196 {
197 i = 0;
198 newargs = 0;
199 }
200
201 for (; i < len; i++)
202 newargs = tree_cons (NULL_TREE, NULL_TREE, newargs);
203
204 n = newargs;
205
206 for (i = 0; p1;
207 p1 = TREE_CHAIN (p1), p2 = TREE_CHAIN (p2), n = TREE_CHAIN (n), i++)
208 {
209 if (TREE_PURPOSE (p1) && !TREE_PURPOSE (p2))
210 {
211 TREE_PURPOSE (n) = TREE_PURPOSE (p1);
212 any_change = 1;
213 }
214 else if (! TREE_PURPOSE (p1))
215 {
216 if (TREE_PURPOSE (p2))
217 {
218 TREE_PURPOSE (n) = TREE_PURPOSE (p2);
219 any_change = 1;
220 }
221 }
222 else
223 {
224 if (1 != simple_cst_equal (TREE_PURPOSE (p1), TREE_PURPOSE (p2)))
225 any_change = 1;
226 TREE_PURPOSE (n) = TREE_PURPOSE (p2);
227 }
228 if (TREE_VALUE (p1) != TREE_VALUE (p2))
229 {
230 any_change = 1;
231 TREE_VALUE (n) = merge_types (TREE_VALUE (p1), TREE_VALUE (p2));
232 }
233 else
234 TREE_VALUE (n) = TREE_VALUE (p1);
235 }
236 if (! any_change)
237 return oldargs;
238
239 return newargs;
240 }
241
242 /* Given a type, perhaps copied for a typedef,
243 find the "original" version of it. */
244 static tree
245 original_type (tree t)
246 {
247 int quals = cp_type_quals (t);
248 while (t != error_mark_node
249 && TYPE_NAME (t) != NULL_TREE)
250 {
251 tree x = TYPE_NAME (t);
252 if (TREE_CODE (x) != TYPE_DECL)
253 break;
254 x = DECL_ORIGINAL_TYPE (x);
255 if (x == NULL_TREE)
256 break;
257 t = x;
258 }
259 return cp_build_qualified_type (t, quals);
260 }
261
262 /* Return the common type for two arithmetic types T1 and T2 under the
263 usual arithmetic conversions. The default conversions have already
264 been applied, and enumerated types converted to their compatible
265 integer types. */
266
267 static tree
268 cp_common_type (tree t1, tree t2)
269 {
270 enum tree_code code1 = TREE_CODE (t1);
271 enum tree_code code2 = TREE_CODE (t2);
272 tree attributes;
273
274
275 /* In what follows, we slightly generalize the rules given in [expr] so
276 as to deal with `long long' and `complex'. First, merge the
277 attributes. */
278 attributes = (*targetm.merge_type_attributes) (t1, t2);
279
280 if (SCOPED_ENUM_P (t1) || SCOPED_ENUM_P (t2))
281 {
282 if (TYPE_MAIN_VARIANT (t1) == TYPE_MAIN_VARIANT (t2))
283 return build_type_attribute_variant (t1, attributes);
284 else
285 return NULL_TREE;
286 }
287
288 /* FIXME: Attributes. */
289 gcc_assert (ARITHMETIC_TYPE_P (t1)
290 || TREE_CODE (t1) == VECTOR_TYPE
291 || UNSCOPED_ENUM_P (t1));
292 gcc_assert (ARITHMETIC_TYPE_P (t2)
293 || TREE_CODE (t2) == VECTOR_TYPE
294 || UNSCOPED_ENUM_P (t2));
295
296 /* If one type is complex, form the common type of the non-complex
297 components, then make that complex. Use T1 or T2 if it is the
298 required type. */
299 if (code1 == COMPLEX_TYPE || code2 == COMPLEX_TYPE)
300 {
301 tree subtype1 = code1 == COMPLEX_TYPE ? TREE_TYPE (t1) : t1;
302 tree subtype2 = code2 == COMPLEX_TYPE ? TREE_TYPE (t2) : t2;
303 tree subtype
304 = type_after_usual_arithmetic_conversions (subtype1, subtype2);
305
306 if (code1 == COMPLEX_TYPE && TREE_TYPE (t1) == subtype)
307 return build_type_attribute_variant (t1, attributes);
308 else if (code2 == COMPLEX_TYPE && TREE_TYPE (t2) == subtype)
309 return build_type_attribute_variant (t2, attributes);
310 else
311 return build_type_attribute_variant (build_complex_type (subtype),
312 attributes);
313 }
314
315 if (code1 == VECTOR_TYPE)
316 {
317 /* When we get here we should have two vectors of the same size.
318 Just prefer the unsigned one if present. */
319 if (TYPE_UNSIGNED (t1))
320 return build_type_attribute_variant (t1, attributes);
321 else
322 return build_type_attribute_variant (t2, attributes);
323 }
324
325 /* If only one is real, use it as the result. */
326 if (code1 == REAL_TYPE && code2 != REAL_TYPE)
327 return build_type_attribute_variant (t1, attributes);
328 if (code2 == REAL_TYPE && code1 != REAL_TYPE)
329 return build_type_attribute_variant (t2, attributes);
330
331 /* Both real or both integers; use the one with greater precision. */
332 if (TYPE_PRECISION (t1) > TYPE_PRECISION (t2))
333 return build_type_attribute_variant (t1, attributes);
334 else if (TYPE_PRECISION (t2) > TYPE_PRECISION (t1))
335 return build_type_attribute_variant (t2, attributes);
336
337 /* The types are the same; no need to do anything fancy. */
338 if (TYPE_MAIN_VARIANT (t1) == TYPE_MAIN_VARIANT (t2))
339 return build_type_attribute_variant (t1, attributes);
340
341 if (code1 != REAL_TYPE)
342 {
343 /* If one is unsigned long long, then convert the other to unsigned
344 long long. */
345 if (same_type_p (TYPE_MAIN_VARIANT (t1), long_long_unsigned_type_node)
346 || same_type_p (TYPE_MAIN_VARIANT (t2), long_long_unsigned_type_node))
347 return build_type_attribute_variant (long_long_unsigned_type_node,
348 attributes);
349 /* If one is a long long, and the other is an unsigned long, and
350 long long can represent all the values of an unsigned long, then
351 convert to a long long. Otherwise, convert to an unsigned long
352 long. Otherwise, if either operand is long long, convert the
353 other to long long.
354
355 Since we're here, we know the TYPE_PRECISION is the same;
356 therefore converting to long long cannot represent all the values
357 of an unsigned long, so we choose unsigned long long in that
358 case. */
359 if (same_type_p (TYPE_MAIN_VARIANT (t1), long_long_integer_type_node)
360 || same_type_p (TYPE_MAIN_VARIANT (t2), long_long_integer_type_node))
361 {
362 tree t = ((TYPE_UNSIGNED (t1) || TYPE_UNSIGNED (t2))
363 ? long_long_unsigned_type_node
364 : long_long_integer_type_node);
365 return build_type_attribute_variant (t, attributes);
366 }
367 if (int128_integer_type_node != NULL_TREE
368 && (same_type_p (TYPE_MAIN_VARIANT (t1),
369 int128_integer_type_node)
370 || same_type_p (TYPE_MAIN_VARIANT (t2),
371 int128_integer_type_node)))
372 {
373 tree t = ((TYPE_UNSIGNED (t1) || TYPE_UNSIGNED (t2))
374 ? int128_unsigned_type_node
375 : int128_integer_type_node);
376 return build_type_attribute_variant (t, attributes);
377 }
378
379 /* Go through the same procedure, but for longs. */
380 if (same_type_p (TYPE_MAIN_VARIANT (t1), long_unsigned_type_node)
381 || same_type_p (TYPE_MAIN_VARIANT (t2), long_unsigned_type_node))
382 return build_type_attribute_variant (long_unsigned_type_node,
383 attributes);
384 if (same_type_p (TYPE_MAIN_VARIANT (t1), long_integer_type_node)
385 || same_type_p (TYPE_MAIN_VARIANT (t2), long_integer_type_node))
386 {
387 tree t = ((TYPE_UNSIGNED (t1) || TYPE_UNSIGNED (t2))
388 ? long_unsigned_type_node : long_integer_type_node);
389 return build_type_attribute_variant (t, attributes);
390 }
391 /* Otherwise prefer the unsigned one. */
392 if (TYPE_UNSIGNED (t1))
393 return build_type_attribute_variant (t1, attributes);
394 else
395 return build_type_attribute_variant (t2, attributes);
396 }
397 else
398 {
399 if (same_type_p (TYPE_MAIN_VARIANT (t1), long_double_type_node)
400 || same_type_p (TYPE_MAIN_VARIANT (t2), long_double_type_node))
401 return build_type_attribute_variant (long_double_type_node,
402 attributes);
403 if (same_type_p (TYPE_MAIN_VARIANT (t1), double_type_node)
404 || same_type_p (TYPE_MAIN_VARIANT (t2), double_type_node))
405 return build_type_attribute_variant (double_type_node,
406 attributes);
407 if (same_type_p (TYPE_MAIN_VARIANT (t1), float_type_node)
408 || same_type_p (TYPE_MAIN_VARIANT (t2), float_type_node))
409 return build_type_attribute_variant (float_type_node,
410 attributes);
411
412 /* Two floating-point types whose TYPE_MAIN_VARIANTs are none of
413 the standard C++ floating-point types. Logic earlier in this
414 function has already eliminated the possibility that
415 TYPE_PRECISION (t2) != TYPE_PRECISION (t1), so there's no
416 compelling reason to choose one or the other. */
417 return build_type_attribute_variant (t1, attributes);
418 }
419 }
420
421 /* T1 and T2 are arithmetic or enumeration types. Return the type
422 that will result from the "usual arithmetic conversions" on T1 and
423 T2 as described in [expr]. */
424
425 tree
426 type_after_usual_arithmetic_conversions (tree t1, tree t2)
427 {
428 gcc_assert (ARITHMETIC_TYPE_P (t1)
429 || TREE_CODE (t1) == VECTOR_TYPE
430 || UNSCOPED_ENUM_P (t1));
431 gcc_assert (ARITHMETIC_TYPE_P (t2)
432 || TREE_CODE (t2) == VECTOR_TYPE
433 || UNSCOPED_ENUM_P (t2));
434
435 /* Perform the integral promotions. We do not promote real types here. */
436 if (INTEGRAL_OR_ENUMERATION_TYPE_P (t1)
437 && INTEGRAL_OR_ENUMERATION_TYPE_P (t2))
438 {
439 t1 = type_promotes_to (t1);
440 t2 = type_promotes_to (t2);
441 }
442
443 return cp_common_type (t1, t2);
444 }
445
446 /* Subroutine of composite_pointer_type to implement the recursive
447 case. See that function for documentation of the parameters. */
448
449 static tree
450 composite_pointer_type_r (tree t1, tree t2,
451 composite_pointer_operation operation,
452 tsubst_flags_t complain)
453 {
454 tree pointee1;
455 tree pointee2;
456 tree result_type;
457 tree attributes;
458
459 /* Determine the types pointed to by T1 and T2. */
460 if (TREE_CODE (t1) == POINTER_TYPE)
461 {
462 pointee1 = TREE_TYPE (t1);
463 pointee2 = TREE_TYPE (t2);
464 }
465 else
466 {
467 pointee1 = TYPE_PTRMEM_POINTED_TO_TYPE (t1);
468 pointee2 = TYPE_PTRMEM_POINTED_TO_TYPE (t2);
469 }
470
471 /* [expr.rel]
472
473 Otherwise, the composite pointer type is a pointer type
474 similar (_conv.qual_) to the type of one of the operands,
475 with a cv-qualification signature (_conv.qual_) that is the
476 union of the cv-qualification signatures of the operand
477 types. */
478 if (same_type_ignoring_top_level_qualifiers_p (pointee1, pointee2))
479 result_type = pointee1;
480 else if ((TREE_CODE (pointee1) == POINTER_TYPE
481 && TREE_CODE (pointee2) == POINTER_TYPE)
482 || (TYPE_PTR_TO_MEMBER_P (pointee1)
483 && TYPE_PTR_TO_MEMBER_P (pointee2)))
484 result_type = composite_pointer_type_r (pointee1, pointee2, operation,
485 complain);
486 else
487 {
488 if (complain & tf_error)
489 {
490 switch (operation)
491 {
492 case CPO_COMPARISON:
493 permerror (input_location, "comparison between "
494 "distinct pointer types %qT and %qT lacks a cast",
495 t1, t2);
496 break;
497 case CPO_CONVERSION:
498 permerror (input_location, "conversion between "
499 "distinct pointer types %qT and %qT lacks a cast",
500 t1, t2);
501 break;
502 case CPO_CONDITIONAL_EXPR:
503 permerror (input_location, "conditional expression between "
504 "distinct pointer types %qT and %qT lacks a cast",
505 t1, t2);
506 break;
507 default:
508 gcc_unreachable ();
509 }
510 }
511 result_type = void_type_node;
512 }
513 result_type = cp_build_qualified_type (result_type,
514 (cp_type_quals (pointee1)
515 | cp_type_quals (pointee2)));
516 /* If the original types were pointers to members, so is the
517 result. */
518 if (TYPE_PTR_TO_MEMBER_P (t1))
519 {
520 if (!same_type_p (TYPE_PTRMEM_CLASS_TYPE (t1),
521 TYPE_PTRMEM_CLASS_TYPE (t2))
522 && (complain & tf_error))
523 {
524 switch (operation)
525 {
526 case CPO_COMPARISON:
527 permerror (input_location, "comparison between "
528 "distinct pointer types %qT and %qT lacks a cast",
529 t1, t2);
530 break;
531 case CPO_CONVERSION:
532 permerror (input_location, "conversion between "
533 "distinct pointer types %qT and %qT lacks a cast",
534 t1, t2);
535 break;
536 case CPO_CONDITIONAL_EXPR:
537 permerror (input_location, "conditional expression between "
538 "distinct pointer types %qT and %qT lacks a cast",
539 t1, t2);
540 break;
541 default:
542 gcc_unreachable ();
543 }
544 }
545 result_type = build_ptrmem_type (TYPE_PTRMEM_CLASS_TYPE (t1),
546 result_type);
547 }
548 else
549 result_type = build_pointer_type (result_type);
550
551 /* Merge the attributes. */
552 attributes = (*targetm.merge_type_attributes) (t1, t2);
553 return build_type_attribute_variant (result_type, attributes);
554 }
555
556 /* Return the composite pointer type (see [expr.rel]) for T1 and T2.
557 ARG1 and ARG2 are the values with those types. The OPERATION is to
558 describe the operation between the pointer types,
559 in case an error occurs.
560
561 This routine also implements the computation of a common type for
562 pointers-to-members as per [expr.eq]. */
563
564 tree
565 composite_pointer_type (tree t1, tree t2, tree arg1, tree arg2,
566 composite_pointer_operation operation,
567 tsubst_flags_t complain)
568 {
569 tree class1;
570 tree class2;
571
572 /* [expr.rel]
573
574 If one operand is a null pointer constant, the composite pointer
575 type is the type of the other operand. */
576 if (null_ptr_cst_p (arg1))
577 return t2;
578 if (null_ptr_cst_p (arg2))
579 return t1;
580
581 /* We have:
582
583 [expr.rel]
584
585 If one of the operands has type "pointer to cv1 void*", then
586 the other has type "pointer to cv2T", and the composite pointer
587 type is "pointer to cv12 void", where cv12 is the union of cv1
588 and cv2.
589
590 If either type is a pointer to void, make sure it is T1. */
591 if (TREE_CODE (t2) == POINTER_TYPE && VOID_TYPE_P (TREE_TYPE (t2)))
592 {
593 tree t;
594 t = t1;
595 t1 = t2;
596 t2 = t;
597 }
598
599 /* Now, if T1 is a pointer to void, merge the qualifiers. */
600 if (TREE_CODE (t1) == POINTER_TYPE && VOID_TYPE_P (TREE_TYPE (t1)))
601 {
602 tree attributes;
603 tree result_type;
604
605 if (TYPE_PTRFN_P (t2) && (complain & tf_error))
606 {
607 switch (operation)
608 {
609 case CPO_COMPARISON:
610 pedwarn (input_location, OPT_pedantic,
611 "ISO C++ forbids comparison between "
612 "pointer of type %<void *%> and pointer-to-function");
613 break;
614 case CPO_CONVERSION:
615 pedwarn (input_location, OPT_pedantic,
616 "ISO C++ forbids conversion between "
617 "pointer of type %<void *%> and pointer-to-function");
618 break;
619 case CPO_CONDITIONAL_EXPR:
620 pedwarn (input_location, OPT_pedantic,
621 "ISO C++ forbids conditional expression between "
622 "pointer of type %<void *%> and pointer-to-function");
623 break;
624 default:
625 gcc_unreachable ();
626 }
627 }
628 result_type
629 = cp_build_qualified_type (void_type_node,
630 (cp_type_quals (TREE_TYPE (t1))
631 | cp_type_quals (TREE_TYPE (t2))));
632 result_type = build_pointer_type (result_type);
633 /* Merge the attributes. */
634 attributes = (*targetm.merge_type_attributes) (t1, t2);
635 return build_type_attribute_variant (result_type, attributes);
636 }
637
638 if (c_dialect_objc () && TREE_CODE (t1) == POINTER_TYPE
639 && TREE_CODE (t2) == POINTER_TYPE)
640 {
641 if (objc_have_common_type (t1, t2, -3, NULL_TREE))
642 return objc_common_type (t1, t2);
643 }
644
645 /* [expr.eq] permits the application of a pointer conversion to
646 bring the pointers to a common type. */
647 if (TREE_CODE (t1) == POINTER_TYPE && TREE_CODE (t2) == POINTER_TYPE
648 && CLASS_TYPE_P (TREE_TYPE (t1))
649 && CLASS_TYPE_P (TREE_TYPE (t2))
650 && !same_type_ignoring_top_level_qualifiers_p (TREE_TYPE (t1),
651 TREE_TYPE (t2)))
652 {
653 class1 = TREE_TYPE (t1);
654 class2 = TREE_TYPE (t2);
655
656 if (DERIVED_FROM_P (class1, class2))
657 t2 = (build_pointer_type
658 (cp_build_qualified_type (class1, cp_type_quals (class2))));
659 else if (DERIVED_FROM_P (class2, class1))
660 t1 = (build_pointer_type
661 (cp_build_qualified_type (class2, cp_type_quals (class1))));
662 else
663 {
664 if (complain & tf_error)
665 switch (operation)
666 {
667 case CPO_COMPARISON:
668 error ("comparison between distinct "
669 "pointer types %qT and %qT lacks a cast", t1, t2);
670 break;
671 case CPO_CONVERSION:
672 error ("conversion between distinct "
673 "pointer types %qT and %qT lacks a cast", t1, t2);
674 break;
675 case CPO_CONDITIONAL_EXPR:
676 error ("conditional expression between distinct "
677 "pointer types %qT and %qT lacks a cast", t1, t2);
678 break;
679 default:
680 gcc_unreachable ();
681 }
682 return error_mark_node;
683 }
684 }
685 /* [expr.eq] permits the application of a pointer-to-member
686 conversion to change the class type of one of the types. */
687 else if (TYPE_PTR_TO_MEMBER_P (t1)
688 && !same_type_p (TYPE_PTRMEM_CLASS_TYPE (t1),
689 TYPE_PTRMEM_CLASS_TYPE (t2)))
690 {
691 class1 = TYPE_PTRMEM_CLASS_TYPE (t1);
692 class2 = TYPE_PTRMEM_CLASS_TYPE (t2);
693
694 if (DERIVED_FROM_P (class1, class2))
695 t1 = build_ptrmem_type (class2, TYPE_PTRMEM_POINTED_TO_TYPE (t1));
696 else if (DERIVED_FROM_P (class2, class1))
697 t2 = build_ptrmem_type (class1, TYPE_PTRMEM_POINTED_TO_TYPE (t2));
698 else
699 {
700 if (complain & tf_error)
701 switch (operation)
702 {
703 case CPO_COMPARISON:
704 error ("comparison between distinct "
705 "pointer-to-member types %qT and %qT lacks a cast",
706 t1, t2);
707 break;
708 case CPO_CONVERSION:
709 error ("conversion between distinct "
710 "pointer-to-member types %qT and %qT lacks a cast",
711 t1, t2);
712 break;
713 case CPO_CONDITIONAL_EXPR:
714 error ("conditional expression between distinct "
715 "pointer-to-member types %qT and %qT lacks a cast",
716 t1, t2);
717 break;
718 default:
719 gcc_unreachable ();
720 }
721 return error_mark_node;
722 }
723 }
724
725 return composite_pointer_type_r (t1, t2, operation, complain);
726 }
727
728 /* Return the merged type of two types.
729 We assume that comptypes has already been done and returned 1;
730 if that isn't so, this may crash.
731
732 This just combines attributes and default arguments; any other
733 differences would cause the two types to compare unalike. */
734
735 tree
736 merge_types (tree t1, tree t2)
737 {
738 enum tree_code code1;
739 enum tree_code code2;
740 tree attributes;
741
742 /* Save time if the two types are the same. */
743 if (t1 == t2)
744 return t1;
745 if (original_type (t1) == original_type (t2))
746 return t1;
747
748 /* If one type is nonsense, use the other. */
749 if (t1 == error_mark_node)
750 return t2;
751 if (t2 == error_mark_node)
752 return t1;
753
754 /* Merge the attributes. */
755 attributes = (*targetm.merge_type_attributes) (t1, t2);
756
757 if (TYPE_PTRMEMFUNC_P (t1))
758 t1 = TYPE_PTRMEMFUNC_FN_TYPE (t1);
759 if (TYPE_PTRMEMFUNC_P (t2))
760 t2 = TYPE_PTRMEMFUNC_FN_TYPE (t2);
761
762 code1 = TREE_CODE (t1);
763 code2 = TREE_CODE (t2);
764 if (code1 != code2)
765 {
766 gcc_assert (code1 == TYPENAME_TYPE || code2 == TYPENAME_TYPE);
767 if (code1 == TYPENAME_TYPE)
768 {
769 t1 = resolve_typename_type (t1, /*only_current_p=*/true);
770 code1 = TREE_CODE (t1);
771 }
772 else
773 {
774 t2 = resolve_typename_type (t2, /*only_current_p=*/true);
775 code2 = TREE_CODE (t2);
776 }
777 }
778
779 switch (code1)
780 {
781 case POINTER_TYPE:
782 case REFERENCE_TYPE:
783 /* For two pointers, do this recursively on the target type. */
784 {
785 tree target = merge_types (TREE_TYPE (t1), TREE_TYPE (t2));
786 int quals = cp_type_quals (t1);
787
788 if (code1 == POINTER_TYPE)
789 t1 = build_pointer_type (target);
790 else
791 t1 = cp_build_reference_type (target, TYPE_REF_IS_RVALUE (t1));
792 t1 = build_type_attribute_variant (t1, attributes);
793 t1 = cp_build_qualified_type (t1, quals);
794
795 if (TREE_CODE (target) == METHOD_TYPE)
796 t1 = build_ptrmemfunc_type (t1);
797
798 return t1;
799 }
800
801 case OFFSET_TYPE:
802 {
803 int quals;
804 tree pointee;
805 quals = cp_type_quals (t1);
806 pointee = merge_types (TYPE_PTRMEM_POINTED_TO_TYPE (t1),
807 TYPE_PTRMEM_POINTED_TO_TYPE (t2));
808 t1 = build_ptrmem_type (TYPE_PTRMEM_CLASS_TYPE (t1),
809 pointee);
810 t1 = cp_build_qualified_type (t1, quals);
811 break;
812 }
813
814 case ARRAY_TYPE:
815 {
816 tree elt = merge_types (TREE_TYPE (t1), TREE_TYPE (t2));
817 /* Save space: see if the result is identical to one of the args. */
818 if (elt == TREE_TYPE (t1) && TYPE_DOMAIN (t1))
819 return build_type_attribute_variant (t1, attributes);
820 if (elt == TREE_TYPE (t2) && TYPE_DOMAIN (t2))
821 return build_type_attribute_variant (t2, attributes);
822 /* Merge the element types, and have a size if either arg has one. */
823 t1 = build_cplus_array_type
824 (elt, TYPE_DOMAIN (TYPE_DOMAIN (t1) ? t1 : t2));
825 break;
826 }
827
828 case FUNCTION_TYPE:
829 /* Function types: prefer the one that specified arg types.
830 If both do, merge the arg types. Also merge the return types. */
831 {
832 tree valtype = merge_types (TREE_TYPE (t1), TREE_TYPE (t2));
833 tree p1 = TYPE_ARG_TYPES (t1);
834 tree p2 = TYPE_ARG_TYPES (t2);
835 tree parms;
836 tree rval, raises;
837
838 /* Save space: see if the result is identical to one of the args. */
839 if (valtype == TREE_TYPE (t1) && ! p2)
840 return cp_build_type_attribute_variant (t1, attributes);
841 if (valtype == TREE_TYPE (t2) && ! p1)
842 return cp_build_type_attribute_variant (t2, attributes);
843
844 /* Simple way if one arg fails to specify argument types. */
845 if (p1 == NULL_TREE || TREE_VALUE (p1) == void_type_node)
846 parms = p2;
847 else if (p2 == NULL_TREE || TREE_VALUE (p2) == void_type_node)
848 parms = p1;
849 else
850 parms = commonparms (p1, p2);
851
852 rval = build_function_type (valtype, parms);
853 gcc_assert (type_memfn_quals (t1) == type_memfn_quals (t2));
854 rval = apply_memfn_quals (rval, type_memfn_quals (t1));
855 raises = merge_exception_specifiers (TYPE_RAISES_EXCEPTIONS (t1),
856 TYPE_RAISES_EXCEPTIONS (t2));
857 t1 = build_exception_variant (rval, raises);
858 break;
859 }
860
861 case METHOD_TYPE:
862 {
863 /* Get this value the long way, since TYPE_METHOD_BASETYPE
864 is just the main variant of this. */
865 tree basetype = TREE_TYPE (TREE_VALUE (TYPE_ARG_TYPES (t2)));
866 tree raises = merge_exception_specifiers (TYPE_RAISES_EXCEPTIONS (t1),
867 TYPE_RAISES_EXCEPTIONS (t2));
868 tree t3;
869
870 /* If this was a member function type, get back to the
871 original type of type member function (i.e., without
872 the class instance variable up front. */
873 t1 = build_function_type (TREE_TYPE (t1),
874 TREE_CHAIN (TYPE_ARG_TYPES (t1)));
875 t2 = build_function_type (TREE_TYPE (t2),
876 TREE_CHAIN (TYPE_ARG_TYPES (t2)));
877 t3 = merge_types (t1, t2);
878 t3 = build_method_type_directly (basetype, TREE_TYPE (t3),
879 TYPE_ARG_TYPES (t3));
880 t1 = build_exception_variant (t3, raises);
881 break;
882 }
883
884 case TYPENAME_TYPE:
885 /* There is no need to merge attributes into a TYPENAME_TYPE.
886 When the type is instantiated it will have whatever
887 attributes result from the instantiation. */
888 return t1;
889
890 default:;
891 }
892
893 if (attribute_list_equal (TYPE_ATTRIBUTES (t1), attributes))
894 return t1;
895 else if (attribute_list_equal (TYPE_ATTRIBUTES (t2), attributes))
896 return t2;
897 else
898 return cp_build_type_attribute_variant (t1, attributes);
899 }
900
901 /* Return the ARRAY_TYPE type without its domain. */
902
903 tree
904 strip_array_domain (tree type)
905 {
906 tree t2;
907 gcc_assert (TREE_CODE (type) == ARRAY_TYPE);
908 if (TYPE_DOMAIN (type) == NULL_TREE)
909 return type;
910 t2 = build_cplus_array_type (TREE_TYPE (type), NULL_TREE);
911 return cp_build_type_attribute_variant (t2, TYPE_ATTRIBUTES (type));
912 }
913
914 /* Wrapper around cp_common_type that is used by c-common.c and other
915 front end optimizations that remove promotions.
916
917 Return the common type for two arithmetic types T1 and T2 under the
918 usual arithmetic conversions. The default conversions have already
919 been applied, and enumerated types converted to their compatible
920 integer types. */
921
922 tree
923 common_type (tree t1, tree t2)
924 {
925 /* If one type is nonsense, use the other */
926 if (t1 == error_mark_node)
927 return t2;
928 if (t2 == error_mark_node)
929 return t1;
930
931 return cp_common_type (t1, t2);
932 }
933
934 /* Return the common type of two pointer types T1 and T2. This is the
935 type for the result of most arithmetic operations if the operands
936 have the given two types.
937
938 We assume that comp_target_types has already been done and returned
939 nonzero; if that isn't so, this may crash. */
940
941 tree
942 common_pointer_type (tree t1, tree t2)
943 {
944 gcc_assert ((TYPE_PTR_P (t1) && TYPE_PTR_P (t2))
945 || (TYPE_PTRMEM_P (t1) && TYPE_PTRMEM_P (t2))
946 || (TYPE_PTRMEMFUNC_P (t1) && TYPE_PTRMEMFUNC_P (t2)));
947
948 return composite_pointer_type (t1, t2, error_mark_node, error_mark_node,
949 CPO_CONVERSION, tf_warning_or_error);
950 }
951 \f
952 /* Compare two exception specifier types for exactness or subsetness, if
953 allowed. Returns false for mismatch, true for match (same, or
954 derived and !exact).
955
956 [except.spec] "If a class X ... objects of class X or any class publicly
957 and unambiguously derived from X. Similarly, if a pointer type Y * ...
958 exceptions of type Y * or that are pointers to any type publicly and
959 unambiguously derived from Y. Otherwise a function only allows exceptions
960 that have the same type ..."
961 This does not mention cv qualifiers and is different to what throw
962 [except.throw] and catch [except.catch] will do. They will ignore the
963 top level cv qualifiers, and allow qualifiers in the pointer to class
964 example.
965
966 We implement the letter of the standard. */
967
968 static bool
969 comp_except_types (tree a, tree b, bool exact)
970 {
971 if (same_type_p (a, b))
972 return true;
973 else if (!exact)
974 {
975 if (cp_type_quals (a) || cp_type_quals (b))
976 return false;
977
978 if (TREE_CODE (a) == POINTER_TYPE
979 && TREE_CODE (b) == POINTER_TYPE)
980 {
981 a = TREE_TYPE (a);
982 b = TREE_TYPE (b);
983 if (cp_type_quals (a) || cp_type_quals (b))
984 return false;
985 }
986
987 if (TREE_CODE (a) != RECORD_TYPE
988 || TREE_CODE (b) != RECORD_TYPE)
989 return false;
990
991 if (PUBLICLY_UNIQUELY_DERIVED_P (a, b))
992 return true;
993 }
994 return false;
995 }
996
997 /* Return true if TYPE1 and TYPE2 are equivalent exception specifiers.
998 If EXACT is ce_derived, T2 can be stricter than T1 (according to 15.4/5).
999 If EXACT is ce_normal, the compatibility rules in 15.4/3 apply.
1000 If EXACT is ce_exact, the specs must be exactly the same. Exception lists
1001 are unordered, but we've already filtered out duplicates. Most lists will
1002 be in order, we should try to make use of that. */
1003
1004 bool
1005 comp_except_specs (const_tree t1, const_tree t2, int exact)
1006 {
1007 const_tree probe;
1008 const_tree base;
1009 int length = 0;
1010
1011 if (t1 == t2)
1012 return true;
1013
1014 /* First handle noexcept. */
1015 if (exact < ce_exact)
1016 {
1017 /* noexcept(false) is compatible with any throwing dynamic-exc-spec
1018 and stricter than any spec. */
1019 if (t1 == noexcept_false_spec)
1020 return !nothrow_spec_p (t2) || exact == ce_derived;
1021 /* Even a derived noexcept(false) is compatible with a throwing
1022 dynamic spec. */
1023 if (t2 == noexcept_false_spec)
1024 return !nothrow_spec_p (t1);
1025
1026 /* Otherwise, if we aren't looking for an exact match, noexcept is
1027 equivalent to throw(). */
1028 if (t1 == noexcept_true_spec)
1029 t1 = empty_except_spec;
1030 if (t2 == noexcept_true_spec)
1031 t2 = empty_except_spec;
1032 }
1033
1034 /* If any noexcept is left, it is only comparable to itself;
1035 either we're looking for an exact match or we're redeclaring a
1036 template with dependent noexcept. */
1037 if ((t1 && TREE_PURPOSE (t1))
1038 || (t2 && TREE_PURPOSE (t2)))
1039 return (t1 && t2
1040 && cp_tree_equal (TREE_PURPOSE (t1), TREE_PURPOSE (t2)));
1041
1042 if (t1 == NULL_TREE) /* T1 is ... */
1043 return t2 == NULL_TREE || exact == ce_derived;
1044 if (!TREE_VALUE (t1)) /* t1 is EMPTY */
1045 return t2 != NULL_TREE && !TREE_VALUE (t2);
1046 if (t2 == NULL_TREE) /* T2 is ... */
1047 return false;
1048 if (TREE_VALUE (t1) && !TREE_VALUE (t2)) /* T2 is EMPTY, T1 is not */
1049 return exact == ce_derived;
1050
1051 /* Neither set is ... or EMPTY, make sure each part of T2 is in T1.
1052 Count how many we find, to determine exactness. For exact matching and
1053 ordered T1, T2, this is an O(n) operation, otherwise its worst case is
1054 O(nm). */
1055 for (base = t1; t2 != NULL_TREE; t2 = TREE_CHAIN (t2))
1056 {
1057 for (probe = base; probe != NULL_TREE; probe = TREE_CHAIN (probe))
1058 {
1059 tree a = TREE_VALUE (probe);
1060 tree b = TREE_VALUE (t2);
1061
1062 if (comp_except_types (a, b, exact))
1063 {
1064 if (probe == base && exact > ce_derived)
1065 base = TREE_CHAIN (probe);
1066 length++;
1067 break;
1068 }
1069 }
1070 if (probe == NULL_TREE)
1071 return false;
1072 }
1073 return exact == ce_derived || base == NULL_TREE || length == list_length (t1);
1074 }
1075
1076 /* Compare the array types T1 and T2. ALLOW_REDECLARATION is true if
1077 [] can match [size]. */
1078
1079 static bool
1080 comp_array_types (const_tree t1, const_tree t2, bool allow_redeclaration)
1081 {
1082 tree d1;
1083 tree d2;
1084 tree max1, max2;
1085
1086 if (t1 == t2)
1087 return true;
1088
1089 /* The type of the array elements must be the same. */
1090 if (!same_type_p (TREE_TYPE (t1), TREE_TYPE (t2)))
1091 return false;
1092
1093 d1 = TYPE_DOMAIN (t1);
1094 d2 = TYPE_DOMAIN (t2);
1095
1096 if (d1 == d2)
1097 return true;
1098
1099 /* If one of the arrays is dimensionless, and the other has a
1100 dimension, they are of different types. However, it is valid to
1101 write:
1102
1103 extern int a[];
1104 int a[3];
1105
1106 by [basic.link]:
1107
1108 declarations for an array object can specify
1109 array types that differ by the presence or absence of a major
1110 array bound (_dcl.array_). */
1111 if (!d1 || !d2)
1112 return allow_redeclaration;
1113
1114 /* Check that the dimensions are the same. */
1115
1116 if (!cp_tree_equal (TYPE_MIN_VALUE (d1), TYPE_MIN_VALUE (d2)))
1117 return false;
1118 max1 = TYPE_MAX_VALUE (d1);
1119 max2 = TYPE_MAX_VALUE (d2);
1120 if (processing_template_decl && !abi_version_at_least (2)
1121 && !value_dependent_expression_p (max1)
1122 && !value_dependent_expression_p (max2))
1123 {
1124 /* With abi-1 we do not fold non-dependent array bounds, (and
1125 consequently mangle them incorrectly). We must therefore
1126 fold them here, to verify the domains have the same
1127 value. */
1128 max1 = fold (max1);
1129 max2 = fold (max2);
1130 }
1131
1132 if (!cp_tree_equal (max1, max2))
1133 return false;
1134
1135 return true;
1136 }
1137
1138 /* Compare the relative position of T1 and T2 into their respective
1139 template parameter list.
1140 T1 and T2 must be template parameter types.
1141 Return TRUE if T1 and T2 have the same position, FALSE otherwise. */
1142
1143 static bool
1144 comp_template_parms_position (tree t1, tree t2)
1145 {
1146 tree index1, index2;
1147 gcc_assert (t1 && t2
1148 && TREE_CODE (t1) == TREE_CODE (t2)
1149 && (TREE_CODE (t1) == BOUND_TEMPLATE_TEMPLATE_PARM
1150 || TREE_CODE (t1) == TEMPLATE_TEMPLATE_PARM
1151 || TREE_CODE (t1) == TEMPLATE_TYPE_PARM));
1152
1153 index1 = TEMPLATE_TYPE_PARM_INDEX (TYPE_MAIN_VARIANT (t1));
1154 index2 = TEMPLATE_TYPE_PARM_INDEX (TYPE_MAIN_VARIANT (t2));
1155
1156 /* If T1 and T2 belong to template parm lists of different size,
1157 let's assume they are different. */
1158 if (TEMPLATE_PARM_NUM_SIBLINGS (index1)
1159 != TEMPLATE_PARM_NUM_SIBLINGS (index2))
1160 return false;
1161
1162 /* Then compare their relative position. */
1163 if (TEMPLATE_PARM_IDX (index1) != TEMPLATE_PARM_IDX (index2)
1164 || TEMPLATE_PARM_LEVEL (index1) != TEMPLATE_PARM_LEVEL (index2)
1165 || (TEMPLATE_PARM_PARAMETER_PACK (index1)
1166 != TEMPLATE_PARM_PARAMETER_PACK (index2)))
1167 return false;
1168
1169 return true;
1170 }
1171
1172 /* Subroutine in comptypes. */
1173
1174 static bool
1175 structural_comptypes (tree t1, tree t2, int strict)
1176 {
1177 if (t1 == t2)
1178 return true;
1179
1180 /* Suppress errors caused by previously reported errors. */
1181 if (t1 == error_mark_node || t2 == error_mark_node)
1182 return false;
1183
1184 gcc_assert (TYPE_P (t1) && TYPE_P (t2));
1185
1186 /* TYPENAME_TYPEs should be resolved if the qualifying scope is the
1187 current instantiation. */
1188 if (TREE_CODE (t1) == TYPENAME_TYPE)
1189 t1 = resolve_typename_type (t1, /*only_current_p=*/true);
1190
1191 if (TREE_CODE (t2) == TYPENAME_TYPE)
1192 t2 = resolve_typename_type (t2, /*only_current_p=*/true);
1193
1194 if (TYPE_PTRMEMFUNC_P (t1))
1195 t1 = TYPE_PTRMEMFUNC_FN_TYPE (t1);
1196 if (TYPE_PTRMEMFUNC_P (t2))
1197 t2 = TYPE_PTRMEMFUNC_FN_TYPE (t2);
1198
1199 /* Different classes of types can't be compatible. */
1200 if (TREE_CODE (t1) != TREE_CODE (t2))
1201 return false;
1202
1203 /* Qualifiers must match. For array types, we will check when we
1204 recur on the array element types. */
1205 if (TREE_CODE (t1) != ARRAY_TYPE
1206 && cp_type_quals (t1) != cp_type_quals (t2))
1207 return false;
1208 if (TREE_CODE (t1) == FUNCTION_TYPE
1209 && type_memfn_quals (t1) != type_memfn_quals (t2))
1210 return false;
1211 if (TYPE_FOR_JAVA (t1) != TYPE_FOR_JAVA (t2))
1212 return false;
1213
1214 /* Allow for two different type nodes which have essentially the same
1215 definition. Note that we already checked for equality of the type
1216 qualifiers (just above). */
1217
1218 if (TREE_CODE (t1) != ARRAY_TYPE
1219 && TYPE_MAIN_VARIANT (t1) == TYPE_MAIN_VARIANT (t2))
1220 return true;
1221
1222
1223 /* Compare the types. Break out if they could be the same. */
1224 switch (TREE_CODE (t1))
1225 {
1226 case VOID_TYPE:
1227 case BOOLEAN_TYPE:
1228 /* All void and bool types are the same. */
1229 break;
1230
1231 case INTEGER_TYPE:
1232 case FIXED_POINT_TYPE:
1233 case REAL_TYPE:
1234 /* With these nodes, we can't determine type equivalence by
1235 looking at what is stored in the nodes themselves, because
1236 two nodes might have different TYPE_MAIN_VARIANTs but still
1237 represent the same type. For example, wchar_t and int could
1238 have the same properties (TYPE_PRECISION, TYPE_MIN_VALUE,
1239 TYPE_MAX_VALUE, etc.), but have different TYPE_MAIN_VARIANTs
1240 and are distinct types. On the other hand, int and the
1241 following typedef
1242
1243 typedef int INT __attribute((may_alias));
1244
1245 have identical properties, different TYPE_MAIN_VARIANTs, but
1246 represent the same type. The canonical type system keeps
1247 track of equivalence in this case, so we fall back on it. */
1248 return TYPE_CANONICAL (t1) == TYPE_CANONICAL (t2);
1249
1250 case TEMPLATE_TEMPLATE_PARM:
1251 case BOUND_TEMPLATE_TEMPLATE_PARM:
1252 if (!comp_template_parms_position (t1, t2))
1253 return false;
1254 if (!comp_template_parms
1255 (DECL_TEMPLATE_PARMS (TEMPLATE_TEMPLATE_PARM_TEMPLATE_DECL (t1)),
1256 DECL_TEMPLATE_PARMS (TEMPLATE_TEMPLATE_PARM_TEMPLATE_DECL (t2))))
1257 return false;
1258 if (TREE_CODE (t1) == TEMPLATE_TEMPLATE_PARM)
1259 break;
1260 /* Don't check inheritance. */
1261 strict = COMPARE_STRICT;
1262 /* Fall through. */
1263
1264 case RECORD_TYPE:
1265 case UNION_TYPE:
1266 if (TYPE_TEMPLATE_INFO (t1) && TYPE_TEMPLATE_INFO (t2)
1267 && (TYPE_TI_TEMPLATE (t1) == TYPE_TI_TEMPLATE (t2)
1268 || TREE_CODE (t1) == BOUND_TEMPLATE_TEMPLATE_PARM)
1269 && comp_template_args (TYPE_TI_ARGS (t1), TYPE_TI_ARGS (t2)))
1270 break;
1271
1272 if ((strict & COMPARE_BASE) && DERIVED_FROM_P (t1, t2))
1273 break;
1274 else if ((strict & COMPARE_DERIVED) && DERIVED_FROM_P (t2, t1))
1275 break;
1276
1277 return false;
1278
1279 case OFFSET_TYPE:
1280 if (!comptypes (TYPE_OFFSET_BASETYPE (t1), TYPE_OFFSET_BASETYPE (t2),
1281 strict & ~COMPARE_REDECLARATION))
1282 return false;
1283 if (!same_type_p (TREE_TYPE (t1), TREE_TYPE (t2)))
1284 return false;
1285 break;
1286
1287 case REFERENCE_TYPE:
1288 if (TYPE_REF_IS_RVALUE (t1) != TYPE_REF_IS_RVALUE (t2))
1289 return false;
1290 /* fall through to checks for pointer types */
1291
1292 case POINTER_TYPE:
1293 if (TYPE_MODE (t1) != TYPE_MODE (t2)
1294 || TYPE_REF_CAN_ALIAS_ALL (t1) != TYPE_REF_CAN_ALIAS_ALL (t2)
1295 || !same_type_p (TREE_TYPE (t1), TREE_TYPE (t2)))
1296 return false;
1297 break;
1298
1299 case METHOD_TYPE:
1300 case FUNCTION_TYPE:
1301 if (!same_type_p (TREE_TYPE (t1), TREE_TYPE (t2)))
1302 return false;
1303 if (!compparms (TYPE_ARG_TYPES (t1), TYPE_ARG_TYPES (t2)))
1304 return false;
1305 break;
1306
1307 case ARRAY_TYPE:
1308 /* Target types must match incl. qualifiers. */
1309 if (!comp_array_types (t1, t2, !!(strict & COMPARE_REDECLARATION)))
1310 return false;
1311 break;
1312
1313 case TEMPLATE_TYPE_PARM:
1314 /* If T1 and T2 don't have the same relative position in their
1315 template parameters set, they can't be equal. */
1316 if (!comp_template_parms_position (t1, t2))
1317 return false;
1318 break;
1319
1320 case TYPENAME_TYPE:
1321 if (!cp_tree_equal (TYPENAME_TYPE_FULLNAME (t1),
1322 TYPENAME_TYPE_FULLNAME (t2)))
1323 return false;
1324 if (!same_type_p (TYPE_CONTEXT (t1), TYPE_CONTEXT (t2)))
1325 return false;
1326 break;
1327
1328 case UNBOUND_CLASS_TEMPLATE:
1329 if (!cp_tree_equal (TYPE_IDENTIFIER (t1), TYPE_IDENTIFIER (t2)))
1330 return false;
1331 if (!same_type_p (TYPE_CONTEXT (t1), TYPE_CONTEXT (t2)))
1332 return false;
1333 break;
1334
1335 case COMPLEX_TYPE:
1336 if (!same_type_p (TREE_TYPE (t1), TREE_TYPE (t2)))
1337 return false;
1338 break;
1339
1340 case VECTOR_TYPE:
1341 if (TYPE_VECTOR_SUBPARTS (t1) != TYPE_VECTOR_SUBPARTS (t2)
1342 || !same_type_p (TREE_TYPE (t1), TREE_TYPE (t2)))
1343 return false;
1344 break;
1345
1346 case TYPE_PACK_EXPANSION:
1347 return same_type_p (PACK_EXPANSION_PATTERN (t1),
1348 PACK_EXPANSION_PATTERN (t2));
1349
1350 case DECLTYPE_TYPE:
1351 if (DECLTYPE_TYPE_ID_EXPR_OR_MEMBER_ACCESS_P (t1)
1352 != DECLTYPE_TYPE_ID_EXPR_OR_MEMBER_ACCESS_P (t2)
1353 || (DECLTYPE_FOR_LAMBDA_CAPTURE (t1)
1354 != DECLTYPE_FOR_LAMBDA_CAPTURE (t2))
1355 || (DECLTYPE_FOR_LAMBDA_RETURN (t1)
1356 != DECLTYPE_FOR_LAMBDA_RETURN (t2))
1357 || !cp_tree_equal (DECLTYPE_TYPE_EXPR (t1),
1358 DECLTYPE_TYPE_EXPR (t2)))
1359 return false;
1360 break;
1361
1362 default:
1363 return false;
1364 }
1365
1366 /* If we get here, we know that from a target independent POV the
1367 types are the same. Make sure the target attributes are also
1368 the same. */
1369 return targetm.comp_type_attributes (t1, t2);
1370 }
1371
1372 /* Return true if T1 and T2 are related as allowed by STRICT. STRICT
1373 is a bitwise-or of the COMPARE_* flags. */
1374
1375 bool
1376 comptypes (tree t1, tree t2, int strict)
1377 {
1378 if (strict == COMPARE_STRICT)
1379 {
1380 if (t1 == t2)
1381 return true;
1382
1383 if (t1 == error_mark_node || t2 == error_mark_node)
1384 return false;
1385
1386 if (TYPE_STRUCTURAL_EQUALITY_P (t1) || TYPE_STRUCTURAL_EQUALITY_P (t2))
1387 /* At least one of the types requires structural equality, so
1388 perform a deep check. */
1389 return structural_comptypes (t1, t2, strict);
1390
1391 #ifdef ENABLE_CHECKING
1392 if (USE_CANONICAL_TYPES)
1393 {
1394 bool result = structural_comptypes (t1, t2, strict);
1395
1396 if (result && TYPE_CANONICAL (t1) != TYPE_CANONICAL (t2))
1397 /* The two types are structurally equivalent, but their
1398 canonical types were different. This is a failure of the
1399 canonical type propagation code.*/
1400 internal_error
1401 ("canonical types differ for identical types %T and %T",
1402 t1, t2);
1403 else if (!result && TYPE_CANONICAL (t1) == TYPE_CANONICAL (t2))
1404 /* Two types are structurally different, but the canonical
1405 types are the same. This means we were over-eager in
1406 assigning canonical types. */
1407 internal_error
1408 ("same canonical type node for different types %T and %T",
1409 t1, t2);
1410
1411 return result;
1412 }
1413 #else
1414 if (USE_CANONICAL_TYPES)
1415 return TYPE_CANONICAL (t1) == TYPE_CANONICAL (t2);
1416 #endif
1417 else
1418 return structural_comptypes (t1, t2, strict);
1419 }
1420 else if (strict == COMPARE_STRUCTURAL)
1421 return structural_comptypes (t1, t2, COMPARE_STRICT);
1422 else
1423 return structural_comptypes (t1, t2, strict);
1424 }
1425
1426 /* Returns nonzero iff TYPE1 and TYPE2 are the same type, ignoring
1427 top-level qualifiers. */
1428
1429 bool
1430 same_type_ignoring_top_level_qualifiers_p (tree type1, tree type2)
1431 {
1432 if (type1 == error_mark_node || type2 == error_mark_node)
1433 return false;
1434
1435 return same_type_p (TYPE_MAIN_VARIANT (type1), TYPE_MAIN_VARIANT (type2));
1436 }
1437
1438 /* Returns 1 if TYPE1 is at least as qualified as TYPE2. */
1439
1440 bool
1441 at_least_as_qualified_p (const_tree type1, const_tree type2)
1442 {
1443 int q1 = cp_type_quals (type1);
1444 int q2 = cp_type_quals (type2);
1445
1446 /* All qualifiers for TYPE2 must also appear in TYPE1. */
1447 return (q1 & q2) == q2;
1448 }
1449
1450 /* Returns 1 if TYPE1 is more cv-qualified than TYPE2, -1 if TYPE2 is
1451 more cv-qualified that TYPE1, and 0 otherwise. */
1452
1453 int
1454 comp_cv_qualification (const_tree type1, const_tree type2)
1455 {
1456 int q1 = cp_type_quals (type1);
1457 int q2 = cp_type_quals (type2);
1458
1459 if (q1 == q2)
1460 return 0;
1461
1462 if ((q1 & q2) == q2)
1463 return 1;
1464 else if ((q1 & q2) == q1)
1465 return -1;
1466
1467 return 0;
1468 }
1469
1470 /* Returns 1 if the cv-qualification signature of TYPE1 is a proper
1471 subset of the cv-qualification signature of TYPE2, and the types
1472 are similar. Returns -1 if the other way 'round, and 0 otherwise. */
1473
1474 int
1475 comp_cv_qual_signature (tree type1, tree type2)
1476 {
1477 if (comp_ptr_ttypes_real (type2, type1, -1))
1478 return 1;
1479 else if (comp_ptr_ttypes_real (type1, type2, -1))
1480 return -1;
1481 else
1482 return 0;
1483 }
1484 \f
1485 /* Subroutines of `comptypes'. */
1486
1487 /* Return true if two parameter type lists PARMS1 and PARMS2 are
1488 equivalent in the sense that functions with those parameter types
1489 can have equivalent types. The two lists must be equivalent,
1490 element by element. */
1491
1492 bool
1493 compparms (const_tree parms1, const_tree parms2)
1494 {
1495 const_tree t1, t2;
1496
1497 /* An unspecified parmlist matches any specified parmlist
1498 whose argument types don't need default promotions. */
1499
1500 for (t1 = parms1, t2 = parms2;
1501 t1 || t2;
1502 t1 = TREE_CHAIN (t1), t2 = TREE_CHAIN (t2))
1503 {
1504 /* If one parmlist is shorter than the other,
1505 they fail to match. */
1506 if (!t1 || !t2)
1507 return false;
1508 if (!same_type_p (TREE_VALUE (t1), TREE_VALUE (t2)))
1509 return false;
1510 }
1511 return true;
1512 }
1513
1514 \f
1515 /* Process a sizeof or alignof expression where the operand is a
1516 type. */
1517
1518 tree
1519 cxx_sizeof_or_alignof_type (tree type, enum tree_code op, bool complain)
1520 {
1521 tree value;
1522 bool dependent_p;
1523
1524 gcc_assert (op == SIZEOF_EXPR || op == ALIGNOF_EXPR);
1525 if (type == error_mark_node)
1526 return error_mark_node;
1527
1528 type = non_reference (type);
1529 if (TREE_CODE (type) == METHOD_TYPE)
1530 {
1531 if (complain)
1532 pedwarn (input_location, pedantic ? OPT_pedantic : OPT_Wpointer_arith,
1533 "invalid application of %qs to a member function",
1534 operator_name_info[(int) op].name);
1535 value = size_one_node;
1536 }
1537
1538 dependent_p = dependent_type_p (type);
1539 if (!dependent_p)
1540 complete_type (type);
1541 if (dependent_p
1542 /* VLA types will have a non-constant size. In the body of an
1543 uninstantiated template, we don't need to try to compute the
1544 value, because the sizeof expression is not an integral
1545 constant expression in that case. And, if we do try to
1546 compute the value, we'll likely end up with SAVE_EXPRs, which
1547 the template substitution machinery does not expect to see. */
1548 || (processing_template_decl
1549 && COMPLETE_TYPE_P (type)
1550 && TREE_CODE (TYPE_SIZE (type)) != INTEGER_CST))
1551 {
1552 value = build_min (op, size_type_node, type);
1553 TREE_READONLY (value) = 1;
1554 return value;
1555 }
1556
1557 return c_sizeof_or_alignof_type (input_location, complete_type (type),
1558 op == SIZEOF_EXPR,
1559 complain);
1560 }
1561
1562 /* Return the size of the type, without producing any warnings for
1563 types whose size cannot be taken. This routine should be used only
1564 in some other routine that has already produced a diagnostic about
1565 using the size of such a type. */
1566 tree
1567 cxx_sizeof_nowarn (tree type)
1568 {
1569 if (TREE_CODE (type) == FUNCTION_TYPE
1570 || TREE_CODE (type) == VOID_TYPE
1571 || TREE_CODE (type) == ERROR_MARK)
1572 return size_one_node;
1573 else if (!COMPLETE_TYPE_P (type))
1574 return size_zero_node;
1575 else
1576 return cxx_sizeof_or_alignof_type (type, SIZEOF_EXPR, false);
1577 }
1578
1579 /* Process a sizeof expression where the operand is an expression. */
1580
1581 static tree
1582 cxx_sizeof_expr (tree e, tsubst_flags_t complain)
1583 {
1584 if (e == error_mark_node)
1585 return error_mark_node;
1586
1587 if (processing_template_decl)
1588 {
1589 e = build_min (SIZEOF_EXPR, size_type_node, e);
1590 TREE_SIDE_EFFECTS (e) = 0;
1591 TREE_READONLY (e) = 1;
1592
1593 return e;
1594 }
1595
1596 /* To get the size of a static data member declared as an array of
1597 unknown bound, we need to instantiate it. */
1598 if (TREE_CODE (e) == VAR_DECL
1599 && VAR_HAD_UNKNOWN_BOUND (e)
1600 && DECL_TEMPLATE_INSTANTIATION (e))
1601 instantiate_decl (e, /*defer_ok*/true, /*expl_inst_mem*/false);
1602
1603 e = mark_type_use (e);
1604
1605 if (TREE_CODE (e) == COMPONENT_REF
1606 && TREE_CODE (TREE_OPERAND (e, 1)) == FIELD_DECL
1607 && DECL_C_BIT_FIELD (TREE_OPERAND (e, 1)))
1608 {
1609 if (complain & tf_error)
1610 error ("invalid application of %<sizeof%> to a bit-field");
1611 else
1612 return error_mark_node;
1613 e = char_type_node;
1614 }
1615 else if (is_overloaded_fn (e))
1616 {
1617 if (complain & tf_error)
1618 permerror (input_location, "ISO C++ forbids applying %<sizeof%> to an expression of "
1619 "function type");
1620 else
1621 return error_mark_node;
1622 e = char_type_node;
1623 }
1624 else if (type_unknown_p (e))
1625 {
1626 if (complain & tf_error)
1627 cxx_incomplete_type_error (e, TREE_TYPE (e));
1628 else
1629 return error_mark_node;
1630 e = char_type_node;
1631 }
1632 else
1633 e = TREE_TYPE (e);
1634
1635 return cxx_sizeof_or_alignof_type (e, SIZEOF_EXPR, complain & tf_error);
1636 }
1637
1638 /* Implement the __alignof keyword: Return the minimum required
1639 alignment of E, measured in bytes. For VAR_DECL's and
1640 FIELD_DECL's return DECL_ALIGN (which can be set from an
1641 "aligned" __attribute__ specification). */
1642
1643 static tree
1644 cxx_alignof_expr (tree e, tsubst_flags_t complain)
1645 {
1646 tree t;
1647
1648 if (e == error_mark_node)
1649 return error_mark_node;
1650
1651 if (processing_template_decl)
1652 {
1653 e = build_min (ALIGNOF_EXPR, size_type_node, e);
1654 TREE_SIDE_EFFECTS (e) = 0;
1655 TREE_READONLY (e) = 1;
1656
1657 return e;
1658 }
1659
1660 e = mark_type_use (e);
1661
1662 if (TREE_CODE (e) == VAR_DECL)
1663 t = size_int (DECL_ALIGN_UNIT (e));
1664 else if (TREE_CODE (e) == COMPONENT_REF
1665 && TREE_CODE (TREE_OPERAND (e, 1)) == FIELD_DECL
1666 && DECL_C_BIT_FIELD (TREE_OPERAND (e, 1)))
1667 {
1668 if (complain & tf_error)
1669 error ("invalid application of %<__alignof%> to a bit-field");
1670 else
1671 return error_mark_node;
1672 t = size_one_node;
1673 }
1674 else if (TREE_CODE (e) == COMPONENT_REF
1675 && TREE_CODE (TREE_OPERAND (e, 1)) == FIELD_DECL)
1676 t = size_int (DECL_ALIGN_UNIT (TREE_OPERAND (e, 1)));
1677 else if (is_overloaded_fn (e))
1678 {
1679 if (complain & tf_error)
1680 permerror (input_location, "ISO C++ forbids applying %<__alignof%> to an expression of "
1681 "function type");
1682 else
1683 return error_mark_node;
1684 if (TREE_CODE (e) == FUNCTION_DECL)
1685 t = size_int (DECL_ALIGN_UNIT (e));
1686 else
1687 t = size_one_node;
1688 }
1689 else if (type_unknown_p (e))
1690 {
1691 if (complain & tf_error)
1692 cxx_incomplete_type_error (e, TREE_TYPE (e));
1693 else
1694 return error_mark_node;
1695 t = size_one_node;
1696 }
1697 else
1698 return cxx_sizeof_or_alignof_type (TREE_TYPE (e), ALIGNOF_EXPR,
1699 complain & tf_error);
1700
1701 return fold_convert (size_type_node, t);
1702 }
1703
1704 /* Process a sizeof or alignof expression E with code OP where the operand
1705 is an expression. */
1706
1707 tree
1708 cxx_sizeof_or_alignof_expr (tree e, enum tree_code op, bool complain)
1709 {
1710 if (op == SIZEOF_EXPR)
1711 return cxx_sizeof_expr (e, complain? tf_warning_or_error : tf_none);
1712 else
1713 return cxx_alignof_expr (e, complain? tf_warning_or_error : tf_none);
1714 }
1715 \f
1716 /* EXPR is being used in a context that is not a function call.
1717 Enforce:
1718
1719 [expr.ref]
1720
1721 The expression can be used only as the left-hand operand of a
1722 member function call.
1723
1724 [expr.mptr.operator]
1725
1726 If the result of .* or ->* is a function, then that result can be
1727 used only as the operand for the function call operator ().
1728
1729 by issuing an error message if appropriate. Returns true iff EXPR
1730 violates these rules. */
1731
1732 bool
1733 invalid_nonstatic_memfn_p (const_tree expr, tsubst_flags_t complain)
1734 {
1735 if (expr && DECL_NONSTATIC_MEMBER_FUNCTION_P (expr))
1736 {
1737 if (complain & tf_error)
1738 error ("invalid use of non-static member function");
1739 return true;
1740 }
1741 return false;
1742 }
1743
1744 /* If EXP is a reference to a bitfield, and the type of EXP does not
1745 match the declared type of the bitfield, return the declared type
1746 of the bitfield. Otherwise, return NULL_TREE. */
1747
1748 tree
1749 is_bitfield_expr_with_lowered_type (const_tree exp)
1750 {
1751 switch (TREE_CODE (exp))
1752 {
1753 case COND_EXPR:
1754 if (!is_bitfield_expr_with_lowered_type (TREE_OPERAND (exp, 1)
1755 ? TREE_OPERAND (exp, 1)
1756 : TREE_OPERAND (exp, 0)))
1757 return NULL_TREE;
1758 return is_bitfield_expr_with_lowered_type (TREE_OPERAND (exp, 2));
1759
1760 case COMPOUND_EXPR:
1761 return is_bitfield_expr_with_lowered_type (TREE_OPERAND (exp, 1));
1762
1763 case MODIFY_EXPR:
1764 case SAVE_EXPR:
1765 return is_bitfield_expr_with_lowered_type (TREE_OPERAND (exp, 0));
1766
1767 case COMPONENT_REF:
1768 {
1769 tree field;
1770
1771 field = TREE_OPERAND (exp, 1);
1772 if (TREE_CODE (field) != FIELD_DECL || !DECL_BIT_FIELD_TYPE (field))
1773 return NULL_TREE;
1774 if (same_type_ignoring_top_level_qualifiers_p
1775 (TREE_TYPE (exp), DECL_BIT_FIELD_TYPE (field)))
1776 return NULL_TREE;
1777 return DECL_BIT_FIELD_TYPE (field);
1778 }
1779
1780 CASE_CONVERT:
1781 if (TYPE_MAIN_VARIANT (TREE_TYPE (TREE_OPERAND (exp, 0)))
1782 == TYPE_MAIN_VARIANT (TREE_TYPE (exp)))
1783 return is_bitfield_expr_with_lowered_type (TREE_OPERAND (exp, 0));
1784 /* Fallthrough. */
1785
1786 default:
1787 return NULL_TREE;
1788 }
1789 }
1790
1791 /* Like is_bitfield_with_lowered_type, except that if EXP is not a
1792 bitfield with a lowered type, the type of EXP is returned, rather
1793 than NULL_TREE. */
1794
1795 tree
1796 unlowered_expr_type (const_tree exp)
1797 {
1798 tree type;
1799
1800 type = is_bitfield_expr_with_lowered_type (exp);
1801 if (!type)
1802 type = TREE_TYPE (exp);
1803
1804 return type;
1805 }
1806
1807 /* Perform the conversions in [expr] that apply when an lvalue appears
1808 in an rvalue context: the lvalue-to-rvalue, array-to-pointer, and
1809 function-to-pointer conversions. In addition, manifest constants
1810 are replaced by their values, and bitfield references are converted
1811 to their declared types. Note that this function does not perform the
1812 lvalue-to-rvalue conversion for class types. If you need that conversion
1813 to for class types, then you probably need to use force_rvalue.
1814
1815 Although the returned value is being used as an rvalue, this
1816 function does not wrap the returned expression in a
1817 NON_LVALUE_EXPR; the caller is expected to be mindful of the fact
1818 that the return value is no longer an lvalue. */
1819
1820 tree
1821 decay_conversion (tree exp)
1822 {
1823 tree type;
1824 enum tree_code code;
1825
1826 type = TREE_TYPE (exp);
1827 if (type == error_mark_node)
1828 return error_mark_node;
1829
1830 exp = mark_rvalue_use (exp);
1831
1832 exp = resolve_nondeduced_context (exp);
1833 if (type_unknown_p (exp))
1834 {
1835 cxx_incomplete_type_error (exp, TREE_TYPE (exp));
1836 return error_mark_node;
1837 }
1838
1839 /* FIXME remove? at least need to remember that this isn't really a
1840 constant expression if EXP isn't decl_constant_var_p, like with
1841 C_MAYBE_CONST_EXPR. */
1842 exp = decl_constant_value (exp);
1843 if (error_operand_p (exp))
1844 return error_mark_node;
1845
1846 if (NULLPTR_TYPE_P (type))
1847 return nullptr_node;
1848
1849 /* build_c_cast puts on a NOP_EXPR to make the result not an lvalue.
1850 Leave such NOP_EXPRs, since RHS is being used in non-lvalue context. */
1851 code = TREE_CODE (type);
1852 if (code == VOID_TYPE)
1853 {
1854 error ("void value not ignored as it ought to be");
1855 return error_mark_node;
1856 }
1857 if (invalid_nonstatic_memfn_p (exp, tf_warning_or_error))
1858 return error_mark_node;
1859 if (code == FUNCTION_TYPE || is_overloaded_fn (exp))
1860 return cp_build_addr_expr (exp, tf_warning_or_error);
1861 if (code == ARRAY_TYPE)
1862 {
1863 tree adr;
1864 tree ptrtype;
1865
1866 if (TREE_CODE (exp) == INDIRECT_REF)
1867 return build_nop (build_pointer_type (TREE_TYPE (type)),
1868 TREE_OPERAND (exp, 0));
1869
1870 if (TREE_CODE (exp) == COMPOUND_EXPR)
1871 {
1872 tree op1 = decay_conversion (TREE_OPERAND (exp, 1));
1873 return build2 (COMPOUND_EXPR, TREE_TYPE (op1),
1874 TREE_OPERAND (exp, 0), op1);
1875 }
1876
1877 if (!lvalue_p (exp)
1878 && ! (TREE_CODE (exp) == CONSTRUCTOR && TREE_STATIC (exp)))
1879 {
1880 error ("invalid use of non-lvalue array");
1881 return error_mark_node;
1882 }
1883
1884 ptrtype = build_pointer_type (TREE_TYPE (type));
1885
1886 if (TREE_CODE (exp) == VAR_DECL)
1887 {
1888 if (!cxx_mark_addressable (exp))
1889 return error_mark_node;
1890 adr = build_nop (ptrtype, build_address (exp));
1891 return adr;
1892 }
1893 /* This way is better for a COMPONENT_REF since it can
1894 simplify the offset for a component. */
1895 adr = cp_build_addr_expr (exp, tf_warning_or_error);
1896 return cp_convert (ptrtype, adr);
1897 }
1898
1899 /* If a bitfield is used in a context where integral promotion
1900 applies, then the caller is expected to have used
1901 default_conversion. That function promotes bitfields correctly
1902 before calling this function. At this point, if we have a
1903 bitfield referenced, we may assume that is not subject to
1904 promotion, and that, therefore, the type of the resulting rvalue
1905 is the declared type of the bitfield. */
1906 exp = convert_bitfield_to_declared_type (exp);
1907
1908 /* We do not call rvalue() here because we do not want to wrap EXP
1909 in a NON_LVALUE_EXPR. */
1910
1911 /* [basic.lval]
1912
1913 Non-class rvalues always have cv-unqualified types. */
1914 type = TREE_TYPE (exp);
1915 if (!CLASS_TYPE_P (type) && cv_qualified_p (type))
1916 exp = build_nop (cv_unqualified (type), exp);
1917
1918 return exp;
1919 }
1920
1921 /* Perform preparatory conversions, as part of the "usual arithmetic
1922 conversions". In particular, as per [expr]:
1923
1924 Whenever an lvalue expression appears as an operand of an
1925 operator that expects the rvalue for that operand, the
1926 lvalue-to-rvalue, array-to-pointer, or function-to-pointer
1927 standard conversions are applied to convert the expression to an
1928 rvalue.
1929
1930 In addition, we perform integral promotions here, as those are
1931 applied to both operands to a binary operator before determining
1932 what additional conversions should apply. */
1933
1934 tree
1935 default_conversion (tree exp)
1936 {
1937 /* Check for target-specific promotions. */
1938 tree promoted_type = targetm.promoted_type (TREE_TYPE (exp));
1939 if (promoted_type)
1940 exp = cp_convert (promoted_type, exp);
1941 /* Perform the integral promotions first so that bitfield
1942 expressions (which may promote to "int", even if the bitfield is
1943 declared "unsigned") are promoted correctly. */
1944 else if (INTEGRAL_OR_UNSCOPED_ENUMERATION_TYPE_P (TREE_TYPE (exp)))
1945 exp = perform_integral_promotions (exp);
1946 /* Perform the other conversions. */
1947 exp = decay_conversion (exp);
1948
1949 return exp;
1950 }
1951
1952 /* EXPR is an expression with an integral or enumeration type.
1953 Perform the integral promotions in [conv.prom], and return the
1954 converted value. */
1955
1956 tree
1957 perform_integral_promotions (tree expr)
1958 {
1959 tree type;
1960 tree promoted_type;
1961
1962 expr = mark_rvalue_use (expr);
1963
1964 /* [conv.prom]
1965
1966 If the bitfield has an enumerated type, it is treated as any
1967 other value of that type for promotion purposes. */
1968 type = is_bitfield_expr_with_lowered_type (expr);
1969 if (!type || TREE_CODE (type) != ENUMERAL_TYPE)
1970 type = TREE_TYPE (expr);
1971 gcc_assert (INTEGRAL_OR_ENUMERATION_TYPE_P (type));
1972 promoted_type = type_promotes_to (type);
1973 if (type != promoted_type)
1974 expr = cp_convert (promoted_type, expr);
1975 return expr;
1976 }
1977
1978 /* Returns nonzero iff exp is a STRING_CST or the result of applying
1979 decay_conversion to one. */
1980
1981 int
1982 string_conv_p (const_tree totype, const_tree exp, int warn)
1983 {
1984 tree t;
1985
1986 if (TREE_CODE (totype) != POINTER_TYPE)
1987 return 0;
1988
1989 t = TREE_TYPE (totype);
1990 if (!same_type_p (t, char_type_node)
1991 && !same_type_p (t, char16_type_node)
1992 && !same_type_p (t, char32_type_node)
1993 && !same_type_p (t, wchar_type_node))
1994 return 0;
1995
1996 if (TREE_CODE (exp) == STRING_CST)
1997 {
1998 /* Make sure that we don't try to convert between char and wide chars. */
1999 if (!same_type_p (TYPE_MAIN_VARIANT (TREE_TYPE (TREE_TYPE (exp))), t))
2000 return 0;
2001 }
2002 else
2003 {
2004 /* Is this a string constant which has decayed to 'const char *'? */
2005 t = build_pointer_type (cp_build_qualified_type (t, TYPE_QUAL_CONST));
2006 if (!same_type_p (TREE_TYPE (exp), t))
2007 return 0;
2008 STRIP_NOPS (exp);
2009 if (TREE_CODE (exp) != ADDR_EXPR
2010 || TREE_CODE (TREE_OPERAND (exp, 0)) != STRING_CST)
2011 return 0;
2012 }
2013
2014 /* This warning is not very useful, as it complains about printf. */
2015 if (warn)
2016 warning (OPT_Wwrite_strings,
2017 "deprecated conversion from string constant to %qT",
2018 totype);
2019
2020 return 1;
2021 }
2022
2023 /* Given a COND_EXPR, MIN_EXPR, or MAX_EXPR in T, return it in a form that we
2024 can, for example, use as an lvalue. This code used to be in
2025 unary_complex_lvalue, but we needed it to deal with `a = (d == c) ? b : c'
2026 expressions, where we're dealing with aggregates. But now it's again only
2027 called from unary_complex_lvalue. The case (in particular) that led to
2028 this was with CODE == ADDR_EXPR, since it's not an lvalue when we'd
2029 get it there. */
2030
2031 static tree
2032 rationalize_conditional_expr (enum tree_code code, tree t,
2033 tsubst_flags_t complain)
2034 {
2035 /* For MIN_EXPR or MAX_EXPR, fold-const.c has arranged things so that
2036 the first operand is always the one to be used if both operands
2037 are equal, so we know what conditional expression this used to be. */
2038 if (TREE_CODE (t) == MIN_EXPR || TREE_CODE (t) == MAX_EXPR)
2039 {
2040 tree op0 = TREE_OPERAND (t, 0);
2041 tree op1 = TREE_OPERAND (t, 1);
2042
2043 /* The following code is incorrect if either operand side-effects. */
2044 gcc_assert (!TREE_SIDE_EFFECTS (op0)
2045 && !TREE_SIDE_EFFECTS (op1));
2046 return
2047 build_conditional_expr (build_x_binary_op ((TREE_CODE (t) == MIN_EXPR
2048 ? LE_EXPR : GE_EXPR),
2049 op0, TREE_CODE (op0),
2050 op1, TREE_CODE (op1),
2051 /*overloaded_p=*/NULL,
2052 complain),
2053 cp_build_unary_op (code, op0, 0, complain),
2054 cp_build_unary_op (code, op1, 0, complain),
2055 complain);
2056 }
2057
2058 return
2059 build_conditional_expr (TREE_OPERAND (t, 0),
2060 cp_build_unary_op (code, TREE_OPERAND (t, 1), 0,
2061 complain),
2062 cp_build_unary_op (code, TREE_OPERAND (t, 2), 0,
2063 complain),
2064 complain);
2065 }
2066
2067 /* Given the TYPE of an anonymous union field inside T, return the
2068 FIELD_DECL for the field. If not found return NULL_TREE. Because
2069 anonymous unions can nest, we must also search all anonymous unions
2070 that are directly reachable. */
2071
2072 tree
2073 lookup_anon_field (tree t, tree type)
2074 {
2075 tree field;
2076
2077 for (field = TYPE_FIELDS (t); field; field = DECL_CHAIN (field))
2078 {
2079 if (TREE_STATIC (field))
2080 continue;
2081 if (TREE_CODE (field) != FIELD_DECL || DECL_ARTIFICIAL (field))
2082 continue;
2083
2084 /* If we find it directly, return the field. */
2085 if (DECL_NAME (field) == NULL_TREE
2086 && type == TYPE_MAIN_VARIANT (TREE_TYPE (field)))
2087 {
2088 return field;
2089 }
2090
2091 /* Otherwise, it could be nested, search harder. */
2092 if (DECL_NAME (field) == NULL_TREE
2093 && ANON_AGGR_TYPE_P (TREE_TYPE (field)))
2094 {
2095 tree subfield = lookup_anon_field (TREE_TYPE (field), type);
2096 if (subfield)
2097 return subfield;
2098 }
2099 }
2100 return NULL_TREE;
2101 }
2102
2103 /* Build an expression representing OBJECT.MEMBER. OBJECT is an
2104 expression; MEMBER is a DECL or baselink. If ACCESS_PATH is
2105 non-NULL, it indicates the path to the base used to name MEMBER.
2106 If PRESERVE_REFERENCE is true, the expression returned will have
2107 REFERENCE_TYPE if the MEMBER does. Otherwise, the expression
2108 returned will have the type referred to by the reference.
2109
2110 This function does not perform access control; that is either done
2111 earlier by the parser when the name of MEMBER is resolved to MEMBER
2112 itself, or later when overload resolution selects one of the
2113 functions indicated by MEMBER. */
2114
2115 tree
2116 build_class_member_access_expr (tree object, tree member,
2117 tree access_path, bool preserve_reference,
2118 tsubst_flags_t complain)
2119 {
2120 tree object_type;
2121 tree member_scope;
2122 tree result = NULL_TREE;
2123
2124 if (error_operand_p (object) || error_operand_p (member))
2125 return error_mark_node;
2126
2127 gcc_assert (DECL_P (member) || BASELINK_P (member));
2128
2129 /* [expr.ref]
2130
2131 The type of the first expression shall be "class object" (of a
2132 complete type). */
2133 object_type = TREE_TYPE (object);
2134 if (!currently_open_class (object_type)
2135 && !complete_type_or_maybe_complain (object_type, object, complain))
2136 return error_mark_node;
2137 if (!CLASS_TYPE_P (object_type))
2138 {
2139 if (complain & tf_error)
2140 error ("request for member %qD in %qE, which is of non-class type %qT",
2141 member, object, object_type);
2142 return error_mark_node;
2143 }
2144
2145 /* The standard does not seem to actually say that MEMBER must be a
2146 member of OBJECT_TYPE. However, that is clearly what is
2147 intended. */
2148 if (DECL_P (member))
2149 {
2150 member_scope = DECL_CLASS_CONTEXT (member);
2151 mark_used (member);
2152 if (TREE_DEPRECATED (member))
2153 warn_deprecated_use (member, NULL_TREE);
2154 }
2155 else
2156 member_scope = BINFO_TYPE (BASELINK_ACCESS_BINFO (member));
2157 /* If MEMBER is from an anonymous aggregate, MEMBER_SCOPE will
2158 presently be the anonymous union. Go outwards until we find a
2159 type related to OBJECT_TYPE. */
2160 while (ANON_AGGR_TYPE_P (member_scope)
2161 && !same_type_ignoring_top_level_qualifiers_p (member_scope,
2162 object_type))
2163 member_scope = TYPE_CONTEXT (member_scope);
2164 if (!member_scope || !DERIVED_FROM_P (member_scope, object_type))
2165 {
2166 if (complain & tf_error)
2167 {
2168 if (TREE_CODE (member) == FIELD_DECL)
2169 error ("invalid use of nonstatic data member %qE", member);
2170 else
2171 error ("%qD is not a member of %qT", member, object_type);
2172 }
2173 return error_mark_node;
2174 }
2175
2176 /* Transform `(a, b).x' into `(*(a, &b)).x', `(a ? b : c).x' into
2177 `(*(a ? &b : &c)).x', and so on. A COND_EXPR is only an lvalue
2178 in the front end; only _DECLs and _REFs are lvalues in the back end. */
2179 {
2180 tree temp = unary_complex_lvalue (ADDR_EXPR, object);
2181 if (temp)
2182 object = cp_build_indirect_ref (temp, RO_NULL, complain);
2183 }
2184
2185 /* In [expr.ref], there is an explicit list of the valid choices for
2186 MEMBER. We check for each of those cases here. */
2187 if (TREE_CODE (member) == VAR_DECL)
2188 {
2189 /* A static data member. */
2190 result = member;
2191 mark_exp_read (object);
2192 /* If OBJECT has side-effects, they are supposed to occur. */
2193 if (TREE_SIDE_EFFECTS (object))
2194 result = build2 (COMPOUND_EXPR, TREE_TYPE (result), object, result);
2195 }
2196 else if (TREE_CODE (member) == FIELD_DECL)
2197 {
2198 /* A non-static data member. */
2199 bool null_object_p;
2200 int type_quals;
2201 tree member_type;
2202
2203 null_object_p = (TREE_CODE (object) == INDIRECT_REF
2204 && integer_zerop (TREE_OPERAND (object, 0)));
2205
2206 /* Convert OBJECT to the type of MEMBER. */
2207 if (!same_type_p (TYPE_MAIN_VARIANT (object_type),
2208 TYPE_MAIN_VARIANT (member_scope)))
2209 {
2210 tree binfo;
2211 base_kind kind;
2212
2213 binfo = lookup_base (access_path ? access_path : object_type,
2214 member_scope, ba_unique, &kind);
2215 if (binfo == error_mark_node)
2216 return error_mark_node;
2217
2218 /* It is invalid to try to get to a virtual base of a
2219 NULL object. The most common cause is invalid use of
2220 offsetof macro. */
2221 if (null_object_p && kind == bk_via_virtual)
2222 {
2223 if (complain & tf_error)
2224 {
2225 error ("invalid access to non-static data member %qD of "
2226 "NULL object",
2227 member);
2228 error ("(perhaps the %<offsetof%> macro was used incorrectly)");
2229 }
2230 return error_mark_node;
2231 }
2232
2233 /* Convert to the base. */
2234 object = build_base_path (PLUS_EXPR, object, binfo,
2235 /*nonnull=*/1);
2236 /* If we found the base successfully then we should be able
2237 to convert to it successfully. */
2238 gcc_assert (object != error_mark_node);
2239 }
2240
2241 /* Complain about other invalid uses of offsetof, even though they will
2242 give the right answer. Note that we complain whether or not they
2243 actually used the offsetof macro, since there's no way to know at this
2244 point. So we just give a warning, instead of a pedwarn. */
2245 /* Do not produce this warning for base class field references, because
2246 we know for a fact that didn't come from offsetof. This does occur
2247 in various testsuite cases where a null object is passed where a
2248 vtable access is required. */
2249 if (null_object_p && warn_invalid_offsetof
2250 && CLASSTYPE_NON_STD_LAYOUT (object_type)
2251 && !DECL_FIELD_IS_BASE (member)
2252 && cp_unevaluated_operand == 0
2253 && (complain & tf_warning))
2254 {
2255 warning (OPT_Winvalid_offsetof,
2256 "invalid access to non-static data member %qD "
2257 " of NULL object", member);
2258 warning (OPT_Winvalid_offsetof,
2259 "(perhaps the %<offsetof%> macro was used incorrectly)");
2260 }
2261
2262 /* If MEMBER is from an anonymous aggregate, we have converted
2263 OBJECT so that it refers to the class containing the
2264 anonymous union. Generate a reference to the anonymous union
2265 itself, and recur to find MEMBER. */
2266 if (ANON_AGGR_TYPE_P (DECL_CONTEXT (member))
2267 /* When this code is called from build_field_call, the
2268 object already has the type of the anonymous union.
2269 That is because the COMPONENT_REF was already
2270 constructed, and was then disassembled before calling
2271 build_field_call. After the function-call code is
2272 cleaned up, this waste can be eliminated. */
2273 && (!same_type_ignoring_top_level_qualifiers_p
2274 (TREE_TYPE (object), DECL_CONTEXT (member))))
2275 {
2276 tree anonymous_union;
2277
2278 anonymous_union = lookup_anon_field (TREE_TYPE (object),
2279 DECL_CONTEXT (member));
2280 object = build_class_member_access_expr (object,
2281 anonymous_union,
2282 /*access_path=*/NULL_TREE,
2283 preserve_reference,
2284 complain);
2285 }
2286
2287 /* Compute the type of the field, as described in [expr.ref]. */
2288 type_quals = TYPE_UNQUALIFIED;
2289 member_type = TREE_TYPE (member);
2290 if (TREE_CODE (member_type) != REFERENCE_TYPE)
2291 {
2292 type_quals = (cp_type_quals (member_type)
2293 | cp_type_quals (object_type));
2294
2295 /* A field is const (volatile) if the enclosing object, or the
2296 field itself, is const (volatile). But, a mutable field is
2297 not const, even within a const object. */
2298 if (DECL_MUTABLE_P (member))
2299 type_quals &= ~TYPE_QUAL_CONST;
2300 member_type = cp_build_qualified_type (member_type, type_quals);
2301 }
2302
2303 result = build3 (COMPONENT_REF, member_type, object, member,
2304 NULL_TREE);
2305 result = fold_if_not_in_template (result);
2306
2307 /* Mark the expression const or volatile, as appropriate. Even
2308 though we've dealt with the type above, we still have to mark the
2309 expression itself. */
2310 if (type_quals & TYPE_QUAL_CONST)
2311 TREE_READONLY (result) = 1;
2312 if (type_quals & TYPE_QUAL_VOLATILE)
2313 TREE_THIS_VOLATILE (result) = 1;
2314 }
2315 else if (BASELINK_P (member))
2316 {
2317 /* The member is a (possibly overloaded) member function. */
2318 tree functions;
2319 tree type;
2320
2321 /* If the MEMBER is exactly one static member function, then we
2322 know the type of the expression. Otherwise, we must wait
2323 until overload resolution has been performed. */
2324 functions = BASELINK_FUNCTIONS (member);
2325 if (TREE_CODE (functions) == FUNCTION_DECL
2326 && DECL_STATIC_FUNCTION_P (functions))
2327 type = TREE_TYPE (functions);
2328 else
2329 type = unknown_type_node;
2330 /* Note that we do not convert OBJECT to the BASELINK_BINFO
2331 base. That will happen when the function is called. */
2332 result = build3 (COMPONENT_REF, type, object, member, NULL_TREE);
2333 }
2334 else if (TREE_CODE (member) == CONST_DECL)
2335 {
2336 /* The member is an enumerator. */
2337 result = member;
2338 /* If OBJECT has side-effects, they are supposed to occur. */
2339 if (TREE_SIDE_EFFECTS (object))
2340 result = build2 (COMPOUND_EXPR, TREE_TYPE (result),
2341 object, result);
2342 }
2343 else
2344 {
2345 if (complain & tf_error)
2346 error ("invalid use of %qD", member);
2347 return error_mark_node;
2348 }
2349
2350 if (!preserve_reference)
2351 /* [expr.ref]
2352
2353 If E2 is declared to have type "reference to T", then ... the
2354 type of E1.E2 is T. */
2355 result = convert_from_reference (result);
2356
2357 return result;
2358 }
2359
2360 /* Return the destructor denoted by OBJECT.SCOPE::DTOR_NAME, or, if
2361 SCOPE is NULL, by OBJECT.DTOR_NAME, where DTOR_NAME is ~type. */
2362
2363 static tree
2364 lookup_destructor (tree object, tree scope, tree dtor_name)
2365 {
2366 tree object_type = TREE_TYPE (object);
2367 tree dtor_type = TREE_OPERAND (dtor_name, 0);
2368 tree expr;
2369
2370 if (scope && !check_dtor_name (scope, dtor_type))
2371 {
2372 error ("qualified type %qT does not match destructor name ~%qT",
2373 scope, dtor_type);
2374 return error_mark_node;
2375 }
2376 if (TREE_CODE (dtor_type) == IDENTIFIER_NODE)
2377 {
2378 /* In a template, names we can't find a match for are still accepted
2379 destructor names, and we check them here. */
2380 if (check_dtor_name (object_type, dtor_type))
2381 dtor_type = object_type;
2382 else
2383 {
2384 error ("object type %qT does not match destructor name ~%qT",
2385 object_type, dtor_type);
2386 return error_mark_node;
2387 }
2388
2389 }
2390 else if (!DERIVED_FROM_P (dtor_type, TYPE_MAIN_VARIANT (object_type)))
2391 {
2392 error ("the type being destroyed is %qT, but the destructor refers to %qT",
2393 TYPE_MAIN_VARIANT (object_type), dtor_type);
2394 return error_mark_node;
2395 }
2396 expr = lookup_member (dtor_type, complete_dtor_identifier,
2397 /*protect=*/1, /*want_type=*/false);
2398 expr = (adjust_result_of_qualified_name_lookup
2399 (expr, dtor_type, object_type));
2400 return expr;
2401 }
2402
2403 /* An expression of the form "A::template B" has been resolved to
2404 DECL. Issue a diagnostic if B is not a template or template
2405 specialization. */
2406
2407 void
2408 check_template_keyword (tree decl)
2409 {
2410 /* The standard says:
2411
2412 [temp.names]
2413
2414 If a name prefixed by the keyword template is not a member
2415 template, the program is ill-formed.
2416
2417 DR 228 removed the restriction that the template be a member
2418 template.
2419
2420 DR 96, if accepted would add the further restriction that explicit
2421 template arguments must be provided if the template keyword is
2422 used, but, as of 2005-10-16, that DR is still in "drafting". If
2423 this DR is accepted, then the semantic checks here can be
2424 simplified, as the entity named must in fact be a template
2425 specialization, rather than, as at present, a set of overloaded
2426 functions containing at least one template function. */
2427 if (TREE_CODE (decl) != TEMPLATE_DECL
2428 && TREE_CODE (decl) != TEMPLATE_ID_EXPR)
2429 {
2430 if (!is_overloaded_fn (decl))
2431 permerror (input_location, "%qD is not a template", decl);
2432 else
2433 {
2434 tree fns;
2435 fns = decl;
2436 if (BASELINK_P (fns))
2437 fns = BASELINK_FUNCTIONS (fns);
2438 while (fns)
2439 {
2440 tree fn = OVL_CURRENT (fns);
2441 if (TREE_CODE (fn) == TEMPLATE_DECL
2442 || TREE_CODE (fn) == TEMPLATE_ID_EXPR)
2443 break;
2444 if (TREE_CODE (fn) == FUNCTION_DECL
2445 && DECL_USE_TEMPLATE (fn)
2446 && PRIMARY_TEMPLATE_P (DECL_TI_TEMPLATE (fn)))
2447 break;
2448 fns = OVL_NEXT (fns);
2449 }
2450 if (!fns)
2451 permerror (input_location, "%qD is not a template", decl);
2452 }
2453 }
2454 }
2455
2456 /* This function is called by the parser to process a class member
2457 access expression of the form OBJECT.NAME. NAME is a node used by
2458 the parser to represent a name; it is not yet a DECL. It may,
2459 however, be a BASELINK where the BASELINK_FUNCTIONS is a
2460 TEMPLATE_ID_EXPR. Templates must be looked up by the parser, and
2461 there is no reason to do the lookup twice, so the parser keeps the
2462 BASELINK. TEMPLATE_P is true iff NAME was explicitly declared to
2463 be a template via the use of the "A::template B" syntax. */
2464
2465 tree
2466 finish_class_member_access_expr (tree object, tree name, bool template_p,
2467 tsubst_flags_t complain)
2468 {
2469 tree expr;
2470 tree object_type;
2471 tree member;
2472 tree access_path = NULL_TREE;
2473 tree orig_object = object;
2474 tree orig_name = name;
2475
2476 if (object == error_mark_node || name == error_mark_node)
2477 return error_mark_node;
2478
2479 /* If OBJECT is an ObjC class instance, we must obey ObjC access rules. */
2480 if (!objc_is_public (object, name))
2481 return error_mark_node;
2482
2483 object_type = TREE_TYPE (object);
2484
2485 if (processing_template_decl)
2486 {
2487 if (/* If OBJECT_TYPE is dependent, so is OBJECT.NAME. */
2488 dependent_type_p (object_type)
2489 /* If NAME is just an IDENTIFIER_NODE, then the expression
2490 is dependent. */
2491 || TREE_CODE (object) == IDENTIFIER_NODE
2492 /* If NAME is "f<args>", where either 'f' or 'args' is
2493 dependent, then the expression is dependent. */
2494 || (TREE_CODE (name) == TEMPLATE_ID_EXPR
2495 && dependent_template_id_p (TREE_OPERAND (name, 0),
2496 TREE_OPERAND (name, 1)))
2497 /* If NAME is "T::X" where "T" is dependent, then the
2498 expression is dependent. */
2499 || (TREE_CODE (name) == SCOPE_REF
2500 && TYPE_P (TREE_OPERAND (name, 0))
2501 && dependent_type_p (TREE_OPERAND (name, 0))))
2502 return build_min_nt (COMPONENT_REF, object, name, NULL_TREE);
2503 object = build_non_dependent_expr (object);
2504 }
2505 else if (c_dialect_objc ()
2506 && TREE_CODE (name) == IDENTIFIER_NODE
2507 && (expr = objc_maybe_build_component_ref (object, name)))
2508 return expr;
2509
2510 /* [expr.ref]
2511
2512 The type of the first expression shall be "class object" (of a
2513 complete type). */
2514 if (!currently_open_class (object_type)
2515 && !complete_type_or_maybe_complain (object_type, object, complain))
2516 return error_mark_node;
2517 if (!CLASS_TYPE_P (object_type))
2518 {
2519 if (complain & tf_error)
2520 error ("request for member %qD in %qE, which is of non-class type %qT",
2521 name, object, object_type);
2522 return error_mark_node;
2523 }
2524
2525 if (BASELINK_P (name))
2526 /* A member function that has already been looked up. */
2527 member = name;
2528 else
2529 {
2530 bool is_template_id = false;
2531 tree template_args = NULL_TREE;
2532 tree scope;
2533
2534 if (TREE_CODE (name) == TEMPLATE_ID_EXPR)
2535 {
2536 is_template_id = true;
2537 template_args = TREE_OPERAND (name, 1);
2538 name = TREE_OPERAND (name, 0);
2539
2540 if (TREE_CODE (name) == OVERLOAD)
2541 name = DECL_NAME (get_first_fn (name));
2542 else if (DECL_P (name))
2543 name = DECL_NAME (name);
2544 }
2545
2546 if (TREE_CODE (name) == SCOPE_REF)
2547 {
2548 /* A qualified name. The qualifying class or namespace `S'
2549 has already been looked up; it is either a TYPE or a
2550 NAMESPACE_DECL. */
2551 scope = TREE_OPERAND (name, 0);
2552 name = TREE_OPERAND (name, 1);
2553
2554 /* If SCOPE is a namespace, then the qualified name does not
2555 name a member of OBJECT_TYPE. */
2556 if (TREE_CODE (scope) == NAMESPACE_DECL)
2557 {
2558 if (complain & tf_error)
2559 error ("%<%D::%D%> is not a member of %qT",
2560 scope, name, object_type);
2561 return error_mark_node;
2562 }
2563
2564 gcc_assert (CLASS_TYPE_P (scope));
2565 gcc_assert (TREE_CODE (name) == IDENTIFIER_NODE
2566 || TREE_CODE (name) == BIT_NOT_EXPR);
2567
2568 if (constructor_name_p (name, scope))
2569 {
2570 if (complain & tf_error)
2571 error ("cannot call constructor %<%T::%D%> directly",
2572 scope, name);
2573 return error_mark_node;
2574 }
2575
2576 /* Find the base of OBJECT_TYPE corresponding to SCOPE. */
2577 access_path = lookup_base (object_type, scope, ba_check, NULL);
2578 if (access_path == error_mark_node)
2579 return error_mark_node;
2580 if (!access_path)
2581 {
2582 if (complain & tf_error)
2583 error ("%qT is not a base of %qT", scope, object_type);
2584 return error_mark_node;
2585 }
2586 }
2587 else
2588 {
2589 scope = NULL_TREE;
2590 access_path = object_type;
2591 }
2592
2593 if (TREE_CODE (name) == BIT_NOT_EXPR)
2594 member = lookup_destructor (object, scope, name);
2595 else
2596 {
2597 /* Look up the member. */
2598 member = lookup_member (access_path, name, /*protect=*/1,
2599 /*want_type=*/false);
2600 if (member == NULL_TREE)
2601 {
2602 if (complain & tf_error)
2603 error ("%qD has no member named %qE", object_type, name);
2604 return error_mark_node;
2605 }
2606 if (member == error_mark_node)
2607 return error_mark_node;
2608 }
2609
2610 if (is_template_id)
2611 {
2612 tree templ = member;
2613
2614 if (BASELINK_P (templ))
2615 templ = lookup_template_function (templ, template_args);
2616 else
2617 {
2618 if (complain & tf_error)
2619 error ("%qD is not a member template function", name);
2620 return error_mark_node;
2621 }
2622 }
2623 }
2624
2625 if (TREE_DEPRECATED (member))
2626 warn_deprecated_use (member, NULL_TREE);
2627
2628 if (template_p)
2629 check_template_keyword (member);
2630
2631 expr = build_class_member_access_expr (object, member, access_path,
2632 /*preserve_reference=*/false,
2633 complain);
2634 if (processing_template_decl && expr != error_mark_node)
2635 {
2636 if (BASELINK_P (member))
2637 {
2638 if (TREE_CODE (orig_name) == SCOPE_REF)
2639 BASELINK_QUALIFIED_P (member) = 1;
2640 orig_name = member;
2641 }
2642 return build_min_non_dep (COMPONENT_REF, expr,
2643 orig_object, orig_name,
2644 NULL_TREE);
2645 }
2646
2647 return expr;
2648 }
2649
2650 /* Return an expression for the MEMBER_NAME field in the internal
2651 representation of PTRMEM, a pointer-to-member function. (Each
2652 pointer-to-member function type gets its own RECORD_TYPE so it is
2653 more convenient to access the fields by name than by FIELD_DECL.)
2654 This routine converts the NAME to a FIELD_DECL and then creates the
2655 node for the complete expression. */
2656
2657 tree
2658 build_ptrmemfunc_access_expr (tree ptrmem, tree member_name)
2659 {
2660 tree ptrmem_type;
2661 tree member;
2662 tree member_type;
2663
2664 /* This code is a stripped down version of
2665 build_class_member_access_expr. It does not work to use that
2666 routine directly because it expects the object to be of class
2667 type. */
2668 ptrmem_type = TREE_TYPE (ptrmem);
2669 gcc_assert (TYPE_PTRMEMFUNC_P (ptrmem_type));
2670 member = lookup_member (ptrmem_type, member_name, /*protect=*/0,
2671 /*want_type=*/false);
2672 member_type = cp_build_qualified_type (TREE_TYPE (member),
2673 cp_type_quals (ptrmem_type));
2674 return fold_build3_loc (input_location,
2675 COMPONENT_REF, member_type,
2676 ptrmem, member, NULL_TREE);
2677 }
2678
2679 /* Given an expression PTR for a pointer, return an expression
2680 for the value pointed to.
2681 ERRORSTRING is the name of the operator to appear in error messages.
2682
2683 This function may need to overload OPERATOR_FNNAME.
2684 Must also handle REFERENCE_TYPEs for C++. */
2685
2686 tree
2687 build_x_indirect_ref (tree expr, ref_operator errorstring,
2688 tsubst_flags_t complain)
2689 {
2690 tree orig_expr = expr;
2691 tree rval;
2692
2693 if (processing_template_decl)
2694 {
2695 /* Retain the type if we know the operand is a pointer so that
2696 describable_type doesn't make auto deduction break. */
2697 if (TREE_TYPE (expr) && POINTER_TYPE_P (TREE_TYPE (expr)))
2698 return build_min (INDIRECT_REF, TREE_TYPE (TREE_TYPE (expr)), expr);
2699 if (type_dependent_expression_p (expr))
2700 return build_min_nt (INDIRECT_REF, expr);
2701 expr = build_non_dependent_expr (expr);
2702 }
2703
2704 rval = build_new_op (INDIRECT_REF, LOOKUP_NORMAL, expr, NULL_TREE,
2705 NULL_TREE, /*overloaded_p=*/NULL, complain);
2706 if (!rval)
2707 rval = cp_build_indirect_ref (expr, errorstring, complain);
2708
2709 if (processing_template_decl && rval != error_mark_node)
2710 return build_min_non_dep (INDIRECT_REF, rval, orig_expr);
2711 else
2712 return rval;
2713 }
2714
2715 /* Helper function called from c-common. */
2716 tree
2717 build_indirect_ref (location_t loc __attribute__ ((__unused__)),
2718 tree ptr, ref_operator errorstring)
2719 {
2720 return cp_build_indirect_ref (ptr, errorstring, tf_warning_or_error);
2721 }
2722
2723 tree
2724 cp_build_indirect_ref (tree ptr, ref_operator errorstring,
2725 tsubst_flags_t complain)
2726 {
2727 tree pointer, type;
2728
2729 if (ptr == error_mark_node)
2730 return error_mark_node;
2731
2732 if (ptr == current_class_ptr)
2733 return current_class_ref;
2734
2735 pointer = (TREE_CODE (TREE_TYPE (ptr)) == REFERENCE_TYPE
2736 ? ptr : decay_conversion (ptr));
2737 type = TREE_TYPE (pointer);
2738
2739 if (POINTER_TYPE_P (type))
2740 {
2741 /* [expr.unary.op]
2742
2743 If the type of the expression is "pointer to T," the type
2744 of the result is "T." */
2745 tree t = TREE_TYPE (type);
2746
2747 if (CONVERT_EXPR_P (ptr)
2748 || TREE_CODE (ptr) == VIEW_CONVERT_EXPR)
2749 {
2750 /* If a warning is issued, mark it to avoid duplicates from
2751 the backend. This only needs to be done at
2752 warn_strict_aliasing > 2. */
2753 if (warn_strict_aliasing > 2)
2754 if (strict_aliasing_warning (TREE_TYPE (TREE_OPERAND (ptr, 0)),
2755 type, TREE_OPERAND (ptr, 0)))
2756 TREE_NO_WARNING (ptr) = 1;
2757 }
2758
2759 if (VOID_TYPE_P (t))
2760 {
2761 /* A pointer to incomplete type (other than cv void) can be
2762 dereferenced [expr.unary.op]/1 */
2763 if (complain & tf_error)
2764 error ("%qT is not a pointer-to-object type", type);
2765 return error_mark_node;
2766 }
2767 else if (TREE_CODE (pointer) == ADDR_EXPR
2768 && same_type_p (t, TREE_TYPE (TREE_OPERAND (pointer, 0))))
2769 /* The POINTER was something like `&x'. We simplify `*&x' to
2770 `x'. */
2771 return TREE_OPERAND (pointer, 0);
2772 else
2773 {
2774 tree ref = build1 (INDIRECT_REF, t, pointer);
2775
2776 /* We *must* set TREE_READONLY when dereferencing a pointer to const,
2777 so that we get the proper error message if the result is used
2778 to assign to. Also, &* is supposed to be a no-op. */
2779 TREE_READONLY (ref) = CP_TYPE_CONST_P (t);
2780 TREE_THIS_VOLATILE (ref) = CP_TYPE_VOLATILE_P (t);
2781 TREE_SIDE_EFFECTS (ref)
2782 = (TREE_THIS_VOLATILE (ref) || TREE_SIDE_EFFECTS (pointer));
2783 return ref;
2784 }
2785 }
2786 else if (!(complain & tf_error))
2787 /* Don't emit any errors; we'll just return ERROR_MARK_NODE later. */
2788 ;
2789 /* `pointer' won't be an error_mark_node if we were given a
2790 pointer to member, so it's cool to check for this here. */
2791 else if (TYPE_PTR_TO_MEMBER_P (type))
2792 switch (errorstring)
2793 {
2794 case RO_ARRAY_INDEXING:
2795 error ("invalid use of array indexing on pointer to member");
2796 break;
2797 case RO_UNARY_STAR:
2798 error ("invalid use of unary %<*%> on pointer to member");
2799 break;
2800 case RO_IMPLICIT_CONVERSION:
2801 error ("invalid use of implicit conversion on pointer to member");
2802 break;
2803 default:
2804 gcc_unreachable ();
2805 }
2806 else if (pointer != error_mark_node)
2807 switch (errorstring)
2808 {
2809 case RO_NULL:
2810 error ("invalid type argument");
2811 break;
2812 case RO_ARRAY_INDEXING:
2813 error ("invalid type argument of array indexing");
2814 break;
2815 case RO_UNARY_STAR:
2816 error ("invalid type argument of unary %<*%>");
2817 break;
2818 case RO_IMPLICIT_CONVERSION:
2819 error ("invalid type argument of implicit conversion");
2820 break;
2821 default:
2822 gcc_unreachable ();
2823 }
2824 return error_mark_node;
2825 }
2826
2827 /* This handles expressions of the form "a[i]", which denotes
2828 an array reference.
2829
2830 This is logically equivalent in C to *(a+i), but we may do it differently.
2831 If A is a variable or a member, we generate a primitive ARRAY_REF.
2832 This avoids forcing the array out of registers, and can work on
2833 arrays that are not lvalues (for example, members of structures returned
2834 by functions).
2835
2836 If INDEX is of some user-defined type, it must be converted to
2837 integer type. Otherwise, to make a compatible PLUS_EXPR, it
2838 will inherit the type of the array, which will be some pointer type.
2839
2840 LOC is the location to use in building the array reference. */
2841
2842 tree
2843 cp_build_array_ref (location_t loc, tree array, tree idx,
2844 tsubst_flags_t complain)
2845 {
2846 tree ret;
2847
2848 if (idx == 0)
2849 {
2850 if (complain & tf_error)
2851 error_at (loc, "subscript missing in array reference");
2852 return error_mark_node;
2853 }
2854
2855 if (TREE_TYPE (array) == error_mark_node
2856 || TREE_TYPE (idx) == error_mark_node)
2857 return error_mark_node;
2858
2859 /* If ARRAY is a COMPOUND_EXPR or COND_EXPR, move our reference
2860 inside it. */
2861 switch (TREE_CODE (array))
2862 {
2863 case COMPOUND_EXPR:
2864 {
2865 tree value = cp_build_array_ref (loc, TREE_OPERAND (array, 1), idx,
2866 complain);
2867 ret = build2 (COMPOUND_EXPR, TREE_TYPE (value),
2868 TREE_OPERAND (array, 0), value);
2869 SET_EXPR_LOCATION (ret, loc);
2870 return ret;
2871 }
2872
2873 case COND_EXPR:
2874 ret = build_conditional_expr
2875 (TREE_OPERAND (array, 0),
2876 cp_build_array_ref (loc, TREE_OPERAND (array, 1), idx,
2877 complain),
2878 cp_build_array_ref (loc, TREE_OPERAND (array, 2), idx,
2879 complain),
2880 tf_warning_or_error);
2881 protected_set_expr_location (ret, loc);
2882 return ret;
2883
2884 default:
2885 break;
2886 }
2887
2888 if (TREE_CODE (TREE_TYPE (array)) == ARRAY_TYPE)
2889 {
2890 tree rval, type;
2891
2892 warn_array_subscript_with_type_char (idx);
2893
2894 if (!INTEGRAL_OR_UNSCOPED_ENUMERATION_TYPE_P (TREE_TYPE (idx)))
2895 {
2896 if (complain & tf_error)
2897 error_at (loc, "array subscript is not an integer");
2898 return error_mark_node;
2899 }
2900
2901 /* Apply integral promotions *after* noticing character types.
2902 (It is unclear why we do these promotions -- the standard
2903 does not say that we should. In fact, the natural thing would
2904 seem to be to convert IDX to ptrdiff_t; we're performing
2905 pointer arithmetic.) */
2906 idx = perform_integral_promotions (idx);
2907
2908 /* An array that is indexed by a non-constant
2909 cannot be stored in a register; we must be able to do
2910 address arithmetic on its address.
2911 Likewise an array of elements of variable size. */
2912 if (TREE_CODE (idx) != INTEGER_CST
2913 || (COMPLETE_TYPE_P (TREE_TYPE (TREE_TYPE (array)))
2914 && (TREE_CODE (TYPE_SIZE (TREE_TYPE (TREE_TYPE (array))))
2915 != INTEGER_CST)))
2916 {
2917 if (!cxx_mark_addressable (array))
2918 return error_mark_node;
2919 }
2920
2921 /* An array that is indexed by a constant value which is not within
2922 the array bounds cannot be stored in a register either; because we
2923 would get a crash in store_bit_field/extract_bit_field when trying
2924 to access a non-existent part of the register. */
2925 if (TREE_CODE (idx) == INTEGER_CST
2926 && TYPE_DOMAIN (TREE_TYPE (array))
2927 && ! int_fits_type_p (idx, TYPE_DOMAIN (TREE_TYPE (array))))
2928 {
2929 if (!cxx_mark_addressable (array))
2930 return error_mark_node;
2931 }
2932
2933 if (!lvalue_p (array) && (complain & tf_error))
2934 pedwarn (loc, OPT_pedantic,
2935 "ISO C++ forbids subscripting non-lvalue array");
2936
2937 /* Note in C++ it is valid to subscript a `register' array, since
2938 it is valid to take the address of something with that
2939 storage specification. */
2940 if (extra_warnings)
2941 {
2942 tree foo = array;
2943 while (TREE_CODE (foo) == COMPONENT_REF)
2944 foo = TREE_OPERAND (foo, 0);
2945 if (TREE_CODE (foo) == VAR_DECL && DECL_REGISTER (foo)
2946 && (complain & tf_warning))
2947 warning_at (loc, OPT_Wextra,
2948 "subscripting array declared %<register%>");
2949 }
2950
2951 type = TREE_TYPE (TREE_TYPE (array));
2952 rval = build4 (ARRAY_REF, type, array, idx, NULL_TREE, NULL_TREE);
2953 /* Array ref is const/volatile if the array elements are
2954 or if the array is.. */
2955 TREE_READONLY (rval)
2956 |= (CP_TYPE_CONST_P (type) | TREE_READONLY (array));
2957 TREE_SIDE_EFFECTS (rval)
2958 |= (CP_TYPE_VOLATILE_P (type) | TREE_SIDE_EFFECTS (array));
2959 TREE_THIS_VOLATILE (rval)
2960 |= (CP_TYPE_VOLATILE_P (type) | TREE_THIS_VOLATILE (array));
2961 ret = require_complete_type_sfinae (fold_if_not_in_template (rval),
2962 complain);
2963 protected_set_expr_location (ret, loc);
2964 return ret;
2965 }
2966
2967 {
2968 tree ar = default_conversion (array);
2969 tree ind = default_conversion (idx);
2970
2971 /* Put the integer in IND to simplify error checking. */
2972 if (TREE_CODE (TREE_TYPE (ar)) == INTEGER_TYPE)
2973 {
2974 tree temp = ar;
2975 ar = ind;
2976 ind = temp;
2977 }
2978
2979 if (ar == error_mark_node)
2980 return ar;
2981
2982 if (TREE_CODE (TREE_TYPE (ar)) != POINTER_TYPE)
2983 {
2984 if (complain & tf_error)
2985 error_at (loc, "subscripted value is neither array nor pointer");
2986 return error_mark_node;
2987 }
2988 if (TREE_CODE (TREE_TYPE (ind)) != INTEGER_TYPE)
2989 {
2990 if (complain & tf_error)
2991 error_at (loc, "array subscript is not an integer");
2992 return error_mark_node;
2993 }
2994
2995 warn_array_subscript_with_type_char (idx);
2996
2997 ret = cp_build_indirect_ref (cp_build_binary_op (input_location,
2998 PLUS_EXPR, ar, ind,
2999 complain),
3000 RO_ARRAY_INDEXING,
3001 complain);
3002 protected_set_expr_location (ret, loc);
3003 return ret;
3004 }
3005 }
3006
3007 /* Entry point for Obj-C++. */
3008
3009 tree
3010 build_array_ref (location_t loc, tree array, tree idx)
3011 {
3012 return cp_build_array_ref (loc, array, idx, tf_warning_or_error);
3013 }
3014 \f
3015 /* Resolve a pointer to member function. INSTANCE is the object
3016 instance to use, if the member points to a virtual member.
3017
3018 This used to avoid checking for virtual functions if basetype
3019 has no virtual functions, according to an earlier ANSI draft.
3020 With the final ISO C++ rules, such an optimization is
3021 incorrect: A pointer to a derived member can be static_cast
3022 to pointer-to-base-member, as long as the dynamic object
3023 later has the right member. */
3024
3025 tree
3026 get_member_function_from_ptrfunc (tree *instance_ptrptr, tree function)
3027 {
3028 if (TREE_CODE (function) == OFFSET_REF)
3029 function = TREE_OPERAND (function, 1);
3030
3031 if (TYPE_PTRMEMFUNC_P (TREE_TYPE (function)))
3032 {
3033 tree idx, delta, e1, e2, e3, vtbl, basetype;
3034 tree fntype = TYPE_PTRMEMFUNC_FN_TYPE (TREE_TYPE (function));
3035
3036 tree instance_ptr = *instance_ptrptr;
3037 tree instance_save_expr = 0;
3038 if (instance_ptr == error_mark_node)
3039 {
3040 if (TREE_CODE (function) == PTRMEM_CST)
3041 {
3042 /* Extracting the function address from a pmf is only
3043 allowed with -Wno-pmf-conversions. It only works for
3044 pmf constants. */
3045 e1 = build_addr_func (PTRMEM_CST_MEMBER (function));
3046 e1 = convert (fntype, e1);
3047 return e1;
3048 }
3049 else
3050 {
3051 error ("object missing in use of %qE", function);
3052 return error_mark_node;
3053 }
3054 }
3055
3056 if (TREE_SIDE_EFFECTS (instance_ptr))
3057 instance_ptr = instance_save_expr = save_expr (instance_ptr);
3058
3059 if (TREE_SIDE_EFFECTS (function))
3060 function = save_expr (function);
3061
3062 /* Start by extracting all the information from the PMF itself. */
3063 e3 = pfn_from_ptrmemfunc (function);
3064 delta = delta_from_ptrmemfunc (function);
3065 idx = build1 (NOP_EXPR, vtable_index_type, e3);
3066 switch (TARGET_PTRMEMFUNC_VBIT_LOCATION)
3067 {
3068 case ptrmemfunc_vbit_in_pfn:
3069 e1 = cp_build_binary_op (input_location,
3070 BIT_AND_EXPR, idx, integer_one_node,
3071 tf_warning_or_error);
3072 idx = cp_build_binary_op (input_location,
3073 MINUS_EXPR, idx, integer_one_node,
3074 tf_warning_or_error);
3075 break;
3076
3077 case ptrmemfunc_vbit_in_delta:
3078 e1 = cp_build_binary_op (input_location,
3079 BIT_AND_EXPR, delta, integer_one_node,
3080 tf_warning_or_error);
3081 delta = cp_build_binary_op (input_location,
3082 RSHIFT_EXPR, delta, integer_one_node,
3083 tf_warning_or_error);
3084 break;
3085
3086 default:
3087 gcc_unreachable ();
3088 }
3089
3090 /* Convert down to the right base before using the instance. A
3091 special case is that in a pointer to member of class C, C may
3092 be incomplete. In that case, the function will of course be
3093 a member of C, and no conversion is required. In fact,
3094 lookup_base will fail in that case, because incomplete
3095 classes do not have BINFOs. */
3096 basetype = TYPE_METHOD_BASETYPE (TREE_TYPE (fntype));
3097 if (!same_type_ignoring_top_level_qualifiers_p
3098 (basetype, TREE_TYPE (TREE_TYPE (instance_ptr))))
3099 {
3100 basetype = lookup_base (TREE_TYPE (TREE_TYPE (instance_ptr)),
3101 basetype, ba_check, NULL);
3102 instance_ptr = build_base_path (PLUS_EXPR, instance_ptr, basetype,
3103 1);
3104 if (instance_ptr == error_mark_node)
3105 return error_mark_node;
3106 }
3107 /* ...and then the delta in the PMF. */
3108 instance_ptr = build2 (POINTER_PLUS_EXPR, TREE_TYPE (instance_ptr),
3109 instance_ptr, fold_convert (sizetype, delta));
3110
3111 /* Hand back the adjusted 'this' argument to our caller. */
3112 *instance_ptrptr = instance_ptr;
3113
3114 /* Next extract the vtable pointer from the object. */
3115 vtbl = build1 (NOP_EXPR, build_pointer_type (vtbl_ptr_type_node),
3116 instance_ptr);
3117 vtbl = cp_build_indirect_ref (vtbl, RO_NULL, tf_warning_or_error);
3118 /* If the object is not dynamic the access invokes undefined
3119 behavior. As it is not executed in this case silence the
3120 spurious warnings it may provoke. */
3121 TREE_NO_WARNING (vtbl) = 1;
3122
3123 /* Finally, extract the function pointer from the vtable. */
3124 e2 = fold_build2_loc (input_location,
3125 POINTER_PLUS_EXPR, TREE_TYPE (vtbl), vtbl,
3126 fold_convert (sizetype, idx));
3127 e2 = cp_build_indirect_ref (e2, RO_NULL, tf_warning_or_error);
3128 TREE_CONSTANT (e2) = 1;
3129
3130 /* When using function descriptors, the address of the
3131 vtable entry is treated as a function pointer. */
3132 if (TARGET_VTABLE_USES_DESCRIPTORS)
3133 e2 = build1 (NOP_EXPR, TREE_TYPE (e2),
3134 cp_build_addr_expr (e2, tf_warning_or_error));
3135
3136 e2 = fold_convert (TREE_TYPE (e3), e2);
3137 e1 = build_conditional_expr (e1, e2, e3, tf_warning_or_error);
3138
3139 /* Make sure this doesn't get evaluated first inside one of the
3140 branches of the COND_EXPR. */
3141 if (instance_save_expr)
3142 e1 = build2 (COMPOUND_EXPR, TREE_TYPE (e1),
3143 instance_save_expr, e1);
3144
3145 function = e1;
3146 }
3147 return function;
3148 }
3149
3150 /* Used by the C-common bits. */
3151 tree
3152 build_function_call (location_t loc ATTRIBUTE_UNUSED,
3153 tree function, tree params)
3154 {
3155 return cp_build_function_call (function, params, tf_warning_or_error);
3156 }
3157
3158 /* Used by the C-common bits. */
3159 tree
3160 build_function_call_vec (location_t loc ATTRIBUTE_UNUSED,
3161 tree function, VEC(tree,gc) *params,
3162 VEC(tree,gc) *origtypes ATTRIBUTE_UNUSED)
3163 {
3164 VEC(tree,gc) *orig_params = params;
3165 tree ret = cp_build_function_call_vec (function, &params,
3166 tf_warning_or_error);
3167
3168 /* cp_build_function_call_vec can reallocate PARAMS by adding
3169 default arguments. That should never happen here. Verify
3170 that. */
3171 gcc_assert (params == orig_params);
3172
3173 return ret;
3174 }
3175
3176 /* Build a function call using a tree list of arguments. */
3177
3178 tree
3179 cp_build_function_call (tree function, tree params, tsubst_flags_t complain)
3180 {
3181 VEC(tree,gc) *vec;
3182 tree ret;
3183
3184 vec = make_tree_vector ();
3185 for (; params != NULL_TREE; params = TREE_CHAIN (params))
3186 VEC_safe_push (tree, gc, vec, TREE_VALUE (params));
3187 ret = cp_build_function_call_vec (function, &vec, complain);
3188 release_tree_vector (vec);
3189 return ret;
3190 }
3191
3192 /* Build a function call using varargs. */
3193
3194 tree
3195 cp_build_function_call_nary (tree function, tsubst_flags_t complain, ...)
3196 {
3197 VEC(tree,gc) *vec;
3198 va_list args;
3199 tree ret, t;
3200
3201 vec = make_tree_vector ();
3202 va_start (args, complain);
3203 for (t = va_arg (args, tree); t != NULL_TREE; t = va_arg (args, tree))
3204 VEC_safe_push (tree, gc, vec, t);
3205 va_end (args);
3206 ret = cp_build_function_call_vec (function, &vec, complain);
3207 release_tree_vector (vec);
3208 return ret;
3209 }
3210
3211 /* Build a function call using a vector of arguments. PARAMS may be
3212 NULL if there are no parameters. This changes the contents of
3213 PARAMS. */
3214
3215 tree
3216 cp_build_function_call_vec (tree function, VEC(tree,gc) **params,
3217 tsubst_flags_t complain)
3218 {
3219 tree fntype, fndecl;
3220 int is_method;
3221 tree original = function;
3222 int nargs;
3223 tree *argarray;
3224 tree parm_types;
3225 VEC(tree,gc) *allocated = NULL;
3226 tree ret;
3227
3228 /* For Objective-C, convert any calls via a cast to OBJC_TYPE_REF
3229 expressions, like those used for ObjC messenger dispatches. */
3230 if (params != NULL && !VEC_empty (tree, *params))
3231 function = objc_rewrite_function_call (function,
3232 VEC_index (tree, *params, 0));
3233
3234 /* build_c_cast puts on a NOP_EXPR to make the result not an lvalue.
3235 Strip such NOP_EXPRs, since FUNCTION is used in non-lvalue context. */
3236 if (TREE_CODE (function) == NOP_EXPR
3237 && TREE_TYPE (function) == TREE_TYPE (TREE_OPERAND (function, 0)))
3238 function = TREE_OPERAND (function, 0);
3239
3240 if (TREE_CODE (function) == FUNCTION_DECL)
3241 {
3242 mark_used (function);
3243 fndecl = function;
3244
3245 /* Convert anything with function type to a pointer-to-function. */
3246 if (DECL_MAIN_P (function) && (complain & tf_error))
3247 pedwarn (input_location, OPT_pedantic,
3248 "ISO C++ forbids calling %<::main%> from within program");
3249
3250 function = build_addr_func (function);
3251 }
3252 else
3253 {
3254 fndecl = NULL_TREE;
3255
3256 function = build_addr_func (function);
3257 }
3258
3259 if (function == error_mark_node)
3260 return error_mark_node;
3261
3262 fntype = TREE_TYPE (function);
3263
3264 if (TYPE_PTRMEMFUNC_P (fntype))
3265 {
3266 if (complain & tf_error)
3267 error ("must use %<.*%> or %<->*%> to call pointer-to-member "
3268 "function in %<%E (...)%>, e.g. %<(... ->* %E) (...)%>",
3269 original, original);
3270 return error_mark_node;
3271 }
3272
3273 is_method = (TREE_CODE (fntype) == POINTER_TYPE
3274 && TREE_CODE (TREE_TYPE (fntype)) == METHOD_TYPE);
3275
3276 if (!((TREE_CODE (fntype) == POINTER_TYPE
3277 && TREE_CODE (TREE_TYPE (fntype)) == FUNCTION_TYPE)
3278 || is_method
3279 || TREE_CODE (function) == TEMPLATE_ID_EXPR))
3280 {
3281 if (complain & tf_error)
3282 error ("%qE cannot be used as a function", original);
3283 return error_mark_node;
3284 }
3285
3286 /* fntype now gets the type of function pointed to. */
3287 fntype = TREE_TYPE (fntype);
3288 parm_types = TYPE_ARG_TYPES (fntype);
3289
3290 if (params == NULL)
3291 {
3292 allocated = make_tree_vector ();
3293 params = &allocated;
3294 }
3295
3296 nargs = convert_arguments (parm_types, params, fndecl, LOOKUP_NORMAL,
3297 complain);
3298 if (nargs < 0)
3299 return error_mark_node;
3300
3301 argarray = VEC_address (tree, *params);
3302
3303 /* Check for errors in format strings and inappropriately
3304 null parameters. */
3305 check_function_arguments (TYPE_ATTRIBUTES (fntype), nargs, argarray,
3306 parm_types);
3307
3308 ret = build_cxx_call (function, nargs, argarray);
3309
3310 if (allocated != NULL)
3311 release_tree_vector (allocated);
3312
3313 return ret;
3314 }
3315 \f
3316 /* Subroutine of convert_arguments.
3317 Warn about wrong number of args are genereted. */
3318
3319 static void
3320 warn_args_num (location_t loc, tree fndecl, bool too_many_p)
3321 {
3322 if (fndecl)
3323 {
3324 if (TREE_CODE (TREE_TYPE (fndecl)) == METHOD_TYPE)
3325 {
3326 if (DECL_NAME (fndecl) == NULL_TREE
3327 || IDENTIFIER_HAS_TYPE_VALUE (DECL_NAME (fndecl)))
3328 error_at (loc,
3329 too_many_p
3330 ? G_("too many arguments to constructor %q#D")
3331 : G_("too few arguments to constructor %q#D"),
3332 fndecl);
3333 else
3334 error_at (loc,
3335 too_many_p
3336 ? G_("too many arguments to member function %q#D")
3337 : G_("too few arguments to member function %q#D"),
3338 fndecl);
3339 }
3340 else
3341 error_at (loc,
3342 too_many_p
3343 ? G_("too many arguments to function %q#D")
3344 : G_("too few arguments to function %q#D"),
3345 fndecl);
3346 inform (DECL_SOURCE_LOCATION (fndecl),
3347 "declared here");
3348 }
3349 else
3350 {
3351 if (c_dialect_objc () && objc_message_selector ())
3352 error_at (loc,
3353 too_many_p
3354 ? G_("too many arguments to method %q#D")
3355 : G_("too few arguments to method %q#D"),
3356 objc_message_selector ());
3357 else
3358 error_at (loc, too_many_p ? G_("too many arguments to function")
3359 : G_("too few arguments to function"));
3360 }
3361 }
3362
3363 /* Convert the actual parameter expressions in the list VALUES to the
3364 types in the list TYPELIST. The converted expressions are stored
3365 back in the VALUES vector.
3366 If parmdecls is exhausted, or when an element has NULL as its type,
3367 perform the default conversions.
3368
3369 NAME is an IDENTIFIER_NODE or 0. It is used only for error messages.
3370
3371 This is also where warnings about wrong number of args are generated.
3372
3373 Returns the actual number of arguments processed (which might be less
3374 than the length of the vector), or -1 on error.
3375
3376 In C++, unspecified trailing parameters can be filled in with their
3377 default arguments, if such were specified. Do so here. */
3378
3379 static int
3380 convert_arguments (tree typelist, VEC(tree,gc) **values, tree fndecl,
3381 int flags, tsubst_flags_t complain)
3382 {
3383 tree typetail;
3384 unsigned int i;
3385
3386 /* Argument passing is always copy-initialization. */
3387 flags |= LOOKUP_ONLYCONVERTING;
3388
3389 for (i = 0, typetail = typelist;
3390 i < VEC_length (tree, *values);
3391 i++)
3392 {
3393 tree type = typetail ? TREE_VALUE (typetail) : 0;
3394 tree val = VEC_index (tree, *values, i);
3395
3396 if (val == error_mark_node || type == error_mark_node)
3397 return -1;
3398
3399 if (type == void_type_node)
3400 {
3401 if (complain & tf_error)
3402 {
3403 warn_args_num (input_location, fndecl, /*too_many_p=*/true);
3404 return i;
3405 }
3406 else
3407 return -1;
3408 }
3409
3410 /* build_c_cast puts on a NOP_EXPR to make the result not an lvalue.
3411 Strip such NOP_EXPRs, since VAL is used in non-lvalue context. */
3412 if (TREE_CODE (val) == NOP_EXPR
3413 && TREE_TYPE (val) == TREE_TYPE (TREE_OPERAND (val, 0))
3414 && (type == 0 || TREE_CODE (type) != REFERENCE_TYPE))
3415 val = TREE_OPERAND (val, 0);
3416
3417 if (type == 0 || TREE_CODE (type) != REFERENCE_TYPE)
3418 {
3419 if (TREE_CODE (TREE_TYPE (val)) == ARRAY_TYPE
3420 || TREE_CODE (TREE_TYPE (val)) == FUNCTION_TYPE
3421 || TREE_CODE (TREE_TYPE (val)) == METHOD_TYPE)
3422 val = decay_conversion (val);
3423 }
3424
3425 if (val == error_mark_node)
3426 return -1;
3427
3428 if (type != 0)
3429 {
3430 /* Formal parm type is specified by a function prototype. */
3431 tree parmval;
3432
3433 if (!COMPLETE_TYPE_P (complete_type (type)))
3434 {
3435 if (complain & tf_error)
3436 {
3437 if (fndecl)
3438 error ("parameter %P of %qD has incomplete type %qT",
3439 i, fndecl, type);
3440 else
3441 error ("parameter %P has incomplete type %qT", i, type);
3442 }
3443 parmval = error_mark_node;
3444 }
3445 else
3446 {
3447 parmval = convert_for_initialization
3448 (NULL_TREE, type, val, flags,
3449 ICR_ARGPASS, fndecl, i, complain);
3450 parmval = convert_for_arg_passing (type, parmval);
3451 }
3452
3453 if (parmval == error_mark_node)
3454 return -1;
3455
3456 VEC_replace (tree, *values, i, parmval);
3457 }
3458 else
3459 {
3460 if (fndecl && DECL_BUILT_IN (fndecl)
3461 && DECL_FUNCTION_CODE (fndecl) == BUILT_IN_CONSTANT_P)
3462 /* Don't do ellipsis conversion for __built_in_constant_p
3463 as this will result in spurious errors for non-trivial
3464 types. */
3465 val = require_complete_type_sfinae (val, complain);
3466 else
3467 val = convert_arg_to_ellipsis (val);
3468
3469 VEC_replace (tree, *values, i, val);
3470 }
3471
3472 if (typetail)
3473 typetail = TREE_CHAIN (typetail);
3474 }
3475
3476 if (typetail != 0 && typetail != void_list_node)
3477 {
3478 /* See if there are default arguments that can be used. Because
3479 we hold default arguments in the FUNCTION_TYPE (which is so
3480 wrong), we can see default parameters here from deduced
3481 contexts (and via typeof) for indirect function calls.
3482 Fortunately we know whether we have a function decl to
3483 provide default arguments in a language conformant
3484 manner. */
3485 if (fndecl && TREE_PURPOSE (typetail)
3486 && TREE_CODE (TREE_PURPOSE (typetail)) != DEFAULT_ARG)
3487 {
3488 for (; typetail != void_list_node; ++i)
3489 {
3490 tree parmval
3491 = convert_default_arg (TREE_VALUE (typetail),
3492 TREE_PURPOSE (typetail),
3493 fndecl, i);
3494
3495 if (parmval == error_mark_node)
3496 return -1;
3497
3498 VEC_safe_push (tree, gc, *values, parmval);
3499 typetail = TREE_CHAIN (typetail);
3500 /* ends with `...'. */
3501 if (typetail == NULL_TREE)
3502 break;
3503 }
3504 }
3505 else
3506 {
3507 if (complain & tf_error)
3508 warn_args_num (input_location, fndecl, /*too_many_p=*/false);
3509 return -1;
3510 }
3511 }
3512
3513 return (int) i;
3514 }
3515 \f
3516 /* Build a binary-operation expression, after performing default
3517 conversions on the operands. CODE is the kind of expression to
3518 build. ARG1 and ARG2 are the arguments. ARG1_CODE and ARG2_CODE
3519 are the tree codes which correspond to ARG1 and ARG2 when issuing
3520 warnings about possibly misplaced parentheses. They may differ
3521 from the TREE_CODE of ARG1 and ARG2 if the parser has done constant
3522 folding (e.g., if the parser sees "a | 1 + 1", it may call this
3523 routine with ARG2 being an INTEGER_CST and ARG2_CODE == PLUS_EXPR).
3524 To avoid issuing any parentheses warnings, pass ARG1_CODE and/or
3525 ARG2_CODE as ERROR_MARK. */
3526
3527 tree
3528 build_x_binary_op (enum tree_code code, tree arg1, enum tree_code arg1_code,
3529 tree arg2, enum tree_code arg2_code, bool *overloaded_p,
3530 tsubst_flags_t complain)
3531 {
3532 tree orig_arg1;
3533 tree orig_arg2;
3534 tree expr;
3535
3536 orig_arg1 = arg1;
3537 orig_arg2 = arg2;
3538
3539 if (processing_template_decl)
3540 {
3541 if (type_dependent_expression_p (arg1)
3542 || type_dependent_expression_p (arg2))
3543 return build_min_nt (code, arg1, arg2);
3544 arg1 = build_non_dependent_expr (arg1);
3545 arg2 = build_non_dependent_expr (arg2);
3546 }
3547
3548 if (code == DOTSTAR_EXPR)
3549 expr = build_m_component_ref (arg1, arg2);
3550 else
3551 expr = build_new_op (code, LOOKUP_NORMAL, arg1, arg2, NULL_TREE,
3552 overloaded_p, complain);
3553
3554 /* Check for cases such as x+y<<z which users are likely to
3555 misinterpret. But don't warn about obj << x + y, since that is a
3556 common idiom for I/O. */
3557 if (warn_parentheses
3558 && (complain & tf_warning)
3559 && !processing_template_decl
3560 && !error_operand_p (arg1)
3561 && !error_operand_p (arg2)
3562 && (code != LSHIFT_EXPR
3563 || !CLASS_TYPE_P (TREE_TYPE (arg1))))
3564 warn_about_parentheses (code, arg1_code, orig_arg1, arg2_code, orig_arg2);
3565
3566 if (processing_template_decl && expr != error_mark_node)
3567 return build_min_non_dep (code, expr, orig_arg1, orig_arg2);
3568
3569 return expr;
3570 }
3571
3572 /* Build and return an ARRAY_REF expression. */
3573
3574 tree
3575 build_x_array_ref (tree arg1, tree arg2, tsubst_flags_t complain)
3576 {
3577 tree orig_arg1 = arg1;
3578 tree orig_arg2 = arg2;
3579 tree expr;
3580
3581 if (processing_template_decl)
3582 {
3583 if (type_dependent_expression_p (arg1)
3584 || type_dependent_expression_p (arg2))
3585 return build_min_nt (ARRAY_REF, arg1, arg2,
3586 NULL_TREE, NULL_TREE);
3587 arg1 = build_non_dependent_expr (arg1);
3588 arg2 = build_non_dependent_expr (arg2);
3589 }
3590
3591 expr = build_new_op (ARRAY_REF, LOOKUP_NORMAL, arg1, arg2, NULL_TREE,
3592 /*overloaded_p=*/NULL, complain);
3593
3594 if (processing_template_decl && expr != error_mark_node)
3595 return build_min_non_dep (ARRAY_REF, expr, orig_arg1, orig_arg2,
3596 NULL_TREE, NULL_TREE);
3597 return expr;
3598 }
3599
3600 /* For the c-common bits. */
3601 tree
3602 build_binary_op (location_t location, enum tree_code code, tree op0, tree op1,
3603 int convert_p ATTRIBUTE_UNUSED)
3604 {
3605 return cp_build_binary_op (location, code, op0, op1, tf_warning_or_error);
3606 }
3607
3608
3609 /* Build a binary-operation expression without default conversions.
3610 CODE is the kind of expression to build.
3611 LOCATION is the location_t of the operator in the source code.
3612 This function differs from `build' in several ways:
3613 the data type of the result is computed and recorded in it,
3614 warnings are generated if arg data types are invalid,
3615 special handling for addition and subtraction of pointers is known,
3616 and some optimization is done (operations on narrow ints
3617 are done in the narrower type when that gives the same result).
3618 Constant folding is also done before the result is returned.
3619
3620 Note that the operands will never have enumeral types
3621 because either they have just had the default conversions performed
3622 or they have both just been converted to some other type in which
3623 the arithmetic is to be done.
3624
3625 C++: must do special pointer arithmetic when implementing
3626 multiple inheritance, and deal with pointer to member functions. */
3627
3628 tree
3629 cp_build_binary_op (location_t location,
3630 enum tree_code code, tree orig_op0, tree orig_op1,
3631 tsubst_flags_t complain)
3632 {
3633 tree op0, op1;
3634 enum tree_code code0, code1;
3635 tree type0, type1;
3636 const char *invalid_op_diag;
3637
3638 /* Expression code to give to the expression when it is built.
3639 Normally this is CODE, which is what the caller asked for,
3640 but in some special cases we change it. */
3641 enum tree_code resultcode = code;
3642
3643 /* Data type in which the computation is to be performed.
3644 In the simplest cases this is the common type of the arguments. */
3645 tree result_type = NULL;
3646
3647 /* Nonzero means operands have already been type-converted
3648 in whatever way is necessary.
3649 Zero means they need to be converted to RESULT_TYPE. */
3650 int converted = 0;
3651
3652 /* Nonzero means create the expression with this type, rather than
3653 RESULT_TYPE. */
3654 tree build_type = 0;
3655
3656 /* Nonzero means after finally constructing the expression
3657 convert it to this type. */
3658 tree final_type = 0;
3659
3660 tree result;
3661
3662 /* Nonzero if this is an operation like MIN or MAX which can
3663 safely be computed in short if both args are promoted shorts.
3664 Also implies COMMON.
3665 -1 indicates a bitwise operation; this makes a difference
3666 in the exact conditions for when it is safe to do the operation
3667 in a narrower mode. */
3668 int shorten = 0;
3669
3670 /* Nonzero if this is a comparison operation;
3671 if both args are promoted shorts, compare the original shorts.
3672 Also implies COMMON. */
3673 int short_compare = 0;
3674
3675 /* Nonzero means set RESULT_TYPE to the common type of the args. */
3676 int common = 0;
3677
3678 /* True if both operands have arithmetic type. */
3679 bool arithmetic_types_p;
3680
3681 /* Apply default conversions. */
3682 op0 = orig_op0;
3683 op1 = orig_op1;
3684
3685 if (code == TRUTH_AND_EXPR || code == TRUTH_ANDIF_EXPR
3686 || code == TRUTH_OR_EXPR || code == TRUTH_ORIF_EXPR
3687 || code == TRUTH_XOR_EXPR)
3688 {
3689 if (!really_overloaded_fn (op0))
3690 op0 = decay_conversion (op0);
3691 if (!really_overloaded_fn (op1))
3692 op1 = decay_conversion (op1);
3693 }
3694 else
3695 {
3696 if (!really_overloaded_fn (op0))
3697 op0 = default_conversion (op0);
3698 if (!really_overloaded_fn (op1))
3699 op1 = default_conversion (op1);
3700 }
3701
3702 /* Strip NON_LVALUE_EXPRs, etc., since we aren't using as an lvalue. */
3703 STRIP_TYPE_NOPS (op0);
3704 STRIP_TYPE_NOPS (op1);
3705
3706 /* DTRT if one side is an overloaded function, but complain about it. */
3707 if (type_unknown_p (op0))
3708 {
3709 tree t = instantiate_type (TREE_TYPE (op1), op0, tf_none);
3710 if (t != error_mark_node)
3711 {
3712 if (complain & tf_error)
3713 permerror (input_location, "assuming cast to type %qT from overloaded function",
3714 TREE_TYPE (t));
3715 op0 = t;
3716 }
3717 }
3718 if (type_unknown_p (op1))
3719 {
3720 tree t = instantiate_type (TREE_TYPE (op0), op1, tf_none);
3721 if (t != error_mark_node)
3722 {
3723 if (complain & tf_error)
3724 permerror (input_location, "assuming cast to type %qT from overloaded function",
3725 TREE_TYPE (t));
3726 op1 = t;
3727 }
3728 }
3729
3730 type0 = TREE_TYPE (op0);
3731 type1 = TREE_TYPE (op1);
3732
3733 /* The expression codes of the data types of the arguments tell us
3734 whether the arguments are integers, floating, pointers, etc. */
3735 code0 = TREE_CODE (type0);
3736 code1 = TREE_CODE (type1);
3737
3738 /* If an error was already reported for one of the arguments,
3739 avoid reporting another error. */
3740 if (code0 == ERROR_MARK || code1 == ERROR_MARK)
3741 return error_mark_node;
3742
3743 if ((invalid_op_diag
3744 = targetm.invalid_binary_op (code, type0, type1)))
3745 {
3746 error (invalid_op_diag);
3747 return error_mark_node;
3748 }
3749
3750 /* Issue warnings about peculiar, but valid, uses of NULL. */
3751 if ((orig_op0 == null_node || orig_op1 == null_node)
3752 /* It's reasonable to use pointer values as operands of &&
3753 and ||, so NULL is no exception. */
3754 && code != TRUTH_ANDIF_EXPR && code != TRUTH_ORIF_EXPR
3755 && ( /* Both are NULL (or 0) and the operation was not a
3756 comparison or a pointer subtraction. */
3757 (null_ptr_cst_p (orig_op0) && null_ptr_cst_p (orig_op1)
3758 && code != EQ_EXPR && code != NE_EXPR && code != MINUS_EXPR)
3759 /* Or if one of OP0 or OP1 is neither a pointer nor NULL. */
3760 || (!null_ptr_cst_p (orig_op0)
3761 && !TYPE_PTR_P (type0) && !TYPE_PTR_TO_MEMBER_P (type0))
3762 || (!null_ptr_cst_p (orig_op1)
3763 && !TYPE_PTR_P (type1) && !TYPE_PTR_TO_MEMBER_P (type1)))
3764 && (complain & tf_warning))
3765 /* Some sort of arithmetic operation involving NULL was
3766 performed. */
3767 warning (OPT_Wpointer_arith, "NULL used in arithmetic");
3768
3769 switch (code)
3770 {
3771 case MINUS_EXPR:
3772 /* Subtraction of two similar pointers.
3773 We must subtract them as integers, then divide by object size. */
3774 if (code0 == POINTER_TYPE && code1 == POINTER_TYPE
3775 && same_type_ignoring_top_level_qualifiers_p (TREE_TYPE (type0),
3776 TREE_TYPE (type1)))
3777 return pointer_diff (op0, op1, common_pointer_type (type0, type1));
3778 /* In all other cases except pointer - int, the usual arithmetic
3779 rules apply. */
3780 else if (!(code0 == POINTER_TYPE && code1 == INTEGER_TYPE))
3781 {
3782 common = 1;
3783 break;
3784 }
3785 /* The pointer - int case is just like pointer + int; fall
3786 through. */
3787 case PLUS_EXPR:
3788 if ((code0 == POINTER_TYPE || code1 == POINTER_TYPE)
3789 && (code0 == INTEGER_TYPE || code1 == INTEGER_TYPE))
3790 {
3791 tree ptr_operand;
3792 tree int_operand;
3793 ptr_operand = ((code0 == POINTER_TYPE) ? op0 : op1);
3794 int_operand = ((code0 == INTEGER_TYPE) ? op0 : op1);
3795 if (processing_template_decl)
3796 {
3797 result_type = TREE_TYPE (ptr_operand);
3798 break;
3799 }
3800 return cp_pointer_int_sum (code,
3801 ptr_operand,
3802 int_operand);
3803 }
3804 common = 1;
3805 break;
3806
3807 case MULT_EXPR:
3808 common = 1;
3809 break;
3810
3811 case TRUNC_DIV_EXPR:
3812 case CEIL_DIV_EXPR:
3813 case FLOOR_DIV_EXPR:
3814 case ROUND_DIV_EXPR:
3815 case EXACT_DIV_EXPR:
3816 if ((code0 == INTEGER_TYPE || code0 == REAL_TYPE
3817 || code0 == COMPLEX_TYPE || code0 == VECTOR_TYPE)
3818 && (code1 == INTEGER_TYPE || code1 == REAL_TYPE
3819 || code1 == COMPLEX_TYPE || code1 == VECTOR_TYPE))
3820 {
3821 enum tree_code tcode0 = code0, tcode1 = code1;
3822
3823 warn_for_div_by_zero (location, op1);
3824
3825 if (tcode0 == COMPLEX_TYPE || tcode0 == VECTOR_TYPE)
3826 tcode0 = TREE_CODE (TREE_TYPE (TREE_TYPE (op0)));
3827 if (tcode1 == COMPLEX_TYPE || tcode1 == VECTOR_TYPE)
3828 tcode1 = TREE_CODE (TREE_TYPE (TREE_TYPE (op1)));
3829
3830 if (!(tcode0 == INTEGER_TYPE && tcode1 == INTEGER_TYPE))
3831 resultcode = RDIV_EXPR;
3832 else
3833 /* When dividing two signed integers, we have to promote to int.
3834 unless we divide by a constant != -1. Note that default
3835 conversion will have been performed on the operands at this
3836 point, so we have to dig out the original type to find out if
3837 it was unsigned. */
3838 shorten = ((TREE_CODE (op0) == NOP_EXPR
3839 && TYPE_UNSIGNED (TREE_TYPE (TREE_OPERAND (op0, 0))))
3840 || (TREE_CODE (op1) == INTEGER_CST
3841 && ! integer_all_onesp (op1)));
3842
3843 common = 1;
3844 }
3845 break;
3846
3847 case BIT_AND_EXPR:
3848 case BIT_IOR_EXPR:
3849 case BIT_XOR_EXPR:
3850 if ((code0 == INTEGER_TYPE && code1 == INTEGER_TYPE)
3851 || (code0 == VECTOR_TYPE && code1 == VECTOR_TYPE
3852 && !VECTOR_FLOAT_TYPE_P (type0)
3853 && !VECTOR_FLOAT_TYPE_P (type1)))
3854 shorten = -1;
3855 break;
3856
3857 case TRUNC_MOD_EXPR:
3858 case FLOOR_MOD_EXPR:
3859 warn_for_div_by_zero (location, op1);
3860
3861 if (code0 == VECTOR_TYPE && code1 == VECTOR_TYPE
3862 && TREE_CODE (TREE_TYPE (type0)) == INTEGER_TYPE
3863 && TREE_CODE (TREE_TYPE (type1)) == INTEGER_TYPE)
3864 common = 1;
3865 else if (code0 == INTEGER_TYPE && code1 == INTEGER_TYPE)
3866 {
3867 /* Although it would be tempting to shorten always here, that loses
3868 on some targets, since the modulo instruction is undefined if the
3869 quotient can't be represented in the computation mode. We shorten
3870 only if unsigned or if dividing by something we know != -1. */
3871 shorten = ((TREE_CODE (op0) == NOP_EXPR
3872 && TYPE_UNSIGNED (TREE_TYPE (TREE_OPERAND (op0, 0))))
3873 || (TREE_CODE (op1) == INTEGER_CST
3874 && ! integer_all_onesp (op1)));
3875 common = 1;
3876 }
3877 break;
3878
3879 case TRUTH_ANDIF_EXPR:
3880 case TRUTH_ORIF_EXPR:
3881 case TRUTH_AND_EXPR:
3882 case TRUTH_OR_EXPR:
3883 result_type = boolean_type_node;
3884 break;
3885
3886 /* Shift operations: result has same type as first operand;
3887 always convert second operand to int.
3888 Also set SHORT_SHIFT if shifting rightward. */
3889
3890 case RSHIFT_EXPR:
3891 if (code0 == INTEGER_TYPE && code1 == INTEGER_TYPE)
3892 {
3893 result_type = type0;
3894 if (TREE_CODE (op1) == INTEGER_CST)
3895 {
3896 if (tree_int_cst_lt (op1, integer_zero_node))
3897 {
3898 if ((complain & tf_warning)
3899 && c_inhibit_evaluation_warnings == 0)
3900 warning (0, "right shift count is negative");
3901 }
3902 else
3903 {
3904 if (compare_tree_int (op1, TYPE_PRECISION (type0)) >= 0
3905 && (complain & tf_warning)
3906 && c_inhibit_evaluation_warnings == 0)
3907 warning (0, "right shift count >= width of type");
3908 }
3909 }
3910 /* Convert the shift-count to an integer, regardless of
3911 size of value being shifted. */
3912 if (TYPE_MAIN_VARIANT (TREE_TYPE (op1)) != integer_type_node)
3913 op1 = cp_convert (integer_type_node, op1);
3914 /* Avoid converting op1 to result_type later. */
3915 converted = 1;
3916 }
3917 break;
3918
3919 case LSHIFT_EXPR:
3920 if (code0 == INTEGER_TYPE && code1 == INTEGER_TYPE)
3921 {
3922 result_type = type0;
3923 if (TREE_CODE (op1) == INTEGER_CST)
3924 {
3925 if (tree_int_cst_lt (op1, integer_zero_node))
3926 {
3927 if ((complain & tf_warning)
3928 && c_inhibit_evaluation_warnings == 0)
3929 warning (0, "left shift count is negative");
3930 }
3931 else if (compare_tree_int (op1, TYPE_PRECISION (type0)) >= 0)
3932 {
3933 if ((complain & tf_warning)
3934 && c_inhibit_evaluation_warnings == 0)
3935 warning (0, "left shift count >= width of type");
3936 }
3937 }
3938 /* Convert the shift-count to an integer, regardless of
3939 size of value being shifted. */
3940 if (TYPE_MAIN_VARIANT (TREE_TYPE (op1)) != integer_type_node)
3941 op1 = cp_convert (integer_type_node, op1);
3942 /* Avoid converting op1 to result_type later. */
3943 converted = 1;
3944 }
3945 break;
3946
3947 case RROTATE_EXPR:
3948 case LROTATE_EXPR:
3949 if (code0 == INTEGER_TYPE && code1 == INTEGER_TYPE)
3950 {
3951 result_type = type0;
3952 if (TREE_CODE (op1) == INTEGER_CST)
3953 {
3954 if (tree_int_cst_lt (op1, integer_zero_node))
3955 {
3956 if (complain & tf_warning)
3957 warning (0, (code == LROTATE_EXPR)
3958 ? G_("left rotate count is negative")
3959 : G_("right rotate count is negative"));
3960 }
3961 else if (compare_tree_int (op1, TYPE_PRECISION (type0)) >= 0)
3962 {
3963 if (complain & tf_warning)
3964 warning (0, (code == LROTATE_EXPR)
3965 ? G_("left rotate count >= width of type")
3966 : G_("right rotate count >= width of type"));
3967 }
3968 }
3969 /* Convert the shift-count to an integer, regardless of
3970 size of value being shifted. */
3971 if (TYPE_MAIN_VARIANT (TREE_TYPE (op1)) != integer_type_node)
3972 op1 = cp_convert (integer_type_node, op1);
3973 }
3974 break;
3975
3976 case EQ_EXPR:
3977 case NE_EXPR:
3978 if ((complain & tf_warning)
3979 && (FLOAT_TYPE_P (type0) || FLOAT_TYPE_P (type1)))
3980 warning (OPT_Wfloat_equal,
3981 "comparing floating point with == or != is unsafe");
3982 if ((complain & tf_warning)
3983 && ((TREE_CODE (orig_op0) == STRING_CST && !integer_zerop (op1))
3984 || (TREE_CODE (orig_op1) == STRING_CST && !integer_zerop (op0))))
3985 warning (OPT_Waddress, "comparison with string literal results in unspecified behaviour");
3986
3987 build_type = boolean_type_node;
3988 if ((code0 == INTEGER_TYPE || code0 == REAL_TYPE
3989 || code0 == COMPLEX_TYPE || code0 == ENUMERAL_TYPE)
3990 && (code1 == INTEGER_TYPE || code1 == REAL_TYPE
3991 || code1 == COMPLEX_TYPE || code1 == ENUMERAL_TYPE))
3992 short_compare = 1;
3993 else if ((code0 == POINTER_TYPE && code1 == POINTER_TYPE)
3994 || (TYPE_PTRMEM_P (type0) && TYPE_PTRMEM_P (type1)))
3995 result_type = composite_pointer_type (type0, type1, op0, op1,
3996 CPO_COMPARISON, complain);
3997 else if ((code0 == POINTER_TYPE || TYPE_PTRMEM_P (type0))
3998 && null_ptr_cst_p (op1))
3999 {
4000 if (TREE_CODE (op0) == ADDR_EXPR
4001 && decl_with_nonnull_addr_p (TREE_OPERAND (op0, 0)))
4002 {
4003 if (complain & tf_warning)
4004 warning (OPT_Waddress, "the address of %qD will never be NULL",
4005 TREE_OPERAND (op0, 0));
4006 }
4007 result_type = type0;
4008 }
4009 else if ((code1 == POINTER_TYPE || TYPE_PTRMEM_P (type1))
4010 && null_ptr_cst_p (op0))
4011 {
4012 if (TREE_CODE (op1) == ADDR_EXPR
4013 && decl_with_nonnull_addr_p (TREE_OPERAND (op1, 0)))
4014 {
4015 if (complain & tf_warning)
4016 warning (OPT_Waddress, "the address of %qD will never be NULL",
4017 TREE_OPERAND (op1, 0));
4018 }
4019 result_type = type1;
4020 }
4021 else if (null_ptr_cst_p (op0) && null_ptr_cst_p (op1))
4022 /* One of the operands must be of nullptr_t type. */
4023 result_type = TREE_TYPE (nullptr_node);
4024 else if (code0 == POINTER_TYPE && code1 == INTEGER_TYPE)
4025 {
4026 result_type = type0;
4027 if (complain & tf_error)
4028 permerror (input_location, "ISO C++ forbids comparison between pointer and integer");
4029 else
4030 return error_mark_node;
4031 }
4032 else if (code0 == INTEGER_TYPE && code1 == POINTER_TYPE)
4033 {
4034 result_type = type1;
4035 if (complain & tf_error)
4036 permerror (input_location, "ISO C++ forbids comparison between pointer and integer");
4037 else
4038 return error_mark_node;
4039 }
4040 else if (TYPE_PTRMEMFUNC_P (type0) && null_ptr_cst_p (op1))
4041 {
4042 if (TARGET_PTRMEMFUNC_VBIT_LOCATION
4043 == ptrmemfunc_vbit_in_delta)
4044 {
4045 tree pfn0 = pfn_from_ptrmemfunc (op0);
4046 tree delta0 = delta_from_ptrmemfunc (op0);
4047 tree e1 = cp_build_binary_op (location,
4048 EQ_EXPR,
4049 pfn0,
4050 build_zero_cst (TREE_TYPE (pfn0)),
4051 complain);
4052 tree e2 = cp_build_binary_op (location,
4053 BIT_AND_EXPR,
4054 delta0,
4055 integer_one_node,
4056 complain);
4057 e2 = cp_build_binary_op (location,
4058 EQ_EXPR, e2, integer_zero_node,
4059 complain);
4060 op0 = cp_build_binary_op (location,
4061 TRUTH_ANDIF_EXPR, e1, e2,
4062 complain);
4063 op1 = cp_convert (TREE_TYPE (op0), integer_one_node);
4064 }
4065 else
4066 {
4067 op0 = build_ptrmemfunc_access_expr (op0, pfn_identifier);
4068 op1 = cp_convert (TREE_TYPE (op0), integer_zero_node);
4069 }
4070 result_type = TREE_TYPE (op0);
4071 }
4072 else if (TYPE_PTRMEMFUNC_P (type1) && null_ptr_cst_p (op0))
4073 return cp_build_binary_op (location, code, op1, op0, complain);
4074 else if (TYPE_PTRMEMFUNC_P (type0) && TYPE_PTRMEMFUNC_P (type1))
4075 {
4076 tree type;
4077 /* E will be the final comparison. */
4078 tree e;
4079 /* E1 and E2 are for scratch. */
4080 tree e1;
4081 tree e2;
4082 tree pfn0;
4083 tree pfn1;
4084 tree delta0;
4085 tree delta1;
4086
4087 type = composite_pointer_type (type0, type1, op0, op1,
4088 CPO_COMPARISON, complain);
4089
4090 if (!same_type_p (TREE_TYPE (op0), type))
4091 op0 = cp_convert_and_check (type, op0);
4092 if (!same_type_p (TREE_TYPE (op1), type))
4093 op1 = cp_convert_and_check (type, op1);
4094
4095 if (op0 == error_mark_node || op1 == error_mark_node)
4096 return error_mark_node;
4097
4098 if (TREE_SIDE_EFFECTS (op0))
4099 op0 = save_expr (op0);
4100 if (TREE_SIDE_EFFECTS (op1))
4101 op1 = save_expr (op1);
4102
4103 pfn0 = pfn_from_ptrmemfunc (op0);
4104 pfn1 = pfn_from_ptrmemfunc (op1);
4105 delta0 = delta_from_ptrmemfunc (op0);
4106 delta1 = delta_from_ptrmemfunc (op1);
4107 if (TARGET_PTRMEMFUNC_VBIT_LOCATION
4108 == ptrmemfunc_vbit_in_delta)
4109 {
4110 /* We generate:
4111
4112 (op0.pfn == op1.pfn
4113 && ((op0.delta == op1.delta)
4114 || (!op0.pfn && op0.delta & 1 == 0
4115 && op1.delta & 1 == 0))
4116
4117 The reason for the `!op0.pfn' bit is that a NULL
4118 pointer-to-member is any member with a zero PFN and
4119 LSB of the DELTA field is 0. */
4120
4121 e1 = cp_build_binary_op (location, BIT_AND_EXPR,
4122 delta0,
4123 integer_one_node,
4124 complain);
4125 e1 = cp_build_binary_op (location,
4126 EQ_EXPR, e1, integer_zero_node,
4127 complain);
4128 e2 = cp_build_binary_op (location, BIT_AND_EXPR,
4129 delta1,
4130 integer_one_node,
4131 complain);
4132 e2 = cp_build_binary_op (location,
4133 EQ_EXPR, e2, integer_zero_node,
4134 complain);
4135 e1 = cp_build_binary_op (location,
4136 TRUTH_ANDIF_EXPR, e2, e1,
4137 complain);
4138 e2 = cp_build_binary_op (location, EQ_EXPR,
4139 pfn0,
4140 build_zero_cst (TREE_TYPE (pfn0)),
4141 complain);
4142 e2 = cp_build_binary_op (location,
4143 TRUTH_ANDIF_EXPR, e2, e1, complain);
4144 e1 = cp_build_binary_op (location,
4145 EQ_EXPR, delta0, delta1, complain);
4146 e1 = cp_build_binary_op (location,
4147 TRUTH_ORIF_EXPR, e1, e2, complain);
4148 }
4149 else
4150 {
4151 /* We generate:
4152
4153 (op0.pfn == op1.pfn
4154 && (!op0.pfn || op0.delta == op1.delta))
4155
4156 The reason for the `!op0.pfn' bit is that a NULL
4157 pointer-to-member is any member with a zero PFN; the
4158 DELTA field is unspecified. */
4159
4160 e1 = cp_build_binary_op (location,
4161 EQ_EXPR, delta0, delta1, complain);
4162 e2 = cp_build_binary_op (location,
4163 EQ_EXPR,
4164 pfn0,
4165 build_zero_cst (TREE_TYPE (pfn0)),
4166 complain);
4167 e1 = cp_build_binary_op (location,
4168 TRUTH_ORIF_EXPR, e1, e2, complain);
4169 }
4170 e2 = build2 (EQ_EXPR, boolean_type_node, pfn0, pfn1);
4171 e = cp_build_binary_op (location,
4172 TRUTH_ANDIF_EXPR, e2, e1, complain);
4173 if (code == EQ_EXPR)
4174 return e;
4175 return cp_build_binary_op (location,
4176 EQ_EXPR, e, integer_zero_node, complain);
4177 }
4178 else
4179 {
4180 gcc_assert (!TYPE_PTRMEMFUNC_P (type0)
4181 || !same_type_p (TYPE_PTRMEMFUNC_FN_TYPE (type0),
4182 type1));
4183 gcc_assert (!TYPE_PTRMEMFUNC_P (type1)
4184 || !same_type_p (TYPE_PTRMEMFUNC_FN_TYPE (type1),
4185 type0));
4186 }
4187
4188 break;
4189
4190 case MAX_EXPR:
4191 case MIN_EXPR:
4192 if ((code0 == INTEGER_TYPE || code0 == REAL_TYPE)
4193 && (code1 == INTEGER_TYPE || code1 == REAL_TYPE))
4194 shorten = 1;
4195 else if (code0 == POINTER_TYPE && code1 == POINTER_TYPE)
4196 result_type = composite_pointer_type (type0, type1, op0, op1,
4197 CPO_COMPARISON, complain);
4198 break;
4199
4200 case LE_EXPR:
4201 case GE_EXPR:
4202 case LT_EXPR:
4203 case GT_EXPR:
4204 if (TREE_CODE (orig_op0) == STRING_CST
4205 || TREE_CODE (orig_op1) == STRING_CST)
4206 {
4207 if (complain & tf_warning)
4208 warning (OPT_Waddress, "comparison with string literal results in unspecified behaviour");
4209 }
4210
4211 build_type = boolean_type_node;
4212 if ((code0 == INTEGER_TYPE || code0 == REAL_TYPE
4213 || code0 == ENUMERAL_TYPE)
4214 && (code1 == INTEGER_TYPE || code1 == REAL_TYPE
4215 || code1 == ENUMERAL_TYPE))
4216 short_compare = 1;
4217 else if (code0 == POINTER_TYPE && code1 == POINTER_TYPE)
4218 result_type = composite_pointer_type (type0, type1, op0, op1,
4219 CPO_COMPARISON, complain);
4220 else if (code0 == POINTER_TYPE && null_ptr_cst_p (op1))
4221 result_type = type0;
4222 else if (code1 == POINTER_TYPE && null_ptr_cst_p (op0))
4223 result_type = type1;
4224 else if (null_ptr_cst_p (op0) && null_ptr_cst_p (op1))
4225 /* One of the operands must be of nullptr_t type. */
4226 result_type = TREE_TYPE (nullptr_node);
4227 else if (code0 == POINTER_TYPE && code1 == INTEGER_TYPE)
4228 {
4229 result_type = type0;
4230 if (complain & tf_error)
4231 permerror (input_location, "ISO C++ forbids comparison between pointer and integer");
4232 else
4233 return error_mark_node;
4234 }
4235 else if (code0 == INTEGER_TYPE && code1 == POINTER_TYPE)
4236 {
4237 result_type = type1;
4238 if (complain & tf_error)
4239 permerror (input_location, "ISO C++ forbids comparison between pointer and integer");
4240 else
4241 return error_mark_node;
4242 }
4243 break;
4244
4245 case UNORDERED_EXPR:
4246 case ORDERED_EXPR:
4247 case UNLT_EXPR:
4248 case UNLE_EXPR:
4249 case UNGT_EXPR:
4250 case UNGE_EXPR:
4251 case UNEQ_EXPR:
4252 build_type = integer_type_node;
4253 if (code0 != REAL_TYPE || code1 != REAL_TYPE)
4254 {
4255 if (complain & tf_error)
4256 error ("unordered comparison on non-floating point argument");
4257 return error_mark_node;
4258 }
4259 common = 1;
4260 break;
4261
4262 default:
4263 break;
4264 }
4265
4266 if (((code0 == INTEGER_TYPE || code0 == REAL_TYPE || code0 == COMPLEX_TYPE
4267 || code0 == ENUMERAL_TYPE)
4268 && (code1 == INTEGER_TYPE || code1 == REAL_TYPE
4269 || code1 == COMPLEX_TYPE || code1 == ENUMERAL_TYPE)))
4270 arithmetic_types_p = 1;
4271 else
4272 {
4273 arithmetic_types_p = 0;
4274 /* Vector arithmetic is only allowed when both sides are vectors. */
4275 if (code0 == VECTOR_TYPE && code1 == VECTOR_TYPE)
4276 {
4277 if (!tree_int_cst_equal (TYPE_SIZE (type0), TYPE_SIZE (type1))
4278 || !same_scalar_type_ignoring_signedness (TREE_TYPE (type0),
4279 TREE_TYPE (type1)))
4280 {
4281 binary_op_error (location, code, type0, type1);
4282 return error_mark_node;
4283 }
4284 arithmetic_types_p = 1;
4285 }
4286 }
4287 /* Determine the RESULT_TYPE, if it is not already known. */
4288 if (!result_type
4289 && arithmetic_types_p
4290 && (shorten || common || short_compare))
4291 {
4292 result_type = cp_common_type (type0, type1);
4293 do_warn_double_promotion (result_type, type0, type1,
4294 "implicit conversion from %qT to %qT "
4295 "to match other operand of binary "
4296 "expression",
4297 location);
4298 }
4299
4300 if (!result_type)
4301 {
4302 if (complain & tf_error)
4303 error ("invalid operands of types %qT and %qT to binary %qO",
4304 TREE_TYPE (orig_op0), TREE_TYPE (orig_op1), code);
4305 return error_mark_node;
4306 }
4307
4308 /* If we're in a template, the only thing we need to know is the
4309 RESULT_TYPE. */
4310 if (processing_template_decl)
4311 {
4312 /* Since the middle-end checks the type when doing a build2, we
4313 need to build the tree in pieces. This built tree will never
4314 get out of the front-end as we replace it when instantiating
4315 the template. */
4316 tree tmp = build2 (resultcode,
4317 build_type ? build_type : result_type,
4318 NULL_TREE, op1);
4319 TREE_OPERAND (tmp, 0) = op0;
4320 return tmp;
4321 }
4322
4323 if (arithmetic_types_p)
4324 {
4325 bool first_complex = (code0 == COMPLEX_TYPE);
4326 bool second_complex = (code1 == COMPLEX_TYPE);
4327 int none_complex = (!first_complex && !second_complex);
4328
4329 /* Adapted from patch for c/24581. */
4330 if (first_complex != second_complex
4331 && (code == PLUS_EXPR
4332 || code == MINUS_EXPR
4333 || code == MULT_EXPR
4334 || (code == TRUNC_DIV_EXPR && first_complex))
4335 && TREE_CODE (TREE_TYPE (result_type)) == REAL_TYPE
4336 && flag_signed_zeros)
4337 {
4338 /* An operation on mixed real/complex operands must be
4339 handled specially, but the language-independent code can
4340 more easily optimize the plain complex arithmetic if
4341 -fno-signed-zeros. */
4342 tree real_type = TREE_TYPE (result_type);
4343 tree real, imag;
4344 if (first_complex)
4345 {
4346 if (TREE_TYPE (op0) != result_type)
4347 op0 = cp_convert_and_check (result_type, op0);
4348 if (TREE_TYPE (op1) != real_type)
4349 op1 = cp_convert_and_check (real_type, op1);
4350 }
4351 else
4352 {
4353 if (TREE_TYPE (op0) != real_type)
4354 op0 = cp_convert_and_check (real_type, op0);
4355 if (TREE_TYPE (op1) != result_type)
4356 op1 = cp_convert_and_check (result_type, op1);
4357 }
4358 if (TREE_CODE (op0) == ERROR_MARK || TREE_CODE (op1) == ERROR_MARK)
4359 return error_mark_node;
4360 if (first_complex)
4361 {
4362 op0 = save_expr (op0);
4363 real = cp_build_unary_op (REALPART_EXPR, op0, 1, complain);
4364 imag = cp_build_unary_op (IMAGPART_EXPR, op0, 1, complain);
4365 switch (code)
4366 {
4367 case MULT_EXPR:
4368 case TRUNC_DIV_EXPR:
4369 imag = build2 (resultcode, real_type, imag, op1);
4370 /* Fall through. */
4371 case PLUS_EXPR:
4372 case MINUS_EXPR:
4373 real = build2 (resultcode, real_type, real, op1);
4374 break;
4375 default:
4376 gcc_unreachable();
4377 }
4378 }
4379 else
4380 {
4381 op1 = save_expr (op1);
4382 real = cp_build_unary_op (REALPART_EXPR, op1, 1, complain);
4383 imag = cp_build_unary_op (IMAGPART_EXPR, op1, 1, complain);
4384 switch (code)
4385 {
4386 case MULT_EXPR:
4387 imag = build2 (resultcode, real_type, op0, imag);
4388 /* Fall through. */
4389 case PLUS_EXPR:
4390 real = build2 (resultcode, real_type, op0, real);
4391 break;
4392 case MINUS_EXPR:
4393 real = build2 (resultcode, real_type, op0, real);
4394 imag = build1 (NEGATE_EXPR, real_type, imag);
4395 break;
4396 default:
4397 gcc_unreachable();
4398 }
4399 }
4400 return build2 (COMPLEX_EXPR, result_type, real, imag);
4401 }
4402
4403 /* For certain operations (which identify themselves by shorten != 0)
4404 if both args were extended from the same smaller type,
4405 do the arithmetic in that type and then extend.
4406
4407 shorten !=0 and !=1 indicates a bitwise operation.
4408 For them, this optimization is safe only if
4409 both args are zero-extended or both are sign-extended.
4410 Otherwise, we might change the result.
4411 E.g., (short)-1 | (unsigned short)-1 is (int)-1
4412 but calculated in (unsigned short) it would be (unsigned short)-1. */
4413
4414 if (shorten && none_complex)
4415 {
4416 final_type = result_type;
4417 result_type = shorten_binary_op (result_type, op0, op1,
4418 shorten == -1);
4419 }
4420
4421 /* Comparison operations are shortened too but differently.
4422 They identify themselves by setting short_compare = 1. */
4423
4424 if (short_compare)
4425 {
4426 /* Don't write &op0, etc., because that would prevent op0
4427 from being kept in a register.
4428 Instead, make copies of the our local variables and
4429 pass the copies by reference, then copy them back afterward. */
4430 tree xop0 = op0, xop1 = op1, xresult_type = result_type;
4431 enum tree_code xresultcode = resultcode;
4432 tree val
4433 = shorten_compare (&xop0, &xop1, &xresult_type, &xresultcode);
4434 if (val != 0)
4435 return cp_convert (boolean_type_node, val);
4436 op0 = xop0, op1 = xop1;
4437 converted = 1;
4438 resultcode = xresultcode;
4439 }
4440
4441 if ((short_compare || code == MIN_EXPR || code == MAX_EXPR)
4442 && warn_sign_compare
4443 && !TREE_NO_WARNING (orig_op0)
4444 && !TREE_NO_WARNING (orig_op1)
4445 /* Do not warn until the template is instantiated; we cannot
4446 bound the ranges of the arguments until that point. */
4447 && !processing_template_decl
4448 && (complain & tf_warning)
4449 && c_inhibit_evaluation_warnings == 0)
4450 {
4451 warn_for_sign_compare (location, orig_op0, orig_op1, op0, op1,
4452 result_type, resultcode);
4453 }
4454 }
4455
4456 /* If CONVERTED is zero, both args will be converted to type RESULT_TYPE.
4457 Then the expression will be built.
4458 It will be given type FINAL_TYPE if that is nonzero;
4459 otherwise, it will be given type RESULT_TYPE. */
4460 if (! converted)
4461 {
4462 if (TREE_TYPE (op0) != result_type)
4463 op0 = cp_convert_and_check (result_type, op0);
4464 if (TREE_TYPE (op1) != result_type)
4465 op1 = cp_convert_and_check (result_type, op1);
4466
4467 if (op0 == error_mark_node || op1 == error_mark_node)
4468 return error_mark_node;
4469 }
4470
4471 if (build_type == NULL_TREE)
4472 build_type = result_type;
4473
4474 result = build2 (resultcode, build_type, op0, op1);
4475 result = fold_if_not_in_template (result);
4476 if (final_type != 0)
4477 result = cp_convert (final_type, result);
4478
4479 if (TREE_OVERFLOW_P (result)
4480 && !TREE_OVERFLOW_P (op0)
4481 && !TREE_OVERFLOW_P (op1))
4482 overflow_warning (location, result);
4483
4484 return result;
4485 }
4486 \f
4487 /* Return a tree for the sum or difference (RESULTCODE says which)
4488 of pointer PTROP and integer INTOP. */
4489
4490 static tree
4491 cp_pointer_int_sum (enum tree_code resultcode, tree ptrop, tree intop)
4492 {
4493 tree res_type = TREE_TYPE (ptrop);
4494
4495 /* pointer_int_sum() uses size_in_bytes() on the TREE_TYPE(res_type)
4496 in certain circumstance (when it's valid to do so). So we need
4497 to make sure it's complete. We don't need to check here, if we
4498 can actually complete it at all, as those checks will be done in
4499 pointer_int_sum() anyway. */
4500 complete_type (TREE_TYPE (res_type));
4501
4502 return pointer_int_sum (input_location, resultcode, ptrop,
4503 fold_if_not_in_template (intop));
4504 }
4505
4506 /* Return a tree for the difference of pointers OP0 and OP1.
4507 The resulting tree has type int. */
4508
4509 static tree
4510 pointer_diff (tree op0, tree op1, tree ptrtype)
4511 {
4512 tree result;
4513 tree restype = ptrdiff_type_node;
4514 tree target_type = TREE_TYPE (ptrtype);
4515
4516 if (!complete_type_or_else (target_type, NULL_TREE))
4517 return error_mark_node;
4518
4519 if (TREE_CODE (target_type) == VOID_TYPE)
4520 permerror (input_location, "ISO C++ forbids using pointer of type %<void *%> in subtraction");
4521 if (TREE_CODE (target_type) == FUNCTION_TYPE)
4522 permerror (input_location, "ISO C++ forbids using pointer to a function in subtraction");
4523 if (TREE_CODE (target_type) == METHOD_TYPE)
4524 permerror (input_location, "ISO C++ forbids using pointer to a method in subtraction");
4525
4526 /* First do the subtraction as integers;
4527 then drop through to build the divide operator. */
4528
4529 op0 = cp_build_binary_op (input_location,
4530 MINUS_EXPR,
4531 cp_convert (restype, op0),
4532 cp_convert (restype, op1),
4533 tf_warning_or_error);
4534
4535 /* This generates an error if op1 is a pointer to an incomplete type. */
4536 if (!COMPLETE_TYPE_P (TREE_TYPE (TREE_TYPE (op1))))
4537 error ("invalid use of a pointer to an incomplete type in pointer arithmetic");
4538
4539 op1 = (TYPE_PTROB_P (ptrtype)
4540 ? size_in_bytes (target_type)
4541 : integer_one_node);
4542
4543 /* Do the division. */
4544
4545 result = build2 (EXACT_DIV_EXPR, restype, op0, cp_convert (restype, op1));
4546 return fold_if_not_in_template (result);
4547 }
4548 \f
4549 /* Construct and perhaps optimize a tree representation
4550 for a unary operation. CODE, a tree_code, specifies the operation
4551 and XARG is the operand. */
4552
4553 tree
4554 build_x_unary_op (enum tree_code code, tree xarg, tsubst_flags_t complain)
4555 {
4556 tree orig_expr = xarg;
4557 tree exp;
4558 int ptrmem = 0;
4559
4560 if (processing_template_decl)
4561 {
4562 if (type_dependent_expression_p (xarg))
4563 return build_min_nt (code, xarg, NULL_TREE);
4564
4565 xarg = build_non_dependent_expr (xarg);
4566 }
4567
4568 exp = NULL_TREE;
4569
4570 /* [expr.unary.op] says:
4571
4572 The address of an object of incomplete type can be taken.
4573
4574 (And is just the ordinary address operator, not an overloaded
4575 "operator &".) However, if the type is a template
4576 specialization, we must complete the type at this point so that
4577 an overloaded "operator &" will be available if required. */
4578 if (code == ADDR_EXPR
4579 && TREE_CODE (xarg) != TEMPLATE_ID_EXPR
4580 && ((CLASS_TYPE_P (TREE_TYPE (xarg))
4581 && !COMPLETE_TYPE_P (complete_type (TREE_TYPE (xarg))))
4582 || (TREE_CODE (xarg) == OFFSET_REF)))
4583 /* Don't look for a function. */;
4584 else
4585 exp = build_new_op (code, LOOKUP_NORMAL, xarg, NULL_TREE, NULL_TREE,
4586 /*overloaded_p=*/NULL, complain);
4587 if (!exp && code == ADDR_EXPR)
4588 {
4589 if (is_overloaded_fn (xarg))
4590 {
4591 tree fn = get_first_fn (xarg);
4592 if (DECL_CONSTRUCTOR_P (fn) || DECL_DESTRUCTOR_P (fn))
4593 {
4594 error (DECL_CONSTRUCTOR_P (fn)
4595 ? G_("taking address of constructor %qE")
4596 : G_("taking address of destructor %qE"),
4597 xarg);
4598 return error_mark_node;
4599 }
4600 }
4601
4602 /* A pointer to member-function can be formed only by saying
4603 &X::mf. */
4604 if (!flag_ms_extensions && TREE_CODE (TREE_TYPE (xarg)) == METHOD_TYPE
4605 && (TREE_CODE (xarg) != OFFSET_REF || !PTRMEM_OK_P (xarg)))
4606 {
4607 if (TREE_CODE (xarg) != OFFSET_REF
4608 || !TYPE_P (TREE_OPERAND (xarg, 0)))
4609 {
4610 error ("invalid use of %qE to form a pointer-to-member-function",
4611 xarg);
4612 if (TREE_CODE (xarg) != OFFSET_REF)
4613 inform (input_location, " a qualified-id is required");
4614 return error_mark_node;
4615 }
4616 else
4617 {
4618 error ("parentheses around %qE cannot be used to form a"
4619 " pointer-to-member-function",
4620 xarg);
4621 PTRMEM_OK_P (xarg) = 1;
4622 }
4623 }
4624
4625 if (TREE_CODE (xarg) == OFFSET_REF)
4626 {
4627 ptrmem = PTRMEM_OK_P (xarg);
4628
4629 if (!ptrmem && !flag_ms_extensions
4630 && TREE_CODE (TREE_TYPE (TREE_OPERAND (xarg, 1))) == METHOD_TYPE)
4631 {
4632 /* A single non-static member, make sure we don't allow a
4633 pointer-to-member. */
4634 xarg = build2 (OFFSET_REF, TREE_TYPE (xarg),
4635 TREE_OPERAND (xarg, 0),
4636 ovl_cons (TREE_OPERAND (xarg, 1), NULL_TREE));
4637 PTRMEM_OK_P (xarg) = ptrmem;
4638 }
4639 }
4640
4641 exp = cp_build_addr_expr_strict (xarg, complain);
4642 }
4643
4644 if (processing_template_decl && exp != error_mark_node)
4645 exp = build_min_non_dep (code, exp, orig_expr,
4646 /*For {PRE,POST}{INC,DEC}REMENT_EXPR*/NULL_TREE);
4647 if (TREE_CODE (exp) == ADDR_EXPR)
4648 PTRMEM_OK_P (exp) = ptrmem;
4649 return exp;
4650 }
4651
4652 /* Like c_common_truthvalue_conversion, but handle pointer-to-member
4653 constants, where a null value is represented by an INTEGER_CST of
4654 -1. */
4655
4656 tree
4657 cp_truthvalue_conversion (tree expr)
4658 {
4659 tree type = TREE_TYPE (expr);
4660 if (TYPE_PTRMEM_P (type))
4661 return build_binary_op (EXPR_LOCATION (expr),
4662 NE_EXPR, expr, integer_zero_node, 1);
4663 else
4664 return c_common_truthvalue_conversion (input_location, expr);
4665 }
4666
4667 /* Just like cp_truthvalue_conversion, but we want a CLEANUP_POINT_EXPR. */
4668
4669 tree
4670 condition_conversion (tree expr)
4671 {
4672 tree t;
4673 if (processing_template_decl)
4674 return expr;
4675 t = perform_implicit_conversion_flags (boolean_type_node, expr,
4676 tf_warning_or_error, LOOKUP_NORMAL);
4677 t = fold_build_cleanup_point_expr (boolean_type_node, t);
4678 return t;
4679 }
4680
4681 /* Returns the address of T. This function will fold away
4682 ADDR_EXPR of INDIRECT_REF. */
4683
4684 tree
4685 build_address (tree t)
4686 {
4687 if (error_operand_p (t) || !cxx_mark_addressable (t))
4688 return error_mark_node;
4689 t = build_fold_addr_expr (t);
4690 if (TREE_CODE (t) != ADDR_EXPR)
4691 t = rvalue (t);
4692 return t;
4693 }
4694
4695 /* Returns the address of T with type TYPE. */
4696
4697 tree
4698 build_typed_address (tree t, tree type)
4699 {
4700 if (error_operand_p (t) || !cxx_mark_addressable (t))
4701 return error_mark_node;
4702 t = build_fold_addr_expr_with_type (t, type);
4703 if (TREE_CODE (t) != ADDR_EXPR)
4704 t = rvalue (t);
4705 return t;
4706 }
4707
4708 /* Return a NOP_EXPR converting EXPR to TYPE. */
4709
4710 tree
4711 build_nop (tree type, tree expr)
4712 {
4713 if (type == error_mark_node || error_operand_p (expr))
4714 return expr;
4715 return build1 (NOP_EXPR, type, expr);
4716 }
4717
4718 /* Take the address of ARG, whatever that means under C++ semantics.
4719 If STRICT_LVALUE is true, require an lvalue; otherwise, allow xvalues
4720 and class rvalues as well.
4721
4722 Nothing should call this function directly; instead, callers should use
4723 cp_build_addr_expr or cp_build_addr_expr_strict. */
4724
4725 static tree
4726 cp_build_addr_expr_1 (tree arg, bool strict_lvalue, tsubst_flags_t complain)
4727 {
4728 tree argtype;
4729 tree val;
4730
4731 if (!arg || error_operand_p (arg))
4732 return error_mark_node;
4733
4734 arg = mark_lvalue_use (arg);
4735 argtype = lvalue_type (arg);
4736
4737 gcc_assert (TREE_CODE (arg) != IDENTIFIER_NODE
4738 || !IDENTIFIER_OPNAME_P (arg));
4739
4740 if (TREE_CODE (arg) == COMPONENT_REF && type_unknown_p (arg)
4741 && !really_overloaded_fn (TREE_OPERAND (arg, 1)))
4742 {
4743 /* They're trying to take the address of a unique non-static
4744 member function. This is ill-formed (except in MS-land),
4745 but let's try to DTRT.
4746 Note: We only handle unique functions here because we don't
4747 want to complain if there's a static overload; non-unique
4748 cases will be handled by instantiate_type. But we need to
4749 handle this case here to allow casts on the resulting PMF.
4750 We could defer this in non-MS mode, but it's easier to give
4751 a useful error here. */
4752
4753 /* Inside constant member functions, the `this' pointer
4754 contains an extra const qualifier. TYPE_MAIN_VARIANT
4755 is used here to remove this const from the diagnostics
4756 and the created OFFSET_REF. */
4757 tree base = TYPE_MAIN_VARIANT (TREE_TYPE (TREE_OPERAND (arg, 0)));
4758 tree fn = get_first_fn (TREE_OPERAND (arg, 1));
4759 mark_used (fn);
4760
4761 if (! flag_ms_extensions)
4762 {
4763 tree name = DECL_NAME (fn);
4764 if (!(complain & tf_error))
4765 return error_mark_node;
4766 else if (current_class_type
4767 && TREE_OPERAND (arg, 0) == current_class_ref)
4768 /* An expression like &memfn. */
4769 permerror (input_location, "ISO C++ forbids taking the address of an unqualified"
4770 " or parenthesized non-static member function to form"
4771 " a pointer to member function. Say %<&%T::%D%>",
4772 base, name);
4773 else
4774 permerror (input_location, "ISO C++ forbids taking the address of a bound member"
4775 " function to form a pointer to member function."
4776 " Say %<&%T::%D%>",
4777 base, name);
4778 }
4779 arg = build_offset_ref (base, fn, /*address_p=*/true);
4780 }
4781
4782 /* Uninstantiated types are all functions. Taking the
4783 address of a function is a no-op, so just return the
4784 argument. */
4785 if (type_unknown_p (arg))
4786 return build1 (ADDR_EXPR, unknown_type_node, arg);
4787
4788 if (TREE_CODE (arg) == OFFSET_REF)
4789 /* We want a pointer to member; bypass all the code for actually taking
4790 the address of something. */
4791 goto offset_ref;
4792
4793 /* Anything not already handled and not a true memory reference
4794 is an error. */
4795 if (TREE_CODE (argtype) != FUNCTION_TYPE
4796 && TREE_CODE (argtype) != METHOD_TYPE)
4797 {
4798 cp_lvalue_kind kind = lvalue_kind (arg);
4799 if (kind == clk_none)
4800 {
4801 if (complain & tf_error)
4802 lvalue_error (lv_addressof);
4803 return error_mark_node;
4804 }
4805 if (strict_lvalue && (kind & (clk_rvalueref|clk_class)))
4806 {
4807 if (!(complain & tf_error))
4808 return error_mark_node;
4809 if (kind & clk_class)
4810 /* Make this a permerror because we used to accept it. */
4811 permerror (input_location, "taking address of temporary");
4812 else
4813 error ("taking address of xvalue (rvalue reference)");
4814 }
4815 }
4816
4817 if (TREE_CODE (argtype) == REFERENCE_TYPE)
4818 {
4819 tree type = build_pointer_type (TREE_TYPE (argtype));
4820 arg = build1 (CONVERT_EXPR, type, arg);
4821 return arg;
4822 }
4823 else if (pedantic && DECL_MAIN_P (arg))
4824 {
4825 /* ARM $3.4 */
4826 /* Apparently a lot of autoconf scripts for C++ packages do this,
4827 so only complain if -pedantic. */
4828 if (complain & (flag_pedantic_errors ? tf_error : tf_warning))
4829 pedwarn (input_location, OPT_pedantic,
4830 "ISO C++ forbids taking address of function %<::main%>");
4831 else if (flag_pedantic_errors)
4832 return error_mark_node;
4833 }
4834
4835 /* Let &* cancel out to simplify resulting code. */
4836 if (TREE_CODE (arg) == INDIRECT_REF)
4837 {
4838 /* We don't need to have `current_class_ptr' wrapped in a
4839 NON_LVALUE_EXPR node. */
4840 if (arg == current_class_ref)
4841 return current_class_ptr;
4842
4843 arg = TREE_OPERAND (arg, 0);
4844 if (TREE_CODE (TREE_TYPE (arg)) == REFERENCE_TYPE)
4845 {
4846 tree type = build_pointer_type (TREE_TYPE (TREE_TYPE (arg)));
4847 arg = build1 (CONVERT_EXPR, type, arg);
4848 }
4849 else
4850 /* Don't let this be an lvalue. */
4851 arg = rvalue (arg);
4852 return arg;
4853 }
4854
4855 /* ??? Cope with user tricks that amount to offsetof. */
4856 if (TREE_CODE (argtype) != FUNCTION_TYPE
4857 && TREE_CODE (argtype) != METHOD_TYPE
4858 && argtype != unknown_type_node
4859 && (val = get_base_address (arg))
4860 && COMPLETE_TYPE_P (TREE_TYPE (val))
4861 && TREE_CODE (val) == INDIRECT_REF
4862 && TREE_CONSTANT (TREE_OPERAND (val, 0)))
4863 {
4864 tree type = build_pointer_type (argtype);
4865 tree op0 = fold_convert (type, TREE_OPERAND (val, 0));
4866 tree op1 = fold_convert (sizetype, fold_offsetof (arg, val));
4867 return fold_build2 (POINTER_PLUS_EXPR, type, op0, op1);
4868 }
4869
4870 /* Handle complex lvalues (when permitted)
4871 by reduction to simpler cases. */
4872 val = unary_complex_lvalue (ADDR_EXPR, arg);
4873 if (val != 0)
4874 return val;
4875
4876 switch (TREE_CODE (arg))
4877 {
4878 CASE_CONVERT:
4879 case FLOAT_EXPR:
4880 case FIX_TRUNC_EXPR:
4881 /* Even if we're not being pedantic, we cannot allow this
4882 extension when we're instantiating in a SFINAE
4883 context. */
4884 if (! lvalue_p (arg) && complain == tf_none)
4885 {
4886 if (complain & tf_error)
4887 permerror (input_location, "ISO C++ forbids taking the address of a cast to a non-lvalue expression");
4888 else
4889 return error_mark_node;
4890 }
4891 break;
4892
4893 case BASELINK:
4894 arg = BASELINK_FUNCTIONS (arg);
4895 /* Fall through. */
4896
4897 case OVERLOAD:
4898 arg = OVL_CURRENT (arg);
4899 break;
4900
4901 case OFFSET_REF:
4902 offset_ref:
4903 /* Turn a reference to a non-static data member into a
4904 pointer-to-member. */
4905 {
4906 tree type;
4907 tree t;
4908
4909 gcc_assert (PTRMEM_OK_P (arg));
4910
4911 t = TREE_OPERAND (arg, 1);
4912 if (TREE_CODE (TREE_TYPE (t)) == REFERENCE_TYPE)
4913 {
4914 if (complain & tf_error)
4915 error ("cannot create pointer to reference member %qD", t);
4916 return error_mark_node;
4917 }
4918
4919 type = build_ptrmem_type (context_for_name_lookup (t),
4920 TREE_TYPE (t));
4921 t = make_ptrmem_cst (type, TREE_OPERAND (arg, 1));
4922 return t;
4923 }
4924
4925 default:
4926 break;
4927 }
4928
4929 if (argtype != error_mark_node)
4930 argtype = build_pointer_type (argtype);
4931
4932 /* In a template, we are processing a non-dependent expression
4933 so we can just form an ADDR_EXPR with the correct type. */
4934 if (processing_template_decl || TREE_CODE (arg) != COMPONENT_REF)
4935 {
4936 val = build_address (arg);
4937 if (TREE_CODE (arg) == OFFSET_REF)
4938 PTRMEM_OK_P (val) = PTRMEM_OK_P (arg);
4939 }
4940 else if (TREE_CODE (TREE_OPERAND (arg, 1)) == BASELINK)
4941 {
4942 tree fn = BASELINK_FUNCTIONS (TREE_OPERAND (arg, 1));
4943
4944 /* We can only get here with a single static member
4945 function. */
4946 gcc_assert (TREE_CODE (fn) == FUNCTION_DECL
4947 && DECL_STATIC_FUNCTION_P (fn));
4948 mark_used (fn);
4949 val = build_address (fn);
4950 if (TREE_SIDE_EFFECTS (TREE_OPERAND (arg, 0)))
4951 /* Do not lose object's side effects. */
4952 val = build2 (COMPOUND_EXPR, TREE_TYPE (val),
4953 TREE_OPERAND (arg, 0), val);
4954 }
4955 else if (DECL_C_BIT_FIELD (TREE_OPERAND (arg, 1)))
4956 {
4957 if (complain & tf_error)
4958 error ("attempt to take address of bit-field structure member %qD",
4959 TREE_OPERAND (arg, 1));
4960 return error_mark_node;
4961 }
4962 else
4963 {
4964 tree object = TREE_OPERAND (arg, 0);
4965 tree field = TREE_OPERAND (arg, 1);
4966 gcc_assert (same_type_ignoring_top_level_qualifiers_p
4967 (TREE_TYPE (object), decl_type_context (field)));
4968 val = build_address (arg);
4969 }
4970
4971 if (TREE_CODE (argtype) == POINTER_TYPE
4972 && TREE_CODE (TREE_TYPE (argtype)) == METHOD_TYPE)
4973 {
4974 build_ptrmemfunc_type (argtype);
4975 val = build_ptrmemfunc (argtype, val, 0,
4976 /*c_cast_p=*/false,
4977 tf_warning_or_error);
4978 }
4979
4980 return val;
4981 }
4982
4983 /* Take the address of ARG if it has one, even if it's an rvalue. */
4984
4985 tree
4986 cp_build_addr_expr (tree arg, tsubst_flags_t complain)
4987 {
4988 return cp_build_addr_expr_1 (arg, 0, complain);
4989 }
4990
4991 /* Take the address of ARG, but only if it's an lvalue. */
4992
4993 tree
4994 cp_build_addr_expr_strict (tree arg, tsubst_flags_t complain)
4995 {
4996 return cp_build_addr_expr_1 (arg, 1, complain);
4997 }
4998
4999 /* C++: Must handle pointers to members.
5000
5001 Perhaps type instantiation should be extended to handle conversion
5002 from aggregates to types we don't yet know we want? (Or are those
5003 cases typically errors which should be reported?)
5004
5005 NOCONVERT nonzero suppresses the default promotions
5006 (such as from short to int). */
5007
5008 tree
5009 cp_build_unary_op (enum tree_code code, tree xarg, int noconvert,
5010 tsubst_flags_t complain)
5011 {
5012 /* No default_conversion here. It causes trouble for ADDR_EXPR. */
5013 tree arg = xarg;
5014 tree argtype = 0;
5015 const char *errstring = NULL;
5016 tree val;
5017 const char *invalid_op_diag;
5018
5019 if (!arg || error_operand_p (arg))
5020 return error_mark_node;
5021
5022 if ((invalid_op_diag
5023 = targetm.invalid_unary_op ((code == UNARY_PLUS_EXPR
5024 ? CONVERT_EXPR
5025 : code),
5026 TREE_TYPE (xarg))))
5027 {
5028 error (invalid_op_diag);
5029 return error_mark_node;
5030 }
5031
5032 switch (code)
5033 {
5034 case UNARY_PLUS_EXPR:
5035 case NEGATE_EXPR:
5036 {
5037 int flags = WANT_ARITH | WANT_ENUM;
5038 /* Unary plus (but not unary minus) is allowed on pointers. */
5039 if (code == UNARY_PLUS_EXPR)
5040 flags |= WANT_POINTER;
5041 arg = build_expr_type_conversion (flags, arg, true);
5042 if (!arg)
5043 errstring = (code == NEGATE_EXPR
5044 ? _("wrong type argument to unary minus")
5045 : _("wrong type argument to unary plus"));
5046 else
5047 {
5048 if (!noconvert && CP_INTEGRAL_TYPE_P (TREE_TYPE (arg)))
5049 arg = perform_integral_promotions (arg);
5050
5051 /* Make sure the result is not an lvalue: a unary plus or minus
5052 expression is always a rvalue. */
5053 arg = rvalue (arg);
5054 }
5055 }
5056 break;
5057
5058 case BIT_NOT_EXPR:
5059 if (TREE_CODE (TREE_TYPE (arg)) == COMPLEX_TYPE)
5060 {
5061 code = CONJ_EXPR;
5062 if (!noconvert)
5063 arg = default_conversion (arg);
5064 }
5065 else if (!(arg = build_expr_type_conversion (WANT_INT | WANT_ENUM
5066 | WANT_VECTOR_OR_COMPLEX,
5067 arg, true)))
5068 errstring = _("wrong type argument to bit-complement");
5069 else if (!noconvert && CP_INTEGRAL_TYPE_P (TREE_TYPE (arg)))
5070 arg = perform_integral_promotions (arg);
5071 break;
5072
5073 case ABS_EXPR:
5074 if (!(arg = build_expr_type_conversion (WANT_ARITH | WANT_ENUM, arg, true)))
5075 errstring = _("wrong type argument to abs");
5076 else if (!noconvert)
5077 arg = default_conversion (arg);
5078 break;
5079
5080 case CONJ_EXPR:
5081 /* Conjugating a real value is a no-op, but allow it anyway. */
5082 if (!(arg = build_expr_type_conversion (WANT_ARITH | WANT_ENUM, arg, true)))
5083 errstring = _("wrong type argument to conjugation");
5084 else if (!noconvert)
5085 arg = default_conversion (arg);
5086 break;
5087
5088 case TRUTH_NOT_EXPR:
5089 arg = perform_implicit_conversion (boolean_type_node, arg,
5090 complain);
5091 val = invert_truthvalue_loc (input_location, arg);
5092 if (arg != error_mark_node)
5093 return val;
5094 errstring = _("in argument to unary !");
5095 break;
5096
5097 case NOP_EXPR:
5098 break;
5099
5100 case REALPART_EXPR:
5101 if (TREE_CODE (arg) == COMPLEX_CST)
5102 return TREE_REALPART (arg);
5103 else if (TREE_CODE (TREE_TYPE (arg)) == COMPLEX_TYPE)
5104 {
5105 arg = build1 (REALPART_EXPR, TREE_TYPE (TREE_TYPE (arg)), arg);
5106 return fold_if_not_in_template (arg);
5107 }
5108 else
5109 return arg;
5110
5111 case IMAGPART_EXPR:
5112 if (TREE_CODE (arg) == COMPLEX_CST)
5113 return TREE_IMAGPART (arg);
5114 else if (TREE_CODE (TREE_TYPE (arg)) == COMPLEX_TYPE)
5115 {
5116 arg = build1 (IMAGPART_EXPR, TREE_TYPE (TREE_TYPE (arg)), arg);
5117 return fold_if_not_in_template (arg);
5118 }
5119 else
5120 return cp_convert (TREE_TYPE (arg), integer_zero_node);
5121
5122 case PREINCREMENT_EXPR:
5123 case POSTINCREMENT_EXPR:
5124 case PREDECREMENT_EXPR:
5125 case POSTDECREMENT_EXPR:
5126 /* Handle complex lvalues (when permitted)
5127 by reduction to simpler cases. */
5128
5129 val = unary_complex_lvalue (code, arg);
5130 if (val != 0)
5131 return val;
5132
5133 arg = mark_lvalue_use (arg);
5134
5135 /* Increment or decrement the real part of the value,
5136 and don't change the imaginary part. */
5137 if (TREE_CODE (TREE_TYPE (arg)) == COMPLEX_TYPE)
5138 {
5139 tree real, imag;
5140
5141 arg = stabilize_reference (arg);
5142 real = cp_build_unary_op (REALPART_EXPR, arg, 1, complain);
5143 imag = cp_build_unary_op (IMAGPART_EXPR, arg, 1, complain);
5144 real = cp_build_unary_op (code, real, 1, complain);
5145 if (real == error_mark_node || imag == error_mark_node)
5146 return error_mark_node;
5147 return build2 (COMPLEX_EXPR, TREE_TYPE (arg),
5148 real, imag);
5149 }
5150
5151 /* Report invalid types. */
5152
5153 if (!(arg = build_expr_type_conversion (WANT_ARITH | WANT_POINTER,
5154 arg, true)))
5155 {
5156 if (code == PREINCREMENT_EXPR)
5157 errstring = _("no pre-increment operator for type");
5158 else if (code == POSTINCREMENT_EXPR)
5159 errstring = _("no post-increment operator for type");
5160 else if (code == PREDECREMENT_EXPR)
5161 errstring = _("no pre-decrement operator for type");
5162 else
5163 errstring = _("no post-decrement operator for type");
5164 break;
5165 }
5166 else if (arg == error_mark_node)
5167 return error_mark_node;
5168
5169 /* Report something read-only. */
5170
5171 if (CP_TYPE_CONST_P (TREE_TYPE (arg))
5172 || TREE_READONLY (arg))
5173 {
5174 if (complain & tf_error)
5175 readonly_error (arg, ((code == PREINCREMENT_EXPR
5176 || code == POSTINCREMENT_EXPR)
5177 ? REK_INCREMENT : REK_DECREMENT));
5178 else
5179 return error_mark_node;
5180 }
5181
5182 {
5183 tree inc;
5184 tree declared_type = unlowered_expr_type (arg);
5185
5186 argtype = TREE_TYPE (arg);
5187
5188 /* ARM $5.2.5 last annotation says this should be forbidden. */
5189 if (TREE_CODE (argtype) == ENUMERAL_TYPE)
5190 {
5191 if (complain & tf_error)
5192 permerror (input_location, (code == PREINCREMENT_EXPR || code == POSTINCREMENT_EXPR)
5193 ? G_("ISO C++ forbids incrementing an enum")
5194 : G_("ISO C++ forbids decrementing an enum"));
5195 else
5196 return error_mark_node;
5197 }
5198
5199 /* Compute the increment. */
5200
5201 if (TREE_CODE (argtype) == POINTER_TYPE)
5202 {
5203 tree type = complete_type (TREE_TYPE (argtype));
5204
5205 if (!COMPLETE_OR_VOID_TYPE_P (type))
5206 {
5207 if (complain & tf_error)
5208 error (((code == PREINCREMENT_EXPR
5209 || code == POSTINCREMENT_EXPR))
5210 ? G_("cannot increment a pointer to incomplete type %qT")
5211 : G_("cannot decrement a pointer to incomplete type %qT"),
5212 TREE_TYPE (argtype));
5213 else
5214 return error_mark_node;
5215 }
5216 else if ((pedantic || warn_pointer_arith)
5217 && !TYPE_PTROB_P (argtype))
5218 {
5219 if (complain & tf_error)
5220 permerror (input_location, (code == PREINCREMENT_EXPR
5221 || code == POSTINCREMENT_EXPR)
5222 ? G_("ISO C++ forbids incrementing a pointer of type %qT")
5223 : G_("ISO C++ forbids decrementing a pointer of type %qT"),
5224 argtype);
5225 else
5226 return error_mark_node;
5227 }
5228
5229 inc = cxx_sizeof_nowarn (TREE_TYPE (argtype));
5230 }
5231 else
5232 inc = integer_one_node;
5233
5234 inc = cp_convert (argtype, inc);
5235
5236 /* Complain about anything else that is not a true lvalue. */
5237 if (!lvalue_or_else (arg, ((code == PREINCREMENT_EXPR
5238 || code == POSTINCREMENT_EXPR)
5239 ? lv_increment : lv_decrement),
5240 complain))
5241 return error_mark_node;
5242
5243 /* Forbid using -- on `bool'. */
5244 if (TREE_CODE (declared_type) == BOOLEAN_TYPE)
5245 {
5246 if (code == POSTDECREMENT_EXPR || code == PREDECREMENT_EXPR)
5247 {
5248 if (complain & tf_error)
5249 error ("invalid use of Boolean expression as operand "
5250 "to %<operator--%>");
5251 return error_mark_node;
5252 }
5253 val = boolean_increment (code, arg);
5254 }
5255 else
5256 val = build2 (code, TREE_TYPE (arg), arg, inc);
5257
5258 TREE_SIDE_EFFECTS (val) = 1;
5259 return val;
5260 }
5261
5262 case ADDR_EXPR:
5263 /* Note that this operation never does default_conversion
5264 regardless of NOCONVERT. */
5265 return cp_build_addr_expr (arg, complain);
5266
5267 default:
5268 break;
5269 }
5270
5271 if (!errstring)
5272 {
5273 if (argtype == 0)
5274 argtype = TREE_TYPE (arg);
5275 return fold_if_not_in_template (build1 (code, argtype, arg));
5276 }
5277
5278 if (complain & tf_error)
5279 error ("%s", errstring);
5280 return error_mark_node;
5281 }
5282
5283 /* Hook for the c-common bits that build a unary op. */
5284 tree
5285 build_unary_op (location_t location ATTRIBUTE_UNUSED,
5286 enum tree_code code, tree xarg, int noconvert)
5287 {
5288 return cp_build_unary_op (code, xarg, noconvert, tf_warning_or_error);
5289 }
5290
5291 /* Apply unary lvalue-demanding operator CODE to the expression ARG
5292 for certain kinds of expressions which are not really lvalues
5293 but which we can accept as lvalues.
5294
5295 If ARG is not a kind of expression we can handle, return
5296 NULL_TREE. */
5297
5298 tree
5299 unary_complex_lvalue (enum tree_code code, tree arg)
5300 {
5301 /* Inside a template, making these kinds of adjustments is
5302 pointless; we are only concerned with the type of the
5303 expression. */
5304 if (processing_template_decl)
5305 return NULL_TREE;
5306
5307 /* Handle (a, b) used as an "lvalue". */
5308 if (TREE_CODE (arg) == COMPOUND_EXPR)
5309 {
5310 tree real_result = cp_build_unary_op (code, TREE_OPERAND (arg, 1), 0,
5311 tf_warning_or_error);
5312 return build2 (COMPOUND_EXPR, TREE_TYPE (real_result),
5313 TREE_OPERAND (arg, 0), real_result);
5314 }
5315
5316 /* Handle (a ? b : c) used as an "lvalue". */
5317 if (TREE_CODE (arg) == COND_EXPR
5318 || TREE_CODE (arg) == MIN_EXPR || TREE_CODE (arg) == MAX_EXPR)
5319 return rationalize_conditional_expr (code, arg, tf_warning_or_error);
5320
5321 /* Handle (a = b), (++a), and (--a) used as an "lvalue". */
5322 if (TREE_CODE (arg) == MODIFY_EXPR
5323 || TREE_CODE (arg) == PREINCREMENT_EXPR
5324 || TREE_CODE (arg) == PREDECREMENT_EXPR)
5325 {
5326 tree lvalue = TREE_OPERAND (arg, 0);
5327 if (TREE_SIDE_EFFECTS (lvalue))
5328 {
5329 lvalue = stabilize_reference (lvalue);
5330 arg = build2 (TREE_CODE (arg), TREE_TYPE (arg),
5331 lvalue, TREE_OPERAND (arg, 1));
5332 }
5333 return unary_complex_lvalue
5334 (code, build2 (COMPOUND_EXPR, TREE_TYPE (lvalue), arg, lvalue));
5335 }
5336
5337 if (code != ADDR_EXPR)
5338 return NULL_TREE;
5339
5340 /* Handle (a = b) used as an "lvalue" for `&'. */
5341 if (TREE_CODE (arg) == MODIFY_EXPR
5342 || TREE_CODE (arg) == INIT_EXPR)
5343 {
5344 tree real_result = cp_build_unary_op (code, TREE_OPERAND (arg, 0), 0,
5345 tf_warning_or_error);
5346 arg = build2 (COMPOUND_EXPR, TREE_TYPE (real_result),
5347 arg, real_result);
5348 TREE_NO_WARNING (arg) = 1;
5349 return arg;
5350 }
5351
5352 if (TREE_CODE (TREE_TYPE (arg)) == FUNCTION_TYPE
5353 || TREE_CODE (TREE_TYPE (arg)) == METHOD_TYPE
5354 || TREE_CODE (arg) == OFFSET_REF)
5355 return NULL_TREE;
5356
5357 /* We permit compiler to make function calls returning
5358 objects of aggregate type look like lvalues. */
5359 {
5360 tree targ = arg;
5361
5362 if (TREE_CODE (targ) == SAVE_EXPR)
5363 targ = TREE_OPERAND (targ, 0);
5364
5365 if (TREE_CODE (targ) == CALL_EXPR && MAYBE_CLASS_TYPE_P (TREE_TYPE (targ)))
5366 {
5367 if (TREE_CODE (arg) == SAVE_EXPR)
5368 targ = arg;
5369 else
5370 targ = build_cplus_new (TREE_TYPE (arg), arg);
5371 return build1 (ADDR_EXPR, build_pointer_type (TREE_TYPE (arg)), targ);
5372 }
5373
5374 if (TREE_CODE (arg) == SAVE_EXPR && TREE_CODE (targ) == INDIRECT_REF)
5375 return build3 (SAVE_EXPR, build_pointer_type (TREE_TYPE (arg)),
5376 TREE_OPERAND (targ, 0), current_function_decl, NULL);
5377 }
5378
5379 /* Don't let anything else be handled specially. */
5380 return NULL_TREE;
5381 }
5382 \f
5383 /* Mark EXP saying that we need to be able to take the
5384 address of it; it should not be allocated in a register.
5385 Value is true if successful.
5386
5387 C++: we do not allow `current_class_ptr' to be addressable. */
5388
5389 bool
5390 cxx_mark_addressable (tree exp)
5391 {
5392 tree x = exp;
5393
5394 while (1)
5395 switch (TREE_CODE (x))
5396 {
5397 case ADDR_EXPR:
5398 case COMPONENT_REF:
5399 case ARRAY_REF:
5400 case REALPART_EXPR:
5401 case IMAGPART_EXPR:
5402 x = TREE_OPERAND (x, 0);
5403 break;
5404
5405 case PARM_DECL:
5406 if (x == current_class_ptr)
5407 {
5408 error ("cannot take the address of %<this%>, which is an rvalue expression");
5409 TREE_ADDRESSABLE (x) = 1; /* so compiler doesn't die later. */
5410 return true;
5411 }
5412 /* Fall through. */
5413
5414 case VAR_DECL:
5415 /* Caller should not be trying to mark initialized
5416 constant fields addressable. */
5417 gcc_assert (DECL_LANG_SPECIFIC (x) == 0
5418 || DECL_IN_AGGR_P (x) == 0
5419 || TREE_STATIC (x)
5420 || DECL_EXTERNAL (x));
5421 /* Fall through. */
5422
5423 case CONST_DECL:
5424 case RESULT_DECL:
5425 if (DECL_REGISTER (x) && !TREE_ADDRESSABLE (x)
5426 && !DECL_ARTIFICIAL (x))
5427 {
5428 if (TREE_CODE (x) == VAR_DECL && DECL_HARD_REGISTER (x))
5429 {
5430 error
5431 ("address of explicit register variable %qD requested", x);
5432 return false;
5433 }
5434 else if (extra_warnings)
5435 warning
5436 (OPT_Wextra, "address requested for %qD, which is declared %<register%>", x);
5437 }
5438 TREE_ADDRESSABLE (x) = 1;
5439 return true;
5440
5441 case FUNCTION_DECL:
5442 TREE_ADDRESSABLE (x) = 1;
5443 return true;
5444
5445 case CONSTRUCTOR:
5446 TREE_ADDRESSABLE (x) = 1;
5447 return true;
5448
5449 case TARGET_EXPR:
5450 TREE_ADDRESSABLE (x) = 1;
5451 cxx_mark_addressable (TREE_OPERAND (x, 0));
5452 return true;
5453
5454 default:
5455 return true;
5456 }
5457 }
5458 \f
5459 /* Build and return a conditional expression IFEXP ? OP1 : OP2. */
5460
5461 tree
5462 build_x_conditional_expr (tree ifexp, tree op1, tree op2,
5463 tsubst_flags_t complain)
5464 {
5465 tree orig_ifexp = ifexp;
5466 tree orig_op1 = op1;
5467 tree orig_op2 = op2;
5468 tree expr;
5469
5470 if (processing_template_decl)
5471 {
5472 /* The standard says that the expression is type-dependent if
5473 IFEXP is type-dependent, even though the eventual type of the
5474 expression doesn't dependent on IFEXP. */
5475 if (type_dependent_expression_p (ifexp)
5476 /* As a GNU extension, the middle operand may be omitted. */
5477 || (op1 && type_dependent_expression_p (op1))
5478 || type_dependent_expression_p (op2))
5479 return build_min_nt (COND_EXPR, ifexp, op1, op2);
5480 ifexp = build_non_dependent_expr (ifexp);
5481 if (op1)
5482 op1 = build_non_dependent_expr (op1);
5483 op2 = build_non_dependent_expr (op2);
5484 }
5485
5486 expr = build_conditional_expr (ifexp, op1, op2, complain);
5487 if (processing_template_decl && expr != error_mark_node)
5488 return build_min_non_dep (COND_EXPR, expr,
5489 orig_ifexp, orig_op1, orig_op2);
5490 return expr;
5491 }
5492 \f
5493 /* Given a list of expressions, return a compound expression
5494 that performs them all and returns the value of the last of them. */
5495
5496 tree
5497 build_x_compound_expr_from_list (tree list, expr_list_kind exp,
5498 tsubst_flags_t complain)
5499 {
5500 tree expr = TREE_VALUE (list);
5501
5502 if (TREE_CHAIN (list))
5503 {
5504 if (complain & tf_error)
5505 switch (exp)
5506 {
5507 case ELK_INIT:
5508 permerror (input_location, "expression list treated as compound "
5509 "expression in initializer");
5510 break;
5511 case ELK_MEM_INIT:
5512 permerror (input_location, "expression list treated as compound "
5513 "expression in mem-initializer");
5514 break;
5515 case ELK_FUNC_CAST:
5516 permerror (input_location, "expression list treated as compound "
5517 "expression in functional cast");
5518 break;
5519 default:
5520 gcc_unreachable ();
5521 }
5522
5523 for (list = TREE_CHAIN (list); list; list = TREE_CHAIN (list))
5524 expr = build_x_compound_expr (expr, TREE_VALUE (list),
5525 complain);
5526 }
5527
5528 return expr;
5529 }
5530
5531 /* Like build_x_compound_expr_from_list, but using a VEC. */
5532
5533 tree
5534 build_x_compound_expr_from_vec (VEC(tree,gc) *vec, const char *msg)
5535 {
5536 if (VEC_empty (tree, vec))
5537 return NULL_TREE;
5538 else if (VEC_length (tree, vec) == 1)
5539 return VEC_index (tree, vec, 0);
5540 else
5541 {
5542 tree expr;
5543 unsigned int ix;
5544 tree t;
5545
5546 if (msg != NULL)
5547 permerror (input_location,
5548 "%s expression list treated as compound expression",
5549 msg);
5550
5551 expr = VEC_index (tree, vec, 0);
5552 for (ix = 1; VEC_iterate (tree, vec, ix, t); ++ix)
5553 expr = build_x_compound_expr (expr, t, tf_warning_or_error);
5554
5555 return expr;
5556 }
5557 }
5558
5559 /* Handle overloading of the ',' operator when needed. */
5560
5561 tree
5562 build_x_compound_expr (tree op1, tree op2, tsubst_flags_t complain)
5563 {
5564 tree result;
5565 tree orig_op1 = op1;
5566 tree orig_op2 = op2;
5567
5568 if (processing_template_decl)
5569 {
5570 if (type_dependent_expression_p (op1)
5571 || type_dependent_expression_p (op2))
5572 return build_min_nt (COMPOUND_EXPR, op1, op2);
5573 op1 = build_non_dependent_expr (op1);
5574 op2 = build_non_dependent_expr (op2);
5575 }
5576
5577 result = build_new_op (COMPOUND_EXPR, LOOKUP_NORMAL, op1, op2, NULL_TREE,
5578 /*overloaded_p=*/NULL, complain);
5579 if (!result)
5580 result = cp_build_compound_expr (op1, op2, complain);
5581
5582 if (processing_template_decl && result != error_mark_node)
5583 return build_min_non_dep (COMPOUND_EXPR, result, orig_op1, orig_op2);
5584
5585 return result;
5586 }
5587
5588 /* Like cp_build_compound_expr, but for the c-common bits. */
5589
5590 tree
5591 build_compound_expr (location_t loc ATTRIBUTE_UNUSED, tree lhs, tree rhs)
5592 {
5593 return cp_build_compound_expr (lhs, rhs, tf_warning_or_error);
5594 }
5595
5596 /* Build a compound expression. */
5597
5598 tree
5599 cp_build_compound_expr (tree lhs, tree rhs, tsubst_flags_t complain)
5600 {
5601 lhs = convert_to_void (lhs, ICV_LEFT_OF_COMMA, complain);
5602
5603 if (lhs == error_mark_node || rhs == error_mark_node)
5604 return error_mark_node;
5605
5606 if (TREE_CODE (rhs) == TARGET_EXPR)
5607 {
5608 /* If the rhs is a TARGET_EXPR, then build the compound
5609 expression inside the target_expr's initializer. This
5610 helps the compiler to eliminate unnecessary temporaries. */
5611 tree init = TREE_OPERAND (rhs, 1);
5612
5613 init = build2 (COMPOUND_EXPR, TREE_TYPE (init), lhs, init);
5614 TREE_OPERAND (rhs, 1) = init;
5615
5616 return rhs;
5617 }
5618
5619 if (type_unknown_p (rhs))
5620 {
5621 error ("no context to resolve type of %qE", rhs);
5622 return error_mark_node;
5623 }
5624
5625 return build2 (COMPOUND_EXPR, TREE_TYPE (rhs), lhs, rhs);
5626 }
5627
5628 /* Issue a diagnostic message if casting from SRC_TYPE to DEST_TYPE
5629 casts away constness. CAST gives the type of cast.
5630
5631 ??? This function warns for casting away any qualifier not just
5632 const. We would like to specify exactly what qualifiers are casted
5633 away.
5634 */
5635
5636 static void
5637 check_for_casting_away_constness (tree src_type, tree dest_type,
5638 enum tree_code cast)
5639 {
5640 /* C-style casts are allowed to cast away constness. With
5641 WARN_CAST_QUAL, we still want to issue a warning. */
5642 if (cast == CAST_EXPR && !warn_cast_qual)
5643 return;
5644
5645 if (!casts_away_constness (src_type, dest_type))
5646 return;
5647
5648 switch (cast)
5649 {
5650 case CAST_EXPR:
5651 warning (OPT_Wcast_qual,
5652 "cast from type %qT to type %qT casts away qualifiers",
5653 src_type, dest_type);
5654 return;
5655
5656 case STATIC_CAST_EXPR:
5657 error ("static_cast from type %qT to type %qT casts away qualifiers",
5658 src_type, dest_type);
5659 return;
5660
5661 case REINTERPRET_CAST_EXPR:
5662 error ("reinterpret_cast from type %qT to type %qT casts away qualifiers",
5663 src_type, dest_type);
5664 return;
5665 default:
5666 gcc_unreachable();
5667 }
5668 }
5669
5670 /* Convert EXPR (an expression with pointer-to-member type) to TYPE
5671 (another pointer-to-member type in the same hierarchy) and return
5672 the converted expression. If ALLOW_INVERSE_P is permitted, a
5673 pointer-to-derived may be converted to pointer-to-base; otherwise,
5674 only the other direction is permitted. If C_CAST_P is true, this
5675 conversion is taking place as part of a C-style cast. */
5676
5677 tree
5678 convert_ptrmem (tree type, tree expr, bool allow_inverse_p,
5679 bool c_cast_p, tsubst_flags_t complain)
5680 {
5681 if (TYPE_PTRMEM_P (type))
5682 {
5683 tree delta;
5684
5685 if (TREE_CODE (expr) == PTRMEM_CST)
5686 expr = cplus_expand_constant (expr);
5687 delta = get_delta_difference (TYPE_PTRMEM_CLASS_TYPE (TREE_TYPE (expr)),
5688 TYPE_PTRMEM_CLASS_TYPE (type),
5689 allow_inverse_p,
5690 c_cast_p, complain);
5691 if (delta == error_mark_node)
5692 return error_mark_node;
5693
5694 if (!integer_zerop (delta))
5695 {
5696 tree cond, op1, op2;
5697
5698 cond = cp_build_binary_op (input_location,
5699 EQ_EXPR,
5700 expr,
5701 build_int_cst (TREE_TYPE (expr), -1),
5702 tf_warning_or_error);
5703 op1 = build_nop (ptrdiff_type_node, expr);
5704 op2 = cp_build_binary_op (input_location,
5705 PLUS_EXPR, op1, delta,
5706 tf_warning_or_error);
5707
5708 expr = fold_build3_loc (input_location,
5709 COND_EXPR, ptrdiff_type_node, cond, op1, op2);
5710
5711 }
5712
5713 return build_nop (type, expr);
5714 }
5715 else
5716 return build_ptrmemfunc (TYPE_PTRMEMFUNC_FN_TYPE (type), expr,
5717 allow_inverse_p, c_cast_p, complain);
5718 }
5719
5720 /* If EXPR is an INTEGER_CST and ORIG is an arithmetic constant, return
5721 a version of EXPR that has TREE_OVERFLOW set if it is set in ORIG.
5722 Otherwise, return EXPR unchanged. */
5723
5724 static tree
5725 ignore_overflows (tree expr, tree orig)
5726 {
5727 if (TREE_CODE (expr) == INTEGER_CST
5728 && CONSTANT_CLASS_P (orig)
5729 && TREE_CODE (orig) != STRING_CST
5730 && TREE_OVERFLOW (expr) != TREE_OVERFLOW (orig))
5731 {
5732 if (!TREE_OVERFLOW (orig))
5733 /* Ensure constant sharing. */
5734 expr = build_int_cst_wide (TREE_TYPE (expr),
5735 TREE_INT_CST_LOW (expr),
5736 TREE_INT_CST_HIGH (expr));
5737 else
5738 {
5739 /* Avoid clobbering a shared constant. */
5740 expr = copy_node (expr);
5741 TREE_OVERFLOW (expr) = TREE_OVERFLOW (orig);
5742 }
5743 }
5744 return expr;
5745 }
5746
5747 /* Perform a static_cast from EXPR to TYPE. When C_CAST_P is true,
5748 this static_cast is being attempted as one of the possible casts
5749 allowed by a C-style cast. (In that case, accessibility of base
5750 classes is not considered, and it is OK to cast away
5751 constness.) Return the result of the cast. *VALID_P is set to
5752 indicate whether or not the cast was valid. */
5753
5754 static tree
5755 build_static_cast_1 (tree type, tree expr, bool c_cast_p,
5756 bool *valid_p, tsubst_flags_t complain)
5757 {
5758 tree intype;
5759 tree result;
5760 tree orig;
5761
5762 /* Assume the cast is valid. */
5763 *valid_p = true;
5764
5765 intype = TREE_TYPE (expr);
5766
5767 /* Save casted types in the function's used types hash table. */
5768 used_types_insert (type);
5769
5770 /* [expr.static.cast]
5771
5772 An lvalue of type "cv1 B", where B is a class type, can be cast
5773 to type "reference to cv2 D", where D is a class derived (clause
5774 _class.derived_) from B, if a valid standard conversion from
5775 "pointer to D" to "pointer to B" exists (_conv.ptr_), cv2 is the
5776 same cv-qualification as, or greater cv-qualification than, cv1,
5777 and B is not a virtual base class of D. */
5778 /* We check this case before checking the validity of "TYPE t =
5779 EXPR;" below because for this case:
5780
5781 struct B {};
5782 struct D : public B { D(const B&); };
5783 extern B& b;
5784 void f() { static_cast<const D&>(b); }
5785
5786 we want to avoid constructing a new D. The standard is not
5787 completely clear about this issue, but our interpretation is
5788 consistent with other compilers. */
5789 if (TREE_CODE (type) == REFERENCE_TYPE
5790 && CLASS_TYPE_P (TREE_TYPE (type))
5791 && CLASS_TYPE_P (intype)
5792 && (TYPE_REF_IS_RVALUE (type) || real_lvalue_p (expr))
5793 && DERIVED_FROM_P (intype, TREE_TYPE (type))
5794 && can_convert (build_pointer_type (TYPE_MAIN_VARIANT (intype)),
5795 build_pointer_type (TYPE_MAIN_VARIANT
5796 (TREE_TYPE (type))))
5797 && (c_cast_p
5798 || at_least_as_qualified_p (TREE_TYPE (type), intype)))
5799 {
5800 tree base;
5801
5802 /* There is a standard conversion from "D*" to "B*" even if "B"
5803 is ambiguous or inaccessible. If this is really a
5804 static_cast, then we check both for inaccessibility and
5805 ambiguity. However, if this is a static_cast being performed
5806 because the user wrote a C-style cast, then accessibility is
5807 not considered. */
5808 base = lookup_base (TREE_TYPE (type), intype,
5809 c_cast_p ? ba_unique : ba_check,
5810 NULL);
5811
5812 /* Convert from "B*" to "D*". This function will check that "B"
5813 is not a virtual base of "D". */
5814 expr = build_base_path (MINUS_EXPR, build_address (expr),
5815 base, /*nonnull=*/false);
5816 /* Convert the pointer to a reference -- but then remember that
5817 there are no expressions with reference type in C++. */
5818 return convert_from_reference (cp_fold_convert (type, expr));
5819 }
5820
5821 /* "An lvalue of type cv1 T1 can be cast to type rvalue reference to
5822 cv2 T2 if cv2 T2 is reference-compatible with cv1 T1 (8.5.3)." */
5823 if (TREE_CODE (type) == REFERENCE_TYPE
5824 && TYPE_REF_IS_RVALUE (type)
5825 && real_lvalue_p (expr)
5826 && reference_related_p (TREE_TYPE (type), intype)
5827 && (c_cast_p || at_least_as_qualified_p (TREE_TYPE (type), intype)))
5828 {
5829 expr = build_typed_address (expr, type);
5830 return convert_from_reference (expr);
5831 }
5832
5833 orig = expr;
5834
5835 /* Resolve overloaded address here rather than once in
5836 implicit_conversion and again in the inverse code below. */
5837 if (TYPE_PTRMEMFUNC_P (type) && type_unknown_p (expr))
5838 {
5839 expr = instantiate_type (type, expr, complain);
5840 intype = TREE_TYPE (expr);
5841 }
5842
5843 /* [expr.static.cast]
5844
5845 An expression e can be explicitly converted to a type T using a
5846 static_cast of the form static_cast<T>(e) if the declaration T
5847 t(e);" is well-formed, for some invented temporary variable
5848 t. */
5849 result = perform_direct_initialization_if_possible (type, expr,
5850 c_cast_p, complain);
5851 if (result)
5852 {
5853 result = convert_from_reference (result);
5854
5855 /* Ignore any integer overflow caused by the cast. */
5856 result = ignore_overflows (result, orig);
5857
5858 /* [expr.static.cast]
5859
5860 If T is a reference type, the result is an lvalue; otherwise,
5861 the result is an rvalue. */
5862 if (TREE_CODE (type) != REFERENCE_TYPE)
5863 result = rvalue (result);
5864 return result;
5865 }
5866
5867 /* [expr.static.cast]
5868
5869 Any expression can be explicitly converted to type cv void. */
5870 if (TREE_CODE (type) == VOID_TYPE)
5871 return convert_to_void (expr, ICV_CAST, complain);
5872
5873 /* [expr.static.cast]
5874
5875 The inverse of any standard conversion sequence (clause _conv_),
5876 other than the lvalue-to-rvalue (_conv.lval_), array-to-pointer
5877 (_conv.array_), function-to-pointer (_conv.func_), and boolean
5878 (_conv.bool_) conversions, can be performed explicitly using
5879 static_cast subject to the restriction that the explicit
5880 conversion does not cast away constness (_expr.const.cast_), and
5881 the following additional rules for specific cases: */
5882 /* For reference, the conversions not excluded are: integral
5883 promotions, floating point promotion, integral conversions,
5884 floating point conversions, floating-integral conversions,
5885 pointer conversions, and pointer to member conversions. */
5886 /* DR 128
5887
5888 A value of integral _or enumeration_ type can be explicitly
5889 converted to an enumeration type. */
5890 /* The effect of all that is that any conversion between any two
5891 types which are integral, floating, or enumeration types can be
5892 performed. */
5893 if ((INTEGRAL_OR_ENUMERATION_TYPE_P (type)
5894 || SCALAR_FLOAT_TYPE_P (type))
5895 && (INTEGRAL_OR_ENUMERATION_TYPE_P (intype)
5896 || SCALAR_FLOAT_TYPE_P (intype)))
5897 {
5898 expr = ocp_convert (type, expr, CONV_C_CAST, LOOKUP_NORMAL);
5899
5900 /* Ignore any integer overflow caused by the cast. */
5901 expr = ignore_overflows (expr, orig);
5902 return expr;
5903 }
5904
5905 if (TYPE_PTR_P (type) && TYPE_PTR_P (intype)
5906 && CLASS_TYPE_P (TREE_TYPE (type))
5907 && CLASS_TYPE_P (TREE_TYPE (intype))
5908 && can_convert (build_pointer_type (TYPE_MAIN_VARIANT
5909 (TREE_TYPE (intype))),
5910 build_pointer_type (TYPE_MAIN_VARIANT
5911 (TREE_TYPE (type)))))
5912 {
5913 tree base;
5914
5915 if (!c_cast_p)
5916 check_for_casting_away_constness (intype, type, STATIC_CAST_EXPR);
5917 base = lookup_base (TREE_TYPE (type), TREE_TYPE (intype),
5918 c_cast_p ? ba_unique : ba_check,
5919 NULL);
5920 return build_base_path (MINUS_EXPR, expr, base, /*nonnull=*/false);
5921 }
5922
5923 if ((TYPE_PTRMEM_P (type) && TYPE_PTRMEM_P (intype))
5924 || (TYPE_PTRMEMFUNC_P (type) && TYPE_PTRMEMFUNC_P (intype)))
5925 {
5926 tree c1;
5927 tree c2;
5928 tree t1;
5929 tree t2;
5930
5931 c1 = TYPE_PTRMEM_CLASS_TYPE (intype);
5932 c2 = TYPE_PTRMEM_CLASS_TYPE (type);
5933
5934 if (TYPE_PTRMEM_P (type))
5935 {
5936 t1 = (build_ptrmem_type
5937 (c1,
5938 TYPE_MAIN_VARIANT (TYPE_PTRMEM_POINTED_TO_TYPE (intype))));
5939 t2 = (build_ptrmem_type
5940 (c2,
5941 TYPE_MAIN_VARIANT (TYPE_PTRMEM_POINTED_TO_TYPE (type))));
5942 }
5943 else
5944 {
5945 t1 = intype;
5946 t2 = type;
5947 }
5948 if (can_convert (t1, t2) || can_convert (t2, t1))
5949 {
5950 if (!c_cast_p)
5951 check_for_casting_away_constness (intype, type, STATIC_CAST_EXPR);
5952 return convert_ptrmem (type, expr, /*allow_inverse_p=*/1,
5953 c_cast_p, tf_warning_or_error);
5954 }
5955 }
5956
5957 /* [expr.static.cast]
5958
5959 An rvalue of type "pointer to cv void" can be explicitly
5960 converted to a pointer to object type. A value of type pointer
5961 to object converted to "pointer to cv void" and back to the
5962 original pointer type will have its original value. */
5963 if (TREE_CODE (intype) == POINTER_TYPE
5964 && VOID_TYPE_P (TREE_TYPE (intype))
5965 && TYPE_PTROB_P (type))
5966 {
5967 if (!c_cast_p)
5968 check_for_casting_away_constness (intype, type, STATIC_CAST_EXPR);
5969 return build_nop (type, expr);
5970 }
5971
5972 *valid_p = false;
5973 return error_mark_node;
5974 }
5975
5976 /* Return an expression representing static_cast<TYPE>(EXPR). */
5977
5978 tree
5979 build_static_cast (tree type, tree expr, tsubst_flags_t complain)
5980 {
5981 tree result;
5982 bool valid_p;
5983
5984 if (type == error_mark_node || expr == error_mark_node)
5985 return error_mark_node;
5986
5987 if (processing_template_decl)
5988 {
5989 expr = build_min (STATIC_CAST_EXPR, type, expr);
5990 /* We don't know if it will or will not have side effects. */
5991 TREE_SIDE_EFFECTS (expr) = 1;
5992 return convert_from_reference (expr);
5993 }
5994
5995 /* build_c_cast puts on a NOP_EXPR to make the result not an lvalue.
5996 Strip such NOP_EXPRs if VALUE is being used in non-lvalue context. */
5997 if (TREE_CODE (type) != REFERENCE_TYPE
5998 && TREE_CODE (expr) == NOP_EXPR
5999 && TREE_TYPE (expr) == TREE_TYPE (TREE_OPERAND (expr, 0)))
6000 expr = TREE_OPERAND (expr, 0);
6001
6002 result = build_static_cast_1 (type, expr, /*c_cast_p=*/false, &valid_p,
6003 complain);
6004 if (valid_p)
6005 return result;
6006
6007 if (complain & tf_error)
6008 error ("invalid static_cast from type %qT to type %qT",
6009 TREE_TYPE (expr), type);
6010 return error_mark_node;
6011 }
6012
6013 /* EXPR is an expression with member function or pointer-to-member
6014 function type. TYPE is a pointer type. Converting EXPR to TYPE is
6015 not permitted by ISO C++, but we accept it in some modes. If we
6016 are not in one of those modes, issue a diagnostic. Return the
6017 converted expression. */
6018
6019 tree
6020 convert_member_func_to_ptr (tree type, tree expr)
6021 {
6022 tree intype;
6023 tree decl;
6024
6025 intype = TREE_TYPE (expr);
6026 gcc_assert (TYPE_PTRMEMFUNC_P (intype)
6027 || TREE_CODE (intype) == METHOD_TYPE);
6028
6029 if (pedantic || warn_pmf2ptr)
6030 pedwarn (input_location, pedantic ? OPT_pedantic : OPT_Wpmf_conversions,
6031 "converting from %qT to %qT", intype, type);
6032
6033 if (TREE_CODE (intype) == METHOD_TYPE)
6034 expr = build_addr_func (expr);
6035 else if (TREE_CODE (expr) == PTRMEM_CST)
6036 expr = build_address (PTRMEM_CST_MEMBER (expr));
6037 else
6038 {
6039 decl = maybe_dummy_object (TYPE_PTRMEM_CLASS_TYPE (intype), 0);
6040 decl = build_address (decl);
6041 expr = get_member_function_from_ptrfunc (&decl, expr);
6042 }
6043
6044 return build_nop (type, expr);
6045 }
6046
6047 /* Return a representation for a reinterpret_cast from EXPR to TYPE.
6048 If C_CAST_P is true, this reinterpret cast is being done as part of
6049 a C-style cast. If VALID_P is non-NULL, *VALID_P is set to
6050 indicate whether or not reinterpret_cast was valid. */
6051
6052 static tree
6053 build_reinterpret_cast_1 (tree type, tree expr, bool c_cast_p,
6054 bool *valid_p, tsubst_flags_t complain)
6055 {
6056 tree intype;
6057
6058 /* Assume the cast is invalid. */
6059 if (valid_p)
6060 *valid_p = true;
6061
6062 if (type == error_mark_node || error_operand_p (expr))
6063 return error_mark_node;
6064
6065 intype = TREE_TYPE (expr);
6066
6067 /* Save casted types in the function's used types hash table. */
6068 used_types_insert (type);
6069
6070 /* [expr.reinterpret.cast]
6071 An lvalue expression of type T1 can be cast to the type
6072 "reference to T2" if an expression of type "pointer to T1" can be
6073 explicitly converted to the type "pointer to T2" using a
6074 reinterpret_cast. */
6075 if (TREE_CODE (type) == REFERENCE_TYPE)
6076 {
6077 if (! real_lvalue_p (expr))
6078 {
6079 if (complain & tf_error)
6080 error ("invalid cast of an rvalue expression of type "
6081 "%qT to type %qT",
6082 intype, type);
6083 return error_mark_node;
6084 }
6085
6086 /* Warn about a reinterpret_cast from "A*" to "B&" if "A" and
6087 "B" are related class types; the reinterpret_cast does not
6088 adjust the pointer. */
6089 if (TYPE_PTR_P (intype)
6090 && (complain & tf_warning)
6091 && (comptypes (TREE_TYPE (intype), TREE_TYPE (type),
6092 COMPARE_BASE | COMPARE_DERIVED)))
6093 warning (0, "casting %qT to %qT does not dereference pointer",
6094 intype, type);
6095
6096 expr = cp_build_addr_expr (expr, complain);
6097
6098 if (warn_strict_aliasing > 2)
6099 strict_aliasing_warning (TREE_TYPE (expr), type, expr);
6100
6101 if (expr != error_mark_node)
6102 expr = build_reinterpret_cast_1
6103 (build_pointer_type (TREE_TYPE (type)), expr, c_cast_p,
6104 valid_p, complain);
6105 if (expr != error_mark_node)
6106 /* cp_build_indirect_ref isn't right for rvalue refs. */
6107 expr = convert_from_reference (fold_convert (type, expr));
6108 return expr;
6109 }
6110
6111 /* As a G++ extension, we consider conversions from member
6112 functions, and pointers to member functions to
6113 pointer-to-function and pointer-to-void types. If
6114 -Wno-pmf-conversions has not been specified,
6115 convert_member_func_to_ptr will issue an error message. */
6116 if ((TYPE_PTRMEMFUNC_P (intype)
6117 || TREE_CODE (intype) == METHOD_TYPE)
6118 && TYPE_PTR_P (type)
6119 && (TREE_CODE (TREE_TYPE (type)) == FUNCTION_TYPE
6120 || VOID_TYPE_P (TREE_TYPE (type))))
6121 return convert_member_func_to_ptr (type, expr);
6122
6123 /* If the cast is not to a reference type, the lvalue-to-rvalue,
6124 array-to-pointer, and function-to-pointer conversions are
6125 performed. */
6126 expr = decay_conversion (expr);
6127
6128 /* build_c_cast puts on a NOP_EXPR to make the result not an lvalue.
6129 Strip such NOP_EXPRs if VALUE is being used in non-lvalue context. */
6130 if (TREE_CODE (expr) == NOP_EXPR
6131 && TREE_TYPE (expr) == TREE_TYPE (TREE_OPERAND (expr, 0)))
6132 expr = TREE_OPERAND (expr, 0);
6133
6134 if (error_operand_p (expr))
6135 return error_mark_node;
6136
6137 intype = TREE_TYPE (expr);
6138
6139 /* [expr.reinterpret.cast]
6140 A pointer can be converted to any integral type large enough to
6141 hold it. ... A value of type std::nullptr_t can be converted to
6142 an integral type; the conversion has the same meaning and
6143 validity as a conversion of (void*)0 to the integral type. */
6144 if (CP_INTEGRAL_TYPE_P (type)
6145 && (TYPE_PTR_P (intype) || NULLPTR_TYPE_P (intype)))
6146 {
6147 if (TYPE_PRECISION (type) < TYPE_PRECISION (intype))
6148 {
6149 if (complain & tf_error)
6150 permerror (input_location, "cast from %qT to %qT loses precision",
6151 intype, type);
6152 else
6153 return error_mark_node;
6154 }
6155 if (NULLPTR_TYPE_P (intype))
6156 return build_int_cst (type, 0);
6157 }
6158 /* [expr.reinterpret.cast]
6159 A value of integral or enumeration type can be explicitly
6160 converted to a pointer. */
6161 else if (TYPE_PTR_P (type) && INTEGRAL_OR_ENUMERATION_TYPE_P (intype))
6162 /* OK */
6163 ;
6164 else if ((TYPE_PTRFN_P (type) && TYPE_PTRFN_P (intype))
6165 || (TYPE_PTRMEMFUNC_P (type) && TYPE_PTRMEMFUNC_P (intype)))
6166 return fold_if_not_in_template (build_nop (type, expr));
6167 else if ((TYPE_PTRMEM_P (type) && TYPE_PTRMEM_P (intype))
6168 || (TYPE_PTROBV_P (type) && TYPE_PTROBV_P (intype)))
6169 {
6170 tree sexpr = expr;
6171
6172 if (!c_cast_p)
6173 check_for_casting_away_constness (intype, type, REINTERPRET_CAST_EXPR);
6174 /* Warn about possible alignment problems. */
6175 if (STRICT_ALIGNMENT && warn_cast_align
6176 && (complain & tf_warning)
6177 && !VOID_TYPE_P (type)
6178 && TREE_CODE (TREE_TYPE (intype)) != FUNCTION_TYPE
6179 && COMPLETE_TYPE_P (TREE_TYPE (type))
6180 && COMPLETE_TYPE_P (TREE_TYPE (intype))
6181 && TYPE_ALIGN (TREE_TYPE (type)) > TYPE_ALIGN (TREE_TYPE (intype)))
6182 warning (OPT_Wcast_align, "cast from %qT to %qT "
6183 "increases required alignment of target type", intype, type);
6184
6185 /* We need to strip nops here, because the front end likes to
6186 create (int *)&a for array-to-pointer decay, instead of &a[0]. */
6187 STRIP_NOPS (sexpr);
6188 if (warn_strict_aliasing <= 2)
6189 strict_aliasing_warning (intype, type, sexpr);
6190
6191 return fold_if_not_in_template (build_nop (type, expr));
6192 }
6193 else if ((TYPE_PTRFN_P (type) && TYPE_PTROBV_P (intype))
6194 || (TYPE_PTRFN_P (intype) && TYPE_PTROBV_P (type)))
6195 {
6196 if (pedantic && (complain & tf_warning))
6197 /* Only issue a warning, as we have always supported this
6198 where possible, and it is necessary in some cases. DR 195
6199 addresses this issue, but as of 2004/10/26 is still in
6200 drafting. */
6201 warning (0, "ISO C++ forbids casting between pointer-to-function and pointer-to-object");
6202 return fold_if_not_in_template (build_nop (type, expr));
6203 }
6204 else if (TREE_CODE (type) == VECTOR_TYPE)
6205 return fold_if_not_in_template (convert_to_vector (type, expr));
6206 else if (TREE_CODE (intype) == VECTOR_TYPE
6207 && INTEGRAL_OR_ENUMERATION_TYPE_P (type))
6208 return fold_if_not_in_template (convert_to_integer (type, expr));
6209 else
6210 {
6211 if (valid_p)
6212 *valid_p = false;
6213 if (complain & tf_error)
6214 error ("invalid cast from type %qT to type %qT", intype, type);
6215 return error_mark_node;
6216 }
6217
6218 return cp_convert (type, expr);
6219 }
6220
6221 tree
6222 build_reinterpret_cast (tree type, tree expr, tsubst_flags_t complain)
6223 {
6224 if (type == error_mark_node || expr == error_mark_node)
6225 return error_mark_node;
6226
6227 if (processing_template_decl)
6228 {
6229 tree t = build_min (REINTERPRET_CAST_EXPR, type, expr);
6230
6231 if (!TREE_SIDE_EFFECTS (t)
6232 && type_dependent_expression_p (expr))
6233 /* There might turn out to be side effects inside expr. */
6234 TREE_SIDE_EFFECTS (t) = 1;
6235 return convert_from_reference (t);
6236 }
6237
6238 return build_reinterpret_cast_1 (type, expr, /*c_cast_p=*/false,
6239 /*valid_p=*/NULL, complain);
6240 }
6241
6242 /* Perform a const_cast from EXPR to TYPE. If the cast is valid,
6243 return an appropriate expression. Otherwise, return
6244 error_mark_node. If the cast is not valid, and COMPLAIN is true,
6245 then a diagnostic will be issued. If VALID_P is non-NULL, we are
6246 performing a C-style cast, its value upon return will indicate
6247 whether or not the conversion succeeded. */
6248
6249 static tree
6250 build_const_cast_1 (tree dst_type, tree expr, bool complain,
6251 bool *valid_p)
6252 {
6253 tree src_type;
6254 tree reference_type;
6255
6256 /* Callers are responsible for handling error_mark_node as a
6257 destination type. */
6258 gcc_assert (dst_type != error_mark_node);
6259 /* In a template, callers should be building syntactic
6260 representations of casts, not using this machinery. */
6261 gcc_assert (!processing_template_decl);
6262
6263 /* Assume the conversion is invalid. */
6264 if (valid_p)
6265 *valid_p = false;
6266
6267 if (!POINTER_TYPE_P (dst_type) && !TYPE_PTRMEM_P (dst_type))
6268 {
6269 if (complain)
6270 error ("invalid use of const_cast with type %qT, "
6271 "which is not a pointer, "
6272 "reference, nor a pointer-to-data-member type", dst_type);
6273 return error_mark_node;
6274 }
6275
6276 if (TREE_CODE (TREE_TYPE (dst_type)) == FUNCTION_TYPE)
6277 {
6278 if (complain)
6279 error ("invalid use of const_cast with type %qT, which is a pointer "
6280 "or reference to a function type", dst_type);
6281 return error_mark_node;
6282 }
6283
6284 /* Save casted types in the function's used types hash table. */
6285 used_types_insert (dst_type);
6286
6287 src_type = TREE_TYPE (expr);
6288 /* Expressions do not really have reference types. */
6289 if (TREE_CODE (src_type) == REFERENCE_TYPE)
6290 src_type = TREE_TYPE (src_type);
6291
6292 /* [expr.const.cast]
6293
6294 An lvalue of type T1 can be explicitly converted to an lvalue of
6295 type T2 using the cast const_cast<T2&> (where T1 and T2 are object
6296 types) if a pointer to T1 can be explicitly converted to the type
6297 pointer to T2 using a const_cast. */
6298 if (TREE_CODE (dst_type) == REFERENCE_TYPE)
6299 {
6300 reference_type = dst_type;
6301 if (! real_lvalue_p (expr))
6302 {
6303 if (complain)
6304 error ("invalid const_cast of an rvalue of type %qT to type %qT",
6305 src_type, dst_type);
6306 return error_mark_node;
6307 }
6308 dst_type = build_pointer_type (TREE_TYPE (dst_type));
6309 src_type = build_pointer_type (src_type);
6310 }
6311 else
6312 {
6313 reference_type = NULL_TREE;
6314 /* If the destination type is not a reference type, the
6315 lvalue-to-rvalue, array-to-pointer, and function-to-pointer
6316 conversions are performed. */
6317 src_type = type_decays_to (src_type);
6318 if (src_type == error_mark_node)
6319 return error_mark_node;
6320 }
6321
6322 if ((TYPE_PTR_P (src_type) || TYPE_PTRMEM_P (src_type))
6323 && comp_ptr_ttypes_const (dst_type, src_type))
6324 {
6325 if (valid_p)
6326 {
6327 *valid_p = true;
6328 /* This cast is actually a C-style cast. Issue a warning if
6329 the user is making a potentially unsafe cast. */
6330 check_for_casting_away_constness (src_type, dst_type, CAST_EXPR);
6331 }
6332 if (reference_type)
6333 {
6334 expr = cp_build_addr_expr (expr,
6335 complain ? tf_warning_or_error : tf_none);
6336 expr = build_nop (reference_type, expr);
6337 return convert_from_reference (expr);
6338 }
6339 else
6340 {
6341 expr = decay_conversion (expr);
6342 /* build_c_cast puts on a NOP_EXPR to make the result not an
6343 lvalue. Strip such NOP_EXPRs if VALUE is being used in
6344 non-lvalue context. */
6345 if (TREE_CODE (expr) == NOP_EXPR
6346 && TREE_TYPE (expr) == TREE_TYPE (TREE_OPERAND (expr, 0)))
6347 expr = TREE_OPERAND (expr, 0);
6348 return build_nop (dst_type, expr);
6349 }
6350 }
6351
6352 if (complain)
6353 error ("invalid const_cast from type %qT to type %qT",
6354 src_type, dst_type);
6355 return error_mark_node;
6356 }
6357
6358 tree
6359 build_const_cast (tree type, tree expr, tsubst_flags_t complain)
6360 {
6361 if (type == error_mark_node || error_operand_p (expr))
6362 return error_mark_node;
6363
6364 if (processing_template_decl)
6365 {
6366 tree t = build_min (CONST_CAST_EXPR, type, expr);
6367
6368 if (!TREE_SIDE_EFFECTS (t)
6369 && type_dependent_expression_p (expr))
6370 /* There might turn out to be side effects inside expr. */
6371 TREE_SIDE_EFFECTS (t) = 1;
6372 return convert_from_reference (t);
6373 }
6374
6375 return build_const_cast_1 (type, expr, complain & tf_error,
6376 /*valid_p=*/NULL);
6377 }
6378
6379 /* Like cp_build_c_cast, but for the c-common bits. */
6380
6381 tree
6382 build_c_cast (location_t loc ATTRIBUTE_UNUSED, tree type, tree expr)
6383 {
6384 return cp_build_c_cast (type, expr, tf_warning_or_error);
6385 }
6386
6387 /* Build an expression representing an explicit C-style cast to type
6388 TYPE of expression EXPR. */
6389
6390 tree
6391 cp_build_c_cast (tree type, tree expr, tsubst_flags_t complain)
6392 {
6393 tree value = expr;
6394 tree result;
6395 bool valid_p;
6396
6397 if (type == error_mark_node || error_operand_p (expr))
6398 return error_mark_node;
6399
6400 if (processing_template_decl)
6401 {
6402 tree t = build_min (CAST_EXPR, type,
6403 tree_cons (NULL_TREE, value, NULL_TREE));
6404 /* We don't know if it will or will not have side effects. */
6405 TREE_SIDE_EFFECTS (t) = 1;
6406 return convert_from_reference (t);
6407 }
6408
6409 /* Casts to a (pointer to a) specific ObjC class (or 'id' or
6410 'Class') should always be retained, because this information aids
6411 in method lookup. */
6412 if (objc_is_object_ptr (type)
6413 && objc_is_object_ptr (TREE_TYPE (expr)))
6414 return build_nop (type, expr);
6415
6416 /* build_c_cast puts on a NOP_EXPR to make the result not an lvalue.
6417 Strip such NOP_EXPRs if VALUE is being used in non-lvalue context. */
6418 if (TREE_CODE (type) != REFERENCE_TYPE
6419 && TREE_CODE (value) == NOP_EXPR
6420 && TREE_TYPE (value) == TREE_TYPE (TREE_OPERAND (value, 0)))
6421 value = TREE_OPERAND (value, 0);
6422
6423 if (TREE_CODE (type) == ARRAY_TYPE)
6424 {
6425 /* Allow casting from T1* to T2[] because Cfront allows it.
6426 NIHCL uses it. It is not valid ISO C++ however. */
6427 if (TREE_CODE (TREE_TYPE (expr)) == POINTER_TYPE)
6428 {
6429 if (complain & tf_error)
6430 permerror (input_location, "ISO C++ forbids casting to an array type %qT", type);
6431 else
6432 return error_mark_node;
6433 type = build_pointer_type (TREE_TYPE (type));
6434 }
6435 else
6436 {
6437 if (complain & tf_error)
6438 error ("ISO C++ forbids casting to an array type %qT", type);
6439 return error_mark_node;
6440 }
6441 }
6442
6443 if (TREE_CODE (type) == FUNCTION_TYPE
6444 || TREE_CODE (type) == METHOD_TYPE)
6445 {
6446 if (complain & tf_error)
6447 error ("invalid cast to function type %qT", type);
6448 return error_mark_node;
6449 }
6450
6451 if (TREE_CODE (type) == POINTER_TYPE
6452 && TREE_CODE (TREE_TYPE (value)) == INTEGER_TYPE
6453 /* Casting to an integer of smaller size is an error detected elsewhere. */
6454 && TYPE_PRECISION (type) > TYPE_PRECISION (TREE_TYPE (value))
6455 /* Don't warn about converting any constant. */
6456 && !TREE_CONSTANT (value))
6457 warning_at (input_location, OPT_Wint_to_pointer_cast,
6458 "cast to pointer from integer of different size");
6459
6460 /* A C-style cast can be a const_cast. */
6461 result = build_const_cast_1 (type, value, /*complain=*/false,
6462 &valid_p);
6463 if (valid_p)
6464 return result;
6465
6466 /* Or a static cast. */
6467 result = build_static_cast_1 (type, value, /*c_cast_p=*/true,
6468 &valid_p, complain);
6469 /* Or a reinterpret_cast. */
6470 if (!valid_p)
6471 result = build_reinterpret_cast_1 (type, value, /*c_cast_p=*/true,
6472 &valid_p, complain);
6473 /* The static_cast or reinterpret_cast may be followed by a
6474 const_cast. */
6475 if (valid_p
6476 /* A valid cast may result in errors if, for example, a
6477 conversion to am ambiguous base class is required. */
6478 && !error_operand_p (result))
6479 {
6480 tree result_type;
6481
6482 /* Non-class rvalues always have cv-unqualified type. */
6483 if (!CLASS_TYPE_P (type))
6484 type = TYPE_MAIN_VARIANT (type);
6485 result_type = TREE_TYPE (result);
6486 if (!CLASS_TYPE_P (result_type))
6487 result_type = TYPE_MAIN_VARIANT (result_type);
6488 /* If the type of RESULT does not match TYPE, perform a
6489 const_cast to make it match. If the static_cast or
6490 reinterpret_cast succeeded, we will differ by at most
6491 cv-qualification, so the follow-on const_cast is guaranteed
6492 to succeed. */
6493 if (!same_type_p (non_reference (type), non_reference (result_type)))
6494 {
6495 result = build_const_cast_1 (type, result, false, &valid_p);
6496 gcc_assert (valid_p);
6497 }
6498 return result;
6499 }
6500
6501 return error_mark_node;
6502 }
6503 \f
6504 /* For use from the C common bits. */
6505 tree
6506 build_modify_expr (location_t location ATTRIBUTE_UNUSED,
6507 tree lhs, tree lhs_origtype ATTRIBUTE_UNUSED,
6508 enum tree_code modifycode,
6509 location_t rhs_location ATTRIBUTE_UNUSED, tree rhs,
6510 tree rhs_origtype ATTRIBUTE_UNUSED)
6511 {
6512 return cp_build_modify_expr (lhs, modifycode, rhs, tf_warning_or_error);
6513 }
6514
6515 /* Build an assignment expression of lvalue LHS from value RHS.
6516 MODIFYCODE is the code for a binary operator that we use
6517 to combine the old value of LHS with RHS to get the new value.
6518 Or else MODIFYCODE is NOP_EXPR meaning do a simple assignment.
6519
6520 C++: If MODIFYCODE is INIT_EXPR, then leave references unbashed. */
6521
6522 tree
6523 cp_build_modify_expr (tree lhs, enum tree_code modifycode, tree rhs,
6524 tsubst_flags_t complain)
6525 {
6526 tree result;
6527 tree newrhs = rhs;
6528 tree lhstype = TREE_TYPE (lhs);
6529 tree olhstype = lhstype;
6530 bool plain_assign = (modifycode == NOP_EXPR);
6531
6532 /* Avoid duplicate error messages from operands that had errors. */
6533 if (error_operand_p (lhs) || error_operand_p (rhs))
6534 return error_mark_node;
6535
6536 /* Handle control structure constructs used as "lvalues". */
6537 switch (TREE_CODE (lhs))
6538 {
6539 /* Handle --foo = 5; as these are valid constructs in C++. */
6540 case PREDECREMENT_EXPR:
6541 case PREINCREMENT_EXPR:
6542 if (TREE_SIDE_EFFECTS (TREE_OPERAND (lhs, 0)))
6543 lhs = build2 (TREE_CODE (lhs), TREE_TYPE (lhs),
6544 stabilize_reference (TREE_OPERAND (lhs, 0)),
6545 TREE_OPERAND (lhs, 1));
6546 newrhs = cp_build_modify_expr (TREE_OPERAND (lhs, 0),
6547 modifycode, rhs, complain);
6548 if (newrhs == error_mark_node)
6549 return error_mark_node;
6550 return build2 (COMPOUND_EXPR, lhstype, lhs, newrhs);
6551
6552 /* Handle (a, b) used as an "lvalue". */
6553 case COMPOUND_EXPR:
6554 newrhs = cp_build_modify_expr (TREE_OPERAND (lhs, 1),
6555 modifycode, rhs, complain);
6556 if (newrhs == error_mark_node)
6557 return error_mark_node;
6558 return build2 (COMPOUND_EXPR, lhstype,
6559 TREE_OPERAND (lhs, 0), newrhs);
6560
6561 case MODIFY_EXPR:
6562 if (TREE_SIDE_EFFECTS (TREE_OPERAND (lhs, 0)))
6563 lhs = build2 (TREE_CODE (lhs), TREE_TYPE (lhs),
6564 stabilize_reference (TREE_OPERAND (lhs, 0)),
6565 TREE_OPERAND (lhs, 1));
6566 newrhs = cp_build_modify_expr (TREE_OPERAND (lhs, 0), modifycode, rhs,
6567 complain);
6568 if (newrhs == error_mark_node)
6569 return error_mark_node;
6570 return build2 (COMPOUND_EXPR, lhstype, lhs, newrhs);
6571
6572 case MIN_EXPR:
6573 case MAX_EXPR:
6574 /* MIN_EXPR and MAX_EXPR are currently only permitted as lvalues,
6575 when neither operand has side-effects. */
6576 if (!lvalue_or_else (lhs, lv_assign, complain))
6577 return error_mark_node;
6578
6579 gcc_assert (!TREE_SIDE_EFFECTS (TREE_OPERAND (lhs, 0))
6580 && !TREE_SIDE_EFFECTS (TREE_OPERAND (lhs, 1)));
6581
6582 lhs = build3 (COND_EXPR, TREE_TYPE (lhs),
6583 build2 (TREE_CODE (lhs) == MIN_EXPR ? LE_EXPR : GE_EXPR,
6584 boolean_type_node,
6585 TREE_OPERAND (lhs, 0),
6586 TREE_OPERAND (lhs, 1)),
6587 TREE_OPERAND (lhs, 0),
6588 TREE_OPERAND (lhs, 1));
6589 /* Fall through. */
6590
6591 /* Handle (a ? b : c) used as an "lvalue". */
6592 case COND_EXPR:
6593 {
6594 /* Produce (a ? (b = rhs) : (c = rhs))
6595 except that the RHS goes through a save-expr
6596 so the code to compute it is only emitted once. */
6597 tree cond;
6598 tree preeval = NULL_TREE;
6599
6600 if (VOID_TYPE_P (TREE_TYPE (rhs)))
6601 {
6602 if (complain & tf_error)
6603 error ("void value not ignored as it ought to be");
6604 return error_mark_node;
6605 }
6606
6607 rhs = stabilize_expr (rhs, &preeval);
6608
6609 /* Check this here to avoid odd errors when trying to convert
6610 a throw to the type of the COND_EXPR. */
6611 if (!lvalue_or_else (lhs, lv_assign, complain))
6612 return error_mark_node;
6613
6614 cond = build_conditional_expr
6615 (TREE_OPERAND (lhs, 0),
6616 cp_build_modify_expr (TREE_OPERAND (lhs, 1),
6617 modifycode, rhs, complain),
6618 cp_build_modify_expr (TREE_OPERAND (lhs, 2),
6619 modifycode, rhs, complain),
6620 complain);
6621
6622 if (cond == error_mark_node)
6623 return cond;
6624 /* Make sure the code to compute the rhs comes out
6625 before the split. */
6626 if (preeval)
6627 cond = build2 (COMPOUND_EXPR, TREE_TYPE (lhs), preeval, cond);
6628 return cond;
6629 }
6630
6631 default:
6632 break;
6633 }
6634
6635 if (modifycode == INIT_EXPR)
6636 {
6637 if (BRACE_ENCLOSED_INITIALIZER_P (rhs))
6638 /* Do the default thing. */;
6639 else if (TREE_CODE (rhs) == CONSTRUCTOR)
6640 {
6641 /* Compound literal. */
6642 if (! same_type_p (TREE_TYPE (rhs), lhstype))
6643 /* Call convert to generate an error; see PR 11063. */
6644 rhs = convert (lhstype, rhs);
6645 result = build2 (INIT_EXPR, lhstype, lhs, rhs);
6646 TREE_SIDE_EFFECTS (result) = 1;
6647 return result;
6648 }
6649 else if (! MAYBE_CLASS_TYPE_P (lhstype))
6650 /* Do the default thing. */;
6651 else
6652 {
6653 VEC(tree,gc) *rhs_vec = make_tree_vector_single (rhs);
6654 result = build_special_member_call (lhs, complete_ctor_identifier,
6655 &rhs_vec, lhstype, LOOKUP_NORMAL,
6656 complain);
6657 release_tree_vector (rhs_vec);
6658 if (result == NULL_TREE)
6659 return error_mark_node;
6660 return result;
6661 }
6662 }
6663 else
6664 {
6665 lhs = require_complete_type_sfinae (lhs, complain);
6666 if (lhs == error_mark_node)
6667 return error_mark_node;
6668
6669 if (modifycode == NOP_EXPR)
6670 {
6671 if (c_dialect_objc ())
6672 {
6673 result = objc_maybe_build_modify_expr (lhs, rhs);
6674 if (result)
6675 return result;
6676 }
6677
6678 /* `operator=' is not an inheritable operator. */
6679 if (! MAYBE_CLASS_TYPE_P (lhstype))
6680 /* Do the default thing. */;
6681 else
6682 {
6683 result = build_new_op (MODIFY_EXPR, LOOKUP_NORMAL,
6684 lhs, rhs, make_node (NOP_EXPR),
6685 /*overloaded_p=*/NULL,
6686 complain);
6687 if (result == NULL_TREE)
6688 return error_mark_node;
6689 return result;
6690 }
6691 lhstype = olhstype;
6692 }
6693 else
6694 {
6695 /* A binary op has been requested. Combine the old LHS
6696 value with the RHS producing the value we should actually
6697 store into the LHS. */
6698 gcc_assert (!((TREE_CODE (lhstype) == REFERENCE_TYPE
6699 && MAYBE_CLASS_TYPE_P (TREE_TYPE (lhstype)))
6700 || MAYBE_CLASS_TYPE_P (lhstype)));
6701
6702 lhs = stabilize_reference (lhs);
6703 newrhs = cp_build_binary_op (input_location,
6704 modifycode, lhs, rhs,
6705 complain);
6706 if (newrhs == error_mark_node)
6707 {
6708 if (complain & tf_error)
6709 error (" in evaluation of %<%Q(%#T, %#T)%>", modifycode,
6710 TREE_TYPE (lhs), TREE_TYPE (rhs));
6711 return error_mark_node;
6712 }
6713
6714 /* Now it looks like a plain assignment. */
6715 modifycode = NOP_EXPR;
6716 if (c_dialect_objc ())
6717 {
6718 result = objc_maybe_build_modify_expr (lhs, newrhs);
6719 if (result)
6720 return result;
6721 }
6722 }
6723 gcc_assert (TREE_CODE (lhstype) != REFERENCE_TYPE);
6724 gcc_assert (TREE_CODE (TREE_TYPE (newrhs)) != REFERENCE_TYPE);
6725 }
6726
6727 /* The left-hand side must be an lvalue. */
6728 if (!lvalue_or_else (lhs, lv_assign, complain))
6729 return error_mark_node;
6730
6731 /* Warn about modifying something that is `const'. Don't warn if
6732 this is initialization. */
6733 if (modifycode != INIT_EXPR
6734 && (TREE_READONLY (lhs) || CP_TYPE_CONST_P (lhstype)
6735 /* Functions are not modifiable, even though they are
6736 lvalues. */
6737 || TREE_CODE (TREE_TYPE (lhs)) == FUNCTION_TYPE
6738 || TREE_CODE (TREE_TYPE (lhs)) == METHOD_TYPE
6739 /* If it's an aggregate and any field is const, then it is
6740 effectively const. */
6741 || (CLASS_TYPE_P (lhstype)
6742 && C_TYPE_FIELDS_READONLY (lhstype))))
6743 {
6744 if (complain & tf_error)
6745 readonly_error (lhs, REK_ASSIGNMENT);
6746 else
6747 return error_mark_node;
6748 }
6749
6750 /* If storing into a structure or union member, it may have been given a
6751 lowered bitfield type. We need to convert to the declared type first,
6752 so retrieve it now. */
6753
6754 olhstype = unlowered_expr_type (lhs);
6755
6756 /* Convert new value to destination type. */
6757
6758 if (TREE_CODE (lhstype) == ARRAY_TYPE)
6759 {
6760 int from_array;
6761
6762 if (BRACE_ENCLOSED_INITIALIZER_P (newrhs))
6763 {
6764 if (modifycode != INIT_EXPR)
6765 {
6766 if (complain & tf_error)
6767 error ("assigning to an array from an initializer list");
6768 return error_mark_node;
6769 }
6770 if (check_array_initializer (lhs, lhstype, newrhs))
6771 return error_mark_node;
6772 newrhs = digest_init (lhstype, newrhs);
6773 }
6774
6775 else if (!same_or_base_type_p (TYPE_MAIN_VARIANT (lhstype),
6776 TYPE_MAIN_VARIANT (TREE_TYPE (newrhs))))
6777 {
6778 if (complain & tf_error)
6779 error ("incompatible types in assignment of %qT to %qT",
6780 TREE_TYPE (rhs), lhstype);
6781 return error_mark_node;
6782 }
6783
6784 /* Allow array assignment in compiler-generated code. */
6785 else if (!current_function_decl
6786 || !DECL_ARTIFICIAL (current_function_decl))
6787 {
6788 /* This routine is used for both initialization and assignment.
6789 Make sure the diagnostic message differentiates the context. */
6790 if (complain & tf_error)
6791 {
6792 if (modifycode == INIT_EXPR)
6793 error ("array used as initializer");
6794 else
6795 error ("invalid array assignment");
6796 }
6797 return error_mark_node;
6798 }
6799
6800 from_array = TREE_CODE (TREE_TYPE (newrhs)) == ARRAY_TYPE
6801 ? 1 + (modifycode != INIT_EXPR): 0;
6802 return build_vec_init (lhs, NULL_TREE, newrhs,
6803 /*explicit_value_init_p=*/false,
6804 from_array, complain);
6805 }
6806
6807 if (modifycode == INIT_EXPR)
6808 /* Calls with INIT_EXPR are all direct-initialization, so don't set
6809 LOOKUP_ONLYCONVERTING. */
6810 newrhs = convert_for_initialization (lhs, olhstype, newrhs, LOOKUP_NORMAL,
6811 ICR_INIT, NULL_TREE, 0,
6812 complain);
6813 else
6814 newrhs = convert_for_assignment (olhstype, newrhs, ICR_ASSIGN,
6815 NULL_TREE, 0, complain, LOOKUP_IMPLICIT);
6816
6817 if (!same_type_p (lhstype, olhstype))
6818 newrhs = cp_convert_and_check (lhstype, newrhs);
6819
6820 if (modifycode != INIT_EXPR)
6821 {
6822 if (TREE_CODE (newrhs) == CALL_EXPR
6823 && TYPE_NEEDS_CONSTRUCTING (lhstype))
6824 newrhs = build_cplus_new (lhstype, newrhs);
6825
6826 /* Can't initialize directly from a TARGET_EXPR, since that would
6827 cause the lhs to be constructed twice, and possibly result in
6828 accidental self-initialization. So we force the TARGET_EXPR to be
6829 expanded without a target. */
6830 if (TREE_CODE (newrhs) == TARGET_EXPR)
6831 newrhs = build2 (COMPOUND_EXPR, TREE_TYPE (newrhs), newrhs,
6832 TREE_OPERAND (newrhs, 0));
6833 }
6834
6835 if (newrhs == error_mark_node)
6836 return error_mark_node;
6837
6838 if (c_dialect_objc () && flag_objc_gc)
6839 {
6840 result = objc_generate_write_barrier (lhs, modifycode, newrhs);
6841
6842 if (result)
6843 return result;
6844 }
6845
6846 result = build2 (modifycode == NOP_EXPR ? MODIFY_EXPR : INIT_EXPR,
6847 lhstype, lhs, newrhs);
6848
6849 TREE_SIDE_EFFECTS (result) = 1;
6850 if (!plain_assign)
6851 TREE_NO_WARNING (result) = 1;
6852
6853 return result;
6854 }
6855
6856 tree
6857 build_x_modify_expr (tree lhs, enum tree_code modifycode, tree rhs,
6858 tsubst_flags_t complain)
6859 {
6860 if (processing_template_decl)
6861 return build_min_nt (MODOP_EXPR, lhs,
6862 build_min_nt (modifycode, NULL_TREE, NULL_TREE), rhs);
6863
6864 if (modifycode != NOP_EXPR)
6865 {
6866 tree rval = build_new_op (MODIFY_EXPR, LOOKUP_NORMAL, lhs, rhs,
6867 make_node (modifycode),
6868 /*overloaded_p=*/NULL,
6869 complain);
6870 if (rval)
6871 {
6872 TREE_NO_WARNING (rval) = 1;
6873 return rval;
6874 }
6875 }
6876 return cp_build_modify_expr (lhs, modifycode, rhs, complain);
6877 }
6878
6879 /* Helper function for get_delta_difference which assumes FROM is a base
6880 class of TO. Returns a delta for the conversion of pointer-to-member
6881 of FROM to pointer-to-member of TO. If the conversion is invalid and
6882 tf_error is not set in COMPLAIN returns error_mark_node, otherwise
6883 returns zero. If FROM is not a base class of TO, returns NULL_TREE.
6884 If C_CAST_P is true, this conversion is taking place as part of a
6885 C-style cast. */
6886
6887 static tree
6888 get_delta_difference_1 (tree from, tree to, bool c_cast_p,
6889 tsubst_flags_t complain)
6890 {
6891 tree binfo;
6892 base_kind kind;
6893 base_access access = c_cast_p ? ba_unique : ba_check;
6894
6895 /* Note: ba_quiet does not distinguish between access control and
6896 ambiguity. */
6897 if (!(complain & tf_error))
6898 access |= ba_quiet;
6899
6900 binfo = lookup_base (to, from, access, &kind);
6901
6902 if (kind == bk_inaccessible || kind == bk_ambig)
6903 {
6904 if (!(complain & tf_error))
6905 return error_mark_node;
6906
6907 error (" in pointer to member function conversion");
6908 return size_zero_node;
6909 }
6910 else if (binfo)
6911 {
6912 if (kind != bk_via_virtual)
6913 return BINFO_OFFSET (binfo);
6914 else
6915 /* FROM is a virtual base class of TO. Issue an error or warning
6916 depending on whether or not this is a reinterpret cast. */
6917 {
6918 if (!(complain & tf_error))
6919 return error_mark_node;
6920
6921 error ("pointer to member conversion via virtual base %qT",
6922 BINFO_TYPE (binfo_from_vbase (binfo)));
6923
6924 return size_zero_node;
6925 }
6926 }
6927 else
6928 return NULL_TREE;
6929 }
6930
6931 /* Get difference in deltas for different pointer to member function
6932 types. If the conversion is invalid and tf_error is not set in
6933 COMPLAIN, returns error_mark_node, otherwise returns an integer
6934 constant of type PTRDIFF_TYPE_NODE and its value is zero if the
6935 conversion is invalid. If ALLOW_INVERSE_P is true, then allow reverse
6936 conversions as well. If C_CAST_P is true this conversion is taking
6937 place as part of a C-style cast.
6938
6939 Note that the naming of FROM and TO is kind of backwards; the return
6940 value is what we add to a TO in order to get a FROM. They are named
6941 this way because we call this function to find out how to convert from
6942 a pointer to member of FROM to a pointer to member of TO. */
6943
6944 static tree
6945 get_delta_difference (tree from, tree to,
6946 bool allow_inverse_p,
6947 bool c_cast_p, tsubst_flags_t complain)
6948 {
6949 tree result;
6950
6951 if (same_type_ignoring_top_level_qualifiers_p (from, to))
6952 /* Pointer to member of incomplete class is permitted*/
6953 result = size_zero_node;
6954 else
6955 result = get_delta_difference_1 (from, to, c_cast_p, complain);
6956
6957 if (result == error_mark_node)
6958 return error_mark_node;
6959
6960 if (!result)
6961 {
6962 if (!allow_inverse_p)
6963 {
6964 if (!(complain & tf_error))
6965 return error_mark_node;
6966
6967 error_not_base_type (from, to);
6968 error (" in pointer to member conversion");
6969 result = size_zero_node;
6970 }
6971 else
6972 {
6973 result = get_delta_difference_1 (to, from, c_cast_p, complain);
6974
6975 if (result == error_mark_node)
6976 return error_mark_node;
6977
6978 if (result)
6979 result = size_diffop_loc (input_location,
6980 size_zero_node, result);
6981 else
6982 {
6983 if (!(complain & tf_error))
6984 return error_mark_node;
6985
6986 error_not_base_type (from, to);
6987 error (" in pointer to member conversion");
6988 result = size_zero_node;
6989 }
6990 }
6991 }
6992
6993 return fold_if_not_in_template (convert_to_integer (ptrdiff_type_node,
6994 result));
6995 }
6996
6997 /* Return a constructor for the pointer-to-member-function TYPE using
6998 the other components as specified. */
6999
7000 tree
7001 build_ptrmemfunc1 (tree type, tree delta, tree pfn)
7002 {
7003 tree u = NULL_TREE;
7004 tree delta_field;
7005 tree pfn_field;
7006 VEC(constructor_elt, gc) *v;
7007
7008 /* Pull the FIELD_DECLs out of the type. */
7009 pfn_field = TYPE_FIELDS (type);
7010 delta_field = DECL_CHAIN (pfn_field);
7011
7012 /* Make sure DELTA has the type we want. */
7013 delta = convert_and_check (delta_type_node, delta);
7014
7015 /* Convert to the correct target type if necessary. */
7016 pfn = fold_convert (TREE_TYPE (pfn_field), pfn);
7017
7018 /* Finish creating the initializer. */
7019 v = VEC_alloc(constructor_elt, gc, 2);
7020 CONSTRUCTOR_APPEND_ELT(v, pfn_field, pfn);
7021 CONSTRUCTOR_APPEND_ELT(v, delta_field, delta);
7022 u = build_constructor (type, v);
7023 TREE_CONSTANT (u) = TREE_CONSTANT (pfn) & TREE_CONSTANT (delta);
7024 TREE_STATIC (u) = (TREE_CONSTANT (u)
7025 && (initializer_constant_valid_p (pfn, TREE_TYPE (pfn))
7026 != NULL_TREE)
7027 && (initializer_constant_valid_p (delta, TREE_TYPE (delta))
7028 != NULL_TREE));
7029 return u;
7030 }
7031
7032 /* Build a constructor for a pointer to member function. It can be
7033 used to initialize global variables, local variable, or used
7034 as a value in expressions. TYPE is the POINTER to METHOD_TYPE we
7035 want to be.
7036
7037 If FORCE is nonzero, then force this conversion, even if
7038 we would rather not do it. Usually set when using an explicit
7039 cast. A C-style cast is being processed iff C_CAST_P is true.
7040
7041 Return error_mark_node, if something goes wrong. */
7042
7043 tree
7044 build_ptrmemfunc (tree type, tree pfn, int force, bool c_cast_p,
7045 tsubst_flags_t complain)
7046 {
7047 tree fn;
7048 tree pfn_type;
7049 tree to_type;
7050
7051 if (error_operand_p (pfn))
7052 return error_mark_node;
7053
7054 pfn_type = TREE_TYPE (pfn);
7055 to_type = build_ptrmemfunc_type (type);
7056
7057 /* Handle multiple conversions of pointer to member functions. */
7058 if (TYPE_PTRMEMFUNC_P (pfn_type))
7059 {
7060 tree delta = NULL_TREE;
7061 tree npfn = NULL_TREE;
7062 tree n;
7063
7064 if (!force
7065 && !can_convert_arg (to_type, TREE_TYPE (pfn), pfn, LOOKUP_NORMAL))
7066 error ("invalid conversion to type %qT from type %qT",
7067 to_type, pfn_type);
7068
7069 n = get_delta_difference (TYPE_PTRMEMFUNC_OBJECT_TYPE (pfn_type),
7070 TYPE_PTRMEMFUNC_OBJECT_TYPE (to_type),
7071 force,
7072 c_cast_p, complain);
7073 if (n == error_mark_node)
7074 return error_mark_node;
7075
7076 /* We don't have to do any conversion to convert a
7077 pointer-to-member to its own type. But, we don't want to
7078 just return a PTRMEM_CST if there's an explicit cast; that
7079 cast should make the expression an invalid template argument. */
7080 if (TREE_CODE (pfn) != PTRMEM_CST)
7081 {
7082 if (same_type_p (to_type, pfn_type))
7083 return pfn;
7084 else if (integer_zerop (n))
7085 return build_reinterpret_cast (to_type, pfn,
7086 tf_warning_or_error);
7087 }
7088
7089 if (TREE_SIDE_EFFECTS (pfn))
7090 pfn = save_expr (pfn);
7091
7092 /* Obtain the function pointer and the current DELTA. */
7093 if (TREE_CODE (pfn) == PTRMEM_CST)
7094 expand_ptrmemfunc_cst (pfn, &delta, &npfn);
7095 else
7096 {
7097 npfn = build_ptrmemfunc_access_expr (pfn, pfn_identifier);
7098 delta = build_ptrmemfunc_access_expr (pfn, delta_identifier);
7099 }
7100
7101 /* Just adjust the DELTA field. */
7102 gcc_assert (same_type_ignoring_top_level_qualifiers_p
7103 (TREE_TYPE (delta), ptrdiff_type_node));
7104 if (TARGET_PTRMEMFUNC_VBIT_LOCATION == ptrmemfunc_vbit_in_delta)
7105 n = cp_build_binary_op (input_location,
7106 LSHIFT_EXPR, n, integer_one_node,
7107 tf_warning_or_error);
7108 delta = cp_build_binary_op (input_location,
7109 PLUS_EXPR, delta, n, tf_warning_or_error);
7110 return build_ptrmemfunc1 (to_type, delta, npfn);
7111 }
7112
7113 /* Handle null pointer to member function conversions. */
7114 if (null_ptr_cst_p (pfn))
7115 {
7116 pfn = build_c_cast (input_location, type, integer_zero_node);
7117 return build_ptrmemfunc1 (to_type,
7118 integer_zero_node,
7119 pfn);
7120 }
7121
7122 if (type_unknown_p (pfn))
7123 return instantiate_type (type, pfn, tf_warning_or_error);
7124
7125 fn = TREE_OPERAND (pfn, 0);
7126 gcc_assert (TREE_CODE (fn) == FUNCTION_DECL
7127 /* In a template, we will have preserved the
7128 OFFSET_REF. */
7129 || (processing_template_decl && TREE_CODE (fn) == OFFSET_REF));
7130 return make_ptrmem_cst (to_type, fn);
7131 }
7132
7133 /* Return the DELTA, IDX, PFN, and DELTA2 values for the PTRMEM_CST
7134 given by CST.
7135
7136 ??? There is no consistency as to the types returned for the above
7137 values. Some code acts as if it were a sizetype and some as if it were
7138 integer_type_node. */
7139
7140 void
7141 expand_ptrmemfunc_cst (tree cst, tree *delta, tree *pfn)
7142 {
7143 tree type = TREE_TYPE (cst);
7144 tree fn = PTRMEM_CST_MEMBER (cst);
7145 tree ptr_class, fn_class;
7146
7147 gcc_assert (TREE_CODE (fn) == FUNCTION_DECL);
7148
7149 /* The class that the function belongs to. */
7150 fn_class = DECL_CONTEXT (fn);
7151
7152 /* The class that we're creating a pointer to member of. */
7153 ptr_class = TYPE_PTRMEMFUNC_OBJECT_TYPE (type);
7154
7155 /* First, calculate the adjustment to the function's class. */
7156 *delta = get_delta_difference (fn_class, ptr_class, /*force=*/0,
7157 /*c_cast_p=*/0, tf_warning_or_error);
7158
7159 if (!DECL_VIRTUAL_P (fn))
7160 *pfn = convert (TYPE_PTRMEMFUNC_FN_TYPE (type), build_addr_func (fn));
7161 else
7162 {
7163 /* If we're dealing with a virtual function, we have to adjust 'this'
7164 again, to point to the base which provides the vtable entry for
7165 fn; the call will do the opposite adjustment. */
7166 tree orig_class = DECL_CONTEXT (fn);
7167 tree binfo = binfo_or_else (orig_class, fn_class);
7168 *delta = build2 (PLUS_EXPR, TREE_TYPE (*delta),
7169 *delta, BINFO_OFFSET (binfo));
7170 *delta = fold_if_not_in_template (*delta);
7171
7172 /* We set PFN to the vtable offset at which the function can be
7173 found, plus one (unless ptrmemfunc_vbit_in_delta, in which
7174 case delta is shifted left, and then incremented). */
7175 *pfn = DECL_VINDEX (fn);
7176 *pfn = build2 (MULT_EXPR, integer_type_node, *pfn,
7177 TYPE_SIZE_UNIT (vtable_entry_type));
7178 *pfn = fold_if_not_in_template (*pfn);
7179
7180 switch (TARGET_PTRMEMFUNC_VBIT_LOCATION)
7181 {
7182 case ptrmemfunc_vbit_in_pfn:
7183 *pfn = build2 (PLUS_EXPR, integer_type_node, *pfn,
7184 integer_one_node);
7185 *pfn = fold_if_not_in_template (*pfn);
7186 break;
7187
7188 case ptrmemfunc_vbit_in_delta:
7189 *delta = build2 (LSHIFT_EXPR, TREE_TYPE (*delta),
7190 *delta, integer_one_node);
7191 *delta = fold_if_not_in_template (*delta);
7192 *delta = build2 (PLUS_EXPR, TREE_TYPE (*delta),
7193 *delta, integer_one_node);
7194 *delta = fold_if_not_in_template (*delta);
7195 break;
7196
7197 default:
7198 gcc_unreachable ();
7199 }
7200
7201 *pfn = build_nop (TYPE_PTRMEMFUNC_FN_TYPE (type), *pfn);
7202 *pfn = fold_if_not_in_template (*pfn);
7203 }
7204 }
7205
7206 /* Return an expression for PFN from the pointer-to-member function
7207 given by T. */
7208
7209 static tree
7210 pfn_from_ptrmemfunc (tree t)
7211 {
7212 if (TREE_CODE (t) == PTRMEM_CST)
7213 {
7214 tree delta;
7215 tree pfn;
7216
7217 expand_ptrmemfunc_cst (t, &delta, &pfn);
7218 if (pfn)
7219 return pfn;
7220 }
7221
7222 return build_ptrmemfunc_access_expr (t, pfn_identifier);
7223 }
7224
7225 /* Return an expression for DELTA from the pointer-to-member function
7226 given by T. */
7227
7228 static tree
7229 delta_from_ptrmemfunc (tree t)
7230 {
7231 if (TREE_CODE (t) == PTRMEM_CST)
7232 {
7233 tree delta;
7234 tree pfn;
7235
7236 expand_ptrmemfunc_cst (t, &delta, &pfn);
7237 if (delta)
7238 return delta;
7239 }
7240
7241 return build_ptrmemfunc_access_expr (t, delta_identifier);
7242 }
7243
7244 /* Convert value RHS to type TYPE as preparation for an assignment to
7245 an lvalue of type TYPE. ERRTYPE indicates what kind of error the
7246 implicit conversion is. If FNDECL is non-NULL, we are doing the
7247 conversion in order to pass the PARMNUMth argument of FNDECL.
7248 If FNDECL is NULL, we are doing the conversion in function pointer
7249 argument passing, conversion in initialization, etc. */
7250
7251 static tree
7252 convert_for_assignment (tree type, tree rhs,
7253 impl_conv_rhs errtype, tree fndecl, int parmnum,
7254 tsubst_flags_t complain, int flags)
7255 {
7256 tree rhstype;
7257 enum tree_code coder;
7258
7259 /* Strip NON_LVALUE_EXPRs since we aren't using as an lvalue. */
7260 if (TREE_CODE (rhs) == NON_LVALUE_EXPR)
7261 rhs = TREE_OPERAND (rhs, 0);
7262
7263 rhstype = TREE_TYPE (rhs);
7264 coder = TREE_CODE (rhstype);
7265
7266 if (TREE_CODE (type) == VECTOR_TYPE && coder == VECTOR_TYPE
7267 && vector_types_convertible_p (type, rhstype, true))
7268 {
7269 rhs = mark_rvalue_use (rhs);
7270 return convert (type, rhs);
7271 }
7272
7273 if (rhs == error_mark_node || rhstype == error_mark_node)
7274 return error_mark_node;
7275 if (TREE_CODE (rhs) == TREE_LIST && TREE_VALUE (rhs) == error_mark_node)
7276 return error_mark_node;
7277
7278 /* The RHS of an assignment cannot have void type. */
7279 if (coder == VOID_TYPE)
7280 {
7281 if (complain & tf_error)
7282 error ("void value not ignored as it ought to be");
7283 return error_mark_node;
7284 }
7285
7286 /* Simplify the RHS if possible. */
7287 if (TREE_CODE (rhs) == CONST_DECL)
7288 rhs = DECL_INITIAL (rhs);
7289
7290 if (c_dialect_objc ())
7291 {
7292 int parmno;
7293 tree selector;
7294 tree rname = fndecl;
7295
7296 switch (errtype)
7297 {
7298 case ICR_ASSIGN:
7299 parmno = -1;
7300 break;
7301 case ICR_INIT:
7302 parmno = -2;
7303 break;
7304 default:
7305 selector = objc_message_selector ();
7306 parmno = parmnum;
7307 if (selector && parmno > 1)
7308 {
7309 rname = selector;
7310 parmno -= 1;
7311 }
7312 }
7313
7314 if (objc_compare_types (type, rhstype, parmno, rname))
7315 {
7316 rhs = mark_rvalue_use (rhs);
7317 return convert (type, rhs);
7318 }
7319 }
7320
7321 /* [expr.ass]
7322
7323 The expression is implicitly converted (clause _conv_) to the
7324 cv-unqualified type of the left operand.
7325
7326 We allow bad conversions here because by the time we get to this point
7327 we are committed to doing the conversion. If we end up doing a bad
7328 conversion, convert_like will complain. */
7329 if (!can_convert_arg_bad (type, rhstype, rhs, flags))
7330 {
7331 /* When -Wno-pmf-conversions is use, we just silently allow
7332 conversions from pointers-to-members to plain pointers. If
7333 the conversion doesn't work, cp_convert will complain. */
7334 if (!warn_pmf2ptr
7335 && TYPE_PTR_P (type)
7336 && TYPE_PTRMEMFUNC_P (rhstype))
7337 rhs = cp_convert (strip_top_quals (type), rhs);
7338 else
7339 {
7340 if (complain & tf_error)
7341 {
7342 /* If the right-hand side has unknown type, then it is an
7343 overloaded function. Call instantiate_type to get error
7344 messages. */
7345 if (rhstype == unknown_type_node)
7346 instantiate_type (type, rhs, tf_warning_or_error);
7347 else if (fndecl)
7348 error ("cannot convert %qT to %qT for argument %qP to %qD",
7349 rhstype, type, parmnum, fndecl);
7350 else
7351 switch (errtype)
7352 {
7353 case ICR_DEFAULT_ARGUMENT:
7354 error ("cannot convert %qT to %qT in default argument",
7355 rhstype, type);
7356 break;
7357 case ICR_ARGPASS:
7358 error ("cannot convert %qT to %qT in argument passing",
7359 rhstype, type);
7360 break;
7361 case ICR_CONVERTING:
7362 error ("cannot convert %qT to %qT",
7363 rhstype, type);
7364 break;
7365 case ICR_INIT:
7366 error ("cannot convert %qT to %qT in initialization",
7367 rhstype, type);
7368 break;
7369 case ICR_RETURN:
7370 error ("cannot convert %qT to %qT in return",
7371 rhstype, type);
7372 break;
7373 case ICR_ASSIGN:
7374 error ("cannot convert %qT to %qT in assignment",
7375 rhstype, type);
7376 break;
7377 default:
7378 gcc_unreachable();
7379 }
7380 }
7381 return error_mark_node;
7382 }
7383 }
7384 if (warn_missing_format_attribute)
7385 {
7386 const enum tree_code codel = TREE_CODE (type);
7387 if ((codel == POINTER_TYPE || codel == REFERENCE_TYPE)
7388 && coder == codel
7389 && check_missing_format_attribute (type, rhstype)
7390 && (complain & tf_warning))
7391 switch (errtype)
7392 {
7393 case ICR_ARGPASS:
7394 case ICR_DEFAULT_ARGUMENT:
7395 if (fndecl)
7396 warning (OPT_Wmissing_format_attribute,
7397 "parameter %qP of %qD might be a candidate "
7398 "for a format attribute", parmnum, fndecl);
7399 else
7400 warning (OPT_Wmissing_format_attribute,
7401 "parameter might be a candidate "
7402 "for a format attribute");
7403 break;
7404 case ICR_CONVERTING:
7405 warning (OPT_Wmissing_format_attribute,
7406 "target of conversion might be might be a candidate "
7407 "for a format attribute");
7408 break;
7409 case ICR_INIT:
7410 warning (OPT_Wmissing_format_attribute,
7411 "target of initialization might be a candidate "
7412 "for a format attribute");
7413 break;
7414 case ICR_RETURN:
7415 warning (OPT_Wmissing_format_attribute,
7416 "return type might be a candidate "
7417 "for a format attribute");
7418 break;
7419 case ICR_ASSIGN:
7420 warning (OPT_Wmissing_format_attribute,
7421 "left-hand side of assignment might be a candidate "
7422 "for a format attribute");
7423 break;
7424 default:
7425 gcc_unreachable();
7426 }
7427 }
7428
7429 /* If -Wparentheses, warn about a = b = c when a has type bool and b
7430 does not. */
7431 if (warn_parentheses
7432 && TREE_CODE (type) == BOOLEAN_TYPE
7433 && TREE_CODE (rhs) == MODIFY_EXPR
7434 && !TREE_NO_WARNING (rhs)
7435 && TREE_CODE (TREE_TYPE (rhs)) != BOOLEAN_TYPE
7436 && (complain & tf_warning))
7437 {
7438 location_t loc = EXPR_LOC_OR_HERE (rhs);
7439
7440 warning_at (loc, OPT_Wparentheses,
7441 "suggest parentheses around assignment used as truth value");
7442 TREE_NO_WARNING (rhs) = 1;
7443 }
7444
7445 return perform_implicit_conversion_flags (strip_top_quals (type), rhs,
7446 complain, flags);
7447 }
7448
7449 /* Convert RHS to be of type TYPE.
7450 If EXP is nonzero, it is the target of the initialization.
7451 ERRTYPE indicates what kind of error the implicit conversion is.
7452
7453 Two major differences between the behavior of
7454 `convert_for_assignment' and `convert_for_initialization'
7455 are that references are bashed in the former, while
7456 copied in the latter, and aggregates are assigned in
7457 the former (operator=) while initialized in the
7458 latter (X(X&)).
7459
7460 If using constructor make sure no conversion operator exists, if one does
7461 exist, an ambiguity exists.
7462
7463 If flags doesn't include LOOKUP_COMPLAIN, don't complain about anything. */
7464
7465 tree
7466 convert_for_initialization (tree exp, tree type, tree rhs, int flags,
7467 impl_conv_rhs errtype, tree fndecl, int parmnum,
7468 tsubst_flags_t complain)
7469 {
7470 enum tree_code codel = TREE_CODE (type);
7471 tree rhstype;
7472 enum tree_code coder;
7473
7474 /* build_c_cast puts on a NOP_EXPR to make the result not an lvalue.
7475 Strip such NOP_EXPRs, since RHS is used in non-lvalue context. */
7476 if (TREE_CODE (rhs) == NOP_EXPR
7477 && TREE_TYPE (rhs) == TREE_TYPE (TREE_OPERAND (rhs, 0))
7478 && codel != REFERENCE_TYPE)
7479 rhs = TREE_OPERAND (rhs, 0);
7480
7481 if (type == error_mark_node
7482 || rhs == error_mark_node
7483 || (TREE_CODE (rhs) == TREE_LIST && TREE_VALUE (rhs) == error_mark_node))
7484 return error_mark_node;
7485
7486 if ((TREE_CODE (TREE_TYPE (rhs)) == ARRAY_TYPE
7487 && TREE_CODE (type) != ARRAY_TYPE
7488 && (TREE_CODE (type) != REFERENCE_TYPE
7489 || TREE_CODE (TREE_TYPE (type)) != ARRAY_TYPE))
7490 || (TREE_CODE (TREE_TYPE (rhs)) == FUNCTION_TYPE
7491 && (TREE_CODE (type) != REFERENCE_TYPE
7492 || TREE_CODE (TREE_TYPE (type)) != FUNCTION_TYPE))
7493 || TREE_CODE (TREE_TYPE (rhs)) == METHOD_TYPE)
7494 rhs = decay_conversion (rhs);
7495
7496 rhstype = TREE_TYPE (rhs);
7497 coder = TREE_CODE (rhstype);
7498
7499 if (coder == ERROR_MARK)
7500 return error_mark_node;
7501
7502 /* We accept references to incomplete types, so we can
7503 return here before checking if RHS is of complete type. */
7504
7505 if (codel == REFERENCE_TYPE)
7506 {
7507 /* This should eventually happen in convert_arguments. */
7508 int savew = 0, savee = 0;
7509
7510 if (fndecl)
7511 savew = warningcount, savee = errorcount;
7512 rhs = initialize_reference (type, rhs, /*decl=*/NULL_TREE,
7513 /*cleanup=*/NULL, complain);
7514 if (fndecl)
7515 {
7516 if (warningcount > savew)
7517 warning (0, "in passing argument %P of %q+D", parmnum, fndecl);
7518 else if (errorcount > savee)
7519 error ("in passing argument %P of %q+D", parmnum, fndecl);
7520 }
7521 return rhs;
7522 }
7523
7524 if (exp != 0)
7525 exp = require_complete_type_sfinae (exp, complain);
7526 if (exp == error_mark_node)
7527 return error_mark_node;
7528
7529 rhstype = non_reference (rhstype);
7530
7531 type = complete_type (type);
7532
7533 if (DIRECT_INIT_EXPR_P (type, rhs))
7534 /* Don't try to do copy-initialization if we already have
7535 direct-initialization. */
7536 return rhs;
7537
7538 if (MAYBE_CLASS_TYPE_P (type))
7539 return ocp_convert (type, rhs, CONV_IMPLICIT|CONV_FORCE_TEMP, flags);
7540
7541 return convert_for_assignment (type, rhs, errtype, fndecl, parmnum,
7542 complain, flags);
7543 }
7544 \f
7545 /* If RETVAL is the address of, or a reference to, a local variable or
7546 temporary give an appropriate warning. */
7547
7548 static void
7549 maybe_warn_about_returning_address_of_local (tree retval)
7550 {
7551 tree valtype = TREE_TYPE (DECL_RESULT (current_function_decl));
7552 tree whats_returned = retval;
7553
7554 for (;;)
7555 {
7556 if (TREE_CODE (whats_returned) == COMPOUND_EXPR)
7557 whats_returned = TREE_OPERAND (whats_returned, 1);
7558 else if (CONVERT_EXPR_P (whats_returned)
7559 || TREE_CODE (whats_returned) == NON_LVALUE_EXPR)
7560 whats_returned = TREE_OPERAND (whats_returned, 0);
7561 else
7562 break;
7563 }
7564
7565 if (TREE_CODE (whats_returned) != ADDR_EXPR)
7566 return;
7567 whats_returned = TREE_OPERAND (whats_returned, 0);
7568
7569 if (TREE_CODE (valtype) == REFERENCE_TYPE)
7570 {
7571 if (TREE_CODE (whats_returned) == AGGR_INIT_EXPR
7572 || TREE_CODE (whats_returned) == TARGET_EXPR)
7573 {
7574 warning (0, "returning reference to temporary");
7575 return;
7576 }
7577 if (TREE_CODE (whats_returned) == VAR_DECL
7578 && DECL_NAME (whats_returned)
7579 && TEMP_NAME_P (DECL_NAME (whats_returned)))
7580 {
7581 warning (0, "reference to non-lvalue returned");
7582 return;
7583 }
7584 }
7585
7586 while (TREE_CODE (whats_returned) == COMPONENT_REF
7587 || TREE_CODE (whats_returned) == ARRAY_REF)
7588 whats_returned = TREE_OPERAND (whats_returned, 0);
7589
7590 if (DECL_P (whats_returned)
7591 && DECL_NAME (whats_returned)
7592 && DECL_FUNCTION_SCOPE_P (whats_returned)
7593 && !(TREE_STATIC (whats_returned)
7594 || TREE_PUBLIC (whats_returned)))
7595 {
7596 if (TREE_CODE (valtype) == REFERENCE_TYPE)
7597 warning (0, "reference to local variable %q+D returned",
7598 whats_returned);
7599 else
7600 warning (0, "address of local variable %q+D returned",
7601 whats_returned);
7602 return;
7603 }
7604 }
7605
7606 /* Check that returning RETVAL from the current function is valid.
7607 Return an expression explicitly showing all conversions required to
7608 change RETVAL into the function return type, and to assign it to
7609 the DECL_RESULT for the function. Set *NO_WARNING to true if
7610 code reaches end of non-void function warning shouldn't be issued
7611 on this RETURN_EXPR. */
7612
7613 tree
7614 check_return_expr (tree retval, bool *no_warning)
7615 {
7616 tree result;
7617 /* The type actually returned by the function, after any
7618 promotions. */
7619 tree valtype;
7620 int fn_returns_value_p;
7621 bool named_return_value_okay_p;
7622
7623 *no_warning = false;
7624
7625 /* A `volatile' function is one that isn't supposed to return, ever.
7626 (This is a G++ extension, used to get better code for functions
7627 that call the `volatile' function.) */
7628 if (TREE_THIS_VOLATILE (current_function_decl))
7629 warning (0, "function declared %<noreturn%> has a %<return%> statement");
7630
7631 /* Check for various simple errors. */
7632 if (DECL_DESTRUCTOR_P (current_function_decl))
7633 {
7634 if (retval)
7635 error ("returning a value from a destructor");
7636 return NULL_TREE;
7637 }
7638 else if (DECL_CONSTRUCTOR_P (current_function_decl))
7639 {
7640 if (in_function_try_handler)
7641 /* If a return statement appears in a handler of the
7642 function-try-block of a constructor, the program is ill-formed. */
7643 error ("cannot return from a handler of a function-try-block of a constructor");
7644 else if (retval)
7645 /* You can't return a value from a constructor. */
7646 error ("returning a value from a constructor");
7647 return NULL_TREE;
7648 }
7649
7650 /* As an extension, deduce lambda return type from a return statement
7651 anywhere in the body. */
7652 if (retval && LAMBDA_FUNCTION_P (current_function_decl))
7653 {
7654 tree lambda = CLASSTYPE_LAMBDA_EXPR (current_class_type);
7655 if (LAMBDA_EXPR_DEDUCE_RETURN_TYPE_P (lambda))
7656 {
7657 tree type = lambda_return_type (retval);
7658 tree oldtype = LAMBDA_EXPR_RETURN_TYPE (lambda);
7659
7660 if (VOID_TYPE_P (type))
7661 { /* Nothing. */ }
7662 else if (oldtype == NULL_TREE)
7663 {
7664 pedwarn (input_location, OPT_pedantic, "lambda return type "
7665 "can only be deduced when the return statement is "
7666 "the only statement in the function body");
7667 apply_lambda_return_type (lambda, type);
7668 }
7669 else if (!same_type_p (type, oldtype))
7670 error ("inconsistent types %qT and %qT deduced for "
7671 "lambda return type", type, oldtype);
7672 }
7673 }
7674
7675 if (processing_template_decl)
7676 {
7677 current_function_returns_value = 1;
7678 if (check_for_bare_parameter_packs (retval))
7679 retval = error_mark_node;
7680 return retval;
7681 }
7682
7683 /* When no explicit return-value is given in a function with a named
7684 return value, the named return value is used. */
7685 result = DECL_RESULT (current_function_decl);
7686 valtype = TREE_TYPE (result);
7687 gcc_assert (valtype != NULL_TREE);
7688 fn_returns_value_p = !VOID_TYPE_P (valtype);
7689 if (!retval && DECL_NAME (result) && fn_returns_value_p)
7690 retval = result;
7691
7692 /* Check for a return statement with no return value in a function
7693 that's supposed to return a value. */
7694 if (!retval && fn_returns_value_p)
7695 {
7696 permerror (input_location, "return-statement with no value, in function returning %qT",
7697 valtype);
7698 /* Clear this, so finish_function won't say that we reach the
7699 end of a non-void function (which we don't, we gave a
7700 return!). */
7701 current_function_returns_null = 0;
7702 /* And signal caller that TREE_NO_WARNING should be set on the
7703 RETURN_EXPR to avoid control reaches end of non-void function
7704 warnings in tree-cfg.c. */
7705 *no_warning = true;
7706 }
7707 /* Check for a return statement with a value in a function that
7708 isn't supposed to return a value. */
7709 else if (retval && !fn_returns_value_p)
7710 {
7711 if (VOID_TYPE_P (TREE_TYPE (retval)))
7712 /* You can return a `void' value from a function of `void'
7713 type. In that case, we have to evaluate the expression for
7714 its side-effects. */
7715 finish_expr_stmt (retval);
7716 else
7717 permerror (input_location, "return-statement with a value, in function "
7718 "returning 'void'");
7719 current_function_returns_null = 1;
7720
7721 /* There's really no value to return, after all. */
7722 return NULL_TREE;
7723 }
7724 else if (!retval)
7725 /* Remember that this function can sometimes return without a
7726 value. */
7727 current_function_returns_null = 1;
7728 else
7729 /* Remember that this function did return a value. */
7730 current_function_returns_value = 1;
7731
7732 /* Check for erroneous operands -- but after giving ourselves a
7733 chance to provide an error about returning a value from a void
7734 function. */
7735 if (error_operand_p (retval))
7736 {
7737 current_function_return_value = error_mark_node;
7738 return error_mark_node;
7739 }
7740
7741 /* Only operator new(...) throw(), can return NULL [expr.new/13]. */
7742 if ((DECL_OVERLOADED_OPERATOR_P (current_function_decl) == NEW_EXPR
7743 || DECL_OVERLOADED_OPERATOR_P (current_function_decl) == VEC_NEW_EXPR)
7744 && !TYPE_NOTHROW_P (TREE_TYPE (current_function_decl))
7745 && ! flag_check_new
7746 && retval && null_ptr_cst_p (retval))
7747 warning (0, "%<operator new%> must not return NULL unless it is "
7748 "declared %<throw()%> (or -fcheck-new is in effect)");
7749
7750 /* Effective C++ rule 15. See also start_function. */
7751 if (warn_ecpp
7752 && DECL_NAME (current_function_decl) == ansi_assopname(NOP_EXPR))
7753 {
7754 bool warn = true;
7755
7756 /* The function return type must be a reference to the current
7757 class. */
7758 if (TREE_CODE (valtype) == REFERENCE_TYPE
7759 && same_type_ignoring_top_level_qualifiers_p
7760 (TREE_TYPE (valtype), TREE_TYPE (current_class_ref)))
7761 {
7762 /* Returning '*this' is obviously OK. */
7763 if (retval == current_class_ref)
7764 warn = false;
7765 /* If we are calling a function whose return type is the same of
7766 the current class reference, it is ok. */
7767 else if (TREE_CODE (retval) == INDIRECT_REF
7768 && TREE_CODE (TREE_OPERAND (retval, 0)) == CALL_EXPR)
7769 warn = false;
7770 }
7771
7772 if (warn)
7773 warning (OPT_Weffc__, "%<operator=%> should return a reference to %<*this%>");
7774 }
7775
7776 /* The fabled Named Return Value optimization, as per [class.copy]/15:
7777
7778 [...] For a function with a class return type, if the expression
7779 in the return statement is the name of a local object, and the cv-
7780 unqualified type of the local object is the same as the function
7781 return type, an implementation is permitted to omit creating the tem-
7782 porary object to hold the function return value [...]
7783
7784 So, if this is a value-returning function that always returns the same
7785 local variable, remember it.
7786
7787 It might be nice to be more flexible, and choose the first suitable
7788 variable even if the function sometimes returns something else, but
7789 then we run the risk of clobbering the variable we chose if the other
7790 returned expression uses the chosen variable somehow. And people expect
7791 this restriction, anyway. (jason 2000-11-19)
7792
7793 See finish_function and finalize_nrv for the rest of this optimization. */
7794
7795 named_return_value_okay_p =
7796 (retval != NULL_TREE
7797 /* Must be a local, automatic variable. */
7798 && TREE_CODE (retval) == VAR_DECL
7799 && DECL_CONTEXT (retval) == current_function_decl
7800 && ! TREE_STATIC (retval)
7801 && ! DECL_ANON_UNION_VAR_P (retval)
7802 && (DECL_ALIGN (retval)
7803 >= DECL_ALIGN (DECL_RESULT (current_function_decl)))
7804 /* The cv-unqualified type of the returned value must be the
7805 same as the cv-unqualified return type of the
7806 function. */
7807 && same_type_p ((TYPE_MAIN_VARIANT (TREE_TYPE (retval))),
7808 (TYPE_MAIN_VARIANT
7809 (TREE_TYPE (TREE_TYPE (current_function_decl)))))
7810 /* And the returned value must be non-volatile. */
7811 && ! TYPE_VOLATILE (TREE_TYPE (retval)));
7812
7813 if (fn_returns_value_p && flag_elide_constructors)
7814 {
7815 if (named_return_value_okay_p
7816 && (current_function_return_value == NULL_TREE
7817 || current_function_return_value == retval))
7818 current_function_return_value = retval;
7819 else
7820 current_function_return_value = error_mark_node;
7821 }
7822
7823 /* We don't need to do any conversions when there's nothing being
7824 returned. */
7825 if (!retval)
7826 return NULL_TREE;
7827
7828 /* Do any required conversions. */
7829 if (retval == result || DECL_CONSTRUCTOR_P (current_function_decl))
7830 /* No conversions are required. */
7831 ;
7832 else
7833 {
7834 /* The type the function is declared to return. */
7835 tree functype = TREE_TYPE (TREE_TYPE (current_function_decl));
7836 int flags = LOOKUP_NORMAL | LOOKUP_ONLYCONVERTING;
7837
7838 /* The functype's return type will have been set to void, if it
7839 was an incomplete type. Just treat this as 'return;' */
7840 if (VOID_TYPE_P (functype))
7841 return error_mark_node;
7842
7843 /* Under C++0x [12.8/16 class.copy], a returned lvalue is sometimes
7844 treated as an rvalue for the purposes of overload resolution to
7845 favor move constructors over copy constructors. */
7846 if ((cxx_dialect != cxx98)
7847 && named_return_value_okay_p
7848 /* The variable must not have the `volatile' qualifier. */
7849 && !CP_TYPE_VOLATILE_P (TREE_TYPE (retval))
7850 /* The return type must be a class type. */
7851 && CLASS_TYPE_P (TREE_TYPE (TREE_TYPE (current_function_decl))))
7852 flags = flags | LOOKUP_PREFER_RVALUE;
7853
7854 /* First convert the value to the function's return type, then
7855 to the type of return value's location to handle the
7856 case that functype is smaller than the valtype. */
7857 retval = convert_for_initialization
7858 (NULL_TREE, functype, retval, flags, ICR_RETURN, NULL_TREE, 0,
7859 tf_warning_or_error);
7860 retval = convert (valtype, retval);
7861
7862 /* If the conversion failed, treat this just like `return;'. */
7863 if (retval == error_mark_node)
7864 return retval;
7865 /* We can't initialize a register from a AGGR_INIT_EXPR. */
7866 else if (! cfun->returns_struct
7867 && TREE_CODE (retval) == TARGET_EXPR
7868 && TREE_CODE (TREE_OPERAND (retval, 1)) == AGGR_INIT_EXPR)
7869 retval = build2 (COMPOUND_EXPR, TREE_TYPE (retval), retval,
7870 TREE_OPERAND (retval, 0));
7871 else
7872 maybe_warn_about_returning_address_of_local (retval);
7873 }
7874
7875 /* Actually copy the value returned into the appropriate location. */
7876 if (retval && retval != result)
7877 retval = build2 (INIT_EXPR, TREE_TYPE (result), result, retval);
7878
7879 return retval;
7880 }
7881
7882 \f
7883 /* Returns nonzero if the pointer-type FROM can be converted to the
7884 pointer-type TO via a qualification conversion. If CONSTP is -1,
7885 then we return nonzero if the pointers are similar, and the
7886 cv-qualification signature of FROM is a proper subset of that of TO.
7887
7888 If CONSTP is positive, then all outer pointers have been
7889 const-qualified. */
7890
7891 static int
7892 comp_ptr_ttypes_real (tree to, tree from, int constp)
7893 {
7894 bool to_more_cv_qualified = false;
7895 bool is_opaque_pointer = false;
7896
7897 for (; ; to = TREE_TYPE (to), from = TREE_TYPE (from))
7898 {
7899 if (TREE_CODE (to) != TREE_CODE (from))
7900 return 0;
7901
7902 if (TREE_CODE (from) == OFFSET_TYPE
7903 && !same_type_p (TYPE_OFFSET_BASETYPE (from),
7904 TYPE_OFFSET_BASETYPE (to)))
7905 return 0;
7906
7907 /* Const and volatile mean something different for function types,
7908 so the usual checks are not appropriate. */
7909 if (TREE_CODE (to) != FUNCTION_TYPE && TREE_CODE (to) != METHOD_TYPE)
7910 {
7911 /* In Objective-C++, some types may have been 'volatilized' by
7912 the compiler for EH; when comparing them here, the volatile
7913 qualification must be ignored. */
7914 tree nv_to = objc_non_volatilized_type (to);
7915 tree nv_from = objc_non_volatilized_type (from);
7916
7917 if (!at_least_as_qualified_p (nv_to, nv_from))
7918 return 0;
7919
7920 if (!at_least_as_qualified_p (nv_from, nv_to))
7921 {
7922 if (constp == 0)
7923 return 0;
7924 to_more_cv_qualified = true;
7925 }
7926
7927 if (constp > 0)
7928 constp &= TYPE_READONLY (nv_to);
7929 }
7930
7931 if (TREE_CODE (to) == VECTOR_TYPE)
7932 is_opaque_pointer = vector_targets_convertible_p (to, from);
7933
7934 if (TREE_CODE (to) != POINTER_TYPE && !TYPE_PTRMEM_P (to))
7935 return ((constp >= 0 || to_more_cv_qualified)
7936 && (is_opaque_pointer
7937 || same_type_ignoring_top_level_qualifiers_p (to, from)));
7938 }
7939 }
7940
7941 /* When comparing, say, char ** to char const **, this function takes
7942 the 'char *' and 'char const *'. Do not pass non-pointer/reference
7943 types to this function. */
7944
7945 int
7946 comp_ptr_ttypes (tree to, tree from)
7947 {
7948 return comp_ptr_ttypes_real (to, from, 1);
7949 }
7950
7951 /* Returns true iff FNTYPE is a non-class type that involves
7952 error_mark_node. We can get FUNCTION_TYPE with buried error_mark_node
7953 if a parameter type is ill-formed. */
7954
7955 bool
7956 error_type_p (const_tree type)
7957 {
7958 tree t;
7959
7960 switch (TREE_CODE (type))
7961 {
7962 case ERROR_MARK:
7963 return true;
7964
7965 case POINTER_TYPE:
7966 case REFERENCE_TYPE:
7967 case OFFSET_TYPE:
7968 return error_type_p (TREE_TYPE (type));
7969
7970 case FUNCTION_TYPE:
7971 case METHOD_TYPE:
7972 if (error_type_p (TREE_TYPE (type)))
7973 return true;
7974 for (t = TYPE_ARG_TYPES (type); t; t = TREE_CHAIN (t))
7975 if (error_type_p (TREE_VALUE (t)))
7976 return true;
7977 return false;
7978
7979 case RECORD_TYPE:
7980 if (TYPE_PTRMEMFUNC_P (type))
7981 return error_type_p (TYPE_PTRMEMFUNC_FN_TYPE (type));
7982 return false;
7983
7984 default:
7985 return false;
7986 }
7987 }
7988
7989 /* Returns 1 if to and from are (possibly multi-level) pointers to the same
7990 type or inheritance-related types, regardless of cv-quals. */
7991
7992 int
7993 ptr_reasonably_similar (const_tree to, const_tree from)
7994 {
7995 for (; ; to = TREE_TYPE (to), from = TREE_TYPE (from))
7996 {
7997 /* Any target type is similar enough to void. */
7998 if (TREE_CODE (to) == VOID_TYPE)
7999 return !error_type_p (from);
8000 if (TREE_CODE (from) == VOID_TYPE)
8001 return !error_type_p (to);
8002
8003 if (TREE_CODE (to) != TREE_CODE (from))
8004 return 0;
8005
8006 if (TREE_CODE (from) == OFFSET_TYPE
8007 && comptypes (TYPE_OFFSET_BASETYPE (to),
8008 TYPE_OFFSET_BASETYPE (from),
8009 COMPARE_BASE | COMPARE_DERIVED))
8010 continue;
8011
8012 if (TREE_CODE (to) == VECTOR_TYPE
8013 && vector_types_convertible_p (to, from, false))
8014 return 1;
8015
8016 if (TREE_CODE (to) == INTEGER_TYPE
8017 && TYPE_PRECISION (to) == TYPE_PRECISION (from))
8018 return 1;
8019
8020 if (TREE_CODE (to) == FUNCTION_TYPE)
8021 return !error_type_p (to) && !error_type_p (from);
8022
8023 if (TREE_CODE (to) != POINTER_TYPE)
8024 return comptypes
8025 (TYPE_MAIN_VARIANT (to), TYPE_MAIN_VARIANT (from),
8026 COMPARE_BASE | COMPARE_DERIVED);
8027 }
8028 }
8029
8030 /* Return true if TO and FROM (both of which are POINTER_TYPEs or
8031 pointer-to-member types) are the same, ignoring cv-qualification at
8032 all levels. */
8033
8034 bool
8035 comp_ptr_ttypes_const (tree to, tree from)
8036 {
8037 bool is_opaque_pointer = false;
8038
8039 for (; ; to = TREE_TYPE (to), from = TREE_TYPE (from))
8040 {
8041 if (TREE_CODE (to) != TREE_CODE (from))
8042 return false;
8043
8044 if (TREE_CODE (from) == OFFSET_TYPE
8045 && same_type_p (TYPE_OFFSET_BASETYPE (from),
8046 TYPE_OFFSET_BASETYPE (to)))
8047 continue;
8048
8049 if (TREE_CODE (to) == VECTOR_TYPE)
8050 is_opaque_pointer = vector_targets_convertible_p (to, from);
8051
8052 if (TREE_CODE (to) != POINTER_TYPE)
8053 return (is_opaque_pointer
8054 || same_type_ignoring_top_level_qualifiers_p (to, from));
8055 }
8056 }
8057
8058 /* Returns the type qualifiers for this type, including the qualifiers on the
8059 elements for an array type. */
8060
8061 int
8062 cp_type_quals (const_tree type)
8063 {
8064 int quals;
8065 /* This CONST_CAST is okay because strip_array_types returns its
8066 argument unmodified and we assign it to a const_tree. */
8067 type = strip_array_types (CONST_CAST_TREE (type));
8068 if (type == error_mark_node
8069 /* Quals on a FUNCTION_TYPE are memfn quals. */
8070 || TREE_CODE (type) == FUNCTION_TYPE)
8071 return TYPE_UNQUALIFIED;
8072 quals = TYPE_QUALS (type);
8073 /* METHOD and REFERENCE_TYPEs should never have quals. */
8074 gcc_assert ((TREE_CODE (type) != METHOD_TYPE
8075 && TREE_CODE (type) != REFERENCE_TYPE)
8076 || ((quals & (TYPE_QUAL_CONST|TYPE_QUAL_VOLATILE))
8077 == TYPE_UNQUALIFIED));
8078 return quals;
8079 }
8080
8081 /* Returns the function-cv-quals for TYPE, which must be a FUNCTION_TYPE or
8082 METHOD_TYPE. */
8083
8084 int
8085 type_memfn_quals (const_tree type)
8086 {
8087 if (TREE_CODE (type) == FUNCTION_TYPE)
8088 return TYPE_QUALS (type);
8089 else if (TREE_CODE (type) == METHOD_TYPE)
8090 return cp_type_quals (TREE_TYPE (TREE_VALUE (TYPE_ARG_TYPES (type))));
8091 else
8092 gcc_unreachable ();
8093 }
8094
8095 /* Returns the FUNCTION_TYPE TYPE with its function-cv-quals changed to
8096 MEMFN_QUALS. */
8097
8098 tree
8099 apply_memfn_quals (tree type, cp_cv_quals memfn_quals)
8100 {
8101 /* Could handle METHOD_TYPE here if necessary. */
8102 gcc_assert (TREE_CODE (type) == FUNCTION_TYPE);
8103 if (TYPE_QUALS (type) == memfn_quals)
8104 return type;
8105 /* This should really have a different TYPE_MAIN_VARIANT, but that gets
8106 complex. */
8107 return build_qualified_type (type, memfn_quals);
8108 }
8109
8110 /* Returns nonzero if TYPE is const or volatile. */
8111
8112 bool
8113 cv_qualified_p (const_tree type)
8114 {
8115 int quals = cp_type_quals (type);
8116 return (quals & (TYPE_QUAL_CONST|TYPE_QUAL_VOLATILE)) != 0;
8117 }
8118
8119 /* Returns nonzero if the TYPE contains a mutable member. */
8120
8121 bool
8122 cp_has_mutable_p (const_tree type)
8123 {
8124 /* This CONST_CAST is okay because strip_array_types returns its
8125 argument unmodified and we assign it to a const_tree. */
8126 type = strip_array_types (CONST_CAST_TREE(type));
8127
8128 return CLASS_TYPE_P (type) && CLASSTYPE_HAS_MUTABLE (type);
8129 }
8130
8131 /* Set TREE_READONLY and TREE_VOLATILE on DECL as indicated by the
8132 TYPE_QUALS. For a VAR_DECL, this may be an optimistic
8133 approximation. In particular, consider:
8134
8135 int f();
8136 struct S { int i; };
8137 const S s = { f(); }
8138
8139 Here, we will make "s" as TREE_READONLY (because it is declared
8140 "const") -- only to reverse ourselves upon seeing that the
8141 initializer is non-constant. */
8142
8143 void
8144 cp_apply_type_quals_to_decl (int type_quals, tree decl)
8145 {
8146 tree type = TREE_TYPE (decl);
8147
8148 if (type == error_mark_node)
8149 return;
8150
8151 if (TREE_CODE (decl) == TYPE_DECL)
8152 return;
8153
8154 gcc_assert (!(TREE_CODE (type) == FUNCTION_TYPE
8155 && type_quals != TYPE_UNQUALIFIED));
8156
8157 /* Avoid setting TREE_READONLY incorrectly. */
8158 if (/* If the object has a constructor, the constructor may modify
8159 the object. */
8160 TYPE_NEEDS_CONSTRUCTING (type)
8161 /* If the type isn't complete, we don't know yet if it will need
8162 constructing. */
8163 || !COMPLETE_TYPE_P (type)
8164 /* If the type has a mutable component, that component might be
8165 modified. */
8166 || TYPE_HAS_MUTABLE_P (type))
8167 type_quals &= ~TYPE_QUAL_CONST;
8168
8169 c_apply_type_quals_to_decl (type_quals, decl);
8170 }
8171
8172 /* Subroutine of casts_away_constness. Make T1 and T2 point at
8173 exemplar types such that casting T1 to T2 is casting away constness
8174 if and only if there is no implicit conversion from T1 to T2. */
8175
8176 static void
8177 casts_away_constness_r (tree *t1, tree *t2)
8178 {
8179 int quals1;
8180 int quals2;
8181
8182 /* [expr.const.cast]
8183
8184 For multi-level pointer to members and multi-level mixed pointers
8185 and pointers to members (conv.qual), the "member" aspect of a
8186 pointer to member level is ignored when determining if a const
8187 cv-qualifier has been cast away. */
8188 /* [expr.const.cast]
8189
8190 For two pointer types:
8191
8192 X1 is T1cv1,1 * ... cv1,N * where T1 is not a pointer type
8193 X2 is T2cv2,1 * ... cv2,M * where T2 is not a pointer type
8194 K is min(N,M)
8195
8196 casting from X1 to X2 casts away constness if, for a non-pointer
8197 type T there does not exist an implicit conversion (clause
8198 _conv_) from:
8199
8200 Tcv1,(N-K+1) * cv1,(N-K+2) * ... cv1,N *
8201
8202 to
8203
8204 Tcv2,(M-K+1) * cv2,(M-K+2) * ... cv2,M *. */
8205 if ((!TYPE_PTR_P (*t1) && !TYPE_PTRMEM_P (*t1))
8206 || (!TYPE_PTR_P (*t2) && !TYPE_PTRMEM_P (*t2)))
8207 {
8208 *t1 = cp_build_qualified_type (void_type_node,
8209 cp_type_quals (*t1));
8210 *t2 = cp_build_qualified_type (void_type_node,
8211 cp_type_quals (*t2));
8212 return;
8213 }
8214
8215 quals1 = cp_type_quals (*t1);
8216 quals2 = cp_type_quals (*t2);
8217
8218 if (TYPE_PTRMEM_P (*t1))
8219 *t1 = TYPE_PTRMEM_POINTED_TO_TYPE (*t1);
8220 else
8221 *t1 = TREE_TYPE (*t1);
8222 if (TYPE_PTRMEM_P (*t2))
8223 *t2 = TYPE_PTRMEM_POINTED_TO_TYPE (*t2);
8224 else
8225 *t2 = TREE_TYPE (*t2);
8226
8227 casts_away_constness_r (t1, t2);
8228 *t1 = build_pointer_type (*t1);
8229 *t2 = build_pointer_type (*t2);
8230 *t1 = cp_build_qualified_type (*t1, quals1);
8231 *t2 = cp_build_qualified_type (*t2, quals2);
8232 }
8233
8234 /* Returns nonzero if casting from TYPE1 to TYPE2 casts away
8235 constness.
8236
8237 ??? This function returns non-zero if casting away qualifiers not
8238 just const. We would like to return to the caller exactly which
8239 qualifiers are casted away to give more accurate diagnostics.
8240 */
8241
8242 static bool
8243 casts_away_constness (tree t1, tree t2)
8244 {
8245 if (TREE_CODE (t2) == REFERENCE_TYPE)
8246 {
8247 /* [expr.const.cast]
8248
8249 Casting from an lvalue of type T1 to an lvalue of type T2
8250 using a reference cast casts away constness if a cast from an
8251 rvalue of type "pointer to T1" to the type "pointer to T2"
8252 casts away constness. */
8253 t1 = (TREE_CODE (t1) == REFERENCE_TYPE ? TREE_TYPE (t1) : t1);
8254 return casts_away_constness (build_pointer_type (t1),
8255 build_pointer_type (TREE_TYPE (t2)));
8256 }
8257
8258 if (TYPE_PTRMEM_P (t1) && TYPE_PTRMEM_P (t2))
8259 /* [expr.const.cast]
8260
8261 Casting from an rvalue of type "pointer to data member of X
8262 of type T1" to the type "pointer to data member of Y of type
8263 T2" casts away constness if a cast from an rvalue of type
8264 "pointer to T1" to the type "pointer to T2" casts away
8265 constness. */
8266 return casts_away_constness
8267 (build_pointer_type (TYPE_PTRMEM_POINTED_TO_TYPE (t1)),
8268 build_pointer_type (TYPE_PTRMEM_POINTED_TO_TYPE (t2)));
8269
8270 /* Casting away constness is only something that makes sense for
8271 pointer or reference types. */
8272 if (TREE_CODE (t1) != POINTER_TYPE
8273 || TREE_CODE (t2) != POINTER_TYPE)
8274 return false;
8275
8276 /* Top-level qualifiers don't matter. */
8277 t1 = TYPE_MAIN_VARIANT (t1);
8278 t2 = TYPE_MAIN_VARIANT (t2);
8279 casts_away_constness_r (&t1, &t2);
8280 if (!can_convert (t2, t1))
8281 return true;
8282
8283 return false;
8284 }
8285
8286 /* If T is a REFERENCE_TYPE return the type to which T refers.
8287 Otherwise, return T itself. */
8288
8289 tree
8290 non_reference (tree t)
8291 {
8292 if (TREE_CODE (t) == REFERENCE_TYPE)
8293 t = TREE_TYPE (t);
8294 return t;
8295 }
8296
8297
8298 /* Return nonzero if REF is an lvalue valid for this language;
8299 otherwise, print an error message and return zero. USE says
8300 how the lvalue is being used and so selects the error message. */
8301
8302 int
8303 lvalue_or_else (tree ref, enum lvalue_use use, tsubst_flags_t complain)
8304 {
8305 cp_lvalue_kind kind = lvalue_kind (ref);
8306
8307 if (kind == clk_none)
8308 {
8309 if (complain & tf_error)
8310 lvalue_error (use);
8311 return 0;
8312 }
8313 else if (kind & (clk_rvalueref|clk_class))
8314 {
8315 if (!(complain & tf_error))
8316 return 0;
8317 if (kind & clk_class)
8318 /* Make this a permerror because we used to accept it. */
8319 permerror (input_location, "using temporary as lvalue");
8320 else
8321 error ("using xvalue (rvalue reference) as lvalue");
8322 }
8323 return 1;
8324 }
8325