e383405334889c26a4c0c6f70ac46ff494ee3955
[gcc.git] / gcc / cp / init.c
1 /* Handle initialization things in C++.
2 Copyright (C) 1987, 89, 92-96, 1997 Free Software Foundation, Inc.
3 Contributed by Michael Tiemann (tiemann@cygnus.com)
4
5 This file is part of GNU CC.
6
7 GNU CC is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 2, or (at your option)
10 any later version.
11
12 GNU CC is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
16
17 You should have received a copy of the GNU General Public License
18 along with GNU CC; see the file COPYING. If not, write to
19 the Free Software Foundation, 59 Temple Place - Suite 330,
20 Boston, MA 02111-1307, USA. */
21
22 /* High-level class interface. */
23
24 #include "config.h"
25 #include <stdio.h>
26 #include "tree.h"
27 #include "rtl.h"
28 #include "cp-tree.h"
29 #include "flags.h"
30 #include "output.h"
31 #include "except.h"
32 #include "expr.h"
33
34 extern void compiler_error ();
35
36 /* In C++, structures with well-defined constructors are initialized by
37 those constructors, unasked. CURRENT_BASE_INIT_LIST
38 holds a list of stmts for a BASE_INIT term in the grammar.
39 This list has one element for each base class which must be
40 initialized. The list elements are [basename, init], with
41 type basetype. This allows the possibly anachronistic form
42 (assuming d : a, b, c) "d (int a) : c(a+5), b (a-4), a (a+3)"
43 where each successive term can be handed down the constructor
44 line. Perhaps this was not intended. */
45 tree current_base_init_list, current_member_init_list;
46
47 static void expand_aggr_vbase_init_1 PROTO((tree, tree, tree, tree));
48 static void expand_aggr_vbase_init PROTO((tree, tree, tree, tree));
49 static void expand_aggr_init_1 PROTO((tree, tree, tree, tree, int,
50 int));
51 static void expand_default_init PROTO((tree, tree, tree, tree, int,
52 int));
53 static tree build_vec_delete_1 PROTO((tree, tree, tree, tree, tree,
54 int));
55 static void perform_member_init PROTO((tree, tree, tree, int));
56 static void sort_base_init PROTO((tree, tree *, tree *));
57 static tree build_builtin_call PROTO((tree, tree, tree));
58 static tree build_array_eh_cleanup PROTO((tree, tree, tree));
59 static int member_init_ok_or_else PROTO((tree, tree, char *));
60 static void expand_virtual_init PROTO((tree, tree));
61 static tree sort_member_init PROTO((tree));
62 static tree build_partial_cleanup_for PROTO((tree));
63 static tree initializing_context PROTO((tree));
64
65 /* Cache _builtin_new and _builtin_delete exprs. */
66 static tree BIN, BID, BIVN, BIVD;
67
68 /* Cache the identifier nodes for the magic field of a new cookie. */
69 static tree nc_nelts_field_id;
70
71 static tree minus_one;
72
73 /* Set up local variable for this file. MUST BE CALLED AFTER
74 INIT_DECL_PROCESSING. */
75
76 static tree BI_header_type, BI_header_size;
77
78 void init_init_processing ()
79 {
80 tree fields[1];
81
82 /* Define implicit `operator new' and `operator delete' functions. */
83 BIN = default_conversion (get_first_fn (IDENTIFIER_GLOBAL_VALUE (ansi_opname[(int) NEW_EXPR])));
84 TREE_USED (TREE_OPERAND (BIN, 0)) = 0;
85 BID = default_conversion (get_first_fn (IDENTIFIER_GLOBAL_VALUE (ansi_opname[(int) DELETE_EXPR])));
86 TREE_USED (TREE_OPERAND (BID, 0)) = 0;
87 BIVN = default_conversion (get_first_fn (IDENTIFIER_GLOBAL_VALUE (ansi_opname[(int) VEC_NEW_EXPR])));
88 TREE_USED (TREE_OPERAND (BIVN, 0)) = 0;
89 BIVD = default_conversion (get_first_fn (IDENTIFIER_GLOBAL_VALUE (ansi_opname[(int) VEC_DELETE_EXPR])));
90 TREE_USED (TREE_OPERAND (BIVD, 0)) = 0;
91 minus_one = build_int_2 (-1, -1);
92
93 /* Define the structure that holds header information for
94 arrays allocated via operator new. */
95 BI_header_type = make_lang_type (RECORD_TYPE);
96 nc_nelts_field_id = get_identifier ("nelts");
97 fields[0] = build_lang_field_decl (FIELD_DECL, nc_nelts_field_id, sizetype);
98 finish_builtin_type (BI_header_type, "__new_cookie", fields,
99 0, double_type_node);
100 BI_header_size = size_in_bytes (BI_header_type);
101 }
102
103 /* Subroutine of emit_base_init. For BINFO, initialize all the
104 virtual function table pointers, except those that come from
105 virtual base classes. Initialize binfo's vtable pointer, if
106 INIT_SELF is true. CAN_ELIDE is true when we know that all virtual
107 function table pointers in all bases have been initialized already,
108 probably because their constructors have just be run. ADDR is the
109 pointer to the object whos vtables we are going to initialize.
110
111 REAL_BINFO is usually the same as BINFO, except when addr is not of
112 pointer to the type of the real derived type that we want to
113 initialize for. This is the case when addr is a pointer to a sub
114 object of a complete object, and we only want to do part of the
115 complete object's initialization of vtable pointers. This is done
116 for all virtual table pointers in virtual base classes. REAL_BINFO
117 is used to find the BINFO_VTABLE that we initialize with. BINFO is
118 used for conversions of addr to subobjects.
119
120 BINFO_TYPE (real_binfo) must be BINFO_TYPE (binfo).
121
122 Relies upon binfo being inside TYPE_BINFO (TREE_TYPE (TREE_TYPE
123 (addr))). */
124
125 void
126 expand_direct_vtbls_init (real_binfo, binfo, init_self, can_elide, addr)
127 tree real_binfo, binfo, addr;
128 int init_self, can_elide;
129 {
130 tree real_binfos = BINFO_BASETYPES (real_binfo);
131 tree binfos = BINFO_BASETYPES (binfo);
132 int i, n_baselinks = real_binfos ? TREE_VEC_LENGTH (real_binfos) : 0;
133
134 for (i = 0; i < n_baselinks; i++)
135 {
136 tree real_base_binfo = TREE_VEC_ELT (real_binfos, i);
137 tree base_binfo = TREE_VEC_ELT (binfos, i);
138 int is_not_base_vtable
139 = i != CLASSTYPE_VFIELD_PARENT (BINFO_TYPE (real_binfo));
140 if (! TREE_VIA_VIRTUAL (real_base_binfo))
141 expand_direct_vtbls_init (real_base_binfo, base_binfo,
142 is_not_base_vtable, can_elide, addr);
143 }
144 #if 0
145 /* Before turning this on, make sure it is correct. */
146 if (can_elide && ! BINFO_MODIFIED (binfo))
147 return;
148 #endif
149 /* Should we use something besides CLASSTYPE_VFIELDS? */
150 if (init_self && CLASSTYPE_VFIELDS (BINFO_TYPE (real_binfo)))
151 {
152 tree base_ptr = convert_pointer_to_real (binfo, addr);
153 expand_virtual_init (real_binfo, base_ptr);
154 }
155 }
156 \f
157 /* 348 - 351 */
158 /* Subroutine of emit_base_init. */
159
160 static void
161 perform_member_init (member, name, init, explicit)
162 tree member, name, init;
163 int explicit;
164 {
165 tree decl;
166 tree type = TREE_TYPE (member);
167
168 expand_start_target_temps ();
169
170 if (TYPE_NEEDS_CONSTRUCTING (type)
171 || (init && TYPE_HAS_CONSTRUCTOR (type)))
172 {
173 /* Since `init' is already a TREE_LIST on the current_member_init_list,
174 only build it into one if we aren't already a list. */
175 if (init != NULL_TREE && TREE_CODE (init) != TREE_LIST)
176 init = build_expr_list (NULL_TREE, init);
177
178 decl = build_component_ref (current_class_ref, name, NULL_TREE, explicit);
179
180 if (explicit
181 && TREE_CODE (type) == ARRAY_TYPE
182 && init != NULL_TREE
183 && TREE_CHAIN (init) == NULL_TREE
184 && TREE_CODE (TREE_TYPE (TREE_VALUE (init))) == ARRAY_TYPE)
185 {
186 /* Initialization of one array from another. */
187 expand_vec_init (TREE_OPERAND (decl, 1), decl,
188 array_type_nelts (type), TREE_VALUE (init), 1);
189 }
190 else
191 expand_aggr_init (decl, init, 0, 0);
192 }
193 else
194 {
195 if (init == NULL_TREE)
196 {
197 if (explicit)
198 {
199 cp_error ("incomplete initializer for member `%D' of class `%T' which has no constructor",
200 member, current_class_type);
201 init = error_mark_node;
202 }
203 /* member traversal: note it leaves init NULL */
204 else if (TREE_CODE (TREE_TYPE (member)) == REFERENCE_TYPE)
205 cp_pedwarn ("uninitialized reference member `%D'", member);
206 }
207 else if (TREE_CODE (init) == TREE_LIST)
208 {
209 /* There was an explicit member initialization. Do some
210 work in that case. */
211 if (TREE_CHAIN (init))
212 {
213 warning ("initializer list treated as compound expression");
214 init = build_compound_expr (init);
215 }
216 else
217 init = TREE_VALUE (init);
218 }
219
220 /* We only build this with a null init if we got it from the
221 current_member_init_list. */
222 if (init || explicit)
223 {
224 decl = build_component_ref (current_class_ref, name, NULL_TREE, explicit);
225 expand_expr_stmt (build_modify_expr (decl, INIT_EXPR, init));
226 }
227 }
228
229 expand_end_target_temps ();
230 free_temp_slots ();
231
232 if (TYPE_NEEDS_DESTRUCTOR (type))
233 {
234 tree expr;
235
236 /* All cleanups must be on the function_obstack. */
237 push_obstacks_nochange ();
238 resume_temporary_allocation ();
239
240 expr = build_component_ref (current_class_ref, name, NULL_TREE, explicit);
241 expr = build_delete (type, expr, integer_zero_node,
242 LOOKUP_NONVIRTUAL|LOOKUP_DESTRUCTOR, 0);
243
244 if (expr != error_mark_node)
245 add_partial_entry (expr);
246
247 pop_obstacks ();
248 }
249 }
250
251 extern int warn_reorder;
252
253 /* Subroutine of emit_member_init. */
254
255 static tree
256 sort_member_init (t)
257 tree t;
258 {
259 tree x, member, name, field;
260 tree init_list = NULL_TREE;
261 int last_pos = 0;
262 tree last_field;
263
264 for (member = TYPE_FIELDS (t); member ; member = TREE_CHAIN (member))
265 {
266 int pos;
267
268 /* member could be, for example, a CONST_DECL for an enumerated
269 tag; we don't want to try to initialize that, since it already
270 has a value. */
271 if (TREE_CODE (member) != FIELD_DECL || !DECL_NAME (member))
272 continue;
273
274 for (x = current_member_init_list, pos = 0; x; x = TREE_CHAIN (x), ++pos)
275 {
276 /* If we cleared this out, then pay no attention to it. */
277 if (TREE_PURPOSE (x) == NULL_TREE)
278 continue;
279 name = TREE_PURPOSE (x);
280
281 #if 0
282 /* This happens in templates, since the IDENTIFIER is replaced
283 with the COMPONENT_REF in tsubst_expr. */
284 field = (TREE_CODE (name) == COMPONENT_REF
285 ? TREE_OPERAND (name, 1) : IDENTIFIER_CLASS_VALUE (name));
286 #else
287 /* Let's find out when this happens. */
288 my_friendly_assert (TREE_CODE (name) != COMPONENT_REF, 348);
289 field = IDENTIFIER_CLASS_VALUE (name);
290 #endif
291
292 /* If one member shadows another, get the outermost one. */
293 if (TREE_CODE (field) == TREE_LIST)
294 field = TREE_VALUE (field);
295
296 if (field == member)
297 {
298 if (warn_reorder)
299 {
300 if (pos < last_pos)
301 {
302 cp_warning_at ("member initializers for `%#D'", last_field);
303 cp_warning_at (" and `%#D'", field);
304 warning (" will be re-ordered to match declaration order");
305 }
306 last_pos = pos;
307 last_field = field;
308 }
309
310 /* Make sure we won't try to work on this init again. */
311 TREE_PURPOSE (x) = NULL_TREE;
312 x = build_tree_list (name, TREE_VALUE (x));
313 goto got_it;
314 }
315 }
316
317 /* If we didn't find MEMBER in the list, create a dummy entry
318 so the two lists (INIT_LIST and the list of members) will be
319 symmetrical. */
320 x = build_tree_list (NULL_TREE, NULL_TREE);
321 got_it:
322 init_list = chainon (init_list, x);
323 }
324
325 /* Initializers for base members go at the end. */
326 for (x = current_member_init_list ; x ; x = TREE_CHAIN (x))
327 {
328 name = TREE_PURPOSE (x);
329 if (name)
330 {
331 if (purpose_member (name, init_list))
332 {
333 cp_error ("multiple initializations given for member `%D'",
334 IDENTIFIER_CLASS_VALUE (name));
335 continue;
336 }
337
338 init_list = chainon (init_list,
339 build_tree_list (name, TREE_VALUE (x)));
340 TREE_PURPOSE (x) = NULL_TREE;
341 }
342 }
343
344 return init_list;
345 }
346
347 static void
348 sort_base_init (t, rbase_ptr, vbase_ptr)
349 tree t, *rbase_ptr, *vbase_ptr;
350 {
351 tree binfos = BINFO_BASETYPES (TYPE_BINFO (t));
352 int n_baseclasses = binfos ? TREE_VEC_LENGTH (binfos) : 0;
353
354 int i;
355 tree x;
356 tree last;
357
358 /* For warn_reorder. */
359 int last_pos = 0;
360 tree last_base = NULL_TREE;
361
362 tree rbases = NULL_TREE;
363 tree vbases = NULL_TREE;
364
365 /* First walk through and splice out vbase and invalid initializers.
366 Also replace names with binfos. */
367
368 last = tree_cons (NULL_TREE, NULL_TREE, current_base_init_list);
369 for (x = TREE_CHAIN (last); x; x = TREE_CHAIN (x))
370 {
371 tree basetype = TREE_PURPOSE (x);
372 tree binfo;
373
374 if (basetype == NULL_TREE)
375 {
376 /* Initializer for single base class. Must not
377 use multiple inheritance or this is ambiguous. */
378 switch (n_baseclasses)
379 {
380 case 0:
381 cp_error ("`%T' does not have a base class to initialize",
382 current_class_type);
383 return;
384 case 1:
385 break;
386 default:
387 cp_error ("unnamed initializer ambiguous for `%T' which uses multiple inheritance",
388 current_class_type);
389 return;
390 }
391 binfo = TREE_VEC_ELT (binfos, 0);
392 }
393 else if (is_aggr_type (basetype, 1))
394 {
395 binfo = binfo_or_else (basetype, t);
396 if (binfo == NULL_TREE)
397 continue;
398
399 /* Virtual base classes are special cases. Their initializers
400 are recorded with this constructor, and they are used when
401 this constructor is the top-level constructor called. */
402 if (TREE_VIA_VIRTUAL (binfo))
403 {
404 tree v = CLASSTYPE_VBASECLASSES (t);
405 while (BINFO_TYPE (v) != BINFO_TYPE (binfo))
406 v = TREE_CHAIN (v);
407
408 vbases = tree_cons (v, TREE_VALUE (x), vbases);
409 continue;
410 }
411 else
412 {
413 /* Otherwise, if it is not an immediate base class, complain. */
414 for (i = n_baseclasses-1; i >= 0; i--)
415 if (BINFO_TYPE (binfo) == BINFO_TYPE (TREE_VEC_ELT (binfos, i)))
416 break;
417 if (i < 0)
418 {
419 cp_error ("`%T' is not an immediate base class of `%T'",
420 basetype, current_class_type);
421 continue;
422 }
423 }
424 }
425 else
426 my_friendly_abort (365);
427
428 TREE_PURPOSE (x) = binfo;
429 TREE_CHAIN (last) = x;
430 last = x;
431 }
432 TREE_CHAIN (last) = NULL_TREE;
433
434 /* Now walk through our regular bases and make sure they're initialized. */
435
436 for (i = 0; i < n_baseclasses; ++i)
437 {
438 tree base_binfo = TREE_VEC_ELT (binfos, i);
439 int pos;
440
441 if (TREE_VIA_VIRTUAL (base_binfo))
442 continue;
443
444 for (x = current_base_init_list, pos = 0; x; x = TREE_CHAIN (x), ++pos)
445 {
446 tree binfo = TREE_PURPOSE (x);
447
448 if (binfo == NULL_TREE)
449 continue;
450
451 if (binfo == base_binfo)
452 {
453 if (warn_reorder)
454 {
455 if (pos < last_pos)
456 {
457 cp_warning_at ("base initializers for `%#T'", last_base);
458 cp_warning_at (" and `%#T'", BINFO_TYPE (binfo));
459 warning (" will be re-ordered to match inheritance order");
460 }
461 last_pos = pos;
462 last_base = BINFO_TYPE (binfo);
463 }
464
465 /* Make sure we won't try to work on this init again. */
466 TREE_PURPOSE (x) = NULL_TREE;
467 x = build_tree_list (binfo, TREE_VALUE (x));
468 goto got_it;
469 }
470 }
471
472 /* If we didn't find BASE_BINFO in the list, create a dummy entry
473 so the two lists (RBASES and the list of bases) will be
474 symmetrical. */
475 x = build_tree_list (NULL_TREE, NULL_TREE);
476 got_it:
477 rbases = chainon (rbases, x);
478 }
479
480 *rbase_ptr = rbases;
481 *vbase_ptr = vbases;
482 }
483
484 /* Perform partial cleanups for a base for exception handling. */
485
486 static tree
487 build_partial_cleanup_for (binfo)
488 tree binfo;
489 {
490 return build_scoped_method_call
491 (current_class_ref, binfo, dtor_identifier,
492 build_expr_list (NULL_TREE, integer_zero_node));
493 }
494
495 /* Perform whatever initializations have yet to be done on the base
496 class of the class variable. These actions are in the global
497 variable CURRENT_BASE_INIT_LIST. Such an action could be
498 NULL_TREE, meaning that the user has explicitly called the base
499 class constructor with no arguments.
500
501 If there is a need for a call to a constructor, we must surround
502 that call with a pushlevel/poplevel pair, since we are technically
503 at the PARM level of scope.
504
505 Argument IMMEDIATELY, if zero, forces a new sequence to be
506 generated to contain these new insns, so it can be emitted later.
507 This sequence is saved in the global variable BASE_INIT_EXPR.
508 Otherwise, the insns are emitted into the current sequence.
509
510 Note that emit_base_init does *not* initialize virtual base
511 classes. That is done specially, elsewhere. */
512
513 extern tree base_init_expr, rtl_expr_chain;
514
515 void
516 emit_base_init (t, immediately)
517 tree t;
518 int immediately;
519 {
520 tree member;
521 tree mem_init_list;
522 tree rbase_init_list, vbase_init_list;
523 tree t_binfo = TYPE_BINFO (t);
524 tree binfos = BINFO_BASETYPES (t_binfo);
525 int i, n_baseclasses = binfos ? TREE_VEC_LENGTH (binfos) : 0;
526 tree expr = NULL_TREE;
527
528 if (! immediately)
529 {
530 int momentary;
531 do_pending_stack_adjust ();
532 /* Make the RTL_EXPR node temporary, not momentary,
533 so that rtl_expr_chain doesn't become garbage. */
534 momentary = suspend_momentary ();
535 expr = make_node (RTL_EXPR);
536 resume_momentary (momentary);
537 start_sequence_for_rtl_expr (expr);
538 }
539
540 if (write_symbols == NO_DEBUG)
541 /* As a matter of principle, `start_sequence' should do this. */
542 emit_note (0, -1);
543 else
544 /* Always emit a line number note so we can step into constructors. */
545 emit_line_note_force (DECL_SOURCE_FILE (current_function_decl),
546 DECL_SOURCE_LINE (current_function_decl));
547
548 mem_init_list = sort_member_init (t);
549 current_member_init_list = NULL_TREE;
550
551 sort_base_init (t, &rbase_init_list, &vbase_init_list);
552 current_base_init_list = NULL_TREE;
553
554 if (TYPE_USES_VIRTUAL_BASECLASSES (t))
555 {
556 tree first_arg = TREE_CHAIN (DECL_ARGUMENTS (current_function_decl));
557
558 expand_start_cond (first_arg, 0);
559 expand_aggr_vbase_init (t_binfo, current_class_ref, current_class_ptr,
560 vbase_init_list);
561 expand_end_cond ();
562 }
563
564 /* Now, perform initialization of non-virtual base classes. */
565 for (i = 0; i < n_baseclasses; i++)
566 {
567 tree base_binfo = TREE_VEC_ELT (binfos, i);
568 tree init = void_list_node;
569
570 if (TREE_VIA_VIRTUAL (base_binfo))
571 continue;
572
573 #if 0 /* Once unsharing happens soon enough. */
574 my_friendly_assert (BINFO_INHERITANCE_CHAIN (base_binfo) == t_binfo, 999);
575 #else
576 BINFO_INHERITANCE_CHAIN (base_binfo) = t_binfo;
577 #endif
578
579 if (TREE_PURPOSE (rbase_init_list))
580 init = TREE_VALUE (rbase_init_list);
581 else if (TYPE_NEEDS_CONSTRUCTING (BINFO_TYPE (base_binfo)))
582 {
583 init = NULL_TREE;
584 if (extra_warnings && copy_args_p (current_function_decl))
585 cp_warning ("base class `%#T' should be explicitly initialized in the copy constructor",
586 BINFO_TYPE (base_binfo));
587 }
588
589 if (init != void_list_node)
590 {
591 expand_start_target_temps ();
592
593 member = convert_pointer_to_real (base_binfo, current_class_ptr);
594 expand_aggr_init_1 (base_binfo, NULL_TREE,
595 build_indirect_ref (member, NULL_PTR), init,
596 BINFO_OFFSET_ZEROP (base_binfo), LOOKUP_NORMAL);
597
598 expand_end_target_temps ();
599 free_temp_slots ();
600 }
601
602 if (TYPE_NEEDS_DESTRUCTOR (BINFO_TYPE (base_binfo)))
603 {
604 tree expr;
605
606 /* All cleanups must be on the function_obstack. */
607 push_obstacks_nochange ();
608 resume_temporary_allocation ();
609 expr = build_partial_cleanup_for (base_binfo);
610 pop_obstacks ();
611 add_partial_entry (expr);
612 }
613
614 rbase_init_list = TREE_CHAIN (rbase_init_list);
615 }
616
617 /* Initialize all the virtual function table fields that
618 do come from virtual base classes. */
619 if (TYPE_USES_VIRTUAL_BASECLASSES (t))
620 expand_indirect_vtbls_init (t_binfo, current_class_ref, current_class_ptr);
621
622 /* Initialize all the virtual function table fields that
623 do not come from virtual base classes. */
624 expand_direct_vtbls_init (t_binfo, t_binfo, 1, 1, current_class_ptr);
625
626 for (member = TYPE_FIELDS (t); member; member = TREE_CHAIN (member))
627 {
628 tree init, name;
629 int from_init_list;
630
631 /* member could be, for example, a CONST_DECL for an enumerated
632 tag; we don't want to try to initialize that, since it already
633 has a value. */
634 if (TREE_CODE (member) != FIELD_DECL || !DECL_NAME (member))
635 continue;
636
637 /* See if we had a user-specified member initialization. */
638 if (TREE_PURPOSE (mem_init_list))
639 {
640 name = TREE_PURPOSE (mem_init_list);
641 init = TREE_VALUE (mem_init_list);
642 from_init_list = 1;
643
644 #if 0
645 if (TREE_CODE (name) == COMPONENT_REF)
646 name = DECL_NAME (TREE_OPERAND (name, 1));
647 #else
648 /* Also see if it's ever a COMPONENT_REF here. If it is, we
649 need to do `expand_assignment (name, init, 0, 0);' and
650 a continue. */
651 my_friendly_assert (TREE_CODE (name) != COMPONENT_REF, 349);
652 #endif
653 }
654 else
655 {
656 name = DECL_NAME (member);
657 init = DECL_INITIAL (member);
658
659 from_init_list = 0;
660
661 /* Effective C++ rule 12. */
662 if (warn_ecpp && init == NULL_TREE
663 && !DECL_ARTIFICIAL (member)
664 && TREE_CODE (TREE_TYPE (member)) != ARRAY_TYPE)
665 cp_warning ("`%D' should be initialized in the member initialization list", member);
666 }
667
668 perform_member_init (member, name, init, from_init_list);
669 mem_init_list = TREE_CHAIN (mem_init_list);
670 }
671
672 /* Now initialize any members from our bases. */
673 while (mem_init_list)
674 {
675 tree name, init, field;
676
677 if (TREE_PURPOSE (mem_init_list))
678 {
679 name = TREE_PURPOSE (mem_init_list);
680 init = TREE_VALUE (mem_init_list);
681 /* XXX: this may need the COMPONENT_REF operand 0 check if
682 it turns out we actually get them. */
683 field = IDENTIFIER_CLASS_VALUE (name);
684
685 /* If one member shadows another, get the outermost one. */
686 if (TREE_CODE (field) == TREE_LIST)
687 {
688 field = TREE_VALUE (field);
689 if (decl_type_context (field) != current_class_type)
690 cp_error ("field `%D' not in immediate context", field);
691 }
692
693 #if 0
694 /* It turns out if you have an anonymous union in the
695 class, a member from it can end up not being on the
696 list of fields (rather, the type is), and therefore
697 won't be seen by the for loop above. */
698
699 /* The code in this for loop is derived from a general loop
700 which had this check in it. Theoretically, we've hit
701 every initialization for the list of members in T, so
702 we shouldn't have anything but these left in this list. */
703 my_friendly_assert (DECL_FIELD_CONTEXT (field) != t, 351);
704 #endif
705
706 perform_member_init (field, name, init, 1);
707 }
708 mem_init_list = TREE_CHAIN (mem_init_list);
709 }
710
711 if (! immediately)
712 {
713 do_pending_stack_adjust ();
714 my_friendly_assert (base_init_expr == 0, 207);
715 base_init_expr = expr;
716 TREE_TYPE (expr) = void_type_node;
717 RTL_EXPR_RTL (expr) = const0_rtx;
718 RTL_EXPR_SEQUENCE (expr) = get_insns ();
719 rtl_expr_chain = tree_cons (NULL_TREE, expr, rtl_expr_chain);
720 end_sequence ();
721 TREE_SIDE_EFFECTS (expr) = 1;
722 }
723
724 /* All the implicit try blocks we built up will be zapped
725 when we come to a real binding contour boundary. */
726 }
727
728 /* Check that all fields are properly initialized after
729 an assignment to `this'. */
730
731 void
732 check_base_init (t)
733 tree t;
734 {
735 tree member;
736 for (member = TYPE_FIELDS (t); member; member = TREE_CHAIN (member))
737 if (DECL_NAME (member) && TREE_USED (member))
738 cp_error ("field `%D' used before initialized (after assignment to `this')",
739 member);
740 }
741
742 /* This code sets up the virtual function tables appropriate for
743 the pointer DECL. It is a one-ply initialization.
744
745 BINFO is the exact type that DECL is supposed to be. In
746 multiple inheritance, this might mean "C's A" if C : A, B. */
747
748 static void
749 expand_virtual_init (binfo, decl)
750 tree binfo, decl;
751 {
752 tree type = BINFO_TYPE (binfo);
753 tree vtbl, vtbl_ptr;
754 tree vtype, vtype_binfo;
755
756 /* This code is crusty. Should be simple, like:
757 vtbl = BINFO_VTABLE (binfo);
758 */
759 vtype = DECL_CONTEXT (CLASSTYPE_VFIELD (type));
760 vtype_binfo = get_binfo (vtype, TREE_TYPE (TREE_TYPE (decl)), 0);
761 vtbl = BINFO_VTABLE (binfo_value (DECL_FIELD_CONTEXT (CLASSTYPE_VFIELD (type)), binfo));
762 assemble_external (vtbl);
763 TREE_USED (vtbl) = 1;
764 vtbl = build1 (ADDR_EXPR, build_pointer_type (TREE_TYPE (vtbl)), vtbl);
765 decl = convert_pointer_to_real (vtype_binfo, decl);
766 vtbl_ptr = build_vfield_ref (build_indirect_ref (decl, NULL_PTR), vtype);
767 if (vtbl_ptr == error_mark_node)
768 return;
769
770 /* Have to convert VTBL since array sizes may be different. */
771 vtbl = convert_force (TREE_TYPE (vtbl_ptr), vtbl, 0);
772 expand_expr_stmt (build_modify_expr (vtbl_ptr, NOP_EXPR, vtbl));
773 }
774
775 /* Subroutine of `expand_aggr_vbase_init'.
776 BINFO is the binfo of the type that is being initialized.
777 INIT_LIST is the list of initializers for the virtual baseclass. */
778
779 static void
780 expand_aggr_vbase_init_1 (binfo, exp, addr, init_list)
781 tree binfo, exp, addr, init_list;
782 {
783 tree init = purpose_member (binfo, init_list);
784 tree ref = build_indirect_ref (addr, NULL_PTR);
785
786 expand_start_target_temps ();
787
788 if (init)
789 init = TREE_VALUE (init);
790 /* Call constructors, but don't set up vtables. */
791 expand_aggr_init_1 (binfo, exp, ref, init, 0, LOOKUP_COMPLAIN);
792
793 expand_end_target_temps ();
794 free_temp_slots ();
795 }
796
797 /* Initialize this object's virtual base class pointers. This must be
798 done only at the top-level of the object being constructed.
799
800 INIT_LIST is list of initialization for constructor to perform. */
801
802 static void
803 expand_aggr_vbase_init (binfo, exp, addr, init_list)
804 tree binfo;
805 tree exp;
806 tree addr;
807 tree init_list;
808 {
809 tree type = BINFO_TYPE (binfo);
810
811 if (TYPE_USES_VIRTUAL_BASECLASSES (type))
812 {
813 tree result = init_vbase_pointers (type, addr);
814 tree vbases;
815
816 if (result)
817 expand_expr_stmt (build_compound_expr (result));
818
819 for (vbases = CLASSTYPE_VBASECLASSES (type); vbases;
820 vbases = TREE_CHAIN (vbases))
821 {
822 tree tmp = purpose_member (vbases, result);
823 expand_aggr_vbase_init_1 (vbases, exp,
824 TREE_OPERAND (TREE_VALUE (tmp), 0),
825 init_list);
826 }
827 }
828 }
829
830 /* Subroutine to perform parser actions for member initialization.
831 S_ID is the scoped identifier.
832 NAME is the name of the member.
833 INIT is the initializer, or `void_type_node' if none. */
834
835 void
836 do_member_init (s_id, name, init)
837 tree s_id, name, init;
838 {
839 tree binfo, base;
840
841 if (current_class_type == NULL_TREE
842 || ! is_aggr_typedef (s_id, 1))
843 return;
844 binfo = get_binfo (IDENTIFIER_TYPE_VALUE (s_id),
845 current_class_type, 1);
846 if (binfo == error_mark_node)
847 return;
848 if (binfo == 0)
849 {
850 error_not_base_type (IDENTIFIER_TYPE_VALUE (s_id), current_class_type);
851 return;
852 }
853
854 base = convert_pointer_to (binfo, current_class_ptr);
855 expand_member_init (build_indirect_ref (base, NULL_PTR), name, init);
856 }
857
858 /* Find the context in which this FIELD can be initialized. */
859
860 static tree
861 initializing_context (field)
862 tree field;
863 {
864 tree t = DECL_CONTEXT (field);
865
866 /* Anonymous union members can be initialized in the first enclosing
867 non-anonymous union context. */
868 while (t && ANON_AGGRNAME_P (TYPE_IDENTIFIER (t)))
869 t = TYPE_CONTEXT (t);
870 return t;
871 }
872
873 /* Function to give error message if member initialization specification
874 is erroneous. FIELD is the member we decided to initialize.
875 TYPE is the type for which the initialization is being performed.
876 FIELD must be a member of TYPE.
877
878 MEMBER_NAME is the name of the member. */
879
880 static int
881 member_init_ok_or_else (field, type, member_name)
882 tree field;
883 tree type;
884 char *member_name;
885 {
886 if (field == error_mark_node)
887 return 0;
888 if (field == NULL_TREE || initializing_context (field) != type)
889 {
890 cp_error ("class `%T' does not have any field named `%s'", type,
891 member_name);
892 return 0;
893 }
894 if (TREE_STATIC (field))
895 {
896 cp_error ("field `%#D' is static; only point of initialization is its declaration",
897 field);
898 return 0;
899 }
900
901 return 1;
902 }
903
904 /* If NAME is a viable field name for the aggregate DECL,
905 and PARMS is a viable parameter list, then expand an _EXPR
906 which describes this initialization.
907
908 Note that we do not need to chase through the class's base classes
909 to look for NAME, because if it's in that list, it will be handled
910 by the constructor for that base class.
911
912 We do not yet have a fixed-point finder to instantiate types
913 being fed to overloaded constructors. If there is a unique
914 constructor, then argument types can be got from that one.
915
916 If INIT is non-NULL, then it the initialization should
917 be placed in `current_base_init_list', where it will be processed
918 by `emit_base_init'. */
919
920 void
921 expand_member_init (exp, name, init)
922 tree exp, name, init;
923 {
924 extern tree ptr_type_node; /* should be in tree.h */
925
926 tree basetype = NULL_TREE, field;
927 tree parm;
928 tree rval, type;
929
930 if (exp == NULL_TREE)
931 return; /* complain about this later */
932
933 type = TYPE_MAIN_VARIANT (TREE_TYPE (exp));
934
935 if (name && TREE_CODE (name) == TYPE_DECL)
936 {
937 basetype = TREE_TYPE (name);
938 name = DECL_NAME (name);
939 }
940
941 if (name == NULL_TREE && IS_AGGR_TYPE (type))
942 switch (CLASSTYPE_N_BASECLASSES (type))
943 {
944 case 0:
945 error ("base class initializer specified, but no base class to initialize");
946 return;
947 case 1:
948 basetype = TYPE_BINFO_BASETYPE (type, 0);
949 break;
950 default:
951 error ("initializer for unnamed base class ambiguous");
952 cp_error ("(type `%T' uses multiple inheritance)", type);
953 return;
954 }
955
956 if (init)
957 {
958 /* The grammar should not allow fields which have names
959 that are TYPENAMEs. Therefore, if the field has
960 a non-NULL TREE_TYPE, we may assume that this is an
961 attempt to initialize a base class member of the current
962 type. Otherwise, it is an attempt to initialize a
963 member field. */
964
965 if (init == void_type_node)
966 init = NULL_TREE;
967
968 if (name == NULL_TREE || basetype)
969 {
970 tree base_init;
971
972 if (name == NULL_TREE)
973 {
974 #if 0
975 if (basetype)
976 name = TYPE_IDENTIFIER (basetype);
977 else
978 {
979 error ("no base class to initialize");
980 return;
981 }
982 #endif
983 }
984 else if (basetype != type
985 && ! current_template_parms
986 && ! vec_binfo_member (basetype,
987 TYPE_BINFO_BASETYPES (type))
988 && ! binfo_member (basetype, CLASSTYPE_VBASECLASSES (type)))
989 {
990 if (IDENTIFIER_CLASS_VALUE (name))
991 goto try_member;
992 if (TYPE_USES_VIRTUAL_BASECLASSES (type))
993 cp_error ("type `%T' is not an immediate or virtual basetype for `%T'",
994 basetype, type);
995 else
996 cp_error ("type `%T' is not an immediate basetype for `%T'",
997 basetype, type);
998 return;
999 }
1000
1001 if (purpose_member (basetype, current_base_init_list))
1002 {
1003 cp_error ("base class `%T' already initialized", basetype);
1004 return;
1005 }
1006
1007 if (warn_reorder && current_member_init_list)
1008 {
1009 cp_warning ("base initializer for `%T'", basetype);
1010 warning (" will be re-ordered to precede member initializations");
1011 }
1012
1013 base_init = build_tree_list (basetype, init);
1014 current_base_init_list = chainon (current_base_init_list, base_init);
1015 }
1016 else
1017 {
1018 tree member_init;
1019
1020 try_member:
1021 field = lookup_field (type, name, 1, 0);
1022
1023 if (! member_init_ok_or_else (field, type, IDENTIFIER_POINTER (name)))
1024 return;
1025
1026 if (purpose_member (name, current_member_init_list))
1027 {
1028 cp_error ("field `%D' already initialized", field);
1029 return;
1030 }
1031
1032 member_init = build_tree_list (name, init);
1033 current_member_init_list = chainon (current_member_init_list, member_init);
1034 }
1035 return;
1036 }
1037 else if (name == NULL_TREE)
1038 {
1039 compiler_error ("expand_member_init: name == NULL_TREE");
1040 return;
1041 }
1042
1043 basetype = type;
1044 field = lookup_field (basetype, name, 0, 0);
1045
1046 if (! member_init_ok_or_else (field, basetype, IDENTIFIER_POINTER (name)))
1047 return;
1048
1049 /* now see if there is a constructor for this type
1050 which will take these args. */
1051
1052 if (TYPE_HAS_CONSTRUCTOR (TREE_TYPE (field)))
1053 {
1054 tree parmtypes, fndecl;
1055
1056 if (TREE_CODE (exp) == VAR_DECL || TREE_CODE (exp) == PARM_DECL)
1057 {
1058 /* just know that we've seen something for this node */
1059 DECL_INITIAL (exp) = error_mark_node;
1060 TREE_USED (exp) = 1;
1061 }
1062 type = TYPE_MAIN_VARIANT (TREE_TYPE (field));
1063 parm = build_component_ref (exp, name, NULL_TREE, 0);
1064
1065 /* Now get to the constructors. */
1066 fndecl = TREE_VEC_ELT (CLASSTYPE_METHOD_VEC (type), 0);
1067
1068 if (fndecl)
1069 my_friendly_assert (TREE_CODE (fndecl) == FUNCTION_DECL, 209);
1070
1071 /* If the field is unique, we can use the parameter
1072 types to guide possible type instantiation. */
1073 if (DECL_CHAIN (fndecl) == NULL_TREE)
1074 {
1075 /* There was a confusion here between
1076 FIELD and FNDECL. The following code
1077 should be correct, but abort is here
1078 to make sure. */
1079 my_friendly_abort (48);
1080 parmtypes = FUNCTION_ARG_CHAIN (fndecl);
1081 }
1082 else
1083 {
1084 parmtypes = NULL_TREE;
1085 fndecl = NULL_TREE;
1086 }
1087
1088 init = convert_arguments (parm, parmtypes, NULL_TREE, fndecl, LOOKUP_NORMAL);
1089 if (init == NULL_TREE || TREE_TYPE (init) != error_mark_node)
1090 rval = build_method_call (NULL_TREE, ctor_identifier, init,
1091 TYPE_BINFO (type), LOOKUP_NORMAL);
1092 else
1093 return;
1094
1095 if (rval != error_mark_node)
1096 {
1097 /* Now, fill in the first parm with our guy */
1098 TREE_VALUE (TREE_OPERAND (rval, 1))
1099 = build_unary_op (ADDR_EXPR, parm, 0);
1100 TREE_TYPE (rval) = ptr_type_node;
1101 TREE_SIDE_EFFECTS (rval) = 1;
1102 }
1103 }
1104 else if (TYPE_NEEDS_CONSTRUCTING (TREE_TYPE (field)))
1105 {
1106 parm = build_component_ref (exp, name, NULL_TREE, 0);
1107 expand_aggr_init (parm, NULL_TREE, 0, 0);
1108 rval = error_mark_node;
1109 }
1110
1111 /* Now initialize the member. It does not have to
1112 be of aggregate type to receive initialization. */
1113 if (rval != error_mark_node)
1114 expand_expr_stmt (rval);
1115 }
1116
1117 /* This is like `expand_member_init', only it stores one aggregate
1118 value into another.
1119
1120 INIT comes in two flavors: it is either a value which
1121 is to be stored in EXP, or it is a parameter list
1122 to go to a constructor, which will operate on EXP.
1123 If INIT is not a parameter list for a constructor, then set
1124 LOOKUP_ONLYCONVERTING.
1125 If FLAGS is LOOKUP_ONLYCONVERTING then it is the = init form of
1126 the initializer, if FLAGS is 0, then it is the (init) form.
1127 If `init' is a CONSTRUCTOR, then we emit a warning message,
1128 explaining that such initializations are invalid.
1129
1130 ALIAS_THIS is nonzero iff we are initializing something which is
1131 essentially an alias for current_class_ref. In this case, the base
1132 constructor may move it on us, and we must keep track of such
1133 deviations.
1134
1135 If INIT resolves to a CALL_EXPR which happens to return
1136 something of the type we are looking for, then we know
1137 that we can safely use that call to perform the
1138 initialization.
1139
1140 The virtual function table pointer cannot be set up here, because
1141 we do not really know its type.
1142
1143 Virtual baseclass pointers are also set up here.
1144
1145 This never calls operator=().
1146
1147 When initializing, nothing is CONST.
1148
1149 A default copy constructor may have to be used to perform the
1150 initialization.
1151
1152 A constructor or a conversion operator may have to be used to
1153 perform the initialization, but not both, as it would be ambiguous. */
1154
1155 void
1156 expand_aggr_init (exp, init, alias_this, flags)
1157 tree exp, init;
1158 int alias_this;
1159 int flags;
1160 {
1161 tree type = TREE_TYPE (exp);
1162 int was_const = TREE_READONLY (exp);
1163 int was_volatile = TREE_THIS_VOLATILE (exp);
1164
1165 if (init == error_mark_node)
1166 return;
1167
1168 TREE_READONLY (exp) = 0;
1169 TREE_THIS_VOLATILE (exp) = 0;
1170
1171 if (init && TREE_CODE (init) != TREE_LIST)
1172 flags |= LOOKUP_ONLYCONVERTING;
1173
1174 if (TREE_CODE (type) == ARRAY_TYPE)
1175 {
1176 /* Must arrange to initialize each element of EXP
1177 from elements of INIT. */
1178 tree itype = init ? TREE_TYPE (init) : NULL_TREE;
1179 if (TYPE_READONLY (TREE_TYPE (type)) || TYPE_VOLATILE (TREE_TYPE (type)))
1180 {
1181 TREE_TYPE (exp) = TYPE_MAIN_VARIANT (type);
1182 if (init)
1183 TREE_TYPE (init) = TYPE_MAIN_VARIANT (itype);
1184 }
1185 if (init && TREE_TYPE (init) == NULL_TREE)
1186 {
1187 /* Handle bad initializers like:
1188 class COMPLEX {
1189 public:
1190 double re, im;
1191 COMPLEX(double r = 0.0, double i = 0.0) {re = r; im = i;};
1192 ~COMPLEX() {};
1193 };
1194
1195 int main(int argc, char **argv) {
1196 COMPLEX zees(1.0, 0.0)[10];
1197 }
1198 */
1199 error ("bad array initializer");
1200 return;
1201 }
1202 expand_vec_init (exp, exp, array_type_nelts (type), init,
1203 init && comptypes (TREE_TYPE (init), TREE_TYPE (exp), 1));
1204 TREE_READONLY (exp) = was_const;
1205 TREE_THIS_VOLATILE (exp) = was_volatile;
1206 TREE_TYPE (exp) = type;
1207 if (init)
1208 TREE_TYPE (init) = itype;
1209 return;
1210 }
1211
1212 if (TREE_CODE (exp) == VAR_DECL || TREE_CODE (exp) == PARM_DECL)
1213 /* just know that we've seen something for this node */
1214 TREE_USED (exp) = 1;
1215
1216 #if 0
1217 /* If initializing from a GNU C CONSTRUCTOR, consider the elts in the
1218 constructor as parameters to an implicit GNU C++ constructor. */
1219 if (init && TREE_CODE (init) == CONSTRUCTOR
1220 && TYPE_HAS_CONSTRUCTOR (type)
1221 && TREE_TYPE (init) == type)
1222 init = CONSTRUCTOR_ELTS (init);
1223 #endif
1224
1225 TREE_TYPE (exp) = TYPE_MAIN_VARIANT (type);
1226 expand_aggr_init_1 (TYPE_BINFO (type), exp, exp,
1227 init, alias_this, LOOKUP_NORMAL|flags);
1228 TREE_TYPE (exp) = type;
1229 TREE_READONLY (exp) = was_const;
1230 TREE_THIS_VOLATILE (exp) = was_volatile;
1231 }
1232
1233 static void
1234 expand_default_init (binfo, true_exp, exp, init, alias_this, flags)
1235 tree binfo;
1236 tree true_exp, exp;
1237 tree init;
1238 int alias_this;
1239 int flags;
1240 {
1241 tree type = TREE_TYPE (exp);
1242
1243 /* It fails because there may not be a constructor which takes
1244 its own type as the first (or only parameter), but which does
1245 take other types via a conversion. So, if the thing initializing
1246 the expression is a unit element of type X, first try X(X&),
1247 followed by initialization by X. If neither of these work
1248 out, then look hard. */
1249 tree rval;
1250 tree parms;
1251
1252 if (flag_ansi_overloading && init && TREE_CODE (init) != TREE_LIST
1253 && (flags & LOOKUP_ONLYCONVERTING))
1254 {
1255 /* Base subobjects should only get direct-initialization. */
1256 if (true_exp != exp)
1257 abort ();
1258
1259 /* We special-case TARGET_EXPRs here to avoid an error about
1260 private copy constructors for temporaries bound to reference vars.
1261 If the TARGET_EXPR represents a call to a function that has
1262 permission to create such objects, a reference can bind directly
1263 to the return value. An object variable must be initialized
1264 via the copy constructor, even if the call is elided. */
1265 if (! (TREE_CODE (exp) == VAR_DECL && DECL_ARTIFICIAL (exp)
1266 && TREE_CODE (init) == TARGET_EXPR && TREE_TYPE (init) == type))
1267 init = ocp_convert (type, init, CONV_IMPLICIT|CONV_FORCE_TEMP, flags);
1268
1269 if (TREE_CODE (init) == TRY_CATCH_EXPR)
1270 /* We need to protect the initialization of a catch parm
1271 with a call to terminate(), which shows up as a TRY_CATCH_EXPR
1272 around the TARGET_EXPR for the copy constructor. See
1273 expand_start_catch_block. */
1274 TREE_OPERAND (init, 0) = build (INIT_EXPR, TREE_TYPE (exp), exp,
1275 TREE_OPERAND (init, 0));
1276 else
1277 init = build (INIT_EXPR, TREE_TYPE (exp), exp, init);
1278 TREE_SIDE_EFFECTS (init) = 1;
1279 expand_expr_stmt (init);
1280 return;
1281 }
1282
1283 if (init == NULL_TREE
1284 || (TREE_CODE (init) == TREE_LIST && ! TREE_TYPE (init)))
1285 {
1286 parms = init;
1287 if (parms)
1288 init = TREE_VALUE (parms);
1289 }
1290 else if (! flag_ansi_overloading
1291 && TREE_CODE (init) == INDIRECT_REF && TREE_HAS_CONSTRUCTOR (init)
1292 && TYPE_MAIN_VARIANT (type) == TYPE_MAIN_VARIANT (TREE_TYPE (init)))
1293 {
1294 rval = convert_for_initialization (exp, type, init, 0, 0, 0, 0);
1295 TREE_USED (rval) = 1;
1296 expand_expr_stmt (rval);
1297 return;
1298 }
1299 else
1300 parms = build_expr_list (NULL_TREE, init);
1301
1302 if (TYPE_USES_VIRTUAL_BASECLASSES (type))
1303 {
1304 if (true_exp == exp)
1305 parms = expr_tree_cons (NULL_TREE, integer_one_node, parms);
1306 else
1307 parms = expr_tree_cons (NULL_TREE, integer_zero_node, parms);
1308 flags |= LOOKUP_HAS_IN_CHARGE;
1309 }
1310
1311 if (flag_ansi_overloading)
1312 {
1313 rval = build_method_call (exp, ctor_identifier,
1314 parms, binfo, flags);
1315 expand_expr_stmt (rval);
1316 return;
1317 }
1318
1319 if (init && TREE_CHAIN (parms) == NULL_TREE
1320 && TYPE_HAS_TRIVIAL_INIT_REF (type)
1321 && TYPE_MAIN_VARIANT (type) == TYPE_MAIN_VARIANT (TREE_TYPE (init)))
1322 {
1323 rval = build (INIT_EXPR, type, exp, init);
1324 TREE_SIDE_EFFECTS (rval) = 1;
1325 expand_expr_stmt (rval);
1326 }
1327 else
1328 {
1329 if (flags & LOOKUP_ONLYCONVERTING)
1330 flags |= LOOKUP_NO_CONVERSION;
1331 rval = build_method_call (exp, ctor_identifier,
1332 parms, binfo, flags);
1333
1334 /* Private, protected, or otherwise unavailable. */
1335 if (rval == error_mark_node)
1336 {
1337 if (flags & LOOKUP_COMPLAIN)
1338 cp_error ("in base initialization for %sclass `%T'",
1339 TREE_VIA_VIRTUAL (binfo) ? "virtual base " : "",
1340 binfo);
1341 }
1342 else if (rval == NULL_TREE)
1343 my_friendly_abort (361);
1344 else
1345 {
1346 /* p. 222: if the base class assigns to `this', then that
1347 value is used in the derived class. */
1348 if ((flag_this_is_variable & 1) && alias_this)
1349 {
1350 TREE_TYPE (rval) = TREE_TYPE (current_class_ptr);
1351 expand_assignment (current_class_ptr, rval, 0, 0);
1352 }
1353 else
1354 expand_expr_stmt (rval);
1355 }
1356 }
1357 }
1358
1359 /* This function is responsible for initializing EXP with INIT
1360 (if any).
1361
1362 BINFO is the binfo of the type for who we are performing the
1363 initialization. For example, if W is a virtual base class of A and B,
1364 and C : A, B.
1365 If we are initializing B, then W must contain B's W vtable, whereas
1366 were we initializing C, W must contain C's W vtable.
1367
1368 TRUE_EXP is nonzero if it is the true expression being initialized.
1369 In this case, it may be EXP, or may just contain EXP. The reason we
1370 need this is because if EXP is a base element of TRUE_EXP, we
1371 don't necessarily know by looking at EXP where its virtual
1372 baseclass fields should really be pointing. But we do know
1373 from TRUE_EXP. In constructors, we don't know anything about
1374 the value being initialized.
1375
1376 ALIAS_THIS serves the same purpose it serves for expand_aggr_init.
1377
1378 FLAGS is just passes to `build_method_call'. See that function for
1379 its description. */
1380
1381 static void
1382 expand_aggr_init_1 (binfo, true_exp, exp, init, alias_this, flags)
1383 tree binfo;
1384 tree true_exp, exp;
1385 tree init;
1386 int alias_this;
1387 int flags;
1388 {
1389 tree type = TREE_TYPE (exp);
1390 tree init_type = NULL_TREE;
1391
1392 my_friendly_assert (init != error_mark_node && type != error_mark_node, 211);
1393
1394 /* Use a function returning the desired type to initialize EXP for us.
1395 If the function is a constructor, and its first argument is
1396 NULL_TREE, know that it was meant for us--just slide exp on
1397 in and expand the constructor. Constructors now come
1398 as TARGET_EXPRs. */
1399
1400 if (init && TREE_CODE (exp) == VAR_DECL
1401 && TREE_CODE (init) == CONSTRUCTOR
1402 && TREE_HAS_CONSTRUCTOR (init))
1403 {
1404 tree t = store_init_value (exp, init);
1405 if (!t)
1406 {
1407 expand_decl_init (exp);
1408 return;
1409 }
1410 t = build (INIT_EXPR, type, exp, init);
1411 TREE_SIDE_EFFECTS (t) = 1;
1412 expand_expr_stmt (t);
1413 return;
1414 }
1415
1416 if (init && ! flag_ansi_overloading)
1417 {
1418 tree init_list = NULL_TREE;
1419
1420 if (TREE_CODE (init) == TREE_LIST)
1421 {
1422 init_list = init;
1423 if (TREE_CHAIN (init) == NULL_TREE)
1424 init = TREE_VALUE (init);
1425 }
1426
1427 init_type = TREE_TYPE (init);
1428
1429 if (TREE_CODE (init) != TREE_LIST)
1430 {
1431 if (init_type == error_mark_node)
1432 return;
1433
1434 /* This happens when we use C++'s functional cast notation.
1435 If the types match, then just use the TARGET_EXPR
1436 directly. Otherwise, we need to create the initializer
1437 separately from the object being initialized. */
1438 if (TREE_CODE (init) == TARGET_EXPR)
1439 {
1440 if (TYPE_MAIN_VARIANT (init_type) == TYPE_MAIN_VARIANT (type))
1441 {
1442 if (TREE_CODE (exp) == VAR_DECL
1443 || TREE_CODE (exp) == RESULT_DECL)
1444 /* Unify the initialization targets. */
1445 DECL_RTL (TREE_OPERAND (init, 0)) = DECL_RTL (exp);
1446 else
1447 DECL_RTL (TREE_OPERAND (init, 0)) = expand_expr (exp, NULL_RTX, VOIDmode, EXPAND_NORMAL);
1448
1449 expand_expr_stmt (init);
1450 return;
1451 }
1452 }
1453
1454 if (init_type == type && TREE_CODE (init) == CALL_EXPR)
1455 {
1456 /* A CALL_EXPR is a legitimate form of initialization, so
1457 we should not print this warning message. */
1458
1459 expand_assignment (exp, init, 0, 0);
1460 if (exp == DECL_RESULT (current_function_decl))
1461 {
1462 /* Failing this assertion means that the return value
1463 from receives multiple initializations. */
1464 my_friendly_assert (DECL_INITIAL (exp) == NULL_TREE
1465 || DECL_INITIAL (exp) == error_mark_node,
1466 212);
1467 DECL_INITIAL (exp) = init;
1468 }
1469 return;
1470 }
1471 else if (init_type == type
1472 && TREE_CODE (init) == COND_EXPR)
1473 {
1474 /* Push value to be initialized into the cond, where possible.
1475 Avoid spurious warning messages when initializing the
1476 result of this function. */
1477 TREE_OPERAND (init, 1)
1478 = build_modify_expr (exp, INIT_EXPR, TREE_OPERAND (init, 1));
1479 if (exp == DECL_RESULT (current_function_decl))
1480 DECL_INITIAL (exp) = NULL_TREE;
1481 TREE_OPERAND (init, 2)
1482 = build_modify_expr (exp, INIT_EXPR, TREE_OPERAND (init, 2));
1483 if (exp == DECL_RESULT (current_function_decl))
1484 DECL_INITIAL (exp) = init;
1485 TREE_SIDE_EFFECTS (init) = 1;
1486 expand_expr (init, const0_rtx, VOIDmode, EXPAND_NORMAL);
1487 free_temp_slots ();
1488 return;
1489 }
1490 }
1491
1492 /* We did not know what we were initializing before. Now we do. */
1493 if (TREE_CODE (init) == TARGET_EXPR)
1494 {
1495 tree tmp = TREE_OPERAND (TREE_OPERAND (init, 1), 1);
1496
1497 if (tmp && TREE_CODE (TREE_VALUE (tmp)) == NOP_EXPR
1498 && TREE_OPERAND (TREE_VALUE (tmp), 0) == integer_zero_node)
1499 {
1500 /* In order for this to work for RESULT_DECLs, if their
1501 type has a constructor, then they must be BLKmode
1502 so that they will be meaningfully addressable. */
1503 tree arg = build_unary_op (ADDR_EXPR, exp, 0);
1504 init = TREE_OPERAND (init, 1);
1505 init = build (CALL_EXPR, build_pointer_type (TREE_TYPE (init)),
1506 TREE_OPERAND (init, 0), TREE_OPERAND (init, 1), NULL_TREE);
1507 TREE_SIDE_EFFECTS (init) = 1;
1508 TREE_VALUE (TREE_OPERAND (init, 1))
1509 = convert_pointer_to (TREE_TYPE (TREE_TYPE (TREE_VALUE (tmp))), arg);
1510
1511 if (alias_this)
1512 {
1513 expand_assignment (current_function_decl, init, 0, 0);
1514 return;
1515 }
1516 if (exp == DECL_RESULT (current_function_decl))
1517 {
1518 if (DECL_INITIAL (DECL_RESULT (current_function_decl)))
1519 fatal ("return value from function receives multiple initializations");
1520 DECL_INITIAL (exp) = init;
1521 }
1522 expand_expr_stmt (init);
1523 return;
1524 }
1525 }
1526
1527 /* Handle this case: when calling a constructor: xyzzy foo(bar);
1528 which really means: xyzzy foo = bar; Ugh!
1529
1530 More useful for this case: xyzzy *foo = new xyzzy (bar); */
1531
1532 if (! TYPE_NEEDS_CONSTRUCTING (type) && ! IS_AGGR_TYPE (type))
1533 {
1534 if (init_list && TREE_CHAIN (init_list))
1535 {
1536 warning ("initializer list being treated as compound expression");
1537 init = cp_convert (type, build_compound_expr (init_list));
1538 if (init == error_mark_node)
1539 return;
1540 }
1541
1542 expand_assignment (exp, init, 0, 0);
1543
1544 return;
1545 }
1546
1547 /* If this is copy-initialization, see whether we can go through a
1548 type conversion operator. */
1549 if (TREE_CODE (init) != TREE_LIST && (flags & LOOKUP_ONLYCONVERTING))
1550 {
1551 tree ttype = TREE_CODE (init_type) == REFERENCE_TYPE
1552 ? TREE_TYPE (init_type) : init_type;
1553
1554 if (ttype != type && IS_AGGR_TYPE (ttype))
1555 {
1556 tree rval = build_type_conversion (CONVERT_EXPR, type, init, 1);
1557
1558 if (rval)
1559 {
1560 /* See if there is a constructor for``type'' that takes a
1561 ``ttype''-typed object. */
1562 tree parms = build_expr_list (NULL_TREE, init);
1563 tree as_cons = NULL_TREE;
1564 if (TYPE_HAS_CONSTRUCTOR (type))
1565 as_cons = build_method_call (exp, ctor_identifier,
1566 parms, binfo,
1567 LOOKUP_SPECULATIVELY|LOOKUP_NO_CONVERSION);
1568 if (as_cons != NULL_TREE && as_cons != error_mark_node)
1569 /* ANSI C++ June 5 1992 WP 12.3.2.6.1 */
1570 cp_error ("ambiguity between conversion to `%T' and constructor",
1571 type);
1572 else
1573 if (rval != error_mark_node)
1574 expand_aggr_init_1 (binfo, true_exp, exp, rval, alias_this, flags);
1575 return;
1576 }
1577 }
1578 }
1579 }
1580
1581 /* We know that expand_default_init can handle everything we want
1582 at this point. */
1583 expand_default_init (binfo, true_exp, exp, init, alias_this, flags);
1584 }
1585
1586 /* Report an error if NAME is not the name of a user-defined,
1587 aggregate type. If OR_ELSE is nonzero, give an error message. */
1588
1589 int
1590 is_aggr_typedef (name, or_else)
1591 tree name;
1592 int or_else;
1593 {
1594 tree type;
1595
1596 if (name == error_mark_node)
1597 return 0;
1598
1599 if (IDENTIFIER_HAS_TYPE_VALUE (name))
1600 type = IDENTIFIER_TYPE_VALUE (name);
1601 else
1602 {
1603 if (or_else)
1604 cp_error ("`%T' is not an aggregate typedef", name);
1605 return 0;
1606 }
1607
1608 if (! IS_AGGR_TYPE (type)
1609 && TREE_CODE (type) != TEMPLATE_TYPE_PARM
1610 && TREE_CODE (type) != TEMPLATE_TEMPLATE_PARM)
1611 {
1612 if (or_else)
1613 cp_error ("`%T' is not an aggregate type", type);
1614 return 0;
1615 }
1616 return 1;
1617 }
1618
1619 /* Report an error if TYPE is not a user-defined, aggregate type. If
1620 OR_ELSE is nonzero, give an error message. */
1621
1622 int
1623 is_aggr_type (type, or_else)
1624 tree type;
1625 int or_else;
1626 {
1627 if (type == error_mark_node)
1628 return 0;
1629
1630 if (! IS_AGGR_TYPE (type)
1631 && TREE_CODE (type) != TEMPLATE_TYPE_PARM
1632 && TREE_CODE (type) != TEMPLATE_TEMPLATE_PARM)
1633 {
1634 if (or_else)
1635 cp_error ("`%T' is not an aggregate type", type);
1636 return 0;
1637 }
1638 return 1;
1639 }
1640
1641 /* Like is_aggr_typedef, but returns typedef if successful. */
1642
1643 tree
1644 get_aggr_from_typedef (name, or_else)
1645 tree name;
1646 int or_else;
1647 {
1648 tree type;
1649
1650 if (name == error_mark_node)
1651 return NULL_TREE;
1652
1653 if (IDENTIFIER_HAS_TYPE_VALUE (name))
1654 type = IDENTIFIER_TYPE_VALUE (name);
1655 else
1656 {
1657 if (or_else)
1658 cp_error ("`%T' fails to be an aggregate typedef", name);
1659 return NULL_TREE;
1660 }
1661
1662 if (! IS_AGGR_TYPE (type)
1663 && TREE_CODE (type) != TEMPLATE_TYPE_PARM
1664 && TREE_CODE (type) != TEMPLATE_TEMPLATE_PARM)
1665 {
1666 if (or_else)
1667 cp_error ("type `%T' is of non-aggregate type", type);
1668 return NULL_TREE;
1669 }
1670 return type;
1671 }
1672
1673 tree
1674 get_type_value (name)
1675 tree name;
1676 {
1677 if (name == error_mark_node)
1678 return NULL_TREE;
1679
1680 if (IDENTIFIER_HAS_TYPE_VALUE (name))
1681 return IDENTIFIER_TYPE_VALUE (name);
1682 else
1683 return NULL_TREE;
1684 }
1685
1686 \f
1687 /* This code could just as well go in `class.c', but is placed here for
1688 modularity. */
1689
1690 /* For an expression of the form TYPE :: NAME (PARMLIST), build
1691 the appropriate function call. */
1692
1693 tree
1694 build_member_call (type, name, parmlist)
1695 tree type, name, parmlist;
1696 {
1697 tree t;
1698 tree method_name;
1699 int dtor = 0;
1700 int dont_use_this = 0;
1701 tree basetype_path, decl;
1702
1703 if (type == std_node)
1704 return build_x_function_call (do_scoped_id (name, 0), parmlist,
1705 current_class_ref);
1706
1707 if (TREE_CODE (name) != TEMPLATE_ID_EXPR)
1708 method_name = name;
1709 else
1710 method_name = TREE_OPERAND (name, 0);
1711
1712 if (TREE_CODE (method_name) == BIT_NOT_EXPR)
1713 {
1714 method_name = TREE_OPERAND (method_name, 0);
1715 dtor = 1;
1716 }
1717
1718 /* This shouldn't be here, and build_member_call shouldn't appear in
1719 parse.y! (mrs) */
1720 if (type && TREE_CODE (type) == IDENTIFIER_NODE
1721 && get_aggr_from_typedef (type, 0) == 0)
1722 {
1723 tree ns = lookup_name (type, 0);
1724 if (ns && TREE_CODE (ns) == NAMESPACE_DECL)
1725 {
1726 return build_x_function_call (build_offset_ref (type, name), parmlist, current_class_ref);
1727 }
1728 }
1729
1730 if (type == NULL_TREE || ! is_aggr_type (type, 1))
1731 return error_mark_node;
1732
1733 /* An operator we did not like. */
1734 if (name == NULL_TREE)
1735 return error_mark_node;
1736
1737 if (dtor)
1738 {
1739 cp_error ("cannot call destructor `%T::~%T' without object", type,
1740 method_name);
1741 return error_mark_node;
1742 }
1743
1744 /* No object? Then just fake one up, and let build_method_call
1745 figure out what to do. */
1746 if (current_class_type == 0
1747 || get_base_distance (type, current_class_type, 0, &basetype_path) == -1)
1748 dont_use_this = 1;
1749
1750 if (dont_use_this)
1751 {
1752 basetype_path = TYPE_BINFO (type);
1753 decl = build1 (NOP_EXPR, build_pointer_type (type), error_mark_node);
1754 }
1755 else if (current_class_ptr == 0)
1756 {
1757 dont_use_this = 1;
1758 decl = build1 (NOP_EXPR, build_pointer_type (type), error_mark_node);
1759 }
1760 else
1761 {
1762 tree olddecl = current_class_ptr;
1763 tree oldtype = TREE_TYPE (TREE_TYPE (olddecl));
1764 if (oldtype != type)
1765 {
1766 tree newtype = build_type_variant (type, TYPE_READONLY (oldtype),
1767 TYPE_VOLATILE (oldtype));
1768 decl = convert_force (build_pointer_type (newtype), olddecl, 0);
1769 }
1770 else
1771 decl = olddecl;
1772 }
1773
1774 decl = build_indirect_ref (decl, NULL_PTR);
1775
1776 if (method_name == constructor_name (type)
1777 || method_name == constructor_name_full (type))
1778 return build_functional_cast (type, parmlist);
1779 if (t = lookup_fnfields (basetype_path, method_name, 0))
1780 return build_method_call (decl,
1781 TREE_CODE (name) == TEMPLATE_ID_EXPR
1782 ? name : method_name,
1783 parmlist, basetype_path,
1784 LOOKUP_NORMAL|LOOKUP_NONVIRTUAL);
1785 if (TREE_CODE (name) == IDENTIFIER_NODE
1786 && ((t = lookup_field (TYPE_BINFO (type), name, 1, 0))))
1787 {
1788 if (t == error_mark_node)
1789 return error_mark_node;
1790 if (TREE_CODE (t) == FIELD_DECL)
1791 {
1792 if (dont_use_this)
1793 {
1794 cp_error ("invalid use of non-static field `%D'", t);
1795 return error_mark_node;
1796 }
1797 decl = build (COMPONENT_REF, TREE_TYPE (t), decl, t);
1798 }
1799 else if (TREE_CODE (t) == VAR_DECL)
1800 decl = t;
1801 else
1802 {
1803 cp_error ("invalid use of member `%D'", t);
1804 return error_mark_node;
1805 }
1806 if (TYPE_LANG_SPECIFIC (TREE_TYPE (decl))
1807 && TYPE_OVERLOADS_CALL_EXPR (TREE_TYPE (decl)))
1808 return build_opfncall (CALL_EXPR, LOOKUP_NORMAL, decl, parmlist, NULL_TREE);
1809 return build_function_call (decl, parmlist);
1810 }
1811 else
1812 {
1813 cp_error ("no method `%T::%D'", type, name);
1814 return error_mark_node;
1815 }
1816 }
1817
1818 /* Build a reference to a member of an aggregate. This is not a
1819 C++ `&', but really something which can have its address taken,
1820 and then act as a pointer to member, for example TYPE :: FIELD
1821 can have its address taken by saying & TYPE :: FIELD.
1822
1823 @@ Prints out lousy diagnostics for operator <typename>
1824 @@ fields.
1825
1826 @@ This function should be rewritten and placed in search.c. */
1827
1828 tree
1829 build_offset_ref (type, name)
1830 tree type, name;
1831 {
1832 tree decl, fnfields, fields, t = error_mark_node;
1833 tree basebinfo = NULL_TREE;
1834 int dtor = 0;
1835
1836 if (type == std_node)
1837 return do_scoped_id (name, 0);
1838
1839 if (processing_template_decl)
1840 return build_min_nt (SCOPE_REF, type, name);
1841
1842 /* Handle namespace names fully here. */
1843 if (TREE_CODE (type) == IDENTIFIER_NODE
1844 && get_aggr_from_typedef (type, 0) == 0)
1845 {
1846 tree ns = lookup_name (type, 0);
1847 tree val;
1848 if (ns && TREE_CODE (ns) == NAMESPACE_DECL)
1849 {
1850 val = lookup_namespace_name (ns, name);
1851 if (val)
1852 return val;
1853 cp_error ("namespace `%D' has no member named `%D'", ns, name);
1854 return error_mark_node;
1855 }
1856 }
1857
1858 if (type == NULL_TREE || ! is_aggr_type (type, 1))
1859 return error_mark_node;
1860
1861 if (TREE_CODE (name) == BIT_NOT_EXPR)
1862 {
1863 dtor = 1;
1864 name = TREE_OPERAND (name, 0);
1865 }
1866
1867 if (name == constructor_name_full (type))
1868 name = constructor_name (type);
1869
1870 if (TYPE_SIZE (complete_type (type)) == 0)
1871 {
1872 if (type == current_class_type)
1873 t = IDENTIFIER_CLASS_VALUE (name);
1874 else
1875 t = NULL_TREE;
1876 if (t == 0)
1877 {
1878 cp_error ("incomplete type `%T' does not have member `%D'", type,
1879 name);
1880 return error_mark_node;
1881 }
1882 if (TREE_CODE (t) == TYPE_DECL || TREE_CODE (t) == VAR_DECL
1883 || TREE_CODE (t) == CONST_DECL)
1884 {
1885 mark_used (t);
1886 return t;
1887 }
1888 if (TREE_CODE (t) == FIELD_DECL)
1889 sorry ("use of member in incomplete aggregate type");
1890 else if (TREE_CODE (t) == FUNCTION_DECL)
1891 sorry ("use of member function in incomplete aggregate type");
1892 else
1893 my_friendly_abort (52);
1894 return error_mark_node;
1895 }
1896
1897 if (current_class_type == 0
1898 || get_base_distance (type, current_class_type, 0, &basebinfo) == -1)
1899 {
1900 basebinfo = TYPE_BINFO (type);
1901 decl = build1 (NOP_EXPR, type, error_mark_node);
1902 }
1903 else if (current_class_ptr == 0)
1904 decl = build1 (NOP_EXPR, type, error_mark_node);
1905 else
1906 decl = current_class_ref;
1907
1908 if (constructor_name (BINFO_TYPE (basebinfo)) == name)
1909 if (dtor)
1910 name = dtor_identifier;
1911 else
1912 name = ctor_identifier;
1913 else
1914 if (dtor)
1915 my_friendly_abort (999);
1916
1917
1918 fnfields = lookup_fnfields (basebinfo, name, 1);
1919 fields = lookup_field (basebinfo, name, 0, 0);
1920
1921 if (fields == error_mark_node || fnfields == error_mark_node)
1922 return error_mark_node;
1923
1924 /* A lot of this logic is now handled in lookup_field and
1925 lookup_fnfield. */
1926 if (fnfields)
1927 {
1928 extern int flag_save_memoized_contexts;
1929 basebinfo = TREE_PURPOSE (fnfields);
1930
1931 /* Go from the TREE_BASELINK to the member function info. */
1932 t = TREE_VALUE (fnfields);
1933
1934 if (DECL_CHAIN (t) == NULL_TREE)
1935 {
1936 tree access;
1937
1938 /* unique functions are handled easily. */
1939 access = compute_access (basebinfo, t);
1940 if (access == access_protected_node)
1941 {
1942 cp_error_at ("member function `%#D' is protected", t);
1943 error ("in this context");
1944 return error_mark_node;
1945 }
1946 if (access == access_private_node)
1947 {
1948 cp_error_at ("member function `%#D' is private", t);
1949 error ("in this context");
1950 return error_mark_node;
1951 }
1952 mark_used (t);
1953 return build (OFFSET_REF, TREE_TYPE (t), decl, t);
1954 }
1955
1956 /* FNFIELDS is most likely allocated on the search_obstack,
1957 which will go away after this class scope. If we need
1958 to save this value for later (either for memoization
1959 or for use as an initializer for a static variable), then
1960 do so here.
1961
1962 ??? The smart thing to do for the case of saving initializers
1963 is to resolve them before we're done with this scope. */
1964 if (!TREE_PERMANENT (fnfields)
1965 && ((flag_save_memoized_contexts && global_bindings_p ())
1966 || ! allocation_temporary_p ()))
1967 fnfields = copy_list (fnfields);
1968
1969 t = build_tree_list (error_mark_node, fnfields);
1970 TREE_TYPE (t) = build_offset_type (type, unknown_type_node);
1971 return t;
1972 }
1973
1974 /* Now that we know we are looking for a field, see if we
1975 have access to that field. Lookup_field will give us the
1976 error message. */
1977
1978 t = lookup_field (basebinfo, name, 1, 0);
1979
1980 if (t == error_mark_node)
1981 return error_mark_node;
1982
1983 if (t == NULL_TREE)
1984 {
1985 cp_error ("`%D' is not a member of type `%T'", name, type);
1986 return error_mark_node;
1987 }
1988
1989 if (TREE_CODE (t) == TYPE_DECL)
1990 {
1991 TREE_USED (t) = 1;
1992 return t;
1993 }
1994 /* static class members and class-specific enum
1995 values can be returned without further ado. */
1996 if (TREE_CODE (t) == VAR_DECL || TREE_CODE (t) == CONST_DECL)
1997 {
1998 mark_used (t);
1999 return convert_from_reference (t);
2000 }
2001
2002 if (TREE_CODE (t) == FIELD_DECL && DECL_BIT_FIELD (t))
2003 {
2004 cp_error ("illegal pointer to bit field `%D'", t);
2005 return error_mark_node;
2006 }
2007
2008 /* static class functions too. */
2009 if (TREE_CODE (t) == FUNCTION_DECL
2010 && TREE_CODE (TREE_TYPE (t)) == FUNCTION_TYPE)
2011 my_friendly_abort (53);
2012
2013 /* In member functions, the form `type::name' is no longer
2014 equivalent to `this->type::name', at least not until
2015 resolve_offset_ref. */
2016 return build (OFFSET_REF, build_offset_type (type, TREE_TYPE (t)), decl, t);
2017 }
2018
2019 /* If a OFFSET_REF made it through to here, then it did
2020 not have its address taken. */
2021
2022 tree
2023 resolve_offset_ref (exp)
2024 tree exp;
2025 {
2026 tree type = TREE_TYPE (exp);
2027 tree base = NULL_TREE;
2028 tree member;
2029 tree basetype, addr;
2030
2031 if (TREE_CODE (exp) == TREE_LIST)
2032 return build_unary_op (ADDR_EXPR, exp, 0);
2033
2034 if (TREE_CODE (exp) == OFFSET_REF)
2035 {
2036 member = TREE_OPERAND (exp, 1);
2037 base = TREE_OPERAND (exp, 0);
2038 }
2039 else
2040 {
2041 my_friendly_assert (TREE_CODE (type) == OFFSET_TYPE, 214);
2042 if (TYPE_OFFSET_BASETYPE (type) != current_class_type)
2043 {
2044 error ("object missing in use of pointer-to-member construct");
2045 return error_mark_node;
2046 }
2047 member = exp;
2048 type = TREE_TYPE (type);
2049 base = current_class_ref;
2050 }
2051
2052 if ((TREE_CODE (member) == VAR_DECL
2053 && ! TYPE_PTRMEMFUNC_P (TREE_TYPE (member)))
2054 || TREE_CODE (TREE_TYPE (member)) == FUNCTION_TYPE
2055 || TREE_CODE (TREE_TYPE (member)) == METHOD_TYPE)
2056 {
2057 /* These were static members. */
2058 if (mark_addressable (member) == 0)
2059 return error_mark_node;
2060 return member;
2061 }
2062
2063 if (TREE_CODE (TREE_TYPE (member)) == POINTER_TYPE
2064 && TREE_CODE (TREE_TYPE (TREE_TYPE (member))) == METHOD_TYPE)
2065 return member;
2066
2067 /* Syntax error can cause a member which should
2068 have been seen as static to be grok'd as non-static. */
2069 if (TREE_CODE (member) == FIELD_DECL && current_class_ref == NULL_TREE)
2070 {
2071 if (TREE_ADDRESSABLE (member) == 0)
2072 {
2073 cp_error_at ("member `%D' is non-static but referenced as a static member",
2074 member);
2075 error ("at this point in file");
2076 TREE_ADDRESSABLE (member) = 1;
2077 }
2078 return error_mark_node;
2079 }
2080
2081 /* The first case is really just a reference to a member of `this'. */
2082 if (TREE_CODE (member) == FIELD_DECL
2083 && (base == current_class_ref
2084 || (TREE_CODE (base) == NOP_EXPR
2085 && TREE_OPERAND (base, 0) == error_mark_node)))
2086 {
2087 tree basetype_path, access;
2088
2089 if (TREE_CODE (exp) == OFFSET_REF && TREE_CODE (type) == OFFSET_TYPE)
2090 basetype = TYPE_OFFSET_BASETYPE (type);
2091 else
2092 basetype = DECL_CONTEXT (member);
2093
2094 base = current_class_ptr;
2095
2096 if (get_base_distance (basetype, TREE_TYPE (TREE_TYPE (base)), 0, &basetype_path) < 0)
2097 {
2098 error_not_base_type (basetype, TREE_TYPE (TREE_TYPE (base)));
2099 return error_mark_node;
2100 }
2101 addr = convert_pointer_to (basetype, base);
2102 access = compute_access (basetype_path, member);
2103 if (access == access_public_node)
2104 return build (COMPONENT_REF, TREE_TYPE (member),
2105 build_indirect_ref (addr, NULL_PTR), member);
2106 if (access == access_protected_node)
2107 {
2108 cp_error_at ("member `%D' is protected", member);
2109 error ("in this context");
2110 return error_mark_node;
2111 }
2112 if (access == access_private_node)
2113 {
2114 cp_error_at ("member `%D' is private", member);
2115 error ("in this context");
2116 return error_mark_node;
2117 }
2118 my_friendly_abort (55);
2119 }
2120
2121 /* Ensure that we have an object. */
2122 if (TREE_CODE (base) == NOP_EXPR
2123 && TREE_OPERAND (base, 0) == error_mark_node)
2124 addr = error_mark_node;
2125 else
2126 {
2127 /* If this is a reference to a member function, then return the
2128 address of the member function (which may involve going
2129 through the object's vtable), otherwise, return an expression
2130 for the dereferenced pointer-to-member construct. */
2131 addr = build_unary_op (ADDR_EXPR, base, 0);
2132 }
2133
2134 if (TREE_CODE (TREE_TYPE (member)) == OFFSET_TYPE)
2135 {
2136 if (addr == error_mark_node)
2137 {
2138 cp_error ("object missing in `%E'", exp);
2139 return error_mark_node;
2140 }
2141
2142 basetype = TYPE_OFFSET_BASETYPE (TREE_TYPE (member));
2143 addr = convert_pointer_to (basetype, addr);
2144 member = cp_convert (ptrdiff_type_node,
2145 build_unary_op (ADDR_EXPR, member, 0));
2146
2147 /* Pointer to data members are offset by one, so that a null
2148 pointer with a real value of 0 is distinguishable from an
2149 offset of the first member of a structure. */
2150 member = build_binary_op (MINUS_EXPR, member,
2151 cp_convert (ptrdiff_type_node, integer_one_node),
2152 0);
2153
2154 return build1 (INDIRECT_REF, type,
2155 build (PLUS_EXPR, build_pointer_type (type),
2156 addr, member));
2157 }
2158 else if (TYPE_PTRMEMFUNC_P (TREE_TYPE (member)))
2159 {
2160 return get_member_function_from_ptrfunc (&addr, member);
2161 }
2162 my_friendly_abort (56);
2163 /* NOTREACHED */
2164 return NULL_TREE;
2165 }
2166
2167 /* Return either DECL or its known constant value (if it has one). */
2168
2169 tree
2170 decl_constant_value (decl)
2171 tree decl;
2172 {
2173 if (! TREE_THIS_VOLATILE (decl)
2174 #if 0
2175 /* These may be necessary for C, but they break C++. */
2176 ! TREE_PUBLIC (decl)
2177 /* Don't change a variable array bound or initial value to a constant
2178 in a place where a variable is invalid. */
2179 && ! pedantic
2180 #endif /* 0 */
2181 && DECL_INITIAL (decl) != 0
2182 && DECL_INITIAL (decl) != error_mark_node
2183 /* This is invalid if initial value is not constant.
2184 If it has either a function call, a memory reference,
2185 or a variable, then re-evaluating it could give different results. */
2186 && TREE_CONSTANT (DECL_INITIAL (decl))
2187 /* Check for cases where this is sub-optimal, even though valid. */
2188 && TREE_CODE (DECL_INITIAL (decl)) != CONSTRUCTOR
2189 #if 0
2190 /* We must allow this to work outside of functions so that
2191 static constants can be used for array sizes. */
2192 && current_function_decl != 0
2193 && DECL_MODE (decl) != BLKmode
2194 #endif
2195 )
2196 return DECL_INITIAL (decl);
2197 return decl;
2198 }
2199 \f
2200 /* Common subroutines of build_new and build_vec_delete. */
2201
2202 /* Common interface for calling "builtin" functions that are not
2203 really builtin. */
2204
2205 static tree
2206 build_builtin_call (type, node, arglist)
2207 tree type;
2208 tree node;
2209 tree arglist;
2210 {
2211 tree rval = build (CALL_EXPR, type, node, arglist, NULL_TREE);
2212 TREE_SIDE_EFFECTS (rval) = 1;
2213 assemble_external (TREE_OPERAND (node, 0));
2214 TREE_USED (TREE_OPERAND (node, 0)) = 1;
2215 return rval;
2216 }
2217 \f
2218 /* Generate a C++ "new" expression. DECL is either a TREE_LIST
2219 (which needs to go through some sort of groktypename) or it
2220 is the name of the class we are newing. INIT is an initialization value.
2221 It is either an EXPRLIST, an EXPR_NO_COMMAS, or something in braces.
2222 If INIT is void_type_node, it means do *not* call a constructor
2223 for this instance.
2224
2225 For types with constructors, the data returned is initialized
2226 by the appropriate constructor.
2227
2228 Whether the type has a constructor or not, if it has a pointer
2229 to a virtual function table, then that pointer is set up
2230 here.
2231
2232 Unless I am mistaken, a call to new () will return initialized
2233 data regardless of whether the constructor itself is private or
2234 not. NOPE; new fails if the constructor is private (jcm).
2235
2236 Note that build_new does nothing to assure that any special
2237 alignment requirements of the type are met. Rather, it leaves
2238 it up to malloc to do the right thing. Otherwise, folding to
2239 the right alignment cal cause problems if the user tries to later
2240 free the memory returned by `new'.
2241
2242 PLACEMENT is the `placement' list for user-defined operator new (). */
2243
2244 extern int flag_check_new;
2245
2246 tree
2247 build_new (placement, decl, init, use_global_new)
2248 tree placement;
2249 tree decl, init;
2250 int use_global_new;
2251 {
2252 tree type, rval;
2253 tree nelts, t;
2254 int has_array = 0;
2255
2256 tree pending_sizes = NULL_TREE;
2257
2258 if (decl == error_mark_node)
2259 return error_mark_node;
2260
2261 if (TREE_CODE (decl) == TREE_LIST)
2262 {
2263 tree absdcl = TREE_VALUE (decl);
2264 tree last_absdcl = NULL_TREE;
2265 int old_immediate_size_expand;
2266
2267 if (current_function_decl
2268 && DECL_CONSTRUCTOR_P (current_function_decl))
2269 {
2270 old_immediate_size_expand = immediate_size_expand;
2271 immediate_size_expand = 0;
2272 }
2273
2274 nelts = integer_one_node;
2275
2276 if (absdcl && TREE_CODE (absdcl) == CALL_EXPR)
2277 my_friendly_abort (215);
2278 while (absdcl && TREE_CODE (absdcl) == INDIRECT_REF)
2279 {
2280 last_absdcl = absdcl;
2281 absdcl = TREE_OPERAND (absdcl, 0);
2282 }
2283
2284 if (absdcl && TREE_CODE (absdcl) == ARRAY_REF)
2285 {
2286 /* probably meant to be a vec new */
2287 tree this_nelts;
2288
2289 while (TREE_OPERAND (absdcl, 0)
2290 && TREE_CODE (TREE_OPERAND (absdcl, 0)) == ARRAY_REF)
2291 {
2292 last_absdcl = absdcl;
2293 absdcl = TREE_OPERAND (absdcl, 0);
2294 }
2295
2296 has_array = 1;
2297 this_nelts = TREE_OPERAND (absdcl, 1);
2298 if (this_nelts != error_mark_node)
2299 {
2300 if (this_nelts == NULL_TREE)
2301 error ("new of array type fails to specify size");
2302 else if (processing_template_decl)
2303 {
2304 nelts = this_nelts;
2305 absdcl = TREE_OPERAND (absdcl, 0);
2306 }
2307 else
2308 {
2309 this_nelts = save_expr (cp_convert (sizetype, this_nelts));
2310 absdcl = TREE_OPERAND (absdcl, 0);
2311 if (this_nelts == integer_zero_node)
2312 {
2313 warning ("zero size array reserves no space");
2314 nelts = integer_zero_node;
2315 }
2316 else
2317 nelts = build_binary_op (MULT_EXPR, nelts, this_nelts, 1);
2318 }
2319 }
2320 else
2321 nelts = integer_zero_node;
2322 }
2323
2324 if (last_absdcl)
2325 TREE_OPERAND (last_absdcl, 0) = absdcl;
2326 else
2327 TREE_VALUE (decl) = absdcl;
2328
2329 type = groktypename (decl);
2330 if (! type || type == error_mark_node)
2331 {
2332 immediate_size_expand = old_immediate_size_expand;
2333 return error_mark_node;
2334 }
2335
2336 if (current_function_decl
2337 && DECL_CONSTRUCTOR_P (current_function_decl))
2338 {
2339 pending_sizes = get_pending_sizes ();
2340 immediate_size_expand = old_immediate_size_expand;
2341 }
2342 }
2343 else if (TREE_CODE (decl) == IDENTIFIER_NODE)
2344 {
2345 if (IDENTIFIER_HAS_TYPE_VALUE (decl))
2346 {
2347 /* An aggregate type. */
2348 type = IDENTIFIER_TYPE_VALUE (decl);
2349 decl = TYPE_MAIN_DECL (type);
2350 }
2351 else
2352 {
2353 /* A builtin type. */
2354 decl = lookup_name (decl, 1);
2355 my_friendly_assert (TREE_CODE (decl) == TYPE_DECL, 215);
2356 type = TREE_TYPE (decl);
2357 }
2358 }
2359 else if (TREE_CODE (decl) == TYPE_DECL)
2360 {
2361 type = TREE_TYPE (decl);
2362 }
2363 else
2364 {
2365 type = decl;
2366 decl = TYPE_MAIN_DECL (type);
2367 }
2368
2369 if (processing_template_decl)
2370 {
2371 if (has_array)
2372 t = min_tree_cons (min_tree_cons (NULL_TREE, type, NULL_TREE),
2373 build_min_nt (ARRAY_REF, NULL_TREE, nelts),
2374 NULL_TREE);
2375 else
2376 t = type;
2377
2378 rval = build_min_nt (NEW_EXPR, placement, t, init);
2379 NEW_EXPR_USE_GLOBAL (rval) = use_global_new;
2380 return rval;
2381 }
2382
2383 /* ``A reference cannot be created by the new operator. A reference
2384 is not an object (8.2.2, 8.4.3), so a pointer to it could not be
2385 returned by new.'' ARM 5.3.3 */
2386 if (TREE_CODE (type) == REFERENCE_TYPE)
2387 {
2388 error ("new cannot be applied to a reference type");
2389 type = TREE_TYPE (type);
2390 }
2391
2392 if (TREE_CODE (type) == FUNCTION_TYPE)
2393 {
2394 error ("new cannot be applied to a function type");
2395 return error_mark_node;
2396 }
2397
2398 /* When the object being created is an array, the new-expression yields a
2399 pointer to the initial element (if any) of the array. For example,
2400 both new int and new int[10] return an int*. 5.3.4. */
2401 if (TREE_CODE (type) == ARRAY_TYPE && has_array == 0)
2402 {
2403 nelts = array_type_nelts_top (type);
2404 has_array = 1;
2405 type = TREE_TYPE (type);
2406 }
2407
2408 if (has_array)
2409 t = build_nt (ARRAY_REF, type, nelts);
2410 else
2411 t = type;
2412
2413 rval = build (NEW_EXPR, build_pointer_type (type), placement, t, init);
2414 NEW_EXPR_USE_GLOBAL (rval) = use_global_new;
2415 TREE_SIDE_EFFECTS (rval) = 1;
2416
2417 /* Wrap it in a NOP_EXPR so warn_if_unused_value doesn't complain. */
2418 rval = build1 (NOP_EXPR, TREE_TYPE (rval), rval);
2419 TREE_NO_UNUSED_WARNING (rval) = 1;
2420
2421 if (pending_sizes)
2422 rval = build_compound_expr (chainon (pending_sizes,
2423 build_expr_list (NULL_TREE, rval)));
2424
2425 return rval;
2426 }
2427
2428 /* Called from cplus_expand_expr when expanding a NEW_EXPR. The return
2429 value is immediately handed to expand_expr. */
2430
2431 tree
2432 build_new_1 (exp)
2433 tree exp;
2434 {
2435 tree placement, init, t;
2436 tree type, true_type, size, rval;
2437 tree nelts;
2438 tree alloc_expr, alloc_node;
2439 int has_array = 0;
2440 enum tree_code code = NEW_EXPR;
2441 int use_cookie, nothrow, check_new;
2442 int use_global_new;
2443
2444 placement = TREE_OPERAND (exp, 0);
2445 type = TREE_OPERAND (exp, 1);
2446 init = TREE_OPERAND (exp, 2);
2447 use_global_new = NEW_EXPR_USE_GLOBAL (exp);
2448
2449 if (TREE_CODE (type) == ARRAY_REF)
2450 {
2451 has_array = 1;
2452 nelts = TREE_OPERAND (type, 1);
2453 type = TREE_OPERAND (type, 0);
2454 }
2455 true_type = type;
2456
2457 if (TYPE_READONLY (type) || TYPE_VOLATILE (type))
2458 type = TYPE_MAIN_VARIANT (type);
2459
2460 /* If our base type is an array, then make sure we know how many elements
2461 it has. */
2462 while (TREE_CODE (true_type) == ARRAY_TYPE)
2463 {
2464 tree this_nelts = array_type_nelts_top (true_type);
2465 nelts = build_binary_op (MULT_EXPR, nelts, this_nelts, 1);
2466 true_type = TREE_TYPE (true_type);
2467 }
2468
2469 if (TYPE_SIZE (complete_type (true_type)) == 0)
2470 {
2471 incomplete_type_error (0, true_type);
2472 return error_mark_node;
2473 }
2474
2475 if (has_array)
2476 size = fold (build_binary_op (MULT_EXPR, size_in_bytes (true_type),
2477 nelts, 1));
2478 else
2479 size = size_in_bytes (type);
2480
2481 if (true_type == void_type_node)
2482 {
2483 error ("invalid type `void' for new");
2484 return error_mark_node;
2485 }
2486
2487 if (TYPE_LANG_SPECIFIC (true_type)
2488 && CLASSTYPE_ABSTRACT_VIRTUALS (true_type))
2489 {
2490 abstract_virtuals_error (NULL_TREE, true_type);
2491 return error_mark_node;
2492 }
2493
2494 if (TYPE_LANG_SPECIFIC (true_type) && IS_SIGNATURE (true_type))
2495 {
2496 signature_error (NULL_TREE, true_type);
2497 return error_mark_node;
2498 }
2499
2500 #if 1
2501 /* Get a little extra space to store a couple of things before the new'ed
2502 array, if this isn't the default placement new. */
2503
2504 use_cookie = (has_array && TYPE_VEC_NEW_USES_COOKIE (true_type)
2505 && ! (placement && ! TREE_CHAIN (placement)
2506 && TREE_TYPE (TREE_VALUE (placement)) == ptr_type_node));
2507 #else
2508 /* Get a little extra space to store a couple of things before the new'ed
2509 array, if this is either non-placement new or new (nothrow). */
2510
2511 use_cookie = (has_array && TYPE_VEC_NEW_USES_COOKIE (true_type)
2512 && (! placement || nothrow));
2513 #endif
2514
2515 if (use_cookie)
2516 {
2517 tree extra = BI_header_size;
2518
2519 size = size_binop (PLUS_EXPR, size, extra);
2520 }
2521
2522 if (has_array)
2523 {
2524 code = VEC_NEW_EXPR;
2525
2526 if (init && pedantic)
2527 cp_pedwarn ("initialization in array new");
2528 }
2529
2530 /* Allocate the object. */
2531
2532 if (! has_array && ! placement && flag_this_is_variable > 0
2533 && TYPE_NEEDS_CONSTRUCTING (true_type) && init != void_type_node)
2534 {
2535 if (init == NULL_TREE || TREE_CODE (init) == TREE_LIST)
2536 rval = NULL_TREE;
2537 else
2538 {
2539 error ("constructors take parameter lists");
2540 return error_mark_node;
2541 }
2542 }
2543 else
2544 {
2545 rval = build_op_new_call
2546 (code, true_type, expr_tree_cons (NULL_TREE, size, placement),
2547 LOOKUP_NORMAL | (use_global_new * LOOKUP_GLOBAL));
2548 rval = cp_convert (build_pointer_type (true_type), rval);
2549 }
2550
2551 /* unless an allocation function is declared with an empty excep-
2552 tion-specification (_except.spec_), throw(), it indicates failure to
2553 allocate storage by throwing a bad_alloc exception (clause _except_,
2554 _lib.bad.alloc_); it returns a non-null pointer otherwise If the allo-
2555 cation function is declared with an empty exception-specification,
2556 throw(), it returns null to indicate failure to allocate storage and a
2557 non-null pointer otherwise.
2558
2559 So check for a null exception spec on the op new we just called. */
2560
2561 nothrow = 0;
2562 if (rval)
2563 {
2564 /* The CALL_EXPR. */
2565 tree t = TREE_OPERAND (rval, 0);
2566 /* The function. */
2567 t = TREE_OPERAND (TREE_OPERAND (t, 0), 0);
2568 t = TYPE_RAISES_EXCEPTIONS (TREE_TYPE (t));
2569
2570 if (t && TREE_VALUE (t) == NULL_TREE)
2571 nothrow = 1;
2572 }
2573 check_new = flag_check_new || nothrow;
2574
2575 if ((check_new || flag_exceptions) && rval)
2576 {
2577 alloc_expr = get_target_expr (rval);
2578 alloc_node = rval = TREE_OPERAND (alloc_expr, 0);
2579 }
2580 else
2581 alloc_expr = NULL_TREE;
2582
2583 /* if rval is NULL_TREE I don't have to allocate it, but are we totally
2584 sure we have some extra bytes in that case for the BI_header_size
2585 cookies? And how does that interact with the code below? (mrs) */
2586 /* Finish up some magic for new'ed arrays */
2587 if (use_cookie && rval != NULL_TREE)
2588 {
2589 tree extra = BI_header_size;
2590 tree cookie, exp1;
2591 rval = convert (string_type_node, rval); /* for ptr arithmetic */
2592 rval = save_expr (build_binary_op (PLUS_EXPR, rval, extra, 1));
2593 /* Store header info. */
2594 cookie = build_indirect_ref (build (MINUS_EXPR,
2595 build_pointer_type (BI_header_type),
2596 rval, extra), NULL_PTR);
2597 exp1 = build (MODIFY_EXPR, void_type_node,
2598 build_component_ref (cookie, nc_nelts_field_id,
2599 NULL_TREE, 0),
2600 nelts);
2601 TREE_SIDE_EFFECTS (exp1) = 1;
2602 rval = cp_convert (build_pointer_type (true_type), rval);
2603 rval = build_compound_expr
2604 (expr_tree_cons (NULL_TREE, exp1,
2605 build_expr_list (NULL_TREE, rval)));
2606 }
2607
2608 if (rval == error_mark_node)
2609 return error_mark_node;
2610
2611 /* Don't call any constructors or do any initialization. */
2612 if (init == void_type_node)
2613 goto done;
2614
2615 if (TYPE_NEEDS_CONSTRUCTING (type) || init)
2616 {
2617 if (! TYPE_NEEDS_CONSTRUCTING (type)
2618 && ! IS_AGGR_TYPE (type) && ! has_array)
2619 {
2620 /* New 2.0 interpretation: `new int (10)' means
2621 allocate an int, and initialize it with 10. */
2622 tree deref;
2623
2624 rval = save_expr (rval);
2625 deref = build_indirect_ref (rval, NULL_PTR);
2626 TREE_READONLY (deref) = 0;
2627
2628 if (TREE_CHAIN (init) != NULL_TREE)
2629 pedwarn ("initializer list being treated as compound expression");
2630 else if (TREE_CODE (init) == CONSTRUCTOR)
2631 {
2632 pedwarn ("initializer list appears where operand should be used");
2633 init = TREE_OPERAND (init, 1);
2634 }
2635 init = build_compound_expr (init);
2636
2637 init = convert_for_initialization (deref, type, init, LOOKUP_NORMAL,
2638 "new", NULL_TREE, 0);
2639 rval = build (COMPOUND_EXPR, TREE_TYPE (rval),
2640 build_modify_expr (deref, NOP_EXPR, init),
2641 rval);
2642 TREE_NO_UNUSED_WARNING (rval) = 1;
2643 TREE_SIDE_EFFECTS (rval) = 1;
2644 }
2645 else if (! has_array)
2646 {
2647 tree newrval;
2648 /* Constructors are never virtual. If it has an initialization, we
2649 need to complain if we aren't allowed to use the ctor that took
2650 that argument. */
2651 int flags = LOOKUP_NORMAL|LOOKUP_NONVIRTUAL|LOOKUP_COMPLAIN;
2652
2653 if (rval && TYPE_USES_VIRTUAL_BASECLASSES (true_type))
2654 {
2655 init = expr_tree_cons (NULL_TREE, integer_one_node, init);
2656 flags |= LOOKUP_HAS_IN_CHARGE;
2657 }
2658
2659 newrval = rval;
2660
2661 if (newrval && TREE_CODE (TREE_TYPE (newrval)) == POINTER_TYPE)
2662 newrval = build_indirect_ref (newrval, NULL_PTR);
2663
2664 newrval = build_method_call (newrval, ctor_identifier,
2665 init, TYPE_BINFO (true_type), flags);
2666
2667 if (newrval)
2668 {
2669 rval = newrval;
2670 TREE_HAS_CONSTRUCTOR (rval) = 1;
2671 }
2672 else
2673 rval = error_mark_node;
2674 }
2675 else
2676 rval = build (VEC_INIT_EXPR, TREE_TYPE (rval),
2677 save_expr (rval), init, nelts);
2678
2679 /* If any part of the object initialization terminates by throwing
2680 an exception and the new-expression does not contain a
2681 new-placement, then the deallocation function is called to free
2682 the memory in which the object was being constructed. */
2683 if (flag_exceptions && alloc_expr)
2684 {
2685 enum tree_code dcode = has_array ? VEC_DELETE_EXPR : DELETE_EXPR;
2686 tree cleanup;
2687 int flags = LOOKUP_NORMAL | (use_global_new * LOOKUP_GLOBAL);
2688
2689 /* All cleanups must last longer than normal. */
2690 int yes = suspend_momentary ();
2691
2692 if (placement)
2693 flags |= LOOKUP_SPECULATIVELY;
2694
2695 /* Copy size to the saveable obstack. */
2696 size = copy_node (size);
2697
2698 /* If we have a new-placement, we need to pass the alloc TARGET_EXPR
2699 to build_op_delete_call so it can extract the args. */
2700 cleanup = build_op_delete_call
2701 (dcode, placement ? alloc_expr : alloc_node, size, flags);
2702
2703 resume_momentary (yes);
2704
2705 /* Ack! First we allocate the memory. Then we set our sentry
2706 variable to true, and expand a cleanup that deletes the memory
2707 if sentry is true. Then we run the constructor and store the
2708 returned pointer in buf. Then we clear sentry and return buf. */
2709
2710 if (cleanup)
2711 {
2712 #if 0
2713 /* Disable this until flow is fixed so that it doesn't
2714 think the initialization of sentry is a dead write. */
2715 tree end, sentry, begin, buf, t = TREE_TYPE (rval);
2716
2717 begin = get_target_expr (boolean_true_node);
2718 sentry = TREE_OPERAND (begin, 0);
2719
2720 yes = suspend_momentary ();
2721 TREE_OPERAND (begin, 2)
2722 = build (COND_EXPR, void_type_node, sentry,
2723 cleanup, void_zero_node);
2724 resume_momentary (yes);
2725
2726 rval = get_target_expr (rval);
2727
2728 end = build (MODIFY_EXPR, TREE_TYPE (sentry),
2729 sentry, boolean_false_node);
2730 TREE_SIDE_EFFECTS (end) = 1;
2731
2732 buf = TREE_OPERAND (rval, 0);
2733
2734 rval = build (COMPOUND_EXPR, t, begin,
2735 build (COMPOUND_EXPR, t, rval,
2736 build (COMPOUND_EXPR, t, end, buf)));
2737 #else
2738 /* FIXME: this is a workaround for a crash due to overlapping
2739 exception regions. Cleanups shouldn't really happen here. */
2740 rval = build1 (CLEANUP_POINT_EXPR, TREE_TYPE (rval), rval);
2741
2742 rval = build (TRY_CATCH_EXPR, TREE_TYPE (rval), rval, cleanup);
2743 rval = build (COMPOUND_EXPR, TREE_TYPE (rval), alloc_expr, rval);
2744 #endif
2745 }
2746 }
2747 }
2748 else if (TYPE_READONLY (true_type))
2749 cp_error ("uninitialized const in `new' of `%#T'", true_type);
2750
2751 done:
2752
2753 if (alloc_expr && rval == alloc_node)
2754 {
2755 rval = TREE_OPERAND (alloc_expr, 1);
2756 alloc_expr = NULL_TREE;
2757 }
2758
2759 if (check_new && alloc_expr)
2760 {
2761 /* Did we modify the storage? */
2762 tree ifexp = build_binary_op (NE_EXPR, alloc_node,
2763 integer_zero_node, 1);
2764 rval = build_conditional_expr (ifexp, rval, alloc_node);
2765 }
2766
2767 if (alloc_expr)
2768 rval = build (COMPOUND_EXPR, TREE_TYPE (rval), alloc_expr, rval);
2769
2770 if (rval && TREE_TYPE (rval) != build_pointer_type (type))
2771 {
2772 /* The type of new int [3][3] is not int *, but int [3] * */
2773 rval = build_c_cast (build_pointer_type (type), rval);
2774 }
2775
2776 return rval;
2777 }
2778 \f
2779 static tree
2780 build_vec_delete_1 (base, maxindex, type, auto_delete_vec, auto_delete,
2781 use_global_delete)
2782 tree base, maxindex, type;
2783 tree auto_delete_vec, auto_delete;
2784 int use_global_delete;
2785 {
2786 tree virtual_size;
2787 tree ptype = build_pointer_type (type = complete_type (type));
2788 tree size_exp = size_in_bytes (type);
2789
2790 /* Temporary variables used by the loop. */
2791 tree tbase, tbase_init;
2792
2793 /* This is the body of the loop that implements the deletion of a
2794 single element, and moves temp variables to next elements. */
2795 tree body;
2796
2797 /* This is the LOOP_EXPR that governs the deletion of the elements. */
2798 tree loop;
2799
2800 /* This is the thing that governs what to do after the loop has run. */
2801 tree deallocate_expr = 0;
2802
2803 /* This is the BIND_EXPR which holds the outermost iterator of the
2804 loop. It is convenient to set this variable up and test it before
2805 executing any other code in the loop.
2806 This is also the containing expression returned by this function. */
2807 tree controller = NULL_TREE;
2808
2809 /* This is the BLOCK to record the symbol binding for debugging. */
2810 tree block;
2811
2812 if (! IS_AGGR_TYPE (type) || ! TYPE_NEEDS_DESTRUCTOR (type))
2813 {
2814 loop = integer_zero_node;
2815 goto no_destructor;
2816 }
2817
2818 /* The below is short by BI_header_size */
2819 virtual_size = fold (size_binop (MULT_EXPR, size_exp, maxindex));
2820
2821 tbase = build_decl (VAR_DECL, NULL_TREE, ptype);
2822 tbase_init = build_modify_expr (tbase, NOP_EXPR,
2823 fold (build (PLUS_EXPR, ptype,
2824 base,
2825 virtual_size)));
2826 DECL_REGISTER (tbase) = 1;
2827 controller = build (BIND_EXPR, void_type_node, tbase, NULL_TREE, NULL_TREE);
2828 TREE_SIDE_EFFECTS (controller) = 1;
2829
2830 if (auto_delete != integer_zero_node
2831 && auto_delete != integer_two_node)
2832 {
2833 tree base_tbd = cp_convert (ptype,
2834 build_binary_op (MINUS_EXPR,
2835 cp_convert (ptr_type_node, base),
2836 BI_header_size,
2837 1));
2838 /* This is the real size */
2839 virtual_size = size_binop (PLUS_EXPR, virtual_size, BI_header_size);
2840 body = build_expr_list (NULL_TREE,
2841 build_x_delete (ptype, base_tbd,
2842 2 | use_global_delete,
2843 virtual_size));
2844 body = build (COND_EXPR, void_type_node,
2845 build (BIT_AND_EXPR, integer_type_node,
2846 auto_delete, integer_one_node),
2847 body, integer_zero_node);
2848 }
2849 else
2850 body = NULL_TREE;
2851
2852 body = expr_tree_cons (NULL_TREE,
2853 build_delete (ptype, tbase, auto_delete,
2854 LOOKUP_NORMAL|LOOKUP_DESTRUCTOR, 1),
2855 body);
2856
2857 body = expr_tree_cons (NULL_TREE,
2858 build_modify_expr (tbase, NOP_EXPR, build (MINUS_EXPR, ptype, tbase, size_exp)),
2859 body);
2860
2861 body = expr_tree_cons (NULL_TREE,
2862 build (EXIT_EXPR, void_type_node,
2863 build (EQ_EXPR, boolean_type_node, base, tbase)),
2864 body);
2865
2866 loop = build (LOOP_EXPR, void_type_node, build_compound_expr (body));
2867
2868 loop = expr_tree_cons (NULL_TREE, tbase_init,
2869 expr_tree_cons (NULL_TREE, loop, NULL_TREE));
2870 loop = build_compound_expr (loop);
2871
2872 no_destructor:
2873 /* If the delete flag is one, or anything else with the low bit set,
2874 delete the storage. */
2875 if (auto_delete_vec == integer_zero_node
2876 || auto_delete_vec == integer_two_node)
2877 deallocate_expr = integer_zero_node;
2878 else
2879 {
2880 tree base_tbd;
2881
2882 /* The below is short by BI_header_size */
2883 virtual_size = fold (size_binop (MULT_EXPR, size_exp, maxindex));
2884
2885 if (! TYPE_VEC_NEW_USES_COOKIE (type))
2886 /* no header */
2887 base_tbd = base;
2888 else
2889 {
2890 base_tbd = cp_convert (ptype,
2891 build_binary_op (MINUS_EXPR,
2892 cp_convert (string_type_node, base),
2893 BI_header_size,
2894 1));
2895 /* True size with header. */
2896 virtual_size = size_binop (PLUS_EXPR, virtual_size, BI_header_size);
2897 }
2898 deallocate_expr = build_x_delete (ptype, base_tbd,
2899 2 | use_global_delete,
2900 virtual_size);
2901 if (auto_delete_vec != integer_one_node)
2902 deallocate_expr = build (COND_EXPR, void_type_node,
2903 build (BIT_AND_EXPR, integer_type_node,
2904 auto_delete_vec, integer_one_node),
2905 deallocate_expr, integer_zero_node);
2906 }
2907
2908 if (loop && deallocate_expr != integer_zero_node)
2909 {
2910 body = expr_tree_cons (NULL_TREE, loop,
2911 expr_tree_cons (NULL_TREE, deallocate_expr, NULL_TREE));
2912 body = build_compound_expr (body);
2913 }
2914 else
2915 body = loop;
2916
2917 /* Outermost wrapper: If pointer is null, punt. */
2918 body = build (COND_EXPR, void_type_node,
2919 build (NE_EXPR, boolean_type_node, base, integer_zero_node),
2920 body, integer_zero_node);
2921 body = build1 (NOP_EXPR, void_type_node, body);
2922
2923 if (controller)
2924 {
2925 TREE_OPERAND (controller, 1) = body;
2926 return controller;
2927 }
2928 else
2929 return cp_convert (void_type_node, body);
2930 }
2931
2932 /* Build a tree to cleanup partially built arrays.
2933 BASE is that starting address of the array.
2934 COUNT is the count of objects that have been built, that need destroying.
2935 TYPE is the type of elements in the array. */
2936
2937 static tree
2938 build_array_eh_cleanup (base, count, type)
2939 tree base, count, type;
2940 {
2941 tree expr = build_vec_delete_1 (base, count, type, integer_two_node,
2942 integer_zero_node, 0);
2943 return expr;
2944 }
2945
2946 /* `expand_vec_init' performs initialization of a vector of aggregate
2947 types.
2948
2949 DECL is passed only for error reporting, and provides line number
2950 and source file name information.
2951 BASE is the space where the vector will be.
2952 MAXINDEX is the maximum index of the array (one less than the
2953 number of elements).
2954 INIT is the (possibly NULL) initializer.
2955
2956 FROM_ARRAY is 0 if we should init everything with INIT
2957 (i.e., every element initialized from INIT).
2958 FROM_ARRAY is 1 if we should index into INIT in parallel
2959 with initialization of DECL.
2960 FROM_ARRAY is 2 if we should index into INIT in parallel,
2961 but use assignment instead of initialization. */
2962
2963 tree
2964 expand_vec_init (decl, base, maxindex, init, from_array)
2965 tree decl, base, maxindex, init;
2966 int from_array;
2967 {
2968 tree rval;
2969 tree iterator, base2 = NULL_TREE;
2970 tree type = TREE_TYPE (TREE_TYPE (base));
2971 tree size;
2972
2973 maxindex = cp_convert (ptrdiff_type_node, maxindex);
2974 if (maxindex == error_mark_node)
2975 return error_mark_node;
2976
2977 if (current_function_decl == NULL_TREE)
2978 {
2979 rval = make_tree_vec (3);
2980 TREE_VEC_ELT (rval, 0) = base;
2981 TREE_VEC_ELT (rval, 1) = maxindex;
2982 TREE_VEC_ELT (rval, 2) = init;
2983 return rval;
2984 }
2985
2986 size = size_in_bytes (type);
2987
2988 /* Set to zero in case size is <= 0. Optimizer will delete this if
2989 it is not needed. */
2990 rval = get_temp_regvar (build_pointer_type (type),
2991 cp_convert (build_pointer_type (type), null_pointer_node));
2992 base = default_conversion (base);
2993 base = cp_convert (build_pointer_type (type), base);
2994 expand_assignment (rval, base, 0, 0);
2995 base = get_temp_regvar (build_pointer_type (type), base);
2996
2997 if (init != NULL_TREE
2998 && TREE_CODE (init) == CONSTRUCTOR
2999 && (! decl || TREE_TYPE (init) == TREE_TYPE (decl)))
3000 {
3001 /* Initialization of array from {...}. */
3002 tree elts = CONSTRUCTOR_ELTS (init);
3003 tree baseref = build1 (INDIRECT_REF, type, base);
3004 tree baseinc = build (PLUS_EXPR, build_pointer_type (type), base, size);
3005 int host_i = TREE_INT_CST_LOW (maxindex);
3006
3007 if (IS_AGGR_TYPE (type))
3008 {
3009 while (elts)
3010 {
3011 host_i -= 1;
3012 expand_aggr_init (baseref, TREE_VALUE (elts), 0, 0);
3013
3014 expand_assignment (base, baseinc, 0, 0);
3015 elts = TREE_CHAIN (elts);
3016 }
3017 /* Initialize any elements by default if possible. */
3018 if (host_i >= 0)
3019 {
3020 if (TYPE_NEEDS_CONSTRUCTING (type) == 0)
3021 {
3022 if (obey_regdecls)
3023 use_variable (DECL_RTL (base));
3024 goto done_init;
3025 }
3026
3027 iterator = get_temp_regvar (ptrdiff_type_node,
3028 build_int_2 (host_i, 0));
3029 init = NULL_TREE;
3030 goto init_by_default;
3031 }
3032 }
3033 else
3034 while (elts)
3035 {
3036 expand_assignment (baseref, TREE_VALUE (elts), 0, 0);
3037
3038 expand_assignment (base, baseinc, 0, 0);
3039 elts = TREE_CHAIN (elts);
3040 }
3041
3042 if (obey_regdecls)
3043 use_variable (DECL_RTL (base));
3044 }
3045 else
3046 {
3047 tree itype;
3048
3049 iterator = get_temp_regvar (ptrdiff_type_node, maxindex);
3050
3051 init_by_default:
3052
3053 /* If initializing one array from another,
3054 initialize element by element. */
3055 if (from_array)
3056 {
3057 /* We rely upon the below calls the do argument checking */
3058 if (decl == NULL_TREE)
3059 {
3060 sorry ("initialization of array from dissimilar array type");
3061 return error_mark_node;
3062 }
3063 if (init)
3064 {
3065 base2 = default_conversion (init);
3066 itype = TREE_TYPE (base2);
3067 base2 = get_temp_regvar (itype, base2);
3068 itype = TREE_TYPE (itype);
3069 }
3070 else if (TYPE_LANG_SPECIFIC (type)
3071 && TYPE_NEEDS_CONSTRUCTING (type)
3072 && ! TYPE_HAS_DEFAULT_CONSTRUCTOR (type))
3073 {
3074 error ("initializer ends prematurely");
3075 return error_mark_node;
3076 }
3077 }
3078
3079 expand_start_cond (build (GE_EXPR, boolean_type_node,
3080 iterator, integer_zero_node), 0);
3081 if (TYPE_NEEDS_DESTRUCTOR (type))
3082 expand_eh_region_start ();
3083 expand_start_loop_continue_elsewhere (1);
3084
3085 if (from_array)
3086 {
3087 tree to = build1 (INDIRECT_REF, type, base);
3088 tree from;
3089
3090 if (base2)
3091 from = build1 (INDIRECT_REF, itype, base2);
3092 else
3093 from = NULL_TREE;
3094
3095 if (from_array == 2)
3096 expand_expr_stmt (build_modify_expr (to, NOP_EXPR, from));
3097 else if (TYPE_NEEDS_CONSTRUCTING (type))
3098 expand_aggr_init (to, from, 0, 0);
3099 else if (from)
3100 expand_assignment (to, from, 0, 0);
3101 else
3102 my_friendly_abort (57);
3103 }
3104 else if (TREE_CODE (type) == ARRAY_TYPE)
3105 {
3106 if (init != 0)
3107 sorry ("cannot initialize multi-dimensional array with initializer");
3108 expand_vec_init (decl, build1 (NOP_EXPR, build_pointer_type (TREE_TYPE (type)), base),
3109 array_type_nelts (type), 0, 0);
3110 }
3111 else
3112 expand_aggr_init (build1 (INDIRECT_REF, type, base), init, 0, 0);
3113
3114 expand_assignment (base,
3115 build (PLUS_EXPR, build_pointer_type (type), base, size),
3116 0, 0);
3117 if (base2)
3118 expand_assignment (base2,
3119 build (PLUS_EXPR, build_pointer_type (type), base2, size), 0, 0);
3120 expand_loop_continue_here ();
3121 expand_exit_loop_if_false (0, build (NE_EXPR, boolean_type_node,
3122 build (PREDECREMENT_EXPR, ptrdiff_type_node, iterator, integer_one_node), minus_one));
3123
3124 if (obey_regdecls)
3125 {
3126 use_variable (DECL_RTL (base));
3127 if (base2)
3128 use_variable (DECL_RTL (base2));
3129 }
3130 expand_end_loop ();
3131 if (TYPE_NEEDS_DESTRUCTOR (type) && flag_exceptions)
3132 {
3133 /* We have to ensure that this can live to the cleanup
3134 expansion time, since we know it is only ever needed
3135 once, generate code now. */
3136 push_obstacks_nochange ();
3137 resume_temporary_allocation ();
3138 {
3139 tree e1, cleanup = make_node (RTL_EXPR);
3140 TREE_TYPE (cleanup) = void_type_node;
3141 RTL_EXPR_RTL (cleanup) = const0_rtx;
3142 TREE_SIDE_EFFECTS (cleanup) = 1;
3143 do_pending_stack_adjust ();
3144 start_sequence_for_rtl_expr (cleanup);
3145
3146 e1 = build_array_eh_cleanup
3147 (rval,
3148 build_binary_op (MINUS_EXPR, maxindex, iterator, 1),
3149 type);
3150 expand_expr (e1, const0_rtx, VOIDmode, EXPAND_NORMAL);
3151 do_pending_stack_adjust ();
3152 RTL_EXPR_SEQUENCE (cleanup) = get_insns ();
3153 end_sequence ();
3154
3155 cleanup = protect_with_terminate (cleanup);
3156 expand_eh_region_end (cleanup);
3157 }
3158 pop_obstacks ();
3159 }
3160 expand_end_cond ();
3161 if (obey_regdecls)
3162 use_variable (DECL_RTL (iterator));
3163 }
3164 done_init:
3165
3166 if (obey_regdecls)
3167 use_variable (DECL_RTL (rval));
3168 return rval;
3169 }
3170
3171 /* Free up storage of type TYPE, at address ADDR.
3172
3173 TYPE is a POINTER_TYPE and can be ptr_type_node for no special type
3174 of pointer.
3175
3176 VIRTUAL_SIZE is the amount of storage that was allocated, and is
3177 used as the second argument to operator delete. It can include
3178 things like padding and magic size cookies. It has virtual in it,
3179 because if you have a base pointer and you delete through a virtual
3180 destructor, it should be the size of the dynamic object, not the
3181 static object, see Free Store 12.5 ANSI C++ WP.
3182
3183 This does not call any destructors. */
3184
3185 tree
3186 build_x_delete (type, addr, which_delete, virtual_size)
3187 tree type, addr;
3188 int which_delete;
3189 tree virtual_size;
3190 {
3191 int use_global_delete = which_delete & 1;
3192 int use_vec_delete = !!(which_delete & 2);
3193 enum tree_code code = use_vec_delete ? VEC_DELETE_EXPR : DELETE_EXPR;
3194 int flags = LOOKUP_NORMAL | (use_global_delete * LOOKUP_GLOBAL);
3195
3196 return build_op_delete_call (code, addr, virtual_size, flags);
3197 }
3198
3199 /* Generate a call to a destructor. TYPE is the type to cast ADDR to.
3200 ADDR is an expression which yields the store to be destroyed.
3201 AUTO_DELETE is nonzero if a call to DELETE should be made or not.
3202 If in the program, (AUTO_DELETE & 2) is non-zero, we tear down the
3203 virtual baseclasses.
3204 If in the program, (AUTO_DELETE & 1) is non-zero, then we deallocate.
3205
3206 FLAGS is the logical disjunction of zero or more LOOKUP_
3207 flags. See cp-tree.h for more info.
3208
3209 This function does not delete an object's virtual base classes. */
3210
3211 tree
3212 build_delete (type, addr, auto_delete, flags, use_global_delete)
3213 tree type, addr;
3214 tree auto_delete;
3215 int flags;
3216 int use_global_delete;
3217 {
3218 tree member;
3219 tree expr;
3220 tree ref;
3221
3222 if (addr == error_mark_node)
3223 return error_mark_node;
3224
3225 /* Can happen when CURRENT_EXCEPTION_OBJECT gets its type
3226 set to `error_mark_node' before it gets properly cleaned up. */
3227 if (type == error_mark_node)
3228 return error_mark_node;
3229
3230 type = TYPE_MAIN_VARIANT (type);
3231
3232 if (TREE_CODE (type) == POINTER_TYPE)
3233 {
3234 type = TYPE_MAIN_VARIANT (TREE_TYPE (type));
3235 if (TYPE_SIZE (complete_type (type)) == 0)
3236 {
3237 incomplete_type_error (0, type);
3238 return error_mark_node;
3239 }
3240 if (TREE_CODE (type) == ARRAY_TYPE)
3241 goto handle_array;
3242 if (! IS_AGGR_TYPE (type))
3243 {
3244 /* Call the builtin operator delete. */
3245 return build_builtin_call (void_type_node, BID,
3246 build_expr_list (NULL_TREE, addr));
3247 }
3248 if (TREE_SIDE_EFFECTS (addr))
3249 addr = save_expr (addr);
3250
3251 /* throw away const and volatile on target type of addr */
3252 addr = convert_force (build_pointer_type (type), addr, 0);
3253 ref = build_indirect_ref (addr, NULL_PTR);
3254 }
3255 else if (TREE_CODE (type) == ARRAY_TYPE)
3256 {
3257 handle_array:
3258 if (TREE_SIDE_EFFECTS (addr))
3259 addr = save_expr (addr);
3260 if (TYPE_DOMAIN (type) == NULL_TREE)
3261 {
3262 error ("unknown array size in delete");
3263 return error_mark_node;
3264 }
3265 return build_vec_delete (addr, array_type_nelts (type),
3266 auto_delete, integer_two_node,
3267 use_global_delete);
3268 }
3269 else
3270 {
3271 /* Don't check PROTECT here; leave that decision to the
3272 destructor. If the destructor is accessible, call it,
3273 else report error. */
3274 addr = build_unary_op (ADDR_EXPR, addr, 0);
3275 if (TREE_SIDE_EFFECTS (addr))
3276 addr = save_expr (addr);
3277
3278 if (TREE_CONSTANT (addr))
3279 addr = convert_pointer_to (type, addr);
3280 else
3281 addr = convert_force (build_pointer_type (type), addr, 0);
3282
3283 ref = build_indirect_ref (addr, NULL_PTR);
3284 }
3285
3286 my_friendly_assert (IS_AGGR_TYPE (type), 220);
3287
3288 if (! TYPE_NEEDS_DESTRUCTOR (type))
3289 {
3290 if (auto_delete == integer_zero_node)
3291 return void_zero_node;
3292
3293 return build_op_delete_call
3294 (DELETE_EXPR, addr, c_sizeof_nowarn (type),
3295 LOOKUP_NORMAL | (use_global_delete * LOOKUP_GLOBAL));
3296 }
3297
3298 /* Below, we will reverse the order in which these calls are made.
3299 If we have a destructor, then that destructor will take care
3300 of the base classes; otherwise, we must do that here. */
3301 if (TYPE_HAS_DESTRUCTOR (type))
3302 {
3303 tree passed_auto_delete;
3304 tree do_delete = NULL_TREE;
3305 tree ifexp;
3306
3307 if (use_global_delete)
3308 {
3309 tree cond = fold (build (BIT_AND_EXPR, integer_type_node,
3310 auto_delete, integer_one_node));
3311 tree call = build_builtin_call
3312 (void_type_node, BID, build_expr_list (NULL_TREE, addr));
3313
3314 cond = fold (build (COND_EXPR, void_type_node, cond,
3315 call, void_zero_node));
3316 if (cond != void_zero_node)
3317 do_delete = cond;
3318
3319 passed_auto_delete = fold (build (BIT_AND_EXPR, integer_type_node,
3320 auto_delete, integer_two_node));
3321 }
3322 else
3323 passed_auto_delete = auto_delete;
3324
3325 expr = build_method_call
3326 (ref, dtor_identifier, build_expr_list (NULL_TREE, passed_auto_delete),
3327 NULL_TREE, flags);
3328
3329 if (do_delete)
3330 expr = build (COMPOUND_EXPR, void_type_node, expr, do_delete);
3331
3332 if (flags & LOOKUP_DESTRUCTOR)
3333 /* Explicit destructor call; don't check for null pointer. */
3334 ifexp = integer_one_node;
3335 else
3336 /* Handle deleting a null pointer. */
3337 ifexp = fold (build_binary_op (NE_EXPR, addr, integer_zero_node, 1));
3338
3339 if (ifexp != integer_one_node)
3340 expr = build (COND_EXPR, void_type_node,
3341 ifexp, expr, void_zero_node);
3342
3343 return expr;
3344 }
3345 else
3346 {
3347 /* We only get here from finish_function for a destructor. */
3348 tree binfos = BINFO_BASETYPES (TYPE_BINFO (type));
3349 int i, n_baseclasses = binfos ? TREE_VEC_LENGTH (binfos) : 0;
3350 tree base_binfo = n_baseclasses > 0 ? TREE_VEC_ELT (binfos, 0) : NULL_TREE;
3351 tree exprstmt = NULL_TREE;
3352 tree parent_auto_delete = auto_delete;
3353 tree cond;
3354
3355 /* If we have member delete or vbases, we call delete in
3356 finish_function. */
3357 if (auto_delete == integer_zero_node)
3358 cond = NULL_TREE;
3359 else if (base_binfo == NULL_TREE
3360 || ! TYPE_NEEDS_DESTRUCTOR (BINFO_TYPE (base_binfo)))
3361 {
3362 cond = build (COND_EXPR, void_type_node,
3363 build (BIT_AND_EXPR, integer_type_node, auto_delete, integer_one_node),
3364 build_builtin_call (void_type_node, BID,
3365 build_expr_list (NULL_TREE, addr)),
3366 void_zero_node);
3367 }
3368 else
3369 cond = NULL_TREE;
3370
3371 if (cond)
3372 exprstmt = build_expr_list (NULL_TREE, cond);
3373
3374 if (base_binfo
3375 && ! TREE_VIA_VIRTUAL (base_binfo)
3376 && TYPE_NEEDS_DESTRUCTOR (BINFO_TYPE (base_binfo)))
3377 {
3378 tree this_auto_delete;
3379
3380 if (BINFO_OFFSET_ZEROP (base_binfo))
3381 this_auto_delete = parent_auto_delete;
3382 else
3383 this_auto_delete = integer_zero_node;
3384
3385 expr = build_scoped_method_call
3386 (ref, base_binfo, dtor_identifier,
3387 build_expr_list (NULL_TREE, this_auto_delete));
3388 exprstmt = expr_tree_cons (NULL_TREE, expr, exprstmt);
3389 }
3390
3391 /* Take care of the remaining baseclasses. */
3392 for (i = 1; i < n_baseclasses; i++)
3393 {
3394 base_binfo = TREE_VEC_ELT (binfos, i);
3395 if (! TYPE_NEEDS_DESTRUCTOR (BINFO_TYPE (base_binfo))
3396 || TREE_VIA_VIRTUAL (base_binfo))
3397 continue;
3398
3399 expr = build_scoped_method_call
3400 (ref, base_binfo, dtor_identifier,
3401 build_expr_list (NULL_TREE, integer_zero_node));
3402
3403 exprstmt = expr_tree_cons (NULL_TREE, expr, exprstmt);
3404 }
3405
3406 for (member = TYPE_FIELDS (type); member; member = TREE_CHAIN (member))
3407 {
3408 if (TREE_CODE (member) != FIELD_DECL)
3409 continue;
3410 if (TYPE_NEEDS_DESTRUCTOR (TREE_TYPE (member)))
3411 {
3412 tree this_member = build_component_ref (ref, DECL_NAME (member), NULL_TREE, 0);
3413 tree this_type = TREE_TYPE (member);
3414 expr = build_delete (this_type, this_member, integer_two_node, flags, 0);
3415 exprstmt = expr_tree_cons (NULL_TREE, expr, exprstmt);
3416 }
3417 }
3418
3419 if (exprstmt)
3420 return build_compound_expr (exprstmt);
3421 /* Virtual base classes make this function do nothing. */
3422 return void_zero_node;
3423 }
3424 }
3425
3426 /* For type TYPE, delete the virtual baseclass objects of DECL. */
3427
3428 tree
3429 build_vbase_delete (type, decl)
3430 tree type, decl;
3431 {
3432 tree vbases = CLASSTYPE_VBASECLASSES (type);
3433 tree result = NULL_TREE;
3434 tree addr = build_unary_op (ADDR_EXPR, decl, 0);
3435
3436 my_friendly_assert (addr != error_mark_node, 222);
3437
3438 while (vbases)
3439 {
3440 tree this_addr = convert_force (build_pointer_type (BINFO_TYPE (vbases)),
3441 addr, 0);
3442 result = expr_tree_cons (NULL_TREE,
3443 build_delete (TREE_TYPE (this_addr), this_addr,
3444 integer_zero_node,
3445 LOOKUP_NORMAL|LOOKUP_DESTRUCTOR, 0),
3446 result);
3447 vbases = TREE_CHAIN (vbases);
3448 }
3449 return build_compound_expr (nreverse (result));
3450 }
3451
3452 /* Build a C++ vector delete expression.
3453 MAXINDEX is the number of elements to be deleted.
3454 ELT_SIZE is the nominal size of each element in the vector.
3455 BASE is the expression that should yield the store to be deleted.
3456 This function expands (or synthesizes) these calls itself.
3457 AUTO_DELETE_VEC says whether the container (vector) should be deallocated.
3458 AUTO_DELETE say whether each item in the container should be deallocated.
3459
3460 This also calls delete for virtual baseclasses of elements of the vector.
3461
3462 Update: MAXINDEX is no longer needed. The size can be extracted from the
3463 start of the vector for pointers, and from the type for arrays. We still
3464 use MAXINDEX for arrays because it happens to already have one of the
3465 values we'd have to extract. (We could use MAXINDEX with pointers to
3466 confirm the size, and trap if the numbers differ; not clear that it'd
3467 be worth bothering.) */
3468
3469 tree
3470 build_vec_delete (base, maxindex, auto_delete_vec, auto_delete,
3471 use_global_delete)
3472 tree base, maxindex;
3473 tree auto_delete_vec, auto_delete;
3474 int use_global_delete;
3475 {
3476 tree type;
3477
3478 if (TREE_CODE (base) == OFFSET_REF)
3479 base = resolve_offset_ref (base);
3480
3481 type = TREE_TYPE (base);
3482
3483 base = stabilize_reference (base);
3484
3485 /* Since we can use base many times, save_expr it. */
3486 if (TREE_SIDE_EFFECTS (base))
3487 base = save_expr (base);
3488
3489 if (TREE_CODE (type) == POINTER_TYPE)
3490 {
3491 /* Step back one from start of vector, and read dimension. */
3492 tree cookie_addr = build (MINUS_EXPR, build_pointer_type (BI_header_type),
3493 base, BI_header_size);
3494 tree cookie = build_indirect_ref (cookie_addr, NULL_PTR);
3495 maxindex = build_component_ref (cookie, nc_nelts_field_id, NULL_TREE, 0);
3496 do
3497 type = TREE_TYPE (type);
3498 while (TREE_CODE (type) == ARRAY_TYPE);
3499 }
3500 else if (TREE_CODE (type) == ARRAY_TYPE)
3501 {
3502 /* get the total number of things in the array, maxindex is a bad name */
3503 maxindex = array_type_nelts_total (type);
3504 while (TREE_CODE (type) == ARRAY_TYPE)
3505 type = TREE_TYPE (type);
3506 base = build_unary_op (ADDR_EXPR, base, 1);
3507 }
3508 else
3509 {
3510 if (base != error_mark_node)
3511 error ("type to vector delete is neither pointer or array type");
3512 return error_mark_node;
3513 }
3514
3515 return build_vec_delete_1 (base, maxindex, type, auto_delete_vec, auto_delete,
3516 use_global_delete);
3517 }