2011-01-05 Michael Snyder <msnyder@vmware.com>
[deliverable/binutils-gdb.git] / gdb / cp-namespace.c
1 /* Helper routines for C++ support in GDB.
2 Copyright (C) 2003, 2004, 2007, 2008, 2009, 2010, 2011
3 Free Software Foundation, Inc.
4
5 Contributed by David Carlton and by Kealia, Inc.
6
7 This file is part of GDB.
8
9 This program is free software; you can redistribute it and/or modify
10 it under the terms of the GNU General Public License as published by
11 the Free Software Foundation; either version 3 of the License, or
12 (at your option) any later version.
13
14 This program is distributed in the hope that it will be useful,
15 but WITHOUT ANY WARRANTY; without even the implied warranty of
16 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 GNU General Public License for more details.
18
19 You should have received a copy of the GNU General Public License
20 along with this program. If not, see <http://www.gnu.org/licenses/>. */
21
22 #include "defs.h"
23 #include "cp-support.h"
24 #include "gdb_obstack.h"
25 #include "symtab.h"
26 #include "symfile.h"
27 #include "gdb_assert.h"
28 #include "block.h"
29 #include "objfiles.h"
30 #include "gdbtypes.h"
31 #include "dictionary.h"
32 #include "command.h"
33 #include "frame.h"
34 #include "buildsym.h"
35 #include "language.h"
36
37 static struct symbol *lookup_namespace_scope (const char *name,
38 const struct block *block,
39 const domain_enum domain,
40 const char *scope,
41 int scope_len);
42
43 static struct symbol *lookup_symbol_file (const char *name,
44 const struct block *block,
45 const domain_enum domain,
46 int anonymous_namespace);
47
48 static struct type *cp_lookup_transparent_type_loop (const char *name,
49 const char *scope,
50 int scope_len);
51
52 static void initialize_namespace_symtab (struct objfile *objfile);
53
54 static struct block *get_possible_namespace_block (struct objfile *objfile);
55
56 static void free_namespace_block (struct symtab *symtab);
57
58 static int check_possible_namespace_symbols_loop (const char *name,
59 int len,
60 struct objfile *objfile);
61
62 static int check_one_possible_namespace_symbol (const char *name,
63 int len,
64 struct objfile *objfile);
65
66 static struct symbol *lookup_possible_namespace_symbol (const char *name);
67
68 static void maintenance_cplus_namespace (char *args, int from_tty);
69
70 /* Check to see if SYMBOL refers to an object contained within an
71 anonymous namespace; if so, add an appropriate using directive. */
72
73 /* Optimize away strlen ("(anonymous namespace)"). */
74
75 #define ANONYMOUS_NAMESPACE_LEN 21
76
77 void
78 cp_scan_for_anonymous_namespaces (const struct symbol *symbol)
79 {
80 if (SYMBOL_DEMANGLED_NAME (symbol) != NULL)
81 {
82 const char *name = SYMBOL_DEMANGLED_NAME (symbol);
83 unsigned int previous_component;
84 unsigned int next_component;
85
86 /* Start with a quick-and-dirty check for mention of "(anonymous
87 namespace)". */
88
89 if (!cp_is_anonymous (name))
90 return;
91
92 previous_component = 0;
93 next_component = cp_find_first_component (name + previous_component);
94
95 while (name[next_component] == ':')
96 {
97 if ((next_component - previous_component) == ANONYMOUS_NAMESPACE_LEN
98 && strncmp (name + previous_component,
99 "(anonymous namespace)",
100 ANONYMOUS_NAMESPACE_LEN) == 0)
101 {
102 int dest_len = (previous_component == 0
103 ? 0 : previous_component - 2);
104 int src_len = next_component;
105
106 char *dest = alloca (dest_len + 1);
107 char *src = alloca (src_len + 1);
108
109 memcpy (dest, name, dest_len);
110 memcpy (src, name, src_len);
111
112 dest[dest_len] = '\0';
113 src[src_len] = '\0';
114
115 /* We've found a component of the name that's an
116 anonymous namespace. So add symbols in it to the
117 namespace given by the previous component if there is
118 one, or to the global namespace if there isn't. */
119 cp_add_using_directive (dest, src, NULL, NULL,
120 &SYMBOL_SYMTAB (symbol)->objfile->objfile_obstack);
121 }
122 /* The "+ 2" is for the "::". */
123 previous_component = next_component + 2;
124 next_component = (previous_component
125 + cp_find_first_component (name
126 + previous_component));
127 }
128 }
129 }
130
131
132 /* Add a using directive to using_directives. If the using directive
133 in question has already been added, don't add it twice.
134
135 Create a new struct using_direct which imports the namespace SRC
136 into the scope DEST. ALIAS is the name of the imported namespace
137 in the current scope. If ALIAS is NULL then the namespace is known
138 by its original name. DECLARATION is the name if the imported
139 varable if this is a declaration import (Eg. using A::x), otherwise
140 it is NULL. The arguments are copied into newly allocated memory
141 so they can be temporaries. */
142
143 void
144 cp_add_using_directive (const char *dest,
145 const char *src,
146 const char *alias,
147 const char *declaration,
148 struct obstack *obstack)
149 {
150 struct using_direct *current;
151 struct using_direct *new;
152
153 /* Has it already been added? */
154
155 for (current = using_directives; current != NULL; current = current->next)
156 {
157 if (strcmp (current->import_src, src) == 0
158 && strcmp (current->import_dest, dest) == 0
159 && ((alias == NULL && current->alias == NULL)
160 || (alias != NULL && current->alias != NULL
161 && strcmp (alias, current->alias) == 0))
162 && ((declaration == NULL && current->declaration == NULL)
163 || (declaration != NULL && current->declaration != NULL
164 && strcmp (declaration, current->declaration) == 0)))
165 return;
166 }
167
168 new = OBSTACK_ZALLOC (obstack, struct using_direct);
169
170 new->import_src = obsavestring (src, strlen (src), obstack);
171 new->import_dest = obsavestring (dest, strlen (dest), obstack);
172
173 if (alias != NULL)
174 new->alias = obsavestring (alias, strlen (alias), obstack);
175
176 if (declaration != NULL)
177 new->declaration = obsavestring (declaration, strlen (declaration),
178 obstack);
179
180 new->next = using_directives;
181 using_directives = new;
182 }
183
184 /* Record the namespace that the function defined by SYMBOL was
185 defined in, if necessary. BLOCK is the associated block; use
186 OBSTACK for allocation. */
187
188 void
189 cp_set_block_scope (const struct symbol *symbol,
190 struct block *block,
191 struct obstack *obstack,
192 const char *processing_current_prefix,
193 int processing_has_namespace_info)
194 {
195 if (processing_has_namespace_info)
196 {
197 block_set_scope
198 (block, obsavestring (processing_current_prefix,
199 strlen (processing_current_prefix),
200 obstack),
201 obstack);
202 }
203 else if (SYMBOL_DEMANGLED_NAME (symbol) != NULL)
204 {
205 /* Try to figure out the appropriate namespace from the
206 demangled name. */
207
208 /* FIXME: carlton/2003-04-15: If the function in question is
209 a method of a class, the name will actually include the
210 name of the class as well. This should be harmless, but
211 is a little unfortunate. */
212
213 const char *name = SYMBOL_DEMANGLED_NAME (symbol);
214 unsigned int prefix_len = cp_entire_prefix_len (name);
215
216 block_set_scope (block,
217 obsavestring (name, prefix_len, obstack),
218 obstack);
219 }
220 }
221
222 /* Test whether or not NAMESPACE looks like it mentions an anonymous
223 namespace; return nonzero if so. */
224
225 int
226 cp_is_anonymous (const char *namespace)
227 {
228 return (strstr (namespace, "(anonymous namespace)")
229 != NULL);
230 }
231
232 /* The C++-specific version of name lookup for static and global
233 names. This makes sure that names get looked for in all namespaces
234 that are in scope. NAME is the natural name of the symbol that
235 we're looking for, BLOCK is the block that we're searching within,
236 DOMAIN says what kind of symbols we're looking for, and if SYMTAB
237 is non-NULL, we should store the symtab where we found the symbol
238 in it. */
239
240 struct symbol *
241 cp_lookup_symbol_nonlocal (const char *name,
242 const struct block *block,
243 const domain_enum domain)
244 {
245 struct symbol *sym;
246 const char *scope = block_scope (block);
247
248 sym = lookup_namespace_scope (name, block,
249 domain, scope, 0);
250 if (sym != NULL)
251 return sym;
252
253 return cp_lookup_symbol_namespace (scope, name,
254 block, domain);
255 }
256
257 /* Look up NAME in the C++ namespace NAMESPACE. Other arguments are
258 as in cp_lookup_symbol_nonlocal. */
259
260 static struct symbol *
261 cp_lookup_symbol_in_namespace (const char *namespace,
262 const char *name,
263 const struct block *block,
264 const domain_enum domain)
265 {
266 if (namespace[0] == '\0')
267 {
268 return lookup_symbol_file (name, block, domain, 0);
269 }
270 else
271 {
272 char *concatenated_name = alloca (strlen (namespace) + 2
273 + strlen (name) + 1);
274
275 strcpy (concatenated_name, namespace);
276 strcat (concatenated_name, "::");
277 strcat (concatenated_name, name);
278 return lookup_symbol_file (concatenated_name, block, domain,
279 cp_is_anonymous (namespace));
280 }
281 }
282
283 /* Used for cleanups to reset the "searched" flag incase
284 of an error. */
285
286 static void
287 reset_directive_searched (void *data)
288 {
289 struct using_direct *direct = data;
290 direct->searched = 0;
291 }
292
293 /* Search for NAME by applying all import statements belonging to
294 BLOCK which are applicable in SCOPE. If DECLARATION_ONLY the
295 search is restricted to using declarations.
296 Example:
297
298 namespace A {
299 int x;
300 }
301 using A::x;
302
303 If SEARCH_PARENTS the search will include imports which are
304 applicable in parents of SCOPE.
305 Example:
306
307 namespace A {
308 using namespace X;
309 namespace B {
310 using namespace Y;
311 }
312 }
313
314 If SCOPE is "A::B" and SEARCH_PARENTS is true the imports of
315 namespaces X and Y will be considered. If SEARCH_PARENTS is false
316 only the import of Y is considered. */
317
318 struct symbol *
319 cp_lookup_symbol_imports (const char *scope,
320 const char *name,
321 const struct block *block,
322 const domain_enum domain,
323 const int declaration_only,
324 const int search_parents)
325 {
326 struct using_direct *current;
327 struct symbol *sym = NULL;
328 int len;
329 int directive_match;
330 struct cleanup *searched_cleanup;
331
332 /* First, try to find the symbol in the given namespace. */
333 if (!declaration_only)
334 sym = cp_lookup_symbol_in_namespace (scope, name,
335 block, domain);
336
337 if (sym != NULL)
338 return sym;
339
340 /* Go through the using directives. If any of them add new names to
341 the namespace we're searching in, see if we can find a match by
342 applying them. */
343
344 for (current = block_using (block);
345 current != NULL;
346 current = current->next)
347 {
348 len = strlen (current->import_dest);
349 directive_match = (search_parents
350 ? (strncmp (scope, current->import_dest,
351 strlen (current->import_dest)) == 0
352 && (len == 0
353 || scope[len] == ':'
354 || scope[len] == '\0'))
355 : strcmp (scope, current->import_dest) == 0);
356
357 /* If the import destination is the current scope or one of its
358 ancestors then it is applicable. */
359 if (directive_match && !current->searched)
360 {
361 /* Mark this import as searched so that the recursive call
362 does not search it again. */
363 current->searched = 1;
364 searched_cleanup = make_cleanup (reset_directive_searched,
365 current);
366
367 /* If there is an import of a single declaration, compare the
368 imported declaration (after optional renaming by its alias)
369 with the sought out name. If there is a match pass
370 current->import_src as NAMESPACE to direct the search
371 towards the imported namespace. */
372 if (current->declaration
373 && strcmp (name, current->alias
374 ? current->alias : current->declaration) == 0)
375 sym = cp_lookup_symbol_in_namespace (current->import_src,
376 current->declaration,
377 block, domain);
378
379 /* If this is a DECLARATION_ONLY search or a symbol was found
380 or this import statement was an import declaration, the
381 search of this import is complete. */
382 if (declaration_only || sym != NULL || current->declaration)
383 {
384 current->searched = 0;
385 discard_cleanups (searched_cleanup);
386
387 if (sym != NULL)
388 return sym;
389
390 continue;
391 }
392
393 if (current->alias != NULL
394 && strcmp (name, current->alias) == 0)
395 /* If the import is creating an alias and the alias matches
396 the sought name. Pass current->import_src as the NAME to
397 direct the search towards the aliased namespace. */
398 {
399 sym = cp_lookup_symbol_in_namespace (scope,
400 current->import_src,
401 block, domain);
402 }
403 else if (current->alias == NULL)
404 {
405 /* If this import statement creates no alias, pass
406 current->inner as NAMESPACE to direct the search
407 towards the imported namespace. */
408 sym = cp_lookup_symbol_imports (current->import_src,
409 name, block,
410 domain, 0, 0);
411 }
412 current->searched = 0;
413 discard_cleanups (searched_cleanup);
414
415 if (sym != NULL)
416 return sym;
417 }
418 }
419
420 return NULL;
421 }
422
423 /* Helper function that searches an array of symbols for one named
424 NAME. */
425
426 static struct symbol *
427 search_symbol_list (const char *name, int num,
428 struct symbol **syms)
429 {
430 int i;
431
432 /* Maybe we should store a dictionary in here instead. */
433 for (i = 0; i < num; ++i)
434 {
435 if (strcmp (name, SYMBOL_NATURAL_NAME (syms[i])) == 0)
436 return syms[i];
437 }
438 return NULL;
439 }
440
441 /* Like cp_lookup_symbol_imports, but if BLOCK is a function, it
442 searches through the template parameters of the function and the
443 function's type. */
444
445 struct symbol *
446 cp_lookup_symbol_imports_or_template (const char *scope,
447 const char *name,
448 const struct block *block,
449 const domain_enum domain)
450 {
451 struct symbol *function = BLOCK_FUNCTION (block);
452
453 if (function != NULL && SYMBOL_LANGUAGE (function) == language_cplus)
454 {
455 int i;
456 struct cplus_specific *cps
457 = function->ginfo.language_specific.cplus_specific;
458
459 /* Search the function's template parameters. */
460 if (SYMBOL_IS_CPLUS_TEMPLATE_FUNCTION (function))
461 {
462 struct template_symbol *templ
463 = (struct template_symbol *) function;
464 struct symbol *result;
465
466 result = search_symbol_list (name,
467 templ->n_template_arguments,
468 templ->template_arguments);
469 if (result != NULL)
470 return result;
471 }
472
473 /* Search the template parameters of the function's defining
474 context. */
475 if (SYMBOL_NATURAL_NAME (function))
476 {
477 struct type *context;
478 char *name_copy = xstrdup (SYMBOL_NATURAL_NAME (function));
479 struct cleanup *cleanups = make_cleanup (xfree, name_copy);
480 const struct language_defn *lang = language_def (language_cplus);
481 struct gdbarch *arch = SYMBOL_SYMTAB (function)->objfile->gdbarch;
482 const struct block *parent = BLOCK_SUPERBLOCK (block);
483
484 while (1)
485 {
486 struct symbol *result;
487 unsigned int prefix_len = cp_entire_prefix_len (name_copy);
488
489 if (prefix_len == 0)
490 context = NULL;
491 else
492 {
493 name_copy[prefix_len] = '\0';
494 context = lookup_typename (lang, arch,
495 name_copy,
496 parent, 1);
497 }
498
499 if (context == NULL)
500 break;
501
502 result
503 = search_symbol_list (name,
504 TYPE_N_TEMPLATE_ARGUMENTS (context),
505 TYPE_TEMPLATE_ARGUMENTS (context));
506 if (result != NULL)
507 return result;
508 }
509
510 do_cleanups (cleanups);
511 }
512 }
513
514 return cp_lookup_symbol_imports (scope, name, block, domain, 1, 1);
515 }
516
517 /* Searches for NAME in the current namespace, and by applying
518 relevant import statements belonging to BLOCK and its parents.
519 SCOPE is the namespace scope of the context in which the search is
520 being evaluated. */
521
522 struct symbol*
523 cp_lookup_symbol_namespace (const char *scope,
524 const char *name,
525 const struct block *block,
526 const domain_enum domain)
527 {
528 struct symbol *sym;
529
530 /* First, try to find the symbol in the given namespace. */
531 sym = cp_lookup_symbol_in_namespace (scope, name,
532 block, domain);
533 if (sym != NULL)
534 return sym;
535
536 /* Search for name in namespaces imported to this and parent
537 blocks. */
538 while (block != NULL)
539 {
540 sym = cp_lookup_symbol_imports (scope, name, block,
541 domain, 0, 1);
542
543 if (sym)
544 return sym;
545
546 block = BLOCK_SUPERBLOCK (block);
547 }
548
549 return NULL;
550 }
551
552 /* Lookup NAME at namespace scope (or, in C terms, in static and
553 global variables). SCOPE is the namespace that the current
554 function is defined within; only consider namespaces whose length
555 is at least SCOPE_LEN. Other arguments are as in
556 cp_lookup_symbol_nonlocal.
557
558 For example, if we're within a function A::B::f and looking for a
559 symbol x, this will get called with NAME = "x", SCOPE = "A::B", and
560 SCOPE_LEN = 0. It then calls itself with NAME and SCOPE the same,
561 but with SCOPE_LEN = 1. And then it calls itself with NAME and
562 SCOPE the same, but with SCOPE_LEN = 4. This third call looks for
563 "A::B::x"; if it doesn't find it, then the second call looks for
564 "A::x", and if that call fails, then the first call looks for
565 "x". */
566
567 static struct symbol *
568 lookup_namespace_scope (const char *name,
569 const struct block *block,
570 const domain_enum domain,
571 const char *scope,
572 int scope_len)
573 {
574 char *namespace;
575
576 if (scope[scope_len] != '\0')
577 {
578 /* Recursively search for names in child namespaces first. */
579
580 struct symbol *sym;
581 int new_scope_len = scope_len;
582
583 /* If the current scope is followed by "::", skip past that. */
584 if (new_scope_len != 0)
585 {
586 gdb_assert (scope[new_scope_len] == ':');
587 new_scope_len += 2;
588 }
589 new_scope_len += cp_find_first_component (scope + new_scope_len);
590 sym = lookup_namespace_scope (name, block, domain,
591 scope, new_scope_len);
592 if (sym != NULL)
593 return sym;
594 }
595
596 /* Okay, we didn't find a match in our children, so look for the
597 name in the current namespace. */
598
599 namespace = alloca (scope_len + 1);
600 strncpy (namespace, scope, scope_len);
601 namespace[scope_len] = '\0';
602 return cp_lookup_symbol_in_namespace (namespace, name,
603 block, domain);
604 }
605
606 /* Look up NAME in BLOCK's static block and in global blocks. If
607 ANONYMOUS_NAMESPACE is nonzero, the symbol in question is located
608 within an anonymous namespace. Other arguments are as in
609 cp_lookup_symbol_nonlocal. */
610
611 static struct symbol *
612 lookup_symbol_file (const char *name,
613 const struct block *block,
614 const domain_enum domain,
615 int anonymous_namespace)
616 {
617 struct symbol *sym = NULL;
618
619 sym = lookup_symbol_static (name, block, domain);
620 if (sym != NULL)
621 return sym;
622
623 if (anonymous_namespace)
624 {
625 /* Symbols defined in anonymous namespaces have external linkage
626 but should be treated as local to a single file nonetheless.
627 So we only search the current file's global block. */
628
629 const struct block *global_block = block_global_block (block);
630
631 if (global_block != NULL)
632 sym = lookup_symbol_aux_block (name, global_block, domain);
633 }
634 else
635 {
636 sym = lookup_symbol_global (name, block, domain);
637 }
638
639 if (sym != NULL)
640 return sym;
641
642 /* Now call "lookup_possible_namespace_symbol". Symbols in here
643 claim to be associated to namespaces, but this claim might be
644 incorrect: the names in question might actually correspond to
645 classes instead of namespaces. But if they correspond to
646 classes, then we should have found a match for them above. So if
647 we find them now, they should be genuine. */
648
649 /* FIXME: carlton/2003-06-12: This is a hack and should eventually
650 be deleted: see comments below. */
651
652 if (domain == VAR_DOMAIN)
653 {
654 sym = lookup_possible_namespace_symbol (name);
655 if (sym != NULL)
656 return sym;
657 }
658
659 return NULL;
660 }
661
662 /* Look up a type named NESTED_NAME that is nested inside the C++
663 class or namespace given by PARENT_TYPE, from within the context
664 given by BLOCK. Return NULL if there is no such nested type. */
665
666 struct type *
667 cp_lookup_nested_type (struct type *parent_type,
668 const char *nested_name,
669 const struct block *block)
670 {
671 switch (TYPE_CODE (parent_type))
672 {
673 case TYPE_CODE_STRUCT:
674 case TYPE_CODE_NAMESPACE:
675 case TYPE_CODE_UNION:
676 {
677 /* NOTE: carlton/2003-11-10: We don't treat C++ class members
678 of classes like, say, data or function members. Instead,
679 they're just represented by symbols whose names are
680 qualified by the name of the surrounding class. This is
681 just like members of namespaces; in particular,
682 lookup_symbol_namespace works when looking them up. */
683
684 const char *parent_name = TYPE_TAG_NAME (parent_type);
685 struct symbol *sym
686 = cp_lookup_symbol_in_namespace (parent_name, nested_name,
687 block, VAR_DOMAIN);
688 char *concatenated_name;
689
690 if (sym != NULL && SYMBOL_CLASS (sym) == LOC_TYPEDEF)
691 return SYMBOL_TYPE (sym);
692
693 /* Now search all static file-level symbols. Not strictly
694 correct, but more useful than an error. We do not try to
695 guess any imported namespace as even the fully specified
696 namespace seach is is already not C++ compliant and more
697 assumptions could make it too magic. */
698
699 concatenated_name = alloca (strlen (parent_name) + 2
700 + strlen (nested_name) + 1);
701 sprintf (concatenated_name, "%s::%s",
702 parent_name, nested_name);
703 sym = lookup_static_symbol_aux (concatenated_name,
704 VAR_DOMAIN);
705 if (sym != NULL && SYMBOL_CLASS (sym) == LOC_TYPEDEF)
706 return SYMBOL_TYPE (sym);
707
708 return NULL;
709 }
710 default:
711 internal_error (__FILE__, __LINE__,
712 _("cp_lookup_nested_type called "
713 "on a non-aggregate type."));
714 }
715 }
716
717 /* The C++-version of lookup_transparent_type. */
718
719 /* FIXME: carlton/2004-01-16: The problem that this is trying to
720 address is that, unfortunately, sometimes NAME is wrong: it may not
721 include the name of namespaces enclosing the type in question.
722 lookup_transparent_type gets called when the the type in question
723 is a declaration, and we're trying to find its definition; but, for
724 declarations, our type name deduction mechanism doesn't work.
725 There's nothing we can do to fix this in general, I think, in the
726 absence of debug information about namespaces (I've filed PR
727 gdb/1511 about this); until such debug information becomes more
728 prevalent, one heuristic which sometimes looks is to search for the
729 definition in namespaces containing the current namespace.
730
731 We should delete this functions once the appropriate debug
732 information becomes more widespread. (GCC 3.4 will be the first
733 released version of GCC with such information.) */
734
735 struct type *
736 cp_lookup_transparent_type (const char *name)
737 {
738 /* First, try the honest way of looking up the definition. */
739 struct type *t = basic_lookup_transparent_type (name);
740 const char *scope;
741
742 if (t != NULL)
743 return t;
744
745 /* If that doesn't work and we're within a namespace, look there
746 instead. */
747 scope = block_scope (get_selected_block (0));
748
749 if (scope[0] == '\0')
750 return NULL;
751
752 return cp_lookup_transparent_type_loop (name, scope, 0);
753 }
754
755 /* Lookup the the type definition associated to NAME in
756 namespaces/classes containing SCOPE whose name is strictly longer
757 than LENGTH. LENGTH must be the index of the start of a component
758 of SCOPE. */
759
760 static struct type *
761 cp_lookup_transparent_type_loop (const char *name,
762 const char *scope,
763 int length)
764 {
765 int scope_length = length + cp_find_first_component (scope + length);
766 char *full_name;
767
768 /* If the current scope is followed by "::", look in the next
769 component. */
770 if (scope[scope_length] == ':')
771 {
772 struct type *retval
773 = cp_lookup_transparent_type_loop (name, scope,
774 scope_length + 2);
775
776 if (retval != NULL)
777 return retval;
778 }
779
780 full_name = alloca (scope_length + 2 + strlen (name) + 1);
781 strncpy (full_name, scope, scope_length);
782 strncpy (full_name + scope_length, "::", 2);
783 strcpy (full_name + scope_length + 2, name);
784
785 return basic_lookup_transparent_type (full_name);
786 }
787
788 /* Now come functions for dealing with symbols associated to
789 namespaces. (They're used to store the namespaces themselves, not
790 objects that live in the namespaces.) These symbols come in two
791 varieties: if we run into a DW_TAG_namespace DIE, then we know that
792 we have a namespace, so dwarf2read.c creates a symbol for it just
793 like normal. But, unfortunately, versions of GCC through at least
794 3.3 don't generate those DIE's. Our solution is to try to guess
795 their existence by looking at demangled names. This might cause us
796 to misidentify classes as namespaces, however. So we put those
797 symbols in a special block (one per objfile), and we only search
798 that block as a last resort. */
799
800 /* FIXME: carlton/2003-06-12: Once versions of GCC that generate
801 DW_TAG_namespace have been out for a year or two, we should get rid
802 of all of this "possible namespace" nonsense. */
803
804 /* Allocate everything necessary for the possible namespace block
805 associated to OBJFILE. */
806
807 static void
808 initialize_namespace_symtab (struct objfile *objfile)
809 {
810 struct symtab *namespace_symtab;
811 struct blockvector *bv;
812 struct block *bl;
813
814 namespace_symtab = allocate_symtab ("<<C++-namespaces>>", objfile);
815 namespace_symtab->language = language_cplus;
816 namespace_symtab->free_code = free_nothing;
817 namespace_symtab->dirname = NULL;
818
819 bv = obstack_alloc (&objfile->objfile_obstack,
820 sizeof (struct blockvector)
821 + FIRST_LOCAL_BLOCK * sizeof (struct block *));
822 BLOCKVECTOR_NBLOCKS (bv) = FIRST_LOCAL_BLOCK + 1;
823 BLOCKVECTOR (namespace_symtab) = bv;
824
825 /* Allocate empty GLOBAL_BLOCK and STATIC_BLOCK. */
826
827 bl = allocate_block (&objfile->objfile_obstack);
828 BLOCK_DICT (bl) = dict_create_linear (&objfile->objfile_obstack,
829 NULL);
830 BLOCKVECTOR_BLOCK (bv, GLOBAL_BLOCK) = bl;
831 bl = allocate_block (&objfile->objfile_obstack);
832 BLOCK_DICT (bl) = dict_create_linear (&objfile->objfile_obstack,
833 NULL);
834 BLOCKVECTOR_BLOCK (bv, STATIC_BLOCK) = bl;
835
836 /* Allocate the possible namespace block; we put it where the first
837 local block will live, though I don't think there's any need to
838 pretend that it's actually a local block (e.g. by setting
839 BLOCK_SUPERBLOCK appropriately). We don't use the global or
840 static block because we don't want it searched during the normal
841 search of all global/static blocks in lookup_symbol: we only want
842 it used as a last resort. */
843
844 /* NOTE: carlton/2003-09-11: I considered not associating the fake
845 symbols to a block/symtab at all. But that would cause problems
846 with lookup_symbol's SYMTAB argument and with block_found, so
847 having a symtab/block for this purpose seems like the best
848 solution for now. */
849
850 bl = allocate_block (&objfile->objfile_obstack);
851 BLOCK_DICT (bl) = dict_create_hashed_expandable ();
852 BLOCKVECTOR_BLOCK (bv, FIRST_LOCAL_BLOCK) = bl;
853
854 namespace_symtab->free_func = free_namespace_block;
855
856 objfile->cp_namespace_symtab = namespace_symtab;
857 }
858
859 /* Locate the possible namespace block associated to OBJFILE,
860 allocating it if necessary. */
861
862 static struct block *
863 get_possible_namespace_block (struct objfile *objfile)
864 {
865 if (objfile->cp_namespace_symtab == NULL)
866 initialize_namespace_symtab (objfile);
867
868 return BLOCKVECTOR_BLOCK (BLOCKVECTOR (objfile->cp_namespace_symtab),
869 FIRST_LOCAL_BLOCK);
870 }
871
872 /* Free the dictionary associated to the possible namespace block. */
873
874 static void
875 free_namespace_block (struct symtab *symtab)
876 {
877 struct block *possible_namespace_block;
878
879 possible_namespace_block = BLOCKVECTOR_BLOCK (BLOCKVECTOR (symtab),
880 FIRST_LOCAL_BLOCK);
881 gdb_assert (possible_namespace_block != NULL);
882 dict_free (BLOCK_DICT (possible_namespace_block));
883 }
884
885 /* Ensure that there are symbols in the possible namespace block
886 associated to OBJFILE for all initial substrings of NAME that look
887 like namespaces or classes. NAME should end in a member variable:
888 it shouldn't consist solely of namespaces. */
889
890 void
891 cp_check_possible_namespace_symbols (const char *name,
892 struct objfile *objfile)
893 {
894 check_possible_namespace_symbols_loop (name,
895 cp_find_first_component (name),
896 objfile);
897 }
898
899 /* This is a helper loop for cp_check_possible_namespace_symbols; it
900 ensures that there are symbols in the possible namespace block
901 associated to OBJFILE for all namespaces that are initial
902 substrings of NAME of length at least LEN. It returns 1 if a
903 previous loop had already created the shortest such symbol and 0
904 otherwise.
905
906 This function assumes that if there is already a symbol associated
907 to a substring of NAME of a given length, then there are already
908 symbols associated to all substrings of NAME whose length is less
909 than that length. So if cp_check_possible_namespace_symbols has
910 been called once with argument "A::B::C::member", then that will
911 create symbols "A", "A::B", and "A::B::C". If it is then later
912 called with argument "A::B::D::member", then the new call will
913 generate a new symbol for "A::B::D", but once it sees that "A::B"
914 has already been created, it doesn't bother checking to see if "A"
915 has also been created. */
916
917 static int
918 check_possible_namespace_symbols_loop (const char *name, int len,
919 struct objfile *objfile)
920 {
921 if (name[len] == ':')
922 {
923 int done;
924 int next_len = len + 2;
925
926 next_len += cp_find_first_component (name + next_len);
927 done = check_possible_namespace_symbols_loop (name, next_len,
928 objfile);
929
930 if (!done)
931 done = check_one_possible_namespace_symbol (name, len,
932 objfile);
933
934 return done;
935 }
936 else
937 return 0;
938 }
939
940 /* Check to see if there's already a possible namespace symbol in
941 OBJFILE whose name is the initial substring of NAME of length LEN.
942 If not, create one and return 0; otherwise, return 1. */
943
944 static int
945 check_one_possible_namespace_symbol (const char *name, int len,
946 struct objfile *objfile)
947 {
948 struct block *block = get_possible_namespace_block (objfile);
949 char *name_copy = alloca (len + 1);
950 struct symbol *sym;
951
952 memcpy (name_copy, name, len);
953 name_copy[len] = '\0';
954 sym = lookup_block_symbol (block, name_copy, VAR_DOMAIN);
955
956 if (sym == NULL)
957 {
958 struct type *type;
959
960 type = init_type (TYPE_CODE_NAMESPACE, 0, 0,
961 name_copy, objfile);
962
963 TYPE_TAG_NAME (type) = TYPE_NAME (type);
964
965 sym = obstack_alloc (&objfile->objfile_obstack,
966 sizeof (struct symbol));
967 memset (sym, 0, sizeof (struct symbol));
968 SYMBOL_SET_LANGUAGE (sym, language_cplus);
969 /* Note that init_type copied the name to the objfile's
970 obstack. */
971 SYMBOL_SET_NAMES (sym, TYPE_NAME (type), len, 0, objfile);
972 SYMBOL_CLASS (sym) = LOC_TYPEDEF;
973 SYMBOL_TYPE (sym) = type;
974 SYMBOL_DOMAIN (sym) = VAR_DOMAIN;
975
976 dict_add_symbol (BLOCK_DICT (block), sym);
977
978 return 0;
979 }
980 else
981 return 1;
982 }
983
984 /* Look for a symbol named NAME in all the possible namespace blocks.
985 If one is found, return it. */
986
987 static struct symbol *
988 lookup_possible_namespace_symbol (const char *name)
989 {
990 struct objfile *objfile;
991
992 ALL_OBJFILES (objfile)
993 {
994 struct symbol *sym;
995
996 sym = lookup_block_symbol (get_possible_namespace_block (objfile),
997 name, VAR_DOMAIN);
998
999 if (sym != NULL)
1000 return sym;
1001 }
1002
1003 return NULL;
1004 }
1005
1006 /* Print out all the possible namespace symbols. */
1007
1008 static void
1009 maintenance_cplus_namespace (char *args, int from_tty)
1010 {
1011 struct objfile *objfile;
1012
1013 printf_unfiltered (_("Possible namespaces:\n"));
1014 ALL_OBJFILES (objfile)
1015 {
1016 struct dict_iterator iter;
1017 struct symbol *sym;
1018
1019 ALL_BLOCK_SYMBOLS (get_possible_namespace_block (objfile),
1020 iter, sym)
1021 {
1022 printf_unfiltered ("%s\n", SYMBOL_PRINT_NAME (sym));
1023 }
1024 }
1025 }
1026
1027 /* Provide a prototype to silence -Wmissing-prototypes. */
1028 extern initialize_file_ftype _initialize_cp_namespace;
1029
1030 void
1031 _initialize_cp_namespace (void)
1032 {
1033 add_cmd ("namespace", class_maintenance,
1034 maintenance_cplus_namespace,
1035 _("Print the list of possible C++ namespaces."),
1036 &maint_cplus_cmd_list);
1037 }
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