symtab.h (general_symbol_info) <mangled_lang>: delete and move up only member.
[deliverable/binutils-gdb.git] / gdb / symtab.c
1 /* Symbol table lookup for the GNU debugger, GDB.
2
3 Copyright (C) 1986-2015 Free Software Foundation, Inc.
4
5 This file is part of GDB.
6
7 This program 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 3 of the License, or
10 (at your option) any later version.
11
12 This program 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 this program. If not, see <http://www.gnu.org/licenses/>. */
19
20 #include "defs.h"
21 #include "symtab.h"
22 #include "gdbtypes.h"
23 #include "gdbcore.h"
24 #include "frame.h"
25 #include "target.h"
26 #include "value.h"
27 #include "symfile.h"
28 #include "objfiles.h"
29 #include "gdbcmd.h"
30 #include "gdb_regex.h"
31 #include "expression.h"
32 #include "language.h"
33 #include "demangle.h"
34 #include "inferior.h"
35 #include "source.h"
36 #include "filenames.h" /* for FILENAME_CMP */
37 #include "objc-lang.h"
38 #include "d-lang.h"
39 #include "ada-lang.h"
40 #include "go-lang.h"
41 #include "p-lang.h"
42 #include "addrmap.h"
43 #include "cli/cli-utils.h"
44
45 #include "hashtab.h"
46
47 #include "gdb_obstack.h"
48 #include "block.h"
49 #include "dictionary.h"
50
51 #include <sys/types.h>
52 #include <fcntl.h>
53 #include <sys/stat.h>
54 #include <ctype.h>
55 #include "cp-abi.h"
56 #include "cp-support.h"
57 #include "observer.h"
58 #include "solist.h"
59 #include "macrotab.h"
60 #include "macroscope.h"
61
62 #include "parser-defs.h"
63 #include "completer.h"
64
65 /* Forward declarations for local functions. */
66
67 static void rbreak_command (char *, int);
68
69 static int find_line_common (struct linetable *, int, int *, int);
70
71 static struct block_symbol
72 lookup_symbol_aux (const char *name,
73 const struct block *block,
74 const domain_enum domain,
75 enum language language,
76 struct field_of_this_result *);
77
78 static
79 struct block_symbol lookup_local_symbol (const char *name,
80 const struct block *block,
81 const domain_enum domain,
82 enum language language);
83
84 static struct block_symbol
85 lookup_symbol_in_objfile (struct objfile *objfile, int block_index,
86 const char *name, const domain_enum domain);
87
88 extern initialize_file_ftype _initialize_symtab;
89
90 /* Program space key for finding name and language of "main". */
91
92 static const struct program_space_data *main_progspace_key;
93
94 /* Type of the data stored on the program space. */
95
96 struct main_info
97 {
98 /* Name of "main". */
99
100 char *name_of_main;
101
102 /* Language of "main". */
103
104 enum language language_of_main;
105 };
106
107 /* Program space key for finding its symbol cache. */
108
109 static const struct program_space_data *symbol_cache_key;
110
111 /* The default symbol cache size.
112 There is no extra cpu cost for large N (except when flushing the cache,
113 which is rare). The value here is just a first attempt. A better default
114 value may be higher or lower. A prime number can make up for a bad hash
115 computation, so that's why the number is what it is. */
116 #define DEFAULT_SYMBOL_CACHE_SIZE 1021
117
118 /* The maximum symbol cache size.
119 There's no method to the decision of what value to use here, other than
120 there's no point in allowing a user typo to make gdb consume all memory. */
121 #define MAX_SYMBOL_CACHE_SIZE (1024*1024)
122
123 /* symbol_cache_lookup returns this if a previous lookup failed to find the
124 symbol in any objfile. */
125 #define SYMBOL_LOOKUP_FAILED \
126 ((struct block_symbol) {(struct symbol *) 1, NULL})
127 #define SYMBOL_LOOKUP_FAILED_P(SIB) (SIB.symbol == (struct symbol *) 1)
128
129 /* Recording lookups that don't find the symbol is just as important, if not
130 more so, than recording found symbols. */
131
132 enum symbol_cache_slot_state
133 {
134 SYMBOL_SLOT_UNUSED,
135 SYMBOL_SLOT_NOT_FOUND,
136 SYMBOL_SLOT_FOUND
137 };
138
139 struct symbol_cache_slot
140 {
141 enum symbol_cache_slot_state state;
142
143 /* The objfile that was current when the symbol was looked up.
144 This is only needed for global blocks, but for simplicity's sake
145 we allocate the space for both. If data shows the extra space used
146 for static blocks is a problem, we can split things up then.
147
148 Global blocks need cache lookup to include the objfile context because
149 we need to account for gdbarch_iterate_over_objfiles_in_search_order
150 which can traverse objfiles in, effectively, any order, depending on
151 the current objfile, thus affecting which symbol is found. Normally,
152 only the current objfile is searched first, and then the rest are
153 searched in recorded order; but putting cache lookup inside
154 gdbarch_iterate_over_objfiles_in_search_order would be awkward.
155 Instead we just make the current objfile part of the context of
156 cache lookup. This means we can record the same symbol multiple times,
157 each with a different "current objfile" that was in effect when the
158 lookup was saved in the cache, but cache space is pretty cheap. */
159 const struct objfile *objfile_context;
160
161 union
162 {
163 struct block_symbol found;
164 struct
165 {
166 char *name;
167 domain_enum domain;
168 } not_found;
169 } value;
170 };
171
172 /* Symbols don't specify global vs static block.
173 So keep them in separate caches. */
174
175 struct block_symbol_cache
176 {
177 unsigned int hits;
178 unsigned int misses;
179 unsigned int collisions;
180
181 /* SYMBOLS is a variable length array of this size.
182 One can imagine that in general one cache (global/static) should be a
183 fraction of the size of the other, but there's no data at the moment
184 on which to decide. */
185 unsigned int size;
186
187 struct symbol_cache_slot symbols[1];
188 };
189
190 /* The symbol cache.
191
192 Searching for symbols in the static and global blocks over multiple objfiles
193 again and again can be slow, as can searching very big objfiles. This is a
194 simple cache to improve symbol lookup performance, which is critical to
195 overall gdb performance.
196
197 Symbols are hashed on the name, its domain, and block.
198 They are also hashed on their objfile for objfile-specific lookups. */
199
200 struct symbol_cache
201 {
202 struct block_symbol_cache *global_symbols;
203 struct block_symbol_cache *static_symbols;
204 };
205
206 /* When non-zero, print debugging messages related to symtab creation. */
207 unsigned int symtab_create_debug = 0;
208
209 /* When non-zero, print debugging messages related to symbol lookup. */
210 unsigned int symbol_lookup_debug = 0;
211
212 /* The size of the cache is staged here. */
213 static unsigned int new_symbol_cache_size = DEFAULT_SYMBOL_CACHE_SIZE;
214
215 /* The current value of the symbol cache size.
216 This is saved so that if the user enters a value too big we can restore
217 the original value from here. */
218 static unsigned int symbol_cache_size = DEFAULT_SYMBOL_CACHE_SIZE;
219
220 /* Non-zero if a file may be known by two different basenames.
221 This is the uncommon case, and significantly slows down gdb.
222 Default set to "off" to not slow down the common case. */
223 int basenames_may_differ = 0;
224
225 /* Allow the user to configure the debugger behavior with respect
226 to multiple-choice menus when more than one symbol matches during
227 a symbol lookup. */
228
229 const char multiple_symbols_ask[] = "ask";
230 const char multiple_symbols_all[] = "all";
231 const char multiple_symbols_cancel[] = "cancel";
232 static const char *const multiple_symbols_modes[] =
233 {
234 multiple_symbols_ask,
235 multiple_symbols_all,
236 multiple_symbols_cancel,
237 NULL
238 };
239 static const char *multiple_symbols_mode = multiple_symbols_all;
240
241 /* Read-only accessor to AUTO_SELECT_MODE. */
242
243 const char *
244 multiple_symbols_select_mode (void)
245 {
246 return multiple_symbols_mode;
247 }
248
249 /* Return the name of a domain_enum. */
250
251 const char *
252 domain_name (domain_enum e)
253 {
254 switch (e)
255 {
256 case UNDEF_DOMAIN: return "UNDEF_DOMAIN";
257 case VAR_DOMAIN: return "VAR_DOMAIN";
258 case STRUCT_DOMAIN: return "STRUCT_DOMAIN";
259 case MODULE_DOMAIN: return "MODULE_DOMAIN";
260 case LABEL_DOMAIN: return "LABEL_DOMAIN";
261 case COMMON_BLOCK_DOMAIN: return "COMMON_BLOCK_DOMAIN";
262 default: gdb_assert_not_reached ("bad domain_enum");
263 }
264 }
265
266 /* Return the name of a search_domain . */
267
268 const char *
269 search_domain_name (enum search_domain e)
270 {
271 switch (e)
272 {
273 case VARIABLES_DOMAIN: return "VARIABLES_DOMAIN";
274 case FUNCTIONS_DOMAIN: return "FUNCTIONS_DOMAIN";
275 case TYPES_DOMAIN: return "TYPES_DOMAIN";
276 case ALL_DOMAIN: return "ALL_DOMAIN";
277 default: gdb_assert_not_reached ("bad search_domain");
278 }
279 }
280
281 /* See symtab.h. */
282
283 struct symtab *
284 compunit_primary_filetab (const struct compunit_symtab *cust)
285 {
286 gdb_assert (COMPUNIT_FILETABS (cust) != NULL);
287
288 /* The primary file symtab is the first one in the list. */
289 return COMPUNIT_FILETABS (cust);
290 }
291
292 /* See symtab.h. */
293
294 enum language
295 compunit_language (const struct compunit_symtab *cust)
296 {
297 struct symtab *symtab = compunit_primary_filetab (cust);
298
299 /* The language of the compunit symtab is the language of its primary
300 source file. */
301 return SYMTAB_LANGUAGE (symtab);
302 }
303
304 /* See whether FILENAME matches SEARCH_NAME using the rule that we
305 advertise to the user. (The manual's description of linespecs
306 describes what we advertise). Returns true if they match, false
307 otherwise. */
308
309 int
310 compare_filenames_for_search (const char *filename, const char *search_name)
311 {
312 int len = strlen (filename);
313 size_t search_len = strlen (search_name);
314
315 if (len < search_len)
316 return 0;
317
318 /* The tail of FILENAME must match. */
319 if (FILENAME_CMP (filename + len - search_len, search_name) != 0)
320 return 0;
321
322 /* Either the names must completely match, or the character
323 preceding the trailing SEARCH_NAME segment of FILENAME must be a
324 directory separator.
325
326 The check !IS_ABSOLUTE_PATH ensures SEARCH_NAME "/dir/file.c"
327 cannot match FILENAME "/path//dir/file.c" - as user has requested
328 absolute path. The sama applies for "c:\file.c" possibly
329 incorrectly hypothetically matching "d:\dir\c:\file.c".
330
331 The HAS_DRIVE_SPEC purpose is to make FILENAME "c:file.c"
332 compatible with SEARCH_NAME "file.c". In such case a compiler had
333 to put the "c:file.c" name into debug info. Such compatibility
334 works only on GDB built for DOS host. */
335 return (len == search_len
336 || (!IS_ABSOLUTE_PATH (search_name)
337 && IS_DIR_SEPARATOR (filename[len - search_len - 1]))
338 || (HAS_DRIVE_SPEC (filename)
339 && STRIP_DRIVE_SPEC (filename) == &filename[len - search_len]));
340 }
341
342 /* Check for a symtab of a specific name by searching some symtabs.
343 This is a helper function for callbacks of iterate_over_symtabs.
344
345 If NAME is not absolute, then REAL_PATH is NULL
346 If NAME is absolute, then REAL_PATH is the gdb_realpath form of NAME.
347
348 The return value, NAME, REAL_PATH, CALLBACK, and DATA
349 are identical to the `map_symtabs_matching_filename' method of
350 quick_symbol_functions.
351
352 FIRST and AFTER_LAST indicate the range of compunit symtabs to search.
353 Each symtab within the specified compunit symtab is also searched.
354 AFTER_LAST is one past the last compunit symtab to search; NULL means to
355 search until the end of the list. */
356
357 int
358 iterate_over_some_symtabs (const char *name,
359 const char *real_path,
360 int (*callback) (struct symtab *symtab,
361 void *data),
362 void *data,
363 struct compunit_symtab *first,
364 struct compunit_symtab *after_last)
365 {
366 struct compunit_symtab *cust;
367 struct symtab *s;
368 const char* base_name = lbasename (name);
369
370 for (cust = first; cust != NULL && cust != after_last; cust = cust->next)
371 {
372 ALL_COMPUNIT_FILETABS (cust, s)
373 {
374 if (compare_filenames_for_search (s->filename, name))
375 {
376 if (callback (s, data))
377 return 1;
378 continue;
379 }
380
381 /* Before we invoke realpath, which can get expensive when many
382 files are involved, do a quick comparison of the basenames. */
383 if (! basenames_may_differ
384 && FILENAME_CMP (base_name, lbasename (s->filename)) != 0)
385 continue;
386
387 if (compare_filenames_for_search (symtab_to_fullname (s), name))
388 {
389 if (callback (s, data))
390 return 1;
391 continue;
392 }
393
394 /* If the user gave us an absolute path, try to find the file in
395 this symtab and use its absolute path. */
396 if (real_path != NULL)
397 {
398 const char *fullname = symtab_to_fullname (s);
399
400 gdb_assert (IS_ABSOLUTE_PATH (real_path));
401 gdb_assert (IS_ABSOLUTE_PATH (name));
402 if (FILENAME_CMP (real_path, fullname) == 0)
403 {
404 if (callback (s, data))
405 return 1;
406 continue;
407 }
408 }
409 }
410 }
411
412 return 0;
413 }
414
415 /* Check for a symtab of a specific name; first in symtabs, then in
416 psymtabs. *If* there is no '/' in the name, a match after a '/'
417 in the symtab filename will also work.
418
419 Calls CALLBACK with each symtab that is found and with the supplied
420 DATA. If CALLBACK returns true, the search stops. */
421
422 void
423 iterate_over_symtabs (const char *name,
424 int (*callback) (struct symtab *symtab,
425 void *data),
426 void *data)
427 {
428 struct objfile *objfile;
429 char *real_path = NULL;
430 struct cleanup *cleanups = make_cleanup (null_cleanup, NULL);
431
432 /* Here we are interested in canonicalizing an absolute path, not
433 absolutizing a relative path. */
434 if (IS_ABSOLUTE_PATH (name))
435 {
436 real_path = gdb_realpath (name);
437 make_cleanup (xfree, real_path);
438 gdb_assert (IS_ABSOLUTE_PATH (real_path));
439 }
440
441 ALL_OBJFILES (objfile)
442 {
443 if (iterate_over_some_symtabs (name, real_path, callback, data,
444 objfile->compunit_symtabs, NULL))
445 {
446 do_cleanups (cleanups);
447 return;
448 }
449 }
450
451 /* Same search rules as above apply here, but now we look thru the
452 psymtabs. */
453
454 ALL_OBJFILES (objfile)
455 {
456 if (objfile->sf
457 && objfile->sf->qf->map_symtabs_matching_filename (objfile,
458 name,
459 real_path,
460 callback,
461 data))
462 {
463 do_cleanups (cleanups);
464 return;
465 }
466 }
467
468 do_cleanups (cleanups);
469 }
470
471 /* The callback function used by lookup_symtab. */
472
473 static int
474 lookup_symtab_callback (struct symtab *symtab, void *data)
475 {
476 struct symtab **result_ptr = data;
477
478 *result_ptr = symtab;
479 return 1;
480 }
481
482 /* A wrapper for iterate_over_symtabs that returns the first matching
483 symtab, or NULL. */
484
485 struct symtab *
486 lookup_symtab (const char *name)
487 {
488 struct symtab *result = NULL;
489
490 iterate_over_symtabs (name, lookup_symtab_callback, &result);
491 return result;
492 }
493
494 \f
495 /* Mangle a GDB method stub type. This actually reassembles the pieces of the
496 full method name, which consist of the class name (from T), the unadorned
497 method name from METHOD_ID, and the signature for the specific overload,
498 specified by SIGNATURE_ID. Note that this function is g++ specific. */
499
500 char *
501 gdb_mangle_name (struct type *type, int method_id, int signature_id)
502 {
503 int mangled_name_len;
504 char *mangled_name;
505 struct fn_field *f = TYPE_FN_FIELDLIST1 (type, method_id);
506 struct fn_field *method = &f[signature_id];
507 const char *field_name = TYPE_FN_FIELDLIST_NAME (type, method_id);
508 const char *physname = TYPE_FN_FIELD_PHYSNAME (f, signature_id);
509 const char *newname = type_name_no_tag (type);
510
511 /* Does the form of physname indicate that it is the full mangled name
512 of a constructor (not just the args)? */
513 int is_full_physname_constructor;
514
515 int is_constructor;
516 int is_destructor = is_destructor_name (physname);
517 /* Need a new type prefix. */
518 char *const_prefix = method->is_const ? "C" : "";
519 char *volatile_prefix = method->is_volatile ? "V" : "";
520 char buf[20];
521 int len = (newname == NULL ? 0 : strlen (newname));
522
523 /* Nothing to do if physname already contains a fully mangled v3 abi name
524 or an operator name. */
525 if ((physname[0] == '_' && physname[1] == 'Z')
526 || is_operator_name (field_name))
527 return xstrdup (physname);
528
529 is_full_physname_constructor = is_constructor_name (physname);
530
531 is_constructor = is_full_physname_constructor
532 || (newname && strcmp (field_name, newname) == 0);
533
534 if (!is_destructor)
535 is_destructor = (startswith (physname, "__dt"));
536
537 if (is_destructor || is_full_physname_constructor)
538 {
539 mangled_name = (char *) xmalloc (strlen (physname) + 1);
540 strcpy (mangled_name, physname);
541 return mangled_name;
542 }
543
544 if (len == 0)
545 {
546 xsnprintf (buf, sizeof (buf), "__%s%s", const_prefix, volatile_prefix);
547 }
548 else if (physname[0] == 't' || physname[0] == 'Q')
549 {
550 /* The physname for template and qualified methods already includes
551 the class name. */
552 xsnprintf (buf, sizeof (buf), "__%s%s", const_prefix, volatile_prefix);
553 newname = NULL;
554 len = 0;
555 }
556 else
557 {
558 xsnprintf (buf, sizeof (buf), "__%s%s%d", const_prefix,
559 volatile_prefix, len);
560 }
561 mangled_name_len = ((is_constructor ? 0 : strlen (field_name))
562 + strlen (buf) + len + strlen (physname) + 1);
563
564 mangled_name = (char *) xmalloc (mangled_name_len);
565 if (is_constructor)
566 mangled_name[0] = '\0';
567 else
568 strcpy (mangled_name, field_name);
569
570 strcat (mangled_name, buf);
571 /* If the class doesn't have a name, i.e. newname NULL, then we just
572 mangle it using 0 for the length of the class. Thus it gets mangled
573 as something starting with `::' rather than `classname::'. */
574 if (newname != NULL)
575 strcat (mangled_name, newname);
576
577 strcat (mangled_name, physname);
578 return (mangled_name);
579 }
580
581 /* Set the demangled name of GSYMBOL to NAME. NAME must be already
582 correctly allocated. */
583
584 void
585 symbol_set_demangled_name (struct general_symbol_info *gsymbol,
586 const char *name,
587 struct obstack *obstack)
588 {
589 if (gsymbol->language == language_ada)
590 {
591 if (name == NULL)
592 {
593 gsymbol->ada_mangled = 0;
594 gsymbol->language_specific.obstack = obstack;
595 }
596 else
597 {
598 gsymbol->ada_mangled = 1;
599 gsymbol->language_specific.demangled_name = name;
600 }
601 }
602 else
603 gsymbol->language_specific.demangled_name = name;
604 }
605
606 /* Return the demangled name of GSYMBOL. */
607
608 const char *
609 symbol_get_demangled_name (const struct general_symbol_info *gsymbol)
610 {
611 if (gsymbol->language == language_ada)
612 {
613 if (!gsymbol->ada_mangled)
614 return NULL;
615 /* Fall through. */
616 }
617
618 return gsymbol->language_specific.demangled_name;
619 }
620
621 \f
622 /* Initialize the language dependent portion of a symbol
623 depending upon the language for the symbol. */
624
625 void
626 symbol_set_language (struct general_symbol_info *gsymbol,
627 enum language language,
628 struct obstack *obstack)
629 {
630 gsymbol->language = language;
631 if (gsymbol->language == language_cplus
632 || gsymbol->language == language_d
633 || gsymbol->language == language_go
634 || gsymbol->language == language_java
635 || gsymbol->language == language_objc
636 || gsymbol->language == language_fortran)
637 {
638 symbol_set_demangled_name (gsymbol, NULL, obstack);
639 }
640 else if (gsymbol->language == language_ada)
641 {
642 gdb_assert (gsymbol->ada_mangled == 0);
643 gsymbol->language_specific.obstack = obstack;
644 }
645 else
646 {
647 memset (&gsymbol->language_specific, 0,
648 sizeof (gsymbol->language_specific));
649 }
650 }
651
652 /* Functions to initialize a symbol's mangled name. */
653
654 /* Objects of this type are stored in the demangled name hash table. */
655 struct demangled_name_entry
656 {
657 const char *mangled;
658 char demangled[1];
659 };
660
661 /* Hash function for the demangled name hash. */
662
663 static hashval_t
664 hash_demangled_name_entry (const void *data)
665 {
666 const struct demangled_name_entry *e = data;
667
668 return htab_hash_string (e->mangled);
669 }
670
671 /* Equality function for the demangled name hash. */
672
673 static int
674 eq_demangled_name_entry (const void *a, const void *b)
675 {
676 const struct demangled_name_entry *da = a;
677 const struct demangled_name_entry *db = b;
678
679 return strcmp (da->mangled, db->mangled) == 0;
680 }
681
682 /* Create the hash table used for demangled names. Each hash entry is
683 a pair of strings; one for the mangled name and one for the demangled
684 name. The entry is hashed via just the mangled name. */
685
686 static void
687 create_demangled_names_hash (struct objfile *objfile)
688 {
689 /* Choose 256 as the starting size of the hash table, somewhat arbitrarily.
690 The hash table code will round this up to the next prime number.
691 Choosing a much larger table size wastes memory, and saves only about
692 1% in symbol reading. */
693
694 objfile->per_bfd->demangled_names_hash = htab_create_alloc
695 (256, hash_demangled_name_entry, eq_demangled_name_entry,
696 NULL, xcalloc, xfree);
697 }
698
699 /* Try to determine the demangled name for a symbol, based on the
700 language of that symbol. If the language is set to language_auto,
701 it will attempt to find any demangling algorithm that works and
702 then set the language appropriately. The returned name is allocated
703 by the demangler and should be xfree'd. */
704
705 static char *
706 symbol_find_demangled_name (struct general_symbol_info *gsymbol,
707 const char *mangled)
708 {
709 char *demangled = NULL;
710
711 if (gsymbol->language == language_unknown)
712 gsymbol->language = language_auto;
713
714 if (gsymbol->language == language_objc
715 || gsymbol->language == language_auto)
716 {
717 demangled =
718 objc_demangle (mangled, 0);
719 if (demangled != NULL)
720 {
721 gsymbol->language = language_objc;
722 return demangled;
723 }
724 }
725 if (gsymbol->language == language_cplus
726 || gsymbol->language == language_auto)
727 {
728 demangled =
729 gdb_demangle (mangled, DMGL_PARAMS | DMGL_ANSI);
730 if (demangled != NULL)
731 {
732 gsymbol->language = language_cplus;
733 return demangled;
734 }
735 }
736 if (gsymbol->language == language_java)
737 {
738 demangled =
739 gdb_demangle (mangled,
740 DMGL_PARAMS | DMGL_ANSI | DMGL_JAVA);
741 if (demangled != NULL)
742 {
743 gsymbol->language = language_java;
744 return demangled;
745 }
746 }
747 if (gsymbol->language == language_d
748 || gsymbol->language == language_auto)
749 {
750 demangled = d_demangle(mangled, 0);
751 if (demangled != NULL)
752 {
753 gsymbol->language = language_d;
754 return demangled;
755 }
756 }
757 /* FIXME(dje): Continually adding languages here is clumsy.
758 Better to just call la_demangle if !auto, and if auto then call
759 a utility routine that tries successive languages in turn and reports
760 which one it finds. I realize the la_demangle options may be different
761 for different languages but there's already a FIXME for that. */
762 if (gsymbol->language == language_go
763 || gsymbol->language == language_auto)
764 {
765 demangled = go_demangle (mangled, 0);
766 if (demangled != NULL)
767 {
768 gsymbol->language = language_go;
769 return demangled;
770 }
771 }
772
773 /* We could support `gsymbol->language == language_fortran' here to provide
774 module namespaces also for inferiors with only minimal symbol table (ELF
775 symbols). Just the mangling standard is not standardized across compilers
776 and there is no DW_AT_producer available for inferiors with only the ELF
777 symbols to check the mangling kind. */
778
779 /* Check for Ada symbols last. See comment below explaining why. */
780
781 if (gsymbol->language == language_auto)
782 {
783 const char *demangled = ada_decode (mangled);
784
785 if (demangled != mangled && demangled != NULL && demangled[0] != '<')
786 {
787 /* Set the gsymbol language to Ada, but still return NULL.
788 Two reasons for that:
789
790 1. For Ada, we prefer computing the symbol's decoded name
791 on the fly rather than pre-compute it, in order to save
792 memory (Ada projects are typically very large).
793
794 2. There are some areas in the definition of the GNAT
795 encoding where, with a bit of bad luck, we might be able
796 to decode a non-Ada symbol, generating an incorrect
797 demangled name (Eg: names ending with "TB" for instance
798 are identified as task bodies and so stripped from
799 the decoded name returned).
800
801 Returning NULL, here, helps us get a little bit of
802 the best of both worlds. Because we're last, we should
803 not affect any of the other languages that were able to
804 demangle the symbol before us; we get to correctly tag
805 Ada symbols as such; and even if we incorrectly tagged
806 a non-Ada symbol, which should be rare, any routing
807 through the Ada language should be transparent (Ada
808 tries to behave much like C/C++ with non-Ada symbols). */
809 gsymbol->language = language_ada;
810 return NULL;
811 }
812 }
813
814 return NULL;
815 }
816
817 /* Set both the mangled and demangled (if any) names for GSYMBOL based
818 on LINKAGE_NAME and LEN. Ordinarily, NAME is copied onto the
819 objfile's obstack; but if COPY_NAME is 0 and if NAME is
820 NUL-terminated, then this function assumes that NAME is already
821 correctly saved (either permanently or with a lifetime tied to the
822 objfile), and it will not be copied.
823
824 The hash table corresponding to OBJFILE is used, and the memory
825 comes from the per-BFD storage_obstack. LINKAGE_NAME is copied,
826 so the pointer can be discarded after calling this function. */
827
828 /* We have to be careful when dealing with Java names: when we run
829 into a Java minimal symbol, we don't know it's a Java symbol, so it
830 gets demangled as a C++ name. This is unfortunate, but there's not
831 much we can do about it: but when demangling partial symbols and
832 regular symbols, we'd better not reuse the wrong demangled name.
833 (See PR gdb/1039.) We solve this by putting a distinctive prefix
834 on Java names when storing them in the hash table. */
835
836 /* FIXME: carlton/2003-03-13: This is an unfortunate situation. I
837 don't mind the Java prefix so much: different languages have
838 different demangling requirements, so it's only natural that we
839 need to keep language data around in our demangling cache. But
840 it's not good that the minimal symbol has the wrong demangled name.
841 Unfortunately, I can't think of any easy solution to that
842 problem. */
843
844 #define JAVA_PREFIX "##JAVA$$"
845 #define JAVA_PREFIX_LEN 8
846
847 void
848 symbol_set_names (struct general_symbol_info *gsymbol,
849 const char *linkage_name, int len, int copy_name,
850 struct objfile *objfile)
851 {
852 struct demangled_name_entry **slot;
853 /* A 0-terminated copy of the linkage name. */
854 const char *linkage_name_copy;
855 /* A copy of the linkage name that might have a special Java prefix
856 added to it, for use when looking names up in the hash table. */
857 const char *lookup_name;
858 /* The length of lookup_name. */
859 int lookup_len;
860 struct demangled_name_entry entry;
861 struct objfile_per_bfd_storage *per_bfd = objfile->per_bfd;
862
863 if (gsymbol->language == language_ada)
864 {
865 /* In Ada, we do the symbol lookups using the mangled name, so
866 we can save some space by not storing the demangled name.
867
868 As a side note, we have also observed some overlap between
869 the C++ mangling and Ada mangling, similarly to what has
870 been observed with Java. Because we don't store the demangled
871 name with the symbol, we don't need to use the same trick
872 as Java. */
873 if (!copy_name)
874 gsymbol->name = linkage_name;
875 else
876 {
877 char *name = obstack_alloc (&per_bfd->storage_obstack, len + 1);
878
879 memcpy (name, linkage_name, len);
880 name[len] = '\0';
881 gsymbol->name = name;
882 }
883 symbol_set_demangled_name (gsymbol, NULL, &per_bfd->storage_obstack);
884
885 return;
886 }
887
888 if (per_bfd->demangled_names_hash == NULL)
889 create_demangled_names_hash (objfile);
890
891 /* The stabs reader generally provides names that are not
892 NUL-terminated; most of the other readers don't do this, so we
893 can just use the given copy, unless we're in the Java case. */
894 if (gsymbol->language == language_java)
895 {
896 char *alloc_name;
897
898 lookup_len = len + JAVA_PREFIX_LEN;
899 alloc_name = alloca (lookup_len + 1);
900 memcpy (alloc_name, JAVA_PREFIX, JAVA_PREFIX_LEN);
901 memcpy (alloc_name + JAVA_PREFIX_LEN, linkage_name, len);
902 alloc_name[lookup_len] = '\0';
903
904 lookup_name = alloc_name;
905 linkage_name_copy = alloc_name + JAVA_PREFIX_LEN;
906 }
907 else if (linkage_name[len] != '\0')
908 {
909 char *alloc_name;
910
911 lookup_len = len;
912 alloc_name = alloca (lookup_len + 1);
913 memcpy (alloc_name, linkage_name, len);
914 alloc_name[lookup_len] = '\0';
915
916 lookup_name = alloc_name;
917 linkage_name_copy = alloc_name;
918 }
919 else
920 {
921 lookup_len = len;
922 lookup_name = linkage_name;
923 linkage_name_copy = linkage_name;
924 }
925
926 entry.mangled = lookup_name;
927 slot = ((struct demangled_name_entry **)
928 htab_find_slot (per_bfd->demangled_names_hash,
929 &entry, INSERT));
930
931 /* If this name is not in the hash table, add it. */
932 if (*slot == NULL
933 /* A C version of the symbol may have already snuck into the table.
934 This happens to, e.g., main.init (__go_init_main). Cope. */
935 || (gsymbol->language == language_go
936 && (*slot)->demangled[0] == '\0'))
937 {
938 char *demangled_name = symbol_find_demangled_name (gsymbol,
939 linkage_name_copy);
940 int demangled_len = demangled_name ? strlen (demangled_name) : 0;
941
942 /* Suppose we have demangled_name==NULL, copy_name==0, and
943 lookup_name==linkage_name. In this case, we already have the
944 mangled name saved, and we don't have a demangled name. So,
945 you might think we could save a little space by not recording
946 this in the hash table at all.
947
948 It turns out that it is actually important to still save such
949 an entry in the hash table, because storing this name gives
950 us better bcache hit rates for partial symbols. */
951 if (!copy_name && lookup_name == linkage_name)
952 {
953 *slot = obstack_alloc (&per_bfd->storage_obstack,
954 offsetof (struct demangled_name_entry,
955 demangled)
956 + demangled_len + 1);
957 (*slot)->mangled = lookup_name;
958 }
959 else
960 {
961 char *mangled_ptr;
962
963 /* If we must copy the mangled name, put it directly after
964 the demangled name so we can have a single
965 allocation. */
966 *slot = obstack_alloc (&per_bfd->storage_obstack,
967 offsetof (struct demangled_name_entry,
968 demangled)
969 + lookup_len + demangled_len + 2);
970 mangled_ptr = &((*slot)->demangled[demangled_len + 1]);
971 strcpy (mangled_ptr, lookup_name);
972 (*slot)->mangled = mangled_ptr;
973 }
974
975 if (demangled_name != NULL)
976 {
977 strcpy ((*slot)->demangled, demangled_name);
978 xfree (demangled_name);
979 }
980 else
981 (*slot)->demangled[0] = '\0';
982 }
983
984 gsymbol->name = (*slot)->mangled + lookup_len - len;
985 if ((*slot)->demangled[0] != '\0')
986 symbol_set_demangled_name (gsymbol, (*slot)->demangled,
987 &per_bfd->storage_obstack);
988 else
989 symbol_set_demangled_name (gsymbol, NULL, &per_bfd->storage_obstack);
990 }
991
992 /* Return the source code name of a symbol. In languages where
993 demangling is necessary, this is the demangled name. */
994
995 const char *
996 symbol_natural_name (const struct general_symbol_info *gsymbol)
997 {
998 switch (gsymbol->language)
999 {
1000 case language_cplus:
1001 case language_d:
1002 case language_go:
1003 case language_java:
1004 case language_objc:
1005 case language_fortran:
1006 if (symbol_get_demangled_name (gsymbol) != NULL)
1007 return symbol_get_demangled_name (gsymbol);
1008 break;
1009 case language_ada:
1010 return ada_decode_symbol (gsymbol);
1011 default:
1012 break;
1013 }
1014 return gsymbol->name;
1015 }
1016
1017 /* Return the demangled name for a symbol based on the language for
1018 that symbol. If no demangled name exists, return NULL. */
1019
1020 const char *
1021 symbol_demangled_name (const struct general_symbol_info *gsymbol)
1022 {
1023 const char *dem_name = NULL;
1024
1025 switch (gsymbol->language)
1026 {
1027 case language_cplus:
1028 case language_d:
1029 case language_go:
1030 case language_java:
1031 case language_objc:
1032 case language_fortran:
1033 dem_name = symbol_get_demangled_name (gsymbol);
1034 break;
1035 case language_ada:
1036 dem_name = ada_decode_symbol (gsymbol);
1037 break;
1038 default:
1039 break;
1040 }
1041 return dem_name;
1042 }
1043
1044 /* Return the search name of a symbol---generally the demangled or
1045 linkage name of the symbol, depending on how it will be searched for.
1046 If there is no distinct demangled name, then returns the same value
1047 (same pointer) as SYMBOL_LINKAGE_NAME. */
1048
1049 const char *
1050 symbol_search_name (const struct general_symbol_info *gsymbol)
1051 {
1052 if (gsymbol->language == language_ada)
1053 return gsymbol->name;
1054 else
1055 return symbol_natural_name (gsymbol);
1056 }
1057
1058 /* Initialize the structure fields to zero values. */
1059
1060 void
1061 init_sal (struct symtab_and_line *sal)
1062 {
1063 memset (sal, 0, sizeof (*sal));
1064 }
1065 \f
1066
1067 /* Return 1 if the two sections are the same, or if they could
1068 plausibly be copies of each other, one in an original object
1069 file and another in a separated debug file. */
1070
1071 int
1072 matching_obj_sections (struct obj_section *obj_first,
1073 struct obj_section *obj_second)
1074 {
1075 asection *first = obj_first? obj_first->the_bfd_section : NULL;
1076 asection *second = obj_second? obj_second->the_bfd_section : NULL;
1077 struct objfile *obj;
1078
1079 /* If they're the same section, then they match. */
1080 if (first == second)
1081 return 1;
1082
1083 /* If either is NULL, give up. */
1084 if (first == NULL || second == NULL)
1085 return 0;
1086
1087 /* This doesn't apply to absolute symbols. */
1088 if (first->owner == NULL || second->owner == NULL)
1089 return 0;
1090
1091 /* If they're in the same object file, they must be different sections. */
1092 if (first->owner == second->owner)
1093 return 0;
1094
1095 /* Check whether the two sections are potentially corresponding. They must
1096 have the same size, address, and name. We can't compare section indexes,
1097 which would be more reliable, because some sections may have been
1098 stripped. */
1099 if (bfd_get_section_size (first) != bfd_get_section_size (second))
1100 return 0;
1101
1102 /* In-memory addresses may start at a different offset, relativize them. */
1103 if (bfd_get_section_vma (first->owner, first)
1104 - bfd_get_start_address (first->owner)
1105 != bfd_get_section_vma (second->owner, second)
1106 - bfd_get_start_address (second->owner))
1107 return 0;
1108
1109 if (bfd_get_section_name (first->owner, first) == NULL
1110 || bfd_get_section_name (second->owner, second) == NULL
1111 || strcmp (bfd_get_section_name (first->owner, first),
1112 bfd_get_section_name (second->owner, second)) != 0)
1113 return 0;
1114
1115 /* Otherwise check that they are in corresponding objfiles. */
1116
1117 ALL_OBJFILES (obj)
1118 if (obj->obfd == first->owner)
1119 break;
1120 gdb_assert (obj != NULL);
1121
1122 if (obj->separate_debug_objfile != NULL
1123 && obj->separate_debug_objfile->obfd == second->owner)
1124 return 1;
1125 if (obj->separate_debug_objfile_backlink != NULL
1126 && obj->separate_debug_objfile_backlink->obfd == second->owner)
1127 return 1;
1128
1129 return 0;
1130 }
1131
1132 /* See symtab.h. */
1133
1134 void
1135 expand_symtab_containing_pc (CORE_ADDR pc, struct obj_section *section)
1136 {
1137 struct objfile *objfile;
1138 struct bound_minimal_symbol msymbol;
1139
1140 /* If we know that this is not a text address, return failure. This is
1141 necessary because we loop based on texthigh and textlow, which do
1142 not include the data ranges. */
1143 msymbol = lookup_minimal_symbol_by_pc_section (pc, section);
1144 if (msymbol.minsym
1145 && (MSYMBOL_TYPE (msymbol.minsym) == mst_data
1146 || MSYMBOL_TYPE (msymbol.minsym) == mst_bss
1147 || MSYMBOL_TYPE (msymbol.minsym) == mst_abs
1148 || MSYMBOL_TYPE (msymbol.minsym) == mst_file_data
1149 || MSYMBOL_TYPE (msymbol.minsym) == mst_file_bss))
1150 return;
1151
1152 ALL_OBJFILES (objfile)
1153 {
1154 struct compunit_symtab *cust = NULL;
1155
1156 if (objfile->sf)
1157 cust = objfile->sf->qf->find_pc_sect_compunit_symtab (objfile, msymbol,
1158 pc, section, 0);
1159 if (cust)
1160 return;
1161 }
1162 }
1163 \f
1164 /* Hash function for the symbol cache. */
1165
1166 static unsigned int
1167 hash_symbol_entry (const struct objfile *objfile_context,
1168 const char *name, domain_enum domain)
1169 {
1170 unsigned int hash = (uintptr_t) objfile_context;
1171
1172 if (name != NULL)
1173 hash += htab_hash_string (name);
1174
1175 /* Because of symbol_matches_domain we need VAR_DOMAIN and STRUCT_DOMAIN
1176 to map to the same slot. */
1177 if (domain == STRUCT_DOMAIN)
1178 hash += VAR_DOMAIN * 7;
1179 else
1180 hash += domain * 7;
1181
1182 return hash;
1183 }
1184
1185 /* Equality function for the symbol cache. */
1186
1187 static int
1188 eq_symbol_entry (const struct symbol_cache_slot *slot,
1189 const struct objfile *objfile_context,
1190 const char *name, domain_enum domain)
1191 {
1192 const char *slot_name;
1193 domain_enum slot_domain;
1194
1195 if (slot->state == SYMBOL_SLOT_UNUSED)
1196 return 0;
1197
1198 if (slot->objfile_context != objfile_context)
1199 return 0;
1200
1201 if (slot->state == SYMBOL_SLOT_NOT_FOUND)
1202 {
1203 slot_name = slot->value.not_found.name;
1204 slot_domain = slot->value.not_found.domain;
1205 }
1206 else
1207 {
1208 slot_name = SYMBOL_SEARCH_NAME (slot->value.found.symbol);
1209 slot_domain = SYMBOL_DOMAIN (slot->value.found.symbol);
1210 }
1211
1212 /* NULL names match. */
1213 if (slot_name == NULL && name == NULL)
1214 {
1215 /* But there's no point in calling symbol_matches_domain in the
1216 SYMBOL_SLOT_FOUND case. */
1217 if (slot_domain != domain)
1218 return 0;
1219 }
1220 else if (slot_name != NULL && name != NULL)
1221 {
1222 /* It's important that we use the same comparison that was done the
1223 first time through. If the slot records a found symbol, then this
1224 means using strcmp_iw on SYMBOL_SEARCH_NAME. See dictionary.c.
1225 It also means using symbol_matches_domain for found symbols.
1226 See block.c.
1227
1228 If the slot records a not-found symbol, then require a precise match.
1229 We could still be lax with whitespace like strcmp_iw though. */
1230
1231 if (slot->state == SYMBOL_SLOT_NOT_FOUND)
1232 {
1233 if (strcmp (slot_name, name) != 0)
1234 return 0;
1235 if (slot_domain != domain)
1236 return 0;
1237 }
1238 else
1239 {
1240 struct symbol *sym = slot->value.found.symbol;
1241
1242 if (strcmp_iw (slot_name, name) != 0)
1243 return 0;
1244 if (!symbol_matches_domain (SYMBOL_LANGUAGE (sym),
1245 slot_domain, domain))
1246 return 0;
1247 }
1248 }
1249 else
1250 {
1251 /* Only one name is NULL. */
1252 return 0;
1253 }
1254
1255 return 1;
1256 }
1257
1258 /* Given a cache of size SIZE, return the size of the struct (with variable
1259 length array) in bytes. */
1260
1261 static size_t
1262 symbol_cache_byte_size (unsigned int size)
1263 {
1264 return (sizeof (struct block_symbol_cache)
1265 + ((size - 1) * sizeof (struct symbol_cache_slot)));
1266 }
1267
1268 /* Resize CACHE. */
1269
1270 static void
1271 resize_symbol_cache (struct symbol_cache *cache, unsigned int new_size)
1272 {
1273 /* If there's no change in size, don't do anything.
1274 All caches have the same size, so we can just compare with the size
1275 of the global symbols cache. */
1276 if ((cache->global_symbols != NULL
1277 && cache->global_symbols->size == new_size)
1278 || (cache->global_symbols == NULL
1279 && new_size == 0))
1280 return;
1281
1282 xfree (cache->global_symbols);
1283 xfree (cache->static_symbols);
1284
1285 if (new_size == 0)
1286 {
1287 cache->global_symbols = NULL;
1288 cache->static_symbols = NULL;
1289 }
1290 else
1291 {
1292 size_t total_size = symbol_cache_byte_size (new_size);
1293
1294 cache->global_symbols = xcalloc (1, total_size);
1295 cache->static_symbols = xcalloc (1, total_size);
1296 cache->global_symbols->size = new_size;
1297 cache->static_symbols->size = new_size;
1298 }
1299 }
1300
1301 /* Make a symbol cache of size SIZE. */
1302
1303 static struct symbol_cache *
1304 make_symbol_cache (unsigned int size)
1305 {
1306 struct symbol_cache *cache;
1307
1308 cache = XCNEW (struct symbol_cache);
1309 resize_symbol_cache (cache, symbol_cache_size);
1310 return cache;
1311 }
1312
1313 /* Free the space used by CACHE. */
1314
1315 static void
1316 free_symbol_cache (struct symbol_cache *cache)
1317 {
1318 xfree (cache->global_symbols);
1319 xfree (cache->static_symbols);
1320 xfree (cache);
1321 }
1322
1323 /* Return the symbol cache of PSPACE.
1324 Create one if it doesn't exist yet. */
1325
1326 static struct symbol_cache *
1327 get_symbol_cache (struct program_space *pspace)
1328 {
1329 struct symbol_cache *cache = program_space_data (pspace, symbol_cache_key);
1330
1331 if (cache == NULL)
1332 {
1333 cache = make_symbol_cache (symbol_cache_size);
1334 set_program_space_data (pspace, symbol_cache_key, cache);
1335 }
1336
1337 return cache;
1338 }
1339
1340 /* Delete the symbol cache of PSPACE.
1341 Called when PSPACE is destroyed. */
1342
1343 static void
1344 symbol_cache_cleanup (struct program_space *pspace, void *data)
1345 {
1346 struct symbol_cache *cache = data;
1347
1348 free_symbol_cache (cache);
1349 }
1350
1351 /* Set the size of the symbol cache in all program spaces. */
1352
1353 static void
1354 set_symbol_cache_size (unsigned int new_size)
1355 {
1356 struct program_space *pspace;
1357
1358 ALL_PSPACES (pspace)
1359 {
1360 struct symbol_cache *cache
1361 = program_space_data (pspace, symbol_cache_key);
1362
1363 /* The pspace could have been created but not have a cache yet. */
1364 if (cache != NULL)
1365 resize_symbol_cache (cache, new_size);
1366 }
1367 }
1368
1369 /* Called when symbol-cache-size is set. */
1370
1371 static void
1372 set_symbol_cache_size_handler (char *args, int from_tty,
1373 struct cmd_list_element *c)
1374 {
1375 if (new_symbol_cache_size > MAX_SYMBOL_CACHE_SIZE)
1376 {
1377 /* Restore the previous value.
1378 This is the value the "show" command prints. */
1379 new_symbol_cache_size = symbol_cache_size;
1380
1381 error (_("Symbol cache size is too large, max is %u."),
1382 MAX_SYMBOL_CACHE_SIZE);
1383 }
1384 symbol_cache_size = new_symbol_cache_size;
1385
1386 set_symbol_cache_size (symbol_cache_size);
1387 }
1388
1389 /* Lookup symbol NAME,DOMAIN in BLOCK in the symbol cache of PSPACE.
1390 OBJFILE_CONTEXT is the current objfile, which may be NULL.
1391 The result is the symbol if found, SYMBOL_LOOKUP_FAILED if a previous lookup
1392 failed (and thus this one will too), or NULL if the symbol is not present
1393 in the cache.
1394 If the symbol is not present in the cache, then *BSC_PTR and *SLOT_PTR are
1395 set to the cache and slot of the symbol to save the result of a full lookup
1396 attempt. */
1397
1398 static struct block_symbol
1399 symbol_cache_lookup (struct symbol_cache *cache,
1400 struct objfile *objfile_context, int block,
1401 const char *name, domain_enum domain,
1402 struct block_symbol_cache **bsc_ptr,
1403 struct symbol_cache_slot **slot_ptr)
1404 {
1405 struct block_symbol_cache *bsc;
1406 unsigned int hash;
1407 struct symbol_cache_slot *slot;
1408
1409 if (block == GLOBAL_BLOCK)
1410 bsc = cache->global_symbols;
1411 else
1412 bsc = cache->static_symbols;
1413 if (bsc == NULL)
1414 {
1415 *bsc_ptr = NULL;
1416 *slot_ptr = NULL;
1417 return (struct block_symbol) {NULL, NULL};
1418 }
1419
1420 hash = hash_symbol_entry (objfile_context, name, domain);
1421 slot = bsc->symbols + hash % bsc->size;
1422
1423 if (eq_symbol_entry (slot, objfile_context, name, domain))
1424 {
1425 if (symbol_lookup_debug)
1426 fprintf_unfiltered (gdb_stdlog,
1427 "%s block symbol cache hit%s for %s, %s\n",
1428 block == GLOBAL_BLOCK ? "Global" : "Static",
1429 slot->state == SYMBOL_SLOT_NOT_FOUND
1430 ? " (not found)" : "",
1431 name, domain_name (domain));
1432 ++bsc->hits;
1433 if (slot->state == SYMBOL_SLOT_NOT_FOUND)
1434 return SYMBOL_LOOKUP_FAILED;
1435 return slot->value.found;
1436 }
1437
1438 /* Symbol is not present in the cache. */
1439
1440 *bsc_ptr = bsc;
1441 *slot_ptr = slot;
1442
1443 if (symbol_lookup_debug)
1444 {
1445 fprintf_unfiltered (gdb_stdlog,
1446 "%s block symbol cache miss for %s, %s\n",
1447 block == GLOBAL_BLOCK ? "Global" : "Static",
1448 name, domain_name (domain));
1449 }
1450 ++bsc->misses;
1451 return (struct block_symbol) {NULL, NULL};
1452 }
1453
1454 /* Clear out SLOT. */
1455
1456 static void
1457 symbol_cache_clear_slot (struct symbol_cache_slot *slot)
1458 {
1459 if (slot->state == SYMBOL_SLOT_NOT_FOUND)
1460 xfree (slot->value.not_found.name);
1461 slot->state = SYMBOL_SLOT_UNUSED;
1462 }
1463
1464 /* Mark SYMBOL as found in SLOT.
1465 OBJFILE_CONTEXT is the current objfile when the lookup was done, or NULL
1466 if it's not needed to distinguish lookups (STATIC_BLOCK). It is *not*
1467 necessarily the objfile the symbol was found in. */
1468
1469 static void
1470 symbol_cache_mark_found (struct block_symbol_cache *bsc,
1471 struct symbol_cache_slot *slot,
1472 struct objfile *objfile_context,
1473 struct symbol *symbol,
1474 const struct block *block)
1475 {
1476 if (bsc == NULL)
1477 return;
1478 if (slot->state != SYMBOL_SLOT_UNUSED)
1479 {
1480 ++bsc->collisions;
1481 symbol_cache_clear_slot (slot);
1482 }
1483 slot->state = SYMBOL_SLOT_FOUND;
1484 slot->objfile_context = objfile_context;
1485 slot->value.found.symbol = symbol;
1486 slot->value.found.block = block;
1487 }
1488
1489 /* Mark symbol NAME, DOMAIN as not found in SLOT.
1490 OBJFILE_CONTEXT is the current objfile when the lookup was done, or NULL
1491 if it's not needed to distinguish lookups (STATIC_BLOCK). */
1492
1493 static void
1494 symbol_cache_mark_not_found (struct block_symbol_cache *bsc,
1495 struct symbol_cache_slot *slot,
1496 struct objfile *objfile_context,
1497 const char *name, domain_enum domain)
1498 {
1499 if (bsc == NULL)
1500 return;
1501 if (slot->state != SYMBOL_SLOT_UNUSED)
1502 {
1503 ++bsc->collisions;
1504 symbol_cache_clear_slot (slot);
1505 }
1506 slot->state = SYMBOL_SLOT_NOT_FOUND;
1507 slot->objfile_context = objfile_context;
1508 slot->value.not_found.name = xstrdup (name);
1509 slot->value.not_found.domain = domain;
1510 }
1511
1512 /* Flush the symbol cache of PSPACE. */
1513
1514 static void
1515 symbol_cache_flush (struct program_space *pspace)
1516 {
1517 struct symbol_cache *cache = program_space_data (pspace, symbol_cache_key);
1518 int pass;
1519 size_t total_size;
1520
1521 if (cache == NULL)
1522 return;
1523 if (cache->global_symbols == NULL)
1524 {
1525 gdb_assert (symbol_cache_size == 0);
1526 gdb_assert (cache->static_symbols == NULL);
1527 return;
1528 }
1529
1530 /* If the cache is untouched since the last flush, early exit.
1531 This is important for performance during the startup of a program linked
1532 with 100s (or 1000s) of shared libraries. */
1533 if (cache->global_symbols->misses == 0
1534 && cache->static_symbols->misses == 0)
1535 return;
1536
1537 gdb_assert (cache->global_symbols->size == symbol_cache_size);
1538 gdb_assert (cache->static_symbols->size == symbol_cache_size);
1539
1540 for (pass = 0; pass < 2; ++pass)
1541 {
1542 struct block_symbol_cache *bsc
1543 = pass == 0 ? cache->global_symbols : cache->static_symbols;
1544 unsigned int i;
1545
1546 for (i = 0; i < bsc->size; ++i)
1547 symbol_cache_clear_slot (&bsc->symbols[i]);
1548 }
1549
1550 cache->global_symbols->hits = 0;
1551 cache->global_symbols->misses = 0;
1552 cache->global_symbols->collisions = 0;
1553 cache->static_symbols->hits = 0;
1554 cache->static_symbols->misses = 0;
1555 cache->static_symbols->collisions = 0;
1556 }
1557
1558 /* Dump CACHE. */
1559
1560 static void
1561 symbol_cache_dump (const struct symbol_cache *cache)
1562 {
1563 int pass;
1564
1565 if (cache->global_symbols == NULL)
1566 {
1567 printf_filtered (" <disabled>\n");
1568 return;
1569 }
1570
1571 for (pass = 0; pass < 2; ++pass)
1572 {
1573 const struct block_symbol_cache *bsc
1574 = pass == 0 ? cache->global_symbols : cache->static_symbols;
1575 unsigned int i;
1576
1577 if (pass == 0)
1578 printf_filtered ("Global symbols:\n");
1579 else
1580 printf_filtered ("Static symbols:\n");
1581
1582 for (i = 0; i < bsc->size; ++i)
1583 {
1584 const struct symbol_cache_slot *slot = &bsc->symbols[i];
1585
1586 QUIT;
1587
1588 switch (slot->state)
1589 {
1590 case SYMBOL_SLOT_UNUSED:
1591 break;
1592 case SYMBOL_SLOT_NOT_FOUND:
1593 printf_filtered (" [%4u] = %s, %s %s (not found)\n", i,
1594 host_address_to_string (slot->objfile_context),
1595 slot->value.not_found.name,
1596 domain_name (slot->value.not_found.domain));
1597 break;
1598 case SYMBOL_SLOT_FOUND:
1599 {
1600 struct symbol *found = slot->value.found.symbol;
1601 const struct objfile *context = slot->objfile_context;
1602
1603 printf_filtered (" [%4u] = %s, %s %s\n", i,
1604 host_address_to_string (context),
1605 SYMBOL_PRINT_NAME (found),
1606 domain_name (SYMBOL_DOMAIN (found)));
1607 break;
1608 }
1609 }
1610 }
1611 }
1612 }
1613
1614 /* The "mt print symbol-cache" command. */
1615
1616 static void
1617 maintenance_print_symbol_cache (char *args, int from_tty)
1618 {
1619 struct program_space *pspace;
1620
1621 ALL_PSPACES (pspace)
1622 {
1623 struct symbol_cache *cache;
1624
1625 printf_filtered (_("Symbol cache for pspace %d\n%s:\n"),
1626 pspace->num,
1627 pspace->symfile_object_file != NULL
1628 ? objfile_name (pspace->symfile_object_file)
1629 : "(no object file)");
1630
1631 /* If the cache hasn't been created yet, avoid creating one. */
1632 cache = program_space_data (pspace, symbol_cache_key);
1633 if (cache == NULL)
1634 printf_filtered (" <empty>\n");
1635 else
1636 symbol_cache_dump (cache);
1637 }
1638 }
1639
1640 /* The "mt flush-symbol-cache" command. */
1641
1642 static void
1643 maintenance_flush_symbol_cache (char *args, int from_tty)
1644 {
1645 struct program_space *pspace;
1646
1647 ALL_PSPACES (pspace)
1648 {
1649 symbol_cache_flush (pspace);
1650 }
1651 }
1652
1653 /* Print usage statistics of CACHE. */
1654
1655 static void
1656 symbol_cache_stats (struct symbol_cache *cache)
1657 {
1658 int pass;
1659
1660 if (cache->global_symbols == NULL)
1661 {
1662 printf_filtered (" <disabled>\n");
1663 return;
1664 }
1665
1666 for (pass = 0; pass < 2; ++pass)
1667 {
1668 const struct block_symbol_cache *bsc
1669 = pass == 0 ? cache->global_symbols : cache->static_symbols;
1670
1671 QUIT;
1672
1673 if (pass == 0)
1674 printf_filtered ("Global block cache stats:\n");
1675 else
1676 printf_filtered ("Static block cache stats:\n");
1677
1678 printf_filtered (" size: %u\n", bsc->size);
1679 printf_filtered (" hits: %u\n", bsc->hits);
1680 printf_filtered (" misses: %u\n", bsc->misses);
1681 printf_filtered (" collisions: %u\n", bsc->collisions);
1682 }
1683 }
1684
1685 /* The "mt print symbol-cache-statistics" command. */
1686
1687 static void
1688 maintenance_print_symbol_cache_statistics (char *args, int from_tty)
1689 {
1690 struct program_space *pspace;
1691
1692 ALL_PSPACES (pspace)
1693 {
1694 struct symbol_cache *cache;
1695
1696 printf_filtered (_("Symbol cache statistics for pspace %d\n%s:\n"),
1697 pspace->num,
1698 pspace->symfile_object_file != NULL
1699 ? objfile_name (pspace->symfile_object_file)
1700 : "(no object file)");
1701
1702 /* If the cache hasn't been created yet, avoid creating one. */
1703 cache = program_space_data (pspace, symbol_cache_key);
1704 if (cache == NULL)
1705 printf_filtered (" empty, no stats available\n");
1706 else
1707 symbol_cache_stats (cache);
1708 }
1709 }
1710
1711 /* This module's 'new_objfile' observer. */
1712
1713 static void
1714 symtab_new_objfile_observer (struct objfile *objfile)
1715 {
1716 /* Ideally we'd use OBJFILE->pspace, but OBJFILE may be NULL. */
1717 symbol_cache_flush (current_program_space);
1718 }
1719
1720 /* This module's 'free_objfile' observer. */
1721
1722 static void
1723 symtab_free_objfile_observer (struct objfile *objfile)
1724 {
1725 symbol_cache_flush (objfile->pspace);
1726 }
1727 \f
1728 /* Debug symbols usually don't have section information. We need to dig that
1729 out of the minimal symbols and stash that in the debug symbol. */
1730
1731 void
1732 fixup_section (struct general_symbol_info *ginfo,
1733 CORE_ADDR addr, struct objfile *objfile)
1734 {
1735 struct minimal_symbol *msym;
1736
1737 /* First, check whether a minimal symbol with the same name exists
1738 and points to the same address. The address check is required
1739 e.g. on PowerPC64, where the minimal symbol for a function will
1740 point to the function descriptor, while the debug symbol will
1741 point to the actual function code. */
1742 msym = lookup_minimal_symbol_by_pc_name (addr, ginfo->name, objfile);
1743 if (msym)
1744 ginfo->section = MSYMBOL_SECTION (msym);
1745 else
1746 {
1747 /* Static, function-local variables do appear in the linker
1748 (minimal) symbols, but are frequently given names that won't
1749 be found via lookup_minimal_symbol(). E.g., it has been
1750 observed in frv-uclinux (ELF) executables that a static,
1751 function-local variable named "foo" might appear in the
1752 linker symbols as "foo.6" or "foo.3". Thus, there is no
1753 point in attempting to extend the lookup-by-name mechanism to
1754 handle this case due to the fact that there can be multiple
1755 names.
1756
1757 So, instead, search the section table when lookup by name has
1758 failed. The ``addr'' and ``endaddr'' fields may have already
1759 been relocated. If so, the relocation offset (i.e. the
1760 ANOFFSET value) needs to be subtracted from these values when
1761 performing the comparison. We unconditionally subtract it,
1762 because, when no relocation has been performed, the ANOFFSET
1763 value will simply be zero.
1764
1765 The address of the symbol whose section we're fixing up HAS
1766 NOT BEEN adjusted (relocated) yet. It can't have been since
1767 the section isn't yet known and knowing the section is
1768 necessary in order to add the correct relocation value. In
1769 other words, we wouldn't even be in this function (attempting
1770 to compute the section) if it were already known.
1771
1772 Note that it is possible to search the minimal symbols
1773 (subtracting the relocation value if necessary) to find the
1774 matching minimal symbol, but this is overkill and much less
1775 efficient. It is not necessary to find the matching minimal
1776 symbol, only its section.
1777
1778 Note that this technique (of doing a section table search)
1779 can fail when unrelocated section addresses overlap. For
1780 this reason, we still attempt a lookup by name prior to doing
1781 a search of the section table. */
1782
1783 struct obj_section *s;
1784 int fallback = -1;
1785
1786 ALL_OBJFILE_OSECTIONS (objfile, s)
1787 {
1788 int idx = s - objfile->sections;
1789 CORE_ADDR offset = ANOFFSET (objfile->section_offsets, idx);
1790
1791 if (fallback == -1)
1792 fallback = idx;
1793
1794 if (obj_section_addr (s) - offset <= addr
1795 && addr < obj_section_endaddr (s) - offset)
1796 {
1797 ginfo->section = idx;
1798 return;
1799 }
1800 }
1801
1802 /* If we didn't find the section, assume it is in the first
1803 section. If there is no allocated section, then it hardly
1804 matters what we pick, so just pick zero. */
1805 if (fallback == -1)
1806 ginfo->section = 0;
1807 else
1808 ginfo->section = fallback;
1809 }
1810 }
1811
1812 struct symbol *
1813 fixup_symbol_section (struct symbol *sym, struct objfile *objfile)
1814 {
1815 CORE_ADDR addr;
1816
1817 if (!sym)
1818 return NULL;
1819
1820 if (!SYMBOL_OBJFILE_OWNED (sym))
1821 return sym;
1822
1823 /* We either have an OBJFILE, or we can get at it from the sym's
1824 symtab. Anything else is a bug. */
1825 gdb_assert (objfile || symbol_symtab (sym));
1826
1827 if (objfile == NULL)
1828 objfile = symbol_objfile (sym);
1829
1830 if (SYMBOL_OBJ_SECTION (objfile, sym))
1831 return sym;
1832
1833 /* We should have an objfile by now. */
1834 gdb_assert (objfile);
1835
1836 switch (SYMBOL_CLASS (sym))
1837 {
1838 case LOC_STATIC:
1839 case LOC_LABEL:
1840 addr = SYMBOL_VALUE_ADDRESS (sym);
1841 break;
1842 case LOC_BLOCK:
1843 addr = BLOCK_START (SYMBOL_BLOCK_VALUE (sym));
1844 break;
1845
1846 default:
1847 /* Nothing else will be listed in the minsyms -- no use looking
1848 it up. */
1849 return sym;
1850 }
1851
1852 fixup_section (&sym->ginfo, addr, objfile);
1853
1854 return sym;
1855 }
1856
1857 /* Compute the demangled form of NAME as used by the various symbol
1858 lookup functions. The result is stored in *RESULT_NAME. Returns a
1859 cleanup which can be used to clean up the result.
1860
1861 For Ada, this function just sets *RESULT_NAME to NAME, unmodified.
1862 Normally, Ada symbol lookups are performed using the encoded name
1863 rather than the demangled name, and so it might seem to make sense
1864 for this function to return an encoded version of NAME.
1865 Unfortunately, we cannot do this, because this function is used in
1866 circumstances where it is not appropriate to try to encode NAME.
1867 For instance, when displaying the frame info, we demangle the name
1868 of each parameter, and then perform a symbol lookup inside our
1869 function using that demangled name. In Ada, certain functions
1870 have internally-generated parameters whose name contain uppercase
1871 characters. Encoding those name would result in those uppercase
1872 characters to become lowercase, and thus cause the symbol lookup
1873 to fail. */
1874
1875 struct cleanup *
1876 demangle_for_lookup (const char *name, enum language lang,
1877 const char **result_name)
1878 {
1879 char *demangled_name = NULL;
1880 const char *modified_name = NULL;
1881 struct cleanup *cleanup = make_cleanup (null_cleanup, 0);
1882
1883 modified_name = name;
1884
1885 /* If we are using C++, D, Go, or Java, demangle the name before doing a
1886 lookup, so we can always binary search. */
1887 if (lang == language_cplus)
1888 {
1889 demangled_name = gdb_demangle (name, DMGL_ANSI | DMGL_PARAMS);
1890 if (demangled_name)
1891 {
1892 modified_name = demangled_name;
1893 make_cleanup (xfree, demangled_name);
1894 }
1895 else
1896 {
1897 /* If we were given a non-mangled name, canonicalize it
1898 according to the language (so far only for C++). */
1899 demangled_name = cp_canonicalize_string (name);
1900 if (demangled_name)
1901 {
1902 modified_name = demangled_name;
1903 make_cleanup (xfree, demangled_name);
1904 }
1905 }
1906 }
1907 else if (lang == language_java)
1908 {
1909 demangled_name = gdb_demangle (name,
1910 DMGL_ANSI | DMGL_PARAMS | DMGL_JAVA);
1911 if (demangled_name)
1912 {
1913 modified_name = demangled_name;
1914 make_cleanup (xfree, demangled_name);
1915 }
1916 }
1917 else if (lang == language_d)
1918 {
1919 demangled_name = d_demangle (name, 0);
1920 if (demangled_name)
1921 {
1922 modified_name = demangled_name;
1923 make_cleanup (xfree, demangled_name);
1924 }
1925 }
1926 else if (lang == language_go)
1927 {
1928 demangled_name = go_demangle (name, 0);
1929 if (demangled_name)
1930 {
1931 modified_name = demangled_name;
1932 make_cleanup (xfree, demangled_name);
1933 }
1934 }
1935
1936 *result_name = modified_name;
1937 return cleanup;
1938 }
1939
1940 /* See symtab.h.
1941
1942 This function (or rather its subordinates) have a bunch of loops and
1943 it would seem to be attractive to put in some QUIT's (though I'm not really
1944 sure whether it can run long enough to be really important). But there
1945 are a few calls for which it would appear to be bad news to quit
1946 out of here: e.g., find_proc_desc in alpha-mdebug-tdep.c. (Note
1947 that there is C++ code below which can error(), but that probably
1948 doesn't affect these calls since they are looking for a known
1949 variable and thus can probably assume it will never hit the C++
1950 code). */
1951
1952 struct block_symbol
1953 lookup_symbol_in_language (const char *name, const struct block *block,
1954 const domain_enum domain, enum language lang,
1955 struct field_of_this_result *is_a_field_of_this)
1956 {
1957 const char *modified_name;
1958 struct block_symbol returnval;
1959 struct cleanup *cleanup = demangle_for_lookup (name, lang, &modified_name);
1960
1961 returnval = lookup_symbol_aux (modified_name, block, domain, lang,
1962 is_a_field_of_this);
1963 do_cleanups (cleanup);
1964
1965 return returnval;
1966 }
1967
1968 /* See symtab.h. */
1969
1970 struct block_symbol
1971 lookup_symbol (const char *name, const struct block *block,
1972 domain_enum domain,
1973 struct field_of_this_result *is_a_field_of_this)
1974 {
1975 return lookup_symbol_in_language (name, block, domain,
1976 current_language->la_language,
1977 is_a_field_of_this);
1978 }
1979
1980 /* See symtab.h. */
1981
1982 struct block_symbol
1983 lookup_language_this (const struct language_defn *lang,
1984 const struct block *block)
1985 {
1986 if (lang->la_name_of_this == NULL || block == NULL)
1987 return (struct block_symbol) {NULL, NULL};
1988
1989 if (symbol_lookup_debug > 1)
1990 {
1991 struct objfile *objfile = lookup_objfile_from_block (block);
1992
1993 fprintf_unfiltered (gdb_stdlog,
1994 "lookup_language_this (%s, %s (objfile %s))",
1995 lang->la_name, host_address_to_string (block),
1996 objfile_debug_name (objfile));
1997 }
1998
1999 while (block)
2000 {
2001 struct symbol *sym;
2002
2003 sym = block_lookup_symbol (block, lang->la_name_of_this, VAR_DOMAIN);
2004 if (sym != NULL)
2005 {
2006 if (symbol_lookup_debug > 1)
2007 {
2008 fprintf_unfiltered (gdb_stdlog, " = %s (%s, block %s)\n",
2009 SYMBOL_PRINT_NAME (sym),
2010 host_address_to_string (sym),
2011 host_address_to_string (block));
2012 }
2013 return (struct block_symbol) {sym, block};
2014 }
2015 if (BLOCK_FUNCTION (block))
2016 break;
2017 block = BLOCK_SUPERBLOCK (block);
2018 }
2019
2020 if (symbol_lookup_debug > 1)
2021 fprintf_unfiltered (gdb_stdlog, " = NULL\n");
2022 return (struct block_symbol) {NULL, NULL};
2023 }
2024
2025 /* Given TYPE, a structure/union,
2026 return 1 if the component named NAME from the ultimate target
2027 structure/union is defined, otherwise, return 0. */
2028
2029 static int
2030 check_field (struct type *type, const char *name,
2031 struct field_of_this_result *is_a_field_of_this)
2032 {
2033 int i;
2034
2035 /* The type may be a stub. */
2036 type = check_typedef (type);
2037
2038 for (i = TYPE_NFIELDS (type) - 1; i >= TYPE_N_BASECLASSES (type); i--)
2039 {
2040 const char *t_field_name = TYPE_FIELD_NAME (type, i);
2041
2042 if (t_field_name && (strcmp_iw (t_field_name, name) == 0))
2043 {
2044 is_a_field_of_this->type = type;
2045 is_a_field_of_this->field = &TYPE_FIELD (type, i);
2046 return 1;
2047 }
2048 }
2049
2050 /* C++: If it was not found as a data field, then try to return it
2051 as a pointer to a method. */
2052
2053 for (i = TYPE_NFN_FIELDS (type) - 1; i >= 0; --i)
2054 {
2055 if (strcmp_iw (TYPE_FN_FIELDLIST_NAME (type, i), name) == 0)
2056 {
2057 is_a_field_of_this->type = type;
2058 is_a_field_of_this->fn_field = &TYPE_FN_FIELDLIST (type, i);
2059 return 1;
2060 }
2061 }
2062
2063 for (i = TYPE_N_BASECLASSES (type) - 1; i >= 0; i--)
2064 if (check_field (TYPE_BASECLASS (type, i), name, is_a_field_of_this))
2065 return 1;
2066
2067 return 0;
2068 }
2069
2070 /* Behave like lookup_symbol except that NAME is the natural name
2071 (e.g., demangled name) of the symbol that we're looking for. */
2072
2073 static struct block_symbol
2074 lookup_symbol_aux (const char *name, const struct block *block,
2075 const domain_enum domain, enum language language,
2076 struct field_of_this_result *is_a_field_of_this)
2077 {
2078 struct block_symbol result;
2079 const struct language_defn *langdef;
2080
2081 if (symbol_lookup_debug)
2082 {
2083 struct objfile *objfile = lookup_objfile_from_block (block);
2084
2085 fprintf_unfiltered (gdb_stdlog,
2086 "lookup_symbol_aux (%s, %s (objfile %s), %s, %s)\n",
2087 name, host_address_to_string (block),
2088 objfile != NULL
2089 ? objfile_debug_name (objfile) : "NULL",
2090 domain_name (domain), language_str (language));
2091 }
2092
2093 /* Make sure we do something sensible with is_a_field_of_this, since
2094 the callers that set this parameter to some non-null value will
2095 certainly use it later. If we don't set it, the contents of
2096 is_a_field_of_this are undefined. */
2097 if (is_a_field_of_this != NULL)
2098 memset (is_a_field_of_this, 0, sizeof (*is_a_field_of_this));
2099
2100 /* Search specified block and its superiors. Don't search
2101 STATIC_BLOCK or GLOBAL_BLOCK. */
2102
2103 result = lookup_local_symbol (name, block, domain, language);
2104 if (result.symbol != NULL)
2105 {
2106 if (symbol_lookup_debug)
2107 {
2108 fprintf_unfiltered (gdb_stdlog, "lookup_symbol_aux (...) = %s\n",
2109 host_address_to_string (result.symbol));
2110 }
2111 return result;
2112 }
2113
2114 /* If requested to do so by the caller and if appropriate for LANGUAGE,
2115 check to see if NAME is a field of `this'. */
2116
2117 langdef = language_def (language);
2118
2119 /* Don't do this check if we are searching for a struct. It will
2120 not be found by check_field, but will be found by other
2121 means. */
2122 if (is_a_field_of_this != NULL && domain != STRUCT_DOMAIN)
2123 {
2124 result = lookup_language_this (langdef, block);
2125
2126 if (result.symbol)
2127 {
2128 struct type *t = result.symbol->type;
2129
2130 /* I'm not really sure that type of this can ever
2131 be typedefed; just be safe. */
2132 t = check_typedef (t);
2133 if (TYPE_CODE (t) == TYPE_CODE_PTR
2134 || TYPE_CODE (t) == TYPE_CODE_REF)
2135 t = TYPE_TARGET_TYPE (t);
2136
2137 if (TYPE_CODE (t) != TYPE_CODE_STRUCT
2138 && TYPE_CODE (t) != TYPE_CODE_UNION)
2139 error (_("Internal error: `%s' is not an aggregate"),
2140 langdef->la_name_of_this);
2141
2142 if (check_field (t, name, is_a_field_of_this))
2143 {
2144 if (symbol_lookup_debug)
2145 {
2146 fprintf_unfiltered (gdb_stdlog,
2147 "lookup_symbol_aux (...) = NULL\n");
2148 }
2149 return (struct block_symbol) {NULL, NULL};
2150 }
2151 }
2152 }
2153
2154 /* Now do whatever is appropriate for LANGUAGE to look
2155 up static and global variables. */
2156
2157 result = langdef->la_lookup_symbol_nonlocal (langdef, name, block, domain);
2158 if (result.symbol != NULL)
2159 {
2160 if (symbol_lookup_debug)
2161 {
2162 fprintf_unfiltered (gdb_stdlog, "lookup_symbol_aux (...) = %s\n",
2163 host_address_to_string (result.symbol));
2164 }
2165 return result;
2166 }
2167
2168 /* Now search all static file-level symbols. Not strictly correct,
2169 but more useful than an error. */
2170
2171 result = lookup_static_symbol (name, domain);
2172 if (symbol_lookup_debug)
2173 {
2174 fprintf_unfiltered (gdb_stdlog, "lookup_symbol_aux (...) = %s\n",
2175 result.symbol != NULL
2176 ? host_address_to_string (result.symbol)
2177 : "NULL");
2178 }
2179 return result;
2180 }
2181
2182 /* Check to see if the symbol is defined in BLOCK or its superiors.
2183 Don't search STATIC_BLOCK or GLOBAL_BLOCK. */
2184
2185 static struct block_symbol
2186 lookup_local_symbol (const char *name, const struct block *block,
2187 const domain_enum domain,
2188 enum language language)
2189 {
2190 struct symbol *sym;
2191 const struct block *static_block = block_static_block (block);
2192 const char *scope = block_scope (block);
2193
2194 /* Check if either no block is specified or it's a global block. */
2195
2196 if (static_block == NULL)
2197 return (struct block_symbol) {NULL, NULL};
2198
2199 while (block != static_block)
2200 {
2201 sym = lookup_symbol_in_block (name, block, domain);
2202 if (sym != NULL)
2203 return (struct block_symbol) {sym, block};
2204
2205 if (language == language_cplus || language == language_fortran)
2206 {
2207 struct block_symbol sym
2208 = cp_lookup_symbol_imports_or_template (scope, name, block,
2209 domain);
2210
2211 if (sym.symbol != NULL)
2212 return sym;
2213 }
2214
2215 if (BLOCK_FUNCTION (block) != NULL && block_inlined_p (block))
2216 break;
2217 block = BLOCK_SUPERBLOCK (block);
2218 }
2219
2220 /* We've reached the end of the function without finding a result. */
2221
2222 return (struct block_symbol) {NULL, NULL};
2223 }
2224
2225 /* See symtab.h. */
2226
2227 struct objfile *
2228 lookup_objfile_from_block (const struct block *block)
2229 {
2230 struct objfile *obj;
2231 struct compunit_symtab *cust;
2232
2233 if (block == NULL)
2234 return NULL;
2235
2236 block = block_global_block (block);
2237 /* Look through all blockvectors. */
2238 ALL_COMPUNITS (obj, cust)
2239 if (block == BLOCKVECTOR_BLOCK (COMPUNIT_BLOCKVECTOR (cust),
2240 GLOBAL_BLOCK))
2241 {
2242 if (obj->separate_debug_objfile_backlink)
2243 obj = obj->separate_debug_objfile_backlink;
2244
2245 return obj;
2246 }
2247
2248 return NULL;
2249 }
2250
2251 /* See symtab.h. */
2252
2253 struct symbol *
2254 lookup_symbol_in_block (const char *name, const struct block *block,
2255 const domain_enum domain)
2256 {
2257 struct symbol *sym;
2258
2259 if (symbol_lookup_debug > 1)
2260 {
2261 struct objfile *objfile = lookup_objfile_from_block (block);
2262
2263 fprintf_unfiltered (gdb_stdlog,
2264 "lookup_symbol_in_block (%s, %s (objfile %s), %s)",
2265 name, host_address_to_string (block),
2266 objfile_debug_name (objfile),
2267 domain_name (domain));
2268 }
2269
2270 sym = block_lookup_symbol (block, name, domain);
2271 if (sym)
2272 {
2273 if (symbol_lookup_debug > 1)
2274 {
2275 fprintf_unfiltered (gdb_stdlog, " = %s\n",
2276 host_address_to_string (sym));
2277 }
2278 return fixup_symbol_section (sym, NULL);
2279 }
2280
2281 if (symbol_lookup_debug > 1)
2282 fprintf_unfiltered (gdb_stdlog, " = NULL\n");
2283 return NULL;
2284 }
2285
2286 /* See symtab.h. */
2287
2288 struct block_symbol
2289 lookup_global_symbol_from_objfile (struct objfile *main_objfile,
2290 const char *name,
2291 const domain_enum domain)
2292 {
2293 struct objfile *objfile;
2294
2295 for (objfile = main_objfile;
2296 objfile;
2297 objfile = objfile_separate_debug_iterate (main_objfile, objfile))
2298 {
2299 struct block_symbol result
2300 = lookup_symbol_in_objfile (objfile, GLOBAL_BLOCK, name, domain);
2301
2302 if (result.symbol != NULL)
2303 return result;
2304 }
2305
2306 return (struct block_symbol) {NULL, NULL};
2307 }
2308
2309 /* Check to see if the symbol is defined in one of the OBJFILE's
2310 symtabs. BLOCK_INDEX should be either GLOBAL_BLOCK or STATIC_BLOCK,
2311 depending on whether or not we want to search global symbols or
2312 static symbols. */
2313
2314 static struct block_symbol
2315 lookup_symbol_in_objfile_symtabs (struct objfile *objfile, int block_index,
2316 const char *name, const domain_enum domain)
2317 {
2318 struct compunit_symtab *cust;
2319
2320 gdb_assert (block_index == GLOBAL_BLOCK || block_index == STATIC_BLOCK);
2321
2322 if (symbol_lookup_debug > 1)
2323 {
2324 fprintf_unfiltered (gdb_stdlog,
2325 "lookup_symbol_in_objfile_symtabs (%s, %s, %s, %s)",
2326 objfile_debug_name (objfile),
2327 block_index == GLOBAL_BLOCK
2328 ? "GLOBAL_BLOCK" : "STATIC_BLOCK",
2329 name, domain_name (domain));
2330 }
2331
2332 ALL_OBJFILE_COMPUNITS (objfile, cust)
2333 {
2334 const struct blockvector *bv;
2335 const struct block *block;
2336 struct block_symbol result;
2337
2338 bv = COMPUNIT_BLOCKVECTOR (cust);
2339 block = BLOCKVECTOR_BLOCK (bv, block_index);
2340 result.symbol = block_lookup_symbol_primary (block, name, domain);
2341 result.block = block;
2342 if (result.symbol != NULL)
2343 {
2344 if (symbol_lookup_debug > 1)
2345 {
2346 fprintf_unfiltered (gdb_stdlog, " = %s (block %s)\n",
2347 host_address_to_string (result.symbol),
2348 host_address_to_string (block));
2349 }
2350 result.symbol = fixup_symbol_section (result.symbol, objfile);
2351 return result;
2352
2353 }
2354 }
2355
2356 if (symbol_lookup_debug > 1)
2357 fprintf_unfiltered (gdb_stdlog, " = NULL\n");
2358 return (struct block_symbol) {NULL, NULL};
2359 }
2360
2361 /* Wrapper around lookup_symbol_in_objfile_symtabs for search_symbols.
2362 Look up LINKAGE_NAME in DOMAIN in the global and static blocks of OBJFILE
2363 and all associated separate debug objfiles.
2364
2365 Normally we only look in OBJFILE, and not any separate debug objfiles
2366 because the outer loop will cause them to be searched too. This case is
2367 different. Here we're called from search_symbols where it will only
2368 call us for the the objfile that contains a matching minsym. */
2369
2370 static struct block_symbol
2371 lookup_symbol_in_objfile_from_linkage_name (struct objfile *objfile,
2372 const char *linkage_name,
2373 domain_enum domain)
2374 {
2375 enum language lang = current_language->la_language;
2376 const char *modified_name;
2377 struct cleanup *cleanup = demangle_for_lookup (linkage_name, lang,
2378 &modified_name);
2379 struct objfile *main_objfile, *cur_objfile;
2380
2381 if (objfile->separate_debug_objfile_backlink)
2382 main_objfile = objfile->separate_debug_objfile_backlink;
2383 else
2384 main_objfile = objfile;
2385
2386 for (cur_objfile = main_objfile;
2387 cur_objfile;
2388 cur_objfile = objfile_separate_debug_iterate (main_objfile, cur_objfile))
2389 {
2390 struct block_symbol result;
2391
2392 result = lookup_symbol_in_objfile_symtabs (cur_objfile, GLOBAL_BLOCK,
2393 modified_name, domain);
2394 if (result.symbol == NULL)
2395 result = lookup_symbol_in_objfile_symtabs (cur_objfile, STATIC_BLOCK,
2396 modified_name, domain);
2397 if (result.symbol != NULL)
2398 {
2399 do_cleanups (cleanup);
2400 return result;
2401 }
2402 }
2403
2404 do_cleanups (cleanup);
2405 return (struct block_symbol) {NULL, NULL};
2406 }
2407
2408 /* A helper function that throws an exception when a symbol was found
2409 in a psymtab but not in a symtab. */
2410
2411 static void ATTRIBUTE_NORETURN
2412 error_in_psymtab_expansion (int block_index, const char *name,
2413 struct compunit_symtab *cust)
2414 {
2415 error (_("\
2416 Internal: %s symbol `%s' found in %s psymtab but not in symtab.\n\
2417 %s may be an inlined function, or may be a template function\n \
2418 (if a template, try specifying an instantiation: %s<type>)."),
2419 block_index == GLOBAL_BLOCK ? "global" : "static",
2420 name,
2421 symtab_to_filename_for_display (compunit_primary_filetab (cust)),
2422 name, name);
2423 }
2424
2425 /* A helper function for various lookup routines that interfaces with
2426 the "quick" symbol table functions. */
2427
2428 static struct block_symbol
2429 lookup_symbol_via_quick_fns (struct objfile *objfile, int block_index,
2430 const char *name, const domain_enum domain)
2431 {
2432 struct compunit_symtab *cust;
2433 const struct blockvector *bv;
2434 const struct block *block;
2435 struct block_symbol result;
2436
2437 if (!objfile->sf)
2438 return (struct block_symbol) {NULL, NULL};
2439
2440 if (symbol_lookup_debug > 1)
2441 {
2442 fprintf_unfiltered (gdb_stdlog,
2443 "lookup_symbol_via_quick_fns (%s, %s, %s, %s)\n",
2444 objfile_debug_name (objfile),
2445 block_index == GLOBAL_BLOCK
2446 ? "GLOBAL_BLOCK" : "STATIC_BLOCK",
2447 name, domain_name (domain));
2448 }
2449
2450 cust = objfile->sf->qf->lookup_symbol (objfile, block_index, name, domain);
2451 if (cust == NULL)
2452 {
2453 if (symbol_lookup_debug > 1)
2454 {
2455 fprintf_unfiltered (gdb_stdlog,
2456 "lookup_symbol_via_quick_fns (...) = NULL\n");
2457 }
2458 return (struct block_symbol) {NULL, NULL};
2459 }
2460
2461 bv = COMPUNIT_BLOCKVECTOR (cust);
2462 block = BLOCKVECTOR_BLOCK (bv, block_index);
2463 result.symbol = block_lookup_symbol (block, name, domain);
2464 if (result.symbol == NULL)
2465 error_in_psymtab_expansion (block_index, name, cust);
2466
2467 if (symbol_lookup_debug > 1)
2468 {
2469 fprintf_unfiltered (gdb_stdlog,
2470 "lookup_symbol_via_quick_fns (...) = %s (block %s)\n",
2471 host_address_to_string (result.symbol),
2472 host_address_to_string (block));
2473 }
2474
2475 result.symbol = fixup_symbol_section (result.symbol, objfile);
2476 result.block = block;
2477 return result;
2478 }
2479
2480 /* See symtab.h. */
2481
2482 struct block_symbol
2483 basic_lookup_symbol_nonlocal (const struct language_defn *langdef,
2484 const char *name,
2485 const struct block *block,
2486 const domain_enum domain)
2487 {
2488 struct block_symbol result;
2489
2490 /* NOTE: carlton/2003-05-19: The comments below were written when
2491 this (or what turned into this) was part of lookup_symbol_aux;
2492 I'm much less worried about these questions now, since these
2493 decisions have turned out well, but I leave these comments here
2494 for posterity. */
2495
2496 /* NOTE: carlton/2002-12-05: There is a question as to whether or
2497 not it would be appropriate to search the current global block
2498 here as well. (That's what this code used to do before the
2499 is_a_field_of_this check was moved up.) On the one hand, it's
2500 redundant with the lookup in all objfiles search that happens
2501 next. On the other hand, if decode_line_1 is passed an argument
2502 like filename:var, then the user presumably wants 'var' to be
2503 searched for in filename. On the third hand, there shouldn't be
2504 multiple global variables all of which are named 'var', and it's
2505 not like decode_line_1 has ever restricted its search to only
2506 global variables in a single filename. All in all, only
2507 searching the static block here seems best: it's correct and it's
2508 cleanest. */
2509
2510 /* NOTE: carlton/2002-12-05: There's also a possible performance
2511 issue here: if you usually search for global symbols in the
2512 current file, then it would be slightly better to search the
2513 current global block before searching all the symtabs. But there
2514 are other factors that have a much greater effect on performance
2515 than that one, so I don't think we should worry about that for
2516 now. */
2517
2518 /* NOTE: dje/2014-10-26: The lookup in all objfiles search could skip
2519 the current objfile. Searching the current objfile first is useful
2520 for both matching user expectations as well as performance. */
2521
2522 result = lookup_symbol_in_static_block (name, block, domain);
2523 if (result.symbol != NULL)
2524 return result;
2525
2526 /* If we didn't find a definition for a builtin type in the static block,
2527 search for it now. This is actually the right thing to do and can be
2528 a massive performance win. E.g., when debugging a program with lots of
2529 shared libraries we could search all of them only to find out the
2530 builtin type isn't defined in any of them. This is common for types
2531 like "void". */
2532 if (domain == VAR_DOMAIN)
2533 {
2534 struct gdbarch *gdbarch;
2535
2536 if (block == NULL)
2537 gdbarch = target_gdbarch ();
2538 else
2539 gdbarch = block_gdbarch (block);
2540 result.symbol = language_lookup_primitive_type_as_symbol (langdef,
2541 gdbarch, name);
2542 result.block = NULL;
2543 if (result.symbol != NULL)
2544 return result;
2545 }
2546
2547 return lookup_global_symbol (name, block, domain);
2548 }
2549
2550 /* See symtab.h. */
2551
2552 struct block_symbol
2553 lookup_symbol_in_static_block (const char *name,
2554 const struct block *block,
2555 const domain_enum domain)
2556 {
2557 const struct block *static_block = block_static_block (block);
2558 struct symbol *sym;
2559
2560 if (static_block == NULL)
2561 return (struct block_symbol) {NULL, NULL};
2562
2563 if (symbol_lookup_debug)
2564 {
2565 struct objfile *objfile = lookup_objfile_from_block (static_block);
2566
2567 fprintf_unfiltered (gdb_stdlog,
2568 "lookup_symbol_in_static_block (%s, %s (objfile %s),"
2569 " %s)\n",
2570 name,
2571 host_address_to_string (block),
2572 objfile_debug_name (objfile),
2573 domain_name (domain));
2574 }
2575
2576 sym = lookup_symbol_in_block (name, static_block, domain);
2577 if (symbol_lookup_debug)
2578 {
2579 fprintf_unfiltered (gdb_stdlog,
2580 "lookup_symbol_in_static_block (...) = %s\n",
2581 sym != NULL ? host_address_to_string (sym) : "NULL");
2582 }
2583 return (struct block_symbol) {sym, static_block};
2584 }
2585
2586 /* Perform the standard symbol lookup of NAME in OBJFILE:
2587 1) First search expanded symtabs, and if not found
2588 2) Search the "quick" symtabs (partial or .gdb_index).
2589 BLOCK_INDEX is one of GLOBAL_BLOCK or STATIC_BLOCK. */
2590
2591 static struct block_symbol
2592 lookup_symbol_in_objfile (struct objfile *objfile, int block_index,
2593 const char *name, const domain_enum domain)
2594 {
2595 struct block_symbol result;
2596
2597 if (symbol_lookup_debug)
2598 {
2599 fprintf_unfiltered (gdb_stdlog,
2600 "lookup_symbol_in_objfile (%s, %s, %s, %s)\n",
2601 objfile_debug_name (objfile),
2602 block_index == GLOBAL_BLOCK
2603 ? "GLOBAL_BLOCK" : "STATIC_BLOCK",
2604 name, domain_name (domain));
2605 }
2606
2607 result = lookup_symbol_in_objfile_symtabs (objfile, block_index,
2608 name, domain);
2609 if (result.symbol != NULL)
2610 {
2611 if (symbol_lookup_debug)
2612 {
2613 fprintf_unfiltered (gdb_stdlog,
2614 "lookup_symbol_in_objfile (...) = %s"
2615 " (in symtabs)\n",
2616 host_address_to_string (result.symbol));
2617 }
2618 return result;
2619 }
2620
2621 result = lookup_symbol_via_quick_fns (objfile, block_index,
2622 name, domain);
2623 if (symbol_lookup_debug)
2624 {
2625 fprintf_unfiltered (gdb_stdlog,
2626 "lookup_symbol_in_objfile (...) = %s%s\n",
2627 result.symbol != NULL
2628 ? host_address_to_string (result.symbol)
2629 : "NULL",
2630 result.symbol != NULL ? " (via quick fns)" : "");
2631 }
2632 return result;
2633 }
2634
2635 /* See symtab.h. */
2636
2637 struct block_symbol
2638 lookup_static_symbol (const char *name, const domain_enum domain)
2639 {
2640 struct symbol_cache *cache = get_symbol_cache (current_program_space);
2641 struct objfile *objfile;
2642 struct block_symbol result;
2643 struct block_symbol_cache *bsc;
2644 struct symbol_cache_slot *slot;
2645
2646 /* Lookup in STATIC_BLOCK is not current-objfile-dependent, so just pass
2647 NULL for OBJFILE_CONTEXT. */
2648 result = symbol_cache_lookup (cache, NULL, STATIC_BLOCK, name, domain,
2649 &bsc, &slot);
2650 if (result.symbol != NULL)
2651 {
2652 if (SYMBOL_LOOKUP_FAILED_P (result))
2653 return (struct block_symbol) {NULL, NULL};
2654 return result;
2655 }
2656
2657 ALL_OBJFILES (objfile)
2658 {
2659 result = lookup_symbol_in_objfile (objfile, STATIC_BLOCK, name, domain);
2660 if (result.symbol != NULL)
2661 {
2662 /* Still pass NULL for OBJFILE_CONTEXT here. */
2663 symbol_cache_mark_found (bsc, slot, NULL, result.symbol,
2664 result.block);
2665 return result;
2666 }
2667 }
2668
2669 /* Still pass NULL for OBJFILE_CONTEXT here. */
2670 symbol_cache_mark_not_found (bsc, slot, NULL, name, domain);
2671 return (struct block_symbol) {NULL, NULL};
2672 }
2673
2674 /* Private data to be used with lookup_symbol_global_iterator_cb. */
2675
2676 struct global_sym_lookup_data
2677 {
2678 /* The name of the symbol we are searching for. */
2679 const char *name;
2680
2681 /* The domain to use for our search. */
2682 domain_enum domain;
2683
2684 /* The field where the callback should store the symbol if found.
2685 It should be initialized to {NULL, NULL} before the search is started. */
2686 struct block_symbol result;
2687 };
2688
2689 /* A callback function for gdbarch_iterate_over_objfiles_in_search_order.
2690 It searches by name for a symbol in the GLOBAL_BLOCK of the given
2691 OBJFILE. The arguments for the search are passed via CB_DATA,
2692 which in reality is a pointer to struct global_sym_lookup_data. */
2693
2694 static int
2695 lookup_symbol_global_iterator_cb (struct objfile *objfile,
2696 void *cb_data)
2697 {
2698 struct global_sym_lookup_data *data =
2699 (struct global_sym_lookup_data *) cb_data;
2700
2701 gdb_assert (data->result.symbol == NULL
2702 && data->result.block == NULL);
2703
2704 data->result = lookup_symbol_in_objfile (objfile, GLOBAL_BLOCK,
2705 data->name, data->domain);
2706
2707 /* If we found a match, tell the iterator to stop. Otherwise,
2708 keep going. */
2709 return (data->result.symbol != NULL);
2710 }
2711
2712 /* See symtab.h. */
2713
2714 struct block_symbol
2715 lookup_global_symbol (const char *name,
2716 const struct block *block,
2717 const domain_enum domain)
2718 {
2719 struct symbol_cache *cache = get_symbol_cache (current_program_space);
2720 struct block_symbol result;
2721 struct objfile *objfile;
2722 struct global_sym_lookup_data lookup_data;
2723 struct block_symbol_cache *bsc;
2724 struct symbol_cache_slot *slot;
2725
2726 objfile = lookup_objfile_from_block (block);
2727
2728 /* First see if we can find the symbol in the cache.
2729 This works because we use the current objfile to qualify the lookup. */
2730 result = symbol_cache_lookup (cache, objfile, GLOBAL_BLOCK, name, domain,
2731 &bsc, &slot);
2732 if (result.symbol != NULL)
2733 {
2734 if (SYMBOL_LOOKUP_FAILED_P (result))
2735 return (struct block_symbol) {NULL, NULL};
2736 return result;
2737 }
2738
2739 /* Call library-specific lookup procedure. */
2740 if (objfile != NULL)
2741 result = solib_global_lookup (objfile, name, domain);
2742
2743 /* If that didn't work go a global search (of global blocks, heh). */
2744 if (result.symbol == NULL)
2745 {
2746 memset (&lookup_data, 0, sizeof (lookup_data));
2747 lookup_data.name = name;
2748 lookup_data.domain = domain;
2749 gdbarch_iterate_over_objfiles_in_search_order
2750 (objfile != NULL ? get_objfile_arch (objfile) : target_gdbarch (),
2751 lookup_symbol_global_iterator_cb, &lookup_data, objfile);
2752 result = lookup_data.result;
2753 }
2754
2755 if (result.symbol != NULL)
2756 symbol_cache_mark_found (bsc, slot, objfile, result.symbol, result.block);
2757 else
2758 symbol_cache_mark_not_found (bsc, slot, objfile, name, domain);
2759
2760 return result;
2761 }
2762
2763 int
2764 symbol_matches_domain (enum language symbol_language,
2765 domain_enum symbol_domain,
2766 domain_enum domain)
2767 {
2768 /* For C++ "struct foo { ... }" also defines a typedef for "foo".
2769 A Java class declaration also defines a typedef for the class.
2770 Similarly, any Ada type declaration implicitly defines a typedef. */
2771 if (symbol_language == language_cplus
2772 || symbol_language == language_d
2773 || symbol_language == language_java
2774 || symbol_language == language_ada)
2775 {
2776 if ((domain == VAR_DOMAIN || domain == STRUCT_DOMAIN)
2777 && symbol_domain == STRUCT_DOMAIN)
2778 return 1;
2779 }
2780 /* For all other languages, strict match is required. */
2781 return (symbol_domain == domain);
2782 }
2783
2784 /* See symtab.h. */
2785
2786 struct type *
2787 lookup_transparent_type (const char *name)
2788 {
2789 return current_language->la_lookup_transparent_type (name);
2790 }
2791
2792 /* A helper for basic_lookup_transparent_type that interfaces with the
2793 "quick" symbol table functions. */
2794
2795 static struct type *
2796 basic_lookup_transparent_type_quick (struct objfile *objfile, int block_index,
2797 const char *name)
2798 {
2799 struct compunit_symtab *cust;
2800 const struct blockvector *bv;
2801 struct block *block;
2802 struct symbol *sym;
2803
2804 if (!objfile->sf)
2805 return NULL;
2806 cust = objfile->sf->qf->lookup_symbol (objfile, block_index, name,
2807 STRUCT_DOMAIN);
2808 if (cust == NULL)
2809 return NULL;
2810
2811 bv = COMPUNIT_BLOCKVECTOR (cust);
2812 block = BLOCKVECTOR_BLOCK (bv, block_index);
2813 sym = block_find_symbol (block, name, STRUCT_DOMAIN,
2814 block_find_non_opaque_type, NULL);
2815 if (sym == NULL)
2816 error_in_psymtab_expansion (block_index, name, cust);
2817 gdb_assert (!TYPE_IS_OPAQUE (SYMBOL_TYPE (sym)));
2818 return SYMBOL_TYPE (sym);
2819 }
2820
2821 /* Subroutine of basic_lookup_transparent_type to simplify it.
2822 Look up the non-opaque definition of NAME in BLOCK_INDEX of OBJFILE.
2823 BLOCK_INDEX is either GLOBAL_BLOCK or STATIC_BLOCK. */
2824
2825 static struct type *
2826 basic_lookup_transparent_type_1 (struct objfile *objfile, int block_index,
2827 const char *name)
2828 {
2829 const struct compunit_symtab *cust;
2830 const struct blockvector *bv;
2831 const struct block *block;
2832 const struct symbol *sym;
2833
2834 ALL_OBJFILE_COMPUNITS (objfile, cust)
2835 {
2836 bv = COMPUNIT_BLOCKVECTOR (cust);
2837 block = BLOCKVECTOR_BLOCK (bv, block_index);
2838 sym = block_find_symbol (block, name, STRUCT_DOMAIN,
2839 block_find_non_opaque_type, NULL);
2840 if (sym != NULL)
2841 {
2842 gdb_assert (!TYPE_IS_OPAQUE (SYMBOL_TYPE (sym)));
2843 return SYMBOL_TYPE (sym);
2844 }
2845 }
2846
2847 return NULL;
2848 }
2849
2850 /* The standard implementation of lookup_transparent_type. This code
2851 was modeled on lookup_symbol -- the parts not relevant to looking
2852 up types were just left out. In particular it's assumed here that
2853 types are available in STRUCT_DOMAIN and only in file-static or
2854 global blocks. */
2855
2856 struct type *
2857 basic_lookup_transparent_type (const char *name)
2858 {
2859 struct symbol *sym;
2860 struct compunit_symtab *cust;
2861 const struct blockvector *bv;
2862 struct objfile *objfile;
2863 struct block *block;
2864 struct type *t;
2865
2866 /* Now search all the global symbols. Do the symtab's first, then
2867 check the psymtab's. If a psymtab indicates the existence
2868 of the desired name as a global, then do psymtab-to-symtab
2869 conversion on the fly and return the found symbol. */
2870
2871 ALL_OBJFILES (objfile)
2872 {
2873 t = basic_lookup_transparent_type_1 (objfile, GLOBAL_BLOCK, name);
2874 if (t)
2875 return t;
2876 }
2877
2878 ALL_OBJFILES (objfile)
2879 {
2880 t = basic_lookup_transparent_type_quick (objfile, GLOBAL_BLOCK, name);
2881 if (t)
2882 return t;
2883 }
2884
2885 /* Now search the static file-level symbols.
2886 Not strictly correct, but more useful than an error.
2887 Do the symtab's first, then
2888 check the psymtab's. If a psymtab indicates the existence
2889 of the desired name as a file-level static, then do psymtab-to-symtab
2890 conversion on the fly and return the found symbol. */
2891
2892 ALL_OBJFILES (objfile)
2893 {
2894 t = basic_lookup_transparent_type_1 (objfile, STATIC_BLOCK, name);
2895 if (t)
2896 return t;
2897 }
2898
2899 ALL_OBJFILES (objfile)
2900 {
2901 t = basic_lookup_transparent_type_quick (objfile, STATIC_BLOCK, name);
2902 if (t)
2903 return t;
2904 }
2905
2906 return (struct type *) 0;
2907 }
2908
2909 /* Iterate over the symbols named NAME, matching DOMAIN, in BLOCK.
2910
2911 For each symbol that matches, CALLBACK is called. The symbol and
2912 DATA are passed to the callback.
2913
2914 If CALLBACK returns zero, the iteration ends. Otherwise, the
2915 search continues. */
2916
2917 void
2918 iterate_over_symbols (const struct block *block, const char *name,
2919 const domain_enum domain,
2920 symbol_found_callback_ftype *callback,
2921 void *data)
2922 {
2923 struct block_iterator iter;
2924 struct symbol *sym;
2925
2926 ALL_BLOCK_SYMBOLS_WITH_NAME (block, name, iter, sym)
2927 {
2928 if (symbol_matches_domain (SYMBOL_LANGUAGE (sym),
2929 SYMBOL_DOMAIN (sym), domain))
2930 {
2931 if (!callback (sym, data))
2932 return;
2933 }
2934 }
2935 }
2936
2937 /* Find the compunit symtab associated with PC and SECTION.
2938 This will read in debug info as necessary. */
2939
2940 struct compunit_symtab *
2941 find_pc_sect_compunit_symtab (CORE_ADDR pc, struct obj_section *section)
2942 {
2943 struct compunit_symtab *cust;
2944 struct compunit_symtab *best_cust = NULL;
2945 struct objfile *objfile;
2946 CORE_ADDR distance = 0;
2947 struct bound_minimal_symbol msymbol;
2948
2949 /* If we know that this is not a text address, return failure. This is
2950 necessary because we loop based on the block's high and low code
2951 addresses, which do not include the data ranges, and because
2952 we call find_pc_sect_psymtab which has a similar restriction based
2953 on the partial_symtab's texthigh and textlow. */
2954 msymbol = lookup_minimal_symbol_by_pc_section (pc, section);
2955 if (msymbol.minsym
2956 && (MSYMBOL_TYPE (msymbol.minsym) == mst_data
2957 || MSYMBOL_TYPE (msymbol.minsym) == mst_bss
2958 || MSYMBOL_TYPE (msymbol.minsym) == mst_abs
2959 || MSYMBOL_TYPE (msymbol.minsym) == mst_file_data
2960 || MSYMBOL_TYPE (msymbol.minsym) == mst_file_bss))
2961 return NULL;
2962
2963 /* Search all symtabs for the one whose file contains our address, and which
2964 is the smallest of all the ones containing the address. This is designed
2965 to deal with a case like symtab a is at 0x1000-0x2000 and 0x3000-0x4000
2966 and symtab b is at 0x2000-0x3000. So the GLOBAL_BLOCK for a is from
2967 0x1000-0x4000, but for address 0x2345 we want to return symtab b.
2968
2969 This happens for native ecoff format, where code from included files
2970 gets its own symtab. The symtab for the included file should have
2971 been read in already via the dependency mechanism.
2972 It might be swifter to create several symtabs with the same name
2973 like xcoff does (I'm not sure).
2974
2975 It also happens for objfiles that have their functions reordered.
2976 For these, the symtab we are looking for is not necessarily read in. */
2977
2978 ALL_COMPUNITS (objfile, cust)
2979 {
2980 struct block *b;
2981 const struct blockvector *bv;
2982
2983 bv = COMPUNIT_BLOCKVECTOR (cust);
2984 b = BLOCKVECTOR_BLOCK (bv, GLOBAL_BLOCK);
2985
2986 if (BLOCK_START (b) <= pc
2987 && BLOCK_END (b) > pc
2988 && (distance == 0
2989 || BLOCK_END (b) - BLOCK_START (b) < distance))
2990 {
2991 /* For an objfile that has its functions reordered,
2992 find_pc_psymtab will find the proper partial symbol table
2993 and we simply return its corresponding symtab. */
2994 /* In order to better support objfiles that contain both
2995 stabs and coff debugging info, we continue on if a psymtab
2996 can't be found. */
2997 if ((objfile->flags & OBJF_REORDERED) && objfile->sf)
2998 {
2999 struct compunit_symtab *result;
3000
3001 result
3002 = objfile->sf->qf->find_pc_sect_compunit_symtab (objfile,
3003 msymbol,
3004 pc, section,
3005 0);
3006 if (result != NULL)
3007 return result;
3008 }
3009 if (section != 0)
3010 {
3011 struct block_iterator iter;
3012 struct symbol *sym = NULL;
3013
3014 ALL_BLOCK_SYMBOLS (b, iter, sym)
3015 {
3016 fixup_symbol_section (sym, objfile);
3017 if (matching_obj_sections (SYMBOL_OBJ_SECTION (objfile, sym),
3018 section))
3019 break;
3020 }
3021 if (sym == NULL)
3022 continue; /* No symbol in this symtab matches
3023 section. */
3024 }
3025 distance = BLOCK_END (b) - BLOCK_START (b);
3026 best_cust = cust;
3027 }
3028 }
3029
3030 if (best_cust != NULL)
3031 return best_cust;
3032
3033 /* Not found in symtabs, search the "quick" symtabs (e.g. psymtabs). */
3034
3035 ALL_OBJFILES (objfile)
3036 {
3037 struct compunit_symtab *result;
3038
3039 if (!objfile->sf)
3040 continue;
3041 result = objfile->sf->qf->find_pc_sect_compunit_symtab (objfile,
3042 msymbol,
3043 pc, section,
3044 1);
3045 if (result != NULL)
3046 return result;
3047 }
3048
3049 return NULL;
3050 }
3051
3052 /* Find the compunit symtab associated with PC.
3053 This will read in debug info as necessary.
3054 Backward compatibility, no section. */
3055
3056 struct compunit_symtab *
3057 find_pc_compunit_symtab (CORE_ADDR pc)
3058 {
3059 return find_pc_sect_compunit_symtab (pc, find_pc_mapped_section (pc));
3060 }
3061 \f
3062
3063 /* Find the source file and line number for a given PC value and SECTION.
3064 Return a structure containing a symtab pointer, a line number,
3065 and a pc range for the entire source line.
3066 The value's .pc field is NOT the specified pc.
3067 NOTCURRENT nonzero means, if specified pc is on a line boundary,
3068 use the line that ends there. Otherwise, in that case, the line
3069 that begins there is used. */
3070
3071 /* The big complication here is that a line may start in one file, and end just
3072 before the start of another file. This usually occurs when you #include
3073 code in the middle of a subroutine. To properly find the end of a line's PC
3074 range, we must search all symtabs associated with this compilation unit, and
3075 find the one whose first PC is closer than that of the next line in this
3076 symtab. */
3077
3078 /* If it's worth the effort, we could be using a binary search. */
3079
3080 struct symtab_and_line
3081 find_pc_sect_line (CORE_ADDR pc, struct obj_section *section, int notcurrent)
3082 {
3083 struct compunit_symtab *cust;
3084 struct symtab *iter_s;
3085 struct linetable *l;
3086 int len;
3087 int i;
3088 struct linetable_entry *item;
3089 struct symtab_and_line val;
3090 const struct blockvector *bv;
3091 struct bound_minimal_symbol msymbol;
3092
3093 /* Info on best line seen so far, and where it starts, and its file. */
3094
3095 struct linetable_entry *best = NULL;
3096 CORE_ADDR best_end = 0;
3097 struct symtab *best_symtab = 0;
3098
3099 /* Store here the first line number
3100 of a file which contains the line at the smallest pc after PC.
3101 If we don't find a line whose range contains PC,
3102 we will use a line one less than this,
3103 with a range from the start of that file to the first line's pc. */
3104 struct linetable_entry *alt = NULL;
3105
3106 /* Info on best line seen in this file. */
3107
3108 struct linetable_entry *prev;
3109
3110 /* If this pc is not from the current frame,
3111 it is the address of the end of a call instruction.
3112 Quite likely that is the start of the following statement.
3113 But what we want is the statement containing the instruction.
3114 Fudge the pc to make sure we get that. */
3115
3116 init_sal (&val); /* initialize to zeroes */
3117
3118 val.pspace = current_program_space;
3119
3120 /* It's tempting to assume that, if we can't find debugging info for
3121 any function enclosing PC, that we shouldn't search for line
3122 number info, either. However, GAS can emit line number info for
3123 assembly files --- very helpful when debugging hand-written
3124 assembly code. In such a case, we'd have no debug info for the
3125 function, but we would have line info. */
3126
3127 if (notcurrent)
3128 pc -= 1;
3129
3130 /* elz: added this because this function returned the wrong
3131 information if the pc belongs to a stub (import/export)
3132 to call a shlib function. This stub would be anywhere between
3133 two functions in the target, and the line info was erroneously
3134 taken to be the one of the line before the pc. */
3135
3136 /* RT: Further explanation:
3137
3138 * We have stubs (trampolines) inserted between procedures.
3139 *
3140 * Example: "shr1" exists in a shared library, and a "shr1" stub also
3141 * exists in the main image.
3142 *
3143 * In the minimal symbol table, we have a bunch of symbols
3144 * sorted by start address. The stubs are marked as "trampoline",
3145 * the others appear as text. E.g.:
3146 *
3147 * Minimal symbol table for main image
3148 * main: code for main (text symbol)
3149 * shr1: stub (trampoline symbol)
3150 * foo: code for foo (text symbol)
3151 * ...
3152 * Minimal symbol table for "shr1" image:
3153 * ...
3154 * shr1: code for shr1 (text symbol)
3155 * ...
3156 *
3157 * So the code below is trying to detect if we are in the stub
3158 * ("shr1" stub), and if so, find the real code ("shr1" trampoline),
3159 * and if found, do the symbolization from the real-code address
3160 * rather than the stub address.
3161 *
3162 * Assumptions being made about the minimal symbol table:
3163 * 1. lookup_minimal_symbol_by_pc() will return a trampoline only
3164 * if we're really in the trampoline.s If we're beyond it (say
3165 * we're in "foo" in the above example), it'll have a closer
3166 * symbol (the "foo" text symbol for example) and will not
3167 * return the trampoline.
3168 * 2. lookup_minimal_symbol_text() will find a real text symbol
3169 * corresponding to the trampoline, and whose address will
3170 * be different than the trampoline address. I put in a sanity
3171 * check for the address being the same, to avoid an
3172 * infinite recursion.
3173 */
3174 msymbol = lookup_minimal_symbol_by_pc (pc);
3175 if (msymbol.minsym != NULL)
3176 if (MSYMBOL_TYPE (msymbol.minsym) == mst_solib_trampoline)
3177 {
3178 struct bound_minimal_symbol mfunsym
3179 = lookup_minimal_symbol_text (MSYMBOL_LINKAGE_NAME (msymbol.minsym),
3180 NULL);
3181
3182 if (mfunsym.minsym == NULL)
3183 /* I eliminated this warning since it is coming out
3184 * in the following situation:
3185 * gdb shmain // test program with shared libraries
3186 * (gdb) break shr1 // function in shared lib
3187 * Warning: In stub for ...
3188 * In the above situation, the shared lib is not loaded yet,
3189 * so of course we can't find the real func/line info,
3190 * but the "break" still works, and the warning is annoying.
3191 * So I commented out the warning. RT */
3192 /* warning ("In stub for %s; unable to find real function/line info",
3193 SYMBOL_LINKAGE_NAME (msymbol)); */
3194 ;
3195 /* fall through */
3196 else if (BMSYMBOL_VALUE_ADDRESS (mfunsym)
3197 == BMSYMBOL_VALUE_ADDRESS (msymbol))
3198 /* Avoid infinite recursion */
3199 /* See above comment about why warning is commented out. */
3200 /* warning ("In stub for %s; unable to find real function/line info",
3201 SYMBOL_LINKAGE_NAME (msymbol)); */
3202 ;
3203 /* fall through */
3204 else
3205 return find_pc_line (BMSYMBOL_VALUE_ADDRESS (mfunsym), 0);
3206 }
3207
3208
3209 cust = find_pc_sect_compunit_symtab (pc, section);
3210 if (cust == NULL)
3211 {
3212 /* If no symbol information, return previous pc. */
3213 if (notcurrent)
3214 pc++;
3215 val.pc = pc;
3216 return val;
3217 }
3218
3219 bv = COMPUNIT_BLOCKVECTOR (cust);
3220
3221 /* Look at all the symtabs that share this blockvector.
3222 They all have the same apriori range, that we found was right;
3223 but they have different line tables. */
3224
3225 ALL_COMPUNIT_FILETABS (cust, iter_s)
3226 {
3227 /* Find the best line in this symtab. */
3228 l = SYMTAB_LINETABLE (iter_s);
3229 if (!l)
3230 continue;
3231 len = l->nitems;
3232 if (len <= 0)
3233 {
3234 /* I think len can be zero if the symtab lacks line numbers
3235 (e.g. gcc -g1). (Either that or the LINETABLE is NULL;
3236 I'm not sure which, and maybe it depends on the symbol
3237 reader). */
3238 continue;
3239 }
3240
3241 prev = NULL;
3242 item = l->item; /* Get first line info. */
3243
3244 /* Is this file's first line closer than the first lines of other files?
3245 If so, record this file, and its first line, as best alternate. */
3246 if (item->pc > pc && (!alt || item->pc < alt->pc))
3247 alt = item;
3248
3249 for (i = 0; i < len; i++, item++)
3250 {
3251 /* Leave prev pointing to the linetable entry for the last line
3252 that started at or before PC. */
3253 if (item->pc > pc)
3254 break;
3255
3256 prev = item;
3257 }
3258
3259 /* At this point, prev points at the line whose start addr is <= pc, and
3260 item points at the next line. If we ran off the end of the linetable
3261 (pc >= start of the last line), then prev == item. If pc < start of
3262 the first line, prev will not be set. */
3263
3264 /* Is this file's best line closer than the best in the other files?
3265 If so, record this file, and its best line, as best so far. Don't
3266 save prev if it represents the end of a function (i.e. line number
3267 0) instead of a real line. */
3268
3269 if (prev && prev->line && (!best || prev->pc > best->pc))
3270 {
3271 best = prev;
3272 best_symtab = iter_s;
3273
3274 /* Discard BEST_END if it's before the PC of the current BEST. */
3275 if (best_end <= best->pc)
3276 best_end = 0;
3277 }
3278
3279 /* If another line (denoted by ITEM) is in the linetable and its
3280 PC is after BEST's PC, but before the current BEST_END, then
3281 use ITEM's PC as the new best_end. */
3282 if (best && i < len && item->pc > best->pc
3283 && (best_end == 0 || best_end > item->pc))
3284 best_end = item->pc;
3285 }
3286
3287 if (!best_symtab)
3288 {
3289 /* If we didn't find any line number info, just return zeros.
3290 We used to return alt->line - 1 here, but that could be
3291 anywhere; if we don't have line number info for this PC,
3292 don't make some up. */
3293 val.pc = pc;
3294 }
3295 else if (best->line == 0)
3296 {
3297 /* If our best fit is in a range of PC's for which no line
3298 number info is available (line number is zero) then we didn't
3299 find any valid line information. */
3300 val.pc = pc;
3301 }
3302 else
3303 {
3304 val.symtab = best_symtab;
3305 val.line = best->line;
3306 val.pc = best->pc;
3307 if (best_end && (!alt || best_end < alt->pc))
3308 val.end = best_end;
3309 else if (alt)
3310 val.end = alt->pc;
3311 else
3312 val.end = BLOCK_END (BLOCKVECTOR_BLOCK (bv, GLOBAL_BLOCK));
3313 }
3314 val.section = section;
3315 return val;
3316 }
3317
3318 /* Backward compatibility (no section). */
3319
3320 struct symtab_and_line
3321 find_pc_line (CORE_ADDR pc, int notcurrent)
3322 {
3323 struct obj_section *section;
3324
3325 section = find_pc_overlay (pc);
3326 if (pc_in_unmapped_range (pc, section))
3327 pc = overlay_mapped_address (pc, section);
3328 return find_pc_sect_line (pc, section, notcurrent);
3329 }
3330
3331 /* See symtab.h. */
3332
3333 struct symtab *
3334 find_pc_line_symtab (CORE_ADDR pc)
3335 {
3336 struct symtab_and_line sal;
3337
3338 /* This always passes zero for NOTCURRENT to find_pc_line.
3339 There are currently no callers that ever pass non-zero. */
3340 sal = find_pc_line (pc, 0);
3341 return sal.symtab;
3342 }
3343 \f
3344 /* Find line number LINE in any symtab whose name is the same as
3345 SYMTAB.
3346
3347 If found, return the symtab that contains the linetable in which it was
3348 found, set *INDEX to the index in the linetable of the best entry
3349 found, and set *EXACT_MATCH nonzero if the value returned is an
3350 exact match.
3351
3352 If not found, return NULL. */
3353
3354 struct symtab *
3355 find_line_symtab (struct symtab *symtab, int line,
3356 int *index, int *exact_match)
3357 {
3358 int exact = 0; /* Initialized here to avoid a compiler warning. */
3359
3360 /* BEST_INDEX and BEST_LINETABLE identify the smallest linenumber > LINE
3361 so far seen. */
3362
3363 int best_index;
3364 struct linetable *best_linetable;
3365 struct symtab *best_symtab;
3366
3367 /* First try looking it up in the given symtab. */
3368 best_linetable = SYMTAB_LINETABLE (symtab);
3369 best_symtab = symtab;
3370 best_index = find_line_common (best_linetable, line, &exact, 0);
3371 if (best_index < 0 || !exact)
3372 {
3373 /* Didn't find an exact match. So we better keep looking for
3374 another symtab with the same name. In the case of xcoff,
3375 multiple csects for one source file (produced by IBM's FORTRAN
3376 compiler) produce multiple symtabs (this is unavoidable
3377 assuming csects can be at arbitrary places in memory and that
3378 the GLOBAL_BLOCK of a symtab has a begin and end address). */
3379
3380 /* BEST is the smallest linenumber > LINE so far seen,
3381 or 0 if none has been seen so far.
3382 BEST_INDEX and BEST_LINETABLE identify the item for it. */
3383 int best;
3384
3385 struct objfile *objfile;
3386 struct compunit_symtab *cu;
3387 struct symtab *s;
3388
3389 if (best_index >= 0)
3390 best = best_linetable->item[best_index].line;
3391 else
3392 best = 0;
3393
3394 ALL_OBJFILES (objfile)
3395 {
3396 if (objfile->sf)
3397 objfile->sf->qf->expand_symtabs_with_fullname (objfile,
3398 symtab_to_fullname (symtab));
3399 }
3400
3401 ALL_FILETABS (objfile, cu, s)
3402 {
3403 struct linetable *l;
3404 int ind;
3405
3406 if (FILENAME_CMP (symtab->filename, s->filename) != 0)
3407 continue;
3408 if (FILENAME_CMP (symtab_to_fullname (symtab),
3409 symtab_to_fullname (s)) != 0)
3410 continue;
3411 l = SYMTAB_LINETABLE (s);
3412 ind = find_line_common (l, line, &exact, 0);
3413 if (ind >= 0)
3414 {
3415 if (exact)
3416 {
3417 best_index = ind;
3418 best_linetable = l;
3419 best_symtab = s;
3420 goto done;
3421 }
3422 if (best == 0 || l->item[ind].line < best)
3423 {
3424 best = l->item[ind].line;
3425 best_index = ind;
3426 best_linetable = l;
3427 best_symtab = s;
3428 }
3429 }
3430 }
3431 }
3432 done:
3433 if (best_index < 0)
3434 return NULL;
3435
3436 if (index)
3437 *index = best_index;
3438 if (exact_match)
3439 *exact_match = exact;
3440
3441 return best_symtab;
3442 }
3443
3444 /* Given SYMTAB, returns all the PCs function in the symtab that
3445 exactly match LINE. Returns NULL if there are no exact matches,
3446 but updates BEST_ITEM in this case. */
3447
3448 VEC (CORE_ADDR) *
3449 find_pcs_for_symtab_line (struct symtab *symtab, int line,
3450 struct linetable_entry **best_item)
3451 {
3452 int start = 0;
3453 VEC (CORE_ADDR) *result = NULL;
3454
3455 /* First, collect all the PCs that are at this line. */
3456 while (1)
3457 {
3458 int was_exact;
3459 int idx;
3460
3461 idx = find_line_common (SYMTAB_LINETABLE (symtab), line, &was_exact,
3462 start);
3463 if (idx < 0)
3464 break;
3465
3466 if (!was_exact)
3467 {
3468 struct linetable_entry *item = &SYMTAB_LINETABLE (symtab)->item[idx];
3469
3470 if (*best_item == NULL || item->line < (*best_item)->line)
3471 *best_item = item;
3472
3473 break;
3474 }
3475
3476 VEC_safe_push (CORE_ADDR, result,
3477 SYMTAB_LINETABLE (symtab)->item[idx].pc);
3478 start = idx + 1;
3479 }
3480
3481 return result;
3482 }
3483
3484 \f
3485 /* Set the PC value for a given source file and line number and return true.
3486 Returns zero for invalid line number (and sets the PC to 0).
3487 The source file is specified with a struct symtab. */
3488
3489 int
3490 find_line_pc (struct symtab *symtab, int line, CORE_ADDR *pc)
3491 {
3492 struct linetable *l;
3493 int ind;
3494
3495 *pc = 0;
3496 if (symtab == 0)
3497 return 0;
3498
3499 symtab = find_line_symtab (symtab, line, &ind, NULL);
3500 if (symtab != NULL)
3501 {
3502 l = SYMTAB_LINETABLE (symtab);
3503 *pc = l->item[ind].pc;
3504 return 1;
3505 }
3506 else
3507 return 0;
3508 }
3509
3510 /* Find the range of pc values in a line.
3511 Store the starting pc of the line into *STARTPTR
3512 and the ending pc (start of next line) into *ENDPTR.
3513 Returns 1 to indicate success.
3514 Returns 0 if could not find the specified line. */
3515
3516 int
3517 find_line_pc_range (struct symtab_and_line sal, CORE_ADDR *startptr,
3518 CORE_ADDR *endptr)
3519 {
3520 CORE_ADDR startaddr;
3521 struct symtab_and_line found_sal;
3522
3523 startaddr = sal.pc;
3524 if (startaddr == 0 && !find_line_pc (sal.symtab, sal.line, &startaddr))
3525 return 0;
3526
3527 /* This whole function is based on address. For example, if line 10 has
3528 two parts, one from 0x100 to 0x200 and one from 0x300 to 0x400, then
3529 "info line *0x123" should say the line goes from 0x100 to 0x200
3530 and "info line *0x355" should say the line goes from 0x300 to 0x400.
3531 This also insures that we never give a range like "starts at 0x134
3532 and ends at 0x12c". */
3533
3534 found_sal = find_pc_sect_line (startaddr, sal.section, 0);
3535 if (found_sal.line != sal.line)
3536 {
3537 /* The specified line (sal) has zero bytes. */
3538 *startptr = found_sal.pc;
3539 *endptr = found_sal.pc;
3540 }
3541 else
3542 {
3543 *startptr = found_sal.pc;
3544 *endptr = found_sal.end;
3545 }
3546 return 1;
3547 }
3548
3549 /* Given a line table and a line number, return the index into the line
3550 table for the pc of the nearest line whose number is >= the specified one.
3551 Return -1 if none is found. The value is >= 0 if it is an index.
3552 START is the index at which to start searching the line table.
3553
3554 Set *EXACT_MATCH nonzero if the value returned is an exact match. */
3555
3556 static int
3557 find_line_common (struct linetable *l, int lineno,
3558 int *exact_match, int start)
3559 {
3560 int i;
3561 int len;
3562
3563 /* BEST is the smallest linenumber > LINENO so far seen,
3564 or 0 if none has been seen so far.
3565 BEST_INDEX identifies the item for it. */
3566
3567 int best_index = -1;
3568 int best = 0;
3569
3570 *exact_match = 0;
3571
3572 if (lineno <= 0)
3573 return -1;
3574 if (l == 0)
3575 return -1;
3576
3577 len = l->nitems;
3578 for (i = start; i < len; i++)
3579 {
3580 struct linetable_entry *item = &(l->item[i]);
3581
3582 if (item->line == lineno)
3583 {
3584 /* Return the first (lowest address) entry which matches. */
3585 *exact_match = 1;
3586 return i;
3587 }
3588
3589 if (item->line > lineno && (best == 0 || item->line < best))
3590 {
3591 best = item->line;
3592 best_index = i;
3593 }
3594 }
3595
3596 /* If we got here, we didn't get an exact match. */
3597 return best_index;
3598 }
3599
3600 int
3601 find_pc_line_pc_range (CORE_ADDR pc, CORE_ADDR *startptr, CORE_ADDR *endptr)
3602 {
3603 struct symtab_and_line sal;
3604
3605 sal = find_pc_line (pc, 0);
3606 *startptr = sal.pc;
3607 *endptr = sal.end;
3608 return sal.symtab != 0;
3609 }
3610
3611 /* Given a function symbol SYM, find the symtab and line for the start
3612 of the function.
3613 If the argument FUNFIRSTLINE is nonzero, we want the first line
3614 of real code inside the function.
3615 This function should return SALs matching those from minsym_found,
3616 otherwise false multiple-locations breakpoints could be placed. */
3617
3618 struct symtab_and_line
3619 find_function_start_sal (struct symbol *sym, int funfirstline)
3620 {
3621 struct symtab_and_line sal;
3622 struct obj_section *section;
3623
3624 fixup_symbol_section (sym, NULL);
3625 section = SYMBOL_OBJ_SECTION (symbol_objfile (sym), sym);
3626 sal = find_pc_sect_line (BLOCK_START (SYMBOL_BLOCK_VALUE (sym)), section, 0);
3627
3628 if (funfirstline && sal.symtab != NULL
3629 && (COMPUNIT_LOCATIONS_VALID (SYMTAB_COMPUNIT (sal.symtab))
3630 || SYMTAB_LANGUAGE (sal.symtab) == language_asm))
3631 {
3632 struct gdbarch *gdbarch = symbol_arch (sym);
3633
3634 sal.pc = BLOCK_START (SYMBOL_BLOCK_VALUE (sym));
3635 if (gdbarch_skip_entrypoint_p (gdbarch))
3636 sal.pc = gdbarch_skip_entrypoint (gdbarch, sal.pc);
3637 return sal;
3638 }
3639
3640 /* We always should have a line for the function start address.
3641 If we don't, something is odd. Create a plain SAL refering
3642 just the PC and hope that skip_prologue_sal (if requested)
3643 can find a line number for after the prologue. */
3644 if (sal.pc < BLOCK_START (SYMBOL_BLOCK_VALUE (sym)))
3645 {
3646 init_sal (&sal);
3647 sal.pspace = current_program_space;
3648 sal.pc = BLOCK_START (SYMBOL_BLOCK_VALUE (sym));
3649 sal.section = section;
3650 }
3651
3652 if (funfirstline)
3653 skip_prologue_sal (&sal);
3654
3655 return sal;
3656 }
3657
3658 /* Given a function start address FUNC_ADDR and SYMTAB, find the first
3659 address for that function that has an entry in SYMTAB's line info
3660 table. If such an entry cannot be found, return FUNC_ADDR
3661 unaltered. */
3662
3663 static CORE_ADDR
3664 skip_prologue_using_lineinfo (CORE_ADDR func_addr, struct symtab *symtab)
3665 {
3666 CORE_ADDR func_start, func_end;
3667 struct linetable *l;
3668 int i;
3669
3670 /* Give up if this symbol has no lineinfo table. */
3671 l = SYMTAB_LINETABLE (symtab);
3672 if (l == NULL)
3673 return func_addr;
3674
3675 /* Get the range for the function's PC values, or give up if we
3676 cannot, for some reason. */
3677 if (!find_pc_partial_function (func_addr, NULL, &func_start, &func_end))
3678 return func_addr;
3679
3680 /* Linetable entries are ordered by PC values, see the commentary in
3681 symtab.h where `struct linetable' is defined. Thus, the first
3682 entry whose PC is in the range [FUNC_START..FUNC_END[ is the
3683 address we are looking for. */
3684 for (i = 0; i < l->nitems; i++)
3685 {
3686 struct linetable_entry *item = &(l->item[i]);
3687
3688 /* Don't use line numbers of zero, they mark special entries in
3689 the table. See the commentary on symtab.h before the
3690 definition of struct linetable. */
3691 if (item->line > 0 && func_start <= item->pc && item->pc < func_end)
3692 return item->pc;
3693 }
3694
3695 return func_addr;
3696 }
3697
3698 /* Adjust SAL to the first instruction past the function prologue.
3699 If the PC was explicitly specified, the SAL is not changed.
3700 If the line number was explicitly specified, at most the SAL's PC
3701 is updated. If SAL is already past the prologue, then do nothing. */
3702
3703 void
3704 skip_prologue_sal (struct symtab_and_line *sal)
3705 {
3706 struct symbol *sym;
3707 struct symtab_and_line start_sal;
3708 struct cleanup *old_chain;
3709 CORE_ADDR pc, saved_pc;
3710 struct obj_section *section;
3711 const char *name;
3712 struct objfile *objfile;
3713 struct gdbarch *gdbarch;
3714 const struct block *b, *function_block;
3715 int force_skip, skip;
3716
3717 /* Do not change the SAL if PC was specified explicitly. */
3718 if (sal->explicit_pc)
3719 return;
3720
3721 old_chain = save_current_space_and_thread ();
3722 switch_to_program_space_and_thread (sal->pspace);
3723
3724 sym = find_pc_sect_function (sal->pc, sal->section);
3725 if (sym != NULL)
3726 {
3727 fixup_symbol_section (sym, NULL);
3728
3729 objfile = symbol_objfile (sym);
3730 pc = BLOCK_START (SYMBOL_BLOCK_VALUE (sym));
3731 section = SYMBOL_OBJ_SECTION (objfile, sym);
3732 name = SYMBOL_LINKAGE_NAME (sym);
3733 }
3734 else
3735 {
3736 struct bound_minimal_symbol msymbol
3737 = lookup_minimal_symbol_by_pc_section (sal->pc, sal->section);
3738
3739 if (msymbol.minsym == NULL)
3740 {
3741 do_cleanups (old_chain);
3742 return;
3743 }
3744
3745 objfile = msymbol.objfile;
3746 pc = BMSYMBOL_VALUE_ADDRESS (msymbol);
3747 section = MSYMBOL_OBJ_SECTION (objfile, msymbol.minsym);
3748 name = MSYMBOL_LINKAGE_NAME (msymbol.minsym);
3749 }
3750
3751 gdbarch = get_objfile_arch (objfile);
3752
3753 /* Process the prologue in two passes. In the first pass try to skip the
3754 prologue (SKIP is true) and verify there is a real need for it (indicated
3755 by FORCE_SKIP). If no such reason was found run a second pass where the
3756 prologue is not skipped (SKIP is false). */
3757
3758 skip = 1;
3759 force_skip = 1;
3760
3761 /* Be conservative - allow direct PC (without skipping prologue) only if we
3762 have proven the CU (Compilation Unit) supports it. sal->SYMTAB does not
3763 have to be set by the caller so we use SYM instead. */
3764 if (sym != NULL
3765 && COMPUNIT_LOCATIONS_VALID (SYMTAB_COMPUNIT (symbol_symtab (sym))))
3766 force_skip = 0;
3767
3768 saved_pc = pc;
3769 do
3770 {
3771 pc = saved_pc;
3772
3773 /* If the function is in an unmapped overlay, use its unmapped LMA address,
3774 so that gdbarch_skip_prologue has something unique to work on. */
3775 if (section_is_overlay (section) && !section_is_mapped (section))
3776 pc = overlay_unmapped_address (pc, section);
3777
3778 /* Skip "first line" of function (which is actually its prologue). */
3779 pc += gdbarch_deprecated_function_start_offset (gdbarch);
3780 if (gdbarch_skip_entrypoint_p (gdbarch))
3781 pc = gdbarch_skip_entrypoint (gdbarch, pc);
3782 if (skip)
3783 pc = gdbarch_skip_prologue (gdbarch, pc);
3784
3785 /* For overlays, map pc back into its mapped VMA range. */
3786 pc = overlay_mapped_address (pc, section);
3787
3788 /* Calculate line number. */
3789 start_sal = find_pc_sect_line (pc, section, 0);
3790
3791 /* Check if gdbarch_skip_prologue left us in mid-line, and the next
3792 line is still part of the same function. */
3793 if (skip && start_sal.pc != pc
3794 && (sym ? (BLOCK_START (SYMBOL_BLOCK_VALUE (sym)) <= start_sal.end
3795 && start_sal.end < BLOCK_END (SYMBOL_BLOCK_VALUE (sym)))
3796 : (lookup_minimal_symbol_by_pc_section (start_sal.end, section).minsym
3797 == lookup_minimal_symbol_by_pc_section (pc, section).minsym)))
3798 {
3799 /* First pc of next line */
3800 pc = start_sal.end;
3801 /* Recalculate the line number (might not be N+1). */
3802 start_sal = find_pc_sect_line (pc, section, 0);
3803 }
3804
3805 /* On targets with executable formats that don't have a concept of
3806 constructors (ELF with .init has, PE doesn't), gcc emits a call
3807 to `__main' in `main' between the prologue and before user
3808 code. */
3809 if (gdbarch_skip_main_prologue_p (gdbarch)
3810 && name && strcmp_iw (name, "main") == 0)
3811 {
3812 pc = gdbarch_skip_main_prologue (gdbarch, pc);
3813 /* Recalculate the line number (might not be N+1). */
3814 start_sal = find_pc_sect_line (pc, section, 0);
3815 force_skip = 1;
3816 }
3817 }
3818 while (!force_skip && skip--);
3819
3820 /* If we still don't have a valid source line, try to find the first
3821 PC in the lineinfo table that belongs to the same function. This
3822 happens with COFF debug info, which does not seem to have an
3823 entry in lineinfo table for the code after the prologue which has
3824 no direct relation to source. For example, this was found to be
3825 the case with the DJGPP target using "gcc -gcoff" when the
3826 compiler inserted code after the prologue to make sure the stack
3827 is aligned. */
3828 if (!force_skip && sym && start_sal.symtab == NULL)
3829 {
3830 pc = skip_prologue_using_lineinfo (pc, symbol_symtab (sym));
3831 /* Recalculate the line number. */
3832 start_sal = find_pc_sect_line (pc, section, 0);
3833 }
3834
3835 do_cleanups (old_chain);
3836
3837 /* If we're already past the prologue, leave SAL unchanged. Otherwise
3838 forward SAL to the end of the prologue. */
3839 if (sal->pc >= pc)
3840 return;
3841
3842 sal->pc = pc;
3843 sal->section = section;
3844
3845 /* Unless the explicit_line flag was set, update the SAL line
3846 and symtab to correspond to the modified PC location. */
3847 if (sal->explicit_line)
3848 return;
3849
3850 sal->symtab = start_sal.symtab;
3851 sal->line = start_sal.line;
3852 sal->end = start_sal.end;
3853
3854 /* Check if we are now inside an inlined function. If we can,
3855 use the call site of the function instead. */
3856 b = block_for_pc_sect (sal->pc, sal->section);
3857 function_block = NULL;
3858 while (b != NULL)
3859 {
3860 if (BLOCK_FUNCTION (b) != NULL && block_inlined_p (b))
3861 function_block = b;
3862 else if (BLOCK_FUNCTION (b) != NULL)
3863 break;
3864 b = BLOCK_SUPERBLOCK (b);
3865 }
3866 if (function_block != NULL
3867 && SYMBOL_LINE (BLOCK_FUNCTION (function_block)) != 0)
3868 {
3869 sal->line = SYMBOL_LINE (BLOCK_FUNCTION (function_block));
3870 sal->symtab = symbol_symtab (BLOCK_FUNCTION (function_block));
3871 }
3872 }
3873
3874 /* Given PC at the function's start address, attempt to find the
3875 prologue end using SAL information. Return zero if the skip fails.
3876
3877 A non-optimized prologue traditionally has one SAL for the function
3878 and a second for the function body. A single line function has
3879 them both pointing at the same line.
3880
3881 An optimized prologue is similar but the prologue may contain
3882 instructions (SALs) from the instruction body. Need to skip those
3883 while not getting into the function body.
3884
3885 The functions end point and an increasing SAL line are used as
3886 indicators of the prologue's endpoint.
3887
3888 This code is based on the function refine_prologue_limit
3889 (found in ia64). */
3890
3891 CORE_ADDR
3892 skip_prologue_using_sal (struct gdbarch *gdbarch, CORE_ADDR func_addr)
3893 {
3894 struct symtab_and_line prologue_sal;
3895 CORE_ADDR start_pc;
3896 CORE_ADDR end_pc;
3897 const struct block *bl;
3898
3899 /* Get an initial range for the function. */
3900 find_pc_partial_function (func_addr, NULL, &start_pc, &end_pc);
3901 start_pc += gdbarch_deprecated_function_start_offset (gdbarch);
3902
3903 prologue_sal = find_pc_line (start_pc, 0);
3904 if (prologue_sal.line != 0)
3905 {
3906 /* For languages other than assembly, treat two consecutive line
3907 entries at the same address as a zero-instruction prologue.
3908 The GNU assembler emits separate line notes for each instruction
3909 in a multi-instruction macro, but compilers generally will not
3910 do this. */
3911 if (prologue_sal.symtab->language != language_asm)
3912 {
3913 struct linetable *linetable = SYMTAB_LINETABLE (prologue_sal.symtab);
3914 int idx = 0;
3915
3916 /* Skip any earlier lines, and any end-of-sequence marker
3917 from a previous function. */
3918 while (linetable->item[idx].pc != prologue_sal.pc
3919 || linetable->item[idx].line == 0)
3920 idx++;
3921
3922 if (idx+1 < linetable->nitems
3923 && linetable->item[idx+1].line != 0
3924 && linetable->item[idx+1].pc == start_pc)
3925 return start_pc;
3926 }
3927
3928 /* If there is only one sal that covers the entire function,
3929 then it is probably a single line function, like
3930 "foo(){}". */
3931 if (prologue_sal.end >= end_pc)
3932 return 0;
3933
3934 while (prologue_sal.end < end_pc)
3935 {
3936 struct symtab_and_line sal;
3937
3938 sal = find_pc_line (prologue_sal.end, 0);
3939 if (sal.line == 0)
3940 break;
3941 /* Assume that a consecutive SAL for the same (or larger)
3942 line mark the prologue -> body transition. */
3943 if (sal.line >= prologue_sal.line)
3944 break;
3945 /* Likewise if we are in a different symtab altogether
3946 (e.g. within a file included via #include).  */
3947 if (sal.symtab != prologue_sal.symtab)
3948 break;
3949
3950 /* The line number is smaller. Check that it's from the
3951 same function, not something inlined. If it's inlined,
3952 then there is no point comparing the line numbers. */
3953 bl = block_for_pc (prologue_sal.end);
3954 while (bl)
3955 {
3956 if (block_inlined_p (bl))
3957 break;
3958 if (BLOCK_FUNCTION (bl))
3959 {
3960 bl = NULL;
3961 break;
3962 }
3963 bl = BLOCK_SUPERBLOCK (bl);
3964 }
3965 if (bl != NULL)
3966 break;
3967
3968 /* The case in which compiler's optimizer/scheduler has
3969 moved instructions into the prologue. We look ahead in
3970 the function looking for address ranges whose
3971 corresponding line number is less the first one that we
3972 found for the function. This is more conservative then
3973 refine_prologue_limit which scans a large number of SALs
3974 looking for any in the prologue. */
3975 prologue_sal = sal;
3976 }
3977 }
3978
3979 if (prologue_sal.end < end_pc)
3980 /* Return the end of this line, or zero if we could not find a
3981 line. */
3982 return prologue_sal.end;
3983 else
3984 /* Don't return END_PC, which is past the end of the function. */
3985 return prologue_sal.pc;
3986 }
3987 \f
3988 /* If P is of the form "operator[ \t]+..." where `...' is
3989 some legitimate operator text, return a pointer to the
3990 beginning of the substring of the operator text.
3991 Otherwise, return "". */
3992
3993 static const char *
3994 operator_chars (const char *p, const char **end)
3995 {
3996 *end = "";
3997 if (!startswith (p, "operator"))
3998 return *end;
3999 p += 8;
4000
4001 /* Don't get faked out by `operator' being part of a longer
4002 identifier. */
4003 if (isalpha (*p) || *p == '_' || *p == '$' || *p == '\0')
4004 return *end;
4005
4006 /* Allow some whitespace between `operator' and the operator symbol. */
4007 while (*p == ' ' || *p == '\t')
4008 p++;
4009
4010 /* Recognize 'operator TYPENAME'. */
4011
4012 if (isalpha (*p) || *p == '_' || *p == '$')
4013 {
4014 const char *q = p + 1;
4015
4016 while (isalnum (*q) || *q == '_' || *q == '$')
4017 q++;
4018 *end = q;
4019 return p;
4020 }
4021
4022 while (*p)
4023 switch (*p)
4024 {
4025 case '\\': /* regexp quoting */
4026 if (p[1] == '*')
4027 {
4028 if (p[2] == '=') /* 'operator\*=' */
4029 *end = p + 3;
4030 else /* 'operator\*' */
4031 *end = p + 2;
4032 return p;
4033 }
4034 else if (p[1] == '[')
4035 {
4036 if (p[2] == ']')
4037 error (_("mismatched quoting on brackets, "
4038 "try 'operator\\[\\]'"));
4039 else if (p[2] == '\\' && p[3] == ']')
4040 {
4041 *end = p + 4; /* 'operator\[\]' */
4042 return p;
4043 }
4044 else
4045 error (_("nothing is allowed between '[' and ']'"));
4046 }
4047 else
4048 {
4049 /* Gratuitous qoute: skip it and move on. */
4050 p++;
4051 continue;
4052 }
4053 break;
4054 case '!':
4055 case '=':
4056 case '*':
4057 case '/':
4058 case '%':
4059 case '^':
4060 if (p[1] == '=')
4061 *end = p + 2;
4062 else
4063 *end = p + 1;
4064 return p;
4065 case '<':
4066 case '>':
4067 case '+':
4068 case '-':
4069 case '&':
4070 case '|':
4071 if (p[0] == '-' && p[1] == '>')
4072 {
4073 /* Struct pointer member operator 'operator->'. */
4074 if (p[2] == '*')
4075 {
4076 *end = p + 3; /* 'operator->*' */
4077 return p;
4078 }
4079 else if (p[2] == '\\')
4080 {
4081 *end = p + 4; /* Hopefully 'operator->\*' */
4082 return p;
4083 }
4084 else
4085 {
4086 *end = p + 2; /* 'operator->' */
4087 return p;
4088 }
4089 }
4090 if (p[1] == '=' || p[1] == p[0])
4091 *end = p + 2;
4092 else
4093 *end = p + 1;
4094 return p;
4095 case '~':
4096 case ',':
4097 *end = p + 1;
4098 return p;
4099 case '(':
4100 if (p[1] != ')')
4101 error (_("`operator ()' must be specified "
4102 "without whitespace in `()'"));
4103 *end = p + 2;
4104 return p;
4105 case '?':
4106 if (p[1] != ':')
4107 error (_("`operator ?:' must be specified "
4108 "without whitespace in `?:'"));
4109 *end = p + 2;
4110 return p;
4111 case '[':
4112 if (p[1] != ']')
4113 error (_("`operator []' must be specified "
4114 "without whitespace in `[]'"));
4115 *end = p + 2;
4116 return p;
4117 default:
4118 error (_("`operator %s' not supported"), p);
4119 break;
4120 }
4121
4122 *end = "";
4123 return *end;
4124 }
4125 \f
4126
4127 /* Cache to watch for file names already seen by filename_seen. */
4128
4129 struct filename_seen_cache
4130 {
4131 /* Table of files seen so far. */
4132 htab_t tab;
4133 /* Initial size of the table. It automagically grows from here. */
4134 #define INITIAL_FILENAME_SEEN_CACHE_SIZE 100
4135 };
4136
4137 /* filename_seen_cache constructor. */
4138
4139 static struct filename_seen_cache *
4140 create_filename_seen_cache (void)
4141 {
4142 struct filename_seen_cache *cache = XNEW (struct filename_seen_cache);
4143
4144 cache->tab = htab_create_alloc (INITIAL_FILENAME_SEEN_CACHE_SIZE,
4145 filename_hash, filename_eq,
4146 NULL, xcalloc, xfree);
4147
4148 return cache;
4149 }
4150
4151 /* Empty the cache, but do not delete it. */
4152
4153 static void
4154 clear_filename_seen_cache (struct filename_seen_cache *cache)
4155 {
4156 htab_empty (cache->tab);
4157 }
4158
4159 /* filename_seen_cache destructor.
4160 This takes a void * argument as it is generally used as a cleanup. */
4161
4162 static void
4163 delete_filename_seen_cache (void *ptr)
4164 {
4165 struct filename_seen_cache *cache = ptr;
4166
4167 htab_delete (cache->tab);
4168 xfree (cache);
4169 }
4170
4171 /* If FILE is not already in the table of files in CACHE, return zero;
4172 otherwise return non-zero. Optionally add FILE to the table if ADD
4173 is non-zero.
4174
4175 NOTE: We don't manage space for FILE, we assume FILE lives as long
4176 as the caller needs. */
4177
4178 static int
4179 filename_seen (struct filename_seen_cache *cache, const char *file, int add)
4180 {
4181 void **slot;
4182
4183 /* Is FILE in tab? */
4184 slot = htab_find_slot (cache->tab, file, add ? INSERT : NO_INSERT);
4185 if (*slot != NULL)
4186 return 1;
4187
4188 /* No; maybe add it to tab. */
4189 if (add)
4190 *slot = (char *) file;
4191
4192 return 0;
4193 }
4194
4195 /* Data structure to maintain printing state for output_source_filename. */
4196
4197 struct output_source_filename_data
4198 {
4199 /* Cache of what we've seen so far. */
4200 struct filename_seen_cache *filename_seen_cache;
4201
4202 /* Flag of whether we're printing the first one. */
4203 int first;
4204 };
4205
4206 /* Slave routine for sources_info. Force line breaks at ,'s.
4207 NAME is the name to print.
4208 DATA contains the state for printing and watching for duplicates. */
4209
4210 static void
4211 output_source_filename (const char *name,
4212 struct output_source_filename_data *data)
4213 {
4214 /* Since a single source file can result in several partial symbol
4215 tables, we need to avoid printing it more than once. Note: if
4216 some of the psymtabs are read in and some are not, it gets
4217 printed both under "Source files for which symbols have been
4218 read" and "Source files for which symbols will be read in on
4219 demand". I consider this a reasonable way to deal with the
4220 situation. I'm not sure whether this can also happen for
4221 symtabs; it doesn't hurt to check. */
4222
4223 /* Was NAME already seen? */
4224 if (filename_seen (data->filename_seen_cache, name, 1))
4225 {
4226 /* Yes; don't print it again. */
4227 return;
4228 }
4229
4230 /* No; print it and reset *FIRST. */
4231 if (! data->first)
4232 printf_filtered (", ");
4233 data->first = 0;
4234
4235 wrap_here ("");
4236 fputs_filtered (name, gdb_stdout);
4237 }
4238
4239 /* A callback for map_partial_symbol_filenames. */
4240
4241 static void
4242 output_partial_symbol_filename (const char *filename, const char *fullname,
4243 void *data)
4244 {
4245 output_source_filename (fullname ? fullname : filename, data);
4246 }
4247
4248 static void
4249 sources_info (char *ignore, int from_tty)
4250 {
4251 struct compunit_symtab *cu;
4252 struct symtab *s;
4253 struct objfile *objfile;
4254 struct output_source_filename_data data;
4255 struct cleanup *cleanups;
4256
4257 if (!have_full_symbols () && !have_partial_symbols ())
4258 {
4259 error (_("No symbol table is loaded. Use the \"file\" command."));
4260 }
4261
4262 data.filename_seen_cache = create_filename_seen_cache ();
4263 cleanups = make_cleanup (delete_filename_seen_cache,
4264 data.filename_seen_cache);
4265
4266 printf_filtered ("Source files for which symbols have been read in:\n\n");
4267
4268 data.first = 1;
4269 ALL_FILETABS (objfile, cu, s)
4270 {
4271 const char *fullname = symtab_to_fullname (s);
4272
4273 output_source_filename (fullname, &data);
4274 }
4275 printf_filtered ("\n\n");
4276
4277 printf_filtered ("Source files for which symbols "
4278 "will be read in on demand:\n\n");
4279
4280 clear_filename_seen_cache (data.filename_seen_cache);
4281 data.first = 1;
4282 map_symbol_filenames (output_partial_symbol_filename, &data,
4283 1 /*need_fullname*/);
4284 printf_filtered ("\n");
4285
4286 do_cleanups (cleanups);
4287 }
4288
4289 /* Compare FILE against all the NFILES entries of FILES. If BASENAMES is
4290 non-zero compare only lbasename of FILES. */
4291
4292 static int
4293 file_matches (const char *file, const char *files[], int nfiles, int basenames)
4294 {
4295 int i;
4296
4297 if (file != NULL && nfiles != 0)
4298 {
4299 for (i = 0; i < nfiles; i++)
4300 {
4301 if (compare_filenames_for_search (file, (basenames
4302 ? lbasename (files[i])
4303 : files[i])))
4304 return 1;
4305 }
4306 }
4307 else if (nfiles == 0)
4308 return 1;
4309 return 0;
4310 }
4311
4312 /* Free any memory associated with a search. */
4313
4314 void
4315 free_search_symbols (struct symbol_search *symbols)
4316 {
4317 struct symbol_search *p;
4318 struct symbol_search *next;
4319
4320 for (p = symbols; p != NULL; p = next)
4321 {
4322 next = p->next;
4323 xfree (p);
4324 }
4325 }
4326
4327 static void
4328 do_free_search_symbols_cleanup (void *symbolsp)
4329 {
4330 struct symbol_search *symbols = *(struct symbol_search **) symbolsp;
4331
4332 free_search_symbols (symbols);
4333 }
4334
4335 struct cleanup *
4336 make_cleanup_free_search_symbols (struct symbol_search **symbolsp)
4337 {
4338 return make_cleanup (do_free_search_symbols_cleanup, symbolsp);
4339 }
4340
4341 /* Helper function for sort_search_symbols_remove_dups and qsort. Can only
4342 sort symbols, not minimal symbols. */
4343
4344 static int
4345 compare_search_syms (const void *sa, const void *sb)
4346 {
4347 struct symbol_search *sym_a = *(struct symbol_search **) sa;
4348 struct symbol_search *sym_b = *(struct symbol_search **) sb;
4349 int c;
4350
4351 c = FILENAME_CMP (symbol_symtab (sym_a->symbol)->filename,
4352 symbol_symtab (sym_b->symbol)->filename);
4353 if (c != 0)
4354 return c;
4355
4356 if (sym_a->block != sym_b->block)
4357 return sym_a->block - sym_b->block;
4358
4359 return strcmp (SYMBOL_PRINT_NAME (sym_a->symbol),
4360 SYMBOL_PRINT_NAME (sym_b->symbol));
4361 }
4362
4363 /* Sort the NFOUND symbols in list FOUND and remove duplicates.
4364 The duplicates are freed, and the new list is returned in
4365 *NEW_HEAD, *NEW_TAIL. */
4366
4367 static void
4368 sort_search_symbols_remove_dups (struct symbol_search *found, int nfound,
4369 struct symbol_search **new_head,
4370 struct symbol_search **new_tail)
4371 {
4372 struct symbol_search **symbols, *symp, *old_next;
4373 int i, j, nunique;
4374
4375 gdb_assert (found != NULL && nfound > 0);
4376
4377 /* Build an array out of the list so we can easily sort them. */
4378 symbols = XNEWVEC (struct symbol_search *, nfound);
4379
4380 symp = found;
4381 for (i = 0; i < nfound; i++)
4382 {
4383 gdb_assert (symp != NULL);
4384 gdb_assert (symp->block >= 0 && symp->block <= 1);
4385 symbols[i] = symp;
4386 symp = symp->next;
4387 }
4388 gdb_assert (symp == NULL);
4389
4390 qsort (symbols, nfound, sizeof (struct symbol_search *),
4391 compare_search_syms);
4392
4393 /* Collapse out the dups. */
4394 for (i = 1, j = 1; i < nfound; ++i)
4395 {
4396 if (compare_search_syms (&symbols[j - 1], &symbols[i]) != 0)
4397 symbols[j++] = symbols[i];
4398 else
4399 xfree (symbols[i]);
4400 }
4401 nunique = j;
4402 symbols[j - 1]->next = NULL;
4403
4404 /* Rebuild the linked list. */
4405 for (i = 0; i < nunique - 1; i++)
4406 symbols[i]->next = symbols[i + 1];
4407 symbols[nunique - 1]->next = NULL;
4408
4409 *new_head = symbols[0];
4410 *new_tail = symbols[nunique - 1];
4411 xfree (symbols);
4412 }
4413
4414 /* An object of this type is passed as the user_data to the
4415 expand_symtabs_matching method. */
4416 struct search_symbols_data
4417 {
4418 int nfiles;
4419 const char **files;
4420
4421 /* It is true if PREG contains valid data, false otherwise. */
4422 unsigned preg_p : 1;
4423 regex_t preg;
4424 };
4425
4426 /* A callback for expand_symtabs_matching. */
4427
4428 static int
4429 search_symbols_file_matches (const char *filename, void *user_data,
4430 int basenames)
4431 {
4432 struct search_symbols_data *data = user_data;
4433
4434 return file_matches (filename, data->files, data->nfiles, basenames);
4435 }
4436
4437 /* A callback for expand_symtabs_matching. */
4438
4439 static int
4440 search_symbols_name_matches (const char *symname, void *user_data)
4441 {
4442 struct search_symbols_data *data = user_data;
4443
4444 return !data->preg_p || regexec (&data->preg, symname, 0, NULL, 0) == 0;
4445 }
4446
4447 /* Search the symbol table for matches to the regular expression REGEXP,
4448 returning the results in *MATCHES.
4449
4450 Only symbols of KIND are searched:
4451 VARIABLES_DOMAIN - search all symbols, excluding functions, type names,
4452 and constants (enums)
4453 FUNCTIONS_DOMAIN - search all functions
4454 TYPES_DOMAIN - search all type names
4455 ALL_DOMAIN - an internal error for this function
4456
4457 free_search_symbols should be called when *MATCHES is no longer needed.
4458
4459 Within each file the results are sorted locally; each symtab's global and
4460 static blocks are separately alphabetized.
4461 Duplicate entries are removed. */
4462
4463 void
4464 search_symbols (const char *regexp, enum search_domain kind,
4465 int nfiles, const char *files[],
4466 struct symbol_search **matches)
4467 {
4468 struct compunit_symtab *cust;
4469 const struct blockvector *bv;
4470 struct block *b;
4471 int i = 0;
4472 struct block_iterator iter;
4473 struct symbol *sym;
4474 struct objfile *objfile;
4475 struct minimal_symbol *msymbol;
4476 int found_misc = 0;
4477 static const enum minimal_symbol_type types[]
4478 = {mst_data, mst_text, mst_abs};
4479 static const enum minimal_symbol_type types2[]
4480 = {mst_bss, mst_file_text, mst_abs};
4481 static const enum minimal_symbol_type types3[]
4482 = {mst_file_data, mst_solib_trampoline, mst_abs};
4483 static const enum minimal_symbol_type types4[]
4484 = {mst_file_bss, mst_text_gnu_ifunc, mst_abs};
4485 enum minimal_symbol_type ourtype;
4486 enum minimal_symbol_type ourtype2;
4487 enum minimal_symbol_type ourtype3;
4488 enum minimal_symbol_type ourtype4;
4489 struct symbol_search *found;
4490 struct symbol_search *tail;
4491 struct search_symbols_data datum;
4492 int nfound;
4493
4494 /* OLD_CHAIN .. RETVAL_CHAIN is always freed, RETVAL_CHAIN .. current
4495 CLEANUP_CHAIN is freed only in the case of an error. */
4496 struct cleanup *old_chain = make_cleanup (null_cleanup, NULL);
4497 struct cleanup *retval_chain;
4498
4499 gdb_assert (kind <= TYPES_DOMAIN);
4500
4501 ourtype = types[kind];
4502 ourtype2 = types2[kind];
4503 ourtype3 = types3[kind];
4504 ourtype4 = types4[kind];
4505
4506 *matches = NULL;
4507 datum.preg_p = 0;
4508
4509 if (regexp != NULL)
4510 {
4511 /* Make sure spacing is right for C++ operators.
4512 This is just a courtesy to make the matching less sensitive
4513 to how many spaces the user leaves between 'operator'
4514 and <TYPENAME> or <OPERATOR>. */
4515 const char *opend;
4516 const char *opname = operator_chars (regexp, &opend);
4517 int errcode;
4518
4519 if (*opname)
4520 {
4521 int fix = -1; /* -1 means ok; otherwise number of
4522 spaces needed. */
4523
4524 if (isalpha (*opname) || *opname == '_' || *opname == '$')
4525 {
4526 /* There should 1 space between 'operator' and 'TYPENAME'. */
4527 if (opname[-1] != ' ' || opname[-2] == ' ')
4528 fix = 1;
4529 }
4530 else
4531 {
4532 /* There should 0 spaces between 'operator' and 'OPERATOR'. */
4533 if (opname[-1] == ' ')
4534 fix = 0;
4535 }
4536 /* If wrong number of spaces, fix it. */
4537 if (fix >= 0)
4538 {
4539 char *tmp = (char *) alloca (8 + fix + strlen (opname) + 1);
4540
4541 sprintf (tmp, "operator%.*s%s", fix, " ", opname);
4542 regexp = tmp;
4543 }
4544 }
4545
4546 errcode = regcomp (&datum.preg, regexp,
4547 REG_NOSUB | (case_sensitivity == case_sensitive_off
4548 ? REG_ICASE : 0));
4549 if (errcode != 0)
4550 {
4551 char *err = get_regcomp_error (errcode, &datum.preg);
4552
4553 make_cleanup (xfree, err);
4554 error (_("Invalid regexp (%s): %s"), err, regexp);
4555 }
4556 datum.preg_p = 1;
4557 make_regfree_cleanup (&datum.preg);
4558 }
4559
4560 /* Search through the partial symtabs *first* for all symbols
4561 matching the regexp. That way we don't have to reproduce all of
4562 the machinery below. */
4563
4564 datum.nfiles = nfiles;
4565 datum.files = files;
4566 expand_symtabs_matching ((nfiles == 0
4567 ? NULL
4568 : search_symbols_file_matches),
4569 search_symbols_name_matches,
4570 NULL, kind, &datum);
4571
4572 /* Here, we search through the minimal symbol tables for functions
4573 and variables that match, and force their symbols to be read.
4574 This is in particular necessary for demangled variable names,
4575 which are no longer put into the partial symbol tables.
4576 The symbol will then be found during the scan of symtabs below.
4577
4578 For functions, find_pc_symtab should succeed if we have debug info
4579 for the function, for variables we have to call
4580 lookup_symbol_in_objfile_from_linkage_name to determine if the variable
4581 has debug info.
4582 If the lookup fails, set found_misc so that we will rescan to print
4583 any matching symbols without debug info.
4584 We only search the objfile the msymbol came from, we no longer search
4585 all objfiles. In large programs (1000s of shared libs) searching all
4586 objfiles is not worth the pain. */
4587
4588 if (nfiles == 0 && (kind == VARIABLES_DOMAIN || kind == FUNCTIONS_DOMAIN))
4589 {
4590 ALL_MSYMBOLS (objfile, msymbol)
4591 {
4592 QUIT;
4593
4594 if (msymbol->created_by_gdb)
4595 continue;
4596
4597 if (MSYMBOL_TYPE (msymbol) == ourtype
4598 || MSYMBOL_TYPE (msymbol) == ourtype2
4599 || MSYMBOL_TYPE (msymbol) == ourtype3
4600 || MSYMBOL_TYPE (msymbol) == ourtype4)
4601 {
4602 if (!datum.preg_p
4603 || regexec (&datum.preg, MSYMBOL_NATURAL_NAME (msymbol), 0,
4604 NULL, 0) == 0)
4605 {
4606 /* Note: An important side-effect of these lookup functions
4607 is to expand the symbol table if msymbol is found, for the
4608 benefit of the next loop on ALL_COMPUNITS. */
4609 if (kind == FUNCTIONS_DOMAIN
4610 ? (find_pc_compunit_symtab
4611 (MSYMBOL_VALUE_ADDRESS (objfile, msymbol)) == NULL)
4612 : (lookup_symbol_in_objfile_from_linkage_name
4613 (objfile, MSYMBOL_LINKAGE_NAME (msymbol), VAR_DOMAIN)
4614 .symbol == NULL))
4615 found_misc = 1;
4616 }
4617 }
4618 }
4619 }
4620
4621 found = NULL;
4622 tail = NULL;
4623 nfound = 0;
4624 retval_chain = make_cleanup_free_search_symbols (&found);
4625
4626 ALL_COMPUNITS (objfile, cust)
4627 {
4628 bv = COMPUNIT_BLOCKVECTOR (cust);
4629 for (i = GLOBAL_BLOCK; i <= STATIC_BLOCK; i++)
4630 {
4631 b = BLOCKVECTOR_BLOCK (bv, i);
4632 ALL_BLOCK_SYMBOLS (b, iter, sym)
4633 {
4634 struct symtab *real_symtab = symbol_symtab (sym);
4635
4636 QUIT;
4637
4638 /* Check first sole REAL_SYMTAB->FILENAME. It does not need to be
4639 a substring of symtab_to_fullname as it may contain "./" etc. */
4640 if ((file_matches (real_symtab->filename, files, nfiles, 0)
4641 || ((basenames_may_differ
4642 || file_matches (lbasename (real_symtab->filename),
4643 files, nfiles, 1))
4644 && file_matches (symtab_to_fullname (real_symtab),
4645 files, nfiles, 0)))
4646 && ((!datum.preg_p
4647 || regexec (&datum.preg, SYMBOL_NATURAL_NAME (sym), 0,
4648 NULL, 0) == 0)
4649 && ((kind == VARIABLES_DOMAIN
4650 && SYMBOL_CLASS (sym) != LOC_TYPEDEF
4651 && SYMBOL_CLASS (sym) != LOC_UNRESOLVED
4652 && SYMBOL_CLASS (sym) != LOC_BLOCK
4653 /* LOC_CONST can be used for more than just enums,
4654 e.g., c++ static const members.
4655 We only want to skip enums here. */
4656 && !(SYMBOL_CLASS (sym) == LOC_CONST
4657 && (TYPE_CODE (SYMBOL_TYPE (sym))
4658 == TYPE_CODE_ENUM)))
4659 || (kind == FUNCTIONS_DOMAIN
4660 && SYMBOL_CLASS (sym) == LOC_BLOCK)
4661 || (kind == TYPES_DOMAIN
4662 && SYMBOL_CLASS (sym) == LOC_TYPEDEF))))
4663 {
4664 /* match */
4665 struct symbol_search *psr = XCNEW (struct symbol_search);
4666
4667 psr->block = i;
4668 psr->symbol = sym;
4669 psr->next = NULL;
4670 if (tail == NULL)
4671 found = psr;
4672 else
4673 tail->next = psr;
4674 tail = psr;
4675 nfound ++;
4676 }
4677 }
4678 }
4679 }
4680
4681 if (found != NULL)
4682 {
4683 sort_search_symbols_remove_dups (found, nfound, &found, &tail);
4684 /* Note: nfound is no longer useful beyond this point. */
4685 }
4686
4687 /* If there are no eyes, avoid all contact. I mean, if there are
4688 no debug symbols, then add matching minsyms. */
4689
4690 if (found_misc || (nfiles == 0 && kind != FUNCTIONS_DOMAIN))
4691 {
4692 ALL_MSYMBOLS (objfile, msymbol)
4693 {
4694 QUIT;
4695
4696 if (msymbol->created_by_gdb)
4697 continue;
4698
4699 if (MSYMBOL_TYPE (msymbol) == ourtype
4700 || MSYMBOL_TYPE (msymbol) == ourtype2
4701 || MSYMBOL_TYPE (msymbol) == ourtype3
4702 || MSYMBOL_TYPE (msymbol) == ourtype4)
4703 {
4704 if (!datum.preg_p
4705 || regexec (&datum.preg, MSYMBOL_NATURAL_NAME (msymbol), 0,
4706 NULL, 0) == 0)
4707 {
4708 /* For functions we can do a quick check of whether the
4709 symbol might be found via find_pc_symtab. */
4710 if (kind != FUNCTIONS_DOMAIN
4711 || (find_pc_compunit_symtab
4712 (MSYMBOL_VALUE_ADDRESS (objfile, msymbol)) == NULL))
4713 {
4714 if (lookup_symbol_in_objfile_from_linkage_name
4715 (objfile, MSYMBOL_LINKAGE_NAME (msymbol), VAR_DOMAIN)
4716 .symbol == NULL)
4717 {
4718 /* match */
4719 struct symbol_search *psr = XNEW (struct symbol_search);
4720 psr->block = i;
4721 psr->msymbol.minsym = msymbol;
4722 psr->msymbol.objfile = objfile;
4723 psr->symbol = NULL;
4724 psr->next = NULL;
4725 if (tail == NULL)
4726 found = psr;
4727 else
4728 tail->next = psr;
4729 tail = psr;
4730 }
4731 }
4732 }
4733 }
4734 }
4735 }
4736
4737 discard_cleanups (retval_chain);
4738 do_cleanups (old_chain);
4739 *matches = found;
4740 }
4741
4742 /* Helper function for symtab_symbol_info, this function uses
4743 the data returned from search_symbols() to print information
4744 regarding the match to gdb_stdout. */
4745
4746 static void
4747 print_symbol_info (enum search_domain kind,
4748 struct symbol *sym,
4749 int block, const char *last)
4750 {
4751 struct symtab *s = symbol_symtab (sym);
4752 const char *s_filename = symtab_to_filename_for_display (s);
4753
4754 if (last == NULL || filename_cmp (last, s_filename) != 0)
4755 {
4756 fputs_filtered ("\nFile ", gdb_stdout);
4757 fputs_filtered (s_filename, gdb_stdout);
4758 fputs_filtered (":\n", gdb_stdout);
4759 }
4760
4761 if (kind != TYPES_DOMAIN && block == STATIC_BLOCK)
4762 printf_filtered ("static ");
4763
4764 /* Typedef that is not a C++ class. */
4765 if (kind == TYPES_DOMAIN
4766 && SYMBOL_DOMAIN (sym) != STRUCT_DOMAIN)
4767 typedef_print (SYMBOL_TYPE (sym), sym, gdb_stdout);
4768 /* variable, func, or typedef-that-is-c++-class. */
4769 else if (kind < TYPES_DOMAIN
4770 || (kind == TYPES_DOMAIN
4771 && SYMBOL_DOMAIN (sym) == STRUCT_DOMAIN))
4772 {
4773 type_print (SYMBOL_TYPE (sym),
4774 (SYMBOL_CLASS (sym) == LOC_TYPEDEF
4775 ? "" : SYMBOL_PRINT_NAME (sym)),
4776 gdb_stdout, 0);
4777
4778 printf_filtered (";\n");
4779 }
4780 }
4781
4782 /* This help function for symtab_symbol_info() prints information
4783 for non-debugging symbols to gdb_stdout. */
4784
4785 static void
4786 print_msymbol_info (struct bound_minimal_symbol msymbol)
4787 {
4788 struct gdbarch *gdbarch = get_objfile_arch (msymbol.objfile);
4789 char *tmp;
4790
4791 if (gdbarch_addr_bit (gdbarch) <= 32)
4792 tmp = hex_string_custom (BMSYMBOL_VALUE_ADDRESS (msymbol)
4793 & (CORE_ADDR) 0xffffffff,
4794 8);
4795 else
4796 tmp = hex_string_custom (BMSYMBOL_VALUE_ADDRESS (msymbol),
4797 16);
4798 printf_filtered ("%s %s\n",
4799 tmp, MSYMBOL_PRINT_NAME (msymbol.minsym));
4800 }
4801
4802 /* This is the guts of the commands "info functions", "info types", and
4803 "info variables". It calls search_symbols to find all matches and then
4804 print_[m]symbol_info to print out some useful information about the
4805 matches. */
4806
4807 static void
4808 symtab_symbol_info (char *regexp, enum search_domain kind, int from_tty)
4809 {
4810 static const char * const classnames[] =
4811 {"variable", "function", "type"};
4812 struct symbol_search *symbols;
4813 struct symbol_search *p;
4814 struct cleanup *old_chain;
4815 const char *last_filename = NULL;
4816 int first = 1;
4817
4818 gdb_assert (kind <= TYPES_DOMAIN);
4819
4820 /* Must make sure that if we're interrupted, symbols gets freed. */
4821 search_symbols (regexp, kind, 0, NULL, &symbols);
4822 old_chain = make_cleanup_free_search_symbols (&symbols);
4823
4824 if (regexp != NULL)
4825 printf_filtered (_("All %ss matching regular expression \"%s\":\n"),
4826 classnames[kind], regexp);
4827 else
4828 printf_filtered (_("All defined %ss:\n"), classnames[kind]);
4829
4830 for (p = symbols; p != NULL; p = p->next)
4831 {
4832 QUIT;
4833
4834 if (p->msymbol.minsym != NULL)
4835 {
4836 if (first)
4837 {
4838 printf_filtered (_("\nNon-debugging symbols:\n"));
4839 first = 0;
4840 }
4841 print_msymbol_info (p->msymbol);
4842 }
4843 else
4844 {
4845 print_symbol_info (kind,
4846 p->symbol,
4847 p->block,
4848 last_filename);
4849 last_filename
4850 = symtab_to_filename_for_display (symbol_symtab (p->symbol));
4851 }
4852 }
4853
4854 do_cleanups (old_chain);
4855 }
4856
4857 static void
4858 variables_info (char *regexp, int from_tty)
4859 {
4860 symtab_symbol_info (regexp, VARIABLES_DOMAIN, from_tty);
4861 }
4862
4863 static void
4864 functions_info (char *regexp, int from_tty)
4865 {
4866 symtab_symbol_info (regexp, FUNCTIONS_DOMAIN, from_tty);
4867 }
4868
4869
4870 static void
4871 types_info (char *regexp, int from_tty)
4872 {
4873 symtab_symbol_info (regexp, TYPES_DOMAIN, from_tty);
4874 }
4875
4876 /* Breakpoint all functions matching regular expression. */
4877
4878 void
4879 rbreak_command_wrapper (char *regexp, int from_tty)
4880 {
4881 rbreak_command (regexp, from_tty);
4882 }
4883
4884 /* A cleanup function that calls end_rbreak_breakpoints. */
4885
4886 static void
4887 do_end_rbreak_breakpoints (void *ignore)
4888 {
4889 end_rbreak_breakpoints ();
4890 }
4891
4892 static void
4893 rbreak_command (char *regexp, int from_tty)
4894 {
4895 struct symbol_search *ss;
4896 struct symbol_search *p;
4897 struct cleanup *old_chain;
4898 char *string = NULL;
4899 int len = 0;
4900 const char **files = NULL;
4901 const char *file_name;
4902 int nfiles = 0;
4903
4904 if (regexp)
4905 {
4906 char *colon = strchr (regexp, ':');
4907
4908 if (colon && *(colon + 1) != ':')
4909 {
4910 int colon_index;
4911 char *local_name;
4912
4913 colon_index = colon - regexp;
4914 local_name = alloca (colon_index + 1);
4915 memcpy (local_name, regexp, colon_index);
4916 local_name[colon_index--] = 0;
4917 while (isspace (local_name[colon_index]))
4918 local_name[colon_index--] = 0;
4919 file_name = local_name;
4920 files = &file_name;
4921 nfiles = 1;
4922 regexp = skip_spaces (colon + 1);
4923 }
4924 }
4925
4926 search_symbols (regexp, FUNCTIONS_DOMAIN, nfiles, files, &ss);
4927 old_chain = make_cleanup_free_search_symbols (&ss);
4928 make_cleanup (free_current_contents, &string);
4929
4930 start_rbreak_breakpoints ();
4931 make_cleanup (do_end_rbreak_breakpoints, NULL);
4932 for (p = ss; p != NULL; p = p->next)
4933 {
4934 if (p->msymbol.minsym == NULL)
4935 {
4936 struct symtab *symtab = symbol_symtab (p->symbol);
4937 const char *fullname = symtab_to_fullname (symtab);
4938
4939 int newlen = (strlen (fullname)
4940 + strlen (SYMBOL_LINKAGE_NAME (p->symbol))
4941 + 4);
4942
4943 if (newlen > len)
4944 {
4945 string = xrealloc (string, newlen);
4946 len = newlen;
4947 }
4948 strcpy (string, fullname);
4949 strcat (string, ":'");
4950 strcat (string, SYMBOL_LINKAGE_NAME (p->symbol));
4951 strcat (string, "'");
4952 break_command (string, from_tty);
4953 print_symbol_info (FUNCTIONS_DOMAIN,
4954 p->symbol,
4955 p->block,
4956 symtab_to_filename_for_display (symtab));
4957 }
4958 else
4959 {
4960 int newlen = (strlen (MSYMBOL_LINKAGE_NAME (p->msymbol.minsym)) + 3);
4961
4962 if (newlen > len)
4963 {
4964 string = xrealloc (string, newlen);
4965 len = newlen;
4966 }
4967 strcpy (string, "'");
4968 strcat (string, MSYMBOL_LINKAGE_NAME (p->msymbol.minsym));
4969 strcat (string, "'");
4970
4971 break_command (string, from_tty);
4972 printf_filtered ("<function, no debug info> %s;\n",
4973 MSYMBOL_PRINT_NAME (p->msymbol.minsym));
4974 }
4975 }
4976
4977 do_cleanups (old_chain);
4978 }
4979 \f
4980
4981 /* Evaluate if NAME matches SYM_TEXT and SYM_TEXT_LEN.
4982
4983 Either sym_text[sym_text_len] != '(' and then we search for any
4984 symbol starting with SYM_TEXT text.
4985
4986 Otherwise sym_text[sym_text_len] == '(' and then we require symbol name to
4987 be terminated at that point. Partial symbol tables do not have parameters
4988 information. */
4989
4990 static int
4991 compare_symbol_name (const char *name, const char *sym_text, int sym_text_len)
4992 {
4993 int (*ncmp) (const char *, const char *, size_t);
4994
4995 ncmp = (case_sensitivity == case_sensitive_on ? strncmp : strncasecmp);
4996
4997 if (ncmp (name, sym_text, sym_text_len) != 0)
4998 return 0;
4999
5000 if (sym_text[sym_text_len] == '(')
5001 {
5002 /* User searches for `name(someth...'. Require NAME to be terminated.
5003 Normally psymtabs and gdbindex have no parameter types so '\0' will be
5004 present but accept even parameters presence. In this case this
5005 function is in fact strcmp_iw but whitespace skipping is not supported
5006 for tab completion. */
5007
5008 if (name[sym_text_len] != '\0' && name[sym_text_len] != '(')
5009 return 0;
5010 }
5011
5012 return 1;
5013 }
5014
5015 /* Free any memory associated with a completion list. */
5016
5017 static void
5018 free_completion_list (VEC (char_ptr) **list_ptr)
5019 {
5020 int i;
5021 char *p;
5022
5023 for (i = 0; VEC_iterate (char_ptr, *list_ptr, i, p); ++i)
5024 xfree (p);
5025 VEC_free (char_ptr, *list_ptr);
5026 }
5027
5028 /* Callback for make_cleanup. */
5029
5030 static void
5031 do_free_completion_list (void *list)
5032 {
5033 free_completion_list (list);
5034 }
5035
5036 /* Helper routine for make_symbol_completion_list. */
5037
5038 static VEC (char_ptr) *return_val;
5039
5040 #define COMPLETION_LIST_ADD_SYMBOL(symbol, sym_text, len, text, word) \
5041 completion_list_add_name \
5042 (SYMBOL_NATURAL_NAME (symbol), (sym_text), (len), (text), (word))
5043
5044 #define MCOMPLETION_LIST_ADD_SYMBOL(symbol, sym_text, len, text, word) \
5045 completion_list_add_name \
5046 (MSYMBOL_NATURAL_NAME (symbol), (sym_text), (len), (text), (word))
5047
5048 /* Tracker for how many unique completions have been generated. Used
5049 to terminate completion list generation early if the list has grown
5050 to a size so large as to be useless. This helps avoid GDB seeming
5051 to lock up in the event the user requests to complete on something
5052 vague that necessitates the time consuming expansion of many symbol
5053 tables. */
5054
5055 static completion_tracker_t completion_tracker;
5056
5057 /* Test to see if the symbol specified by SYMNAME (which is already
5058 demangled for C++ symbols) matches SYM_TEXT in the first SYM_TEXT_LEN
5059 characters. If so, add it to the current completion list. */
5060
5061 static void
5062 completion_list_add_name (const char *symname,
5063 const char *sym_text, int sym_text_len,
5064 const char *text, const char *word)
5065 {
5066 /* Clip symbols that cannot match. */
5067 if (!compare_symbol_name (symname, sym_text, sym_text_len))
5068 return;
5069
5070 /* We have a match for a completion, so add SYMNAME to the current list
5071 of matches. Note that the name is moved to freshly malloc'd space. */
5072
5073 {
5074 char *newobj;
5075 enum maybe_add_completion_enum add_status;
5076
5077 if (word == sym_text)
5078 {
5079 newobj = xmalloc (strlen (symname) + 5);
5080 strcpy (newobj, symname);
5081 }
5082 else if (word > sym_text)
5083 {
5084 /* Return some portion of symname. */
5085 newobj = xmalloc (strlen (symname) + 5);
5086 strcpy (newobj, symname + (word - sym_text));
5087 }
5088 else
5089 {
5090 /* Return some of SYM_TEXT plus symname. */
5091 newobj = xmalloc (strlen (symname) + (sym_text - word) + 5);
5092 strncpy (newobj, word, sym_text - word);
5093 newobj[sym_text - word] = '\0';
5094 strcat (newobj, symname);
5095 }
5096
5097 add_status = maybe_add_completion (completion_tracker, newobj);
5098
5099 switch (add_status)
5100 {
5101 case MAYBE_ADD_COMPLETION_OK:
5102 VEC_safe_push (char_ptr, return_val, newobj);
5103 break;
5104 case MAYBE_ADD_COMPLETION_OK_MAX_REACHED:
5105 VEC_safe_push (char_ptr, return_val, newobj);
5106 throw_max_completions_reached_error ();
5107 case MAYBE_ADD_COMPLETION_MAX_REACHED:
5108 xfree (newobj);
5109 throw_max_completions_reached_error ();
5110 case MAYBE_ADD_COMPLETION_DUPLICATE:
5111 xfree (newobj);
5112 break;
5113 }
5114 }
5115 }
5116
5117 /* ObjC: In case we are completing on a selector, look as the msymbol
5118 again and feed all the selectors into the mill. */
5119
5120 static void
5121 completion_list_objc_symbol (struct minimal_symbol *msymbol,
5122 const char *sym_text, int sym_text_len,
5123 const char *text, const char *word)
5124 {
5125 static char *tmp = NULL;
5126 static unsigned int tmplen = 0;
5127
5128 const char *method, *category, *selector;
5129 char *tmp2 = NULL;
5130
5131 method = MSYMBOL_NATURAL_NAME (msymbol);
5132
5133 /* Is it a method? */
5134 if ((method[0] != '-') && (method[0] != '+'))
5135 return;
5136
5137 if (sym_text[0] == '[')
5138 /* Complete on shortened method method. */
5139 completion_list_add_name (method + 1, sym_text, sym_text_len, text, word);
5140
5141 while ((strlen (method) + 1) >= tmplen)
5142 {
5143 if (tmplen == 0)
5144 tmplen = 1024;
5145 else
5146 tmplen *= 2;
5147 tmp = xrealloc (tmp, tmplen);
5148 }
5149 selector = strchr (method, ' ');
5150 if (selector != NULL)
5151 selector++;
5152
5153 category = strchr (method, '(');
5154
5155 if ((category != NULL) && (selector != NULL))
5156 {
5157 memcpy (tmp, method, (category - method));
5158 tmp[category - method] = ' ';
5159 memcpy (tmp + (category - method) + 1, selector, strlen (selector) + 1);
5160 completion_list_add_name (tmp, sym_text, sym_text_len, text, word);
5161 if (sym_text[0] == '[')
5162 completion_list_add_name (tmp + 1, sym_text, sym_text_len, text, word);
5163 }
5164
5165 if (selector != NULL)
5166 {
5167 /* Complete on selector only. */
5168 strcpy (tmp, selector);
5169 tmp2 = strchr (tmp, ']');
5170 if (tmp2 != NULL)
5171 *tmp2 = '\0';
5172
5173 completion_list_add_name (tmp, sym_text, sym_text_len, text, word);
5174 }
5175 }
5176
5177 /* Break the non-quoted text based on the characters which are in
5178 symbols. FIXME: This should probably be language-specific. */
5179
5180 static const char *
5181 language_search_unquoted_string (const char *text, const char *p)
5182 {
5183 for (; p > text; --p)
5184 {
5185 if (isalnum (p[-1]) || p[-1] == '_' || p[-1] == '\0')
5186 continue;
5187 else
5188 {
5189 if ((current_language->la_language == language_objc))
5190 {
5191 if (p[-1] == ':') /* Might be part of a method name. */
5192 continue;
5193 else if (p[-1] == '[' && (p[-2] == '-' || p[-2] == '+'))
5194 p -= 2; /* Beginning of a method name. */
5195 else if (p[-1] == ' ' || p[-1] == '(' || p[-1] == ')')
5196 { /* Might be part of a method name. */
5197 const char *t = p;
5198
5199 /* Seeing a ' ' or a '(' is not conclusive evidence
5200 that we are in the middle of a method name. However,
5201 finding "-[" or "+[" should be pretty un-ambiguous.
5202 Unfortunately we have to find it now to decide. */
5203
5204 while (t > text)
5205 if (isalnum (t[-1]) || t[-1] == '_' ||
5206 t[-1] == ' ' || t[-1] == ':' ||
5207 t[-1] == '(' || t[-1] == ')')
5208 --t;
5209 else
5210 break;
5211
5212 if (t[-1] == '[' && (t[-2] == '-' || t[-2] == '+'))
5213 p = t - 2; /* Method name detected. */
5214 /* Else we leave with p unchanged. */
5215 }
5216 }
5217 break;
5218 }
5219 }
5220 return p;
5221 }
5222
5223 static void
5224 completion_list_add_fields (struct symbol *sym, const char *sym_text,
5225 int sym_text_len, const char *text,
5226 const char *word)
5227 {
5228 if (SYMBOL_CLASS (sym) == LOC_TYPEDEF)
5229 {
5230 struct type *t = SYMBOL_TYPE (sym);
5231 enum type_code c = TYPE_CODE (t);
5232 int j;
5233
5234 if (c == TYPE_CODE_UNION || c == TYPE_CODE_STRUCT)
5235 for (j = TYPE_N_BASECLASSES (t); j < TYPE_NFIELDS (t); j++)
5236 if (TYPE_FIELD_NAME (t, j))
5237 completion_list_add_name (TYPE_FIELD_NAME (t, j),
5238 sym_text, sym_text_len, text, word);
5239 }
5240 }
5241
5242 /* Type of the user_data argument passed to add_macro_name,
5243 symbol_completion_matcher and symtab_expansion_callback. */
5244
5245 struct add_name_data
5246 {
5247 /* Arguments required by completion_list_add_name. */
5248 const char *sym_text;
5249 int sym_text_len;
5250 const char *text;
5251 const char *word;
5252
5253 /* Extra argument required for add_symtab_completions. */
5254 enum type_code code;
5255 };
5256
5257 /* A callback used with macro_for_each and macro_for_each_in_scope.
5258 This adds a macro's name to the current completion list. */
5259
5260 static void
5261 add_macro_name (const char *name, const struct macro_definition *ignore,
5262 struct macro_source_file *ignore2, int ignore3,
5263 void *user_data)
5264 {
5265 struct add_name_data *datum = (struct add_name_data *) user_data;
5266
5267 completion_list_add_name (name,
5268 datum->sym_text, datum->sym_text_len,
5269 datum->text, datum->word);
5270 }
5271
5272 /* A callback for expand_symtabs_matching. */
5273
5274 static int
5275 symbol_completion_matcher (const char *name, void *user_data)
5276 {
5277 struct add_name_data *datum = (struct add_name_data *) user_data;
5278
5279 return compare_symbol_name (name, datum->sym_text, datum->sym_text_len);
5280 }
5281
5282 /* Add matching symbols from SYMTAB to the current completion list. */
5283
5284 static void
5285 add_symtab_completions (struct compunit_symtab *cust,
5286 const char *sym_text, int sym_text_len,
5287 const char *text, const char *word,
5288 enum type_code code)
5289 {
5290 struct symbol *sym;
5291 const struct block *b;
5292 struct block_iterator iter;
5293 int i;
5294
5295 for (i = GLOBAL_BLOCK; i <= STATIC_BLOCK; i++)
5296 {
5297 QUIT;
5298 b = BLOCKVECTOR_BLOCK (COMPUNIT_BLOCKVECTOR (cust), i);
5299 ALL_BLOCK_SYMBOLS (b, iter, sym)
5300 {
5301 if (code == TYPE_CODE_UNDEF
5302 || (SYMBOL_DOMAIN (sym) == STRUCT_DOMAIN
5303 && TYPE_CODE (SYMBOL_TYPE (sym)) == code))
5304 COMPLETION_LIST_ADD_SYMBOL (sym,
5305 sym_text, sym_text_len,
5306 text, word);
5307 }
5308 }
5309 }
5310
5311 /* Callback to add completions to the current list when symbol tables
5312 are expanded during completion list generation. */
5313
5314 static void
5315 symtab_expansion_callback (struct compunit_symtab *symtab,
5316 void *user_data)
5317 {
5318 struct add_name_data *datum = (struct add_name_data *) user_data;
5319
5320 add_symtab_completions (symtab,
5321 datum->sym_text, datum->sym_text_len,
5322 datum->text, datum->word,
5323 datum->code);
5324 }
5325
5326 static void
5327 default_make_symbol_completion_list_break_on_1 (const char *text,
5328 const char *word,
5329 const char *break_on,
5330 enum type_code code)
5331 {
5332 /* Problem: All of the symbols have to be copied because readline
5333 frees them. I'm not going to worry about this; hopefully there
5334 won't be that many. */
5335
5336 struct symbol *sym;
5337 struct compunit_symtab *cust;
5338 struct minimal_symbol *msymbol;
5339 struct objfile *objfile;
5340 const struct block *b;
5341 const struct block *surrounding_static_block, *surrounding_global_block;
5342 struct block_iterator iter;
5343 /* The symbol we are completing on. Points in same buffer as text. */
5344 const char *sym_text;
5345 /* Length of sym_text. */
5346 int sym_text_len;
5347 struct add_name_data datum;
5348 struct cleanup *cleanups;
5349
5350 /* Now look for the symbol we are supposed to complete on. */
5351 {
5352 const char *p;
5353 char quote_found;
5354 const char *quote_pos = NULL;
5355
5356 /* First see if this is a quoted string. */
5357 quote_found = '\0';
5358 for (p = text; *p != '\0'; ++p)
5359 {
5360 if (quote_found != '\0')
5361 {
5362 if (*p == quote_found)
5363 /* Found close quote. */
5364 quote_found = '\0';
5365 else if (*p == '\\' && p[1] == quote_found)
5366 /* A backslash followed by the quote character
5367 doesn't end the string. */
5368 ++p;
5369 }
5370 else if (*p == '\'' || *p == '"')
5371 {
5372 quote_found = *p;
5373 quote_pos = p;
5374 }
5375 }
5376 if (quote_found == '\'')
5377 /* A string within single quotes can be a symbol, so complete on it. */
5378 sym_text = quote_pos + 1;
5379 else if (quote_found == '"')
5380 /* A double-quoted string is never a symbol, nor does it make sense
5381 to complete it any other way. */
5382 {
5383 return;
5384 }
5385 else
5386 {
5387 /* It is not a quoted string. Break it based on the characters
5388 which are in symbols. */
5389 while (p > text)
5390 {
5391 if (isalnum (p[-1]) || p[-1] == '_' || p[-1] == '\0'
5392 || p[-1] == ':' || strchr (break_on, p[-1]) != NULL)
5393 --p;
5394 else
5395 break;
5396 }
5397 sym_text = p;
5398 }
5399 }
5400
5401 sym_text_len = strlen (sym_text);
5402
5403 /* Prepare SYM_TEXT_LEN for compare_symbol_name. */
5404
5405 if (current_language->la_language == language_cplus
5406 || current_language->la_language == language_java
5407 || current_language->la_language == language_fortran)
5408 {
5409 /* These languages may have parameters entered by user but they are never
5410 present in the partial symbol tables. */
5411
5412 const char *cs = memchr (sym_text, '(', sym_text_len);
5413
5414 if (cs)
5415 sym_text_len = cs - sym_text;
5416 }
5417 gdb_assert (sym_text[sym_text_len] == '\0' || sym_text[sym_text_len] == '(');
5418
5419 completion_tracker = new_completion_tracker ();
5420 cleanups = make_cleanup_free_completion_tracker (&completion_tracker);
5421
5422 datum.sym_text = sym_text;
5423 datum.sym_text_len = sym_text_len;
5424 datum.text = text;
5425 datum.word = word;
5426 datum.code = code;
5427
5428 /* At this point scan through the misc symbol vectors and add each
5429 symbol you find to the list. Eventually we want to ignore
5430 anything that isn't a text symbol (everything else will be
5431 handled by the psymtab code below). */
5432
5433 if (code == TYPE_CODE_UNDEF)
5434 {
5435 ALL_MSYMBOLS (objfile, msymbol)
5436 {
5437 QUIT;
5438 MCOMPLETION_LIST_ADD_SYMBOL (msymbol, sym_text, sym_text_len, text,
5439 word);
5440
5441 completion_list_objc_symbol (msymbol, sym_text, sym_text_len, text,
5442 word);
5443 }
5444 }
5445
5446 /* Add completions for all currently loaded symbol tables. */
5447 ALL_COMPUNITS (objfile, cust)
5448 add_symtab_completions (cust, sym_text, sym_text_len, text, word,
5449 code);
5450
5451 /* Look through the partial symtabs for all symbols which begin
5452 by matching SYM_TEXT. Expand all CUs that you find to the list.
5453 symtab_expansion_callback is called for each expanded symtab,
5454 causing those symtab's completions to be added to the list too. */
5455 expand_symtabs_matching (NULL, symbol_completion_matcher,
5456 symtab_expansion_callback, ALL_DOMAIN,
5457 &datum);
5458
5459 /* Search upwards from currently selected frame (so that we can
5460 complete on local vars). Also catch fields of types defined in
5461 this places which match our text string. Only complete on types
5462 visible from current context. */
5463
5464 b = get_selected_block (0);
5465 surrounding_static_block = block_static_block (b);
5466 surrounding_global_block = block_global_block (b);
5467 if (surrounding_static_block != NULL)
5468 while (b != surrounding_static_block)
5469 {
5470 QUIT;
5471
5472 ALL_BLOCK_SYMBOLS (b, iter, sym)
5473 {
5474 if (code == TYPE_CODE_UNDEF)
5475 {
5476 COMPLETION_LIST_ADD_SYMBOL (sym, sym_text, sym_text_len, text,
5477 word);
5478 completion_list_add_fields (sym, sym_text, sym_text_len, text,
5479 word);
5480 }
5481 else if (SYMBOL_DOMAIN (sym) == STRUCT_DOMAIN
5482 && TYPE_CODE (SYMBOL_TYPE (sym)) == code)
5483 COMPLETION_LIST_ADD_SYMBOL (sym, sym_text, sym_text_len, text,
5484 word);
5485 }
5486
5487 /* Stop when we encounter an enclosing function. Do not stop for
5488 non-inlined functions - the locals of the enclosing function
5489 are in scope for a nested function. */
5490 if (BLOCK_FUNCTION (b) != NULL && block_inlined_p (b))
5491 break;
5492 b = BLOCK_SUPERBLOCK (b);
5493 }
5494
5495 /* Add fields from the file's types; symbols will be added below. */
5496
5497 if (code == TYPE_CODE_UNDEF)
5498 {
5499 if (surrounding_static_block != NULL)
5500 ALL_BLOCK_SYMBOLS (surrounding_static_block, iter, sym)
5501 completion_list_add_fields (sym, sym_text, sym_text_len, text, word);
5502
5503 if (surrounding_global_block != NULL)
5504 ALL_BLOCK_SYMBOLS (surrounding_global_block, iter, sym)
5505 completion_list_add_fields (sym, sym_text, sym_text_len, text, word);
5506 }
5507
5508 /* Skip macros if we are completing a struct tag -- arguable but
5509 usually what is expected. */
5510 if (current_language->la_macro_expansion == macro_expansion_c
5511 && code == TYPE_CODE_UNDEF)
5512 {
5513 struct macro_scope *scope;
5514
5515 /* Add any macros visible in the default scope. Note that this
5516 may yield the occasional wrong result, because an expression
5517 might be evaluated in a scope other than the default. For
5518 example, if the user types "break file:line if <TAB>", the
5519 resulting expression will be evaluated at "file:line" -- but
5520 at there does not seem to be a way to detect this at
5521 completion time. */
5522 scope = default_macro_scope ();
5523 if (scope)
5524 {
5525 macro_for_each_in_scope (scope->file, scope->line,
5526 add_macro_name, &datum);
5527 xfree (scope);
5528 }
5529
5530 /* User-defined macros are always visible. */
5531 macro_for_each (macro_user_macros, add_macro_name, &datum);
5532 }
5533
5534 do_cleanups (cleanups);
5535 }
5536
5537 VEC (char_ptr) *
5538 default_make_symbol_completion_list_break_on (const char *text,
5539 const char *word,
5540 const char *break_on,
5541 enum type_code code)
5542 {
5543 struct cleanup *back_to;
5544
5545 return_val = NULL;
5546 back_to = make_cleanup (do_free_completion_list, &return_val);
5547
5548 TRY
5549 {
5550 default_make_symbol_completion_list_break_on_1 (text, word,
5551 break_on, code);
5552 }
5553 CATCH (except, RETURN_MASK_ERROR)
5554 {
5555 if (except.error != MAX_COMPLETIONS_REACHED_ERROR)
5556 throw_exception (except);
5557 }
5558 END_CATCH
5559
5560 discard_cleanups (back_to);
5561 return return_val;
5562 }
5563
5564 VEC (char_ptr) *
5565 default_make_symbol_completion_list (const char *text, const char *word,
5566 enum type_code code)
5567 {
5568 return default_make_symbol_completion_list_break_on (text, word, "", code);
5569 }
5570
5571 /* Return a vector of all symbols (regardless of class) which begin by
5572 matching TEXT. If the answer is no symbols, then the return value
5573 is NULL. */
5574
5575 VEC (char_ptr) *
5576 make_symbol_completion_list (const char *text, const char *word)
5577 {
5578 return current_language->la_make_symbol_completion_list (text, word,
5579 TYPE_CODE_UNDEF);
5580 }
5581
5582 /* Like make_symbol_completion_list, but only return STRUCT_DOMAIN
5583 symbols whose type code is CODE. */
5584
5585 VEC (char_ptr) *
5586 make_symbol_completion_type (const char *text, const char *word,
5587 enum type_code code)
5588 {
5589 gdb_assert (code == TYPE_CODE_UNION
5590 || code == TYPE_CODE_STRUCT
5591 || code == TYPE_CODE_ENUM);
5592 return current_language->la_make_symbol_completion_list (text, word, code);
5593 }
5594
5595 /* Like make_symbol_completion_list, but suitable for use as a
5596 completion function. */
5597
5598 VEC (char_ptr) *
5599 make_symbol_completion_list_fn (struct cmd_list_element *ignore,
5600 const char *text, const char *word)
5601 {
5602 return make_symbol_completion_list (text, word);
5603 }
5604
5605 /* Like make_symbol_completion_list, but returns a list of symbols
5606 defined in a source file FILE. */
5607
5608 static VEC (char_ptr) *
5609 make_file_symbol_completion_list_1 (const char *text, const char *word,
5610 const char *srcfile)
5611 {
5612 struct symbol *sym;
5613 struct symtab *s;
5614 struct block *b;
5615 struct block_iterator iter;
5616 /* The symbol we are completing on. Points in same buffer as text. */
5617 const char *sym_text;
5618 /* Length of sym_text. */
5619 int sym_text_len;
5620
5621 /* Now look for the symbol we are supposed to complete on.
5622 FIXME: This should be language-specific. */
5623 {
5624 const char *p;
5625 char quote_found;
5626 const char *quote_pos = NULL;
5627
5628 /* First see if this is a quoted string. */
5629 quote_found = '\0';
5630 for (p = text; *p != '\0'; ++p)
5631 {
5632 if (quote_found != '\0')
5633 {
5634 if (*p == quote_found)
5635 /* Found close quote. */
5636 quote_found = '\0';
5637 else if (*p == '\\' && p[1] == quote_found)
5638 /* A backslash followed by the quote character
5639 doesn't end the string. */
5640 ++p;
5641 }
5642 else if (*p == '\'' || *p == '"')
5643 {
5644 quote_found = *p;
5645 quote_pos = p;
5646 }
5647 }
5648 if (quote_found == '\'')
5649 /* A string within single quotes can be a symbol, so complete on it. */
5650 sym_text = quote_pos + 1;
5651 else if (quote_found == '"')
5652 /* A double-quoted string is never a symbol, nor does it make sense
5653 to complete it any other way. */
5654 {
5655 return NULL;
5656 }
5657 else
5658 {
5659 /* Not a quoted string. */
5660 sym_text = language_search_unquoted_string (text, p);
5661 }
5662 }
5663
5664 sym_text_len = strlen (sym_text);
5665
5666 /* Find the symtab for SRCFILE (this loads it if it was not yet read
5667 in). */
5668 s = lookup_symtab (srcfile);
5669 if (s == NULL)
5670 {
5671 /* Maybe they typed the file with leading directories, while the
5672 symbol tables record only its basename. */
5673 const char *tail = lbasename (srcfile);
5674
5675 if (tail > srcfile)
5676 s = lookup_symtab (tail);
5677 }
5678
5679 /* If we have no symtab for that file, return an empty list. */
5680 if (s == NULL)
5681 return (return_val);
5682
5683 /* Go through this symtab and check the externs and statics for
5684 symbols which match. */
5685
5686 b = BLOCKVECTOR_BLOCK (SYMTAB_BLOCKVECTOR (s), GLOBAL_BLOCK);
5687 ALL_BLOCK_SYMBOLS (b, iter, sym)
5688 {
5689 COMPLETION_LIST_ADD_SYMBOL (sym, sym_text, sym_text_len, text, word);
5690 }
5691
5692 b = BLOCKVECTOR_BLOCK (SYMTAB_BLOCKVECTOR (s), STATIC_BLOCK);
5693 ALL_BLOCK_SYMBOLS (b, iter, sym)
5694 {
5695 COMPLETION_LIST_ADD_SYMBOL (sym, sym_text, sym_text_len, text, word);
5696 }
5697
5698 return (return_val);
5699 }
5700
5701 /* Wrapper around make_file_symbol_completion_list_1
5702 to handle MAX_COMPLETIONS_REACHED_ERROR. */
5703
5704 VEC (char_ptr) *
5705 make_file_symbol_completion_list (const char *text, const char *word,
5706 const char *srcfile)
5707 {
5708 struct cleanup *back_to, *cleanups;
5709
5710 completion_tracker = new_completion_tracker ();
5711 cleanups = make_cleanup_free_completion_tracker (&completion_tracker);
5712 return_val = NULL;
5713 back_to = make_cleanup (do_free_completion_list, &return_val);
5714
5715 TRY
5716 {
5717 make_file_symbol_completion_list_1 (text, word, srcfile);
5718 }
5719 CATCH (except, RETURN_MASK_ERROR)
5720 {
5721 if (except.error != MAX_COMPLETIONS_REACHED_ERROR)
5722 throw_exception (except);
5723 }
5724 END_CATCH
5725
5726 discard_cleanups (back_to);
5727 do_cleanups (cleanups);
5728 return return_val;
5729 }
5730
5731 /* A helper function for make_source_files_completion_list. It adds
5732 another file name to a list of possible completions, growing the
5733 list as necessary. */
5734
5735 static void
5736 add_filename_to_list (const char *fname, const char *text, const char *word,
5737 VEC (char_ptr) **list)
5738 {
5739 char *newobj;
5740 size_t fnlen = strlen (fname);
5741
5742 if (word == text)
5743 {
5744 /* Return exactly fname. */
5745 newobj = xmalloc (fnlen + 5);
5746 strcpy (newobj, fname);
5747 }
5748 else if (word > text)
5749 {
5750 /* Return some portion of fname. */
5751 newobj = xmalloc (fnlen + 5);
5752 strcpy (newobj, fname + (word - text));
5753 }
5754 else
5755 {
5756 /* Return some of TEXT plus fname. */
5757 newobj = xmalloc (fnlen + (text - word) + 5);
5758 strncpy (newobj, word, text - word);
5759 newobj[text - word] = '\0';
5760 strcat (newobj, fname);
5761 }
5762 VEC_safe_push (char_ptr, *list, newobj);
5763 }
5764
5765 static int
5766 not_interesting_fname (const char *fname)
5767 {
5768 static const char *illegal_aliens[] = {
5769 "_globals_", /* inserted by coff_symtab_read */
5770 NULL
5771 };
5772 int i;
5773
5774 for (i = 0; illegal_aliens[i]; i++)
5775 {
5776 if (filename_cmp (fname, illegal_aliens[i]) == 0)
5777 return 1;
5778 }
5779 return 0;
5780 }
5781
5782 /* An object of this type is passed as the user_data argument to
5783 map_partial_symbol_filenames. */
5784 struct add_partial_filename_data
5785 {
5786 struct filename_seen_cache *filename_seen_cache;
5787 const char *text;
5788 const char *word;
5789 int text_len;
5790 VEC (char_ptr) **list;
5791 };
5792
5793 /* A callback for map_partial_symbol_filenames. */
5794
5795 static void
5796 maybe_add_partial_symtab_filename (const char *filename, const char *fullname,
5797 void *user_data)
5798 {
5799 struct add_partial_filename_data *data = user_data;
5800
5801 if (not_interesting_fname (filename))
5802 return;
5803 if (!filename_seen (data->filename_seen_cache, filename, 1)
5804 && filename_ncmp (filename, data->text, data->text_len) == 0)
5805 {
5806 /* This file matches for a completion; add it to the
5807 current list of matches. */
5808 add_filename_to_list (filename, data->text, data->word, data->list);
5809 }
5810 else
5811 {
5812 const char *base_name = lbasename (filename);
5813
5814 if (base_name != filename
5815 && !filename_seen (data->filename_seen_cache, base_name, 1)
5816 && filename_ncmp (base_name, data->text, data->text_len) == 0)
5817 add_filename_to_list (base_name, data->text, data->word, data->list);
5818 }
5819 }
5820
5821 /* Return a vector of all source files whose names begin with matching
5822 TEXT. The file names are looked up in the symbol tables of this
5823 program. If the answer is no matchess, then the return value is
5824 NULL. */
5825
5826 VEC (char_ptr) *
5827 make_source_files_completion_list (const char *text, const char *word)
5828 {
5829 struct compunit_symtab *cu;
5830 struct symtab *s;
5831 struct objfile *objfile;
5832 size_t text_len = strlen (text);
5833 VEC (char_ptr) *list = NULL;
5834 const char *base_name;
5835 struct add_partial_filename_data datum;
5836 struct filename_seen_cache *filename_seen_cache;
5837 struct cleanup *back_to, *cache_cleanup;
5838
5839 if (!have_full_symbols () && !have_partial_symbols ())
5840 return list;
5841
5842 back_to = make_cleanup (do_free_completion_list, &list);
5843
5844 filename_seen_cache = create_filename_seen_cache ();
5845 cache_cleanup = make_cleanup (delete_filename_seen_cache,
5846 filename_seen_cache);
5847
5848 ALL_FILETABS (objfile, cu, s)
5849 {
5850 if (not_interesting_fname (s->filename))
5851 continue;
5852 if (!filename_seen (filename_seen_cache, s->filename, 1)
5853 && filename_ncmp (s->filename, text, text_len) == 0)
5854 {
5855 /* This file matches for a completion; add it to the current
5856 list of matches. */
5857 add_filename_to_list (s->filename, text, word, &list);
5858 }
5859 else
5860 {
5861 /* NOTE: We allow the user to type a base name when the
5862 debug info records leading directories, but not the other
5863 way around. This is what subroutines of breakpoint
5864 command do when they parse file names. */
5865 base_name = lbasename (s->filename);
5866 if (base_name != s->filename
5867 && !filename_seen (filename_seen_cache, base_name, 1)
5868 && filename_ncmp (base_name, text, text_len) == 0)
5869 add_filename_to_list (base_name, text, word, &list);
5870 }
5871 }
5872
5873 datum.filename_seen_cache = filename_seen_cache;
5874 datum.text = text;
5875 datum.word = word;
5876 datum.text_len = text_len;
5877 datum.list = &list;
5878 map_symbol_filenames (maybe_add_partial_symtab_filename, &datum,
5879 0 /*need_fullname*/);
5880
5881 do_cleanups (cache_cleanup);
5882 discard_cleanups (back_to);
5883
5884 return list;
5885 }
5886 \f
5887 /* Track MAIN */
5888
5889 /* Return the "main_info" object for the current program space. If
5890 the object has not yet been created, create it and fill in some
5891 default values. */
5892
5893 static struct main_info *
5894 get_main_info (void)
5895 {
5896 struct main_info *info = program_space_data (current_program_space,
5897 main_progspace_key);
5898
5899 if (info == NULL)
5900 {
5901 /* It may seem strange to store the main name in the progspace
5902 and also in whatever objfile happens to see a main name in
5903 its debug info. The reason for this is mainly historical:
5904 gdb returned "main" as the name even if no function named
5905 "main" was defined the program; and this approach lets us
5906 keep compatibility. */
5907 info = XCNEW (struct main_info);
5908 info->language_of_main = language_unknown;
5909 set_program_space_data (current_program_space, main_progspace_key,
5910 info);
5911 }
5912
5913 return info;
5914 }
5915
5916 /* A cleanup to destroy a struct main_info when a progspace is
5917 destroyed. */
5918
5919 static void
5920 main_info_cleanup (struct program_space *pspace, void *data)
5921 {
5922 struct main_info *info = data;
5923
5924 if (info != NULL)
5925 xfree (info->name_of_main);
5926 xfree (info);
5927 }
5928
5929 static void
5930 set_main_name (const char *name, enum language lang)
5931 {
5932 struct main_info *info = get_main_info ();
5933
5934 if (info->name_of_main != NULL)
5935 {
5936 xfree (info->name_of_main);
5937 info->name_of_main = NULL;
5938 info->language_of_main = language_unknown;
5939 }
5940 if (name != NULL)
5941 {
5942 info->name_of_main = xstrdup (name);
5943 info->language_of_main = lang;
5944 }
5945 }
5946
5947 /* Deduce the name of the main procedure, and set NAME_OF_MAIN
5948 accordingly. */
5949
5950 static void
5951 find_main_name (void)
5952 {
5953 const char *new_main_name;
5954 struct objfile *objfile;
5955
5956 /* First check the objfiles to see whether a debuginfo reader has
5957 picked up the appropriate main name. Historically the main name
5958 was found in a more or less random way; this approach instead
5959 relies on the order of objfile creation -- which still isn't
5960 guaranteed to get the correct answer, but is just probably more
5961 accurate. */
5962 ALL_OBJFILES (objfile)
5963 {
5964 if (objfile->per_bfd->name_of_main != NULL)
5965 {
5966 set_main_name (objfile->per_bfd->name_of_main,
5967 objfile->per_bfd->language_of_main);
5968 return;
5969 }
5970 }
5971
5972 /* Try to see if the main procedure is in Ada. */
5973 /* FIXME: brobecker/2005-03-07: Another way of doing this would
5974 be to add a new method in the language vector, and call this
5975 method for each language until one of them returns a non-empty
5976 name. This would allow us to remove this hard-coded call to
5977 an Ada function. It is not clear that this is a better approach
5978 at this point, because all methods need to be written in a way
5979 such that false positives never be returned. For instance, it is
5980 important that a method does not return a wrong name for the main
5981 procedure if the main procedure is actually written in a different
5982 language. It is easy to guaranty this with Ada, since we use a
5983 special symbol generated only when the main in Ada to find the name
5984 of the main procedure. It is difficult however to see how this can
5985 be guarantied for languages such as C, for instance. This suggests
5986 that order of call for these methods becomes important, which means
5987 a more complicated approach. */
5988 new_main_name = ada_main_name ();
5989 if (new_main_name != NULL)
5990 {
5991 set_main_name (new_main_name, language_ada);
5992 return;
5993 }
5994
5995 new_main_name = d_main_name ();
5996 if (new_main_name != NULL)
5997 {
5998 set_main_name (new_main_name, language_d);
5999 return;
6000 }
6001
6002 new_main_name = go_main_name ();
6003 if (new_main_name != NULL)
6004 {
6005 set_main_name (new_main_name, language_go);
6006 return;
6007 }
6008
6009 new_main_name = pascal_main_name ();
6010 if (new_main_name != NULL)
6011 {
6012 set_main_name (new_main_name, language_pascal);
6013 return;
6014 }
6015
6016 /* The languages above didn't identify the name of the main procedure.
6017 Fallback to "main". */
6018 set_main_name ("main", language_unknown);
6019 }
6020
6021 char *
6022 main_name (void)
6023 {
6024 struct main_info *info = get_main_info ();
6025
6026 if (info->name_of_main == NULL)
6027 find_main_name ();
6028
6029 return info->name_of_main;
6030 }
6031
6032 /* Return the language of the main function. If it is not known,
6033 return language_unknown. */
6034
6035 enum language
6036 main_language (void)
6037 {
6038 struct main_info *info = get_main_info ();
6039
6040 if (info->name_of_main == NULL)
6041 find_main_name ();
6042
6043 return info->language_of_main;
6044 }
6045
6046 /* Handle ``executable_changed'' events for the symtab module. */
6047
6048 static void
6049 symtab_observer_executable_changed (void)
6050 {
6051 /* NAME_OF_MAIN may no longer be the same, so reset it for now. */
6052 set_main_name (NULL, language_unknown);
6053 }
6054
6055 /* Return 1 if the supplied producer string matches the ARM RealView
6056 compiler (armcc). */
6057
6058 int
6059 producer_is_realview (const char *producer)
6060 {
6061 static const char *const arm_idents[] = {
6062 "ARM C Compiler, ADS",
6063 "Thumb C Compiler, ADS",
6064 "ARM C++ Compiler, ADS",
6065 "Thumb C++ Compiler, ADS",
6066 "ARM/Thumb C/C++ Compiler, RVCT",
6067 "ARM C/C++ Compiler, RVCT"
6068 };
6069 int i;
6070
6071 if (producer == NULL)
6072 return 0;
6073
6074 for (i = 0; i < ARRAY_SIZE (arm_idents); i++)
6075 if (startswith (producer, arm_idents[i]))
6076 return 1;
6077
6078 return 0;
6079 }
6080
6081 \f
6082
6083 /* The next index to hand out in response to a registration request. */
6084
6085 static int next_aclass_value = LOC_FINAL_VALUE;
6086
6087 /* The maximum number of "aclass" registrations we support. This is
6088 constant for convenience. */
6089 #define MAX_SYMBOL_IMPLS (LOC_FINAL_VALUE + 10)
6090
6091 /* The objects representing the various "aclass" values. The elements
6092 from 0 up to LOC_FINAL_VALUE-1 represent themselves, and subsequent
6093 elements are those registered at gdb initialization time. */
6094
6095 static struct symbol_impl symbol_impl[MAX_SYMBOL_IMPLS];
6096
6097 /* The globally visible pointer. This is separate from 'symbol_impl'
6098 so that it can be const. */
6099
6100 const struct symbol_impl *symbol_impls = &symbol_impl[0];
6101
6102 /* Make sure we saved enough room in struct symbol. */
6103
6104 gdb_static_assert (MAX_SYMBOL_IMPLS <= (1 << SYMBOL_ACLASS_BITS));
6105
6106 /* Register a computed symbol type. ACLASS must be LOC_COMPUTED. OPS
6107 is the ops vector associated with this index. This returns the new
6108 index, which should be used as the aclass_index field for symbols
6109 of this type. */
6110
6111 int
6112 register_symbol_computed_impl (enum address_class aclass,
6113 const struct symbol_computed_ops *ops)
6114 {
6115 int result = next_aclass_value++;
6116
6117 gdb_assert (aclass == LOC_COMPUTED);
6118 gdb_assert (result < MAX_SYMBOL_IMPLS);
6119 symbol_impl[result].aclass = aclass;
6120 symbol_impl[result].ops_computed = ops;
6121
6122 /* Sanity check OPS. */
6123 gdb_assert (ops != NULL);
6124 gdb_assert (ops->tracepoint_var_ref != NULL);
6125 gdb_assert (ops->describe_location != NULL);
6126 gdb_assert (ops->read_needs_frame != NULL);
6127 gdb_assert (ops->read_variable != NULL);
6128
6129 return result;
6130 }
6131
6132 /* Register a function with frame base type. ACLASS must be LOC_BLOCK.
6133 OPS is the ops vector associated with this index. This returns the
6134 new index, which should be used as the aclass_index field for symbols
6135 of this type. */
6136
6137 int
6138 register_symbol_block_impl (enum address_class aclass,
6139 const struct symbol_block_ops *ops)
6140 {
6141 int result = next_aclass_value++;
6142
6143 gdb_assert (aclass == LOC_BLOCK);
6144 gdb_assert (result < MAX_SYMBOL_IMPLS);
6145 symbol_impl[result].aclass = aclass;
6146 symbol_impl[result].ops_block = ops;
6147
6148 /* Sanity check OPS. */
6149 gdb_assert (ops != NULL);
6150 gdb_assert (ops->find_frame_base_location != NULL);
6151
6152 return result;
6153 }
6154
6155 /* Register a register symbol type. ACLASS must be LOC_REGISTER or
6156 LOC_REGPARM_ADDR. OPS is the register ops vector associated with
6157 this index. This returns the new index, which should be used as
6158 the aclass_index field for symbols of this type. */
6159
6160 int
6161 register_symbol_register_impl (enum address_class aclass,
6162 const struct symbol_register_ops *ops)
6163 {
6164 int result = next_aclass_value++;
6165
6166 gdb_assert (aclass == LOC_REGISTER || aclass == LOC_REGPARM_ADDR);
6167 gdb_assert (result < MAX_SYMBOL_IMPLS);
6168 symbol_impl[result].aclass = aclass;
6169 symbol_impl[result].ops_register = ops;
6170
6171 return result;
6172 }
6173
6174 /* Initialize elements of 'symbol_impl' for the constants in enum
6175 address_class. */
6176
6177 static void
6178 initialize_ordinary_address_classes (void)
6179 {
6180 int i;
6181
6182 for (i = 0; i < LOC_FINAL_VALUE; ++i)
6183 symbol_impl[i].aclass = (enum address_class) i;
6184 }
6185
6186 \f
6187
6188 /* Helper function to initialize the fields of an objfile-owned symbol.
6189 It assumed that *SYM is already all zeroes. */
6190
6191 static void
6192 initialize_objfile_symbol_1 (struct symbol *sym)
6193 {
6194 SYMBOL_OBJFILE_OWNED (sym) = 1;
6195 SYMBOL_SECTION (sym) = -1;
6196 }
6197
6198 /* Initialize the symbol SYM, and mark it as being owned by an objfile. */
6199
6200 void
6201 initialize_objfile_symbol (struct symbol *sym)
6202 {
6203 memset (sym, 0, sizeof (*sym));
6204 initialize_objfile_symbol_1 (sym);
6205 }
6206
6207 /* Allocate and initialize a new 'struct symbol' on OBJFILE's
6208 obstack. */
6209
6210 struct symbol *
6211 allocate_symbol (struct objfile *objfile)
6212 {
6213 struct symbol *result;
6214
6215 result = OBSTACK_ZALLOC (&objfile->objfile_obstack, struct symbol);
6216 initialize_objfile_symbol_1 (result);
6217
6218 return result;
6219 }
6220
6221 /* Allocate and initialize a new 'struct template_symbol' on OBJFILE's
6222 obstack. */
6223
6224 struct template_symbol *
6225 allocate_template_symbol (struct objfile *objfile)
6226 {
6227 struct template_symbol *result;
6228
6229 result = OBSTACK_ZALLOC (&objfile->objfile_obstack, struct template_symbol);
6230 initialize_objfile_symbol_1 (&result->base);
6231
6232 return result;
6233 }
6234
6235 /* See symtab.h. */
6236
6237 struct objfile *
6238 symbol_objfile (const struct symbol *symbol)
6239 {
6240 gdb_assert (SYMBOL_OBJFILE_OWNED (symbol));
6241 return SYMTAB_OBJFILE (symbol->owner.symtab);
6242 }
6243
6244 /* See symtab.h. */
6245
6246 struct gdbarch *
6247 symbol_arch (const struct symbol *symbol)
6248 {
6249 if (!SYMBOL_OBJFILE_OWNED (symbol))
6250 return symbol->owner.arch;
6251 return get_objfile_arch (SYMTAB_OBJFILE (symbol->owner.symtab));
6252 }
6253
6254 /* See symtab.h. */
6255
6256 struct symtab *
6257 symbol_symtab (const struct symbol *symbol)
6258 {
6259 gdb_assert (SYMBOL_OBJFILE_OWNED (symbol));
6260 return symbol->owner.symtab;
6261 }
6262
6263 /* See symtab.h. */
6264
6265 void
6266 symbol_set_symtab (struct symbol *symbol, struct symtab *symtab)
6267 {
6268 gdb_assert (SYMBOL_OBJFILE_OWNED (symbol));
6269 symbol->owner.symtab = symtab;
6270 }
6271
6272 \f
6273
6274 void
6275 _initialize_symtab (void)
6276 {
6277 initialize_ordinary_address_classes ();
6278
6279 main_progspace_key
6280 = register_program_space_data_with_cleanup (NULL, main_info_cleanup);
6281
6282 symbol_cache_key
6283 = register_program_space_data_with_cleanup (NULL, symbol_cache_cleanup);
6284
6285 add_info ("variables", variables_info, _("\
6286 All global and static variable names, or those matching REGEXP."));
6287 if (dbx_commands)
6288 add_com ("whereis", class_info, variables_info, _("\
6289 All global and static variable names, or those matching REGEXP."));
6290
6291 add_info ("functions", functions_info,
6292 _("All function names, or those matching REGEXP."));
6293
6294 /* FIXME: This command has at least the following problems:
6295 1. It prints builtin types (in a very strange and confusing fashion).
6296 2. It doesn't print right, e.g. with
6297 typedef struct foo *FOO
6298 type_print prints "FOO" when we want to make it (in this situation)
6299 print "struct foo *".
6300 I also think "ptype" or "whatis" is more likely to be useful (but if
6301 there is much disagreement "info types" can be fixed). */
6302 add_info ("types", types_info,
6303 _("All type names, or those matching REGEXP."));
6304
6305 add_info ("sources", sources_info,
6306 _("Source files in the program."));
6307
6308 add_com ("rbreak", class_breakpoint, rbreak_command,
6309 _("Set a breakpoint for all functions matching REGEXP."));
6310
6311 add_setshow_enum_cmd ("multiple-symbols", no_class,
6312 multiple_symbols_modes, &multiple_symbols_mode,
6313 _("\
6314 Set the debugger behavior when more than one symbol are possible matches\n\
6315 in an expression."), _("\
6316 Show how the debugger handles ambiguities in expressions."), _("\
6317 Valid values are \"ask\", \"all\", \"cancel\", and the default is \"all\"."),
6318 NULL, NULL, &setlist, &showlist);
6319
6320 add_setshow_boolean_cmd ("basenames-may-differ", class_obscure,
6321 &basenames_may_differ, _("\
6322 Set whether a source file may have multiple base names."), _("\
6323 Show whether a source file may have multiple base names."), _("\
6324 (A \"base name\" is the name of a file with the directory part removed.\n\
6325 Example: The base name of \"/home/user/hello.c\" is \"hello.c\".)\n\
6326 If set, GDB will canonicalize file names (e.g., expand symlinks)\n\
6327 before comparing them. Canonicalization is an expensive operation,\n\
6328 but it allows the same file be known by more than one base name.\n\
6329 If not set (the default), all source files are assumed to have just\n\
6330 one base name, and gdb will do file name comparisons more efficiently."),
6331 NULL, NULL,
6332 &setlist, &showlist);
6333
6334 add_setshow_zuinteger_cmd ("symtab-create", no_class, &symtab_create_debug,
6335 _("Set debugging of symbol table creation."),
6336 _("Show debugging of symbol table creation."), _("\
6337 When enabled (non-zero), debugging messages are printed when building\n\
6338 symbol tables. A value of 1 (one) normally provides enough information.\n\
6339 A value greater than 1 provides more verbose information."),
6340 NULL,
6341 NULL,
6342 &setdebuglist, &showdebuglist);
6343
6344 add_setshow_zuinteger_cmd ("symbol-lookup", no_class, &symbol_lookup_debug,
6345 _("\
6346 Set debugging of symbol lookup."), _("\
6347 Show debugging of symbol lookup."), _("\
6348 When enabled (non-zero), symbol lookups are logged."),
6349 NULL, NULL,
6350 &setdebuglist, &showdebuglist);
6351
6352 add_setshow_zuinteger_cmd ("symbol-cache-size", no_class,
6353 &new_symbol_cache_size,
6354 _("Set the size of the symbol cache."),
6355 _("Show the size of the symbol cache."), _("\
6356 The size of the symbol cache.\n\
6357 If zero then the symbol cache is disabled."),
6358 set_symbol_cache_size_handler, NULL,
6359 &maintenance_set_cmdlist,
6360 &maintenance_show_cmdlist);
6361
6362 add_cmd ("symbol-cache", class_maintenance, maintenance_print_symbol_cache,
6363 _("Dump the symbol cache for each program space."),
6364 &maintenanceprintlist);
6365
6366 add_cmd ("symbol-cache-statistics", class_maintenance,
6367 maintenance_print_symbol_cache_statistics,
6368 _("Print symbol cache statistics for each program space."),
6369 &maintenanceprintlist);
6370
6371 add_cmd ("flush-symbol-cache", class_maintenance,
6372 maintenance_flush_symbol_cache,
6373 _("Flush the symbol cache for each program space."),
6374 &maintenancelist);
6375
6376 observer_attach_executable_changed (symtab_observer_executable_changed);
6377 observer_attach_new_objfile (symtab_new_objfile_observer);
6378 observer_attach_free_objfile (symtab_free_objfile_observer);
6379 }
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