Fix leak of symbol name in block_symbol_cache
[deliverable/binutils-gdb.git] / gdb / symtab.c
1 /* Symbol table lookup for the GNU debugger, GDB.
2
3 Copyright (C) 1986-2019 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 #include "cli/cli-style.h"
45 #include "fnmatch.h"
46 #include "hashtab.h"
47 #include "typeprint.h"
48
49 #include "gdb_obstack.h"
50 #include "block.h"
51 #include "dictionary.h"
52
53 #include <sys/types.h>
54 #include <fcntl.h>
55 #include <sys/stat.h>
56 #include <ctype.h>
57 #include "cp-abi.h"
58 #include "cp-support.h"
59 #include "observable.h"
60 #include "solist.h"
61 #include "macrotab.h"
62 #include "macroscope.h"
63
64 #include "parser-defs.h"
65 #include "completer.h"
66 #include "progspace-and-thread.h"
67 #include "gdbsupport/gdb_optional.h"
68 #include "filename-seen-cache.h"
69 #include "arch-utils.h"
70 #include <algorithm>
71 #include "gdbsupport/gdb_string_view.h"
72 #include "gdbsupport/pathstuff.h"
73 #include "gdbsupport/common-utils.h"
74
75 /* Forward declarations for local functions. */
76
77 static void rbreak_command (const char *, int);
78
79 static int find_line_common (struct linetable *, int, int *, int);
80
81 static struct block_symbol
82 lookup_symbol_aux (const char *name,
83 symbol_name_match_type match_type,
84 const struct block *block,
85 const domain_enum domain,
86 enum language language,
87 struct field_of_this_result *);
88
89 static
90 struct block_symbol lookup_local_symbol (const char *name,
91 symbol_name_match_type match_type,
92 const struct block *block,
93 const domain_enum domain,
94 enum language language);
95
96 static struct block_symbol
97 lookup_symbol_in_objfile (struct objfile *objfile,
98 enum block_enum block_index,
99 const char *name, const domain_enum domain);
100
101 /* Type of the data stored on the program space. */
102
103 struct main_info
104 {
105 main_info () = default;
106
107 ~main_info ()
108 {
109 xfree (name_of_main);
110 }
111
112 /* Name of "main". */
113
114 char *name_of_main = nullptr;
115
116 /* Language of "main". */
117
118 enum language language_of_main = language_unknown;
119 };
120
121 /* Program space key for finding name and language of "main". */
122
123 static const program_space_key<main_info> main_progspace_key;
124
125 /* The default symbol cache size.
126 There is no extra cpu cost for large N (except when flushing the cache,
127 which is rare). The value here is just a first attempt. A better default
128 value may be higher or lower. A prime number can make up for a bad hash
129 computation, so that's why the number is what it is. */
130 #define DEFAULT_SYMBOL_CACHE_SIZE 1021
131
132 /* The maximum symbol cache size.
133 There's no method to the decision of what value to use here, other than
134 there's no point in allowing a user typo to make gdb consume all memory. */
135 #define MAX_SYMBOL_CACHE_SIZE (1024*1024)
136
137 /* symbol_cache_lookup returns this if a previous lookup failed to find the
138 symbol in any objfile. */
139 #define SYMBOL_LOOKUP_FAILED \
140 ((struct block_symbol) {(struct symbol *) 1, NULL})
141 #define SYMBOL_LOOKUP_FAILED_P(SIB) (SIB.symbol == (struct symbol *) 1)
142
143 /* Recording lookups that don't find the symbol is just as important, if not
144 more so, than recording found symbols. */
145
146 enum symbol_cache_slot_state
147 {
148 SYMBOL_SLOT_UNUSED,
149 SYMBOL_SLOT_NOT_FOUND,
150 SYMBOL_SLOT_FOUND
151 };
152
153 struct symbol_cache_slot
154 {
155 enum symbol_cache_slot_state state;
156
157 /* The objfile that was current when the symbol was looked up.
158 This is only needed for global blocks, but for simplicity's sake
159 we allocate the space for both. If data shows the extra space used
160 for static blocks is a problem, we can split things up then.
161
162 Global blocks need cache lookup to include the objfile context because
163 we need to account for gdbarch_iterate_over_objfiles_in_search_order
164 which can traverse objfiles in, effectively, any order, depending on
165 the current objfile, thus affecting which symbol is found. Normally,
166 only the current objfile is searched first, and then the rest are
167 searched in recorded order; but putting cache lookup inside
168 gdbarch_iterate_over_objfiles_in_search_order would be awkward.
169 Instead we just make the current objfile part of the context of
170 cache lookup. This means we can record the same symbol multiple times,
171 each with a different "current objfile" that was in effect when the
172 lookup was saved in the cache, but cache space is pretty cheap. */
173 const struct objfile *objfile_context;
174
175 union
176 {
177 struct block_symbol found;
178 struct
179 {
180 char *name;
181 domain_enum domain;
182 } not_found;
183 } value;
184 };
185
186 /* Clear out SLOT. */
187
188 static void
189 symbol_cache_clear_slot (struct symbol_cache_slot *slot)
190 {
191 if (slot->state == SYMBOL_SLOT_NOT_FOUND)
192 xfree (slot->value.not_found.name);
193 slot->state = SYMBOL_SLOT_UNUSED;
194 }
195
196 /* Symbols don't specify global vs static block.
197 So keep them in separate caches. */
198
199 struct block_symbol_cache
200 {
201 unsigned int hits;
202 unsigned int misses;
203 unsigned int collisions;
204
205 /* SYMBOLS is a variable length array of this size.
206 One can imagine that in general one cache (global/static) should be a
207 fraction of the size of the other, but there's no data at the moment
208 on which to decide. */
209 unsigned int size;
210
211 struct symbol_cache_slot symbols[1];
212 };
213
214 /* Clear all slots of BSC and free BSC. */
215
216 static void
217 destroy_block_symbol_cache (struct block_symbol_cache *bsc)
218 {
219 if (bsc != nullptr)
220 {
221 for (unsigned int i = 0; i < bsc->size; i++)
222 symbol_cache_clear_slot (&bsc->symbols[i]);
223 xfree (bsc);
224 }
225 }
226
227 /* The symbol cache.
228
229 Searching for symbols in the static and global blocks over multiple objfiles
230 again and again can be slow, as can searching very big objfiles. This is a
231 simple cache to improve symbol lookup performance, which is critical to
232 overall gdb performance.
233
234 Symbols are hashed on the name, its domain, and block.
235 They are also hashed on their objfile for objfile-specific lookups. */
236
237 struct symbol_cache
238 {
239 symbol_cache () = default;
240
241 ~symbol_cache ()
242 {
243 destroy_block_symbol_cache (global_symbols);
244 destroy_block_symbol_cache (static_symbols);
245 }
246
247 struct block_symbol_cache *global_symbols = nullptr;
248 struct block_symbol_cache *static_symbols = nullptr;
249 };
250
251 /* Program space key for finding its symbol cache. */
252
253 static const program_space_key<symbol_cache> symbol_cache_key;
254
255 /* When non-zero, print debugging messages related to symtab creation. */
256 unsigned int symtab_create_debug = 0;
257
258 /* When non-zero, print debugging messages related to symbol lookup. */
259 unsigned int symbol_lookup_debug = 0;
260
261 /* The size of the cache is staged here. */
262 static unsigned int new_symbol_cache_size = DEFAULT_SYMBOL_CACHE_SIZE;
263
264 /* The current value of the symbol cache size.
265 This is saved so that if the user enters a value too big we can restore
266 the original value from here. */
267 static unsigned int symbol_cache_size = DEFAULT_SYMBOL_CACHE_SIZE;
268
269 /* True if a file may be known by two different basenames.
270 This is the uncommon case, and significantly slows down gdb.
271 Default set to "off" to not slow down the common case. */
272 bool basenames_may_differ = false;
273
274 /* Allow the user to configure the debugger behavior with respect
275 to multiple-choice menus when more than one symbol matches during
276 a symbol lookup. */
277
278 const char multiple_symbols_ask[] = "ask";
279 const char multiple_symbols_all[] = "all";
280 const char multiple_symbols_cancel[] = "cancel";
281 static const char *const multiple_symbols_modes[] =
282 {
283 multiple_symbols_ask,
284 multiple_symbols_all,
285 multiple_symbols_cancel,
286 NULL
287 };
288 static const char *multiple_symbols_mode = multiple_symbols_all;
289
290 /* Read-only accessor to AUTO_SELECT_MODE. */
291
292 const char *
293 multiple_symbols_select_mode (void)
294 {
295 return multiple_symbols_mode;
296 }
297
298 /* Return the name of a domain_enum. */
299
300 const char *
301 domain_name (domain_enum e)
302 {
303 switch (e)
304 {
305 case UNDEF_DOMAIN: return "UNDEF_DOMAIN";
306 case VAR_DOMAIN: return "VAR_DOMAIN";
307 case STRUCT_DOMAIN: return "STRUCT_DOMAIN";
308 case MODULE_DOMAIN: return "MODULE_DOMAIN";
309 case LABEL_DOMAIN: return "LABEL_DOMAIN";
310 case COMMON_BLOCK_DOMAIN: return "COMMON_BLOCK_DOMAIN";
311 default: gdb_assert_not_reached ("bad domain_enum");
312 }
313 }
314
315 /* Return the name of a search_domain . */
316
317 const char *
318 search_domain_name (enum search_domain e)
319 {
320 switch (e)
321 {
322 case VARIABLES_DOMAIN: return "VARIABLES_DOMAIN";
323 case FUNCTIONS_DOMAIN: return "FUNCTIONS_DOMAIN";
324 case TYPES_DOMAIN: return "TYPES_DOMAIN";
325 case MODULES_DOMAIN: return "MODULES_DOMAIN";
326 case ALL_DOMAIN: return "ALL_DOMAIN";
327 default: gdb_assert_not_reached ("bad search_domain");
328 }
329 }
330
331 /* See symtab.h. */
332
333 struct symtab *
334 compunit_primary_filetab (const struct compunit_symtab *cust)
335 {
336 gdb_assert (COMPUNIT_FILETABS (cust) != NULL);
337
338 /* The primary file symtab is the first one in the list. */
339 return COMPUNIT_FILETABS (cust);
340 }
341
342 /* See symtab.h. */
343
344 enum language
345 compunit_language (const struct compunit_symtab *cust)
346 {
347 struct symtab *symtab = compunit_primary_filetab (cust);
348
349 /* The language of the compunit symtab is the language of its primary
350 source file. */
351 return SYMTAB_LANGUAGE (symtab);
352 }
353
354 /* See symtab.h. */
355
356 bool
357 minimal_symbol::data_p () const
358 {
359 return type == mst_data
360 || type == mst_bss
361 || type == mst_abs
362 || type == mst_file_data
363 || type == mst_file_bss;
364 }
365
366 /* See symtab.h. */
367
368 bool
369 minimal_symbol::text_p () const
370 {
371 return type == mst_text
372 || type == mst_text_gnu_ifunc
373 || type == mst_data_gnu_ifunc
374 || type == mst_slot_got_plt
375 || type == mst_solib_trampoline
376 || type == mst_file_text;
377 }
378
379 /* See whether FILENAME matches SEARCH_NAME using the rule that we
380 advertise to the user. (The manual's description of linespecs
381 describes what we advertise). Returns true if they match, false
382 otherwise. */
383
384 bool
385 compare_filenames_for_search (const char *filename, const char *search_name)
386 {
387 int len = strlen (filename);
388 size_t search_len = strlen (search_name);
389
390 if (len < search_len)
391 return false;
392
393 /* The tail of FILENAME must match. */
394 if (FILENAME_CMP (filename + len - search_len, search_name) != 0)
395 return false;
396
397 /* Either the names must completely match, or the character
398 preceding the trailing SEARCH_NAME segment of FILENAME must be a
399 directory separator.
400
401 The check !IS_ABSOLUTE_PATH ensures SEARCH_NAME "/dir/file.c"
402 cannot match FILENAME "/path//dir/file.c" - as user has requested
403 absolute path. The sama applies for "c:\file.c" possibly
404 incorrectly hypothetically matching "d:\dir\c:\file.c".
405
406 The HAS_DRIVE_SPEC purpose is to make FILENAME "c:file.c"
407 compatible with SEARCH_NAME "file.c". In such case a compiler had
408 to put the "c:file.c" name into debug info. Such compatibility
409 works only on GDB built for DOS host. */
410 return (len == search_len
411 || (!IS_ABSOLUTE_PATH (search_name)
412 && IS_DIR_SEPARATOR (filename[len - search_len - 1]))
413 || (HAS_DRIVE_SPEC (filename)
414 && STRIP_DRIVE_SPEC (filename) == &filename[len - search_len]));
415 }
416
417 /* Same as compare_filenames_for_search, but for glob-style patterns.
418 Heads up on the order of the arguments. They match the order of
419 compare_filenames_for_search, but it's the opposite of the order of
420 arguments to gdb_filename_fnmatch. */
421
422 bool
423 compare_glob_filenames_for_search (const char *filename,
424 const char *search_name)
425 {
426 /* We rely on the property of glob-style patterns with FNM_FILE_NAME that
427 all /s have to be explicitly specified. */
428 int file_path_elements = count_path_elements (filename);
429 int search_path_elements = count_path_elements (search_name);
430
431 if (search_path_elements > file_path_elements)
432 return false;
433
434 if (IS_ABSOLUTE_PATH (search_name))
435 {
436 return (search_path_elements == file_path_elements
437 && gdb_filename_fnmatch (search_name, filename,
438 FNM_FILE_NAME | FNM_NOESCAPE) == 0);
439 }
440
441 {
442 const char *file_to_compare
443 = strip_leading_path_elements (filename,
444 file_path_elements - search_path_elements);
445
446 return gdb_filename_fnmatch (search_name, file_to_compare,
447 FNM_FILE_NAME | FNM_NOESCAPE) == 0;
448 }
449 }
450
451 /* Check for a symtab of a specific name by searching some symtabs.
452 This is a helper function for callbacks of iterate_over_symtabs.
453
454 If NAME is not absolute, then REAL_PATH is NULL
455 If NAME is absolute, then REAL_PATH is the gdb_realpath form of NAME.
456
457 The return value, NAME, REAL_PATH and CALLBACK are identical to the
458 `map_symtabs_matching_filename' method of quick_symbol_functions.
459
460 FIRST and AFTER_LAST indicate the range of compunit symtabs to search.
461 Each symtab within the specified compunit symtab is also searched.
462 AFTER_LAST is one past the last compunit symtab to search; NULL means to
463 search until the end of the list. */
464
465 bool
466 iterate_over_some_symtabs (const char *name,
467 const char *real_path,
468 struct compunit_symtab *first,
469 struct compunit_symtab *after_last,
470 gdb::function_view<bool (symtab *)> callback)
471 {
472 struct compunit_symtab *cust;
473 const char* base_name = lbasename (name);
474
475 for (cust = first; cust != NULL && cust != after_last; cust = cust->next)
476 {
477 for (symtab *s : compunit_filetabs (cust))
478 {
479 if (compare_filenames_for_search (s->filename, name))
480 {
481 if (callback (s))
482 return true;
483 continue;
484 }
485
486 /* Before we invoke realpath, which can get expensive when many
487 files are involved, do a quick comparison of the basenames. */
488 if (! basenames_may_differ
489 && FILENAME_CMP (base_name, lbasename (s->filename)) != 0)
490 continue;
491
492 if (compare_filenames_for_search (symtab_to_fullname (s), name))
493 {
494 if (callback (s))
495 return true;
496 continue;
497 }
498
499 /* If the user gave us an absolute path, try to find the file in
500 this symtab and use its absolute path. */
501 if (real_path != NULL)
502 {
503 const char *fullname = symtab_to_fullname (s);
504
505 gdb_assert (IS_ABSOLUTE_PATH (real_path));
506 gdb_assert (IS_ABSOLUTE_PATH (name));
507 gdb::unique_xmalloc_ptr<char> fullname_real_path
508 = gdb_realpath (fullname);
509 fullname = fullname_real_path.get ();
510 if (FILENAME_CMP (real_path, fullname) == 0)
511 {
512 if (callback (s))
513 return true;
514 continue;
515 }
516 }
517 }
518 }
519
520 return false;
521 }
522
523 /* Check for a symtab of a specific name; first in symtabs, then in
524 psymtabs. *If* there is no '/' in the name, a match after a '/'
525 in the symtab filename will also work.
526
527 Calls CALLBACK with each symtab that is found. If CALLBACK returns
528 true, the search stops. */
529
530 void
531 iterate_over_symtabs (const char *name,
532 gdb::function_view<bool (symtab *)> callback)
533 {
534 gdb::unique_xmalloc_ptr<char> real_path;
535
536 /* Here we are interested in canonicalizing an absolute path, not
537 absolutizing a relative path. */
538 if (IS_ABSOLUTE_PATH (name))
539 {
540 real_path = gdb_realpath (name);
541 gdb_assert (IS_ABSOLUTE_PATH (real_path.get ()));
542 }
543
544 for (objfile *objfile : current_program_space->objfiles ())
545 {
546 if (iterate_over_some_symtabs (name, real_path.get (),
547 objfile->compunit_symtabs, NULL,
548 callback))
549 return;
550 }
551
552 /* Same search rules as above apply here, but now we look thru the
553 psymtabs. */
554
555 for (objfile *objfile : current_program_space->objfiles ())
556 {
557 if (objfile->sf
558 && objfile->sf->qf->map_symtabs_matching_filename (objfile,
559 name,
560 real_path.get (),
561 callback))
562 return;
563 }
564 }
565
566 /* A wrapper for iterate_over_symtabs that returns the first matching
567 symtab, or NULL. */
568
569 struct symtab *
570 lookup_symtab (const char *name)
571 {
572 struct symtab *result = NULL;
573
574 iterate_over_symtabs (name, [&] (symtab *symtab)
575 {
576 result = symtab;
577 return true;
578 });
579
580 return result;
581 }
582
583 \f
584 /* Mangle a GDB method stub type. This actually reassembles the pieces of the
585 full method name, which consist of the class name (from T), the unadorned
586 method name from METHOD_ID, and the signature for the specific overload,
587 specified by SIGNATURE_ID. Note that this function is g++ specific. */
588
589 char *
590 gdb_mangle_name (struct type *type, int method_id, int signature_id)
591 {
592 int mangled_name_len;
593 char *mangled_name;
594 struct fn_field *f = TYPE_FN_FIELDLIST1 (type, method_id);
595 struct fn_field *method = &f[signature_id];
596 const char *field_name = TYPE_FN_FIELDLIST_NAME (type, method_id);
597 const char *physname = TYPE_FN_FIELD_PHYSNAME (f, signature_id);
598 const char *newname = TYPE_NAME (type);
599
600 /* Does the form of physname indicate that it is the full mangled name
601 of a constructor (not just the args)? */
602 int is_full_physname_constructor;
603
604 int is_constructor;
605 int is_destructor = is_destructor_name (physname);
606 /* Need a new type prefix. */
607 const char *const_prefix = method->is_const ? "C" : "";
608 const char *volatile_prefix = method->is_volatile ? "V" : "";
609 char buf[20];
610 int len = (newname == NULL ? 0 : strlen (newname));
611
612 /* Nothing to do if physname already contains a fully mangled v3 abi name
613 or an operator name. */
614 if ((physname[0] == '_' && physname[1] == 'Z')
615 || is_operator_name (field_name))
616 return xstrdup (physname);
617
618 is_full_physname_constructor = is_constructor_name (physname);
619
620 is_constructor = is_full_physname_constructor
621 || (newname && strcmp (field_name, newname) == 0);
622
623 if (!is_destructor)
624 is_destructor = (startswith (physname, "__dt"));
625
626 if (is_destructor || is_full_physname_constructor)
627 {
628 mangled_name = (char *) xmalloc (strlen (physname) + 1);
629 strcpy (mangled_name, physname);
630 return mangled_name;
631 }
632
633 if (len == 0)
634 {
635 xsnprintf (buf, sizeof (buf), "__%s%s", const_prefix, volatile_prefix);
636 }
637 else if (physname[0] == 't' || physname[0] == 'Q')
638 {
639 /* The physname for template and qualified methods already includes
640 the class name. */
641 xsnprintf (buf, sizeof (buf), "__%s%s", const_prefix, volatile_prefix);
642 newname = NULL;
643 len = 0;
644 }
645 else
646 {
647 xsnprintf (buf, sizeof (buf), "__%s%s%d", const_prefix,
648 volatile_prefix, len);
649 }
650 mangled_name_len = ((is_constructor ? 0 : strlen (field_name))
651 + strlen (buf) + len + strlen (physname) + 1);
652
653 mangled_name = (char *) xmalloc (mangled_name_len);
654 if (is_constructor)
655 mangled_name[0] = '\0';
656 else
657 strcpy (mangled_name, field_name);
658
659 strcat (mangled_name, buf);
660 /* If the class doesn't have a name, i.e. newname NULL, then we just
661 mangle it using 0 for the length of the class. Thus it gets mangled
662 as something starting with `::' rather than `classname::'. */
663 if (newname != NULL)
664 strcat (mangled_name, newname);
665
666 strcat (mangled_name, physname);
667 return (mangled_name);
668 }
669
670 /* Set the demangled name of GSYMBOL to NAME. NAME must be already
671 correctly allocated. */
672
673 void
674 symbol_set_demangled_name (struct general_symbol_info *gsymbol,
675 const char *name,
676 struct obstack *obstack)
677 {
678 if (gsymbol->language == language_ada)
679 {
680 if (name == NULL)
681 {
682 gsymbol->ada_mangled = 0;
683 gsymbol->language_specific.obstack = obstack;
684 }
685 else
686 {
687 gsymbol->ada_mangled = 1;
688 gsymbol->language_specific.demangled_name = name;
689 }
690 }
691 else
692 gsymbol->language_specific.demangled_name = name;
693 }
694
695 /* Return the demangled name of GSYMBOL. */
696
697 const char *
698 symbol_get_demangled_name (const struct general_symbol_info *gsymbol)
699 {
700 if (gsymbol->language == language_ada)
701 {
702 if (!gsymbol->ada_mangled)
703 return NULL;
704 /* Fall through. */
705 }
706
707 return gsymbol->language_specific.demangled_name;
708 }
709
710 \f
711 /* Initialize the language dependent portion of a symbol
712 depending upon the language for the symbol. */
713
714 void
715 symbol_set_language (struct general_symbol_info *gsymbol,
716 enum language language,
717 struct obstack *obstack)
718 {
719 gsymbol->language = language;
720 if (gsymbol->language == language_cplus
721 || gsymbol->language == language_d
722 || gsymbol->language == language_go
723 || gsymbol->language == language_objc
724 || gsymbol->language == language_fortran)
725 {
726 symbol_set_demangled_name (gsymbol, NULL, obstack);
727 }
728 else if (gsymbol->language == language_ada)
729 {
730 gdb_assert (gsymbol->ada_mangled == 0);
731 gsymbol->language_specific.obstack = obstack;
732 }
733 else
734 {
735 memset (&gsymbol->language_specific, 0,
736 sizeof (gsymbol->language_specific));
737 }
738 }
739
740 /* Functions to initialize a symbol's mangled name. */
741
742 /* Objects of this type are stored in the demangled name hash table. */
743 struct demangled_name_entry
744 {
745 demangled_name_entry (gdb::string_view mangled_name)
746 : mangled (mangled_name) {}
747
748 gdb::string_view mangled;
749 enum language language;
750 gdb::unique_xmalloc_ptr<char> demangled;
751 };
752
753 /* Hash function for the demangled name hash. */
754
755 static hashval_t
756 hash_demangled_name_entry (const void *data)
757 {
758 const struct demangled_name_entry *e
759 = (const struct demangled_name_entry *) data;
760
761 return fast_hash (e->mangled.data (), e->mangled.length ());
762 }
763
764 /* Equality function for the demangled name hash. */
765
766 static int
767 eq_demangled_name_entry (const void *a, const void *b)
768 {
769 const struct demangled_name_entry *da
770 = (const struct demangled_name_entry *) a;
771 const struct demangled_name_entry *db
772 = (const struct demangled_name_entry *) b;
773
774 return da->mangled == db->mangled;
775 }
776
777 static void
778 free_demangled_name_entry (void *data)
779 {
780 struct demangled_name_entry *e
781 = (struct demangled_name_entry *) data;
782
783 e->~demangled_name_entry();
784 }
785
786 /* Create the hash table used for demangled names. Each hash entry is
787 a pair of strings; one for the mangled name and one for the demangled
788 name. The entry is hashed via just the mangled name. */
789
790 static void
791 create_demangled_names_hash (struct objfile_per_bfd_storage *per_bfd)
792 {
793 /* Choose 256 as the starting size of the hash table, somewhat arbitrarily.
794 The hash table code will round this up to the next prime number.
795 Choosing a much larger table size wastes memory, and saves only about
796 1% in symbol reading. However, if the minsym count is already
797 initialized (e.g. because symbol name setting was deferred to
798 a background thread) we can initialize the hashtable with a count
799 based on that, because we will almost certainly have at least that
800 many entries. If we have a nonzero number but less than 256,
801 we still stay with 256 to have some space for psymbols, etc. */
802
803 /* htab will expand the table when it is 3/4th full, so we account for that
804 here. +2 to round up. */
805 int minsym_based_count = (per_bfd->minimal_symbol_count + 2) / 3 * 4;
806 int count = std::max (per_bfd->minimal_symbol_count, minsym_based_count);
807
808 per_bfd->demangled_names_hash.reset (htab_create_alloc
809 (count, hash_demangled_name_entry, eq_demangled_name_entry,
810 free_demangled_name_entry, xcalloc, xfree));
811 }
812
813 /* See symtab.h */
814
815 char *
816 symbol_find_demangled_name (struct general_symbol_info *gsymbol,
817 const char *mangled)
818 {
819 char *demangled = NULL;
820 int i;
821
822 if (gsymbol->language == language_unknown)
823 gsymbol->language = language_auto;
824
825 if (gsymbol->language != language_auto)
826 {
827 const struct language_defn *lang = language_def (gsymbol->language);
828
829 language_sniff_from_mangled_name (lang, mangled, &demangled);
830 return demangled;
831 }
832
833 for (i = language_unknown; i < nr_languages; ++i)
834 {
835 enum language l = (enum language) i;
836 const struct language_defn *lang = language_def (l);
837
838 if (language_sniff_from_mangled_name (lang, mangled, &demangled))
839 {
840 gsymbol->language = l;
841 return demangled;
842 }
843 }
844
845 return NULL;
846 }
847
848 /* Set both the mangled and demangled (if any) names for GSYMBOL based
849 on LINKAGE_NAME and LEN. Ordinarily, NAME is copied onto the
850 objfile's obstack; but if COPY_NAME is 0 and if NAME is
851 NUL-terminated, then this function assumes that NAME is already
852 correctly saved (either permanently or with a lifetime tied to the
853 objfile), and it will not be copied.
854
855 The hash table corresponding to OBJFILE is used, and the memory
856 comes from the per-BFD storage_obstack. LINKAGE_NAME is copied,
857 so the pointer can be discarded after calling this function. */
858
859 void
860 symbol_set_names (struct general_symbol_info *gsymbol,
861 gdb::string_view linkage_name, bool copy_name,
862 struct objfile_per_bfd_storage *per_bfd,
863 gdb::optional<hashval_t> hash)
864 {
865 struct demangled_name_entry **slot;
866
867 if (gsymbol->language == language_ada)
868 {
869 /* In Ada, we do the symbol lookups using the mangled name, so
870 we can save some space by not storing the demangled name. */
871 if (!copy_name)
872 gsymbol->name = linkage_name.data ();
873 else
874 {
875 char *name = (char *) obstack_alloc (&per_bfd->storage_obstack,
876 linkage_name.length () + 1);
877
878 memcpy (name, linkage_name.data (), linkage_name.length ());
879 name[linkage_name.length ()] = '\0';
880 gsymbol->name = name;
881 }
882 symbol_set_demangled_name (gsymbol, NULL, &per_bfd->storage_obstack);
883
884 return;
885 }
886
887 if (per_bfd->demangled_names_hash == NULL)
888 create_demangled_names_hash (per_bfd);
889
890 struct demangled_name_entry entry (linkage_name);
891 if (!hash.has_value ())
892 hash = hash_demangled_name_entry (&entry);
893 slot = ((struct demangled_name_entry **)
894 htab_find_slot_with_hash (per_bfd->demangled_names_hash.get (),
895 &entry, *hash, INSERT));
896
897 /* If this name is not in the hash table, add it. */
898 if (*slot == NULL
899 /* A C version of the symbol may have already snuck into the table.
900 This happens to, e.g., main.init (__go_init_main). Cope. */
901 || (gsymbol->language == language_go && (*slot)->demangled == nullptr))
902 {
903 /* A 0-terminated copy of the linkage name. Callers must set COPY_NAME
904 to true if the string might not be nullterminated. We have to make
905 this copy because demangling needs a nullterminated string. */
906 gdb::string_view linkage_name_copy;
907 if (copy_name)
908 {
909 char *alloc_name = (char *) alloca (linkage_name.length () + 1);
910 memcpy (alloc_name, linkage_name.data (), linkage_name.length ());
911 alloc_name[linkage_name.length ()] = '\0';
912
913 linkage_name_copy = gdb::string_view (alloc_name,
914 linkage_name.length ());
915 }
916 else
917 linkage_name_copy = linkage_name;
918
919 /* The const_cast is safe because the only reason it is already
920 initialized is if we purposefully set it from a background
921 thread to avoid doing the work here. However, it is still
922 allocated from the heap and needs to be freed by us, just
923 like if we called symbol_find_demangled_name here. */
924 gdb::unique_xmalloc_ptr<char> demangled_name
925 (gsymbol->language_specific.demangled_name
926 ? const_cast<char *> (gsymbol->language_specific.demangled_name)
927 : symbol_find_demangled_name (gsymbol, linkage_name_copy.data ()));
928
929 /* Suppose we have demangled_name==NULL, copy_name==0, and
930 linkage_name_copy==linkage_name. In this case, we already have the
931 mangled name saved, and we don't have a demangled name. So,
932 you might think we could save a little space by not recording
933 this in the hash table at all.
934
935 It turns out that it is actually important to still save such
936 an entry in the hash table, because storing this name gives
937 us better bcache hit rates for partial symbols. */
938 if (!copy_name)
939 {
940 *slot
941 = ((struct demangled_name_entry *)
942 obstack_alloc (&per_bfd->storage_obstack,
943 sizeof (demangled_name_entry)));
944 new (*slot) demangled_name_entry (linkage_name);
945 }
946 else
947 {
948 /* If we must copy the mangled name, put it directly after
949 the struct so we can have a single allocation. */
950 *slot
951 = ((struct demangled_name_entry *)
952 obstack_alloc (&per_bfd->storage_obstack,
953 sizeof (demangled_name_entry)
954 + linkage_name.length () + 1));
955 char *mangled_ptr = reinterpret_cast<char *> (*slot + 1);
956 memcpy (mangled_ptr, linkage_name.data (), linkage_name.length ());
957 mangled_ptr [linkage_name.length ()] = '\0';
958 new (*slot) demangled_name_entry
959 (gdb::string_view (mangled_ptr, linkage_name.length ()));
960 }
961 (*slot)->demangled = std::move (demangled_name);
962 (*slot)->language = gsymbol->language;
963 }
964 else if (gsymbol->language == language_unknown
965 || gsymbol->language == language_auto)
966 gsymbol->language = (*slot)->language;
967
968 gsymbol->name = (*slot)->mangled.data ();
969 if ((*slot)->demangled != nullptr)
970 symbol_set_demangled_name (gsymbol, (*slot)->demangled.get (),
971 &per_bfd->storage_obstack);
972 else
973 symbol_set_demangled_name (gsymbol, NULL, &per_bfd->storage_obstack);
974 }
975
976 /* See symtab.h. */
977
978 const char *
979 general_symbol_info::natural_name () const
980 {
981 switch (language)
982 {
983 case language_cplus:
984 case language_d:
985 case language_go:
986 case language_objc:
987 case language_fortran:
988 if (symbol_get_demangled_name (this) != NULL)
989 return symbol_get_demangled_name (this);
990 break;
991 case language_ada:
992 return ada_decode_symbol (this);
993 default:
994 break;
995 }
996 return name;
997 }
998
999 /* See symtab.h. */
1000
1001 const char *
1002 general_symbol_info::demangled_name () const
1003 {
1004 const char *dem_name = NULL;
1005
1006 switch (language)
1007 {
1008 case language_cplus:
1009 case language_d:
1010 case language_go:
1011 case language_objc:
1012 case language_fortran:
1013 dem_name = symbol_get_demangled_name (this);
1014 break;
1015 case language_ada:
1016 dem_name = ada_decode_symbol (this);
1017 break;
1018 default:
1019 break;
1020 }
1021 return dem_name;
1022 }
1023
1024 /* See symtab.h. */
1025
1026 const char *
1027 general_symbol_info::search_name () const
1028 {
1029 if (language == language_ada)
1030 return name;
1031 else
1032 return natural_name ();
1033 }
1034
1035 /* See symtab.h. */
1036
1037 bool
1038 symbol_matches_search_name (const struct general_symbol_info *gsymbol,
1039 const lookup_name_info &name)
1040 {
1041 symbol_name_matcher_ftype *name_match
1042 = get_symbol_name_matcher (language_def (gsymbol->language), name);
1043 return name_match (gsymbol->search_name (), name, NULL);
1044 }
1045
1046 \f
1047
1048 /* Return true if the two sections are the same, or if they could
1049 plausibly be copies of each other, one in an original object
1050 file and another in a separated debug file. */
1051
1052 bool
1053 matching_obj_sections (struct obj_section *obj_first,
1054 struct obj_section *obj_second)
1055 {
1056 asection *first = obj_first? obj_first->the_bfd_section : NULL;
1057 asection *second = obj_second? obj_second->the_bfd_section : NULL;
1058
1059 /* If they're the same section, then they match. */
1060 if (first == second)
1061 return true;
1062
1063 /* If either is NULL, give up. */
1064 if (first == NULL || second == NULL)
1065 return false;
1066
1067 /* This doesn't apply to absolute symbols. */
1068 if (first->owner == NULL || second->owner == NULL)
1069 return false;
1070
1071 /* If they're in the same object file, they must be different sections. */
1072 if (first->owner == second->owner)
1073 return false;
1074
1075 /* Check whether the two sections are potentially corresponding. They must
1076 have the same size, address, and name. We can't compare section indexes,
1077 which would be more reliable, because some sections may have been
1078 stripped. */
1079 if (bfd_section_size (first) != bfd_section_size (second))
1080 return false;
1081
1082 /* In-memory addresses may start at a different offset, relativize them. */
1083 if (bfd_section_vma (first) - bfd_get_start_address (first->owner)
1084 != bfd_section_vma (second) - bfd_get_start_address (second->owner))
1085 return false;
1086
1087 if (bfd_section_name (first) == NULL
1088 || bfd_section_name (second) == NULL
1089 || strcmp (bfd_section_name (first), bfd_section_name (second)) != 0)
1090 return false;
1091
1092 /* Otherwise check that they are in corresponding objfiles. */
1093
1094 struct objfile *obj = NULL;
1095 for (objfile *objfile : current_program_space->objfiles ())
1096 if (objfile->obfd == first->owner)
1097 {
1098 obj = objfile;
1099 break;
1100 }
1101 gdb_assert (obj != NULL);
1102
1103 if (obj->separate_debug_objfile != NULL
1104 && obj->separate_debug_objfile->obfd == second->owner)
1105 return true;
1106 if (obj->separate_debug_objfile_backlink != NULL
1107 && obj->separate_debug_objfile_backlink->obfd == second->owner)
1108 return true;
1109
1110 return false;
1111 }
1112
1113 /* See symtab.h. */
1114
1115 void
1116 expand_symtab_containing_pc (CORE_ADDR pc, struct obj_section *section)
1117 {
1118 struct bound_minimal_symbol msymbol;
1119
1120 /* If we know that this is not a text address, return failure. This is
1121 necessary because we loop based on texthigh and textlow, which do
1122 not include the data ranges. */
1123 msymbol = lookup_minimal_symbol_by_pc_section (pc, section);
1124 if (msymbol.minsym && msymbol.minsym->data_p ())
1125 return;
1126
1127 for (objfile *objfile : current_program_space->objfiles ())
1128 {
1129 struct compunit_symtab *cust = NULL;
1130
1131 if (objfile->sf)
1132 cust = objfile->sf->qf->find_pc_sect_compunit_symtab (objfile, msymbol,
1133 pc, section, 0);
1134 if (cust)
1135 return;
1136 }
1137 }
1138 \f
1139 /* Hash function for the symbol cache. */
1140
1141 static unsigned int
1142 hash_symbol_entry (const struct objfile *objfile_context,
1143 const char *name, domain_enum domain)
1144 {
1145 unsigned int hash = (uintptr_t) objfile_context;
1146
1147 if (name != NULL)
1148 hash += htab_hash_string (name);
1149
1150 /* Because of symbol_matches_domain we need VAR_DOMAIN and STRUCT_DOMAIN
1151 to map to the same slot. */
1152 if (domain == STRUCT_DOMAIN)
1153 hash += VAR_DOMAIN * 7;
1154 else
1155 hash += domain * 7;
1156
1157 return hash;
1158 }
1159
1160 /* Equality function for the symbol cache. */
1161
1162 static int
1163 eq_symbol_entry (const struct symbol_cache_slot *slot,
1164 const struct objfile *objfile_context,
1165 const char *name, domain_enum domain)
1166 {
1167 const char *slot_name;
1168 domain_enum slot_domain;
1169
1170 if (slot->state == SYMBOL_SLOT_UNUSED)
1171 return 0;
1172
1173 if (slot->objfile_context != objfile_context)
1174 return 0;
1175
1176 if (slot->state == SYMBOL_SLOT_NOT_FOUND)
1177 {
1178 slot_name = slot->value.not_found.name;
1179 slot_domain = slot->value.not_found.domain;
1180 }
1181 else
1182 {
1183 slot_name = slot->value.found.symbol->search_name ();
1184 slot_domain = SYMBOL_DOMAIN (slot->value.found.symbol);
1185 }
1186
1187 /* NULL names match. */
1188 if (slot_name == NULL && name == NULL)
1189 {
1190 /* But there's no point in calling symbol_matches_domain in the
1191 SYMBOL_SLOT_FOUND case. */
1192 if (slot_domain != domain)
1193 return 0;
1194 }
1195 else if (slot_name != NULL && name != NULL)
1196 {
1197 /* It's important that we use the same comparison that was done
1198 the first time through. If the slot records a found symbol,
1199 then this means using the symbol name comparison function of
1200 the symbol's language with symbol->search_name (). See
1201 dictionary.c. It also means using symbol_matches_domain for
1202 found symbols. See block.c.
1203
1204 If the slot records a not-found symbol, then require a precise match.
1205 We could still be lax with whitespace like strcmp_iw though. */
1206
1207 if (slot->state == SYMBOL_SLOT_NOT_FOUND)
1208 {
1209 if (strcmp (slot_name, name) != 0)
1210 return 0;
1211 if (slot_domain != domain)
1212 return 0;
1213 }
1214 else
1215 {
1216 struct symbol *sym = slot->value.found.symbol;
1217 lookup_name_info lookup_name (name, symbol_name_match_type::FULL);
1218
1219 if (!SYMBOL_MATCHES_SEARCH_NAME (sym, lookup_name))
1220 return 0;
1221
1222 if (!symbol_matches_domain (SYMBOL_LANGUAGE (sym),
1223 slot_domain, domain))
1224 return 0;
1225 }
1226 }
1227 else
1228 {
1229 /* Only one name is NULL. */
1230 return 0;
1231 }
1232
1233 return 1;
1234 }
1235
1236 /* Given a cache of size SIZE, return the size of the struct (with variable
1237 length array) in bytes. */
1238
1239 static size_t
1240 symbol_cache_byte_size (unsigned int size)
1241 {
1242 return (sizeof (struct block_symbol_cache)
1243 + ((size - 1) * sizeof (struct symbol_cache_slot)));
1244 }
1245
1246 /* Resize CACHE. */
1247
1248 static void
1249 resize_symbol_cache (struct symbol_cache *cache, unsigned int new_size)
1250 {
1251 /* If there's no change in size, don't do anything.
1252 All caches have the same size, so we can just compare with the size
1253 of the global symbols cache. */
1254 if ((cache->global_symbols != NULL
1255 && cache->global_symbols->size == new_size)
1256 || (cache->global_symbols == NULL
1257 && new_size == 0))
1258 return;
1259
1260 destroy_block_symbol_cache (cache->global_symbols);
1261 destroy_block_symbol_cache (cache->static_symbols);
1262
1263 if (new_size == 0)
1264 {
1265 cache->global_symbols = NULL;
1266 cache->static_symbols = NULL;
1267 }
1268 else
1269 {
1270 size_t total_size = symbol_cache_byte_size (new_size);
1271
1272 cache->global_symbols
1273 = (struct block_symbol_cache *) xcalloc (1, total_size);
1274 cache->static_symbols
1275 = (struct block_symbol_cache *) xcalloc (1, total_size);
1276 cache->global_symbols->size = new_size;
1277 cache->static_symbols->size = new_size;
1278 }
1279 }
1280
1281 /* Return the symbol cache of PSPACE.
1282 Create one if it doesn't exist yet. */
1283
1284 static struct symbol_cache *
1285 get_symbol_cache (struct program_space *pspace)
1286 {
1287 struct symbol_cache *cache = symbol_cache_key.get (pspace);
1288
1289 if (cache == NULL)
1290 {
1291 cache = symbol_cache_key.emplace (pspace);
1292 resize_symbol_cache (cache, symbol_cache_size);
1293 }
1294
1295 return cache;
1296 }
1297
1298 /* Set the size of the symbol cache in all program spaces. */
1299
1300 static void
1301 set_symbol_cache_size (unsigned int new_size)
1302 {
1303 struct program_space *pspace;
1304
1305 ALL_PSPACES (pspace)
1306 {
1307 struct symbol_cache *cache = symbol_cache_key.get (pspace);
1308
1309 /* The pspace could have been created but not have a cache yet. */
1310 if (cache != NULL)
1311 resize_symbol_cache (cache, new_size);
1312 }
1313 }
1314
1315 /* Called when symbol-cache-size is set. */
1316
1317 static void
1318 set_symbol_cache_size_handler (const char *args, int from_tty,
1319 struct cmd_list_element *c)
1320 {
1321 if (new_symbol_cache_size > MAX_SYMBOL_CACHE_SIZE)
1322 {
1323 /* Restore the previous value.
1324 This is the value the "show" command prints. */
1325 new_symbol_cache_size = symbol_cache_size;
1326
1327 error (_("Symbol cache size is too large, max is %u."),
1328 MAX_SYMBOL_CACHE_SIZE);
1329 }
1330 symbol_cache_size = new_symbol_cache_size;
1331
1332 set_symbol_cache_size (symbol_cache_size);
1333 }
1334
1335 /* Lookup symbol NAME,DOMAIN in BLOCK in the symbol cache of PSPACE.
1336 OBJFILE_CONTEXT is the current objfile, which may be NULL.
1337 The result is the symbol if found, SYMBOL_LOOKUP_FAILED if a previous lookup
1338 failed (and thus this one will too), or NULL if the symbol is not present
1339 in the cache.
1340 *BSC_PTR and *SLOT_PTR are set to the cache and slot of the symbol, which
1341 can be used to save the result of a full lookup attempt. */
1342
1343 static struct block_symbol
1344 symbol_cache_lookup (struct symbol_cache *cache,
1345 struct objfile *objfile_context, enum block_enum block,
1346 const char *name, domain_enum domain,
1347 struct block_symbol_cache **bsc_ptr,
1348 struct symbol_cache_slot **slot_ptr)
1349 {
1350 struct block_symbol_cache *bsc;
1351 unsigned int hash;
1352 struct symbol_cache_slot *slot;
1353
1354 if (block == GLOBAL_BLOCK)
1355 bsc = cache->global_symbols;
1356 else
1357 bsc = cache->static_symbols;
1358 if (bsc == NULL)
1359 {
1360 *bsc_ptr = NULL;
1361 *slot_ptr = NULL;
1362 return {};
1363 }
1364
1365 hash = hash_symbol_entry (objfile_context, name, domain);
1366 slot = bsc->symbols + hash % bsc->size;
1367
1368 *bsc_ptr = bsc;
1369 *slot_ptr = slot;
1370
1371 if (eq_symbol_entry (slot, objfile_context, name, domain))
1372 {
1373 if (symbol_lookup_debug)
1374 fprintf_unfiltered (gdb_stdlog,
1375 "%s block symbol cache hit%s for %s, %s\n",
1376 block == GLOBAL_BLOCK ? "Global" : "Static",
1377 slot->state == SYMBOL_SLOT_NOT_FOUND
1378 ? " (not found)" : "",
1379 name, domain_name (domain));
1380 ++bsc->hits;
1381 if (slot->state == SYMBOL_SLOT_NOT_FOUND)
1382 return SYMBOL_LOOKUP_FAILED;
1383 return slot->value.found;
1384 }
1385
1386 /* Symbol is not present in the cache. */
1387
1388 if (symbol_lookup_debug)
1389 {
1390 fprintf_unfiltered (gdb_stdlog,
1391 "%s block symbol cache miss for %s, %s\n",
1392 block == GLOBAL_BLOCK ? "Global" : "Static",
1393 name, domain_name (domain));
1394 }
1395 ++bsc->misses;
1396 return {};
1397 }
1398
1399 /* Mark SYMBOL as found in SLOT.
1400 OBJFILE_CONTEXT is the current objfile when the lookup was done, or NULL
1401 if it's not needed to distinguish lookups (STATIC_BLOCK). It is *not*
1402 necessarily the objfile the symbol was found in. */
1403
1404 static void
1405 symbol_cache_mark_found (struct block_symbol_cache *bsc,
1406 struct symbol_cache_slot *slot,
1407 struct objfile *objfile_context,
1408 struct symbol *symbol,
1409 const struct block *block)
1410 {
1411 if (bsc == NULL)
1412 return;
1413 if (slot->state != SYMBOL_SLOT_UNUSED)
1414 {
1415 ++bsc->collisions;
1416 symbol_cache_clear_slot (slot);
1417 }
1418 slot->state = SYMBOL_SLOT_FOUND;
1419 slot->objfile_context = objfile_context;
1420 slot->value.found.symbol = symbol;
1421 slot->value.found.block = block;
1422 }
1423
1424 /* Mark symbol NAME, DOMAIN as not found in SLOT.
1425 OBJFILE_CONTEXT is the current objfile when the lookup was done, or NULL
1426 if it's not needed to distinguish lookups (STATIC_BLOCK). */
1427
1428 static void
1429 symbol_cache_mark_not_found (struct block_symbol_cache *bsc,
1430 struct symbol_cache_slot *slot,
1431 struct objfile *objfile_context,
1432 const char *name, domain_enum domain)
1433 {
1434 if (bsc == NULL)
1435 return;
1436 if (slot->state != SYMBOL_SLOT_UNUSED)
1437 {
1438 ++bsc->collisions;
1439 symbol_cache_clear_slot (slot);
1440 }
1441 slot->state = SYMBOL_SLOT_NOT_FOUND;
1442 slot->objfile_context = objfile_context;
1443 slot->value.not_found.name = xstrdup (name);
1444 slot->value.not_found.domain = domain;
1445 }
1446
1447 /* Flush the symbol cache of PSPACE. */
1448
1449 static void
1450 symbol_cache_flush (struct program_space *pspace)
1451 {
1452 struct symbol_cache *cache = symbol_cache_key.get (pspace);
1453 int pass;
1454
1455 if (cache == NULL)
1456 return;
1457 if (cache->global_symbols == NULL)
1458 {
1459 gdb_assert (symbol_cache_size == 0);
1460 gdb_assert (cache->static_symbols == NULL);
1461 return;
1462 }
1463
1464 /* If the cache is untouched since the last flush, early exit.
1465 This is important for performance during the startup of a program linked
1466 with 100s (or 1000s) of shared libraries. */
1467 if (cache->global_symbols->misses == 0
1468 && cache->static_symbols->misses == 0)
1469 return;
1470
1471 gdb_assert (cache->global_symbols->size == symbol_cache_size);
1472 gdb_assert (cache->static_symbols->size == symbol_cache_size);
1473
1474 for (pass = 0; pass < 2; ++pass)
1475 {
1476 struct block_symbol_cache *bsc
1477 = pass == 0 ? cache->global_symbols : cache->static_symbols;
1478 unsigned int i;
1479
1480 for (i = 0; i < bsc->size; ++i)
1481 symbol_cache_clear_slot (&bsc->symbols[i]);
1482 }
1483
1484 cache->global_symbols->hits = 0;
1485 cache->global_symbols->misses = 0;
1486 cache->global_symbols->collisions = 0;
1487 cache->static_symbols->hits = 0;
1488 cache->static_symbols->misses = 0;
1489 cache->static_symbols->collisions = 0;
1490 }
1491
1492 /* Dump CACHE. */
1493
1494 static void
1495 symbol_cache_dump (const struct symbol_cache *cache)
1496 {
1497 int pass;
1498
1499 if (cache->global_symbols == NULL)
1500 {
1501 printf_filtered (" <disabled>\n");
1502 return;
1503 }
1504
1505 for (pass = 0; pass < 2; ++pass)
1506 {
1507 const struct block_symbol_cache *bsc
1508 = pass == 0 ? cache->global_symbols : cache->static_symbols;
1509 unsigned int i;
1510
1511 if (pass == 0)
1512 printf_filtered ("Global symbols:\n");
1513 else
1514 printf_filtered ("Static symbols:\n");
1515
1516 for (i = 0; i < bsc->size; ++i)
1517 {
1518 const struct symbol_cache_slot *slot = &bsc->symbols[i];
1519
1520 QUIT;
1521
1522 switch (slot->state)
1523 {
1524 case SYMBOL_SLOT_UNUSED:
1525 break;
1526 case SYMBOL_SLOT_NOT_FOUND:
1527 printf_filtered (" [%4u] = %s, %s %s (not found)\n", i,
1528 host_address_to_string (slot->objfile_context),
1529 slot->value.not_found.name,
1530 domain_name (slot->value.not_found.domain));
1531 break;
1532 case SYMBOL_SLOT_FOUND:
1533 {
1534 struct symbol *found = slot->value.found.symbol;
1535 const struct objfile *context = slot->objfile_context;
1536
1537 printf_filtered (" [%4u] = %s, %s %s\n", i,
1538 host_address_to_string (context),
1539 found->print_name (),
1540 domain_name (SYMBOL_DOMAIN (found)));
1541 break;
1542 }
1543 }
1544 }
1545 }
1546 }
1547
1548 /* The "mt print symbol-cache" command. */
1549
1550 static void
1551 maintenance_print_symbol_cache (const char *args, int from_tty)
1552 {
1553 struct program_space *pspace;
1554
1555 ALL_PSPACES (pspace)
1556 {
1557 struct symbol_cache *cache;
1558
1559 printf_filtered (_("Symbol cache for pspace %d\n%s:\n"),
1560 pspace->num,
1561 pspace->symfile_object_file != NULL
1562 ? objfile_name (pspace->symfile_object_file)
1563 : "(no object file)");
1564
1565 /* If the cache hasn't been created yet, avoid creating one. */
1566 cache = symbol_cache_key.get (pspace);
1567 if (cache == NULL)
1568 printf_filtered (" <empty>\n");
1569 else
1570 symbol_cache_dump (cache);
1571 }
1572 }
1573
1574 /* The "mt flush-symbol-cache" command. */
1575
1576 static void
1577 maintenance_flush_symbol_cache (const char *args, int from_tty)
1578 {
1579 struct program_space *pspace;
1580
1581 ALL_PSPACES (pspace)
1582 {
1583 symbol_cache_flush (pspace);
1584 }
1585 }
1586
1587 /* Print usage statistics of CACHE. */
1588
1589 static void
1590 symbol_cache_stats (struct symbol_cache *cache)
1591 {
1592 int pass;
1593
1594 if (cache->global_symbols == NULL)
1595 {
1596 printf_filtered (" <disabled>\n");
1597 return;
1598 }
1599
1600 for (pass = 0; pass < 2; ++pass)
1601 {
1602 const struct block_symbol_cache *bsc
1603 = pass == 0 ? cache->global_symbols : cache->static_symbols;
1604
1605 QUIT;
1606
1607 if (pass == 0)
1608 printf_filtered ("Global block cache stats:\n");
1609 else
1610 printf_filtered ("Static block cache stats:\n");
1611
1612 printf_filtered (" size: %u\n", bsc->size);
1613 printf_filtered (" hits: %u\n", bsc->hits);
1614 printf_filtered (" misses: %u\n", bsc->misses);
1615 printf_filtered (" collisions: %u\n", bsc->collisions);
1616 }
1617 }
1618
1619 /* The "mt print symbol-cache-statistics" command. */
1620
1621 static void
1622 maintenance_print_symbol_cache_statistics (const char *args, int from_tty)
1623 {
1624 struct program_space *pspace;
1625
1626 ALL_PSPACES (pspace)
1627 {
1628 struct symbol_cache *cache;
1629
1630 printf_filtered (_("Symbol cache statistics for pspace %d\n%s:\n"),
1631 pspace->num,
1632 pspace->symfile_object_file != NULL
1633 ? objfile_name (pspace->symfile_object_file)
1634 : "(no object file)");
1635
1636 /* If the cache hasn't been created yet, avoid creating one. */
1637 cache = symbol_cache_key.get (pspace);
1638 if (cache == NULL)
1639 printf_filtered (" empty, no stats available\n");
1640 else
1641 symbol_cache_stats (cache);
1642 }
1643 }
1644
1645 /* This module's 'new_objfile' observer. */
1646
1647 static void
1648 symtab_new_objfile_observer (struct objfile *objfile)
1649 {
1650 /* Ideally we'd use OBJFILE->pspace, but OBJFILE may be NULL. */
1651 symbol_cache_flush (current_program_space);
1652 }
1653
1654 /* This module's 'free_objfile' observer. */
1655
1656 static void
1657 symtab_free_objfile_observer (struct objfile *objfile)
1658 {
1659 symbol_cache_flush (objfile->pspace);
1660 }
1661 \f
1662 /* Debug symbols usually don't have section information. We need to dig that
1663 out of the minimal symbols and stash that in the debug symbol. */
1664
1665 void
1666 fixup_section (struct general_symbol_info *ginfo,
1667 CORE_ADDR addr, struct objfile *objfile)
1668 {
1669 struct minimal_symbol *msym;
1670
1671 /* First, check whether a minimal symbol with the same name exists
1672 and points to the same address. The address check is required
1673 e.g. on PowerPC64, where the minimal symbol for a function will
1674 point to the function descriptor, while the debug symbol will
1675 point to the actual function code. */
1676 msym = lookup_minimal_symbol_by_pc_name (addr, ginfo->name, objfile);
1677 if (msym)
1678 ginfo->section = MSYMBOL_SECTION (msym);
1679 else
1680 {
1681 /* Static, function-local variables do appear in the linker
1682 (minimal) symbols, but are frequently given names that won't
1683 be found via lookup_minimal_symbol(). E.g., it has been
1684 observed in frv-uclinux (ELF) executables that a static,
1685 function-local variable named "foo" might appear in the
1686 linker symbols as "foo.6" or "foo.3". Thus, there is no
1687 point in attempting to extend the lookup-by-name mechanism to
1688 handle this case due to the fact that there can be multiple
1689 names.
1690
1691 So, instead, search the section table when lookup by name has
1692 failed. The ``addr'' and ``endaddr'' fields may have already
1693 been relocated. If so, the relocation offset (i.e. the
1694 ANOFFSET value) needs to be subtracted from these values when
1695 performing the comparison. We unconditionally subtract it,
1696 because, when no relocation has been performed, the ANOFFSET
1697 value will simply be zero.
1698
1699 The address of the symbol whose section we're fixing up HAS
1700 NOT BEEN adjusted (relocated) yet. It can't have been since
1701 the section isn't yet known and knowing the section is
1702 necessary in order to add the correct relocation value. In
1703 other words, we wouldn't even be in this function (attempting
1704 to compute the section) if it were already known.
1705
1706 Note that it is possible to search the minimal symbols
1707 (subtracting the relocation value if necessary) to find the
1708 matching minimal symbol, but this is overkill and much less
1709 efficient. It is not necessary to find the matching minimal
1710 symbol, only its section.
1711
1712 Note that this technique (of doing a section table search)
1713 can fail when unrelocated section addresses overlap. For
1714 this reason, we still attempt a lookup by name prior to doing
1715 a search of the section table. */
1716
1717 struct obj_section *s;
1718 int fallback = -1;
1719
1720 ALL_OBJFILE_OSECTIONS (objfile, s)
1721 {
1722 int idx = s - objfile->sections;
1723 CORE_ADDR offset = ANOFFSET (objfile->section_offsets, idx);
1724
1725 if (fallback == -1)
1726 fallback = idx;
1727
1728 if (obj_section_addr (s) - offset <= addr
1729 && addr < obj_section_endaddr (s) - offset)
1730 {
1731 ginfo->section = idx;
1732 return;
1733 }
1734 }
1735
1736 /* If we didn't find the section, assume it is in the first
1737 section. If there is no allocated section, then it hardly
1738 matters what we pick, so just pick zero. */
1739 if (fallback == -1)
1740 ginfo->section = 0;
1741 else
1742 ginfo->section = fallback;
1743 }
1744 }
1745
1746 struct symbol *
1747 fixup_symbol_section (struct symbol *sym, struct objfile *objfile)
1748 {
1749 CORE_ADDR addr;
1750
1751 if (!sym)
1752 return NULL;
1753
1754 if (!SYMBOL_OBJFILE_OWNED (sym))
1755 return sym;
1756
1757 /* We either have an OBJFILE, or we can get at it from the sym's
1758 symtab. Anything else is a bug. */
1759 gdb_assert (objfile || symbol_symtab (sym));
1760
1761 if (objfile == NULL)
1762 objfile = symbol_objfile (sym);
1763
1764 if (SYMBOL_OBJ_SECTION (objfile, sym))
1765 return sym;
1766
1767 /* We should have an objfile by now. */
1768 gdb_assert (objfile);
1769
1770 switch (SYMBOL_CLASS (sym))
1771 {
1772 case LOC_STATIC:
1773 case LOC_LABEL:
1774 addr = SYMBOL_VALUE_ADDRESS (sym);
1775 break;
1776 case LOC_BLOCK:
1777 addr = BLOCK_ENTRY_PC (SYMBOL_BLOCK_VALUE (sym));
1778 break;
1779
1780 default:
1781 /* Nothing else will be listed in the minsyms -- no use looking
1782 it up. */
1783 return sym;
1784 }
1785
1786 fixup_section (sym, addr, objfile);
1787
1788 return sym;
1789 }
1790
1791 /* See symtab.h. */
1792
1793 demangle_for_lookup_info::demangle_for_lookup_info
1794 (const lookup_name_info &lookup_name, language lang)
1795 {
1796 demangle_result_storage storage;
1797
1798 if (lookup_name.ignore_parameters () && lang == language_cplus)
1799 {
1800 gdb::unique_xmalloc_ptr<char> without_params
1801 = cp_remove_params_if_any (lookup_name.name ().c_str (),
1802 lookup_name.completion_mode ());
1803
1804 if (without_params != NULL)
1805 {
1806 if (lookup_name.match_type () != symbol_name_match_type::SEARCH_NAME)
1807 m_demangled_name = demangle_for_lookup (without_params.get (),
1808 lang, storage);
1809 return;
1810 }
1811 }
1812
1813 if (lookup_name.match_type () == symbol_name_match_type::SEARCH_NAME)
1814 m_demangled_name = lookup_name.name ();
1815 else
1816 m_demangled_name = demangle_for_lookup (lookup_name.name ().c_str (),
1817 lang, storage);
1818 }
1819
1820 /* See symtab.h. */
1821
1822 const lookup_name_info &
1823 lookup_name_info::match_any ()
1824 {
1825 /* Lookup any symbol that "" would complete. I.e., this matches all
1826 symbol names. */
1827 static const lookup_name_info lookup_name ({}, symbol_name_match_type::FULL,
1828 true);
1829
1830 return lookup_name;
1831 }
1832
1833 /* Compute the demangled form of NAME as used by the various symbol
1834 lookup functions. The result can either be the input NAME
1835 directly, or a pointer to a buffer owned by the STORAGE object.
1836
1837 For Ada, this function just returns NAME, unmodified.
1838 Normally, Ada symbol lookups are performed using the encoded name
1839 rather than the demangled name, and so it might seem to make sense
1840 for this function to return an encoded version of NAME.
1841 Unfortunately, we cannot do this, because this function is used in
1842 circumstances where it is not appropriate to try to encode NAME.
1843 For instance, when displaying the frame info, we demangle the name
1844 of each parameter, and then perform a symbol lookup inside our
1845 function using that demangled name. In Ada, certain functions
1846 have internally-generated parameters whose name contain uppercase
1847 characters. Encoding those name would result in those uppercase
1848 characters to become lowercase, and thus cause the symbol lookup
1849 to fail. */
1850
1851 const char *
1852 demangle_for_lookup (const char *name, enum language lang,
1853 demangle_result_storage &storage)
1854 {
1855 /* If we are using C++, D, or Go, demangle the name before doing a
1856 lookup, so we can always binary search. */
1857 if (lang == language_cplus)
1858 {
1859 char *demangled_name = gdb_demangle (name, DMGL_ANSI | DMGL_PARAMS);
1860 if (demangled_name != NULL)
1861 return storage.set_malloc_ptr (demangled_name);
1862
1863 /* If we were given a non-mangled name, canonicalize it
1864 according to the language (so far only for C++). */
1865 std::string canon = cp_canonicalize_string (name);
1866 if (!canon.empty ())
1867 return storage.swap_string (canon);
1868 }
1869 else if (lang == language_d)
1870 {
1871 char *demangled_name = d_demangle (name, 0);
1872 if (demangled_name != NULL)
1873 return storage.set_malloc_ptr (demangled_name);
1874 }
1875 else if (lang == language_go)
1876 {
1877 char *demangled_name = go_demangle (name, 0);
1878 if (demangled_name != NULL)
1879 return storage.set_malloc_ptr (demangled_name);
1880 }
1881
1882 return name;
1883 }
1884
1885 /* See symtab.h. */
1886
1887 unsigned int
1888 search_name_hash (enum language language, const char *search_name)
1889 {
1890 return language_def (language)->la_search_name_hash (search_name);
1891 }
1892
1893 /* See symtab.h.
1894
1895 This function (or rather its subordinates) have a bunch of loops and
1896 it would seem to be attractive to put in some QUIT's (though I'm not really
1897 sure whether it can run long enough to be really important). But there
1898 are a few calls for which it would appear to be bad news to quit
1899 out of here: e.g., find_proc_desc in alpha-mdebug-tdep.c. (Note
1900 that there is C++ code below which can error(), but that probably
1901 doesn't affect these calls since they are looking for a known
1902 variable and thus can probably assume it will never hit the C++
1903 code). */
1904
1905 struct block_symbol
1906 lookup_symbol_in_language (const char *name, const struct block *block,
1907 const domain_enum domain, enum language lang,
1908 struct field_of_this_result *is_a_field_of_this)
1909 {
1910 demangle_result_storage storage;
1911 const char *modified_name = demangle_for_lookup (name, lang, storage);
1912
1913 return lookup_symbol_aux (modified_name,
1914 symbol_name_match_type::FULL,
1915 block, domain, lang,
1916 is_a_field_of_this);
1917 }
1918
1919 /* See symtab.h. */
1920
1921 struct block_symbol
1922 lookup_symbol (const char *name, const struct block *block,
1923 domain_enum domain,
1924 struct field_of_this_result *is_a_field_of_this)
1925 {
1926 return lookup_symbol_in_language (name, block, domain,
1927 current_language->la_language,
1928 is_a_field_of_this);
1929 }
1930
1931 /* See symtab.h. */
1932
1933 struct block_symbol
1934 lookup_symbol_search_name (const char *search_name, const struct block *block,
1935 domain_enum domain)
1936 {
1937 return lookup_symbol_aux (search_name, symbol_name_match_type::SEARCH_NAME,
1938 block, domain, language_asm, NULL);
1939 }
1940
1941 /* See symtab.h. */
1942
1943 struct block_symbol
1944 lookup_language_this (const struct language_defn *lang,
1945 const struct block *block)
1946 {
1947 if (lang->la_name_of_this == NULL || block == NULL)
1948 return {};
1949
1950 if (symbol_lookup_debug > 1)
1951 {
1952 struct objfile *objfile = lookup_objfile_from_block (block);
1953
1954 fprintf_unfiltered (gdb_stdlog,
1955 "lookup_language_this (%s, %s (objfile %s))",
1956 lang->la_name, host_address_to_string (block),
1957 objfile_debug_name (objfile));
1958 }
1959
1960 while (block)
1961 {
1962 struct symbol *sym;
1963
1964 sym = block_lookup_symbol (block, lang->la_name_of_this,
1965 symbol_name_match_type::SEARCH_NAME,
1966 VAR_DOMAIN);
1967 if (sym != NULL)
1968 {
1969 if (symbol_lookup_debug > 1)
1970 {
1971 fprintf_unfiltered (gdb_stdlog, " = %s (%s, block %s)\n",
1972 sym->print_name (),
1973 host_address_to_string (sym),
1974 host_address_to_string (block));
1975 }
1976 return (struct block_symbol) {sym, block};
1977 }
1978 if (BLOCK_FUNCTION (block))
1979 break;
1980 block = BLOCK_SUPERBLOCK (block);
1981 }
1982
1983 if (symbol_lookup_debug > 1)
1984 fprintf_unfiltered (gdb_stdlog, " = NULL\n");
1985 return {};
1986 }
1987
1988 /* Given TYPE, a structure/union,
1989 return 1 if the component named NAME from the ultimate target
1990 structure/union is defined, otherwise, return 0. */
1991
1992 static int
1993 check_field (struct type *type, const char *name,
1994 struct field_of_this_result *is_a_field_of_this)
1995 {
1996 int i;
1997
1998 /* The type may be a stub. */
1999 type = check_typedef (type);
2000
2001 for (i = TYPE_NFIELDS (type) - 1; i >= TYPE_N_BASECLASSES (type); i--)
2002 {
2003 const char *t_field_name = TYPE_FIELD_NAME (type, i);
2004
2005 if (t_field_name && (strcmp_iw (t_field_name, name) == 0))
2006 {
2007 is_a_field_of_this->type = type;
2008 is_a_field_of_this->field = &TYPE_FIELD (type, i);
2009 return 1;
2010 }
2011 }
2012
2013 /* C++: If it was not found as a data field, then try to return it
2014 as a pointer to a method. */
2015
2016 for (i = TYPE_NFN_FIELDS (type) - 1; i >= 0; --i)
2017 {
2018 if (strcmp_iw (TYPE_FN_FIELDLIST_NAME (type, i), name) == 0)
2019 {
2020 is_a_field_of_this->type = type;
2021 is_a_field_of_this->fn_field = &TYPE_FN_FIELDLIST (type, i);
2022 return 1;
2023 }
2024 }
2025
2026 for (i = TYPE_N_BASECLASSES (type) - 1; i >= 0; i--)
2027 if (check_field (TYPE_BASECLASS (type, i), name, is_a_field_of_this))
2028 return 1;
2029
2030 return 0;
2031 }
2032
2033 /* Behave like lookup_symbol except that NAME is the natural name
2034 (e.g., demangled name) of the symbol that we're looking for. */
2035
2036 static struct block_symbol
2037 lookup_symbol_aux (const char *name, symbol_name_match_type match_type,
2038 const struct block *block,
2039 const domain_enum domain, enum language language,
2040 struct field_of_this_result *is_a_field_of_this)
2041 {
2042 struct block_symbol result;
2043 const struct language_defn *langdef;
2044
2045 if (symbol_lookup_debug)
2046 {
2047 struct objfile *objfile = lookup_objfile_from_block (block);
2048
2049 fprintf_unfiltered (gdb_stdlog,
2050 "lookup_symbol_aux (%s, %s (objfile %s), %s, %s)\n",
2051 name, host_address_to_string (block),
2052 objfile != NULL
2053 ? objfile_debug_name (objfile) : "NULL",
2054 domain_name (domain), language_str (language));
2055 }
2056
2057 /* Make sure we do something sensible with is_a_field_of_this, since
2058 the callers that set this parameter to some non-null value will
2059 certainly use it later. If we don't set it, the contents of
2060 is_a_field_of_this are undefined. */
2061 if (is_a_field_of_this != NULL)
2062 memset (is_a_field_of_this, 0, sizeof (*is_a_field_of_this));
2063
2064 /* Search specified block and its superiors. Don't search
2065 STATIC_BLOCK or GLOBAL_BLOCK. */
2066
2067 result = lookup_local_symbol (name, match_type, block, domain, language);
2068 if (result.symbol != NULL)
2069 {
2070 if (symbol_lookup_debug)
2071 {
2072 fprintf_unfiltered (gdb_stdlog, "lookup_symbol_aux (...) = %s\n",
2073 host_address_to_string (result.symbol));
2074 }
2075 return result;
2076 }
2077
2078 /* If requested to do so by the caller and if appropriate for LANGUAGE,
2079 check to see if NAME is a field of `this'. */
2080
2081 langdef = language_def (language);
2082
2083 /* Don't do this check if we are searching for a struct. It will
2084 not be found by check_field, but will be found by other
2085 means. */
2086 if (is_a_field_of_this != NULL && domain != STRUCT_DOMAIN)
2087 {
2088 result = lookup_language_this (langdef, block);
2089
2090 if (result.symbol)
2091 {
2092 struct type *t = result.symbol->type;
2093
2094 /* I'm not really sure that type of this can ever
2095 be typedefed; just be safe. */
2096 t = check_typedef (t);
2097 if (TYPE_CODE (t) == TYPE_CODE_PTR || TYPE_IS_REFERENCE (t))
2098 t = TYPE_TARGET_TYPE (t);
2099
2100 if (TYPE_CODE (t) != TYPE_CODE_STRUCT
2101 && TYPE_CODE (t) != TYPE_CODE_UNION)
2102 error (_("Internal error: `%s' is not an aggregate"),
2103 langdef->la_name_of_this);
2104
2105 if (check_field (t, name, is_a_field_of_this))
2106 {
2107 if (symbol_lookup_debug)
2108 {
2109 fprintf_unfiltered (gdb_stdlog,
2110 "lookup_symbol_aux (...) = NULL\n");
2111 }
2112 return {};
2113 }
2114 }
2115 }
2116
2117 /* Now do whatever is appropriate for LANGUAGE to look
2118 up static and global variables. */
2119
2120 result = langdef->la_lookup_symbol_nonlocal (langdef, name, block, domain);
2121 if (result.symbol != NULL)
2122 {
2123 if (symbol_lookup_debug)
2124 {
2125 fprintf_unfiltered (gdb_stdlog, "lookup_symbol_aux (...) = %s\n",
2126 host_address_to_string (result.symbol));
2127 }
2128 return result;
2129 }
2130
2131 /* Now search all static file-level symbols. Not strictly correct,
2132 but more useful than an error. */
2133
2134 result = lookup_static_symbol (name, domain);
2135 if (symbol_lookup_debug)
2136 {
2137 fprintf_unfiltered (gdb_stdlog, "lookup_symbol_aux (...) = %s\n",
2138 result.symbol != NULL
2139 ? host_address_to_string (result.symbol)
2140 : "NULL");
2141 }
2142 return result;
2143 }
2144
2145 /* Check to see if the symbol is defined in BLOCK or its superiors.
2146 Don't search STATIC_BLOCK or GLOBAL_BLOCK. */
2147
2148 static struct block_symbol
2149 lookup_local_symbol (const char *name,
2150 symbol_name_match_type match_type,
2151 const struct block *block,
2152 const domain_enum domain,
2153 enum language language)
2154 {
2155 struct symbol *sym;
2156 const struct block *static_block = block_static_block (block);
2157 const char *scope = block_scope (block);
2158
2159 /* Check if either no block is specified or it's a global block. */
2160
2161 if (static_block == NULL)
2162 return {};
2163
2164 while (block != static_block)
2165 {
2166 sym = lookup_symbol_in_block (name, match_type, block, domain);
2167 if (sym != NULL)
2168 return (struct block_symbol) {sym, block};
2169
2170 if (language == language_cplus || language == language_fortran)
2171 {
2172 struct block_symbol blocksym
2173 = cp_lookup_symbol_imports_or_template (scope, name, block,
2174 domain);
2175
2176 if (blocksym.symbol != NULL)
2177 return blocksym;
2178 }
2179
2180 if (BLOCK_FUNCTION (block) != NULL && block_inlined_p (block))
2181 break;
2182 block = BLOCK_SUPERBLOCK (block);
2183 }
2184
2185 /* We've reached the end of the function without finding a result. */
2186
2187 return {};
2188 }
2189
2190 /* See symtab.h. */
2191
2192 struct objfile *
2193 lookup_objfile_from_block (const struct block *block)
2194 {
2195 if (block == NULL)
2196 return NULL;
2197
2198 block = block_global_block (block);
2199 /* Look through all blockvectors. */
2200 for (objfile *obj : current_program_space->objfiles ())
2201 {
2202 for (compunit_symtab *cust : obj->compunits ())
2203 if (block == BLOCKVECTOR_BLOCK (COMPUNIT_BLOCKVECTOR (cust),
2204 GLOBAL_BLOCK))
2205 {
2206 if (obj->separate_debug_objfile_backlink)
2207 obj = obj->separate_debug_objfile_backlink;
2208
2209 return obj;
2210 }
2211 }
2212
2213 return NULL;
2214 }
2215
2216 /* See symtab.h. */
2217
2218 struct symbol *
2219 lookup_symbol_in_block (const char *name, symbol_name_match_type match_type,
2220 const struct block *block,
2221 const domain_enum domain)
2222 {
2223 struct symbol *sym;
2224
2225 if (symbol_lookup_debug > 1)
2226 {
2227 struct objfile *objfile = lookup_objfile_from_block (block);
2228
2229 fprintf_unfiltered (gdb_stdlog,
2230 "lookup_symbol_in_block (%s, %s (objfile %s), %s)",
2231 name, host_address_to_string (block),
2232 objfile_debug_name (objfile),
2233 domain_name (domain));
2234 }
2235
2236 sym = block_lookup_symbol (block, name, match_type, domain);
2237 if (sym)
2238 {
2239 if (symbol_lookup_debug > 1)
2240 {
2241 fprintf_unfiltered (gdb_stdlog, " = %s\n",
2242 host_address_to_string (sym));
2243 }
2244 return fixup_symbol_section (sym, NULL);
2245 }
2246
2247 if (symbol_lookup_debug > 1)
2248 fprintf_unfiltered (gdb_stdlog, " = NULL\n");
2249 return NULL;
2250 }
2251
2252 /* See symtab.h. */
2253
2254 struct block_symbol
2255 lookup_global_symbol_from_objfile (struct objfile *main_objfile,
2256 enum block_enum block_index,
2257 const char *name,
2258 const domain_enum domain)
2259 {
2260 gdb_assert (block_index == GLOBAL_BLOCK || block_index == STATIC_BLOCK);
2261
2262 for (objfile *objfile : main_objfile->separate_debug_objfiles ())
2263 {
2264 struct block_symbol result
2265 = lookup_symbol_in_objfile (objfile, block_index, name, domain);
2266
2267 if (result.symbol != nullptr)
2268 return result;
2269 }
2270
2271 return {};
2272 }
2273
2274 /* Check to see if the symbol is defined in one of the OBJFILE's
2275 symtabs. BLOCK_INDEX should be either GLOBAL_BLOCK or STATIC_BLOCK,
2276 depending on whether or not we want to search global symbols or
2277 static symbols. */
2278
2279 static struct block_symbol
2280 lookup_symbol_in_objfile_symtabs (struct objfile *objfile,
2281 enum block_enum block_index, const char *name,
2282 const domain_enum domain)
2283 {
2284 gdb_assert (block_index == GLOBAL_BLOCK || block_index == STATIC_BLOCK);
2285
2286 if (symbol_lookup_debug > 1)
2287 {
2288 fprintf_unfiltered (gdb_stdlog,
2289 "lookup_symbol_in_objfile_symtabs (%s, %s, %s, %s)",
2290 objfile_debug_name (objfile),
2291 block_index == GLOBAL_BLOCK
2292 ? "GLOBAL_BLOCK" : "STATIC_BLOCK",
2293 name, domain_name (domain));
2294 }
2295
2296 for (compunit_symtab *cust : objfile->compunits ())
2297 {
2298 const struct blockvector *bv;
2299 const struct block *block;
2300 struct block_symbol result;
2301
2302 bv = COMPUNIT_BLOCKVECTOR (cust);
2303 block = BLOCKVECTOR_BLOCK (bv, block_index);
2304 result.symbol = block_lookup_symbol_primary (block, name, domain);
2305 result.block = block;
2306 if (result.symbol != NULL)
2307 {
2308 if (symbol_lookup_debug > 1)
2309 {
2310 fprintf_unfiltered (gdb_stdlog, " = %s (block %s)\n",
2311 host_address_to_string (result.symbol),
2312 host_address_to_string (block));
2313 }
2314 result.symbol = fixup_symbol_section (result.symbol, objfile);
2315 return result;
2316
2317 }
2318 }
2319
2320 if (symbol_lookup_debug > 1)
2321 fprintf_unfiltered (gdb_stdlog, " = NULL\n");
2322 return {};
2323 }
2324
2325 /* Wrapper around lookup_symbol_in_objfile_symtabs for search_symbols.
2326 Look up LINKAGE_NAME in DOMAIN in the global and static blocks of OBJFILE
2327 and all associated separate debug objfiles.
2328
2329 Normally we only look in OBJFILE, and not any separate debug objfiles
2330 because the outer loop will cause them to be searched too. This case is
2331 different. Here we're called from search_symbols where it will only
2332 call us for the objfile that contains a matching minsym. */
2333
2334 static struct block_symbol
2335 lookup_symbol_in_objfile_from_linkage_name (struct objfile *objfile,
2336 const char *linkage_name,
2337 domain_enum domain)
2338 {
2339 enum language lang = current_language->la_language;
2340 struct objfile *main_objfile;
2341
2342 demangle_result_storage storage;
2343 const char *modified_name = demangle_for_lookup (linkage_name, lang, storage);
2344
2345 if (objfile->separate_debug_objfile_backlink)
2346 main_objfile = objfile->separate_debug_objfile_backlink;
2347 else
2348 main_objfile = objfile;
2349
2350 for (::objfile *cur_objfile : main_objfile->separate_debug_objfiles ())
2351 {
2352 struct block_symbol result;
2353
2354 result = lookup_symbol_in_objfile_symtabs (cur_objfile, GLOBAL_BLOCK,
2355 modified_name, domain);
2356 if (result.symbol == NULL)
2357 result = lookup_symbol_in_objfile_symtabs (cur_objfile, STATIC_BLOCK,
2358 modified_name, domain);
2359 if (result.symbol != NULL)
2360 return result;
2361 }
2362
2363 return {};
2364 }
2365
2366 /* A helper function that throws an exception when a symbol was found
2367 in a psymtab but not in a symtab. */
2368
2369 static void ATTRIBUTE_NORETURN
2370 error_in_psymtab_expansion (enum block_enum block_index, const char *name,
2371 struct compunit_symtab *cust)
2372 {
2373 error (_("\
2374 Internal: %s symbol `%s' found in %s psymtab but not in symtab.\n\
2375 %s may be an inlined function, or may be a template function\n \
2376 (if a template, try specifying an instantiation: %s<type>)."),
2377 block_index == GLOBAL_BLOCK ? "global" : "static",
2378 name,
2379 symtab_to_filename_for_display (compunit_primary_filetab (cust)),
2380 name, name);
2381 }
2382
2383 /* A helper function for various lookup routines that interfaces with
2384 the "quick" symbol table functions. */
2385
2386 static struct block_symbol
2387 lookup_symbol_via_quick_fns (struct objfile *objfile,
2388 enum block_enum block_index, const char *name,
2389 const domain_enum domain)
2390 {
2391 struct compunit_symtab *cust;
2392 const struct blockvector *bv;
2393 const struct block *block;
2394 struct block_symbol result;
2395
2396 if (!objfile->sf)
2397 return {};
2398
2399 if (symbol_lookup_debug > 1)
2400 {
2401 fprintf_unfiltered (gdb_stdlog,
2402 "lookup_symbol_via_quick_fns (%s, %s, %s, %s)\n",
2403 objfile_debug_name (objfile),
2404 block_index == GLOBAL_BLOCK
2405 ? "GLOBAL_BLOCK" : "STATIC_BLOCK",
2406 name, domain_name (domain));
2407 }
2408
2409 cust = objfile->sf->qf->lookup_symbol (objfile, block_index, name, domain);
2410 if (cust == NULL)
2411 {
2412 if (symbol_lookup_debug > 1)
2413 {
2414 fprintf_unfiltered (gdb_stdlog,
2415 "lookup_symbol_via_quick_fns (...) = NULL\n");
2416 }
2417 return {};
2418 }
2419
2420 bv = COMPUNIT_BLOCKVECTOR (cust);
2421 block = BLOCKVECTOR_BLOCK (bv, block_index);
2422 result.symbol = block_lookup_symbol (block, name,
2423 symbol_name_match_type::FULL, domain);
2424 if (result.symbol == NULL)
2425 error_in_psymtab_expansion (block_index, name, cust);
2426
2427 if (symbol_lookup_debug > 1)
2428 {
2429 fprintf_unfiltered (gdb_stdlog,
2430 "lookup_symbol_via_quick_fns (...) = %s (block %s)\n",
2431 host_address_to_string (result.symbol),
2432 host_address_to_string (block));
2433 }
2434
2435 result.symbol = fixup_symbol_section (result.symbol, objfile);
2436 result.block = block;
2437 return result;
2438 }
2439
2440 /* See symtab.h. */
2441
2442 struct block_symbol
2443 basic_lookup_symbol_nonlocal (const struct language_defn *langdef,
2444 const char *name,
2445 const struct block *block,
2446 const domain_enum domain)
2447 {
2448 struct block_symbol result;
2449
2450 /* NOTE: dje/2014-10-26: The lookup in all objfiles search could skip
2451 the current objfile. Searching the current objfile first is useful
2452 for both matching user expectations as well as performance. */
2453
2454 result = lookup_symbol_in_static_block (name, block, domain);
2455 if (result.symbol != NULL)
2456 return result;
2457
2458 /* If we didn't find a definition for a builtin type in the static block,
2459 search for it now. This is actually the right thing to do and can be
2460 a massive performance win. E.g., when debugging a program with lots of
2461 shared libraries we could search all of them only to find out the
2462 builtin type isn't defined in any of them. This is common for types
2463 like "void". */
2464 if (domain == VAR_DOMAIN)
2465 {
2466 struct gdbarch *gdbarch;
2467
2468 if (block == NULL)
2469 gdbarch = target_gdbarch ();
2470 else
2471 gdbarch = block_gdbarch (block);
2472 result.symbol = language_lookup_primitive_type_as_symbol (langdef,
2473 gdbarch, name);
2474 result.block = NULL;
2475 if (result.symbol != NULL)
2476 return result;
2477 }
2478
2479 return lookup_global_symbol (name, block, domain);
2480 }
2481
2482 /* See symtab.h. */
2483
2484 struct block_symbol
2485 lookup_symbol_in_static_block (const char *name,
2486 const struct block *block,
2487 const domain_enum domain)
2488 {
2489 const struct block *static_block = block_static_block (block);
2490 struct symbol *sym;
2491
2492 if (static_block == NULL)
2493 return {};
2494
2495 if (symbol_lookup_debug)
2496 {
2497 struct objfile *objfile = lookup_objfile_from_block (static_block);
2498
2499 fprintf_unfiltered (gdb_stdlog,
2500 "lookup_symbol_in_static_block (%s, %s (objfile %s),"
2501 " %s)\n",
2502 name,
2503 host_address_to_string (block),
2504 objfile_debug_name (objfile),
2505 domain_name (domain));
2506 }
2507
2508 sym = lookup_symbol_in_block (name,
2509 symbol_name_match_type::FULL,
2510 static_block, domain);
2511 if (symbol_lookup_debug)
2512 {
2513 fprintf_unfiltered (gdb_stdlog,
2514 "lookup_symbol_in_static_block (...) = %s\n",
2515 sym != NULL ? host_address_to_string (sym) : "NULL");
2516 }
2517 return (struct block_symbol) {sym, static_block};
2518 }
2519
2520 /* Perform the standard symbol lookup of NAME in OBJFILE:
2521 1) First search expanded symtabs, and if not found
2522 2) Search the "quick" symtabs (partial or .gdb_index).
2523 BLOCK_INDEX is one of GLOBAL_BLOCK or STATIC_BLOCK. */
2524
2525 static struct block_symbol
2526 lookup_symbol_in_objfile (struct objfile *objfile, enum block_enum block_index,
2527 const char *name, const domain_enum domain)
2528 {
2529 struct block_symbol result;
2530
2531 gdb_assert (block_index == GLOBAL_BLOCK || block_index == STATIC_BLOCK);
2532
2533 if (symbol_lookup_debug)
2534 {
2535 fprintf_unfiltered (gdb_stdlog,
2536 "lookup_symbol_in_objfile (%s, %s, %s, %s)\n",
2537 objfile_debug_name (objfile),
2538 block_index == GLOBAL_BLOCK
2539 ? "GLOBAL_BLOCK" : "STATIC_BLOCK",
2540 name, domain_name (domain));
2541 }
2542
2543 result = lookup_symbol_in_objfile_symtabs (objfile, block_index,
2544 name, domain);
2545 if (result.symbol != NULL)
2546 {
2547 if (symbol_lookup_debug)
2548 {
2549 fprintf_unfiltered (gdb_stdlog,
2550 "lookup_symbol_in_objfile (...) = %s"
2551 " (in symtabs)\n",
2552 host_address_to_string (result.symbol));
2553 }
2554 return result;
2555 }
2556
2557 result = lookup_symbol_via_quick_fns (objfile, block_index,
2558 name, domain);
2559 if (symbol_lookup_debug)
2560 {
2561 fprintf_unfiltered (gdb_stdlog,
2562 "lookup_symbol_in_objfile (...) = %s%s\n",
2563 result.symbol != NULL
2564 ? host_address_to_string (result.symbol)
2565 : "NULL",
2566 result.symbol != NULL ? " (via quick fns)" : "");
2567 }
2568 return result;
2569 }
2570
2571 /* Private data to be used with lookup_symbol_global_iterator_cb. */
2572
2573 struct global_or_static_sym_lookup_data
2574 {
2575 /* The name of the symbol we are searching for. */
2576 const char *name;
2577
2578 /* The domain to use for our search. */
2579 domain_enum domain;
2580
2581 /* The block index in which to search. */
2582 enum block_enum block_index;
2583
2584 /* The field where the callback should store the symbol if found.
2585 It should be initialized to {NULL, NULL} before the search is started. */
2586 struct block_symbol result;
2587 };
2588
2589 /* A callback function for gdbarch_iterate_over_objfiles_in_search_order.
2590 It searches by name for a symbol in the block given by BLOCK_INDEX of the
2591 given OBJFILE. The arguments for the search are passed via CB_DATA, which
2592 in reality is a pointer to struct global_or_static_sym_lookup_data. */
2593
2594 static int
2595 lookup_symbol_global_or_static_iterator_cb (struct objfile *objfile,
2596 void *cb_data)
2597 {
2598 struct global_or_static_sym_lookup_data *data =
2599 (struct global_or_static_sym_lookup_data *) cb_data;
2600
2601 gdb_assert (data->result.symbol == NULL
2602 && data->result.block == NULL);
2603
2604 data->result = lookup_symbol_in_objfile (objfile, data->block_index,
2605 data->name, data->domain);
2606
2607 /* If we found a match, tell the iterator to stop. Otherwise,
2608 keep going. */
2609 return (data->result.symbol != NULL);
2610 }
2611
2612 /* This function contains the common code of lookup_{global,static}_symbol.
2613 OBJFILE is only used if BLOCK_INDEX is GLOBAL_SCOPE, in which case it is
2614 the objfile to start the lookup in. */
2615
2616 static struct block_symbol
2617 lookup_global_or_static_symbol (const char *name,
2618 enum block_enum block_index,
2619 struct objfile *objfile,
2620 const domain_enum domain)
2621 {
2622 struct symbol_cache *cache = get_symbol_cache (current_program_space);
2623 struct block_symbol result;
2624 struct global_or_static_sym_lookup_data lookup_data;
2625 struct block_symbol_cache *bsc;
2626 struct symbol_cache_slot *slot;
2627
2628 gdb_assert (block_index == GLOBAL_BLOCK || block_index == STATIC_BLOCK);
2629 gdb_assert (objfile == nullptr || block_index == GLOBAL_BLOCK);
2630
2631 /* First see if we can find the symbol in the cache.
2632 This works because we use the current objfile to qualify the lookup. */
2633 result = symbol_cache_lookup (cache, objfile, block_index, name, domain,
2634 &bsc, &slot);
2635 if (result.symbol != NULL)
2636 {
2637 if (SYMBOL_LOOKUP_FAILED_P (result))
2638 return {};
2639 return result;
2640 }
2641
2642 /* Do a global search (of global blocks, heh). */
2643 if (result.symbol == NULL)
2644 {
2645 memset (&lookup_data, 0, sizeof (lookup_data));
2646 lookup_data.name = name;
2647 lookup_data.block_index = block_index;
2648 lookup_data.domain = domain;
2649 gdbarch_iterate_over_objfiles_in_search_order
2650 (objfile != NULL ? get_objfile_arch (objfile) : target_gdbarch (),
2651 lookup_symbol_global_or_static_iterator_cb, &lookup_data, objfile);
2652 result = lookup_data.result;
2653 }
2654
2655 if (result.symbol != NULL)
2656 symbol_cache_mark_found (bsc, slot, objfile, result.symbol, result.block);
2657 else
2658 symbol_cache_mark_not_found (bsc, slot, objfile, name, domain);
2659
2660 return result;
2661 }
2662
2663 /* See symtab.h. */
2664
2665 struct block_symbol
2666 lookup_static_symbol (const char *name, const domain_enum domain)
2667 {
2668 return lookup_global_or_static_symbol (name, STATIC_BLOCK, nullptr, domain);
2669 }
2670
2671 /* See symtab.h. */
2672
2673 struct block_symbol
2674 lookup_global_symbol (const char *name,
2675 const struct block *block,
2676 const domain_enum domain)
2677 {
2678 /* If a block was passed in, we want to search the corresponding
2679 global block first. This yields "more expected" behavior, and is
2680 needed to support 'FILENAME'::VARIABLE lookups. */
2681 const struct block *global_block = block_global_block (block);
2682 if (global_block != nullptr)
2683 {
2684 symbol *sym = lookup_symbol_in_block (name,
2685 symbol_name_match_type::FULL,
2686 global_block, domain);
2687 if (sym != nullptr)
2688 return { sym, global_block };
2689 }
2690
2691 struct objfile *objfile = lookup_objfile_from_block (block);
2692 return lookup_global_or_static_symbol (name, GLOBAL_BLOCK, objfile, domain);
2693 }
2694
2695 bool
2696 symbol_matches_domain (enum language symbol_language,
2697 domain_enum symbol_domain,
2698 domain_enum domain)
2699 {
2700 /* For C++ "struct foo { ... }" also defines a typedef for "foo".
2701 Similarly, any Ada type declaration implicitly defines a typedef. */
2702 if (symbol_language == language_cplus
2703 || symbol_language == language_d
2704 || symbol_language == language_ada
2705 || symbol_language == language_rust)
2706 {
2707 if ((domain == VAR_DOMAIN || domain == STRUCT_DOMAIN)
2708 && symbol_domain == STRUCT_DOMAIN)
2709 return true;
2710 }
2711 /* For all other languages, strict match is required. */
2712 return (symbol_domain == domain);
2713 }
2714
2715 /* See symtab.h. */
2716
2717 struct type *
2718 lookup_transparent_type (const char *name)
2719 {
2720 return current_language->la_lookup_transparent_type (name);
2721 }
2722
2723 /* A helper for basic_lookup_transparent_type that interfaces with the
2724 "quick" symbol table functions. */
2725
2726 static struct type *
2727 basic_lookup_transparent_type_quick (struct objfile *objfile,
2728 enum block_enum block_index,
2729 const char *name)
2730 {
2731 struct compunit_symtab *cust;
2732 const struct blockvector *bv;
2733 const struct block *block;
2734 struct symbol *sym;
2735
2736 if (!objfile->sf)
2737 return NULL;
2738 cust = objfile->sf->qf->lookup_symbol (objfile, block_index, name,
2739 STRUCT_DOMAIN);
2740 if (cust == NULL)
2741 return NULL;
2742
2743 bv = COMPUNIT_BLOCKVECTOR (cust);
2744 block = BLOCKVECTOR_BLOCK (bv, block_index);
2745 sym = block_find_symbol (block, name, STRUCT_DOMAIN,
2746 block_find_non_opaque_type, NULL);
2747 if (sym == NULL)
2748 error_in_psymtab_expansion (block_index, name, cust);
2749 gdb_assert (!TYPE_IS_OPAQUE (SYMBOL_TYPE (sym)));
2750 return SYMBOL_TYPE (sym);
2751 }
2752
2753 /* Subroutine of basic_lookup_transparent_type to simplify it.
2754 Look up the non-opaque definition of NAME in BLOCK_INDEX of OBJFILE.
2755 BLOCK_INDEX is either GLOBAL_BLOCK or STATIC_BLOCK. */
2756
2757 static struct type *
2758 basic_lookup_transparent_type_1 (struct objfile *objfile,
2759 enum block_enum block_index,
2760 const char *name)
2761 {
2762 const struct blockvector *bv;
2763 const struct block *block;
2764 const struct symbol *sym;
2765
2766 for (compunit_symtab *cust : objfile->compunits ())
2767 {
2768 bv = COMPUNIT_BLOCKVECTOR (cust);
2769 block = BLOCKVECTOR_BLOCK (bv, block_index);
2770 sym = block_find_symbol (block, name, STRUCT_DOMAIN,
2771 block_find_non_opaque_type, NULL);
2772 if (sym != NULL)
2773 {
2774 gdb_assert (!TYPE_IS_OPAQUE (SYMBOL_TYPE (sym)));
2775 return SYMBOL_TYPE (sym);
2776 }
2777 }
2778
2779 return NULL;
2780 }
2781
2782 /* The standard implementation of lookup_transparent_type. This code
2783 was modeled on lookup_symbol -- the parts not relevant to looking
2784 up types were just left out. In particular it's assumed here that
2785 types are available in STRUCT_DOMAIN and only in file-static or
2786 global blocks. */
2787
2788 struct type *
2789 basic_lookup_transparent_type (const char *name)
2790 {
2791 struct type *t;
2792
2793 /* Now search all the global symbols. Do the symtab's first, then
2794 check the psymtab's. If a psymtab indicates the existence
2795 of the desired name as a global, then do psymtab-to-symtab
2796 conversion on the fly and return the found symbol. */
2797
2798 for (objfile *objfile : current_program_space->objfiles ())
2799 {
2800 t = basic_lookup_transparent_type_1 (objfile, GLOBAL_BLOCK, name);
2801 if (t)
2802 return t;
2803 }
2804
2805 for (objfile *objfile : current_program_space->objfiles ())
2806 {
2807 t = basic_lookup_transparent_type_quick (objfile, GLOBAL_BLOCK, name);
2808 if (t)
2809 return t;
2810 }
2811
2812 /* Now search the static file-level symbols.
2813 Not strictly correct, but more useful than an error.
2814 Do the symtab's first, then
2815 check the psymtab's. If a psymtab indicates the existence
2816 of the desired name as a file-level static, then do psymtab-to-symtab
2817 conversion on the fly and return the found symbol. */
2818
2819 for (objfile *objfile : current_program_space->objfiles ())
2820 {
2821 t = basic_lookup_transparent_type_1 (objfile, STATIC_BLOCK, name);
2822 if (t)
2823 return t;
2824 }
2825
2826 for (objfile *objfile : current_program_space->objfiles ())
2827 {
2828 t = basic_lookup_transparent_type_quick (objfile, STATIC_BLOCK, name);
2829 if (t)
2830 return t;
2831 }
2832
2833 return (struct type *) 0;
2834 }
2835
2836 /* See symtab.h. */
2837
2838 bool
2839 iterate_over_symbols (const struct block *block,
2840 const lookup_name_info &name,
2841 const domain_enum domain,
2842 gdb::function_view<symbol_found_callback_ftype> callback)
2843 {
2844 struct block_iterator iter;
2845 struct symbol *sym;
2846
2847 ALL_BLOCK_SYMBOLS_WITH_NAME (block, name, iter, sym)
2848 {
2849 if (symbol_matches_domain (SYMBOL_LANGUAGE (sym),
2850 SYMBOL_DOMAIN (sym), domain))
2851 {
2852 struct block_symbol block_sym = {sym, block};
2853
2854 if (!callback (&block_sym))
2855 return false;
2856 }
2857 }
2858 return true;
2859 }
2860
2861 /* See symtab.h. */
2862
2863 bool
2864 iterate_over_symbols_terminated
2865 (const struct block *block,
2866 const lookup_name_info &name,
2867 const domain_enum domain,
2868 gdb::function_view<symbol_found_callback_ftype> callback)
2869 {
2870 if (!iterate_over_symbols (block, name, domain, callback))
2871 return false;
2872 struct block_symbol block_sym = {nullptr, block};
2873 return callback (&block_sym);
2874 }
2875
2876 /* Find the compunit symtab associated with PC and SECTION.
2877 This will read in debug info as necessary. */
2878
2879 struct compunit_symtab *
2880 find_pc_sect_compunit_symtab (CORE_ADDR pc, struct obj_section *section)
2881 {
2882 struct compunit_symtab *best_cust = NULL;
2883 CORE_ADDR distance = 0;
2884 struct bound_minimal_symbol msymbol;
2885
2886 /* If we know that this is not a text address, return failure. This is
2887 necessary because we loop based on the block's high and low code
2888 addresses, which do not include the data ranges, and because
2889 we call find_pc_sect_psymtab which has a similar restriction based
2890 on the partial_symtab's texthigh and textlow. */
2891 msymbol = lookup_minimal_symbol_by_pc_section (pc, section);
2892 if (msymbol.minsym && msymbol.minsym->data_p ())
2893 return NULL;
2894
2895 /* Search all symtabs for the one whose file contains our address, and which
2896 is the smallest of all the ones containing the address. This is designed
2897 to deal with a case like symtab a is at 0x1000-0x2000 and 0x3000-0x4000
2898 and symtab b is at 0x2000-0x3000. So the GLOBAL_BLOCK for a is from
2899 0x1000-0x4000, but for address 0x2345 we want to return symtab b.
2900
2901 This happens for native ecoff format, where code from included files
2902 gets its own symtab. The symtab for the included file should have
2903 been read in already via the dependency mechanism.
2904 It might be swifter to create several symtabs with the same name
2905 like xcoff does (I'm not sure).
2906
2907 It also happens for objfiles that have their functions reordered.
2908 For these, the symtab we are looking for is not necessarily read in. */
2909
2910 for (objfile *obj_file : current_program_space->objfiles ())
2911 {
2912 for (compunit_symtab *cust : obj_file->compunits ())
2913 {
2914 const struct block *b;
2915 const struct blockvector *bv;
2916
2917 bv = COMPUNIT_BLOCKVECTOR (cust);
2918 b = BLOCKVECTOR_BLOCK (bv, GLOBAL_BLOCK);
2919
2920 if (BLOCK_START (b) <= pc
2921 && BLOCK_END (b) > pc
2922 && (distance == 0
2923 || BLOCK_END (b) - BLOCK_START (b) < distance))
2924 {
2925 /* For an objfile that has its functions reordered,
2926 find_pc_psymtab will find the proper partial symbol table
2927 and we simply return its corresponding symtab. */
2928 /* In order to better support objfiles that contain both
2929 stabs and coff debugging info, we continue on if a psymtab
2930 can't be found. */
2931 if ((obj_file->flags & OBJF_REORDERED) && obj_file->sf)
2932 {
2933 struct compunit_symtab *result;
2934
2935 result
2936 = obj_file->sf->qf->find_pc_sect_compunit_symtab (obj_file,
2937 msymbol,
2938 pc,
2939 section,
2940 0);
2941 if (result != NULL)
2942 return result;
2943 }
2944 if (section != 0)
2945 {
2946 struct block_iterator iter;
2947 struct symbol *sym = NULL;
2948
2949 ALL_BLOCK_SYMBOLS (b, iter, sym)
2950 {
2951 fixup_symbol_section (sym, obj_file);
2952 if (matching_obj_sections (SYMBOL_OBJ_SECTION (obj_file,
2953 sym),
2954 section))
2955 break;
2956 }
2957 if (sym == NULL)
2958 continue; /* No symbol in this symtab matches
2959 section. */
2960 }
2961 distance = BLOCK_END (b) - BLOCK_START (b);
2962 best_cust = cust;
2963 }
2964 }
2965 }
2966
2967 if (best_cust != NULL)
2968 return best_cust;
2969
2970 /* Not found in symtabs, search the "quick" symtabs (e.g. psymtabs). */
2971
2972 for (objfile *objf : current_program_space->objfiles ())
2973 {
2974 struct compunit_symtab *result;
2975
2976 if (!objf->sf)
2977 continue;
2978 result = objf->sf->qf->find_pc_sect_compunit_symtab (objf,
2979 msymbol,
2980 pc, section,
2981 1);
2982 if (result != NULL)
2983 return result;
2984 }
2985
2986 return NULL;
2987 }
2988
2989 /* Find the compunit symtab associated with PC.
2990 This will read in debug info as necessary.
2991 Backward compatibility, no section. */
2992
2993 struct compunit_symtab *
2994 find_pc_compunit_symtab (CORE_ADDR pc)
2995 {
2996 return find_pc_sect_compunit_symtab (pc, find_pc_mapped_section (pc));
2997 }
2998
2999 /* See symtab.h. */
3000
3001 struct symbol *
3002 find_symbol_at_address (CORE_ADDR address)
3003 {
3004 for (objfile *objfile : current_program_space->objfiles ())
3005 {
3006 if (objfile->sf == NULL
3007 || objfile->sf->qf->find_compunit_symtab_by_address == NULL)
3008 continue;
3009
3010 struct compunit_symtab *symtab
3011 = objfile->sf->qf->find_compunit_symtab_by_address (objfile, address);
3012 if (symtab != NULL)
3013 {
3014 const struct blockvector *bv = COMPUNIT_BLOCKVECTOR (symtab);
3015
3016 for (int i = GLOBAL_BLOCK; i <= STATIC_BLOCK; ++i)
3017 {
3018 const struct block *b = BLOCKVECTOR_BLOCK (bv, i);
3019 struct block_iterator iter;
3020 struct symbol *sym;
3021
3022 ALL_BLOCK_SYMBOLS (b, iter, sym)
3023 {
3024 if (SYMBOL_CLASS (sym) == LOC_STATIC
3025 && SYMBOL_VALUE_ADDRESS (sym) == address)
3026 return sym;
3027 }
3028 }
3029 }
3030 }
3031
3032 return NULL;
3033 }
3034
3035 \f
3036
3037 /* Find the source file and line number for a given PC value and SECTION.
3038 Return a structure containing a symtab pointer, a line number,
3039 and a pc range for the entire source line.
3040 The value's .pc field is NOT the specified pc.
3041 NOTCURRENT nonzero means, if specified pc is on a line boundary,
3042 use the line that ends there. Otherwise, in that case, the line
3043 that begins there is used. */
3044
3045 /* The big complication here is that a line may start in one file, and end just
3046 before the start of another file. This usually occurs when you #include
3047 code in the middle of a subroutine. To properly find the end of a line's PC
3048 range, we must search all symtabs associated with this compilation unit, and
3049 find the one whose first PC is closer than that of the next line in this
3050 symtab. */
3051
3052 struct symtab_and_line
3053 find_pc_sect_line (CORE_ADDR pc, struct obj_section *section, int notcurrent)
3054 {
3055 struct compunit_symtab *cust;
3056 struct linetable *l;
3057 int len;
3058 struct linetable_entry *item;
3059 const struct blockvector *bv;
3060 struct bound_minimal_symbol msymbol;
3061
3062 /* Info on best line seen so far, and where it starts, and its file. */
3063
3064 struct linetable_entry *best = NULL;
3065 CORE_ADDR best_end = 0;
3066 struct symtab *best_symtab = 0;
3067
3068 /* Store here the first line number
3069 of a file which contains the line at the smallest pc after PC.
3070 If we don't find a line whose range contains PC,
3071 we will use a line one less than this,
3072 with a range from the start of that file to the first line's pc. */
3073 struct linetable_entry *alt = NULL;
3074
3075 /* Info on best line seen in this file. */
3076
3077 struct linetable_entry *prev;
3078
3079 /* If this pc is not from the current frame,
3080 it is the address of the end of a call instruction.
3081 Quite likely that is the start of the following statement.
3082 But what we want is the statement containing the instruction.
3083 Fudge the pc to make sure we get that. */
3084
3085 /* It's tempting to assume that, if we can't find debugging info for
3086 any function enclosing PC, that we shouldn't search for line
3087 number info, either. However, GAS can emit line number info for
3088 assembly files --- very helpful when debugging hand-written
3089 assembly code. In such a case, we'd have no debug info for the
3090 function, but we would have line info. */
3091
3092 if (notcurrent)
3093 pc -= 1;
3094
3095 /* elz: added this because this function returned the wrong
3096 information if the pc belongs to a stub (import/export)
3097 to call a shlib function. This stub would be anywhere between
3098 two functions in the target, and the line info was erroneously
3099 taken to be the one of the line before the pc. */
3100
3101 /* RT: Further explanation:
3102
3103 * We have stubs (trampolines) inserted between procedures.
3104 *
3105 * Example: "shr1" exists in a shared library, and a "shr1" stub also
3106 * exists in the main image.
3107 *
3108 * In the minimal symbol table, we have a bunch of symbols
3109 * sorted by start address. The stubs are marked as "trampoline",
3110 * the others appear as text. E.g.:
3111 *
3112 * Minimal symbol table for main image
3113 * main: code for main (text symbol)
3114 * shr1: stub (trampoline symbol)
3115 * foo: code for foo (text symbol)
3116 * ...
3117 * Minimal symbol table for "shr1" image:
3118 * ...
3119 * shr1: code for shr1 (text symbol)
3120 * ...
3121 *
3122 * So the code below is trying to detect if we are in the stub
3123 * ("shr1" stub), and if so, find the real code ("shr1" trampoline),
3124 * and if found, do the symbolization from the real-code address
3125 * rather than the stub address.
3126 *
3127 * Assumptions being made about the minimal symbol table:
3128 * 1. lookup_minimal_symbol_by_pc() will return a trampoline only
3129 * if we're really in the trampoline.s If we're beyond it (say
3130 * we're in "foo" in the above example), it'll have a closer
3131 * symbol (the "foo" text symbol for example) and will not
3132 * return the trampoline.
3133 * 2. lookup_minimal_symbol_text() will find a real text symbol
3134 * corresponding to the trampoline, and whose address will
3135 * be different than the trampoline address. I put in a sanity
3136 * check for the address being the same, to avoid an
3137 * infinite recursion.
3138 */
3139 msymbol = lookup_minimal_symbol_by_pc (pc);
3140 if (msymbol.minsym != NULL)
3141 if (MSYMBOL_TYPE (msymbol.minsym) == mst_solib_trampoline)
3142 {
3143 struct bound_minimal_symbol mfunsym
3144 = lookup_minimal_symbol_text (msymbol.minsym->linkage_name (),
3145 NULL);
3146
3147 if (mfunsym.minsym == NULL)
3148 /* I eliminated this warning since it is coming out
3149 * in the following situation:
3150 * gdb shmain // test program with shared libraries
3151 * (gdb) break shr1 // function in shared lib
3152 * Warning: In stub for ...
3153 * In the above situation, the shared lib is not loaded yet,
3154 * so of course we can't find the real func/line info,
3155 * but the "break" still works, and the warning is annoying.
3156 * So I commented out the warning. RT */
3157 /* warning ("In stub for %s; unable to find real function/line info",
3158 msymbol->linkage_name ()); */
3159 ;
3160 /* fall through */
3161 else if (BMSYMBOL_VALUE_ADDRESS (mfunsym)
3162 == BMSYMBOL_VALUE_ADDRESS (msymbol))
3163 /* Avoid infinite recursion */
3164 /* See above comment about why warning is commented out. */
3165 /* warning ("In stub for %s; unable to find real function/line info",
3166 msymbol->linkage_name ()); */
3167 ;
3168 /* fall through */
3169 else
3170 return find_pc_line (BMSYMBOL_VALUE_ADDRESS (mfunsym), 0);
3171 }
3172
3173 symtab_and_line val;
3174 val.pspace = current_program_space;
3175
3176 cust = find_pc_sect_compunit_symtab (pc, section);
3177 if (cust == NULL)
3178 {
3179 /* If no symbol information, return previous pc. */
3180 if (notcurrent)
3181 pc++;
3182 val.pc = pc;
3183 return val;
3184 }
3185
3186 bv = COMPUNIT_BLOCKVECTOR (cust);
3187
3188 /* Look at all the symtabs that share this blockvector.
3189 They all have the same apriori range, that we found was right;
3190 but they have different line tables. */
3191
3192 for (symtab *iter_s : compunit_filetabs (cust))
3193 {
3194 /* Find the best line in this symtab. */
3195 l = SYMTAB_LINETABLE (iter_s);
3196 if (!l)
3197 continue;
3198 len = l->nitems;
3199 if (len <= 0)
3200 {
3201 /* I think len can be zero if the symtab lacks line numbers
3202 (e.g. gcc -g1). (Either that or the LINETABLE is NULL;
3203 I'm not sure which, and maybe it depends on the symbol
3204 reader). */
3205 continue;
3206 }
3207
3208 prev = NULL;
3209 item = l->item; /* Get first line info. */
3210
3211 /* Is this file's first line closer than the first lines of other files?
3212 If so, record this file, and its first line, as best alternate. */
3213 if (item->pc > pc && (!alt || item->pc < alt->pc))
3214 alt = item;
3215
3216 auto pc_compare = [](const CORE_ADDR & comp_pc,
3217 const struct linetable_entry & lhs)->bool
3218 {
3219 return comp_pc < lhs.pc;
3220 };
3221
3222 struct linetable_entry *first = item;
3223 struct linetable_entry *last = item + len;
3224 item = std::upper_bound (first, last, pc, pc_compare);
3225 if (item != first)
3226 prev = item - 1; /* Found a matching item. */
3227
3228 /* At this point, prev points at the line whose start addr is <= pc, and
3229 item points at the next line. If we ran off the end of the linetable
3230 (pc >= start of the last line), then prev == item. If pc < start of
3231 the first line, prev will not be set. */
3232
3233 /* Is this file's best line closer than the best in the other files?
3234 If so, record this file, and its best line, as best so far. Don't
3235 save prev if it represents the end of a function (i.e. line number
3236 0) instead of a real line. */
3237
3238 if (prev && prev->line && (!best || prev->pc > best->pc))
3239 {
3240 best = prev;
3241 best_symtab = iter_s;
3242
3243 /* Discard BEST_END if it's before the PC of the current BEST. */
3244 if (best_end <= best->pc)
3245 best_end = 0;
3246 }
3247
3248 /* If another line (denoted by ITEM) is in the linetable and its
3249 PC is after BEST's PC, but before the current BEST_END, then
3250 use ITEM's PC as the new best_end. */
3251 if (best && item < last && item->pc > best->pc
3252 && (best_end == 0 || best_end > item->pc))
3253 best_end = item->pc;
3254 }
3255
3256 if (!best_symtab)
3257 {
3258 /* If we didn't find any line number info, just return zeros.
3259 We used to return alt->line - 1 here, but that could be
3260 anywhere; if we don't have line number info for this PC,
3261 don't make some up. */
3262 val.pc = pc;
3263 }
3264 else if (best->line == 0)
3265 {
3266 /* If our best fit is in a range of PC's for which no line
3267 number info is available (line number is zero) then we didn't
3268 find any valid line information. */
3269 val.pc = pc;
3270 }
3271 else
3272 {
3273 val.symtab = best_symtab;
3274 val.line = best->line;
3275 val.pc = best->pc;
3276 if (best_end && (!alt || best_end < alt->pc))
3277 val.end = best_end;
3278 else if (alt)
3279 val.end = alt->pc;
3280 else
3281 val.end = BLOCK_END (BLOCKVECTOR_BLOCK (bv, GLOBAL_BLOCK));
3282 }
3283 val.section = section;
3284 return val;
3285 }
3286
3287 /* Backward compatibility (no section). */
3288
3289 struct symtab_and_line
3290 find_pc_line (CORE_ADDR pc, int notcurrent)
3291 {
3292 struct obj_section *section;
3293
3294 section = find_pc_overlay (pc);
3295 if (pc_in_unmapped_range (pc, section))
3296 pc = overlay_mapped_address (pc, section);
3297 return find_pc_sect_line (pc, section, notcurrent);
3298 }
3299
3300 /* See symtab.h. */
3301
3302 struct symtab *
3303 find_pc_line_symtab (CORE_ADDR pc)
3304 {
3305 struct symtab_and_line sal;
3306
3307 /* This always passes zero for NOTCURRENT to find_pc_line.
3308 There are currently no callers that ever pass non-zero. */
3309 sal = find_pc_line (pc, 0);
3310 return sal.symtab;
3311 }
3312 \f
3313 /* Find line number LINE in any symtab whose name is the same as
3314 SYMTAB.
3315
3316 If found, return the symtab that contains the linetable in which it was
3317 found, set *INDEX to the index in the linetable of the best entry
3318 found, and set *EXACT_MATCH to true if the value returned is an
3319 exact match.
3320
3321 If not found, return NULL. */
3322
3323 struct symtab *
3324 find_line_symtab (struct symtab *sym_tab, int line,
3325 int *index, bool *exact_match)
3326 {
3327 int exact = 0; /* Initialized here to avoid a compiler warning. */
3328
3329 /* BEST_INDEX and BEST_LINETABLE identify the smallest linenumber > LINE
3330 so far seen. */
3331
3332 int best_index;
3333 struct linetable *best_linetable;
3334 struct symtab *best_symtab;
3335
3336 /* First try looking it up in the given symtab. */
3337 best_linetable = SYMTAB_LINETABLE (sym_tab);
3338 best_symtab = sym_tab;
3339 best_index = find_line_common (best_linetable, line, &exact, 0);
3340 if (best_index < 0 || !exact)
3341 {
3342 /* Didn't find an exact match. So we better keep looking for
3343 another symtab with the same name. In the case of xcoff,
3344 multiple csects for one source file (produced by IBM's FORTRAN
3345 compiler) produce multiple symtabs (this is unavoidable
3346 assuming csects can be at arbitrary places in memory and that
3347 the GLOBAL_BLOCK of a symtab has a begin and end address). */
3348
3349 /* BEST is the smallest linenumber > LINE so far seen,
3350 or 0 if none has been seen so far.
3351 BEST_INDEX and BEST_LINETABLE identify the item for it. */
3352 int best;
3353
3354 if (best_index >= 0)
3355 best = best_linetable->item[best_index].line;
3356 else
3357 best = 0;
3358
3359 for (objfile *objfile : current_program_space->objfiles ())
3360 {
3361 if (objfile->sf)
3362 objfile->sf->qf->expand_symtabs_with_fullname
3363 (objfile, symtab_to_fullname (sym_tab));
3364 }
3365
3366 for (objfile *objfile : current_program_space->objfiles ())
3367 {
3368 for (compunit_symtab *cu : objfile->compunits ())
3369 {
3370 for (symtab *s : compunit_filetabs (cu))
3371 {
3372 struct linetable *l;
3373 int ind;
3374
3375 if (FILENAME_CMP (sym_tab->filename, s->filename) != 0)
3376 continue;
3377 if (FILENAME_CMP (symtab_to_fullname (sym_tab),
3378 symtab_to_fullname (s)) != 0)
3379 continue;
3380 l = SYMTAB_LINETABLE (s);
3381 ind = find_line_common (l, line, &exact, 0);
3382 if (ind >= 0)
3383 {
3384 if (exact)
3385 {
3386 best_index = ind;
3387 best_linetable = l;
3388 best_symtab = s;
3389 goto done;
3390 }
3391 if (best == 0 || l->item[ind].line < best)
3392 {
3393 best = l->item[ind].line;
3394 best_index = ind;
3395 best_linetable = l;
3396 best_symtab = s;
3397 }
3398 }
3399 }
3400 }
3401 }
3402 }
3403 done:
3404 if (best_index < 0)
3405 return NULL;
3406
3407 if (index)
3408 *index = best_index;
3409 if (exact_match)
3410 *exact_match = (exact != 0);
3411
3412 return best_symtab;
3413 }
3414
3415 /* Given SYMTAB, returns all the PCs function in the symtab that
3416 exactly match LINE. Returns an empty vector if there are no exact
3417 matches, but updates BEST_ITEM in this case. */
3418
3419 std::vector<CORE_ADDR>
3420 find_pcs_for_symtab_line (struct symtab *symtab, int line,
3421 struct linetable_entry **best_item)
3422 {
3423 int start = 0;
3424 std::vector<CORE_ADDR> result;
3425
3426 /* First, collect all the PCs that are at this line. */
3427 while (1)
3428 {
3429 int was_exact;
3430 int idx;
3431
3432 idx = find_line_common (SYMTAB_LINETABLE (symtab), line, &was_exact,
3433 start);
3434 if (idx < 0)
3435 break;
3436
3437 if (!was_exact)
3438 {
3439 struct linetable_entry *item = &SYMTAB_LINETABLE (symtab)->item[idx];
3440
3441 if (*best_item == NULL || item->line < (*best_item)->line)
3442 *best_item = item;
3443
3444 break;
3445 }
3446
3447 result.push_back (SYMTAB_LINETABLE (symtab)->item[idx].pc);
3448 start = idx + 1;
3449 }
3450
3451 return result;
3452 }
3453
3454 \f
3455 /* Set the PC value for a given source file and line number and return true.
3456 Returns false for invalid line number (and sets the PC to 0).
3457 The source file is specified with a struct symtab. */
3458
3459 bool
3460 find_line_pc (struct symtab *symtab, int line, CORE_ADDR *pc)
3461 {
3462 struct linetable *l;
3463 int ind;
3464
3465 *pc = 0;
3466 if (symtab == 0)
3467 return false;
3468
3469 symtab = find_line_symtab (symtab, line, &ind, NULL);
3470 if (symtab != NULL)
3471 {
3472 l = SYMTAB_LINETABLE (symtab);
3473 *pc = l->item[ind].pc;
3474 return true;
3475 }
3476 else
3477 return false;
3478 }
3479
3480 /* Find the range of pc values in a line.
3481 Store the starting pc of the line into *STARTPTR
3482 and the ending pc (start of next line) into *ENDPTR.
3483 Returns true to indicate success.
3484 Returns false if could not find the specified line. */
3485
3486 bool
3487 find_line_pc_range (struct symtab_and_line sal, CORE_ADDR *startptr,
3488 CORE_ADDR *endptr)
3489 {
3490 CORE_ADDR startaddr;
3491 struct symtab_and_line found_sal;
3492
3493 startaddr = sal.pc;
3494 if (startaddr == 0 && !find_line_pc (sal.symtab, sal.line, &startaddr))
3495 return false;
3496
3497 /* This whole function is based on address. For example, if line 10 has
3498 two parts, one from 0x100 to 0x200 and one from 0x300 to 0x400, then
3499 "info line *0x123" should say the line goes from 0x100 to 0x200
3500 and "info line *0x355" should say the line goes from 0x300 to 0x400.
3501 This also insures that we never give a range like "starts at 0x134
3502 and ends at 0x12c". */
3503
3504 found_sal = find_pc_sect_line (startaddr, sal.section, 0);
3505 if (found_sal.line != sal.line)
3506 {
3507 /* The specified line (sal) has zero bytes. */
3508 *startptr = found_sal.pc;
3509 *endptr = found_sal.pc;
3510 }
3511 else
3512 {
3513 *startptr = found_sal.pc;
3514 *endptr = found_sal.end;
3515 }
3516 return true;
3517 }
3518
3519 /* Given a line table and a line number, return the index into the line
3520 table for the pc of the nearest line whose number is >= the specified one.
3521 Return -1 if none is found. The value is >= 0 if it is an index.
3522 START is the index at which to start searching the line table.
3523
3524 Set *EXACT_MATCH nonzero if the value returned is an exact match. */
3525
3526 static int
3527 find_line_common (struct linetable *l, int lineno,
3528 int *exact_match, int start)
3529 {
3530 int i;
3531 int len;
3532
3533 /* BEST is the smallest linenumber > LINENO so far seen,
3534 or 0 if none has been seen so far.
3535 BEST_INDEX identifies the item for it. */
3536
3537 int best_index = -1;
3538 int best = 0;
3539
3540 *exact_match = 0;
3541
3542 if (lineno <= 0)
3543 return -1;
3544 if (l == 0)
3545 return -1;
3546
3547 len = l->nitems;
3548 for (i = start; i < len; i++)
3549 {
3550 struct linetable_entry *item = &(l->item[i]);
3551
3552 if (item->line == lineno)
3553 {
3554 /* Return the first (lowest address) entry which matches. */
3555 *exact_match = 1;
3556 return i;
3557 }
3558
3559 if (item->line > lineno && (best == 0 || item->line < best))
3560 {
3561 best = item->line;
3562 best_index = i;
3563 }
3564 }
3565
3566 /* If we got here, we didn't get an exact match. */
3567 return best_index;
3568 }
3569
3570 bool
3571 find_pc_line_pc_range (CORE_ADDR pc, CORE_ADDR *startptr, CORE_ADDR *endptr)
3572 {
3573 struct symtab_and_line sal;
3574
3575 sal = find_pc_line (pc, 0);
3576 *startptr = sal.pc;
3577 *endptr = sal.end;
3578 return sal.symtab != 0;
3579 }
3580
3581 /* Helper for find_function_start_sal. Does most of the work, except
3582 setting the sal's symbol. */
3583
3584 static symtab_and_line
3585 find_function_start_sal_1 (CORE_ADDR func_addr, obj_section *section,
3586 bool funfirstline)
3587 {
3588 symtab_and_line sal = find_pc_sect_line (func_addr, section, 0);
3589
3590 if (funfirstline && sal.symtab != NULL
3591 && (COMPUNIT_LOCATIONS_VALID (SYMTAB_COMPUNIT (sal.symtab))
3592 || SYMTAB_LANGUAGE (sal.symtab) == language_asm))
3593 {
3594 struct gdbarch *gdbarch = get_objfile_arch (SYMTAB_OBJFILE (sal.symtab));
3595
3596 sal.pc = func_addr;
3597 if (gdbarch_skip_entrypoint_p (gdbarch))
3598 sal.pc = gdbarch_skip_entrypoint (gdbarch, sal.pc);
3599 return sal;
3600 }
3601
3602 /* We always should have a line for the function start address.
3603 If we don't, something is odd. Create a plain SAL referring
3604 just the PC and hope that skip_prologue_sal (if requested)
3605 can find a line number for after the prologue. */
3606 if (sal.pc < func_addr)
3607 {
3608 sal = {};
3609 sal.pspace = current_program_space;
3610 sal.pc = func_addr;
3611 sal.section = section;
3612 }
3613
3614 if (funfirstline)
3615 skip_prologue_sal (&sal);
3616
3617 return sal;
3618 }
3619
3620 /* See symtab.h. */
3621
3622 symtab_and_line
3623 find_function_start_sal (CORE_ADDR func_addr, obj_section *section,
3624 bool funfirstline)
3625 {
3626 symtab_and_line sal
3627 = find_function_start_sal_1 (func_addr, section, funfirstline);
3628
3629 /* find_function_start_sal_1 does a linetable search, so it finds
3630 the symtab and linenumber, but not a symbol. Fill in the
3631 function symbol too. */
3632 sal.symbol = find_pc_sect_containing_function (sal.pc, sal.section);
3633
3634 return sal;
3635 }
3636
3637 /* See symtab.h. */
3638
3639 symtab_and_line
3640 find_function_start_sal (symbol *sym, bool funfirstline)
3641 {
3642 fixup_symbol_section (sym, NULL);
3643 symtab_and_line sal
3644 = find_function_start_sal_1 (BLOCK_ENTRY_PC (SYMBOL_BLOCK_VALUE (sym)),
3645 SYMBOL_OBJ_SECTION (symbol_objfile (sym), sym),
3646 funfirstline);
3647 sal.symbol = sym;
3648 return sal;
3649 }
3650
3651
3652 /* Given a function start address FUNC_ADDR and SYMTAB, find the first
3653 address for that function that has an entry in SYMTAB's line info
3654 table. If such an entry cannot be found, return FUNC_ADDR
3655 unaltered. */
3656
3657 static CORE_ADDR
3658 skip_prologue_using_lineinfo (CORE_ADDR func_addr, struct symtab *symtab)
3659 {
3660 CORE_ADDR func_start, func_end;
3661 struct linetable *l;
3662 int i;
3663
3664 /* Give up if this symbol has no lineinfo table. */
3665 l = SYMTAB_LINETABLE (symtab);
3666 if (l == NULL)
3667 return func_addr;
3668
3669 /* Get the range for the function's PC values, or give up if we
3670 cannot, for some reason. */
3671 if (!find_pc_partial_function (func_addr, NULL, &func_start, &func_end))
3672 return func_addr;
3673
3674 /* Linetable entries are ordered by PC values, see the commentary in
3675 symtab.h where `struct linetable' is defined. Thus, the first
3676 entry whose PC is in the range [FUNC_START..FUNC_END[ is the
3677 address we are looking for. */
3678 for (i = 0; i < l->nitems; i++)
3679 {
3680 struct linetable_entry *item = &(l->item[i]);
3681
3682 /* Don't use line numbers of zero, they mark special entries in
3683 the table. See the commentary on symtab.h before the
3684 definition of struct linetable. */
3685 if (item->line > 0 && func_start <= item->pc && item->pc < func_end)
3686 return item->pc;
3687 }
3688
3689 return func_addr;
3690 }
3691
3692 /* Adjust SAL to the first instruction past the function prologue.
3693 If the PC was explicitly specified, the SAL is not changed.
3694 If the line number was explicitly specified then the SAL can still be
3695 updated, unless the language for SAL is assembler, in which case the SAL
3696 will be left unchanged.
3697 If SAL is already past the prologue, then do nothing. */
3698
3699 void
3700 skip_prologue_sal (struct symtab_and_line *sal)
3701 {
3702 struct symbol *sym;
3703 struct symtab_and_line start_sal;
3704 CORE_ADDR pc, saved_pc;
3705 struct obj_section *section;
3706 const char *name;
3707 struct objfile *objfile;
3708 struct gdbarch *gdbarch;
3709 const struct block *b, *function_block;
3710 int force_skip, skip;
3711
3712 /* Do not change the SAL if PC was specified explicitly. */
3713 if (sal->explicit_pc)
3714 return;
3715
3716 /* In assembly code, if the user asks for a specific line then we should
3717 not adjust the SAL. The user already has instruction level
3718 visibility in this case, so selecting a line other than one requested
3719 is likely to be the wrong choice. */
3720 if (sal->symtab != nullptr
3721 && sal->explicit_line
3722 && SYMTAB_LANGUAGE (sal->symtab) == language_asm)
3723 return;
3724
3725 scoped_restore_current_pspace_and_thread restore_pspace_thread;
3726
3727 switch_to_program_space_and_thread (sal->pspace);
3728
3729 sym = find_pc_sect_function (sal->pc, sal->section);
3730 if (sym != NULL)
3731 {
3732 fixup_symbol_section (sym, NULL);
3733
3734 objfile = symbol_objfile (sym);
3735 pc = BLOCK_ENTRY_PC (SYMBOL_BLOCK_VALUE (sym));
3736 section = SYMBOL_OBJ_SECTION (objfile, sym);
3737 name = sym->linkage_name ();
3738 }
3739 else
3740 {
3741 struct bound_minimal_symbol msymbol
3742 = lookup_minimal_symbol_by_pc_section (sal->pc, sal->section);
3743
3744 if (msymbol.minsym == NULL)
3745 return;
3746
3747 objfile = msymbol.objfile;
3748 pc = BMSYMBOL_VALUE_ADDRESS (msymbol);
3749 section = MSYMBOL_OBJ_SECTION (objfile, msymbol.minsym);
3750 name = msymbol.minsym->linkage_name ();
3751 }
3752
3753 gdbarch = get_objfile_arch (objfile);
3754
3755 /* Process the prologue in two passes. In the first pass try to skip the
3756 prologue (SKIP is true) and verify there is a real need for it (indicated
3757 by FORCE_SKIP). If no such reason was found run a second pass where the
3758 prologue is not skipped (SKIP is false). */
3759
3760 skip = 1;
3761 force_skip = 1;
3762
3763 /* Be conservative - allow direct PC (without skipping prologue) only if we
3764 have proven the CU (Compilation Unit) supports it. sal->SYMTAB does not
3765 have to be set by the caller so we use SYM instead. */
3766 if (sym != NULL
3767 && COMPUNIT_LOCATIONS_VALID (SYMTAB_COMPUNIT (symbol_symtab (sym))))
3768 force_skip = 0;
3769
3770 saved_pc = pc;
3771 do
3772 {
3773 pc = saved_pc;
3774
3775 /* If the function is in an unmapped overlay, use its unmapped LMA address,
3776 so that gdbarch_skip_prologue has something unique to work on. */
3777 if (section_is_overlay (section) && !section_is_mapped (section))
3778 pc = overlay_unmapped_address (pc, section);
3779
3780 /* Skip "first line" of function (which is actually its prologue). */
3781 pc += gdbarch_deprecated_function_start_offset (gdbarch);
3782 if (gdbarch_skip_entrypoint_p (gdbarch))
3783 pc = gdbarch_skip_entrypoint (gdbarch, pc);
3784 if (skip)
3785 pc = gdbarch_skip_prologue_noexcept (gdbarch, pc);
3786
3787 /* For overlays, map pc back into its mapped VMA range. */
3788 pc = overlay_mapped_address (pc, section);
3789
3790 /* Calculate line number. */
3791 start_sal = find_pc_sect_line (pc, section, 0);
3792
3793 /* Check if gdbarch_skip_prologue left us in mid-line, and the next
3794 line is still part of the same function. */
3795 if (skip && start_sal.pc != pc
3796 && (sym ? (BLOCK_ENTRY_PC (SYMBOL_BLOCK_VALUE (sym)) <= start_sal.end
3797 && start_sal.end < BLOCK_END (SYMBOL_BLOCK_VALUE (sym)))
3798 : (lookup_minimal_symbol_by_pc_section (start_sal.end, section).minsym
3799 == lookup_minimal_symbol_by_pc_section (pc, section).minsym)))
3800 {
3801 /* First pc of next line */
3802 pc = start_sal.end;
3803 /* Recalculate the line number (might not be N+1). */
3804 start_sal = find_pc_sect_line (pc, section, 0);
3805 }
3806
3807 /* On targets with executable formats that don't have a concept of
3808 constructors (ELF with .init has, PE doesn't), gcc emits a call
3809 to `__main' in `main' between the prologue and before user
3810 code. */
3811 if (gdbarch_skip_main_prologue_p (gdbarch)
3812 && name && strcmp_iw (name, "main") == 0)
3813 {
3814 pc = gdbarch_skip_main_prologue (gdbarch, pc);
3815 /* Recalculate the line number (might not be N+1). */
3816 start_sal = find_pc_sect_line (pc, section, 0);
3817 force_skip = 1;
3818 }
3819 }
3820 while (!force_skip && skip--);
3821
3822 /* If we still don't have a valid source line, try to find the first
3823 PC in the lineinfo table that belongs to the same function. This
3824 happens with COFF debug info, which does not seem to have an
3825 entry in lineinfo table for the code after the prologue which has
3826 no direct relation to source. For example, this was found to be
3827 the case with the DJGPP target using "gcc -gcoff" when the
3828 compiler inserted code after the prologue to make sure the stack
3829 is aligned. */
3830 if (!force_skip && sym && start_sal.symtab == NULL)
3831 {
3832 pc = skip_prologue_using_lineinfo (pc, symbol_symtab (sym));
3833 /* Recalculate the line number. */
3834 start_sal = find_pc_sect_line (pc, section, 0);
3835 }
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 sal->symtab = start_sal.symtab;
3845 sal->line = start_sal.line;
3846 sal->end = start_sal.end;
3847
3848 /* Check if we are now inside an inlined function. If we can,
3849 use the call site of the function instead. */
3850 b = block_for_pc_sect (sal->pc, sal->section);
3851 function_block = NULL;
3852 while (b != NULL)
3853 {
3854 if (BLOCK_FUNCTION (b) != NULL && block_inlined_p (b))
3855 function_block = b;
3856 else if (BLOCK_FUNCTION (b) != NULL)
3857 break;
3858 b = BLOCK_SUPERBLOCK (b);
3859 }
3860 if (function_block != NULL
3861 && SYMBOL_LINE (BLOCK_FUNCTION (function_block)) != 0)
3862 {
3863 sal->line = SYMBOL_LINE (BLOCK_FUNCTION (function_block));
3864 sal->symtab = symbol_symtab (BLOCK_FUNCTION (function_block));
3865 }
3866 }
3867
3868 /* Given PC at the function's start address, attempt to find the
3869 prologue end using SAL information. Return zero if the skip fails.
3870
3871 A non-optimized prologue traditionally has one SAL for the function
3872 and a second for the function body. A single line function has
3873 them both pointing at the same line.
3874
3875 An optimized prologue is similar but the prologue may contain
3876 instructions (SALs) from the instruction body. Need to skip those
3877 while not getting into the function body.
3878
3879 The functions end point and an increasing SAL line are used as
3880 indicators of the prologue's endpoint.
3881
3882 This code is based on the function refine_prologue_limit
3883 (found in ia64). */
3884
3885 CORE_ADDR
3886 skip_prologue_using_sal (struct gdbarch *gdbarch, CORE_ADDR func_addr)
3887 {
3888 struct symtab_and_line prologue_sal;
3889 CORE_ADDR start_pc;
3890 CORE_ADDR end_pc;
3891 const struct block *bl;
3892
3893 /* Get an initial range for the function. */
3894 find_pc_partial_function (func_addr, NULL, &start_pc, &end_pc);
3895 start_pc += gdbarch_deprecated_function_start_offset (gdbarch);
3896
3897 prologue_sal = find_pc_line (start_pc, 0);
3898 if (prologue_sal.line != 0)
3899 {
3900 /* For languages other than assembly, treat two consecutive line
3901 entries at the same address as a zero-instruction prologue.
3902 The GNU assembler emits separate line notes for each instruction
3903 in a multi-instruction macro, but compilers generally will not
3904 do this. */
3905 if (prologue_sal.symtab->language != language_asm)
3906 {
3907 struct linetable *linetable = SYMTAB_LINETABLE (prologue_sal.symtab);
3908 int idx = 0;
3909
3910 /* Skip any earlier lines, and any end-of-sequence marker
3911 from a previous function. */
3912 while (linetable->item[idx].pc != prologue_sal.pc
3913 || linetable->item[idx].line == 0)
3914 idx++;
3915
3916 if (idx+1 < linetable->nitems
3917 && linetable->item[idx+1].line != 0
3918 && linetable->item[idx+1].pc == start_pc)
3919 return start_pc;
3920 }
3921
3922 /* If there is only one sal that covers the entire function,
3923 then it is probably a single line function, like
3924 "foo(){}". */
3925 if (prologue_sal.end >= end_pc)
3926 return 0;
3927
3928 while (prologue_sal.end < end_pc)
3929 {
3930 struct symtab_and_line sal;
3931
3932 sal = find_pc_line (prologue_sal.end, 0);
3933 if (sal.line == 0)
3934 break;
3935 /* Assume that a consecutive SAL for the same (or larger)
3936 line mark the prologue -> body transition. */
3937 if (sal.line >= prologue_sal.line)
3938 break;
3939 /* Likewise if we are in a different symtab altogether
3940 (e.g. within a file included via #include).  */
3941 if (sal.symtab != prologue_sal.symtab)
3942 break;
3943
3944 /* The line number is smaller. Check that it's from the
3945 same function, not something inlined. If it's inlined,
3946 then there is no point comparing the line numbers. */
3947 bl = block_for_pc (prologue_sal.end);
3948 while (bl)
3949 {
3950 if (block_inlined_p (bl))
3951 break;
3952 if (BLOCK_FUNCTION (bl))
3953 {
3954 bl = NULL;
3955 break;
3956 }
3957 bl = BLOCK_SUPERBLOCK (bl);
3958 }
3959 if (bl != NULL)
3960 break;
3961
3962 /* The case in which compiler's optimizer/scheduler has
3963 moved instructions into the prologue. We look ahead in
3964 the function looking for address ranges whose
3965 corresponding line number is less the first one that we
3966 found for the function. This is more conservative then
3967 refine_prologue_limit which scans a large number of SALs
3968 looking for any in the prologue. */
3969 prologue_sal = sal;
3970 }
3971 }
3972
3973 if (prologue_sal.end < end_pc)
3974 /* Return the end of this line, or zero if we could not find a
3975 line. */
3976 return prologue_sal.end;
3977 else
3978 /* Don't return END_PC, which is past the end of the function. */
3979 return prologue_sal.pc;
3980 }
3981
3982 /* See symtab.h. */
3983
3984 symbol *
3985 find_function_alias_target (bound_minimal_symbol msymbol)
3986 {
3987 CORE_ADDR func_addr;
3988 if (!msymbol_is_function (msymbol.objfile, msymbol.minsym, &func_addr))
3989 return NULL;
3990
3991 symbol *sym = find_pc_function (func_addr);
3992 if (sym != NULL
3993 && SYMBOL_CLASS (sym) == LOC_BLOCK
3994 && BLOCK_ENTRY_PC (SYMBOL_BLOCK_VALUE (sym)) == func_addr)
3995 return sym;
3996
3997 return NULL;
3998 }
3999
4000 \f
4001 /* If P is of the form "operator[ \t]+..." where `...' is
4002 some legitimate operator text, return a pointer to the
4003 beginning of the substring of the operator text.
4004 Otherwise, return "". */
4005
4006 static const char *
4007 operator_chars (const char *p, const char **end)
4008 {
4009 *end = "";
4010 if (!startswith (p, CP_OPERATOR_STR))
4011 return *end;
4012 p += CP_OPERATOR_LEN;
4013
4014 /* Don't get faked out by `operator' being part of a longer
4015 identifier. */
4016 if (isalpha (*p) || *p == '_' || *p == '$' || *p == '\0')
4017 return *end;
4018
4019 /* Allow some whitespace between `operator' and the operator symbol. */
4020 while (*p == ' ' || *p == '\t')
4021 p++;
4022
4023 /* Recognize 'operator TYPENAME'. */
4024
4025 if (isalpha (*p) || *p == '_' || *p == '$')
4026 {
4027 const char *q = p + 1;
4028
4029 while (isalnum (*q) || *q == '_' || *q == '$')
4030 q++;
4031 *end = q;
4032 return p;
4033 }
4034
4035 while (*p)
4036 switch (*p)
4037 {
4038 case '\\': /* regexp quoting */
4039 if (p[1] == '*')
4040 {
4041 if (p[2] == '=') /* 'operator\*=' */
4042 *end = p + 3;
4043 else /* 'operator\*' */
4044 *end = p + 2;
4045 return p;
4046 }
4047 else if (p[1] == '[')
4048 {
4049 if (p[2] == ']')
4050 error (_("mismatched quoting on brackets, "
4051 "try 'operator\\[\\]'"));
4052 else if (p[2] == '\\' && p[3] == ']')
4053 {
4054 *end = p + 4; /* 'operator\[\]' */
4055 return p;
4056 }
4057 else
4058 error (_("nothing is allowed between '[' and ']'"));
4059 }
4060 else
4061 {
4062 /* Gratuitous quote: skip it and move on. */
4063 p++;
4064 continue;
4065 }
4066 break;
4067 case '!':
4068 case '=':
4069 case '*':
4070 case '/':
4071 case '%':
4072 case '^':
4073 if (p[1] == '=')
4074 *end = p + 2;
4075 else
4076 *end = p + 1;
4077 return p;
4078 case '<':
4079 case '>':
4080 case '+':
4081 case '-':
4082 case '&':
4083 case '|':
4084 if (p[0] == '-' && p[1] == '>')
4085 {
4086 /* Struct pointer member operator 'operator->'. */
4087 if (p[2] == '*')
4088 {
4089 *end = p + 3; /* 'operator->*' */
4090 return p;
4091 }
4092 else if (p[2] == '\\')
4093 {
4094 *end = p + 4; /* Hopefully 'operator->\*' */
4095 return p;
4096 }
4097 else
4098 {
4099 *end = p + 2; /* 'operator->' */
4100 return p;
4101 }
4102 }
4103 if (p[1] == '=' || p[1] == p[0])
4104 *end = p + 2;
4105 else
4106 *end = p + 1;
4107 return p;
4108 case '~':
4109 case ',':
4110 *end = p + 1;
4111 return p;
4112 case '(':
4113 if (p[1] != ')')
4114 error (_("`operator ()' must be specified "
4115 "without whitespace in `()'"));
4116 *end = p + 2;
4117 return p;
4118 case '?':
4119 if (p[1] != ':')
4120 error (_("`operator ?:' must be specified "
4121 "without whitespace in `?:'"));
4122 *end = p + 2;
4123 return p;
4124 case '[':
4125 if (p[1] != ']')
4126 error (_("`operator []' must be specified "
4127 "without whitespace in `[]'"));
4128 *end = p + 2;
4129 return p;
4130 default:
4131 error (_("`operator %s' not supported"), p);
4132 break;
4133 }
4134
4135 *end = "";
4136 return *end;
4137 }
4138 \f
4139
4140 /* What part to match in a file name. */
4141
4142 struct filename_partial_match_opts
4143 {
4144 /* Only match the directory name part. */
4145 bool dirname = false;
4146
4147 /* Only match the basename part. */
4148 bool basename = false;
4149 };
4150
4151 /* Data structure to maintain printing state for output_source_filename. */
4152
4153 struct output_source_filename_data
4154 {
4155 /* Output only filenames matching REGEXP. */
4156 std::string regexp;
4157 gdb::optional<compiled_regex> c_regexp;
4158 /* Possibly only match a part of the filename. */
4159 filename_partial_match_opts partial_match;
4160
4161
4162 /* Cache of what we've seen so far. */
4163 struct filename_seen_cache *filename_seen_cache;
4164
4165 /* Flag of whether we're printing the first one. */
4166 int first;
4167 };
4168
4169 /* Slave routine for sources_info. Force line breaks at ,'s.
4170 NAME is the name to print.
4171 DATA contains the state for printing and watching for duplicates. */
4172
4173 static void
4174 output_source_filename (const char *name,
4175 struct output_source_filename_data *data)
4176 {
4177 /* Since a single source file can result in several partial symbol
4178 tables, we need to avoid printing it more than once. Note: if
4179 some of the psymtabs are read in and some are not, it gets
4180 printed both under "Source files for which symbols have been
4181 read" and "Source files for which symbols will be read in on
4182 demand". I consider this a reasonable way to deal with the
4183 situation. I'm not sure whether this can also happen for
4184 symtabs; it doesn't hurt to check. */
4185
4186 /* Was NAME already seen? */
4187 if (data->filename_seen_cache->seen (name))
4188 {
4189 /* Yes; don't print it again. */
4190 return;
4191 }
4192
4193 /* Does it match data->regexp? */
4194 if (data->c_regexp.has_value ())
4195 {
4196 const char *to_match;
4197 std::string dirname;
4198
4199 if (data->partial_match.dirname)
4200 {
4201 dirname = ldirname (name);
4202 to_match = dirname.c_str ();
4203 }
4204 else if (data->partial_match.basename)
4205 to_match = lbasename (name);
4206 else
4207 to_match = name;
4208
4209 if (data->c_regexp->exec (to_match, 0, NULL, 0) != 0)
4210 return;
4211 }
4212
4213 /* Print it and reset *FIRST. */
4214 if (! data->first)
4215 printf_filtered (", ");
4216 data->first = 0;
4217
4218 wrap_here ("");
4219 fputs_styled (name, file_name_style.style (), gdb_stdout);
4220 }
4221
4222 /* A callback for map_partial_symbol_filenames. */
4223
4224 static void
4225 output_partial_symbol_filename (const char *filename, const char *fullname,
4226 void *data)
4227 {
4228 output_source_filename (fullname ? fullname : filename,
4229 (struct output_source_filename_data *) data);
4230 }
4231
4232 using isrc_flag_option_def
4233 = gdb::option::flag_option_def<filename_partial_match_opts>;
4234
4235 static const gdb::option::option_def info_sources_option_defs[] = {
4236
4237 isrc_flag_option_def {
4238 "dirname",
4239 [] (filename_partial_match_opts *opts) { return &opts->dirname; },
4240 N_("Show only the files having a dirname matching REGEXP."),
4241 },
4242
4243 isrc_flag_option_def {
4244 "basename",
4245 [] (filename_partial_match_opts *opts) { return &opts->basename; },
4246 N_("Show only the files having a basename matching REGEXP."),
4247 },
4248
4249 };
4250
4251 /* Create an option_def_group for the "info sources" options, with
4252 ISRC_OPTS as context. */
4253
4254 static inline gdb::option::option_def_group
4255 make_info_sources_options_def_group (filename_partial_match_opts *isrc_opts)
4256 {
4257 return {{info_sources_option_defs}, isrc_opts};
4258 }
4259
4260 /* Prints the header message for the source files that will be printed
4261 with the matching info present in DATA. SYMBOL_MSG is a message
4262 that tells what will or has been done with the symbols of the
4263 matching source files. */
4264
4265 static void
4266 print_info_sources_header (const char *symbol_msg,
4267 const struct output_source_filename_data *data)
4268 {
4269 puts_filtered (symbol_msg);
4270 if (!data->regexp.empty ())
4271 {
4272 if (data->partial_match.dirname)
4273 printf_filtered (_("(dirname matching regular expression \"%s\")"),
4274 data->regexp.c_str ());
4275 else if (data->partial_match.basename)
4276 printf_filtered (_("(basename matching regular expression \"%s\")"),
4277 data->regexp.c_str ());
4278 else
4279 printf_filtered (_("(filename matching regular expression \"%s\")"),
4280 data->regexp.c_str ());
4281 }
4282 puts_filtered ("\n");
4283 }
4284
4285 /* Completer for "info sources". */
4286
4287 static void
4288 info_sources_command_completer (cmd_list_element *ignore,
4289 completion_tracker &tracker,
4290 const char *text, const char *word)
4291 {
4292 const auto group = make_info_sources_options_def_group (nullptr);
4293 if (gdb::option::complete_options
4294 (tracker, &text, gdb::option::PROCESS_OPTIONS_UNKNOWN_IS_OPERAND, group))
4295 return;
4296 }
4297
4298 static void
4299 info_sources_command (const char *args, int from_tty)
4300 {
4301 struct output_source_filename_data data;
4302
4303 if (!have_full_symbols () && !have_partial_symbols ())
4304 {
4305 error (_("No symbol table is loaded. Use the \"file\" command."));
4306 }
4307
4308 filename_seen_cache filenames_seen;
4309
4310 auto group = make_info_sources_options_def_group (&data.partial_match);
4311
4312 gdb::option::process_options
4313 (&args, gdb::option::PROCESS_OPTIONS_UNKNOWN_IS_ERROR, group);
4314
4315 if (args != NULL && *args != '\000')
4316 data.regexp = args;
4317
4318 data.filename_seen_cache = &filenames_seen;
4319 data.first = 1;
4320
4321 if (data.partial_match.dirname && data.partial_match.basename)
4322 error (_("You cannot give both -basename and -dirname to 'info sources'."));
4323 if ((data.partial_match.dirname || data.partial_match.basename)
4324 && data.regexp.empty ())
4325 error (_("Missing REGEXP for 'info sources'."));
4326
4327 if (data.regexp.empty ())
4328 data.c_regexp.reset ();
4329 else
4330 {
4331 int cflags = REG_NOSUB;
4332 #ifdef HAVE_CASE_INSENSITIVE_FILE_SYSTEM
4333 cflags |= REG_ICASE;
4334 #endif
4335 data.c_regexp.emplace (data.regexp.c_str (), cflags,
4336 _("Invalid regexp"));
4337 }
4338
4339 print_info_sources_header
4340 (_("Source files for which symbols have been read in:\n"), &data);
4341
4342 for (objfile *objfile : current_program_space->objfiles ())
4343 {
4344 for (compunit_symtab *cu : objfile->compunits ())
4345 {
4346 for (symtab *s : compunit_filetabs (cu))
4347 {
4348 const char *fullname = symtab_to_fullname (s);
4349
4350 output_source_filename (fullname, &data);
4351 }
4352 }
4353 }
4354 printf_filtered ("\n\n");
4355
4356 print_info_sources_header
4357 (_("Source files for which symbols will be read in on demand:\n"), &data);
4358
4359 filenames_seen.clear ();
4360 data.first = 1;
4361 map_symbol_filenames (output_partial_symbol_filename, &data,
4362 1 /*need_fullname*/);
4363 printf_filtered ("\n");
4364 }
4365
4366 /* Compare FILE against all the entries of FILENAMES. If BASENAMES is
4367 true compare only lbasename of FILENAMES. */
4368
4369 static bool
4370 file_matches (const char *file, const std::vector<const char *> &filenames,
4371 bool basenames)
4372 {
4373 if (filenames.empty ())
4374 return true;
4375
4376 for (const char *name : filenames)
4377 {
4378 name = (basenames ? lbasename (name) : name);
4379 if (compare_filenames_for_search (file, name))
4380 return true;
4381 }
4382
4383 return false;
4384 }
4385
4386 /* Helper function for sort_search_symbols_remove_dups and qsort. Can only
4387 sort symbols, not minimal symbols. */
4388
4389 int
4390 symbol_search::compare_search_syms (const symbol_search &sym_a,
4391 const symbol_search &sym_b)
4392 {
4393 int c;
4394
4395 c = FILENAME_CMP (symbol_symtab (sym_a.symbol)->filename,
4396 symbol_symtab (sym_b.symbol)->filename);
4397 if (c != 0)
4398 return c;
4399
4400 if (sym_a.block != sym_b.block)
4401 return sym_a.block - sym_b.block;
4402
4403 return strcmp (sym_a.symbol->print_name (), sym_b.symbol->print_name ());
4404 }
4405
4406 /* Returns true if the type_name of symbol_type of SYM matches TREG.
4407 If SYM has no symbol_type or symbol_name, returns false. */
4408
4409 bool
4410 treg_matches_sym_type_name (const compiled_regex &treg,
4411 const struct symbol *sym)
4412 {
4413 struct type *sym_type;
4414 std::string printed_sym_type_name;
4415
4416 if (symbol_lookup_debug > 1)
4417 {
4418 fprintf_unfiltered (gdb_stdlog,
4419 "treg_matches_sym_type_name\n sym %s\n",
4420 sym->natural_name ());
4421 }
4422
4423 sym_type = SYMBOL_TYPE (sym);
4424 if (sym_type == NULL)
4425 return false;
4426
4427 {
4428 scoped_switch_to_sym_language_if_auto l (sym);
4429
4430 printed_sym_type_name = type_to_string (sym_type);
4431 }
4432
4433
4434 if (symbol_lookup_debug > 1)
4435 {
4436 fprintf_unfiltered (gdb_stdlog,
4437 " sym_type_name %s\n",
4438 printed_sym_type_name.c_str ());
4439 }
4440
4441
4442 if (printed_sym_type_name.empty ())
4443 return false;
4444
4445 return treg.exec (printed_sym_type_name.c_str (), 0, NULL, 0) == 0;
4446 }
4447
4448
4449 /* Sort the symbols in RESULT and remove duplicates. */
4450
4451 static void
4452 sort_search_symbols_remove_dups (std::vector<symbol_search> *result)
4453 {
4454 std::sort (result->begin (), result->end ());
4455 result->erase (std::unique (result->begin (), result->end ()),
4456 result->end ());
4457 }
4458
4459 /* See symtab.h. */
4460
4461 std::vector<symbol_search>
4462 global_symbol_searcher::search () const
4463 {
4464 const struct blockvector *bv;
4465 const struct block *b;
4466 int i = 0;
4467 struct block_iterator iter;
4468 struct symbol *sym;
4469 int found_misc = 0;
4470 static const enum minimal_symbol_type types[]
4471 = {mst_data, mst_text, mst_unknown};
4472 static const enum minimal_symbol_type types2[]
4473 = {mst_bss, mst_file_text, mst_unknown};
4474 static const enum minimal_symbol_type types3[]
4475 = {mst_file_data, mst_solib_trampoline, mst_unknown};
4476 static const enum minimal_symbol_type types4[]
4477 = {mst_file_bss, mst_text_gnu_ifunc, mst_unknown};
4478 enum minimal_symbol_type ourtype;
4479 enum minimal_symbol_type ourtype2;
4480 enum minimal_symbol_type ourtype3;
4481 enum minimal_symbol_type ourtype4;
4482 std::vector<symbol_search> result;
4483 gdb::optional<compiled_regex> preg;
4484 gdb::optional<compiled_regex> treg;
4485
4486 gdb_assert (m_kind != ALL_DOMAIN);
4487
4488 ourtype = types[m_kind];
4489 ourtype2 = types2[m_kind];
4490 ourtype3 = types3[m_kind];
4491 ourtype4 = types4[m_kind];
4492
4493 if (m_symbol_name_regexp != NULL)
4494 {
4495 const char *symbol_name_regexp = m_symbol_name_regexp;
4496
4497 /* Make sure spacing is right for C++ operators.
4498 This is just a courtesy to make the matching less sensitive
4499 to how many spaces the user leaves between 'operator'
4500 and <TYPENAME> or <OPERATOR>. */
4501 const char *opend;
4502 const char *opname = operator_chars (symbol_name_regexp, &opend);
4503
4504 if (*opname)
4505 {
4506 int fix = -1; /* -1 means ok; otherwise number of
4507 spaces needed. */
4508
4509 if (isalpha (*opname) || *opname == '_' || *opname == '$')
4510 {
4511 /* There should 1 space between 'operator' and 'TYPENAME'. */
4512 if (opname[-1] != ' ' || opname[-2] == ' ')
4513 fix = 1;
4514 }
4515 else
4516 {
4517 /* There should 0 spaces between 'operator' and 'OPERATOR'. */
4518 if (opname[-1] == ' ')
4519 fix = 0;
4520 }
4521 /* If wrong number of spaces, fix it. */
4522 if (fix >= 0)
4523 {
4524 char *tmp = (char *) alloca (8 + fix + strlen (opname) + 1);
4525
4526 sprintf (tmp, "operator%.*s%s", fix, " ", opname);
4527 symbol_name_regexp = tmp;
4528 }
4529 }
4530
4531 int cflags = REG_NOSUB | (case_sensitivity == case_sensitive_off
4532 ? REG_ICASE : 0);
4533 preg.emplace (symbol_name_regexp, cflags,
4534 _("Invalid regexp"));
4535 }
4536
4537 if (m_symbol_type_regexp != NULL)
4538 {
4539 int cflags = REG_NOSUB | (case_sensitivity == case_sensitive_off
4540 ? REG_ICASE : 0);
4541 treg.emplace (m_symbol_type_regexp, cflags,
4542 _("Invalid regexp"));
4543 }
4544
4545 /* Search through the partial symtabs *first* for all symbols matching
4546 the m_symbol_name_regexp (in preg). That way we don't have to
4547 reproduce all of the machinery below. */
4548 expand_symtabs_matching ([&] (const char *filename, bool basenames)
4549 {
4550 return file_matches (filename, filenames,
4551 basenames);
4552 },
4553 lookup_name_info::match_any (),
4554 [&] (const char *symname)
4555 {
4556 return (!preg.has_value ()
4557 || preg->exec (symname,
4558 0, NULL, 0) == 0);
4559 },
4560 NULL,
4561 m_kind);
4562
4563 /* Here, we search through the minimal symbol tables for functions
4564 and variables that match, and force their symbols to be read.
4565 This is in particular necessary for demangled variable names,
4566 which are no longer put into the partial symbol tables.
4567 The symbol will then be found during the scan of symtabs below.
4568
4569 For functions, find_pc_symtab should succeed if we have debug info
4570 for the function, for variables we have to call
4571 lookup_symbol_in_objfile_from_linkage_name to determine if the variable
4572 has debug info.
4573 If the lookup fails, set found_misc so that we will rescan to print
4574 any matching symbols without debug info.
4575 We only search the objfile the msymbol came from, we no longer search
4576 all objfiles. In large programs (1000s of shared libs) searching all
4577 objfiles is not worth the pain. */
4578
4579 if (filenames.empty () && (m_kind == VARIABLES_DOMAIN
4580 || m_kind == FUNCTIONS_DOMAIN))
4581 {
4582 for (objfile *objfile : current_program_space->objfiles ())
4583 {
4584 for (minimal_symbol *msymbol : objfile->msymbols ())
4585 {
4586 QUIT;
4587
4588 if (msymbol->created_by_gdb)
4589 continue;
4590
4591 if (MSYMBOL_TYPE (msymbol) == ourtype
4592 || MSYMBOL_TYPE (msymbol) == ourtype2
4593 || MSYMBOL_TYPE (msymbol) == ourtype3
4594 || MSYMBOL_TYPE (msymbol) == ourtype4)
4595 {
4596 if (!preg.has_value ()
4597 || preg->exec (msymbol->natural_name (), 0,
4598 NULL, 0) == 0)
4599 {
4600 /* Note: An important side-effect of these
4601 lookup functions is to expand the symbol
4602 table if msymbol is found, for the benefit of
4603 the next loop on compunits. */
4604 if (m_kind == FUNCTIONS_DOMAIN
4605 ? (find_pc_compunit_symtab
4606 (MSYMBOL_VALUE_ADDRESS (objfile, msymbol))
4607 == NULL)
4608 : (lookup_symbol_in_objfile_from_linkage_name
4609 (objfile, msymbol->linkage_name (), VAR_DOMAIN)
4610 .symbol == NULL))
4611 found_misc = 1;
4612 }
4613 }
4614 }
4615 }
4616 }
4617
4618 for (objfile *objfile : current_program_space->objfiles ())
4619 {
4620 for (compunit_symtab *cust : objfile->compunits ())
4621 {
4622 bv = COMPUNIT_BLOCKVECTOR (cust);
4623 for (i = GLOBAL_BLOCK; i <= STATIC_BLOCK; i++)
4624 {
4625 b = BLOCKVECTOR_BLOCK (bv, i);
4626 ALL_BLOCK_SYMBOLS (b, iter, sym)
4627 {
4628 struct symtab *real_symtab = symbol_symtab (sym);
4629
4630 QUIT;
4631
4632 /* Check first sole REAL_SYMTAB->FILENAME. It does
4633 not need to be a substring of symtab_to_fullname as
4634 it may contain "./" etc. */
4635 if ((file_matches (real_symtab->filename, filenames, false)
4636 || ((basenames_may_differ
4637 || file_matches (lbasename (real_symtab->filename),
4638 filenames, true))
4639 && file_matches (symtab_to_fullname (real_symtab),
4640 filenames, false)))
4641 && ((!preg.has_value ()
4642 || preg->exec (sym->natural_name (), 0,
4643 NULL, 0) == 0)
4644 && ((m_kind == VARIABLES_DOMAIN
4645 && SYMBOL_CLASS (sym) != LOC_TYPEDEF
4646 && SYMBOL_CLASS (sym) != LOC_UNRESOLVED
4647 && SYMBOL_CLASS (sym) != LOC_BLOCK
4648 /* LOC_CONST can be used for more than
4649 just enums, e.g., c++ static const
4650 members. We only want to skip enums
4651 here. */
4652 && !(SYMBOL_CLASS (sym) == LOC_CONST
4653 && (TYPE_CODE (SYMBOL_TYPE (sym))
4654 == TYPE_CODE_ENUM))
4655 && (!treg.has_value ()
4656 || treg_matches_sym_type_name (*treg, sym)))
4657 || (m_kind == FUNCTIONS_DOMAIN
4658 && SYMBOL_CLASS (sym) == LOC_BLOCK
4659 && (!treg.has_value ()
4660 || treg_matches_sym_type_name (*treg,
4661 sym)))
4662 || (m_kind == TYPES_DOMAIN
4663 && SYMBOL_CLASS (sym) == LOC_TYPEDEF
4664 && SYMBOL_DOMAIN (sym) != MODULE_DOMAIN)
4665 || (m_kind == MODULES_DOMAIN
4666 && SYMBOL_DOMAIN (sym) == MODULE_DOMAIN
4667 && SYMBOL_LINE (sym) != 0))))
4668 {
4669 /* match */
4670 result.emplace_back (i, sym);
4671 }
4672 }
4673 }
4674 }
4675 }
4676
4677 if (!result.empty ())
4678 sort_search_symbols_remove_dups (&result);
4679
4680 /* If there are no debug symbols, then add matching minsyms. But if the
4681 user wants to see symbols matching a type m_symbol_type_regexp, then
4682 never give a minimal symbol, as we assume that a minimal symbol does
4683 not have a type. */
4684
4685 if ((found_misc || (filenames.empty () && m_kind != FUNCTIONS_DOMAIN))
4686 && !m_exclude_minsyms
4687 && !treg.has_value ())
4688 {
4689 for (objfile *objfile : current_program_space->objfiles ())
4690 {
4691 for (minimal_symbol *msymbol : objfile->msymbols ())
4692 {
4693 QUIT;
4694
4695 if (msymbol->created_by_gdb)
4696 continue;
4697
4698 if (MSYMBOL_TYPE (msymbol) == ourtype
4699 || MSYMBOL_TYPE (msymbol) == ourtype2
4700 || MSYMBOL_TYPE (msymbol) == ourtype3
4701 || MSYMBOL_TYPE (msymbol) == ourtype4)
4702 {
4703 if (!preg.has_value ()
4704 || preg->exec (msymbol->natural_name (), 0,
4705 NULL, 0) == 0)
4706 {
4707 /* For functions we can do a quick check of whether the
4708 symbol might be found via find_pc_symtab. */
4709 if (m_kind != FUNCTIONS_DOMAIN
4710 || (find_pc_compunit_symtab
4711 (MSYMBOL_VALUE_ADDRESS (objfile, msymbol))
4712 == NULL))
4713 {
4714 if (lookup_symbol_in_objfile_from_linkage_name
4715 (objfile, msymbol->linkage_name (), VAR_DOMAIN)
4716 .symbol == NULL)
4717 {
4718 /* match */
4719 result.emplace_back (i, msymbol, objfile);
4720 }
4721 }
4722 }
4723 }
4724 }
4725 }
4726 }
4727
4728 return result;
4729 }
4730
4731 /* See symtab.h. */
4732
4733 std::string
4734 symbol_to_info_string (struct symbol *sym, int block,
4735 enum search_domain kind)
4736 {
4737 std::string str;
4738
4739 gdb_assert (block == GLOBAL_BLOCK || block == STATIC_BLOCK);
4740
4741 if (kind != TYPES_DOMAIN && block == STATIC_BLOCK)
4742 str += "static ";
4743
4744 /* Typedef that is not a C++ class. */
4745 if (kind == TYPES_DOMAIN
4746 && SYMBOL_DOMAIN (sym) != STRUCT_DOMAIN)
4747 {
4748 string_file tmp_stream;
4749
4750 /* FIXME: For C (and C++) we end up with a difference in output here
4751 between how a typedef is printed, and non-typedefs are printed.
4752 The TYPEDEF_PRINT code places a ";" at the end in an attempt to
4753 appear C-like, while TYPE_PRINT doesn't.
4754
4755 For the struct printing case below, things are worse, we force
4756 printing of the ";" in this function, which is going to be wrong
4757 for languages that don't require a ";" between statements. */
4758 if (TYPE_CODE (SYMBOL_TYPE (sym)) == TYPE_CODE_TYPEDEF)
4759 typedef_print (SYMBOL_TYPE (sym), sym, &tmp_stream);
4760 else
4761 type_print (SYMBOL_TYPE (sym), "", &tmp_stream, -1);
4762 str += tmp_stream.string ();
4763 }
4764 /* variable, func, or typedef-that-is-c++-class. */
4765 else if (kind < TYPES_DOMAIN
4766 || (kind == TYPES_DOMAIN
4767 && SYMBOL_DOMAIN (sym) == STRUCT_DOMAIN))
4768 {
4769 string_file tmp_stream;
4770
4771 type_print (SYMBOL_TYPE (sym),
4772 (SYMBOL_CLASS (sym) == LOC_TYPEDEF
4773 ? "" : sym->print_name ()),
4774 &tmp_stream, 0);
4775
4776 str += tmp_stream.string ();
4777 str += ";";
4778 }
4779 /* Printing of modules is currently done here, maybe at some future
4780 point we might want a language specific method to print the module
4781 symbol so that we can customise the output more. */
4782 else if (kind == MODULES_DOMAIN)
4783 str += sym->print_name ();
4784
4785 return str;
4786 }
4787
4788 /* Helper function for symbol info commands, for example 'info functions',
4789 'info variables', etc. KIND is the kind of symbol we searched for, and
4790 BLOCK is the type of block the symbols was found in, either GLOBAL_BLOCK
4791 or STATIC_BLOCK. SYM is the symbol we found. If LAST is not NULL,
4792 print file and line number information for the symbol as well. Skip
4793 printing the filename if it matches LAST. */
4794
4795 static void
4796 print_symbol_info (enum search_domain kind,
4797 struct symbol *sym,
4798 int block, const char *last)
4799 {
4800 scoped_switch_to_sym_language_if_auto l (sym);
4801 struct symtab *s = symbol_symtab (sym);
4802
4803 if (last != NULL)
4804 {
4805 const char *s_filename = symtab_to_filename_for_display (s);
4806
4807 if (filename_cmp (last, s_filename) != 0)
4808 {
4809 printf_filtered (_("\nFile %ps:\n"),
4810 styled_string (file_name_style.style (),
4811 s_filename));
4812 }
4813
4814 if (SYMBOL_LINE (sym) != 0)
4815 printf_filtered ("%d:\t", SYMBOL_LINE (sym));
4816 else
4817 puts_filtered ("\t");
4818 }
4819
4820 std::string str = symbol_to_info_string (sym, block, kind);
4821 printf_filtered ("%s\n", str.c_str ());
4822 }
4823
4824 /* This help function for symtab_symbol_info() prints information
4825 for non-debugging symbols to gdb_stdout. */
4826
4827 static void
4828 print_msymbol_info (struct bound_minimal_symbol msymbol)
4829 {
4830 struct gdbarch *gdbarch = get_objfile_arch (msymbol.objfile);
4831 char *tmp;
4832
4833 if (gdbarch_addr_bit (gdbarch) <= 32)
4834 tmp = hex_string_custom (BMSYMBOL_VALUE_ADDRESS (msymbol)
4835 & (CORE_ADDR) 0xffffffff,
4836 8);
4837 else
4838 tmp = hex_string_custom (BMSYMBOL_VALUE_ADDRESS (msymbol),
4839 16);
4840
4841 ui_file_style sym_style = (msymbol.minsym->text_p ()
4842 ? function_name_style.style ()
4843 : ui_file_style ());
4844
4845 printf_filtered (_("%ps %ps\n"),
4846 styled_string (address_style.style (), tmp),
4847 styled_string (sym_style, msymbol.minsym->print_name ()));
4848 }
4849
4850 /* This is the guts of the commands "info functions", "info types", and
4851 "info variables". It calls search_symbols to find all matches and then
4852 print_[m]symbol_info to print out some useful information about the
4853 matches. */
4854
4855 static void
4856 symtab_symbol_info (bool quiet, bool exclude_minsyms,
4857 const char *regexp, enum search_domain kind,
4858 const char *t_regexp, int from_tty)
4859 {
4860 static const char * const classnames[] =
4861 {"variable", "function", "type", "module"};
4862 const char *last_filename = "";
4863 int first = 1;
4864
4865 gdb_assert (kind != ALL_DOMAIN);
4866
4867 if (regexp != nullptr && *regexp == '\0')
4868 regexp = nullptr;
4869
4870 global_symbol_searcher spec (kind, regexp);
4871 spec.set_symbol_type_regexp (t_regexp);
4872 spec.set_exclude_minsyms (exclude_minsyms);
4873 std::vector<symbol_search> symbols = spec.search ();
4874
4875 if (!quiet)
4876 {
4877 if (regexp != NULL)
4878 {
4879 if (t_regexp != NULL)
4880 printf_filtered
4881 (_("All %ss matching regular expression \"%s\""
4882 " with type matching regular expression \"%s\":\n"),
4883 classnames[kind], regexp, t_regexp);
4884 else
4885 printf_filtered (_("All %ss matching regular expression \"%s\":\n"),
4886 classnames[kind], regexp);
4887 }
4888 else
4889 {
4890 if (t_regexp != NULL)
4891 printf_filtered
4892 (_("All defined %ss"
4893 " with type matching regular expression \"%s\" :\n"),
4894 classnames[kind], t_regexp);
4895 else
4896 printf_filtered (_("All defined %ss:\n"), classnames[kind]);
4897 }
4898 }
4899
4900 for (const symbol_search &p : symbols)
4901 {
4902 QUIT;
4903
4904 if (p.msymbol.minsym != NULL)
4905 {
4906 if (first)
4907 {
4908 if (!quiet)
4909 printf_filtered (_("\nNon-debugging symbols:\n"));
4910 first = 0;
4911 }
4912 print_msymbol_info (p.msymbol);
4913 }
4914 else
4915 {
4916 print_symbol_info (kind,
4917 p.symbol,
4918 p.block,
4919 last_filename);
4920 last_filename
4921 = symtab_to_filename_for_display (symbol_symtab (p.symbol));
4922 }
4923 }
4924 }
4925
4926 /* Structure to hold the values of the options used by the 'info variables'
4927 and 'info functions' commands. These correspond to the -q, -t, and -n
4928 options. */
4929
4930 struct info_print_options
4931 {
4932 bool quiet = false;
4933 bool exclude_minsyms = false;
4934 char *type_regexp = nullptr;
4935
4936 ~info_print_options ()
4937 {
4938 xfree (type_regexp);
4939 }
4940 };
4941
4942 /* The options used by the 'info variables' and 'info functions'
4943 commands. */
4944
4945 static const gdb::option::option_def info_print_options_defs[] = {
4946 gdb::option::boolean_option_def<info_print_options> {
4947 "q",
4948 [] (info_print_options *opt) { return &opt->quiet; },
4949 nullptr, /* show_cmd_cb */
4950 nullptr /* set_doc */
4951 },
4952
4953 gdb::option::boolean_option_def<info_print_options> {
4954 "n",
4955 [] (info_print_options *opt) { return &opt->exclude_minsyms; },
4956 nullptr, /* show_cmd_cb */
4957 nullptr /* set_doc */
4958 },
4959
4960 gdb::option::string_option_def<info_print_options> {
4961 "t",
4962 [] (info_print_options *opt) { return &opt->type_regexp; },
4963 nullptr, /* show_cmd_cb */
4964 nullptr /* set_doc */
4965 }
4966 };
4967
4968 /* Returns the option group used by 'info variables' and 'info
4969 functions'. */
4970
4971 static gdb::option::option_def_group
4972 make_info_print_options_def_group (info_print_options *opts)
4973 {
4974 return {{info_print_options_defs}, opts};
4975 }
4976
4977 /* Command completer for 'info variables' and 'info functions'. */
4978
4979 static void
4980 info_print_command_completer (struct cmd_list_element *ignore,
4981 completion_tracker &tracker,
4982 const char *text, const char * /* word */)
4983 {
4984 const auto group
4985 = make_info_print_options_def_group (nullptr);
4986 if (gdb::option::complete_options
4987 (tracker, &text, gdb::option::PROCESS_OPTIONS_UNKNOWN_IS_OPERAND, group))
4988 return;
4989
4990 const char *word = advance_to_expression_complete_word_point (tracker, text);
4991 symbol_completer (ignore, tracker, text, word);
4992 }
4993
4994 /* Implement the 'info variables' command. */
4995
4996 static void
4997 info_variables_command (const char *args, int from_tty)
4998 {
4999 info_print_options opts;
5000 auto grp = make_info_print_options_def_group (&opts);
5001 gdb::option::process_options
5002 (&args, gdb::option::PROCESS_OPTIONS_UNKNOWN_IS_OPERAND, grp);
5003 if (args != nullptr && *args == '\0')
5004 args = nullptr;
5005
5006 symtab_symbol_info (opts.quiet, opts.exclude_minsyms, args, VARIABLES_DOMAIN,
5007 opts.type_regexp, from_tty);
5008 }
5009
5010 /* Implement the 'info functions' command. */
5011
5012 static void
5013 info_functions_command (const char *args, int from_tty)
5014 {
5015 info_print_options opts;
5016 auto grp = make_info_print_options_def_group (&opts);
5017 gdb::option::process_options
5018 (&args, gdb::option::PROCESS_OPTIONS_UNKNOWN_IS_OPERAND, grp);
5019 if (args != nullptr && *args == '\0')
5020 args = nullptr;
5021
5022 symtab_symbol_info (opts.quiet, opts.exclude_minsyms, args,
5023 FUNCTIONS_DOMAIN, opts.type_regexp, from_tty);
5024 }
5025
5026 /* Holds the -q option for the 'info types' command. */
5027
5028 struct info_types_options
5029 {
5030 bool quiet = false;
5031 };
5032
5033 /* The options used by the 'info types' command. */
5034
5035 static const gdb::option::option_def info_types_options_defs[] = {
5036 gdb::option::boolean_option_def<info_types_options> {
5037 "q",
5038 [] (info_types_options *opt) { return &opt->quiet; },
5039 nullptr, /* show_cmd_cb */
5040 nullptr /* set_doc */
5041 }
5042 };
5043
5044 /* Returns the option group used by 'info types'. */
5045
5046 static gdb::option::option_def_group
5047 make_info_types_options_def_group (info_types_options *opts)
5048 {
5049 return {{info_types_options_defs}, opts};
5050 }
5051
5052 /* Implement the 'info types' command. */
5053
5054 static void
5055 info_types_command (const char *args, int from_tty)
5056 {
5057 info_types_options opts;
5058
5059 auto grp = make_info_types_options_def_group (&opts);
5060 gdb::option::process_options
5061 (&args, gdb::option::PROCESS_OPTIONS_UNKNOWN_IS_OPERAND, grp);
5062 if (args != nullptr && *args == '\0')
5063 args = nullptr;
5064 symtab_symbol_info (opts.quiet, false, args, TYPES_DOMAIN, NULL, from_tty);
5065 }
5066
5067 /* Command completer for 'info types' command. */
5068
5069 static void
5070 info_types_command_completer (struct cmd_list_element *ignore,
5071 completion_tracker &tracker,
5072 const char *text, const char * /* word */)
5073 {
5074 const auto group
5075 = make_info_types_options_def_group (nullptr);
5076 if (gdb::option::complete_options
5077 (tracker, &text, gdb::option::PROCESS_OPTIONS_UNKNOWN_IS_OPERAND, group))
5078 return;
5079
5080 const char *word = advance_to_expression_complete_word_point (tracker, text);
5081 symbol_completer (ignore, tracker, text, word);
5082 }
5083
5084 /* Implement the 'info modules' command. */
5085
5086 static void
5087 info_modules_command (const char *args, int from_tty)
5088 {
5089 info_types_options opts;
5090
5091 auto grp = make_info_types_options_def_group (&opts);
5092 gdb::option::process_options
5093 (&args, gdb::option::PROCESS_OPTIONS_UNKNOWN_IS_OPERAND, grp);
5094 if (args != nullptr && *args == '\0')
5095 args = nullptr;
5096 symtab_symbol_info (opts.quiet, true, args, MODULES_DOMAIN, NULL,
5097 from_tty);
5098 }
5099
5100 static void
5101 rbreak_command (const char *regexp, int from_tty)
5102 {
5103 std::string string;
5104 const char *file_name = nullptr;
5105
5106 if (regexp != nullptr)
5107 {
5108 const char *colon = strchr (regexp, ':');
5109
5110 if (colon && *(colon + 1) != ':')
5111 {
5112 int colon_index;
5113 char *local_name;
5114
5115 colon_index = colon - regexp;
5116 local_name = (char *) alloca (colon_index + 1);
5117 memcpy (local_name, regexp, colon_index);
5118 local_name[colon_index--] = 0;
5119 while (isspace (local_name[colon_index]))
5120 local_name[colon_index--] = 0;
5121 file_name = local_name;
5122 regexp = skip_spaces (colon + 1);
5123 }
5124 }
5125
5126 global_symbol_searcher spec (FUNCTIONS_DOMAIN, regexp);
5127 if (file_name != nullptr)
5128 spec.filenames.push_back (file_name);
5129 std::vector<symbol_search> symbols = spec.search ();
5130
5131 scoped_rbreak_breakpoints finalize;
5132 for (const symbol_search &p : symbols)
5133 {
5134 if (p.msymbol.minsym == NULL)
5135 {
5136 struct symtab *symtab = symbol_symtab (p.symbol);
5137 const char *fullname = symtab_to_fullname (symtab);
5138
5139 string = string_printf ("%s:'%s'", fullname,
5140 p.symbol->linkage_name ());
5141 break_command (&string[0], from_tty);
5142 print_symbol_info (FUNCTIONS_DOMAIN, p.symbol, p.block, NULL);
5143 }
5144 else
5145 {
5146 string = string_printf ("'%s'",
5147 p.msymbol.minsym->linkage_name ());
5148
5149 break_command (&string[0], from_tty);
5150 printf_filtered ("<function, no debug info> %s;\n",
5151 p.msymbol.minsym->print_name ());
5152 }
5153 }
5154 }
5155 \f
5156
5157 /* Evaluate if SYMNAME matches LOOKUP_NAME. */
5158
5159 static int
5160 compare_symbol_name (const char *symbol_name, language symbol_language,
5161 const lookup_name_info &lookup_name,
5162 completion_match_result &match_res)
5163 {
5164 const language_defn *lang = language_def (symbol_language);
5165
5166 symbol_name_matcher_ftype *name_match
5167 = get_symbol_name_matcher (lang, lookup_name);
5168
5169 return name_match (symbol_name, lookup_name, &match_res);
5170 }
5171
5172 /* See symtab.h. */
5173
5174 void
5175 completion_list_add_name (completion_tracker &tracker,
5176 language symbol_language,
5177 const char *symname,
5178 const lookup_name_info &lookup_name,
5179 const char *text, const char *word)
5180 {
5181 completion_match_result &match_res
5182 = tracker.reset_completion_match_result ();
5183
5184 /* Clip symbols that cannot match. */
5185 if (!compare_symbol_name (symname, symbol_language, lookup_name, match_res))
5186 return;
5187
5188 /* Refresh SYMNAME from the match string. It's potentially
5189 different depending on language. (E.g., on Ada, the match may be
5190 the encoded symbol name wrapped in "<>"). */
5191 symname = match_res.match.match ();
5192 gdb_assert (symname != NULL);
5193
5194 /* We have a match for a completion, so add SYMNAME to the current list
5195 of matches. Note that the name is moved to freshly malloc'd space. */
5196
5197 {
5198 gdb::unique_xmalloc_ptr<char> completion
5199 = make_completion_match_str (symname, text, word);
5200
5201 /* Here we pass the match-for-lcd object to add_completion. Some
5202 languages match the user text against substrings of symbol
5203 names in some cases. E.g., in C++, "b push_ba" completes to
5204 "std::vector::push_back", "std::string::push_back", etc., and
5205 in this case we want the completion lowest common denominator
5206 to be "push_back" instead of "std::". */
5207 tracker.add_completion (std::move (completion),
5208 &match_res.match_for_lcd, text, word);
5209 }
5210 }
5211
5212 /* completion_list_add_name wrapper for struct symbol. */
5213
5214 static void
5215 completion_list_add_symbol (completion_tracker &tracker,
5216 symbol *sym,
5217 const lookup_name_info &lookup_name,
5218 const char *text, const char *word)
5219 {
5220 completion_list_add_name (tracker, SYMBOL_LANGUAGE (sym),
5221 sym->natural_name (),
5222 lookup_name, text, word);
5223 }
5224
5225 /* completion_list_add_name wrapper for struct minimal_symbol. */
5226
5227 static void
5228 completion_list_add_msymbol (completion_tracker &tracker,
5229 minimal_symbol *sym,
5230 const lookup_name_info &lookup_name,
5231 const char *text, const char *word)
5232 {
5233 completion_list_add_name (tracker, MSYMBOL_LANGUAGE (sym),
5234 sym->natural_name (),
5235 lookup_name, text, word);
5236 }
5237
5238
5239 /* ObjC: In case we are completing on a selector, look as the msymbol
5240 again and feed all the selectors into the mill. */
5241
5242 static void
5243 completion_list_objc_symbol (completion_tracker &tracker,
5244 struct minimal_symbol *msymbol,
5245 const lookup_name_info &lookup_name,
5246 const char *text, const char *word)
5247 {
5248 static char *tmp = NULL;
5249 static unsigned int tmplen = 0;
5250
5251 const char *method, *category, *selector;
5252 char *tmp2 = NULL;
5253
5254 method = msymbol->natural_name ();
5255
5256 /* Is it a method? */
5257 if ((method[0] != '-') && (method[0] != '+'))
5258 return;
5259
5260 if (text[0] == '[')
5261 /* Complete on shortened method method. */
5262 completion_list_add_name (tracker, language_objc,
5263 method + 1,
5264 lookup_name,
5265 text, word);
5266
5267 while ((strlen (method) + 1) >= tmplen)
5268 {
5269 if (tmplen == 0)
5270 tmplen = 1024;
5271 else
5272 tmplen *= 2;
5273 tmp = (char *) xrealloc (tmp, tmplen);
5274 }
5275 selector = strchr (method, ' ');
5276 if (selector != NULL)
5277 selector++;
5278
5279 category = strchr (method, '(');
5280
5281 if ((category != NULL) && (selector != NULL))
5282 {
5283 memcpy (tmp, method, (category - method));
5284 tmp[category - method] = ' ';
5285 memcpy (tmp + (category - method) + 1, selector, strlen (selector) + 1);
5286 completion_list_add_name (tracker, language_objc, tmp,
5287 lookup_name, text, word);
5288 if (text[0] == '[')
5289 completion_list_add_name (tracker, language_objc, tmp + 1,
5290 lookup_name, text, word);
5291 }
5292
5293 if (selector != NULL)
5294 {
5295 /* Complete on selector only. */
5296 strcpy (tmp, selector);
5297 tmp2 = strchr (tmp, ']');
5298 if (tmp2 != NULL)
5299 *tmp2 = '\0';
5300
5301 completion_list_add_name (tracker, language_objc, tmp,
5302 lookup_name, text, word);
5303 }
5304 }
5305
5306 /* Break the non-quoted text based on the characters which are in
5307 symbols. FIXME: This should probably be language-specific. */
5308
5309 static const char *
5310 language_search_unquoted_string (const char *text, const char *p)
5311 {
5312 for (; p > text; --p)
5313 {
5314 if (isalnum (p[-1]) || p[-1] == '_' || p[-1] == '\0')
5315 continue;
5316 else
5317 {
5318 if ((current_language->la_language == language_objc))
5319 {
5320 if (p[-1] == ':') /* Might be part of a method name. */
5321 continue;
5322 else if (p[-1] == '[' && (p[-2] == '-' || p[-2] == '+'))
5323 p -= 2; /* Beginning of a method name. */
5324 else if (p[-1] == ' ' || p[-1] == '(' || p[-1] == ')')
5325 { /* Might be part of a method name. */
5326 const char *t = p;
5327
5328 /* Seeing a ' ' or a '(' is not conclusive evidence
5329 that we are in the middle of a method name. However,
5330 finding "-[" or "+[" should be pretty un-ambiguous.
5331 Unfortunately we have to find it now to decide. */
5332
5333 while (t > text)
5334 if (isalnum (t[-1]) || t[-1] == '_' ||
5335 t[-1] == ' ' || t[-1] == ':' ||
5336 t[-1] == '(' || t[-1] == ')')
5337 --t;
5338 else
5339 break;
5340
5341 if (t[-1] == '[' && (t[-2] == '-' || t[-2] == '+'))
5342 p = t - 2; /* Method name detected. */
5343 /* Else we leave with p unchanged. */
5344 }
5345 }
5346 break;
5347 }
5348 }
5349 return p;
5350 }
5351
5352 static void
5353 completion_list_add_fields (completion_tracker &tracker,
5354 struct symbol *sym,
5355 const lookup_name_info &lookup_name,
5356 const char *text, const char *word)
5357 {
5358 if (SYMBOL_CLASS (sym) == LOC_TYPEDEF)
5359 {
5360 struct type *t = SYMBOL_TYPE (sym);
5361 enum type_code c = TYPE_CODE (t);
5362 int j;
5363
5364 if (c == TYPE_CODE_UNION || c == TYPE_CODE_STRUCT)
5365 for (j = TYPE_N_BASECLASSES (t); j < TYPE_NFIELDS (t); j++)
5366 if (TYPE_FIELD_NAME (t, j))
5367 completion_list_add_name (tracker, SYMBOL_LANGUAGE (sym),
5368 TYPE_FIELD_NAME (t, j),
5369 lookup_name, text, word);
5370 }
5371 }
5372
5373 /* See symtab.h. */
5374
5375 bool
5376 symbol_is_function_or_method (symbol *sym)
5377 {
5378 switch (TYPE_CODE (SYMBOL_TYPE (sym)))
5379 {
5380 case TYPE_CODE_FUNC:
5381 case TYPE_CODE_METHOD:
5382 return true;
5383 default:
5384 return false;
5385 }
5386 }
5387
5388 /* See symtab.h. */
5389
5390 bool
5391 symbol_is_function_or_method (minimal_symbol *msymbol)
5392 {
5393 switch (MSYMBOL_TYPE (msymbol))
5394 {
5395 case mst_text:
5396 case mst_text_gnu_ifunc:
5397 case mst_solib_trampoline:
5398 case mst_file_text:
5399 return true;
5400 default:
5401 return false;
5402 }
5403 }
5404
5405 /* See symtab.h. */
5406
5407 bound_minimal_symbol
5408 find_gnu_ifunc (const symbol *sym)
5409 {
5410 if (SYMBOL_CLASS (sym) != LOC_BLOCK)
5411 return {};
5412
5413 lookup_name_info lookup_name (sym->search_name (),
5414 symbol_name_match_type::SEARCH_NAME);
5415 struct objfile *objfile = symbol_objfile (sym);
5416
5417 CORE_ADDR address = BLOCK_ENTRY_PC (SYMBOL_BLOCK_VALUE (sym));
5418 minimal_symbol *ifunc = NULL;
5419
5420 iterate_over_minimal_symbols (objfile, lookup_name,
5421 [&] (minimal_symbol *minsym)
5422 {
5423 if (MSYMBOL_TYPE (minsym) == mst_text_gnu_ifunc
5424 || MSYMBOL_TYPE (minsym) == mst_data_gnu_ifunc)
5425 {
5426 CORE_ADDR msym_addr = MSYMBOL_VALUE_ADDRESS (objfile, minsym);
5427 if (MSYMBOL_TYPE (minsym) == mst_data_gnu_ifunc)
5428 {
5429 struct gdbarch *gdbarch = get_objfile_arch (objfile);
5430 msym_addr
5431 = gdbarch_convert_from_func_ptr_addr (gdbarch,
5432 msym_addr,
5433 current_top_target ());
5434 }
5435 if (msym_addr == address)
5436 {
5437 ifunc = minsym;
5438 return true;
5439 }
5440 }
5441 return false;
5442 });
5443
5444 if (ifunc != NULL)
5445 return {ifunc, objfile};
5446 return {};
5447 }
5448
5449 /* Add matching symbols from SYMTAB to the current completion list. */
5450
5451 static void
5452 add_symtab_completions (struct compunit_symtab *cust,
5453 completion_tracker &tracker,
5454 complete_symbol_mode mode,
5455 const lookup_name_info &lookup_name,
5456 const char *text, const char *word,
5457 enum type_code code)
5458 {
5459 struct symbol *sym;
5460 const struct block *b;
5461 struct block_iterator iter;
5462 int i;
5463
5464 if (cust == NULL)
5465 return;
5466
5467 for (i = GLOBAL_BLOCK; i <= STATIC_BLOCK; i++)
5468 {
5469 QUIT;
5470 b = BLOCKVECTOR_BLOCK (COMPUNIT_BLOCKVECTOR (cust), i);
5471 ALL_BLOCK_SYMBOLS (b, iter, sym)
5472 {
5473 if (completion_skip_symbol (mode, sym))
5474 continue;
5475
5476 if (code == TYPE_CODE_UNDEF
5477 || (SYMBOL_DOMAIN (sym) == STRUCT_DOMAIN
5478 && TYPE_CODE (SYMBOL_TYPE (sym)) == code))
5479 completion_list_add_symbol (tracker, sym,
5480 lookup_name,
5481 text, word);
5482 }
5483 }
5484 }
5485
5486 void
5487 default_collect_symbol_completion_matches_break_on
5488 (completion_tracker &tracker, complete_symbol_mode mode,
5489 symbol_name_match_type name_match_type,
5490 const char *text, const char *word,
5491 const char *break_on, enum type_code code)
5492 {
5493 /* Problem: All of the symbols have to be copied because readline
5494 frees them. I'm not going to worry about this; hopefully there
5495 won't be that many. */
5496
5497 struct symbol *sym;
5498 const struct block *b;
5499 const struct block *surrounding_static_block, *surrounding_global_block;
5500 struct block_iterator iter;
5501 /* The symbol we are completing on. Points in same buffer as text. */
5502 const char *sym_text;
5503
5504 /* Now look for the symbol we are supposed to complete on. */
5505 if (mode == complete_symbol_mode::LINESPEC)
5506 sym_text = text;
5507 else
5508 {
5509 const char *p;
5510 char quote_found;
5511 const char *quote_pos = NULL;
5512
5513 /* First see if this is a quoted string. */
5514 quote_found = '\0';
5515 for (p = text; *p != '\0'; ++p)
5516 {
5517 if (quote_found != '\0')
5518 {
5519 if (*p == quote_found)
5520 /* Found close quote. */
5521 quote_found = '\0';
5522 else if (*p == '\\' && p[1] == quote_found)
5523 /* A backslash followed by the quote character
5524 doesn't end the string. */
5525 ++p;
5526 }
5527 else if (*p == '\'' || *p == '"')
5528 {
5529 quote_found = *p;
5530 quote_pos = p;
5531 }
5532 }
5533 if (quote_found == '\'')
5534 /* A string within single quotes can be a symbol, so complete on it. */
5535 sym_text = quote_pos + 1;
5536 else if (quote_found == '"')
5537 /* A double-quoted string is never a symbol, nor does it make sense
5538 to complete it any other way. */
5539 {
5540 return;
5541 }
5542 else
5543 {
5544 /* It is not a quoted string. Break it based on the characters
5545 which are in symbols. */
5546 while (p > text)
5547 {
5548 if (isalnum (p[-1]) || p[-1] == '_' || p[-1] == '\0'
5549 || p[-1] == ':' || strchr (break_on, p[-1]) != NULL)
5550 --p;
5551 else
5552 break;
5553 }
5554 sym_text = p;
5555 }
5556 }
5557
5558 lookup_name_info lookup_name (sym_text, name_match_type, true);
5559
5560 /* At this point scan through the misc symbol vectors and add each
5561 symbol you find to the list. Eventually we want to ignore
5562 anything that isn't a text symbol (everything else will be
5563 handled by the psymtab code below). */
5564
5565 if (code == TYPE_CODE_UNDEF)
5566 {
5567 for (objfile *objfile : current_program_space->objfiles ())
5568 {
5569 for (minimal_symbol *msymbol : objfile->msymbols ())
5570 {
5571 QUIT;
5572
5573 if (completion_skip_symbol (mode, msymbol))
5574 continue;
5575
5576 completion_list_add_msymbol (tracker, msymbol, lookup_name,
5577 sym_text, word);
5578
5579 completion_list_objc_symbol (tracker, msymbol, lookup_name,
5580 sym_text, word);
5581 }
5582 }
5583 }
5584
5585 /* Add completions for all currently loaded symbol tables. */
5586 for (objfile *objfile : current_program_space->objfiles ())
5587 {
5588 for (compunit_symtab *cust : objfile->compunits ())
5589 add_symtab_completions (cust, tracker, mode, lookup_name,
5590 sym_text, word, code);
5591 }
5592
5593 /* Look through the partial symtabs for all symbols which begin by
5594 matching SYM_TEXT. Expand all CUs that you find to the list. */
5595 expand_symtabs_matching (NULL,
5596 lookup_name,
5597 NULL,
5598 [&] (compunit_symtab *symtab) /* expansion notify */
5599 {
5600 add_symtab_completions (symtab,
5601 tracker, mode, lookup_name,
5602 sym_text, word, code);
5603 },
5604 ALL_DOMAIN);
5605
5606 /* Search upwards from currently selected frame (so that we can
5607 complete on local vars). Also catch fields of types defined in
5608 this places which match our text string. Only complete on types
5609 visible from current context. */
5610
5611 b = get_selected_block (0);
5612 surrounding_static_block = block_static_block (b);
5613 surrounding_global_block = block_global_block (b);
5614 if (surrounding_static_block != NULL)
5615 while (b != surrounding_static_block)
5616 {
5617 QUIT;
5618
5619 ALL_BLOCK_SYMBOLS (b, iter, sym)
5620 {
5621 if (code == TYPE_CODE_UNDEF)
5622 {
5623 completion_list_add_symbol (tracker, sym, lookup_name,
5624 sym_text, word);
5625 completion_list_add_fields (tracker, sym, lookup_name,
5626 sym_text, word);
5627 }
5628 else if (SYMBOL_DOMAIN (sym) == STRUCT_DOMAIN
5629 && TYPE_CODE (SYMBOL_TYPE (sym)) == code)
5630 completion_list_add_symbol (tracker, sym, lookup_name,
5631 sym_text, word);
5632 }
5633
5634 /* Stop when we encounter an enclosing function. Do not stop for
5635 non-inlined functions - the locals of the enclosing function
5636 are in scope for a nested function. */
5637 if (BLOCK_FUNCTION (b) != NULL && block_inlined_p (b))
5638 break;
5639 b = BLOCK_SUPERBLOCK (b);
5640 }
5641
5642 /* Add fields from the file's types; symbols will be added below. */
5643
5644 if (code == TYPE_CODE_UNDEF)
5645 {
5646 if (surrounding_static_block != NULL)
5647 ALL_BLOCK_SYMBOLS (surrounding_static_block, iter, sym)
5648 completion_list_add_fields (tracker, sym, lookup_name,
5649 sym_text, word);
5650
5651 if (surrounding_global_block != NULL)
5652 ALL_BLOCK_SYMBOLS (surrounding_global_block, iter, sym)
5653 completion_list_add_fields (tracker, sym, lookup_name,
5654 sym_text, word);
5655 }
5656
5657 /* Skip macros if we are completing a struct tag -- arguable but
5658 usually what is expected. */
5659 if (current_language->la_macro_expansion == macro_expansion_c
5660 && code == TYPE_CODE_UNDEF)
5661 {
5662 gdb::unique_xmalloc_ptr<struct macro_scope> scope;
5663
5664 /* This adds a macro's name to the current completion list. */
5665 auto add_macro_name = [&] (const char *macro_name,
5666 const macro_definition *,
5667 macro_source_file *,
5668 int)
5669 {
5670 completion_list_add_name (tracker, language_c, macro_name,
5671 lookup_name, sym_text, word);
5672 };
5673
5674 /* Add any macros visible in the default scope. Note that this
5675 may yield the occasional wrong result, because an expression
5676 might be evaluated in a scope other than the default. For
5677 example, if the user types "break file:line if <TAB>", the
5678 resulting expression will be evaluated at "file:line" -- but
5679 at there does not seem to be a way to detect this at
5680 completion time. */
5681 scope = default_macro_scope ();
5682 if (scope)
5683 macro_for_each_in_scope (scope->file, scope->line,
5684 add_macro_name);
5685
5686 /* User-defined macros are always visible. */
5687 macro_for_each (macro_user_macros, add_macro_name);
5688 }
5689 }
5690
5691 void
5692 default_collect_symbol_completion_matches (completion_tracker &tracker,
5693 complete_symbol_mode mode,
5694 symbol_name_match_type name_match_type,
5695 const char *text, const char *word,
5696 enum type_code code)
5697 {
5698 return default_collect_symbol_completion_matches_break_on (tracker, mode,
5699 name_match_type,
5700 text, word, "",
5701 code);
5702 }
5703
5704 /* Collect all symbols (regardless of class) which begin by matching
5705 TEXT. */
5706
5707 void
5708 collect_symbol_completion_matches (completion_tracker &tracker,
5709 complete_symbol_mode mode,
5710 symbol_name_match_type name_match_type,
5711 const char *text, const char *word)
5712 {
5713 current_language->la_collect_symbol_completion_matches (tracker, mode,
5714 name_match_type,
5715 text, word,
5716 TYPE_CODE_UNDEF);
5717 }
5718
5719 /* Like collect_symbol_completion_matches, but only collect
5720 STRUCT_DOMAIN symbols whose type code is CODE. */
5721
5722 void
5723 collect_symbol_completion_matches_type (completion_tracker &tracker,
5724 const char *text, const char *word,
5725 enum type_code code)
5726 {
5727 complete_symbol_mode mode = complete_symbol_mode::EXPRESSION;
5728 symbol_name_match_type name_match_type = symbol_name_match_type::EXPRESSION;
5729
5730 gdb_assert (code == TYPE_CODE_UNION
5731 || code == TYPE_CODE_STRUCT
5732 || code == TYPE_CODE_ENUM);
5733 current_language->la_collect_symbol_completion_matches (tracker, mode,
5734 name_match_type,
5735 text, word, code);
5736 }
5737
5738 /* Like collect_symbol_completion_matches, but collects a list of
5739 symbols defined in all source files named SRCFILE. */
5740
5741 void
5742 collect_file_symbol_completion_matches (completion_tracker &tracker,
5743 complete_symbol_mode mode,
5744 symbol_name_match_type name_match_type,
5745 const char *text, const char *word,
5746 const char *srcfile)
5747 {
5748 /* The symbol we are completing on. Points in same buffer as text. */
5749 const char *sym_text;
5750
5751 /* Now look for the symbol we are supposed to complete on.
5752 FIXME: This should be language-specific. */
5753 if (mode == complete_symbol_mode::LINESPEC)
5754 sym_text = text;
5755 else
5756 {
5757 const char *p;
5758 char quote_found;
5759 const char *quote_pos = NULL;
5760
5761 /* First see if this is a quoted string. */
5762 quote_found = '\0';
5763 for (p = text; *p != '\0'; ++p)
5764 {
5765 if (quote_found != '\0')
5766 {
5767 if (*p == quote_found)
5768 /* Found close quote. */
5769 quote_found = '\0';
5770 else if (*p == '\\' && p[1] == quote_found)
5771 /* A backslash followed by the quote character
5772 doesn't end the string. */
5773 ++p;
5774 }
5775 else if (*p == '\'' || *p == '"')
5776 {
5777 quote_found = *p;
5778 quote_pos = p;
5779 }
5780 }
5781 if (quote_found == '\'')
5782 /* A string within single quotes can be a symbol, so complete on it. */
5783 sym_text = quote_pos + 1;
5784 else if (quote_found == '"')
5785 /* A double-quoted string is never a symbol, nor does it make sense
5786 to complete it any other way. */
5787 {
5788 return;
5789 }
5790 else
5791 {
5792 /* Not a quoted string. */
5793 sym_text = language_search_unquoted_string (text, p);
5794 }
5795 }
5796
5797 lookup_name_info lookup_name (sym_text, name_match_type, true);
5798
5799 /* Go through symtabs for SRCFILE and check the externs and statics
5800 for symbols which match. */
5801 iterate_over_symtabs (srcfile, [&] (symtab *s)
5802 {
5803 add_symtab_completions (SYMTAB_COMPUNIT (s),
5804 tracker, mode, lookup_name,
5805 sym_text, word, TYPE_CODE_UNDEF);
5806 return false;
5807 });
5808 }
5809
5810 /* A helper function for make_source_files_completion_list. It adds
5811 another file name to a list of possible completions, growing the
5812 list as necessary. */
5813
5814 static void
5815 add_filename_to_list (const char *fname, const char *text, const char *word,
5816 completion_list *list)
5817 {
5818 list->emplace_back (make_completion_match_str (fname, text, word));
5819 }
5820
5821 static int
5822 not_interesting_fname (const char *fname)
5823 {
5824 static const char *illegal_aliens[] = {
5825 "_globals_", /* inserted by coff_symtab_read */
5826 NULL
5827 };
5828 int i;
5829
5830 for (i = 0; illegal_aliens[i]; i++)
5831 {
5832 if (filename_cmp (fname, illegal_aliens[i]) == 0)
5833 return 1;
5834 }
5835 return 0;
5836 }
5837
5838 /* An object of this type is passed as the user_data argument to
5839 map_partial_symbol_filenames. */
5840 struct add_partial_filename_data
5841 {
5842 struct filename_seen_cache *filename_seen_cache;
5843 const char *text;
5844 const char *word;
5845 int text_len;
5846 completion_list *list;
5847 };
5848
5849 /* A callback for map_partial_symbol_filenames. */
5850
5851 static void
5852 maybe_add_partial_symtab_filename (const char *filename, const char *fullname,
5853 void *user_data)
5854 {
5855 struct add_partial_filename_data *data
5856 = (struct add_partial_filename_data *) user_data;
5857
5858 if (not_interesting_fname (filename))
5859 return;
5860 if (!data->filename_seen_cache->seen (filename)
5861 && filename_ncmp (filename, data->text, data->text_len) == 0)
5862 {
5863 /* This file matches for a completion; add it to the
5864 current list of matches. */
5865 add_filename_to_list (filename, data->text, data->word, data->list);
5866 }
5867 else
5868 {
5869 const char *base_name = lbasename (filename);
5870
5871 if (base_name != filename
5872 && !data->filename_seen_cache->seen (base_name)
5873 && filename_ncmp (base_name, data->text, data->text_len) == 0)
5874 add_filename_to_list (base_name, data->text, data->word, data->list);
5875 }
5876 }
5877
5878 /* Return a list of all source files whose names begin with matching
5879 TEXT. The file names are looked up in the symbol tables of this
5880 program. */
5881
5882 completion_list
5883 make_source_files_completion_list (const char *text, const char *word)
5884 {
5885 size_t text_len = strlen (text);
5886 completion_list list;
5887 const char *base_name;
5888 struct add_partial_filename_data datum;
5889
5890 if (!have_full_symbols () && !have_partial_symbols ())
5891 return list;
5892
5893 filename_seen_cache filenames_seen;
5894
5895 for (objfile *objfile : current_program_space->objfiles ())
5896 {
5897 for (compunit_symtab *cu : objfile->compunits ())
5898 {
5899 for (symtab *s : compunit_filetabs (cu))
5900 {
5901 if (not_interesting_fname (s->filename))
5902 continue;
5903 if (!filenames_seen.seen (s->filename)
5904 && filename_ncmp (s->filename, text, text_len) == 0)
5905 {
5906 /* This file matches for a completion; add it to the current
5907 list of matches. */
5908 add_filename_to_list (s->filename, text, word, &list);
5909 }
5910 else
5911 {
5912 /* NOTE: We allow the user to type a base name when the
5913 debug info records leading directories, but not the other
5914 way around. This is what subroutines of breakpoint
5915 command do when they parse file names. */
5916 base_name = lbasename (s->filename);
5917 if (base_name != s->filename
5918 && !filenames_seen.seen (base_name)
5919 && filename_ncmp (base_name, text, text_len) == 0)
5920 add_filename_to_list (base_name, text, word, &list);
5921 }
5922 }
5923 }
5924 }
5925
5926 datum.filename_seen_cache = &filenames_seen;
5927 datum.text = text;
5928 datum.word = word;
5929 datum.text_len = text_len;
5930 datum.list = &list;
5931 map_symbol_filenames (maybe_add_partial_symtab_filename, &datum,
5932 0 /*need_fullname*/);
5933
5934 return list;
5935 }
5936 \f
5937 /* Track MAIN */
5938
5939 /* Return the "main_info" object for the current program space. If
5940 the object has not yet been created, create it and fill in some
5941 default values. */
5942
5943 static struct main_info *
5944 get_main_info (void)
5945 {
5946 struct main_info *info = main_progspace_key.get (current_program_space);
5947
5948 if (info == NULL)
5949 {
5950 /* It may seem strange to store the main name in the progspace
5951 and also in whatever objfile happens to see a main name in
5952 its debug info. The reason for this is mainly historical:
5953 gdb returned "main" as the name even if no function named
5954 "main" was defined the program; and this approach lets us
5955 keep compatibility. */
5956 info = main_progspace_key.emplace (current_program_space);
5957 }
5958
5959 return info;
5960 }
5961
5962 static void
5963 set_main_name (const char *name, enum language lang)
5964 {
5965 struct main_info *info = get_main_info ();
5966
5967 if (info->name_of_main != NULL)
5968 {
5969 xfree (info->name_of_main);
5970 info->name_of_main = NULL;
5971 info->language_of_main = language_unknown;
5972 }
5973 if (name != NULL)
5974 {
5975 info->name_of_main = xstrdup (name);
5976 info->language_of_main = lang;
5977 }
5978 }
5979
5980 /* Deduce the name of the main procedure, and set NAME_OF_MAIN
5981 accordingly. */
5982
5983 static void
5984 find_main_name (void)
5985 {
5986 const char *new_main_name;
5987
5988 /* First check the objfiles to see whether a debuginfo reader has
5989 picked up the appropriate main name. Historically the main name
5990 was found in a more or less random way; this approach instead
5991 relies on the order of objfile creation -- which still isn't
5992 guaranteed to get the correct answer, but is just probably more
5993 accurate. */
5994 for (objfile *objfile : current_program_space->objfiles ())
5995 {
5996 if (objfile->per_bfd->name_of_main != NULL)
5997 {
5998 set_main_name (objfile->per_bfd->name_of_main,
5999 objfile->per_bfd->language_of_main);
6000 return;
6001 }
6002 }
6003
6004 /* Try to see if the main procedure is in Ada. */
6005 /* FIXME: brobecker/2005-03-07: Another way of doing this would
6006 be to add a new method in the language vector, and call this
6007 method for each language until one of them returns a non-empty
6008 name. This would allow us to remove this hard-coded call to
6009 an Ada function. It is not clear that this is a better approach
6010 at this point, because all methods need to be written in a way
6011 such that false positives never be returned. For instance, it is
6012 important that a method does not return a wrong name for the main
6013 procedure if the main procedure is actually written in a different
6014 language. It is easy to guaranty this with Ada, since we use a
6015 special symbol generated only when the main in Ada to find the name
6016 of the main procedure. It is difficult however to see how this can
6017 be guarantied for languages such as C, for instance. This suggests
6018 that order of call for these methods becomes important, which means
6019 a more complicated approach. */
6020 new_main_name = ada_main_name ();
6021 if (new_main_name != NULL)
6022 {
6023 set_main_name (new_main_name, language_ada);
6024 return;
6025 }
6026
6027 new_main_name = d_main_name ();
6028 if (new_main_name != NULL)
6029 {
6030 set_main_name (new_main_name, language_d);
6031 return;
6032 }
6033
6034 new_main_name = go_main_name ();
6035 if (new_main_name != NULL)
6036 {
6037 set_main_name (new_main_name, language_go);
6038 return;
6039 }
6040
6041 new_main_name = pascal_main_name ();
6042 if (new_main_name != NULL)
6043 {
6044 set_main_name (new_main_name, language_pascal);
6045 return;
6046 }
6047
6048 /* The languages above didn't identify the name of the main procedure.
6049 Fallback to "main". */
6050 set_main_name ("main", language_unknown);
6051 }
6052
6053 /* See symtab.h. */
6054
6055 const char *
6056 main_name ()
6057 {
6058 struct main_info *info = get_main_info ();
6059
6060 if (info->name_of_main == NULL)
6061 find_main_name ();
6062
6063 return info->name_of_main;
6064 }
6065
6066 /* Return the language of the main function. If it is not known,
6067 return language_unknown. */
6068
6069 enum language
6070 main_language (void)
6071 {
6072 struct main_info *info = get_main_info ();
6073
6074 if (info->name_of_main == NULL)
6075 find_main_name ();
6076
6077 return info->language_of_main;
6078 }
6079
6080 /* Handle ``executable_changed'' events for the symtab module. */
6081
6082 static void
6083 symtab_observer_executable_changed (void)
6084 {
6085 /* NAME_OF_MAIN may no longer be the same, so reset it for now. */
6086 set_main_name (NULL, language_unknown);
6087 }
6088
6089 /* Return 1 if the supplied producer string matches the ARM RealView
6090 compiler (armcc). */
6091
6092 bool
6093 producer_is_realview (const char *producer)
6094 {
6095 static const char *const arm_idents[] = {
6096 "ARM C Compiler, ADS",
6097 "Thumb C Compiler, ADS",
6098 "ARM C++ Compiler, ADS",
6099 "Thumb C++ Compiler, ADS",
6100 "ARM/Thumb C/C++ Compiler, RVCT",
6101 "ARM C/C++ Compiler, RVCT"
6102 };
6103 int i;
6104
6105 if (producer == NULL)
6106 return false;
6107
6108 for (i = 0; i < ARRAY_SIZE (arm_idents); i++)
6109 if (startswith (producer, arm_idents[i]))
6110 return true;
6111
6112 return false;
6113 }
6114
6115 \f
6116
6117 /* The next index to hand out in response to a registration request. */
6118
6119 static int next_aclass_value = LOC_FINAL_VALUE;
6120
6121 /* The maximum number of "aclass" registrations we support. This is
6122 constant for convenience. */
6123 #define MAX_SYMBOL_IMPLS (LOC_FINAL_VALUE + 10)
6124
6125 /* The objects representing the various "aclass" values. The elements
6126 from 0 up to LOC_FINAL_VALUE-1 represent themselves, and subsequent
6127 elements are those registered at gdb initialization time. */
6128
6129 static struct symbol_impl symbol_impl[MAX_SYMBOL_IMPLS];
6130
6131 /* The globally visible pointer. This is separate from 'symbol_impl'
6132 so that it can be const. */
6133
6134 const struct symbol_impl *symbol_impls = &symbol_impl[0];
6135
6136 /* Make sure we saved enough room in struct symbol. */
6137
6138 gdb_static_assert (MAX_SYMBOL_IMPLS <= (1 << SYMBOL_ACLASS_BITS));
6139
6140 /* Register a computed symbol type. ACLASS must be LOC_COMPUTED. OPS
6141 is the ops vector associated with this index. This returns the new
6142 index, which should be used as the aclass_index field for symbols
6143 of this type. */
6144
6145 int
6146 register_symbol_computed_impl (enum address_class aclass,
6147 const struct symbol_computed_ops *ops)
6148 {
6149 int result = next_aclass_value++;
6150
6151 gdb_assert (aclass == LOC_COMPUTED);
6152 gdb_assert (result < MAX_SYMBOL_IMPLS);
6153 symbol_impl[result].aclass = aclass;
6154 symbol_impl[result].ops_computed = ops;
6155
6156 /* Sanity check OPS. */
6157 gdb_assert (ops != NULL);
6158 gdb_assert (ops->tracepoint_var_ref != NULL);
6159 gdb_assert (ops->describe_location != NULL);
6160 gdb_assert (ops->get_symbol_read_needs != NULL);
6161 gdb_assert (ops->read_variable != NULL);
6162
6163 return result;
6164 }
6165
6166 /* Register a function with frame base type. ACLASS must be LOC_BLOCK.
6167 OPS is the ops vector associated with this index. This returns the
6168 new index, which should be used as the aclass_index field for symbols
6169 of this type. */
6170
6171 int
6172 register_symbol_block_impl (enum address_class aclass,
6173 const struct symbol_block_ops *ops)
6174 {
6175 int result = next_aclass_value++;
6176
6177 gdb_assert (aclass == LOC_BLOCK);
6178 gdb_assert (result < MAX_SYMBOL_IMPLS);
6179 symbol_impl[result].aclass = aclass;
6180 symbol_impl[result].ops_block = ops;
6181
6182 /* Sanity check OPS. */
6183 gdb_assert (ops != NULL);
6184 gdb_assert (ops->find_frame_base_location != NULL);
6185
6186 return result;
6187 }
6188
6189 /* Register a register symbol type. ACLASS must be LOC_REGISTER or
6190 LOC_REGPARM_ADDR. OPS is the register ops vector associated with
6191 this index. This returns the new index, which should be used as
6192 the aclass_index field for symbols of this type. */
6193
6194 int
6195 register_symbol_register_impl (enum address_class aclass,
6196 const struct symbol_register_ops *ops)
6197 {
6198 int result = next_aclass_value++;
6199
6200 gdb_assert (aclass == LOC_REGISTER || aclass == LOC_REGPARM_ADDR);
6201 gdb_assert (result < MAX_SYMBOL_IMPLS);
6202 symbol_impl[result].aclass = aclass;
6203 symbol_impl[result].ops_register = ops;
6204
6205 return result;
6206 }
6207
6208 /* Initialize elements of 'symbol_impl' for the constants in enum
6209 address_class. */
6210
6211 static void
6212 initialize_ordinary_address_classes (void)
6213 {
6214 int i;
6215
6216 for (i = 0; i < LOC_FINAL_VALUE; ++i)
6217 symbol_impl[i].aclass = (enum address_class) i;
6218 }
6219
6220 \f
6221
6222 /* Initialize the symbol SYM, and mark it as being owned by an objfile. */
6223
6224 void
6225 initialize_objfile_symbol (struct symbol *sym)
6226 {
6227 SYMBOL_OBJFILE_OWNED (sym) = 1;
6228 SYMBOL_SECTION (sym) = -1;
6229 }
6230
6231 /* Allocate and initialize a new 'struct symbol' on OBJFILE's
6232 obstack. */
6233
6234 struct symbol *
6235 allocate_symbol (struct objfile *objfile)
6236 {
6237 struct symbol *result = new (&objfile->objfile_obstack) symbol ();
6238
6239 initialize_objfile_symbol (result);
6240
6241 return result;
6242 }
6243
6244 /* Allocate and initialize a new 'struct template_symbol' on OBJFILE's
6245 obstack. */
6246
6247 struct template_symbol *
6248 allocate_template_symbol (struct objfile *objfile)
6249 {
6250 struct template_symbol *result;
6251
6252 result = new (&objfile->objfile_obstack) template_symbol ();
6253 initialize_objfile_symbol (result);
6254
6255 return result;
6256 }
6257
6258 /* See symtab.h. */
6259
6260 struct objfile *
6261 symbol_objfile (const struct symbol *symbol)
6262 {
6263 gdb_assert (SYMBOL_OBJFILE_OWNED (symbol));
6264 return SYMTAB_OBJFILE (symbol->owner.symtab);
6265 }
6266
6267 /* See symtab.h. */
6268
6269 struct gdbarch *
6270 symbol_arch (const struct symbol *symbol)
6271 {
6272 if (!SYMBOL_OBJFILE_OWNED (symbol))
6273 return symbol->owner.arch;
6274 return get_objfile_arch (SYMTAB_OBJFILE (symbol->owner.symtab));
6275 }
6276
6277 /* See symtab.h. */
6278
6279 struct symtab *
6280 symbol_symtab (const struct symbol *symbol)
6281 {
6282 gdb_assert (SYMBOL_OBJFILE_OWNED (symbol));
6283 return symbol->owner.symtab;
6284 }
6285
6286 /* See symtab.h. */
6287
6288 void
6289 symbol_set_symtab (struct symbol *symbol, struct symtab *symtab)
6290 {
6291 gdb_assert (SYMBOL_OBJFILE_OWNED (symbol));
6292 symbol->owner.symtab = symtab;
6293 }
6294
6295 /* See symtab.h. */
6296
6297 CORE_ADDR
6298 get_symbol_address (const struct symbol *sym)
6299 {
6300 gdb_assert (sym->maybe_copied);
6301 gdb_assert (SYMBOL_CLASS (sym) == LOC_STATIC);
6302
6303 const char *linkage_name = sym->linkage_name ();
6304
6305 for (objfile *objfile : current_program_space->objfiles ())
6306 {
6307 bound_minimal_symbol minsym
6308 = lookup_minimal_symbol_linkage (linkage_name, objfile);
6309 if (minsym.minsym != nullptr)
6310 return BMSYMBOL_VALUE_ADDRESS (minsym);
6311 }
6312 return sym->value.address;
6313 }
6314
6315 /* See symtab.h. */
6316
6317 CORE_ADDR
6318 get_msymbol_address (struct objfile *objf, const struct minimal_symbol *minsym)
6319 {
6320 gdb_assert (minsym->maybe_copied);
6321 gdb_assert ((objf->flags & OBJF_MAINLINE) == 0);
6322
6323 const char *linkage_name = minsym->linkage_name ();
6324
6325 for (objfile *objfile : current_program_space->objfiles ())
6326 {
6327 if ((objfile->flags & OBJF_MAINLINE) != 0)
6328 {
6329 bound_minimal_symbol found
6330 = lookup_minimal_symbol_linkage (linkage_name, objfile);
6331 if (found.minsym != nullptr)
6332 return BMSYMBOL_VALUE_ADDRESS (found);
6333 }
6334 }
6335 return (minsym->value.address
6336 + ANOFFSET (objf->section_offsets, minsym->section));
6337 }
6338
6339 \f
6340
6341 /* Hold the sub-commands of 'info module'. */
6342
6343 static struct cmd_list_element *info_module_cmdlist = NULL;
6344
6345 /* Implement the 'info module' command, just displays some help text for
6346 the available sub-commands. */
6347
6348 static void
6349 info_module_command (const char *args, int from_tty)
6350 {
6351 help_list (info_module_cmdlist, "info module ", class_info, gdb_stdout);
6352 }
6353
6354 /* See symtab.h. */
6355
6356 std::vector<module_symbol_search>
6357 search_module_symbols (const char *module_regexp, const char *regexp,
6358 const char *type_regexp, search_domain kind)
6359 {
6360 std::vector<module_symbol_search> results;
6361
6362 /* Search for all modules matching MODULE_REGEXP. */
6363 global_symbol_searcher spec1 (MODULES_DOMAIN, module_regexp);
6364 spec1.set_exclude_minsyms (true);
6365 std::vector<symbol_search> modules = spec1.search ();
6366
6367 /* Now search for all symbols of the required KIND matching the required
6368 regular expressions. We figure out which ones are in which modules
6369 below. */
6370 global_symbol_searcher spec2 (kind, regexp);
6371 spec2.set_symbol_type_regexp (type_regexp);
6372 spec2.set_exclude_minsyms (true);
6373 std::vector<symbol_search> symbols = spec2.search ();
6374
6375 /* Now iterate over all MODULES, checking to see which items from
6376 SYMBOLS are in each module. */
6377 for (const symbol_search &p : modules)
6378 {
6379 QUIT;
6380
6381 /* This is a module. */
6382 gdb_assert (p.symbol != nullptr);
6383
6384 std::string prefix = p.symbol->print_name ();
6385 prefix += "::";
6386
6387 for (const symbol_search &q : symbols)
6388 {
6389 if (q.symbol == nullptr)
6390 continue;
6391
6392 if (strncmp (q.symbol->print_name (), prefix.c_str (),
6393 prefix.size ()) != 0)
6394 continue;
6395
6396 results.push_back ({p, q});
6397 }
6398 }
6399
6400 return results;
6401 }
6402
6403 /* Implement the core of both 'info module functions' and 'info module
6404 variables'. */
6405
6406 static void
6407 info_module_subcommand (bool quiet, const char *module_regexp,
6408 const char *regexp, const char *type_regexp,
6409 search_domain kind)
6410 {
6411 /* Print a header line. Don't build the header line bit by bit as this
6412 prevents internationalisation. */
6413 if (!quiet)
6414 {
6415 if (module_regexp == nullptr)
6416 {
6417 if (type_regexp == nullptr)
6418 {
6419 if (regexp == nullptr)
6420 printf_filtered ((kind == VARIABLES_DOMAIN
6421 ? _("All variables in all modules:")
6422 : _("All functions in all modules:")));
6423 else
6424 printf_filtered
6425 ((kind == VARIABLES_DOMAIN
6426 ? _("All variables matching regular expression"
6427 " \"%s\" in all modules:")
6428 : _("All functions matching regular expression"
6429 " \"%s\" in all modules:")),
6430 regexp);
6431 }
6432 else
6433 {
6434 if (regexp == nullptr)
6435 printf_filtered
6436 ((kind == VARIABLES_DOMAIN
6437 ? _("All variables with type matching regular "
6438 "expression \"%s\" in all modules:")
6439 : _("All functions with type matching regular "
6440 "expression \"%s\" in all modules:")),
6441 type_regexp);
6442 else
6443 printf_filtered
6444 ((kind == VARIABLES_DOMAIN
6445 ? _("All variables matching regular expression "
6446 "\"%s\",\n\twith type matching regular "
6447 "expression \"%s\" in all modules:")
6448 : _("All functions matching regular expression "
6449 "\"%s\",\n\twith type matching regular "
6450 "expression \"%s\" in all modules:")),
6451 regexp, type_regexp);
6452 }
6453 }
6454 else
6455 {
6456 if (type_regexp == nullptr)
6457 {
6458 if (regexp == nullptr)
6459 printf_filtered
6460 ((kind == VARIABLES_DOMAIN
6461 ? _("All variables in all modules matching regular "
6462 "expression \"%s\":")
6463 : _("All functions in all modules matching regular "
6464 "expression \"%s\":")),
6465 module_regexp);
6466 else
6467 printf_filtered
6468 ((kind == VARIABLES_DOMAIN
6469 ? _("All variables matching regular expression "
6470 "\"%s\",\n\tin all modules matching regular "
6471 "expression \"%s\":")
6472 : _("All functions matching regular expression "
6473 "\"%s\",\n\tin all modules matching regular "
6474 "expression \"%s\":")),
6475 regexp, module_regexp);
6476 }
6477 else
6478 {
6479 if (regexp == nullptr)
6480 printf_filtered
6481 ((kind == VARIABLES_DOMAIN
6482 ? _("All variables with type matching regular "
6483 "expression \"%s\"\n\tin all modules matching "
6484 "regular expression \"%s\":")
6485 : _("All functions with type matching regular "
6486 "expression \"%s\"\n\tin all modules matching "
6487 "regular expression \"%s\":")),
6488 type_regexp, module_regexp);
6489 else
6490 printf_filtered
6491 ((kind == VARIABLES_DOMAIN
6492 ? _("All variables matching regular expression "
6493 "\"%s\",\n\twith type matching regular expression "
6494 "\"%s\",\n\tin all modules matching regular "
6495 "expression \"%s\":")
6496 : _("All functions matching regular expression "
6497 "\"%s\",\n\twith type matching regular expression "
6498 "\"%s\",\n\tin all modules matching regular "
6499 "expression \"%s\":")),
6500 regexp, type_regexp, module_regexp);
6501 }
6502 }
6503 printf_filtered ("\n");
6504 }
6505
6506 /* Find all symbols of type KIND matching the given regular expressions
6507 along with the symbols for the modules in which those symbols
6508 reside. */
6509 std::vector<module_symbol_search> module_symbols
6510 = search_module_symbols (module_regexp, regexp, type_regexp, kind);
6511
6512 std::sort (module_symbols.begin (), module_symbols.end (),
6513 [] (const module_symbol_search &a, const module_symbol_search &b)
6514 {
6515 if (a.first < b.first)
6516 return true;
6517 else if (a.first == b.first)
6518 return a.second < b.second;
6519 else
6520 return false;
6521 });
6522
6523 const char *last_filename = "";
6524 const symbol *last_module_symbol = nullptr;
6525 for (const module_symbol_search &ms : module_symbols)
6526 {
6527 const symbol_search &p = ms.first;
6528 const symbol_search &q = ms.second;
6529
6530 gdb_assert (q.symbol != nullptr);
6531
6532 if (last_module_symbol != p.symbol)
6533 {
6534 printf_filtered ("\n");
6535 printf_filtered (_("Module \"%s\":\n"), p.symbol->print_name ());
6536 last_module_symbol = p.symbol;
6537 last_filename = "";
6538 }
6539
6540 print_symbol_info (FUNCTIONS_DOMAIN, q.symbol, q.block,
6541 last_filename);
6542 last_filename
6543 = symtab_to_filename_for_display (symbol_symtab (q.symbol));
6544 }
6545 }
6546
6547 /* Hold the option values for the 'info module .....' sub-commands. */
6548
6549 struct info_modules_var_func_options
6550 {
6551 bool quiet = false;
6552 char *type_regexp = nullptr;
6553 char *module_regexp = nullptr;
6554
6555 ~info_modules_var_func_options ()
6556 {
6557 xfree (type_regexp);
6558 xfree (module_regexp);
6559 }
6560 };
6561
6562 /* The options used by 'info module variables' and 'info module functions'
6563 commands. */
6564
6565 static const gdb::option::option_def info_modules_var_func_options_defs [] = {
6566 gdb::option::boolean_option_def<info_modules_var_func_options> {
6567 "q",
6568 [] (info_modules_var_func_options *opt) { return &opt->quiet; },
6569 nullptr, /* show_cmd_cb */
6570 nullptr /* set_doc */
6571 },
6572
6573 gdb::option::string_option_def<info_modules_var_func_options> {
6574 "t",
6575 [] (info_modules_var_func_options *opt) { return &opt->type_regexp; },
6576 nullptr, /* show_cmd_cb */
6577 nullptr /* set_doc */
6578 },
6579
6580 gdb::option::string_option_def<info_modules_var_func_options> {
6581 "m",
6582 [] (info_modules_var_func_options *opt) { return &opt->module_regexp; },
6583 nullptr, /* show_cmd_cb */
6584 nullptr /* set_doc */
6585 }
6586 };
6587
6588 /* Return the option group used by the 'info module ...' sub-commands. */
6589
6590 static inline gdb::option::option_def_group
6591 make_info_modules_var_func_options_def_group
6592 (info_modules_var_func_options *opts)
6593 {
6594 return {{info_modules_var_func_options_defs}, opts};
6595 }
6596
6597 /* Implements the 'info module functions' command. */
6598
6599 static void
6600 info_module_functions_command (const char *args, int from_tty)
6601 {
6602 info_modules_var_func_options opts;
6603 auto grp = make_info_modules_var_func_options_def_group (&opts);
6604 gdb::option::process_options
6605 (&args, gdb::option::PROCESS_OPTIONS_UNKNOWN_IS_OPERAND, grp);
6606 if (args != nullptr && *args == '\0')
6607 args = nullptr;
6608
6609 info_module_subcommand (opts.quiet, opts.module_regexp, args,
6610 opts.type_regexp, FUNCTIONS_DOMAIN);
6611 }
6612
6613 /* Implements the 'info module variables' command. */
6614
6615 static void
6616 info_module_variables_command (const char *args, int from_tty)
6617 {
6618 info_modules_var_func_options opts;
6619 auto grp = make_info_modules_var_func_options_def_group (&opts);
6620 gdb::option::process_options
6621 (&args, gdb::option::PROCESS_OPTIONS_UNKNOWN_IS_OPERAND, grp);
6622 if (args != nullptr && *args == '\0')
6623 args = nullptr;
6624
6625 info_module_subcommand (opts.quiet, opts.module_regexp, args,
6626 opts.type_regexp, VARIABLES_DOMAIN);
6627 }
6628
6629 /* Command completer for 'info module ...' sub-commands. */
6630
6631 static void
6632 info_module_var_func_command_completer (struct cmd_list_element *ignore,
6633 completion_tracker &tracker,
6634 const char *text,
6635 const char * /* word */)
6636 {
6637
6638 const auto group = make_info_modules_var_func_options_def_group (nullptr);
6639 if (gdb::option::complete_options
6640 (tracker, &text, gdb::option::PROCESS_OPTIONS_UNKNOWN_IS_OPERAND, group))
6641 return;
6642
6643 const char *word = advance_to_expression_complete_word_point (tracker, text);
6644 symbol_completer (ignore, tracker, text, word);
6645 }
6646
6647 \f
6648
6649 void
6650 _initialize_symtab (void)
6651 {
6652 cmd_list_element *c;
6653
6654 initialize_ordinary_address_classes ();
6655
6656 c = add_info ("variables", info_variables_command,
6657 info_print_args_help (_("\
6658 All global and static variable names or those matching REGEXPs.\n\
6659 Usage: info variables [-q] [-n] [-t TYPEREGEXP] [NAMEREGEXP]\n\
6660 Prints the global and static variables.\n"),
6661 _("global and static variables"),
6662 true));
6663 set_cmd_completer_handle_brkchars (c, info_print_command_completer);
6664 if (dbx_commands)
6665 {
6666 c = add_com ("whereis", class_info, info_variables_command,
6667 info_print_args_help (_("\
6668 All global and static variable names, or those matching REGEXPs.\n\
6669 Usage: whereis [-q] [-n] [-t TYPEREGEXP] [NAMEREGEXP]\n\
6670 Prints the global and static variables.\n"),
6671 _("global and static variables"),
6672 true));
6673 set_cmd_completer_handle_brkchars (c, info_print_command_completer);
6674 }
6675
6676 c = add_info ("functions", info_functions_command,
6677 info_print_args_help (_("\
6678 All function names or those matching REGEXPs.\n\
6679 Usage: info functions [-q] [-n] [-t TYPEREGEXP] [NAMEREGEXP]\n\
6680 Prints the functions.\n"),
6681 _("functions"),
6682 true));
6683 set_cmd_completer_handle_brkchars (c, info_print_command_completer);
6684
6685 c = add_info ("types", info_types_command, _("\
6686 All type names, or those matching REGEXP.\n\
6687 Usage: info types [-q] [REGEXP]\n\
6688 Print information about all types matching REGEXP, or all types if no\n\
6689 REGEXP is given. The optional flag -q disables printing of headers."));
6690 set_cmd_completer_handle_brkchars (c, info_types_command_completer);
6691
6692 const auto info_sources_opts = make_info_sources_options_def_group (nullptr);
6693
6694 static std::string info_sources_help
6695 = gdb::option::build_help (_("\
6696 All source files in the program or those matching REGEXP.\n\
6697 Usage: info sources [OPTION]... [REGEXP]\n\
6698 By default, REGEXP is used to match anywhere in the filename.\n\
6699 \n\
6700 Options:\n\
6701 %OPTIONS%"),
6702 info_sources_opts);
6703
6704 c = add_info ("sources", info_sources_command, info_sources_help.c_str ());
6705 set_cmd_completer_handle_brkchars (c, info_sources_command_completer);
6706
6707 c = add_info ("modules", info_modules_command,
6708 _("All module names, or those matching REGEXP."));
6709 set_cmd_completer_handle_brkchars (c, info_types_command_completer);
6710
6711 add_prefix_cmd ("module", class_info, info_module_command, _("\
6712 Print information about modules."),
6713 &info_module_cmdlist, "info module ",
6714 0, &infolist);
6715
6716 c = add_cmd ("functions", class_info, info_module_functions_command, _("\
6717 Display functions arranged by modules.\n\
6718 Usage: info module functions [-q] [-m MODREGEXP] [-t TYPEREGEXP] [REGEXP]\n\
6719 Print a summary of all functions within each Fortran module, grouped by\n\
6720 module and file. For each function the line on which the function is\n\
6721 defined is given along with the type signature and name of the function.\n\
6722 \n\
6723 If REGEXP is provided then only functions whose name matches REGEXP are\n\
6724 listed. If MODREGEXP is provided then only functions in modules matching\n\
6725 MODREGEXP are listed. If TYPEREGEXP is given then only functions whose\n\
6726 type signature matches TYPEREGEXP are listed.\n\
6727 \n\
6728 The -q flag suppresses printing some header information."),
6729 &info_module_cmdlist);
6730 set_cmd_completer_handle_brkchars
6731 (c, info_module_var_func_command_completer);
6732
6733 c = add_cmd ("variables", class_info, info_module_variables_command, _("\
6734 Display variables arranged by modules.\n\
6735 Usage: info module variables [-q] [-m MODREGEXP] [-t TYPEREGEXP] [REGEXP]\n\
6736 Print a summary of all variables within each Fortran module, grouped by\n\
6737 module and file. For each variable the line on which the variable is\n\
6738 defined is given along with the type and name of the variable.\n\
6739 \n\
6740 If REGEXP is provided then only variables whose name matches REGEXP are\n\
6741 listed. If MODREGEXP is provided then only variables in modules matching\n\
6742 MODREGEXP are listed. If TYPEREGEXP is given then only variables whose\n\
6743 type matches TYPEREGEXP are listed.\n\
6744 \n\
6745 The -q flag suppresses printing some header information."),
6746 &info_module_cmdlist);
6747 set_cmd_completer_handle_brkchars
6748 (c, info_module_var_func_command_completer);
6749
6750 add_com ("rbreak", class_breakpoint, rbreak_command,
6751 _("Set a breakpoint for all functions matching REGEXP."));
6752
6753 add_setshow_enum_cmd ("multiple-symbols", no_class,
6754 multiple_symbols_modes, &multiple_symbols_mode,
6755 _("\
6756 Set how the debugger handles ambiguities in expressions."), _("\
6757 Show how the debugger handles ambiguities in expressions."), _("\
6758 Valid values are \"ask\", \"all\", \"cancel\", and the default is \"all\"."),
6759 NULL, NULL, &setlist, &showlist);
6760
6761 add_setshow_boolean_cmd ("basenames-may-differ", class_obscure,
6762 &basenames_may_differ, _("\
6763 Set whether a source file may have multiple base names."), _("\
6764 Show whether a source file may have multiple base names."), _("\
6765 (A \"base name\" is the name of a file with the directory part removed.\n\
6766 Example: The base name of \"/home/user/hello.c\" is \"hello.c\".)\n\
6767 If set, GDB will canonicalize file names (e.g., expand symlinks)\n\
6768 before comparing them. Canonicalization is an expensive operation,\n\
6769 but it allows the same file be known by more than one base name.\n\
6770 If not set (the default), all source files are assumed to have just\n\
6771 one base name, and gdb will do file name comparisons more efficiently."),
6772 NULL, NULL,
6773 &setlist, &showlist);
6774
6775 add_setshow_zuinteger_cmd ("symtab-create", no_class, &symtab_create_debug,
6776 _("Set debugging of symbol table creation."),
6777 _("Show debugging of symbol table creation."), _("\
6778 When enabled (non-zero), debugging messages are printed when building\n\
6779 symbol tables. A value of 1 (one) normally provides enough information.\n\
6780 A value greater than 1 provides more verbose information."),
6781 NULL,
6782 NULL,
6783 &setdebuglist, &showdebuglist);
6784
6785 add_setshow_zuinteger_cmd ("symbol-lookup", no_class, &symbol_lookup_debug,
6786 _("\
6787 Set debugging of symbol lookup."), _("\
6788 Show debugging of symbol lookup."), _("\
6789 When enabled (non-zero), symbol lookups are logged."),
6790 NULL, NULL,
6791 &setdebuglist, &showdebuglist);
6792
6793 add_setshow_zuinteger_cmd ("symbol-cache-size", no_class,
6794 &new_symbol_cache_size,
6795 _("Set the size of the symbol cache."),
6796 _("Show the size of the symbol cache."), _("\
6797 The size of the symbol cache.\n\
6798 If zero then the symbol cache is disabled."),
6799 set_symbol_cache_size_handler, NULL,
6800 &maintenance_set_cmdlist,
6801 &maintenance_show_cmdlist);
6802
6803 add_cmd ("symbol-cache", class_maintenance, maintenance_print_symbol_cache,
6804 _("Dump the symbol cache for each program space."),
6805 &maintenanceprintlist);
6806
6807 add_cmd ("symbol-cache-statistics", class_maintenance,
6808 maintenance_print_symbol_cache_statistics,
6809 _("Print symbol cache statistics for each program space."),
6810 &maintenanceprintlist);
6811
6812 add_cmd ("flush-symbol-cache", class_maintenance,
6813 maintenance_flush_symbol_cache,
6814 _("Flush the symbol cache for each program space."),
6815 &maintenancelist);
6816
6817 gdb::observers::executable_changed.attach (symtab_observer_executable_changed);
6818 gdb::observers::new_objfile.attach (symtab_new_objfile_observer);
6819 gdb::observers::free_objfile.attach (symtab_free_objfile_observer);
6820 }
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