2005-02-17 Andrew Cagney <cagney@gnu.org>
[deliverable/binutils-gdb.git] / gdb / symfile.c
1 /* Generic symbol file reading for the GNU debugger, GDB.
2
3 Copyright 1990, 1991, 1992, 1993, 1994, 1995, 1996, 1997, 1998,
4 1999, 2000, 2001, 2002, 2003, 2004 Free Software Foundation, Inc.
5
6 Contributed by Cygnus Support, using pieces from other GDB modules.
7
8 This file is part of GDB.
9
10 This program is free software; you can redistribute it and/or modify
11 it under the terms of the GNU General Public License as published by
12 the Free Software Foundation; either version 2 of the License, or
13 (at your option) any later version.
14
15 This program is distributed in the hope that it will be useful,
16 but WITHOUT ANY WARRANTY; without even the implied warranty of
17 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
18 GNU General Public License for more details.
19
20 You should have received a copy of the GNU General Public License
21 along with this program; if not, write to the Free Software
22 Foundation, Inc., 59 Temple Place - Suite 330,
23 Boston, MA 02111-1307, USA. */
24
25 #include "defs.h"
26 #include "bfdlink.h"
27 #include "symtab.h"
28 #include "gdbtypes.h"
29 #include "gdbcore.h"
30 #include "frame.h"
31 #include "target.h"
32 #include "value.h"
33 #include "symfile.h"
34 #include "objfiles.h"
35 #include "source.h"
36 #include "gdbcmd.h"
37 #include "breakpoint.h"
38 #include "language.h"
39 #include "complaints.h"
40 #include "demangle.h"
41 #include "inferior.h" /* for write_pc */
42 #include "filenames.h" /* for DOSish file names */
43 #include "gdb-stabs.h"
44 #include "gdb_obstack.h"
45 #include "completer.h"
46 #include "bcache.h"
47 #include "hashtab.h"
48 #include "readline/readline.h"
49 #include "gdb_assert.h"
50 #include "block.h"
51
52 #include <sys/types.h>
53 #include <fcntl.h>
54 #include "gdb_string.h"
55 #include "gdb_stat.h"
56 #include <ctype.h>
57 #include <time.h>
58
59 #ifndef O_BINARY
60 #define O_BINARY 0
61 #endif
62
63 int (*deprecated_ui_load_progress_hook) (const char *section, unsigned long num);
64 void (*deprecated_show_load_progress) (const char *section,
65 unsigned long section_sent,
66 unsigned long section_size,
67 unsigned long total_sent,
68 unsigned long total_size);
69 void (*deprecated_pre_add_symbol_hook) (const char *);
70 void (*deprecated_post_add_symbol_hook) (void);
71 void (*deprecated_target_new_objfile_hook) (struct objfile *);
72
73 static void clear_symtab_users_cleanup (void *ignore);
74
75 /* Global variables owned by this file */
76 int readnow_symbol_files; /* Read full symbols immediately */
77
78 /* External variables and functions referenced. */
79
80 extern void report_transfer_performance (unsigned long, time_t, time_t);
81
82 /* Functions this file defines */
83
84 #if 0
85 static int simple_read_overlay_region_table (void);
86 static void simple_free_overlay_region_table (void);
87 #endif
88
89 static void set_initial_language (void);
90
91 static void load_command (char *, int);
92
93 static void symbol_file_add_main_1 (char *args, int from_tty, int flags);
94
95 static void add_symbol_file_command (char *, int);
96
97 static void add_shared_symbol_files_command (char *, int);
98
99 static void reread_separate_symbols (struct objfile *objfile);
100
101 static void cashier_psymtab (struct partial_symtab *);
102
103 bfd *symfile_bfd_open (char *);
104
105 int get_section_index (struct objfile *, char *);
106
107 static void find_sym_fns (struct objfile *);
108
109 static void decrement_reading_symtab (void *);
110
111 static void overlay_invalidate_all (void);
112
113 static int overlay_is_mapped (struct obj_section *);
114
115 void list_overlays_command (char *, int);
116
117 void map_overlay_command (char *, int);
118
119 void unmap_overlay_command (char *, int);
120
121 static void overlay_auto_command (char *, int);
122
123 static void overlay_manual_command (char *, int);
124
125 static void overlay_off_command (char *, int);
126
127 static void overlay_load_command (char *, int);
128
129 static void overlay_command (char *, int);
130
131 static void simple_free_overlay_table (void);
132
133 static void read_target_long_array (CORE_ADDR, unsigned int *, int);
134
135 static int simple_read_overlay_table (void);
136
137 static int simple_overlay_update_1 (struct obj_section *);
138
139 static void add_filename_language (char *ext, enum language lang);
140
141 static void info_ext_lang_command (char *args, int from_tty);
142
143 static char *find_separate_debug_file (struct objfile *objfile);
144
145 static void init_filename_language_table (void);
146
147 void _initialize_symfile (void);
148
149 /* List of all available sym_fns. On gdb startup, each object file reader
150 calls add_symtab_fns() to register information on each format it is
151 prepared to read. */
152
153 static struct sym_fns *symtab_fns = NULL;
154
155 /* Flag for whether user will be reloading symbols multiple times.
156 Defaults to ON for VxWorks, otherwise OFF. */
157
158 #ifdef SYMBOL_RELOADING_DEFAULT
159 int symbol_reloading = SYMBOL_RELOADING_DEFAULT;
160 #else
161 int symbol_reloading = 0;
162 #endif
163
164 /* If non-zero, shared library symbols will be added automatically
165 when the inferior is created, new libraries are loaded, or when
166 attaching to the inferior. This is almost always what users will
167 want to have happen; but for very large programs, the startup time
168 will be excessive, and so if this is a problem, the user can clear
169 this flag and then add the shared library symbols as needed. Note
170 that there is a potential for confusion, since if the shared
171 library symbols are not loaded, commands like "info fun" will *not*
172 report all the functions that are actually present. */
173
174 int auto_solib_add = 1;
175
176 /* For systems that support it, a threshold size in megabytes. If
177 automatically adding a new library's symbol table to those already
178 known to the debugger would cause the total shared library symbol
179 size to exceed this threshhold, then the shlib's symbols are not
180 added. The threshold is ignored if the user explicitly asks for a
181 shlib to be added, such as when using the "sharedlibrary"
182 command. */
183
184 int auto_solib_limit;
185 \f
186
187 /* This compares two partial symbols by names, using strcmp_iw_ordered
188 for the comparison. */
189
190 static int
191 compare_psymbols (const void *s1p, const void *s2p)
192 {
193 struct partial_symbol *const *s1 = s1p;
194 struct partial_symbol *const *s2 = s2p;
195
196 return strcmp_iw_ordered (SYMBOL_SEARCH_NAME (*s1),
197 SYMBOL_SEARCH_NAME (*s2));
198 }
199
200 void
201 sort_pst_symbols (struct partial_symtab *pst)
202 {
203 /* Sort the global list; don't sort the static list */
204
205 qsort (pst->objfile->global_psymbols.list + pst->globals_offset,
206 pst->n_global_syms, sizeof (struct partial_symbol *),
207 compare_psymbols);
208 }
209
210 /* Make a null terminated copy of the string at PTR with SIZE characters in
211 the obstack pointed to by OBSTACKP . Returns the address of the copy.
212 Note that the string at PTR does not have to be null terminated, I.E. it
213 may be part of a larger string and we are only saving a substring. */
214
215 char *
216 obsavestring (const char *ptr, int size, struct obstack *obstackp)
217 {
218 char *p = (char *) obstack_alloc (obstackp, size + 1);
219 /* Open-coded memcpy--saves function call time. These strings are usually
220 short. FIXME: Is this really still true with a compiler that can
221 inline memcpy? */
222 {
223 const char *p1 = ptr;
224 char *p2 = p;
225 const char *end = ptr + size;
226 while (p1 != end)
227 *p2++ = *p1++;
228 }
229 p[size] = 0;
230 return p;
231 }
232
233 /* Concatenate strings S1, S2 and S3; return the new string. Space is found
234 in the obstack pointed to by OBSTACKP. */
235
236 char *
237 obconcat (struct obstack *obstackp, const char *s1, const char *s2,
238 const char *s3)
239 {
240 int len = strlen (s1) + strlen (s2) + strlen (s3) + 1;
241 char *val = (char *) obstack_alloc (obstackp, len);
242 strcpy (val, s1);
243 strcat (val, s2);
244 strcat (val, s3);
245 return val;
246 }
247
248 /* True if we are nested inside psymtab_to_symtab. */
249
250 int currently_reading_symtab = 0;
251
252 static void
253 decrement_reading_symtab (void *dummy)
254 {
255 currently_reading_symtab--;
256 }
257
258 /* Get the symbol table that corresponds to a partial_symtab.
259 This is fast after the first time you do it. In fact, there
260 is an even faster macro PSYMTAB_TO_SYMTAB that does the fast
261 case inline. */
262
263 struct symtab *
264 psymtab_to_symtab (struct partial_symtab *pst)
265 {
266 /* If it's been looked up before, return it. */
267 if (pst->symtab)
268 return pst->symtab;
269
270 /* If it has not yet been read in, read it. */
271 if (!pst->readin)
272 {
273 struct cleanup *back_to = make_cleanup (decrement_reading_symtab, NULL);
274 currently_reading_symtab++;
275 (*pst->read_symtab) (pst);
276 do_cleanups (back_to);
277 }
278
279 return pst->symtab;
280 }
281
282 /* Remember the lowest-addressed loadable section we've seen.
283 This function is called via bfd_map_over_sections.
284
285 In case of equal vmas, the section with the largest size becomes the
286 lowest-addressed loadable section.
287
288 If the vmas and sizes are equal, the last section is considered the
289 lowest-addressed loadable section. */
290
291 void
292 find_lowest_section (bfd *abfd, asection *sect, void *obj)
293 {
294 asection **lowest = (asection **) obj;
295
296 if (0 == (bfd_get_section_flags (abfd, sect) & SEC_LOAD))
297 return;
298 if (!*lowest)
299 *lowest = sect; /* First loadable section */
300 else if (bfd_section_vma (abfd, *lowest) > bfd_section_vma (abfd, sect))
301 *lowest = sect; /* A lower loadable section */
302 else if (bfd_section_vma (abfd, *lowest) == bfd_section_vma (abfd, sect)
303 && (bfd_section_size (abfd, (*lowest))
304 <= bfd_section_size (abfd, sect)))
305 *lowest = sect;
306 }
307
308 /* Create a new section_addr_info, with room for NUM_SECTIONS. */
309
310 struct section_addr_info *
311 alloc_section_addr_info (size_t num_sections)
312 {
313 struct section_addr_info *sap;
314 size_t size;
315
316 size = (sizeof (struct section_addr_info)
317 + sizeof (struct other_sections) * (num_sections - 1));
318 sap = (struct section_addr_info *) xmalloc (size);
319 memset (sap, 0, size);
320 sap->num_sections = num_sections;
321
322 return sap;
323 }
324
325
326 /* Return a freshly allocated copy of ADDRS. The section names, if
327 any, are also freshly allocated copies of those in ADDRS. */
328 struct section_addr_info *
329 copy_section_addr_info (struct section_addr_info *addrs)
330 {
331 struct section_addr_info *copy
332 = alloc_section_addr_info (addrs->num_sections);
333 int i;
334
335 copy->num_sections = addrs->num_sections;
336 for (i = 0; i < addrs->num_sections; i++)
337 {
338 copy->other[i].addr = addrs->other[i].addr;
339 if (addrs->other[i].name)
340 copy->other[i].name = xstrdup (addrs->other[i].name);
341 else
342 copy->other[i].name = NULL;
343 copy->other[i].sectindex = addrs->other[i].sectindex;
344 }
345
346 return copy;
347 }
348
349
350
351 /* Build (allocate and populate) a section_addr_info struct from
352 an existing section table. */
353
354 extern struct section_addr_info *
355 build_section_addr_info_from_section_table (const struct section_table *start,
356 const struct section_table *end)
357 {
358 struct section_addr_info *sap;
359 const struct section_table *stp;
360 int oidx;
361
362 sap = alloc_section_addr_info (end - start);
363
364 for (stp = start, oidx = 0; stp != end; stp++)
365 {
366 if (bfd_get_section_flags (stp->bfd,
367 stp->the_bfd_section) & (SEC_ALLOC | SEC_LOAD)
368 && oidx < end - start)
369 {
370 sap->other[oidx].addr = stp->addr;
371 sap->other[oidx].name
372 = xstrdup (bfd_section_name (stp->bfd, stp->the_bfd_section));
373 sap->other[oidx].sectindex = stp->the_bfd_section->index;
374 oidx++;
375 }
376 }
377
378 return sap;
379 }
380
381
382 /* Free all memory allocated by build_section_addr_info_from_section_table. */
383
384 extern void
385 free_section_addr_info (struct section_addr_info *sap)
386 {
387 int idx;
388
389 for (idx = 0; idx < sap->num_sections; idx++)
390 if (sap->other[idx].name)
391 xfree (sap->other[idx].name);
392 xfree (sap);
393 }
394
395
396 /* Initialize OBJFILE's sect_index_* members. */
397 static void
398 init_objfile_sect_indices (struct objfile *objfile)
399 {
400 asection *sect;
401 int i;
402
403 sect = bfd_get_section_by_name (objfile->obfd, ".text");
404 if (sect)
405 objfile->sect_index_text = sect->index;
406
407 sect = bfd_get_section_by_name (objfile->obfd, ".data");
408 if (sect)
409 objfile->sect_index_data = sect->index;
410
411 sect = bfd_get_section_by_name (objfile->obfd, ".bss");
412 if (sect)
413 objfile->sect_index_bss = sect->index;
414
415 sect = bfd_get_section_by_name (objfile->obfd, ".rodata");
416 if (sect)
417 objfile->sect_index_rodata = sect->index;
418
419 /* This is where things get really weird... We MUST have valid
420 indices for the various sect_index_* members or gdb will abort.
421 So if for example, there is no ".text" section, we have to
422 accomodate that. Except when explicitly adding symbol files at
423 some address, section_offsets contains nothing but zeros, so it
424 doesn't matter which slot in section_offsets the individual
425 sect_index_* members index into. So if they are all zero, it is
426 safe to just point all the currently uninitialized indices to the
427 first slot. */
428
429 for (i = 0; i < objfile->num_sections; i++)
430 {
431 if (ANOFFSET (objfile->section_offsets, i) != 0)
432 {
433 break;
434 }
435 }
436 if (i == objfile->num_sections)
437 {
438 if (objfile->sect_index_text == -1)
439 objfile->sect_index_text = 0;
440 if (objfile->sect_index_data == -1)
441 objfile->sect_index_data = 0;
442 if (objfile->sect_index_bss == -1)
443 objfile->sect_index_bss = 0;
444 if (objfile->sect_index_rodata == -1)
445 objfile->sect_index_rodata = 0;
446 }
447 }
448
449
450 /* Parse the user's idea of an offset for dynamic linking, into our idea
451 of how to represent it for fast symbol reading. This is the default
452 version of the sym_fns.sym_offsets function for symbol readers that
453 don't need to do anything special. It allocates a section_offsets table
454 for the objectfile OBJFILE and stuffs ADDR into all of the offsets. */
455
456 void
457 default_symfile_offsets (struct objfile *objfile,
458 struct section_addr_info *addrs)
459 {
460 int i;
461
462 objfile->num_sections = bfd_count_sections (objfile->obfd);
463 objfile->section_offsets = (struct section_offsets *)
464 obstack_alloc (&objfile->objfile_obstack,
465 SIZEOF_N_SECTION_OFFSETS (objfile->num_sections));
466 memset (objfile->section_offsets, 0,
467 SIZEOF_N_SECTION_OFFSETS (objfile->num_sections));
468
469 /* Now calculate offsets for section that were specified by the
470 caller. */
471 for (i = 0; i < addrs->num_sections && addrs->other[i].name; i++)
472 {
473 struct other_sections *osp ;
474
475 osp = &addrs->other[i] ;
476 if (osp->addr == 0)
477 continue;
478
479 /* Record all sections in offsets */
480 /* The section_offsets in the objfile are here filled in using
481 the BFD index. */
482 (objfile->section_offsets)->offsets[osp->sectindex] = osp->addr;
483 }
484
485 /* Remember the bfd indexes for the .text, .data, .bss and
486 .rodata sections. */
487 init_objfile_sect_indices (objfile);
488 }
489
490
491 /* Process a symbol file, as either the main file or as a dynamically
492 loaded file.
493
494 OBJFILE is where the symbols are to be read from.
495
496 ADDRS is the list of section load addresses. If the user has given
497 an 'add-symbol-file' command, then this is the list of offsets and
498 addresses he or she provided as arguments to the command; or, if
499 we're handling a shared library, these are the actual addresses the
500 sections are loaded at, according to the inferior's dynamic linker
501 (as gleaned by GDB's shared library code). We convert each address
502 into an offset from the section VMA's as it appears in the object
503 file, and then call the file's sym_offsets function to convert this
504 into a format-specific offset table --- a `struct section_offsets'.
505 If ADDRS is non-zero, OFFSETS must be zero.
506
507 OFFSETS is a table of section offsets already in the right
508 format-specific representation. NUM_OFFSETS is the number of
509 elements present in OFFSETS->offsets. If OFFSETS is non-zero, we
510 assume this is the proper table the call to sym_offsets described
511 above would produce. Instead of calling sym_offsets, we just dump
512 it right into objfile->section_offsets. (When we're re-reading
513 symbols from an objfile, we don't have the original load address
514 list any more; all we have is the section offset table.) If
515 OFFSETS is non-zero, ADDRS must be zero.
516
517 MAINLINE is nonzero if this is the main symbol file, or zero if
518 it's an extra symbol file such as dynamically loaded code.
519
520 VERBO is nonzero if the caller has printed a verbose message about
521 the symbol reading (and complaints can be more terse about it). */
522
523 void
524 syms_from_objfile (struct objfile *objfile,
525 struct section_addr_info *addrs,
526 struct section_offsets *offsets,
527 int num_offsets,
528 int mainline,
529 int verbo)
530 {
531 struct section_addr_info *local_addr = NULL;
532 struct cleanup *old_chain;
533
534 gdb_assert (! (addrs && offsets));
535
536 init_entry_point_info (objfile);
537 find_sym_fns (objfile);
538
539 if (objfile->sf == NULL)
540 return; /* No symbols. */
541
542 /* Make sure that partially constructed symbol tables will be cleaned up
543 if an error occurs during symbol reading. */
544 old_chain = make_cleanup_free_objfile (objfile);
545
546 /* If ADDRS and OFFSETS are both NULL, put together a dummy address
547 list. We now establish the convention that an addr of zero means
548 no load address was specified. */
549 if (! addrs && ! offsets)
550 {
551 local_addr
552 = alloc_section_addr_info (bfd_count_sections (objfile->obfd));
553 make_cleanup (xfree, local_addr);
554 addrs = local_addr;
555 }
556
557 /* Now either addrs or offsets is non-zero. */
558
559 if (mainline)
560 {
561 /* We will modify the main symbol table, make sure that all its users
562 will be cleaned up if an error occurs during symbol reading. */
563 make_cleanup (clear_symtab_users_cleanup, 0 /*ignore*/);
564
565 /* Since no error yet, throw away the old symbol table. */
566
567 if (symfile_objfile != NULL)
568 {
569 free_objfile (symfile_objfile);
570 symfile_objfile = NULL;
571 }
572
573 /* Currently we keep symbols from the add-symbol-file command.
574 If the user wants to get rid of them, they should do "symbol-file"
575 without arguments first. Not sure this is the best behavior
576 (PR 2207). */
577
578 (*objfile->sf->sym_new_init) (objfile);
579 }
580
581 /* Convert addr into an offset rather than an absolute address.
582 We find the lowest address of a loaded segment in the objfile,
583 and assume that <addr> is where that got loaded.
584
585 We no longer warn if the lowest section is not a text segment (as
586 happens for the PA64 port. */
587 if (!mainline && addrs && addrs->other[0].name)
588 {
589 asection *lower_sect;
590 asection *sect;
591 CORE_ADDR lower_offset;
592 int i;
593
594 /* Find lowest loadable section to be used as starting point for
595 continguous sections. FIXME!! won't work without call to find
596 .text first, but this assumes text is lowest section. */
597 lower_sect = bfd_get_section_by_name (objfile->obfd, ".text");
598 if (lower_sect == NULL)
599 bfd_map_over_sections (objfile->obfd, find_lowest_section,
600 &lower_sect);
601 if (lower_sect == NULL)
602 warning (_("no loadable sections found in added symbol-file %s"),
603 objfile->name);
604 else
605 if ((bfd_get_section_flags (objfile->obfd, lower_sect) & SEC_CODE) == 0)
606 warning (_("Lowest section in %s is %s at %s"),
607 objfile->name,
608 bfd_section_name (objfile->obfd, lower_sect),
609 paddr (bfd_section_vma (objfile->obfd, lower_sect)));
610 if (lower_sect != NULL)
611 lower_offset = bfd_section_vma (objfile->obfd, lower_sect);
612 else
613 lower_offset = 0;
614
615 /* Calculate offsets for the loadable sections.
616 FIXME! Sections must be in order of increasing loadable section
617 so that contiguous sections can use the lower-offset!!!
618
619 Adjust offsets if the segments are not contiguous.
620 If the section is contiguous, its offset should be set to
621 the offset of the highest loadable section lower than it
622 (the loadable section directly below it in memory).
623 this_offset = lower_offset = lower_addr - lower_orig_addr */
624
625 for (i = 0; i < addrs->num_sections && addrs->other[i].name; i++)
626 {
627 if (addrs->other[i].addr != 0)
628 {
629 sect = bfd_get_section_by_name (objfile->obfd,
630 addrs->other[i].name);
631 if (sect)
632 {
633 addrs->other[i].addr
634 -= bfd_section_vma (objfile->obfd, sect);
635 lower_offset = addrs->other[i].addr;
636 /* This is the index used by BFD. */
637 addrs->other[i].sectindex = sect->index ;
638 }
639 else
640 {
641 warning (_("section %s not found in %s"),
642 addrs->other[i].name,
643 objfile->name);
644 addrs->other[i].addr = 0;
645 }
646 }
647 else
648 addrs->other[i].addr = lower_offset;
649 }
650 }
651
652 /* Initialize symbol reading routines for this objfile, allow complaints to
653 appear for this new file, and record how verbose to be, then do the
654 initial symbol reading for this file. */
655
656 (*objfile->sf->sym_init) (objfile);
657 clear_complaints (&symfile_complaints, 1, verbo);
658
659 if (addrs)
660 (*objfile->sf->sym_offsets) (objfile, addrs);
661 else
662 {
663 size_t size = SIZEOF_N_SECTION_OFFSETS (num_offsets);
664
665 /* Just copy in the offset table directly as given to us. */
666 objfile->num_sections = num_offsets;
667 objfile->section_offsets
668 = ((struct section_offsets *)
669 obstack_alloc (&objfile->objfile_obstack, size));
670 memcpy (objfile->section_offsets, offsets, size);
671
672 init_objfile_sect_indices (objfile);
673 }
674
675 #ifndef DEPRECATED_IBM6000_TARGET
676 /* This is a SVR4/SunOS specific hack, I think. In any event, it
677 screws RS/6000. sym_offsets should be doing this sort of thing,
678 because it knows the mapping between bfd sections and
679 section_offsets. */
680 /* This is a hack. As far as I can tell, section offsets are not
681 target dependent. They are all set to addr with a couple of
682 exceptions. The exceptions are sysvr4 shared libraries, whose
683 offsets are kept in solib structures anyway and rs6000 xcoff
684 which handles shared libraries in a completely unique way.
685
686 Section offsets are built similarly, except that they are built
687 by adding addr in all cases because there is no clear mapping
688 from section_offsets into actual sections. Note that solib.c
689 has a different algorithm for finding section offsets.
690
691 These should probably all be collapsed into some target
692 independent form of shared library support. FIXME. */
693
694 if (addrs)
695 {
696 struct obj_section *s;
697
698 /* Map section offsets in "addr" back to the object's
699 sections by comparing the section names with bfd's
700 section names. Then adjust the section address by
701 the offset. */ /* for gdb/13815 */
702
703 ALL_OBJFILE_OSECTIONS (objfile, s)
704 {
705 CORE_ADDR s_addr = 0;
706 int i;
707
708 for (i = 0;
709 !s_addr && i < addrs->num_sections && addrs->other[i].name;
710 i++)
711 if (strcmp (bfd_section_name (s->objfile->obfd,
712 s->the_bfd_section),
713 addrs->other[i].name) == 0)
714 s_addr = addrs->other[i].addr; /* end added for gdb/13815 */
715
716 s->addr -= s->offset;
717 s->addr += s_addr;
718 s->endaddr -= s->offset;
719 s->endaddr += s_addr;
720 s->offset += s_addr;
721 }
722 }
723 #endif /* not DEPRECATED_IBM6000_TARGET */
724
725 (*objfile->sf->sym_read) (objfile, mainline);
726
727 /* Don't allow char * to have a typename (else would get caddr_t).
728 Ditto void *. FIXME: Check whether this is now done by all the
729 symbol readers themselves (many of them now do), and if so remove
730 it from here. */
731
732 TYPE_NAME (lookup_pointer_type (builtin_type_char)) = 0;
733 TYPE_NAME (lookup_pointer_type (builtin_type_void)) = 0;
734
735 /* Mark the objfile has having had initial symbol read attempted. Note
736 that this does not mean we found any symbols... */
737
738 objfile->flags |= OBJF_SYMS;
739
740 /* Discard cleanups as symbol reading was successful. */
741
742 discard_cleanups (old_chain);
743 }
744
745 /* Perform required actions after either reading in the initial
746 symbols for a new objfile, or mapping in the symbols from a reusable
747 objfile. */
748
749 void
750 new_symfile_objfile (struct objfile *objfile, int mainline, int verbo)
751 {
752
753 /* If this is the main symbol file we have to clean up all users of the
754 old main symbol file. Otherwise it is sufficient to fixup all the
755 breakpoints that may have been redefined by this symbol file. */
756 if (mainline)
757 {
758 /* OK, make it the "real" symbol file. */
759 symfile_objfile = objfile;
760
761 clear_symtab_users ();
762 }
763 else
764 {
765 breakpoint_re_set ();
766 }
767
768 /* We're done reading the symbol file; finish off complaints. */
769 clear_complaints (&symfile_complaints, 0, verbo);
770 }
771
772 /* Process a symbol file, as either the main file or as a dynamically
773 loaded file.
774
775 ABFD is a BFD already open on the file, as from symfile_bfd_open.
776 This BFD will be closed on error, and is always consumed by this function.
777
778 FROM_TTY says how verbose to be.
779
780 MAINLINE specifies whether this is the main symbol file, or whether
781 it's an extra symbol file such as dynamically loaded code.
782
783 ADDRS, OFFSETS, and NUM_OFFSETS are as described for
784 syms_from_objfile, above. ADDRS is ignored when MAINLINE is
785 non-zero.
786
787 Upon success, returns a pointer to the objfile that was added.
788 Upon failure, jumps back to command level (never returns). */
789 static struct objfile *
790 symbol_file_add_with_addrs_or_offsets (bfd *abfd, int from_tty,
791 struct section_addr_info *addrs,
792 struct section_offsets *offsets,
793 int num_offsets,
794 int mainline, int flags)
795 {
796 struct objfile *objfile;
797 struct partial_symtab *psymtab;
798 char *debugfile;
799 struct section_addr_info *orig_addrs = NULL;
800 struct cleanup *my_cleanups;
801 const char *name = bfd_get_filename (abfd);
802
803 my_cleanups = make_cleanup_bfd_close (abfd);
804
805 /* Give user a chance to burp if we'd be
806 interactively wiping out any existing symbols. */
807
808 if ((have_full_symbols () || have_partial_symbols ())
809 && mainline
810 && from_tty
811 && !query ("Load new symbol table from \"%s\"? ", name))
812 error (_("Not confirmed."));
813
814 objfile = allocate_objfile (abfd, flags);
815 discard_cleanups (my_cleanups);
816
817 if (addrs)
818 {
819 orig_addrs = copy_section_addr_info (addrs);
820 make_cleanup_free_section_addr_info (orig_addrs);
821 }
822
823 /* We either created a new mapped symbol table, mapped an existing
824 symbol table file which has not had initial symbol reading
825 performed, or need to read an unmapped symbol table. */
826 if (from_tty || info_verbose)
827 {
828 if (deprecated_pre_add_symbol_hook)
829 deprecated_pre_add_symbol_hook (name);
830 else
831 {
832 printf_unfiltered (_("Reading symbols from %s..."), name);
833 wrap_here ("");
834 gdb_flush (gdb_stdout);
835 }
836 }
837 syms_from_objfile (objfile, addrs, offsets, num_offsets,
838 mainline, from_tty);
839
840 /* We now have at least a partial symbol table. Check to see if the
841 user requested that all symbols be read on initial access via either
842 the gdb startup command line or on a per symbol file basis. Expand
843 all partial symbol tables for this objfile if so. */
844
845 if ((flags & OBJF_READNOW) || readnow_symbol_files)
846 {
847 if (from_tty || info_verbose)
848 {
849 printf_unfiltered (_("expanding to full symbols..."));
850 wrap_here ("");
851 gdb_flush (gdb_stdout);
852 }
853
854 for (psymtab = objfile->psymtabs;
855 psymtab != NULL;
856 psymtab = psymtab->next)
857 {
858 psymtab_to_symtab (psymtab);
859 }
860 }
861
862 debugfile = find_separate_debug_file (objfile);
863 if (debugfile)
864 {
865 if (addrs != NULL)
866 {
867 objfile->separate_debug_objfile
868 = symbol_file_add (debugfile, from_tty, orig_addrs, 0, flags);
869 }
870 else
871 {
872 objfile->separate_debug_objfile
873 = symbol_file_add (debugfile, from_tty, NULL, 0, flags);
874 }
875 objfile->separate_debug_objfile->separate_debug_objfile_backlink
876 = objfile;
877
878 /* Put the separate debug object before the normal one, this is so that
879 usage of the ALL_OBJFILES_SAFE macro will stay safe. */
880 put_objfile_before (objfile->separate_debug_objfile, objfile);
881
882 xfree (debugfile);
883 }
884
885 if (!have_partial_symbols () && !have_full_symbols ())
886 {
887 wrap_here ("");
888 printf_filtered (_("(no debugging symbols found)"));
889 if (from_tty || info_verbose)
890 printf_filtered ("...");
891 else
892 printf_filtered ("\n");
893 wrap_here ("");
894 }
895
896 if (from_tty || info_verbose)
897 {
898 if (deprecated_post_add_symbol_hook)
899 deprecated_post_add_symbol_hook ();
900 else
901 {
902 printf_unfiltered (_("done.\n"));
903 }
904 }
905
906 /* We print some messages regardless of whether 'from_tty ||
907 info_verbose' is true, so make sure they go out at the right
908 time. */
909 gdb_flush (gdb_stdout);
910
911 do_cleanups (my_cleanups);
912
913 if (objfile->sf == NULL)
914 return objfile; /* No symbols. */
915
916 new_symfile_objfile (objfile, mainline, from_tty);
917
918 if (deprecated_target_new_objfile_hook)
919 deprecated_target_new_objfile_hook (objfile);
920
921 bfd_cache_close_all ();
922 return (objfile);
923 }
924
925
926 /* Process the symbol file ABFD, as either the main file or as a
927 dynamically loaded file.
928
929 See symbol_file_add_with_addrs_or_offsets's comments for
930 details. */
931 struct objfile *
932 symbol_file_add_from_bfd (bfd *abfd, int from_tty,
933 struct section_addr_info *addrs,
934 int mainline, int flags)
935 {
936 return symbol_file_add_with_addrs_or_offsets (abfd,
937 from_tty, addrs, 0, 0,
938 mainline, flags);
939 }
940
941
942 /* Process a symbol file, as either the main file or as a dynamically
943 loaded file. See symbol_file_add_with_addrs_or_offsets's comments
944 for details. */
945 struct objfile *
946 symbol_file_add (char *name, int from_tty, struct section_addr_info *addrs,
947 int mainline, int flags)
948 {
949 return symbol_file_add_from_bfd (symfile_bfd_open (name), from_tty,
950 addrs, mainline, flags);
951 }
952
953
954 /* Call symbol_file_add() with default values and update whatever is
955 affected by the loading of a new main().
956 Used when the file is supplied in the gdb command line
957 and by some targets with special loading requirements.
958 The auxiliary function, symbol_file_add_main_1(), has the flags
959 argument for the switches that can only be specified in the symbol_file
960 command itself. */
961
962 void
963 symbol_file_add_main (char *args, int from_tty)
964 {
965 symbol_file_add_main_1 (args, from_tty, 0);
966 }
967
968 static void
969 symbol_file_add_main_1 (char *args, int from_tty, int flags)
970 {
971 symbol_file_add (args, from_tty, NULL, 1, flags);
972
973 /* Getting new symbols may change our opinion about
974 what is frameless. */
975 reinit_frame_cache ();
976
977 set_initial_language ();
978 }
979
980 void
981 symbol_file_clear (int from_tty)
982 {
983 if ((have_full_symbols () || have_partial_symbols ())
984 && from_tty
985 && !query ("Discard symbol table from `%s'? ",
986 symfile_objfile->name))
987 error (_("Not confirmed."));
988 free_all_objfiles ();
989
990 /* solib descriptors may have handles to objfiles. Since their
991 storage has just been released, we'd better wipe the solib
992 descriptors as well.
993 */
994 #if defined(SOLIB_RESTART)
995 SOLIB_RESTART ();
996 #endif
997
998 symfile_objfile = NULL;
999 if (from_tty)
1000 printf_unfiltered (_("No symbol file now.\n"));
1001 }
1002
1003 static char *
1004 get_debug_link_info (struct objfile *objfile, unsigned long *crc32_out)
1005 {
1006 asection *sect;
1007 bfd_size_type debuglink_size;
1008 unsigned long crc32;
1009 char *contents;
1010 int crc_offset;
1011 unsigned char *p;
1012
1013 sect = bfd_get_section_by_name (objfile->obfd, ".gnu_debuglink");
1014
1015 if (sect == NULL)
1016 return NULL;
1017
1018 debuglink_size = bfd_section_size (objfile->obfd, sect);
1019
1020 contents = xmalloc (debuglink_size);
1021 bfd_get_section_contents (objfile->obfd, sect, contents,
1022 (file_ptr)0, (bfd_size_type)debuglink_size);
1023
1024 /* Crc value is stored after the filename, aligned up to 4 bytes. */
1025 crc_offset = strlen (contents) + 1;
1026 crc_offset = (crc_offset + 3) & ~3;
1027
1028 crc32 = bfd_get_32 (objfile->obfd, (bfd_byte *) (contents + crc_offset));
1029
1030 *crc32_out = crc32;
1031 return contents;
1032 }
1033
1034 static int
1035 separate_debug_file_exists (const char *name, unsigned long crc)
1036 {
1037 unsigned long file_crc = 0;
1038 int fd;
1039 char buffer[8*1024];
1040 int count;
1041
1042 fd = open (name, O_RDONLY | O_BINARY);
1043 if (fd < 0)
1044 return 0;
1045
1046 while ((count = read (fd, buffer, sizeof (buffer))) > 0)
1047 file_crc = gnu_debuglink_crc32 (file_crc, buffer, count);
1048
1049 close (fd);
1050
1051 return crc == file_crc;
1052 }
1053
1054 static char *debug_file_directory = NULL;
1055
1056 #if ! defined (DEBUG_SUBDIRECTORY)
1057 #define DEBUG_SUBDIRECTORY ".debug"
1058 #endif
1059
1060 static char *
1061 find_separate_debug_file (struct objfile *objfile)
1062 {
1063 asection *sect;
1064 char *basename;
1065 char *dir;
1066 char *debugfile;
1067 char *name_copy;
1068 bfd_size_type debuglink_size;
1069 unsigned long crc32;
1070 int i;
1071
1072 basename = get_debug_link_info (objfile, &crc32);
1073
1074 if (basename == NULL)
1075 return NULL;
1076
1077 dir = xstrdup (objfile->name);
1078
1079 /* Strip off the final filename part, leaving the directory name,
1080 followed by a slash. Objfile names should always be absolute and
1081 tilde-expanded, so there should always be a slash in there
1082 somewhere. */
1083 for (i = strlen(dir) - 1; i >= 0; i--)
1084 {
1085 if (IS_DIR_SEPARATOR (dir[i]))
1086 break;
1087 }
1088 gdb_assert (i >= 0 && IS_DIR_SEPARATOR (dir[i]));
1089 dir[i+1] = '\0';
1090
1091 debugfile = alloca (strlen (debug_file_directory) + 1
1092 + strlen (dir)
1093 + strlen (DEBUG_SUBDIRECTORY)
1094 + strlen ("/")
1095 + strlen (basename)
1096 + 1);
1097
1098 /* First try in the same directory as the original file. */
1099 strcpy (debugfile, dir);
1100 strcat (debugfile, basename);
1101
1102 if (separate_debug_file_exists (debugfile, crc32))
1103 {
1104 xfree (basename);
1105 xfree (dir);
1106 return xstrdup (debugfile);
1107 }
1108
1109 /* Then try in the subdirectory named DEBUG_SUBDIRECTORY. */
1110 strcpy (debugfile, dir);
1111 strcat (debugfile, DEBUG_SUBDIRECTORY);
1112 strcat (debugfile, "/");
1113 strcat (debugfile, basename);
1114
1115 if (separate_debug_file_exists (debugfile, crc32))
1116 {
1117 xfree (basename);
1118 xfree (dir);
1119 return xstrdup (debugfile);
1120 }
1121
1122 /* Then try in the global debugfile directory. */
1123 strcpy (debugfile, debug_file_directory);
1124 strcat (debugfile, "/");
1125 strcat (debugfile, dir);
1126 strcat (debugfile, basename);
1127
1128 if (separate_debug_file_exists (debugfile, crc32))
1129 {
1130 xfree (basename);
1131 xfree (dir);
1132 return xstrdup (debugfile);
1133 }
1134
1135 xfree (basename);
1136 xfree (dir);
1137 return NULL;
1138 }
1139
1140
1141 /* This is the symbol-file command. Read the file, analyze its
1142 symbols, and add a struct symtab to a symtab list. The syntax of
1143 the command is rather bizarre--(1) buildargv implements various
1144 quoting conventions which are undocumented and have little or
1145 nothing in common with the way things are quoted (or not quoted)
1146 elsewhere in GDB, (2) options are used, which are not generally
1147 used in GDB (perhaps "set mapped on", "set readnow on" would be
1148 better), (3) the order of options matters, which is contrary to GNU
1149 conventions (because it is confusing and inconvenient). */
1150 /* Note: ezannoni 2000-04-17. This function used to have support for
1151 rombug (see remote-os9k.c). It consisted of a call to target_link()
1152 (target.c) to get the address of the text segment from the target,
1153 and pass that to symbol_file_add(). This is no longer supported. */
1154
1155 void
1156 symbol_file_command (char *args, int from_tty)
1157 {
1158 char **argv;
1159 char *name = NULL;
1160 struct cleanup *cleanups;
1161 int flags = OBJF_USERLOADED;
1162
1163 dont_repeat ();
1164
1165 if (args == NULL)
1166 {
1167 symbol_file_clear (from_tty);
1168 }
1169 else
1170 {
1171 if ((argv = buildargv (args)) == NULL)
1172 {
1173 nomem (0);
1174 }
1175 cleanups = make_cleanup_freeargv (argv);
1176 while (*argv != NULL)
1177 {
1178 if (strcmp (*argv, "-readnow") == 0)
1179 flags |= OBJF_READNOW;
1180 else if (**argv == '-')
1181 error (_("unknown option `%s'"), *argv);
1182 else
1183 {
1184 name = *argv;
1185
1186 symbol_file_add_main_1 (name, from_tty, flags);
1187 }
1188 argv++;
1189 }
1190
1191 if (name == NULL)
1192 {
1193 error (_("no symbol file name was specified"));
1194 }
1195 do_cleanups (cleanups);
1196 }
1197 }
1198
1199 /* Set the initial language.
1200
1201 A better solution would be to record the language in the psymtab when reading
1202 partial symbols, and then use it (if known) to set the language. This would
1203 be a win for formats that encode the language in an easily discoverable place,
1204 such as DWARF. For stabs, we can jump through hoops looking for specially
1205 named symbols or try to intuit the language from the specific type of stabs
1206 we find, but we can't do that until later when we read in full symbols.
1207 FIXME. */
1208
1209 static void
1210 set_initial_language (void)
1211 {
1212 struct partial_symtab *pst;
1213 enum language lang = language_unknown;
1214
1215 pst = find_main_psymtab ();
1216 if (pst != NULL)
1217 {
1218 if (pst->filename != NULL)
1219 {
1220 lang = deduce_language_from_filename (pst->filename);
1221 }
1222 if (lang == language_unknown)
1223 {
1224 /* Make C the default language */
1225 lang = language_c;
1226 }
1227 set_language (lang);
1228 expected_language = current_language; /* Don't warn the user */
1229 }
1230 }
1231
1232 /* Open file specified by NAME and hand it off to BFD for preliminary
1233 analysis. Result is a newly initialized bfd *, which includes a newly
1234 malloc'd` copy of NAME (tilde-expanded and made absolute).
1235 In case of trouble, error() is called. */
1236
1237 bfd *
1238 symfile_bfd_open (char *name)
1239 {
1240 bfd *sym_bfd;
1241 int desc;
1242 char *absolute_name;
1243
1244
1245
1246 name = tilde_expand (name); /* Returns 1st new malloc'd copy */
1247
1248 /* Look down path for it, allocate 2nd new malloc'd copy. */
1249 desc = openp (getenv ("PATH"), OPF_TRY_CWD_FIRST, name, O_RDONLY | O_BINARY,
1250 0, &absolute_name);
1251 #if defined(__GO32__) || defined(_WIN32) || defined (__CYGWIN__)
1252 if (desc < 0)
1253 {
1254 char *exename = alloca (strlen (name) + 5);
1255 strcat (strcpy (exename, name), ".exe");
1256 desc = openp (getenv ("PATH"), OPF_TRY_CWD_FIRST, exename,
1257 O_RDONLY | O_BINARY, 0, &absolute_name);
1258 }
1259 #endif
1260 if (desc < 0)
1261 {
1262 make_cleanup (xfree, name);
1263 perror_with_name (name);
1264 }
1265 xfree (name); /* Free 1st new malloc'd copy */
1266 name = absolute_name; /* Keep 2nd malloc'd copy in bfd */
1267 /* It'll be freed in free_objfile(). */
1268
1269 sym_bfd = bfd_fdopenr (name, gnutarget, desc);
1270 if (!sym_bfd)
1271 {
1272 close (desc);
1273 make_cleanup (xfree, name);
1274 error (_("\"%s\": can't open to read symbols: %s."), name,
1275 bfd_errmsg (bfd_get_error ()));
1276 }
1277 bfd_set_cacheable (sym_bfd, 1);
1278
1279 if (!bfd_check_format (sym_bfd, bfd_object))
1280 {
1281 /* FIXME: should be checking for errors from bfd_close (for one thing,
1282 on error it does not free all the storage associated with the
1283 bfd). */
1284 bfd_close (sym_bfd); /* This also closes desc */
1285 make_cleanup (xfree, name);
1286 error (_("\"%s\": can't read symbols: %s."), name,
1287 bfd_errmsg (bfd_get_error ()));
1288 }
1289 return (sym_bfd);
1290 }
1291
1292 /* Return the section index for the given section name. Return -1 if
1293 the section was not found. */
1294 int
1295 get_section_index (struct objfile *objfile, char *section_name)
1296 {
1297 asection *sect = bfd_get_section_by_name (objfile->obfd, section_name);
1298 if (sect)
1299 return sect->index;
1300 else
1301 return -1;
1302 }
1303
1304 /* Link a new symtab_fns into the global symtab_fns list. Called on gdb
1305 startup by the _initialize routine in each object file format reader,
1306 to register information about each format the the reader is prepared
1307 to handle. */
1308
1309 void
1310 add_symtab_fns (struct sym_fns *sf)
1311 {
1312 sf->next = symtab_fns;
1313 symtab_fns = sf;
1314 }
1315
1316
1317 /* Initialize to read symbols from the symbol file sym_bfd. It either
1318 returns or calls error(). The result is an initialized struct sym_fns
1319 in the objfile structure, that contains cached information about the
1320 symbol file. */
1321
1322 static void
1323 find_sym_fns (struct objfile *objfile)
1324 {
1325 struct sym_fns *sf;
1326 enum bfd_flavour our_flavour = bfd_get_flavour (objfile->obfd);
1327 char *our_target = bfd_get_target (objfile->obfd);
1328
1329 if (our_flavour == bfd_target_srec_flavour
1330 || our_flavour == bfd_target_ihex_flavour
1331 || our_flavour == bfd_target_tekhex_flavour)
1332 return; /* No symbols. */
1333
1334 for (sf = symtab_fns; sf != NULL; sf = sf->next)
1335 {
1336 if (our_flavour == sf->sym_flavour)
1337 {
1338 objfile->sf = sf;
1339 return;
1340 }
1341 }
1342 error (_("I'm sorry, Dave, I can't do that. Symbol format `%s' unknown."),
1343 bfd_get_target (objfile->obfd));
1344 }
1345 \f
1346 /* This function runs the load command of our current target. */
1347
1348 static void
1349 load_command (char *arg, int from_tty)
1350 {
1351 if (arg == NULL)
1352 arg = get_exec_file (1);
1353 target_load (arg, from_tty);
1354
1355 /* After re-loading the executable, we don't really know which
1356 overlays are mapped any more. */
1357 overlay_cache_invalid = 1;
1358 }
1359
1360 /* This version of "load" should be usable for any target. Currently
1361 it is just used for remote targets, not inftarg.c or core files,
1362 on the theory that only in that case is it useful.
1363
1364 Avoiding xmodem and the like seems like a win (a) because we don't have
1365 to worry about finding it, and (b) On VMS, fork() is very slow and so
1366 we don't want to run a subprocess. On the other hand, I'm not sure how
1367 performance compares. */
1368
1369 static int download_write_size = 512;
1370 static int validate_download = 0;
1371
1372 /* Callback service function for generic_load (bfd_map_over_sections). */
1373
1374 static void
1375 add_section_size_callback (bfd *abfd, asection *asec, void *data)
1376 {
1377 bfd_size_type *sum = data;
1378
1379 *sum += bfd_get_section_size (asec);
1380 }
1381
1382 /* Opaque data for load_section_callback. */
1383 struct load_section_data {
1384 unsigned long load_offset;
1385 unsigned long write_count;
1386 unsigned long data_count;
1387 bfd_size_type total_size;
1388 };
1389
1390 /* Callback service function for generic_load (bfd_map_over_sections). */
1391
1392 static void
1393 load_section_callback (bfd *abfd, asection *asec, void *data)
1394 {
1395 struct load_section_data *args = data;
1396
1397 if (bfd_get_section_flags (abfd, asec) & SEC_LOAD)
1398 {
1399 bfd_size_type size = bfd_get_section_size (asec);
1400 if (size > 0)
1401 {
1402 char *buffer;
1403 struct cleanup *old_chain;
1404 CORE_ADDR lma = bfd_section_lma (abfd, asec) + args->load_offset;
1405 bfd_size_type block_size;
1406 int err;
1407 const char *sect_name = bfd_get_section_name (abfd, asec);
1408 bfd_size_type sent;
1409
1410 if (download_write_size > 0 && size > download_write_size)
1411 block_size = download_write_size;
1412 else
1413 block_size = size;
1414
1415 buffer = xmalloc (size);
1416 old_chain = make_cleanup (xfree, buffer);
1417
1418 /* Is this really necessary? I guess it gives the user something
1419 to look at during a long download. */
1420 ui_out_message (uiout, 0, "Loading section %s, size 0x%s lma 0x%s\n",
1421 sect_name, paddr_nz (size), paddr_nz (lma));
1422
1423 bfd_get_section_contents (abfd, asec, buffer, 0, size);
1424
1425 sent = 0;
1426 do
1427 {
1428 int len;
1429 bfd_size_type this_transfer = size - sent;
1430
1431 if (this_transfer >= block_size)
1432 this_transfer = block_size;
1433 len = target_write_memory_partial (lma, buffer,
1434 this_transfer, &err);
1435 if (err)
1436 break;
1437 if (validate_download)
1438 {
1439 /* Broken memories and broken monitors manifest
1440 themselves here when bring new computers to
1441 life. This doubles already slow downloads. */
1442 /* NOTE: cagney/1999-10-18: A more efficient
1443 implementation might add a verify_memory()
1444 method to the target vector and then use
1445 that. remote.c could implement that method
1446 using the ``qCRC'' packet. */
1447 char *check = xmalloc (len);
1448 struct cleanup *verify_cleanups =
1449 make_cleanup (xfree, check);
1450
1451 if (target_read_memory (lma, check, len) != 0)
1452 error (_("Download verify read failed at 0x%s"),
1453 paddr (lma));
1454 if (memcmp (buffer, check, len) != 0)
1455 error (_("Download verify compare failed at 0x%s"),
1456 paddr (lma));
1457 do_cleanups (verify_cleanups);
1458 }
1459 args->data_count += len;
1460 lma += len;
1461 buffer += len;
1462 args->write_count += 1;
1463 sent += len;
1464 if (quit_flag
1465 || (deprecated_ui_load_progress_hook != NULL
1466 && deprecated_ui_load_progress_hook (sect_name, sent)))
1467 error (_("Canceled the download"));
1468
1469 if (deprecated_show_load_progress != NULL)
1470 deprecated_show_load_progress (sect_name, sent, size,
1471 args->data_count,
1472 args->total_size);
1473 }
1474 while (sent < size);
1475
1476 if (err != 0)
1477 error (_("Memory access error while loading section %s."), sect_name);
1478
1479 do_cleanups (old_chain);
1480 }
1481 }
1482 }
1483
1484 void
1485 generic_load (char *args, int from_tty)
1486 {
1487 asection *s;
1488 bfd *loadfile_bfd;
1489 time_t start_time, end_time; /* Start and end times of download */
1490 char *filename;
1491 struct cleanup *old_cleanups;
1492 char *offptr;
1493 struct load_section_data cbdata;
1494 CORE_ADDR entry;
1495
1496 cbdata.load_offset = 0; /* Offset to add to vma for each section. */
1497 cbdata.write_count = 0; /* Number of writes needed. */
1498 cbdata.data_count = 0; /* Number of bytes written to target memory. */
1499 cbdata.total_size = 0; /* Total size of all bfd sectors. */
1500
1501 /* Parse the input argument - the user can specify a load offset as
1502 a second argument. */
1503 filename = xmalloc (strlen (args) + 1);
1504 old_cleanups = make_cleanup (xfree, filename);
1505 strcpy (filename, args);
1506 offptr = strchr (filename, ' ');
1507 if (offptr != NULL)
1508 {
1509 char *endptr;
1510
1511 cbdata.load_offset = strtoul (offptr, &endptr, 0);
1512 if (offptr == endptr)
1513 error (_("Invalid download offset:%s."), offptr);
1514 *offptr = '\0';
1515 }
1516 else
1517 cbdata.load_offset = 0;
1518
1519 /* Open the file for loading. */
1520 loadfile_bfd = bfd_openr (filename, gnutarget);
1521 if (loadfile_bfd == NULL)
1522 {
1523 perror_with_name (filename);
1524 return;
1525 }
1526
1527 /* FIXME: should be checking for errors from bfd_close (for one thing,
1528 on error it does not free all the storage associated with the
1529 bfd). */
1530 make_cleanup_bfd_close (loadfile_bfd);
1531
1532 if (!bfd_check_format (loadfile_bfd, bfd_object))
1533 {
1534 error (_("\"%s\" is not an object file: %s"), filename,
1535 bfd_errmsg (bfd_get_error ()));
1536 }
1537
1538 bfd_map_over_sections (loadfile_bfd, add_section_size_callback,
1539 (void *) &cbdata.total_size);
1540
1541 start_time = time (NULL);
1542
1543 bfd_map_over_sections (loadfile_bfd, load_section_callback, &cbdata);
1544
1545 end_time = time (NULL);
1546
1547 entry = bfd_get_start_address (loadfile_bfd);
1548 ui_out_text (uiout, "Start address ");
1549 ui_out_field_fmt (uiout, "address", "0x%s", paddr_nz (entry));
1550 ui_out_text (uiout, ", load size ");
1551 ui_out_field_fmt (uiout, "load-size", "%lu", cbdata.data_count);
1552 ui_out_text (uiout, "\n");
1553 /* We were doing this in remote-mips.c, I suspect it is right
1554 for other targets too. */
1555 write_pc (entry);
1556
1557 /* FIXME: are we supposed to call symbol_file_add or not? According
1558 to a comment from remote-mips.c (where a call to symbol_file_add
1559 was commented out), making the call confuses GDB if more than one
1560 file is loaded in. Some targets do (e.g., remote-vx.c) but
1561 others don't (or didn't - perhaps they have all been deleted). */
1562
1563 print_transfer_performance (gdb_stdout, cbdata.data_count,
1564 cbdata.write_count, end_time - start_time);
1565
1566 do_cleanups (old_cleanups);
1567 }
1568
1569 /* Report how fast the transfer went. */
1570
1571 /* DEPRECATED: cagney/1999-10-18: report_transfer_performance is being
1572 replaced by print_transfer_performance (with a very different
1573 function signature). */
1574
1575 void
1576 report_transfer_performance (unsigned long data_count, time_t start_time,
1577 time_t end_time)
1578 {
1579 print_transfer_performance (gdb_stdout, data_count,
1580 end_time - start_time, 0);
1581 }
1582
1583 void
1584 print_transfer_performance (struct ui_file *stream,
1585 unsigned long data_count,
1586 unsigned long write_count,
1587 unsigned long time_count)
1588 {
1589 ui_out_text (uiout, "Transfer rate: ");
1590 if (time_count > 0)
1591 {
1592 ui_out_field_fmt (uiout, "transfer-rate", "%lu",
1593 (data_count * 8) / time_count);
1594 ui_out_text (uiout, " bits/sec");
1595 }
1596 else
1597 {
1598 ui_out_field_fmt (uiout, "transferred-bits", "%lu", (data_count * 8));
1599 ui_out_text (uiout, " bits in <1 sec");
1600 }
1601 if (write_count > 0)
1602 {
1603 ui_out_text (uiout, ", ");
1604 ui_out_field_fmt (uiout, "write-rate", "%lu", data_count / write_count);
1605 ui_out_text (uiout, " bytes/write");
1606 }
1607 ui_out_text (uiout, ".\n");
1608 }
1609
1610 /* This function allows the addition of incrementally linked object files.
1611 It does not modify any state in the target, only in the debugger. */
1612 /* Note: ezannoni 2000-04-13 This function/command used to have a
1613 special case syntax for the rombug target (Rombug is the boot
1614 monitor for Microware's OS-9 / OS-9000, see remote-os9k.c). In the
1615 rombug case, the user doesn't need to supply a text address,
1616 instead a call to target_link() (in target.c) would supply the
1617 value to use. We are now discontinuing this type of ad hoc syntax. */
1618
1619 static void
1620 add_symbol_file_command (char *args, int from_tty)
1621 {
1622 char *filename = NULL;
1623 int flags = OBJF_USERLOADED;
1624 char *arg;
1625 int expecting_option = 0;
1626 int section_index = 0;
1627 int argcnt = 0;
1628 int sec_num = 0;
1629 int i;
1630 int expecting_sec_name = 0;
1631 int expecting_sec_addr = 0;
1632
1633 struct sect_opt
1634 {
1635 char *name;
1636 char *value;
1637 };
1638
1639 struct section_addr_info *section_addrs;
1640 struct sect_opt *sect_opts = NULL;
1641 size_t num_sect_opts = 0;
1642 struct cleanup *my_cleanups = make_cleanup (null_cleanup, NULL);
1643
1644 num_sect_opts = 16;
1645 sect_opts = (struct sect_opt *) xmalloc (num_sect_opts
1646 * sizeof (struct sect_opt));
1647
1648 dont_repeat ();
1649
1650 if (args == NULL)
1651 error (_("add-symbol-file takes a file name and an address"));
1652
1653 /* Make a copy of the string that we can safely write into. */
1654 args = xstrdup (args);
1655
1656 while (*args != '\000')
1657 {
1658 /* Any leading spaces? */
1659 while (isspace (*args))
1660 args++;
1661
1662 /* Point arg to the beginning of the argument. */
1663 arg = args;
1664
1665 /* Move args pointer over the argument. */
1666 while ((*args != '\000') && !isspace (*args))
1667 args++;
1668
1669 /* If there are more arguments, terminate arg and
1670 proceed past it. */
1671 if (*args != '\000')
1672 *args++ = '\000';
1673
1674 /* Now process the argument. */
1675 if (argcnt == 0)
1676 {
1677 /* The first argument is the file name. */
1678 filename = tilde_expand (arg);
1679 make_cleanup (xfree, filename);
1680 }
1681 else
1682 if (argcnt == 1)
1683 {
1684 /* The second argument is always the text address at which
1685 to load the program. */
1686 sect_opts[section_index].name = ".text";
1687 sect_opts[section_index].value = arg;
1688 if (++section_index > num_sect_opts)
1689 {
1690 num_sect_opts *= 2;
1691 sect_opts = ((struct sect_opt *)
1692 xrealloc (sect_opts,
1693 num_sect_opts
1694 * sizeof (struct sect_opt)));
1695 }
1696 }
1697 else
1698 {
1699 /* It's an option (starting with '-') or it's an argument
1700 to an option */
1701
1702 if (*arg == '-')
1703 {
1704 if (strcmp (arg, "-readnow") == 0)
1705 flags |= OBJF_READNOW;
1706 else if (strcmp (arg, "-s") == 0)
1707 {
1708 expecting_sec_name = 1;
1709 expecting_sec_addr = 1;
1710 }
1711 }
1712 else
1713 {
1714 if (expecting_sec_name)
1715 {
1716 sect_opts[section_index].name = arg;
1717 expecting_sec_name = 0;
1718 }
1719 else
1720 if (expecting_sec_addr)
1721 {
1722 sect_opts[section_index].value = arg;
1723 expecting_sec_addr = 0;
1724 if (++section_index > num_sect_opts)
1725 {
1726 num_sect_opts *= 2;
1727 sect_opts = ((struct sect_opt *)
1728 xrealloc (sect_opts,
1729 num_sect_opts
1730 * sizeof (struct sect_opt)));
1731 }
1732 }
1733 else
1734 error (_("USAGE: add-symbol-file <filename> <textaddress> [-mapped] [-readnow] [-s <secname> <addr>]*"));
1735 }
1736 }
1737 argcnt++;
1738 }
1739
1740 /* Print the prompt for the query below. And save the arguments into
1741 a sect_addr_info structure to be passed around to other
1742 functions. We have to split this up into separate print
1743 statements because hex_string returns a local static
1744 string. */
1745
1746 printf_unfiltered (_("add symbol table from file \"%s\" at\n"), filename);
1747 section_addrs = alloc_section_addr_info (section_index);
1748 make_cleanup (xfree, section_addrs);
1749 for (i = 0; i < section_index; i++)
1750 {
1751 CORE_ADDR addr;
1752 char *val = sect_opts[i].value;
1753 char *sec = sect_opts[i].name;
1754
1755 addr = parse_and_eval_address (val);
1756
1757 /* Here we store the section offsets in the order they were
1758 entered on the command line. */
1759 section_addrs->other[sec_num].name = sec;
1760 section_addrs->other[sec_num].addr = addr;
1761 printf_unfiltered ("\t%s_addr = %s\n",
1762 sec, hex_string ((unsigned long)addr));
1763 sec_num++;
1764
1765 /* The object's sections are initialized when a
1766 call is made to build_objfile_section_table (objfile).
1767 This happens in reread_symbols.
1768 At this point, we don't know what file type this is,
1769 so we can't determine what section names are valid. */
1770 }
1771
1772 if (from_tty && (!query ("%s", "")))
1773 error (_("Not confirmed."));
1774
1775 symbol_file_add (filename, from_tty, section_addrs, 0, flags);
1776
1777 /* Getting new symbols may change our opinion about what is
1778 frameless. */
1779 reinit_frame_cache ();
1780 do_cleanups (my_cleanups);
1781 }
1782 \f
1783 static void
1784 add_shared_symbol_files_command (char *args, int from_tty)
1785 {
1786 #ifdef ADD_SHARED_SYMBOL_FILES
1787 ADD_SHARED_SYMBOL_FILES (args, from_tty);
1788 #else
1789 error (_("This command is not available in this configuration of GDB."));
1790 #endif
1791 }
1792 \f
1793 /* Re-read symbols if a symbol-file has changed. */
1794 void
1795 reread_symbols (void)
1796 {
1797 struct objfile *objfile;
1798 long new_modtime;
1799 int reread_one = 0;
1800 struct stat new_statbuf;
1801 int res;
1802
1803 /* With the addition of shared libraries, this should be modified,
1804 the load time should be saved in the partial symbol tables, since
1805 different tables may come from different source files. FIXME.
1806 This routine should then walk down each partial symbol table
1807 and see if the symbol table that it originates from has been changed */
1808
1809 for (objfile = object_files; objfile; objfile = objfile->next)
1810 {
1811 if (objfile->obfd)
1812 {
1813 #ifdef DEPRECATED_IBM6000_TARGET
1814 /* If this object is from a shared library, then you should
1815 stat on the library name, not member name. */
1816
1817 if (objfile->obfd->my_archive)
1818 res = stat (objfile->obfd->my_archive->filename, &new_statbuf);
1819 else
1820 #endif
1821 res = stat (objfile->name, &new_statbuf);
1822 if (res != 0)
1823 {
1824 /* FIXME, should use print_sys_errmsg but it's not filtered. */
1825 printf_unfiltered (_("`%s' has disappeared; keeping its symbols.\n"),
1826 objfile->name);
1827 continue;
1828 }
1829 new_modtime = new_statbuf.st_mtime;
1830 if (new_modtime != objfile->mtime)
1831 {
1832 struct cleanup *old_cleanups;
1833 struct section_offsets *offsets;
1834 int num_offsets;
1835 char *obfd_filename;
1836
1837 printf_unfiltered (_("`%s' has changed; re-reading symbols.\n"),
1838 objfile->name);
1839
1840 /* There are various functions like symbol_file_add,
1841 symfile_bfd_open, syms_from_objfile, etc., which might
1842 appear to do what we want. But they have various other
1843 effects which we *don't* want. So we just do stuff
1844 ourselves. We don't worry about mapped files (for one thing,
1845 any mapped file will be out of date). */
1846
1847 /* If we get an error, blow away this objfile (not sure if
1848 that is the correct response for things like shared
1849 libraries). */
1850 old_cleanups = make_cleanup_free_objfile (objfile);
1851 /* We need to do this whenever any symbols go away. */
1852 make_cleanup (clear_symtab_users_cleanup, 0 /*ignore*/);
1853
1854 /* Clean up any state BFD has sitting around. We don't need
1855 to close the descriptor but BFD lacks a way of closing the
1856 BFD without closing the descriptor. */
1857 obfd_filename = bfd_get_filename (objfile->obfd);
1858 if (!bfd_close (objfile->obfd))
1859 error (_("Can't close BFD for %s: %s"), objfile->name,
1860 bfd_errmsg (bfd_get_error ()));
1861 objfile->obfd = bfd_openr (obfd_filename, gnutarget);
1862 if (objfile->obfd == NULL)
1863 error (_("Can't open %s to read symbols."), objfile->name);
1864 /* bfd_openr sets cacheable to true, which is what we want. */
1865 if (!bfd_check_format (objfile->obfd, bfd_object))
1866 error (_("Can't read symbols from %s: %s."), objfile->name,
1867 bfd_errmsg (bfd_get_error ()));
1868
1869 /* Save the offsets, we will nuke them with the rest of the
1870 objfile_obstack. */
1871 num_offsets = objfile->num_sections;
1872 offsets = ((struct section_offsets *)
1873 alloca (SIZEOF_N_SECTION_OFFSETS (num_offsets)));
1874 memcpy (offsets, objfile->section_offsets,
1875 SIZEOF_N_SECTION_OFFSETS (num_offsets));
1876
1877 /* Nuke all the state that we will re-read. Much of the following
1878 code which sets things to NULL really is necessary to tell
1879 other parts of GDB that there is nothing currently there. */
1880
1881 /* FIXME: Do we have to free a whole linked list, or is this
1882 enough? */
1883 if (objfile->global_psymbols.list)
1884 xfree (objfile->global_psymbols.list);
1885 memset (&objfile->global_psymbols, 0,
1886 sizeof (objfile->global_psymbols));
1887 if (objfile->static_psymbols.list)
1888 xfree (objfile->static_psymbols.list);
1889 memset (&objfile->static_psymbols, 0,
1890 sizeof (objfile->static_psymbols));
1891
1892 /* Free the obstacks for non-reusable objfiles */
1893 bcache_xfree (objfile->psymbol_cache);
1894 objfile->psymbol_cache = bcache_xmalloc ();
1895 bcache_xfree (objfile->macro_cache);
1896 objfile->macro_cache = bcache_xmalloc ();
1897 if (objfile->demangled_names_hash != NULL)
1898 {
1899 htab_delete (objfile->demangled_names_hash);
1900 objfile->demangled_names_hash = NULL;
1901 }
1902 obstack_free (&objfile->objfile_obstack, 0);
1903 objfile->sections = NULL;
1904 objfile->symtabs = NULL;
1905 objfile->psymtabs = NULL;
1906 objfile->free_psymtabs = NULL;
1907 objfile->cp_namespace_symtab = NULL;
1908 objfile->msymbols = NULL;
1909 objfile->deprecated_sym_private = NULL;
1910 objfile->minimal_symbol_count = 0;
1911 memset (&objfile->msymbol_hash, 0,
1912 sizeof (objfile->msymbol_hash));
1913 memset (&objfile->msymbol_demangled_hash, 0,
1914 sizeof (objfile->msymbol_demangled_hash));
1915 objfile->fundamental_types = NULL;
1916 clear_objfile_data (objfile);
1917 if (objfile->sf != NULL)
1918 {
1919 (*objfile->sf->sym_finish) (objfile);
1920 }
1921
1922 /* We never make this a mapped file. */
1923 objfile->md = NULL;
1924 objfile->psymbol_cache = bcache_xmalloc ();
1925 objfile->macro_cache = bcache_xmalloc ();
1926 /* obstack_init also initializes the obstack so it is
1927 empty. We could use obstack_specify_allocation but
1928 gdb_obstack.h specifies the alloc/dealloc
1929 functions. */
1930 obstack_init (&objfile->objfile_obstack);
1931 if (build_objfile_section_table (objfile))
1932 {
1933 error (_("Can't find the file sections in `%s': %s"),
1934 objfile->name, bfd_errmsg (bfd_get_error ()));
1935 }
1936 terminate_minimal_symbol_table (objfile);
1937
1938 /* We use the same section offsets as from last time. I'm not
1939 sure whether that is always correct for shared libraries. */
1940 objfile->section_offsets = (struct section_offsets *)
1941 obstack_alloc (&objfile->objfile_obstack,
1942 SIZEOF_N_SECTION_OFFSETS (num_offsets));
1943 memcpy (objfile->section_offsets, offsets,
1944 SIZEOF_N_SECTION_OFFSETS (num_offsets));
1945 objfile->num_sections = num_offsets;
1946
1947 /* What the hell is sym_new_init for, anyway? The concept of
1948 distinguishing between the main file and additional files
1949 in this way seems rather dubious. */
1950 if (objfile == symfile_objfile)
1951 {
1952 (*objfile->sf->sym_new_init) (objfile);
1953 }
1954
1955 (*objfile->sf->sym_init) (objfile);
1956 clear_complaints (&symfile_complaints, 1, 1);
1957 /* The "mainline" parameter is a hideous hack; I think leaving it
1958 zero is OK since dbxread.c also does what it needs to do if
1959 objfile->global_psymbols.size is 0. */
1960 (*objfile->sf->sym_read) (objfile, 0);
1961 if (!have_partial_symbols () && !have_full_symbols ())
1962 {
1963 wrap_here ("");
1964 printf_unfiltered (_("(no debugging symbols found)\n"));
1965 wrap_here ("");
1966 }
1967 objfile->flags |= OBJF_SYMS;
1968
1969 /* We're done reading the symbol file; finish off complaints. */
1970 clear_complaints (&symfile_complaints, 0, 1);
1971
1972 /* Getting new symbols may change our opinion about what is
1973 frameless. */
1974
1975 reinit_frame_cache ();
1976
1977 /* Discard cleanups as symbol reading was successful. */
1978 discard_cleanups (old_cleanups);
1979
1980 /* If the mtime has changed between the time we set new_modtime
1981 and now, we *want* this to be out of date, so don't call stat
1982 again now. */
1983 objfile->mtime = new_modtime;
1984 reread_one = 1;
1985 reread_separate_symbols (objfile);
1986 }
1987 }
1988 }
1989
1990 if (reread_one)
1991 clear_symtab_users ();
1992 }
1993
1994
1995 /* Handle separate debug info for OBJFILE, which has just been
1996 re-read:
1997 - If we had separate debug info before, but now we don't, get rid
1998 of the separated objfile.
1999 - If we didn't have separated debug info before, but now we do,
2000 read in the new separated debug info file.
2001 - If the debug link points to a different file, toss the old one
2002 and read the new one.
2003 This function does *not* handle the case where objfile is still
2004 using the same separate debug info file, but that file's timestamp
2005 has changed. That case should be handled by the loop in
2006 reread_symbols already. */
2007 static void
2008 reread_separate_symbols (struct objfile *objfile)
2009 {
2010 char *debug_file;
2011 unsigned long crc32;
2012
2013 /* Does the updated objfile's debug info live in a
2014 separate file? */
2015 debug_file = find_separate_debug_file (objfile);
2016
2017 if (objfile->separate_debug_objfile)
2018 {
2019 /* There are two cases where we need to get rid of
2020 the old separated debug info objfile:
2021 - if the new primary objfile doesn't have
2022 separated debug info, or
2023 - if the new primary objfile has separate debug
2024 info, but it's under a different filename.
2025
2026 If the old and new objfiles both have separate
2027 debug info, under the same filename, then we're
2028 okay --- if the separated file's contents have
2029 changed, we will have caught that when we
2030 visited it in this function's outermost
2031 loop. */
2032 if (! debug_file
2033 || strcmp (debug_file, objfile->separate_debug_objfile->name) != 0)
2034 free_objfile (objfile->separate_debug_objfile);
2035 }
2036
2037 /* If the new objfile has separate debug info, and we
2038 haven't loaded it already, do so now. */
2039 if (debug_file
2040 && ! objfile->separate_debug_objfile)
2041 {
2042 /* Use the same section offset table as objfile itself.
2043 Preserve the flags from objfile that make sense. */
2044 objfile->separate_debug_objfile
2045 = (symbol_file_add_with_addrs_or_offsets
2046 (symfile_bfd_open (debug_file),
2047 info_verbose, /* from_tty: Don't override the default. */
2048 0, /* No addr table. */
2049 objfile->section_offsets, objfile->num_sections,
2050 0, /* Not mainline. See comments about this above. */
2051 objfile->flags & (OBJF_REORDERED | OBJF_SHARED | OBJF_READNOW
2052 | OBJF_USERLOADED)));
2053 objfile->separate_debug_objfile->separate_debug_objfile_backlink
2054 = objfile;
2055 }
2056 }
2057
2058
2059 \f
2060
2061
2062 typedef struct
2063 {
2064 char *ext;
2065 enum language lang;
2066 }
2067 filename_language;
2068
2069 static filename_language *filename_language_table;
2070 static int fl_table_size, fl_table_next;
2071
2072 static void
2073 add_filename_language (char *ext, enum language lang)
2074 {
2075 if (fl_table_next >= fl_table_size)
2076 {
2077 fl_table_size += 10;
2078 filename_language_table =
2079 xrealloc (filename_language_table,
2080 fl_table_size * sizeof (*filename_language_table));
2081 }
2082
2083 filename_language_table[fl_table_next].ext = xstrdup (ext);
2084 filename_language_table[fl_table_next].lang = lang;
2085 fl_table_next++;
2086 }
2087
2088 static char *ext_args;
2089
2090 static void
2091 set_ext_lang_command (char *args, int from_tty, struct cmd_list_element *e)
2092 {
2093 int i;
2094 char *cp = ext_args;
2095 enum language lang;
2096
2097 /* First arg is filename extension, starting with '.' */
2098 if (*cp != '.')
2099 error (_("'%s': Filename extension must begin with '.'"), ext_args);
2100
2101 /* Find end of first arg. */
2102 while (*cp && !isspace (*cp))
2103 cp++;
2104
2105 if (*cp == '\0')
2106 error (_("'%s': two arguments required -- filename extension and language"),
2107 ext_args);
2108
2109 /* Null-terminate first arg */
2110 *cp++ = '\0';
2111
2112 /* Find beginning of second arg, which should be a source language. */
2113 while (*cp && isspace (*cp))
2114 cp++;
2115
2116 if (*cp == '\0')
2117 error (_("'%s': two arguments required -- filename extension and language"),
2118 ext_args);
2119
2120 /* Lookup the language from among those we know. */
2121 lang = language_enum (cp);
2122
2123 /* Now lookup the filename extension: do we already know it? */
2124 for (i = 0; i < fl_table_next; i++)
2125 if (0 == strcmp (ext_args, filename_language_table[i].ext))
2126 break;
2127
2128 if (i >= fl_table_next)
2129 {
2130 /* new file extension */
2131 add_filename_language (ext_args, lang);
2132 }
2133 else
2134 {
2135 /* redefining a previously known filename extension */
2136
2137 /* if (from_tty) */
2138 /* query ("Really make files of type %s '%s'?", */
2139 /* ext_args, language_str (lang)); */
2140
2141 xfree (filename_language_table[i].ext);
2142 filename_language_table[i].ext = xstrdup (ext_args);
2143 filename_language_table[i].lang = lang;
2144 }
2145 }
2146
2147 static void
2148 info_ext_lang_command (char *args, int from_tty)
2149 {
2150 int i;
2151
2152 printf_filtered (_("Filename extensions and the languages they represent:"));
2153 printf_filtered ("\n\n");
2154 for (i = 0; i < fl_table_next; i++)
2155 printf_filtered ("\t%s\t- %s\n",
2156 filename_language_table[i].ext,
2157 language_str (filename_language_table[i].lang));
2158 }
2159
2160 static void
2161 init_filename_language_table (void)
2162 {
2163 if (fl_table_size == 0) /* protect against repetition */
2164 {
2165 fl_table_size = 20;
2166 fl_table_next = 0;
2167 filename_language_table =
2168 xmalloc (fl_table_size * sizeof (*filename_language_table));
2169 add_filename_language (".c", language_c);
2170 add_filename_language (".C", language_cplus);
2171 add_filename_language (".cc", language_cplus);
2172 add_filename_language (".cp", language_cplus);
2173 add_filename_language (".cpp", language_cplus);
2174 add_filename_language (".cxx", language_cplus);
2175 add_filename_language (".c++", language_cplus);
2176 add_filename_language (".java", language_java);
2177 add_filename_language (".class", language_java);
2178 add_filename_language (".m", language_objc);
2179 add_filename_language (".f", language_fortran);
2180 add_filename_language (".F", language_fortran);
2181 add_filename_language (".s", language_asm);
2182 add_filename_language (".S", language_asm);
2183 add_filename_language (".pas", language_pascal);
2184 add_filename_language (".p", language_pascal);
2185 add_filename_language (".pp", language_pascal);
2186 add_filename_language (".adb", language_ada);
2187 add_filename_language (".ads", language_ada);
2188 add_filename_language (".a", language_ada);
2189 add_filename_language (".ada", language_ada);
2190 }
2191 }
2192
2193 enum language
2194 deduce_language_from_filename (char *filename)
2195 {
2196 int i;
2197 char *cp;
2198
2199 if (filename != NULL)
2200 if ((cp = strrchr (filename, '.')) != NULL)
2201 for (i = 0; i < fl_table_next; i++)
2202 if (strcmp (cp, filename_language_table[i].ext) == 0)
2203 return filename_language_table[i].lang;
2204
2205 return language_unknown;
2206 }
2207 \f
2208 /* allocate_symtab:
2209
2210 Allocate and partly initialize a new symbol table. Return a pointer
2211 to it. error() if no space.
2212
2213 Caller must set these fields:
2214 LINETABLE(symtab)
2215 symtab->blockvector
2216 symtab->dirname
2217 symtab->free_code
2218 symtab->free_ptr
2219 possibly free_named_symtabs (symtab->filename);
2220 */
2221
2222 struct symtab *
2223 allocate_symtab (char *filename, struct objfile *objfile)
2224 {
2225 struct symtab *symtab;
2226
2227 symtab = (struct symtab *)
2228 obstack_alloc (&objfile->objfile_obstack, sizeof (struct symtab));
2229 memset (symtab, 0, sizeof (*symtab));
2230 symtab->filename = obsavestring (filename, strlen (filename),
2231 &objfile->objfile_obstack);
2232 symtab->fullname = NULL;
2233 symtab->language = deduce_language_from_filename (filename);
2234 symtab->debugformat = obsavestring ("unknown", 7,
2235 &objfile->objfile_obstack);
2236
2237 /* Hook it to the objfile it comes from */
2238
2239 symtab->objfile = objfile;
2240 symtab->next = objfile->symtabs;
2241 objfile->symtabs = symtab;
2242
2243 /* FIXME: This should go away. It is only defined for the Z8000,
2244 and the Z8000 definition of this macro doesn't have anything to
2245 do with the now-nonexistent EXTRA_SYMTAB_INFO macro, it's just
2246 here for convenience. */
2247 #ifdef INIT_EXTRA_SYMTAB_INFO
2248 INIT_EXTRA_SYMTAB_INFO (symtab);
2249 #endif
2250
2251 return (symtab);
2252 }
2253
2254 struct partial_symtab *
2255 allocate_psymtab (char *filename, struct objfile *objfile)
2256 {
2257 struct partial_symtab *psymtab;
2258
2259 if (objfile->free_psymtabs)
2260 {
2261 psymtab = objfile->free_psymtabs;
2262 objfile->free_psymtabs = psymtab->next;
2263 }
2264 else
2265 psymtab = (struct partial_symtab *)
2266 obstack_alloc (&objfile->objfile_obstack,
2267 sizeof (struct partial_symtab));
2268
2269 memset (psymtab, 0, sizeof (struct partial_symtab));
2270 psymtab->filename = obsavestring (filename, strlen (filename),
2271 &objfile->objfile_obstack);
2272 psymtab->symtab = NULL;
2273
2274 /* Prepend it to the psymtab list for the objfile it belongs to.
2275 Psymtabs are searched in most recent inserted -> least recent
2276 inserted order. */
2277
2278 psymtab->objfile = objfile;
2279 psymtab->next = objfile->psymtabs;
2280 objfile->psymtabs = psymtab;
2281 #if 0
2282 {
2283 struct partial_symtab **prev_pst;
2284 psymtab->objfile = objfile;
2285 psymtab->next = NULL;
2286 prev_pst = &(objfile->psymtabs);
2287 while ((*prev_pst) != NULL)
2288 prev_pst = &((*prev_pst)->next);
2289 (*prev_pst) = psymtab;
2290 }
2291 #endif
2292
2293 return (psymtab);
2294 }
2295
2296 void
2297 discard_psymtab (struct partial_symtab *pst)
2298 {
2299 struct partial_symtab **prev_pst;
2300
2301 /* From dbxread.c:
2302 Empty psymtabs happen as a result of header files which don't
2303 have any symbols in them. There can be a lot of them. But this
2304 check is wrong, in that a psymtab with N_SLINE entries but
2305 nothing else is not empty, but we don't realize that. Fixing
2306 that without slowing things down might be tricky. */
2307
2308 /* First, snip it out of the psymtab chain */
2309
2310 prev_pst = &(pst->objfile->psymtabs);
2311 while ((*prev_pst) != pst)
2312 prev_pst = &((*prev_pst)->next);
2313 (*prev_pst) = pst->next;
2314
2315 /* Next, put it on a free list for recycling */
2316
2317 pst->next = pst->objfile->free_psymtabs;
2318 pst->objfile->free_psymtabs = pst;
2319 }
2320 \f
2321
2322 /* Reset all data structures in gdb which may contain references to symbol
2323 table data. */
2324
2325 void
2326 clear_symtab_users (void)
2327 {
2328 /* Someday, we should do better than this, by only blowing away
2329 the things that really need to be blown. */
2330 clear_value_history ();
2331 clear_displays ();
2332 clear_internalvars ();
2333 breakpoint_re_set ();
2334 set_default_breakpoint (0, 0, 0, 0);
2335 clear_current_source_symtab_and_line ();
2336 clear_pc_function_cache ();
2337 if (deprecated_target_new_objfile_hook)
2338 deprecated_target_new_objfile_hook (NULL);
2339 }
2340
2341 static void
2342 clear_symtab_users_cleanup (void *ignore)
2343 {
2344 clear_symtab_users ();
2345 }
2346
2347 /* clear_symtab_users_once:
2348
2349 This function is run after symbol reading, or from a cleanup.
2350 If an old symbol table was obsoleted, the old symbol table
2351 has been blown away, but the other GDB data structures that may
2352 reference it have not yet been cleared or re-directed. (The old
2353 symtab was zapped, and the cleanup queued, in free_named_symtab()
2354 below.)
2355
2356 This function can be queued N times as a cleanup, or called
2357 directly; it will do all the work the first time, and then will be a
2358 no-op until the next time it is queued. This works by bumping a
2359 counter at queueing time. Much later when the cleanup is run, or at
2360 the end of symbol processing (in case the cleanup is discarded), if
2361 the queued count is greater than the "done-count", we do the work
2362 and set the done-count to the queued count. If the queued count is
2363 less than or equal to the done-count, we just ignore the call. This
2364 is needed because reading a single .o file will often replace many
2365 symtabs (one per .h file, for example), and we don't want to reset
2366 the breakpoints N times in the user's face.
2367
2368 The reason we both queue a cleanup, and call it directly after symbol
2369 reading, is because the cleanup protects us in case of errors, but is
2370 discarded if symbol reading is successful. */
2371
2372 #if 0
2373 /* FIXME: As free_named_symtabs is currently a big noop this function
2374 is no longer needed. */
2375 static void clear_symtab_users_once (void);
2376
2377 static int clear_symtab_users_queued;
2378 static int clear_symtab_users_done;
2379
2380 static void
2381 clear_symtab_users_once (void)
2382 {
2383 /* Enforce once-per-`do_cleanups'-semantics */
2384 if (clear_symtab_users_queued <= clear_symtab_users_done)
2385 return;
2386 clear_symtab_users_done = clear_symtab_users_queued;
2387
2388 clear_symtab_users ();
2389 }
2390 #endif
2391
2392 /* Delete the specified psymtab, and any others that reference it. */
2393
2394 static void
2395 cashier_psymtab (struct partial_symtab *pst)
2396 {
2397 struct partial_symtab *ps, *pprev = NULL;
2398 int i;
2399
2400 /* Find its previous psymtab in the chain */
2401 for (ps = pst->objfile->psymtabs; ps; ps = ps->next)
2402 {
2403 if (ps == pst)
2404 break;
2405 pprev = ps;
2406 }
2407
2408 if (ps)
2409 {
2410 /* Unhook it from the chain. */
2411 if (ps == pst->objfile->psymtabs)
2412 pst->objfile->psymtabs = ps->next;
2413 else
2414 pprev->next = ps->next;
2415
2416 /* FIXME, we can't conveniently deallocate the entries in the
2417 partial_symbol lists (global_psymbols/static_psymbols) that
2418 this psymtab points to. These just take up space until all
2419 the psymtabs are reclaimed. Ditto the dependencies list and
2420 filename, which are all in the objfile_obstack. */
2421
2422 /* We need to cashier any psymtab that has this one as a dependency... */
2423 again:
2424 for (ps = pst->objfile->psymtabs; ps; ps = ps->next)
2425 {
2426 for (i = 0; i < ps->number_of_dependencies; i++)
2427 {
2428 if (ps->dependencies[i] == pst)
2429 {
2430 cashier_psymtab (ps);
2431 goto again; /* Must restart, chain has been munged. */
2432 }
2433 }
2434 }
2435 }
2436 }
2437
2438 /* If a symtab or psymtab for filename NAME is found, free it along
2439 with any dependent breakpoints, displays, etc.
2440 Used when loading new versions of object modules with the "add-file"
2441 command. This is only called on the top-level symtab or psymtab's name;
2442 it is not called for subsidiary files such as .h files.
2443
2444 Return value is 1 if we blew away the environment, 0 if not.
2445 FIXME. The return value appears to never be used.
2446
2447 FIXME. I think this is not the best way to do this. We should
2448 work on being gentler to the environment while still cleaning up
2449 all stray pointers into the freed symtab. */
2450
2451 int
2452 free_named_symtabs (char *name)
2453 {
2454 #if 0
2455 /* FIXME: With the new method of each objfile having it's own
2456 psymtab list, this function needs serious rethinking. In particular,
2457 why was it ever necessary to toss psymtabs with specific compilation
2458 unit filenames, as opposed to all psymtabs from a particular symbol
2459 file? -- fnf
2460 Well, the answer is that some systems permit reloading of particular
2461 compilation units. We want to blow away any old info about these
2462 compilation units, regardless of which objfiles they arrived in. --gnu. */
2463
2464 struct symtab *s;
2465 struct symtab *prev;
2466 struct partial_symtab *ps;
2467 struct blockvector *bv;
2468 int blewit = 0;
2469
2470 /* We only wack things if the symbol-reload switch is set. */
2471 if (!symbol_reloading)
2472 return 0;
2473
2474 /* Some symbol formats have trouble providing file names... */
2475 if (name == 0 || *name == '\0')
2476 return 0;
2477
2478 /* Look for a psymtab with the specified name. */
2479
2480 again2:
2481 for (ps = partial_symtab_list; ps; ps = ps->next)
2482 {
2483 if (strcmp (name, ps->filename) == 0)
2484 {
2485 cashier_psymtab (ps); /* Blow it away...and its little dog, too. */
2486 goto again2; /* Must restart, chain has been munged */
2487 }
2488 }
2489
2490 /* Look for a symtab with the specified name. */
2491
2492 for (s = symtab_list; s; s = s->next)
2493 {
2494 if (strcmp (name, s->filename) == 0)
2495 break;
2496 prev = s;
2497 }
2498
2499 if (s)
2500 {
2501 if (s == symtab_list)
2502 symtab_list = s->next;
2503 else
2504 prev->next = s->next;
2505
2506 /* For now, queue a delete for all breakpoints, displays, etc., whether
2507 or not they depend on the symtab being freed. This should be
2508 changed so that only those data structures affected are deleted. */
2509
2510 /* But don't delete anything if the symtab is empty.
2511 This test is necessary due to a bug in "dbxread.c" that
2512 causes empty symtabs to be created for N_SO symbols that
2513 contain the pathname of the object file. (This problem
2514 has been fixed in GDB 3.9x). */
2515
2516 bv = BLOCKVECTOR (s);
2517 if (BLOCKVECTOR_NBLOCKS (bv) > 2
2518 || BLOCK_NSYMS (BLOCKVECTOR_BLOCK (bv, GLOBAL_BLOCK))
2519 || BLOCK_NSYMS (BLOCKVECTOR_BLOCK (bv, STATIC_BLOCK)))
2520 {
2521 complaint (&symfile_complaints, _("Replacing old symbols for `%s'"),
2522 name);
2523 clear_symtab_users_queued++;
2524 make_cleanup (clear_symtab_users_once, 0);
2525 blewit = 1;
2526 }
2527 else
2528 complaint (&symfile_complaints, _("Empty symbol table found for `%s'"),
2529 name);
2530
2531 free_symtab (s);
2532 }
2533 else
2534 {
2535 /* It is still possible that some breakpoints will be affected
2536 even though no symtab was found, since the file might have
2537 been compiled without debugging, and hence not be associated
2538 with a symtab. In order to handle this correctly, we would need
2539 to keep a list of text address ranges for undebuggable files.
2540 For now, we do nothing, since this is a fairly obscure case. */
2541 ;
2542 }
2543
2544 /* FIXME, what about the minimal symbol table? */
2545 return blewit;
2546 #else
2547 return (0);
2548 #endif
2549 }
2550 \f
2551 /* Allocate and partially fill a partial symtab. It will be
2552 completely filled at the end of the symbol list.
2553
2554 FILENAME is the name of the symbol-file we are reading from. */
2555
2556 struct partial_symtab *
2557 start_psymtab_common (struct objfile *objfile,
2558 struct section_offsets *section_offsets, char *filename,
2559 CORE_ADDR textlow, struct partial_symbol **global_syms,
2560 struct partial_symbol **static_syms)
2561 {
2562 struct partial_symtab *psymtab;
2563
2564 psymtab = allocate_psymtab (filename, objfile);
2565 psymtab->section_offsets = section_offsets;
2566 psymtab->textlow = textlow;
2567 psymtab->texthigh = psymtab->textlow; /* default */
2568 psymtab->globals_offset = global_syms - objfile->global_psymbols.list;
2569 psymtab->statics_offset = static_syms - objfile->static_psymbols.list;
2570 return (psymtab);
2571 }
2572 \f
2573 /* Add a symbol with a long value to a psymtab.
2574 Since one arg is a struct, we pass in a ptr and deref it (sigh).
2575 Return the partial symbol that has been added. */
2576
2577 /* NOTE: carlton/2003-09-11: The reason why we return the partial
2578 symbol is so that callers can get access to the symbol's demangled
2579 name, which they don't have any cheap way to determine otherwise.
2580 (Currenly, dwarf2read.c is the only file who uses that information,
2581 though it's possible that other readers might in the future.)
2582 Elena wasn't thrilled about that, and I don't blame her, but we
2583 couldn't come up with a better way to get that information. If
2584 it's needed in other situations, we could consider breaking up
2585 SYMBOL_SET_NAMES to provide access to the demangled name lookup
2586 cache. */
2587
2588 const struct partial_symbol *
2589 add_psymbol_to_list (char *name, int namelength, domain_enum domain,
2590 enum address_class class,
2591 struct psymbol_allocation_list *list, long val, /* Value as a long */
2592 CORE_ADDR coreaddr, /* Value as a CORE_ADDR */
2593 enum language language, struct objfile *objfile)
2594 {
2595 struct partial_symbol *psym;
2596 char *buf = alloca (namelength + 1);
2597 /* psymbol is static so that there will be no uninitialized gaps in the
2598 structure which might contain random data, causing cache misses in
2599 bcache. */
2600 static struct partial_symbol psymbol;
2601
2602 /* Create local copy of the partial symbol */
2603 memcpy (buf, name, namelength);
2604 buf[namelength] = '\0';
2605 /* val and coreaddr are mutually exclusive, one of them *will* be zero */
2606 if (val != 0)
2607 {
2608 SYMBOL_VALUE (&psymbol) = val;
2609 }
2610 else
2611 {
2612 SYMBOL_VALUE_ADDRESS (&psymbol) = coreaddr;
2613 }
2614 SYMBOL_SECTION (&psymbol) = 0;
2615 SYMBOL_LANGUAGE (&psymbol) = language;
2616 PSYMBOL_DOMAIN (&psymbol) = domain;
2617 PSYMBOL_CLASS (&psymbol) = class;
2618
2619 SYMBOL_SET_NAMES (&psymbol, buf, namelength, objfile);
2620
2621 /* Stash the partial symbol away in the cache */
2622 psym = deprecated_bcache (&psymbol, sizeof (struct partial_symbol),
2623 objfile->psymbol_cache);
2624
2625 /* Save pointer to partial symbol in psymtab, growing symtab if needed. */
2626 if (list->next >= list->list + list->size)
2627 {
2628 extend_psymbol_list (list, objfile);
2629 }
2630 *list->next++ = psym;
2631 OBJSTAT (objfile, n_psyms++);
2632
2633 return psym;
2634 }
2635
2636 /* Add a symbol with a long value to a psymtab. This differs from
2637 * add_psymbol_to_list above in taking both a mangled and a demangled
2638 * name. */
2639
2640 void
2641 add_psymbol_with_dem_name_to_list (char *name, int namelength, char *dem_name,
2642 int dem_namelength, domain_enum domain,
2643 enum address_class class,
2644 struct psymbol_allocation_list *list, long val, /* Value as a long */
2645 CORE_ADDR coreaddr, /* Value as a CORE_ADDR */
2646 enum language language,
2647 struct objfile *objfile)
2648 {
2649 struct partial_symbol *psym;
2650 char *buf = alloca (namelength + 1);
2651 /* psymbol is static so that there will be no uninitialized gaps in the
2652 structure which might contain random data, causing cache misses in
2653 bcache. */
2654 static struct partial_symbol psymbol;
2655
2656 /* Create local copy of the partial symbol */
2657
2658 memcpy (buf, name, namelength);
2659 buf[namelength] = '\0';
2660 DEPRECATED_SYMBOL_NAME (&psymbol) = deprecated_bcache (buf, namelength + 1,
2661 objfile->psymbol_cache);
2662
2663 buf = alloca (dem_namelength + 1);
2664 memcpy (buf, dem_name, dem_namelength);
2665 buf[dem_namelength] = '\0';
2666
2667 switch (language)
2668 {
2669 case language_c:
2670 case language_cplus:
2671 SYMBOL_CPLUS_DEMANGLED_NAME (&psymbol) =
2672 deprecated_bcache (buf, dem_namelength + 1, objfile->psymbol_cache);
2673 break;
2674 /* FIXME What should be done for the default case? Ignoring for now. */
2675 }
2676
2677 /* val and coreaddr are mutually exclusive, one of them *will* be zero */
2678 if (val != 0)
2679 {
2680 SYMBOL_VALUE (&psymbol) = val;
2681 }
2682 else
2683 {
2684 SYMBOL_VALUE_ADDRESS (&psymbol) = coreaddr;
2685 }
2686 SYMBOL_SECTION (&psymbol) = 0;
2687 SYMBOL_LANGUAGE (&psymbol) = language;
2688 PSYMBOL_DOMAIN (&psymbol) = domain;
2689 PSYMBOL_CLASS (&psymbol) = class;
2690 SYMBOL_INIT_LANGUAGE_SPECIFIC (&psymbol, language);
2691
2692 /* Stash the partial symbol away in the cache */
2693 psym = deprecated_bcache (&psymbol, sizeof (struct partial_symbol),
2694 objfile->psymbol_cache);
2695
2696 /* Save pointer to partial symbol in psymtab, growing symtab if needed. */
2697 if (list->next >= list->list + list->size)
2698 {
2699 extend_psymbol_list (list, objfile);
2700 }
2701 *list->next++ = psym;
2702 OBJSTAT (objfile, n_psyms++);
2703 }
2704
2705 /* Initialize storage for partial symbols. */
2706
2707 void
2708 init_psymbol_list (struct objfile *objfile, int total_symbols)
2709 {
2710 /* Free any previously allocated psymbol lists. */
2711
2712 if (objfile->global_psymbols.list)
2713 {
2714 xfree (objfile->global_psymbols.list);
2715 }
2716 if (objfile->static_psymbols.list)
2717 {
2718 xfree (objfile->static_psymbols.list);
2719 }
2720
2721 /* Current best guess is that approximately a twentieth
2722 of the total symbols (in a debugging file) are global or static
2723 oriented symbols */
2724
2725 objfile->global_psymbols.size = total_symbols / 10;
2726 objfile->static_psymbols.size = total_symbols / 10;
2727
2728 if (objfile->global_psymbols.size > 0)
2729 {
2730 objfile->global_psymbols.next =
2731 objfile->global_psymbols.list = (struct partial_symbol **)
2732 xmalloc ((objfile->global_psymbols.size
2733 * sizeof (struct partial_symbol *)));
2734 }
2735 if (objfile->static_psymbols.size > 0)
2736 {
2737 objfile->static_psymbols.next =
2738 objfile->static_psymbols.list = (struct partial_symbol **)
2739 xmalloc ((objfile->static_psymbols.size
2740 * sizeof (struct partial_symbol *)));
2741 }
2742 }
2743
2744 /* OVERLAYS:
2745 The following code implements an abstraction for debugging overlay sections.
2746
2747 The target model is as follows:
2748 1) The gnu linker will permit multiple sections to be mapped into the
2749 same VMA, each with its own unique LMA (or load address).
2750 2) It is assumed that some runtime mechanism exists for mapping the
2751 sections, one by one, from the load address into the VMA address.
2752 3) This code provides a mechanism for gdb to keep track of which
2753 sections should be considered to be mapped from the VMA to the LMA.
2754 This information is used for symbol lookup, and memory read/write.
2755 For instance, if a section has been mapped then its contents
2756 should be read from the VMA, otherwise from the LMA.
2757
2758 Two levels of debugger support for overlays are available. One is
2759 "manual", in which the debugger relies on the user to tell it which
2760 overlays are currently mapped. This level of support is
2761 implemented entirely in the core debugger, and the information about
2762 whether a section is mapped is kept in the objfile->obj_section table.
2763
2764 The second level of support is "automatic", and is only available if
2765 the target-specific code provides functionality to read the target's
2766 overlay mapping table, and translate its contents for the debugger
2767 (by updating the mapped state information in the obj_section tables).
2768
2769 The interface is as follows:
2770 User commands:
2771 overlay map <name> -- tell gdb to consider this section mapped
2772 overlay unmap <name> -- tell gdb to consider this section unmapped
2773 overlay list -- list the sections that GDB thinks are mapped
2774 overlay read-target -- get the target's state of what's mapped
2775 overlay off/manual/auto -- set overlay debugging state
2776 Functional interface:
2777 find_pc_mapped_section(pc): if the pc is in the range of a mapped
2778 section, return that section.
2779 find_pc_overlay(pc): find any overlay section that contains
2780 the pc, either in its VMA or its LMA
2781 overlay_is_mapped(sect): true if overlay is marked as mapped
2782 section_is_overlay(sect): true if section's VMA != LMA
2783 pc_in_mapped_range(pc,sec): true if pc belongs to section's VMA
2784 pc_in_unmapped_range(...): true if pc belongs to section's LMA
2785 sections_overlap(sec1, sec2): true if mapped sec1 and sec2 ranges overlap
2786 overlay_mapped_address(...): map an address from section's LMA to VMA
2787 overlay_unmapped_address(...): map an address from section's VMA to LMA
2788 symbol_overlayed_address(...): Return a "current" address for symbol:
2789 either in VMA or LMA depending on whether
2790 the symbol's section is currently mapped
2791 */
2792
2793 /* Overlay debugging state: */
2794
2795 enum overlay_debugging_state overlay_debugging = ovly_off;
2796 int overlay_cache_invalid = 0; /* True if need to refresh mapped state */
2797
2798 /* Target vector for refreshing overlay mapped state */
2799 static void simple_overlay_update (struct obj_section *);
2800 void (*target_overlay_update) (struct obj_section *) = simple_overlay_update;
2801
2802 /* Function: section_is_overlay (SECTION)
2803 Returns true if SECTION has VMA not equal to LMA, ie.
2804 SECTION is loaded at an address different from where it will "run". */
2805
2806 int
2807 section_is_overlay (asection *section)
2808 {
2809 /* FIXME: need bfd *, so we can use bfd_section_lma methods. */
2810
2811 if (overlay_debugging)
2812 if (section && section->lma != 0 &&
2813 section->vma != section->lma)
2814 return 1;
2815
2816 return 0;
2817 }
2818
2819 /* Function: overlay_invalidate_all (void)
2820 Invalidate the mapped state of all overlay sections (mark it as stale). */
2821
2822 static void
2823 overlay_invalidate_all (void)
2824 {
2825 struct objfile *objfile;
2826 struct obj_section *sect;
2827
2828 ALL_OBJSECTIONS (objfile, sect)
2829 if (section_is_overlay (sect->the_bfd_section))
2830 sect->ovly_mapped = -1;
2831 }
2832
2833 /* Function: overlay_is_mapped (SECTION)
2834 Returns true if section is an overlay, and is currently mapped.
2835 Private: public access is thru function section_is_mapped.
2836
2837 Access to the ovly_mapped flag is restricted to this function, so
2838 that we can do automatic update. If the global flag
2839 OVERLAY_CACHE_INVALID is set (by wait_for_inferior), then call
2840 overlay_invalidate_all. If the mapped state of the particular
2841 section is stale, then call TARGET_OVERLAY_UPDATE to refresh it. */
2842
2843 static int
2844 overlay_is_mapped (struct obj_section *osect)
2845 {
2846 if (osect == 0 || !section_is_overlay (osect->the_bfd_section))
2847 return 0;
2848
2849 switch (overlay_debugging)
2850 {
2851 default:
2852 case ovly_off:
2853 return 0; /* overlay debugging off */
2854 case ovly_auto: /* overlay debugging automatic */
2855 /* Unles there is a target_overlay_update function,
2856 there's really nothing useful to do here (can't really go auto) */
2857 if (target_overlay_update)
2858 {
2859 if (overlay_cache_invalid)
2860 {
2861 overlay_invalidate_all ();
2862 overlay_cache_invalid = 0;
2863 }
2864 if (osect->ovly_mapped == -1)
2865 (*target_overlay_update) (osect);
2866 }
2867 /* fall thru to manual case */
2868 case ovly_on: /* overlay debugging manual */
2869 return osect->ovly_mapped == 1;
2870 }
2871 }
2872
2873 /* Function: section_is_mapped
2874 Returns true if section is an overlay, and is currently mapped. */
2875
2876 int
2877 section_is_mapped (asection *section)
2878 {
2879 struct objfile *objfile;
2880 struct obj_section *osect;
2881
2882 if (overlay_debugging)
2883 if (section && section_is_overlay (section))
2884 ALL_OBJSECTIONS (objfile, osect)
2885 if (osect->the_bfd_section == section)
2886 return overlay_is_mapped (osect);
2887
2888 return 0;
2889 }
2890
2891 /* Function: pc_in_unmapped_range
2892 If PC falls into the lma range of SECTION, return true, else false. */
2893
2894 CORE_ADDR
2895 pc_in_unmapped_range (CORE_ADDR pc, asection *section)
2896 {
2897 /* FIXME: need bfd *, so we can use bfd_section_lma methods. */
2898
2899 int size;
2900
2901 if (overlay_debugging)
2902 if (section && section_is_overlay (section))
2903 {
2904 size = bfd_get_section_size (section);
2905 if (section->lma <= pc && pc < section->lma + size)
2906 return 1;
2907 }
2908 return 0;
2909 }
2910
2911 /* Function: pc_in_mapped_range
2912 If PC falls into the vma range of SECTION, return true, else false. */
2913
2914 CORE_ADDR
2915 pc_in_mapped_range (CORE_ADDR pc, asection *section)
2916 {
2917 /* FIXME: need bfd *, so we can use bfd_section_vma methods. */
2918
2919 int size;
2920
2921 if (overlay_debugging)
2922 if (section && section_is_overlay (section))
2923 {
2924 size = bfd_get_section_size (section);
2925 if (section->vma <= pc && pc < section->vma + size)
2926 return 1;
2927 }
2928 return 0;
2929 }
2930
2931
2932 /* Return true if the mapped ranges of sections A and B overlap, false
2933 otherwise. */
2934 static int
2935 sections_overlap (asection *a, asection *b)
2936 {
2937 /* FIXME: need bfd *, so we can use bfd_section_vma methods. */
2938
2939 CORE_ADDR a_start = a->vma;
2940 CORE_ADDR a_end = a->vma + bfd_get_section_size (a);
2941 CORE_ADDR b_start = b->vma;
2942 CORE_ADDR b_end = b->vma + bfd_get_section_size (b);
2943
2944 return (a_start < b_end && b_start < a_end);
2945 }
2946
2947 /* Function: overlay_unmapped_address (PC, SECTION)
2948 Returns the address corresponding to PC in the unmapped (load) range.
2949 May be the same as PC. */
2950
2951 CORE_ADDR
2952 overlay_unmapped_address (CORE_ADDR pc, asection *section)
2953 {
2954 /* FIXME: need bfd *, so we can use bfd_section_lma methods. */
2955
2956 if (overlay_debugging)
2957 if (section && section_is_overlay (section) &&
2958 pc_in_mapped_range (pc, section))
2959 return pc + section->lma - section->vma;
2960
2961 return pc;
2962 }
2963
2964 /* Function: overlay_mapped_address (PC, SECTION)
2965 Returns the address corresponding to PC in the mapped (runtime) range.
2966 May be the same as PC. */
2967
2968 CORE_ADDR
2969 overlay_mapped_address (CORE_ADDR pc, asection *section)
2970 {
2971 /* FIXME: need bfd *, so we can use bfd_section_vma methods. */
2972
2973 if (overlay_debugging)
2974 if (section && section_is_overlay (section) &&
2975 pc_in_unmapped_range (pc, section))
2976 return pc + section->vma - section->lma;
2977
2978 return pc;
2979 }
2980
2981
2982 /* Function: symbol_overlayed_address
2983 Return one of two addresses (relative to the VMA or to the LMA),
2984 depending on whether the section is mapped or not. */
2985
2986 CORE_ADDR
2987 symbol_overlayed_address (CORE_ADDR address, asection *section)
2988 {
2989 if (overlay_debugging)
2990 {
2991 /* If the symbol has no section, just return its regular address. */
2992 if (section == 0)
2993 return address;
2994 /* If the symbol's section is not an overlay, just return its address */
2995 if (!section_is_overlay (section))
2996 return address;
2997 /* If the symbol's section is mapped, just return its address */
2998 if (section_is_mapped (section))
2999 return address;
3000 /*
3001 * HOWEVER: if the symbol is in an overlay section which is NOT mapped,
3002 * then return its LOADED address rather than its vma address!!
3003 */
3004 return overlay_unmapped_address (address, section);
3005 }
3006 return address;
3007 }
3008
3009 /* Function: find_pc_overlay (PC)
3010 Return the best-match overlay section for PC:
3011 If PC matches a mapped overlay section's VMA, return that section.
3012 Else if PC matches an unmapped section's VMA, return that section.
3013 Else if PC matches an unmapped section's LMA, return that section. */
3014
3015 asection *
3016 find_pc_overlay (CORE_ADDR pc)
3017 {
3018 struct objfile *objfile;
3019 struct obj_section *osect, *best_match = NULL;
3020
3021 if (overlay_debugging)
3022 ALL_OBJSECTIONS (objfile, osect)
3023 if (section_is_overlay (osect->the_bfd_section))
3024 {
3025 if (pc_in_mapped_range (pc, osect->the_bfd_section))
3026 {
3027 if (overlay_is_mapped (osect))
3028 return osect->the_bfd_section;
3029 else
3030 best_match = osect;
3031 }
3032 else if (pc_in_unmapped_range (pc, osect->the_bfd_section))
3033 best_match = osect;
3034 }
3035 return best_match ? best_match->the_bfd_section : NULL;
3036 }
3037
3038 /* Function: find_pc_mapped_section (PC)
3039 If PC falls into the VMA address range of an overlay section that is
3040 currently marked as MAPPED, return that section. Else return NULL. */
3041
3042 asection *
3043 find_pc_mapped_section (CORE_ADDR pc)
3044 {
3045 struct objfile *objfile;
3046 struct obj_section *osect;
3047
3048 if (overlay_debugging)
3049 ALL_OBJSECTIONS (objfile, osect)
3050 if (pc_in_mapped_range (pc, osect->the_bfd_section) &&
3051 overlay_is_mapped (osect))
3052 return osect->the_bfd_section;
3053
3054 return NULL;
3055 }
3056
3057 /* Function: list_overlays_command
3058 Print a list of mapped sections and their PC ranges */
3059
3060 void
3061 list_overlays_command (char *args, int from_tty)
3062 {
3063 int nmapped = 0;
3064 struct objfile *objfile;
3065 struct obj_section *osect;
3066
3067 if (overlay_debugging)
3068 ALL_OBJSECTIONS (objfile, osect)
3069 if (overlay_is_mapped (osect))
3070 {
3071 const char *name;
3072 bfd_vma lma, vma;
3073 int size;
3074
3075 vma = bfd_section_vma (objfile->obfd, osect->the_bfd_section);
3076 lma = bfd_section_lma (objfile->obfd, osect->the_bfd_section);
3077 size = bfd_get_section_size (osect->the_bfd_section);
3078 name = bfd_section_name (objfile->obfd, osect->the_bfd_section);
3079
3080 printf_filtered ("Section %s, loaded at ", name);
3081 deprecated_print_address_numeric (lma, 1, gdb_stdout);
3082 puts_filtered (" - ");
3083 deprecated_print_address_numeric (lma + size, 1, gdb_stdout);
3084 printf_filtered (", mapped at ");
3085 deprecated_print_address_numeric (vma, 1, gdb_stdout);
3086 puts_filtered (" - ");
3087 deprecated_print_address_numeric (vma + size, 1, gdb_stdout);
3088 puts_filtered ("\n");
3089
3090 nmapped++;
3091 }
3092 if (nmapped == 0)
3093 printf_filtered (_("No sections are mapped.\n"));
3094 }
3095
3096 /* Function: map_overlay_command
3097 Mark the named section as mapped (ie. residing at its VMA address). */
3098
3099 void
3100 map_overlay_command (char *args, int from_tty)
3101 {
3102 struct objfile *objfile, *objfile2;
3103 struct obj_section *sec, *sec2;
3104 asection *bfdsec;
3105
3106 if (!overlay_debugging)
3107 error (_("\
3108 Overlay debugging not enabled. Use either the 'overlay auto' or\n\
3109 the 'overlay manual' command."));
3110
3111 if (args == 0 || *args == 0)
3112 error (_("Argument required: name of an overlay section"));
3113
3114 /* First, find a section matching the user supplied argument */
3115 ALL_OBJSECTIONS (objfile, sec)
3116 if (!strcmp (bfd_section_name (objfile->obfd, sec->the_bfd_section), args))
3117 {
3118 /* Now, check to see if the section is an overlay. */
3119 bfdsec = sec->the_bfd_section;
3120 if (!section_is_overlay (bfdsec))
3121 continue; /* not an overlay section */
3122
3123 /* Mark the overlay as "mapped" */
3124 sec->ovly_mapped = 1;
3125
3126 /* Next, make a pass and unmap any sections that are
3127 overlapped by this new section: */
3128 ALL_OBJSECTIONS (objfile2, sec2)
3129 if (sec2->ovly_mapped
3130 && sec != sec2
3131 && sec->the_bfd_section != sec2->the_bfd_section
3132 && sections_overlap (sec->the_bfd_section,
3133 sec2->the_bfd_section))
3134 {
3135 if (info_verbose)
3136 printf_unfiltered (_("Note: section %s unmapped by overlap\n"),
3137 bfd_section_name (objfile->obfd,
3138 sec2->the_bfd_section));
3139 sec2->ovly_mapped = 0; /* sec2 overlaps sec: unmap sec2 */
3140 }
3141 return;
3142 }
3143 error (_("No overlay section called %s"), args);
3144 }
3145
3146 /* Function: unmap_overlay_command
3147 Mark the overlay section as unmapped
3148 (ie. resident in its LMA address range, rather than the VMA range). */
3149
3150 void
3151 unmap_overlay_command (char *args, int from_tty)
3152 {
3153 struct objfile *objfile;
3154 struct obj_section *sec;
3155
3156 if (!overlay_debugging)
3157 error (_("\
3158 Overlay debugging not enabled. Use either the 'overlay auto' or\n\
3159 the 'overlay manual' command."));
3160
3161 if (args == 0 || *args == 0)
3162 error (_("Argument required: name of an overlay section"));
3163
3164 /* First, find a section matching the user supplied argument */
3165 ALL_OBJSECTIONS (objfile, sec)
3166 if (!strcmp (bfd_section_name (objfile->obfd, sec->the_bfd_section), args))
3167 {
3168 if (!sec->ovly_mapped)
3169 error (_("Section %s is not mapped"), args);
3170 sec->ovly_mapped = 0;
3171 return;
3172 }
3173 error (_("No overlay section called %s"), args);
3174 }
3175
3176 /* Function: overlay_auto_command
3177 A utility command to turn on overlay debugging.
3178 Possibly this should be done via a set/show command. */
3179
3180 static void
3181 overlay_auto_command (char *args, int from_tty)
3182 {
3183 overlay_debugging = ovly_auto;
3184 enable_overlay_breakpoints ();
3185 if (info_verbose)
3186 printf_unfiltered (_("Automatic overlay debugging enabled."));
3187 }
3188
3189 /* Function: overlay_manual_command
3190 A utility command to turn on overlay debugging.
3191 Possibly this should be done via a set/show command. */
3192
3193 static void
3194 overlay_manual_command (char *args, int from_tty)
3195 {
3196 overlay_debugging = ovly_on;
3197 disable_overlay_breakpoints ();
3198 if (info_verbose)
3199 printf_unfiltered (_("Overlay debugging enabled."));
3200 }
3201
3202 /* Function: overlay_off_command
3203 A utility command to turn on overlay debugging.
3204 Possibly this should be done via a set/show command. */
3205
3206 static void
3207 overlay_off_command (char *args, int from_tty)
3208 {
3209 overlay_debugging = ovly_off;
3210 disable_overlay_breakpoints ();
3211 if (info_verbose)
3212 printf_unfiltered (_("Overlay debugging disabled."));
3213 }
3214
3215 static void
3216 overlay_load_command (char *args, int from_tty)
3217 {
3218 if (target_overlay_update)
3219 (*target_overlay_update) (NULL);
3220 else
3221 error (_("This target does not know how to read its overlay state."));
3222 }
3223
3224 /* Function: overlay_command
3225 A place-holder for a mis-typed command */
3226
3227 /* Command list chain containing all defined "overlay" subcommands. */
3228 struct cmd_list_element *overlaylist;
3229
3230 static void
3231 overlay_command (char *args, int from_tty)
3232 {
3233 printf_unfiltered
3234 ("\"overlay\" must be followed by the name of an overlay command.\n");
3235 help_list (overlaylist, "overlay ", -1, gdb_stdout);
3236 }
3237
3238
3239 /* Target Overlays for the "Simplest" overlay manager:
3240
3241 This is GDB's default target overlay layer. It works with the
3242 minimal overlay manager supplied as an example by Cygnus. The
3243 entry point is via a function pointer "target_overlay_update",
3244 so targets that use a different runtime overlay manager can
3245 substitute their own overlay_update function and take over the
3246 function pointer.
3247
3248 The overlay_update function pokes around in the target's data structures
3249 to see what overlays are mapped, and updates GDB's overlay mapping with
3250 this information.
3251
3252 In this simple implementation, the target data structures are as follows:
3253 unsigned _novlys; /# number of overlay sections #/
3254 unsigned _ovly_table[_novlys][4] = {
3255 {VMA, SIZE, LMA, MAPPED}, /# one entry per overlay section #/
3256 {..., ..., ..., ...},
3257 }
3258 unsigned _novly_regions; /# number of overlay regions #/
3259 unsigned _ovly_region_table[_novly_regions][3] = {
3260 {VMA, SIZE, MAPPED_TO_LMA}, /# one entry per overlay region #/
3261 {..., ..., ...},
3262 }
3263 These functions will attempt to update GDB's mappedness state in the
3264 symbol section table, based on the target's mappedness state.
3265
3266 To do this, we keep a cached copy of the target's _ovly_table, and
3267 attempt to detect when the cached copy is invalidated. The main
3268 entry point is "simple_overlay_update(SECT), which looks up SECT in
3269 the cached table and re-reads only the entry for that section from
3270 the target (whenever possible).
3271 */
3272
3273 /* Cached, dynamically allocated copies of the target data structures: */
3274 static unsigned (*cache_ovly_table)[4] = 0;
3275 #if 0
3276 static unsigned (*cache_ovly_region_table)[3] = 0;
3277 #endif
3278 static unsigned cache_novlys = 0;
3279 #if 0
3280 static unsigned cache_novly_regions = 0;
3281 #endif
3282 static CORE_ADDR cache_ovly_table_base = 0;
3283 #if 0
3284 static CORE_ADDR cache_ovly_region_table_base = 0;
3285 #endif
3286 enum ovly_index
3287 {
3288 VMA, SIZE, LMA, MAPPED
3289 };
3290 #define TARGET_LONG_BYTES (TARGET_LONG_BIT / TARGET_CHAR_BIT)
3291
3292 /* Throw away the cached copy of _ovly_table */
3293 static void
3294 simple_free_overlay_table (void)
3295 {
3296 if (cache_ovly_table)
3297 xfree (cache_ovly_table);
3298 cache_novlys = 0;
3299 cache_ovly_table = NULL;
3300 cache_ovly_table_base = 0;
3301 }
3302
3303 #if 0
3304 /* Throw away the cached copy of _ovly_region_table */
3305 static void
3306 simple_free_overlay_region_table (void)
3307 {
3308 if (cache_ovly_region_table)
3309 xfree (cache_ovly_region_table);
3310 cache_novly_regions = 0;
3311 cache_ovly_region_table = NULL;
3312 cache_ovly_region_table_base = 0;
3313 }
3314 #endif
3315
3316 /* Read an array of ints from the target into a local buffer.
3317 Convert to host order. int LEN is number of ints */
3318 static void
3319 read_target_long_array (CORE_ADDR memaddr, unsigned int *myaddr, int len)
3320 {
3321 /* FIXME (alloca): Not safe if array is very large. */
3322 char *buf = alloca (len * TARGET_LONG_BYTES);
3323 int i;
3324
3325 read_memory (memaddr, buf, len * TARGET_LONG_BYTES);
3326 for (i = 0; i < len; i++)
3327 myaddr[i] = extract_unsigned_integer (TARGET_LONG_BYTES * i + buf,
3328 TARGET_LONG_BYTES);
3329 }
3330
3331 /* Find and grab a copy of the target _ovly_table
3332 (and _novlys, which is needed for the table's size) */
3333 static int
3334 simple_read_overlay_table (void)
3335 {
3336 struct minimal_symbol *novlys_msym, *ovly_table_msym;
3337
3338 simple_free_overlay_table ();
3339 novlys_msym = lookup_minimal_symbol ("_novlys", NULL, NULL);
3340 if (! novlys_msym)
3341 {
3342 error (_("Error reading inferior's overlay table: "
3343 "couldn't find `_novlys' variable\n"
3344 "in inferior. Use `overlay manual' mode."));
3345 return 0;
3346 }
3347
3348 ovly_table_msym = lookup_minimal_symbol ("_ovly_table", NULL, NULL);
3349 if (! ovly_table_msym)
3350 {
3351 error (_("Error reading inferior's overlay table: couldn't find "
3352 "`_ovly_table' array\n"
3353 "in inferior. Use `overlay manual' mode."));
3354 return 0;
3355 }
3356
3357 cache_novlys = read_memory_integer (SYMBOL_VALUE_ADDRESS (novlys_msym), 4);
3358 cache_ovly_table
3359 = (void *) xmalloc (cache_novlys * sizeof (*cache_ovly_table));
3360 cache_ovly_table_base = SYMBOL_VALUE_ADDRESS (ovly_table_msym);
3361 read_target_long_array (cache_ovly_table_base,
3362 (int *) cache_ovly_table,
3363 cache_novlys * 4);
3364
3365 return 1; /* SUCCESS */
3366 }
3367
3368 #if 0
3369 /* Find and grab a copy of the target _ovly_region_table
3370 (and _novly_regions, which is needed for the table's size) */
3371 static int
3372 simple_read_overlay_region_table (void)
3373 {
3374 struct minimal_symbol *msym;
3375
3376 simple_free_overlay_region_table ();
3377 msym = lookup_minimal_symbol ("_novly_regions", NULL, NULL);
3378 if (msym != NULL)
3379 cache_novly_regions = read_memory_integer (SYMBOL_VALUE_ADDRESS (msym), 4);
3380 else
3381 return 0; /* failure */
3382 cache_ovly_region_table = (void *) xmalloc (cache_novly_regions * 12);
3383 if (cache_ovly_region_table != NULL)
3384 {
3385 msym = lookup_minimal_symbol ("_ovly_region_table", NULL, NULL);
3386 if (msym != NULL)
3387 {
3388 cache_ovly_region_table_base = SYMBOL_VALUE_ADDRESS (msym);
3389 read_target_long_array (cache_ovly_region_table_base,
3390 (int *) cache_ovly_region_table,
3391 cache_novly_regions * 3);
3392 }
3393 else
3394 return 0; /* failure */
3395 }
3396 else
3397 return 0; /* failure */
3398 return 1; /* SUCCESS */
3399 }
3400 #endif
3401
3402 /* Function: simple_overlay_update_1
3403 A helper function for simple_overlay_update. Assuming a cached copy
3404 of _ovly_table exists, look through it to find an entry whose vma,
3405 lma and size match those of OSECT. Re-read the entry and make sure
3406 it still matches OSECT (else the table may no longer be valid).
3407 Set OSECT's mapped state to match the entry. Return: 1 for
3408 success, 0 for failure. */
3409
3410 static int
3411 simple_overlay_update_1 (struct obj_section *osect)
3412 {
3413 int i, size;
3414 bfd *obfd = osect->objfile->obfd;
3415 asection *bsect = osect->the_bfd_section;
3416
3417 size = bfd_get_section_size (osect->the_bfd_section);
3418 for (i = 0; i < cache_novlys; i++)
3419 if (cache_ovly_table[i][VMA] == bfd_section_vma (obfd, bsect)
3420 && cache_ovly_table[i][LMA] == bfd_section_lma (obfd, bsect)
3421 /* && cache_ovly_table[i][SIZE] == size */ )
3422 {
3423 read_target_long_array (cache_ovly_table_base + i * TARGET_LONG_BYTES,
3424 (int *) cache_ovly_table[i], 4);
3425 if (cache_ovly_table[i][VMA] == bfd_section_vma (obfd, bsect)
3426 && cache_ovly_table[i][LMA] == bfd_section_lma (obfd, bsect)
3427 /* && cache_ovly_table[i][SIZE] == size */ )
3428 {
3429 osect->ovly_mapped = cache_ovly_table[i][MAPPED];
3430 return 1;
3431 }
3432 else /* Warning! Warning! Target's ovly table has changed! */
3433 return 0;
3434 }
3435 return 0;
3436 }
3437
3438 /* Function: simple_overlay_update
3439 If OSECT is NULL, then update all sections' mapped state
3440 (after re-reading the entire target _ovly_table).
3441 If OSECT is non-NULL, then try to find a matching entry in the
3442 cached ovly_table and update only OSECT's mapped state.
3443 If a cached entry can't be found or the cache isn't valid, then
3444 re-read the entire cache, and go ahead and update all sections. */
3445
3446 static void
3447 simple_overlay_update (struct obj_section *osect)
3448 {
3449 struct objfile *objfile;
3450
3451 /* Were we given an osect to look up? NULL means do all of them. */
3452 if (osect)
3453 /* Have we got a cached copy of the target's overlay table? */
3454 if (cache_ovly_table != NULL)
3455 /* Does its cached location match what's currently in the symtab? */
3456 if (cache_ovly_table_base ==
3457 SYMBOL_VALUE_ADDRESS (lookup_minimal_symbol ("_ovly_table", NULL, NULL)))
3458 /* Then go ahead and try to look up this single section in the cache */
3459 if (simple_overlay_update_1 (osect))
3460 /* Found it! We're done. */
3461 return;
3462
3463 /* Cached table no good: need to read the entire table anew.
3464 Or else we want all the sections, in which case it's actually
3465 more efficient to read the whole table in one block anyway. */
3466
3467 if (! simple_read_overlay_table ())
3468 return;
3469
3470 /* Now may as well update all sections, even if only one was requested. */
3471 ALL_OBJSECTIONS (objfile, osect)
3472 if (section_is_overlay (osect->the_bfd_section))
3473 {
3474 int i, size;
3475 bfd *obfd = osect->objfile->obfd;
3476 asection *bsect = osect->the_bfd_section;
3477
3478 size = bfd_get_section_size (bsect);
3479 for (i = 0; i < cache_novlys; i++)
3480 if (cache_ovly_table[i][VMA] == bfd_section_vma (obfd, bsect)
3481 && cache_ovly_table[i][LMA] == bfd_section_lma (obfd, bsect)
3482 /* && cache_ovly_table[i][SIZE] == size */ )
3483 { /* obj_section matches i'th entry in ovly_table */
3484 osect->ovly_mapped = cache_ovly_table[i][MAPPED];
3485 break; /* finished with inner for loop: break out */
3486 }
3487 }
3488 }
3489
3490 /* Set the output sections and output offsets for section SECTP in
3491 ABFD. The relocation code in BFD will read these offsets, so we
3492 need to be sure they're initialized. We map each section to itself,
3493 with no offset; this means that SECTP->vma will be honored. */
3494
3495 static void
3496 symfile_dummy_outputs (bfd *abfd, asection *sectp, void *dummy)
3497 {
3498 sectp->output_section = sectp;
3499 sectp->output_offset = 0;
3500 }
3501
3502 /* Relocate the contents of a debug section SECTP in ABFD. The
3503 contents are stored in BUF if it is non-NULL, or returned in a
3504 malloc'd buffer otherwise.
3505
3506 For some platforms and debug info formats, shared libraries contain
3507 relocations against the debug sections (particularly for DWARF-2;
3508 one affected platform is PowerPC GNU/Linux, although it depends on
3509 the version of the linker in use). Also, ELF object files naturally
3510 have unresolved relocations for their debug sections. We need to apply
3511 the relocations in order to get the locations of symbols correct. */
3512
3513 bfd_byte *
3514 symfile_relocate_debug_section (bfd *abfd, asection *sectp, bfd_byte *buf)
3515 {
3516 /* We're only interested in debugging sections with relocation
3517 information. */
3518 if ((sectp->flags & SEC_RELOC) == 0)
3519 return NULL;
3520 if ((sectp->flags & SEC_DEBUGGING) == 0)
3521 return NULL;
3522
3523 /* We will handle section offsets properly elsewhere, so relocate as if
3524 all sections begin at 0. */
3525 bfd_map_over_sections (abfd, symfile_dummy_outputs, NULL);
3526
3527 return bfd_simple_get_relocated_section_contents (abfd, sectp, buf, NULL);
3528 }
3529
3530 void
3531 _initialize_symfile (void)
3532 {
3533 struct cmd_list_element *c;
3534
3535 c = add_cmd ("symbol-file", class_files, symbol_file_command, _("\
3536 Load symbol table from executable file FILE.\n\
3537 The `file' command can also load symbol tables, as well as setting the file\n\
3538 to execute."), &cmdlist);
3539 set_cmd_completer (c, filename_completer);
3540
3541 c = add_cmd ("add-symbol-file", class_files, add_symbol_file_command, _("\
3542 Usage: add-symbol-file FILE ADDR [-s <SECT> <SECT_ADDR> -s <SECT> <SECT_ADDR> ...]\n\
3543 Load the symbols from FILE, assuming FILE has been dynamically loaded.\n\
3544 ADDR is the starting address of the file's text.\n\
3545 The optional arguments are section-name section-address pairs and\n\
3546 should be specified if the data and bss segments are not contiguous\n\
3547 with the text. SECT is a section name to be loaded at SECT_ADDR."),
3548 &cmdlist);
3549 set_cmd_completer (c, filename_completer);
3550
3551 c = add_cmd ("add-shared-symbol-files", class_files,
3552 add_shared_symbol_files_command, _("\
3553 Load the symbols from shared objects in the dynamic linker's link map."),
3554 &cmdlist);
3555 c = add_alias_cmd ("assf", "add-shared-symbol-files", class_files, 1,
3556 &cmdlist);
3557
3558 c = add_cmd ("load", class_files, load_command, _("\
3559 Dynamically load FILE into the running program, and record its symbols\n\
3560 for access from GDB."), &cmdlist);
3561 set_cmd_completer (c, filename_completer);
3562
3563 deprecated_add_show_from_set
3564 (add_set_cmd ("symbol-reloading", class_support, var_boolean,
3565 (char *) &symbol_reloading,
3566 "Set dynamic symbol table reloading multiple times in one run.",
3567 &setlist),
3568 &showlist);
3569
3570 add_prefix_cmd ("overlay", class_support, overlay_command,
3571 _("Commands for debugging overlays."), &overlaylist,
3572 "overlay ", 0, &cmdlist);
3573
3574 add_com_alias ("ovly", "overlay", class_alias, 1);
3575 add_com_alias ("ov", "overlay", class_alias, 1);
3576
3577 add_cmd ("map-overlay", class_support, map_overlay_command,
3578 _("Assert that an overlay section is mapped."), &overlaylist);
3579
3580 add_cmd ("unmap-overlay", class_support, unmap_overlay_command,
3581 _("Assert that an overlay section is unmapped."), &overlaylist);
3582
3583 add_cmd ("list-overlays", class_support, list_overlays_command,
3584 _("List mappings of overlay sections."), &overlaylist);
3585
3586 add_cmd ("manual", class_support, overlay_manual_command,
3587 _("Enable overlay debugging."), &overlaylist);
3588 add_cmd ("off", class_support, overlay_off_command,
3589 _("Disable overlay debugging."), &overlaylist);
3590 add_cmd ("auto", class_support, overlay_auto_command,
3591 _("Enable automatic overlay debugging."), &overlaylist);
3592 add_cmd ("load-target", class_support, overlay_load_command,
3593 _("Read the overlay mapping state from the target."), &overlaylist);
3594
3595 /* Filename extension to source language lookup table: */
3596 init_filename_language_table ();
3597 add_setshow_string_noescape_cmd ("extension-language", class_files,
3598 &ext_args, _("\
3599 Set mapping between filename extension and source language."), _("\
3600 Show mapping between filename extension and source language."), _("\
3601 Usage: set extension-language .foo bar"),
3602 set_ext_lang_command,
3603 NULL, /* FIXME: i18n: */
3604 &setlist, &showlist);
3605
3606 add_info ("extensions", info_ext_lang_command,
3607 _("All filename extensions associated with a source language."));
3608
3609 deprecated_add_show_from_set
3610 (add_set_cmd ("download-write-size", class_obscure,
3611 var_integer, (char *) &download_write_size,
3612 "Set the write size used when downloading a program.\n"
3613 "Only used when downloading a program onto a remote\n"
3614 "target. Specify zero, or a negative value, to disable\n"
3615 "blocked writes. The actual size of each transfer is also\n"
3616 "limited by the size of the target packet and the memory\n"
3617 "cache.\n",
3618 &setlist),
3619 &showlist);
3620
3621 debug_file_directory = xstrdup (DEBUGDIR);
3622 c = (add_set_cmd
3623 ("debug-file-directory", class_support, var_string,
3624 (char *) &debug_file_directory,
3625 "Set the directory where separate debug symbols are searched for.\n"
3626 "Separate debug symbols are first searched for in the same\n"
3627 "directory as the binary, then in the `" DEBUG_SUBDIRECTORY
3628 "' subdirectory,\n"
3629 "and lastly at the path of the directory of the binary with\n"
3630 "the global debug-file directory prepended\n",
3631 &setlist));
3632 deprecated_add_show_from_set (c, &showlist);
3633 set_cmd_completer (c, filename_completer);
3634 }
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