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c906108c | 1 | /* GDB routines for manipulating objfiles. |
b6ba6518 | 2 | Copyright 1992, 1993, 1994, 1995, 1996, 1997, 1998, 1999, 2000, 2001 |
8e65ff28 | 3 | Free Software Foundation, Inc. |
c906108c SS |
4 | Contributed by Cygnus Support, using pieces from other GDB modules. |
5 | ||
c5aa993b | 6 | This file is part of GDB. |
c906108c | 7 | |
c5aa993b JM |
8 | This program is free software; you can redistribute it and/or modify |
9 | it under the terms of the GNU General Public License as published by | |
10 | the Free Software Foundation; either version 2 of the License, or | |
11 | (at your option) any later version. | |
c906108c | 12 | |
c5aa993b JM |
13 | This program is distributed in the hope that it will be useful, |
14 | but WITHOUT ANY WARRANTY; without even the implied warranty of | |
15 | MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the | |
16 | GNU General Public License for more details. | |
c906108c | 17 | |
c5aa993b JM |
18 | You should have received a copy of the GNU General Public License |
19 | along with this program; if not, write to the Free Software | |
20 | Foundation, Inc., 59 Temple Place - Suite 330, | |
21 | Boston, MA 02111-1307, USA. */ | |
c906108c SS |
22 | |
23 | /* This file contains support routines for creating, manipulating, and | |
24 | destroying objfile structures. */ | |
25 | ||
26 | #include "defs.h" | |
27 | #include "bfd.h" /* Binary File Description */ | |
28 | #include "symtab.h" | |
29 | #include "symfile.h" | |
30 | #include "objfiles.h" | |
31 | #include "gdb-stabs.h" | |
32 | #include "target.h" | |
33 | ||
34 | #include <sys/types.h> | |
35 | #include "gdb_stat.h" | |
36 | #include <fcntl.h> | |
37 | #include "obstack.h" | |
38 | #include "gdb_string.h" | |
39 | ||
7a292a7a SS |
40 | #include "breakpoint.h" |
41 | ||
c906108c SS |
42 | /* Prototypes for local functions */ |
43 | ||
44 | #if defined(USE_MMALLOC) && defined(HAVE_MMAP) | |
45 | ||
a14ed312 | 46 | static int open_existing_mapped_file (char *, long, int); |
c906108c | 47 | |
a14ed312 | 48 | static int open_mapped_file (char *filename, long mtime, int flags); |
c906108c | 49 | |
a14ed312 | 50 | static PTR map_to_file (int); |
c906108c | 51 | |
c5aa993b | 52 | #endif /* defined(USE_MMALLOC) && defined(HAVE_MMAP) */ |
c906108c | 53 | |
a14ed312 | 54 | static void add_to_objfile_sections (bfd *, sec_ptr, PTR); |
c906108c SS |
55 | |
56 | /* Externally visible variables that are owned by this module. | |
57 | See declarations in objfile.h for more info. */ | |
58 | ||
c5aa993b | 59 | struct objfile *object_files; /* Linked list of all objfiles */ |
c906108c SS |
60 | struct objfile *current_objfile; /* For symbol file being read in */ |
61 | struct objfile *symfile_objfile; /* Main symbol table loaded from */ | |
62 | struct objfile *rt_common_objfile; /* For runtime common symbols */ | |
63 | ||
c5aa993b | 64 | int mapped_symbol_files; /* Try to use mapped symbol files */ |
c906108c SS |
65 | |
66 | /* Locate all mappable sections of a BFD file. | |
67 | objfile_p_char is a char * to get it through | |
68 | bfd_map_over_sections; we cast it back to its proper type. */ | |
69 | ||
70 | #ifndef TARGET_KEEP_SECTION | |
71 | #define TARGET_KEEP_SECTION(ASECT) 0 | |
72 | #endif | |
73 | ||
96baa820 JM |
74 | /* Called via bfd_map_over_sections to build up the section table that |
75 | the objfile references. The objfile contains pointers to the start | |
76 | of the table (objfile->sections) and to the first location after | |
77 | the end of the table (objfile->sections_end). */ | |
78 | ||
c906108c | 79 | static void |
fba45db2 | 80 | add_to_objfile_sections (bfd *abfd, sec_ptr asect, PTR objfile_p_char) |
c906108c SS |
81 | { |
82 | struct objfile *objfile = (struct objfile *) objfile_p_char; | |
83 | struct obj_section section; | |
84 | flagword aflag; | |
85 | ||
86 | aflag = bfd_get_section_flags (abfd, asect); | |
87 | ||
c5aa993b | 88 | if (!(aflag & SEC_ALLOC) && !(TARGET_KEEP_SECTION (asect))) |
c906108c SS |
89 | return; |
90 | ||
91 | if (0 == bfd_section_size (abfd, asect)) | |
92 | return; | |
93 | section.offset = 0; | |
94 | section.objfile = objfile; | |
95 | section.the_bfd_section = asect; | |
96 | section.ovly_mapped = 0; | |
97 | section.addr = bfd_section_vma (abfd, asect); | |
98 | section.endaddr = section.addr + bfd_section_size (abfd, asect); | |
c5aa993b | 99 | obstack_grow (&objfile->psymbol_obstack, (char *) §ion, sizeof (section)); |
c906108c SS |
100 | objfile->sections_end = (struct obj_section *) (((unsigned long) objfile->sections_end) + 1); |
101 | } | |
102 | ||
103 | /* Builds a section table for OBJFILE. | |
104 | Returns 0 if OK, 1 on error (in which case bfd_error contains the | |
96baa820 JM |
105 | error). |
106 | ||
107 | Note that while we are building the table, which goes into the | |
108 | psymbol obstack, we hijack the sections_end pointer to instead hold | |
109 | a count of the number of sections. When bfd_map_over_sections | |
110 | returns, this count is used to compute the pointer to the end of | |
111 | the sections table, which then overwrites the count. | |
112 | ||
113 | Also note that the OFFSET and OVLY_MAPPED in each table entry | |
114 | are initialized to zero. | |
115 | ||
116 | Also note that if anything else writes to the psymbol obstack while | |
117 | we are building the table, we're pretty much hosed. */ | |
c906108c SS |
118 | |
119 | int | |
fba45db2 | 120 | build_objfile_section_table (struct objfile *objfile) |
c906108c SS |
121 | { |
122 | /* objfile->sections can be already set when reading a mapped symbol | |
123 | file. I believe that we do need to rebuild the section table in | |
124 | this case (we rebuild other things derived from the bfd), but we | |
125 | can't free the old one (it's in the psymbol_obstack). So we just | |
126 | waste some memory. */ | |
127 | ||
128 | objfile->sections_end = 0; | |
c5aa993b | 129 | bfd_map_over_sections (objfile->obfd, add_to_objfile_sections, (char *) objfile); |
c906108c SS |
130 | objfile->sections = (struct obj_section *) |
131 | obstack_finish (&objfile->psymbol_obstack); | |
132 | objfile->sections_end = objfile->sections + (unsigned long) objfile->sections_end; | |
c5aa993b | 133 | return (0); |
c906108c SS |
134 | } |
135 | ||
2df3850c JM |
136 | /* Given a pointer to an initialized bfd (ABFD) and some flag bits |
137 | allocate a new objfile struct, fill it in as best we can, link it | |
138 | into the list of all known objfiles, and return a pointer to the | |
139 | new objfile struct. | |
c906108c | 140 | |
2df3850c JM |
141 | The FLAGS word contains various bits (OBJF_*) that can be taken as |
142 | requests for specific operations, like trying to open a mapped | |
143 | version of the objfile (OBJF_MAPPED). Other bits like | |
144 | OBJF_SHARED are simply copied through to the new objfile flags | |
145 | member. */ | |
c906108c SS |
146 | |
147 | struct objfile * | |
fba45db2 | 148 | allocate_objfile (bfd *abfd, int flags) |
c906108c SS |
149 | { |
150 | struct objfile *objfile = NULL; | |
151 | struct objfile *last_one = NULL; | |
152 | ||
2df3850c JM |
153 | if (mapped_symbol_files) |
154 | flags |= OBJF_MAPPED; | |
c906108c SS |
155 | |
156 | #if defined(USE_MMALLOC) && defined(HAVE_MMAP) | |
157 | if (abfd != NULL) | |
c5aa993b | 158 | { |
c906108c | 159 | |
c5aa993b JM |
160 | /* If we can support mapped symbol files, try to open/reopen the |
161 | mapped file that corresponds to the file from which we wish to | |
162 | read symbols. If the objfile is to be mapped, we must malloc | |
163 | the structure itself using the mmap version, and arrange that | |
164 | all memory allocation for the objfile uses the mmap routines. | |
165 | If we are reusing an existing mapped file, from which we get | |
166 | our objfile pointer, we have to make sure that we update the | |
167 | pointers to the alloc/free functions in the obstack, in case | |
168 | these functions have moved within the current gdb. */ | |
169 | ||
170 | int fd; | |
171 | ||
172 | fd = open_mapped_file (bfd_get_filename (abfd), bfd_get_mtime (abfd), | |
2df3850c | 173 | flags); |
c5aa993b JM |
174 | if (fd >= 0) |
175 | { | |
176 | PTR md; | |
c906108c | 177 | |
c5aa993b JM |
178 | if ((md = map_to_file (fd)) == NULL) |
179 | { | |
180 | close (fd); | |
181 | } | |
182 | else if ((objfile = (struct objfile *) mmalloc_getkey (md, 0)) != NULL) | |
183 | { | |
184 | /* Update memory corruption handler function addresses. */ | |
185 | init_malloc (md); | |
186 | objfile->md = md; | |
187 | objfile->mmfd = fd; | |
188 | /* Update pointers to functions to *our* copies */ | |
189 | obstack_chunkfun (&objfile->psymbol_cache.cache, xmmalloc); | |
190 | obstack_freefun (&objfile->psymbol_cache.cache, mfree); | |
191 | obstack_chunkfun (&objfile->psymbol_obstack, xmmalloc); | |
192 | obstack_freefun (&objfile->psymbol_obstack, mfree); | |
193 | obstack_chunkfun (&objfile->symbol_obstack, xmmalloc); | |
194 | obstack_freefun (&objfile->symbol_obstack, mfree); | |
195 | obstack_chunkfun (&objfile->type_obstack, xmmalloc); | |
196 | obstack_freefun (&objfile->type_obstack, mfree); | |
197 | /* If already in objfile list, unlink it. */ | |
198 | unlink_objfile (objfile); | |
199 | /* Forget things specific to a particular gdb, may have changed. */ | |
200 | objfile->sf = NULL; | |
201 | } | |
202 | else | |
203 | { | |
c906108c | 204 | |
c5aa993b JM |
205 | /* Set up to detect internal memory corruption. MUST be |
206 | done before the first malloc. See comments in | |
207 | init_malloc() and mmcheck(). */ | |
208 | ||
209 | init_malloc (md); | |
210 | ||
211 | objfile = (struct objfile *) | |
212 | xmmalloc (md, sizeof (struct objfile)); | |
213 | memset (objfile, 0, sizeof (struct objfile)); | |
214 | objfile->md = md; | |
215 | objfile->mmfd = fd; | |
216 | objfile->flags |= OBJF_MAPPED; | |
217 | mmalloc_setkey (objfile->md, 0, objfile); | |
218 | obstack_specify_allocation_with_arg (&objfile->psymbol_cache.cache, | |
219 | 0, 0, xmmalloc, mfree, | |
220 | objfile->md); | |
221 | obstack_specify_allocation_with_arg (&objfile->psymbol_obstack, | |
222 | 0, 0, xmmalloc, mfree, | |
223 | objfile->md); | |
224 | obstack_specify_allocation_with_arg (&objfile->symbol_obstack, | |
225 | 0, 0, xmmalloc, mfree, | |
226 | objfile->md); | |
227 | obstack_specify_allocation_with_arg (&objfile->type_obstack, | |
228 | 0, 0, xmmalloc, mfree, | |
229 | objfile->md); | |
230 | } | |
231 | } | |
c906108c | 232 | |
2df3850c | 233 | if ((flags & OBJF_MAPPED) && (objfile == NULL)) |
c5aa993b JM |
234 | { |
235 | warning ("symbol table for '%s' will not be mapped", | |
236 | bfd_get_filename (abfd)); | |
2df3850c | 237 | flags &= ~OBJF_MAPPED; |
c5aa993b JM |
238 | } |
239 | } | |
240 | #else /* !defined(USE_MMALLOC) || !defined(HAVE_MMAP) */ | |
c906108c | 241 | |
2df3850c | 242 | if (flags & OBJF_MAPPED) |
c906108c SS |
243 | { |
244 | warning ("mapped symbol tables are not supported on this machine; missing or broken mmap()."); | |
245 | ||
246 | /* Turn off the global flag so we don't try to do mapped symbol tables | |
c5aa993b JM |
247 | any more, which shuts up gdb unless the user specifically gives the |
248 | "mapped" keyword again. */ | |
c906108c SS |
249 | |
250 | mapped_symbol_files = 0; | |
2df3850c | 251 | flags &= ~OBJF_MAPPED; |
c906108c SS |
252 | } |
253 | ||
c5aa993b | 254 | #endif /* defined(USE_MMALLOC) && defined(HAVE_MMAP) */ |
c906108c SS |
255 | |
256 | /* If we don't support mapped symbol files, didn't ask for the file to be | |
257 | mapped, or failed to open the mapped file for some reason, then revert | |
258 | back to an unmapped objfile. */ | |
259 | ||
260 | if (objfile == NULL) | |
261 | { | |
262 | objfile = (struct objfile *) xmalloc (sizeof (struct objfile)); | |
263 | memset (objfile, 0, sizeof (struct objfile)); | |
c5aa993b JM |
264 | objfile->md = NULL; |
265 | obstack_specify_allocation (&objfile->psymbol_cache.cache, 0, 0, | |
b8c9b27d | 266 | xmalloc, xfree); |
c5aa993b | 267 | obstack_specify_allocation (&objfile->psymbol_obstack, 0, 0, xmalloc, |
b8c9b27d | 268 | xfree); |
c5aa993b | 269 | obstack_specify_allocation (&objfile->symbol_obstack, 0, 0, xmalloc, |
b8c9b27d | 270 | xfree); |
c5aa993b | 271 | obstack_specify_allocation (&objfile->type_obstack, 0, 0, xmalloc, |
b8c9b27d | 272 | xfree); |
2df3850c | 273 | flags &= ~OBJF_MAPPED; |
c906108c SS |
274 | } |
275 | ||
276 | /* Update the per-objfile information that comes from the bfd, ensuring | |
277 | that any data that is reference is saved in the per-objfile data | |
278 | region. */ | |
279 | ||
c5aa993b JM |
280 | objfile->obfd = abfd; |
281 | if (objfile->name != NULL) | |
c906108c | 282 | { |
c5aa993b | 283 | mfree (objfile->md, objfile->name); |
c906108c SS |
284 | } |
285 | if (abfd != NULL) | |
286 | { | |
c5aa993b JM |
287 | objfile->name = mstrsave (objfile->md, bfd_get_filename (abfd)); |
288 | objfile->mtime = bfd_get_mtime (abfd); | |
c906108c SS |
289 | |
290 | /* Build section table. */ | |
291 | ||
292 | if (build_objfile_section_table (objfile)) | |
293 | { | |
c5aa993b JM |
294 | error ("Can't find the file sections in `%s': %s", |
295 | objfile->name, bfd_errmsg (bfd_get_error ())); | |
c906108c SS |
296 | } |
297 | } | |
298 | ||
b8fbeb18 EZ |
299 | /* Initialize the section indexes for this objfile, so that we can |
300 | later detect if they are used w/o being properly assigned to. */ | |
301 | ||
302 | objfile->sect_index_text = -1; | |
303 | objfile->sect_index_data = -1; | |
304 | objfile->sect_index_bss = -1; | |
305 | objfile->sect_index_rodata = -1; | |
306 | ||
c906108c SS |
307 | /* Add this file onto the tail of the linked list of other such files. */ |
308 | ||
c5aa993b | 309 | objfile->next = NULL; |
c906108c SS |
310 | if (object_files == NULL) |
311 | object_files = objfile; | |
312 | else | |
313 | { | |
314 | for (last_one = object_files; | |
c5aa993b JM |
315 | last_one->next; |
316 | last_one = last_one->next); | |
317 | last_one->next = objfile; | |
c906108c SS |
318 | } |
319 | ||
2df3850c JM |
320 | /* Save passed in flag bits. */ |
321 | objfile->flags |= flags; | |
c906108c SS |
322 | |
323 | return (objfile); | |
324 | } | |
325 | ||
326 | /* Put OBJFILE at the front of the list. */ | |
327 | ||
328 | void | |
fba45db2 | 329 | objfile_to_front (struct objfile *objfile) |
c906108c SS |
330 | { |
331 | struct objfile **objp; | |
332 | for (objp = &object_files; *objp != NULL; objp = &((*objp)->next)) | |
333 | { | |
334 | if (*objp == objfile) | |
335 | { | |
336 | /* Unhook it from where it is. */ | |
337 | *objp = objfile->next; | |
338 | /* Put it in the front. */ | |
339 | objfile->next = object_files; | |
340 | object_files = objfile; | |
341 | break; | |
342 | } | |
343 | } | |
344 | } | |
345 | ||
346 | /* Unlink OBJFILE from the list of known objfiles, if it is found in the | |
347 | list. | |
348 | ||
349 | It is not a bug, or error, to call this function if OBJFILE is not known | |
350 | to be in the current list. This is done in the case of mapped objfiles, | |
351 | for example, just to ensure that the mapped objfile doesn't appear twice | |
352 | in the list. Since the list is threaded, linking in a mapped objfile | |
353 | twice would create a circular list. | |
354 | ||
355 | If OBJFILE turns out to be in the list, we zap it's NEXT pointer after | |
356 | unlinking it, just to ensure that we have completely severed any linkages | |
357 | between the OBJFILE and the list. */ | |
358 | ||
359 | void | |
fba45db2 | 360 | unlink_objfile (struct objfile *objfile) |
c906108c | 361 | { |
c5aa993b | 362 | struct objfile **objpp; |
c906108c | 363 | |
c5aa993b | 364 | for (objpp = &object_files; *objpp != NULL; objpp = &((*objpp)->next)) |
c906108c | 365 | { |
c5aa993b | 366 | if (*objpp == objfile) |
c906108c | 367 | { |
c5aa993b JM |
368 | *objpp = (*objpp)->next; |
369 | objfile->next = NULL; | |
07cd4b97 | 370 | return; |
c906108c SS |
371 | } |
372 | } | |
07cd4b97 | 373 | |
8e65ff28 AC |
374 | internal_error (__FILE__, __LINE__, |
375 | "unlink_objfile: objfile already unlinked"); | |
c906108c SS |
376 | } |
377 | ||
378 | ||
379 | /* Destroy an objfile and all the symtabs and psymtabs under it. Note | |
380 | that as much as possible is allocated on the symbol_obstack and | |
381 | psymbol_obstack, so that the memory can be efficiently freed. | |
382 | ||
383 | Things which we do NOT free because they are not in malloc'd memory | |
384 | or not in memory specific to the objfile include: | |
385 | ||
c5aa993b | 386 | objfile -> sf |
c906108c SS |
387 | |
388 | FIXME: If the objfile is using reusable symbol information (via mmalloc), | |
389 | then we need to take into account the fact that more than one process | |
390 | may be using the symbol information at the same time (when mmalloc is | |
391 | extended to support cooperative locking). When more than one process | |
392 | is using the mapped symbol info, we need to be more careful about when | |
393 | we free objects in the reusable area. */ | |
394 | ||
395 | void | |
fba45db2 | 396 | free_objfile (struct objfile *objfile) |
c906108c SS |
397 | { |
398 | /* First do any symbol file specific actions required when we are | |
399 | finished with a particular symbol file. Note that if the objfile | |
400 | is using reusable symbol information (via mmalloc) then each of | |
401 | these routines is responsible for doing the correct thing, either | |
402 | freeing things which are valid only during this particular gdb | |
403 | execution, or leaving them to be reused during the next one. */ | |
404 | ||
c5aa993b | 405 | if (objfile->sf != NULL) |
c906108c | 406 | { |
c5aa993b | 407 | (*objfile->sf->sym_finish) (objfile); |
c906108c SS |
408 | } |
409 | ||
410 | /* We always close the bfd. */ | |
411 | ||
c5aa993b | 412 | if (objfile->obfd != NULL) |
c906108c SS |
413 | { |
414 | char *name = bfd_get_filename (objfile->obfd); | |
c5aa993b | 415 | if (!bfd_close (objfile->obfd)) |
c906108c SS |
416 | warning ("cannot close \"%s\": %s", |
417 | name, bfd_errmsg (bfd_get_error ())); | |
b8c9b27d | 418 | xfree (name); |
c906108c SS |
419 | } |
420 | ||
421 | /* Remove it from the chain of all objfiles. */ | |
422 | ||
423 | unlink_objfile (objfile); | |
424 | ||
425 | /* If we are going to free the runtime common objfile, mark it | |
426 | as unallocated. */ | |
427 | ||
428 | if (objfile == rt_common_objfile) | |
429 | rt_common_objfile = NULL; | |
430 | ||
431 | /* Before the symbol table code was redone to make it easier to | |
432 | selectively load and remove information particular to a specific | |
433 | linkage unit, gdb used to do these things whenever the monolithic | |
434 | symbol table was blown away. How much still needs to be done | |
435 | is unknown, but we play it safe for now and keep each action until | |
436 | it is shown to be no longer needed. */ | |
c5aa993b | 437 | |
c906108c SS |
438 | /* I *think* all our callers call clear_symtab_users. If so, no need |
439 | to call this here. */ | |
440 | clear_pc_function_cache (); | |
441 | ||
442 | /* The last thing we do is free the objfile struct itself for the | |
443 | non-reusable case, or detach from the mapped file for the reusable | |
444 | case. Note that the mmalloc_detach or the mfree is the last thing | |
445 | we can do with this objfile. */ | |
446 | ||
447 | #if defined(USE_MMALLOC) && defined(HAVE_MMAP) | |
448 | ||
c5aa993b | 449 | if (objfile->flags & OBJF_MAPPED) |
c906108c SS |
450 | { |
451 | /* Remember the fd so we can close it. We can't close it before | |
c5aa993b | 452 | doing the detach, and after the detach the objfile is gone. */ |
c906108c SS |
453 | int mmfd; |
454 | ||
c5aa993b JM |
455 | mmfd = objfile->mmfd; |
456 | mmalloc_detach (objfile->md); | |
c906108c SS |
457 | objfile = NULL; |
458 | close (mmfd); | |
459 | } | |
460 | ||
c5aa993b | 461 | #endif /* defined(USE_MMALLOC) && defined(HAVE_MMAP) */ |
c906108c SS |
462 | |
463 | /* If we still have an objfile, then either we don't support reusable | |
464 | objfiles or this one was not reusable. So free it normally. */ | |
465 | ||
466 | if (objfile != NULL) | |
467 | { | |
c5aa993b | 468 | if (objfile->name != NULL) |
c906108c | 469 | { |
c5aa993b | 470 | mfree (objfile->md, objfile->name); |
c906108c SS |
471 | } |
472 | if (objfile->global_psymbols.list) | |
473 | mfree (objfile->md, objfile->global_psymbols.list); | |
474 | if (objfile->static_psymbols.list) | |
475 | mfree (objfile->md, objfile->static_psymbols.list); | |
476 | /* Free the obstacks for non-reusable objfiles */ | |
c2d11a7d | 477 | free_bcache (&objfile->psymbol_cache); |
c5aa993b JM |
478 | obstack_free (&objfile->psymbol_obstack, 0); |
479 | obstack_free (&objfile->symbol_obstack, 0); | |
480 | obstack_free (&objfile->type_obstack, 0); | |
481 | mfree (objfile->md, objfile); | |
c906108c SS |
482 | objfile = NULL; |
483 | } | |
484 | } | |
485 | ||
74b7792f AC |
486 | static void |
487 | do_free_objfile_cleanup (void *obj) | |
488 | { | |
489 | free_objfile (obj); | |
490 | } | |
491 | ||
492 | struct cleanup * | |
493 | make_cleanup_free_objfile (struct objfile *obj) | |
494 | { | |
495 | return make_cleanup (do_free_objfile_cleanup, obj); | |
496 | } | |
c906108c SS |
497 | |
498 | /* Free all the object files at once and clean up their users. */ | |
499 | ||
500 | void | |
fba45db2 | 501 | free_all_objfiles (void) |
c906108c SS |
502 | { |
503 | struct objfile *objfile, *temp; | |
504 | ||
505 | ALL_OBJFILES_SAFE (objfile, temp) | |
c5aa993b JM |
506 | { |
507 | free_objfile (objfile); | |
508 | } | |
c906108c SS |
509 | clear_symtab_users (); |
510 | } | |
511 | \f | |
512 | /* Relocate OBJFILE to NEW_OFFSETS. There should be OBJFILE->NUM_SECTIONS | |
513 | entries in new_offsets. */ | |
514 | void | |
fba45db2 | 515 | objfile_relocate (struct objfile *objfile, struct section_offsets *new_offsets) |
c906108c | 516 | { |
d4f3574e SS |
517 | struct section_offsets *delta = |
518 | (struct section_offsets *) alloca (SIZEOF_SECTION_OFFSETS); | |
c906108c SS |
519 | |
520 | { | |
521 | int i; | |
522 | int something_changed = 0; | |
523 | for (i = 0; i < objfile->num_sections; ++i) | |
524 | { | |
a4c8257b | 525 | delta->offsets[i] = |
c906108c SS |
526 | ANOFFSET (new_offsets, i) - ANOFFSET (objfile->section_offsets, i); |
527 | if (ANOFFSET (delta, i) != 0) | |
528 | something_changed = 1; | |
529 | } | |
530 | if (!something_changed) | |
531 | return; | |
532 | } | |
533 | ||
534 | /* OK, get all the symtabs. */ | |
535 | { | |
536 | struct symtab *s; | |
537 | ||
538 | ALL_OBJFILE_SYMTABS (objfile, s) | |
c5aa993b JM |
539 | { |
540 | struct linetable *l; | |
541 | struct blockvector *bv; | |
542 | int i; | |
543 | ||
544 | /* First the line table. */ | |
545 | l = LINETABLE (s); | |
546 | if (l) | |
547 | { | |
548 | for (i = 0; i < l->nitems; ++i) | |
549 | l->item[i].pc += ANOFFSET (delta, s->block_line_section); | |
550 | } | |
c906108c | 551 | |
c5aa993b JM |
552 | /* Don't relocate a shared blockvector more than once. */ |
553 | if (!s->primary) | |
554 | continue; | |
c906108c | 555 | |
c5aa993b JM |
556 | bv = BLOCKVECTOR (s); |
557 | for (i = 0; i < BLOCKVECTOR_NBLOCKS (bv); ++i) | |
558 | { | |
559 | struct block *b; | |
e88c90f2 | 560 | struct symbol *sym; |
c5aa993b JM |
561 | int j; |
562 | ||
563 | b = BLOCKVECTOR_BLOCK (bv, i); | |
564 | BLOCK_START (b) += ANOFFSET (delta, s->block_line_section); | |
565 | BLOCK_END (b) += ANOFFSET (delta, s->block_line_section); | |
566 | ||
e88c90f2 | 567 | ALL_BLOCK_SYMBOLS (b, j, sym) |
c5aa993b | 568 | { |
7a78d0ee KB |
569 | fixup_symbol_section (sym, objfile); |
570 | ||
c5aa993b JM |
571 | /* The RS6000 code from which this was taken skipped |
572 | any symbols in STRUCT_NAMESPACE or UNDEF_NAMESPACE. | |
573 | But I'm leaving out that test, on the theory that | |
574 | they can't possibly pass the tests below. */ | |
575 | if ((SYMBOL_CLASS (sym) == LOC_LABEL | |
576 | || SYMBOL_CLASS (sym) == LOC_STATIC | |
577 | || SYMBOL_CLASS (sym) == LOC_INDIRECT) | |
578 | && SYMBOL_SECTION (sym) >= 0) | |
579 | { | |
580 | SYMBOL_VALUE_ADDRESS (sym) += | |
581 | ANOFFSET (delta, SYMBOL_SECTION (sym)); | |
582 | } | |
c906108c | 583 | #ifdef MIPS_EFI_SYMBOL_NAME |
c5aa993b | 584 | /* Relocate Extra Function Info for ecoff. */ |
c906108c | 585 | |
c5aa993b JM |
586 | else if (SYMBOL_CLASS (sym) == LOC_CONST |
587 | && SYMBOL_NAMESPACE (sym) == LABEL_NAMESPACE | |
494b7ec9 | 588 | && strcmp (SYMBOL_NAME (sym), MIPS_EFI_SYMBOL_NAME) == 0) |
c5aa993b | 589 | ecoff_relocate_efi (sym, ANOFFSET (delta, |
c906108c SS |
590 | s->block_line_section)); |
591 | #endif | |
c5aa993b JM |
592 | } |
593 | } | |
594 | } | |
c906108c SS |
595 | } |
596 | ||
597 | { | |
598 | struct partial_symtab *p; | |
599 | ||
600 | ALL_OBJFILE_PSYMTABS (objfile, p) | |
c5aa993b | 601 | { |
b8fbeb18 EZ |
602 | p->textlow += ANOFFSET (delta, SECT_OFF_TEXT (objfile)); |
603 | p->texthigh += ANOFFSET (delta, SECT_OFF_TEXT (objfile)); | |
c5aa993b | 604 | } |
c906108c SS |
605 | } |
606 | ||
607 | { | |
608 | struct partial_symbol **psym; | |
609 | ||
610 | for (psym = objfile->global_psymbols.list; | |
611 | psym < objfile->global_psymbols.next; | |
612 | psym++) | |
7a78d0ee KB |
613 | { |
614 | fixup_psymbol_section (*psym, objfile); | |
615 | if (SYMBOL_SECTION (*psym) >= 0) | |
616 | SYMBOL_VALUE_ADDRESS (*psym) += ANOFFSET (delta, | |
617 | SYMBOL_SECTION (*psym)); | |
618 | } | |
c906108c SS |
619 | for (psym = objfile->static_psymbols.list; |
620 | psym < objfile->static_psymbols.next; | |
621 | psym++) | |
7a78d0ee KB |
622 | { |
623 | fixup_psymbol_section (*psym, objfile); | |
624 | if (SYMBOL_SECTION (*psym) >= 0) | |
625 | SYMBOL_VALUE_ADDRESS (*psym) += ANOFFSET (delta, | |
626 | SYMBOL_SECTION (*psym)); | |
627 | } | |
c906108c SS |
628 | } |
629 | ||
630 | { | |
631 | struct minimal_symbol *msym; | |
632 | ALL_OBJFILE_MSYMBOLS (objfile, msym) | |
633 | if (SYMBOL_SECTION (msym) >= 0) | |
c5aa993b | 634 | SYMBOL_VALUE_ADDRESS (msym) += ANOFFSET (delta, SYMBOL_SECTION (msym)); |
c906108c SS |
635 | } |
636 | /* Relocating different sections by different amounts may cause the symbols | |
637 | to be out of order. */ | |
638 | msymbols_sort (objfile); | |
639 | ||
640 | { | |
641 | int i; | |
642 | for (i = 0; i < objfile->num_sections; ++i) | |
a4c8257b | 643 | (objfile->section_offsets)->offsets[i] = ANOFFSET (new_offsets, i); |
c906108c SS |
644 | } |
645 | ||
36b0c0e0 PS |
646 | if (objfile->ei.entry_point != ~(CORE_ADDR) 0) |
647 | { | |
648 | /* Relocate ei.entry_point with its section offset, use SECT_OFF_TEXT | |
649 | only as a fallback. */ | |
650 | struct obj_section *s; | |
651 | s = find_pc_section (objfile->ei.entry_point); | |
652 | if (s) | |
653 | objfile->ei.entry_point += ANOFFSET (delta, s->the_bfd_section->index); | |
654 | else | |
655 | objfile->ei.entry_point += ANOFFSET (delta, SECT_OFF_TEXT (objfile)); | |
656 | } | |
657 | ||
c906108c SS |
658 | { |
659 | struct obj_section *s; | |
660 | bfd *abfd; | |
661 | ||
662 | abfd = objfile->obfd; | |
663 | ||
96baa820 | 664 | ALL_OBJFILE_OSECTIONS (objfile, s) |
c906108c | 665 | { |
78f0949b KB |
666 | int idx = s->the_bfd_section->index; |
667 | ||
668 | s->addr += ANOFFSET (delta, idx); | |
669 | s->endaddr += ANOFFSET (delta, idx); | |
c906108c SS |
670 | } |
671 | } | |
672 | ||
c906108c SS |
673 | if (objfile->ei.entry_func_lowpc != INVALID_ENTRY_LOWPC) |
674 | { | |
b8fbeb18 EZ |
675 | objfile->ei.entry_func_lowpc += ANOFFSET (delta, SECT_OFF_TEXT (objfile)); |
676 | objfile->ei.entry_func_highpc += ANOFFSET (delta, SECT_OFF_TEXT (objfile)); | |
c906108c SS |
677 | } |
678 | ||
679 | if (objfile->ei.entry_file_lowpc != INVALID_ENTRY_LOWPC) | |
680 | { | |
b8fbeb18 EZ |
681 | objfile->ei.entry_file_lowpc += ANOFFSET (delta, SECT_OFF_TEXT (objfile)); |
682 | objfile->ei.entry_file_highpc += ANOFFSET (delta, SECT_OFF_TEXT (objfile)); | |
c906108c SS |
683 | } |
684 | ||
685 | if (objfile->ei.main_func_lowpc != INVALID_ENTRY_LOWPC) | |
686 | { | |
b8fbeb18 EZ |
687 | objfile->ei.main_func_lowpc += ANOFFSET (delta, SECT_OFF_TEXT (objfile)); |
688 | objfile->ei.main_func_highpc += ANOFFSET (delta, SECT_OFF_TEXT (objfile)); | |
c906108c SS |
689 | } |
690 | ||
691 | /* Relocate breakpoints as necessary, after things are relocated. */ | |
692 | breakpoint_re_set (); | |
693 | } | |
694 | \f | |
695 | /* Many places in gdb want to test just to see if we have any partial | |
696 | symbols available. This function returns zero if none are currently | |
697 | available, nonzero otherwise. */ | |
698 | ||
699 | int | |
fba45db2 | 700 | have_partial_symbols (void) |
c906108c SS |
701 | { |
702 | struct objfile *ofp; | |
703 | ||
704 | ALL_OBJFILES (ofp) | |
c5aa993b JM |
705 | { |
706 | if (ofp->psymtabs != NULL) | |
707 | { | |
708 | return 1; | |
709 | } | |
710 | } | |
c906108c SS |
711 | return 0; |
712 | } | |
713 | ||
714 | /* Many places in gdb want to test just to see if we have any full | |
715 | symbols available. This function returns zero if none are currently | |
716 | available, nonzero otherwise. */ | |
717 | ||
718 | int | |
fba45db2 | 719 | have_full_symbols (void) |
c906108c SS |
720 | { |
721 | struct objfile *ofp; | |
722 | ||
723 | ALL_OBJFILES (ofp) | |
c5aa993b JM |
724 | { |
725 | if (ofp->symtabs != NULL) | |
726 | { | |
727 | return 1; | |
728 | } | |
729 | } | |
c906108c SS |
730 | return 0; |
731 | } | |
732 | ||
733 | ||
734 | /* This operations deletes all objfile entries that represent solibs that | |
735 | weren't explicitly loaded by the user, via e.g., the add-symbol-file | |
736 | command. | |
c5aa993b | 737 | */ |
c906108c | 738 | void |
fba45db2 | 739 | objfile_purge_solibs (void) |
c906108c | 740 | { |
c5aa993b JM |
741 | struct objfile *objf; |
742 | struct objfile *temp; | |
c906108c SS |
743 | |
744 | ALL_OBJFILES_SAFE (objf, temp) | |
745 | { | |
746 | /* We assume that the solib package has been purged already, or will | |
747 | be soon. | |
c5aa993b | 748 | */ |
2df3850c | 749 | if (!(objf->flags & OBJF_USERLOADED) && (objf->flags & OBJF_SHARED)) |
c906108c SS |
750 | free_objfile (objf); |
751 | } | |
752 | } | |
753 | ||
754 | ||
755 | /* Many places in gdb want to test just to see if we have any minimal | |
756 | symbols available. This function returns zero if none are currently | |
757 | available, nonzero otherwise. */ | |
758 | ||
759 | int | |
fba45db2 | 760 | have_minimal_symbols (void) |
c906108c SS |
761 | { |
762 | struct objfile *ofp; | |
763 | ||
764 | ALL_OBJFILES (ofp) | |
c5aa993b JM |
765 | { |
766 | if (ofp->msymbols != NULL) | |
767 | { | |
768 | return 1; | |
769 | } | |
770 | } | |
c906108c SS |
771 | return 0; |
772 | } | |
773 | ||
774 | #if defined(USE_MMALLOC) && defined(HAVE_MMAP) | |
775 | ||
776 | /* Given the name of a mapped symbol file in SYMSFILENAME, and the timestamp | |
777 | of the corresponding symbol file in MTIME, try to open an existing file | |
778 | with the name SYMSFILENAME and verify it is more recent than the base | |
779 | file by checking it's timestamp against MTIME. | |
780 | ||
781 | If SYMSFILENAME does not exist (or can't be stat'd), simply returns -1. | |
782 | ||
783 | If SYMSFILENAME does exist, but is out of date, we check to see if the | |
784 | user has specified creation of a mapped file. If so, we don't issue | |
785 | any warning message because we will be creating a new mapped file anyway, | |
786 | overwriting the old one. If not, then we issue a warning message so that | |
787 | the user will know why we aren't using this existing mapped symbol file. | |
788 | In either case, we return -1. | |
789 | ||
790 | If SYMSFILENAME does exist and is not out of date, but can't be opened for | |
791 | some reason, then prints an appropriate system error message and returns -1. | |
792 | ||
793 | Otherwise, returns the open file descriptor. */ | |
794 | ||
795 | static int | |
fba45db2 | 796 | open_existing_mapped_file (char *symsfilename, long mtime, int flags) |
c906108c SS |
797 | { |
798 | int fd = -1; | |
799 | struct stat sbuf; | |
800 | ||
801 | if (stat (symsfilename, &sbuf) == 0) | |
802 | { | |
803 | if (sbuf.st_mtime < mtime) | |
804 | { | |
2df3850c | 805 | if (!(flags & OBJF_MAPPED)) |
c906108c SS |
806 | { |
807 | warning ("mapped symbol file `%s' is out of date, ignored it", | |
808 | symsfilename); | |
809 | } | |
810 | } | |
811 | else if ((fd = open (symsfilename, O_RDWR)) < 0) | |
812 | { | |
813 | if (error_pre_print) | |
814 | { | |
815 | printf_unfiltered (error_pre_print); | |
816 | } | |
817 | print_sys_errmsg (symsfilename, errno); | |
818 | } | |
819 | } | |
820 | return (fd); | |
821 | } | |
822 | ||
823 | /* Look for a mapped symbol file that corresponds to FILENAME and is more | |
824 | recent than MTIME. If MAPPED is nonzero, the user has asked that gdb | |
825 | use a mapped symbol file for this file, so create a new one if one does | |
826 | not currently exist. | |
827 | ||
828 | If found, then return an open file descriptor for the file, otherwise | |
829 | return -1. | |
830 | ||
831 | This routine is responsible for implementing the policy that generates | |
832 | the name of the mapped symbol file from the name of a file containing | |
833 | symbols that gdb would like to read. Currently this policy is to append | |
834 | ".syms" to the name of the file. | |
835 | ||
836 | This routine is also responsible for implementing the policy that | |
837 | determines where the mapped symbol file is found (the search path). | |
838 | This policy is that when reading an existing mapped file, a file of | |
839 | the correct name in the current directory takes precedence over a | |
840 | file of the correct name in the same directory as the symbol file. | |
841 | When creating a new mapped file, it is always created in the current | |
842 | directory. This helps to minimize the chances of a user unknowingly | |
843 | creating big mapped files in places like /bin and /usr/local/bin, and | |
844 | allows a local copy to override a manually installed global copy (in | |
845 | /bin for example). */ | |
846 | ||
847 | static int | |
fba45db2 | 848 | open_mapped_file (char *filename, long mtime, int flags) |
c906108c SS |
849 | { |
850 | int fd; | |
851 | char *symsfilename; | |
852 | ||
853 | /* First try to open an existing file in the current directory, and | |
854 | then try the directory where the symbol file is located. */ | |
855 | ||
bdda63b0 | 856 | symsfilename = concat ("./", lbasename (filename), ".syms", (char *) NULL); |
2df3850c | 857 | if ((fd = open_existing_mapped_file (symsfilename, mtime, flags)) < 0) |
c906108c | 858 | { |
b8c9b27d | 859 | xfree (symsfilename); |
c906108c | 860 | symsfilename = concat (filename, ".syms", (char *) NULL); |
2fc18c15 | 861 | fd = open_existing_mapped_file (symsfilename, mtime, flags); |
c906108c SS |
862 | } |
863 | ||
864 | /* If we don't have an open file by now, then either the file does not | |
865 | already exist, or the base file has changed since it was created. In | |
866 | either case, if the user has specified use of a mapped file, then | |
867 | create a new mapped file, truncating any existing one. If we can't | |
868 | create one, print a system error message saying why we can't. | |
869 | ||
870 | By default the file is rw for everyone, with the user's umask taking | |
871 | care of turning off the permissions the user wants off. */ | |
872 | ||
2fc18c15 | 873 | if ((fd < 0) && (flags & OBJF_MAPPED)) |
c906108c | 874 | { |
b8c9b27d | 875 | xfree (symsfilename); |
bdda63b0 | 876 | symsfilename = concat ("./", lbasename (filename), ".syms", |
c906108c SS |
877 | (char *) NULL); |
878 | if ((fd = open (symsfilename, O_RDWR | O_CREAT | O_TRUNC, 0666)) < 0) | |
879 | { | |
880 | if (error_pre_print) | |
881 | { | |
882 | printf_unfiltered (error_pre_print); | |
883 | } | |
884 | print_sys_errmsg (symsfilename, errno); | |
885 | } | |
886 | } | |
887 | ||
b8c9b27d | 888 | xfree (symsfilename); |
c906108c SS |
889 | return (fd); |
890 | } | |
891 | ||
892 | static PTR | |
fba45db2 | 893 | map_to_file (int fd) |
c906108c SS |
894 | { |
895 | PTR md; | |
896 | CORE_ADDR mapto; | |
897 | ||
898 | md = mmalloc_attach (fd, (PTR) 0); | |
899 | if (md != NULL) | |
900 | { | |
901 | mapto = (CORE_ADDR) mmalloc_getkey (md, 1); | |
902 | md = mmalloc_detach (md); | |
903 | if (md != NULL) | |
904 | { | |
905 | /* FIXME: should figure out why detach failed */ | |
906 | md = NULL; | |
907 | } | |
908 | else if (mapto != (CORE_ADDR) NULL) | |
909 | { | |
910 | /* This mapping file needs to be remapped at "mapto" */ | |
911 | md = mmalloc_attach (fd, (PTR) mapto); | |
912 | } | |
913 | else | |
914 | { | |
915 | /* This is a freshly created mapping file. */ | |
916 | mapto = (CORE_ADDR) mmalloc_findbase (20 * 1024 * 1024); | |
917 | if (mapto != 0) | |
918 | { | |
919 | /* To avoid reusing the freshly created mapping file, at the | |
c5aa993b JM |
920 | address selected by mmap, we must truncate it before trying |
921 | to do an attach at the address we want. */ | |
c906108c SS |
922 | ftruncate (fd, 0); |
923 | md = mmalloc_attach (fd, (PTR) mapto); | |
924 | if (md != NULL) | |
925 | { | |
926 | mmalloc_setkey (md, 1, (PTR) mapto); | |
927 | } | |
928 | } | |
929 | } | |
930 | } | |
931 | return (md); | |
932 | } | |
933 | ||
c5aa993b | 934 | #endif /* defined(USE_MMALLOC) && defined(HAVE_MMAP) */ |
c906108c SS |
935 | |
936 | /* Returns a section whose range includes PC and SECTION, | |
937 | or NULL if none found. Note the distinction between the return type, | |
938 | struct obj_section (which is defined in gdb), and the input type | |
939 | struct sec (which is a bfd-defined data type). The obj_section | |
940 | contains a pointer to the bfd struct sec section. */ | |
941 | ||
942 | struct obj_section * | |
fba45db2 | 943 | find_pc_sect_section (CORE_ADDR pc, struct sec *section) |
c906108c SS |
944 | { |
945 | struct obj_section *s; | |
946 | struct objfile *objfile; | |
c5aa993b | 947 | |
96baa820 | 948 | ALL_OBJSECTIONS (objfile, s) |
c5aa993b JM |
949 | if ((section == 0 || section == s->the_bfd_section) && |
950 | s->addr <= pc && pc < s->endaddr) | |
c5aa993b | 951 | return (s); |
c906108c | 952 | |
c5aa993b | 953 | return (NULL); |
c906108c SS |
954 | } |
955 | ||
956 | /* Returns a section whose range includes PC or NULL if none found. | |
957 | Backward compatibility, no section. */ | |
958 | ||
959 | struct obj_section * | |
fba45db2 | 960 | find_pc_section (CORE_ADDR pc) |
c906108c SS |
961 | { |
962 | return find_pc_sect_section (pc, find_pc_mapped_section (pc)); | |
963 | } | |
c5aa993b | 964 | |
c906108c SS |
965 | |
966 | /* In SVR4, we recognize a trampoline by it's section name. | |
967 | That is, if the pc is in a section named ".plt" then we are in | |
968 | a trampoline. */ | |
969 | ||
970 | int | |
fba45db2 | 971 | in_plt_section (CORE_ADDR pc, char *name) |
c906108c SS |
972 | { |
973 | struct obj_section *s; | |
974 | int retval = 0; | |
c5aa993b JM |
975 | |
976 | s = find_pc_section (pc); | |
977 | ||
c906108c SS |
978 | retval = (s != NULL |
979 | && s->the_bfd_section->name != NULL | |
980 | && STREQ (s->the_bfd_section->name, ".plt")); | |
c5aa993b | 981 | return (retval); |
c906108c | 982 | } |
7be570e7 JM |
983 | |
984 | /* Return nonzero if NAME is in the import list of OBJFILE. Else | |
985 | return zero. */ | |
986 | ||
987 | int | |
fba45db2 | 988 | is_in_import_list (char *name, struct objfile *objfile) |
7be570e7 JM |
989 | { |
990 | register int i; | |
991 | ||
992 | if (!objfile || !name || !*name) | |
993 | return 0; | |
994 | ||
995 | for (i = 0; i < objfile->import_list_size; i++) | |
996 | if (objfile->import_list[i] && STREQ (name, objfile->import_list[i])) | |
997 | return 1; | |
998 | return 0; | |
999 | } | |
1000 |