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c4d10515 | 1 | /* Handle FR-V (FDPIC) shared libraries for GDB, the GNU Debugger. |
0fb0cc75 | 2 | Copyright (C) 2004, 2007, 2008, 2009 Free Software Foundation, Inc. |
c4d10515 KB |
3 | |
4 | This file is part of GDB. | |
5 | ||
6 | This program is free software; you can redistribute it and/or modify | |
7 | it under the terms of the GNU General Public License as published by | |
a9762ec7 | 8 | the Free Software Foundation; either version 3 of the License, or |
c4d10515 KB |
9 | (at your option) any later version. |
10 | ||
11 | This program is distributed in the hope that it will be useful, | |
12 | but WITHOUT ANY WARRANTY; without even the implied warranty of | |
13 | MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the | |
14 | GNU General Public License for more details. | |
15 | ||
16 | You should have received a copy of the GNU General Public License | |
a9762ec7 | 17 | along with this program. If not, see <http://www.gnu.org/licenses/>. */ |
c4d10515 KB |
18 | |
19 | ||
20 | #include "defs.h" | |
21 | #include "gdb_string.h" | |
22 | #include "inferior.h" | |
23 | #include "gdbcore.h" | |
cb5c8c39 | 24 | #include "solib.h" |
c4d10515 KB |
25 | #include "solist.h" |
26 | #include "frv-tdep.h" | |
27 | #include "objfiles.h" | |
28 | #include "symtab.h" | |
29 | #include "language.h" | |
30 | #include "command.h" | |
31 | #include "gdbcmd.h" | |
32 | #include "elf/frv.h" | |
f1838a98 | 33 | #include "exceptions.h" |
c4d10515 KB |
34 | |
35 | /* Flag which indicates whether internal debug messages should be printed. */ | |
36 | static int solib_frv_debug; | |
37 | ||
38 | /* FR-V pointers are four bytes wide. */ | |
39 | enum { FRV_PTR_SIZE = 4 }; | |
40 | ||
41 | /* Representation of loadmap and related structs for the FR-V FDPIC ABI. */ | |
42 | ||
43 | /* External versions; the size and alignment of the fields should be | |
44 | the same as those on the target. When loaded, the placement of | |
45 | the bits in each field will be the same as on the target. */ | |
e2b7c966 KB |
46 | typedef gdb_byte ext_Elf32_Half[2]; |
47 | typedef gdb_byte ext_Elf32_Addr[4]; | |
48 | typedef gdb_byte ext_Elf32_Word[4]; | |
c4d10515 KB |
49 | |
50 | struct ext_elf32_fdpic_loadseg | |
51 | { | |
52 | /* Core address to which the segment is mapped. */ | |
53 | ext_Elf32_Addr addr; | |
54 | /* VMA recorded in the program header. */ | |
55 | ext_Elf32_Addr p_vaddr; | |
56 | /* Size of this segment in memory. */ | |
57 | ext_Elf32_Word p_memsz; | |
58 | }; | |
59 | ||
60 | struct ext_elf32_fdpic_loadmap { | |
61 | /* Protocol version number, must be zero. */ | |
62 | ext_Elf32_Half version; | |
63 | /* Number of segments in this map. */ | |
64 | ext_Elf32_Half nsegs; | |
65 | /* The actual memory map. */ | |
66 | struct ext_elf32_fdpic_loadseg segs[1 /* nsegs, actually */]; | |
67 | }; | |
68 | ||
69 | /* Internal versions; the types are GDB types and the data in each | |
70 | of the fields is (or will be) decoded from the external struct | |
71 | for ease of consumption. */ | |
72 | struct int_elf32_fdpic_loadseg | |
73 | { | |
74 | /* Core address to which the segment is mapped. */ | |
75 | CORE_ADDR addr; | |
76 | /* VMA recorded in the program header. */ | |
77 | CORE_ADDR p_vaddr; | |
78 | /* Size of this segment in memory. */ | |
79 | long p_memsz; | |
80 | }; | |
81 | ||
82 | struct int_elf32_fdpic_loadmap { | |
83 | /* Protocol version number, must be zero. */ | |
84 | int version; | |
85 | /* Number of segments in this map. */ | |
86 | int nsegs; | |
87 | /* The actual memory map. */ | |
88 | struct int_elf32_fdpic_loadseg segs[1 /* nsegs, actually */]; | |
89 | }; | |
90 | ||
91 | /* Given address LDMADDR, fetch and decode the loadmap at that address. | |
92 | Return NULL if there is a problem reading the target memory or if | |
93 | there doesn't appear to be a loadmap at the given address. The | |
94 | allocated space (representing the loadmap) returned by this | |
95 | function may be freed via a single call to xfree(). */ | |
96 | ||
97 | static struct int_elf32_fdpic_loadmap * | |
98 | fetch_loadmap (CORE_ADDR ldmaddr) | |
99 | { | |
100 | struct ext_elf32_fdpic_loadmap ext_ldmbuf_partial; | |
101 | struct ext_elf32_fdpic_loadmap *ext_ldmbuf; | |
102 | struct int_elf32_fdpic_loadmap *int_ldmbuf; | |
103 | int ext_ldmbuf_size, int_ldmbuf_size; | |
104 | int version, seg, nsegs; | |
105 | ||
106 | /* Fetch initial portion of the loadmap. */ | |
e2b7c966 | 107 | if (target_read_memory (ldmaddr, (gdb_byte *) &ext_ldmbuf_partial, |
c4d10515 KB |
108 | sizeof ext_ldmbuf_partial)) |
109 | { | |
110 | /* Problem reading the target's memory. */ | |
111 | return NULL; | |
112 | } | |
113 | ||
114 | /* Extract the version. */ | |
e2b7c966 | 115 | version = extract_unsigned_integer (ext_ldmbuf_partial.version, |
c4d10515 KB |
116 | sizeof ext_ldmbuf_partial.version); |
117 | if (version != 0) | |
118 | { | |
119 | /* We only handle version 0. */ | |
120 | return NULL; | |
121 | } | |
122 | ||
123 | /* Extract the number of segments. */ | |
e2b7c966 | 124 | nsegs = extract_unsigned_integer (ext_ldmbuf_partial.nsegs, |
c4d10515 KB |
125 | sizeof ext_ldmbuf_partial.nsegs); |
126 | ||
9bc7b6c6 KB |
127 | if (nsegs <= 0) |
128 | return NULL; | |
129 | ||
c4d10515 KB |
130 | /* Allocate space for the complete (external) loadmap. */ |
131 | ext_ldmbuf_size = sizeof (struct ext_elf32_fdpic_loadmap) | |
132 | + (nsegs - 1) * sizeof (struct ext_elf32_fdpic_loadseg); | |
133 | ext_ldmbuf = xmalloc (ext_ldmbuf_size); | |
134 | ||
135 | /* Copy over the portion of the loadmap that's already been read. */ | |
136 | memcpy (ext_ldmbuf, &ext_ldmbuf_partial, sizeof ext_ldmbuf_partial); | |
137 | ||
138 | /* Read the rest of the loadmap from the target. */ | |
139 | if (target_read_memory (ldmaddr + sizeof ext_ldmbuf_partial, | |
e2b7c966 | 140 | (gdb_byte *) ext_ldmbuf + sizeof ext_ldmbuf_partial, |
c4d10515 KB |
141 | ext_ldmbuf_size - sizeof ext_ldmbuf_partial)) |
142 | { | |
143 | /* Couldn't read rest of the loadmap. */ | |
144 | xfree (ext_ldmbuf); | |
145 | return NULL; | |
146 | } | |
147 | ||
148 | /* Allocate space into which to put information extract from the | |
149 | external loadsegs. I.e, allocate the internal loadsegs. */ | |
150 | int_ldmbuf_size = sizeof (struct int_elf32_fdpic_loadmap) | |
151 | + (nsegs - 1) * sizeof (struct int_elf32_fdpic_loadseg); | |
152 | int_ldmbuf = xmalloc (int_ldmbuf_size); | |
153 | ||
154 | /* Place extracted information in internal structs. */ | |
155 | int_ldmbuf->version = version; | |
156 | int_ldmbuf->nsegs = nsegs; | |
157 | for (seg = 0; seg < nsegs; seg++) | |
158 | { | |
159 | int_ldmbuf->segs[seg].addr | |
e2b7c966 | 160 | = extract_unsigned_integer (ext_ldmbuf->segs[seg].addr, |
c4d10515 KB |
161 | sizeof (ext_ldmbuf->segs[seg].addr)); |
162 | int_ldmbuf->segs[seg].p_vaddr | |
e2b7c966 | 163 | = extract_unsigned_integer (ext_ldmbuf->segs[seg].p_vaddr, |
c4d10515 KB |
164 | sizeof (ext_ldmbuf->segs[seg].p_vaddr)); |
165 | int_ldmbuf->segs[seg].p_memsz | |
e2b7c966 | 166 | = extract_unsigned_integer (ext_ldmbuf->segs[seg].p_memsz, |
c4d10515 KB |
167 | sizeof (ext_ldmbuf->segs[seg].p_memsz)); |
168 | } | |
169 | ||
d5c560f7 | 170 | xfree (ext_ldmbuf); |
c4d10515 KB |
171 | return int_ldmbuf; |
172 | } | |
173 | ||
174 | /* External link_map and elf32_fdpic_loadaddr struct definitions. */ | |
175 | ||
e2b7c966 | 176 | typedef gdb_byte ext_ptr[4]; |
c4d10515 KB |
177 | |
178 | struct ext_elf32_fdpic_loadaddr | |
179 | { | |
180 | ext_ptr map; /* struct elf32_fdpic_loadmap *map; */ | |
181 | ext_ptr got_value; /* void *got_value; */ | |
182 | }; | |
183 | ||
184 | struct ext_link_map | |
185 | { | |
186 | struct ext_elf32_fdpic_loadaddr l_addr; | |
187 | ||
188 | /* Absolute file name object was found in. */ | |
189 | ext_ptr l_name; /* char *l_name; */ | |
190 | ||
191 | /* Dynamic section of the shared object. */ | |
192 | ext_ptr l_ld; /* ElfW(Dyn) *l_ld; */ | |
193 | ||
194 | /* Chain of loaded objects. */ | |
195 | ext_ptr l_next, l_prev; /* struct link_map *l_next, *l_prev; */ | |
196 | }; | |
197 | ||
198 | /* Link map info to include in an allocated so_list entry */ | |
199 | ||
200 | struct lm_info | |
201 | { | |
202 | /* The loadmap, digested into an easier to use form. */ | |
203 | struct int_elf32_fdpic_loadmap *map; | |
204 | /* The GOT address for this link map entry. */ | |
205 | CORE_ADDR got_value; | |
186993b4 KB |
206 | /* The link map address, needed for frv_fetch_objfile_link_map(). */ |
207 | CORE_ADDR lm_addr; | |
c4d10515 KB |
208 | |
209 | /* Cached dynamic symbol table and dynamic relocs initialized and | |
210 | used only by find_canonical_descriptor_in_load_object(). | |
211 | ||
212 | Note: kevinb/2004-02-26: It appears that calls to | |
213 | bfd_canonicalize_dynamic_reloc() will use the same symbols as | |
214 | those supplied to the first call to this function. Therefore, | |
215 | it's important to NOT free the asymbol ** data structure | |
216 | supplied to the first call. Thus the caching of the dynamic | |
217 | symbols (dyn_syms) is critical for correct operation. The | |
218 | caching of the dynamic relocations could be dispensed with. */ | |
219 | asymbol **dyn_syms; | |
220 | arelent **dyn_relocs; | |
221 | int dyn_reloc_count; /* number of dynamic relocs. */ | |
222 | ||
223 | }; | |
224 | ||
225 | /* The load map, got value, etc. are not available from the chain | |
226 | of loaded shared objects. ``main_executable_lm_info'' provides | |
227 | a way to get at this information so that it doesn't need to be | |
228 | frequently recomputed. Initialized by frv_relocate_main_executable(). */ | |
229 | static struct lm_info *main_executable_lm_info; | |
230 | ||
231 | static void frv_relocate_main_executable (void); | |
232 | static CORE_ADDR main_got (void); | |
233 | static int enable_break2 (void); | |
234 | ||
235 | /* | |
236 | ||
237 | LOCAL FUNCTION | |
238 | ||
239 | bfd_lookup_symbol -- lookup the value for a specific symbol | |
240 | ||
241 | SYNOPSIS | |
242 | ||
243 | CORE_ADDR bfd_lookup_symbol (bfd *abfd, char *symname) | |
244 | ||
245 | DESCRIPTION | |
246 | ||
247 | An expensive way to lookup the value of a single symbol for | |
248 | bfd's that are only temporary anyway. This is used by the | |
249 | shared library support to find the address of the debugger | |
250 | interface structures in the shared library. | |
251 | ||
252 | Note that 0 is specifically allowed as an error return (no | |
253 | such symbol). | |
254 | */ | |
255 | ||
256 | static CORE_ADDR | |
257 | bfd_lookup_symbol (bfd *abfd, char *symname) | |
258 | { | |
259 | long storage_needed; | |
260 | asymbol *sym; | |
261 | asymbol **symbol_table; | |
262 | unsigned int number_of_symbols; | |
263 | unsigned int i; | |
264 | struct cleanup *back_to; | |
265 | CORE_ADDR symaddr = 0; | |
266 | ||
267 | storage_needed = bfd_get_symtab_upper_bound (abfd); | |
268 | ||
269 | if (storage_needed > 0) | |
270 | { | |
271 | symbol_table = (asymbol **) xmalloc (storage_needed); | |
272 | back_to = make_cleanup (xfree, symbol_table); | |
273 | number_of_symbols = bfd_canonicalize_symtab (abfd, symbol_table); | |
274 | ||
275 | for (i = 0; i < number_of_symbols; i++) | |
276 | { | |
277 | sym = *symbol_table++; | |
278 | if (strcmp (sym->name, symname) == 0) | |
279 | { | |
280 | /* Bfd symbols are section relative. */ | |
281 | symaddr = sym->value + sym->section->vma; | |
282 | break; | |
283 | } | |
284 | } | |
285 | do_cleanups (back_to); | |
286 | } | |
287 | ||
288 | if (symaddr) | |
289 | return symaddr; | |
290 | ||
291 | /* Look for the symbol in the dynamic string table too. */ | |
292 | ||
293 | storage_needed = bfd_get_dynamic_symtab_upper_bound (abfd); | |
294 | ||
295 | if (storage_needed > 0) | |
296 | { | |
297 | symbol_table = (asymbol **) xmalloc (storage_needed); | |
298 | back_to = make_cleanup (xfree, symbol_table); | |
299 | number_of_symbols = bfd_canonicalize_dynamic_symtab (abfd, symbol_table); | |
300 | ||
301 | for (i = 0; i < number_of_symbols; i++) | |
302 | { | |
303 | sym = *symbol_table++; | |
304 | if (strcmp (sym->name, symname) == 0) | |
305 | { | |
306 | /* Bfd symbols are section relative. */ | |
307 | symaddr = sym->value + sym->section->vma; | |
308 | break; | |
309 | } | |
310 | } | |
311 | do_cleanups (back_to); | |
312 | } | |
313 | ||
314 | return symaddr; | |
315 | } | |
316 | ||
317 | ||
318 | /* | |
319 | ||
320 | LOCAL FUNCTION | |
321 | ||
322 | open_symbol_file_object | |
323 | ||
324 | SYNOPSIS | |
325 | ||
326 | void open_symbol_file_object (void *from_tty) | |
327 | ||
328 | DESCRIPTION | |
329 | ||
330 | If no open symbol file, attempt to locate and open the main symbol | |
331 | file. | |
332 | ||
333 | If FROM_TTYP dereferences to a non-zero integer, allow messages to | |
334 | be printed. This parameter is a pointer rather than an int because | |
335 | open_symbol_file_object() is called via catch_errors() and | |
336 | catch_errors() requires a pointer argument. */ | |
337 | ||
338 | static int | |
339 | open_symbol_file_object (void *from_ttyp) | |
340 | { | |
341 | /* Unimplemented. */ | |
342 | return 0; | |
343 | } | |
344 | ||
345 | /* Cached value for lm_base(), below. */ | |
346 | static CORE_ADDR lm_base_cache = 0; | |
347 | ||
186993b4 KB |
348 | /* Link map address for main module. */ |
349 | static CORE_ADDR main_lm_addr = 0; | |
350 | ||
c4d10515 KB |
351 | /* Return the address from which the link map chain may be found. On |
352 | the FR-V, this may be found in a number of ways. Assuming that the | |
353 | main executable has already been relocated, the easiest way to find | |
354 | this value is to look up the address of _GLOBAL_OFFSET_TABLE_. A | |
355 | pointer to the start of the link map will be located at the word found | |
356 | at _GLOBAL_OFFSET_TABLE_ + 8. (This is part of the dynamic linker | |
357 | reserve area mandated by the ABI.) */ | |
358 | ||
359 | static CORE_ADDR | |
360 | lm_base (void) | |
361 | { | |
362 | struct minimal_symbol *got_sym; | |
363 | CORE_ADDR addr; | |
e2b7c966 | 364 | gdb_byte buf[FRV_PTR_SIZE]; |
c4d10515 | 365 | |
89a7ee67 KB |
366 | /* One of our assumptions is that the main executable has been relocated. |
367 | Bail out if this has not happened. (Note that post_create_inferior() | |
368 | in infcmd.c will call solib_add prior to solib_create_inferior_hook(). | |
369 | If we allow this to happen, lm_base_cache will be initialized with | |
370 | a bogus value. */ | |
371 | if (main_executable_lm_info == 0) | |
372 | return 0; | |
373 | ||
c4d10515 KB |
374 | /* If we already have a cached value, return it. */ |
375 | if (lm_base_cache) | |
376 | return lm_base_cache; | |
377 | ||
378 | got_sym = lookup_minimal_symbol ("_GLOBAL_OFFSET_TABLE_", NULL, | |
379 | symfile_objfile); | |
380 | if (got_sym == 0) | |
381 | { | |
382 | if (solib_frv_debug) | |
383 | fprintf_unfiltered (gdb_stdlog, | |
384 | "lm_base: _GLOBAL_OFFSET_TABLE_ not found.\n"); | |
385 | return 0; | |
386 | } | |
387 | ||
388 | addr = SYMBOL_VALUE_ADDRESS (got_sym) + 8; | |
389 | ||
390 | if (solib_frv_debug) | |
391 | fprintf_unfiltered (gdb_stdlog, | |
392 | "lm_base: _GLOBAL_OFFSET_TABLE_ + 8 = %s\n", | |
bb599908 | 393 | hex_string_custom (addr, 8)); |
c4d10515 KB |
394 | |
395 | if (target_read_memory (addr, buf, sizeof buf) != 0) | |
396 | return 0; | |
397 | lm_base_cache = extract_unsigned_integer (buf, sizeof buf); | |
398 | ||
399 | if (solib_frv_debug) | |
400 | fprintf_unfiltered (gdb_stdlog, | |
401 | "lm_base: lm_base_cache = %s\n", | |
bb599908 | 402 | hex_string_custom (lm_base_cache, 8)); |
c4d10515 KB |
403 | |
404 | return lm_base_cache; | |
405 | } | |
406 | ||
407 | ||
408 | /* LOCAL FUNCTION | |
409 | ||
410 | frv_current_sos -- build a list of currently loaded shared objects | |
411 | ||
412 | SYNOPSIS | |
413 | ||
414 | struct so_list *frv_current_sos () | |
415 | ||
416 | DESCRIPTION | |
417 | ||
418 | Build a list of `struct so_list' objects describing the shared | |
419 | objects currently loaded in the inferior. This list does not | |
420 | include an entry for the main executable file. | |
421 | ||
422 | Note that we only gather information directly available from the | |
423 | inferior --- we don't examine any of the shared library files | |
424 | themselves. The declaration of `struct so_list' says which fields | |
425 | we provide values for. */ | |
426 | ||
427 | static struct so_list * | |
428 | frv_current_sos (void) | |
429 | { | |
430 | CORE_ADDR lm_addr, mgot; | |
431 | struct so_list *sos_head = NULL; | |
432 | struct so_list **sos_next_ptr = &sos_head; | |
433 | ||
7c699b81 KB |
434 | /* Make sure that the main executable has been relocated. This is |
435 | required in order to find the address of the global offset table, | |
436 | which in turn is used to find the link map info. (See lm_base() | |
437 | for details.) | |
438 | ||
439 | Note that the relocation of the main executable is also performed | |
440 | by SOLIB_CREATE_INFERIOR_HOOK(), however, in the case of core | |
441 | files, this hook is called too late in order to be of benefit to | |
442 | SOLIB_ADD. SOLIB_ADD eventually calls this this function, | |
443 | frv_current_sos, and also precedes the call to | |
444 | SOLIB_CREATE_INFERIOR_HOOK(). (See post_create_inferior() in | |
445 | infcmd.c.) */ | |
446 | if (main_executable_lm_info == 0 && core_bfd != NULL) | |
447 | frv_relocate_main_executable (); | |
448 | ||
449 | /* Fetch the GOT corresponding to the main executable. */ | |
c4d10515 KB |
450 | mgot = main_got (); |
451 | ||
452 | /* Locate the address of the first link map struct. */ | |
453 | lm_addr = lm_base (); | |
454 | ||
455 | /* We have at least one link map entry. Fetch the the lot of them, | |
456 | building the solist chain. */ | |
457 | while (lm_addr) | |
458 | { | |
459 | struct ext_link_map lm_buf; | |
460 | CORE_ADDR got_addr; | |
461 | ||
462 | if (solib_frv_debug) | |
463 | fprintf_unfiltered (gdb_stdlog, | |
464 | "current_sos: reading link_map entry at %s\n", | |
bb599908 | 465 | hex_string_custom (lm_addr, 8)); |
c4d10515 | 466 | |
e2b7c966 | 467 | if (target_read_memory (lm_addr, (gdb_byte *) &lm_buf, sizeof (lm_buf)) != 0) |
c4d10515 | 468 | { |
8a3fe4f8 | 469 | warning (_("frv_current_sos: Unable to read link map entry. Shared object chain may be incomplete.")); |
c4d10515 KB |
470 | break; |
471 | } | |
472 | ||
473 | got_addr | |
e2b7c966 | 474 | = extract_unsigned_integer (lm_buf.l_addr.got_value, |
c4d10515 KB |
475 | sizeof (lm_buf.l_addr.got_value)); |
476 | /* If the got_addr is the same as mgotr, then we're looking at the | |
477 | entry for the main executable. By convention, we don't include | |
478 | this in the list of shared objects. */ | |
479 | if (got_addr != mgot) | |
480 | { | |
481 | int errcode; | |
482 | char *name_buf; | |
483 | struct int_elf32_fdpic_loadmap *loadmap; | |
484 | struct so_list *sop; | |
485 | CORE_ADDR addr; | |
486 | ||
487 | /* Fetch the load map address. */ | |
e2b7c966 | 488 | addr = extract_unsigned_integer (lm_buf.l_addr.map, |
c4d10515 KB |
489 | sizeof lm_buf.l_addr.map); |
490 | loadmap = fetch_loadmap (addr); | |
491 | if (loadmap == NULL) | |
492 | { | |
8a3fe4f8 | 493 | warning (_("frv_current_sos: Unable to fetch load map. Shared object chain may be incomplete.")); |
c4d10515 KB |
494 | break; |
495 | } | |
496 | ||
497 | sop = xcalloc (1, sizeof (struct so_list)); | |
498 | sop->lm_info = xcalloc (1, sizeof (struct lm_info)); | |
499 | sop->lm_info->map = loadmap; | |
500 | sop->lm_info->got_value = got_addr; | |
186993b4 | 501 | sop->lm_info->lm_addr = lm_addr; |
c4d10515 | 502 | /* Fetch the name. */ |
e2b7c966 | 503 | addr = extract_unsigned_integer (lm_buf.l_name, |
c4d10515 KB |
504 | sizeof (lm_buf.l_name)); |
505 | target_read_string (addr, &name_buf, SO_NAME_MAX_PATH_SIZE - 1, | |
506 | &errcode); | |
507 | ||
508 | if (solib_frv_debug) | |
509 | fprintf_unfiltered (gdb_stdlog, "current_sos: name = %s\n", | |
510 | name_buf); | |
511 | ||
512 | if (errcode != 0) | |
8a3fe4f8 AC |
513 | warning (_("Can't read pathname for link map entry: %s."), |
514 | safe_strerror (errcode)); | |
c4d10515 KB |
515 | else |
516 | { | |
517 | strncpy (sop->so_name, name_buf, SO_NAME_MAX_PATH_SIZE - 1); | |
518 | sop->so_name[SO_NAME_MAX_PATH_SIZE - 1] = '\0'; | |
519 | xfree (name_buf); | |
520 | strcpy (sop->so_original_name, sop->so_name); | |
521 | } | |
522 | ||
523 | *sos_next_ptr = sop; | |
524 | sos_next_ptr = &sop->next; | |
525 | } | |
186993b4 KB |
526 | else |
527 | { | |
528 | main_lm_addr = lm_addr; | |
529 | } | |
c4d10515 | 530 | |
e2b7c966 | 531 | lm_addr = extract_unsigned_integer (lm_buf.l_next, sizeof (lm_buf.l_next)); |
c4d10515 KB |
532 | } |
533 | ||
534 | enable_break2 (); | |
535 | ||
536 | return sos_head; | |
537 | } | |
538 | ||
539 | ||
540 | /* Return 1 if PC lies in the dynamic symbol resolution code of the | |
541 | run time loader. */ | |
542 | ||
543 | static CORE_ADDR interp_text_sect_low; | |
544 | static CORE_ADDR interp_text_sect_high; | |
545 | static CORE_ADDR interp_plt_sect_low; | |
546 | static CORE_ADDR interp_plt_sect_high; | |
547 | ||
548 | static int | |
549 | frv_in_dynsym_resolve_code (CORE_ADDR pc) | |
550 | { | |
551 | return ((pc >= interp_text_sect_low && pc < interp_text_sect_high) | |
552 | || (pc >= interp_plt_sect_low && pc < interp_plt_sect_high) | |
553 | || in_plt_section (pc, NULL)); | |
554 | } | |
555 | ||
556 | /* Given a loadmap and an address, return the displacement needed | |
557 | to relocate the address. */ | |
558 | ||
63807e1d | 559 | static CORE_ADDR |
c4d10515 KB |
560 | displacement_from_map (struct int_elf32_fdpic_loadmap *map, |
561 | CORE_ADDR addr) | |
562 | { | |
563 | int seg; | |
564 | ||
565 | for (seg = 0; seg < map->nsegs; seg++) | |
566 | { | |
567 | if (map->segs[seg].p_vaddr <= addr | |
568 | && addr < map->segs[seg].p_vaddr + map->segs[seg].p_memsz) | |
569 | { | |
570 | return map->segs[seg].addr - map->segs[seg].p_vaddr; | |
571 | } | |
572 | } | |
573 | ||
574 | return 0; | |
575 | } | |
576 | ||
577 | /* Print a warning about being unable to set the dynamic linker | |
578 | breakpoint. */ | |
579 | ||
580 | static void | |
581 | enable_break_failure_warning (void) | |
582 | { | |
8a3fe4f8 | 583 | warning (_("Unable to find dynamic linker breakpoint function.\n" |
c4d10515 | 584 | "GDB will be unable to debug shared library initializers\n" |
8a3fe4f8 | 585 | "and track explicitly loaded dynamic code.")); |
c4d10515 KB |
586 | } |
587 | ||
588 | /* | |
589 | ||
590 | LOCAL FUNCTION | |
591 | ||
592 | enable_break -- arrange for dynamic linker to hit breakpoint | |
593 | ||
594 | SYNOPSIS | |
595 | ||
596 | int enable_break (void) | |
597 | ||
598 | DESCRIPTION | |
599 | ||
600 | The dynamic linkers has, as part of its debugger interface, support | |
601 | for arranging for the inferior to hit a breakpoint after mapping in | |
602 | the shared libraries. This function enables that breakpoint. | |
603 | ||
604 | On the FR-V, using the shared library (FDPIC) ABI, the symbol | |
605 | _dl_debug_addr points to the r_debug struct which contains | |
606 | a field called r_brk. r_brk is the address of the function | |
607 | descriptor upon which a breakpoint must be placed. Being a | |
608 | function descriptor, we must extract the entry point in order | |
609 | to set the breakpoint. | |
610 | ||
611 | Our strategy will be to get the .interp section from the | |
612 | executable. This section will provide us with the name of the | |
613 | interpreter. We'll open the interpreter and then look up | |
614 | the address of _dl_debug_addr. We then relocate this address | |
615 | using the interpreter's loadmap. Once the relocated address | |
616 | is known, we fetch the value (address) corresponding to r_brk | |
617 | and then use that value to fetch the entry point of the function | |
618 | we're interested in. | |
619 | ||
620 | */ | |
621 | ||
622 | static int enable_break1_done = 0; | |
623 | static int enable_break2_done = 0; | |
624 | ||
625 | static int | |
626 | enable_break2 (void) | |
627 | { | |
628 | int success = 0; | |
629 | char **bkpt_namep; | |
630 | asection *interp_sect; | |
631 | ||
632 | if (!enable_break1_done || enable_break2_done) | |
633 | return 1; | |
634 | ||
635 | enable_break2_done = 1; | |
636 | ||
637 | /* First, remove all the solib event breakpoints. Their addresses | |
638 | may have changed since the last time we ran the program. */ | |
639 | remove_solib_event_breakpoints (); | |
640 | ||
641 | interp_text_sect_low = interp_text_sect_high = 0; | |
642 | interp_plt_sect_low = interp_plt_sect_high = 0; | |
643 | ||
644 | /* Find the .interp section; if not found, warn the user and drop | |
645 | into the old breakpoint at symbol code. */ | |
646 | interp_sect = bfd_get_section_by_name (exec_bfd, ".interp"); | |
647 | if (interp_sect) | |
648 | { | |
649 | unsigned int interp_sect_size; | |
e2b7c966 | 650 | gdb_byte *buf; |
c4d10515 | 651 | bfd *tmp_bfd = NULL; |
c4d10515 KB |
652 | int status; |
653 | CORE_ADDR addr, interp_loadmap_addr; | |
e2b7c966 | 654 | gdb_byte addr_buf[FRV_PTR_SIZE]; |
c4d10515 | 655 | struct int_elf32_fdpic_loadmap *ldm; |
f1838a98 | 656 | volatile struct gdb_exception ex; |
c4d10515 KB |
657 | |
658 | /* Read the contents of the .interp section into a local buffer; | |
659 | the contents specify the dynamic linker this program uses. */ | |
660 | interp_sect_size = bfd_section_size (exec_bfd, interp_sect); | |
661 | buf = alloca (interp_sect_size); | |
662 | bfd_get_section_contents (exec_bfd, interp_sect, | |
663 | buf, 0, interp_sect_size); | |
664 | ||
665 | /* Now we need to figure out where the dynamic linker was | |
666 | loaded so that we can load its symbols and place a breakpoint | |
667 | in the dynamic linker itself. | |
668 | ||
669 | This address is stored on the stack. However, I've been unable | |
670 | to find any magic formula to find it for Solaris (appears to | |
671 | be trivial on GNU/Linux). Therefore, we have to try an alternate | |
672 | mechanism to find the dynamic linker's base address. */ | |
673 | ||
f1838a98 UW |
674 | TRY_CATCH (ex, RETURN_MASK_ALL) |
675 | { | |
676 | tmp_bfd = solib_bfd_open (buf); | |
677 | } | |
c4d10515 KB |
678 | if (tmp_bfd == NULL) |
679 | { | |
680 | enable_break_failure_warning (); | |
681 | return 0; | |
682 | } | |
683 | ||
1cf3db46 | 684 | status = frv_fdpic_loadmap_addresses (target_gdbarch, |
c4d10515 KB |
685 | &interp_loadmap_addr, 0); |
686 | if (status < 0) | |
687 | { | |
8a3fe4f8 | 688 | warning (_("Unable to determine dynamic linker loadmap address.")); |
c4d10515 KB |
689 | enable_break_failure_warning (); |
690 | bfd_close (tmp_bfd); | |
691 | return 0; | |
692 | } | |
693 | ||
694 | if (solib_frv_debug) | |
695 | fprintf_unfiltered (gdb_stdlog, | |
696 | "enable_break: interp_loadmap_addr = %s\n", | |
bb599908 | 697 | hex_string_custom (interp_loadmap_addr, 8)); |
c4d10515 KB |
698 | |
699 | ldm = fetch_loadmap (interp_loadmap_addr); | |
700 | if (ldm == NULL) | |
701 | { | |
8a3fe4f8 | 702 | warning (_("Unable to load dynamic linker loadmap at address %s."), |
bb599908 | 703 | hex_string_custom (interp_loadmap_addr, 8)); |
c4d10515 KB |
704 | enable_break_failure_warning (); |
705 | bfd_close (tmp_bfd); | |
706 | return 0; | |
707 | } | |
708 | ||
709 | /* Record the relocated start and end address of the dynamic linker | |
710 | text and plt section for svr4_in_dynsym_resolve_code. */ | |
711 | interp_sect = bfd_get_section_by_name (tmp_bfd, ".text"); | |
712 | if (interp_sect) | |
713 | { | |
714 | interp_text_sect_low | |
715 | = bfd_section_vma (tmp_bfd, interp_sect); | |
716 | interp_text_sect_low | |
717 | += displacement_from_map (ldm, interp_text_sect_low); | |
718 | interp_text_sect_high | |
719 | = interp_text_sect_low + bfd_section_size (tmp_bfd, interp_sect); | |
720 | } | |
721 | interp_sect = bfd_get_section_by_name (tmp_bfd, ".plt"); | |
722 | if (interp_sect) | |
723 | { | |
724 | interp_plt_sect_low = | |
725 | bfd_section_vma (tmp_bfd, interp_sect); | |
726 | interp_plt_sect_low | |
727 | += displacement_from_map (ldm, interp_plt_sect_low); | |
728 | interp_plt_sect_high = | |
729 | interp_plt_sect_low + bfd_section_size (tmp_bfd, interp_sect); | |
730 | } | |
731 | ||
732 | addr = bfd_lookup_symbol (tmp_bfd, "_dl_debug_addr"); | |
733 | if (addr == 0) | |
734 | { | |
8a3fe4f8 | 735 | warning (_("Could not find symbol _dl_debug_addr in dynamic linker")); |
c4d10515 KB |
736 | enable_break_failure_warning (); |
737 | bfd_close (tmp_bfd); | |
738 | return 0; | |
739 | } | |
740 | ||
741 | if (solib_frv_debug) | |
742 | fprintf_unfiltered (gdb_stdlog, | |
743 | "enable_break: _dl_debug_addr (prior to relocation) = %s\n", | |
bb599908 | 744 | hex_string_custom (addr, 8)); |
c4d10515 KB |
745 | |
746 | addr += displacement_from_map (ldm, addr); | |
747 | ||
748 | if (solib_frv_debug) | |
749 | fprintf_unfiltered (gdb_stdlog, | |
750 | "enable_break: _dl_debug_addr (after relocation) = %s\n", | |
bb599908 | 751 | hex_string_custom (addr, 8)); |
c4d10515 KB |
752 | |
753 | /* Fetch the address of the r_debug struct. */ | |
754 | if (target_read_memory (addr, addr_buf, sizeof addr_buf) != 0) | |
755 | { | |
8a3fe4f8 | 756 | warning (_("Unable to fetch contents of _dl_debug_addr (at address %s) from dynamic linker"), |
bb599908 | 757 | hex_string_custom (addr, 8)); |
c4d10515 KB |
758 | } |
759 | addr = extract_unsigned_integer (addr_buf, sizeof addr_buf); | |
760 | ||
761 | /* Fetch the r_brk field. It's 8 bytes from the start of | |
762 | _dl_debug_addr. */ | |
763 | if (target_read_memory (addr + 8, addr_buf, sizeof addr_buf) != 0) | |
764 | { | |
8a3fe4f8 | 765 | warning (_("Unable to fetch _dl_debug_addr->r_brk (at address %s) from dynamic linker"), |
bb599908 | 766 | hex_string_custom (addr + 8, 8)); |
c4d10515 KB |
767 | enable_break_failure_warning (); |
768 | bfd_close (tmp_bfd); | |
769 | return 0; | |
770 | } | |
771 | addr = extract_unsigned_integer (addr_buf, sizeof addr_buf); | |
772 | ||
773 | /* Now fetch the function entry point. */ | |
774 | if (target_read_memory (addr, addr_buf, sizeof addr_buf) != 0) | |
775 | { | |
8a3fe4f8 | 776 | warning (_("Unable to fetch _dl_debug_addr->.r_brk entry point (at address %s) from dynamic linker"), |
bb599908 | 777 | hex_string_custom (addr, 8)); |
c4d10515 KB |
778 | enable_break_failure_warning (); |
779 | bfd_close (tmp_bfd); | |
780 | return 0; | |
781 | } | |
782 | addr = extract_unsigned_integer (addr_buf, sizeof addr_buf); | |
783 | ||
784 | /* We're done with the temporary bfd. */ | |
785 | bfd_close (tmp_bfd); | |
786 | ||
787 | /* We're also done with the loadmap. */ | |
788 | xfree (ldm); | |
789 | ||
790 | /* Now (finally!) create the solib breakpoint. */ | |
791 | create_solib_event_breakpoint (addr); | |
792 | ||
793 | return 1; | |
794 | } | |
795 | ||
796 | /* Tell the user we couldn't set a dynamic linker breakpoint. */ | |
797 | enable_break_failure_warning (); | |
798 | ||
799 | /* Failure return. */ | |
800 | return 0; | |
801 | } | |
802 | ||
803 | static int | |
804 | enable_break (void) | |
805 | { | |
806 | asection *interp_sect; | |
807 | ||
808 | /* Remove all the solib event breakpoints. Their addresses | |
809 | may have changed since the last time we ran the program. */ | |
810 | remove_solib_event_breakpoints (); | |
811 | ||
812 | /* Check for the presence of a .interp section. If there is no | |
813 | such section, the executable is statically linked. */ | |
814 | ||
815 | interp_sect = bfd_get_section_by_name (exec_bfd, ".interp"); | |
816 | ||
817 | if (interp_sect) | |
818 | { | |
819 | enable_break1_done = 1; | |
820 | create_solib_event_breakpoint (symfile_objfile->ei.entry_point); | |
821 | ||
822 | if (solib_frv_debug) | |
823 | fprintf_unfiltered (gdb_stdlog, | |
824 | "enable_break: solib event breakpoint placed at entry point: %s\n", | |
bb599908 PH |
825 | hex_string_custom |
826 | (symfile_objfile->ei.entry_point, 8)); | |
c4d10515 KB |
827 | } |
828 | else | |
829 | { | |
830 | if (solib_frv_debug) | |
831 | fprintf_unfiltered (gdb_stdlog, | |
832 | "enable_break: No .interp section found.\n"); | |
833 | } | |
834 | ||
835 | return 1; | |
836 | } | |
837 | ||
838 | /* | |
839 | ||
840 | LOCAL FUNCTION | |
841 | ||
842 | special_symbol_handling -- additional shared library symbol handling | |
843 | ||
844 | SYNOPSIS | |
845 | ||
846 | void special_symbol_handling () | |
847 | ||
848 | DESCRIPTION | |
849 | ||
850 | Once the symbols from a shared object have been loaded in the usual | |
851 | way, we are called to do any system specific symbol handling that | |
852 | is needed. | |
853 | ||
854 | */ | |
855 | ||
856 | static void | |
857 | frv_special_symbol_handling (void) | |
858 | { | |
859 | /* Nothing needed (yet) for FRV. */ | |
860 | } | |
861 | ||
862 | static void | |
863 | frv_relocate_main_executable (void) | |
864 | { | |
865 | int status; | |
9bc7b6c6 | 866 | CORE_ADDR exec_addr, interp_addr; |
c4d10515 KB |
867 | struct int_elf32_fdpic_loadmap *ldm; |
868 | struct cleanup *old_chain; | |
869 | struct section_offsets *new_offsets; | |
870 | int changed; | |
871 | struct obj_section *osect; | |
872 | ||
9bc7b6c6 KB |
873 | status = frv_fdpic_loadmap_addresses (target_gdbarch, |
874 | &interp_addr, &exec_addr); | |
c4d10515 | 875 | |
9bc7b6c6 | 876 | if (status < 0 || (exec_addr == 0 && interp_addr == 0)) |
c4d10515 KB |
877 | { |
878 | /* Not using FDPIC ABI, so do nothing. */ | |
879 | return; | |
880 | } | |
881 | ||
882 | /* Fetch the loadmap located at ``exec_addr''. */ | |
883 | ldm = fetch_loadmap (exec_addr); | |
884 | if (ldm == NULL) | |
8a3fe4f8 | 885 | error (_("Unable to load the executable's loadmap.")); |
c4d10515 KB |
886 | |
887 | if (main_executable_lm_info) | |
888 | xfree (main_executable_lm_info); | |
889 | main_executable_lm_info = xcalloc (1, sizeof (struct lm_info)); | |
890 | main_executable_lm_info->map = ldm; | |
891 | ||
892 | new_offsets = xcalloc (symfile_objfile->num_sections, | |
893 | sizeof (struct section_offsets)); | |
894 | old_chain = make_cleanup (xfree, new_offsets); | |
895 | changed = 0; | |
896 | ||
897 | ALL_OBJFILE_OSECTIONS (symfile_objfile, osect) | |
898 | { | |
899 | CORE_ADDR orig_addr, addr, offset; | |
900 | int osect_idx; | |
901 | int seg; | |
902 | ||
903 | osect_idx = osect->the_bfd_section->index; | |
904 | ||
905 | /* Current address of section. */ | |
aded6f54 | 906 | addr = obj_section_addr (osect); |
c4d10515 KB |
907 | /* Offset from where this section started. */ |
908 | offset = ANOFFSET (symfile_objfile->section_offsets, osect_idx); | |
909 | /* Original address prior to any past relocations. */ | |
910 | orig_addr = addr - offset; | |
911 | ||
912 | for (seg = 0; seg < ldm->nsegs; seg++) | |
913 | { | |
914 | if (ldm->segs[seg].p_vaddr <= orig_addr | |
915 | && orig_addr < ldm->segs[seg].p_vaddr + ldm->segs[seg].p_memsz) | |
916 | { | |
917 | new_offsets->offsets[osect_idx] | |
918 | = ldm->segs[seg].addr - ldm->segs[seg].p_vaddr; | |
919 | ||
920 | if (new_offsets->offsets[osect_idx] != offset) | |
921 | changed = 1; | |
922 | break; | |
923 | } | |
924 | } | |
925 | } | |
926 | ||
927 | if (changed) | |
928 | objfile_relocate (symfile_objfile, new_offsets); | |
929 | ||
930 | do_cleanups (old_chain); | |
931 | ||
932 | /* Now that symfile_objfile has been relocated, we can compute the | |
933 | GOT value and stash it away. */ | |
934 | main_executable_lm_info->got_value = main_got (); | |
935 | } | |
936 | ||
937 | /* | |
938 | ||
939 | GLOBAL FUNCTION | |
940 | ||
941 | frv_solib_create_inferior_hook -- shared library startup support | |
942 | ||
943 | SYNOPSIS | |
944 | ||
7095b863 | 945 | void frv_solib_create_inferior_hook () |
c4d10515 KB |
946 | |
947 | DESCRIPTION | |
948 | ||
949 | When gdb starts up the inferior, it nurses it along (through the | |
950 | shell) until it is ready to execute it's first instruction. At this | |
951 | point, this function gets called via expansion of the macro | |
952 | SOLIB_CREATE_INFERIOR_HOOK. | |
953 | ||
954 | For the FR-V shared library ABI (FDPIC), the main executable | |
955 | needs to be relocated. The shared library breakpoints also need | |
956 | to be enabled. | |
957 | */ | |
958 | ||
959 | static void | |
960 | frv_solib_create_inferior_hook (void) | |
961 | { | |
962 | /* Relocate main executable. */ | |
963 | frv_relocate_main_executable (); | |
964 | ||
965 | /* Enable shared library breakpoints. */ | |
966 | if (!enable_break ()) | |
967 | { | |
8a3fe4f8 | 968 | warning (_("shared library handler failed to enable breakpoint")); |
c4d10515 KB |
969 | return; |
970 | } | |
971 | } | |
972 | ||
973 | static void | |
974 | frv_clear_solib (void) | |
975 | { | |
976 | lm_base_cache = 0; | |
977 | enable_break1_done = 0; | |
978 | enable_break2_done = 0; | |
186993b4 | 979 | main_lm_addr = 0; |
7c699b81 KB |
980 | if (main_executable_lm_info != 0) |
981 | { | |
982 | xfree (main_executable_lm_info->map); | |
983 | xfree (main_executable_lm_info->dyn_syms); | |
984 | xfree (main_executable_lm_info->dyn_relocs); | |
985 | xfree (main_executable_lm_info); | |
986 | main_executable_lm_info = 0; | |
987 | } | |
c4d10515 KB |
988 | } |
989 | ||
990 | static void | |
991 | frv_free_so (struct so_list *so) | |
992 | { | |
993 | xfree (so->lm_info->map); | |
994 | xfree (so->lm_info->dyn_syms); | |
995 | xfree (so->lm_info->dyn_relocs); | |
996 | xfree (so->lm_info); | |
997 | } | |
998 | ||
999 | static void | |
1000 | frv_relocate_section_addresses (struct so_list *so, | |
1001 | struct section_table *sec) | |
1002 | { | |
1003 | int seg; | |
1004 | struct int_elf32_fdpic_loadmap *map; | |
1005 | ||
1006 | map = so->lm_info->map; | |
1007 | ||
1008 | for (seg = 0; seg < map->nsegs; seg++) | |
1009 | { | |
1010 | if (map->segs[seg].p_vaddr <= sec->addr | |
1011 | && sec->addr < map->segs[seg].p_vaddr + map->segs[seg].p_memsz) | |
1012 | { | |
1013 | CORE_ADDR displ = map->segs[seg].addr - map->segs[seg].p_vaddr; | |
1014 | sec->addr += displ; | |
1015 | sec->endaddr += displ; | |
1016 | break; | |
1017 | } | |
1018 | } | |
1019 | } | |
1020 | ||
1021 | /* Return the GOT address associated with the main executable. Return | |
1022 | 0 if it can't be found. */ | |
1023 | ||
1024 | static CORE_ADDR | |
1025 | main_got (void) | |
1026 | { | |
1027 | struct minimal_symbol *got_sym; | |
1028 | ||
1029 | got_sym = lookup_minimal_symbol ("_GLOBAL_OFFSET_TABLE_", NULL, symfile_objfile); | |
1030 | if (got_sym == 0) | |
1031 | return 0; | |
1032 | ||
1033 | return SYMBOL_VALUE_ADDRESS (got_sym); | |
1034 | } | |
1035 | ||
1036 | /* Find the global pointer for the given function address ADDR. */ | |
1037 | ||
1038 | CORE_ADDR | |
1039 | frv_fdpic_find_global_pointer (CORE_ADDR addr) | |
1040 | { | |
1041 | struct so_list *so; | |
1042 | ||
1043 | so = master_so_list (); | |
1044 | while (so) | |
1045 | { | |
1046 | int seg; | |
1047 | struct int_elf32_fdpic_loadmap *map; | |
1048 | ||
1049 | map = so->lm_info->map; | |
1050 | ||
1051 | for (seg = 0; seg < map->nsegs; seg++) | |
1052 | { | |
1053 | if (map->segs[seg].addr <= addr | |
1054 | && addr < map->segs[seg].addr + map->segs[seg].p_memsz) | |
1055 | return so->lm_info->got_value; | |
1056 | } | |
1057 | ||
1058 | so = so->next; | |
1059 | } | |
1060 | ||
1061 | /* Didn't find it it any of the shared objects. So assume it's in the | |
1062 | main executable. */ | |
1063 | return main_got (); | |
1064 | } | |
1065 | ||
1066 | /* Forward declarations for frv_fdpic_find_canonical_descriptor(). */ | |
1067 | static CORE_ADDR find_canonical_descriptor_in_load_object | |
1068 | (CORE_ADDR, CORE_ADDR, char *, bfd *, struct lm_info *); | |
1069 | ||
1070 | /* Given a function entry point, attempt to find the canonical descriptor | |
1071 | associated with that entry point. Return 0 if no canonical descriptor | |
1072 | could be found. */ | |
1073 | ||
1074 | CORE_ADDR | |
1075 | frv_fdpic_find_canonical_descriptor (CORE_ADDR entry_point) | |
1076 | { | |
1077 | char *name; | |
1078 | CORE_ADDR addr; | |
1079 | CORE_ADDR got_value; | |
1080 | struct int_elf32_fdpic_loadmap *ldm = 0; | |
1081 | struct symbol *sym; | |
1082 | int status; | |
1083 | CORE_ADDR exec_loadmap_addr; | |
1084 | ||
1085 | /* Fetch the corresponding global pointer for the entry point. */ | |
1086 | got_value = frv_fdpic_find_global_pointer (entry_point); | |
1087 | ||
1088 | /* Attempt to find the name of the function. If the name is available, | |
1089 | it'll be used as an aid in finding matching functions in the dynamic | |
1090 | symbol table. */ | |
1091 | sym = find_pc_function (entry_point); | |
1092 | if (sym == 0) | |
1093 | name = 0; | |
1094 | else | |
1095 | name = SYMBOL_LINKAGE_NAME (sym); | |
1096 | ||
1097 | /* Check the main executable. */ | |
1098 | addr = find_canonical_descriptor_in_load_object | |
1099 | (entry_point, got_value, name, symfile_objfile->obfd, | |
1100 | main_executable_lm_info); | |
1101 | ||
1102 | /* If descriptor not found via main executable, check each load object | |
1103 | in list of shared objects. */ | |
1104 | if (addr == 0) | |
1105 | { | |
1106 | struct so_list *so; | |
1107 | ||
1108 | so = master_so_list (); | |
1109 | while (so) | |
1110 | { | |
1111 | addr = find_canonical_descriptor_in_load_object | |
1112 | (entry_point, got_value, name, so->abfd, so->lm_info); | |
1113 | ||
1114 | if (addr != 0) | |
1115 | break; | |
1116 | ||
1117 | so = so->next; | |
1118 | } | |
1119 | } | |
1120 | ||
1121 | return addr; | |
1122 | } | |
1123 | ||
1124 | static CORE_ADDR | |
1125 | find_canonical_descriptor_in_load_object | |
1126 | (CORE_ADDR entry_point, CORE_ADDR got_value, char *name, bfd *abfd, | |
1127 | struct lm_info *lm) | |
1128 | { | |
1129 | arelent *rel; | |
1130 | unsigned int i; | |
1131 | CORE_ADDR addr = 0; | |
1132 | ||
1133 | /* Nothing to do if no bfd. */ | |
1134 | if (abfd == 0) | |
1135 | return 0; | |
1136 | ||
35e08e03 KB |
1137 | /* Nothing to do if no link map. */ |
1138 | if (lm == 0) | |
1139 | return 0; | |
1140 | ||
c4d10515 KB |
1141 | /* We want to scan the dynamic relocs for R_FRV_FUNCDESC relocations. |
1142 | (More about this later.) But in order to fetch the relocs, we | |
1143 | need to first fetch the dynamic symbols. These symbols need to | |
1144 | be cached due to the way that bfd_canonicalize_dynamic_reloc() | |
1145 | works. (See the comments in the declaration of struct lm_info | |
1146 | for more information.) */ | |
1147 | if (lm->dyn_syms == NULL) | |
1148 | { | |
1149 | long storage_needed; | |
1150 | unsigned int number_of_symbols; | |
1151 | ||
1152 | /* Determine amount of space needed to hold the dynamic symbol table. */ | |
1153 | storage_needed = bfd_get_dynamic_symtab_upper_bound (abfd); | |
1154 | ||
1155 | /* If there are no dynamic symbols, there's nothing to do. */ | |
1156 | if (storage_needed <= 0) | |
1157 | return 0; | |
1158 | ||
1159 | /* Allocate space for the dynamic symbol table. */ | |
1160 | lm->dyn_syms = (asymbol **) xmalloc (storage_needed); | |
1161 | ||
1162 | /* Fetch the dynamic symbol table. */ | |
1163 | number_of_symbols = bfd_canonicalize_dynamic_symtab (abfd, lm->dyn_syms); | |
1164 | ||
1165 | if (number_of_symbols == 0) | |
1166 | return 0; | |
1167 | } | |
1168 | ||
1169 | /* Fetch the dynamic relocations if not already cached. */ | |
1170 | if (lm->dyn_relocs == NULL) | |
1171 | { | |
1172 | long storage_needed; | |
1173 | ||
1174 | /* Determine amount of space needed to hold the dynamic relocs. */ | |
1175 | storage_needed = bfd_get_dynamic_reloc_upper_bound (abfd); | |
1176 | ||
1177 | /* Bail out if there are no dynamic relocs. */ | |
1178 | if (storage_needed <= 0) | |
1179 | return 0; | |
1180 | ||
1181 | /* Allocate space for the relocs. */ | |
1182 | lm->dyn_relocs = (arelent **) xmalloc (storage_needed); | |
1183 | ||
1184 | /* Fetch the dynamic relocs. */ | |
1185 | lm->dyn_reloc_count | |
1186 | = bfd_canonicalize_dynamic_reloc (abfd, lm->dyn_relocs, lm->dyn_syms); | |
1187 | } | |
1188 | ||
1189 | /* Search the dynamic relocs. */ | |
1190 | for (i = 0; i < lm->dyn_reloc_count; i++) | |
1191 | { | |
1192 | rel = lm->dyn_relocs[i]; | |
1193 | ||
1194 | /* Relocs of interest are those which meet the following | |
1195 | criteria: | |
1196 | ||
1197 | - the names match (assuming the caller could provide | |
1198 | a name which matches ``entry_point''). | |
1199 | - the relocation type must be R_FRV_FUNCDESC. Relocs | |
1200 | of this type are used (by the dynamic linker) to | |
1201 | look up the address of a canonical descriptor (allocating | |
1202 | it if need be) and initializing the GOT entry referred | |
1203 | to by the offset to the address of the descriptor. | |
1204 | ||
1205 | These relocs of interest may be used to obtain a | |
1206 | candidate descriptor by first adjusting the reloc's | |
1207 | address according to the link map and then dereferencing | |
1208 | this address (which is a GOT entry) to obtain a descriptor | |
1209 | address. */ | |
1210 | if ((name == 0 || strcmp (name, (*rel->sym_ptr_ptr)->name) == 0) | |
1211 | && rel->howto->type == R_FRV_FUNCDESC) | |
1212 | { | |
e2b7c966 | 1213 | gdb_byte buf [FRV_PTR_SIZE]; |
c4d10515 KB |
1214 | |
1215 | /* Compute address of address of candidate descriptor. */ | |
1216 | addr = rel->address + displacement_from_map (lm->map, rel->address); | |
1217 | ||
1218 | /* Fetch address of candidate descriptor. */ | |
1219 | if (target_read_memory (addr, buf, sizeof buf) != 0) | |
1220 | continue; | |
1221 | addr = extract_unsigned_integer (buf, sizeof buf); | |
1222 | ||
1223 | /* Check for matching entry point. */ | |
1224 | if (target_read_memory (addr, buf, sizeof buf) != 0) | |
1225 | continue; | |
1226 | if (extract_unsigned_integer (buf, sizeof buf) != entry_point) | |
1227 | continue; | |
1228 | ||
1229 | /* Check for matching got value. */ | |
1230 | if (target_read_memory (addr + 4, buf, sizeof buf) != 0) | |
1231 | continue; | |
1232 | if (extract_unsigned_integer (buf, sizeof buf) != got_value) | |
1233 | continue; | |
1234 | ||
1235 | /* Match was successful! Exit loop. */ | |
1236 | break; | |
1237 | } | |
1238 | } | |
1239 | ||
1240 | return addr; | |
1241 | } | |
1242 | ||
186993b4 KB |
1243 | /* Given an objfile, return the address of its link map. This value is |
1244 | needed for TLS support. */ | |
1245 | CORE_ADDR | |
1246 | frv_fetch_objfile_link_map (struct objfile *objfile) | |
1247 | { | |
1248 | struct so_list *so; | |
1249 | ||
1250 | /* Cause frv_current_sos() to be run if it hasn't been already. */ | |
1251 | if (main_lm_addr == 0) | |
1252 | solib_add (0, 0, 0, 1); | |
1253 | ||
1254 | /* frv_current_sos() will set main_lm_addr for the main executable. */ | |
1255 | if (objfile == symfile_objfile) | |
1256 | return main_lm_addr; | |
1257 | ||
1258 | /* The other link map addresses may be found by examining the list | |
1259 | of shared libraries. */ | |
1260 | for (so = master_so_list (); so; so = so->next) | |
1261 | { | |
1262 | if (so->objfile == objfile) | |
1263 | return so->lm_info->lm_addr; | |
1264 | } | |
1265 | ||
1266 | /* Not found! */ | |
1267 | return 0; | |
1268 | } | |
1269 | ||
917630e4 | 1270 | struct target_so_ops frv_so_ops; |
c4d10515 | 1271 | |
63807e1d PA |
1272 | /* Provide a prototype to silence -Wmissing-prototypes. */ |
1273 | extern initialize_file_ftype _initialize_frv_solib; | |
1274 | ||
c4d10515 KB |
1275 | void |
1276 | _initialize_frv_solib (void) | |
1277 | { | |
1278 | frv_so_ops.relocate_section_addresses = frv_relocate_section_addresses; | |
1279 | frv_so_ops.free_so = frv_free_so; | |
1280 | frv_so_ops.clear_solib = frv_clear_solib; | |
1281 | frv_so_ops.solib_create_inferior_hook = frv_solib_create_inferior_hook; | |
1282 | frv_so_ops.special_symbol_handling = frv_special_symbol_handling; | |
1283 | frv_so_ops.current_sos = frv_current_sos; | |
1284 | frv_so_ops.open_symbol_file_object = open_symbol_file_object; | |
1285 | frv_so_ops.in_dynsym_resolve_code = frv_in_dynsym_resolve_code; | |
1286 | ||
c4d10515 | 1287 | /* Debug this file's internals. */ |
85c07804 AC |
1288 | add_setshow_zinteger_cmd ("solib-frv", class_maintenance, |
1289 | &solib_frv_debug, _("\ | |
1290 | Set internal debugging of shared library code for FR-V."), _("\ | |
1291 | Show internal debugging of shared library code for FR-V."), _("\ | |
1292 | When non-zero, FR-V solib specific internal debugging is enabled."), | |
1293 | NULL, | |
1294 | NULL, /* FIXME: i18n: */ | |
1295 | &setdebuglist, &showdebuglist); | |
c4d10515 | 1296 | } |