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[deliverable/binutils-gdb.git] / gdb / solib-svr4.c
CommitLineData
ab31aa69 1/* Handle SVR4 shared libraries for GDB, the GNU Debugger.
2f4950cd 2
0b302171
JB
3 Copyright (C) 1990-1996, 1998-2001, 2003-2012 Free Software
4 Foundation, Inc.
13437d4b
KB
5
6 This file is part of GDB.
7
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
a9762ec7 10 the Free Software Foundation; either version 3 of the License, or
13437d4b
KB
11 (at your option) any later version.
12
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.
17
18 You should have received a copy of the GNU General Public License
a9762ec7 19 along with this program. If not, see <http://www.gnu.org/licenses/>. */
13437d4b 20
13437d4b
KB
21#include "defs.h"
22
13437d4b 23#include "elf/external.h"
21479ded 24#include "elf/common.h"
f7856c8f 25#include "elf/mips.h"
13437d4b
KB
26
27#include "symtab.h"
28#include "bfd.h"
29#include "symfile.h"
30#include "objfiles.h"
31#include "gdbcore.h"
13437d4b 32#include "target.h"
13437d4b 33#include "inferior.h"
fb14de7b 34#include "regcache.h"
2020b7ab 35#include "gdbthread.h"
1a816a87 36#include "observer.h"
13437d4b 37
4b188b9f
MK
38#include "gdb_assert.h"
39
13437d4b 40#include "solist.h"
bba93f6c 41#include "solib.h"
13437d4b
KB
42#include "solib-svr4.h"
43
2f4950cd 44#include "bfd-target.h"
cc10cae3 45#include "elf-bfd.h"
2f4950cd 46#include "exec.h"
8d4e36ba 47#include "auxv.h"
f1838a98 48#include "exceptions.h"
695c3173 49#include "gdb_bfd.h"
2f4950cd 50
e5e2b9ff 51static struct link_map_offsets *svr4_fetch_link_map_offsets (void);
d5a921c9 52static int svr4_have_link_map_offsets (void);
9f2982ff 53static void svr4_relocate_main_executable (void);
1c4dcb57 54
c378eb4e 55/* Link map info to include in an allocated so_list entry. */
13437d4b
KB
56
57struct lm_info
58 {
cc10cae3 59 /* Amount by which addresses in the binary should be relocated to
3957565a
JK
60 match the inferior. The direct inferior value is L_ADDR_INFERIOR.
61 When prelinking is involved and the prelink base address changes,
62 we may need a different offset - the recomputed offset is in L_ADDR.
63 It is commonly the same value. It is cached as we want to warn about
64 the difference and compute it only once. L_ADDR is valid
65 iff L_ADDR_P. */
66 CORE_ADDR l_addr, l_addr_inferior;
67 unsigned int l_addr_p : 1;
93a57060
DJ
68
69 /* The target location of lm. */
70 CORE_ADDR lm_addr;
3957565a
JK
71
72 /* Values read in from inferior's fields of the same name. */
73 CORE_ADDR l_ld, l_next, l_prev, l_name;
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KB
74 };
75
76/* On SVR4 systems, a list of symbols in the dynamic linker where
77 GDB can try to place a breakpoint to monitor shared library
78 events.
79
80 If none of these symbols are found, or other errors occur, then
81 SVR4 systems will fall back to using a symbol as the "startup
82 mapping complete" breakpoint address. */
83
bc043ef3 84static const char * const solib_break_names[] =
13437d4b
KB
85{
86 "r_debug_state",
87 "_r_debug_state",
88 "_dl_debug_state",
89 "rtld_db_dlactivity",
4c7dcb84 90 "__dl_rtld_db_dlactivity",
1f72e589 91 "_rtld_debug_state",
4c0122c8 92
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KB
93 NULL
94};
13437d4b 95
bc043ef3 96static const char * const bkpt_names[] =
13437d4b 97{
13437d4b 98 "_start",
ad3dcc5c 99 "__start",
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100 "main",
101 NULL
102};
13437d4b 103
bc043ef3 104static const char * const main_name_list[] =
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KB
105{
106 "main_$main",
107 NULL
108};
109
4d7b2d5b
JB
110/* Return non-zero if GDB_SO_NAME and INFERIOR_SO_NAME represent
111 the same shared library. */
112
113static int
114svr4_same_1 (const char *gdb_so_name, const char *inferior_so_name)
115{
116 if (strcmp (gdb_so_name, inferior_so_name) == 0)
117 return 1;
118
119 /* On Solaris, when starting inferior we think that dynamic linker is
d989b283
PP
120 /usr/lib/ld.so.1, but later on, the table of loaded shared libraries
121 contains /lib/ld.so.1. Sometimes one file is a link to another, but
4d7b2d5b
JB
122 sometimes they have identical content, but are not linked to each
123 other. We don't restrict this check for Solaris, but the chances
124 of running into this situation elsewhere are very low. */
125 if (strcmp (gdb_so_name, "/usr/lib/ld.so.1") == 0
126 && strcmp (inferior_so_name, "/lib/ld.so.1") == 0)
127 return 1;
128
129 /* Similarly, we observed the same issue with sparc64, but with
130 different locations. */
131 if (strcmp (gdb_so_name, "/usr/lib/sparcv9/ld.so.1") == 0
132 && strcmp (inferior_so_name, "/lib/sparcv9/ld.so.1") == 0)
133 return 1;
134
135 return 0;
136}
137
138static int
139svr4_same (struct so_list *gdb, struct so_list *inferior)
140{
141 return (svr4_same_1 (gdb->so_original_name, inferior->so_original_name));
142}
143
3957565a
JK
144static struct lm_info *
145lm_info_read (CORE_ADDR lm_addr)
13437d4b 146{
4b188b9f 147 struct link_map_offsets *lmo = svr4_fetch_link_map_offsets ();
3957565a
JK
148 gdb_byte *lm;
149 struct lm_info *lm_info;
150 struct cleanup *back_to;
151
152 lm = xmalloc (lmo->link_map_size);
153 back_to = make_cleanup (xfree, lm);
154
155 if (target_read_memory (lm_addr, lm, lmo->link_map_size) != 0)
156 {
157 warning (_("Error reading shared library list entry at %s"),
f5656ead 158 paddress (target_gdbarch (), lm_addr)),
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JK
159 lm_info = NULL;
160 }
161 else
162 {
f5656ead 163 struct type *ptr_type = builtin_type (target_gdbarch ())->builtin_data_ptr;
13437d4b 164
3957565a
JK
165 lm_info = xzalloc (sizeof (*lm_info));
166 lm_info->lm_addr = lm_addr;
167
168 lm_info->l_addr_inferior = extract_typed_address (&lm[lmo->l_addr_offset],
169 ptr_type);
170 lm_info->l_ld = extract_typed_address (&lm[lmo->l_ld_offset], ptr_type);
171 lm_info->l_next = extract_typed_address (&lm[lmo->l_next_offset],
172 ptr_type);
173 lm_info->l_prev = extract_typed_address (&lm[lmo->l_prev_offset],
174 ptr_type);
175 lm_info->l_name = extract_typed_address (&lm[lmo->l_name_offset],
176 ptr_type);
177 }
178
179 do_cleanups (back_to);
180
181 return lm_info;
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KB
182}
183
cc10cae3 184static int
b23518f0 185has_lm_dynamic_from_link_map (void)
cc10cae3
AO
186{
187 struct link_map_offsets *lmo = svr4_fetch_link_map_offsets ();
188
cfaefc65 189 return lmo->l_ld_offset >= 0;
cc10cae3
AO
190}
191
cc10cae3 192static CORE_ADDR
b23518f0 193lm_addr_check (struct so_list *so, bfd *abfd)
cc10cae3 194{
3957565a 195 if (!so->lm_info->l_addr_p)
cc10cae3
AO
196 {
197 struct bfd_section *dyninfo_sect;
28f34a8f 198 CORE_ADDR l_addr, l_dynaddr, dynaddr;
cc10cae3 199
3957565a 200 l_addr = so->lm_info->l_addr_inferior;
cc10cae3 201
b23518f0 202 if (! abfd || ! has_lm_dynamic_from_link_map ())
cc10cae3
AO
203 goto set_addr;
204
3957565a 205 l_dynaddr = so->lm_info->l_ld;
cc10cae3
AO
206
207 dyninfo_sect = bfd_get_section_by_name (abfd, ".dynamic");
208 if (dyninfo_sect == NULL)
209 goto set_addr;
210
211 dynaddr = bfd_section_vma (abfd, dyninfo_sect);
212
213 if (dynaddr + l_addr != l_dynaddr)
214 {
28f34a8f 215 CORE_ADDR align = 0x1000;
4e1fc9c9 216 CORE_ADDR minpagesize = align;
28f34a8f 217
cc10cae3
AO
218 if (bfd_get_flavour (abfd) == bfd_target_elf_flavour)
219 {
220 Elf_Internal_Ehdr *ehdr = elf_tdata (abfd)->elf_header;
221 Elf_Internal_Phdr *phdr = elf_tdata (abfd)->phdr;
222 int i;
223
224 align = 1;
225
226 for (i = 0; i < ehdr->e_phnum; i++)
227 if (phdr[i].p_type == PT_LOAD && phdr[i].p_align > align)
228 align = phdr[i].p_align;
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JK
229
230 minpagesize = get_elf_backend_data (abfd)->minpagesize;
cc10cae3
AO
231 }
232
233 /* Turn it into a mask. */
234 align--;
235
236 /* If the changes match the alignment requirements, we
237 assume we're using a core file that was generated by the
238 same binary, just prelinked with a different base offset.
239 If it doesn't match, we may have a different binary, the
240 same binary with the dynamic table loaded at an unrelated
241 location, or anything, really. To avoid regressions,
242 don't adjust the base offset in the latter case, although
243 odds are that, if things really changed, debugging won't
5c0d192f
JK
244 quite work.
245
246 One could expect more the condition
247 ((l_addr & align) == 0 && ((l_dynaddr - dynaddr) & align) == 0)
248 but the one below is relaxed for PPC. The PPC kernel supports
249 either 4k or 64k page sizes. To be prepared for 64k pages,
250 PPC ELF files are built using an alignment requirement of 64k.
251 However, when running on a kernel supporting 4k pages, the memory
252 mapping of the library may not actually happen on a 64k boundary!
253
254 (In the usual case where (l_addr & align) == 0, this check is
4e1fc9c9
JK
255 equivalent to the possibly expected check above.)
256
257 Even on PPC it must be zero-aligned at least for MINPAGESIZE. */
5c0d192f 258
02835898
JK
259 l_addr = l_dynaddr - dynaddr;
260
4e1fc9c9
JK
261 if ((l_addr & (minpagesize - 1)) == 0
262 && (l_addr & align) == ((l_dynaddr - dynaddr) & align))
cc10cae3 263 {
701ed6dc 264 if (info_verbose)
ccf26247
JK
265 printf_unfiltered (_("Using PIC (Position Independent Code) "
266 "prelink displacement %s for \"%s\".\n"),
f5656ead 267 paddress (target_gdbarch (), l_addr),
ccf26247 268 so->so_name);
cc10cae3 269 }
79d4c408 270 else
02835898
JK
271 {
272 /* There is no way to verify the library file matches. prelink
273 can during prelinking of an unprelinked file (or unprelinking
274 of a prelinked file) shift the DYNAMIC segment by arbitrary
275 offset without any page size alignment. There is no way to
276 find out the ELF header and/or Program Headers for a limited
277 verification if it they match. One could do a verification
278 of the DYNAMIC segment. Still the found address is the best
279 one GDB could find. */
280
281 warning (_(".dynamic section for \"%s\" "
282 "is not at the expected address "
283 "(wrong library or version mismatch?)"), so->so_name);
284 }
cc10cae3
AO
285 }
286
287 set_addr:
288 so->lm_info->l_addr = l_addr;
3957565a 289 so->lm_info->l_addr_p = 1;
cc10cae3
AO
290 }
291
292 return so->lm_info->l_addr;
293}
294
6c95b8df 295/* Per pspace SVR4 specific data. */
13437d4b 296
1a816a87
PA
297struct svr4_info
298{
c378eb4e 299 CORE_ADDR debug_base; /* Base of dynamic linker structures. */
1a816a87
PA
300
301 /* Validity flag for debug_loader_offset. */
302 int debug_loader_offset_p;
303
304 /* Load address for the dynamic linker, inferred. */
305 CORE_ADDR debug_loader_offset;
306
307 /* Name of the dynamic linker, valid if debug_loader_offset_p. */
308 char *debug_loader_name;
309
310 /* Load map address for the main executable. */
311 CORE_ADDR main_lm_addr;
1a816a87 312
6c95b8df
PA
313 CORE_ADDR interp_text_sect_low;
314 CORE_ADDR interp_text_sect_high;
315 CORE_ADDR interp_plt_sect_low;
316 CORE_ADDR interp_plt_sect_high;
317};
1a816a87 318
6c95b8df
PA
319/* Per-program-space data key. */
320static const struct program_space_data *solib_svr4_pspace_data;
1a816a87 321
6c95b8df
PA
322static void
323svr4_pspace_data_cleanup (struct program_space *pspace, void *arg)
1a816a87 324{
6c95b8df 325 struct svr4_info *info;
1a816a87 326
6c95b8df
PA
327 info = program_space_data (pspace, solib_svr4_pspace_data);
328 xfree (info);
1a816a87
PA
329}
330
6c95b8df
PA
331/* Get the current svr4 data. If none is found yet, add it now. This
332 function always returns a valid object. */
34439770 333
6c95b8df
PA
334static struct svr4_info *
335get_svr4_info (void)
1a816a87 336{
6c95b8df 337 struct svr4_info *info;
1a816a87 338
6c95b8df
PA
339 info = program_space_data (current_program_space, solib_svr4_pspace_data);
340 if (info != NULL)
341 return info;
34439770 342
6c95b8df
PA
343 info = XZALLOC (struct svr4_info);
344 set_program_space_data (current_program_space, solib_svr4_pspace_data, info);
345 return info;
1a816a87 346}
93a57060 347
13437d4b
KB
348/* Local function prototypes */
349
bc043ef3 350static int match_main (const char *);
13437d4b 351
97ec2c2f
UW
352/* Read program header TYPE from inferior memory. The header is found
353 by scanning the OS auxillary vector.
354
09919ac2
JK
355 If TYPE == -1, return the program headers instead of the contents of
356 one program header.
357
97ec2c2f
UW
358 Return a pointer to allocated memory holding the program header contents,
359 or NULL on failure. If sucessful, and unless P_SECT_SIZE is NULL, the
360 size of those contents is returned to P_SECT_SIZE. Likewise, the target
361 architecture size (32-bit or 64-bit) is returned to P_ARCH_SIZE. */
362
363static gdb_byte *
364read_program_header (int type, int *p_sect_size, int *p_arch_size)
365{
f5656ead 366 enum bfd_endian byte_order = gdbarch_byte_order (target_gdbarch ());
43136979 367 CORE_ADDR at_phdr, at_phent, at_phnum, pt_phdr = 0;
97ec2c2f
UW
368 int arch_size, sect_size;
369 CORE_ADDR sect_addr;
370 gdb_byte *buf;
43136979 371 int pt_phdr_p = 0;
97ec2c2f
UW
372
373 /* Get required auxv elements from target. */
374 if (target_auxv_search (&current_target, AT_PHDR, &at_phdr) <= 0)
375 return 0;
376 if (target_auxv_search (&current_target, AT_PHENT, &at_phent) <= 0)
377 return 0;
378 if (target_auxv_search (&current_target, AT_PHNUM, &at_phnum) <= 0)
379 return 0;
380 if (!at_phdr || !at_phnum)
381 return 0;
382
383 /* Determine ELF architecture type. */
384 if (at_phent == sizeof (Elf32_External_Phdr))
385 arch_size = 32;
386 else if (at_phent == sizeof (Elf64_External_Phdr))
387 arch_size = 64;
388 else
389 return 0;
390
09919ac2
JK
391 /* Find the requested segment. */
392 if (type == -1)
393 {
394 sect_addr = at_phdr;
395 sect_size = at_phent * at_phnum;
396 }
397 else if (arch_size == 32)
97ec2c2f
UW
398 {
399 Elf32_External_Phdr phdr;
400 int i;
401
402 /* Search for requested PHDR. */
403 for (i = 0; i < at_phnum; i++)
404 {
43136979
AR
405 int p_type;
406
97ec2c2f
UW
407 if (target_read_memory (at_phdr + i * sizeof (phdr),
408 (gdb_byte *)&phdr, sizeof (phdr)))
409 return 0;
410
43136979
AR
411 p_type = extract_unsigned_integer ((gdb_byte *) phdr.p_type,
412 4, byte_order);
413
414 if (p_type == PT_PHDR)
415 {
416 pt_phdr_p = 1;
417 pt_phdr = extract_unsigned_integer ((gdb_byte *) phdr.p_vaddr,
418 4, byte_order);
419 }
420
421 if (p_type == type)
97ec2c2f
UW
422 break;
423 }
424
425 if (i == at_phnum)
426 return 0;
427
428 /* Retrieve address and size. */
e17a4113
UW
429 sect_addr = extract_unsigned_integer ((gdb_byte *)phdr.p_vaddr,
430 4, byte_order);
431 sect_size = extract_unsigned_integer ((gdb_byte *)phdr.p_memsz,
432 4, byte_order);
97ec2c2f
UW
433 }
434 else
435 {
436 Elf64_External_Phdr phdr;
437 int i;
438
439 /* Search for requested PHDR. */
440 for (i = 0; i < at_phnum; i++)
441 {
43136979
AR
442 int p_type;
443
97ec2c2f
UW
444 if (target_read_memory (at_phdr + i * sizeof (phdr),
445 (gdb_byte *)&phdr, sizeof (phdr)))
446 return 0;
447
43136979
AR
448 p_type = extract_unsigned_integer ((gdb_byte *) phdr.p_type,
449 4, byte_order);
450
451 if (p_type == PT_PHDR)
452 {
453 pt_phdr_p = 1;
454 pt_phdr = extract_unsigned_integer ((gdb_byte *) phdr.p_vaddr,
455 8, byte_order);
456 }
457
458 if (p_type == type)
97ec2c2f
UW
459 break;
460 }
461
462 if (i == at_phnum)
463 return 0;
464
465 /* Retrieve address and size. */
e17a4113
UW
466 sect_addr = extract_unsigned_integer ((gdb_byte *)phdr.p_vaddr,
467 8, byte_order);
468 sect_size = extract_unsigned_integer ((gdb_byte *)phdr.p_memsz,
469 8, byte_order);
97ec2c2f
UW
470 }
471
43136979
AR
472 /* PT_PHDR is optional, but we really need it
473 for PIE to make this work in general. */
474
475 if (pt_phdr_p)
476 {
477 /* at_phdr is real address in memory. pt_phdr is what pheader says it is.
478 Relocation offset is the difference between the two. */
479 sect_addr = sect_addr + (at_phdr - pt_phdr);
480 }
481
97ec2c2f
UW
482 /* Read in requested program header. */
483 buf = xmalloc (sect_size);
484 if (target_read_memory (sect_addr, buf, sect_size))
485 {
486 xfree (buf);
487 return NULL;
488 }
489
490 if (p_arch_size)
491 *p_arch_size = arch_size;
492 if (p_sect_size)
493 *p_sect_size = sect_size;
494
495 return buf;
496}
497
498
499/* Return program interpreter string. */
500static gdb_byte *
501find_program_interpreter (void)
502{
503 gdb_byte *buf = NULL;
504
505 /* If we have an exec_bfd, use its section table. */
506 if (exec_bfd
507 && bfd_get_flavour (exec_bfd) == bfd_target_elf_flavour)
508 {
509 struct bfd_section *interp_sect;
510
511 interp_sect = bfd_get_section_by_name (exec_bfd, ".interp");
512 if (interp_sect != NULL)
513 {
97ec2c2f
UW
514 int sect_size = bfd_section_size (exec_bfd, interp_sect);
515
516 buf = xmalloc (sect_size);
517 bfd_get_section_contents (exec_bfd, interp_sect, buf, 0, sect_size);
518 }
519 }
520
521 /* If we didn't find it, use the target auxillary vector. */
522 if (!buf)
523 buf = read_program_header (PT_INTERP, NULL, NULL);
524
525 return buf;
526}
527
528
c378eb4e 529/* Scan for DYNTAG in .dynamic section of ABFD. If DYNTAG is found 1 is
3a40aaa0
UW
530 returned and the corresponding PTR is set. */
531
532static int
533scan_dyntag (int dyntag, bfd *abfd, CORE_ADDR *ptr)
534{
535 int arch_size, step, sect_size;
536 long dyn_tag;
b381ea14 537 CORE_ADDR dyn_ptr, dyn_addr;
65728c26 538 gdb_byte *bufend, *bufstart, *buf;
3a40aaa0
UW
539 Elf32_External_Dyn *x_dynp_32;
540 Elf64_External_Dyn *x_dynp_64;
541 struct bfd_section *sect;
61f0d762 542 struct target_section *target_section;
3a40aaa0
UW
543
544 if (abfd == NULL)
545 return 0;
0763ab81
PA
546
547 if (bfd_get_flavour (abfd) != bfd_target_elf_flavour)
548 return 0;
549
3a40aaa0
UW
550 arch_size = bfd_get_arch_size (abfd);
551 if (arch_size == -1)
0763ab81 552 return 0;
3a40aaa0
UW
553
554 /* Find the start address of the .dynamic section. */
555 sect = bfd_get_section_by_name (abfd, ".dynamic");
556 if (sect == NULL)
557 return 0;
61f0d762
JK
558
559 for (target_section = current_target_sections->sections;
560 target_section < current_target_sections->sections_end;
561 target_section++)
562 if (sect == target_section->the_bfd_section)
563 break;
b381ea14
JK
564 if (target_section < current_target_sections->sections_end)
565 dyn_addr = target_section->addr;
566 else
567 {
568 /* ABFD may come from OBJFILE acting only as a symbol file without being
569 loaded into the target (see add_symbol_file_command). This case is
570 such fallback to the file VMA address without the possibility of
571 having the section relocated to its actual in-memory address. */
572
573 dyn_addr = bfd_section_vma (abfd, sect);
574 }
3a40aaa0 575
65728c26
DJ
576 /* Read in .dynamic from the BFD. We will get the actual value
577 from memory later. */
3a40aaa0 578 sect_size = bfd_section_size (abfd, sect);
65728c26
DJ
579 buf = bufstart = alloca (sect_size);
580 if (!bfd_get_section_contents (abfd, sect,
581 buf, 0, sect_size))
582 return 0;
3a40aaa0
UW
583
584 /* Iterate over BUF and scan for DYNTAG. If found, set PTR and return. */
585 step = (arch_size == 32) ? sizeof (Elf32_External_Dyn)
586 : sizeof (Elf64_External_Dyn);
587 for (bufend = buf + sect_size;
588 buf < bufend;
589 buf += step)
590 {
591 if (arch_size == 32)
592 {
593 x_dynp_32 = (Elf32_External_Dyn *) buf;
594 dyn_tag = bfd_h_get_32 (abfd, (bfd_byte *) x_dynp_32->d_tag);
595 dyn_ptr = bfd_h_get_32 (abfd, (bfd_byte *) x_dynp_32->d_un.d_ptr);
596 }
65728c26 597 else
3a40aaa0
UW
598 {
599 x_dynp_64 = (Elf64_External_Dyn *) buf;
600 dyn_tag = bfd_h_get_64 (abfd, (bfd_byte *) x_dynp_64->d_tag);
601 dyn_ptr = bfd_h_get_64 (abfd, (bfd_byte *) x_dynp_64->d_un.d_ptr);
602 }
603 if (dyn_tag == DT_NULL)
604 return 0;
605 if (dyn_tag == dyntag)
606 {
65728c26
DJ
607 /* If requested, try to read the runtime value of this .dynamic
608 entry. */
3a40aaa0 609 if (ptr)
65728c26 610 {
b6da22b0 611 struct type *ptr_type;
65728c26
DJ
612 gdb_byte ptr_buf[8];
613 CORE_ADDR ptr_addr;
614
f5656ead 615 ptr_type = builtin_type (target_gdbarch ())->builtin_data_ptr;
b381ea14 616 ptr_addr = dyn_addr + (buf - bufstart) + arch_size / 8;
65728c26 617 if (target_read_memory (ptr_addr, ptr_buf, arch_size / 8) == 0)
b6da22b0 618 dyn_ptr = extract_typed_address (ptr_buf, ptr_type);
65728c26
DJ
619 *ptr = dyn_ptr;
620 }
621 return 1;
3a40aaa0
UW
622 }
623 }
624
625 return 0;
626}
627
97ec2c2f
UW
628/* Scan for DYNTAG in .dynamic section of the target's main executable,
629 found by consulting the OS auxillary vector. If DYNTAG is found 1 is
630 returned and the corresponding PTR is set. */
631
632static int
633scan_dyntag_auxv (int dyntag, CORE_ADDR *ptr)
634{
f5656ead 635 enum bfd_endian byte_order = gdbarch_byte_order (target_gdbarch ());
97ec2c2f
UW
636 int sect_size, arch_size, step;
637 long dyn_tag;
638 CORE_ADDR dyn_ptr;
639 gdb_byte *bufend, *bufstart, *buf;
640
641 /* Read in .dynamic section. */
642 buf = bufstart = read_program_header (PT_DYNAMIC, &sect_size, &arch_size);
643 if (!buf)
644 return 0;
645
646 /* Iterate over BUF and scan for DYNTAG. If found, set PTR and return. */
647 step = (arch_size == 32) ? sizeof (Elf32_External_Dyn)
648 : sizeof (Elf64_External_Dyn);
649 for (bufend = buf + sect_size;
650 buf < bufend;
651 buf += step)
652 {
653 if (arch_size == 32)
654 {
655 Elf32_External_Dyn *dynp = (Elf32_External_Dyn *) buf;
433759f7 656
e17a4113
UW
657 dyn_tag = extract_unsigned_integer ((gdb_byte *) dynp->d_tag,
658 4, byte_order);
659 dyn_ptr = extract_unsigned_integer ((gdb_byte *) dynp->d_un.d_ptr,
660 4, byte_order);
97ec2c2f
UW
661 }
662 else
663 {
664 Elf64_External_Dyn *dynp = (Elf64_External_Dyn *) buf;
433759f7 665
e17a4113
UW
666 dyn_tag = extract_unsigned_integer ((gdb_byte *) dynp->d_tag,
667 8, byte_order);
668 dyn_ptr = extract_unsigned_integer ((gdb_byte *) dynp->d_un.d_ptr,
669 8, byte_order);
97ec2c2f
UW
670 }
671 if (dyn_tag == DT_NULL)
672 break;
673
674 if (dyn_tag == dyntag)
675 {
676 if (ptr)
677 *ptr = dyn_ptr;
678
679 xfree (bufstart);
680 return 1;
681 }
682 }
683
684 xfree (bufstart);
685 return 0;
686}
687
7f86f058
PA
688/* Locate the base address of dynamic linker structs for SVR4 elf
689 targets.
13437d4b
KB
690
691 For SVR4 elf targets the address of the dynamic linker's runtime
692 structure is contained within the dynamic info section in the
693 executable file. The dynamic section is also mapped into the
694 inferior address space. Because the runtime loader fills in the
695 real address before starting the inferior, we have to read in the
696 dynamic info section from the inferior address space.
697 If there are any errors while trying to find the address, we
7f86f058 698 silently return 0, otherwise the found address is returned. */
13437d4b
KB
699
700static CORE_ADDR
701elf_locate_base (void)
702{
3a40aaa0
UW
703 struct minimal_symbol *msymbol;
704 CORE_ADDR dyn_ptr;
13437d4b 705
65728c26
DJ
706 /* Look for DT_MIPS_RLD_MAP first. MIPS executables use this
707 instead of DT_DEBUG, although they sometimes contain an unused
708 DT_DEBUG. */
97ec2c2f
UW
709 if (scan_dyntag (DT_MIPS_RLD_MAP, exec_bfd, &dyn_ptr)
710 || scan_dyntag_auxv (DT_MIPS_RLD_MAP, &dyn_ptr))
3a40aaa0 711 {
f5656ead 712 struct type *ptr_type = builtin_type (target_gdbarch ())->builtin_data_ptr;
3a40aaa0 713 gdb_byte *pbuf;
b6da22b0 714 int pbuf_size = TYPE_LENGTH (ptr_type);
433759f7 715
3a40aaa0
UW
716 pbuf = alloca (pbuf_size);
717 /* DT_MIPS_RLD_MAP contains a pointer to the address
718 of the dynamic link structure. */
719 if (target_read_memory (dyn_ptr, pbuf, pbuf_size))
e499d0f1 720 return 0;
b6da22b0 721 return extract_typed_address (pbuf, ptr_type);
e499d0f1
DJ
722 }
723
65728c26 724 /* Find DT_DEBUG. */
97ec2c2f
UW
725 if (scan_dyntag (DT_DEBUG, exec_bfd, &dyn_ptr)
726 || scan_dyntag_auxv (DT_DEBUG, &dyn_ptr))
65728c26
DJ
727 return dyn_ptr;
728
3a40aaa0
UW
729 /* This may be a static executable. Look for the symbol
730 conventionally named _r_debug, as a last resort. */
731 msymbol = lookup_minimal_symbol ("_r_debug", NULL, symfile_objfile);
732 if (msymbol != NULL)
733 return SYMBOL_VALUE_ADDRESS (msymbol);
13437d4b
KB
734
735 /* DT_DEBUG entry not found. */
736 return 0;
737}
738
7f86f058 739/* Locate the base address of dynamic linker structs.
13437d4b
KB
740
741 For both the SunOS and SVR4 shared library implementations, if the
742 inferior executable has been linked dynamically, there is a single
743 address somewhere in the inferior's data space which is the key to
744 locating all of the dynamic linker's runtime structures. This
745 address is the value of the debug base symbol. The job of this
746 function is to find and return that address, or to return 0 if there
747 is no such address (the executable is statically linked for example).
748
749 For SunOS, the job is almost trivial, since the dynamic linker and
750 all of it's structures are statically linked to the executable at
751 link time. Thus the symbol for the address we are looking for has
752 already been added to the minimal symbol table for the executable's
753 objfile at the time the symbol file's symbols were read, and all we
754 have to do is look it up there. Note that we explicitly do NOT want
755 to find the copies in the shared library.
756
757 The SVR4 version is a bit more complicated because the address
758 is contained somewhere in the dynamic info section. We have to go
759 to a lot more work to discover the address of the debug base symbol.
760 Because of this complexity, we cache the value we find and return that
761 value on subsequent invocations. Note there is no copy in the
7f86f058 762 executable symbol tables. */
13437d4b
KB
763
764static CORE_ADDR
1a816a87 765locate_base (struct svr4_info *info)
13437d4b 766{
13437d4b
KB
767 /* Check to see if we have a currently valid address, and if so, avoid
768 doing all this work again and just return the cached address. If
769 we have no cached address, try to locate it in the dynamic info
d5a921c9
KB
770 section for ELF executables. There's no point in doing any of this
771 though if we don't have some link map offsets to work with. */
13437d4b 772
1a816a87 773 if (info->debug_base == 0 && svr4_have_link_map_offsets ())
0763ab81 774 info->debug_base = elf_locate_base ();
1a816a87 775 return info->debug_base;
13437d4b
KB
776}
777
e4cd0d6a 778/* Find the first element in the inferior's dynamic link map, and
6f992fbf
JB
779 return its address in the inferior. Return zero if the address
780 could not be determined.
13437d4b 781
e4cd0d6a
MK
782 FIXME: Perhaps we should validate the info somehow, perhaps by
783 checking r_version for a known version number, or r_state for
784 RT_CONSISTENT. */
13437d4b
KB
785
786static CORE_ADDR
1a816a87 787solib_svr4_r_map (struct svr4_info *info)
13437d4b 788{
4b188b9f 789 struct link_map_offsets *lmo = svr4_fetch_link_map_offsets ();
f5656ead 790 struct type *ptr_type = builtin_type (target_gdbarch ())->builtin_data_ptr;
08597104
JB
791 CORE_ADDR addr = 0;
792 volatile struct gdb_exception ex;
13437d4b 793
08597104
JB
794 TRY_CATCH (ex, RETURN_MASK_ERROR)
795 {
796 addr = read_memory_typed_address (info->debug_base + lmo->r_map_offset,
797 ptr_type);
798 }
799 exception_print (gdb_stderr, ex);
800 return addr;
e4cd0d6a 801}
13437d4b 802
7cd25cfc
DJ
803/* Find r_brk from the inferior's debug base. */
804
805static CORE_ADDR
1a816a87 806solib_svr4_r_brk (struct svr4_info *info)
7cd25cfc
DJ
807{
808 struct link_map_offsets *lmo = svr4_fetch_link_map_offsets ();
f5656ead 809 struct type *ptr_type = builtin_type (target_gdbarch ())->builtin_data_ptr;
7cd25cfc 810
1a816a87
PA
811 return read_memory_typed_address (info->debug_base + lmo->r_brk_offset,
812 ptr_type);
7cd25cfc
DJ
813}
814
e4cd0d6a
MK
815/* Find the link map for the dynamic linker (if it is not in the
816 normal list of loaded shared objects). */
13437d4b 817
e4cd0d6a 818static CORE_ADDR
1a816a87 819solib_svr4_r_ldsomap (struct svr4_info *info)
e4cd0d6a
MK
820{
821 struct link_map_offsets *lmo = svr4_fetch_link_map_offsets ();
f5656ead
TT
822 struct type *ptr_type = builtin_type (target_gdbarch ())->builtin_data_ptr;
823 enum bfd_endian byte_order = gdbarch_byte_order (target_gdbarch ());
e4cd0d6a 824 ULONGEST version;
13437d4b 825
e4cd0d6a
MK
826 /* Check version, and return zero if `struct r_debug' doesn't have
827 the r_ldsomap member. */
1a816a87
PA
828 version
829 = read_memory_unsigned_integer (info->debug_base + lmo->r_version_offset,
e17a4113 830 lmo->r_version_size, byte_order);
e4cd0d6a
MK
831 if (version < 2 || lmo->r_ldsomap_offset == -1)
832 return 0;
13437d4b 833
1a816a87 834 return read_memory_typed_address (info->debug_base + lmo->r_ldsomap_offset,
b6da22b0 835 ptr_type);
13437d4b
KB
836}
837
de18c1d8
JM
838/* On Solaris systems with some versions of the dynamic linker,
839 ld.so's l_name pointer points to the SONAME in the string table
840 rather than into writable memory. So that GDB can find shared
841 libraries when loading a core file generated by gcore, ensure that
842 memory areas containing the l_name string are saved in the core
843 file. */
844
845static int
846svr4_keep_data_in_core (CORE_ADDR vaddr, unsigned long size)
847{
848 struct svr4_info *info;
849 CORE_ADDR ldsomap;
850 struct so_list *new;
851 struct cleanup *old_chain;
852 struct link_map_offsets *lmo;
74de0234 853 CORE_ADDR name_lm;
de18c1d8
JM
854
855 info = get_svr4_info ();
856
857 info->debug_base = 0;
858 locate_base (info);
859 if (!info->debug_base)
860 return 0;
861
862 ldsomap = solib_svr4_r_ldsomap (info);
863 if (!ldsomap)
864 return 0;
865
866 lmo = svr4_fetch_link_map_offsets ();
867 new = XZALLOC (struct so_list);
868 old_chain = make_cleanup (xfree, new);
3957565a 869 new->lm_info = lm_info_read (ldsomap);
de18c1d8 870 make_cleanup (xfree, new->lm_info);
3957565a 871 name_lm = new->lm_info ? new->lm_info->l_name : 0;
de18c1d8
JM
872 do_cleanups (old_chain);
873
74de0234 874 return (name_lm >= vaddr && name_lm < vaddr + size);
de18c1d8
JM
875}
876
7f86f058 877/* Implement the "open_symbol_file_object" target_so_ops method.
13437d4b 878
7f86f058
PA
879 If no open symbol file, attempt to locate and open the main symbol
880 file. On SVR4 systems, this is the first link map entry. If its
881 name is here, we can open it. Useful when attaching to a process
882 without first loading its symbol file. */
13437d4b
KB
883
884static int
885open_symbol_file_object (void *from_ttyp)
886{
887 CORE_ADDR lm, l_name;
888 char *filename;
889 int errcode;
890 int from_tty = *(int *)from_ttyp;
4b188b9f 891 struct link_map_offsets *lmo = svr4_fetch_link_map_offsets ();
f5656ead 892 struct type *ptr_type = builtin_type (target_gdbarch ())->builtin_data_ptr;
b6da22b0 893 int l_name_size = TYPE_LENGTH (ptr_type);
cfaefc65 894 gdb_byte *l_name_buf = xmalloc (l_name_size);
b8c9b27d 895 struct cleanup *cleanups = make_cleanup (xfree, l_name_buf);
6c95b8df 896 struct svr4_info *info = get_svr4_info ();
13437d4b
KB
897
898 if (symfile_objfile)
9e2f0ad4 899 if (!query (_("Attempt to reload symbols from process? ")))
3bb47e8b
TT
900 {
901 do_cleanups (cleanups);
902 return 0;
903 }
13437d4b 904
7cd25cfc 905 /* Always locate the debug struct, in case it has moved. */
1a816a87
PA
906 info->debug_base = 0;
907 if (locate_base (info) == 0)
3bb47e8b
TT
908 {
909 do_cleanups (cleanups);
910 return 0; /* failed somehow... */
911 }
13437d4b
KB
912
913 /* First link map member should be the executable. */
1a816a87 914 lm = solib_svr4_r_map (info);
e4cd0d6a 915 if (lm == 0)
3bb47e8b
TT
916 {
917 do_cleanups (cleanups);
918 return 0; /* failed somehow... */
919 }
13437d4b
KB
920
921 /* Read address of name from target memory to GDB. */
cfaefc65 922 read_memory (lm + lmo->l_name_offset, l_name_buf, l_name_size);
13437d4b 923
cfaefc65 924 /* Convert the address to host format. */
b6da22b0 925 l_name = extract_typed_address (l_name_buf, ptr_type);
13437d4b 926
13437d4b 927 if (l_name == 0)
3bb47e8b
TT
928 {
929 do_cleanups (cleanups);
930 return 0; /* No filename. */
931 }
13437d4b
KB
932
933 /* Now fetch the filename from target memory. */
934 target_read_string (l_name, &filename, SO_NAME_MAX_PATH_SIZE - 1, &errcode);
ea5bf0a1 935 make_cleanup (xfree, filename);
13437d4b
KB
936
937 if (errcode)
938 {
8a3fe4f8 939 warning (_("failed to read exec filename from attached file: %s"),
13437d4b 940 safe_strerror (errcode));
3bb47e8b 941 do_cleanups (cleanups);
13437d4b
KB
942 return 0;
943 }
944
13437d4b 945 /* Have a pathname: read the symbol file. */
1adeb98a 946 symbol_file_add_main (filename, from_tty);
13437d4b 947
3bb47e8b 948 do_cleanups (cleanups);
13437d4b
KB
949 return 1;
950}
13437d4b 951
2268b414
JK
952/* Data exchange structure for the XML parser as returned by
953 svr4_current_sos_via_xfer_libraries. */
954
955struct svr4_library_list
956{
957 struct so_list *head, **tailp;
958
959 /* Inferior address of struct link_map used for the main executable. It is
960 NULL if not known. */
961 CORE_ADDR main_lm;
962};
963
93f2a35e
JK
964/* Implementation for target_so_ops.free_so. */
965
966static void
967svr4_free_so (struct so_list *so)
968{
969 xfree (so->lm_info);
970}
971
972/* Free so_list built so far (called via cleanup). */
973
974static void
975svr4_free_library_list (void *p_list)
976{
977 struct so_list *list = *(struct so_list **) p_list;
978
979 while (list != NULL)
980 {
981 struct so_list *next = list->next;
982
3756ef7e 983 free_so (list);
93f2a35e
JK
984 list = next;
985 }
986}
987
2268b414
JK
988#ifdef HAVE_LIBEXPAT
989
990#include "xml-support.h"
991
992/* Handle the start of a <library> element. Note: new elements are added
993 at the tail of the list, keeping the list in order. */
994
995static void
996library_list_start_library (struct gdb_xml_parser *parser,
997 const struct gdb_xml_element *element,
998 void *user_data, VEC(gdb_xml_value_s) *attributes)
999{
1000 struct svr4_library_list *list = user_data;
1001 const char *name = xml_find_attribute (attributes, "name")->value;
1002 ULONGEST *lmp = xml_find_attribute (attributes, "lm")->value;
1003 ULONGEST *l_addrp = xml_find_attribute (attributes, "l_addr")->value;
1004 ULONGEST *l_ldp = xml_find_attribute (attributes, "l_ld")->value;
1005 struct so_list *new_elem;
1006
1007 new_elem = XZALLOC (struct so_list);
1008 new_elem->lm_info = XZALLOC (struct lm_info);
1009 new_elem->lm_info->lm_addr = *lmp;
1010 new_elem->lm_info->l_addr_inferior = *l_addrp;
1011 new_elem->lm_info->l_ld = *l_ldp;
1012
1013 strncpy (new_elem->so_name, name, sizeof (new_elem->so_name) - 1);
1014 new_elem->so_name[sizeof (new_elem->so_name) - 1] = 0;
1015 strcpy (new_elem->so_original_name, new_elem->so_name);
1016
1017 *list->tailp = new_elem;
1018 list->tailp = &new_elem->next;
1019}
1020
1021/* Handle the start of a <library-list-svr4> element. */
1022
1023static void
1024svr4_library_list_start_list (struct gdb_xml_parser *parser,
1025 const struct gdb_xml_element *element,
1026 void *user_data, VEC(gdb_xml_value_s) *attributes)
1027{
1028 struct svr4_library_list *list = user_data;
1029 const char *version = xml_find_attribute (attributes, "version")->value;
1030 struct gdb_xml_value *main_lm = xml_find_attribute (attributes, "main-lm");
1031
1032 if (strcmp (version, "1.0") != 0)
1033 gdb_xml_error (parser,
1034 _("SVR4 Library list has unsupported version \"%s\""),
1035 version);
1036
1037 if (main_lm)
1038 list->main_lm = *(ULONGEST *) main_lm->value;
1039}
1040
1041/* The allowed elements and attributes for an XML library list.
1042 The root element is a <library-list>. */
1043
1044static const struct gdb_xml_attribute svr4_library_attributes[] =
1045{
1046 { "name", GDB_XML_AF_NONE, NULL, NULL },
1047 { "lm", GDB_XML_AF_NONE, gdb_xml_parse_attr_ulongest, NULL },
1048 { "l_addr", GDB_XML_AF_NONE, gdb_xml_parse_attr_ulongest, NULL },
1049 { "l_ld", GDB_XML_AF_NONE, gdb_xml_parse_attr_ulongest, NULL },
1050 { NULL, GDB_XML_AF_NONE, NULL, NULL }
1051};
1052
1053static const struct gdb_xml_element svr4_library_list_children[] =
1054{
1055 {
1056 "library", svr4_library_attributes, NULL,
1057 GDB_XML_EF_REPEATABLE | GDB_XML_EF_OPTIONAL,
1058 library_list_start_library, NULL
1059 },
1060 { NULL, NULL, NULL, GDB_XML_EF_NONE, NULL, NULL }
1061};
1062
1063static const struct gdb_xml_attribute svr4_library_list_attributes[] =
1064{
1065 { "version", GDB_XML_AF_NONE, NULL, NULL },
1066 { "main-lm", GDB_XML_AF_OPTIONAL, gdb_xml_parse_attr_ulongest, NULL },
1067 { NULL, GDB_XML_AF_NONE, NULL, NULL }
1068};
1069
1070static const struct gdb_xml_element svr4_library_list_elements[] =
1071{
1072 { "library-list-svr4", svr4_library_list_attributes, svr4_library_list_children,
1073 GDB_XML_EF_NONE, svr4_library_list_start_list, NULL },
1074 { NULL, NULL, NULL, GDB_XML_EF_NONE, NULL, NULL }
1075};
1076
2268b414
JK
1077/* Parse qXfer:libraries:read packet into *SO_LIST_RETURN. Return 1 if
1078
1079 Return 0 if packet not supported, *SO_LIST_RETURN is not modified in such
1080 case. Return 1 if *SO_LIST_RETURN contains the library list, it may be
1081 empty, caller is responsible for freeing all its entries. */
1082
1083static int
1084svr4_parse_libraries (const char *document, struct svr4_library_list *list)
1085{
1086 struct cleanup *back_to = make_cleanup (svr4_free_library_list,
1087 &list->head);
1088
1089 memset (list, 0, sizeof (*list));
1090 list->tailp = &list->head;
1091 if (gdb_xml_parse_quick (_("target library list"), "library-list.dtd",
1092 svr4_library_list_elements, document, list) == 0)
1093 {
1094 /* Parsed successfully, keep the result. */
1095 discard_cleanups (back_to);
1096 return 1;
1097 }
1098
1099 do_cleanups (back_to);
1100 return 0;
1101}
1102
1103/* Attempt to get so_list from target via qXfer:libraries:read packet.
1104
1105 Return 0 if packet not supported, *SO_LIST_RETURN is not modified in such
1106 case. Return 1 if *SO_LIST_RETURN contains the library list, it may be
1107 empty, caller is responsible for freeing all its entries. */
1108
1109static int
1110svr4_current_sos_via_xfer_libraries (struct svr4_library_list *list)
1111{
1112 char *svr4_library_document;
1113 int result;
1114 struct cleanup *back_to;
1115
1116 /* Fetch the list of shared libraries. */
1117 svr4_library_document = target_read_stralloc (&current_target,
1118 TARGET_OBJECT_LIBRARIES_SVR4,
1119 NULL);
1120 if (svr4_library_document == NULL)
1121 return 0;
1122
1123 back_to = make_cleanup (xfree, svr4_library_document);
1124 result = svr4_parse_libraries (svr4_library_document, list);
1125 do_cleanups (back_to);
1126
1127 return result;
1128}
1129
1130#else
1131
1132static int
1133svr4_current_sos_via_xfer_libraries (struct svr4_library_list *list)
1134{
1135 return 0;
1136}
1137
1138#endif
1139
34439770
DJ
1140/* If no shared library information is available from the dynamic
1141 linker, build a fallback list from other sources. */
1142
1143static struct so_list *
1144svr4_default_sos (void)
1145{
6c95b8df 1146 struct svr4_info *info = get_svr4_info ();
8e5c319d 1147 struct so_list *new;
1a816a87 1148
8e5c319d
JK
1149 if (!info->debug_loader_offset_p)
1150 return NULL;
34439770 1151
8e5c319d 1152 new = XZALLOC (struct so_list);
34439770 1153
3957565a 1154 new->lm_info = xzalloc (sizeof (struct lm_info));
34439770 1155
3957565a 1156 /* Nothing will ever check the other fields if we set l_addr_p. */
8e5c319d 1157 new->lm_info->l_addr = info->debug_loader_offset;
3957565a 1158 new->lm_info->l_addr_p = 1;
34439770 1159
8e5c319d
JK
1160 strncpy (new->so_name, info->debug_loader_name, SO_NAME_MAX_PATH_SIZE - 1);
1161 new->so_name[SO_NAME_MAX_PATH_SIZE - 1] = '\0';
1162 strcpy (new->so_original_name, new->so_name);
34439770 1163
8e5c319d 1164 return new;
34439770
DJ
1165}
1166
cb08cc53
JK
1167/* Read the whole inferior libraries chain starting at address LM. Add the
1168 entries to the tail referenced by LINK_PTR_PTR. Ignore the first entry if
1169 IGNORE_FIRST and set global MAIN_LM_ADDR according to it. */
13437d4b 1170
cb08cc53
JK
1171static void
1172svr4_read_so_list (CORE_ADDR lm, struct so_list ***link_ptr_ptr,
1173 int ignore_first)
13437d4b 1174{
cb08cc53 1175 CORE_ADDR prev_lm = 0, next_lm;
13437d4b 1176
cb08cc53 1177 for (; lm != 0; prev_lm = lm, lm = next_lm)
13437d4b 1178 {
4b188b9f 1179 struct link_map_offsets *lmo = svr4_fetch_link_map_offsets ();
cb08cc53
JK
1180 struct so_list *new;
1181 struct cleanup *old_chain;
1182 int errcode;
1183 char *buffer;
13437d4b 1184
cb08cc53
JK
1185 new = XZALLOC (struct so_list);
1186 old_chain = make_cleanup_free_so (new);
13437d4b 1187
3957565a
JK
1188 new->lm_info = lm_info_read (lm);
1189 if (new->lm_info == NULL)
1190 {
1191 do_cleanups (old_chain);
1192 break;
1193 }
13437d4b 1194
3957565a 1195 next_lm = new->lm_info->l_next;
492928e4 1196
3957565a 1197 if (new->lm_info->l_prev != prev_lm)
492928e4 1198 {
2268b414 1199 warning (_("Corrupted shared library list: %s != %s"),
f5656ead
TT
1200 paddress (target_gdbarch (), prev_lm),
1201 paddress (target_gdbarch (), new->lm_info->l_prev));
cb08cc53
JK
1202 do_cleanups (old_chain);
1203 break;
492928e4 1204 }
13437d4b
KB
1205
1206 /* For SVR4 versions, the first entry in the link map is for the
1207 inferior executable, so we must ignore it. For some versions of
1208 SVR4, it has no name. For others (Solaris 2.3 for example), it
1209 does have a name, so we can no longer use a missing name to
c378eb4e 1210 decide when to ignore it. */
3957565a 1211 if (ignore_first && new->lm_info->l_prev == 0)
93a57060 1212 {
cb08cc53
JK
1213 struct svr4_info *info = get_svr4_info ();
1214
1a816a87 1215 info->main_lm_addr = new->lm_info->lm_addr;
cb08cc53
JK
1216 do_cleanups (old_chain);
1217 continue;
93a57060 1218 }
13437d4b 1219
cb08cc53 1220 /* Extract this shared object's name. */
3957565a 1221 target_read_string (new->lm_info->l_name, &buffer,
cb08cc53
JK
1222 SO_NAME_MAX_PATH_SIZE - 1, &errcode);
1223 if (errcode != 0)
1224 {
1225 warning (_("Can't read pathname for load map: %s."),
1226 safe_strerror (errcode));
1227 do_cleanups (old_chain);
1228 continue;
13437d4b
KB
1229 }
1230
cb08cc53
JK
1231 strncpy (new->so_name, buffer, SO_NAME_MAX_PATH_SIZE - 1);
1232 new->so_name[SO_NAME_MAX_PATH_SIZE - 1] = '\0';
1233 strcpy (new->so_original_name, new->so_name);
1234 xfree (buffer);
492928e4 1235
cb08cc53
JK
1236 /* If this entry has no name, or its name matches the name
1237 for the main executable, don't include it in the list. */
1238 if (! new->so_name[0] || match_main (new->so_name))
492928e4 1239 {
cb08cc53
JK
1240 do_cleanups (old_chain);
1241 continue;
492928e4 1242 }
e4cd0d6a 1243
13437d4b 1244 discard_cleanups (old_chain);
cb08cc53
JK
1245 new->next = 0;
1246 **link_ptr_ptr = new;
1247 *link_ptr_ptr = &new->next;
13437d4b 1248 }
cb08cc53
JK
1249}
1250
1251/* Implement the "current_sos" target_so_ops method. */
1252
1253static struct so_list *
1254svr4_current_sos (void)
1255{
1256 CORE_ADDR lm;
1257 struct so_list *head = NULL;
1258 struct so_list **link_ptr = &head;
1259 struct svr4_info *info;
1260 struct cleanup *back_to;
1261 int ignore_first;
2268b414
JK
1262 struct svr4_library_list library_list;
1263
0c5bf5a9
JK
1264 /* Fall back to manual examination of the target if the packet is not
1265 supported or gdbserver failed to find DT_DEBUG. gdb.server/solib-list.exp
1266 tests a case where gdbserver cannot find the shared libraries list while
1267 GDB itself is able to find it via SYMFILE_OBJFILE.
1268
1269 Unfortunately statically linked inferiors will also fall back through this
1270 suboptimal code path. */
1271
2268b414
JK
1272 if (svr4_current_sos_via_xfer_libraries (&library_list))
1273 {
1274 if (library_list.main_lm)
1275 {
1276 info = get_svr4_info ();
1277 info->main_lm_addr = library_list.main_lm;
1278 }
1279
1280 return library_list.head ? library_list.head : svr4_default_sos ();
1281 }
cb08cc53
JK
1282
1283 info = get_svr4_info ();
1284
1285 /* Always locate the debug struct, in case it has moved. */
1286 info->debug_base = 0;
1287 locate_base (info);
1288
1289 /* If we can't find the dynamic linker's base structure, this
1290 must not be a dynamically linked executable. Hmm. */
1291 if (! info->debug_base)
1292 return svr4_default_sos ();
1293
1294 /* Assume that everything is a library if the dynamic loader was loaded
1295 late by a static executable. */
1296 if (exec_bfd && bfd_get_section_by_name (exec_bfd, ".dynamic") == NULL)
1297 ignore_first = 0;
1298 else
1299 ignore_first = 1;
1300
1301 back_to = make_cleanup (svr4_free_library_list, &head);
1302
1303 /* Walk the inferior's link map list, and build our list of
1304 `struct so_list' nodes. */
1305 lm = solib_svr4_r_map (info);
1306 if (lm)
1307 svr4_read_so_list (lm, &link_ptr, ignore_first);
1308
1309 /* On Solaris, the dynamic linker is not in the normal list of
1310 shared objects, so make sure we pick it up too. Having
1311 symbol information for the dynamic linker is quite crucial
1312 for skipping dynamic linker resolver code. */
1313 lm = solib_svr4_r_ldsomap (info);
1314 if (lm)
1315 svr4_read_so_list (lm, &link_ptr, 0);
1316
1317 discard_cleanups (back_to);
13437d4b 1318
34439770
DJ
1319 if (head == NULL)
1320 return svr4_default_sos ();
1321
13437d4b
KB
1322 return head;
1323}
1324
93a57060 1325/* Get the address of the link_map for a given OBJFILE. */
bc4a16ae
EZ
1326
1327CORE_ADDR
1328svr4_fetch_objfile_link_map (struct objfile *objfile)
1329{
93a57060 1330 struct so_list *so;
6c95b8df 1331 struct svr4_info *info = get_svr4_info ();
bc4a16ae 1332
93a57060 1333 /* Cause svr4_current_sos() to be run if it hasn't been already. */
1a816a87 1334 if (info->main_lm_addr == 0)
93a57060 1335 solib_add (NULL, 0, &current_target, auto_solib_add);
bc4a16ae 1336
93a57060
DJ
1337 /* svr4_current_sos() will set main_lm_addr for the main executable. */
1338 if (objfile == symfile_objfile)
1a816a87 1339 return info->main_lm_addr;
93a57060
DJ
1340
1341 /* The other link map addresses may be found by examining the list
1342 of shared libraries. */
1343 for (so = master_so_list (); so; so = so->next)
1344 if (so->objfile == objfile)
1345 return so->lm_info->lm_addr;
1346
1347 /* Not found! */
bc4a16ae
EZ
1348 return 0;
1349}
13437d4b
KB
1350
1351/* On some systems, the only way to recognize the link map entry for
1352 the main executable file is by looking at its name. Return
1353 non-zero iff SONAME matches one of the known main executable names. */
1354
1355static int
bc043ef3 1356match_main (const char *soname)
13437d4b 1357{
bc043ef3 1358 const char * const *mainp;
13437d4b
KB
1359
1360 for (mainp = main_name_list; *mainp != NULL; mainp++)
1361 {
1362 if (strcmp (soname, *mainp) == 0)
1363 return (1);
1364 }
1365
1366 return (0);
1367}
1368
13437d4b
KB
1369/* Return 1 if PC lies in the dynamic symbol resolution code of the
1370 SVR4 run time loader. */
13437d4b 1371
7d522c90 1372int
d7fa2ae2 1373svr4_in_dynsym_resolve_code (CORE_ADDR pc)
13437d4b 1374{
6c95b8df
PA
1375 struct svr4_info *info = get_svr4_info ();
1376
1377 return ((pc >= info->interp_text_sect_low
1378 && pc < info->interp_text_sect_high)
1379 || (pc >= info->interp_plt_sect_low
1380 && pc < info->interp_plt_sect_high)
0875794a
JK
1381 || in_plt_section (pc, NULL)
1382 || in_gnu_ifunc_stub (pc));
13437d4b 1383}
13437d4b 1384
2f4950cd
AC
1385/* Given an executable's ABFD and target, compute the entry-point
1386 address. */
1387
1388static CORE_ADDR
1389exec_entry_point (struct bfd *abfd, struct target_ops *targ)
1390{
8c2b9656
YQ
1391 CORE_ADDR addr;
1392
2f4950cd
AC
1393 /* KevinB wrote ... for most targets, the address returned by
1394 bfd_get_start_address() is the entry point for the start
1395 function. But, for some targets, bfd_get_start_address() returns
1396 the address of a function descriptor from which the entry point
1397 address may be extracted. This address is extracted by
1398 gdbarch_convert_from_func_ptr_addr(). The method
1399 gdbarch_convert_from_func_ptr_addr() is the merely the identify
1400 function for targets which don't use function descriptors. */
8c2b9656 1401 addr = gdbarch_convert_from_func_ptr_addr (target_gdbarch (),
2f4950cd
AC
1402 bfd_get_start_address (abfd),
1403 targ);
8c2b9656 1404 return gdbarch_addr_bits_remove (target_gdbarch (), addr);
2f4950cd 1405}
13437d4b 1406
cb457ae2
YQ
1407/* Helper function for gdb_bfd_lookup_symbol. */
1408
1409static int
1410cmp_name_and_sec_flags (asymbol *sym, void *data)
1411{
1412 return (strcmp (sym->name, (const char *) data) == 0
1413 && (sym->section->flags & (SEC_CODE | SEC_DATA)) != 0);
1414}
7f86f058 1415/* Arrange for dynamic linker to hit breakpoint.
13437d4b
KB
1416
1417 Both the SunOS and the SVR4 dynamic linkers have, as part of their
1418 debugger interface, support for arranging for the inferior to hit
1419 a breakpoint after mapping in the shared libraries. This function
1420 enables that breakpoint.
1421
1422 For SunOS, there is a special flag location (in_debugger) which we
1423 set to 1. When the dynamic linker sees this flag set, it will set
1424 a breakpoint at a location known only to itself, after saving the
1425 original contents of that place and the breakpoint address itself,
1426 in it's own internal structures. When we resume the inferior, it
1427 will eventually take a SIGTRAP when it runs into the breakpoint.
1428 We handle this (in a different place) by restoring the contents of
1429 the breakpointed location (which is only known after it stops),
1430 chasing around to locate the shared libraries that have been
1431 loaded, then resuming.
1432
1433 For SVR4, the debugger interface structure contains a member (r_brk)
1434 which is statically initialized at the time the shared library is
1435 built, to the offset of a function (_r_debug_state) which is guaran-
1436 teed to be called once before mapping in a library, and again when
1437 the mapping is complete. At the time we are examining this member,
1438 it contains only the unrelocated offset of the function, so we have
1439 to do our own relocation. Later, when the dynamic linker actually
1440 runs, it relocates r_brk to be the actual address of _r_debug_state().
1441
1442 The debugger interface structure also contains an enumeration which
1443 is set to either RT_ADD or RT_DELETE prior to changing the mapping,
1444 depending upon whether or not the library is being mapped or unmapped,
7f86f058 1445 and then set to RT_CONSISTENT after the library is mapped/unmapped. */
13437d4b
KB
1446
1447static int
268a4a75 1448enable_break (struct svr4_info *info, int from_tty)
13437d4b 1449{
13437d4b 1450 struct minimal_symbol *msymbol;
bc043ef3 1451 const char * const *bkpt_namep;
13437d4b 1452 asection *interp_sect;
97ec2c2f 1453 gdb_byte *interp_name;
7cd25cfc 1454 CORE_ADDR sym_addr;
13437d4b 1455
6c95b8df
PA
1456 info->interp_text_sect_low = info->interp_text_sect_high = 0;
1457 info->interp_plt_sect_low = info->interp_plt_sect_high = 0;
13437d4b 1458
7cd25cfc
DJ
1459 /* If we already have a shared library list in the target, and
1460 r_debug contains r_brk, set the breakpoint there - this should
1461 mean r_brk has already been relocated. Assume the dynamic linker
1462 is the object containing r_brk. */
1463
268a4a75 1464 solib_add (NULL, from_tty, &current_target, auto_solib_add);
7cd25cfc 1465 sym_addr = 0;
1a816a87
PA
1466 if (info->debug_base && solib_svr4_r_map (info) != 0)
1467 sym_addr = solib_svr4_r_brk (info);
7cd25cfc
DJ
1468
1469 if (sym_addr != 0)
1470 {
1471 struct obj_section *os;
1472
b36ec657 1473 sym_addr = gdbarch_addr_bits_remove
f5656ead 1474 (target_gdbarch (), gdbarch_convert_from_func_ptr_addr (target_gdbarch (),
3e43a32a
MS
1475 sym_addr,
1476 &current_target));
b36ec657 1477
48379de6
DE
1478 /* On at least some versions of Solaris there's a dynamic relocation
1479 on _r_debug.r_brk and SYM_ADDR may not be relocated yet, e.g., if
1480 we get control before the dynamic linker has self-relocated.
1481 Check if SYM_ADDR is in a known section, if it is assume we can
1482 trust its value. This is just a heuristic though, it could go away
1483 or be replaced if it's getting in the way.
1484
1485 On ARM we need to know whether the ISA of rtld_db_dlactivity (or
1486 however it's spelled in your particular system) is ARM or Thumb.
1487 That knowledge is encoded in the address, if it's Thumb the low bit
1488 is 1. However, we've stripped that info above and it's not clear
1489 what all the consequences are of passing a non-addr_bits_remove'd
1490 address to create_solib_event_breakpoint. The call to
1491 find_pc_section verifies we know about the address and have some
1492 hope of computing the right kind of breakpoint to use (via
1493 symbol info). It does mean that GDB needs to be pointed at a
1494 non-stripped version of the dynamic linker in order to obtain
1495 information it already knows about. Sigh. */
1496
7cd25cfc
DJ
1497 os = find_pc_section (sym_addr);
1498 if (os != NULL)
1499 {
1500 /* Record the relocated start and end address of the dynamic linker
1501 text and plt section for svr4_in_dynsym_resolve_code. */
1502 bfd *tmp_bfd;
1503 CORE_ADDR load_addr;
1504
1505 tmp_bfd = os->objfile->obfd;
1506 load_addr = ANOFFSET (os->objfile->section_offsets,
1507 os->objfile->sect_index_text);
1508
1509 interp_sect = bfd_get_section_by_name (tmp_bfd, ".text");
1510 if (interp_sect)
1511 {
6c95b8df 1512 info->interp_text_sect_low =
7cd25cfc 1513 bfd_section_vma (tmp_bfd, interp_sect) + load_addr;
6c95b8df
PA
1514 info->interp_text_sect_high =
1515 info->interp_text_sect_low
1516 + bfd_section_size (tmp_bfd, interp_sect);
7cd25cfc
DJ
1517 }
1518 interp_sect = bfd_get_section_by_name (tmp_bfd, ".plt");
1519 if (interp_sect)
1520 {
6c95b8df 1521 info->interp_plt_sect_low =
7cd25cfc 1522 bfd_section_vma (tmp_bfd, interp_sect) + load_addr;
6c95b8df
PA
1523 info->interp_plt_sect_high =
1524 info->interp_plt_sect_low
1525 + bfd_section_size (tmp_bfd, interp_sect);
7cd25cfc
DJ
1526 }
1527
f5656ead 1528 create_solib_event_breakpoint (target_gdbarch (), sym_addr);
7cd25cfc
DJ
1529 return 1;
1530 }
1531 }
1532
97ec2c2f 1533 /* Find the program interpreter; if not found, warn the user and drop
13437d4b 1534 into the old breakpoint at symbol code. */
97ec2c2f
UW
1535 interp_name = find_program_interpreter ();
1536 if (interp_name)
13437d4b 1537 {
8ad2fcde
KB
1538 CORE_ADDR load_addr = 0;
1539 int load_addr_found = 0;
2ec9a4f8 1540 int loader_found_in_list = 0;
f8766ec1 1541 struct so_list *so;
e4f7b8c8 1542 bfd *tmp_bfd = NULL;
2f4950cd 1543 struct target_ops *tmp_bfd_target;
f1838a98 1544 volatile struct gdb_exception ex;
13437d4b 1545
7cd25cfc 1546 sym_addr = 0;
13437d4b
KB
1547
1548 /* Now we need to figure out where the dynamic linker was
1549 loaded so that we can load its symbols and place a breakpoint
1550 in the dynamic linker itself.
1551
1552 This address is stored on the stack. However, I've been unable
1553 to find any magic formula to find it for Solaris (appears to
1554 be trivial on GNU/Linux). Therefore, we have to try an alternate
1555 mechanism to find the dynamic linker's base address. */
e4f7b8c8 1556
f1838a98
UW
1557 TRY_CATCH (ex, RETURN_MASK_ALL)
1558 {
97ec2c2f 1559 tmp_bfd = solib_bfd_open (interp_name);
f1838a98 1560 }
13437d4b
KB
1561 if (tmp_bfd == NULL)
1562 goto bkpt_at_symbol;
1563
2f4950cd 1564 /* Now convert the TMP_BFD into a target. That way target, as
695c3173 1565 well as BFD operations can be used. */
2f4950cd 1566 tmp_bfd_target = target_bfd_reopen (tmp_bfd);
695c3173
TT
1567 /* target_bfd_reopen acquired its own reference, so we can
1568 release ours now. */
1569 gdb_bfd_unref (tmp_bfd);
2f4950cd 1570
f8766ec1
KB
1571 /* On a running target, we can get the dynamic linker's base
1572 address from the shared library table. */
f8766ec1
KB
1573 so = master_so_list ();
1574 while (so)
8ad2fcde 1575 {
97ec2c2f 1576 if (svr4_same_1 (interp_name, so->so_original_name))
8ad2fcde
KB
1577 {
1578 load_addr_found = 1;
2ec9a4f8 1579 loader_found_in_list = 1;
b23518f0 1580 load_addr = lm_addr_check (so, tmp_bfd);
8ad2fcde
KB
1581 break;
1582 }
f8766ec1 1583 so = so->next;
8ad2fcde
KB
1584 }
1585
8d4e36ba
JB
1586 /* If we were not able to find the base address of the loader
1587 from our so_list, then try using the AT_BASE auxilliary entry. */
1588 if (!load_addr_found)
1589 if (target_auxv_search (&current_target, AT_BASE, &load_addr) > 0)
ad3a0e5b 1590 {
f5656ead 1591 int addr_bit = gdbarch_addr_bit (target_gdbarch ());
ad3a0e5b
JK
1592
1593 /* Ensure LOAD_ADDR has proper sign in its possible upper bits so
1594 that `+ load_addr' will overflow CORE_ADDR width not creating
1595 invalid addresses like 0x101234567 for 32bit inferiors on 64bit
1596 GDB. */
1597
d182d057 1598 if (addr_bit < (sizeof (CORE_ADDR) * HOST_CHAR_BIT))
ad3a0e5b 1599 {
d182d057 1600 CORE_ADDR space_size = (CORE_ADDR) 1 << addr_bit;
ad3a0e5b
JK
1601 CORE_ADDR tmp_entry_point = exec_entry_point (tmp_bfd,
1602 tmp_bfd_target);
1603
1604 gdb_assert (load_addr < space_size);
1605
1606 /* TMP_ENTRY_POINT exceeding SPACE_SIZE would be for prelinked
1607 64bit ld.so with 32bit executable, it should not happen. */
1608
1609 if (tmp_entry_point < space_size
1610 && tmp_entry_point + load_addr >= space_size)
1611 load_addr -= space_size;
1612 }
1613
1614 load_addr_found = 1;
1615 }
8d4e36ba 1616
8ad2fcde
KB
1617 /* Otherwise we find the dynamic linker's base address by examining
1618 the current pc (which should point at the entry point for the
8d4e36ba
JB
1619 dynamic linker) and subtracting the offset of the entry point.
1620
1621 This is more fragile than the previous approaches, but is a good
1622 fallback method because it has actually been working well in
1623 most cases. */
8ad2fcde 1624 if (!load_addr_found)
fb14de7b 1625 {
c2250ad1 1626 struct regcache *regcache
f5656ead 1627 = get_thread_arch_regcache (inferior_ptid, target_gdbarch ());
433759f7 1628
fb14de7b
UW
1629 load_addr = (regcache_read_pc (regcache)
1630 - exec_entry_point (tmp_bfd, tmp_bfd_target));
1631 }
2ec9a4f8
DJ
1632
1633 if (!loader_found_in_list)
34439770 1634 {
1a816a87
PA
1635 info->debug_loader_name = xstrdup (interp_name);
1636 info->debug_loader_offset_p = 1;
1637 info->debug_loader_offset = load_addr;
268a4a75 1638 solib_add (NULL, from_tty, &current_target, auto_solib_add);
34439770 1639 }
13437d4b
KB
1640
1641 /* Record the relocated start and end address of the dynamic linker
d7fa2ae2 1642 text and plt section for svr4_in_dynsym_resolve_code. */
13437d4b
KB
1643 interp_sect = bfd_get_section_by_name (tmp_bfd, ".text");
1644 if (interp_sect)
1645 {
6c95b8df 1646 info->interp_text_sect_low =
13437d4b 1647 bfd_section_vma (tmp_bfd, interp_sect) + load_addr;
6c95b8df
PA
1648 info->interp_text_sect_high =
1649 info->interp_text_sect_low
1650 + bfd_section_size (tmp_bfd, interp_sect);
13437d4b
KB
1651 }
1652 interp_sect = bfd_get_section_by_name (tmp_bfd, ".plt");
1653 if (interp_sect)
1654 {
6c95b8df 1655 info->interp_plt_sect_low =
13437d4b 1656 bfd_section_vma (tmp_bfd, interp_sect) + load_addr;
6c95b8df
PA
1657 info->interp_plt_sect_high =
1658 info->interp_plt_sect_low
1659 + bfd_section_size (tmp_bfd, interp_sect);
13437d4b
KB
1660 }
1661
1662 /* Now try to set a breakpoint in the dynamic linker. */
1663 for (bkpt_namep = solib_break_names; *bkpt_namep != NULL; bkpt_namep++)
1664 {
cb457ae2
YQ
1665 sym_addr = gdb_bfd_lookup_symbol (tmp_bfd, cmp_name_and_sec_flags,
1666 (void *) *bkpt_namep);
13437d4b
KB
1667 if (sym_addr != 0)
1668 break;
1669 }
1670
2bbe3cc1
DJ
1671 if (sym_addr != 0)
1672 /* Convert 'sym_addr' from a function pointer to an address.
1673 Because we pass tmp_bfd_target instead of the current
1674 target, this will always produce an unrelocated value. */
f5656ead 1675 sym_addr = gdbarch_convert_from_func_ptr_addr (target_gdbarch (),
2bbe3cc1
DJ
1676 sym_addr,
1677 tmp_bfd_target);
1678
695c3173
TT
1679 /* We're done with both the temporary bfd and target. Closing
1680 the target closes the underlying bfd, because it holds the
1681 only remaining reference. */
2f4950cd 1682 target_close (tmp_bfd_target, 0);
13437d4b
KB
1683
1684 if (sym_addr != 0)
1685 {
f5656ead 1686 create_solib_event_breakpoint (target_gdbarch (), load_addr + sym_addr);
97ec2c2f 1687 xfree (interp_name);
13437d4b
KB
1688 return 1;
1689 }
1690
1691 /* For whatever reason we couldn't set a breakpoint in the dynamic
1692 linker. Warn and drop into the old code. */
1693 bkpt_at_symbol:
97ec2c2f 1694 xfree (interp_name);
82d03102
PG
1695 warning (_("Unable to find dynamic linker breakpoint function.\n"
1696 "GDB will be unable to debug shared library initializers\n"
1697 "and track explicitly loaded dynamic code."));
13437d4b 1698 }
13437d4b 1699
e499d0f1
DJ
1700 /* Scan through the lists of symbols, trying to look up the symbol and
1701 set a breakpoint there. Terminate loop when we/if we succeed. */
1702
1703 for (bkpt_namep = solib_break_names; *bkpt_namep != NULL; bkpt_namep++)
1704 {
1705 msymbol = lookup_minimal_symbol (*bkpt_namep, NULL, symfile_objfile);
1706 if ((msymbol != NULL) && (SYMBOL_VALUE_ADDRESS (msymbol) != 0))
1707 {
de64a9ac 1708 sym_addr = SYMBOL_VALUE_ADDRESS (msymbol);
f5656ead 1709 sym_addr = gdbarch_convert_from_func_ptr_addr (target_gdbarch (),
de64a9ac
JM
1710 sym_addr,
1711 &current_target);
f5656ead 1712 create_solib_event_breakpoint (target_gdbarch (), sym_addr);
e499d0f1
DJ
1713 return 1;
1714 }
1715 }
13437d4b 1716
fb139f32 1717 if (interp_name != NULL && !current_inferior ()->attach_flag)
13437d4b 1718 {
c6490bf2 1719 for (bkpt_namep = bkpt_names; *bkpt_namep != NULL; bkpt_namep++)
13437d4b 1720 {
c6490bf2
KB
1721 msymbol = lookup_minimal_symbol (*bkpt_namep, NULL, symfile_objfile);
1722 if ((msymbol != NULL) && (SYMBOL_VALUE_ADDRESS (msymbol) != 0))
1723 {
1724 sym_addr = SYMBOL_VALUE_ADDRESS (msymbol);
f5656ead 1725 sym_addr = gdbarch_convert_from_func_ptr_addr (target_gdbarch (),
c6490bf2
KB
1726 sym_addr,
1727 &current_target);
f5656ead 1728 create_solib_event_breakpoint (target_gdbarch (), sym_addr);
c6490bf2
KB
1729 return 1;
1730 }
13437d4b
KB
1731 }
1732 }
542c95c2 1733 return 0;
13437d4b
KB
1734}
1735
7f86f058 1736/* Implement the "special_symbol_handling" target_so_ops method. */
13437d4b
KB
1737
1738static void
1739svr4_special_symbol_handling (void)
1740{
7f86f058 1741 /* Nothing to do. */
13437d4b
KB
1742}
1743
09919ac2
JK
1744/* Read the ELF program headers from ABFD. Return the contents and
1745 set *PHDRS_SIZE to the size of the program headers. */
e2a44558 1746
09919ac2
JK
1747static gdb_byte *
1748read_program_headers_from_bfd (bfd *abfd, int *phdrs_size)
e2a44558 1749{
09919ac2
JK
1750 Elf_Internal_Ehdr *ehdr;
1751 gdb_byte *buf;
e2a44558 1752
09919ac2 1753 ehdr = elf_elfheader (abfd);
b8040f19 1754
09919ac2
JK
1755 *phdrs_size = ehdr->e_phnum * ehdr->e_phentsize;
1756 if (*phdrs_size == 0)
1757 return NULL;
1758
1759 buf = xmalloc (*phdrs_size);
1760 if (bfd_seek (abfd, ehdr->e_phoff, SEEK_SET) != 0
1761 || bfd_bread (buf, *phdrs_size, abfd) != *phdrs_size)
1762 {
1763 xfree (buf);
1764 return NULL;
1765 }
1766
1767 return buf;
b8040f19
JK
1768}
1769
01c30d6e
JK
1770/* Return 1 and fill *DISPLACEMENTP with detected PIE offset of inferior
1771 exec_bfd. Otherwise return 0.
1772
1773 We relocate all of the sections by the same amount. This
c378eb4e 1774 behavior is mandated by recent editions of the System V ABI.
b8040f19
JK
1775 According to the System V Application Binary Interface,
1776 Edition 4.1, page 5-5:
1777
1778 ... Though the system chooses virtual addresses for
1779 individual processes, it maintains the segments' relative
1780 positions. Because position-independent code uses relative
1781 addressesing between segments, the difference between
1782 virtual addresses in memory must match the difference
1783 between virtual addresses in the file. The difference
1784 between the virtual address of any segment in memory and
1785 the corresponding virtual address in the file is thus a
1786 single constant value for any one executable or shared
1787 object in a given process. This difference is the base
1788 address. One use of the base address is to relocate the
1789 memory image of the program during dynamic linking.
1790
1791 The same language also appears in Edition 4.0 of the System V
09919ac2
JK
1792 ABI and is left unspecified in some of the earlier editions.
1793
1794 Decide if the objfile needs to be relocated. As indicated above, we will
1795 only be here when execution is stopped. But during attachment PC can be at
1796 arbitrary address therefore regcache_read_pc can be misleading (contrary to
1797 the auxv AT_ENTRY value). Moreover for executable with interpreter section
1798 regcache_read_pc would point to the interpreter and not the main executable.
1799
1800 So, to summarize, relocations are necessary when the start address obtained
1801 from the executable is different from the address in auxv AT_ENTRY entry.
d989b283 1802
09919ac2
JK
1803 [ The astute reader will note that we also test to make sure that
1804 the executable in question has the DYNAMIC flag set. It is my
1805 opinion that this test is unnecessary (undesirable even). It
1806 was added to avoid inadvertent relocation of an executable
1807 whose e_type member in the ELF header is not ET_DYN. There may
1808 be a time in the future when it is desirable to do relocations
1809 on other types of files as well in which case this condition
1810 should either be removed or modified to accomodate the new file
1811 type. - Kevin, Nov 2000. ] */
b8040f19 1812
01c30d6e
JK
1813static int
1814svr4_exec_displacement (CORE_ADDR *displacementp)
b8040f19 1815{
41752192
JK
1816 /* ENTRY_POINT is a possible function descriptor - before
1817 a call to gdbarch_convert_from_func_ptr_addr. */
09919ac2 1818 CORE_ADDR entry_point, displacement;
b8040f19
JK
1819
1820 if (exec_bfd == NULL)
1821 return 0;
1822
09919ac2
JK
1823 /* Therefore for ELF it is ET_EXEC and not ET_DYN. Both shared libraries
1824 being executed themselves and PIE (Position Independent Executable)
1825 executables are ET_DYN. */
1826
1827 if ((bfd_get_file_flags (exec_bfd) & DYNAMIC) == 0)
1828 return 0;
1829
1830 if (target_auxv_search (&current_target, AT_ENTRY, &entry_point) <= 0)
1831 return 0;
1832
1833 displacement = entry_point - bfd_get_start_address (exec_bfd);
1834
1835 /* Verify the DISPLACEMENT candidate complies with the required page
1836 alignment. It is cheaper than the program headers comparison below. */
1837
1838 if (bfd_get_flavour (exec_bfd) == bfd_target_elf_flavour)
1839 {
1840 const struct elf_backend_data *elf = get_elf_backend_data (exec_bfd);
1841
1842 /* p_align of PT_LOAD segments does not specify any alignment but
1843 only congruency of addresses:
1844 p_offset % p_align == p_vaddr % p_align
1845 Kernel is free to load the executable with lower alignment. */
1846
1847 if ((displacement & (elf->minpagesize - 1)) != 0)
1848 return 0;
1849 }
1850
1851 /* Verify that the auxilliary vector describes the same file as exec_bfd, by
1852 comparing their program headers. If the program headers in the auxilliary
1853 vector do not match the program headers in the executable, then we are
1854 looking at a different file than the one used by the kernel - for
1855 instance, "gdb program" connected to "gdbserver :PORT ld.so program". */
1856
1857 if (bfd_get_flavour (exec_bfd) == bfd_target_elf_flavour)
1858 {
1859 /* Be optimistic and clear OK only if GDB was able to verify the headers
1860 really do not match. */
1861 int phdrs_size, phdrs2_size, ok = 1;
1862 gdb_byte *buf, *buf2;
0a1e94c7 1863 int arch_size;
09919ac2 1864
0a1e94c7 1865 buf = read_program_header (-1, &phdrs_size, &arch_size);
09919ac2 1866 buf2 = read_program_headers_from_bfd (exec_bfd, &phdrs2_size);
0a1e94c7
JK
1867 if (buf != NULL && buf2 != NULL)
1868 {
f5656ead 1869 enum bfd_endian byte_order = gdbarch_byte_order (target_gdbarch ());
0a1e94c7
JK
1870
1871 /* We are dealing with three different addresses. EXEC_BFD
1872 represents current address in on-disk file. target memory content
1873 may be different from EXEC_BFD as the file may have been prelinked
1874 to a different address after the executable has been loaded.
1875 Moreover the address of placement in target memory can be
3e43a32a
MS
1876 different from what the program headers in target memory say -
1877 this is the goal of PIE.
0a1e94c7
JK
1878
1879 Detected DISPLACEMENT covers both the offsets of PIE placement and
1880 possible new prelink performed after start of the program. Here
1881 relocate BUF and BUF2 just by the EXEC_BFD vs. target memory
1882 content offset for the verification purpose. */
1883
1884 if (phdrs_size != phdrs2_size
1885 || bfd_get_arch_size (exec_bfd) != arch_size)
1886 ok = 0;
3e43a32a
MS
1887 else if (arch_size == 32
1888 && phdrs_size >= sizeof (Elf32_External_Phdr)
0a1e94c7
JK
1889 && phdrs_size % sizeof (Elf32_External_Phdr) == 0)
1890 {
1891 Elf_Internal_Ehdr *ehdr2 = elf_tdata (exec_bfd)->elf_header;
1892 Elf_Internal_Phdr *phdr2 = elf_tdata (exec_bfd)->phdr;
1893 CORE_ADDR displacement = 0;
1894 int i;
1895
1896 /* DISPLACEMENT could be found more easily by the difference of
1897 ehdr2->e_entry. But we haven't read the ehdr yet, and we
1898 already have enough information to compute that displacement
1899 with what we've read. */
1900
1901 for (i = 0; i < ehdr2->e_phnum; i++)
1902 if (phdr2[i].p_type == PT_LOAD)
1903 {
1904 Elf32_External_Phdr *phdrp;
1905 gdb_byte *buf_vaddr_p, *buf_paddr_p;
1906 CORE_ADDR vaddr, paddr;
1907 CORE_ADDR displacement_vaddr = 0;
1908 CORE_ADDR displacement_paddr = 0;
1909
1910 phdrp = &((Elf32_External_Phdr *) buf)[i];
1911 buf_vaddr_p = (gdb_byte *) &phdrp->p_vaddr;
1912 buf_paddr_p = (gdb_byte *) &phdrp->p_paddr;
1913
1914 vaddr = extract_unsigned_integer (buf_vaddr_p, 4,
1915 byte_order);
1916 displacement_vaddr = vaddr - phdr2[i].p_vaddr;
1917
1918 paddr = extract_unsigned_integer (buf_paddr_p, 4,
1919 byte_order);
1920 displacement_paddr = paddr - phdr2[i].p_paddr;
1921
1922 if (displacement_vaddr == displacement_paddr)
1923 displacement = displacement_vaddr;
1924
1925 break;
1926 }
1927
1928 /* Now compare BUF and BUF2 with optional DISPLACEMENT. */
1929
1930 for (i = 0; i < phdrs_size / sizeof (Elf32_External_Phdr); i++)
1931 {
1932 Elf32_External_Phdr *phdrp;
1933 Elf32_External_Phdr *phdr2p;
1934 gdb_byte *buf_vaddr_p, *buf_paddr_p;
1935 CORE_ADDR vaddr, paddr;
43b8e241 1936 asection *plt2_asect;
0a1e94c7
JK
1937
1938 phdrp = &((Elf32_External_Phdr *) buf)[i];
1939 buf_vaddr_p = (gdb_byte *) &phdrp->p_vaddr;
1940 buf_paddr_p = (gdb_byte *) &phdrp->p_paddr;
1941 phdr2p = &((Elf32_External_Phdr *) buf2)[i];
1942
1943 /* PT_GNU_STACK is an exception by being never relocated by
1944 prelink as its addresses are always zero. */
1945
1946 if (memcmp (phdrp, phdr2p, sizeof (*phdrp)) == 0)
1947 continue;
1948
1949 /* Check also other adjustment combinations - PR 11786. */
1950
3e43a32a
MS
1951 vaddr = extract_unsigned_integer (buf_vaddr_p, 4,
1952 byte_order);
0a1e94c7
JK
1953 vaddr -= displacement;
1954 store_unsigned_integer (buf_vaddr_p, 4, byte_order, vaddr);
1955
3e43a32a
MS
1956 paddr = extract_unsigned_integer (buf_paddr_p, 4,
1957 byte_order);
0a1e94c7
JK
1958 paddr -= displacement;
1959 store_unsigned_integer (buf_paddr_p, 4, byte_order, paddr);
1960
1961 if (memcmp (phdrp, phdr2p, sizeof (*phdrp)) == 0)
1962 continue;
1963
43b8e241
JK
1964 /* prelink can convert .plt SHT_NOBITS to SHT_PROGBITS. */
1965 plt2_asect = bfd_get_section_by_name (exec_bfd, ".plt");
1966 if (plt2_asect)
1967 {
1968 int content2;
1969 gdb_byte *buf_filesz_p = (gdb_byte *) &phdrp->p_filesz;
1970 CORE_ADDR filesz;
1971
1972 content2 = (bfd_get_section_flags (exec_bfd, plt2_asect)
1973 & SEC_HAS_CONTENTS) != 0;
1974
1975 filesz = extract_unsigned_integer (buf_filesz_p, 4,
1976 byte_order);
1977
1978 /* PLT2_ASECT is from on-disk file (exec_bfd) while
1979 FILESZ is from the in-memory image. */
1980 if (content2)
1981 filesz += bfd_get_section_size (plt2_asect);
1982 else
1983 filesz -= bfd_get_section_size (plt2_asect);
1984
1985 store_unsigned_integer (buf_filesz_p, 4, byte_order,
1986 filesz);
1987
1988 if (memcmp (phdrp, phdr2p, sizeof (*phdrp)) == 0)
1989 continue;
1990 }
1991
0a1e94c7
JK
1992 ok = 0;
1993 break;
1994 }
1995 }
3e43a32a
MS
1996 else if (arch_size == 64
1997 && phdrs_size >= sizeof (Elf64_External_Phdr)
0a1e94c7
JK
1998 && phdrs_size % sizeof (Elf64_External_Phdr) == 0)
1999 {
2000 Elf_Internal_Ehdr *ehdr2 = elf_tdata (exec_bfd)->elf_header;
2001 Elf_Internal_Phdr *phdr2 = elf_tdata (exec_bfd)->phdr;
2002 CORE_ADDR displacement = 0;
2003 int i;
2004
2005 /* DISPLACEMENT could be found more easily by the difference of
2006 ehdr2->e_entry. But we haven't read the ehdr yet, and we
2007 already have enough information to compute that displacement
2008 with what we've read. */
2009
2010 for (i = 0; i < ehdr2->e_phnum; i++)
2011 if (phdr2[i].p_type == PT_LOAD)
2012 {
2013 Elf64_External_Phdr *phdrp;
2014 gdb_byte *buf_vaddr_p, *buf_paddr_p;
2015 CORE_ADDR vaddr, paddr;
2016 CORE_ADDR displacement_vaddr = 0;
2017 CORE_ADDR displacement_paddr = 0;
2018
2019 phdrp = &((Elf64_External_Phdr *) buf)[i];
2020 buf_vaddr_p = (gdb_byte *) &phdrp->p_vaddr;
2021 buf_paddr_p = (gdb_byte *) &phdrp->p_paddr;
2022
2023 vaddr = extract_unsigned_integer (buf_vaddr_p, 8,
2024 byte_order);
2025 displacement_vaddr = vaddr - phdr2[i].p_vaddr;
2026
2027 paddr = extract_unsigned_integer (buf_paddr_p, 8,
2028 byte_order);
2029 displacement_paddr = paddr - phdr2[i].p_paddr;
2030
2031 if (displacement_vaddr == displacement_paddr)
2032 displacement = displacement_vaddr;
2033
2034 break;
2035 }
2036
2037 /* Now compare BUF and BUF2 with optional DISPLACEMENT. */
2038
2039 for (i = 0; i < phdrs_size / sizeof (Elf64_External_Phdr); i++)
2040 {
2041 Elf64_External_Phdr *phdrp;
2042 Elf64_External_Phdr *phdr2p;
2043 gdb_byte *buf_vaddr_p, *buf_paddr_p;
2044 CORE_ADDR vaddr, paddr;
43b8e241 2045 asection *plt2_asect;
0a1e94c7
JK
2046
2047 phdrp = &((Elf64_External_Phdr *) buf)[i];
2048 buf_vaddr_p = (gdb_byte *) &phdrp->p_vaddr;
2049 buf_paddr_p = (gdb_byte *) &phdrp->p_paddr;
2050 phdr2p = &((Elf64_External_Phdr *) buf2)[i];
2051
2052 /* PT_GNU_STACK is an exception by being never relocated by
2053 prelink as its addresses are always zero. */
2054
2055 if (memcmp (phdrp, phdr2p, sizeof (*phdrp)) == 0)
2056 continue;
2057
2058 /* Check also other adjustment combinations - PR 11786. */
2059
3e43a32a
MS
2060 vaddr = extract_unsigned_integer (buf_vaddr_p, 8,
2061 byte_order);
0a1e94c7
JK
2062 vaddr -= displacement;
2063 store_unsigned_integer (buf_vaddr_p, 8, byte_order, vaddr);
2064
3e43a32a
MS
2065 paddr = extract_unsigned_integer (buf_paddr_p, 8,
2066 byte_order);
0a1e94c7
JK
2067 paddr -= displacement;
2068 store_unsigned_integer (buf_paddr_p, 8, byte_order, paddr);
2069
2070 if (memcmp (phdrp, phdr2p, sizeof (*phdrp)) == 0)
2071 continue;
2072
43b8e241
JK
2073 /* prelink can convert .plt SHT_NOBITS to SHT_PROGBITS. */
2074 plt2_asect = bfd_get_section_by_name (exec_bfd, ".plt");
2075 if (plt2_asect)
2076 {
2077 int content2;
2078 gdb_byte *buf_filesz_p = (gdb_byte *) &phdrp->p_filesz;
2079 CORE_ADDR filesz;
2080
2081 content2 = (bfd_get_section_flags (exec_bfd, plt2_asect)
2082 & SEC_HAS_CONTENTS) != 0;
2083
2084 filesz = extract_unsigned_integer (buf_filesz_p, 8,
2085 byte_order);
2086
2087 /* PLT2_ASECT is from on-disk file (exec_bfd) while
2088 FILESZ is from the in-memory image. */
2089 if (content2)
2090 filesz += bfd_get_section_size (plt2_asect);
2091 else
2092 filesz -= bfd_get_section_size (plt2_asect);
2093
2094 store_unsigned_integer (buf_filesz_p, 8, byte_order,
2095 filesz);
2096
2097 if (memcmp (phdrp, phdr2p, sizeof (*phdrp)) == 0)
2098 continue;
2099 }
2100
0a1e94c7
JK
2101 ok = 0;
2102 break;
2103 }
2104 }
2105 else
2106 ok = 0;
2107 }
09919ac2
JK
2108
2109 xfree (buf);
2110 xfree (buf2);
2111
2112 if (!ok)
2113 return 0;
2114 }
b8040f19 2115
ccf26247
JK
2116 if (info_verbose)
2117 {
2118 /* It can be printed repeatedly as there is no easy way to check
2119 the executable symbols/file has been already relocated to
2120 displacement. */
2121
2122 printf_unfiltered (_("Using PIE (Position Independent Executable) "
2123 "displacement %s for \"%s\".\n"),
f5656ead 2124 paddress (target_gdbarch (), displacement),
ccf26247
JK
2125 bfd_get_filename (exec_bfd));
2126 }
2127
01c30d6e
JK
2128 *displacementp = displacement;
2129 return 1;
b8040f19
JK
2130}
2131
2132/* Relocate the main executable. This function should be called upon
c378eb4e 2133 stopping the inferior process at the entry point to the program.
b8040f19
JK
2134 The entry point from BFD is compared to the AT_ENTRY of AUXV and if they are
2135 different, the main executable is relocated by the proper amount. */
2136
2137static void
2138svr4_relocate_main_executable (void)
2139{
01c30d6e
JK
2140 CORE_ADDR displacement;
2141
4e5799b6
JK
2142 /* If we are re-running this executable, SYMFILE_OBJFILE->SECTION_OFFSETS
2143 probably contains the offsets computed using the PIE displacement
2144 from the previous run, which of course are irrelevant for this run.
2145 So we need to determine the new PIE displacement and recompute the
2146 section offsets accordingly, even if SYMFILE_OBJFILE->SECTION_OFFSETS
2147 already contains pre-computed offsets.
01c30d6e 2148
4e5799b6 2149 If we cannot compute the PIE displacement, either:
01c30d6e 2150
4e5799b6
JK
2151 - The executable is not PIE.
2152
2153 - SYMFILE_OBJFILE does not match the executable started in the target.
2154 This can happen for main executable symbols loaded at the host while
2155 `ld.so --ld-args main-executable' is loaded in the target.
2156
2157 Then we leave the section offsets untouched and use them as is for
2158 this run. Either:
2159
2160 - These section offsets were properly reset earlier, and thus
2161 already contain the correct values. This can happen for instance
2162 when reconnecting via the remote protocol to a target that supports
2163 the `qOffsets' packet.
2164
2165 - The section offsets were not reset earlier, and the best we can
c378eb4e 2166 hope is that the old offsets are still applicable to the new run. */
01c30d6e
JK
2167
2168 if (! svr4_exec_displacement (&displacement))
2169 return;
b8040f19 2170
01c30d6e
JK
2171 /* Even DISPLACEMENT 0 is a valid new difference of in-memory vs. in-file
2172 addresses. */
b8040f19
JK
2173
2174 if (symfile_objfile)
e2a44558 2175 {
e2a44558 2176 struct section_offsets *new_offsets;
b8040f19 2177 int i;
e2a44558 2178
b8040f19
JK
2179 new_offsets = alloca (symfile_objfile->num_sections
2180 * sizeof (*new_offsets));
e2a44558 2181
b8040f19
JK
2182 for (i = 0; i < symfile_objfile->num_sections; i++)
2183 new_offsets->offsets[i] = displacement;
e2a44558 2184
b8040f19 2185 objfile_relocate (symfile_objfile, new_offsets);
e2a44558 2186 }
51bee8e9
JK
2187 else if (exec_bfd)
2188 {
2189 asection *asect;
2190
2191 for (asect = exec_bfd->sections; asect != NULL; asect = asect->next)
2192 exec_set_section_address (bfd_get_filename (exec_bfd), asect->index,
2193 (bfd_section_vma (exec_bfd, asect)
2194 + displacement));
2195 }
e2a44558
KB
2196}
2197
7f86f058 2198/* Implement the "create_inferior_hook" target_solib_ops method.
13437d4b
KB
2199
2200 For SVR4 executables, this first instruction is either the first
2201 instruction in the dynamic linker (for dynamically linked
2202 executables) or the instruction at "start" for statically linked
2203 executables. For dynamically linked executables, the system
2204 first exec's /lib/libc.so.N, which contains the dynamic linker,
2205 and starts it running. The dynamic linker maps in any needed
2206 shared libraries, maps in the actual user executable, and then
2207 jumps to "start" in the user executable.
2208
7f86f058
PA
2209 We can arrange to cooperate with the dynamic linker to discover the
2210 names of shared libraries that are dynamically linked, and the base
2211 addresses to which they are linked.
13437d4b
KB
2212
2213 This function is responsible for discovering those names and
2214 addresses, and saving sufficient information about them to allow
d2e5c99a 2215 their symbols to be read at a later time. */
13437d4b 2216
e2a44558 2217static void
268a4a75 2218svr4_solib_create_inferior_hook (int from_tty)
13437d4b 2219{
1a816a87
PA
2220 struct svr4_info *info;
2221
6c95b8df 2222 info = get_svr4_info ();
2020b7ab 2223
e2a44558 2224 /* Relocate the main executable if necessary. */
86e4bafc 2225 svr4_relocate_main_executable ();
e2a44558 2226
c91c8c16
PA
2227 /* No point setting a breakpoint in the dynamic linker if we can't
2228 hit it (e.g., a core file, or a trace file). */
2229 if (!target_has_execution)
2230 return;
2231
d5a921c9 2232 if (!svr4_have_link_map_offsets ())
513f5903 2233 return;
d5a921c9 2234
268a4a75 2235 if (!enable_break (info, from_tty))
542c95c2 2236 return;
13437d4b
KB
2237}
2238
2239static void
2240svr4_clear_solib (void)
2241{
6c95b8df
PA
2242 struct svr4_info *info;
2243
2244 info = get_svr4_info ();
2245 info->debug_base = 0;
2246 info->debug_loader_offset_p = 0;
2247 info->debug_loader_offset = 0;
2248 xfree (info->debug_loader_name);
2249 info->debug_loader_name = NULL;
13437d4b
KB
2250}
2251
6bb7be43
JB
2252/* Clear any bits of ADDR that wouldn't fit in a target-format
2253 data pointer. "Data pointer" here refers to whatever sort of
2254 address the dynamic linker uses to manage its sections. At the
2255 moment, we don't support shared libraries on any processors where
2256 code and data pointers are different sizes.
2257
2258 This isn't really the right solution. What we really need here is
2259 a way to do arithmetic on CORE_ADDR values that respects the
2260 natural pointer/address correspondence. (For example, on the MIPS,
2261 converting a 32-bit pointer to a 64-bit CORE_ADDR requires you to
2262 sign-extend the value. There, simply truncating the bits above
819844ad 2263 gdbarch_ptr_bit, as we do below, is no good.) This should probably
6bb7be43
JB
2264 be a new gdbarch method or something. */
2265static CORE_ADDR
2266svr4_truncate_ptr (CORE_ADDR addr)
2267{
f5656ead 2268 if (gdbarch_ptr_bit (target_gdbarch ()) == sizeof (CORE_ADDR) * 8)
6bb7be43
JB
2269 /* We don't need to truncate anything, and the bit twiddling below
2270 will fail due to overflow problems. */
2271 return addr;
2272 else
f5656ead 2273 return addr & (((CORE_ADDR) 1 << gdbarch_ptr_bit (target_gdbarch ())) - 1);
6bb7be43
JB
2274}
2275
2276
749499cb
KB
2277static void
2278svr4_relocate_section_addresses (struct so_list *so,
0542c86d 2279 struct target_section *sec)
749499cb 2280{
b23518f0 2281 sec->addr = svr4_truncate_ptr (sec->addr + lm_addr_check (so,
cc10cae3 2282 sec->bfd));
b23518f0 2283 sec->endaddr = svr4_truncate_ptr (sec->endaddr + lm_addr_check (so,
cc10cae3 2284 sec->bfd));
749499cb 2285}
4b188b9f 2286\f
749499cb 2287
4b188b9f 2288/* Architecture-specific operations. */
6bb7be43 2289
4b188b9f
MK
2290/* Per-architecture data key. */
2291static struct gdbarch_data *solib_svr4_data;
e5e2b9ff 2292
4b188b9f 2293struct solib_svr4_ops
e5e2b9ff 2294{
4b188b9f
MK
2295 /* Return a description of the layout of `struct link_map'. */
2296 struct link_map_offsets *(*fetch_link_map_offsets)(void);
2297};
e5e2b9ff 2298
4b188b9f 2299/* Return a default for the architecture-specific operations. */
e5e2b9ff 2300
4b188b9f
MK
2301static void *
2302solib_svr4_init (struct obstack *obstack)
e5e2b9ff 2303{
4b188b9f 2304 struct solib_svr4_ops *ops;
e5e2b9ff 2305
4b188b9f 2306 ops = OBSTACK_ZALLOC (obstack, struct solib_svr4_ops);
8d005789 2307 ops->fetch_link_map_offsets = NULL;
4b188b9f 2308 return ops;
e5e2b9ff
KB
2309}
2310
4b188b9f 2311/* Set the architecture-specific `struct link_map_offsets' fetcher for
7e3cb44c 2312 GDBARCH to FLMO. Also, install SVR4 solib_ops into GDBARCH. */
1c4dcb57 2313
21479ded 2314void
e5e2b9ff
KB
2315set_solib_svr4_fetch_link_map_offsets (struct gdbarch *gdbarch,
2316 struct link_map_offsets *(*flmo) (void))
21479ded 2317{
4b188b9f
MK
2318 struct solib_svr4_ops *ops = gdbarch_data (gdbarch, solib_svr4_data);
2319
2320 ops->fetch_link_map_offsets = flmo;
7e3cb44c
UW
2321
2322 set_solib_ops (gdbarch, &svr4_so_ops);
21479ded
KB
2323}
2324
4b188b9f
MK
2325/* Fetch a link_map_offsets structure using the architecture-specific
2326 `struct link_map_offsets' fetcher. */
1c4dcb57 2327
4b188b9f
MK
2328static struct link_map_offsets *
2329svr4_fetch_link_map_offsets (void)
21479ded 2330{
f5656ead 2331 struct solib_svr4_ops *ops = gdbarch_data (target_gdbarch (), solib_svr4_data);
4b188b9f
MK
2332
2333 gdb_assert (ops->fetch_link_map_offsets);
2334 return ops->fetch_link_map_offsets ();
21479ded
KB
2335}
2336
4b188b9f
MK
2337/* Return 1 if a link map offset fetcher has been defined, 0 otherwise. */
2338
2339static int
2340svr4_have_link_map_offsets (void)
2341{
f5656ead 2342 struct solib_svr4_ops *ops = gdbarch_data (target_gdbarch (), solib_svr4_data);
433759f7 2343
4b188b9f
MK
2344 return (ops->fetch_link_map_offsets != NULL);
2345}
2346\f
2347
e4bbbda8
MK
2348/* Most OS'es that have SVR4-style ELF dynamic libraries define a
2349 `struct r_debug' and a `struct link_map' that are binary compatible
2350 with the origional SVR4 implementation. */
2351
2352/* Fetch (and possibly build) an appropriate `struct link_map_offsets'
2353 for an ILP32 SVR4 system. */
d989b283 2354
e4bbbda8
MK
2355struct link_map_offsets *
2356svr4_ilp32_fetch_link_map_offsets (void)
2357{
2358 static struct link_map_offsets lmo;
2359 static struct link_map_offsets *lmp = NULL;
2360
2361 if (lmp == NULL)
2362 {
2363 lmp = &lmo;
2364
e4cd0d6a
MK
2365 lmo.r_version_offset = 0;
2366 lmo.r_version_size = 4;
e4bbbda8 2367 lmo.r_map_offset = 4;
7cd25cfc 2368 lmo.r_brk_offset = 8;
e4cd0d6a 2369 lmo.r_ldsomap_offset = 20;
e4bbbda8
MK
2370
2371 /* Everything we need is in the first 20 bytes. */
2372 lmo.link_map_size = 20;
2373 lmo.l_addr_offset = 0;
e4bbbda8 2374 lmo.l_name_offset = 4;
cc10cae3 2375 lmo.l_ld_offset = 8;
e4bbbda8 2376 lmo.l_next_offset = 12;
e4bbbda8 2377 lmo.l_prev_offset = 16;
e4bbbda8
MK
2378 }
2379
2380 return lmp;
2381}
2382
2383/* Fetch (and possibly build) an appropriate `struct link_map_offsets'
2384 for an LP64 SVR4 system. */
d989b283 2385
e4bbbda8
MK
2386struct link_map_offsets *
2387svr4_lp64_fetch_link_map_offsets (void)
2388{
2389 static struct link_map_offsets lmo;
2390 static struct link_map_offsets *lmp = NULL;
2391
2392 if (lmp == NULL)
2393 {
2394 lmp = &lmo;
2395
e4cd0d6a
MK
2396 lmo.r_version_offset = 0;
2397 lmo.r_version_size = 4;
e4bbbda8 2398 lmo.r_map_offset = 8;
7cd25cfc 2399 lmo.r_brk_offset = 16;
e4cd0d6a 2400 lmo.r_ldsomap_offset = 40;
e4bbbda8
MK
2401
2402 /* Everything we need is in the first 40 bytes. */
2403 lmo.link_map_size = 40;
2404 lmo.l_addr_offset = 0;
e4bbbda8 2405 lmo.l_name_offset = 8;
cc10cae3 2406 lmo.l_ld_offset = 16;
e4bbbda8 2407 lmo.l_next_offset = 24;
e4bbbda8 2408 lmo.l_prev_offset = 32;
e4bbbda8
MK
2409 }
2410
2411 return lmp;
2412}
2413\f
2414
7d522c90 2415struct target_so_ops svr4_so_ops;
13437d4b 2416
c378eb4e 2417/* Lookup global symbol for ELF DSOs linked with -Bsymbolic. Those DSOs have a
3a40aaa0
UW
2418 different rule for symbol lookup. The lookup begins here in the DSO, not in
2419 the main executable. */
2420
2421static struct symbol *
2422elf_lookup_lib_symbol (const struct objfile *objfile,
2423 const char *name,
21b556f4 2424 const domain_enum domain)
3a40aaa0 2425{
61f0d762
JK
2426 bfd *abfd;
2427
2428 if (objfile == symfile_objfile)
2429 abfd = exec_bfd;
2430 else
2431 {
2432 /* OBJFILE should have been passed as the non-debug one. */
2433 gdb_assert (objfile->separate_debug_objfile_backlink == NULL);
2434
2435 abfd = objfile->obfd;
2436 }
2437
2438 if (abfd == NULL || scan_dyntag (DT_SYMBOLIC, abfd, NULL) != 1)
3a40aaa0
UW
2439 return NULL;
2440
94af9270 2441 return lookup_global_symbol_from_objfile (objfile, name, domain);
3a40aaa0
UW
2442}
2443
a78f21af
AC
2444extern initialize_file_ftype _initialize_svr4_solib; /* -Wmissing-prototypes */
2445
13437d4b
KB
2446void
2447_initialize_svr4_solib (void)
2448{
4b188b9f 2449 solib_svr4_data = gdbarch_data_register_pre_init (solib_svr4_init);
6c95b8df 2450 solib_svr4_pspace_data
8e260fc0 2451 = register_program_space_data_with_cleanup (NULL, svr4_pspace_data_cleanup);
4b188b9f 2452
749499cb 2453 svr4_so_ops.relocate_section_addresses = svr4_relocate_section_addresses;
13437d4b
KB
2454 svr4_so_ops.free_so = svr4_free_so;
2455 svr4_so_ops.clear_solib = svr4_clear_solib;
2456 svr4_so_ops.solib_create_inferior_hook = svr4_solib_create_inferior_hook;
2457 svr4_so_ops.special_symbol_handling = svr4_special_symbol_handling;
2458 svr4_so_ops.current_sos = svr4_current_sos;
2459 svr4_so_ops.open_symbol_file_object = open_symbol_file_object;
d7fa2ae2 2460 svr4_so_ops.in_dynsym_resolve_code = svr4_in_dynsym_resolve_code;
831a0c44 2461 svr4_so_ops.bfd_open = solib_bfd_open;
3a40aaa0 2462 svr4_so_ops.lookup_lib_global_symbol = elf_lookup_lib_symbol;
a7c02bc8 2463 svr4_so_ops.same = svr4_same;
de18c1d8 2464 svr4_so_ops.keep_data_in_core = svr4_keep_data_in_core;
13437d4b 2465}
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