* value.h (value_bitstring_subscript): New prototype.
[deliverable/binutils-gdb.git] / gdb / solib-osf.c
CommitLineData
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1/* Handle OSF/1, Digital UNIX, and Tru64 shared libraries
2 for GDB, the GNU Debugger.
9b254dd1 3 Copyright (C) 1993, 1994, 1995, 1996, 1998, 1999, 2000, 2001, 2007, 2008
a1cd1908
ND
4 Free Software Foundation, Inc.
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
a1cd1908
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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/>. */
a1cd1908
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20
21/* When handling shared libraries, GDB has to find out the pathnames
22 of all shared libraries that are currently loaded (to read in their
23 symbols) and where the shared libraries are loaded in memory
24 (to relocate them properly from their prelinked addresses to the
25 current load address).
26
27 Under OSF/1 there are two possibilities to get at this information:
28
29 1) Peek around in the runtime loader structures.
30 These are not documented, and they are not defined in the system
31 header files. The definitions below were obtained by experimentation,
32 but they seem stable enough.
33
34 2) Use the libxproc.a library, which contains the equivalent ldr_*
35 routines. The library is documented in Tru64 5.x, but as of 5.1, it
36 only allows a process to examine itself. On earlier versions, it
37 may require that the GDB executable be dynamically linked and that
38 NAT_CLIBS include -lxproc -Wl,-expect_unresolved,ldr_process_context
39 for GDB and all applications that are using libgdb.
40
41 We will use the peeking approach until libxproc.a works for other
42 processes. */
43
44#include "defs.h"
45
46#include <sys/types.h>
47#include <signal.h>
48#include "gdb_string.h"
49
50#include "bfd.h"
51#include "symtab.h"
52#include "symfile.h"
53#include "objfiles.h"
54#include "target.h"
55#include "inferior.h"
2020b7ab 56#include "gdbthread.h"
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57#include "solist.h"
58
59#ifdef USE_LDR_ROUTINES
60# include <loader.h>
61#endif
62
63#ifndef USE_LDR_ROUTINES
64/* Definition of runtime loader structures, found by experimentation. */
65#define RLD_CONTEXT_ADDRESS 0x3ffc0000000
66
67/* Per-module information structure referenced by ldr_context_t.head. */
68
69typedef struct
70 {
71 CORE_ADDR next;
72 CORE_ADDR previous;
73 CORE_ADDR unknown1;
74 CORE_ADDR module_name;
75 CORE_ADDR modinfo_addr; /* used by next_link_map_member() to detect
76 the end of the shared module list */
77 long module_id;
78 CORE_ADDR unknown2;
79 CORE_ADDR unknown3;
80 long region_count;
81 CORE_ADDR regioninfo_addr;
82 }
83ldr_module_info_t;
84
85/* Per-region structure referenced by ldr_module_info_t.regioninfo_addr. */
86
87typedef struct
88 {
89 long unknown1;
90 CORE_ADDR regionname_addr;
91 long protection;
92 CORE_ADDR vaddr;
93 CORE_ADDR mapaddr;
94 long size;
95 long unknown2[5];
96 }
97ldr_region_info_t;
98
99/* Structure at RLD_CONTEXT_ADDRESS specifying the start and finish addresses
100 of the shared module list. */
101
102typedef struct
103 {
104 CORE_ADDR unknown1;
105 CORE_ADDR unknown2;
106 CORE_ADDR head;
107 CORE_ADDR tail;
108 }
109ldr_context_t;
110#endif /* !USE_LDR_ROUTINES */
111
112/* Per-section information, stored in struct lm_info.secs. */
113
114struct lm_sec
115 {
116 CORE_ADDR offset; /* difference between default and actual
117 virtual addresses of section .name */
118 CORE_ADDR nameaddr; /* address in inferior of section name */
119 const char *name; /* name of section, null if not fetched */
120 };
121
122/* Per-module information, stored in struct so_list.lm_info. */
123
124struct lm_info
125 {
126 int isloader; /* whether the module is /sbin/loader */
127 int nsecs; /* length of .secs */
128 struct lm_sec secs[1]; /* variable-length array of sections, sorted
129 by name */
130 };
131
132/* Context for iterating through the inferior's shared module list. */
133
134struct read_map_ctxt
135 {
136#ifdef USE_LDR_ROUTINES
137 ldr_process_t proc;
138 ldr_module_t next;
139#else
140 CORE_ADDR next; /* next element in module list */
141 CORE_ADDR tail; /* last element in module list */
142#endif
143 };
144
145/* Forward declaration for this module's autoinit function. */
146
147extern void _initialize_osf_solib (void);
148
149#ifdef USE_LDR_ROUTINES
150# if 0
151/* This routine is intended to be called by ldr_* routines to read memory from
152 the current target. Usage:
153
154 ldr_process = ldr_core_process ();
155 ldr_set_core_reader (ldr_read_memory);
156 ldr_xdetach (ldr_process);
157 ldr_xattach (ldr_process);
158
159 ldr_core_process() and ldr_read_memory() are neither documented nor
160 declared in system header files. They work with OSF/1 2.x, and they might
161 work with later versions as well. */
162
163static int
164ldr_read_memory (CORE_ADDR memaddr, char *myaddr, int len, int readstring)
165{
166 int result;
167 char *buffer;
168
169 if (readstring)
170 {
171 target_read_string (memaddr, &buffer, len, &result);
172 if (result == 0)
173 strcpy (myaddr, buffer);
174 xfree (buffer);
175 }
176 else
177 result = target_read_memory (memaddr, myaddr, len);
178
179 if (result != 0)
180 result = -result;
181 return result;
182}
183# endif /* 0 */
184#endif /* USE_LDR_ROUTINES */
185
186/* Comparison for qsort() and bsearch(): return -1, 0, or 1 according to
187 whether lm_sec *P1's name is lexically less than, equal to, or greater
188 than that of *P2. */
189
190static int
191lm_sec_cmp (const void *p1, const void *p2)
192{
193 const struct lm_sec *lms1 = p1, *lms2 = p2;
194 return strcmp (lms1->name, lms2->name);
195}
196
197/* Sort LMI->secs so that osf_relocate_section_addresses() can binary-search
198 it. */
199
200static void
201lm_secs_sort (struct lm_info *lmi)
202{
203 qsort (lmi->secs, lmi->nsecs, sizeof *lmi->secs, lm_sec_cmp);
204}
205
206/* Populate name fields of LMI->secs. */
207
208static void
209fetch_sec_names (struct lm_info *lmi)
210{
211#ifndef USE_LDR_ROUTINES
212 int i, errcode;
213 struct lm_sec *lms;
214 char *name;
215
216 for (i = 0; i < lmi->nsecs; i++)
217 {
218 lms = lmi->secs + i;
219 target_read_string (lms->nameaddr, &name, PATH_MAX, &errcode);
220 if (errcode != 0)
221 {
8a3fe4f8 222 warning (_("unable to read shared sec name at 0x%lx"), lms->nameaddr);
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223 name = xstrdup ("");
224 }
225 lms->name = name;
226 }
227 lm_secs_sort (lmi);
228#endif
229}
230
231/* target_so_ops callback. Adjust SEC's addresses after it's been mapped into
232 the process. */
233
234static void
235osf_relocate_section_addresses (struct so_list *so,
236 struct section_table *sec)
237{
238 struct lm_info *lmi;
239 struct lm_sec lms_key, *lms;
240
241 /* Fetch SO's section names if we haven't done so already. */
242 lmi = so->lm_info;
243 if (lmi->nsecs && !lmi->secs[0].name)
244 fetch_sec_names (lmi);
245
246 /* Binary-search for offset information corresponding to SEC. */
247 lms_key.name = sec->the_bfd_section->name;
248 lms = bsearch (&lms_key, lmi->secs, lmi->nsecs, sizeof *lms, lm_sec_cmp);
249 if (lms)
250 {
251 sec->addr += lms->offset;
252 sec->endaddr += lms->offset;
253 }
254}
255
256/* target_so_ops callback. Free parts of SO allocated by this file. */
257
258static void
259osf_free_so (struct so_list *so)
260{
261 int i;
262 const char *name;
263
264 for (i = 0; i < so->lm_info->nsecs; i++)
265 {
266 name = so->lm_info->secs[i].name;
267 if (name)
268 xfree ((void *) name);
269 }
270 xfree (so->lm_info);
271}
272
273/* target_so_ops callback. Discard information accumulated by this file and
274 not freed by osf_free_so(). */
275
276static void
277osf_clear_solib (void)
278{
279 return;
280}
281
282/* target_so_ops callback. Prepare to handle shared libraries after the
283 inferior process has been created but before it's executed any
284 instructions.
285
286 For a statically bound executable, the inferior's first instruction is the
287 one at "_start", or a similar text label. No further processing is needed
288 in that case.
289
290 For a dynamically bound executable, this first instruction is somewhere
291 in the rld, and the actual user executable is not yet mapped in.
292 We continue the inferior again, rld then maps in the actual user
293 executable and any needed shared libraries and then sends
294 itself a SIGTRAP.
295
296 At that point we discover the names of all shared libraries and
297 read their symbols in.
298
299 FIXME
300
301 This code does not properly handle hitting breakpoints which the
302 user might have set in the rld itself. Proper handling would have
303 to check if the SIGTRAP happened due to a kill call.
304
305 Also, what if child has exit()ed? Must exit loop somehow. */
306
307static void
308osf_solib_create_inferior_hook (void)
309{
2020b7ab
PA
310 struct thread_info *tp;
311
ea8eedbe
JB
312 /* If we are attaching to the inferior, the shared libraries
313 have already been mapped, so nothing more to do. */
314 if (attach_flag)
315 return;
316
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317 /* Nothing to do for statically bound executables. */
318
319 if (symfile_objfile == NULL
320 || symfile_objfile->obfd == NULL
321 || ((bfd_get_file_flags (symfile_objfile->obfd) & DYNAMIC) == 0))
322 return;
323
324 /* Now run the target. It will eventually get a SIGTRAP, at
325 which point all of the libraries will have been mapped in and we
326 can go groveling around in the rld structures to find
59ddf1e7
JB
327 out what we need to know about them.
328
329 If debugging from a core file, we cannot resume the execution
330 of the inferior. But this is actually not an issue, because
331 shared libraries have already been mapped anyways, which means
332 we have nothing more to do. */
333 if (!target_can_run (&current_target))
334 return;
a1cd1908 335
2020b7ab 336 tp = inferior_thread ();
a1cd1908 337 clear_proceed_status ();
c0236d92 338 stop_soon = STOP_QUIETLY;
2020b7ab 339 tp->stop_signal = TARGET_SIGNAL_0;
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340 do
341 {
2020b7ab 342 target_resume (minus_one_ptid, 0, tp->stop_signal);
ae123ec6 343 wait_for_inferior (0);
a1cd1908 344 }
2020b7ab 345 while (tp->stop_signal != TARGET_SIGNAL_TRAP);
a1cd1908
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346
347 /* solib_add will call reinit_frame_cache.
348 But we are stopped in the runtime loader and we do not have symbols
349 for the runtime loader. So heuristic_proc_start will be called
350 and will put out an annoying warning.
c0236d92 351 Delaying the resetting of stop_soon until after symbol loading
a1cd1908 352 suppresses the warning. */
990f9fe3 353 solib_add ((char *) 0, 0, (struct target_ops *) 0, auto_solib_add);
c0236d92 354 stop_soon = NO_STOP_QUIETLY;
a1cd1908
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355}
356
357/* target_so_ops callback. Do additional symbol handling, lookup, etc. after
358 symbols for a shared object have been loaded. */
359
360static void
361osf_special_symbol_handling (void)
362{
363 return;
364}
365
366/* Initialize CTXT in preparation for iterating through the inferior's module
367 list using read_map(). Return success. */
368
369static int
370open_map (struct read_map_ctxt *ctxt)
371{
372#ifdef USE_LDR_ROUTINES
7a5a0534
JB
373 /* Note: As originally written, ldr_my_process() was used to obtain
374 the value for ctxt->proc. This is incorrect, however, since
375 ldr_my_process() retrieves the "unique identifier" associated
376 with the current process (i.e. GDB) and not the one being
377 debugged. Presumably, the pid of the process being debugged is
378 compatible with the "unique identifier" used by the ldr_
379 routines, so we use that. */
380 ctxt->proc = ptid_get_pid (inferior_ptid);
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381 if (ldr_xattach (ctxt->proc) != 0)
382 return 0;
383 ctxt->next = LDR_NULL_MODULE;
384#else
385 CORE_ADDR ldr_context_addr, prev, next;
386 ldr_context_t ldr_context;
387
388 if (target_read_memory ((CORE_ADDR) RLD_CONTEXT_ADDRESS,
389 (char *) &ldr_context_addr,
390 sizeof (CORE_ADDR)) != 0)
391 return 0;
392 if (target_read_memory (ldr_context_addr,
393 (char *) &ldr_context,
394 sizeof (ldr_context_t)) != 0)
395 return 0;
396 ctxt->next = ldr_context.head;
397 ctxt->tail = ldr_context.tail;
398#endif
399 return 1;
400}
401
402/* Initialize SO to have module NAME, /sbin/loader indicator ISLOADR, and
403 space for NSECS sections. */
404
405static void
406init_so (struct so_list *so, char *name, int isloader, int nsecs)
407{
408 int namelen, i;
409
410 /* solib.c requires various fields to be initialized to 0. */
411 memset (so, 0, sizeof *so);
412
413 /* Copy the name. */
414 namelen = strlen (name);
415 if (namelen >= SO_NAME_MAX_PATH_SIZE)
416 namelen = SO_NAME_MAX_PATH_SIZE - 1;
417
418 memcpy (so->so_original_name, name, namelen);
419 so->so_original_name[namelen] = '\0';
420 memcpy (so->so_name, so->so_original_name, namelen + 1);
421
422 /* Allocate section space. */
423 so->lm_info = xmalloc ((unsigned) &(((struct lm_info *)0)->secs) +
424 nsecs * sizeof *so->lm_info);
425 so->lm_info->isloader = isloader;
426 so->lm_info->nsecs = nsecs;
427 for (i = 0; i < nsecs; i++)
428 so->lm_info->secs[i].name = NULL;
429}
430
431/* Initialize SO's section SECIDX with name address NAMEADDR, name string
432 NAME, default virtual address VADDR, and actual virtual address
433 MAPADDR. */
434
435static void
436init_sec (struct so_list *so, int secidx, CORE_ADDR nameaddr,
437 const char *name, CORE_ADDR vaddr, CORE_ADDR mapaddr)
438{
439 struct lm_sec *lms;
440
441 lms = so->lm_info->secs + secidx;
442 lms->nameaddr = nameaddr;
443 lms->name = name;
444 lms->offset = mapaddr - vaddr;
445}
446
447/* If there are more elements starting at CTXT in inferior's module list,
448 store the next element in SO, advance CTXT to the next element, and return
449 1, else return 0. */
450
451static int
452read_map (struct read_map_ctxt *ctxt, struct so_list *so)
453{
454 ldr_module_info_t minf;
455 ldr_region_info_t rinf;
456
457#ifdef USE_LDR_ROUTINES
458 size_t size;
459 ldr_region_t i;
460
461 /* Retrieve the next element. */
462 if (ldr_next_module (ctxt->proc, &ctxt->next) != 0)
463 return 0;
464 if (ctxt->next == LDR_NULL_MODULE)
465 return 0;
466 if (ldr_inq_module (ctxt->proc, ctxt->next, &minf, sizeof minf, &size) != 0)
467 return 0;
468
469 /* Initialize the module name and section count. */
470 init_so (so, minf.lmi_name, 0, minf.lmi_nregion);
471
472 /* Retrieve section names and offsets. */
473 for (i = 0; i < minf.lmi_nregion; i++)
474 {
475 if (ldr_inq_region (ctxt->proc, ctxt->next, i, &rinf,
476 sizeof rinf, &size) != 0)
477 goto err;
478 init_sec (so, (int) i, 0, xstrdup (rinf.lri_name),
479 (CORE_ADDR) rinf.lri_vaddr, (CORE_ADDR) rinf.lri_mapaddr);
480 }
481 lm_secs_sort (so->lm_info);
482#else
483 char *name;
484 int errcode, i;
485
486 /* Retrieve the next element. */
487 if (!ctxt->next)
488 return 0;
489 if (target_read_memory (ctxt->next, (char *) &minf, sizeof minf) != 0)
490 return 0;
491 if (ctxt->next == ctxt->tail)
492 ctxt->next = 0;
493 else
494 ctxt->next = minf.next;
495
496 /* Initialize the module name and section count. */
497 target_read_string (minf.module_name, &name, PATH_MAX, &errcode);
498 if (errcode != 0)
499 return 0;
500 init_so (so, name, !minf.modinfo_addr, minf.region_count);
501 xfree (name);
502
503 /* Retrieve section names and offsets. */
504 for (i = 0; i < minf.region_count; i++)
505 {
506 if (target_read_memory (minf.regioninfo_addr + i * sizeof rinf,
507 (char *) &rinf, sizeof rinf) != 0)
508 goto err;
509 init_sec (so, i, rinf.regionname_addr, NULL, rinf.vaddr, rinf.mapaddr);
510 }
511#endif /* !USE_LDR_ROUTINES */
512 return 1;
513
514 err:
515 osf_free_so (so);
516 return 0;
517}
518
519/* Free resources allocated by open_map (CTXT). */
520
521static void
522close_map (struct read_map_ctxt *ctxt)
523{
524#ifdef USE_LDR_ROUTINES
525 ldr_xdetach (ctxt->proc);
526#endif
527}
528
529/* target_so_ops callback. Return a list of shared objects currently loaded
530 in the inferior. */
531
532static struct so_list *
533osf_current_sos (void)
534{
535 struct so_list *head = NULL, *tail, *newtail, so;
536 struct read_map_ctxt ctxt;
537 int skipped_main;
538
539 if (!open_map (&ctxt))
540 return NULL;
541
542 /* Read subsequent elements. */
543 for (skipped_main = 0;;)
544 {
545 if (!read_map (&ctxt, &so))
546 break;
547
548 /* Skip the main program module, which is first in the list after
549 /sbin/loader. */
550 if (!so.lm_info->isloader && !skipped_main)
551 {
552 osf_free_so (&so);
553 skipped_main = 1;
554 continue;
555 }
556
557 newtail = xmalloc (sizeof *newtail);
558 if (!head)
559 head = newtail;
560 else
561 tail->next = newtail;
562 tail = newtail;
563
564 memcpy (tail, &so, sizeof so);
565 tail->next = NULL;
566 }
567
a1cd1908
ND
568 close_map (&ctxt);
569 return head;
570}
571
572/* target_so_ops callback. Attempt to locate and open the main symbol
573 file. */
574
575static int
576osf_open_symbol_file_object (void *from_ttyp)
577{
578 struct read_map_ctxt ctxt;
579 struct so_list so;
580 int found;
581
582 if (symfile_objfile)
583 if (!query ("Attempt to reload symbols from process? "))
584 return 0;
585
586 /* The first module after /sbin/loader is the main program. */
587 if (!open_map (&ctxt))
588 return 0;
589 for (found = 0; !found;)
590 {
591 if (!read_map (&ctxt, &so))
592 break;
593 found = !so.lm_info->isloader;
594 osf_free_so (&so);
595 }
596 close_map (&ctxt);
597
598 if (found)
599 symbol_file_add_main (so.so_name, *(int *) from_ttyp);
600 return found;
601}
602
603/* target_so_ops callback. Return whether PC is in the dynamic linker. */
604
605static int
606osf_in_dynsym_resolve_code (CORE_ADDR pc)
607{
b184b287
JB
608 /* This function currently always return False. This is a temporary
609 solution which only consequence is to introduce a minor incovenience
610 for the user: When stepping inside a subprogram located in a shared
611 library, gdb might stop inside the dynamic loader code instead of
612 inside the subprogram itself. See the explanations in infrun.c about
cfd8ab24 613 the in_solib_dynsym_resolve_code() function for more details. */
a1cd1908
ND
614 return 0;
615}
616
617static struct target_so_ops osf_so_ops;
618
619void
620_initialize_osf_solib (void)
621{
622 osf_so_ops.relocate_section_addresses = osf_relocate_section_addresses;
623 osf_so_ops.free_so = osf_free_so;
624 osf_so_ops.clear_solib = osf_clear_solib;
625 osf_so_ops.solib_create_inferior_hook = osf_solib_create_inferior_hook;
626 osf_so_ops.special_symbol_handling = osf_special_symbol_handling;
627 osf_so_ops.current_sos = osf_current_sos;
628 osf_so_ops.open_symbol_file_object = osf_open_symbol_file_object;
629 osf_so_ops.in_dynsym_resolve_code = osf_in_dynsym_resolve_code;
630
631 /* FIXME: Don't do this here. *_gdbarch_init() should set so_ops. */
632 current_target_so_ops = &osf_so_ops;
633}
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