* c-typeprint.c (c_typedef_print): Add missing Chill support.
[deliverable/binutils-gdb.git] / gdb / rs6000-nat.c
CommitLineData
ef6f3a8b 1/* IBM RS/6000 native-dependent code for GDB, the GNU debugger.
0c4b30ea 2 Copyright 1986, 1987, 1989, 1991, 1992, 1994 Free Software Foundation, Inc.
ef6f3a8b
RP
3
4This file is part of GDB.
5
6This program is free software; you can redistribute it and/or modify
7it under the terms of the GNU General Public License as published by
8the Free Software Foundation; either version 2 of the License, or
9(at your option) any later version.
10
11This program is distributed in the hope that it will be useful,
12but WITHOUT ANY WARRANTY; without even the implied warranty of
13MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14GNU General Public License for more details.
15
16You should have received a copy of the GNU General Public License
17along with this program; if not, write to the Free Software
18Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. */
19
20#include "defs.h"
21#include "inferior.h"
22#include "target.h"
d87d7b10
SG
23#include "gdbcore.h"
24#include "xcoffsolib.h"
25#include "symfile.h"
26#include "objfiles.h"
886955e7 27#include "libbfd.h" /* For bfd_cache_lookup (FIXME) */
d87d7b10 28#include "bfd.h"
ef6f3a8b
RP
29
30#include <sys/ptrace.h>
31#include <sys/reg.h>
32
33#include <sys/param.h>
34#include <sys/dir.h>
35#include <sys/user.h>
36#include <signal.h>
37#include <sys/ioctl.h>
38#include <fcntl.h>
39
40#include <a.out.h>
41#include <sys/file.h>
42#include <sys/stat.h>
43#include <sys/core.h>
d87d7b10 44#include <sys/ldr.h>
ef6f3a8b
RP
45
46extern int errno;
0c4b30ea 47
d87d7b10
SG
48extern struct vmap * map_vmap PARAMS ((bfd *bf, bfd *arch));
49
50extern struct target_ops exec_ops;
ef6f3a8b
RP
51
52static void
53exec_one_dummy_insn PARAMS ((void));
54
d87d7b10
SG
55extern void
56add_text_to_loadinfo PARAMS ((CORE_ADDR textaddr, CORE_ADDR dataaddr));
57
0c4b30ea
SS
58extern void
59fixup_breakpoints PARAMS ((CORE_ADDR low, CORE_ADDR high, CORE_ADDR delta));
60
ef6f3a8b
RP
61/* Conversion from gdb-to-system special purpose register numbers.. */
62
63static int special_regs[] = {
64 IAR, /* PC_REGNUM */
65 MSR, /* PS_REGNUM */
66 CR, /* CR_REGNUM */
67 LR, /* LR_REGNUM */
68 CTR, /* CTR_REGNUM */
69 XER, /* XER_REGNUM */
70 MQ /* MQ_REGNUM */
71};
72
73void
74fetch_inferior_registers (regno)
75 int regno;
76{
77 int ii;
78 extern char registers[];
79
80 if (regno < 0) { /* for all registers */
81
82 /* read 32 general purpose registers. */
83
84 for (ii=0; ii < 32; ++ii)
85 *(int*)&registers[REGISTER_BYTE (ii)] =
86 ptrace (PT_READ_GPR, inferior_pid, (PTRACE_ARG3_TYPE) ii, 0, 0);
87
88 /* read general purpose floating point registers. */
89
90 for (ii=0; ii < 32; ++ii)
91 ptrace (PT_READ_FPR, inferior_pid,
0c4b30ea 92 (PTRACE_ARG3_TYPE) &registers [REGISTER_BYTE (FP0_REGNUM+ii)],
ef6f3a8b
RP
93 FPR0+ii, 0);
94
95 /* read special registers. */
96 for (ii=0; ii <= LAST_SP_REGNUM-FIRST_SP_REGNUM; ++ii)
97 *(int*)&registers[REGISTER_BYTE (FIRST_SP_REGNUM+ii)] =
98 ptrace (PT_READ_GPR, inferior_pid, (PTRACE_ARG3_TYPE) special_regs[ii],
99 0, 0);
100
101 registers_fetched ();
102 return;
103 }
104
105 /* else an individual register is addressed. */
106
107 else if (regno < FP0_REGNUM) { /* a GPR */
108 *(int*)&registers[REGISTER_BYTE (regno)] =
109 ptrace (PT_READ_GPR, inferior_pid, (PTRACE_ARG3_TYPE) regno, 0, 0);
110 }
111 else if (regno <= FPLAST_REGNUM) { /* a FPR */
112 ptrace (PT_READ_FPR, inferior_pid,
0c4b30ea 113 (PTRACE_ARG3_TYPE) &registers [REGISTER_BYTE (regno)],
ef6f3a8b
RP
114 (regno-FP0_REGNUM+FPR0), 0);
115 }
116 else if (regno <= LAST_SP_REGNUM) { /* a special register */
117 *(int*)&registers[REGISTER_BYTE (regno)] =
118 ptrace (PT_READ_GPR, inferior_pid,
119 (PTRACE_ARG3_TYPE) special_regs[regno-FIRST_SP_REGNUM], 0, 0);
120 }
121 else
199b2450 122 fprintf_unfiltered (gdb_stderr, "gdb error: register no %d not implemented.\n", regno);
ef6f3a8b
RP
123
124 register_valid [regno] = 1;
125}
126
127/* Store our register values back into the inferior.
128 If REGNO is -1, do this for all registers.
129 Otherwise, REGNO specifies which register (so we can save time). */
130
131void
132store_inferior_registers (regno)
133 int regno;
134{
135 extern char registers[];
136
137 errno = 0;
138
0c4b30ea
SS
139 if (regno == -1)
140 { /* for all registers.. */
ef6f3a8b
RP
141 int ii;
142
143 /* execute one dummy instruction (which is a breakpoint) in inferior
144 process. So give kernel a chance to do internal house keeping.
145 Otherwise the following ptrace(2) calls will mess up user stack
146 since kernel will get confused about the bottom of the stack (%sp) */
147
148 exec_one_dummy_insn ();
149
150 /* write general purpose registers first! */
0c4b30ea
SS
151 for ( ii=GPR0; ii<=GPR31; ++ii)
152 {
153 ptrace (PT_WRITE_GPR, inferior_pid, (PTRACE_ARG3_TYPE) ii,
154 *(int*)&registers[REGISTER_BYTE (ii)], 0);
155 if (errno)
156 {
157 perror ("ptrace write_gpr");
158 errno = 0;
159 }
ef6f3a8b 160 }
ef6f3a8b
RP
161
162 /* write floating point registers now. */
0c4b30ea
SS
163 for ( ii=0; ii < 32; ++ii)
164 {
165 ptrace (PT_WRITE_FPR, inferior_pid,
ef6f3a8b 166 (PTRACE_ARG3_TYPE) &registers[REGISTER_BYTE (FP0_REGNUM+ii)],
0c4b30ea
SS
167 FPR0+ii, 0);
168 if (errno)
169 {
170 perror ("ptrace write_fpr");
171 errno = 0;
172 }
173 }
ef6f3a8b
RP
174
175 /* write special registers. */
0c4b30ea
SS
176 for (ii=0; ii <= LAST_SP_REGNUM-FIRST_SP_REGNUM; ++ii)
177 {
178 ptrace (PT_WRITE_GPR, inferior_pid,
179 (PTRACE_ARG3_TYPE) special_regs[ii],
180 *(int*)&registers[REGISTER_BYTE (FIRST_SP_REGNUM+ii)], 0);
181 if (errno)
182 {
183 perror ("ptrace write_gpr");
184 errno = 0;
185 }
ef6f3a8b 186 }
0c4b30ea 187 }
ef6f3a8b
RP
188
189 /* else, a specific register number is given... */
190
0c4b30ea
SS
191 else if (regno < FP0_REGNUM) /* a GPR */
192 {
193 ptrace (PT_WRITE_GPR, inferior_pid, (PTRACE_ARG3_TYPE) regno,
194 *(int*)&registers[REGISTER_BYTE (regno)], 0);
195 }
ef6f3a8b 196
0c4b30ea
SS
197 else if (regno <= FPLAST_REGNUM) /* a FPR */
198 {
199 ptrace (PT_WRITE_FPR, inferior_pid,
200 (PTRACE_ARG3_TYPE) &registers[REGISTER_BYTE (regno)],
201 regno - FP0_REGNUM + FPR0, 0);
202 }
ef6f3a8b 203
0c4b30ea
SS
204 else if (regno <= LAST_SP_REGNUM) /* a special register */
205 {
206 ptrace (PT_WRITE_GPR, inferior_pid,
207 (PTRACE_ARG3_TYPE) special_regs [regno-FIRST_SP_REGNUM],
208 *(int*)&registers[REGISTER_BYTE (regno)], 0);
209 }
ef6f3a8b
RP
210
211 else
199b2450 212 fprintf_unfiltered (gdb_stderr, "Gdb error: register no %d not implemented.\n", regno);
ef6f3a8b 213
0c4b30ea
SS
214 if (errno)
215 {
216 perror ("ptrace write");
217 errno = 0;
218 }
ef6f3a8b
RP
219}
220
221/* Execute one dummy breakpoint instruction. This way we give the kernel
222 a chance to do some housekeeping and update inferior's internal data,
223 including u_area. */
0c4b30ea 224
ef6f3a8b
RP
225static void
226exec_one_dummy_insn ()
227{
228#define DUMMY_INSN_ADDR (TEXT_SEGMENT_BASE)+0x200
229
0c4b30ea 230 char shadow_contents[BREAKPOINT_MAX]; /* Stash old bkpt addr contents */
ef6f3a8b
RP
231 unsigned int status, pid;
232
233 /* We plant one dummy breakpoint into DUMMY_INSN_ADDR address. We assume that
234 this address will never be executed again by the real code. */
235
0c4b30ea 236 target_insert_breakpoint (DUMMY_INSN_ADDR, shadow_contents);
ef6f3a8b
RP
237
238 errno = 0;
239 ptrace (PT_CONTINUE, inferior_pid, (PTRACE_ARG3_TYPE) DUMMY_INSN_ADDR, 0, 0);
240 if (errno)
241 perror ("pt_continue");
242
243 do {
244 pid = wait (&status);
245 } while (pid != inferior_pid);
246
0c4b30ea 247 target_remove_breakpoint (DUMMY_INSN_ADDR, shadow_contents);
ef6f3a8b
RP
248}
249
250void
251fetch_core_registers (core_reg_sect, core_reg_size, which, reg_addr)
252 char *core_reg_sect;
253 unsigned core_reg_size;
254 int which;
255 unsigned int reg_addr; /* Unused in this version */
256{
257 /* fetch GPRs and special registers from the first register section
258 in core bfd. */
0c4b30ea
SS
259 if (which == 0)
260 {
261 /* copy GPRs first. */
262 memcpy (registers, core_reg_sect, 32 * 4);
263
264 /* gdb's internal register template and bfd's register section layout
265 should share a common include file. FIXMEmgo */
266 /* then comes special registes. They are supposed to be in the same
267 order in gdb template and bfd `.reg' section. */
268 core_reg_sect += (32 * 4);
269 memcpy (&registers [REGISTER_BYTE (FIRST_SP_REGNUM)], core_reg_sect,
270 (LAST_SP_REGNUM - FIRST_SP_REGNUM + 1) * 4);
271 }
ef6f3a8b
RP
272
273 /* fetch floating point registers from register section 2 in core bfd. */
274 else if (which == 2)
ade40d31 275 memcpy (&registers [REGISTER_BYTE (FP0_REGNUM)], core_reg_sect, 32 * 8);
ef6f3a8b
RP
276
277 else
199b2450 278 fprintf_unfiltered (gdb_stderr, "Gdb error: unknown parameter to fetch_core_registers().\n");
ef6f3a8b 279}
d87d7b10 280\f
0c4b30ea 281/* handle symbol translation on vmapping */
d87d7b10
SG
282
283static void
284vmap_symtab (vp)
285 register struct vmap *vp;
286{
287 register struct objfile *objfile;
288 asection *textsec;
289 asection *datasec;
290 asection *bsssec;
291 CORE_ADDR text_delta;
292 CORE_ADDR data_delta;
293 CORE_ADDR bss_delta;
294 struct section_offsets *new_offsets;
295 int i;
296
297 objfile = vp->objfile;
298 if (objfile == NULL)
299 {
300 /* OK, it's not an objfile we opened ourselves.
301 Currently, that can only happen with the exec file, so
302 relocate the symbols for the symfile. */
303 if (symfile_objfile == NULL)
304 return;
305 objfile = symfile_objfile;
306 }
307
308 new_offsets = alloca
309 (sizeof (struct section_offsets)
310 + sizeof (new_offsets->offsets) * objfile->num_sections);
311
312 for (i = 0; i < objfile->num_sections; ++i)
313 ANOFFSET (new_offsets, i) = ANOFFSET (objfile->section_offsets, i);
314
315 textsec = bfd_get_section_by_name (vp->bfd, ".text");
316 text_delta =
317 vp->tstart - ANOFFSET (objfile->section_offsets, textsec->target_index);
318 ANOFFSET (new_offsets, textsec->target_index) = vp->tstart;
319
320 datasec = bfd_get_section_by_name (vp->bfd, ".data");
321 data_delta =
322 vp->dstart - ANOFFSET (objfile->section_offsets, datasec->target_index);
323 ANOFFSET (new_offsets, datasec->target_index) = vp->dstart;
324
325 bsssec = bfd_get_section_by_name (vp->bfd, ".bss");
326 bss_delta =
327 vp->dstart - ANOFFSET (objfile->section_offsets, bsssec->target_index);
328 ANOFFSET (new_offsets, bsssec->target_index) = vp->dstart;
329
330 objfile_relocate (objfile, new_offsets);
331
332 {
333 struct obj_section *s;
334 for (s = objfile->sections; s < objfile->sections_end; ++s)
335 {
94d4b713 336 if (s->the_bfd_section->target_index == textsec->target_index)
d87d7b10
SG
337 {
338 s->addr += text_delta;
339 s->endaddr += text_delta;
340 }
94d4b713 341 else if (s->the_bfd_section->target_index == datasec->target_index)
d87d7b10
SG
342 {
343 s->addr += data_delta;
344 s->endaddr += data_delta;
345 }
94d4b713 346 else if (s->the_bfd_section->target_index == bsssec->target_index)
d87d7b10
SG
347 {
348 s->addr += bss_delta;
349 s->endaddr += bss_delta;
350 }
351 }
352 }
353
354 if (text_delta != 0)
355 /* breakpoints need to be relocated as well. */
356 fixup_breakpoints (0, TEXT_SEGMENT_BASE, text_delta);
357}
358\f
359/* Add symbols for an objfile. */
0c4b30ea 360
d87d7b10
SG
361static int
362objfile_symbol_add (arg)
363 char *arg;
364{
365 struct objfile *obj = (struct objfile *) arg;
0c4b30ea 366
d87d7b10
SG
367 syms_from_objfile (obj, 0, 0, 0);
368 new_symfile_objfile (obj, 0, 0);
369 return 1;
370}
371
372/* Add a new vmap entry based on ldinfo() information.
373
374 If ldi->ldinfo_fd is not valid (e.g. this struct ld_info is from a
375 core file), the caller should set it to -1, and we will open the file.
376
377 Return the vmap new entry. */
0c4b30ea 378
d87d7b10 379static struct vmap *
0c4b30ea 380add_vmap (ldi)
d87d7b10
SG
381 register struct ld_info *ldi;
382{
0c4b30ea
SS
383 bfd *abfd, *last;
384 register char *mem, *objname;
385 struct objfile *obj;
386 struct vmap *vp;
387
388 /* This ldi structure was allocated using alloca() in
389 xcoff_relocate_symtab(). Now we need to have persistent object
390 and member names, so we should save them. */
391
392 mem = ldi->ldinfo_filename + strlen (ldi->ldinfo_filename) + 1;
393 mem = savestring (mem, strlen (mem));
394 objname = savestring (ldi->ldinfo_filename, strlen (ldi->ldinfo_filename));
395
396 if (ldi->ldinfo_fd < 0)
397 /* Note that this opens it once for every member; a possible
398 enhancement would be to only open it once for every object. */
399 abfd = bfd_openr (objname, gnutarget);
400 else
401 abfd = bfd_fdopenr (objname, gnutarget, ldi->ldinfo_fd);
402 if (!abfd)
403 error ("Could not open `%s' as an executable file: %s",
404 objname, bfd_errmsg (bfd_get_error ()));
405
406 /* make sure we have an object file */
407
408 if (bfd_check_format (abfd, bfd_object))
409 vp = map_vmap (abfd, 0);
410
411 else if (bfd_check_format (abfd, bfd_archive))
412 {
413 last = 0;
414 /* FIXME??? am I tossing BFDs? bfd? */
415 while ((last = bfd_openr_next_archived_file (abfd, last)))
416 if (STREQ (mem, last->filename))
417 break;
418
419 if (!last)
420 {
421 bfd_close (abfd);
422 /* FIXME -- should be error */
423 warning ("\"%s\": member \"%s\" missing.", abfd->filename, mem);
424 return;
d87d7b10 425 }
0c4b30ea
SS
426
427 if (!bfd_check_format(last, bfd_object))
428 {
429 bfd_close (last); /* XXX??? */
430 goto obj_err;
d87d7b10 431 }
0c4b30ea
SS
432
433 vp = map_vmap (last, abfd);
434 }
435 else
436 {
437 obj_err:
438 bfd_close (abfd);
439 error ("\"%s\": not in executable format: %s.",
440 objname, bfd_errmsg (bfd_get_error ()));
441 /*NOTREACHED*/
442 }
443 obj = allocate_objfile (vp->bfd, 0);
444 vp->objfile = obj;
d87d7b10
SG
445
446#ifndef SOLIB_SYMBOLS_MANUAL
0c4b30ea
SS
447 if (catch_errors (objfile_symbol_add, (char *)obj,
448 "Error while reading shared library symbols:\n",
449 RETURN_MASK_ALL))
450 {
451 /* Note this is only done if symbol reading was successful. */
452 vmap_symtab (vp);
453 vp->loaded = 1;
454 }
d87d7b10 455#endif
0c4b30ea 456 return vp;
d87d7b10
SG
457}
458\f
0c4b30ea
SS
459/* update VMAP info with ldinfo() information
460 Input is ptr to ldinfo() results. */
d87d7b10
SG
461
462static void
0c4b30ea 463vmap_ldinfo (ldi)
d87d7b10
SG
464 register struct ld_info *ldi;
465{
466 struct stat ii, vi;
467 register struct vmap *vp;
468 register got_one, retried;
469 CORE_ADDR ostart;
470
0c4b30ea
SS
471 /* For each *ldi, see if we have a corresponding *vp.
472 If so, update the mapping, and symbol table.
473 If not, add an entry and symbol table. */
d87d7b10 474
0c4b30ea
SS
475 do {
476 char *name = ldi->ldinfo_filename;
477 char *memb = name + strlen(name) + 1;
d87d7b10 478
0c4b30ea 479 retried = 0;
d87d7b10 480
0c4b30ea
SS
481 if (fstat (ldi->ldinfo_fd, &ii) < 0)
482 fatal ("cannot fstat(fd=%d) on %s", ldi->ldinfo_fd, name);
483 retry:
484 for (got_one = 0, vp = vmap; vp; vp = vp->nxt)
485 {
486 FILE *io;
d87d7b10 487
0c4b30ea
SS
488 /* First try to find a `vp', which is the same as in ldinfo.
489 If not the same, just continue and grep the next `vp'. If same,
490 relocate its tstart, tend, dstart, dend values. If no such `vp'
491 found, get out of this for loop, add this ldi entry as a new vmap
492 (add_vmap) and come back, fins its `vp' and so on... */
d87d7b10 493
0c4b30ea 494 /* The filenames are not always sufficient to match on. */
d87d7b10 495
0c4b30ea
SS
496 if ((name[0] == '/' && !STREQ(name, vp->name))
497 || (memb[0] && !STREQ(memb, vp->member)))
498 continue;
d87d7b10 499
0c4b30ea
SS
500 io = bfd_cache_lookup (vp->bfd); /* totally opaque! */
501 if (!io)
502 fatal ("cannot find BFD's iostream for %s", vp->name);
d87d7b10 503
0c4b30ea 504 /* See if we are referring to the same file. */
523ca9d0
SS
505 /* An error here is innocuous, most likely meaning that
506 the file descriptor has become worthless. */
0c4b30ea 507 if (fstat (fileno(io), &vi) < 0)
523ca9d0 508 continue;
d87d7b10 509
0c4b30ea
SS
510 if (ii.st_dev != vi.st_dev || ii.st_ino != vi.st_ino)
511 continue;
d87d7b10 512
0c4b30ea
SS
513 if (!retried)
514 close (ldi->ldinfo_fd);
d87d7b10 515
0c4b30ea 516 ++got_one;
d87d7b10 517
0c4b30ea
SS
518 /* found a corresponding VMAP. remap! */
519 ostart = vp->tstart;
d87d7b10 520
0c4b30ea
SS
521 /* We can assume pointer == CORE_ADDR, this code is native only. */
522 vp->tstart = (CORE_ADDR) ldi->ldinfo_textorg;
523 vp->tend = vp->tstart + ldi->ldinfo_textsize;
524 vp->dstart = (CORE_ADDR) ldi->ldinfo_dataorg;
525 vp->dend = vp->dstart + ldi->ldinfo_datasize;
d87d7b10 526
0c4b30ea
SS
527 if (vp->tadj)
528 {
d87d7b10
SG
529 vp->tstart += vp->tadj;
530 vp->tend += vp->tadj;
531 }
532
0c4b30ea
SS
533 /* relocate symbol table(s). */
534 vmap_symtab (vp);
d87d7b10 535
0c4b30ea
SS
536 /* there may be more, so we don't break out of the loop. */
537 }
d87d7b10 538
0c4b30ea
SS
539 /* if there was no matching *vp, we must perforce create the sucker(s) */
540 if (!got_one && !retried)
541 {
542 add_vmap (ldi);
543 ++retried;
544 goto retry;
545 }
d87d7b10
SG
546 } while (ldi->ldinfo_next
547 && (ldi = (void *) (ldi->ldinfo_next + (char *) ldi)));
548
549}
550\f
551/* As well as symbol tables, exec_sections need relocation. After
552 the inferior process' termination, there will be a relocated symbol
553 table exist with no corresponding inferior process. At that time, we
554 need to use `exec' bfd, rather than the inferior process's memory space
555 to look up symbols.
556
557 `exec_sections' need to be relocated only once, as long as the exec
558 file remains unchanged.
559*/
560
561static void
562vmap_exec ()
563{
564 static bfd *execbfd;
565 int i;
566
567 if (execbfd == exec_bfd)
568 return;
569
570 execbfd = exec_bfd;
571
572 if (!vmap || !exec_ops.to_sections)
573 error ("vmap_exec: vmap or exec_ops.to_sections == 0\n");
574
575 for (i=0; &exec_ops.to_sections[i] < exec_ops.to_sections_end; i++)
576 {
94d4b713 577 if (STREQ(".text", exec_ops.to_sections[i].the_bfd_section->name))
d87d7b10
SG
578 {
579 exec_ops.to_sections[i].addr += vmap->tstart;
580 exec_ops.to_sections[i].endaddr += vmap->tstart;
581 }
94d4b713 582 else if (STREQ(".data", exec_ops.to_sections[i].the_bfd_section->name))
d87d7b10
SG
583 {
584 exec_ops.to_sections[i].addr += vmap->dstart;
585 exec_ops.to_sections[i].endaddr += vmap->dstart;
586 }
587 }
588}
589\f
590/* xcoff_relocate_symtab - hook for symbol table relocation.
591 also reads shared libraries.. */
592
0c4b30ea 593void
d87d7b10 594xcoff_relocate_symtab (pid)
0c4b30ea 595 unsigned int pid;
d87d7b10
SG
596{
597#define MAX_LOAD_SEGS 64 /* maximum number of load segments */
598
0c4b30ea 599 struct ld_info *ldi;
d87d7b10 600
0c4b30ea 601 ldi = (void *) alloca(MAX_LOAD_SEGS * sizeof (*ldi));
d87d7b10 602
0c4b30ea
SS
603 /* According to my humble theory, AIX has some timing problems and
604 when the user stack grows, kernel doesn't update stack info in time
605 and ptrace calls step on user stack. That is why we sleep here a little,
606 and give kernel to update its internals. */
d87d7b10 607
0c4b30ea 608 usleep (36000);
d87d7b10 609
0c4b30ea
SS
610 errno = 0;
611 ptrace (PT_LDINFO, pid, (PTRACE_ARG3_TYPE) ldi,
612 MAX_LOAD_SEGS * sizeof(*ldi), ldi);
613 if (errno)
614 perror_with_name ("ptrace ldinfo");
d87d7b10 615
0c4b30ea 616 vmap_ldinfo (ldi);
d87d7b10 617
0c4b30ea
SS
618 do {
619 /* We are allowed to assume CORE_ADDR == pointer. This code is
620 native only. */
621 add_text_to_loadinfo ((CORE_ADDR) ldi->ldinfo_textorg,
622 (CORE_ADDR) ldi->ldinfo_dataorg);
623 } while (ldi->ldinfo_next
624 && (ldi = (void *) (ldi->ldinfo_next + (char *) ldi)));
d87d7b10
SG
625
626#if 0
627 /* Now that we've jumbled things around, re-sort them. */
628 sort_minimal_symbols ();
629#endif
630
631 /* relocate the exec and core sections as well. */
632 vmap_exec ();
633}
634\f
635/* Core file stuff. */
636
637/* Relocate symtabs and read in shared library info, based on symbols
638 from the core file. */
0c4b30ea 639
d87d7b10
SG
640void
641xcoff_relocate_core ()
642{
643/* Offset of member MEMBER in a struct of type TYPE. */
644#ifndef offsetof
645#define offsetof(TYPE, MEMBER) ((int) &((TYPE *)0)->MEMBER)
646#endif
647
648/* Size of a struct ld_info except for the variable-length filename. */
649#define LDINFO_SIZE (offsetof (struct ld_info, ldinfo_filename))
650
651 sec_ptr ldinfo_sec;
652 int offset = 0;
653 struct ld_info *ldip;
654 struct vmap *vp;
655
656 /* Allocated size of buffer. */
657 int buffer_size = LDINFO_SIZE;
658 char *buffer = xmalloc (buffer_size);
659 struct cleanup *old = make_cleanup (free_current_contents, &buffer);
660
661 /* FIXME, this restriction should not exist. For now, though I'll
662 avoid coredumps with error() pending a real fix. */
663 if (vmap == NULL)
664 error
665 ("Can't debug a core file without an executable file (on the RS/6000)");
666
667 ldinfo_sec = bfd_get_section_by_name (core_bfd, ".ldinfo");
668 if (ldinfo_sec == NULL)
669 {
0c4b30ea 670 bfd_err:
d87d7b10 671 fprintf_filtered (gdb_stderr, "Couldn't get ldinfo from core file: %s\n",
c4a081e1 672 bfd_errmsg (bfd_get_error ()));
d87d7b10
SG
673 do_cleanups (old);
674 return;
675 }
676 do
677 {
678 int i;
679 int names_found = 0;
680
681 /* Read in everything but the name. */
682 if (bfd_get_section_contents (core_bfd, ldinfo_sec, buffer,
683 offset, LDINFO_SIZE) == 0)
684 goto bfd_err;
685
686 /* Now the name. */
687 i = LDINFO_SIZE;
688 do
689 {
690 if (i == buffer_size)
691 {
692 buffer_size *= 2;
693 buffer = xrealloc (buffer, buffer_size);
694 }
695 if (bfd_get_section_contents (core_bfd, ldinfo_sec, &buffer[i],
696 offset + i, 1) == 0)
697 goto bfd_err;
698 if (buffer[i++] == '\0')
699 ++names_found;
700 } while (names_found < 2);
701
0c4b30ea 702 ldip = (struct ld_info *) buffer;
d87d7b10
SG
703
704 /* Can't use a file descriptor from the core file; need to open it. */
705 ldip->ldinfo_fd = -1;
706
707 /* The first ldinfo is for the exec file, allocated elsewhere. */
708 if (offset == 0)
709 vp = vmap;
710 else
711 vp = add_vmap (ldip);
712
713 offset += ldip->ldinfo_next;
714
715 /* We can assume pointer == CORE_ADDR, this code is native only. */
716 vp->tstart = (CORE_ADDR) ldip->ldinfo_textorg;
717 vp->tend = vp->tstart + ldip->ldinfo_textsize;
718 vp->dstart = (CORE_ADDR) ldip->ldinfo_dataorg;
719 vp->dend = vp->dstart + ldip->ldinfo_datasize;
720
523ca9d0
SS
721 if (vp->tadj != 0)
722 {
723 vp->tstart += vp->tadj;
724 vp->tend += vp->tadj;
725 }
d87d7b10
SG
726
727 /* Unless this is the exec file,
728 add our sections to the section table for the core target. */
729 if (vp != vmap)
730 {
731 int count;
732 struct section_table *stp;
733
734 count = core_ops.to_sections_end - core_ops.to_sections;
735 count += 2;
736 core_ops.to_sections = (struct section_table *)
737 xrealloc (core_ops.to_sections,
738 sizeof (struct section_table) * count);
739 core_ops.to_sections_end = core_ops.to_sections + count;
740 stp = core_ops.to_sections_end - 2;
741
742 /* "Why do we add bfd_section_vma?", I hear you cry.
743 Well, the start of the section in the file is actually
744 that far into the section as the struct vmap understands it.
745 So for text sections, bfd_section_vma tends to be 0x200,
746 and if vp->tstart is 0xd0002000, then the first byte of
747 the text section on disk corresponds to address 0xd0002200. */
748 stp->bfd = vp->bfd;
94d4b713
JK
749 stp->the_bfd_section = bfd_get_section_by_name (stp->bfd, ".text");
750 stp->addr = bfd_section_vma (stp->bfd, stp->the_bfd_section) + vp->tstart;
751 stp->endaddr = bfd_section_vma (stp->bfd, stp->the_bfd_section) + vp->tend;
d87d7b10
SG
752 stp++;
753
754 stp->bfd = vp->bfd;
94d4b713
JK
755 stp->the_bfd_section = bfd_get_section_by_name (stp->bfd, ".data");
756 stp->addr = bfd_section_vma (stp->bfd, stp->the_bfd_section) + vp->dstart;
757 stp->endaddr = bfd_section_vma (stp->bfd, stp->the_bfd_section) + vp->dend;
d87d7b10
SG
758 }
759
760 vmap_symtab (vp);
761
762 add_text_to_loadinfo ((CORE_ADDR)ldip->ldinfo_textorg,
763 (CORE_ADDR)ldip->ldinfo_dataorg);
764 } while (ldip->ldinfo_next != 0);
765 vmap_exec ();
766 do_cleanups (old);
767}
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