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CommitLineData
c906108c 1/* IBM RS/6000 native-dependent code for GDB, the GNU debugger.
b6ba6518 2 Copyright 1986, 1987, 1989, 1991, 1992, 1993, 1994, 1995, 1996, 1997,
19caaa45 3 1998, 1999, 2000, 2001, 2002
c5aa993b 4 Free Software Foundation, Inc.
c906108c 5
c5aa993b 6 This file is part of GDB.
c906108c 7
c5aa993b
JM
8 This program is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 2 of the License, or
11 (at your option) any later version.
c906108c 12
c5aa993b
JM
13 This program is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
c906108c 17
c5aa993b
JM
18 You should have received a copy of the GNU General Public License
19 along with this program; if not, write to the Free Software
20 Foundation, Inc., 59 Temple Place - Suite 330,
21 Boston, MA 02111-1307, USA. */
c906108c
SS
22
23#include "defs.h"
24#include "inferior.h"
25#include "target.h"
26#include "gdbcore.h"
27#include "xcoffsolib.h"
28#include "symfile.h"
29#include "objfiles.h"
c5aa993b 30#include "libbfd.h" /* For bfd_cache_lookup (FIXME) */
c906108c
SS
31#include "bfd.h"
32#include "gdb-stabs.h"
4e052eda 33#include "regcache.h"
19caaa45 34#include "arch-utils.h"
c906108c
SS
35
36#include <sys/ptrace.h>
37#include <sys/reg.h>
38
39#include <sys/param.h>
40#include <sys/dir.h>
41#include <sys/user.h>
42#include <signal.h>
43#include <sys/ioctl.h>
44#include <fcntl.h>
7a78ae4e 45#include <errno.h>
c906108c
SS
46
47#include <a.out.h>
48#include <sys/file.h>
49#include "gdb_stat.h"
50#include <sys/core.h>
7a78ae4e
ND
51#define __LDINFO_PTRACE32__ /* for __ld_info32 */
52#define __LDINFO_PTRACE64__ /* for __ld_info64 */
c906108c 53#include <sys/ldr.h>
7a78ae4e 54#include <sys/systemcfg.h>
c906108c 55
7a78ae4e
ND
56/* On AIX4.3+, sys/ldr.h provides different versions of struct ld_info for
57 debugging 32-bit and 64-bit processes. Define a typedef and macros for
58 accessing fields in the appropriate structures. */
59
60/* In 32-bit compilation mode (which is the only mode from which ptrace()
61 works on 4.3), __ld_info32 is #defined as equivalent to ld_info. */
62
63#ifdef __ld_info32
64# define ARCH3264
65#endif
66
67/* Return whether the current architecture is 64-bit. */
68
69#ifndef ARCH3264
70# define ARCH64() 0
71#else
72# define ARCH64() (REGISTER_RAW_SIZE (0) == 8)
73#endif
74
75/* Union of 32-bit and 64-bit ".reg" core file sections. */
76
77typedef union {
78#ifdef ARCH3264
79 struct __context64 r64;
80#else
81 struct mstsave r64;
82#endif
83 struct mstsave r32;
84} CoreRegs;
85
86/* Union of 32-bit and 64-bit versions of ld_info. */
87
88typedef union {
89#ifndef ARCH3264
90 struct ld_info l32;
91 struct ld_info l64;
92#else
93 struct __ld_info32 l32;
94 struct __ld_info64 l64;
95#endif
96} LdInfo;
97
98/* If compiling with 32-bit and 64-bit debugging capability (e.g. AIX 4.x),
99 declare and initialize a variable named VAR suitable for use as the arch64
100 parameter to the various LDI_*() macros. */
101
102#ifndef ARCH3264
103# define ARCH64_DECL(var)
104#else
105# define ARCH64_DECL(var) int var = ARCH64 ()
106#endif
107
108/* Return LDI's FIELD for a 64-bit process if ARCH64 and for a 32-bit process
109 otherwise. This technique only works for FIELDs with the same data type in
110 32-bit and 64-bit versions of ld_info. */
111
112#ifndef ARCH3264
113# define LDI_FIELD(ldi, arch64, field) (ldi)->l32.ldinfo_##field
114#else
115# define LDI_FIELD(ldi, arch64, field) \
116 (arch64 ? (ldi)->l64.ldinfo_##field : (ldi)->l32.ldinfo_##field)
117#endif
118
119/* Return various LDI fields for a 64-bit process if ARCH64 and for a 32-bit
120 process otherwise. */
121
122#define LDI_NEXT(ldi, arch64) LDI_FIELD(ldi, arch64, next)
123#define LDI_FD(ldi, arch64) LDI_FIELD(ldi, arch64, fd)
124#define LDI_FILENAME(ldi, arch64) LDI_FIELD(ldi, arch64, filename)
c906108c 125
a14ed312 126extern struct vmap *map_vmap (bfd * bf, bfd * arch);
c906108c
SS
127
128extern struct target_ops exec_ops;
129
a14ed312 130static void vmap_exec (void);
c906108c 131
7a78ae4e 132static void vmap_ldinfo (LdInfo *);
c906108c 133
7a78ae4e 134static struct vmap *add_vmap (LdInfo *);
c906108c 135
7a78ae4e 136static int objfile_symbol_add (void *);
c906108c 137
a14ed312 138static void vmap_symtab (struct vmap *);
c906108c 139
a14ed312 140static void fetch_core_registers (char *, unsigned int, int, CORE_ADDR);
c906108c 141
a14ed312 142static void exec_one_dummy_insn (void);
c906108c
SS
143
144extern void
a14ed312 145fixup_breakpoints (CORE_ADDR low, CORE_ADDR high, CORE_ADDR delta);
c906108c 146
7a78ae4e 147/* Conversion from gdb-to-system special purpose register numbers. */
c906108c 148
c5aa993b
JM
149static int special_regs[] =
150{
151 IAR, /* PC_REGNUM */
152 MSR, /* PS_REGNUM */
153 CR, /* CR_REGNUM */
154 LR, /* LR_REGNUM */
155 CTR, /* CTR_REGNUM */
c906108c 156 XER, /* XER_REGNUM */
c5aa993b 157 MQ /* MQ_REGNUM */
c906108c
SS
158};
159
7a78ae4e 160/* Call ptrace(REQ, ID, ADDR, DATA, BUF). */
c906108c 161
7a78ae4e
ND
162static int
163ptrace32 (int req, int id, int *addr, int data, int *buf)
164{
165 int ret = ptrace (req, id, (int *)addr, data, buf);
166#if 0
167 printf ("ptrace32 (%d, %d, 0x%x, %08x, 0x%x) = 0x%x\n",
168 req, id, (unsigned int)addr, data, (unsigned int)buf, ret);
169#endif
170 return ret;
171}
c906108c 172
7a78ae4e 173/* Call ptracex(REQ, ID, ADDR, DATA, BUF). */
c906108c 174
7a78ae4e
ND
175static int
176ptrace64 (int req, int id, long long addr, int data, int *buf)
177{
178#ifdef ARCH3264
179 int ret = ptracex (req, id, addr, data, buf);
180#else
181 int ret = 0;
182#endif
183#if 0
184 printf ("ptrace64 (%d, %d, 0x%llx, %08x, 0x%x) = 0x%x\n",
185 req, id, addr, data, (unsigned int)buf, ret);
186#endif
187 return ret;
188}
c906108c 189
7a78ae4e 190/* Fetch register REGNO from the inferior. */
c906108c 191
7a78ae4e
ND
192static void
193fetch_register (int regno)
194{
195 int *addr = (int *) &registers[REGISTER_BYTE (regno)];
196 int nr;
c906108c 197
7a78ae4e
ND
198 /* Retrieved values may be -1, so infer errors from errno. */
199 errno = 0;
c906108c 200
7a78ae4e
ND
201 /* Floating-point registers. */
202 if (regno >= FP0_REGNUM && regno <= FPLAST_REGNUM)
203 {
204 nr = regno - FP0_REGNUM + FPR0;
39f77062 205 ptrace32 (PT_READ_FPR, PIDGET (inferior_ptid), addr, nr, 0);
c5aa993b 206 }
c906108c 207
7a78ae4e
ND
208 /* Bogus register number. */
209 else if (regno > LAST_UISA_SP_REGNUM)
2a18e3d9
EZ
210 {
211 if (regno >= NUM_REGS)
212 fprintf_unfiltered (gdb_stderr,
213 "gdb error: register no %d not implemented.\n",
214 regno);
215 }
c906108c 216
7a78ae4e
ND
217 /* Fixed-point registers. */
218 else
219 {
220 if (regno >= FIRST_UISA_SP_REGNUM)
221 nr = special_regs[regno - FIRST_UISA_SP_REGNUM];
222 else
223 nr = regno;
224
225 if (!ARCH64 ())
39f77062 226 *addr = ptrace32 (PT_READ_GPR, PIDGET (inferior_ptid), (int *)nr, 0, 0);
7a78ae4e
ND
227 else
228 {
229 /* PT_READ_GPR requires the buffer parameter to point to long long,
230 even if the register is really only 32 bits. */
231 long long buf;
39f77062 232 ptrace64 (PT_READ_GPR, PIDGET (inferior_ptid), nr, 0, (int *)&buf);
7a78ae4e
ND
233 if (REGISTER_RAW_SIZE (regno) == 8)
234 memcpy (addr, &buf, 8);
235 else
236 *addr = buf;
237 }
238 }
239
240 if (!errno)
241 register_valid[regno] = 1;
242 else
243 {
244#if 0
245 /* FIXME: this happens 3 times at the start of each 64-bit program. */
246 perror ("ptrace read");
247#endif
248 errno = 0;
249 }
c906108c
SS
250}
251
7a78ae4e 252/* Store register REGNO back into the inferior. */
c906108c 253
7a78ae4e
ND
254static void
255store_register (int regno)
c906108c 256{
7a78ae4e
ND
257 int *addr = (int *) &registers[REGISTER_BYTE (regno)];
258 int nr;
c906108c 259
7a78ae4e 260 /* -1 can be a successful return value, so infer errors from errno. */
c906108c
SS
261 errno = 0;
262
7a78ae4e
ND
263 /* Floating-point registers. */
264 if (regno >= FP0_REGNUM && regno <= FPLAST_REGNUM)
265 {
266 nr = regno - FP0_REGNUM + FPR0;
39f77062 267 ptrace32 (PT_WRITE_FPR, PIDGET (inferior_ptid), addr, nr, 0);
7a78ae4e 268 }
c906108c 269
7a78ae4e
ND
270 /* Bogus register number. */
271 else if (regno > LAST_UISA_SP_REGNUM)
272 {
273 if (regno >= NUM_REGS)
274 fprintf_unfiltered (gdb_stderr,
275 "gdb error: register no %d not implemented.\n",
276 regno);
277 }
c906108c 278
7a78ae4e
ND
279 /* Fixed-point registers. */
280 else
281 {
282 if (regno == SP_REGNUM)
283 /* Execute one dummy instruction (which is a breakpoint) in inferior
284 process to give kernel a chance to do internal housekeeping.
285 Otherwise the following ptrace(2) calls will mess up user stack
286 since kernel will get confused about the bottom of the stack
287 (%sp). */
288 exec_one_dummy_insn ();
c906108c 289
7a78ae4e
ND
290 if (regno >= FIRST_UISA_SP_REGNUM)
291 nr = special_regs[regno - FIRST_UISA_SP_REGNUM];
292 else
293 nr = regno;
c906108c 294
7a78ae4e 295 if (!ARCH64 ())
39f77062 296 ptrace32 (PT_WRITE_GPR, PIDGET (inferior_ptid), (int *)nr, *addr, 0);
7a78ae4e 297 else
c906108c 298 {
7a78ae4e
ND
299 /* PT_WRITE_GPR requires the buffer parameter to point to an 8-byte
300 area, even if the register is really only 32 bits. */
301 long long buf;
302 if (REGISTER_RAW_SIZE (regno) == 8)
303 memcpy (&buf, addr, 8);
304 else
305 buf = *addr;
39f77062 306 ptrace64 (PT_WRITE_GPR, PIDGET (inferior_ptid), nr, 0, (int *)&buf);
c906108c
SS
307 }
308 }
309
7a78ae4e 310 if (errno)
c906108c 311 {
7a78ae4e
ND
312 perror ("ptrace write");
313 errno = 0;
c906108c 314 }
7a78ae4e 315}
c906108c 316
7a78ae4e
ND
317/* Read from the inferior all registers if REGNO == -1 and just register
318 REGNO otherwise. */
c906108c 319
7a78ae4e
ND
320void
321fetch_inferior_registers (int regno)
322{
323 if (regno != -1)
324 fetch_register (regno);
325
326 else
c906108c 327 {
7a78ae4e
ND
328 /* read 32 general purpose registers. */
329 for (regno = 0; regno < 32; regno++)
330 fetch_register (regno);
331
332 /* read general purpose floating point registers. */
333 for (regno = FP0_REGNUM; regno <= FPLAST_REGNUM; regno++)
334 fetch_register (regno);
335
336 /* read special registers. */
337 for (regno = FIRST_UISA_SP_REGNUM; regno <= LAST_UISA_SP_REGNUM; regno++)
338 fetch_register (regno);
c906108c 339 }
7a78ae4e 340}
c906108c 341
7a78ae4e
ND
342/* Store our register values back into the inferior.
343 If REGNO is -1, do this for all registers.
344 Otherwise, REGNO specifies which register (so we can save time). */
345
346void
347store_inferior_registers (int regno)
348{
349 if (regno != -1)
350 store_register (regno);
351
352 else
f6077098 353 {
7a78ae4e
ND
354 /* write general purpose registers first! */
355 for (regno = GPR0; regno <= GPR31; regno++)
356 store_register (regno);
357
358 /* write floating point registers now. */
359 for (regno = FP0_REGNUM; regno <= FPLAST_REGNUM; regno++)
360 store_register (regno);
361
362 /* write special registers. */
363
364 for (regno = FIRST_UISA_SP_REGNUM; regno <= LAST_UISA_SP_REGNUM; regno++)
365 store_register (regno);
f6077098 366 }
7a78ae4e 367}
f6077098 368
7a78ae4e
ND
369/* Store in *TO the 32-bit word at 32-bit-aligned ADDR in the child
370 process, which is 64-bit if ARCH64 and 32-bit otherwise. Return
371 success. */
372
373static int
374read_word (CORE_ADDR from, int *to, int arch64)
375{
376 /* Retrieved values may be -1, so infer errors from errno. */
377 errno = 0;
378
379 if (arch64)
39f77062 380 *to = ptrace64 (PT_READ_I, PIDGET (inferior_ptid), from, 0, NULL);
c906108c 381 else
39f77062
KB
382 *to = ptrace32 (PT_READ_I, PIDGET (inferior_ptid), (int *)(long) from,
383 0, NULL);
c906108c 384
7a78ae4e
ND
385 return !errno;
386}
387
388/* Copy LEN bytes to or from inferior's memory starting at MEMADDR
389 to debugger memory starting at MYADDR. Copy to inferior if
390 WRITE is nonzero.
391
392 Returns the length copied, which is either the LEN argument or zero.
393 This xfer function does not do partial moves, since child_ops
394 doesn't allow memory operations to cross below us in the target stack
395 anyway. */
396
397int
398child_xfer_memory (CORE_ADDR memaddr, char *myaddr, int len,
d737ece6
PS
399 int write, struct mem_attrib *attrib,
400 struct target_ops *target)
7a78ae4e
ND
401{
402 /* Round starting address down to 32-bit word boundary. */
403 int mask = sizeof (int) - 1;
404 CORE_ADDR addr = memaddr & ~(CORE_ADDR)mask;
405
406 /* Round ending address up to 32-bit word boundary. */
407 int count = ((memaddr + len - addr + mask) & ~(CORE_ADDR)mask)
408 / sizeof (int);
409
410 /* Allocate word transfer buffer. */
d33fc4e4
MS
411 /* FIXME (alloca): This code, cloned from infptrace.c, is unsafe
412 because it uses alloca to allocate a buffer of arbitrary size.
413 For very large xfers, this could crash GDB's stack. */
7a78ae4e
ND
414 int *buf = (int *) alloca (count * sizeof (int));
415
416 int arch64 = ARCH64 ();
417 int i;
418
419 if (!write)
c906108c 420 {
7a78ae4e
ND
421 /* Retrieve memory a word at a time. */
422 for (i = 0; i < count; i++, addr += sizeof (int))
423 {
424 if (!read_word (addr, buf + i, arch64))
425 return 0;
426 QUIT;
427 }
428
429 /* Copy memory to supplied buffer. */
430 addr -= count * sizeof (int);
431 memcpy (myaddr, (char *)buf + (memaddr - addr), len);
c906108c 432 }
7a78ae4e
ND
433 else
434 {
435 /* Fetch leading memory needed for alignment. */
436 if (addr < memaddr)
437 if (!read_word (addr, buf, arch64))
438 return 0;
439
440 /* Fetch trailing memory needed for alignment. */
441 if (addr + count * sizeof (int) > memaddr + len)
442 if (!read_word (addr, buf + count - 1, arch64))
443 return 0;
444
445 /* Copy supplied data into memory buffer. */
446 memcpy ((char *)buf + (memaddr - addr), myaddr, len);
447
448 /* Store memory one word at a time. */
449 for (i = 0, errno = 0; i < count; i++, addr += sizeof (int))
450 {
451 if (arch64)
39f77062 452 ptrace64 (PT_WRITE_D, PIDGET (inferior_ptid), addr, buf[i], NULL);
7a78ae4e 453 else
39f77062 454 ptrace32 (PT_WRITE_D, PIDGET (inferior_ptid), (int *)(long) addr,
7a78ae4e
ND
455 buf[i], NULL);
456
457 if (errno)
458 return 0;
459 QUIT;
460 }
461 }
462
463 return len;
c906108c
SS
464}
465
466/* Execute one dummy breakpoint instruction. This way we give the kernel
467 a chance to do some housekeeping and update inferior's internal data,
468 including u_area. */
469
470static void
7a78ae4e 471exec_one_dummy_insn (void)
c906108c
SS
472{
473#define DUMMY_INSN_ADDR (TEXT_SEGMENT_BASE)+0x200
474
c5aa993b 475 char shadow_contents[BREAKPOINT_MAX]; /* Stash old bkpt addr contents */
7a78ae4e 476 int ret, status, pid;
c906108c
SS
477 CORE_ADDR prev_pc;
478
479 /* We plant one dummy breakpoint into DUMMY_INSN_ADDR address. We
480 assume that this address will never be executed again by the real
481 code. */
482
483 target_insert_breakpoint (DUMMY_INSN_ADDR, shadow_contents);
484
c906108c
SS
485 /* You might think this could be done with a single ptrace call, and
486 you'd be correct for just about every platform I've ever worked
487 on. However, rs6000-ibm-aix4.1.3 seems to have screwed this up --
488 the inferior never hits the breakpoint (it's also worth noting
489 powerpc-ibm-aix4.1.3 works correctly). */
490 prev_pc = read_pc ();
491 write_pc (DUMMY_INSN_ADDR);
7a78ae4e 492 if (ARCH64 ())
39f77062 493 ret = ptrace64 (PT_CONTINUE, PIDGET (inferior_ptid), 1, 0, NULL);
7a78ae4e 494 else
39f77062 495 ret = ptrace32 (PT_CONTINUE, PIDGET (inferior_ptid), (int *)1, 0, NULL);
c906108c 496
7a78ae4e 497 if (ret != 0)
c906108c
SS
498 perror ("pt_continue");
499
c5aa993b
JM
500 do
501 {
502 pid = wait (&status);
503 }
39f77062 504 while (pid != PIDGET (inferior_ptid));
c5aa993b 505
c906108c
SS
506 write_pc (prev_pc);
507 target_remove_breakpoint (DUMMY_INSN_ADDR, shadow_contents);
508}
509
7a78ae4e
ND
510/* Fetch registers from the register section in core bfd. */
511
c906108c 512static void
7a78ae4e
ND
513fetch_core_registers (char *core_reg_sect, unsigned core_reg_size,
514 int which, CORE_ADDR reg_addr)
c906108c 515{
7a78ae4e
ND
516 CoreRegs *regs;
517 double *fprs;
518 int arch64, i, size;
519 void *gprs, *sprs[7];
520
521 if (which != 0)
c906108c 522 {
7a78ae4e
ND
523 fprintf_unfiltered
524 (gdb_stderr,
525 "Gdb error: unknown parameter to fetch_core_registers().\n");
526 return;
c906108c
SS
527 }
528
7a78ae4e
ND
529 arch64 = ARCH64 ();
530 regs = (CoreRegs *) core_reg_sect;
c906108c 531
7a78ae4e
ND
532 /* Retrieve register pointers. */
533
534 if (arch64)
535 {
536 gprs = regs->r64.gpr;
537 fprs = regs->r64.fpr;
538 sprs[0] = &regs->r64.iar;
539 sprs[1] = &regs->r64.msr;
540 sprs[2] = &regs->r64.cr;
541 sprs[3] = &regs->r64.lr;
542 sprs[4] = &regs->r64.ctr;
543 sprs[5] = &regs->r64.xer;
544 }
c906108c 545 else
7a78ae4e
ND
546 {
547 gprs = regs->r32.gpr;
548 fprs = regs->r32.fpr;
549 sprs[0] = &regs->r32.iar;
550 sprs[1] = &regs->r32.msr;
551 sprs[2] = &regs->r32.cr;
552 sprs[3] = &regs->r32.lr;
553 sprs[4] = &regs->r32.ctr;
554 sprs[5] = &regs->r32.xer;
555 sprs[6] = &regs->r32.mq;
556 }
557
558 /* Copy from pointers to registers[]. */
559
560 memcpy (registers, gprs, 32 * (arch64 ? 8 : 4));
561 memcpy (registers + REGISTER_BYTE (FP0_REGNUM), fprs, 32 * 8);
562 for (i = FIRST_UISA_SP_REGNUM; i <= LAST_UISA_SP_REGNUM; i++)
563 {
564 size = REGISTER_RAW_SIZE (i);
565 if (size)
566 memcpy (registers + REGISTER_BYTE (i),
567 sprs[i - FIRST_UISA_SP_REGNUM], size);
568 }
c906108c
SS
569}
570\f
7a78ae4e
ND
571
572/* Copy information about text and data sections from LDI to VP for a 64-bit
573 process if ARCH64 and for a 32-bit process otherwise. */
574
575static void
576vmap_secs (struct vmap *vp, LdInfo *ldi, int arch64)
577{
578 if (arch64)
579 {
580 vp->tstart = (CORE_ADDR) ldi->l64.ldinfo_textorg;
581 vp->tend = vp->tstart + ldi->l64.ldinfo_textsize;
582 vp->dstart = (CORE_ADDR) ldi->l64.ldinfo_dataorg;
583 vp->dend = vp->dstart + ldi->l64.ldinfo_datasize;
584 }
585 else
586 {
587 vp->tstart = (unsigned long) ldi->l32.ldinfo_textorg;
588 vp->tend = vp->tstart + ldi->l32.ldinfo_textsize;
589 vp->dstart = (unsigned long) ldi->l32.ldinfo_dataorg;
590 vp->dend = vp->dstart + ldi->l32.ldinfo_datasize;
591 }
592
593 /* The run time loader maps the file header in addition to the text
594 section and returns a pointer to the header in ldinfo_textorg.
595 Adjust the text start address to point to the real start address
596 of the text section. */
597 vp->tstart += vp->toffs;
598}
599
c906108c
SS
600/* handle symbol translation on vmapping */
601
602static void
7a78ae4e 603vmap_symtab (struct vmap *vp)
c906108c
SS
604{
605 register struct objfile *objfile;
606 struct section_offsets *new_offsets;
607 int i;
c5aa993b 608
c906108c
SS
609 objfile = vp->objfile;
610 if (objfile == NULL)
611 {
612 /* OK, it's not an objfile we opened ourselves.
c5aa993b
JM
613 Currently, that can only happen with the exec file, so
614 relocate the symbols for the symfile. */
c906108c
SS
615 if (symfile_objfile == NULL)
616 return;
617 objfile = symfile_objfile;
618 }
63f58cc5
PS
619 else if (!vp->loaded)
620 /* If symbols are not yet loaded, offsets are not yet valid. */
621 return;
c906108c 622
d4f3574e 623 new_offsets = (struct section_offsets *) alloca (SIZEOF_SECTION_OFFSETS);
c906108c
SS
624
625 for (i = 0; i < objfile->num_sections; ++i)
f0a58b0b 626 new_offsets->offsets[i] = ANOFFSET (objfile->section_offsets, i);
c5aa993b 627
c906108c
SS
628 /* The symbols in the object file are linked to the VMA of the section,
629 relocate them VMA relative. */
f0a58b0b
EZ
630 new_offsets->offsets[SECT_OFF_TEXT (objfile)] = vp->tstart - vp->tvma;
631 new_offsets->offsets[SECT_OFF_DATA (objfile)] = vp->dstart - vp->dvma;
632 new_offsets->offsets[SECT_OFF_BSS (objfile)] = vp->dstart - vp->dvma;
c906108c
SS
633
634 objfile_relocate (objfile, new_offsets);
635}
636\f
637/* Add symbols for an objfile. */
638
639static int
7a78ae4e 640objfile_symbol_add (void *arg)
c906108c
SS
641{
642 struct objfile *obj = (struct objfile *) arg;
643
2acceee2 644 syms_from_objfile (obj, NULL, 0, 0);
c906108c
SS
645 new_symfile_objfile (obj, 0, 0);
646 return 1;
647}
648
63f58cc5
PS
649/* Add symbols for a vmap. Return zero upon error. */
650
651int
652vmap_add_symbols (struct vmap *vp)
653{
654 if (catch_errors (objfile_symbol_add, vp->objfile,
655 "Error while reading shared library symbols:\n",
656 RETURN_MASK_ALL))
657 {
658 /* Note this is only done if symbol reading was successful. */
659 vp->loaded = 1;
660 vmap_symtab (vp);
661 return 1;
662 }
663 return 0;
664}
665
c906108c
SS
666/* Add a new vmap entry based on ldinfo() information.
667
668 If ldi->ldinfo_fd is not valid (e.g. this struct ld_info is from a
669 core file), the caller should set it to -1, and we will open the file.
670
671 Return the vmap new entry. */
672
673static struct vmap *
7a78ae4e 674add_vmap (LdInfo *ldi)
c906108c
SS
675{
676 bfd *abfd, *last;
7a78ae4e 677 register char *mem, *objname, *filename;
c906108c
SS
678 struct objfile *obj;
679 struct vmap *vp;
7a78ae4e
ND
680 int fd;
681 ARCH64_DECL (arch64);
c906108c
SS
682
683 /* This ldi structure was allocated using alloca() in
684 xcoff_relocate_symtab(). Now we need to have persistent object
685 and member names, so we should save them. */
686
7a78ae4e
ND
687 filename = LDI_FILENAME (ldi, arch64);
688 mem = filename + strlen (filename) + 1;
c906108c 689 mem = savestring (mem, strlen (mem));
7a78ae4e 690 objname = savestring (filename, strlen (filename));
c906108c 691
7a78ae4e
ND
692 fd = LDI_FD (ldi, arch64);
693 if (fd < 0)
c906108c
SS
694 /* Note that this opens it once for every member; a possible
695 enhancement would be to only open it once for every object. */
696 abfd = bfd_openr (objname, gnutarget);
697 else
7a78ae4e 698 abfd = bfd_fdopenr (objname, gnutarget, fd);
c906108c 699 if (!abfd)
63f58cc5
PS
700 {
701 warning ("Could not open `%s' as an executable file: %s",
702 objname, bfd_errmsg (bfd_get_error ()));
703 return NULL;
704 }
c906108c
SS
705
706 /* make sure we have an object file */
707
708 if (bfd_check_format (abfd, bfd_object))
709 vp = map_vmap (abfd, 0);
710
711 else if (bfd_check_format (abfd, bfd_archive))
712 {
713 last = 0;
714 /* FIXME??? am I tossing BFDs? bfd? */
715 while ((last = bfd_openr_next_archived_file (abfd, last)))
716 if (STREQ (mem, last->filename))
717 break;
718
719 if (!last)
720 {
63f58cc5 721 warning ("\"%s\": member \"%s\" missing.", objname, mem);
c906108c 722 bfd_close (abfd);
63f58cc5 723 return NULL;
c906108c
SS
724 }
725
c5aa993b 726 if (!bfd_check_format (last, bfd_object))
c906108c 727 {
63f58cc5
PS
728 warning ("\"%s\": member \"%s\" not in executable format: %s.",
729 objname, mem, bfd_errmsg (bfd_get_error ()));
730 bfd_close (last);
731 bfd_close (abfd);
732 return NULL;
c906108c
SS
733 }
734
735 vp = map_vmap (last, abfd);
736 }
737 else
738 {
63f58cc5
PS
739 warning ("\"%s\": not in executable format: %s.",
740 objname, bfd_errmsg (bfd_get_error ()));
c906108c 741 bfd_close (abfd);
63f58cc5 742 return NULL;
c906108c 743 }
2df3850c 744 obj = allocate_objfile (vp->bfd, 0);
c906108c
SS
745 vp->objfile = obj;
746
63f58cc5
PS
747 /* Always add symbols for the main objfile. */
748 if (vp == vmap || auto_solib_add)
749 vmap_add_symbols (vp);
c906108c
SS
750 return vp;
751}
752\f
753/* update VMAP info with ldinfo() information
754 Input is ptr to ldinfo() results. */
755
756static void
7a78ae4e 757vmap_ldinfo (LdInfo *ldi)
c906108c
SS
758{
759 struct stat ii, vi;
760 register struct vmap *vp;
761 int got_one, retried;
762 int got_exec_file = 0;
7a78ae4e
ND
763 uint next;
764 int arch64 = ARCH64 ();
c906108c
SS
765
766 /* For each *ldi, see if we have a corresponding *vp.
767 If so, update the mapping, and symbol table.
768 If not, add an entry and symbol table. */
769
c5aa993b
JM
770 do
771 {
7a78ae4e 772 char *name = LDI_FILENAME (ldi, arch64);
c5aa993b 773 char *memb = name + strlen (name) + 1;
7a78ae4e 774 int fd = LDI_FD (ldi, arch64);
c5aa993b
JM
775
776 retried = 0;
777
7a78ae4e 778 if (fstat (fd, &ii) < 0)
c5aa993b
JM
779 {
780 /* The kernel sets ld_info to -1, if the process is still using the
781 object, and the object is removed. Keep the symbol info for the
782 removed object and issue a warning. */
783 warning ("%s (fd=%d) has disappeared, keeping its symbols",
7a78ae4e 784 name, fd);
c906108c 785 continue;
c5aa993b
JM
786 }
787 retry:
788 for (got_one = 0, vp = vmap; vp; vp = vp->nxt)
789 {
790 struct objfile *objfile;
c906108c 791
c5aa993b
JM
792 /* First try to find a `vp', which is the same as in ldinfo.
793 If not the same, just continue and grep the next `vp'. If same,
794 relocate its tstart, tend, dstart, dend values. If no such `vp'
795 found, get out of this for loop, add this ldi entry as a new vmap
796 (add_vmap) and come back, find its `vp' and so on... */
797
798 /* The filenames are not always sufficient to match on. */
799
800 if ((name[0] == '/' && !STREQ (name, vp->name))
801 || (memb[0] && !STREQ (memb, vp->member)))
c906108c 802 continue;
c906108c 803
c5aa993b
JM
804 /* See if we are referring to the same file.
805 We have to check objfile->obfd, symfile.c:reread_symbols might
806 have updated the obfd after a change. */
807 objfile = vp->objfile == NULL ? symfile_objfile : vp->objfile;
808 if (objfile == NULL
809 || objfile->obfd == NULL
810 || bfd_stat (objfile->obfd, &vi) < 0)
811 {
812 warning ("Unable to stat %s, keeping its symbols", name);
813 continue;
814 }
c906108c 815
c5aa993b
JM
816 if (ii.st_dev != vi.st_dev || ii.st_ino != vi.st_ino)
817 continue;
c906108c 818
c5aa993b 819 if (!retried)
7a78ae4e 820 close (fd);
c906108c 821
c5aa993b 822 ++got_one;
c906108c 823
c5aa993b 824 /* Found a corresponding VMAP. Remap! */
c906108c 825
7a78ae4e 826 vmap_secs (vp, ldi, arch64);
c906108c 827
c5aa993b
JM
828 /* The objfile is only NULL for the exec file. */
829 if (vp->objfile == NULL)
830 got_exec_file = 1;
c906108c 831
c5aa993b
JM
832 /* relocate symbol table(s). */
833 vmap_symtab (vp);
c906108c 834
c5aa993b
JM
835 /* There may be more, so we don't break out of the loop. */
836 }
837
838 /* if there was no matching *vp, we must perforce create the sucker(s) */
839 if (!got_one && !retried)
840 {
841 add_vmap (ldi);
842 ++retried;
843 goto retry;
844 }
845 }
7a78ae4e
ND
846 while ((next = LDI_NEXT (ldi, arch64))
847 && (ldi = (void *) (next + (char *) ldi)));
c906108c
SS
848
849 /* If we don't find the symfile_objfile anywhere in the ldinfo, it
850 is unlikely that the symbol file is relocated to the proper
851 address. And we might have attached to a process which is
852 running a different copy of the same executable. */
853 if (symfile_objfile != NULL && !got_exec_file)
854 {
f5a96129 855 warning ("Symbol file %s\nis not mapped; discarding it.\n\
c906108c
SS
856If in fact that file has symbols which the mapped files listed by\n\
857\"info files\" lack, you can load symbols with the \"symbol-file\" or\n\
858\"add-symbol-file\" commands (note that you must take care of relocating\n\
f5a96129
AC
859symbols to the proper address).",
860 symfile_objfile->name);
c906108c
SS
861 free_objfile (symfile_objfile);
862 symfile_objfile = NULL;
863 }
864 breakpoint_re_set ();
865}
866\f
867/* As well as symbol tables, exec_sections need relocation. After
868 the inferior process' termination, there will be a relocated symbol
869 table exist with no corresponding inferior process. At that time, we
870 need to use `exec' bfd, rather than the inferior process's memory space
871 to look up symbols.
872
873 `exec_sections' need to be relocated only once, as long as the exec
874 file remains unchanged.
c5aa993b 875 */
c906108c
SS
876
877static void
7a78ae4e 878vmap_exec (void)
c906108c
SS
879{
880 static bfd *execbfd;
881 int i;
882
883 if (execbfd == exec_bfd)
884 return;
885
886 execbfd = exec_bfd;
887
888 if (!vmap || !exec_ops.to_sections)
889 error ("vmap_exec: vmap or exec_ops.to_sections == 0\n");
890
c5aa993b 891 for (i = 0; &exec_ops.to_sections[i] < exec_ops.to_sections_end; i++)
c906108c 892 {
c5aa993b 893 if (STREQ (".text", exec_ops.to_sections[i].the_bfd_section->name))
c906108c
SS
894 {
895 exec_ops.to_sections[i].addr += vmap->tstart - vmap->tvma;
896 exec_ops.to_sections[i].endaddr += vmap->tstart - vmap->tvma;
897 }
c5aa993b 898 else if (STREQ (".data", exec_ops.to_sections[i].the_bfd_section->name))
c906108c
SS
899 {
900 exec_ops.to_sections[i].addr += vmap->dstart - vmap->dvma;
901 exec_ops.to_sections[i].endaddr += vmap->dstart - vmap->dvma;
902 }
c5aa993b 903 else if (STREQ (".bss", exec_ops.to_sections[i].the_bfd_section->name))
c906108c
SS
904 {
905 exec_ops.to_sections[i].addr += vmap->dstart - vmap->dvma;
906 exec_ops.to_sections[i].endaddr += vmap->dstart - vmap->dvma;
907 }
908 }
909}
7a78ae4e
ND
910
911/* Set the current architecture from the host running GDB. Called when
912 starting a child process. */
913
914static void
915set_host_arch (int pid)
916{
917 enum bfd_architecture arch;
918 unsigned long mach;
919 bfd abfd;
920 struct gdbarch_info info;
921
922 if (__power_rs ())
923 {
924 arch = bfd_arch_rs6000;
925 mach = bfd_mach_rs6k;
926 }
927 else
928 {
929 arch = bfd_arch_powerpc;
930 mach = bfd_mach_ppc;
931 }
19caaa45
PS
932
933 /* FIXME: schauer/2002-02-25:
934 We don't know if we are executing a 32 or 64 bit executable,
935 and have no way to pass the proper word size to rs6000_gdbarch_init.
936 So we have to avoid switching to a new architecture, if the architecture
937 matches already.
938 Blindly calling rs6000_gdbarch_init used to work in older versions of
939 GDB, as rs6000_gdbarch_init incorrectly used the previous tdep to
940 determine the wordsize. */
941 if (exec_bfd)
942 {
943 const struct bfd_arch_info *exec_bfd_arch_info;
944
945 exec_bfd_arch_info = bfd_get_arch_info (exec_bfd);
946 if (arch == exec_bfd_arch_info->arch)
947 return;
948 }
949
7a78ae4e
ND
950 bfd_default_set_arch_mach (&abfd, arch, mach);
951
fb6ecb0f 952 gdbarch_info_init (&info);
7a78ae4e
ND
953 info.bfd_arch_info = bfd_get_arch_info (&abfd);
954
16f33e29
AC
955 if (!gdbarch_update_p (info))
956 {
8e65ff28
AC
957 internal_error (__FILE__, __LINE__,
958 "set_host_arch: failed to select architecture");
16f33e29 959 }
7a78ae4e
ND
960}
961
c906108c 962\f
c5aa993b 963/* xcoff_relocate_symtab - hook for symbol table relocation.
c906108c
SS
964 also reads shared libraries.. */
965
966void
7a78ae4e 967xcoff_relocate_symtab (unsigned int pid)
c906108c 968{
c18e0d23 969 int load_segs = 64; /* number of load segments */
380b774b 970 int rc;
7a78ae4e
ND
971 LdInfo *ldi = NULL;
972 int arch64 = ARCH64 ();
973 int ldisize = arch64 ? sizeof (ldi->l64) : sizeof (ldi->l32);
974 int size;
c906108c 975
c18e0d23
GM
976 do
977 {
7a78ae4e 978 size = load_segs * ldisize;
3a84337c 979 ldi = (void *) xrealloc (ldi, size);
c906108c 980
7a78ae4e 981#if 0
380b774b
GM
982 /* According to my humble theory, AIX has some timing problems and
983 when the user stack grows, kernel doesn't update stack info in time
984 and ptrace calls step on user stack. That is why we sleep here a
985 little, and give kernel to update its internals. */
380b774b 986 usleep (36000);
7a78ae4e
ND
987#endif
988
989 if (arch64)
990 rc = ptrace64 (PT_LDINFO, pid, (unsigned long) ldi, size, NULL);
991 else
992 rc = ptrace32 (PT_LDINFO, pid, (int *) ldi, size, NULL);
c906108c 993
c18e0d23
GM
994 if (rc == -1)
995 {
380b774b
GM
996 if (errno == ENOMEM)
997 load_segs *= 2;
998 else
999 perror_with_name ("ptrace ldinfo");
c18e0d23
GM
1000 }
1001 else
1002 {
380b774b
GM
1003 vmap_ldinfo (ldi);
1004 vmap_exec (); /* relocate the exec and core sections as well. */
c18e0d23
GM
1005 }
1006 } while (rc == -1);
380b774b 1007 if (ldi)
b8c9b27d 1008 xfree (ldi);
c906108c
SS
1009}
1010\f
1011/* Core file stuff. */
1012
1013/* Relocate symtabs and read in shared library info, based on symbols
1014 from the core file. */
1015
1016void
7a78ae4e 1017xcoff_relocate_core (struct target_ops *target)
c906108c 1018{
c906108c
SS
1019 sec_ptr ldinfo_sec;
1020 int offset = 0;
7a78ae4e 1021 LdInfo *ldi;
c906108c 1022 struct vmap *vp;
7a78ae4e
ND
1023 int arch64 = ARCH64 ();
1024
1025 /* Size of a struct ld_info except for the variable-length filename. */
1026 int nonfilesz = (int)LDI_FILENAME ((LdInfo *)0, arch64);
c906108c
SS
1027
1028 /* Allocated size of buffer. */
7a78ae4e 1029 int buffer_size = nonfilesz;
c906108c
SS
1030 char *buffer = xmalloc (buffer_size);
1031 struct cleanup *old = make_cleanup (free_current_contents, &buffer);
c5aa993b 1032
c906108c
SS
1033 ldinfo_sec = bfd_get_section_by_name (core_bfd, ".ldinfo");
1034 if (ldinfo_sec == NULL)
1035 {
1036 bfd_err:
1037 fprintf_filtered (gdb_stderr, "Couldn't get ldinfo from core file: %s\n",
1038 bfd_errmsg (bfd_get_error ()));
1039 do_cleanups (old);
1040 return;
1041 }
1042 do
1043 {
1044 int i;
1045 int names_found = 0;
1046
1047 /* Read in everything but the name. */
1048 if (bfd_get_section_contents (core_bfd, ldinfo_sec, buffer,
7a78ae4e 1049 offset, nonfilesz) == 0)
c906108c
SS
1050 goto bfd_err;
1051
1052 /* Now the name. */
7a78ae4e 1053 i = nonfilesz;
c906108c
SS
1054 do
1055 {
1056 if (i == buffer_size)
1057 {
1058 buffer_size *= 2;
1059 buffer = xrealloc (buffer, buffer_size);
1060 }
1061 if (bfd_get_section_contents (core_bfd, ldinfo_sec, &buffer[i],
1062 offset + i, 1) == 0)
1063 goto bfd_err;
1064 if (buffer[i++] == '\0')
1065 ++names_found;
c5aa993b
JM
1066 }
1067 while (names_found < 2);
c906108c 1068
7a78ae4e 1069 ldi = (LdInfo *) buffer;
c906108c
SS
1070
1071 /* Can't use a file descriptor from the core file; need to open it. */
7a78ae4e
ND
1072 if (arch64)
1073 ldi->l64.ldinfo_fd = -1;
1074 else
1075 ldi->l32.ldinfo_fd = -1;
c5aa993b 1076
c906108c 1077 /* The first ldinfo is for the exec file, allocated elsewhere. */
63f58cc5 1078 if (offset == 0 && vmap != NULL)
c906108c
SS
1079 vp = vmap;
1080 else
7a78ae4e 1081 vp = add_vmap (ldi);
c906108c 1082
63f58cc5 1083 /* Process next shared library upon error. */
7a78ae4e 1084 offset += LDI_NEXT (ldi, arch64);
63f58cc5
PS
1085 if (vp == NULL)
1086 continue;
1087
7a78ae4e 1088 vmap_secs (vp, ldi, arch64);
c906108c
SS
1089
1090 /* Unless this is the exec file,
c5aa993b 1091 add our sections to the section table for the core target. */
c906108c
SS
1092 if (vp != vmap)
1093 {
c906108c 1094 struct section_table *stp;
6426a772
JM
1095
1096 target_resize_to_sections (target, 2);
c906108c
SS
1097 stp = target->to_sections_end - 2;
1098
1099 stp->bfd = vp->bfd;
1100 stp->the_bfd_section = bfd_get_section_by_name (stp->bfd, ".text");
1101 stp->addr = vp->tstart;
1102 stp->endaddr = vp->tend;
1103 stp++;
c5aa993b 1104
c906108c
SS
1105 stp->bfd = vp->bfd;
1106 stp->the_bfd_section = bfd_get_section_by_name (stp->bfd, ".data");
1107 stp->addr = vp->dstart;
1108 stp->endaddr = vp->dend;
1109 }
1110
1111 vmap_symtab (vp);
c5aa993b 1112 }
7a78ae4e 1113 while (LDI_NEXT (ldi, arch64) != 0);
c906108c
SS
1114 vmap_exec ();
1115 breakpoint_re_set ();
1116 do_cleanups (old);
1117}
1118
1119int
7a78ae4e 1120kernel_u_size (void)
c906108c
SS
1121{
1122 return (sizeof (struct user));
1123}
1124\f
1125/* Under AIX, we have to pass the correct TOC pointer to a function
1126 when calling functions in the inferior.
1127 We try to find the relative toc offset of the objfile containing PC
1128 and add the current load address of the data segment from the vmap. */
1129
1130static CORE_ADDR
7a78ae4e 1131find_toc_address (CORE_ADDR pc)
c906108c
SS
1132{
1133 struct vmap *vp;
7a78ae4e 1134 extern CORE_ADDR get_toc_offset (struct objfile *); /* xcoffread.c */
c906108c
SS
1135
1136 for (vp = vmap; vp; vp = vp->nxt)
1137 {
1138 if (pc >= vp->tstart && pc < vp->tend)
1139 {
1140 /* vp->objfile is only NULL for the exec file. */
1141 return vp->dstart + get_toc_offset (vp->objfile == NULL
1142 ? symfile_objfile
1143 : vp->objfile);
1144 }
1145 }
1146 error ("Unable to find TOC entry for pc 0x%x\n", pc);
1147}
1148\f
1149/* Register that we are able to handle rs6000 core file formats. */
1150
1151static struct core_fns rs6000_core_fns =
1152{
7a78ae4e 1153 bfd_target_xcoff_flavour, /* core_flavour */
2acceee2
JM
1154 default_check_format, /* check_format */
1155 default_core_sniffer, /* core_sniffer */
1156 fetch_core_registers, /* core_read_registers */
1157 NULL /* next */
c906108c
SS
1158};
1159
1160void
7a78ae4e 1161_initialize_core_rs6000 (void)
c906108c
SS
1162{
1163 /* Initialize hook in rs6000-tdep.c for determining the TOC address when
1164 calling functions in the inferior. */
7a78ae4e
ND
1165 rs6000_find_toc_address_hook = find_toc_address;
1166
1167 /* Initialize hook in rs6000-tdep.c to set the current architecture when
1168 starting a child process. */
1169 rs6000_set_host_arch_hook = set_host_arch;
c906108c 1170
c906108c
SS
1171 add_core_fns (&rs6000_core_fns);
1172}