1 /* IBM RS/6000 native-dependent code for GDB, the GNU debugger.
3 Copyright (C) 1986-2013 Free Software Foundation, Inc.
5 This file is part of GDB.
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3 of the License, or
10 (at your option) any later version.
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
17 You should have received a copy of the GNU General Public License
18 along with this program. If not, see <http://www.gnu.org/licenses/>. */
26 #include "libbfd.h" /* For bfd_default_set_arch_mach (FIXME) */
28 #include "exceptions.h"
29 #include "gdb-stabs.h"
31 #include "arch-utils.h"
32 #include "inf-child.h"
33 #include "inf-ptrace.h"
35 #include "rs6000-tdep.h"
36 #include "rs6000-aix-tdep.h"
39 #include "xcoffread.h"
41 #include <sys/ptrace.h>
44 #include <sys/param.h>
48 #include <sys/ioctl.h>
57 #define __LDINFO_PTRACE32__ /* for __ld_info32 */
58 #define __LDINFO_PTRACE64__ /* for __ld_info64 */
60 #include <sys/systemcfg.h>
62 /* On AIX4.3+, sys/ldr.h provides different versions of struct ld_info for
63 debugging 32-bit and 64-bit processes. Define a typedef and macros for
64 accessing fields in the appropriate structures. */
66 /* In 32-bit compilation mode (which is the only mode from which ptrace()
67 works on 4.3), __ld_info32 is #defined as equivalent to ld_info. */
73 /* Return whether the current architecture is 64-bit. */
78 # define ARCH64() (register_size (target_gdbarch (), 0) == 8)
81 static void exec_one_dummy_insn (struct regcache
*);
83 static LONGEST rs6000_xfer_shared_libraries
84 (struct target_ops
*ops
, enum target_object object
,
85 const char *annex
, gdb_byte
*readbuf
, const gdb_byte
*writebuf
,
86 ULONGEST offset
, LONGEST len
);
88 /* Given REGNO, a gdb register number, return the corresponding
89 number suitable for use as a ptrace() parameter. Return -1 if
90 there's no suitable mapping. Also, set the int pointed to by
91 ISFLOAT to indicate whether REGNO is a floating point register. */
94 regmap (struct gdbarch
*gdbarch
, int regno
, int *isfloat
)
96 struct gdbarch_tdep
*tdep
= gdbarch_tdep (gdbarch
);
99 if (tdep
->ppc_gp0_regnum
<= regno
100 && regno
< tdep
->ppc_gp0_regnum
+ ppc_num_gprs
)
102 else if (tdep
->ppc_fp0_regnum
>= 0
103 && tdep
->ppc_fp0_regnum
<= regno
104 && regno
< tdep
->ppc_fp0_regnum
+ ppc_num_fprs
)
107 return regno
- tdep
->ppc_fp0_regnum
+ FPR0
;
109 else if (regno
== gdbarch_pc_regnum (gdbarch
))
111 else if (regno
== tdep
->ppc_ps_regnum
)
113 else if (regno
== tdep
->ppc_cr_regnum
)
115 else if (regno
== tdep
->ppc_lr_regnum
)
117 else if (regno
== tdep
->ppc_ctr_regnum
)
119 else if (regno
== tdep
->ppc_xer_regnum
)
121 else if (tdep
->ppc_fpscr_regnum
>= 0
122 && regno
== tdep
->ppc_fpscr_regnum
)
124 else if (tdep
->ppc_mq_regnum
>= 0 && regno
== tdep
->ppc_mq_regnum
)
130 /* Call ptrace(REQ, ID, ADDR, DATA, BUF). */
133 rs6000_ptrace32 (int req
, int id
, int *addr
, int data
, int *buf
)
135 int ret
= ptrace (req
, id
, (int *)addr
, data
, buf
);
137 printf ("rs6000_ptrace32 (%d, %d, 0x%x, %08x, 0x%x) = 0x%x\n",
138 req
, id
, (unsigned int)addr
, data
, (unsigned int)buf
, ret
);
143 /* Call ptracex(REQ, ID, ADDR, DATA, BUF). */
146 rs6000_ptrace64 (int req
, int id
, long long addr
, int data
, void *buf
)
149 int ret
= ptracex (req
, id
, addr
, data
, buf
);
154 printf ("rs6000_ptrace64 (%d, %d, %s, %08x, 0x%x) = 0x%x\n",
155 req
, id
, hex_string (addr
), data
, (unsigned int)buf
, ret
);
160 /* Fetch register REGNO from the inferior. */
163 fetch_register (struct regcache
*regcache
, int regno
)
165 struct gdbarch
*gdbarch
= get_regcache_arch (regcache
);
166 int addr
[MAX_REGISTER_SIZE
];
169 /* Retrieved values may be -1, so infer errors from errno. */
172 nr
= regmap (gdbarch
, regno
, &isfloat
);
174 /* Floating-point registers. */
176 rs6000_ptrace32 (PT_READ_FPR
, PIDGET (inferior_ptid
), addr
, nr
, 0);
178 /* Bogus register number. */
181 if (regno
>= gdbarch_num_regs (gdbarch
))
182 fprintf_unfiltered (gdb_stderr
,
183 "gdb error: register no %d not implemented.\n",
188 /* Fixed-point registers. */
192 *addr
= rs6000_ptrace32 (PT_READ_GPR
, PIDGET (inferior_ptid
),
196 /* PT_READ_GPR requires the buffer parameter to point to long long,
197 even if the register is really only 32 bits. */
199 rs6000_ptrace64 (PT_READ_GPR
, PIDGET (inferior_ptid
), nr
, 0, &buf
);
200 if (register_size (gdbarch
, regno
) == 8)
201 memcpy (addr
, &buf
, 8);
208 regcache_raw_supply (regcache
, regno
, (char *) addr
);
212 /* FIXME: this happens 3 times at the start of each 64-bit program. */
213 perror (_("ptrace read"));
219 /* Store register REGNO back into the inferior. */
222 store_register (struct regcache
*regcache
, int regno
)
224 struct gdbarch
*gdbarch
= get_regcache_arch (regcache
);
225 int addr
[MAX_REGISTER_SIZE
];
228 /* Fetch the register's value from the register cache. */
229 regcache_raw_collect (regcache
, regno
, addr
);
231 /* -1 can be a successful return value, so infer errors from errno. */
234 nr
= regmap (gdbarch
, regno
, &isfloat
);
236 /* Floating-point registers. */
238 rs6000_ptrace32 (PT_WRITE_FPR
, PIDGET (inferior_ptid
), addr
, nr
, 0);
240 /* Bogus register number. */
243 if (regno
>= gdbarch_num_regs (gdbarch
))
244 fprintf_unfiltered (gdb_stderr
,
245 "gdb error: register no %d not implemented.\n",
249 /* Fixed-point registers. */
252 if (regno
== gdbarch_sp_regnum (gdbarch
))
253 /* Execute one dummy instruction (which is a breakpoint) in inferior
254 process to give kernel a chance to do internal housekeeping.
255 Otherwise the following ptrace(2) calls will mess up user stack
256 since kernel will get confused about the bottom of the stack
258 exec_one_dummy_insn (regcache
);
260 /* The PT_WRITE_GPR operation is rather odd. For 32-bit inferiors,
261 the register's value is passed by value, but for 64-bit inferiors,
262 the address of a buffer containing the value is passed. */
264 rs6000_ptrace32 (PT_WRITE_GPR
, PIDGET (inferior_ptid
),
265 (int *) nr
, *addr
, 0);
268 /* PT_WRITE_GPR requires the buffer parameter to point to an 8-byte
269 area, even if the register is really only 32 bits. */
271 if (register_size (gdbarch
, regno
) == 8)
272 memcpy (&buf
, addr
, 8);
275 rs6000_ptrace64 (PT_WRITE_GPR
, PIDGET (inferior_ptid
), nr
, 0, &buf
);
281 perror (_("ptrace write"));
286 /* Read from the inferior all registers if REGNO == -1 and just register
290 rs6000_fetch_inferior_registers (struct target_ops
*ops
,
291 struct regcache
*regcache
, int regno
)
293 struct gdbarch
*gdbarch
= get_regcache_arch (regcache
);
295 fetch_register (regcache
, regno
);
299 struct gdbarch_tdep
*tdep
= gdbarch_tdep (gdbarch
);
301 /* Read 32 general purpose registers. */
302 for (regno
= tdep
->ppc_gp0_regnum
;
303 regno
< tdep
->ppc_gp0_regnum
+ ppc_num_gprs
;
306 fetch_register (regcache
, regno
);
309 /* Read general purpose floating point registers. */
310 if (tdep
->ppc_fp0_regnum
>= 0)
311 for (regno
= 0; regno
< ppc_num_fprs
; regno
++)
312 fetch_register (regcache
, tdep
->ppc_fp0_regnum
+ regno
);
314 /* Read special registers. */
315 fetch_register (regcache
, gdbarch_pc_regnum (gdbarch
));
316 fetch_register (regcache
, tdep
->ppc_ps_regnum
);
317 fetch_register (regcache
, tdep
->ppc_cr_regnum
);
318 fetch_register (regcache
, tdep
->ppc_lr_regnum
);
319 fetch_register (regcache
, tdep
->ppc_ctr_regnum
);
320 fetch_register (regcache
, tdep
->ppc_xer_regnum
);
321 if (tdep
->ppc_fpscr_regnum
>= 0)
322 fetch_register (regcache
, tdep
->ppc_fpscr_regnum
);
323 if (tdep
->ppc_mq_regnum
>= 0)
324 fetch_register (regcache
, tdep
->ppc_mq_regnum
);
328 /* Store our register values back into the inferior.
329 If REGNO is -1, do this for all registers.
330 Otherwise, REGNO specifies which register (so we can save time). */
333 rs6000_store_inferior_registers (struct target_ops
*ops
,
334 struct regcache
*regcache
, int regno
)
336 struct gdbarch
*gdbarch
= get_regcache_arch (regcache
);
338 store_register (regcache
, regno
);
342 struct gdbarch_tdep
*tdep
= gdbarch_tdep (gdbarch
);
344 /* Write general purpose registers first. */
345 for (regno
= tdep
->ppc_gp0_regnum
;
346 regno
< tdep
->ppc_gp0_regnum
+ ppc_num_gprs
;
349 store_register (regcache
, regno
);
352 /* Write floating point registers. */
353 if (tdep
->ppc_fp0_regnum
>= 0)
354 for (regno
= 0; regno
< ppc_num_fprs
; regno
++)
355 store_register (regcache
, tdep
->ppc_fp0_regnum
+ regno
);
357 /* Write special registers. */
358 store_register (regcache
, gdbarch_pc_regnum (gdbarch
));
359 store_register (regcache
, tdep
->ppc_ps_regnum
);
360 store_register (regcache
, tdep
->ppc_cr_regnum
);
361 store_register (regcache
, tdep
->ppc_lr_regnum
);
362 store_register (regcache
, tdep
->ppc_ctr_regnum
);
363 store_register (regcache
, tdep
->ppc_xer_regnum
);
364 if (tdep
->ppc_fpscr_regnum
>= 0)
365 store_register (regcache
, tdep
->ppc_fpscr_regnum
);
366 if (tdep
->ppc_mq_regnum
>= 0)
367 store_register (regcache
, tdep
->ppc_mq_regnum
);
372 /* Attempt a transfer all LEN bytes starting at OFFSET between the
373 inferior's OBJECT:ANNEX space and GDB's READBUF/WRITEBUF buffer.
374 Return the number of bytes actually transferred. */
377 rs6000_xfer_partial (struct target_ops
*ops
, enum target_object object
,
378 const char *annex
, gdb_byte
*readbuf
,
379 const gdb_byte
*writebuf
,
380 ULONGEST offset
, LONGEST len
)
382 pid_t pid
= ptid_get_pid (inferior_ptid
);
383 int arch64
= ARCH64 ();
387 case TARGET_OBJECT_LIBRARIES_AIX
:
388 return rs6000_xfer_shared_libraries (ops
, object
, annex
,
391 case TARGET_OBJECT_MEMORY
:
395 PTRACE_TYPE_RET word
;
396 gdb_byte byte
[sizeof (PTRACE_TYPE_RET
)];
398 ULONGEST rounded_offset
;
401 /* Round the start offset down to the next long word
403 rounded_offset
= offset
& -(ULONGEST
) sizeof (PTRACE_TYPE_RET
);
405 /* Since ptrace will transfer a single word starting at that
406 rounded_offset the partial_len needs to be adjusted down to
407 that (remember this function only does a single transfer).
408 Should the required length be even less, adjust it down
410 partial_len
= (rounded_offset
+ sizeof (PTRACE_TYPE_RET
)) - offset
;
411 if (partial_len
> len
)
416 /* If OFFSET:PARTIAL_LEN is smaller than
417 ROUNDED_OFFSET:WORDSIZE then a read/modify write will
418 be needed. Read in the entire word. */
419 if (rounded_offset
< offset
420 || (offset
+ partial_len
421 < rounded_offset
+ sizeof (PTRACE_TYPE_RET
)))
423 /* Need part of initial word -- fetch it. */
425 buffer
.word
= rs6000_ptrace64 (PT_READ_I
, pid
,
426 rounded_offset
, 0, NULL
);
428 buffer
.word
= rs6000_ptrace32 (PT_READ_I
, pid
,
434 /* Copy data to be written over corresponding part of
436 memcpy (buffer
.byte
+ (offset
- rounded_offset
),
437 writebuf
, partial_len
);
441 rs6000_ptrace64 (PT_WRITE_D
, pid
,
442 rounded_offset
, buffer
.word
, NULL
);
444 rs6000_ptrace32 (PT_WRITE_D
, pid
,
445 (int *) (uintptr_t) rounded_offset
,
455 buffer
.word
= rs6000_ptrace64 (PT_READ_I
, pid
,
456 rounded_offset
, 0, NULL
);
458 buffer
.word
= rs6000_ptrace32 (PT_READ_I
, pid
,
459 (int *)(uintptr_t)rounded_offset
,
464 /* Copy appropriate bytes out of the buffer. */
465 memcpy (readbuf
, buffer
.byte
+ (offset
- rounded_offset
),
477 /* Wait for the child specified by PTID to do something. Return the
478 process ID of the child, or MINUS_ONE_PTID in case of error; store
479 the status in *OURSTATUS. */
482 rs6000_wait (struct target_ops
*ops
,
483 ptid_t ptid
, struct target_waitstatus
*ourstatus
, int options
)
486 int status
, save_errno
;
494 pid
= waitpid (ptid_get_pid (ptid
), &status
, 0);
497 while (pid
== -1 && errno
== EINTR
);
499 clear_sigint_trap ();
503 fprintf_unfiltered (gdb_stderr
,
504 _("Child process unexpectedly missing: %s.\n"),
505 safe_strerror (save_errno
));
507 /* Claim it exited with unknown signal. */
508 ourstatus
->kind
= TARGET_WAITKIND_SIGNALLED
;
509 ourstatus
->value
.sig
= GDB_SIGNAL_UNKNOWN
;
510 return inferior_ptid
;
513 /* Ignore terminated detached child processes. */
514 if (!WIFSTOPPED (status
) && pid
!= ptid_get_pid (inferior_ptid
))
519 /* AIX has a couple of strange returns from wait(). */
521 /* stop after load" status. */
523 ourstatus
->kind
= TARGET_WAITKIND_LOADED
;
524 /* signal 0. I have no idea why wait(2) returns with this status word. */
525 else if (status
== 0x7f)
526 ourstatus
->kind
= TARGET_WAITKIND_SPURIOUS
;
527 /* A normal waitstatus. Let the usual macros deal with it. */
529 store_waitstatus (ourstatus
, status
);
531 return pid_to_ptid (pid
);
534 /* Execute one dummy breakpoint instruction. This way we give the kernel
535 a chance to do some housekeeping and update inferior's internal data,
539 exec_one_dummy_insn (struct regcache
*regcache
)
541 #define DUMMY_INSN_ADDR AIX_TEXT_SEGMENT_BASE+0x200
543 struct gdbarch
*gdbarch
= get_regcache_arch (regcache
);
544 int ret
, status
, pid
;
548 /* We plant one dummy breakpoint into DUMMY_INSN_ADDR address. We
549 assume that this address will never be executed again by the real
552 bp
= deprecated_insert_raw_breakpoint (gdbarch
, NULL
, DUMMY_INSN_ADDR
);
554 /* You might think this could be done with a single ptrace call, and
555 you'd be correct for just about every platform I've ever worked
556 on. However, rs6000-ibm-aix4.1.3 seems to have screwed this up --
557 the inferior never hits the breakpoint (it's also worth noting
558 powerpc-ibm-aix4.1.3 works correctly). */
559 prev_pc
= regcache_read_pc (regcache
);
560 regcache_write_pc (regcache
, DUMMY_INSN_ADDR
);
562 ret
= rs6000_ptrace64 (PT_CONTINUE
, PIDGET (inferior_ptid
), 1, 0, NULL
);
564 ret
= rs6000_ptrace32 (PT_CONTINUE
, PIDGET (inferior_ptid
),
568 perror (_("pt_continue"));
572 pid
= waitpid (PIDGET (inferior_ptid
), &status
, 0);
574 while (pid
!= PIDGET (inferior_ptid
));
576 regcache_write_pc (regcache
, prev_pc
);
577 deprecated_remove_raw_breakpoint (gdbarch
, bp
);
581 /* Set the current architecture from the host running GDB. Called when
582 starting a child process. */
584 static void (*super_create_inferior
) (struct target_ops
*,char *exec_file
,
585 char *allargs
, char **env
, int from_tty
);
587 rs6000_create_inferior (struct target_ops
* ops
, char *exec_file
,
588 char *allargs
, char **env
, int from_tty
)
590 enum bfd_architecture arch
;
593 struct gdbarch_info info
;
595 super_create_inferior (ops
, exec_file
, allargs
, env
, from_tty
);
599 arch
= bfd_arch_rs6000
;
600 mach
= bfd_mach_rs6k
;
604 arch
= bfd_arch_powerpc
;
608 /* FIXME: schauer/2002-02-25:
609 We don't know if we are executing a 32 or 64 bit executable,
610 and have no way to pass the proper word size to rs6000_gdbarch_init.
611 So we have to avoid switching to a new architecture, if the architecture
613 Blindly calling rs6000_gdbarch_init used to work in older versions of
614 GDB, as rs6000_gdbarch_init incorrectly used the previous tdep to
615 determine the wordsize. */
618 const struct bfd_arch_info
*exec_bfd_arch_info
;
620 exec_bfd_arch_info
= bfd_get_arch_info (exec_bfd
);
621 if (arch
== exec_bfd_arch_info
->arch
)
625 bfd_default_set_arch_mach (&abfd
, arch
, mach
);
627 gdbarch_info_init (&info
);
628 info
.bfd_arch_info
= bfd_get_arch_info (&abfd
);
629 info
.abfd
= exec_bfd
;
631 if (!gdbarch_update_p (info
))
632 internal_error (__FILE__
, __LINE__
,
633 _("rs6000_create_inferior: failed "
634 "to select architecture"));
638 /* Shared Object support. */
640 /* Return the LdInfo data for the given process. Raises an error
641 if the data could not be obtained.
643 The returned value must be deallocated after use. */
646 rs6000_ptrace_ldinfo (ptid_t ptid
)
648 const int pid
= ptid_get_pid (ptid
);
650 gdb_byte
*ldi
= xmalloc (ldi_size
);
656 rc
= rs6000_ptrace64 (PT_LDINFO
, pid
, (unsigned long) ldi
, ldi_size
,
659 rc
= rs6000_ptrace32 (PT_LDINFO
, pid
, (int *) ldi
, ldi_size
, NULL
);
662 break; /* Success, we got the entire ld_info data. */
665 perror_with_name (_("ptrace ldinfo"));
667 /* ldi is not big enough. Double it and try again. */
669 ldi
= xrealloc (ldi
, ldi_size
);
675 /* Implement the to_xfer_partial target_ops method for
676 TARGET_OBJECT_LIBRARIES_AIX objects. */
679 rs6000_xfer_shared_libraries
680 (struct target_ops
*ops
, enum target_object object
,
681 const char *annex
, gdb_byte
*readbuf
, const gdb_byte
*writebuf
,
682 ULONGEST offset
, LONGEST len
)
686 struct cleanup
*cleanup
;
688 /* This function assumes that it is being run with a live process.
689 Core files are handled via gdbarch. */
690 gdb_assert (target_has_execution
);
695 ldi_buf
= rs6000_ptrace_ldinfo (inferior_ptid
);
696 gdb_assert (ldi_buf
!= NULL
);
697 cleanup
= make_cleanup (xfree
, ldi_buf
);
698 result
= rs6000_aix_ld_info_to_xml (target_gdbarch (), ldi_buf
,
699 readbuf
, offset
, len
, 1);
702 do_cleanups (cleanup
);
706 void _initialize_rs6000_nat (void);
709 _initialize_rs6000_nat (void)
711 struct target_ops
*t
;
713 t
= inf_ptrace_target ();
714 t
->to_fetch_registers
= rs6000_fetch_inferior_registers
;
715 t
->to_store_registers
= rs6000_store_inferior_registers
;
716 t
->to_xfer_partial
= rs6000_xfer_partial
;
718 super_create_inferior
= t
->to_create_inferior
;
719 t
->to_create_inferior
= rs6000_create_inferior
;
721 t
->to_wait
= rs6000_wait
;