Update copyright year range in all GDB files
[deliverable/binutils-gdb.git] / gdb / inf-ptrace.c
1 /* Low-level child interface to ptrace.
2
3 Copyright (C) 1988-2018 Free Software Foundation, Inc.
4
5 This file is part of GDB.
6
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.
11
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.
16
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/>. */
19
20 #include "defs.h"
21 #include "command.h"
22 #include "inferior.h"
23 #include "inflow.h"
24 #include "terminal.h"
25 #include "gdbcore.h"
26 #include "regcache.h"
27 #include "nat/gdb_ptrace.h"
28 #include "gdb_wait.h"
29 #include <signal.h>
30
31 #include "inf-ptrace.h"
32 #include "inf-child.h"
33 #include "gdbthread.h"
34 #include "nat/fork-inferior.h"
35 #include "utils.h"
36
37 \f
38
39 #ifdef PT_GET_PROCESS_STATE
40
41 /* Target hook for follow_fork. On entry and at return inferior_ptid is
42 the ptid of the followed inferior. */
43
44 static int
45 inf_ptrace_follow_fork (struct target_ops *ops, int follow_child,
46 int detach_fork)
47 {
48 if (!follow_child)
49 {
50 struct thread_info *tp = inferior_thread ();
51 pid_t child_pid = ptid_get_pid (tp->pending_follow.value.related_pid);
52
53 /* Breakpoints have already been detached from the child by
54 infrun.c. */
55
56 if (ptrace (PT_DETACH, child_pid, (PTRACE_TYPE_ARG3)1, 0) == -1)
57 perror_with_name (("ptrace"));
58 }
59
60 return 0;
61 }
62
63 static int
64 inf_ptrace_insert_fork_catchpoint (struct target_ops *self, int pid)
65 {
66 return 0;
67 }
68
69 static int
70 inf_ptrace_remove_fork_catchpoint (struct target_ops *self, int pid)
71 {
72 return 0;
73 }
74
75 #endif /* PT_GET_PROCESS_STATE */
76 \f
77
78 /* Prepare to be traced. */
79
80 static void
81 inf_ptrace_me (void)
82 {
83 /* "Trace me, Dr. Memory!" */
84 if (ptrace (PT_TRACE_ME, 0, (PTRACE_TYPE_ARG3) 0, 0) < 0)
85 trace_start_error_with_name ("ptrace");
86 }
87
88 /* Start a new inferior Unix child process. EXEC_FILE is the file to
89 run, ALLARGS is a string containing the arguments to the program.
90 ENV is the environment vector to pass. If FROM_TTY is non-zero, be
91 chatty about it. */
92
93 static void
94 inf_ptrace_create_inferior (struct target_ops *ops,
95 const char *exec_file, const std::string &allargs,
96 char **env, int from_tty)
97 {
98 pid_t pid;
99 ptid_t ptid;
100
101 /* Do not change either targets above or the same target if already present.
102 The reason is the target stack is shared across multiple inferiors. */
103 int ops_already_pushed = target_is_pushed (ops);
104 struct cleanup *back_to = make_cleanup (null_cleanup, NULL);
105
106 if (! ops_already_pushed)
107 {
108 /* Clear possible core file with its process_stratum. */
109 push_target (ops);
110 make_cleanup_unpush_target (ops);
111 }
112
113 pid = fork_inferior (exec_file, allargs, env, inf_ptrace_me, NULL,
114 NULL, NULL, NULL);
115
116 ptid = pid_to_ptid (pid);
117 /* We have something that executes now. We'll be running through
118 the shell at this point (if startup-with-shell is true), but the
119 pid shouldn't change. */
120 add_thread_silent (ptid);
121
122 discard_cleanups (back_to);
123
124 gdb_startup_inferior (pid, START_INFERIOR_TRAPS_EXPECTED);
125
126 /* On some targets, there must be some explicit actions taken after
127 the inferior has been started up. */
128 target_post_startup_inferior (ptid);
129 }
130
131 #ifdef PT_GET_PROCESS_STATE
132
133 static void
134 inf_ptrace_post_startup_inferior (struct target_ops *self, ptid_t pid)
135 {
136 ptrace_event_t pe;
137
138 /* Set the initial event mask. */
139 memset (&pe, 0, sizeof pe);
140 pe.pe_set_event |= PTRACE_FORK;
141 if (ptrace (PT_SET_EVENT_MASK, ptid_get_pid (pid),
142 (PTRACE_TYPE_ARG3)&pe, sizeof pe) == -1)
143 perror_with_name (("ptrace"));
144 }
145
146 #endif
147
148 /* Clean up a rotting corpse of an inferior after it died. */
149
150 static void
151 inf_ptrace_mourn_inferior (struct target_ops *ops)
152 {
153 int status;
154
155 /* Wait just one more time to collect the inferior's exit status.
156 Do not check whether this succeeds though, since we may be
157 dealing with a process that we attached to. Such a process will
158 only report its exit status to its original parent. */
159 waitpid (ptid_get_pid (inferior_ptid), &status, 0);
160
161 inf_child_mourn_inferior (ops);
162 }
163
164 /* Attach to the process specified by ARGS. If FROM_TTY is non-zero,
165 be chatty about it. */
166
167 static void
168 inf_ptrace_attach (struct target_ops *ops, const char *args, int from_tty)
169 {
170 char *exec_file;
171 pid_t pid;
172 struct inferior *inf;
173
174 /* Do not change either targets above or the same target if already present.
175 The reason is the target stack is shared across multiple inferiors. */
176 int ops_already_pushed = target_is_pushed (ops);
177 struct cleanup *back_to = make_cleanup (null_cleanup, NULL);
178
179 pid = parse_pid_to_attach (args);
180
181 if (pid == getpid ()) /* Trying to masturbate? */
182 error (_("I refuse to debug myself!"));
183
184 if (! ops_already_pushed)
185 {
186 /* target_pid_to_str already uses the target. Also clear possible core
187 file with its process_stratum. */
188 push_target (ops);
189 make_cleanup_unpush_target (ops);
190 }
191
192 if (from_tty)
193 {
194 exec_file = get_exec_file (0);
195
196 if (exec_file)
197 printf_unfiltered (_("Attaching to program: %s, %s\n"), exec_file,
198 target_pid_to_str (pid_to_ptid (pid)));
199 else
200 printf_unfiltered (_("Attaching to %s\n"),
201 target_pid_to_str (pid_to_ptid (pid)));
202
203 gdb_flush (gdb_stdout);
204 }
205
206 #ifdef PT_ATTACH
207 errno = 0;
208 ptrace (PT_ATTACH, pid, (PTRACE_TYPE_ARG3)0, 0);
209 if (errno != 0)
210 perror_with_name (("ptrace"));
211 #else
212 error (_("This system does not support attaching to a process"));
213 #endif
214
215 inf = current_inferior ();
216 inferior_appeared (inf, pid);
217 inf->attach_flag = 1;
218 inferior_ptid = pid_to_ptid (pid);
219
220 /* Always add a main thread. If some target extends the ptrace
221 target, it should decorate the ptid later with more info. */
222 add_thread_silent (inferior_ptid);
223
224 discard_cleanups (back_to);
225 }
226
227 #ifdef PT_GET_PROCESS_STATE
228
229 static void
230 inf_ptrace_post_attach (struct target_ops *self, int pid)
231 {
232 ptrace_event_t pe;
233
234 /* Set the initial event mask. */
235 memset (&pe, 0, sizeof pe);
236 pe.pe_set_event |= PTRACE_FORK;
237 if (ptrace (PT_SET_EVENT_MASK, pid,
238 (PTRACE_TYPE_ARG3)&pe, sizeof pe) == -1)
239 perror_with_name (("ptrace"));
240 }
241
242 #endif
243
244 /* Detach from the inferior, optionally passing it the signal
245 specified by ARGS. If FROM_TTY is non-zero, be chatty about it. */
246
247 static void
248 inf_ptrace_detach (struct target_ops *ops, const char *args, int from_tty)
249 {
250 pid_t pid = ptid_get_pid (inferior_ptid);
251 int sig = 0;
252
253 target_announce_detach (from_tty);
254 if (args)
255 sig = atoi (args);
256
257 #ifdef PT_DETACH
258 /* We'd better not have left any breakpoints in the program or it'll
259 die when it hits one. Also note that this may only work if we
260 previously attached to the inferior. It *might* work if we
261 started the process ourselves. */
262 errno = 0;
263 ptrace (PT_DETACH, pid, (PTRACE_TYPE_ARG3)1, sig);
264 if (errno != 0)
265 perror_with_name (("ptrace"));
266 #else
267 error (_("This system does not support detaching from a process"));
268 #endif
269
270 inf_ptrace_detach_success (ops);
271 }
272
273 /* See inf-ptrace.h. */
274
275 void
276 inf_ptrace_detach_success (struct target_ops *ops)
277 {
278 pid_t pid = ptid_get_pid (inferior_ptid);
279
280 inferior_ptid = null_ptid;
281 detach_inferior (pid);
282
283 inf_child_maybe_unpush_target (ops);
284 }
285
286 /* Kill the inferior. */
287
288 static void
289 inf_ptrace_kill (struct target_ops *ops)
290 {
291 pid_t pid = ptid_get_pid (inferior_ptid);
292 int status;
293
294 if (pid == 0)
295 return;
296
297 ptrace (PT_KILL, pid, (PTRACE_TYPE_ARG3)0, 0);
298 waitpid (pid, &status, 0);
299
300 target_mourn_inferior (inferior_ptid);
301 }
302
303 /* Interrupt the inferior. */
304
305 static void
306 inf_ptrace_interrupt (struct target_ops *self, ptid_t ptid)
307 {
308 /* Send a SIGINT to the process group. This acts just like the user
309 typed a ^C on the controlling terminal. Note that using a
310 negative process number in kill() is a System V-ism. The proper
311 BSD interface is killpg(). However, all modern BSDs support the
312 System V interface too. */
313 kill (-inferior_process_group (), SIGINT);
314 }
315
316 /* Return which PID to pass to ptrace in order to observe/control the
317 tracee identified by PTID. */
318
319 pid_t
320 get_ptrace_pid (ptid_t ptid)
321 {
322 pid_t pid;
323
324 /* If we have an LWPID to work with, use it. Otherwise, we're
325 dealing with a non-threaded program/target. */
326 pid = ptid_get_lwp (ptid);
327 if (pid == 0)
328 pid = ptid_get_pid (ptid);
329 return pid;
330 }
331
332 /* Resume execution of thread PTID, or all threads if PTID is -1. If
333 STEP is nonzero, single-step it. If SIGNAL is nonzero, give it
334 that signal. */
335
336 static void
337 inf_ptrace_resume (struct target_ops *ops,
338 ptid_t ptid, int step, enum gdb_signal signal)
339 {
340 pid_t pid;
341 int request;
342
343 if (ptid_equal (minus_one_ptid, ptid))
344 /* Resume all threads. Traditionally ptrace() only supports
345 single-threaded processes, so simply resume the inferior. */
346 pid = ptid_get_pid (inferior_ptid);
347 else
348 pid = get_ptrace_pid (ptid);
349
350 if (catch_syscall_enabled () > 0)
351 request = PT_SYSCALL;
352 else
353 request = PT_CONTINUE;
354
355 if (step)
356 {
357 /* If this system does not support PT_STEP, a higher level
358 function will have called single_step() to transmute the step
359 request into a continue request (by setting breakpoints on
360 all possible successor instructions), so we don't have to
361 worry about that here. */
362 request = PT_STEP;
363 }
364
365 /* An address of (PTRACE_TYPE_ARG3)1 tells ptrace to continue from
366 where it was. If GDB wanted it to start some other way, we have
367 already written a new program counter value to the child. */
368 errno = 0;
369 ptrace (request, pid, (PTRACE_TYPE_ARG3)1, gdb_signal_to_host (signal));
370 if (errno != 0)
371 perror_with_name (("ptrace"));
372 }
373
374 /* Wait for the child specified by PTID to do something. Return the
375 process ID of the child, or MINUS_ONE_PTID in case of error; store
376 the status in *OURSTATUS. */
377
378 static ptid_t
379 inf_ptrace_wait (struct target_ops *ops,
380 ptid_t ptid, struct target_waitstatus *ourstatus, int options)
381 {
382 pid_t pid;
383 int status, save_errno;
384
385 do
386 {
387 set_sigint_trap ();
388
389 do
390 {
391 pid = waitpid (ptid_get_pid (ptid), &status, 0);
392 save_errno = errno;
393 }
394 while (pid == -1 && errno == EINTR);
395
396 clear_sigint_trap ();
397
398 if (pid == -1)
399 {
400 fprintf_unfiltered (gdb_stderr,
401 _("Child process unexpectedly missing: %s.\n"),
402 safe_strerror (save_errno));
403
404 /* Claim it exited with unknown signal. */
405 ourstatus->kind = TARGET_WAITKIND_SIGNALLED;
406 ourstatus->value.sig = GDB_SIGNAL_UNKNOWN;
407 return inferior_ptid;
408 }
409
410 /* Ignore terminated detached child processes. */
411 if (!WIFSTOPPED (status) && pid != ptid_get_pid (inferior_ptid))
412 pid = -1;
413 }
414 while (pid == -1);
415
416 #ifdef PT_GET_PROCESS_STATE
417 if (WIFSTOPPED (status))
418 {
419 ptrace_state_t pe;
420 pid_t fpid;
421
422 if (ptrace (PT_GET_PROCESS_STATE, pid,
423 (PTRACE_TYPE_ARG3)&pe, sizeof pe) == -1)
424 perror_with_name (("ptrace"));
425
426 switch (pe.pe_report_event)
427 {
428 case PTRACE_FORK:
429 ourstatus->kind = TARGET_WAITKIND_FORKED;
430 ourstatus->value.related_pid = pid_to_ptid (pe.pe_other_pid);
431
432 /* Make sure the other end of the fork is stopped too. */
433 fpid = waitpid (pe.pe_other_pid, &status, 0);
434 if (fpid == -1)
435 perror_with_name (("waitpid"));
436
437 if (ptrace (PT_GET_PROCESS_STATE, fpid,
438 (PTRACE_TYPE_ARG3)&pe, sizeof pe) == -1)
439 perror_with_name (("ptrace"));
440
441 gdb_assert (pe.pe_report_event == PTRACE_FORK);
442 gdb_assert (pe.pe_other_pid == pid);
443 if (fpid == ptid_get_pid (inferior_ptid))
444 {
445 ourstatus->value.related_pid = pid_to_ptid (pe.pe_other_pid);
446 return pid_to_ptid (fpid);
447 }
448
449 return pid_to_ptid (pid);
450 }
451 }
452 #endif
453
454 store_waitstatus (ourstatus, status);
455 return pid_to_ptid (pid);
456 }
457
458 /* Transfer data via ptrace into process PID's memory from WRITEBUF, or
459 from process PID's memory into READBUF. Start at target address ADDR
460 and transfer up to LEN bytes. Exactly one of READBUF and WRITEBUF must
461 be non-null. Return the number of transferred bytes. */
462
463 static ULONGEST
464 inf_ptrace_peek_poke (pid_t pid, gdb_byte *readbuf,
465 const gdb_byte *writebuf,
466 ULONGEST addr, ULONGEST len)
467 {
468 ULONGEST n;
469 unsigned int chunk;
470
471 /* We transfer aligned words. Thus align ADDR down to a word
472 boundary and determine how many bytes to skip at the
473 beginning. */
474 ULONGEST skip = addr & (sizeof (PTRACE_TYPE_RET) - 1);
475 addr -= skip;
476
477 for (n = 0;
478 n < len;
479 n += chunk, addr += sizeof (PTRACE_TYPE_RET), skip = 0)
480 {
481 /* Restrict to a chunk that fits in the current word. */
482 chunk = std::min (sizeof (PTRACE_TYPE_RET) - skip, len - n);
483
484 /* Use a union for type punning. */
485 union
486 {
487 PTRACE_TYPE_RET word;
488 gdb_byte byte[sizeof (PTRACE_TYPE_RET)];
489 } buf;
490
491 /* Read the word, also when doing a partial word write. */
492 if (readbuf != NULL || chunk < sizeof (PTRACE_TYPE_RET))
493 {
494 errno = 0;
495 buf.word = ptrace (PT_READ_I, pid,
496 (PTRACE_TYPE_ARG3)(uintptr_t) addr, 0);
497 if (errno != 0)
498 break;
499 if (readbuf != NULL)
500 memcpy (readbuf + n, buf.byte + skip, chunk);
501 }
502 if (writebuf != NULL)
503 {
504 memcpy (buf.byte + skip, writebuf + n, chunk);
505 errno = 0;
506 ptrace (PT_WRITE_D, pid, (PTRACE_TYPE_ARG3)(uintptr_t) addr,
507 buf.word);
508 if (errno != 0)
509 {
510 /* Using the appropriate one (I or D) is necessary for
511 Gould NP1, at least. */
512 errno = 0;
513 ptrace (PT_WRITE_I, pid, (PTRACE_TYPE_ARG3)(uintptr_t) addr,
514 buf.word);
515 if (errno != 0)
516 break;
517 }
518 }
519 }
520
521 return n;
522 }
523
524 /* Implement the to_xfer_partial target_ops method. */
525
526 static enum target_xfer_status
527 inf_ptrace_xfer_partial (struct target_ops *ops, enum target_object object,
528 const char *annex, gdb_byte *readbuf,
529 const gdb_byte *writebuf,
530 ULONGEST offset, ULONGEST len, ULONGEST *xfered_len)
531 {
532 pid_t pid = get_ptrace_pid (inferior_ptid);
533
534 switch (object)
535 {
536 case TARGET_OBJECT_MEMORY:
537 #ifdef PT_IO
538 /* OpenBSD 3.1, NetBSD 1.6 and FreeBSD 5.0 have a new PT_IO
539 request that promises to be much more efficient in reading
540 and writing data in the traced process's address space. */
541 {
542 struct ptrace_io_desc piod;
543
544 /* NOTE: We assume that there are no distinct address spaces
545 for instruction and data. However, on OpenBSD 3.9 and
546 later, PIOD_WRITE_D doesn't allow changing memory that's
547 mapped read-only. Since most code segments will be
548 read-only, using PIOD_WRITE_D will prevent us from
549 inserting breakpoints, so we use PIOD_WRITE_I instead. */
550 piod.piod_op = writebuf ? PIOD_WRITE_I : PIOD_READ_D;
551 piod.piod_addr = writebuf ? (void *) writebuf : readbuf;
552 piod.piod_offs = (void *) (long) offset;
553 piod.piod_len = len;
554
555 errno = 0;
556 if (ptrace (PT_IO, pid, (caddr_t)&piod, 0) == 0)
557 {
558 /* Return the actual number of bytes read or written. */
559 *xfered_len = piod.piod_len;
560 return (piod.piod_len == 0) ? TARGET_XFER_EOF : TARGET_XFER_OK;
561 }
562 /* If the PT_IO request is somehow not supported, fallback on
563 using PT_WRITE_D/PT_READ_D. Otherwise we will return zero
564 to indicate failure. */
565 if (errno != EINVAL)
566 return TARGET_XFER_EOF;
567 }
568 #endif
569 *xfered_len = inf_ptrace_peek_poke (pid, readbuf, writebuf,
570 offset, len);
571 return *xfered_len != 0 ? TARGET_XFER_OK : TARGET_XFER_EOF;
572
573 case TARGET_OBJECT_UNWIND_TABLE:
574 return TARGET_XFER_E_IO;
575
576 case TARGET_OBJECT_AUXV:
577 #if defined (PT_IO) && defined (PIOD_READ_AUXV)
578 /* OpenBSD 4.5 has a new PIOD_READ_AUXV operation for the PT_IO
579 request that allows us to read the auxilliary vector. Other
580 BSD's may follow if they feel the need to support PIE. */
581 {
582 struct ptrace_io_desc piod;
583
584 if (writebuf)
585 return TARGET_XFER_E_IO;
586 piod.piod_op = PIOD_READ_AUXV;
587 piod.piod_addr = readbuf;
588 piod.piod_offs = (void *) (long) offset;
589 piod.piod_len = len;
590
591 errno = 0;
592 if (ptrace (PT_IO, pid, (caddr_t)&piod, 0) == 0)
593 {
594 /* Return the actual number of bytes read or written. */
595 *xfered_len = piod.piod_len;
596 return (piod.piod_len == 0) ? TARGET_XFER_EOF : TARGET_XFER_OK;
597 }
598 }
599 #endif
600 return TARGET_XFER_E_IO;
601
602 case TARGET_OBJECT_WCOOKIE:
603 return TARGET_XFER_E_IO;
604
605 default:
606 return TARGET_XFER_E_IO;
607 }
608 }
609
610 /* Return non-zero if the thread specified by PTID is alive. */
611
612 static int
613 inf_ptrace_thread_alive (struct target_ops *ops, ptid_t ptid)
614 {
615 /* ??? Is kill the right way to do this? */
616 return (kill (ptid_get_pid (ptid), 0) != -1);
617 }
618
619 /* Print status information about what we're accessing. */
620
621 static void
622 inf_ptrace_files_info (struct target_ops *ignore)
623 {
624 struct inferior *inf = current_inferior ();
625
626 printf_filtered (_("\tUsing the running image of %s %s.\n"),
627 inf->attach_flag ? "attached" : "child",
628 target_pid_to_str (inferior_ptid));
629 }
630
631 static const char *
632 inf_ptrace_pid_to_str (struct target_ops *ops, ptid_t ptid)
633 {
634 return normal_pid_to_str (ptid);
635 }
636
637 #if defined (PT_IO) && defined (PIOD_READ_AUXV)
638
639 /* Read one auxv entry from *READPTR, not reading locations >= ENDPTR.
640 Return 0 if *READPTR is already at the end of the buffer.
641 Return -1 if there is insufficient buffer for a whole entry.
642 Return 1 if an entry was read into *TYPEP and *VALP. */
643
644 static int
645 inf_ptrace_auxv_parse (struct target_ops *ops, gdb_byte **readptr,
646 gdb_byte *endptr, CORE_ADDR *typep, CORE_ADDR *valp)
647 {
648 struct type *int_type = builtin_type (target_gdbarch ())->builtin_int;
649 struct type *ptr_type = builtin_type (target_gdbarch ())->builtin_data_ptr;
650 const int sizeof_auxv_type = TYPE_LENGTH (int_type);
651 const int sizeof_auxv_val = TYPE_LENGTH (ptr_type);
652 enum bfd_endian byte_order = gdbarch_byte_order (target_gdbarch ());
653 gdb_byte *ptr = *readptr;
654
655 if (endptr == ptr)
656 return 0;
657
658 if (endptr - ptr < 2 * sizeof_auxv_val)
659 return -1;
660
661 *typep = extract_unsigned_integer (ptr, sizeof_auxv_type, byte_order);
662 ptr += sizeof_auxv_val; /* Alignment. */
663 *valp = extract_unsigned_integer (ptr, sizeof_auxv_val, byte_order);
664 ptr += sizeof_auxv_val;
665
666 *readptr = ptr;
667 return 1;
668 }
669
670 #endif
671
672 /* Create a prototype ptrace target. The client can override it with
673 local methods. */
674
675 struct target_ops *
676 inf_ptrace_target (void)
677 {
678 struct target_ops *t = inf_child_target ();
679
680 t->to_attach = inf_ptrace_attach;
681 t->to_detach = inf_ptrace_detach;
682 t->to_resume = inf_ptrace_resume;
683 t->to_wait = inf_ptrace_wait;
684 t->to_files_info = inf_ptrace_files_info;
685 t->to_kill = inf_ptrace_kill;
686 t->to_create_inferior = inf_ptrace_create_inferior;
687 #ifdef PT_GET_PROCESS_STATE
688 t->to_follow_fork = inf_ptrace_follow_fork;
689 t->to_insert_fork_catchpoint = inf_ptrace_insert_fork_catchpoint;
690 t->to_remove_fork_catchpoint = inf_ptrace_remove_fork_catchpoint;
691 t->to_post_startup_inferior = inf_ptrace_post_startup_inferior;
692 t->to_post_attach = inf_ptrace_post_attach;
693 #endif
694 t->to_mourn_inferior = inf_ptrace_mourn_inferior;
695 t->to_thread_alive = inf_ptrace_thread_alive;
696 t->to_pid_to_str = inf_ptrace_pid_to_str;
697 t->to_interrupt = inf_ptrace_interrupt;
698 t->to_xfer_partial = inf_ptrace_xfer_partial;
699 #if defined (PT_IO) && defined (PIOD_READ_AUXV)
700 t->to_auxv_parse = inf_ptrace_auxv_parse;
701 #endif
702
703 return t;
704 }
705 \f
706
707 /* Pointer to a function that returns the offset within the user area
708 where a particular register is stored. */
709 static CORE_ADDR (*inf_ptrace_register_u_offset)(struct gdbarch *, int, int);
710
711 /* Fetch register REGNUM from the inferior. */
712
713 static void
714 inf_ptrace_fetch_register (struct regcache *regcache, int regnum)
715 {
716 struct gdbarch *gdbarch = regcache->arch ();
717 CORE_ADDR addr;
718 size_t size;
719 PTRACE_TYPE_RET *buf;
720 pid_t pid;
721 int i;
722
723 /* This isn't really an address, but ptrace thinks of it as one. */
724 addr = inf_ptrace_register_u_offset (gdbarch, regnum, 0);
725 if (addr == (CORE_ADDR)-1
726 || gdbarch_cannot_fetch_register (gdbarch, regnum))
727 {
728 regcache_raw_supply (regcache, regnum, NULL);
729 return;
730 }
731
732 pid = get_ptrace_pid (regcache_get_ptid (regcache));
733
734 size = register_size (gdbarch, regnum);
735 gdb_assert ((size % sizeof (PTRACE_TYPE_RET)) == 0);
736 buf = (PTRACE_TYPE_RET *) alloca (size);
737
738 /* Read the register contents from the inferior a chunk at a time. */
739 for (i = 0; i < size / sizeof (PTRACE_TYPE_RET); i++)
740 {
741 errno = 0;
742 buf[i] = ptrace (PT_READ_U, pid, (PTRACE_TYPE_ARG3)(uintptr_t)addr, 0);
743 if (errno != 0)
744 error (_("Couldn't read register %s (#%d): %s."),
745 gdbarch_register_name (gdbarch, regnum),
746 regnum, safe_strerror (errno));
747
748 addr += sizeof (PTRACE_TYPE_RET);
749 }
750 regcache_raw_supply (regcache, regnum, buf);
751 }
752
753 /* Fetch register REGNUM from the inferior. If REGNUM is -1, do this
754 for all registers. */
755
756 static void
757 inf_ptrace_fetch_registers (struct target_ops *ops,
758 struct regcache *regcache, int regnum)
759 {
760 if (regnum == -1)
761 for (regnum = 0;
762 regnum < gdbarch_num_regs (regcache->arch ());
763 regnum++)
764 inf_ptrace_fetch_register (regcache, regnum);
765 else
766 inf_ptrace_fetch_register (regcache, regnum);
767 }
768
769 /* Store register REGNUM into the inferior. */
770
771 static void
772 inf_ptrace_store_register (const struct regcache *regcache, int regnum)
773 {
774 struct gdbarch *gdbarch = regcache->arch ();
775 CORE_ADDR addr;
776 size_t size;
777 PTRACE_TYPE_RET *buf;
778 pid_t pid;
779 int i;
780
781 /* This isn't really an address, but ptrace thinks of it as one. */
782 addr = inf_ptrace_register_u_offset (gdbarch, regnum, 1);
783 if (addr == (CORE_ADDR)-1
784 || gdbarch_cannot_store_register (gdbarch, regnum))
785 return;
786
787 pid = get_ptrace_pid (regcache_get_ptid (regcache));
788
789 size = register_size (gdbarch, regnum);
790 gdb_assert ((size % sizeof (PTRACE_TYPE_RET)) == 0);
791 buf = (PTRACE_TYPE_RET *) alloca (size);
792
793 /* Write the register contents into the inferior a chunk at a time. */
794 regcache_raw_collect (regcache, regnum, buf);
795 for (i = 0; i < size / sizeof (PTRACE_TYPE_RET); i++)
796 {
797 errno = 0;
798 ptrace (PT_WRITE_U, pid, (PTRACE_TYPE_ARG3)(uintptr_t)addr, buf[i]);
799 if (errno != 0)
800 error (_("Couldn't write register %s (#%d): %s."),
801 gdbarch_register_name (gdbarch, regnum),
802 regnum, safe_strerror (errno));
803
804 addr += sizeof (PTRACE_TYPE_RET);
805 }
806 }
807
808 /* Store register REGNUM back into the inferior. If REGNUM is -1, do
809 this for all registers. */
810
811 static void
812 inf_ptrace_store_registers (struct target_ops *ops,
813 struct regcache *regcache, int regnum)
814 {
815 if (regnum == -1)
816 for (regnum = 0;
817 regnum < gdbarch_num_regs (regcache->arch ());
818 regnum++)
819 inf_ptrace_store_register (regcache, regnum);
820 else
821 inf_ptrace_store_register (regcache, regnum);
822 }
823
824 /* Create a "traditional" ptrace target. REGISTER_U_OFFSET should be
825 a function returning the offset within the user area where a
826 particular register is stored. */
827
828 struct target_ops *
829 inf_ptrace_trad_target (CORE_ADDR (*register_u_offset)
830 (struct gdbarch *, int, int))
831 {
832 struct target_ops *t = inf_ptrace_target();
833
834 gdb_assert (register_u_offset);
835 inf_ptrace_register_u_offset = register_u_offset;
836 t->to_fetch_registers = inf_ptrace_fetch_registers;
837 t->to_store_registers = inf_ptrace_store_registers;
838
839 return t;
840 }
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