* remote.c (remote_notice_signals): New.
[deliverable/binutils-gdb.git] / gdb / gdbserver / linux-low.c
CommitLineData
da6d8c04 1/* Low level interface to ptrace, for the remote server for GDB.
545587ee 2 Copyright (C) 1995, 1996, 1998, 1999, 2000, 2001, 2002, 2003, 2004, 2005,
4c38e0a4 3 2006, 2007, 2008, 2009, 2010 Free Software Foundation, Inc.
da6d8c04
DJ
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
a9762ec7 9 the Free Software Foundation; either version 3 of the License, or
da6d8c04
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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
a9762ec7 18 along with this program. If not, see <http://www.gnu.org/licenses/>. */
da6d8c04
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19
20#include "server.h"
58caa3dc 21#include "linux-low.h"
da6d8c04 22
58caa3dc 23#include <sys/wait.h>
da6d8c04
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24#include <stdio.h>
25#include <sys/param.h>
da6d8c04 26#include <sys/ptrace.h>
da6d8c04
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27#include <signal.h>
28#include <sys/ioctl.h>
29#include <fcntl.h>
d07c63e7 30#include <string.h>
0a30fbc4
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31#include <stdlib.h>
32#include <unistd.h>
fa6a77dc 33#include <errno.h>
fd500816 34#include <sys/syscall.h>
f9387fc3 35#include <sched.h>
07e059b5
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36#include <ctype.h>
37#include <pwd.h>
38#include <sys/types.h>
39#include <dirent.h>
efcbbd14
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40#include <sys/stat.h>
41#include <sys/vfs.h>
1570b33e 42#include <sys/uio.h>
957f3f49
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43#ifndef ELFMAG0
44/* Don't include <linux/elf.h> here. If it got included by gdb_proc_service.h
45 then ELFMAG0 will have been defined. If it didn't get included by
46 gdb_proc_service.h then including it will likely introduce a duplicate
47 definition of elf_fpregset_t. */
48#include <elf.h>
49#endif
efcbbd14
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50
51#ifndef SPUFS_MAGIC
52#define SPUFS_MAGIC 0x23c9b64e
53#endif
da6d8c04 54
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55#ifndef PTRACE_GETSIGINFO
56# define PTRACE_GETSIGINFO 0x4202
57# define PTRACE_SETSIGINFO 0x4203
58#endif
59
fd462a61
DJ
60#ifndef O_LARGEFILE
61#define O_LARGEFILE 0
62#endif
63
24a09b5f
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64/* If the system headers did not provide the constants, hard-code the normal
65 values. */
66#ifndef PTRACE_EVENT_FORK
67
68#define PTRACE_SETOPTIONS 0x4200
69#define PTRACE_GETEVENTMSG 0x4201
70
71/* options set using PTRACE_SETOPTIONS */
72#define PTRACE_O_TRACESYSGOOD 0x00000001
73#define PTRACE_O_TRACEFORK 0x00000002
74#define PTRACE_O_TRACEVFORK 0x00000004
75#define PTRACE_O_TRACECLONE 0x00000008
76#define PTRACE_O_TRACEEXEC 0x00000010
77#define PTRACE_O_TRACEVFORKDONE 0x00000020
78#define PTRACE_O_TRACEEXIT 0x00000040
79
80/* Wait extended result codes for the above trace options. */
81#define PTRACE_EVENT_FORK 1
82#define PTRACE_EVENT_VFORK 2
83#define PTRACE_EVENT_CLONE 3
84#define PTRACE_EVENT_EXEC 4
85#define PTRACE_EVENT_VFORK_DONE 5
86#define PTRACE_EVENT_EXIT 6
87
88#endif /* PTRACE_EVENT_FORK */
89
90/* We can't always assume that this flag is available, but all systems
91 with the ptrace event handlers also have __WALL, so it's safe to use
92 in some contexts. */
93#ifndef __WALL
94#define __WALL 0x40000000 /* Wait for any child. */
95#endif
96
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97#ifndef W_STOPCODE
98#define W_STOPCODE(sig) ((sig) << 8 | 0x7f)
99#endif
100
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101#ifdef __UCLIBC__
102#if !(defined(__UCLIBC_HAS_MMU__) || defined(__ARCH_HAS_MMU__))
103#define HAS_NOMMU
104#endif
105#endif
106
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107/* ``all_threads'' is keyed by the LWP ID, which we use as the GDB protocol
108 representation of the thread ID.
611cb4a5 109
54a0b537 110 ``all_lwps'' is keyed by the process ID - which on Linux is (presently)
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PA
111 the same as the LWP ID.
112
113 ``all_processes'' is keyed by the "overall process ID", which
114 GNU/Linux calls tgid, "thread group ID". */
0d62e5e8 115
54a0b537 116struct inferior_list all_lwps;
0d62e5e8 117
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118/* A list of all unknown processes which receive stop signals. Some other
119 process will presumably claim each of these as forked children
120 momentarily. */
121
122struct inferior_list stopped_pids;
123
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DJ
124/* FIXME this is a bit of a hack, and could be removed. */
125int stopping_threads;
126
127/* FIXME make into a target method? */
24a09b5f 128int using_threads = 1;
24a09b5f 129
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130/* This flag is true iff we've just created or attached to our first
131 inferior but it has not stopped yet. As soon as it does, we need
132 to call the low target's arch_setup callback. Doing this only on
133 the first inferior avoids reinializing the architecture on every
134 inferior, and avoids messing with the register caches of the
135 already running inferiors. NOTE: this assumes all inferiors under
136 control of gdbserver have the same architecture. */
d61ddec4
UW
137static int new_inferior;
138
2acc282a 139static void linux_resume_one_lwp (struct lwp_info *lwp,
54a0b537 140 int step, int signal, siginfo_t *info);
2bd7c093 141static void linux_resume (struct thread_resume *resume_info, size_t n);
54a0b537 142static void stop_all_lwps (void);
95954743 143static int linux_wait_for_event (ptid_t ptid, int *wstat, int options);
95954743 144static void *add_lwp (ptid_t ptid);
c35fafde 145static int linux_stopped_by_watchpoint (void);
95954743 146static void mark_lwp_dead (struct lwp_info *lwp, int wstat);
dc146f7c 147static int linux_core_of_thread (ptid_t ptid);
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148static void proceed_all_lwps (void);
149static void unstop_all_lwps (struct lwp_info *except);
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150static int finish_step_over (struct lwp_info *lwp);
151static CORE_ADDR get_stop_pc (struct lwp_info *lwp);
152static int kill_lwp (unsigned long lwpid, int signo);
1e7fc18c 153static void linux_enable_event_reporting (int pid);
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154
155/* True if the low target can hardware single-step. Such targets
156 don't need a BREAKPOINT_REINSERT_ADDR callback. */
157
158static int
159can_hardware_single_step (void)
160{
161 return (the_low_target.breakpoint_reinsert_addr == NULL);
162}
163
164/* True if the low target supports memory breakpoints. If so, we'll
165 have a GET_PC implementation. */
166
167static int
168supports_breakpoints (void)
169{
170 return (the_low_target.get_pc != NULL);
171}
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172
173struct pending_signals
174{
175 int signal;
32ca6d61 176 siginfo_t info;
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177 struct pending_signals *prev;
178};
611cb4a5 179
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180#define PTRACE_ARG3_TYPE void *
181#define PTRACE_ARG4_TYPE void *
c6ecbae5 182#define PTRACE_XFER_TYPE long
da6d8c04 183
58caa3dc 184#ifdef HAVE_LINUX_REGSETS
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185static char *disabled_regsets;
186static int num_regsets;
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187#endif
188
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189/* The read/write ends of the pipe registered as waitable file in the
190 event loop. */
191static int linux_event_pipe[2] = { -1, -1 };
192
193/* True if we're currently in async mode. */
194#define target_is_async_p() (linux_event_pipe[0] != -1)
195
02fc4de7 196static void send_sigstop (struct lwp_info *lwp);
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197static void wait_for_sigstop (struct inferior_list_entry *entry);
198
d0722149
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199/* Accepts an integer PID; Returns a string representing a file that
200 can be opened to get info for the child process.
201 Space for the result is malloc'd, caller must free. */
202
203char *
204linux_child_pid_to_exec_file (int pid)
205{
206 char *name1, *name2;
207
208 name1 = xmalloc (MAXPATHLEN);
209 name2 = xmalloc (MAXPATHLEN);
210 memset (name2, 0, MAXPATHLEN);
211
212 sprintf (name1, "/proc/%d/exe", pid);
213 if (readlink (name1, name2, MAXPATHLEN) > 0)
214 {
215 free (name1);
216 return name2;
217 }
218 else
219 {
220 free (name2);
221 return name1;
222 }
223}
224
225/* Return non-zero if HEADER is a 64-bit ELF file. */
226
227static int
957f3f49 228elf_64_header_p (const Elf64_Ehdr *header)
d0722149
DE
229{
230 return (header->e_ident[EI_MAG0] == ELFMAG0
231 && header->e_ident[EI_MAG1] == ELFMAG1
232 && header->e_ident[EI_MAG2] == ELFMAG2
233 && header->e_ident[EI_MAG3] == ELFMAG3
234 && header->e_ident[EI_CLASS] == ELFCLASS64);
235}
236
237/* Return non-zero if FILE is a 64-bit ELF file,
238 zero if the file is not a 64-bit ELF file,
239 and -1 if the file is not accessible or doesn't exist. */
240
241int
242elf_64_file_p (const char *file)
243{
957f3f49 244 Elf64_Ehdr header;
d0722149
DE
245 int fd;
246
247 fd = open (file, O_RDONLY);
248 if (fd < 0)
249 return -1;
250
251 if (read (fd, &header, sizeof (header)) != sizeof (header))
252 {
253 close (fd);
254 return 0;
255 }
256 close (fd);
257
258 return elf_64_header_p (&header);
259}
260
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PA
261static void
262delete_lwp (struct lwp_info *lwp)
263{
264 remove_thread (get_lwp_thread (lwp));
265 remove_inferior (&all_lwps, &lwp->head);
aa5ca48f 266 free (lwp->arch_private);
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PA
267 free (lwp);
268}
269
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270/* Add a process to the common process list, and set its private
271 data. */
272
273static struct process_info *
274linux_add_process (int pid, int attached)
275{
276 struct process_info *proc;
277
278 /* Is this the first process? If so, then set the arch. */
279 if (all_processes.head == NULL)
280 new_inferior = 1;
281
282 proc = add_process (pid, attached);
283 proc->private = xcalloc (1, sizeof (*proc->private));
284
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DE
285 if (the_low_target.new_process != NULL)
286 proc->private->arch_private = the_low_target.new_process ();
287
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PA
288 return proc;
289}
290
07d4f67e
DE
291/* Wrapper function for waitpid which handles EINTR, and emulates
292 __WALL for systems where that is not available. */
293
294static int
295my_waitpid (int pid, int *status, int flags)
296{
297 int ret, out_errno;
298
299 if (debug_threads)
300 fprintf (stderr, "my_waitpid (%d, 0x%x)\n", pid, flags);
301
302 if (flags & __WALL)
303 {
304 sigset_t block_mask, org_mask, wake_mask;
305 int wnohang;
306
307 wnohang = (flags & WNOHANG) != 0;
308 flags &= ~(__WALL | __WCLONE);
309 flags |= WNOHANG;
310
311 /* Block all signals while here. This avoids knowing about
312 LinuxThread's signals. */
313 sigfillset (&block_mask);
314 sigprocmask (SIG_BLOCK, &block_mask, &org_mask);
315
316 /* ... except during the sigsuspend below. */
317 sigemptyset (&wake_mask);
318
319 while (1)
320 {
321 /* Since all signals are blocked, there's no need to check
322 for EINTR here. */
323 ret = waitpid (pid, status, flags);
324 out_errno = errno;
325
326 if (ret == -1 && out_errno != ECHILD)
327 break;
328 else if (ret > 0)
329 break;
330
331 if (flags & __WCLONE)
332 {
333 /* We've tried both flavors now. If WNOHANG is set,
334 there's nothing else to do, just bail out. */
335 if (wnohang)
336 break;
337
338 if (debug_threads)
339 fprintf (stderr, "blocking\n");
340
341 /* Block waiting for signals. */
342 sigsuspend (&wake_mask);
343 }
344
345 flags ^= __WCLONE;
346 }
347
348 sigprocmask (SIG_SETMASK, &org_mask, NULL);
349 }
350 else
351 {
352 do
353 ret = waitpid (pid, status, flags);
354 while (ret == -1 && errno == EINTR);
355 out_errno = errno;
356 }
357
358 if (debug_threads)
359 fprintf (stderr, "my_waitpid (%d, 0x%x): status(%x), %d\n",
360 pid, flags, status ? *status : -1, ret);
361
362 errno = out_errno;
363 return ret;
364}
365
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366/* Handle a GNU/Linux extended wait response. If we see a clone
367 event, we need to add the new LWP to our list (and not report the
368 trap to higher layers). */
0d62e5e8 369
24a09b5f 370static void
54a0b537 371handle_extended_wait (struct lwp_info *event_child, int wstat)
24a09b5f
DJ
372{
373 int event = wstat >> 16;
54a0b537 374 struct lwp_info *new_lwp;
24a09b5f
DJ
375
376 if (event == PTRACE_EVENT_CLONE)
377 {
95954743 378 ptid_t ptid;
24a09b5f 379 unsigned long new_pid;
836acd6d 380 int ret, status = W_STOPCODE (SIGSTOP);
24a09b5f 381
bd99dc85 382 ptrace (PTRACE_GETEVENTMSG, lwpid_of (event_child), 0, &new_pid);
24a09b5f
DJ
383
384 /* If we haven't already seen the new PID stop, wait for it now. */
385 if (! pull_pid_from_list (&stopped_pids, new_pid))
386 {
387 /* The new child has a pending SIGSTOP. We can't affect it until it
388 hits the SIGSTOP, but we're already attached. */
389
97438e3f 390 ret = my_waitpid (new_pid, &status, __WALL);
24a09b5f
DJ
391
392 if (ret == -1)
393 perror_with_name ("waiting for new child");
394 else if (ret != new_pid)
395 warning ("wait returned unexpected PID %d", ret);
da5898ce 396 else if (!WIFSTOPPED (status))
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DJ
397 warning ("wait returned unexpected status 0x%x", status);
398 }
399
1e7fc18c 400 linux_enable_event_reporting (new_pid);
24a09b5f 401
95954743
PA
402 ptid = ptid_build (pid_of (event_child), new_pid, 0);
403 new_lwp = (struct lwp_info *) add_lwp (ptid);
404 add_thread (ptid, new_lwp);
24a09b5f 405
e27d73f6
DE
406 /* Either we're going to immediately resume the new thread
407 or leave it stopped. linux_resume_one_lwp is a nop if it
408 thinks the thread is currently running, so set this first
409 before calling linux_resume_one_lwp. */
410 new_lwp->stopped = 1;
411
da5898ce
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412 /* Normally we will get the pending SIGSTOP. But in some cases
413 we might get another signal delivered to the group first.
f21cc1a2 414 If we do get another signal, be sure not to lose it. */
da5898ce
DJ
415 if (WSTOPSIG (status) == SIGSTOP)
416 {
d50171e4
PA
417 if (stopping_threads)
418 new_lwp->stop_pc = get_stop_pc (new_lwp);
419 else
e27d73f6 420 linux_resume_one_lwp (new_lwp, 0, 0, NULL);
da5898ce 421 }
24a09b5f 422 else
da5898ce 423 {
54a0b537 424 new_lwp->stop_expected = 1;
d50171e4 425
da5898ce
DJ
426 if (stopping_threads)
427 {
d50171e4 428 new_lwp->stop_pc = get_stop_pc (new_lwp);
54a0b537
PA
429 new_lwp->status_pending_p = 1;
430 new_lwp->status_pending = status;
da5898ce
DJ
431 }
432 else
433 /* Pass the signal on. This is what GDB does - except
434 shouldn't we really report it instead? */
e27d73f6 435 linux_resume_one_lwp (new_lwp, 0, WSTOPSIG (status), NULL);
da5898ce 436 }
24a09b5f
DJ
437
438 /* Always resume the current thread. If we are stopping
439 threads, it will have a pending SIGSTOP; we may as well
440 collect it now. */
2acc282a 441 linux_resume_one_lwp (event_child, event_child->stepping, 0, NULL);
24a09b5f
DJ
442 }
443}
444
d50171e4
PA
445/* Return the PC as read from the regcache of LWP, without any
446 adjustment. */
447
448static CORE_ADDR
449get_pc (struct lwp_info *lwp)
450{
451 struct thread_info *saved_inferior;
452 struct regcache *regcache;
453 CORE_ADDR pc;
454
455 if (the_low_target.get_pc == NULL)
456 return 0;
457
458 saved_inferior = current_inferior;
459 current_inferior = get_lwp_thread (lwp);
460
461 regcache = get_thread_regcache (current_inferior, 1);
462 pc = (*the_low_target.get_pc) (regcache);
463
464 if (debug_threads)
465 fprintf (stderr, "pc is 0x%lx\n", (long) pc);
466
467 current_inferior = saved_inferior;
468 return pc;
469}
470
471/* This function should only be called if LWP got a SIGTRAP.
0d62e5e8
DJ
472 The SIGTRAP could mean several things.
473
474 On i386, where decr_pc_after_break is non-zero:
475 If we were single-stepping this process using PTRACE_SINGLESTEP,
476 we will get only the one SIGTRAP (even if the instruction we
477 stepped over was a breakpoint). The value of $eip will be the
478 next instruction.
479 If we continue the process using PTRACE_CONT, we will get a
480 SIGTRAP when we hit a breakpoint. The value of $eip will be
481 the instruction after the breakpoint (i.e. needs to be
482 decremented). If we report the SIGTRAP to GDB, we must also
483 report the undecremented PC. If we cancel the SIGTRAP, we
484 must resume at the decremented PC.
485
486 (Presumably, not yet tested) On a non-decr_pc_after_break machine
487 with hardware or kernel single-step:
488 If we single-step over a breakpoint instruction, our PC will
489 point at the following instruction. If we continue and hit a
490 breakpoint instruction, our PC will point at the breakpoint
491 instruction. */
492
493static CORE_ADDR
d50171e4 494get_stop_pc (struct lwp_info *lwp)
0d62e5e8 495{
d50171e4
PA
496 CORE_ADDR stop_pc;
497
498 if (the_low_target.get_pc == NULL)
499 return 0;
0d62e5e8 500
d50171e4
PA
501 stop_pc = get_pc (lwp);
502
bdabb078
PA
503 if (WSTOPSIG (lwp->last_status) == SIGTRAP
504 && !lwp->stepping
505 && !lwp->stopped_by_watchpoint
506 && lwp->last_status >> 16 == 0)
47c0c975
DE
507 stop_pc -= the_low_target.decr_pc_after_break;
508
509 if (debug_threads)
510 fprintf (stderr, "stop pc is 0x%lx\n", (long) stop_pc);
511
512 return stop_pc;
0d62e5e8 513}
ce3a066d 514
0d62e5e8 515static void *
95954743 516add_lwp (ptid_t ptid)
611cb4a5 517{
54a0b537 518 struct lwp_info *lwp;
0d62e5e8 519
54a0b537
PA
520 lwp = (struct lwp_info *) xmalloc (sizeof (*lwp));
521 memset (lwp, 0, sizeof (*lwp));
0d62e5e8 522
95954743 523 lwp->head.id = ptid;
0d62e5e8 524
aa5ca48f
DE
525 if (the_low_target.new_thread != NULL)
526 lwp->arch_private = the_low_target.new_thread ();
527
54a0b537 528 add_inferior_to_list (&all_lwps, &lwp->head);
0d62e5e8 529
54a0b537 530 return lwp;
0d62e5e8 531}
611cb4a5 532
da6d8c04
DJ
533/* Start an inferior process and returns its pid.
534 ALLARGS is a vector of program-name and args. */
535
ce3a066d
DJ
536static int
537linux_create_inferior (char *program, char **allargs)
da6d8c04 538{
a6dbe5df 539 struct lwp_info *new_lwp;
da6d8c04 540 int pid;
95954743 541 ptid_t ptid;
da6d8c04 542
42c81e2a 543#if defined(__UCLIBC__) && defined(HAS_NOMMU)
52fb6437
NS
544 pid = vfork ();
545#else
da6d8c04 546 pid = fork ();
52fb6437 547#endif
da6d8c04
DJ
548 if (pid < 0)
549 perror_with_name ("fork");
550
551 if (pid == 0)
552 {
553 ptrace (PTRACE_TRACEME, 0, 0, 0);
554
60c3d7b0 555#ifdef __SIGRTMIN /* Bionic doesn't use SIGRTMIN the way glibc does. */
254787d4 556 signal (__SIGRTMIN + 1, SIG_DFL);
60c3d7b0 557#endif
0d62e5e8 558
a9fa9f7d
DJ
559 setpgid (0, 0);
560
2b876972
DJ
561 execv (program, allargs);
562 if (errno == ENOENT)
563 execvp (program, allargs);
da6d8c04
DJ
564
565 fprintf (stderr, "Cannot exec %s: %s.\n", program,
d07c63e7 566 strerror (errno));
da6d8c04
DJ
567 fflush (stderr);
568 _exit (0177);
569 }
570
95954743
PA
571 linux_add_process (pid, 0);
572
573 ptid = ptid_build (pid, pid, 0);
574 new_lwp = add_lwp (ptid);
575 add_thread (ptid, new_lwp);
a6dbe5df 576 new_lwp->must_set_ptrace_flags = 1;
611cb4a5 577
a9fa9f7d 578 return pid;
da6d8c04
DJ
579}
580
581/* Attach to an inferior process. */
582
95954743
PA
583static void
584linux_attach_lwp_1 (unsigned long lwpid, int initial)
da6d8c04 585{
95954743 586 ptid_t ptid;
54a0b537 587 struct lwp_info *new_lwp;
611cb4a5 588
95954743 589 if (ptrace (PTRACE_ATTACH, lwpid, 0, 0) != 0)
da6d8c04 590 {
95954743 591 if (!initial)
2d717e4f
DJ
592 {
593 /* If we fail to attach to an LWP, just warn. */
95954743 594 fprintf (stderr, "Cannot attach to lwp %ld: %s (%d)\n", lwpid,
2d717e4f
DJ
595 strerror (errno), errno);
596 fflush (stderr);
597 return;
598 }
599 else
600 /* If we fail to attach to a process, report an error. */
95954743 601 error ("Cannot attach to lwp %ld: %s (%d)\n", lwpid,
43d5792c 602 strerror (errno), errno);
da6d8c04
DJ
603 }
604
95954743
PA
605 if (initial)
606 /* NOTE/FIXME: This lwp might have not been the tgid. */
607 ptid = ptid_build (lwpid, lwpid, 0);
608 else
609 {
610 /* Note that extracting the pid from the current inferior is
611 safe, since we're always called in the context of the same
612 process as this new thread. */
613 int pid = pid_of (get_thread_lwp (current_inferior));
614 ptid = ptid_build (pid, lwpid, 0);
615 }
24a09b5f 616
95954743
PA
617 new_lwp = (struct lwp_info *) add_lwp (ptid);
618 add_thread (ptid, new_lwp);
0d62e5e8 619
a6dbe5df
PA
620 /* We need to wait for SIGSTOP before being able to make the next
621 ptrace call on this LWP. */
622 new_lwp->must_set_ptrace_flags = 1;
623
0d62e5e8 624 /* The next time we wait for this LWP we'll see a SIGSTOP as PTRACE_ATTACH
0e21c1ec
DE
625 brings it to a halt.
626
627 There are several cases to consider here:
628
629 1) gdbserver has already attached to the process and is being notified
1b3f6016 630 of a new thread that is being created.
d50171e4
PA
631 In this case we should ignore that SIGSTOP and resume the
632 process. This is handled below by setting stop_expected = 1,
8336d594 633 and the fact that add_thread sets last_resume_kind ==
d50171e4 634 resume_continue.
0e21c1ec
DE
635
636 2) This is the first thread (the process thread), and we're attaching
1b3f6016
PA
637 to it via attach_inferior.
638 In this case we want the process thread to stop.
d50171e4
PA
639 This is handled by having linux_attach set last_resume_kind ==
640 resume_stop after we return.
1b3f6016
PA
641 ??? If the process already has several threads we leave the other
642 threads running.
0e21c1ec
DE
643
644 3) GDB is connecting to gdbserver and is requesting an enumeration of all
1b3f6016
PA
645 existing threads.
646 In this case we want the thread to stop.
647 FIXME: This case is currently not properly handled.
648 We should wait for the SIGSTOP but don't. Things work apparently
649 because enough time passes between when we ptrace (ATTACH) and when
650 gdb makes the next ptrace call on the thread.
0d62e5e8
DJ
651
652 On the other hand, if we are currently trying to stop all threads, we
653 should treat the new thread as if we had sent it a SIGSTOP. This works
54a0b537 654 because we are guaranteed that the add_lwp call above added us to the
0e21c1ec
DE
655 end of the list, and so the new thread has not yet reached
656 wait_for_sigstop (but will). */
d50171e4 657 new_lwp->stop_expected = 1;
0d62e5e8
DJ
658}
659
95954743
PA
660void
661linux_attach_lwp (unsigned long lwpid)
662{
663 linux_attach_lwp_1 (lwpid, 0);
664}
665
0d62e5e8 666int
a1928bad 667linux_attach (unsigned long pid)
0d62e5e8 668{
95954743 669 linux_attach_lwp_1 (pid, 1);
95954743 670 linux_add_process (pid, 1);
0d62e5e8 671
bd99dc85
PA
672 if (!non_stop)
673 {
8336d594
PA
674 struct thread_info *thread;
675
676 /* Don't ignore the initial SIGSTOP if we just attached to this
677 process. It will be collected by wait shortly. */
678 thread = find_thread_ptid (ptid_build (pid, pid, 0));
679 thread->last_resume_kind = resume_stop;
bd99dc85 680 }
0d62e5e8 681
95954743
PA
682 return 0;
683}
684
685struct counter
686{
687 int pid;
688 int count;
689};
690
691static int
692second_thread_of_pid_p (struct inferior_list_entry *entry, void *args)
693{
694 struct counter *counter = args;
695
696 if (ptid_get_pid (entry->id) == counter->pid)
697 {
698 if (++counter->count > 1)
699 return 1;
700 }
d61ddec4 701
da6d8c04
DJ
702 return 0;
703}
704
95954743
PA
705static int
706last_thread_of_process_p (struct thread_info *thread)
707{
708 ptid_t ptid = ((struct inferior_list_entry *)thread)->id;
709 int pid = ptid_get_pid (ptid);
710 struct counter counter = { pid , 0 };
da6d8c04 711
95954743
PA
712 return (find_inferior (&all_threads,
713 second_thread_of_pid_p, &counter) == NULL);
714}
715
716/* Kill the inferior lwp. */
717
718static int
719linux_kill_one_lwp (struct inferior_list_entry *entry, void *args)
da6d8c04 720{
0d62e5e8 721 struct thread_info *thread = (struct thread_info *) entry;
54a0b537 722 struct lwp_info *lwp = get_thread_lwp (thread);
0d62e5e8 723 int wstat;
95954743
PA
724 int pid = * (int *) args;
725
726 if (ptid_get_pid (entry->id) != pid)
727 return 0;
0d62e5e8 728
fd500816
DJ
729 /* We avoid killing the first thread here, because of a Linux kernel (at
730 least 2.6.0-test7 through 2.6.8-rc4) bug; if we kill the parent before
731 the children get a chance to be reaped, it will remain a zombie
732 forever. */
95954743 733
12b42a12 734 if (lwpid_of (lwp) == pid)
95954743
PA
735 {
736 if (debug_threads)
737 fprintf (stderr, "lkop: is last of process %s\n",
738 target_pid_to_str (entry->id));
739 return 0;
740 }
fd500816 741
0d62e5e8
DJ
742 do
743 {
bd99dc85 744 ptrace (PTRACE_KILL, lwpid_of (lwp), 0, 0);
0d62e5e8
DJ
745
746 /* Make sure it died. The loop is most likely unnecessary. */
95954743 747 pid = linux_wait_for_event (lwp->head.id, &wstat, __WALL);
bd99dc85 748 } while (pid > 0 && WIFSTOPPED (wstat));
95954743
PA
749
750 return 0;
da6d8c04
DJ
751}
752
95954743
PA
753static int
754linux_kill (int pid)
0d62e5e8 755{
95954743 756 struct process_info *process;
54a0b537 757 struct lwp_info *lwp;
95954743 758 struct thread_info *thread;
fd500816 759 int wstat;
95954743 760 int lwpid;
fd500816 761
95954743
PA
762 process = find_process_pid (pid);
763 if (process == NULL)
764 return -1;
9d606399 765
f9e39928
PA
766 /* If we're killing a running inferior, make sure it is stopped
767 first, as PTRACE_KILL will not work otherwise. */
768 stop_all_lwps ();
769
95954743 770 find_inferior (&all_threads, linux_kill_one_lwp, &pid);
fd500816 771
54a0b537 772 /* See the comment in linux_kill_one_lwp. We did not kill the first
fd500816 773 thread in the list, so do so now. */
95954743
PA
774 lwp = find_lwp_pid (pid_to_ptid (pid));
775 thread = get_lwp_thread (lwp);
bd99dc85
PA
776
777 if (debug_threads)
95954743
PA
778 fprintf (stderr, "lk_1: killing lwp %ld, for pid: %d\n",
779 lwpid_of (lwp), pid);
bd99dc85 780
fd500816
DJ
781 do
782 {
bd99dc85 783 ptrace (PTRACE_KILL, lwpid_of (lwp), 0, 0);
fd500816
DJ
784
785 /* Make sure it died. The loop is most likely unnecessary. */
95954743
PA
786 lwpid = linux_wait_for_event (lwp->head.id, &wstat, __WALL);
787 } while (lwpid > 0 && WIFSTOPPED (wstat));
2d717e4f 788
8336d594 789 the_target->mourn (process);
f9e39928
PA
790
791 /* Since we presently can only stop all lwps of all processes, we
792 need to unstop lwps of other processes. */
793 unstop_all_lwps (NULL);
95954743 794 return 0;
0d62e5e8
DJ
795}
796
95954743
PA
797static int
798linux_detach_one_lwp (struct inferior_list_entry *entry, void *args)
6ad8ae5c
DJ
799{
800 struct thread_info *thread = (struct thread_info *) entry;
54a0b537 801 struct lwp_info *lwp = get_thread_lwp (thread);
95954743
PA
802 int pid = * (int *) args;
803
804 if (ptid_get_pid (entry->id) != pid)
805 return 0;
6ad8ae5c 806
ae13219e
DJ
807 /* If this process is stopped but is expecting a SIGSTOP, then make
808 sure we take care of that now. This isn't absolutely guaranteed
809 to collect the SIGSTOP, but is fairly likely to. */
54a0b537 810 if (lwp->stop_expected)
ae13219e 811 {
bd99dc85 812 int wstat;
ae13219e 813 /* Clear stop_expected, so that the SIGSTOP will be reported. */
54a0b537 814 lwp->stop_expected = 0;
f9e39928 815 linux_resume_one_lwp (lwp, 0, 0, NULL);
95954743 816 linux_wait_for_event (lwp->head.id, &wstat, __WALL);
ae13219e
DJ
817 }
818
819 /* Flush any pending changes to the process's registers. */
820 regcache_invalidate_one ((struct inferior_list_entry *)
54a0b537 821 get_lwp_thread (lwp));
ae13219e
DJ
822
823 /* Finally, let it resume. */
bd99dc85
PA
824 ptrace (PTRACE_DETACH, lwpid_of (lwp), 0, 0);
825
826 delete_lwp (lwp);
95954743 827 return 0;
6ad8ae5c
DJ
828}
829
95954743
PA
830static int
831linux_detach (int pid)
832{
833 struct process_info *process;
834
835 process = find_process_pid (pid);
836 if (process == NULL)
837 return -1;
838
f9e39928
PA
839 /* Stop all threads before detaching. First, ptrace requires that
840 the thread is stopped to sucessfully detach. Second, thread_db
841 may need to uninstall thread event breakpoints from memory, which
842 only works with a stopped process anyway. */
843 stop_all_lwps ();
844
ca5c370d 845#ifdef USE_THREAD_DB
8336d594 846 thread_db_detach (process);
ca5c370d
PA
847#endif
848
95954743 849 find_inferior (&all_threads, linux_detach_one_lwp, &pid);
8336d594
PA
850
851 the_target->mourn (process);
f9e39928
PA
852
853 /* Since we presently can only stop all lwps of all processes, we
854 need to unstop lwps of other processes. */
855 unstop_all_lwps (NULL);
856 return 0;
857}
858
859/* Remove all LWPs that belong to process PROC from the lwp list. */
860
861static int
862delete_lwp_callback (struct inferior_list_entry *entry, void *proc)
863{
864 struct lwp_info *lwp = (struct lwp_info *) entry;
865 struct process_info *process = proc;
866
867 if (pid_of (lwp) == pid_of (process))
868 delete_lwp (lwp);
869
dd6953e1 870 return 0;
6ad8ae5c
DJ
871}
872
8336d594
PA
873static void
874linux_mourn (struct process_info *process)
875{
876 struct process_info_private *priv;
877
878#ifdef USE_THREAD_DB
879 thread_db_mourn (process);
880#endif
881
f9e39928
PA
882 find_inferior (&all_lwps, delete_lwp_callback, process);
883
8336d594
PA
884 /* Freeing all private data. */
885 priv = process->private;
886 free (priv->arch_private);
887 free (priv);
888 process->private = NULL;
505106cd
PA
889
890 remove_process (process);
8336d594
PA
891}
892
444d6139 893static void
95954743 894linux_join (int pid)
444d6139 895{
444d6139 896 int status, ret;
95954743 897 struct process_info *process;
bd99dc85 898
95954743
PA
899 process = find_process_pid (pid);
900 if (process == NULL)
901 return;
444d6139
PA
902
903 do {
95954743 904 ret = my_waitpid (pid, &status, 0);
444d6139
PA
905 if (WIFEXITED (status) || WIFSIGNALED (status))
906 break;
907 } while (ret != -1 || errno != ECHILD);
908}
909
6ad8ae5c 910/* Return nonzero if the given thread is still alive. */
0d62e5e8 911static int
95954743 912linux_thread_alive (ptid_t ptid)
0d62e5e8 913{
95954743
PA
914 struct lwp_info *lwp = find_lwp_pid (ptid);
915
916 /* We assume we always know if a thread exits. If a whole process
917 exited but we still haven't been able to report it to GDB, we'll
918 hold on to the last lwp of the dead process. */
919 if (lwp != NULL)
920 return !lwp->dead;
0d62e5e8
DJ
921 else
922 return 0;
923}
924
6bf5e0ba 925/* Return 1 if this lwp has an interesting status pending. */
611cb4a5 926static int
d50171e4 927status_pending_p_callback (struct inferior_list_entry *entry, void *arg)
0d62e5e8 928{
54a0b537 929 struct lwp_info *lwp = (struct lwp_info *) entry;
95954743 930 ptid_t ptid = * (ptid_t *) arg;
d50171e4 931 struct thread_info *thread = get_lwp_thread (lwp);
95954743
PA
932
933 /* Check if we're only interested in events from a specific process
934 or its lwps. */
935 if (!ptid_equal (minus_one_ptid, ptid)
936 && ptid_get_pid (ptid) != ptid_get_pid (lwp->head.id))
937 return 0;
0d62e5e8 938
d50171e4
PA
939 thread = get_lwp_thread (lwp);
940
941 /* If we got a `vCont;t', but we haven't reported a stop yet, do
942 report any status pending the LWP may have. */
8336d594 943 if (thread->last_resume_kind == resume_stop
d50171e4
PA
944 && thread->last_status.kind == TARGET_WAITKIND_STOPPED)
945 return 0;
0d62e5e8 946
d50171e4 947 return lwp->status_pending_p;
0d62e5e8
DJ
948}
949
95954743
PA
950static int
951same_lwp (struct inferior_list_entry *entry, void *data)
952{
953 ptid_t ptid = *(ptid_t *) data;
954 int lwp;
955
956 if (ptid_get_lwp (ptid) != 0)
957 lwp = ptid_get_lwp (ptid);
958 else
959 lwp = ptid_get_pid (ptid);
960
961 if (ptid_get_lwp (entry->id) == lwp)
962 return 1;
963
964 return 0;
965}
966
967struct lwp_info *
968find_lwp_pid (ptid_t ptid)
969{
970 return (struct lwp_info*) find_inferior (&all_lwps, same_lwp, &ptid);
971}
972
bd99dc85 973static struct lwp_info *
95954743 974linux_wait_for_lwp (ptid_t ptid, int *wstatp, int options)
611cb4a5 975{
0d62e5e8 976 int ret;
95954743 977 int to_wait_for = -1;
bd99dc85 978 struct lwp_info *child = NULL;
0d62e5e8 979
bd99dc85 980 if (debug_threads)
95954743
PA
981 fprintf (stderr, "linux_wait_for_lwp: %s\n", target_pid_to_str (ptid));
982
983 if (ptid_equal (ptid, minus_one_ptid))
984 to_wait_for = -1; /* any child */
985 else
986 to_wait_for = ptid_get_lwp (ptid); /* this lwp only */
0d62e5e8 987
bd99dc85 988 options |= __WALL;
0d62e5e8 989
bd99dc85 990retry:
0d62e5e8 991
bd99dc85
PA
992 ret = my_waitpid (to_wait_for, wstatp, options);
993 if (ret == 0 || (ret == -1 && errno == ECHILD && (options & WNOHANG)))
994 return NULL;
995 else if (ret == -1)
996 perror_with_name ("waitpid");
0d62e5e8
DJ
997
998 if (debug_threads
999 && (!WIFSTOPPED (*wstatp)
1000 || (WSTOPSIG (*wstatp) != 32
1001 && WSTOPSIG (*wstatp) != 33)))
1002 fprintf (stderr, "Got an event from %d (%x)\n", ret, *wstatp);
1003
95954743 1004 child = find_lwp_pid (pid_to_ptid (ret));
0d62e5e8 1005
24a09b5f
DJ
1006 /* If we didn't find a process, one of two things presumably happened:
1007 - A process we started and then detached from has exited. Ignore it.
1008 - A process we are controlling has forked and the new child's stop
1009 was reported to us by the kernel. Save its PID. */
bd99dc85 1010 if (child == NULL && WIFSTOPPED (*wstatp))
24a09b5f
DJ
1011 {
1012 add_pid_to_list (&stopped_pids, ret);
1013 goto retry;
1014 }
bd99dc85 1015 else if (child == NULL)
24a09b5f
DJ
1016 goto retry;
1017
bd99dc85 1018 child->stopped = 1;
0d62e5e8 1019
bd99dc85 1020 child->last_status = *wstatp;
32ca6d61 1021
d61ddec4
UW
1022 /* Architecture-specific setup after inferior is running.
1023 This needs to happen after we have attached to the inferior
1024 and it is stopped for the first time, but before we access
1025 any inferior registers. */
1026 if (new_inferior)
1027 {
1028 the_low_target.arch_setup ();
52fa2412
UW
1029#ifdef HAVE_LINUX_REGSETS
1030 memset (disabled_regsets, 0, num_regsets);
1031#endif
d61ddec4
UW
1032 new_inferior = 0;
1033 }
1034
c3adc08c
PA
1035 /* Fetch the possibly triggered data watchpoint info and store it in
1036 CHILD.
1037
1038 On some archs, like x86, that use debug registers to set
1039 watchpoints, it's possible that the way to know which watched
1040 address trapped, is to check the register that is used to select
1041 which address to watch. Problem is, between setting the
1042 watchpoint and reading back which data address trapped, the user
1043 may change the set of watchpoints, and, as a consequence, GDB
1044 changes the debug registers in the inferior. To avoid reading
1045 back a stale stopped-data-address when that happens, we cache in
1046 LP the fact that a watchpoint trapped, and the corresponding data
1047 address, as soon as we see CHILD stop with a SIGTRAP. If GDB
1048 changes the debug registers meanwhile, we have the cached data we
1049 can rely on. */
1050
1051 if (WIFSTOPPED (*wstatp) && WSTOPSIG (*wstatp) == SIGTRAP)
1052 {
1053 if (the_low_target.stopped_by_watchpoint == NULL)
1054 {
1055 child->stopped_by_watchpoint = 0;
1056 }
1057 else
1058 {
1059 struct thread_info *saved_inferior;
1060
1061 saved_inferior = current_inferior;
1062 current_inferior = get_lwp_thread (child);
1063
1064 child->stopped_by_watchpoint
1065 = the_low_target.stopped_by_watchpoint ();
1066
1067 if (child->stopped_by_watchpoint)
1068 {
1069 if (the_low_target.stopped_data_address != NULL)
1070 child->stopped_data_address
1071 = the_low_target.stopped_data_address ();
1072 else
1073 child->stopped_data_address = 0;
1074 }
1075
1076 current_inferior = saved_inferior;
1077 }
1078 }
1079
d50171e4
PA
1080 /* Store the STOP_PC, with adjustment applied. This depends on the
1081 architecture being defined already (so that CHILD has a valid
1082 regcache), and on LAST_STATUS being set (to check for SIGTRAP or
1083 not). */
1084 if (WIFSTOPPED (*wstatp))
1085 child->stop_pc = get_stop_pc (child);
1086
0d62e5e8 1087 if (debug_threads
47c0c975
DE
1088 && WIFSTOPPED (*wstatp)
1089 && the_low_target.get_pc != NULL)
0d62e5e8 1090 {
896c7fbb 1091 struct thread_info *saved_inferior = current_inferior;
bce522a2 1092 struct regcache *regcache;
47c0c975
DE
1093 CORE_ADDR pc;
1094
d50171e4 1095 current_inferior = get_lwp_thread (child);
bce522a2 1096 regcache = get_thread_regcache (current_inferior, 1);
442ea881 1097 pc = (*the_low_target.get_pc) (regcache);
47c0c975 1098 fprintf (stderr, "linux_wait_for_lwp: pc is 0x%lx\n", (long) pc);
896c7fbb 1099 current_inferior = saved_inferior;
0d62e5e8 1100 }
bd99dc85
PA
1101
1102 return child;
0d62e5e8 1103}
611cb4a5 1104
219f2f23
PA
1105/* This function should only be called if the LWP got a SIGTRAP.
1106
1107 Handle any tracepoint steps or hits. Return true if a tracepoint
1108 event was handled, 0 otherwise. */
1109
1110static int
1111handle_tracepoints (struct lwp_info *lwp)
1112{
1113 struct thread_info *tinfo = get_lwp_thread (lwp);
1114 int tpoint_related_event = 0;
1115
1116 /* And we need to be sure that any all-threads-stopping doesn't try
1117 to move threads out of the jump pads, as it could deadlock the
1118 inferior (LWP could be in the jump pad, maybe even holding the
1119 lock.) */
1120
1121 /* Do any necessary step collect actions. */
1122 tpoint_related_event |= tracepoint_finished_step (tinfo, lwp->stop_pc);
1123
1124 /* See if we just hit a tracepoint and do its main collect
1125 actions. */
1126 tpoint_related_event |= tracepoint_was_hit (tinfo, lwp->stop_pc);
1127
1128 if (tpoint_related_event)
1129 {
1130 if (debug_threads)
1131 fprintf (stderr, "got a tracepoint event\n");
1132 return 1;
1133 }
1134
1135 return 0;
1136}
1137
d50171e4
PA
1138/* Arrange for a breakpoint to be hit again later. We don't keep the
1139 SIGTRAP status and don't forward the SIGTRAP signal to the LWP. We
1140 will handle the current event, eventually we will resume this LWP,
1141 and this breakpoint will trap again. */
1142
1143static int
1144cancel_breakpoint (struct lwp_info *lwp)
1145{
1146 struct thread_info *saved_inferior;
d50171e4
PA
1147
1148 /* There's nothing to do if we don't support breakpoints. */
1149 if (!supports_breakpoints ())
1150 return 0;
1151
d50171e4
PA
1152 /* breakpoint_at reads from current inferior. */
1153 saved_inferior = current_inferior;
1154 current_inferior = get_lwp_thread (lwp);
1155
1156 if ((*the_low_target.breakpoint_at) (lwp->stop_pc))
1157 {
1158 if (debug_threads)
1159 fprintf (stderr,
1160 "CB: Push back breakpoint for %s\n",
fc7238bb 1161 target_pid_to_str (ptid_of (lwp)));
d50171e4
PA
1162
1163 /* Back up the PC if necessary. */
1164 if (the_low_target.decr_pc_after_break)
1165 {
1166 struct regcache *regcache
fc7238bb 1167 = get_thread_regcache (current_inferior, 1);
d50171e4
PA
1168 (*the_low_target.set_pc) (regcache, lwp->stop_pc);
1169 }
1170
1171 current_inferior = saved_inferior;
1172 return 1;
1173 }
1174 else
1175 {
1176 if (debug_threads)
1177 fprintf (stderr,
1178 "CB: No breakpoint found at %s for [%s]\n",
1179 paddress (lwp->stop_pc),
fc7238bb 1180 target_pid_to_str (ptid_of (lwp)));
d50171e4
PA
1181 }
1182
1183 current_inferior = saved_inferior;
1184 return 0;
1185}
1186
1187/* When the event-loop is doing a step-over, this points at the thread
1188 being stepped. */
1189ptid_t step_over_bkpt;
1190
bd99dc85
PA
1191/* Wait for an event from child PID. If PID is -1, wait for any
1192 child. Store the stop status through the status pointer WSTAT.
1193 OPTIONS is passed to the waitpid call. Return 0 if no child stop
1194 event was found and OPTIONS contains WNOHANG. Return the PID of
1195 the stopped child otherwise. */
1196
0d62e5e8 1197static int
95954743 1198linux_wait_for_event_1 (ptid_t ptid, int *wstat, int options)
0d62e5e8 1199{
d50171e4
PA
1200 struct lwp_info *event_child, *requested_child;
1201
d50171e4
PA
1202 event_child = NULL;
1203 requested_child = NULL;
0d62e5e8 1204
95954743 1205 /* Check for a lwp with a pending status. */
bd99dc85 1206
95954743
PA
1207 if (ptid_equal (ptid, minus_one_ptid)
1208 || ptid_equal (pid_to_ptid (ptid_get_pid (ptid)), ptid))
0d62e5e8 1209 {
54a0b537 1210 event_child = (struct lwp_info *)
d50171e4 1211 find_inferior (&all_lwps, status_pending_p_callback, &ptid);
0d62e5e8 1212 if (debug_threads && event_child)
bd99dc85 1213 fprintf (stderr, "Got a pending child %ld\n", lwpid_of (event_child));
0d62e5e8
DJ
1214 }
1215 else
1216 {
95954743 1217 requested_child = find_lwp_pid (ptid);
d50171e4
PA
1218
1219 if (requested_child->status_pending_p)
bd99dc85 1220 event_child = requested_child;
0d62e5e8 1221 }
611cb4a5 1222
0d62e5e8
DJ
1223 if (event_child != NULL)
1224 {
bd99dc85
PA
1225 if (debug_threads)
1226 fprintf (stderr, "Got an event from pending child %ld (%04x)\n",
1227 lwpid_of (event_child), event_child->status_pending);
1228 *wstat = event_child->status_pending;
1229 event_child->status_pending_p = 0;
1230 event_child->status_pending = 0;
1231 current_inferior = get_lwp_thread (event_child);
1232 return lwpid_of (event_child);
0d62e5e8
DJ
1233 }
1234
1235 /* We only enter this loop if no process has a pending wait status. Thus
1236 any action taken in response to a wait status inside this loop is
1237 responding as soon as we detect the status, not after any pending
1238 events. */
1239 while (1)
1240 {
6bf5e0ba 1241 event_child = linux_wait_for_lwp (ptid, wstat, options);
0d62e5e8 1242
bd99dc85 1243 if ((options & WNOHANG) && event_child == NULL)
d50171e4
PA
1244 {
1245 if (debug_threads)
1246 fprintf (stderr, "WNOHANG set, no event found\n");
1247 return 0;
1248 }
0d62e5e8
DJ
1249
1250 if (event_child == NULL)
1251 error ("event from unknown child");
611cb4a5 1252
bd99dc85 1253 current_inferior = get_lwp_thread (event_child);
0d62e5e8 1254
89be2091 1255 /* Check for thread exit. */
bd99dc85 1256 if (! WIFSTOPPED (*wstat))
0d62e5e8 1257 {
89be2091 1258 if (debug_threads)
95954743 1259 fprintf (stderr, "LWP %ld exiting\n", lwpid_of (event_child));
89be2091
DJ
1260
1261 /* If the last thread is exiting, just return. */
95954743 1262 if (last_thread_of_process_p (current_inferior))
bd99dc85
PA
1263 {
1264 if (debug_threads)
95954743
PA
1265 fprintf (stderr, "LWP %ld is last lwp of process\n",
1266 lwpid_of (event_child));
bd99dc85
PA
1267 return lwpid_of (event_child);
1268 }
89be2091 1269
bd99dc85
PA
1270 if (!non_stop)
1271 {
1272 current_inferior = (struct thread_info *) all_threads.head;
1273 if (debug_threads)
1274 fprintf (stderr, "Current inferior is now %ld\n",
1275 lwpid_of (get_thread_lwp (current_inferior)));
1276 }
1277 else
1278 {
1279 current_inferior = NULL;
1280 if (debug_threads)
1281 fprintf (stderr, "Current inferior is now <NULL>\n");
1282 }
89be2091
DJ
1283
1284 /* If we were waiting for this particular child to do something...
1285 well, it did something. */
bd99dc85 1286 if (requested_child != NULL)
d50171e4
PA
1287 {
1288 int lwpid = lwpid_of (event_child);
1289
1290 /* Cancel the step-over operation --- the thread that
1291 started it is gone. */
1292 if (finish_step_over (event_child))
1293 unstop_all_lwps (event_child);
1294 delete_lwp (event_child);
1295 return lwpid;
1296 }
1297
1298 delete_lwp (event_child);
89be2091
DJ
1299
1300 /* Wait for a more interesting event. */
1301 continue;
1302 }
1303
a6dbe5df
PA
1304 if (event_child->must_set_ptrace_flags)
1305 {
1e7fc18c 1306 linux_enable_event_reporting (lwpid_of (event_child));
a6dbe5df
PA
1307 event_child->must_set_ptrace_flags = 0;
1308 }
1309
bd99dc85
PA
1310 if (WIFSTOPPED (*wstat) && WSTOPSIG (*wstat) == SIGTRAP
1311 && *wstat >> 16 != 0)
24a09b5f 1312 {
bd99dc85 1313 handle_extended_wait (event_child, *wstat);
24a09b5f
DJ
1314 continue;
1315 }
1316
89be2091
DJ
1317 /* If GDB is not interested in this signal, don't stop other
1318 threads, and don't report it to GDB. Just resume the
1319 inferior right away. We do this for threading-related
69f223ed
DJ
1320 signals as well as any that GDB specifically requested we
1321 ignore. But never ignore SIGSTOP if we sent it ourselves,
1322 and do not ignore signals when stepping - they may require
1323 special handling to skip the signal handler. */
89be2091
DJ
1324 /* FIXME drow/2002-06-09: Get signal numbers from the inferior's
1325 thread library? */
bd99dc85 1326 if (WIFSTOPPED (*wstat)
69f223ed 1327 && !event_child->stepping
24a09b5f 1328 && (
60c3d7b0 1329#if defined (USE_THREAD_DB) && defined (__SIGRTMIN)
cdbfd419 1330 (current_process ()->private->thread_db != NULL
bd99dc85
PA
1331 && (WSTOPSIG (*wstat) == __SIGRTMIN
1332 || WSTOPSIG (*wstat) == __SIGRTMIN + 1))
24a09b5f
DJ
1333 ||
1334#endif
bd99dc85 1335 (pass_signals[target_signal_from_host (WSTOPSIG (*wstat))]
d50171e4
PA
1336 && !(WSTOPSIG (*wstat) == SIGSTOP
1337 && event_child->stop_expected))))
89be2091
DJ
1338 {
1339 siginfo_t info, *info_p;
1340
1341 if (debug_threads)
24a09b5f 1342 fprintf (stderr, "Ignored signal %d for LWP %ld.\n",
bd99dc85 1343 WSTOPSIG (*wstat), lwpid_of (event_child));
89be2091 1344
bd99dc85 1345 if (ptrace (PTRACE_GETSIGINFO, lwpid_of (event_child), 0, &info) == 0)
89be2091
DJ
1346 info_p = &info;
1347 else
1348 info_p = NULL;
d50171e4 1349 linux_resume_one_lwp (event_child, event_child->stepping,
bd99dc85 1350 WSTOPSIG (*wstat), info_p);
89be2091 1351 continue;
0d62e5e8 1352 }
611cb4a5 1353
d50171e4
PA
1354 if (WIFSTOPPED (*wstat)
1355 && WSTOPSIG (*wstat) == SIGSTOP
1356 && event_child->stop_expected)
1357 {
1358 int should_stop;
1359
1360 if (debug_threads)
1361 fprintf (stderr, "Expected stop.\n");
1362 event_child->stop_expected = 0;
1363
8336d594 1364 should_stop = (current_inferior->last_resume_kind == resume_stop
d50171e4
PA
1365 || stopping_threads);
1366
1367 if (!should_stop)
1368 {
1369 linux_resume_one_lwp (event_child,
1370 event_child->stepping, 0, NULL);
1371 continue;
1372 }
1373 }
1374
bd99dc85 1375 return lwpid_of (event_child);
611cb4a5 1376 }
0d62e5e8 1377
611cb4a5
DJ
1378 /* NOTREACHED */
1379 return 0;
1380}
1381
95954743
PA
1382static int
1383linux_wait_for_event (ptid_t ptid, int *wstat, int options)
1384{
1385 ptid_t wait_ptid;
1386
1387 if (ptid_is_pid (ptid))
1388 {
1389 /* A request to wait for a specific tgid. This is not possible
1390 with waitpid, so instead, we wait for any child, and leave
1391 children we're not interested in right now with a pending
1392 status to report later. */
1393 wait_ptid = minus_one_ptid;
1394 }
1395 else
1396 wait_ptid = ptid;
1397
1398 while (1)
1399 {
1400 int event_pid;
1401
1402 event_pid = linux_wait_for_event_1 (wait_ptid, wstat, options);
1403
1404 if (event_pid > 0
1405 && ptid_is_pid (ptid) && ptid_get_pid (ptid) != event_pid)
1406 {
1407 struct lwp_info *event_child = find_lwp_pid (pid_to_ptid (event_pid));
1408
1409 if (! WIFSTOPPED (*wstat))
1410 mark_lwp_dead (event_child, *wstat);
1411 else
1412 {
1413 event_child->status_pending_p = 1;
1414 event_child->status_pending = *wstat;
1415 }
1416 }
1417 else
1418 return event_pid;
1419 }
1420}
1421
6bf5e0ba
PA
1422
1423/* Count the LWP's that have had events. */
1424
1425static int
1426count_events_callback (struct inferior_list_entry *entry, void *data)
1427{
1428 struct lwp_info *lp = (struct lwp_info *) entry;
8336d594 1429 struct thread_info *thread = get_lwp_thread (lp);
6bf5e0ba
PA
1430 int *count = data;
1431
1432 gdb_assert (count != NULL);
1433
1434 /* Count only resumed LWPs that have a SIGTRAP event pending that
1435 should be reported to GDB. */
8336d594
PA
1436 if (thread->last_status.kind == TARGET_WAITKIND_IGNORE
1437 && thread->last_resume_kind != resume_stop
6bf5e0ba
PA
1438 && lp->status_pending_p
1439 && WIFSTOPPED (lp->status_pending)
1440 && WSTOPSIG (lp->status_pending) == SIGTRAP
1441 && !breakpoint_inserted_here (lp->stop_pc))
1442 (*count)++;
1443
1444 return 0;
1445}
1446
1447/* Select the LWP (if any) that is currently being single-stepped. */
1448
1449static int
1450select_singlestep_lwp_callback (struct inferior_list_entry *entry, void *data)
1451{
1452 struct lwp_info *lp = (struct lwp_info *) entry;
8336d594 1453 struct thread_info *thread = get_lwp_thread (lp);
6bf5e0ba 1454
8336d594
PA
1455 if (thread->last_status.kind == TARGET_WAITKIND_IGNORE
1456 && thread->last_resume_kind == resume_step
6bf5e0ba
PA
1457 && lp->status_pending_p)
1458 return 1;
1459 else
1460 return 0;
1461}
1462
1463/* Select the Nth LWP that has had a SIGTRAP event that should be
1464 reported to GDB. */
1465
1466static int
1467select_event_lwp_callback (struct inferior_list_entry *entry, void *data)
1468{
1469 struct lwp_info *lp = (struct lwp_info *) entry;
8336d594 1470 struct thread_info *thread = get_lwp_thread (lp);
6bf5e0ba
PA
1471 int *selector = data;
1472
1473 gdb_assert (selector != NULL);
1474
1475 /* Select only resumed LWPs that have a SIGTRAP event pending. */
8336d594
PA
1476 if (thread->last_resume_kind != resume_stop
1477 && thread->last_status.kind == TARGET_WAITKIND_IGNORE
6bf5e0ba
PA
1478 && lp->status_pending_p
1479 && WIFSTOPPED (lp->status_pending)
1480 && WSTOPSIG (lp->status_pending) == SIGTRAP
1481 && !breakpoint_inserted_here (lp->stop_pc))
1482 if ((*selector)-- == 0)
1483 return 1;
1484
1485 return 0;
1486}
1487
1488static int
1489cancel_breakpoints_callback (struct inferior_list_entry *entry, void *data)
1490{
1491 struct lwp_info *lp = (struct lwp_info *) entry;
8336d594 1492 struct thread_info *thread = get_lwp_thread (lp);
6bf5e0ba
PA
1493 struct lwp_info *event_lp = data;
1494
1495 /* Leave the LWP that has been elected to receive a SIGTRAP alone. */
1496 if (lp == event_lp)
1497 return 0;
1498
1499 /* If a LWP other than the LWP that we're reporting an event for has
1500 hit a GDB breakpoint (as opposed to some random trap signal),
1501 then just arrange for it to hit it again later. We don't keep
1502 the SIGTRAP status and don't forward the SIGTRAP signal to the
1503 LWP. We will handle the current event, eventually we will resume
1504 all LWPs, and this one will get its breakpoint trap again.
1505
1506 If we do not do this, then we run the risk that the user will
1507 delete or disable the breakpoint, but the LWP will have already
1508 tripped on it. */
1509
8336d594
PA
1510 if (thread->last_resume_kind != resume_stop
1511 && thread->last_status.kind == TARGET_WAITKIND_IGNORE
6bf5e0ba
PA
1512 && lp->status_pending_p
1513 && WIFSTOPPED (lp->status_pending)
1514 && WSTOPSIG (lp->status_pending) == SIGTRAP
bdabb078
PA
1515 && !lp->stepping
1516 && !lp->stopped_by_watchpoint
6bf5e0ba
PA
1517 && cancel_breakpoint (lp))
1518 /* Throw away the SIGTRAP. */
1519 lp->status_pending_p = 0;
1520
1521 return 0;
1522}
1523
1524/* Select one LWP out of those that have events pending. */
1525
1526static void
1527select_event_lwp (struct lwp_info **orig_lp)
1528{
1529 int num_events = 0;
1530 int random_selector;
1531 struct lwp_info *event_lp;
1532
1533 /* Give preference to any LWP that is being single-stepped. */
1534 event_lp
1535 = (struct lwp_info *) find_inferior (&all_lwps,
1536 select_singlestep_lwp_callback, NULL);
1537 if (event_lp != NULL)
1538 {
1539 if (debug_threads)
1540 fprintf (stderr,
1541 "SEL: Select single-step %s\n",
1542 target_pid_to_str (ptid_of (event_lp)));
1543 }
1544 else
1545 {
1546 /* No single-stepping LWP. Select one at random, out of those
1547 which have had SIGTRAP events. */
1548
1549 /* First see how many SIGTRAP events we have. */
1550 find_inferior (&all_lwps, count_events_callback, &num_events);
1551
1552 /* Now randomly pick a LWP out of those that have had a SIGTRAP. */
1553 random_selector = (int)
1554 ((num_events * (double) rand ()) / (RAND_MAX + 1.0));
1555
1556 if (debug_threads && num_events > 1)
1557 fprintf (stderr,
1558 "SEL: Found %d SIGTRAP events, selecting #%d\n",
1559 num_events, random_selector);
1560
1561 event_lp = (struct lwp_info *) find_inferior (&all_lwps,
1562 select_event_lwp_callback,
1563 &random_selector);
1564 }
1565
1566 if (event_lp != NULL)
1567 {
1568 /* Switch the event LWP. */
1569 *orig_lp = event_lp;
1570 }
1571}
1572
d50171e4
PA
1573/* Set this inferior LWP's state as "want-stopped". We won't resume
1574 this LWP until the client gives us another action for it. */
1575
1576static void
1577gdb_wants_lwp_stopped (struct inferior_list_entry *entry)
1578{
1579 struct lwp_info *lwp = (struct lwp_info *) entry;
1580 struct thread_info *thread = get_lwp_thread (lwp);
1581
1582 /* Most threads are stopped implicitly (all-stop); tag that with
1583 signal 0. The thread being explicitly reported stopped to the
1584 client, gets it's status fixed up afterwards. */
1585 thread->last_status.kind = TARGET_WAITKIND_STOPPED;
1586 thread->last_status.value.sig = TARGET_SIGNAL_0;
1587
8336d594 1588 thread->last_resume_kind = resume_stop;
d50171e4
PA
1589}
1590
1591/* Set all LWP's states as "want-stopped". */
1592
1593static void
1594gdb_wants_all_stopped (void)
1595{
1596 for_each_inferior (&all_lwps, gdb_wants_lwp_stopped);
1597}
1598
0d62e5e8 1599/* Wait for process, returns status. */
da6d8c04 1600
95954743
PA
1601static ptid_t
1602linux_wait_1 (ptid_t ptid,
1603 struct target_waitstatus *ourstatus, int target_options)
da6d8c04 1604{
e5f1222d 1605 int w;
fc7238bb 1606 struct lwp_info *event_child;
bd99dc85 1607 int options;
bd99dc85 1608 int pid;
6bf5e0ba
PA
1609 int step_over_finished;
1610 int bp_explains_trap;
1611 int maybe_internal_trap;
1612 int report_to_gdb;
219f2f23 1613 int trace_event;
bd99dc85
PA
1614
1615 /* Translate generic target options into linux options. */
1616 options = __WALL;
1617 if (target_options & TARGET_WNOHANG)
1618 options |= WNOHANG;
0d62e5e8
DJ
1619
1620retry:
bd99dc85
PA
1621 ourstatus->kind = TARGET_WAITKIND_IGNORE;
1622
0d62e5e8
DJ
1623 /* If we were only supposed to resume one thread, only wait for
1624 that thread - if it's still alive. If it died, however - which
1625 can happen if we're coming from the thread death case below -
1626 then we need to make sure we restart the other threads. We could
1627 pick a thread at random or restart all; restarting all is less
1628 arbitrary. */
95954743
PA
1629 if (!non_stop
1630 && !ptid_equal (cont_thread, null_ptid)
1631 && !ptid_equal (cont_thread, minus_one_ptid))
0d62e5e8 1632 {
fc7238bb
PA
1633 struct thread_info *thread;
1634
bd99dc85
PA
1635 thread = (struct thread_info *) find_inferior_id (&all_threads,
1636 cont_thread);
0d62e5e8
DJ
1637
1638 /* No stepping, no signal - unless one is pending already, of course. */
bd99dc85 1639 if (thread == NULL)
64386c31
DJ
1640 {
1641 struct thread_resume resume_info;
95954743 1642 resume_info.thread = minus_one_ptid;
bd99dc85
PA
1643 resume_info.kind = resume_continue;
1644 resume_info.sig = 0;
2bd7c093 1645 linux_resume (&resume_info, 1);
64386c31 1646 }
bd99dc85 1647 else
95954743 1648 ptid = cont_thread;
0d62e5e8 1649 }
da6d8c04 1650
6bf5e0ba
PA
1651 if (ptid_equal (step_over_bkpt, null_ptid))
1652 pid = linux_wait_for_event (ptid, &w, options);
1653 else
1654 {
1655 if (debug_threads)
1656 fprintf (stderr, "step_over_bkpt set [%s], doing a blocking wait\n",
1657 target_pid_to_str (step_over_bkpt));
1658 pid = linux_wait_for_event (step_over_bkpt, &w, options & ~WNOHANG);
1659 }
1660
bd99dc85 1661 if (pid == 0) /* only if TARGET_WNOHANG */
95954743 1662 return null_ptid;
bd99dc85 1663
6bf5e0ba 1664 event_child = get_thread_lwp (current_inferior);
da6d8c04 1665
0d62e5e8
DJ
1666 /* If we are waiting for a particular child, and it exited,
1667 linux_wait_for_event will return its exit status. Similarly if
1668 the last child exited. If this is not the last child, however,
1669 do not report it as exited until there is a 'thread exited' response
1670 available in the remote protocol. Instead, just wait for another event.
1671 This should be safe, because if the thread crashed we will already
1672 have reported the termination signal to GDB; that should stop any
1673 in-progress stepping operations, etc.
1674
1675 Report the exit status of the last thread to exit. This matches
1676 LinuxThreads' behavior. */
1677
95954743 1678 if (last_thread_of_process_p (current_inferior))
da6d8c04 1679 {
bd99dc85 1680 if (WIFEXITED (w) || WIFSIGNALED (w))
0d62e5e8 1681 {
bd99dc85
PA
1682 if (WIFEXITED (w))
1683 {
1684 ourstatus->kind = TARGET_WAITKIND_EXITED;
1685 ourstatus->value.integer = WEXITSTATUS (w);
1686
1687 if (debug_threads)
1688 fprintf (stderr, "\nChild exited with retcode = %x \n", WEXITSTATUS (w));
1689 }
1690 else
1691 {
1692 ourstatus->kind = TARGET_WAITKIND_SIGNALLED;
1693 ourstatus->value.sig = target_signal_from_host (WTERMSIG (w));
1694
1695 if (debug_threads)
1696 fprintf (stderr, "\nChild terminated with signal = %x \n", WTERMSIG (w));
1697
1698 }
5b1c542e 1699
95954743 1700 return pid_to_ptid (pid);
0d62e5e8 1701 }
da6d8c04 1702 }
0d62e5e8 1703 else
da6d8c04 1704 {
0d62e5e8
DJ
1705 if (!WIFSTOPPED (w))
1706 goto retry;
da6d8c04
DJ
1707 }
1708
6bf5e0ba
PA
1709 /* If this event was not handled before, and is not a SIGTRAP, we
1710 report it. SIGILL and SIGSEGV are also treated as traps in case
1711 a breakpoint is inserted at the current PC. If this target does
1712 not support internal breakpoints at all, we also report the
1713 SIGTRAP without further processing; it's of no concern to us. */
1714 maybe_internal_trap
1715 = (supports_breakpoints ()
1716 && (WSTOPSIG (w) == SIGTRAP
1717 || ((WSTOPSIG (w) == SIGILL
1718 || WSTOPSIG (w) == SIGSEGV)
1719 && (*the_low_target.breakpoint_at) (event_child->stop_pc))));
1720
1721 if (maybe_internal_trap)
1722 {
1723 /* Handle anything that requires bookkeeping before deciding to
1724 report the event or continue waiting. */
1725
1726 /* First check if we can explain the SIGTRAP with an internal
1727 breakpoint, or if we should possibly report the event to GDB.
1728 Do this before anything that may remove or insert a
1729 breakpoint. */
1730 bp_explains_trap = breakpoint_inserted_here (event_child->stop_pc);
1731
1732 /* We have a SIGTRAP, possibly a step-over dance has just
1733 finished. If so, tweak the state machine accordingly,
1734 reinsert breakpoints and delete any reinsert (software
1735 single-step) breakpoints. */
1736 step_over_finished = finish_step_over (event_child);
1737
1738 /* Now invoke the callbacks of any internal breakpoints there. */
1739 check_breakpoints (event_child->stop_pc);
1740
219f2f23
PA
1741 /* Handle tracepoint data collecting. This may overflow the
1742 trace buffer, and cause a tracing stop, removing
1743 breakpoints. */
1744 trace_event = handle_tracepoints (event_child);
1745
6bf5e0ba
PA
1746 if (bp_explains_trap)
1747 {
1748 /* If we stepped or ran into an internal breakpoint, we've
1749 already handled it. So next time we resume (from this
1750 PC), we should step over it. */
1751 if (debug_threads)
1752 fprintf (stderr, "Hit a gdbserver breakpoint.\n");
1753
8b07ae33
PA
1754 if (breakpoint_here (event_child->stop_pc))
1755 event_child->need_step_over = 1;
6bf5e0ba
PA
1756 }
1757 }
1758 else
1759 {
1760 /* We have some other signal, possibly a step-over dance was in
1761 progress, and it should be cancelled too. */
1762 step_over_finished = finish_step_over (event_child);
219f2f23
PA
1763
1764 trace_event = 0;
6bf5e0ba
PA
1765 }
1766
1767 /* We have all the data we need. Either report the event to GDB, or
1768 resume threads and keep waiting for more. */
1769
1770 /* Check If GDB would be interested in this event. If GDB wanted
1771 this thread to single step, we always want to report the SIGTRAP,
8b07ae33
PA
1772 and let GDB handle it. Watchpoints should always be reported.
1773 So should signals we can't explain. A SIGTRAP we can't explain
1774 could be a GDB breakpoint --- we may or not support Z0
1775 breakpoints. If we do, we're be able to handle GDB breakpoints
1776 on top of internal breakpoints, by handling the internal
1777 breakpoint and still reporting the event to GDB. If we don't,
1778 we're out of luck, GDB won't see the breakpoint hit. */
6bf5e0ba 1779 report_to_gdb = (!maybe_internal_trap
8336d594 1780 || current_inferior->last_resume_kind == resume_step
6bf5e0ba 1781 || event_child->stopped_by_watchpoint
219f2f23 1782 || (!step_over_finished && !bp_explains_trap && !trace_event)
8b07ae33 1783 || gdb_breakpoint_here (event_child->stop_pc));
6bf5e0ba
PA
1784
1785 /* We found no reason GDB would want us to stop. We either hit one
1786 of our own breakpoints, or finished an internal step GDB
1787 shouldn't know about. */
1788 if (!report_to_gdb)
1789 {
1790 if (debug_threads)
1791 {
1792 if (bp_explains_trap)
1793 fprintf (stderr, "Hit a gdbserver breakpoint.\n");
1794 if (step_over_finished)
1795 fprintf (stderr, "Step-over finished.\n");
219f2f23
PA
1796 if (trace_event)
1797 fprintf (stderr, "Tracepoint event.\n");
6bf5e0ba
PA
1798 }
1799
1800 /* We're not reporting this breakpoint to GDB, so apply the
1801 decr_pc_after_break adjustment to the inferior's regcache
1802 ourselves. */
1803
1804 if (the_low_target.set_pc != NULL)
1805 {
1806 struct regcache *regcache
1807 = get_thread_regcache (get_lwp_thread (event_child), 1);
1808 (*the_low_target.set_pc) (regcache, event_child->stop_pc);
1809 }
1810
1811 /* We've finished stepping over a breakpoint. We've stopped all
1812 LWPs momentarily except the stepping one. This is where we
1813 resume them all again. We're going to keep waiting, so use
1814 proceed, which handles stepping over the next breakpoint. */
1815 if (debug_threads)
1816 fprintf (stderr, "proceeding all threads.\n");
1817 proceed_all_lwps ();
1818 goto retry;
1819 }
1820
1821 if (debug_threads)
1822 {
8336d594 1823 if (current_inferior->last_resume_kind == resume_step)
6bf5e0ba
PA
1824 fprintf (stderr, "GDB wanted to single-step, reporting event.\n");
1825 if (event_child->stopped_by_watchpoint)
1826 fprintf (stderr, "Stopped by watchpoint.\n");
8b07ae33
PA
1827 if (gdb_breakpoint_here (event_child->stop_pc))
1828 fprintf (stderr, "Stopped by GDB breakpoint.\n");
6bf5e0ba
PA
1829 if (debug_threads)
1830 fprintf (stderr, "Hit a non-gdbserver trap event.\n");
1831 }
1832
1833 /* Alright, we're going to report a stop. */
1834
1835 if (!non_stop)
1836 {
1837 /* In all-stop, stop all threads. */
1838 stop_all_lwps ();
1839
1840 /* If we're not waiting for a specific LWP, choose an event LWP
1841 from among those that have had events. Giving equal priority
1842 to all LWPs that have had events helps prevent
1843 starvation. */
1844 if (ptid_equal (ptid, minus_one_ptid))
1845 {
1846 event_child->status_pending_p = 1;
1847 event_child->status_pending = w;
1848
1849 select_event_lwp (&event_child);
1850
1851 event_child->status_pending_p = 0;
1852 w = event_child->status_pending;
1853 }
1854
1855 /* Now that we've selected our final event LWP, cancel any
1856 breakpoints in other LWPs that have hit a GDB breakpoint.
1857 See the comment in cancel_breakpoints_callback to find out
1858 why. */
1859 find_inferior (&all_lwps, cancel_breakpoints_callback, event_child);
1860 }
1861 else
1862 {
1863 /* If we just finished a step-over, then all threads had been
1864 momentarily paused. In all-stop, that's fine, we want
1865 threads stopped by now anyway. In non-stop, we need to
1866 re-resume threads that GDB wanted to be running. */
1867 if (step_over_finished)
1868 unstop_all_lwps (event_child);
1869 }
1870
5b1c542e 1871 ourstatus->kind = TARGET_WAITKIND_STOPPED;
5b1c542e 1872
d50171e4
PA
1873 /* Do this before the gdb_wants_all_stopped calls below, since they
1874 always set last_resume_kind to resume_stop. */
8336d594
PA
1875 if (current_inferior->last_resume_kind == resume_stop
1876 && WSTOPSIG (w) == SIGSTOP)
bd99dc85
PA
1877 {
1878 /* A thread that has been requested to stop by GDB with vCont;t,
1879 and it stopped cleanly, so report as SIG0. The use of
1880 SIGSTOP is an implementation detail. */
1881 ourstatus->value.sig = TARGET_SIGNAL_0;
1882 }
8336d594
PA
1883 else if (current_inferior->last_resume_kind == resume_stop
1884 && WSTOPSIG (w) != SIGSTOP)
bd99dc85
PA
1885 {
1886 /* A thread that has been requested to stop by GDB with vCont;t,
d50171e4 1887 but, it stopped for other reasons. */
bd99dc85
PA
1888 ourstatus->value.sig = target_signal_from_host (WSTOPSIG (w));
1889 }
1890 else
1891 {
1892 ourstatus->value.sig = target_signal_from_host (WSTOPSIG (w));
1893 }
1894
d50171e4
PA
1895 gdb_assert (ptid_equal (step_over_bkpt, null_ptid));
1896
1897 if (!non_stop)
1898 {
d50171e4
PA
1899 /* From GDB's perspective, all-stop mode always stops all
1900 threads implicitly. Tag all threads as "want-stopped". */
1901 gdb_wants_all_stopped ();
1902 }
1903 else
1904 {
1905 /* We're reporting this LWP as stopped. Update it's
1906 "want-stopped" state to what the client wants, until it gets
1907 a new resume action. */
6bf5e0ba 1908 gdb_wants_lwp_stopped (&event_child->head);
d50171e4
PA
1909 }
1910
bd99dc85 1911 if (debug_threads)
95954743 1912 fprintf (stderr, "linux_wait ret = %s, %d, %d\n",
6bf5e0ba 1913 target_pid_to_str (ptid_of (event_child)),
bd99dc85
PA
1914 ourstatus->kind,
1915 ourstatus->value.sig);
1916
6bf5e0ba
PA
1917 get_lwp_thread (event_child)->last_status = *ourstatus;
1918 return ptid_of (event_child);
bd99dc85
PA
1919}
1920
1921/* Get rid of any pending event in the pipe. */
1922static void
1923async_file_flush (void)
1924{
1925 int ret;
1926 char buf;
1927
1928 do
1929 ret = read (linux_event_pipe[0], &buf, 1);
1930 while (ret >= 0 || (ret == -1 && errno == EINTR));
1931}
1932
1933/* Put something in the pipe, so the event loop wakes up. */
1934static void
1935async_file_mark (void)
1936{
1937 int ret;
1938
1939 async_file_flush ();
1940
1941 do
1942 ret = write (linux_event_pipe[1], "+", 1);
1943 while (ret == 0 || (ret == -1 && errno == EINTR));
1944
1945 /* Ignore EAGAIN. If the pipe is full, the event loop will already
1946 be awakened anyway. */
1947}
1948
95954743
PA
1949static ptid_t
1950linux_wait (ptid_t ptid,
1951 struct target_waitstatus *ourstatus, int target_options)
bd99dc85 1952{
95954743 1953 ptid_t event_ptid;
bd99dc85
PA
1954
1955 if (debug_threads)
95954743 1956 fprintf (stderr, "linux_wait: [%s]\n", target_pid_to_str (ptid));
bd99dc85
PA
1957
1958 /* Flush the async file first. */
1959 if (target_is_async_p ())
1960 async_file_flush ();
1961
95954743 1962 event_ptid = linux_wait_1 (ptid, ourstatus, target_options);
bd99dc85
PA
1963
1964 /* If at least one stop was reported, there may be more. A single
1965 SIGCHLD can signal more than one child stop. */
1966 if (target_is_async_p ()
1967 && (target_options & TARGET_WNOHANG) != 0
95954743 1968 && !ptid_equal (event_ptid, null_ptid))
bd99dc85
PA
1969 async_file_mark ();
1970
1971 return event_ptid;
da6d8c04
DJ
1972}
1973
c5f62d5f 1974/* Send a signal to an LWP. */
fd500816
DJ
1975
1976static int
a1928bad 1977kill_lwp (unsigned long lwpid, int signo)
fd500816 1978{
c5f62d5f
DE
1979 /* Use tkill, if possible, in case we are using nptl threads. If tkill
1980 fails, then we are not using nptl threads and we should be using kill. */
fd500816 1981
c5f62d5f
DE
1982#ifdef __NR_tkill
1983 {
1984 static int tkill_failed;
fd500816 1985
c5f62d5f
DE
1986 if (!tkill_failed)
1987 {
1988 int ret;
1989
1990 errno = 0;
1991 ret = syscall (__NR_tkill, lwpid, signo);
1992 if (errno != ENOSYS)
1993 return ret;
1994 tkill_failed = 1;
1995 }
1996 }
fd500816
DJ
1997#endif
1998
1999 return kill (lwpid, signo);
2000}
2001
0d62e5e8 2002static void
02fc4de7 2003send_sigstop (struct lwp_info *lwp)
0d62e5e8 2004{
bd99dc85 2005 int pid;
0d62e5e8 2006
bd99dc85
PA
2007 pid = lwpid_of (lwp);
2008
0d62e5e8
DJ
2009 /* If we already have a pending stop signal for this process, don't
2010 send another. */
54a0b537 2011 if (lwp->stop_expected)
0d62e5e8 2012 {
ae13219e 2013 if (debug_threads)
bd99dc85 2014 fprintf (stderr, "Have pending sigstop for lwp %d\n", pid);
ae13219e 2015
0d62e5e8
DJ
2016 return;
2017 }
2018
2019 if (debug_threads)
bd99dc85 2020 fprintf (stderr, "Sending sigstop to lwp %d\n", pid);
0d62e5e8 2021
d50171e4 2022 lwp->stop_expected = 1;
bd99dc85 2023 kill_lwp (pid, SIGSTOP);
0d62e5e8
DJ
2024}
2025
02fc4de7
PA
2026static void
2027send_sigstop_callback (struct inferior_list_entry *entry)
2028{
2029 struct lwp_info *lwp = (struct lwp_info *) entry;
2030
2031 if (lwp->stopped)
2032 return;
2033
2034 send_sigstop (lwp);
2035}
2036
95954743
PA
2037static void
2038mark_lwp_dead (struct lwp_info *lwp, int wstat)
2039{
2040 /* It's dead, really. */
2041 lwp->dead = 1;
2042
2043 /* Store the exit status for later. */
2044 lwp->status_pending_p = 1;
2045 lwp->status_pending = wstat;
2046
95954743
PA
2047 /* Prevent trying to stop it. */
2048 lwp->stopped = 1;
2049
2050 /* No further stops are expected from a dead lwp. */
2051 lwp->stop_expected = 0;
2052}
2053
0d62e5e8
DJ
2054static void
2055wait_for_sigstop (struct inferior_list_entry *entry)
2056{
54a0b537 2057 struct lwp_info *lwp = (struct lwp_info *) entry;
bd99dc85 2058 struct thread_info *saved_inferior;
a1928bad 2059 int wstat;
95954743
PA
2060 ptid_t saved_tid;
2061 ptid_t ptid;
d50171e4 2062 int pid;
0d62e5e8 2063
54a0b537 2064 if (lwp->stopped)
d50171e4
PA
2065 {
2066 if (debug_threads)
2067 fprintf (stderr, "wait_for_sigstop: LWP %ld already stopped\n",
2068 lwpid_of (lwp));
2069 return;
2070 }
0d62e5e8
DJ
2071
2072 saved_inferior = current_inferior;
bd99dc85
PA
2073 if (saved_inferior != NULL)
2074 saved_tid = ((struct inferior_list_entry *) saved_inferior)->id;
2075 else
95954743 2076 saved_tid = null_ptid; /* avoid bogus unused warning */
bd99dc85 2077
95954743 2078 ptid = lwp->head.id;
bd99dc85 2079
d50171e4
PA
2080 if (debug_threads)
2081 fprintf (stderr, "wait_for_sigstop: pulling one event\n");
2082
2083 pid = linux_wait_for_event (ptid, &wstat, __WALL);
0d62e5e8
DJ
2084
2085 /* If we stopped with a non-SIGSTOP signal, save it for later
2086 and record the pending SIGSTOP. If the process exited, just
2087 return. */
d50171e4 2088 if (WIFSTOPPED (wstat))
0d62e5e8
DJ
2089 {
2090 if (debug_threads)
d50171e4
PA
2091 fprintf (stderr, "LWP %ld stopped with signal %d\n",
2092 lwpid_of (lwp), WSTOPSIG (wstat));
c35fafde 2093
d50171e4 2094 if (WSTOPSIG (wstat) != SIGSTOP)
c35fafde
PA
2095 {
2096 if (debug_threads)
d50171e4
PA
2097 fprintf (stderr, "LWP %ld stopped with non-sigstop status %06x\n",
2098 lwpid_of (lwp), wstat);
2099
c35fafde
PA
2100 lwp->status_pending_p = 1;
2101 lwp->status_pending = wstat;
2102 }
0d62e5e8 2103 }
d50171e4 2104 else
95954743
PA
2105 {
2106 if (debug_threads)
d50171e4 2107 fprintf (stderr, "Process %d exited while stopping LWPs\n", pid);
95954743 2108
d50171e4
PA
2109 lwp = find_lwp_pid (pid_to_ptid (pid));
2110 if (lwp)
2111 {
2112 /* Leave this status pending for the next time we're able to
2113 report it. In the mean time, we'll report this lwp as
2114 dead to GDB, so GDB doesn't try to read registers and
2115 memory from it. This can only happen if this was the
2116 last thread of the process; otherwise, PID is removed
2117 from the thread tables before linux_wait_for_event
2118 returns. */
2119 mark_lwp_dead (lwp, wstat);
2120 }
95954743 2121 }
0d62e5e8 2122
bd99dc85 2123 if (saved_inferior == NULL || linux_thread_alive (saved_tid))
0d62e5e8
DJ
2124 current_inferior = saved_inferior;
2125 else
2126 {
2127 if (debug_threads)
2128 fprintf (stderr, "Previously current thread died.\n");
2129
bd99dc85
PA
2130 if (non_stop)
2131 {
2132 /* We can't change the current inferior behind GDB's back,
2133 otherwise, a subsequent command may apply to the wrong
2134 process. */
2135 current_inferior = NULL;
2136 }
2137 else
2138 {
2139 /* Set a valid thread as current. */
2140 set_desired_inferior (0);
2141 }
0d62e5e8
DJ
2142 }
2143}
2144
2145static void
54a0b537 2146stop_all_lwps (void)
0d62e5e8
DJ
2147{
2148 stopping_threads = 1;
02fc4de7 2149 for_each_inferior (&all_lwps, send_sigstop_callback);
54a0b537 2150 for_each_inferior (&all_lwps, wait_for_sigstop);
0d62e5e8
DJ
2151 stopping_threads = 0;
2152}
2153
da6d8c04
DJ
2154/* Resume execution of the inferior process.
2155 If STEP is nonzero, single-step it.
2156 If SIGNAL is nonzero, give it that signal. */
2157
ce3a066d 2158static void
2acc282a 2159linux_resume_one_lwp (struct lwp_info *lwp,
54a0b537 2160 int step, int signal, siginfo_t *info)
da6d8c04 2161{
0d62e5e8
DJ
2162 struct thread_info *saved_inferior;
2163
54a0b537 2164 if (lwp->stopped == 0)
0d62e5e8
DJ
2165 return;
2166
219f2f23
PA
2167 /* Cancel actions that rely on GDB not changing the PC (e.g., the
2168 user used the "jump" command, or "set $pc = foo"). */
2169 if (lwp->stop_pc != get_pc (lwp))
2170 {
2171 /* Collecting 'while-stepping' actions doesn't make sense
2172 anymore. */
2173 release_while_stepping_state_list (get_lwp_thread (lwp));
2174 }
2175
0d62e5e8
DJ
2176 /* If we have pending signals or status, and a new signal, enqueue the
2177 signal. Also enqueue the signal if we are waiting to reinsert a
2178 breakpoint; it will be picked up again below. */
2179 if (signal != 0
54a0b537
PA
2180 && (lwp->status_pending_p || lwp->pending_signals != NULL
2181 || lwp->bp_reinsert != 0))
0d62e5e8
DJ
2182 {
2183 struct pending_signals *p_sig;
bca929d3 2184 p_sig = xmalloc (sizeof (*p_sig));
54a0b537 2185 p_sig->prev = lwp->pending_signals;
0d62e5e8 2186 p_sig->signal = signal;
32ca6d61
DJ
2187 if (info == NULL)
2188 memset (&p_sig->info, 0, sizeof (siginfo_t));
2189 else
2190 memcpy (&p_sig->info, info, sizeof (siginfo_t));
54a0b537 2191 lwp->pending_signals = p_sig;
0d62e5e8
DJ
2192 }
2193
d50171e4
PA
2194 if (lwp->status_pending_p)
2195 {
2196 if (debug_threads)
2197 fprintf (stderr, "Not resuming lwp %ld (%s, signal %d, stop %s);"
2198 " has pending status\n",
2199 lwpid_of (lwp), step ? "step" : "continue", signal,
2200 lwp->stop_expected ? "expected" : "not expected");
2201 return;
2202 }
0d62e5e8
DJ
2203
2204 saved_inferior = current_inferior;
54a0b537 2205 current_inferior = get_lwp_thread (lwp);
0d62e5e8
DJ
2206
2207 if (debug_threads)
1b3f6016 2208 fprintf (stderr, "Resuming lwp %ld (%s, signal %d, stop %s)\n",
bd99dc85 2209 lwpid_of (lwp), step ? "step" : "continue", signal,
54a0b537 2210 lwp->stop_expected ? "expected" : "not expected");
0d62e5e8
DJ
2211
2212 /* This bit needs some thinking about. If we get a signal that
2213 we must report while a single-step reinsert is still pending,
2214 we often end up resuming the thread. It might be better to
2215 (ew) allow a stack of pending events; then we could be sure that
2216 the reinsert happened right away and not lose any signals.
2217
2218 Making this stack would also shrink the window in which breakpoints are
54a0b537 2219 uninserted (see comment in linux_wait_for_lwp) but not enough for
0d62e5e8
DJ
2220 complete correctness, so it won't solve that problem. It may be
2221 worthwhile just to solve this one, however. */
54a0b537 2222 if (lwp->bp_reinsert != 0)
0d62e5e8
DJ
2223 {
2224 if (debug_threads)
d50171e4
PA
2225 fprintf (stderr, " pending reinsert at 0x%s\n",
2226 paddress (lwp->bp_reinsert));
2227
2228 if (lwp->bp_reinsert != 0 && can_hardware_single_step ())
2229 {
2230 if (step == 0)
2231 fprintf (stderr, "BAD - reinserting but not stepping.\n");
2232
2233 step = 1;
2234 }
0d62e5e8
DJ
2235
2236 /* Postpone any pending signal. It was enqueued above. */
2237 signal = 0;
2238 }
2239
219f2f23
PA
2240 /* If we have while-stepping actions in this thread set it stepping.
2241 If we have a signal to deliver, it may or may not be set to
2242 SIG_IGN, we don't know. Assume so, and allow collecting
2243 while-stepping into a signal handler. A possible smart thing to
2244 do would be to set an internal breakpoint at the signal return
2245 address, continue, and carry on catching this while-stepping
2246 action only when that breakpoint is hit. A future
2247 enhancement. */
2248 if (get_lwp_thread (lwp)->while_stepping != NULL
2249 && can_hardware_single_step ())
2250 {
2251 if (debug_threads)
2252 fprintf (stderr,
2253 "lwp %ld has a while-stepping action -> forcing step.\n",
2254 lwpid_of (lwp));
2255 step = 1;
2256 }
2257
aa691b87 2258 if (debug_threads && the_low_target.get_pc != NULL)
0d62e5e8 2259 {
442ea881
PA
2260 struct regcache *regcache = get_thread_regcache (current_inferior, 1);
2261 CORE_ADDR pc = (*the_low_target.get_pc) (regcache);
47c0c975 2262 fprintf (stderr, " resuming from pc 0x%lx\n", (long) pc);
0d62e5e8
DJ
2263 }
2264
2265 /* If we have pending signals, consume one unless we are trying to reinsert
2266 a breakpoint. */
54a0b537 2267 if (lwp->pending_signals != NULL && lwp->bp_reinsert == 0)
0d62e5e8
DJ
2268 {
2269 struct pending_signals **p_sig;
2270
54a0b537 2271 p_sig = &lwp->pending_signals;
0d62e5e8
DJ
2272 while ((*p_sig)->prev != NULL)
2273 p_sig = &(*p_sig)->prev;
2274
2275 signal = (*p_sig)->signal;
32ca6d61 2276 if ((*p_sig)->info.si_signo != 0)
bd99dc85 2277 ptrace (PTRACE_SETSIGINFO, lwpid_of (lwp), 0, &(*p_sig)->info);
32ca6d61 2278
0d62e5e8
DJ
2279 free (*p_sig);
2280 *p_sig = NULL;
2281 }
2282
aa5ca48f
DE
2283 if (the_low_target.prepare_to_resume != NULL)
2284 the_low_target.prepare_to_resume (lwp);
2285
0d62e5e8 2286 regcache_invalidate_one ((struct inferior_list_entry *)
54a0b537 2287 get_lwp_thread (lwp));
da6d8c04 2288 errno = 0;
54a0b537 2289 lwp->stopped = 0;
c3adc08c 2290 lwp->stopped_by_watchpoint = 0;
54a0b537 2291 lwp->stepping = step;
14ce3065
DE
2292 ptrace (step ? PTRACE_SINGLESTEP : PTRACE_CONT, lwpid_of (lwp), 0,
2293 /* Coerce to a uintptr_t first to avoid potential gcc warning
2294 of coercing an 8 byte integer to a 4 byte pointer. */
2295 (PTRACE_ARG4_TYPE) (uintptr_t) signal);
0d62e5e8
DJ
2296
2297 current_inferior = saved_inferior;
da6d8c04 2298 if (errno)
3221518c
UW
2299 {
2300 /* ESRCH from ptrace either means that the thread was already
2301 running (an error) or that it is gone (a race condition). If
2302 it's gone, we will get a notification the next time we wait,
2303 so we can ignore the error. We could differentiate these
2304 two, but it's tricky without waiting; the thread still exists
2305 as a zombie, so sending it signal 0 would succeed. So just
2306 ignore ESRCH. */
2307 if (errno == ESRCH)
2308 return;
2309
2310 perror_with_name ("ptrace");
2311 }
da6d8c04
DJ
2312}
2313
2bd7c093
PA
2314struct thread_resume_array
2315{
2316 struct thread_resume *resume;
2317 size_t n;
2318};
64386c31
DJ
2319
2320/* This function is called once per thread. We look up the thread
5544ad89
DJ
2321 in RESUME_PTR, and mark the thread with a pointer to the appropriate
2322 resume request.
2323
2324 This algorithm is O(threads * resume elements), but resume elements
2325 is small (and will remain small at least until GDB supports thread
2326 suspension). */
2bd7c093
PA
2327static int
2328linux_set_resume_request (struct inferior_list_entry *entry, void *arg)
0d62e5e8 2329{
54a0b537 2330 struct lwp_info *lwp;
64386c31 2331 struct thread_info *thread;
5544ad89 2332 int ndx;
2bd7c093 2333 struct thread_resume_array *r;
64386c31
DJ
2334
2335 thread = (struct thread_info *) entry;
54a0b537 2336 lwp = get_thread_lwp (thread);
2bd7c093 2337 r = arg;
64386c31 2338
2bd7c093 2339 for (ndx = 0; ndx < r->n; ndx++)
95954743
PA
2340 {
2341 ptid_t ptid = r->resume[ndx].thread;
2342 if (ptid_equal (ptid, minus_one_ptid)
2343 || ptid_equal (ptid, entry->id)
2344 || (ptid_is_pid (ptid)
2345 && (ptid_get_pid (ptid) == pid_of (lwp)))
2346 || (ptid_get_lwp (ptid) == -1
2347 && (ptid_get_pid (ptid) == pid_of (lwp))))
2348 {
d50171e4 2349 if (r->resume[ndx].kind == resume_stop
8336d594 2350 && thread->last_resume_kind == resume_stop)
d50171e4
PA
2351 {
2352 if (debug_threads)
2353 fprintf (stderr, "already %s LWP %ld at GDB's request\n",
2354 thread->last_status.kind == TARGET_WAITKIND_STOPPED
2355 ? "stopped"
2356 : "stopping",
2357 lwpid_of (lwp));
2358
2359 continue;
2360 }
2361
95954743 2362 lwp->resume = &r->resume[ndx];
8336d594 2363 thread->last_resume_kind = lwp->resume->kind;
95954743
PA
2364 return 0;
2365 }
2366 }
2bd7c093
PA
2367
2368 /* No resume action for this thread. */
2369 lwp->resume = NULL;
64386c31 2370
2bd7c093 2371 return 0;
5544ad89
DJ
2372}
2373
5544ad89 2374
bd99dc85
PA
2375/* Set *FLAG_P if this lwp has an interesting status pending. */
2376static int
2377resume_status_pending_p (struct inferior_list_entry *entry, void *flag_p)
5544ad89 2378{
bd99dc85 2379 struct lwp_info *lwp = (struct lwp_info *) entry;
5544ad89 2380
bd99dc85
PA
2381 /* LWPs which will not be resumed are not interesting, because
2382 we might not wait for them next time through linux_wait. */
2bd7c093 2383 if (lwp->resume == NULL)
bd99dc85 2384 return 0;
64386c31 2385
bd99dc85 2386 if (lwp->status_pending_p)
d50171e4
PA
2387 * (int *) flag_p = 1;
2388
2389 return 0;
2390}
2391
2392/* Return 1 if this lwp that GDB wants running is stopped at an
2393 internal breakpoint that we need to step over. It assumes that any
2394 required STOP_PC adjustment has already been propagated to the
2395 inferior's regcache. */
2396
2397static int
2398need_step_over_p (struct inferior_list_entry *entry, void *dummy)
2399{
2400 struct lwp_info *lwp = (struct lwp_info *) entry;
8336d594 2401 struct thread_info *thread;
d50171e4
PA
2402 struct thread_info *saved_inferior;
2403 CORE_ADDR pc;
2404
2405 /* LWPs which will not be resumed are not interesting, because we
2406 might not wait for them next time through linux_wait. */
2407
2408 if (!lwp->stopped)
2409 {
2410 if (debug_threads)
2411 fprintf (stderr,
2412 "Need step over [LWP %ld]? Ignoring, not stopped\n",
2413 lwpid_of (lwp));
2414 return 0;
2415 }
2416
8336d594
PA
2417 thread = get_lwp_thread (lwp);
2418
2419 if (thread->last_resume_kind == resume_stop)
d50171e4
PA
2420 {
2421 if (debug_threads)
2422 fprintf (stderr,
2423 "Need step over [LWP %ld]? Ignoring, should remain stopped\n",
2424 lwpid_of (lwp));
2425 return 0;
2426 }
2427
2428 if (!lwp->need_step_over)
2429 {
2430 if (debug_threads)
2431 fprintf (stderr,
2432 "Need step over [LWP %ld]? No\n", lwpid_of (lwp));
2433 }
5544ad89 2434
bd99dc85 2435 if (lwp->status_pending_p)
d50171e4
PA
2436 {
2437 if (debug_threads)
2438 fprintf (stderr,
2439 "Need step over [LWP %ld]? Ignoring, has pending status.\n",
2440 lwpid_of (lwp));
2441 return 0;
2442 }
2443
2444 /* Note: PC, not STOP_PC. Either GDB has adjusted the PC already,
2445 or we have. */
2446 pc = get_pc (lwp);
2447
2448 /* If the PC has changed since we stopped, then don't do anything,
2449 and let the breakpoint/tracepoint be hit. This happens if, for
2450 instance, GDB handled the decr_pc_after_break subtraction itself,
2451 GDB is OOL stepping this thread, or the user has issued a "jump"
2452 command, or poked thread's registers herself. */
2453 if (pc != lwp->stop_pc)
2454 {
2455 if (debug_threads)
2456 fprintf (stderr,
2457 "Need step over [LWP %ld]? Cancelling, PC was changed. "
2458 "Old stop_pc was 0x%s, PC is now 0x%s\n",
2459 lwpid_of (lwp), paddress (lwp->stop_pc), paddress (pc));
2460
2461 lwp->need_step_over = 0;
2462 return 0;
2463 }
2464
2465 saved_inferior = current_inferior;
8336d594 2466 current_inferior = thread;
d50171e4 2467
8b07ae33 2468 /* We can only step over breakpoints we know about. */
d50171e4
PA
2469 if (breakpoint_here (pc))
2470 {
8b07ae33
PA
2471 /* Don't step over a breakpoint that GDB expects to hit
2472 though. */
2473 if (gdb_breakpoint_here (pc))
2474 {
2475 if (debug_threads)
2476 fprintf (stderr,
2477 "Need step over [LWP %ld]? yes, but found"
2478 " GDB breakpoint at 0x%s; skipping step over\n",
2479 lwpid_of (lwp), paddress (pc));
d50171e4 2480
8b07ae33
PA
2481 current_inferior = saved_inferior;
2482 return 0;
2483 }
2484 else
2485 {
2486 if (debug_threads)
2487 fprintf (stderr,
2488 "Need step over [LWP %ld]? yes, found breakpoint at 0x%s\n",
2489 lwpid_of (lwp), paddress (pc));
d50171e4 2490
8b07ae33
PA
2491 /* We've found an lwp that needs stepping over --- return 1 so
2492 that find_inferior stops looking. */
2493 current_inferior = saved_inferior;
2494
2495 /* If the step over is cancelled, this is set again. */
2496 lwp->need_step_over = 0;
2497 return 1;
2498 }
d50171e4
PA
2499 }
2500
2501 current_inferior = saved_inferior;
2502
2503 if (debug_threads)
2504 fprintf (stderr,
2505 "Need step over [LWP %ld]? No, no breakpoint found at 0x%s\n",
2506 lwpid_of (lwp), paddress (pc));
c6ecbae5 2507
bd99dc85 2508 return 0;
5544ad89
DJ
2509}
2510
d50171e4
PA
2511/* Start a step-over operation on LWP. When LWP stopped at a
2512 breakpoint, to make progress, we need to remove the breakpoint out
2513 of the way. If we let other threads run while we do that, they may
2514 pass by the breakpoint location and miss hitting it. To avoid
2515 that, a step-over momentarily stops all threads while LWP is
2516 single-stepped while the breakpoint is temporarily uninserted from
2517 the inferior. When the single-step finishes, we reinsert the
2518 breakpoint, and let all threads that are supposed to be running,
2519 run again.
2520
2521 On targets that don't support hardware single-step, we don't
2522 currently support full software single-stepping. Instead, we only
2523 support stepping over the thread event breakpoint, by asking the
2524 low target where to place a reinsert breakpoint. Since this
2525 routine assumes the breakpoint being stepped over is a thread event
2526 breakpoint, it usually assumes the return address of the current
2527 function is a good enough place to set the reinsert breakpoint. */
2528
2529static int
2530start_step_over (struct lwp_info *lwp)
2531{
2532 struct thread_info *saved_inferior;
2533 CORE_ADDR pc;
2534 int step;
2535
2536 if (debug_threads)
2537 fprintf (stderr,
2538 "Starting step-over on LWP %ld. Stopping all threads\n",
2539 lwpid_of (lwp));
2540
2541 stop_all_lwps ();
2542
2543 if (debug_threads)
2544 fprintf (stderr, "Done stopping all threads for step-over.\n");
2545
2546 /* Note, we should always reach here with an already adjusted PC,
2547 either by GDB (if we're resuming due to GDB's request), or by our
2548 caller, if we just finished handling an internal breakpoint GDB
2549 shouldn't care about. */
2550 pc = get_pc (lwp);
2551
2552 saved_inferior = current_inferior;
2553 current_inferior = get_lwp_thread (lwp);
2554
2555 lwp->bp_reinsert = pc;
2556 uninsert_breakpoints_at (pc);
2557
2558 if (can_hardware_single_step ())
2559 {
2560 step = 1;
2561 }
2562 else
2563 {
2564 CORE_ADDR raddr = (*the_low_target.breakpoint_reinsert_addr) ();
2565 set_reinsert_breakpoint (raddr);
2566 step = 0;
2567 }
2568
2569 current_inferior = saved_inferior;
2570
2571 linux_resume_one_lwp (lwp, step, 0, NULL);
2572
2573 /* Require next event from this LWP. */
2574 step_over_bkpt = lwp->head.id;
2575 return 1;
2576}
2577
2578/* Finish a step-over. Reinsert the breakpoint we had uninserted in
2579 start_step_over, if still there, and delete any reinsert
2580 breakpoints we've set, on non hardware single-step targets. */
2581
2582static int
2583finish_step_over (struct lwp_info *lwp)
2584{
2585 if (lwp->bp_reinsert != 0)
2586 {
2587 if (debug_threads)
2588 fprintf (stderr, "Finished step over.\n");
2589
2590 /* Reinsert any breakpoint at LWP->BP_REINSERT. Note that there
2591 may be no breakpoint to reinsert there by now. */
2592 reinsert_breakpoints_at (lwp->bp_reinsert);
2593
2594 lwp->bp_reinsert = 0;
2595
2596 /* Delete any software-single-step reinsert breakpoints. No
2597 longer needed. We don't have to worry about other threads
2598 hitting this trap, and later not being able to explain it,
2599 because we were stepping over a breakpoint, and we hold all
2600 threads but LWP stopped while doing that. */
2601 if (!can_hardware_single_step ())
2602 delete_reinsert_breakpoints ();
2603
2604 step_over_bkpt = null_ptid;
2605 return 1;
2606 }
2607 else
2608 return 0;
2609}
2610
5544ad89
DJ
2611/* This function is called once per thread. We check the thread's resume
2612 request, which will tell us whether to resume, step, or leave the thread
bd99dc85 2613 stopped; and what signal, if any, it should be sent.
5544ad89 2614
bd99dc85
PA
2615 For threads which we aren't explicitly told otherwise, we preserve
2616 the stepping flag; this is used for stepping over gdbserver-placed
2617 breakpoints.
2618
2619 If pending_flags was set in any thread, we queue any needed
2620 signals, since we won't actually resume. We already have a pending
2621 event to report, so we don't need to preserve any step requests;
2622 they should be re-issued if necessary. */
2623
2624static int
2625linux_resume_one_thread (struct inferior_list_entry *entry, void *arg)
5544ad89 2626{
54a0b537 2627 struct lwp_info *lwp;
5544ad89 2628 struct thread_info *thread;
bd99dc85 2629 int step;
d50171e4
PA
2630 int leave_all_stopped = * (int *) arg;
2631 int leave_pending;
5544ad89
DJ
2632
2633 thread = (struct thread_info *) entry;
54a0b537 2634 lwp = get_thread_lwp (thread);
5544ad89 2635
2bd7c093 2636 if (lwp->resume == NULL)
bd99dc85 2637 return 0;
5544ad89 2638
bd99dc85 2639 if (lwp->resume->kind == resume_stop)
5544ad89 2640 {
bd99dc85 2641 if (debug_threads)
d50171e4 2642 fprintf (stderr, "resume_stop request for LWP %ld\n", lwpid_of (lwp));
bd99dc85
PA
2643
2644 if (!lwp->stopped)
2645 {
2646 if (debug_threads)
d50171e4 2647 fprintf (stderr, "stopping LWP %ld\n", lwpid_of (lwp));
bd99dc85 2648
d50171e4
PA
2649 /* Stop the thread, and wait for the event asynchronously,
2650 through the event loop. */
02fc4de7 2651 send_sigstop (lwp);
bd99dc85
PA
2652 }
2653 else
2654 {
2655 if (debug_threads)
d50171e4
PA
2656 fprintf (stderr, "already stopped LWP %ld\n",
2657 lwpid_of (lwp));
2658
2659 /* The LWP may have been stopped in an internal event that
2660 was not meant to be notified back to GDB (e.g., gdbserver
2661 breakpoint), so we should be reporting a stop event in
2662 this case too. */
2663
2664 /* If the thread already has a pending SIGSTOP, this is a
2665 no-op. Otherwise, something later will presumably resume
2666 the thread and this will cause it to cancel any pending
2667 operation, due to last_resume_kind == resume_stop. If
2668 the thread already has a pending status to report, we
2669 will still report it the next time we wait - see
2670 status_pending_p_callback. */
02fc4de7 2671 send_sigstop (lwp);
bd99dc85 2672 }
32ca6d61 2673
bd99dc85
PA
2674 /* For stop requests, we're done. */
2675 lwp->resume = NULL;
fc7238bb 2676 thread->last_status.kind = TARGET_WAITKIND_IGNORE;
bd99dc85 2677 return 0;
5544ad89
DJ
2678 }
2679
bd99dc85
PA
2680 /* If this thread which is about to be resumed has a pending status,
2681 then don't resume any threads - we can just report the pending
2682 status. Make sure to queue any signals that would otherwise be
2683 sent. In all-stop mode, we do this decision based on if *any*
d50171e4
PA
2684 thread has a pending status. If there's a thread that needs the
2685 step-over-breakpoint dance, then don't resume any other thread
2686 but that particular one. */
2687 leave_pending = (lwp->status_pending_p || leave_all_stopped);
5544ad89 2688
d50171e4 2689 if (!leave_pending)
bd99dc85
PA
2690 {
2691 if (debug_threads)
2692 fprintf (stderr, "resuming LWP %ld\n", lwpid_of (lwp));
5544ad89 2693
d50171e4 2694 step = (lwp->resume->kind == resume_step);
2acc282a 2695 linux_resume_one_lwp (lwp, step, lwp->resume->sig, NULL);
bd99dc85
PA
2696 }
2697 else
2698 {
2699 if (debug_threads)
2700 fprintf (stderr, "leaving LWP %ld stopped\n", lwpid_of (lwp));
5544ad89 2701
bd99dc85
PA
2702 /* If we have a new signal, enqueue the signal. */
2703 if (lwp->resume->sig != 0)
2704 {
2705 struct pending_signals *p_sig;
2706 p_sig = xmalloc (sizeof (*p_sig));
2707 p_sig->prev = lwp->pending_signals;
2708 p_sig->signal = lwp->resume->sig;
2709 memset (&p_sig->info, 0, sizeof (siginfo_t));
2710
2711 /* If this is the same signal we were previously stopped by,
2712 make sure to queue its siginfo. We can ignore the return
2713 value of ptrace; if it fails, we'll skip
2714 PTRACE_SETSIGINFO. */
2715 if (WIFSTOPPED (lwp->last_status)
2716 && WSTOPSIG (lwp->last_status) == lwp->resume->sig)
2717 ptrace (PTRACE_GETSIGINFO, lwpid_of (lwp), 0, &p_sig->info);
2718
2719 lwp->pending_signals = p_sig;
2720 }
2721 }
5544ad89 2722
fc7238bb 2723 thread->last_status.kind = TARGET_WAITKIND_IGNORE;
bd99dc85 2724 lwp->resume = NULL;
5544ad89 2725 return 0;
0d62e5e8
DJ
2726}
2727
2728static void
2bd7c093 2729linux_resume (struct thread_resume *resume_info, size_t n)
0d62e5e8 2730{
2bd7c093 2731 struct thread_resume_array array = { resume_info, n };
d50171e4
PA
2732 struct lwp_info *need_step_over = NULL;
2733 int any_pending;
2734 int leave_all_stopped;
c6ecbae5 2735
2bd7c093 2736 find_inferior (&all_threads, linux_set_resume_request, &array);
5544ad89 2737
d50171e4
PA
2738 /* If there is a thread which would otherwise be resumed, which has
2739 a pending status, then don't resume any threads - we can just
2740 report the pending status. Make sure to queue any signals that
2741 would otherwise be sent. In non-stop mode, we'll apply this
2742 logic to each thread individually. We consume all pending events
2743 before considering to start a step-over (in all-stop). */
2744 any_pending = 0;
bd99dc85 2745 if (!non_stop)
d50171e4
PA
2746 find_inferior (&all_lwps, resume_status_pending_p, &any_pending);
2747
2748 /* If there is a thread which would otherwise be resumed, which is
2749 stopped at a breakpoint that needs stepping over, then don't
2750 resume any threads - have it step over the breakpoint with all
2751 other threads stopped, then resume all threads again. Make sure
2752 to queue any signals that would otherwise be delivered or
2753 queued. */
2754 if (!any_pending && supports_breakpoints ())
2755 need_step_over
2756 = (struct lwp_info *) find_inferior (&all_lwps,
2757 need_step_over_p, NULL);
2758
2759 leave_all_stopped = (need_step_over != NULL || any_pending);
2760
2761 if (debug_threads)
2762 {
2763 if (need_step_over != NULL)
2764 fprintf (stderr, "Not resuming all, need step over\n");
2765 else if (any_pending)
2766 fprintf (stderr,
2767 "Not resuming, all-stop and found "
2768 "an LWP with pending status\n");
2769 else
2770 fprintf (stderr, "Resuming, no pending status or step over needed\n");
2771 }
2772
2773 /* Even if we're leaving threads stopped, queue all signals we'd
2774 otherwise deliver. */
2775 find_inferior (&all_threads, linux_resume_one_thread, &leave_all_stopped);
2776
2777 if (need_step_over)
2778 start_step_over (need_step_over);
2779}
2780
2781/* This function is called once per thread. We check the thread's
2782 last resume request, which will tell us whether to resume, step, or
2783 leave the thread stopped. Any signal the client requested to be
2784 delivered has already been enqueued at this point.
2785
2786 If any thread that GDB wants running is stopped at an internal
2787 breakpoint that needs stepping over, we start a step-over operation
2788 on that particular thread, and leave all others stopped. */
2789
2790static void
2791proceed_one_lwp (struct inferior_list_entry *entry)
2792{
2793 struct lwp_info *lwp;
8336d594 2794 struct thread_info *thread;
d50171e4
PA
2795 int step;
2796
2797 lwp = (struct lwp_info *) entry;
2798
2799 if (debug_threads)
2800 fprintf (stderr,
2801 "proceed_one_lwp: lwp %ld\n", lwpid_of (lwp));
2802
2803 if (!lwp->stopped)
2804 {
2805 if (debug_threads)
2806 fprintf (stderr, " LWP %ld already running\n", lwpid_of (lwp));
2807 return;
2808 }
2809
8336d594
PA
2810 thread = get_lwp_thread (lwp);
2811
02fc4de7
PA
2812 if (thread->last_resume_kind == resume_stop
2813 && thread->last_status.kind != TARGET_WAITKIND_IGNORE)
d50171e4
PA
2814 {
2815 if (debug_threads)
02fc4de7
PA
2816 fprintf (stderr, " client wants LWP to remain %ld stopped\n",
2817 lwpid_of (lwp));
d50171e4
PA
2818 return;
2819 }
2820
2821 if (lwp->status_pending_p)
2822 {
2823 if (debug_threads)
2824 fprintf (stderr, " LWP %ld has pending status, leaving stopped\n",
2825 lwpid_of (lwp));
2826 return;
2827 }
2828
2829 if (lwp->suspended)
2830 {
2831 if (debug_threads)
2832 fprintf (stderr, " LWP %ld is suspended\n", lwpid_of (lwp));
2833 return;
2834 }
2835
02fc4de7
PA
2836 if (thread->last_resume_kind == resume_stop)
2837 {
2838 /* We haven't reported this LWP as stopped yet (otherwise, the
2839 last_status.kind check above would catch it, and we wouldn't
2840 reach here. This LWP may have been momentarily paused by a
2841 stop_all_lwps call while handling for example, another LWP's
2842 step-over. In that case, the pending expected SIGSTOP signal
2843 that was queued at vCont;t handling time will have already
2844 been consumed by wait_for_sigstop, and so we need to requeue
2845 another one here. Note that if the LWP already has a SIGSTOP
2846 pending, this is a no-op. */
2847
2848 if (debug_threads)
2849 fprintf (stderr,
2850 "Client wants LWP %ld to stop. "
2851 "Making sure it has a SIGSTOP pending\n",
2852 lwpid_of (lwp));
2853
2854 send_sigstop (lwp);
2855 }
2856
8336d594 2857 step = thread->last_resume_kind == resume_step;
d50171e4
PA
2858 linux_resume_one_lwp (lwp, step, 0, NULL);
2859}
2860
2861/* When we finish a step-over, set threads running again. If there's
2862 another thread that may need a step-over, now's the time to start
2863 it. Eventually, we'll move all threads past their breakpoints. */
2864
2865static void
2866proceed_all_lwps (void)
2867{
2868 struct lwp_info *need_step_over;
2869
2870 /* If there is a thread which would otherwise be resumed, which is
2871 stopped at a breakpoint that needs stepping over, then don't
2872 resume any threads - have it step over the breakpoint with all
2873 other threads stopped, then resume all threads again. */
2874
2875 if (supports_breakpoints ())
2876 {
2877 need_step_over
2878 = (struct lwp_info *) find_inferior (&all_lwps,
2879 need_step_over_p, NULL);
2880
2881 if (need_step_over != NULL)
2882 {
2883 if (debug_threads)
2884 fprintf (stderr, "proceed_all_lwps: found "
2885 "thread %ld needing a step-over\n",
2886 lwpid_of (need_step_over));
2887
2888 start_step_over (need_step_over);
2889 return;
2890 }
2891 }
5544ad89 2892
d50171e4
PA
2893 if (debug_threads)
2894 fprintf (stderr, "Proceeding, no step-over needed\n");
2895
2896 for_each_inferior (&all_lwps, proceed_one_lwp);
2897}
2898
2899/* Stopped LWPs that the client wanted to be running, that don't have
2900 pending statuses, are set to run again, except for EXCEPT, if not
2901 NULL. This undoes a stop_all_lwps call. */
2902
2903static void
2904unstop_all_lwps (struct lwp_info *except)
2905{
5544ad89
DJ
2906 if (debug_threads)
2907 {
d50171e4
PA
2908 if (except)
2909 fprintf (stderr,
2910 "unstopping all lwps, except=(LWP %ld)\n", lwpid_of (except));
5544ad89 2911 else
d50171e4
PA
2912 fprintf (stderr,
2913 "unstopping all lwps\n");
5544ad89
DJ
2914 }
2915
d50171e4
PA
2916 /* Make sure proceed_one_lwp doesn't try to resume this thread. */
2917 if (except != NULL)
2918 ++except->suspended;
2919
2920 for_each_inferior (&all_lwps, proceed_one_lwp);
2921
2922 if (except != NULL)
2923 --except->suspended;
0d62e5e8
DJ
2924}
2925
2926#ifdef HAVE_LINUX_USRREGS
da6d8c04
DJ
2927
2928int
0a30fbc4 2929register_addr (int regnum)
da6d8c04
DJ
2930{
2931 int addr;
2932
2ec06d2e 2933 if (regnum < 0 || regnum >= the_low_target.num_regs)
da6d8c04
DJ
2934 error ("Invalid register number %d.", regnum);
2935
2ec06d2e 2936 addr = the_low_target.regmap[regnum];
da6d8c04
DJ
2937
2938 return addr;
2939}
2940
58caa3dc 2941/* Fetch one register. */
da6d8c04 2942static void
442ea881 2943fetch_register (struct regcache *regcache, int regno)
da6d8c04
DJ
2944{
2945 CORE_ADDR regaddr;
48d93c75 2946 int i, size;
0d62e5e8 2947 char *buf;
95954743 2948 int pid;
da6d8c04 2949
2ec06d2e 2950 if (regno >= the_low_target.num_regs)
0a30fbc4 2951 return;
2ec06d2e 2952 if ((*the_low_target.cannot_fetch_register) (regno))
0a30fbc4 2953 return;
da6d8c04 2954
0a30fbc4
DJ
2955 regaddr = register_addr (regno);
2956 if (regaddr == -1)
2957 return;
95954743
PA
2958
2959 pid = lwpid_of (get_thread_lwp (current_inferior));
1b3f6016
PA
2960 size = ((register_size (regno) + sizeof (PTRACE_XFER_TYPE) - 1)
2961 & - sizeof (PTRACE_XFER_TYPE));
48d93c75
UW
2962 buf = alloca (size);
2963 for (i = 0; i < size; i += sizeof (PTRACE_XFER_TYPE))
da6d8c04
DJ
2964 {
2965 errno = 0;
0d62e5e8 2966 *(PTRACE_XFER_TYPE *) (buf + i) =
14ce3065
DE
2967 ptrace (PTRACE_PEEKUSER, pid,
2968 /* Coerce to a uintptr_t first to avoid potential gcc warning
2969 of coercing an 8 byte integer to a 4 byte pointer. */
2970 (PTRACE_ARG3_TYPE) (uintptr_t) regaddr, 0);
da6d8c04
DJ
2971 regaddr += sizeof (PTRACE_XFER_TYPE);
2972 if (errno != 0)
f52cd8cd 2973 error ("reading register %d: %s", regno, strerror (errno));
da6d8c04 2974 }
ee1a7ae4
UW
2975
2976 if (the_low_target.supply_ptrace_register)
442ea881 2977 the_low_target.supply_ptrace_register (regcache, regno, buf);
5a1f5858 2978 else
442ea881 2979 supply_register (regcache, regno, buf);
da6d8c04
DJ
2980}
2981
2982/* Fetch all registers, or just one, from the child process. */
58caa3dc 2983static void
442ea881 2984usr_fetch_inferior_registers (struct regcache *regcache, int regno)
da6d8c04 2985{
4463ce24 2986 if (regno == -1)
2ec06d2e 2987 for (regno = 0; regno < the_low_target.num_regs; regno++)
442ea881 2988 fetch_register (regcache, regno);
da6d8c04 2989 else
442ea881 2990 fetch_register (regcache, regno);
da6d8c04
DJ
2991}
2992
2993/* Store our register values back into the inferior.
2994 If REGNO is -1, do this for all registers.
2995 Otherwise, REGNO specifies which register (so we can save time). */
58caa3dc 2996static void
442ea881 2997usr_store_inferior_registers (struct regcache *regcache, int regno)
da6d8c04
DJ
2998{
2999 CORE_ADDR regaddr;
48d93c75 3000 int i, size;
0d62e5e8 3001 char *buf;
55ac2b99 3002 int pid;
da6d8c04
DJ
3003
3004 if (regno >= 0)
3005 {
2ec06d2e 3006 if (regno >= the_low_target.num_regs)
0a30fbc4
DJ
3007 return;
3008
bc1e36ca 3009 if ((*the_low_target.cannot_store_register) (regno) == 1)
0a30fbc4
DJ
3010 return;
3011
3012 regaddr = register_addr (regno);
3013 if (regaddr == -1)
da6d8c04 3014 return;
da6d8c04 3015 errno = 0;
48d93c75
UW
3016 size = (register_size (regno) + sizeof (PTRACE_XFER_TYPE) - 1)
3017 & - sizeof (PTRACE_XFER_TYPE);
3018 buf = alloca (size);
3019 memset (buf, 0, size);
ee1a7ae4
UW
3020
3021 if (the_low_target.collect_ptrace_register)
442ea881 3022 the_low_target.collect_ptrace_register (regcache, regno, buf);
5a1f5858 3023 else
442ea881 3024 collect_register (regcache, regno, buf);
ee1a7ae4 3025
95954743 3026 pid = lwpid_of (get_thread_lwp (current_inferior));
48d93c75 3027 for (i = 0; i < size; i += sizeof (PTRACE_XFER_TYPE))
da6d8c04 3028 {
0a30fbc4 3029 errno = 0;
14ce3065
DE
3030 ptrace (PTRACE_POKEUSER, pid,
3031 /* Coerce to a uintptr_t first to avoid potential gcc warning
3032 about coercing an 8 byte integer to a 4 byte pointer. */
3033 (PTRACE_ARG3_TYPE) (uintptr_t) regaddr,
3034 (PTRACE_ARG4_TYPE) *(PTRACE_XFER_TYPE *) (buf + i));
da6d8c04
DJ
3035 if (errno != 0)
3036 {
1b3f6016
PA
3037 /* At this point, ESRCH should mean the process is
3038 already gone, in which case we simply ignore attempts
3039 to change its registers. See also the related
3040 comment in linux_resume_one_lwp. */
3221518c
UW
3041 if (errno == ESRCH)
3042 return;
3043
bc1e36ca 3044 if ((*the_low_target.cannot_store_register) (regno) == 0)
f52cd8cd 3045 error ("writing register %d: %s", regno, strerror (errno));
da6d8c04 3046 }
2ff29de4 3047 regaddr += sizeof (PTRACE_XFER_TYPE);
da6d8c04 3048 }
da6d8c04
DJ
3049 }
3050 else
2ec06d2e 3051 for (regno = 0; regno < the_low_target.num_regs; regno++)
442ea881 3052 usr_store_inferior_registers (regcache, regno);
da6d8c04 3053}
58caa3dc
DJ
3054#endif /* HAVE_LINUX_USRREGS */
3055
3056
3057
3058#ifdef HAVE_LINUX_REGSETS
3059
3060static int
442ea881 3061regsets_fetch_inferior_registers (struct regcache *regcache)
58caa3dc
DJ
3062{
3063 struct regset_info *regset;
e9d25b98 3064 int saw_general_regs = 0;
95954743 3065 int pid;
1570b33e 3066 struct iovec iov;
58caa3dc
DJ
3067
3068 regset = target_regsets;
3069
95954743 3070 pid = lwpid_of (get_thread_lwp (current_inferior));
58caa3dc
DJ
3071 while (regset->size >= 0)
3072 {
1570b33e
L
3073 void *buf, *data;
3074 int nt_type, res;
58caa3dc 3075
52fa2412 3076 if (regset->size == 0 || disabled_regsets[regset - target_regsets])
58caa3dc
DJ
3077 {
3078 regset ++;
3079 continue;
3080 }
3081
bca929d3 3082 buf = xmalloc (regset->size);
1570b33e
L
3083
3084 nt_type = regset->nt_type;
3085 if (nt_type)
3086 {
3087 iov.iov_base = buf;
3088 iov.iov_len = regset->size;
3089 data = (void *) &iov;
3090 }
3091 else
3092 data = buf;
3093
dfb64f85 3094#ifndef __sparc__
1570b33e 3095 res = ptrace (regset->get_request, pid, nt_type, data);
dfb64f85 3096#else
1570b33e 3097 res = ptrace (regset->get_request, pid, data, nt_type);
dfb64f85 3098#endif
58caa3dc
DJ
3099 if (res < 0)
3100 {
3101 if (errno == EIO)
3102 {
52fa2412
UW
3103 /* If we get EIO on a regset, do not try it again for
3104 this process. */
3105 disabled_regsets[regset - target_regsets] = 1;
fdeb2a12 3106 free (buf);
52fa2412 3107 continue;
58caa3dc
DJ
3108 }
3109 else
3110 {
0d62e5e8 3111 char s[256];
95954743
PA
3112 sprintf (s, "ptrace(regsets_fetch_inferior_registers) PID=%d",
3113 pid);
0d62e5e8 3114 perror (s);
58caa3dc
DJ
3115 }
3116 }
e9d25b98
DJ
3117 else if (regset->type == GENERAL_REGS)
3118 saw_general_regs = 1;
442ea881 3119 regset->store_function (regcache, buf);
58caa3dc 3120 regset ++;
fdeb2a12 3121 free (buf);
58caa3dc 3122 }
e9d25b98
DJ
3123 if (saw_general_regs)
3124 return 0;
3125 else
3126 return 1;
58caa3dc
DJ
3127}
3128
3129static int
442ea881 3130regsets_store_inferior_registers (struct regcache *regcache)
58caa3dc
DJ
3131{
3132 struct regset_info *regset;
e9d25b98 3133 int saw_general_regs = 0;
95954743 3134 int pid;
1570b33e 3135 struct iovec iov;
58caa3dc
DJ
3136
3137 regset = target_regsets;
3138
95954743 3139 pid = lwpid_of (get_thread_lwp (current_inferior));
58caa3dc
DJ
3140 while (regset->size >= 0)
3141 {
1570b33e
L
3142 void *buf, *data;
3143 int nt_type, res;
58caa3dc 3144
52fa2412 3145 if (regset->size == 0 || disabled_regsets[regset - target_regsets])
58caa3dc
DJ
3146 {
3147 regset ++;
3148 continue;
3149 }
3150
bca929d3 3151 buf = xmalloc (regset->size);
545587ee
DJ
3152
3153 /* First fill the buffer with the current register set contents,
3154 in case there are any items in the kernel's regset that are
3155 not in gdbserver's regcache. */
1570b33e
L
3156
3157 nt_type = regset->nt_type;
3158 if (nt_type)
3159 {
3160 iov.iov_base = buf;
3161 iov.iov_len = regset->size;
3162 data = (void *) &iov;
3163 }
3164 else
3165 data = buf;
3166
dfb64f85 3167#ifndef __sparc__
1570b33e 3168 res = ptrace (regset->get_request, pid, nt_type, data);
dfb64f85 3169#else
1570b33e 3170 res = ptrace (regset->get_request, pid, &iov, data);
dfb64f85 3171#endif
545587ee
DJ
3172
3173 if (res == 0)
3174 {
3175 /* Then overlay our cached registers on that. */
442ea881 3176 regset->fill_function (regcache, buf);
545587ee
DJ
3177
3178 /* Only now do we write the register set. */
dfb64f85 3179#ifndef __sparc__
1570b33e 3180 res = ptrace (regset->set_request, pid, nt_type, data);
dfb64f85 3181#else
1570b33e 3182 res = ptrace (regset->set_request, pid, data, nt_type);
dfb64f85 3183#endif
545587ee
DJ
3184 }
3185
58caa3dc
DJ
3186 if (res < 0)
3187 {
3188 if (errno == EIO)
3189 {
52fa2412
UW
3190 /* If we get EIO on a regset, do not try it again for
3191 this process. */
3192 disabled_regsets[regset - target_regsets] = 1;
fdeb2a12 3193 free (buf);
52fa2412 3194 continue;
58caa3dc 3195 }
3221518c
UW
3196 else if (errno == ESRCH)
3197 {
1b3f6016
PA
3198 /* At this point, ESRCH should mean the process is
3199 already gone, in which case we simply ignore attempts
3200 to change its registers. See also the related
3201 comment in linux_resume_one_lwp. */
fdeb2a12 3202 free (buf);
3221518c
UW
3203 return 0;
3204 }
58caa3dc
DJ
3205 else
3206 {
ce3a066d 3207 perror ("Warning: ptrace(regsets_store_inferior_registers)");
58caa3dc
DJ
3208 }
3209 }
e9d25b98
DJ
3210 else if (regset->type == GENERAL_REGS)
3211 saw_general_regs = 1;
58caa3dc 3212 regset ++;
09ec9b38 3213 free (buf);
58caa3dc 3214 }
e9d25b98
DJ
3215 if (saw_general_regs)
3216 return 0;
3217 else
3218 return 1;
ce3a066d 3219 return 0;
58caa3dc
DJ
3220}
3221
3222#endif /* HAVE_LINUX_REGSETS */
3223
3224
3225void
442ea881 3226linux_fetch_registers (struct regcache *regcache, int regno)
58caa3dc
DJ
3227{
3228#ifdef HAVE_LINUX_REGSETS
442ea881 3229 if (regsets_fetch_inferior_registers (regcache) == 0)
52fa2412 3230 return;
58caa3dc
DJ
3231#endif
3232#ifdef HAVE_LINUX_USRREGS
442ea881 3233 usr_fetch_inferior_registers (regcache, regno);
58caa3dc
DJ
3234#endif
3235}
3236
3237void
442ea881 3238linux_store_registers (struct regcache *regcache, int regno)
58caa3dc
DJ
3239{
3240#ifdef HAVE_LINUX_REGSETS
442ea881 3241 if (regsets_store_inferior_registers (regcache) == 0)
52fa2412 3242 return;
58caa3dc
DJ
3243#endif
3244#ifdef HAVE_LINUX_USRREGS
442ea881 3245 usr_store_inferior_registers (regcache, regno);
58caa3dc
DJ
3246#endif
3247}
3248
da6d8c04 3249
da6d8c04
DJ
3250/* Copy LEN bytes from inferior's memory starting at MEMADDR
3251 to debugger memory starting at MYADDR. */
3252
c3e735a6 3253static int
f450004a 3254linux_read_memory (CORE_ADDR memaddr, unsigned char *myaddr, int len)
da6d8c04
DJ
3255{
3256 register int i;
3257 /* Round starting address down to longword boundary. */
3258 register CORE_ADDR addr = memaddr & -(CORE_ADDR) sizeof (PTRACE_XFER_TYPE);
3259 /* Round ending address up; get number of longwords that makes. */
aa691b87
RM
3260 register int count
3261 = (((memaddr + len) - addr) + sizeof (PTRACE_XFER_TYPE) - 1)
da6d8c04
DJ
3262 / sizeof (PTRACE_XFER_TYPE);
3263 /* Allocate buffer of that many longwords. */
aa691b87 3264 register PTRACE_XFER_TYPE *buffer
da6d8c04 3265 = (PTRACE_XFER_TYPE *) alloca (count * sizeof (PTRACE_XFER_TYPE));
fd462a61
DJ
3266 int fd;
3267 char filename[64];
95954743 3268 int pid = lwpid_of (get_thread_lwp (current_inferior));
fd462a61
DJ
3269
3270 /* Try using /proc. Don't bother for one word. */
3271 if (len >= 3 * sizeof (long))
3272 {
3273 /* We could keep this file open and cache it - possibly one per
3274 thread. That requires some juggling, but is even faster. */
95954743 3275 sprintf (filename, "/proc/%d/mem", pid);
fd462a61
DJ
3276 fd = open (filename, O_RDONLY | O_LARGEFILE);
3277 if (fd == -1)
3278 goto no_proc;
3279
3280 /* If pread64 is available, use it. It's faster if the kernel
3281 supports it (only one syscall), and it's 64-bit safe even on
3282 32-bit platforms (for instance, SPARC debugging a SPARC64
3283 application). */
3284#ifdef HAVE_PREAD64
3285 if (pread64 (fd, myaddr, len, memaddr) != len)
3286#else
1de1badb 3287 if (lseek (fd, memaddr, SEEK_SET) == -1 || read (fd, myaddr, len) != len)
fd462a61
DJ
3288#endif
3289 {
3290 close (fd);
3291 goto no_proc;
3292 }
3293
3294 close (fd);
3295 return 0;
3296 }
da6d8c04 3297
fd462a61 3298 no_proc:
da6d8c04
DJ
3299 /* Read all the longwords */
3300 for (i = 0; i < count; i++, addr += sizeof (PTRACE_XFER_TYPE))
3301 {
c3e735a6 3302 errno = 0;
14ce3065
DE
3303 /* Coerce the 3rd arg to a uintptr_t first to avoid potential gcc warning
3304 about coercing an 8 byte integer to a 4 byte pointer. */
3305 buffer[i] = ptrace (PTRACE_PEEKTEXT, pid,
3306 (PTRACE_ARG3_TYPE) (uintptr_t) addr, 0);
c3e735a6
DJ
3307 if (errno)
3308 return errno;
da6d8c04
DJ
3309 }
3310
3311 /* Copy appropriate bytes out of the buffer. */
1b3f6016
PA
3312 memcpy (myaddr,
3313 (char *) buffer + (memaddr & (sizeof (PTRACE_XFER_TYPE) - 1)),
3314 len);
c3e735a6
DJ
3315
3316 return 0;
da6d8c04
DJ
3317}
3318
93ae6fdc
PA
3319/* Copy LEN bytes of data from debugger memory at MYADDR to inferior's
3320 memory at MEMADDR. On failure (cannot write to the inferior)
da6d8c04
DJ
3321 returns the value of errno. */
3322
ce3a066d 3323static int
f450004a 3324linux_write_memory (CORE_ADDR memaddr, const unsigned char *myaddr, int len)
da6d8c04
DJ
3325{
3326 register int i;
3327 /* Round starting address down to longword boundary. */
3328 register CORE_ADDR addr = memaddr & -(CORE_ADDR) sizeof (PTRACE_XFER_TYPE);
3329 /* Round ending address up; get number of longwords that makes. */
3330 register int count
3331 = (((memaddr + len) - addr) + sizeof (PTRACE_XFER_TYPE) - 1) / sizeof (PTRACE_XFER_TYPE);
3332 /* Allocate buffer of that many longwords. */
3333 register PTRACE_XFER_TYPE *buffer = (PTRACE_XFER_TYPE *) alloca (count * sizeof (PTRACE_XFER_TYPE));
95954743 3334 int pid = lwpid_of (get_thread_lwp (current_inferior));
da6d8c04 3335
0d62e5e8
DJ
3336 if (debug_threads)
3337 {
58d6951d
DJ
3338 /* Dump up to four bytes. */
3339 unsigned int val = * (unsigned int *) myaddr;
3340 if (len == 1)
3341 val = val & 0xff;
3342 else if (len == 2)
3343 val = val & 0xffff;
3344 else if (len == 3)
3345 val = val & 0xffffff;
3346 fprintf (stderr, "Writing %0*x to 0x%08lx\n", 2 * ((len < 4) ? len : 4),
3347 val, (long)memaddr);
0d62e5e8
DJ
3348 }
3349
da6d8c04
DJ
3350 /* Fill start and end extra bytes of buffer with existing memory data. */
3351
93ae6fdc 3352 errno = 0;
14ce3065
DE
3353 /* Coerce the 3rd arg to a uintptr_t first to avoid potential gcc warning
3354 about coercing an 8 byte integer to a 4 byte pointer. */
3355 buffer[0] = ptrace (PTRACE_PEEKTEXT, pid,
3356 (PTRACE_ARG3_TYPE) (uintptr_t) addr, 0);
93ae6fdc
PA
3357 if (errno)
3358 return errno;
da6d8c04
DJ
3359
3360 if (count > 1)
3361 {
93ae6fdc 3362 errno = 0;
da6d8c04 3363 buffer[count - 1]
95954743 3364 = ptrace (PTRACE_PEEKTEXT, pid,
14ce3065
DE
3365 /* Coerce to a uintptr_t first to avoid potential gcc warning
3366 about coercing an 8 byte integer to a 4 byte pointer. */
3367 (PTRACE_ARG3_TYPE) (uintptr_t) (addr + (count - 1)
3368 * sizeof (PTRACE_XFER_TYPE)),
d844cde6 3369 0);
93ae6fdc
PA
3370 if (errno)
3371 return errno;
da6d8c04
DJ
3372 }
3373
93ae6fdc 3374 /* Copy data to be written over corresponding part of buffer. */
da6d8c04
DJ
3375
3376 memcpy ((char *) buffer + (memaddr & (sizeof (PTRACE_XFER_TYPE) - 1)), myaddr, len);
3377
3378 /* Write the entire buffer. */
3379
3380 for (i = 0; i < count; i++, addr += sizeof (PTRACE_XFER_TYPE))
3381 {
3382 errno = 0;
14ce3065
DE
3383 ptrace (PTRACE_POKETEXT, pid,
3384 /* Coerce to a uintptr_t first to avoid potential gcc warning
3385 about coercing an 8 byte integer to a 4 byte pointer. */
3386 (PTRACE_ARG3_TYPE) (uintptr_t) addr,
3387 (PTRACE_ARG4_TYPE) buffer[i]);
da6d8c04
DJ
3388 if (errno)
3389 return errno;
3390 }
3391
3392 return 0;
3393}
2f2893d9 3394
6076632b 3395/* Non-zero if the kernel supports PTRACE_O_TRACEFORK. */
24a09b5f
DJ
3396static int linux_supports_tracefork_flag;
3397
1e7fc18c
PA
3398static void
3399linux_enable_event_reporting (int pid)
3400{
3401 if (!linux_supports_tracefork_flag)
3402 return;
3403
3404 ptrace (PTRACE_SETOPTIONS, pid, 0, (PTRACE_ARG4_TYPE) PTRACE_O_TRACECLONE);
3405}
3406
51c2684e 3407/* Helper functions for linux_test_for_tracefork, called via clone (). */
24a09b5f 3408
51c2684e
DJ
3409static int
3410linux_tracefork_grandchild (void *arg)
3411{
3412 _exit (0);
3413}
3414
7407e2de
AS
3415#define STACK_SIZE 4096
3416
51c2684e
DJ
3417static int
3418linux_tracefork_child (void *arg)
24a09b5f
DJ
3419{
3420 ptrace (PTRACE_TRACEME, 0, 0, 0);
3421 kill (getpid (), SIGSTOP);
e4b7f41c
JK
3422
3423#if !(defined(__UCLIBC__) && defined(HAS_NOMMU))
3424
3425 if (fork () == 0)
3426 linux_tracefork_grandchild (NULL);
3427
3428#else /* defined(__UCLIBC__) && defined(HAS_NOMMU) */
3429
7407e2de
AS
3430#ifdef __ia64__
3431 __clone2 (linux_tracefork_grandchild, arg, STACK_SIZE,
3432 CLONE_VM | SIGCHLD, NULL);
3433#else
3434 clone (linux_tracefork_grandchild, arg + STACK_SIZE,
3435 CLONE_VM | SIGCHLD, NULL);
3436#endif
e4b7f41c
JK
3437
3438#endif /* defined(__UCLIBC__) && defined(HAS_NOMMU) */
3439
24a09b5f
DJ
3440 _exit (0);
3441}
3442
24a09b5f
DJ
3443/* Determine if PTRACE_O_TRACEFORK can be used to follow fork events. Make
3444 sure that we can enable the option, and that it had the desired
3445 effect. */
3446
3447static void
3448linux_test_for_tracefork (void)
3449{
3450 int child_pid, ret, status;
3451 long second_pid;
e4b7f41c 3452#if defined(__UCLIBC__) && defined(HAS_NOMMU)
bca929d3 3453 char *stack = xmalloc (STACK_SIZE * 4);
e4b7f41c 3454#endif /* defined(__UCLIBC__) && defined(HAS_NOMMU) */
24a09b5f
DJ
3455
3456 linux_supports_tracefork_flag = 0;
3457
e4b7f41c
JK
3458#if !(defined(__UCLIBC__) && defined(HAS_NOMMU))
3459
3460 child_pid = fork ();
3461 if (child_pid == 0)
3462 linux_tracefork_child (NULL);
3463
3464#else /* defined(__UCLIBC__) && defined(HAS_NOMMU) */
3465
51c2684e 3466 /* Use CLONE_VM instead of fork, to support uClinux (no MMU). */
7407e2de
AS
3467#ifdef __ia64__
3468 child_pid = __clone2 (linux_tracefork_child, stack, STACK_SIZE,
3469 CLONE_VM | SIGCHLD, stack + STACK_SIZE * 2);
e4b7f41c 3470#else /* !__ia64__ */
7407e2de
AS
3471 child_pid = clone (linux_tracefork_child, stack + STACK_SIZE,
3472 CLONE_VM | SIGCHLD, stack + STACK_SIZE * 2);
e4b7f41c
JK
3473#endif /* !__ia64__ */
3474
3475#endif /* defined(__UCLIBC__) && defined(HAS_NOMMU) */
3476
24a09b5f 3477 if (child_pid == -1)
51c2684e 3478 perror_with_name ("clone");
24a09b5f
DJ
3479
3480 ret = my_waitpid (child_pid, &status, 0);
3481 if (ret == -1)
3482 perror_with_name ("waitpid");
3483 else if (ret != child_pid)
3484 error ("linux_test_for_tracefork: waitpid: unexpected result %d.", ret);
3485 if (! WIFSTOPPED (status))
3486 error ("linux_test_for_tracefork: waitpid: unexpected status %d.", status);
3487
14ce3065
DE
3488 ret = ptrace (PTRACE_SETOPTIONS, child_pid, 0,
3489 (PTRACE_ARG4_TYPE) PTRACE_O_TRACEFORK);
24a09b5f
DJ
3490 if (ret != 0)
3491 {
3492 ret = ptrace (PTRACE_KILL, child_pid, 0, 0);
3493 if (ret != 0)
3494 {
3495 warning ("linux_test_for_tracefork: failed to kill child");
3496 return;
3497 }
3498
3499 ret = my_waitpid (child_pid, &status, 0);
3500 if (ret != child_pid)
3501 warning ("linux_test_for_tracefork: failed to wait for killed child");
3502 else if (!WIFSIGNALED (status))
3503 warning ("linux_test_for_tracefork: unexpected wait status 0x%x from "
3504 "killed child", status);
3505
3506 return;
3507 }
3508
3509 ret = ptrace (PTRACE_CONT, child_pid, 0, 0);
3510 if (ret != 0)
3511 warning ("linux_test_for_tracefork: failed to resume child");
3512
3513 ret = my_waitpid (child_pid, &status, 0);
3514
3515 if (ret == child_pid && WIFSTOPPED (status)
3516 && status >> 16 == PTRACE_EVENT_FORK)
3517 {
3518 second_pid = 0;
3519 ret = ptrace (PTRACE_GETEVENTMSG, child_pid, 0, &second_pid);
3520 if (ret == 0 && second_pid != 0)
3521 {
3522 int second_status;
3523
3524 linux_supports_tracefork_flag = 1;
3525 my_waitpid (second_pid, &second_status, 0);
3526 ret = ptrace (PTRACE_KILL, second_pid, 0, 0);
3527 if (ret != 0)
3528 warning ("linux_test_for_tracefork: failed to kill second child");
3529 my_waitpid (second_pid, &status, 0);
3530 }
3531 }
3532 else
3533 warning ("linux_test_for_tracefork: unexpected result from waitpid "
3534 "(%d, status 0x%x)", ret, status);
3535
3536 do
3537 {
3538 ret = ptrace (PTRACE_KILL, child_pid, 0, 0);
3539 if (ret != 0)
3540 warning ("linux_test_for_tracefork: failed to kill child");
3541 my_waitpid (child_pid, &status, 0);
3542 }
3543 while (WIFSTOPPED (status));
51c2684e 3544
e4b7f41c 3545#if defined(__UCLIBC__) && defined(HAS_NOMMU)
51c2684e 3546 free (stack);
e4b7f41c 3547#endif /* defined(__UCLIBC__) && defined(HAS_NOMMU) */
24a09b5f
DJ
3548}
3549
3550
2f2893d9
DJ
3551static void
3552linux_look_up_symbols (void)
3553{
0d62e5e8 3554#ifdef USE_THREAD_DB
95954743
PA
3555 struct process_info *proc = current_process ();
3556
cdbfd419 3557 if (proc->private->thread_db != NULL)
0d62e5e8
DJ
3558 return;
3559
6076632b
DE
3560 /* If the kernel supports tracing forks then it also supports tracing
3561 clones, and then we don't need to use the magic thread event breakpoint
3562 to learn about threads. */
cdbfd419 3563 thread_db_init (!linux_supports_tracefork_flag);
0d62e5e8
DJ
3564#endif
3565}
3566
e5379b03 3567static void
ef57601b 3568linux_request_interrupt (void)
e5379b03 3569{
a1928bad 3570 extern unsigned long signal_pid;
e5379b03 3571
95954743
PA
3572 if (!ptid_equal (cont_thread, null_ptid)
3573 && !ptid_equal (cont_thread, minus_one_ptid))
e5379b03 3574 {
54a0b537 3575 struct lwp_info *lwp;
bd99dc85 3576 int lwpid;
e5379b03 3577
54a0b537 3578 lwp = get_thread_lwp (current_inferior);
bd99dc85
PA
3579 lwpid = lwpid_of (lwp);
3580 kill_lwp (lwpid, SIGINT);
e5379b03
DJ
3581 }
3582 else
ef57601b 3583 kill_lwp (signal_pid, SIGINT);
e5379b03
DJ
3584}
3585
aa691b87
RM
3586/* Copy LEN bytes from inferior's auxiliary vector starting at OFFSET
3587 to debugger memory starting at MYADDR. */
3588
3589static int
f450004a 3590linux_read_auxv (CORE_ADDR offset, unsigned char *myaddr, unsigned int len)
aa691b87
RM
3591{
3592 char filename[PATH_MAX];
3593 int fd, n;
95954743 3594 int pid = lwpid_of (get_thread_lwp (current_inferior));
aa691b87 3595
95954743 3596 snprintf (filename, sizeof filename, "/proc/%d/auxv", pid);
aa691b87
RM
3597
3598 fd = open (filename, O_RDONLY);
3599 if (fd < 0)
3600 return -1;
3601
3602 if (offset != (CORE_ADDR) 0
3603 && lseek (fd, (off_t) offset, SEEK_SET) != (off_t) offset)
3604 n = -1;
3605 else
3606 n = read (fd, myaddr, len);
3607
3608 close (fd);
3609
3610 return n;
3611}
3612
d993e290
PA
3613/* These breakpoint and watchpoint related wrapper functions simply
3614 pass on the function call if the target has registered a
3615 corresponding function. */
e013ee27
OF
3616
3617static int
d993e290 3618linux_insert_point (char type, CORE_ADDR addr, int len)
e013ee27 3619{
d993e290
PA
3620 if (the_low_target.insert_point != NULL)
3621 return the_low_target.insert_point (type, addr, len);
e013ee27
OF
3622 else
3623 /* Unsupported (see target.h). */
3624 return 1;
3625}
3626
3627static int
d993e290 3628linux_remove_point (char type, CORE_ADDR addr, int len)
e013ee27 3629{
d993e290
PA
3630 if (the_low_target.remove_point != NULL)
3631 return the_low_target.remove_point (type, addr, len);
e013ee27
OF
3632 else
3633 /* Unsupported (see target.h). */
3634 return 1;
3635}
3636
3637static int
3638linux_stopped_by_watchpoint (void)
3639{
c3adc08c
PA
3640 struct lwp_info *lwp = get_thread_lwp (current_inferior);
3641
3642 return lwp->stopped_by_watchpoint;
e013ee27
OF
3643}
3644
3645static CORE_ADDR
3646linux_stopped_data_address (void)
3647{
c3adc08c
PA
3648 struct lwp_info *lwp = get_thread_lwp (current_inferior);
3649
3650 return lwp->stopped_data_address;
e013ee27
OF
3651}
3652
42c81e2a 3653#if defined(__UCLIBC__) && defined(HAS_NOMMU)
52fb6437
NS
3654#if defined(__mcoldfire__)
3655/* These should really be defined in the kernel's ptrace.h header. */
3656#define PT_TEXT_ADDR 49*4
3657#define PT_DATA_ADDR 50*4
3658#define PT_TEXT_END_ADDR 51*4
3659#endif
3660
3661/* Under uClinux, programs are loaded at non-zero offsets, which we need
3662 to tell gdb about. */
3663
3664static int
3665linux_read_offsets (CORE_ADDR *text_p, CORE_ADDR *data_p)
3666{
3667#if defined(PT_TEXT_ADDR) && defined(PT_DATA_ADDR) && defined(PT_TEXT_END_ADDR)
3668 unsigned long text, text_end, data;
bd99dc85 3669 int pid = lwpid_of (get_thread_lwp (current_inferior));
52fb6437
NS
3670
3671 errno = 0;
3672
3673 text = ptrace (PTRACE_PEEKUSER, pid, (long)PT_TEXT_ADDR, 0);
3674 text_end = ptrace (PTRACE_PEEKUSER, pid, (long)PT_TEXT_END_ADDR, 0);
3675 data = ptrace (PTRACE_PEEKUSER, pid, (long)PT_DATA_ADDR, 0);
3676
3677 if (errno == 0)
3678 {
3679 /* Both text and data offsets produced at compile-time (and so
1b3f6016
PA
3680 used by gdb) are relative to the beginning of the program,
3681 with the data segment immediately following the text segment.
3682 However, the actual runtime layout in memory may put the data
3683 somewhere else, so when we send gdb a data base-address, we
3684 use the real data base address and subtract the compile-time
3685 data base-address from it (which is just the length of the
3686 text segment). BSS immediately follows data in both
3687 cases. */
52fb6437
NS
3688 *text_p = text;
3689 *data_p = data - (text_end - text);
1b3f6016 3690
52fb6437
NS
3691 return 1;
3692 }
3693#endif
3694 return 0;
3695}
3696#endif
3697
dc146f7c
VP
3698static int
3699compare_ints (const void *xa, const void *xb)
3700{
3701 int a = *(const int *)xa;
3702 int b = *(const int *)xb;
3703
3704 return a - b;
3705}
3706
3707static int *
3708unique (int *b, int *e)
3709{
3710 int *d = b;
3711 while (++b != e)
3712 if (*d != *b)
3713 *++d = *b;
3714 return ++d;
3715}
3716
3717/* Given PID, iterates over all threads in that process.
3718
3719 Information about each thread, in a format suitable for qXfer:osdata:thread
3720 is printed to BUFFER, if it's not NULL. BUFFER is assumed to be already
3721 initialized, and the caller is responsible for finishing and appending '\0'
3722 to it.
3723
3724 The list of cores that threads are running on is assigned to *CORES, if it
3725 is not NULL. If no cores are found, *CORES will be set to NULL. Caller
3726 should free *CORES. */
3727
3728static void
3729list_threads (int pid, struct buffer *buffer, char **cores)
3730{
3731 int count = 0;
3732 int allocated = 10;
3733 int *core_numbers = xmalloc (sizeof (int) * allocated);
3734 char pathname[128];
3735 DIR *dir;
3736 struct dirent *dp;
3737 struct stat statbuf;
3738
3739 sprintf (pathname, "/proc/%d/task", pid);
3740 if (stat (pathname, &statbuf) == 0 && S_ISDIR (statbuf.st_mode))
3741 {
3742 dir = opendir (pathname);
3743 if (!dir)
3744 {
3745 free (core_numbers);
3746 return;
3747 }
3748
3749 while ((dp = readdir (dir)) != NULL)
3750 {
3751 unsigned long lwp = strtoul (dp->d_name, NULL, 10);
3752
3753 if (lwp != 0)
3754 {
3755 unsigned core = linux_core_of_thread (ptid_build (pid, lwp, 0));
3756
3757 if (core != -1)
3758 {
3759 char s[sizeof ("4294967295")];
3760 sprintf (s, "%u", core);
3761
3762 if (count == allocated)
3763 {
3764 allocated *= 2;
3765 core_numbers = realloc (core_numbers,
3766 sizeof (int) * allocated);
3767 }
3768 core_numbers[count++] = core;
3769 if (buffer)
3770 buffer_xml_printf (buffer,
3771 "<item>"
3772 "<column name=\"pid\">%d</column>"
3773 "<column name=\"tid\">%s</column>"
3774 "<column name=\"core\">%s</column>"
3775 "</item>", pid, dp->d_name, s);
3776 }
3777 else
3778 {
3779 if (buffer)
3780 buffer_xml_printf (buffer,
3781 "<item>"
3782 "<column name=\"pid\">%d</column>"
3783 "<column name=\"tid\">%s</column>"
3784 "</item>", pid, dp->d_name);
3785 }
3786 }
3787 }
3788 }
3789
3790 if (cores)
3791 {
3792 *cores = NULL;
3793 if (count > 0)
3794 {
3795 struct buffer buffer2;
3796 int *b;
3797 int *e;
3798 qsort (core_numbers, count, sizeof (int), compare_ints);
3799
3800 /* Remove duplicates. */
3801 b = core_numbers;
3802 e = unique (b, core_numbers + count);
3803
3804 buffer_init (&buffer2);
3805
3806 for (b = core_numbers; b != e; ++b)
3807 {
3808 char number[sizeof ("4294967295")];
3809 sprintf (number, "%u", *b);
3810 buffer_xml_printf (&buffer2, "%s%s",
3811 (b == core_numbers) ? "" : ",", number);
3812 }
3813 buffer_grow_str0 (&buffer2, "");
3814
3815 *cores = buffer_finish (&buffer2);
3816 }
3817 }
3818 free (core_numbers);
3819}
3820
3821static void
3822show_process (int pid, const char *username, struct buffer *buffer)
3823{
3824 char pathname[128];
3825 FILE *f;
3826 char cmd[MAXPATHLEN + 1];
3827
3828 sprintf (pathname, "/proc/%d/cmdline", pid);
3829
3830 if ((f = fopen (pathname, "r")) != NULL)
3831 {
3832 size_t len = fread (cmd, 1, sizeof (cmd) - 1, f);
3833 if (len > 0)
3834 {
3835 char *cores = 0;
3836 int i;
3837 for (i = 0; i < len; i++)
3838 if (cmd[i] == '\0')
3839 cmd[i] = ' ';
3840 cmd[len] = '\0';
3841
3842 buffer_xml_printf (buffer,
3843 "<item>"
3844 "<column name=\"pid\">%d</column>"
3845 "<column name=\"user\">%s</column>"
3846 "<column name=\"command\">%s</column>",
3847 pid,
3848 username,
3849 cmd);
3850
3851 /* This only collects core numbers, and does not print threads. */
3852 list_threads (pid, NULL, &cores);
3853
3854 if (cores)
3855 {
3856 buffer_xml_printf (buffer,
3857 "<column name=\"cores\">%s</column>", cores);
3858 free (cores);
3859 }
3860
3861 buffer_xml_printf (buffer, "</item>");
3862 }
3863 fclose (f);
3864 }
3865}
3866
07e059b5
VP
3867static int
3868linux_qxfer_osdata (const char *annex,
1b3f6016
PA
3869 unsigned char *readbuf, unsigned const char *writebuf,
3870 CORE_ADDR offset, int len)
07e059b5
VP
3871{
3872 /* We make the process list snapshot when the object starts to be
3873 read. */
3874 static const char *buf;
3875 static long len_avail = -1;
3876 static struct buffer buffer;
dc146f7c
VP
3877 int processes = 0;
3878 int threads = 0;
07e059b5
VP
3879
3880 DIR *dirp;
3881
dc146f7c
VP
3882 if (strcmp (annex, "processes") == 0)
3883 processes = 1;
3884 else if (strcmp (annex, "threads") == 0)
3885 threads = 1;
3886 else
07e059b5
VP
3887 return 0;
3888
3889 if (!readbuf || writebuf)
3890 return 0;
3891
3892 if (offset == 0)
3893 {
3894 if (len_avail != -1 && len_avail != 0)
3895 buffer_free (&buffer);
3896 len_avail = 0;
3897 buf = NULL;
3898 buffer_init (&buffer);
dc146f7c
VP
3899 if (processes)
3900 buffer_grow_str (&buffer, "<osdata type=\"processes\">");
3901 else if (threads)
3902 buffer_grow_str (&buffer, "<osdata type=\"threads\">");
07e059b5
VP
3903
3904 dirp = opendir ("/proc");
3905 if (dirp)
3906 {
1b3f6016
PA
3907 struct dirent *dp;
3908 while ((dp = readdir (dirp)) != NULL)
3909 {
3910 struct stat statbuf;
3911 char procentry[sizeof ("/proc/4294967295")];
3912
3913 if (!isdigit (dp->d_name[0])
3914 || strlen (dp->d_name) > sizeof ("4294967295") - 1)
3915 continue;
3916
3917 sprintf (procentry, "/proc/%s", dp->d_name);
3918 if (stat (procentry, &statbuf) == 0
3919 && S_ISDIR (statbuf.st_mode))
3920 {
dc146f7c 3921 int pid = (int) strtoul (dp->d_name, NULL, 10);
1b3f6016 3922
dc146f7c 3923 if (processes)
1b3f6016 3924 {
dc146f7c
VP
3925 struct passwd *entry = getpwuid (statbuf.st_uid);
3926 show_process (pid, entry ? entry->pw_name : "?", &buffer);
3927 }
3928 else if (threads)
3929 {
3930 list_threads (pid, &buffer, NULL);
1b3f6016
PA
3931 }
3932 }
3933 }
07e059b5 3934
1b3f6016 3935 closedir (dirp);
07e059b5
VP
3936 }
3937 buffer_grow_str0 (&buffer, "</osdata>\n");
3938 buf = buffer_finish (&buffer);
3939 len_avail = strlen (buf);
3940 }
3941
3942 if (offset >= len_avail)
3943 {
3944 /* Done. Get rid of the data. */
3945 buffer_free (&buffer);
3946 buf = NULL;
3947 len_avail = 0;
3948 return 0;
3949 }
3950
3951 if (len > len_avail - offset)
3952 len = len_avail - offset;
3953 memcpy (readbuf, buf + offset, len);
3954
3955 return len;
3956}
3957
d0722149
DE
3958/* Convert a native/host siginfo object, into/from the siginfo in the
3959 layout of the inferiors' architecture. */
3960
3961static void
3962siginfo_fixup (struct siginfo *siginfo, void *inf_siginfo, int direction)
3963{
3964 int done = 0;
3965
3966 if (the_low_target.siginfo_fixup != NULL)
3967 done = the_low_target.siginfo_fixup (siginfo, inf_siginfo, direction);
3968
3969 /* If there was no callback, or the callback didn't do anything,
3970 then just do a straight memcpy. */
3971 if (!done)
3972 {
3973 if (direction == 1)
3974 memcpy (siginfo, inf_siginfo, sizeof (struct siginfo));
3975 else
3976 memcpy (inf_siginfo, siginfo, sizeof (struct siginfo));
3977 }
3978}
3979
4aa995e1
PA
3980static int
3981linux_xfer_siginfo (const char *annex, unsigned char *readbuf,
3982 unsigned const char *writebuf, CORE_ADDR offset, int len)
3983{
d0722149 3984 int pid;
4aa995e1 3985 struct siginfo siginfo;
d0722149 3986 char inf_siginfo[sizeof (struct siginfo)];
4aa995e1
PA
3987
3988 if (current_inferior == NULL)
3989 return -1;
3990
bd99dc85 3991 pid = lwpid_of (get_thread_lwp (current_inferior));
4aa995e1
PA
3992
3993 if (debug_threads)
d0722149 3994 fprintf (stderr, "%s siginfo for lwp %d.\n",
4aa995e1
PA
3995 readbuf != NULL ? "Reading" : "Writing",
3996 pid);
3997
3998 if (offset > sizeof (siginfo))
3999 return -1;
4000
4001 if (ptrace (PTRACE_GETSIGINFO, pid, 0, &siginfo) != 0)
4002 return -1;
4003
d0722149
DE
4004 /* When GDBSERVER is built as a 64-bit application, ptrace writes into
4005 SIGINFO an object with 64-bit layout. Since debugging a 32-bit
4006 inferior with a 64-bit GDBSERVER should look the same as debugging it
4007 with a 32-bit GDBSERVER, we need to convert it. */
4008 siginfo_fixup (&siginfo, inf_siginfo, 0);
4009
4aa995e1
PA
4010 if (offset + len > sizeof (siginfo))
4011 len = sizeof (siginfo) - offset;
4012
4013 if (readbuf != NULL)
d0722149 4014 memcpy (readbuf, inf_siginfo + offset, len);
4aa995e1
PA
4015 else
4016 {
d0722149
DE
4017 memcpy (inf_siginfo + offset, writebuf, len);
4018
4019 /* Convert back to ptrace layout before flushing it out. */
4020 siginfo_fixup (&siginfo, inf_siginfo, 1);
4021
4aa995e1
PA
4022 if (ptrace (PTRACE_SETSIGINFO, pid, 0, &siginfo) != 0)
4023 return -1;
4024 }
4025
4026 return len;
4027}
4028
bd99dc85
PA
4029/* SIGCHLD handler that serves two purposes: In non-stop/async mode,
4030 so we notice when children change state; as the handler for the
4031 sigsuspend in my_waitpid. */
4032
4033static void
4034sigchld_handler (int signo)
4035{
4036 int old_errno = errno;
4037
4038 if (debug_threads)
4039 /* fprintf is not async-signal-safe, so call write directly. */
4040 write (2, "sigchld_handler\n", sizeof ("sigchld_handler\n") - 1);
4041
4042 if (target_is_async_p ())
4043 async_file_mark (); /* trigger a linux_wait */
4044
4045 errno = old_errno;
4046}
4047
4048static int
4049linux_supports_non_stop (void)
4050{
4051 return 1;
4052}
4053
4054static int
4055linux_async (int enable)
4056{
4057 int previous = (linux_event_pipe[0] != -1);
4058
8336d594
PA
4059 if (debug_threads)
4060 fprintf (stderr, "linux_async (%d), previous=%d\n",
4061 enable, previous);
4062
bd99dc85
PA
4063 if (previous != enable)
4064 {
4065 sigset_t mask;
4066 sigemptyset (&mask);
4067 sigaddset (&mask, SIGCHLD);
4068
4069 sigprocmask (SIG_BLOCK, &mask, NULL);
4070
4071 if (enable)
4072 {
4073 if (pipe (linux_event_pipe) == -1)
4074 fatal ("creating event pipe failed.");
4075
4076 fcntl (linux_event_pipe[0], F_SETFL, O_NONBLOCK);
4077 fcntl (linux_event_pipe[1], F_SETFL, O_NONBLOCK);
4078
4079 /* Register the event loop handler. */
4080 add_file_handler (linux_event_pipe[0],
4081 handle_target_event, NULL);
4082
4083 /* Always trigger a linux_wait. */
4084 async_file_mark ();
4085 }
4086 else
4087 {
4088 delete_file_handler (linux_event_pipe[0]);
4089
4090 close (linux_event_pipe[0]);
4091 close (linux_event_pipe[1]);
4092 linux_event_pipe[0] = -1;
4093 linux_event_pipe[1] = -1;
4094 }
4095
4096 sigprocmask (SIG_UNBLOCK, &mask, NULL);
4097 }
4098
4099 return previous;
4100}
4101
4102static int
4103linux_start_non_stop (int nonstop)
4104{
4105 /* Register or unregister from event-loop accordingly. */
4106 linux_async (nonstop);
4107 return 0;
4108}
4109
cf8fd78b
PA
4110static int
4111linux_supports_multi_process (void)
4112{
4113 return 1;
4114}
4115
efcbbd14
UW
4116
4117/* Enumerate spufs IDs for process PID. */
4118static int
4119spu_enumerate_spu_ids (long pid, unsigned char *buf, CORE_ADDR offset, int len)
4120{
4121 int pos = 0;
4122 int written = 0;
4123 char path[128];
4124 DIR *dir;
4125 struct dirent *entry;
4126
4127 sprintf (path, "/proc/%ld/fd", pid);
4128 dir = opendir (path);
4129 if (!dir)
4130 return -1;
4131
4132 rewinddir (dir);
4133 while ((entry = readdir (dir)) != NULL)
4134 {
4135 struct stat st;
4136 struct statfs stfs;
4137 int fd;
4138
4139 fd = atoi (entry->d_name);
4140 if (!fd)
4141 continue;
4142
4143 sprintf (path, "/proc/%ld/fd/%d", pid, fd);
4144 if (stat (path, &st) != 0)
4145 continue;
4146 if (!S_ISDIR (st.st_mode))
4147 continue;
4148
4149 if (statfs (path, &stfs) != 0)
4150 continue;
4151 if (stfs.f_type != SPUFS_MAGIC)
4152 continue;
4153
4154 if (pos >= offset && pos + 4 <= offset + len)
4155 {
4156 *(unsigned int *)(buf + pos - offset) = fd;
4157 written += 4;
4158 }
4159 pos += 4;
4160 }
4161
4162 closedir (dir);
4163 return written;
4164}
4165
4166/* Implements the to_xfer_partial interface for the TARGET_OBJECT_SPU
4167 object type, using the /proc file system. */
4168static int
4169linux_qxfer_spu (const char *annex, unsigned char *readbuf,
4170 unsigned const char *writebuf,
4171 CORE_ADDR offset, int len)
4172{
4173 long pid = lwpid_of (get_thread_lwp (current_inferior));
4174 char buf[128];
4175 int fd = 0;
4176 int ret = 0;
4177
4178 if (!writebuf && !readbuf)
4179 return -1;
4180
4181 if (!*annex)
4182 {
4183 if (!readbuf)
4184 return -1;
4185 else
4186 return spu_enumerate_spu_ids (pid, readbuf, offset, len);
4187 }
4188
4189 sprintf (buf, "/proc/%ld/fd/%s", pid, annex);
4190 fd = open (buf, writebuf? O_WRONLY : O_RDONLY);
4191 if (fd <= 0)
4192 return -1;
4193
4194 if (offset != 0
4195 && lseek (fd, (off_t) offset, SEEK_SET) != (off_t) offset)
4196 {
4197 close (fd);
4198 return 0;
4199 }
4200
4201 if (writebuf)
4202 ret = write (fd, writebuf, (size_t) len);
4203 else
4204 ret = read (fd, readbuf, (size_t) len);
4205
4206 close (fd);
4207 return ret;
4208}
4209
dc146f7c
VP
4210static int
4211linux_core_of_thread (ptid_t ptid)
4212{
4213 char filename[sizeof ("/proc//task//stat")
4214 + 2 * 20 /* decimal digits for 2 numbers, max 2^64 bit each */
4215 + 1];
4216 FILE *f;
4217 char *content = NULL;
4218 char *p;
4219 char *ts = 0;
4220 int content_read = 0;
4221 int i;
4222 int core;
4223
4224 sprintf (filename, "/proc/%d/task/%ld/stat",
4225 ptid_get_pid (ptid), ptid_get_lwp (ptid));
4226 f = fopen (filename, "r");
4227 if (!f)
4228 return -1;
4229
4230 for (;;)
4231 {
4232 int n;
4233 content = realloc (content, content_read + 1024);
4234 n = fread (content + content_read, 1, 1024, f);
4235 content_read += n;
4236 if (n < 1024)
4237 {
4238 content[content_read] = '\0';
4239 break;
4240 }
4241 }
4242
4243 p = strchr (content, '(');
4244 p = strchr (p, ')') + 2; /* skip ")" and a whitespace. */
4245
4246 p = strtok_r (p, " ", &ts);
4247 for (i = 0; i != 36; ++i)
4248 p = strtok_r (NULL, " ", &ts);
4249
4250 if (sscanf (p, "%d", &core) == 0)
4251 core = -1;
4252
4253 free (content);
4254 fclose (f);
4255
4256 return core;
4257}
4258
1570b33e
L
4259static void
4260linux_process_qsupported (const char *query)
4261{
4262 if (the_low_target.process_qsupported != NULL)
4263 the_low_target.process_qsupported (query);
4264}
4265
219f2f23
PA
4266static int
4267linux_supports_tracepoints (void)
4268{
4269 if (*the_low_target.supports_tracepoints == NULL)
4270 return 0;
4271
4272 return (*the_low_target.supports_tracepoints) ();
4273}
4274
4275static CORE_ADDR
4276linux_read_pc (struct regcache *regcache)
4277{
4278 if (the_low_target.get_pc == NULL)
4279 return 0;
4280
4281 return (*the_low_target.get_pc) (regcache);
4282}
4283
4284static void
4285linux_write_pc (struct regcache *regcache, CORE_ADDR pc)
4286{
4287 gdb_assert (the_low_target.set_pc != NULL);
4288
4289 (*the_low_target.set_pc) (regcache, pc);
4290}
4291
8336d594
PA
4292static int
4293linux_thread_stopped (struct thread_info *thread)
4294{
4295 return get_thread_lwp (thread)->stopped;
4296}
4297
4298/* This exposes stop-all-threads functionality to other modules. */
4299
4300static void
4301linux_pause_all (void)
4302{
4303 stop_all_lwps ();
4304}
4305
ce3a066d
DJ
4306static struct target_ops linux_target_ops = {
4307 linux_create_inferior,
4308 linux_attach,
4309 linux_kill,
6ad8ae5c 4310 linux_detach,
8336d594 4311 linux_mourn,
444d6139 4312 linux_join,
ce3a066d
DJ
4313 linux_thread_alive,
4314 linux_resume,
4315 linux_wait,
4316 linux_fetch_registers,
4317 linux_store_registers,
4318 linux_read_memory,
4319 linux_write_memory,
2f2893d9 4320 linux_look_up_symbols,
ef57601b 4321 linux_request_interrupt,
aa691b87 4322 linux_read_auxv,
d993e290
PA
4323 linux_insert_point,
4324 linux_remove_point,
e013ee27
OF
4325 linux_stopped_by_watchpoint,
4326 linux_stopped_data_address,
42c81e2a 4327#if defined(__UCLIBC__) && defined(HAS_NOMMU)
52fb6437 4328 linux_read_offsets,
dae5f5cf
DJ
4329#else
4330 NULL,
4331#endif
4332#ifdef USE_THREAD_DB
4333 thread_db_get_tls_address,
4334#else
4335 NULL,
52fb6437 4336#endif
efcbbd14 4337 linux_qxfer_spu,
59a016f0 4338 hostio_last_error_from_errno,
07e059b5 4339 linux_qxfer_osdata,
4aa995e1 4340 linux_xfer_siginfo,
bd99dc85
PA
4341 linux_supports_non_stop,
4342 linux_async,
4343 linux_start_non_stop,
cdbfd419
PP
4344 linux_supports_multi_process,
4345#ifdef USE_THREAD_DB
dc146f7c 4346 thread_db_handle_monitor_command,
cdbfd419 4347#else
dc146f7c 4348 NULL,
cdbfd419 4349#endif
1570b33e 4350 linux_core_of_thread,
219f2f23
PA
4351 linux_process_qsupported,
4352 linux_supports_tracepoints,
4353 linux_read_pc,
8336d594
PA
4354 linux_write_pc,
4355 linux_thread_stopped,
711e434b
PM
4356 linux_pause_all,
4357 NULL, /* get_tib_address (Windows OS specific). */
ce3a066d
DJ
4358};
4359
0d62e5e8
DJ
4360static void
4361linux_init_signals ()
4362{
4363 /* FIXME drow/2002-06-09: As above, we should check with LinuxThreads
4364 to find what the cancel signal actually is. */
60c3d7b0 4365#ifdef __SIGRTMIN /* Bionic doesn't use SIGRTMIN the way glibc does. */
254787d4 4366 signal (__SIGRTMIN+1, SIG_IGN);
60c3d7b0 4367#endif
0d62e5e8
DJ
4368}
4369
da6d8c04
DJ
4370void
4371initialize_low (void)
4372{
bd99dc85
PA
4373 struct sigaction sigchld_action;
4374 memset (&sigchld_action, 0, sizeof (sigchld_action));
ce3a066d 4375 set_target_ops (&linux_target_ops);
611cb4a5
DJ
4376 set_breakpoint_data (the_low_target.breakpoint,
4377 the_low_target.breakpoint_len);
0d62e5e8 4378 linux_init_signals ();
24a09b5f 4379 linux_test_for_tracefork ();
52fa2412
UW
4380#ifdef HAVE_LINUX_REGSETS
4381 for (num_regsets = 0; target_regsets[num_regsets].size >= 0; num_regsets++)
4382 ;
bca929d3 4383 disabled_regsets = xmalloc (num_regsets);
52fa2412 4384#endif
bd99dc85
PA
4385
4386 sigchld_action.sa_handler = sigchld_handler;
4387 sigemptyset (&sigchld_action.sa_mask);
4388 sigchld_action.sa_flags = SA_RESTART;
4389 sigaction (SIGCHLD, &sigchld_action, NULL);
da6d8c04 4390}
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