Remove ptid_get_pid
[deliverable/binutils-gdb.git] / gdb / gdbserver / linux-low.c
1 /* Low level interface to ptrace, for the remote server for GDB.
2 Copyright (C) 1995-2018 Free Software Foundation, Inc.
3
4 This file is part of GDB.
5
6 This program is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 3 of the License, or
9 (at your option) any later version.
10
11 This program is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
15
16 You should have received a copy of the GNU General Public License
17 along with this program. If not, see <http://www.gnu.org/licenses/>. */
18
19 #include "server.h"
20 #include "linux-low.h"
21 #include "nat/linux-osdata.h"
22 #include "agent.h"
23 #include "tdesc.h"
24 #include "rsp-low.h"
25 #include "signals-state-save-restore.h"
26 #include "nat/linux-nat.h"
27 #include "nat/linux-waitpid.h"
28 #include "gdb_wait.h"
29 #include "nat/gdb_ptrace.h"
30 #include "nat/linux-ptrace.h"
31 #include "nat/linux-procfs.h"
32 #include "nat/linux-personality.h"
33 #include <signal.h>
34 #include <sys/ioctl.h>
35 #include <fcntl.h>
36 #include <unistd.h>
37 #include <sys/syscall.h>
38 #include <sched.h>
39 #include <ctype.h>
40 #include <pwd.h>
41 #include <sys/types.h>
42 #include <dirent.h>
43 #include <sys/stat.h>
44 #include <sys/vfs.h>
45 #include <sys/uio.h>
46 #include "filestuff.h"
47 #include "tracepoint.h"
48 #include "hostio.h"
49 #include <inttypes.h>
50 #include "common-inferior.h"
51 #include "nat/fork-inferior.h"
52 #include "environ.h"
53 #include "common/scoped_restore.h"
54 #ifndef ELFMAG0
55 /* Don't include <linux/elf.h> here. If it got included by gdb_proc_service.h
56 then ELFMAG0 will have been defined. If it didn't get included by
57 gdb_proc_service.h then including it will likely introduce a duplicate
58 definition of elf_fpregset_t. */
59 #include <elf.h>
60 #endif
61 #include "nat/linux-namespaces.h"
62
63 #ifndef SPUFS_MAGIC
64 #define SPUFS_MAGIC 0x23c9b64e
65 #endif
66
67 #ifdef HAVE_PERSONALITY
68 # include <sys/personality.h>
69 # if !HAVE_DECL_ADDR_NO_RANDOMIZE
70 # define ADDR_NO_RANDOMIZE 0x0040000
71 # endif
72 #endif
73
74 #ifndef O_LARGEFILE
75 #define O_LARGEFILE 0
76 #endif
77
78 /* Some targets did not define these ptrace constants from the start,
79 so gdbserver defines them locally here. In the future, these may
80 be removed after they are added to asm/ptrace.h. */
81 #if !(defined(PT_TEXT_ADDR) \
82 || defined(PT_DATA_ADDR) \
83 || defined(PT_TEXT_END_ADDR))
84 #if defined(__mcoldfire__)
85 /* These are still undefined in 3.10 kernels. */
86 #define PT_TEXT_ADDR 49*4
87 #define PT_DATA_ADDR 50*4
88 #define PT_TEXT_END_ADDR 51*4
89 /* BFIN already defines these since at least 2.6.32 kernels. */
90 #elif defined(BFIN)
91 #define PT_TEXT_ADDR 220
92 #define PT_TEXT_END_ADDR 224
93 #define PT_DATA_ADDR 228
94 /* These are still undefined in 3.10 kernels. */
95 #elif defined(__TMS320C6X__)
96 #define PT_TEXT_ADDR (0x10000*4)
97 #define PT_DATA_ADDR (0x10004*4)
98 #define PT_TEXT_END_ADDR (0x10008*4)
99 #endif
100 #endif
101
102 #ifdef HAVE_LINUX_BTRACE
103 # include "nat/linux-btrace.h"
104 # include "btrace-common.h"
105 #endif
106
107 #ifndef HAVE_ELF32_AUXV_T
108 /* Copied from glibc's elf.h. */
109 typedef struct
110 {
111 uint32_t a_type; /* Entry type */
112 union
113 {
114 uint32_t a_val; /* Integer value */
115 /* We use to have pointer elements added here. We cannot do that,
116 though, since it does not work when using 32-bit definitions
117 on 64-bit platforms and vice versa. */
118 } a_un;
119 } Elf32_auxv_t;
120 #endif
121
122 #ifndef HAVE_ELF64_AUXV_T
123 /* Copied from glibc's elf.h. */
124 typedef struct
125 {
126 uint64_t a_type; /* Entry type */
127 union
128 {
129 uint64_t a_val; /* Integer value */
130 /* We use to have pointer elements added here. We cannot do that,
131 though, since it does not work when using 32-bit definitions
132 on 64-bit platforms and vice versa. */
133 } a_un;
134 } Elf64_auxv_t;
135 #endif
136
137 /* Does the current host support PTRACE_GETREGSET? */
138 int have_ptrace_getregset = -1;
139
140 /* LWP accessors. */
141
142 /* See nat/linux-nat.h. */
143
144 ptid_t
145 ptid_of_lwp (struct lwp_info *lwp)
146 {
147 return ptid_of (get_lwp_thread (lwp));
148 }
149
150 /* See nat/linux-nat.h. */
151
152 void
153 lwp_set_arch_private_info (struct lwp_info *lwp,
154 struct arch_lwp_info *info)
155 {
156 lwp->arch_private = info;
157 }
158
159 /* See nat/linux-nat.h. */
160
161 struct arch_lwp_info *
162 lwp_arch_private_info (struct lwp_info *lwp)
163 {
164 return lwp->arch_private;
165 }
166
167 /* See nat/linux-nat.h. */
168
169 int
170 lwp_is_stopped (struct lwp_info *lwp)
171 {
172 return lwp->stopped;
173 }
174
175 /* See nat/linux-nat.h. */
176
177 enum target_stop_reason
178 lwp_stop_reason (struct lwp_info *lwp)
179 {
180 return lwp->stop_reason;
181 }
182
183 /* See nat/linux-nat.h. */
184
185 int
186 lwp_is_stepping (struct lwp_info *lwp)
187 {
188 return lwp->stepping;
189 }
190
191 /* A list of all unknown processes which receive stop signals. Some
192 other process will presumably claim each of these as forked
193 children momentarily. */
194
195 struct simple_pid_list
196 {
197 /* The process ID. */
198 int pid;
199
200 /* The status as reported by waitpid. */
201 int status;
202
203 /* Next in chain. */
204 struct simple_pid_list *next;
205 };
206 struct simple_pid_list *stopped_pids;
207
208 /* Trivial list manipulation functions to keep track of a list of new
209 stopped processes. */
210
211 static void
212 add_to_pid_list (struct simple_pid_list **listp, int pid, int status)
213 {
214 struct simple_pid_list *new_pid = XNEW (struct simple_pid_list);
215
216 new_pid->pid = pid;
217 new_pid->status = status;
218 new_pid->next = *listp;
219 *listp = new_pid;
220 }
221
222 static int
223 pull_pid_from_list (struct simple_pid_list **listp, int pid, int *statusp)
224 {
225 struct simple_pid_list **p;
226
227 for (p = listp; *p != NULL; p = &(*p)->next)
228 if ((*p)->pid == pid)
229 {
230 struct simple_pid_list *next = (*p)->next;
231
232 *statusp = (*p)->status;
233 xfree (*p);
234 *p = next;
235 return 1;
236 }
237 return 0;
238 }
239
240 enum stopping_threads_kind
241 {
242 /* Not stopping threads presently. */
243 NOT_STOPPING_THREADS,
244
245 /* Stopping threads. */
246 STOPPING_THREADS,
247
248 /* Stopping and suspending threads. */
249 STOPPING_AND_SUSPENDING_THREADS
250 };
251
252 /* This is set while stop_all_lwps is in effect. */
253 enum stopping_threads_kind stopping_threads = NOT_STOPPING_THREADS;
254
255 /* FIXME make into a target method? */
256 int using_threads = 1;
257
258 /* True if we're presently stabilizing threads (moving them out of
259 jump pads). */
260 static int stabilizing_threads;
261
262 static void linux_resume_one_lwp (struct lwp_info *lwp,
263 int step, int signal, siginfo_t *info);
264 static void linux_resume (struct thread_resume *resume_info, size_t n);
265 static void stop_all_lwps (int suspend, struct lwp_info *except);
266 static void unstop_all_lwps (int unsuspend, struct lwp_info *except);
267 static void unsuspend_all_lwps (struct lwp_info *except);
268 static int linux_wait_for_event_filtered (ptid_t wait_ptid, ptid_t filter_ptid,
269 int *wstat, int options);
270 static int linux_wait_for_event (ptid_t ptid, int *wstat, int options);
271 static struct lwp_info *add_lwp (ptid_t ptid);
272 static void linux_mourn (struct process_info *process);
273 static int linux_stopped_by_watchpoint (void);
274 static void mark_lwp_dead (struct lwp_info *lwp, int wstat);
275 static int lwp_is_marked_dead (struct lwp_info *lwp);
276 static void proceed_all_lwps (void);
277 static int finish_step_over (struct lwp_info *lwp);
278 static int kill_lwp (unsigned long lwpid, int signo);
279 static void enqueue_pending_signal (struct lwp_info *lwp, int signal, siginfo_t *info);
280 static void complete_ongoing_step_over (void);
281 static int linux_low_ptrace_options (int attached);
282 static int check_ptrace_stopped_lwp_gone (struct lwp_info *lp);
283 static void proceed_one_lwp (thread_info *thread, lwp_info *except);
284
285 /* When the event-loop is doing a step-over, this points at the thread
286 being stepped. */
287 ptid_t step_over_bkpt;
288
289 /* True if the low target can hardware single-step. */
290
291 static int
292 can_hardware_single_step (void)
293 {
294 if (the_low_target.supports_hardware_single_step != NULL)
295 return the_low_target.supports_hardware_single_step ();
296 else
297 return 0;
298 }
299
300 /* True if the low target can software single-step. Such targets
301 implement the GET_NEXT_PCS callback. */
302
303 static int
304 can_software_single_step (void)
305 {
306 return (the_low_target.get_next_pcs != NULL);
307 }
308
309 /* True if the low target supports memory breakpoints. If so, we'll
310 have a GET_PC implementation. */
311
312 static int
313 supports_breakpoints (void)
314 {
315 return (the_low_target.get_pc != NULL);
316 }
317
318 /* Returns true if this target can support fast tracepoints. This
319 does not mean that the in-process agent has been loaded in the
320 inferior. */
321
322 static int
323 supports_fast_tracepoints (void)
324 {
325 return the_low_target.install_fast_tracepoint_jump_pad != NULL;
326 }
327
328 /* True if LWP is stopped in its stepping range. */
329
330 static int
331 lwp_in_step_range (struct lwp_info *lwp)
332 {
333 CORE_ADDR pc = lwp->stop_pc;
334
335 return (pc >= lwp->step_range_start && pc < lwp->step_range_end);
336 }
337
338 struct pending_signals
339 {
340 int signal;
341 siginfo_t info;
342 struct pending_signals *prev;
343 };
344
345 /* The read/write ends of the pipe registered as waitable file in the
346 event loop. */
347 static int linux_event_pipe[2] = { -1, -1 };
348
349 /* True if we're currently in async mode. */
350 #define target_is_async_p() (linux_event_pipe[0] != -1)
351
352 static void send_sigstop (struct lwp_info *lwp);
353 static void wait_for_sigstop (void);
354
355 /* Return non-zero if HEADER is a 64-bit ELF file. */
356
357 static int
358 elf_64_header_p (const Elf64_Ehdr *header, unsigned int *machine)
359 {
360 if (header->e_ident[EI_MAG0] == ELFMAG0
361 && header->e_ident[EI_MAG1] == ELFMAG1
362 && header->e_ident[EI_MAG2] == ELFMAG2
363 && header->e_ident[EI_MAG3] == ELFMAG3)
364 {
365 *machine = header->e_machine;
366 return header->e_ident[EI_CLASS] == ELFCLASS64;
367
368 }
369 *machine = EM_NONE;
370 return -1;
371 }
372
373 /* Return non-zero if FILE is a 64-bit ELF file,
374 zero if the file is not a 64-bit ELF file,
375 and -1 if the file is not accessible or doesn't exist. */
376
377 static int
378 elf_64_file_p (const char *file, unsigned int *machine)
379 {
380 Elf64_Ehdr header;
381 int fd;
382
383 fd = open (file, O_RDONLY);
384 if (fd < 0)
385 return -1;
386
387 if (read (fd, &header, sizeof (header)) != sizeof (header))
388 {
389 close (fd);
390 return 0;
391 }
392 close (fd);
393
394 return elf_64_header_p (&header, machine);
395 }
396
397 /* Accepts an integer PID; Returns true if the executable PID is
398 running is a 64-bit ELF file.. */
399
400 int
401 linux_pid_exe_is_elf_64_file (int pid, unsigned int *machine)
402 {
403 char file[PATH_MAX];
404
405 sprintf (file, "/proc/%d/exe", pid);
406 return elf_64_file_p (file, machine);
407 }
408
409 static void
410 delete_lwp (struct lwp_info *lwp)
411 {
412 struct thread_info *thr = get_lwp_thread (lwp);
413
414 if (debug_threads)
415 debug_printf ("deleting %ld\n", lwpid_of (thr));
416
417 remove_thread (thr);
418
419 if (the_low_target.delete_thread != NULL)
420 the_low_target.delete_thread (lwp->arch_private);
421 else
422 gdb_assert (lwp->arch_private == NULL);
423
424 free (lwp);
425 }
426
427 /* Add a process to the common process list, and set its private
428 data. */
429
430 static struct process_info *
431 linux_add_process (int pid, int attached)
432 {
433 struct process_info *proc;
434
435 proc = add_process (pid, attached);
436 proc->priv = XCNEW (struct process_info_private);
437
438 if (the_low_target.new_process != NULL)
439 proc->priv->arch_private = the_low_target.new_process ();
440
441 return proc;
442 }
443
444 static CORE_ADDR get_pc (struct lwp_info *lwp);
445
446 /* Call the target arch_setup function on the current thread. */
447
448 static void
449 linux_arch_setup (void)
450 {
451 the_low_target.arch_setup ();
452 }
453
454 /* Call the target arch_setup function on THREAD. */
455
456 static void
457 linux_arch_setup_thread (struct thread_info *thread)
458 {
459 struct thread_info *saved_thread;
460
461 saved_thread = current_thread;
462 current_thread = thread;
463
464 linux_arch_setup ();
465
466 current_thread = saved_thread;
467 }
468
469 /* Handle a GNU/Linux extended wait response. If we see a clone,
470 fork, or vfork event, we need to add the new LWP to our list
471 (and return 0 so as not to report the trap to higher layers).
472 If we see an exec event, we will modify ORIG_EVENT_LWP to point
473 to a new LWP representing the new program. */
474
475 static int
476 handle_extended_wait (struct lwp_info **orig_event_lwp, int wstat)
477 {
478 client_state &cs = get_client_state ();
479 struct lwp_info *event_lwp = *orig_event_lwp;
480 int event = linux_ptrace_get_extended_event (wstat);
481 struct thread_info *event_thr = get_lwp_thread (event_lwp);
482 struct lwp_info *new_lwp;
483
484 gdb_assert (event_lwp->waitstatus.kind == TARGET_WAITKIND_IGNORE);
485
486 /* All extended events we currently use are mid-syscall. Only
487 PTRACE_EVENT_STOP is delivered more like a signal-stop, but
488 you have to be using PTRACE_SEIZE to get that. */
489 event_lwp->syscall_state = TARGET_WAITKIND_SYSCALL_ENTRY;
490
491 if ((event == PTRACE_EVENT_FORK) || (event == PTRACE_EVENT_VFORK)
492 || (event == PTRACE_EVENT_CLONE))
493 {
494 ptid_t ptid;
495 unsigned long new_pid;
496 int ret, status;
497
498 /* Get the pid of the new lwp. */
499 ptrace (PTRACE_GETEVENTMSG, lwpid_of (event_thr), (PTRACE_TYPE_ARG3) 0,
500 &new_pid);
501
502 /* If we haven't already seen the new PID stop, wait for it now. */
503 if (!pull_pid_from_list (&stopped_pids, new_pid, &status))
504 {
505 /* The new child has a pending SIGSTOP. We can't affect it until it
506 hits the SIGSTOP, but we're already attached. */
507
508 ret = my_waitpid (new_pid, &status, __WALL);
509
510 if (ret == -1)
511 perror_with_name ("waiting for new child");
512 else if (ret != new_pid)
513 warning ("wait returned unexpected PID %d", ret);
514 else if (!WIFSTOPPED (status))
515 warning ("wait returned unexpected status 0x%x", status);
516 }
517
518 if (event == PTRACE_EVENT_FORK || event == PTRACE_EVENT_VFORK)
519 {
520 struct process_info *parent_proc;
521 struct process_info *child_proc;
522 struct lwp_info *child_lwp;
523 struct thread_info *child_thr;
524 struct target_desc *tdesc;
525
526 ptid = ptid_t (new_pid, new_pid, 0);
527
528 if (debug_threads)
529 {
530 debug_printf ("HEW: Got fork event from LWP %ld, "
531 "new child is %d\n",
532 ptid_get_lwp (ptid_of (event_thr)),
533 ptid.pid ());
534 }
535
536 /* Add the new process to the tables and clone the breakpoint
537 lists of the parent. We need to do this even if the new process
538 will be detached, since we will need the process object and the
539 breakpoints to remove any breakpoints from memory when we
540 detach, and the client side will access registers. */
541 child_proc = linux_add_process (new_pid, 0);
542 gdb_assert (child_proc != NULL);
543 child_lwp = add_lwp (ptid);
544 gdb_assert (child_lwp != NULL);
545 child_lwp->stopped = 1;
546 child_lwp->must_set_ptrace_flags = 1;
547 child_lwp->status_pending_p = 0;
548 child_thr = get_lwp_thread (child_lwp);
549 child_thr->last_resume_kind = resume_stop;
550 child_thr->last_status.kind = TARGET_WAITKIND_STOPPED;
551
552 /* If we're suspending all threads, leave this one suspended
553 too. If the fork/clone parent is stepping over a breakpoint,
554 all other threads have been suspended already. Leave the
555 child suspended too. */
556 if (stopping_threads == STOPPING_AND_SUSPENDING_THREADS
557 || event_lwp->bp_reinsert != 0)
558 {
559 if (debug_threads)
560 debug_printf ("HEW: leaving child suspended\n");
561 child_lwp->suspended = 1;
562 }
563
564 parent_proc = get_thread_process (event_thr);
565 child_proc->attached = parent_proc->attached;
566
567 if (event_lwp->bp_reinsert != 0
568 && can_software_single_step ()
569 && event == PTRACE_EVENT_VFORK)
570 {
571 /* If we leave single-step breakpoints there, child will
572 hit it, so uninsert single-step breakpoints from parent
573 (and child). Once vfork child is done, reinsert
574 them back to parent. */
575 uninsert_single_step_breakpoints (event_thr);
576 }
577
578 clone_all_breakpoints (child_thr, event_thr);
579
580 tdesc = allocate_target_description ();
581 copy_target_description (tdesc, parent_proc->tdesc);
582 child_proc->tdesc = tdesc;
583
584 /* Clone arch-specific process data. */
585 if (the_low_target.new_fork != NULL)
586 the_low_target.new_fork (parent_proc, child_proc);
587
588 /* Save fork info in the parent thread. */
589 if (event == PTRACE_EVENT_FORK)
590 event_lwp->waitstatus.kind = TARGET_WAITKIND_FORKED;
591 else if (event == PTRACE_EVENT_VFORK)
592 event_lwp->waitstatus.kind = TARGET_WAITKIND_VFORKED;
593
594 event_lwp->waitstatus.value.related_pid = ptid;
595
596 /* The status_pending field contains bits denoting the
597 extended event, so when the pending event is handled,
598 the handler will look at lwp->waitstatus. */
599 event_lwp->status_pending_p = 1;
600 event_lwp->status_pending = wstat;
601
602 /* Link the threads until the parent event is passed on to
603 higher layers. */
604 event_lwp->fork_relative = child_lwp;
605 child_lwp->fork_relative = event_lwp;
606
607 /* If the parent thread is doing step-over with single-step
608 breakpoints, the list of single-step breakpoints are cloned
609 from the parent's. Remove them from the child process.
610 In case of vfork, we'll reinsert them back once vforked
611 child is done. */
612 if (event_lwp->bp_reinsert != 0
613 && can_software_single_step ())
614 {
615 /* The child process is forked and stopped, so it is safe
616 to access its memory without stopping all other threads
617 from other processes. */
618 delete_single_step_breakpoints (child_thr);
619
620 gdb_assert (has_single_step_breakpoints (event_thr));
621 gdb_assert (!has_single_step_breakpoints (child_thr));
622 }
623
624 /* Report the event. */
625 return 0;
626 }
627
628 if (debug_threads)
629 debug_printf ("HEW: Got clone event "
630 "from LWP %ld, new child is LWP %ld\n",
631 lwpid_of (event_thr), new_pid);
632
633 ptid = ptid_t (pid_of (event_thr), new_pid, 0);
634 new_lwp = add_lwp (ptid);
635
636 /* Either we're going to immediately resume the new thread
637 or leave it stopped. linux_resume_one_lwp is a nop if it
638 thinks the thread is currently running, so set this first
639 before calling linux_resume_one_lwp. */
640 new_lwp->stopped = 1;
641
642 /* If we're suspending all threads, leave this one suspended
643 too. If the fork/clone parent is stepping over a breakpoint,
644 all other threads have been suspended already. Leave the
645 child suspended too. */
646 if (stopping_threads == STOPPING_AND_SUSPENDING_THREADS
647 || event_lwp->bp_reinsert != 0)
648 new_lwp->suspended = 1;
649
650 /* Normally we will get the pending SIGSTOP. But in some cases
651 we might get another signal delivered to the group first.
652 If we do get another signal, be sure not to lose it. */
653 if (WSTOPSIG (status) != SIGSTOP)
654 {
655 new_lwp->stop_expected = 1;
656 new_lwp->status_pending_p = 1;
657 new_lwp->status_pending = status;
658 }
659 else if (cs.report_thread_events)
660 {
661 new_lwp->waitstatus.kind = TARGET_WAITKIND_THREAD_CREATED;
662 new_lwp->status_pending_p = 1;
663 new_lwp->status_pending = status;
664 }
665
666 #ifdef USE_THREAD_DB
667 thread_db_notice_clone (event_thr, ptid);
668 #endif
669
670 /* Don't report the event. */
671 return 1;
672 }
673 else if (event == PTRACE_EVENT_VFORK_DONE)
674 {
675 event_lwp->waitstatus.kind = TARGET_WAITKIND_VFORK_DONE;
676
677 if (event_lwp->bp_reinsert != 0 && can_software_single_step ())
678 {
679 reinsert_single_step_breakpoints (event_thr);
680
681 gdb_assert (has_single_step_breakpoints (event_thr));
682 }
683
684 /* Report the event. */
685 return 0;
686 }
687 else if (event == PTRACE_EVENT_EXEC && cs.report_exec_events)
688 {
689 struct process_info *proc;
690 std::vector<int> syscalls_to_catch;
691 ptid_t event_ptid;
692 pid_t event_pid;
693
694 if (debug_threads)
695 {
696 debug_printf ("HEW: Got exec event from LWP %ld\n",
697 lwpid_of (event_thr));
698 }
699
700 /* Get the event ptid. */
701 event_ptid = ptid_of (event_thr);
702 event_pid = event_ptid.pid ();
703
704 /* Save the syscall list from the execing process. */
705 proc = get_thread_process (event_thr);
706 syscalls_to_catch = std::move (proc->syscalls_to_catch);
707
708 /* Delete the execing process and all its threads. */
709 linux_mourn (proc);
710 current_thread = NULL;
711
712 /* Create a new process/lwp/thread. */
713 proc = linux_add_process (event_pid, 0);
714 event_lwp = add_lwp (event_ptid);
715 event_thr = get_lwp_thread (event_lwp);
716 gdb_assert (current_thread == event_thr);
717 linux_arch_setup_thread (event_thr);
718
719 /* Set the event status. */
720 event_lwp->waitstatus.kind = TARGET_WAITKIND_EXECD;
721 event_lwp->waitstatus.value.execd_pathname
722 = xstrdup (linux_proc_pid_to_exec_file (lwpid_of (event_thr)));
723
724 /* Mark the exec status as pending. */
725 event_lwp->stopped = 1;
726 event_lwp->status_pending_p = 1;
727 event_lwp->status_pending = wstat;
728 event_thr->last_resume_kind = resume_continue;
729 event_thr->last_status.kind = TARGET_WAITKIND_IGNORE;
730
731 /* Update syscall state in the new lwp, effectively mid-syscall too. */
732 event_lwp->syscall_state = TARGET_WAITKIND_SYSCALL_ENTRY;
733
734 /* Restore the list to catch. Don't rely on the client, which is free
735 to avoid sending a new list when the architecture doesn't change.
736 Also, for ANY_SYSCALL, the architecture doesn't really matter. */
737 proc->syscalls_to_catch = std::move (syscalls_to_catch);
738
739 /* Report the event. */
740 *orig_event_lwp = event_lwp;
741 return 0;
742 }
743
744 internal_error (__FILE__, __LINE__, _("unknown ptrace event %d"), event);
745 }
746
747 /* Return the PC as read from the regcache of LWP, without any
748 adjustment. */
749
750 static CORE_ADDR
751 get_pc (struct lwp_info *lwp)
752 {
753 struct thread_info *saved_thread;
754 struct regcache *regcache;
755 CORE_ADDR pc;
756
757 if (the_low_target.get_pc == NULL)
758 return 0;
759
760 saved_thread = current_thread;
761 current_thread = get_lwp_thread (lwp);
762
763 regcache = get_thread_regcache (current_thread, 1);
764 pc = (*the_low_target.get_pc) (regcache);
765
766 if (debug_threads)
767 debug_printf ("pc is 0x%lx\n", (long) pc);
768
769 current_thread = saved_thread;
770 return pc;
771 }
772
773 /* This function should only be called if LWP got a SYSCALL_SIGTRAP.
774 Fill *SYSNO with the syscall nr trapped. */
775
776 static void
777 get_syscall_trapinfo (struct lwp_info *lwp, int *sysno)
778 {
779 struct thread_info *saved_thread;
780 struct regcache *regcache;
781
782 if (the_low_target.get_syscall_trapinfo == NULL)
783 {
784 /* If we cannot get the syscall trapinfo, report an unknown
785 system call number. */
786 *sysno = UNKNOWN_SYSCALL;
787 return;
788 }
789
790 saved_thread = current_thread;
791 current_thread = get_lwp_thread (lwp);
792
793 regcache = get_thread_regcache (current_thread, 1);
794 (*the_low_target.get_syscall_trapinfo) (regcache, sysno);
795
796 if (debug_threads)
797 debug_printf ("get_syscall_trapinfo sysno %d\n", *sysno);
798
799 current_thread = saved_thread;
800 }
801
802 static int check_stopped_by_watchpoint (struct lwp_info *child);
803
804 /* Called when the LWP stopped for a signal/trap. If it stopped for a
805 trap check what caused it (breakpoint, watchpoint, trace, etc.),
806 and save the result in the LWP's stop_reason field. If it stopped
807 for a breakpoint, decrement the PC if necessary on the lwp's
808 architecture. Returns true if we now have the LWP's stop PC. */
809
810 static int
811 save_stop_reason (struct lwp_info *lwp)
812 {
813 CORE_ADDR pc;
814 CORE_ADDR sw_breakpoint_pc;
815 struct thread_info *saved_thread;
816 #if USE_SIGTRAP_SIGINFO
817 siginfo_t siginfo;
818 #endif
819
820 if (the_low_target.get_pc == NULL)
821 return 0;
822
823 pc = get_pc (lwp);
824 sw_breakpoint_pc = pc - the_low_target.decr_pc_after_break;
825
826 /* breakpoint_at reads from the current thread. */
827 saved_thread = current_thread;
828 current_thread = get_lwp_thread (lwp);
829
830 #if USE_SIGTRAP_SIGINFO
831 if (ptrace (PTRACE_GETSIGINFO, lwpid_of (current_thread),
832 (PTRACE_TYPE_ARG3) 0, &siginfo) == 0)
833 {
834 if (siginfo.si_signo == SIGTRAP)
835 {
836 if (GDB_ARCH_IS_TRAP_BRKPT (siginfo.si_code)
837 && GDB_ARCH_IS_TRAP_HWBKPT (siginfo.si_code))
838 {
839 /* The si_code is ambiguous on this arch -- check debug
840 registers. */
841 if (!check_stopped_by_watchpoint (lwp))
842 lwp->stop_reason = TARGET_STOPPED_BY_SW_BREAKPOINT;
843 }
844 else if (GDB_ARCH_IS_TRAP_BRKPT (siginfo.si_code))
845 {
846 /* If we determine the LWP stopped for a SW breakpoint,
847 trust it. Particularly don't check watchpoint
848 registers, because at least on s390, we'd find
849 stopped-by-watchpoint as long as there's a watchpoint
850 set. */
851 lwp->stop_reason = TARGET_STOPPED_BY_SW_BREAKPOINT;
852 }
853 else if (GDB_ARCH_IS_TRAP_HWBKPT (siginfo.si_code))
854 {
855 /* This can indicate either a hardware breakpoint or
856 hardware watchpoint. Check debug registers. */
857 if (!check_stopped_by_watchpoint (lwp))
858 lwp->stop_reason = TARGET_STOPPED_BY_HW_BREAKPOINT;
859 }
860 else if (siginfo.si_code == TRAP_TRACE)
861 {
862 /* We may have single stepped an instruction that
863 triggered a watchpoint. In that case, on some
864 architectures (such as x86), instead of TRAP_HWBKPT,
865 si_code indicates TRAP_TRACE, and we need to check
866 the debug registers separately. */
867 if (!check_stopped_by_watchpoint (lwp))
868 lwp->stop_reason = TARGET_STOPPED_BY_SINGLE_STEP;
869 }
870 }
871 }
872 #else
873 /* We may have just stepped a breakpoint instruction. E.g., in
874 non-stop mode, GDB first tells the thread A to step a range, and
875 then the user inserts a breakpoint inside the range. In that
876 case we need to report the breakpoint PC. */
877 if ((!lwp->stepping || lwp->stop_pc == sw_breakpoint_pc)
878 && (*the_low_target.breakpoint_at) (sw_breakpoint_pc))
879 lwp->stop_reason = TARGET_STOPPED_BY_SW_BREAKPOINT;
880
881 if (hardware_breakpoint_inserted_here (pc))
882 lwp->stop_reason = TARGET_STOPPED_BY_HW_BREAKPOINT;
883
884 if (lwp->stop_reason == TARGET_STOPPED_BY_NO_REASON)
885 check_stopped_by_watchpoint (lwp);
886 #endif
887
888 if (lwp->stop_reason == TARGET_STOPPED_BY_SW_BREAKPOINT)
889 {
890 if (debug_threads)
891 {
892 struct thread_info *thr = get_lwp_thread (lwp);
893
894 debug_printf ("CSBB: %s stopped by software breakpoint\n",
895 target_pid_to_str (ptid_of (thr)));
896 }
897
898 /* Back up the PC if necessary. */
899 if (pc != sw_breakpoint_pc)
900 {
901 struct regcache *regcache
902 = get_thread_regcache (current_thread, 1);
903 (*the_low_target.set_pc) (regcache, sw_breakpoint_pc);
904 }
905
906 /* Update this so we record the correct stop PC below. */
907 pc = sw_breakpoint_pc;
908 }
909 else if (lwp->stop_reason == TARGET_STOPPED_BY_HW_BREAKPOINT)
910 {
911 if (debug_threads)
912 {
913 struct thread_info *thr = get_lwp_thread (lwp);
914
915 debug_printf ("CSBB: %s stopped by hardware breakpoint\n",
916 target_pid_to_str (ptid_of (thr)));
917 }
918 }
919 else if (lwp->stop_reason == TARGET_STOPPED_BY_WATCHPOINT)
920 {
921 if (debug_threads)
922 {
923 struct thread_info *thr = get_lwp_thread (lwp);
924
925 debug_printf ("CSBB: %s stopped by hardware watchpoint\n",
926 target_pid_to_str (ptid_of (thr)));
927 }
928 }
929 else if (lwp->stop_reason == TARGET_STOPPED_BY_SINGLE_STEP)
930 {
931 if (debug_threads)
932 {
933 struct thread_info *thr = get_lwp_thread (lwp);
934
935 debug_printf ("CSBB: %s stopped by trace\n",
936 target_pid_to_str (ptid_of (thr)));
937 }
938 }
939
940 lwp->stop_pc = pc;
941 current_thread = saved_thread;
942 return 1;
943 }
944
945 static struct lwp_info *
946 add_lwp (ptid_t ptid)
947 {
948 struct lwp_info *lwp;
949
950 lwp = XCNEW (struct lwp_info);
951
952 lwp->waitstatus.kind = TARGET_WAITKIND_IGNORE;
953
954 if (the_low_target.new_thread != NULL)
955 the_low_target.new_thread (lwp);
956
957 lwp->thread = add_thread (ptid, lwp);
958
959 return lwp;
960 }
961
962 /* Callback to be used when calling fork_inferior, responsible for
963 actually initiating the tracing of the inferior. */
964
965 static void
966 linux_ptrace_fun ()
967 {
968 if (ptrace (PTRACE_TRACEME, 0, (PTRACE_TYPE_ARG3) 0,
969 (PTRACE_TYPE_ARG4) 0) < 0)
970 trace_start_error_with_name ("ptrace");
971
972 if (setpgid (0, 0) < 0)
973 trace_start_error_with_name ("setpgid");
974
975 /* If GDBserver is connected to gdb via stdio, redirect the inferior's
976 stdout to stderr so that inferior i/o doesn't corrupt the connection.
977 Also, redirect stdin to /dev/null. */
978 if (remote_connection_is_stdio ())
979 {
980 if (close (0) < 0)
981 trace_start_error_with_name ("close");
982 if (open ("/dev/null", O_RDONLY) < 0)
983 trace_start_error_with_name ("open");
984 if (dup2 (2, 1) < 0)
985 trace_start_error_with_name ("dup2");
986 if (write (2, "stdin/stdout redirected\n",
987 sizeof ("stdin/stdout redirected\n") - 1) < 0)
988 {
989 /* Errors ignored. */;
990 }
991 }
992 }
993
994 /* Start an inferior process and returns its pid.
995 PROGRAM is the name of the program to be started, and PROGRAM_ARGS
996 are its arguments. */
997
998 static int
999 linux_create_inferior (const char *program,
1000 const std::vector<char *> &program_args)
1001 {
1002 client_state &cs = get_client_state ();
1003 struct lwp_info *new_lwp;
1004 int pid;
1005 ptid_t ptid;
1006
1007 {
1008 maybe_disable_address_space_randomization restore_personality
1009 (cs.disable_randomization);
1010 std::string str_program_args = stringify_argv (program_args);
1011
1012 pid = fork_inferior (program,
1013 str_program_args.c_str (),
1014 get_environ ()->envp (), linux_ptrace_fun,
1015 NULL, NULL, NULL, NULL);
1016 }
1017
1018 linux_add_process (pid, 0);
1019
1020 ptid = ptid_t (pid, pid, 0);
1021 new_lwp = add_lwp (ptid);
1022 new_lwp->must_set_ptrace_flags = 1;
1023
1024 post_fork_inferior (pid, program);
1025
1026 return pid;
1027 }
1028
1029 /* Implement the post_create_inferior target_ops method. */
1030
1031 static void
1032 linux_post_create_inferior (void)
1033 {
1034 struct lwp_info *lwp = get_thread_lwp (current_thread);
1035
1036 linux_arch_setup ();
1037
1038 if (lwp->must_set_ptrace_flags)
1039 {
1040 struct process_info *proc = current_process ();
1041 int options = linux_low_ptrace_options (proc->attached);
1042
1043 linux_enable_event_reporting (lwpid_of (current_thread), options);
1044 lwp->must_set_ptrace_flags = 0;
1045 }
1046 }
1047
1048 /* Attach to an inferior process. Returns 0 on success, ERRNO on
1049 error. */
1050
1051 int
1052 linux_attach_lwp (ptid_t ptid)
1053 {
1054 struct lwp_info *new_lwp;
1055 int lwpid = ptid_get_lwp (ptid);
1056
1057 if (ptrace (PTRACE_ATTACH, lwpid, (PTRACE_TYPE_ARG3) 0, (PTRACE_TYPE_ARG4) 0)
1058 != 0)
1059 return errno;
1060
1061 new_lwp = add_lwp (ptid);
1062
1063 /* We need to wait for SIGSTOP before being able to make the next
1064 ptrace call on this LWP. */
1065 new_lwp->must_set_ptrace_flags = 1;
1066
1067 if (linux_proc_pid_is_stopped (lwpid))
1068 {
1069 if (debug_threads)
1070 debug_printf ("Attached to a stopped process\n");
1071
1072 /* The process is definitely stopped. It is in a job control
1073 stop, unless the kernel predates the TASK_STOPPED /
1074 TASK_TRACED distinction, in which case it might be in a
1075 ptrace stop. Make sure it is in a ptrace stop; from there we
1076 can kill it, signal it, et cetera.
1077
1078 First make sure there is a pending SIGSTOP. Since we are
1079 already attached, the process can not transition from stopped
1080 to running without a PTRACE_CONT; so we know this signal will
1081 go into the queue. The SIGSTOP generated by PTRACE_ATTACH is
1082 probably already in the queue (unless this kernel is old
1083 enough to use TASK_STOPPED for ptrace stops); but since
1084 SIGSTOP is not an RT signal, it can only be queued once. */
1085 kill_lwp (lwpid, SIGSTOP);
1086
1087 /* Finally, resume the stopped process. This will deliver the
1088 SIGSTOP (or a higher priority signal, just like normal
1089 PTRACE_ATTACH), which we'll catch later on. */
1090 ptrace (PTRACE_CONT, lwpid, (PTRACE_TYPE_ARG3) 0, (PTRACE_TYPE_ARG4) 0);
1091 }
1092
1093 /* The next time we wait for this LWP we'll see a SIGSTOP as PTRACE_ATTACH
1094 brings it to a halt.
1095
1096 There are several cases to consider here:
1097
1098 1) gdbserver has already attached to the process and is being notified
1099 of a new thread that is being created.
1100 In this case we should ignore that SIGSTOP and resume the
1101 process. This is handled below by setting stop_expected = 1,
1102 and the fact that add_thread sets last_resume_kind ==
1103 resume_continue.
1104
1105 2) This is the first thread (the process thread), and we're attaching
1106 to it via attach_inferior.
1107 In this case we want the process thread to stop.
1108 This is handled by having linux_attach set last_resume_kind ==
1109 resume_stop after we return.
1110
1111 If the pid we are attaching to is also the tgid, we attach to and
1112 stop all the existing threads. Otherwise, we attach to pid and
1113 ignore any other threads in the same group as this pid.
1114
1115 3) GDB is connecting to gdbserver and is requesting an enumeration of all
1116 existing threads.
1117 In this case we want the thread to stop.
1118 FIXME: This case is currently not properly handled.
1119 We should wait for the SIGSTOP but don't. Things work apparently
1120 because enough time passes between when we ptrace (ATTACH) and when
1121 gdb makes the next ptrace call on the thread.
1122
1123 On the other hand, if we are currently trying to stop all threads, we
1124 should treat the new thread as if we had sent it a SIGSTOP. This works
1125 because we are guaranteed that the add_lwp call above added us to the
1126 end of the list, and so the new thread has not yet reached
1127 wait_for_sigstop (but will). */
1128 new_lwp->stop_expected = 1;
1129
1130 return 0;
1131 }
1132
1133 /* Callback for linux_proc_attach_tgid_threads. Attach to PTID if not
1134 already attached. Returns true if a new LWP is found, false
1135 otherwise. */
1136
1137 static int
1138 attach_proc_task_lwp_callback (ptid_t ptid)
1139 {
1140 /* Is this a new thread? */
1141 if (find_thread_ptid (ptid) == NULL)
1142 {
1143 int lwpid = ptid_get_lwp (ptid);
1144 int err;
1145
1146 if (debug_threads)
1147 debug_printf ("Found new lwp %d\n", lwpid);
1148
1149 err = linux_attach_lwp (ptid);
1150
1151 /* Be quiet if we simply raced with the thread exiting. EPERM
1152 is returned if the thread's task still exists, and is marked
1153 as exited or zombie, as well as other conditions, so in that
1154 case, confirm the status in /proc/PID/status. */
1155 if (err == ESRCH
1156 || (err == EPERM && linux_proc_pid_is_gone (lwpid)))
1157 {
1158 if (debug_threads)
1159 {
1160 debug_printf ("Cannot attach to lwp %d: "
1161 "thread is gone (%d: %s)\n",
1162 lwpid, err, strerror (err));
1163 }
1164 }
1165 else if (err != 0)
1166 {
1167 std::string reason
1168 = linux_ptrace_attach_fail_reason_string (ptid, err);
1169
1170 warning (_("Cannot attach to lwp %d: %s"), lwpid, reason.c_str ());
1171 }
1172
1173 return 1;
1174 }
1175 return 0;
1176 }
1177
1178 static void async_file_mark (void);
1179
1180 /* Attach to PID. If PID is the tgid, attach to it and all
1181 of its threads. */
1182
1183 static int
1184 linux_attach (unsigned long pid)
1185 {
1186 struct process_info *proc;
1187 struct thread_info *initial_thread;
1188 ptid_t ptid = ptid_t (pid, pid, 0);
1189 int err;
1190
1191 /* Attach to PID. We will check for other threads
1192 soon. */
1193 err = linux_attach_lwp (ptid);
1194 if (err != 0)
1195 {
1196 std::string reason = linux_ptrace_attach_fail_reason_string (ptid, err);
1197
1198 error ("Cannot attach to process %ld: %s", pid, reason.c_str ());
1199 }
1200
1201 proc = linux_add_process (pid, 1);
1202
1203 /* Don't ignore the initial SIGSTOP if we just attached to this
1204 process. It will be collected by wait shortly. */
1205 initial_thread = find_thread_ptid (ptid_t (pid, pid, 0));
1206 initial_thread->last_resume_kind = resume_stop;
1207
1208 /* We must attach to every LWP. If /proc is mounted, use that to
1209 find them now. On the one hand, the inferior may be using raw
1210 clone instead of using pthreads. On the other hand, even if it
1211 is using pthreads, GDB may not be connected yet (thread_db needs
1212 to do symbol lookups, through qSymbol). Also, thread_db walks
1213 structures in the inferior's address space to find the list of
1214 threads/LWPs, and those structures may well be corrupted. Note
1215 that once thread_db is loaded, we'll still use it to list threads
1216 and associate pthread info with each LWP. */
1217 linux_proc_attach_tgid_threads (pid, attach_proc_task_lwp_callback);
1218
1219 /* GDB will shortly read the xml target description for this
1220 process, to figure out the process' architecture. But the target
1221 description is only filled in when the first process/thread in
1222 the thread group reports its initial PTRACE_ATTACH SIGSTOP. Do
1223 that now, otherwise, if GDB is fast enough, it could read the
1224 target description _before_ that initial stop. */
1225 if (non_stop)
1226 {
1227 struct lwp_info *lwp;
1228 int wstat, lwpid;
1229 ptid_t pid_ptid = ptid_t (pid);
1230
1231 lwpid = linux_wait_for_event_filtered (pid_ptid, pid_ptid,
1232 &wstat, __WALL);
1233 gdb_assert (lwpid > 0);
1234
1235 lwp = find_lwp_pid (ptid_t (lwpid));
1236
1237 if (!WIFSTOPPED (wstat) || WSTOPSIG (wstat) != SIGSTOP)
1238 {
1239 lwp->status_pending_p = 1;
1240 lwp->status_pending = wstat;
1241 }
1242
1243 initial_thread->last_resume_kind = resume_continue;
1244
1245 async_file_mark ();
1246
1247 gdb_assert (proc->tdesc != NULL);
1248 }
1249
1250 return 0;
1251 }
1252
1253 static int
1254 last_thread_of_process_p (int pid)
1255 {
1256 bool seen_one = false;
1257
1258 thread_info *thread = find_thread (pid, [&] (thread_info *thread)
1259 {
1260 if (!seen_one)
1261 {
1262 /* This is the first thread of this process we see. */
1263 seen_one = true;
1264 return false;
1265 }
1266 else
1267 {
1268 /* This is the second thread of this process we see. */
1269 return true;
1270 }
1271 });
1272
1273 return thread == NULL;
1274 }
1275
1276 /* Kill LWP. */
1277
1278 static void
1279 linux_kill_one_lwp (struct lwp_info *lwp)
1280 {
1281 struct thread_info *thr = get_lwp_thread (lwp);
1282 int pid = lwpid_of (thr);
1283
1284 /* PTRACE_KILL is unreliable. After stepping into a signal handler,
1285 there is no signal context, and ptrace(PTRACE_KILL) (or
1286 ptrace(PTRACE_CONT, SIGKILL), pretty much the same) acts like
1287 ptrace(CONT, pid, 0,0) and just resumes the tracee. A better
1288 alternative is to kill with SIGKILL. We only need one SIGKILL
1289 per process, not one for each thread. But since we still support
1290 support debugging programs using raw clone without CLONE_THREAD,
1291 we send one for each thread. For years, we used PTRACE_KILL
1292 only, so we're being a bit paranoid about some old kernels where
1293 PTRACE_KILL might work better (dubious if there are any such, but
1294 that's why it's paranoia), so we try SIGKILL first, PTRACE_KILL
1295 second, and so we're fine everywhere. */
1296
1297 errno = 0;
1298 kill_lwp (pid, SIGKILL);
1299 if (debug_threads)
1300 {
1301 int save_errno = errno;
1302
1303 debug_printf ("LKL: kill_lwp (SIGKILL) %s, 0, 0 (%s)\n",
1304 target_pid_to_str (ptid_of (thr)),
1305 save_errno ? strerror (save_errno) : "OK");
1306 }
1307
1308 errno = 0;
1309 ptrace (PTRACE_KILL, pid, (PTRACE_TYPE_ARG3) 0, (PTRACE_TYPE_ARG4) 0);
1310 if (debug_threads)
1311 {
1312 int save_errno = errno;
1313
1314 debug_printf ("LKL: PTRACE_KILL %s, 0, 0 (%s)\n",
1315 target_pid_to_str (ptid_of (thr)),
1316 save_errno ? strerror (save_errno) : "OK");
1317 }
1318 }
1319
1320 /* Kill LWP and wait for it to die. */
1321
1322 static void
1323 kill_wait_lwp (struct lwp_info *lwp)
1324 {
1325 struct thread_info *thr = get_lwp_thread (lwp);
1326 int pid = ptid_of (thr).pid ();
1327 int lwpid = ptid_get_lwp (ptid_of (thr));
1328 int wstat;
1329 int res;
1330
1331 if (debug_threads)
1332 debug_printf ("kwl: killing lwp %d, for pid: %d\n", lwpid, pid);
1333
1334 do
1335 {
1336 linux_kill_one_lwp (lwp);
1337
1338 /* Make sure it died. Notes:
1339
1340 - The loop is most likely unnecessary.
1341
1342 - We don't use linux_wait_for_event as that could delete lwps
1343 while we're iterating over them. We're not interested in
1344 any pending status at this point, only in making sure all
1345 wait status on the kernel side are collected until the
1346 process is reaped.
1347
1348 - We don't use __WALL here as the __WALL emulation relies on
1349 SIGCHLD, and killing a stopped process doesn't generate
1350 one, nor an exit status.
1351 */
1352 res = my_waitpid (lwpid, &wstat, 0);
1353 if (res == -1 && errno == ECHILD)
1354 res = my_waitpid (lwpid, &wstat, __WCLONE);
1355 } while (res > 0 && WIFSTOPPED (wstat));
1356
1357 /* Even if it was stopped, the child may have already disappeared.
1358 E.g., if it was killed by SIGKILL. */
1359 if (res < 0 && errno != ECHILD)
1360 perror_with_name ("kill_wait_lwp");
1361 }
1362
1363 /* Callback for `for_each_thread'. Kills an lwp of a given process,
1364 except the leader. */
1365
1366 static void
1367 kill_one_lwp_callback (thread_info *thread, int pid)
1368 {
1369 struct lwp_info *lwp = get_thread_lwp (thread);
1370
1371 /* We avoid killing the first thread here, because of a Linux kernel (at
1372 least 2.6.0-test7 through 2.6.8-rc4) bug; if we kill the parent before
1373 the children get a chance to be reaped, it will remain a zombie
1374 forever. */
1375
1376 if (lwpid_of (thread) == pid)
1377 {
1378 if (debug_threads)
1379 debug_printf ("lkop: is last of process %s\n",
1380 target_pid_to_str (thread->id));
1381 return;
1382 }
1383
1384 kill_wait_lwp (lwp);
1385 }
1386
1387 static int
1388 linux_kill (int pid)
1389 {
1390 struct process_info *process;
1391 struct lwp_info *lwp;
1392
1393 process = find_process_pid (pid);
1394 if (process == NULL)
1395 return -1;
1396
1397 /* If we're killing a running inferior, make sure it is stopped
1398 first, as PTRACE_KILL will not work otherwise. */
1399 stop_all_lwps (0, NULL);
1400
1401 for_each_thread (pid, [&] (thread_info *thread)
1402 {
1403 kill_one_lwp_callback (thread, pid);
1404 });
1405
1406 /* See the comment in linux_kill_one_lwp. We did not kill the first
1407 thread in the list, so do so now. */
1408 lwp = find_lwp_pid (ptid_t (pid));
1409
1410 if (lwp == NULL)
1411 {
1412 if (debug_threads)
1413 debug_printf ("lk_1: cannot find lwp for pid: %d\n",
1414 pid);
1415 }
1416 else
1417 kill_wait_lwp (lwp);
1418
1419 the_target->mourn (process);
1420
1421 /* Since we presently can only stop all lwps of all processes, we
1422 need to unstop lwps of other processes. */
1423 unstop_all_lwps (0, NULL);
1424 return 0;
1425 }
1426
1427 /* Get pending signal of THREAD, for detaching purposes. This is the
1428 signal the thread last stopped for, which we need to deliver to the
1429 thread when detaching, otherwise, it'd be suppressed/lost. */
1430
1431 static int
1432 get_detach_signal (struct thread_info *thread)
1433 {
1434 client_state &cs = get_client_state ();
1435 enum gdb_signal signo = GDB_SIGNAL_0;
1436 int status;
1437 struct lwp_info *lp = get_thread_lwp (thread);
1438
1439 if (lp->status_pending_p)
1440 status = lp->status_pending;
1441 else
1442 {
1443 /* If the thread had been suspended by gdbserver, and it stopped
1444 cleanly, then it'll have stopped with SIGSTOP. But we don't
1445 want to deliver that SIGSTOP. */
1446 if (thread->last_status.kind != TARGET_WAITKIND_STOPPED
1447 || thread->last_status.value.sig == GDB_SIGNAL_0)
1448 return 0;
1449
1450 /* Otherwise, we may need to deliver the signal we
1451 intercepted. */
1452 status = lp->last_status;
1453 }
1454
1455 if (!WIFSTOPPED (status))
1456 {
1457 if (debug_threads)
1458 debug_printf ("GPS: lwp %s hasn't stopped: no pending signal\n",
1459 target_pid_to_str (ptid_of (thread)));
1460 return 0;
1461 }
1462
1463 /* Extended wait statuses aren't real SIGTRAPs. */
1464 if (WSTOPSIG (status) == SIGTRAP && linux_is_extended_waitstatus (status))
1465 {
1466 if (debug_threads)
1467 debug_printf ("GPS: lwp %s had stopped with extended "
1468 "status: no pending signal\n",
1469 target_pid_to_str (ptid_of (thread)));
1470 return 0;
1471 }
1472
1473 signo = gdb_signal_from_host (WSTOPSIG (status));
1474
1475 if (cs.program_signals_p && !cs.program_signals[signo])
1476 {
1477 if (debug_threads)
1478 debug_printf ("GPS: lwp %s had signal %s, but it is in nopass state\n",
1479 target_pid_to_str (ptid_of (thread)),
1480 gdb_signal_to_string (signo));
1481 return 0;
1482 }
1483 else if (!cs.program_signals_p
1484 /* If we have no way to know which signals GDB does not
1485 want to have passed to the program, assume
1486 SIGTRAP/SIGINT, which is GDB's default. */
1487 && (signo == GDB_SIGNAL_TRAP || signo == GDB_SIGNAL_INT))
1488 {
1489 if (debug_threads)
1490 debug_printf ("GPS: lwp %s had signal %s, "
1491 "but we don't know if we should pass it. "
1492 "Default to not.\n",
1493 target_pid_to_str (ptid_of (thread)),
1494 gdb_signal_to_string (signo));
1495 return 0;
1496 }
1497 else
1498 {
1499 if (debug_threads)
1500 debug_printf ("GPS: lwp %s has pending signal %s: delivering it.\n",
1501 target_pid_to_str (ptid_of (thread)),
1502 gdb_signal_to_string (signo));
1503
1504 return WSTOPSIG (status);
1505 }
1506 }
1507
1508 /* Detach from LWP. */
1509
1510 static void
1511 linux_detach_one_lwp (struct lwp_info *lwp)
1512 {
1513 struct thread_info *thread = get_lwp_thread (lwp);
1514 int sig;
1515 int lwpid;
1516
1517 /* If there is a pending SIGSTOP, get rid of it. */
1518 if (lwp->stop_expected)
1519 {
1520 if (debug_threads)
1521 debug_printf ("Sending SIGCONT to %s\n",
1522 target_pid_to_str (ptid_of (thread)));
1523
1524 kill_lwp (lwpid_of (thread), SIGCONT);
1525 lwp->stop_expected = 0;
1526 }
1527
1528 /* Pass on any pending signal for this thread. */
1529 sig = get_detach_signal (thread);
1530
1531 /* Preparing to resume may try to write registers, and fail if the
1532 lwp is zombie. If that happens, ignore the error. We'll handle
1533 it below, when detach fails with ESRCH. */
1534 TRY
1535 {
1536 /* Flush any pending changes to the process's registers. */
1537 regcache_invalidate_thread (thread);
1538
1539 /* Finally, let it resume. */
1540 if (the_low_target.prepare_to_resume != NULL)
1541 the_low_target.prepare_to_resume (lwp);
1542 }
1543 CATCH (ex, RETURN_MASK_ERROR)
1544 {
1545 if (!check_ptrace_stopped_lwp_gone (lwp))
1546 throw_exception (ex);
1547 }
1548 END_CATCH
1549
1550 lwpid = lwpid_of (thread);
1551 if (ptrace (PTRACE_DETACH, lwpid, (PTRACE_TYPE_ARG3) 0,
1552 (PTRACE_TYPE_ARG4) (long) sig) < 0)
1553 {
1554 int save_errno = errno;
1555
1556 /* We know the thread exists, so ESRCH must mean the lwp is
1557 zombie. This can happen if one of the already-detached
1558 threads exits the whole thread group. In that case we're
1559 still attached, and must reap the lwp. */
1560 if (save_errno == ESRCH)
1561 {
1562 int ret, status;
1563
1564 ret = my_waitpid (lwpid, &status, __WALL);
1565 if (ret == -1)
1566 {
1567 warning (_("Couldn't reap LWP %d while detaching: %s"),
1568 lwpid, strerror (errno));
1569 }
1570 else if (!WIFEXITED (status) && !WIFSIGNALED (status))
1571 {
1572 warning (_("Reaping LWP %d while detaching "
1573 "returned unexpected status 0x%x"),
1574 lwpid, status);
1575 }
1576 }
1577 else
1578 {
1579 error (_("Can't detach %s: %s"),
1580 target_pid_to_str (ptid_of (thread)),
1581 strerror (save_errno));
1582 }
1583 }
1584 else if (debug_threads)
1585 {
1586 debug_printf ("PTRACE_DETACH (%s, %s, 0) (OK)\n",
1587 target_pid_to_str (ptid_of (thread)),
1588 strsignal (sig));
1589 }
1590
1591 delete_lwp (lwp);
1592 }
1593
1594 /* Callback for for_each_thread. Detaches from non-leader threads of a
1595 given process. */
1596
1597 static void
1598 linux_detach_lwp_callback (thread_info *thread)
1599 {
1600 /* We don't actually detach from the thread group leader just yet.
1601 If the thread group exits, we must reap the zombie clone lwps
1602 before we're able to reap the leader. */
1603 if (thread->id.pid () == thread->id.lwp ())
1604 return;
1605
1606 lwp_info *lwp = get_thread_lwp (thread);
1607 linux_detach_one_lwp (lwp);
1608 }
1609
1610 static int
1611 linux_detach (int pid)
1612 {
1613 struct process_info *process;
1614 struct lwp_info *main_lwp;
1615
1616 process = find_process_pid (pid);
1617 if (process == NULL)
1618 return -1;
1619
1620 /* As there's a step over already in progress, let it finish first,
1621 otherwise nesting a stabilize_threads operation on top gets real
1622 messy. */
1623 complete_ongoing_step_over ();
1624
1625 /* Stop all threads before detaching. First, ptrace requires that
1626 the thread is stopped to sucessfully detach. Second, thread_db
1627 may need to uninstall thread event breakpoints from memory, which
1628 only works with a stopped process anyway. */
1629 stop_all_lwps (0, NULL);
1630
1631 #ifdef USE_THREAD_DB
1632 thread_db_detach (process);
1633 #endif
1634
1635 /* Stabilize threads (move out of jump pads). */
1636 stabilize_threads ();
1637
1638 /* Detach from the clone lwps first. If the thread group exits just
1639 while we're detaching, we must reap the clone lwps before we're
1640 able to reap the leader. */
1641 for_each_thread (pid, linux_detach_lwp_callback);
1642
1643 main_lwp = find_lwp_pid (ptid_t (pid));
1644 linux_detach_one_lwp (main_lwp);
1645
1646 the_target->mourn (process);
1647
1648 /* Since we presently can only stop all lwps of all processes, we
1649 need to unstop lwps of other processes. */
1650 unstop_all_lwps (0, NULL);
1651 return 0;
1652 }
1653
1654 /* Remove all LWPs that belong to process PROC from the lwp list. */
1655
1656 static void
1657 linux_mourn (struct process_info *process)
1658 {
1659 struct process_info_private *priv;
1660
1661 #ifdef USE_THREAD_DB
1662 thread_db_mourn (process);
1663 #endif
1664
1665 for_each_thread (process->pid, [] (thread_info *thread)
1666 {
1667 delete_lwp (get_thread_lwp (thread));
1668 });
1669
1670 /* Freeing all private data. */
1671 priv = process->priv;
1672 if (the_low_target.delete_process != NULL)
1673 the_low_target.delete_process (priv->arch_private);
1674 else
1675 gdb_assert (priv->arch_private == NULL);
1676 free (priv);
1677 process->priv = NULL;
1678
1679 remove_process (process);
1680 }
1681
1682 static void
1683 linux_join (int pid)
1684 {
1685 int status, ret;
1686
1687 do {
1688 ret = my_waitpid (pid, &status, 0);
1689 if (WIFEXITED (status) || WIFSIGNALED (status))
1690 break;
1691 } while (ret != -1 || errno != ECHILD);
1692 }
1693
1694 /* Return nonzero if the given thread is still alive. */
1695 static int
1696 linux_thread_alive (ptid_t ptid)
1697 {
1698 struct lwp_info *lwp = find_lwp_pid (ptid);
1699
1700 /* We assume we always know if a thread exits. If a whole process
1701 exited but we still haven't been able to report it to GDB, we'll
1702 hold on to the last lwp of the dead process. */
1703 if (lwp != NULL)
1704 return !lwp_is_marked_dead (lwp);
1705 else
1706 return 0;
1707 }
1708
1709 /* Return 1 if this lwp still has an interesting status pending. If
1710 not (e.g., it had stopped for a breakpoint that is gone), return
1711 false. */
1712
1713 static int
1714 thread_still_has_status_pending_p (struct thread_info *thread)
1715 {
1716 struct lwp_info *lp = get_thread_lwp (thread);
1717
1718 if (!lp->status_pending_p)
1719 return 0;
1720
1721 if (thread->last_resume_kind != resume_stop
1722 && (lp->stop_reason == TARGET_STOPPED_BY_SW_BREAKPOINT
1723 || lp->stop_reason == TARGET_STOPPED_BY_HW_BREAKPOINT))
1724 {
1725 struct thread_info *saved_thread;
1726 CORE_ADDR pc;
1727 int discard = 0;
1728
1729 gdb_assert (lp->last_status != 0);
1730
1731 pc = get_pc (lp);
1732
1733 saved_thread = current_thread;
1734 current_thread = thread;
1735
1736 if (pc != lp->stop_pc)
1737 {
1738 if (debug_threads)
1739 debug_printf ("PC of %ld changed\n",
1740 lwpid_of (thread));
1741 discard = 1;
1742 }
1743
1744 #if !USE_SIGTRAP_SIGINFO
1745 else if (lp->stop_reason == TARGET_STOPPED_BY_SW_BREAKPOINT
1746 && !(*the_low_target.breakpoint_at) (pc))
1747 {
1748 if (debug_threads)
1749 debug_printf ("previous SW breakpoint of %ld gone\n",
1750 lwpid_of (thread));
1751 discard = 1;
1752 }
1753 else if (lp->stop_reason == TARGET_STOPPED_BY_HW_BREAKPOINT
1754 && !hardware_breakpoint_inserted_here (pc))
1755 {
1756 if (debug_threads)
1757 debug_printf ("previous HW breakpoint of %ld gone\n",
1758 lwpid_of (thread));
1759 discard = 1;
1760 }
1761 #endif
1762
1763 current_thread = saved_thread;
1764
1765 if (discard)
1766 {
1767 if (debug_threads)
1768 debug_printf ("discarding pending breakpoint status\n");
1769 lp->status_pending_p = 0;
1770 return 0;
1771 }
1772 }
1773
1774 return 1;
1775 }
1776
1777 /* Returns true if LWP is resumed from the client's perspective. */
1778
1779 static int
1780 lwp_resumed (struct lwp_info *lwp)
1781 {
1782 struct thread_info *thread = get_lwp_thread (lwp);
1783
1784 if (thread->last_resume_kind != resume_stop)
1785 return 1;
1786
1787 /* Did gdb send us a `vCont;t', but we haven't reported the
1788 corresponding stop to gdb yet? If so, the thread is still
1789 resumed/running from gdb's perspective. */
1790 if (thread->last_resume_kind == resume_stop
1791 && thread->last_status.kind == TARGET_WAITKIND_IGNORE)
1792 return 1;
1793
1794 return 0;
1795 }
1796
1797 /* Return true if this lwp has an interesting status pending. */
1798 static bool
1799 status_pending_p_callback (thread_info *thread, ptid_t ptid)
1800 {
1801 struct lwp_info *lp = get_thread_lwp (thread);
1802
1803 /* Check if we're only interested in events from a specific process
1804 or a specific LWP. */
1805 if (!thread->id.matches (ptid))
1806 return 0;
1807
1808 if (!lwp_resumed (lp))
1809 return 0;
1810
1811 if (lp->status_pending_p
1812 && !thread_still_has_status_pending_p (thread))
1813 {
1814 linux_resume_one_lwp (lp, lp->stepping, GDB_SIGNAL_0, NULL);
1815 return 0;
1816 }
1817
1818 return lp->status_pending_p;
1819 }
1820
1821 struct lwp_info *
1822 find_lwp_pid (ptid_t ptid)
1823 {
1824 thread_info *thread = find_thread ([&] (thread_info *thread)
1825 {
1826 int lwp = ptid.lwp () != 0 ? ptid.lwp () : ptid.pid ();
1827 return thread->id.lwp () == lwp;
1828 });
1829
1830 if (thread == NULL)
1831 return NULL;
1832
1833 return get_thread_lwp (thread);
1834 }
1835
1836 /* Return the number of known LWPs in the tgid given by PID. */
1837
1838 static int
1839 num_lwps (int pid)
1840 {
1841 int count = 0;
1842
1843 for_each_thread (pid, [&] (thread_info *thread)
1844 {
1845 count++;
1846 });
1847
1848 return count;
1849 }
1850
1851 /* See nat/linux-nat.h. */
1852
1853 struct lwp_info *
1854 iterate_over_lwps (ptid_t filter,
1855 iterate_over_lwps_ftype callback,
1856 void *data)
1857 {
1858 thread_info *thread = find_thread (filter, [&] (thread_info *thread)
1859 {
1860 lwp_info *lwp = get_thread_lwp (thread);
1861
1862 return callback (lwp, data);
1863 });
1864
1865 if (thread == NULL)
1866 return NULL;
1867
1868 return get_thread_lwp (thread);
1869 }
1870
1871 /* Detect zombie thread group leaders, and "exit" them. We can't reap
1872 their exits until all other threads in the group have exited. */
1873
1874 static void
1875 check_zombie_leaders (void)
1876 {
1877 for_each_process ([] (process_info *proc) {
1878 pid_t leader_pid = pid_of (proc);
1879 struct lwp_info *leader_lp;
1880
1881 leader_lp = find_lwp_pid (ptid_t (leader_pid));
1882
1883 if (debug_threads)
1884 debug_printf ("leader_pid=%d, leader_lp!=NULL=%d, "
1885 "num_lwps=%d, zombie=%d\n",
1886 leader_pid, leader_lp!= NULL, num_lwps (leader_pid),
1887 linux_proc_pid_is_zombie (leader_pid));
1888
1889 if (leader_lp != NULL && !leader_lp->stopped
1890 /* Check if there are other threads in the group, as we may
1891 have raced with the inferior simply exiting. */
1892 && !last_thread_of_process_p (leader_pid)
1893 && linux_proc_pid_is_zombie (leader_pid))
1894 {
1895 /* A leader zombie can mean one of two things:
1896
1897 - It exited, and there's an exit status pending
1898 available, or only the leader exited (not the whole
1899 program). In the latter case, we can't waitpid the
1900 leader's exit status until all other threads are gone.
1901
1902 - There are 3 or more threads in the group, and a thread
1903 other than the leader exec'd. On an exec, the Linux
1904 kernel destroys all other threads (except the execing
1905 one) in the thread group, and resets the execing thread's
1906 tid to the tgid. No exit notification is sent for the
1907 execing thread -- from the ptracer's perspective, it
1908 appears as though the execing thread just vanishes.
1909 Until we reap all other threads except the leader and the
1910 execing thread, the leader will be zombie, and the
1911 execing thread will be in `D (disc sleep)'. As soon as
1912 all other threads are reaped, the execing thread changes
1913 it's tid to the tgid, and the previous (zombie) leader
1914 vanishes, giving place to the "new" leader. We could try
1915 distinguishing the exit and exec cases, by waiting once
1916 more, and seeing if something comes out, but it doesn't
1917 sound useful. The previous leader _does_ go away, and
1918 we'll re-add the new one once we see the exec event
1919 (which is just the same as what would happen if the
1920 previous leader did exit voluntarily before some other
1921 thread execs). */
1922
1923 if (debug_threads)
1924 debug_printf ("CZL: Thread group leader %d zombie "
1925 "(it exited, or another thread execd).\n",
1926 leader_pid);
1927
1928 delete_lwp (leader_lp);
1929 }
1930 });
1931 }
1932
1933 /* Callback for `find_thread'. Returns the first LWP that is not
1934 stopped. */
1935
1936 static bool
1937 not_stopped_callback (thread_info *thread, ptid_t filter)
1938 {
1939 if (!thread->id.matches (filter))
1940 return false;
1941
1942 lwp_info *lwp = get_thread_lwp (thread);
1943
1944 return !lwp->stopped;
1945 }
1946
1947 /* Increment LWP's suspend count. */
1948
1949 static void
1950 lwp_suspended_inc (struct lwp_info *lwp)
1951 {
1952 lwp->suspended++;
1953
1954 if (debug_threads && lwp->suspended > 4)
1955 {
1956 struct thread_info *thread = get_lwp_thread (lwp);
1957
1958 debug_printf ("LWP %ld has a suspiciously high suspend count,"
1959 " suspended=%d\n", lwpid_of (thread), lwp->suspended);
1960 }
1961 }
1962
1963 /* Decrement LWP's suspend count. */
1964
1965 static void
1966 lwp_suspended_decr (struct lwp_info *lwp)
1967 {
1968 lwp->suspended--;
1969
1970 if (lwp->suspended < 0)
1971 {
1972 struct thread_info *thread = get_lwp_thread (lwp);
1973
1974 internal_error (__FILE__, __LINE__,
1975 "unsuspend LWP %ld, suspended=%d\n", lwpid_of (thread),
1976 lwp->suspended);
1977 }
1978 }
1979
1980 /* This function should only be called if the LWP got a SIGTRAP.
1981
1982 Handle any tracepoint steps or hits. Return true if a tracepoint
1983 event was handled, 0 otherwise. */
1984
1985 static int
1986 handle_tracepoints (struct lwp_info *lwp)
1987 {
1988 struct thread_info *tinfo = get_lwp_thread (lwp);
1989 int tpoint_related_event = 0;
1990
1991 gdb_assert (lwp->suspended == 0);
1992
1993 /* If this tracepoint hit causes a tracing stop, we'll immediately
1994 uninsert tracepoints. To do this, we temporarily pause all
1995 threads, unpatch away, and then unpause threads. We need to make
1996 sure the unpausing doesn't resume LWP too. */
1997 lwp_suspended_inc (lwp);
1998
1999 /* And we need to be sure that any all-threads-stopping doesn't try
2000 to move threads out of the jump pads, as it could deadlock the
2001 inferior (LWP could be in the jump pad, maybe even holding the
2002 lock.) */
2003
2004 /* Do any necessary step collect actions. */
2005 tpoint_related_event |= tracepoint_finished_step (tinfo, lwp->stop_pc);
2006
2007 tpoint_related_event |= handle_tracepoint_bkpts (tinfo, lwp->stop_pc);
2008
2009 /* See if we just hit a tracepoint and do its main collect
2010 actions. */
2011 tpoint_related_event |= tracepoint_was_hit (tinfo, lwp->stop_pc);
2012
2013 lwp_suspended_decr (lwp);
2014
2015 gdb_assert (lwp->suspended == 0);
2016 gdb_assert (!stabilizing_threads
2017 || (lwp->collecting_fast_tracepoint
2018 != fast_tpoint_collect_result::not_collecting));
2019
2020 if (tpoint_related_event)
2021 {
2022 if (debug_threads)
2023 debug_printf ("got a tracepoint event\n");
2024 return 1;
2025 }
2026
2027 return 0;
2028 }
2029
2030 /* Convenience wrapper. Returns information about LWP's fast tracepoint
2031 collection status. */
2032
2033 static fast_tpoint_collect_result
2034 linux_fast_tracepoint_collecting (struct lwp_info *lwp,
2035 struct fast_tpoint_collect_status *status)
2036 {
2037 CORE_ADDR thread_area;
2038 struct thread_info *thread = get_lwp_thread (lwp);
2039
2040 if (the_low_target.get_thread_area == NULL)
2041 return fast_tpoint_collect_result::not_collecting;
2042
2043 /* Get the thread area address. This is used to recognize which
2044 thread is which when tracing with the in-process agent library.
2045 We don't read anything from the address, and treat it as opaque;
2046 it's the address itself that we assume is unique per-thread. */
2047 if ((*the_low_target.get_thread_area) (lwpid_of (thread), &thread_area) == -1)
2048 return fast_tpoint_collect_result::not_collecting;
2049
2050 return fast_tracepoint_collecting (thread_area, lwp->stop_pc, status);
2051 }
2052
2053 /* The reason we resume in the caller, is because we want to be able
2054 to pass lwp->status_pending as WSTAT, and we need to clear
2055 status_pending_p before resuming, otherwise, linux_resume_one_lwp
2056 refuses to resume. */
2057
2058 static int
2059 maybe_move_out_of_jump_pad (struct lwp_info *lwp, int *wstat)
2060 {
2061 struct thread_info *saved_thread;
2062
2063 saved_thread = current_thread;
2064 current_thread = get_lwp_thread (lwp);
2065
2066 if ((wstat == NULL
2067 || (WIFSTOPPED (*wstat) && WSTOPSIG (*wstat) != SIGTRAP))
2068 && supports_fast_tracepoints ()
2069 && agent_loaded_p ())
2070 {
2071 struct fast_tpoint_collect_status status;
2072
2073 if (debug_threads)
2074 debug_printf ("Checking whether LWP %ld needs to move out of the "
2075 "jump pad.\n",
2076 lwpid_of (current_thread));
2077
2078 fast_tpoint_collect_result r
2079 = linux_fast_tracepoint_collecting (lwp, &status);
2080
2081 if (wstat == NULL
2082 || (WSTOPSIG (*wstat) != SIGILL
2083 && WSTOPSIG (*wstat) != SIGFPE
2084 && WSTOPSIG (*wstat) != SIGSEGV
2085 && WSTOPSIG (*wstat) != SIGBUS))
2086 {
2087 lwp->collecting_fast_tracepoint = r;
2088
2089 if (r != fast_tpoint_collect_result::not_collecting)
2090 {
2091 if (r == fast_tpoint_collect_result::before_insn
2092 && lwp->exit_jump_pad_bkpt == NULL)
2093 {
2094 /* Haven't executed the original instruction yet.
2095 Set breakpoint there, and wait till it's hit,
2096 then single-step until exiting the jump pad. */
2097 lwp->exit_jump_pad_bkpt
2098 = set_breakpoint_at (status.adjusted_insn_addr, NULL);
2099 }
2100
2101 if (debug_threads)
2102 debug_printf ("Checking whether LWP %ld needs to move out of "
2103 "the jump pad...it does\n",
2104 lwpid_of (current_thread));
2105 current_thread = saved_thread;
2106
2107 return 1;
2108 }
2109 }
2110 else
2111 {
2112 /* If we get a synchronous signal while collecting, *and*
2113 while executing the (relocated) original instruction,
2114 reset the PC to point at the tpoint address, before
2115 reporting to GDB. Otherwise, it's an IPA lib bug: just
2116 report the signal to GDB, and pray for the best. */
2117
2118 lwp->collecting_fast_tracepoint
2119 = fast_tpoint_collect_result::not_collecting;
2120
2121 if (r != fast_tpoint_collect_result::not_collecting
2122 && (status.adjusted_insn_addr <= lwp->stop_pc
2123 && lwp->stop_pc < status.adjusted_insn_addr_end))
2124 {
2125 siginfo_t info;
2126 struct regcache *regcache;
2127
2128 /* The si_addr on a few signals references the address
2129 of the faulting instruction. Adjust that as
2130 well. */
2131 if ((WSTOPSIG (*wstat) == SIGILL
2132 || WSTOPSIG (*wstat) == SIGFPE
2133 || WSTOPSIG (*wstat) == SIGBUS
2134 || WSTOPSIG (*wstat) == SIGSEGV)
2135 && ptrace (PTRACE_GETSIGINFO, lwpid_of (current_thread),
2136 (PTRACE_TYPE_ARG3) 0, &info) == 0
2137 /* Final check just to make sure we don't clobber
2138 the siginfo of non-kernel-sent signals. */
2139 && (uintptr_t) info.si_addr == lwp->stop_pc)
2140 {
2141 info.si_addr = (void *) (uintptr_t) status.tpoint_addr;
2142 ptrace (PTRACE_SETSIGINFO, lwpid_of (current_thread),
2143 (PTRACE_TYPE_ARG3) 0, &info);
2144 }
2145
2146 regcache = get_thread_regcache (current_thread, 1);
2147 (*the_low_target.set_pc) (regcache, status.tpoint_addr);
2148 lwp->stop_pc = status.tpoint_addr;
2149
2150 /* Cancel any fast tracepoint lock this thread was
2151 holding. */
2152 force_unlock_trace_buffer ();
2153 }
2154
2155 if (lwp->exit_jump_pad_bkpt != NULL)
2156 {
2157 if (debug_threads)
2158 debug_printf ("Cancelling fast exit-jump-pad: removing bkpt. "
2159 "stopping all threads momentarily.\n");
2160
2161 stop_all_lwps (1, lwp);
2162
2163 delete_breakpoint (lwp->exit_jump_pad_bkpt);
2164 lwp->exit_jump_pad_bkpt = NULL;
2165
2166 unstop_all_lwps (1, lwp);
2167
2168 gdb_assert (lwp->suspended >= 0);
2169 }
2170 }
2171 }
2172
2173 if (debug_threads)
2174 debug_printf ("Checking whether LWP %ld needs to move out of the "
2175 "jump pad...no\n",
2176 lwpid_of (current_thread));
2177
2178 current_thread = saved_thread;
2179 return 0;
2180 }
2181
2182 /* Enqueue one signal in the "signals to report later when out of the
2183 jump pad" list. */
2184
2185 static void
2186 enqueue_one_deferred_signal (struct lwp_info *lwp, int *wstat)
2187 {
2188 struct pending_signals *p_sig;
2189 struct thread_info *thread = get_lwp_thread (lwp);
2190
2191 if (debug_threads)
2192 debug_printf ("Deferring signal %d for LWP %ld.\n",
2193 WSTOPSIG (*wstat), lwpid_of (thread));
2194
2195 if (debug_threads)
2196 {
2197 struct pending_signals *sig;
2198
2199 for (sig = lwp->pending_signals_to_report;
2200 sig != NULL;
2201 sig = sig->prev)
2202 debug_printf (" Already queued %d\n",
2203 sig->signal);
2204
2205 debug_printf (" (no more currently queued signals)\n");
2206 }
2207
2208 /* Don't enqueue non-RT signals if they are already in the deferred
2209 queue. (SIGSTOP being the easiest signal to see ending up here
2210 twice) */
2211 if (WSTOPSIG (*wstat) < __SIGRTMIN)
2212 {
2213 struct pending_signals *sig;
2214
2215 for (sig = lwp->pending_signals_to_report;
2216 sig != NULL;
2217 sig = sig->prev)
2218 {
2219 if (sig->signal == WSTOPSIG (*wstat))
2220 {
2221 if (debug_threads)
2222 debug_printf ("Not requeuing already queued non-RT signal %d"
2223 " for LWP %ld\n",
2224 sig->signal,
2225 lwpid_of (thread));
2226 return;
2227 }
2228 }
2229 }
2230
2231 p_sig = XCNEW (struct pending_signals);
2232 p_sig->prev = lwp->pending_signals_to_report;
2233 p_sig->signal = WSTOPSIG (*wstat);
2234
2235 ptrace (PTRACE_GETSIGINFO, lwpid_of (thread), (PTRACE_TYPE_ARG3) 0,
2236 &p_sig->info);
2237
2238 lwp->pending_signals_to_report = p_sig;
2239 }
2240
2241 /* Dequeue one signal from the "signals to report later when out of
2242 the jump pad" list. */
2243
2244 static int
2245 dequeue_one_deferred_signal (struct lwp_info *lwp, int *wstat)
2246 {
2247 struct thread_info *thread = get_lwp_thread (lwp);
2248
2249 if (lwp->pending_signals_to_report != NULL)
2250 {
2251 struct pending_signals **p_sig;
2252
2253 p_sig = &lwp->pending_signals_to_report;
2254 while ((*p_sig)->prev != NULL)
2255 p_sig = &(*p_sig)->prev;
2256
2257 *wstat = W_STOPCODE ((*p_sig)->signal);
2258 if ((*p_sig)->info.si_signo != 0)
2259 ptrace (PTRACE_SETSIGINFO, lwpid_of (thread), (PTRACE_TYPE_ARG3) 0,
2260 &(*p_sig)->info);
2261 free (*p_sig);
2262 *p_sig = NULL;
2263
2264 if (debug_threads)
2265 debug_printf ("Reporting deferred signal %d for LWP %ld.\n",
2266 WSTOPSIG (*wstat), lwpid_of (thread));
2267
2268 if (debug_threads)
2269 {
2270 struct pending_signals *sig;
2271
2272 for (sig = lwp->pending_signals_to_report;
2273 sig != NULL;
2274 sig = sig->prev)
2275 debug_printf (" Still queued %d\n",
2276 sig->signal);
2277
2278 debug_printf (" (no more queued signals)\n");
2279 }
2280
2281 return 1;
2282 }
2283
2284 return 0;
2285 }
2286
2287 /* Fetch the possibly triggered data watchpoint info and store it in
2288 CHILD.
2289
2290 On some archs, like x86, that use debug registers to set
2291 watchpoints, it's possible that the way to know which watched
2292 address trapped, is to check the register that is used to select
2293 which address to watch. Problem is, between setting the watchpoint
2294 and reading back which data address trapped, the user may change
2295 the set of watchpoints, and, as a consequence, GDB changes the
2296 debug registers in the inferior. To avoid reading back a stale
2297 stopped-data-address when that happens, we cache in LP the fact
2298 that a watchpoint trapped, and the corresponding data address, as
2299 soon as we see CHILD stop with a SIGTRAP. If GDB changes the debug
2300 registers meanwhile, we have the cached data we can rely on. */
2301
2302 static int
2303 check_stopped_by_watchpoint (struct lwp_info *child)
2304 {
2305 if (the_low_target.stopped_by_watchpoint != NULL)
2306 {
2307 struct thread_info *saved_thread;
2308
2309 saved_thread = current_thread;
2310 current_thread = get_lwp_thread (child);
2311
2312 if (the_low_target.stopped_by_watchpoint ())
2313 {
2314 child->stop_reason = TARGET_STOPPED_BY_WATCHPOINT;
2315
2316 if (the_low_target.stopped_data_address != NULL)
2317 child->stopped_data_address
2318 = the_low_target.stopped_data_address ();
2319 else
2320 child->stopped_data_address = 0;
2321 }
2322
2323 current_thread = saved_thread;
2324 }
2325
2326 return child->stop_reason == TARGET_STOPPED_BY_WATCHPOINT;
2327 }
2328
2329 /* Return the ptrace options that we want to try to enable. */
2330
2331 static int
2332 linux_low_ptrace_options (int attached)
2333 {
2334 client_state &cs = get_client_state ();
2335 int options = 0;
2336
2337 if (!attached)
2338 options |= PTRACE_O_EXITKILL;
2339
2340 if (cs.report_fork_events)
2341 options |= PTRACE_O_TRACEFORK;
2342
2343 if (cs.report_vfork_events)
2344 options |= (PTRACE_O_TRACEVFORK | PTRACE_O_TRACEVFORKDONE);
2345
2346 if (cs.report_exec_events)
2347 options |= PTRACE_O_TRACEEXEC;
2348
2349 options |= PTRACE_O_TRACESYSGOOD;
2350
2351 return options;
2352 }
2353
2354 /* Do low-level handling of the event, and check if we should go on
2355 and pass it to caller code. Return the affected lwp if we are, or
2356 NULL otherwise. */
2357
2358 static struct lwp_info *
2359 linux_low_filter_event (int lwpid, int wstat)
2360 {
2361 client_state &cs = get_client_state ();
2362 struct lwp_info *child;
2363 struct thread_info *thread;
2364 int have_stop_pc = 0;
2365
2366 child = find_lwp_pid (ptid_t (lwpid));
2367
2368 /* Check for stop events reported by a process we didn't already
2369 know about - anything not already in our LWP list.
2370
2371 If we're expecting to receive stopped processes after
2372 fork, vfork, and clone events, then we'll just add the
2373 new one to our list and go back to waiting for the event
2374 to be reported - the stopped process might be returned
2375 from waitpid before or after the event is.
2376
2377 But note the case of a non-leader thread exec'ing after the
2378 leader having exited, and gone from our lists (because
2379 check_zombie_leaders deleted it). The non-leader thread
2380 changes its tid to the tgid. */
2381
2382 if (WIFSTOPPED (wstat) && child == NULL && WSTOPSIG (wstat) == SIGTRAP
2383 && linux_ptrace_get_extended_event (wstat) == PTRACE_EVENT_EXEC)
2384 {
2385 ptid_t child_ptid;
2386
2387 /* A multi-thread exec after we had seen the leader exiting. */
2388 if (debug_threads)
2389 {
2390 debug_printf ("LLW: Re-adding thread group leader LWP %d"
2391 "after exec.\n", lwpid);
2392 }
2393
2394 child_ptid = ptid_t (lwpid, lwpid, 0);
2395 child = add_lwp (child_ptid);
2396 child->stopped = 1;
2397 current_thread = child->thread;
2398 }
2399
2400 /* If we didn't find a process, one of two things presumably happened:
2401 - A process we started and then detached from has exited. Ignore it.
2402 - A process we are controlling has forked and the new child's stop
2403 was reported to us by the kernel. Save its PID. */
2404 if (child == NULL && WIFSTOPPED (wstat))
2405 {
2406 add_to_pid_list (&stopped_pids, lwpid, wstat);
2407 return NULL;
2408 }
2409 else if (child == NULL)
2410 return NULL;
2411
2412 thread = get_lwp_thread (child);
2413
2414 child->stopped = 1;
2415
2416 child->last_status = wstat;
2417
2418 /* Check if the thread has exited. */
2419 if ((WIFEXITED (wstat) || WIFSIGNALED (wstat)))
2420 {
2421 if (debug_threads)
2422 debug_printf ("LLFE: %d exited.\n", lwpid);
2423
2424 if (finish_step_over (child))
2425 {
2426 /* Unsuspend all other LWPs, and set them back running again. */
2427 unsuspend_all_lwps (child);
2428 }
2429
2430 /* If there is at least one more LWP, then the exit signal was
2431 not the end of the debugged application and should be
2432 ignored, unless GDB wants to hear about thread exits. */
2433 if (cs.report_thread_events
2434 || last_thread_of_process_p (pid_of (thread)))
2435 {
2436 /* Since events are serialized to GDB core, and we can't
2437 report this one right now. Leave the status pending for
2438 the next time we're able to report it. */
2439 mark_lwp_dead (child, wstat);
2440 return child;
2441 }
2442 else
2443 {
2444 delete_lwp (child);
2445 return NULL;
2446 }
2447 }
2448
2449 gdb_assert (WIFSTOPPED (wstat));
2450
2451 if (WIFSTOPPED (wstat))
2452 {
2453 struct process_info *proc;
2454
2455 /* Architecture-specific setup after inferior is running. */
2456 proc = find_process_pid (pid_of (thread));
2457 if (proc->tdesc == NULL)
2458 {
2459 if (proc->attached)
2460 {
2461 /* This needs to happen after we have attached to the
2462 inferior and it is stopped for the first time, but
2463 before we access any inferior registers. */
2464 linux_arch_setup_thread (thread);
2465 }
2466 else
2467 {
2468 /* The process is started, but GDBserver will do
2469 architecture-specific setup after the program stops at
2470 the first instruction. */
2471 child->status_pending_p = 1;
2472 child->status_pending = wstat;
2473 return child;
2474 }
2475 }
2476 }
2477
2478 if (WIFSTOPPED (wstat) && child->must_set_ptrace_flags)
2479 {
2480 struct process_info *proc = find_process_pid (pid_of (thread));
2481 int options = linux_low_ptrace_options (proc->attached);
2482
2483 linux_enable_event_reporting (lwpid, options);
2484 child->must_set_ptrace_flags = 0;
2485 }
2486
2487 /* Always update syscall_state, even if it will be filtered later. */
2488 if (WIFSTOPPED (wstat) && WSTOPSIG (wstat) == SYSCALL_SIGTRAP)
2489 {
2490 child->syscall_state
2491 = (child->syscall_state == TARGET_WAITKIND_SYSCALL_ENTRY
2492 ? TARGET_WAITKIND_SYSCALL_RETURN
2493 : TARGET_WAITKIND_SYSCALL_ENTRY);
2494 }
2495 else
2496 {
2497 /* Almost all other ptrace-stops are known to be outside of system
2498 calls, with further exceptions in handle_extended_wait. */
2499 child->syscall_state = TARGET_WAITKIND_IGNORE;
2500 }
2501
2502 /* Be careful to not overwrite stop_pc until save_stop_reason is
2503 called. */
2504 if (WIFSTOPPED (wstat) && WSTOPSIG (wstat) == SIGTRAP
2505 && linux_is_extended_waitstatus (wstat))
2506 {
2507 child->stop_pc = get_pc (child);
2508 if (handle_extended_wait (&child, wstat))
2509 {
2510 /* The event has been handled, so just return without
2511 reporting it. */
2512 return NULL;
2513 }
2514 }
2515
2516 if (linux_wstatus_maybe_breakpoint (wstat))
2517 {
2518 if (save_stop_reason (child))
2519 have_stop_pc = 1;
2520 }
2521
2522 if (!have_stop_pc)
2523 child->stop_pc = get_pc (child);
2524
2525 if (WIFSTOPPED (wstat) && WSTOPSIG (wstat) == SIGSTOP
2526 && child->stop_expected)
2527 {
2528 if (debug_threads)
2529 debug_printf ("Expected stop.\n");
2530 child->stop_expected = 0;
2531
2532 if (thread->last_resume_kind == resume_stop)
2533 {
2534 /* We want to report the stop to the core. Treat the
2535 SIGSTOP as a normal event. */
2536 if (debug_threads)
2537 debug_printf ("LLW: resume_stop SIGSTOP caught for %s.\n",
2538 target_pid_to_str (ptid_of (thread)));
2539 }
2540 else if (stopping_threads != NOT_STOPPING_THREADS)
2541 {
2542 /* Stopping threads. We don't want this SIGSTOP to end up
2543 pending. */
2544 if (debug_threads)
2545 debug_printf ("LLW: SIGSTOP caught for %s "
2546 "while stopping threads.\n",
2547 target_pid_to_str (ptid_of (thread)));
2548 return NULL;
2549 }
2550 else
2551 {
2552 /* This is a delayed SIGSTOP. Filter out the event. */
2553 if (debug_threads)
2554 debug_printf ("LLW: %s %s, 0, 0 (discard delayed SIGSTOP)\n",
2555 child->stepping ? "step" : "continue",
2556 target_pid_to_str (ptid_of (thread)));
2557
2558 linux_resume_one_lwp (child, child->stepping, 0, NULL);
2559 return NULL;
2560 }
2561 }
2562
2563 child->status_pending_p = 1;
2564 child->status_pending = wstat;
2565 return child;
2566 }
2567
2568 /* Return true if THREAD is doing hardware single step. */
2569
2570 static int
2571 maybe_hw_step (struct thread_info *thread)
2572 {
2573 if (can_hardware_single_step ())
2574 return 1;
2575 else
2576 {
2577 /* GDBserver must insert single-step breakpoint for software
2578 single step. */
2579 gdb_assert (has_single_step_breakpoints (thread));
2580 return 0;
2581 }
2582 }
2583
2584 /* Resume LWPs that are currently stopped without any pending status
2585 to report, but are resumed from the core's perspective. */
2586
2587 static void
2588 resume_stopped_resumed_lwps (thread_info *thread)
2589 {
2590 struct lwp_info *lp = get_thread_lwp (thread);
2591
2592 if (lp->stopped
2593 && !lp->suspended
2594 && !lp->status_pending_p
2595 && thread->last_status.kind == TARGET_WAITKIND_IGNORE)
2596 {
2597 int step = 0;
2598
2599 if (thread->last_resume_kind == resume_step)
2600 step = maybe_hw_step (thread);
2601
2602 if (debug_threads)
2603 debug_printf ("RSRL: resuming stopped-resumed LWP %s at %s: step=%d\n",
2604 target_pid_to_str (ptid_of (thread)),
2605 paddress (lp->stop_pc),
2606 step);
2607
2608 linux_resume_one_lwp (lp, step, GDB_SIGNAL_0, NULL);
2609 }
2610 }
2611
2612 /* Wait for an event from child(ren) WAIT_PTID, and return any that
2613 match FILTER_PTID (leaving others pending). The PTIDs can be:
2614 minus_one_ptid, to specify any child; a pid PTID, specifying all
2615 lwps of a thread group; or a PTID representing a single lwp. Store
2616 the stop status through the status pointer WSTAT. OPTIONS is
2617 passed to the waitpid call. Return 0 if no event was found and
2618 OPTIONS contains WNOHANG. Return -1 if no unwaited-for children
2619 was found. Return the PID of the stopped child otherwise. */
2620
2621 static int
2622 linux_wait_for_event_filtered (ptid_t wait_ptid, ptid_t filter_ptid,
2623 int *wstatp, int options)
2624 {
2625 struct thread_info *event_thread;
2626 struct lwp_info *event_child, *requested_child;
2627 sigset_t block_mask, prev_mask;
2628
2629 retry:
2630 /* N.B. event_thread points to the thread_info struct that contains
2631 event_child. Keep them in sync. */
2632 event_thread = NULL;
2633 event_child = NULL;
2634 requested_child = NULL;
2635
2636 /* Check for a lwp with a pending status. */
2637
2638 if (ptid_equal (filter_ptid, minus_one_ptid) || ptid_is_pid (filter_ptid))
2639 {
2640 event_thread = find_thread_in_random ([&] (thread_info *thread)
2641 {
2642 return status_pending_p_callback (thread, filter_ptid);
2643 });
2644
2645 if (event_thread != NULL)
2646 event_child = get_thread_lwp (event_thread);
2647 if (debug_threads && event_thread)
2648 debug_printf ("Got a pending child %ld\n", lwpid_of (event_thread));
2649 }
2650 else if (!ptid_equal (filter_ptid, null_ptid))
2651 {
2652 requested_child = find_lwp_pid (filter_ptid);
2653
2654 if (stopping_threads == NOT_STOPPING_THREADS
2655 && requested_child->status_pending_p
2656 && (requested_child->collecting_fast_tracepoint
2657 != fast_tpoint_collect_result::not_collecting))
2658 {
2659 enqueue_one_deferred_signal (requested_child,
2660 &requested_child->status_pending);
2661 requested_child->status_pending_p = 0;
2662 requested_child->status_pending = 0;
2663 linux_resume_one_lwp (requested_child, 0, 0, NULL);
2664 }
2665
2666 if (requested_child->suspended
2667 && requested_child->status_pending_p)
2668 {
2669 internal_error (__FILE__, __LINE__,
2670 "requesting an event out of a"
2671 " suspended child?");
2672 }
2673
2674 if (requested_child->status_pending_p)
2675 {
2676 event_child = requested_child;
2677 event_thread = get_lwp_thread (event_child);
2678 }
2679 }
2680
2681 if (event_child != NULL)
2682 {
2683 if (debug_threads)
2684 debug_printf ("Got an event from pending child %ld (%04x)\n",
2685 lwpid_of (event_thread), event_child->status_pending);
2686 *wstatp = event_child->status_pending;
2687 event_child->status_pending_p = 0;
2688 event_child->status_pending = 0;
2689 current_thread = event_thread;
2690 return lwpid_of (event_thread);
2691 }
2692
2693 /* But if we don't find a pending event, we'll have to wait.
2694
2695 We only enter this loop if no process has a pending wait status.
2696 Thus any action taken in response to a wait status inside this
2697 loop is responding as soon as we detect the status, not after any
2698 pending events. */
2699
2700 /* Make sure SIGCHLD is blocked until the sigsuspend below. Block
2701 all signals while here. */
2702 sigfillset (&block_mask);
2703 sigprocmask (SIG_BLOCK, &block_mask, &prev_mask);
2704
2705 /* Always pull all events out of the kernel. We'll randomly select
2706 an event LWP out of all that have events, to prevent
2707 starvation. */
2708 while (event_child == NULL)
2709 {
2710 pid_t ret = 0;
2711
2712 /* Always use -1 and WNOHANG, due to couple of a kernel/ptrace
2713 quirks:
2714
2715 - If the thread group leader exits while other threads in the
2716 thread group still exist, waitpid(TGID, ...) hangs. That
2717 waitpid won't return an exit status until the other threads
2718 in the group are reaped.
2719
2720 - When a non-leader thread execs, that thread just vanishes
2721 without reporting an exit (so we'd hang if we waited for it
2722 explicitly in that case). The exec event is reported to
2723 the TGID pid. */
2724 errno = 0;
2725 ret = my_waitpid (-1, wstatp, options | WNOHANG);
2726
2727 if (debug_threads)
2728 debug_printf ("LWFE: waitpid(-1, ...) returned %d, %s\n",
2729 ret, errno ? strerror (errno) : "ERRNO-OK");
2730
2731 if (ret > 0)
2732 {
2733 if (debug_threads)
2734 {
2735 debug_printf ("LLW: waitpid %ld received %s\n",
2736 (long) ret, status_to_str (*wstatp));
2737 }
2738
2739 /* Filter all events. IOW, leave all events pending. We'll
2740 randomly select an event LWP out of all that have events
2741 below. */
2742 linux_low_filter_event (ret, *wstatp);
2743 /* Retry until nothing comes out of waitpid. A single
2744 SIGCHLD can indicate more than one child stopped. */
2745 continue;
2746 }
2747
2748 /* Now that we've pulled all events out of the kernel, resume
2749 LWPs that don't have an interesting event to report. */
2750 if (stopping_threads == NOT_STOPPING_THREADS)
2751 for_each_thread (resume_stopped_resumed_lwps);
2752
2753 /* ... and find an LWP with a status to report to the core, if
2754 any. */
2755 event_thread = find_thread_in_random ([&] (thread_info *thread)
2756 {
2757 return status_pending_p_callback (thread, filter_ptid);
2758 });
2759
2760 if (event_thread != NULL)
2761 {
2762 event_child = get_thread_lwp (event_thread);
2763 *wstatp = event_child->status_pending;
2764 event_child->status_pending_p = 0;
2765 event_child->status_pending = 0;
2766 break;
2767 }
2768
2769 /* Check for zombie thread group leaders. Those can't be reaped
2770 until all other threads in the thread group are. */
2771 check_zombie_leaders ();
2772
2773 auto not_stopped = [&] (thread_info *thread)
2774 {
2775 return not_stopped_callback (thread, wait_ptid);
2776 };
2777
2778 /* If there are no resumed children left in the set of LWPs we
2779 want to wait for, bail. We can't just block in
2780 waitpid/sigsuspend, because lwps might have been left stopped
2781 in trace-stop state, and we'd be stuck forever waiting for
2782 their status to change (which would only happen if we resumed
2783 them). Even if WNOHANG is set, this return code is preferred
2784 over 0 (below), as it is more detailed. */
2785 if (find_thread (not_stopped) == NULL)
2786 {
2787 if (debug_threads)
2788 debug_printf ("LLW: exit (no unwaited-for LWP)\n");
2789 sigprocmask (SIG_SETMASK, &prev_mask, NULL);
2790 return -1;
2791 }
2792
2793 /* No interesting event to report to the caller. */
2794 if ((options & WNOHANG))
2795 {
2796 if (debug_threads)
2797 debug_printf ("WNOHANG set, no event found\n");
2798
2799 sigprocmask (SIG_SETMASK, &prev_mask, NULL);
2800 return 0;
2801 }
2802
2803 /* Block until we get an event reported with SIGCHLD. */
2804 if (debug_threads)
2805 debug_printf ("sigsuspend'ing\n");
2806
2807 sigsuspend (&prev_mask);
2808 sigprocmask (SIG_SETMASK, &prev_mask, NULL);
2809 goto retry;
2810 }
2811
2812 sigprocmask (SIG_SETMASK, &prev_mask, NULL);
2813
2814 current_thread = event_thread;
2815
2816 return lwpid_of (event_thread);
2817 }
2818
2819 /* Wait for an event from child(ren) PTID. PTIDs can be:
2820 minus_one_ptid, to specify any child; a pid PTID, specifying all
2821 lwps of a thread group; or a PTID representing a single lwp. Store
2822 the stop status through the status pointer WSTAT. OPTIONS is
2823 passed to the waitpid call. Return 0 if no event was found and
2824 OPTIONS contains WNOHANG. Return -1 if no unwaited-for children
2825 was found. Return the PID of the stopped child otherwise. */
2826
2827 static int
2828 linux_wait_for_event (ptid_t ptid, int *wstatp, int options)
2829 {
2830 return linux_wait_for_event_filtered (ptid, ptid, wstatp, options);
2831 }
2832
2833 /* Select one LWP out of those that have events pending. */
2834
2835 static void
2836 select_event_lwp (struct lwp_info **orig_lp)
2837 {
2838 int random_selector;
2839 struct thread_info *event_thread = NULL;
2840
2841 /* In all-stop, give preference to the LWP that is being
2842 single-stepped. There will be at most one, and it's the LWP that
2843 the core is most interested in. If we didn't do this, then we'd
2844 have to handle pending step SIGTRAPs somehow in case the core
2845 later continues the previously-stepped thread, otherwise we'd
2846 report the pending SIGTRAP, and the core, not having stepped the
2847 thread, wouldn't understand what the trap was for, and therefore
2848 would report it to the user as a random signal. */
2849 if (!non_stop)
2850 {
2851 event_thread = find_thread ([] (thread_info *thread)
2852 {
2853 lwp_info *lp = get_thread_lwp (thread);
2854
2855 return (thread->last_status.kind == TARGET_WAITKIND_IGNORE
2856 && thread->last_resume_kind == resume_step
2857 && lp->status_pending_p);
2858 });
2859
2860 if (event_thread != NULL)
2861 {
2862 if (debug_threads)
2863 debug_printf ("SEL: Select single-step %s\n",
2864 target_pid_to_str (ptid_of (event_thread)));
2865 }
2866 }
2867 if (event_thread == NULL)
2868 {
2869 /* No single-stepping LWP. Select one at random, out of those
2870 which have had events. */
2871
2872 /* First see how many events we have. */
2873 int num_events = 0;
2874 for_each_thread ([&] (thread_info *thread)
2875 {
2876 lwp_info *lp = get_thread_lwp (thread);
2877
2878 /* Count only resumed LWPs that have an event pending. */
2879 if (thread->last_status.kind == TARGET_WAITKIND_IGNORE
2880 && lp->status_pending_p)
2881 num_events++;
2882 });
2883 gdb_assert (num_events > 0);
2884
2885 /* Now randomly pick a LWP out of those that have had
2886 events. */
2887 random_selector = (int)
2888 ((num_events * (double) rand ()) / (RAND_MAX + 1.0));
2889
2890 if (debug_threads && num_events > 1)
2891 debug_printf ("SEL: Found %d SIGTRAP events, selecting #%d\n",
2892 num_events, random_selector);
2893
2894 event_thread = find_thread ([&] (thread_info *thread)
2895 {
2896 lwp_info *lp = get_thread_lwp (thread);
2897
2898 /* Select only resumed LWPs that have an event pending. */
2899 if (thread->last_status.kind == TARGET_WAITKIND_IGNORE
2900 && lp->status_pending_p)
2901 if (random_selector-- == 0)
2902 return true;
2903
2904 return false;
2905 });
2906 }
2907
2908 if (event_thread != NULL)
2909 {
2910 struct lwp_info *event_lp = get_thread_lwp (event_thread);
2911
2912 /* Switch the event LWP. */
2913 *orig_lp = event_lp;
2914 }
2915 }
2916
2917 /* Decrement the suspend count of all LWPs, except EXCEPT, if non
2918 NULL. */
2919
2920 static void
2921 unsuspend_all_lwps (struct lwp_info *except)
2922 {
2923 for_each_thread ([&] (thread_info *thread)
2924 {
2925 lwp_info *lwp = get_thread_lwp (thread);
2926
2927 if (lwp != except)
2928 lwp_suspended_decr (lwp);
2929 });
2930 }
2931
2932 static void move_out_of_jump_pad_callback (thread_info *thread);
2933 static bool stuck_in_jump_pad_callback (thread_info *thread);
2934 static bool lwp_running (thread_info *thread);
2935 static ptid_t linux_wait_1 (ptid_t ptid,
2936 struct target_waitstatus *ourstatus,
2937 int target_options);
2938
2939 /* Stabilize threads (move out of jump pads).
2940
2941 If a thread is midway collecting a fast tracepoint, we need to
2942 finish the collection and move it out of the jump pad before
2943 reporting the signal.
2944
2945 This avoids recursion while collecting (when a signal arrives
2946 midway, and the signal handler itself collects), which would trash
2947 the trace buffer. In case the user set a breakpoint in a signal
2948 handler, this avoids the backtrace showing the jump pad, etc..
2949 Most importantly, there are certain things we can't do safely if
2950 threads are stopped in a jump pad (or in its callee's). For
2951 example:
2952
2953 - starting a new trace run. A thread still collecting the
2954 previous run, could trash the trace buffer when resumed. The trace
2955 buffer control structures would have been reset but the thread had
2956 no way to tell. The thread could even midway memcpy'ing to the
2957 buffer, which would mean that when resumed, it would clobber the
2958 trace buffer that had been set for a new run.
2959
2960 - we can't rewrite/reuse the jump pads for new tracepoints
2961 safely. Say you do tstart while a thread is stopped midway while
2962 collecting. When the thread is later resumed, it finishes the
2963 collection, and returns to the jump pad, to execute the original
2964 instruction that was under the tracepoint jump at the time the
2965 older run had been started. If the jump pad had been rewritten
2966 since for something else in the new run, the thread would now
2967 execute the wrong / random instructions. */
2968
2969 static void
2970 linux_stabilize_threads (void)
2971 {
2972 thread_info *thread_stuck = find_thread (stuck_in_jump_pad_callback);
2973
2974 if (thread_stuck != NULL)
2975 {
2976 if (debug_threads)
2977 debug_printf ("can't stabilize, LWP %ld is stuck in jump pad\n",
2978 lwpid_of (thread_stuck));
2979 return;
2980 }
2981
2982 thread_info *saved_thread = current_thread;
2983
2984 stabilizing_threads = 1;
2985
2986 /* Kick 'em all. */
2987 for_each_thread (move_out_of_jump_pad_callback);
2988
2989 /* Loop until all are stopped out of the jump pads. */
2990 while (find_thread (lwp_running) != NULL)
2991 {
2992 struct target_waitstatus ourstatus;
2993 struct lwp_info *lwp;
2994 int wstat;
2995
2996 /* Note that we go through the full wait even loop. While
2997 moving threads out of jump pad, we need to be able to step
2998 over internal breakpoints and such. */
2999 linux_wait_1 (minus_one_ptid, &ourstatus, 0);
3000
3001 if (ourstatus.kind == TARGET_WAITKIND_STOPPED)
3002 {
3003 lwp = get_thread_lwp (current_thread);
3004
3005 /* Lock it. */
3006 lwp_suspended_inc (lwp);
3007
3008 if (ourstatus.value.sig != GDB_SIGNAL_0
3009 || current_thread->last_resume_kind == resume_stop)
3010 {
3011 wstat = W_STOPCODE (gdb_signal_to_host (ourstatus.value.sig));
3012 enqueue_one_deferred_signal (lwp, &wstat);
3013 }
3014 }
3015 }
3016
3017 unsuspend_all_lwps (NULL);
3018
3019 stabilizing_threads = 0;
3020
3021 current_thread = saved_thread;
3022
3023 if (debug_threads)
3024 {
3025 thread_stuck = find_thread (stuck_in_jump_pad_callback);
3026
3027 if (thread_stuck != NULL)
3028 debug_printf ("couldn't stabilize, LWP %ld got stuck in jump pad\n",
3029 lwpid_of (thread_stuck));
3030 }
3031 }
3032
3033 /* Convenience function that is called when the kernel reports an
3034 event that is not passed out to GDB. */
3035
3036 static ptid_t
3037 ignore_event (struct target_waitstatus *ourstatus)
3038 {
3039 /* If we got an event, there may still be others, as a single
3040 SIGCHLD can indicate more than one child stopped. This forces
3041 another target_wait call. */
3042 async_file_mark ();
3043
3044 ourstatus->kind = TARGET_WAITKIND_IGNORE;
3045 return null_ptid;
3046 }
3047
3048 /* Convenience function that is called when the kernel reports an exit
3049 event. This decides whether to report the event to GDB as a
3050 process exit event, a thread exit event, or to suppress the
3051 event. */
3052
3053 static ptid_t
3054 filter_exit_event (struct lwp_info *event_child,
3055 struct target_waitstatus *ourstatus)
3056 {
3057 client_state &cs = get_client_state ();
3058 struct thread_info *thread = get_lwp_thread (event_child);
3059 ptid_t ptid = ptid_of (thread);
3060
3061 if (!last_thread_of_process_p (pid_of (thread)))
3062 {
3063 if (cs.report_thread_events)
3064 ourstatus->kind = TARGET_WAITKIND_THREAD_EXITED;
3065 else
3066 ourstatus->kind = TARGET_WAITKIND_IGNORE;
3067
3068 delete_lwp (event_child);
3069 }
3070 return ptid;
3071 }
3072
3073 /* Returns 1 if GDB is interested in any event_child syscalls. */
3074
3075 static int
3076 gdb_catching_syscalls_p (struct lwp_info *event_child)
3077 {
3078 struct thread_info *thread = get_lwp_thread (event_child);
3079 struct process_info *proc = get_thread_process (thread);
3080
3081 return !proc->syscalls_to_catch.empty ();
3082 }
3083
3084 /* Returns 1 if GDB is interested in the event_child syscall.
3085 Only to be called when stopped reason is SYSCALL_SIGTRAP. */
3086
3087 static int
3088 gdb_catch_this_syscall_p (struct lwp_info *event_child)
3089 {
3090 int sysno;
3091 struct thread_info *thread = get_lwp_thread (event_child);
3092 struct process_info *proc = get_thread_process (thread);
3093
3094 if (proc->syscalls_to_catch.empty ())
3095 return 0;
3096
3097 if (proc->syscalls_to_catch[0] == ANY_SYSCALL)
3098 return 1;
3099
3100 get_syscall_trapinfo (event_child, &sysno);
3101
3102 for (int iter : proc->syscalls_to_catch)
3103 if (iter == sysno)
3104 return 1;
3105
3106 return 0;
3107 }
3108
3109 /* Wait for process, returns status. */
3110
3111 static ptid_t
3112 linux_wait_1 (ptid_t ptid,
3113 struct target_waitstatus *ourstatus, int target_options)
3114 {
3115 client_state &cs = get_client_state ();
3116 int w;
3117 struct lwp_info *event_child;
3118 int options;
3119 int pid;
3120 int step_over_finished;
3121 int bp_explains_trap;
3122 int maybe_internal_trap;
3123 int report_to_gdb;
3124 int trace_event;
3125 int in_step_range;
3126 int any_resumed;
3127
3128 if (debug_threads)
3129 {
3130 debug_enter ();
3131 debug_printf ("linux_wait_1: [%s]\n", target_pid_to_str (ptid));
3132 }
3133
3134 /* Translate generic target options into linux options. */
3135 options = __WALL;
3136 if (target_options & TARGET_WNOHANG)
3137 options |= WNOHANG;
3138
3139 bp_explains_trap = 0;
3140 trace_event = 0;
3141 in_step_range = 0;
3142 ourstatus->kind = TARGET_WAITKIND_IGNORE;
3143
3144 auto status_pending_p_any = [&] (thread_info *thread)
3145 {
3146 return status_pending_p_callback (thread, minus_one_ptid);
3147 };
3148
3149 auto not_stopped = [&] (thread_info *thread)
3150 {
3151 return not_stopped_callback (thread, minus_one_ptid);
3152 };
3153
3154 /* Find a resumed LWP, if any. */
3155 if (find_thread (status_pending_p_any) != NULL)
3156 any_resumed = 1;
3157 else if (find_thread (not_stopped) != NULL)
3158 any_resumed = 1;
3159 else
3160 any_resumed = 0;
3161
3162 if (ptid_equal (step_over_bkpt, null_ptid))
3163 pid = linux_wait_for_event (ptid, &w, options);
3164 else
3165 {
3166 if (debug_threads)
3167 debug_printf ("step_over_bkpt set [%s], doing a blocking wait\n",
3168 target_pid_to_str (step_over_bkpt));
3169 pid = linux_wait_for_event (step_over_bkpt, &w, options & ~WNOHANG);
3170 }
3171
3172 if (pid == 0 || (pid == -1 && !any_resumed))
3173 {
3174 gdb_assert (target_options & TARGET_WNOHANG);
3175
3176 if (debug_threads)
3177 {
3178 debug_printf ("linux_wait_1 ret = null_ptid, "
3179 "TARGET_WAITKIND_IGNORE\n");
3180 debug_exit ();
3181 }
3182
3183 ourstatus->kind = TARGET_WAITKIND_IGNORE;
3184 return null_ptid;
3185 }
3186 else if (pid == -1)
3187 {
3188 if (debug_threads)
3189 {
3190 debug_printf ("linux_wait_1 ret = null_ptid, "
3191 "TARGET_WAITKIND_NO_RESUMED\n");
3192 debug_exit ();
3193 }
3194
3195 ourstatus->kind = TARGET_WAITKIND_NO_RESUMED;
3196 return null_ptid;
3197 }
3198
3199 event_child = get_thread_lwp (current_thread);
3200
3201 /* linux_wait_for_event only returns an exit status for the last
3202 child of a process. Report it. */
3203 if (WIFEXITED (w) || WIFSIGNALED (w))
3204 {
3205 if (WIFEXITED (w))
3206 {
3207 ourstatus->kind = TARGET_WAITKIND_EXITED;
3208 ourstatus->value.integer = WEXITSTATUS (w);
3209
3210 if (debug_threads)
3211 {
3212 debug_printf ("linux_wait_1 ret = %s, exited with "
3213 "retcode %d\n",
3214 target_pid_to_str (ptid_of (current_thread)),
3215 WEXITSTATUS (w));
3216 debug_exit ();
3217 }
3218 }
3219 else
3220 {
3221 ourstatus->kind = TARGET_WAITKIND_SIGNALLED;
3222 ourstatus->value.sig = gdb_signal_from_host (WTERMSIG (w));
3223
3224 if (debug_threads)
3225 {
3226 debug_printf ("linux_wait_1 ret = %s, terminated with "
3227 "signal %d\n",
3228 target_pid_to_str (ptid_of (current_thread)),
3229 WTERMSIG (w));
3230 debug_exit ();
3231 }
3232 }
3233
3234 if (ourstatus->kind == TARGET_WAITKIND_EXITED)
3235 return filter_exit_event (event_child, ourstatus);
3236
3237 return ptid_of (current_thread);
3238 }
3239
3240 /* If step-over executes a breakpoint instruction, in the case of a
3241 hardware single step it means a gdb/gdbserver breakpoint had been
3242 planted on top of a permanent breakpoint, in the case of a software
3243 single step it may just mean that gdbserver hit the reinsert breakpoint.
3244 The PC has been adjusted by save_stop_reason to point at
3245 the breakpoint address.
3246 So in the case of the hardware single step advance the PC manually
3247 past the breakpoint and in the case of software single step advance only
3248 if it's not the single_step_breakpoint we are hitting.
3249 This avoids that a program would keep trapping a permanent breakpoint
3250 forever. */
3251 if (!ptid_equal (step_over_bkpt, null_ptid)
3252 && event_child->stop_reason == TARGET_STOPPED_BY_SW_BREAKPOINT
3253 && (event_child->stepping
3254 || !single_step_breakpoint_inserted_here (event_child->stop_pc)))
3255 {
3256 int increment_pc = 0;
3257 int breakpoint_kind = 0;
3258 CORE_ADDR stop_pc = event_child->stop_pc;
3259
3260 breakpoint_kind =
3261 the_target->breakpoint_kind_from_current_state (&stop_pc);
3262 the_target->sw_breakpoint_from_kind (breakpoint_kind, &increment_pc);
3263
3264 if (debug_threads)
3265 {
3266 debug_printf ("step-over for %s executed software breakpoint\n",
3267 target_pid_to_str (ptid_of (current_thread)));
3268 }
3269
3270 if (increment_pc != 0)
3271 {
3272 struct regcache *regcache
3273 = get_thread_regcache (current_thread, 1);
3274
3275 event_child->stop_pc += increment_pc;
3276 (*the_low_target.set_pc) (regcache, event_child->stop_pc);
3277
3278 if (!(*the_low_target.breakpoint_at) (event_child->stop_pc))
3279 event_child->stop_reason = TARGET_STOPPED_BY_NO_REASON;
3280 }
3281 }
3282
3283 /* If this event was not handled before, and is not a SIGTRAP, we
3284 report it. SIGILL and SIGSEGV are also treated as traps in case
3285 a breakpoint is inserted at the current PC. If this target does
3286 not support internal breakpoints at all, we also report the
3287 SIGTRAP without further processing; it's of no concern to us. */
3288 maybe_internal_trap
3289 = (supports_breakpoints ()
3290 && (WSTOPSIG (w) == SIGTRAP
3291 || ((WSTOPSIG (w) == SIGILL
3292 || WSTOPSIG (w) == SIGSEGV)
3293 && (*the_low_target.breakpoint_at) (event_child->stop_pc))));
3294
3295 if (maybe_internal_trap)
3296 {
3297 /* Handle anything that requires bookkeeping before deciding to
3298 report the event or continue waiting. */
3299
3300 /* First check if we can explain the SIGTRAP with an internal
3301 breakpoint, or if we should possibly report the event to GDB.
3302 Do this before anything that may remove or insert a
3303 breakpoint. */
3304 bp_explains_trap = breakpoint_inserted_here (event_child->stop_pc);
3305
3306 /* We have a SIGTRAP, possibly a step-over dance has just
3307 finished. If so, tweak the state machine accordingly,
3308 reinsert breakpoints and delete any single-step
3309 breakpoints. */
3310 step_over_finished = finish_step_over (event_child);
3311
3312 /* Now invoke the callbacks of any internal breakpoints there. */
3313 check_breakpoints (event_child->stop_pc);
3314
3315 /* Handle tracepoint data collecting. This may overflow the
3316 trace buffer, and cause a tracing stop, removing
3317 breakpoints. */
3318 trace_event = handle_tracepoints (event_child);
3319
3320 if (bp_explains_trap)
3321 {
3322 if (debug_threads)
3323 debug_printf ("Hit a gdbserver breakpoint.\n");
3324 }
3325 }
3326 else
3327 {
3328 /* We have some other signal, possibly a step-over dance was in
3329 progress, and it should be cancelled too. */
3330 step_over_finished = finish_step_over (event_child);
3331 }
3332
3333 /* We have all the data we need. Either report the event to GDB, or
3334 resume threads and keep waiting for more. */
3335
3336 /* If we're collecting a fast tracepoint, finish the collection and
3337 move out of the jump pad before delivering a signal. See
3338 linux_stabilize_threads. */
3339
3340 if (WIFSTOPPED (w)
3341 && WSTOPSIG (w) != SIGTRAP
3342 && supports_fast_tracepoints ()
3343 && agent_loaded_p ())
3344 {
3345 if (debug_threads)
3346 debug_printf ("Got signal %d for LWP %ld. Check if we need "
3347 "to defer or adjust it.\n",
3348 WSTOPSIG (w), lwpid_of (current_thread));
3349
3350 /* Allow debugging the jump pad itself. */
3351 if (current_thread->last_resume_kind != resume_step
3352 && maybe_move_out_of_jump_pad (event_child, &w))
3353 {
3354 enqueue_one_deferred_signal (event_child, &w);
3355
3356 if (debug_threads)
3357 debug_printf ("Signal %d for LWP %ld deferred (in jump pad)\n",
3358 WSTOPSIG (w), lwpid_of (current_thread));
3359
3360 linux_resume_one_lwp (event_child, 0, 0, NULL);
3361
3362 if (debug_threads)
3363 debug_exit ();
3364 return ignore_event (ourstatus);
3365 }
3366 }
3367
3368 if (event_child->collecting_fast_tracepoint
3369 != fast_tpoint_collect_result::not_collecting)
3370 {
3371 if (debug_threads)
3372 debug_printf ("LWP %ld was trying to move out of the jump pad (%d). "
3373 "Check if we're already there.\n",
3374 lwpid_of (current_thread),
3375 (int) event_child->collecting_fast_tracepoint);
3376
3377 trace_event = 1;
3378
3379 event_child->collecting_fast_tracepoint
3380 = linux_fast_tracepoint_collecting (event_child, NULL);
3381
3382 if (event_child->collecting_fast_tracepoint
3383 != fast_tpoint_collect_result::before_insn)
3384 {
3385 /* No longer need this breakpoint. */
3386 if (event_child->exit_jump_pad_bkpt != NULL)
3387 {
3388 if (debug_threads)
3389 debug_printf ("No longer need exit-jump-pad bkpt; removing it."
3390 "stopping all threads momentarily.\n");
3391
3392 /* Other running threads could hit this breakpoint.
3393 We don't handle moribund locations like GDB does,
3394 instead we always pause all threads when removing
3395 breakpoints, so that any step-over or
3396 decr_pc_after_break adjustment is always taken
3397 care of while the breakpoint is still
3398 inserted. */
3399 stop_all_lwps (1, event_child);
3400
3401 delete_breakpoint (event_child->exit_jump_pad_bkpt);
3402 event_child->exit_jump_pad_bkpt = NULL;
3403
3404 unstop_all_lwps (1, event_child);
3405
3406 gdb_assert (event_child->suspended >= 0);
3407 }
3408 }
3409
3410 if (event_child->collecting_fast_tracepoint
3411 == fast_tpoint_collect_result::not_collecting)
3412 {
3413 if (debug_threads)
3414 debug_printf ("fast tracepoint finished "
3415 "collecting successfully.\n");
3416
3417 /* We may have a deferred signal to report. */
3418 if (dequeue_one_deferred_signal (event_child, &w))
3419 {
3420 if (debug_threads)
3421 debug_printf ("dequeued one signal.\n");
3422 }
3423 else
3424 {
3425 if (debug_threads)
3426 debug_printf ("no deferred signals.\n");
3427
3428 if (stabilizing_threads)
3429 {
3430 ourstatus->kind = TARGET_WAITKIND_STOPPED;
3431 ourstatus->value.sig = GDB_SIGNAL_0;
3432
3433 if (debug_threads)
3434 {
3435 debug_printf ("linux_wait_1 ret = %s, stopped "
3436 "while stabilizing threads\n",
3437 target_pid_to_str (ptid_of (current_thread)));
3438 debug_exit ();
3439 }
3440
3441 return ptid_of (current_thread);
3442 }
3443 }
3444 }
3445 }
3446
3447 /* Check whether GDB would be interested in this event. */
3448
3449 /* Check if GDB is interested in this syscall. */
3450 if (WIFSTOPPED (w)
3451 && WSTOPSIG (w) == SYSCALL_SIGTRAP
3452 && !gdb_catch_this_syscall_p (event_child))
3453 {
3454 if (debug_threads)
3455 {
3456 debug_printf ("Ignored syscall for LWP %ld.\n",
3457 lwpid_of (current_thread));
3458 }
3459
3460 linux_resume_one_lwp (event_child, event_child->stepping,
3461 0, NULL);
3462
3463 if (debug_threads)
3464 debug_exit ();
3465 return ignore_event (ourstatus);
3466 }
3467
3468 /* If GDB is not interested in this signal, don't stop other
3469 threads, and don't report it to GDB. Just resume the inferior
3470 right away. We do this for threading-related signals as well as
3471 any that GDB specifically requested we ignore. But never ignore
3472 SIGSTOP if we sent it ourselves, and do not ignore signals when
3473 stepping - they may require special handling to skip the signal
3474 handler. Also never ignore signals that could be caused by a
3475 breakpoint. */
3476 if (WIFSTOPPED (w)
3477 && current_thread->last_resume_kind != resume_step
3478 && (
3479 #if defined (USE_THREAD_DB) && !defined (__ANDROID__)
3480 (current_process ()->priv->thread_db != NULL
3481 && (WSTOPSIG (w) == __SIGRTMIN
3482 || WSTOPSIG (w) == __SIGRTMIN + 1))
3483 ||
3484 #endif
3485 (cs.pass_signals[gdb_signal_from_host (WSTOPSIG (w))]
3486 && !(WSTOPSIG (w) == SIGSTOP
3487 && current_thread->last_resume_kind == resume_stop)
3488 && !linux_wstatus_maybe_breakpoint (w))))
3489 {
3490 siginfo_t info, *info_p;
3491
3492 if (debug_threads)
3493 debug_printf ("Ignored signal %d for LWP %ld.\n",
3494 WSTOPSIG (w), lwpid_of (current_thread));
3495
3496 if (ptrace (PTRACE_GETSIGINFO, lwpid_of (current_thread),
3497 (PTRACE_TYPE_ARG3) 0, &info) == 0)
3498 info_p = &info;
3499 else
3500 info_p = NULL;
3501
3502 if (step_over_finished)
3503 {
3504 /* We cancelled this thread's step-over above. We still
3505 need to unsuspend all other LWPs, and set them back
3506 running again while the signal handler runs. */
3507 unsuspend_all_lwps (event_child);
3508
3509 /* Enqueue the pending signal info so that proceed_all_lwps
3510 doesn't lose it. */
3511 enqueue_pending_signal (event_child, WSTOPSIG (w), info_p);
3512
3513 proceed_all_lwps ();
3514 }
3515 else
3516 {
3517 linux_resume_one_lwp (event_child, event_child->stepping,
3518 WSTOPSIG (w), info_p);
3519 }
3520
3521 if (debug_threads)
3522 debug_exit ();
3523
3524 return ignore_event (ourstatus);
3525 }
3526
3527 /* Note that all addresses are always "out of the step range" when
3528 there's no range to begin with. */
3529 in_step_range = lwp_in_step_range (event_child);
3530
3531 /* If GDB wanted this thread to single step, and the thread is out
3532 of the step range, we always want to report the SIGTRAP, and let
3533 GDB handle it. Watchpoints should always be reported. So should
3534 signals we can't explain. A SIGTRAP we can't explain could be a
3535 GDB breakpoint --- we may or not support Z0 breakpoints. If we
3536 do, we're be able to handle GDB breakpoints on top of internal
3537 breakpoints, by handling the internal breakpoint and still
3538 reporting the event to GDB. If we don't, we're out of luck, GDB
3539 won't see the breakpoint hit. If we see a single-step event but
3540 the thread should be continuing, don't pass the trap to gdb.
3541 That indicates that we had previously finished a single-step but
3542 left the single-step pending -- see
3543 complete_ongoing_step_over. */
3544 report_to_gdb = (!maybe_internal_trap
3545 || (current_thread->last_resume_kind == resume_step
3546 && !in_step_range)
3547 || event_child->stop_reason == TARGET_STOPPED_BY_WATCHPOINT
3548 || (!in_step_range
3549 && !bp_explains_trap
3550 && !trace_event
3551 && !step_over_finished
3552 && !(current_thread->last_resume_kind == resume_continue
3553 && event_child->stop_reason == TARGET_STOPPED_BY_SINGLE_STEP))
3554 || (gdb_breakpoint_here (event_child->stop_pc)
3555 && gdb_condition_true_at_breakpoint (event_child->stop_pc)
3556 && gdb_no_commands_at_breakpoint (event_child->stop_pc))
3557 || event_child->waitstatus.kind != TARGET_WAITKIND_IGNORE);
3558
3559 run_breakpoint_commands (event_child->stop_pc);
3560
3561 /* We found no reason GDB would want us to stop. We either hit one
3562 of our own breakpoints, or finished an internal step GDB
3563 shouldn't know about. */
3564 if (!report_to_gdb)
3565 {
3566 if (debug_threads)
3567 {
3568 if (bp_explains_trap)
3569 debug_printf ("Hit a gdbserver breakpoint.\n");
3570 if (step_over_finished)
3571 debug_printf ("Step-over finished.\n");
3572 if (trace_event)
3573 debug_printf ("Tracepoint event.\n");
3574 if (lwp_in_step_range (event_child))
3575 debug_printf ("Range stepping pc 0x%s [0x%s, 0x%s).\n",
3576 paddress (event_child->stop_pc),
3577 paddress (event_child->step_range_start),
3578 paddress (event_child->step_range_end));
3579 }
3580
3581 /* We're not reporting this breakpoint to GDB, so apply the
3582 decr_pc_after_break adjustment to the inferior's regcache
3583 ourselves. */
3584
3585 if (the_low_target.set_pc != NULL)
3586 {
3587 struct regcache *regcache
3588 = get_thread_regcache (current_thread, 1);
3589 (*the_low_target.set_pc) (regcache, event_child->stop_pc);
3590 }
3591
3592 if (step_over_finished)
3593 {
3594 /* If we have finished stepping over a breakpoint, we've
3595 stopped and suspended all LWPs momentarily except the
3596 stepping one. This is where we resume them all again.
3597 We're going to keep waiting, so use proceed, which
3598 handles stepping over the next breakpoint. */
3599 unsuspend_all_lwps (event_child);
3600 }
3601 else
3602 {
3603 /* Remove the single-step breakpoints if any. Note that
3604 there isn't single-step breakpoint if we finished stepping
3605 over. */
3606 if (can_software_single_step ()
3607 && has_single_step_breakpoints (current_thread))
3608 {
3609 stop_all_lwps (0, event_child);
3610 delete_single_step_breakpoints (current_thread);
3611 unstop_all_lwps (0, event_child);
3612 }
3613 }
3614
3615 if (debug_threads)
3616 debug_printf ("proceeding all threads.\n");
3617 proceed_all_lwps ();
3618
3619 if (debug_threads)
3620 debug_exit ();
3621
3622 return ignore_event (ourstatus);
3623 }
3624
3625 if (debug_threads)
3626 {
3627 if (event_child->waitstatus.kind != TARGET_WAITKIND_IGNORE)
3628 {
3629 std::string str
3630 = target_waitstatus_to_string (&event_child->waitstatus);
3631
3632 debug_printf ("LWP %ld: extended event with waitstatus %s\n",
3633 lwpid_of (get_lwp_thread (event_child)), str.c_str ());
3634 }
3635 if (current_thread->last_resume_kind == resume_step)
3636 {
3637 if (event_child->step_range_start == event_child->step_range_end)
3638 debug_printf ("GDB wanted to single-step, reporting event.\n");
3639 else if (!lwp_in_step_range (event_child))
3640 debug_printf ("Out of step range, reporting event.\n");
3641 }
3642 if (event_child->stop_reason == TARGET_STOPPED_BY_WATCHPOINT)
3643 debug_printf ("Stopped by watchpoint.\n");
3644 else if (gdb_breakpoint_here (event_child->stop_pc))
3645 debug_printf ("Stopped by GDB breakpoint.\n");
3646 if (debug_threads)
3647 debug_printf ("Hit a non-gdbserver trap event.\n");
3648 }
3649
3650 /* Alright, we're going to report a stop. */
3651
3652 /* Remove single-step breakpoints. */
3653 if (can_software_single_step ())
3654 {
3655 /* Remove single-step breakpoints or not. It it is true, stop all
3656 lwps, so that other threads won't hit the breakpoint in the
3657 staled memory. */
3658 int remove_single_step_breakpoints_p = 0;
3659
3660 if (non_stop)
3661 {
3662 remove_single_step_breakpoints_p
3663 = has_single_step_breakpoints (current_thread);
3664 }
3665 else
3666 {
3667 /* In all-stop, a stop reply cancels all previous resume
3668 requests. Delete all single-step breakpoints. */
3669
3670 find_thread ([&] (thread_info *thread) {
3671 if (has_single_step_breakpoints (thread))
3672 {
3673 remove_single_step_breakpoints_p = 1;
3674 return true;
3675 }
3676
3677 return false;
3678 });
3679 }
3680
3681 if (remove_single_step_breakpoints_p)
3682 {
3683 /* If we remove single-step breakpoints from memory, stop all lwps,
3684 so that other threads won't hit the breakpoint in the staled
3685 memory. */
3686 stop_all_lwps (0, event_child);
3687
3688 if (non_stop)
3689 {
3690 gdb_assert (has_single_step_breakpoints (current_thread));
3691 delete_single_step_breakpoints (current_thread);
3692 }
3693 else
3694 {
3695 for_each_thread ([] (thread_info *thread){
3696 if (has_single_step_breakpoints (thread))
3697 delete_single_step_breakpoints (thread);
3698 });
3699 }
3700
3701 unstop_all_lwps (0, event_child);
3702 }
3703 }
3704
3705 if (!stabilizing_threads)
3706 {
3707 /* In all-stop, stop all threads. */
3708 if (!non_stop)
3709 stop_all_lwps (0, NULL);
3710
3711 if (step_over_finished)
3712 {
3713 if (!non_stop)
3714 {
3715 /* If we were doing a step-over, all other threads but
3716 the stepping one had been paused in start_step_over,
3717 with their suspend counts incremented. We don't want
3718 to do a full unstop/unpause, because we're in
3719 all-stop mode (so we want threads stopped), but we
3720 still need to unsuspend the other threads, to
3721 decrement their `suspended' count back. */
3722 unsuspend_all_lwps (event_child);
3723 }
3724 else
3725 {
3726 /* If we just finished a step-over, then all threads had
3727 been momentarily paused. In all-stop, that's fine,
3728 we want threads stopped by now anyway. In non-stop,
3729 we need to re-resume threads that GDB wanted to be
3730 running. */
3731 unstop_all_lwps (1, event_child);
3732 }
3733 }
3734
3735 /* If we're not waiting for a specific LWP, choose an event LWP
3736 from among those that have had events. Giving equal priority
3737 to all LWPs that have had events helps prevent
3738 starvation. */
3739 if (ptid_equal (ptid, minus_one_ptid))
3740 {
3741 event_child->status_pending_p = 1;
3742 event_child->status_pending = w;
3743
3744 select_event_lwp (&event_child);
3745
3746 /* current_thread and event_child must stay in sync. */
3747 current_thread = get_lwp_thread (event_child);
3748
3749 event_child->status_pending_p = 0;
3750 w = event_child->status_pending;
3751 }
3752
3753
3754 /* Stabilize threads (move out of jump pads). */
3755 if (!non_stop)
3756 stabilize_threads ();
3757 }
3758 else
3759 {
3760 /* If we just finished a step-over, then all threads had been
3761 momentarily paused. In all-stop, that's fine, we want
3762 threads stopped by now anyway. In non-stop, we need to
3763 re-resume threads that GDB wanted to be running. */
3764 if (step_over_finished)
3765 unstop_all_lwps (1, event_child);
3766 }
3767
3768 if (event_child->waitstatus.kind != TARGET_WAITKIND_IGNORE)
3769 {
3770 /* If the reported event is an exit, fork, vfork or exec, let
3771 GDB know. */
3772
3773 /* Break the unreported fork relationship chain. */
3774 if (event_child->waitstatus.kind == TARGET_WAITKIND_FORKED
3775 || event_child->waitstatus.kind == TARGET_WAITKIND_VFORKED)
3776 {
3777 event_child->fork_relative->fork_relative = NULL;
3778 event_child->fork_relative = NULL;
3779 }
3780
3781 *ourstatus = event_child->waitstatus;
3782 /* Clear the event lwp's waitstatus since we handled it already. */
3783 event_child->waitstatus.kind = TARGET_WAITKIND_IGNORE;
3784 }
3785 else
3786 ourstatus->kind = TARGET_WAITKIND_STOPPED;
3787
3788 /* Now that we've selected our final event LWP, un-adjust its PC if
3789 it was a software breakpoint, and the client doesn't know we can
3790 adjust the breakpoint ourselves. */
3791 if (event_child->stop_reason == TARGET_STOPPED_BY_SW_BREAKPOINT
3792 && !cs.swbreak_feature)
3793 {
3794 int decr_pc = the_low_target.decr_pc_after_break;
3795
3796 if (decr_pc != 0)
3797 {
3798 struct regcache *regcache
3799 = get_thread_regcache (current_thread, 1);
3800 (*the_low_target.set_pc) (regcache, event_child->stop_pc + decr_pc);
3801 }
3802 }
3803
3804 if (WSTOPSIG (w) == SYSCALL_SIGTRAP)
3805 {
3806 get_syscall_trapinfo (event_child,
3807 &ourstatus->value.syscall_number);
3808 ourstatus->kind = event_child->syscall_state;
3809 }
3810 else if (current_thread->last_resume_kind == resume_stop
3811 && WSTOPSIG (w) == SIGSTOP)
3812 {
3813 /* A thread that has been requested to stop by GDB with vCont;t,
3814 and it stopped cleanly, so report as SIG0. The use of
3815 SIGSTOP is an implementation detail. */
3816 ourstatus->value.sig = GDB_SIGNAL_0;
3817 }
3818 else if (current_thread->last_resume_kind == resume_stop
3819 && WSTOPSIG (w) != SIGSTOP)
3820 {
3821 /* A thread that has been requested to stop by GDB with vCont;t,
3822 but, it stopped for other reasons. */
3823 ourstatus->value.sig = gdb_signal_from_host (WSTOPSIG (w));
3824 }
3825 else if (ourstatus->kind == TARGET_WAITKIND_STOPPED)
3826 {
3827 ourstatus->value.sig = gdb_signal_from_host (WSTOPSIG (w));
3828 }
3829
3830 gdb_assert (ptid_equal (step_over_bkpt, null_ptid));
3831
3832 if (debug_threads)
3833 {
3834 debug_printf ("linux_wait_1 ret = %s, %d, %d\n",
3835 target_pid_to_str (ptid_of (current_thread)),
3836 ourstatus->kind, ourstatus->value.sig);
3837 debug_exit ();
3838 }
3839
3840 if (ourstatus->kind == TARGET_WAITKIND_EXITED)
3841 return filter_exit_event (event_child, ourstatus);
3842
3843 return ptid_of (current_thread);
3844 }
3845
3846 /* Get rid of any pending event in the pipe. */
3847 static void
3848 async_file_flush (void)
3849 {
3850 int ret;
3851 char buf;
3852
3853 do
3854 ret = read (linux_event_pipe[0], &buf, 1);
3855 while (ret >= 0 || (ret == -1 && errno == EINTR));
3856 }
3857
3858 /* Put something in the pipe, so the event loop wakes up. */
3859 static void
3860 async_file_mark (void)
3861 {
3862 int ret;
3863
3864 async_file_flush ();
3865
3866 do
3867 ret = write (linux_event_pipe[1], "+", 1);
3868 while (ret == 0 || (ret == -1 && errno == EINTR));
3869
3870 /* Ignore EAGAIN. If the pipe is full, the event loop will already
3871 be awakened anyway. */
3872 }
3873
3874 static ptid_t
3875 linux_wait (ptid_t ptid,
3876 struct target_waitstatus *ourstatus, int target_options)
3877 {
3878 ptid_t event_ptid;
3879
3880 /* Flush the async file first. */
3881 if (target_is_async_p ())
3882 async_file_flush ();
3883
3884 do
3885 {
3886 event_ptid = linux_wait_1 (ptid, ourstatus, target_options);
3887 }
3888 while ((target_options & TARGET_WNOHANG) == 0
3889 && ptid_equal (event_ptid, null_ptid)
3890 && ourstatus->kind == TARGET_WAITKIND_IGNORE);
3891
3892 /* If at least one stop was reported, there may be more. A single
3893 SIGCHLD can signal more than one child stop. */
3894 if (target_is_async_p ()
3895 && (target_options & TARGET_WNOHANG) != 0
3896 && !ptid_equal (event_ptid, null_ptid))
3897 async_file_mark ();
3898
3899 return event_ptid;
3900 }
3901
3902 /* Send a signal to an LWP. */
3903
3904 static int
3905 kill_lwp (unsigned long lwpid, int signo)
3906 {
3907 int ret;
3908
3909 errno = 0;
3910 ret = syscall (__NR_tkill, lwpid, signo);
3911 if (errno == ENOSYS)
3912 {
3913 /* If tkill fails, then we are not using nptl threads, a
3914 configuration we no longer support. */
3915 perror_with_name (("tkill"));
3916 }
3917 return ret;
3918 }
3919
3920 void
3921 linux_stop_lwp (struct lwp_info *lwp)
3922 {
3923 send_sigstop (lwp);
3924 }
3925
3926 static void
3927 send_sigstop (struct lwp_info *lwp)
3928 {
3929 int pid;
3930
3931 pid = lwpid_of (get_lwp_thread (lwp));
3932
3933 /* If we already have a pending stop signal for this process, don't
3934 send another. */
3935 if (lwp->stop_expected)
3936 {
3937 if (debug_threads)
3938 debug_printf ("Have pending sigstop for lwp %d\n", pid);
3939
3940 return;
3941 }
3942
3943 if (debug_threads)
3944 debug_printf ("Sending sigstop to lwp %d\n", pid);
3945
3946 lwp->stop_expected = 1;
3947 kill_lwp (pid, SIGSTOP);
3948 }
3949
3950 static void
3951 send_sigstop (thread_info *thread, lwp_info *except)
3952 {
3953 struct lwp_info *lwp = get_thread_lwp (thread);
3954
3955 /* Ignore EXCEPT. */
3956 if (lwp == except)
3957 return;
3958
3959 if (lwp->stopped)
3960 return;
3961
3962 send_sigstop (lwp);
3963 }
3964
3965 /* Increment the suspend count of an LWP, and stop it, if not stopped
3966 yet. */
3967 static void
3968 suspend_and_send_sigstop (thread_info *thread, lwp_info *except)
3969 {
3970 struct lwp_info *lwp = get_thread_lwp (thread);
3971
3972 /* Ignore EXCEPT. */
3973 if (lwp == except)
3974 return;
3975
3976 lwp_suspended_inc (lwp);
3977
3978 send_sigstop (thread, except);
3979 }
3980
3981 static void
3982 mark_lwp_dead (struct lwp_info *lwp, int wstat)
3983 {
3984 /* Store the exit status for later. */
3985 lwp->status_pending_p = 1;
3986 lwp->status_pending = wstat;
3987
3988 /* Store in waitstatus as well, as there's nothing else to process
3989 for this event. */
3990 if (WIFEXITED (wstat))
3991 {
3992 lwp->waitstatus.kind = TARGET_WAITKIND_EXITED;
3993 lwp->waitstatus.value.integer = WEXITSTATUS (wstat);
3994 }
3995 else if (WIFSIGNALED (wstat))
3996 {
3997 lwp->waitstatus.kind = TARGET_WAITKIND_SIGNALLED;
3998 lwp->waitstatus.value.sig = gdb_signal_from_host (WTERMSIG (wstat));
3999 }
4000
4001 /* Prevent trying to stop it. */
4002 lwp->stopped = 1;
4003
4004 /* No further stops are expected from a dead lwp. */
4005 lwp->stop_expected = 0;
4006 }
4007
4008 /* Return true if LWP has exited already, and has a pending exit event
4009 to report to GDB. */
4010
4011 static int
4012 lwp_is_marked_dead (struct lwp_info *lwp)
4013 {
4014 return (lwp->status_pending_p
4015 && (WIFEXITED (lwp->status_pending)
4016 || WIFSIGNALED (lwp->status_pending)));
4017 }
4018
4019 /* Wait for all children to stop for the SIGSTOPs we just queued. */
4020
4021 static void
4022 wait_for_sigstop (void)
4023 {
4024 struct thread_info *saved_thread;
4025 ptid_t saved_tid;
4026 int wstat;
4027 int ret;
4028
4029 saved_thread = current_thread;
4030 if (saved_thread != NULL)
4031 saved_tid = saved_thread->id;
4032 else
4033 saved_tid = null_ptid; /* avoid bogus unused warning */
4034
4035 if (debug_threads)
4036 debug_printf ("wait_for_sigstop: pulling events\n");
4037
4038 /* Passing NULL_PTID as filter indicates we want all events to be
4039 left pending. Eventually this returns when there are no
4040 unwaited-for children left. */
4041 ret = linux_wait_for_event_filtered (minus_one_ptid, null_ptid,
4042 &wstat, __WALL);
4043 gdb_assert (ret == -1);
4044
4045 if (saved_thread == NULL || linux_thread_alive (saved_tid))
4046 current_thread = saved_thread;
4047 else
4048 {
4049 if (debug_threads)
4050 debug_printf ("Previously current thread died.\n");
4051
4052 /* We can't change the current inferior behind GDB's back,
4053 otherwise, a subsequent command may apply to the wrong
4054 process. */
4055 current_thread = NULL;
4056 }
4057 }
4058
4059 /* Returns true if THREAD is stopped in a jump pad, and we can't
4060 move it out, because we need to report the stop event to GDB. For
4061 example, if the user puts a breakpoint in the jump pad, it's
4062 because she wants to debug it. */
4063
4064 static bool
4065 stuck_in_jump_pad_callback (thread_info *thread)
4066 {
4067 struct lwp_info *lwp = get_thread_lwp (thread);
4068
4069 if (lwp->suspended != 0)
4070 {
4071 internal_error (__FILE__, __LINE__,
4072 "LWP %ld is suspended, suspended=%d\n",
4073 lwpid_of (thread), lwp->suspended);
4074 }
4075 gdb_assert (lwp->stopped);
4076
4077 /* Allow debugging the jump pad, gdb_collect, etc.. */
4078 return (supports_fast_tracepoints ()
4079 && agent_loaded_p ()
4080 && (gdb_breakpoint_here (lwp->stop_pc)
4081 || lwp->stop_reason == TARGET_STOPPED_BY_WATCHPOINT
4082 || thread->last_resume_kind == resume_step)
4083 && (linux_fast_tracepoint_collecting (lwp, NULL)
4084 != fast_tpoint_collect_result::not_collecting));
4085 }
4086
4087 static void
4088 move_out_of_jump_pad_callback (thread_info *thread)
4089 {
4090 struct thread_info *saved_thread;
4091 struct lwp_info *lwp = get_thread_lwp (thread);
4092 int *wstat;
4093
4094 if (lwp->suspended != 0)
4095 {
4096 internal_error (__FILE__, __LINE__,
4097 "LWP %ld is suspended, suspended=%d\n",
4098 lwpid_of (thread), lwp->suspended);
4099 }
4100 gdb_assert (lwp->stopped);
4101
4102 /* For gdb_breakpoint_here. */
4103 saved_thread = current_thread;
4104 current_thread = thread;
4105
4106 wstat = lwp->status_pending_p ? &lwp->status_pending : NULL;
4107
4108 /* Allow debugging the jump pad, gdb_collect, etc. */
4109 if (!gdb_breakpoint_here (lwp->stop_pc)
4110 && lwp->stop_reason != TARGET_STOPPED_BY_WATCHPOINT
4111 && thread->last_resume_kind != resume_step
4112 && maybe_move_out_of_jump_pad (lwp, wstat))
4113 {
4114 if (debug_threads)
4115 debug_printf ("LWP %ld needs stabilizing (in jump pad)\n",
4116 lwpid_of (thread));
4117
4118 if (wstat)
4119 {
4120 lwp->status_pending_p = 0;
4121 enqueue_one_deferred_signal (lwp, wstat);
4122
4123 if (debug_threads)
4124 debug_printf ("Signal %d for LWP %ld deferred "
4125 "(in jump pad)\n",
4126 WSTOPSIG (*wstat), lwpid_of (thread));
4127 }
4128
4129 linux_resume_one_lwp (lwp, 0, 0, NULL);
4130 }
4131 else
4132 lwp_suspended_inc (lwp);
4133
4134 current_thread = saved_thread;
4135 }
4136
4137 static bool
4138 lwp_running (thread_info *thread)
4139 {
4140 struct lwp_info *lwp = get_thread_lwp (thread);
4141
4142 if (lwp_is_marked_dead (lwp))
4143 return false;
4144
4145 return !lwp->stopped;
4146 }
4147
4148 /* Stop all lwps that aren't stopped yet, except EXCEPT, if not NULL.
4149 If SUSPEND, then also increase the suspend count of every LWP,
4150 except EXCEPT. */
4151
4152 static void
4153 stop_all_lwps (int suspend, struct lwp_info *except)
4154 {
4155 /* Should not be called recursively. */
4156 gdb_assert (stopping_threads == NOT_STOPPING_THREADS);
4157
4158 if (debug_threads)
4159 {
4160 debug_enter ();
4161 debug_printf ("stop_all_lwps (%s, except=%s)\n",
4162 suspend ? "stop-and-suspend" : "stop",
4163 except != NULL
4164 ? target_pid_to_str (ptid_of (get_lwp_thread (except)))
4165 : "none");
4166 }
4167
4168 stopping_threads = (suspend
4169 ? STOPPING_AND_SUSPENDING_THREADS
4170 : STOPPING_THREADS);
4171
4172 if (suspend)
4173 for_each_thread ([&] (thread_info *thread)
4174 {
4175 suspend_and_send_sigstop (thread, except);
4176 });
4177 else
4178 for_each_thread ([&] (thread_info *thread)
4179 {
4180 send_sigstop (thread, except);
4181 });
4182
4183 wait_for_sigstop ();
4184 stopping_threads = NOT_STOPPING_THREADS;
4185
4186 if (debug_threads)
4187 {
4188 debug_printf ("stop_all_lwps done, setting stopping_threads "
4189 "back to !stopping\n");
4190 debug_exit ();
4191 }
4192 }
4193
4194 /* Enqueue one signal in the chain of signals which need to be
4195 delivered to this process on next resume. */
4196
4197 static void
4198 enqueue_pending_signal (struct lwp_info *lwp, int signal, siginfo_t *info)
4199 {
4200 struct pending_signals *p_sig = XNEW (struct pending_signals);
4201
4202 p_sig->prev = lwp->pending_signals;
4203 p_sig->signal = signal;
4204 if (info == NULL)
4205 memset (&p_sig->info, 0, sizeof (siginfo_t));
4206 else
4207 memcpy (&p_sig->info, info, sizeof (siginfo_t));
4208 lwp->pending_signals = p_sig;
4209 }
4210
4211 /* Install breakpoints for software single stepping. */
4212
4213 static void
4214 install_software_single_step_breakpoints (struct lwp_info *lwp)
4215 {
4216 struct thread_info *thread = get_lwp_thread (lwp);
4217 struct regcache *regcache = get_thread_regcache (thread, 1);
4218
4219 scoped_restore save_current_thread = make_scoped_restore (&current_thread);
4220
4221 current_thread = thread;
4222 std::vector<CORE_ADDR> next_pcs = the_low_target.get_next_pcs (regcache);
4223
4224 for (CORE_ADDR pc : next_pcs)
4225 set_single_step_breakpoint (pc, current_ptid);
4226 }
4227
4228 /* Single step via hardware or software single step.
4229 Return 1 if hardware single stepping, 0 if software single stepping
4230 or can't single step. */
4231
4232 static int
4233 single_step (struct lwp_info* lwp)
4234 {
4235 int step = 0;
4236
4237 if (can_hardware_single_step ())
4238 {
4239 step = 1;
4240 }
4241 else if (can_software_single_step ())
4242 {
4243 install_software_single_step_breakpoints (lwp);
4244 step = 0;
4245 }
4246 else
4247 {
4248 if (debug_threads)
4249 debug_printf ("stepping is not implemented on this target");
4250 }
4251
4252 return step;
4253 }
4254
4255 /* The signal can be delivered to the inferior if we are not trying to
4256 finish a fast tracepoint collect. Since signal can be delivered in
4257 the step-over, the program may go to signal handler and trap again
4258 after return from the signal handler. We can live with the spurious
4259 double traps. */
4260
4261 static int
4262 lwp_signal_can_be_delivered (struct lwp_info *lwp)
4263 {
4264 return (lwp->collecting_fast_tracepoint
4265 == fast_tpoint_collect_result::not_collecting);
4266 }
4267
4268 /* Resume execution of LWP. If STEP is nonzero, single-step it. If
4269 SIGNAL is nonzero, give it that signal. */
4270
4271 static void
4272 linux_resume_one_lwp_throw (struct lwp_info *lwp,
4273 int step, int signal, siginfo_t *info)
4274 {
4275 struct thread_info *thread = get_lwp_thread (lwp);
4276 struct thread_info *saved_thread;
4277 int ptrace_request;
4278 struct process_info *proc = get_thread_process (thread);
4279
4280 /* Note that target description may not be initialised
4281 (proc->tdesc == NULL) at this point because the program hasn't
4282 stopped at the first instruction yet. It means GDBserver skips
4283 the extra traps from the wrapper program (see option --wrapper).
4284 Code in this function that requires register access should be
4285 guarded by proc->tdesc == NULL or something else. */
4286
4287 if (lwp->stopped == 0)
4288 return;
4289
4290 gdb_assert (lwp->waitstatus.kind == TARGET_WAITKIND_IGNORE);
4291
4292 fast_tpoint_collect_result fast_tp_collecting
4293 = lwp->collecting_fast_tracepoint;
4294
4295 gdb_assert (!stabilizing_threads
4296 || (fast_tp_collecting
4297 != fast_tpoint_collect_result::not_collecting));
4298
4299 /* Cancel actions that rely on GDB not changing the PC (e.g., the
4300 user used the "jump" command, or "set $pc = foo"). */
4301 if (thread->while_stepping != NULL && lwp->stop_pc != get_pc (lwp))
4302 {
4303 /* Collecting 'while-stepping' actions doesn't make sense
4304 anymore. */
4305 release_while_stepping_state_list (thread);
4306 }
4307
4308 /* If we have pending signals or status, and a new signal, enqueue the
4309 signal. Also enqueue the signal if it can't be delivered to the
4310 inferior right now. */
4311 if (signal != 0
4312 && (lwp->status_pending_p
4313 || lwp->pending_signals != NULL
4314 || !lwp_signal_can_be_delivered (lwp)))
4315 {
4316 enqueue_pending_signal (lwp, signal, info);
4317
4318 /* Postpone any pending signal. It was enqueued above. */
4319 signal = 0;
4320 }
4321
4322 if (lwp->status_pending_p)
4323 {
4324 if (debug_threads)
4325 debug_printf ("Not resuming lwp %ld (%s, stop %s);"
4326 " has pending status\n",
4327 lwpid_of (thread), step ? "step" : "continue",
4328 lwp->stop_expected ? "expected" : "not expected");
4329 return;
4330 }
4331
4332 saved_thread = current_thread;
4333 current_thread = thread;
4334
4335 /* This bit needs some thinking about. If we get a signal that
4336 we must report while a single-step reinsert is still pending,
4337 we often end up resuming the thread. It might be better to
4338 (ew) allow a stack of pending events; then we could be sure that
4339 the reinsert happened right away and not lose any signals.
4340
4341 Making this stack would also shrink the window in which breakpoints are
4342 uninserted (see comment in linux_wait_for_lwp) but not enough for
4343 complete correctness, so it won't solve that problem. It may be
4344 worthwhile just to solve this one, however. */
4345 if (lwp->bp_reinsert != 0)
4346 {
4347 if (debug_threads)
4348 debug_printf (" pending reinsert at 0x%s\n",
4349 paddress (lwp->bp_reinsert));
4350
4351 if (can_hardware_single_step ())
4352 {
4353 if (fast_tp_collecting == fast_tpoint_collect_result::not_collecting)
4354 {
4355 if (step == 0)
4356 warning ("BAD - reinserting but not stepping.");
4357 if (lwp->suspended)
4358 warning ("BAD - reinserting and suspended(%d).",
4359 lwp->suspended);
4360 }
4361 }
4362
4363 step = maybe_hw_step (thread);
4364 }
4365
4366 if (fast_tp_collecting == fast_tpoint_collect_result::before_insn)
4367 {
4368 if (debug_threads)
4369 debug_printf ("lwp %ld wants to get out of fast tracepoint jump pad"
4370 " (exit-jump-pad-bkpt)\n",
4371 lwpid_of (thread));
4372 }
4373 else if (fast_tp_collecting == fast_tpoint_collect_result::at_insn)
4374 {
4375 if (debug_threads)
4376 debug_printf ("lwp %ld wants to get out of fast tracepoint jump pad"
4377 " single-stepping\n",
4378 lwpid_of (thread));
4379
4380 if (can_hardware_single_step ())
4381 step = 1;
4382 else
4383 {
4384 internal_error (__FILE__, __LINE__,
4385 "moving out of jump pad single-stepping"
4386 " not implemented on this target");
4387 }
4388 }
4389
4390 /* If we have while-stepping actions in this thread set it stepping.
4391 If we have a signal to deliver, it may or may not be set to
4392 SIG_IGN, we don't know. Assume so, and allow collecting
4393 while-stepping into a signal handler. A possible smart thing to
4394 do would be to set an internal breakpoint at the signal return
4395 address, continue, and carry on catching this while-stepping
4396 action only when that breakpoint is hit. A future
4397 enhancement. */
4398 if (thread->while_stepping != NULL)
4399 {
4400 if (debug_threads)
4401 debug_printf ("lwp %ld has a while-stepping action -> forcing step.\n",
4402 lwpid_of (thread));
4403
4404 step = single_step (lwp);
4405 }
4406
4407 if (proc->tdesc != NULL && the_low_target.get_pc != NULL)
4408 {
4409 struct regcache *regcache = get_thread_regcache (current_thread, 1);
4410
4411 lwp->stop_pc = (*the_low_target.get_pc) (regcache);
4412
4413 if (debug_threads)
4414 {
4415 debug_printf (" %s from pc 0x%lx\n", step ? "step" : "continue",
4416 (long) lwp->stop_pc);
4417 }
4418 }
4419
4420 /* If we have pending signals, consume one if it can be delivered to
4421 the inferior. */
4422 if (lwp->pending_signals != NULL && lwp_signal_can_be_delivered (lwp))
4423 {
4424 struct pending_signals **p_sig;
4425
4426 p_sig = &lwp->pending_signals;
4427 while ((*p_sig)->prev != NULL)
4428 p_sig = &(*p_sig)->prev;
4429
4430 signal = (*p_sig)->signal;
4431 if ((*p_sig)->info.si_signo != 0)
4432 ptrace (PTRACE_SETSIGINFO, lwpid_of (thread), (PTRACE_TYPE_ARG3) 0,
4433 &(*p_sig)->info);
4434
4435 free (*p_sig);
4436 *p_sig = NULL;
4437 }
4438
4439 if (debug_threads)
4440 debug_printf ("Resuming lwp %ld (%s, signal %d, stop %s)\n",
4441 lwpid_of (thread), step ? "step" : "continue", signal,
4442 lwp->stop_expected ? "expected" : "not expected");
4443
4444 if (the_low_target.prepare_to_resume != NULL)
4445 the_low_target.prepare_to_resume (lwp);
4446
4447 regcache_invalidate_thread (thread);
4448 errno = 0;
4449 lwp->stepping = step;
4450 if (step)
4451 ptrace_request = PTRACE_SINGLESTEP;
4452 else if (gdb_catching_syscalls_p (lwp))
4453 ptrace_request = PTRACE_SYSCALL;
4454 else
4455 ptrace_request = PTRACE_CONT;
4456 ptrace (ptrace_request,
4457 lwpid_of (thread),
4458 (PTRACE_TYPE_ARG3) 0,
4459 /* Coerce to a uintptr_t first to avoid potential gcc warning
4460 of coercing an 8 byte integer to a 4 byte pointer. */
4461 (PTRACE_TYPE_ARG4) (uintptr_t) signal);
4462
4463 current_thread = saved_thread;
4464 if (errno)
4465 perror_with_name ("resuming thread");
4466
4467 /* Successfully resumed. Clear state that no longer makes sense,
4468 and mark the LWP as running. Must not do this before resuming
4469 otherwise if that fails other code will be confused. E.g., we'd
4470 later try to stop the LWP and hang forever waiting for a stop
4471 status. Note that we must not throw after this is cleared,
4472 otherwise handle_zombie_lwp_error would get confused. */
4473 lwp->stopped = 0;
4474 lwp->stop_reason = TARGET_STOPPED_BY_NO_REASON;
4475 }
4476
4477 /* Called when we try to resume a stopped LWP and that errors out. If
4478 the LWP is no longer in ptrace-stopped state (meaning it's zombie,
4479 or about to become), discard the error, clear any pending status
4480 the LWP may have, and return true (we'll collect the exit status
4481 soon enough). Otherwise, return false. */
4482
4483 static int
4484 check_ptrace_stopped_lwp_gone (struct lwp_info *lp)
4485 {
4486 struct thread_info *thread = get_lwp_thread (lp);
4487
4488 /* If we get an error after resuming the LWP successfully, we'd
4489 confuse !T state for the LWP being gone. */
4490 gdb_assert (lp->stopped);
4491
4492 /* We can't just check whether the LWP is in 'Z (Zombie)' state,
4493 because even if ptrace failed with ESRCH, the tracee may be "not
4494 yet fully dead", but already refusing ptrace requests. In that
4495 case the tracee has 'R (Running)' state for a little bit
4496 (observed in Linux 3.18). See also the note on ESRCH in the
4497 ptrace(2) man page. Instead, check whether the LWP has any state
4498 other than ptrace-stopped. */
4499
4500 /* Don't assume anything if /proc/PID/status can't be read. */
4501 if (linux_proc_pid_is_trace_stopped_nowarn (lwpid_of (thread)) == 0)
4502 {
4503 lp->stop_reason = TARGET_STOPPED_BY_NO_REASON;
4504 lp->status_pending_p = 0;
4505 return 1;
4506 }
4507 return 0;
4508 }
4509
4510 /* Like linux_resume_one_lwp_throw, but no error is thrown if the LWP
4511 disappears while we try to resume it. */
4512
4513 static void
4514 linux_resume_one_lwp (struct lwp_info *lwp,
4515 int step, int signal, siginfo_t *info)
4516 {
4517 TRY
4518 {
4519 linux_resume_one_lwp_throw (lwp, step, signal, info);
4520 }
4521 CATCH (ex, RETURN_MASK_ERROR)
4522 {
4523 if (!check_ptrace_stopped_lwp_gone (lwp))
4524 throw_exception (ex);
4525 }
4526 END_CATCH
4527 }
4528
4529 /* This function is called once per thread via for_each_thread.
4530 We look up which resume request applies to THREAD and mark it with a
4531 pointer to the appropriate resume request.
4532
4533 This algorithm is O(threads * resume elements), but resume elements
4534 is small (and will remain small at least until GDB supports thread
4535 suspension). */
4536
4537 static void
4538 linux_set_resume_request (thread_info *thread, thread_resume *resume, size_t n)
4539 {
4540 struct lwp_info *lwp = get_thread_lwp (thread);
4541
4542 for (int ndx = 0; ndx < n; ndx++)
4543 {
4544 ptid_t ptid = resume[ndx].thread;
4545 if (ptid_equal (ptid, minus_one_ptid)
4546 || ptid == thread->id
4547 /* Handle both 'pPID' and 'pPID.-1' as meaning 'all threads
4548 of PID'. */
4549 || (ptid.pid () == pid_of (thread)
4550 && (ptid_is_pid (ptid)
4551 || ptid_get_lwp (ptid) == -1)))
4552 {
4553 if (resume[ndx].kind == resume_stop
4554 && thread->last_resume_kind == resume_stop)
4555 {
4556 if (debug_threads)
4557 debug_printf ("already %s LWP %ld at GDB's request\n",
4558 (thread->last_status.kind
4559 == TARGET_WAITKIND_STOPPED)
4560 ? "stopped"
4561 : "stopping",
4562 lwpid_of (thread));
4563
4564 continue;
4565 }
4566
4567 /* Ignore (wildcard) resume requests for already-resumed
4568 threads. */
4569 if (resume[ndx].kind != resume_stop
4570 && thread->last_resume_kind != resume_stop)
4571 {
4572 if (debug_threads)
4573 debug_printf ("already %s LWP %ld at GDB's request\n",
4574 (thread->last_resume_kind
4575 == resume_step)
4576 ? "stepping"
4577 : "continuing",
4578 lwpid_of (thread));
4579 continue;
4580 }
4581
4582 /* Don't let wildcard resumes resume fork children that GDB
4583 does not yet know are new fork children. */
4584 if (lwp->fork_relative != NULL)
4585 {
4586 struct lwp_info *rel = lwp->fork_relative;
4587
4588 if (rel->status_pending_p
4589 && (rel->waitstatus.kind == TARGET_WAITKIND_FORKED
4590 || rel->waitstatus.kind == TARGET_WAITKIND_VFORKED))
4591 {
4592 if (debug_threads)
4593 debug_printf ("not resuming LWP %ld: has queued stop reply\n",
4594 lwpid_of (thread));
4595 continue;
4596 }
4597 }
4598
4599 /* If the thread has a pending event that has already been
4600 reported to GDBserver core, but GDB has not pulled the
4601 event out of the vStopped queue yet, likewise, ignore the
4602 (wildcard) resume request. */
4603 if (in_queued_stop_replies (thread->id))
4604 {
4605 if (debug_threads)
4606 debug_printf ("not resuming LWP %ld: has queued stop reply\n",
4607 lwpid_of (thread));
4608 continue;
4609 }
4610
4611 lwp->resume = &resume[ndx];
4612 thread->last_resume_kind = lwp->resume->kind;
4613
4614 lwp->step_range_start = lwp->resume->step_range_start;
4615 lwp->step_range_end = lwp->resume->step_range_end;
4616
4617 /* If we had a deferred signal to report, dequeue one now.
4618 This can happen if LWP gets more than one signal while
4619 trying to get out of a jump pad. */
4620 if (lwp->stopped
4621 && !lwp->status_pending_p
4622 && dequeue_one_deferred_signal (lwp, &lwp->status_pending))
4623 {
4624 lwp->status_pending_p = 1;
4625
4626 if (debug_threads)
4627 debug_printf ("Dequeueing deferred signal %d for LWP %ld, "
4628 "leaving status pending.\n",
4629 WSTOPSIG (lwp->status_pending),
4630 lwpid_of (thread));
4631 }
4632
4633 return;
4634 }
4635 }
4636
4637 /* No resume action for this thread. */
4638 lwp->resume = NULL;
4639 }
4640
4641 /* find_thread callback for linux_resume. Return true if this lwp has an
4642 interesting status pending. */
4643
4644 static bool
4645 resume_status_pending_p (thread_info *thread)
4646 {
4647 struct lwp_info *lwp = get_thread_lwp (thread);
4648
4649 /* LWPs which will not be resumed are not interesting, because
4650 we might not wait for them next time through linux_wait. */
4651 if (lwp->resume == NULL)
4652 return false;
4653
4654 return thread_still_has_status_pending_p (thread);
4655 }
4656
4657 /* Return 1 if this lwp that GDB wants running is stopped at an
4658 internal breakpoint that we need to step over. It assumes that any
4659 required STOP_PC adjustment has already been propagated to the
4660 inferior's regcache. */
4661
4662 static bool
4663 need_step_over_p (thread_info *thread)
4664 {
4665 struct lwp_info *lwp = get_thread_lwp (thread);
4666 struct thread_info *saved_thread;
4667 CORE_ADDR pc;
4668 struct process_info *proc = get_thread_process (thread);
4669
4670 /* GDBserver is skipping the extra traps from the wrapper program,
4671 don't have to do step over. */
4672 if (proc->tdesc == NULL)
4673 return false;
4674
4675 /* LWPs which will not be resumed are not interesting, because we
4676 might not wait for them next time through linux_wait. */
4677
4678 if (!lwp->stopped)
4679 {
4680 if (debug_threads)
4681 debug_printf ("Need step over [LWP %ld]? Ignoring, not stopped\n",
4682 lwpid_of (thread));
4683 return false;
4684 }
4685
4686 if (thread->last_resume_kind == resume_stop)
4687 {
4688 if (debug_threads)
4689 debug_printf ("Need step over [LWP %ld]? Ignoring, should remain"
4690 " stopped\n",
4691 lwpid_of (thread));
4692 return false;
4693 }
4694
4695 gdb_assert (lwp->suspended >= 0);
4696
4697 if (lwp->suspended)
4698 {
4699 if (debug_threads)
4700 debug_printf ("Need step over [LWP %ld]? Ignoring, suspended\n",
4701 lwpid_of (thread));
4702 return false;
4703 }
4704
4705 if (lwp->status_pending_p)
4706 {
4707 if (debug_threads)
4708 debug_printf ("Need step over [LWP %ld]? Ignoring, has pending"
4709 " status.\n",
4710 lwpid_of (thread));
4711 return false;
4712 }
4713
4714 /* Note: PC, not STOP_PC. Either GDB has adjusted the PC already,
4715 or we have. */
4716 pc = get_pc (lwp);
4717
4718 /* If the PC has changed since we stopped, then don't do anything,
4719 and let the breakpoint/tracepoint be hit. This happens if, for
4720 instance, GDB handled the decr_pc_after_break subtraction itself,
4721 GDB is OOL stepping this thread, or the user has issued a "jump"
4722 command, or poked thread's registers herself. */
4723 if (pc != lwp->stop_pc)
4724 {
4725 if (debug_threads)
4726 debug_printf ("Need step over [LWP %ld]? Cancelling, PC was changed. "
4727 "Old stop_pc was 0x%s, PC is now 0x%s\n",
4728 lwpid_of (thread),
4729 paddress (lwp->stop_pc), paddress (pc));
4730 return false;
4731 }
4732
4733 /* On software single step target, resume the inferior with signal
4734 rather than stepping over. */
4735 if (can_software_single_step ()
4736 && lwp->pending_signals != NULL
4737 && lwp_signal_can_be_delivered (lwp))
4738 {
4739 if (debug_threads)
4740 debug_printf ("Need step over [LWP %ld]? Ignoring, has pending"
4741 " signals.\n",
4742 lwpid_of (thread));
4743
4744 return false;
4745 }
4746
4747 saved_thread = current_thread;
4748 current_thread = thread;
4749
4750 /* We can only step over breakpoints we know about. */
4751 if (breakpoint_here (pc) || fast_tracepoint_jump_here (pc))
4752 {
4753 /* Don't step over a breakpoint that GDB expects to hit
4754 though. If the condition is being evaluated on the target's side
4755 and it evaluate to false, step over this breakpoint as well. */
4756 if (gdb_breakpoint_here (pc)
4757 && gdb_condition_true_at_breakpoint (pc)
4758 && gdb_no_commands_at_breakpoint (pc))
4759 {
4760 if (debug_threads)
4761 debug_printf ("Need step over [LWP %ld]? yes, but found"
4762 " GDB breakpoint at 0x%s; skipping step over\n",
4763 lwpid_of (thread), paddress (pc));
4764
4765 current_thread = saved_thread;
4766 return false;
4767 }
4768 else
4769 {
4770 if (debug_threads)
4771 debug_printf ("Need step over [LWP %ld]? yes, "
4772 "found breakpoint at 0x%s\n",
4773 lwpid_of (thread), paddress (pc));
4774
4775 /* We've found an lwp that needs stepping over --- return 1 so
4776 that find_thread stops looking. */
4777 current_thread = saved_thread;
4778
4779 return true;
4780 }
4781 }
4782
4783 current_thread = saved_thread;
4784
4785 if (debug_threads)
4786 debug_printf ("Need step over [LWP %ld]? No, no breakpoint found"
4787 " at 0x%s\n",
4788 lwpid_of (thread), paddress (pc));
4789
4790 return false;
4791 }
4792
4793 /* Start a step-over operation on LWP. When LWP stopped at a
4794 breakpoint, to make progress, we need to remove the breakpoint out
4795 of the way. If we let other threads run while we do that, they may
4796 pass by the breakpoint location and miss hitting it. To avoid
4797 that, a step-over momentarily stops all threads while LWP is
4798 single-stepped by either hardware or software while the breakpoint
4799 is temporarily uninserted from the inferior. When the single-step
4800 finishes, we reinsert the breakpoint, and let all threads that are
4801 supposed to be running, run again. */
4802
4803 static int
4804 start_step_over (struct lwp_info *lwp)
4805 {
4806 struct thread_info *thread = get_lwp_thread (lwp);
4807 struct thread_info *saved_thread;
4808 CORE_ADDR pc;
4809 int step;
4810
4811 if (debug_threads)
4812 debug_printf ("Starting step-over on LWP %ld. Stopping all threads\n",
4813 lwpid_of (thread));
4814
4815 stop_all_lwps (1, lwp);
4816
4817 if (lwp->suspended != 0)
4818 {
4819 internal_error (__FILE__, __LINE__,
4820 "LWP %ld suspended=%d\n", lwpid_of (thread),
4821 lwp->suspended);
4822 }
4823
4824 if (debug_threads)
4825 debug_printf ("Done stopping all threads for step-over.\n");
4826
4827 /* Note, we should always reach here with an already adjusted PC,
4828 either by GDB (if we're resuming due to GDB's request), or by our
4829 caller, if we just finished handling an internal breakpoint GDB
4830 shouldn't care about. */
4831 pc = get_pc (lwp);
4832
4833 saved_thread = current_thread;
4834 current_thread = thread;
4835
4836 lwp->bp_reinsert = pc;
4837 uninsert_breakpoints_at (pc);
4838 uninsert_fast_tracepoint_jumps_at (pc);
4839
4840 step = single_step (lwp);
4841
4842 current_thread = saved_thread;
4843
4844 linux_resume_one_lwp (lwp, step, 0, NULL);
4845
4846 /* Require next event from this LWP. */
4847 step_over_bkpt = thread->id;
4848 return 1;
4849 }
4850
4851 /* Finish a step-over. Reinsert the breakpoint we had uninserted in
4852 start_step_over, if still there, and delete any single-step
4853 breakpoints we've set, on non hardware single-step targets. */
4854
4855 static int
4856 finish_step_over (struct lwp_info *lwp)
4857 {
4858 if (lwp->bp_reinsert != 0)
4859 {
4860 struct thread_info *saved_thread = current_thread;
4861
4862 if (debug_threads)
4863 debug_printf ("Finished step over.\n");
4864
4865 current_thread = get_lwp_thread (lwp);
4866
4867 /* Reinsert any breakpoint at LWP->BP_REINSERT. Note that there
4868 may be no breakpoint to reinsert there by now. */
4869 reinsert_breakpoints_at (lwp->bp_reinsert);
4870 reinsert_fast_tracepoint_jumps_at (lwp->bp_reinsert);
4871
4872 lwp->bp_reinsert = 0;
4873
4874 /* Delete any single-step breakpoints. No longer needed. We
4875 don't have to worry about other threads hitting this trap,
4876 and later not being able to explain it, because we were
4877 stepping over a breakpoint, and we hold all threads but
4878 LWP stopped while doing that. */
4879 if (!can_hardware_single_step ())
4880 {
4881 gdb_assert (has_single_step_breakpoints (current_thread));
4882 delete_single_step_breakpoints (current_thread);
4883 }
4884
4885 step_over_bkpt = null_ptid;
4886 current_thread = saved_thread;
4887 return 1;
4888 }
4889 else
4890 return 0;
4891 }
4892
4893 /* If there's a step over in progress, wait until all threads stop
4894 (that is, until the stepping thread finishes its step), and
4895 unsuspend all lwps. The stepping thread ends with its status
4896 pending, which is processed later when we get back to processing
4897 events. */
4898
4899 static void
4900 complete_ongoing_step_over (void)
4901 {
4902 if (!ptid_equal (step_over_bkpt, null_ptid))
4903 {
4904 struct lwp_info *lwp;
4905 int wstat;
4906 int ret;
4907
4908 if (debug_threads)
4909 debug_printf ("detach: step over in progress, finish it first\n");
4910
4911 /* Passing NULL_PTID as filter indicates we want all events to
4912 be left pending. Eventually this returns when there are no
4913 unwaited-for children left. */
4914 ret = linux_wait_for_event_filtered (minus_one_ptid, null_ptid,
4915 &wstat, __WALL);
4916 gdb_assert (ret == -1);
4917
4918 lwp = find_lwp_pid (step_over_bkpt);
4919 if (lwp != NULL)
4920 finish_step_over (lwp);
4921 step_over_bkpt = null_ptid;
4922 unsuspend_all_lwps (lwp);
4923 }
4924 }
4925
4926 /* This function is called once per thread. We check the thread's resume
4927 request, which will tell us whether to resume, step, or leave the thread
4928 stopped; and what signal, if any, it should be sent.
4929
4930 For threads which we aren't explicitly told otherwise, we preserve
4931 the stepping flag; this is used for stepping over gdbserver-placed
4932 breakpoints.
4933
4934 If pending_flags was set in any thread, we queue any needed
4935 signals, since we won't actually resume. We already have a pending
4936 event to report, so we don't need to preserve any step requests;
4937 they should be re-issued if necessary. */
4938
4939 static void
4940 linux_resume_one_thread (thread_info *thread, bool leave_all_stopped)
4941 {
4942 struct lwp_info *lwp = get_thread_lwp (thread);
4943 int leave_pending;
4944
4945 if (lwp->resume == NULL)
4946 return;
4947
4948 if (lwp->resume->kind == resume_stop)
4949 {
4950 if (debug_threads)
4951 debug_printf ("resume_stop request for LWP %ld\n", lwpid_of (thread));
4952
4953 if (!lwp->stopped)
4954 {
4955 if (debug_threads)
4956 debug_printf ("stopping LWP %ld\n", lwpid_of (thread));
4957
4958 /* Stop the thread, and wait for the event asynchronously,
4959 through the event loop. */
4960 send_sigstop (lwp);
4961 }
4962 else
4963 {
4964 if (debug_threads)
4965 debug_printf ("already stopped LWP %ld\n",
4966 lwpid_of (thread));
4967
4968 /* The LWP may have been stopped in an internal event that
4969 was not meant to be notified back to GDB (e.g., gdbserver
4970 breakpoint), so we should be reporting a stop event in
4971 this case too. */
4972
4973 /* If the thread already has a pending SIGSTOP, this is a
4974 no-op. Otherwise, something later will presumably resume
4975 the thread and this will cause it to cancel any pending
4976 operation, due to last_resume_kind == resume_stop. If
4977 the thread already has a pending status to report, we
4978 will still report it the next time we wait - see
4979 status_pending_p_callback. */
4980
4981 /* If we already have a pending signal to report, then
4982 there's no need to queue a SIGSTOP, as this means we're
4983 midway through moving the LWP out of the jumppad, and we
4984 will report the pending signal as soon as that is
4985 finished. */
4986 if (lwp->pending_signals_to_report == NULL)
4987 send_sigstop (lwp);
4988 }
4989
4990 /* For stop requests, we're done. */
4991 lwp->resume = NULL;
4992 thread->last_status.kind = TARGET_WAITKIND_IGNORE;
4993 return;
4994 }
4995
4996 /* If this thread which is about to be resumed has a pending status,
4997 then don't resume it - we can just report the pending status.
4998 Likewise if it is suspended, because e.g., another thread is
4999 stepping past a breakpoint. Make sure to queue any signals that
5000 would otherwise be sent. In all-stop mode, we do this decision
5001 based on if *any* thread has a pending status. If there's a
5002 thread that needs the step-over-breakpoint dance, then don't
5003 resume any other thread but that particular one. */
5004 leave_pending = (lwp->suspended
5005 || lwp->status_pending_p
5006 || leave_all_stopped);
5007
5008 /* If we have a new signal, enqueue the signal. */
5009 if (lwp->resume->sig != 0)
5010 {
5011 siginfo_t info, *info_p;
5012
5013 /* If this is the same signal we were previously stopped by,
5014 make sure to queue its siginfo. */
5015 if (WIFSTOPPED (lwp->last_status)
5016 && WSTOPSIG (lwp->last_status) == lwp->resume->sig
5017 && ptrace (PTRACE_GETSIGINFO, lwpid_of (thread),
5018 (PTRACE_TYPE_ARG3) 0, &info) == 0)
5019 info_p = &info;
5020 else
5021 info_p = NULL;
5022
5023 enqueue_pending_signal (lwp, lwp->resume->sig, info_p);
5024 }
5025
5026 if (!leave_pending)
5027 {
5028 if (debug_threads)
5029 debug_printf ("resuming LWP %ld\n", lwpid_of (thread));
5030
5031 proceed_one_lwp (thread, NULL);
5032 }
5033 else
5034 {
5035 if (debug_threads)
5036 debug_printf ("leaving LWP %ld stopped\n", lwpid_of (thread));
5037 }
5038
5039 thread->last_status.kind = TARGET_WAITKIND_IGNORE;
5040 lwp->resume = NULL;
5041 }
5042
5043 static void
5044 linux_resume (struct thread_resume *resume_info, size_t n)
5045 {
5046 struct thread_info *need_step_over = NULL;
5047
5048 if (debug_threads)
5049 {
5050 debug_enter ();
5051 debug_printf ("linux_resume:\n");
5052 }
5053
5054 for_each_thread ([&] (thread_info *thread)
5055 {
5056 linux_set_resume_request (thread, resume_info, n);
5057 });
5058
5059 /* If there is a thread which would otherwise be resumed, which has
5060 a pending status, then don't resume any threads - we can just
5061 report the pending status. Make sure to queue any signals that
5062 would otherwise be sent. In non-stop mode, we'll apply this
5063 logic to each thread individually. We consume all pending events
5064 before considering to start a step-over (in all-stop). */
5065 bool any_pending = false;
5066 if (!non_stop)
5067 any_pending = find_thread (resume_status_pending_p) != NULL;
5068
5069 /* If there is a thread which would otherwise be resumed, which is
5070 stopped at a breakpoint that needs stepping over, then don't
5071 resume any threads - have it step over the breakpoint with all
5072 other threads stopped, then resume all threads again. Make sure
5073 to queue any signals that would otherwise be delivered or
5074 queued. */
5075 if (!any_pending && supports_breakpoints ())
5076 need_step_over = find_thread (need_step_over_p);
5077
5078 bool leave_all_stopped = (need_step_over != NULL || any_pending);
5079
5080 if (debug_threads)
5081 {
5082 if (need_step_over != NULL)
5083 debug_printf ("Not resuming all, need step over\n");
5084 else if (any_pending)
5085 debug_printf ("Not resuming, all-stop and found "
5086 "an LWP with pending status\n");
5087 else
5088 debug_printf ("Resuming, no pending status or step over needed\n");
5089 }
5090
5091 /* Even if we're leaving threads stopped, queue all signals we'd
5092 otherwise deliver. */
5093 for_each_thread ([&] (thread_info *thread)
5094 {
5095 linux_resume_one_thread (thread, leave_all_stopped);
5096 });
5097
5098 if (need_step_over)
5099 start_step_over (get_thread_lwp (need_step_over));
5100
5101 if (debug_threads)
5102 {
5103 debug_printf ("linux_resume done\n");
5104 debug_exit ();
5105 }
5106
5107 /* We may have events that were pending that can/should be sent to
5108 the client now. Trigger a linux_wait call. */
5109 if (target_is_async_p ())
5110 async_file_mark ();
5111 }
5112
5113 /* This function is called once per thread. We check the thread's
5114 last resume request, which will tell us whether to resume, step, or
5115 leave the thread stopped. Any signal the client requested to be
5116 delivered has already been enqueued at this point.
5117
5118 If any thread that GDB wants running is stopped at an internal
5119 breakpoint that needs stepping over, we start a step-over operation
5120 on that particular thread, and leave all others stopped. */
5121
5122 static void
5123 proceed_one_lwp (thread_info *thread, lwp_info *except)
5124 {
5125 struct lwp_info *lwp = get_thread_lwp (thread);
5126 int step;
5127
5128 if (lwp == except)
5129 return;
5130
5131 if (debug_threads)
5132 debug_printf ("proceed_one_lwp: lwp %ld\n", lwpid_of (thread));
5133
5134 if (!lwp->stopped)
5135 {
5136 if (debug_threads)
5137 debug_printf (" LWP %ld already running\n", lwpid_of (thread));
5138 return;
5139 }
5140
5141 if (thread->last_resume_kind == resume_stop
5142 && thread->last_status.kind != TARGET_WAITKIND_IGNORE)
5143 {
5144 if (debug_threads)
5145 debug_printf (" client wants LWP to remain %ld stopped\n",
5146 lwpid_of (thread));
5147 return;
5148 }
5149
5150 if (lwp->status_pending_p)
5151 {
5152 if (debug_threads)
5153 debug_printf (" LWP %ld has pending status, leaving stopped\n",
5154 lwpid_of (thread));
5155 return;
5156 }
5157
5158 gdb_assert (lwp->suspended >= 0);
5159
5160 if (lwp->suspended)
5161 {
5162 if (debug_threads)
5163 debug_printf (" LWP %ld is suspended\n", lwpid_of (thread));
5164 return;
5165 }
5166
5167 if (thread->last_resume_kind == resume_stop
5168 && lwp->pending_signals_to_report == NULL
5169 && (lwp->collecting_fast_tracepoint
5170 == fast_tpoint_collect_result::not_collecting))
5171 {
5172 /* We haven't reported this LWP as stopped yet (otherwise, the
5173 last_status.kind check above would catch it, and we wouldn't
5174 reach here. This LWP may have been momentarily paused by a
5175 stop_all_lwps call while handling for example, another LWP's
5176 step-over. In that case, the pending expected SIGSTOP signal
5177 that was queued at vCont;t handling time will have already
5178 been consumed by wait_for_sigstop, and so we need to requeue
5179 another one here. Note that if the LWP already has a SIGSTOP
5180 pending, this is a no-op. */
5181
5182 if (debug_threads)
5183 debug_printf ("Client wants LWP %ld to stop. "
5184 "Making sure it has a SIGSTOP pending\n",
5185 lwpid_of (thread));
5186
5187 send_sigstop (lwp);
5188 }
5189
5190 if (thread->last_resume_kind == resume_step)
5191 {
5192 if (debug_threads)
5193 debug_printf (" stepping LWP %ld, client wants it stepping\n",
5194 lwpid_of (thread));
5195
5196 /* If resume_step is requested by GDB, install single-step
5197 breakpoints when the thread is about to be actually resumed if
5198 the single-step breakpoints weren't removed. */
5199 if (can_software_single_step ()
5200 && !has_single_step_breakpoints (thread))
5201 install_software_single_step_breakpoints (lwp);
5202
5203 step = maybe_hw_step (thread);
5204 }
5205 else if (lwp->bp_reinsert != 0)
5206 {
5207 if (debug_threads)
5208 debug_printf (" stepping LWP %ld, reinsert set\n",
5209 lwpid_of (thread));
5210
5211 step = maybe_hw_step (thread);
5212 }
5213 else
5214 step = 0;
5215
5216 linux_resume_one_lwp (lwp, step, 0, NULL);
5217 }
5218
5219 static void
5220 unsuspend_and_proceed_one_lwp (thread_info *thread, lwp_info *except)
5221 {
5222 struct lwp_info *lwp = get_thread_lwp (thread);
5223
5224 if (lwp == except)
5225 return;
5226
5227 lwp_suspended_decr (lwp);
5228
5229 proceed_one_lwp (thread, except);
5230 }
5231
5232 /* When we finish a step-over, set threads running again. If there's
5233 another thread that may need a step-over, now's the time to start
5234 it. Eventually, we'll move all threads past their breakpoints. */
5235
5236 static void
5237 proceed_all_lwps (void)
5238 {
5239 struct thread_info *need_step_over;
5240
5241 /* If there is a thread which would otherwise be resumed, which is
5242 stopped at a breakpoint that needs stepping over, then don't
5243 resume any threads - have it step over the breakpoint with all
5244 other threads stopped, then resume all threads again. */
5245
5246 if (supports_breakpoints ())
5247 {
5248 need_step_over = find_thread (need_step_over_p);
5249
5250 if (need_step_over != NULL)
5251 {
5252 if (debug_threads)
5253 debug_printf ("proceed_all_lwps: found "
5254 "thread %ld needing a step-over\n",
5255 lwpid_of (need_step_over));
5256
5257 start_step_over (get_thread_lwp (need_step_over));
5258 return;
5259 }
5260 }
5261
5262 if (debug_threads)
5263 debug_printf ("Proceeding, no step-over needed\n");
5264
5265 for_each_thread ([] (thread_info *thread)
5266 {
5267 proceed_one_lwp (thread, NULL);
5268 });
5269 }
5270
5271 /* Stopped LWPs that the client wanted to be running, that don't have
5272 pending statuses, are set to run again, except for EXCEPT, if not
5273 NULL. This undoes a stop_all_lwps call. */
5274
5275 static void
5276 unstop_all_lwps (int unsuspend, struct lwp_info *except)
5277 {
5278 if (debug_threads)
5279 {
5280 debug_enter ();
5281 if (except)
5282 debug_printf ("unstopping all lwps, except=(LWP %ld)\n",
5283 lwpid_of (get_lwp_thread (except)));
5284 else
5285 debug_printf ("unstopping all lwps\n");
5286 }
5287
5288 if (unsuspend)
5289 for_each_thread ([&] (thread_info *thread)
5290 {
5291 unsuspend_and_proceed_one_lwp (thread, except);
5292 });
5293 else
5294 for_each_thread ([&] (thread_info *thread)
5295 {
5296 proceed_one_lwp (thread, except);
5297 });
5298
5299 if (debug_threads)
5300 {
5301 debug_printf ("unstop_all_lwps done\n");
5302 debug_exit ();
5303 }
5304 }
5305
5306
5307 #ifdef HAVE_LINUX_REGSETS
5308
5309 #define use_linux_regsets 1
5310
5311 /* Returns true if REGSET has been disabled. */
5312
5313 static int
5314 regset_disabled (struct regsets_info *info, struct regset_info *regset)
5315 {
5316 return (info->disabled_regsets != NULL
5317 && info->disabled_regsets[regset - info->regsets]);
5318 }
5319
5320 /* Disable REGSET. */
5321
5322 static void
5323 disable_regset (struct regsets_info *info, struct regset_info *regset)
5324 {
5325 int dr_offset;
5326
5327 dr_offset = regset - info->regsets;
5328 if (info->disabled_regsets == NULL)
5329 info->disabled_regsets = (char *) xcalloc (1, info->num_regsets);
5330 info->disabled_regsets[dr_offset] = 1;
5331 }
5332
5333 static int
5334 regsets_fetch_inferior_registers (struct regsets_info *regsets_info,
5335 struct regcache *regcache)
5336 {
5337 struct regset_info *regset;
5338 int saw_general_regs = 0;
5339 int pid;
5340 struct iovec iov;
5341
5342 pid = lwpid_of (current_thread);
5343 for (regset = regsets_info->regsets; regset->size >= 0; regset++)
5344 {
5345 void *buf, *data;
5346 int nt_type, res;
5347
5348 if (regset->size == 0 || regset_disabled (regsets_info, regset))
5349 continue;
5350
5351 buf = xmalloc (regset->size);
5352
5353 nt_type = regset->nt_type;
5354 if (nt_type)
5355 {
5356 iov.iov_base = buf;
5357 iov.iov_len = regset->size;
5358 data = (void *) &iov;
5359 }
5360 else
5361 data = buf;
5362
5363 #ifndef __sparc__
5364 res = ptrace (regset->get_request, pid,
5365 (PTRACE_TYPE_ARG3) (long) nt_type, data);
5366 #else
5367 res = ptrace (regset->get_request, pid, data, nt_type);
5368 #endif
5369 if (res < 0)
5370 {
5371 if (errno == EIO)
5372 {
5373 /* If we get EIO on a regset, do not try it again for
5374 this process mode. */
5375 disable_regset (regsets_info, regset);
5376 }
5377 else if (errno == ENODATA)
5378 {
5379 /* ENODATA may be returned if the regset is currently
5380 not "active". This can happen in normal operation,
5381 so suppress the warning in this case. */
5382 }
5383 else if (errno == ESRCH)
5384 {
5385 /* At this point, ESRCH should mean the process is
5386 already gone, in which case we simply ignore attempts
5387 to read its registers. */
5388 }
5389 else
5390 {
5391 char s[256];
5392 sprintf (s, "ptrace(regsets_fetch_inferior_registers) PID=%d",
5393 pid);
5394 perror (s);
5395 }
5396 }
5397 else
5398 {
5399 if (regset->type == GENERAL_REGS)
5400 saw_general_regs = 1;
5401 regset->store_function (regcache, buf);
5402 }
5403 free (buf);
5404 }
5405 if (saw_general_regs)
5406 return 0;
5407 else
5408 return 1;
5409 }
5410
5411 static int
5412 regsets_store_inferior_registers (struct regsets_info *regsets_info,
5413 struct regcache *regcache)
5414 {
5415 struct regset_info *regset;
5416 int saw_general_regs = 0;
5417 int pid;
5418 struct iovec iov;
5419
5420 pid = lwpid_of (current_thread);
5421 for (regset = regsets_info->regsets; regset->size >= 0; regset++)
5422 {
5423 void *buf, *data;
5424 int nt_type, res;
5425
5426 if (regset->size == 0 || regset_disabled (regsets_info, regset)
5427 || regset->fill_function == NULL)
5428 continue;
5429
5430 buf = xmalloc (regset->size);
5431
5432 /* First fill the buffer with the current register set contents,
5433 in case there are any items in the kernel's regset that are
5434 not in gdbserver's regcache. */
5435
5436 nt_type = regset->nt_type;
5437 if (nt_type)
5438 {
5439 iov.iov_base = buf;
5440 iov.iov_len = regset->size;
5441 data = (void *) &iov;
5442 }
5443 else
5444 data = buf;
5445
5446 #ifndef __sparc__
5447 res = ptrace (regset->get_request, pid,
5448 (PTRACE_TYPE_ARG3) (long) nt_type, data);
5449 #else
5450 res = ptrace (regset->get_request, pid, data, nt_type);
5451 #endif
5452
5453 if (res == 0)
5454 {
5455 /* Then overlay our cached registers on that. */
5456 regset->fill_function (regcache, buf);
5457
5458 /* Only now do we write the register set. */
5459 #ifndef __sparc__
5460 res = ptrace (regset->set_request, pid,
5461 (PTRACE_TYPE_ARG3) (long) nt_type, data);
5462 #else
5463 res = ptrace (regset->set_request, pid, data, nt_type);
5464 #endif
5465 }
5466
5467 if (res < 0)
5468 {
5469 if (errno == EIO)
5470 {
5471 /* If we get EIO on a regset, do not try it again for
5472 this process mode. */
5473 disable_regset (regsets_info, regset);
5474 }
5475 else if (errno == ESRCH)
5476 {
5477 /* At this point, ESRCH should mean the process is
5478 already gone, in which case we simply ignore attempts
5479 to change its registers. See also the related
5480 comment in linux_resume_one_lwp. */
5481 free (buf);
5482 return 0;
5483 }
5484 else
5485 {
5486 perror ("Warning: ptrace(regsets_store_inferior_registers)");
5487 }
5488 }
5489 else if (regset->type == GENERAL_REGS)
5490 saw_general_regs = 1;
5491 free (buf);
5492 }
5493 if (saw_general_regs)
5494 return 0;
5495 else
5496 return 1;
5497 }
5498
5499 #else /* !HAVE_LINUX_REGSETS */
5500
5501 #define use_linux_regsets 0
5502 #define regsets_fetch_inferior_registers(regsets_info, regcache) 1
5503 #define regsets_store_inferior_registers(regsets_info, regcache) 1
5504
5505 #endif
5506
5507 /* Return 1 if register REGNO is supported by one of the regset ptrace
5508 calls or 0 if it has to be transferred individually. */
5509
5510 static int
5511 linux_register_in_regsets (const struct regs_info *regs_info, int regno)
5512 {
5513 unsigned char mask = 1 << (regno % 8);
5514 size_t index = regno / 8;
5515
5516 return (use_linux_regsets
5517 && (regs_info->regset_bitmap == NULL
5518 || (regs_info->regset_bitmap[index] & mask) != 0));
5519 }
5520
5521 #ifdef HAVE_LINUX_USRREGS
5522
5523 static int
5524 register_addr (const struct usrregs_info *usrregs, int regnum)
5525 {
5526 int addr;
5527
5528 if (regnum < 0 || regnum >= usrregs->num_regs)
5529 error ("Invalid register number %d.", regnum);
5530
5531 addr = usrregs->regmap[regnum];
5532
5533 return addr;
5534 }
5535
5536 /* Fetch one register. */
5537 static void
5538 fetch_register (const struct usrregs_info *usrregs,
5539 struct regcache *regcache, int regno)
5540 {
5541 CORE_ADDR regaddr;
5542 int i, size;
5543 char *buf;
5544 int pid;
5545
5546 if (regno >= usrregs->num_regs)
5547 return;
5548 if ((*the_low_target.cannot_fetch_register) (regno))
5549 return;
5550
5551 regaddr = register_addr (usrregs, regno);
5552 if (regaddr == -1)
5553 return;
5554
5555 size = ((register_size (regcache->tdesc, regno)
5556 + sizeof (PTRACE_XFER_TYPE) - 1)
5557 & -sizeof (PTRACE_XFER_TYPE));
5558 buf = (char *) alloca (size);
5559
5560 pid = lwpid_of (current_thread);
5561 for (i = 0; i < size; i += sizeof (PTRACE_XFER_TYPE))
5562 {
5563 errno = 0;
5564 *(PTRACE_XFER_TYPE *) (buf + i) =
5565 ptrace (PTRACE_PEEKUSER, pid,
5566 /* Coerce to a uintptr_t first to avoid potential gcc warning
5567 of coercing an 8 byte integer to a 4 byte pointer. */
5568 (PTRACE_TYPE_ARG3) (uintptr_t) regaddr, (PTRACE_TYPE_ARG4) 0);
5569 regaddr += sizeof (PTRACE_XFER_TYPE);
5570 if (errno != 0)
5571 {
5572 /* Mark register REGNO unavailable. */
5573 supply_register (regcache, regno, NULL);
5574 return;
5575 }
5576 }
5577
5578 if (the_low_target.supply_ptrace_register)
5579 the_low_target.supply_ptrace_register (regcache, regno, buf);
5580 else
5581 supply_register (regcache, regno, buf);
5582 }
5583
5584 /* Store one register. */
5585 static void
5586 store_register (const struct usrregs_info *usrregs,
5587 struct regcache *regcache, int regno)
5588 {
5589 CORE_ADDR regaddr;
5590 int i, size;
5591 char *buf;
5592 int pid;
5593
5594 if (regno >= usrregs->num_regs)
5595 return;
5596 if ((*the_low_target.cannot_store_register) (regno))
5597 return;
5598
5599 regaddr = register_addr (usrregs, regno);
5600 if (regaddr == -1)
5601 return;
5602
5603 size = ((register_size (regcache->tdesc, regno)
5604 + sizeof (PTRACE_XFER_TYPE) - 1)
5605 & -sizeof (PTRACE_XFER_TYPE));
5606 buf = (char *) alloca (size);
5607 memset (buf, 0, size);
5608
5609 if (the_low_target.collect_ptrace_register)
5610 the_low_target.collect_ptrace_register (regcache, regno, buf);
5611 else
5612 collect_register (regcache, regno, buf);
5613
5614 pid = lwpid_of (current_thread);
5615 for (i = 0; i < size; i += sizeof (PTRACE_XFER_TYPE))
5616 {
5617 errno = 0;
5618 ptrace (PTRACE_POKEUSER, pid,
5619 /* Coerce to a uintptr_t first to avoid potential gcc warning
5620 about coercing an 8 byte integer to a 4 byte pointer. */
5621 (PTRACE_TYPE_ARG3) (uintptr_t) regaddr,
5622 (PTRACE_TYPE_ARG4) *(PTRACE_XFER_TYPE *) (buf + i));
5623 if (errno != 0)
5624 {
5625 /* At this point, ESRCH should mean the process is
5626 already gone, in which case we simply ignore attempts
5627 to change its registers. See also the related
5628 comment in linux_resume_one_lwp. */
5629 if (errno == ESRCH)
5630 return;
5631
5632 if ((*the_low_target.cannot_store_register) (regno) == 0)
5633 error ("writing register %d: %s", regno, strerror (errno));
5634 }
5635 regaddr += sizeof (PTRACE_XFER_TYPE);
5636 }
5637 }
5638
5639 /* Fetch all registers, or just one, from the child process.
5640 If REGNO is -1, do this for all registers, skipping any that are
5641 assumed to have been retrieved by regsets_fetch_inferior_registers,
5642 unless ALL is non-zero.
5643 Otherwise, REGNO specifies which register (so we can save time). */
5644 static void
5645 usr_fetch_inferior_registers (const struct regs_info *regs_info,
5646 struct regcache *regcache, int regno, int all)
5647 {
5648 struct usrregs_info *usr = regs_info->usrregs;
5649
5650 if (regno == -1)
5651 {
5652 for (regno = 0; regno < usr->num_regs; regno++)
5653 if (all || !linux_register_in_regsets (regs_info, regno))
5654 fetch_register (usr, regcache, regno);
5655 }
5656 else
5657 fetch_register (usr, regcache, regno);
5658 }
5659
5660 /* Store our register values back into the inferior.
5661 If REGNO is -1, do this for all registers, skipping any that are
5662 assumed to have been saved by regsets_store_inferior_registers,
5663 unless ALL is non-zero.
5664 Otherwise, REGNO specifies which register (so we can save time). */
5665 static void
5666 usr_store_inferior_registers (const struct regs_info *regs_info,
5667 struct regcache *regcache, int regno, int all)
5668 {
5669 struct usrregs_info *usr = regs_info->usrregs;
5670
5671 if (regno == -1)
5672 {
5673 for (regno = 0; regno < usr->num_regs; regno++)
5674 if (all || !linux_register_in_regsets (regs_info, regno))
5675 store_register (usr, regcache, regno);
5676 }
5677 else
5678 store_register (usr, regcache, regno);
5679 }
5680
5681 #else /* !HAVE_LINUX_USRREGS */
5682
5683 #define usr_fetch_inferior_registers(regs_info, regcache, regno, all) do {} while (0)
5684 #define usr_store_inferior_registers(regs_info, regcache, regno, all) do {} while (0)
5685
5686 #endif
5687
5688
5689 static void
5690 linux_fetch_registers (struct regcache *regcache, int regno)
5691 {
5692 int use_regsets;
5693 int all = 0;
5694 const struct regs_info *regs_info = (*the_low_target.regs_info) ();
5695
5696 if (regno == -1)
5697 {
5698 if (the_low_target.fetch_register != NULL
5699 && regs_info->usrregs != NULL)
5700 for (regno = 0; regno < regs_info->usrregs->num_regs; regno++)
5701 (*the_low_target.fetch_register) (regcache, regno);
5702
5703 all = regsets_fetch_inferior_registers (regs_info->regsets_info, regcache);
5704 if (regs_info->usrregs != NULL)
5705 usr_fetch_inferior_registers (regs_info, regcache, -1, all);
5706 }
5707 else
5708 {
5709 if (the_low_target.fetch_register != NULL
5710 && (*the_low_target.fetch_register) (regcache, regno))
5711 return;
5712
5713 use_regsets = linux_register_in_regsets (regs_info, regno);
5714 if (use_regsets)
5715 all = regsets_fetch_inferior_registers (regs_info->regsets_info,
5716 regcache);
5717 if ((!use_regsets || all) && regs_info->usrregs != NULL)
5718 usr_fetch_inferior_registers (regs_info, regcache, regno, 1);
5719 }
5720 }
5721
5722 static void
5723 linux_store_registers (struct regcache *regcache, int regno)
5724 {
5725 int use_regsets;
5726 int all = 0;
5727 const struct regs_info *regs_info = (*the_low_target.regs_info) ();
5728
5729 if (regno == -1)
5730 {
5731 all = regsets_store_inferior_registers (regs_info->regsets_info,
5732 regcache);
5733 if (regs_info->usrregs != NULL)
5734 usr_store_inferior_registers (regs_info, regcache, regno, all);
5735 }
5736 else
5737 {
5738 use_regsets = linux_register_in_regsets (regs_info, regno);
5739 if (use_regsets)
5740 all = regsets_store_inferior_registers (regs_info->regsets_info,
5741 regcache);
5742 if ((!use_regsets || all) && regs_info->usrregs != NULL)
5743 usr_store_inferior_registers (regs_info, regcache, regno, 1);
5744 }
5745 }
5746
5747
5748 /* Copy LEN bytes from inferior's memory starting at MEMADDR
5749 to debugger memory starting at MYADDR. */
5750
5751 static int
5752 linux_read_memory (CORE_ADDR memaddr, unsigned char *myaddr, int len)
5753 {
5754 int pid = lwpid_of (current_thread);
5755 PTRACE_XFER_TYPE *buffer;
5756 CORE_ADDR addr;
5757 int count;
5758 char filename[64];
5759 int i;
5760 int ret;
5761 int fd;
5762
5763 /* Try using /proc. Don't bother for one word. */
5764 if (len >= 3 * sizeof (long))
5765 {
5766 int bytes;
5767
5768 /* We could keep this file open and cache it - possibly one per
5769 thread. That requires some juggling, but is even faster. */
5770 sprintf (filename, "/proc/%d/mem", pid);
5771 fd = open (filename, O_RDONLY | O_LARGEFILE);
5772 if (fd == -1)
5773 goto no_proc;
5774
5775 /* If pread64 is available, use it. It's faster if the kernel
5776 supports it (only one syscall), and it's 64-bit safe even on
5777 32-bit platforms (for instance, SPARC debugging a SPARC64
5778 application). */
5779 #ifdef HAVE_PREAD64
5780 bytes = pread64 (fd, myaddr, len, memaddr);
5781 #else
5782 bytes = -1;
5783 if (lseek (fd, memaddr, SEEK_SET) != -1)
5784 bytes = read (fd, myaddr, len);
5785 #endif
5786
5787 close (fd);
5788 if (bytes == len)
5789 return 0;
5790
5791 /* Some data was read, we'll try to get the rest with ptrace. */
5792 if (bytes > 0)
5793 {
5794 memaddr += bytes;
5795 myaddr += bytes;
5796 len -= bytes;
5797 }
5798 }
5799
5800 no_proc:
5801 /* Round starting address down to longword boundary. */
5802 addr = memaddr & -(CORE_ADDR) sizeof (PTRACE_XFER_TYPE);
5803 /* Round ending address up; get number of longwords that makes. */
5804 count = ((((memaddr + len) - addr) + sizeof (PTRACE_XFER_TYPE) - 1)
5805 / sizeof (PTRACE_XFER_TYPE));
5806 /* Allocate buffer of that many longwords. */
5807 buffer = XALLOCAVEC (PTRACE_XFER_TYPE, count);
5808
5809 /* Read all the longwords */
5810 errno = 0;
5811 for (i = 0; i < count; i++, addr += sizeof (PTRACE_XFER_TYPE))
5812 {
5813 /* Coerce the 3rd arg to a uintptr_t first to avoid potential gcc warning
5814 about coercing an 8 byte integer to a 4 byte pointer. */
5815 buffer[i] = ptrace (PTRACE_PEEKTEXT, pid,
5816 (PTRACE_TYPE_ARG3) (uintptr_t) addr,
5817 (PTRACE_TYPE_ARG4) 0);
5818 if (errno)
5819 break;
5820 }
5821 ret = errno;
5822
5823 /* Copy appropriate bytes out of the buffer. */
5824 if (i > 0)
5825 {
5826 i *= sizeof (PTRACE_XFER_TYPE);
5827 i -= memaddr & (sizeof (PTRACE_XFER_TYPE) - 1);
5828 memcpy (myaddr,
5829 (char *) buffer + (memaddr & (sizeof (PTRACE_XFER_TYPE) - 1)),
5830 i < len ? i : len);
5831 }
5832
5833 return ret;
5834 }
5835
5836 /* Copy LEN bytes of data from debugger memory at MYADDR to inferior's
5837 memory at MEMADDR. On failure (cannot write to the inferior)
5838 returns the value of errno. Always succeeds if LEN is zero. */
5839
5840 static int
5841 linux_write_memory (CORE_ADDR memaddr, const unsigned char *myaddr, int len)
5842 {
5843 int i;
5844 /* Round starting address down to longword boundary. */
5845 CORE_ADDR addr = memaddr & -(CORE_ADDR) sizeof (PTRACE_XFER_TYPE);
5846 /* Round ending address up; get number of longwords that makes. */
5847 int count
5848 = (((memaddr + len) - addr) + sizeof (PTRACE_XFER_TYPE) - 1)
5849 / sizeof (PTRACE_XFER_TYPE);
5850
5851 /* Allocate buffer of that many longwords. */
5852 PTRACE_XFER_TYPE *buffer = XALLOCAVEC (PTRACE_XFER_TYPE, count);
5853
5854 int pid = lwpid_of (current_thread);
5855
5856 if (len == 0)
5857 {
5858 /* Zero length write always succeeds. */
5859 return 0;
5860 }
5861
5862 if (debug_threads)
5863 {
5864 /* Dump up to four bytes. */
5865 char str[4 * 2 + 1];
5866 char *p = str;
5867 int dump = len < 4 ? len : 4;
5868
5869 for (i = 0; i < dump; i++)
5870 {
5871 sprintf (p, "%02x", myaddr[i]);
5872 p += 2;
5873 }
5874 *p = '\0';
5875
5876 debug_printf ("Writing %s to 0x%08lx in process %d\n",
5877 str, (long) memaddr, pid);
5878 }
5879
5880 /* Fill start and end extra bytes of buffer with existing memory data. */
5881
5882 errno = 0;
5883 /* Coerce the 3rd arg to a uintptr_t first to avoid potential gcc warning
5884 about coercing an 8 byte integer to a 4 byte pointer. */
5885 buffer[0] = ptrace (PTRACE_PEEKTEXT, pid,
5886 (PTRACE_TYPE_ARG3) (uintptr_t) addr,
5887 (PTRACE_TYPE_ARG4) 0);
5888 if (errno)
5889 return errno;
5890
5891 if (count > 1)
5892 {
5893 errno = 0;
5894 buffer[count - 1]
5895 = ptrace (PTRACE_PEEKTEXT, pid,
5896 /* Coerce to a uintptr_t first to avoid potential gcc warning
5897 about coercing an 8 byte integer to a 4 byte pointer. */
5898 (PTRACE_TYPE_ARG3) (uintptr_t) (addr + (count - 1)
5899 * sizeof (PTRACE_XFER_TYPE)),
5900 (PTRACE_TYPE_ARG4) 0);
5901 if (errno)
5902 return errno;
5903 }
5904
5905 /* Copy data to be written over corresponding part of buffer. */
5906
5907 memcpy ((char *) buffer + (memaddr & (sizeof (PTRACE_XFER_TYPE) - 1)),
5908 myaddr, len);
5909
5910 /* Write the entire buffer. */
5911
5912 for (i = 0; i < count; i++, addr += sizeof (PTRACE_XFER_TYPE))
5913 {
5914 errno = 0;
5915 ptrace (PTRACE_POKETEXT, pid,
5916 /* Coerce to a uintptr_t first to avoid potential gcc warning
5917 about coercing an 8 byte integer to a 4 byte pointer. */
5918 (PTRACE_TYPE_ARG3) (uintptr_t) addr,
5919 (PTRACE_TYPE_ARG4) buffer[i]);
5920 if (errno)
5921 return errno;
5922 }
5923
5924 return 0;
5925 }
5926
5927 static void
5928 linux_look_up_symbols (void)
5929 {
5930 #ifdef USE_THREAD_DB
5931 struct process_info *proc = current_process ();
5932
5933 if (proc->priv->thread_db != NULL)
5934 return;
5935
5936 thread_db_init ();
5937 #endif
5938 }
5939
5940 static void
5941 linux_request_interrupt (void)
5942 {
5943 /* Send a SIGINT to the process group. This acts just like the user
5944 typed a ^C on the controlling terminal. */
5945 kill (-signal_pid, SIGINT);
5946 }
5947
5948 /* Copy LEN bytes from inferior's auxiliary vector starting at OFFSET
5949 to debugger memory starting at MYADDR. */
5950
5951 static int
5952 linux_read_auxv (CORE_ADDR offset, unsigned char *myaddr, unsigned int len)
5953 {
5954 char filename[PATH_MAX];
5955 int fd, n;
5956 int pid = lwpid_of (current_thread);
5957
5958 xsnprintf (filename, sizeof filename, "/proc/%d/auxv", pid);
5959
5960 fd = open (filename, O_RDONLY);
5961 if (fd < 0)
5962 return -1;
5963
5964 if (offset != (CORE_ADDR) 0
5965 && lseek (fd, (off_t) offset, SEEK_SET) != (off_t) offset)
5966 n = -1;
5967 else
5968 n = read (fd, myaddr, len);
5969
5970 close (fd);
5971
5972 return n;
5973 }
5974
5975 /* These breakpoint and watchpoint related wrapper functions simply
5976 pass on the function call if the target has registered a
5977 corresponding function. */
5978
5979 static int
5980 linux_supports_z_point_type (char z_type)
5981 {
5982 return (the_low_target.supports_z_point_type != NULL
5983 && the_low_target.supports_z_point_type (z_type));
5984 }
5985
5986 static int
5987 linux_insert_point (enum raw_bkpt_type type, CORE_ADDR addr,
5988 int size, struct raw_breakpoint *bp)
5989 {
5990 if (type == raw_bkpt_type_sw)
5991 return insert_memory_breakpoint (bp);
5992 else if (the_low_target.insert_point != NULL)
5993 return the_low_target.insert_point (type, addr, size, bp);
5994 else
5995 /* Unsupported (see target.h). */
5996 return 1;
5997 }
5998
5999 static int
6000 linux_remove_point (enum raw_bkpt_type type, CORE_ADDR addr,
6001 int size, struct raw_breakpoint *bp)
6002 {
6003 if (type == raw_bkpt_type_sw)
6004 return remove_memory_breakpoint (bp);
6005 else if (the_low_target.remove_point != NULL)
6006 return the_low_target.remove_point (type, addr, size, bp);
6007 else
6008 /* Unsupported (see target.h). */
6009 return 1;
6010 }
6011
6012 /* Implement the to_stopped_by_sw_breakpoint target_ops
6013 method. */
6014
6015 static int
6016 linux_stopped_by_sw_breakpoint (void)
6017 {
6018 struct lwp_info *lwp = get_thread_lwp (current_thread);
6019
6020 return (lwp->stop_reason == TARGET_STOPPED_BY_SW_BREAKPOINT);
6021 }
6022
6023 /* Implement the to_supports_stopped_by_sw_breakpoint target_ops
6024 method. */
6025
6026 static int
6027 linux_supports_stopped_by_sw_breakpoint (void)
6028 {
6029 return USE_SIGTRAP_SIGINFO;
6030 }
6031
6032 /* Implement the to_stopped_by_hw_breakpoint target_ops
6033 method. */
6034
6035 static int
6036 linux_stopped_by_hw_breakpoint (void)
6037 {
6038 struct lwp_info *lwp = get_thread_lwp (current_thread);
6039
6040 return (lwp->stop_reason == TARGET_STOPPED_BY_HW_BREAKPOINT);
6041 }
6042
6043 /* Implement the to_supports_stopped_by_hw_breakpoint target_ops
6044 method. */
6045
6046 static int
6047 linux_supports_stopped_by_hw_breakpoint (void)
6048 {
6049 return USE_SIGTRAP_SIGINFO;
6050 }
6051
6052 /* Implement the supports_hardware_single_step target_ops method. */
6053
6054 static int
6055 linux_supports_hardware_single_step (void)
6056 {
6057 return can_hardware_single_step ();
6058 }
6059
6060 static int
6061 linux_supports_software_single_step (void)
6062 {
6063 return can_software_single_step ();
6064 }
6065
6066 static int
6067 linux_stopped_by_watchpoint (void)
6068 {
6069 struct lwp_info *lwp = get_thread_lwp (current_thread);
6070
6071 return lwp->stop_reason == TARGET_STOPPED_BY_WATCHPOINT;
6072 }
6073
6074 static CORE_ADDR
6075 linux_stopped_data_address (void)
6076 {
6077 struct lwp_info *lwp = get_thread_lwp (current_thread);
6078
6079 return lwp->stopped_data_address;
6080 }
6081
6082 #if defined(__UCLIBC__) && defined(HAS_NOMMU) \
6083 && defined(PT_TEXT_ADDR) && defined(PT_DATA_ADDR) \
6084 && defined(PT_TEXT_END_ADDR)
6085
6086 /* This is only used for targets that define PT_TEXT_ADDR,
6087 PT_DATA_ADDR and PT_TEXT_END_ADDR. If those are not defined, supposedly
6088 the target has different ways of acquiring this information, like
6089 loadmaps. */
6090
6091 /* Under uClinux, programs are loaded at non-zero offsets, which we need
6092 to tell gdb about. */
6093
6094 static int
6095 linux_read_offsets (CORE_ADDR *text_p, CORE_ADDR *data_p)
6096 {
6097 unsigned long text, text_end, data;
6098 int pid = lwpid_of (current_thread);
6099
6100 errno = 0;
6101
6102 text = ptrace (PTRACE_PEEKUSER, pid, (PTRACE_TYPE_ARG3) PT_TEXT_ADDR,
6103 (PTRACE_TYPE_ARG4) 0);
6104 text_end = ptrace (PTRACE_PEEKUSER, pid, (PTRACE_TYPE_ARG3) PT_TEXT_END_ADDR,
6105 (PTRACE_TYPE_ARG4) 0);
6106 data = ptrace (PTRACE_PEEKUSER, pid, (PTRACE_TYPE_ARG3) PT_DATA_ADDR,
6107 (PTRACE_TYPE_ARG4) 0);
6108
6109 if (errno == 0)
6110 {
6111 /* Both text and data offsets produced at compile-time (and so
6112 used by gdb) are relative to the beginning of the program,
6113 with the data segment immediately following the text segment.
6114 However, the actual runtime layout in memory may put the data
6115 somewhere else, so when we send gdb a data base-address, we
6116 use the real data base address and subtract the compile-time
6117 data base-address from it (which is just the length of the
6118 text segment). BSS immediately follows data in both
6119 cases. */
6120 *text_p = text;
6121 *data_p = data - (text_end - text);
6122
6123 return 1;
6124 }
6125 return 0;
6126 }
6127 #endif
6128
6129 static int
6130 linux_qxfer_osdata (const char *annex,
6131 unsigned char *readbuf, unsigned const char *writebuf,
6132 CORE_ADDR offset, int len)
6133 {
6134 return linux_common_xfer_osdata (annex, readbuf, offset, len);
6135 }
6136
6137 /* Convert a native/host siginfo object, into/from the siginfo in the
6138 layout of the inferiors' architecture. */
6139
6140 static void
6141 siginfo_fixup (siginfo_t *siginfo, gdb_byte *inf_siginfo, int direction)
6142 {
6143 int done = 0;
6144
6145 if (the_low_target.siginfo_fixup != NULL)
6146 done = the_low_target.siginfo_fixup (siginfo, inf_siginfo, direction);
6147
6148 /* If there was no callback, or the callback didn't do anything,
6149 then just do a straight memcpy. */
6150 if (!done)
6151 {
6152 if (direction == 1)
6153 memcpy (siginfo, inf_siginfo, sizeof (siginfo_t));
6154 else
6155 memcpy (inf_siginfo, siginfo, sizeof (siginfo_t));
6156 }
6157 }
6158
6159 static int
6160 linux_xfer_siginfo (const char *annex, unsigned char *readbuf,
6161 unsigned const char *writebuf, CORE_ADDR offset, int len)
6162 {
6163 int pid;
6164 siginfo_t siginfo;
6165 gdb_byte inf_siginfo[sizeof (siginfo_t)];
6166
6167 if (current_thread == NULL)
6168 return -1;
6169
6170 pid = lwpid_of (current_thread);
6171
6172 if (debug_threads)
6173 debug_printf ("%s siginfo for lwp %d.\n",
6174 readbuf != NULL ? "Reading" : "Writing",
6175 pid);
6176
6177 if (offset >= sizeof (siginfo))
6178 return -1;
6179
6180 if (ptrace (PTRACE_GETSIGINFO, pid, (PTRACE_TYPE_ARG3) 0, &siginfo) != 0)
6181 return -1;
6182
6183 /* When GDBSERVER is built as a 64-bit application, ptrace writes into
6184 SIGINFO an object with 64-bit layout. Since debugging a 32-bit
6185 inferior with a 64-bit GDBSERVER should look the same as debugging it
6186 with a 32-bit GDBSERVER, we need to convert it. */
6187 siginfo_fixup (&siginfo, inf_siginfo, 0);
6188
6189 if (offset + len > sizeof (siginfo))
6190 len = sizeof (siginfo) - offset;
6191
6192 if (readbuf != NULL)
6193 memcpy (readbuf, inf_siginfo + offset, len);
6194 else
6195 {
6196 memcpy (inf_siginfo + offset, writebuf, len);
6197
6198 /* Convert back to ptrace layout before flushing it out. */
6199 siginfo_fixup (&siginfo, inf_siginfo, 1);
6200
6201 if (ptrace (PTRACE_SETSIGINFO, pid, (PTRACE_TYPE_ARG3) 0, &siginfo) != 0)
6202 return -1;
6203 }
6204
6205 return len;
6206 }
6207
6208 /* SIGCHLD handler that serves two purposes: In non-stop/async mode,
6209 so we notice when children change state; as the handler for the
6210 sigsuspend in my_waitpid. */
6211
6212 static void
6213 sigchld_handler (int signo)
6214 {
6215 int old_errno = errno;
6216
6217 if (debug_threads)
6218 {
6219 do
6220 {
6221 /* fprintf is not async-signal-safe, so call write
6222 directly. */
6223 if (write (2, "sigchld_handler\n",
6224 sizeof ("sigchld_handler\n") - 1) < 0)
6225 break; /* just ignore */
6226 } while (0);
6227 }
6228
6229 if (target_is_async_p ())
6230 async_file_mark (); /* trigger a linux_wait */
6231
6232 errno = old_errno;
6233 }
6234
6235 static int
6236 linux_supports_non_stop (void)
6237 {
6238 return 1;
6239 }
6240
6241 static int
6242 linux_async (int enable)
6243 {
6244 int previous = target_is_async_p ();
6245
6246 if (debug_threads)
6247 debug_printf ("linux_async (%d), previous=%d\n",
6248 enable, previous);
6249
6250 if (previous != enable)
6251 {
6252 sigset_t mask;
6253 sigemptyset (&mask);
6254 sigaddset (&mask, SIGCHLD);
6255
6256 sigprocmask (SIG_BLOCK, &mask, NULL);
6257
6258 if (enable)
6259 {
6260 if (pipe (linux_event_pipe) == -1)
6261 {
6262 linux_event_pipe[0] = -1;
6263 linux_event_pipe[1] = -1;
6264 sigprocmask (SIG_UNBLOCK, &mask, NULL);
6265
6266 warning ("creating event pipe failed.");
6267 return previous;
6268 }
6269
6270 fcntl (linux_event_pipe[0], F_SETFL, O_NONBLOCK);
6271 fcntl (linux_event_pipe[1], F_SETFL, O_NONBLOCK);
6272
6273 /* Register the event loop handler. */
6274 add_file_handler (linux_event_pipe[0],
6275 handle_target_event, NULL);
6276
6277 /* Always trigger a linux_wait. */
6278 async_file_mark ();
6279 }
6280 else
6281 {
6282 delete_file_handler (linux_event_pipe[0]);
6283
6284 close (linux_event_pipe[0]);
6285 close (linux_event_pipe[1]);
6286 linux_event_pipe[0] = -1;
6287 linux_event_pipe[1] = -1;
6288 }
6289
6290 sigprocmask (SIG_UNBLOCK, &mask, NULL);
6291 }
6292
6293 return previous;
6294 }
6295
6296 static int
6297 linux_start_non_stop (int nonstop)
6298 {
6299 /* Register or unregister from event-loop accordingly. */
6300 linux_async (nonstop);
6301
6302 if (target_is_async_p () != (nonstop != 0))
6303 return -1;
6304
6305 return 0;
6306 }
6307
6308 static int
6309 linux_supports_multi_process (void)
6310 {
6311 return 1;
6312 }
6313
6314 /* Check if fork events are supported. */
6315
6316 static int
6317 linux_supports_fork_events (void)
6318 {
6319 return linux_supports_tracefork ();
6320 }
6321
6322 /* Check if vfork events are supported. */
6323
6324 static int
6325 linux_supports_vfork_events (void)
6326 {
6327 return linux_supports_tracefork ();
6328 }
6329
6330 /* Check if exec events are supported. */
6331
6332 static int
6333 linux_supports_exec_events (void)
6334 {
6335 return linux_supports_traceexec ();
6336 }
6337
6338 /* Target hook for 'handle_new_gdb_connection'. Causes a reset of the
6339 ptrace flags for all inferiors. This is in case the new GDB connection
6340 doesn't support the same set of events that the previous one did. */
6341
6342 static void
6343 linux_handle_new_gdb_connection (void)
6344 {
6345 /* Request that all the lwps reset their ptrace options. */
6346 for_each_thread ([] (thread_info *thread)
6347 {
6348 struct lwp_info *lwp = get_thread_lwp (thread);
6349
6350 if (!lwp->stopped)
6351 {
6352 /* Stop the lwp so we can modify its ptrace options. */
6353 lwp->must_set_ptrace_flags = 1;
6354 linux_stop_lwp (lwp);
6355 }
6356 else
6357 {
6358 /* Already stopped; go ahead and set the ptrace options. */
6359 struct process_info *proc = find_process_pid (pid_of (thread));
6360 int options = linux_low_ptrace_options (proc->attached);
6361
6362 linux_enable_event_reporting (lwpid_of (thread), options);
6363 lwp->must_set_ptrace_flags = 0;
6364 }
6365 });
6366 }
6367
6368 static int
6369 linux_supports_disable_randomization (void)
6370 {
6371 #ifdef HAVE_PERSONALITY
6372 return 1;
6373 #else
6374 return 0;
6375 #endif
6376 }
6377
6378 static int
6379 linux_supports_agent (void)
6380 {
6381 return 1;
6382 }
6383
6384 static int
6385 linux_supports_range_stepping (void)
6386 {
6387 if (can_software_single_step ())
6388 return 1;
6389 if (*the_low_target.supports_range_stepping == NULL)
6390 return 0;
6391
6392 return (*the_low_target.supports_range_stepping) ();
6393 }
6394
6395 /* Enumerate spufs IDs for process PID. */
6396 static int
6397 spu_enumerate_spu_ids (long pid, unsigned char *buf, CORE_ADDR offset, int len)
6398 {
6399 int pos = 0;
6400 int written = 0;
6401 char path[128];
6402 DIR *dir;
6403 struct dirent *entry;
6404
6405 sprintf (path, "/proc/%ld/fd", pid);
6406 dir = opendir (path);
6407 if (!dir)
6408 return -1;
6409
6410 rewinddir (dir);
6411 while ((entry = readdir (dir)) != NULL)
6412 {
6413 struct stat st;
6414 struct statfs stfs;
6415 int fd;
6416
6417 fd = atoi (entry->d_name);
6418 if (!fd)
6419 continue;
6420
6421 sprintf (path, "/proc/%ld/fd/%d", pid, fd);
6422 if (stat (path, &st) != 0)
6423 continue;
6424 if (!S_ISDIR (st.st_mode))
6425 continue;
6426
6427 if (statfs (path, &stfs) != 0)
6428 continue;
6429 if (stfs.f_type != SPUFS_MAGIC)
6430 continue;
6431
6432 if (pos >= offset && pos + 4 <= offset + len)
6433 {
6434 *(unsigned int *)(buf + pos - offset) = fd;
6435 written += 4;
6436 }
6437 pos += 4;
6438 }
6439
6440 closedir (dir);
6441 return written;
6442 }
6443
6444 /* Implements the to_xfer_partial interface for the TARGET_OBJECT_SPU
6445 object type, using the /proc file system. */
6446 static int
6447 linux_qxfer_spu (const char *annex, unsigned char *readbuf,
6448 unsigned const char *writebuf,
6449 CORE_ADDR offset, int len)
6450 {
6451 long pid = lwpid_of (current_thread);
6452 char buf[128];
6453 int fd = 0;
6454 int ret = 0;
6455
6456 if (!writebuf && !readbuf)
6457 return -1;
6458
6459 if (!*annex)
6460 {
6461 if (!readbuf)
6462 return -1;
6463 else
6464 return spu_enumerate_spu_ids (pid, readbuf, offset, len);
6465 }
6466
6467 sprintf (buf, "/proc/%ld/fd/%s", pid, annex);
6468 fd = open (buf, writebuf? O_WRONLY : O_RDONLY);
6469 if (fd <= 0)
6470 return -1;
6471
6472 if (offset != 0
6473 && lseek (fd, (off_t) offset, SEEK_SET) != (off_t) offset)
6474 {
6475 close (fd);
6476 return 0;
6477 }
6478
6479 if (writebuf)
6480 ret = write (fd, writebuf, (size_t) len);
6481 else
6482 ret = read (fd, readbuf, (size_t) len);
6483
6484 close (fd);
6485 return ret;
6486 }
6487
6488 #if defined PT_GETDSBT || defined PTRACE_GETFDPIC
6489 struct target_loadseg
6490 {
6491 /* Core address to which the segment is mapped. */
6492 Elf32_Addr addr;
6493 /* VMA recorded in the program header. */
6494 Elf32_Addr p_vaddr;
6495 /* Size of this segment in memory. */
6496 Elf32_Word p_memsz;
6497 };
6498
6499 # if defined PT_GETDSBT
6500 struct target_loadmap
6501 {
6502 /* Protocol version number, must be zero. */
6503 Elf32_Word version;
6504 /* Pointer to the DSBT table, its size, and the DSBT index. */
6505 unsigned *dsbt_table;
6506 unsigned dsbt_size, dsbt_index;
6507 /* Number of segments in this map. */
6508 Elf32_Word nsegs;
6509 /* The actual memory map. */
6510 struct target_loadseg segs[/*nsegs*/];
6511 };
6512 # define LINUX_LOADMAP PT_GETDSBT
6513 # define LINUX_LOADMAP_EXEC PTRACE_GETDSBT_EXEC
6514 # define LINUX_LOADMAP_INTERP PTRACE_GETDSBT_INTERP
6515 # else
6516 struct target_loadmap
6517 {
6518 /* Protocol version number, must be zero. */
6519 Elf32_Half version;
6520 /* Number of segments in this map. */
6521 Elf32_Half nsegs;
6522 /* The actual memory map. */
6523 struct target_loadseg segs[/*nsegs*/];
6524 };
6525 # define LINUX_LOADMAP PTRACE_GETFDPIC
6526 # define LINUX_LOADMAP_EXEC PTRACE_GETFDPIC_EXEC
6527 # define LINUX_LOADMAP_INTERP PTRACE_GETFDPIC_INTERP
6528 # endif
6529
6530 static int
6531 linux_read_loadmap (const char *annex, CORE_ADDR offset,
6532 unsigned char *myaddr, unsigned int len)
6533 {
6534 int pid = lwpid_of (current_thread);
6535 int addr = -1;
6536 struct target_loadmap *data = NULL;
6537 unsigned int actual_length, copy_length;
6538
6539 if (strcmp (annex, "exec") == 0)
6540 addr = (int) LINUX_LOADMAP_EXEC;
6541 else if (strcmp (annex, "interp") == 0)
6542 addr = (int) LINUX_LOADMAP_INTERP;
6543 else
6544 return -1;
6545
6546 if (ptrace (LINUX_LOADMAP, pid, addr, &data) != 0)
6547 return -1;
6548
6549 if (data == NULL)
6550 return -1;
6551
6552 actual_length = sizeof (struct target_loadmap)
6553 + sizeof (struct target_loadseg) * data->nsegs;
6554
6555 if (offset < 0 || offset > actual_length)
6556 return -1;
6557
6558 copy_length = actual_length - offset < len ? actual_length - offset : len;
6559 memcpy (myaddr, (char *) data + offset, copy_length);
6560 return copy_length;
6561 }
6562 #else
6563 # define linux_read_loadmap NULL
6564 #endif /* defined PT_GETDSBT || defined PTRACE_GETFDPIC */
6565
6566 static void
6567 linux_process_qsupported (char **features, int count)
6568 {
6569 if (the_low_target.process_qsupported != NULL)
6570 the_low_target.process_qsupported (features, count);
6571 }
6572
6573 static int
6574 linux_supports_catch_syscall (void)
6575 {
6576 return (the_low_target.get_syscall_trapinfo != NULL
6577 && linux_supports_tracesysgood ());
6578 }
6579
6580 static int
6581 linux_get_ipa_tdesc_idx (void)
6582 {
6583 if (the_low_target.get_ipa_tdesc_idx == NULL)
6584 return 0;
6585
6586 return (*the_low_target.get_ipa_tdesc_idx) ();
6587 }
6588
6589 static int
6590 linux_supports_tracepoints (void)
6591 {
6592 if (*the_low_target.supports_tracepoints == NULL)
6593 return 0;
6594
6595 return (*the_low_target.supports_tracepoints) ();
6596 }
6597
6598 static CORE_ADDR
6599 linux_read_pc (struct regcache *regcache)
6600 {
6601 if (the_low_target.get_pc == NULL)
6602 return 0;
6603
6604 return (*the_low_target.get_pc) (regcache);
6605 }
6606
6607 static void
6608 linux_write_pc (struct regcache *regcache, CORE_ADDR pc)
6609 {
6610 gdb_assert (the_low_target.set_pc != NULL);
6611
6612 (*the_low_target.set_pc) (regcache, pc);
6613 }
6614
6615 static int
6616 linux_thread_stopped (struct thread_info *thread)
6617 {
6618 return get_thread_lwp (thread)->stopped;
6619 }
6620
6621 /* This exposes stop-all-threads functionality to other modules. */
6622
6623 static void
6624 linux_pause_all (int freeze)
6625 {
6626 stop_all_lwps (freeze, NULL);
6627 }
6628
6629 /* This exposes unstop-all-threads functionality to other gdbserver
6630 modules. */
6631
6632 static void
6633 linux_unpause_all (int unfreeze)
6634 {
6635 unstop_all_lwps (unfreeze, NULL);
6636 }
6637
6638 static int
6639 linux_prepare_to_access_memory (void)
6640 {
6641 /* Neither ptrace nor /proc/PID/mem allow accessing memory through a
6642 running LWP. */
6643 if (non_stop)
6644 linux_pause_all (1);
6645 return 0;
6646 }
6647
6648 static void
6649 linux_done_accessing_memory (void)
6650 {
6651 /* Neither ptrace nor /proc/PID/mem allow accessing memory through a
6652 running LWP. */
6653 if (non_stop)
6654 linux_unpause_all (1);
6655 }
6656
6657 static int
6658 linux_install_fast_tracepoint_jump_pad (CORE_ADDR tpoint, CORE_ADDR tpaddr,
6659 CORE_ADDR collector,
6660 CORE_ADDR lockaddr,
6661 ULONGEST orig_size,
6662 CORE_ADDR *jump_entry,
6663 CORE_ADDR *trampoline,
6664 ULONGEST *trampoline_size,
6665 unsigned char *jjump_pad_insn,
6666 ULONGEST *jjump_pad_insn_size,
6667 CORE_ADDR *adjusted_insn_addr,
6668 CORE_ADDR *adjusted_insn_addr_end,
6669 char *err)
6670 {
6671 return (*the_low_target.install_fast_tracepoint_jump_pad)
6672 (tpoint, tpaddr, collector, lockaddr, orig_size,
6673 jump_entry, trampoline, trampoline_size,
6674 jjump_pad_insn, jjump_pad_insn_size,
6675 adjusted_insn_addr, adjusted_insn_addr_end,
6676 err);
6677 }
6678
6679 static struct emit_ops *
6680 linux_emit_ops (void)
6681 {
6682 if (the_low_target.emit_ops != NULL)
6683 return (*the_low_target.emit_ops) ();
6684 else
6685 return NULL;
6686 }
6687
6688 static int
6689 linux_get_min_fast_tracepoint_insn_len (void)
6690 {
6691 return (*the_low_target.get_min_fast_tracepoint_insn_len) ();
6692 }
6693
6694 /* Extract &phdr and num_phdr in the inferior. Return 0 on success. */
6695
6696 static int
6697 get_phdr_phnum_from_proc_auxv (const int pid, const int is_elf64,
6698 CORE_ADDR *phdr_memaddr, int *num_phdr)
6699 {
6700 char filename[PATH_MAX];
6701 int fd;
6702 const int auxv_size = is_elf64
6703 ? sizeof (Elf64_auxv_t) : sizeof (Elf32_auxv_t);
6704 char buf[sizeof (Elf64_auxv_t)]; /* The larger of the two. */
6705
6706 xsnprintf (filename, sizeof filename, "/proc/%d/auxv", pid);
6707
6708 fd = open (filename, O_RDONLY);
6709 if (fd < 0)
6710 return 1;
6711
6712 *phdr_memaddr = 0;
6713 *num_phdr = 0;
6714 while (read (fd, buf, auxv_size) == auxv_size
6715 && (*phdr_memaddr == 0 || *num_phdr == 0))
6716 {
6717 if (is_elf64)
6718 {
6719 Elf64_auxv_t *const aux = (Elf64_auxv_t *) buf;
6720
6721 switch (aux->a_type)
6722 {
6723 case AT_PHDR:
6724 *phdr_memaddr = aux->a_un.a_val;
6725 break;
6726 case AT_PHNUM:
6727 *num_phdr = aux->a_un.a_val;
6728 break;
6729 }
6730 }
6731 else
6732 {
6733 Elf32_auxv_t *const aux = (Elf32_auxv_t *) buf;
6734
6735 switch (aux->a_type)
6736 {
6737 case AT_PHDR:
6738 *phdr_memaddr = aux->a_un.a_val;
6739 break;
6740 case AT_PHNUM:
6741 *num_phdr = aux->a_un.a_val;
6742 break;
6743 }
6744 }
6745 }
6746
6747 close (fd);
6748
6749 if (*phdr_memaddr == 0 || *num_phdr == 0)
6750 {
6751 warning ("Unexpected missing AT_PHDR and/or AT_PHNUM: "
6752 "phdr_memaddr = %ld, phdr_num = %d",
6753 (long) *phdr_memaddr, *num_phdr);
6754 return 2;
6755 }
6756
6757 return 0;
6758 }
6759
6760 /* Return &_DYNAMIC (via PT_DYNAMIC) in the inferior, or 0 if not present. */
6761
6762 static CORE_ADDR
6763 get_dynamic (const int pid, const int is_elf64)
6764 {
6765 CORE_ADDR phdr_memaddr, relocation;
6766 int num_phdr, i;
6767 unsigned char *phdr_buf;
6768 const int phdr_size = is_elf64 ? sizeof (Elf64_Phdr) : sizeof (Elf32_Phdr);
6769
6770 if (get_phdr_phnum_from_proc_auxv (pid, is_elf64, &phdr_memaddr, &num_phdr))
6771 return 0;
6772
6773 gdb_assert (num_phdr < 100); /* Basic sanity check. */
6774 phdr_buf = (unsigned char *) alloca (num_phdr * phdr_size);
6775
6776 if (linux_read_memory (phdr_memaddr, phdr_buf, num_phdr * phdr_size))
6777 return 0;
6778
6779 /* Compute relocation: it is expected to be 0 for "regular" executables,
6780 non-zero for PIE ones. */
6781 relocation = -1;
6782 for (i = 0; relocation == -1 && i < num_phdr; i++)
6783 if (is_elf64)
6784 {
6785 Elf64_Phdr *const p = (Elf64_Phdr *) (phdr_buf + i * phdr_size);
6786
6787 if (p->p_type == PT_PHDR)
6788 relocation = phdr_memaddr - p->p_vaddr;
6789 }
6790 else
6791 {
6792 Elf32_Phdr *const p = (Elf32_Phdr *) (phdr_buf + i * phdr_size);
6793
6794 if (p->p_type == PT_PHDR)
6795 relocation = phdr_memaddr - p->p_vaddr;
6796 }
6797
6798 if (relocation == -1)
6799 {
6800 /* PT_PHDR is optional, but necessary for PIE in general. Fortunately
6801 any real world executables, including PIE executables, have always
6802 PT_PHDR present. PT_PHDR is not present in some shared libraries or
6803 in fpc (Free Pascal 2.4) binaries but neither of those have a need for
6804 or present DT_DEBUG anyway (fpc binaries are statically linked).
6805
6806 Therefore if there exists DT_DEBUG there is always also PT_PHDR.
6807
6808 GDB could find RELOCATION also from AT_ENTRY - e_entry. */
6809
6810 return 0;
6811 }
6812
6813 for (i = 0; i < num_phdr; i++)
6814 {
6815 if (is_elf64)
6816 {
6817 Elf64_Phdr *const p = (Elf64_Phdr *) (phdr_buf + i * phdr_size);
6818
6819 if (p->p_type == PT_DYNAMIC)
6820 return p->p_vaddr + relocation;
6821 }
6822 else
6823 {
6824 Elf32_Phdr *const p = (Elf32_Phdr *) (phdr_buf + i * phdr_size);
6825
6826 if (p->p_type == PT_DYNAMIC)
6827 return p->p_vaddr + relocation;
6828 }
6829 }
6830
6831 return 0;
6832 }
6833
6834 /* Return &_r_debug in the inferior, or -1 if not present. Return value
6835 can be 0 if the inferior does not yet have the library list initialized.
6836 We look for DT_MIPS_RLD_MAP first. MIPS executables use this instead of
6837 DT_DEBUG, although they sometimes contain an unused DT_DEBUG entry too. */
6838
6839 static CORE_ADDR
6840 get_r_debug (const int pid, const int is_elf64)
6841 {
6842 CORE_ADDR dynamic_memaddr;
6843 const int dyn_size = is_elf64 ? sizeof (Elf64_Dyn) : sizeof (Elf32_Dyn);
6844 unsigned char buf[sizeof (Elf64_Dyn)]; /* The larger of the two. */
6845 CORE_ADDR map = -1;
6846
6847 dynamic_memaddr = get_dynamic (pid, is_elf64);
6848 if (dynamic_memaddr == 0)
6849 return map;
6850
6851 while (linux_read_memory (dynamic_memaddr, buf, dyn_size) == 0)
6852 {
6853 if (is_elf64)
6854 {
6855 Elf64_Dyn *const dyn = (Elf64_Dyn *) buf;
6856 #if defined DT_MIPS_RLD_MAP || defined DT_MIPS_RLD_MAP_REL
6857 union
6858 {
6859 Elf64_Xword map;
6860 unsigned char buf[sizeof (Elf64_Xword)];
6861 }
6862 rld_map;
6863 #endif
6864 #ifdef DT_MIPS_RLD_MAP
6865 if (dyn->d_tag == DT_MIPS_RLD_MAP)
6866 {
6867 if (linux_read_memory (dyn->d_un.d_val,
6868 rld_map.buf, sizeof (rld_map.buf)) == 0)
6869 return rld_map.map;
6870 else
6871 break;
6872 }
6873 #endif /* DT_MIPS_RLD_MAP */
6874 #ifdef DT_MIPS_RLD_MAP_REL
6875 if (dyn->d_tag == DT_MIPS_RLD_MAP_REL)
6876 {
6877 if (linux_read_memory (dyn->d_un.d_val + dynamic_memaddr,
6878 rld_map.buf, sizeof (rld_map.buf)) == 0)
6879 return rld_map.map;
6880 else
6881 break;
6882 }
6883 #endif /* DT_MIPS_RLD_MAP_REL */
6884
6885 if (dyn->d_tag == DT_DEBUG && map == -1)
6886 map = dyn->d_un.d_val;
6887
6888 if (dyn->d_tag == DT_NULL)
6889 break;
6890 }
6891 else
6892 {
6893 Elf32_Dyn *const dyn = (Elf32_Dyn *) buf;
6894 #if defined DT_MIPS_RLD_MAP || defined DT_MIPS_RLD_MAP_REL
6895 union
6896 {
6897 Elf32_Word map;
6898 unsigned char buf[sizeof (Elf32_Word)];
6899 }
6900 rld_map;
6901 #endif
6902 #ifdef DT_MIPS_RLD_MAP
6903 if (dyn->d_tag == DT_MIPS_RLD_MAP)
6904 {
6905 if (linux_read_memory (dyn->d_un.d_val,
6906 rld_map.buf, sizeof (rld_map.buf)) == 0)
6907 return rld_map.map;
6908 else
6909 break;
6910 }
6911 #endif /* DT_MIPS_RLD_MAP */
6912 #ifdef DT_MIPS_RLD_MAP_REL
6913 if (dyn->d_tag == DT_MIPS_RLD_MAP_REL)
6914 {
6915 if (linux_read_memory (dyn->d_un.d_val + dynamic_memaddr,
6916 rld_map.buf, sizeof (rld_map.buf)) == 0)
6917 return rld_map.map;
6918 else
6919 break;
6920 }
6921 #endif /* DT_MIPS_RLD_MAP_REL */
6922
6923 if (dyn->d_tag == DT_DEBUG && map == -1)
6924 map = dyn->d_un.d_val;
6925
6926 if (dyn->d_tag == DT_NULL)
6927 break;
6928 }
6929
6930 dynamic_memaddr += dyn_size;
6931 }
6932
6933 return map;
6934 }
6935
6936 /* Read one pointer from MEMADDR in the inferior. */
6937
6938 static int
6939 read_one_ptr (CORE_ADDR memaddr, CORE_ADDR *ptr, int ptr_size)
6940 {
6941 int ret;
6942
6943 /* Go through a union so this works on either big or little endian
6944 hosts, when the inferior's pointer size is smaller than the size
6945 of CORE_ADDR. It is assumed the inferior's endianness is the
6946 same of the superior's. */
6947 union
6948 {
6949 CORE_ADDR core_addr;
6950 unsigned int ui;
6951 unsigned char uc;
6952 } addr;
6953
6954 ret = linux_read_memory (memaddr, &addr.uc, ptr_size);
6955 if (ret == 0)
6956 {
6957 if (ptr_size == sizeof (CORE_ADDR))
6958 *ptr = addr.core_addr;
6959 else if (ptr_size == sizeof (unsigned int))
6960 *ptr = addr.ui;
6961 else
6962 gdb_assert_not_reached ("unhandled pointer size");
6963 }
6964 return ret;
6965 }
6966
6967 struct link_map_offsets
6968 {
6969 /* Offset and size of r_debug.r_version. */
6970 int r_version_offset;
6971
6972 /* Offset and size of r_debug.r_map. */
6973 int r_map_offset;
6974
6975 /* Offset to l_addr field in struct link_map. */
6976 int l_addr_offset;
6977
6978 /* Offset to l_name field in struct link_map. */
6979 int l_name_offset;
6980
6981 /* Offset to l_ld field in struct link_map. */
6982 int l_ld_offset;
6983
6984 /* Offset to l_next field in struct link_map. */
6985 int l_next_offset;
6986
6987 /* Offset to l_prev field in struct link_map. */
6988 int l_prev_offset;
6989 };
6990
6991 /* Construct qXfer:libraries-svr4:read reply. */
6992
6993 static int
6994 linux_qxfer_libraries_svr4 (const char *annex, unsigned char *readbuf,
6995 unsigned const char *writebuf,
6996 CORE_ADDR offset, int len)
6997 {
6998 struct process_info_private *const priv = current_process ()->priv;
6999 char filename[PATH_MAX];
7000 int pid, is_elf64;
7001
7002 static const struct link_map_offsets lmo_32bit_offsets =
7003 {
7004 0, /* r_version offset. */
7005 4, /* r_debug.r_map offset. */
7006 0, /* l_addr offset in link_map. */
7007 4, /* l_name offset in link_map. */
7008 8, /* l_ld offset in link_map. */
7009 12, /* l_next offset in link_map. */
7010 16 /* l_prev offset in link_map. */
7011 };
7012
7013 static const struct link_map_offsets lmo_64bit_offsets =
7014 {
7015 0, /* r_version offset. */
7016 8, /* r_debug.r_map offset. */
7017 0, /* l_addr offset in link_map. */
7018 8, /* l_name offset in link_map. */
7019 16, /* l_ld offset in link_map. */
7020 24, /* l_next offset in link_map. */
7021 32 /* l_prev offset in link_map. */
7022 };
7023 const struct link_map_offsets *lmo;
7024 unsigned int machine;
7025 int ptr_size;
7026 CORE_ADDR lm_addr = 0, lm_prev = 0;
7027 CORE_ADDR l_name, l_addr, l_ld, l_next, l_prev;
7028 int header_done = 0;
7029
7030 if (writebuf != NULL)
7031 return -2;
7032 if (readbuf == NULL)
7033 return -1;
7034
7035 pid = lwpid_of (current_thread);
7036 xsnprintf (filename, sizeof filename, "/proc/%d/exe", pid);
7037 is_elf64 = elf_64_file_p (filename, &machine);
7038 lmo = is_elf64 ? &lmo_64bit_offsets : &lmo_32bit_offsets;
7039 ptr_size = is_elf64 ? 8 : 4;
7040
7041 while (annex[0] != '\0')
7042 {
7043 const char *sep;
7044 CORE_ADDR *addrp;
7045 int len;
7046
7047 sep = strchr (annex, '=');
7048 if (sep == NULL)
7049 break;
7050
7051 len = sep - annex;
7052 if (len == 5 && startswith (annex, "start"))
7053 addrp = &lm_addr;
7054 else if (len == 4 && startswith (annex, "prev"))
7055 addrp = &lm_prev;
7056 else
7057 {
7058 annex = strchr (sep, ';');
7059 if (annex == NULL)
7060 break;
7061 annex++;
7062 continue;
7063 }
7064
7065 annex = decode_address_to_semicolon (addrp, sep + 1);
7066 }
7067
7068 if (lm_addr == 0)
7069 {
7070 int r_version = 0;
7071
7072 if (priv->r_debug == 0)
7073 priv->r_debug = get_r_debug (pid, is_elf64);
7074
7075 /* We failed to find DT_DEBUG. Such situation will not change
7076 for this inferior - do not retry it. Report it to GDB as
7077 E01, see for the reasons at the GDB solib-svr4.c side. */
7078 if (priv->r_debug == (CORE_ADDR) -1)
7079 return -1;
7080
7081 if (priv->r_debug != 0)
7082 {
7083 if (linux_read_memory (priv->r_debug + lmo->r_version_offset,
7084 (unsigned char *) &r_version,
7085 sizeof (r_version)) != 0
7086 || r_version != 1)
7087 {
7088 warning ("unexpected r_debug version %d", r_version);
7089 }
7090 else if (read_one_ptr (priv->r_debug + lmo->r_map_offset,
7091 &lm_addr, ptr_size) != 0)
7092 {
7093 warning ("unable to read r_map from 0x%lx",
7094 (long) priv->r_debug + lmo->r_map_offset);
7095 }
7096 }
7097 }
7098
7099 std::string document = "<library-list-svr4 version=\"1.0\"";
7100
7101 while (lm_addr
7102 && read_one_ptr (lm_addr + lmo->l_name_offset,
7103 &l_name, ptr_size) == 0
7104 && read_one_ptr (lm_addr + lmo->l_addr_offset,
7105 &l_addr, ptr_size) == 0
7106 && read_one_ptr (lm_addr + lmo->l_ld_offset,
7107 &l_ld, ptr_size) == 0
7108 && read_one_ptr (lm_addr + lmo->l_prev_offset,
7109 &l_prev, ptr_size) == 0
7110 && read_one_ptr (lm_addr + lmo->l_next_offset,
7111 &l_next, ptr_size) == 0)
7112 {
7113 unsigned char libname[PATH_MAX];
7114
7115 if (lm_prev != l_prev)
7116 {
7117 warning ("Corrupted shared library list: 0x%lx != 0x%lx",
7118 (long) lm_prev, (long) l_prev);
7119 break;
7120 }
7121
7122 /* Ignore the first entry even if it has valid name as the first entry
7123 corresponds to the main executable. The first entry should not be
7124 skipped if the dynamic loader was loaded late by a static executable
7125 (see solib-svr4.c parameter ignore_first). But in such case the main
7126 executable does not have PT_DYNAMIC present and this function already
7127 exited above due to failed get_r_debug. */
7128 if (lm_prev == 0)
7129 string_appendf (document, " main-lm=\"0x%lx\"", (unsigned long) lm_addr);
7130 else
7131 {
7132 /* Not checking for error because reading may stop before
7133 we've got PATH_MAX worth of characters. */
7134 libname[0] = '\0';
7135 linux_read_memory (l_name, libname, sizeof (libname) - 1);
7136 libname[sizeof (libname) - 1] = '\0';
7137 if (libname[0] != '\0')
7138 {
7139 if (!header_done)
7140 {
7141 /* Terminate `<library-list-svr4'. */
7142 document += '>';
7143 header_done = 1;
7144 }
7145
7146 string_appendf (document, "<library name=\"");
7147 xml_escape_text_append (&document, (char *) libname);
7148 string_appendf (document, "\" lm=\"0x%lx\" "
7149 "l_addr=\"0x%lx\" l_ld=\"0x%lx\"/>",
7150 (unsigned long) lm_addr, (unsigned long) l_addr,
7151 (unsigned long) l_ld);
7152 }
7153 }
7154
7155 lm_prev = lm_addr;
7156 lm_addr = l_next;
7157 }
7158
7159 if (!header_done)
7160 {
7161 /* Empty list; terminate `<library-list-svr4'. */
7162 document += "/>";
7163 }
7164 else
7165 document += "</library-list-svr4>";
7166
7167 int document_len = document.length ();
7168 if (offset < document_len)
7169 document_len -= offset;
7170 else
7171 document_len = 0;
7172 if (len > document_len)
7173 len = document_len;
7174
7175 memcpy (readbuf, document.data () + offset, len);
7176
7177 return len;
7178 }
7179
7180 #ifdef HAVE_LINUX_BTRACE
7181
7182 /* See to_disable_btrace target method. */
7183
7184 static int
7185 linux_low_disable_btrace (struct btrace_target_info *tinfo)
7186 {
7187 enum btrace_error err;
7188
7189 err = linux_disable_btrace (tinfo);
7190 return (err == BTRACE_ERR_NONE ? 0 : -1);
7191 }
7192
7193 /* Encode an Intel Processor Trace configuration. */
7194
7195 static void
7196 linux_low_encode_pt_config (struct buffer *buffer,
7197 const struct btrace_data_pt_config *config)
7198 {
7199 buffer_grow_str (buffer, "<pt-config>\n");
7200
7201 switch (config->cpu.vendor)
7202 {
7203 case CV_INTEL:
7204 buffer_xml_printf (buffer, "<cpu vendor=\"GenuineIntel\" family=\"%u\" "
7205 "model=\"%u\" stepping=\"%u\"/>\n",
7206 config->cpu.family, config->cpu.model,
7207 config->cpu.stepping);
7208 break;
7209
7210 default:
7211 break;
7212 }
7213
7214 buffer_grow_str (buffer, "</pt-config>\n");
7215 }
7216
7217 /* Encode a raw buffer. */
7218
7219 static void
7220 linux_low_encode_raw (struct buffer *buffer, const gdb_byte *data,
7221 unsigned int size)
7222 {
7223 if (size == 0)
7224 return;
7225
7226 /* We use hex encoding - see common/rsp-low.h. */
7227 buffer_grow_str (buffer, "<raw>\n");
7228
7229 while (size-- > 0)
7230 {
7231 char elem[2];
7232
7233 elem[0] = tohex ((*data >> 4) & 0xf);
7234 elem[1] = tohex (*data++ & 0xf);
7235
7236 buffer_grow (buffer, elem, 2);
7237 }
7238
7239 buffer_grow_str (buffer, "</raw>\n");
7240 }
7241
7242 /* See to_read_btrace target method. */
7243
7244 static int
7245 linux_low_read_btrace (struct btrace_target_info *tinfo, struct buffer *buffer,
7246 enum btrace_read_type type)
7247 {
7248 struct btrace_data btrace;
7249 struct btrace_block *block;
7250 enum btrace_error err;
7251 int i;
7252
7253 err = linux_read_btrace (&btrace, tinfo, type);
7254 if (err != BTRACE_ERR_NONE)
7255 {
7256 if (err == BTRACE_ERR_OVERFLOW)
7257 buffer_grow_str0 (buffer, "E.Overflow.");
7258 else
7259 buffer_grow_str0 (buffer, "E.Generic Error.");
7260
7261 return -1;
7262 }
7263
7264 switch (btrace.format)
7265 {
7266 case BTRACE_FORMAT_NONE:
7267 buffer_grow_str0 (buffer, "E.No Trace.");
7268 return -1;
7269
7270 case BTRACE_FORMAT_BTS:
7271 buffer_grow_str (buffer, "<!DOCTYPE btrace SYSTEM \"btrace.dtd\">\n");
7272 buffer_grow_str (buffer, "<btrace version=\"1.0\">\n");
7273
7274 for (i = 0;
7275 VEC_iterate (btrace_block_s, btrace.variant.bts.blocks, i, block);
7276 i++)
7277 buffer_xml_printf (buffer, "<block begin=\"0x%s\" end=\"0x%s\"/>\n",
7278 paddress (block->begin), paddress (block->end));
7279
7280 buffer_grow_str0 (buffer, "</btrace>\n");
7281 break;
7282
7283 case BTRACE_FORMAT_PT:
7284 buffer_grow_str (buffer, "<!DOCTYPE btrace SYSTEM \"btrace.dtd\">\n");
7285 buffer_grow_str (buffer, "<btrace version=\"1.0\">\n");
7286 buffer_grow_str (buffer, "<pt>\n");
7287
7288 linux_low_encode_pt_config (buffer, &btrace.variant.pt.config);
7289
7290 linux_low_encode_raw (buffer, btrace.variant.pt.data,
7291 btrace.variant.pt.size);
7292
7293 buffer_grow_str (buffer, "</pt>\n");
7294 buffer_grow_str0 (buffer, "</btrace>\n");
7295 break;
7296
7297 default:
7298 buffer_grow_str0 (buffer, "E.Unsupported Trace Format.");
7299 return -1;
7300 }
7301
7302 return 0;
7303 }
7304
7305 /* See to_btrace_conf target method. */
7306
7307 static int
7308 linux_low_btrace_conf (const struct btrace_target_info *tinfo,
7309 struct buffer *buffer)
7310 {
7311 const struct btrace_config *conf;
7312
7313 buffer_grow_str (buffer, "<!DOCTYPE btrace-conf SYSTEM \"btrace-conf.dtd\">\n");
7314 buffer_grow_str (buffer, "<btrace-conf version=\"1.0\">\n");
7315
7316 conf = linux_btrace_conf (tinfo);
7317 if (conf != NULL)
7318 {
7319 switch (conf->format)
7320 {
7321 case BTRACE_FORMAT_NONE:
7322 break;
7323
7324 case BTRACE_FORMAT_BTS:
7325 buffer_xml_printf (buffer, "<bts");
7326 buffer_xml_printf (buffer, " size=\"0x%x\"", conf->bts.size);
7327 buffer_xml_printf (buffer, " />\n");
7328 break;
7329
7330 case BTRACE_FORMAT_PT:
7331 buffer_xml_printf (buffer, "<pt");
7332 buffer_xml_printf (buffer, " size=\"0x%x\"", conf->pt.size);
7333 buffer_xml_printf (buffer, "/>\n");
7334 break;
7335 }
7336 }
7337
7338 buffer_grow_str0 (buffer, "</btrace-conf>\n");
7339 return 0;
7340 }
7341 #endif /* HAVE_LINUX_BTRACE */
7342
7343 /* See nat/linux-nat.h. */
7344
7345 ptid_t
7346 current_lwp_ptid (void)
7347 {
7348 return ptid_of (current_thread);
7349 }
7350
7351 /* Implementation of the target_ops method "breakpoint_kind_from_pc". */
7352
7353 static int
7354 linux_breakpoint_kind_from_pc (CORE_ADDR *pcptr)
7355 {
7356 if (the_low_target.breakpoint_kind_from_pc != NULL)
7357 return (*the_low_target.breakpoint_kind_from_pc) (pcptr);
7358 else
7359 return default_breakpoint_kind_from_pc (pcptr);
7360 }
7361
7362 /* Implementation of the target_ops method "sw_breakpoint_from_kind". */
7363
7364 static const gdb_byte *
7365 linux_sw_breakpoint_from_kind (int kind, int *size)
7366 {
7367 gdb_assert (the_low_target.sw_breakpoint_from_kind != NULL);
7368
7369 return (*the_low_target.sw_breakpoint_from_kind) (kind, size);
7370 }
7371
7372 /* Implementation of the target_ops method
7373 "breakpoint_kind_from_current_state". */
7374
7375 static int
7376 linux_breakpoint_kind_from_current_state (CORE_ADDR *pcptr)
7377 {
7378 if (the_low_target.breakpoint_kind_from_current_state != NULL)
7379 return (*the_low_target.breakpoint_kind_from_current_state) (pcptr);
7380 else
7381 return linux_breakpoint_kind_from_pc (pcptr);
7382 }
7383
7384 /* Default implementation of linux_target_ops method "set_pc" for
7385 32-bit pc register which is literally named "pc". */
7386
7387 void
7388 linux_set_pc_32bit (struct regcache *regcache, CORE_ADDR pc)
7389 {
7390 uint32_t newpc = pc;
7391
7392 supply_register_by_name (regcache, "pc", &newpc);
7393 }
7394
7395 /* Default implementation of linux_target_ops method "get_pc" for
7396 32-bit pc register which is literally named "pc". */
7397
7398 CORE_ADDR
7399 linux_get_pc_32bit (struct regcache *regcache)
7400 {
7401 uint32_t pc;
7402
7403 collect_register_by_name (regcache, "pc", &pc);
7404 if (debug_threads)
7405 debug_printf ("stop pc is 0x%" PRIx32 "\n", pc);
7406 return pc;
7407 }
7408
7409 /* Default implementation of linux_target_ops method "set_pc" for
7410 64-bit pc register which is literally named "pc". */
7411
7412 void
7413 linux_set_pc_64bit (struct regcache *regcache, CORE_ADDR pc)
7414 {
7415 uint64_t newpc = pc;
7416
7417 supply_register_by_name (regcache, "pc", &newpc);
7418 }
7419
7420 /* Default implementation of linux_target_ops method "get_pc" for
7421 64-bit pc register which is literally named "pc". */
7422
7423 CORE_ADDR
7424 linux_get_pc_64bit (struct regcache *regcache)
7425 {
7426 uint64_t pc;
7427
7428 collect_register_by_name (regcache, "pc", &pc);
7429 if (debug_threads)
7430 debug_printf ("stop pc is 0x%" PRIx64 "\n", pc);
7431 return pc;
7432 }
7433
7434
7435 static struct target_ops linux_target_ops = {
7436 linux_create_inferior,
7437 linux_post_create_inferior,
7438 linux_attach,
7439 linux_kill,
7440 linux_detach,
7441 linux_mourn,
7442 linux_join,
7443 linux_thread_alive,
7444 linux_resume,
7445 linux_wait,
7446 linux_fetch_registers,
7447 linux_store_registers,
7448 linux_prepare_to_access_memory,
7449 linux_done_accessing_memory,
7450 linux_read_memory,
7451 linux_write_memory,
7452 linux_look_up_symbols,
7453 linux_request_interrupt,
7454 linux_read_auxv,
7455 linux_supports_z_point_type,
7456 linux_insert_point,
7457 linux_remove_point,
7458 linux_stopped_by_sw_breakpoint,
7459 linux_supports_stopped_by_sw_breakpoint,
7460 linux_stopped_by_hw_breakpoint,
7461 linux_supports_stopped_by_hw_breakpoint,
7462 linux_supports_hardware_single_step,
7463 linux_stopped_by_watchpoint,
7464 linux_stopped_data_address,
7465 #if defined(__UCLIBC__) && defined(HAS_NOMMU) \
7466 && defined(PT_TEXT_ADDR) && defined(PT_DATA_ADDR) \
7467 && defined(PT_TEXT_END_ADDR)
7468 linux_read_offsets,
7469 #else
7470 NULL,
7471 #endif
7472 #ifdef USE_THREAD_DB
7473 thread_db_get_tls_address,
7474 #else
7475 NULL,
7476 #endif
7477 linux_qxfer_spu,
7478 hostio_last_error_from_errno,
7479 linux_qxfer_osdata,
7480 linux_xfer_siginfo,
7481 linux_supports_non_stop,
7482 linux_async,
7483 linux_start_non_stop,
7484 linux_supports_multi_process,
7485 linux_supports_fork_events,
7486 linux_supports_vfork_events,
7487 linux_supports_exec_events,
7488 linux_handle_new_gdb_connection,
7489 #ifdef USE_THREAD_DB
7490 thread_db_handle_monitor_command,
7491 #else
7492 NULL,
7493 #endif
7494 linux_common_core_of_thread,
7495 linux_read_loadmap,
7496 linux_process_qsupported,
7497 linux_supports_tracepoints,
7498 linux_read_pc,
7499 linux_write_pc,
7500 linux_thread_stopped,
7501 NULL,
7502 linux_pause_all,
7503 linux_unpause_all,
7504 linux_stabilize_threads,
7505 linux_install_fast_tracepoint_jump_pad,
7506 linux_emit_ops,
7507 linux_supports_disable_randomization,
7508 linux_get_min_fast_tracepoint_insn_len,
7509 linux_qxfer_libraries_svr4,
7510 linux_supports_agent,
7511 #ifdef HAVE_LINUX_BTRACE
7512 linux_enable_btrace,
7513 linux_low_disable_btrace,
7514 linux_low_read_btrace,
7515 linux_low_btrace_conf,
7516 #else
7517 NULL,
7518 NULL,
7519 NULL,
7520 NULL,
7521 #endif
7522 linux_supports_range_stepping,
7523 linux_proc_pid_to_exec_file,
7524 linux_mntns_open_cloexec,
7525 linux_mntns_unlink,
7526 linux_mntns_readlink,
7527 linux_breakpoint_kind_from_pc,
7528 linux_sw_breakpoint_from_kind,
7529 linux_proc_tid_get_name,
7530 linux_breakpoint_kind_from_current_state,
7531 linux_supports_software_single_step,
7532 linux_supports_catch_syscall,
7533 linux_get_ipa_tdesc_idx,
7534 #if USE_THREAD_DB
7535 thread_db_thread_handle,
7536 #else
7537 NULL,
7538 #endif
7539 };
7540
7541 #ifdef HAVE_LINUX_REGSETS
7542 void
7543 initialize_regsets_info (struct regsets_info *info)
7544 {
7545 for (info->num_regsets = 0;
7546 info->regsets[info->num_regsets].size >= 0;
7547 info->num_regsets++)
7548 ;
7549 }
7550 #endif
7551
7552 void
7553 initialize_low (void)
7554 {
7555 struct sigaction sigchld_action;
7556
7557 memset (&sigchld_action, 0, sizeof (sigchld_action));
7558 set_target_ops (&linux_target_ops);
7559
7560 linux_ptrace_init_warnings ();
7561
7562 sigchld_action.sa_handler = sigchld_handler;
7563 sigemptyset (&sigchld_action.sa_mask);
7564 sigchld_action.sa_flags = SA_RESTART;
7565 sigaction (SIGCHLD, &sigchld_action, NULL);
7566
7567 initialize_low_arch ();
7568
7569 linux_check_ptrace_features ();
7570 }
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