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/tmp/gdb-8.1/gdb/infrun.c
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1 /* Target-struct-independent code to start (run) and stop an inferior
2  process.
3 
4  Copyright (C) 1986-2018 Free Software Foundation, Inc.
5 
6  This file is part of GDB.
7 
8  This program is free software; you can redistribute it and/or modify
9  it under the terms of the GNU General Public License as published by
10  the Free Software Foundation; either version 3 of the License, or
11  (at your option) any later version.
12 
13  This program is distributed in the hope that it will be useful,
14  but WITHOUT ANY WARRANTY; without even the implied warranty of
15  MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16  GNU General Public License for more details.
17 
18  You should have received a copy of the GNU General Public License
19  along with this program. If not, see <http://www.gnu.org/licenses/>. */
20 
21 #include "defs.h"
22 #include "infrun.h"
23 #include <ctype.h>
24 #include "symtab.h"
25 #include "frame.h"
26 #include "inferior.h"
27 #include "breakpoint.h"
28 #include "gdb_wait.h"
29 #include "gdbcore.h"
30 #include "gdbcmd.h"
31 #include "cli/cli-script.h"
32 #include "target.h"
33 #include "gdbthread.h"
34 #include "annotate.h"
35 #include "symfile.h"
36 #include "top.h"
37 #include <signal.h>
38 #include "inf-loop.h"
39 #include "regcache.h"
40 #include "value.h"
41 #include "observer.h"
42 #include "language.h"
43 #include "solib.h"
44 #include "main.h"
45 #include "dictionary.h"
46 #include "block.h"
47 #include "mi/mi-common.h"
48 #include "event-top.h"
49 #include "record.h"
50 #include "record-full.h"
51 #include "inline-frame.h"
52 #include "jit.h"
53 #include "tracepoint.h"
54 #include "continuations.h"
55 #include "interps.h"
56 #include "skip.h"
57 #include "probe.h"
58 #include "objfiles.h"
59 #include "completer.h"
60 #include "target-descriptions.h"
61 #include "target-dcache.h"
62 #include "terminal.h"
63 #include "solist.h"
64 #include "event-loop.h"
65 #include "thread-fsm.h"
66 #include "common/enum-flags.h"
67 #include "progspace-and-thread.h"
68 #include "common/gdb_optional.h"
69 #include "arch-utils.h"
70 
71 /* Prototypes for local functions */
72 
73 static void sig_print_info (enum gdb_signal);
74 
75 static void sig_print_header (void);
76 
77 static int follow_fork (void);
78 
79 static int follow_fork_inferior (int follow_child, int detach_fork);
80 
81 static void follow_inferior_reset_breakpoints (void);
82 
83 static int currently_stepping (struct thread_info *tp);
84 
86 
88 
90 
91 static void insert_longjmp_resume_breakpoint (struct gdbarch *, CORE_ADDR);
92 
93 static int maybe_software_singlestep (struct gdbarch *gdbarch, CORE_ADDR pc);
94 
95 /* Asynchronous signal handler registered as event loop source for
96  when we have pending events ready to be passed to the core. */
98 
99 /* Stores whether infrun_async was previously enabled or disabled.
100  Starts off as -1, indicating "never enabled/disabled". */
101 static int infrun_is_async = -1;
102 
103 /* See infrun.h. */
104 
105 void
107 {
108  if (infrun_is_async != enable)
109  {
111 
112  if (debug_infrun)
114  "infrun: infrun_async(%d)\n",
115  enable);
116 
117  if (enable)
119  else
121  }
122 }
123 
124 /* See infrun.h. */
125 
126 void
128 {
130 }
131 
132 /* When set, stop the 'step' command if we enter a function which has
133  no line number information. The normal behavior is that we step
134  over such function. */
136 static void
137 show_step_stop_if_no_debug (struct ui_file *file, int from_tty,
138  struct cmd_list_element *c, const char *value)
139 {
140  fprintf_filtered (file, _("Mode of the step operation is %s.\n"), value);
141 }
142 
143 /* proceed and normal_stop use this to notify the user when the
144  inferior stopped in a different thread than it had been running
145  in. */
146 
148 
149 /* If set (default for legacy reasons), when following a fork, GDB
150  will detach from one of the fork branches, child or parent.
151  Exactly which branch is detached depends on 'set follow-fork-mode'
152  setting. */
153 
154 static int detach_fork = 1;
155 
157 static void
158 show_debug_displaced (struct ui_file *file, int from_tty,
159  struct cmd_list_element *c, const char *value)
160 {
161  fprintf_filtered (file, _("Displace stepping debugging is %s.\n"), value);
162 }
163 
164 unsigned int debug_infrun = 0;
165 static void
166 show_debug_infrun (struct ui_file *file, int from_tty,
167  struct cmd_list_element *c, const char *value)
168 {
169  fprintf_filtered (file, _("Inferior debugging is %s.\n"), value);
170 }
171 
172 
173 /* Support for disabling address space randomization. */
174 
176 
177 static void
178 show_disable_randomization (struct ui_file *file, int from_tty,
179  struct cmd_list_element *c, const char *value)
180 {
182  fprintf_filtered (file,
183  _("Disabling randomization of debuggee's "
184  "virtual address space is %s.\n"),
185  value);
186  else
187  fputs_filtered (_("Disabling randomization of debuggee's "
188  "virtual address space is unsupported on\n"
189  "this platform.\n"), file);
190 }
191 
192 static void
193 set_disable_randomization (const char *args, int from_tty,
194  struct cmd_list_element *c)
195 {
197  error (_("Disabling randomization of debuggee's "
198  "virtual address space is unsupported on\n"
199  "this platform."));
200 }
201 
202 /* User interface for non-stop mode. */
203 
204 int non_stop = 0;
205 static int non_stop_1 = 0;
206 
207 static void
208 set_non_stop (const char *args, int from_tty,
209  struct cmd_list_element *c)
210 {
212  {
214  error (_("Cannot change this setting while the inferior is running."));
215  }
216 
218 }
219 
220 static void
221 show_non_stop (struct ui_file *file, int from_tty,
222  struct cmd_list_element *c, const char *value)
223 {
224  fprintf_filtered (file,
225  _("Controlling the inferior in non-stop mode is %s.\n"),
226  value);
227 }
228 
229 /* "Observer mode" is somewhat like a more extreme version of
230  non-stop, in which all GDB operations that might affect the
231  target's execution have been disabled. */
232 
234 static int observer_mode_1 = 0;
235 
236 static void
237 set_observer_mode (const char *args, int from_tty,
238  struct cmd_list_element *c)
239 {
241  {
243  error (_("Cannot change this setting while the inferior is running."));
244  }
245 
247 
252  /* We can insert fast tracepoints in or out of observer mode,
253  but enable them if we're going into this mode. */
254  if (observer_mode)
258 
259  /* Going *into* observer mode we must force non-stop, then
260  going out we leave it that way. */
261  if (observer_mode)
262  {
263  pagination_enabled = 0;
264  non_stop = non_stop_1 = 1;
265  }
266 
267  if (from_tty)
268  printf_filtered (_("Observer mode is now %s.\n"),
269  (observer_mode ? "on" : "off"));
270 }
271 
272 static void
273 show_observer_mode (struct ui_file *file, int from_tty,
274  struct cmd_list_element *c, const char *value)
275 {
276  fprintf_filtered (file, _("Observer mode is %s.\n"), value);
277 }
278 
279 /* This updates the value of observer mode based on changes in
280  permissions. Note that we are deliberately ignoring the values of
281  may-write-registers and may-write-memory, since the user may have
282  reason to enable these during a session, for instance to turn on a
283  debugging-related global. */
284 
285 void
287 {
288  int newval;
289 
290  newval = (!may_insert_breakpoints
293  && !may_stop
294  && non_stop);
295 
296  /* Let the user know if things change. */
297  if (newval != observer_mode)
298  printf_filtered (_("Observer mode is now %s.\n"),
299  (newval ? "on" : "off"));
300 
301  observer_mode = observer_mode_1 = newval;
302 }
303 
304 /* Tables of how to react to signals; the user sets them. */
305 
306 static unsigned char *signal_stop;
307 static unsigned char *signal_print;
308 static unsigned char *signal_program;
309 
310 /* Table of signals that are registered with "catch signal". A
311  non-zero entry indicates that the signal is caught by some "catch
312  signal" command. This has size GDB_SIGNAL_LAST, to accommodate all
313  signals. */
314 static unsigned char *signal_catch;
315 
316 /* Table of signals that the target may silently handle.
317  This is automatically determined from the flags above,
318  and simply cached here. */
319 static unsigned char *signal_pass;
320 
321 #define SET_SIGS(nsigs,sigs,flags) \
322  do { \
323  int signum = (nsigs); \
324  while (signum-- > 0) \
325  if ((sigs)[signum]) \
326  (flags)[signum] = 1; \
327  } while (0)
328 
329 #define UNSET_SIGS(nsigs,sigs,flags) \
330  do { \
331  int signum = (nsigs); \
332  while (signum-- > 0) \
333  if ((sigs)[signum]) \
334  (flags)[signum] = 0; \
335  } while (0)
336 
337 /* Update the target's copy of SIGNAL_PROGRAM. The sole purpose of
338  this function is to avoid exporting `signal_program'. */
339 
340 void
342 {
343  target_program_signals ((int) GDB_SIGNAL_LAST, signal_program);
344 }
345 
346 /* Value to pass to target_resume() to cause all threads to resume. */
347 
348 #define RESUME_ALL minus_one_ptid
349 
350 /* Command list pointer for the "stop" placeholder. */
351 
353 
354 /* Nonzero if we want to give control to the user when we're notified
355  of shared library events by the dynamic linker. */
357 
358 /* Enable or disable optional shared library event breakpoints
359  as appropriate when the above flag is changed. */
360 
361 static void
362 set_stop_on_solib_events (const char *args,
363  int from_tty, struct cmd_list_element *c)
364 {
366 }
367 
368 static void
369 show_stop_on_solib_events (struct ui_file *file, int from_tty,
370  struct cmd_list_element *c, const char *value)
371 {
372  fprintf_filtered (file, _("Stopping for shared library events is %s.\n"),
373  value);
374 }
375 
376 /* Nonzero after stop if current stack frame should be printed. */
377 
378 static int stop_print_frame;
379 
380 /* This is a cached copy of the pid/waitstatus of the last event
381  returned by target_wait()/deprecated_target_wait_hook(). This
382  information is returned by get_last_target_status(). */
385 
386 static void context_switch (ptid_t ptid);
387 
388 void init_thread_stepping_state (struct thread_info *tss);
389 
390 static const char follow_fork_mode_child[] = "child";
391 static const char follow_fork_mode_parent[] = "parent";
392 
393 static const char *const follow_fork_mode_kind_names[] = {
396  NULL
397 };
398 
400 static void
401 show_follow_fork_mode_string (struct ui_file *file, int from_tty,
402  struct cmd_list_element *c, const char *value)
403 {
404  fprintf_filtered (file,
405  _("Debugger response to a program "
406  "call of fork or vfork is \"%s\".\n"),
407  value);
408 }
409 
410 
411 /* Handle changes to the inferior list based on the type of fork,
412  which process is being followed, and whether the other process
413  should be detached. On entry inferior_ptid must be the ptid of
414  the fork parent. At return inferior_ptid is the ptid of the
415  followed inferior. */
416 
417 static int
418 follow_fork_inferior (int follow_child, int detach_fork)
419 {
420  int has_vforked;
421  ptid_t parent_ptid, child_ptid;
422 
423  has_vforked = (inferior_thread ()->pending_follow.kind
425  parent_ptid = inferior_ptid;
427 
428  if (has_vforked
429  && !non_stop /* Non-stop always resumes both branches. */
431  && !(follow_child || detach_fork || sched_multi))
432  {
433  /* The parent stays blocked inside the vfork syscall until the
434  child execs or exits. If we don't let the child run, then
435  the parent stays blocked. If we're telling the parent to run
436  in the foreground, the user will not be able to ctrl-c to get
437  back the terminal, effectively hanging the debug session. */
439 Can not resume the parent process over vfork in the foreground while\n\
440 holding the child stopped. Try \"set detach-on-fork\" or \
441 \"set schedule-multiple\".\n"));
442  /* FIXME output string > 80 columns. */
443  return 1;
444  }
445 
446  if (!follow_child)
447  {
448  /* Detach new forked process? */
449  if (detach_fork)
450  {
451  /* Before detaching from the child, remove all breakpoints
452  from it. If we forked, then this has already been taken
453  care of by infrun.c. If we vforked however, any
454  breakpoint inserted in the parent is visible in the
455  child, even those added while stopped in a vfork
456  catchpoint. This will remove the breakpoints from the
457  parent also, but they'll be reinserted below. */
458  if (has_vforked)
459  {
460  /* Keep breakpoints list in sync. */
462  }
463 
464  if (info_verbose || debug_infrun)
465  {
466  /* Ensure that we have a process ptid. */
467  ptid_t process_ptid = pid_to_ptid (ptid_get_pid (child_ptid));
468 
471  _("Detaching after %s from child %s.\n"),
472  has_vforked ? "vfork" : "fork",
473  target_pid_to_str (process_ptid));
474  }
475  }
476  else
477  {
478  struct inferior *parent_inf, *child_inf;
479 
480  /* Add process to GDB's tables. */
481  child_inf = add_inferior (ptid_get_pid (child_ptid));
482 
483  parent_inf = current_inferior ();
484  child_inf->attach_flag = parent_inf->attach_flag;
485  copy_terminal_info (child_inf, parent_inf);
486  child_inf->gdbarch = parent_inf->gdbarch;
487  copy_inferior_target_desc_info (child_inf, parent_inf);
488 
489  scoped_restore_current_pspace_and_thread restore_pspace_thread;
490 
491  inferior_ptid = child_ptid;
493  set_current_inferior (child_inf);
494  child_inf->symfile_flags = SYMFILE_NO_READ;
495 
496  /* If this is a vfork child, then the address-space is
497  shared with the parent. */
498  if (has_vforked)
499  {
500  child_inf->pspace = parent_inf->pspace;
501  child_inf->aspace = parent_inf->aspace;
502 
503  /* The parent will be frozen until the child is done
504  with the shared region. Keep track of the
505  parent. */
506  child_inf->vfork_parent = parent_inf;
507  child_inf->pending_detach = 0;
508  parent_inf->vfork_child = child_inf;
509  parent_inf->pending_detach = 0;
510  }
511  else
512  {
513  child_inf->aspace = new_address_space ();
514  child_inf->pspace = add_program_space (child_inf->aspace);
515  child_inf->removable = 1;
516  set_current_program_space (child_inf->pspace);
517  clone_program_space (child_inf->pspace, parent_inf->pspace);
518 
519  /* Let the shared library layer (e.g., solib-svr4) learn
520  about this new process, relocate the cloned exec, pull
521  in shared libraries, and install the solib event
522  breakpoint. If a "cloned-VM" event was propagated
523  better throughout the core, this wouldn't be
524  required. */
526  }
527  }
528 
529  if (has_vforked)
530  {
531  struct inferior *parent_inf;
532 
533  parent_inf = current_inferior ();
534 
535  /* If we detached from the child, then we have to be careful
536  to not insert breakpoints in the parent until the child
537  is done with the shared memory region. However, if we're
538  staying attached to the child, then we can and should
539  insert breakpoints, so that we can debug it. A
540  subsequent child exec or exit is enough to know when does
541  the child stops using the parent's address space. */
542  parent_inf->waiting_for_vfork_done = detach_fork;
544  }
545  }
546  else
547  {
548  /* Follow the child. */
549  struct inferior *parent_inf, *child_inf;
550  struct program_space *parent_pspace;
551 
552  if (info_verbose || debug_infrun)
553  {
556  _("Attaching after %s %s to child %s.\n"),
557  target_pid_to_str (parent_ptid),
558  has_vforked ? "vfork" : "fork",
559  target_pid_to_str (child_ptid));
560  }
561 
562  /* Add the new inferior first, so that the target_detach below
563  doesn't unpush the target. */
564 
565  child_inf = add_inferior (ptid_get_pid (child_ptid));
566 
567  parent_inf = current_inferior ();
568  child_inf->attach_flag = parent_inf->attach_flag;
569  copy_terminal_info (child_inf, parent_inf);
570  child_inf->gdbarch = parent_inf->gdbarch;
571  copy_inferior_target_desc_info (child_inf, parent_inf);
572 
573  parent_pspace = parent_inf->pspace;
574 
575  /* If we're vforking, we want to hold on to the parent until the
576  child exits or execs. At child exec or exit time we can
577  remove the old breakpoints from the parent and detach or
578  resume debugging it. Otherwise, detach the parent now; we'll
579  want to reuse it's program/address spaces, but we can't set
580  them to the child before removing breakpoints from the
581  parent, otherwise, the breakpoints module could decide to
582  remove breakpoints from the wrong process (since they'd be
583  assigned to the same address space). */
584 
585  if (has_vforked)
586  {
587  gdb_assert (child_inf->vfork_parent == NULL);
588  gdb_assert (parent_inf->vfork_child == NULL);
589  child_inf->vfork_parent = parent_inf;
590  child_inf->pending_detach = 0;
591  parent_inf->vfork_child = child_inf;
592  parent_inf->pending_detach = detach_fork;
593  parent_inf->waiting_for_vfork_done = 0;
594  }
595  else if (detach_fork)
596  {
597  if (info_verbose || debug_infrun)
598  {
599  /* Ensure that we have a process ptid. */
600  ptid_t process_ptid = pid_to_ptid (ptid_get_pid (child_ptid));
601 
604  _("Detaching after fork from "
605  "child %s.\n"),
606  target_pid_to_str (process_ptid));
607  }
608 
609  target_detach (NULL, 0);
610  }
611 
612  /* Note that the detach above makes PARENT_INF dangling. */
613 
614  /* Add the child thread to the appropriate lists, and switch to
615  this new thread, before cloning the program space, and
616  informing the solib layer about this new process. */
617 
618  inferior_ptid = child_ptid;
620  set_current_inferior (child_inf);
621 
622  /* If this is a vfork child, then the address-space is shared
623  with the parent. If we detached from the parent, then we can
624  reuse the parent's program/address spaces. */
625  if (has_vforked || detach_fork)
626  {
627  child_inf->pspace = parent_pspace;
628  child_inf->aspace = child_inf->pspace->aspace;
629  }
630  else
631  {
632  child_inf->aspace = new_address_space ();
633  child_inf->pspace = add_program_space (child_inf->aspace);
634  child_inf->removable = 1;
635  child_inf->symfile_flags = SYMFILE_NO_READ;
636  set_current_program_space (child_inf->pspace);
637  clone_program_space (child_inf->pspace, parent_pspace);
638 
639  /* Let the shared library layer (e.g., solib-svr4) learn
640  about this new process, relocate the cloned exec, pull in
641  shared libraries, and install the solib event breakpoint.
642  If a "cloned-VM" event was propagated better throughout
643  the core, this wouldn't be required. */
645  }
646  }
647 
648  return target_follow_fork (follow_child, detach_fork);
649 }
650 
651 /* Tell the target to follow the fork we're stopped at. Returns true
652  if the inferior should be resumed; false, if the target for some
653  reason decided it's best not to resume. */
654 
655 static int
657 {
658  int follow_child = (follow_fork_mode_string == follow_fork_mode_child);
659  int should_resume = 1;
660  struct thread_info *tp;
661 
662  /* Copy user stepping state to the new inferior thread. FIXME: the
663  followed fork child thread should have a copy of most of the
664  parent thread structure's run control related fields, not just these.
665  Initialized to avoid "may be used uninitialized" warnings from gcc. */
666  struct breakpoint *step_resume_breakpoint = NULL;
667  struct breakpoint *exception_resume_breakpoint = NULL;
668  CORE_ADDR step_range_start = 0;
669  CORE_ADDR step_range_end = 0;
670  struct frame_id step_frame_id = { 0 };
671  struct thread_fsm *thread_fsm = NULL;
672 
673  if (!non_stop)
674  {
675  ptid_t wait_ptid;
676  struct target_waitstatus wait_status;
677 
678  /* Get the last target status returned by target_wait(). */
679  get_last_target_status (&wait_ptid, &wait_status);
680 
681  /* If not stopped at a fork event, then there's nothing else to
682  do. */
683  if (wait_status.kind != TARGET_WAITKIND_FORKED
684  && wait_status.kind != TARGET_WAITKIND_VFORKED)
685  return 1;
686 
687  /* Check if we switched over from WAIT_PTID, since the event was
688  reported. */
689  if (!ptid_equal (wait_ptid, minus_one_ptid)
690  && !ptid_equal (inferior_ptid, wait_ptid))
691  {
692  /* We did. Switch back to WAIT_PTID thread, to tell the
693  target to follow it (in either direction). We'll
694  afterwards refuse to resume, and inform the user what
695  happened. */
696  switch_to_thread (wait_ptid);
697  should_resume = 0;
698  }
699  }
700 
701  tp = inferior_thread ();
702 
703  /* If there were any forks/vforks that were caught and are now to be
704  followed, then do so now. */
705  switch (tp->pending_follow.kind)
706  {
709  {
710  ptid_t parent, child;
711 
712  /* If the user did a next/step, etc, over a fork call,
713  preserve the stepping state in the fork child. */
714  if (follow_child && should_resume)
715  {
716  step_resume_breakpoint = clone_momentary_breakpoint
718  step_range_start = tp->control.step_range_start;
719  step_range_end = tp->control.step_range_end;
720  step_frame_id = tp->control.step_frame_id;
721  exception_resume_breakpoint
723  thread_fsm = tp->thread_fsm;
724 
725  /* For now, delete the parent's sr breakpoint, otherwise,
726  parent/child sr breakpoints are considered duplicates,
727  and the child version will not be installed. Remove
728  this when the breakpoints module becomes aware of
729  inferiors and address spaces. */
731  tp->control.step_range_start = 0;
732  tp->control.step_range_end = 0;
735  tp->thread_fsm = NULL;
736  }
737 
738  parent = inferior_ptid;
739  child = tp->pending_follow.value.related_pid;
740 
741  /* Set up inferior(s) as specified by the caller, and tell the
742  target to do whatever is necessary to follow either parent
743  or child. */
744  if (follow_fork_inferior (follow_child, detach_fork))
745  {
746  /* Target refused to follow, or there's some other reason
747  we shouldn't resume. */
748  should_resume = 0;
749  }
750  else
751  {
752  /* This pending follow fork event is now handled, one way
753  or another. The previous selected thread may be gone
754  from the lists by now, but if it is still around, need
755  to clear the pending follow request. */
756  tp = find_thread_ptid (parent);
757  if (tp)
759 
760  /* This makes sure we don't try to apply the "Switched
761  over from WAIT_PID" logic above. */
763 
764  /* If we followed the child, switch to it... */
765  if (follow_child)
766  {
767  switch_to_thread (child);
768 
769  /* ... and preserve the stepping state, in case the
770  user was stepping over the fork call. */
771  if (should_resume)
772  {
773  tp = inferior_thread ();
775  = step_resume_breakpoint;
776  tp->control.step_range_start = step_range_start;
777  tp->control.step_range_end = step_range_end;
778  tp->control.step_frame_id = step_frame_id;
780  = exception_resume_breakpoint;
781  tp->thread_fsm = thread_fsm;
782  }
783  else
784  {
785  /* If we get here, it was because we're trying to
786  resume from a fork catchpoint, but, the user
787  has switched threads away from the thread that
788  forked. In that case, the resume command
789  issued is most likely not applicable to the
790  child, so just warn, and refuse to resume. */
791  warning (_("Not resuming: switched threads "
792  "before following fork child."));
793  }
794 
795  /* Reset breakpoints in the child as appropriate. */
797  }
798  else
799  switch_to_thread (parent);
800  }
801  }
802  break;
804  /* Nothing to follow. */
805  break;
806  default:
807  internal_error (__FILE__, __LINE__,
808  "Unexpected pending_follow.kind %d\n",
809  tp->pending_follow.kind);
810  break;
811  }
812 
813  return should_resume;
814 }
815 
816 static void
818 {
819  struct thread_info *tp = inferior_thread ();
820 
821  /* Was there a step_resume breakpoint? (There was if the user
822  did a "next" at the fork() call.) If so, explicitly reset its
823  thread number. Cloned step_resume breakpoints are disabled on
824  creation, so enable it here now that it is associated with the
825  correct thread.
826 
827  step_resumes are a form of bp that are made to be per-thread.
828  Since we created the step_resume bp when the parent process
829  was being debugged, and now are switching to the child process,
830  from the breakpoint package's viewpoint, that's a switch of
831  "threads". We must update the bp's notion of which thread
832  it is for, or it'll be ignored when it triggers. */
833 
835  {
838  }
839 
840  /* Treat exception_resume breakpoints like step_resume breakpoints. */
842  {
845  }
846 
847  /* Reinsert all breakpoints in the child. The user may have set
848  breakpoints after catching the fork, in which case those
849  were never set in the child, but only in the parent. This makes
850  sure the inserted breakpoints match the breakpoint list. */
851 
854 }
855 
856 /* The child has exited or execed: resume threads of the parent the
857  user wanted to be executing. */
858 
859 static int
861  void *arg)
862 {
863  int pid = * (int *) arg;
864 
865  if (ptid_get_pid (thread->ptid) == pid
866  && is_running (thread->ptid)
867  && !is_executing (thread->ptid)
868  && !thread->stop_requested
869  && thread->suspend.stop_signal == GDB_SIGNAL_0)
870  {
871  if (debug_infrun)
873  "infrun: resuming vfork parent thread %s\n",
874  target_pid_to_str (thread->ptid));
875 
876  switch_to_thread (thread->ptid);
878  proceed ((CORE_ADDR) -1, GDB_SIGNAL_DEFAULT);
879  }
880 
881  return 0;
882 }
883 
884 /* Save/restore inferior_ptid, current program space and current
885  inferior. Only use this if the current context points at an exited
886  inferior (and therefore there's no current thread to save). */
888 {
889 public:
892  {}
893 
894 private:
898 };
899 
900 /* Called whenever we notice an exec or exit event, to handle
901  detaching or resuming a vfork parent. */
902 
903 static void
905 {
906  struct inferior *inf = current_inferior ();
907 
908  if (inf->vfork_parent)
909  {
910  int resume_parent = -1;
911 
912  /* This exec or exit marks the end of the shared memory region
913  between the parent and the child. If the user wanted to
914  detach from the parent, now is the time. */
915 
916  if (inf->vfork_parent->pending_detach)
917  {
918  struct thread_info *tp;
919  struct program_space *pspace;
920  struct address_space *aspace;
921 
922  /* follow-fork child, detach-on-fork on. */
923 
924  inf->vfork_parent->pending_detach = 0;
925 
927  maybe_restore_inferior;
929  maybe_restore_thread;
930 
931  /* If we're handling a child exit, then inferior_ptid points
932  at the inferior's pid, not to a thread. */
933  if (!exec)
934  maybe_restore_inferior.emplace ();
935  else
936  maybe_restore_thread.emplace ();
937 
938  /* We're letting loose of the parent. */
939  tp = any_live_thread_of_process (inf->vfork_parent->pid);
940  switch_to_thread (tp->ptid);
941 
942  /* We're about to detach from the parent, which implicitly
943  removes breakpoints from its address space. There's a
944  catch here: we want to reuse the spaces for the child,
945  but, parent/child are still sharing the pspace at this
946  point, although the exec in reality makes the kernel give
947  the child a fresh set of new pages. The problem here is
948  that the breakpoints module being unaware of this, would
949  likely chose the child process to write to the parent
950  address space. Swapping the child temporarily away from
951  the spaces has the desired effect. Yes, this is "sort
952  of" a hack. */
953 
954  pspace = inf->pspace;
955  aspace = inf->aspace;
956  inf->aspace = NULL;
957  inf->pspace = NULL;
958 
959  if (debug_infrun || info_verbose)
960  {
962 
963  if (exec)
964  {
966  _("Detaching vfork parent process "
967  "%d after child exec.\n"),
968  inf->vfork_parent->pid);
969  }
970  else
971  {
973  _("Detaching vfork parent process "
974  "%d after child exit.\n"),
975  inf->vfork_parent->pid);
976  }
977  }
978 
979  target_detach (NULL, 0);
980 
981  /* Put it back. */
982  inf->pspace = pspace;
983  inf->aspace = aspace;
984  }
985  else if (exec)
986  {
987  /* We're staying attached to the parent, so, really give the
988  child a new address space. */
990  inf->aspace = inf->pspace->aspace;
991  inf->removable = 1;
992  set_current_program_space (inf->pspace);
993 
994  resume_parent = inf->vfork_parent->pid;
995 
996  /* Break the bonds. */
997  inf->vfork_parent->vfork_child = NULL;
998  }
999  else
1000  {
1001  struct program_space *pspace;
1002 
1003  /* If this is a vfork child exiting, then the pspace and
1004  aspaces were shared with the parent. Since we're
1005  reporting the process exit, we'll be mourning all that is
1006  found in the address space, and switching to null_ptid,
1007  preparing to start a new inferior. But, since we don't
1008  want to clobber the parent's address/program spaces, we
1009  go ahead and create a new one for this exiting
1010  inferior. */
1011 
1012  /* Switch to null_ptid while running clone_program_space, so
1013  that clone_program_space doesn't want to read the
1014  selected frame of a dead process. */
1015  scoped_restore restore_ptid
1017 
1018  /* This inferior is dead, so avoid giving the breakpoints
1019  module the option to write through to it (cloning a
1020  program space resets breakpoints). */
1021  inf->aspace = NULL;
1022  inf->pspace = NULL;
1024  set_current_program_space (pspace);
1025  inf->removable = 1;
1026  inf->symfile_flags = SYMFILE_NO_READ;
1027  clone_program_space (pspace, inf->vfork_parent->pspace);
1028  inf->pspace = pspace;
1029  inf->aspace = pspace->aspace;
1030 
1031  resume_parent = inf->vfork_parent->pid;
1032  /* Break the bonds. */
1033  inf->vfork_parent->vfork_child = NULL;
1034  }
1035 
1036  inf->vfork_parent = NULL;
1037 
1038  gdb_assert (current_program_space == inf->pspace);
1039 
1040  if (non_stop && resume_parent != -1)
1041  {
1042  /* If the user wanted the parent to be running, let it go
1043  free now. */
1044  scoped_restore_current_thread restore_thread;
1045 
1046  if (debug_infrun)
1048  "infrun: resuming vfork parent process %d\n",
1049  resume_parent);
1050 
1052  }
1053  }
1054 }
1055 
1056 /* Enum strings for "set|show follow-exec-mode". */
1057 
1058 static const char follow_exec_mode_new[] = "new";
1059 static const char follow_exec_mode_same[] = "same";
1060 static const char *const follow_exec_mode_names[] =
1061 {
1064  NULL,
1065 };
1066 
1068 static void
1069 show_follow_exec_mode_string (struct ui_file *file, int from_tty,
1070  struct cmd_list_element *c, const char *value)
1071 {
1072  fprintf_filtered (file, _("Follow exec mode is \"%s\".\n"), value);
1073 }
1074 
1075 /* EXEC_FILE_TARGET is assumed to be non-NULL. */
1076 
1077 static void
1078 follow_exec (ptid_t ptid, char *exec_file_target)
1079 {
1080  struct thread_info *th, *tmp;
1081  struct inferior *inf = current_inferior ();
1082  int pid = ptid_get_pid (ptid);
1083  ptid_t process_ptid;
1084  char *exec_file_host;
1085  struct cleanup *old_chain;
1086 
1087  /* This is an exec event that we actually wish to pay attention to.
1088  Refresh our symbol table to the newly exec'd program, remove any
1089  momentary bp's, etc.
1090 
1091  If there are breakpoints, they aren't really inserted now,
1092  since the exec() transformed our inferior into a fresh set
1093  of instructions.
1094 
1095  We want to preserve symbolic breakpoints on the list, since
1096  we have hopes that they can be reset after the new a.out's
1097  symbol table is read.
1098 
1099  However, any "raw" breakpoints must be removed from the list
1100  (e.g., the solib bp's), since their address is probably invalid
1101  now.
1102 
1103  And, we DON'T want to call delete_breakpoints() here, since
1104  that may write the bp's "shadow contents" (the instruction
1105  value that was overwritten witha TRAP instruction). Since
1106  we now have a new a.out, those shadow contents aren't valid. */
1107 
1109 
1110  /* The target reports the exec event to the main thread, even if
1111  some other thread does the exec, and even if the main thread was
1112  stopped or already gone. We may still have non-leader threads of
1113  the process on our list. E.g., on targets that don't have thread
1114  exit events (like remote); or on native Linux in non-stop mode if
1115  there were only two threads in the inferior and the non-leader
1116  one is the one that execs (and nothing forces an update of the
1117  thread list up to here). When debugging remotely, it's best to
1118  avoid extra traffic, when possible, so avoid syncing the thread
1119  list with the target, and instead go ahead and delete all threads
1120  of the process but one that reported the event. Note this must
1121  be done before calling update_breakpoints_after_exec, as
1122  otherwise clearing the threads' resources would reference stale
1123  thread breakpoints -- it may have been one of these threads that
1124  stepped across the exec. We could just clear their stepping
1125  states, but as long as we're iterating, might as well delete
1126  them. Deleting them now rather than at the next user-visible
1127  stop provides a nicer sequence of events for user and MI
1128  notifications. */
1129  ALL_THREADS_SAFE (th, tmp)
1130  if (ptid_get_pid (th->ptid) == pid && !ptid_equal (th->ptid, ptid))
1131  delete_thread (th->ptid);
1132 
1133  /* We also need to clear any left over stale state for the
1134  leader/event thread. E.g., if there was any step-resume
1135  breakpoint or similar, it's gone now. We cannot truly
1136  step-to-next statement through an exec(). */
1137  th = inferior_thread ();
1138  th->control.step_resume_breakpoint = NULL;
1140  th->control.single_step_breakpoints = NULL;
1141  th->control.step_range_start = 0;
1142  th->control.step_range_end = 0;
1143 
1144  /* The user may have had the main thread held stopped in the
1145  previous image (e.g., schedlock on, or non-stop). Release
1146  it now. */
1147  th->stop_requested = 0;
1148 
1150 
1151  /* What is this a.out's name? */
1152  process_ptid = pid_to_ptid (pid);
1153  printf_unfiltered (_("%s is executing new program: %s\n"),
1154  target_pid_to_str (process_ptid),
1155  exec_file_target);
1156 
1157  /* We've followed the inferior through an exec. Therefore, the
1158  inferior has essentially been killed & reborn. */
1159 
1161 
1163 
1164  exec_file_host = exec_file_find (exec_file_target, NULL);
1165  old_chain = make_cleanup (xfree, exec_file_host);
1166 
1167  /* If we were unable to map the executable target pathname onto a host
1168  pathname, tell the user that. Otherwise GDB's subsequent behavior
1169  is confusing. Maybe it would even be better to stop at this point
1170  so that the user can specify a file manually before continuing. */
1171  if (exec_file_host == NULL)
1172  warning (_("Could not load symbols for executable %s.\n"
1173  "Do you need \"set sysroot\"?"),
1174  exec_file_target);
1175 
1176  /* Reset the shared library package. This ensures that we get a
1177  shlib event when the child reaches "_start", at which point the
1178  dld will have had a chance to initialize the child. */
1179  /* Also, loading a symbol file below may trigger symbol lookups, and
1180  we don't want those to be satisfied by the libraries of the
1181  previous incarnation of this process. */
1182  no_shared_libraries (NULL, 0);
1183 
1185  {
1186  /* The user wants to keep the old inferior and program spaces
1187  around. Create a new fresh one, and switch to it. */
1188 
1189  /* Do exit processing for the original inferior before adding
1190  the new inferior so we don't have two active inferiors with
1191  the same ptid, which can confuse find_inferior_ptid. */
1193 
1195  inf->pid = pid;
1196  target_follow_exec (inf, exec_file_target);
1197 
1199  set_current_program_space (inf->pspace);
1200  }
1201  else
1202  {
1203  /* The old description may no longer be fit for the new image.
1204  E.g, a 64-bit process exec'ed a 32-bit process. Clear the
1205  old description; we'll read a new one below. No need to do
1206  this on "follow-exec-mode new", as the old inferior stays
1207  around (its description is later cleared/refetched on
1208  restart). */
1210  }
1211 
1212  gdb_assert (current_program_space == inf->pspace);
1213 
1214  /* Attempt to open the exec file. SYMFILE_DEFER_BP_RESET is used
1215  because the proper displacement for a PIE (Position Independent
1216  Executable) main symbol file will only be computed by
1217  solib_create_inferior_hook below. breakpoint_re_set would fail
1218  to insert the breakpoints with the zero displacement. */
1219  try_open_exec_file (exec_file_host, inf, SYMFILE_DEFER_BP_RESET);
1220 
1221  do_cleanups (old_chain);
1222 
1223  /* If the target can specify a description, read it. Must do this
1224  after flipping to the new executable (because the target supplied
1225  description must be compatible with the executable's
1226  architecture, and the old executable may e.g., be 32-bit, while
1227  the new one 64-bit), and before anything involving memory or
1228  registers. */
1230 
1231  /* The add_thread call ends up reading registers, so do it after updating the
1232  target description. */
1234  add_thread (ptid);
1235 
1237 
1239 
1240  breakpoint_re_set ();
1241 
1242  /* Reinsert all breakpoints. (Those which were symbolic have
1243  been reset to the proper address in the new a.out, thanks
1244  to symbol_file_command...). */
1245  insert_breakpoints ();
1246 
1247  /* The next resume of this inferior should bring it to the shlib
1248  startup breakpoints. (If the user had also set bp's on
1249  "main" from the old (parent) process, then they'll auto-
1250  matically get reset there in the new process.). */
1251 }
1252 
1253 /* The queue of threads that need to do a step-over operation to get
1254  past e.g., a breakpoint. What technique is used to step over the
1255  breakpoint/watchpoint does not matter -- all threads end up in the
1256  same queue, to maintain rough temporal order of execution, in order
1257  to avoid starvation, otherwise, we could e.g., find ourselves
1258  constantly stepping the same couple threads past their breakpoints
1259  over and over, if the single-step finish fast enough. */
1261 
1262 /* Bit flags indicating what the thread needs to step over. */
1263 
1265  {
1266  /* Step over a breakpoint. */
1268 
1269  /* Step past a non-continuable watchpoint, in order to let the
1270  instruction execute so we can evaluate the watchpoint
1271  expression. */
1273  };
1274 DEF_ENUM_FLAGS_TYPE (enum step_over_what_flag, step_over_what);
1275 
1276 /* Info about an instruction that is being stepped over. */
1277 
1279 {
1280  /* If we're stepping past a breakpoint, this is the address space
1281  and address of the instruction the breakpoint is set at. We'll
1282  skip inserting all breakpoints here. Valid iff ASPACE is
1283  non-NULL. */
1286 
1287  /* The instruction being stepped over triggers a nonsteppable
1288  watchpoint. If true, we'll skip inserting watchpoints. */
1290 
1291  /* The thread's global number. */
1292  int thread;
1293 };
1294 
1295 /* The step-over info of the location that is being stepped over.
1296 
1297  Note that with async/breakpoint always-inserted mode, a user might
1298  set a new breakpoint/watchpoint/etc. exactly while a breakpoint is
1299  being stepped over. As setting a new breakpoint inserts all
1300  breakpoints, we need to make sure the breakpoint being stepped over
1301  isn't inserted then. We do that by only clearing the step-over
1302  info when the step-over is actually finished (or aborted).
1303 
1304  Presently GDB can only step over one breakpoint at any given time.
1305  Given threads that can't run code in the same address space as the
1306  breakpoint's can't really miss the breakpoint, GDB could be taught
1307  to step-over at most one breakpoint per address space (so this info
1308  could move to the address space object if/when GDB is extended).
1309  The set of breakpoints being stepped over will normally be much
1310  smaller than the set of all breakpoints, so a flag in the
1311  breakpoint location structure would be wasteful. A separate list
1312  also saves complexity and run-time, as otherwise we'd have to go
1313  through all breakpoint locations clearing their flag whenever we
1314  start a new sequence. Similar considerations weigh against storing
1315  this info in the thread object. Plus, not all step overs actually
1316  have breakpoint locations -- e.g., stepping past a single-step
1317  breakpoint, or stepping to complete a non-continuable
1318  watchpoint. */
1320 
1321 /* Record the address of the breakpoint/instruction we're currently
1322  stepping over.
1323  N.B. We record the aspace and address now, instead of say just the thread,
1324  because when we need the info later the thread may be running. */
1325 
1326 static void
1329  int thread)
1330 {
1335 }
1336 
1337 /* Called when we're not longer stepping over a breakpoint / an
1338  instruction, so all breakpoints are free to be (re)inserted. */
1339 
1340 static void
1342 {
1343  if (debug_infrun)
1345  "infrun: clear_step_over_info\n");
1346  step_over_info.aspace = NULL;
1347  step_over_info.address = 0;
1349  step_over_info.thread = -1;
1350 }
1351 
1352 /* See infrun.h. */
1353 
1354 int
1357 {
1358  return (step_over_info.aspace != NULL
1362 }
1363 
1364 /* See infrun.h. */
1365 
1366 int
1368 {
1369  return (step_over_info.thread != -1
1370  && thread == step_over_info.thread);
1371 }
1372 
1373 /* See infrun.h. */
1374 
1375 int
1377 {
1379 }
1380 
1381 /* Returns true if step-over info is valid. */
1382 
1383 static int
1385 {
1386  return (step_over_info.aspace != NULL
1388 }
1389 
1390 
1391 /* Displaced stepping. */
1392 
1393 /* In non-stop debugging mode, we must take special care to manage
1394  breakpoints properly; in particular, the traditional strategy for
1395  stepping a thread past a breakpoint it has hit is unsuitable.
1396  'Displaced stepping' is a tactic for stepping one thread past a
1397  breakpoint it has hit while ensuring that other threads running
1398  concurrently will hit the breakpoint as they should.
1399 
1400  The traditional way to step a thread T off a breakpoint in a
1401  multi-threaded program in all-stop mode is as follows:
1402 
1403  a0) Initially, all threads are stopped, and breakpoints are not
1404  inserted.
1405  a1) We single-step T, leaving breakpoints uninserted.
1406  a2) We insert breakpoints, and resume all threads.
1407 
1408  In non-stop debugging, however, this strategy is unsuitable: we
1409  don't want to have to stop all threads in the system in order to
1410  continue or step T past a breakpoint. Instead, we use displaced
1411  stepping:
1412 
1413  n0) Initially, T is stopped, other threads are running, and
1414  breakpoints are inserted.
1415  n1) We copy the instruction "under" the breakpoint to a separate
1416  location, outside the main code stream, making any adjustments
1417  to the instruction, register, and memory state as directed by
1418  T's architecture.
1419  n2) We single-step T over the instruction at its new location.
1420  n3) We adjust the resulting register and memory state as directed
1421  by T's architecture. This includes resetting T's PC to point
1422  back into the main instruction stream.
1423  n4) We resume T.
1424 
1425  This approach depends on the following gdbarch methods:
1426 
1427  - gdbarch_max_insn_length and gdbarch_displaced_step_location
1428  indicate where to copy the instruction, and how much space must
1429  be reserved there. We use these in step n1.
1430 
1431  - gdbarch_displaced_step_copy_insn copies a instruction to a new
1432  address, and makes any necessary adjustments to the instruction,
1433  register contents, and memory. We use this in step n1.
1434 
1435  - gdbarch_displaced_step_fixup adjusts registers and memory after
1436  we have successfuly single-stepped the instruction, to yield the
1437  same effect the instruction would have had if we had executed it
1438  at its original address. We use this in step n3.
1439 
1440  The gdbarch_displaced_step_copy_insn and
1441  gdbarch_displaced_step_fixup functions must be written so that
1442  copying an instruction with gdbarch_displaced_step_copy_insn,
1443  single-stepping across the copied instruction, and then applying
1444  gdbarch_displaced_insn_fixup should have the same effects on the
1445  thread's memory and registers as stepping the instruction in place
1446  would have. Exactly which responsibilities fall to the copy and
1447  which fall to the fixup is up to the author of those functions.
1448 
1449  See the comments in gdbarch.sh for details.
1450 
1451  Note that displaced stepping and software single-step cannot
1452  currently be used in combination, although with some care I think
1453  they could be made to. Software single-step works by placing
1454  breakpoints on all possible subsequent instructions; if the
1455  displaced instruction is a PC-relative jump, those breakpoints
1456  could fall in very strange places --- on pages that aren't
1457  executable, or at addresses that are not proper instruction
1458  boundaries. (We do generally let other threads run while we wait
1459  to hit the software single-step breakpoint, and they might
1460  encounter such a corrupted instruction.) One way to work around
1461  this would be to have gdbarch_displaced_step_copy_insn fully
1462  simulate the effect of PC-relative instructions (and return NULL)
1463  on architectures that use software single-stepping.
1464 
1465  In non-stop mode, we can have independent and simultaneous step
1466  requests, so more than one thread may need to simultaneously step
1467  over a breakpoint. The current implementation assumes there is
1468  only one scratch space per process. In this case, we have to
1469  serialize access to the scratch space. If thread A wants to step
1470  over a breakpoint, but we are currently waiting for some other
1471  thread to complete a displaced step, we leave thread A stopped and
1472  place it in the displaced_step_request_queue. Whenever a displaced
1473  step finishes, we pick the next thread in the queue and start a new
1474  displaced step operation on it. See displaced_step_prepare and
1475  displaced_step_fixup for details. */
1476 
1477 /* Default destructor for displaced_step_closure. */
1478 
1480 
1481 /* Per-inferior displaced stepping state. */
1483 {
1484  /* Pointer to next in linked list. */
1486 
1487  /* The process this displaced step state refers to. */
1488  int pid;
1489 
1490  /* True if preparing a displaced step ever failed. If so, we won't
1491  try displaced stepping for this inferior again. */
1493 
1494  /* If this is not null_ptid, this is the thread carrying out a
1495  displaced single-step in process PID. This thread's state will
1496  require fixing up once it has completed its step. */
1498 
1499  /* The architecture the thread had when we stepped it. */
1501 
1502  /* The closure provided gdbarch_displaced_step_copy_insn, to be used
1503  for post-step cleanup. */
1505 
1506  /* The address of the original instruction, and the copy we
1507  made. */
1509 
1510  /* Saved contents of copy area. */
1512 };
1513 
1514 /* The list of states of processes involved in displaced stepping
1515  presently. */
1517 
1518 /* Get the displaced stepping state of process PID. */
1519 
1520 static struct displaced_step_inferior_state *
1522 {
1523  struct displaced_step_inferior_state *state;
1524 
1525  for (state = displaced_step_inferior_states;
1526  state != NULL;
1527  state = state->next)
1528  if (state->pid == pid)
1529  return state;
1530 
1531  return NULL;
1532 }
1533 
1534 /* Returns true if any inferior has a thread doing a displaced
1535  step. */
1536 
1537 static int
1539 {
1540  struct displaced_step_inferior_state *state;
1541 
1542  for (state = displaced_step_inferior_states;
1543  state != NULL;
1544  state = state->next)
1545  if (!ptid_equal (state->step_ptid, null_ptid))
1546  return 1;
1547 
1548  return 0;
1549 }
1550 
1551 /* Return true if thread represented by PTID is doing a displaced
1552  step. */
1553 
1554 static int
1556 {
1557  struct displaced_step_inferior_state *displaced;
1558 
1559  gdb_assert (!ptid_equal (ptid, null_ptid));
1560 
1561  displaced = get_displaced_stepping_state (ptid_get_pid (ptid));
1562 
1563  return (displaced != NULL && ptid_equal (displaced->step_ptid, ptid));
1564 }
1565 
1566 /* Return true if process PID has a thread doing a displaced step. */
1567 
1568 static int
1570 {
1571  struct displaced_step_inferior_state *displaced;
1572 
1573  displaced = get_displaced_stepping_state (pid);
1574  if (displaced != NULL && !ptid_equal (displaced->step_ptid, null_ptid))
1575  return 1;
1576 
1577  return 0;
1578 }
1579 
1580 /* Add a new displaced stepping state for process PID to the displaced
1581  stepping state list, or return a pointer to an already existing
1582  entry, if it already exists. Never returns NULL. */
1583 
1584 static struct displaced_step_inferior_state *
1586 {
1587  struct displaced_step_inferior_state *state;
1588 
1589  for (state = displaced_step_inferior_states;
1590  state != NULL;
1591  state = state->next)
1592  if (state->pid == pid)
1593  return state;
1594 
1595  state = XCNEW (struct displaced_step_inferior_state);
1596  state->pid = pid;
1599 
1600  return state;
1601 }
1602 
1603 /* If inferior is in displaced stepping, and ADDR equals to starting address
1604  of copy area, return corresponding displaced_step_closure. Otherwise,
1605  return NULL. */
1606 
1607 struct displaced_step_closure*
1609 {
1610  struct displaced_step_inferior_state *displaced
1612 
1613  /* If checking the mode of displaced instruction in copy area. */
1614  if (displaced && !ptid_equal (displaced->step_ptid, null_ptid)
1615  && (displaced->step_copy == addr))
1616  return displaced->step_closure;
1617 
1618  return NULL;
1619 }
1620 
1621 /* Remove the displaced stepping state of process PID. */
1622 
1623 static void
1625 {
1626  struct displaced_step_inferior_state *it, **prev_next_p;
1627 
1628  gdb_assert (pid != 0);
1629 
1631  prev_next_p = &displaced_step_inferior_states;
1632  while (it)
1633  {
1634  if (it->pid == pid)
1635  {
1636  *prev_next_p = it->next;
1637  xfree (it);
1638  return;
1639  }
1640 
1641  prev_next_p = &it->next;
1642  it = *prev_next_p;
1643  }
1644 }
1645 
1646 static void
1648 {
1650 }
1651 
1652 /* If ON, and the architecture supports it, GDB will use displaced
1653  stepping to step over breakpoints. If OFF, or if the architecture
1654  doesn't support it, GDB will instead use the traditional
1655  hold-and-step approach. If AUTO (which is the default), GDB will
1656  decide which technique to use to step over breakpoints depending on
1657  which of all-stop or non-stop mode is active --- displaced stepping
1658  in non-stop mode; hold-and-step in all-stop mode. */
1659 
1661 
1662 static void
1663 show_can_use_displaced_stepping (struct ui_file *file, int from_tty,
1664  struct cmd_list_element *c,
1665  const char *value)
1666 {
1668  fprintf_filtered (file,
1669  _("Debugger's willingness to use displaced stepping "
1670  "to step over breakpoints is %s (currently %s).\n"),
1671  value, target_is_non_stop_p () ? "on" : "off");
1672  else
1673  fprintf_filtered (file,
1674  _("Debugger's willingness to use displaced stepping "
1675  "to step over breakpoints is %s.\n"), value);
1676 }
1677 
1678 /* Return non-zero if displaced stepping can/should be used to step
1679  over breakpoints of thread TP. */
1680 
1681 static int
1683 {
1684  struct regcache *regcache = get_thread_regcache (tp->ptid);
1685  struct gdbarch *gdbarch = regcache->arch ();
1686  struct displaced_step_inferior_state *displaced_state;
1687 
1688  displaced_state = get_displaced_stepping_state (ptid_get_pid (tp->ptid));
1689 
1691  && target_is_non_stop_p ())
1694  && find_record_target () == NULL
1695  && (displaced_state == NULL
1696  || !displaced_state->failed_before));
1697 }
1698 
1699 /* Clean out any stray displaced stepping state. */
1700 static void
1702 {
1703  /* Indicate that there is no cleanup pending. */
1704  displaced->step_ptid = null_ptid;
1705 
1706  delete displaced->step_closure;
1707  displaced->step_closure = NULL;
1708 }
1709 
1710 static void
1712 {
1713  struct displaced_step_inferior_state *state
1714  = (struct displaced_step_inferior_state *) arg;
1715 
1716  displaced_step_clear (state);
1717 }
1718 
1719 /* Dump LEN bytes at BUF in hex to FILE, followed by a newline. */
1720 void
1722  const gdb_byte *buf,
1723  size_t len)
1724 {
1725  int i;
1726 
1727  for (i = 0; i < len; i++)
1728  fprintf_unfiltered (file, "%02x ", buf[i]);
1729  fputs_unfiltered ("\n", file);
1730 }
1731 
1732 /* Prepare to single-step, using displaced stepping.
1733 
1734  Note that we cannot use displaced stepping when we have a signal to
1735  deliver. If we have a signal to deliver and an instruction to step
1736  over, then after the step, there will be no indication from the
1737  target whether the thread entered a signal handler or ignored the
1738  signal and stepped over the instruction successfully --- both cases
1739  result in a simple SIGTRAP. In the first case we mustn't do a
1740  fixup, and in the second case we must --- but we can't tell which.
1741  Comments in the code for 'random signals' in handle_inferior_event
1742  explain how we handle this case instead.
1743 
1744  Returns 1 if preparing was successful -- this thread is going to be
1745  stepped now; 0 if displaced stepping this thread got queued; or -1
1746  if this instruction can't be displaced stepped. */
1747 
1748 static int
1750 {
1751  struct cleanup *ignore_cleanups;
1752  struct thread_info *tp = find_thread_ptid (ptid);
1754  struct gdbarch *gdbarch = regcache->arch ();
1755  const address_space *aspace = regcache->aspace ();
1756  CORE_ADDR original, copy;
1757  ULONGEST len;
1758  struct displaced_step_closure *closure;
1759  struct displaced_step_inferior_state *displaced;
1760  int status;
1761 
1762  /* We should never reach this function if the architecture does not
1763  support displaced stepping. */
1765 
1766  /* Nor if the thread isn't meant to step over a breakpoint. */
1768 
1769  /* Disable range stepping while executing in the scratch pad. We
1770  want a single-step even if executing the displaced instruction in
1771  the scratch buffer lands within the stepping range (e.g., a
1772  jump/branch). */
1773  tp->control.may_range_step = 0;
1774 
1775  /* We have to displaced step one thread at a time, as we only have
1776  access to a single scratch space per inferior. */
1777 
1778  displaced = add_displaced_stepping_state (ptid_get_pid (ptid));
1779 
1780  if (!ptid_equal (displaced->step_ptid, null_ptid))
1781  {
1782  /* Already waiting for a displaced step to finish. Defer this
1783  request and place in queue. */
1784 
1785  if (debug_displaced)
1787  "displaced: deferring step of %s\n",
1788  target_pid_to_str (ptid));
1789 
1791  return 0;
1792  }
1793  else
1794  {
1795  if (debug_displaced)
1797  "displaced: stepping %s now\n",
1798  target_pid_to_str (ptid));
1799  }
1800 
1801  displaced_step_clear (displaced);
1802 
1803  scoped_restore save_inferior_ptid = make_scoped_restore (&inferior_ptid);
1804  inferior_ptid = ptid;
1805 
1806  original = regcache_read_pc (regcache);
1807 
1810 
1811  if (breakpoint_in_range_p (aspace, copy, len))
1812  {
1813  /* There's a breakpoint set in the scratch pad location range
1814  (which is usually around the entry point). We'd either
1815  install it before resuming, which would overwrite/corrupt the
1816  scratch pad, or if it was already inserted, this displaced
1817  step would overwrite it. The latter is OK in the sense that
1818  we already assume that no thread is going to execute the code
1819  in the scratch pad range (after initial startup) anyway, but
1820  the former is unacceptable. Simply punt and fallback to
1821  stepping over this breakpoint in-line. */
1822  if (debug_displaced)
1823  {
1825  "displaced: breakpoint set in scratch pad. "
1826  "Stepping over breakpoint in-line instead.\n");
1827  }
1828 
1829  return -1;
1830  }
1831 
1832  /* Save the original contents of the copy area. */
1833  displaced->step_saved_copy = (gdb_byte *) xmalloc (len);
1834  ignore_cleanups = make_cleanup (free_current_contents,
1835  &displaced->step_saved_copy);
1836  status = target_read_memory (copy, displaced->step_saved_copy, len);
1837  if (status != 0)
1839  _("Error accessing memory address %s (%s) for "
1840  "displaced-stepping scratch space."),
1841  paddress (gdbarch, copy), safe_strerror (status));
1842  if (debug_displaced)
1843  {
1844  fprintf_unfiltered (gdb_stdlog, "displaced: saved %s: ",
1845  paddress (gdbarch, copy));
1847  displaced->step_saved_copy,
1848  len);
1849  };
1850 
1852  original, copy, regcache);
1853  if (closure == NULL)
1854  {
1855  /* The architecture doesn't know how or want to displaced step
1856  this instruction or instruction sequence. Fallback to
1857  stepping over the breakpoint in-line. */
1858  do_cleanups (ignore_cleanups);
1859  return -1;
1860  }
1861 
1862  /* Save the information we need to fix things up if the step
1863  succeeds. */
1864  displaced->step_ptid = ptid;
1865  displaced->step_gdbarch = gdbarch;
1866  displaced->step_closure = closure;
1867  displaced->step_original = original;
1868  displaced->step_copy = copy;
1869 
1871 
1872  /* Resume execution at the copy. */
1873  regcache_write_pc (regcache, copy);
1874 
1875  discard_cleanups (ignore_cleanups);
1876 
1877  if (debug_displaced)
1878  fprintf_unfiltered (gdb_stdlog, "displaced: displaced pc to %s\n",
1879  paddress (gdbarch, copy));
1880 
1881  return 1;
1882 }
1883 
1884 /* Wrapper for displaced_step_prepare_throw that disabled further
1885  attempts at displaced stepping if we get a memory error. */
1886 
1887 static int
1889 {
1890  int prepared = -1;
1891 
1892  TRY
1893  {
1894  prepared = displaced_step_prepare_throw (ptid);
1895  }
1896  CATCH (ex, RETURN_MASK_ERROR)
1897  {
1898  struct displaced_step_inferior_state *displaced_state;
1899 
1900  if (ex.error != MEMORY_ERROR
1901  && ex.error != NOT_SUPPORTED_ERROR)
1902  throw_exception (ex);
1903 
1904  if (debug_infrun)
1905  {
1907  "infrun: disabling displaced stepping: %s\n",
1908  ex.message);
1909  }
1910 
1911  /* Be verbose if "set displaced-stepping" is "on", silent if
1912  "auto". */
1914  {
1915  warning (_("disabling displaced stepping: %s"),
1916  ex.message);
1917  }
1918 
1919  /* Disable further displaced stepping attempts. */
1920  displaced_state
1922  displaced_state->failed_before = 1;
1923  }
1924  END_CATCH
1925 
1926  return prepared;
1927 }
1928 
1929 static void
1931  const gdb_byte *myaddr, int len)
1932 {
1933  scoped_restore save_inferior_ptid = make_scoped_restore (&inferior_ptid);
1934 
1935  inferior_ptid = ptid;
1936  write_memory (memaddr, myaddr, len);
1937 }
1938 
1939 /* Restore the contents of the copy area for thread PTID. */
1940 
1941 static void
1943  ptid_t ptid)
1944 {
1945  ULONGEST len = gdbarch_max_insn_length (displaced->step_gdbarch);
1946 
1947  write_memory_ptid (ptid, displaced->step_copy,
1948  displaced->step_saved_copy, len);
1949  if (debug_displaced)
1950  fprintf_unfiltered (gdb_stdlog, "displaced: restored %s %s\n",
1951  target_pid_to_str (ptid),
1952  paddress (displaced->step_gdbarch,
1953  displaced->step_copy));
1954 }
1955 
1956 /* If we displaced stepped an instruction successfully, adjust
1957  registers and memory to yield the same effect the instruction would
1958  have had if we had executed it at its original address, and return
1959  1. If the instruction didn't complete, relocate the PC and return
1960  -1. If the thread wasn't displaced stepping, return 0. */
1961 
1962 static int
1963 displaced_step_fixup (ptid_t event_ptid, enum gdb_signal signal)
1964 {
1965  struct cleanup *old_cleanups;
1966  struct displaced_step_inferior_state *displaced
1967  = get_displaced_stepping_state (ptid_get_pid (event_ptid));
1968  int ret;
1969 
1970  /* Was any thread of this process doing a displaced step? */
1971  if (displaced == NULL)
1972  return 0;
1973 
1974  /* Was this event for the pid we displaced? */
1975  if (ptid_equal (displaced->step_ptid, null_ptid)
1976  || ! ptid_equal (displaced->step_ptid, event_ptid))
1977  return 0;
1978 
1979  old_cleanups = make_cleanup (displaced_step_clear_cleanup, displaced);
1980 
1981  displaced_step_restore (displaced, displaced->step_ptid);
1982 
1983  /* Fixup may need to read memory/registers. Switch to the thread
1984  that we're fixing up. Also, target_stopped_by_watchpoint checks
1985  the current thread. */
1986  switch_to_thread (event_ptid);
1987 
1988  /* Did the instruction complete successfully? */
1989  if (signal == GDB_SIGNAL_TRAP
1993  {
1994  /* Fix up the resulting state. */
1996  displaced->step_closure,
1997  displaced->step_original,
1998  displaced->step_copy,
1999  get_thread_regcache (displaced->step_ptid));
2000  ret = 1;
2001  }
2002  else
2003  {
2004  /* Since the instruction didn't complete, all we can do is
2005  relocate the PC. */
2006  struct regcache *regcache = get_thread_regcache (event_ptid);
2008 
2009  pc = displaced->step_original + (pc - displaced->step_copy);
2011  ret = -1;
2012  }
2013 
2014  do_cleanups (old_cleanups);
2015 
2016  displaced->step_ptid = null_ptid;
2017 
2018  return ret;
2019 }
2020 
2021 /* Data to be passed around while handling an event. This data is
2022  discarded between events. */
2024 {
2026  /* The thread that got the event, if this was a thread event; NULL
2027  otherwise. */
2029 
2034  const char *stop_func_name;
2036 
2037  /* True if the event thread hit the single-step breakpoint of
2038  another thread. Thus the event doesn't cause a stop, the thread
2039  needs to be single-stepped past the single-step breakpoint before
2040  we can switch back to the original stepping thread. */
2042 };
2043 
2044 /* Clear ECS and set it to point at TP. */
2045 
2046 static void
2048 {
2049  memset (ecs, 0, sizeof (*ecs));
2050  ecs->event_thread = tp;
2051  ecs->ptid = tp->ptid;
2052 }
2053 
2054 static void keep_going_pass_signal (struct execution_control_state *ecs);
2055 static void prepare_to_wait (struct execution_control_state *ecs);
2056 static int keep_going_stepped_thread (struct thread_info *tp);
2057 static step_over_what thread_still_needs_step_over (struct thread_info *tp);
2058 
2059 /* Are there any pending step-over requests? If so, run all we can
2060  now and return true. Otherwise, return false. */
2061 
2062 static int
2064 {
2065  struct thread_info *tp, *next;
2066 
2067  /* Don't start a new step-over if we already have an in-line
2068  step-over operation ongoing. */
2069  if (step_over_info_valid_p ())
2070  return 0;
2071 
2072  for (tp = step_over_queue_head; tp != NULL; tp = next)
2073  {
2074  struct execution_control_state ecss;
2075  struct execution_control_state *ecs = &ecss;
2076  step_over_what step_what;
2077  int must_be_in_line;
2078 
2079  gdb_assert (!tp->stop_requested);
2080 
2081  next = thread_step_over_chain_next (tp);
2082 
2083  /* If this inferior already has a displaced step in process,
2084  don't start a new one. */
2086  continue;
2087 
2088  step_what = thread_still_needs_step_over (tp);
2089  must_be_in_line = ((step_what & STEP_OVER_WATCHPOINT)
2090  || ((step_what & STEP_OVER_BREAKPOINT)
2091  && !use_displaced_stepping (tp)));
2092 
2093  /* We currently stop all threads of all processes to step-over
2094  in-line. If we need to start a new in-line step-over, let
2095  any pending displaced steps finish first. */
2096  if (must_be_in_line && displaced_step_in_progress_any_inferior ())
2097  return 0;
2098 
2100 
2101  if (step_over_queue_head == NULL)
2102  {
2103  if (debug_infrun)
2105  "infrun: step-over queue now empty\n");
2106  }
2107 
2108  if (tp->control.trap_expected
2109  || tp->resumed
2110  || tp->executing)
2111  {
2112  internal_error (__FILE__, __LINE__,
2113  "[%s] has inconsistent state: "
2114  "trap_expected=%d, resumed=%d, executing=%d\n",
2115  target_pid_to_str (tp->ptid),
2116  tp->control.trap_expected,
2117  tp->resumed,
2118  tp->executing);
2119  }
2120 
2121  if (debug_infrun)
2123  "infrun: resuming [%s] for step-over\n",
2124  target_pid_to_str (tp->ptid));
2125 
2126  /* keep_going_pass_signal skips the step-over if the breakpoint
2127  is no longer inserted. In all-stop, we want to keep looking
2128  for a thread that needs a step-over instead of resuming TP,
2129  because we wouldn't be able to resume anything else until the
2130  target stops again. In non-stop, the resume always resumes
2131  only TP, so it's OK to let the thread resume freely. */
2132  if (!target_is_non_stop_p () && !step_what)
2133  continue;
2134 
2135  switch_to_thread (tp->ptid);
2136  reset_ecs (ecs, tp);
2137  keep_going_pass_signal (ecs);
2138 
2139  if (!ecs->wait_some_more)
2140  error (_("Command aborted."));
2141 
2142  gdb_assert (tp->resumed);
2143 
2144  /* If we started a new in-line step-over, we're done. */
2145  if (step_over_info_valid_p ())
2146  {
2148  return 1;
2149  }
2150 
2151  if (!target_is_non_stop_p ())
2152  {
2153  /* On all-stop, shouldn't have resumed unless we needed a
2154  step over. */
2157 
2158  /* With remote targets (at least), in all-stop, we can't
2159  issue any further remote commands until the program stops
2160  again. */
2161  return 1;
2162  }
2163 
2164  /* Either the thread no longer needed a step-over, or a new
2165  displaced stepping sequence started. Even in the latter
2166  case, continue looking. Maybe we can also start another
2167  displaced step on a thread of other process. */
2168  }
2169 
2170  return 0;
2171 }
2172 
2173 /* Update global variables holding ptids to hold NEW_PTID if they were
2174  holding OLD_PTID. */
2175 static void
2177 {
2178  struct displaced_step_inferior_state *displaced;
2179 
2180  if (ptid_equal (inferior_ptid, old_ptid))
2181  inferior_ptid = new_ptid;
2182 
2183  for (displaced = displaced_step_inferior_states;
2184  displaced;
2185  displaced = displaced->next)
2186  {
2187  if (ptid_equal (displaced->step_ptid, old_ptid))
2188  displaced->step_ptid = new_ptid;
2189  }
2190 }
2191 
2192 
2193 
2194 static const char schedlock_off[] = "off";
2195 static const char schedlock_on[] = "on";
2196 static const char schedlock_step[] = "step";
2197 static const char schedlock_replay[] = "replay";
2198 static const char *const scheduler_enums[] = {
2199  schedlock_off,
2200  schedlock_on,
2203  NULL
2204 };
2205 static const char *scheduler_mode = schedlock_replay;
2206 static void
2207 show_scheduler_mode (struct ui_file *file, int from_tty,
2208  struct cmd_list_element *c, const char *value)
2209 {
2210  fprintf_filtered (file,
2211  _("Mode for locking scheduler "
2212  "during execution is \"%s\".\n"),
2213  value);
2214 }
2215 
2216 static void
2217 set_schedlock_func (const char *args, int from_tty, struct cmd_list_element *c)
2218 {
2220  {
2222  error (_("Target '%s' cannot support this command."), target_shortname);
2223  }
2224 }
2225 
2226 /* True if execution commands resume all threads of all processes by
2227  default; otherwise, resume only threads of the current inferior
2228  process. */
2229 int sched_multi = 0;
2230 
2231 /* Try to setup for software single stepping over the specified location.
2232  Return 1 if target_resume() should use hardware single step.
2233 
2234  GDBARCH the current gdbarch.
2235  PC the location to step over. */
2236 
2237 static int
2239 {
2240  int hw_step = 1;
2241 
2245 
2246  return hw_step;
2247 }
2248 
2249 /* See infrun.h. */
2250 
2251 ptid_t
2253 {
2254  ptid_t resume_ptid;
2255 
2256  if (non_stop)
2257  {
2258  /* With non-stop mode on, threads are always handled
2259  individually. */
2260  resume_ptid = inferior_ptid;
2261  }
2262  else if ((scheduler_mode == schedlock_on)
2263  || (scheduler_mode == schedlock_step && step))
2264  {
2265  /* User-settable 'scheduler' mode requires solo thread
2266  resume. */
2267  resume_ptid = inferior_ptid;
2268  }
2269  else if ((scheduler_mode == schedlock_replay)
2271  {
2272  /* User-settable 'scheduler' mode requires solo thread resume in replay
2273  mode. */
2274  resume_ptid = inferior_ptid;
2275  }
2277  {
2278  /* Resume all threads of the current process (and none of other
2279  processes). */
2280  resume_ptid = pid_to_ptid (ptid_get_pid (inferior_ptid));
2281  }
2282  else
2283  {
2284  /* Resume all threads of all processes. */
2285  resume_ptid = RESUME_ALL;
2286  }
2287 
2288  return resume_ptid;
2289 }
2290 
2291 /* Return a ptid representing the set of threads that we will resume,
2292  in the perspective of the target, assuming run control handling
2293  does not require leaving some threads stopped (e.g., stepping past
2294  breakpoint). USER_STEP indicates whether we're about to start the
2295  target for a stepping command. */
2296 
2297 static ptid_t
2298 internal_resume_ptid (int user_step)
2299 {
2300  /* In non-stop, we always control threads individually. Note that
2301  the target may always work in non-stop mode even with "set
2302  non-stop off", in which case user_visible_resume_ptid could
2303  return a wildcard ptid. */
2304  if (target_is_non_stop_p ())
2305  return inferior_ptid;
2306  else
2307  return user_visible_resume_ptid (user_step);
2308 }
2309 
2310 /* Wrapper for target_resume, that handles infrun-specific
2311  bookkeeping. */
2312 
2313 static void
2314 do_target_resume (ptid_t resume_ptid, int step, enum gdb_signal sig)
2315 {
2316  struct thread_info *tp = inferior_thread ();
2317 
2318  gdb_assert (!tp->stop_requested);
2319 
2320  /* Install inferior's terminal modes. */
2322 
2323  /* Avoid confusing the next resume, if the next stop/resume
2324  happens to apply to another thread. */
2325  tp->suspend.stop_signal = GDB_SIGNAL_0;
2326 
2327  /* Advise target which signals may be handled silently.
2328 
2329  If we have removed breakpoints because we are stepping over one
2330  in-line (in any thread), we need to receive all signals to avoid
2331  accidentally skipping a breakpoint during execution of a signal
2332  handler.
2333 
2334  Likewise if we're displaced stepping, otherwise a trap for a
2335  breakpoint in a signal handler might be confused with the
2336  displaced step finishing. We don't make the displaced_step_fixup
2337  step distinguish the cases instead, because:
2338 
2339  - a backtrace while stopped in the signal handler would show the
2340  scratch pad as frame older than the signal handler, instead of
2341  the real mainline code.
2342 
2343  - when the thread is later resumed, the signal handler would
2344  return to the scratch pad area, which would no longer be
2345  valid. */
2346  if (step_over_info_valid_p ()
2348  target_pass_signals (0, NULL);
2349  else
2350  target_pass_signals ((int) GDB_SIGNAL_LAST, signal_pass);
2351 
2352  target_resume (resume_ptid, step, sig);
2353 
2355 }
2356 
2357 /* Resume the inferior. SIG is the signal to give the inferior
2358  (GDB_SIGNAL_0 for none). Note: don't call this directly; instead
2359  call 'resume', which handles exceptions. */
2360 
2361 static void
2362 resume_1 (enum gdb_signal sig)
2363 {
2364  struct regcache *regcache = get_current_regcache ();
2365  struct gdbarch *gdbarch = regcache->arch ();
2366  struct thread_info *tp = inferior_thread ();
2368  const address_space *aspace = regcache->aspace ();
2369  ptid_t resume_ptid;
2370  /* This represents the user's step vs continue request. When
2371  deciding whether "set scheduler-locking step" applies, it's the
2372  user's intention that counts. */
2373  const int user_step = tp->control.stepping_command;
2374  /* This represents what we'll actually request the target to do.
2375  This can decay from a step to a continue, if e.g., we need to
2376  implement single-stepping with breakpoints (software
2377  single-step). */
2378  int step;
2379 
2380  gdb_assert (!tp->stop_requested);
2382 
2383  if (tp->suspend.waitstatus_pending_p)
2384  {
2385  if (debug_infrun)
2386  {
2387  std::string statstr
2389 
2391  "infrun: resume: thread %s has pending wait "
2392  "status %s (currently_stepping=%d).\n",
2393  target_pid_to_str (tp->ptid), statstr.c_str (),
2394  currently_stepping (tp));
2395  }
2396 
2397  tp->resumed = 1;
2398 
2399  /* FIXME: What should we do if we are supposed to resume this
2400  thread with a signal? Maybe we should maintain a queue of
2401  pending signals to deliver. */
2402  if (sig != GDB_SIGNAL_0)
2403  {
2404  warning (_("Couldn't deliver signal %s to %s."),
2406  }
2407 
2408  tp->suspend.stop_signal = GDB_SIGNAL_0;
2409 
2410  if (target_can_async_p ())
2411  target_async (1);
2412  return;
2413  }
2414 
2415  tp->stepped_breakpoint = 0;
2416 
2417  /* Depends on stepped_breakpoint. */
2418  step = currently_stepping (tp);
2419 
2420  if (current_inferior ()->waiting_for_vfork_done)
2421  {
2422  /* Don't try to single-step a vfork parent that is waiting for
2423  the child to get out of the shared memory region (by exec'ing
2424  or exiting). This is particularly important on software
2425  single-step archs, as the child process would trip on the
2426  software single step breakpoint inserted for the parent
2427  process. Since the parent will not actually execute any
2428  instruction until the child is out of the shared region (such
2429  are vfork's semantics), it is safe to simply continue it.
2430  Eventually, we'll see a TARGET_WAITKIND_VFORK_DONE event for
2431  the parent, and tell it to `keep_going', which automatically
2432  re-sets it stepping. */
2433  if (debug_infrun)
2435  "infrun: resume : clear step\n");
2436  step = 0;
2437  }
2438 
2439  if (debug_infrun)
2441  "infrun: resume (step=%d, signal=%s), "
2442  "trap_expected=%d, current thread [%s] at %s\n",
2443  step, gdb_signal_to_symbol_string (sig),
2444  tp->control.trap_expected,
2446  paddress (gdbarch, pc));
2447 
2448  /* Normally, by the time we reach `resume', the breakpoints are either
2449  removed or inserted, as appropriate. The exception is if we're sitting
2450  at a permanent breakpoint; we need to step over it, but permanent
2451  breakpoints can't be removed. So we have to test for it here. */
2452  if (breakpoint_here_p (aspace, pc) == permanent_breakpoint_here)
2453  {
2454  if (sig != GDB_SIGNAL_0)
2455  {
2456  /* We have a signal to pass to the inferior. The resume
2457  may, or may not take us to the signal handler. If this
2458  is a step, we'll need to stop in the signal handler, if
2459  there's one, (if the target supports stepping into
2460  handlers), or in the next mainline instruction, if
2461  there's no handler. If this is a continue, we need to be
2462  sure to run the handler with all breakpoints inserted.
2463  In all cases, set a breakpoint at the current address
2464  (where the handler returns to), and once that breakpoint
2465  is hit, resume skipping the permanent breakpoint. If
2466  that breakpoint isn't hit, then we've stepped into the
2467  signal handler (or hit some other event). We'll delete
2468  the step-resume breakpoint then. */
2469 
2470  if (debug_infrun)
2472  "infrun: resume: skipping permanent breakpoint, "
2473  "deliver signal first\n");
2474 
2476  tp->control.trap_expected = 0;
2477 
2478  if (tp->control.step_resume_breakpoint == NULL)
2479  {
2480  /* Set a "high-priority" step-resume, as we don't want
2481  user breakpoints at PC to trigger (again) when this
2482  hits. */
2485 
2487  }
2488 
2489  insert_breakpoints ();
2490  }
2491  else
2492  {
2493  /* There's no signal to pass, we can go ahead and skip the
2494  permanent breakpoint manually. */
2495  if (debug_infrun)
2497  "infrun: resume: skipping permanent breakpoint\n");
2499  /* Update pc to reflect the new address from which we will
2500  execute instructions. */
2501  pc = regcache_read_pc (regcache);
2502 
2503  if (step)
2504  {
2505  /* We've already advanced the PC, so the stepping part
2506  is done. Now we need to arrange for a trap to be
2507  reported to handle_inferior_event. Set a breakpoint
2508  at the current PC, and run to it. Don't update
2509  prev_pc, because if we end in
2510  switch_back_to_stepped_thread, we want the "expected
2511  thread advanced also" branch to be taken. IOW, we
2512  don't want this thread to step further from PC
2513  (overstep). */
2515  insert_single_step_breakpoint (gdbarch, aspace, pc);
2516  insert_breakpoints ();
2517 
2518  resume_ptid = internal_resume_ptid (user_step);
2519  do_target_resume (resume_ptid, 0, GDB_SIGNAL_0);
2520  tp->resumed = 1;
2521  return;
2522  }
2523  }
2524  }
2525 
2526  /* If we have a breakpoint to step over, make sure to do a single
2527  step only. Same if we have software watchpoints. */
2529  tp->control.may_range_step = 0;
2530 
2531  /* If enabled, step over breakpoints by executing a copy of the
2532  instruction at a different address.
2533 
2534  We can't use displaced stepping when we have a signal to deliver;
2535  the comments for displaced_step_prepare explain why. The
2536  comments in the handle_inferior event for dealing with 'random
2537  signals' explain what we do instead.
2538 
2539  We can't use displaced stepping when we are waiting for vfork_done
2540  event, displaced stepping breaks the vfork child similarly as single
2541  step software breakpoint. */
2542  if (tp->control.trap_expected
2543  && use_displaced_stepping (tp)
2544  && !step_over_info_valid_p ()
2545  && sig == GDB_SIGNAL_0
2546  && !current_inferior ()->waiting_for_vfork_done)
2547  {
2548  int prepared = displaced_step_prepare (inferior_ptid);
2549 
2550  if (prepared == 0)
2551  {
2552  if (debug_infrun)
2554  "Got placed in step-over queue\n");
2555 
2556  tp->control.trap_expected = 0;
2557  return;
2558  }
2559  else if (prepared < 0)
2560  {
2561  /* Fallback to stepping over the breakpoint in-line. */
2562 
2563  if (target_is_non_stop_p ())
2564  stop_all_threads ();
2565 
2568 
2569  step = maybe_software_singlestep (gdbarch, pc);
2570 
2571  insert_breakpoints ();
2572  }
2573  else if (prepared > 0)
2574  {
2575  struct displaced_step_inferior_state *displaced;
2576 
2577  /* Update pc to reflect the new address from which we will
2578  execute instructions due to displaced stepping. */
2580 
2583  displaced->step_closure);
2584  }
2585  }
2586 
2587  /* Do we need to do it the hard way, w/temp breakpoints? */
2588  else if (step)
2589  step = maybe_software_singlestep (gdbarch, pc);
2590 
2591  /* Currently, our software single-step implementation leads to different
2592  results than hardware single-stepping in one situation: when stepping
2593  into delivering a signal which has an associated signal handler,
2594  hardware single-step will stop at the first instruction of the handler,
2595  while software single-step will simply skip execution of the handler.
2596 
2597  For now, this difference in behavior is accepted since there is no
2598  easy way to actually implement single-stepping into a signal handler
2599  without kernel support.
2600 
2601  However, there is one scenario where this difference leads to follow-on
2602  problems: if we're stepping off a breakpoint by removing all breakpoints
2603  and then single-stepping. In this case, the software single-step
2604  behavior means that even if there is a *breakpoint* in the signal
2605  handler, GDB still would not stop.
2606 
2607  Fortunately, we can at least fix this particular issue. We detect
2608  here the case where we are about to deliver a signal while software
2609  single-stepping with breakpoints removed. In this situation, we
2610  revert the decisions to remove all breakpoints and insert single-
2611  step breakpoints, and instead we install a step-resume breakpoint
2612  at the current address, deliver the signal without stepping, and
2613  once we arrive back at the step-resume breakpoint, actually step
2614  over the breakpoint we originally wanted to step over. */
2616  && sig != GDB_SIGNAL_0
2617  && step_over_info_valid_p ())
2618  {
2619  /* If we have nested signals or a pending signal is delivered
2620  immediately after a handler returns, might might already have
2621  a step-resume breakpoint set on the earlier handler. We cannot
2622  set another step-resume breakpoint; just continue on until the
2623  original breakpoint is hit. */
2624  if (tp->control.step_resume_breakpoint == NULL)
2625  {
2628  }
2629 
2631 
2633  tp->control.trap_expected = 0;
2634 
2635  insert_breakpoints ();
2636  }
2637 
2638  /* If STEP is set, it's a request to use hardware stepping
2639  facilities. But in that case, we should never
2640  use singlestep breakpoint. */
2642 
2643  /* Decide the set of threads to ask the target to resume. */
2644  if (tp->control.trap_expected)
2645  {
2646  /* We're allowing a thread to run past a breakpoint it has
2647  hit, either by single-stepping the thread with the breakpoint
2648  removed, or by displaced stepping, with the breakpoint inserted.
2649  In the former case, we need to single-step only this thread,
2650  and keep others stopped, as they can miss this breakpoint if
2651  allowed to run. That's not really a problem for displaced
2652  stepping, but, we still keep other threads stopped, in case
2653  another thread is also stopped for a breakpoint waiting for
2654  its turn in the displaced stepping queue. */
2655  resume_ptid = inferior_ptid;
2656  }
2657  else
2658  resume_ptid = internal_resume_ptid (user_step);
2659 
2661  && step && breakpoint_inserted_here_p (aspace, pc))
2662  {
2663  /* There are two cases where we currently need to step a
2664  breakpoint instruction when we have a signal to deliver:
2665 
2666  - See handle_signal_stop where we handle random signals that
2667  could take out us out of the stepping range. Normally, in
2668  that case we end up continuing (instead of stepping) over the
2669  signal handler with a breakpoint at PC, but there are cases
2670  where we should _always_ single-step, even if we have a
2671  step-resume breakpoint, like when a software watchpoint is
2672  set. Assuming single-stepping and delivering a signal at the
2673  same time would takes us to the signal handler, then we could
2674  have removed the breakpoint at PC to step over it. However,
2675  some hardware step targets (like e.g., Mac OS) can't step
2676  into signal handlers, and for those, we need to leave the
2677  breakpoint at PC inserted, as otherwise if the handler
2678  recurses and executes PC again, it'll miss the breakpoint.
2679  So we leave the breakpoint inserted anyway, but we need to
2680  record that we tried to step a breakpoint instruction, so
2681  that adjust_pc_after_break doesn't end up confused.
2682 
2683  - In non-stop if we insert a breakpoint (e.g., a step-resume)
2684  in one thread after another thread that was stepping had been
2685  momentarily paused for a step-over. When we re-resume the
2686  stepping thread, it may be resumed from that address with a
2687  breakpoint that hasn't trapped yet. Seen with
2688  gdb.threads/non-stop-fair-events.exp, on targets that don't
2689  do displaced stepping. */
2690 
2691  if (debug_infrun)
2693  "infrun: resume: [%s] stepped breakpoint\n",
2694  target_pid_to_str (tp->ptid));
2695 
2696  tp->stepped_breakpoint = 1;
2697 
2698  /* Most targets can step a breakpoint instruction, thus
2699  executing it normally. But if this one cannot, just
2700  continue and we will hit it anyway. */
2702  step = 0;
2703  }
2704 
2705  if (debug_displaced
2706  && tp->control.trap_expected
2707  && use_displaced_stepping (tp)
2708  && !step_over_info_valid_p ())
2709  {
2710  struct regcache *resume_regcache = get_thread_regcache (tp->ptid);
2711  struct gdbarch *resume_gdbarch = resume_regcache->arch ();
2712  CORE_ADDR actual_pc = regcache_read_pc (resume_regcache);
2713  gdb_byte buf[4];
2714 
2715  fprintf_unfiltered (gdb_stdlog, "displaced: run %s: ",
2716  paddress (resume_gdbarch, actual_pc));
2717  read_memory (actual_pc, buf, sizeof (buf));
2718  displaced_step_dump_bytes (gdb_stdlog, buf, sizeof (buf));
2719  }
2720 
2721  if (tp->control.may_range_step)
2722  {
2723  /* If we're resuming a thread with the PC out of the step
2724  range, then we're doing some nested/finer run control
2725  operation, like stepping the thread out of the dynamic
2726  linker or the displaced stepping scratch pad. We
2727  shouldn't have allowed a range step then. */
2729  }
2730 
2731  do_target_resume (resume_ptid, step, sig);
2732  tp->resumed = 1;
2733 }
2734 
2735 /* Resume the inferior. SIG is the signal to give the inferior
2736  (GDB_SIGNAL_0 for none). This is a wrapper around 'resume_1' that
2737  rolls back state on error. */
2738 
2739 void
2740 resume (gdb_signal sig)
2741 {
2742  TRY
2743  {
2744  resume_1 (sig);
2745  }
2746  CATCH (ex, RETURN_MASK_ALL)
2747  {
2748  /* If resuming is being aborted for any reason, delete any
2749  single-step breakpoint resume_1 may have created, to avoid
2750  confusing the following resumption, and to avoid leaving
2751  single-step breakpoints perturbing other threads, in case
2752  we're running in non-stop mode. */
2753  if (inferior_ptid != null_ptid)
2755  throw_exception (ex);
2756  }
2757  END_CATCH
2758 }
2759 
2760 
2761 /* Proceeding. */
2762 
2763 /* See infrun.h. */
2764 
2765 /* Counter that tracks number of user visible stops. This can be used
2766  to tell whether a command has proceeded the inferior past the
2767  current location. This allows e.g., inferior function calls in
2768  breakpoint commands to not interrupt the command list. When the
2769  call finishes successfully, the inferior is standing at the same
2770  breakpoint as if nothing happened (and so we don't call
2771  normal_stop). */
2773 
2774 /* See infrun.h. */
2775 
2776 ULONGEST
2778 {
2779  return current_stop_id;
2780 }
2781 
2782 /* Called when we report a user visible stop. */
2783 
2784 static void
2786 {
2787  current_stop_id++;
2788 }
2789 
2790 /* Clear out all variables saying what to do when inferior is continued.
2791  First do this, then set the ones you want, then call `proceed'. */
2792 
2793 static void
2795 {
2796  if (debug_infrun)
2798  "infrun: clear_proceed_status_thread (%s)\n",
2799  target_pid_to_str (tp->ptid));
2800 
2801  /* If we're starting a new sequence, then the previous finished
2802  single-step is no longer relevant. */
2803  if (tp->suspend.waitstatus_pending_p)
2804  {
2806  {
2807  if (debug_infrun)
2809  "infrun: clear_proceed_status: pending "
2810  "event of %s was a finished step. "
2811  "Discarding.\n",
2812  target_pid_to_str (tp->ptid));
2813 
2814  tp->suspend.waitstatus_pending_p = 0;
2816  }
2817  else if (debug_infrun)
2818  {
2819  std::string statstr
2821 
2823  "infrun: clear_proceed_status_thread: thread %s "
2824  "has pending wait status %s "
2825  "(currently_stepping=%d).\n",
2826  target_pid_to_str (tp->ptid), statstr.c_str (),
2827  currently_stepping (tp));
2828  }
2829  }
2830 
2831  /* If this signal should not be seen by program, give it zero.
2832  Used for debugging signals. */
2834  tp->suspend.stop_signal = GDB_SIGNAL_0;
2835 
2837  tp->thread_fsm = NULL;
2838 
2839  tp->control.trap_expected = 0;
2840  tp->control.step_range_start = 0;
2841  tp->control.step_range_end = 0;
2842  tp->control.may_range_step = 0;
2846  tp->control.step_start_function = NULL;
2847  tp->stop_requested = 0;
2848 
2849  tp->control.stop_step = 0;
2850 
2851  tp->control.proceed_to_finish = 0;
2852 
2853  tp->control.stepping_command = 0;
2854 
2855  /* Discard any remaining commands or status from previous stop. */
2857 }
2858 
2859 void
2861 {
2862  /* With scheduler-locking replay, stop replaying other threads if we're
2863  not replaying the user-visible resume ptid.
2864 
2865  This is a convenience feature to not require the user to explicitly
2866  stop replaying the other threads. We're assuming that the user's
2867  intent is to resume tracing the recorded process. */
2873 
2874  if (!non_stop)
2875  {
2876  struct thread_info *tp;
2877  ptid_t resume_ptid;
2878 
2879  resume_ptid = user_visible_resume_ptid (step);
2880 
2881  /* In all-stop mode, delete the per-thread status of all threads
2882  we're about to resume, implicitly and explicitly. */
2884  {
2885  if (!ptid_match (tp->ptid, resume_ptid))
2886  continue;
2888  }
2889  }
2890 
2892  {
2893  struct inferior *inferior;
2894 
2895  if (non_stop)
2896  {
2897  /* If in non-stop mode, only delete the per-thread status of
2898  the current thread. */
2900  }
2901 
2904  }
2905 
2907 }
2908 
2909 /* Returns true if TP is still stopped at a breakpoint that needs
2910  stepping-over in order to make progress. If the breakpoint is gone
2911  meanwhile, we can skip the whole step-over dance. */
2912 
2913 static int
2915 {
2916  if (tp->stepping_over_breakpoint)
2917  {
2918  struct regcache *regcache = get_thread_regcache (tp->ptid);
2919 
2923  return 1;
2924 
2925  tp->stepping_over_breakpoint = 0;
2926  }
2927 
2928  return 0;
2929 }
2930 
2931 /* Check whether thread TP still needs to start a step-over in order
2932  to make progress when resumed. Returns an bitwise or of enum
2933  step_over_what bits, indicating what needs to be stepped over. */
2934 
2935 static step_over_what
2937 {
2938  step_over_what what = 0;
2939 
2941  what |= STEP_OVER_BREAKPOINT;
2942 
2943  if (tp->stepping_over_watchpoint
2945  what |= STEP_OVER_WATCHPOINT;
2946 
2947  return what;
2948 }
2949 
2950 /* Returns true if scheduler locking applies. STEP indicates whether
2951  we're about to do a step/next-like command to a thread. */
2952 
2953 static int
2955 {
2956  return (scheduler_mode == schedlock_on
2958  && tp->control.stepping_command)
2962 }
2963 
2964 /* Basic routine for continuing the program in various fashions.
2965 
2966  ADDR is the address to resume at, or -1 for resume where stopped.
2967  SIGGNAL is the signal to give it, or 0 for none,
2968  or -1 for act according to how it stopped.
2969  STEP is nonzero if should trap after one instruction.
2970  -1 means return after that and print nothing.
2971  You should probably set various step_... variables
2972  before calling here, if you are stepping.
2973 
2974  You should call clear_proceed_status before calling proceed. */
2975 
2976 void
2977 proceed (CORE_ADDR addr, enum gdb_signal siggnal)
2978 {
2979  struct regcache *regcache;
2980  struct gdbarch *gdbarch;
2981  struct thread_info *tp;
2982  CORE_ADDR pc;
2983  ptid_t resume_ptid;
2984  struct execution_control_state ecss;
2985  struct execution_control_state *ecs = &ecss;
2986  struct cleanup *old_chain;
2987  int started;
2988 
2989  /* If we're stopped at a fork/vfork, follow the branch set by the
2990  "set follow-fork-mode" command; otherwise, we'll just proceed
2991  resuming the current thread. */
2992  if (!follow_fork ())
2993  {
2994  /* The target for some reason decided not to resume. */
2995  normal_stop ();
2996  if (target_can_async_p ())
2998  return;
2999  }
3000 
3001  /* We'll update this if & when we switch to a new thread. */
3003 
3005  gdbarch = regcache->arch ();
3006  const address_space *aspace = regcache->aspace ();
3007 
3008  pc = regcache_read_pc (regcache);
3009  tp = inferior_thread ();
3010 
3011  /* Fill in with reasonable starting values. */
3013 
3015 
3016  if (addr == (CORE_ADDR) -1)
3017  {
3018  if (pc == stop_pc
3019  && breakpoint_here_p (aspace, pc) == ordinary_breakpoint_here
3021  /* There is a breakpoint at the address we will resume at,
3022  step one instruction before inserting breakpoints so that
3023  we do not stop right away (and report a second hit at this
3024  breakpoint).
3025 
3026  Note, we don't do this in reverse, because we won't
3027  actually be executing the breakpoint insn anyway.
3028  We'll be (un-)executing the previous instruction. */
3029  tp->stepping_over_breakpoint = 1;
3032  get_current_frame ()))
3033  /* We stepped onto an instruction that needs to be stepped
3034  again before re-inserting the breakpoint, do so. */
3035  tp->stepping_over_breakpoint = 1;
3036  }
3037  else
3038  {
3039  regcache_write_pc (regcache, addr);
3040  }
3041 
3042  if (siggnal != GDB_SIGNAL_DEFAULT)
3043  tp->suspend.stop_signal = siggnal;
3044 
3046 
3047  /* If an exception is thrown from this point on, make sure to
3048  propagate GDB's knowledge of the executing state to the
3049  frontend/user running state. */
3050  old_chain = make_cleanup (finish_thread_state_cleanup, &resume_ptid);
3051 
3052  /* Even if RESUME_PTID is a wildcard, and we end up resuming fewer
3053  threads (e.g., we might need to set threads stepping over
3054  breakpoints first), from the user/frontend's point of view, all
3055  threads in RESUME_PTID are now running. Unless we're calling an
3056  inferior function, as in that case we pretend the inferior
3057  doesn't run at all. */
3058  if (!tp->control.in_infcall)
3059  set_running (resume_ptid, 1);
3060 
3061  if (debug_infrun)
3063  "infrun: proceed (addr=%s, signal=%s)\n",
3064  paddress (gdbarch, addr),
3065  gdb_signal_to_symbol_string (siggnal));
3066 
3067  annotate_starting ();
3068 
3069  /* Make sure that output from GDB appears before output from the
3070  inferior. */
3072 
3073  /* Since we've marked the inferior running, give it the terminal. A
3074  QUIT/Ctrl-C from here on is forwarded to the target (which can
3075  still detect attempts to unblock a stuck connection with repeated
3076  Ctrl-C from within target_pass_ctrlc). */
3078 
3079  /* In a multi-threaded task we may select another thread and
3080  then continue or step.
3081 
3082  But if a thread that we're resuming had stopped at a breakpoint,
3083  it will immediately cause another breakpoint stop without any
3084  execution (i.e. it will report a breakpoint hit incorrectly). So
3085  we must step over it first.
3086 
3087  Look for threads other than the current (TP) that reported a
3088  breakpoint hit and haven't been resumed yet since. */
3089 
3090  /* If scheduler locking applies, we can avoid iterating over all
3091  threads. */
3092  if (!non_stop && !schedlock_applies (tp))
3093  {
3094  struct thread_info *current = tp;
3095 
3097  {
3098  /* Ignore the current thread here. It's handled
3099  afterwards. */
3100  if (tp == current)
3101  continue;
3102 
3103  /* Ignore threads of processes we're not resuming. */
3104  if (!ptid_match (tp->ptid, resume_ptid))
3105  continue;
3106 
3107  if (!thread_still_needs_step_over (tp))
3108  continue;
3109 
3111 
3112  if (debug_infrun)
3114  "infrun: need to step-over [%s] first\n",
3115  target_pid_to_str (tp->ptid));
3116 
3118  }
3119 
3120  tp = current;
3121  }
3122 
3123  /* Enqueue the current thread last, so that we move all other
3124  threads over their breakpoints first. */
3125  if (tp->stepping_over_breakpoint)
3127 
3128  /* If the thread isn't started, we'll still need to set its prev_pc,
3129  so that switch_back_to_stepped_thread knows the thread hasn't
3130  advanced. Must do this before resuming any thread, as in
3131  all-stop/remote, once we resume we can't send any other packet
3132  until the target stops again. */
3134 
3135  {
3137 
3138  started = start_step_over ();
3139 
3140  if (step_over_info_valid_p ())
3141  {
3142  /* Either this thread started a new in-line step over, or some
3143  other thread was already doing one. In either case, don't
3144  resume anything else until the step-over is finished. */
3145  }
3146  else if (started && !target_is_non_stop_p ())
3147  {
3148  /* A new displaced stepping sequence was started. In all-stop,
3149  we can't talk to the target anymore until it next stops. */
3150  }
3151  else if (!non_stop && target_is_non_stop_p ())
3152  {
3153  /* In all-stop, but the target is always in non-stop mode.
3154  Start all other threads that are implicitly resumed too. */
3156  {
3157  /* Ignore threads of processes we're not resuming. */
3158  if (!ptid_match (tp->ptid, resume_ptid))
3159  continue;
3160 
3161  if (tp->resumed)
3162  {
3163  if (debug_infrun)
3165  "infrun: proceed: [%s] resumed\n",
3166  target_pid_to_str (tp->ptid));
3168  continue;
3169  }
3170 
3172  {
3173  if (debug_infrun)
3175  "infrun: proceed: [%s] needs step-over\n",
3176  target_pid_to_str (tp->ptid));
3177  continue;
3178  }
3179 
3180  if (debug_infrun)
3182  "infrun: proceed: resuming %s\n",
3183  target_pid_to_str (tp->ptid));
3184 
3185  reset_ecs (ecs, tp);
3186  switch_to_thread (tp->ptid);
3187  keep_going_pass_signal (ecs);
3188  if (!ecs->wait_some_more)
3189  error (_("Command aborted."));
3190  }
3191  }
3192  else if (!tp->resumed && !thread_is_in_step_over_chain (tp))
3193  {
3194  /* The thread wasn't started, and isn't queued, run it now. */
3195  reset_ecs (ecs, tp);
3196  switch_to_thread (tp->ptid);
3197  keep_going_pass_signal (ecs);
3198  if (!ecs->wait_some_more)
3199  error (_("Command aborted."));
3200  }
3201  }
3202 
3204 
3205  discard_cleanups (old_chain);
3206 
3207  /* Tell the event loop to wait for it to stop. If the target
3208  supports asynchronous execution, it'll do this from within
3209  target_resume. */
3210  if (!target_can_async_p ())
3212 }
3213 
3214 
3215 /* Start remote-debugging of a machine over a serial link. */
3216 
3217 void
3218 start_remote (int from_tty)
3219 {
3220  struct inferior *inferior;
3221 
3224 
3225  /* Always go on waiting for the target, regardless of the mode. */
3226  /* FIXME: cagney/1999-09-23: At present it isn't possible to
3227  indicate to wait_for_inferior that a target should timeout if
3228  nothing is returned (instead of just blocking). Because of this,
3229  targets expecting an immediate response need to, internally, set
3230  things up so that the target_wait() is forced to eventually
3231  timeout. */
3232  /* FIXME: cagney/1999-09-24: It isn't possible for target_open() to
3233  differentiate to its caller what the state of the target is after
3234  the initial open has been performed. Here we're assuming that
3235  the target has stopped. It should be possible to eventually have
3236  target_open() return to the caller an indication that the target
3237  is currently running and GDB state should be set to the same as
3238  for an async run. */
3239  wait_for_inferior ();
3240 
3241  /* Now that the inferior has stopped, do any bookkeeping like
3242  loading shared libraries. We want to do this before normal_stop,
3243  so that the displayed frame is up to date. */
3244  post_create_inferior (&current_target, from_tty);
3245 
3246  normal_stop ();
3247 }
3248 
3249 /* Initialize static vars when a new inferior begins. */
3250 
3251 void
3253 {
3254  /* These are meaningless until the first time through wait_for_inferior. */
3255 
3257 
3259 
3261 
3263 
3264  /* Discard any skipped inlined frames. */
3266 }
3267 
3268 
3269 
3270 static void handle_inferior_event (struct execution_control_state *ecs);
3271 
3272 static void handle_step_into_function (struct gdbarch *gdbarch,
3273  struct execution_control_state *ecs);
3275  struct execution_control_state *ecs);
3276 static void handle_signal_stop (struct execution_control_state *ecs);
3277 static void check_exception_resume (struct execution_control_state *,
3278  struct frame_info *);
3279 
3280 static void end_stepping_range (struct execution_control_state *ecs);
3281 static void stop_waiting (struct execution_control_state *ecs);
3282 static void keep_going (struct execution_control_state *ecs);
3283 static void process_event_stop_test (struct execution_control_state *ecs);
3285 
3286 /* This function is attached as a "thread_stop_requested" observer.
3287  Cleanup local state that assumed the PTID was to be resumed, and
3288  report the stop to the frontend. */
3289 
3290 static void
3292 {
3293  struct thread_info *tp;
3294 
3295  /* PTID was requested to stop. If the thread was already stopped,
3296  but the user/frontend doesn't know about that yet (e.g., the
3297  thread had been temporarily paused for some step-over), set up
3298  for reporting the stop now. */
3300  if (ptid_match (tp->ptid, ptid))
3301  {
3302  if (tp->state != THREAD_RUNNING)
3303  continue;
3304  if (tp->executing)
3305  continue;
3306 
3307  /* Remove matching threads from the step-over queue, so
3308  start_step_over doesn't try to resume them
3309  automatically. */
3312 
3313  /* If the thread is stopped, but the user/frontend doesn't
3314  know about that yet, queue a pending event, as if the
3315  thread had just stopped now. Unless the thread already had
3316  a pending event. */
3317  if (!tp->suspend.waitstatus_pending_p)
3318  {
3319  tp->suspend.waitstatus_pending_p = 1;
3321  tp->suspend.waitstatus.value.sig = GDB_SIGNAL_0;
3322  }
3323 
3324  /* Clear the inline-frame state, since we're re-processing the
3325  stop. */
3327 
3328  /* If this thread was paused because some other thread was
3329  doing an inline-step over, let that finish first. Once
3330  that happens, we'll restart all threads and consume pending
3331  stop events then. */
3332  if (step_over_info_valid_p ())
3333  continue;
3334 
3335  /* Otherwise we can process the (new) pending event now. Set
3336  it so this pending event is considered by
3337  do_target_wait. */
3338  tp->resumed = 1;
3339  }
3340 }
3341 
3342 static void
3343 infrun_thread_thread_exit (struct thread_info *tp, int silent)
3344 {
3347 }
3348 
3349 /* Delete the step resume, single-step and longjmp/exception resume
3350  breakpoints of TP. */
3351 
3352 static void
3354 {
3358 }
3359 
3360 /* If the target still has execution, call FUNC for each thread that
3361  just stopped. In all-stop, that's all the non-exited threads; in
3362  non-stop, that's the current thread, only. */
3363 
3365  (struct thread_info *tp);
3366 
3367 static void
3369 {
3371  return;
3372 
3373  if (target_is_non_stop_p ())
3374  {
3375  /* If in non-stop mode, only the current thread stopped. */
3376  func (inferior_thread ());
3377  }
3378  else
3379  {
3380  struct thread_info *tp;
3381 
3382  /* In all-stop mode, all threads have stopped. */
3384  {
3385  func (tp);
3386  }
3387  }
3388 }
3389 
3390 /* Delete the step resume and longjmp/exception resume breakpoints of
3391  the threads that just stopped. */
3392 
3393 static void
3395 {
3397 }
3398 
3399 /* Delete the single-step breakpoints of the threads that just
3400  stopped. */
3401 
3402 static void
3404 {
3406 }
3407 
3408 /* A cleanup wrapper. */
3409 
3410 static void
3412 {
3414 }
3415 
3416 /* See infrun.h. */
3417 
3418 void
3419 print_target_wait_results (ptid_t waiton_ptid, ptid_t result_ptid,
3420  const struct target_waitstatus *ws)
3421 {
3422  std::string status_string = target_waitstatus_to_string (ws);
3423  string_file stb;
3424 
3425  /* The text is split over several lines because it was getting too long.
3426  Call fprintf_unfiltered (gdb_stdlog) once so that the text is still
3427  output as a unit; we want only one timestamp printed if debug_timestamp
3428  is set. */
3429 
3430  stb.printf ("infrun: target_wait (%d.%ld.%ld",
3431  ptid_get_pid (waiton_ptid),
3432  ptid_get_lwp (waiton_ptid),
3433  ptid_get_tid (waiton_ptid));
3434  if (ptid_get_pid (waiton_ptid) != -1)
3435  stb.printf (" [%s]", target_pid_to_str (waiton_ptid));
3436  stb.printf (", status) =\n");
3437  stb.printf ("infrun: %d.%ld.%ld [%s],\n",
3438  ptid_get_pid (result_ptid),
3439  ptid_get_lwp (result_ptid),
3440  ptid_get_tid (result_ptid),
3441  target_pid_to_str (result_ptid));
3442  stb.printf ("infrun: %s\n", status_string.c_str ());
3443 
3444  /* This uses %s in part to handle %'s in the text, but also to avoid
3445  a gcc error: the format attribute requires a string literal. */
3446  fprintf_unfiltered (gdb_stdlog, "%s", stb.c_str ());
3447 }
3448 
3449 /* Select a thread at random, out of those which are resumed and have
3450  had events. */
3451 
3452 static struct thread_info *
3454 {
3455  struct thread_info *event_tp;
3456  int num_events = 0;
3457  int random_selector;
3458 
3459  /* First see how many events we have. Count only resumed threads
3460  that have an event pending. */
3461  ALL_NON_EXITED_THREADS (event_tp)
3462  if (ptid_match (event_tp->ptid, waiton_ptid)
3463  && event_tp->resumed
3464  && event_tp->suspend.waitstatus_pending_p)
3465  num_events++;
3466 
3467  if (num_events == 0)
3468  return NULL;
3469 
3470  /* Now randomly pick a thread out of those that have had events. */
3471  random_selector = (int)
3472  ((num_events * (double) rand ()) / (RAND_MAX + 1.0));
3473 
3474  if (debug_infrun && num_events > 1)
3476  "infrun: Found %d events, selecting #%d\n",
3477  num_events, random_selector);
3478 
3479  /* Select the Nth thread that has had an event. */
3480  ALL_NON_EXITED_THREADS (event_tp)
3481  if (ptid_match (event_tp->ptid, waiton_ptid)
3482  && event_tp->resumed
3483  && event_tp->suspend.waitstatus_pending_p)
3484  if (random_selector-- == 0)
3485  break;
3486 
3487  return event_tp;
3488 }
3489 
3490 /* Wrapper for target_wait that first checks whether threads have
3491  pending statuses to report before actually asking the target for
3492  more events. */
3493 
3494 static ptid_t
3496 {
3497  ptid_t event_ptid;
3498  struct thread_info *tp;
3499 
3500  /* First check if there is a resumed thread with a wait status
3501  pending. */
3503  {
3505  }
3506  else
3507  {
3508  if (debug_infrun)
3510  "infrun: Waiting for specific thread %s.\n",
3512 
3513  /* We have a specific thread to check. */
3514  tp = find_thread_ptid (ptid);
3515  gdb_assert (tp != NULL);
3516  if (!tp->suspend.waitstatus_pending_p)
3517  tp = NULL;
3518  }
3519 
3520  if (tp != NULL
3523  {
3524  struct regcache *regcache = get_thread_regcache (tp->ptid);
3525  struct gdbarch *gdbarch = regcache->arch ();
3526  CORE_ADDR pc;
3527  int discard = 0;
3528 
3529  pc = regcache_read_pc (regcache);
3530 
3531  if (pc != tp->suspend.stop_pc)
3532  {
3533  if (debug_infrun)
3535  "infrun: PC of %s changed. was=%s, now=%s\n",
3536  target_pid_to_str (tp->ptid),
3537  paddress (gdbarch, tp->prev_pc),
3538  paddress (gdbarch, pc));
3539  discard = 1;
3540  }
3541  else if (!breakpoint_inserted_here_p (regcache->aspace (), pc))
3542  {
3543  if (debug_infrun)
3545  "infrun: previous breakpoint of %s, at %s gone\n",
3546  target_pid_to_str (tp->ptid),
3547  paddress (gdbarch, pc));
3548 
3549  discard = 1;
3550  }
3551 
3552  if (discard)
3553  {
3554  if (debug_infrun)
3556  "infrun: pending event of %s cancelled.\n",
3557  target_pid_to_str (tp->ptid));
3558 
3561  }
3562  }
3563 
3564  if (tp != NULL)
3565  {
3566  if (debug_infrun)
3567  {
3568  std::string statstr
3570 
3572  "infrun: Using pending wait status %s for %s.\n",
3573  statstr.c_str (),
3574  target_pid_to_str (tp->ptid));
3575  }
3576 
3577  /* Now that we've selected our final event LWP, un-adjust its PC
3578  if it was a software breakpoint (and the target doesn't
3579  always adjust the PC itself). */
3582  {
3583  struct regcache *regcache;
3584  struct gdbarch *gdbarch;
3585  int decr_pc;
3586 
3588  gdbarch = regcache->arch ();
3589 
3591  if (decr_pc != 0)
3592  {
3593  CORE_ADDR pc;
3594 
3595  pc = regcache_read_pc (regcache);
3596  regcache_write_pc (regcache, pc + decr_pc);
3597  }
3598  }
3599 
3601  *status = tp->suspend.waitstatus;
3602  tp->suspend.waitstatus_pending_p = 0;
3603 
3604  /* Wake up the event loop again, until all pending events are
3605  processed. */
3606  if (target_is_async_p ())
3608  return tp->ptid;
3609  }
3610 
3611  /* But if we don't find one, we'll have to wait. */
3612 
3614  event_ptid = deprecated_target_wait_hook (ptid, status, options);
3615  else
3616  event_ptid = target_wait (ptid, status, options);
3617 
3618  return event_ptid;
3619 }
3620 
3621 /* Prepare and stabilize the inferior for detaching it. E.g.,
3622  detaching while a thread is displaced stepping is a recipe for
3623  crashing it, as nothing would readjust the PC out of the scratch
3624  pad. */
3625 
3626 void
3628 {
3629  struct inferior *inf = current_inferior ();
3630  ptid_t pid_ptid = pid_to_ptid (inf->pid);
3631  struct displaced_step_inferior_state *displaced;
3632 
3633  displaced = get_displaced_stepping_state (inf->pid);
3634 
3635  /* Is any thread of this process displaced stepping? If not,
3636  there's nothing else to do. */
3637  if (displaced == NULL || ptid_equal (displaced->step_ptid, null_ptid))
3638  return;
3639 
3640  if (debug_infrun)
3642  "displaced-stepping in-process while detaching");
3643 
3644  scoped_restore restore_detaching = make_scoped_restore (&inf->detaching, true);
3645 
3646  while (!ptid_equal (displaced->step_ptid, null_ptid))
3647  {
3648  struct cleanup *old_chain_2;
3649  struct execution_control_state ecss;
3650  struct execution_control_state *ecs;
3651 
3652  ecs = &ecss;
3653  memset (ecs, 0, sizeof (*ecs));
3654 
3656  /* Flush target cache before starting to handle each event.
3657  Target was running and cache could be stale. This is just a
3658  heuristic. Running threads may modify target memory, but we
3659  don't get any event. */
3661 
3662  ecs->ptid = do_target_wait (pid_ptid, &ecs->ws, 0);
3663 
3664  if (debug_infrun)
3665  print_target_wait_results (pid_ptid, ecs->ptid, &ecs->ws);
3666 
3667  /* If an error happens while handling the event, propagate GDB's
3668  knowledge of the executing state to the frontend/user running
3669  state. */
3671  &minus_one_ptid);
3672 
3673  /* Now figure out what to do with the result of the result. */
3674  handle_inferior_event (ecs);
3675 
3676  /* No error, don't finish the state yet. */
3677  discard_cleanups (old_chain_2);
3678 
3679  /* Breakpoints and watchpoints are not installed on the target
3680  at this point, and signals are passed directly to the
3681  inferior, so this must mean the process is gone. */
3682  if (!ecs->wait_some_more)
3683  {
3684  restore_detaching.release ();
3685  error (_("Program exited while detaching"));
3686  }
3687  }
3688 
3689  restore_detaching.release ();
3690 }
3691 
3692 /* Wait for control to return from inferior to debugger.
3693 
3694  If inferior gets a signal, we may decide to start it up again
3695  instead of returning. That is why there is a loop in this function.
3696  When this function actually returns it means the inferior
3697  should be left stopped and GDB should read more commands. */
3698 
3699 void
3701 {
3702  struct cleanup *old_cleanups;
3703  struct cleanup *thread_state_chain;
3704 
3705  if (debug_infrun)
3707  (gdb_stdlog, "infrun: wait_for_inferior ()\n");
3708 
3709  old_cleanups
3711  NULL);
3712 
3713  /* If an error happens while handling the event, propagate GDB's
3714  knowledge of the executing state to the frontend/user running
3715  state. */
3716  thread_state_chain = make_cleanup (finish_thread_state_cleanup, &minus_one_ptid);
3717 
3718  while (1)
3719  {
3720  struct execution_control_state ecss;
3721  struct execution_control_state *ecs = &ecss;
3722  ptid_t waiton_ptid = minus_one_ptid;
3723 
3724  memset (ecs, 0, sizeof (*ecs));
3725 
3727 
3728  /* Flush target cache before starting to handle each event.
3729  Target was running and cache could be stale. This is just a
3730  heuristic. Running threads may modify target memory, but we
3731  don't get any event. */
3733 
3734  ecs->ptid = do_target_wait (waiton_ptid, &ecs->ws, 0);
3735 
3736  if (debug_infrun)
3737  print_target_wait_results (waiton_ptid, ecs->ptid, &ecs->ws);
3738 
3739  /* Now figure out what to do with the result of the result. */
3740  handle_inferior_event (ecs);
3741 
3742  if (!ecs->wait_some_more)
3743  break;
3744  }
3745 
3746  /* No error, don't finish the state yet. */
3747  discard_cleanups (thread_state_chain);
3748 
3749  do_cleanups (old_cleanups);
3750 }
3751 
3752 /* Cleanup that reinstalls the readline callback handler, if the
3753  target is running in the background. If while handling the target
3754  event something triggered a secondary prompt, like e.g., a
3755  pagination prompt, we'll have removed the callback handler (see
3756  gdb_readline_wrapper_line). Need to do this as we go back to the
3757  event loop, ready to process further input. Note this has no
3758  effect if the handler hasn't actually been removed, because calling
3759  rl_callback_handler_install resets the line buffer, thus losing
3760  input. */
3761 
3762 static void
3764 {
3765  struct ui *ui = current_ui;
3766 
3767  if (!ui->async)
3768  {
3769  /* We're not going back to the top level event loop yet. Don't
3770  install the readline callback, as it'd prep the terminal,
3771  readline-style (raw, noecho) (e.g., --batch). We'll install
3772  it the next time the prompt is displayed, when we're ready
3773  for input. */
3774  return;
3775  }
3776 
3779 }
3780 
3781 /* Clean up the FSMs of threads that are now stopped. In non-stop,
3782  that's just the event thread. In all-stop, that's all threads. */
3783 
3784 static void
3786 {
3787  struct thread_info *thr = ecs->event_thread;
3788 
3789  if (thr != NULL && thr->thread_fsm != NULL)
3790  thread_fsm_clean_up (thr->thread_fsm, thr);
3791 
3792  if (!non_stop)
3793  {
3795  {
3796  if (thr->thread_fsm == NULL)
3797  continue;
3798  if (thr == ecs->event_thread)
3799  continue;
3800 
3801  switch_to_thread (thr->ptid);
3802  thread_fsm_clean_up (thr->thread_fsm, thr);
3803  }
3804 
3805  if (ecs->event_thread != NULL)
3807  }
3808 }
3809 
3810 /* Helper for all_uis_check_sync_execution_done that works on the
3811  current UI. */
3812 
3813 static void
3815 {
3816  struct ui *ui = current_ui;
3817 
3818  if (ui->prompt_state == PROMPT_NEEDED
3819  && ui->async
3821  {
3825  }
3826 }
3827 
3828 /* See infrun.h. */
3829 
3830 void
3832 {
3834  {
3836  }
3837 }
3838 
3839 /* See infrun.h. */
3840 
3841 void
3843 {
3845  {
3848  }
3849 }
3850 
3851 /* Asynchronous version of wait_for_inferior. It is called by the
3852  event loop whenever a change of state is detected on the file
3853  descriptor corresponding to the target. It can be called more than
3854  once to complete a single execution command. In such cases we need
3855  to keep the state in a global variable ECSS. If it is the last time
3856  that this function is called for a single execution command, then
3857  report to the user that the inferior has stopped, and do the
3858  necessary cleanups. */
3859 
3860 void
3861 fetch_inferior_event (void *client_data)
3862 {
3863  struct execution_control_state ecss;
3864  struct execution_control_state *ecs = &ecss;
3865  struct cleanup *old_chain = make_cleanup (null_cleanup, NULL);
3866  struct cleanup *ts_old_chain;
3867  int cmd_done = 0;
3868  ptid_t waiton_ptid = minus_one_ptid;
3869 
3870  memset (ecs, 0, sizeof (*ecs));
3871 
3872  /* Events are always processed with the main UI as current UI. This
3873  way, warnings, debug output, etc. are always consistently sent to
3874  the main console. */
3876 
3877  /* End up with readline processing input, if necessary. */
3879 
3880  /* We're handling a live event, so make sure we're doing live
3881  debugging. If we're looking at traceframes while the target is
3882  running, we're going to need to get back to that mode after
3883  handling the event. */
3884  if (non_stop)
3885  {
3888  }
3889 
3890  gdb::optional<scoped_restore_current_thread> maybe_restore_thread;
3891 
3892  if (non_stop)
3893  /* In non-stop mode, the user/frontend should not notice a thread
3894  switch due to internal events. Make sure we reverse to the
3895  user selected thread and frame after handling the event and
3896  running any breakpoint commands. */
3897  maybe_restore_thread.emplace ();
3898 
3900  /* Flush target cache before starting to handle each event. Target
3901  was running and cache could be stale. This is just a heuristic.
3902  Running threads may modify target memory, but we don't get any
3903  event. */
3905 
3906  scoped_restore save_exec_dir
3908 
3909  ecs->ptid = do_target_wait (waiton_ptid, &ecs->ws,
3911 
3912  if (debug_infrun)
3913  print_target_wait_results (waiton_ptid, ecs->ptid, &ecs->ws);
3914 
3915  /* If an error happens while handling the event, propagate GDB's
3916  knowledge of the executing state to the frontend/user running
3917  state. */
3918  if (!target_is_non_stop_p ())
3920  else
3921  ts_old_chain = make_cleanup (finish_thread_state_cleanup, &ecs->ptid);
3922 
3923  /* Get executed before make_cleanup_restore_current_thread above to apply
3924  still for the thread which has thrown the exception. */
3926 
3928 
3929  /* Now figure out what to do with the result of the result. */
3930  handle_inferior_event (ecs);
3931 
3932  if (!ecs->wait_some_more)
3933  {
3934  struct inferior *inf = find_inferior_ptid (ecs->ptid);
3935  int should_stop = 1;
3936  struct thread_info *thr = ecs->event_thread;
3937  int should_notify_stop = 1;
3938 
3940 
3941  if (thr != NULL)
3942  {
3943  struct thread_fsm *thread_fsm = thr->thread_fsm;
3944 
3945  if (thread_fsm != NULL)
3946  should_stop = thread_fsm_should_stop (thread_fsm, thr);
3947  }
3948 
3949  if (!should_stop)
3950  {
3951  keep_going (ecs);
3952  }
3953  else
3954  {
3956 
3957  if (thr != NULL && thr->thread_fsm != NULL)
3958  {
3959  should_notify_stop
3961  }
3962 
3963  if (should_notify_stop)
3964  {
3965  int proceeded = 0;
3966 
3967  /* We may not find an inferior if this was a process exit. */
3968  if (inf == NULL || inf->control.stop_soon == NO_STOP_QUIETLY)
3969  proceeded = normal_stop ();
3970 
3971  if (!proceeded)
3972  {
3974  cmd_done = 1;
3975  }
3976  }
3977  }
3978  }
3979 
3980  /* No error, don't finish the thread states yet. */
3981  discard_cleanups (ts_old_chain);
3982 
3983  /* Revert thread and frame. */
3984  do_cleanups (old_chain);
3985 
3986  /* If a UI was in sync execution mode, and now isn't, restore its
3987  prompt (a synchronous execution command has finished, and we're
3988  ready for input). */
3990 
3991  if (cmd_done
3994  || !is_running (inferior_ptid)))
3995  printf_unfiltered (_("completed.\n"));
3996 }
3997 
3998 /* Record the frame and location we're currently stepping through. */
3999 void
4000 set_step_info (struct frame_info *frame, struct symtab_and_line sal)
4001 {
4002  struct thread_info *tp = inferior_thread ();
4003 
4004  tp->control.step_frame_id = get_frame_id (frame);
4006 
4007  tp->current_symtab = sal.symtab;
4008  tp->current_line = sal.line;
4009 }
4010 
4011 /* Clear context switchable stepping state. */
4012 
4013 void
4015 {
4016  tss->stepped_breakpoint = 0;
4017  tss->stepping_over_breakpoint = 0;
4018  tss->stepping_over_watchpoint = 0;
4020 }
4021 
4022 /* Set the cached copy of the last ptid/waitstatus. */
4023 
4024 void
4026 {
4029 }
4030 
4031 /* Return the cached copy of the last pid/waitstatus returned by
4032  target_wait()/deprecated_target_wait_hook(). The data is actually
4033  cached by handle_inferior_event(), which gets called immediately
4034  after target_wait()/deprecated_target_wait_hook(). */
4035 
4036 void
4038 {
4039  *ptidp = target_last_wait_ptid;
4041 }
4042 
4043 void
4045 {
4047 }
4048 
4049 /* Switch thread contexts. */
4050 
4051 static void
4053 {
4055  {
4056  fprintf_unfiltered (gdb_stdlog, "infrun: Switching context from %s ",
4058  fprintf_unfiltered (gdb_stdlog, "to %s\n",
4060  }
4061 
4063 }
4064 
4065 /* If the target can't tell whether we've hit breakpoints
4066  (target_supports_stopped_by_sw_breakpoint), and we got a SIGTRAP,
4067  check whether that could have been caused by a breakpoint. If so,
4068  adjust the PC, per gdbarch_decr_pc_after_break. */
4069 
4070 static void
4072  struct target_waitstatus *ws)
4073 {
4074  struct regcache *regcache;
4075  struct gdbarch *gdbarch;
4076  CORE_ADDR breakpoint_pc, decr_pc;
4077 
4078  /* If we've hit a breakpoint, we'll normally be stopped with SIGTRAP. If
4079  we aren't, just return.
4080 
4081  We assume that waitkinds other than TARGET_WAITKIND_STOPPED are not
4082  affected by gdbarch_decr_pc_after_break. Other waitkinds which are
4083  implemented by software breakpoints should be handled through the normal
4084  breakpoint layer.
4085 
4086  NOTE drow/2004-01-31: On some targets, breakpoints may generate
4087  different signals (SIGILL or SIGEMT for instance), but it is less
4088  clear where the PC is pointing afterwards. It may not match
4089  gdbarch_decr_pc_after_break. I don't know any specific target that
4090  generates these signals at breakpoints (the code has been in GDB since at
4091  least 1992) so I can not guess how to handle them here.
4092 
4093  In earlier versions of GDB, a target with
4094  gdbarch_have_nonsteppable_watchpoint would have the PC after hitting a
4095  watchpoint affected by gdbarch_decr_pc_after_break. I haven't found any
4096  target with both of these set in GDB history, and it seems unlikely to be
4097  correct, so gdbarch_have_nonsteppable_watchpoint is not checked here. */
4098 
4099  if (ws->kind != TARGET_WAITKIND_STOPPED)
4100  return;
4101 
4102  if (ws->value.sig != GDB_SIGNAL_TRAP)
4103  return;
4104 
4105  /* In reverse execution, when a breakpoint is hit, the instruction
4106  under it has already been de-executed. The reported PC always
4107  points at the breakpoint address, so adjusting it further would
4108  be wrong. E.g., consider this case on a decr_pc_after_break == 1
4109  architecture:
4110 
4111  B1 0x08000000 : INSN1
4112  B2 0x08000001 : INSN2
4113  0x08000002 : INSN3
4114  PC -> 0x08000003 : INSN4
4115 
4116  Say you're stopped at 0x08000003 as above. Reverse continuing
4117  from that point should hit B2 as below. Reading the PC when the
4118  SIGTRAP is reported should read 0x08000001 and INSN2 should have
4119  been de-executed already.
4120 
4121  B1 0x08000000 : INSN1
4122  B2 PC -> 0x08000001 : INSN2
4123  0x08000002 : INSN3
4124  0x08000003 : INSN4
4125 
4126  We can't apply the same logic as for forward execution, because
4127  we would wrongly adjust the PC to 0x08000000, since there's a
4128  breakpoint at PC - 1. We'd then report a hit on B1, although
4129  INSN1 hadn't been de-executed yet. Doing nothing is the correct
4130  behaviour. */
4132  return;
4133 
4134  /* If the target can tell whether the thread hit a SW breakpoint,
4135  trust it. Targets that can tell also adjust the PC
4136  themselves. */
4138  return;
4139 
4140  /* Note that relying on whether a breakpoint is planted in memory to
4141  determine this can fail. E.g,. the breakpoint could have been
4142  removed since. Or the thread could have been told to step an
4143  instruction the size of a breakpoint instruction, and only
4144  _after_ was a breakpoint inserted at its address. */
4145 
4146  /* If this target does not decrement the PC after breakpoints, then
4147  we have nothing to do. */
4148  regcache = get_thread_regcache (thread->ptid);
4149  gdbarch = regcache->arch ();
4150 
4152  if (decr_pc == 0)
4153  return;
4154 
4155  const address_space *aspace = regcache->aspace ();
4156 
4157  /* Find the location where (if we've hit a breakpoint) the
4158  breakpoint would be. */
4159  breakpoint_pc = regcache_read_pc (regcache) - decr_pc;
4160 
4161  /* If the target can't tell whether a software breakpoint triggered,
4162  fallback to figuring it out based on breakpoints we think were
4163  inserted in the target, and on whether the thread was stepped or
4164  continued. */
4165 
4166  /* Check whether there actually is a software breakpoint inserted at
4167  that location.
4168 
4169  If in non-stop mode, a race condition is possible where we've
4170  removed a breakpoint, but stop events for that breakpoint were
4171  already queued and arrive later. To suppress those spurious
4172  SIGTRAPs, we keep a list of such breakpoint locations for a bit,
4173  and retire them after a number of stop events are reported. Note
4174  this is an heuristic and can thus get confused. The real fix is
4175  to get the "stopped by SW BP and needs adjustment" info out of
4176  the target/kernel (and thus never reach here; see above). */
4177  if (software_breakpoint_inserted_here_p (aspace, breakpoint_pc)
4178  || (target_is_non_stop_p ()
4179  && moribund_breakpoint_here_p (aspace, breakpoint_pc)))
4180  {
4181  gdb::optional<scoped_restore_tmpl<int>> restore_operation_disable;
4182 
4183  if (record_full_is_used ())
4184  restore_operation_disable.emplace
4186 
4187  /* When using hardware single-step, a SIGTRAP is reported for both
4188  a completed single-step and a software breakpoint. Need to
4189  differentiate between the two, as the latter needs adjusting
4190  but the former does not.
4191 
4192  The SIGTRAP can be due to a completed hardware single-step only if
4193  - we didn't insert software single-step breakpoints
4194  - this thread is currently being stepped
4195 
4196  If any of these events did not occur, we must have stopped due
4197  to hitting a software breakpoint, and have to back up to the
4198  breakpoint address.
4199 
4200  As a special case, we could have hardware single-stepped a
4201  software breakpoint. In this case (prev_pc == breakpoint_pc),
4202  we also need to back up to the breakpoint address. */
4203 
4205  || !currently_stepping (thread)
4206  || (thread->stepped_breakpoint
4207  && thread->prev_pc == breakpoint_pc))
4208  regcache_write_pc (regcache, breakpoint_pc);
4209  }
4210 }
4211 
4212 static int
4213 stepped_in_from (struct frame_info *frame, struct frame_id step_frame_id)
4214 {
4215  for (frame = get_prev_frame (frame);
4216  frame != NULL;
4217  frame = get_prev_frame (frame))
4218  {
4219  if (frame_id_eq (get_frame_id (frame), step_frame_id))
4220  return 1;
4221  if (get_frame_type (frame) != INLINE_FRAME)
4222  break;
4223  }
4224 
4225  return 0;
4226 }
4227 
4228 /* If the event thread has the stop requested flag set, pretend it
4229  stopped for a GDB_SIGNAL_0 (i.e., as if it stopped due to
4230  target_stop). */
4231 
4232 static bool
4234 {
4235  if (ecs->event_thread->stop_requested)
4236  {
4238  ecs->ws.value.sig = GDB_SIGNAL_0;
4239  handle_signal_stop (ecs);
4240  return true;
4241  }
4242  return false;
4243 }
4244 
4245 /* Auxiliary function that handles syscall entry/return events.
4246  It returns 1 if the inferior should keep going (and GDB
4247  should ignore the event), or 0 if the event deserves to be
4248  processed. */
4249 
4250 static int
4252 {
4253  struct regcache *regcache;
4254  int syscall_number;
4255 
4256  if (!ptid_equal (ecs->ptid, inferior_ptid))
4257  context_switch (ecs->ptid);
4258 
4260  syscall_number = ecs->ws.value.syscall_number;
4262 
4263  if (catch_syscall_enabled () > 0
4264  && catching_syscall_number (syscall_number) > 0)
4265  {
4266  if (debug_infrun)
4267  fprintf_unfiltered (gdb_stdlog, "infrun: syscall number = '%d'\n",
4268  syscall_number);
4269 
4272  stop_pc, ecs->ptid, &ecs->ws);
4273 
4274  if (handle_stop_requested (ecs))
4275  return 0;
4276 
4278  {
4279  /* Catchpoint hit. */
4280  return 0;
4281  }
4282  }
4283 
4284  if (handle_stop_requested (ecs))
4285  return 0;
4286 
4287  /* If no catchpoint triggered for this, then keep going. */
4288  keep_going (ecs);
4289  return 1;
4290 }
4291 
4292 /* Lazily fill in the execution_control_state's stop_func_* fields. */
4293 
4294 static void
4296  struct execution_control_state *ecs)
4297 {
4298  if (!ecs->stop_func_filled_in)
4299  {
4300  /* Don't care about return value; stop_func_start and stop_func_name
4301  will both be 0 if it doesn't work. */
4303  &ecs->stop_func_start, &ecs->stop_func_end);
4304  ecs->stop_func_start
4306 
4309  ecs->stop_func_start);
4310 
4311  ecs->stop_func_filled_in = 1;
4312  }
4313 }
4314 
4315 
4316 /* Return the STOP_SOON field of the inferior pointed at by PTID. */
4317 
4318 static enum stop_kind
4320 {
4321  struct inferior *inf = find_inferior_ptid (ptid);
4322 
4323  gdb_assert (inf != NULL);
4324  return inf->control.stop_soon;
4325 }
4326 
4327 /* Wait for one event. Store the resulting waitstatus in WS, and
4328  return the event ptid. */
4329 
4330 static ptid_t
4332 {
4333  ptid_t event_ptid;
4334  ptid_t wait_ptid = minus_one_ptid;
4335 
4337 
4338  /* Flush target cache before starting to handle each event.
4339  Target was running and cache could be stale. This is just a
4340  heuristic. Running threads may modify target memory, but we
4341  don't get any event. */
4343 
4345  event_ptid = deprecated_target_wait_hook (wait_ptid, ws, 0);
4346  else
4347  event_ptid = target_wait (wait_ptid, ws, 0);
4348 
4349  if (debug_infrun)
4350  print_target_wait_results (wait_ptid, event_ptid, ws);
4351 
4352  return event_ptid;
4353 }
4354 
4355 /* Generate a wrapper for target_stopped_by_REASON that works on PTID
4356  instead of the current thread. */
4357 #define THREAD_STOPPED_BY(REASON) \
4358 static int \
4359 thread_stopped_by_ ## REASON (ptid_t ptid) \
4360 { \
4361  scoped_restore save_inferior_ptid = make_scoped_restore (&inferior_ptid); \
4362  inferior_ptid = ptid; \
4363  \
4364  return target_stopped_by_ ## REASON (); \
4365 }
4366 
4367 /* Generate thread_stopped_by_watchpoint. */
4369 /* Generate thread_stopped_by_sw_breakpoint. */
4370 THREAD_STOPPED_BY (sw_breakpoint)
4371 /* Generate thread_stopped_by_hw_breakpoint. */
4372 THREAD_STOPPED_BY (hw_breakpoint)
4373 
4374 /* Cleanups that switches to the PTID pointed at by PTID_P. */
4375 
4376 static void
4378 {
4379  ptid_t ptid = *(ptid_t *) ptid_p;
4380 
4381  switch_to_thread (ptid);
4382 }
4383 
4384 /* Save the thread's event and stop reason to process it later. */
4385 
4386 static void
4388 {
4389  struct regcache *regcache;
4390 
4391  if (debug_infrun)
4392  {
4394 
4396  "infrun: saving status %s for %d.%ld.%ld\n",
4397  statstr.c_str (),
4398  ptid_get_pid (tp->ptid),
4399  ptid_get_lwp (tp->ptid),
4400  ptid_get_tid (tp->ptid));
4401  }
4402 
4403  /* Record for later. */
4404  tp->suspend.waitstatus = *ws;
4405  tp->suspend.waitstatus_pending_p = 1;
4406 
4408  const address_space *aspace = regcache->aspace ();
4409 
4410  if (ws->kind == TARGET_WAITKIND_STOPPED
4411  && ws->value.sig == GDB_SIGNAL_TRAP)
4412  {
4414 
4416 
4417  if (thread_stopped_by_watchpoint (tp->ptid))
4418  {
4419  tp->suspend.stop_reason
4421  }
4423  && thread_stopped_by_sw_breakpoint (tp->ptid))
4424  {
4425  tp->suspend.stop_reason
4427  }
4429  && thread_stopped_by_hw_breakpoint (tp->ptid))
4430  {
4431  tp->suspend.stop_reason
4433  }
4436  pc))
4437  {
4438  tp->suspend.stop_reason
4440  }
4443  pc))
4444  {
4445  tp->suspend.stop_reason
4447  }
4449  && currently_stepping (tp))
4450  {
4451  tp->suspend.stop_reason
4453  }
4454  }
4455 }
4456 
4457 /* A cleanup that disables thread create/exit events. */
4458 
4459 static void
4461 {
4463 }
4464 
4465 /* See infrun.h. */
4466 
4467 void
4469 {
4470  /* We may need multiple passes to discover all threads. */
4471  int pass;
4472  int iterations = 0;
4473  ptid_t entry_ptid;
4474  struct cleanup *old_chain;
4475 
4477 
4478  if (debug_infrun)
4479  fprintf_unfiltered (gdb_stdlog, "infrun: stop_all_threads\n");
4480 
4481  entry_ptid = inferior_ptid;
4482  old_chain = make_cleanup (switch_to_thread_cleanup, &entry_ptid);
4483 
4486 
4487  /* Request threads to stop, and then wait for the stops. Because
4488  threads we already know about can spawn more threads while we're
4489  trying to stop them, and we only learn about new threads when we
4490  update the thread list, do this in a loop, and keep iterating
4491  until two passes find no threads that need to be stopped. */
4492  for (pass = 0; pass < 2; pass++, iterations++)
4493  {
4494  if (debug_infrun)
4496  "infrun: stop_all_threads, pass=%d, "
4497  "iterations=%d\n", pass, iterations);
4498  while (1)
4499  {
4500  ptid_t event_ptid;
4501  struct target_waitstatus ws;
4502  int need_wait = 0;
4503  struct thread_info *t;
4504 
4505  update_thread_list ();
4506 
4507  /* Go through all threads looking for threads that we need
4508  to tell the target to stop. */
4510  {
4511  if (t->executing)
4512  {
4513  /* If already stopping, don't request a stop again.
4514  We just haven't seen the notification yet. */
4515  if (!t->stop_requested)
4516  {
4517  if (debug_infrun)
4519  "infrun: %s executing, "
4520  "need stop\n",
4521  target_pid_to_str (t->ptid));
4522  target_stop (t->ptid);
4523  t->stop_requested = 1;
4524  }
4525  else
4526  {
4527  if (debug_infrun)
4529  "infrun: %s executing, "
4530  "already stopping\n",
4531  target_pid_to_str (t->ptid));
4532  }
4533 
4534  if (t->stop_requested)
4535  need_wait = 1;
4536  }
4537  else
4538  {
4539  if (debug_infrun)
4541  "infrun: %s not executing\n",
4542  target_pid_to_str (t->ptid));
4543 
4544  /* The thread may be not executing, but still be
4545  resumed with a pending status to process. */
4546  t->resumed = 0;
4547  }
4548  }
4549 
4550  if (!need_wait)
4551  break;
4552 
4553  /* If we find new threads on the second iteration, restart
4554  over. We want to see two iterations in a row with all
4555  threads stopped. */
4556  if (pass > 0)
4557  pass = -1;
4558 
4559  event_ptid = wait_one (&ws);
4560  if (ws.kind == TARGET_WAITKIND_NO_RESUMED)
4561  {
4562  /* All resumed threads exited. */
4563  }
4564  else if (ws.kind == TARGET_WAITKIND_THREAD_EXITED
4565  || ws.kind == TARGET_WAITKIND_EXITED
4567  {
4568  if (debug_infrun)
4569  {
4571 
4573  "infrun: %s exited while "
4574  "stopping threads\n",
4576  }
4577  }
4578  else
4579  {
4580  struct inferior *inf;
4581 
4582  t = find_thread_ptid (event_ptid);
4583  if (t == NULL)
4584  t = add_thread (event_ptid);
4585 
4586  t->stop_requested = 0;
4587  t->executing = 0;
4588  t->resumed = 0;
4589  t->control.may_range_step = 0;
4590 
4591  /* This may be the first time we see the inferior report
4592  a stop. */
4593  inf = find_inferior_ptid (event_ptid);
4594  if (inf->needs_setup)
4595  {
4597  setup_inferior (0);
4598  }
4599 
4600  if (ws.kind == TARGET_WAITKIND_STOPPED
4601  && ws.value.sig == GDB_SIGNAL_0)
4602  {
4603  /* We caught the event that we intended to catch, so
4604  there's no event pending. */
4607 
4608  if (displaced_step_fixup (t->ptid, GDB_SIGNAL_0) < 0)
4609  {
4610  /* Add it back to the step-over queue. */
4611  if (debug_infrun)
4612  {
4614  "infrun: displaced-step of %s "
4615  "canceled: adding back to the "
4616  "step-over queue\n",
4617  target_pid_to_str (t->ptid));
4618  }
4619  t->control.trap_expected = 0;
4621  }
4622  }
4623  else
4624  {
4625  enum gdb_signal sig;
4626  struct regcache *regcache;
4627 
4628  if (debug_infrun)
4629  {
4630  std::string statstr = target_waitstatus_to_string (&ws);
4631 
4633  "infrun: target_wait %s, saving "
4634  "status for %d.%ld.%ld\n",
4635  statstr.c_str (),
4636  ptid_get_pid (t->ptid),
4637  ptid_get_lwp (t->ptid),
4638  ptid_get_tid (t->ptid));
4639  }
4640 
4641  /* Record for later. */
4642  save_waitstatus (t, &ws);
4643 
4644  sig = (ws.kind == TARGET_WAITKIND_STOPPED
4645  ? ws.value.sig : GDB_SIGNAL_0);
4646 
4647  if (displaced_step_fixup (t->ptid, sig) < 0)
4648  {
4649  /* Add it back to the step-over queue. */
4650  t->control.trap_expected = 0;
4652  }
4653 
4656 
4657  if (debug_infrun)
4658  {
4660  "infrun: saved stop_pc=%s for %s "
4661  "(currently_stepping=%d)\n",
4663  t->suspend.stop_pc),
4664  target_pid_to_str (t->ptid),
4665  currently_stepping (t));
4666  }
4667  }
4668  }
4669  }
4670  }
4671 
4672  do_cleanups (old_chain);
4673 
4674  if (debug_infrun)
4675  fprintf_unfiltered (gdb_stdlog, "infrun: stop_all_threads done\n");
4676 }
4677 
4678 /* Handle a TARGET_WAITKIND_NO_RESUMED event. */
4679 
4680 static int
4682 {
4683  struct inferior *inf;
4684  struct thread_info *thread;
4685 
4686  if (target_can_async_p ())
4687  {
4688  struct ui *ui;
4689  int any_sync = 0;
4690 
4691  ALL_UIS (ui)
4692  {
4693  if (ui->prompt_state == PROMPT_BLOCKED)
4694  {
4695  any_sync = 1;
4696  break;
4697  }
4698  }
4699  if (!any_sync)
4700  {
4701  /* There were no unwaited-for children left in the target, but,
4702  we're not synchronously waiting for events either. Just
4703  ignore. */
4704 
4705  if (debug_infrun)
4707  "infrun: TARGET_WAITKIND_NO_RESUMED "
4708  "(ignoring: bg)\n");
4709  prepare_to_wait (ecs);
4710  return 1;
4711  }
4712  }
4713 
4714  /* Otherwise, if we were running a synchronous execution command, we
4715  may need to cancel it and give the user back the terminal.
4716 
4717  In non-stop mode, the target can't tell whether we've already
4718  consumed previous stop events, so it can end up sending us a
4719  no-resumed event like so:
4720 
4721  #0 - thread 1 is left stopped
4722 
4723  #1 - thread 2 is resumed and hits breakpoint
4724  -> TARGET_WAITKIND_STOPPED
4725 
4726  #2 - thread 3 is resumed and exits
4727  this is the last resumed thread, so
4728  -> TARGET_WAITKIND_NO_RESUMED
4729 
4730  #3 - gdb processes stop for thread 2 and decides to re-resume
4731  it.
4732 
4733  #4 - gdb processes the TARGET_WAITKIND_NO_RESUMED event.
4734  thread 2 is now resumed, so the event should be ignored.
4735 
4736  IOW, if the stop for thread 2 doesn't end a foreground command,
4737  then we need to ignore the following TARGET_WAITKIND_NO_RESUMED
4738  event. But it could be that the event meant that thread 2 itself
4739  (or whatever other thread was the last resumed thread) exited.
4740 
4741  To address this we refresh the thread list and check whether we
4742  have resumed threads _now_. In the example above, this removes
4743  thread 3 from the thread list. If thread 2 was re-resumed, we
4744  ignore this event. If we find no thread resumed, then we cancel
4745  the synchronous command show "no unwaited-for " to the user. */
4746  update_thread_list ();
4747 
4748  ALL_NON_EXITED_THREADS (thread)
4749  {
4750  if (thread->executing
4751  || thread->suspend.waitstatus_pending_p)
4752  {
4753  /* There were no unwaited-for children left in the target at
4754  some point, but there are now. Just ignore. */
4755  if (debug_infrun)
4757  "infrun: TARGET_WAITKIND_NO_RESUMED "
4758  "(ignoring: found resumed)\n");
4759  prepare_to_wait (ecs);
4760  return 1;
4761  }
4762  }
4763 
4764  /* Note however that we may find no resumed thread because the whole
4765  process exited meanwhile (thus updating the thread list results
4766  in an empty thread list). In this case we know we'll be getting
4767  a process exit event shortly. */
4768  ALL_INFERIORS (inf)
4769  {
4770  if (inf->pid == 0)
4771  continue;
4772 
4773  thread = any_live_thread_of_process (inf->pid);
4774  if (thread == NULL)
4775  {
4776  if (debug_infrun)
4778  "infrun: TARGET_WAITKIND_NO_RESUMED "
4779  "(expect process exit)\n");
4780  prepare_to_wait (ecs);
4781  return 1;
4782  }
4783  }
4784 
4785  /* Go ahead and report the event. */
4786  return 0;
4787 }
4788 
4789 /* Given an execution control state that has been freshly filled in by
4790  an event from the inferior, figure out what it means and take
4791  appropriate action.
4792 
4793  The alternatives are:
4794 
4795  1) stop_waiting and return; to really stop and return to the
4796  debugger.
4797 
4798  2) keep_going and return; to wait for the next event (set
4799  ecs->event_thread->stepping_over_breakpoint to 1 to single step
4800  once). */
4801 
4802 static void
4804 {
4805  enum stop_kind stop_soon;
4806 
4807  if (ecs->ws.kind == TARGET_WAITKIND_IGNORE)
4808  {
4809  /* We had an event in the inferior, but we are not interested in
4810  handling it at this level. The lower layers have already
4811  done what needs to be done, if anything.
4812 
4813  One of the possible circumstances for this is when the
4814  inferior produces output for the console. The inferior has
4815  not stopped, and we are ignoring the event. Another possible
4816  circumstance is any event which the lower level knows will be
4817  reported multiple times without an intervening resume. */
4818  if (debug_infrun)
4819  fprintf_unfiltered (gdb_stdlog, "infrun: TARGET_WAITKIND_IGNORE\n");
4820  prepare_to_wait (ecs);
4821  return;
4822  }
4823 
4825  {
4826  if (debug_infrun)
4827  fprintf_unfiltered (gdb_stdlog, "infrun: TARGET_WAITKIND_THREAD_EXITED\n");
4828  prepare_to_wait (ecs);
4829  return;
4830  }
4831 
4832  if (ecs->ws.kind == TARGET_WAITKIND_NO_RESUMED
4833  && handle_no_resumed (ecs))
4834  return;
4835 
4836  /* Cache the last pid/waitstatus. */
4837  set_last_target_status (ecs->ptid, ecs->ws);
4838 
4839  /* Always clear state belonging to the previous time we stopped. */
4841 
4842  if (ecs->ws.kind == TARGET_WAITKIND_NO_RESUMED)
4843  {
4844  /* No unwaited-for children left. IOW, all resumed children
4845  have exited. */
4846  if (debug_infrun)
4847  fprintf_unfiltered (gdb_stdlog, "infrun: TARGET_WAITKIND_NO_RESUMED\n");
4848 
4849  stop_print_frame = 0;
4850  stop_waiting (ecs);
4851  return;
4852  }
4853 
4854  if (ecs->ws.kind != TARGET_WAITKIND_EXITED
4855  && ecs->ws.kind != TARGET_WAITKIND_SIGNALLED)
4856  {
4857  ecs->event_thread = find_thread_ptid (ecs->ptid);
4858  /* If it's a new thread, add it to the thread database. */
4859  if (ecs->event_thread == NULL)
4860  ecs->event_thread = add_thread (ecs->ptid);
4861 
4862  /* Disable range stepping. If the next step request could use a
4863  range, this will be end up re-enabled then. */
4865  }
4866 
4867  /* Dependent on valid ECS->EVENT_THREAD. */
4868  adjust_pc_after_break (ecs->event_thread, &ecs->ws);
4869 
4870  /* Dependent on the current PC value modified by adjust_pc_after_break. */
4871  reinit_frame_cache ();
4872 
4874 
4875  /* First, distinguish signals caused by the debugger from signals
4876  that have to do with the program's own actions. Note that
4877  breakpoint insns may cause SIGTRAP or SIGILL or SIGEMT, depending
4878  on the operating system version. Here we detect when a SIGILL or
4879  SIGEMT is really a breakpoint and change it to SIGTRAP. We do
4880  something similar for SIGSEGV, since a SIGSEGV will be generated
4881  when we're trying to execute a breakpoint instruction on a
4882  non-executable stack. This happens for call dummy breakpoints
4883  for architectures like SPARC that place call dummies on the
4884  stack. */
4885  if (ecs->ws.kind == TARGET_WAITKIND_STOPPED
4886  && (ecs->ws.value.sig == GDB_SIGNAL_ILL
4887  || ecs->ws.value.sig == GDB_SIGNAL_SEGV
4888  || ecs->ws.value.sig == GDB_SIGNAL_EMT))
4889  {
4890  struct regcache *regcache = get_thread_regcache (ecs->ptid);
4891 
4894  {
4895  if (debug_infrun)
4897  "infrun: Treating signal as SIGTRAP\n");
4898  ecs->ws.value.sig = GDB_SIGNAL_TRAP;
4899  }
4900  }
4901 
4902  /* Mark the non-executing threads accordingly. In all-stop, all
4903  threads of all processes are stopped when we get any event
4904  reported. In non-stop mode, only the event thread stops. */
4905  {
4906  ptid_t mark_ptid;
4907 
4908  if (!target_is_non_stop_p ())
4909  mark_ptid = minus_one_ptid;
4910  else if (ecs->ws.kind == TARGET_WAITKIND_SIGNALLED
4911  || ecs->ws.kind == TARGET_WAITKIND_EXITED)
4912  {
4913  /* If we're handling a process exit in non-stop mode, even
4914  though threads haven't been deleted yet, one would think
4915  that there is nothing to do, as threads of the dead process
4916  will be soon deleted, and threads of any other process were
4917  left running. However, on some targets, threads survive a
4918  process exit event. E.g., for the "checkpoint" command,
4919  when the current checkpoint/fork exits, linux-fork.c
4920  automatically switches to another fork from within
4921  target_mourn_inferior, by associating the same
4922  inferior/thread to another fork. We haven't mourned yet at
4923  this point, but we must mark any threads left in the
4924  process as not-executing so that finish_thread_state marks
4925  them stopped (in the user's perspective) if/when we present
4926  the stop to the user. */
4927  mark_ptid = pid_to_ptid (ptid_get_pid (ecs->ptid));
4928  }
4929  else
4930  mark_ptid = ecs->ptid;
4931 
4932  set_executing (mark_ptid, 0);
4933 
4934  /* Likewise the resumed flag. */
4935  set_resumed (mark_ptid, 0);
4936  }
4937 
4938  switch (ecs->ws.kind)
4939  {
4941  if (debug_infrun)
4942  fprintf_unfiltered (gdb_stdlog, "infrun: TARGET_WAITKIND_LOADED\n");
4943  if (!ptid_equal (ecs->ptid, inferior_ptid))
4944  context_switch (ecs->ptid);
4945  /* Ignore gracefully during startup of the inferior, as it might
4946  be the shell which has just loaded some objects, otherwise
4947  add the symbols for the newly loaded objects. Also ignore at
4948  the beginning of an attach or remote session; we will query
4949  the full list of libraries once the connection is
4950  established. */
4951 
4952  stop_soon = get_inferior_stop_soon (ecs->ptid);
4953  if (stop_soon == NO_STOP_QUIETLY)
4954  {
4955  struct regcache *regcache;
4956 
4958 
4959  handle_solib_event ();
4960 
4963  stop_pc, ecs->ptid, &ecs->ws);
4964 
4965  if (handle_stop_requested (ecs))
4966  return;
4967 
4969  {
4970  /* A catchpoint triggered. */
4972  return;
4973  }
4974 
4975  /* If requested, stop when the dynamic linker notifies
4976  gdb of events. This allows the user to get control
4977  and place breakpoints in initializer routines for
4978  dynamically loaded objects (among other things). */
4979  ecs->event_thread->suspend.stop_signal = GDB_SIGNAL_0;
4981  {
4982  /* Make sure we print "Stopped due to solib-event" in
4983  normal_stop. */
4984  stop_print_frame = 1;
4985 
4986  stop_waiting (ecs);
4987  return;
4988  }
4989  }
4990 
4991  /* If we are skipping through a shell, or through shared library
4992  loading that we aren't interested in, resume the program. If
4993  we're running the program normally, also resume. */
4994  if (stop_soon == STOP_QUIETLY || stop_soon == NO_STOP_QUIETLY)
4995  {
4996  /* Loading of shared libraries might have changed breakpoint
4997  addresses. Make sure new breakpoints are inserted. */
4998  if (stop_soon == NO_STOP_QUIETLY)
4999  insert_breakpoints ();
5000  resume (GDB_SIGNAL_0);
5001  prepare_to_wait (ecs);
5002  return;
5003  }
5004 
5005  /* But stop if we're attaching or setting up a remote
5006  connection. */
5007  if (stop_soon == STOP_QUIETLY_NO_SIGSTOP
5008  || stop_soon == STOP_QUIETLY_REMOTE)
5009  {
5010  if (debug_infrun)
5011  fprintf_unfiltered (gdb_stdlog, "infrun: quietly stopped\n");
5012  stop_waiting (ecs);
5013  return;
5014  }
5015 
5016  internal_error (__FILE__, __LINE__,
5017  _("unhandled stop_soon: %d"), (int) stop_soon);
5018 
5020  if (debug_infrun)
5021  fprintf_unfiltered (gdb_stdlog, "infrun: TARGET_WAITKIND_SPURIOUS\n");
5022  if (handle_stop_requested (ecs))
5023  return;
5024  if (!ptid_equal (ecs->ptid, inferior_ptid))
5025  context_switch (ecs->ptid);
5026  resume (GDB_SIGNAL_0);
5027  prepare_to_wait (ecs);
5028  return;
5029 
5031  if (debug_infrun)
5032  fprintf_unfiltered (gdb_stdlog, "infrun: TARGET_WAITKIND_THREAD_CREATED\n");
5033  if (handle_stop_requested (ecs))
5034  return;
5035  if (!ptid_equal (ecs->ptid, inferior_ptid))
5036  context_switch (ecs->ptid);
5037  if (!switch_back_to_stepped_thread (ecs))
5038  keep_going (ecs);
5039  return;
5040 
5043  if (debug_infrun)
5044  {
5045  if (ecs->ws.kind == TARGET_WAITKIND_EXITED)
5047  "infrun: TARGET_WAITKIND_EXITED\n");
5048  else
5050  "infrun: TARGET_WAITKIND_SIGNALLED\n");
5051  }
5052 
5053  inferior_ptid = ecs->ptid;
5057  target_terminal::ours (); /* Must do this before mourn anyway. */
5058 
5059  /* Clearing any previous state of convenience variables. */
5061 
5062  if (ecs->ws.kind == TARGET_WAITKIND_EXITED)
5063  {
5064  /* Record the exit code in the convenience variable $_exitcode, so
5065  that the user can inspect this again later. */
5067  (LONGEST) ecs->ws.value.integer);
5068 
5069  /* Also record this in the inferior itself. */
5072 
5073  /* Support the --return-child-result option. */
5075 
5077  }
5078  else
5079  {
5080  struct regcache *regcache = get_thread_regcache (ecs->ptid);
5081  struct gdbarch *gdbarch = regcache->arch ();
5082 
5084  {
5085  /* Set the value of the internal variable $_exitsignal,
5086  which holds the signal uncaught by the inferior. */
5089  ecs->ws.value.sig));
5090  }
5091  else
5092  {
5093  /* We don't have access to the target's method used for
5094  converting between signal numbers (GDB's internal
5095  representation <-> target's representation).
5096  Therefore, we cannot do a good job at displaying this
5097  information to the user. It's better to just warn
5098  her about it (if infrun debugging is enabled), and
5099  give up. */
5100  if (debug_infrun)
5102 Cannot fill $_exitsignal with the correct signal number.\n"));
5103  }
5104 
5106  }
5107 
5110  stop_print_frame = 0;
5111  stop_waiting (ecs);
5112  return;
5113 
5114  /* The following are the only cases in which we keep going;
5115  the above cases end in a continue or goto. */
5118  if (debug_infrun)
5119  {
5120  if (ecs->ws.kind == TARGET_WAITKIND_FORKED)
5121  fprintf_unfiltered (gdb_stdlog, "infrun: TARGET_WAITKIND_FORKED\n");
5122  else
5123  fprintf_unfiltered (gdb_stdlog, "infrun: TARGET_WAITKIND_VFORKED\n");
5124  }
5125 
5126  /* Check whether the inferior is displaced stepping. */
5127  {
5128  struct regcache *regcache = get_thread_regcache (ecs->ptid);
5129  struct gdbarch *gdbarch = regcache->arch ();
5130 
5131  /* If checking displaced stepping is supported, and thread
5132  ecs->ptid is displaced stepping. */
5134  {
5135  struct inferior *parent_inf
5136  = find_inferior_ptid (ecs->ptid);
5137  struct regcache *child_regcache;
5138  CORE_ADDR parent_pc;
5139 
5140  /* GDB has got TARGET_WAITKIND_FORKED or TARGET_WAITKIND_VFORKED,
5141  indicating that the displaced stepping of syscall instruction
5142  has been done. Perform cleanup for parent process here. Note
5143  that this operation also cleans up the child process for vfork,
5144  because their pages are shared. */
5145  displaced_step_fixup (ecs->ptid, GDB_SIGNAL_TRAP);
5146  /* Start a new step-over in another thread if there's one
5147  that needs it. */
5148  start_step_over ();
5149 
5150  if (ecs->ws.kind == TARGET_WAITKIND_FORKED)
5151  {
5152  struct displaced_step_inferior_state *displaced
5154 
5155  /* Restore scratch pad for child process. */
5156  displaced_step_restore (displaced, ecs->ws.value.related_pid);
5157  }
5158 
5159  /* Since the vfork/fork syscall instruction was executed in the scratchpad,
5160  the child's PC is also within the scratchpad. Set the child's PC
5161  to the parent's PC value, which has already been fixed up.
5162  FIXME: we use the parent's aspace here, although we're touching
5163  the child, because the child hasn't been added to the inferior
5164  list yet at this point. */
5165 
5166  child_regcache
5168  gdbarch,
5169  parent_inf->aspace);
5170  /* Read PC value of parent process. */
5171  parent_pc = regcache_read_pc (regcache);
5172 
5173  if (debug_displaced)
5175  "displaced: write child pc from %s to %s\n",
5176  paddress (gdbarch,
5177  regcache_read_pc (child_regcache)),
5178  paddress (gdbarch, parent_pc));
5179 
5180  regcache_write_pc (child_regcache, parent_pc);
5181  }
5182  }
5183 
5184  if (!ptid_equal (ecs->ptid, inferior_ptid))
5185  context_switch (ecs->ptid);
5186 
5187  /* Immediately detach breakpoints from the child before there's
5188  any chance of letting the user delete breakpoints from the
5189  breakpoint lists. If we don't do this early, it's easy to
5190  leave left over traps in the child, vis: "break foo; catch
5191  fork; c; <fork>; del; c; <child calls foo>". We only follow
5192  the fork on the last `continue', and by that time the
5193  breakpoint at "foo" is long gone from the breakpoint table.
5194  If we vforked, then we don't need to unpatch here, since both
5195  parent and child are sharing the same memory pages; we'll
5196  need to unpatch at follow/detach time instead to be certain
5197  that new breakpoints added between catchpoint hit time and
5198  vfork follow are detached. */
5199  if (ecs->ws.kind != TARGET_WAITKIND_VFORKED)
5200  {
5201  /* This won't actually modify the breakpoint list, but will
5202  physically remove the breakpoints from the child. */
5204  }
5205 
5207 
5208  /* In case the event is caught by a catchpoint, remember that
5209  the event is to be followed at the next resume of the thread,
5210  and not immediately. */
5211  ecs->event_thread->pending_follow = ecs->ws;
5212 
5214 
5216  = bpstat_stop_status (get_current_regcache ()->aspace (),
5217  stop_pc, ecs->ptid, &ecs->ws);
5218 
5219  if (handle_stop_requested (ecs))
5220  return;
5221 
5222  /* If no catchpoint triggered for this, then keep going. Note
5223  that we're interested in knowing the bpstat actually causes a
5224  stop, not just if it may explain the signal. Software
5225  watchpoints, for example, always appear in the bpstat. */
5227  {
5228  ptid_t parent;
5229  ptid_t child;
5230  int should_resume;
5231  int follow_child
5233 
5234  ecs->event_thread->suspend.stop_signal = GDB_SIGNAL_0;
5235 
5236  should_resume = follow_fork ();
5237 
5238  parent = ecs->ptid;
5239  child = ecs->ws.value.related_pid;
5240 
5241  /* At this point, the parent is marked running, and the
5242  child is marked stopped. */
5243 
5244  /* If not resuming the parent, mark it stopped. */
5245  if (follow_child && !detach_fork && !non_stop && !sched_multi)
5246  set_running (parent, 0);
5247 
5248  /* If resuming the child, mark it running. */
5249  if (follow_child || (!detach_fork && (non_stop || sched_multi)))
5250  set_running (child, 1);
5251 
5252  /* In non-stop mode, also resume the other branch. */
5253  if (!detach_fork && (non_stop
5254  || (sched_multi && target_is_non_stop_p ())))
5255  {
5256  if (follow_child)
5257  switch_to_thread (parent);
5258  else
5259  switch_to_thread (child);
5260 
5261  ecs->event_thread = inferior_thread ();
5262  ecs->ptid = inferior_ptid;
5263  keep_going (ecs);
5264  }
5265 
5266  if (follow_child)
5267  switch_to_thread (child);
5268  else
5269  switch_to_thread (parent);
5270 
5271  ecs->event_thread = inferior_thread ();
5272  ecs->ptid = inferior_ptid;
5273 
5274  if (should_resume)
5275  keep_going (ecs);
5276  else
5277  stop_waiting (ecs);
5278  return;
5279  }
5281  return;
5282 
5284  /* Done with the shared memory region. Re-insert breakpoints in
5285  the parent, and keep going. */
5286 
5287  if (debug_infrun)
5289  "infrun: TARGET_WAITKIND_VFORK_DONE\n");
5290 
5291  if (!ptid_equal (ecs->ptid, inferior_ptid))
5292  context_switch (ecs->ptid);
5293 
5296 
5297  if (handle_stop_requested (ecs))
5298  return;
5299 
5300  /* This also takes care of reinserting breakpoints in the
5301  previously locked inferior. */
5302  keep_going (ecs);
5303  return;
5304 
5305  case TARGET_WAITKIND_EXECD:
5306  if (debug_infrun)
5307  fprintf_unfiltered (gdb_stdlog, "infrun: TARGET_WAITKIND_EXECD\n");
5308 
5309  /* Note we can't read registers yet (the stop_pc), because we
5310  don't yet know the inferior's post-exec architecture.
5311  'stop_pc' is explicitly read below instead. */
5312  if (!ptid_equal (ecs->ptid, inferior_ptid))
5314 
5315  /* Do whatever is necessary to the parent branch of the vfork. */
5317 
5318  /* This causes the eventpoints and symbol table to be reset.
5319  Must do this now, before trying to determine whether to
5320  stop. */
5322 
5324 
5325  /* In follow_exec we may have deleted the original thread and
5326  created a new one. Make sure that the event thread is the
5327  execd thread for that case (this is a nop otherwise). */
5328  ecs->event_thread = inferior_thread ();
5329 
5331  = bpstat_stop_status (get_current_regcache ()->aspace (),
5332  stop_pc, ecs->ptid, &ecs->ws);
5333 
5334  /* Note that this may be referenced from inside
5335  bpstat_stop_status above, through inferior_has_execd. */
5336  xfree (ecs->ws.value.execd_pathname);
5337  ecs->ws.value.execd_pathname = NULL;
5338 
5339  if (handle_stop_requested (ecs))
5340  return;
5341 
5342  /* If no catchpoint triggered for this, then keep going. */
5344  {
5345  ecs->event_thread->suspend.stop_signal = GDB_SIGNAL_0;
5346  keep_going (ecs);
5347  return;
5348  }
5350  return;
5351 
5352  /* Be careful not to try to gather much state about a thread
5353  that's in a syscall. It's frequently a losing proposition. */
5355  if (debug_infrun)
5357  "infrun: TARGET_WAITKIND_SYSCALL_ENTRY\n");
5358  /* Getting the current syscall number. */
5359  if (handle_syscall_event (ecs) == 0)
5361  return;
5362 
5363  /* Before examining the threads further, step this thread to
5364  get it entirely out of the syscall. (We get notice of the
5365  event when the thread is just on the verge of exiting a
5366  syscall. Stepping one instruction seems to get it back
5367  into user code.) */
5369  if (debug_infrun)
5371  "infrun: TARGET_WAITKIND_SYSCALL_RETURN\n");
5372  if (handle_syscall_event (ecs) == 0)
5374  return;
5375 
5377  if (debug_infrun)
5378  fprintf_unfiltered (gdb_stdlog, "infrun: TARGET_WAITKIND_STOPPED\n");
5379  handle_signal_stop (ecs);
5380  return;
5381 
5383  if (debug_infrun)
5384  fprintf_unfiltered (gdb_stdlog, "infrun: TARGET_WAITKIND_NO_HISTORY\n");
5385  /* Reverse execution: target ran out of history info. */
5386 
5387  /* Switch to the stopped thread. */
5388  if (!ptid_equal (ecs->ptid, inferior_ptid))
5389  context_switch (ecs->ptid);
5390  if (debug_infrun)
5391  fprintf_unfiltered (gdb_stdlog, "infrun: stopped\n");
5392 
5395 
5396  if (handle_stop_requested (ecs))
5397  return;
5398 
5400  stop_waiting (ecs);
5401  return;
5402  }
5403 }
5404 
5405 /* A wrapper around handle_inferior_event_1, which also makes sure
5406  that all temporary struct value objects that were created during
5407  the handling of the event get deleted at the end. */
5408 
5409 static void
5411 {
5412  struct value *mark = value_mark ();
5413 
5415  /* Purge all temporary values created during the event handling,
5416  as it could be a long time before we return to the command level
5417  where such values would otherwise be purged. */
5418  value_free_to_mark (mark);
5419 }
5420 
5421 /* Restart threads back to what they were trying to do back when we
5422  paused them for an in-line step-over. The EVENT_THREAD thread is
5423  ignored. */
5424 
5425 static void
5426 restart_threads (struct thread_info *event_thread)
5427 {
5428  struct thread_info *tp;
5429 
5430  /* In case the instruction just stepped spawned a new thread. */
5431  update_thread_list ();
5432 
5434  {
5435  if (tp == event_thread)
5436  {
5437  if (debug_infrun)
5439  "infrun: restart threads: "
5440  "[%s] is event thread\n",
5441  target_pid_to_str (tp->ptid));
5442  continue;
5443  }
5444 
5445  if (!(tp->state == THREAD_RUNNING || tp->control.in_infcall))
5446  {
5447  if (debug_infrun)
5449  "infrun: restart threads: "
5450  "[%s] not meant to be running\n",
5451  target_pid_to_str (tp->ptid));
5452  continue;
5453  }
5454 
5455  if (tp->resumed)
5456  {
5457  if (debug_infrun)
5459  "infrun: restart threads: [%s] resumed\n",
5460  target_pid_to_str (tp->ptid));
5462  continue;
5463  }
5464 
5466  {
5467  if (debug_infrun)
5469  "infrun: restart threads: "
5470  "[%s] needs step-over\n",
5471  target_pid_to_str (tp->ptid));
5472  gdb_assert (!tp->resumed);
5473  continue;
5474  }
5475 
5476 
5477  if (tp->suspend.waitstatus_pending_p)
5478  {
5479  if (debug_infrun)
5481  "infrun: restart threads: "
5482  "[%s] has pending status\n",
5483  target_pid_to_str (tp->ptid));
5484  tp->resumed = 1;
5485  continue;
5486  }
5487 
5488  gdb_assert (!tp->stop_requested);
5489 
5490  /* If some thread needs to start a step-over at this point, it
5491  should still be in the step-over queue, and thus skipped
5492  above. */
5494  {
5495  internal_error (__FILE__, __LINE__,
5496  "thread [%s] needs a step-over, but not in "
5497  "step-over queue\n",
5498  target_pid_to_str (tp->ptid));
5499  }
5500 
5501  if (currently_stepping (tp))
5502  {
5503  if (debug_infrun)
5505  "infrun: restart threads: [%s] was stepping\n",
5506  target_pid_to_str (tp->ptid));
5508  }
5509  else
5510  {
5511  struct execution_control_state ecss;
5512  struct execution_control_state *ecs = &ecss;
5513 
5514  if (debug_infrun)
5516  "infrun: restart threads: [%s] continuing\n",
5517  target_pid_to_str (tp->ptid));
5518  reset_ecs (ecs, tp);
5519  switch_to_thread (tp->ptid);
5520  keep_going_pass_signal (ecs);
5521  }
5522  }
5523 }
5524 
5525 /* Callback for iterate_over_threads. Find a resumed thread that has
5526  a pending waitstatus. */
5527 
5528 static int
5530  void *arg)
5531 {
5532  return (tp->resumed
5533  && tp->suspend.waitstatus_pending_p);
5534 }
5535 
5536 /* Called when we get an event that may finish an in-line or
5537  out-of-line (displaced stepping) step-over started previously.
5538  Return true if the event is processed and we should go back to the
5539  event loop; false if the caller should continue processing the
5540  event. */
5541 
5542 static int
5544 {
5545  int had_step_over_info;
5546 
5547  displaced_step_fixup (ecs->ptid,
5549 
5550  had_step_over_info = step_over_info_valid_p ();
5551 
5552  if (had_step_over_info)
5553  {
5554  /* If we're stepping over a breakpoint with all threads locked,
5555  then only the thread that was stepped should be reporting
5556  back an event. */
5558 
5560  }
5561 
5562  if (!target_is_non_stop_p ())
5563  return 0;
5564 
5565  /* Start a new step-over in another thread if there's one that
5566  needs it. */
5567  start_step_over ();
5568 
5569  /* If we were stepping over a breakpoint before, and haven't started
5570  a new in-line step-over sequence, then restart all other threads
5571  (except the event thread). We can't do this in all-stop, as then
5572  e.g., we wouldn't be able to issue any other remote packet until
5573  these other threads stop. */
5574  if (had_step_over_info && !step_over_info_valid_p ())
5575  {
5576  struct thread_info *pending;
5577 
5578  /* If we only have threads with pending statuses, the restart
5579  below won't restart any thread and so nothing re-inserts the
5580  breakpoint we just stepped over. But we need it inserted
5581  when we later process the pending events, otherwise if
5582  another thread has a pending event for this breakpoint too,
5583  we'd discard its event (because the breakpoint that
5584  originally caused the event was no longer inserted). */
5585  context_switch (ecs->ptid);
5586  insert_breakpoints ();
5587 
5589 
5590  /* If we have events pending, go through handle_inferior_event
5591  again, picking up a pending event at random. This avoids
5592  thread starvation. */
5593 
5594  /* But not if we just stepped over a watchpoint in order to let
5595  the instruction execute so we can evaluate its expression.
5596  The set of watchpoints that triggered is recorded in the
5597  breakpoint objects themselves (see bp->watchpoint_triggered).
5598  If we processed another event first, that other event could
5599  clobber this info. */
5601  return 0;
5602 
5604  NULL);
5605  if (pending != NULL)
5606  {
5607  struct thread_info *tp = ecs->event_thread;
5608  struct regcache *regcache;
5609 
5610  if (debug_infrun)
5611  {
5613  "infrun: found resumed threads with "
5614  "pending events, saving status\n");
5615  }
5616 
5617  gdb_assert (pending != tp);
5618 
5619  /* Record the event thread's event for later. */
5620  save_waitstatus (tp, &ecs->ws);
5621  /* This was cleared early, by handle_inferior_event. Set it
5622  so this pending event is considered by
5623  do_target_wait. */
5624  tp->resumed = 1;
5625 
5626  gdb_assert (!tp->executing);
5627 
5630 
5631  if (debug_infrun)
5632  {
5634  "infrun: saved stop_pc=%s for %s "
5635  "(currently_stepping=%d)\n",
5637  tp->suspend.stop_pc),
5638  target_pid_to_str (tp->ptid),
5639  currently_stepping (tp));
5640  }
5641 
5642  /* This in-line step-over finished; clear this so we won't
5643  start a new one. This is what handle_signal_stop would
5644  do, if we returned false. */
5645  tp->stepping_over_breakpoint = 0;
5646 
5647  /* Wake up the event loop again. */
5649 
5650  prepare_to_wait (ecs);
5651  return 1;
5652  }
5653  }
5654 
5655  return 0;
5656 }
5657 
5658 /* Come here when the program has stopped with a signal. */
5659 
5660 static void
5662 {
5663  struct frame_info *frame;
5664  struct gdbarch *gdbarch;
5665  int stopped_by_watchpoint;
5666  enum stop_kind stop_soon;
5667  int random_signal;
5668 
5670 
5671  ecs->event_thread->suspend.stop_signal = ecs->ws.value.sig;
5672 
5673  /* Do we need to clean up the state of a thread that has
5674  completed a displaced single-step? (Doing so usually affects
5675  the PC, so do it here, before we set stop_pc.) */
5676  if (finish_step_over (ecs))
5677  return;
5678 
5679  /* If we either finished a single-step or hit a breakpoint, but
5680  the user wanted this thread to be stopped, pretend we got a
5681  SIG0 (generic unsignaled stop). */
5682  if (ecs->event_thread->stop_requested
5683  && ecs->event_thread->suspend.stop_signal == GDB_SIGNAL_TRAP)
5684  ecs->event_thread->suspend.stop_signal = GDB_SIGNAL_0;
5685 
5687 
5688  if (debug_infrun)
5689  {
5690  struct regcache *regcache = get_thread_regcache (ecs->ptid);
5691  struct gdbarch *gdbarch = regcache->arch ();
5692  scoped_restore save_inferior_ptid = make_scoped_restore (&inferior_ptid);
5693 
5694  inferior_ptid = ecs->ptid;
5695 
5696  fprintf_unfiltered (gdb_stdlog, "infrun: stop_pc = %s\n",
5697  paddress (gdbarch, stop_pc));
5699  {
5700  CORE_ADDR addr;
5701 
5702  fprintf_unfiltered (gdb_stdlog, "infrun: stopped by watchpoint\n");
5703 
5706  "infrun: stopped data address = %s\n",
5707  paddress (gdbarch, addr));
5708  else
5710  "infrun: (no data address available)\n");
5711  }
5712  }
5713 
5714  /* This is originated from start_remote(), start_inferior() and
5715  shared libraries hook functions. */
5716  stop_soon = get_inferior_stop_soon (ecs->ptid);
5717  if (stop_soon == STOP_QUIETLY || stop_soon == STOP_QUIETLY_REMOTE)
5718  {
5719  if (!ptid_equal (ecs->ptid, inferior_ptid))
5720  context_switch (ecs->ptid);
5721  if (debug_infrun)
5722  fprintf_unfiltered (gdb_stdlog, "infrun: quietly stopped\n");
5723  stop_print_frame = 1;
5724  stop_waiting (ecs);
5725  return;
5726  }
5727 
5728  /* This originates from attach_command(). We need to overwrite
5729  the stop_signal here, because some kernels don't ignore a
5730  SIGSTOP in a subsequent ptrace(PTRACE_CONT,SIGSTOP) call.
5731  See more comments in inferior.h. On the other hand, if we
5732  get a non-SIGSTOP, report it to the user - assume the backend
5733  will handle the SIGSTOP if it should show up later.
5734 
5735  Also consider that the attach is complete when we see a
5736  SIGTRAP. Some systems (e.g. Windows), and stubs supporting
5737  target extended-remote report it instead of a SIGSTOP
5738  (e.g. gdbserver). We already rely on SIGTRAP being our
5739  signal, so this is no exception.
5740 
5741  Also consider that the attach is complete when we see a
5742  GDB_SIGNAL_0. In non-stop mode, GDB will explicitly tell
5743  the target to stop all threads of the inferior, in case the
5744  low level attach operation doesn't stop them implicitly. If
5745  they weren't stopped implicitly, then the stub will report a
5746  GDB_SIGNAL_0, meaning: stopped for no particular reason
5747  other than GDB's request. */
5748  if (stop_soon == STOP_QUIETLY_NO_SIGSTOP
5749  && (ecs->event_thread->suspend.stop_signal == GDB_SIGNAL_STOP
5750  || ecs->event_thread->suspend.stop_signal == GDB_SIGNAL_TRAP
5751  || ecs->event_thread->suspend.stop_signal == GDB_SIGNAL_0))
5752  {
5753  stop_print_frame = 1;
5754  stop_waiting (ecs);
5755  ecs->event_thread->suspend.stop_signal = GDB_SIGNAL_0;
5756  return;
5757  }
5758 
5759  /* See if something interesting happened to the non-current thread. If
5760  so, then switch to that thread. */
5761  if (!ptid_equal (ecs->ptid, inferior_ptid))
5762  {
5763  if (debug_infrun)
5764  fprintf_unfiltered (gdb_stdlog, "infrun: context switch\n");
5765 
5766  context_switch (ecs->ptid);
5767 
5770  }
5771 
5772  /* At this point, get hold of the now-current thread's frame. */
5773  frame = get_current_frame ();
5774  gdbarch = get_frame_arch (frame);
5775 
5776  /* Pull the single step breakpoints out of the target. */
5777  if (ecs->event_thread->suspend.stop_signal == GDB_SIGNAL_TRAP)
5778  {
5779  struct regcache *regcache;
5780  CORE_ADDR pc;
5781 
5783  const address_space *aspace = regcache->aspace ();
5784 
5785  pc = regcache_read_pc (regcache);
5786 
5787  /* However, before doing so, if this single-step breakpoint was
5788  actually for another thread, set this thread up for moving
5789  past it. */
5791  aspace, pc))
5792  {
5794  {
5795  if (debug_infrun)
5796  {
5798  "infrun: [%s] hit another thread's "
5799  "single-step breakpoint\n",
5800  target_pid_to_str (ecs->ptid));
5801  }
5802  ecs->hit_singlestep_breakpoint = 1;
5803  }
5804  }
5805  else
5806  {
5807  if (debug_infrun)
5808  {
5810  "infrun: [%s] hit its "
5811  "single-step breakpoint\n",
5812  target_pid_to_str (ecs->ptid));
5813  }
5814  }
5815  }
5817 
5818  if (ecs->event_thread->suspend.stop_signal == GDB_SIGNAL_TRAP
5821  stopped_by_watchpoint = 0;
5822  else
5823  stopped_by_watchpoint = watchpoints_triggered (&ecs->ws);
5824 
5825  /* If necessary, step over this watchpoint. We'll be back to display
5826  it in a moment. */
5827  if (stopped_by_watchpoint
5830  {
5831  /* At this point, we are stopped at an instruction which has
5832  attempted to write to a piece of memory under control of
5833  a watchpoint. The instruction hasn't actually executed
5834  yet. If we were to evaluate the watchpoint expression
5835  now, we would get the old value, and therefore no change
5836  would seem to have occurred.
5837 
5838  In order to make watchpoints work `right', we really need
5839  to complete the memory write, and then evaluate the
5840  watchpoint expression. We do this by single-stepping the
5841  target.
5842 
5843  It may not be necessary to disable the watchpoint to step over
5844  it. For example, the PA can (with some kernel cooperation)
5845  single step over a watchpoint without disabling the watchpoint.
5846 
5847  It is far more common to need to disable a watchpoint to step
5848  the inferior over it. If we have non-steppable watchpoints,
5849  we must disable the current watchpoint; it's simplest to
5850  disable all watchpoints.
5851 
5852  Any breakpoint at PC must also be stepped over -- if there's
5853  one, it will have already triggered before the watchpoint
5854  triggered, and we either already reported it to the user, or
5855  it didn't cause a stop and we called keep_going. In either
5856  case, if there was a breakpoint at PC, we must be trying to
5857  step past it. */
5859  keep_going (ecs);
5860  return;
5861  }
5862 
5866  ecs->event_thread->control.stop_step = 0;
5867  stop_print_frame = 1;
5869 
5870  /* Hide inlined functions starting here, unless we just performed stepi or
5871  nexti. After stepi and nexti, always show the innermost frame (not any
5872  inline function call sites). */
5873  if (ecs->event_thread->control.step_range_end != 1)
5874  {
5875  const address_space *aspace =
5876  get_thread_regcache (ecs->ptid)->aspace ();
5877 
5878  /* skip_inline_frames is expensive, so we avoid it if we can
5879  determine that the address is one where functions cannot have
5880  been inlined. This improves performance with inferiors that
5881  load a lot of shared libraries, because the solib event
5882  breakpoint is defined as the address of a function (i.e. not
5883  inline). Note that we have to check the previous PC as well
5884  as the current one to catch cases when we have just
5885  single-stepped off a breakpoint prior to reinstating it.
5886  Note that we're assuming that the code we single-step to is
5887  not inline, but that's not definitive: there's nothing
5888  preventing the event breakpoint function from containing
5889  inlined code, and the single-step ending up there. If the
5890  user had set a breakpoint on that inlined code, the missing
5891  skip_inline_frames call would break things. Fortunately
5892  that's an extremely unlikely scenario. */
5894  && !(ecs->event_thread->suspend.stop_signal == GDB_SIGNAL_TRAP
5897  ecs->event_thread->prev_pc,
5898  &ecs->ws)))
5899  {
5900  skip_inline_frames (ecs->ptid);
5901 
5902  /* Re-fetch current thread's frame in case that invalidated
5903  the frame cache. */
5904  frame = get_current_frame ();
5905  gdbarch = get_frame_arch (frame);
5906  }
5907  }
5908 
5909  if (ecs->event_thread->suspend.stop_signal == GDB_SIGNAL_TRAP
5912  && currently_stepping (ecs->event_thread))
5913  {
5914  /* We're trying to step off a breakpoint. Turns out that we're
5915  also on an instruction that needs to be stepped multiple
5916  times before it's been fully executing. E.g., architectures
5917  with a delay slot. It needs to be stepped twice, once for
5918  the instruction and once for the delay slot. */
5919  int step_through_delay
5921 
5922  if (debug_infrun && step_through_delay)
5923  fprintf_unfiltered (gdb_stdlog, "infrun: step through delay\n");
5924  if (ecs->event_thread->control.step_range_end == 0
5925  && step_through_delay)
5926  {
5927  /* The user issued a continue when stopped at a breakpoint.
5928  Set up for another trap and get out of here. */
5930  keep_going (ecs);
5931  return;
5932  }
5933  else if (step_through_delay)
5934  {
5935  /* The user issued a step when stopped at a breakpoint.
5936  Maybe we should stop, maybe we should not - the delay
5937  slot *might* correspond to a line of source. In any
5938  case, don't decide that here, just set
5939  ecs->stepping_over_breakpoint, making sure we
5940  single-step again before breakpoints are re-inserted. */
5942  }
5943  }
5944 
5945  /* See if there is a breakpoint/watchpoint/catchpoint/etc. that
5946  handles this event. */
5949  stop_pc, ecs->ptid, &ecs->ws);
5950 
5951  /* Following in case break condition called a
5952  function. */
5953  stop_print_frame = 1;
5954 
5955  /* This is where we handle "moribund" watchpoints. Unlike
5956  software breakpoints traps, hardware watchpoint traps are
5957  always distinguishable from random traps. If no high-level
5958  watchpoint is associated with the reported stop data address
5959  anymore, then the bpstat does not explain the signal ---
5960  simply make sure to ignore it if `stopped_by_watchpoint' is
5961  set. */
5962 
5963  if (debug_infrun
5964  && ecs->event_thread->suspend.stop_signal == GDB_SIGNAL_TRAP
5966  GDB_SIGNAL_TRAP)
5967  && stopped_by_watchpoint)
5969  "infrun: no user watchpoint explains "
5970  "watchpoint SIGTRAP, ignoring\n");
5971 
5972  /* NOTE: cagney/2003-03-29: These checks for a random signal
5973  at one stage in the past included checks for an inferior
5974  function call's call dummy's return breakpoint. The original
5975  comment, that went with the test, read:
5976 
5977  ``End of a stack dummy. Some systems (e.g. Sony news) give
5978  another signal besides SIGTRAP, so check here as well as
5979  above.''
5980 
5981  If someone ever tries to get call dummys on a
5982  non-executable stack to work (where the target would stop
5983  with something like a SIGSEGV), then those tests might need
5984  to be re-instated. Given, however, that the tests were only
5985  enabled when momentary breakpoints were not being used, I
5986  suspect that it won't be the case.
5987 
5988  NOTE: kettenis/2004-02-05: Indeed such checks don't seem to
5989  be necessary for call dummies on a non-executable stack on
5990  SPARC. */
5991 
5992  /* See if the breakpoints module can explain the signal. */
5993  random_signal
5996 
5997  /* Maybe this was a trap for a software breakpoint that has since
5998  been removed. */
5999  if (random_signal && target_stopped_by_sw_breakpoint ())
6000  {
6002  {
6003  struct regcache *regcache;
6004  int decr_pc;
6005 
6006  /* Re-adjust PC to what the program would see if GDB was not
6007  debugging it. */
6010  if (decr_pc != 0)
6011  {
6013  restore_operation_disable;
6014 
6015  if (record_full_is_used ())
6016  restore_operation_disable.emplace
6018 
6019  regcache_write_pc (regcache, stop_pc + decr_pc);
6020  }
6021  }
6022  else
6023  {
6024  /* A delayed software breakpoint event. Ignore the trap. */
6025  if (debug_infrun)
6027  "infrun: delayed software breakpoint "
6028  "trap, ignoring\n");
6029  random_signal = 0;
6030  }
6031  }
6032 
6033  /* Maybe this was a trap for a hardware breakpoint/watchpoint that
6034  has since been removed. */
6035  if (random_signal && target_stopped_by_hw_breakpoint ())
6036  {
6037  /* A delayed hardware breakpoint event. Ignore the trap. */
6038  if (debug_infrun)
6040  "infrun: delayed hardware breakpoint/watchpoint "
6041  "trap, ignoring\n");
6042  random_signal = 0;
6043  }
6044 
6045  /* If not, perhaps stepping/nexting can. */
6046  if (random_signal)
6047  random_signal = !(ecs->event_thread->suspend.stop_signal == GDB_SIGNAL_TRAP
6048  && currently_stepping (ecs->event_thread));
6049 
6050  /* Perhaps the thread hit a single-step breakpoint of _another_
6051  thread. Single-step breakpoints are transparent to the
6052  breakpoints module. */
6053  if (random_signal)
6054  random_signal = !ecs->hit_singlestep_breakpoint;
6055 
6056  /* No? Perhaps we got a moribund watchpoint. */
6057  if (random_signal)
6058  random_signal = !stopped_by_watchpoint;
6059 
6060  /* Always stop if the user explicitly requested this thread to
6061  remain stopped. */
6062  if (ecs->event_thread->stop_requested)
6063  {
6064  random_signal = 1;
6065  if (debug_infrun)
6066  fprintf_unfiltered (gdb_stdlog, "infrun: user-requested stop\n");
6067  }
6068 
6069  /* For the program's own signals, act according to
6070  the signal handling tables. */
6071 
6072  if (random_signal)
6073  {
6074  /* Signal not for debugging purposes. */
6075  struct inferior *inf = find_inferior_ptid (ecs->ptid);
6076  enum gdb_signal stop_signal = ecs->event_thread->suspend.stop_signal;
6077 
6078  if (debug_infrun)
6079  fprintf_unfiltered (gdb_stdlog, "infrun: random signal (%s)\n",
6080  gdb_signal_to_symbol_string (stop_signal));
6081 
6083 
6084  /* Always stop on signals if we're either just gaining control
6085  of the program, or the user explicitly requested this thread
6086  to remain stopped. */
6087  if (stop_soon != NO_STOP_QUIETLY
6088  || ecs->event_thread->stop_requested
6089  || (!inf->detaching
6091  {
6092  stop_waiting (ecs);
6093  return;
6094  }
6095 
6096  /* Notify observers the signal has "handle print" set. Note we
6097  returned early above if stopping; normal_stop handles the
6098  printing in that case. */
6100  {
6101  /* The signal table tells us to print about this signal. */
6105  }
6106 
6107  /* Clear the signal if it should not be passed. */
6109  ecs->event_thread->suspend.stop_signal = GDB_SIGNAL_0;
6110 
6111  if (ecs->event_thread->prev_pc == stop_pc
6113  && ecs->event_thread->control.step_resume_breakpoint == NULL)
6114  {
6115  /* We were just starting a new sequence, attempting to
6116  single-step off of a breakpoint and expecting a SIGTRAP.
6117  Instead this signal arrives. This signal will take us out
6118  of the stepping range so GDB needs to remember to, when
6119  the signal handler returns, resume stepping off that
6120  breakpoint. */
6121  /* To simplify things, "continue" is forced to use the same
6122  code paths as single-step - set a breakpoint at the
6123  signal return address and then, once hit, step off that
6124  breakpoint. */
6125  if (debug_infrun)
6127  "infrun: signal arrived while stepping over "
6128  "breakpoint\n");
6129 
6132  /* Reset trap_expected to ensure breakpoints are re-inserted. */
6134 
6135  /* If we were nexting/stepping some other thread, switch to
6136  it, so that we don't continue it, losing control. */
6137  if (!switch_back_to_stepped_thread (ecs))
6138  keep_going (ecs);
6139  return;
6140  }
6141 
6142  if (ecs->event_thread->suspend.stop_signal != GDB_SIGNAL_0
6144  || ecs->event_thread->control.step_range_end == 1)
6145  && frame_id_eq (get_stack_frame_id (frame),
6147  && ecs->event_thread->control.step_resume_breakpoint == NULL)
6148  {
6149  /* The inferior is about to take a signal that will take it
6150  out of the single step range. Set a breakpoint at the
6151  current PC (which is presumably where the signal handler
6152  will eventually return) and then allow the inferior to
6153  run free.
6154 
6155  Note that this is only needed for a signal delivered
6156  while in the single-step range. Nested signals aren't a
6157  problem as they eventually all return. */
6158  if (debug_infrun)
6160  "infrun: signal may take us out of "
6161  "single-step range\n");
6162 
6166  /* Reset trap_expected to ensure breakpoints are re-inserted. */
6168  keep_going (ecs);
6169  return;
6170  }
6171 
6172  /* Note: step_resume_breakpoint may be non-NULL. This occures
6173  when either there's a nested signal, or when there's a
6174  pending signal enabled just as the signal handler returns
6175  (leaving the inferior at the step-resume-breakpoint without
6176  actually executing it). Either way continue until the
6177  breakpoint is really hit. */
6178 
6179  if (!switch_back_to_stepped_thread (ecs))
6180  {
6181  if (debug_infrun)
6183  "infrun: random signal, keep going\n");
6184 
6185  keep_going (ecs);
6186  }
6187  return;
6188  }
6189 
6191 }
6192 
6193 /* Come here when we've got some debug event / signal we can explain
6194  (IOW, not a random signal), and test whether it should cause a
6195  stop, or whether we should resume the inferior (transparently).
6196  E.g., could be a breakpoint whose condition evaluates false; we
6197  could be still stepping within the line; etc. */
6198 
6199 static void
6201 {
6202  struct symtab_and_line stop_pc_sal;
6203  struct frame_info *frame;
6204  struct gdbarch *gdbarch;
6205  CORE_ADDR jmp_buf_pc;
6206  struct bpstat_what what;
6207 
6208  /* Handle cases caused by hitting a breakpoint. */
6209 
6210  frame = get_current_frame ();
6211  gdbarch = get_frame_arch (frame);
6212 
6214 
6215  if (what.call_dummy)
6216  {
6218  }
6219 
6220  /* A few breakpoint types have callbacks associated (e.g.,
6221  bp_jit_event). Run them now. */
6223 
6224  /* If we hit an internal event that triggers symbol changes, the
6225  current frame will be invalidated within bpstat_what (e.g., if we
6226  hit an internal solib event). Re-fetch it. */
6227  frame = get_current_frame ();
6228  gdbarch = get_frame_arch (frame);
6229 
6230  switch (what.main_action)
6231  {
6233  /* If we hit the breakpoint at longjmp while stepping, we
6234  install a momentary breakpoint at the target of the
6235  jmp_buf. */
6236 
6237  if (debug_infrun)
6239  "infrun: BPSTAT_WHAT_SET_LONGJMP_RESUME\n");
6240 
6242 
6243  if (what.is_longjmp)
6244  {
6245  struct value *arg_value;
6246 
6247  /* If we set the longjmp breakpoint via a SystemTap probe,
6248  then use it to extract the arguments. The destination PC
6249  is the third argument to the probe. */
6250  arg_value = probe_safe_evaluate_at_pc (frame, 2);
6251  if (arg_value)
6252  {
6253  jmp_buf_pc = value_as_address (arg_value);
6254  jmp_buf_pc = gdbarch_addr_bits_remove (gdbarch, jmp_buf_pc);
6255  }
6258  frame, &jmp_buf_pc))
6259  {
6260  if (debug_infrun)
6262  "infrun: BPSTAT_WHAT_SET_LONGJMP_RESUME "
6263  "(!gdbarch_get_longjmp_target)\n");
6264  keep_going (ecs);
6265  return;
6266  }
6267 
6268  /* Insert a breakpoint at resume address. */
6270  }
6271  else
6272  check_exception_resume (ecs, frame);
6273  keep_going (ecs);
6274  return;
6275 
6277  {
6278  struct frame_info *init_frame;
6279 
6280  /* There are several cases to consider.
6281 
6282  1. The initiating frame no longer exists. In this case we
6283  must stop, because the exception or longjmp has gone too
6284  far.
6285 
6286  2. The initiating frame exists, and is the same as the
6287  current frame. We stop, because the exception or longjmp
6288  has been caught.
6289 
6290  3. The initiating frame exists and is different from the
6291  current frame. This means the exception or longjmp has
6292  been caught beneath the initiating frame, so keep going.
6293 
6294  4. longjmp breakpoint has been placed just to protect
6295  against stale dummy frames and user is not interested in
6296  stopping around longjmps. */
6297 
6298  if (debug_infrun)
6300  "infrun: BPSTAT_WHAT_CLEAR_LONGJMP_RESUME\n");
6301 
6303  != NULL);
6305 
6306  if (what.is_longjmp)
6307  {
6309 
6311  {
6312  /* Case 4. */
6313  keep_going (ecs);
6314  return;
6315  }
6316  }
6317 
6318  init_frame = frame_find_by_id (ecs->event_thread->initiating_frame);
6319 
6320  if (init_frame)
6321  {
6322  struct frame_id current_id
6324  if (frame_id_eq (current_id,
6326  {
6327  /* Case 2. Fall through. */
6328  }
6329  else
6330  {
6331  /* Case 3. */
6332  keep_going (ecs);
6333  return;
6334  }
6335  }
6336 
6337  /* For Cases 1 and 2, remove the step-resume breakpoint, if it
6338  exists. */
6340 
6341  end_stepping_range (ecs);
6342  }
6343  return;
6344 
6345  case BPSTAT_WHAT_SINGLE:
6346  if (debug_infrun)
6347  fprintf_unfiltered (gdb_stdlog, "infrun: BPSTAT_WHAT_SINGLE\n");
6349  /* Still need to check other stuff, at least the case where we
6350  are stepping and step out of the right range. */
6351  break;
6352 
6354  if (debug_infrun)
6355  fprintf_unfiltered (gdb_stdlog, "infrun: BPSTAT_WHAT_STEP_RESUME\n");
6356 
6360  {
6361  struct thread_info *tp = ecs->event_thread;
6362 
6363  /* We are finishing a function in reverse, and just hit the
6364  step-resume breakpoint at the start address of the
6365  function, and we're almost there -- just need to back up
6366  by one more single-step, which should take us back to the
6367  function call. */
6369  keep_going (ecs);
6370  return;
6371  }
6372  fill_in_stop_func (gdbarch, ecs);
6373  if (stop_pc == ecs->stop_func_start
6375  {
6376  /* We are stepping over a function call in reverse, and just
6377  hit the step-resume breakpoint at the start address of
6378  the function. Go back to single-stepping, which should
6379  take us back to the function call. */
6381  keep_going (ecs);
6382  return;
6383  }
6384  break;
6385 
6387  if (debug_infrun)
6388  fprintf_unfiltered (gdb_stdlog, "infrun: BPSTAT_WHAT_STOP_NOISY\n");
6389  stop_print_frame = 1;
6390 
6391  /* Assume the thread stopped for a breapoint. We'll still check
6392  whether a/the breakpoint is there when the thread is next
6393  resumed. */
6395 
6396  stop_waiting (ecs);
6397  return;
6398 
6400  if (debug_infrun)
6401  fprintf_unfiltered (gdb_stdlog, "infrun: BPSTAT_WHAT_STOP_SILENT\n");
6402  stop_print_frame = 0;
6403 
6404  /* Assume the thread stopped for a breapoint. We'll still check
6405  whether a/the breakpoint is there when the thread is next
6406  resumed. */
6408  stop_waiting (ecs);
6409  return;
6410 
6412  if (debug_infrun)
6413  fprintf_unfiltered (gdb_stdlog, "infrun: BPSTAT_WHAT_HP_STEP_RESUME\n");
6414 
6417  {
6418  /* Back when the step-resume breakpoint was inserted, we
6419  were trying to single-step off a breakpoint. Go back to
6420  doing that. */
6423  keep_going (ecs);
6424  return;
6425  }
6426  break;
6427 
6429  break;
6430  }
6431 
6432  /* If we stepped a permanent breakpoint and we had a high priority
6433  step-resume breakpoint for the address we stepped, but we didn't
6434  hit it, then we must have stepped into the signal handler. The
6435  step-resume was only necessary to catch the case of _not_
6436  stepping into the handler, so delete it, and fall through to
6437  checking whether the step finished. */
6438  if (ecs->event_thread->stepped_breakpoint)
6439  {
6440  struct breakpoint *sr_bp
6442 
6443  if (sr_bp != NULL
6444  && sr_bp->loc->permanent
6445  && sr_bp->type == bp_hp_step_resume
6446  && sr_bp->loc->address == ecs->event_thread->prev_pc)
6447  {
6448  if (debug_infrun)
6450  "infrun: stepped permanent breakpoint, stopped in "
6451  "handler\n");
6454  }
6455  }
6456 
6457  /* We come here if we hit a breakpoint but should not stop for it.
6458  Possibly we also were stepping and should stop for that. So fall
6459  through and test for stepping. But, if not stepping, do not
6460  stop. */
6461 
6462  /* In all-stop mode, if we're currently stepping but have stopped in
6463  some other thread, we need to switch back to the stepped thread. */
6465  return;
6466 
6468  {
6469  if (debug_infrun)
6471  "infrun: step-resume breakpoint is inserted\n");
6472 
6473  /* Having a step-resume breakpoint overrides anything
6474  else having to do with stepping commands until
6475  that breakpoint is reached. */
6476  keep_going (ecs);
6477  return;
6478  }
6479 
6480  if (ecs->event_thread->control.step_range_end == 0)
6481  {
6482  if (debug_infrun)
6483  fprintf_unfiltered (gdb_stdlog, "infrun: no stepping, continue\n");
6484  /* Likewise if we aren't even stepping. */
6485  keep_going (ecs);
6486  return;
6487  }
6488 
6489  /* Re-fetch current thread's frame in case the code above caused
6490  the frame cache to be re-initialized, making our FRAME variable
6491  a dangling pointer. */
6492  frame = get_current_frame ();
6493  gdbarch = get_frame_arch (frame);
6494  fill_in_stop_func (gdbarch, ecs);
6495 
6496  /* If stepping through a line, keep going if still within it.
6497 
6498  Note that step_range_end is the address of the first instruction
6499  beyond the step range, and NOT the address of the last instruction
6500  within it!
6501 
6502  Note also that during reverse execution, we may be stepping
6503  through a function epilogue and therefore must detect when
6504  the current-frame changes in the middle of a line. */
6505 
6508  || frame_id_eq (get_frame_id (frame),
6510  {
6511  if (debug_infrun)
6513  (gdb_stdlog, "infrun: stepping inside range [%s-%s]\n",
6516 
6517  /* Tentatively re-enable range stepping; `resume' disables it if
6518  necessary (e.g., if we're stepping over a breakpoint or we
6519  have software watchpoints). */
6521 
6522  /* When stepping backward, stop at beginning of line range
6523  (unless it's the function entry point, in which case
6524  keep going back to the call point). */
6526  && stop_pc != ecs->stop_func_start
6528  end_stepping_range (ecs);
6529  else
6530  keep_going (ecs);
6531 
6532  return;
6533  }
6534 
6535  /* We stepped out of the stepping range. */
6536 
6537  /* If we are stepping at the source level and entered the runtime
6538  loader dynamic symbol resolution code...
6539 
6540  EXEC_FORWARD: we keep on single stepping until we exit the run
6541  time loader code and reach the callee's address.
6542 
6543  EXEC_REVERSE: we've already executed the callee (backward), and
6544  the runtime loader code is handled just like any other
6545  undebuggable function call. Now we need only keep stepping
6546  backward through the trampoline code, and that's handled further
6547  down, so there is nothing for us to do here. */
6548 
6552  {
6553  CORE_ADDR pc_after_resolver =
6555 
6556  if (debug_infrun)
6558  "infrun: stepped into dynsym resolve code\n");
6559 
6560  if (pc_after_resolver)
6561  {
6562  /* Set up a step-resume breakpoint at the address
6563  indicated by SKIP_SOLIB_RESOLVER. */
6564  symtab_and_line sr_sal;
6565  sr_sal.pc = pc_after_resolver;
6566  sr_sal.pspace = get_frame_program_space (frame);
6567 
6569  sr_sal, null_frame_id);
6570  }
6571 
6572  keep_going (ecs);
6573  return;
6574  }
6575 
6576  if (ecs->event_thread->control.step_range_end != 1
6579  && get_frame_type (frame) == SIGTRAMP_FRAME)
6580  {
6581  if (debug_infrun)
6583  "infrun: stepped into signal trampoline\n");
6584  /* The inferior, while doing a "step" or "next", has ended up in
6585  a signal trampoline (either by a signal being delivered or by
6586  the signal handler returning). Just single-step until the
6587  inferior leaves the trampoline (either by calling the handler
6588  or returning). */
6589  keep_going (ecs);
6590  return;
6591  }
6592 
6593  /* If we're in the return path from a shared library trampoline,
6594  we want to proceed through the trampoline when stepping. */
6595  /* macro/2012-04-25: This needs to come before the subroutine
6596  call check below as on some targets return trampolines look
6597  like subroutine calls (MIPS16 return thunks). */
6599  stop_pc, ecs->stop_func_name)
6601  {
6602  /* Determine where this trampoline returns. */
6603  CORE_ADDR real_stop_pc;
6604 
6605  real_stop_pc = gdbarch_skip_trampoline_code (gdbarch, frame, stop_pc);
6606 
6607  if (debug_infrun)
6609  "infrun: stepped into solib return tramp\n");
6610 
6611  /* Only proceed through if we know where it's going. */
6612  if (real_stop_pc)
6613  {
6614  /* And put the step-breakpoint there and go until there. */
6615  symtab_and_line sr_sal;
6616  sr_sal.pc = real_stop_pc;
6617  sr_sal.section = find_pc_overlay (sr_sal.pc);
6618  sr_sal.pspace = get_frame_program_space (frame);
6619 
6620  /* Do not specify what the fp should be when we stop since
6621  on some machines the prologue is where the new fp value
6622  is established. */
6624  sr_sal, null_frame_id);
6625 
6626  /* Restart without fiddling with the step ranges or
6627  other state. */
6628  keep_going (ecs);
6629  return;
6630  }
6631  }
6632 
6633  /* Check for subroutine calls. The check for the current frame
6634  equalling the step ID is not necessary - the check of the
6635  previous frame's ID is sufficient - but it is a common case and
6636  cheaper than checking the previous frame's ID.
6637 
6638  NOTE: frame_id_eq will never report two invalid frame IDs as
6639  being equal, so to get into this block, both the current and
6640  previous frame must have valid frame IDs. */
6641  /* The outer_frame_id check is a heuristic to detect stepping
6642  through startup code. If we step over an instruction which
6643  sets the stack pointer from an invalid value to a valid value,
6644  we may detect that as a subroutine call from the mythical
6645  "outermost" function. This could be fixed by marking
6646  outermost frames as !stack_p,code_p,special_p. Then the
6647  initial outermost frame, before sp was valid, would
6648  have code_addr == &_start. See the comment in frame_id_eq
6649  for more. */
6650  if (!frame_id_eq (get_stack_frame_id (frame),
6657  != find_pc_function (stop_pc)))))
6658  {
6659  CORE_ADDR real_stop_pc;
6660 
6661  if (debug_infrun)
6662  fprintf_unfiltered (gdb_stdlog, "infrun: stepped into subroutine\n");
6663 
6665  {
6666  /* I presume that step_over_calls is only 0 when we're
6667  supposed to be stepping at the assembly language level
6668  ("stepi"). Just stop. */
6669  /* And this works the same backward as frontward. MVS */
6670  end_stepping_range (ecs);
6671  return;
6672  }
6673 
6674  /* Reverse stepping through solib trampolines. */
6675 
6679  || (ecs->stop_func_start == 0
6681  {
6682  /* Any solib trampoline code can be handled in reverse
6683  by simply continuing to single-step. We have already
6684  executed the solib function (backwards), and a few
6685  steps will take us back through the trampoline to the
6686  caller. */
6687  keep_going (ecs);
6688  return;
6689  }
6690 
6692  {
6693  /* We're doing a "next".
6694 
6695  Normal (forward) execution: set a breakpoint at the
6696  callee's return address (the address at which the caller
6697  will resume).
6698 
6699  Reverse (backward) execution. set the step-resume
6700  breakpoint at the start of the function that we just
6701  stepped into (backwards), and continue to there. When we
6702  get there, we'll need to single-step back to the caller. */
6703 
6705  {
6706  /* If we're already at the start of the function, we've either
6707  just stepped backward into a single instruction function,
6708  or stepped back out of a signal handler to the first instruction
6709  of the function. Just keep going, which will single-step back
6710  to the caller. */
6711  if (ecs->stop_func_start != stop_pc && ecs->stop_func_start != 0)
6712  {
6713  /* Normal function call return (static or dynamic). */
6714  symtab_and_line sr_sal;
6715  sr_sal.pc = ecs->stop_func_start;
6716  sr_sal.pspace = get_frame_program_space (frame);
6718  sr_sal, null_frame_id);
6719  }
6720  }
6721  else
6723 
6724  keep_going (ecs);
6725  return;
6726  }
6727 
6728  /* If we are in a function call trampoline (a stub between the
6729  calling routine and the real function), locate the real
6730  function. That's what tells us (a) whether we want to step
6731  into it at all, and (b) what prologue we want to run to the
6732  end of, if we do step into it. */
6733  real_stop_pc = skip_language_trampoline (frame, stop_pc);
6734  if (real_stop_pc == 0)
6735  real_stop_pc = gdbarch_skip_trampoline_code (gdbarch, frame, stop_pc);
6736  if (real_stop_pc != 0)
6737  ecs->stop_func_start = real_stop_pc;
6738 
6739  if (real_stop_pc != 0 && in_solib_dynsym_resolve_code (real_stop_pc))
6740  {
6741  symtab_and_line sr_sal;
6742  sr_sal.pc = ecs->stop_func_start;
6743  sr_sal.pspace = get_frame_program_space (frame);
6744 
6746  sr_sal, null_frame_id);
6747  keep_going (ecs);
6748  return;
6749  }
6750 
6751  /* If we have line number information for the function we are
6752  thinking of stepping into and the function isn't on the skip
6753  list, step into it.
6754 
6755  If there are several symtabs at that PC (e.g. with include
6756  files), just want to know whether *any* of them have line
6757  numbers. find_pc_line handles this. */
6758  {
6759  struct symtab_and_line tmp_sal;
6760 
6761  tmp_sal = find_pc_line (ecs->stop_func_start, 0);
6762  if (tmp_sal.line != 0
6764  tmp_sal))
6765  {
6768  else
6770  return;
6771  }
6772  }
6773 
6774  /* If we have no line number and the step-stop-if-no-debug is
6775  set, we stop the step so that the user has a chance to switch
6776  in assembly mode. */
6779  {
6780  end_stepping_range (ecs);
6781  return;
6782  }
6783 
6785  {
6786  /* If we're already at the start of the function, we've either just
6787  stepped backward into a single instruction function without line
6788  number info, or stepped back out of a signal handler to the first
6789  instruction of the function without line number info. Just keep
6790  going, which will single-step back to the caller. */
6791  if (ecs->stop_func_start != stop_pc)
6792  {
6793  /* Set a breakpoint at callee's start address.
6794  From there we can step once and be back in the caller. */
6795  symtab_and_line sr_sal;
6796  sr_sal.pc = ecs->stop_func_start;
6797  sr_sal.pspace = get_frame_program_space (frame);
6799  sr_sal, null_frame_id);
6800  }
6801  }
6802  else
6803  /* Set a breakpoint at callee's return address (the address
6804  at which the caller will resume). */
6806 
6807  keep_going (ecs);
6808  return;
6809  }
6810 
6811  /* Reverse stepping through solib trampolines. */
6812 
6815  {
6817  || (ecs->stop_func_start == 0
6819  {
6820  /* Any solib trampoline code can be handled in reverse
6821  by simply continuing to single-step. We have already
6822  executed the solib function (backwards), and a few
6823  steps will take us back through the trampoline to the
6824  caller. */
6825  keep_going (ecs);
6826  return;
6827  }
6829  {
6830  /* Stepped backward into the solib dynsym resolver.
6831  Set a breakpoint at its start and continue, then
6832  one more step will take us out. */
6833  symtab_and_line sr_sal;
6834  sr_sal.pc = ecs->stop_func_start;
6835  sr_sal.pspace = get_frame_program_space (frame);
6837  sr_sal, null_frame_id);
6838  keep_going (ecs);
6839  return;
6840  }
6841  }
6842 
6843  stop_pc_sal = find_pc_line (stop_pc, 0);
6844 
6845  /* NOTE: tausq/2004-05-24: This if block used to be done before all
6846  the trampoline processing logic, however, there are some trampolines
6847  that have no names, so we should do trampoline handling first. */
6849  && ecs->stop_func_name == NULL
6850  && stop_pc_sal.line == 0)
6851  {
6852  if (debug_infrun)
6854  "infrun: stepped into undebuggable function\n");
6855 
6856  /* The inferior just stepped into, or returned to, an
6857  undebuggable function (where there is no debugging information
6858  and no line number corresponding to the address where the
6859  inferior stopped). Since we want to skip this kind of code,
6860  we keep going until the inferior returns from this
6861  function - unless the user has asked us not to (via
6862  set step-mode) or we no longer know how to get back
6863  to the call site. */
6865  || !frame_id_p (frame_unwind_caller_id (frame)))
6866  {
6867  /* If we have no line number and the step-stop-if-no-debug
6868  is set, we stop the step so that the user has a chance to
6869  switch in assembly mode. */
6870  end_stepping_range (ecs);
6871  return;
6872  }
6873  else
6874  {
6875  /* Set a breakpoint at callee's return address (the address
6876  at which the caller will resume). */
6878  keep_going (ecs);
6879  return;
6880  }
6881  }
6882 
6883  if (ecs->event_thread->control.step_range_end == 1)
6884  {
6885  /* It is stepi or nexti. We always want to stop stepping after
6886  one instruction. */
6887  if (debug_infrun)
6888  fprintf_unfiltered (gdb_stdlog, "infrun: stepi/nexti\n");
6889  end_stepping_range (ecs);
6890  return;
6891  }
6892 
6893  if (stop_pc_sal.line == 0)
6894  {
6895  /* We have no line number information. That means to stop
6896  stepping (does this always happen right after one instruction,
6897  when we do "s" in a function with no line numbers,
6898  or can this happen as a result of a return or longjmp?). */
6899  if (debug_infrun)
6900  fprintf_unfiltered (gdb_stdlog, "infrun: no line number info\n");
6901  end_stepping_range (ecs);
6902  return;
6903  }
6904 
6905  /* Look for "calls" to inlined functions, part one. If the inline
6906  frame machinery detected some skipped call sites, we have entered
6907  a new inline function. */
6908 
6911  && inline_skipped_frames (ecs->ptid))
6912  {
6913  if (debug_infrun)
6915  "infrun: stepped into inlined function\n");
6916 
6918 
6920  {
6921  /* For "step", we're going to stop. But if the call site
6922  for this inlined function is on the same source line as
6923  we were previously stepping, go down into the function
6924  first. Otherwise stop at the call site. */
6925 
6926  if (call_sal.line == ecs->event_thread->current_line
6927  && call_sal.symtab == ecs->event_thread->current_symtab)
6929 
6930  end_stepping_range (ecs);
6931  return;
6932  }
6933  else
6934  {
6935  /* For "next", we should stop at the call site if it is on a
6936  different source line. Otherwise continue through the
6937  inlined function. */
6938  if (call_sal.line == ecs->event_thread->current_line
6939  && call_sal.symtab == ecs->event_thread->current_symtab)
6940  keep_going (ecs);
6941  else
6942  end_stepping_range (ecs);
6943  return;
6944  }
6945  }
6946 
6947  /* Look for "calls" to inlined functions, part two. If we are still
6948  in the same real function we were stepping through, but we have
6949  to go further up to find the exact frame ID, we are stepping
6950  through a more inlined call beyond its call site. */
6951 
6957  {
6958  if (debug_infrun)
6960  "infrun: stepping through inlined function\n");
6961 
6963  keep_going (ecs);
6964  else
6965  end_stepping_range (ecs);
6966  return;
6967  }
6968 
6969  if ((stop_pc == stop_pc_sal.pc)
6970  && (ecs->event_thread->current_line != stop_pc_sal.line
6971  || ecs->event_thread->current_symtab != stop_pc_sal.symtab))
6972  {
6973  /* We are at the start of a different line. So stop. Note that
6974  we don't stop if we step into the middle of a different line.
6975  That is said to make things like for (;;) statements work
6976  better. */
6977  if (debug_infrun)
6979  "infrun: stepped to a different line\n");
6980  end_stepping_range (ecs);
6981  return;
6982  }
6983 
6984  /* We aren't done stepping.
6985 
6986  Optimize by setting the stepping range to the line.
6987  (We might not be in the original line, but if we entered a
6988  new line in mid-statement, we continue stepping. This makes
6989  things like for(;;) statements work better.) */
6990 
6991  ecs->event_thread->control.step_range_start = stop_pc_sal.pc;
6992  ecs->event_thread->control.step_range_end = stop_pc_sal.end;
6994  set_step_info (frame, stop_pc_sal);
6995 
6996  if (debug_infrun)
6997  fprintf_unfiltered (gdb_stdlog, "infrun: keep going\n");
6998  keep_going (ecs);
6999 }
7000 
7001 /* In all-stop mode, if we're currently stepping but have stopped in
7002  some other thread, we may need to switch back to the stepped
7003  thread. Returns true we set the inferior running, false if we left
7004  it stopped (and the event needs further processing). */
7005 
7006 static int
7008 {
7009  if (!target_is_non_stop_p ())
7010  {
7011  struct thread_info *tp;
7012  struct thread_info *stepping_thread;
7013 
7014  /* If any thread is blocked on some internal breakpoint, and we
7015  simply need to step over that breakpoint to get it going
7016  again, do that first. */
7017 
7018  /* However, if we see an event for the stepping thread, then we
7019  know all other threads have been moved past their breakpoints
7020  already. Let the caller check whether the step is finished,
7021  etc., before deciding to move it past a breakpoint. */
7022  if (ecs->event_thread->control.step_range_end != 0)
7023  return 0;
7024 
7025  /* Check if the current thread is blocked on an incomplete
7026  step-over, interrupted by a random signal. */
7028  && ecs->event_thread->suspend.stop_signal != GDB_SIGNAL_TRAP)
7029  {
7030  if (debug_infrun)
7031  {
7033  "infrun: need to finish step-over of [%s]\n",
7035  }
7036  keep_going (ecs);
7037  return 1;
7038  }
7039 
7040  /* Check if the current thread is blocked by a single-step
7041  breakpoint of another thread. */
7042  if (ecs->hit_singlestep_breakpoint)
7043  {
7044  if (debug_infrun)
7045  {
7047  "infrun: need to step [%s] over single-step "
7048  "breakpoint\n",
7049  target_pid_to_str (ecs->ptid));
7050  }
7051  keep_going (ecs);
7052  return 1;
7053  }
7054 
7055  /* If this thread needs yet another step-over (e.g., stepping
7056  through a delay slot), do it first before moving on to
7057  another thread. */
7059  {
7060  if (debug_infrun)
7061  {
7063  "infrun: thread [%s] still needs step-over\n",
7065  }
7066  keep_going (ecs);
7067  return 1;
7068  }
7069 
7070  /* If scheduler locking applies even if not stepping, there's no
7071  need to walk over threads. Above we've checked whether the
7072  current thread is stepping. If some other thread not the
7073  event thread is stepping, then it must be that scheduler
7074  locking is not in effect. */
7075  if (schedlock_applies (ecs->event_thread))
7076  return 0;
7077 
7078  /* Otherwise, we no longer expect a trap in the current thread.
7079  Clear the trap_expected flag before switching back -- this is
7080  what keep_going does as well, if we call it. */
7082 
7083  /* Likewise, clear the signal if it should not be passed. */
7085  ecs->event_thread->suspend.stop_signal = GDB_SIGNAL_0;
7086 
7087  /* Do all pending step-overs before actually proceeding with
7088  step/next/etc. */
7089  if (start_step_over ())
7090  {
7091  prepare_to_wait (ecs);
7092  return 1;
7093  }
7094 
7095  /* Look for the stepping/nexting thread. */
7096  stepping_thread = NULL;
7097 
7099  {
7100  /* Ignore threads of processes the caller is not
7101  resuming. */
7102  if (!sched_multi
7103  && ptid_get_pid (tp->ptid) != ptid_get_pid (ecs->ptid))
7104  continue;
7105 
7106  /* When stepping over a breakpoint, we lock all threads
7107  except the one that needs to move past the breakpoint.
7108  If a non-event thread has this set, the "incomplete
7109  step-over" check above should have caught it earlier. */
7110  if (tp->control.trap_expected)
7111  {
7112  internal_error (__FILE__, __LINE__,
7113  "[%s] has inconsistent state: "
7114  "trap_expected=%d\n",
7115  target_pid_to_str (tp->ptid),
7116  tp->control.trap_expected);
7117  }
7118 
7119  /* Did we find the stepping thread? */
7120  if (tp->control.step_range_end)
7121  {
7122  /* Yep. There should only one though. */
7123  gdb_assert (stepping_thread == NULL);
7124 
7125  /* The event thread is handled at the top, before we
7126  enter this loop. */
7127  gdb_assert (tp != ecs->event_thread);
7128 
7129  /* If some thread other than the event thread is
7130  stepping, then scheduler locking can't be in effect,
7131  otherwise we wouldn't have resumed the current event
7132  thread in the first place. */
7133  gdb_assert (!schedlock_applies (tp));
7134 
7135  stepping_thread = tp;
7136  }
7137  }
7138 
7139  if (stepping_thread != NULL)
7140  {
7141  if (debug_infrun)
7143  "infrun: switching back to stepped thread\n");
7144 
7145  if (keep_going_stepped_thread (stepping_thread))
7146  {
7147  prepare_to_wait (ecs);
7148  return 1;
7149  }
7150  }
7151  }
7152 
7153  return 0;
7154 }
7155 
7156 /* Set a previously stepped thread back to stepping. Returns true on
7157  success, false if the resume is not possible (e.g., the thread
7158  vanished). */
7159 
7160 static int
7162 {
7163  struct frame_info *frame;
7164  struct execution_control_state ecss;
7165  struct execution_control_state *ecs = &ecss;
7166 
7167  /* If the stepping thread exited, then don't try to switch back and
7168  resume it, which could fail in several different ways depending
7169  on the target. Instead, just keep going.
7170 
7171  We can find a stepping dead thread in the thread list in two
7172  cases:
7173 
7174  - The target supports thread exit events, and when the target
7175  tries to delete the thread from the thread list, inferior_ptid
7176  pointed at the exiting thread. In such case, calling
7177  delete_thread does not really remove the thread from the list;
7178  instead, the thread is left listed, with 'exited' state.
7179 
7180  - The target's debug interface does not support thread exit
7181  events, and so we have no idea whatsoever if the previously
7182  stepping thread is still alive. For that reason, we need to
7183  synchronously query the target now. */
7184 
7185  if (is_exited (tp->ptid)
7186  || !target_thread_alive (tp->ptid))
7187  {
7188  if (debug_infrun)
7190  "infrun: not resuming previously "
7191  "stepped thread, it has vanished\n");
7192 
7193  delete_thread (tp->ptid);
7194  return 0;
7195  }
7196 
7197  if (debug_infrun)
7199  "infrun: resuming previously stepped thread\n");
7200 
7201  reset_ecs (ecs, tp);
7202  switch_to_thread (tp->ptid);
7203 
7205  frame = get_current_frame ();
7206 
7207  /* If the PC of the thread we were trying to single-step has
7208  changed, then that thread has trapped or been signaled, but the
7209  event has not been reported to GDB yet. Re-poll the target
7210  looking for this particular thread's event (i.e. temporarily
7211  enable schedlock) by:
7212 
7213  - setting a break at the current PC
7214  - resuming that particular thread, only (by setting trap
7215  expected)
7216 
7217  This prevents us continuously moving the single-step breakpoint
7218  forward, one instruction at a time, overstepping. */
7219 
7220  if (stop_pc != tp->prev_pc)
7221  {
7222  ptid_t resume_ptid;
7223 
7224  if (debug_infrun)
7226  "infrun: expected thread advanced also (%s -> %s)\n",
7227  paddress (target_gdbarch (), tp->prev_pc),
7229 
7230  /* Clear the info of the previous step-over, as it's no longer
7231  valid (if the thread was trying to step over a breakpoint, it
7232  has already succeeded). It's what keep_going would do too,
7233  if we called it. Do this before trying to insert the sss
7234  breakpoint, otherwise if we were previously trying to step
7235  over this exact address in another thread, the breakpoint is
7236  skipped. */
7238  tp->control.trap_expected = 0;
7239 
7241  get_frame_address_space (frame),
7242  stop_pc);
7243 
7244  tp->resumed = 1;
7245  resume_ptid = internal_resume_ptid (tp->control.stepping_command);
7246  do_target_resume (resume_ptid, 0, GDB_SIGNAL_0);
7247  }
7248  else
7249  {
7250  if (debug_infrun)
7252  "infrun: expected thread still hasn't advanced\n");
7253 
7254  keep_going_pass_signal (ecs);
7255  }
7256  return 1;
7257 }
7258 
7259 /* Is thread TP in the middle of (software or hardware)
7260  single-stepping? (Note the result of this function must never be
7261  passed directly as target_resume's STEP parameter.) */
7262 
7263 static int
7265 {
7266  return ((tp->control.step_range_end
7267  && tp->control.step_resume_breakpoint == NULL)
7268  || tp->control.trap_expected
7269  || tp->stepped_breakpoint
7270  || bpstat_should_step ());
7271 }
7272 
7273 /* Inferior has stepped into a subroutine call with source code that
7274  we should not step over. Do step to the first line of code in
7275  it. */
7276 
7277 static void
7279  struct execution_control_state *ecs)
7280 {
7281  fill_in_stop_func (gdbarch, ecs);
7282 
7284  if (cust != NULL && compunit_language (cust) != language_asm)
7285  ecs->stop_func_start
7287 
7288  symtab_and_line stop_func_sal = find_pc_line (ecs->stop_func_start, 0);
7289  /* Use the step_resume_break to step until the end of the prologue,
7290  even if that involves jumps (as it seems to on the vax under
7291  4.2). */
7292  /* If the prologue ends in the middle of a source line, continue to
7293  the end of that source line (if it is still within the function).
7294  Otherwise, just go to end of prologue. */
7295  if (stop_func_sal.end
7296  && stop_func_sal.pc != ecs->stop_func_start
7297  && stop_func_sal.end < ecs->stop_func_end)
7298  ecs->stop_func_start = stop_func_sal.end;
7299 
7300  /* Architectures which require breakpoint adjustment might not be able
7301  to place a breakpoint at the computed address. If so, the test
7302  ``ecs->stop_func_start == stop_pc'' will never succeed. Adjust
7303  ecs->stop_func_start to an address at which a breakpoint may be
7304  legitimately placed.
7305 
7306  Note: kevinb/2004-01-19: On FR-V, if this adjustment is not
7307  made, GDB will enter an infinite loop when stepping through
7308  optimized code consisting of VLIW instructions which contain
7309  subinstructions corresponding to different source lines. On
7310  FR-V, it's not permitted to place a breakpoint on any but the
7311  first subinstruction of a VLIW instruction. When a breakpoint is
7312  set, GDB will adjust the breakpoint address to the beginning of
7313  the VLIW instruction. Thus, we need to make the corresponding
7314  adjustment here when computing the stop address. */
7315 
7317  {
7318  ecs->stop_func_start
7320  ecs->stop_func_start);
7321  }
7322 
7323  if (ecs->stop_func_start == stop_pc)
7324  {
7325  /* We are already there: stop now. */
7326  end_stepping_range (ecs);
7327  return;
7328  }
7329  else
7330  {
7331  /* Put the step-breakpoint there and go until there. */
7332  symtab_and_line sr_sal;
7333  sr_sal.pc = ecs->stop_func_start;
7334  sr_sal.section = find_pc_overlay (ecs->stop_func_start);
7336 
7337  /* Do not specify what the fp should be when we stop since on
7338  some machines the prologue is where the new fp value is
7339  established. */
7341 
7342  /* And make sure stepping stops right away then. */
7345  }
7346  keep_going (ecs);
7347 }
7348 
7349 /* Inferior has stepped backward into a subroutine call with source
7350  code that we should not step over. Do step to the beginning of the
7351  last line of code in it. */
7352 
7353 static void
7355  struct execution_control_state *ecs)
7356 {
7357  struct compunit_symtab *cust;
7358  struct symtab_and_line stop_func_sal;
7359 
7360  fill_in_stop_func (gdbarch, ecs);
7361 
7363  if (cust != NULL && compunit_language (cust) != language_asm)
7364  ecs->stop_func_start
7366 
7367  stop_func_sal = find_pc_line (stop_pc, 0);
7368 
7369  /* OK, we're just going to keep stepping here. */
7370  if (stop_func_sal.pc == stop_pc)
7371  {
7372  /* We're there already. Just stop stepping now. */
7373  end_stepping_range (ecs);
7374  }
7375  else
7376  {
7377  /* Else just reset the step range and keep going.
7378  No step-resume breakpoint, they don't work for
7379  epilogues, which can have multiple entry paths. */
7380  ecs->event_thread->control.step_range_start = stop_func_sal.pc;
7381  ecs->event_thread->control.step_range_end = stop_func_sal.end;
7382  keep_going (ecs);
7383  }
7384  return;
7385 }
7386 
7387 /* Insert a "step-resume breakpoint" at SR_SAL with frame ID SR_ID.
7388  This is used to both functions and to skip over code. */
7389 
7390 static void
7392  struct symtab_and_line sr_sal,
7393  struct frame_id sr_id,
7394  enum bptype sr_type)
7395 {
7396  /* There should never be more than one step-resume or longjmp-resume
7397  breakpoint per thread, so we should never be setting a new
7398  step_resume_breakpoint when one is already active. */
7399  gdb_assert (inferior_thread ()->control.step_resume_breakpoint == NULL);
7400  gdb_assert (sr_type == bp_step_resume || sr_type == bp_hp_step_resume);
7401 
7402  if (debug_infrun)
7404  "infrun: inserting step-resume breakpoint at %s\n",
7405  paddress (gdbarch, sr_sal.pc));
7406 
7408  = set_momentary_breakpoint (gdbarch, sr_sal, sr_id, sr_type).release ();
7409 }
7410 
7411 void
7413  struct symtab_and_line sr_sal,
7414  struct frame_id sr_id)
7415 {
7417  sr_sal, sr_id,
7418  bp_step_resume);
7419 }
7420 
7421 /* Insert a "high-priority step-resume breakpoint" at RETURN_FRAME.pc.
7422  This is used to skip a potential signal handler.
7423 
7424  This is called with the interrupted function's frame. The signal
7425  handler, when it returns, will resume the interrupted function at
7426  RETURN_FRAME.pc. */
7427 
7428 static void
7430 {
7431  gdb_assert (return_frame != NULL);
7432 
7433  struct gdbarch *gdbarch = get_frame_arch (return_frame);
7434 
7435  symtab_and_line sr_sal;
7436  sr_sal.pc = gdbarch_addr_bits_remove (gdbarch, get_frame_pc (return_frame));
7437  sr_sal.section = find_pc_overlay (sr_sal.pc);
7438  sr_sal.pspace = get_frame_program_space (return_frame);
7439 
7441  get_stack_frame_id (return_frame),
7443 }
7444 
7445 /* Insert a "step-resume breakpoint" at the previous frame's PC. This
7446  is used to skip a function after stepping into it (for "next" or if
7447  the called function has no debugging information).
7448 
7449  The current function has almost always been reached by single
7450  stepping a call or return instruction. NEXT_FRAME belongs to the
7451  current function, and the breakpoint will be set at the caller's
7452  resume address.
7453 
7454  This is a separate function rather than reusing
7455  insert_hp_step_resume_breakpoint_at_frame in order to avoid
7456  get_prev_frame, which may stop prematurely (see the implementation
7457  of frame_unwind_caller_id for an example). */
7458 
7459 static void
7461 {
7462  /* We shouldn't have gotten here if we don't know where the call site
7463  is. */
7464  gdb_assert (frame_id_p (frame_unwind_caller_id (next_frame)));
7465 
7466  struct gdbarch *gdbarch = frame_unwind_caller_arch (next_frame);
7467 
7468  symtab_and_line sr_sal;
7470  frame_unwind_caller_pc (next_frame));
7471  sr_sal.section = find_pc_overlay (sr_sal.pc);
7472  sr_sal.pspace = frame_unwind_program_space (next_frame);
7473 
7475  frame_unwind_caller_id (next_frame));
7476 }
7477 
7478 /* Insert a "longjmp-resume" breakpoint at PC. This is used to set a
7479  new breakpoint at the target of a jmp_buf. The handling of
7480  longjmp-resume uses the same mechanisms used for handling
7481  "step-resume" breakpoints. */
7482 
7483 static void
7485 {
7486  /* There should never be more than one longjmp-resume breakpoint per
7487  thread, so we should never be setting a new
7488  longjmp_resume_breakpoint when one is already active. */
7489  gdb_assert (inferior_thread ()->control.exception_resume_breakpoint == NULL);
7490 
7491  if (debug_infrun)
7493  "infrun: inserting longjmp-resume breakpoint at %s\n",
7494  paddress (gdbarch, pc));
7495 
7498 }
7499 
7500 /* Insert an exception resume breakpoint. TP is the thread throwing
7501  the exception. The block B is the block of the unwinder debug hook
7502  function. FRAME is the frame corresponding to the call to this
7503  function. SYM is the symbol of the function argument holding the
7504  target PC of the exception. */
7505 
7506 static void
7508  const struct block *b,
7509  struct frame_info *frame,
7510  struct symbol *sym)
7511 {
7512  TRY
7513  {
7514  struct block_symbol vsym;
7515  struct value *value;
7516  CORE_ADDR handler;
7517  struct breakpoint *bp;
7518 
7520  b, VAR_DOMAIN);
7521  value = read_var_value (vsym.symbol, vsym.block, frame);
7522  /* If the value was optimized out, revert to the old behavior. */
7523  if (! value_optimized_out (value))
7524  {
7525  handler = value_as_address (value);
7526 
7527  if (debug_infrun)
7529  "infrun: exception resume at %lx\n",
7530  (unsigned long) handler);
7531 
7533  handler,
7534  bp_exception_resume).release ();
7535 
7536  /* set_momentary_breakpoint_at_pc invalidates FRAME. */
7537  frame = NULL;
7538 
7539  bp->thread = tp->global_num;
7541  }
7542  }
7544  {
7545  /* We want to ignore errors here. */
7546  }
7547  END_CATCH
7548 }
7549 
7550 /* A helper for check_exception_resume that sets an
7551  exception-breakpoint based on a SystemTap probe. */
7552 
7553 static void
7555  const struct bound_probe *probe,
7556  struct frame_info *frame)
7557 {
7558  struct value *arg_value;
7559  CORE_ADDR handler;
7560  struct breakpoint *bp;
7561 
7562  arg_value = probe_safe_evaluate_at_pc (frame, 1);
7563  if (!arg_value)
7564  return;
7565 
7566  handler = value_as_address (arg_value);
7567 
7568  if (debug_infrun)
7570  "infrun: exception resume at %s\n",
7571  paddress (get_objfile_arch (probe->objfile),
7572  handler));
7573 
7575  handler, bp_exception_resume).release ();
7576  bp->thread = tp->global_num;
7578 }
7579 
7580 /* This is called when an exception has been intercepted. Check to
7581  see whether the exception's destination is of interest, and if so,
7582  set an exception resume breakpoint there. */
7583 
7584 static void
7586  struct frame_info *frame)
7587 {
7588  struct bound_probe probe;
7589  struct symbol *func;
7590 
7591  /* First see if this exception unwinding breakpoint was set via a
7592  SystemTap probe point. If so, the probe has two arguments: the
7593  CFA and the HANDLER. We ignore the CFA, extract the handler, and
7594  set a breakpoint there. */
7595  probe = find_probe_by_pc (get_frame_pc (frame));
7596  if (probe.prob)
7597  {
7599  return;
7600  }
7601 
7602  func = get_frame_function (frame);
7603  if (!func)
7604  return;
7605 
7606  TRY
7607  {
7608  const struct block *b;
7609  struct block_iterator iter;
7610  struct symbol *sym;
7611  int argno = 0;
7612 
7613  /* The exception breakpoint is a thread-specific breakpoint on
7614  the unwinder's debug hook, declared as:
7615 
7616  void _Unwind_DebugHook (void *cfa, void *handler);
7617 
7618  The CFA argument indicates the frame to which control is
7619  about to be transferred. HANDLER is the destination PC.
7620 
7621  We ignore the CFA and set a temporary breakpoint at HANDLER.
7622  This is not extremely efficient but it avoids issues in gdb
7623  with computing the DWARF CFA, and it also works even in weird
7624  cases such as throwing an exception from inside a signal
7625  handler. */
7626 
7627  b = SYMBOL_BLOCK_VALUE (func);
7628  ALL_BLOCK_SYMBOLS (b, iter, sym)
7629  {
7630  if (!SYMBOL_IS_ARGUMENT (sym))
7631  continue;
7632 
7633  if (argno == 0)
7634  ++argno;
7635  else
7636  {
7638  b, frame, sym);
7639  break;
7640  }
7641  }
7642  }
7644  {
7645  }
7646  END_CATCH
7647 }
7648 
7649 static void
7651 {
7652  if (debug_infrun)
7653  fprintf_unfiltered (gdb_stdlog, "infrun: stop_waiting\n");
7654 
7655  /* Let callers know we don't want to wait for the inferior anymore. */
7656  ecs->wait_some_more = 0;
7657 
7658  /* If all-stop, but the target is always in non-stop mode, stop all
7659  threads now that we're presenting the stop to the user. */
7660  if (!non_stop && target_is_non_stop_p ())
7661  stop_all_threads ();
7662 }
7663 
7664 /* Like keep_going, but passes the signal to the inferior, even if the
7665  signal is set to nopass. */
7666 
7667 static void
7669 {
7671  gdb_assert (!ecs->event_thread->resumed);
7672 
7673  /* Save the pc before execution, to compare with pc after stop. */
7674  ecs->event_thread->prev_pc
7676 
7678  {
7679  struct thread_info *tp = ecs->event_thread;
7680 
7681  if (debug_infrun)
7683  "infrun: %s has trap_expected set, "
7684  "resuming to collect trap\n",
7685  target_pid_to_str (tp->ptid));
7686 
7687  /* We haven't yet gotten our trap, and either: intercepted a
7688  non-signal event (e.g., a fork); or took a signal which we
7689  are supposed to pass through to the inferior. Simply
7690  continue. */
7692  }
7693  else if (step_over_info_valid_p ())
7694  {
7695  /* Another thread is stepping over a breakpoint in-line. If
7696  this thread needs a step-over too, queue the request. In
7697  either case, this resume must be deferred for later. */
7698  struct thread_info *tp = ecs->event_thread;
7699 
7700  if (ecs->hit_singlestep_breakpoint
7702  {
7703  if (debug_infrun)
7705  "infrun: step-over already in progress: "
7706  "step-over for %s deferred\n",
7707  target_pid_to_str (tp->ptid));
7709  }
7710  else
7711  {
7712  if (debug_infrun)
7714  "infrun: step-over in progress: "
7715  "resume of %s deferred\n",
7716  target_pid_to_str (tp->ptid));
7717  }
7718  }
7719  else
7720  {
7721  struct regcache *regcache = get_current_regcache ();
7722  int remove_bp;
7723  int remove_wps;
7724  step_over_what step_what;
7725 
7726  /* Either the trap was not expected, but we are continuing
7727  anyway (if we got a signal, the user asked it be passed to
7728  the child)
7729  -- or --
7730  We got our expected trap, but decided we should resume from
7731  it.
7732 
7733  We're going to run this baby now!
7734 
7735  Note that insert_breakpoints won't try to re-insert
7736  already inserted breakpoints. Therefore, we don't
7737  care if breakpoints were already inserted, or not. */
7738 
7739  /* If we need to step over a breakpoint, and we're not using
7740  displaced stepping to do so, insert all breakpoints
7741  (watchpoints, etc.) but the one we're stepping over, step one
7742  instruction, and then re-insert the breakpoint when that step
7743  is finished. */
7744 
7745  step_what = thread_still_needs_step_over (ecs->event_thread);
7746 
7747  remove_bp = (ecs->hit_singlestep_breakpoint
7748  || (step_what & STEP_OVER_BREAKPOINT));
7749  remove_wps = (step_what & STEP_OVER_WATCHPOINT);
7750 
7751  /* We can't use displaced stepping if we need to step past a
7752  watchpoint. The instruction copied to the scratch pad would
7753  still trigger the watchpoint. */
7754  if (remove_bp
7755  && (remove_wps || !use_displaced_stepping (ecs->event_thread)))
7756  {
7758  regcache_read_pc (regcache), remove_wps,
7759  ecs->event_thread->global_num);
7760  }
7761  else if (remove_wps)
7762  set_step_over_info (NULL, 0, remove_wps, -1);
7763 
7764  /* If we now need to do an in-line step-over, we need to stop
7765  all other threads. Note this must be done before
7766  insert_breakpoints below, because that removes the breakpoint
7767  we're about to step over, otherwise other threads could miss
7768  it. */
7770  stop_all_threads ();
7771 
7772  /* Stop stepping if inserting breakpoints fails. */
7773  TRY
7774  {
7775  insert_breakpoints ();
7776  }
7778  {
7780  stop_waiting (ecs);
7782  return;
7783  }
7784  END_CATCH
7785 
7786  ecs->event_thread->control.trap_expected = (remove_bp || remove_wps);
7787 
7789  }
7790 
7791  prepare_to_wait (ecs);
7792 }
7793 
7794 /* Called when we should continue running the inferior, because the
7795  current event doesn't cause a user visible stop. This does the
7796  resuming part; waiting for the next event is done elsewhere. */
7797 
7798 static void
7800 {
7802  && ecs->event_thread->suspend.stop_signal == GDB_SIGNAL_TRAP)
7804 
7806  ecs->event_thread->suspend.stop_signal = GDB_SIGNAL_0;
7807  keep_going_pass_signal (ecs);
7808 }
7809 
7810 /* This function normally comes after a resume, before
7811  handle_inferior_event exits. It takes care of any last bits of
7812  housekeeping, and sets the all-important wait_some_more flag. */
7813 
7814 static void
7816 {
7817  if (debug_infrun)
7818  fprintf_unfiltered (gdb_stdlog, "infrun: prepare_to_wait\n");
7819 
7820  ecs->wait_some_more = 1;
7821 
7822  if (!target_is_async_p ())
7824 }
7825 
7826 /* We are done with the step range of a step/next/si/ni command.
7827  Called once for each n of a "step n" operation. */
7828 
7829 static void
7831 {
7832  ecs->event_thread->control.stop_step = 1;
7833  stop_waiting (ecs);
7834 }
7835 
7836 /* Several print_*_reason functions to print why the inferior has stopped.
7837  We always print something when the inferior exits, or receives a signal.
7838  The rest of the cases are dealt with later on in normal_stop and
7839  print_it_typical. Ideally there should be a call to one of these
7840  print_*_reason functions functions from handle_inferior_event each time
7841  stop_waiting is called.
7842 
7843  Note that we don't call these directly, instead we delegate that to
7844  the interpreters, through observers. Interpreters then call these
7845  with whatever uiout is right. */
7846 
7847 void
7849 {
7850  /* For CLI-like interpreters, print nothing. */
7851 
7852  if (uiout->is_mi_like_p ())
7853  {
7854  uiout->field_string ("reason",
7856  }
7857 }
7858 
7859 void
7860 print_signal_exited_reason (struct ui_out *uiout, enum gdb_signal siggnal)
7861 {
7862  annotate_signalled ();
7863  if (uiout->is_mi_like_p ())
7864  uiout->field_string
7866  uiout->text ("\nProgram terminated with signal ");
7868  uiout->field_string ("signal-name",
7869  gdb_signal_to_name (siggnal));
7871  uiout->text (", ");
7873  uiout->field_string ("signal-meaning",
7874  gdb_signal_to_string (siggnal));
7876  uiout->text (".\n");
7877  uiout->text ("The program no longer exists.\n");
7878 }
7879 
7880 void
7881 print_exited_reason (struct ui_out *uiout, int exitstatus)
7882 {
7883  struct inferior *inf = current_inferior ();
7884  const char *pidstr = target_pid_to_str (pid_to_ptid (inf->pid));
7885 
7886  annotate_exited (exitstatus);
7887  if (exitstatus)
7888  {
7889  if (uiout->is_mi_like_p ())
7890  uiout->field_string ("reason", async_reason_lookup (EXEC_ASYNC_EXITED));
7891  uiout->text ("[Inferior ");
7892  uiout->text (plongest (inf->num));
7893  uiout->text (" (");
7894  uiout->text (pidstr);
7895  uiout->text (") exited with code ");
7896  uiout->field_fmt ("exit-code", "0%o", (unsigned int) exitstatus);
7897  uiout->text ("]\n");
7898  }
7899  else
7900  {
7901  if (uiout->is_mi_like_p ())
7902  uiout->field_string
7904  uiout->text ("[Inferior ");
7905  uiout->text (plongest (inf->num));
7906  uiout->text (" (");
7907  uiout->text (pidstr);
7908  uiout->text (") exited normally]\n");
7909  }
7910 }
7911 
7912 /* Some targets/architectures can do extra processing/display of
7913  segmentation faults. E.g., Intel MPX boundary faults.
7914  Call the architecture dependent function to handle the fault. */
7915 
7916 static void
7918 {
7919  struct regcache *regcache = get_current_regcache ();
7920  struct gdbarch *gdbarch = regcache->arch ();
7921 
7924 }
7925 
7926 void
7927 print_signal_received_reason (struct ui_out *uiout, enum gdb_signal siggnal)
7928 {
7929  struct thread_info *thr = inferior_thread ();
7930 
7931  annotate_signal ();
7932 
7933  if (uiout->is_mi_like_p ())
7934  ;
7935  else if (show_thread_that_caused_stop ())
7936  {
7937  const char *name;
7938 
7939  uiout->text ("\nThread ");
7940  uiout->field_fmt ("thread-id", "%s", print_thread_id (thr));
7941 
7942  name = thr->name != NULL ? thr->name : target_thread_name (thr);
7943  if (name != NULL)
7944  {
7945  uiout->text (" \"");
7946  uiout->field_fmt ("name", "%s", name);
7947  uiout->text ("\"");
7948  }
7949  }
7950  else
7951  uiout->text ("\nProgram");
7952 
7953  if (siggnal == GDB_SIGNAL_0 && !uiout->is_mi_like_p ())
7954  uiout->text (" stopped");
7955  else
7956  {
7957  uiout->text (" received signal ");
7959  if (uiout->is_mi_like_p ())
7960  uiout->field_string
7962  uiout->field_string ("signal-name", gdb_signal_to_name (siggnal));
7964  uiout->text (", ");
7966  uiout->field_string ("signal-meaning", gdb_signal_to_string (siggnal));
7967 
7968  if (siggnal == GDB_SIGNAL_SEGV)
7969  handle_segmentation_fault (uiout);
7970 
7972  }
7973  uiout->text (".\n");
7974 }
7975 
7976 void
7978 {
7979  uiout->text ("\nNo more reverse-execution history.\n");
7980 }
7981 
7982 /* Print current location without a level number, if we have changed
7983  functions or hit a breakpoint. Print source line if we have one.
7984  bpstat_print contains the logic deciding in detail what to print,
7985  based on the event(s) that just occurred. */
7986 
7987 static void
7989 {
7990  int bpstat_ret;
7991  enum print_what source_flag;
7992  int do_frame_printing = 1;
7993  struct thread_info *tp = inferior_thread ();
7994 
7995  bpstat_ret = bpstat_print (tp->control.stop_bpstat, ws->kind);
7996  switch (bpstat_ret)
7997  {
7998  case PRINT_UNKNOWN:
7999  /* FIXME: cagney/2002-12-01: Given that a frame ID does (or
8000  should) carry around the function and does (or should) use
8001  that when doing a frame comparison. */
8002  if (tp->control.stop_step
8006  {
8007  /* Finished step, just print source line. */
8008  source_flag = SRC_LINE;
8009  }
8010  else
8011  {
8012  /* Print location and source line. */
8013  source_flag = SRC_AND_LOC;
8014  }
8015  break;
8016  case PRINT_SRC_AND_LOC:
8017  /* Print location and source line. */
8018  source_flag = SRC_AND_LOC;
8019  break;
8020  case PRINT_SRC_ONLY:
8021  source_flag = SRC_LINE;
8022  break;
8023  case PRINT_NOTHING:
8024  /* Something bogus. */
8025  source_flag = SRC_LINE;
8026  do_frame_printing = 0;
8027  break;
8028  default:
8029  internal_error (__FILE__, __LINE__, _("Unknown value."));
8030  }
8031 
8032  /* The behavior of this routine with respect to the source
8033  flag is:
8034  SRC_LINE: Print only source line
8035  LOCATION: Print only location
8036  SRC_AND_LOC: Print location and source line. */
8037  if (do_frame_printing)
8038  print_stack_frame (get_selected_frame (NULL), 0, source_flag, 1);
8039 }
8040 
8041 /* See infrun.h. */
8042 
8043 void
8044 print_stop_event (struct ui_out *uiout)
8045 {
8046  struct target_waitstatus last;
8047  ptid_t last_ptid;
8048  struct thread_info *tp;
8049 
8050  get_last_target_status (&last_ptid, &last);
8051 
8052  {
8053  scoped_restore save_uiout = make_scoped_restore (&current_uiout, uiout);
8054 
8055  print_stop_location (&last);
8056 
8057  /* Display the auto-display expressions. */
8058  do_displays ();
8059  }
8060 
8061  tp = inferior_thread ();
8062  if (tp->thread_fsm != NULL
8064  {
8065  struct return_value_info *rv;
8066 
8068  if (rv != NULL)
8069  print_return_value (uiout, rv);
8070  }
8071 }
8072 
8073 /* See infrun.h. */
8074 
8075 void
8077 {
8079  {
8080  if (remove_breakpoints ())
8081  {
8083  printf_filtered (_("Cannot remove breakpoints because "
8084  "program is no longer writable.\nFurther "
8085  "execution is probably impossible.\n"));
8086  }
8087  }
8088 }
8089 
8090 /* The execution context that just caused a normal stop. */
8091 
8093 {
8094  /* The stop ID. */
8096 
8097  /* The event PTID. */
8098 
8100 
8101  /* If stopp for a thread event, this is the thread that caused the
8102  stop. */
8104 
8105  /* The inferior that caused the stop. */
8106  int inf_num;
8107 };
8108 
8109 /* Returns a new stop context. If stopped for a thread event, this
8110  takes a strong reference to the thread. */
8111 
8112 static struct stop_context *
8114 {
8115  struct stop_context *sc = XNEW (struct stop_context);
8116 
8117  sc->stop_id = get_stop_id ();
8118  sc->ptid = inferior_ptid;
8119  sc->inf_num = current_inferior ()->num;
8120 
8122  {
8123  /* Take a strong reference so that the thread can't be deleted
8124  yet. */
8125  sc->thread = inferior_thread ();
8126  sc->thread->incref ();
8127  }
8128  else
8129  sc->thread = NULL;
8130 
8131  return sc;
8132 }
8133 
8134 /* Release a stop context previously created with save_stop_context.
8135  Releases the strong reference to the thread as well. */
8136 
8137 static void
8139 {
8140  struct stop_context *sc = (struct stop_context *) arg;
8141 
8142  if (sc->thread != NULL)
8143  sc->thread->decref ();
8144  xfree (sc);
8145 }
8146 
8147 /* Return true if the current context no longer matches the saved stop
8148  context. */
8149 
8150 static int
8152 {
8153  if (!ptid_equal (prev->ptid, inferior_ptid))
8154  return 1;
8155  if (prev->inf_num != current_inferior ()->num)
8156  return 1;
8157  if (prev->thread != NULL && prev->thread->state != THREAD_STOPPED)
8158  return 1;
8159  if (get_stop_id () != prev->stop_id)
8160  return 1;
8161  return 0;
8162 }
8163 
8164 /* See infrun.h. */
8165 
8166 int
8168 {
8169  struct target_waitstatus last;
8170  ptid_t last_ptid;
8171  struct cleanup *old_chain = make_cleanup (null_cleanup, NULL);
8172  ptid_t pid_ptid;
8173 
8174  get_last_target_status (&last_ptid, &last);
8175 
8176  new_stop_id ();
8177 
8178  /* If an exception is thrown from this point on, make sure to
8179  propagate GDB's knowledge of the executing state to the
8180  frontend/user running state. A QUIT is an easy exception to see
8181  here, so do this before any filtered output. */
8182  if (!non_stop)
8184  else if (last.kind == TARGET_WAITKIND_SIGNALLED
8185  || last.kind == TARGET_WAITKIND_EXITED)
8186  {
8187  /* On some targets, we may still have live threads in the
8188  inferior when we get a process exit event. E.g., for
8189  "checkpoint", when the current checkpoint/fork exits,
8190  linux-fork.c automatically switches to another fork from
8191  within target_mourn_inferior. */
8193  {
8194  pid_ptid = pid_to_ptid (ptid_get_pid (inferior_ptid));
8196  }
8197  }
8198  else if (last.kind != TARGET_WAITKIND_NO_RESUMED)
8200 
8201  /* As we're presenting a stop, and potentially removing breakpoints,
8202  update the thread list so we can tell whether there are threads
8203  running on the target. With target remote, for example, we can
8204  only learn about new threads when we explicitly update the thread
8205  list. Do this before notifying the interpreters about signal
8206  stops, end of stepping ranges, etc., so that the "new thread"
8207  output is emitted before e.g., "Program received signal FOO",
8208  instead of after. */
8209  update_thread_list ();
8210 
8212  observer_notify_signal_received (inferior_thread ()->suspend.stop_signal);
8213 
8214  /* As with the notification of thread events, we want to delay
8215  notifying the user that we've switched thread context until
8216  the inferior actually stops.
8217 
8218  There's no point in saying anything if the inferior has exited.
8219  Note that SIGNALLED here means "exited with a signal", not
8220  "received a signal".
8221 
8222  Also skip saying anything in non-stop mode. In that mode, as we
8223  don't want GDB to switch threads behind the user's back, to avoid
8224  races where the user is typing a command to apply to thread x,
8225  but GDB switches to thread y before the user finishes entering
8226  the command, fetch_inferior_event installs a cleanup to restore
8227  the current thread back to the thread the user had selected right
8228  after this event is handled, so we're not really switching, only
8229  informing of a stop. */
8230  if (!non_stop
8233  && last.kind != TARGET_WAITKIND_SIGNALLED
8234  && last.kind != TARGET_WAITKIND_EXITED
8235  && last.kind != TARGET_WAITKIND_NO_RESUMED)
8236  {
8238  {
8240  printf_filtered (_("[Switching to %s]\n"),
8243  }
8245  }
8246 
8247  if (last.kind == TARGET_WAITKIND_NO_RESUMED)
8248  {
8251  {
8253  printf_filtered (_("No unwaited-for children left.\n"));
8254  }
8255  }
8256 
8257  /* Note: this depends on the update_thread_list call above. */
8259 
8260  /* If an auto-display called a function and that got a signal,
8261  delete that auto-display to avoid an infinite recursion. */
8262 
8265 
8267  {
8268  async_enable_stdin ();
8269  }
8270 
8271  /* Let the user/frontend see the threads as stopped. */
8272  do_cleanups (old_chain);
8273 
8274  /* Select innermost stack frame - i.e., current frame is frame 0,
8275  and current location is based on that. Handle the case where the
8276  dummy call is returning after being stopped. E.g. the dummy call
8277  previously hit a breakpoint. (If the dummy call returns
8278  normally, we won't reach here.) Do this before the stop hook is
8279  run, so that it doesn't get to see the temporary dummy frame,
8280  which is not where we'll present the stop. */
8281  if (has_stack_frames ())
8282  {
8284  {
8285  /* Pop the empty frame that contains the stack dummy. This
8286  also restores inferior state prior to the call (struct
8287  infcall_suspend_state). */
8288  struct frame_info *frame = get_current_frame ();
8289 
8290  gdb_assert (get_frame_type (frame) == DUMMY_FRAME);
8291  frame_pop (frame);
8292  /* frame_pop calls reinit_frame_cache as the last thing it
8293  does which means there's now no selected frame. */
8294  }
8295 
8297 
8298  /* Set the current source location. */
8300  }
8301 
8302  /* Look up the hook_stop and run it (CLI internally handles problem
8303  of stop_command's pre-hook not existing). */
8304  if (stop_command != NULL)
8305  {
8307  struct cleanup *old_chain
8309 
8310  TRY
8311  {
8313  }
8314  CATCH (ex, RETURN_MASK_ALL)
8315  {
8317  "Error while running hook_stop:\n");
8318  }
8319  END_CATCH
8320 
8321  /* If the stop hook resumes the target, then there's no point in
8322  trying to notify about the previous stop; its context is
8323  gone. Likewise if the command switches thread or inferior --
8324  the observers would print a stop for the wrong
8325  thread/inferior. */
8327  {
8328  do_cleanups (old_chain);
8329  return 1;
8330  }
8331  do_cleanups (old_chain);
8332  }
8333 
8334  /* Notify observers about the stop. This is where the interpreters
8335  print the stop event. */
8337  observer_notify_normal_stop (inferior_thread ()->control.stop_bpstat,
8339  else
8341 
8342  annotate_stopped ();
8343 
8345  {
8346  if (last.kind != TARGET_WAITKIND_SIGNALLED
8347  && last.kind != TARGET_WAITKIND_EXITED)
8348  /* Delete the breakpoint we stopped at, if it wants to be deleted.
8349  Delete any breakpoint that is to be deleted at the next stop. */
8350  breakpoint_auto_delete (inferior_thread ()->control.stop_bpstat);
8351  }
8352 
8353  /* Try to get rid of automatically added inferiors that are no
8354  longer needed. Keeping those around slows down things linearly.
8355  Note that this never removes the current inferior. */
8356  prune_inferiors ();
8357 
8358  return 0;
8359 }
8360 
8361 int
8363 {
8364  return signal_stop[signo];
8365 }
8366 
8367 int
8369 {
8370  return signal_print[signo];
8371 }
8372 
8373 int
8375 {
8376  return signal_program[signo];
8377 }
8378 
8379 static void
8381 {
8382  if (signo == -1)
8383  {
8384  for (signo = 0; signo < (int) GDB_SIGNAL_LAST; signo++)
8385  signal_cache_update (signo);
8386 
8387  return;
8388  }
8389 
8390  signal_pass[signo] = (signal_stop[signo] == 0
8391  && signal_print[signo] == 0
8392  && signal_program[signo] == 1
8393  && signal_catch[signo] == 0);
8394 }
8395 
8396 int
8397 signal_stop_update (int signo, int state)
8398 {
8399  int ret = signal_stop[signo];
8400 
8401  signal_stop[signo] = state;
8402  signal_cache_update (signo);
8403  return ret;
8404 }
8405 
8406 int
8407 signal_print_update (int signo, int state)
8408 {
8409  int ret = signal_print[signo];
8410 
8411  signal_print[signo] = state;
8412  signal_cache_update (signo);
8413  return ret;
8414 }
8415 
8416 int
8417 signal_pass_update (int signo, int state)
8418 {
8419  int ret = signal_program[signo];
8420 
8421  signal_program[signo] = state;
8422  signal_cache_update (signo);
8423  return ret;
8424 }
8425 
8426 /* Update the global 'signal_catch' from INFO and notify the
8427  target. */
8428 
8429 void
8430 signal_catch_update (const unsigned int *info)
8431 {
8432  int i;
8433 
8434  for (i = 0; i < GDB_SIGNAL_LAST; ++i)
8435  signal_catch[i] = info[i] > 0;
8436  signal_cache_update (-1);
8437  target_pass_signals ((int) GDB_SIGNAL_LAST, signal_pass);
8438 }
8439 
8440 static void
8442 {
8443  printf_filtered (_("Signal Stop\tPrint\tPass "
8444  "to program\tDescription\n"));
8445 }
8446 
8447 static void
8448 sig_print_info (enum gdb_signal oursig)
8449 {
8450  const char *name = gdb_signal_to_name (oursig);
8451  int name_padding = 13 - strlen (name);
8452 
8453  if (name_padding <= 0)
8454  name_padding = 0;
8455 
8456  printf_filtered ("%s", name);
8457  printf_filtered ("%*.*s ", name_padding, name_padding, " ");
8458  printf_filtered ("%s\t", signal_stop[oursig] ? "Yes" : "No");
8459  printf_filtered ("%s\t", signal_print[oursig] ? "Yes" : "No");
8460  printf_filtered ("%s\t\t", signal_program[oursig] ? "Yes" : "No");
8461  printf_filtered ("%s\n", gdb_signal_to_string (oursig));
8462 }
8463 
8464 /* Specify how various signals in the inferior should be handled. */
8465 
8466 static void
8467 handle_command (const char *args, int from_tty)
8468 {
8469  int digits, wordlen;
8470  int sigfirst, signum, siglast;
8471  enum gdb_signal oursig;
8472  int allsigs;
8473  int nsigs;
8474  unsigned char *sigs;
8475 
8476  if (args == NULL)
8477  {
8478  error_no_arg (_("signal to handle"));
8479  }
8480 
8481  /* Allocate and zero an array of flags for which signals to handle. */
8482 
8483  nsigs = (int) GDB_SIGNAL_LAST;
8484  sigs = (unsigned char *) alloca (nsigs);
8485  memset (sigs, 0, nsigs);
8486 
8487  /* Break the command line up into args. */
8488 
8489  gdb_argv built_argv (args);
8490 
8491  /* Walk through the args, looking for signal oursigs, signal names, and
8492  actions. Signal numbers and signal names may be interspersed with
8493  actions, with the actions being performed for all signals cumulatively
8494  specified. Signal ranges can be specified as <LOW>-<HIGH>. */
8495 
8496  for (char *arg : built_argv)
8497  {
8498  wordlen = strlen (arg);
8499  for (digits = 0; isdigit (arg[digits]); digits++)
8500  {;
8501  }
8502  allsigs = 0;
8503  sigfirst = siglast = -1;
8504 
8505  if (wordlen >= 1 && !strncmp (arg, "all", wordlen))
8506  {
8507  /* Apply action to all signals except those used by the
8508  debugger. Silently skip those. */
8509  allsigs = 1;
8510  sigfirst = 0;
8511  siglast = nsigs - 1;
8512  }
8513  else if (wordlen >= 1 && !strncmp (arg, "stop", wordlen))
8514  {
8515  SET_SIGS (nsigs, sigs, signal_stop);
8516  SET_SIGS (nsigs, sigs, signal_print);
8517  }
8518  else if (wordlen >= 1 && !strncmp (arg, "ignore", wordlen))
8519  {
8520  UNSET_SIGS (nsigs, sigs, signal_program);
8521  }
8522  else if (wordlen >= 2 && !strncmp (arg, "print", wordlen))
8523  {
8524  SET_SIGS (nsigs, sigs, signal_print);
8525  }
8526  else if (wordlen >= 2 && !strncmp (arg, "pass", wordlen))
8527  {
8528  SET_SIGS (nsigs, sigs, signal_program);
8529  }
8530  else if (wordlen >= 3 && !strncmp (arg, "nostop", wordlen))
8531  {
8532  UNSET_SIGS (nsigs, sigs, signal_stop);
8533  }
8534  else if (wordlen >= 3 && !strncmp (arg, "noignore", wordlen))
8535  {
8536  SET_SIGS (nsigs, sigs, signal_program);
8537  }
8538  else if (wordlen >= 4 && !strncmp (arg, "noprint", wordlen))
8539  {
8540  UNSET_SIGS (nsigs, sigs, signal_print);
8541  UNSET_SIGS (nsigs, sigs, signal_stop);
8542  }
8543  else if (wordlen >= 4 && !strncmp (arg, "nopass", wordlen))
8544  {
8545  UNSET_SIGS (nsigs, sigs, signal_program);
8546  }
8547  else if (digits > 0)
8548  {
8549  /* It is numeric. The numeric signal refers to our own
8550  internal signal numbering from target.h, not to host/target
8551  signal number. This is a feature; users really should be
8552  using symbolic names anyway, and the common ones like
8553  SIGHUP, SIGINT, SIGALRM, etc. will work right anyway. */
8554 
8555  sigfirst = siglast = (int)
8556  gdb_signal_from_command (atoi (arg));
8557  if (arg[digits] == '-')
8558  {
8559  siglast = (int)
8560  gdb_signal_from_command (atoi (arg + digits + 1));
8561  }
8562  if (sigfirst > siglast)
8563  {
8564  /* Bet he didn't figure we'd think of this case... */
8565  signum = sigfirst;
8566  sigfirst = siglast;
8567  siglast = signum;
8568  }
8569  }
8570  else
8571  {
8572  oursig = gdb_signal_from_name (arg);
8573  if (oursig != GDB_SIGNAL_UNKNOWN)
8574  {
8575  sigfirst = siglast = (int) oursig;
8576  }
8577  else
8578  {
8579  /* Not a number and not a recognized flag word => complain. */
8580  error (_("Unrecognized or ambiguous flag word: \"%s\"."), arg);
8581  }
8582  }
8583 
8584  /* If any signal numbers or symbol names were found, set flags for
8585  which signals to apply actions to. */
8586 
8587  for (signum = sigfirst; signum >= 0 && signum <= siglast; signum++)
8588  {
8589  switch ((enum gdb_signal) signum)
8590  {
8591  case GDB_SIGNAL_TRAP:
8592  case GDB_SIGNAL_INT:
8593  if (!allsigs && !sigs[signum])
8594  {
8595  if (query (_("%s is used by the debugger.\n\
8596 Are you sure you want to change it? "),
8597  gdb_signal_to_name ((enum gdb_signal) signum)))
8598  {
8599  sigs[signum] = 1;
8600  }
8601  else
8602  {
8603  printf_unfiltered (_("Not confirmed, unchanged.\n"));
8605  }
8606  }
8607  break;
8608  case GDB_SIGNAL_0:
8609  case GDB_SIGNAL_DEFAULT:
8610  case GDB_SIGNAL_UNKNOWN:
8611  /* Make sure that "all" doesn't print these. */
8612  break;
8613  default:
8614  sigs[signum] = 1;
8615  break;
8616  }
8617  }
8618  }
8619 
8620  for (signum = 0; signum < nsigs; signum++)
8621  if (sigs[signum])
8622  {
8623  signal_cache_update (-1);
8624  target_pass_signals ((int) GDB_SIGNAL_LAST, signal_pass);
8625  target_program_signals ((int) GDB_SIGNAL_LAST, signal_program);
8626 
8627  if (from_tty)
8628  {
8629  /* Show the results. */
8630  sig_print_header ();
8631  for (; signum < nsigs; signum++)
8632  if (sigs[signum])
8633  sig_print_info ((enum gdb_signal) signum);
8634  }
8635 
8636  break;
8637  }
8638 }
8639 
8640 /* Complete the "handle" command. */
8641 
8642 static void
8644  completion_tracker &tracker,
8645  const char *text, const char *word)
8646 {
8647  static const char * const keywords[] =
8648  {
8649  "all",
8650  "stop",
8651  "ignore",
8652  "print",
8653  "pass",
8654  "nostop",
8655  "noignore",
8656  "noprint",
8657  "nopass",
8658  NULL,
8659  };
8660 
8661  signal_completer (ignore, tracker, text, word);
8662  complete_on_enum (tracker, keywords, word, word);
8663 }
8664 
8665 enum gdb_signal
8667 {
8668  if (num >= 1 && num <= 15)
8669  return (enum gdb_signal) num;
8670  error (_("Only signals 1-15 are valid as numeric signals.\n\
8671 Use \"info signals\" for a list of symbolic signals."));
8672 }
8673 
8674 /* Print current contents of the tables set by the handle command.
8675  It is possible we should just be printing signals actually used
8676  by the current target (but for things to work right when switching
8677  targets, all signals should be in the signal tables). */
8678 
8679 static void
8680 info_signals_command (const char *signum_exp, int from_tty)
8681 {
8682  enum gdb_signal oursig;
8683 
8684  sig_print_header ();
8685 
8686  if (signum_exp)
8687  {
8688  /* First see if this is a symbol name. */
8689  oursig = gdb_signal_from_name (signum_exp);
8690  if (oursig == GDB_SIGNAL_UNKNOWN)
8691  {
8692  /* No, try numeric. */
8693  oursig =
8695  }
8696  sig_print_info (oursig);
8697  return;
8698  }
8699 
8700  printf_filtered ("\n");
8701  /* These ugly casts brought to you by the native VAX compiler. */
8702  for (oursig = GDB_SIGNAL_FIRST;
8703  (int) oursig < (int) GDB_SIGNAL_LAST;
8704  oursig = (enum gdb_signal) ((int) oursig + 1))
8705  {
8706  QUIT;
8707 
8708  if (oursig != GDB_SIGNAL_UNKNOWN
8709  && oursig != GDB_SIGNAL_DEFAULT && oursig != GDB_SIGNAL_0)
8710  sig_print_info (oursig);
8711  }
8712 
8713  printf_filtered (_("\nUse the \"handle\" command "
8714  "to change these tables.\n"));
8715 }
8716 
8717 /* The $_siginfo convenience variable is a bit special. We don't know
8718  for sure the type of the value until we actually have a chance to
8719  fetch the data. The type can change depending on gdbarch, so it is
8720  also dependent on which thread you have selected.
8721 
8722  1. making $_siginfo be an internalvar that creates a new value on
8723  access.
8724 
8725  2. making the value of $_siginfo be an lval_computed value. */
8726 
8727 /* This function implements the lval_computed support for reading a
8728  $_siginfo value. */
8729 
8730 static void
8732 {
8733  LONGEST transferred;
8734 
8735  /* If we can access registers, so can we access $_siginfo. Likewise
8736  vice versa. */
8738 
8739  transferred =
8741  NULL,
8743  value_offset (v),
8744  TYPE_LENGTH (value_type (v)));
8745 
8746  if (transferred != TYPE_LENGTH (value_type (v)))
8747  error (_("Unable to read siginfo"));
8748 }
8749 
8750 /* This function implements the lval_computed support for writing a
8751  $_siginfo value. */
8752 
8753 static void
8754 siginfo_value_write (struct value *v, struct value *fromval)
8755 {
8756  LONGEST transferred;
8757 
8758  /* If we can access registers, so can we access $_siginfo. Likewise
8759  vice versa. */
8761 
8762  transferred = target_write (&current_target,
8764  NULL,
8765  value_contents_all_raw (fromval),
8766  value_offset (v),
8767  TYPE_LENGTH (value_type (fromval)));
8768 
8769  if (transferred != TYPE_LENGTH (value_type (fromval)))
8770  error (_("Unable to write siginfo"));
8771 }
8772 
8773 static const struct lval_funcs siginfo_value_funcs =
8774  {
8777  };
8778 
8779 /* Return a new value with the correct type for the siginfo object of
8780  the current thread using architecture GDBARCH. Return a void value
8781  if there's no object available. */
8782 
8783 static struct value *
8785  void *ignore)
8786 {
8787  if (target_has_stack
8790  {
8792 
8794  }
8795 
8796  return allocate_value (builtin_type (gdbarch)->builtin_void);
8797 }
8798 
8799 
8800 /* infcall_suspend_state contains state about the program itself like its
8801  registers and any signal it received when it last stopped.
8802  This state must be restored regardless of how the inferior function call
8803  ends (either successfully, or after it hits a breakpoint or signal)
8804  if the program is to properly continue where it left off. */
8805 
8807 {
8809 
8810  /* Other fields: */
8813 
8814  /* Format of SIGINFO_DATA or NULL if it is not present. */
8816 
8817  /* The inferior format depends on SIGINFO_GDBARCH and it has a length of
8818  TYPE_LENGTH (gdbarch_get_siginfo_type ()). For different gdbarch the
8819  content would be invalid. */
8821 };
8822 
8823 struct infcall_suspend_state *
8825 {
8826  struct infcall_suspend_state *inf_state;
8827  struct thread_info *tp = inferior_thread ();
8828  struct regcache *regcache = get_current_regcache ();
8829  struct gdbarch *gdbarch = regcache->arch ();
8830  gdb_byte *siginfo_data = NULL;
8831 
8833  {
8835  size_t len = TYPE_LENGTH (type);
8836  struct cleanup *back_to;
8837 
8838  siginfo_data = (gdb_byte *) xmalloc (len);
8839  back_to = make_cleanup (xfree, siginfo_data);
8840 
8842  siginfo_data, 0, len) == len)
8843  discard_cleanups (back_to);
8844  else
8845  {
8846  /* Errors ignored. */
8847  do_cleanups (back_to);
8848  siginfo_data = NULL;
8849  }
8850  }
8851 
8852  inf_state = XCNEW (struct infcall_suspend_state);
8853 
8854  if (siginfo_data)
8855  {
8856  inf_state->siginfo_gdbarch = gdbarch;
8857  inf_state->siginfo_data = siginfo_data;
8858  }
8859 
8860  inf_state->thread_suspend = tp->suspend;
8861 
8862  /* run_inferior_call will not use the signal due to its `proceed' call with
8863  GDB_SIGNAL_0 anyway. */
8864  tp->suspend.stop_signal = GDB_SIGNAL_0;
8865 
8866  inf_state->stop_pc = stop_pc;
8867 
8868  inf_state->registers = regcache_dup (regcache);
8869 
8870  return inf_state;
8871 }
8872 
8873 /* Restore inferior session state to INF_STATE. */
8874 
8875 void
8877 {
8878  struct thread_info *tp = inferior_thread ();
8879  struct regcache *regcache = get_current_regcache ();
8880  struct gdbarch *gdbarch = regcache->arch ();
8881 
8882  tp->suspend = inf_state->thread_suspend;
8883 
8884  stop_pc = inf_state->stop_pc;
8885 
8886  if (inf_state->siginfo_gdbarch == gdbarch)
8887  {
8889 
8890  /* Errors ignored. */
8892  inf_state->siginfo_data, 0, TYPE_LENGTH (type));
8893  }
8894 
8895  /* The inferior can be gone if the user types "print exit(0)"
8896  (and perhaps other times). */
8898  /* NB: The register write goes through to the target. */
8899  regcache_cpy (regcache, inf_state->registers);
8900 
8901  discard_infcall_suspend_state (inf_state);
8902 }
8903 
8904 static void
8906 {
8908 }
8909 
8910 struct cleanup *
8912  (struct infcall_suspend_state *inf_state)
8913 {
8915 }
8916 
8917 void
8919 {
8920  delete inf_state->registers;
8921  xfree (inf_state->siginfo_data);
8922  xfree (inf_state);
8923 }
8924 
8925 struct regcache *
8927 {
8928  return inf_state->registers;
8929 }
8930 
8931 /* infcall_control_state contains state regarding gdb's control of the
8932  inferior itself like stepping control. It also contains session state like
8933  the user's currently selected frame. */
8934 
8936 {
8939 
8940  /* Other fields: */
8943 
8944  /* ID if the selected frame when the inferior function call was made. */
8946 };
8947 
8948 /* Save all of the information associated with the inferior<==>gdb
8949  connection. */
8950 
8951 struct infcall_control_state *
8953 {
8954  struct infcall_control_state *inf_status =
8955  XNEW (struct infcall_control_state);
8956  struct thread_info *tp = inferior_thread ();
8957  struct inferior *inf = current_inferior ();
8958 
8959  inf_status->thread_control = tp->control;
8960  inf_status->inferior_control = inf->control;
8961 
8962  tp->control.step_resume_breakpoint = NULL;
8964 
8965  /* Save original bpstat chain to INF_STATUS; replace it in TP with copy of
8966  chain. If caller's caller is walking the chain, they'll be happier if we
8967  hand them back the original chain when restore_infcall_control_state is
8968  called. */
8970 
8971  /* Other fields: */
8972  inf_status->stop_stack_dummy = stop_stack_dummy;
8974 
8975  inf_status->selected_frame_id = get_frame_id (get_selected_frame (NULL));
8976 
8977  return inf_status;
8978 }
8979 
8980 static void
8982 {
8983  frame_info *frame = frame_find_by_id (fid);
8984 
8985  /* If inf_status->selected_frame_id is NULL, there was no previously
8986  selected frame. */
8987  if (frame == NULL)
8988  {
8989  warning (_("Unable to restore previously selected frame."));
8990  return;
8991  }
8992 
8993  select_frame (frame);
8994 }
8995 
8996 /* Restore inferior session state to INF_STATUS. */
8997 
8998 void
9000 {
9001  struct thread_info *tp = inferior_thread ();
9002  struct inferior *inf = current_inferior ();
9003 
9006 
9010 
9011  /* Handle the bpstat_copy of the chain. */
9013 
9014  tp->control = inf_status->thread_control;
9015  inf->control = inf_status->inferior_control;
9016 
9017  /* Other fields: */
9018  stop_stack_dummy = inf_status->stop_stack_dummy;
9020 
9021  if (target_has_stack)
9022  {
9023  /* The point of the try/catch is that if the stack is clobbered,
9024  walking the stack might encounter a garbage pointer and
9025  error() trying to dereference it. */
9026  TRY
9027  {
9029  }
9030  CATCH (ex, RETURN_MASK_ERROR)
9031  {
9033  "Unable to restore previously selected frame:\n");
9034  /* Error in restoring the selected frame. Select the
9035  innermost frame. */
9037  }
9038  END_CATCH
9039  }
9040 
9041  xfree (inf_status);
9042 }
9043 
9044 static void
9046 {
9048 }
9049 
9050 struct cleanup *
9052  (struct infcall_control_state *inf_status)
9053 {
9055 }
9056 
9057 void
9059 {
9060  if (inf_status->thread_control.step_resume_breakpoint)
9063 
9067 
9068  /* See save_infcall_control_state for info on stop_bpstat. */
9069  bpstat_clear (&inf_status->thread_control.stop_bpstat);
9070 
9071  xfree (inf_status);
9072 }
9073 
9074 /* See infrun.h. */
9075 
9076 void
9078 {
9079  clear_internalvar (lookup_internalvar ("_exitsignal"));
9080  clear_internalvar (lookup_internalvar ("_exitcode"));
9081 }
9082 
9083 
9084 /* User interface for reverse debugging:
9085  Set exec-direction / show exec-direction commands
9086  (returns error unless target implements to_set_exec_direction method). */
9087 
9089 static const char exec_forward[] = "forward";
9090 static const char exec_reverse[] = "reverse";
9091 static const char *exec_direction = exec_forward;
9092 static const char *const exec_direction_names[] = {
9093  exec_forward,
9094  exec_reverse,
9095  NULL
9096 };
9097 
9098 static void
9099 set_exec_direction_func (const char *args, int from_tty,
9100  struct cmd_list_element *cmd)
9101 {
9103  {
9104  if (!strcmp (exec_direction, exec_forward))
9106  else if (!strcmp (exec_direction, exec_reverse))
9108  }
9109  else
9110  {
9112  error (_("Target does not support this operation."));
9113  }
9114 }
9115 
9116 static void
9117 show_exec_direction_func (struct ui_file *out, int from_tty,
9118  struct cmd_list_element *cmd, const char *value)
9119 {
9120  switch (execution_direction) {
9121  case EXEC_FORWARD:
9122  fprintf_filtered (out, _("Forward.\n"));
9123  break;
9124  case EXEC_REVERSE:
9125  fprintf_filtered (out, _("Reverse.\n"));
9126  break;
9127  default:
9128  internal_error (__FILE__, __LINE__,
9129  _("bogus execution_direction value: %d"),
9130  (int) execution_direction);
9131  }
9132 }
9133 
9134 static void
9135 show_schedule_multiple (struct ui_file *file, int from_tty,
9136  struct cmd_list_element *c, const char *value)
9137 {
9138  fprintf_filtered (file, _("Resuming the execution of threads "
9139  "of all processes is %s.\n"), value);
9140 }
9141 
9142 /* Implementation of `siginfo' variable. */
9143 
9144 static const struct internalvar_funcs siginfo_funcs =
9145 {
9147  NULL,
9148  NULL
9149 };
9150 
9151 /* Callback for infrun's target events source. This is marked when a
9152  thread has a pending status to process. */
9153 
9154 static void
9156 {
9158 }
9159 
9160 void
9162 {
9163  int i;
9164  int numsigs;
9165  struct cmd_list_element *c;
9166 
9167  /* Register extra event sources in the event loop. */
9170 
9171  add_info ("signals", info_signals_command, _("\
9172 What debugger does when program gets various signals.\n\
9173 Specify a signal as argument to print info on that signal only."));
9174  add_info_alias ("handle", "signals", 0);
9175 
9176  c = add_com ("handle", class_run, handle_command, _("\
9177 Specify how to handle signals.\n\
9178 Usage: handle SIGNAL [ACTIONS]\n\
9179 Args are signals and actions to apply to those signals.\n\
9180 If no actions are specified, the current settings for the specified signals\n\
9181 will be displayed instead.\n\
9182 \n\
9183 Symbolic signals (e.g. SIGSEGV) are recommended but numeric signals\n\
9184 from 1-15 are allowed for compatibility with old versions of GDB.\n\
9185 Numeric ranges may be specified with the form LOW-HIGH (e.g. 1-5).\n\
9186 The special arg \"all\" is recognized to mean all signals except those\n\
9187 used by the debugger, typically SIGTRAP and SIGINT.\n\
9188 \n\
9189 Recognized actions include \"stop\", \"nostop\", \"print\", \"noprint\",\n\
9190 \"pass\", \"nopass\", \"ignore\", or \"noignore\".\n\
9191 Stop means reenter debugger if this signal happens (implies print).\n\
9192 Print means print a message if this signal happens.\n\
9193 Pass means let program see this signal; otherwise program doesn't know.\n\
9194 Ignore is a synonym for nopass and noignore is a synonym for pass.\n\
9195 Pass and Stop may be combined.\n\
9196 \n\
9197 Multiple signals may be specified. Signal numbers and signal names\n\
9198 may be interspersed with actions, with the actions being performed for\n\
9199 all signals cumulatively specified."));
9201 
9202  if (!dbx_commands)
9203  stop_command = add_cmd ("stop", class_obscure,
9205 There is no `stop' command, but you can set a hook on `stop'.\n\
9206 This allows you to set a list of commands to be run each time execution\n\
9207 of the program stops."), &cmdlist);
9208 
9210 Set inferior debugging."), _("\
9211 Show inferior debugging."), _("\
9212 When non-zero, inferior specific debugging is enabled."),
9213  NULL,
9216 
9218  &debug_displaced, _("\
9219 Set displaced stepping debugging."), _("\
9220 Show displaced stepping debugging."), _("\
9221 When non-zero, displaced stepping specific debugging is enabled."),
9222  NULL,
9225 
9226  add_setshow_boolean_cmd ("non-stop", no_class,
9227  &non_stop_1, _("\
9228 Set whether gdb controls the inferior in non-stop mode."), _("\
9229 Show whether gdb controls the inferior in non-stop mode."), _("\
9230 When debugging a multi-threaded program and this setting is\n\
9231 off (the default, also called all-stop mode), when one thread stops\n\
9232 (for a breakpoint, watchpoint, exception, or similar events), GDB stops\n\
9233 all other threads in the program while you interact with the thread of\n\
9234 interest. When you continue or step a thread, you can allow the other\n\
9235 threads to run, or have them remain stopped, but while you inspect any\n\
9236 thread's state, all threads stop.\n\
9237 \n\
9238 In non-stop mode, when one thread stops, other threads can continue\n\
9239 to run freely. You'll be able to step each thread independently,\n\
9240 leave it stopped or free to run as needed."),
9241  set_non_stop,
9242  show_non_stop,
9243  &setlist,
9244  &showlist);
9245 
9246  numsigs = (int) GDB_SIGNAL_LAST;
9247  signal_stop = XNEWVEC (unsigned char, numsigs);
9248  signal_print = XNEWVEC (unsigned char, numsigs);
9249  signal_program = XNEWVEC (unsigned char, numsigs);
9250  signal_catch = XNEWVEC (unsigned char, numsigs);
9251  signal_pass = XNEWVEC (unsigned char, numsigs);
9252  for (i = 0; i < numsigs; i++)
9253  {
9254  signal_stop[i] = 1;
9255  signal_print[i] = 1;
9256  signal_program[i] = 1;
9257  signal_catch[i] = 0;
9258  }
9259 
9260  /* Signals caused by debugger's own actions should not be given to
9261  the program afterwards.
9262 
9263  Do not deliver GDB_SIGNAL_TRAP by default, except when the user
9264  explicitly specifies that it should be delivered to the target
9265  program. Typically, that would occur when a user is debugging a
9266  target monitor on a simulator: the target monitor sets a
9267  breakpoint; the simulator encounters this breakpoint and halts
9268  the simulation handing control to GDB; GDB, noting that the stop
9269  address doesn't map to any known breakpoint, returns control back
9270  to the simulator; the simulator then delivers the hardware
9271  equivalent of a GDB_SIGNAL_TRAP to the program being
9272  debugged. */
9273  signal_program[GDB_SIGNAL_TRAP] = 0;
9274  signal_program[GDB_SIGNAL_INT] = 0;
9275 
9276  /* Signals that are not errors should not normally enter the debugger. */
9277  signal_stop[GDB_SIGNAL_ALRM] = 0;
9278  signal_print[GDB_SIGNAL_ALRM] = 0;
9279  signal_stop[GDB_SIGNAL_VTALRM] = 0;
9280  signal_print[GDB_SIGNAL_VTALRM] = 0;
9281  signal_stop[GDB_SIGNAL_PROF] = 0;
9282  signal_print[GDB_SIGNAL_PROF] = 0;
9283  signal_stop[GDB_SIGNAL_CHLD] = 0;
9284  signal_print[GDB_SIGNAL_CHLD] = 0;
9285  signal_stop[GDB_SIGNAL_IO] = 0;
9286  signal_print[GDB_SIGNAL_IO] = 0;
9287  signal_stop[GDB_SIGNAL_POLL] = 0;
9288  signal_print[GDB_SIGNAL_POLL] = 0;
9289  signal_stop[GDB_SIGNAL_URG] = 0;
9290  signal_print[GDB_SIGNAL_URG] = 0;
9291  signal_stop[GDB_SIGNAL_WINCH] = 0;
9292  signal_print[GDB_SIGNAL_WINCH] = 0;
9293  signal_stop[GDB_SIGNAL_PRIO] = 0;
9294  signal_print[GDB_SIGNAL_PRIO] = 0;
9295 
9296  /* These signals are used internally by user-level thread
9297  implementations. (See signal(5) on Solaris.) Like the above
9298  signals, a healthy program receives and handles them as part of
9299  its normal operation. */
9300  signal_stop[GDB_SIGNAL_LWP] = 0;
9301  signal_print[GDB_SIGNAL_LWP] = 0;
9302  signal_stop[GDB_SIGNAL_WAITING] = 0;
9303  signal_print[GDB_SIGNAL_WAITING] = 0;
9304  signal_stop[GDB_SIGNAL_CANCEL] = 0;
9305  signal_print[GDB_SIGNAL_CANCEL] = 0;
9306  signal_stop[GDB_SIGNAL_LIBRT] = 0;
9307  signal_print[GDB_SIGNAL_LIBRT] = 0;
9308 
9309  /* Update cached state. */
9310  signal_cache_update (-1);
9311 
9312  add_setshow_zinteger_cmd ("stop-on-solib-events", class_support,
9313  &stop_on_solib_events, _("\
9314 Set stopping for shared library events."), _("\
9315 Show stopping for shared library events."), _("\
9316 If nonzero, gdb will give control to the user when the dynamic linker\n\
9317 notifies gdb of shared library events. The most common event of interest\n\
9318 to the user would be loading/unloading of a new library."),
9321  &setlist, &showlist);
9322 
9323  add_setshow_enum_cmd ("follow-fork-mode", class_run,
9326 Set debugger response to a program call of fork or vfork."), _("\
9327 Show debugger response to a program call of fork or vfork."), _("\
9328 A fork or vfork creates a new process. follow-fork-mode can be:\n\
9329  parent - the original process is debugged after a fork\n\
9330  child - the new process is debugged after a fork\n\
9331 The unfollowed process will continue to run.\n\
9332 By default, the debugger will follow the parent process."),
9333  NULL,
9335  &setlist, &showlist);
9336 
9337  add_setshow_enum_cmd ("follow-exec-mode", class_run,
9340 Set debugger response to a program call of exec."), _("\
9341 Show debugger response to a program call of exec."), _("\
9342 An exec call replaces the program image of a process.\n\
9343 \n\
9344 follow-exec-mode can be:\n\
9345 \n\
9346  new - the debugger creates a new inferior and rebinds the process\n\
9347 to this new inferior. The program the process was running before\n\
9348 the exec call can be restarted afterwards by restarting the original\n\
9349 inferior.\n\
9350 \n\
9351  same - the debugger keeps the process bound to the same inferior.\n\
9352 The new executable image replaces the previous executable loaded in\n\
9353 the inferior. Restarting the inferior after the exec call restarts\n\
9354 the executable the process was running after the exec call.\n\
9355 \n\
9356 By default, the debugger will use the same inferior."),
9357  NULL,
9359  &setlist, &showlist);
9360 
9361  add_setshow_enum_cmd ("scheduler-locking", class_run,
9363 Set mode for locking scheduler during execution."), _("\
9364 Show mode for locking scheduler during execution."), _("\
9365 off == no locking (threads may preempt at any time)\n\
9366 on == full locking (no thread except the current thread may run)\n\
9367  This applies to both normal execution and replay mode.\n\
9368 step == scheduler locked during stepping commands (step, next, stepi, nexti).\n\
9369  In this mode, other threads may run during other commands.\n\
9370  This applies to both normal execution and replay mode.\n\
9371 replay == scheduler locked in replay mode and unlocked during normal execution."),
9372  set_schedlock_func, /* traps on target vector */
9374  &setlist, &showlist);
9375 
9376  add_setshow_boolean_cmd ("schedule-multiple", class_run, &sched_multi, _("\
9377 Set mode for resuming threads of all processes."), _("\
9378 Show mode for resuming threads of all processes."), _("\
9379 When on, execution commands (such as 'continue' or 'next') resume all\n\
9380 threads of all processes. When off (which is the default), execution\n\
9381 commands only resume the threads of the current process. The set of\n\
9382 threads that are resumed is further refined by the scheduler-locking\n\
9383 mode (see help set scheduler-locking)."),
9384  NULL,
9386  &setlist, &showlist);
9387 
9389 Set mode of the step operation."), _("\
9390 Show mode of the step operation."), _("\
9391 When set, doing a step over a function without debug line information\n\
9392 will stop at the first instruction of that function. Otherwise, the\n\
9393 function is skipped and the step command stops at a different source line."),
9394  NULL,
9396  &setlist, &showlist);
9397 
9398  add_setshow_auto_boolean_cmd ("displaced-stepping", class_run,
9400 Set debugger's willingness to use displaced stepping."), _("\
9401 Show debugger's willingness to use displaced stepping."), _("\
9402 If on, gdb will use displaced stepping to step over breakpoints if it is\n\
9403 supported by the target architecture. If off, gdb will not use displaced\n\
9404 stepping to step over breakpoints, even if such is supported by the target\n\
9405 architecture. If auto (which is the default), gdb will use displaced stepping\n\
9406 if the target architecture supports it and non-stop mode is active, but will not\n\
9407 use it in all-stop mode (see help set non-stop)."),
9408  NULL,
9410  &setlist, &showlist);
9411 
9413  &exec_direction, _("Set direction of execution.\n\
9414 Options are 'forward' or 'reverse'."),
9415  _("Show direction of execution (forward/reverse)."),
9416  _("Tells gdb whether to execute forward or backward."),
9418  &setlist, &showlist);
9419 
9420  /* Set/show detach-on-fork: user-settable mode. */
9421 
9422  add_setshow_boolean_cmd ("detach-on-fork", class_run, &detach_fork, _("\
9423 Set whether gdb will detach the child of a fork."), _("\
9424 Show whether gdb will detach the child of a fork."), _("\
9425 Tells gdb whether to detach the child of a fork."),
9426  NULL, NULL, &setlist, &showlist);
9427 
9428  /* Set/show disable address space randomization mode. */
9429 
9430  add_setshow_boolean_cmd ("disable-randomization", class_support,
9432 Set disabling of debuggee's virtual address space randomization."), _("\
9433 Show disabling of debuggee's virtual address space randomization."), _("\
9434 When this mode is on (which is the default), randomization of the virtual\n\
9435 address space is disabled. Standalone programs run with the randomization\n\
9436 enabled by default on some platforms."),
9439  &setlist, &showlist);
9440 
9441  /* ptid initializations */
9444 
9449 
9450  /* Explicitly create without lookup, since that tries to create a
9451  value with a void typed value, and when we get here, gdbarch
9452  isn't initialized yet. At this point, we're quite sure there
9453  isn't another convenience variable of the same name. */
9454  create_internalvar_type_lazy ("_siginfo", &siginfo_funcs, NULL);
9455 
9456  add_setshow_boolean_cmd ("observer", no_class,
9457  &observer_mode_1, _("\
9458 Set whether gdb controls the inferior in observer mode."), _("\
9459 Show whether gdb controls the inferior in observer mode."), _("\
9460 In observer mode, GDB can get data from the inferior, but not\n\
9461 affect its execution. Registers and memory may not be changed,\n\
9462 breakpoints may not be set, and the program cannot be interrupted\n\
9463 or signalled."),
9466  &setlist,
9467  &showlist);
9468 }
void error_no_arg(const char *why)
Definition: cli-cmds.c:185
void get_last_target_status(ptid_t *ptidp, struct target_waitstatus *status)
Definition: infrun.c:4037
struct frame_id step_stack_frame_id
Definition: gdbthread.h:98
int target_supports_disable_randomization(void)
Definition: target.c:2629
static struct thread_info * random_pending_event_thread(ptid_t waiton_ptid)
Definition: infrun.c:3453
struct gdbarch * target_gdbarch(void)
Definition: gdbarch.c:5467
int frame_id_p(struct frame_id l)
Definition: frame.c:646
int breakpoint_in_range_p(const address_space *aspace, CORE_ADDR addr, ULONGEST len)
Definition: breakpoint.c:4022
static void set_exec_direction_func(const char *args, int from_tty, struct cmd_list_element *cmd)
Definition: infrun.c:9099
struct frame_info * frame_find_by_id(struct frame_id id)
Definition: frame.c:803
void annotate_signalled(void)
Definition: annotate.c:122
#define target_can_async_p()
Definition: target.h:1778
int gdbarch_software_single_step_p(struct gdbarch *gdbarch)
Definition: gdbarch.c:3241
const char * string
Definition: signals.c:50
struct block_symbol lookup_symbol_search_name(const char *search_name, const struct block *block, domain_enum domain)
Definition: symtab.c:1905
static void handle_step_into_function(struct gdbarch *gdbarch, struct execution_control_state *ecs)
Definition: infrun.c:7278
Definition: probe.h:112
static struct value * siginfo_make_value(struct gdbarch *gdbarch, struct internalvar *var, void *ignore)
Definition: infrun.c:8784
int target_thread_alive(ptid_t ptid)
Definition: target.c:3304
struct gdbarch * siginfo_gdbarch
Definition: infrun.c:8815
void target_record_stop_replaying(void)
Definition: target.c:3666
int in_solib_dynsym_resolve_code(CORE_ADDR pc)
Definition: solib.c:1239
void no_shared_libraries(const char *ignored, int from_tty)
Definition: solib.c:1261
int breakpoint_inserted_here_p(const address_space *aspace, CORE_ADDR pc)
Definition: breakpoint.c:4092
struct value * value_mark(void)
Definition: value.c:1589
bp_location * loc
Definition: breakpoint.h:702
#define ALL_UIS(UI)
Definition: top.h:210
static void show_stop_on_solib_events(struct ui_file *file, int from_tty, struct cmd_list_element *c, const char *value)
Definition: infrun.c:369
ULONGEST get_stop_id(void)
Definition: infrun.c:2777
ptid_t user_visible_resume_ptid(int step)
Definition: infrun.c:2252
struct thread_info * add_thread(ptid_t ptid)
Definition: thread.c:333
#define target_can_execute_reverse
Definition: target.h:2013
DEF_ENUM_FLAGS_TYPE(enum step_over_what_flag, step_over_what)
struct address_space * maybe_new_address_space(void)
Definition: progspace.c:73
void handle_solib_event(void)
Definition: solib.c:1286
int pc_in_thread_step_range(CORE_ADDR pc, struct thread_info *thread)
Definition: thread.c:1141
static void new_stop_id(void)
Definition: infrun.c:2785
struct thread_info * find_thread_ptid(ptid_t ptid)
Definition: thread.c:514
static void handle_inferior_event(struct execution_control_state *ecs)
Definition: infrun.c:5410
enum breakpoint_here breakpoint_here_p(const address_space *aspace, CORE_ADDR pc)
Definition: breakpoint.c:3989
int insert_single_step_breakpoints(struct gdbarch *gdbarch)
Definition: breakpoint.c:14623
struct thread_control_state thread_control
Definition: infrun.c:8937
struct observer * observer_attach_thread_exit(observer_thread_exit_ftype *f)
int catch_syscall_enabled(void)
static void save_waitstatus(struct thread_info *tp, struct target_waitstatus *ws)
Definition: infrun.c:4387
static const char schedlock_off[]
Definition: infrun.c:2194
step_over_what_flag
Definition: infrun.c:1264
int dbx_commands
Definition: main.c:56
int stop_requested
Definition: gdbthread.h:345
int ptid_is_pid(const ptid_t &ptid)
Definition: ptid.c:79
static int handle_syscall_event(struct execution_control_state *ecs)
Definition: infrun.c:4251
static void restore_selected_frame(const frame_id &fid)
Definition: infrun.c:8981
struct ui * current_ui
Definition: event-top.c:453
struct frame_info * get_selected_frame(const char *message)
Definition: frame.c:1638
void target_stop(ptid_t ptid)
Definition: target.c:3316
static int step_over_info_valid_p(void)
Definition: infrun.c:1384
static const char *const follow_fork_mode_kind_names[]
Definition: infrun.c:393
CORE_ADDR step_range_start
Definition: gdbthread.h:77
CORE_ADDR get_frame_pc(struct frame_info *frame)
Definition: frame.c:2376
void execute_cmd_pre_hook(struct cmd_list_element *c)
Definition: cli-script.c:366
int gdbarch_displaced_step_copy_insn_p(struct gdbarch *gdbarch)
Definition: gdbarch.c:3923
static int proceed_after_vfork_done(struct thread_info *thread, void *arg)
Definition: infrun.c:860
static void clean_up_just_stopped_threads_fsms(struct execution_control_state *ecs)
Definition: infrun.c:3785
static step_over_what thread_still_needs_step_over(struct thread_info *tp)
Definition: infrun.c:2936
static void check_curr_ui_sync_execution_done(void)
Definition: infrun.c:3814
struct frame_info * get_current_frame(void)
Definition: frame.c:1563
void post_create_inferior(struct target_ops *target, int from_tty)
Definition: infcmd.c:435
void signal_catch_update(const unsigned int *info)
Definition: infrun.c:8430
void clear_inline_frame_state(ptid_t ptid)
Definition: inline-frame.c:113
void field_string(const char *fldname, const char *string)
Definition: ui-out.c:544
bfd_vma CORE_ADDR
Definition: common-types.h:41
void print_signal_received_reason(struct ui_out *uiout, enum gdb_signal siggnal)
Definition: infrun.c:7927
void gdb_rl_callback_handler_reinstall(void)
Definition: event-top.c:323
#define target_shortname
Definition: target.h:1279
#define GDB_SIGNAL_FIRST
ptid_t target_wait(ptid_t ptid, struct target_waitstatus *status, int options)
Definition: target.c:2177
void displaced_step_dump_bytes(struct ui_file *file, const gdb_byte *buf, size_t len)
Definition: infrun.c:1721
struct address_space * aspace
Definition: progspace.h:166
int stepped_breakpoint
Definition: gdbthread.h:313
void insert_breakpoints(void)
Definition: breakpoint.c:2845
int command_editing
Definition: top.h:89
int ptid_get_pid(const ptid_t &ptid)
Definition: ptid.c:47
void fputs_unfiltered(const char *buf, struct ui_file *file)
Definition: ui-file.c:127
struct cleanup * make_cleanup_restore_current_traceframe(void)
Definition: tracepoint.c:3042
struct regcache * get_thread_regcache(ptid_t ptid)
Definition: regcache.c:434
enum gdb_signal gdb_signal_from_command(int num)
Definition: infrun.c:8666
void delete_thread(ptid_t)
Definition: thread.c:476
stop_stack_kind
Definition: breakpoint.h:991
void bpstat_clear(bpstat *bsp)
Definition: breakpoint.c:4212
void do_displays(void)
Definition: printcmd.c:2016
void xfree(void *)
mach_port_t mach_port_t name mach_port_t mach_port_t name kern_return_t int int rusage_t pid_t pid
Definition: gnu-nat.c:1824
struct frame_id initiating_frame
Definition: gdbthread.h:351
int may_insert_fast_tracepoints
void set_running(ptid_t ptid, int running)
Definition: thread.c:919
static ptid_t do_target_wait(ptid_t ptid, struct target_waitstatus *status, int options)
Definition: infrun.c:3495
void clear_exit_convenience_vars(void)
Definition: infrun.c:9077
static const char *const exec_direction_names[]
Definition: infrun.c:9092
int gdbarch_get_longjmp_target(struct gdbarch *gdbarch, struct frame_info *frame, CORE_ADDR *pc)
Definition: gdbarch.c:2562
static int switch_back_to_stepped_thread(struct execution_control_state *ecs)
Definition: infrun.c:7007
void release() const
void print_no_history_reason(struct ui_out *uiout)
Definition: infrun.c:7977
void annotate_stopped(void)
Definition: annotate.c:108
void add_setshow_auto_boolean_cmd(const char *name, enum command_class theclass, enum auto_boolean *var, const char *set_doc, const char *show_doc, const char *help_doc, cmd_const_sfunc_ftype *set_func, show_value_ftype *show_func, struct cmd_list_element **set_list, struct cmd_list_element **show_list)
Definition: cli-decode.c:544
enum print_stop_action bpstat_print(bpstat bs, int kind)
Definition: breakpoint.c:4686
int target_supports_multi_process(void)
Definition: target.c:2643
struct frame_info * get_prev_frame(struct frame_info *this_frame)
Definition: frame.c:2254
int gdbarch_single_step_through_delay(struct gdbarch *gdbarch, struct frame_info *frame)
Definition: gdbarch.c:3272
void frame_pop(struct frame_info *this_frame)
Definition: frame.c:1031
CORE_ADDR frame_unwind_caller_pc(struct frame_info *this_frame)
Definition: frame.c:944
struct displaced_step_inferior_state * next
Definition: infrun.c:1485
void copy_inferior_target_desc_info(struct inferior *destinf, struct inferior *srcinf)
void(* func)(char *)
int breakpoint_address_match(const address_space *aspace1, CORE_ADDR addr1, const address_space *aspace2, CORE_ADDR addr2)
Definition: breakpoint.c:6838
struct gdbarch * frame_unwind_caller_arch(struct frame_info *next_frame)
Definition: frame.c:2725
static void insert_step_resume_breakpoint_at_sal_1(struct gdbarch *gdbarch, struct symtab_and_line sr_sal, struct frame_id sr_id, enum bptype sr_type)
Definition: infrun.c:7391
void warning(const char *fmt,...)
Definition: errors.c:26
regcache(gdbarch *gdbarch)
Definition: regcache.h:235
int async
Definition: top.h:102
#define target_stopped_by_hw_breakpoint()
Definition: target.h:1888
CORE_ADDR end
Definition: symtab.h:1760
struct thread_info * event_thread
Definition: infrun.c:2028
int query(const char *ctlstr,...)
Definition: utils.c:1063
void discard_infcall_control_state(struct infcall_control_state *inf_status)
Definition: infrun.c:9058
void init_wait_for_inferior(void)
Definition: infrun.c:3252
LONGEST target_write(struct target_ops *ops, enum target_object object, const char *annex, const gdb_byte *buf, ULONGEST offset, LONGEST len)
Definition: target.c:1841
void async_enable_stdin(void)
Definition: event-top.c:538
int disable_randomization
Definition: infrun.c:175
void thread_fsm_delete(struct thread_fsm *self)
Definition: thread-fsm.c:36
bool enabled
Definition: breakpoint.h:385
void breakpoint_auto_delete(bpstat bs)
Definition: breakpoint.c:11624
int thread_fsm_should_stop(struct thread_fsm *self, struct thread_info *thread)
Definition: thread-fsm.c:58
enum stop_kind stop_soon
Definition: inferior.h:280
void target_detach(const char *args, int from_tty)
Definition: target.c:2147
static int resumed_thread_with_pending_status(struct thread_info *tp, void *arg)
Definition: infrun.c:5529
static void show_schedule_multiple(struct ui_file *file, int from_tty, struct cmd_list_element *c, const char *value)
Definition: infrun.c:9135
int gdbarch_gdb_signal_to_target_p(struct gdbarch *gdbarch)
Definition: gdbarch.c:4192
struct cmd_list_element * add_info(const char *name, cmd_const_cfunc_ftype *fun, const char *doc)
Definition: cli-decode.c:886
static void infrun_thread_ptid_changed(ptid_t old_ptid, ptid_t new_ptid)
Definition: infrun.c:2176
void select_frame(struct frame_info *fi)
Definition: frame.c:1677
#define target_supports_stopped_by_sw_breakpoint()
Definition: target.h:1885
static void check_exception_resume(struct execution_control_state *, struct frame_info *)
Definition: infrun.c:7585
struct frame_id get_stack_frame_id(struct frame_info *next_frame)
Definition: frame.c:549
void _initialize_infrun(void)
Definition: infrun.c:9161
void complete_on_enum(completion_tracker &tracker, const char *const *enumlist, const char *text, const char *word)
Definition: cli-decode.c:1853
void * memset(T *s, int c, size_t n)=delete
int show_thread_that_caused_stop(void)
Definition: thread.c:1586
void internal_error(const char *file, int line, const char *fmt,...)
Definition: errors.c:50
const struct frame_id null_frame_id
Definition: frame.c:575
struct thread_info * inferior_thread(void)
Definition: thread.c:90
struct inferior_control_state inferior_control
Definition: infrun.c:8938
void target_pass_signals(int numsigs, unsigned char *pass_signals)
Definition: target.c:2251
int info_verbose
Definition: top.c:1791
struct regcache * registers
Definition: infrun.c:8812
CORE_ADDR gdbarch_deprecated_function_start_offset(struct gdbarch *gdbarch)
Definition: gdbarch.c:2987
static void show_observer_mode(struct ui_file *file, int from_tty, struct cmd_list_element *c, const char *value)
Definition: infrun.c:273
void observer_notify_normal_stop(struct bpstats *bs, int print_frame)
CORE_ADDR address
Definition: infrun.c:1285
void add_setshow_enum_cmd(const char *name, enum command_class theclass, const char *const *enumlist, const char **var, const char *set_doc, const char *show_doc, const char *help_doc, cmd_const_sfunc_ftype *set_func, show_value_ftype *show_func, struct cmd_list_element **set_list, struct cmd_list_element **show_list)
Definition: cli-decode.c:515
void restore_infcall_control_state(struct infcall_control_state *inf_status)
Definition: infrun.c:8999
void print_exited_reason(struct ui_out *uiout, int exitstatus)
Definition: infrun.c:7881
struct frame_id selected_frame_id
Definition: infrun.c:8945
static const char *const scheduler_enums[]
Definition: infrun.c:2198
static void insert_exception_resume_breakpoint(struct thread_info *tp, const struct block *b, struct frame_info *frame, struct symbol *sym)
Definition: infrun.c:7507
union target_waitstatus::@174 value
void mark_async_event_handler(async_event_handler *async_handler_ptr)
Definition: event-loop.c:1036
static const char follow_fork_mode_parent[]
Definition: infrun.c:391
static void set_observer_mode(const char *args, int from_tty, struct cmd_list_element *c)
Definition: infrun.c:237
void nullify_last_target_wait_ptid(void)
Definition: infrun.c:4044
struct cmd_list_element * add_cmd(const char *name, enum command_class theclass, const char *doc, struct cmd_list_element **list)
Definition: cli-decode.c:262
static void delete_just_stopped_threads_infrun_breakpoints(void)
Definition: infrun.c:3394
int breakpoints_not_allowed
Definition: progspace.h:180
static const char exec_reverse[]
Definition: infrun.c:9090
static void fill_in_stop_func(struct gdbarch *gdbarch, struct execution_control_state *ecs)
Definition: infrun.c:4295
void annotate_signal(void)
Definition: annotate.c:160
static void context_switch(ptid_t ptid)
Definition: infrun.c:4052
void thread_fsm_clean_up(struct thread_fsm *self, struct thread_info *thread)
Definition: thread-fsm.c:49
static int thread_still_needs_step_over_bp(struct thread_info *tp)
Definition: infrun.c:2914
void(* deprecated_context_hook)(int)
Definition: top.c:244
void target_async(int enable)
Definition: target.c:3860
struct infcall_control_state * save_infcall_control_state(void)
Definition: infrun.c:8952
void resume(gdb_signal sig)
Definition: infrun.c:2740
struct observer * observer_attach_inferior_exit(observer_inferior_exit_ftype *f)
static void siginfo_value_write(struct value *v, struct value *fromval)
Definition: infrun.c:8754
static void set_stop_on_solib_events(const char *args, int from_tty, struct cmd_list_element *c)
Definition: infrun.c:362
inferior * vfork_child
Definition: inferior.h:385
struct inferior * find_inferior_ptid(ptid_t ptid)
Definition: inferior.c:321
struct obj_section * section
Definition: symtab.h:1753
struct cmd_list_element * cmdlist
Definition: cli-cmds.c:79
enum thread_state state
Definition: gdbthread.h:287
int sched_multi
Definition: infrun.c:2229
static void keep_going(struct execution_control_state *ecs)
Definition: infrun.c:7799
bool removable
Definition: inferior.h:343
struct internalvar * lookup_internalvar(const char *name)
Definition: value.c:2212
#define THREAD_STOPPED_BY(REASON)
Definition: infrun.c:4357
#define _(String)
Definition: gdb_locale.h:35
static void displaced_step_clear(struct displaced_step_inferior_state *displaced)
Definition: infrun.c:1701
enum gdb_signal stop_signal
Definition: gdbthread.h:158
static ptid_t target_last_wait_ptid
Definition: infrun.c:383
struct value * probe_safe_evaluate_at_pc(struct frame_info *frame, unsigned n)
Definition: probe.c:693
void set_current_sal_from_frame(struct frame_info *)
Definition: stack.c:725
int bpstat_causes_stop(bpstat bs)
Definition: breakpoint.c:5780
struct thread_info * thread
Definition: infrun.c:8103
int gdbarch_have_nonsteppable_watchpoint(struct gdbarch *gdbarch)
Definition: gdbarch.c:3483
int signal_print_state(int signo)
Definition: infrun.c:8368
void observer_notify_sync_execution_done(void)
int program_breakpoint_here_p(struct gdbarch *gdbarch, CORE_ADDR address)
Definition: breakpoint.c:8715
int stepping_over_breakpoint
Definition: gdbthread.h:316
scoped_restore_tmpl< int > make_scoped_defer_target_commit_resume()
Definition: target.c:2245
void regcache_write_pc(struct regcache *regcache, CORE_ADDR pc)
Definition: regcache.c:1256
ptid_t(* deprecated_target_wait_hook)(ptid_t ptid, struct target_waitstatus *status, int options)
Definition: top.c:232
#define target_stopped_by_watchpoint()
Definition: target.h:1876
static int displaced_step_prepare(ptid_t ptid)
Definition: infrun.c:1888
int record_full_is_used(void)
Definition: record-full.c:216
static void infrun_async_inferior_event_handler(gdb_client_data data)
Definition: infrun.c:9155
static const char * exec_direction
Definition: infrun.c:9091
#define SET_SIGS(nsigs, sigs, flags)
Definition: infrun.c:321
#define END_CATCH
void(* for_each_just_stopped_thread_callback_func)(struct thread_info *tp)
Definition: infrun.c:3365
int stepping_past_instruction_at(struct address_space *aspace, CORE_ADDR address)
Definition: infrun.c:1355
static void set_schedlock_func(const char *args, int from_tty, struct cmd_list_element *c)
Definition: infrun.c:2217
void target_program_signals(int numsigs, unsigned char *program_signals)
Definition: target.c:2257
struct value * allocate_value(struct type *type)
Definition: value.c:1036
void text(const char *string)
Definition: ui-out.c:581
static void follow_inferior_reset_breakpoints(void)
Definition: infrun.c:817
struct address_space * aspace
Definition: inferior.h:346
struct regcache * get_current_regcache(void)
Definition: regcache.c:446
int moribund_breakpoint_here_p(const address_space *aspace, CORE_ADDR pc)
Definition: breakpoint.c:4056
static void ours()
Definition: target.c:483
static void inferior()
Definition: target.c:450
#define target_stopped_data_address(target, addr_p)
Definition: target.h:1984
void insert_single_step_breakpoint(struct gdbarch *gdbarch, const address_space *aspace, CORE_ADDR next_pc)
Definition: breakpoint.c:14597
CORE_ADDR gdbarch_skip_solib_resolver(struct gdbarch *gdbarch, CORE_ADDR pc)
Definition: gdbarch.c:3323
struct symtab * current_symtab
Definition: gdbthread.h:298
int may_insert_tracepoints
struct observer * observer_attach_thread_stop_requested(observer_thread_stop_requested_ftype *f)
bpstat bpstat_stop_status(const address_space *aspace, CORE_ADDR bp_addr, ptid_t ptid, const struct target_waitstatus *ws)
Definition: breakpoint.c:5365
static void handle_step_into_function_backward(struct gdbarch *gdbarch, struct execution_control_state *ecs)
Definition: infrun.c:7354
static int start_step_over(void)
Definition: infrun.c:2063
void printf_filtered(const char *format,...)
Definition: utils.c:2045
static int maybe_software_singlestep(struct gdbarch *gdbarch, CORE_ADDR pc)
Definition: infrun.c:2238
static ptid_t internal_resume_ptid(int user_step)
Definition: infrun.c:2298
int pagination_enabled
Definition: utils.c:128
CORE_ADDR stop_func_start
Definition: infrun.c:2032
virtual ~displaced_step_closure()=0
const char * paddress(struct gdbarch *gdbarch, CORE_ADDR addr)
Definition: utils.c:2745
struct obj_section * find_pc_overlay(CORE_ADDR pc)
Definition: symfile.c:3173
struct gdbarch * step_gdbarch
Definition: infrun.c:1500
const address_space * get_frame_address_space(struct frame_info *frame)
Definition: frame.c:2646
#define XNEW(T)
Definition: poison.h:109
struct program_space * add_program_space(struct address_space *aspace)
Definition: progspace.c:113
void restore_infcall_suspend_state(struct infcall_suspend_state *inf_state)
Definition: infrun.c:8876
static void release_stop_context_cleanup(void *arg)
Definition: infrun.c:8138
void set_current_program_space(struct program_space *pspace)
Definition: progspace.c:190
struct regcache * regcache_dup(struct regcache *src)
Definition: regcache.c:353
#define UNSET_SIGS(nsigs, sigs, flags)
Definition: infrun.c:329
struct thread_info * thread_step_over_chain_next(struct thread_info *tp)
Definition: thread.c:408
int bpstat_should_step(void)
Definition: breakpoint.c:5769
static void signal_cache_update(int signo)
Definition: infrun.c:8380
struct compunit_symtab * find_pc_compunit_symtab(CORE_ADDR pc)
Definition: symtab.c:2988
struct program_space * pspace
Definition: inferior.h:349
static void handle_segmentation_fault(struct ui_out *uiout)
Definition: infrun.c:7917
#define ALL_INFERIORS(I)
Definition: inferior.h:548
scoped_restore_tmpl< T > make_scoped_restore(T *var)
std::string target_waitstatus_to_string(const struct target_waitstatus *ws)
Definition: waitstatus.c:27
void signal_completer(struct cmd_list_element *ignore, completion_tracker &tracker, const char *text, const char *word)
Definition: completer.c:1671
void infrun_async(int enable)
Definition: infrun.c:106
bool function_name_is_marked_for_skip(const char *function_name, const symtab_and_line &function_sal)
Definition: skip.c:574
void add_setshow_zuinteger_cmd(const char *name, enum command_class theclass, unsigned int *var, const char *set_doc, const char *show_doc, const char *help_doc, cmd_const_sfunc_ftype *set_func, show_value_ftype *show_func, struct cmd_list_element **set_list, struct cmd_list_element **show_list)
Definition: cli-decode.c:792
int signal_stop_state(int signo)
Definition: infrun.c:8362
LONGEST value_offset(const struct value *value)
Definition: value.c:1106
void null_cleanup(void *arg)
Definition: cleanups.c:294
#define TRY
static const char schedlock_replay[]
Definition: infrun.c:2197
struct thread_info * iterate_over_threads(thread_callback_func, void *)
Definition: thread.c:551
bool waiting_for_vfork_done
Definition: inferior.h:394
int frame_id_eq(struct frame_id l, struct frame_id r)
Definition: frame.c:674
void annotate_signal_name_end(void)
Definition: annotate.c:139
void switch_to_thread(ptid_t ptid)
Definition: thread.c:1445
void print_signal_exited_reason(struct ui_out *uiout, enum gdb_signal siggnal)
Definition: infrun.c:7860
struct cmd_list_element * setlist
Definition: cli-cmds.c:111
#define target_stopped_by_sw_breakpoint()
Definition: target.h:1882
enum stop_stack_kind call_dummy
Definition: breakpoint.h:1011
const char *const name
Definition: aarch64-tdep.c:76
#define target_execution_direction()
Definition: target.h:1798
enum frame_type get_frame_type(struct frame_info *frame)
Definition: frame.c:2619
struct thread_info * next
Definition: gdbthread.h:218
scoped_restore_tmpl< int > record_full_gdb_operation_disable_set(void)
Definition: record-full.c:662
CORE_ADDR gdbarch_decr_pc_after_break(struct gdbarch *gdbarch)
Definition: gdbarch.c:2970
static int stop_print_frame
Definition: infrun.c:378
static int stop_context_changed(struct stop_context *prev)
Definition: infrun.c:8151
void observer_notify_about_to_proceed(void)
const char * stop_func_name
Definition: infrun.c:2034
struct frame_id get_frame_id(struct frame_info *fi)
Definition: frame.c:520
static void reset_ecs(struct execution_control_state *ecs, struct thread_info *tp)
Definition: infrun.c:2047
void breakpoint_re_set(void)
Definition: breakpoint.c:13952
int may_stop
static struct stop_context * save_stop_context(void)
Definition: infrun.c:8113
ptid_t ptid
Definition: infrun.c:8099
struct infcall_suspend_state * save_infcall_suspend_state(void)
Definition: infrun.c:8824
ULONGEST gdbarch_max_insn_length(struct gdbarch *gdbarch)
Definition: gdbarch.c:3905
void target_dcache_invalidate(void)
Definition: target-dcache.c:52
enum exec_direction_kind execution_direction
Definition: infrun.c:9088
#define CATCH(EXCEPTION, MASK)
bpdisp disposition
Definition: breakpoint.h:697
ui(FILE *instream, FILE *outstream, FILE *errstream)
Definition: top.c:251
static const char * scheduler_mode
Definition: infrun.c:2205
thread_suspend_state suspend
Definition: gdbthread.h:295
void annotate_exited(int exitstatus)
Definition: annotate.c:115
struct cleanup * make_cleanup_restore_infcall_control_state(struct infcall_control_state *inf_status)
Definition: infrun.c:9052
static void clear_proceed_status_thread(struct thread_info *tp)
Definition: infrun.c:2794
int gdbarch_single_step_through_delay_p(struct gdbarch *gdbarch)
Definition: gdbarch.c:3265
bptype type
Definition: breakpoint.h:693
void update_signals_program_target(void)
Definition: infrun.c:341
static void keep_going_pass_signal(struct execution_control_state *ecs)
Definition: infrun.c:7668
struct target_ops current_target
void inferior_event_handler(enum inferior_event_type event_type, gdb_client_data client_data)
Definition: inf-loop.c:37
int detach_breakpoints(ptid_t ptid)
Definition: breakpoint.c:3645
CORE_ADDR gdbarch_addr_bits_remove(struct gdbarch *gdbarch, CORE_ADDR addr)
Definition: gdbarch.c:3208
static void insert_exception_resume_from_probe(struct thread_info *tp, const struct bound_probe *probe, struct frame_info *frame)
Definition: infrun.c:7554
struct symtab_and_line find_pc_line(CORE_ADDR pc, int notcurrent)
Definition: symtab.c:3288
void bpstat_run_callbacks(bpstat bs_head)
Definition: breakpoint.c:5739
static int non_stop_1
Definition: infrun.c:205
struct breakpoint * exception_resume_breakpoint
Definition: gdbthread.h:58
struct value * allocate_computed_value(struct type *type, const struct lval_funcs *funcs, void *closure)
Definition: value.c:1061
int inline_skipped_frames(ptid_t ptid)
Definition: inline-frame.c:369
struct frame_id step_frame_id
Definition: gdbthread.h:94
void target_clear_description(void)
int thread_is_in_step_over_chain(struct thread_info *tp)
Definition: thread.c:418
void print_stop_event(struct ui_out *uiout)
Definition: infrun.c:8044
int target_is_non_stop_p(void)
Definition: target.c:3917
void stop_all_threads(void)
Definition: infrun.c:4468
static int finish_step_over(struct execution_control_state *ecs)
Definition: infrun.c:5543
static void insert_longjmp_resume_breakpoint(struct gdbarch *, CORE_ADDR)
Definition: infrun.c:7484
static void delete_thread_infrun_breakpoints(struct thread_info *tp)
Definition: infrun.c:3353
void fprintf_filtered(struct ui_file *stream, const char *format,...)
Definition: utils.c:2008
void jit_inferior_created_hook(void)
Definition: jit.c:1390
int executing
Definition: gdbthread.h:271
struct value * read_var_value(struct symbol *var, const struct block *var_block, struct frame_info *frame)
Definition: findvar.c:807
struct symbol * find_pc_function(CORE_ADDR pc)
Definition: blockframe.c:150
void set_cmd_completer(struct cmd_list_element *cmd, completer_ftype *completer)
Definition: cli-decode.c:160
static void print_stop_location(struct target_waitstatus *ws)
Definition: infrun.c:7988
void update_target_permissions(void)
Definition: target.c:3978
static void for_each_just_stopped_thread(for_each_just_stopped_thread_callback_func func)
Definition: infrun.c:3368
enum gdb_signal sig
Definition: waitstatus.h:114
const struct block * block
Definition: symtab.h:1140
static enum auto_boolean can_use_displaced_stepping
Definition: infrun.c:1660
struct inferior * add_inferior(int pid)
Definition: inferior.c:121
struct displaced_step_closure * gdbarch_displaced_step_copy_insn(struct gdbarch *gdbarch, CORE_ADDR from, CORE_ADDR to, struct regcache *regs)
Definition: gdbarch.c:3930
static void infrun_thread_stop_requested(ptid_t ptid)
Definition: infrun.c:3291
int gdbarch_displaced_step_hw_singlestep(struct gdbarch *gdbarch, struct displaced_step_closure *closure)
Definition: gdbarch.c:3947
enum prompt_state prompt_state
Definition: top.h:131
void annotate_starting(void)
Definition: annotate.c:101
struct thread_info * any_live_thread_of_process(int pid)
Definition: thread.c:674
int debug_displaced
Definition: infrun.c:156
int stepping_past_nonsteppable_watchpoint(void)
Definition: infrun.c:1376
void add_setshow_zinteger_cmd(const char *name, enum command_class theclass, int *var, const char *set_doc, const char *show_doc, const char *help_doc, cmd_const_sfunc_ftype *set_func, show_value_ftype *show_func, struct cmd_list_element **set_list, struct cmd_list_element **show_list)
Definition: cli-decode.c:748
long ptid_get_tid(const ptid_t &ptid)
Definition: ptid.c:63
int signal_pass_update(int signo, int state)
Definition: infrun.c:8417
static void insert_hp_step_resume_breakpoint_at_frame(struct frame_info *)
Definition: infrun.c:7429
Definition: ptid.h:35
void target_resume(ptid_t ptid, int step, enum gdb_signal signal)
Definition: target.c:2215
void fprintf_unfiltered(struct ui_file *stream, const char *format,...)
Definition: utils.c:2018
struct cleanup * make_cleanup_restore_infcall_suspend_state(struct infcall_suspend_state *inf_state)
Definition: infrun.c:8912
void print_target_wait_results(ptid_t waiton_ptid, ptid_t result_ptid, const struct target_waitstatus *ws)
Definition: infrun.c:3419
struct cmd_list_element * showlist
Definition: cli-cmds.c:119
void exception_print(struct ui_file *file, struct gdb_exception e)
Definition: exceptions.c:109
inferior(int pid)
Definition: inferior.c:87
static const char schedlock_on[]
Definition: infrun.c:2195
void fputs_filtered(const char *linebuffer, struct ui_file *stream)
Definition: utils.c:1811
struct breakpoint * clone_momentary_breakpoint(struct breakpoint *orig)
Definition: breakpoint.c:8611
static void restart_threads(struct thread_info *event_thread)
Definition: infrun.c:5426
int global_num
Definition: gdbthread.h:253
static struct async_event_handler * infrun_async_inferior_event_token
Definition: infrun.c:97
#define TARGET_WNOHANG
Definition: wait.h:28
void free_current_contents(void *ptr)
Definition: utils.c:199
void update_observer_mode(void)
Definition: infrun.c:286
struct symbol * get_frame_function(struct frame_info *frame)
Definition: blockframe.c:118
ptid_t pid_to_ptid(int pid)
Definition: ptid.c:39
void target_thread_events(int enable)
Definition: target.c:3869
async_event_handler * create_async_event_handler(async_event_handler_func *proc, gdb_client_data client_data)
Definition: event-loop.c:1013
#define current_uiout
Definition: ui-out.h:39
void mark_infrun_async_event_handler(void)
Definition: infrun.c:127
static void displaced_step_clear_cleanup(void *arg)
Definition: infrun.c:1711
int nonsteppable_watchpoint_p
Definition: infrun.c:1289
CORE_ADDR prev_pc
Definition: gdbthread.h:308
struct cleanup * make_cleanup(make_cleanup_ftype *function, void *arg)
Definition: cleanups.c:116
int software_breakpoint_inserted_here_p(const address_space *aspace, CORE_ADDR pc)
Definition: breakpoint.c:4114
bool pending_detach
Definition: inferior.h:389
int catching_syscall_number(int syscall_number)
static void do_restore_infcall_suspend_state_cleanup(void *state)
Definition: infrun.c:8905
struct gdbarch * get_objfile_arch(const struct objfile *objfile)
Definition: objfiles.c:445
void prune_inferiors(void)
Definition: inferior.c:460
int gdb_in_secondary_prompt_p(struct ui *ui)
Definition: top.c:888
int ptid_to_global_thread_id(ptid_t ptid)
Definition: thread.c:605
static void resume_1(enum gdb_signal sig)
Definition: infrun.c:2362
Definition: gdbtypes.h:749
int single_step_breakpoint_inserted_here_p(const address_space *aspace, CORE_ADDR pc)
Definition: breakpoint.c:14665
int find_pc_partial_function(CORE_ADDR pc, const char **name, CORE_ADDR *address, CORE_ADDR *endaddr)
Definition: blockframe.c:320
LONGEST exit_code
Definition: inferior.h:416
int target_record_will_replay(ptid_t ptid, int dir)
Definition: target.c:3658
static unsigned char * signal_stop
Definition: infrun.c:306
struct target_ops * find_record_target(void)
Definition: record.c:63
static void show_follow_fork_mode_string(struct ui_file *file, int from_tty, struct cmd_list_element *c, const char *value)
Definition: infrun.c:401
void not_just_help_class_command(const char *args, int from_tty)
Definition: cli-decode.c:412
ULONGEST stop_id
Definition: infrun.c:8095
int step_stop_if_no_debug
Definition: infrun.c:135
int gdbarch_handle_segmentation_fault_p(struct gdbarch *gdbarch)
Definition: gdbarch.c:2122
struct target_waitstatus pending_follow
Definition: gdbthread.h:342
struct ui * main_ui
Definition: event-top.c:452
#define enable()
Definition: ser-go32.c:239
Definition: gnu-nat.c:174
exec_direction_kind
Definition: infrun.h:67
static void end_stepping_range(struct execution_control_state *ecs)
Definition: infrun.c:7830
void target_mourn_inferior(ptid_t ptid)
Definition: target.c:2298
static CONTEXT saved_context
Definition: windows-nat.c:149
static void remove_displaced_stepping_state(int pid)
Definition: infrun.c:1624
void regcache_cpy(struct regcache *dst, struct regcache *src)
Definition: regcache.c:342
int overlay_cache_invalid
Definition: symfile.c:2971
Definition: top.h:56
int gdbarch_cannot_step_breakpoint(struct gdbarch *gdbarch)
Definition: gdbarch.c:3466
void maybe_remove_breakpoints(void)
Definition: infrun.c:8076
void exception_fprintf(struct ui_file *file, struct gdb_exception e, const char *prefix,...)
Definition: exceptions.c:119
scoped_restore_tmpl< ptid_t > m_saved_ptid
Definition: infrun.c:895
void gdbarch_skip_permanent_breakpoint(struct gdbarch *gdbarch, struct regcache *regcache)
Definition: gdbarch.c:3881
struct program_space * frame_unwind_program_space(struct frame_info *this_frame)
Definition: frame.c:2635
mach_port_t mach_port_t name mach_port_t mach_port_t name kern_return_t int status
Definition: gnu-nat.c:1822
symfile_add_flags symfile_flags
Definition: inferior.h:420
const char * print_thread_id(struct thread_info *thr)
Definition: thread.c:1602
#define target_is_async_p()
Definition: target.h:1781
struct regcache * get_infcall_suspend_state_regcache(struct infcall_suspend_state *inf_state)
Definition: infrun.c:8926
static ULONGEST current_stop_id
Definition: infrun.c:2772
static void show_disable_randomization(struct ui_file *file, int from_tty, struct cmd_list_element *c, const char *value)
Definition: infrun.c:178
static void clear_step_over_info(void)
Definition: infrun.c:1341
struct thread_fsm * thread_fsm
Definition: gdbthread.h:337
struct gdbarch * gdbarch
Definition: inferior.h:437
static void siginfo_value_read(struct value *v)
Definition: infrun.c:8731
int thread_fsm_finished_p(struct thread_fsm *self)
Definition: thread-fsm.c:84
const char * gdb_signal_to_name(enum gdb_signal)
Definition: signals.c:78
ptid_t ptid
Definition: gdbthread.h:219
static int displaced_step_in_progress_thread(ptid_t ptid)
Definition: infrun.c:1555
static const struct lval_funcs siginfo_value_funcs
Definition: infrun.c:8773
#define target_has_execution
Definition: target.h:1756
print_what
Definition: frame.h:660
gdb_byte * value_contents_all_raw(struct value *value)
Definition: value.c:1168
#define target_can_lock_scheduler
Definition: target.h:1771
scoped_restore_current_inferior m_inferior
Definition: infrun.c:897
static struct target_waitstatus target_last_waitstatus
Definition: infrun.c:384
static void delete_just_stopped_threads_single_step_breakpoints(void)
Definition: infrun.c:3403
static void switch_to_thread_cleanup(void *ptid_p)
Definition: infrun.c:4377
void printf_unfiltered(const char *format,...)
Definition: utils.c:2056
int target_record_is_replaying(ptid_t ptid)
Definition: target.c:3650
struct cmd_list_element * setdebuglist
Definition: cli-cmds.c:153
int thread_has_single_step_breakpoint_here(struct thread_info *tp, const address_space *aspace, CORE_ADDR addr)
Definition: thread.c:156
void async_disable_stdin(void)
Definition: event-top.c:554
void read_memory(CORE_ADDR memaddr, gdb_byte *myaddr, ssize_t len)
Definition: corefile.c:258
struct frame_id frame_unwind_caller_id(struct frame_info *next_frame)
Definition: frame.c:555
void delete_step_resume_breakpoint(struct thread_info *)
Definition: thread.c:110
struct thread_info * step_over_queue_head
Definition: infrun.c:1260
void annotate_thread_changed(void)
Definition: annotate.c:236
int num
Definition: inferior.h:324
int gdbarch_in_solib_return_trampoline(struct gdbarch *gdbarch, CORE_ADDR pc, const char *name)
Definition: gdbarch.c:3340
void * xmalloc(YYSIZE_T)
struct symtab * symtab
Definition: symtab.h:1751
long ptid_get_lwp(const ptid_t &ptid)
Definition: ptid.c:55
CORE_ADDR gdbarch_adjust_breakpoint_address(struct gdbarch *gdbarch, CORE_ADDR bpaddr)
Definition: gdbarch.c:2919
static ptid_t wait_one(struct target_waitstatus *ws)
Definition: infrun.c:4331
static const char follow_exec_mode_same[]
Definition: infrun.c:1059
struct observer * observer_attach_thread_ptid_changed(observer_thread_ptid_changed_ftype *f)
static void prepare_to_wait(struct execution_control_state *ecs)
Definition: infrun.c:7815
static int use_displaced_stepping(struct thread_info *tp)
Definition: infrun.c:1682
static void displaced_step_restore(struct displaced_step_inferior_state *displaced, ptid_t ptid)
Definition: infrun.c:1942
enum target_stop_reason stop_reason
Definition: gdbthread.h:162
int thread_has_single_step_breakpoints_set(struct thread_info *tp)
Definition: thread.c:148
void * gdb_client_data
Definition: event-loop.h:70
bool has_exit_code
Definition: inferior.h:415
static void infrun_thread_thread_exit(struct thread_info *tp, int silent)
Definition: infrun.c:3343
const address_space * aspace() const
Definition: regcache.h:257
bptype
Definition: breakpoint.h:67
static void ours_for_output()
Definition: target.c:501
void skip_inline_frames(ptid_t ptid)
Definition: inline-frame.c:304
void fetch_inferior_event(void *client_data)
Definition: infrun.c:3861
struct symbol * symbol
Definition: symtab.h:1136
static const char *const follow_exec_mode_names[]
Definition: infrun.c:1060
static void handle_inferior_event_1(struct execution_control_state *ecs)
Definition: infrun.c:4803
void set_last_target_status(ptid_t ptid, struct target_waitstatus status)
Definition: infrun.c:4025
struct program_space * clone_program_space(struct program_space *dest, struct program_space *src)
Definition: progspace.c:170
static void handle_command(const char *args, int from_tty)
Definition: infrun.c:8467
#define SWITCH_THRU_ALL_UIS()
Definition: top.h:206
#define gdb_assert(expr)
Definition: gdb_assert.h:32
Definition: block.h:60
static int keep_going_stepped_thread(struct thread_info *tp)
Definition: infrun.c:7161
static void infrun_inferior_exit(struct inferior *inf)
Definition: infrun.c:1647
struct symbol * step_start_function
Definition: gdbthread.h:81
Definition: value.c:169
static void show_exec_direction_func(struct ui_file *out, int from_tty, struct cmd_list_element *cmd, const char *value)
Definition: infrun.c:9117
void init_thread_stepping_state(struct thread_info *tss)
Definition: infrun.c:4014
symtab_and_line find_frame_sal(frame_info *frame)
Definition: frame.c:2487
int stop_on_solib_events
Definition: infrun.c:356
int current_line
Definition: gdbthread.h:297
int inf_num
Definition: infrun.c:8106
CORE_ADDR stop_func_end
Definition: infrun.c:2033
void gdbarch_handle_segmentation_fault(struct gdbarch *gdbarch, struct ui_out *uiout)
Definition: gdbarch.c:2129
Definition: ui-out.h:77
void finish_thread_state_cleanup(void *ptid_p)
Definition: thread.c:1089
CORE_ADDR address
Definition: breakpoint.h:427
const char * target_thread_name(struct thread_info *info)
Definition: target.c:2200
int stopped_by_random_signal
Definition: infcmd.c:107
static const char schedlock_step[]
Definition: infrun.c:2196
bool permanent
Definition: breakpoint.h:395
void annotate_signal_name(void)
Definition: annotate.c:132
void discard_infcall_suspend_state(struct infcall_suspend_state *inf_state)
Definition: infrun.c:8918
int signal_pass_state(int signo)
Definition: infrun.c:8374
static ptid_t previous_inferior_ptid
Definition: infrun.c:147
enum gdb_signal gdb_signal_from_name(const char *)
Definition: signals.c:91
bpstat bpstat_copy(bpstat bs)
Definition: breakpoint.c:4251
void all_uis_check_sync_execution_done(void)
Definition: infrun.c:3831
void print_stack_frame(struct frame_info *, int print_level, enum print_what print_what, int set_current_sal)
Definition: stack.c:165
static void reinstall_readline_callback_handler_cleanup(void *arg)
Definition: infrun.c:3763
enum stop_stack_kind stop_stack_dummy
Definition: infrun.c:8941
int observer_mode
Definition: infrun.c:233
static unsigned char * signal_program
Definition: infrun.c:308
int thread_fsm_should_notify_stop(struct thread_fsm *self)
Definition: thread-fsm.c:104
void printf(const char *,...) ATTRIBUTE_PRINTF(2
Definition: ui-file.c:37
void throw_exception(struct gdb_exception exception)
void disable_current_display(void)
Definition: printcmd.c:2042
char * execd_pathname
Definition: waitstatus.h:118
void thread_step_over_chain_enqueue(struct thread_info *tp)
Definition: thread.c:426
bfd_byte gdb_byte
Definition: common-types.h:38
static void process_event_stop_test(struct execution_control_state *ecs)
Definition: infrun.c:6200
static void adjust_pc_after_break(struct thread_info *thread, struct target_waitstatus *ws)
Definition: infrun.c:4071
void start_remote(int from_tty)
Definition: infrun.c:3218
#define XNEWVEC(T, N)
Definition: poison.h:145
static struct displaced_step_inferior_state * get_displaced_stepping_state(int pid)
Definition: infrun.c:1521
T & emplace(Args &&... args)
Definition: gdb_optional.h:152
void discard_cleanups(struct cleanup *old_chain)
Definition: cleanups.c:212
int non_stop
Definition: infrun.c:204
void print_end_stepping_range_reason(struct ui_out *uiout)
Definition: infrun.c:7848
breakpoint_up set_momentary_breakpoint(struct gdbarch *gdbarch, struct symtab_and_line sal, struct frame_id frame_id, enum bptype type)
Definition: breakpoint.c:8545
void annotate_signal_string_end(void)
Definition: annotate.c:153
void observer_notify_no_history(void)
int value_optimized_out(struct value *value)
Definition: value.c:1424
ptid_t null_ptid
Definition: ptid.c:25
int stepping_over_watchpoint
Definition: gdbthread.h:321
static void show_follow_exec_mode_string(struct ui_file *file, int from_tty, struct cmd_list_element *c, const char *value)
Definition: infrun.c:1069
static int follow_fork_inferior(int follow_child, int detach_fork)
Definition: infrun.c:418
#define target_has_stack
Definition: target.h:1735
void target_commit_resume(void)
Definition: target.c:2234
stop_kind
Definition: inferior.h:253
struct return_value_info * thread_fsm_return_value(struct thread_fsm *self)
Definition: thread-fsm.c:66
static unsigned char * signal_catch
Definition: infrun.c:314
static void show_step_stop_if_no_debug(struct ui_file *file, int from_tty, struct cmd_list_element *c, const char *value)
Definition: infrun.c:137
#define ALL_NON_EXITED_THREADS(T)
Definition: gdbthread.h:490
char * name
Definition: gdbthread.h:265
struct cleanup * make_bpstat_clear_actions_cleanup(void)
Definition: utils.c:3168
void set_resumed(ptid_t ptid, int resumed)
Definition: thread.c:875
int may_insert_breakpoints
void proceed(CORE_ADDR addr, enum gdb_signal siggnal)
Definition: infrun.c:2977
#define gdb_stderr
Definition: utils.h:344
static void set_disable_randomization(const char *args, int from_tty, struct cmd_list_element *c)
Definition: infrun.c:193
#define XCNEW(T)
Definition: poison.h:121
pid_t pid
Definition: gnu-nat.c:187
static const char follow_exec_mode_new[]
Definition: infrun.c:1058
void update_thread_list(void)
Definition: thread.c:2000
const char * async_reason_lookup(enum async_reply_reason reason)
Definition: mi-common.c:49
void prepare_for_detach(void)
Definition: infrun.c:3627
void ui_register_input_event_handler(struct ui *ui)
Definition: event-top.c:520
#define SYMBOL_BLOCK_VALUE(symbol)
Definition: symtab.h:467
static int currently_stepping(struct thread_info *tp)
Definition: infrun.c:7264
void set_step_info(struct frame_info *frame, struct symtab_and_line sal)
Definition: infrun.c:4000
void clear_proceed_status(int step)
Definition: infrun.c:2860
thread_control_state control
Definition: gdbthread.h:291
const char * c_str() const
Definition: ui-file.h:137
enum target_waitkind kind
Definition: waitstatus.h:106
static struct displaced_step_inferior_state * displaced_step_inferior_states
Definition: infrun.c:1516
void delete_exception_resume_breakpoint(struct thread_info *)
Definition: thread.c:117
int target_read_memory(CORE_ADDR memaddr, gdb_byte *myaddr, ssize_t len)
Definition: target.c:1370
int gdbarch_get_siginfo_type_p(struct gdbarch *gdbarch)
Definition: gdbarch.c:4216
void breakpoint_init_inferior(enum inf_context context)
Definition: breakpoint.c:3872
CORE_ADDR regcache_read_pc(struct regcache *regcache)
Definition: regcache.c:1229
ptid_t inferior_ptid
Definition: infcmd.c:94
static const struct internalvar_funcs siginfo_funcs
Definition: infrun.c:9144
static void set_step_over_info(const address_space *aspace, CORE_ADDR address, int nonsteppable_watchpoint_p, int thread)
Definition: infrun.c:1327
static void info_signals_command(const char *signum_exp, int from_tty)
Definition: infrun.c:8680
char * safe_strerror(int)
void set_internalvar_integer(struct internalvar *var, LONGEST l)
Definition: value.c:2442
void observer_notify_signal_received(enum gdb_signal siggnal)
static struct displaced_step_inferior_state * add_displaced_stepping_state(int pid)
Definition: infrun.c:1585
static void show_can_use_displaced_stepping(struct ui_file *file, int from_tty, struct cmd_list_element *c, const char *value)
Definition: infrun.c:1663
int remove_breakpoints(void)
Definition: breakpoint.c:3038
void solib_create_inferior_hook(int from_tty)
Definition: solib.c:1228
const char * target_pid_to_str(ptid_t ptid)
Definition: target.c:2194
struct program_space * pspace
Definition: symtab.h:1749
int hardware_breakpoint_inserted_here_p(const address_space *aspace, CORE_ADDR pc)
Definition: breakpoint.c:4136
void add_setshow_boolean_cmd(const char *name, enum command_class theclass, int *var, const char *set_doc, const char *show_doc, const char *help_doc, cmd_const_sfunc_ftype *set_func, show_value_ftype *show_func, struct cmd_list_element **set_list, struct cmd_list_element **show_list)
Definition: cli-decode.c:569
void set_current_traceframe(int num)
Definition: tracepoint.c:2991
int pc_at_non_inline_function(const address_space *aspace, CORE_ADDR pc, const struct target_waitstatus *ws)
Definition: breakpoint.c:15379
static int infrun_is_async
Definition: infrun.c:101
int may_write_memory
static void sig_print_info(enum gdb_signal)
Definition: infrun.c:8448
char * exec_file_find(const char *in_pathname, int *fd)
Definition: solib.c:382
void observer_notify_exited(int exitstatus)
int bpstat_explains_signal(bpstat bsp, enum gdb_signal sig)
Definition: breakpoint.c:4294
int may_write_registers
static void handle_vfork_child_exec_or_exit(int exec)
Definition: infrun.c:904
gdbarch * arch() const
Definition: regcache.c:221
enum language compunit_language(const struct compunit_symtab *cust)
Definition: symtab.c:303
CORE_ADDR stop_pc
Definition: infcmd.c:98
void try_open_exec_file(const char *exec_file_host, struct inferior *inf, symfile_add_flags add_flags)
Definition: exec.c:133
struct address_space * new_address_space(void)
Definition: progspace.c:57
CORE_ADDR stop_pc
Definition: infrun.c:8811
struct regcache * get_thread_arch_aspace_regcache(ptid_t ptid, struct gdbarch *gdbarch, struct address_space *aspace)
Definition: regcache.c:407
int gdbarch_adjust_breakpoint_address_p(struct gdbarch *gdbarch)
Definition: gdbarch.c:2912
static void do_target_resume(ptid_t resume_ptid, int step, enum gdb_signal sig)
Definition: infrun.c:2314
void clear_internalvar(struct internalvar *var)
Definition: value.c:2475
CORE_ADDR pc
Definition: symtab.h:1759
void switch_to_thread_no_regs(struct thread_info *thread)
Definition: thread.c:1396
const char * gdb_signal_to_symbol_string(enum gdb_signal sig)
Definition: signals.c:59
struct bpstat_what bpstat_what(bpstat bs_head)
Definition: breakpoint.c:5563
struct bound_probe find_probe_by_pc(CORE_ADDR pc)
Definition: probe.c:247
struct breakpoint * single_step_breakpoints
Definition: gdbthread.h:65
void value_free_to_mark(const struct value *mark)
Definition: value.c:1641
struct inferior * add_inferior_with_spaces(void)
Definition: inferior.c:763
void exit_inferior_num_silent(int num)
Definition: inferior.c:249
int normal_stop(void)
Definition: infrun.c:8167
int ptid_equal(const ptid_t &ptid1, const ptid_t &ptid2)
Definition: ptid.c:71
static void stop_waiting(struct execution_control_state *ecs)
Definition: infrun.c:7650
struct inferior * current_inferior(void)
Definition: inferior.c:58
struct cmd_list_element * add_info_alias(const char *name, const char *oldname, int abbrev_flag)
Definition: cli-decode.c:894
static int stepped_in_from(struct frame_info *frame, struct frame_id step_frame_id)
Definition: infrun.c:4213
static void show_debug_displaced(struct ui_file *file, int from_tty, struct cmd_list_element *c, const char *value)
Definition: infrun.c:158
int is_exited(ptid_t ptid)
Definition: thread.c:969
int breakpoints_should_be_inserted_now(void)
Definition: breakpoint.c:391
auto_boolean
Definition: defs.h:237
static int displaced_step_in_progress_any_inferior(void)
Definition: infrun.c:1538
static void insert_step_resume_breakpoint_at_caller(struct frame_info *)
Definition: infrun.c:7460
static void show_non_stop(struct ui_file *file, int from_tty, struct cmd_list_element *c, const char *value)
Definition: infrun.c:221
struct program_space * current_program_space
Definition: progspace.c:35
static void set_non_stop(const char *args, int from_tty, struct cmd_list_element *c)
Definition: infrun.c:208
int ptid_match(const ptid_t &ptid, const ptid_t &filter)
Definition: ptid.c:103
static bool handle_stop_requested(struct execution_control_state *ecs)
Definition: infrun.c:4233
void delete_single_step_breakpoints(struct thread_info *tp)
Definition: thread.c:126
unsigned long long ULONGEST
Definition: common-types.h:53
static const char follow_fork_mode_child[]
Definition: infrun.c:390
void gdbarch_displaced_step_fixup(struct gdbarch *gdbarch, struct displaced_step_closure *closure, CORE_ADDR from, CORE_ADDR to, struct regcache *regs)
Definition: gdbarch.c:3971
static int ignore(struct target_ops *ops, struct gdbarch *gdbarch, struct bp_target_info *bp_tgt)
Definition: corelow.c:879
const struct frame_id outer_frame_id
Definition: frame.c:577
#define SYMBOL_SEARCH_NAME(symbol)
Definition: symtab.h:551
void print_return_value(struct ui_out *uiout, struct return_value_info *rv)
Definition: infcmd.c:1715
void clear_async_event_handler(async_event_handler *async_handler_ptr)
Definition: event-loop.c:1044
void validate_registers_access(void)
Definition: thread.c:1101
void thread_step_over_chain_remove(struct thread_info *tp)
Definition: thread.c:434
static int observer_mode_1
Definition: infrun.c:234
void update_breakpoints_after_exec(void)
Definition: breakpoint.c:3523
void all_uis_on_sync_execution_starting(void)
Definition: infrun.c:3842
#define gdb_stdlog
Definition: utils.h:349
int thread_is_stepping_over_breakpoint(int thread)
Definition: infrun.c:1367
struct type * value_type(const struct value *value)
Definition: value.c:1095
int watchpoints_triggered(struct target_waitstatus *ws)
Definition: breakpoint.c:4762
void update_solib_breakpoints(void)
Definition: solib.c:1275
#define RESUME_ALL
Definition: infrun.c:348
const char * gdb_signal_to_string(enum gdb_signal)
Definition: signals.c:68
static unsigned char * signal_print
Definition: infrun.c:307
static void write_memory_ptid(ptid_t ptid, CORE_ADDR memaddr, const gdb_byte *myaddr, int len)
Definition: infrun.c:1930
inferior_control_state control
Definition: inferior.h:337
unsigned int debug_infrun
Definition: infrun.c:164
LONGEST target_read(struct target_ops *ops, enum target_object object, const char *annex, gdb_byte *buf, ULONGEST offset, LONGEST len)
Definition: target.c:1562
CORE_ADDR gdbarch_skip_trampoline_code(struct gdbarch *gdbarch, struct frame_info *frame, CORE_ADDR pc)
Definition: gdbarch.c:3306
static void show_scheduler_mode(struct ui_file *file, int from_tty, struct cmd_list_element *c, const char *value)
Definition: infrun.c:2207
static int displaced_step_prepare_throw(ptid_t ptid)
Definition: infrun.c:1749
struct cmd_list_element * showdebuglist
Definition: cli-cmds.c:155
int target_follow_fork(int follow_child, int detach_fork)
Definition: target.c:2276
int stopped_by_random_signal
Definition: infrun.c:8942
void annotate_signal_string(void)
Definition: annotate.c:146
static const char exec_forward[]
Definition: infrun.c:9089
CORE_ADDR value_as_address(struct value *val)
Definition: value.c:2762
int signal_print_update(int signo, int state)
Definition: infrun.c:8407
static int follow_fork(void)
Definition: infrun.c:656
int gdbarch_skip_entrypoint_p(struct gdbarch *gdbarch)
Definition: gdbarch.c:2803
void wait_for_inferior(void)
Definition: infrun.c:3700
struct target_waitstatus waitstatus
Definition: gdbthread.h:165
CORE_ADDR gdbarch_displaced_step_location(struct gdbarch *gdbarch)
Definition: gdbarch.c:3989
breakpoint_up set_momentary_breakpoint_at_pc(struct gdbarch *gdbarch, CORE_ADDR pc, enum bptype type)
Definition: breakpoint.c:8621
inferior * vfork_parent
Definition: inferior.h:379
enum step_over_calls_kind step_over_calls
Definition: gdbthread.h:132
void breakpoint_retire_moribund(void)
Definition: breakpoint.c:12195
#define TYPE_LENGTH(thistype)
Definition: gdbtypes.h:1235
scoped_restore_current_program_space m_pspace
Definition: infrun.c:896
struct breakpoint * step_resume_breakpoint
Definition: gdbthread.h:55
enum stop_stack_kind stop_stack_dummy
Definition: infcmd.c:102
CORE_ADDR gdbarch_skip_entrypoint(struct gdbarch *gdbarch, CORE_ADDR ip)
Definition: gdbarch.c:2810
static void disable_thread_events(void *arg)
Definition: infrun.c:4460
int signal_stop_update(int signo, int state)
Definition: infrun.c:8397
CORE_ADDR skip_language_trampoline(struct frame_info *frame, CORE_ADDR pc)
Definition: language.c:599
void * arg
Definition: cleanups.c:43
static int handle_no_resumed(struct execution_control_state *ecs)
Definition: infrun.c:4681
static enum stop_kind get_inferior_stop_soon(ptid_t ptid)
Definition: infrun.c:4319
void reinit_frame_cache(void)
Definition: frame.c:1809
#define target_have_steppable_watchpoint
Definition: target.h:1896
int remove_breakpoints_pid(int pid)
Definition: breakpoint.c:3078
const address_space * aspace
Definition: infrun.c:1284
static void follow_exec(ptid_t ptid, char *exec_file_target)
Definition: infrun.c:1078
static int detach_fork
Definition: infrun.c:154
void gdb_flush(struct ui_file *file)
Definition: ui-file.c:93
ptid_t ptid() const
Definition: regcache.h:325
static const char * follow_exec_mode_string
Definition: infrun.c:1067
static unsigned char * signal_pass
Definition: infrun.c:319
static void show_debug_infrun(struct ui_file *file, int from_tty, struct cmd_list_element *c, const char *value)
Definition: infrun.c:166
static int displaced_step_in_progress(int pid)
Definition: infrun.c:1569
#define QUIT
Definition: defs.h:179
int is_running(ptid_t ptid)
Definition: thread.c:975
static void handle_completer(struct cmd_list_element *ignore, completion_tracker &tracker, const char *text, const char *word)
Definition: infrun.c:8643
void write_memory(CORE_ADDR memaddr, const bfd_byte *myaddr, ssize_t len)
Definition: corefile.c:394
struct cmd_list_element * add_com(const char *name, enum command_class theclass, cmd_const_cfunc_ftype *fun, const char *doc)
Definition: cli-decode.c:902
static void do_restore_infcall_control_state_cleanup(void *sts)
Definition: infrun.c:9045
static const char * follow_fork_mode_string
Definition: infrun.c:399
void target_find_description(void)
static int displaced_step_fixup(ptid_t event_ptid, enum gdb_signal signal)
Definition: infrun.c:1963
struct target_waitstatus ws
Definition: infrun.c:2030
int gdbarch_gdb_signal_to_target(struct gdbarch *gdbarch, enum gdb_signal signal)
Definition: gdbarch.c:4199
CORE_ADDR gdbarch_skip_prologue_noexcept(gdbarch *gdbarch, CORE_ADDR pc) noexcept
Definition: arch-utils.c:964
void target_follow_exec(struct inferior *inf, char *execd_pathname)
Definition: target.c:2285
struct displaced_step_closure * get_displaced_step_closure_by_addr(CORE_ADDR addr)
Definition: infrun.c:1608
static struct cmd_list_element * stop_command
Definition: infrun.c:352
void insert_step_resume_breakpoint_at_sal(struct gdbarch *gdbarch, struct symtab_and_line sr_sal, struct frame_id sr_id)
Definition: infrun.c:7412
struct type * gdbarch_get_siginfo_type(struct gdbarch *gdbarch)
Definition: gdbarch.c:4223
bool attach_flag
Definition: inferior.h:375
int has_stack_frames(void)
Definition: frame.c:1609
struct program_space * get_frame_program_space(struct frame_info *frame)
Definition: frame.c:2629
static void delete_just_stopped_threads_infrun_breakpoints_cleanup(void *arg)
Definition: infrun.c:3411
void breakpoint_re_set_thread(struct breakpoint *b)
Definition: breakpoint.c:13998
struct internalvar * create_internalvar_type_lazy(const char *name, const struct internalvar_funcs *funcs, void *data)
Definition: value.c:2177
struct thread_suspend_state thread_suspend
Definition: infrun.c:8808
void set_executing(ptid_t ptid, int executing)
Definition: thread.c:991
#define target_supports_stopped_by_hw_breakpoint()
Definition: target.h:1891
static void handle_signal_stop(struct execution_control_state *ecs)
Definition: infrun.c:5661
void error(const char *fmt,...)
Definition: errors.c:38
int return_child_result_value
Definition: main.c:88
int step_after_step_resume_breakpoint
Definition: gdbthread.h:332
ptid_t minus_one_ptid
Definition: ptid.c:26
#define ALL_BLOCK_SYMBOLS(block, iter, sym)
Definition: block.h:310
void copy_terminal_info(struct inferior *to, struct inferior *from)
Definition: inflow.c:466
struct gdbarch * get_frame_arch(struct frame_info *this_frame)
Definition: frame.c:2691
void set_current_inferior(struct inferior *inf)
Definition: inferior.c:64
void throw_error(enum errors error, const char *fmt,...)
long long LONGEST
Definition: common-types.h:52
static void sig_print_header(void)
Definition: infrun.c:8441
void do_cleanups(struct cleanup *old_chain)
Definition: cleanups.c:174
int is_executing(ptid_t ptid)
Definition: thread.c:981
void observer_notify_signal_exited(enum gdb_signal siggnal)
void setup_inferior(int from_tty)
Definition: infcmd.c:2640
CORE_ADDR step_range_end
Definition: gdbthread.h:78
bool is_mi_like_p()
Definition: ui-out.c:622
#define SYMBOL_IS_ARGUMENT(symbol)
Definition: symtab.h:1157
static int schedlock_applies(struct thread_info *tp)
Definition: infrun.c:2954
int exec_done_display_p
Definition: event-top.c:93
void field_fmt(const char *fldname, const char *format,...) ATTRIBUTE_PRINTF(3
Definition: ui-out.c:557
void step_into_inline_frame(ptid_t ptid)
Definition: inline-frame.c:356
gdb_byte * siginfo_data
Definition: infrun.c:8820
#define gdb_stdout
Definition: utils.h:340
void check_longjmp_breakpoint_for_call_dummy(struct thread_info *tp)
Definition: breakpoint.c:7392
#define ALL_THREADS_SAFE(T, TMP)
Definition: gdbthread.h:496
void mark_breakpoints_out(void)
Definition: breakpoint.c:3850
struct displaced_step_closure * step_closure
Definition: infrun.c:1504
int gdbarch_get_longjmp_target_p(struct gdbarch *gdbarch)
Definition: gdbarch.c:2555
enum bpstat_what_main_action main_action
Definition: breakpoint.h:1005
LONGEST parse_and_eval_long(const char *exp)
Definition: eval.c:111