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[deliverable/binutils-gdb.git] / gdb / breakpoint.c
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1/* Everything about breakpoints, for GDB.
2
3 Copyright (C) 1986, 1987, 1988, 1989, 1990, 1991, 1992, 1993, 1994, 1995,
4 1996, 1997, 1998, 1999, 2000, 2001, 2002, 2003, 2004, 2005, 2006, 2007,
5 2008, 2009 Free Software Foundation, Inc.
6
7 This file is part of GDB.
8
9 This program is free software; you can redistribute it and/or modify
10 it under the terms of the GNU General Public License as published by
11 the Free Software Foundation; either version 3 of the License, or
12 (at your option) any later version.
13
14 This program is distributed in the hope that it will be useful,
15 but WITHOUT ANY WARRANTY; without even the implied warranty of
16 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 GNU General Public License for more details.
18
19 You should have received a copy of the GNU General Public License
20 along with this program. If not, see <http://www.gnu.org/licenses/>. */
21
22#include "defs.h"
23#include <ctype.h>
24#include "hashtab.h"
25#include "symtab.h"
26#include "frame.h"
27#include "breakpoint.h"
28#include "gdbtypes.h"
29#include "expression.h"
30#include "gdbcore.h"
31#include "gdbcmd.h"
32#include "value.h"
33#include "command.h"
34#include "inferior.h"
35#include "gdbthread.h"
36#include "target.h"
37#include "language.h"
38#include "gdb_string.h"
39#include "demangle.h"
40#include "annotate.h"
41#include "symfile.h"
42#include "objfiles.h"
43#include "source.h"
44#include "linespec.h"
45#include "completer.h"
46#include "gdb.h"
47#include "ui-out.h"
48#include "cli/cli-script.h"
49#include "gdb_assert.h"
50#include "block.h"
51#include "solib.h"
52#include "solist.h"
53#include "observer.h"
54#include "exceptions.h"
55#include "memattr.h"
56#include "ada-lang.h"
57#include "top.h"
58#include "wrapper.h"
59#include "valprint.h"
60
61#include "mi/mi-common.h"
62
63/* Arguments to pass as context to some catch command handlers. */
64#define CATCH_PERMANENT ((void *) (uintptr_t) 0)
65#define CATCH_TEMPORARY ((void *) (uintptr_t) 1)
66
67/* Prototypes for local functions. */
68
69static void enable_delete_command (char *, int);
70
71static void enable_delete_breakpoint (struct breakpoint *);
72
73static void enable_once_command (char *, int);
74
75static void enable_once_breakpoint (struct breakpoint *);
76
77static void disable_command (char *, int);
78
79static void enable_command (char *, int);
80
81static void map_breakpoint_numbers (char *, void (*)(struct breakpoint *));
82
83static void ignore_command (char *, int);
84
85static int breakpoint_re_set_one (void *);
86
87static void clear_command (char *, int);
88
89static void catch_command (char *, int);
90
91static void watch_command (char *, int);
92
93static int can_use_hardware_watchpoint (struct value *);
94
95static void break_command_1 (char *, int, int);
96
97static void mention (struct breakpoint *);
98
99struct breakpoint *set_raw_breakpoint (struct symtab_and_line, enum bptype);
100
101static void check_duplicates (struct breakpoint *);
102
103static void breakpoint_adjustment_warning (CORE_ADDR, CORE_ADDR, int, int);
104
105static CORE_ADDR adjust_breakpoint_address (CORE_ADDR bpaddr,
106 enum bptype bptype);
107
108static void describe_other_breakpoints (CORE_ADDR, struct obj_section *, int);
109
110static void breakpoints_info (char *, int);
111
112static void breakpoint_1 (int, int);
113
114static bpstat bpstat_alloc (const struct bp_location *, bpstat);
115
116static int breakpoint_cond_eval (void *);
117
118static void cleanup_executing_breakpoints (void *);
119
120static void commands_command (char *, int);
121
122static void condition_command (char *, int);
123
124static int get_number_trailer (char **, int);
125
126void set_breakpoint_count (int);
127
128typedef enum
129 {
130 mark_inserted,
131 mark_uninserted
132 }
133insertion_state_t;
134
135static int remove_breakpoint (struct bp_location *, insertion_state_t);
136
137static enum print_stop_action print_it_typical (bpstat);
138
139static enum print_stop_action print_bp_stop_message (bpstat bs);
140
141static int watchpoint_check (void *);
142
143static void maintenance_info_breakpoints (char *, int);
144
145static void create_overlay_event_breakpoint (char *);
146
147static int hw_breakpoint_used_count (void);
148
149static int hw_watchpoint_used_count (enum bptype, int *);
150
151static void hbreak_command (char *, int);
152
153static void thbreak_command (char *, int);
154
155static void watch_command_1 (char *, int, int);
156
157static void rwatch_command (char *, int);
158
159static void awatch_command (char *, int);
160
161static void do_enable_breakpoint (struct breakpoint *, enum bpdisp);
162
163static void stop_command (char *arg, int from_tty);
164
165static void stopin_command (char *arg, int from_tty);
166
167static void stopat_command (char *arg, int from_tty);
168
169static char *ep_parse_optional_if_clause (char **arg);
170
171static char *ep_parse_optional_filename (char **arg);
172
173static void catch_exception_command_1 (enum exception_event_kind ex_event,
174 char *arg, int tempflag, int from_tty);
175
176static void tcatch_command (char *arg, int from_tty);
177
178static void ep_skip_leading_whitespace (char **s);
179
180static int single_step_breakpoint_inserted_here_p (CORE_ADDR pc);
181
182static void free_bp_location (struct bp_location *loc);
183
184static struct bp_location *allocate_bp_location (struct breakpoint *bpt);
185
186static void update_global_location_list (int);
187
188static void update_global_location_list_nothrow (int);
189
190static int is_hardware_watchpoint (struct breakpoint *bpt);
191
192static void insert_breakpoint_locations (void);
193
194static const char *
195bpdisp_text (enum bpdisp disp)
196{
197 /* NOTE: the following values are a part of MI protocol and represent
198 values of 'disp' field returned when inferior stops at a breakpoint. */
199 static char *bpdisps[] = {"del", "dstp", "dis", "keep"};
200 return bpdisps[(int) disp];
201}
202
203/* Prototypes for exported functions. */
204/* If FALSE, gdb will not use hardware support for watchpoints, even
205 if such is available. */
206static int can_use_hw_watchpoints;
207
208static void
209show_can_use_hw_watchpoints (struct ui_file *file, int from_tty,
210 struct cmd_list_element *c,
211 const char *value)
212{
213 fprintf_filtered (file, _("\
214Debugger's willingness to use watchpoint hardware is %s.\n"),
215 value);
216}
217
218/* If AUTO_BOOLEAN_FALSE, gdb will not attempt to create pending breakpoints.
219 If AUTO_BOOLEAN_TRUE, gdb will automatically create pending breakpoints
220 for unrecognized breakpoint locations.
221 If AUTO_BOOLEAN_AUTO, gdb will query when breakpoints are unrecognized. */
222static enum auto_boolean pending_break_support;
223static void
224show_pending_break_support (struct ui_file *file, int from_tty,
225 struct cmd_list_element *c,
226 const char *value)
227{
228 fprintf_filtered (file, _("\
229Debugger's behavior regarding pending breakpoints is %s.\n"),
230 value);
231}
232
233/* If 1, gdb will automatically use hardware breakpoints for breakpoints
234 set with "break" but falling in read-only memory.
235 If 0, gdb will warn about such breakpoints, but won't automatically
236 use hardware breakpoints. */
237static int automatic_hardware_breakpoints;
238static void
239show_automatic_hardware_breakpoints (struct ui_file *file, int from_tty,
240 struct cmd_list_element *c,
241 const char *value)
242{
243 fprintf_filtered (file, _("\
244Automatic usage of hardware breakpoints is %s.\n"),
245 value);
246}
247
248/* If on, gdb will keep breakpoints inserted even as inferior is
249 stopped, and immediately insert any new breakpoints. If off, gdb
250 will insert breakpoints into inferior only when resuming it, and
251 will remove breakpoints upon stop. If auto, GDB will behave as ON
252 if in non-stop mode, and as OFF if all-stop mode.*/
253
254static const char always_inserted_auto[] = "auto";
255static const char always_inserted_on[] = "on";
256static const char always_inserted_off[] = "off";
257static const char *always_inserted_enums[] = {
258 always_inserted_auto,
259 always_inserted_off,
260 always_inserted_on,
261 NULL
262};
263static const char *always_inserted_mode = always_inserted_auto;
264static void
265show_always_inserted_mode (struct ui_file *file, int from_tty,
266 struct cmd_list_element *c, const char *value)
267{
268 if (always_inserted_mode == always_inserted_auto)
269 fprintf_filtered (file, _("\
270Always inserted breakpoint mode is %s (currently %s).\n"),
271 value,
272 breakpoints_always_inserted_mode () ? "on" : "off");
273 else
274 fprintf_filtered (file, _("Always inserted breakpoint mode is %s.\n"), value);
275}
276
277int
278breakpoints_always_inserted_mode (void)
279{
280 return (always_inserted_mode == always_inserted_on
281 || (always_inserted_mode == always_inserted_auto && non_stop));
282}
283
284void _initialize_breakpoint (void);
285
286/* Are we executing breakpoint commands? */
287static int executing_breakpoint_commands;
288
289/* Are overlay event breakpoints enabled? */
290static int overlay_events_enabled;
291
292/* Walk the following statement or block through all breakpoints.
293 ALL_BREAKPOINTS_SAFE does so even if the statment deletes the current
294 breakpoint. */
295
296#define ALL_BREAKPOINTS(B) for (B = breakpoint_chain; B; B = B->next)
297
298#define ALL_BREAKPOINTS_SAFE(B,TMP) \
299 for (B = breakpoint_chain; \
300 B ? (TMP=B->next, 1): 0; \
301 B = TMP)
302
303/* Similar iterators for the low-level breakpoints. */
304
305#define ALL_BP_LOCATIONS(B) for (B = bp_location_chain; B; B = B->global_next)
306
307#define ALL_BP_LOCATIONS_SAFE(B,TMP) \
308 for (B = bp_location_chain; \
309 B ? (TMP=B->global_next, 1): 0; \
310 B = TMP)
311
312/* Chains of all breakpoints defined. */
313
314struct breakpoint *breakpoint_chain;
315
316struct bp_location *bp_location_chain;
317
318/* The locations that no longer correspond to any breakpoint,
319 unlinked from bp_location_chain, but for which a hit
320 may still be reported by a target. */
321VEC(bp_location_p) *moribund_locations = NULL;
322
323/* Number of last breakpoint made. */
324
325int breakpoint_count;
326
327/* Return whether a breakpoint is an active enabled breakpoint. */
328static int
329breakpoint_enabled (struct breakpoint *b)
330{
331 return (b->enable_state == bp_enabled);
332}
333
334/* Set breakpoint count to NUM. */
335
336void
337set_breakpoint_count (int num)
338{
339 breakpoint_count = num;
340 set_internalvar (lookup_internalvar ("bpnum"),
341 value_from_longest (builtin_type_int32, (LONGEST) num));
342}
343
344/* Used in run_command to zero the hit count when a new run starts. */
345
346void
347clear_breakpoint_hit_counts (void)
348{
349 struct breakpoint *b;
350
351 ALL_BREAKPOINTS (b)
352 b->hit_count = 0;
353}
354
355/* Default address, symtab and line to put a breakpoint at
356 for "break" command with no arg.
357 if default_breakpoint_valid is zero, the other three are
358 not valid, and "break" with no arg is an error.
359
360 This set by print_stack_frame, which calls set_default_breakpoint. */
361
362int default_breakpoint_valid;
363CORE_ADDR default_breakpoint_address;
364struct symtab *default_breakpoint_symtab;
365int default_breakpoint_line;
366\f
367/* *PP is a string denoting a breakpoint. Get the number of the breakpoint.
368 Advance *PP after the string and any trailing whitespace.
369
370 Currently the string can either be a number or "$" followed by the name
371 of a convenience variable. Making it an expression wouldn't work well
372 for map_breakpoint_numbers (e.g. "4 + 5 + 6").
373
374 If the string is a NULL pointer, that denotes the last breakpoint.
375
376 TRAILER is a character which can be found after the number; most
377 commonly this is `-'. If you don't want a trailer, use \0. */
378static int
379get_number_trailer (char **pp, int trailer)
380{
381 int retval = 0; /* default */
382 char *p = *pp;
383
384 if (p == NULL)
385 /* Empty line means refer to the last breakpoint. */
386 return breakpoint_count;
387 else if (*p == '$')
388 {
389 /* Make a copy of the name, so we can null-terminate it
390 to pass to lookup_internalvar(). */
391 char *varname;
392 char *start = ++p;
393 struct value *val;
394
395 while (isalnum (*p) || *p == '_')
396 p++;
397 varname = (char *) alloca (p - start + 1);
398 strncpy (varname, start, p - start);
399 varname[p - start] = '\0';
400 val = value_of_internalvar (lookup_internalvar (varname));
401 if (TYPE_CODE (value_type (val)) == TYPE_CODE_INT)
402 retval = (int) value_as_long (val);
403 else
404 {
405 printf_filtered (_("Convenience variable must have integer value.\n"));
406 retval = 0;
407 }
408 }
409 else
410 {
411 if (*p == '-')
412 ++p;
413 while (*p >= '0' && *p <= '9')
414 ++p;
415 if (p == *pp)
416 /* There is no number here. (e.g. "cond a == b"). */
417 {
418 /* Skip non-numeric token */
419 while (*p && !isspace((int) *p))
420 ++p;
421 /* Return zero, which caller must interpret as error. */
422 retval = 0;
423 }
424 else
425 retval = atoi (*pp);
426 }
427 if (!(isspace (*p) || *p == '\0' || *p == trailer))
428 {
429 /* Trailing junk: return 0 and let caller print error msg. */
430 while (!(isspace (*p) || *p == '\0' || *p == trailer))
431 ++p;
432 retval = 0;
433 }
434 while (isspace (*p))
435 p++;
436 *pp = p;
437 return retval;
438}
439
440
441/* Like get_number_trailer, but don't allow a trailer. */
442int
443get_number (char **pp)
444{
445 return get_number_trailer (pp, '\0');
446}
447
448/* Parse a number or a range.
449 * A number will be of the form handled by get_number.
450 * A range will be of the form <number1> - <number2>, and
451 * will represent all the integers between number1 and number2,
452 * inclusive.
453 *
454 * While processing a range, this fuction is called iteratively;
455 * At each call it will return the next value in the range.
456 *
457 * At the beginning of parsing a range, the char pointer PP will
458 * be advanced past <number1> and left pointing at the '-' token.
459 * Subsequent calls will not advance the pointer until the range
460 * is completed. The call that completes the range will advance
461 * pointer PP past <number2>.
462 */
463
464int
465get_number_or_range (char **pp)
466{
467 static int last_retval, end_value;
468 static char *end_ptr;
469 static int in_range = 0;
470
471 if (**pp != '-')
472 {
473 /* Default case: pp is pointing either to a solo number,
474 or to the first number of a range. */
475 last_retval = get_number_trailer (pp, '-');
476 if (**pp == '-')
477 {
478 char **temp;
479
480 /* This is the start of a range (<number1> - <number2>).
481 Skip the '-', parse and remember the second number,
482 and also remember the end of the final token. */
483
484 temp = &end_ptr;
485 end_ptr = *pp + 1;
486 while (isspace ((int) *end_ptr))
487 end_ptr++; /* skip white space */
488 end_value = get_number (temp);
489 if (end_value < last_retval)
490 {
491 error (_("inverted range"));
492 }
493 else if (end_value == last_retval)
494 {
495 /* degenerate range (number1 == number2). Advance the
496 token pointer so that the range will be treated as a
497 single number. */
498 *pp = end_ptr;
499 }
500 else
501 in_range = 1;
502 }
503 }
504 else if (! in_range)
505 error (_("negative value"));
506 else
507 {
508 /* pp points to the '-' that betokens a range. All
509 number-parsing has already been done. Return the next
510 integer value (one greater than the saved previous value).
511 Do not advance the token pointer 'pp' until the end of range
512 is reached. */
513
514 if (++last_retval == end_value)
515 {
516 /* End of range reached; advance token pointer. */
517 *pp = end_ptr;
518 in_range = 0;
519 }
520 }
521 return last_retval;
522}
523
524
525\f
526/* condition N EXP -- set break condition of breakpoint N to EXP. */
527
528static void
529condition_command (char *arg, int from_tty)
530{
531 struct breakpoint *b;
532 char *p;
533 int bnum;
534
535 if (arg == 0)
536 error_no_arg (_("breakpoint number"));
537
538 p = arg;
539 bnum = get_number (&p);
540 if (bnum == 0)
541 error (_("Bad breakpoint argument: '%s'"), arg);
542
543 ALL_BREAKPOINTS (b)
544 if (b->number == bnum)
545 {
546 struct bp_location *loc = b->loc;
547 for (; loc; loc = loc->next)
548 {
549 if (loc->cond)
550 {
551 xfree (loc->cond);
552 loc->cond = 0;
553 }
554 }
555 if (b->cond_string != NULL)
556 xfree (b->cond_string);
557
558 if (*p == 0)
559 {
560 b->cond_string = NULL;
561 if (from_tty)
562 printf_filtered (_("Breakpoint %d now unconditional.\n"), bnum);
563 }
564 else
565 {
566 arg = p;
567 /* I don't know if it matters whether this is the string the user
568 typed in or the decompiled expression. */
569 b->cond_string = savestring (arg, strlen (arg));
570 b->condition_not_parsed = 0;
571 for (loc = b->loc; loc; loc = loc->next)
572 {
573 arg = p;
574 loc->cond =
575 parse_exp_1 (&arg, block_for_pc (loc->address), 0);
576 if (*arg)
577 error (_("Junk at end of expression"));
578 }
579 }
580 breakpoints_changed ();
581 observer_notify_breakpoint_modified (b->number);
582 return;
583 }
584
585 error (_("No breakpoint number %d."), bnum);
586}
587
588static void
589commands_command (char *arg, int from_tty)
590{
591 struct breakpoint *b;
592 char *p;
593 int bnum;
594 struct command_line *l;
595
596 /* If we allowed this, we would have problems with when to
597 free the storage, if we change the commands currently
598 being read from. */
599
600 if (executing_breakpoint_commands)
601 error (_("Can't use the \"commands\" command among a breakpoint's commands."));
602
603 p = arg;
604 bnum = get_number (&p);
605
606 if (p && *p)
607 error (_("Unexpected extra arguments following breakpoint number."));
608
609 ALL_BREAKPOINTS (b)
610 if (b->number == bnum)
611 {
612 char *tmpbuf = xstrprintf ("Type commands for when breakpoint %d is hit, one per line.",
613 bnum);
614 struct cleanup *cleanups = make_cleanup (xfree, tmpbuf);
615 l = read_command_lines (tmpbuf, from_tty, 1);
616 do_cleanups (cleanups);
617 free_command_lines (&b->commands);
618 b->commands = l;
619 breakpoints_changed ();
620 observer_notify_breakpoint_modified (b->number);
621 return;
622 }
623 error (_("No breakpoint number %d."), bnum);
624}
625
626/* Like commands_command, but instead of reading the commands from
627 input stream, takes them from an already parsed command structure.
628
629 This is used by cli-script.c to DTRT with breakpoint commands
630 that are part of if and while bodies. */
631enum command_control_type
632commands_from_control_command (char *arg, struct command_line *cmd)
633{
634 struct breakpoint *b;
635 char *p;
636 int bnum;
637
638 /* If we allowed this, we would have problems with when to
639 free the storage, if we change the commands currently
640 being read from. */
641
642 if (executing_breakpoint_commands)
643 error (_("Can't use the \"commands\" command among a breakpoint's commands."));
644
645 /* An empty string for the breakpoint number means the last
646 breakpoint, but get_number expects a NULL pointer. */
647 if (arg && !*arg)
648 p = NULL;
649 else
650 p = arg;
651 bnum = get_number (&p);
652
653 if (p && *p)
654 error (_("Unexpected extra arguments following breakpoint number."));
655
656 ALL_BREAKPOINTS (b)
657 if (b->number == bnum)
658 {
659 free_command_lines (&b->commands);
660 if (cmd->body_count != 1)
661 error (_("Invalid \"commands\" block structure."));
662 /* We need to copy the commands because if/while will free the
663 list after it finishes execution. */
664 b->commands = copy_command_lines (cmd->body_list[0]);
665 breakpoints_changed ();
666 observer_notify_breakpoint_modified (b->number);
667 return simple_control;
668 }
669 error (_("No breakpoint number %d."), bnum);
670}
671\f
672/* Update BUF, which is LEN bytes read from the target address MEMADDR,
673 by replacing any memory breakpoints with their shadowed contents. */
674
675void
676breakpoint_restore_shadows (gdb_byte *buf, ULONGEST memaddr, LONGEST len)
677{
678 struct bp_location *b;
679 CORE_ADDR bp_addr = 0;
680 int bp_size = 0;
681 int bptoffset = 0;
682
683 ALL_BP_LOCATIONS (b)
684 {
685 if (b->owner->type == bp_none)
686 warning (_("reading through apparently deleted breakpoint #%d?"),
687 b->owner->number);
688
689 if (b->loc_type != bp_loc_software_breakpoint)
690 continue;
691 if (!b->inserted)
692 continue;
693 /* Addresses and length of the part of the breakpoint that
694 we need to copy. */
695 bp_addr = b->target_info.placed_address;
696 bp_size = b->target_info.shadow_len;
697 if (bp_size == 0)
698 /* bp isn't valid, or doesn't shadow memory. */
699 continue;
700
701 if (bp_addr + bp_size <= memaddr)
702 /* The breakpoint is entirely before the chunk of memory we
703 are reading. */
704 continue;
705
706 if (bp_addr >= memaddr + len)
707 /* The breakpoint is entirely after the chunk of memory we are
708 reading. */
709 continue;
710
711 /* Offset within shadow_contents. */
712 if (bp_addr < memaddr)
713 {
714 /* Only copy the second part of the breakpoint. */
715 bp_size -= memaddr - bp_addr;
716 bptoffset = memaddr - bp_addr;
717 bp_addr = memaddr;
718 }
719
720 if (bp_addr + bp_size > memaddr + len)
721 {
722 /* Only copy the first part of the breakpoint. */
723 bp_size -= (bp_addr + bp_size) - (memaddr + len);
724 }
725
726 memcpy (buf + bp_addr - memaddr,
727 b->target_info.shadow_contents + bptoffset, bp_size);
728 }
729}
730\f
731
732/* A wrapper function for inserting catchpoints. */
733static void
734insert_catchpoint (struct ui_out *uo, void *args)
735{
736 struct breakpoint *b = (struct breakpoint *) args;
737 int val = -1;
738
739 gdb_assert (b->type == bp_catchpoint);
740 gdb_assert (b->ops != NULL && b->ops->insert != NULL);
741
742 b->ops->insert (b);
743}
744
745static int
746is_hardware_watchpoint (struct breakpoint *bpt)
747{
748 return (bpt->type == bp_hardware_watchpoint
749 || bpt->type == bp_read_watchpoint
750 || bpt->type == bp_access_watchpoint);
751}
752
753/* Find the current value of a watchpoint on EXP. Return the value in
754 *VALP and *RESULTP and the chain of intermediate and final values
755 in *VAL_CHAIN. RESULTP and VAL_CHAIN may be NULL if the caller does
756 not need them.
757
758 If a memory error occurs while evaluating the expression, *RESULTP will
759 be set to NULL. *RESULTP may be a lazy value, if the result could
760 not be read from memory. It is used to determine whether a value
761 is user-specified (we should watch the whole value) or intermediate
762 (we should watch only the bit used to locate the final value).
763
764 If the final value, or any intermediate value, could not be read
765 from memory, *VALP will be set to NULL. *VAL_CHAIN will still be
766 set to any referenced values. *VALP will never be a lazy value.
767 This is the value which we store in struct breakpoint.
768
769 If VAL_CHAIN is non-NULL, *VAL_CHAIN will be released from the
770 value chain. The caller must free the values individually. If
771 VAL_CHAIN is NULL, all generated values will be left on the value
772 chain. */
773
774static void
775fetch_watchpoint_value (struct expression *exp, struct value **valp,
776 struct value **resultp, struct value **val_chain)
777{
778 struct value *mark, *new_mark, *result;
779 volatile struct gdb_exception ex;
780
781 *valp = NULL;
782 if (resultp)
783 *resultp = NULL;
784 if (val_chain)
785 *val_chain = NULL;
786
787 /* Evaluate the expression. */
788 mark = value_mark ();
789 result = NULL;
790
791 TRY_CATCH (ex, RETURN_MASK_ALL)
792 {
793 result = evaluate_expression (exp);
794 }
795 if (ex.reason < 0)
796 {
797 /* Ignore memory errors, we want watchpoints pointing at
798 inaccessible memory to still be created; otherwise, throw the
799 error to some higher catcher. */
800 switch (ex.error)
801 {
802 case MEMORY_ERROR:
803 break;
804 default:
805 throw_exception (ex);
806 break;
807 }
808 }
809
810 new_mark = value_mark ();
811 if (mark == new_mark)
812 return;
813 if (resultp)
814 *resultp = result;
815
816 /* Make sure it's not lazy, so that after the target stops again we
817 have a non-lazy previous value to compare with. */
818 if (result != NULL
819 && (!value_lazy (result) || gdb_value_fetch_lazy (result)))
820 *valp = result;
821
822 if (val_chain)
823 {
824 /* Return the chain of intermediate values. We use this to
825 decide which addresses to watch. */
826 *val_chain = new_mark;
827 value_release_to_mark (mark);
828 }
829}
830
831/* Assuming that B is a watchpoint:
832 - Reparse watchpoint expression, if REPARSE is non-zero
833 - Evaluate expression and store the result in B->val
834 - Evaluate the condition if there is one, and store the result
835 in b->loc->cond.
836 - Update the list of values that must be watched in B->loc.
837
838 If the watchpoint disposition is disp_del_at_next_stop, then do nothing.
839 If this is local watchpoint that is out of scope, delete it. */
840static void
841update_watchpoint (struct breakpoint *b, int reparse)
842{
843 int within_current_scope;
844 struct frame_id saved_frame_id;
845 struct bp_location *loc;
846 bpstat bs;
847
848 /* We don't free locations. They are stored in bp_location_chain and
849 update_global_locations will eventually delete them and remove
850 breakpoints if needed. */
851 b->loc = NULL;
852
853 if (b->disposition == disp_del_at_next_stop)
854 return;
855
856 /* Save the current frame's ID so we can restore it after
857 evaluating the watchpoint expression on its own frame. */
858 /* FIXME drow/2003-09-09: It would be nice if evaluate_expression
859 took a frame parameter, so that we didn't have to change the
860 selected frame. */
861 saved_frame_id = get_frame_id (get_selected_frame (NULL));
862
863 /* Determine if the watchpoint is within scope. */
864 if (b->exp_valid_block == NULL)
865 within_current_scope = 1;
866 else
867 {
868 struct frame_info *fi;
869 fi = frame_find_by_id (b->watchpoint_frame);
870 within_current_scope = (fi != NULL);
871 if (within_current_scope)
872 select_frame (fi);
873 }
874
875 if (within_current_scope && reparse)
876 {
877 char *s;
878 if (b->exp)
879 {
880 xfree (b->exp);
881 b->exp = NULL;
882 }
883 s = b->exp_string;
884 b->exp = parse_exp_1 (&s, b->exp_valid_block, 0);
885 /* If the meaning of expression itself changed, the old value is
886 no longer relevant. We don't want to report a watchpoint hit
887 to the user when the old value and the new value may actually
888 be completely different objects. */
889 value_free (b->val);
890 b->val = NULL;
891 b->val_valid = 0;
892 }
893
894 /* If we failed to parse the expression, for example because
895 it refers to a global variable in a not-yet-loaded shared library,
896 don't try to insert watchpoint. We don't automatically delete
897 such watchpoint, though, since failure to parse expression
898 is different from out-of-scope watchpoint. */
899 if (within_current_scope && b->exp)
900 {
901 struct value *val_chain, *v, *result, *next;
902
903 fetch_watchpoint_value (b->exp, &v, &result, &val_chain);
904
905 /* Avoid setting b->val if it's already set. The meaning of
906 b->val is 'the last value' user saw, and we should update
907 it only if we reported that last value to user. As it
908 happens, the code that reports it updates b->val directly. */
909 if (!b->val_valid)
910 {
911 b->val = v;
912 b->val_valid = 1;
913 }
914
915 /* Change the type of breakpoint between hardware assisted or an
916 ordinary watchpoint depending on the hardware support and free
917 hardware slots. REPARSE is set when the inferior is started. */
918 if ((b->type == bp_watchpoint || b->type == bp_hardware_watchpoint)
919 && reparse)
920 {
921 int i, mem_cnt, other_type_used;
922
923 i = hw_watchpoint_used_count (bp_hardware_watchpoint,
924 &other_type_used);
925 mem_cnt = can_use_hardware_watchpoint (val_chain);
926
927 if (!mem_cnt)
928 b->type = bp_watchpoint;
929 else
930 {
931 int target_resources_ok = TARGET_CAN_USE_HARDWARE_WATCHPOINT
932 (bp_hardware_watchpoint, i + mem_cnt, other_type_used);
933 if (target_resources_ok <= 0)
934 b->type = bp_watchpoint;
935 else
936 b->type = bp_hardware_watchpoint;
937 }
938 }
939
940 /* Look at each value on the value chain. */
941 for (v = val_chain; v; v = next)
942 {
943 /* If it's a memory location, and GDB actually needed
944 its contents to evaluate the expression, then we
945 must watch it. If the first value returned is
946 still lazy, that means an error occurred reading it;
947 watch it anyway in case it becomes readable. */
948 if (VALUE_LVAL (v) == lval_memory
949 && (v == val_chain || ! value_lazy (v)))
950 {
951 struct type *vtype = check_typedef (value_type (v));
952
953 /* We only watch structs and arrays if user asked
954 for it explicitly, never if they just happen to
955 appear in the middle of some value chain. */
956 if (v == result
957 || (TYPE_CODE (vtype) != TYPE_CODE_STRUCT
958 && TYPE_CODE (vtype) != TYPE_CODE_ARRAY))
959 {
960 CORE_ADDR addr;
961 int len, type;
962 struct bp_location *loc, **tmp;
963
964 addr = VALUE_ADDRESS (v) + value_offset (v);
965 len = TYPE_LENGTH (value_type (v));
966 type = hw_write;
967 if (b->type == bp_read_watchpoint)
968 type = hw_read;
969 else if (b->type == bp_access_watchpoint)
970 type = hw_access;
971
972 loc = allocate_bp_location (b);
973 for (tmp = &(b->loc); *tmp != NULL; tmp = &((*tmp)->next))
974 ;
975 *tmp = loc;
976 loc->address = addr;
977 loc->length = len;
978 loc->watchpoint_type = type;
979 }
980 }
981
982 next = value_next (v);
983 if (v != b->val)
984 value_free (v);
985 }
986
987 /* We just regenerated the list of breakpoint locations.
988 The new location does not have its condition field set to anything
989 and therefore, we must always reparse the cond_string, independently
990 of the value of the reparse flag. */
991 if (b->cond_string != NULL)
992 {
993 char *s = b->cond_string;
994 b->loc->cond = parse_exp_1 (&s, b->exp_valid_block, 0);
995 }
996 }
997 else if (!within_current_scope)
998 {
999 printf_filtered (_("\
1000Watchpoint %d deleted because the program has left the block \n\
1001in which its expression is valid.\n"),
1002 b->number);
1003 if (b->related_breakpoint)
1004 b->related_breakpoint->disposition = disp_del_at_next_stop;
1005 b->disposition = disp_del_at_next_stop;
1006 }
1007
1008 /* Restore the selected frame. */
1009 select_frame (frame_find_by_id (saved_frame_id));
1010}
1011
1012
1013/* Returns 1 iff breakpoint location should be
1014 inserted in the inferior. */
1015static int
1016should_be_inserted (struct bp_location *bpt)
1017{
1018 if (!breakpoint_enabled (bpt->owner))
1019 return 0;
1020
1021 if (bpt->owner->disposition == disp_del_at_next_stop)
1022 return 0;
1023
1024 if (!bpt->enabled || bpt->shlib_disabled || bpt->duplicate)
1025 return 0;
1026
1027 return 1;
1028}
1029
1030/* Insert a low-level "breakpoint" of some type. BPT is the breakpoint.
1031 Any error messages are printed to TMP_ERROR_STREAM; and DISABLED_BREAKS,
1032 and HW_BREAKPOINT_ERROR are used to report problems.
1033
1034 NOTE drow/2003-09-09: This routine could be broken down to an object-style
1035 method for each breakpoint or catchpoint type. */
1036static int
1037insert_bp_location (struct bp_location *bpt,
1038 struct ui_file *tmp_error_stream,
1039 int *disabled_breaks,
1040 int *hw_breakpoint_error)
1041{
1042 int val = 0;
1043
1044 if (!should_be_inserted (bpt) || bpt->inserted)
1045 return 0;
1046
1047 /* Initialize the target-specific information. */
1048 memset (&bpt->target_info, 0, sizeof (bpt->target_info));
1049 bpt->target_info.placed_address = bpt->address;
1050
1051 if (bpt->loc_type == bp_loc_software_breakpoint
1052 || bpt->loc_type == bp_loc_hardware_breakpoint)
1053 {
1054 if (bpt->owner->type != bp_hardware_breakpoint)
1055 {
1056 /* If the explicitly specified breakpoint type
1057 is not hardware breakpoint, check the memory map to see
1058 if the breakpoint address is in read only memory or not.
1059 Two important cases are:
1060 - location type is not hardware breakpoint, memory
1061 is readonly. We change the type of the location to
1062 hardware breakpoint.
1063 - location type is hardware breakpoint, memory is read-write.
1064 This means we've previously made the location hardware one, but
1065 then the memory map changed, so we undo.
1066
1067 When breakpoints are removed, remove_breakpoints will
1068 use location types we've just set here, the only possible
1069 problem is that memory map has changed during running program,
1070 but it's not going to work anyway with current gdb. */
1071 struct mem_region *mr
1072 = lookup_mem_region (bpt->target_info.placed_address);
1073
1074 if (mr)
1075 {
1076 if (automatic_hardware_breakpoints)
1077 {
1078 int changed = 0;
1079 enum bp_loc_type new_type;
1080
1081 if (mr->attrib.mode != MEM_RW)
1082 new_type = bp_loc_hardware_breakpoint;
1083 else
1084 new_type = bp_loc_software_breakpoint;
1085
1086 if (new_type != bpt->loc_type)
1087 {
1088 static int said = 0;
1089 bpt->loc_type = new_type;
1090 if (!said)
1091 {
1092 fprintf_filtered (gdb_stdout, _("\
1093Note: automatically using hardware breakpoints for read-only addresses.\n"));
1094 said = 1;
1095 }
1096 }
1097 }
1098 else if (bpt->loc_type == bp_loc_software_breakpoint
1099 && mr->attrib.mode != MEM_RW)
1100 warning (_("cannot set software breakpoint at readonly address %s"),
1101 paddr (bpt->address));
1102 }
1103 }
1104
1105 /* First check to see if we have to handle an overlay. */
1106 if (overlay_debugging == ovly_off
1107 || bpt->section == NULL
1108 || !(section_is_overlay (bpt->section)))
1109 {
1110 /* No overlay handling: just set the breakpoint. */
1111
1112 if (bpt->loc_type == bp_loc_hardware_breakpoint)
1113 val = target_insert_hw_breakpoint (&bpt->target_info);
1114 else
1115 val = target_insert_breakpoint (&bpt->target_info);
1116 }
1117 else
1118 {
1119 /* This breakpoint is in an overlay section.
1120 Shall we set a breakpoint at the LMA? */
1121 if (!overlay_events_enabled)
1122 {
1123 /* Yes -- overlay event support is not active,
1124 so we must try to set a breakpoint at the LMA.
1125 This will not work for a hardware breakpoint. */
1126 if (bpt->loc_type == bp_loc_hardware_breakpoint)
1127 warning (_("hardware breakpoint %d not supported in overlay!"),
1128 bpt->owner->number);
1129 else
1130 {
1131 CORE_ADDR addr = overlay_unmapped_address (bpt->address,
1132 bpt->section);
1133 /* Set a software (trap) breakpoint at the LMA. */
1134 bpt->overlay_target_info = bpt->target_info;
1135 bpt->overlay_target_info.placed_address = addr;
1136 val = target_insert_breakpoint (&bpt->overlay_target_info);
1137 if (val != 0)
1138 fprintf_unfiltered (tmp_error_stream,
1139 "Overlay breakpoint %d failed: in ROM?",
1140 bpt->owner->number);
1141 }
1142 }
1143 /* Shall we set a breakpoint at the VMA? */
1144 if (section_is_mapped (bpt->section))
1145 {
1146 /* Yes. This overlay section is mapped into memory. */
1147 if (bpt->loc_type == bp_loc_hardware_breakpoint)
1148 val = target_insert_hw_breakpoint (&bpt->target_info);
1149 else
1150 val = target_insert_breakpoint (&bpt->target_info);
1151 }
1152 else
1153 {
1154 /* No. This breakpoint will not be inserted.
1155 No error, but do not mark the bp as 'inserted'. */
1156 return 0;
1157 }
1158 }
1159
1160 if (val)
1161 {
1162 /* Can't set the breakpoint. */
1163 if (solib_address (bpt->address))
1164 {
1165 /* See also: disable_breakpoints_in_shlibs. */
1166 val = 0;
1167 bpt->shlib_disabled = 1;
1168 if (!*disabled_breaks)
1169 {
1170 fprintf_unfiltered (tmp_error_stream,
1171 "Cannot insert breakpoint %d.\n",
1172 bpt->owner->number);
1173 fprintf_unfiltered (tmp_error_stream,
1174 "Temporarily disabling shared library breakpoints:\n");
1175 }
1176 *disabled_breaks = 1;
1177 fprintf_unfiltered (tmp_error_stream,
1178 "breakpoint #%d\n", bpt->owner->number);
1179 }
1180 else
1181 {
1182 if (bpt->loc_type == bp_loc_hardware_breakpoint)
1183 {
1184 *hw_breakpoint_error = 1;
1185 fprintf_unfiltered (tmp_error_stream,
1186 "Cannot insert hardware breakpoint %d.\n",
1187 bpt->owner->number);
1188 }
1189 else
1190 {
1191 fprintf_unfiltered (tmp_error_stream,
1192 "Cannot insert breakpoint %d.\n",
1193 bpt->owner->number);
1194 fprintf_filtered (tmp_error_stream,
1195 "Error accessing memory address ");
1196 fputs_filtered (paddress (bpt->address), tmp_error_stream);
1197 fprintf_filtered (tmp_error_stream, ": %s.\n",
1198 safe_strerror (val));
1199 }
1200
1201 }
1202 }
1203 else
1204 bpt->inserted = 1;
1205
1206 return val;
1207 }
1208
1209 else if (bpt->loc_type == bp_loc_hardware_watchpoint
1210 /* NOTE drow/2003-09-08: This state only exists for removing
1211 watchpoints. It's not clear that it's necessary... */
1212 && bpt->owner->disposition != disp_del_at_next_stop)
1213 {
1214 val = target_insert_watchpoint (bpt->address,
1215 bpt->length,
1216 bpt->watchpoint_type);
1217 bpt->inserted = (val != -1);
1218 }
1219
1220 else if (bpt->owner->type == bp_catchpoint)
1221 {
1222 struct gdb_exception e = catch_exception (uiout, insert_catchpoint,
1223 bpt->owner, RETURN_MASK_ERROR);
1224 exception_fprintf (gdb_stderr, e, "warning: inserting catchpoint %d: ",
1225 bpt->owner->number);
1226 if (e.reason < 0)
1227 bpt->owner->enable_state = bp_disabled;
1228 else
1229 bpt->inserted = 1;
1230
1231 /* We've already printed an error message if there was a problem
1232 inserting this catchpoint, and we've disabled the catchpoint,
1233 so just return success. */
1234 return 0;
1235 }
1236
1237 return 0;
1238}
1239
1240/* Make sure all breakpoints are inserted in inferior.
1241 Throws exception on any error.
1242 A breakpoint that is already inserted won't be inserted
1243 again, so calling this function twice is safe. */
1244void
1245insert_breakpoints (void)
1246{
1247 struct breakpoint *bpt;
1248
1249 ALL_BREAKPOINTS (bpt)
1250 if (is_hardware_watchpoint (bpt))
1251 update_watchpoint (bpt, 0 /* don't reparse. */);
1252
1253 update_global_location_list (1);
1254
1255 if (!breakpoints_always_inserted_mode ()
1256 && (target_has_execution
1257 || (gdbarch_has_global_solist (target_gdbarch)
1258 && target_supports_multi_process ())))
1259 /* update_global_location_list does not insert breakpoints
1260 when always_inserted_mode is not enabled. Explicitly
1261 insert them now. */
1262 insert_breakpoint_locations ();
1263}
1264
1265/* insert_breakpoints is used when starting or continuing the program.
1266 remove_breakpoints is used when the program stops.
1267 Both return zero if successful,
1268 or an `errno' value if could not write the inferior. */
1269
1270static void
1271insert_breakpoint_locations (void)
1272{
1273 struct breakpoint *bpt;
1274 struct bp_location *b, *temp;
1275 int error = 0;
1276 int val = 0;
1277 int disabled_breaks = 0;
1278 int hw_breakpoint_error = 0;
1279
1280 struct ui_file *tmp_error_stream = mem_fileopen ();
1281 struct cleanup *cleanups = make_cleanup_ui_file_delete (tmp_error_stream);
1282
1283 /* Explicitly mark the warning -- this will only be printed if
1284 there was an error. */
1285 fprintf_unfiltered (tmp_error_stream, "Warning:\n");
1286
1287 ALL_BP_LOCATIONS_SAFE (b, temp)
1288 {
1289 if (!should_be_inserted (b) || b->inserted)
1290 continue;
1291
1292 /* There is no point inserting thread-specific breakpoints if the
1293 thread no longer exists. */
1294 if (b->owner->thread != -1
1295 && !valid_thread_id (b->owner->thread))
1296 continue;
1297
1298 val = insert_bp_location (b, tmp_error_stream,
1299 &disabled_breaks,
1300 &hw_breakpoint_error);
1301 if (val)
1302 error = val;
1303 }
1304
1305 /* If we failed to insert all locations of a watchpoint,
1306 remove them, as half-inserted watchpoint is of limited use. */
1307 ALL_BREAKPOINTS (bpt)
1308 {
1309 int some_failed = 0;
1310 struct bp_location *loc;
1311
1312 if (!is_hardware_watchpoint (bpt))
1313 continue;
1314
1315 if (!breakpoint_enabled (bpt))
1316 continue;
1317
1318 if (bpt->disposition == disp_del_at_next_stop)
1319 continue;
1320
1321 for (loc = bpt->loc; loc; loc = loc->next)
1322 if (!loc->inserted)
1323 {
1324 some_failed = 1;
1325 break;
1326 }
1327 if (some_failed)
1328 {
1329 for (loc = bpt->loc; loc; loc = loc->next)
1330 if (loc->inserted)
1331 remove_breakpoint (loc, mark_uninserted);
1332
1333 hw_breakpoint_error = 1;
1334 fprintf_unfiltered (tmp_error_stream,
1335 "Could not insert hardware watchpoint %d.\n",
1336 bpt->number);
1337 error = -1;
1338 }
1339 }
1340
1341 if (error)
1342 {
1343 /* If a hardware breakpoint or watchpoint was inserted, add a
1344 message about possibly exhausted resources. */
1345 if (hw_breakpoint_error)
1346 {
1347 fprintf_unfiltered (tmp_error_stream,
1348 "Could not insert hardware breakpoints:\n\
1349You may have requested too many hardware breakpoints/watchpoints.\n");
1350 }
1351 target_terminal_ours_for_output ();
1352 error_stream (tmp_error_stream);
1353 }
1354
1355 do_cleanups (cleanups);
1356}
1357
1358int
1359remove_breakpoints (void)
1360{
1361 struct bp_location *b;
1362 int val;
1363
1364 ALL_BP_LOCATIONS (b)
1365 {
1366 if (b->inserted)
1367 {
1368 val = remove_breakpoint (b, mark_uninserted);
1369 if (val != 0)
1370 return val;
1371 }
1372 }
1373 return 0;
1374}
1375
1376int
1377remove_hw_watchpoints (void)
1378{
1379 struct bp_location *b;
1380 int val;
1381
1382 ALL_BP_LOCATIONS (b)
1383 {
1384 if (b->inserted && b->loc_type == bp_loc_hardware_watchpoint)
1385 {
1386 val = remove_breakpoint (b, mark_uninserted);
1387 if (val != 0)
1388 return val;
1389 }
1390 }
1391 return 0;
1392}
1393
1394int
1395reattach_breakpoints (int pid)
1396{
1397 struct bp_location *b;
1398 int val;
1399 struct cleanup *old_chain = save_inferior_ptid ();
1400 struct ui_file *tmp_error_stream = mem_fileopen ();
1401 int dummy1 = 0, dummy2 = 0;
1402
1403 make_cleanup_ui_file_delete (tmp_error_stream);
1404
1405 inferior_ptid = pid_to_ptid (pid);
1406 ALL_BP_LOCATIONS (b)
1407 {
1408 if (b->inserted)
1409 {
1410 b->inserted = 0;
1411 val = insert_bp_location (b, tmp_error_stream,
1412 &dummy1, &dummy2);
1413 if (val != 0)
1414 {
1415 do_cleanups (old_chain);
1416 return val;
1417 }
1418 }
1419 }
1420 do_cleanups (old_chain);
1421 return 0;
1422}
1423
1424void
1425update_breakpoints_after_exec (void)
1426{
1427 struct breakpoint *b;
1428 struct breakpoint *temp;
1429 struct bp_location *bploc;
1430
1431 /* We're about to delete breakpoints from GDB's lists. If the
1432 INSERTED flag is true, GDB will try to lift the breakpoints by
1433 writing the breakpoints' "shadow contents" back into memory. The
1434 "shadow contents" are NOT valid after an exec, so GDB should not
1435 do that. Instead, the target is responsible from marking
1436 breakpoints out as soon as it detects an exec. We don't do that
1437 here instead, because there may be other attempts to delete
1438 breakpoints after detecting an exec and before reaching here. */
1439 ALL_BP_LOCATIONS (bploc)
1440 gdb_assert (!bploc->inserted);
1441
1442 ALL_BREAKPOINTS_SAFE (b, temp)
1443 {
1444 /* Solib breakpoints must be explicitly reset after an exec(). */
1445 if (b->type == bp_shlib_event)
1446 {
1447 delete_breakpoint (b);
1448 continue;
1449 }
1450
1451 /* Thread event breakpoints must be set anew after an exec(),
1452 as must overlay event breakpoints. */
1453 if (b->type == bp_thread_event || b->type == bp_overlay_event)
1454 {
1455 delete_breakpoint (b);
1456 continue;
1457 }
1458
1459 /* Step-resume breakpoints are meaningless after an exec(). */
1460 if (b->type == bp_step_resume)
1461 {
1462 delete_breakpoint (b);
1463 continue;
1464 }
1465
1466 /* Longjmp and longjmp-resume breakpoints are also meaningless
1467 after an exec. */
1468 if (b->type == bp_longjmp || b->type == bp_longjmp_resume)
1469 {
1470 delete_breakpoint (b);
1471 continue;
1472 }
1473
1474 if (b->type == bp_catchpoint)
1475 {
1476 /* For now, none of the bp_catchpoint breakpoints need to
1477 do anything at this point. In the future, if some of
1478 the catchpoints need to something, we will need to add
1479 a new method, and call this method from here. */
1480 continue;
1481 }
1482
1483 /* bp_finish is a special case. The only way we ought to be able
1484 to see one of these when an exec() has happened, is if the user
1485 caught a vfork, and then said "finish". Ordinarily a finish just
1486 carries them to the call-site of the current callee, by setting
1487 a temporary bp there and resuming. But in this case, the finish
1488 will carry them entirely through the vfork & exec.
1489
1490 We don't want to allow a bp_finish to remain inserted now. But
1491 we can't safely delete it, 'cause finish_command has a handle to
1492 the bp on a bpstat, and will later want to delete it. There's a
1493 chance (and I've seen it happen) that if we delete the bp_finish
1494 here, that its storage will get reused by the time finish_command
1495 gets 'round to deleting the "use to be a bp_finish" breakpoint.
1496 We really must allow finish_command to delete a bp_finish.
1497
1498 In the absense of a general solution for the "how do we know
1499 it's safe to delete something others may have handles to?"
1500 problem, what we'll do here is just uninsert the bp_finish, and
1501 let finish_command delete it.
1502
1503 (We know the bp_finish is "doomed" in the sense that it's
1504 momentary, and will be deleted as soon as finish_command sees
1505 the inferior stopped. So it doesn't matter that the bp's
1506 address is probably bogus in the new a.out, unlike e.g., the
1507 solib breakpoints.) */
1508
1509 if (b->type == bp_finish)
1510 {
1511 continue;
1512 }
1513
1514 /* Without a symbolic address, we have little hope of the
1515 pre-exec() address meaning the same thing in the post-exec()
1516 a.out. */
1517 if (b->addr_string == NULL)
1518 {
1519 delete_breakpoint (b);
1520 continue;
1521 }
1522 }
1523 /* FIXME what about longjmp breakpoints? Re-create them here? */
1524 create_overlay_event_breakpoint ("_ovly_debug_event");
1525}
1526
1527int
1528detach_breakpoints (int pid)
1529{
1530 struct bp_location *b;
1531 int val;
1532 struct cleanup *old_chain = save_inferior_ptid ();
1533
1534 if (pid == PIDGET (inferior_ptid))
1535 error (_("Cannot detach breakpoints of inferior_ptid"));
1536
1537 /* Set inferior_ptid; remove_breakpoint uses this global. */
1538 inferior_ptid = pid_to_ptid (pid);
1539 ALL_BP_LOCATIONS (b)
1540 {
1541 if (b->inserted)
1542 {
1543 val = remove_breakpoint (b, mark_inserted);
1544 if (val != 0)
1545 {
1546 do_cleanups (old_chain);
1547 return val;
1548 }
1549 }
1550 }
1551 do_cleanups (old_chain);
1552 return 0;
1553}
1554
1555static int
1556remove_breakpoint (struct bp_location *b, insertion_state_t is)
1557{
1558 int val;
1559
1560 if (b->owner->enable_state == bp_permanent)
1561 /* Permanent breakpoints cannot be inserted or removed. */
1562 return 0;
1563
1564 /* The type of none suggests that owner is actually deleted.
1565 This should not ever happen. */
1566 gdb_assert (b->owner->type != bp_none);
1567
1568 if (b->loc_type == bp_loc_software_breakpoint
1569 || b->loc_type == bp_loc_hardware_breakpoint)
1570 {
1571 /* "Normal" instruction breakpoint: either the standard
1572 trap-instruction bp (bp_breakpoint), or a
1573 bp_hardware_breakpoint. */
1574
1575 /* First check to see if we have to handle an overlay. */
1576 if (overlay_debugging == ovly_off
1577 || b->section == NULL
1578 || !(section_is_overlay (b->section)))
1579 {
1580 /* No overlay handling: just remove the breakpoint. */
1581
1582 if (b->loc_type == bp_loc_hardware_breakpoint)
1583 val = target_remove_hw_breakpoint (&b->target_info);
1584 else
1585 val = target_remove_breakpoint (&b->target_info);
1586 }
1587 else
1588 {
1589 /* This breakpoint is in an overlay section.
1590 Did we set a breakpoint at the LMA? */
1591 if (!overlay_events_enabled)
1592 {
1593 /* Yes -- overlay event support is not active, so we
1594 should have set a breakpoint at the LMA. Remove it.
1595 */
1596 /* Ignore any failures: if the LMA is in ROM, we will
1597 have already warned when we failed to insert it. */
1598 if (b->loc_type == bp_loc_hardware_breakpoint)
1599 target_remove_hw_breakpoint (&b->overlay_target_info);
1600 else
1601 target_remove_breakpoint (&b->overlay_target_info);
1602 }
1603 /* Did we set a breakpoint at the VMA?
1604 If so, we will have marked the breakpoint 'inserted'. */
1605 if (b->inserted)
1606 {
1607 /* Yes -- remove it. Previously we did not bother to
1608 remove the breakpoint if the section had been
1609 unmapped, but let's not rely on that being safe. We
1610 don't know what the overlay manager might do. */
1611 if (b->loc_type == bp_loc_hardware_breakpoint)
1612 val = target_remove_hw_breakpoint (&b->target_info);
1613
1614 /* However, we should remove *software* breakpoints only
1615 if the section is still mapped, or else we overwrite
1616 wrong code with the saved shadow contents. */
1617 else if (section_is_mapped (b->section))
1618 val = target_remove_breakpoint (&b->target_info);
1619 else
1620 val = 0;
1621 }
1622 else
1623 {
1624 /* No -- not inserted, so no need to remove. No error. */
1625 val = 0;
1626 }
1627 }
1628
1629 /* In some cases, we might not be able to remove a breakpoint
1630 in a shared library that has already been removed, but we
1631 have not yet processed the shlib unload event. */
1632 if (val && solib_address (b->address))
1633 val = 0;
1634
1635 if (val)
1636 return val;
1637 b->inserted = (is == mark_inserted);
1638 }
1639 else if (b->loc_type == bp_loc_hardware_watchpoint)
1640 {
1641 struct value *v;
1642 struct value *n;
1643
1644 b->inserted = (is == mark_inserted);
1645 val = target_remove_watchpoint (b->address, b->length,
1646 b->watchpoint_type);
1647
1648 /* Failure to remove any of the hardware watchpoints comes here. */
1649 if ((is == mark_uninserted) && (b->inserted))
1650 warning (_("Could not remove hardware watchpoint %d."),
1651 b->owner->number);
1652 }
1653 else if (b->owner->type == bp_catchpoint
1654 && breakpoint_enabled (b->owner)
1655 && !b->duplicate)
1656 {
1657 gdb_assert (b->owner->ops != NULL && b->owner->ops->remove != NULL);
1658
1659 val = b->owner->ops->remove (b->owner);
1660 if (val)
1661 return val;
1662 b->inserted = (is == mark_inserted);
1663 }
1664
1665 return 0;
1666}
1667
1668/* Clear the "inserted" flag in all breakpoints. */
1669
1670void
1671mark_breakpoints_out (void)
1672{
1673 struct bp_location *bpt;
1674
1675 ALL_BP_LOCATIONS (bpt)
1676 bpt->inserted = 0;
1677}
1678
1679/* Clear the "inserted" flag in all breakpoints and delete any
1680 breakpoints which should go away between runs of the program.
1681
1682 Plus other such housekeeping that has to be done for breakpoints
1683 between runs.
1684
1685 Note: this function gets called at the end of a run (by
1686 generic_mourn_inferior) and when a run begins (by
1687 init_wait_for_inferior). */
1688
1689
1690
1691void
1692breakpoint_init_inferior (enum inf_context context)
1693{
1694 struct breakpoint *b, *temp;
1695 struct bp_location *bpt;
1696 int ix;
1697
1698 /* If breakpoint locations are shared across processes, then there's
1699 nothing to do. */
1700 if (gdbarch_has_global_solist (target_gdbarch))
1701 return;
1702
1703 ALL_BP_LOCATIONS (bpt)
1704 if (bpt->owner->enable_state != bp_permanent)
1705 bpt->inserted = 0;
1706
1707 ALL_BREAKPOINTS_SAFE (b, temp)
1708 {
1709 switch (b->type)
1710 {
1711 case bp_call_dummy:
1712 case bp_watchpoint_scope:
1713
1714 /* If the call dummy breakpoint is at the entry point it will
1715 cause problems when the inferior is rerun, so we better
1716 get rid of it.
1717
1718 Also get rid of scope breakpoints. */
1719 delete_breakpoint (b);
1720 break;
1721
1722 case bp_watchpoint:
1723 case bp_hardware_watchpoint:
1724 case bp_read_watchpoint:
1725 case bp_access_watchpoint:
1726
1727 /* Likewise for watchpoints on local expressions. */
1728 if (b->exp_valid_block != NULL)
1729 delete_breakpoint (b);
1730 else if (context == inf_starting)
1731 {
1732 /* Reset val field to force reread of starting value
1733 in insert_breakpoints. */
1734 if (b->val)
1735 value_free (b->val);
1736 b->val = NULL;
1737 b->val_valid = 0;
1738 }
1739 break;
1740 default:
1741 break;
1742 }
1743 }
1744
1745 /* Get rid of the moribund locations. */
1746 for (ix = 0; VEC_iterate (bp_location_p, moribund_locations, ix, bpt); ++ix)
1747 free_bp_location (bpt);
1748 VEC_free (bp_location_p, moribund_locations);
1749}
1750
1751/* breakpoint_here_p (PC) returns non-zero if an enabled breakpoint
1752 exists at PC. It returns ordinary_breakpoint_here if it's an
1753 ordinary breakpoint, or permanent_breakpoint_here if it's a
1754 permanent breakpoint.
1755 - When continuing from a location with an ordinary breakpoint, we
1756 actually single step once before calling insert_breakpoints.
1757 - When continuing from a localion with a permanent breakpoint, we
1758 need to use the `SKIP_PERMANENT_BREAKPOINT' macro, provided by
1759 the target, to advance the PC past the breakpoint. */
1760
1761enum breakpoint_here
1762breakpoint_here_p (CORE_ADDR pc)
1763{
1764 const struct bp_location *bpt;
1765 int any_breakpoint_here = 0;
1766
1767 ALL_BP_LOCATIONS (bpt)
1768 {
1769 if (bpt->loc_type != bp_loc_software_breakpoint
1770 && bpt->loc_type != bp_loc_hardware_breakpoint)
1771 continue;
1772
1773 if ((breakpoint_enabled (bpt->owner)
1774 || bpt->owner->enable_state == bp_permanent)
1775 && bpt->address == pc) /* bp is enabled and matches pc */
1776 {
1777 if (overlay_debugging
1778 && section_is_overlay (bpt->section)
1779 && !section_is_mapped (bpt->section))
1780 continue; /* unmapped overlay -- can't be a match */
1781 else if (bpt->owner->enable_state == bp_permanent)
1782 return permanent_breakpoint_here;
1783 else
1784 any_breakpoint_here = 1;
1785 }
1786 }
1787
1788 return any_breakpoint_here ? ordinary_breakpoint_here : 0;
1789}
1790
1791/* Return true if there's a moribund breakpoint at PC. */
1792
1793int
1794moribund_breakpoint_here_p (CORE_ADDR pc)
1795{
1796 struct bp_location *loc;
1797 int ix;
1798
1799 for (ix = 0; VEC_iterate (bp_location_p, moribund_locations, ix, loc); ++ix)
1800 if (loc->address == pc)
1801 return 1;
1802
1803 return 0;
1804}
1805
1806/* Returns non-zero if there's a breakpoint inserted at PC, which is
1807 inserted using regular breakpoint_chain/bp_location_chain mechanism.
1808 This does not check for single-step breakpoints, which are
1809 inserted and removed using direct target manipulation. */
1810
1811int
1812regular_breakpoint_inserted_here_p (CORE_ADDR pc)
1813{
1814 const struct bp_location *bpt;
1815
1816 ALL_BP_LOCATIONS (bpt)
1817 {
1818 if (bpt->loc_type != bp_loc_software_breakpoint
1819 && bpt->loc_type != bp_loc_hardware_breakpoint)
1820 continue;
1821
1822 if (bpt->inserted
1823 && bpt->address == pc) /* bp is inserted and matches pc */
1824 {
1825 if (overlay_debugging
1826 && section_is_overlay (bpt->section)
1827 && !section_is_mapped (bpt->section))
1828 continue; /* unmapped overlay -- can't be a match */
1829 else
1830 return 1;
1831 }
1832 }
1833 return 0;
1834}
1835
1836/* Returns non-zero iff there's either regular breakpoint
1837 or a single step breakpoint inserted at PC. */
1838
1839int
1840breakpoint_inserted_here_p (CORE_ADDR pc)
1841{
1842 if (regular_breakpoint_inserted_here_p (pc))
1843 return 1;
1844
1845 if (single_step_breakpoint_inserted_here_p (pc))
1846 return 1;
1847
1848 return 0;
1849}
1850
1851/* This function returns non-zero iff there is a software breakpoint
1852 inserted at PC. */
1853
1854int
1855software_breakpoint_inserted_here_p (CORE_ADDR pc)
1856{
1857 const struct bp_location *bpt;
1858 int any_breakpoint_here = 0;
1859
1860 ALL_BP_LOCATIONS (bpt)
1861 {
1862 if (bpt->loc_type != bp_loc_software_breakpoint)
1863 continue;
1864
1865 if (bpt->inserted
1866 && bpt->address == pc) /* bp is enabled and matches pc */
1867 {
1868 if (overlay_debugging
1869 && section_is_overlay (bpt->section)
1870 && !section_is_mapped (bpt->section))
1871 continue; /* unmapped overlay -- can't be a match */
1872 else
1873 return 1;
1874 }
1875 }
1876
1877 /* Also check for software single-step breakpoints. */
1878 if (single_step_breakpoint_inserted_here_p (pc))
1879 return 1;
1880
1881 return 0;
1882}
1883
1884/* breakpoint_thread_match (PC, PTID) returns true if the breakpoint at
1885 PC is valid for process/thread PTID. */
1886
1887int
1888breakpoint_thread_match (CORE_ADDR pc, ptid_t ptid)
1889{
1890 const struct bp_location *bpt;
1891 int thread;
1892
1893 thread = pid_to_thread_id (ptid);
1894
1895 ALL_BP_LOCATIONS (bpt)
1896 {
1897 if (bpt->loc_type != bp_loc_software_breakpoint
1898 && bpt->loc_type != bp_loc_hardware_breakpoint)
1899 continue;
1900
1901 if ((breakpoint_enabled (bpt->owner)
1902 || bpt->owner->enable_state == bp_permanent)
1903 && bpt->address == pc
1904 && (bpt->owner->thread == -1 || bpt->owner->thread == thread))
1905 {
1906 if (overlay_debugging
1907 && section_is_overlay (bpt->section)
1908 && !section_is_mapped (bpt->section))
1909 continue; /* unmapped overlay -- can't be a match */
1910 else
1911 return 1;
1912 }
1913 }
1914
1915 return 0;
1916}
1917\f
1918
1919/* bpstat stuff. External routines' interfaces are documented
1920 in breakpoint.h. */
1921
1922int
1923ep_is_catchpoint (struct breakpoint *ep)
1924{
1925 return (ep->type == bp_catchpoint);
1926}
1927
1928void
1929bpstat_free (bpstat bs)
1930{
1931 if (bs->old_val != NULL)
1932 value_free (bs->old_val);
1933 free_command_lines (&bs->commands);
1934 xfree (bs);
1935}
1936
1937/* Clear a bpstat so that it says we are not at any breakpoint.
1938 Also free any storage that is part of a bpstat. */
1939
1940void
1941bpstat_clear (bpstat *bsp)
1942{
1943 bpstat p;
1944 bpstat q;
1945
1946 if (bsp == 0)
1947 return;
1948 p = *bsp;
1949 while (p != NULL)
1950 {
1951 q = p->next;
1952 bpstat_free (p);
1953 p = q;
1954 }
1955 *bsp = NULL;
1956}
1957
1958/* Return a copy of a bpstat. Like "bs1 = bs2" but all storage that
1959 is part of the bpstat is copied as well. */
1960
1961bpstat
1962bpstat_copy (bpstat bs)
1963{
1964 bpstat p = NULL;
1965 bpstat tmp;
1966 bpstat retval = NULL;
1967
1968 if (bs == NULL)
1969 return bs;
1970
1971 for (; bs != NULL; bs = bs->next)
1972 {
1973 tmp = (bpstat) xmalloc (sizeof (*tmp));
1974 memcpy (tmp, bs, sizeof (*tmp));
1975 if (bs->commands != NULL)
1976 tmp->commands = copy_command_lines (bs->commands);
1977 if (bs->old_val != NULL)
1978 {
1979 tmp->old_val = value_copy (bs->old_val);
1980 release_value (tmp->old_val);
1981 }
1982
1983 if (p == NULL)
1984 /* This is the first thing in the chain. */
1985 retval = tmp;
1986 else
1987 p->next = tmp;
1988 p = tmp;
1989 }
1990 p->next = NULL;
1991 return retval;
1992}
1993
1994/* Find the bpstat associated with this breakpoint */
1995
1996bpstat
1997bpstat_find_breakpoint (bpstat bsp, struct breakpoint *breakpoint)
1998{
1999 if (bsp == NULL)
2000 return NULL;
2001
2002 for (; bsp != NULL; bsp = bsp->next)
2003 {
2004 if (bsp->breakpoint_at && bsp->breakpoint_at->owner == breakpoint)
2005 return bsp;
2006 }
2007 return NULL;
2008}
2009
2010/* Find a step_resume breakpoint associated with this bpstat.
2011 (If there are multiple step_resume bp's on the list, this function
2012 will arbitrarily pick one.)
2013
2014 It is an error to use this function if BPSTAT doesn't contain a
2015 step_resume breakpoint.
2016
2017 See wait_for_inferior's use of this function. */
2018struct breakpoint *
2019bpstat_find_step_resume_breakpoint (bpstat bsp)
2020{
2021 int current_thread;
2022
2023 gdb_assert (bsp != NULL);
2024
2025 current_thread = pid_to_thread_id (inferior_ptid);
2026
2027 for (; bsp != NULL; bsp = bsp->next)
2028 {
2029 if ((bsp->breakpoint_at != NULL) &&
2030 (bsp->breakpoint_at->owner->type == bp_step_resume) &&
2031 (bsp->breakpoint_at->owner->thread == current_thread ||
2032 bsp->breakpoint_at->owner->thread == -1))
2033 return bsp->breakpoint_at->owner;
2034 }
2035
2036 internal_error (__FILE__, __LINE__, _("No step_resume breakpoint found."));
2037}
2038
2039
2040/* Put in *NUM the breakpoint number of the first breakpoint we are stopped
2041 at. *BSP upon return is a bpstat which points to the remaining
2042 breakpoints stopped at (but which is not guaranteed to be good for
2043 anything but further calls to bpstat_num).
2044 Return 0 if passed a bpstat which does not indicate any breakpoints.
2045 Return -1 if stopped at a breakpoint that has been deleted since
2046 we set it.
2047 Return 1 otherwise. */
2048
2049int
2050bpstat_num (bpstat *bsp, int *num)
2051{
2052 struct breakpoint *b;
2053
2054 if ((*bsp) == NULL)
2055 return 0; /* No more breakpoint values */
2056
2057 /* We assume we'll never have several bpstats that
2058 correspond to a single breakpoint -- otherwise,
2059 this function might return the same number more
2060 than once and this will look ugly. */
2061 b = (*bsp)->breakpoint_at ? (*bsp)->breakpoint_at->owner : NULL;
2062 *bsp = (*bsp)->next;
2063 if (b == NULL)
2064 return -1; /* breakpoint that's been deleted since */
2065
2066 *num = b->number; /* We have its number */
2067 return 1;
2068}
2069
2070/* Modify BS so that the actions will not be performed. */
2071
2072void
2073bpstat_clear_actions (bpstat bs)
2074{
2075 for (; bs != NULL; bs = bs->next)
2076 {
2077 free_command_lines (&bs->commands);
2078 if (bs->old_val != NULL)
2079 {
2080 value_free (bs->old_val);
2081 bs->old_val = NULL;
2082 }
2083 }
2084}
2085
2086/* Stub for cleaning up our state if we error-out of a breakpoint command */
2087static void
2088cleanup_executing_breakpoints (void *ignore)
2089{
2090 executing_breakpoint_commands = 0;
2091}
2092
2093/* Execute all the commands associated with all the breakpoints at this
2094 location. Any of these commands could cause the process to proceed
2095 beyond this point, etc. We look out for such changes by checking
2096 the global "breakpoint_proceeded" after each command.
2097
2098 Returns true if a breakpoint command resumed the inferior. In that
2099 case, it is the caller's responsibility to recall it again with the
2100 bpstat of the current thread. */
2101
2102static int
2103bpstat_do_actions_1 (bpstat *bsp)
2104{
2105 bpstat bs;
2106 struct cleanup *old_chain;
2107 int again = 0;
2108
2109 /* Avoid endless recursion if a `source' command is contained
2110 in bs->commands. */
2111 if (executing_breakpoint_commands)
2112 return 0;
2113
2114 executing_breakpoint_commands = 1;
2115 old_chain = make_cleanup (cleanup_executing_breakpoints, 0);
2116
2117 /* This pointer will iterate over the list of bpstat's. */
2118 bs = *bsp;
2119
2120 breakpoint_proceeded = 0;
2121 for (; bs != NULL; bs = bs->next)
2122 {
2123 struct command_line *cmd;
2124 struct cleanup *this_cmd_tree_chain;
2125
2126 /* Take ownership of the BSP's command tree, if it has one.
2127
2128 The command tree could legitimately contain commands like
2129 'step' and 'next', which call clear_proceed_status, which
2130 frees stop_bpstat's command tree. To make sure this doesn't
2131 free the tree we're executing out from under us, we need to
2132 take ownership of the tree ourselves. Since a given bpstat's
2133 commands are only executed once, we don't need to copy it; we
2134 can clear the pointer in the bpstat, and make sure we free
2135 the tree when we're done. */
2136 cmd = bs->commands;
2137 bs->commands = 0;
2138 this_cmd_tree_chain = make_cleanup_free_command_lines (&cmd);
2139
2140 while (cmd != NULL)
2141 {
2142 execute_control_command (cmd);
2143
2144 if (breakpoint_proceeded)
2145 break;
2146 else
2147 cmd = cmd->next;
2148 }
2149
2150 /* We can free this command tree now. */
2151 do_cleanups (this_cmd_tree_chain);
2152
2153 if (breakpoint_proceeded)
2154 {
2155 if (target_can_async_p ())
2156 /* If we are in async mode, then the target might be still
2157 running, not stopped at any breakpoint, so nothing for
2158 us to do here -- just return to the event loop. */
2159 ;
2160 else
2161 /* In sync mode, when execute_control_command returns
2162 we're already standing on the next breakpoint.
2163 Breakpoint commands for that stop were not run, since
2164 execute_command does not run breakpoint commands --
2165 only command_line_handler does, but that one is not
2166 involved in execution of breakpoint commands. So, we
2167 can now execute breakpoint commands. It should be
2168 noted that making execute_command do bpstat actions is
2169 not an option -- in this case we'll have recursive
2170 invocation of bpstat for each breakpoint with a
2171 command, and can easily blow up GDB stack. Instead, we
2172 return true, which will trigger the caller to recall us
2173 with the new stop_bpstat. */
2174 again = 1;
2175 break;
2176 }
2177 }
2178 do_cleanups (old_chain);
2179 return again;
2180}
2181
2182void
2183bpstat_do_actions (void)
2184{
2185 /* Do any commands attached to breakpoint we are stopped at. */
2186 while (!ptid_equal (inferior_ptid, null_ptid)
2187 && target_has_execution
2188 && !is_exited (inferior_ptid)
2189 && !is_executing (inferior_ptid))
2190 /* Since in sync mode, bpstat_do_actions may resume the inferior,
2191 and only return when it is stopped at the next breakpoint, we
2192 keep doing breakpoint actions until it returns false to
2193 indicate the inferior was not resumed. */
2194 if (!bpstat_do_actions_1 (&inferior_thread ()->stop_bpstat))
2195 break;
2196}
2197
2198/* Print out the (old or new) value associated with a watchpoint. */
2199
2200static void
2201watchpoint_value_print (struct value *val, struct ui_file *stream)
2202{
2203 if (val == NULL)
2204 fprintf_unfiltered (stream, _("<unreadable>"));
2205 else
2206 {
2207 struct value_print_options opts;
2208 get_user_print_options (&opts);
2209 value_print (val, stream, &opts);
2210 }
2211}
2212
2213/* This is the normal print function for a bpstat. In the future,
2214 much of this logic could (should?) be moved to bpstat_stop_status,
2215 by having it set different print_it values.
2216
2217 Current scheme: When we stop, bpstat_print() is called. It loops
2218 through the bpstat list of things causing this stop, calling the
2219 print_bp_stop_message function on each one. The behavior of the
2220 print_bp_stop_message function depends on the print_it field of
2221 bpstat. If such field so indicates, call this function here.
2222
2223 Return values from this routine (ultimately used by bpstat_print()
2224 and normal_stop() to decide what to do):
2225 PRINT_NOTHING: Means we already printed all we needed to print,
2226 don't print anything else.
2227 PRINT_SRC_ONLY: Means we printed something, and we do *not* desire
2228 that something to be followed by a location.
2229 PRINT_SCR_AND_LOC: Means we printed something, and we *do* desire
2230 that something to be followed by a location.
2231 PRINT_UNKNOWN: Means we printed nothing or we need to do some more
2232 analysis. */
2233
2234static enum print_stop_action
2235print_it_typical (bpstat bs)
2236{
2237 struct cleanup *old_chain;
2238 struct breakpoint *b;
2239 const struct bp_location *bl;
2240 struct ui_stream *stb;
2241 int bp_temp = 0;
2242 enum print_stop_action result;
2243
2244 /* bs->breakpoint_at can be NULL if it was a momentary breakpoint
2245 which has since been deleted. */
2246 if (bs->breakpoint_at == NULL)
2247 return PRINT_UNKNOWN;
2248 bl = bs->breakpoint_at;
2249 b = bl->owner;
2250
2251 stb = ui_out_stream_new (uiout);
2252 old_chain = make_cleanup_ui_out_stream_delete (stb);
2253
2254 switch (b->type)
2255 {
2256 case bp_breakpoint:
2257 case bp_hardware_breakpoint:
2258 bp_temp = bs->breakpoint_at->owner->disposition == disp_del;
2259 if (bl->address != bl->requested_address)
2260 breakpoint_adjustment_warning (bl->requested_address,
2261 bl->address,
2262 b->number, 1);
2263 annotate_breakpoint (b->number);
2264 if (bp_temp)
2265 ui_out_text (uiout, "\nTemporary breakpoint ");
2266 else
2267 ui_out_text (uiout, "\nBreakpoint ");
2268 if (ui_out_is_mi_like_p (uiout))
2269 {
2270 ui_out_field_string (uiout, "reason",
2271 async_reason_lookup (EXEC_ASYNC_BREAKPOINT_HIT));
2272 ui_out_field_string (uiout, "disp", bpdisp_text (b->disposition));
2273 }
2274 ui_out_field_int (uiout, "bkptno", b->number);
2275 ui_out_text (uiout, ", ");
2276 result = PRINT_SRC_AND_LOC;
2277 break;
2278
2279 case bp_shlib_event:
2280 /* Did we stop because the user set the stop_on_solib_events
2281 variable? (If so, we report this as a generic, "Stopped due
2282 to shlib event" message.) */
2283 printf_filtered (_("Stopped due to shared library event\n"));
2284 result = PRINT_NOTHING;
2285 break;
2286
2287 case bp_thread_event:
2288 /* Not sure how we will get here.
2289 GDB should not stop for these breakpoints. */
2290 printf_filtered (_("Thread Event Breakpoint: gdb should not stop!\n"));
2291 result = PRINT_NOTHING;
2292 break;
2293
2294 case bp_overlay_event:
2295 /* By analogy with the thread event, GDB should not stop for these. */
2296 printf_filtered (_("Overlay Event Breakpoint: gdb should not stop!\n"));
2297 result = PRINT_NOTHING;
2298 break;
2299
2300 case bp_watchpoint:
2301 case bp_hardware_watchpoint:
2302 annotate_watchpoint (b->number);
2303 if (ui_out_is_mi_like_p (uiout))
2304 ui_out_field_string
2305 (uiout, "reason",
2306 async_reason_lookup (EXEC_ASYNC_WATCHPOINT_TRIGGER));
2307 mention (b);
2308 make_cleanup_ui_out_tuple_begin_end (uiout, "value");
2309 ui_out_text (uiout, "\nOld value = ");
2310 watchpoint_value_print (bs->old_val, stb->stream);
2311 ui_out_field_stream (uiout, "old", stb);
2312 ui_out_text (uiout, "\nNew value = ");
2313 watchpoint_value_print (b->val, stb->stream);
2314 ui_out_field_stream (uiout, "new", stb);
2315 ui_out_text (uiout, "\n");
2316 /* More than one watchpoint may have been triggered. */
2317 result = PRINT_UNKNOWN;
2318 break;
2319
2320 case bp_read_watchpoint:
2321 if (ui_out_is_mi_like_p (uiout))
2322 ui_out_field_string
2323 (uiout, "reason",
2324 async_reason_lookup (EXEC_ASYNC_READ_WATCHPOINT_TRIGGER));
2325 mention (b);
2326 make_cleanup_ui_out_tuple_begin_end (uiout, "value");
2327 ui_out_text (uiout, "\nValue = ");
2328 watchpoint_value_print (b->val, stb->stream);
2329 ui_out_field_stream (uiout, "value", stb);
2330 ui_out_text (uiout, "\n");
2331 result = PRINT_UNKNOWN;
2332 break;
2333
2334 case bp_access_watchpoint:
2335 if (bs->old_val != NULL)
2336 {
2337 annotate_watchpoint (b->number);
2338 if (ui_out_is_mi_like_p (uiout))
2339 ui_out_field_string
2340 (uiout, "reason",
2341 async_reason_lookup (EXEC_ASYNC_ACCESS_WATCHPOINT_TRIGGER));
2342 mention (b);
2343 make_cleanup_ui_out_tuple_begin_end (uiout, "value");
2344 ui_out_text (uiout, "\nOld value = ");
2345 watchpoint_value_print (bs->old_val, stb->stream);
2346 ui_out_field_stream (uiout, "old", stb);
2347 ui_out_text (uiout, "\nNew value = ");
2348 }
2349 else
2350 {
2351 mention (b);
2352 if (ui_out_is_mi_like_p (uiout))
2353 ui_out_field_string
2354 (uiout, "reason",
2355 async_reason_lookup (EXEC_ASYNC_ACCESS_WATCHPOINT_TRIGGER));
2356 make_cleanup_ui_out_tuple_begin_end (uiout, "value");
2357 ui_out_text (uiout, "\nValue = ");
2358 }
2359 watchpoint_value_print (b->val, stb->stream);
2360 ui_out_field_stream (uiout, "new", stb);
2361 ui_out_text (uiout, "\n");
2362 result = PRINT_UNKNOWN;
2363 break;
2364
2365 /* Fall through, we don't deal with these types of breakpoints
2366 here. */
2367
2368 case bp_finish:
2369 if (ui_out_is_mi_like_p (uiout))
2370 ui_out_field_string
2371 (uiout, "reason",
2372 async_reason_lookup (EXEC_ASYNC_FUNCTION_FINISHED));
2373 result = PRINT_UNKNOWN;
2374 break;
2375
2376 case bp_until:
2377 if (ui_out_is_mi_like_p (uiout))
2378 ui_out_field_string
2379 (uiout, "reason",
2380 async_reason_lookup (EXEC_ASYNC_LOCATION_REACHED));
2381 result = PRINT_UNKNOWN;
2382 break;
2383
2384 case bp_none:
2385 case bp_longjmp:
2386 case bp_longjmp_resume:
2387 case bp_step_resume:
2388 case bp_watchpoint_scope:
2389 case bp_call_dummy:
2390 default:
2391 result = PRINT_UNKNOWN;
2392 break;
2393 }
2394
2395 do_cleanups (old_chain);
2396 return result;
2397}
2398
2399/* Generic routine for printing messages indicating why we
2400 stopped. The behavior of this function depends on the value
2401 'print_it' in the bpstat structure. Under some circumstances we
2402 may decide not to print anything here and delegate the task to
2403 normal_stop(). */
2404
2405static enum print_stop_action
2406print_bp_stop_message (bpstat bs)
2407{
2408 switch (bs->print_it)
2409 {
2410 case print_it_noop:
2411 /* Nothing should be printed for this bpstat entry. */
2412 return PRINT_UNKNOWN;
2413 break;
2414
2415 case print_it_done:
2416 /* We still want to print the frame, but we already printed the
2417 relevant messages. */
2418 return PRINT_SRC_AND_LOC;
2419 break;
2420
2421 case print_it_normal:
2422 {
2423 const struct bp_location *bl = bs->breakpoint_at;
2424 struct breakpoint *b = bl ? bl->owner : NULL;
2425
2426 /* Normal case. Call the breakpoint's print_it method, or
2427 print_it_typical. */
2428 /* FIXME: how breakpoint can ever be NULL here? */
2429 if (b != NULL && b->ops != NULL && b->ops->print_it != NULL)
2430 return b->ops->print_it (b);
2431 else
2432 return print_it_typical (bs);
2433 }
2434 break;
2435
2436 default:
2437 internal_error (__FILE__, __LINE__,
2438 _("print_bp_stop_message: unrecognized enum value"));
2439 break;
2440 }
2441}
2442
2443/* Print a message indicating what happened. This is called from
2444 normal_stop(). The input to this routine is the head of the bpstat
2445 list - a list of the eventpoints that caused this stop. This
2446 routine calls the generic print routine for printing a message
2447 about reasons for stopping. This will print (for example) the
2448 "Breakpoint n," part of the output. The return value of this
2449 routine is one of:
2450
2451 PRINT_UNKNOWN: Means we printed nothing
2452 PRINT_SRC_AND_LOC: Means we printed something, and expect subsequent
2453 code to print the location. An example is
2454 "Breakpoint 1, " which should be followed by
2455 the location.
2456 PRINT_SRC_ONLY: Means we printed something, but there is no need
2457 to also print the location part of the message.
2458 An example is the catch/throw messages, which
2459 don't require a location appended to the end.
2460 PRINT_NOTHING: We have done some printing and we don't need any
2461 further info to be printed.*/
2462
2463enum print_stop_action
2464bpstat_print (bpstat bs)
2465{
2466 int val;
2467
2468 /* Maybe another breakpoint in the chain caused us to stop.
2469 (Currently all watchpoints go on the bpstat whether hit or not.
2470 That probably could (should) be changed, provided care is taken
2471 with respect to bpstat_explains_signal). */
2472 for (; bs; bs = bs->next)
2473 {
2474 val = print_bp_stop_message (bs);
2475 if (val == PRINT_SRC_ONLY
2476 || val == PRINT_SRC_AND_LOC
2477 || val == PRINT_NOTHING)
2478 return val;
2479 }
2480
2481 /* We reached the end of the chain, or we got a null BS to start
2482 with and nothing was printed. */
2483 return PRINT_UNKNOWN;
2484}
2485
2486/* Evaluate the expression EXP and return 1 if value is zero.
2487 This is used inside a catch_errors to evaluate the breakpoint condition.
2488 The argument is a "struct expression *" that has been cast to char * to
2489 make it pass through catch_errors. */
2490
2491static int
2492breakpoint_cond_eval (void *exp)
2493{
2494 struct value *mark = value_mark ();
2495 int i = !value_true (evaluate_expression ((struct expression *) exp));
2496 value_free_to_mark (mark);
2497 return i;
2498}
2499
2500/* Allocate a new bpstat and chain it to the current one. */
2501
2502static bpstat
2503bpstat_alloc (const struct bp_location *bl, bpstat cbs /* Current "bs" value */ )
2504{
2505 bpstat bs;
2506
2507 bs = (bpstat) xmalloc (sizeof (*bs));
2508 cbs->next = bs;
2509 bs->breakpoint_at = bl;
2510 /* If the condition is false, etc., don't do the commands. */
2511 bs->commands = NULL;
2512 bs->old_val = NULL;
2513 bs->print_it = print_it_normal;
2514 return bs;
2515}
2516\f
2517/* The target has stopped with waitstatus WS. Check if any hardware
2518 watchpoints have triggered, according to the target. */
2519
2520int
2521watchpoints_triggered (struct target_waitstatus *ws)
2522{
2523 int stopped_by_watchpoint = STOPPED_BY_WATCHPOINT (*ws);
2524 CORE_ADDR addr;
2525 struct breakpoint *b;
2526
2527 if (!stopped_by_watchpoint)
2528 {
2529 /* We were not stopped by a watchpoint. Mark all watchpoints
2530 as not triggered. */
2531 ALL_BREAKPOINTS (b)
2532 if (b->type == bp_hardware_watchpoint
2533 || b->type == bp_read_watchpoint
2534 || b->type == bp_access_watchpoint)
2535 b->watchpoint_triggered = watch_triggered_no;
2536
2537 return 0;
2538 }
2539
2540 if (!target_stopped_data_address (&current_target, &addr))
2541 {
2542 /* We were stopped by a watchpoint, but we don't know where.
2543 Mark all watchpoints as unknown. */
2544 ALL_BREAKPOINTS (b)
2545 if (b->type == bp_hardware_watchpoint
2546 || b->type == bp_read_watchpoint
2547 || b->type == bp_access_watchpoint)
2548 b->watchpoint_triggered = watch_triggered_unknown;
2549
2550 return stopped_by_watchpoint;
2551 }
2552
2553 /* The target could report the data address. Mark watchpoints
2554 affected by this data address as triggered, and all others as not
2555 triggered. */
2556
2557 ALL_BREAKPOINTS (b)
2558 if (b->type == bp_hardware_watchpoint
2559 || b->type == bp_read_watchpoint
2560 || b->type == bp_access_watchpoint)
2561 {
2562 struct bp_location *loc;
2563 struct value *v;
2564
2565 b->watchpoint_triggered = watch_triggered_no;
2566 for (loc = b->loc; loc; loc = loc->next)
2567 /* Exact match not required. Within range is
2568 sufficient. */
2569 if (target_watchpoint_addr_within_range (&current_target,
2570 addr, loc->address,
2571 loc->length))
2572 {
2573 b->watchpoint_triggered = watch_triggered_yes;
2574 break;
2575 }
2576 }
2577
2578 return 1;
2579}
2580
2581/* Possible return values for watchpoint_check (this can't be an enum
2582 because of check_errors). */
2583/* The watchpoint has been deleted. */
2584#define WP_DELETED 1
2585/* The value has changed. */
2586#define WP_VALUE_CHANGED 2
2587/* The value has not changed. */
2588#define WP_VALUE_NOT_CHANGED 3
2589
2590#define BP_TEMPFLAG 1
2591#define BP_HARDWAREFLAG 2
2592
2593/* Check watchpoint condition. */
2594
2595static int
2596watchpoint_check (void *p)
2597{
2598 bpstat bs = (bpstat) p;
2599 struct breakpoint *b;
2600 struct frame_info *fr;
2601 int within_current_scope;
2602
2603 b = bs->breakpoint_at->owner;
2604
2605 if (b->exp_valid_block == NULL)
2606 within_current_scope = 1;
2607 else
2608 {
2609 /* There is no current frame at this moment. If we're going to have
2610 any chance of handling watchpoints on local variables, we'll need
2611 the frame chain (so we can determine if we're in scope). */
2612 reinit_frame_cache ();
2613 fr = frame_find_by_id (b->watchpoint_frame);
2614 within_current_scope = (fr != NULL);
2615
2616 /* If we've gotten confused in the unwinder, we might have
2617 returned a frame that can't describe this variable. */
2618 if (within_current_scope
2619 && (block_linkage_function (b->exp_valid_block)
2620 != get_frame_function (fr)))
2621 within_current_scope = 0;
2622
2623 /* in_function_epilogue_p() returns a non-zero value if we're still
2624 in the function but the stack frame has already been invalidated.
2625 Since we can't rely on the values of local variables after the
2626 stack has been destroyed, we are treating the watchpoint in that
2627 state as `not changed' without further checking.
2628
2629 vinschen/2003-09-04: The former implementation left out the case
2630 that the watchpoint frame couldn't be found by frame_find_by_id()
2631 because the current PC is currently in an epilogue. Calling
2632 gdbarch_in_function_epilogue_p() also when fr == NULL fixes that. */
2633 if ((!within_current_scope || fr == get_current_frame ())
2634 && gdbarch_in_function_epilogue_p (current_gdbarch, read_pc ()))
2635 return WP_VALUE_NOT_CHANGED;
2636 if (fr && within_current_scope)
2637 /* If we end up stopping, the current frame will get selected
2638 in normal_stop. So this call to select_frame won't affect
2639 the user. */
2640 select_frame (fr);
2641 }
2642
2643 if (within_current_scope)
2644 {
2645 /* We use value_{,free_to_}mark because it could be a
2646 *long* time before we return to the command level and
2647 call free_all_values. We can't call free_all_values because
2648 we might be in the middle of evaluating a function call. */
2649
2650 struct value *mark = value_mark ();
2651 struct value *new_val;
2652
2653 fetch_watchpoint_value (b->exp, &new_val, NULL, NULL);
2654 if ((b->val != NULL) != (new_val != NULL)
2655 || (b->val != NULL && !value_equal (b->val, new_val)))
2656 {
2657 if (new_val != NULL)
2658 {
2659 release_value (new_val);
2660 value_free_to_mark (mark);
2661 }
2662 bs->old_val = b->val;
2663 b->val = new_val;
2664 b->val_valid = 1;
2665 /* We will stop here */
2666 return WP_VALUE_CHANGED;
2667 }
2668 else
2669 {
2670 /* Nothing changed, don't do anything. */
2671 value_free_to_mark (mark);
2672 /* We won't stop here */
2673 return WP_VALUE_NOT_CHANGED;
2674 }
2675 }
2676 else
2677 {
2678 /* This seems like the only logical thing to do because
2679 if we temporarily ignored the watchpoint, then when
2680 we reenter the block in which it is valid it contains
2681 garbage (in the case of a function, it may have two
2682 garbage values, one before and one after the prologue).
2683 So we can't even detect the first assignment to it and
2684 watch after that (since the garbage may or may not equal
2685 the first value assigned). */
2686 /* We print all the stop information in print_it_typical(), but
2687 in this case, by the time we call print_it_typical() this bp
2688 will be deleted already. So we have no choice but print the
2689 information here. */
2690 if (ui_out_is_mi_like_p (uiout))
2691 ui_out_field_string
2692 (uiout, "reason", async_reason_lookup (EXEC_ASYNC_WATCHPOINT_SCOPE));
2693 ui_out_text (uiout, "\nWatchpoint ");
2694 ui_out_field_int (uiout, "wpnum", b->number);
2695 ui_out_text (uiout, " deleted because the program has left the block in\n\
2696which its expression is valid.\n");
2697
2698 if (b->related_breakpoint)
2699 b->related_breakpoint->disposition = disp_del_at_next_stop;
2700 b->disposition = disp_del_at_next_stop;
2701
2702 return WP_DELETED;
2703 }
2704}
2705
2706/* Return true if it looks like target has stopped due to hitting
2707 breakpoint location BL. This function does not check if we
2708 should stop, only if BL explains the stop. */
2709static int
2710bpstat_check_location (const struct bp_location *bl, CORE_ADDR bp_addr)
2711{
2712 struct breakpoint *b = bl->owner;
2713
2714 if (b->type != bp_watchpoint
2715 && b->type != bp_hardware_watchpoint
2716 && b->type != bp_read_watchpoint
2717 && b->type != bp_access_watchpoint
2718 && b->type != bp_hardware_breakpoint
2719 && b->type != bp_catchpoint) /* a non-watchpoint bp */
2720 {
2721 if (bl->address != bp_addr) /* address doesn't match */
2722 return 0;
2723 if (overlay_debugging /* unmapped overlay section */
2724 && section_is_overlay (bl->section)
2725 && !section_is_mapped (bl->section))
2726 return 0;
2727 }
2728
2729 /* Continuable hardware watchpoints are treated as non-existent if the
2730 reason we stopped wasn't a hardware watchpoint (we didn't stop on
2731 some data address). Otherwise gdb won't stop on a break instruction
2732 in the code (not from a breakpoint) when a hardware watchpoint has
2733 been defined. Also skip watchpoints which we know did not trigger
2734 (did not match the data address). */
2735
2736 if ((b->type == bp_hardware_watchpoint
2737 || b->type == bp_read_watchpoint
2738 || b->type == bp_access_watchpoint)
2739 && b->watchpoint_triggered == watch_triggered_no)
2740 return 0;
2741
2742 if (b->type == bp_hardware_breakpoint)
2743 {
2744 if (bl->address != bp_addr)
2745 return 0;
2746 if (overlay_debugging /* unmapped overlay section */
2747 && section_is_overlay (bl->section)
2748 && !section_is_mapped (bl->section))
2749 return 0;
2750 }
2751
2752 if (b->type == bp_catchpoint)
2753 {
2754 gdb_assert (b->ops != NULL && b->ops->breakpoint_hit != NULL);
2755 if (!b->ops->breakpoint_hit (b))
2756 return 0;
2757 }
2758
2759 return 1;
2760}
2761
2762/* If BS refers to a watchpoint, determine if the watched values
2763 has actually changed, and we should stop. If not, set BS->stop
2764 to 0. */
2765static void
2766bpstat_check_watchpoint (bpstat bs)
2767{
2768 const struct bp_location *bl = bs->breakpoint_at;
2769 struct breakpoint *b = bl->owner;
2770
2771 if (b->type == bp_watchpoint
2772 || b->type == bp_read_watchpoint
2773 || b->type == bp_access_watchpoint
2774 || b->type == bp_hardware_watchpoint)
2775 {
2776 CORE_ADDR addr;
2777 struct value *v;
2778 int must_check_value = 0;
2779
2780 if (b->type == bp_watchpoint)
2781 /* For a software watchpoint, we must always check the
2782 watched value. */
2783 must_check_value = 1;
2784 else if (b->watchpoint_triggered == watch_triggered_yes)
2785 /* We have a hardware watchpoint (read, write, or access)
2786 and the target earlier reported an address watched by
2787 this watchpoint. */
2788 must_check_value = 1;
2789 else if (b->watchpoint_triggered == watch_triggered_unknown
2790 && b->type == bp_hardware_watchpoint)
2791 /* We were stopped by a hardware watchpoint, but the target could
2792 not report the data address. We must check the watchpoint's
2793 value. Access and read watchpoints are out of luck; without
2794 a data address, we can't figure it out. */
2795 must_check_value = 1;
2796
2797 if (must_check_value)
2798 {
2799 char *message = xstrprintf ("Error evaluating expression for watchpoint %d\n",
2800 b->number);
2801 struct cleanup *cleanups = make_cleanup (xfree, message);
2802 int e = catch_errors (watchpoint_check, bs, message,
2803 RETURN_MASK_ALL);
2804 do_cleanups (cleanups);
2805 switch (e)
2806 {
2807 case WP_DELETED:
2808 /* We've already printed what needs to be printed. */
2809 bs->print_it = print_it_done;
2810 /* Stop. */
2811 break;
2812 case WP_VALUE_CHANGED:
2813 if (b->type == bp_read_watchpoint)
2814 {
2815 /* Don't stop: read watchpoints shouldn't fire if
2816 the value has changed. This is for targets
2817 which cannot set read-only watchpoints. */
2818 bs->print_it = print_it_noop;
2819 bs->stop = 0;
2820 }
2821 break;
2822 case WP_VALUE_NOT_CHANGED:
2823 if (b->type == bp_hardware_watchpoint
2824 || b->type == bp_watchpoint)
2825 {
2826 /* Don't stop: write watchpoints shouldn't fire if
2827 the value hasn't changed. */
2828 bs->print_it = print_it_noop;
2829 bs->stop = 0;
2830 }
2831 /* Stop. */
2832 break;
2833 default:
2834 /* Can't happen. */
2835 case 0:
2836 /* Error from catch_errors. */
2837 printf_filtered (_("Watchpoint %d deleted.\n"), b->number);
2838 if (b->related_breakpoint)
2839 b->related_breakpoint->disposition = disp_del_at_next_stop;
2840 b->disposition = disp_del_at_next_stop;
2841 /* We've already printed what needs to be printed. */
2842 bs->print_it = print_it_done;
2843 break;
2844 }
2845 }
2846 else /* must_check_value == 0 */
2847 {
2848 /* This is a case where some watchpoint(s) triggered, but
2849 not at the address of this watchpoint, or else no
2850 watchpoint triggered after all. So don't print
2851 anything for this watchpoint. */
2852 bs->print_it = print_it_noop;
2853 bs->stop = 0;
2854 }
2855 }
2856}
2857
2858
2859/* Check conditions (condition proper, frame, thread and ignore count)
2860 of breakpoint referred to by BS. If we should not stop for this
2861 breakpoint, set BS->stop to 0. */
2862static void
2863bpstat_check_breakpoint_conditions (bpstat bs, ptid_t ptid)
2864{
2865 int thread_id = pid_to_thread_id (ptid);
2866 const struct bp_location *bl = bs->breakpoint_at;
2867 struct breakpoint *b = bl->owner;
2868
2869 if (frame_id_p (b->frame_id)
2870 && !frame_id_eq (b->frame_id, get_frame_id (get_current_frame ())))
2871 bs->stop = 0;
2872 else if (bs->stop)
2873 {
2874 int value_is_zero = 0;
2875
2876 /* If this is a scope breakpoint, mark the associated
2877 watchpoint as triggered so that we will handle the
2878 out-of-scope event. We'll get to the watchpoint next
2879 iteration. */
2880 if (b->type == bp_watchpoint_scope)
2881 b->related_breakpoint->watchpoint_triggered = watch_triggered_yes;
2882
2883 if (bl->cond && bl->owner->disposition != disp_del_at_next_stop)
2884 {
2885 /* Need to select the frame, with all that implies
2886 so that the conditions will have the right context. */
2887 select_frame (get_current_frame ());
2888 value_is_zero
2889 = catch_errors (breakpoint_cond_eval, (bl->cond),
2890 "Error in testing breakpoint condition:\n",
2891 RETURN_MASK_ALL);
2892 /* FIXME-someday, should give breakpoint # */
2893 free_all_values ();
2894 }
2895 if (bl->cond && value_is_zero)
2896 {
2897 bs->stop = 0;
2898 }
2899 else if (b->thread != -1 && b->thread != thread_id)
2900 {
2901 bs->stop = 0;
2902 }
2903 else if (b->ignore_count > 0)
2904 {
2905 b->ignore_count--;
2906 annotate_ignore_count_change ();
2907 bs->stop = 0;
2908 /* Increase the hit count even though we don't
2909 stop. */
2910 ++(b->hit_count);
2911 }
2912 }
2913}
2914
2915
2916/* Get a bpstat associated with having just stopped at address
2917 BP_ADDR in thread PTID.
2918
2919 Determine whether we stopped at a breakpoint, etc, or whether we
2920 don't understand this stop. Result is a chain of bpstat's such that:
2921
2922 if we don't understand the stop, the result is a null pointer.
2923
2924 if we understand why we stopped, the result is not null.
2925
2926 Each element of the chain refers to a particular breakpoint or
2927 watchpoint at which we have stopped. (We may have stopped for
2928 several reasons concurrently.)
2929
2930 Each element of the chain has valid next, breakpoint_at,
2931 commands, FIXME??? fields. */
2932
2933bpstat
2934bpstat_stop_status (CORE_ADDR bp_addr, ptid_t ptid)
2935{
2936 struct breakpoint *b = NULL;
2937 const struct bp_location *bl;
2938 struct bp_location *loc;
2939 /* Root of the chain of bpstat's */
2940 struct bpstats root_bs[1];
2941 /* Pointer to the last thing in the chain currently. */
2942 bpstat bs = root_bs;
2943 int ix;
2944 int need_remove_insert;
2945
2946 ALL_BP_LOCATIONS (bl)
2947 {
2948 b = bl->owner;
2949 gdb_assert (b);
2950 if (!breakpoint_enabled (b) && b->enable_state != bp_permanent)
2951 continue;
2952
2953 /* For hardware watchpoints, we look only at the first location.
2954 The watchpoint_check function will work on entire expression,
2955 not the individual locations. For read watchopints, the
2956 watchpoints_triggered function have checked all locations
2957 alrea
2958 */
2959 if (b->type == bp_hardware_watchpoint && bl != b->loc)
2960 continue;
2961
2962 if (!bpstat_check_location (bl, bp_addr))
2963 continue;
2964
2965 /* Come here if it's a watchpoint, or if the break address matches */
2966
2967 bs = bpstat_alloc (bl, bs); /* Alloc a bpstat to explain stop */
2968
2969 /* Assume we stop. Should we find watchpoint that is not actually
2970 triggered, or if condition of breakpoint is false, we'll reset
2971 'stop' to 0. */
2972 bs->stop = 1;
2973 bs->print = 1;
2974
2975 bpstat_check_watchpoint (bs);
2976 if (!bs->stop)
2977 continue;
2978
2979 if (b->type == bp_thread_event || b->type == bp_overlay_event)
2980 /* We do not stop for these. */
2981 bs->stop = 0;
2982 else
2983 bpstat_check_breakpoint_conditions (bs, ptid);
2984
2985 if (bs->stop)
2986 {
2987 ++(b->hit_count);
2988
2989 /* We will stop here */
2990 if (b->disposition == disp_disable)
2991 {
2992 if (b->enable_state != bp_permanent)
2993 b->enable_state = bp_disabled;
2994 update_global_location_list (0);
2995 }
2996 if (b->silent)
2997 bs->print = 0;
2998 bs->commands = b->commands;
2999 if (bs->commands &&
3000 (strcmp ("silent", bs->commands->line) == 0
3001 || (xdb_commands && strcmp ("Q", bs->commands->line) == 0)))
3002 {
3003 bs->commands = bs->commands->next;
3004 bs->print = 0;
3005 }
3006 bs->commands = copy_command_lines (bs->commands);
3007 }
3008
3009 /* Print nothing for this entry if we dont stop or if we dont print. */
3010 if (bs->stop == 0 || bs->print == 0)
3011 bs->print_it = print_it_noop;
3012 }
3013
3014 for (ix = 0; VEC_iterate (bp_location_p, moribund_locations, ix, loc); ++ix)
3015 {
3016 if (loc->address == bp_addr)
3017 {
3018 bs = bpstat_alloc (loc, bs);
3019 /* For hits of moribund locations, we should just proceed. */
3020 bs->stop = 0;
3021 bs->print = 0;
3022 bs->print_it = print_it_noop;
3023 }
3024 }
3025
3026 bs->next = NULL; /* Terminate the chain */
3027 bs = root_bs->next; /* Re-grab the head of the chain */
3028
3029 /* If we aren't stopping, the value of some hardware watchpoint may
3030 not have changed, but the intermediate memory locations we are
3031 watching may have. Don't bother if we're stopping; this will get
3032 done later. */
3033 for (bs = root_bs->next; bs != NULL; bs = bs->next)
3034 if (bs->stop)
3035 break;
3036
3037 need_remove_insert = 0;
3038 if (bs == NULL)
3039 for (bs = root_bs->next; bs != NULL; bs = bs->next)
3040 if (!bs->stop
3041 && bs->breakpoint_at->owner
3042 && (bs->breakpoint_at->owner->type == bp_hardware_watchpoint
3043 || bs->breakpoint_at->owner->type == bp_read_watchpoint
3044 || bs->breakpoint_at->owner->type == bp_access_watchpoint))
3045 {
3046 /* remove/insert can invalidate bs->breakpoint_at, if this
3047 location is no longer used by the watchpoint. Prevent
3048 further code from trying to use it. */
3049 bs->breakpoint_at = NULL;
3050 need_remove_insert = 1;
3051 }
3052
3053 if (need_remove_insert)
3054 {
3055 remove_breakpoints ();
3056 insert_breakpoints ();
3057 }
3058
3059 return root_bs->next;
3060}
3061\f
3062/* Tell what to do about this bpstat. */
3063struct bpstat_what
3064bpstat_what (bpstat bs)
3065{
3066 /* Classify each bpstat as one of the following. */
3067 enum class
3068 {
3069 /* This bpstat element has no effect on the main_action. */
3070 no_effect = 0,
3071
3072 /* There was a watchpoint, stop but don't print. */
3073 wp_silent,
3074
3075 /* There was a watchpoint, stop and print. */
3076 wp_noisy,
3077
3078 /* There was a breakpoint but we're not stopping. */
3079 bp_nostop,
3080
3081 /* There was a breakpoint, stop but don't print. */
3082 bp_silent,
3083
3084 /* There was a breakpoint, stop and print. */
3085 bp_noisy,
3086
3087 /* We hit the longjmp breakpoint. */
3088 long_jump,
3089
3090 /* We hit the longjmp_resume breakpoint. */
3091 long_resume,
3092
3093 /* We hit the step_resume breakpoint. */
3094 step_resume,
3095
3096 /* We hit the shared library event breakpoint. */
3097 shlib_event,
3098
3099 /* This is just used to count how many enums there are. */
3100 class_last
3101 };
3102
3103 /* Here is the table which drives this routine. So that we can
3104 format it pretty, we define some abbreviations for the
3105 enum bpstat_what codes. */
3106#define kc BPSTAT_WHAT_KEEP_CHECKING
3107#define ss BPSTAT_WHAT_STOP_SILENT
3108#define sn BPSTAT_WHAT_STOP_NOISY
3109#define sgl BPSTAT_WHAT_SINGLE
3110#define slr BPSTAT_WHAT_SET_LONGJMP_RESUME
3111#define clr BPSTAT_WHAT_CLEAR_LONGJMP_RESUME
3112#define sr BPSTAT_WHAT_STEP_RESUME
3113#define shl BPSTAT_WHAT_CHECK_SHLIBS
3114
3115/* "Can't happen." Might want to print an error message.
3116 abort() is not out of the question, but chances are GDB is just
3117 a bit confused, not unusable. */
3118#define err BPSTAT_WHAT_STOP_NOISY
3119
3120 /* Given an old action and a class, come up with a new action. */
3121 /* One interesting property of this table is that wp_silent is the same
3122 as bp_silent and wp_noisy is the same as bp_noisy. That is because
3123 after stopping, the check for whether to step over a breakpoint
3124 (BPSTAT_WHAT_SINGLE type stuff) is handled in proceed() without
3125 reference to how we stopped. We retain separate wp_silent and
3126 bp_silent codes in case we want to change that someday.
3127
3128 Another possibly interesting property of this table is that
3129 there's a partial ordering, priority-like, of the actions. Once
3130 you've decided that some action is appropriate, you'll never go
3131 back and decide something of a lower priority is better. The
3132 ordering is:
3133
3134 kc < clr sgl shl slr sn sr ss
3135 sgl < shl slr sn sr ss
3136 slr < err shl sn sr ss
3137 clr < err shl sn sr ss
3138 ss < shl sn sr
3139 sn < shl sr
3140 shl < sr
3141 sr <
3142
3143 What I think this means is that we don't need a damned table
3144 here. If you just put the rows and columns in the right order,
3145 it'd look awfully regular. We could simply walk the bpstat list
3146 and choose the highest priority action we find, with a little
3147 logic to handle the 'err' cases. */
3148
3149 /* step_resume entries: a step resume breakpoint overrides another
3150 breakpoint of signal handling (see comment in wait_for_inferior
3151 at where we set the step_resume breakpoint). */
3152
3153 static const enum bpstat_what_main_action
3154 table[(int) class_last][(int) BPSTAT_WHAT_LAST] =
3155 {
3156 /* old action */
3157 /* kc ss sn sgl slr clr sr shl
3158 */
3159/*no_effect */
3160 {kc, ss, sn, sgl, slr, clr, sr, shl},
3161/*wp_silent */
3162 {ss, ss, sn, ss, ss, ss, sr, shl},
3163/*wp_noisy */
3164 {sn, sn, sn, sn, sn, sn, sr, shl},
3165/*bp_nostop */
3166 {sgl, ss, sn, sgl, slr, slr, sr, shl},
3167/*bp_silent */
3168 {ss, ss, sn, ss, ss, ss, sr, shl},
3169/*bp_noisy */
3170 {sn, sn, sn, sn, sn, sn, sr, shl},
3171/*long_jump */
3172 {slr, ss, sn, slr, slr, err, sr, shl},
3173/*long_resume */
3174 {clr, ss, sn, err, err, err, sr, shl},
3175/*step_resume */
3176 {sr, sr, sr, sr, sr, sr, sr, sr},
3177/*shlib */
3178 {shl, shl, shl, shl, shl, shl, sr, shl}
3179 };
3180
3181#undef kc
3182#undef ss
3183#undef sn
3184#undef sgl
3185#undef slr
3186#undef clr
3187#undef err
3188#undef sr
3189#undef ts
3190#undef shl
3191 enum bpstat_what_main_action current_action = BPSTAT_WHAT_KEEP_CHECKING;
3192 struct bpstat_what retval;
3193
3194 retval.call_dummy = 0;
3195 for (; bs != NULL; bs = bs->next)
3196 {
3197 enum class bs_class = no_effect;
3198 if (bs->breakpoint_at == NULL)
3199 /* I suspect this can happen if it was a momentary breakpoint
3200 which has since been deleted. */
3201 continue;
3202 if (bs->breakpoint_at->owner == NULL)
3203 bs_class = bp_nostop;
3204 else
3205 switch (bs->breakpoint_at->owner->type)
3206 {
3207 case bp_none:
3208 continue;
3209
3210 case bp_breakpoint:
3211 case bp_hardware_breakpoint:
3212 case bp_until:
3213 case bp_finish:
3214 if (bs->stop)
3215 {
3216 if (bs->print)
3217 bs_class = bp_noisy;
3218 else
3219 bs_class = bp_silent;
3220 }
3221 else
3222 bs_class = bp_nostop;
3223 break;
3224 case bp_watchpoint:
3225 case bp_hardware_watchpoint:
3226 case bp_read_watchpoint:
3227 case bp_access_watchpoint:
3228 if (bs->stop)
3229 {
3230 if (bs->print)
3231 bs_class = wp_noisy;
3232 else
3233 bs_class = wp_silent;
3234 }
3235 else
3236 /* There was a watchpoint, but we're not stopping.
3237 This requires no further action. */
3238 bs_class = no_effect;
3239 break;
3240 case bp_longjmp:
3241 bs_class = long_jump;
3242 break;
3243 case bp_longjmp_resume:
3244 bs_class = long_resume;
3245 break;
3246 case bp_step_resume:
3247 if (bs->stop)
3248 {
3249 bs_class = step_resume;
3250 }
3251 else
3252 /* It is for the wrong frame. */
3253 bs_class = bp_nostop;
3254 break;
3255 case bp_watchpoint_scope:
3256 bs_class = bp_nostop;
3257 break;
3258 case bp_shlib_event:
3259 bs_class = shlib_event;
3260 break;
3261 case bp_thread_event:
3262 case bp_overlay_event:
3263 bs_class = bp_nostop;
3264 break;
3265 case bp_catchpoint:
3266 if (bs->stop)
3267 {
3268 if (bs->print)
3269 bs_class = bp_noisy;
3270 else
3271 bs_class = bp_silent;
3272 }
3273 else
3274 /* There was a catchpoint, but we're not stopping.
3275 This requires no further action. */
3276 bs_class = no_effect;
3277 break;
3278 case bp_call_dummy:
3279 /* Make sure the action is stop (silent or noisy),
3280 so infrun.c pops the dummy frame. */
3281 bs_class = bp_silent;
3282 retval.call_dummy = 1;
3283 break;
3284 }
3285 current_action = table[(int) bs_class][(int) current_action];
3286 }
3287 retval.main_action = current_action;
3288 return retval;
3289}
3290
3291/* Nonzero if we should step constantly (e.g. watchpoints on machines
3292 without hardware support). This isn't related to a specific bpstat,
3293 just to things like whether watchpoints are set. */
3294
3295int
3296bpstat_should_step (void)
3297{
3298 struct breakpoint *b;
3299 ALL_BREAKPOINTS (b)
3300 if (breakpoint_enabled (b) && b->type == bp_watchpoint)
3301 return 1;
3302 return 0;
3303}
3304
3305\f
3306
3307static void print_breakpoint_location (struct breakpoint *b,
3308 struct bp_location *loc,
3309 char *wrap_indent,
3310 struct ui_stream *stb)
3311{
3312 if (b->source_file)
3313 {
3314 struct symbol *sym
3315 = find_pc_sect_function (loc->address, loc->section);
3316 if (sym)
3317 {
3318 ui_out_text (uiout, "in ");
3319 ui_out_field_string (uiout, "func",
3320 SYMBOL_PRINT_NAME (sym));
3321 ui_out_wrap_hint (uiout, wrap_indent);
3322 ui_out_text (uiout, " at ");
3323 }
3324 ui_out_field_string (uiout, "file", b->source_file);
3325 ui_out_text (uiout, ":");
3326
3327 if (ui_out_is_mi_like_p (uiout))
3328 {
3329 struct symtab_and_line sal = find_pc_line (loc->address, 0);
3330 char *fullname = symtab_to_fullname (sal.symtab);
3331
3332 if (fullname)
3333 ui_out_field_string (uiout, "fullname", fullname);
3334 }
3335
3336 ui_out_field_int (uiout, "line", b->line_number);
3337 }
3338 else if (!b->loc)
3339 {
3340 ui_out_field_string (uiout, "pending", b->addr_string);
3341 }
3342 else
3343 {
3344 print_address_symbolic (loc->address, stb->stream, demangle, "");
3345 ui_out_field_stream (uiout, "at", stb);
3346 }
3347}
3348
3349/* Print B to gdb_stdout. */
3350static void
3351print_one_breakpoint_location (struct breakpoint *b,
3352 struct bp_location *loc,
3353 int loc_number,
3354 CORE_ADDR *last_addr)
3355{
3356 struct command_line *l;
3357 struct symbol *sym;
3358 struct ep_type_description
3359 {
3360 enum bptype type;
3361 char *description;
3362 };
3363 static struct ep_type_description bptypes[] =
3364 {
3365 {bp_none, "?deleted?"},
3366 {bp_breakpoint, "breakpoint"},
3367 {bp_hardware_breakpoint, "hw breakpoint"},
3368 {bp_until, "until"},
3369 {bp_finish, "finish"},
3370 {bp_watchpoint, "watchpoint"},
3371 {bp_hardware_watchpoint, "hw watchpoint"},
3372 {bp_read_watchpoint, "read watchpoint"},
3373 {bp_access_watchpoint, "acc watchpoint"},
3374 {bp_longjmp, "longjmp"},
3375 {bp_longjmp_resume, "longjmp resume"},
3376 {bp_step_resume, "step resume"},
3377 {bp_watchpoint_scope, "watchpoint scope"},
3378 {bp_call_dummy, "call dummy"},
3379 {bp_shlib_event, "shlib events"},
3380 {bp_thread_event, "thread events"},
3381 {bp_overlay_event, "overlay events"},
3382 {bp_catchpoint, "catchpoint"},
3383 };
3384
3385 static char bpenables[] = "nynny";
3386 char wrap_indent[80];
3387 struct ui_stream *stb = ui_out_stream_new (uiout);
3388 struct cleanup *old_chain = make_cleanup_ui_out_stream_delete (stb);
3389 struct cleanup *bkpt_chain;
3390
3391 int header_of_multiple = 0;
3392 int part_of_multiple = (loc != NULL);
3393 struct value_print_options opts;
3394
3395 get_user_print_options (&opts);
3396
3397 gdb_assert (!loc || loc_number != 0);
3398 /* See comment in print_one_breakpoint concerning
3399 treatment of breakpoints with single disabled
3400 location. */
3401 if (loc == NULL
3402 && (b->loc != NULL
3403 && (b->loc->next != NULL || !b->loc->enabled)))
3404 header_of_multiple = 1;
3405 if (loc == NULL)
3406 loc = b->loc;
3407
3408 annotate_record ();
3409 bkpt_chain = make_cleanup_ui_out_tuple_begin_end (uiout, "bkpt");
3410
3411 /* 1 */
3412 annotate_field (0);
3413 if (part_of_multiple)
3414 {
3415 char *formatted;
3416 formatted = xstrprintf ("%d.%d", b->number, loc_number);
3417 ui_out_field_string (uiout, "number", formatted);
3418 xfree (formatted);
3419 }
3420 else
3421 {
3422 ui_out_field_int (uiout, "number", b->number);
3423 }
3424
3425 /* 2 */
3426 annotate_field (1);
3427 if (part_of_multiple)
3428 ui_out_field_skip (uiout, "type");
3429 else
3430 {
3431 if (((int) b->type >= (sizeof (bptypes) / sizeof (bptypes[0])))
3432 || ((int) b->type != bptypes[(int) b->type].type))
3433 internal_error (__FILE__, __LINE__,
3434 _("bptypes table does not describe type #%d."),
3435 (int) b->type);
3436 ui_out_field_string (uiout, "type", bptypes[(int) b->type].description);
3437 }
3438
3439 /* 3 */
3440 annotate_field (2);
3441 if (part_of_multiple)
3442 ui_out_field_skip (uiout, "disp");
3443 else
3444 ui_out_field_string (uiout, "disp", bpdisp_text (b->disposition));
3445
3446
3447 /* 4 */
3448 annotate_field (3);
3449 if (part_of_multiple)
3450 ui_out_field_string (uiout, "enabled", loc->enabled ? "y" : "n");
3451 else
3452 ui_out_field_fmt (uiout, "enabled", "%c",
3453 bpenables[(int) b->enable_state]);
3454 ui_out_spaces (uiout, 2);
3455
3456
3457 /* 5 and 6 */
3458 strcpy (wrap_indent, " ");
3459 if (opts.addressprint)
3460 {
3461 if (gdbarch_addr_bit (current_gdbarch) <= 32)
3462 strcat (wrap_indent, " ");
3463 else
3464 strcat (wrap_indent, " ");
3465 }
3466
3467 if (b->ops != NULL && b->ops->print_one != NULL)
3468 {
3469 /* Although the print_one can possibly print
3470 all locations, calling it here is not likely
3471 to get any nice result. So, make sure there's
3472 just one location. */
3473 gdb_assert (b->loc == NULL || b->loc->next == NULL);
3474 b->ops->print_one (b, last_addr);
3475 }
3476 else
3477 switch (b->type)
3478 {
3479 case bp_none:
3480 internal_error (__FILE__, __LINE__,
3481 _("print_one_breakpoint: bp_none encountered\n"));
3482 break;
3483
3484 case bp_watchpoint:
3485 case bp_hardware_watchpoint:
3486 case bp_read_watchpoint:
3487 case bp_access_watchpoint:
3488 /* Field 4, the address, is omitted (which makes the columns
3489 not line up too nicely with the headers, but the effect
3490 is relatively readable). */
3491 if (opts.addressprint)
3492 ui_out_field_skip (uiout, "addr");
3493 annotate_field (5);
3494 ui_out_field_string (uiout, "what", b->exp_string);
3495 break;
3496
3497 case bp_breakpoint:
3498 case bp_hardware_breakpoint:
3499 case bp_until:
3500 case bp_finish:
3501 case bp_longjmp:
3502 case bp_longjmp_resume:
3503 case bp_step_resume:
3504 case bp_watchpoint_scope:
3505 case bp_call_dummy:
3506 case bp_shlib_event:
3507 case bp_thread_event:
3508 case bp_overlay_event:
3509 if (opts.addressprint)
3510 {
3511 annotate_field (4);
3512 if (header_of_multiple)
3513 ui_out_field_string (uiout, "addr", "<MULTIPLE>");
3514 else if (b->loc == NULL || loc->shlib_disabled)
3515 ui_out_field_string (uiout, "addr", "<PENDING>");
3516 else
3517 ui_out_field_core_addr (uiout, "addr", loc->address);
3518 }
3519 annotate_field (5);
3520 if (!header_of_multiple)
3521 print_breakpoint_location (b, loc, wrap_indent, stb);
3522 if (b->loc)
3523 *last_addr = b->loc->address;
3524 break;
3525 }
3526
3527 if (!part_of_multiple && b->thread != -1)
3528 {
3529 /* FIXME: This seems to be redundant and lost here; see the
3530 "stop only in" line a little further down. */
3531 ui_out_text (uiout, " thread ");
3532 ui_out_field_int (uiout, "thread", b->thread);
3533 }
3534
3535 ui_out_text (uiout, "\n");
3536
3537 if (part_of_multiple && frame_id_p (b->frame_id))
3538 {
3539 annotate_field (6);
3540 ui_out_text (uiout, "\tstop only in stack frame at ");
3541 /* FIXME: cagney/2002-12-01: Shouldn't be poeking around inside
3542 the frame ID. */
3543 ui_out_field_core_addr (uiout, "frame", b->frame_id.stack_addr);
3544 ui_out_text (uiout, "\n");
3545 }
3546
3547 if (!part_of_multiple && b->cond_string && !ada_exception_catchpoint_p (b))
3548 {
3549 /* We do not print the condition for Ada exception catchpoints
3550 because the condition is an internal implementation detail
3551 that we do not want to expose to the user. */
3552 annotate_field (7);
3553 ui_out_text (uiout, "\tstop only if ");
3554 ui_out_field_string (uiout, "cond", b->cond_string);
3555 ui_out_text (uiout, "\n");
3556 }
3557
3558 if (!part_of_multiple && b->thread != -1)
3559 {
3560 /* FIXME should make an annotation for this */
3561 ui_out_text (uiout, "\tstop only in thread ");
3562 ui_out_field_int (uiout, "thread", b->thread);
3563 ui_out_text (uiout, "\n");
3564 }
3565
3566 if (!part_of_multiple && b->hit_count)
3567 {
3568 /* FIXME should make an annotation for this */
3569 if (ep_is_catchpoint (b))
3570 ui_out_text (uiout, "\tcatchpoint");
3571 else
3572 ui_out_text (uiout, "\tbreakpoint");
3573 ui_out_text (uiout, " already hit ");
3574 ui_out_field_int (uiout, "times", b->hit_count);
3575 if (b->hit_count == 1)
3576 ui_out_text (uiout, " time\n");
3577 else
3578 ui_out_text (uiout, " times\n");
3579 }
3580
3581 /* Output the count also if it is zero, but only if this is
3582 mi. FIXME: Should have a better test for this. */
3583 if (ui_out_is_mi_like_p (uiout))
3584 if (!part_of_multiple && b->hit_count == 0)
3585 ui_out_field_int (uiout, "times", b->hit_count);
3586
3587 if (!part_of_multiple && b->ignore_count)
3588 {
3589 annotate_field (8);
3590 ui_out_text (uiout, "\tignore next ");
3591 ui_out_field_int (uiout, "ignore", b->ignore_count);
3592 ui_out_text (uiout, " hits\n");
3593 }
3594
3595 if (!part_of_multiple && (l = b->commands))
3596 {
3597 struct cleanup *script_chain;
3598
3599 annotate_field (9);
3600 script_chain = make_cleanup_ui_out_tuple_begin_end (uiout, "script");
3601 print_command_lines (uiout, l, 4);
3602 do_cleanups (script_chain);
3603 }
3604
3605 if (ui_out_is_mi_like_p (uiout) && !part_of_multiple)
3606 {
3607 if (b->addr_string)
3608 ui_out_field_string (uiout, "original-location", b->addr_string);
3609 else if (b->exp_string)
3610 ui_out_field_string (uiout, "original-location", b->exp_string);
3611 }
3612
3613 do_cleanups (bkpt_chain);
3614 do_cleanups (old_chain);
3615}
3616
3617static void
3618print_one_breakpoint (struct breakpoint *b,
3619 CORE_ADDR *last_addr)
3620{
3621 print_one_breakpoint_location (b, NULL, 0, last_addr);
3622
3623 /* If this breakpoint has custom print function,
3624 it's already printed. Otherwise, print individual
3625 locations, if any. */
3626 if (b->ops == NULL || b->ops->print_one == NULL)
3627 {
3628 /* If breakpoint has a single location that is
3629 disabled, we print it as if it had
3630 several locations, since otherwise it's hard to
3631 represent "breakpoint enabled, location disabled"
3632 situation.
3633 Note that while hardware watchpoints have
3634 several locations internally, that's no a property
3635 exposed to user. */
3636 if (b->loc
3637 && !is_hardware_watchpoint (b)
3638 && (b->loc->next || !b->loc->enabled)
3639 && !ui_out_is_mi_like_p (uiout))
3640 {
3641 struct bp_location *loc;
3642 int n = 1;
3643 for (loc = b->loc; loc; loc = loc->next, ++n)
3644 print_one_breakpoint_location (b, loc, n, last_addr);
3645 }
3646 }
3647}
3648
3649
3650struct captured_breakpoint_query_args
3651 {
3652 int bnum;
3653 };
3654
3655static int
3656do_captured_breakpoint_query (struct ui_out *uiout, void *data)
3657{
3658 struct captured_breakpoint_query_args *args = data;
3659 struct breakpoint *b;
3660 CORE_ADDR dummy_addr = 0;
3661 ALL_BREAKPOINTS (b)
3662 {
3663 if (args->bnum == b->number)
3664 {
3665 print_one_breakpoint (b, &dummy_addr);
3666 return GDB_RC_OK;
3667 }
3668 }
3669 return GDB_RC_NONE;
3670}
3671
3672enum gdb_rc
3673gdb_breakpoint_query (struct ui_out *uiout, int bnum, char **error_message)
3674{
3675 struct captured_breakpoint_query_args args;
3676 args.bnum = bnum;
3677 /* For the moment we don't trust print_one_breakpoint() to not throw
3678 an error. */
3679 if (catch_exceptions_with_msg (uiout, do_captured_breakpoint_query, &args,
3680 error_message, RETURN_MASK_ALL) < 0)
3681 return GDB_RC_FAIL;
3682 else
3683 return GDB_RC_OK;
3684}
3685
3686/* Return non-zero if B is user settable (breakpoints, watchpoints,
3687 catchpoints, et.al.). */
3688
3689static int
3690user_settable_breakpoint (const struct breakpoint *b)
3691{
3692 return (b->type == bp_breakpoint
3693 || b->type == bp_catchpoint
3694 || b->type == bp_hardware_breakpoint
3695 || b->type == bp_watchpoint
3696 || b->type == bp_read_watchpoint
3697 || b->type == bp_access_watchpoint
3698 || b->type == bp_hardware_watchpoint);
3699}
3700
3701/* Print information on user settable breakpoint (watchpoint, etc)
3702 number BNUM. If BNUM is -1 print all user settable breakpoints.
3703 If ALLFLAG is non-zero, include non- user settable breakpoints. */
3704
3705static void
3706breakpoint_1 (int bnum, int allflag)
3707{
3708 struct breakpoint *b;
3709 CORE_ADDR last_addr = (CORE_ADDR) -1;
3710 int nr_printable_breakpoints;
3711 struct cleanup *bkpttbl_chain;
3712 struct value_print_options opts;
3713
3714 get_user_print_options (&opts);
3715
3716 /* Compute the number of rows in the table. */
3717 nr_printable_breakpoints = 0;
3718 ALL_BREAKPOINTS (b)
3719 if (bnum == -1
3720 || bnum == b->number)
3721 {
3722 if (allflag || user_settable_breakpoint (b))
3723 nr_printable_breakpoints++;
3724 }
3725
3726 if (opts.addressprint)
3727 bkpttbl_chain
3728 = make_cleanup_ui_out_table_begin_end (uiout, 6, nr_printable_breakpoints,
3729 "BreakpointTable");
3730 else
3731 bkpttbl_chain
3732 = make_cleanup_ui_out_table_begin_end (uiout, 5, nr_printable_breakpoints,
3733 "BreakpointTable");
3734
3735 if (nr_printable_breakpoints > 0)
3736 annotate_breakpoints_headers ();
3737 if (nr_printable_breakpoints > 0)
3738 annotate_field (0);
3739 ui_out_table_header (uiout, 7, ui_left, "number", "Num"); /* 1 */
3740 if (nr_printable_breakpoints > 0)
3741 annotate_field (1);
3742 ui_out_table_header (uiout, 14, ui_left, "type", "Type"); /* 2 */
3743 if (nr_printable_breakpoints > 0)
3744 annotate_field (2);
3745 ui_out_table_header (uiout, 4, ui_left, "disp", "Disp"); /* 3 */
3746 if (nr_printable_breakpoints > 0)
3747 annotate_field (3);
3748 ui_out_table_header (uiout, 3, ui_left, "enabled", "Enb"); /* 4 */
3749 if (opts.addressprint)
3750 {
3751 if (nr_printable_breakpoints > 0)
3752 annotate_field (4);
3753 if (gdbarch_addr_bit (current_gdbarch) <= 32)
3754 ui_out_table_header (uiout, 10, ui_left, "addr", "Address");/* 5 */
3755 else
3756 ui_out_table_header (uiout, 18, ui_left, "addr", "Address");/* 5 */
3757 }
3758 if (nr_printable_breakpoints > 0)
3759 annotate_field (5);
3760 ui_out_table_header (uiout, 40, ui_noalign, "what", "What"); /* 6 */
3761 ui_out_table_body (uiout);
3762 if (nr_printable_breakpoints > 0)
3763 annotate_breakpoints_table ();
3764
3765 ALL_BREAKPOINTS (b)
3766 if (bnum == -1
3767 || bnum == b->number)
3768 {
3769 /* We only print out user settable breakpoints unless the
3770 allflag is set. */
3771 if (allflag || user_settable_breakpoint (b))
3772 print_one_breakpoint (b, &last_addr);
3773 }
3774
3775 do_cleanups (bkpttbl_chain);
3776
3777 if (nr_printable_breakpoints == 0)
3778 {
3779 if (bnum == -1)
3780 ui_out_message (uiout, 0, "No breakpoints or watchpoints.\n");
3781 else
3782 ui_out_message (uiout, 0, "No breakpoint or watchpoint number %d.\n",
3783 bnum);
3784 }
3785 else
3786 {
3787 /* Compare against (CORE_ADDR)-1 in case some compiler decides
3788 that a comparison of an unsigned with -1 is always false. */
3789 if (last_addr != (CORE_ADDR) -1 && !server_command)
3790 set_next_address (current_gdbarch, last_addr);
3791 }
3792
3793 /* FIXME? Should this be moved up so that it is only called when
3794 there have been breakpoints? */
3795 annotate_breakpoints_table_end ();
3796}
3797
3798static void
3799breakpoints_info (char *bnum_exp, int from_tty)
3800{
3801 int bnum = -1;
3802
3803 if (bnum_exp)
3804 bnum = parse_and_eval_long (bnum_exp);
3805
3806 breakpoint_1 (bnum, 0);
3807}
3808
3809static void
3810maintenance_info_breakpoints (char *bnum_exp, int from_tty)
3811{
3812 int bnum = -1;
3813
3814 if (bnum_exp)
3815 bnum = parse_and_eval_long (bnum_exp);
3816
3817 breakpoint_1 (bnum, 1);
3818}
3819
3820static int
3821breakpoint_has_pc (struct breakpoint *b,
3822 CORE_ADDR pc, struct obj_section *section)
3823{
3824 struct bp_location *bl = b->loc;
3825 for (; bl; bl = bl->next)
3826 {
3827 if (bl->address == pc
3828 && (!overlay_debugging || bl->section == section))
3829 return 1;
3830 }
3831 return 0;
3832}
3833
3834/* Print a message describing any breakpoints set at PC. */
3835
3836static void
3837describe_other_breakpoints (CORE_ADDR pc, struct obj_section *section,
3838 int thread)
3839{
3840 int others = 0;
3841 struct breakpoint *b;
3842
3843 ALL_BREAKPOINTS (b)
3844 others += breakpoint_has_pc (b, pc, section);
3845 if (others > 0)
3846 {
3847 if (others == 1)
3848 printf_filtered (_("Note: breakpoint "));
3849 else /* if (others == ???) */
3850 printf_filtered (_("Note: breakpoints "));
3851 ALL_BREAKPOINTS (b)
3852 if (breakpoint_has_pc (b, pc, section))
3853 {
3854 others--;
3855 printf_filtered ("%d", b->number);
3856 if (b->thread == -1 && thread != -1)
3857 printf_filtered (" (all threads)");
3858 else if (b->thread != -1)
3859 printf_filtered (" (thread %d)", b->thread);
3860 printf_filtered ("%s%s ",
3861 ((b->enable_state == bp_disabled ||
3862 b->enable_state == bp_call_disabled)
3863 ? " (disabled)"
3864 : b->enable_state == bp_permanent
3865 ? " (permanent)"
3866 : ""),
3867 (others > 1) ? ","
3868 : ((others == 1) ? " and" : ""));
3869 }
3870 printf_filtered (_("also set at pc "));
3871 fputs_filtered (paddress (pc), gdb_stdout);
3872 printf_filtered (".\n");
3873 }
3874}
3875\f
3876/* Set the default place to put a breakpoint
3877 for the `break' command with no arguments. */
3878
3879void
3880set_default_breakpoint (int valid, CORE_ADDR addr, struct symtab *symtab,
3881 int line)
3882{
3883 default_breakpoint_valid = valid;
3884 default_breakpoint_address = addr;
3885 default_breakpoint_symtab = symtab;
3886 default_breakpoint_line = line;
3887}
3888
3889/* Return true iff it is meaningful to use the address member of
3890 BPT. For some breakpoint types, the address member is irrelevant
3891 and it makes no sense to attempt to compare it to other addresses
3892 (or use it for any other purpose either).
3893
3894 More specifically, each of the following breakpoint types will always
3895 have a zero valued address and we don't want check_duplicates() to mark
3896 breakpoints of any of these types to be a duplicate of an actual
3897 breakpoint at address zero:
3898
3899 bp_watchpoint
3900 bp_hardware_watchpoint
3901 bp_read_watchpoint
3902 bp_access_watchpoint
3903 bp_catchpoint */
3904
3905static int
3906breakpoint_address_is_meaningful (struct breakpoint *bpt)
3907{
3908 enum bptype type = bpt->type;
3909
3910 return (type != bp_watchpoint
3911 && type != bp_hardware_watchpoint
3912 && type != bp_read_watchpoint
3913 && type != bp_access_watchpoint
3914 && type != bp_catchpoint);
3915}
3916
3917/* Rescan breakpoints at the same address and section as BPT,
3918 marking the first one as "first" and any others as "duplicates".
3919 This is so that the bpt instruction is only inserted once.
3920 If we have a permanent breakpoint at the same place as BPT, make
3921 that one the official one, and the rest as duplicates. */
3922
3923static void
3924check_duplicates_for (CORE_ADDR address, struct obj_section *section)
3925{
3926 struct bp_location *b;
3927 int count = 0;
3928 struct bp_location *perm_bp = 0;
3929
3930 ALL_BP_LOCATIONS (b)
3931 if (b->owner->enable_state != bp_disabled
3932 && b->owner->enable_state != bp_call_disabled
3933 && b->enabled
3934 && !b->shlib_disabled
3935 && b->address == address /* address / overlay match */
3936 && (!overlay_debugging || b->section == section)
3937 && breakpoint_address_is_meaningful (b->owner))
3938 {
3939 /* Have we found a permanent breakpoint? */
3940 if (b->owner->enable_state == bp_permanent)
3941 {
3942 perm_bp = b;
3943 break;
3944 }
3945
3946 count++;
3947 b->duplicate = count > 1;
3948 }
3949
3950 /* If we found a permanent breakpoint at this address, go over the
3951 list again and declare all the other breakpoints there to be the
3952 duplicates. */
3953 if (perm_bp)
3954 {
3955 perm_bp->duplicate = 0;
3956
3957 /* Permanent breakpoint should always be inserted. */
3958 if (! perm_bp->inserted)
3959 internal_error (__FILE__, __LINE__,
3960 _("allegedly permanent breakpoint is not "
3961 "actually inserted"));
3962
3963 ALL_BP_LOCATIONS (b)
3964 if (b != perm_bp)
3965 {
3966 if (b->owner->enable_state != bp_disabled
3967 && b->owner->enable_state != bp_call_disabled
3968 && b->enabled && !b->shlib_disabled
3969 && b->address == address /* address / overlay match */
3970 && (!overlay_debugging || b->section == section)
3971 && breakpoint_address_is_meaningful (b->owner))
3972 {
3973 if (b->inserted)
3974 internal_error (__FILE__, __LINE__,
3975 _("another breakpoint was inserted on top of "
3976 "a permanent breakpoint"));
3977
3978 b->duplicate = 1;
3979 }
3980 }
3981 }
3982}
3983
3984static void
3985check_duplicates (struct breakpoint *bpt)
3986{
3987 struct bp_location *bl = bpt->loc;
3988
3989 if (! breakpoint_address_is_meaningful (bpt))
3990 return;
3991
3992 for (; bl; bl = bl->next)
3993 check_duplicates_for (bl->address, bl->section);
3994}
3995
3996static void
3997breakpoint_adjustment_warning (CORE_ADDR from_addr, CORE_ADDR to_addr,
3998 int bnum, int have_bnum)
3999{
4000 char astr1[40];
4001 char astr2[40];
4002
4003 strcpy (astr1, hex_string_custom ((unsigned long) from_addr, 8));
4004 strcpy (astr2, hex_string_custom ((unsigned long) to_addr, 8));
4005 if (have_bnum)
4006 warning (_("Breakpoint %d address previously adjusted from %s to %s."),
4007 bnum, astr1, astr2);
4008 else
4009 warning (_("Breakpoint address adjusted from %s to %s."), astr1, astr2);
4010}
4011
4012/* Adjust a breakpoint's address to account for architectural constraints
4013 on breakpoint placement. Return the adjusted address. Note: Very
4014 few targets require this kind of adjustment. For most targets,
4015 this function is simply the identity function. */
4016
4017static CORE_ADDR
4018adjust_breakpoint_address (CORE_ADDR bpaddr, enum bptype bptype)
4019{
4020 if (!gdbarch_adjust_breakpoint_address_p (current_gdbarch))
4021 {
4022 /* Very few targets need any kind of breakpoint adjustment. */
4023 return bpaddr;
4024 }
4025 else if (bptype == bp_watchpoint
4026 || bptype == bp_hardware_watchpoint
4027 || bptype == bp_read_watchpoint
4028 || bptype == bp_access_watchpoint
4029 || bptype == bp_catchpoint)
4030 {
4031 /* Watchpoints and the various bp_catch_* eventpoints should not
4032 have their addresses modified. */
4033 return bpaddr;
4034 }
4035 else
4036 {
4037 CORE_ADDR adjusted_bpaddr;
4038
4039 /* Some targets have architectural constraints on the placement
4040 of breakpoint instructions. Obtain the adjusted address. */
4041 adjusted_bpaddr = gdbarch_adjust_breakpoint_address (current_gdbarch,
4042 bpaddr);
4043
4044 /* An adjusted breakpoint address can significantly alter
4045 a user's expectations. Print a warning if an adjustment
4046 is required. */
4047 if (adjusted_bpaddr != bpaddr)
4048 breakpoint_adjustment_warning (bpaddr, adjusted_bpaddr, 0, 0);
4049
4050 return adjusted_bpaddr;
4051 }
4052}
4053
4054/* Allocate a struct bp_location. */
4055
4056static struct bp_location *
4057allocate_bp_location (struct breakpoint *bpt)
4058{
4059 struct bp_location *loc, *loc_p;
4060
4061 loc = xmalloc (sizeof (struct bp_location));
4062 memset (loc, 0, sizeof (*loc));
4063
4064 loc->owner = bpt;
4065 loc->cond = NULL;
4066 loc->shlib_disabled = 0;
4067 loc->enabled = 1;
4068
4069 switch (bpt->type)
4070 {
4071 case bp_breakpoint:
4072 case bp_until:
4073 case bp_finish:
4074 case bp_longjmp:
4075 case bp_longjmp_resume:
4076 case bp_step_resume:
4077 case bp_watchpoint_scope:
4078 case bp_call_dummy:
4079 case bp_shlib_event:
4080 case bp_thread_event:
4081 case bp_overlay_event:
4082 loc->loc_type = bp_loc_software_breakpoint;
4083 break;
4084 case bp_hardware_breakpoint:
4085 loc->loc_type = bp_loc_hardware_breakpoint;
4086 break;
4087 case bp_hardware_watchpoint:
4088 case bp_read_watchpoint:
4089 case bp_access_watchpoint:
4090 loc->loc_type = bp_loc_hardware_watchpoint;
4091 break;
4092 case bp_watchpoint:
4093 case bp_catchpoint:
4094 loc->loc_type = bp_loc_other;
4095 break;
4096 default:
4097 internal_error (__FILE__, __LINE__, _("unknown breakpoint type"));
4098 }
4099
4100 return loc;
4101}
4102
4103static void free_bp_location (struct bp_location *loc)
4104{
4105 if (loc->cond)
4106 xfree (loc->cond);
4107
4108 if (loc->function_name)
4109 xfree (loc->function_name);
4110
4111 xfree (loc);
4112}
4113
4114/* Helper to set_raw_breakpoint below. Creates a breakpoint
4115 that has type BPTYPE and has no locations as yet. */
4116
4117static struct breakpoint *
4118set_raw_breakpoint_without_location (enum bptype bptype)
4119{
4120 struct breakpoint *b, *b1;
4121
4122 b = (struct breakpoint *) xmalloc (sizeof (struct breakpoint));
4123 memset (b, 0, sizeof (*b));
4124
4125 b->type = bptype;
4126 b->language = current_language->la_language;
4127 b->input_radix = input_radix;
4128 b->thread = -1;
4129 b->enable_state = bp_enabled;
4130 b->next = 0;
4131 b->silent = 0;
4132 b->ignore_count = 0;
4133 b->commands = NULL;
4134 b->frame_id = null_frame_id;
4135 b->forked_inferior_pid = null_ptid;
4136 b->exec_pathname = NULL;
4137 b->ops = NULL;
4138 b->condition_not_parsed = 0;
4139
4140 /* Add this breakpoint to the end of the chain
4141 so that a list of breakpoints will come out in order
4142 of increasing numbers. */
4143
4144 b1 = breakpoint_chain;
4145 if (b1 == 0)
4146 breakpoint_chain = b;
4147 else
4148 {
4149 while (b1->next)
4150 b1 = b1->next;
4151 b1->next = b;
4152 }
4153 return b;
4154}
4155
4156/* Initialize loc->function_name. */
4157static void
4158set_breakpoint_location_function (struct bp_location *loc)
4159{
4160 if (loc->owner->type == bp_breakpoint
4161 || loc->owner->type == bp_hardware_breakpoint)
4162 {
4163 find_pc_partial_function (loc->address, &(loc->function_name),
4164 NULL, NULL);
4165 if (loc->function_name)
4166 loc->function_name = xstrdup (loc->function_name);
4167 }
4168}
4169
4170/* set_raw_breakpoint is a low level routine for allocating and
4171 partially initializing a breakpoint of type BPTYPE. The newly
4172 created breakpoint's address, section, source file name, and line
4173 number are provided by SAL. The newly created and partially
4174 initialized breakpoint is added to the breakpoint chain and
4175 is also returned as the value of this function.
4176
4177 It is expected that the caller will complete the initialization of
4178 the newly created breakpoint struct as well as output any status
4179 information regarding the creation of a new breakpoint. In
4180 particular, set_raw_breakpoint does NOT set the breakpoint
4181 number! Care should be taken to not allow an error to occur
4182 prior to completing the initialization of the breakpoint. If this
4183 should happen, a bogus breakpoint will be left on the chain. */
4184
4185struct breakpoint *
4186set_raw_breakpoint (struct symtab_and_line sal, enum bptype bptype)
4187{
4188 struct breakpoint *b = set_raw_breakpoint_without_location (bptype);
4189 CORE_ADDR adjusted_address;
4190
4191 /* Adjust the breakpoint's address prior to allocating a location.
4192 Once we call allocate_bp_location(), that mostly uninitialized
4193 location will be placed on the location chain. Adjustment of the
4194 breakpoint may cause target_read_memory() to be called and we do
4195 not want its scan of the location chain to find a breakpoint and
4196 location that's only been partially initialized. */
4197 adjusted_address = adjust_breakpoint_address (sal.pc, b->type);
4198
4199 b->loc = allocate_bp_location (b);
4200 b->loc->requested_address = sal.pc;
4201 b->loc->address = adjusted_address;
4202
4203 if (sal.symtab == NULL)
4204 b->source_file = NULL;
4205 else
4206 b->source_file = savestring (sal.symtab->filename,
4207 strlen (sal.symtab->filename));
4208 b->loc->section = sal.section;
4209 b->line_number = sal.line;
4210
4211 set_breakpoint_location_function (b->loc);
4212
4213 breakpoints_changed ();
4214
4215 return b;
4216}
4217
4218
4219/* Note that the breakpoint object B describes a permanent breakpoint
4220 instruction, hard-wired into the inferior's code. */
4221void
4222make_breakpoint_permanent (struct breakpoint *b)
4223{
4224 struct bp_location *bl;
4225 b->enable_state = bp_permanent;
4226
4227 /* By definition, permanent breakpoints are already present in the code.
4228 Mark all locations as inserted. For now, make_breakpoint_permanent
4229 is called in just one place, so it's hard to say if it's reasonable
4230 to have permanent breakpoint with multiple locations or not,
4231 but it's easy to implmement. */
4232 for (bl = b->loc; bl; bl = bl->next)
4233 bl->inserted = 1;
4234}
4235
4236static struct breakpoint *
4237create_internal_breakpoint (CORE_ADDR address, enum bptype type)
4238{
4239 static int internal_breakpoint_number = -1;
4240 struct symtab_and_line sal;
4241 struct breakpoint *b;
4242
4243 init_sal (&sal); /* initialize to zeroes */
4244
4245 sal.pc = address;
4246 sal.section = find_pc_overlay (sal.pc);
4247
4248 b = set_raw_breakpoint (sal, type);
4249 b->number = internal_breakpoint_number--;
4250 b->disposition = disp_donttouch;
4251
4252 return b;
4253}
4254
4255
4256static void
4257create_longjmp_breakpoint (char *func_name)
4258{
4259 struct minimal_symbol *m;
4260
4261 if ((m = lookup_minimal_symbol_text (func_name, NULL)) == NULL)
4262 return;
4263 set_momentary_breakpoint_at_pc (SYMBOL_VALUE_ADDRESS (m), bp_longjmp);
4264 update_global_location_list (1);
4265}
4266
4267/* Call this routine when stepping and nexting to enable a breakpoint
4268 if we do a longjmp(). When we hit that breakpoint, call
4269 set_longjmp_resume_breakpoint() to figure out where we are going. */
4270
4271void
4272set_longjmp_breakpoint (void)
4273{
4274 if (gdbarch_get_longjmp_target_p (current_gdbarch))
4275 {
4276 create_longjmp_breakpoint ("longjmp");
4277 create_longjmp_breakpoint ("_longjmp");
4278 create_longjmp_breakpoint ("siglongjmp");
4279 create_longjmp_breakpoint ("_siglongjmp");
4280 }
4281}
4282
4283/* Delete all longjmp breakpoints from THREAD. */
4284void
4285delete_longjmp_breakpoint (int thread)
4286{
4287 struct breakpoint *b, *temp;
4288
4289 ALL_BREAKPOINTS_SAFE (b, temp)
4290 if (b->type == bp_longjmp)
4291 {
4292 if (b->thread == thread)
4293 delete_breakpoint (b);
4294 }
4295}
4296
4297static void
4298create_overlay_event_breakpoint_1 (char *func_name, struct objfile *objfile)
4299{
4300 struct breakpoint *b;
4301 struct minimal_symbol *m;
4302
4303 if ((m = lookup_minimal_symbol_text (func_name, objfile)) == NULL)
4304 return;
4305
4306 b = create_internal_breakpoint (SYMBOL_VALUE_ADDRESS (m),
4307 bp_overlay_event);
4308 b->addr_string = xstrdup (func_name);
4309
4310 if (overlay_debugging == ovly_auto)
4311 {
4312 b->enable_state = bp_enabled;
4313 overlay_events_enabled = 1;
4314 }
4315 else
4316 {
4317 b->enable_state = bp_disabled;
4318 overlay_events_enabled = 0;
4319 }
4320 update_global_location_list (1);
4321}
4322
4323static void
4324create_overlay_event_breakpoint (char *func_name)
4325{
4326 struct objfile *objfile;
4327 ALL_OBJFILES (objfile)
4328 create_overlay_event_breakpoint_1 (func_name, objfile);
4329}
4330
4331void
4332enable_overlay_breakpoints (void)
4333{
4334 struct breakpoint *b;
4335
4336 ALL_BREAKPOINTS (b)
4337 if (b->type == bp_overlay_event)
4338 {
4339 b->enable_state = bp_enabled;
4340 update_global_location_list (1);
4341 overlay_events_enabled = 1;
4342 }
4343}
4344
4345void
4346disable_overlay_breakpoints (void)
4347{
4348 struct breakpoint *b;
4349
4350 ALL_BREAKPOINTS (b)
4351 if (b->type == bp_overlay_event)
4352 {
4353 b->enable_state = bp_disabled;
4354 update_global_location_list (0);
4355 overlay_events_enabled = 0;
4356 }
4357}
4358
4359struct breakpoint *
4360create_thread_event_breakpoint (CORE_ADDR address)
4361{
4362 struct breakpoint *b;
4363
4364 b = create_internal_breakpoint (address, bp_thread_event);
4365
4366 b->enable_state = bp_enabled;
4367 /* addr_string has to be used or breakpoint_re_set will delete me. */
4368 b->addr_string = xstrprintf ("*0x%s", paddr (b->loc->address));
4369
4370 update_global_location_list_nothrow (1);
4371
4372 return b;
4373}
4374
4375void
4376remove_thread_event_breakpoints (void)
4377{
4378 struct breakpoint *b, *temp;
4379
4380 ALL_BREAKPOINTS_SAFE (b, temp)
4381 if (b->type == bp_thread_event)
4382 delete_breakpoint (b);
4383}
4384
4385struct captured_parse_breakpoint_args
4386 {
4387 char **arg_p;
4388 struct symtabs_and_lines *sals_p;
4389 char ***addr_string_p;
4390 int *not_found_ptr;
4391 };
4392
4393struct lang_and_radix
4394 {
4395 enum language lang;
4396 int radix;
4397 };
4398
4399
4400void
4401remove_solib_event_breakpoints (void)
4402{
4403 struct breakpoint *b, *temp;
4404
4405 ALL_BREAKPOINTS_SAFE (b, temp)
4406 if (b->type == bp_shlib_event)
4407 delete_breakpoint (b);
4408}
4409
4410struct breakpoint *
4411create_solib_event_breakpoint (CORE_ADDR address)
4412{
4413 struct breakpoint *b;
4414
4415 b = create_internal_breakpoint (address, bp_shlib_event);
4416 update_global_location_list_nothrow (1);
4417 return b;
4418}
4419
4420/* Disable any breakpoints that are on code in shared libraries. Only
4421 apply to enabled breakpoints, disabled ones can just stay disabled. */
4422
4423void
4424disable_breakpoints_in_shlibs (void)
4425{
4426 struct bp_location *loc;
4427 int disabled_shlib_breaks = 0;
4428
4429 ALL_BP_LOCATIONS (loc)
4430 {
4431 struct breakpoint *b = loc->owner;
4432 /* We apply the check to all breakpoints, including disabled
4433 for those with loc->duplicate set. This is so that when breakpoint
4434 becomes enabled, or the duplicate is removed, gdb will try to insert
4435 all breakpoints. If we don't set shlib_disabled here, we'll try
4436 to insert those breakpoints and fail. */
4437 if (((b->type == bp_breakpoint) || (b->type == bp_hardware_breakpoint))
4438 && !loc->shlib_disabled
4439#ifdef PC_SOLIB
4440 && PC_SOLIB (loc->address)
4441#else
4442 && solib_address (loc->address)
4443#endif
4444 )
4445 {
4446 loc->shlib_disabled = 1;
4447 }
4448 }
4449}
4450
4451/* Disable any breakpoints that are in in an unloaded shared library. Only
4452 apply to enabled breakpoints, disabled ones can just stay disabled. */
4453
4454static void
4455disable_breakpoints_in_unloaded_shlib (struct so_list *solib)
4456{
4457 struct bp_location *loc;
4458 int disabled_shlib_breaks = 0;
4459
4460 ALL_BP_LOCATIONS (loc)
4461 {
4462 struct breakpoint *b = loc->owner;
4463 if ((loc->loc_type == bp_loc_hardware_breakpoint
4464 || loc->loc_type == bp_loc_software_breakpoint)
4465 && !loc->shlib_disabled)
4466 {
4467#ifdef PC_SOLIB
4468 char *so_name = PC_SOLIB (loc->address);
4469#else
4470 char *so_name = solib_address (loc->address);
4471#endif
4472 if (so_name && !strcmp (so_name, solib->so_name))
4473 {
4474 loc->shlib_disabled = 1;
4475 /* At this point, we cannot rely on remove_breakpoint
4476 succeeding so we must mark the breakpoint as not inserted
4477 to prevent future errors occurring in remove_breakpoints. */
4478 loc->inserted = 0;
4479 if (!disabled_shlib_breaks)
4480 {
4481 target_terminal_ours_for_output ();
4482 warning (_("Temporarily disabling breakpoints for unloaded shared library \"%s\""),
4483 so_name);
4484 }
4485 disabled_shlib_breaks = 1;
4486 }
4487 }
4488 }
4489}
4490
4491/* FORK & VFORK catchpoints. */
4492
4493/* Implement the "insert" breakpoint_ops method for fork catchpoints. */
4494
4495static void
4496insert_catch_fork (struct breakpoint *b)
4497{
4498 target_insert_fork_catchpoint (PIDGET (inferior_ptid));
4499}
4500
4501/* Implement the "remove" breakpoint_ops method for fork catchpoints. */
4502
4503static int
4504remove_catch_fork (struct breakpoint *b)
4505{
4506 return target_remove_fork_catchpoint (PIDGET (inferior_ptid));
4507}
4508
4509/* Implement the "breakpoint_hit" breakpoint_ops method for fork
4510 catchpoints. */
4511
4512static int
4513breakpoint_hit_catch_fork (struct breakpoint *b)
4514{
4515 return inferior_has_forked (inferior_ptid, &b->forked_inferior_pid);
4516}
4517
4518/* Implement the "print_it" breakpoint_ops method for fork catchpoints. */
4519
4520static enum print_stop_action
4521print_it_catch_fork (struct breakpoint *b)
4522{
4523 annotate_catchpoint (b->number);
4524 printf_filtered (_("\nCatchpoint %d (forked process %d), "),
4525 b->number, ptid_get_pid (b->forked_inferior_pid));
4526 return PRINT_SRC_AND_LOC;
4527}
4528
4529/* Implement the "print_one" breakpoint_ops method for fork catchpoints. */
4530
4531static void
4532print_one_catch_fork (struct breakpoint *b, CORE_ADDR *last_addr)
4533{
4534 struct value_print_options opts;
4535
4536 get_user_print_options (&opts);
4537
4538 /* Field 4, the address, is omitted (which makes the columns
4539 not line up too nicely with the headers, but the effect
4540 is relatively readable). */
4541 if (opts.addressprint)
4542 ui_out_field_skip (uiout, "addr");
4543 annotate_field (5);
4544 ui_out_text (uiout, "fork");
4545 if (!ptid_equal (b->forked_inferior_pid, null_ptid))
4546 {
4547 ui_out_text (uiout, ", process ");
4548 ui_out_field_int (uiout, "what",
4549 ptid_get_pid (b->forked_inferior_pid));
4550 ui_out_spaces (uiout, 1);
4551 }
4552}
4553
4554/* Implement the "print_mention" breakpoint_ops method for fork
4555 catchpoints. */
4556
4557static void
4558print_mention_catch_fork (struct breakpoint *b)
4559{
4560 printf_filtered (_("Catchpoint %d (fork)"), b->number);
4561}
4562
4563/* The breakpoint_ops structure to be used in fork catchpoints. */
4564
4565static struct breakpoint_ops catch_fork_breakpoint_ops =
4566{
4567 insert_catch_fork,
4568 remove_catch_fork,
4569 breakpoint_hit_catch_fork,
4570 print_it_catch_fork,
4571 print_one_catch_fork,
4572 print_mention_catch_fork
4573};
4574
4575/* Implement the "insert" breakpoint_ops method for vfork catchpoints. */
4576
4577static void
4578insert_catch_vfork (struct breakpoint *b)
4579{
4580 target_insert_vfork_catchpoint (PIDGET (inferior_ptid));
4581}
4582
4583/* Implement the "remove" breakpoint_ops method for vfork catchpoints. */
4584
4585static int
4586remove_catch_vfork (struct breakpoint *b)
4587{
4588 return target_remove_vfork_catchpoint (PIDGET (inferior_ptid));
4589}
4590
4591/* Implement the "breakpoint_hit" breakpoint_ops method for vfork
4592 catchpoints. */
4593
4594static int
4595breakpoint_hit_catch_vfork (struct breakpoint *b)
4596{
4597 return inferior_has_vforked (inferior_ptid, &b->forked_inferior_pid);
4598}
4599
4600/* Implement the "print_it" breakpoint_ops method for vfork catchpoints. */
4601
4602static enum print_stop_action
4603print_it_catch_vfork (struct breakpoint *b)
4604{
4605 annotate_catchpoint (b->number);
4606 printf_filtered (_("\nCatchpoint %d (vforked process %d), "),
4607 b->number, ptid_get_pid (b->forked_inferior_pid));
4608 return PRINT_SRC_AND_LOC;
4609}
4610
4611/* Implement the "print_one" breakpoint_ops method for vfork catchpoints. */
4612
4613static void
4614print_one_catch_vfork (struct breakpoint *b, CORE_ADDR *last_addr)
4615{
4616 struct value_print_options opts;
4617
4618 get_user_print_options (&opts);
4619 /* Field 4, the address, is omitted (which makes the columns
4620 not line up too nicely with the headers, but the effect
4621 is relatively readable). */
4622 if (opts.addressprint)
4623 ui_out_field_skip (uiout, "addr");
4624 annotate_field (5);
4625 ui_out_text (uiout, "vfork");
4626 if (!ptid_equal (b->forked_inferior_pid, null_ptid))
4627 {
4628 ui_out_text (uiout, ", process ");
4629 ui_out_field_int (uiout, "what",
4630 ptid_get_pid (b->forked_inferior_pid));
4631 ui_out_spaces (uiout, 1);
4632 }
4633}
4634
4635/* Implement the "print_mention" breakpoint_ops method for vfork
4636 catchpoints. */
4637
4638static void
4639print_mention_catch_vfork (struct breakpoint *b)
4640{
4641 printf_filtered (_("Catchpoint %d (vfork)"), b->number);
4642}
4643
4644/* The breakpoint_ops structure to be used in vfork catchpoints. */
4645
4646static struct breakpoint_ops catch_vfork_breakpoint_ops =
4647{
4648 insert_catch_vfork,
4649 remove_catch_vfork,
4650 breakpoint_hit_catch_vfork,
4651 print_it_catch_vfork,
4652 print_one_catch_vfork,
4653 print_mention_catch_vfork
4654};
4655
4656/* Create a new breakpoint of the bp_catchpoint kind and return it.
4657
4658 If TEMPFLAG is non-zero, then make the breakpoint temporary.
4659 If COND_STRING is not NULL, then store it in the breakpoint.
4660 OPS, if not NULL, is the breakpoint_ops structure associated
4661 to the catchpoint. */
4662
4663static struct breakpoint *
4664create_catchpoint (int tempflag, char *cond_string,
4665 struct breakpoint_ops *ops)
4666{
4667 struct symtab_and_line sal;
4668 struct breakpoint *b;
4669
4670 init_sal (&sal);
4671 sal.pc = 0;
4672 sal.symtab = NULL;
4673 sal.line = 0;
4674
4675 b = set_raw_breakpoint (sal, bp_catchpoint);
4676 set_breakpoint_count (breakpoint_count + 1);
4677 b->number = breakpoint_count;
4678
4679 b->cond_string = (cond_string == NULL) ?
4680 NULL : savestring (cond_string, strlen (cond_string));
4681 b->thread = -1;
4682 b->addr_string = NULL;
4683 b->enable_state = bp_enabled;
4684 b->disposition = tempflag ? disp_del : disp_donttouch;
4685 b->ops = ops;
4686
4687 mention (b);
4688 update_global_location_list (1);
4689
4690 return b;
4691}
4692
4693static void
4694create_fork_vfork_event_catchpoint (int tempflag, char *cond_string,
4695 struct breakpoint_ops *ops)
4696{
4697 struct breakpoint *b = create_catchpoint (tempflag, cond_string, ops);
4698
4699 /* FIXME: We should put this information in a breakpoint private data
4700 area. */
4701 b->forked_inferior_pid = null_ptid;
4702}
4703
4704/* Exec catchpoints. */
4705
4706static void
4707insert_catch_exec (struct breakpoint *b)
4708{
4709 target_insert_exec_catchpoint (PIDGET (inferior_ptid));
4710}
4711
4712static int
4713remove_catch_exec (struct breakpoint *b)
4714{
4715 return target_remove_exec_catchpoint (PIDGET (inferior_ptid));
4716}
4717
4718static int
4719breakpoint_hit_catch_exec (struct breakpoint *b)
4720{
4721 return inferior_has_execd (inferior_ptid, &b->exec_pathname);
4722}
4723
4724static enum print_stop_action
4725print_it_catch_exec (struct breakpoint *b)
4726{
4727 annotate_catchpoint (b->number);
4728 printf_filtered (_("\nCatchpoint %d (exec'd %s), "), b->number,
4729 b->exec_pathname);
4730 return PRINT_SRC_AND_LOC;
4731}
4732
4733static void
4734print_one_catch_exec (struct breakpoint *b, CORE_ADDR *last_addr)
4735{
4736 struct value_print_options opts;
4737
4738 get_user_print_options (&opts);
4739
4740 /* Field 4, the address, is omitted (which makes the columns
4741 not line up too nicely with the headers, but the effect
4742 is relatively readable). */
4743 if (opts.addressprint)
4744 ui_out_field_skip (uiout, "addr");
4745 annotate_field (5);
4746 ui_out_text (uiout, "exec");
4747 if (b->exec_pathname != NULL)
4748 {
4749 ui_out_text (uiout, ", program \"");
4750 ui_out_field_string (uiout, "what", b->exec_pathname);
4751 ui_out_text (uiout, "\" ");
4752 }
4753}
4754
4755static void
4756print_mention_catch_exec (struct breakpoint *b)
4757{
4758 printf_filtered (_("Catchpoint %d (exec)"), b->number);
4759}
4760
4761static struct breakpoint_ops catch_exec_breakpoint_ops =
4762{
4763 insert_catch_exec,
4764 remove_catch_exec,
4765 breakpoint_hit_catch_exec,
4766 print_it_catch_exec,
4767 print_one_catch_exec,
4768 print_mention_catch_exec
4769};
4770
4771static int
4772hw_breakpoint_used_count (void)
4773{
4774 struct breakpoint *b;
4775 int i = 0;
4776
4777 ALL_BREAKPOINTS (b)
4778 {
4779 if (b->type == bp_hardware_breakpoint && breakpoint_enabled (b))
4780 i++;
4781 }
4782
4783 return i;
4784}
4785
4786static int
4787hw_watchpoint_used_count (enum bptype type, int *other_type_used)
4788{
4789 struct breakpoint *b;
4790 int i = 0;
4791
4792 *other_type_used = 0;
4793 ALL_BREAKPOINTS (b)
4794 {
4795 if (breakpoint_enabled (b))
4796 {
4797 if (b->type == type)
4798 i++;
4799 else if ((b->type == bp_hardware_watchpoint ||
4800 b->type == bp_read_watchpoint ||
4801 b->type == bp_access_watchpoint))
4802 *other_type_used = 1;
4803 }
4804 }
4805 return i;
4806}
4807
4808void
4809disable_watchpoints_before_interactive_call_start (void)
4810{
4811 struct breakpoint *b;
4812
4813 ALL_BREAKPOINTS (b)
4814 {
4815 if (((b->type == bp_watchpoint)
4816 || (b->type == bp_hardware_watchpoint)
4817 || (b->type == bp_read_watchpoint)
4818 || (b->type == bp_access_watchpoint))
4819 && breakpoint_enabled (b))
4820 {
4821 b->enable_state = bp_call_disabled;
4822 update_global_location_list (0);
4823 }
4824 }
4825}
4826
4827void
4828enable_watchpoints_after_interactive_call_stop (void)
4829{
4830 struct breakpoint *b;
4831
4832 ALL_BREAKPOINTS (b)
4833 {
4834 if (((b->type == bp_watchpoint)
4835 || (b->type == bp_hardware_watchpoint)
4836 || (b->type == bp_read_watchpoint)
4837 || (b->type == bp_access_watchpoint))
4838 && (b->enable_state == bp_call_disabled))
4839 {
4840 b->enable_state = bp_enabled;
4841 update_global_location_list (1);
4842 }
4843 }
4844}
4845
4846
4847/* Set a breakpoint that will evaporate an end of command
4848 at address specified by SAL.
4849 Restrict it to frame FRAME if FRAME is nonzero. */
4850
4851struct breakpoint *
4852set_momentary_breakpoint (struct symtab_and_line sal, struct frame_id frame_id,
4853 enum bptype type)
4854{
4855 struct breakpoint *b;
4856 b = set_raw_breakpoint (sal, type);
4857 b->enable_state = bp_enabled;
4858 b->disposition = disp_donttouch;
4859 b->frame_id = frame_id;
4860
4861 /* If we're debugging a multi-threaded program, then we
4862 want momentary breakpoints to be active in only a
4863 single thread of control. */
4864 if (in_thread_list (inferior_ptid))
4865 b->thread = pid_to_thread_id (inferior_ptid);
4866
4867 update_global_location_list_nothrow (1);
4868
4869 return b;
4870}
4871
4872struct breakpoint *
4873set_momentary_breakpoint_at_pc (CORE_ADDR pc, enum bptype type)
4874{
4875 struct symtab_and_line sal;
4876
4877 sal = find_pc_line (pc, 0);
4878 sal.pc = pc;
4879 sal.section = find_pc_overlay (pc);
4880 sal.explicit_pc = 1;
4881
4882 return set_momentary_breakpoint (sal, null_frame_id, type);
4883}
4884\f
4885
4886/* Tell the user we have just set a breakpoint B. */
4887
4888static void
4889mention (struct breakpoint *b)
4890{
4891 int say_where = 0;
4892 struct cleanup *ui_out_chain;
4893 struct value_print_options opts;
4894
4895 get_user_print_options (&opts);
4896
4897 /* FIXME: This is misplaced; mention() is called by things (like
4898 hitting a watchpoint) other than breakpoint creation. It should
4899 be possible to clean this up and at the same time replace the
4900 random calls to breakpoint_changed with this hook. */
4901 observer_notify_breakpoint_created (b->number);
4902
4903 if (b->ops != NULL && b->ops->print_mention != NULL)
4904 b->ops->print_mention (b);
4905 else
4906 switch (b->type)
4907 {
4908 case bp_none:
4909 printf_filtered (_("(apparently deleted?) Eventpoint %d: "), b->number);
4910 break;
4911 case bp_watchpoint:
4912 ui_out_text (uiout, "Watchpoint ");
4913 ui_out_chain = make_cleanup_ui_out_tuple_begin_end (uiout, "wpt");
4914 ui_out_field_int (uiout, "number", b->number);
4915 ui_out_text (uiout, ": ");
4916 ui_out_field_string (uiout, "exp", b->exp_string);
4917 do_cleanups (ui_out_chain);
4918 break;
4919 case bp_hardware_watchpoint:
4920 ui_out_text (uiout, "Hardware watchpoint ");
4921 ui_out_chain = make_cleanup_ui_out_tuple_begin_end (uiout, "wpt");
4922 ui_out_field_int (uiout, "number", b->number);
4923 ui_out_text (uiout, ": ");
4924 ui_out_field_string (uiout, "exp", b->exp_string);
4925 do_cleanups (ui_out_chain);
4926 break;
4927 case bp_read_watchpoint:
4928 ui_out_text (uiout, "Hardware read watchpoint ");
4929 ui_out_chain = make_cleanup_ui_out_tuple_begin_end (uiout, "hw-rwpt");
4930 ui_out_field_int (uiout, "number", b->number);
4931 ui_out_text (uiout, ": ");
4932 ui_out_field_string (uiout, "exp", b->exp_string);
4933 do_cleanups (ui_out_chain);
4934 break;
4935 case bp_access_watchpoint:
4936 ui_out_text (uiout, "Hardware access (read/write) watchpoint ");
4937 ui_out_chain = make_cleanup_ui_out_tuple_begin_end (uiout, "hw-awpt");
4938 ui_out_field_int (uiout, "number", b->number);
4939 ui_out_text (uiout, ": ");
4940 ui_out_field_string (uiout, "exp", b->exp_string);
4941 do_cleanups (ui_out_chain);
4942 break;
4943 case bp_breakpoint:
4944 if (ui_out_is_mi_like_p (uiout))
4945 {
4946 say_where = 0;
4947 break;
4948 }
4949 if (b->disposition == disp_del)
4950 printf_filtered (_("Temporary breakpoint"));
4951 else
4952 printf_filtered (_("Breakpoint"));
4953 printf_filtered (_(" %d"), b->number);
4954 say_where = 1;
4955 break;
4956 case bp_hardware_breakpoint:
4957 if (ui_out_is_mi_like_p (uiout))
4958 {
4959 say_where = 0;
4960 break;
4961 }
4962 printf_filtered (_("Hardware assisted breakpoint %d"), b->number);
4963 say_where = 1;
4964 break;
4965
4966 case bp_until:
4967 case bp_finish:
4968 case bp_longjmp:
4969 case bp_longjmp_resume:
4970 case bp_step_resume:
4971 case bp_call_dummy:
4972 case bp_watchpoint_scope:
4973 case bp_shlib_event:
4974 case bp_thread_event:
4975 case bp_overlay_event:
4976 break;
4977 }
4978
4979 if (say_where)
4980 {
4981 /* i18n: cagney/2005-02-11: Below needs to be merged into a
4982 single string. */
4983 if (b->loc == NULL)
4984 {
4985 printf_filtered (_(" (%s) pending."), b->addr_string);
4986 }
4987 else
4988 {
4989 if (opts.addressprint || b->source_file == NULL)
4990 {
4991 printf_filtered (" at ");
4992 fputs_filtered (paddress (b->loc->address), gdb_stdout);
4993 }
4994 if (b->source_file)
4995 printf_filtered (": file %s, line %d.",
4996 b->source_file, b->line_number);
4997
4998 if (b->loc->next)
4999 {
5000 struct bp_location *loc = b->loc;
5001 int n = 0;
5002 for (; loc; loc = loc->next)
5003 ++n;
5004 printf_filtered (" (%d locations)", n);
5005 }
5006
5007 }
5008 }
5009 if (ui_out_is_mi_like_p (uiout))
5010 return;
5011 printf_filtered ("\n");
5012}
5013\f
5014
5015static struct bp_location *
5016add_location_to_breakpoint (struct breakpoint *b,
5017 const struct symtab_and_line *sal)
5018{
5019 struct bp_location *loc, **tmp;
5020
5021 loc = allocate_bp_location (b);
5022 for (tmp = &(b->loc); *tmp != NULL; tmp = &((*tmp)->next))
5023 ;
5024 *tmp = loc;
5025 loc->requested_address = sal->pc;
5026 loc->address = adjust_breakpoint_address (loc->requested_address, b->type);
5027 loc->section = sal->section;
5028
5029 set_breakpoint_location_function (loc);
5030 return loc;
5031}
5032\f
5033
5034/* Return 1 if LOC is pointing to a permanent breakpoint,
5035 return 0 otherwise. */
5036
5037static int
5038bp_loc_is_permanent (struct bp_location *loc)
5039{
5040 int len;
5041 CORE_ADDR addr;
5042 const gdb_byte *brk;
5043 gdb_byte *target_mem;
5044 struct cleanup *cleanup;
5045 int retval = 0;
5046
5047 gdb_assert (loc != NULL);
5048
5049 addr = loc->address;
5050 brk = gdbarch_breakpoint_from_pc (current_gdbarch, &addr, &len);
5051
5052 /* Software breakpoints unsupported? */
5053 if (brk == NULL)
5054 return 0;
5055
5056 target_mem = alloca (len);
5057
5058 /* Enable the automatic memory restoration from breakpoints while
5059 we read the memory. Otherwise we could say about our temporary
5060 breakpoints they are permanent. */
5061 cleanup = make_show_memory_breakpoints_cleanup (0);
5062
5063 if (target_read_memory (loc->address, target_mem, len) == 0
5064 && memcmp (target_mem, brk, len) == 0)
5065 retval = 1;
5066
5067 do_cleanups (cleanup);
5068
5069 return retval;
5070}
5071
5072
5073
5074/* Create a breakpoint with SAL as location. Use ADDR_STRING
5075 as textual description of the location, and COND_STRING
5076 as condition expression. */
5077
5078static void
5079create_breakpoint (struct symtabs_and_lines sals, char *addr_string,
5080 char *cond_string,
5081 enum bptype type, enum bpdisp disposition,
5082 int thread, int ignore_count,
5083 struct breakpoint_ops *ops, int from_tty, int enabled)
5084{
5085 struct breakpoint *b = NULL;
5086 int i;
5087
5088 if (type == bp_hardware_breakpoint)
5089 {
5090 int i = hw_breakpoint_used_count ();
5091 int target_resources_ok =
5092 TARGET_CAN_USE_HARDWARE_WATCHPOINT (bp_hardware_breakpoint,
5093 i + 1, 0);
5094 if (target_resources_ok == 0)
5095 error (_("No hardware breakpoint support in the target."));
5096 else if (target_resources_ok < 0)
5097 error (_("Hardware breakpoints used exceeds limit."));
5098 }
5099
5100 for (i = 0; i < sals.nelts; ++i)
5101 {
5102 struct symtab_and_line sal = sals.sals[i];
5103 struct bp_location *loc;
5104
5105 if (from_tty)
5106 describe_other_breakpoints (sal.pc, sal.section, thread);
5107
5108 if (i == 0)
5109 {
5110 b = set_raw_breakpoint (sal, type);
5111 set_breakpoint_count (breakpoint_count + 1);
5112 b->number = breakpoint_count;
5113 b->thread = thread;
5114
5115 b->cond_string = cond_string;
5116 b->ignore_count = ignore_count;
5117 b->enable_state = enabled ? bp_enabled : bp_disabled;
5118 b->disposition = disposition;
5119
5120 loc = b->loc;
5121 }
5122 else
5123 {
5124 loc = add_location_to_breakpoint (b, &sal);
5125 }
5126
5127 if (bp_loc_is_permanent (loc))
5128 make_breakpoint_permanent (b);
5129
5130 if (b->cond_string)
5131 {
5132 char *arg = b->cond_string;
5133 loc->cond = parse_exp_1 (&arg, block_for_pc (loc->address), 0);
5134 if (*arg)
5135 error (_("Garbage %s follows condition"), arg);
5136 }
5137 }
5138
5139 if (addr_string)
5140 b->addr_string = addr_string;
5141 else
5142 /* addr_string has to be used or breakpoint_re_set will delete
5143 me. */
5144 b->addr_string = xstrprintf ("*0x%s", paddr (b->loc->address));
5145
5146 b->ops = ops;
5147 mention (b);
5148}
5149
5150/* Remove element at INDEX_TO_REMOVE from SAL, shifting other
5151 elements to fill the void space. */
5152static void remove_sal (struct symtabs_and_lines *sal, int index_to_remove)
5153{
5154 int i = index_to_remove+1;
5155 int last_index = sal->nelts-1;
5156
5157 for (;i <= last_index; ++i)
5158 sal->sals[i-1] = sal->sals[i];
5159
5160 --(sal->nelts);
5161}
5162
5163/* If appropriate, obtains all sals that correspond
5164 to the same file and line as SAL. This is done
5165 only if SAL does not have explicit PC and has
5166 line and file information. If we got just a single
5167 expanded sal, return the original.
5168
5169 Otherwise, if SAL.explicit_line is not set, filter out
5170 all sals for which the name of enclosing function
5171 is different from SAL. This makes sure that if we have
5172 breakpoint originally set in template instantiation, say
5173 foo<int>(), we won't expand SAL to locations at the same
5174 line in all existing instantiations of 'foo'.
5175
5176*/
5177struct symtabs_and_lines
5178expand_line_sal_maybe (struct symtab_and_line sal)
5179{
5180 struct symtabs_and_lines expanded;
5181 CORE_ADDR original_pc = sal.pc;
5182 char *original_function = NULL;
5183 int found;
5184 int i;
5185
5186 /* If we have explicit pc, don't expand.
5187 If we have no line number, we can't expand. */
5188 if (sal.explicit_pc || sal.line == 0 || sal.symtab == NULL)
5189 {
5190 expanded.nelts = 1;
5191 expanded.sals = xmalloc (sizeof (struct symtab_and_line));
5192 expanded.sals[0] = sal;
5193 return expanded;
5194 }
5195
5196 sal.pc = 0;
5197 find_pc_partial_function (original_pc, &original_function, NULL, NULL);
5198
5199 expanded = expand_line_sal (sal);
5200 if (expanded.nelts == 1)
5201 {
5202 /* We had one sal, we got one sal. Without futher
5203 processing, just return the original sal. */
5204 xfree (expanded.sals);
5205 expanded.nelts = 1;
5206 expanded.sals = xmalloc (sizeof (struct symtab_and_line));
5207 sal.pc = original_pc;
5208 expanded.sals[0] = sal;
5209 return expanded;
5210 }
5211
5212 if (!sal.explicit_line)
5213 {
5214 CORE_ADDR func_addr, func_end;
5215 for (i = 0; i < expanded.nelts; ++i)
5216 {
5217 CORE_ADDR pc = expanded.sals[i].pc;
5218 char *this_function;
5219 if (find_pc_partial_function (pc, &this_function,
5220 &func_addr, &func_end))
5221 {
5222 if (this_function &&
5223 strcmp (this_function, original_function) != 0)
5224 {
5225 remove_sal (&expanded, i);
5226 --i;
5227 }
5228 else if (func_addr == pc)
5229 {
5230 /* We're at beginning of a function, and should
5231 skip prologue. */
5232 struct symbol *sym = find_pc_function (pc);
5233 if (sym)
5234 expanded.sals[i] = find_function_start_sal (sym, 1);
5235 else
5236 expanded.sals[i].pc
5237 = gdbarch_skip_prologue (current_gdbarch, pc);
5238 }
5239 }
5240 }
5241 }
5242
5243
5244 if (expanded.nelts <= 1)
5245 {
5246 /* This is un ugly workaround. If we get zero
5247 expanded sals then something is really wrong.
5248 Fix that by returnign the original sal. */
5249 xfree (expanded.sals);
5250 expanded.nelts = 1;
5251 expanded.sals = xmalloc (sizeof (struct symtab_and_line));
5252 sal.pc = original_pc;
5253 expanded.sals[0] = sal;
5254 return expanded;
5255 }
5256
5257 if (original_pc)
5258 {
5259 found = 0;
5260 for (i = 0; i < expanded.nelts; ++i)
5261 if (expanded.sals[i].pc == original_pc)
5262 {
5263 found = 1;
5264 break;
5265 }
5266 gdb_assert (found);
5267 }
5268
5269 return expanded;
5270}
5271
5272/* Add SALS.nelts breakpoints to the breakpoint table. For each
5273 SALS.sal[i] breakpoint, include the corresponding ADDR_STRING[i]
5274 value. COND_STRING, if not NULL, specified the condition to be
5275 used for all breakpoints. Essentially the only case where
5276 SALS.nelts is not 1 is when we set a breakpoint on an overloaded
5277 function. In that case, it's still not possible to specify
5278 separate conditions for different overloaded functions, so
5279 we take just a single condition string.
5280
5281 NOTE: If the function succeeds, the caller is expected to cleanup
5282 the arrays ADDR_STRING, COND_STRING, and SALS (but not the
5283 array contents). If the function fails (error() is called), the
5284 caller is expected to cleanups both the ADDR_STRING, COND_STRING,
5285 COND and SALS arrays and each of those arrays contents. */
5286
5287static void
5288create_breakpoints (struct symtabs_and_lines sals, char **addr_string,
5289 char *cond_string,
5290 enum bptype type, enum bpdisp disposition,
5291 int thread, int ignore_count,
5292 struct breakpoint_ops *ops, int from_tty,
5293 int enabled)
5294{
5295 int i;
5296 for (i = 0; i < sals.nelts; ++i)
5297 {
5298 struct symtabs_and_lines expanded =
5299 expand_line_sal_maybe (sals.sals[i]);
5300
5301 create_breakpoint (expanded, addr_string[i],
5302 cond_string, type, disposition,
5303 thread, ignore_count, ops, from_tty, enabled);
5304 }
5305
5306 update_global_location_list (1);
5307}
5308
5309/* Parse ARG which is assumed to be a SAL specification possibly
5310 followed by conditionals. On return, SALS contains an array of SAL
5311 addresses found. ADDR_STRING contains a vector of (canonical)
5312 address strings. ARG points to the end of the SAL. */
5313
5314static void
5315parse_breakpoint_sals (char **address,
5316 struct symtabs_and_lines *sals,
5317 char ***addr_string,
5318 int *not_found_ptr)
5319{
5320 char *addr_start = *address;
5321 *addr_string = NULL;
5322 /* If no arg given, or if first arg is 'if ', use the default
5323 breakpoint. */
5324 if ((*address) == NULL
5325 || (strncmp ((*address), "if", 2) == 0 && isspace ((*address)[2])))
5326 {
5327 if (default_breakpoint_valid)
5328 {
5329 struct symtab_and_line sal;
5330 init_sal (&sal); /* initialize to zeroes */
5331 sals->sals = (struct symtab_and_line *)
5332 xmalloc (sizeof (struct symtab_and_line));
5333 sal.pc = default_breakpoint_address;
5334 sal.line = default_breakpoint_line;
5335 sal.symtab = default_breakpoint_symtab;
5336 sal.section = find_pc_overlay (sal.pc);
5337 sals->sals[0] = sal;
5338 sals->nelts = 1;
5339 }
5340 else
5341 error (_("No default breakpoint address now."));
5342 }
5343 else
5344 {
5345 /* Force almost all breakpoints to be in terms of the
5346 current_source_symtab (which is decode_line_1's default). This
5347 should produce the results we want almost all of the time while
5348 leaving default_breakpoint_* alone.
5349 ObjC: However, don't match an Objective-C method name which
5350 may have a '+' or '-' succeeded by a '[' */
5351
5352 struct symtab_and_line cursal = get_current_source_symtab_and_line ();
5353
5354 if (default_breakpoint_valid
5355 && (!cursal.symtab
5356 || ((strchr ("+-", (*address)[0]) != NULL)
5357 && ((*address)[1] != '['))))
5358 *sals = decode_line_1 (address, 1, default_breakpoint_symtab,
5359 default_breakpoint_line, addr_string,
5360 not_found_ptr);
5361 else
5362 *sals = decode_line_1 (address, 1, (struct symtab *) NULL, 0,
5363 addr_string, not_found_ptr);
5364 }
5365 /* For any SAL that didn't have a canonical string, fill one in. */
5366 if (sals->nelts > 0 && *addr_string == NULL)
5367 *addr_string = xcalloc (sals->nelts, sizeof (char **));
5368 if (addr_start != (*address))
5369 {
5370 int i;
5371 for (i = 0; i < sals->nelts; i++)
5372 {
5373 /* Add the string if not present. */
5374 if ((*addr_string)[i] == NULL)
5375 (*addr_string)[i] = savestring (addr_start, (*address) - addr_start);
5376 }
5377 }
5378}
5379
5380
5381/* Convert each SAL into a real PC. Verify that the PC can be
5382 inserted as a breakpoint. If it can't throw an error. */
5383
5384static void
5385breakpoint_sals_to_pc (struct symtabs_and_lines *sals,
5386 char *address)
5387{
5388 int i;
5389 for (i = 0; i < sals->nelts; i++)
5390 resolve_sal_pc (&sals->sals[i]);
5391}
5392
5393static void
5394do_captured_parse_breakpoint (struct ui_out *ui, void *data)
5395{
5396 struct captured_parse_breakpoint_args *args = data;
5397
5398 parse_breakpoint_sals (args->arg_p, args->sals_p, args->addr_string_p,
5399 args->not_found_ptr);
5400}
5401
5402/* Given TOK, a string specification of condition and thread, as
5403 accepted by the 'break' command, extract the condition
5404 string and thread number and set *COND_STRING and *THREAD.
5405 PC identifies the context at which the condition should be parsed.
5406 If no condition is found, *COND_STRING is set to NULL.
5407 If no thread is found, *THREAD is set to -1. */
5408static void
5409find_condition_and_thread (char *tok, CORE_ADDR pc,
5410 char **cond_string, int *thread)
5411{
5412 *cond_string = NULL;
5413 *thread = -1;
5414 while (tok && *tok)
5415 {
5416 char *end_tok;
5417 int toklen;
5418 char *cond_start = NULL;
5419 char *cond_end = NULL;
5420 while (*tok == ' ' || *tok == '\t')
5421 tok++;
5422
5423 end_tok = tok;
5424
5425 while (*end_tok != ' ' && *end_tok != '\t' && *end_tok != '\000')
5426 end_tok++;
5427
5428 toklen = end_tok - tok;
5429
5430 if (toklen >= 1 && strncmp (tok, "if", toklen) == 0)
5431 {
5432 struct expression *expr;
5433
5434 tok = cond_start = end_tok + 1;
5435 expr = parse_exp_1 (&tok, block_for_pc (pc), 0);
5436 xfree (expr);
5437 cond_end = tok;
5438 *cond_string = savestring (cond_start,
5439 cond_end - cond_start);
5440 }
5441 else if (toklen >= 1 && strncmp (tok, "thread", toklen) == 0)
5442 {
5443 char *tmptok;
5444
5445 tok = end_tok + 1;
5446 tmptok = tok;
5447 *thread = strtol (tok, &tok, 0);
5448 if (tok == tmptok)
5449 error (_("Junk after thread keyword."));
5450 if (!valid_thread_id (*thread))
5451 error (_("Unknown thread %d."), *thread);
5452 }
5453 else
5454 error (_("Junk at end of arguments."));
5455 }
5456}
5457
5458/* Set a breakpoint. This function is shared between
5459 CLI and MI functions for setting a breakpoint.
5460 This function has two major modes of operations,
5461 selected by the PARSE_CONDITION_AND_THREAD parameter.
5462 If non-zero, the function will parse arg, extracting
5463 breakpoint location, address and thread. Otherwise,
5464 ARG is just the location of breakpoint, with condition
5465 and thread specified by the COND_STRING and THREAD
5466 parameters. */
5467
5468static void
5469break_command_really (char *arg, char *cond_string, int thread,
5470 int parse_condition_and_thread,
5471 int tempflag, int hardwareflag,
5472 int ignore_count,
5473 enum auto_boolean pending_break_support,
5474 struct breakpoint_ops *ops,
5475 int from_tty,
5476 int enabled)
5477{
5478 struct gdb_exception e;
5479 struct symtabs_and_lines sals;
5480 struct symtab_and_line pending_sal;
5481 char *copy_arg;
5482 char *err_msg;
5483 char *addr_start = arg;
5484 char **addr_string;
5485 struct cleanup *old_chain;
5486 struct cleanup *breakpoint_chain = NULL;
5487 struct captured_parse_breakpoint_args parse_args;
5488 int i;
5489 int pending = 0;
5490 int not_found = 0;
5491
5492 sals.sals = NULL;
5493 sals.nelts = 0;
5494 addr_string = NULL;
5495
5496 parse_args.arg_p = &arg;
5497 parse_args.sals_p = &sals;
5498 parse_args.addr_string_p = &addr_string;
5499 parse_args.not_found_ptr = &not_found;
5500
5501 e = catch_exception (uiout, do_captured_parse_breakpoint,
5502 &parse_args, RETURN_MASK_ALL);
5503
5504 /* If caller is interested in rc value from parse, set value. */
5505 switch (e.reason)
5506 {
5507 case RETURN_QUIT:
5508 throw_exception (e);
5509 case RETURN_ERROR:
5510 switch (e.error)
5511 {
5512 case NOT_FOUND_ERROR:
5513
5514 /* If pending breakpoint support is turned off, throw
5515 error. */
5516
5517 if (pending_break_support == AUTO_BOOLEAN_FALSE)
5518 throw_exception (e);
5519
5520 exception_print (gdb_stderr, e);
5521
5522 /* If pending breakpoint support is auto query and the user
5523 selects no, then simply return the error code. */
5524 if (pending_break_support == AUTO_BOOLEAN_AUTO &&
5525 !nquery ("Make breakpoint pending on future shared library load? "))
5526 return;
5527
5528 /* At this point, either the user was queried about setting
5529 a pending breakpoint and selected yes, or pending
5530 breakpoint behavior is on and thus a pending breakpoint
5531 is defaulted on behalf of the user. */
5532 copy_arg = xstrdup (addr_start);
5533 addr_string = &copy_arg;
5534 sals.nelts = 1;
5535 sals.sals = &pending_sal;
5536 pending_sal.pc = 0;
5537 pending = 1;
5538 break;
5539 default:
5540 throw_exception (e);
5541 }
5542 default:
5543 if (!sals.nelts)
5544 return;
5545 }
5546
5547 /* Create a chain of things that always need to be cleaned up. */
5548 old_chain = make_cleanup (null_cleanup, 0);
5549
5550 if (!pending)
5551 {
5552 /* Make sure that all storage allocated to SALS gets freed. */
5553 make_cleanup (xfree, sals.sals);
5554
5555 /* Cleanup the addr_string array but not its contents. */
5556 make_cleanup (xfree, addr_string);
5557 }
5558
5559 /* ----------------------------- SNIP -----------------------------
5560 Anything added to the cleanup chain beyond this point is assumed
5561 to be part of a breakpoint. If the breakpoint create succeeds
5562 then the memory is not reclaimed. */
5563 breakpoint_chain = make_cleanup (null_cleanup, 0);
5564
5565 /* Mark the contents of the addr_string for cleanup. These go on
5566 the breakpoint_chain and only occure if the breakpoint create
5567 fails. */
5568 for (i = 0; i < sals.nelts; i++)
5569 {
5570 if (addr_string[i] != NULL)
5571 make_cleanup (xfree, addr_string[i]);
5572 }
5573
5574 /* Resolve all line numbers to PC's and verify that the addresses
5575 are ok for the target. */
5576 if (!pending)
5577 breakpoint_sals_to_pc (&sals, addr_start);
5578
5579 /* Verify that condition can be parsed, before setting any
5580 breakpoints. Allocate a separate condition expression for each
5581 breakpoint. */
5582 if (!pending)
5583 {
5584 if (parse_condition_and_thread)
5585 {
5586 /* Here we only parse 'arg' to separate condition
5587 from thread number, so parsing in context of first
5588 sal is OK. When setting the breakpoint we'll
5589 re-parse it in context of each sal. */
5590 cond_string = NULL;
5591 thread = -1;
5592 find_condition_and_thread (arg, sals.sals[0].pc, &cond_string, &thread);
5593 if (cond_string)
5594 make_cleanup (xfree, cond_string);
5595 }
5596 else
5597 {
5598 /* Create a private copy of condition string. */
5599 if (cond_string)
5600 {
5601 cond_string = xstrdup (cond_string);
5602 make_cleanup (xfree, cond_string);
5603 }
5604 }
5605 create_breakpoints (sals, addr_string, cond_string,
5606 hardwareflag ? bp_hardware_breakpoint
5607 : bp_breakpoint,
5608 tempflag ? disp_del : disp_donttouch,
5609 thread, ignore_count, ops, from_tty, enabled);
5610 }
5611 else
5612 {
5613 struct symtab_and_line sal = {0};
5614 struct breakpoint *b;
5615
5616 make_cleanup (xfree, copy_arg);
5617
5618 b = set_raw_breakpoint_without_location (hardwareflag
5619 ? bp_hardware_breakpoint
5620 : bp_breakpoint);
5621 set_breakpoint_count (breakpoint_count + 1);
5622 b->number = breakpoint_count;
5623 b->thread = -1;
5624 b->addr_string = addr_string[0];
5625 b->cond_string = NULL;
5626 b->ignore_count = ignore_count;
5627 b->disposition = tempflag ? disp_del : disp_donttouch;
5628 b->condition_not_parsed = 1;
5629 b->ops = ops;
5630 b->enable_state = enabled ? bp_enabled : bp_disabled;
5631
5632 update_global_location_list (1);
5633 mention (b);
5634 }
5635
5636 if (sals.nelts > 1)
5637 warning (_("Multiple breakpoints were set.\n"
5638 "Use the \"delete\" command to delete unwanted breakpoints."));
5639 /* That's it. Discard the cleanups for data inserted into the
5640 breakpoint. */
5641 discard_cleanups (breakpoint_chain);
5642 /* But cleanup everything else. */
5643 do_cleanups (old_chain);
5644}
5645
5646/* Set a breakpoint.
5647 ARG is a string describing breakpoint address,
5648 condition, and thread.
5649 FLAG specifies if a breakpoint is hardware on,
5650 and if breakpoint is temporary, using BP_HARDWARE_FLAG
5651 and BP_TEMPFLAG. */
5652
5653static void
5654break_command_1 (char *arg, int flag, int from_tty)
5655{
5656 int hardwareflag = flag & BP_HARDWAREFLAG;
5657 int tempflag = flag & BP_TEMPFLAG;
5658
5659 break_command_really (arg,
5660 NULL, 0, 1 /* parse arg */,
5661 tempflag, hardwareflag,
5662 0 /* Ignore count */,
5663 pending_break_support,
5664 NULL /* breakpoint_ops */,
5665 from_tty,
5666 1 /* enabled */);
5667}
5668
5669
5670void
5671set_breakpoint (char *address, char *condition,
5672 int hardwareflag, int tempflag,
5673 int thread, int ignore_count,
5674 int pending, int enabled)
5675{
5676 break_command_really (address, condition, thread,
5677 0 /* condition and thread are valid. */,
5678 tempflag, hardwareflag,
5679 ignore_count,
5680 pending
5681 ? AUTO_BOOLEAN_TRUE : AUTO_BOOLEAN_FALSE,
5682 NULL, 0, enabled);
5683}
5684
5685/* Adjust SAL to the first instruction past the function prologue.
5686 The end of the prologue is determined using the line table from
5687 the debugging information.
5688
5689 If SAL is already past the prologue, then do nothing. */
5690
5691static void
5692skip_prologue_sal (struct symtab_and_line *sal)
5693{
5694 struct symbol *sym = find_pc_function (sal->pc);
5695 struct symtab_and_line start_sal;
5696
5697 if (sym == NULL)
5698 return;
5699
5700 start_sal = find_function_start_sal (sym, 1);
5701 if (sal->pc < start_sal.pc)
5702 *sal = start_sal;
5703}
5704
5705/* Helper function for break_command_1 and disassemble_command. */
5706
5707void
5708resolve_sal_pc (struct symtab_and_line *sal)
5709{
5710 CORE_ADDR pc;
5711
5712 if (sal->pc == 0 && sal->symtab != NULL)
5713 {
5714 if (!find_line_pc (sal->symtab, sal->line, &pc))
5715 error (_("No line %d in file \"%s\"."),
5716 sal->line, sal->symtab->filename);
5717 sal->pc = pc;
5718
5719 /* If this SAL corresponds to a breakpoint inserted using
5720 a line number, then skip the function prologue if necessary. */
5721 if (sal->explicit_line)
5722 skip_prologue_sal (sal);
5723 }
5724
5725 if (sal->section == 0 && sal->symtab != NULL)
5726 {
5727 struct blockvector *bv;
5728 struct block *b;
5729 struct symbol *sym;
5730
5731 bv = blockvector_for_pc_sect (sal->pc, 0, &b, sal->symtab);
5732 if (bv != NULL)
5733 {
5734 sym = block_linkage_function (b);
5735 if (sym != NULL)
5736 {
5737 fixup_symbol_section (sym, sal->symtab->objfile);
5738 sal->section = SYMBOL_OBJ_SECTION (sym);
5739 }
5740 else
5741 {
5742 /* It really is worthwhile to have the section, so we'll just
5743 have to look harder. This case can be executed if we have
5744 line numbers but no functions (as can happen in assembly
5745 source). */
5746
5747 struct minimal_symbol *msym;
5748
5749 msym = lookup_minimal_symbol_by_pc (sal->pc);
5750 if (msym)
5751 sal->section = SYMBOL_OBJ_SECTION (msym);
5752 }
5753 }
5754 }
5755}
5756
5757void
5758break_command (char *arg, int from_tty)
5759{
5760 break_command_1 (arg, 0, from_tty);
5761}
5762
5763void
5764tbreak_command (char *arg, int from_tty)
5765{
5766 break_command_1 (arg, BP_TEMPFLAG, from_tty);
5767}
5768
5769static void
5770hbreak_command (char *arg, int from_tty)
5771{
5772 break_command_1 (arg, BP_HARDWAREFLAG, from_tty);
5773}
5774
5775static void
5776thbreak_command (char *arg, int from_tty)
5777{
5778 break_command_1 (arg, (BP_TEMPFLAG | BP_HARDWAREFLAG), from_tty);
5779}
5780
5781static void
5782stop_command (char *arg, int from_tty)
5783{
5784 printf_filtered (_("Specify the type of breakpoint to set.\n\
5785Usage: stop in <function | address>\n\
5786 stop at <line>\n"));
5787}
5788
5789static void
5790stopin_command (char *arg, int from_tty)
5791{
5792 int badInput = 0;
5793
5794 if (arg == (char *) NULL)
5795 badInput = 1;
5796 else if (*arg != '*')
5797 {
5798 char *argptr = arg;
5799 int hasColon = 0;
5800
5801 /* look for a ':'. If this is a line number specification, then
5802 say it is bad, otherwise, it should be an address or
5803 function/method name */
5804 while (*argptr && !hasColon)
5805 {
5806 hasColon = (*argptr == ':');
5807 argptr++;
5808 }
5809
5810 if (hasColon)
5811 badInput = (*argptr != ':'); /* Not a class::method */
5812 else
5813 badInput = isdigit (*arg); /* a simple line number */
5814 }
5815
5816 if (badInput)
5817 printf_filtered (_("Usage: stop in <function | address>\n"));
5818 else
5819 break_command_1 (arg, 0, from_tty);
5820}
5821
5822static void
5823stopat_command (char *arg, int from_tty)
5824{
5825 int badInput = 0;
5826
5827 if (arg == (char *) NULL || *arg == '*') /* no line number */
5828 badInput = 1;
5829 else
5830 {
5831 char *argptr = arg;
5832 int hasColon = 0;
5833
5834 /* look for a ':'. If there is a '::' then get out, otherwise
5835 it is probably a line number. */
5836 while (*argptr && !hasColon)
5837 {
5838 hasColon = (*argptr == ':');
5839 argptr++;
5840 }
5841
5842 if (hasColon)
5843 badInput = (*argptr == ':'); /* we have class::method */
5844 else
5845 badInput = !isdigit (*arg); /* not a line number */
5846 }
5847
5848 if (badInput)
5849 printf_filtered (_("Usage: stop at <line>\n"));
5850 else
5851 break_command_1 (arg, 0, from_tty);
5852}
5853
5854/* accessflag: hw_write: watch write,
5855 hw_read: watch read,
5856 hw_access: watch access (read or write) */
5857static void
5858watch_command_1 (char *arg, int accessflag, int from_tty)
5859{
5860 struct breakpoint *b, *scope_breakpoint = NULL;
5861 struct symtab_and_line sal;
5862 struct expression *exp;
5863 struct block *exp_valid_block;
5864 struct value *val, *mark;
5865 struct frame_info *frame;
5866 struct frame_info *prev_frame = NULL;
5867 char *exp_start = NULL;
5868 char *exp_end = NULL;
5869 char *tok, *id_tok_start, *end_tok;
5870 int toklen;
5871 char *cond_start = NULL;
5872 char *cond_end = NULL;
5873 struct expression *cond = NULL;
5874 int i, other_type_used, target_resources_ok = 0;
5875 enum bptype bp_type;
5876 int mem_cnt = 0;
5877 int thread = -1;
5878
5879 init_sal (&sal); /* initialize to zeroes */
5880
5881 /* Make sure that we actually have parameters to parse. */
5882 if (arg != NULL && arg[0] != '\0')
5883 {
5884 toklen = strlen (arg); /* Size of argument list. */
5885
5886 /* Points tok to the end of the argument list. */
5887 tok = arg + toklen - 1;
5888
5889 /* Go backwards in the parameters list. Skip the last parameter.
5890 If we're expecting a 'thread <thread_num>' parameter, this should
5891 be the thread identifier. */
5892 while (tok > arg && (*tok == ' ' || *tok == '\t'))
5893 tok--;
5894 while (tok > arg && (*tok != ' ' && *tok != '\t'))
5895 tok--;
5896
5897 /* Points end_tok to the beginning of the last token. */
5898 id_tok_start = tok + 1;
5899
5900 /* Go backwards in the parameters list. Skip one more parameter.
5901 If we're expecting a 'thread <thread_num>' parameter, we should
5902 reach a "thread" token. */
5903 while (tok > arg && (*tok == ' ' || *tok == '\t'))
5904 tok--;
5905
5906 end_tok = tok;
5907
5908 while (tok > arg && (*tok != ' ' && *tok != '\t'))
5909 tok--;
5910
5911 /* Move the pointer forward to skip the whitespace and
5912 calculate the length of the token. */
5913 tok++;
5914 toklen = end_tok - tok;
5915
5916 if (toklen >= 1 && strncmp (tok, "thread", toklen) == 0)
5917 {
5918 /* At this point we've found a "thread" token, which means
5919 the user is trying to set a watchpoint that triggers
5920 only in a specific thread. */
5921 char *endp;
5922
5923 /* Extract the thread ID from the next token. */
5924 thread = strtol (id_tok_start, &endp, 0);
5925
5926 /* Check if the user provided a valid numeric value for the
5927 thread ID. */
5928 if (*endp != ' ' && *endp != '\t' && *endp != '\0')
5929 error (_("Invalid thread ID specification %s."), id_tok_start);
5930
5931 /* Check if the thread actually exists. */
5932 if (!valid_thread_id (thread))
5933 error (_("Unknown thread %d."), thread);
5934
5935 /* Truncate the string and get rid of the thread <thread_num>
5936 parameter before the parameter list is parsed by the
5937 evaluate_expression() function. */
5938 *tok = '\0';
5939 }
5940 }
5941
5942 /* Parse the rest of the arguments. */
5943 innermost_block = NULL;
5944 exp_start = arg;
5945 exp = parse_exp_1 (&arg, 0, 0);
5946 exp_end = arg;
5947 /* Remove trailing whitespace from the expression before saving it.
5948 This makes the eventual display of the expression string a bit
5949 prettier. */
5950 while (exp_end > exp_start && (exp_end[-1] == ' ' || exp_end[-1] == '\t'))
5951 --exp_end;
5952
5953 exp_valid_block = innermost_block;
5954 mark = value_mark ();
5955 fetch_watchpoint_value (exp, &val, NULL, NULL);
5956 if (val != NULL)
5957 release_value (val);
5958
5959 tok = arg;
5960 while (*tok == ' ' || *tok == '\t')
5961 tok++;
5962 end_tok = tok;
5963
5964 while (*end_tok != ' ' && *end_tok != '\t' && *end_tok != '\000')
5965 end_tok++;
5966
5967 toklen = end_tok - tok;
5968 if (toklen >= 1 && strncmp (tok, "if", toklen) == 0)
5969 {
5970 tok = cond_start = end_tok + 1;
5971 cond = parse_exp_1 (&tok, 0, 0);
5972 cond_end = tok;
5973 }
5974 if (*tok)
5975 error (_("Junk at end of command."));
5976
5977 if (accessflag == hw_read)
5978 bp_type = bp_read_watchpoint;
5979 else if (accessflag == hw_access)
5980 bp_type = bp_access_watchpoint;
5981 else
5982 bp_type = bp_hardware_watchpoint;
5983
5984 mem_cnt = can_use_hardware_watchpoint (val);
5985 if (mem_cnt == 0 && bp_type != bp_hardware_watchpoint)
5986 error (_("Expression cannot be implemented with read/access watchpoint."));
5987 if (mem_cnt != 0)
5988 {
5989 i = hw_watchpoint_used_count (bp_type, &other_type_used);
5990 target_resources_ok =
5991 TARGET_CAN_USE_HARDWARE_WATCHPOINT (bp_type, i + mem_cnt,
5992 other_type_used);
5993 if (target_resources_ok == 0 && bp_type != bp_hardware_watchpoint)
5994 error (_("Target does not support this type of hardware watchpoint."));
5995
5996 if (target_resources_ok < 0 && bp_type != bp_hardware_watchpoint)
5997 error (_("Target can only support one kind of HW watchpoint at a time."));
5998 }
5999
6000 /* Change the type of breakpoint to an ordinary watchpoint if a hardware
6001 watchpoint could not be set. */
6002 if (!mem_cnt || target_resources_ok <= 0)
6003 bp_type = bp_watchpoint;
6004
6005 frame = block_innermost_frame (exp_valid_block);
6006 if (frame)
6007 prev_frame = get_prev_frame (frame);
6008 else
6009 prev_frame = NULL;
6010
6011 /* If the expression is "local", then set up a "watchpoint scope"
6012 breakpoint at the point where we've left the scope of the watchpoint
6013 expression. Create the scope breakpoint before the watchpoint, so
6014 that we will encounter it first in bpstat_stop_status. */
6015 if (innermost_block && prev_frame)
6016 {
6017 scope_breakpoint = create_internal_breakpoint (get_frame_pc (prev_frame),
6018 bp_watchpoint_scope);
6019
6020 scope_breakpoint->enable_state = bp_enabled;
6021
6022 /* Automatically delete the breakpoint when it hits. */
6023 scope_breakpoint->disposition = disp_del;
6024
6025 /* Only break in the proper frame (help with recursion). */
6026 scope_breakpoint->frame_id = get_frame_id (prev_frame);
6027
6028 /* Set the address at which we will stop. */
6029 scope_breakpoint->loc->requested_address
6030 = get_frame_pc (prev_frame);
6031 scope_breakpoint->loc->address
6032 = adjust_breakpoint_address (scope_breakpoint->loc->requested_address,
6033 scope_breakpoint->type);
6034 }
6035
6036 /* Now set up the breakpoint. */
6037 b = set_raw_breakpoint (sal, bp_type);
6038 set_breakpoint_count (breakpoint_count + 1);
6039 b->number = breakpoint_count;
6040 b->thread = thread;
6041 b->disposition = disp_donttouch;
6042 b->exp = exp;
6043 b->exp_valid_block = exp_valid_block;
6044 b->exp_string = savestring (exp_start, exp_end - exp_start);
6045 b->val = val;
6046 b->val_valid = 1;
6047 b->loc->cond = cond;
6048 if (cond_start)
6049 b->cond_string = savestring (cond_start, cond_end - cond_start);
6050 else
6051 b->cond_string = 0;
6052
6053 if (frame)
6054 b->watchpoint_frame = get_frame_id (frame);
6055 else
6056 b->watchpoint_frame = null_frame_id;
6057
6058 if (scope_breakpoint != NULL)
6059 {
6060 /* The scope breakpoint is related to the watchpoint. We will
6061 need to act on them together. */
6062 b->related_breakpoint = scope_breakpoint;
6063 scope_breakpoint->related_breakpoint = b;
6064 }
6065
6066 value_free_to_mark (mark);
6067 mention (b);
6068 update_global_location_list (1);
6069}
6070
6071/* Return count of locations need to be watched and can be handled
6072 in hardware. If the watchpoint can not be handled
6073 in hardware return zero. */
6074
6075static int
6076can_use_hardware_watchpoint (struct value *v)
6077{
6078 int found_memory_cnt = 0;
6079 struct value *head = v;
6080
6081 /* Did the user specifically forbid us to use hardware watchpoints? */
6082 if (!can_use_hw_watchpoints)
6083 return 0;
6084
6085 /* Make sure that the value of the expression depends only upon
6086 memory contents, and values computed from them within GDB. If we
6087 find any register references or function calls, we can't use a
6088 hardware watchpoint.
6089
6090 The idea here is that evaluating an expression generates a series
6091 of values, one holding the value of every subexpression. (The
6092 expression a*b+c has five subexpressions: a, b, a*b, c, and
6093 a*b+c.) GDB's values hold almost enough information to establish
6094 the criteria given above --- they identify memory lvalues,
6095 register lvalues, computed values, etcetera. So we can evaluate
6096 the expression, and then scan the chain of values that leaves
6097 behind to decide whether we can detect any possible change to the
6098 expression's final value using only hardware watchpoints.
6099
6100 However, I don't think that the values returned by inferior
6101 function calls are special in any way. So this function may not
6102 notice that an expression involving an inferior function call
6103 can't be watched with hardware watchpoints. FIXME. */
6104 for (; v; v = value_next (v))
6105 {
6106 if (VALUE_LVAL (v) == lval_memory)
6107 {
6108 if (value_lazy (v))
6109 /* A lazy memory lvalue is one that GDB never needed to fetch;
6110 we either just used its address (e.g., `a' in `a.b') or
6111 we never needed it at all (e.g., `a' in `a,b'). */
6112 ;
6113 else
6114 {
6115 /* Ahh, memory we actually used! Check if we can cover
6116 it with hardware watchpoints. */
6117 struct type *vtype = check_typedef (value_type (v));
6118
6119 /* We only watch structs and arrays if user asked for it
6120 explicitly, never if they just happen to appear in a
6121 middle of some value chain. */
6122 if (v == head
6123 || (TYPE_CODE (vtype) != TYPE_CODE_STRUCT
6124 && TYPE_CODE (vtype) != TYPE_CODE_ARRAY))
6125 {
6126 CORE_ADDR vaddr = VALUE_ADDRESS (v) + value_offset (v);
6127 int len = TYPE_LENGTH (value_type (v));
6128
6129 if (!TARGET_REGION_OK_FOR_HW_WATCHPOINT (vaddr, len))
6130 return 0;
6131 else
6132 found_memory_cnt++;
6133 }
6134 }
6135 }
6136 else if (VALUE_LVAL (v) != not_lval
6137 && deprecated_value_modifiable (v) == 0)
6138 return 0; /* ??? What does this represent? */
6139 else if (VALUE_LVAL (v) == lval_register)
6140 return 0; /* cannot watch a register with a HW watchpoint */
6141 }
6142
6143 /* The expression itself looks suitable for using a hardware
6144 watchpoint, but give the target machine a chance to reject it. */
6145 return found_memory_cnt;
6146}
6147
6148void
6149watch_command_wrapper (char *arg, int from_tty)
6150{
6151 watch_command (arg, from_tty);
6152}
6153
6154static void
6155watch_command (char *arg, int from_tty)
6156{
6157 watch_command_1 (arg, hw_write, from_tty);
6158}
6159
6160void
6161rwatch_command_wrapper (char *arg, int from_tty)
6162{
6163 rwatch_command (arg, from_tty);
6164}
6165
6166static void
6167rwatch_command (char *arg, int from_tty)
6168{
6169 watch_command_1 (arg, hw_read, from_tty);
6170}
6171
6172void
6173awatch_command_wrapper (char *arg, int from_tty)
6174{
6175 awatch_command (arg, from_tty);
6176}
6177
6178static void
6179awatch_command (char *arg, int from_tty)
6180{
6181 watch_command_1 (arg, hw_access, from_tty);
6182}
6183\f
6184
6185/* Helper routines for the until_command routine in infcmd.c. Here
6186 because it uses the mechanisms of breakpoints. */
6187
6188struct until_break_command_continuation_args
6189{
6190 struct breakpoint *breakpoint;
6191 struct breakpoint *breakpoint2;
6192};
6193
6194/* This function is called by fetch_inferior_event via the
6195 cmd_continuation pointer, to complete the until command. It takes
6196 care of cleaning up the temporary breakpoints set up by the until
6197 command. */
6198static void
6199until_break_command_continuation (void *arg)
6200{
6201 struct until_break_command_continuation_args *a = arg;
6202
6203 delete_breakpoint (a->breakpoint);
6204 if (a->breakpoint2)
6205 delete_breakpoint (a->breakpoint2);
6206}
6207
6208void
6209until_break_command (char *arg, int from_tty, int anywhere)
6210{
6211 struct symtabs_and_lines sals;
6212 struct symtab_and_line sal;
6213 struct frame_info *frame = get_selected_frame (NULL);
6214 struct frame_info *prev_frame = get_prev_frame (frame);
6215 struct breakpoint *breakpoint;
6216 struct breakpoint *breakpoint2 = NULL;
6217 struct cleanup *old_chain;
6218
6219 clear_proceed_status ();
6220
6221 /* Set a breakpoint where the user wants it and at return from
6222 this function */
6223
6224 if (default_breakpoint_valid)
6225 sals = decode_line_1 (&arg, 1, default_breakpoint_symtab,
6226 default_breakpoint_line, (char ***) NULL, NULL);
6227 else
6228 sals = decode_line_1 (&arg, 1, (struct symtab *) NULL,
6229 0, (char ***) NULL, NULL);
6230
6231 if (sals.nelts != 1)
6232 error (_("Couldn't get information on specified line."));
6233
6234 sal = sals.sals[0];
6235 xfree (sals.sals); /* malloc'd, so freed */
6236
6237 if (*arg)
6238 error (_("Junk at end of arguments."));
6239
6240 resolve_sal_pc (&sal);
6241
6242 if (anywhere)
6243 /* If the user told us to continue until a specified location,
6244 we don't specify a frame at which we need to stop. */
6245 breakpoint = set_momentary_breakpoint (sal, null_frame_id, bp_until);
6246 else
6247 /* Otherwise, specify the current frame, because we want to stop only
6248 at the very same frame. */
6249 breakpoint = set_momentary_breakpoint (sal, get_frame_id (frame),
6250 bp_until);
6251
6252 old_chain = make_cleanup_delete_breakpoint (breakpoint);
6253
6254 /* Keep within the current frame, or in frames called by the current
6255 one. */
6256 if (prev_frame)
6257 {
6258 sal = find_pc_line (get_frame_pc (prev_frame), 0);
6259 sal.pc = get_frame_pc (prev_frame);
6260 breakpoint2 = set_momentary_breakpoint (sal, get_frame_id (prev_frame),
6261 bp_until);
6262 make_cleanup_delete_breakpoint (breakpoint2);
6263 }
6264
6265 proceed (-1, TARGET_SIGNAL_DEFAULT, 0);
6266
6267 /* If we are running asynchronously, and proceed call above has actually
6268 managed to start the target, arrange for breakpoints to be
6269 deleted when the target stops. Otherwise, we're already stopped and
6270 delete breakpoints via cleanup chain. */
6271
6272 if (target_can_async_p () && is_running (inferior_ptid))
6273 {
6274 struct until_break_command_continuation_args *args;
6275 args = xmalloc (sizeof (*args));
6276
6277 args->breakpoint = breakpoint;
6278 args->breakpoint2 = breakpoint2;
6279
6280 discard_cleanups (old_chain);
6281 add_continuation (inferior_thread (),
6282 until_break_command_continuation, args,
6283 xfree);
6284 }
6285 else
6286 do_cleanups (old_chain);
6287}
6288
6289static void
6290ep_skip_leading_whitespace (char **s)
6291{
6292 if ((s == NULL) || (*s == NULL))
6293 return;
6294 while (isspace (**s))
6295 *s += 1;
6296}
6297
6298/* This function attempts to parse an optional "if <cond>" clause
6299 from the arg string. If one is not found, it returns NULL.
6300
6301 Else, it returns a pointer to the condition string. (It does not
6302 attempt to evaluate the string against a particular block.) And,
6303 it updates arg to point to the first character following the parsed
6304 if clause in the arg string. */
6305
6306static char *
6307ep_parse_optional_if_clause (char **arg)
6308{
6309 char *cond_string;
6310
6311 if (((*arg)[0] != 'i') || ((*arg)[1] != 'f') || !isspace ((*arg)[2]))
6312 return NULL;
6313
6314 /* Skip the "if" keyword. */
6315 (*arg) += 2;
6316
6317 /* Skip any extra leading whitespace, and record the start of the
6318 condition string. */
6319 ep_skip_leading_whitespace (arg);
6320 cond_string = *arg;
6321
6322 /* Assume that the condition occupies the remainder of the arg string. */
6323 (*arg) += strlen (cond_string);
6324
6325 return cond_string;
6326}
6327
6328/* This function attempts to parse an optional filename from the arg
6329 string. If one is not found, it returns NULL.
6330
6331 Else, it returns a pointer to the parsed filename. (This function
6332 makes no attempt to verify that a file of that name exists, or is
6333 accessible.) And, it updates arg to point to the first character
6334 following the parsed filename in the arg string.
6335
6336 Note that clients needing to preserve the returned filename for
6337 future access should copy it to their own buffers. */
6338static char *
6339ep_parse_optional_filename (char **arg)
6340{
6341 static char filename[1024];
6342 char *arg_p = *arg;
6343 int i;
6344 char c;
6345
6346 if ((*arg_p == '\0') || isspace (*arg_p))
6347 return NULL;
6348
6349 for (i = 0;; i++)
6350 {
6351 c = *arg_p;
6352 if (isspace (c))
6353 c = '\0';
6354 filename[i] = c;
6355 if (c == '\0')
6356 break;
6357 arg_p++;
6358 }
6359 *arg = arg_p;
6360
6361 return filename;
6362}
6363
6364/* Commands to deal with catching events, such as signals, exceptions,
6365 process start/exit, etc. */
6366
6367typedef enum
6368{
6369 catch_fork_temporary, catch_vfork_temporary,
6370 catch_fork_permanent, catch_vfork_permanent
6371}
6372catch_fork_kind;
6373
6374static void
6375catch_fork_command_1 (char *arg, int from_tty, struct cmd_list_element *command)
6376{
6377 char *cond_string = NULL;
6378 catch_fork_kind fork_kind;
6379 int tempflag;
6380
6381 fork_kind = (catch_fork_kind) (uintptr_t) get_cmd_context (command);
6382 tempflag = (fork_kind == catch_fork_temporary
6383 || fork_kind == catch_vfork_temporary);
6384
6385 if (!arg)
6386 arg = "";
6387 ep_skip_leading_whitespace (&arg);
6388
6389 /* The allowed syntax is:
6390 catch [v]fork
6391 catch [v]fork if <cond>
6392
6393 First, check if there's an if clause. */
6394 cond_string = ep_parse_optional_if_clause (&arg);
6395
6396 if ((*arg != '\0') && !isspace (*arg))
6397 error (_("Junk at end of arguments."));
6398
6399 /* If this target supports it, create a fork or vfork catchpoint
6400 and enable reporting of such events. */
6401 switch (fork_kind)
6402 {
6403 case catch_fork_temporary:
6404 case catch_fork_permanent:
6405 create_fork_vfork_event_catchpoint (tempflag, cond_string,
6406 &catch_fork_breakpoint_ops);
6407 break;
6408 case catch_vfork_temporary:
6409 case catch_vfork_permanent:
6410 create_fork_vfork_event_catchpoint (tempflag, cond_string,
6411 &catch_vfork_breakpoint_ops);
6412 break;
6413 default:
6414 error (_("unsupported or unknown fork kind; cannot catch it"));
6415 break;
6416 }
6417}
6418
6419static void
6420catch_exec_command_1 (char *arg, int from_tty, struct cmd_list_element *command)
6421{
6422 int tempflag;
6423 char *cond_string = NULL;
6424
6425 tempflag = get_cmd_context (command) == CATCH_TEMPORARY;
6426
6427 if (!arg)
6428 arg = "";
6429 ep_skip_leading_whitespace (&arg);
6430
6431 /* The allowed syntax is:
6432 catch exec
6433 catch exec if <cond>
6434
6435 First, check if there's an if clause. */
6436 cond_string = ep_parse_optional_if_clause (&arg);
6437
6438 if ((*arg != '\0') && !isspace (*arg))
6439 error (_("Junk at end of arguments."));
6440
6441 /* If this target supports it, create an exec catchpoint
6442 and enable reporting of such events. */
6443 create_catchpoint (tempflag, cond_string, &catch_exec_breakpoint_ops);
6444}
6445
6446static enum print_stop_action
6447print_exception_catchpoint (struct breakpoint *b)
6448{
6449 int bp_temp, bp_throw;
6450
6451 annotate_catchpoint (b->number);
6452
6453 bp_throw = strstr (b->addr_string, "throw") != NULL;
6454 if (b->loc->address != b->loc->requested_address)
6455 breakpoint_adjustment_warning (b->loc->requested_address,
6456 b->loc->address,
6457 b->number, 1);
6458 bp_temp = b->loc->owner->disposition == disp_del;
6459 ui_out_text (uiout,
6460 bp_temp ? "Temporary catchpoint "
6461 : "Catchpoint ");
6462 if (!ui_out_is_mi_like_p (uiout))
6463 ui_out_field_int (uiout, "bkptno", b->number);
6464 ui_out_text (uiout,
6465 bp_throw ? " (exception thrown), "
6466 : " (exception caught), ");
6467 if (ui_out_is_mi_like_p (uiout))
6468 {
6469 ui_out_field_string (uiout, "reason",
6470 async_reason_lookup (EXEC_ASYNC_BREAKPOINT_HIT));
6471 ui_out_field_string (uiout, "disp", bpdisp_text (b->disposition));
6472 ui_out_field_int (uiout, "bkptno", b->number);
6473 }
6474 return PRINT_SRC_AND_LOC;
6475}
6476
6477static void
6478print_one_exception_catchpoint (struct breakpoint *b, CORE_ADDR *last_addr)
6479{
6480 struct value_print_options opts;
6481 get_user_print_options (&opts);
6482 if (opts.addressprint)
6483 {
6484 annotate_field (4);
6485 if (b->loc == NULL || b->loc->shlib_disabled)
6486 ui_out_field_string (uiout, "addr", "<PENDING>");
6487 else
6488 ui_out_field_core_addr (uiout, "addr", b->loc->address);
6489 }
6490 annotate_field (5);
6491 if (b->loc)
6492 *last_addr = b->loc->address;
6493 if (strstr (b->addr_string, "throw") != NULL)
6494 ui_out_field_string (uiout, "what", "exception throw");
6495 else
6496 ui_out_field_string (uiout, "what", "exception catch");
6497}
6498
6499static void
6500print_mention_exception_catchpoint (struct breakpoint *b)
6501{
6502 int bp_temp;
6503 int bp_throw;
6504
6505 bp_temp = b->loc->owner->disposition == disp_del;
6506 bp_throw = strstr (b->addr_string, "throw") != NULL;
6507 ui_out_text (uiout, bp_temp ? _("Temporary catchpoint ")
6508 : _("Catchpoint "));
6509 ui_out_field_int (uiout, "bkptno", b->number);
6510 ui_out_text (uiout, bp_throw ? _(" (throw)")
6511 : _(" (catch)"));
6512}
6513
6514static struct breakpoint_ops gnu_v3_exception_catchpoint_ops = {
6515 NULL, /* insert */
6516 NULL, /* remove */
6517 NULL, /* breakpoint_hit */
6518 print_exception_catchpoint,
6519 print_one_exception_catchpoint,
6520 print_mention_exception_catchpoint
6521};
6522
6523static int
6524handle_gnu_v3_exceptions (int tempflag, char *cond_string,
6525 enum exception_event_kind ex_event, int from_tty)
6526{
6527 char *trigger_func_name;
6528
6529 if (ex_event == EX_EVENT_CATCH)
6530 trigger_func_name = "__cxa_begin_catch";
6531 else
6532 trigger_func_name = "__cxa_throw";
6533
6534 break_command_really (trigger_func_name, cond_string, -1,
6535 0 /* condition and thread are valid. */,
6536 tempflag, 0,
6537 0,
6538 AUTO_BOOLEAN_TRUE /* pending */,
6539 &gnu_v3_exception_catchpoint_ops, from_tty,
6540 1 /* enabled */);
6541
6542 return 1;
6543}
6544
6545/* Deal with "catch catch" and "catch throw" commands */
6546
6547static void
6548catch_exception_command_1 (enum exception_event_kind ex_event, char *arg,
6549 int tempflag, int from_tty)
6550{
6551 char *cond_string = NULL;
6552 struct symtab_and_line *sal = NULL;
6553
6554 if (!arg)
6555 arg = "";
6556 ep_skip_leading_whitespace (&arg);
6557
6558 cond_string = ep_parse_optional_if_clause (&arg);
6559
6560 if ((*arg != '\0') && !isspace (*arg))
6561 error (_("Junk at end of arguments."));
6562
6563 if ((ex_event != EX_EVENT_THROW) &&
6564 (ex_event != EX_EVENT_CATCH))
6565 error (_("Unsupported or unknown exception event; cannot catch it"));
6566
6567 if (handle_gnu_v3_exceptions (tempflag, cond_string, ex_event, from_tty))
6568 return;
6569
6570 warning (_("Unsupported with this platform/compiler combination."));
6571}
6572
6573/* Implementation of "catch catch" command. */
6574
6575static void
6576catch_catch_command (char *arg, int from_tty, struct cmd_list_element *command)
6577{
6578 int tempflag = get_cmd_context (command) == CATCH_TEMPORARY;
6579 catch_exception_command_1 (EX_EVENT_CATCH, arg, tempflag, from_tty);
6580}
6581
6582/* Implementation of "catch throw" command. */
6583
6584static void
6585catch_throw_command (char *arg, int from_tty, struct cmd_list_element *command)
6586{
6587 int tempflag = get_cmd_context (command) == CATCH_TEMPORARY;
6588 catch_exception_command_1 (EX_EVENT_THROW, arg, tempflag, from_tty);
6589}
6590
6591/* Create a breakpoint struct for Ada exception catchpoints. */
6592
6593static void
6594create_ada_exception_breakpoint (struct symtab_and_line sal,
6595 char *addr_string,
6596 char *exp_string,
6597 char *cond_string,
6598 struct expression *cond,
6599 struct breakpoint_ops *ops,
6600 int tempflag,
6601 int from_tty)
6602{
6603 struct breakpoint *b;
6604
6605 if (from_tty)
6606 {
6607 describe_other_breakpoints (sal.pc, sal.section, -1);
6608 /* FIXME: brobecker/2006-12-28: Actually, re-implement a special
6609 version for exception catchpoints, because two catchpoints
6610 used for different exception names will use the same address.
6611 In this case, a "breakpoint ... also set at..." warning is
6612 unproductive. Besides. the warning phrasing is also a bit
6613 inapropriate, we should use the word catchpoint, and tell
6614 the user what type of catchpoint it is. The above is good
6615 enough for now, though. */
6616 }
6617
6618 b = set_raw_breakpoint (sal, bp_breakpoint);
6619 set_breakpoint_count (breakpoint_count + 1);
6620
6621 b->enable_state = bp_enabled;
6622 b->disposition = tempflag ? disp_del : disp_donttouch;
6623 b->number = breakpoint_count;
6624 b->ignore_count = 0;
6625 b->loc->cond = cond;
6626 b->addr_string = addr_string;
6627 b->language = language_ada;
6628 b->cond_string = cond_string;
6629 b->exp_string = exp_string;
6630 b->thread = -1;
6631 b->ops = ops;
6632
6633 mention (b);
6634 update_global_location_list (1);
6635}
6636
6637/* Implement the "catch exception" command. */
6638
6639static void
6640catch_ada_exception_command (char *arg, int from_tty,
6641 struct cmd_list_element *command)
6642{
6643 int tempflag;
6644 struct symtab_and_line sal;
6645 enum bptype type;
6646 char *addr_string = NULL;
6647 char *exp_string = NULL;
6648 char *cond_string = NULL;
6649 struct expression *cond = NULL;
6650 struct breakpoint_ops *ops = NULL;
6651
6652 tempflag = get_cmd_context (command) == CATCH_TEMPORARY;
6653
6654 if (!arg)
6655 arg = "";
6656 sal = ada_decode_exception_location (arg, &addr_string, &exp_string,
6657 &cond_string, &cond, &ops);
6658 create_ada_exception_breakpoint (sal, addr_string, exp_string,
6659 cond_string, cond, ops, tempflag,
6660 from_tty);
6661}
6662
6663/* Implement the "catch assert" command. */
6664
6665static void
6666catch_assert_command (char *arg, int from_tty, struct cmd_list_element *command)
6667{
6668 int tempflag;
6669 struct symtab_and_line sal;
6670 char *addr_string = NULL;
6671 struct breakpoint_ops *ops = NULL;
6672
6673 tempflag = get_cmd_context (command) == CATCH_TEMPORARY;
6674
6675 if (!arg)
6676 arg = "";
6677 sal = ada_decode_assert_location (arg, &addr_string, &ops);
6678 create_ada_exception_breakpoint (sal, addr_string, NULL, NULL, NULL, ops,
6679 tempflag, from_tty);
6680}
6681
6682static void
6683catch_command (char *arg, int from_tty)
6684{
6685 error (_("Catch requires an event name."));
6686}
6687\f
6688
6689static void
6690tcatch_command (char *arg, int from_tty)
6691{
6692 error (_("Catch requires an event name."));
6693}
6694
6695/* Delete breakpoints by address or line. */
6696
6697static void
6698clear_command (char *arg, int from_tty)
6699{
6700 struct breakpoint *b;
6701 VEC(breakpoint_p) *found = 0;
6702 int ix;
6703 int default_match;
6704 struct symtabs_and_lines sals;
6705 struct symtab_and_line sal;
6706 int i;
6707
6708 if (arg)
6709 {
6710 sals = decode_line_spec (arg, 1);
6711 default_match = 0;
6712 }
6713 else
6714 {
6715 sals.sals = (struct symtab_and_line *)
6716 xmalloc (sizeof (struct symtab_and_line));
6717 make_cleanup (xfree, sals.sals);
6718 init_sal (&sal); /* initialize to zeroes */
6719 sal.line = default_breakpoint_line;
6720 sal.symtab = default_breakpoint_symtab;
6721 sal.pc = default_breakpoint_address;
6722 if (sal.symtab == 0)
6723 error (_("No source file specified."));
6724
6725 sals.sals[0] = sal;
6726 sals.nelts = 1;
6727
6728 default_match = 1;
6729 }
6730
6731 /* We don't call resolve_sal_pc here. That's not
6732 as bad as it seems, because all existing breakpoints
6733 typically have both file/line and pc set. So, if
6734 clear is given file/line, we can match this to existing
6735 breakpoint without obtaining pc at all.
6736
6737 We only support clearing given the address explicitly
6738 present in breakpoint table. Say, we've set breakpoint
6739 at file:line. There were several PC values for that file:line,
6740 due to optimization, all in one block.
6741 We've picked one PC value. If "clear" is issued with another
6742 PC corresponding to the same file:line, the breakpoint won't
6743 be cleared. We probably can still clear the breakpoint, but
6744 since the other PC value is never presented to user, user
6745 can only find it by guessing, and it does not seem important
6746 to support that. */
6747
6748 /* For each line spec given, delete bps which correspond
6749 to it. Do it in two passes, solely to preserve the current
6750 behavior that from_tty is forced true if we delete more than
6751 one breakpoint. */
6752
6753 found = NULL;
6754 for (i = 0; i < sals.nelts; i++)
6755 {
6756 /* If exact pc given, clear bpts at that pc.
6757 If line given (pc == 0), clear all bpts on specified line.
6758 If defaulting, clear all bpts on default line
6759 or at default pc.
6760
6761 defaulting sal.pc != 0 tests to do
6762
6763 0 1 pc
6764 1 1 pc _and_ line
6765 0 0 line
6766 1 0 <can't happen> */
6767
6768 sal = sals.sals[i];
6769
6770 /* Find all matching breakpoints and add them to
6771 'found'. */
6772 ALL_BREAKPOINTS (b)
6773 {
6774 int match = 0;
6775 /* Are we going to delete b? */
6776 if (b->type != bp_none
6777 && b->type != bp_watchpoint
6778 && b->type != bp_hardware_watchpoint
6779 && b->type != bp_read_watchpoint
6780 && b->type != bp_access_watchpoint)
6781 {
6782 struct bp_location *loc = b->loc;
6783 for (; loc; loc = loc->next)
6784 {
6785 int pc_match = sal.pc
6786 && (loc->address == sal.pc)
6787 && (!section_is_overlay (loc->section)
6788 || loc->section == sal.section);
6789 int line_match = ((default_match || (0 == sal.pc))
6790 && b->source_file != NULL
6791 && sal.symtab != NULL
6792 && strcmp (b->source_file, sal.symtab->filename) == 0
6793 && b->line_number == sal.line);
6794 if (pc_match || line_match)
6795 {
6796 match = 1;
6797 break;
6798 }
6799 }
6800 }
6801
6802 if (match)
6803 VEC_safe_push(breakpoint_p, found, b);
6804 }
6805 }
6806 /* Now go thru the 'found' chain and delete them. */
6807 if (VEC_empty(breakpoint_p, found))
6808 {
6809 if (arg)
6810 error (_("No breakpoint at %s."), arg);
6811 else
6812 error (_("No breakpoint at this line."));
6813 }
6814
6815 if (VEC_length(breakpoint_p, found) > 1)
6816 from_tty = 1; /* Always report if deleted more than one */
6817 if (from_tty)
6818 {
6819 if (VEC_length(breakpoint_p, found) == 1)
6820 printf_unfiltered (_("Deleted breakpoint "));
6821 else
6822 printf_unfiltered (_("Deleted breakpoints "));
6823 }
6824 breakpoints_changed ();
6825
6826 for (ix = 0; VEC_iterate(breakpoint_p, found, ix, b); ix++)
6827 {
6828 if (from_tty)
6829 printf_unfiltered ("%d ", b->number);
6830 delete_breakpoint (b);
6831 }
6832 if (from_tty)
6833 putchar_unfiltered ('\n');
6834}
6835\f
6836/* Delete breakpoint in BS if they are `delete' breakpoints and
6837 all breakpoints that are marked for deletion, whether hit or not.
6838 This is called after any breakpoint is hit, or after errors. */
6839
6840void
6841breakpoint_auto_delete (bpstat bs)
6842{
6843 struct breakpoint *b, *temp;
6844
6845 for (; bs; bs = bs->next)
6846 if (bs->breakpoint_at
6847 && bs->breakpoint_at->owner
6848 && bs->breakpoint_at->owner->disposition == disp_del
6849 && bs->stop)
6850 delete_breakpoint (bs->breakpoint_at->owner);
6851
6852 ALL_BREAKPOINTS_SAFE (b, temp)
6853 {
6854 if (b->disposition == disp_del_at_next_stop)
6855 delete_breakpoint (b);
6856 }
6857}
6858
6859/* A cleanup function which destroys a vector. */
6860
6861static void
6862do_vec_free (void *p)
6863{
6864 VEC(bp_location_p) **vec = p;
6865 if (*vec)
6866 VEC_free (bp_location_p, *vec);
6867}
6868
6869/* If SHOULD_INSERT is false, do not insert any breakpoint locations
6870 into the inferior, only remove already-inserted locations that no
6871 longer should be inserted. Functions that delete a breakpoint or
6872 breakpoints should pass false, so that deleting a breakpoint
6873 doesn't have the side effect of inserting the locations of other
6874 breakpoints that are marked not-inserted, but should_be_inserted
6875 returns true on them.
6876
6877 This behaviour is useful is situations close to tear-down -- e.g.,
6878 after an exec, while the target still has execution, but breakpoint
6879 shadows of the previous executable image should *NOT* be restored
6880 to the new image; or before detaching, where the target still has
6881 execution and wants to delete breakpoints from GDB's lists, and all
6882 breakpoints had already been removed from the inferior. */
6883
6884static void
6885update_global_location_list (int should_insert)
6886{
6887 struct breakpoint *b;
6888 struct bp_location **next = &bp_location_chain;
6889 struct bp_location *loc;
6890 struct bp_location *loc2;
6891 VEC(bp_location_p) *old_locations = NULL;
6892 int ret;
6893 int ix;
6894 struct cleanup *cleanups;
6895
6896 cleanups = make_cleanup (do_vec_free, &old_locations);
6897 /* Store old locations for future reference. */
6898 for (loc = bp_location_chain; loc; loc = loc->global_next)
6899 VEC_safe_push (bp_location_p, old_locations, loc);
6900
6901 bp_location_chain = NULL;
6902 ALL_BREAKPOINTS (b)
6903 {
6904 for (loc = b->loc; loc; loc = loc->next)
6905 {
6906 *next = loc;
6907 next = &(loc->global_next);
6908 *next = NULL;
6909 }
6910 }
6911
6912 /* Identify bp_location instances that are no longer present in the new
6913 list, and therefore should be freed. Note that it's not necessary that
6914 those locations should be removed from inferior -- if there's another
6915 location at the same address (previously marked as duplicate),
6916 we don't need to remove/insert the location. */
6917 for (ix = 0; VEC_iterate(bp_location_p, old_locations, ix, loc); ++ix)
6918 {
6919 /* Tells if 'loc' is found amoung the new locations. If not, we
6920 have to free it. */
6921 int found_object = 0;
6922 /* Tells if the location should remain inserted in the target. */
6923 int keep_in_target = 0;
6924 int removed = 0;
6925 for (loc2 = bp_location_chain; loc2; loc2 = loc2->global_next)
6926 if (loc2 == loc)
6927 {
6928 found_object = 1;
6929 break;
6930 }
6931
6932 /* If this location is no longer present, and inserted, look if there's
6933 maybe a new location at the same address. If so, mark that one
6934 inserted, and don't remove this one. This is needed so that we
6935 don't have a time window where a breakpoint at certain location is not
6936 inserted. */
6937
6938 if (loc->inserted)
6939 {
6940 /* If the location is inserted now, we might have to remove it. */
6941
6942 if (found_object && should_be_inserted (loc))
6943 {
6944 /* The location is still present in the location list, and still
6945 should be inserted. Don't do anything. */
6946 keep_in_target = 1;
6947 }
6948 else
6949 {
6950 /* The location is either no longer present, or got disabled.
6951 See if there's another location at the same address, in which
6952 case we don't need to remove this one from the target. */
6953 if (breakpoint_address_is_meaningful (loc->owner))
6954 for (loc2 = bp_location_chain; loc2; loc2 = loc2->global_next)
6955 {
6956 /* For the sake of should_insert_location. The
6957 call to check_duplicates will fix up this later. */
6958 loc2->duplicate = 0;
6959 if (should_be_inserted (loc2)
6960 && loc2 != loc && loc2->address == loc->address)
6961 {
6962 loc2->inserted = 1;
6963 loc2->target_info = loc->target_info;
6964 keep_in_target = 1;
6965 break;
6966 }
6967 }
6968 }
6969
6970 if (!keep_in_target)
6971 {
6972 if (remove_breakpoint (loc, mark_uninserted))
6973 {
6974 /* This is just about all we can do. We could keep this
6975 location on the global list, and try to remove it next
6976 time, but there's no particular reason why we will
6977 succeed next time.
6978
6979 Note that at this point, loc->owner is still valid,
6980 as delete_breakpoint frees the breakpoint only
6981 after calling us. */
6982 printf_filtered (_("warning: Error removing breakpoint %d\n"),
6983 loc->owner->number);
6984 }
6985 removed = 1;
6986 }
6987 }
6988
6989 if (!found_object)
6990 {
6991 if (removed && non_stop)
6992 {
6993 /* This location was removed from the targets. In non-stop mode,
6994 a race condition is possible where we've removed a breakpoint,
6995 but stop events for that breakpoint are already queued and will
6996 arrive later. To suppress spurious SIGTRAPs reported to user,
6997 we keep this breakpoint location for a bit, and will retire it
6998 after we see 3 * thread_count events.
6999 The theory here is that reporting of events should,
7000 "on the average", be fair, so after that many event we'll see
7001 events from all threads that have anything of interest, and no
7002 longer need to keep this breakpoint. This is just a
7003 heuristic, but if it's wrong, we'll report unexpected SIGTRAP,
7004 which is usability issue, but not a correctness problem. */
7005 loc->events_till_retirement = 3 * (thread_count () + 1);
7006 loc->owner = NULL;
7007
7008 VEC_safe_push (bp_location_p, moribund_locations, loc);
7009 }
7010 else
7011 free_bp_location (loc);
7012 }
7013 }
7014
7015 ALL_BREAKPOINTS (b)
7016 {
7017 check_duplicates (b);
7018 }
7019
7020 if (breakpoints_always_inserted_mode () && should_insert
7021 && (target_has_execution
7022 || (gdbarch_has_global_solist (target_gdbarch)
7023 && target_supports_multi_process ())))
7024 insert_breakpoint_locations ();
7025
7026 do_cleanups (cleanups);
7027}
7028
7029void
7030breakpoint_retire_moribund (void)
7031{
7032 struct bp_location *loc;
7033 int ix;
7034
7035 for (ix = 0; VEC_iterate (bp_location_p, moribund_locations, ix, loc); ++ix)
7036 if (--(loc->events_till_retirement) == 0)
7037 {
7038 free_bp_location (loc);
7039 VEC_unordered_remove (bp_location_p, moribund_locations, ix);
7040 --ix;
7041 }
7042}
7043
7044static void
7045update_global_location_list_nothrow (int inserting)
7046{
7047 struct gdb_exception e;
7048 TRY_CATCH (e, RETURN_MASK_ERROR)
7049 update_global_location_list (inserting);
7050}
7051
7052/* Clear BPT from a BPS. */
7053static void
7054bpstat_remove_breakpoint (bpstat bps, struct breakpoint *bpt)
7055{
7056 bpstat bs;
7057 for (bs = bps; bs; bs = bs->next)
7058 if (bs->breakpoint_at && bs->breakpoint_at->owner == bpt)
7059 {
7060 bs->breakpoint_at = NULL;
7061 bs->old_val = NULL;
7062 /* bs->commands will be freed later. */
7063 }
7064}
7065
7066/* Callback for iterate_over_threads. */
7067static int
7068bpstat_remove_breakpoint_callback (struct thread_info *th, void *data)
7069{
7070 struct breakpoint *bpt = data;
7071 bpstat_remove_breakpoint (th->stop_bpstat, bpt);
7072 return 0;
7073}
7074
7075/* Delete a breakpoint and clean up all traces of it in the data
7076 structures. */
7077
7078void
7079delete_breakpoint (struct breakpoint *bpt)
7080{
7081 struct breakpoint *b;
7082 struct bp_location *loc, *next;
7083
7084 gdb_assert (bpt != NULL);
7085
7086 /* Has this bp already been deleted? This can happen because multiple
7087 lists can hold pointers to bp's. bpstat lists are especial culprits.
7088
7089 One example of this happening is a watchpoint's scope bp. When the
7090 scope bp triggers, we notice that the watchpoint is out of scope, and
7091 delete it. We also delete its scope bp. But the scope bp is marked
7092 "auto-deleting", and is already on a bpstat. That bpstat is then
7093 checked for auto-deleting bp's, which are deleted.
7094
7095 A real solution to this problem might involve reference counts in bp's,
7096 and/or giving them pointers back to their referencing bpstat's, and
7097 teaching delete_breakpoint to only free a bp's storage when no more
7098 references were extent. A cheaper bandaid was chosen. */
7099 if (bpt->type == bp_none)
7100 return;
7101
7102 observer_notify_breakpoint_deleted (bpt->number);
7103
7104 if (breakpoint_chain == bpt)
7105 breakpoint_chain = bpt->next;
7106
7107 ALL_BREAKPOINTS (b)
7108 if (b->next == bpt)
7109 {
7110 b->next = bpt->next;
7111 break;
7112 }
7113
7114 free_command_lines (&bpt->commands);
7115 if (bpt->cond_string != NULL)
7116 xfree (bpt->cond_string);
7117 if (bpt->addr_string != NULL)
7118 xfree (bpt->addr_string);
7119 if (bpt->exp != NULL)
7120 xfree (bpt->exp);
7121 if (bpt->exp_string != NULL)
7122 xfree (bpt->exp_string);
7123 if (bpt->val != NULL)
7124 value_free (bpt->val);
7125 if (bpt->source_file != NULL)
7126 xfree (bpt->source_file);
7127 if (bpt->exec_pathname != NULL)
7128 xfree (bpt->exec_pathname);
7129
7130 /* Be sure no bpstat's are pointing at it after it's been freed. */
7131 /* FIXME, how can we find all bpstat's?
7132 We just check stop_bpstat for now. Note that we cannot just
7133 remove bpstats pointing at bpt from the stop_bpstat list
7134 entirely, as breakpoint commands are associated with the bpstat;
7135 if we remove it here, then the later call to
7136 bpstat_do_actions (&stop_bpstat);
7137 in event-top.c won't do anything, and temporary breakpoints
7138 with commands won't work. */
7139
7140 iterate_over_threads (bpstat_remove_breakpoint_callback, bpt);
7141
7142 /* Now that breakpoint is removed from breakpoint
7143 list, update the global location list. This
7144 will remove locations that used to belong to
7145 this breakpoint. Do this before freeing
7146 the breakpoint itself, since remove_breakpoint
7147 looks at location's owner. It might be better
7148 design to have location completely self-contained,
7149 but it's not the case now. */
7150 update_global_location_list (0);
7151
7152
7153 /* On the chance that someone will soon try again to delete this same
7154 bp, we mark it as deleted before freeing its storage. */
7155 bpt->type = bp_none;
7156
7157 xfree (bpt);
7158}
7159
7160static void
7161do_delete_breakpoint_cleanup (void *b)
7162{
7163 delete_breakpoint (b);
7164}
7165
7166struct cleanup *
7167make_cleanup_delete_breakpoint (struct breakpoint *b)
7168{
7169 return make_cleanup (do_delete_breakpoint_cleanup, b);
7170}
7171
7172void
7173delete_command (char *arg, int from_tty)
7174{
7175 struct breakpoint *b, *temp;
7176
7177 dont_repeat ();
7178
7179 if (arg == 0)
7180 {
7181 int breaks_to_delete = 0;
7182
7183 /* Delete all breakpoints if no argument.
7184 Do not delete internal or call-dummy breakpoints, these
7185 have to be deleted with an explicit breakpoint number argument. */
7186 ALL_BREAKPOINTS (b)
7187 {
7188 if (b->type != bp_call_dummy &&
7189 b->type != bp_shlib_event &&
7190 b->type != bp_thread_event &&
7191 b->type != bp_overlay_event &&
7192 b->number >= 0)
7193 {
7194 breaks_to_delete = 1;
7195 break;
7196 }
7197 }
7198
7199 /* Ask user only if there are some breakpoints to delete. */
7200 if (!from_tty
7201 || (breaks_to_delete && query (_("Delete all breakpoints? "))))
7202 {
7203 ALL_BREAKPOINTS_SAFE (b, temp)
7204 {
7205 if (b->type != bp_call_dummy &&
7206 b->type != bp_shlib_event &&
7207 b->type != bp_thread_event &&
7208 b->type != bp_overlay_event &&
7209 b->number >= 0)
7210 delete_breakpoint (b);
7211 }
7212 }
7213 }
7214 else
7215 map_breakpoint_numbers (arg, delete_breakpoint);
7216}
7217
7218static int
7219all_locations_are_pending (struct bp_location *loc)
7220{
7221 for (; loc; loc = loc->next)
7222 if (!loc->shlib_disabled)
7223 return 0;
7224 return 1;
7225}
7226
7227/* Subroutine of update_breakpoint_locations to simplify it.
7228 Return non-zero if multiple fns in list LOC have the same name.
7229 Null names are ignored. */
7230
7231static int
7232ambiguous_names_p (struct bp_location *loc)
7233{
7234 struct bp_location *l;
7235 htab_t htab = htab_create_alloc (13, htab_hash_string,
7236 (int (*) (const void *, const void *)) streq,
7237 NULL, xcalloc, xfree);
7238
7239 for (l = loc; l != NULL; l = l->next)
7240 {
7241 const char **slot;
7242 const char *name = l->function_name;
7243
7244 /* Allow for some names to be NULL, ignore them. */
7245 if (name == NULL)
7246 continue;
7247
7248 slot = (const char **) htab_find_slot (htab, (const void *) name,
7249 INSERT);
7250 /* NOTE: We can assume slot != NULL here because xcalloc never returns
7251 NULL. */
7252 if (*slot != NULL)
7253 {
7254 htab_delete (htab);
7255 return 1;
7256 }
7257 *slot = name;
7258 }
7259
7260 htab_delete (htab);
7261 return 0;
7262}
7263
7264static void
7265update_breakpoint_locations (struct breakpoint *b,
7266 struct symtabs_and_lines sals)
7267{
7268 int i;
7269 char *s;
7270 struct bp_location *existing_locations = b->loc;
7271
7272 /* If there's no new locations, and all existing locations
7273 are pending, don't do anything. This optimizes
7274 the common case where all locations are in the same
7275 shared library, that was unloaded. We'd like to
7276 retain the location, so that when the library
7277 is loaded again, we don't loose the enabled/disabled
7278 status of the individual locations. */
7279 if (all_locations_are_pending (existing_locations) && sals.nelts == 0)
7280 return;
7281
7282 b->loc = NULL;
7283
7284 for (i = 0; i < sals.nelts; ++i)
7285 {
7286 struct bp_location *new_loc =
7287 add_location_to_breakpoint (b, &(sals.sals[i]));
7288
7289 /* Reparse conditions, they might contain references to the
7290 old symtab. */
7291 if (b->cond_string != NULL)
7292 {
7293 struct gdb_exception e;
7294
7295 s = b->cond_string;
7296 TRY_CATCH (e, RETURN_MASK_ERROR)
7297 {
7298 new_loc->cond = parse_exp_1 (&s, block_for_pc (sals.sals[i].pc),
7299 0);
7300 }
7301 if (e.reason < 0)
7302 {
7303 warning (_("failed to reevaluate condition for breakpoint %d: %s"),
7304 b->number, e.message);
7305 new_loc->enabled = 0;
7306 }
7307 }
7308
7309 if (b->source_file != NULL)
7310 xfree (b->source_file);
7311 if (sals.sals[i].symtab == NULL)
7312 b->source_file = NULL;
7313 else
7314 b->source_file =
7315 savestring (sals.sals[i].symtab->filename,
7316 strlen (sals.sals[i].symtab->filename));
7317
7318 if (b->line_number == 0)
7319 b->line_number = sals.sals[i].line;
7320 }
7321
7322 /* Update locations of permanent breakpoints. */
7323 if (b->enable_state == bp_permanent)
7324 make_breakpoint_permanent (b);
7325
7326 /* If possible, carry over 'disable' status from existing breakpoints. */
7327 {
7328 struct bp_location *e = existing_locations;
7329 /* If there are multiple breakpoints with the same function name,
7330 e.g. for inline functions, comparing function names won't work.
7331 Instead compare pc addresses; this is just a heuristic as things
7332 may have moved, but in practice it gives the correct answer
7333 often enough until a better solution is found. */
7334 int have_ambiguous_names = ambiguous_names_p (b->loc);
7335
7336 for (; e; e = e->next)
7337 {
7338 if (!e->enabled && e->function_name)
7339 {
7340 struct bp_location *l = b->loc;
7341 if (have_ambiguous_names)
7342 {
7343 for (; l; l = l->next)
7344 if (e->address == l->address)
7345 {
7346 l->enabled = 0;
7347 break;
7348 }
7349 }
7350 else
7351 {
7352 for (; l; l = l->next)
7353 if (l->function_name
7354 && strcmp (e->function_name, l->function_name) == 0)
7355 {
7356 l->enabled = 0;
7357 break;
7358 }
7359 }
7360 }
7361 }
7362 }
7363
7364 update_global_location_list (1);
7365}
7366
7367
7368/* Reset a breakpoint given it's struct breakpoint * BINT.
7369 The value we return ends up being the return value from catch_errors.
7370 Unused in this case. */
7371
7372static int
7373breakpoint_re_set_one (void *bint)
7374{
7375 /* get past catch_errs */
7376 struct breakpoint *b = (struct breakpoint *) bint;
7377 struct value *mark;
7378 int i;
7379 int not_found = 0;
7380 int *not_found_ptr = &not_found;
7381 struct symtabs_and_lines sals = {};
7382 struct symtabs_and_lines expanded;
7383 char *s;
7384 enum enable_state save_enable;
7385 struct gdb_exception e;
7386 struct cleanup *cleanups;
7387
7388 switch (b->type)
7389 {
7390 case bp_none:
7391 warning (_("attempted to reset apparently deleted breakpoint #%d?"),
7392 b->number);
7393 return 0;
7394 case bp_breakpoint:
7395 case bp_hardware_breakpoint:
7396 if (b->addr_string == NULL)
7397 {
7398 /* Anything without a string can't be re-set. */
7399 delete_breakpoint (b);
7400 return 0;
7401 }
7402
7403 set_language (b->language);
7404 input_radix = b->input_radix;
7405 s = b->addr_string;
7406 TRY_CATCH (e, RETURN_MASK_ERROR)
7407 {
7408 sals = decode_line_1 (&s, 1, (struct symtab *) NULL, 0, (char ***) NULL,
7409 not_found_ptr);
7410 }
7411 if (e.reason < 0)
7412 {
7413 int not_found_and_ok = 0;
7414 /* For pending breakpoints, it's expected that parsing
7415 will fail until the right shared library is loaded.
7416 User has already told to create pending breakpoints and
7417 don't need extra messages. If breakpoint is in bp_shlib_disabled
7418 state, then user already saw the message about that breakpoint
7419 being disabled, and don't want to see more errors. */
7420 if (not_found
7421 && (b->condition_not_parsed
7422 || (b->loc && b->loc->shlib_disabled)
7423 || b->enable_state == bp_disabled))
7424 not_found_and_ok = 1;
7425
7426 if (!not_found_and_ok)
7427 {
7428 /* We surely don't want to warn about the same breakpoint
7429 10 times. One solution, implemented here, is disable
7430 the breakpoint on error. Another solution would be to
7431 have separate 'warning emitted' flag. Since this
7432 happens only when a binary has changed, I don't know
7433 which approach is better. */
7434 b->enable_state = bp_disabled;
7435 throw_exception (e);
7436 }
7437 }
7438
7439 if (not_found)
7440 break;
7441
7442 gdb_assert (sals.nelts == 1);
7443 resolve_sal_pc (&sals.sals[0]);
7444 if (b->condition_not_parsed && s && s[0])
7445 {
7446 char *cond_string = 0;
7447 int thread = -1;
7448 find_condition_and_thread (s, sals.sals[0].pc,
7449 &cond_string, &thread);
7450 if (cond_string)
7451 b->cond_string = cond_string;
7452 b->thread = thread;
7453 b->condition_not_parsed = 0;
7454 }
7455 expanded = expand_line_sal_maybe (sals.sals[0]);
7456 cleanups = make_cleanup (xfree, sals.sals);
7457 update_breakpoint_locations (b, expanded);
7458 do_cleanups (cleanups);
7459 break;
7460
7461 case bp_watchpoint:
7462 case bp_hardware_watchpoint:
7463 case bp_read_watchpoint:
7464 case bp_access_watchpoint:
7465 /* Watchpoint can be either on expression using entirely global variables,
7466 or it can be on local variables.
7467
7468 Watchpoints of the first kind are never auto-deleted, and even persist
7469 across program restarts. Since they can use variables from shared
7470 libraries, we need to reparse expression as libraries are loaded
7471 and unloaded.
7472
7473 Watchpoints on local variables can also change meaning as result
7474 of solib event. For example, if a watchpoint uses both a local and
7475 a global variables in expression, it's a local watchpoint, but
7476 unloading of a shared library will make the expression invalid.
7477 This is not a very common use case, but we still re-evaluate
7478 expression, to avoid surprises to the user.
7479
7480 Note that for local watchpoints, we re-evaluate it only if
7481 watchpoints frame id is still valid. If it's not, it means
7482 the watchpoint is out of scope and will be deleted soon. In fact,
7483 I'm not sure we'll ever be called in this case.
7484
7485 If a local watchpoint's frame id is still valid, then
7486 b->exp_valid_block is likewise valid, and we can safely use it.
7487
7488 Don't do anything about disabled watchpoints, since they will
7489 be reevaluated again when enabled. */
7490 update_watchpoint (b, 1 /* reparse */);
7491 break;
7492 /* We needn't really do anything to reset these, since the mask
7493 that requests them is unaffected by e.g., new libraries being
7494 loaded. */
7495 case bp_catchpoint:
7496 break;
7497
7498 default:
7499 printf_filtered (_("Deleting unknown breakpoint type %d\n"), b->type);
7500 /* fall through */
7501 /* Delete overlay event breakpoints; they will be reset later by
7502 breakpoint_re_set. */
7503 case bp_overlay_event:
7504 delete_breakpoint (b);
7505 break;
7506
7507 /* This breakpoint is special, it's set up when the inferior
7508 starts and we really don't want to touch it. */
7509 case bp_shlib_event:
7510
7511 /* Like bp_shlib_event, this breakpoint type is special.
7512 Once it is set up, we do not want to touch it. */
7513 case bp_thread_event:
7514
7515 /* Keep temporary breakpoints, which can be encountered when we step
7516 over a dlopen call and SOLIB_ADD is resetting the breakpoints.
7517 Otherwise these should have been blown away via the cleanup chain
7518 or by breakpoint_init_inferior when we rerun the executable. */
7519 case bp_until:
7520 case bp_finish:
7521 case bp_watchpoint_scope:
7522 case bp_call_dummy:
7523 case bp_step_resume:
7524 case bp_longjmp:
7525 case bp_longjmp_resume:
7526 break;
7527 }
7528
7529 return 0;
7530}
7531
7532/* Re-set all breakpoints after symbols have been re-loaded. */
7533void
7534breakpoint_re_set (void)
7535{
7536 struct breakpoint *b, *temp;
7537 enum language save_language;
7538 int save_input_radix;
7539
7540 save_language = current_language->la_language;
7541 save_input_radix = input_radix;
7542 ALL_BREAKPOINTS_SAFE (b, temp)
7543 {
7544 /* Format possible error msg */
7545 char *message = xstrprintf ("Error in re-setting breakpoint %d: ",
7546 b->number);
7547 struct cleanup *cleanups = make_cleanup (xfree, message);
7548 catch_errors (breakpoint_re_set_one, b, message, RETURN_MASK_ALL);
7549 do_cleanups (cleanups);
7550 }
7551 set_language (save_language);
7552 input_radix = save_input_radix;
7553
7554 create_overlay_event_breakpoint ("_ovly_debug_event");
7555}
7556\f
7557/* Reset the thread number of this breakpoint:
7558
7559 - If the breakpoint is for all threads, leave it as-is.
7560 - Else, reset it to the current thread for inferior_ptid. */
7561void
7562breakpoint_re_set_thread (struct breakpoint *b)
7563{
7564 if (b->thread != -1)
7565 {
7566 if (in_thread_list (inferior_ptid))
7567 b->thread = pid_to_thread_id (inferior_ptid);
7568 }
7569}
7570
7571/* Set ignore-count of breakpoint number BPTNUM to COUNT.
7572 If from_tty is nonzero, it prints a message to that effect,
7573 which ends with a period (no newline). */
7574
7575void
7576set_ignore_count (int bptnum, int count, int from_tty)
7577{
7578 struct breakpoint *b;
7579
7580 if (count < 0)
7581 count = 0;
7582
7583 ALL_BREAKPOINTS (b)
7584 if (b->number == bptnum)
7585 {
7586 b->ignore_count = count;
7587 if (from_tty)
7588 {
7589 if (count == 0)
7590 printf_filtered (_("Will stop next time breakpoint %d is reached."),
7591 bptnum);
7592 else if (count == 1)
7593 printf_filtered (_("Will ignore next crossing of breakpoint %d."),
7594 bptnum);
7595 else
7596 printf_filtered (_("Will ignore next %d crossings of breakpoint %d."),
7597 count, bptnum);
7598 }
7599 breakpoints_changed ();
7600 observer_notify_breakpoint_modified (b->number);
7601 return;
7602 }
7603
7604 error (_("No breakpoint number %d."), bptnum);
7605}
7606
7607void
7608make_breakpoint_silent (struct breakpoint *b)
7609{
7610 /* Silence the breakpoint. */
7611 b->silent = 1;
7612}
7613
7614/* Command to set ignore-count of breakpoint N to COUNT. */
7615
7616static void
7617ignore_command (char *args, int from_tty)
7618{
7619 char *p = args;
7620 int num;
7621
7622 if (p == 0)
7623 error_no_arg (_("a breakpoint number"));
7624
7625 num = get_number (&p);
7626 if (num == 0)
7627 error (_("bad breakpoint number: '%s'"), args);
7628 if (*p == 0)
7629 error (_("Second argument (specified ignore-count) is missing."));
7630
7631 set_ignore_count (num,
7632 longest_to_int (value_as_long (parse_and_eval (p))),
7633 from_tty);
7634 if (from_tty)
7635 printf_filtered ("\n");
7636}
7637\f
7638/* Call FUNCTION on each of the breakpoints
7639 whose numbers are given in ARGS. */
7640
7641static void
7642map_breakpoint_numbers (char *args, void (*function) (struct breakpoint *))
7643{
7644 char *p = args;
7645 char *p1;
7646 int num;
7647 struct breakpoint *b, *tmp;
7648 int match;
7649
7650 if (p == 0)
7651 error_no_arg (_("one or more breakpoint numbers"));
7652
7653 while (*p)
7654 {
7655 match = 0;
7656 p1 = p;
7657
7658 num = get_number_or_range (&p1);
7659 if (num == 0)
7660 {
7661 warning (_("bad breakpoint number at or near '%s'"), p);
7662 }
7663 else
7664 {
7665 ALL_BREAKPOINTS_SAFE (b, tmp)
7666 if (b->number == num)
7667 {
7668 struct breakpoint *related_breakpoint = b->related_breakpoint;
7669 match = 1;
7670 function (b);
7671 if (related_breakpoint)
7672 function (related_breakpoint);
7673 break;
7674 }
7675 if (match == 0)
7676 printf_unfiltered (_("No breakpoint number %d.\n"), num);
7677 }
7678 p = p1;
7679 }
7680}
7681
7682static struct bp_location *
7683find_location_by_number (char *number)
7684{
7685 char *dot = strchr (number, '.');
7686 char *p1;
7687 int bp_num;
7688 int loc_num;
7689 struct breakpoint *b;
7690 struct bp_location *loc;
7691
7692 *dot = '\0';
7693
7694 p1 = number;
7695 bp_num = get_number_or_range (&p1);
7696 if (bp_num == 0)
7697 error (_("Bad breakpoint number '%s'"), number);
7698
7699 ALL_BREAKPOINTS (b)
7700 if (b->number == bp_num)
7701 {
7702 break;
7703 }
7704
7705 if (!b || b->number != bp_num)
7706 error (_("Bad breakpoint number '%s'"), number);
7707
7708 p1 = dot+1;
7709 loc_num = get_number_or_range (&p1);
7710 if (loc_num == 0)
7711 error (_("Bad breakpoint location number '%s'"), number);
7712
7713 --loc_num;
7714 loc = b->loc;
7715 for (;loc_num && loc; --loc_num, loc = loc->next)
7716 ;
7717 if (!loc)
7718 error (_("Bad breakpoint location number '%s'"), dot+1);
7719
7720 return loc;
7721}
7722
7723
7724/* Set ignore-count of breakpoint number BPTNUM to COUNT.
7725 If from_tty is nonzero, it prints a message to that effect,
7726 which ends with a period (no newline). */
7727
7728void
7729disable_breakpoint (struct breakpoint *bpt)
7730{
7731 /* Never disable a watchpoint scope breakpoint; we want to
7732 hit them when we leave scope so we can delete both the
7733 watchpoint and its scope breakpoint at that time. */
7734 if (bpt->type == bp_watchpoint_scope)
7735 return;
7736
7737 /* You can't disable permanent breakpoints. */
7738 if (bpt->enable_state == bp_permanent)
7739 return;
7740
7741 bpt->enable_state = bp_disabled;
7742
7743 update_global_location_list (0);
7744
7745 observer_notify_breakpoint_modified (bpt->number);
7746}
7747
7748static void
7749disable_command (char *args, int from_tty)
7750{
7751 struct breakpoint *bpt;
7752 if (args == 0)
7753 ALL_BREAKPOINTS (bpt)
7754 switch (bpt->type)
7755 {
7756 case bp_none:
7757 warning (_("attempted to disable apparently deleted breakpoint #%d?"),
7758 bpt->number);
7759 continue;
7760 case bp_breakpoint:
7761 case bp_catchpoint:
7762 case bp_hardware_breakpoint:
7763 case bp_watchpoint:
7764 case bp_hardware_watchpoint:
7765 case bp_read_watchpoint:
7766 case bp_access_watchpoint:
7767 disable_breakpoint (bpt);
7768 default:
7769 continue;
7770 }
7771 else if (strchr (args, '.'))
7772 {
7773 struct bp_location *loc = find_location_by_number (args);
7774 if (loc)
7775 loc->enabled = 0;
7776 update_global_location_list (0);
7777 }
7778 else
7779 map_breakpoint_numbers (args, disable_breakpoint);
7780}
7781
7782static void
7783do_enable_breakpoint (struct breakpoint *bpt, enum bpdisp disposition)
7784{
7785 int target_resources_ok, other_type_used;
7786 struct value *mark;
7787
7788 if (bpt->type == bp_hardware_breakpoint)
7789 {
7790 int i;
7791 i = hw_breakpoint_used_count ();
7792 target_resources_ok =
7793 TARGET_CAN_USE_HARDWARE_WATCHPOINT (bp_hardware_breakpoint,
7794 i + 1, 0);
7795 if (target_resources_ok == 0)
7796 error (_("No hardware breakpoint support in the target."));
7797 else if (target_resources_ok < 0)
7798 error (_("Hardware breakpoints used exceeds limit."));
7799 }
7800
7801 if (bpt->type == bp_watchpoint ||
7802 bpt->type == bp_hardware_watchpoint ||
7803 bpt->type == bp_read_watchpoint ||
7804 bpt->type == bp_access_watchpoint)
7805 {
7806 struct gdb_exception e;
7807
7808 TRY_CATCH (e, RETURN_MASK_ALL)
7809 {
7810 update_watchpoint (bpt, 1 /* reparse */);
7811 }
7812 if (e.reason < 0)
7813 {
7814 exception_fprintf (gdb_stderr, e, _("Cannot enable watchpoint %d: "),
7815 bpt->number);
7816 return;
7817 }
7818 }
7819
7820 if (bpt->enable_state != bp_permanent)
7821 bpt->enable_state = bp_enabled;
7822 bpt->disposition = disposition;
7823 update_global_location_list (1);
7824 breakpoints_changed ();
7825
7826 observer_notify_breakpoint_modified (bpt->number);
7827}
7828
7829
7830void
7831enable_breakpoint (struct breakpoint *bpt)
7832{
7833 do_enable_breakpoint (bpt, bpt->disposition);
7834}
7835
7836/* The enable command enables the specified breakpoints (or all defined
7837 breakpoints) so they once again become (or continue to be) effective
7838 in stopping the inferior. */
7839
7840static void
7841enable_command (char *args, int from_tty)
7842{
7843 struct breakpoint *bpt;
7844 if (args == 0)
7845 ALL_BREAKPOINTS (bpt)
7846 switch (bpt->type)
7847 {
7848 case bp_none:
7849 warning (_("attempted to enable apparently deleted breakpoint #%d?"),
7850 bpt->number);
7851 continue;
7852 case bp_breakpoint:
7853 case bp_catchpoint:
7854 case bp_hardware_breakpoint:
7855 case bp_watchpoint:
7856 case bp_hardware_watchpoint:
7857 case bp_read_watchpoint:
7858 case bp_access_watchpoint:
7859 enable_breakpoint (bpt);
7860 default:
7861 continue;
7862 }
7863 else if (strchr (args, '.'))
7864 {
7865 struct bp_location *loc = find_location_by_number (args);
7866 if (loc)
7867 loc->enabled = 1;
7868 update_global_location_list (1);
7869 }
7870 else
7871 map_breakpoint_numbers (args, enable_breakpoint);
7872}
7873
7874static void
7875enable_once_breakpoint (struct breakpoint *bpt)
7876{
7877 do_enable_breakpoint (bpt, disp_disable);
7878}
7879
7880static void
7881enable_once_command (char *args, int from_tty)
7882{
7883 map_breakpoint_numbers (args, enable_once_breakpoint);
7884}
7885
7886static void
7887enable_delete_breakpoint (struct breakpoint *bpt)
7888{
7889 do_enable_breakpoint (bpt, disp_del);
7890}
7891
7892static void
7893enable_delete_command (char *args, int from_tty)
7894{
7895 map_breakpoint_numbers (args, enable_delete_breakpoint);
7896}
7897\f
7898static void
7899set_breakpoint_cmd (char *args, int from_tty)
7900{
7901}
7902
7903static void
7904show_breakpoint_cmd (char *args, int from_tty)
7905{
7906}
7907
7908/* Use default_breakpoint_'s, or nothing if they aren't valid. */
7909
7910struct symtabs_and_lines
7911decode_line_spec_1 (char *string, int funfirstline)
7912{
7913 struct symtabs_and_lines sals;
7914 if (string == 0)
7915 error (_("Empty line specification."));
7916 if (default_breakpoint_valid)
7917 sals = decode_line_1 (&string, funfirstline,
7918 default_breakpoint_symtab,
7919 default_breakpoint_line,
7920 (char ***) NULL, NULL);
7921 else
7922 sals = decode_line_1 (&string, funfirstline,
7923 (struct symtab *) NULL, 0, (char ***) NULL, NULL);
7924 if (*string)
7925 error (_("Junk at end of line specification: %s"), string);
7926 return sals;
7927}
7928
7929/* Create and insert a raw software breakpoint at PC. Return an
7930 identifier, which should be used to remove the breakpoint later.
7931 In general, places which call this should be using something on the
7932 breakpoint chain instead; this function should be eliminated
7933 someday. */
7934
7935void *
7936deprecated_insert_raw_breakpoint (CORE_ADDR pc)
7937{
7938 struct bp_target_info *bp_tgt;
7939
7940 bp_tgt = xmalloc (sizeof (struct bp_target_info));
7941 memset (bp_tgt, 0, sizeof (struct bp_target_info));
7942
7943 bp_tgt->placed_address = pc;
7944 if (target_insert_breakpoint (bp_tgt) != 0)
7945 {
7946 /* Could not insert the breakpoint. */
7947 xfree (bp_tgt);
7948 return NULL;
7949 }
7950
7951 return bp_tgt;
7952}
7953
7954/* Remove a breakpoint BP inserted by deprecated_insert_raw_breakpoint. */
7955
7956int
7957deprecated_remove_raw_breakpoint (void *bp)
7958{
7959 struct bp_target_info *bp_tgt = bp;
7960 int ret;
7961
7962 ret = target_remove_breakpoint (bp_tgt);
7963 xfree (bp_tgt);
7964
7965 return ret;
7966}
7967
7968/* One (or perhaps two) breakpoints used for software single stepping. */
7969
7970static void *single_step_breakpoints[2];
7971
7972/* Create and insert a breakpoint for software single step. */
7973
7974void
7975insert_single_step_breakpoint (CORE_ADDR next_pc)
7976{
7977 void **bpt_p;
7978
7979 if (single_step_breakpoints[0] == NULL)
7980 bpt_p = &single_step_breakpoints[0];
7981 else
7982 {
7983 gdb_assert (single_step_breakpoints[1] == NULL);
7984 bpt_p = &single_step_breakpoints[1];
7985 }
7986
7987 /* NOTE drow/2006-04-11: A future improvement to this function would be
7988 to only create the breakpoints once, and actually put them on the
7989 breakpoint chain. That would let us use set_raw_breakpoint. We could
7990 adjust the addresses each time they were needed. Doing this requires
7991 corresponding changes elsewhere where single step breakpoints are
7992 handled, however. So, for now, we use this. */
7993
7994 *bpt_p = deprecated_insert_raw_breakpoint (next_pc);
7995 if (*bpt_p == NULL)
7996 error (_("Could not insert single-step breakpoint at 0x%s"),
7997 paddr_nz (next_pc));
7998}
7999
8000/* Remove and delete any breakpoints used for software single step. */
8001
8002void
8003remove_single_step_breakpoints (void)
8004{
8005 gdb_assert (single_step_breakpoints[0] != NULL);
8006
8007 /* See insert_single_step_breakpoint for more about this deprecated
8008 call. */
8009 deprecated_remove_raw_breakpoint (single_step_breakpoints[0]);
8010 single_step_breakpoints[0] = NULL;
8011
8012 if (single_step_breakpoints[1] != NULL)
8013 {
8014 deprecated_remove_raw_breakpoint (single_step_breakpoints[1]);
8015 single_step_breakpoints[1] = NULL;
8016 }
8017}
8018
8019/* Check whether a software single-step breakpoint is inserted at PC. */
8020
8021static int
8022single_step_breakpoint_inserted_here_p (CORE_ADDR pc)
8023{
8024 int i;
8025
8026 for (i = 0; i < 2; i++)
8027 {
8028 struct bp_target_info *bp_tgt = single_step_breakpoints[i];
8029 if (bp_tgt && bp_tgt->placed_address == pc)
8030 return 1;
8031 }
8032
8033 return 0;
8034}
8035
8036\f
8037/* This help string is used for the break, hbreak, tbreak and thbreak commands.
8038 It is defined as a macro to prevent duplication.
8039 COMMAND should be a string constant containing the name of the command. */
8040#define BREAK_ARGS_HELP(command) \
8041command" [LOCATION] [thread THREADNUM] [if CONDITION]\n\
8042LOCATION may be a line number, function name, or \"*\" and an address.\n\
8043If a line number is specified, break at start of code for that line.\n\
8044If a function is specified, break at start of code for that function.\n\
8045If an address is specified, break at that exact address.\n\
8046With no LOCATION, uses current execution address of selected stack frame.\n\
8047This is useful for breaking on return to a stack frame.\n\
8048\n\
8049THREADNUM is the number from \"info threads\".\n\
8050CONDITION is a boolean expression.\n\
8051\n\
8052Multiple breakpoints at one place are permitted, and useful if conditional.\n\
8053\n\
8054Do \"help breakpoints\" for info on other commands dealing with breakpoints."
8055
8056/* List of subcommands for "catch". */
8057static struct cmd_list_element *catch_cmdlist;
8058
8059/* List of subcommands for "tcatch". */
8060static struct cmd_list_element *tcatch_cmdlist;
8061
8062/* Like add_cmd, but add the command to both the "catch" and "tcatch"
8063 lists, and pass some additional user data to the command function. */
8064static void
8065add_catch_command (char *name, char *docstring,
8066 void (*sfunc) (char *args, int from_tty,
8067 struct cmd_list_element *command),
8068 void *user_data_catch,
8069 void *user_data_tcatch)
8070{
8071 struct cmd_list_element *command;
8072
8073 command = add_cmd (name, class_breakpoint, NULL, docstring,
8074 &catch_cmdlist);
8075 set_cmd_sfunc (command, sfunc);
8076 set_cmd_context (command, user_data_catch);
8077
8078 command = add_cmd (name, class_breakpoint, NULL, docstring,
8079 &tcatch_cmdlist);
8080 set_cmd_sfunc (command, sfunc);
8081 set_cmd_context (command, user_data_tcatch);
8082}
8083
8084void
8085_initialize_breakpoint (void)
8086{
8087 static struct cmd_list_element *breakpoint_set_cmdlist;
8088 static struct cmd_list_element *breakpoint_show_cmdlist;
8089 struct cmd_list_element *c;
8090
8091 observer_attach_solib_unloaded (disable_breakpoints_in_unloaded_shlib);
8092
8093 breakpoint_chain = 0;
8094 /* Don't bother to call set_breakpoint_count. $bpnum isn't useful
8095 before a breakpoint is set. */
8096 breakpoint_count = 0;
8097
8098 add_com ("ignore", class_breakpoint, ignore_command, _("\
8099Set ignore-count of breakpoint number N to COUNT.\n\
8100Usage is `ignore N COUNT'."));
8101 if (xdb_commands)
8102 add_com_alias ("bc", "ignore", class_breakpoint, 1);
8103
8104 add_com ("commands", class_breakpoint, commands_command, _("\
8105Set commands to be executed when a breakpoint is hit.\n\
8106Give breakpoint number as argument after \"commands\".\n\
8107With no argument, the targeted breakpoint is the last one set.\n\
8108The commands themselves follow starting on the next line.\n\
8109Type a line containing \"end\" to indicate the end of them.\n\
8110Give \"silent\" as the first line to make the breakpoint silent;\n\
8111then no output is printed when it is hit, except what the commands print."));
8112
8113 add_com ("condition", class_breakpoint, condition_command, _("\
8114Specify breakpoint number N to break only if COND is true.\n\
8115Usage is `condition N COND', where N is an integer and COND is an\n\
8116expression to be evaluated whenever breakpoint N is reached."));
8117
8118 c = add_com ("tbreak", class_breakpoint, tbreak_command, _("\
8119Set a temporary breakpoint.\n\
8120Like \"break\" except the breakpoint is only temporary,\n\
8121so it will be deleted when hit. Equivalent to \"break\" followed\n\
8122by using \"enable delete\" on the breakpoint number.\n\
8123\n"
8124BREAK_ARGS_HELP ("tbreak")));
8125 set_cmd_completer (c, location_completer);
8126
8127 c = add_com ("hbreak", class_breakpoint, hbreak_command, _("\
8128Set a hardware assisted breakpoint.\n\
8129Like \"break\" except the breakpoint requires hardware support,\n\
8130some target hardware may not have this support.\n\
8131\n"
8132BREAK_ARGS_HELP ("hbreak")));
8133 set_cmd_completer (c, location_completer);
8134
8135 c = add_com ("thbreak", class_breakpoint, thbreak_command, _("\
8136Set a temporary hardware assisted breakpoint.\n\
8137Like \"hbreak\" except the breakpoint is only temporary,\n\
8138so it will be deleted when hit.\n\
8139\n"
8140BREAK_ARGS_HELP ("thbreak")));
8141 set_cmd_completer (c, location_completer);
8142
8143 add_prefix_cmd ("enable", class_breakpoint, enable_command, _("\
8144Enable some breakpoints.\n\
8145Give breakpoint numbers (separated by spaces) as arguments.\n\
8146With no subcommand, breakpoints are enabled until you command otherwise.\n\
8147This is used to cancel the effect of the \"disable\" command.\n\
8148With a subcommand you can enable temporarily."),
8149 &enablelist, "enable ", 1, &cmdlist);
8150 if (xdb_commands)
8151 add_com ("ab", class_breakpoint, enable_command, _("\
8152Enable some breakpoints.\n\
8153Give breakpoint numbers (separated by spaces) as arguments.\n\
8154With no subcommand, breakpoints are enabled until you command otherwise.\n\
8155This is used to cancel the effect of the \"disable\" command.\n\
8156With a subcommand you can enable temporarily."));
8157
8158 add_com_alias ("en", "enable", class_breakpoint, 1);
8159
8160 add_abbrev_prefix_cmd ("breakpoints", class_breakpoint, enable_command, _("\
8161Enable some breakpoints.\n\
8162Give breakpoint numbers (separated by spaces) as arguments.\n\
8163This is used to cancel the effect of the \"disable\" command.\n\
8164May be abbreviated to simply \"enable\".\n"),
8165 &enablebreaklist, "enable breakpoints ", 1, &enablelist);
8166
8167 add_cmd ("once", no_class, enable_once_command, _("\
8168Enable breakpoints for one hit. Give breakpoint numbers.\n\
8169If a breakpoint is hit while enabled in this fashion, it becomes disabled."),
8170 &enablebreaklist);
8171
8172 add_cmd ("delete", no_class, enable_delete_command, _("\
8173Enable breakpoints and delete when hit. Give breakpoint numbers.\n\
8174If a breakpoint is hit while enabled in this fashion, it is deleted."),
8175 &enablebreaklist);
8176
8177 add_cmd ("delete", no_class, enable_delete_command, _("\
8178Enable breakpoints and delete when hit. Give breakpoint numbers.\n\
8179If a breakpoint is hit while enabled in this fashion, it is deleted."),
8180 &enablelist);
8181
8182 add_cmd ("once", no_class, enable_once_command, _("\
8183Enable breakpoints for one hit. Give breakpoint numbers.\n\
8184If a breakpoint is hit while enabled in this fashion, it becomes disabled."),
8185 &enablelist);
8186
8187 add_prefix_cmd ("disable", class_breakpoint, disable_command, _("\
8188Disable some breakpoints.\n\
8189Arguments are breakpoint numbers with spaces in between.\n\
8190To disable all breakpoints, give no argument.\n\
8191A disabled breakpoint is not forgotten, but has no effect until reenabled."),
8192 &disablelist, "disable ", 1, &cmdlist);
8193 add_com_alias ("dis", "disable", class_breakpoint, 1);
8194 add_com_alias ("disa", "disable", class_breakpoint, 1);
8195 if (xdb_commands)
8196 add_com ("sb", class_breakpoint, disable_command, _("\
8197Disable some breakpoints.\n\
8198Arguments are breakpoint numbers with spaces in between.\n\
8199To disable all breakpoints, give no argument.\n\
8200A disabled breakpoint is not forgotten, but has no effect until reenabled."));
8201
8202 add_cmd ("breakpoints", class_alias, disable_command, _("\
8203Disable some breakpoints.\n\
8204Arguments are breakpoint numbers with spaces in between.\n\
8205To disable all breakpoints, give no argument.\n\
8206A disabled breakpoint is not forgotten, but has no effect until reenabled.\n\
8207This command may be abbreviated \"disable\"."),
8208 &disablelist);
8209
8210 add_prefix_cmd ("delete", class_breakpoint, delete_command, _("\
8211Delete some breakpoints or auto-display expressions.\n\
8212Arguments are breakpoint numbers with spaces in between.\n\
8213To delete all breakpoints, give no argument.\n\
8214\n\
8215Also a prefix command for deletion of other GDB objects.\n\
8216The \"unset\" command is also an alias for \"delete\"."),
8217 &deletelist, "delete ", 1, &cmdlist);
8218 add_com_alias ("d", "delete", class_breakpoint, 1);
8219 add_com_alias ("del", "delete", class_breakpoint, 1);
8220 if (xdb_commands)
8221 add_com ("db", class_breakpoint, delete_command, _("\
8222Delete some breakpoints.\n\
8223Arguments are breakpoint numbers with spaces in between.\n\
8224To delete all breakpoints, give no argument.\n"));
8225
8226 add_cmd ("breakpoints", class_alias, delete_command, _("\
8227Delete some breakpoints or auto-display expressions.\n\
8228Arguments are breakpoint numbers with spaces in between.\n\
8229To delete all breakpoints, give no argument.\n\
8230This command may be abbreviated \"delete\"."),
8231 &deletelist);
8232
8233 add_com ("clear", class_breakpoint, clear_command, _("\
8234Clear breakpoint at specified line or function.\n\
8235Argument may be line number, function name, or \"*\" and an address.\n\
8236If line number is specified, all breakpoints in that line are cleared.\n\
8237If function is specified, breakpoints at beginning of function are cleared.\n\
8238If an address is specified, breakpoints at that address are cleared.\n\
8239\n\
8240With no argument, clears all breakpoints in the line that the selected frame\n\
8241is executing in.\n\
8242\n\
8243See also the \"delete\" command which clears breakpoints by number."));
8244
8245 c = add_com ("break", class_breakpoint, break_command, _("\
8246Set breakpoint at specified line or function.\n"
8247BREAK_ARGS_HELP ("break")));
8248 set_cmd_completer (c, location_completer);
8249
8250 add_com_alias ("b", "break", class_run, 1);
8251 add_com_alias ("br", "break", class_run, 1);
8252 add_com_alias ("bre", "break", class_run, 1);
8253 add_com_alias ("brea", "break", class_run, 1);
8254
8255 if (xdb_commands)
8256 {
8257 add_com_alias ("ba", "break", class_breakpoint, 1);
8258 add_com_alias ("bu", "ubreak", class_breakpoint, 1);
8259 }
8260
8261 if (dbx_commands)
8262 {
8263 add_abbrev_prefix_cmd ("stop", class_breakpoint, stop_command, _("\
8264Break in function/address or break at a line in the current file."),
8265 &stoplist, "stop ", 1, &cmdlist);
8266 add_cmd ("in", class_breakpoint, stopin_command,
8267 _("Break in function or address."), &stoplist);
8268 add_cmd ("at", class_breakpoint, stopat_command,
8269 _("Break at a line in the current file."), &stoplist);
8270 add_com ("status", class_info, breakpoints_info, _("\
8271Status of user-settable breakpoints, or breakpoint number NUMBER.\n\
8272The \"Type\" column indicates one of:\n\
8273\tbreakpoint - normal breakpoint\n\
8274\twatchpoint - watchpoint\n\
8275The \"Disp\" column contains one of \"keep\", \"del\", or \"dis\" to indicate\n\
8276the disposition of the breakpoint after it gets hit. \"dis\" means that the\n\
8277breakpoint will be disabled. The \"Address\" and \"What\" columns indicate the\n\
8278address and file/line number respectively.\n\
8279\n\
8280Convenience variable \"$_\" and default examine address for \"x\"\n\
8281are set to the address of the last breakpoint listed unless the command\n\
8282is prefixed with \"server \".\n\n\
8283Convenience variable \"$bpnum\" contains the number of the last\n\
8284breakpoint set."));
8285 }
8286
8287 add_info ("breakpoints", breakpoints_info, _("\
8288Status of user-settable breakpoints, or breakpoint number NUMBER.\n\
8289The \"Type\" column indicates one of:\n\
8290\tbreakpoint - normal breakpoint\n\
8291\twatchpoint - watchpoint\n\
8292The \"Disp\" column contains one of \"keep\", \"del\", or \"dis\" to indicate\n\
8293the disposition of the breakpoint after it gets hit. \"dis\" means that the\n\
8294breakpoint will be disabled. The \"Address\" and \"What\" columns indicate the\n\
8295address and file/line number respectively.\n\
8296\n\
8297Convenience variable \"$_\" and default examine address for \"x\"\n\
8298are set to the address of the last breakpoint listed unless the command\n\
8299is prefixed with \"server \".\n\n\
8300Convenience variable \"$bpnum\" contains the number of the last\n\
8301breakpoint set."));
8302
8303 if (xdb_commands)
8304 add_com ("lb", class_breakpoint, breakpoints_info, _("\
8305Status of user-settable breakpoints, or breakpoint number NUMBER.\n\
8306The \"Type\" column indicates one of:\n\
8307\tbreakpoint - normal breakpoint\n\
8308\twatchpoint - watchpoint\n\
8309The \"Disp\" column contains one of \"keep\", \"del\", or \"dis\" to indicate\n\
8310the disposition of the breakpoint after it gets hit. \"dis\" means that the\n\
8311breakpoint will be disabled. The \"Address\" and \"What\" columns indicate the\n\
8312address and file/line number respectively.\n\
8313\n\
8314Convenience variable \"$_\" and default examine address for \"x\"\n\
8315are set to the address of the last breakpoint listed unless the command\n\
8316is prefixed with \"server \".\n\n\
8317Convenience variable \"$bpnum\" contains the number of the last\n\
8318breakpoint set."));
8319
8320 add_cmd ("breakpoints", class_maintenance, maintenance_info_breakpoints, _("\
8321Status of all breakpoints, or breakpoint number NUMBER.\n\
8322The \"Type\" column indicates one of:\n\
8323\tbreakpoint - normal breakpoint\n\
8324\twatchpoint - watchpoint\n\
8325\tlongjmp - internal breakpoint used to step through longjmp()\n\
8326\tlongjmp resume - internal breakpoint at the target of longjmp()\n\
8327\tuntil - internal breakpoint used by the \"until\" command\n\
8328\tfinish - internal breakpoint used by the \"finish\" command\n\
8329The \"Disp\" column contains one of \"keep\", \"del\", or \"dis\" to indicate\n\
8330the disposition of the breakpoint after it gets hit. \"dis\" means that the\n\
8331breakpoint will be disabled. The \"Address\" and \"What\" columns indicate the\n\
8332address and file/line number respectively.\n\
8333\n\
8334Convenience variable \"$_\" and default examine address for \"x\"\n\
8335are set to the address of the last breakpoint listed unless the command\n\
8336is prefixed with \"server \".\n\n\
8337Convenience variable \"$bpnum\" contains the number of the last\n\
8338breakpoint set."),
8339 &maintenanceinfolist);
8340
8341 add_prefix_cmd ("catch", class_breakpoint, catch_command, _("\
8342Set catchpoints to catch events."),
8343 &catch_cmdlist, "catch ",
8344 0/*allow-unknown*/, &cmdlist);
8345
8346 add_prefix_cmd ("tcatch", class_breakpoint, tcatch_command, _("\
8347Set temporary catchpoints to catch events."),
8348 &tcatch_cmdlist, "tcatch ",
8349 0/*allow-unknown*/, &cmdlist);
8350
8351 /* Add catch and tcatch sub-commands. */
8352 add_catch_command ("catch", _("\
8353Catch an exception, when caught.\n\
8354With an argument, catch only exceptions with the given name."),
8355 catch_catch_command,
8356 CATCH_PERMANENT,
8357 CATCH_TEMPORARY);
8358 add_catch_command ("throw", _("\
8359Catch an exception, when thrown.\n\
8360With an argument, catch only exceptions with the given name."),
8361 catch_throw_command,
8362 CATCH_PERMANENT,
8363 CATCH_TEMPORARY);
8364 add_catch_command ("fork", _("Catch calls to fork."),
8365 catch_fork_command_1,
8366 (void *) (uintptr_t) catch_fork_permanent,
8367 (void *) (uintptr_t) catch_fork_temporary);
8368 add_catch_command ("vfork", _("Catch calls to vfork."),
8369 catch_fork_command_1,
8370 (void *) (uintptr_t) catch_vfork_permanent,
8371 (void *) (uintptr_t) catch_vfork_temporary);
8372 add_catch_command ("exec", _("Catch calls to exec."),
8373 catch_exec_command_1,
8374 CATCH_PERMANENT,
8375 CATCH_TEMPORARY);
8376 add_catch_command ("exception", _("\
8377Catch Ada exceptions, when raised.\n\
8378With an argument, catch only exceptions with the given name."),
8379 catch_ada_exception_command,
8380 CATCH_PERMANENT,
8381 CATCH_TEMPORARY);
8382 add_catch_command ("assert", _("\
8383Catch failed Ada assertions, when raised.\n\
8384With an argument, catch only exceptions with the given name."),
8385 catch_assert_command,
8386 CATCH_PERMANENT,
8387 CATCH_TEMPORARY);
8388
8389 c = add_com ("watch", class_breakpoint, watch_command, _("\
8390Set a watchpoint for an expression.\n\
8391A watchpoint stops execution of your program whenever the value of\n\
8392an expression changes."));
8393 set_cmd_completer (c, expression_completer);
8394
8395 c = add_com ("rwatch", class_breakpoint, rwatch_command, _("\
8396Set a read watchpoint for an expression.\n\
8397A watchpoint stops execution of your program whenever the value of\n\
8398an expression is read."));
8399 set_cmd_completer (c, expression_completer);
8400
8401 c = add_com ("awatch", class_breakpoint, awatch_command, _("\
8402Set a watchpoint for an expression.\n\
8403A watchpoint stops execution of your program whenever the value of\n\
8404an expression is either read or written."));
8405 set_cmd_completer (c, expression_completer);
8406
8407 add_info ("watchpoints", breakpoints_info,
8408 _("Synonym for ``info breakpoints''."));
8409
8410
8411 /* XXX: cagney/2005-02-23: This should be a boolean, and should
8412 respond to changes - contrary to the description. */
8413 add_setshow_zinteger_cmd ("can-use-hw-watchpoints", class_support,
8414 &can_use_hw_watchpoints, _("\
8415Set debugger's willingness to use watchpoint hardware."), _("\
8416Show debugger's willingness to use watchpoint hardware."), _("\
8417If zero, gdb will not use hardware for new watchpoints, even if\n\
8418such is available. (However, any hardware watchpoints that were\n\
8419created before setting this to nonzero, will continue to use watchpoint\n\
8420hardware.)"),
8421 NULL,
8422 show_can_use_hw_watchpoints,
8423 &setlist, &showlist);
8424
8425 can_use_hw_watchpoints = 1;
8426
8427 add_prefix_cmd ("breakpoint", class_maintenance, set_breakpoint_cmd, _("\
8428Breakpoint specific settings\n\
8429Configure various breakpoint-specific variables such as\n\
8430pending breakpoint behavior"),
8431 &breakpoint_set_cmdlist, "set breakpoint ",
8432 0/*allow-unknown*/, &setlist);
8433 add_prefix_cmd ("breakpoint", class_maintenance, show_breakpoint_cmd, _("\
8434Breakpoint specific settings\n\
8435Configure various breakpoint-specific variables such as\n\
8436pending breakpoint behavior"),
8437 &breakpoint_show_cmdlist, "show breakpoint ",
8438 0/*allow-unknown*/, &showlist);
8439
8440 add_setshow_auto_boolean_cmd ("pending", no_class,
8441 &pending_break_support, _("\
8442Set debugger's behavior regarding pending breakpoints."), _("\
8443Show debugger's behavior regarding pending breakpoints."), _("\
8444If on, an unrecognized breakpoint location will cause gdb to create a\n\
8445pending breakpoint. If off, an unrecognized breakpoint location results in\n\
8446an error. If auto, an unrecognized breakpoint location results in a\n\
8447user-query to see if a pending breakpoint should be created."),
8448 NULL,
8449 show_pending_break_support,
8450 &breakpoint_set_cmdlist,
8451 &breakpoint_show_cmdlist);
8452
8453 pending_break_support = AUTO_BOOLEAN_AUTO;
8454
8455 add_setshow_boolean_cmd ("auto-hw", no_class,
8456 &automatic_hardware_breakpoints, _("\
8457Set automatic usage of hardware breakpoints."), _("\
8458Show automatic usage of hardware breakpoints."), _("\
8459If set, the debugger will automatically use hardware breakpoints for\n\
8460breakpoints set with \"break\" but falling in read-only memory. If not set,\n\
8461a warning will be emitted for such breakpoints."),
8462 NULL,
8463 show_automatic_hardware_breakpoints,
8464 &breakpoint_set_cmdlist,
8465 &breakpoint_show_cmdlist);
8466
8467 add_setshow_enum_cmd ("always-inserted", class_support,
8468 always_inserted_enums, &always_inserted_mode, _("\
8469Set mode for inserting breakpoints."), _("\
8470Show mode for inserting breakpoints."), _("\
8471When this mode is off, breakpoints are inserted in inferior when it is\n\
8472resumed, and removed when execution stops. When this mode is on,\n\
8473breakpoints are inserted immediately and removed only when the user\n\
8474deletes the breakpoint. When this mode is auto (which is the default),\n\
8475the behaviour depends on the non-stop setting (see help set non-stop).\n\
8476In this case, if gdb is controlling the inferior in non-stop mode, gdb\n\
8477behaves as if always-inserted mode is on; if gdb is controlling the\n\
8478inferior in all-stop mode, gdb behaves as if always-inserted mode is off."),
8479 NULL,
8480 &show_always_inserted_mode,
8481 &breakpoint_set_cmdlist,
8482 &breakpoint_show_cmdlist);
8483
8484 automatic_hardware_breakpoints = 1;
8485}
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