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[deliverable/binutils-gdb.git] / gdb / gdbserver / mem-break.c
CommitLineData
611cb4a5 1/* Memory breakpoint operations for the remote server for GDB.
618f726f 2 Copyright (C) 2002-2016 Free Software Foundation, Inc.
611cb4a5
DJ
3
4 Contributed by MontaVista Software.
5
6 This file is part of GDB.
7
8 This program is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
a9762ec7 10 the Free Software Foundation; either version 3 of the License, or
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11 (at your option) any later version.
12
13 This program is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
17
18 You should have received a copy of the GNU General Public License
a9762ec7 19 along with this program. If not, see <http://www.gnu.org/licenses/>. */
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20
21#include "server.h"
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22#include "regcache.h"
23#include "ax.h"
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24
25#define MAX_BREAKPOINT_LEN 8
26
ddcbc397
DB
27/* Helper macro used in loops that append multiple items to a singly-linked
28 list instead of inserting items at the head of the list, as, say, in the
29 breakpoint lists. LISTPP is a pointer to the pointer that is the head of
30 the new list. ITEMP is a pointer to the item to be added to the list.
31 TAILP must be defined to be the same type as ITEMP, and initialized to
32 NULL. */
33
34#define APPEND_TO_LIST(listpp, itemp, tailp) \
35 do \
36 { \
37 if ((tailp) == NULL) \
38 *(listpp) = (itemp); \
39 else \
40 (tailp)->next = (itemp); \
41 (tailp) = (itemp); \
42 } \
43 while (0)
44
8b07ae33 45/* GDB will never try to install multiple breakpoints at the same
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46 address. However, we can see GDB requesting to insert a breakpoint
47 at an address is had already inserted one previously in a few
48 situations.
49
50 - The RSP documentation on Z packets says that to avoid potential
51 problems with duplicate packets, the operations should be
52 implemented in an idempotent way.
53
54 - A breakpoint is set at ADDR, an address in a shared library.
55 Then the shared library is unloaded. And then another, unrelated,
56 breakpoint at ADDR is set. There is not breakpoint removal request
57 between the first and the second breakpoint.
58
59 - When GDB wants to update the target-side breakpoint conditions or
60 commands, it re-inserts the breakpoint, with updated
61 conditions/commands associated.
62
63 Also, we need to keep track of internal breakpoints too, so we do
64 need to be able to install multiple breakpoints at the same address
65 transparently.
66
67 We keep track of two different, and closely related structures. A
68 raw breakpoint, which manages the low level, close to the metal
69 aspect of a breakpoint. It holds the breakpoint address, and for
70 software breakpoints, a buffer holding a copy of the instructions
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PA
71 that would be in memory had not been a breakpoint there (we call
72 that the shadow memory of the breakpoint). We occasionally need to
73 temporarilly uninsert a breakpoint without the client knowing about
74 it (e.g., to step over an internal breakpoint), so we keep an
75 `inserted' state associated with this low level breakpoint
76 structure. There can only be one such object for a given address.
77 Then, we have (a bit higher level) breakpoints. This structure
78 holds a callback to be called whenever a breakpoint is hit, a
79 high-level type, and a link to a low level raw breakpoint. There
80 can be many high-level breakpoints at the same address, and all of
81 them will point to the same raw breakpoint, which is reference
82 counted. */
83
84/* The low level, physical, raw breakpoint. */
85struct raw_breakpoint
86{
87 struct raw_breakpoint *next;
88
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89 /* The low level type of the breakpoint (software breakpoint,
90 watchpoint, etc.) */
91 enum raw_bkpt_type raw_type;
92
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93 /* A reference count. Each high level breakpoint referencing this
94 raw breakpoint accounts for one reference. */
95 int refcount;
96
97 /* The breakpoint's insertion address. There can only be one raw
98 breakpoint for a given PC. */
99 CORE_ADDR pc;
100
27165294
AT
101 /* The breakpoint's kind. This is target specific. Most
102 architectures only use one specific instruction for breakpoints, while
103 others may use more than one. E.g., on ARM, we need to use different
104 breakpoint instructions on Thumb, Thumb-2, and ARM code. Likewise for
105 hardware breakpoints -- some architectures (including ARM) need to
106 setup debug registers differently depending on mode. */
107 int kind;
802e8e6d 108
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109 /* The breakpoint's shadow memory. */
110 unsigned char old_data[MAX_BREAKPOINT_LEN];
111
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112 /* Positive if this breakpoint is currently inserted in the
113 inferior. Negative if it was, but we've detected that it's now
114 gone. Zero if not inserted. */
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115 int inserted;
116};
117
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118/* The type of a breakpoint. */
119enum bkpt_type
120 {
8b07ae33 121 /* A GDB breakpoint, requested with a Z0 packet. */
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122 gdb_breakpoint_Z0,
123
124 /* A GDB hardware breakpoint, requested with a Z1 packet. */
125 gdb_breakpoint_Z1,
126
127 /* A GDB write watchpoint, requested with a Z2 packet. */
128 gdb_breakpoint_Z2,
129
130 /* A GDB read watchpoint, requested with a Z3 packet. */
131 gdb_breakpoint_Z3,
132
133 /* A GDB access watchpoint, requested with a Z4 packet. */
134 gdb_breakpoint_Z4,
8b07ae33 135
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PA
136 /* A basic-software-single-step breakpoint. */
137 reinsert_breakpoint,
138
139 /* Any other breakpoint type that doesn't require specific
140 treatment goes here. E.g., an event breakpoint. */
141 other_breakpoint,
142 };
143
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144struct point_cond_list
145{
146 /* Pointer to the agent expression that is the breakpoint's
147 conditional. */
148 struct agent_expr *cond;
149
150 /* Pointer to the next condition. */
151 struct point_cond_list *next;
152};
153
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154struct point_command_list
155{
156 /* Pointer to the agent expression that is the breakpoint's
157 commands. */
158 struct agent_expr *cmd;
159
160 /* Flag that is true if this command should run even while GDB is
161 disconnected. */
162 int persistence;
163
164 /* Pointer to the next command. */
165 struct point_command_list *next;
166};
167
8b07ae33 168/* A high level (in gdbserver's perspective) breakpoint. */
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169struct breakpoint
170{
171 struct breakpoint *next;
611cb4a5 172
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173 /* The breakpoint's type. */
174 enum bkpt_type type;
175
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176 /* Pointer to the condition list that should be evaluated on
177 the target or NULL if the breakpoint is unconditional or
178 if GDB doesn't want us to evaluate the conditionals on the
179 target's side. */
180 struct point_cond_list *cond_list;
181
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182 /* Point to the list of commands to run when this is hit. */
183 struct point_command_list *command_list;
184
8b07ae33
PA
185 /* Link to this breakpoint's raw breakpoint. This is always
186 non-NULL. */
187 struct raw_breakpoint *raw;
188
b65d95c5 189 /* Function to call when we hit this breakpoint. If it returns 1,
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190 the breakpoint shall be deleted; 0 or if this callback is NULL,
191 it will be left inserted. */
b65d95c5 192 int (*handler) (CORE_ADDR);
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DJ
193};
194
27165294
AT
195/* Return the breakpoint size from its kind. */
196
197static int
198bp_size (struct raw_breakpoint *bp)
199{
200 int size = 0;
201
202 the_target->sw_breakpoint_from_kind (bp->kind, &size);
203 return size;
204}
205
206/* Return the breakpoint opcode from its kind. */
207
208static const gdb_byte *
209bp_opcode (struct raw_breakpoint *bp)
210{
211 int size = 0;
212
213 return the_target->sw_breakpoint_from_kind (bp->kind, &size);
214}
215
802e8e6d
PA
216/* See mem-break.h. */
217
932539e3 218enum target_hw_bp_type
802e8e6d 219raw_bkpt_type_to_target_hw_bp_type (enum raw_bkpt_type raw_type)
932539e3 220{
802e8e6d 221 switch (raw_type)
932539e3 222 {
802e8e6d 223 case raw_bkpt_type_hw:
932539e3 224 return hw_execute;
802e8e6d 225 case raw_bkpt_type_write_wp:
932539e3 226 return hw_write;
802e8e6d 227 case raw_bkpt_type_read_wp:
932539e3 228 return hw_read;
802e8e6d 229 case raw_bkpt_type_access_wp:
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230 return hw_access;
231 default:
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GB
232 internal_error (__FILE__, __LINE__,
233 "bad raw breakpoint type %d", (int) raw_type);
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PA
234 }
235}
236
237/* See mem-break.h. */
238
239static enum bkpt_type
240Z_packet_to_bkpt_type (char z_type)
241{
242 gdb_assert ('0' <= z_type && z_type <= '4');
243
d2412fa5 244 return (enum bkpt_type) (gdb_breakpoint_Z0 + (z_type - '0'));
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245}
246
247/* See mem-break.h. */
248
249enum raw_bkpt_type
250Z_packet_to_raw_bkpt_type (char z_type)
251{
252 switch (z_type)
253 {
254 case Z_PACKET_SW_BP:
255 return raw_bkpt_type_sw;
256 case Z_PACKET_HW_BP:
257 return raw_bkpt_type_hw;
258 case Z_PACKET_WRITE_WP:
259 return raw_bkpt_type_write_wp;
260 case Z_PACKET_READ_WP:
261 return raw_bkpt_type_read_wp;
262 case Z_PACKET_ACCESS_WP:
263 return raw_bkpt_type_access_wp;
264 default:
265 gdb_assert_not_reached ("unhandled Z packet type.");
932539e3
PA
266 }
267}
268
d3ce09f5 269int
5b3da067 270any_persistent_commands (void)
d3ce09f5
SS
271{
272 struct process_info *proc = current_process ();
273 struct breakpoint *bp;
274 struct point_command_list *cl;
275
276 for (bp = proc->breakpoints; bp != NULL; bp = bp->next)
277 {
278 for (cl = bp->command_list; cl != NULL; cl = cl->next)
279 if (cl->persistence)
280 return 1;
281 }
282
283 return 0;
284}
285
802e8e6d
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286/* Find low-level breakpoint of type TYPE at address ADDR that is not
287 insert-disabled. Returns NULL if not found. */
288
8b07ae33 289static struct raw_breakpoint *
802e8e6d 290find_enabled_raw_code_breakpoint_at (CORE_ADDR addr, enum raw_bkpt_type type)
8b07ae33
PA
291{
292 struct process_info *proc = current_process ();
293 struct raw_breakpoint *bp;
414a389f 294
8b07ae33 295 for (bp = proc->raw_breakpoints; bp != NULL; bp = bp->next)
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296 if (bp->pc == addr
297 && bp->raw_type == type
298 && bp->inserted >= 0)
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PA
299 return bp;
300
301 return NULL;
302}
303
802e8e6d
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304/* Find low-level breakpoint of type TYPE at address ADDR. Returns
305 NULL if not found. */
306
8b07ae33 307static struct raw_breakpoint *
27165294 308find_raw_breakpoint_at (CORE_ADDR addr, enum raw_bkpt_type type, int kind)
611cb4a5 309{
95954743 310 struct process_info *proc = current_process ();
8b07ae33 311 struct raw_breakpoint *bp;
802e8e6d
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312
313 for (bp = proc->raw_breakpoints; bp != NULL; bp = bp->next)
27165294 314 if (bp->pc == addr && bp->raw_type == type && bp->kind == kind)
802e8e6d
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315 return bp;
316
317 return NULL;
318}
319
320/* See mem-break.h. */
321
322int
323insert_memory_breakpoint (struct raw_breakpoint *bp)
324{
6bf36717 325 unsigned char buf[MAX_BREAKPOINT_LEN];
802e8e6d 326 int err;
611cb4a5 327
fa593d66
PA
328 /* Note that there can be fast tracepoint jumps installed in the
329 same memory range, so to get at the original memory, we need to
330 use read_inferior_memory, which masks those out. */
27165294 331 err = read_inferior_memory (bp->pc, buf, bp_size (bp));
d50171e4
PA
332 if (err != 0)
333 {
334 if (debug_threads)
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DE
335 debug_printf ("Failed to read shadow memory of"
336 " breakpoint at 0x%s (%s).\n",
802e8e6d 337 paddress (bp->pc), strerror (err));
d50171e4 338 }
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339 else
340 {
27165294 341 memcpy (bp->old_data, buf, bp_size (bp));
611cb4a5 342
27165294
AT
343 err = (*the_target->write_memory) (bp->pc, bp_opcode (bp),
344 bp_size (bp));
802e8e6d
PA
345 if (err != 0)
346 {
347 if (debug_threads)
348 debug_printf ("Failed to insert breakpoint at 0x%s (%s).\n",
349 paddress (bp->pc), strerror (err));
350 }
351 }
352 return err != 0 ? -1 : 0;
353}
354
355/* See mem-break.h */
356
357int
358remove_memory_breakpoint (struct raw_breakpoint *bp)
359{
360 unsigned char buf[MAX_BREAKPOINT_LEN];
361 int err;
362
363 /* Since there can be trap breakpoints inserted in the same address
364 range, we use `write_inferior_memory', which takes care of
365 layering breakpoints on top of fast tracepoints, and on top of
366 the buffer we pass it. This works because the caller has already
367 either unlinked the breakpoint or marked it uninserted. Also
368 note that we need to pass the current shadow contents, because
369 write_inferior_memory updates any shadow memory with what we pass
370 here, and we want that to be a nop. */
27165294
AT
371 memcpy (buf, bp->old_data, bp_size (bp));
372 err = write_inferior_memory (bp->pc, buf, bp_size (bp));
d50171e4
PA
373 if (err != 0)
374 {
375 if (debug_threads)
802e8e6d
PA
376 debug_printf ("Failed to uninsert raw breakpoint "
377 "at 0x%s (%s) while deleting it.\n",
378 paddress (bp->pc), strerror (err));
379 }
380 return err != 0 ? -1 : 0;
381}
382
27165294 383/* Set a RAW breakpoint of type TYPE and kind KIND at WHERE. On
802e8e6d
PA
384 success, a pointer to the new breakpoint is returned. On failure,
385 returns NULL and writes the error code to *ERR. */
386
387static struct raw_breakpoint *
27165294 388set_raw_breakpoint_at (enum raw_bkpt_type type, CORE_ADDR where, int kind,
802e8e6d
PA
389 int *err)
390{
391 struct process_info *proc = current_process ();
392 struct raw_breakpoint *bp;
20249ae4 393 struct cleanup *old_chain = make_cleanup (null_cleanup, NULL);
802e8e6d
PA
394
395 if (type == raw_bkpt_type_sw || type == raw_bkpt_type_hw)
396 {
397 bp = find_enabled_raw_code_breakpoint_at (where, type);
27165294 398 if (bp != NULL && bp->kind != kind)
802e8e6d 399 {
27165294 400 /* A different kind than previously seen. The previous
802e8e6d
PA
401 breakpoint must be gone then. */
402 if (debug_threads)
27165294
AT
403 debug_printf ("Inconsistent breakpoint kind? Was %d, now %d.\n",
404 bp->kind, kind);
802e8e6d
PA
405 bp->inserted = -1;
406 bp = NULL;
407 }
408 }
409 else
27165294 410 bp = find_raw_breakpoint_at (where, type, kind);
802e8e6d 411
20249ae4 412 if (bp == NULL)
802e8e6d 413 {
20249ae4
YQ
414 bp = XCNEW (struct raw_breakpoint);
415 bp->pc = where;
416 bp->kind = kind;
417 bp->raw_type = type;
418 make_cleanup (xfree, bp);
802e8e6d
PA
419 }
420
20249ae4 421 if (!bp->inserted)
802e8e6d 422 {
20249ae4
YQ
423 *err = the_target->insert_point (bp->raw_type, bp->pc, bp->kind, bp);
424 if (*err != 0)
425 {
426 if (debug_threads)
427 debug_printf ("Failed to insert breakpoint at 0x%s (%d).\n",
428 paddress (where), *err);
429
430 do_cleanups (old_chain);
431 return NULL;
432 }
433
434 bp->inserted = 1;
d50171e4
PA
435 }
436
20249ae4
YQ
437 discard_cleanups (old_chain);
438
439 /* Link the breakpoint in, if this is the first reference. */
440 if (++bp->refcount == 1)
441 {
442 bp->next = proc->raw_breakpoints;
443 proc->raw_breakpoints = bp;
444 }
d50171e4
PA
445 return bp;
446}
447
fa593d66
PA
448/* Notice that breakpoint traps are always installed on top of fast
449 tracepoint jumps. This is even if the fast tracepoint is installed
450 at a later time compared to when the breakpoint was installed.
451 This means that a stopping breakpoint or tracepoint has higher
452 "priority". In turn, this allows having fast and slow tracepoints
453 (and breakpoints) at the same address behave correctly. */
454
455
456/* A fast tracepoint jump. */
457
458struct fast_tracepoint_jump
459{
460 struct fast_tracepoint_jump *next;
461
462 /* A reference count. GDB can install more than one fast tracepoint
463 at the same address (each with its own action list, for
464 example). */
465 int refcount;
466
467 /* The fast tracepoint's insertion address. There can only be one
468 of these for a given PC. */
469 CORE_ADDR pc;
470
471 /* Non-zero if this fast tracepoint jump is currently inserted in
472 the inferior. */
473 int inserted;
474
475 /* The length of the jump instruction. */
476 int length;
477
478 /* A poor-man's flexible array member, holding both the jump
479 instruction to insert, and a copy of the instruction that would
480 be in memory had not been a jump there (the shadow memory of the
481 tracepoint jump). */
482 unsigned char insn_and_shadow[0];
483};
484
485/* Fast tracepoint FP's jump instruction to insert. */
486#define fast_tracepoint_jump_insn(fp) \
487 ((fp)->insn_and_shadow + 0)
488
489/* The shadow memory of fast tracepoint jump FP. */
490#define fast_tracepoint_jump_shadow(fp) \
491 ((fp)->insn_and_shadow + (fp)->length)
492
493
494/* Return the fast tracepoint jump set at WHERE. */
495
496static struct fast_tracepoint_jump *
497find_fast_tracepoint_jump_at (CORE_ADDR where)
498{
499 struct process_info *proc = current_process ();
500 struct fast_tracepoint_jump *jp;
501
502 for (jp = proc->fast_tracepoint_jumps; jp != NULL; jp = jp->next)
503 if (jp->pc == where)
504 return jp;
505
506 return NULL;
507}
508
509int
510fast_tracepoint_jump_here (CORE_ADDR where)
511{
512 struct fast_tracepoint_jump *jp = find_fast_tracepoint_jump_at (where);
513
514 return (jp != NULL);
515}
516
517int
518delete_fast_tracepoint_jump (struct fast_tracepoint_jump *todel)
519{
520 struct fast_tracepoint_jump *bp, **bp_link;
521 int ret;
522 struct process_info *proc = current_process ();
523
524 bp = proc->fast_tracepoint_jumps;
525 bp_link = &proc->fast_tracepoint_jumps;
526
527 while (bp)
528 {
529 if (bp == todel)
530 {
531 if (--bp->refcount == 0)
532 {
533 struct fast_tracepoint_jump *prev_bp_link = *bp_link;
6bf36717 534 unsigned char *buf;
fa593d66
PA
535
536 /* Unlink it. */
537 *bp_link = bp->next;
538
539 /* Since there can be breakpoints inserted in the same
540 address range, we use `write_inferior_memory', which
541 takes care of layering breakpoints on top of fast
542 tracepoints, and on top of the buffer we pass it.
543 This works because we've already unlinked the fast
544 tracepoint jump above. Also note that we need to
545 pass the current shadow contents, because
546 write_inferior_memory updates any shadow memory with
547 what we pass here, and we want that to be a nop. */
224c3ddb 548 buf = (unsigned char *) alloca (bp->length);
6bf36717
JK
549 memcpy (buf, fast_tracepoint_jump_shadow (bp), bp->length);
550 ret = write_inferior_memory (bp->pc, buf, bp->length);
fa593d66
PA
551 if (ret != 0)
552 {
553 /* Something went wrong, relink the jump. */
554 *bp_link = prev_bp_link;
555
556 if (debug_threads)
87ce2a04
DE
557 debug_printf ("Failed to uninsert fast tracepoint jump "
558 "at 0x%s (%s) while deleting it.\n",
559 paddress (bp->pc), strerror (ret));
fa593d66
PA
560 return ret;
561 }
562
563 free (bp);
564 }
565
566 return 0;
567 }
568 else
569 {
570 bp_link = &bp->next;
571 bp = *bp_link;
572 }
573 }
574
575 warning ("Could not find fast tracepoint jump in list.");
576 return ENOENT;
577}
578
5c73ff4e
YQ
579void
580inc_ref_fast_tracepoint_jump (struct fast_tracepoint_jump *jp)
581{
582 jp->refcount++;
583}
584
fa593d66
PA
585struct fast_tracepoint_jump *
586set_fast_tracepoint_jump (CORE_ADDR where,
587 unsigned char *insn, ULONGEST length)
588{
589 struct process_info *proc = current_process ();
590 struct fast_tracepoint_jump *jp;
591 int err;
6bf36717 592 unsigned char *buf;
fa593d66
PA
593
594 /* We refcount fast tracepoint jumps. Check if we already know
595 about a jump at this address. */
596 jp = find_fast_tracepoint_jump_at (where);
597 if (jp != NULL)
598 {
599 jp->refcount++;
600 return jp;
601 }
602
603 /* We don't, so create a new object. Double the length, because the
604 flexible array member holds both the jump insn, and the
605 shadow. */
224c3ddb 606 jp = (struct fast_tracepoint_jump *) xcalloc (1, sizeof (*jp) + (length * 2));
fa593d66
PA
607 jp->pc = where;
608 jp->length = length;
609 memcpy (fast_tracepoint_jump_insn (jp), insn, length);
610 jp->refcount = 1;
224c3ddb 611 buf = (unsigned char *) alloca (length);
fa593d66
PA
612
613 /* Note that there can be trap breakpoints inserted in the same
614 address range. To access the original memory contents, we use
615 `read_inferior_memory', which masks out breakpoints. */
6bf36717 616 err = read_inferior_memory (where, buf, length);
fa593d66
PA
617 if (err != 0)
618 {
619 if (debug_threads)
87ce2a04
DE
620 debug_printf ("Failed to read shadow memory of"
621 " fast tracepoint at 0x%s (%s).\n",
622 paddress (where), strerror (err));
fa593d66
PA
623 free (jp);
624 return NULL;
625 }
6bf36717 626 memcpy (fast_tracepoint_jump_shadow (jp), buf, length);
fa593d66
PA
627
628 /* Link the jump in. */
629 jp->inserted = 1;
630 jp->next = proc->fast_tracepoint_jumps;
631 proc->fast_tracepoint_jumps = jp;
632
633 /* Since there can be trap breakpoints inserted in the same address
634 range, we use use `write_inferior_memory', which takes care of
635 layering breakpoints on top of fast tracepoints, on top of the
636 buffer we pass it. This works because we've already linked in
637 the fast tracepoint jump above. Also note that we need to pass
638 the current shadow contents, because write_inferior_memory
639 updates any shadow memory with what we pass here, and we want
640 that to be a nop. */
6bf36717 641 err = write_inferior_memory (where, buf, length);
fa593d66
PA
642 if (err != 0)
643 {
644 if (debug_threads)
87ce2a04
DE
645 debug_printf ("Failed to insert fast tracepoint jump at 0x%s (%s).\n",
646 paddress (where), strerror (err));
fa593d66
PA
647
648 /* Unlink it. */
649 proc->fast_tracepoint_jumps = jp->next;
650 free (jp);
651
652 return NULL;
653 }
654
655 return jp;
656}
657
658void
659uninsert_fast_tracepoint_jumps_at (CORE_ADDR pc)
660{
661 struct fast_tracepoint_jump *jp;
662 int err;
663
664 jp = find_fast_tracepoint_jump_at (pc);
665 if (jp == NULL)
666 {
667 /* This can happen when we remove all breakpoints while handling
668 a step-over. */
669 if (debug_threads)
87ce2a04
DE
670 debug_printf ("Could not find fast tracepoint jump at 0x%s "
671 "in list (uninserting).\n",
672 paddress (pc));
fa593d66
PA
673 return;
674 }
675
676 if (jp->inserted)
677 {
6bf36717
JK
678 unsigned char *buf;
679
fa593d66
PA
680 jp->inserted = 0;
681
682 /* Since there can be trap breakpoints inserted in the same
683 address range, we use use `write_inferior_memory', which
684 takes care of layering breakpoints on top of fast
685 tracepoints, and on top of the buffer we pass it. This works
686 because we've already marked the fast tracepoint fast
687 tracepoint jump uninserted above. Also note that we need to
688 pass the current shadow contents, because
689 write_inferior_memory updates any shadow memory with what we
690 pass here, and we want that to be a nop. */
224c3ddb 691 buf = (unsigned char *) alloca (jp->length);
6bf36717
JK
692 memcpy (buf, fast_tracepoint_jump_shadow (jp), jp->length);
693 err = write_inferior_memory (jp->pc, buf, jp->length);
fa593d66
PA
694 if (err != 0)
695 {
696 jp->inserted = 1;
697
698 if (debug_threads)
87ce2a04
DE
699 debug_printf ("Failed to uninsert fast tracepoint jump at"
700 " 0x%s (%s).\n",
701 paddress (pc), strerror (err));
fa593d66
PA
702 }
703 }
704}
705
706void
707reinsert_fast_tracepoint_jumps_at (CORE_ADDR where)
708{
709 struct fast_tracepoint_jump *jp;
710 int err;
6bf36717 711 unsigned char *buf;
fa593d66
PA
712
713 jp = find_fast_tracepoint_jump_at (where);
714 if (jp == NULL)
715 {
716 /* This can happen when we remove breakpoints when a tracepoint
717 hit causes a tracing stop, while handling a step-over. */
718 if (debug_threads)
87ce2a04
DE
719 debug_printf ("Could not find fast tracepoint jump at 0x%s "
720 "in list (reinserting).\n",
721 paddress (where));
fa593d66
PA
722 return;
723 }
724
725 if (jp->inserted)
726 error ("Jump already inserted at reinsert time.");
727
728 jp->inserted = 1;
729
730 /* Since there can be trap breakpoints inserted in the same address
731 range, we use `write_inferior_memory', which takes care of
732 layering breakpoints on top of fast tracepoints, and on top of
733 the buffer we pass it. This works because we've already marked
734 the fast tracepoint jump inserted above. Also note that we need
735 to pass the current shadow contents, because
736 write_inferior_memory updates any shadow memory with what we pass
737 here, and we want that to be a nop. */
224c3ddb 738 buf = (unsigned char *) alloca (jp->length);
6bf36717
JK
739 memcpy (buf, fast_tracepoint_jump_shadow (jp), jp->length);
740 err = write_inferior_memory (where, buf, jp->length);
fa593d66
PA
741 if (err != 0)
742 {
743 jp->inserted = 0;
744
745 if (debug_threads)
87ce2a04
DE
746 debug_printf ("Failed to reinsert fast tracepoint jump at"
747 " 0x%s (%s).\n",
748 paddress (where), strerror (err));
fa593d66
PA
749 }
750}
751
802e8e6d 752/* Set a high-level breakpoint of type TYPE, with low level type
27165294 753 RAW_TYPE and kind KIND, at WHERE. On success, a pointer to the new
802e8e6d
PA
754 breakpoint is returned. On failure, returns NULL and writes the
755 error code to *ERR. HANDLER is called when the breakpoint is hit.
756 HANDLER should return 1 if the breakpoint should be deleted, 0
757 otherwise. */
758
759static struct breakpoint *
760set_breakpoint (enum bkpt_type type, enum raw_bkpt_type raw_type,
27165294 761 CORE_ADDR where, int kind,
802e8e6d 762 int (*handler) (CORE_ADDR), int *err)
d50171e4
PA
763{
764 struct process_info *proc = current_process ();
765 struct breakpoint *bp;
8b07ae33 766 struct raw_breakpoint *raw;
d50171e4 767
27165294 768 raw = set_raw_breakpoint_at (raw_type, where, kind, err);
d50171e4 769
8b07ae33 770 if (raw == NULL)
d50171e4
PA
771 {
772 /* warn? */
414a389f 773 return NULL;
d50171e4
PA
774 }
775
8d749320 776 bp = XCNEW (struct breakpoint);
802e8e6d 777 bp->type = type;
8b07ae33
PA
778
779 bp->raw = raw;
611cb4a5
DJ
780 bp->handler = handler;
781
95954743
PA
782 bp->next = proc->breakpoints;
783 proc->breakpoints = bp;
414a389f
PA
784
785 return bp;
611cb4a5
DJ
786}
787
802e8e6d
PA
788/* See mem-break.h */
789
790struct breakpoint *
791set_breakpoint_at (CORE_ADDR where, int (*handler) (CORE_ADDR))
792{
793 int err_ignored;
27165294 794 CORE_ADDR placed_address = where;
2e6ee069 795 int breakpoint_kind = target_breakpoint_kind_from_pc (&placed_address);
802e8e6d
PA
796
797 return set_breakpoint (other_breakpoint, raw_bkpt_type_sw,
27165294 798 placed_address, breakpoint_kind, handler,
802e8e6d
PA
799 &err_ignored);
800}
801
802
8b07ae33
PA
803static int
804delete_raw_breakpoint (struct process_info *proc, struct raw_breakpoint *todel)
805{
806 struct raw_breakpoint *bp, **bp_link;
807 int ret;
808
809 bp = proc->raw_breakpoints;
810 bp_link = &proc->raw_breakpoints;
811
812 while (bp)
813 {
814 if (bp == todel)
815 {
802e8e6d 816 if (bp->inserted > 0)
8b07ae33
PA
817 {
818 struct raw_breakpoint *prev_bp_link = *bp_link;
819
820 *bp_link = bp->next;
821
27165294 822 ret = the_target->remove_point (bp->raw_type, bp->pc, bp->kind,
802e8e6d 823 bp);
8b07ae33
PA
824 if (ret != 0)
825 {
826 /* Something went wrong, relink the breakpoint. */
827 *bp_link = prev_bp_link;
828
829 if (debug_threads)
87ce2a04 830 debug_printf ("Failed to uninsert raw breakpoint "
802e8e6d
PA
831 "at 0x%s while deleting it.\n",
832 paddress (bp->pc));
8b07ae33
PA
833 return ret;
834 }
8b07ae33
PA
835 }
836 else
837 *bp_link = bp->next;
838
839 free (bp);
840 return 0;
841 }
842 else
843 {
844 bp_link = &bp->next;
845 bp = *bp_link;
846 }
847 }
848
849 warning ("Could not find raw breakpoint in list.");
850 return ENOENT;
851}
852
853static int
854release_breakpoint (struct process_info *proc, struct breakpoint *bp)
855{
856 int newrefcount;
857 int ret;
858
859 newrefcount = bp->raw->refcount - 1;
860 if (newrefcount == 0)
861 {
862 ret = delete_raw_breakpoint (proc, bp->raw);
863 if (ret != 0)
864 return ret;
865 }
866 else
867 bp->raw->refcount = newrefcount;
868
869 free (bp);
870
871 return 0;
872}
873
874static int
875delete_breakpoint_1 (struct process_info *proc, struct breakpoint *todel)
611cb4a5 876{
414a389f 877 struct breakpoint *bp, **bp_link;
8b07ae33 878 int err;
611cb4a5 879
414a389f
PA
880 bp = proc->breakpoints;
881 bp_link = &proc->breakpoints;
882
883 while (bp)
611cb4a5 884 {
414a389f 885 if (bp == todel)
611cb4a5 886 {
414a389f
PA
887 *bp_link = bp->next;
888
8b07ae33
PA
889 err = release_breakpoint (proc, bp);
890 if (err != 0)
891 return err;
892
893 bp = *bp_link;
894 return 0;
611cb4a5 895 }
414a389f
PA
896 else
897 {
898 bp_link = &bp->next;
899 bp = *bp_link;
900 }
611cb4a5 901 }
414a389f 902
611cb4a5 903 warning ("Could not find breakpoint in list.");
8b07ae33
PA
904 return ENOENT;
905}
906
219f2f23 907int
8b07ae33
PA
908delete_breakpoint (struct breakpoint *todel)
909{
910 struct process_info *proc = current_process ();
911 return delete_breakpoint_1 (proc, todel);
611cb4a5
DJ
912}
913
27165294
AT
914/* Locate a GDB breakpoint of type Z_TYPE and kind KIND placed at
915 address ADDR and return a pointer to its structure. If KIND is -1,
916 the breakpoint's kind is ignored. */
51aa91f9
PA
917
918static struct breakpoint *
27165294 919find_gdb_breakpoint (char z_type, CORE_ADDR addr, int kind)
611cb4a5 920{
95954743 921 struct process_info *proc = current_process ();
8b07ae33 922 struct breakpoint *bp;
802e8e6d 923 enum bkpt_type type = Z_packet_to_bkpt_type (z_type);
611cb4a5 924
8b07ae33 925 for (bp = proc->breakpoints; bp != NULL; bp = bp->next)
802e8e6d 926 if (bp->type == type && bp->raw->pc == addr
27165294 927 && (kind == -1 || bp->raw->kind == kind))
8b07ae33 928 return bp;
611cb4a5
DJ
929
930 return NULL;
931}
932
802e8e6d
PA
933static int
934z_type_supported (char z_type)
935{
936 return (z_type >= '0' && z_type <= '4'
ef7cab6b 937 && the_target->supports_z_point_type != NULL
802e8e6d
PA
938 && the_target->supports_z_point_type (z_type));
939}
940
27165294 941/* Create a new GDB breakpoint of type Z_TYPE at ADDR with kind KIND.
802e8e6d
PA
942 Returns a pointer to the newly created breakpoint on success. On
943 failure returns NULL and sets *ERR to either -1 for error, or 1 if
944 Z_TYPE breakpoints are not supported on this target. */
945
946static struct breakpoint *
27165294 947set_gdb_breakpoint_1 (char z_type, CORE_ADDR addr, int kind, int *err)
68070c10 948{
8b07ae33 949 struct breakpoint *bp;
802e8e6d
PA
950 enum bkpt_type type;
951 enum raw_bkpt_type raw_type;
952
953 /* If we see GDB inserting a second code breakpoint at the same
954 address, then either: GDB is updating the breakpoint's conditions
955 or commands; or, the first breakpoint must have disappeared due
956 to a shared library unload. On targets where the shared
957 libraries are handled by userspace, like SVR4, for example,
958 GDBserver can't tell if a library was loaded or unloaded. Since
959 we refcount raw breakpoints, we must be careful to make sure GDB
960 breakpoints never contribute more than one reference. if we
961 didn't do this, in case the previous breakpoint is gone due to a
962 shared library unload, we'd just increase the refcount of the
963 previous breakpoint at this address, but the trap was not planted
964 in the inferior anymore, thus the breakpoint would never be hit.
965 Note this must be careful to not create a window where
966 breakpoints are removed from the target, for non-stop, in case
967 the target can poke at memory while the program is running. */
968 if (z_type == Z_PACKET_SW_BP
969 || z_type == Z_PACKET_HW_BP)
970 {
971 bp = find_gdb_breakpoint (z_type, addr, -1);
8b07ae33 972
802e8e6d
PA
973 if (bp != NULL)
974 {
27165294 975 if (bp->raw->kind != kind)
802e8e6d 976 {
27165294 977 /* A different kind than previously seen. The previous
802e8e6d
PA
978 breakpoint must be gone then. */
979 bp->raw->inserted = -1;
980 delete_breakpoint (bp);
981 bp = NULL;
982 }
983 else if (z_type == Z_PACKET_SW_BP)
984 {
985 /* Check if the breakpoint is actually gone from the
986 target, due to an solib unload, for example. Might
987 as well validate _all_ breakpoints. */
988 validate_breakpoints ();
989
990 /* Breakpoints that don't pass validation are
991 deleted. */
992 bp = find_gdb_breakpoint (z_type, addr, -1);
993 }
994 }
995 }
996 else
997 {
27165294 998 /* Data breakpoints for the same address but different kind are
802e8e6d
PA
999 expected. GDB doesn't merge these. The backend gets to do
1000 that if it wants/can. */
27165294 1001 bp = find_gdb_breakpoint (z_type, addr, kind);
802e8e6d 1002 }
8b07ae33 1003
d3bbe7a0
PA
1004 if (bp != NULL)
1005 {
802e8e6d
PA
1006 /* We already know about this breakpoint, there's nothing else
1007 to do - GDB's reference is already accounted for. Note that
1008 whether the breakpoint inserted is left as is - we may be
1009 stepping over it, for example, in which case we don't want to
1010 force-reinsert it. */
1011 return bp;
1012 }
1013
1014 raw_type = Z_packet_to_raw_bkpt_type (z_type);
1015 type = Z_packet_to_bkpt_type (z_type);
27165294 1016 return set_breakpoint (type, raw_type, addr, kind, NULL, err);
802e8e6d
PA
1017}
1018
1019static int
1020check_gdb_bp_preconditions (char z_type, int *err)
1021{
1022 /* As software/memory breakpoints work by poking at memory, we need
1023 to prepare to access memory. If that operation fails, we need to
1024 return error. Seeing an error, if this is the first breakpoint
1025 of that type that GDB tries to insert, GDB would then assume the
1026 breakpoint type is supported, but it may actually not be. So we
1027 need to check whether the type is supported at all before
1028 preparing to access memory. */
1029 if (!z_type_supported (z_type))
1030 {
1031 *err = 1;
1032 return 0;
1033 }
a67a9fae
PA
1034
1035 return 1;
802e8e6d
PA
1036}
1037
1038/* See mem-break.h. This is a wrapper for set_gdb_breakpoint_1 that
1039 knows to prepare to access memory for Z0 breakpoints. */
d3bbe7a0 1040
802e8e6d 1041struct breakpoint *
27165294 1042set_gdb_breakpoint (char z_type, CORE_ADDR addr, int kind, int *err)
802e8e6d
PA
1043{
1044 struct breakpoint *bp;
1045
1046 if (!check_gdb_bp_preconditions (z_type, err))
1047 return NULL;
1048
1049 /* If inserting a software/memory breakpoint, need to prepare to
1050 access memory. */
1051 if (z_type == Z_PACKET_SW_BP)
1052 {
a67a9fae
PA
1053 if (prepare_to_access_memory () != 0)
1054 {
1055 *err = -1;
1056 return NULL;
1057 }
d3bbe7a0
PA
1058 }
1059
27165294 1060 bp = set_gdb_breakpoint_1 (z_type, addr, kind, err);
8b07ae33 1061
802e8e6d
PA
1062 if (z_type == Z_PACKET_SW_BP)
1063 done_accessing_memory ();
1064
1065 return bp;
8b07ae33
PA
1066}
1067
27165294 1068/* Delete a GDB breakpoint of type Z_TYPE and kind KIND previously
802e8e6d
PA
1069 inserted at ADDR with set_gdb_breakpoint_at. Returns 0 on success,
1070 -1 on error, and 1 if Z_TYPE breakpoints are not supported on this
1071 target. */
1072
1073static int
27165294 1074delete_gdb_breakpoint_1 (char z_type, CORE_ADDR addr, int kind)
8b07ae33
PA
1075{
1076 struct breakpoint *bp;
1077 int err;
1078
27165294 1079 bp = find_gdb_breakpoint (z_type, addr, kind);
8b07ae33
PA
1080 if (bp == NULL)
1081 return -1;
1082
0a261ed8
PA
1083 /* Before deleting the breakpoint, make sure to free its condition
1084 and command lists. */
1085 clear_breakpoint_conditions_and_commands (bp);
8b07ae33 1086 err = delete_breakpoint (bp);
802e8e6d 1087 if (err != 0)
8b07ae33
PA
1088 return -1;
1089
1090 return 0;
1091}
1092
802e8e6d
PA
1093/* See mem-break.h. This is a wrapper for delete_gdb_breakpoint that
1094 knows to prepare to access memory for Z0 breakpoints. */
1095
1096int
27165294 1097delete_gdb_breakpoint (char z_type, CORE_ADDR addr, int kind)
802e8e6d
PA
1098{
1099 int ret;
1100
1101 if (!check_gdb_bp_preconditions (z_type, &ret))
1102 return ret;
1103
1104 /* If inserting a software/memory breakpoint, need to prepare to
1105 access memory. */
1106 if (z_type == Z_PACKET_SW_BP)
1107 {
1108 int err;
1109
1110 err = prepare_to_access_memory ();
1111 if (err != 0)
1112 return -1;
1113 }
1114
27165294 1115 ret = delete_gdb_breakpoint_1 (z_type, addr, kind);
802e8e6d
PA
1116
1117 if (z_type == Z_PACKET_SW_BP)
1118 done_accessing_memory ();
1119
1120 return ret;
1121}
1122
1123/* Clear all conditions associated with a breakpoint. */
9f3a5c85 1124
0a261ed8 1125static void
802e8e6d 1126clear_breakpoint_conditions (struct breakpoint *bp)
9f3a5c85 1127{
412c89dd 1128 struct point_cond_list *cond;
9f3a5c85 1129
802e8e6d 1130 if (bp->cond_list == NULL)
9f3a5c85
LM
1131 return;
1132
1133 cond = bp->cond_list;
9f3a5c85
LM
1134
1135 while (cond != NULL)
1136 {
412c89dd
LM
1137 struct point_cond_list *cond_next;
1138
1139 cond_next = cond->next;
0a261ed8 1140 gdb_free_agent_expr (cond->cond);
9f3a5c85 1141 free (cond);
412c89dd 1142 cond = cond_next;
9f3a5c85
LM
1143 }
1144
1145 bp->cond_list = NULL;
1146}
1147
0a261ed8
PA
1148/* Clear all commands associated with a breakpoint. */
1149
1150static void
1151clear_breakpoint_commands (struct breakpoint *bp)
1152{
1153 struct point_command_list *cmd;
1154
1155 if (bp->command_list == NULL)
1156 return;
1157
1158 cmd = bp->command_list;
1159
1160 while (cmd != NULL)
1161 {
1162 struct point_command_list *cmd_next;
1163
1164 cmd_next = cmd->next;
1165 gdb_free_agent_expr (cmd->cmd);
1166 free (cmd);
1167 cmd = cmd_next;
1168 }
1169
1170 bp->command_list = NULL;
1171}
1172
1173void
1174clear_breakpoint_conditions_and_commands (struct breakpoint *bp)
1175{
1176 clear_breakpoint_conditions (bp);
1177 clear_breakpoint_commands (bp);
1178}
1179
9f3a5c85
LM
1180/* Add condition CONDITION to GDBserver's breakpoint BP. */
1181
802e8e6d 1182static void
9f3a5c85
LM
1183add_condition_to_breakpoint (struct breakpoint *bp,
1184 struct agent_expr *condition)
1185{
1186 struct point_cond_list *new_cond;
1187
1188 /* Create new condition. */
8d749320 1189 new_cond = XCNEW (struct point_cond_list);
9f3a5c85
LM
1190 new_cond->cond = condition;
1191
1192 /* Add condition to the list. */
1193 new_cond->next = bp->cond_list;
1194 bp->cond_list = new_cond;
1195}
1196
802e8e6d 1197/* Add a target-side condition CONDITION to a breakpoint. */
9f3a5c85 1198
8b07ae33 1199int
802e8e6d 1200add_breakpoint_condition (struct breakpoint *bp, char **condition)
9f3a5c85 1201{
9f3a5c85
LM
1202 char *actparm = *condition;
1203 struct agent_expr *cond;
1204
9f3a5c85
LM
1205 if (condition == NULL)
1206 return 1;
1207
d708bcd1
PA
1208 if (bp == NULL)
1209 return 0;
1210
9f3a5c85
LM
1211 cond = gdb_parse_agent_expr (&actparm);
1212
1213 if (cond == NULL)
1214 {
1215 fprintf (stderr, "Condition evaluation failed. "
1216 "Assuming unconditional.\n");
1217 return 0;
1218 }
1219
1220 add_condition_to_breakpoint (bp, cond);
1221
1222 *condition = actparm;
1223
d708bcd1 1224 return 1;
9f3a5c85
LM
1225}
1226
1227/* Evaluate condition (if any) at breakpoint BP. Return 1 if
1228 true and 0 otherwise. */
1229
802e8e6d
PA
1230static int
1231gdb_condition_true_at_breakpoint_z_type (char z_type, CORE_ADDR addr)
8b07ae33 1232{
9f3a5c85 1233 /* Fetch registers for the current inferior. */
802e8e6d 1234 struct breakpoint *bp = find_gdb_breakpoint (z_type, addr, -1);
9f3a5c85
LM
1235 ULONGEST value = 0;
1236 struct point_cond_list *cl;
1237 int err = 0;
5ae4861a 1238 struct eval_agent_expr_context ctx;
9f3a5c85
LM
1239
1240 if (bp == NULL)
1241 return 0;
8b07ae33 1242
9f3a5c85
LM
1243 /* Check if the breakpoint is unconditional. If it is,
1244 the condition always evaluates to TRUE. */
1245 if (bp->cond_list == NULL)
1246 return 1;
1247
0bfdf32f 1248 ctx.regcache = get_thread_regcache (current_thread, 1);
5ae4861a
YQ
1249 ctx.tframe = NULL;
1250 ctx.tpoint = NULL;
1251
9f3a5c85
LM
1252 /* Evaluate each condition in the breakpoint's list of conditions.
1253 Return true if any of the conditions evaluates to TRUE.
1254
1255 If we failed to evaluate the expression, TRUE is returned. This
1256 forces GDB to reevaluate the conditions. */
1257 for (cl = bp->cond_list;
1258 cl && !value && !err; cl = cl->next)
1259 {
1260 /* Evaluate the condition. */
5ae4861a 1261 err = gdb_eval_agent_expr (&ctx, cl->cond, &value);
9f3a5c85
LM
1262 }
1263
1264 if (err)
1265 return 1;
1266
1267 return (value != 0);
1268}
1269
802e8e6d
PA
1270int
1271gdb_condition_true_at_breakpoint (CORE_ADDR where)
1272{
1273 /* Only check code (software or hardware) breakpoints. */
1274 return (gdb_condition_true_at_breakpoint_z_type (Z_PACKET_SW_BP, where)
1275 || gdb_condition_true_at_breakpoint_z_type (Z_PACKET_HW_BP, where));
1276}
1277
d3ce09f5
SS
1278/* Add commands COMMANDS to GDBserver's breakpoint BP. */
1279
5b3da067 1280static void
d3ce09f5
SS
1281add_commands_to_breakpoint (struct breakpoint *bp,
1282 struct agent_expr *commands, int persist)
1283{
1284 struct point_command_list *new_cmd;
1285
1286 /* Create new command. */
8d749320 1287 new_cmd = XCNEW (struct point_command_list);
d3ce09f5
SS
1288 new_cmd->cmd = commands;
1289 new_cmd->persistence = persist;
1290
1291 /* Add commands to the list. */
1292 new_cmd->next = bp->command_list;
1293 bp->command_list = new_cmd;
1294}
1295
1296/* Add a target-side command COMMAND to the breakpoint at ADDR. */
1297
1298int
802e8e6d
PA
1299add_breakpoint_commands (struct breakpoint *bp, char **command,
1300 int persist)
d3ce09f5 1301{
d3ce09f5
SS
1302 char *actparm = *command;
1303 struct agent_expr *cmd;
1304
d3ce09f5
SS
1305 if (command == NULL)
1306 return 1;
1307
d708bcd1
PA
1308 if (bp == NULL)
1309 return 0;
1310
d3ce09f5
SS
1311 cmd = gdb_parse_agent_expr (&actparm);
1312
1313 if (cmd == NULL)
1314 {
1315 fprintf (stderr, "Command evaluation failed. "
1316 "Disabling.\n");
1317 return 0;
1318 }
1319
1320 add_commands_to_breakpoint (bp, cmd, persist);
1321
1322 *command = actparm;
1323
d708bcd1 1324 return 1;
d3ce09f5
SS
1325}
1326
1327/* Return true if there are no commands to run at this location,
1328 which likely means we want to report back to GDB. */
802e8e6d
PA
1329
1330static int
1331gdb_no_commands_at_breakpoint_z_type (char z_type, CORE_ADDR addr)
d3ce09f5 1332{
802e8e6d 1333 struct breakpoint *bp = find_gdb_breakpoint (z_type, addr, -1);
d3ce09f5
SS
1334
1335 if (bp == NULL)
802e8e6d 1336 return 1;
d3ce09f5
SS
1337
1338 if (debug_threads)
802e8e6d
PA
1339 debug_printf ("at 0x%s, type Z%c, bp command_list is 0x%s\n",
1340 paddress (addr), z_type,
87ce2a04 1341 phex_nz ((uintptr_t) bp->command_list, 0));
d3ce09f5
SS
1342 return (bp->command_list == NULL);
1343}
1344
802e8e6d
PA
1345/* Return true if there are no commands to run at this location,
1346 which likely means we want to report back to GDB. */
1347
1348int
1349gdb_no_commands_at_breakpoint (CORE_ADDR where)
1350{
1351 /* Only check code (software or hardware) breakpoints. */
1352 return (gdb_no_commands_at_breakpoint_z_type (Z_PACKET_SW_BP, where)
1353 && gdb_no_commands_at_breakpoint_z_type (Z_PACKET_HW_BP, where));
1354}
1355
1356/* Run a breakpoint's commands. Returns 0 if there was a problem
1357 running any command, 1 otherwise. */
1358
1359static int
1360run_breakpoint_commands_z_type (char z_type, CORE_ADDR addr)
d3ce09f5
SS
1361{
1362 /* Fetch registers for the current inferior. */
802e8e6d 1363 struct breakpoint *bp = find_gdb_breakpoint (z_type, addr, -1);
d3ce09f5
SS
1364 ULONGEST value = 0;
1365 struct point_command_list *cl;
1366 int err = 0;
5ae4861a 1367 struct eval_agent_expr_context ctx;
d3ce09f5
SS
1368
1369 if (bp == NULL)
802e8e6d 1370 return 1;
d3ce09f5 1371
0bfdf32f 1372 ctx.regcache = get_thread_regcache (current_thread, 1);
5ae4861a
YQ
1373 ctx.tframe = NULL;
1374 ctx.tpoint = NULL;
1375
d3ce09f5
SS
1376 for (cl = bp->command_list;
1377 cl && !value && !err; cl = cl->next)
1378 {
1379 /* Run the command. */
5ae4861a 1380 err = gdb_eval_agent_expr (&ctx, cl->cmd, &value);
d3ce09f5
SS
1381
1382 /* If one command has a problem, stop digging the hole deeper. */
1383 if (err)
802e8e6d 1384 return 0;
d3ce09f5 1385 }
802e8e6d
PA
1386
1387 return 1;
d3ce09f5
SS
1388}
1389
802e8e6d
PA
1390void
1391run_breakpoint_commands (CORE_ADDR where)
1392{
1393 /* Only check code (software or hardware) breakpoints. If one
1394 command has a problem, stop digging the hole deeper. */
1395 if (run_breakpoint_commands_z_type (Z_PACKET_SW_BP, where))
1396 run_breakpoint_commands_z_type (Z_PACKET_HW_BP, where);
1397}
1398
1399/* See mem-break.h. */
9f3a5c85
LM
1400
1401int
1402gdb_breakpoint_here (CORE_ADDR where)
1403{
802e8e6d
PA
1404 /* Only check code (software or hardware) breakpoints. */
1405 return (find_gdb_breakpoint (Z_PACKET_SW_BP, where, -1) != NULL
1406 || find_gdb_breakpoint (Z_PACKET_HW_BP, where, -1) != NULL);
68070c10
PA
1407}
1408
d50171e4
PA
1409void
1410set_reinsert_breakpoint (CORE_ADDR stop_at)
611cb4a5 1411{
414a389f
PA
1412 struct breakpoint *bp;
1413
1414 bp = set_breakpoint_at (stop_at, NULL);
414a389f 1415 bp->type = reinsert_breakpoint;
611cb4a5
DJ
1416}
1417
1418void
d50171e4 1419delete_reinsert_breakpoints (void)
611cb4a5 1420{
d50171e4
PA
1421 struct process_info *proc = current_process ();
1422 struct breakpoint *bp, **bp_link;
611cb4a5 1423
d50171e4
PA
1424 bp = proc->breakpoints;
1425 bp_link = &proc->breakpoints;
611cb4a5 1426
d50171e4
PA
1427 while (bp)
1428 {
414a389f
PA
1429 if (bp->type == reinsert_breakpoint)
1430 {
1431 *bp_link = bp->next;
8b07ae33 1432 release_breakpoint (proc, bp);
414a389f
PA
1433 bp = *bp_link;
1434 }
1435 else
1436 {
1437 bp_link = &bp->next;
1438 bp = *bp_link;
1439 }
d50171e4
PA
1440 }
1441}
b65d95c5 1442
d50171e4 1443static void
8b07ae33 1444uninsert_raw_breakpoint (struct raw_breakpoint *bp)
d50171e4 1445{
802e8e6d
PA
1446 if (bp->inserted < 0)
1447 {
1448 if (debug_threads)
1449 debug_printf ("Breakpoint at %s is marked insert-disabled.\n",
1450 paddress (bp->pc));
1451 }
1452 else if (bp->inserted > 0)
d50171e4
PA
1453 {
1454 int err;
1455
1456 bp->inserted = 0;
802e8e6d 1457
27165294 1458 err = the_target->remove_point (bp->raw_type, bp->pc, bp->kind, bp);
d50171e4
PA
1459 if (err != 0)
1460 {
1461 bp->inserted = 1;
611cb4a5 1462
d50171e4 1463 if (debug_threads)
802e8e6d
PA
1464 debug_printf ("Failed to uninsert raw breakpoint at 0x%s.\n",
1465 paddress (bp->pc));
d50171e4
PA
1466 }
1467 }
611cb4a5
DJ
1468}
1469
1470void
d50171e4 1471uninsert_breakpoints_at (CORE_ADDR pc)
611cb4a5 1472{
802e8e6d 1473 struct process_info *proc = current_process ();
8b07ae33 1474 struct raw_breakpoint *bp;
802e8e6d 1475 int found = 0;
611cb4a5 1476
802e8e6d
PA
1477 for (bp = proc->raw_breakpoints; bp != NULL; bp = bp->next)
1478 if ((bp->raw_type == raw_bkpt_type_sw
1479 || bp->raw_type == raw_bkpt_type_hw)
1480 && bp->pc == pc)
1481 {
1482 found = 1;
1483
1484 if (bp->inserted)
1485 uninsert_raw_breakpoint (bp);
1486 }
1487
1488 if (!found)
d50171e4
PA
1489 {
1490 /* This can happen when we remove all breakpoints while handling
1491 a step-over. */
1492 if (debug_threads)
87ce2a04
DE
1493 debug_printf ("Could not find breakpoint at 0x%s "
1494 "in list (uninserting).\n",
1495 paddress (pc));
d50171e4 1496 }
611cb4a5
DJ
1497}
1498
0fb4aa4b
PA
1499void
1500uninsert_all_breakpoints (void)
1501{
1502 struct process_info *proc = current_process ();
1503 struct raw_breakpoint *bp;
1504
1505 for (bp = proc->raw_breakpoints; bp != NULL; bp = bp->next)
802e8e6d
PA
1506 if ((bp->raw_type == raw_bkpt_type_sw
1507 || bp->raw_type == raw_bkpt_type_hw)
1508 && bp->inserted)
0fb4aa4b
PA
1509 uninsert_raw_breakpoint (bp);
1510}
1511
2e7b624b
YQ
1512void
1513uninsert_reinsert_breakpoints (void)
1514{
1515 struct process_info *proc = current_process ();
1516 struct breakpoint *bp;
1517
1518 for (bp = proc->breakpoints; bp != NULL; bp = bp->next)
1519 {
1520 if (bp->type == reinsert_breakpoint)
1521 {
1522 gdb_assert (bp->raw->inserted > 0);
1523
1524 /* Only uninsert the raw breakpoint if it only belongs to a
1525 reinsert breakpoint. */
1526 if (bp->raw->refcount == 1)
1527 uninsert_raw_breakpoint (bp->raw);
1528 }
1529 }
1530}
1531
d50171e4 1532static void
8b07ae33 1533reinsert_raw_breakpoint (struct raw_breakpoint *bp)
611cb4a5 1534{
d50171e4 1535 int err;
611cb4a5 1536
d50171e4 1537 if (bp->inserted)
85ba7d86 1538 return;
611cb4a5 1539
27165294 1540 err = the_target->insert_point (bp->raw_type, bp->pc, bp->kind, bp);
d50171e4
PA
1541 if (err == 0)
1542 bp->inserted = 1;
1543 else if (debug_threads)
802e8e6d
PA
1544 debug_printf ("Failed to reinsert breakpoint at 0x%s (%d).\n",
1545 paddress (bp->pc), err);
611cb4a5
DJ
1546}
1547
d50171e4
PA
1548void
1549reinsert_breakpoints_at (CORE_ADDR pc)
611cb4a5 1550{
802e8e6d 1551 struct process_info *proc = current_process ();
8b07ae33 1552 struct raw_breakpoint *bp;
802e8e6d 1553 int found = 0;
611cb4a5 1554
802e8e6d
PA
1555 for (bp = proc->raw_breakpoints; bp != NULL; bp = bp->next)
1556 if ((bp->raw_type == raw_bkpt_type_sw
1557 || bp->raw_type == raw_bkpt_type_hw)
1558 && bp->pc == pc)
1559 {
1560 found = 1;
1561
1562 reinsert_raw_breakpoint (bp);
1563 }
1564
1565 if (!found)
611cb4a5 1566 {
d50171e4
PA
1567 /* This can happen when we remove all breakpoints while handling
1568 a step-over. */
1569 if (debug_threads)
87ce2a04
DE
1570 debug_printf ("Could not find raw breakpoint at 0x%s "
1571 "in list (reinserting).\n",
1572 paddress (pc));
611cb4a5 1573 }
d50171e4
PA
1574}
1575
f79b145d
YQ
1576int
1577has_reinsert_breakpoints (struct process_info *proc)
1578{
1579 struct breakpoint *bp, **bp_link;
1580
1581 bp = proc->breakpoints;
1582 bp_link = &proc->breakpoints;
1583
1584 while (bp)
1585 {
1586 if (bp->type == reinsert_breakpoint)
1587 return 1;
1588 else
1589 {
1590 bp_link = &bp->next;
1591 bp = *bp_link;
1592 }
1593 }
1594
1595 return 0;
1596}
1597
0fb4aa4b
PA
1598void
1599reinsert_all_breakpoints (void)
1600{
1601 struct process_info *proc = current_process ();
1602 struct raw_breakpoint *bp;
1603
1604 for (bp = proc->raw_breakpoints; bp != NULL; bp = bp->next)
802e8e6d
PA
1605 if ((bp->raw_type == raw_bkpt_type_sw
1606 || bp->raw_type == raw_bkpt_type_hw)
1607 && !bp->inserted)
0fb4aa4b
PA
1608 reinsert_raw_breakpoint (bp);
1609}
1610
2e7b624b
YQ
1611void
1612reinsert_reinsert_breakpoints (void)
1613{
1614 struct process_info *proc = current_process ();
1615 struct breakpoint *bp;
1616
1617 for (bp = proc->breakpoints; bp != NULL; bp = bp->next)
1618 {
1619 if (bp->type == reinsert_breakpoint)
1620 {
1621 gdb_assert (bp->raw->inserted > 0);
1622
1623 if (bp->raw->refcount == 1)
1624 reinsert_raw_breakpoint (bp->raw);
1625 }
1626 }
1627}
1628
d50171e4
PA
1629void
1630check_breakpoints (CORE_ADDR stop_pc)
1631{
1632 struct process_info *proc = current_process ();
1633 struct breakpoint *bp, **bp_link;
1634
1635 bp = proc->breakpoints;
1636 bp_link = &proc->breakpoints;
1637
1638 while (bp)
b65d95c5 1639 {
802e8e6d
PA
1640 struct raw_breakpoint *raw = bp->raw;
1641
1642 if ((raw->raw_type == raw_bkpt_type_sw
1643 || raw->raw_type == raw_bkpt_type_hw)
1644 && raw->pc == stop_pc)
d50171e4 1645 {
802e8e6d 1646 if (!raw->inserted)
d50171e4
PA
1647 {
1648 warning ("Hit a removed breakpoint?");
1649 return;
1650 }
1651
1652 if (bp->handler != NULL && (*bp->handler) (stop_pc))
1653 {
1654 *bp_link = bp->next;
1655
8b07ae33 1656 release_breakpoint (proc, bp);
d50171e4
PA
1657
1658 bp = *bp_link;
1659 continue;
1660 }
1661 }
1662
1663 bp_link = &bp->next;
1664 bp = *bp_link;
b65d95c5 1665 }
611cb4a5
DJ
1666}
1667
d50171e4
PA
1668int
1669breakpoint_here (CORE_ADDR addr)
1670{
802e8e6d
PA
1671 struct process_info *proc = current_process ();
1672 struct raw_breakpoint *bp;
1673
1674 for (bp = proc->raw_breakpoints; bp != NULL; bp = bp->next)
1675 if ((bp->raw_type == raw_bkpt_type_sw
1676 || bp->raw_type == raw_bkpt_type_hw)
1677 && bp->pc == addr)
1678 return 1;
1679
1680 return 0;
d50171e4
PA
1681}
1682
1683int
1684breakpoint_inserted_here (CORE_ADDR addr)
1685{
802e8e6d 1686 struct process_info *proc = current_process ();
8b07ae33 1687 struct raw_breakpoint *bp;
d50171e4 1688
802e8e6d
PA
1689 for (bp = proc->raw_breakpoints; bp != NULL; bp = bp->next)
1690 if ((bp->raw_type == raw_bkpt_type_sw
1691 || bp->raw_type == raw_bkpt_type_hw)
1692 && bp->pc == addr
1693 && bp->inserted)
1694 return 1;
d50171e4 1695
802e8e6d 1696 return 0;
d50171e4
PA
1697}
1698
582511be
PA
1699/* See mem-break.h. */
1700
1701int
1702software_breakpoint_inserted_here (CORE_ADDR addr)
1703{
1704 struct process_info *proc = current_process ();
1705 struct raw_breakpoint *bp;
1706
1707 for (bp = proc->raw_breakpoints; bp != NULL; bp = bp->next)
1708 if (bp->raw_type == raw_bkpt_type_sw
1709 && bp->pc == addr
1710 && bp->inserted)
1711 return 1;
1712
1713 return 0;
1714}
1715
1716/* See mem-break.h. */
1717
1718int
1719hardware_breakpoint_inserted_here (CORE_ADDR addr)
1720{
1721 struct process_info *proc = current_process ();
1722 struct raw_breakpoint *bp;
1723
1724 for (bp = proc->raw_breakpoints; bp != NULL; bp = bp->next)
1725 if (bp->raw_type == raw_bkpt_type_hw
1726 && bp->pc == addr
1727 && bp->inserted)
1728 return 1;
1729
1730 return 0;
1731}
1732
2d97cd35
AT
1733/* See mem-break.h. */
1734
1735int
1736reinsert_breakpoint_inserted_here (CORE_ADDR addr)
1737{
1738 struct process_info *proc = current_process ();
1739 struct breakpoint *bp;
1740
1741 for (bp = proc->breakpoints; bp != NULL; bp = bp->next)
1742 if (bp->type == reinsert_breakpoint
1743 && bp->raw->pc == addr
1744 && bp->raw->inserted)
1745 return 1;
1746
1747 return 0;
1748}
1749
d3bbe7a0
PA
1750static int
1751validate_inserted_breakpoint (struct raw_breakpoint *bp)
1752{
1753 unsigned char *buf;
1754 int err;
1755
1756 gdb_assert (bp->inserted);
802e8e6d 1757 gdb_assert (bp->raw_type == raw_bkpt_type_sw);
d3bbe7a0 1758
27165294
AT
1759 buf = (unsigned char *) alloca (bp_size (bp));
1760 err = (*the_target->read_memory) (bp->pc, buf, bp_size (bp));
1761 if (err || memcmp (buf, bp_opcode (bp), bp_size (bp)) != 0)
d3bbe7a0
PA
1762 {
1763 /* Tag it as gone. */
802e8e6d 1764 bp->inserted = -1;
d3bbe7a0
PA
1765 return 0;
1766 }
1767
1768 return 1;
1769}
1770
1771static void
1772delete_disabled_breakpoints (void)
1773{
1774 struct process_info *proc = current_process ();
1775 struct breakpoint *bp, *next;
1776
1777 for (bp = proc->breakpoints; bp != NULL; bp = next)
1778 {
1779 next = bp->next;
802e8e6d 1780 if (bp->raw->inserted < 0)
8376a3cb
YQ
1781 {
1782 /* If reinsert_breakpoints become disabled, that means the
1783 manipulations (insertion and removal) of them are wrong. */
1784 gdb_assert (bp->type != reinsert_breakpoint);
1785 delete_breakpoint_1 (proc, bp);
1786 }
d3bbe7a0
PA
1787 }
1788}
1789
1790/* Check if breakpoints we inserted still appear to be inserted. They
1791 may disappear due to a shared library unload, and worse, a new
1792 shared library may be reloaded at the same address as the
1793 previously unloaded one. If that happens, we should make sure that
1794 the shadow memory of the old breakpoints isn't used when reading or
1795 writing memory. */
1796
1797void
1798validate_breakpoints (void)
1799{
1800 struct process_info *proc = current_process ();
1801 struct breakpoint *bp;
1802
1803 for (bp = proc->breakpoints; bp != NULL; bp = bp->next)
1804 {
802e8e6d
PA
1805 struct raw_breakpoint *raw = bp->raw;
1806
1807 if (raw->raw_type == raw_bkpt_type_sw && raw->inserted > 0)
1808 validate_inserted_breakpoint (raw);
d3bbe7a0
PA
1809 }
1810
1811 delete_disabled_breakpoints ();
1812}
1813
611cb4a5 1814void
f450004a 1815check_mem_read (CORE_ADDR mem_addr, unsigned char *buf, int mem_len)
611cb4a5 1816{
95954743 1817 struct process_info *proc = current_process ();
8b07ae33 1818 struct raw_breakpoint *bp = proc->raw_breakpoints;
fa593d66 1819 struct fast_tracepoint_jump *jp = proc->fast_tracepoint_jumps;
611cb4a5 1820 CORE_ADDR mem_end = mem_addr + mem_len;
d3bbe7a0 1821 int disabled_one = 0;
611cb4a5 1822
fa593d66
PA
1823 for (; jp != NULL; jp = jp->next)
1824 {
1825 CORE_ADDR bp_end = jp->pc + jp->length;
1826 CORE_ADDR start, end;
1827 int copy_offset, copy_len, buf_offset;
1828
6bf36717
JK
1829 gdb_assert (fast_tracepoint_jump_shadow (jp) >= buf + mem_len
1830 || buf >= fast_tracepoint_jump_shadow (jp) + (jp)->length);
1831
fa593d66
PA
1832 if (mem_addr >= bp_end)
1833 continue;
1834 if (jp->pc >= mem_end)
1835 continue;
1836
1837 start = jp->pc;
1838 if (mem_addr > start)
1839 start = mem_addr;
1840
1841 end = bp_end;
1842 if (end > mem_end)
1843 end = mem_end;
1844
1845 copy_len = end - start;
1846 copy_offset = start - jp->pc;
1847 buf_offset = start - mem_addr;
1848
1849 if (jp->inserted)
1850 memcpy (buf + buf_offset,
1851 fast_tracepoint_jump_shadow (jp) + copy_offset,
1852 copy_len);
1853 }
1854
611cb4a5
DJ
1855 for (; bp != NULL; bp = bp->next)
1856 {
27165294 1857 CORE_ADDR bp_end = bp->pc + bp_size (bp);
611cb4a5
DJ
1858 CORE_ADDR start, end;
1859 int copy_offset, copy_len, buf_offset;
1860
802e8e6d
PA
1861 if (bp->raw_type != raw_bkpt_type_sw)
1862 continue;
1863
6bf36717
JK
1864 gdb_assert (bp->old_data >= buf + mem_len
1865 || buf >= &bp->old_data[sizeof (bp->old_data)]);
1866
611cb4a5
DJ
1867 if (mem_addr >= bp_end)
1868 continue;
1869 if (bp->pc >= mem_end)
1870 continue;
1871
1872 start = bp->pc;
1873 if (mem_addr > start)
1874 start = mem_addr;
1875
1876 end = bp_end;
1877 if (end > mem_end)
1878 end = mem_end;
1879
1880 copy_len = end - start;
1881 copy_offset = start - bp->pc;
1882 buf_offset = start - mem_addr;
1883
802e8e6d 1884 if (bp->inserted > 0)
d3bbe7a0
PA
1885 {
1886 if (validate_inserted_breakpoint (bp))
1887 memcpy (buf + buf_offset, bp->old_data + copy_offset, copy_len);
1888 else
1889 disabled_one = 1;
1890 }
611cb4a5 1891 }
d3bbe7a0
PA
1892
1893 if (disabled_one)
1894 delete_disabled_breakpoints ();
611cb4a5
DJ
1895}
1896
1897void
b9fd1791
PA
1898check_mem_write (CORE_ADDR mem_addr, unsigned char *buf,
1899 const unsigned char *myaddr, int mem_len)
611cb4a5 1900{
95954743 1901 struct process_info *proc = current_process ();
8b07ae33 1902 struct raw_breakpoint *bp = proc->raw_breakpoints;
fa593d66 1903 struct fast_tracepoint_jump *jp = proc->fast_tracepoint_jumps;
611cb4a5 1904 CORE_ADDR mem_end = mem_addr + mem_len;
d3bbe7a0 1905 int disabled_one = 0;
611cb4a5 1906
fa593d66
PA
1907 /* First fast tracepoint jumps, then breakpoint traps on top. */
1908
1909 for (; jp != NULL; jp = jp->next)
1910 {
1911 CORE_ADDR jp_end = jp->pc + jp->length;
1912 CORE_ADDR start, end;
1913 int copy_offset, copy_len, buf_offset;
1914
6bf36717
JK
1915 gdb_assert (fast_tracepoint_jump_shadow (jp) >= myaddr + mem_len
1916 || myaddr >= fast_tracepoint_jump_shadow (jp) + (jp)->length);
1917 gdb_assert (fast_tracepoint_jump_insn (jp) >= buf + mem_len
1918 || buf >= fast_tracepoint_jump_insn (jp) + (jp)->length);
1919
fa593d66
PA
1920 if (mem_addr >= jp_end)
1921 continue;
1922 if (jp->pc >= mem_end)
1923 continue;
1924
1925 start = jp->pc;
1926 if (mem_addr > start)
1927 start = mem_addr;
1928
1929 end = jp_end;
1930 if (end > mem_end)
1931 end = mem_end;
1932
1933 copy_len = end - start;
1934 copy_offset = start - jp->pc;
1935 buf_offset = start - mem_addr;
1936
1937 memcpy (fast_tracepoint_jump_shadow (jp) + copy_offset,
b9fd1791 1938 myaddr + buf_offset, copy_len);
fa593d66
PA
1939 if (jp->inserted)
1940 memcpy (buf + buf_offset,
1941 fast_tracepoint_jump_insn (jp) + copy_offset, copy_len);
1942 }
1943
611cb4a5
DJ
1944 for (; bp != NULL; bp = bp->next)
1945 {
27165294 1946 CORE_ADDR bp_end = bp->pc + bp_size (bp);
611cb4a5
DJ
1947 CORE_ADDR start, end;
1948 int copy_offset, copy_len, buf_offset;
1949
802e8e6d
PA
1950 if (bp->raw_type != raw_bkpt_type_sw)
1951 continue;
1952
6bf36717
JK
1953 gdb_assert (bp->old_data >= myaddr + mem_len
1954 || myaddr >= &bp->old_data[sizeof (bp->old_data)]);
1955
611cb4a5
DJ
1956 if (mem_addr >= bp_end)
1957 continue;
1958 if (bp->pc >= mem_end)
1959 continue;
1960
1961 start = bp->pc;
1962 if (mem_addr > start)
1963 start = mem_addr;
1964
1965 end = bp_end;
1966 if (end > mem_end)
1967 end = mem_end;
1968
1969 copy_len = end - start;
1970 copy_offset = start - bp->pc;
1971 buf_offset = start - mem_addr;
1972
b9fd1791 1973 memcpy (bp->old_data + copy_offset, myaddr + buf_offset, copy_len);
802e8e6d 1974 if (bp->inserted > 0)
d3bbe7a0
PA
1975 {
1976 if (validate_inserted_breakpoint (bp))
27165294 1977 memcpy (buf + buf_offset, bp_opcode (bp) + copy_offset, copy_len);
d3bbe7a0
PA
1978 else
1979 disabled_one = 1;
1980 }
611cb4a5 1981 }
d3bbe7a0
PA
1982
1983 if (disabled_one)
1984 delete_disabled_breakpoints ();
611cb4a5 1985}
ae13219e 1986
95954743 1987/* Delete all breakpoints, and un-insert them from the inferior. */
ae13219e
DJ
1988
1989void
1990delete_all_breakpoints (void)
1991{
95954743
PA
1992 struct process_info *proc = current_process ();
1993
1994 while (proc->breakpoints)
8b07ae33 1995 delete_breakpoint_1 (proc, proc->breakpoints);
95954743
PA
1996}
1997
f9e39928 1998/* Clear the "inserted" flag in all breakpoints. */
95954743
PA
1999
2000void
f9e39928 2001mark_breakpoints_out (struct process_info *proc)
95954743 2002{
8b07ae33 2003 struct raw_breakpoint *raw_bp;
95954743 2004
8b07ae33
PA
2005 for (raw_bp = proc->raw_breakpoints; raw_bp != NULL; raw_bp = raw_bp->next)
2006 raw_bp->inserted = 0;
f9e39928
PA
2007}
2008
2009/* Release all breakpoints, but do not try to un-insert them from the
2010 inferior. */
2011
2012void
2013free_all_breakpoints (struct process_info *proc)
2014{
2015 mark_breakpoints_out (proc);
8b07ae33
PA
2016
2017 /* Note: use PROC explicitly instead of deferring to
2018 delete_all_breakpoints --- CURRENT_INFERIOR may already have been
2019 released when we get here. There should be no call to
2020 current_process from here on. */
95954743 2021 while (proc->breakpoints)
8b07ae33 2022 delete_breakpoint_1 (proc, proc->breakpoints);
ae13219e 2023}
ddcbc397
DB
2024
2025/* Clone an agent expression. */
2026
2027static struct agent_expr *
2028clone_agent_expr (const struct agent_expr *src_ax)
2029{
2030 struct agent_expr *ax;
2031
8d749320 2032 ax = XCNEW (struct agent_expr);
ddcbc397 2033 ax->length = src_ax->length;
224c3ddb 2034 ax->bytes = (unsigned char *) xcalloc (ax->length, 1);
ddcbc397
DB
2035 memcpy (ax->bytes, src_ax->bytes, ax->length);
2036 return ax;
2037}
2038
2039/* Deep-copy the contents of one breakpoint to another. */
2040
2041static struct breakpoint *
2042clone_one_breakpoint (const struct breakpoint *src)
2043{
2044 struct breakpoint *dest;
2045 struct raw_breakpoint *dest_raw;
2046 struct point_cond_list *current_cond;
2047 struct point_cond_list *new_cond;
2048 struct point_cond_list *cond_tail = NULL;
2049 struct point_command_list *current_cmd;
2050 struct point_command_list *new_cmd;
2051 struct point_command_list *cmd_tail = NULL;
2052
2053 /* Clone the raw breakpoint. */
8d749320 2054 dest_raw = XCNEW (struct raw_breakpoint);
ddcbc397
DB
2055 dest_raw->raw_type = src->raw->raw_type;
2056 dest_raw->refcount = src->raw->refcount;
2057 dest_raw->pc = src->raw->pc;
27165294 2058 dest_raw->kind = src->raw->kind;
ddcbc397
DB
2059 memcpy (dest_raw->old_data, src->raw->old_data, MAX_BREAKPOINT_LEN);
2060 dest_raw->inserted = src->raw->inserted;
2061
2062 /* Clone the high-level breakpoint. */
8d749320 2063 dest = XCNEW (struct breakpoint);
ddcbc397
DB
2064 dest->type = src->type;
2065 dest->raw = dest_raw;
2066 dest->handler = src->handler;
2067
2068 /* Clone the condition list. */
2069 for (current_cond = src->cond_list; current_cond != NULL;
2070 current_cond = current_cond->next)
2071 {
8d749320 2072 new_cond = XCNEW (struct point_cond_list);
ddcbc397
DB
2073 new_cond->cond = clone_agent_expr (current_cond->cond);
2074 APPEND_TO_LIST (&dest->cond_list, new_cond, cond_tail);
2075 }
2076
2077 /* Clone the command list. */
2078 for (current_cmd = src->command_list; current_cmd != NULL;
2079 current_cmd = current_cmd->next)
2080 {
8d749320 2081 new_cmd = XCNEW (struct point_command_list);
ddcbc397
DB
2082 new_cmd->cmd = clone_agent_expr (current_cmd->cmd);
2083 new_cmd->persistence = current_cmd->persistence;
2084 APPEND_TO_LIST (&dest->command_list, new_cmd, cmd_tail);
2085 }
2086
2087 return dest;
2088}
2089
2090/* Create a new breakpoint list NEW_LIST that is a copy of the
2091 list starting at SRC_LIST. Create the corresponding new
2092 raw_breakpoint list NEW_RAW_LIST as well. */
2093
2094void
2095clone_all_breakpoints (struct breakpoint **new_list,
2096 struct raw_breakpoint **new_raw_list,
2097 const struct breakpoint *src_list)
2098{
2099 const struct breakpoint *bp;
2100 struct breakpoint *new_bkpt;
2101 struct breakpoint *bkpt_tail = NULL;
2102 struct raw_breakpoint *raw_bkpt_tail = NULL;
2103
2104 for (bp = src_list; bp != NULL; bp = bp->next)
2105 {
2106 new_bkpt = clone_one_breakpoint (bp);
2107 APPEND_TO_LIST (new_list, new_bkpt, bkpt_tail);
2108 APPEND_TO_LIST (new_raw_list, new_bkpt->raw, raw_bkpt_tail);
2109 }
2110}
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