Remove range_s VEC
[deliverable/binutils-gdb.git] / gdb / frame.c
CommitLineData
4f460812 1/* Cache and manage frames for GDB, the GNU debugger.
96cb11df 2
e2882c85 3 Copyright (C) 1986-2018 Free Software Foundation, Inc.
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4
5 This file is part of GDB.
6
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
a9762ec7 9 the Free Software Foundation; either version 3 of the License, or
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10 (at your option) any later version.
11
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
16
17 You should have received a copy of the GNU General Public License
a9762ec7 18 along with this program. If not, see <http://www.gnu.org/licenses/>. */
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19
20#include "defs.h"
21#include "frame.h"
22#include "target.h"
23#include "value.h"
39f77062 24#include "inferior.h" /* for inferior_ptid */
4e052eda 25#include "regcache.h"
eb8bc282 26#include "user-regs.h"
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27#include "gdb_obstack.h"
28#include "dummy-frame.h"
a94dd1fd 29#include "sentinel-frame.h"
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30#include "gdbcore.h"
31#include "annotate.h"
6e7f8b9c 32#include "language.h"
494cca16 33#include "frame-unwind.h"
da62e633 34#include "frame-base.h"
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AC
35#include "command.h"
36#include "gdbcmd.h"
76727919 37#include "observable.h"
c8cd9f6c 38#include "objfiles.h"
8ea051c5 39#include "gdbthread.h"
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40#include "block.h"
41#include "inline-frame.h"
983dc440 42#include "tracepoint.h"
3de661e6 43#include "hashtab.h"
f6c01fc5 44#include "valprint.h"
eb4f72c5 45
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KB
46/* The sentinel frame terminates the innermost end of the frame chain.
47 If unwound, it returns the information needed to construct an
48 innermost frame.
49
50 The current frame, which is the innermost frame, can be found at
51 sentinel_frame->prev. */
52
53static struct frame_info *sentinel_frame;
54
edb3359d 55static struct frame_info *get_prev_frame_raw (struct frame_info *this_frame);
a7300869 56static const char *frame_stop_reason_symbol_string (enum unwind_stop_reason reason);
5613d8d3 57
782d47df
PA
58/* Status of some values cached in the frame_info object. */
59
60enum cached_copy_status
61{
62 /* Value is unknown. */
63 CC_UNKNOWN,
64
65 /* We have a value. */
66 CC_VALUE,
67
68 /* Value was not saved. */
69 CC_NOT_SAVED,
70
71 /* Value is unavailable. */
72 CC_UNAVAILABLE
73};
74
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AC
75/* We keep a cache of stack frames, each of which is a "struct
76 frame_info". The innermost one gets allocated (in
df433d31 77 wait_for_inferior) each time the inferior stops; sentinel_frame
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78 points to it. Additional frames get allocated (in get_prev_frame)
79 as needed, and are chained through the next and prev fields. Any
80 time that the frame cache becomes invalid (most notably when we
81 execute something, but also if we change how we interpret the
82 frames (e.g. "set heuristic-fence-post" in mips-tdep.c, or anything
83 which reads new symbols)), we should call reinit_frame_cache. */
84
85struct frame_info
86{
87 /* Level of this frame. The inner-most (youngest) frame is at level
88 0. As you move towards the outer-most (oldest) frame, the level
89 increases. This is a cached value. It could just as easily be
90 computed by counting back from the selected frame to the inner
91 most frame. */
bbde78fa 92 /* NOTE: cagney/2002-04-05: Perhaps a level of ``-1'' should be
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93 reserved to indicate a bogus frame - one that has been created
94 just to keep GDB happy (GDB always needs a frame). For the
95 moment leave this as speculation. */
96 int level;
97
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PA
98 /* The frame's program space. */
99 struct program_space *pspace;
100
101 /* The frame's address space. */
8b86c959 102 const address_space *aspace;
6c95b8df 103
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104 /* The frame's low-level unwinder and corresponding cache. The
105 low-level unwinder is responsible for unwinding register values
106 for the previous frame. The low-level unwind methods are
bbde78fa 107 selected based on the presence, or otherwise, of register unwind
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108 information such as CFI. */
109 void *prologue_cache;
110 const struct frame_unwind *unwind;
111
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112 /* Cached copy of the previous frame's architecture. */
113 struct
114 {
115 int p;
116 struct gdbarch *arch;
117 } prev_arch;
118
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119 /* Cached copy of the previous frame's resume address. */
120 struct {
782d47df 121 enum cached_copy_status status;
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122 CORE_ADDR value;
123 } prev_pc;
124
125 /* Cached copy of the previous frame's function address. */
126 struct
127 {
128 CORE_ADDR addr;
129 int p;
130 } prev_func;
131
132 /* This frame's ID. */
133 struct
134 {
135 int p;
136 struct frame_id value;
137 } this_id;
138
139 /* The frame's high-level base methods, and corresponding cache.
140 The high level base methods are selected based on the frame's
141 debug info. */
142 const struct frame_base *base;
143 void *base_cache;
144
145 /* Pointers to the next (down, inner, younger) and previous (up,
146 outer, older) frame_info's in the frame cache. */
147 struct frame_info *next; /* down, inner, younger */
148 int prev_p;
149 struct frame_info *prev; /* up, outer, older */
55feb689
DJ
150
151 /* The reason why we could not set PREV, or UNWIND_NO_REASON if we
152 could. Only valid when PREV_P is set. */
153 enum unwind_stop_reason stop_reason;
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154
155 /* A frame specific string describing the STOP_REASON in more detail.
156 Only valid when PREV_P is set, but even then may still be NULL. */
157 const char *stop_string;
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158};
159
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160/* A frame stash used to speed up frame lookups. Create a hash table
161 to stash frames previously accessed from the frame cache for
162 quicker subsequent retrieval. The hash table is emptied whenever
163 the frame cache is invalidated. */
b83e9eb7 164
3de661e6 165static htab_t frame_stash;
b83e9eb7 166
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167/* Internal function to calculate a hash from the frame_id addresses,
168 using as many valid addresses as possible. Frames below level 0
169 are not stored in the hash table. */
170
171static hashval_t
172frame_addr_hash (const void *ap)
173{
9a3c8263 174 const struct frame_info *frame = (const struct frame_info *) ap;
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175 const struct frame_id f_id = frame->this_id.value;
176 hashval_t hash = 0;
177
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PA
178 gdb_assert (f_id.stack_status != FID_STACK_INVALID
179 || f_id.code_addr_p
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PM
180 || f_id.special_addr_p);
181
5ce0145d 182 if (f_id.stack_status == FID_STACK_VALID)
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183 hash = iterative_hash (&f_id.stack_addr,
184 sizeof (f_id.stack_addr), hash);
185 if (f_id.code_addr_p)
186 hash = iterative_hash (&f_id.code_addr,
187 sizeof (f_id.code_addr), hash);
188 if (f_id.special_addr_p)
189 hash = iterative_hash (&f_id.special_addr,
190 sizeof (f_id.special_addr), hash);
191
192 return hash;
193}
194
195/* Internal equality function for the hash table. This function
196 defers equality operations to frame_id_eq. */
197
198static int
199frame_addr_hash_eq (const void *a, const void *b)
200{
9a3c8263
SM
201 const struct frame_info *f_entry = (const struct frame_info *) a;
202 const struct frame_info *f_element = (const struct frame_info *) b;
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203
204 return frame_id_eq (f_entry->this_id.value,
205 f_element->this_id.value);
206}
207
208/* Internal function to create the frame_stash hash table. 100 seems
209 to be a good compromise to start the hash table at. */
210
211static void
212frame_stash_create (void)
213{
214 frame_stash = htab_create (100,
215 frame_addr_hash,
216 frame_addr_hash_eq,
217 NULL);
218}
219
194cca41
PA
220/* Internal function to add a frame to the frame_stash hash table.
221 Returns false if a frame with the same ID was already stashed, true
222 otherwise. */
b83e9eb7 223
194cca41 224static int
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JB
225frame_stash_add (struct frame_info *frame)
226{
194cca41 227 struct frame_info **slot;
f5b0ed3c 228
194cca41
PA
229 /* Do not try to stash the sentinel frame. */
230 gdb_assert (frame->level >= 0);
231
232 slot = (struct frame_info **) htab_find_slot (frame_stash,
233 frame,
234 INSERT);
235
236 /* If we already have a frame in the stack with the same id, we
237 either have a stack cycle (corrupted stack?), or some bug
238 elsewhere in GDB. In any case, ignore the duplicate and return
239 an indication to the caller. */
240 if (*slot != NULL)
241 return 0;
242
243 *slot = frame;
244 return 1;
b83e9eb7
JB
245}
246
3de661e6
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247/* Internal function to search the frame stash for an entry with the
248 given frame ID. If found, return that frame. Otherwise return
249 NULL. */
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JB
250
251static struct frame_info *
252frame_stash_find (struct frame_id id)
253{
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254 struct frame_info dummy;
255 struct frame_info *frame;
b83e9eb7 256
3de661e6 257 dummy.this_id.value = id;
9a3c8263 258 frame = (struct frame_info *) htab_find (frame_stash, &dummy);
3de661e6 259 return frame;
b83e9eb7
JB
260}
261
3de661e6
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262/* Internal function to invalidate the frame stash by removing all
263 entries in it. This only occurs when the frame cache is
264 invalidated. */
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JB
265
266static void
267frame_stash_invalidate (void)
268{
3de661e6 269 htab_empty (frame_stash);
b83e9eb7
JB
270}
271
ac2bd0a9
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272/* Flag to control debugging. */
273
ccce17b0 274unsigned int frame_debug;
920d2a44
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275static void
276show_frame_debug (struct ui_file *file, int from_tty,
277 struct cmd_list_element *c, const char *value)
278{
279 fprintf_filtered (file, _("Frame debugging is %s.\n"), value);
280}
ac2bd0a9 281
25d29d70
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282/* Flag to indicate whether backtraces should stop at main et.al. */
283
284static int backtrace_past_main;
920d2a44
AC
285static void
286show_backtrace_past_main (struct ui_file *file, int from_tty,
287 struct cmd_list_element *c, const char *value)
288{
3e43a32a
MS
289 fprintf_filtered (file,
290 _("Whether backtraces should "
291 "continue past \"main\" is %s.\n"),
920d2a44
AC
292 value);
293}
294
2315ffec 295static int backtrace_past_entry;
920d2a44
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296static void
297show_backtrace_past_entry (struct ui_file *file, int from_tty,
298 struct cmd_list_element *c, const char *value)
299{
3e43a32a
MS
300 fprintf_filtered (file, _("Whether backtraces should continue past the "
301 "entry point of a program is %s.\n"),
920d2a44
AC
302 value);
303}
304
883b9c6c 305static unsigned int backtrace_limit = UINT_MAX;
920d2a44
AC
306static void
307show_backtrace_limit (struct ui_file *file, int from_tty,
308 struct cmd_list_element *c, const char *value)
309{
3e43a32a
MS
310 fprintf_filtered (file,
311 _("An upper bound on the number "
312 "of backtrace levels is %s.\n"),
920d2a44
AC
313 value);
314}
315
eb4f72c5 316
ca73dd9d
AC
317static void
318fprint_field (struct ui_file *file, const char *name, int p, CORE_ADDR addr)
319{
320 if (p)
5af949e3 321 fprintf_unfiltered (file, "%s=%s", name, hex_string (addr));
ca73dd9d
AC
322 else
323 fprintf_unfiltered (file, "!%s", name);
324}
d65fe839 325
00905d52 326void
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327fprint_frame_id (struct ui_file *file, struct frame_id id)
328{
ca73dd9d 329 fprintf_unfiltered (file, "{");
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PA
330
331 if (id.stack_status == FID_STACK_INVALID)
332 fprintf_unfiltered (file, "!stack");
333 else if (id.stack_status == FID_STACK_UNAVAILABLE)
334 fprintf_unfiltered (file, "stack=<unavailable>");
df433d31
KB
335 else if (id.stack_status == FID_STACK_SENTINEL)
336 fprintf_unfiltered (file, "stack=<sentinel>");
5ce0145d
PA
337 else
338 fprintf_unfiltered (file, "stack=%s", hex_string (id.stack_addr));
ca73dd9d 339 fprintf_unfiltered (file, ",");
5ce0145d 340
ca73dd9d
AC
341 fprint_field (file, "code", id.code_addr_p, id.code_addr);
342 fprintf_unfiltered (file, ",");
5ce0145d 343
ca73dd9d 344 fprint_field (file, "special", id.special_addr_p, id.special_addr);
5ce0145d 345
193facb3
JK
346 if (id.artificial_depth)
347 fprintf_unfiltered (file, ",artificial=%d", id.artificial_depth);
5ce0145d 348
ca73dd9d 349 fprintf_unfiltered (file, "}");
7f78e237
AC
350}
351
352static void
353fprint_frame_type (struct ui_file *file, enum frame_type type)
354{
355 switch (type)
356 {
7f78e237
AC
357 case NORMAL_FRAME:
358 fprintf_unfiltered (file, "NORMAL_FRAME");
359 return;
360 case DUMMY_FRAME:
361 fprintf_unfiltered (file, "DUMMY_FRAME");
362 return;
edb3359d
DJ
363 case INLINE_FRAME:
364 fprintf_unfiltered (file, "INLINE_FRAME");
365 return;
b5eef7aa
JK
366 case TAILCALL_FRAME:
367 fprintf_unfiltered (file, "TAILCALL_FRAME");
edb3359d 368 return;
7f78e237
AC
369 case SIGTRAMP_FRAME:
370 fprintf_unfiltered (file, "SIGTRAMP_FRAME");
371 return;
36f15f55
UW
372 case ARCH_FRAME:
373 fprintf_unfiltered (file, "ARCH_FRAME");
374 return;
b5eef7aa
JK
375 case SENTINEL_FRAME:
376 fprintf_unfiltered (file, "SENTINEL_FRAME");
377 return;
7f78e237
AC
378 default:
379 fprintf_unfiltered (file, "<unknown type>");
380 return;
381 };
382}
383
384static void
385fprint_frame (struct ui_file *file, struct frame_info *fi)
386{
387 if (fi == NULL)
388 {
389 fprintf_unfiltered (file, "<NULL frame>");
390 return;
391 }
392 fprintf_unfiltered (file, "{");
393 fprintf_unfiltered (file, "level=%d", fi->level);
394 fprintf_unfiltered (file, ",");
395 fprintf_unfiltered (file, "type=");
c1bf6f65
AC
396 if (fi->unwind != NULL)
397 fprint_frame_type (file, fi->unwind->type);
398 else
399 fprintf_unfiltered (file, "<unknown>");
7f78e237
AC
400 fprintf_unfiltered (file, ",");
401 fprintf_unfiltered (file, "unwind=");
402 if (fi->unwind != NULL)
403 gdb_print_host_address (fi->unwind, file);
404 else
405 fprintf_unfiltered (file, "<unknown>");
406 fprintf_unfiltered (file, ",");
407 fprintf_unfiltered (file, "pc=");
782d47df 408 if (fi->next == NULL || fi->next->prev_pc.status == CC_UNKNOWN)
7f78e237 409 fprintf_unfiltered (file, "<unknown>");
782d47df
PA
410 else if (fi->next->prev_pc.status == CC_VALUE)
411 fprintf_unfiltered (file, "%s",
412 hex_string (fi->next->prev_pc.value));
413 else if (fi->next->prev_pc.status == CC_NOT_SAVED)
414 val_print_not_saved (file);
415 else if (fi->next->prev_pc.status == CC_UNAVAILABLE)
416 val_print_unavailable (file);
7f78e237
AC
417 fprintf_unfiltered (file, ",");
418 fprintf_unfiltered (file, "id=");
419 if (fi->this_id.p)
420 fprint_frame_id (file, fi->this_id.value);
421 else
422 fprintf_unfiltered (file, "<unknown>");
423 fprintf_unfiltered (file, ",");
424 fprintf_unfiltered (file, "func=");
425 if (fi->next != NULL && fi->next->prev_func.p)
5af949e3 426 fprintf_unfiltered (file, "%s", hex_string (fi->next->prev_func.addr));
7f78e237
AC
427 else
428 fprintf_unfiltered (file, "<unknown>");
429 fprintf_unfiltered (file, "}");
430}
431
193facb3
JK
432/* Given FRAME, return the enclosing frame as found in real frames read-in from
433 inferior memory. Skip any previous frames which were made up by GDB.
33b4777c
MM
434 Return FRAME if FRAME is a non-artificial frame.
435 Return NULL if FRAME is the start of an artificial-only chain. */
edb3359d
DJ
436
437static struct frame_info *
193facb3 438skip_artificial_frames (struct frame_info *frame)
edb3359d 439{
51d48146
PA
440 /* Note we use get_prev_frame_always, and not get_prev_frame. The
441 latter will truncate the frame chain, leading to this function
442 unintentionally returning a null_frame_id (e.g., when the user
33b4777c
MM
443 sets a backtrace limit).
444
445 Note that for record targets we may get a frame chain that consists
446 of artificial frames only. */
1ab3b62c
JK
447 while (get_frame_type (frame) == INLINE_FRAME
448 || get_frame_type (frame) == TAILCALL_FRAME)
33b4777c
MM
449 {
450 frame = get_prev_frame_always (frame);
451 if (frame == NULL)
452 break;
453 }
edb3359d
DJ
454
455 return frame;
456}
457
7eb89530
YQ
458struct frame_info *
459skip_unwritable_frames (struct frame_info *frame)
460{
461 while (gdbarch_code_of_frame_writable (get_frame_arch (frame), frame) == 0)
462 {
463 frame = get_prev_frame (frame);
464 if (frame == NULL)
465 break;
466 }
467
468 return frame;
469}
470
2f3ef606
MM
471/* See frame.h. */
472
473struct frame_info *
474skip_tailcall_frames (struct frame_info *frame)
475{
476 while (get_frame_type (frame) == TAILCALL_FRAME)
33b4777c
MM
477 {
478 /* Note that for record targets we may get a frame chain that consists of
479 tailcall frames only. */
480 frame = get_prev_frame (frame);
481 if (frame == NULL)
482 break;
483 }
2f3ef606
MM
484
485 return frame;
486}
487
194cca41
PA
488/* Compute the frame's uniq ID that can be used to, later, re-find the
489 frame. */
490
491static void
492compute_frame_id (struct frame_info *fi)
493{
494 gdb_assert (!fi->this_id.p);
495
496 if (frame_debug)
497 fprintf_unfiltered (gdb_stdlog, "{ compute_frame_id (fi=%d) ",
498 fi->level);
499 /* Find the unwinder. */
500 if (fi->unwind == NULL)
501 frame_unwind_find_by_frame (fi, &fi->prologue_cache);
502 /* Find THIS frame's ID. */
503 /* Default to outermost if no ID is found. */
504 fi->this_id.value = outer_frame_id;
505 fi->unwind->this_id (fi, &fi->prologue_cache, &fi->this_id.value);
506 gdb_assert (frame_id_p (fi->this_id.value));
507 fi->this_id.p = 1;
508 if (frame_debug)
509 {
510 fprintf_unfiltered (gdb_stdlog, "-> ");
511 fprint_frame_id (gdb_stdlog, fi->this_id.value);
512 fprintf_unfiltered (gdb_stdlog, " }\n");
513 }
514}
515
7a424e99 516/* Return a frame uniq ID that can be used to, later, re-find the
101dcfbe
AC
517 frame. */
518
7a424e99
AC
519struct frame_id
520get_frame_id (struct frame_info *fi)
101dcfbe
AC
521{
522 if (fi == NULL)
b83e9eb7
JB
523 return null_frame_id;
524
f245535c
PA
525 if (!fi->this_id.p)
526 {
527 int stashed;
528
529 /* If we haven't computed the frame id yet, then it must be that
530 this is the current frame. Compute it now, and stash the
531 result. The IDs of other frames are computed as soon as
532 they're created, in order to detect cycles. See
533 get_prev_frame_if_no_cycle. */
534 gdb_assert (fi->level == 0);
535
536 /* Compute. */
537 compute_frame_id (fi);
538
539 /* Since this is the first frame in the chain, this should
540 always succeed. */
541 stashed = frame_stash_add (fi);
542 gdb_assert (stashed);
543 }
544
18adea3f 545 return fi->this_id.value;
101dcfbe
AC
546}
547
edb3359d
DJ
548struct frame_id
549get_stack_frame_id (struct frame_info *next_frame)
550{
193facb3 551 return get_frame_id (skip_artificial_frames (next_frame));
edb3359d
DJ
552}
553
5613d8d3 554struct frame_id
c7ce8faa 555frame_unwind_caller_id (struct frame_info *next_frame)
5613d8d3 556{
edb3359d
DJ
557 struct frame_info *this_frame;
558
51d48146
PA
559 /* Use get_prev_frame_always, and not get_prev_frame. The latter
560 will truncate the frame chain, leading to this function
561 unintentionally returning a null_frame_id (e.g., when a caller
562 requests the frame ID of "main()"s caller. */
edb3359d 563
193facb3 564 next_frame = skip_artificial_frames (next_frame);
33b4777c
MM
565 if (next_frame == NULL)
566 return null_frame_id;
567
51d48146 568 this_frame = get_prev_frame_always (next_frame);
edb3359d 569 if (this_frame)
193facb3 570 return get_frame_id (skip_artificial_frames (this_frame));
edb3359d
DJ
571 else
572 return null_frame_id;
5613d8d3
AC
573}
574
f8904751 575const struct frame_id null_frame_id = { 0 }; /* All zeros. */
df433d31 576const struct frame_id sentinel_frame_id = { 0, 0, 0, FID_STACK_SENTINEL, 0, 1, 0 };
5ce0145d 577const struct frame_id outer_frame_id = { 0, 0, 0, FID_STACK_INVALID, 0, 1, 0 };
7a424e99
AC
578
579struct frame_id
48c66725
JJ
580frame_id_build_special (CORE_ADDR stack_addr, CORE_ADDR code_addr,
581 CORE_ADDR special_addr)
7a424e99 582{
12b0b6de 583 struct frame_id id = null_frame_id;
1c4d3f96 584
d0a55772 585 id.stack_addr = stack_addr;
5ce0145d 586 id.stack_status = FID_STACK_VALID;
d0a55772 587 id.code_addr = code_addr;
12b0b6de 588 id.code_addr_p = 1;
48c66725 589 id.special_addr = special_addr;
12b0b6de 590 id.special_addr_p = 1;
7a424e99
AC
591 return id;
592}
593
5ce0145d
PA
594/* See frame.h. */
595
596struct frame_id
597frame_id_build_unavailable_stack (CORE_ADDR code_addr)
598{
599 struct frame_id id = null_frame_id;
600
601 id.stack_status = FID_STACK_UNAVAILABLE;
602 id.code_addr = code_addr;
603 id.code_addr_p = 1;
604 return id;
605}
606
8372a7cb
MM
607/* See frame.h. */
608
609struct frame_id
610frame_id_build_unavailable_stack_special (CORE_ADDR code_addr,
611 CORE_ADDR special_addr)
612{
613 struct frame_id id = null_frame_id;
614
615 id.stack_status = FID_STACK_UNAVAILABLE;
616 id.code_addr = code_addr;
617 id.code_addr_p = 1;
618 id.special_addr = special_addr;
619 id.special_addr_p = 1;
620 return id;
621}
622
48c66725
JJ
623struct frame_id
624frame_id_build (CORE_ADDR stack_addr, CORE_ADDR code_addr)
625{
12b0b6de 626 struct frame_id id = null_frame_id;
1c4d3f96 627
12b0b6de 628 id.stack_addr = stack_addr;
5ce0145d 629 id.stack_status = FID_STACK_VALID;
12b0b6de
UW
630 id.code_addr = code_addr;
631 id.code_addr_p = 1;
632 return id;
633}
634
635struct frame_id
636frame_id_build_wild (CORE_ADDR stack_addr)
637{
638 struct frame_id id = null_frame_id;
1c4d3f96 639
12b0b6de 640 id.stack_addr = stack_addr;
5ce0145d 641 id.stack_status = FID_STACK_VALID;
12b0b6de 642 return id;
48c66725
JJ
643}
644
7a424e99
AC
645int
646frame_id_p (struct frame_id l)
647{
d0a55772 648 int p;
1c4d3f96 649
12b0b6de 650 /* The frame is valid iff it has a valid stack address. */
5ce0145d 651 p = l.stack_status != FID_STACK_INVALID;
005ca36a
JB
652 /* outer_frame_id is also valid. */
653 if (!p && memcmp (&l, &outer_frame_id, sizeof (l)) == 0)
654 p = 1;
7f78e237
AC
655 if (frame_debug)
656 {
657 fprintf_unfiltered (gdb_stdlog, "{ frame_id_p (l=");
658 fprint_frame_id (gdb_stdlog, l);
659 fprintf_unfiltered (gdb_stdlog, ") -> %d }\n", p);
660 }
d0a55772 661 return p;
7a424e99
AC
662}
663
edb3359d 664int
193facb3 665frame_id_artificial_p (struct frame_id l)
edb3359d
DJ
666{
667 if (!frame_id_p (l))
668 return 0;
669
193facb3 670 return (l.artificial_depth != 0);
edb3359d
DJ
671}
672
7a424e99
AC
673int
674frame_id_eq (struct frame_id l, struct frame_id r)
675{
d0a55772 676 int eq;
1c4d3f96 677
5ce0145d
PA
678 if (l.stack_status == FID_STACK_INVALID && l.special_addr_p
679 && r.stack_status == FID_STACK_INVALID && r.special_addr_p)
005ca36a
JB
680 /* The outermost frame marker is equal to itself. This is the
681 dodgy thing about outer_frame_id, since between execution steps
682 we might step into another function - from which we can't
683 unwind either. More thought required to get rid of
684 outer_frame_id. */
685 eq = 1;
5ce0145d 686 else if (l.stack_status == FID_STACK_INVALID
f0d4ba1f 687 || r.stack_status == FID_STACK_INVALID)
12b0b6de
UW
688 /* Like a NaN, if either ID is invalid, the result is false.
689 Note that a frame ID is invalid iff it is the null frame ID. */
d0a55772 690 eq = 0;
5ce0145d 691 else if (l.stack_status != r.stack_status || l.stack_addr != r.stack_addr)
d0a55772
AC
692 /* If .stack addresses are different, the frames are different. */
693 eq = 0;
edb3359d
DJ
694 else if (l.code_addr_p && r.code_addr_p && l.code_addr != r.code_addr)
695 /* An invalid code addr is a wild card. If .code addresses are
696 different, the frames are different. */
48c66725 697 eq = 0;
edb3359d
DJ
698 else if (l.special_addr_p && r.special_addr_p
699 && l.special_addr != r.special_addr)
700 /* An invalid special addr is a wild card (or unused). Otherwise
701 if special addresses are different, the frames are different. */
702 eq = 0;
193facb3
JK
703 else if (l.artificial_depth != r.artificial_depth)
704 /* If artifical depths are different, the frames must be different. */
edb3359d
DJ
705 eq = 0;
706 else
48c66725 707 /* Frames are equal. */
d0a55772 708 eq = 1;
edb3359d 709
7f78e237
AC
710 if (frame_debug)
711 {
712 fprintf_unfiltered (gdb_stdlog, "{ frame_id_eq (l=");
713 fprint_frame_id (gdb_stdlog, l);
714 fprintf_unfiltered (gdb_stdlog, ",r=");
715 fprint_frame_id (gdb_stdlog, r);
716 fprintf_unfiltered (gdb_stdlog, ") -> %d }\n", eq);
717 }
d0a55772 718 return eq;
7a424e99
AC
719}
720
a45ae3ed
UW
721/* Safety net to check whether frame ID L should be inner to
722 frame ID R, according to their stack addresses.
723
724 This method cannot be used to compare arbitrary frames, as the
725 ranges of valid stack addresses may be discontiguous (e.g. due
726 to sigaltstack).
727
728 However, it can be used as safety net to discover invalid frame
0963b4bd 729 IDs in certain circumstances. Assuming that NEXT is the immediate
f06eadd9 730 inner frame to THIS and that NEXT and THIS are both NORMAL frames:
a45ae3ed 731
f06eadd9
JB
732 * The stack address of NEXT must be inner-than-or-equal to the stack
733 address of THIS.
a45ae3ed
UW
734
735 Therefore, if frame_id_inner (THIS, NEXT) holds, some unwind
736 error has occurred.
737
f06eadd9
JB
738 * If NEXT and THIS have different stack addresses, no other frame
739 in the frame chain may have a stack address in between.
a45ae3ed
UW
740
741 Therefore, if frame_id_inner (TEST, THIS) holds, but
742 frame_id_inner (TEST, NEXT) does not hold, TEST cannot refer
f06eadd9
JB
743 to a valid frame in the frame chain.
744
745 The sanity checks above cannot be performed when a SIGTRAMP frame
746 is involved, because signal handlers might be executed on a different
747 stack than the stack used by the routine that caused the signal
748 to be raised. This can happen for instance when a thread exceeds
0963b4bd 749 its maximum stack size. In this case, certain compilers implement
f06eadd9
JB
750 a stack overflow strategy that cause the handler to be run on a
751 different stack. */
a45ae3ed
UW
752
753static int
09a7aba8 754frame_id_inner (struct gdbarch *gdbarch, struct frame_id l, struct frame_id r)
7a424e99 755{
d0a55772 756 int inner;
1c4d3f96 757
5ce0145d
PA
758 if (l.stack_status != FID_STACK_VALID || r.stack_status != FID_STACK_VALID)
759 /* Like NaN, any operation involving an invalid ID always fails.
760 Likewise if either ID has an unavailable stack address. */
d0a55772 761 inner = 0;
193facb3 762 else if (l.artificial_depth > r.artificial_depth
edb3359d
DJ
763 && l.stack_addr == r.stack_addr
764 && l.code_addr_p == r.code_addr_p
765 && l.special_addr_p == r.special_addr_p
766 && l.special_addr == r.special_addr)
767 {
768 /* Same function, different inlined functions. */
3977b71f 769 const struct block *lb, *rb;
edb3359d
DJ
770
771 gdb_assert (l.code_addr_p && r.code_addr_p);
772
773 lb = block_for_pc (l.code_addr);
774 rb = block_for_pc (r.code_addr);
775
776 if (lb == NULL || rb == NULL)
777 /* Something's gone wrong. */
778 inner = 0;
779 else
780 /* This will return true if LB and RB are the same block, or
781 if the block with the smaller depth lexically encloses the
782 block with the greater depth. */
783 inner = contained_in (lb, rb);
784 }
d0a55772
AC
785 else
786 /* Only return non-zero when strictly inner than. Note that, per
787 comment in "frame.h", there is some fuzz here. Frameless
788 functions are not strictly inner than (same .stack but
48c66725 789 different .code and/or .special address). */
09a7aba8 790 inner = gdbarch_inner_than (gdbarch, l.stack_addr, r.stack_addr);
7f78e237
AC
791 if (frame_debug)
792 {
793 fprintf_unfiltered (gdb_stdlog, "{ frame_id_inner (l=");
794 fprint_frame_id (gdb_stdlog, l);
795 fprintf_unfiltered (gdb_stdlog, ",r=");
796 fprint_frame_id (gdb_stdlog, r);
797 fprintf_unfiltered (gdb_stdlog, ") -> %d }\n", inner);
798 }
d0a55772 799 return inner;
7a424e99
AC
800}
801
101dcfbe
AC
802struct frame_info *
803frame_find_by_id (struct frame_id id)
804{
a45ae3ed 805 struct frame_info *frame, *prev_frame;
101dcfbe
AC
806
807 /* ZERO denotes the null frame, let the caller decide what to do
808 about it. Should it instead return get_current_frame()? */
7a424e99 809 if (!frame_id_p (id))
101dcfbe
AC
810 return NULL;
811
df433d31
KB
812 /* Check for the sentinel frame. */
813 if (frame_id_eq (id, sentinel_frame_id))
814 return sentinel_frame;
815
b83e9eb7
JB
816 /* Try using the frame stash first. Finding it there removes the need
817 to perform the search by looping over all frames, which can be very
818 CPU-intensive if the number of frames is very high (the loop is O(n)
819 and get_prev_frame performs a series of checks that are relatively
820 expensive). This optimization is particularly useful when this function
821 is called from another function (such as value_fetch_lazy, case
822 VALUE_LVAL (val) == lval_register) which already loops over all frames,
823 making the overall behavior O(n^2). */
824 frame = frame_stash_find (id);
825 if (frame)
826 return frame;
827
a45ae3ed 828 for (frame = get_current_frame (); ; frame = prev_frame)
101dcfbe 829 {
fe978cb0 830 struct frame_id self = get_frame_id (frame);
bb9bcb69 831
fe978cb0 832 if (frame_id_eq (id, self))
7a424e99
AC
833 /* An exact match. */
834 return frame;
a45ae3ed
UW
835
836 prev_frame = get_prev_frame (frame);
837 if (!prev_frame)
838 return NULL;
839
840 /* As a safety net to avoid unnecessary backtracing while trying
841 to find an invalid ID, we check for a common situation where
842 we can detect from comparing stack addresses that no other
843 frame in the current frame chain can have this ID. See the
844 comment at frame_id_inner for details. */
845 if (get_frame_type (frame) == NORMAL_FRAME
fe978cb0 846 && !frame_id_inner (get_frame_arch (frame), id, self)
a45ae3ed
UW
847 && frame_id_inner (get_frame_arch (prev_frame), id,
848 get_frame_id (prev_frame)))
101dcfbe 849 return NULL;
101dcfbe
AC
850 }
851 return NULL;
852}
853
782d47df
PA
854static CORE_ADDR
855frame_unwind_pc (struct frame_info *this_frame)
f18c5a73 856{
782d47df 857 if (this_frame->prev_pc.status == CC_UNKNOWN)
f18c5a73 858 {
36f15f55 859 if (gdbarch_unwind_pc_p (frame_unwind_arch (this_frame)))
12cc2063 860 {
e3eebbd7
PA
861 struct gdbarch *prev_gdbarch;
862 CORE_ADDR pc = 0;
492d29ea 863 int pc_p = 0;
e3eebbd7 864
12cc2063
AC
865 /* The right way. The `pure' way. The one true way. This
866 method depends solely on the register-unwind code to
867 determine the value of registers in THIS frame, and hence
868 the value of this frame's PC (resume address). A typical
869 implementation is no more than:
870
871 frame_unwind_register (this_frame, ISA_PC_REGNUM, buf);
af1342ab 872 return extract_unsigned_integer (buf, size of ISA_PC_REGNUM);
12cc2063
AC
873
874 Note: this method is very heavily dependent on a correct
875 register-unwind implementation, it pays to fix that
876 method first; this method is frame type agnostic, since
877 it only deals with register values, it works with any
878 frame. This is all in stark contrast to the old
879 FRAME_SAVED_PC which would try to directly handle all the
880 different ways that a PC could be unwound. */
e3eebbd7
PA
881 prev_gdbarch = frame_unwind_arch (this_frame);
882
492d29ea 883 TRY
e3eebbd7
PA
884 {
885 pc = gdbarch_unwind_pc (prev_gdbarch, this_frame);
492d29ea 886 pc_p = 1;
e3eebbd7 887 }
492d29ea 888 CATCH (ex, RETURN_MASK_ERROR)
e3eebbd7 889 {
782d47df
PA
890 if (ex.error == NOT_AVAILABLE_ERROR)
891 {
892 this_frame->prev_pc.status = CC_UNAVAILABLE;
893
894 if (frame_debug)
895 fprintf_unfiltered (gdb_stdlog,
896 "{ frame_unwind_pc (this_frame=%d)"
897 " -> <unavailable> }\n",
898 this_frame->level);
899 }
900 else if (ex.error == OPTIMIZED_OUT_ERROR)
901 {
902 this_frame->prev_pc.status = CC_NOT_SAVED;
903
904 if (frame_debug)
905 fprintf_unfiltered (gdb_stdlog,
906 "{ frame_unwind_pc (this_frame=%d)"
907 " -> <not saved> }\n",
908 this_frame->level);
909 }
910 else
911 throw_exception (ex);
e3eebbd7 912 }
492d29ea
PA
913 END_CATCH
914
915 if (pc_p)
e3eebbd7
PA
916 {
917 this_frame->prev_pc.value = pc;
782d47df 918 this_frame->prev_pc.status = CC_VALUE;
e3eebbd7
PA
919 if (frame_debug)
920 fprintf_unfiltered (gdb_stdlog,
921 "{ frame_unwind_pc (this_frame=%d) "
922 "-> %s }\n",
923 this_frame->level,
924 hex_string (this_frame->prev_pc.value));
925 }
12cc2063 926 }
12cc2063 927 else
e2e0b3e5 928 internal_error (__FILE__, __LINE__, _("No unwind_pc method"));
f18c5a73 929 }
e3eebbd7 930
782d47df
PA
931 if (this_frame->prev_pc.status == CC_VALUE)
932 return this_frame->prev_pc.value;
933 else if (this_frame->prev_pc.status == CC_UNAVAILABLE)
e3eebbd7 934 throw_error (NOT_AVAILABLE_ERROR, _("PC not available"));
782d47df
PA
935 else if (this_frame->prev_pc.status == CC_NOT_SAVED)
936 throw_error (OPTIMIZED_OUT_ERROR, _("PC not saved"));
e3eebbd7 937 else
782d47df
PA
938 internal_error (__FILE__, __LINE__,
939 "unexpected prev_pc status: %d",
940 (int) this_frame->prev_pc.status);
f18c5a73
AC
941}
942
edb3359d
DJ
943CORE_ADDR
944frame_unwind_caller_pc (struct frame_info *this_frame)
945{
33b4777c
MM
946 this_frame = skip_artificial_frames (this_frame);
947
948 /* We must have a non-artificial frame. The caller is supposed to check
949 the result of frame_unwind_caller_id (), which returns NULL_FRAME_ID
950 in this case. */
951 gdb_assert (this_frame != NULL);
952
953 return frame_unwind_pc (this_frame);
edb3359d
DJ
954}
955
e3eebbd7
PA
956int
957get_frame_func_if_available (struct frame_info *this_frame, CORE_ADDR *pc)
be41e9f4 958{
ef02daa9
DJ
959 struct frame_info *next_frame = this_frame->next;
960
961 if (!next_frame->prev_func.p)
be41e9f4 962 {
e3eebbd7
PA
963 CORE_ADDR addr_in_block;
964
57bfe177
AC
965 /* Make certain that this, and not the adjacent, function is
966 found. */
e3eebbd7
PA
967 if (!get_frame_address_in_block_if_available (this_frame, &addr_in_block))
968 {
969 next_frame->prev_func.p = -1;
970 if (frame_debug)
971 fprintf_unfiltered (gdb_stdlog,
972 "{ get_frame_func (this_frame=%d)"
973 " -> unavailable }\n",
974 this_frame->level);
975 }
976 else
977 {
978 next_frame->prev_func.p = 1;
979 next_frame->prev_func.addr = get_pc_function_start (addr_in_block);
980 if (frame_debug)
981 fprintf_unfiltered (gdb_stdlog,
982 "{ get_frame_func (this_frame=%d) -> %s }\n",
983 this_frame->level,
984 hex_string (next_frame->prev_func.addr));
985 }
be41e9f4 986 }
e3eebbd7
PA
987
988 if (next_frame->prev_func.p < 0)
989 {
990 *pc = -1;
991 return 0;
992 }
993 else
994 {
995 *pc = next_frame->prev_func.addr;
996 return 1;
997 }
998}
999
1000CORE_ADDR
1001get_frame_func (struct frame_info *this_frame)
1002{
1003 CORE_ADDR pc;
1004
1005 if (!get_frame_func_if_available (this_frame, &pc))
1006 throw_error (NOT_AVAILABLE_ERROR, _("PC not available"));
1007
1008 return pc;
be41e9f4
AC
1009}
1010
05d1431c 1011static enum register_status
2d522557 1012do_frame_register_read (void *src, int regnum, gdb_byte *buf)
7a25a7c1 1013{
9a3c8263 1014 if (!deprecated_frame_register_read ((struct frame_info *) src, regnum, buf))
05d1431c
PA
1015 return REG_UNAVAILABLE;
1016 else
1017 return REG_VALID;
7a25a7c1
AC
1018}
1019
daf6667d 1020std::unique_ptr<readonly_detached_regcache>
a81dcb05
AC
1021frame_save_as_regcache (struct frame_info *this_frame)
1022{
daf6667d
YQ
1023 std::unique_ptr<readonly_detached_regcache> regcache
1024 (new readonly_detached_regcache (get_frame_arch (this_frame),
1025 do_frame_register_read, this_frame));
1c4d3f96 1026
a81dcb05
AC
1027 return regcache;
1028}
1029
dbe9fe58 1030void
7a25a7c1
AC
1031frame_pop (struct frame_info *this_frame)
1032{
348473d5 1033 struct frame_info *prev_frame;
348473d5 1034
b89667eb
DE
1035 if (get_frame_type (this_frame) == DUMMY_FRAME)
1036 {
1037 /* Popping a dummy frame involves restoring more than just registers.
1038 dummy_frame_pop does all the work. */
b67a2c6f 1039 dummy_frame_pop (get_frame_id (this_frame), inferior_ptid);
b89667eb
DE
1040 return;
1041 }
1042
348473d5 1043 /* Ensure that we have a frame to pop to. */
51d48146 1044 prev_frame = get_prev_frame_always (this_frame);
348473d5
NF
1045
1046 if (!prev_frame)
1047 error (_("Cannot pop the initial frame."));
1048
1ab3b62c
JK
1049 /* Ignore TAILCALL_FRAME type frames, they were executed already before
1050 entering THISFRAME. */
2f3ef606 1051 prev_frame = skip_tailcall_frames (prev_frame);
1ab3b62c 1052
33b4777c
MM
1053 if (prev_frame == NULL)
1054 error (_("Cannot find the caller frame."));
1055
c1bf6f65
AC
1056 /* Make a copy of all the register values unwound from this frame.
1057 Save them in a scratch buffer so that there isn't a race between
594f7785 1058 trying to extract the old values from the current regcache while
c1bf6f65 1059 at the same time writing new values into that same cache. */
daf6667d 1060 std::unique_ptr<readonly_detached_regcache> scratch
9ac86b52 1061 = frame_save_as_regcache (prev_frame);
c1bf6f65
AC
1062
1063 /* FIXME: cagney/2003-03-16: It should be possible to tell the
1064 target's register cache that it is about to be hit with a burst
1065 register transfer and that the sequence of register writes should
1066 be batched. The pair target_prepare_to_store() and
1067 target_store_registers() kind of suggest this functionality.
1068 Unfortunately, they don't implement it. Their lack of a formal
1069 definition can lead to targets writing back bogus values
1070 (arguably a bug in the target code mind). */
fc5b8736
YQ
1071 /* Now copy those saved registers into the current regcache. */
1072 get_current_regcache ()->restore (scratch.get ());
7a25a7c1 1073
7a25a7c1
AC
1074 /* We've made right mess of GDB's local state, just discard
1075 everything. */
35f196d9 1076 reinit_frame_cache ();
dbe9fe58 1077}
c689142b 1078
4f460812
AC
1079void
1080frame_register_unwind (struct frame_info *frame, int regnum,
0fdb4f18
PA
1081 int *optimizedp, int *unavailablep,
1082 enum lval_type *lvalp, CORE_ADDR *addrp,
1083 int *realnump, gdb_byte *bufferp)
4f460812 1084{
669fac23 1085 struct value *value;
7f78e237 1086
4f460812
AC
1087 /* Require all but BUFFERP to be valid. A NULL BUFFERP indicates
1088 that the value proper does not need to be fetched. */
1089 gdb_assert (optimizedp != NULL);
1090 gdb_assert (lvalp != NULL);
1091 gdb_assert (addrp != NULL);
1092 gdb_assert (realnump != NULL);
1093 /* gdb_assert (bufferp != NULL); */
1094
669fac23 1095 value = frame_unwind_register_value (frame, regnum);
4f460812 1096
669fac23 1097 gdb_assert (value != NULL);
c50901fd 1098
669fac23 1099 *optimizedp = value_optimized_out (value);
0fdb4f18 1100 *unavailablep = !value_entirely_available (value);
669fac23 1101 *lvalp = VALUE_LVAL (value);
42ae5230 1102 *addrp = value_address (value);
7c2ba67e
YQ
1103 if (*lvalp == lval_register)
1104 *realnump = VALUE_REGNUM (value);
1105 else
1106 *realnump = -1;
6dc42492 1107
0fdb4f18
PA
1108 if (bufferp)
1109 {
1110 if (!*optimizedp && !*unavailablep)
1111 memcpy (bufferp, value_contents_all (value),
1112 TYPE_LENGTH (value_type (value)));
1113 else
1114 memset (bufferp, 0, TYPE_LENGTH (value_type (value)));
1115 }
669fac23
DJ
1116
1117 /* Dispose of the new value. This prevents watchpoints from
1118 trying to watch the saved frame pointer. */
1119 release_value (value);
4f460812
AC
1120}
1121
a216a322
AC
1122void
1123frame_register (struct frame_info *frame, int regnum,
0fdb4f18 1124 int *optimizedp, int *unavailablep, enum lval_type *lvalp,
10c42a71 1125 CORE_ADDR *addrp, int *realnump, gdb_byte *bufferp)
a216a322
AC
1126{
1127 /* Require all but BUFFERP to be valid. A NULL BUFFERP indicates
1128 that the value proper does not need to be fetched. */
1129 gdb_assert (optimizedp != NULL);
1130 gdb_assert (lvalp != NULL);
1131 gdb_assert (addrp != NULL);
1132 gdb_assert (realnump != NULL);
1133 /* gdb_assert (bufferp != NULL); */
1134
a94dd1fd
AC
1135 /* Obtain the register value by unwinding the register from the next
1136 (more inner frame). */
1137 gdb_assert (frame != NULL && frame->next != NULL);
0fdb4f18
PA
1138 frame_register_unwind (frame->next, regnum, optimizedp, unavailablep,
1139 lvalp, addrp, realnump, bufferp);
a216a322
AC
1140}
1141
135c175f 1142void
10c42a71 1143frame_unwind_register (struct frame_info *frame, int regnum, gdb_byte *buf)
135c175f
AC
1144{
1145 int optimized;
0fdb4f18 1146 int unavailable;
135c175f
AC
1147 CORE_ADDR addr;
1148 int realnum;
1149 enum lval_type lval;
1c4d3f96 1150
0fdb4f18
PA
1151 frame_register_unwind (frame, regnum, &optimized, &unavailable,
1152 &lval, &addr, &realnum, buf);
8fbca658
PA
1153
1154 if (optimized)
710409a2
PA
1155 throw_error (OPTIMIZED_OUT_ERROR,
1156 _("Register %d was not saved"), regnum);
8fbca658
PA
1157 if (unavailable)
1158 throw_error (NOT_AVAILABLE_ERROR,
1159 _("Register %d is not available"), regnum);
5b181d62
AC
1160}
1161
f0e7d0e8
AC
1162void
1163get_frame_register (struct frame_info *frame,
10c42a71 1164 int regnum, gdb_byte *buf)
f0e7d0e8
AC
1165{
1166 frame_unwind_register (frame->next, regnum, buf);
1167}
1168
669fac23
DJ
1169struct value *
1170frame_unwind_register_value (struct frame_info *frame, int regnum)
1171{
36f15f55 1172 struct gdbarch *gdbarch;
669fac23
DJ
1173 struct value *value;
1174
1175 gdb_assert (frame != NULL);
36f15f55 1176 gdbarch = frame_unwind_arch (frame);
669fac23
DJ
1177
1178 if (frame_debug)
1179 {
3e43a32a
MS
1180 fprintf_unfiltered (gdb_stdlog,
1181 "{ frame_unwind_register_value "
1182 "(frame=%d,regnum=%d(%s),...) ",
669fac23 1183 frame->level, regnum,
36f15f55 1184 user_reg_map_regnum_to_name (gdbarch, regnum));
669fac23
DJ
1185 }
1186
1187 /* Find the unwinder. */
1188 if (frame->unwind == NULL)
9f9a8002 1189 frame_unwind_find_by_frame (frame, &frame->prologue_cache);
669fac23
DJ
1190
1191 /* Ask this frame to unwind its register. */
1192 value = frame->unwind->prev_register (frame, &frame->prologue_cache, regnum);
1193
1194 if (frame_debug)
1195 {
1196 fprintf_unfiltered (gdb_stdlog, "->");
1197 if (value_optimized_out (value))
f6c01fc5
AB
1198 {
1199 fprintf_unfiltered (gdb_stdlog, " ");
1200 val_print_optimized_out (value, gdb_stdlog);
1201 }
669fac23
DJ
1202 else
1203 {
1204 if (VALUE_LVAL (value) == lval_register)
1205 fprintf_unfiltered (gdb_stdlog, " register=%d",
1206 VALUE_REGNUM (value));
1207 else if (VALUE_LVAL (value) == lval_memory)
5af949e3
UW
1208 fprintf_unfiltered (gdb_stdlog, " address=%s",
1209 paddress (gdbarch,
1210 value_address (value)));
669fac23
DJ
1211 else
1212 fprintf_unfiltered (gdb_stdlog, " computed");
1213
1214 if (value_lazy (value))
1215 fprintf_unfiltered (gdb_stdlog, " lazy");
1216 else
1217 {
1218 int i;
1219 const gdb_byte *buf = value_contents (value);
1220
1221 fprintf_unfiltered (gdb_stdlog, " bytes=");
1222 fprintf_unfiltered (gdb_stdlog, "[");
36f15f55 1223 for (i = 0; i < register_size (gdbarch, regnum); i++)
669fac23
DJ
1224 fprintf_unfiltered (gdb_stdlog, "%02x", buf[i]);
1225 fprintf_unfiltered (gdb_stdlog, "]");
1226 }
1227 }
1228
1229 fprintf_unfiltered (gdb_stdlog, " }\n");
1230 }
1231
1232 return value;
1233}
1234
1235struct value *
1236get_frame_register_value (struct frame_info *frame, int regnum)
1237{
1238 return frame_unwind_register_value (frame->next, regnum);
1239}
1240
f0e7d0e8
AC
1241LONGEST
1242frame_unwind_register_signed (struct frame_info *frame, int regnum)
1243{
e17a4113
UW
1244 struct gdbarch *gdbarch = frame_unwind_arch (frame);
1245 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1246 int size = register_size (gdbarch, regnum);
9f7fb0aa 1247 struct value *value = frame_unwind_register_value (frame, regnum);
1c4d3f96 1248
9f7fb0aa
AH
1249 gdb_assert (value != NULL);
1250
1251 if (value_optimized_out (value))
1252 {
1253 throw_error (OPTIMIZED_OUT_ERROR,
1254 _("Register %d was not saved"), regnum);
1255 }
1256 if (!value_entirely_available (value))
1257 {
1258 throw_error (NOT_AVAILABLE_ERROR,
1259 _("Register %d is not available"), regnum);
1260 }
1261
1262 LONGEST r = extract_signed_integer (value_contents_all (value), size,
1263 byte_order);
1264
1265 release_value (value);
9f7fb0aa 1266 return r;
f0e7d0e8
AC
1267}
1268
1269LONGEST
1270get_frame_register_signed (struct frame_info *frame, int regnum)
1271{
1272 return frame_unwind_register_signed (frame->next, regnum);
1273}
1274
1275ULONGEST
1276frame_unwind_register_unsigned (struct frame_info *frame, int regnum)
1277{
e17a4113
UW
1278 struct gdbarch *gdbarch = frame_unwind_arch (frame);
1279 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1280 int size = register_size (gdbarch, regnum);
2cad08ea 1281 struct value *value = frame_unwind_register_value (frame, regnum);
1c4d3f96 1282
2cad08ea
YQ
1283 gdb_assert (value != NULL);
1284
1285 if (value_optimized_out (value))
1286 {
1287 throw_error (OPTIMIZED_OUT_ERROR,
1288 _("Register %d was not saved"), regnum);
1289 }
1290 if (!value_entirely_available (value))
1291 {
1292 throw_error (NOT_AVAILABLE_ERROR,
1293 _("Register %d is not available"), regnum);
1294 }
1295
1296 ULONGEST r = extract_unsigned_integer (value_contents_all (value), size,
1297 byte_order);
1298
1299 release_value (value);
2cad08ea 1300 return r;
f0e7d0e8
AC
1301}
1302
1303ULONGEST
1304get_frame_register_unsigned (struct frame_info *frame, int regnum)
1305{
1306 return frame_unwind_register_unsigned (frame->next, regnum);
1307}
1308
ad5f7d6e
PA
1309int
1310read_frame_register_unsigned (struct frame_info *frame, int regnum,
1311 ULONGEST *val)
1312{
1313 struct value *regval = get_frame_register_value (frame, regnum);
1314
1315 if (!value_optimized_out (regval)
1316 && value_entirely_available (regval))
1317 {
1318 struct gdbarch *gdbarch = get_frame_arch (frame);
1319 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1320 int size = register_size (gdbarch, VALUE_REGNUM (regval));
1321
1322 *val = extract_unsigned_integer (value_contents (regval), size, byte_order);
1323 return 1;
1324 }
1325
1326 return 0;
1327}
1328
ff2e87ac 1329void
10c42a71
AC
1330put_frame_register (struct frame_info *frame, int regnum,
1331 const gdb_byte *buf)
ff2e87ac
AC
1332{
1333 struct gdbarch *gdbarch = get_frame_arch (frame);
1334 int realnum;
1335 int optim;
0fdb4f18 1336 int unavail;
ff2e87ac
AC
1337 enum lval_type lval;
1338 CORE_ADDR addr;
1c4d3f96 1339
0fdb4f18
PA
1340 frame_register (frame, regnum, &optim, &unavail,
1341 &lval, &addr, &realnum, NULL);
ff2e87ac 1342 if (optim)
901461f8 1343 error (_("Attempt to assign to a register that was not saved."));
ff2e87ac
AC
1344 switch (lval)
1345 {
1346 case lval_memory:
1347 {
954b50b3 1348 write_memory (addr, buf, register_size (gdbarch, regnum));
ff2e87ac
AC
1349 break;
1350 }
1351 case lval_register:
594f7785 1352 regcache_cooked_write (get_current_regcache (), realnum, buf);
ff2e87ac
AC
1353 break;
1354 default:
8a3fe4f8 1355 error (_("Attempt to assign to an unmodifiable value."));
ff2e87ac
AC
1356 }
1357}
1358
b2c7d45a
JB
1359/* This function is deprecated. Use get_frame_register_value instead,
1360 which provides more accurate information.
d65fe839 1361
cda5a58a 1362 Find and return the value of REGNUM for the specified stack frame.
5bc602c7 1363 The number of bytes copied is REGISTER_SIZE (REGNUM).
d65fe839 1364
cda5a58a 1365 Returns 0 if the register value could not be found. */
d65fe839 1366
cda5a58a 1367int
ca9d61b9 1368deprecated_frame_register_read (struct frame_info *frame, int regnum,
10c42a71 1369 gdb_byte *myaddr)
d65fe839 1370{
a216a322 1371 int optimized;
0fdb4f18 1372 int unavailable;
a216a322
AC
1373 enum lval_type lval;
1374 CORE_ADDR addr;
1375 int realnum;
1c4d3f96 1376
0fdb4f18
PA
1377 frame_register (frame, regnum, &optimized, &unavailable,
1378 &lval, &addr, &realnum, myaddr);
d65fe839 1379
0fdb4f18 1380 return !optimized && !unavailable;
d65fe839 1381}
e36180d7 1382
00fa51f6
UW
1383int
1384get_frame_register_bytes (struct frame_info *frame, int regnum,
8dccd430
PA
1385 CORE_ADDR offset, int len, gdb_byte *myaddr,
1386 int *optimizedp, int *unavailablep)
00fa51f6
UW
1387{
1388 struct gdbarch *gdbarch = get_frame_arch (frame);
3f27f2a4
AS
1389 int i;
1390 int maxsize;
68e007ca 1391 int numregs;
00fa51f6
UW
1392
1393 /* Skip registers wholly inside of OFFSET. */
1394 while (offset >= register_size (gdbarch, regnum))
1395 {
1396 offset -= register_size (gdbarch, regnum);
1397 regnum++;
1398 }
1399
26fae1d6
AS
1400 /* Ensure that we will not read beyond the end of the register file.
1401 This can only ever happen if the debug information is bad. */
3f27f2a4 1402 maxsize = -offset;
68e007ca
AS
1403 numregs = gdbarch_num_regs (gdbarch) + gdbarch_num_pseudo_regs (gdbarch);
1404 for (i = regnum; i < numregs; i++)
3f27f2a4
AS
1405 {
1406 int thissize = register_size (gdbarch, i);
bb9bcb69 1407
3f27f2a4 1408 if (thissize == 0)
26fae1d6 1409 break; /* This register is not available on this architecture. */
3f27f2a4
AS
1410 maxsize += thissize;
1411 }
1412 if (len > maxsize)
8dccd430
PA
1413 error (_("Bad debug information detected: "
1414 "Attempt to read %d bytes from registers."), len);
3f27f2a4 1415
00fa51f6
UW
1416 /* Copy the data. */
1417 while (len > 0)
1418 {
1419 int curr_len = register_size (gdbarch, regnum) - offset;
bb9bcb69 1420
00fa51f6
UW
1421 if (curr_len > len)
1422 curr_len = len;
1423
1424 if (curr_len == register_size (gdbarch, regnum))
1425 {
8dccd430
PA
1426 enum lval_type lval;
1427 CORE_ADDR addr;
1428 int realnum;
1429
1430 frame_register (frame, regnum, optimizedp, unavailablep,
1431 &lval, &addr, &realnum, myaddr);
1432 if (*optimizedp || *unavailablep)
00fa51f6
UW
1433 return 0;
1434 }
1435 else
1436 {
db3a1dc7
AH
1437 struct value *value = frame_unwind_register_value (frame->next,
1438 regnum);
1439 gdb_assert (value != NULL);
1440 *optimizedp = value_optimized_out (value);
1441 *unavailablep = !value_entirely_available (value);
bb9bcb69 1442
8dccd430 1443 if (*optimizedp || *unavailablep)
db3a1dc7
AH
1444 {
1445 release_value (value);
db3a1dc7
AH
1446 return 0;
1447 }
1448 memcpy (myaddr, value_contents_all (value) + offset, curr_len);
1449 release_value (value);
00fa51f6
UW
1450 }
1451
765f065a 1452 myaddr += curr_len;
00fa51f6
UW
1453 len -= curr_len;
1454 offset = 0;
1455 regnum++;
1456 }
1457
8dccd430
PA
1458 *optimizedp = 0;
1459 *unavailablep = 0;
00fa51f6
UW
1460 return 1;
1461}
1462
1463void
1464put_frame_register_bytes (struct frame_info *frame, int regnum,
1465 CORE_ADDR offset, int len, const gdb_byte *myaddr)
1466{
1467 struct gdbarch *gdbarch = get_frame_arch (frame);
1468
1469 /* Skip registers wholly inside of OFFSET. */
1470 while (offset >= register_size (gdbarch, regnum))
1471 {
1472 offset -= register_size (gdbarch, regnum);
1473 regnum++;
1474 }
1475
1476 /* Copy the data. */
1477 while (len > 0)
1478 {
1479 int curr_len = register_size (gdbarch, regnum) - offset;
bb9bcb69 1480
00fa51f6
UW
1481 if (curr_len > len)
1482 curr_len = len;
1483
1484 if (curr_len == register_size (gdbarch, regnum))
1485 {
1486 put_frame_register (frame, regnum, myaddr);
1487 }
1488 else
1489 {
db3a1dc7
AH
1490 struct value *value = frame_unwind_register_value (frame->next,
1491 regnum);
1492 gdb_assert (value != NULL);
1493
1494 memcpy ((char *) value_contents_writeable (value) + offset, myaddr,
1495 curr_len);
1496 put_frame_register (frame, regnum, value_contents_raw (value));
1497 release_value (value);
00fa51f6
UW
1498 }
1499
765f065a 1500 myaddr += curr_len;
00fa51f6
UW
1501 len -= curr_len;
1502 offset = 0;
1503 regnum++;
1504 }
1505}
e36180d7 1506
a94dd1fd
AC
1507/* Create a sentinel frame. */
1508
b9362cc7 1509static struct frame_info *
6c95b8df 1510create_sentinel_frame (struct program_space *pspace, struct regcache *regcache)
a94dd1fd
AC
1511{
1512 struct frame_info *frame = FRAME_OBSTACK_ZALLOC (struct frame_info);
1c4d3f96 1513
a94dd1fd 1514 frame->level = -1;
6c95b8df 1515 frame->pspace = pspace;
a01bda52 1516 frame->aspace = regcache->aspace ();
a94dd1fd
AC
1517 /* Explicitly initialize the sentinel frame's cache. Provide it
1518 with the underlying regcache. In the future additional
1519 information, such as the frame's thread will be added. */
6dc42492 1520 frame->prologue_cache = sentinel_frame_cache (regcache);
a94dd1fd 1521 /* For the moment there is only one sentinel frame implementation. */
39d7b0e2 1522 frame->unwind = &sentinel_frame_unwind;
a94dd1fd
AC
1523 /* Link this frame back to itself. The frame is self referential
1524 (the unwound PC is the same as the pc), so make it so. */
1525 frame->next = frame;
df433d31 1526 /* The sentinel frame has a special ID. */
d0a55772 1527 frame->this_id.p = 1;
df433d31 1528 frame->this_id.value = sentinel_frame_id;
7f78e237
AC
1529 if (frame_debug)
1530 {
1531 fprintf_unfiltered (gdb_stdlog, "{ create_sentinel_frame (...) -> ");
1532 fprint_frame (gdb_stdlog, frame);
1533 fprintf_unfiltered (gdb_stdlog, " }\n");
1534 }
a94dd1fd
AC
1535 return frame;
1536}
1537
4c1e7e9d
AC
1538/* Cache for frame addresses already read by gdb. Valid only while
1539 inferior is stopped. Control variables for the frame cache should
1540 be local to this module. */
1541
1542static struct obstack frame_cache_obstack;
1543
1544void *
479ab5a0 1545frame_obstack_zalloc (unsigned long size)
4c1e7e9d 1546{
479ab5a0 1547 void *data = obstack_alloc (&frame_cache_obstack, size);
1c4d3f96 1548
479ab5a0
AC
1549 memset (data, 0, size);
1550 return data;
4c1e7e9d
AC
1551}
1552
f245535c 1553static struct frame_info *get_prev_frame_always_1 (struct frame_info *this_frame);
4c1e7e9d
AC
1554
1555struct frame_info *
1556get_current_frame (void)
1557{
df433d31
KB
1558 struct frame_info *current_frame;
1559
0a1e1ca1
AC
1560 /* First check, and report, the lack of registers. Having GDB
1561 report "No stack!" or "No memory" when the target doesn't even
1562 have registers is very confusing. Besides, "printcmd.exp"
1563 explicitly checks that ``print $pc'' with no registers prints "No
1564 registers". */
a94dd1fd 1565 if (!target_has_registers)
8a3fe4f8 1566 error (_("No registers."));
0a1e1ca1 1567 if (!target_has_stack)
8a3fe4f8 1568 error (_("No stack."));
a94dd1fd 1569 if (!target_has_memory)
8a3fe4f8 1570 error (_("No memory."));
2ce6d6bf
SS
1571 /* Traceframes are effectively a substitute for the live inferior. */
1572 if (get_traceframe_number () < 0)
a911d87a 1573 validate_registers_access ();
8ea051c5 1574
df433d31
KB
1575 if (sentinel_frame == NULL)
1576 sentinel_frame =
1577 create_sentinel_frame (current_program_space, get_current_regcache ());
1578
1579 /* Set the current frame before computing the frame id, to avoid
1580 recursion inside compute_frame_id, in case the frame's
1581 unwinder decides to do a symbol lookup (which depends on the
1582 selected frame's block).
1583
1584 This call must always succeed. In particular, nothing inside
1585 get_prev_frame_always_1 should try to unwind from the
1586 sentinel frame, because that could fail/throw, and we always
1587 want to leave with the current frame created and linked in --
1588 we should never end up with the sentinel frame as outermost
1589 frame. */
1590 current_frame = get_prev_frame_always_1 (sentinel_frame);
1591 gdb_assert (current_frame != NULL);
f245535c 1592
4c1e7e9d
AC
1593 return current_frame;
1594}
1595
6e7f8b9c
AC
1596/* The "selected" stack frame is used by default for local and arg
1597 access. May be zero, for no selected frame. */
1598
206415a3 1599static struct frame_info *selected_frame;
6e7f8b9c 1600
9d49bdc2 1601int
8ea051c5
PA
1602has_stack_frames (void)
1603{
1604 if (!target_has_registers || !target_has_stack || !target_has_memory)
1605 return 0;
1606
861152be
LM
1607 /* Traceframes are effectively a substitute for the live inferior. */
1608 if (get_traceframe_number () < 0)
1609 {
1610 /* No current inferior, no frame. */
1611 if (ptid_equal (inferior_ptid, null_ptid))
1612 return 0;
d729566a 1613
861152be
LM
1614 /* Don't try to read from a dead thread. */
1615 if (is_exited (inferior_ptid))
1616 return 0;
d729566a 1617
861152be
LM
1618 /* ... or from a spinning thread. */
1619 if (is_executing (inferior_ptid))
1620 return 0;
1621 }
8ea051c5
PA
1622
1623 return 1;
1624}
1625
bbde78fa 1626/* Return the selected frame. Always non-NULL (unless there isn't an
6e7f8b9c
AC
1627 inferior sufficient for creating a frame) in which case an error is
1628 thrown. */
1629
1630struct frame_info *
b04f3ab4 1631get_selected_frame (const char *message)
6e7f8b9c 1632{
206415a3 1633 if (selected_frame == NULL)
b04f3ab4 1634 {
8ea051c5 1635 if (message != NULL && !has_stack_frames ())
8a3fe4f8 1636 error (("%s"), message);
b04f3ab4
AC
1637 /* Hey! Don't trust this. It should really be re-finding the
1638 last selected frame of the currently selected thread. This,
1639 though, is better than nothing. */
1640 select_frame (get_current_frame ());
1641 }
6e7f8b9c 1642 /* There is always a frame. */
206415a3
DJ
1643 gdb_assert (selected_frame != NULL);
1644 return selected_frame;
6e7f8b9c
AC
1645}
1646
eb8c0621
TT
1647/* If there is a selected frame, return it. Otherwise, return NULL. */
1648
1649struct frame_info *
1650get_selected_frame_if_set (void)
1651{
1652 return selected_frame;
1653}
1654
bbde78fa 1655/* This is a variant of get_selected_frame() which can be called when
7dd88986 1656 the inferior does not have a frame; in that case it will return
bbde78fa 1657 NULL instead of calling error(). */
7dd88986
DJ
1658
1659struct frame_info *
1660deprecated_safe_get_selected_frame (void)
1661{
8ea051c5 1662 if (!has_stack_frames ())
7dd88986 1663 return NULL;
b04f3ab4 1664 return get_selected_frame (NULL);
7dd88986
DJ
1665}
1666
6e7f8b9c
AC
1667/* Select frame FI (or NULL - to invalidate the current frame). */
1668
1669void
1670select_frame (struct frame_info *fi)
1671{
206415a3 1672 selected_frame = fi;
bbde78fa 1673 /* NOTE: cagney/2002-05-04: FI can be NULL. This occurs when the
6e7f8b9c 1674 frame is being invalidated. */
6e7f8b9c
AC
1675
1676 /* FIXME: kseitz/2002-08-28: It would be nice to call
bbde78fa 1677 selected_frame_level_changed_event() right here, but due to limitations
6e7f8b9c 1678 in the current interfaces, we would end up flooding UIs with events
bbde78fa 1679 because select_frame() is used extensively internally.
6e7f8b9c
AC
1680
1681 Once we have frame-parameterized frame (and frame-related) commands,
1682 the event notification can be moved here, since this function will only
0963b4bd 1683 be called when the user's selected frame is being changed. */
6e7f8b9c
AC
1684
1685 /* Ensure that symbols for this frame are read in. Also, determine the
1686 source language of this frame, and switch to it if desired. */
1687 if (fi)
1688 {
e3eebbd7
PA
1689 CORE_ADDR pc;
1690
1691 /* We retrieve the frame's symtab by using the frame PC.
1692 However we cannot use the frame PC as-is, because it usually
1693 points to the instruction following the "call", which is
1694 sometimes the first instruction of another function. So we
1695 rely on get_frame_address_in_block() which provides us with a
1696 PC which is guaranteed to be inside the frame's code
1697 block. */
1698 if (get_frame_address_in_block_if_available (fi, &pc))
6e7f8b9c 1699 {
43f3e411 1700 struct compunit_symtab *cust = find_pc_compunit_symtab (pc);
e3eebbd7 1701
43f3e411
DE
1702 if (cust != NULL
1703 && compunit_language (cust) != current_language->la_language
1704 && compunit_language (cust) != language_unknown
e3eebbd7 1705 && language_mode == language_mode_auto)
43f3e411 1706 set_language (compunit_language (cust));
6e7f8b9c
AC
1707 }
1708 }
1709}
e3eebbd7 1710
4c1e7e9d
AC
1711/* Create an arbitrary (i.e. address specified by user) or innermost frame.
1712 Always returns a non-NULL value. */
1713
1714struct frame_info *
1715create_new_frame (CORE_ADDR addr, CORE_ADDR pc)
1716{
1717 struct frame_info *fi;
4c1e7e9d 1718
7f78e237
AC
1719 if (frame_debug)
1720 {
1721 fprintf_unfiltered (gdb_stdlog,
5af949e3
UW
1722 "{ create_new_frame (addr=%s, pc=%s) ",
1723 hex_string (addr), hex_string (pc));
7f78e237
AC
1724 }
1725
35d5d4ee 1726 fi = FRAME_OBSTACK_ZALLOC (struct frame_info);
4c1e7e9d 1727
3e43a32a
MS
1728 fi->next = create_sentinel_frame (current_program_space,
1729 get_current_regcache ());
7df05f2b 1730
1e275f79
PA
1731 /* Set/update this frame's cached PC value, found in the next frame.
1732 Do this before looking for this frame's unwinder. A sniffer is
1733 very likely to read this, and the corresponding unwinder is
1734 entitled to rely that the PC doesn't magically change. */
1735 fi->next->prev_pc.value = pc;
782d47df 1736 fi->next->prev_pc.status = CC_VALUE;
1e275f79 1737
6c95b8df
PA
1738 /* We currently assume that frame chain's can't cross spaces. */
1739 fi->pspace = fi->next->pspace;
1740 fi->aspace = fi->next->aspace;
1741
7df05f2b
AC
1742 /* Select/initialize both the unwind function and the frame's type
1743 based on the PC. */
9f9a8002 1744 frame_unwind_find_by_frame (fi, &fi->prologue_cache);
7df05f2b 1745
18adea3f 1746 fi->this_id.p = 1;
1e275f79 1747 fi->this_id.value = frame_id_build (addr, pc);
4c1e7e9d 1748
7f78e237
AC
1749 if (frame_debug)
1750 {
1751 fprintf_unfiltered (gdb_stdlog, "-> ");
1752 fprint_frame (gdb_stdlog, fi);
1753 fprintf_unfiltered (gdb_stdlog, " }\n");
1754 }
1755
4c1e7e9d
AC
1756 return fi;
1757}
1758
03febf99
AC
1759/* Return the frame that THIS_FRAME calls (NULL if THIS_FRAME is the
1760 innermost frame). Be careful to not fall off the bottom of the
1761 frame chain and onto the sentinel frame. */
4c1e7e9d
AC
1762
1763struct frame_info *
03febf99 1764get_next_frame (struct frame_info *this_frame)
4c1e7e9d 1765{
03febf99
AC
1766 if (this_frame->level > 0)
1767 return this_frame->next;
a94dd1fd
AC
1768 else
1769 return NULL;
4c1e7e9d
AC
1770}
1771
df433d31
KB
1772/* Return the frame that THIS_FRAME calls. If THIS_FRAME is the
1773 innermost (i.e. current) frame, return the sentinel frame. Thus,
1774 unlike get_next_frame(), NULL will never be returned. */
1775
1776struct frame_info *
1777get_next_frame_sentinel_okay (struct frame_info *this_frame)
1778{
1779 gdb_assert (this_frame != NULL);
1780
1781 /* Note that, due to the manner in which the sentinel frame is
1782 constructed, this_frame->next still works even when this_frame
1783 is the sentinel frame. But we disallow it here anyway because
1784 calling get_next_frame_sentinel_okay() on the sentinel frame
1785 is likely a coding error. */
1786 gdb_assert (this_frame != sentinel_frame);
1787
1788 return this_frame->next;
1789}
1790
f4c5303c
OF
1791/* Observer for the target_changed event. */
1792
2c0b251b 1793static void
f4c5303c
OF
1794frame_observer_target_changed (struct target_ops *target)
1795{
35f196d9 1796 reinit_frame_cache ();
f4c5303c
OF
1797}
1798
4c1e7e9d
AC
1799/* Flush the entire frame cache. */
1800
1801void
35f196d9 1802reinit_frame_cache (void)
4c1e7e9d 1803{
272dfcfd
AS
1804 struct frame_info *fi;
1805
1806 /* Tear down all frame caches. */
df433d31 1807 for (fi = sentinel_frame; fi != NULL; fi = fi->prev)
272dfcfd
AS
1808 {
1809 if (fi->prologue_cache && fi->unwind->dealloc_cache)
1810 fi->unwind->dealloc_cache (fi, fi->prologue_cache);
1811 if (fi->base_cache && fi->base->unwind->dealloc_cache)
1812 fi->base->unwind->dealloc_cache (fi, fi->base_cache);
1813 }
1814
0963b4bd 1815 /* Since we can't really be sure what the first object allocated was. */
4c1e7e9d
AC
1816 obstack_free (&frame_cache_obstack, 0);
1817 obstack_init (&frame_cache_obstack);
1818
df433d31 1819 if (sentinel_frame != NULL)
0d6ba1b1
DJ
1820 annotate_frames_invalid ();
1821
df433d31 1822 sentinel_frame = NULL; /* Invalidate cache */
4c1e7e9d 1823 select_frame (NULL);
b83e9eb7 1824 frame_stash_invalidate ();
7f78e237 1825 if (frame_debug)
35f196d9 1826 fprintf_unfiltered (gdb_stdlog, "{ reinit_frame_cache () }\n");
4c1e7e9d
AC
1827}
1828
e48af409
DJ
1829/* Find where a register is saved (in memory or another register).
1830 The result of frame_register_unwind is just where it is saved
5efde112 1831 relative to this particular frame. */
e48af409
DJ
1832
1833static void
1834frame_register_unwind_location (struct frame_info *this_frame, int regnum,
1835 int *optimizedp, enum lval_type *lvalp,
1836 CORE_ADDR *addrp, int *realnump)
1837{
1838 gdb_assert (this_frame == NULL || this_frame->level >= 0);
1839
1840 while (this_frame != NULL)
1841 {
0fdb4f18
PA
1842 int unavailable;
1843
1844 frame_register_unwind (this_frame, regnum, optimizedp, &unavailable,
1845 lvalp, addrp, realnump, NULL);
e48af409
DJ
1846
1847 if (*optimizedp)
1848 break;
1849
1850 if (*lvalp != lval_register)
1851 break;
1852
1853 regnum = *realnump;
1854 this_frame = get_next_frame (this_frame);
1855 }
1856}
1857
938f0e2f
AB
1858/* Called during frame unwinding to remove a previous frame pointer from a
1859 frame passed in ARG. */
1860
1861static void
1862remove_prev_frame (void *arg)
1863{
1864 struct frame_info *this_frame, *prev_frame;
1865
1866 this_frame = (struct frame_info *) arg;
1867 prev_frame = this_frame->prev;
1868 gdb_assert (prev_frame != NULL);
1869
1870 prev_frame->next = NULL;
1871 this_frame->prev = NULL;
1872}
1873
194cca41
PA
1874/* Get the previous raw frame, and check that it is not identical to
1875 same other frame frame already in the chain. If it is, there is
1876 most likely a stack cycle, so we discard it, and mark THIS_FRAME as
1877 outermost, with UNWIND_SAME_ID stop reason. Unlike the other
1878 validity tests, that compare THIS_FRAME and the next frame, we do
1879 this right after creating the previous frame, to avoid ever ending
1880 up with two frames with the same id in the frame chain. */
1881
1882static struct frame_info *
1883get_prev_frame_if_no_cycle (struct frame_info *this_frame)
1884{
1885 struct frame_info *prev_frame;
938f0e2f 1886 struct cleanup *prev_frame_cleanup;
194cca41
PA
1887
1888 prev_frame = get_prev_frame_raw (this_frame);
f245535c
PA
1889
1890 /* Don't compute the frame id of the current frame yet. Unwinding
1891 the sentinel frame can fail (e.g., if the thread is gone and we
1892 can't thus read its registers). If we let the cycle detection
1893 code below try to compute a frame ID, then an error thrown from
1894 within the frame ID computation would result in the sentinel
1895 frame as outermost frame, which is bogus. Instead, we'll compute
1896 the current frame's ID lazily in get_frame_id. Note that there's
1897 no point in doing cycle detection when there's only one frame, so
1898 nothing is lost here. */
1899 if (prev_frame->level == 0)
1900 return prev_frame;
194cca41 1901
938f0e2f
AB
1902 /* The cleanup will remove the previous frame that get_prev_frame_raw
1903 linked onto THIS_FRAME. */
1904 prev_frame_cleanup = make_cleanup (remove_prev_frame, this_frame);
194cca41 1905
938f0e2f
AB
1906 compute_frame_id (prev_frame);
1907 if (!frame_stash_add (prev_frame))
194cca41 1908 {
938f0e2f
AB
1909 /* Another frame with the same id was already in the stash. We just
1910 detected a cycle. */
1911 if (frame_debug)
1912 {
1913 fprintf_unfiltered (gdb_stdlog, "-> ");
1914 fprint_frame (gdb_stdlog, NULL);
1915 fprintf_unfiltered (gdb_stdlog, " // this frame has same ID }\n");
1916 }
1917 this_frame->stop_reason = UNWIND_SAME_ID;
1918 /* Unlink. */
1919 prev_frame->next = NULL;
1920 this_frame->prev = NULL;
1921 prev_frame = NULL;
194cca41 1922 }
938f0e2f
AB
1923
1924 discard_cleanups (prev_frame_cleanup);
1925 return prev_frame;
194cca41
PA
1926}
1927
53e8a631
AB
1928/* Helper function for get_prev_frame_always, this is called inside a
1929 TRY_CATCH block. Return the frame that called THIS_FRAME or NULL if
1930 there is no such frame. This may throw an exception. */
eb4f72c5 1931
53e8a631
AB
1932static struct frame_info *
1933get_prev_frame_always_1 (struct frame_info *this_frame)
eb4f72c5 1934{
b1bd0044 1935 struct gdbarch *gdbarch;
eb4f72c5 1936
5613d8d3 1937 gdb_assert (this_frame != NULL);
b1bd0044 1938 gdbarch = get_frame_arch (this_frame);
5613d8d3 1939
7f78e237
AC
1940 if (frame_debug)
1941 {
51d48146 1942 fprintf_unfiltered (gdb_stdlog, "{ get_prev_frame_always (this_frame=");
7f78e237
AC
1943 if (this_frame != NULL)
1944 fprintf_unfiltered (gdb_stdlog, "%d", this_frame->level);
1945 else
1946 fprintf_unfiltered (gdb_stdlog, "<NULL>");
1947 fprintf_unfiltered (gdb_stdlog, ") ");
1948 }
1949
5613d8d3
AC
1950 /* Only try to do the unwind once. */
1951 if (this_frame->prev_p)
1952 {
1953 if (frame_debug)
1954 {
1955 fprintf_unfiltered (gdb_stdlog, "-> ");
1956 fprint_frame (gdb_stdlog, this_frame->prev);
1957 fprintf_unfiltered (gdb_stdlog, " // cached \n");
1958 }
1959 return this_frame->prev;
1960 }
8fa75a5d 1961
0d254d6f
DJ
1962 /* If the frame unwinder hasn't been selected yet, we must do so
1963 before setting prev_p; otherwise the check for misbehaved
1964 sniffers will think that this frame's sniffer tried to unwind
1965 further (see frame_cleanup_after_sniffer). */
1966 if (this_frame->unwind == NULL)
9f9a8002 1967 frame_unwind_find_by_frame (this_frame, &this_frame->prologue_cache);
8fa75a5d 1968
5613d8d3 1969 this_frame->prev_p = 1;
55feb689 1970 this_frame->stop_reason = UNWIND_NO_REASON;
5613d8d3 1971
edb3359d
DJ
1972 /* If we are unwinding from an inline frame, all of the below tests
1973 were already performed when we unwound from the next non-inline
1974 frame. We must skip them, since we can not get THIS_FRAME's ID
1975 until we have unwound all the way down to the previous non-inline
1976 frame. */
1977 if (get_frame_type (this_frame) == INLINE_FRAME)
194cca41 1978 return get_prev_frame_if_no_cycle (this_frame);
edb3359d 1979
8fbca658
PA
1980 /* Check that this frame is unwindable. If it isn't, don't try to
1981 unwind to the prev frame. */
1982 this_frame->stop_reason
1983 = this_frame->unwind->stop_reason (this_frame,
1984 &this_frame->prologue_cache);
1985
1986 if (this_frame->stop_reason != UNWIND_NO_REASON)
a7300869
PA
1987 {
1988 if (frame_debug)
1989 {
1990 enum unwind_stop_reason reason = this_frame->stop_reason;
1991
1992 fprintf_unfiltered (gdb_stdlog, "-> ");
1993 fprint_frame (gdb_stdlog, NULL);
1994 fprintf_unfiltered (gdb_stdlog, " // %s }\n",
1995 frame_stop_reason_symbol_string (reason));
1996 }
1997 return NULL;
1998 }
8fbca658 1999
5613d8d3
AC
2000 /* Check that this frame's ID isn't inner to (younger, below, next)
2001 the next frame. This happens when a frame unwind goes backwards.
f06eadd9
JB
2002 This check is valid only if this frame and the next frame are NORMAL.
2003 See the comment at frame_id_inner for details. */
2004 if (get_frame_type (this_frame) == NORMAL_FRAME
2005 && this_frame->next->unwind->type == NORMAL_FRAME
da361ebd
JB
2006 && frame_id_inner (get_frame_arch (this_frame->next),
2007 get_frame_id (this_frame),
09a7aba8 2008 get_frame_id (this_frame->next)))
55feb689 2009 {
ebedcab5
JK
2010 CORE_ADDR this_pc_in_block;
2011 struct minimal_symbol *morestack_msym;
2012 const char *morestack_name = NULL;
2013
2014 /* gcc -fsplit-stack __morestack can continue the stack anywhere. */
2015 this_pc_in_block = get_frame_address_in_block (this_frame);
7cbd4a93 2016 morestack_msym = lookup_minimal_symbol_by_pc (this_pc_in_block).minsym;
ebedcab5 2017 if (morestack_msym)
efd66ac6 2018 morestack_name = MSYMBOL_LINKAGE_NAME (morestack_msym);
ebedcab5 2019 if (!morestack_name || strcmp (morestack_name, "__morestack") != 0)
55feb689 2020 {
ebedcab5
JK
2021 if (frame_debug)
2022 {
2023 fprintf_unfiltered (gdb_stdlog, "-> ");
2024 fprint_frame (gdb_stdlog, NULL);
3e43a32a
MS
2025 fprintf_unfiltered (gdb_stdlog,
2026 " // this frame ID is inner }\n");
ebedcab5
JK
2027 }
2028 this_frame->stop_reason = UNWIND_INNER_ID;
2029 return NULL;
55feb689 2030 }
55feb689 2031 }
5613d8d3 2032
e48af409
DJ
2033 /* Check that this and the next frame do not unwind the PC register
2034 to the same memory location. If they do, then even though they
2035 have different frame IDs, the new frame will be bogus; two
2036 functions can't share a register save slot for the PC. This can
2037 happen when the prologue analyzer finds a stack adjustment, but
d57df5e4
DJ
2038 no PC save.
2039
2040 This check does assume that the "PC register" is roughly a
2041 traditional PC, even if the gdbarch_unwind_pc method adjusts
2042 it (we do not rely on the value, only on the unwound PC being
2043 dependent on this value). A potential improvement would be
2044 to have the frame prev_pc method and the gdbarch unwind_pc
2045 method set the same lval and location information as
2046 frame_register_unwind. */
e48af409 2047 if (this_frame->level > 0
b1bd0044 2048 && gdbarch_pc_regnum (gdbarch) >= 0
e48af409 2049 && get_frame_type (this_frame) == NORMAL_FRAME
edb3359d
DJ
2050 && (get_frame_type (this_frame->next) == NORMAL_FRAME
2051 || get_frame_type (this_frame->next) == INLINE_FRAME))
e48af409 2052 {
32276632 2053 int optimized, realnum, nrealnum;
e48af409
DJ
2054 enum lval_type lval, nlval;
2055 CORE_ADDR addr, naddr;
2056
3e8c568d 2057 frame_register_unwind_location (this_frame,
b1bd0044 2058 gdbarch_pc_regnum (gdbarch),
3e8c568d
UW
2059 &optimized, &lval, &addr, &realnum);
2060 frame_register_unwind_location (get_next_frame (this_frame),
b1bd0044 2061 gdbarch_pc_regnum (gdbarch),
32276632 2062 &optimized, &nlval, &naddr, &nrealnum);
e48af409 2063
32276632
DJ
2064 if ((lval == lval_memory && lval == nlval && addr == naddr)
2065 || (lval == lval_register && lval == nlval && realnum == nrealnum))
e48af409
DJ
2066 {
2067 if (frame_debug)
2068 {
2069 fprintf_unfiltered (gdb_stdlog, "-> ");
2070 fprint_frame (gdb_stdlog, NULL);
2071 fprintf_unfiltered (gdb_stdlog, " // no saved PC }\n");
2072 }
2073
2074 this_frame->stop_reason = UNWIND_NO_SAVED_PC;
2075 this_frame->prev = NULL;
2076 return NULL;
2077 }
2078 }
2079
194cca41 2080 return get_prev_frame_if_no_cycle (this_frame);
edb3359d
DJ
2081}
2082
53e8a631
AB
2083/* Return a "struct frame_info" corresponding to the frame that called
2084 THIS_FRAME. Returns NULL if there is no such frame.
2085
2086 Unlike get_prev_frame, this function always tries to unwind the
2087 frame. */
2088
2089struct frame_info *
2090get_prev_frame_always (struct frame_info *this_frame)
2091{
53e8a631
AB
2092 struct frame_info *prev_frame = NULL;
2093
492d29ea 2094 TRY
53e8a631
AB
2095 {
2096 prev_frame = get_prev_frame_always_1 (this_frame);
2097 }
492d29ea 2098 CATCH (ex, RETURN_MASK_ERROR)
53e8a631
AB
2099 {
2100 if (ex.error == MEMORY_ERROR)
2101 {
2102 this_frame->stop_reason = UNWIND_MEMORY_ERROR;
2103 if (ex.message != NULL)
2104 {
2105 char *stop_string;
2106 size_t size;
2107
2108 /* The error needs to live as long as the frame does.
2109 Allocate using stack local STOP_STRING then assign the
2110 pointer to the frame, this allows the STOP_STRING on the
2111 frame to be of type 'const char *'. */
2112 size = strlen (ex.message) + 1;
224c3ddb 2113 stop_string = (char *) frame_obstack_zalloc (size);
53e8a631
AB
2114 memcpy (stop_string, ex.message, size);
2115 this_frame->stop_string = stop_string;
2116 }
2117 prev_frame = NULL;
2118 }
2119 else
2120 throw_exception (ex);
2121 }
492d29ea 2122 END_CATCH
53e8a631
AB
2123
2124 return prev_frame;
2125}
2126
edb3359d
DJ
2127/* Construct a new "struct frame_info" and link it previous to
2128 this_frame. */
2129
2130static struct frame_info *
2131get_prev_frame_raw (struct frame_info *this_frame)
2132{
2133 struct frame_info *prev_frame;
2134
5613d8d3
AC
2135 /* Allocate the new frame but do not wire it in to the frame chain.
2136 Some (bad) code in INIT_FRAME_EXTRA_INFO tries to look along
2137 frame->next to pull some fancy tricks (of course such code is, by
2138 definition, recursive). Try to prevent it.
2139
2140 There is no reason to worry about memory leaks, should the
2141 remainder of the function fail. The allocated memory will be
2142 quickly reclaimed when the frame cache is flushed, and the `we've
2143 been here before' check above will stop repeated memory
2144 allocation calls. */
2145 prev_frame = FRAME_OBSTACK_ZALLOC (struct frame_info);
2146 prev_frame->level = this_frame->level + 1;
2147
6c95b8df
PA
2148 /* For now, assume we don't have frame chains crossing address
2149 spaces. */
2150 prev_frame->pspace = this_frame->pspace;
2151 prev_frame->aspace = this_frame->aspace;
2152
5613d8d3
AC
2153 /* Don't yet compute ->unwind (and hence ->type). It is computed
2154 on-demand in get_frame_type, frame_register_unwind, and
2155 get_frame_id. */
2156
2157 /* Don't yet compute the frame's ID. It is computed on-demand by
2158 get_frame_id(). */
2159
2160 /* The unwound frame ID is validate at the start of this function,
2161 as part of the logic to decide if that frame should be further
2162 unwound, and not here while the prev frame is being created.
2163 Doing this makes it possible for the user to examine a frame that
2164 has an invalid frame ID.
2165
2166 Some very old VAX code noted: [...] For the sake of argument,
2167 suppose that the stack is somewhat trashed (which is one reason
2168 that "info frame" exists). So, return 0 (indicating we don't
2169 know the address of the arglist) if we don't know what frame this
2170 frame calls. */
2171
2172 /* Link it in. */
2173 this_frame->prev = prev_frame;
2174 prev_frame->next = this_frame;
2175
2176 if (frame_debug)
2177 {
2178 fprintf_unfiltered (gdb_stdlog, "-> ");
2179 fprint_frame (gdb_stdlog, prev_frame);
2180 fprintf_unfiltered (gdb_stdlog, " }\n");
2181 }
2182
2183 return prev_frame;
2184}
2185
2186/* Debug routine to print a NULL frame being returned. */
2187
2188static void
d2bf72c0 2189frame_debug_got_null_frame (struct frame_info *this_frame,
5613d8d3
AC
2190 const char *reason)
2191{
2192 if (frame_debug)
2193 {
2194 fprintf_unfiltered (gdb_stdlog, "{ get_prev_frame (this_frame=");
2195 if (this_frame != NULL)
2196 fprintf_unfiltered (gdb_stdlog, "%d", this_frame->level);
2197 else
2198 fprintf_unfiltered (gdb_stdlog, "<NULL>");
2199 fprintf_unfiltered (gdb_stdlog, ") -> // %s}\n", reason);
2200 }
2201}
2202
c8cd9f6c
AC
2203/* Is this (non-sentinel) frame in the "main"() function? */
2204
2205static int
2206inside_main_func (struct frame_info *this_frame)
2207{
3b7344d5 2208 struct bound_minimal_symbol msymbol;
c8cd9f6c
AC
2209 CORE_ADDR maddr;
2210
2211 if (symfile_objfile == 0)
2212 return 0;
2213 msymbol = lookup_minimal_symbol (main_name (), NULL, symfile_objfile);
3b7344d5 2214 if (msymbol.minsym == NULL)
c8cd9f6c
AC
2215 return 0;
2216 /* Make certain that the code, and not descriptor, address is
2217 returned. */
b1bd0044 2218 maddr = gdbarch_convert_from_func_ptr_addr (get_frame_arch (this_frame),
77e371c0 2219 BMSYMBOL_VALUE_ADDRESS (msymbol),
c8cd9f6c
AC
2220 &current_target);
2221 return maddr == get_frame_func (this_frame);
2222}
2223
2315ffec
RC
2224/* Test whether THIS_FRAME is inside the process entry point function. */
2225
2226static int
2227inside_entry_func (struct frame_info *this_frame)
2228{
abd0a5fa
JK
2229 CORE_ADDR entry_point;
2230
2231 if (!entry_point_address_query (&entry_point))
2232 return 0;
2233
2234 return get_frame_func (this_frame) == entry_point;
2315ffec
RC
2235}
2236
5613d8d3
AC
2237/* Return a structure containing various interesting information about
2238 the frame that called THIS_FRAME. Returns NULL if there is entier
2239 no such frame or the frame fails any of a set of target-independent
2240 condition that should terminate the frame chain (e.g., as unwinding
2241 past main()).
2242
2243 This function should not contain target-dependent tests, such as
2244 checking whether the program-counter is zero. */
2245
2246struct frame_info *
2247get_prev_frame (struct frame_info *this_frame)
2248{
e3eebbd7
PA
2249 CORE_ADDR frame_pc;
2250 int frame_pc_p;
2251
eb4f72c5
AC
2252 /* There is always a frame. If this assertion fails, suspect that
2253 something should be calling get_selected_frame() or
2254 get_current_frame(). */
03febf99 2255 gdb_assert (this_frame != NULL);
256ae5db
KB
2256
2257 /* If this_frame is the current frame, then compute and stash
2258 its frame id prior to fetching and computing the frame id of the
2259 previous frame. Otherwise, the cycle detection code in
2260 get_prev_frame_if_no_cycle() will not work correctly. When
2261 get_frame_id() is called later on, an assertion error will
2262 be triggered in the event of a cycle between the current
2263 frame and its previous frame. */
2264 if (this_frame->level == 0)
2265 get_frame_id (this_frame);
2266
e3eebbd7 2267 frame_pc_p = get_frame_pc_if_available (this_frame, &frame_pc);
eb4f72c5 2268
cc9bed83
RC
2269 /* tausq/2004-12-07: Dummy frames are skipped because it doesn't make much
2270 sense to stop unwinding at a dummy frame. One place where a dummy
2271 frame may have an address "inside_main_func" is on HPUX. On HPUX, the
2272 pcsqh register (space register for the instruction at the head of the
2273 instruction queue) cannot be written directly; the only way to set it
2274 is to branch to code that is in the target space. In order to implement
2275 frame dummies on HPUX, the called function is made to jump back to where
2276 the inferior was when the user function was called. If gdb was inside
2277 the main function when we created the dummy frame, the dummy frame will
2278 point inside the main function. */
03febf99 2279 if (this_frame->level >= 0
edb3359d 2280 && get_frame_type (this_frame) == NORMAL_FRAME
25d29d70 2281 && !backtrace_past_main
e3eebbd7 2282 && frame_pc_p
c8cd9f6c
AC
2283 && inside_main_func (this_frame))
2284 /* Don't unwind past main(). Note, this is done _before_ the
2285 frame has been marked as previously unwound. That way if the
2286 user later decides to enable unwinds past main(), that will
2287 automatically happen. */
ac2bd0a9 2288 {
d2bf72c0 2289 frame_debug_got_null_frame (this_frame, "inside main func");
ac2bd0a9
AC
2290 return NULL;
2291 }
eb4f72c5 2292
4a5e53e8
DJ
2293 /* If the user's backtrace limit has been exceeded, stop. We must
2294 add two to the current level; one of those accounts for backtrace_limit
2295 being 1-based and the level being 0-based, and the other accounts for
2296 the level of the new frame instead of the level of the current
2297 frame. */
2298 if (this_frame->level + 2 > backtrace_limit)
25d29d70 2299 {
d2bf72c0 2300 frame_debug_got_null_frame (this_frame, "backtrace limit exceeded");
4a5e53e8 2301 return NULL;
25d29d70
AC
2302 }
2303
0714963c
AC
2304 /* If we're already inside the entry function for the main objfile,
2305 then it isn't valid. Don't apply this test to a dummy frame -
bbde78fa 2306 dummy frame PCs typically land in the entry func. Don't apply
0714963c
AC
2307 this test to the sentinel frame. Sentinel frames should always
2308 be allowed to unwind. */
2f72f850
AC
2309 /* NOTE: cagney/2003-07-07: Fixed a bug in inside_main_func() -
2310 wasn't checking for "main" in the minimal symbols. With that
2311 fixed asm-source tests now stop in "main" instead of halting the
bbde78fa 2312 backtrace in weird and wonderful ways somewhere inside the entry
2f72f850
AC
2313 file. Suspect that tests for inside the entry file/func were
2314 added to work around that (now fixed) case. */
0714963c
AC
2315 /* NOTE: cagney/2003-07-15: danielj (if I'm reading it right)
2316 suggested having the inside_entry_func test use the
bbde78fa
JM
2317 inside_main_func() msymbol trick (along with entry_point_address()
2318 I guess) to determine the address range of the start function.
0714963c
AC
2319 That should provide a far better stopper than the current
2320 heuristics. */
2315ffec
RC
2321 /* NOTE: tausq/2004-10-09: this is needed if, for example, the compiler
2322 applied tail-call optimizations to main so that a function called
2323 from main returns directly to the caller of main. Since we don't
2324 stop at main, we should at least stop at the entry point of the
2325 application. */
edb3359d
DJ
2326 if (this_frame->level >= 0
2327 && get_frame_type (this_frame) == NORMAL_FRAME
2328 && !backtrace_past_entry
e3eebbd7 2329 && frame_pc_p
6e4c6c91 2330 && inside_entry_func (this_frame))
0714963c 2331 {
d2bf72c0 2332 frame_debug_got_null_frame (this_frame, "inside entry func");
0714963c
AC
2333 return NULL;
2334 }
2335
39ee2ff0
AC
2336 /* Assume that the only way to get a zero PC is through something
2337 like a SIGSEGV or a dummy frame, and hence that NORMAL frames
2338 will never unwind a zero PC. */
2339 if (this_frame->level > 0
edb3359d
DJ
2340 && (get_frame_type (this_frame) == NORMAL_FRAME
2341 || get_frame_type (this_frame) == INLINE_FRAME)
39ee2ff0 2342 && get_frame_type (get_next_frame (this_frame)) == NORMAL_FRAME
e3eebbd7 2343 && frame_pc_p && frame_pc == 0)
39ee2ff0 2344 {
d2bf72c0 2345 frame_debug_got_null_frame (this_frame, "zero PC");
39ee2ff0
AC
2346 return NULL;
2347 }
2348
51d48146 2349 return get_prev_frame_always (this_frame);
eb4f72c5
AC
2350}
2351
41b56feb
KB
2352struct frame_id
2353get_prev_frame_id_by_id (struct frame_id id)
2354{
2355 struct frame_id prev_id;
2356 struct frame_info *frame;
2357
2358 frame = frame_find_by_id (id);
2359
2360 if (frame != NULL)
2361 prev_id = get_frame_id (get_prev_frame (frame));
2362 else
2363 prev_id = null_frame_id;
2364
2365 return prev_id;
2366}
2367
4c1e7e9d
AC
2368CORE_ADDR
2369get_frame_pc (struct frame_info *frame)
2370{
d1340264 2371 gdb_assert (frame->next != NULL);
edb3359d 2372 return frame_unwind_pc (frame->next);
4c1e7e9d
AC
2373}
2374
e3eebbd7
PA
2375int
2376get_frame_pc_if_available (struct frame_info *frame, CORE_ADDR *pc)
2377{
e3eebbd7
PA
2378
2379 gdb_assert (frame->next != NULL);
2380
492d29ea 2381 TRY
e3eebbd7
PA
2382 {
2383 *pc = frame_unwind_pc (frame->next);
2384 }
492d29ea 2385 CATCH (ex, RETURN_MASK_ERROR)
e3eebbd7
PA
2386 {
2387 if (ex.error == NOT_AVAILABLE_ERROR)
2388 return 0;
2389 else
2390 throw_exception (ex);
2391 }
492d29ea 2392 END_CATCH
e3eebbd7
PA
2393
2394 return 1;
2395}
2396
ad1193e7 2397/* Return an address that falls within THIS_FRAME's code block. */
8edd5d01
AC
2398
2399CORE_ADDR
ad1193e7 2400get_frame_address_in_block (struct frame_info *this_frame)
8edd5d01
AC
2401{
2402 /* A draft address. */
ad1193e7 2403 CORE_ADDR pc = get_frame_pc (this_frame);
8edd5d01 2404
ad1193e7
DJ
2405 struct frame_info *next_frame = this_frame->next;
2406
2407 /* Calling get_frame_pc returns the resume address for THIS_FRAME.
2408 Normally the resume address is inside the body of the function
2409 associated with THIS_FRAME, but there is a special case: when
2410 calling a function which the compiler knows will never return
2411 (for instance abort), the call may be the very last instruction
2412 in the calling function. The resume address will point after the
2413 call and may be at the beginning of a different function
2414 entirely.
2415
2416 If THIS_FRAME is a signal frame or dummy frame, then we should
2417 not adjust the unwound PC. For a dummy frame, GDB pushed the
2418 resume address manually onto the stack. For a signal frame, the
2419 OS may have pushed the resume address manually and invoked the
2420 handler (e.g. GNU/Linux), or invoked the trampoline which called
2421 the signal handler - but in either case the signal handler is
2422 expected to return to the trampoline. So in both of these
2423 cases we know that the resume address is executable and
2424 related. So we only need to adjust the PC if THIS_FRAME
2425 is a normal function.
2426
2427 If the program has been interrupted while THIS_FRAME is current,
2428 then clearly the resume address is inside the associated
2429 function. There are three kinds of interruption: debugger stop
2430 (next frame will be SENTINEL_FRAME), operating system
2431 signal or exception (next frame will be SIGTRAMP_FRAME),
2432 or debugger-induced function call (next frame will be
2433 DUMMY_FRAME). So we only need to adjust the PC if
2434 NEXT_FRAME is a normal function.
2435
2436 We check the type of NEXT_FRAME first, since it is already
2437 known; frame type is determined by the unwinder, and since
2438 we have THIS_FRAME we've already selected an unwinder for
edb3359d
DJ
2439 NEXT_FRAME.
2440
2441 If the next frame is inlined, we need to keep going until we find
2442 the real function - for instance, if a signal handler is invoked
2443 while in an inlined function, then the code address of the
2444 "calling" normal function should not be adjusted either. */
2445
2446 while (get_frame_type (next_frame) == INLINE_FRAME)
2447 next_frame = next_frame->next;
2448
111c6489
JK
2449 if ((get_frame_type (next_frame) == NORMAL_FRAME
2450 || get_frame_type (next_frame) == TAILCALL_FRAME)
edb3359d 2451 && (get_frame_type (this_frame) == NORMAL_FRAME
111c6489 2452 || get_frame_type (this_frame) == TAILCALL_FRAME
edb3359d 2453 || get_frame_type (this_frame) == INLINE_FRAME))
ad1193e7
DJ
2454 return pc - 1;
2455
2456 return pc;
8edd5d01
AC
2457}
2458
e3eebbd7
PA
2459int
2460get_frame_address_in_block_if_available (struct frame_info *this_frame,
2461 CORE_ADDR *pc)
2462{
e3eebbd7 2463
492d29ea 2464 TRY
e3eebbd7
PA
2465 {
2466 *pc = get_frame_address_in_block (this_frame);
2467 }
492d29ea 2468 CATCH (ex, RETURN_MASK_ERROR)
7556d4a4
PA
2469 {
2470 if (ex.error == NOT_AVAILABLE_ERROR)
2471 return 0;
2472 throw_exception (ex);
2473 }
492d29ea 2474 END_CATCH
7556d4a4
PA
2475
2476 return 1;
e3eebbd7
PA
2477}
2478
51abb421
PA
2479symtab_and_line
2480find_frame_sal (frame_info *frame)
1058bca7 2481{
edb3359d
DJ
2482 struct frame_info *next_frame;
2483 int notcurrent;
e3eebbd7 2484 CORE_ADDR pc;
edb3359d
DJ
2485
2486 /* If the next frame represents an inlined function call, this frame's
2487 sal is the "call site" of that inlined function, which can not
2488 be inferred from get_frame_pc. */
2489 next_frame = get_next_frame (frame);
2490 if (frame_inlined_callees (frame) > 0)
2491 {
2492 struct symbol *sym;
2493
2494 if (next_frame)
2495 sym = get_frame_function (next_frame);
2496 else
2497 sym = inline_skipped_symbol (inferior_ptid);
2498
f3df5b08
MS
2499 /* If frame is inline, it certainly has symbols. */
2500 gdb_assert (sym);
51abb421
PA
2501
2502 symtab_and_line sal;
edb3359d
DJ
2503 if (SYMBOL_LINE (sym) != 0)
2504 {
51abb421
PA
2505 sal.symtab = symbol_symtab (sym);
2506 sal.line = SYMBOL_LINE (sym);
edb3359d
DJ
2507 }
2508 else
2509 /* If the symbol does not have a location, we don't know where
2510 the call site is. Do not pretend to. This is jarring, but
2511 we can't do much better. */
51abb421 2512 sal.pc = get_frame_pc (frame);
edb3359d 2513
51abb421
PA
2514 sal.pspace = get_frame_program_space (frame);
2515 return sal;
edb3359d
DJ
2516 }
2517
1058bca7
AC
2518 /* If FRAME is not the innermost frame, that normally means that
2519 FRAME->pc points at the return instruction (which is *after* the
2520 call instruction), and we want to get the line containing the
2521 call (because the call is where the user thinks the program is).
2522 However, if the next frame is either a SIGTRAMP_FRAME or a
2523 DUMMY_FRAME, then the next frame will contain a saved interrupt
2524 PC and such a PC indicates the current (rather than next)
2525 instruction/line, consequently, for such cases, want to get the
2526 line containing fi->pc. */
e3eebbd7 2527 if (!get_frame_pc_if_available (frame, &pc))
51abb421 2528 return {};
e3eebbd7
PA
2529
2530 notcurrent = (pc != get_frame_address_in_block (frame));
51abb421 2531 return find_pc_line (pc, notcurrent);
1058bca7
AC
2532}
2533
c193f6ac
AC
2534/* Per "frame.h", return the ``address'' of the frame. Code should
2535 really be using get_frame_id(). */
2536CORE_ADDR
2537get_frame_base (struct frame_info *fi)
2538{
d0a55772 2539 return get_frame_id (fi).stack_addr;
c193f6ac
AC
2540}
2541
da62e633
AC
2542/* High-level offsets into the frame. Used by the debug info. */
2543
2544CORE_ADDR
2545get_frame_base_address (struct frame_info *fi)
2546{
7df05f2b 2547 if (get_frame_type (fi) != NORMAL_FRAME)
da62e633
AC
2548 return 0;
2549 if (fi->base == NULL)
86c31399 2550 fi->base = frame_base_find_by_frame (fi);
da62e633
AC
2551 /* Sneaky: If the low-level unwind and high-level base code share a
2552 common unwinder, let them share the prologue cache. */
2553 if (fi->base->unwind == fi->unwind)
669fac23
DJ
2554 return fi->base->this_base (fi, &fi->prologue_cache);
2555 return fi->base->this_base (fi, &fi->base_cache);
da62e633
AC
2556}
2557
2558CORE_ADDR
2559get_frame_locals_address (struct frame_info *fi)
2560{
7df05f2b 2561 if (get_frame_type (fi) != NORMAL_FRAME)
da62e633
AC
2562 return 0;
2563 /* If there isn't a frame address method, find it. */
2564 if (fi->base == NULL)
86c31399 2565 fi->base = frame_base_find_by_frame (fi);
da62e633
AC
2566 /* Sneaky: If the low-level unwind and high-level base code share a
2567 common unwinder, let them share the prologue cache. */
2568 if (fi->base->unwind == fi->unwind)
669fac23
DJ
2569 return fi->base->this_locals (fi, &fi->prologue_cache);
2570 return fi->base->this_locals (fi, &fi->base_cache);
da62e633
AC
2571}
2572
2573CORE_ADDR
2574get_frame_args_address (struct frame_info *fi)
2575{
7df05f2b 2576 if (get_frame_type (fi) != NORMAL_FRAME)
da62e633
AC
2577 return 0;
2578 /* If there isn't a frame address method, find it. */
2579 if (fi->base == NULL)
86c31399 2580 fi->base = frame_base_find_by_frame (fi);
da62e633
AC
2581 /* Sneaky: If the low-level unwind and high-level base code share a
2582 common unwinder, let them share the prologue cache. */
2583 if (fi->base->unwind == fi->unwind)
669fac23
DJ
2584 return fi->base->this_args (fi, &fi->prologue_cache);
2585 return fi->base->this_args (fi, &fi->base_cache);
da62e633
AC
2586}
2587
e7802207
TT
2588/* Return true if the frame unwinder for frame FI is UNWINDER; false
2589 otherwise. */
2590
2591int
2592frame_unwinder_is (struct frame_info *fi, const struct frame_unwind *unwinder)
2593{
2594 if (fi->unwind == NULL)
9f9a8002 2595 frame_unwind_find_by_frame (fi, &fi->prologue_cache);
e7802207
TT
2596 return fi->unwind == unwinder;
2597}
2598
85cf597a
AC
2599/* Level of the selected frame: 0 for innermost, 1 for its caller, ...
2600 or -1 for a NULL frame. */
2601
2602int
2603frame_relative_level (struct frame_info *fi)
2604{
2605 if (fi == NULL)
2606 return -1;
2607 else
2608 return fi->level;
2609}
2610
5a203e44
AC
2611enum frame_type
2612get_frame_type (struct frame_info *frame)
2613{
c1bf6f65
AC
2614 if (frame->unwind == NULL)
2615 /* Initialize the frame's unwinder because that's what
2616 provides the frame's type. */
9f9a8002 2617 frame_unwind_find_by_frame (frame, &frame->prologue_cache);
c1bf6f65 2618 return frame->unwind->type;
5a203e44
AC
2619}
2620
6c95b8df
PA
2621struct program_space *
2622get_frame_program_space (struct frame_info *frame)
2623{
2624 return frame->pspace;
2625}
2626
2627struct program_space *
2628frame_unwind_program_space (struct frame_info *this_frame)
2629{
2630 gdb_assert (this_frame);
2631
2632 /* This is really a placeholder to keep the API consistent --- we
2633 assume for now that we don't have frame chains crossing
2634 spaces. */
2635 return this_frame->pspace;
2636}
2637
8b86c959 2638const address_space *
6c95b8df
PA
2639get_frame_address_space (struct frame_info *frame)
2640{
2641 return frame->aspace;
2642}
2643
ae1e7417
AC
2644/* Memory access methods. */
2645
2646void
10c42a71
AC
2647get_frame_memory (struct frame_info *this_frame, CORE_ADDR addr,
2648 gdb_byte *buf, int len)
ae1e7417
AC
2649{
2650 read_memory (addr, buf, len);
2651}
2652
2653LONGEST
2654get_frame_memory_signed (struct frame_info *this_frame, CORE_ADDR addr,
2655 int len)
2656{
e17a4113
UW
2657 struct gdbarch *gdbarch = get_frame_arch (this_frame);
2658 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1c4d3f96 2659
e17a4113 2660 return read_memory_integer (addr, len, byte_order);
ae1e7417
AC
2661}
2662
2663ULONGEST
2664get_frame_memory_unsigned (struct frame_info *this_frame, CORE_ADDR addr,
2665 int len)
2666{
e17a4113
UW
2667 struct gdbarch *gdbarch = get_frame_arch (this_frame);
2668 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1c4d3f96 2669
e17a4113 2670 return read_memory_unsigned_integer (addr, len, byte_order);
ae1e7417
AC
2671}
2672
304396fb
AC
2673int
2674safe_frame_unwind_memory (struct frame_info *this_frame,
10c42a71 2675 CORE_ADDR addr, gdb_byte *buf, int len)
304396fb 2676{
8defab1a
DJ
2677 /* NOTE: target_read_memory returns zero on success! */
2678 return !target_read_memory (addr, buf, len);
304396fb
AC
2679}
2680
36f15f55 2681/* Architecture methods. */
ae1e7417
AC
2682
2683struct gdbarch *
2684get_frame_arch (struct frame_info *this_frame)
2685{
36f15f55
UW
2686 return frame_unwind_arch (this_frame->next);
2687}
2688
2689struct gdbarch *
2690frame_unwind_arch (struct frame_info *next_frame)
2691{
2692 if (!next_frame->prev_arch.p)
2693 {
2694 struct gdbarch *arch;
0701b271 2695
36f15f55 2696 if (next_frame->unwind == NULL)
9f9a8002 2697 frame_unwind_find_by_frame (next_frame, &next_frame->prologue_cache);
36f15f55
UW
2698
2699 if (next_frame->unwind->prev_arch != NULL)
2700 arch = next_frame->unwind->prev_arch (next_frame,
2701 &next_frame->prologue_cache);
2702 else
2703 arch = get_frame_arch (next_frame);
2704
2705 next_frame->prev_arch.arch = arch;
2706 next_frame->prev_arch.p = 1;
2707 if (frame_debug)
2708 fprintf_unfiltered (gdb_stdlog,
2709 "{ frame_unwind_arch (next_frame=%d) -> %s }\n",
2710 next_frame->level,
2711 gdbarch_bfd_arch_info (arch)->printable_name);
2712 }
2713
2714 return next_frame->prev_arch.arch;
2715}
2716
2717struct gdbarch *
2718frame_unwind_caller_arch (struct frame_info *next_frame)
2719{
33b4777c
MM
2720 next_frame = skip_artificial_frames (next_frame);
2721
2722 /* We must have a non-artificial frame. The caller is supposed to check
2723 the result of frame_unwind_caller_id (), which returns NULL_FRAME_ID
2724 in this case. */
2725 gdb_assert (next_frame != NULL);
2726
2727 return frame_unwind_arch (next_frame);
ae1e7417
AC
2728}
2729
06096720
AB
2730/* Gets the language of FRAME. */
2731
2732enum language
2733get_frame_language (struct frame_info *frame)
2734{
2735 CORE_ADDR pc = 0;
2736 int pc_p = 0;
2737
2738 gdb_assert (frame!= NULL);
2739
2740 /* We determine the current frame language by looking up its
2741 associated symtab. To retrieve this symtab, we use the frame
2742 PC. However we cannot use the frame PC as is, because it
2743 usually points to the instruction following the "call", which
2744 is sometimes the first instruction of another function. So
2745 we rely on get_frame_address_in_block(), it provides us with
2746 a PC that is guaranteed to be inside the frame's code
2747 block. */
2748
2749 TRY
2750 {
2751 pc = get_frame_address_in_block (frame);
2752 pc_p = 1;
2753 }
2754 CATCH (ex, RETURN_MASK_ERROR)
2755 {
2756 if (ex.error != NOT_AVAILABLE_ERROR)
2757 throw_exception (ex);
2758 }
2759 END_CATCH
2760
2761 if (pc_p)
2762 {
2763 struct compunit_symtab *cust = find_pc_compunit_symtab (pc);
2764
2765 if (cust != NULL)
2766 return compunit_language (cust);
2767 }
2768
2769 return language_unknown;
2770}
2771
a9e5fdc2
AC
2772/* Stack pointer methods. */
2773
2774CORE_ADDR
2775get_frame_sp (struct frame_info *this_frame)
2776{
d56907c1 2777 struct gdbarch *gdbarch = get_frame_arch (this_frame);
1c4d3f96 2778
bbde78fa 2779 /* Normality - an architecture that provides a way of obtaining any
a9e5fdc2 2780 frame inner-most address. */
b1bd0044 2781 if (gdbarch_unwind_sp_p (gdbarch))
d56907c1
DJ
2782 /* NOTE drow/2008-06-28: gdbarch_unwind_sp could be converted to
2783 operate on THIS_FRAME now. */
2784 return gdbarch_unwind_sp (gdbarch, this_frame->next);
a9e5fdc2 2785 /* Now things are really are grim. Hope that the value returned by
3e8c568d 2786 the gdbarch_sp_regnum register is meaningful. */
b1bd0044 2787 if (gdbarch_sp_regnum (gdbarch) >= 0)
d56907c1
DJ
2788 return get_frame_register_unsigned (this_frame,
2789 gdbarch_sp_regnum (gdbarch));
e2e0b3e5 2790 internal_error (__FILE__, __LINE__, _("Missing unwind SP method"));
a9e5fdc2
AC
2791}
2792
55feb689
DJ
2793/* Return the reason why we can't unwind past FRAME. */
2794
2795enum unwind_stop_reason
2796get_frame_unwind_stop_reason (struct frame_info *frame)
2797{
824344ca 2798 /* Fill-in STOP_REASON. */
51d48146 2799 get_prev_frame_always (frame);
824344ca 2800 gdb_assert (frame->prev_p);
55feb689 2801
55feb689
DJ
2802 return frame->stop_reason;
2803}
2804
2805/* Return a string explaining REASON. */
2806
2807const char *
70e38b8e 2808unwind_stop_reason_to_string (enum unwind_stop_reason reason)
55feb689
DJ
2809{
2810 switch (reason)
2811 {
2231f1fb
KP
2812#define SET(name, description) \
2813 case name: return _(description);
2814#include "unwind_stop_reasons.def"
2815#undef SET
55feb689 2816
55feb689
DJ
2817 default:
2818 internal_error (__FILE__, __LINE__,
2819 "Invalid frame stop reason");
2820 }
2821}
2822
53e8a631
AB
2823const char *
2824frame_stop_reason_string (struct frame_info *fi)
2825{
2826 gdb_assert (fi->prev_p);
2827 gdb_assert (fi->prev == NULL);
2828
2829 /* Return the specific string if we have one. */
2830 if (fi->stop_string != NULL)
2831 return fi->stop_string;
2832
2833 /* Return the generic string if we have nothing better. */
2834 return unwind_stop_reason_to_string (fi->stop_reason);
2835}
2836
a7300869
PA
2837/* Return the enum symbol name of REASON as a string, to use in debug
2838 output. */
2839
2840static const char *
2841frame_stop_reason_symbol_string (enum unwind_stop_reason reason)
2842{
2843 switch (reason)
2844 {
2845#define SET(name, description) \
2846 case name: return #name;
2847#include "unwind_stop_reasons.def"
2848#undef SET
2849
2850 default:
2851 internal_error (__FILE__, __LINE__,
2852 "Invalid frame stop reason");
2853 }
2854}
2855
669fac23
DJ
2856/* Clean up after a failed (wrong unwinder) attempt to unwind past
2857 FRAME. */
2858
30a9c02f
TT
2859void
2860frame_cleanup_after_sniffer (struct frame_info *frame)
669fac23 2861{
669fac23
DJ
2862 /* The sniffer should not allocate a prologue cache if it did not
2863 match this frame. */
2864 gdb_assert (frame->prologue_cache == NULL);
2865
2866 /* No sniffer should extend the frame chain; sniff based on what is
2867 already certain. */
2868 gdb_assert (!frame->prev_p);
2869
2870 /* The sniffer should not check the frame's ID; that's circular. */
2871 gdb_assert (!frame->this_id.p);
2872
2873 /* Clear cached fields dependent on the unwinder.
2874
2875 The previous PC is independent of the unwinder, but the previous
ad1193e7 2876 function is not (see get_frame_address_in_block). */
669fac23
DJ
2877 frame->prev_func.p = 0;
2878 frame->prev_func.addr = 0;
2879
2880 /* Discard the unwinder last, so that we can easily find it if an assertion
2881 in this function triggers. */
2882 frame->unwind = NULL;
2883}
2884
2885/* Set FRAME's unwinder temporarily, so that we can call a sniffer.
30a9c02f
TT
2886 If sniffing fails, the caller should be sure to call
2887 frame_cleanup_after_sniffer. */
669fac23 2888
30a9c02f 2889void
669fac23
DJ
2890frame_prepare_for_sniffer (struct frame_info *frame,
2891 const struct frame_unwind *unwind)
2892{
2893 gdb_assert (frame->unwind == NULL);
2894 frame->unwind = unwind;
669fac23
DJ
2895}
2896
25d29d70
AC
2897static struct cmd_list_element *set_backtrace_cmdlist;
2898static struct cmd_list_element *show_backtrace_cmdlist;
2899
2900static void
981a3fb3 2901set_backtrace_cmd (const char *args, int from_tty)
25d29d70 2902{
635c7e8a
TT
2903 help_list (set_backtrace_cmdlist, "set backtrace ", all_commands,
2904 gdb_stdout);
25d29d70
AC
2905}
2906
2907static void
981a3fb3 2908show_backtrace_cmd (const char *args, int from_tty)
25d29d70
AC
2909{
2910 cmd_show_list (show_backtrace_cmdlist, from_tty, "");
2911}
2912
4c1e7e9d
AC
2913void
2914_initialize_frame (void)
2915{
2916 obstack_init (&frame_cache_obstack);
eb4f72c5 2917
3de661e6
PM
2918 frame_stash_create ();
2919
76727919 2920 gdb::observers::target_changed.attach (frame_observer_target_changed);
f4c5303c 2921
1bedd215 2922 add_prefix_cmd ("backtrace", class_maintenance, set_backtrace_cmd, _("\
25d29d70 2923Set backtrace specific variables.\n\
1bedd215 2924Configure backtrace variables such as the backtrace limit"),
25d29d70
AC
2925 &set_backtrace_cmdlist, "set backtrace ",
2926 0/*allow-unknown*/, &setlist);
1bedd215 2927 add_prefix_cmd ("backtrace", class_maintenance, show_backtrace_cmd, _("\
25d29d70 2928Show backtrace specific variables\n\
1bedd215 2929Show backtrace variables such as the backtrace limit"),
25d29d70
AC
2930 &show_backtrace_cmdlist, "show backtrace ",
2931 0/*allow-unknown*/, &showlist);
2932
2933 add_setshow_boolean_cmd ("past-main", class_obscure,
7915a72c
AC
2934 &backtrace_past_main, _("\
2935Set whether backtraces should continue past \"main\"."), _("\
2936Show whether backtraces should continue past \"main\"."), _("\
eb4f72c5
AC
2937Normally the caller of \"main\" is not of interest, so GDB will terminate\n\
2938the backtrace at \"main\". Set this variable if you need to see the rest\n\
7915a72c 2939of the stack trace."),
2c5b56ce 2940 NULL,
920d2a44 2941 show_backtrace_past_main,
2c5b56ce 2942 &set_backtrace_cmdlist,
25d29d70
AC
2943 &show_backtrace_cmdlist);
2944
2315ffec 2945 add_setshow_boolean_cmd ("past-entry", class_obscure,
7915a72c
AC
2946 &backtrace_past_entry, _("\
2947Set whether backtraces should continue past the entry point of a program."),
2948 _("\
2949Show whether backtraces should continue past the entry point of a program."),
2950 _("\
2315ffec 2951Normally there are no callers beyond the entry point of a program, so GDB\n\
cce7e648 2952will terminate the backtrace there. Set this variable if you need to see\n\
7915a72c 2953the rest of the stack trace."),
2c5b56ce 2954 NULL,
920d2a44 2955 show_backtrace_past_entry,
2c5b56ce 2956 &set_backtrace_cmdlist,
2315ffec
RC
2957 &show_backtrace_cmdlist);
2958
883b9c6c
YQ
2959 add_setshow_uinteger_cmd ("limit", class_obscure,
2960 &backtrace_limit, _("\
7915a72c
AC
2961Set an upper bound on the number of backtrace levels."), _("\
2962Show the upper bound on the number of backtrace levels."), _("\
fec74868 2963No more than the specified number of frames can be displayed or examined.\n\
f81d1120 2964Literal \"unlimited\" or zero means no limit."),
883b9c6c
YQ
2965 NULL,
2966 show_backtrace_limit,
2967 &set_backtrace_cmdlist,
2968 &show_backtrace_cmdlist);
ac2bd0a9 2969
0963b4bd 2970 /* Debug this files internals. */
ccce17b0 2971 add_setshow_zuinteger_cmd ("frame", class_maintenance, &frame_debug, _("\
85c07804
AC
2972Set frame debugging."), _("\
2973Show frame debugging."), _("\
2974When non-zero, frame specific internal debugging is enabled."),
ccce17b0
YQ
2975 NULL,
2976 show_frame_debug,
2977 &setdebuglist, &showdebuglist);
4c1e7e9d 2978}
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