* dwarf2-frame.c (dwarf2_frame_cache): Update comment.
[deliverable/binutils-gdb.git] / gdb / frame.c
CommitLineData
4f460812 1/* Cache and manage frames for GDB, the GNU debugger.
96cb11df 2
6aba47ca 3 Copyright (C) 1986, 1987, 1989, 1991, 1994, 1995, 1996, 1998, 2000, 2001,
9b254dd1 4 2002, 2003, 2004, 2007, 2008 Free Software Foundation, Inc.
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5
6 This file is part of GDB.
7
8 This program is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
a9762ec7 10 the Free Software Foundation; either version 3 of the License, or
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11 (at your option) any later version.
12
13 This program is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
17
18 You should have received a copy of the GNU General Public License
a9762ec7 19 along with this program. If not, see <http://www.gnu.org/licenses/>. */
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20
21#include "defs.h"
22#include "frame.h"
23#include "target.h"
24#include "value.h"
39f77062 25#include "inferior.h" /* for inferior_ptid */
4e052eda 26#include "regcache.h"
4f460812 27#include "gdb_assert.h"
e36180d7 28#include "gdb_string.h"
eb8bc282 29#include "user-regs.h"
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30#include "gdb_obstack.h"
31#include "dummy-frame.h"
a94dd1fd 32#include "sentinel-frame.h"
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33#include "gdbcore.h"
34#include "annotate.h"
6e7f8b9c 35#include "language.h"
494cca16 36#include "frame-unwind.h"
da62e633 37#include "frame-base.h"
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38#include "command.h"
39#include "gdbcmd.h"
f4c5303c 40#include "observer.h"
c8cd9f6c 41#include "objfiles.h"
60250e8b 42#include "exceptions.h"
8ea051c5 43#include "gdbthread.h"
eb4f72c5 44
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45static struct frame_info *get_prev_frame_1 (struct frame_info *this_frame);
46
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47/* We keep a cache of stack frames, each of which is a "struct
48 frame_info". The innermost one gets allocated (in
49 wait_for_inferior) each time the inferior stops; current_frame
50 points to it. Additional frames get allocated (in get_prev_frame)
51 as needed, and are chained through the next and prev fields. Any
52 time that the frame cache becomes invalid (most notably when we
53 execute something, but also if we change how we interpret the
54 frames (e.g. "set heuristic-fence-post" in mips-tdep.c, or anything
55 which reads new symbols)), we should call reinit_frame_cache. */
56
57struct frame_info
58{
59 /* Level of this frame. The inner-most (youngest) frame is at level
60 0. As you move towards the outer-most (oldest) frame, the level
61 increases. This is a cached value. It could just as easily be
62 computed by counting back from the selected frame to the inner
63 most frame. */
bbde78fa 64 /* NOTE: cagney/2002-04-05: Perhaps a level of ``-1'' should be
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65 reserved to indicate a bogus frame - one that has been created
66 just to keep GDB happy (GDB always needs a frame). For the
67 moment leave this as speculation. */
68 int level;
69
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70 /* The frame's low-level unwinder and corresponding cache. The
71 low-level unwinder is responsible for unwinding register values
72 for the previous frame. The low-level unwind methods are
bbde78fa 73 selected based on the presence, or otherwise, of register unwind
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74 information such as CFI. */
75 void *prologue_cache;
76 const struct frame_unwind *unwind;
77
78 /* Cached copy of the previous frame's resume address. */
79 struct {
80 int p;
81 CORE_ADDR value;
82 } prev_pc;
83
84 /* Cached copy of the previous frame's function address. */
85 struct
86 {
87 CORE_ADDR addr;
88 int p;
89 } prev_func;
90
91 /* This frame's ID. */
92 struct
93 {
94 int p;
95 struct frame_id value;
96 } this_id;
97
98 /* The frame's high-level base methods, and corresponding cache.
99 The high level base methods are selected based on the frame's
100 debug info. */
101 const struct frame_base *base;
102 void *base_cache;
103
104 /* Pointers to the next (down, inner, younger) and previous (up,
105 outer, older) frame_info's in the frame cache. */
106 struct frame_info *next; /* down, inner, younger */
107 int prev_p;
108 struct frame_info *prev; /* up, outer, older */
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109
110 /* The reason why we could not set PREV, or UNWIND_NO_REASON if we
111 could. Only valid when PREV_P is set. */
112 enum unwind_stop_reason stop_reason;
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113};
114
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115/* Flag to control debugging. */
116
669fac23 117int frame_debug;
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118static void
119show_frame_debug (struct ui_file *file, int from_tty,
120 struct cmd_list_element *c, const char *value)
121{
122 fprintf_filtered (file, _("Frame debugging is %s.\n"), value);
123}
ac2bd0a9 124
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125/* Flag to indicate whether backtraces should stop at main et.al. */
126
127static int backtrace_past_main;
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128static void
129show_backtrace_past_main (struct ui_file *file, int from_tty,
130 struct cmd_list_element *c, const char *value)
131{
132 fprintf_filtered (file, _("\
133Whether backtraces should continue past \"main\" is %s.\n"),
134 value);
135}
136
2315ffec 137static int backtrace_past_entry;
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138static void
139show_backtrace_past_entry (struct ui_file *file, int from_tty,
140 struct cmd_list_element *c, const char *value)
141{
142 fprintf_filtered (file, _("\
143Whether backtraces should continue past the entry point of a program is %s.\n"),
144 value);
145}
146
4a5e53e8 147static int backtrace_limit = INT_MAX;
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AC
148static void
149show_backtrace_limit (struct ui_file *file, int from_tty,
150 struct cmd_list_element *c, const char *value)
151{
152 fprintf_filtered (file, _("\
153An upper bound on the number of backtrace levels is %s.\n"),
154 value);
155}
156
eb4f72c5 157
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158static void
159fprint_field (struct ui_file *file, const char *name, int p, CORE_ADDR addr)
160{
161 if (p)
162 fprintf_unfiltered (file, "%s=0x%s", name, paddr_nz (addr));
163 else
164 fprintf_unfiltered (file, "!%s", name);
165}
d65fe839 166
00905d52 167void
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168fprint_frame_id (struct ui_file *file, struct frame_id id)
169{
ca73dd9d
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170 fprintf_unfiltered (file, "{");
171 fprint_field (file, "stack", id.stack_addr_p, id.stack_addr);
172 fprintf_unfiltered (file, ",");
173 fprint_field (file, "code", id.code_addr_p, id.code_addr);
174 fprintf_unfiltered (file, ",");
175 fprint_field (file, "special", id.special_addr_p, id.special_addr);
176 fprintf_unfiltered (file, "}");
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177}
178
179static void
180fprint_frame_type (struct ui_file *file, enum frame_type type)
181{
182 switch (type)
183 {
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184 case NORMAL_FRAME:
185 fprintf_unfiltered (file, "NORMAL_FRAME");
186 return;
187 case DUMMY_FRAME:
188 fprintf_unfiltered (file, "DUMMY_FRAME");
189 return;
190 case SIGTRAMP_FRAME:
191 fprintf_unfiltered (file, "SIGTRAMP_FRAME");
192 return;
193 default:
194 fprintf_unfiltered (file, "<unknown type>");
195 return;
196 };
197}
198
199static void
200fprint_frame (struct ui_file *file, struct frame_info *fi)
201{
202 if (fi == NULL)
203 {
204 fprintf_unfiltered (file, "<NULL frame>");
205 return;
206 }
207 fprintf_unfiltered (file, "{");
208 fprintf_unfiltered (file, "level=%d", fi->level);
209 fprintf_unfiltered (file, ",");
210 fprintf_unfiltered (file, "type=");
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AC
211 if (fi->unwind != NULL)
212 fprint_frame_type (file, fi->unwind->type);
213 else
214 fprintf_unfiltered (file, "<unknown>");
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215 fprintf_unfiltered (file, ",");
216 fprintf_unfiltered (file, "unwind=");
217 if (fi->unwind != NULL)
218 gdb_print_host_address (fi->unwind, file);
219 else
220 fprintf_unfiltered (file, "<unknown>");
221 fprintf_unfiltered (file, ",");
222 fprintf_unfiltered (file, "pc=");
223 if (fi->next != NULL && fi->next->prev_pc.p)
224 fprintf_unfiltered (file, "0x%s", paddr_nz (fi->next->prev_pc.value));
225 else
226 fprintf_unfiltered (file, "<unknown>");
227 fprintf_unfiltered (file, ",");
228 fprintf_unfiltered (file, "id=");
229 if (fi->this_id.p)
230 fprint_frame_id (file, fi->this_id.value);
231 else
232 fprintf_unfiltered (file, "<unknown>");
233 fprintf_unfiltered (file, ",");
234 fprintf_unfiltered (file, "func=");
235 if (fi->next != NULL && fi->next->prev_func.p)
236 fprintf_unfiltered (file, "0x%s", paddr_nz (fi->next->prev_func.addr));
237 else
238 fprintf_unfiltered (file, "<unknown>");
239 fprintf_unfiltered (file, "}");
240}
241
7a424e99 242/* Return a frame uniq ID that can be used to, later, re-find the
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243 frame. */
244
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245struct frame_id
246get_frame_id (struct frame_info *fi)
101dcfbe
AC
247{
248 if (fi == NULL)
249 {
7a424e99 250 return null_frame_id;
101dcfbe 251 }
d0a55772 252 if (!fi->this_id.p)
101dcfbe 253 {
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254 if (frame_debug)
255 fprintf_unfiltered (gdb_stdlog, "{ get_frame_id (fi=%d) ",
256 fi->level);
c50901fd
AC
257 /* Find the unwinder. */
258 if (fi->unwind == NULL)
669fac23 259 fi->unwind = frame_unwind_find_by_frame (fi, &fi->prologue_cache);
06c77151 260 /* Find THIS frame's ID. */
669fac23 261 fi->unwind->this_id (fi, &fi->prologue_cache, &fi->this_id.value);
d0a55772 262 fi->this_id.p = 1;
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AC
263 if (frame_debug)
264 {
265 fprintf_unfiltered (gdb_stdlog, "-> ");
266 fprint_frame_id (gdb_stdlog, fi->this_id.value);
267 fprintf_unfiltered (gdb_stdlog, " }\n");
268 }
101dcfbe 269 }
18adea3f 270 return fi->this_id.value;
101dcfbe
AC
271}
272
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AC
273struct frame_id
274frame_unwind_id (struct frame_info *next_frame)
275{
276 /* Use prev_frame, and not get_prev_frame. The latter will truncate
277 the frame chain, leading to this function unintentionally
278 returning a null_frame_id (e.g., when a caller requests the frame
279 ID of "main()"s caller. */
280 return get_frame_id (get_prev_frame_1 (next_frame));
281}
282
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283const struct frame_id null_frame_id; /* All zeros. */
284
285struct frame_id
48c66725
JJ
286frame_id_build_special (CORE_ADDR stack_addr, CORE_ADDR code_addr,
287 CORE_ADDR special_addr)
7a424e99 288{
12b0b6de 289 struct frame_id id = null_frame_id;
d0a55772 290 id.stack_addr = stack_addr;
12b0b6de 291 id.stack_addr_p = 1;
d0a55772 292 id.code_addr = code_addr;
12b0b6de 293 id.code_addr_p = 1;
48c66725 294 id.special_addr = special_addr;
12b0b6de 295 id.special_addr_p = 1;
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AC
296 return id;
297}
298
48c66725
JJ
299struct frame_id
300frame_id_build (CORE_ADDR stack_addr, CORE_ADDR code_addr)
301{
12b0b6de
UW
302 struct frame_id id = null_frame_id;
303 id.stack_addr = stack_addr;
304 id.stack_addr_p = 1;
305 id.code_addr = code_addr;
306 id.code_addr_p = 1;
307 return id;
308}
309
310struct frame_id
311frame_id_build_wild (CORE_ADDR stack_addr)
312{
313 struct frame_id id = null_frame_id;
314 id.stack_addr = stack_addr;
315 id.stack_addr_p = 1;
316 return id;
48c66725
JJ
317}
318
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AC
319int
320frame_id_p (struct frame_id l)
321{
d0a55772 322 int p;
12b0b6de
UW
323 /* The frame is valid iff it has a valid stack address. */
324 p = l.stack_addr_p;
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AC
325 if (frame_debug)
326 {
327 fprintf_unfiltered (gdb_stdlog, "{ frame_id_p (l=");
328 fprint_frame_id (gdb_stdlog, l);
329 fprintf_unfiltered (gdb_stdlog, ") -> %d }\n", p);
330 }
d0a55772 331 return p;
7a424e99
AC
332}
333
334int
335frame_id_eq (struct frame_id l, struct frame_id r)
336{
d0a55772 337 int eq;
12b0b6de
UW
338 if (!l.stack_addr_p || !r.stack_addr_p)
339 /* Like a NaN, if either ID is invalid, the result is false.
340 Note that a frame ID is invalid iff it is the null frame ID. */
d0a55772
AC
341 eq = 0;
342 else if (l.stack_addr != r.stack_addr)
343 /* If .stack addresses are different, the frames are different. */
344 eq = 0;
12b0b6de
UW
345 else if (!l.code_addr_p || !r.code_addr_p)
346 /* An invalid code addr is a wild card, always succeed. */
d0a55772 347 eq = 1;
48c66725
JJ
348 else if (l.code_addr != r.code_addr)
349 /* If .code addresses are different, the frames are different. */
350 eq = 0;
12b0b6de
UW
351 else if (!l.special_addr_p || !r.special_addr_p)
352 /* An invalid special addr is a wild card (or unused), always succeed. */
48c66725
JJ
353 eq = 1;
354 else if (l.special_addr == r.special_addr)
355 /* Frames are equal. */
d0a55772
AC
356 eq = 1;
357 else
4aa79dcc
AC
358 /* No luck. */
359 eq = 0;
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AC
360 if (frame_debug)
361 {
362 fprintf_unfiltered (gdb_stdlog, "{ frame_id_eq (l=");
363 fprint_frame_id (gdb_stdlog, l);
364 fprintf_unfiltered (gdb_stdlog, ",r=");
365 fprint_frame_id (gdb_stdlog, r);
366 fprintf_unfiltered (gdb_stdlog, ") -> %d }\n", eq);
367 }
d0a55772 368 return eq;
7a424e99
AC
369}
370
371int
09a7aba8 372frame_id_inner (struct gdbarch *gdbarch, struct frame_id l, struct frame_id r)
7a424e99 373{
d0a55772 374 int inner;
12b0b6de 375 if (!l.stack_addr_p || !r.stack_addr_p)
d0a55772
AC
376 /* Like NaN, any operation involving an invalid ID always fails. */
377 inner = 0;
378 else
379 /* Only return non-zero when strictly inner than. Note that, per
380 comment in "frame.h", there is some fuzz here. Frameless
381 functions are not strictly inner than (same .stack but
48c66725 382 different .code and/or .special address). */
09a7aba8 383 inner = gdbarch_inner_than (gdbarch, l.stack_addr, r.stack_addr);
7f78e237
AC
384 if (frame_debug)
385 {
386 fprintf_unfiltered (gdb_stdlog, "{ frame_id_inner (l=");
387 fprint_frame_id (gdb_stdlog, l);
388 fprintf_unfiltered (gdb_stdlog, ",r=");
389 fprint_frame_id (gdb_stdlog, r);
390 fprintf_unfiltered (gdb_stdlog, ") -> %d }\n", inner);
391 }
d0a55772 392 return inner;
7a424e99
AC
393}
394
101dcfbe
AC
395struct frame_info *
396frame_find_by_id (struct frame_id id)
397{
398 struct frame_info *frame;
399
400 /* ZERO denotes the null frame, let the caller decide what to do
401 about it. Should it instead return get_current_frame()? */
7a424e99 402 if (!frame_id_p (id))
101dcfbe
AC
403 return NULL;
404
405 for (frame = get_current_frame ();
406 frame != NULL;
407 frame = get_prev_frame (frame))
408 {
7a424e99
AC
409 struct frame_id this = get_frame_id (frame);
410 if (frame_id_eq (id, this))
411 /* An exact match. */
412 return frame;
09a7aba8 413 if (frame_id_inner (get_frame_arch (frame), id, this))
7a424e99 414 /* Gone to far. */
101dcfbe 415 return NULL;
bbde78fa
JM
416 /* Either we're not yet gone far enough out along the frame
417 chain (inner(this,id)), or we're comparing frameless functions
7a424e99
AC
418 (same .base, different .func, no test available). Struggle
419 on until we've definitly gone to far. */
101dcfbe
AC
420 }
421 return NULL;
422}
423
f18c5a73 424CORE_ADDR
12cc2063 425frame_pc_unwind (struct frame_info *this_frame)
f18c5a73 426{
d1340264 427 if (!this_frame->prev_pc.p)
f18c5a73 428 {
12cc2063 429 CORE_ADDR pc;
669fac23 430 if (gdbarch_unwind_pc_p (get_frame_arch (this_frame)))
12cc2063
AC
431 {
432 /* The right way. The `pure' way. The one true way. This
433 method depends solely on the register-unwind code to
434 determine the value of registers in THIS frame, and hence
435 the value of this frame's PC (resume address). A typical
436 implementation is no more than:
437
438 frame_unwind_register (this_frame, ISA_PC_REGNUM, buf);
af1342ab 439 return extract_unsigned_integer (buf, size of ISA_PC_REGNUM);
12cc2063
AC
440
441 Note: this method is very heavily dependent on a correct
442 register-unwind implementation, it pays to fix that
443 method first; this method is frame type agnostic, since
444 it only deals with register values, it works with any
445 frame. This is all in stark contrast to the old
446 FRAME_SAVED_PC which would try to directly handle all the
447 different ways that a PC could be unwound. */
b1bd0044 448 pc = gdbarch_unwind_pc (get_frame_arch (this_frame), this_frame);
12cc2063 449 }
12cc2063 450 else
e2e0b3e5 451 internal_error (__FILE__, __LINE__, _("No unwind_pc method"));
d1340264
AC
452 this_frame->prev_pc.value = pc;
453 this_frame->prev_pc.p = 1;
7f78e237
AC
454 if (frame_debug)
455 fprintf_unfiltered (gdb_stdlog,
456 "{ frame_pc_unwind (this_frame=%d) -> 0x%s }\n",
457 this_frame->level,
458 paddr_nz (this_frame->prev_pc.value));
f18c5a73 459 }
d1340264 460 return this_frame->prev_pc.value;
f18c5a73
AC
461}
462
be41e9f4 463CORE_ADDR
ef02daa9 464get_frame_func (struct frame_info *this_frame)
be41e9f4 465{
ef02daa9
DJ
466 struct frame_info *next_frame = this_frame->next;
467
468 if (!next_frame->prev_func.p)
be41e9f4 469 {
57bfe177
AC
470 /* Make certain that this, and not the adjacent, function is
471 found. */
ef02daa9
DJ
472 CORE_ADDR addr_in_block = get_frame_address_in_block (this_frame);
473 next_frame->prev_func.p = 1;
474 next_frame->prev_func.addr = get_pc_function_start (addr_in_block);
7f78e237
AC
475 if (frame_debug)
476 fprintf_unfiltered (gdb_stdlog,
ef02daa9
DJ
477 "{ get_frame_func (this_frame=%d) -> 0x%s }\n",
478 this_frame->level,
479 paddr_nz (next_frame->prev_func.addr));
be41e9f4 480 }
ef02daa9 481 return next_frame->prev_func.addr;
be41e9f4
AC
482}
483
7a25a7c1 484static int
2d522557 485do_frame_register_read (void *src, int regnum, gdb_byte *buf)
7a25a7c1 486{
669fac23 487 return frame_register_read (src, regnum, buf);
7a25a7c1
AC
488}
489
a81dcb05
AC
490struct regcache *
491frame_save_as_regcache (struct frame_info *this_frame)
492{
b1bd0044 493 struct regcache *regcache = regcache_xmalloc (get_frame_arch (this_frame));
a81dcb05
AC
494 struct cleanup *cleanups = make_cleanup_regcache_xfree (regcache);
495 regcache_save (regcache, do_frame_register_read, this_frame);
496 discard_cleanups (cleanups);
497 return regcache;
498}
499
dbe9fe58 500void
7a25a7c1
AC
501frame_pop (struct frame_info *this_frame)
502{
348473d5
NF
503 struct frame_info *prev_frame;
504 struct regcache *scratch;
505 struct cleanup *cleanups;
506
507 /* Ensure that we have a frame to pop to. */
508 prev_frame = get_prev_frame_1 (this_frame);
509
510 if (!prev_frame)
511 error (_("Cannot pop the initial frame."));
512
c1bf6f65
AC
513 /* Make a copy of all the register values unwound from this frame.
514 Save them in a scratch buffer so that there isn't a race between
594f7785 515 trying to extract the old values from the current regcache while
c1bf6f65 516 at the same time writing new values into that same cache. */
348473d5
NF
517 scratch = frame_save_as_regcache (prev_frame);
518 cleanups = make_cleanup_regcache_xfree (scratch);
c1bf6f65
AC
519
520 /* FIXME: cagney/2003-03-16: It should be possible to tell the
521 target's register cache that it is about to be hit with a burst
522 register transfer and that the sequence of register writes should
523 be batched. The pair target_prepare_to_store() and
524 target_store_registers() kind of suggest this functionality.
525 Unfortunately, they don't implement it. Their lack of a formal
526 definition can lead to targets writing back bogus values
527 (arguably a bug in the target code mind). */
528 /* Now copy those saved registers into the current regcache.
529 Here, regcache_cpy() calls regcache_restore(). */
594f7785 530 regcache_cpy (get_current_regcache (), scratch);
c1bf6f65 531 do_cleanups (cleanups);
7a25a7c1 532
7a25a7c1
AC
533 /* We've made right mess of GDB's local state, just discard
534 everything. */
35f196d9 535 reinit_frame_cache ();
dbe9fe58 536}
c689142b 537
4f460812
AC
538void
539frame_register_unwind (struct frame_info *frame, int regnum,
540 int *optimizedp, enum lval_type *lvalp,
10c42a71 541 CORE_ADDR *addrp, int *realnump, gdb_byte *bufferp)
4f460812 542{
669fac23 543 struct value *value;
7f78e237 544
4f460812
AC
545 /* Require all but BUFFERP to be valid. A NULL BUFFERP indicates
546 that the value proper does not need to be fetched. */
547 gdb_assert (optimizedp != NULL);
548 gdb_assert (lvalp != NULL);
549 gdb_assert (addrp != NULL);
550 gdb_assert (realnump != NULL);
551 /* gdb_assert (bufferp != NULL); */
552
669fac23 553 value = frame_unwind_register_value (frame, regnum);
4f460812 554
669fac23 555 gdb_assert (value != NULL);
c50901fd 556
669fac23
DJ
557 *optimizedp = value_optimized_out (value);
558 *lvalp = VALUE_LVAL (value);
559 *addrp = VALUE_ADDRESS (value);
560 *realnump = VALUE_REGNUM (value);
6dc42492 561
669fac23
DJ
562 if (bufferp)
563 memcpy (bufferp, value_contents_all (value),
564 TYPE_LENGTH (value_type (value)));
565
566 /* Dispose of the new value. This prevents watchpoints from
567 trying to watch the saved frame pointer. */
568 release_value (value);
569 value_free (value);
4f460812
AC
570}
571
a216a322
AC
572void
573frame_register (struct frame_info *frame, int regnum,
574 int *optimizedp, enum lval_type *lvalp,
10c42a71 575 CORE_ADDR *addrp, int *realnump, gdb_byte *bufferp)
a216a322
AC
576{
577 /* Require all but BUFFERP to be valid. A NULL BUFFERP indicates
578 that the value proper does not need to be fetched. */
579 gdb_assert (optimizedp != NULL);
580 gdb_assert (lvalp != NULL);
581 gdb_assert (addrp != NULL);
582 gdb_assert (realnump != NULL);
583 /* gdb_assert (bufferp != NULL); */
584
a94dd1fd
AC
585 /* Obtain the register value by unwinding the register from the next
586 (more inner frame). */
587 gdb_assert (frame != NULL && frame->next != NULL);
588 frame_register_unwind (frame->next, regnum, optimizedp, lvalp, addrp,
589 realnump, bufferp);
a216a322
AC
590}
591
135c175f 592void
10c42a71 593frame_unwind_register (struct frame_info *frame, int regnum, gdb_byte *buf)
135c175f
AC
594{
595 int optimized;
596 CORE_ADDR addr;
597 int realnum;
598 enum lval_type lval;
135c175f
AC
599 frame_register_unwind (frame, regnum, &optimized, &lval, &addr,
600 &realnum, buf);
5b181d62
AC
601}
602
f0e7d0e8
AC
603void
604get_frame_register (struct frame_info *frame,
10c42a71 605 int regnum, gdb_byte *buf)
f0e7d0e8
AC
606{
607 frame_unwind_register (frame->next, regnum, buf);
608}
609
669fac23
DJ
610struct value *
611frame_unwind_register_value (struct frame_info *frame, int regnum)
612{
613 struct value *value;
614
615 gdb_assert (frame != NULL);
616
617 if (frame_debug)
618 {
619 fprintf_unfiltered (gdb_stdlog, "\
620{ frame_unwind_register_value (frame=%d,regnum=%d(%s),...) ",
621 frame->level, regnum,
622 frame_map_regnum_to_name (frame, regnum));
623 }
624
625 /* Find the unwinder. */
626 if (frame->unwind == NULL)
627 frame->unwind = frame_unwind_find_by_frame (frame, &frame->prologue_cache);
628
629 /* Ask this frame to unwind its register. */
630 value = frame->unwind->prev_register (frame, &frame->prologue_cache, regnum);
631
632 if (frame_debug)
633 {
634 fprintf_unfiltered (gdb_stdlog, "->");
635 if (value_optimized_out (value))
636 fprintf_unfiltered (gdb_stdlog, " optimized out");
637 else
638 {
639 if (VALUE_LVAL (value) == lval_register)
640 fprintf_unfiltered (gdb_stdlog, " register=%d",
641 VALUE_REGNUM (value));
642 else if (VALUE_LVAL (value) == lval_memory)
643 fprintf_unfiltered (gdb_stdlog, " address=0x%s",
644 paddr_nz (VALUE_ADDRESS (value)));
645 else
646 fprintf_unfiltered (gdb_stdlog, " computed");
647
648 if (value_lazy (value))
649 fprintf_unfiltered (gdb_stdlog, " lazy");
650 else
651 {
652 int i;
653 const gdb_byte *buf = value_contents (value);
654
655 fprintf_unfiltered (gdb_stdlog, " bytes=");
656 fprintf_unfiltered (gdb_stdlog, "[");
657 for (i = 0; i < register_size (get_frame_arch (frame), regnum); i++)
658 fprintf_unfiltered (gdb_stdlog, "%02x", buf[i]);
659 fprintf_unfiltered (gdb_stdlog, "]");
660 }
661 }
662
663 fprintf_unfiltered (gdb_stdlog, " }\n");
664 }
665
666 return value;
667}
668
669struct value *
670get_frame_register_value (struct frame_info *frame, int regnum)
671{
672 return frame_unwind_register_value (frame->next, regnum);
673}
674
f0e7d0e8
AC
675LONGEST
676frame_unwind_register_signed (struct frame_info *frame, int regnum)
677{
10c42a71 678 gdb_byte buf[MAX_REGISTER_SIZE];
f0e7d0e8 679 frame_unwind_register (frame, regnum, buf);
5bc602c7
AC
680 return extract_signed_integer (buf, register_size (get_frame_arch (frame),
681 regnum));
f0e7d0e8
AC
682}
683
684LONGEST
685get_frame_register_signed (struct frame_info *frame, int regnum)
686{
687 return frame_unwind_register_signed (frame->next, regnum);
688}
689
690ULONGEST
691frame_unwind_register_unsigned (struct frame_info *frame, int regnum)
692{
10c42a71 693 gdb_byte buf[MAX_REGISTER_SIZE];
f0e7d0e8 694 frame_unwind_register (frame, regnum, buf);
5bc602c7
AC
695 return extract_unsigned_integer (buf, register_size (get_frame_arch (frame),
696 regnum));
f0e7d0e8
AC
697}
698
699ULONGEST
700get_frame_register_unsigned (struct frame_info *frame, int regnum)
701{
702 return frame_unwind_register_unsigned (frame->next, regnum);
703}
704
ff2e87ac 705void
10c42a71
AC
706put_frame_register (struct frame_info *frame, int regnum,
707 const gdb_byte *buf)
ff2e87ac
AC
708{
709 struct gdbarch *gdbarch = get_frame_arch (frame);
710 int realnum;
711 int optim;
712 enum lval_type lval;
713 CORE_ADDR addr;
714 frame_register (frame, regnum, &optim, &lval, &addr, &realnum, NULL);
715 if (optim)
8a3fe4f8 716 error (_("Attempt to assign to a value that was optimized out."));
ff2e87ac
AC
717 switch (lval)
718 {
719 case lval_memory:
720 {
721 /* FIXME: write_memory doesn't yet take constant buffers.
722 Arrrg! */
10c42a71 723 gdb_byte tmp[MAX_REGISTER_SIZE];
ff2e87ac
AC
724 memcpy (tmp, buf, register_size (gdbarch, regnum));
725 write_memory (addr, tmp, register_size (gdbarch, regnum));
726 break;
727 }
728 case lval_register:
594f7785 729 regcache_cooked_write (get_current_regcache (), realnum, buf);
ff2e87ac
AC
730 break;
731 default:
8a3fe4f8 732 error (_("Attempt to assign to an unmodifiable value."));
ff2e87ac
AC
733 }
734}
735
cda5a58a 736/* frame_register_read ()
d65fe839 737
cda5a58a 738 Find and return the value of REGNUM for the specified stack frame.
5bc602c7 739 The number of bytes copied is REGISTER_SIZE (REGNUM).
d65fe839 740
cda5a58a 741 Returns 0 if the register value could not be found. */
d65fe839 742
cda5a58a 743int
10c42a71
AC
744frame_register_read (struct frame_info *frame, int regnum,
745 gdb_byte *myaddr)
d65fe839 746{
a216a322
AC
747 int optimized;
748 enum lval_type lval;
749 CORE_ADDR addr;
750 int realnum;
751 frame_register (frame, regnum, &optimized, &lval, &addr, &realnum, myaddr);
d65fe839 752
a216a322 753 return !optimized;
d65fe839 754}
e36180d7 755
00fa51f6
UW
756int
757get_frame_register_bytes (struct frame_info *frame, int regnum,
758 CORE_ADDR offset, int len, gdb_byte *myaddr)
759{
760 struct gdbarch *gdbarch = get_frame_arch (frame);
761
762 /* Skip registers wholly inside of OFFSET. */
763 while (offset >= register_size (gdbarch, regnum))
764 {
765 offset -= register_size (gdbarch, regnum);
766 regnum++;
767 }
768
769 /* Copy the data. */
770 while (len > 0)
771 {
772 int curr_len = register_size (gdbarch, regnum) - offset;
773 if (curr_len > len)
774 curr_len = len;
775
776 if (curr_len == register_size (gdbarch, regnum))
777 {
778 if (!frame_register_read (frame, regnum, myaddr))
779 return 0;
780 }
781 else
782 {
783 gdb_byte buf[MAX_REGISTER_SIZE];
784 if (!frame_register_read (frame, regnum, buf))
785 return 0;
786 memcpy (myaddr, buf + offset, curr_len);
787 }
788
765f065a 789 myaddr += curr_len;
00fa51f6
UW
790 len -= curr_len;
791 offset = 0;
792 regnum++;
793 }
794
795 return 1;
796}
797
798void
799put_frame_register_bytes (struct frame_info *frame, int regnum,
800 CORE_ADDR offset, int len, const gdb_byte *myaddr)
801{
802 struct gdbarch *gdbarch = get_frame_arch (frame);
803
804 /* Skip registers wholly inside of OFFSET. */
805 while (offset >= register_size (gdbarch, regnum))
806 {
807 offset -= register_size (gdbarch, regnum);
808 regnum++;
809 }
810
811 /* Copy the data. */
812 while (len > 0)
813 {
814 int curr_len = register_size (gdbarch, regnum) - offset;
815 if (curr_len > len)
816 curr_len = len;
817
818 if (curr_len == register_size (gdbarch, regnum))
819 {
820 put_frame_register (frame, regnum, myaddr);
821 }
822 else
823 {
824 gdb_byte buf[MAX_REGISTER_SIZE];
825 frame_register_read (frame, regnum, buf);
826 memcpy (buf + offset, myaddr, curr_len);
827 put_frame_register (frame, regnum, buf);
828 }
829
765f065a 830 myaddr += curr_len;
00fa51f6
UW
831 len -= curr_len;
832 offset = 0;
833 regnum++;
834 }
835}
e36180d7
AC
836
837/* Map between a frame register number and its name. A frame register
838 space is a superset of the cooked register space --- it also
839 includes builtin registers. */
840
841int
eb8bc282 842frame_map_name_to_regnum (struct frame_info *frame, const char *name, int len)
e36180d7 843{
eb8bc282 844 return user_reg_map_name_to_regnum (get_frame_arch (frame), name, len);
e36180d7
AC
845}
846
847const char *
eb8bc282 848frame_map_regnum_to_name (struct frame_info *frame, int regnum)
e36180d7 849{
eb8bc282 850 return user_reg_map_regnum_to_name (get_frame_arch (frame), regnum);
e36180d7 851}
4c1e7e9d 852
a94dd1fd
AC
853/* Create a sentinel frame. */
854
b9362cc7 855static struct frame_info *
a94dd1fd
AC
856create_sentinel_frame (struct regcache *regcache)
857{
858 struct frame_info *frame = FRAME_OBSTACK_ZALLOC (struct frame_info);
a94dd1fd
AC
859 frame->level = -1;
860 /* Explicitly initialize the sentinel frame's cache. Provide it
861 with the underlying regcache. In the future additional
862 information, such as the frame's thread will be added. */
6dc42492 863 frame->prologue_cache = sentinel_frame_cache (regcache);
a94dd1fd
AC
864 /* For the moment there is only one sentinel frame implementation. */
865 frame->unwind = sentinel_frame_unwind;
866 /* Link this frame back to itself. The frame is self referential
867 (the unwound PC is the same as the pc), so make it so. */
868 frame->next = frame;
50bbdbd9
AC
869 /* Make the sentinel frame's ID valid, but invalid. That way all
870 comparisons with it should fail. */
d0a55772
AC
871 frame->this_id.p = 1;
872 frame->this_id.value = null_frame_id;
7f78e237
AC
873 if (frame_debug)
874 {
875 fprintf_unfiltered (gdb_stdlog, "{ create_sentinel_frame (...) -> ");
876 fprint_frame (gdb_stdlog, frame);
877 fprintf_unfiltered (gdb_stdlog, " }\n");
878 }
a94dd1fd
AC
879 return frame;
880}
881
4c1e7e9d
AC
882/* Info about the innermost stack frame (contents of FP register) */
883
884static struct frame_info *current_frame;
885
886/* Cache for frame addresses already read by gdb. Valid only while
887 inferior is stopped. Control variables for the frame cache should
888 be local to this module. */
889
890static struct obstack frame_cache_obstack;
891
892void *
479ab5a0 893frame_obstack_zalloc (unsigned long size)
4c1e7e9d 894{
479ab5a0
AC
895 void *data = obstack_alloc (&frame_cache_obstack, size);
896 memset (data, 0, size);
897 return data;
4c1e7e9d
AC
898}
899
a94dd1fd
AC
900/* Return the innermost (currently executing) stack frame. This is
901 split into two functions. The function unwind_to_current_frame()
902 is wrapped in catch exceptions so that, even when the unwind of the
903 sentinel frame fails, the function still returns a stack frame. */
904
905static int
906unwind_to_current_frame (struct ui_out *ui_out, void *args)
907{
908 struct frame_info *frame = get_prev_frame (args);
bbde78fa 909 /* A sentinel frame can fail to unwind, e.g., because its PC value
a94dd1fd
AC
910 lands in somewhere like start. */
911 if (frame == NULL)
912 return 1;
913 current_frame = frame;
914 return 0;
915}
4c1e7e9d
AC
916
917struct frame_info *
918get_current_frame (void)
919{
0a1e1ca1
AC
920 /* First check, and report, the lack of registers. Having GDB
921 report "No stack!" or "No memory" when the target doesn't even
922 have registers is very confusing. Besides, "printcmd.exp"
923 explicitly checks that ``print $pc'' with no registers prints "No
924 registers". */
a94dd1fd 925 if (!target_has_registers)
8a3fe4f8 926 error (_("No registers."));
0a1e1ca1 927 if (!target_has_stack)
8a3fe4f8 928 error (_("No stack."));
a94dd1fd 929 if (!target_has_memory)
8a3fe4f8 930 error (_("No memory."));
8ea051c5
PA
931 if (is_executing (inferior_ptid))
932 error (_("Target is executing."));
933
4c1e7e9d
AC
934 if (current_frame == NULL)
935 {
a94dd1fd 936 struct frame_info *sentinel_frame =
594f7785 937 create_sentinel_frame (get_current_regcache ());
a94dd1fd 938 if (catch_exceptions (uiout, unwind_to_current_frame, sentinel_frame,
1c3c7ee7 939 RETURN_MASK_ERROR) != 0)
a94dd1fd
AC
940 {
941 /* Oops! Fake a current frame? Is this useful? It has a PC
942 of zero, for instance. */
943 current_frame = sentinel_frame;
944 }
4c1e7e9d
AC
945 }
946 return current_frame;
947}
948
6e7f8b9c
AC
949/* The "selected" stack frame is used by default for local and arg
950 access. May be zero, for no selected frame. */
951
206415a3 952static struct frame_info *selected_frame;
6e7f8b9c 953
8ea051c5
PA
954static int
955has_stack_frames (void)
956{
957 if (!target_has_registers || !target_has_stack || !target_has_memory)
958 return 0;
959
960 /* If the current thread is executing, don't try to read from
961 it. */
962 if (is_executing (inferior_ptid))
963 return 0;
964
965 return 1;
966}
967
bbde78fa 968/* Return the selected frame. Always non-NULL (unless there isn't an
6e7f8b9c
AC
969 inferior sufficient for creating a frame) in which case an error is
970 thrown. */
971
972struct frame_info *
b04f3ab4 973get_selected_frame (const char *message)
6e7f8b9c 974{
206415a3 975 if (selected_frame == NULL)
b04f3ab4 976 {
8ea051c5 977 if (message != NULL && !has_stack_frames ())
8a3fe4f8 978 error (("%s"), message);
b04f3ab4
AC
979 /* Hey! Don't trust this. It should really be re-finding the
980 last selected frame of the currently selected thread. This,
981 though, is better than nothing. */
982 select_frame (get_current_frame ());
983 }
6e7f8b9c 984 /* There is always a frame. */
206415a3
DJ
985 gdb_assert (selected_frame != NULL);
986 return selected_frame;
6e7f8b9c
AC
987}
988
bbde78fa 989/* This is a variant of get_selected_frame() which can be called when
7dd88986 990 the inferior does not have a frame; in that case it will return
bbde78fa 991 NULL instead of calling error(). */
7dd88986
DJ
992
993struct frame_info *
994deprecated_safe_get_selected_frame (void)
995{
8ea051c5 996 if (!has_stack_frames ())
7dd88986 997 return NULL;
b04f3ab4 998 return get_selected_frame (NULL);
7dd88986
DJ
999}
1000
6e7f8b9c
AC
1001/* Select frame FI (or NULL - to invalidate the current frame). */
1002
1003void
1004select_frame (struct frame_info *fi)
1005{
52f0bd74 1006 struct symtab *s;
6e7f8b9c 1007
206415a3 1008 selected_frame = fi;
bbde78fa 1009 /* NOTE: cagney/2002-05-04: FI can be NULL. This occurs when the
6e7f8b9c 1010 frame is being invalidated. */
9a4105ab
AC
1011 if (deprecated_selected_frame_level_changed_hook)
1012 deprecated_selected_frame_level_changed_hook (frame_relative_level (fi));
6e7f8b9c
AC
1013
1014 /* FIXME: kseitz/2002-08-28: It would be nice to call
bbde78fa 1015 selected_frame_level_changed_event() right here, but due to limitations
6e7f8b9c 1016 in the current interfaces, we would end up flooding UIs with events
bbde78fa 1017 because select_frame() is used extensively internally.
6e7f8b9c
AC
1018
1019 Once we have frame-parameterized frame (and frame-related) commands,
1020 the event notification can be moved here, since this function will only
bbde78fa 1021 be called when the user's selected frame is being changed. */
6e7f8b9c
AC
1022
1023 /* Ensure that symbols for this frame are read in. Also, determine the
1024 source language of this frame, and switch to it if desired. */
1025 if (fi)
1026 {
7ae4c3a5 1027 /* We retrieve the frame's symtab by using the frame PC. However
bbde78fa 1028 we cannot use the frame PC as-is, because it usually points to
7ae4c3a5
JB
1029 the instruction following the "call", which is sometimes the
1030 first instruction of another function. So we rely on
1031 get_frame_address_in_block() which provides us with a PC which
1032 is guaranteed to be inside the frame's code block. */
1033 s = find_pc_symtab (get_frame_address_in_block (fi));
6e7f8b9c
AC
1034 if (s
1035 && s->language != current_language->la_language
1036 && s->language != language_unknown
1037 && language_mode == language_mode_auto)
1038 {
1039 set_language (s->language);
1040 }
1041 }
1042}
c689142b 1043
4c1e7e9d
AC
1044/* Create an arbitrary (i.e. address specified by user) or innermost frame.
1045 Always returns a non-NULL value. */
1046
1047struct frame_info *
1048create_new_frame (CORE_ADDR addr, CORE_ADDR pc)
1049{
1050 struct frame_info *fi;
4c1e7e9d 1051
7f78e237
AC
1052 if (frame_debug)
1053 {
1054 fprintf_unfiltered (gdb_stdlog,
1055 "{ create_new_frame (addr=0x%s, pc=0x%s) ",
1056 paddr_nz (addr), paddr_nz (pc));
1057 }
1058
35d5d4ee 1059 fi = FRAME_OBSTACK_ZALLOC (struct frame_info);
4c1e7e9d 1060
594f7785 1061 fi->next = create_sentinel_frame (get_current_regcache ());
7df05f2b
AC
1062
1063 /* Select/initialize both the unwind function and the frame's type
1064 based on the PC. */
669fac23 1065 fi->unwind = frame_unwind_find_by_frame (fi, &fi->prologue_cache);
7df05f2b 1066
18adea3f 1067 fi->this_id.p = 1;
11889732
AC
1068 deprecated_update_frame_base_hack (fi, addr);
1069 deprecated_update_frame_pc_hack (fi, pc);
4c1e7e9d 1070
7f78e237
AC
1071 if (frame_debug)
1072 {
1073 fprintf_unfiltered (gdb_stdlog, "-> ");
1074 fprint_frame (gdb_stdlog, fi);
1075 fprintf_unfiltered (gdb_stdlog, " }\n");
1076 }
1077
4c1e7e9d
AC
1078 return fi;
1079}
1080
03febf99
AC
1081/* Return the frame that THIS_FRAME calls (NULL if THIS_FRAME is the
1082 innermost frame). Be careful to not fall off the bottom of the
1083 frame chain and onto the sentinel frame. */
4c1e7e9d
AC
1084
1085struct frame_info *
03febf99 1086get_next_frame (struct frame_info *this_frame)
4c1e7e9d 1087{
03febf99
AC
1088 if (this_frame->level > 0)
1089 return this_frame->next;
a94dd1fd
AC
1090 else
1091 return NULL;
4c1e7e9d
AC
1092}
1093
f4c5303c
OF
1094/* Observer for the target_changed event. */
1095
1096void
1097frame_observer_target_changed (struct target_ops *target)
1098{
35f196d9 1099 reinit_frame_cache ();
f4c5303c
OF
1100}
1101
4c1e7e9d
AC
1102/* Flush the entire frame cache. */
1103
1104void
35f196d9 1105reinit_frame_cache (void)
4c1e7e9d 1106{
272dfcfd
AS
1107 struct frame_info *fi;
1108
1109 /* Tear down all frame caches. */
1110 for (fi = current_frame; fi != NULL; fi = fi->prev)
1111 {
1112 if (fi->prologue_cache && fi->unwind->dealloc_cache)
1113 fi->unwind->dealloc_cache (fi, fi->prologue_cache);
1114 if (fi->base_cache && fi->base->unwind->dealloc_cache)
1115 fi->base->unwind->dealloc_cache (fi, fi->base_cache);
1116 }
1117
4c1e7e9d
AC
1118 /* Since we can't really be sure what the first object allocated was */
1119 obstack_free (&frame_cache_obstack, 0);
1120 obstack_init (&frame_cache_obstack);
1121
0d6ba1b1
DJ
1122 if (current_frame != NULL)
1123 annotate_frames_invalid ();
1124
4c1e7e9d
AC
1125 current_frame = NULL; /* Invalidate cache */
1126 select_frame (NULL);
7f78e237 1127 if (frame_debug)
35f196d9 1128 fprintf_unfiltered (gdb_stdlog, "{ reinit_frame_cache () }\n");
4c1e7e9d
AC
1129}
1130
e48af409
DJ
1131/* Find where a register is saved (in memory or another register).
1132 The result of frame_register_unwind is just where it is saved
5efde112 1133 relative to this particular frame. */
e48af409
DJ
1134
1135static void
1136frame_register_unwind_location (struct frame_info *this_frame, int regnum,
1137 int *optimizedp, enum lval_type *lvalp,
1138 CORE_ADDR *addrp, int *realnump)
1139{
1140 gdb_assert (this_frame == NULL || this_frame->level >= 0);
1141
1142 while (this_frame != NULL)
1143 {
1144 frame_register_unwind (this_frame, regnum, optimizedp, lvalp,
1145 addrp, realnump, NULL);
1146
1147 if (*optimizedp)
1148 break;
1149
1150 if (*lvalp != lval_register)
1151 break;
1152
1153 regnum = *realnump;
1154 this_frame = get_next_frame (this_frame);
1155 }
1156}
1157
5613d8d3
AC
1158/* Return a "struct frame_info" corresponding to the frame that called
1159 THIS_FRAME. Returns NULL if there is no such frame.
5bf00f29 1160
5613d8d3
AC
1161 Unlike get_prev_frame, this function always tries to unwind the
1162 frame. */
eb4f72c5 1163
5613d8d3
AC
1164static struct frame_info *
1165get_prev_frame_1 (struct frame_info *this_frame)
eb4f72c5
AC
1166{
1167 struct frame_info *prev_frame;
756e95f1 1168 struct frame_id this_id;
b1bd0044 1169 struct gdbarch *gdbarch;
eb4f72c5 1170
5613d8d3 1171 gdb_assert (this_frame != NULL);
b1bd0044 1172 gdbarch = get_frame_arch (this_frame);
5613d8d3 1173
7f78e237
AC
1174 if (frame_debug)
1175 {
5613d8d3 1176 fprintf_unfiltered (gdb_stdlog, "{ get_prev_frame_1 (this_frame=");
7f78e237
AC
1177 if (this_frame != NULL)
1178 fprintf_unfiltered (gdb_stdlog, "%d", this_frame->level);
1179 else
1180 fprintf_unfiltered (gdb_stdlog, "<NULL>");
1181 fprintf_unfiltered (gdb_stdlog, ") ");
1182 }
1183
5613d8d3
AC
1184 /* Only try to do the unwind once. */
1185 if (this_frame->prev_p)
1186 {
1187 if (frame_debug)
1188 {
1189 fprintf_unfiltered (gdb_stdlog, "-> ");
1190 fprint_frame (gdb_stdlog, this_frame->prev);
1191 fprintf_unfiltered (gdb_stdlog, " // cached \n");
1192 }
1193 return this_frame->prev;
1194 }
8fa75a5d 1195
0d254d6f
DJ
1196 /* If the frame unwinder hasn't been selected yet, we must do so
1197 before setting prev_p; otherwise the check for misbehaved
1198 sniffers will think that this frame's sniffer tried to unwind
1199 further (see frame_cleanup_after_sniffer). */
1200 if (this_frame->unwind == NULL)
1201 this_frame->unwind
1202 = frame_unwind_find_by_frame (this_frame, &this_frame->prologue_cache);
8fa75a5d 1203
5613d8d3 1204 this_frame->prev_p = 1;
55feb689 1205 this_frame->stop_reason = UNWIND_NO_REASON;
5613d8d3 1206
5613d8d3
AC
1207 /* Check that this frame's ID was valid. If it wasn't, don't try to
1208 unwind to the prev frame. Be careful to not apply this test to
1209 the sentinel frame. */
0d254d6f 1210 this_id = get_frame_id (this_frame);
756e95f1 1211 if (this_frame->level >= 0 && !frame_id_p (this_id))
5613d8d3
AC
1212 {
1213 if (frame_debug)
1214 {
1215 fprintf_unfiltered (gdb_stdlog, "-> ");
1216 fprint_frame (gdb_stdlog, NULL);
1217 fprintf_unfiltered (gdb_stdlog, " // this ID is NULL }\n");
1218 }
55feb689 1219 this_frame->stop_reason = UNWIND_NULL_ID;
5613d8d3
AC
1220 return NULL;
1221 }
1222
1223 /* Check that this frame's ID isn't inner to (younger, below, next)
1224 the next frame. This happens when a frame unwind goes backwards.
adb54772
AC
1225 Exclude signal trampolines (due to sigaltstack the frame ID can
1226 go backwards) and sentinel frames (the test is meaningless). */
1227 if (this_frame->next->level >= 0
c1bf6f65 1228 && this_frame->next->unwind->type != SIGTRAMP_FRAME
09a7aba8
UW
1229 && frame_id_inner (get_frame_arch (this_frame), this_id,
1230 get_frame_id (this_frame->next)))
55feb689
DJ
1231 {
1232 if (frame_debug)
1233 {
1234 fprintf_unfiltered (gdb_stdlog, "-> ");
1235 fprint_frame (gdb_stdlog, NULL);
1236 fprintf_unfiltered (gdb_stdlog, " // this frame ID is inner }\n");
1237 }
1238 this_frame->stop_reason = UNWIND_INNER_ID;
1239 return NULL;
1240 }
5613d8d3
AC
1241
1242 /* Check that this and the next frame are not identical. If they
1243 are, there is most likely a stack cycle. As with the inner-than
1244 test above, avoid comparing the inner-most and sentinel frames. */
1245 if (this_frame->level > 0
756e95f1 1246 && frame_id_eq (this_id, get_frame_id (this_frame->next)))
55feb689
DJ
1247 {
1248 if (frame_debug)
1249 {
1250 fprintf_unfiltered (gdb_stdlog, "-> ");
1251 fprint_frame (gdb_stdlog, NULL);
1252 fprintf_unfiltered (gdb_stdlog, " // this frame has same ID }\n");
1253 }
1254 this_frame->stop_reason = UNWIND_SAME_ID;
1255 return NULL;
1256 }
5613d8d3 1257
e48af409
DJ
1258 /* Check that this and the next frame do not unwind the PC register
1259 to the same memory location. If they do, then even though they
1260 have different frame IDs, the new frame will be bogus; two
1261 functions can't share a register save slot for the PC. This can
1262 happen when the prologue analyzer finds a stack adjustment, but
d57df5e4
DJ
1263 no PC save.
1264
1265 This check does assume that the "PC register" is roughly a
1266 traditional PC, even if the gdbarch_unwind_pc method adjusts
1267 it (we do not rely on the value, only on the unwound PC being
1268 dependent on this value). A potential improvement would be
1269 to have the frame prev_pc method and the gdbarch unwind_pc
1270 method set the same lval and location information as
1271 frame_register_unwind. */
e48af409 1272 if (this_frame->level > 0
b1bd0044 1273 && gdbarch_pc_regnum (gdbarch) >= 0
e48af409
DJ
1274 && get_frame_type (this_frame) == NORMAL_FRAME
1275 && get_frame_type (this_frame->next) == NORMAL_FRAME)
1276 {
32276632 1277 int optimized, realnum, nrealnum;
e48af409
DJ
1278 enum lval_type lval, nlval;
1279 CORE_ADDR addr, naddr;
1280
3e8c568d 1281 frame_register_unwind_location (this_frame,
b1bd0044 1282 gdbarch_pc_regnum (gdbarch),
3e8c568d
UW
1283 &optimized, &lval, &addr, &realnum);
1284 frame_register_unwind_location (get_next_frame (this_frame),
b1bd0044 1285 gdbarch_pc_regnum (gdbarch),
32276632 1286 &optimized, &nlval, &naddr, &nrealnum);
e48af409 1287
32276632
DJ
1288 if ((lval == lval_memory && lval == nlval && addr == naddr)
1289 || (lval == lval_register && lval == nlval && realnum == nrealnum))
e48af409
DJ
1290 {
1291 if (frame_debug)
1292 {
1293 fprintf_unfiltered (gdb_stdlog, "-> ");
1294 fprint_frame (gdb_stdlog, NULL);
1295 fprintf_unfiltered (gdb_stdlog, " // no saved PC }\n");
1296 }
1297
1298 this_frame->stop_reason = UNWIND_NO_SAVED_PC;
1299 this_frame->prev = NULL;
1300 return NULL;
1301 }
1302 }
1303
5613d8d3
AC
1304 /* Allocate the new frame but do not wire it in to the frame chain.
1305 Some (bad) code in INIT_FRAME_EXTRA_INFO tries to look along
1306 frame->next to pull some fancy tricks (of course such code is, by
1307 definition, recursive). Try to prevent it.
1308
1309 There is no reason to worry about memory leaks, should the
1310 remainder of the function fail. The allocated memory will be
1311 quickly reclaimed when the frame cache is flushed, and the `we've
1312 been here before' check above will stop repeated memory
1313 allocation calls. */
1314 prev_frame = FRAME_OBSTACK_ZALLOC (struct frame_info);
1315 prev_frame->level = this_frame->level + 1;
1316
1317 /* Don't yet compute ->unwind (and hence ->type). It is computed
1318 on-demand in get_frame_type, frame_register_unwind, and
1319 get_frame_id. */
1320
1321 /* Don't yet compute the frame's ID. It is computed on-demand by
1322 get_frame_id(). */
1323
1324 /* The unwound frame ID is validate at the start of this function,
1325 as part of the logic to decide if that frame should be further
1326 unwound, and not here while the prev frame is being created.
1327 Doing this makes it possible for the user to examine a frame that
1328 has an invalid frame ID.
1329
1330 Some very old VAX code noted: [...] For the sake of argument,
1331 suppose that the stack is somewhat trashed (which is one reason
1332 that "info frame" exists). So, return 0 (indicating we don't
1333 know the address of the arglist) if we don't know what frame this
1334 frame calls. */
1335
1336 /* Link it in. */
1337 this_frame->prev = prev_frame;
1338 prev_frame->next = this_frame;
1339
1340 if (frame_debug)
1341 {
1342 fprintf_unfiltered (gdb_stdlog, "-> ");
1343 fprint_frame (gdb_stdlog, prev_frame);
1344 fprintf_unfiltered (gdb_stdlog, " }\n");
1345 }
1346
1347 return prev_frame;
1348}
1349
1350/* Debug routine to print a NULL frame being returned. */
1351
1352static void
1353frame_debug_got_null_frame (struct ui_file *file,
1354 struct frame_info *this_frame,
1355 const char *reason)
1356{
1357 if (frame_debug)
1358 {
1359 fprintf_unfiltered (gdb_stdlog, "{ get_prev_frame (this_frame=");
1360 if (this_frame != NULL)
1361 fprintf_unfiltered (gdb_stdlog, "%d", this_frame->level);
1362 else
1363 fprintf_unfiltered (gdb_stdlog, "<NULL>");
1364 fprintf_unfiltered (gdb_stdlog, ") -> // %s}\n", reason);
1365 }
1366}
1367
c8cd9f6c
AC
1368/* Is this (non-sentinel) frame in the "main"() function? */
1369
1370static int
1371inside_main_func (struct frame_info *this_frame)
1372{
1373 struct minimal_symbol *msymbol;
1374 CORE_ADDR maddr;
1375
1376 if (symfile_objfile == 0)
1377 return 0;
1378 msymbol = lookup_minimal_symbol (main_name (), NULL, symfile_objfile);
1379 if (msymbol == NULL)
1380 return 0;
1381 /* Make certain that the code, and not descriptor, address is
1382 returned. */
b1bd0044 1383 maddr = gdbarch_convert_from_func_ptr_addr (get_frame_arch (this_frame),
c8cd9f6c
AC
1384 SYMBOL_VALUE_ADDRESS (msymbol),
1385 &current_target);
1386 return maddr == get_frame_func (this_frame);
1387}
1388
2315ffec
RC
1389/* Test whether THIS_FRAME is inside the process entry point function. */
1390
1391static int
1392inside_entry_func (struct frame_info *this_frame)
1393{
1394 return (get_frame_func (this_frame) == entry_point_address ());
1395}
1396
5613d8d3
AC
1397/* Return a structure containing various interesting information about
1398 the frame that called THIS_FRAME. Returns NULL if there is entier
1399 no such frame or the frame fails any of a set of target-independent
1400 condition that should terminate the frame chain (e.g., as unwinding
1401 past main()).
1402
1403 This function should not contain target-dependent tests, such as
1404 checking whether the program-counter is zero. */
1405
1406struct frame_info *
1407get_prev_frame (struct frame_info *this_frame)
1408{
1409 struct frame_info *prev_frame;
1410
eb4f72c5
AC
1411 /* Return the inner-most frame, when the caller passes in NULL. */
1412 /* NOTE: cagney/2002-11-09: Not sure how this would happen. The
1413 caller should have previously obtained a valid frame using
1414 get_selected_frame() and then called this code - only possibility
1415 I can think of is code behaving badly.
1416
1417 NOTE: cagney/2003-01-10: Talk about code behaving badly. Check
1418 block_innermost_frame(). It does the sequence: frame = NULL;
1419 while (1) { frame = get_prev_frame (frame); .... }. Ulgh! Why
1420 it couldn't be written better, I don't know.
1421
bbde78fa 1422 NOTE: cagney/2003-01-11: I suspect what is happening in
eb4f72c5 1423 block_innermost_frame() is, when the target has no state
bbde78fa 1424 (registers, memory, ...), it is still calling this function. The
eb4f72c5
AC
1425 assumption being that this function will return NULL indicating
1426 that a frame isn't possible, rather than checking that the target
1427 has state and then calling get_current_frame() and
1428 get_prev_frame(). This is a guess mind. */
03febf99 1429 if (this_frame == NULL)
eb4f72c5
AC
1430 {
1431 /* NOTE: cagney/2002-11-09: There was a code segment here that
1432 would error out when CURRENT_FRAME was NULL. The comment
1433 that went with it made the claim ...
1434
1435 ``This screws value_of_variable, which just wants a nice
1436 clean NULL return from block_innermost_frame if there are no
1437 frames. I don't think I've ever seen this message happen
1438 otherwise. And returning NULL here is a perfectly legitimate
1439 thing to do.''
1440
1441 Per the above, this code shouldn't even be called with a NULL
03febf99 1442 THIS_FRAME. */
5613d8d3 1443 frame_debug_got_null_frame (gdb_stdlog, this_frame, "this_frame NULL");
eb4f72c5
AC
1444 return current_frame;
1445 }
1446
1447 /* There is always a frame. If this assertion fails, suspect that
1448 something should be calling get_selected_frame() or
1449 get_current_frame(). */
03febf99 1450 gdb_assert (this_frame != NULL);
eb4f72c5 1451
cc9bed83
RC
1452 /* tausq/2004-12-07: Dummy frames are skipped because it doesn't make much
1453 sense to stop unwinding at a dummy frame. One place where a dummy
1454 frame may have an address "inside_main_func" is on HPUX. On HPUX, the
1455 pcsqh register (space register for the instruction at the head of the
1456 instruction queue) cannot be written directly; the only way to set it
1457 is to branch to code that is in the target space. In order to implement
1458 frame dummies on HPUX, the called function is made to jump back to where
1459 the inferior was when the user function was called. If gdb was inside
1460 the main function when we created the dummy frame, the dummy frame will
1461 point inside the main function. */
03febf99 1462 if (this_frame->level >= 0
cc9bed83 1463 && get_frame_type (this_frame) != DUMMY_FRAME
25d29d70 1464 && !backtrace_past_main
c8cd9f6c
AC
1465 && inside_main_func (this_frame))
1466 /* Don't unwind past main(). Note, this is done _before_ the
1467 frame has been marked as previously unwound. That way if the
1468 user later decides to enable unwinds past main(), that will
1469 automatically happen. */
ac2bd0a9 1470 {
5613d8d3 1471 frame_debug_got_null_frame (gdb_stdlog, this_frame, "inside main func");
ac2bd0a9
AC
1472 return NULL;
1473 }
eb4f72c5 1474
4a5e53e8
DJ
1475 /* If the user's backtrace limit has been exceeded, stop. We must
1476 add two to the current level; one of those accounts for backtrace_limit
1477 being 1-based and the level being 0-based, and the other accounts for
1478 the level of the new frame instead of the level of the current
1479 frame. */
1480 if (this_frame->level + 2 > backtrace_limit)
25d29d70 1481 {
4a5e53e8
DJ
1482 frame_debug_got_null_frame (gdb_stdlog, this_frame,
1483 "backtrace limit exceeded");
1484 return NULL;
25d29d70
AC
1485 }
1486
0714963c
AC
1487 /* If we're already inside the entry function for the main objfile,
1488 then it isn't valid. Don't apply this test to a dummy frame -
bbde78fa 1489 dummy frame PCs typically land in the entry func. Don't apply
0714963c
AC
1490 this test to the sentinel frame. Sentinel frames should always
1491 be allowed to unwind. */
2f72f850
AC
1492 /* NOTE: cagney/2003-07-07: Fixed a bug in inside_main_func() -
1493 wasn't checking for "main" in the minimal symbols. With that
1494 fixed asm-source tests now stop in "main" instead of halting the
bbde78fa 1495 backtrace in weird and wonderful ways somewhere inside the entry
2f72f850
AC
1496 file. Suspect that tests for inside the entry file/func were
1497 added to work around that (now fixed) case. */
0714963c
AC
1498 /* NOTE: cagney/2003-07-15: danielj (if I'm reading it right)
1499 suggested having the inside_entry_func test use the
bbde78fa
JM
1500 inside_main_func() msymbol trick (along with entry_point_address()
1501 I guess) to determine the address range of the start function.
0714963c
AC
1502 That should provide a far better stopper than the current
1503 heuristics. */
2315ffec
RC
1504 /* NOTE: tausq/2004-10-09: this is needed if, for example, the compiler
1505 applied tail-call optimizations to main so that a function called
1506 from main returns directly to the caller of main. Since we don't
1507 stop at main, we should at least stop at the entry point of the
1508 application. */
1509 if (!backtrace_past_entry
1d225535 1510 && get_frame_type (this_frame) != DUMMY_FRAME && this_frame->level >= 0
6e4c6c91 1511 && inside_entry_func (this_frame))
0714963c 1512 {
5613d8d3 1513 frame_debug_got_null_frame (gdb_stdlog, this_frame, "inside entry func");
0714963c
AC
1514 return NULL;
1515 }
1516
39ee2ff0
AC
1517 /* Assume that the only way to get a zero PC is through something
1518 like a SIGSEGV or a dummy frame, and hence that NORMAL frames
1519 will never unwind a zero PC. */
1520 if (this_frame->level > 0
1521 && get_frame_type (this_frame) == NORMAL_FRAME
1522 && get_frame_type (get_next_frame (this_frame)) == NORMAL_FRAME
1523 && get_frame_pc (this_frame) == 0)
1524 {
1525 frame_debug_got_null_frame (gdb_stdlog, this_frame, "zero PC");
1526 return NULL;
1527 }
1528
5613d8d3 1529 return get_prev_frame_1 (this_frame);
eb4f72c5
AC
1530}
1531
4c1e7e9d
AC
1532CORE_ADDR
1533get_frame_pc (struct frame_info *frame)
1534{
d1340264
AC
1535 gdb_assert (frame->next != NULL);
1536 return frame_pc_unwind (frame->next);
4c1e7e9d
AC
1537}
1538
ad1193e7 1539/* Return an address that falls within THIS_FRAME's code block. */
8edd5d01
AC
1540
1541CORE_ADDR
ad1193e7 1542get_frame_address_in_block (struct frame_info *this_frame)
8edd5d01
AC
1543{
1544 /* A draft address. */
ad1193e7 1545 CORE_ADDR pc = get_frame_pc (this_frame);
8edd5d01 1546
ad1193e7
DJ
1547 struct frame_info *next_frame = this_frame->next;
1548
1549 /* Calling get_frame_pc returns the resume address for THIS_FRAME.
1550 Normally the resume address is inside the body of the function
1551 associated with THIS_FRAME, but there is a special case: when
1552 calling a function which the compiler knows will never return
1553 (for instance abort), the call may be the very last instruction
1554 in the calling function. The resume address will point after the
1555 call and may be at the beginning of a different function
1556 entirely.
1557
1558 If THIS_FRAME is a signal frame or dummy frame, then we should
1559 not adjust the unwound PC. For a dummy frame, GDB pushed the
1560 resume address manually onto the stack. For a signal frame, the
1561 OS may have pushed the resume address manually and invoked the
1562 handler (e.g. GNU/Linux), or invoked the trampoline which called
1563 the signal handler - but in either case the signal handler is
1564 expected to return to the trampoline. So in both of these
1565 cases we know that the resume address is executable and
1566 related. So we only need to adjust the PC if THIS_FRAME
1567 is a normal function.
1568
1569 If the program has been interrupted while THIS_FRAME is current,
1570 then clearly the resume address is inside the associated
1571 function. There are three kinds of interruption: debugger stop
1572 (next frame will be SENTINEL_FRAME), operating system
1573 signal or exception (next frame will be SIGTRAMP_FRAME),
1574 or debugger-induced function call (next frame will be
1575 DUMMY_FRAME). So we only need to adjust the PC if
1576 NEXT_FRAME is a normal function.
1577
1578 We check the type of NEXT_FRAME first, since it is already
1579 known; frame type is determined by the unwinder, and since
1580 we have THIS_FRAME we've already selected an unwinder for
1581 NEXT_FRAME. */
1582 if (get_frame_type (next_frame) == NORMAL_FRAME
1583 && get_frame_type (this_frame) == NORMAL_FRAME)
1584 return pc - 1;
1585
1586 return pc;
8edd5d01
AC
1587}
1588
1058bca7
AC
1589static int
1590pc_notcurrent (struct frame_info *frame)
1591{
1592 /* If FRAME is not the innermost frame, that normally means that
1593 FRAME->pc points at the return instruction (which is *after* the
1594 call instruction), and we want to get the line containing the
1595 call (because the call is where the user thinks the program is).
1596 However, if the next frame is either a SIGTRAMP_FRAME or a
1597 DUMMY_FRAME, then the next frame will contain a saved interrupt
1598 PC and such a PC indicates the current (rather than next)
1599 instruction/line, consequently, for such cases, want to get the
1600 line containing fi->pc. */
1601 struct frame_info *next = get_next_frame (frame);
1602 int notcurrent = (next != NULL && get_frame_type (next) == NORMAL_FRAME);
1603 return notcurrent;
1604}
1605
1606void
1607find_frame_sal (struct frame_info *frame, struct symtab_and_line *sal)
1608{
11889732 1609 (*sal) = find_pc_line (get_frame_pc (frame), pc_notcurrent (frame));
1058bca7
AC
1610}
1611
c193f6ac
AC
1612/* Per "frame.h", return the ``address'' of the frame. Code should
1613 really be using get_frame_id(). */
1614CORE_ADDR
1615get_frame_base (struct frame_info *fi)
1616{
d0a55772 1617 return get_frame_id (fi).stack_addr;
c193f6ac
AC
1618}
1619
da62e633
AC
1620/* High-level offsets into the frame. Used by the debug info. */
1621
1622CORE_ADDR
1623get_frame_base_address (struct frame_info *fi)
1624{
7df05f2b 1625 if (get_frame_type (fi) != NORMAL_FRAME)
da62e633
AC
1626 return 0;
1627 if (fi->base == NULL)
86c31399 1628 fi->base = frame_base_find_by_frame (fi);
da62e633
AC
1629 /* Sneaky: If the low-level unwind and high-level base code share a
1630 common unwinder, let them share the prologue cache. */
1631 if (fi->base->unwind == fi->unwind)
669fac23
DJ
1632 return fi->base->this_base (fi, &fi->prologue_cache);
1633 return fi->base->this_base (fi, &fi->base_cache);
da62e633
AC
1634}
1635
1636CORE_ADDR
1637get_frame_locals_address (struct frame_info *fi)
1638{
1639 void **cache;
7df05f2b 1640 if (get_frame_type (fi) != NORMAL_FRAME)
da62e633
AC
1641 return 0;
1642 /* If there isn't a frame address method, find it. */
1643 if (fi->base == NULL)
86c31399 1644 fi->base = frame_base_find_by_frame (fi);
da62e633
AC
1645 /* Sneaky: If the low-level unwind and high-level base code share a
1646 common unwinder, let them share the prologue cache. */
1647 if (fi->base->unwind == fi->unwind)
669fac23
DJ
1648 return fi->base->this_locals (fi, &fi->prologue_cache);
1649 return fi->base->this_locals (fi, &fi->base_cache);
da62e633
AC
1650}
1651
1652CORE_ADDR
1653get_frame_args_address (struct frame_info *fi)
1654{
1655 void **cache;
7df05f2b 1656 if (get_frame_type (fi) != NORMAL_FRAME)
da62e633
AC
1657 return 0;
1658 /* If there isn't a frame address method, find it. */
1659 if (fi->base == NULL)
86c31399 1660 fi->base = frame_base_find_by_frame (fi);
da62e633
AC
1661 /* Sneaky: If the low-level unwind and high-level base code share a
1662 common unwinder, let them share the prologue cache. */
1663 if (fi->base->unwind == fi->unwind)
669fac23
DJ
1664 return fi->base->this_args (fi, &fi->prologue_cache);
1665 return fi->base->this_args (fi, &fi->base_cache);
da62e633
AC
1666}
1667
85cf597a
AC
1668/* Level of the selected frame: 0 for innermost, 1 for its caller, ...
1669 or -1 for a NULL frame. */
1670
1671int
1672frame_relative_level (struct frame_info *fi)
1673{
1674 if (fi == NULL)
1675 return -1;
1676 else
1677 return fi->level;
1678}
1679
5a203e44
AC
1680enum frame_type
1681get_frame_type (struct frame_info *frame)
1682{
c1bf6f65
AC
1683 if (frame->unwind == NULL)
1684 /* Initialize the frame's unwinder because that's what
1685 provides the frame's type. */
669fac23 1686 frame->unwind = frame_unwind_find_by_frame (frame, &frame->prologue_cache);
c1bf6f65 1687 return frame->unwind->type;
5a203e44
AC
1688}
1689
b87efeee 1690void
2f107107 1691deprecated_update_frame_pc_hack (struct frame_info *frame, CORE_ADDR pc)
b87efeee 1692{
7f78e237
AC
1693 if (frame_debug)
1694 fprintf_unfiltered (gdb_stdlog,
1695 "{ deprecated_update_frame_pc_hack (frame=%d,pc=0x%s) }\n",
1696 frame->level, paddr_nz (pc));
e0d2ae16 1697 /* NOTE: cagney/2003-03-11: Some architectures (e.g., Arm) are
bbde78fa 1698 maintaining a locally allocated frame object. Since such frames
e0d2ae16
AC
1699 are not in the frame chain, it isn't possible to assume that the
1700 frame has a next. Sigh. */
1701 if (frame->next != NULL)
1702 {
1703 /* While we're at it, update this frame's cached PC value, found
1704 in the next frame. Oh for the day when "struct frame_info"
1705 is opaque and this hack on hack can just go away. */
d1340264
AC
1706 frame->next->prev_pc.value = pc;
1707 frame->next->prev_pc.p = 1;
e0d2ae16 1708 }
2f107107
AC
1709}
1710
1711void
1712deprecated_update_frame_base_hack (struct frame_info *frame, CORE_ADDR base)
1713{
7f78e237
AC
1714 if (frame_debug)
1715 fprintf_unfiltered (gdb_stdlog,
1716 "{ deprecated_update_frame_base_hack (frame=%d,base=0x%s) }\n",
1717 frame->level, paddr_nz (base));
2f107107 1718 /* See comment in "frame.h". */
d0a55772 1719 frame->this_id.value.stack_addr = base;
b87efeee
AC
1720}
1721
ae1e7417
AC
1722/* Memory access methods. */
1723
1724void
10c42a71
AC
1725get_frame_memory (struct frame_info *this_frame, CORE_ADDR addr,
1726 gdb_byte *buf, int len)
ae1e7417
AC
1727{
1728 read_memory (addr, buf, len);
1729}
1730
1731LONGEST
1732get_frame_memory_signed (struct frame_info *this_frame, CORE_ADDR addr,
1733 int len)
1734{
1735 return read_memory_integer (addr, len);
1736}
1737
1738ULONGEST
1739get_frame_memory_unsigned (struct frame_info *this_frame, CORE_ADDR addr,
1740 int len)
1741{
1742 return read_memory_unsigned_integer (addr, len);
1743}
1744
304396fb
AC
1745int
1746safe_frame_unwind_memory (struct frame_info *this_frame,
10c42a71 1747 CORE_ADDR addr, gdb_byte *buf, int len)
304396fb 1748{
8defab1a
DJ
1749 /* NOTE: target_read_memory returns zero on success! */
1750 return !target_read_memory (addr, buf, len);
304396fb
AC
1751}
1752
ae1e7417
AC
1753/* Architecture method. */
1754
1755struct gdbarch *
1756get_frame_arch (struct frame_info *this_frame)
1757{
1758 return current_gdbarch;
1759}
1760
a9e5fdc2
AC
1761/* Stack pointer methods. */
1762
1763CORE_ADDR
1764get_frame_sp (struct frame_info *this_frame)
1765{
1766 return frame_sp_unwind (this_frame->next);
1767}
1768
1769CORE_ADDR
1770frame_sp_unwind (struct frame_info *next_frame)
1771{
b1bd0044 1772 struct gdbarch *gdbarch = get_frame_arch (next_frame);
bbde78fa 1773 /* Normality - an architecture that provides a way of obtaining any
a9e5fdc2 1774 frame inner-most address. */
b1bd0044
UW
1775 if (gdbarch_unwind_sp_p (gdbarch))
1776 return gdbarch_unwind_sp (gdbarch, next_frame);
a9e5fdc2 1777 /* Now things are really are grim. Hope that the value returned by
3e8c568d 1778 the gdbarch_sp_regnum register is meaningful. */
b1bd0044 1779 if (gdbarch_sp_regnum (gdbarch) >= 0)
11411de3
DJ
1780 return frame_unwind_register_unsigned (next_frame,
1781 gdbarch_sp_regnum (gdbarch));
e2e0b3e5 1782 internal_error (__FILE__, __LINE__, _("Missing unwind SP method"));
a9e5fdc2
AC
1783}
1784
55feb689
DJ
1785/* Return the reason why we can't unwind past FRAME. */
1786
1787enum unwind_stop_reason
1788get_frame_unwind_stop_reason (struct frame_info *frame)
1789{
1790 /* If we haven't tried to unwind past this point yet, then assume
1791 that unwinding would succeed. */
1792 if (frame->prev_p == 0)
1793 return UNWIND_NO_REASON;
1794
1795 /* Otherwise, we set a reason when we succeeded (or failed) to
1796 unwind. */
1797 return frame->stop_reason;
1798}
1799
1800/* Return a string explaining REASON. */
1801
1802const char *
1803frame_stop_reason_string (enum unwind_stop_reason reason)
1804{
1805 switch (reason)
1806 {
1807 case UNWIND_NULL_ID:
1808 return _("unwinder did not report frame ID");
1809
1810 case UNWIND_INNER_ID:
1811 return _("previous frame inner to this frame (corrupt stack?)");
1812
1813 case UNWIND_SAME_ID:
1814 return _("previous frame identical to this frame (corrupt stack?)");
1815
e48af409
DJ
1816 case UNWIND_NO_SAVED_PC:
1817 return _("frame did not save the PC");
1818
55feb689
DJ
1819 case UNWIND_NO_REASON:
1820 case UNWIND_FIRST_ERROR:
1821 default:
1822 internal_error (__FILE__, __LINE__,
1823 "Invalid frame stop reason");
1824 }
1825}
1826
669fac23
DJ
1827/* Clean up after a failed (wrong unwinder) attempt to unwind past
1828 FRAME. */
1829
1830static void
1831frame_cleanup_after_sniffer (void *arg)
1832{
1833 struct frame_info *frame = arg;
1834
1835 /* The sniffer should not allocate a prologue cache if it did not
1836 match this frame. */
1837 gdb_assert (frame->prologue_cache == NULL);
1838
1839 /* No sniffer should extend the frame chain; sniff based on what is
1840 already certain. */
1841 gdb_assert (!frame->prev_p);
1842
1843 /* The sniffer should not check the frame's ID; that's circular. */
1844 gdb_assert (!frame->this_id.p);
1845
1846 /* Clear cached fields dependent on the unwinder.
1847
1848 The previous PC is independent of the unwinder, but the previous
ad1193e7 1849 function is not (see get_frame_address_in_block). */
669fac23
DJ
1850 frame->prev_func.p = 0;
1851 frame->prev_func.addr = 0;
1852
1853 /* Discard the unwinder last, so that we can easily find it if an assertion
1854 in this function triggers. */
1855 frame->unwind = NULL;
1856}
1857
1858/* Set FRAME's unwinder temporarily, so that we can call a sniffer.
1859 Return a cleanup which should be called if unwinding fails, and
1860 discarded if it succeeds. */
1861
1862struct cleanup *
1863frame_prepare_for_sniffer (struct frame_info *frame,
1864 const struct frame_unwind *unwind)
1865{
1866 gdb_assert (frame->unwind == NULL);
1867 frame->unwind = unwind;
1868 return make_cleanup (frame_cleanup_after_sniffer, frame);
1869}
1870
b9362cc7
AC
1871extern initialize_file_ftype _initialize_frame; /* -Wmissing-prototypes */
1872
25d29d70
AC
1873static struct cmd_list_element *set_backtrace_cmdlist;
1874static struct cmd_list_element *show_backtrace_cmdlist;
1875
1876static void
1877set_backtrace_cmd (char *args, int from_tty)
1878{
1879 help_list (set_backtrace_cmdlist, "set backtrace ", -1, gdb_stdout);
1880}
1881
1882static void
1883show_backtrace_cmd (char *args, int from_tty)
1884{
1885 cmd_show_list (show_backtrace_cmdlist, from_tty, "");
1886}
1887
4c1e7e9d
AC
1888void
1889_initialize_frame (void)
1890{
1891 obstack_init (&frame_cache_obstack);
eb4f72c5 1892
f4c5303c
OF
1893 observer_attach_target_changed (frame_observer_target_changed);
1894
1bedd215 1895 add_prefix_cmd ("backtrace", class_maintenance, set_backtrace_cmd, _("\
25d29d70 1896Set backtrace specific variables.\n\
1bedd215 1897Configure backtrace variables such as the backtrace limit"),
25d29d70
AC
1898 &set_backtrace_cmdlist, "set backtrace ",
1899 0/*allow-unknown*/, &setlist);
1bedd215 1900 add_prefix_cmd ("backtrace", class_maintenance, show_backtrace_cmd, _("\
25d29d70 1901Show backtrace specific variables\n\
1bedd215 1902Show backtrace variables such as the backtrace limit"),
25d29d70
AC
1903 &show_backtrace_cmdlist, "show backtrace ",
1904 0/*allow-unknown*/, &showlist);
1905
1906 add_setshow_boolean_cmd ("past-main", class_obscure,
7915a72c
AC
1907 &backtrace_past_main, _("\
1908Set whether backtraces should continue past \"main\"."), _("\
1909Show whether backtraces should continue past \"main\"."), _("\
eb4f72c5
AC
1910Normally the caller of \"main\" is not of interest, so GDB will terminate\n\
1911the backtrace at \"main\". Set this variable if you need to see the rest\n\
7915a72c 1912of the stack trace."),
2c5b56ce 1913 NULL,
920d2a44 1914 show_backtrace_past_main,
2c5b56ce 1915 &set_backtrace_cmdlist,
25d29d70
AC
1916 &show_backtrace_cmdlist);
1917
2315ffec 1918 add_setshow_boolean_cmd ("past-entry", class_obscure,
7915a72c
AC
1919 &backtrace_past_entry, _("\
1920Set whether backtraces should continue past the entry point of a program."),
1921 _("\
1922Show whether backtraces should continue past the entry point of a program."),
1923 _("\
2315ffec
RC
1924Normally there are no callers beyond the entry point of a program, so GDB\n\
1925will terminate the backtrace there. Set this variable if you need to see \n\
7915a72c 1926the rest of the stack trace."),
2c5b56ce 1927 NULL,
920d2a44 1928 show_backtrace_past_entry,
2c5b56ce 1929 &set_backtrace_cmdlist,
2315ffec
RC
1930 &show_backtrace_cmdlist);
1931
4a5e53e8
DJ
1932 add_setshow_integer_cmd ("limit", class_obscure,
1933 &backtrace_limit, _("\
7915a72c
AC
1934Set an upper bound on the number of backtrace levels."), _("\
1935Show the upper bound on the number of backtrace levels."), _("\
fec74868 1936No more than the specified number of frames can be displayed or examined.\n\
7915a72c 1937Zero is unlimited."),
4a5e53e8
DJ
1938 NULL,
1939 show_backtrace_limit,
1940 &set_backtrace_cmdlist,
1941 &show_backtrace_cmdlist);
ac2bd0a9
AC
1942
1943 /* Debug this files internals. */
85c07804
AC
1944 add_setshow_zinteger_cmd ("frame", class_maintenance, &frame_debug, _("\
1945Set frame debugging."), _("\
1946Show frame debugging."), _("\
1947When non-zero, frame specific internal debugging is enabled."),
1948 NULL,
920d2a44 1949 show_frame_debug,
85c07804 1950 &setdebuglist, &showdebuglist);
4c1e7e9d 1951}
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