Avoid crash in write_psymtabs_to_index
[deliverable/binutils-gdb.git] / gdb / arch-utils.c
CommitLineData
c0e8c252 1/* Dynamic architecture support for GDB, the GNU debugger.
f4f9705a 2
3666a048 3 Copyright (C) 1998-2021 Free Software Foundation, Inc.
c0e8c252
AC
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
c0e8c252
AC
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/>. */
c0e8c252
AC
19
20#include "defs.h"
21
fb6ecb0f 22#include "arch-utils.h"
c0e8c252 23#include "gdbcmd.h"
4de283e4 24#include "inferior.h" /* enum CALL_DUMMY_LOCATION et al. */
45741a9c 25#include "infrun.h"
fbec36e2 26#include "regcache.h"
4182591f 27#include "sim-regno.h"
4de283e4
TT
28#include "gdbcore.h"
29#include "osabi.h"
d55e5aa6 30#include "target-descriptions.h"
4de283e4
TT
31#include "objfiles.h"
32#include "language.h"
33#include "symtab.h"
34
268a13a5 35#include "gdbsupport/version.h"
4de283e4
TT
36
37#include "floatformat.h"
38
39#include "dis-asm.h"
1fd35568 40
07fbbd01 41bool
40a53766 42default_displaced_step_hw_singlestep (struct gdbarch *gdbarch)
99e40580
UW
43{
44 return !gdbarch_software_single_step_p (gdbarch);
45}
237fc4c9
PA
46
47CORE_ADDR
48displaced_step_at_entry_point (struct gdbarch *gdbarch)
49{
50 CORE_ADDR addr;
51 int bp_len;
52
53 addr = entry_point_address ();
54
237fc4c9
PA
55 /* Inferior calls also use the entry point as a breakpoint location.
56 We don't want displaced stepping to interfere with those
57 breakpoints, so leave space. */
58 gdbarch_breakpoint_from_pc (gdbarch, &addr, &bp_len);
5931a2fa 59 addr += bp_len * 2;
237fc4c9
PA
60
61 return addr;
62}
63
4182591f 64int
e7faf938 65legacy_register_sim_regno (struct gdbarch *gdbarch, int regnum)
4182591f
AC
66{
67 /* Only makes sense to supply raw registers. */
e7faf938 68 gdb_assert (regnum >= 0 && regnum < gdbarch_num_regs (gdbarch));
4182591f
AC
69 /* NOTE: cagney/2002-05-13: The old code did it this way and it is
70 suspected that some GDB/SIM combinations may rely on this
85102364 71 behaviour. The default should be one2one_register_sim_regno
4182591f 72 (below). */
e7faf938
MD
73 if (gdbarch_register_name (gdbarch, regnum) != NULL
74 && gdbarch_register_name (gdbarch, regnum)[0] != '\0')
4182591f
AC
75 return regnum;
76 else
77 return LEGACY_SIM_REGNO_IGNORE;
78}
79
c193949e
LM
80
81/* See arch-utils.h */
82
83std::string
84default_memtag_to_string (struct gdbarch *gdbarch, struct value *tag)
85{
86 error (_("This architecture has no method to convert a memory tag to"
87 " a string."));
88}
89
90/* See arch-utils.h */
91
92bool
93default_tagged_address_p (struct gdbarch *gdbarch, struct value *address)
94{
95 /* By default, assume the address is untagged. */
96 return false;
97}
98
99/* See arch-utils.h */
100
101bool
102default_memtag_matches_p (struct gdbarch *gdbarch, struct value *address)
103{
104 /* By default, assume the tags match. */
105 return true;
106}
107
108/* See arch-utils.h */
109
110bool
111default_set_memtags (struct gdbarch *gdbarch, struct value *address,
112 size_t length, const gdb::byte_vector &tags,
113 memtag_type tag_type)
114{
115 /* By default, return true (successful); */
116 return true;
117}
118
119/* See arch-utils.h */
120
121struct value *
122default_get_memtag (struct gdbarch *gdbarch, struct value *address,
123 memtag_type tag_type)
124{
125 /* By default, return no tag. */
126 return nullptr;
127}
128
bdcd319a 129CORE_ADDR
52f729a7 130generic_skip_trampoline_code (struct frame_info *frame, CORE_ADDR pc)
bdcd319a
CV
131{
132 return 0;
133}
134
dea0c52f 135CORE_ADDR
4c8c40e6 136generic_skip_solib_resolver (struct gdbarch *gdbarch, CORE_ADDR pc)
dea0c52f
MK
137{
138 return 0;
139}
140
d50355b6 141int
e17a4113 142generic_in_solib_return_trampoline (struct gdbarch *gdbarch,
2c02bd72 143 CORE_ADDR pc, const char *name)
d50355b6
MS
144{
145 return 0;
146}
147
c12260ac 148int
c9cf6e20 149generic_stack_frame_destroyed_p (struct gdbarch *gdbarch, CORE_ADDR pc)
c12260ac
CV
150{
151 return 0;
152}
153
7eb89530
YQ
154int
155default_code_of_frame_writable (struct gdbarch *gdbarch,
156 struct frame_info *frame)
157{
158 return 1;
159}
160
4d1e7dd1 161/* Helper functions for gdbarch_inner_than */
3339cf8b
AC
162
163int
fba45db2 164core_addr_lessthan (CORE_ADDR lhs, CORE_ADDR rhs)
3339cf8b
AC
165{
166 return (lhs < rhs);
167}
168
169int
fba45db2 170core_addr_greaterthan (CORE_ADDR lhs, CORE_ADDR rhs)
3339cf8b
AC
171{
172 return (lhs > rhs);
173}
174
0e2de366 175/* Misc helper functions for targets. */
193e3b1a 176
f517ea4e 177CORE_ADDR
24568a2c 178core_addr_identity (struct gdbarch *gdbarch, CORE_ADDR addr)
f517ea4e
PS
179{
180 return addr;
181}
182
e2d0e7eb
AC
183CORE_ADDR
184convert_from_func_ptr_addr_identity (struct gdbarch *gdbarch, CORE_ADDR addr,
185 struct target_ops *targ)
186{
187 return addr;
188}
189
88c72b7d 190int
d3f73121 191no_op_reg_to_regnum (struct gdbarch *gdbarch, int reg)
88c72b7d
AC
192{
193 return reg;
194}
195
a2cf933a 196void
3e29f34a 197default_coff_make_msymbol_special (int val, struct minimal_symbol *msym)
a2cf933a
EZ
198{
199 return;
200}
201
3e29f34a
MR
202/* See arch-utils.h. */
203
a2cf933a 204void
3e29f34a 205default_make_symbol_special (struct symbol *sym, struct objfile *objfile)
a2cf933a
EZ
206{
207 return;
208}
209
3e29f34a
MR
210/* See arch-utils.h. */
211
212CORE_ADDR
213default_adjust_dwarf2_addr (CORE_ADDR pc)
214{
215 return pc;
216}
217
218/* See arch-utils.h. */
219
220CORE_ADDR
221default_adjust_dwarf2_line (CORE_ADDR addr, int rel)
222{
223 return addr;
224}
225
b41c5a85
JW
226/* See arch-utils.h. */
227
228bool
229default_execute_dwarf_cfa_vendor_op (struct gdbarch *gdbarch, gdb_byte op,
230 struct dwarf2_frame_state *fs)
231{
232 return false;
233}
234
01fb7433 235int
64a3914f 236cannot_register_not (struct gdbarch *gdbarch, int regnum)
01fb7433
AC
237{
238 return 0;
239}
39d4ef09
AC
240
241/* Legacy version of target_virtual_frame_pointer(). Assumes that
0e2de366
MS
242 there is an gdbarch_deprecated_fp_regnum and that it is the same,
243 cooked or raw. */
39d4ef09
AC
244
245void
a54fba4c
MD
246legacy_virtual_frame_pointer (struct gdbarch *gdbarch,
247 CORE_ADDR pc,
39d4ef09
AC
248 int *frame_regnum,
249 LONGEST *frame_offset)
250{
20bcf01c
AC
251 /* FIXME: cagney/2002-09-13: This code is used when identifying the
252 frame pointer of the current PC. It is assuming that a single
253 register and an offset can determine this. I think it should
254 instead generate a byte code expression as that would work better
255 with things like Dwarf2's CFI. */
a54fba4c
MD
256 if (gdbarch_deprecated_fp_regnum (gdbarch) >= 0
257 && gdbarch_deprecated_fp_regnum (gdbarch)
258 < gdbarch_num_regs (gdbarch))
259 *frame_regnum = gdbarch_deprecated_fp_regnum (gdbarch);
260 else if (gdbarch_sp_regnum (gdbarch) >= 0
261 && gdbarch_sp_regnum (gdbarch)
dda83cd7 262 < gdbarch_num_regs (gdbarch))
a54fba4c 263 *frame_regnum = gdbarch_sp_regnum (gdbarch);
20bcf01c
AC
264 else
265 /* Should this be an internal error? I guess so, it is reflecting
266 an architectural limitation in the current design. */
0e2de366
MS
267 internal_error (__FILE__, __LINE__,
268 _("No virtual frame pointer available"));
39d4ef09
AC
269 *frame_offset = 0;
270}
46cd78fb 271
9b790ce7
UW
272/* Return a floating-point format for a floating-point variable of
273 length LEN in bits. If non-NULL, NAME is the name of its type.
274 If no suitable type is found, return NULL. */
275
276const struct floatformat **
277default_floatformat_for_type (struct gdbarch *gdbarch,
278 const char *name, int len)
279{
280 const struct floatformat **format = NULL;
281
1b6b755e
LM
282 /* Check if this is a bfloat16 type. It has the same size as the
283 IEEE half float type, so we use the base type name to tell them
284 apart. */
285 if (name != nullptr && strcmp (name, "__bf16") == 0
286 && len == gdbarch_bfloat16_bit (gdbarch))
287 format = gdbarch_bfloat16_format (gdbarch);
288 else if (len == gdbarch_half_bit (gdbarch))
9b790ce7
UW
289 format = gdbarch_half_format (gdbarch);
290 else if (len == gdbarch_float_bit (gdbarch))
291 format = gdbarch_float_format (gdbarch);
292 else if (len == gdbarch_double_bit (gdbarch))
293 format = gdbarch_double_format (gdbarch);
294 else if (len == gdbarch_long_double_bit (gdbarch))
295 format = gdbarch_long_double_format (gdbarch);
296 /* On i386 the 'long double' type takes 96 bits,
297 while the real number of used bits is only 80,
298 both in processor and in memory.
299 The code below accepts the real bit size. */
300 else if (gdbarch_long_double_format (gdbarch) != NULL
301 && len == gdbarch_long_double_format (gdbarch)[0]->totalsize)
302 format = gdbarch_long_double_format (gdbarch);
303
304 return format;
305}
d7bd68ca 306\f
13d01224 307int
76a8ddb9
UW
308generic_convert_register_p (struct gdbarch *gdbarch, int regnum,
309 struct type *type)
13d01224 310{
9730f241 311 return 0;
13d01224
AC
312}
313
192cb3d4
MK
314int
315default_stabs_argument_has_addr (struct gdbarch *gdbarch, struct type *type)
316{
192cb3d4
MK
317 return 0;
318}
319
3ca64954
RC
320int
321generic_instruction_nullified (struct gdbarch *gdbarch,
322 struct regcache *regcache)
323{
324 return 0;
325}
326
123dc839
DJ
327int
328default_remote_register_number (struct gdbarch *gdbarch,
329 int regno)
330{
331 return regno;
332}
333
3437254d
PA
334/* See arch-utils.h. */
335
336int
337default_vsyscall_range (struct gdbarch *gdbarch, struct mem_range *range)
338{
339 return 0;
340}
341
01fb7433 342\f
b4a20239
AC
343/* Functions to manipulate the endianness of the target. */
344
f486487f 345static enum bfd_endian target_byte_order_user = BFD_ENDIAN_UNKNOWN;
b4a20239 346
53904c9e
AC
347static const char endian_big[] = "big";
348static const char endian_little[] = "little";
349static const char endian_auto[] = "auto";
40478521 350static const char *const endian_enum[] =
b4a20239
AC
351{
352 endian_big,
353 endian_little,
354 endian_auto,
355 NULL,
356};
53904c9e 357static const char *set_endian_string;
b4a20239 358
b6d373df
DJ
359enum bfd_endian
360selected_byte_order (void)
361{
e17c207e 362 return target_byte_order_user;
b6d373df
DJ
363}
364
b4a20239
AC
365/* Called by ``show endian''. */
366
367static void
7ab04401
AC
368show_endian (struct ui_file *file, int from_tty, struct cmd_list_element *c,
369 const char *value)
b4a20239 370{
7b6b9e83 371 if (target_byte_order_user == BFD_ENDIAN_UNKNOWN)
e17c207e 372 if (gdbarch_byte_order (get_current_arch ()) == BFD_ENDIAN_BIG)
7ab04401 373 fprintf_unfiltered (file, _("The target endianness is set automatically "
f63dcaf8 374 "(currently big endian).\n"));
edefbb7c 375 else
7ab04401 376 fprintf_unfiltered (file, _("The target endianness is set automatically "
f63dcaf8 377 "(currently little endian).\n"));
b4a20239 378 else
e17c207e 379 if (target_byte_order_user == BFD_ENDIAN_BIG)
7ab04401 380 fprintf_unfiltered (file,
f63dcaf8 381 _("The target is set to big endian.\n"));
7ab04401
AC
382 else
383 fprintf_unfiltered (file,
f63dcaf8 384 _("The target is set to little endian.\n"));
b4a20239
AC
385}
386
387static void
eb4c3f4a 388set_endian (const char *ignore_args, int from_tty, struct cmd_list_element *c)
b4a20239 389{
7a107747
DJ
390 struct gdbarch_info info;
391
392 gdbarch_info_init (&info);
393
3fd3d7d2 394 if (set_endian_string == endian_auto)
b4a20239 395 {
7a107747
DJ
396 target_byte_order_user = BFD_ENDIAN_UNKNOWN;
397 if (! gdbarch_update_p (info))
398 internal_error (__FILE__, __LINE__,
399 _("set_endian: architecture update failed"));
b4a20239
AC
400 }
401 else if (set_endian_string == endian_little)
402 {
d90cf509
AC
403 info.byte_order = BFD_ENDIAN_LITTLE;
404 if (! gdbarch_update_p (info))
edefbb7c 405 printf_unfiltered (_("Little endian target not supported by GDB\n"));
7a107747
DJ
406 else
407 target_byte_order_user = BFD_ENDIAN_LITTLE;
b4a20239
AC
408 }
409 else if (set_endian_string == endian_big)
410 {
d90cf509
AC
411 info.byte_order = BFD_ENDIAN_BIG;
412 if (! gdbarch_update_p (info))
edefbb7c 413 printf_unfiltered (_("Big endian target not supported by GDB\n"));
7a107747
DJ
414 else
415 target_byte_order_user = BFD_ENDIAN_BIG;
b4a20239
AC
416 }
417 else
8e65ff28 418 internal_error (__FILE__, __LINE__,
edefbb7c 419 _("set_endian: bad value"));
7a107747 420
7ab04401 421 show_endian (gdb_stdout, from_tty, NULL, NULL);
b4a20239
AC
422}
423
23181151 424/* Given SELECTED, a currently selected BFD architecture, and
e35359c5
UW
425 TARGET_DESC, the current target description, return what
426 architecture to use.
427
428 SELECTED may be NULL, in which case we return the architecture
429 associated with TARGET_DESC. If SELECTED specifies a variant
85102364 430 of the architecture associated with TARGET_DESC, return the
e35359c5
UW
431 more specific of the two.
432
433 If SELECTED is a different architecture, but it is accepted as
434 compatible by the target, we can use the target architecture.
435
436 If SELECTED is obviously incompatible, warn the user. */
23181151
DJ
437
438static const struct bfd_arch_info *
e35359c5
UW
439choose_architecture_for_target (const struct target_desc *target_desc,
440 const struct bfd_arch_info *selected)
23181151 441{
e35359c5 442 const struct bfd_arch_info *from_target = tdesc_architecture (target_desc);
23181151
DJ
443 const struct bfd_arch_info *compat1, *compat2;
444
445 if (selected == NULL)
446 return from_target;
447
448 if (from_target == NULL)
449 return selected;
450
451 /* struct bfd_arch_info objects are singletons: that is, there's
452 supposed to be exactly one instance for a given machine. So you
453 can tell whether two are equivalent by comparing pointers. */
454 if (from_target == selected)
455 return selected;
456
457 /* BFD's 'A->compatible (A, B)' functions return zero if A and B are
458 incompatible. But if they are compatible, it returns the 'more
459 featureful' of the two arches. That is, if A can run code
460 written for B, but B can't run code written for A, then it'll
461 return A.
462
463 Some targets (e.g. MIPS as of 2006-12-04) don't fully
464 implement this, instead always returning NULL or the first
465 argument. We detect that case by checking both directions. */
466
467 compat1 = selected->compatible (selected, from_target);
468 compat2 = from_target->compatible (from_target, selected);
469
470 if (compat1 == NULL && compat2 == NULL)
471 {
0e2de366
MS
472 /* BFD considers the architectures incompatible. Check our
473 target description whether it accepts SELECTED as compatible
474 anyway. */
e35359c5
UW
475 if (tdesc_compatible_p (target_desc, selected))
476 return from_target;
477
23181151
DJ
478 warning (_("Selected architecture %s is not compatible "
479 "with reported target architecture %s"),
480 selected->printable_name, from_target->printable_name);
481 return selected;
482 }
483
484 if (compat1 == NULL)
485 return compat2;
486 if (compat2 == NULL)
487 return compat1;
488 if (compat1 == compat2)
489 return compat1;
490
0e2de366
MS
491 /* If the two didn't match, but one of them was a default
492 architecture, assume the more specific one is correct. This
493 handles the case where an executable or target description just
494 says "mips", but the other knows which MIPS variant. */
23181151
DJ
495 if (compat1->the_default)
496 return compat2;
497 if (compat2->the_default)
498 return compat1;
499
500 /* We have no idea which one is better. This is a bug, but not
501 a critical problem; warn the user. */
502 warning (_("Selected architecture %s is ambiguous with "
503 "reported target architecture %s"),
504 selected->printable_name, from_target->printable_name);
505 return selected;
506}
507
0e2de366 508/* Functions to manipulate the architecture of the target. */
b4a20239
AC
509
510enum set_arch { set_arch_auto, set_arch_manual };
511
7a107747 512static const struct bfd_arch_info *target_architecture_user;
b4a20239 513
a8cf2722
AC
514static const char *set_architecture_string;
515
516const char *
517selected_architecture_name (void)
518{
7a107747 519 if (target_architecture_user == NULL)
a8cf2722
AC
520 return NULL;
521 else
522 return set_architecture_string;
523}
b4a20239 524
b4a20239 525/* Called if the user enters ``show architecture'' without an
0e2de366 526 argument. */
b4a20239
AC
527
528static void
7ab04401
AC
529show_architecture (struct ui_file *file, int from_tty,
530 struct cmd_list_element *c, const char *value)
b4a20239 531{
7a107747 532 if (target_architecture_user == NULL)
ccb9eba6
AB
533 fprintf_filtered (file, _("The target architecture is set to "
534 "\"auto\" (currently \"%s\").\n"),
3e43a32a 535 gdbarch_bfd_arch_info (get_current_arch ())->printable_name);
b4a20239 536 else
ccb9eba6 537 fprintf_filtered (file, _("The target architecture is set to \"%s\".\n"),
3e43a32a 538 set_architecture_string);
b4a20239
AC
539}
540
541
542/* Called if the user enters ``set architecture'' with or without an
0e2de366 543 argument. */
b4a20239
AC
544
545static void
eb4c3f4a
TT
546set_architecture (const char *ignore_args,
547 int from_tty, struct cmd_list_element *c)
b4a20239 548{
7a107747
DJ
549 struct gdbarch_info info;
550
551 gdbarch_info_init (&info);
552
b4a20239
AC
553 if (strcmp (set_architecture_string, "auto") == 0)
554 {
7a107747
DJ
555 target_architecture_user = NULL;
556 if (!gdbarch_update_p (info))
557 internal_error (__FILE__, __LINE__,
558 _("could not select an architecture automatically"));
b4a20239 559 }
d90cf509 560 else
b4a20239 561 {
b4a20239
AC
562 info.bfd_arch_info = bfd_scan_arch (set_architecture_string);
563 if (info.bfd_arch_info == NULL)
8e65ff28 564 internal_error (__FILE__, __LINE__,
edefbb7c 565 _("set_architecture: bfd_scan_arch failed"));
16f33e29 566 if (gdbarch_update_p (info))
7a107747 567 target_architecture_user = info.bfd_arch_info;
b4a20239 568 else
edefbb7c 569 printf_unfiltered (_("Architecture `%s' not recognized.\n"),
b4a20239
AC
570 set_architecture_string);
571 }
7ab04401 572 show_architecture (gdb_stdout, from_tty, NULL, NULL);
b4a20239
AC
573}
574
ebdba546 575/* Try to select a global architecture that matches "info". Return
0f9741f2 576 non-zero if the attempt succeeds. */
ebdba546
AC
577int
578gdbarch_update_p (struct gdbarch_info info)
579{
a7f1256d
UW
580 struct gdbarch *new_gdbarch;
581
582 /* Check for the current file. */
583 if (info.abfd == NULL)
7e10abd1 584 info.abfd = current_program_space->exec_bfd ();
a7f1256d
UW
585 if (info.abfd == NULL)
586 info.abfd = core_bfd;
587
588 /* Check for the current target description. */
589 if (info.target_desc == NULL)
590 info.target_desc = target_current_description ();
591
592 new_gdbarch = gdbarch_find_by_info (info);
ebdba546
AC
593
594 /* If there no architecture by that name, reject the request. */
595 if (new_gdbarch == NULL)
596 {
597 if (gdbarch_debug)
598 fprintf_unfiltered (gdb_stdlog, "gdbarch_update_p: "
599 "Architecture not found\n");
600 return 0;
601 }
602
603 /* If it is the same old architecture, accept the request (but don't
604 swap anything). */
f5656ead 605 if (new_gdbarch == target_gdbarch ())
ebdba546
AC
606 {
607 if (gdbarch_debug)
608 fprintf_unfiltered (gdb_stdlog, "gdbarch_update_p: "
e3cb3832
JB
609 "Architecture %s (%s) unchanged\n",
610 host_address_to_string (new_gdbarch),
ebdba546
AC
611 gdbarch_bfd_arch_info (new_gdbarch)->printable_name);
612 return 1;
613 }
614
615 /* It's a new architecture, swap it in. */
616 if (gdbarch_debug)
617 fprintf_unfiltered (gdb_stdlog, "gdbarch_update_p: "
e3cb3832
JB
618 "New architecture %s (%s) selected\n",
619 host_address_to_string (new_gdbarch),
ebdba546 620 gdbarch_bfd_arch_info (new_gdbarch)->printable_name);
aff68abb 621 set_target_gdbarch (new_gdbarch);
ebdba546
AC
622
623 return 1;
624}
625
2b026650
MK
626/* Return the architecture for ABFD. If no suitable architecture
627 could be find, return NULL. */
628
629struct gdbarch *
630gdbarch_from_bfd (bfd *abfd)
b4a20239 631{
d90cf509
AC
632 struct gdbarch_info info;
633 gdbarch_info_init (&info);
05c547f6 634
d90cf509 635 info.abfd = abfd;
b60eb90d 636 return gdbarch_find_by_info (info);
2b026650
MK
637}
638
639/* Set the dynamic target-system-dependent parameters (architecture,
640 byte-order) using information found in the BFD */
641
642void
643set_gdbarch_from_file (bfd *abfd)
644{
a7f1256d 645 struct gdbarch_info info;
2b026650
MK
646 struct gdbarch *gdbarch;
647
a7f1256d
UW
648 gdbarch_info_init (&info);
649 info.abfd = abfd;
650 info.target_desc = target_current_description ();
651 gdbarch = gdbarch_find_by_info (info);
652
2b026650 653 if (gdbarch == NULL)
8a3fe4f8 654 error (_("Architecture of file not recognized."));
aff68abb 655 set_target_gdbarch (gdbarch);
b4a20239
AC
656}
657
658/* Initialize the current architecture. Update the ``set
659 architecture'' command so that it specifies a list of valid
660 architectures. */
661
1ba607ad
AC
662#ifdef DEFAULT_BFD_ARCH
663extern const bfd_arch_info_type DEFAULT_BFD_ARCH;
664static const bfd_arch_info_type *default_bfd_arch = &DEFAULT_BFD_ARCH;
665#else
4b9b3959 666static const bfd_arch_info_type *default_bfd_arch;
1ba607ad
AC
667#endif
668
669#ifdef DEFAULT_BFD_VEC
670extern const bfd_target DEFAULT_BFD_VEC;
671static const bfd_target *default_bfd_vec = &DEFAULT_BFD_VEC;
672#else
673static const bfd_target *default_bfd_vec;
674#endif
675
f486487f 676static enum bfd_endian default_byte_order = BFD_ENDIAN_UNKNOWN;
7a107747 677
b4a20239
AC
678void
679initialize_current_architecture (void)
680{
681 const char **arches = gdbarch_printable_names ();
05c547f6 682 struct gdbarch_info info;
b4a20239 683
0e2de366 684 /* determine a default architecture and byte order. */
fb6ecb0f 685 gdbarch_info_init (&info);
1ba607ad 686
0e2de366 687 /* Find a default architecture. */
7a107747 688 if (default_bfd_arch == NULL)
b4a20239 689 {
1ba607ad 690 /* Choose the architecture by taking the first one
0e2de366 691 alphabetically. */
1ba607ad 692 const char *chosen = arches[0];
b4a20239 693 const char **arch;
b4a20239
AC
694 for (arch = arches; *arch != NULL; arch++)
695 {
b4a20239
AC
696 if (strcmp (*arch, chosen) < 0)
697 chosen = *arch;
698 }
699 if (chosen == NULL)
8e65ff28 700 internal_error (__FILE__, __LINE__,
edefbb7c 701 _("initialize_current_architecture: No arch"));
7a107747
DJ
702 default_bfd_arch = bfd_scan_arch (chosen);
703 if (default_bfd_arch == NULL)
8e65ff28 704 internal_error (__FILE__, __LINE__,
edefbb7c 705 _("initialize_current_architecture: Arch not found"));
1ba607ad
AC
706 }
707
7a107747
DJ
708 info.bfd_arch_info = default_bfd_arch;
709
afe64c1a 710 /* Take several guesses at a byte order. */
7a107747 711 if (default_byte_order == BFD_ENDIAN_UNKNOWN
1ba607ad
AC
712 && default_bfd_vec != NULL)
713 {
0e2de366 714 /* Extract BFD's default vector's byte order. */
1ba607ad
AC
715 switch (default_bfd_vec->byteorder)
716 {
717 case BFD_ENDIAN_BIG:
7a107747 718 default_byte_order = BFD_ENDIAN_BIG;
1ba607ad
AC
719 break;
720 case BFD_ENDIAN_LITTLE:
7a107747 721 default_byte_order = BFD_ENDIAN_LITTLE;
1ba607ad
AC
722 break;
723 default:
724 break;
725 }
726 }
7a107747 727 if (default_byte_order == BFD_ENDIAN_UNKNOWN)
1ba607ad 728 {
0e2de366 729 /* look for ``*el-*'' in the target name. */
1ba607ad
AC
730 const char *chp;
731 chp = strchr (target_name, '-');
732 if (chp != NULL
733 && chp - 2 >= target_name
61012eef 734 && startswith (chp - 2, "el"))
7a107747 735 default_byte_order = BFD_ENDIAN_LITTLE;
1ba607ad 736 }
7a107747 737 if (default_byte_order == BFD_ENDIAN_UNKNOWN)
1ba607ad
AC
738 {
739 /* Wire it to big-endian!!! */
7a107747 740 default_byte_order = BFD_ENDIAN_BIG;
1ba607ad
AC
741 }
742
7a107747 743 info.byte_order = default_byte_order;
9d4fde75 744 info.byte_order_for_code = info.byte_order;
7a107747 745
d90cf509
AC
746 if (! gdbarch_update_p (info))
747 internal_error (__FILE__, __LINE__,
edefbb7c
AC
748 _("initialize_current_architecture: Selection of "
749 "initial architecture failed"));
b4a20239 750
1ba607ad 751 /* Create the ``set architecture'' command appending ``auto'' to the
0e2de366 752 list of architectures. */
b4a20239 753 {
0e2de366 754 /* Append ``auto''. */
b4a20239
AC
755 int nr;
756 for (nr = 0; arches[nr] != NULL; nr++);
224c3ddb 757 arches = XRESIZEVEC (const char *, arches, nr + 2);
b4a20239
AC
758 arches[nr + 0] = "auto";
759 arches[nr + 1] = NULL;
7ab04401 760 add_setshow_enum_cmd ("architecture", class_support,
3e43a32a
MS
761 arches, &set_architecture_string,
762 _("Set architecture of target."),
763 _("Show architecture of target."), NULL,
7ab04401
AC
764 set_architecture, show_architecture,
765 &setlist, &showlist);
b4a20239 766 add_alias_cmd ("processor", "architecture", class_support, 1, &setlist);
b4a20239
AC
767 }
768}
769
770
fb6ecb0f
AC
771/* Initialize a gdbarch info to values that will be automatically
772 overridden. Note: Originally, this ``struct info'' was initialized
ce2826aa 773 using memset(0). Unfortunately, that ran into problems, namely
fb6ecb0f
AC
774 BFD_ENDIAN_BIG is zero. An explicit initialization function that
775 can explicitly set each field to a well defined value is used. */
776
777void
778gdbarch_info_init (struct gdbarch_info *info)
779{
780 memset (info, 0, sizeof (struct gdbarch_info));
428721aa 781 info->byte_order = BFD_ENDIAN_UNKNOWN;
9d4fde75 782 info->byte_order_for_code = info->byte_order;
fb6ecb0f
AC
783}
784
100bcc3f 785/* Similar to init, but this time fill in the blanks. Information is
7a107747
DJ
786 obtained from the global "set ..." options and explicitly
787 initialized INFO fields. */
bf922ad9
AC
788
789void
7a107747 790gdbarch_info_fill (struct gdbarch_info *info)
bf922ad9
AC
791{
792 /* "(gdb) set architecture ...". */
793 if (info->bfd_arch_info == NULL
7a107747
DJ
794 && target_architecture_user)
795 info->bfd_arch_info = target_architecture_user;
424163ea 796 /* From the file. */
bf922ad9
AC
797 if (info->bfd_arch_info == NULL
798 && info->abfd != NULL
799 && bfd_get_arch (info->abfd) != bfd_arch_unknown
800 && bfd_get_arch (info->abfd) != bfd_arch_obscure)
801 info->bfd_arch_info = bfd_get_arch_info (info->abfd);
23181151
DJ
802 /* From the target. */
803 if (info->target_desc != NULL)
804 info->bfd_arch_info = choose_architecture_for_target
e35359c5 805 (info->target_desc, info->bfd_arch_info);
7a107747
DJ
806 /* From the default. */
807 if (info->bfd_arch_info == NULL)
808 info->bfd_arch_info = default_bfd_arch;
bf922ad9
AC
809
810 /* "(gdb) set byte-order ...". */
811 if (info->byte_order == BFD_ENDIAN_UNKNOWN
7a107747
DJ
812 && target_byte_order_user != BFD_ENDIAN_UNKNOWN)
813 info->byte_order = target_byte_order_user;
bf922ad9
AC
814 /* From the INFO struct. */
815 if (info->byte_order == BFD_ENDIAN_UNKNOWN
816 && info->abfd != NULL)
817 info->byte_order = (bfd_big_endian (info->abfd) ? BFD_ENDIAN_BIG
7a107747
DJ
818 : bfd_little_endian (info->abfd) ? BFD_ENDIAN_LITTLE
819 : BFD_ENDIAN_UNKNOWN);
820 /* From the default. */
821 if (info->byte_order == BFD_ENDIAN_UNKNOWN)
822 info->byte_order = default_byte_order;
9d4fde75 823 info->byte_order_for_code = info->byte_order;
4b2dfa9d
MR
824 /* Wire the default to the last selected byte order. */
825 default_byte_order = info->byte_order;
bf922ad9
AC
826
827 /* "(gdb) set osabi ...". Handled by gdbarch_lookup_osabi. */
08d16641 828 /* From the manual override, or from file. */
26540402 829 if (info->osabi == GDB_OSABI_UNKNOWN)
bf922ad9 830 info->osabi = gdbarch_lookup_osabi (info->abfd);
08d16641 831 /* From the target. */
26540402 832
08d16641
PA
833 if (info->osabi == GDB_OSABI_UNKNOWN && info->target_desc != NULL)
834 info->osabi = tdesc_osabi (info->target_desc);
835 /* From the configured default. */
f4290e2a 836#ifdef GDB_OSABI_DEFAULT
08d16641
PA
837 if (info->osabi == GDB_OSABI_UNKNOWN)
838 info->osabi = GDB_OSABI_DEFAULT;
f4290e2a 839#endif
26540402
SM
840 /* If we still don't know which osabi to pick, pick none. */
841 if (info->osabi == GDB_OSABI_UNKNOWN)
842 info->osabi = GDB_OSABI_NONE;
bf922ad9
AC
843
844 /* Must have at least filled in the architecture. */
845 gdb_assert (info->bfd_arch_info != NULL);
846}
847
0e2de366
MS
848/* Return "current" architecture. If the target is running, this is
849 the architecture of the selected frame. Otherwise, the "current"
850 architecture defaults to the target architecture.
e17c207e 851
0e2de366
MS
852 This function should normally be called solely by the command
853 interpreter routines to determine the architecture to execute a
854 command in. */
e17c207e
UW
855struct gdbarch *
856get_current_arch (void)
857{
858 if (has_stack_frames ())
859 return get_frame_arch (get_selected_frame (NULL));
860 else
f5656ead 861 return target_gdbarch ();
e17c207e
UW
862}
863
6c95b8df
PA
864int
865default_has_shared_address_space (struct gdbarch *gdbarch)
866{
867 /* Simply say no. In most unix-like targets each inferior/process
868 has its own address space. */
869 return 0;
870}
871
7a697b8d 872int
6b940e6a 873default_fast_tracepoint_valid_at (struct gdbarch *gdbarch, CORE_ADDR addr,
281d762b 874 std::string *msg)
7a697b8d
SS
875{
876 /* We don't know if maybe the target has some way to do fast
877 tracepoints that doesn't need gdbarch, so always say yes. */
878 if (msg)
281d762b 879 msg->clear ();
7a697b8d
SS
880 return 1;
881}
882
22f13eb8
YQ
883const gdb_byte *
884default_breakpoint_from_pc (struct gdbarch *gdbarch, CORE_ADDR *pcptr,
885 int *lenptr)
886{
887 int kind = gdbarch_breakpoint_kind_from_pc (gdbarch, pcptr);
888
889 return gdbarch_sw_breakpoint_from_kind (gdbarch, kind, lenptr);
890}
833b7ab5
YQ
891int
892default_breakpoint_kind_from_current_state (struct gdbarch *gdbarch,
893 struct regcache *regcache,
894 CORE_ADDR *pcptr)
895{
896 return gdbarch_breakpoint_kind_from_pc (gdbarch, pcptr);
897}
898
22f13eb8 899
6710bf39
SS
900void
901default_gen_return_address (struct gdbarch *gdbarch,
902 struct agent_expr *ax, struct axs_value *value,
903 CORE_ADDR scope)
904{
905 error (_("This architecture has no method to collect a return address."));
906}
907
18648a37
YQ
908int
909default_return_in_first_hidden_param_p (struct gdbarch *gdbarch,
910 struct type *type)
911{
912 /* Usually, the return value's address is stored the in the "first hidden"
913 parameter if the return value should be passed by reference, as
914 specified in ABI. */
9d084466 915 return !(language_pass_by_reference (type).trivially_copyable);
18648a37
YQ
916}
917
c2170eef
MM
918int default_insn_is_call (struct gdbarch *gdbarch, CORE_ADDR addr)
919{
920 return 0;
921}
922
923int default_insn_is_ret (struct gdbarch *gdbarch, CORE_ADDR addr)
924{
925 return 0;
926}
927
928int default_insn_is_jump (struct gdbarch *gdbarch, CORE_ADDR addr)
929{
930 return 0;
931}
932
5133a315
LM
933/* See arch-utils.h. */
934
935bool
936default_program_breakpoint_here_p (struct gdbarch *gdbarch,
937 CORE_ADDR address)
938{
939 int len;
940 const gdb_byte *bpoint = gdbarch_breakpoint_from_pc (gdbarch, &address, &len);
941
942 /* Software breakpoints unsupported? */
943 if (bpoint == nullptr)
944 return false;
945
946 gdb_byte *target_mem = (gdb_byte *) alloca (len);
947
948 /* Enable the automatic memory restoration from breakpoints while
949 we read the memory. Otherwise we may find temporary breakpoints, ones
950 inserted by GDB, and flag them as permanent breakpoints. */
951 scoped_restore restore_memory
952 = make_scoped_restore_show_memory_breakpoints (0);
953
954 if (target_read_memory (address, target_mem, len) == 0)
955 {
956 /* Check if this is a breakpoint instruction for this architecture,
957 including ones used by GDB. */
958 if (memcmp (target_mem, bpoint, len) == 0)
959 return true;
960 }
961
962 return false;
963}
964
ae9bb220
PA
965void
966default_skip_permanent_breakpoint (struct regcache *regcache)
967{
ac7936df 968 struct gdbarch *gdbarch = regcache->arch ();
ae9bb220 969 CORE_ADDR current_pc = regcache_read_pc (regcache);
ae9bb220
PA
970 int bp_len;
971
ac298888 972 gdbarch_breakpoint_from_pc (gdbarch, &current_pc, &bp_len);
ae9bb220
PA
973 current_pc += bp_len;
974 regcache_write_pc (regcache, current_pc);
975}
c0e8c252 976
f208eee0
JK
977CORE_ADDR
978default_infcall_mmap (CORE_ADDR size, unsigned prot)
979{
980 error (_("This target does not support inferior memory allocation by mmap."));
981}
982
7f361056
JK
983void
984default_infcall_munmap (CORE_ADDR addr, CORE_ADDR size)
985{
986 /* Memory reserved by inferior mmap is kept leaked. */
987}
988
f208eee0
JK
989/* -mcmodel=large is used so that no GOT (Global Offset Table) is needed to be
990 created in inferior memory by GDB (normally it is set by ld.so). */
991
953cff56 992std::string
f208eee0
JK
993default_gcc_target_options (struct gdbarch *gdbarch)
994{
953cff56
TT
995 return string_printf ("-m%d%s", gdbarch_ptr_bit (gdbarch),
996 (gdbarch_ptr_bit (gdbarch) == 64
997 ? " -mcmodel=large" : ""));
f208eee0
JK
998}
999
ac04f72b
TT
1000/* gdbarch gnu_triplet_regexp method. */
1001
1002const char *
1003default_gnu_triplet_regexp (struct gdbarch *gdbarch)
1004{
1005 return gdbarch_bfd_arch_info (gdbarch)->arch_name;
1006}
1007
3374165f
SM
1008/* Default method for gdbarch_addressable_memory_unit_size. By default, a memory byte has
1009 a size of 1 octet. */
1010
1011int
1012default_addressable_memory_unit_size (struct gdbarch *gdbarch)
1013{
1014 return 1;
1015}
1016
5f034a78
MK
1017void
1018default_guess_tracepoint_registers (struct gdbarch *gdbarch,
1019 struct regcache *regcache,
1020 CORE_ADDR addr)
1021{
1022 int pc_regno = gdbarch_pc_regnum (gdbarch);
1023 gdb_byte *regs;
1024
1025 /* This guessing code below only works if the PC register isn't
1026 a pseudo-register. The value of a pseudo-register isn't stored
1027 in the (non-readonly) regcache -- instead it's recomputed
1028 (probably from some other cached raw register) whenever the
1029 register is read. In this case, a custom method implementation
1030 should be used by the architecture. */
1031 if (pc_regno < 0 || pc_regno >= gdbarch_num_regs (gdbarch))
1032 return;
1033
1034 regs = (gdb_byte *) alloca (register_size (gdbarch, pc_regno));
1035 store_unsigned_integer (regs, register_size (gdbarch, pc_regno),
1036 gdbarch_byte_order (gdbarch), addr);
73e1c03f 1037 regcache->raw_supply (pc_regno, regs);
5f034a78
MK
1038}
1039
39503f82
YQ
1040int
1041default_print_insn (bfd_vma memaddr, disassemble_info *info)
1042{
1043 disassembler_ftype disassemble_fn;
1044
39503f82 1045 disassemble_fn = disassembler (info->arch, info->endian == BFD_ENDIAN_BIG,
7e10abd1 1046 info->mach, current_program_space->exec_bfd ());
39503f82
YQ
1047
1048 gdb_assert (disassemble_fn != NULL);
1049 return (*disassemble_fn) (memaddr, info);
1050}
1051
46a62268
YQ
1052/* See arch-utils.h. */
1053
1054CORE_ADDR
1055gdbarch_skip_prologue_noexcept (gdbarch *gdbarch, CORE_ADDR pc) noexcept
1056{
1057 CORE_ADDR new_pc = pc;
1058
a70b8144 1059 try
46a62268
YQ
1060 {
1061 new_pc = gdbarch_skip_prologue (gdbarch, pc);
1062 }
230d2906 1063 catch (const gdb_exception &ex)
46a62268 1064 {}
46a62268
YQ
1065
1066 return new_pc;
1067}
1068
1d509aa6
MM
1069/* See arch-utils.h. */
1070
1071bool
1072default_in_indirect_branch_thunk (gdbarch *gdbarch, CORE_ADDR pc)
1073{
1074 return false;
1075}
1076
2b4424c3
TT
1077/* See arch-utils.h. */
1078
1079ULONGEST
1080default_type_align (struct gdbarch *gdbarch, struct type *type)
1081{
5561fc30 1082 return 0;
2b4424c3
TT
1083}
1084
aa7ca1bb
AH
1085/* See arch-utils.h. */
1086
1087std::string
1088default_get_pc_address_flags (frame_info *frame, CORE_ADDR pc)
1089{
1090 return "";
1091}
1092
7e183d27
KB
1093/* See arch-utils.h. */
1094void
1095default_read_core_file_mappings (struct gdbarch *gdbarch,
dda83cd7 1096 struct bfd *cbfd,
7e183d27
KB
1097 gdb::function_view<void (ULONGEST count)>
1098 pre_loop_cb,
1099 gdb::function_view<void (int num,
dda83cd7 1100 ULONGEST start,
7e183d27
KB
1101 ULONGEST end,
1102 ULONGEST file_ofs,
70125a45 1103 const char *filename)>
7e183d27
KB
1104 loop_cb)
1105{
1106}
1107
6c265988 1108void _initialize_gdbarch_utils ();
c0e8c252 1109void
6c265988 1110_initialize_gdbarch_utils ()
c0e8c252 1111{
7ab04401 1112 add_setshow_enum_cmd ("endian", class_support,
3e43a32a
MS
1113 endian_enum, &set_endian_string,
1114 _("Set endianness of target."),
1115 _("Show endianness of target."),
1116 NULL, set_endian, show_endian,
7ab04401 1117 &setlist, &showlist);
c0e8c252 1118}
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