gdb: Use std::min and std::max throughout
[deliverable/binutils-gdb.git] / gdb / target.c
CommitLineData
c906108c 1/* Select target systems and architectures at runtime for GDB.
7998dfc3 2
618f726f 3 Copyright (C) 1990-2016 Free Software Foundation, Inc.
7998dfc3 4
c906108c
SS
5 Contributed by Cygnus Support.
6
c5aa993b 7 This file is part of GDB.
c906108c 8
c5aa993b
JM
9 This program is free software; you can redistribute it and/or modify
10 it under the terms of the GNU General Public License as published by
a9762ec7 11 the Free Software Foundation; either version 3 of the License, or
c5aa993b 12 (at your option) any later version.
c906108c 13
c5aa993b
JM
14 This program is distributed in the hope that it will be useful,
15 but WITHOUT ANY WARRANTY; without even the implied warranty of
16 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 GNU General Public License for more details.
c906108c 18
c5aa993b 19 You should have received a copy of the GNU General Public License
a9762ec7 20 along with this program. If not, see <http://www.gnu.org/licenses/>. */
c906108c
SS
21
22#include "defs.h"
c906108c 23#include "target.h"
68c765e2 24#include "target-dcache.h"
c906108c
SS
25#include "gdbcmd.h"
26#include "symtab.h"
27#include "inferior.h"
45741a9c 28#include "infrun.h"
c906108c
SS
29#include "bfd.h"
30#include "symfile.h"
31#include "objfiles.h"
4930751a 32#include "dcache.h"
c906108c 33#include <signal.h>
4e052eda 34#include "regcache.h"
b6591e8b 35#include "gdbcore.h"
424163ea 36#include "target-descriptions.h"
e1ac3328 37#include "gdbthread.h"
b9db4ced 38#include "solib.h"
07b82ea5 39#include "exec.h"
edb3359d 40#include "inline-frame.h"
2f4d8875 41#include "tracepoint.h"
7313baad 42#include "gdb/fileio.h"
8ffcbaaf 43#include "agent.h"
8de71aab 44#include "auxv.h"
a7068b60 45#include "target-debug.h"
41fd2b0f
PA
46#include "top.h"
47#include "event-top.h"
325fac50 48#include <algorithm>
c906108c 49
a14ed312 50static void target_info (char *, int);
c906108c 51
f0f9ff95
TT
52static void generic_tls_error (void) ATTRIBUTE_NORETURN;
53
0a4f40a2 54static void default_terminal_info (struct target_ops *, const char *, int);
c906108c 55
5009afc5
AS
56static int default_watchpoint_addr_within_range (struct target_ops *,
57 CORE_ADDR, CORE_ADDR, int);
58
31568a15
TT
59static int default_region_ok_for_hw_watchpoint (struct target_ops *,
60 CORE_ADDR, int);
e0d24f8d 61
a30bf1f1 62static void default_rcmd (struct target_ops *, const char *, struct ui_file *);
a53f3625 63
4229b31d
TT
64static ptid_t default_get_ada_task_ptid (struct target_ops *self,
65 long lwp, long tid);
66
098dba18
TT
67static int default_follow_fork (struct target_ops *self, int follow_child,
68 int detach_fork);
69
8d657035
TT
70static void default_mourn_inferior (struct target_ops *self);
71
58a5184e
TT
72static int default_search_memory (struct target_ops *ops,
73 CORE_ADDR start_addr,
74 ULONGEST search_space_len,
75 const gdb_byte *pattern,
76 ULONGEST pattern_len,
77 CORE_ADDR *found_addrp);
78
936d2992
PA
79static int default_verify_memory (struct target_ops *self,
80 const gdb_byte *data,
81 CORE_ADDR memaddr, ULONGEST size);
82
8eaff7cd
TT
83static struct address_space *default_thread_address_space
84 (struct target_ops *self, ptid_t ptid);
85
c25c4a8b 86static void tcomplain (void) ATTRIBUTE_NORETURN;
c906108c 87
555bbdeb
TT
88static int return_zero (struct target_ops *);
89
90static int return_zero_has_execution (struct target_ops *, ptid_t);
c906108c 91
a14ed312 92static void target_command (char *, int);
c906108c 93
a14ed312 94static struct target_ops *find_default_run_target (char *);
c906108c 95
c2250ad1
UW
96static struct gdbarch *default_thread_architecture (struct target_ops *ops,
97 ptid_t ptid);
98
0b5a2719
TT
99static int dummy_find_memory_regions (struct target_ops *self,
100 find_memory_region_ftype ignore1,
101 void *ignore2);
102
16f796b1
TT
103static char *dummy_make_corefile_notes (struct target_ops *self,
104 bfd *ignore1, int *ignore2);
105
770234d3
TT
106static char *default_pid_to_str (struct target_ops *ops, ptid_t ptid);
107
fe31bf5b
TT
108static enum exec_direction_kind default_execution_direction
109 (struct target_ops *self);
110
a7068b60
TT
111static struct target_ops debug_target;
112
1101cb7b
TT
113#include "target-delegates.c"
114
a14ed312 115static void init_dummy_target (void);
c906108c 116
3cecbbbe
TT
117static void update_current_target (void);
118
89a1c21a
SM
119/* Vector of existing target structures. */
120typedef struct target_ops *target_ops_p;
121DEF_VEC_P (target_ops_p);
122static VEC (target_ops_p) *target_structs;
c906108c
SS
123
124/* The initial current target, so that there is always a semi-valid
125 current target. */
126
127static struct target_ops dummy_target;
128
129/* Top of target stack. */
130
258b763a 131static struct target_ops *target_stack;
c906108c
SS
132
133/* The target structure we are currently using to talk to a process
134 or file or whatever "inferior" we have. */
135
136struct target_ops current_target;
137
138/* Command list for target. */
139
140static struct cmd_list_element *targetlist = NULL;
141
cf7a04e8
DJ
142/* Nonzero if we should trust readonly sections from the
143 executable when reading memory. */
144
145static int trust_readonly = 0;
146
8defab1a
DJ
147/* Nonzero if we should show true memory content including
148 memory breakpoint inserted by gdb. */
149
150static int show_memory_breakpoints = 0;
151
d914c394
SS
152/* These globals control whether GDB attempts to perform these
153 operations; they are useful for targets that need to prevent
154 inadvertant disruption, such as in non-stop mode. */
155
156int may_write_registers = 1;
157
158int may_write_memory = 1;
159
160int may_insert_breakpoints = 1;
161
162int may_insert_tracepoints = 1;
163
164int may_insert_fast_tracepoints = 1;
165
166int may_stop = 1;
167
c906108c
SS
168/* Non-zero if we want to see trace of target level stuff. */
169
ccce17b0 170static unsigned int targetdebug = 0;
3cecbbbe
TT
171
172static void
173set_targetdebug (char *args, int from_tty, struct cmd_list_element *c)
174{
175 update_current_target ();
176}
177
920d2a44
AC
178static void
179show_targetdebug (struct ui_file *file, int from_tty,
180 struct cmd_list_element *c, const char *value)
181{
182 fprintf_filtered (file, _("Target debugging is %s.\n"), value);
183}
c906108c 184
a14ed312 185static void setup_target_debug (void);
c906108c 186
c906108c
SS
187/* The user just typed 'target' without the name of a target. */
188
c906108c 189static void
fba45db2 190target_command (char *arg, int from_tty)
c906108c
SS
191{
192 fputs_filtered ("Argument required (target name). Try `help target'\n",
193 gdb_stdout);
194}
195
c35b1492
PA
196/* Default target_has_* methods for process_stratum targets. */
197
198int
199default_child_has_all_memory (struct target_ops *ops)
200{
201 /* If no inferior selected, then we can't read memory here. */
202 if (ptid_equal (inferior_ptid, null_ptid))
203 return 0;
204
205 return 1;
206}
207
208int
209default_child_has_memory (struct target_ops *ops)
210{
211 /* If no inferior selected, then we can't read memory here. */
212 if (ptid_equal (inferior_ptid, null_ptid))
213 return 0;
214
215 return 1;
216}
217
218int
219default_child_has_stack (struct target_ops *ops)
220{
221 /* If no inferior selected, there's no stack. */
222 if (ptid_equal (inferior_ptid, null_ptid))
223 return 0;
224
225 return 1;
226}
227
228int
229default_child_has_registers (struct target_ops *ops)
230{
231 /* Can't read registers from no inferior. */
232 if (ptid_equal (inferior_ptid, null_ptid))
233 return 0;
234
235 return 1;
236}
237
238int
aeaec162 239default_child_has_execution (struct target_ops *ops, ptid_t the_ptid)
c35b1492
PA
240{
241 /* If there's no thread selected, then we can't make it run through
242 hoops. */
aeaec162 243 if (ptid_equal (the_ptid, null_ptid))
c35b1492
PA
244 return 0;
245
246 return 1;
247}
248
249
250int
251target_has_all_memory_1 (void)
252{
253 struct target_ops *t;
254
255 for (t = current_target.beneath; t != NULL; t = t->beneath)
256 if (t->to_has_all_memory (t))
257 return 1;
258
259 return 0;
260}
261
262int
263target_has_memory_1 (void)
264{
265 struct target_ops *t;
266
267 for (t = current_target.beneath; t != NULL; t = t->beneath)
268 if (t->to_has_memory (t))
269 return 1;
270
271 return 0;
272}
273
274int
275target_has_stack_1 (void)
276{
277 struct target_ops *t;
278
279 for (t = current_target.beneath; t != NULL; t = t->beneath)
280 if (t->to_has_stack (t))
281 return 1;
282
283 return 0;
284}
285
286int
287target_has_registers_1 (void)
288{
289 struct target_ops *t;
290
291 for (t = current_target.beneath; t != NULL; t = t->beneath)
292 if (t->to_has_registers (t))
293 return 1;
294
295 return 0;
296}
297
298int
aeaec162 299target_has_execution_1 (ptid_t the_ptid)
c35b1492
PA
300{
301 struct target_ops *t;
302
303 for (t = current_target.beneath; t != NULL; t = t->beneath)
aeaec162 304 if (t->to_has_execution (t, the_ptid))
c35b1492
PA
305 return 1;
306
307 return 0;
308}
309
aeaec162
TT
310int
311target_has_execution_current (void)
312{
313 return target_has_execution_1 (inferior_ptid);
314}
315
c22a2b88
TT
316/* Complete initialization of T. This ensures that various fields in
317 T are set, if needed by the target implementation. */
c906108c
SS
318
319void
c22a2b88 320complete_target_initialization (struct target_ops *t)
c906108c 321{
0088c768 322 /* Provide default values for all "must have" methods. */
0088c768 323
c35b1492 324 if (t->to_has_all_memory == NULL)
555bbdeb 325 t->to_has_all_memory = return_zero;
c35b1492
PA
326
327 if (t->to_has_memory == NULL)
555bbdeb 328 t->to_has_memory = return_zero;
c35b1492
PA
329
330 if (t->to_has_stack == NULL)
555bbdeb 331 t->to_has_stack = return_zero;
c35b1492
PA
332
333 if (t->to_has_registers == NULL)
555bbdeb 334 t->to_has_registers = return_zero;
c35b1492
PA
335
336 if (t->to_has_execution == NULL)
555bbdeb 337 t->to_has_execution = return_zero_has_execution;
1101cb7b 338
b3ccfe11
TT
339 /* These methods can be called on an unpushed target and so require
340 a default implementation if the target might plausibly be the
341 default run target. */
342 gdb_assert (t->to_can_run == NULL || (t->to_can_async_p != NULL
343 && t->to_supports_non_stop != NULL));
344
1101cb7b 345 install_delegators (t);
c22a2b88
TT
346}
347
8981c758
TT
348/* This is used to implement the various target commands. */
349
350static void
351open_target (char *args, int from_tty, struct cmd_list_element *command)
352{
19ba03f4 353 struct target_ops *ops = (struct target_ops *) get_cmd_context (command);
8981c758
TT
354
355 if (targetdebug)
356 fprintf_unfiltered (gdb_stdlog, "-> %s->to_open (...)\n",
357 ops->to_shortname);
358
359 ops->to_open (args, from_tty);
360
361 if (targetdebug)
362 fprintf_unfiltered (gdb_stdlog, "<- %s->to_open (%s, %d)\n",
363 ops->to_shortname, args, from_tty);
364}
365
c22a2b88
TT
366/* Add possible target architecture T to the list and add a new
367 command 'target T->to_shortname'. Set COMPLETER as the command's
368 completer if not NULL. */
369
370void
371add_target_with_completer (struct target_ops *t,
372 completer_ftype *completer)
373{
374 struct cmd_list_element *c;
375
376 complete_target_initialization (t);
c35b1492 377
89a1c21a 378 VEC_safe_push (target_ops_p, target_structs, t);
c906108c
SS
379
380 if (targetlist == NULL)
1bedd215
AC
381 add_prefix_cmd ("target", class_run, target_command, _("\
382Connect to a target machine or process.\n\
c906108c
SS
383The first argument is the type or protocol of the target machine.\n\
384Remaining arguments are interpreted by the target protocol. For more\n\
385information on the arguments for a particular protocol, type\n\
1bedd215 386`help target ' followed by the protocol name."),
c906108c 387 &targetlist, "target ", 0, &cmdlist);
8981c758
TT
388 c = add_cmd (t->to_shortname, no_class, NULL, t->to_doc, &targetlist);
389 set_cmd_sfunc (c, open_target);
390 set_cmd_context (c, t);
9852c492
YQ
391 if (completer != NULL)
392 set_cmd_completer (c, completer);
393}
394
395/* Add a possible target architecture to the list. */
396
397void
398add_target (struct target_ops *t)
399{
400 add_target_with_completer (t, NULL);
c906108c
SS
401}
402
b48d48eb
MM
403/* See target.h. */
404
405void
406add_deprecated_target_alias (struct target_ops *t, char *alias)
407{
408 struct cmd_list_element *c;
409 char *alt;
410
411 /* If we use add_alias_cmd, here, we do not get the deprecated warning,
412 see PR cli/15104. */
8981c758
TT
413 c = add_cmd (alias, no_class, NULL, t->to_doc, &targetlist);
414 set_cmd_sfunc (c, open_target);
415 set_cmd_context (c, t);
b48d48eb
MM
416 alt = xstrprintf ("target %s", t->to_shortname);
417 deprecate_cmd (c, alt);
418}
419
c906108c
SS
420/* Stub functions */
421
7d85a9c0
JB
422void
423target_kill (void)
424{
423a4807 425 current_target.to_kill (&current_target);
7d85a9c0
JB
426}
427
11cf8741 428void
9cbe5fff 429target_load (const char *arg, int from_tty)
11cf8741 430{
4e5d721f 431 target_dcache_invalidate ();
71a9f134 432 (*current_target.to_load) (&current_target, arg, from_tty);
11cf8741
JM
433}
434
5842f62a
PA
435/* Possible terminal states. */
436
437enum terminal_state
438 {
439 /* The inferior's terminal settings are in effect. */
440 terminal_is_inferior = 0,
441
442 /* Some of our terminal settings are in effect, enough to get
443 proper output. */
444 terminal_is_ours_for_output = 1,
445
446 /* Our terminal settings are in effect, for output and input. */
447 terminal_is_ours = 2
448 };
449
7afa63c6 450static enum terminal_state terminal_state = terminal_is_ours;
5842f62a
PA
451
452/* See target.h. */
453
454void
455target_terminal_init (void)
456{
457 (*current_target.to_terminal_init) (&current_target);
458
459 terminal_state = terminal_is_ours;
460}
461
462/* See target.h. */
463
6fdebc3d
PA
464int
465target_terminal_is_inferior (void)
466{
467 return (terminal_state == terminal_is_inferior);
468}
469
470/* See target.h. */
471
2f99e8fc
YQ
472int
473target_terminal_is_ours (void)
474{
475 return (terminal_state == terminal_is_ours);
476}
477
478/* See target.h. */
479
d9d2d8b6
PA
480void
481target_terminal_inferior (void)
482{
41fd2b0f
PA
483 struct ui *ui = current_ui;
484
d9d2d8b6 485 /* A background resume (``run&'') should leave GDB in control of the
3b12939d
PA
486 terminal. */
487 if (ui->prompt_state != PROMPT_BLOCKED)
d9d2d8b6
PA
488 return;
489
215d3118
PA
490 /* Since we always run the inferior in the main console (unless "set
491 inferior-tty" is in effect), when some UI other than the main one
492 calls target_terminal_inferior/target_terminal_inferior, then we
215d3118
PA
493 leave the main UI's terminal settings as is. */
494 if (ui != main_ui)
495 return;
496
5842f62a
PA
497 if (terminal_state == terminal_is_inferior)
498 return;
499
d9d2d8b6
PA
500 /* If GDB is resuming the inferior in the foreground, install
501 inferior's terminal modes. */
d2f640d4 502 (*current_target.to_terminal_inferior) (&current_target);
5842f62a 503 terminal_state = terminal_is_inferior;
93692b58
PA
504
505 /* If the user hit C-c before, pretend that it was hit right
506 here. */
507 if (check_quit_flag ())
508 target_pass_ctrlc ();
5842f62a
PA
509}
510
511/* See target.h. */
512
513void
514target_terminal_ours (void)
515{
41fd2b0f
PA
516 struct ui *ui = current_ui;
517
215d3118
PA
518 /* See target_terminal_inferior. */
519 if (ui != main_ui)
520 return;
521
5842f62a
PA
522 if (terminal_state == terminal_is_ours)
523 return;
524
525 (*current_target.to_terminal_ours) (&current_target);
526 terminal_state = terminal_is_ours;
527}
528
529/* See target.h. */
530
531void
532target_terminal_ours_for_output (void)
533{
215d3118
PA
534 struct ui *ui = current_ui;
535
536 /* See target_terminal_inferior. */
537 if (ui != main_ui)
538 return;
539
5842f62a
PA
540 if (terminal_state != terminal_is_inferior)
541 return;
542 (*current_target.to_terminal_ours_for_output) (&current_target);
543 terminal_state = terminal_is_ours_for_output;
d9d2d8b6 544}
136d6dae 545
b0ed115f
TT
546/* See target.h. */
547
548int
549target_supports_terminal_ours (void)
550{
551 struct target_ops *t;
552
553 for (t = current_target.beneath; t != NULL; t = t->beneath)
554 {
555 if (t->to_terminal_ours != delegate_terminal_ours
556 && t->to_terminal_ours != tdefault_terminal_ours)
557 return 1;
558 }
559
560 return 0;
561}
562
1abf3a14
SM
563/* Restore the terminal to its previous state (helper for
564 make_cleanup_restore_target_terminal). */
565
566static void
567cleanup_restore_target_terminal (void *arg)
568{
19ba03f4 569 enum terminal_state *previous_state = (enum terminal_state *) arg;
1abf3a14
SM
570
571 switch (*previous_state)
572 {
573 case terminal_is_ours:
574 target_terminal_ours ();
575 break;
576 case terminal_is_ours_for_output:
577 target_terminal_ours_for_output ();
578 break;
579 case terminal_is_inferior:
580 target_terminal_inferior ();
581 break;
582 }
583}
584
585/* See target.h. */
586
587struct cleanup *
588make_cleanup_restore_target_terminal (void)
589{
8d749320 590 enum terminal_state *ts = XNEW (enum terminal_state);
1abf3a14
SM
591
592 *ts = terminal_state;
593
594 return make_cleanup_dtor (cleanup_restore_target_terminal, ts, xfree);
595}
596
c906108c 597static void
fba45db2 598tcomplain (void)
c906108c 599{
8a3fe4f8 600 error (_("You can't do that when your target is `%s'"),
c906108c
SS
601 current_target.to_shortname);
602}
603
604void
fba45db2 605noprocess (void)
c906108c 606{
8a3fe4f8 607 error (_("You can't do that without a process to debug."));
c906108c
SS
608}
609
c906108c 610static void
0a4f40a2 611default_terminal_info (struct target_ops *self, const char *args, int from_tty)
c906108c 612{
a3f17187 613 printf_unfiltered (_("No saved terminal information.\n"));
c906108c
SS
614}
615
0ef643c8
JB
616/* A default implementation for the to_get_ada_task_ptid target method.
617
618 This function builds the PTID by using both LWP and TID as part of
619 the PTID lwp and tid elements. The pid used is the pid of the
620 inferior_ptid. */
621
2c0b251b 622static ptid_t
1e6b91a4 623default_get_ada_task_ptid (struct target_ops *self, long lwp, long tid)
0ef643c8
JB
624{
625 return ptid_build (ptid_get_pid (inferior_ptid), lwp, tid);
626}
627
32231432 628static enum exec_direction_kind
4c612759 629default_execution_direction (struct target_ops *self)
32231432
PA
630{
631 if (!target_can_execute_reverse)
632 return EXEC_FORWARD;
633 else if (!target_can_async_p ())
634 return EXEC_FORWARD;
635 else
636 gdb_assert_not_reached ("\
637to_execution_direction must be implemented for reverse async");
638}
639
7998dfc3
AC
640/* Go through the target stack from top to bottom, copying over zero
641 entries in current_target, then filling in still empty entries. In
642 effect, we are doing class inheritance through the pushed target
643 vectors.
644
645 NOTE: cagney/2003-10-17: The problem with this inheritance, as it
646 is currently implemented, is that it discards any knowledge of
647 which target an inherited method originally belonged to.
648 Consequently, new new target methods should instead explicitly and
649 locally search the target stack for the target that can handle the
650 request. */
c906108c
SS
651
652static void
7998dfc3 653update_current_target (void)
c906108c 654{
7998dfc3
AC
655 struct target_ops *t;
656
08d8bcd7 657 /* First, reset current's contents. */
7998dfc3
AC
658 memset (&current_target, 0, sizeof (current_target));
659
1101cb7b
TT
660 /* Install the delegators. */
661 install_delegators (&current_target);
662
be4ddd36
TT
663 current_target.to_stratum = target_stack->to_stratum;
664
7998dfc3
AC
665#define INHERIT(FIELD, TARGET) \
666 if (!current_target.FIELD) \
667 current_target.FIELD = (TARGET)->FIELD
668
be4ddd36
TT
669 /* Do not add any new INHERITs here. Instead, use the delegation
670 mechanism provided by make-target-delegates. */
7998dfc3
AC
671 for (t = target_stack; t; t = t->beneath)
672 {
673 INHERIT (to_shortname, t);
674 INHERIT (to_longname, t);
dc177b7a 675 INHERIT (to_attach_no_wait, t);
74174d2e 676 INHERIT (to_have_steppable_watchpoint, t);
7998dfc3 677 INHERIT (to_have_continuable_watchpoint, t);
7998dfc3 678 INHERIT (to_has_thread_control, t);
7998dfc3
AC
679 }
680#undef INHERIT
681
7998dfc3
AC
682 /* Finally, position the target-stack beneath the squashed
683 "current_target". That way code looking for a non-inherited
684 target method can quickly and simply find it. */
685 current_target.beneath = target_stack;
b4b61fdb
DJ
686
687 if (targetdebug)
688 setup_target_debug ();
c906108c
SS
689}
690
691/* Push a new target type into the stack of the existing target accessors,
692 possibly superseding some of the existing accessors.
693
c906108c
SS
694 Rather than allow an empty stack, we always have the dummy target at
695 the bottom stratum, so we can call the function vectors without
696 checking them. */
697
b26a4dcb 698void
fba45db2 699push_target (struct target_ops *t)
c906108c 700{
258b763a 701 struct target_ops **cur;
c906108c
SS
702
703 /* Check magic number. If wrong, it probably means someone changed
704 the struct definition, but not all the places that initialize one. */
705 if (t->to_magic != OPS_MAGIC)
706 {
c5aa993b
JM
707 fprintf_unfiltered (gdb_stderr,
708 "Magic number of %s target struct wrong\n",
709 t->to_shortname);
3e43a32a
MS
710 internal_error (__FILE__, __LINE__,
711 _("failed internal consistency check"));
c906108c
SS
712 }
713
258b763a
AC
714 /* Find the proper stratum to install this target in. */
715 for (cur = &target_stack; (*cur) != NULL; cur = &(*cur)->beneath)
c906108c 716 {
258b763a 717 if ((int) (t->to_stratum) >= (int) (*cur)->to_stratum)
c906108c
SS
718 break;
719 }
720
258b763a 721 /* If there's already targets at this stratum, remove them. */
88c231eb 722 /* FIXME: cagney/2003-10-15: I think this should be popping all
258b763a
AC
723 targets to CUR, and not just those at this stratum level. */
724 while ((*cur) != NULL && t->to_stratum == (*cur)->to_stratum)
725 {
726 /* There's already something at this stratum level. Close it,
727 and un-hook it from the stack. */
728 struct target_ops *tmp = (*cur);
5d502164 729
258b763a
AC
730 (*cur) = (*cur)->beneath;
731 tmp->beneath = NULL;
460014f5 732 target_close (tmp);
258b763a 733 }
c906108c
SS
734
735 /* We have removed all targets in our stratum, now add the new one. */
258b763a
AC
736 t->beneath = (*cur);
737 (*cur) = t;
c906108c
SS
738
739 update_current_target ();
c906108c
SS
740}
741
2bc416ba 742/* Remove a target_ops vector from the stack, wherever it may be.
c906108c
SS
743 Return how many times it was removed (0 or 1). */
744
745int
fba45db2 746unpush_target (struct target_ops *t)
c906108c 747{
258b763a
AC
748 struct target_ops **cur;
749 struct target_ops *tmp;
c906108c 750
c8d104ad
PA
751 if (t->to_stratum == dummy_stratum)
752 internal_error (__FILE__, __LINE__,
9b20d036 753 _("Attempt to unpush the dummy target"));
c8d104ad 754
c906108c 755 /* Look for the specified target. Note that we assume that a target
c378eb4e 756 can only occur once in the target stack. */
c906108c 757
258b763a
AC
758 for (cur = &target_stack; (*cur) != NULL; cur = &(*cur)->beneath)
759 {
760 if ((*cur) == t)
761 break;
762 }
c906108c 763
305436e0
PA
764 /* If we don't find target_ops, quit. Only open targets should be
765 closed. */
258b763a 766 if ((*cur) == NULL)
305436e0 767 return 0;
5269965e 768
c378eb4e 769 /* Unchain the target. */
258b763a
AC
770 tmp = (*cur);
771 (*cur) = (*cur)->beneath;
772 tmp->beneath = NULL;
c906108c
SS
773
774 update_current_target ();
c906108c 775
305436e0
PA
776 /* Finally close the target. Note we do this after unchaining, so
777 any target method calls from within the target_close
778 implementation don't end up in T anymore. */
460014f5 779 target_close (t);
305436e0 780
c906108c
SS
781 return 1;
782}
783
915ef8b1
PA
784/* Unpush TARGET and assert that it worked. */
785
786static void
787unpush_target_and_assert (struct target_ops *target)
788{
789 if (!unpush_target (target))
790 {
791 fprintf_unfiltered (gdb_stderr,
792 "pop_all_targets couldn't find target %s\n",
793 target->to_shortname);
794 internal_error (__FILE__, __LINE__,
795 _("failed internal consistency check"));
796 }
797}
798
aa76d38d 799void
460014f5 800pop_all_targets_above (enum strata above_stratum)
aa76d38d 801{
87ab71f0 802 while ((int) (current_target.to_stratum) > (int) above_stratum)
915ef8b1
PA
803 unpush_target_and_assert (target_stack);
804}
805
806/* See target.h. */
807
808void
809pop_all_targets_at_and_above (enum strata stratum)
810{
811 while ((int) (current_target.to_stratum) >= (int) stratum)
812 unpush_target_and_assert (target_stack);
aa76d38d
PA
813}
814
87ab71f0 815void
460014f5 816pop_all_targets (void)
87ab71f0 817{
460014f5 818 pop_all_targets_above (dummy_stratum);
87ab71f0
PA
819}
820
c0edd9ed
JK
821/* Return 1 if T is now pushed in the target stack. Return 0 otherwise. */
822
823int
824target_is_pushed (struct target_ops *t)
825{
84202f9c 826 struct target_ops *cur;
c0edd9ed
JK
827
828 /* Check magic number. If wrong, it probably means someone changed
829 the struct definition, but not all the places that initialize one. */
830 if (t->to_magic != OPS_MAGIC)
831 {
832 fprintf_unfiltered (gdb_stderr,
833 "Magic number of %s target struct wrong\n",
834 t->to_shortname);
3e43a32a
MS
835 internal_error (__FILE__, __LINE__,
836 _("failed internal consistency check"));
c0edd9ed
JK
837 }
838
84202f9c
TT
839 for (cur = target_stack; cur != NULL; cur = cur->beneath)
840 if (cur == t)
c0edd9ed
JK
841 return 1;
842
843 return 0;
844}
845
f0f9ff95
TT
846/* Default implementation of to_get_thread_local_address. */
847
848static void
849generic_tls_error (void)
850{
851 throw_error (TLS_GENERIC_ERROR,
852 _("Cannot find thread-local variables on this target"));
853}
854
72f5cf0e 855/* Using the objfile specified in OBJFILE, find the address for the
9e35dae4
DJ
856 current thread's thread-local storage with offset OFFSET. */
857CORE_ADDR
858target_translate_tls_address (struct objfile *objfile, CORE_ADDR offset)
859{
860 volatile CORE_ADDR addr = 0;
f0f9ff95 861 struct target_ops *target = &current_target;
9e35dae4 862
f0f9ff95 863 if (gdbarch_fetch_tls_load_module_address_p (target_gdbarch ()))
9e35dae4
DJ
864 {
865 ptid_t ptid = inferior_ptid;
9e35dae4 866
492d29ea 867 TRY
9e35dae4
DJ
868 {
869 CORE_ADDR lm_addr;
870
871 /* Fetch the load module address for this objfile. */
f5656ead 872 lm_addr = gdbarch_fetch_tls_load_module_address (target_gdbarch (),
9e35dae4 873 objfile);
9e35dae4 874
3e43a32a
MS
875 addr = target->to_get_thread_local_address (target, ptid,
876 lm_addr, offset);
9e35dae4
DJ
877 }
878 /* If an error occurred, print TLS related messages here. Otherwise,
879 throw the error to some higher catcher. */
492d29ea 880 CATCH (ex, RETURN_MASK_ALL)
9e35dae4
DJ
881 {
882 int objfile_is_library = (objfile->flags & OBJF_SHARED);
883
884 switch (ex.error)
885 {
886 case TLS_NO_LIBRARY_SUPPORT_ERROR:
3e43a32a
MS
887 error (_("Cannot find thread-local variables "
888 "in this thread library."));
9e35dae4
DJ
889 break;
890 case TLS_LOAD_MODULE_NOT_FOUND_ERROR:
891 if (objfile_is_library)
892 error (_("Cannot find shared library `%s' in dynamic"
4262abfb 893 " linker's load module list"), objfile_name (objfile));
9e35dae4
DJ
894 else
895 error (_("Cannot find executable file `%s' in dynamic"
4262abfb 896 " linker's load module list"), objfile_name (objfile));
9e35dae4
DJ
897 break;
898 case TLS_NOT_ALLOCATED_YET_ERROR:
899 if (objfile_is_library)
900 error (_("The inferior has not yet allocated storage for"
901 " thread-local variables in\n"
902 "the shared library `%s'\n"
903 "for %s"),
4262abfb 904 objfile_name (objfile), target_pid_to_str (ptid));
9e35dae4
DJ
905 else
906 error (_("The inferior has not yet allocated storage for"
907 " thread-local variables in\n"
908 "the executable `%s'\n"
909 "for %s"),
4262abfb 910 objfile_name (objfile), target_pid_to_str (ptid));
9e35dae4
DJ
911 break;
912 case TLS_GENERIC_ERROR:
913 if (objfile_is_library)
914 error (_("Cannot find thread-local storage for %s, "
915 "shared library %s:\n%s"),
916 target_pid_to_str (ptid),
4262abfb 917 objfile_name (objfile), ex.message);
9e35dae4
DJ
918 else
919 error (_("Cannot find thread-local storage for %s, "
920 "executable file %s:\n%s"),
921 target_pid_to_str (ptid),
4262abfb 922 objfile_name (objfile), ex.message);
9e35dae4
DJ
923 break;
924 default:
925 throw_exception (ex);
926 break;
927 }
928 }
492d29ea 929 END_CATCH
9e35dae4
DJ
930 }
931 /* It wouldn't be wrong here to try a gdbarch method, too; finding
932 TLS is an ABI-specific thing. But we don't do that yet. */
933 else
934 error (_("Cannot find thread-local variables on this target"));
935
936 return addr;
937}
938
6be7b56e 939const char *
01cb8804 940target_xfer_status_to_string (enum target_xfer_status status)
6be7b56e
PA
941{
942#define CASE(X) case X: return #X
01cb8804 943 switch (status)
6be7b56e
PA
944 {
945 CASE(TARGET_XFER_E_IO);
bc113b4e 946 CASE(TARGET_XFER_UNAVAILABLE);
6be7b56e
PA
947 default:
948 return "<unknown>";
949 }
950#undef CASE
951};
952
953
c906108c
SS
954#undef MIN
955#define MIN(A, B) (((A) <= (B)) ? (A) : (B))
956
957/* target_read_string -- read a null terminated string, up to LEN bytes,
958 from MEMADDR in target. Set *ERRNOP to the errno code, or 0 if successful.
959 Set *STRING to a pointer to malloc'd memory containing the data; the caller
960 is responsible for freeing it. Return the number of bytes successfully
961 read. */
962
963int
fba45db2 964target_read_string (CORE_ADDR memaddr, char **string, int len, int *errnop)
c906108c 965{
c2e8b827 966 int tlen, offset, i;
1b0ba102 967 gdb_byte buf[4];
c906108c
SS
968 int errcode = 0;
969 char *buffer;
970 int buffer_allocated;
971 char *bufptr;
972 unsigned int nbytes_read = 0;
973
6217bf3e
MS
974 gdb_assert (string);
975
c906108c
SS
976 /* Small for testing. */
977 buffer_allocated = 4;
224c3ddb 978 buffer = (char *) xmalloc (buffer_allocated);
c906108c
SS
979 bufptr = buffer;
980
c906108c
SS
981 while (len > 0)
982 {
983 tlen = MIN (len, 4 - (memaddr & 3));
984 offset = memaddr & 3;
985
1b0ba102 986 errcode = target_read_memory (memaddr & ~3, buf, sizeof buf);
c906108c
SS
987 if (errcode != 0)
988 {
989 /* The transfer request might have crossed the boundary to an
c378eb4e 990 unallocated region of memory. Retry the transfer, requesting
c906108c
SS
991 a single byte. */
992 tlen = 1;
993 offset = 0;
b8eb5af0 994 errcode = target_read_memory (memaddr, buf, 1);
c906108c
SS
995 if (errcode != 0)
996 goto done;
997 }
998
999 if (bufptr - buffer + tlen > buffer_allocated)
1000 {
1001 unsigned int bytes;
5d502164 1002
c906108c
SS
1003 bytes = bufptr - buffer;
1004 buffer_allocated *= 2;
224c3ddb 1005 buffer = (char *) xrealloc (buffer, buffer_allocated);
c906108c
SS
1006 bufptr = buffer + bytes;
1007 }
1008
1009 for (i = 0; i < tlen; i++)
1010 {
1011 *bufptr++ = buf[i + offset];
1012 if (buf[i + offset] == '\000')
1013 {
1014 nbytes_read += i + 1;
1015 goto done;
1016 }
1017 }
1018
1019 memaddr += tlen;
1020 len -= tlen;
1021 nbytes_read += tlen;
1022 }
c5aa993b 1023done:
6217bf3e 1024 *string = buffer;
c906108c
SS
1025 if (errnop != NULL)
1026 *errnop = errcode;
c906108c
SS
1027 return nbytes_read;
1028}
1029
07b82ea5
PA
1030struct target_section_table *
1031target_get_section_table (struct target_ops *target)
1032{
7e35c012 1033 return (*target->to_get_section_table) (target);
07b82ea5
PA
1034}
1035
8db32d44 1036/* Find a section containing ADDR. */
07b82ea5 1037
0542c86d 1038struct target_section *
8db32d44
AC
1039target_section_by_addr (struct target_ops *target, CORE_ADDR addr)
1040{
07b82ea5 1041 struct target_section_table *table = target_get_section_table (target);
0542c86d 1042 struct target_section *secp;
07b82ea5
PA
1043
1044 if (table == NULL)
1045 return NULL;
1046
1047 for (secp = table->sections; secp < table->sections_end; secp++)
8db32d44
AC
1048 {
1049 if (addr >= secp->addr && addr < secp->endaddr)
1050 return secp;
1051 }
1052 return NULL;
1053}
1054
0fec99e8
PA
1055
1056/* Helper for the memory xfer routines. Checks the attributes of the
1057 memory region of MEMADDR against the read or write being attempted.
1058 If the access is permitted returns true, otherwise returns false.
1059 REGION_P is an optional output parameter. If not-NULL, it is
1060 filled with a pointer to the memory region of MEMADDR. REG_LEN
1061 returns LEN trimmed to the end of the region. This is how much the
1062 caller can continue requesting, if the access is permitted. A
1063 single xfer request must not straddle memory region boundaries. */
1064
1065static int
1066memory_xfer_check_region (gdb_byte *readbuf, const gdb_byte *writebuf,
1067 ULONGEST memaddr, ULONGEST len, ULONGEST *reg_len,
1068 struct mem_region **region_p)
1069{
1070 struct mem_region *region;
1071
1072 region = lookup_mem_region (memaddr);
1073
1074 if (region_p != NULL)
1075 *region_p = region;
1076
1077 switch (region->attrib.mode)
1078 {
1079 case MEM_RO:
1080 if (writebuf != NULL)
1081 return 0;
1082 break;
1083
1084 case MEM_WO:
1085 if (readbuf != NULL)
1086 return 0;
1087 break;
1088
1089 case MEM_FLASH:
1090 /* We only support writing to flash during "load" for now. */
1091 if (writebuf != NULL)
1092 error (_("Writing to flash memory forbidden in this context"));
1093 break;
1094
1095 case MEM_NONE:
1096 return 0;
1097 }
1098
1099 /* region->hi == 0 means there's no upper bound. */
1100 if (memaddr + len < region->hi || region->hi == 0)
1101 *reg_len = len;
1102 else
1103 *reg_len = region->hi - memaddr;
1104
1105 return 1;
1106}
1107
9f713294
YQ
1108/* Read memory from more than one valid target. A core file, for
1109 instance, could have some of memory but delegate other bits to
1110 the target below it. So, we must manually try all targets. */
1111
cc9f16aa 1112enum target_xfer_status
17fde6d0 1113raw_memory_xfer_partial (struct target_ops *ops, gdb_byte *readbuf,
9b409511
YQ
1114 const gdb_byte *writebuf, ULONGEST memaddr, LONGEST len,
1115 ULONGEST *xfered_len)
9f713294 1116{
9b409511 1117 enum target_xfer_status res;
9f713294
YQ
1118
1119 do
1120 {
1121 res = ops->to_xfer_partial (ops, TARGET_OBJECT_MEMORY, NULL,
9b409511
YQ
1122 readbuf, writebuf, memaddr, len,
1123 xfered_len);
1124 if (res == TARGET_XFER_OK)
9f713294
YQ
1125 break;
1126
633785ff 1127 /* Stop if the target reports that the memory is not available. */
bc113b4e 1128 if (res == TARGET_XFER_UNAVAILABLE)
633785ff
MM
1129 break;
1130
9f713294
YQ
1131 /* We want to continue past core files to executables, but not
1132 past a running target's memory. */
1133 if (ops->to_has_all_memory (ops))
1134 break;
1135
1136 ops = ops->beneath;
1137 }
1138 while (ops != NULL);
1139
0f26cec1
PA
1140 /* The cache works at the raw memory level. Make sure the cache
1141 gets updated with raw contents no matter what kind of memory
1142 object was originally being written. Note we do write-through
1143 first, so that if it fails, we don't write to the cache contents
1144 that never made it to the target. */
1145 if (writebuf != NULL
1146 && !ptid_equal (inferior_ptid, null_ptid)
1147 && target_dcache_init_p ()
1148 && (stack_cache_enabled_p () || code_cache_enabled_p ()))
1149 {
1150 DCACHE *dcache = target_dcache_get ();
1151
1152 /* Note that writing to an area of memory which wasn't present
1153 in the cache doesn't cause it to be loaded in. */
1154 dcache_update (dcache, res, memaddr, writebuf, *xfered_len);
1155 }
1156
9f713294
YQ
1157 return res;
1158}
1159
7f79c47e
DE
1160/* Perform a partial memory transfer.
1161 For docs see target.h, to_xfer_partial. */
cf7a04e8 1162
9b409511 1163static enum target_xfer_status
f0ba3972 1164memory_xfer_partial_1 (struct target_ops *ops, enum target_object object,
17fde6d0 1165 gdb_byte *readbuf, const gdb_byte *writebuf, ULONGEST memaddr,
9b409511 1166 ULONGEST len, ULONGEST *xfered_len)
0779438d 1167{
9b409511 1168 enum target_xfer_status res;
0fec99e8 1169 ULONGEST reg_len;
cf7a04e8 1170 struct mem_region *region;
4e5d721f 1171 struct inferior *inf;
cf7a04e8 1172
07b82ea5
PA
1173 /* For accesses to unmapped overlay sections, read directly from
1174 files. Must do this first, as MEMADDR may need adjustment. */
1175 if (readbuf != NULL && overlay_debugging)
1176 {
1177 struct obj_section *section = find_pc_overlay (memaddr);
5d502164 1178
07b82ea5
PA
1179 if (pc_in_unmapped_range (memaddr, section))
1180 {
1181 struct target_section_table *table
1182 = target_get_section_table (ops);
1183 const char *section_name = section->the_bfd_section->name;
5d502164 1184
07b82ea5
PA
1185 memaddr = overlay_mapped_address (memaddr, section);
1186 return section_table_xfer_memory_partial (readbuf, writebuf,
9b409511 1187 memaddr, len, xfered_len,
07b82ea5
PA
1188 table->sections,
1189 table->sections_end,
1190 section_name);
1191 }
1192 }
1193
1194 /* Try the executable files, if "trust-readonly-sections" is set. */
cf7a04e8
DJ
1195 if (readbuf != NULL && trust_readonly)
1196 {
0542c86d 1197 struct target_section *secp;
07b82ea5 1198 struct target_section_table *table;
cf7a04e8
DJ
1199
1200 secp = target_section_by_addr (ops, memaddr);
1201 if (secp != NULL
2b2848e2
DE
1202 && (bfd_get_section_flags (secp->the_bfd_section->owner,
1203 secp->the_bfd_section)
cf7a04e8 1204 & SEC_READONLY))
07b82ea5
PA
1205 {
1206 table = target_get_section_table (ops);
1207 return section_table_xfer_memory_partial (readbuf, writebuf,
9b409511 1208 memaddr, len, xfered_len,
07b82ea5
PA
1209 table->sections,
1210 table->sections_end,
1211 NULL);
1212 }
98646950
UW
1213 }
1214
cf7a04e8 1215 /* Try GDB's internal data cache. */
cf7a04e8 1216
0fec99e8
PA
1217 if (!memory_xfer_check_region (readbuf, writebuf, memaddr, len, &reg_len,
1218 &region))
1219 return TARGET_XFER_E_IO;
cf7a04e8 1220
6c95b8df 1221 if (!ptid_equal (inferior_ptid, null_ptid))
c9657e70 1222 inf = find_inferior_ptid (inferior_ptid);
6c95b8df
PA
1223 else
1224 inf = NULL;
4e5d721f
DE
1225
1226 if (inf != NULL
0f26cec1 1227 && readbuf != NULL
2f4d8875
PA
1228 /* The dcache reads whole cache lines; that doesn't play well
1229 with reading from a trace buffer, because reading outside of
1230 the collected memory range fails. */
1231 && get_traceframe_number () == -1
4e5d721f 1232 && (region->attrib.cache
29453a14
YQ
1233 || (stack_cache_enabled_p () && object == TARGET_OBJECT_STACK_MEMORY)
1234 || (code_cache_enabled_p () && object == TARGET_OBJECT_CODE_MEMORY)))
cf7a04e8 1235 {
2a2f9fe4
YQ
1236 DCACHE *dcache = target_dcache_get_or_init ();
1237
0f26cec1
PA
1238 return dcache_read_memory_partial (ops, dcache, memaddr, readbuf,
1239 reg_len, xfered_len);
cf7a04e8
DJ
1240 }
1241
1242 /* If none of those methods found the memory we wanted, fall back
1243 to a target partial transfer. Normally a single call to
1244 to_xfer_partial is enough; if it doesn't recognize an object
1245 it will call the to_xfer_partial of the next target down.
1246 But for memory this won't do. Memory is the only target
9b409511
YQ
1247 object which can be read from more than one valid target.
1248 A core file, for instance, could have some of memory but
1249 delegate other bits to the target below it. So, we must
1250 manually try all targets. */
1251
1252 res = raw_memory_xfer_partial (ops, readbuf, writebuf, memaddr, reg_len,
1253 xfered_len);
cf7a04e8
DJ
1254
1255 /* If we still haven't got anything, return the last error. We
1256 give up. */
1257 return res;
0779438d
AC
1258}
1259
f0ba3972
PA
1260/* Perform a partial memory transfer. For docs see target.h,
1261 to_xfer_partial. */
1262
9b409511 1263static enum target_xfer_status
f0ba3972 1264memory_xfer_partial (struct target_ops *ops, enum target_object object,
9b409511
YQ
1265 gdb_byte *readbuf, const gdb_byte *writebuf,
1266 ULONGEST memaddr, ULONGEST len, ULONGEST *xfered_len)
f0ba3972 1267{
9b409511 1268 enum target_xfer_status res;
f0ba3972
PA
1269
1270 /* Zero length requests are ok and require no work. */
1271 if (len == 0)
9b409511 1272 return TARGET_XFER_EOF;
f0ba3972
PA
1273
1274 /* Fill in READBUF with breakpoint shadows, or WRITEBUF with
1275 breakpoint insns, thus hiding out from higher layers whether
1276 there are software breakpoints inserted in the code stream. */
1277 if (readbuf != NULL)
1278 {
9b409511
YQ
1279 res = memory_xfer_partial_1 (ops, object, readbuf, NULL, memaddr, len,
1280 xfered_len);
f0ba3972 1281
9b409511 1282 if (res == TARGET_XFER_OK && !show_memory_breakpoints)
c63528fc 1283 breakpoint_xfer_memory (readbuf, NULL, NULL, memaddr, *xfered_len);
f0ba3972
PA
1284 }
1285 else
1286 {
d7f3ff3e 1287 gdb_byte *buf;
f0ba3972
PA
1288 struct cleanup *old_chain;
1289
67c059c2
AB
1290 /* A large write request is likely to be partially satisfied
1291 by memory_xfer_partial_1. We will continually malloc
1292 and free a copy of the entire write request for breakpoint
1293 shadow handling even though we only end up writing a small
09c98b44
DB
1294 subset of it. Cap writes to a limit specified by the target
1295 to mitigate this. */
325fac50 1296 len = std::min (ops->to_get_memory_xfer_limit (ops), len);
67c059c2 1297
d7f3ff3e 1298 buf = (gdb_byte *) xmalloc (len);
f0ba3972
PA
1299 old_chain = make_cleanup (xfree, buf);
1300 memcpy (buf, writebuf, len);
1301
1302 breakpoint_xfer_memory (NULL, buf, writebuf, memaddr, len);
9b409511
YQ
1303 res = memory_xfer_partial_1 (ops, object, NULL, buf, memaddr, len,
1304 xfered_len);
f0ba3972
PA
1305
1306 do_cleanups (old_chain);
1307 }
1308
1309 return res;
1310}
1311
8defab1a
DJ
1312static void
1313restore_show_memory_breakpoints (void *arg)
1314{
1315 show_memory_breakpoints = (uintptr_t) arg;
1316}
1317
1318struct cleanup *
1319make_show_memory_breakpoints_cleanup (int show)
1320{
1321 int current = show_memory_breakpoints;
8defab1a 1322
5d502164 1323 show_memory_breakpoints = show;
8defab1a
DJ
1324 return make_cleanup (restore_show_memory_breakpoints,
1325 (void *) (uintptr_t) current);
1326}
1327
7f79c47e
DE
1328/* For docs see target.h, to_xfer_partial. */
1329
9b409511 1330enum target_xfer_status
27394598
AC
1331target_xfer_partial (struct target_ops *ops,
1332 enum target_object object, const char *annex,
4ac248ca 1333 gdb_byte *readbuf, const gdb_byte *writebuf,
9b409511
YQ
1334 ULONGEST offset, ULONGEST len,
1335 ULONGEST *xfered_len)
27394598 1336{
9b409511 1337 enum target_xfer_status retval;
27394598
AC
1338
1339 gdb_assert (ops->to_xfer_partial != NULL);
cf7a04e8 1340
ce6d0892
YQ
1341 /* Transfer is done when LEN is zero. */
1342 if (len == 0)
9b409511 1343 return TARGET_XFER_EOF;
ce6d0892 1344
d914c394
SS
1345 if (writebuf && !may_write_memory)
1346 error (_("Writing to memory is not allowed (addr %s, len %s)"),
1347 core_addr_to_string_nz (offset), plongest (len));
1348
9b409511
YQ
1349 *xfered_len = 0;
1350
cf7a04e8
DJ
1351 /* If this is a memory transfer, let the memory-specific code
1352 have a look at it instead. Memory transfers are more
1353 complicated. */
29453a14
YQ
1354 if (object == TARGET_OBJECT_MEMORY || object == TARGET_OBJECT_STACK_MEMORY
1355 || object == TARGET_OBJECT_CODE_MEMORY)
4e5d721f 1356 retval = memory_xfer_partial (ops, object, readbuf,
9b409511 1357 writebuf, offset, len, xfered_len);
9f713294 1358 else if (object == TARGET_OBJECT_RAW_MEMORY)
cf7a04e8 1359 {
0fec99e8
PA
1360 /* Skip/avoid accessing the target if the memory region
1361 attributes block the access. Check this here instead of in
1362 raw_memory_xfer_partial as otherwise we'd end up checking
1363 this twice in the case of the memory_xfer_partial path is
1364 taken; once before checking the dcache, and another in the
1365 tail call to raw_memory_xfer_partial. */
1366 if (!memory_xfer_check_region (readbuf, writebuf, offset, len, &len,
1367 NULL))
1368 return TARGET_XFER_E_IO;
1369
9f713294 1370 /* Request the normal memory object from other layers. */
9b409511
YQ
1371 retval = raw_memory_xfer_partial (ops, readbuf, writebuf, offset, len,
1372 xfered_len);
cf7a04e8 1373 }
9f713294
YQ
1374 else
1375 retval = ops->to_xfer_partial (ops, object, annex, readbuf,
9b409511 1376 writebuf, offset, len, xfered_len);
cf7a04e8 1377
27394598
AC
1378 if (targetdebug)
1379 {
1380 const unsigned char *myaddr = NULL;
1381
1382 fprintf_unfiltered (gdb_stdlog,
3e43a32a 1383 "%s:target_xfer_partial "
9b409511 1384 "(%d, %s, %s, %s, %s, %s) = %d, %s",
27394598
AC
1385 ops->to_shortname,
1386 (int) object,
1387 (annex ? annex : "(null)"),
53b71562
JB
1388 host_address_to_string (readbuf),
1389 host_address_to_string (writebuf),
0b1553bc 1390 core_addr_to_string_nz (offset),
9b409511
YQ
1391 pulongest (len), retval,
1392 pulongest (*xfered_len));
27394598
AC
1393
1394 if (readbuf)
1395 myaddr = readbuf;
1396 if (writebuf)
1397 myaddr = writebuf;
9b409511 1398 if (retval == TARGET_XFER_OK && myaddr != NULL)
27394598
AC
1399 {
1400 int i;
2bc416ba 1401
27394598 1402 fputs_unfiltered (", bytes =", gdb_stdlog);
9b409511 1403 for (i = 0; i < *xfered_len; i++)
27394598 1404 {
53b71562 1405 if ((((intptr_t) &(myaddr[i])) & 0xf) == 0)
27394598
AC
1406 {
1407 if (targetdebug < 2 && i > 0)
1408 {
1409 fprintf_unfiltered (gdb_stdlog, " ...");
1410 break;
1411 }
1412 fprintf_unfiltered (gdb_stdlog, "\n");
1413 }
2bc416ba 1414
27394598
AC
1415 fprintf_unfiltered (gdb_stdlog, " %02x", myaddr[i] & 0xff);
1416 }
1417 }
2bc416ba 1418
27394598
AC
1419 fputc_unfiltered ('\n', gdb_stdlog);
1420 }
9b409511
YQ
1421
1422 /* Check implementations of to_xfer_partial update *XFERED_LEN
1423 properly. Do assertion after printing debug messages, so that we
1424 can find more clues on assertion failure from debugging messages. */
bc113b4e 1425 if (retval == TARGET_XFER_OK || retval == TARGET_XFER_UNAVAILABLE)
9b409511
YQ
1426 gdb_assert (*xfered_len > 0);
1427
27394598
AC
1428 return retval;
1429}
1430
578d3588
PA
1431/* Read LEN bytes of target memory at address MEMADDR, placing the
1432 results in GDB's memory at MYADDR. Returns either 0 for success or
d09f2c3f 1433 -1 if any error occurs.
c906108c
SS
1434
1435 If an error occurs, no guarantee is made about the contents of the data at
1436 MYADDR. In particular, the caller should not depend upon partial reads
1437 filling the buffer with good data. There is no way for the caller to know
1438 how much good data might have been transfered anyway. Callers that can
cf7a04e8 1439 deal with partial reads should call target_read (which will retry until
c378eb4e 1440 it makes no progress, and then return how much was transferred). */
c906108c
SS
1441
1442int
1b162304 1443target_read_memory (CORE_ADDR memaddr, gdb_byte *myaddr, ssize_t len)
c906108c 1444{
c35b1492
PA
1445 /* Dispatch to the topmost target, not the flattened current_target.
1446 Memory accesses check target->to_has_(all_)memory, and the
1447 flattened target doesn't inherit those. */
1448 if (target_read (current_target.beneath, TARGET_OBJECT_MEMORY, NULL,
cf7a04e8
DJ
1449 myaddr, memaddr, len) == len)
1450 return 0;
0779438d 1451 else
d09f2c3f 1452 return -1;
c906108c
SS
1453}
1454
721ec300
GB
1455/* See target/target.h. */
1456
1457int
1458target_read_uint32 (CORE_ADDR memaddr, uint32_t *result)
1459{
1460 gdb_byte buf[4];
1461 int r;
1462
1463 r = target_read_memory (memaddr, buf, sizeof buf);
1464 if (r != 0)
1465 return r;
1466 *result = extract_unsigned_integer (buf, sizeof buf,
1467 gdbarch_byte_order (target_gdbarch ()));
1468 return 0;
1469}
1470
aee4bf85
PA
1471/* Like target_read_memory, but specify explicitly that this is a read
1472 from the target's raw memory. That is, this read bypasses the
1473 dcache, breakpoint shadowing, etc. */
1474
1475int
1476target_read_raw_memory (CORE_ADDR memaddr, gdb_byte *myaddr, ssize_t len)
1477{
1478 /* See comment in target_read_memory about why the request starts at
1479 current_target.beneath. */
1480 if (target_read (current_target.beneath, TARGET_OBJECT_RAW_MEMORY, NULL,
1481 myaddr, memaddr, len) == len)
1482 return 0;
1483 else
d09f2c3f 1484 return -1;
aee4bf85
PA
1485}
1486
4e5d721f
DE
1487/* Like target_read_memory, but specify explicitly that this is a read from
1488 the target's stack. This may trigger different cache behavior. */
1489
1490int
45aa4659 1491target_read_stack (CORE_ADDR memaddr, gdb_byte *myaddr, ssize_t len)
4e5d721f 1492{
aee4bf85
PA
1493 /* See comment in target_read_memory about why the request starts at
1494 current_target.beneath. */
4e5d721f
DE
1495 if (target_read (current_target.beneath, TARGET_OBJECT_STACK_MEMORY, NULL,
1496 myaddr, memaddr, len) == len)
1497 return 0;
1498 else
d09f2c3f 1499 return -1;
4e5d721f
DE
1500}
1501
29453a14
YQ
1502/* Like target_read_memory, but specify explicitly that this is a read from
1503 the target's code. This may trigger different cache behavior. */
1504
1505int
1506target_read_code (CORE_ADDR memaddr, gdb_byte *myaddr, ssize_t len)
1507{
aee4bf85
PA
1508 /* See comment in target_read_memory about why the request starts at
1509 current_target.beneath. */
29453a14
YQ
1510 if (target_read (current_target.beneath, TARGET_OBJECT_CODE_MEMORY, NULL,
1511 myaddr, memaddr, len) == len)
1512 return 0;
1513 else
d09f2c3f 1514 return -1;
29453a14
YQ
1515}
1516
7f79c47e 1517/* Write LEN bytes from MYADDR to target memory at address MEMADDR.
d09f2c3f
PA
1518 Returns either 0 for success or -1 if any error occurs. If an
1519 error occurs, no guarantee is made about how much data got written.
1520 Callers that can deal with partial writes should call
1521 target_write. */
7f79c47e 1522
c906108c 1523int
45aa4659 1524target_write_memory (CORE_ADDR memaddr, const gdb_byte *myaddr, ssize_t len)
c906108c 1525{
aee4bf85
PA
1526 /* See comment in target_read_memory about why the request starts at
1527 current_target.beneath. */
c35b1492 1528 if (target_write (current_target.beneath, TARGET_OBJECT_MEMORY, NULL,
cf7a04e8
DJ
1529 myaddr, memaddr, len) == len)
1530 return 0;
0779438d 1531 else
d09f2c3f 1532 return -1;
c906108c 1533}
c5aa993b 1534
f0ba3972 1535/* Write LEN bytes from MYADDR to target raw memory at address
d09f2c3f
PA
1536 MEMADDR. Returns either 0 for success or -1 if any error occurs.
1537 If an error occurs, no guarantee is made about how much data got
1538 written. Callers that can deal with partial writes should call
1539 target_write. */
f0ba3972
PA
1540
1541int
45aa4659 1542target_write_raw_memory (CORE_ADDR memaddr, const gdb_byte *myaddr, ssize_t len)
f0ba3972 1543{
aee4bf85
PA
1544 /* See comment in target_read_memory about why the request starts at
1545 current_target.beneath. */
f0ba3972
PA
1546 if (target_write (current_target.beneath, TARGET_OBJECT_RAW_MEMORY, NULL,
1547 myaddr, memaddr, len) == len)
1548 return 0;
1549 else
d09f2c3f 1550 return -1;
f0ba3972
PA
1551}
1552
fd79ecee
DJ
1553/* Fetch the target's memory map. */
1554
1555VEC(mem_region_s) *
1556target_memory_map (void)
1557{
1558 VEC(mem_region_s) *result;
1559 struct mem_region *last_one, *this_one;
1560 int ix;
6b2c5a57 1561 result = current_target.to_memory_map (&current_target);
fd79ecee
DJ
1562 if (result == NULL)
1563 return NULL;
1564
1565 qsort (VEC_address (mem_region_s, result),
1566 VEC_length (mem_region_s, result),
1567 sizeof (struct mem_region), mem_region_cmp);
1568
1569 /* Check that regions do not overlap. Simultaneously assign
1570 a numbering for the "mem" commands to use to refer to
1571 each region. */
1572 last_one = NULL;
1573 for (ix = 0; VEC_iterate (mem_region_s, result, ix, this_one); ix++)
1574 {
1575 this_one->number = ix;
1576
1577 if (last_one && last_one->hi > this_one->lo)
1578 {
1579 warning (_("Overlapping regions in memory map: ignoring"));
1580 VEC_free (mem_region_s, result);
1581 return NULL;
1582 }
1583 last_one = this_one;
1584 }
1585
1586 return result;
1587}
1588
a76d924d
DJ
1589void
1590target_flash_erase (ULONGEST address, LONGEST length)
1591{
e8a6c6ac 1592 current_target.to_flash_erase (&current_target, address, length);
a76d924d
DJ
1593}
1594
1595void
1596target_flash_done (void)
1597{
f6fb2925 1598 current_target.to_flash_done (&current_target);
a76d924d
DJ
1599}
1600
920d2a44
AC
1601static void
1602show_trust_readonly (struct ui_file *file, int from_tty,
1603 struct cmd_list_element *c, const char *value)
1604{
3e43a32a
MS
1605 fprintf_filtered (file,
1606 _("Mode for reading from readonly sections is %s.\n"),
920d2a44
AC
1607 value);
1608}
3a11626d 1609
7f79c47e 1610/* Target vector read/write partial wrapper functions. */
0088c768 1611
9b409511 1612static enum target_xfer_status
1e3ff5ad
AC
1613target_read_partial (struct target_ops *ops,
1614 enum target_object object,
1b0ba102 1615 const char *annex, gdb_byte *buf,
9b409511
YQ
1616 ULONGEST offset, ULONGEST len,
1617 ULONGEST *xfered_len)
1e3ff5ad 1618{
9b409511
YQ
1619 return target_xfer_partial (ops, object, annex, buf, NULL, offset, len,
1620 xfered_len);
1e3ff5ad
AC
1621}
1622
8a55ffb0 1623static enum target_xfer_status
1e3ff5ad
AC
1624target_write_partial (struct target_ops *ops,
1625 enum target_object object,
1b0ba102 1626 const char *annex, const gdb_byte *buf,
9b409511 1627 ULONGEST offset, LONGEST len, ULONGEST *xfered_len)
1e3ff5ad 1628{
9b409511
YQ
1629 return target_xfer_partial (ops, object, annex, NULL, buf, offset, len,
1630 xfered_len);
1e3ff5ad
AC
1631}
1632
1633/* Wrappers to perform the full transfer. */
7f79c47e
DE
1634
1635/* For docs on target_read see target.h. */
1636
1e3ff5ad
AC
1637LONGEST
1638target_read (struct target_ops *ops,
1639 enum target_object object,
1b0ba102 1640 const char *annex, gdb_byte *buf,
1e3ff5ad
AC
1641 ULONGEST offset, LONGEST len)
1642{
279a6fed 1643 LONGEST xfered_total = 0;
d309493c
SM
1644 int unit_size = 1;
1645
1646 /* If we are reading from a memory object, find the length of an addressable
1647 unit for that architecture. */
1648 if (object == TARGET_OBJECT_MEMORY
1649 || object == TARGET_OBJECT_STACK_MEMORY
1650 || object == TARGET_OBJECT_CODE_MEMORY
1651 || object == TARGET_OBJECT_RAW_MEMORY)
1652 unit_size = gdbarch_addressable_memory_unit_size (target_gdbarch ());
5d502164 1653
279a6fed 1654 while (xfered_total < len)
1e3ff5ad 1655 {
279a6fed 1656 ULONGEST xfered_partial;
9b409511
YQ
1657 enum target_xfer_status status;
1658
1659 status = target_read_partial (ops, object, annex,
d309493c 1660 buf + xfered_total * unit_size,
279a6fed
SM
1661 offset + xfered_total, len - xfered_total,
1662 &xfered_partial);
5d502164 1663
1e3ff5ad 1664 /* Call an observer, notifying them of the xfer progress? */
9b409511 1665 if (status == TARGET_XFER_EOF)
279a6fed 1666 return xfered_total;
9b409511
YQ
1667 else if (status == TARGET_XFER_OK)
1668 {
279a6fed 1669 xfered_total += xfered_partial;
9b409511
YQ
1670 QUIT;
1671 }
1672 else
279a6fed 1673 return TARGET_XFER_E_IO;
9b409511 1674
1e3ff5ad
AC
1675 }
1676 return len;
1677}
1678
f1a507a1
JB
1679/* Assuming that the entire [begin, end) range of memory cannot be
1680 read, try to read whatever subrange is possible to read.
1681
1682 The function returns, in RESULT, either zero or one memory block.
1683 If there's a readable subrange at the beginning, it is completely
1684 read and returned. Any further readable subrange will not be read.
1685 Otherwise, if there's a readable subrange at the end, it will be
1686 completely read and returned. Any readable subranges before it
1687 (obviously, not starting at the beginning), will be ignored. In
1688 other cases -- either no readable subrange, or readable subrange(s)
1689 that is neither at the beginning, or end, nothing is returned.
1690
1691 The purpose of this function is to handle a read across a boundary
1692 of accessible memory in a case when memory map is not available.
1693 The above restrictions are fine for this case, but will give
1694 incorrect results if the memory is 'patchy'. However, supporting
1695 'patchy' memory would require trying to read every single byte,
1696 and it seems unacceptable solution. Explicit memory map is
1697 recommended for this case -- and target_read_memory_robust will
1698 take care of reading multiple ranges then. */
8dedea02
VP
1699
1700static void
3e43a32a 1701read_whatever_is_readable (struct target_ops *ops,
279a6fed 1702 const ULONGEST begin, const ULONGEST end,
d309493c 1703 int unit_size,
8dedea02 1704 VEC(memory_read_result_s) **result)
d5086790 1705{
224c3ddb 1706 gdb_byte *buf = (gdb_byte *) xmalloc (end - begin);
8dedea02
VP
1707 ULONGEST current_begin = begin;
1708 ULONGEST current_end = end;
1709 int forward;
1710 memory_read_result_s r;
9b409511 1711 ULONGEST xfered_len;
8dedea02
VP
1712
1713 /* If we previously failed to read 1 byte, nothing can be done here. */
1714 if (end - begin <= 1)
13b3fd9b
MS
1715 {
1716 xfree (buf);
1717 return;
1718 }
8dedea02
VP
1719
1720 /* Check that either first or the last byte is readable, and give up
c378eb4e 1721 if not. This heuristic is meant to permit reading accessible memory
8dedea02
VP
1722 at the boundary of accessible region. */
1723 if (target_read_partial (ops, TARGET_OBJECT_MEMORY, NULL,
9b409511 1724 buf, begin, 1, &xfered_len) == TARGET_XFER_OK)
8dedea02
VP
1725 {
1726 forward = 1;
1727 ++current_begin;
1728 }
1729 else if (target_read_partial (ops, TARGET_OBJECT_MEMORY, NULL,
279a6fed 1730 buf + (end - begin) - 1, end - 1, 1,
9b409511 1731 &xfered_len) == TARGET_XFER_OK)
8dedea02
VP
1732 {
1733 forward = 0;
1734 --current_end;
1735 }
1736 else
1737 {
13b3fd9b 1738 xfree (buf);
8dedea02
VP
1739 return;
1740 }
1741
1742 /* Loop invariant is that the [current_begin, current_end) was previously
1743 found to be not readable as a whole.
1744
1745 Note loop condition -- if the range has 1 byte, we can't divide the range
1746 so there's no point trying further. */
1747 while (current_end - current_begin > 1)
1748 {
1749 ULONGEST first_half_begin, first_half_end;
1750 ULONGEST second_half_begin, second_half_end;
1751 LONGEST xfer;
279a6fed 1752 ULONGEST middle = current_begin + (current_end - current_begin) / 2;
f1a507a1 1753
8dedea02
VP
1754 if (forward)
1755 {
1756 first_half_begin = current_begin;
1757 first_half_end = middle;
1758 second_half_begin = middle;
1759 second_half_end = current_end;
1760 }
1761 else
1762 {
1763 first_half_begin = middle;
1764 first_half_end = current_end;
1765 second_half_begin = current_begin;
1766 second_half_end = middle;
1767 }
1768
1769 xfer = target_read (ops, TARGET_OBJECT_MEMORY, NULL,
d309493c 1770 buf + (first_half_begin - begin) * unit_size,
8dedea02
VP
1771 first_half_begin,
1772 first_half_end - first_half_begin);
1773
1774 if (xfer == first_half_end - first_half_begin)
1775 {
c378eb4e 1776 /* This half reads up fine. So, the error must be in the
3e43a32a 1777 other half. */
8dedea02
VP
1778 current_begin = second_half_begin;
1779 current_end = second_half_end;
1780 }
1781 else
1782 {
c378eb4e 1783 /* This half is not readable. Because we've tried one byte, we
279a6fed 1784 know some part of this half if actually readable. Go to the next
8dedea02
VP
1785 iteration to divide again and try to read.
1786
1787 We don't handle the other half, because this function only tries
1788 to read a single readable subrange. */
1789 current_begin = first_half_begin;
1790 current_end = first_half_end;
1791 }
1792 }
1793
1794 if (forward)
1795 {
1796 /* The [begin, current_begin) range has been read. */
1797 r.begin = begin;
1798 r.end = current_begin;
1799 r.data = buf;
1800 }
1801 else
1802 {
1803 /* The [current_end, end) range has been read. */
279a6fed 1804 LONGEST region_len = end - current_end;
f1a507a1 1805
224c3ddb 1806 r.data = (gdb_byte *) xmalloc (region_len * unit_size);
d309493c
SM
1807 memcpy (r.data, buf + (current_end - begin) * unit_size,
1808 region_len * unit_size);
8dedea02
VP
1809 r.begin = current_end;
1810 r.end = end;
1811 xfree (buf);
1812 }
1813 VEC_safe_push(memory_read_result_s, (*result), &r);
1814}
1815
1816void
1817free_memory_read_result_vector (void *x)
1818{
9d78f827 1819 VEC(memory_read_result_s) **v = (VEC(memory_read_result_s) **) x;
8dedea02
VP
1820 memory_read_result_s *current;
1821 int ix;
1822
9d78f827 1823 for (ix = 0; VEC_iterate (memory_read_result_s, *v, ix, current); ++ix)
8dedea02
VP
1824 {
1825 xfree (current->data);
1826 }
9d78f827 1827 VEC_free (memory_read_result_s, *v);
8dedea02
VP
1828}
1829
1830VEC(memory_read_result_s) *
279a6fed
SM
1831read_memory_robust (struct target_ops *ops,
1832 const ULONGEST offset, const LONGEST len)
8dedea02
VP
1833{
1834 VEC(memory_read_result_s) *result = 0;
d309493c 1835 int unit_size = gdbarch_addressable_memory_unit_size (target_gdbarch ());
9d78f827
TT
1836 struct cleanup *cleanup = make_cleanup (free_memory_read_result_vector,
1837 &result);
8dedea02 1838
279a6fed
SM
1839 LONGEST xfered_total = 0;
1840 while (xfered_total < len)
d5086790 1841 {
279a6fed
SM
1842 struct mem_region *region = lookup_mem_region (offset + xfered_total);
1843 LONGEST region_len;
5d502164 1844
8dedea02
VP
1845 /* If there is no explicit region, a fake one should be created. */
1846 gdb_assert (region);
1847
1848 if (region->hi == 0)
279a6fed 1849 region_len = len - xfered_total;
8dedea02 1850 else
279a6fed 1851 region_len = region->hi - offset;
8dedea02
VP
1852
1853 if (region->attrib.mode == MEM_NONE || region->attrib.mode == MEM_WO)
d5086790 1854 {
c378eb4e 1855 /* Cannot read this region. Note that we can end up here only
8dedea02
VP
1856 if the region is explicitly marked inaccessible, or
1857 'inaccessible-by-default' is in effect. */
279a6fed 1858 xfered_total += region_len;
8dedea02
VP
1859 }
1860 else
1861 {
325fac50 1862 LONGEST to_read = std::min (len - xfered_total, region_len);
d309493c 1863 gdb_byte *buffer = (gdb_byte *) xmalloc (to_read * unit_size);
9d78f827 1864 struct cleanup *inner_cleanup = make_cleanup (xfree, buffer);
8dedea02 1865
279a6fed
SM
1866 LONGEST xfered_partial =
1867 target_read (ops, TARGET_OBJECT_MEMORY, NULL,
1868 (gdb_byte *) buffer,
1869 offset + xfered_total, to_read);
8dedea02 1870 /* Call an observer, notifying them of the xfer progress? */
279a6fed 1871 if (xfered_partial <= 0)
d5086790 1872 {
c378eb4e 1873 /* Got an error reading full chunk. See if maybe we can read
8dedea02 1874 some subrange. */
9d78f827 1875 do_cleanups (inner_cleanup);
e084c964
DB
1876 read_whatever_is_readable (ops, offset + xfered_total,
1877 offset + xfered_total + to_read,
1878 unit_size, &result);
279a6fed 1879 xfered_total += to_read;
d5086790 1880 }
8dedea02
VP
1881 else
1882 {
1883 struct memory_read_result r;
9d78f827
TT
1884
1885 discard_cleanups (inner_cleanup);
8dedea02 1886 r.data = buffer;
279a6fed
SM
1887 r.begin = offset + xfered_total;
1888 r.end = r.begin + xfered_partial;
8dedea02 1889 VEC_safe_push (memory_read_result_s, result, &r);
279a6fed 1890 xfered_total += xfered_partial;
8dedea02
VP
1891 }
1892 QUIT;
d5086790 1893 }
d5086790 1894 }
9d78f827
TT
1895
1896 discard_cleanups (cleanup);
8dedea02 1897 return result;
d5086790
VP
1898}
1899
8dedea02 1900
cf7a04e8
DJ
1901/* An alternative to target_write with progress callbacks. */
1902
1e3ff5ad 1903LONGEST
cf7a04e8
DJ
1904target_write_with_progress (struct target_ops *ops,
1905 enum target_object object,
1906 const char *annex, const gdb_byte *buf,
1907 ULONGEST offset, LONGEST len,
1908 void (*progress) (ULONGEST, void *), void *baton)
1e3ff5ad 1909{
279a6fed 1910 LONGEST xfered_total = 0;
d309493c
SM
1911 int unit_size = 1;
1912
1913 /* If we are writing to a memory object, find the length of an addressable
1914 unit for that architecture. */
1915 if (object == TARGET_OBJECT_MEMORY
1916 || object == TARGET_OBJECT_STACK_MEMORY
1917 || object == TARGET_OBJECT_CODE_MEMORY
1918 || object == TARGET_OBJECT_RAW_MEMORY)
1919 unit_size = gdbarch_addressable_memory_unit_size (target_gdbarch ());
a76d924d
DJ
1920
1921 /* Give the progress callback a chance to set up. */
1922 if (progress)
1923 (*progress) (0, baton);
1924
279a6fed 1925 while (xfered_total < len)
1e3ff5ad 1926 {
279a6fed 1927 ULONGEST xfered_partial;
9b409511
YQ
1928 enum target_xfer_status status;
1929
1930 status = target_write_partial (ops, object, annex,
d309493c 1931 buf + xfered_total * unit_size,
279a6fed
SM
1932 offset + xfered_total, len - xfered_total,
1933 &xfered_partial);
cf7a04e8 1934
5c328c05 1935 if (status != TARGET_XFER_OK)
279a6fed 1936 return status == TARGET_XFER_EOF ? xfered_total : TARGET_XFER_E_IO;
cf7a04e8
DJ
1937
1938 if (progress)
279a6fed 1939 (*progress) (xfered_partial, baton);
cf7a04e8 1940
279a6fed 1941 xfered_total += xfered_partial;
1e3ff5ad
AC
1942 QUIT;
1943 }
1944 return len;
1945}
1946
7f79c47e
DE
1947/* For docs on target_write see target.h. */
1948
cf7a04e8
DJ
1949LONGEST
1950target_write (struct target_ops *ops,
1951 enum target_object object,
1952 const char *annex, const gdb_byte *buf,
1953 ULONGEST offset, LONGEST len)
1954{
1955 return target_write_with_progress (ops, object, annex, buf, offset, len,
1956 NULL, NULL);
1957}
1958
159f81f3
DJ
1959/* Read OBJECT/ANNEX using OPS. Store the result in *BUF_P and return
1960 the size of the transferred data. PADDING additional bytes are
1961 available in *BUF_P. This is a helper function for
1962 target_read_alloc; see the declaration of that function for more
1963 information. */
13547ab6 1964
159f81f3
DJ
1965static LONGEST
1966target_read_alloc_1 (struct target_ops *ops, enum target_object object,
1967 const char *annex, gdb_byte **buf_p, int padding)
13547ab6
DJ
1968{
1969 size_t buf_alloc, buf_pos;
1970 gdb_byte *buf;
13547ab6
DJ
1971
1972 /* This function does not have a length parameter; it reads the
1973 entire OBJECT). Also, it doesn't support objects fetched partly
1974 from one target and partly from another (in a different stratum,
1975 e.g. a core file and an executable). Both reasons make it
1976 unsuitable for reading memory. */
1977 gdb_assert (object != TARGET_OBJECT_MEMORY);
1978
1979 /* Start by reading up to 4K at a time. The target will throttle
1980 this number down if necessary. */
1981 buf_alloc = 4096;
224c3ddb 1982 buf = (gdb_byte *) xmalloc (buf_alloc);
13547ab6
DJ
1983 buf_pos = 0;
1984 while (1)
1985 {
9b409511
YQ
1986 ULONGEST xfered_len;
1987 enum target_xfer_status status;
1988
1989 status = target_read_partial (ops, object, annex, &buf[buf_pos],
1990 buf_pos, buf_alloc - buf_pos - padding,
1991 &xfered_len);
1992
1993 if (status == TARGET_XFER_EOF)
13547ab6
DJ
1994 {
1995 /* Read all there was. */
1996 if (buf_pos == 0)
1997 xfree (buf);
1998 else
1999 *buf_p = buf;
2000 return buf_pos;
2001 }
9b409511
YQ
2002 else if (status != TARGET_XFER_OK)
2003 {
2004 /* An error occurred. */
2005 xfree (buf);
2006 return TARGET_XFER_E_IO;
2007 }
13547ab6 2008
9b409511 2009 buf_pos += xfered_len;
13547ab6
DJ
2010
2011 /* If the buffer is filling up, expand it. */
2012 if (buf_alloc < buf_pos * 2)
2013 {
2014 buf_alloc *= 2;
224c3ddb 2015 buf = (gdb_byte *) xrealloc (buf, buf_alloc);
13547ab6
DJ
2016 }
2017
2018 QUIT;
2019 }
2020}
2021
159f81f3
DJ
2022/* Read OBJECT/ANNEX using OPS. Store the result in *BUF_P and return
2023 the size of the transferred data. See the declaration in "target.h"
2024 function for more information about the return value. */
2025
2026LONGEST
2027target_read_alloc (struct target_ops *ops, enum target_object object,
2028 const char *annex, gdb_byte **buf_p)
2029{
2030 return target_read_alloc_1 (ops, object, annex, buf_p, 0);
2031}
2032
2033/* Read OBJECT/ANNEX using OPS. The result is NUL-terminated and
2034 returned as a string, allocated using xmalloc. If an error occurs
2035 or the transfer is unsupported, NULL is returned. Empty objects
2036 are returned as allocated but empty strings. A warning is issued
2037 if the result contains any embedded NUL bytes. */
2038
2039char *
2040target_read_stralloc (struct target_ops *ops, enum target_object object,
2041 const char *annex)
2042{
39086a0e
PA
2043 gdb_byte *buffer;
2044 char *bufstr;
7313baad 2045 LONGEST i, transferred;
159f81f3 2046
39086a0e
PA
2047 transferred = target_read_alloc_1 (ops, object, annex, &buffer, 1);
2048 bufstr = (char *) buffer;
159f81f3
DJ
2049
2050 if (transferred < 0)
2051 return NULL;
2052
2053 if (transferred == 0)
2054 return xstrdup ("");
2055
39086a0e 2056 bufstr[transferred] = 0;
7313baad
UW
2057
2058 /* Check for embedded NUL bytes; but allow trailing NULs. */
39086a0e
PA
2059 for (i = strlen (bufstr); i < transferred; i++)
2060 if (bufstr[i] != 0)
7313baad
UW
2061 {
2062 warning (_("target object %d, annex %s, "
2063 "contained unexpected null characters"),
2064 (int) object, annex ? annex : "(none)");
2065 break;
2066 }
159f81f3 2067
39086a0e 2068 return bufstr;
159f81f3
DJ
2069}
2070
b6591e8b
AC
2071/* Memory transfer methods. */
2072
2073void
1b0ba102 2074get_target_memory (struct target_ops *ops, CORE_ADDR addr, gdb_byte *buf,
b6591e8b
AC
2075 LONGEST len)
2076{
07b82ea5
PA
2077 /* This method is used to read from an alternate, non-current
2078 target. This read must bypass the overlay support (as symbols
2079 don't match this target), and GDB's internal cache (wrong cache
2080 for this target). */
2081 if (target_read (ops, TARGET_OBJECT_RAW_MEMORY, NULL, buf, addr, len)
b6591e8b 2082 != len)
578d3588 2083 memory_error (TARGET_XFER_E_IO, addr);
b6591e8b
AC
2084}
2085
2086ULONGEST
5d502164
MS
2087get_target_memory_unsigned (struct target_ops *ops, CORE_ADDR addr,
2088 int len, enum bfd_endian byte_order)
b6591e8b 2089{
f6519ebc 2090 gdb_byte buf[sizeof (ULONGEST)];
b6591e8b
AC
2091
2092 gdb_assert (len <= sizeof (buf));
2093 get_target_memory (ops, addr, buf, len);
e17a4113 2094 return extract_unsigned_integer (buf, len, byte_order);
b6591e8b
AC
2095}
2096
3db08215
MM
2097/* See target.h. */
2098
d914c394
SS
2099int
2100target_insert_breakpoint (struct gdbarch *gdbarch,
2101 struct bp_target_info *bp_tgt)
2102{
2103 if (!may_insert_breakpoints)
2104 {
2105 warning (_("May not insert breakpoints"));
2106 return 1;
2107 }
2108
6b84065d
TT
2109 return current_target.to_insert_breakpoint (&current_target,
2110 gdbarch, bp_tgt);
d914c394
SS
2111}
2112
3db08215
MM
2113/* See target.h. */
2114
d914c394 2115int
6b84065d 2116target_remove_breakpoint (struct gdbarch *gdbarch,
73971819
PA
2117 struct bp_target_info *bp_tgt,
2118 enum remove_bp_reason reason)
d914c394
SS
2119{
2120 /* This is kind of a weird case to handle, but the permission might
2121 have been changed after breakpoints were inserted - in which case
2122 we should just take the user literally and assume that any
2123 breakpoints should be left in place. */
2124 if (!may_insert_breakpoints)
2125 {
2126 warning (_("May not remove breakpoints"));
2127 return 1;
2128 }
2129
6b84065d 2130 return current_target.to_remove_breakpoint (&current_target,
73971819 2131 gdbarch, bp_tgt, reason);
d914c394
SS
2132}
2133
c906108c 2134static void
fba45db2 2135target_info (char *args, int from_tty)
c906108c
SS
2136{
2137 struct target_ops *t;
c906108c 2138 int has_all_mem = 0;
c5aa993b 2139
c906108c 2140 if (symfile_objfile != NULL)
4262abfb
JK
2141 printf_unfiltered (_("Symbols from \"%s\".\n"),
2142 objfile_name (symfile_objfile));
c906108c 2143
258b763a 2144 for (t = target_stack; t != NULL; t = t->beneath)
c906108c 2145 {
c35b1492 2146 if (!(*t->to_has_memory) (t))
c906108c
SS
2147 continue;
2148
c5aa993b 2149 if ((int) (t->to_stratum) <= (int) dummy_stratum)
c906108c
SS
2150 continue;
2151 if (has_all_mem)
3e43a32a
MS
2152 printf_unfiltered (_("\tWhile running this, "
2153 "GDB does not access memory from...\n"));
c5aa993b
JM
2154 printf_unfiltered ("%s:\n", t->to_longname);
2155 (t->to_files_info) (t);
c35b1492 2156 has_all_mem = (*t->to_has_all_memory) (t);
c906108c
SS
2157 }
2158}
2159
fd79ecee
DJ
2160/* This function is called before any new inferior is created, e.g.
2161 by running a program, attaching, or connecting to a target.
2162 It cleans up any state from previous invocations which might
2163 change between runs. This is a subset of what target_preopen
2164 resets (things which might change between targets). */
2165
2166void
2167target_pre_inferior (int from_tty)
2168{
c378eb4e 2169 /* Clear out solib state. Otherwise the solib state of the previous
b9db4ced 2170 inferior might have survived and is entirely wrong for the new
c378eb4e 2171 target. This has been observed on GNU/Linux using glibc 2.3. How
b9db4ced
UW
2172 to reproduce:
2173
2174 bash$ ./foo&
2175 [1] 4711
2176 bash$ ./foo&
2177 [1] 4712
2178 bash$ gdb ./foo
2179 [...]
2180 (gdb) attach 4711
2181 (gdb) detach
2182 (gdb) attach 4712
2183 Cannot access memory at address 0xdeadbeef
2184 */
b9db4ced 2185
50c71eaf
PA
2186 /* In some OSs, the shared library list is the same/global/shared
2187 across inferiors. If code is shared between processes, so are
2188 memory regions and features. */
f5656ead 2189 if (!gdbarch_has_global_solist (target_gdbarch ()))
50c71eaf
PA
2190 {
2191 no_shared_libraries (NULL, from_tty);
2192
2193 invalidate_target_mem_regions ();
424163ea 2194
50c71eaf
PA
2195 target_clear_description ();
2196 }
8ffcbaaf 2197
e9756d52
PP
2198 /* attach_flag may be set if the previous process associated with
2199 the inferior was attached to. */
2200 current_inferior ()->attach_flag = 0;
2201
5d5658a1
PA
2202 current_inferior ()->highest_thread_num = 0;
2203
8ffcbaaf 2204 agent_capability_invalidate ();
fd79ecee
DJ
2205}
2206
b8fa0bfa
PA
2207/* Callback for iterate_over_inferiors. Gets rid of the given
2208 inferior. */
2209
2210static int
2211dispose_inferior (struct inferior *inf, void *args)
2212{
2213 struct thread_info *thread;
2214
2215 thread = any_thread_of_process (inf->pid);
2216 if (thread)
2217 {
2218 switch_to_thread (thread->ptid);
2219
2220 /* Core inferiors actually should be detached, not killed. */
2221 if (target_has_execution)
2222 target_kill ();
2223 else
2224 target_detach (NULL, 0);
2225 }
2226
2227 return 0;
2228}
2229
c906108c
SS
2230/* This is to be called by the open routine before it does
2231 anything. */
2232
2233void
fba45db2 2234target_preopen (int from_tty)
c906108c 2235{
c5aa993b 2236 dont_repeat ();
c906108c 2237
b8fa0bfa 2238 if (have_inferiors ())
c5aa993b 2239 {
adf40b2e 2240 if (!from_tty
b8fa0bfa
PA
2241 || !have_live_inferiors ()
2242 || query (_("A program is being debugged already. Kill it? ")))
2243 iterate_over_inferiors (dispose_inferior, NULL);
c906108c 2244 else
8a3fe4f8 2245 error (_("Program not killed."));
c906108c
SS
2246 }
2247
2248 /* Calling target_kill may remove the target from the stack. But if
2249 it doesn't (which seems like a win for UDI), remove it now. */
87ab71f0
PA
2250 /* Leave the exec target, though. The user may be switching from a
2251 live process to a core of the same program. */
460014f5 2252 pop_all_targets_above (file_stratum);
fd79ecee
DJ
2253
2254 target_pre_inferior (from_tty);
c906108c
SS
2255}
2256
2257/* Detach a target after doing deferred register stores. */
2258
2259void
52554a0e 2260target_detach (const char *args, int from_tty)
c906108c 2261{
f5656ead 2262 if (gdbarch_has_global_breakpoints (target_gdbarch ()))
50c71eaf
PA
2263 /* Don't remove global breakpoints here. They're removed on
2264 disconnection from the target. */
2265 ;
2266 else
2267 /* If we're in breakpoints-always-inserted mode, have to remove
2268 them before detaching. */
dfd4cc63 2269 remove_breakpoints_pid (ptid_get_pid (inferior_ptid));
74960c60 2270
24291992
PA
2271 prepare_for_detach ();
2272
09da0d0a 2273 current_target.to_detach (&current_target, args, from_tty);
c906108c
SS
2274}
2275
6ad8ae5c 2276void
fee354ee 2277target_disconnect (const char *args, int from_tty)
6ad8ae5c 2278{
50c71eaf
PA
2279 /* If we're in breakpoints-always-inserted mode or if breakpoints
2280 are global across processes, we have to remove them before
2281 disconnecting. */
74960c60
VP
2282 remove_breakpoints ();
2283
86a0854a 2284 current_target.to_disconnect (&current_target, args, from_tty);
6ad8ae5c
DJ
2285}
2286
f2b9e3df
SDJ
2287/* See target/target.h. */
2288
117de6a9 2289ptid_t
47608cb1 2290target_wait (ptid_t ptid, struct target_waitstatus *status, int options)
117de6a9 2291{
a7068b60 2292 return (current_target.to_wait) (&current_target, ptid, status, options);
117de6a9
PA
2293}
2294
0b333c5e
PA
2295/* See target.h. */
2296
2297ptid_t
2298default_target_wait (struct target_ops *ops,
2299 ptid_t ptid, struct target_waitstatus *status,
2300 int options)
2301{
2302 status->kind = TARGET_WAITKIND_IGNORE;
2303 return minus_one_ptid;
2304}
2305
117de6a9
PA
2306char *
2307target_pid_to_str (ptid_t ptid)
2308{
770234d3 2309 return (*current_target.to_pid_to_str) (&current_target, ptid);
117de6a9
PA
2310}
2311
73ede765 2312const char *
4694da01
TT
2313target_thread_name (struct thread_info *info)
2314{
825828fc 2315 return current_target.to_thread_name (&current_target, info);
4694da01
TT
2316}
2317
e1ac3328 2318void
2ea28649 2319target_resume (ptid_t ptid, int step, enum gdb_signal signal)
e1ac3328 2320{
4e5d721f 2321 target_dcache_invalidate ();
28439f5e 2322
6b84065d 2323 current_target.to_resume (&current_target, ptid, step, signal);
28439f5e 2324
6b84065d 2325 registers_changed_ptid (ptid);
251bde03
PA
2326 /* We only set the internal executing state here. The user/frontend
2327 running state is set at a higher level. */
6b84065d 2328 set_executing (ptid, 1);
6b84065d 2329 clear_inline_frame_state (ptid);
e1ac3328 2330}
2455069d
UW
2331
2332void
2333target_pass_signals (int numsigs, unsigned char *pass_signals)
2334{
035cad7f 2335 (*current_target.to_pass_signals) (&current_target, numsigs, pass_signals);
2455069d
UW
2336}
2337
9b224c5e
PA
2338void
2339target_program_signals (int numsigs, unsigned char *program_signals)
2340{
7d4f8efa
TT
2341 (*current_target.to_program_signals) (&current_target,
2342 numsigs, program_signals);
9b224c5e
PA
2343}
2344
098dba18
TT
2345static int
2346default_follow_fork (struct target_ops *self, int follow_child,
2347 int detach_fork)
2348{
2349 /* Some target returned a fork event, but did not know how to follow it. */
2350 internal_error (__FILE__, __LINE__,
2351 _("could not find a target to follow fork"));
2352}
2353
ee057212
DJ
2354/* Look through the list of possible targets for a target that can
2355 follow forks. */
2356
2357int
07107ca6 2358target_follow_fork (int follow_child, int detach_fork)
ee057212 2359{
a7068b60
TT
2360 return current_target.to_follow_fork (&current_target,
2361 follow_child, detach_fork);
ee057212
DJ
2362}
2363
94585166
DB
2364/* Target wrapper for follow exec hook. */
2365
2366void
2367target_follow_exec (struct inferior *inf, char *execd_pathname)
2368{
2369 current_target.to_follow_exec (&current_target, inf, execd_pathname);
2370}
2371
8d657035
TT
2372static void
2373default_mourn_inferior (struct target_ops *self)
2374{
2375 internal_error (__FILE__, __LINE__,
2376 _("could not find a target to follow mourn inferior"));
2377}
2378
136d6dae
VP
2379void
2380target_mourn_inferior (void)
2381{
8d657035 2382 current_target.to_mourn_inferior (&current_target);
136d6dae 2383
8d657035
TT
2384 /* We no longer need to keep handles on any of the object files.
2385 Make sure to release them to avoid unnecessarily locking any
2386 of them while we're not actually debugging. */
2387 bfd_cache_close_all ();
136d6dae
VP
2388}
2389
424163ea
DJ
2390/* Look for a target which can describe architectural features, starting
2391 from TARGET. If we find one, return its description. */
2392
2393const struct target_desc *
2394target_read_description (struct target_ops *target)
2395{
2117c711 2396 return target->to_read_description (target);
424163ea
DJ
2397}
2398
58a5184e 2399/* This implements a basic search of memory, reading target memory and
08388c79
DE
2400 performing the search here (as opposed to performing the search in on the
2401 target side with, for example, gdbserver). */
2402
2403int
2404simple_search_memory (struct target_ops *ops,
2405 CORE_ADDR start_addr, ULONGEST search_space_len,
2406 const gdb_byte *pattern, ULONGEST pattern_len,
2407 CORE_ADDR *found_addrp)
2408{
2409 /* NOTE: also defined in find.c testcase. */
2410#define SEARCH_CHUNK_SIZE 16000
2411 const unsigned chunk_size = SEARCH_CHUNK_SIZE;
2412 /* Buffer to hold memory contents for searching. */
2413 gdb_byte *search_buf;
2414 unsigned search_buf_size;
2415 struct cleanup *old_cleanups;
2416
2417 search_buf_size = chunk_size + pattern_len - 1;
2418
2419 /* No point in trying to allocate a buffer larger than the search space. */
2420 if (search_space_len < search_buf_size)
2421 search_buf_size = search_space_len;
2422
224c3ddb 2423 search_buf = (gdb_byte *) malloc (search_buf_size);
08388c79 2424 if (search_buf == NULL)
5e1471f5 2425 error (_("Unable to allocate memory to perform the search."));
08388c79
DE
2426 old_cleanups = make_cleanup (free_current_contents, &search_buf);
2427
2428 /* Prime the search buffer. */
2429
2430 if (target_read (ops, TARGET_OBJECT_MEMORY, NULL,
2431 search_buf, start_addr, search_buf_size) != search_buf_size)
2432 {
b3dc46ff
AB
2433 warning (_("Unable to access %s bytes of target "
2434 "memory at %s, halting search."),
2435 pulongest (search_buf_size), hex_string (start_addr));
08388c79
DE
2436 do_cleanups (old_cleanups);
2437 return -1;
2438 }
2439
2440 /* Perform the search.
2441
2442 The loop is kept simple by allocating [N + pattern-length - 1] bytes.
2443 When we've scanned N bytes we copy the trailing bytes to the start and
2444 read in another N bytes. */
2445
2446 while (search_space_len >= pattern_len)
2447 {
2448 gdb_byte *found_ptr;
325fac50
PA
2449 unsigned nr_search_bytes
2450 = std::min (search_space_len, (ULONGEST) search_buf_size);
08388c79 2451
d7f3ff3e
SM
2452 found_ptr = (gdb_byte *) memmem (search_buf, nr_search_bytes,
2453 pattern, pattern_len);
08388c79
DE
2454
2455 if (found_ptr != NULL)
2456 {
2457 CORE_ADDR found_addr = start_addr + (found_ptr - search_buf);
5d502164 2458
08388c79
DE
2459 *found_addrp = found_addr;
2460 do_cleanups (old_cleanups);
2461 return 1;
2462 }
2463
2464 /* Not found in this chunk, skip to next chunk. */
2465
2466 /* Don't let search_space_len wrap here, it's unsigned. */
2467 if (search_space_len >= chunk_size)
2468 search_space_len -= chunk_size;
2469 else
2470 search_space_len = 0;
2471
2472 if (search_space_len >= pattern_len)
2473 {
2474 unsigned keep_len = search_buf_size - chunk_size;
8a35fb51 2475 CORE_ADDR read_addr = start_addr + chunk_size + keep_len;
08388c79
DE
2476 int nr_to_read;
2477
2478 /* Copy the trailing part of the previous iteration to the front
2479 of the buffer for the next iteration. */
2480 gdb_assert (keep_len == pattern_len - 1);
2481 memcpy (search_buf, search_buf + chunk_size, keep_len);
2482
325fac50
PA
2483 nr_to_read = std::min (search_space_len - keep_len,
2484 (ULONGEST) chunk_size);
08388c79
DE
2485
2486 if (target_read (ops, TARGET_OBJECT_MEMORY, NULL,
2487 search_buf + keep_len, read_addr,
2488 nr_to_read) != nr_to_read)
2489 {
b3dc46ff 2490 warning (_("Unable to access %s bytes of target "
9b20d036 2491 "memory at %s, halting search."),
b3dc46ff 2492 plongest (nr_to_read),
08388c79
DE
2493 hex_string (read_addr));
2494 do_cleanups (old_cleanups);
2495 return -1;
2496 }
2497
2498 start_addr += chunk_size;
2499 }
2500 }
2501
2502 /* Not found. */
2503
2504 do_cleanups (old_cleanups);
2505 return 0;
2506}
2507
58a5184e
TT
2508/* Default implementation of memory-searching. */
2509
2510static int
2511default_search_memory (struct target_ops *self,
2512 CORE_ADDR start_addr, ULONGEST search_space_len,
2513 const gdb_byte *pattern, ULONGEST pattern_len,
2514 CORE_ADDR *found_addrp)
2515{
2516 /* Start over from the top of the target stack. */
2517 return simple_search_memory (current_target.beneath,
2518 start_addr, search_space_len,
2519 pattern, pattern_len, found_addrp);
2520}
2521
08388c79
DE
2522/* Search SEARCH_SPACE_LEN bytes beginning at START_ADDR for the
2523 sequence of bytes in PATTERN with length PATTERN_LEN.
2524
2525 The result is 1 if found, 0 if not found, and -1 if there was an error
2526 requiring halting of the search (e.g. memory read error).
2527 If the pattern is found the address is recorded in FOUND_ADDRP. */
2528
2529int
2530target_search_memory (CORE_ADDR start_addr, ULONGEST search_space_len,
2531 const gdb_byte *pattern, ULONGEST pattern_len,
2532 CORE_ADDR *found_addrp)
2533{
a7068b60
TT
2534 return current_target.to_search_memory (&current_target, start_addr,
2535 search_space_len,
2536 pattern, pattern_len, found_addrp);
08388c79
DE
2537}
2538
8edfe269
DJ
2539/* Look through the currently pushed targets. If none of them will
2540 be able to restart the currently running process, issue an error
2541 message. */
2542
2543void
2544target_require_runnable (void)
2545{
2546 struct target_ops *t;
2547
2548 for (t = target_stack; t != NULL; t = t->beneath)
2549 {
2550 /* If this target knows how to create a new program, then
2551 assume we will still be able to after killing the current
2552 one. Either killing and mourning will not pop T, or else
2553 find_default_run_target will find it again. */
2554 if (t->to_create_inferior != NULL)
2555 return;
2556
548740d6 2557 /* Do not worry about targets at certain strata that can not
8edfe269
DJ
2558 create inferiors. Assume they will be pushed again if
2559 necessary, and continue to the process_stratum. */
85e747d2 2560 if (t->to_stratum == thread_stratum
548740d6 2561 || t->to_stratum == record_stratum
85e747d2 2562 || t->to_stratum == arch_stratum)
8edfe269
DJ
2563 continue;
2564
3e43a32a
MS
2565 error (_("The \"%s\" target does not support \"run\". "
2566 "Try \"help target\" or \"continue\"."),
8edfe269
DJ
2567 t->to_shortname);
2568 }
2569
2570 /* This function is only called if the target is running. In that
2571 case there should have been a process_stratum target and it
c378eb4e 2572 should either know how to create inferiors, or not... */
9b20d036 2573 internal_error (__FILE__, __LINE__, _("No targets found"));
8edfe269
DJ
2574}
2575
6a3cb8e8
PA
2576/* Whether GDB is allowed to fall back to the default run target for
2577 "run", "attach", etc. when no target is connected yet. */
2578static int auto_connect_native_target = 1;
2579
2580static void
2581show_auto_connect_native_target (struct ui_file *file, int from_tty,
2582 struct cmd_list_element *c, const char *value)
2583{
2584 fprintf_filtered (file,
2585 _("Whether GDB may automatically connect to the "
2586 "native target is %s.\n"),
2587 value);
2588}
2589
c906108c
SS
2590/* Look through the list of possible targets for a target that can
2591 execute a run or attach command without any other data. This is
2592 used to locate the default process stratum.
2593
5f667f2d
PA
2594 If DO_MESG is not NULL, the result is always valid (error() is
2595 called for errors); else, return NULL on error. */
c906108c
SS
2596
2597static struct target_ops *
fba45db2 2598find_default_run_target (char *do_mesg)
c906108c 2599{
c906108c 2600 struct target_ops *runable = NULL;
c906108c 2601
6a3cb8e8 2602 if (auto_connect_native_target)
c906108c 2603 {
89a1c21a 2604 struct target_ops *t;
6a3cb8e8 2605 int count = 0;
89a1c21a 2606 int i;
6a3cb8e8 2607
89a1c21a 2608 for (i = 0; VEC_iterate (target_ops_p, target_structs, i, t); ++i)
c906108c 2609 {
89a1c21a 2610 if (t->to_can_run != delegate_can_run && target_can_run (t))
6a3cb8e8 2611 {
89a1c21a 2612 runable = t;
6a3cb8e8
PA
2613 ++count;
2614 }
c906108c 2615 }
6a3cb8e8
PA
2616
2617 if (count != 1)
2618 runable = NULL;
c906108c
SS
2619 }
2620
6a3cb8e8 2621 if (runable == NULL)
5f667f2d
PA
2622 {
2623 if (do_mesg)
2624 error (_("Don't know how to %s. Try \"help target\"."), do_mesg);
2625 else
2626 return NULL;
2627 }
c906108c
SS
2628
2629 return runable;
2630}
2631
b3ccfe11 2632/* See target.h. */
c906108c 2633
b3ccfe11
TT
2634struct target_ops *
2635find_attach_target (void)
c906108c
SS
2636{
2637 struct target_ops *t;
2638
b3ccfe11
TT
2639 /* If a target on the current stack can attach, use it. */
2640 for (t = current_target.beneath; t != NULL; t = t->beneath)
2641 {
2642 if (t->to_attach != NULL)
2643 break;
2644 }
c906108c 2645
b3ccfe11
TT
2646 /* Otherwise, use the default run target for attaching. */
2647 if (t == NULL)
2648 t = find_default_run_target ("attach");
b84876c2 2649
b3ccfe11 2650 return t;
b84876c2
PA
2651}
2652
b3ccfe11 2653/* See target.h. */
b84876c2 2654
b3ccfe11
TT
2655struct target_ops *
2656find_run_target (void)
9908b566
VP
2657{
2658 struct target_ops *t;
2659
b3ccfe11
TT
2660 /* If a target on the current stack can attach, use it. */
2661 for (t = current_target.beneath; t != NULL; t = t->beneath)
2662 {
2663 if (t->to_create_inferior != NULL)
2664 break;
2665 }
5d502164 2666
b3ccfe11
TT
2667 /* Otherwise, use the default run target. */
2668 if (t == NULL)
2669 t = find_default_run_target ("run");
9908b566 2670
b3ccfe11 2671 return t;
9908b566
VP
2672}
2673
145b16a9
UW
2674/* Implement the "info proc" command. */
2675
451b7c33 2676int
7bc112c1 2677target_info_proc (const char *args, enum info_proc_what what)
145b16a9
UW
2678{
2679 struct target_ops *t;
2680
2681 /* If we're already connected to something that can get us OS
2682 related data, use it. Otherwise, try using the native
2683 target. */
2684 if (current_target.to_stratum >= process_stratum)
2685 t = current_target.beneath;
2686 else
2687 t = find_default_run_target (NULL);
2688
2689 for (; t != NULL; t = t->beneath)
2690 {
2691 if (t->to_info_proc != NULL)
2692 {
2693 t->to_info_proc (t, args, what);
2694
2695 if (targetdebug)
2696 fprintf_unfiltered (gdb_stdlog,
2697 "target_info_proc (\"%s\", %d)\n", args, what);
2698
451b7c33 2699 return 1;
145b16a9
UW
2700 }
2701 }
2702
451b7c33 2703 return 0;
145b16a9
UW
2704}
2705
03583c20 2706static int
2bfc0540 2707find_default_supports_disable_randomization (struct target_ops *self)
03583c20
UW
2708{
2709 struct target_ops *t;
2710
2711 t = find_default_run_target (NULL);
2712 if (t && t->to_supports_disable_randomization)
2bfc0540 2713 return (t->to_supports_disable_randomization) (t);
03583c20
UW
2714 return 0;
2715}
2716
2717int
2718target_supports_disable_randomization (void)
2719{
2720 struct target_ops *t;
2721
2722 for (t = &current_target; t != NULL; t = t->beneath)
2723 if (t->to_supports_disable_randomization)
2bfc0540 2724 return t->to_supports_disable_randomization (t);
03583c20
UW
2725
2726 return 0;
2727}
9908b566 2728
07e059b5
VP
2729char *
2730target_get_osdata (const char *type)
2731{
07e059b5
VP
2732 struct target_ops *t;
2733
739ef7fb
PA
2734 /* If we're already connected to something that can get us OS
2735 related data, use it. Otherwise, try using the native
2736 target. */
2737 if (current_target.to_stratum >= process_stratum)
6d097e65 2738 t = current_target.beneath;
739ef7fb
PA
2739 else
2740 t = find_default_run_target ("get OS data");
07e059b5
VP
2741
2742 if (!t)
2743 return NULL;
2744
6d097e65 2745 return target_read_stralloc (t, TARGET_OBJECT_OSDATA, type);
07e059b5
VP
2746}
2747
8eaff7cd
TT
2748static struct address_space *
2749default_thread_address_space (struct target_ops *self, ptid_t ptid)
6c95b8df
PA
2750{
2751 struct inferior *inf;
6c95b8df
PA
2752
2753 /* Fall-back to the "main" address space of the inferior. */
c9657e70 2754 inf = find_inferior_ptid (ptid);
6c95b8df
PA
2755
2756 if (inf == NULL || inf->aspace == NULL)
3e43a32a 2757 internal_error (__FILE__, __LINE__,
9b20d036
MS
2758 _("Can't determine the current "
2759 "address space of thread %s\n"),
6c95b8df
PA
2760 target_pid_to_str (ptid));
2761
2762 return inf->aspace;
2763}
2764
8eaff7cd
TT
2765/* Determine the current address space of thread PTID. */
2766
2767struct address_space *
2768target_thread_address_space (ptid_t ptid)
2769{
2770 struct address_space *aspace;
2771
2772 aspace = current_target.to_thread_address_space (&current_target, ptid);
2773 gdb_assert (aspace != NULL);
2774
8eaff7cd
TT
2775 return aspace;
2776}
2777
7313baad
UW
2778
2779/* Target file operations. */
2780
2781static struct target_ops *
2782default_fileio_target (void)
2783{
2784 /* If we're already connected to something that can perform
2785 file I/O, use it. Otherwise, try using the native target. */
2786 if (current_target.to_stratum >= process_stratum)
2787 return current_target.beneath;
2788 else
2789 return find_default_run_target ("file I/O");
2790}
2791
1c4b552b
GB
2792/* File handle for target file operations. */
2793
2794typedef struct
2795{
2796 /* The target on which this file is open. */
2797 struct target_ops *t;
2798
2799 /* The file descriptor on the target. */
2800 int fd;
2801} fileio_fh_t;
2802
2803DEF_VEC_O (fileio_fh_t);
2804
2805/* Vector of currently open file handles. The value returned by
2806 target_fileio_open and passed as the FD argument to other
2807 target_fileio_* functions is an index into this vector. This
2808 vector's entries are never freed; instead, files are marked as
2809 closed, and the handle becomes available for reuse. */
2810static VEC (fileio_fh_t) *fileio_fhandles;
2811
2812/* Macro to check whether a fileio_fh_t represents a closed file. */
2813#define is_closed_fileio_fh(fd) ((fd) < 0)
2814
2815/* Index into fileio_fhandles of the lowest handle that might be
2816 closed. This permits handle reuse without searching the whole
2817 list each time a new file is opened. */
2818static int lowest_closed_fd;
2819
2820/* Acquire a target fileio file descriptor. */
2821
2822static int
2823acquire_fileio_fd (struct target_ops *t, int fd)
2824{
870f88f7 2825 fileio_fh_t *fh;
1c4b552b
GB
2826
2827 gdb_assert (!is_closed_fileio_fh (fd));
2828
2829 /* Search for closed handles to reuse. */
2830 for (;
2831 VEC_iterate (fileio_fh_t, fileio_fhandles,
2832 lowest_closed_fd, fh);
2833 lowest_closed_fd++)
2834 if (is_closed_fileio_fh (fh->fd))
2835 break;
2836
2837 /* Push a new handle if no closed handles were found. */
2838 if (lowest_closed_fd == VEC_length (fileio_fh_t, fileio_fhandles))
2839 fh = VEC_safe_push (fileio_fh_t, fileio_fhandles, NULL);
2840
2841 /* Fill in the handle. */
2842 fh->t = t;
2843 fh->fd = fd;
2844
2845 /* Return its index, and start the next lookup at
2846 the next index. */
2847 return lowest_closed_fd++;
2848}
2849
2850/* Release a target fileio file descriptor. */
2851
2852static void
2853release_fileio_fd (int fd, fileio_fh_t *fh)
2854{
2855 fh->fd = -1;
325fac50 2856 lowest_closed_fd = std::min (lowest_closed_fd, fd);
1c4b552b
GB
2857}
2858
2859/* Return a pointer to the fileio_fhandle_t corresponding to FD. */
2860
2861#define fileio_fd_to_fh(fd) \
2862 VEC_index (fileio_fh_t, fileio_fhandles, (fd))
2863
4313b8c0
GB
2864/* Helper for target_fileio_open and
2865 target_fileio_open_warn_if_slow. */
12e2a5fd 2866
4313b8c0
GB
2867static int
2868target_fileio_open_1 (struct inferior *inf, const char *filename,
2869 int flags, int mode, int warn_if_slow,
2870 int *target_errno)
7313baad
UW
2871{
2872 struct target_ops *t;
2873
2874 for (t = default_fileio_target (); t != NULL; t = t->beneath)
2875 {
2876 if (t->to_fileio_open != NULL)
2877 {
07c138c8 2878 int fd = t->to_fileio_open (t, inf, filename, flags, mode,
4313b8c0 2879 warn_if_slow, target_errno);
7313baad 2880
1c4b552b
GB
2881 if (fd < 0)
2882 fd = -1;
2883 else
2884 fd = acquire_fileio_fd (t, fd);
2885
7313baad
UW
2886 if (targetdebug)
2887 fprintf_unfiltered (gdb_stdlog,
4313b8c0 2888 "target_fileio_open (%d,%s,0x%x,0%o,%d)"
07c138c8
GB
2889 " = %d (%d)\n",
2890 inf == NULL ? 0 : inf->num,
7313baad 2891 filename, flags, mode,
4313b8c0
GB
2892 warn_if_slow, fd,
2893 fd != -1 ? 0 : *target_errno);
7313baad
UW
2894 return fd;
2895 }
2896 }
2897
2898 *target_errno = FILEIO_ENOSYS;
2899 return -1;
2900}
2901
12e2a5fd
GB
2902/* See target.h. */
2903
4313b8c0
GB
2904int
2905target_fileio_open (struct inferior *inf, const char *filename,
2906 int flags, int mode, int *target_errno)
2907{
2908 return target_fileio_open_1 (inf, filename, flags, mode, 0,
2909 target_errno);
2910}
2911
2912/* See target.h. */
2913
2914int
2915target_fileio_open_warn_if_slow (struct inferior *inf,
2916 const char *filename,
2917 int flags, int mode, int *target_errno)
2918{
2919 return target_fileio_open_1 (inf, filename, flags, mode, 1,
2920 target_errno);
2921}
2922
2923/* See target.h. */
2924
7313baad
UW
2925int
2926target_fileio_pwrite (int fd, const gdb_byte *write_buf, int len,
2927 ULONGEST offset, int *target_errno)
2928{
1c4b552b
GB
2929 fileio_fh_t *fh = fileio_fd_to_fh (fd);
2930 int ret = -1;
7313baad 2931
1c4b552b
GB
2932 if (is_closed_fileio_fh (fh->fd))
2933 *target_errno = EBADF;
2934 else
2935 ret = fh->t->to_fileio_pwrite (fh->t, fh->fd, write_buf,
2936 len, offset, target_errno);
7313baad 2937
1c4b552b
GB
2938 if (targetdebug)
2939 fprintf_unfiltered (gdb_stdlog,
2940 "target_fileio_pwrite (%d,...,%d,%s) "
2941 "= %d (%d)\n",
2942 fd, len, pulongest (offset),
2943 ret, ret != -1 ? 0 : *target_errno);
2944 return ret;
7313baad
UW
2945}
2946
12e2a5fd
GB
2947/* See target.h. */
2948
7313baad
UW
2949int
2950target_fileio_pread (int fd, gdb_byte *read_buf, int len,
2951 ULONGEST offset, int *target_errno)
2952{
1c4b552b
GB
2953 fileio_fh_t *fh = fileio_fd_to_fh (fd);
2954 int ret = -1;
7313baad 2955
1c4b552b
GB
2956 if (is_closed_fileio_fh (fh->fd))
2957 *target_errno = EBADF;
2958 else
2959 ret = fh->t->to_fileio_pread (fh->t, fh->fd, read_buf,
2960 len, offset, target_errno);
7313baad 2961
1c4b552b
GB
2962 if (targetdebug)
2963 fprintf_unfiltered (gdb_stdlog,
2964 "target_fileio_pread (%d,...,%d,%s) "
2965 "= %d (%d)\n",
2966 fd, len, pulongest (offset),
2967 ret, ret != -1 ? 0 : *target_errno);
9b15c1f0
GB
2968 return ret;
2969}
2970
2971/* See target.h. */
12e2a5fd 2972
9b15c1f0
GB
2973int
2974target_fileio_fstat (int fd, struct stat *sb, int *target_errno)
2975{
2976 fileio_fh_t *fh = fileio_fd_to_fh (fd);
2977 int ret = -1;
2978
2979 if (is_closed_fileio_fh (fh->fd))
2980 *target_errno = EBADF;
2981 else
2982 ret = fh->t->to_fileio_fstat (fh->t, fh->fd, sb, target_errno);
2983
2984 if (targetdebug)
2985 fprintf_unfiltered (gdb_stdlog,
2986 "target_fileio_fstat (%d) = %d (%d)\n",
2987 fd, ret, ret != -1 ? 0 : *target_errno);
1c4b552b 2988 return ret;
7313baad
UW
2989}
2990
12e2a5fd
GB
2991/* See target.h. */
2992
7313baad
UW
2993int
2994target_fileio_close (int fd, int *target_errno)
2995{
1c4b552b
GB
2996 fileio_fh_t *fh = fileio_fd_to_fh (fd);
2997 int ret = -1;
7313baad 2998
1c4b552b
GB
2999 if (is_closed_fileio_fh (fh->fd))
3000 *target_errno = EBADF;
3001 else
7313baad 3002 {
1c4b552b
GB
3003 ret = fh->t->to_fileio_close (fh->t, fh->fd, target_errno);
3004 release_fileio_fd (fd, fh);
7313baad
UW
3005 }
3006
1c4b552b
GB
3007 if (targetdebug)
3008 fprintf_unfiltered (gdb_stdlog,
3009 "target_fileio_close (%d) = %d (%d)\n",
3010 fd, ret, ret != -1 ? 0 : *target_errno);
3011 return ret;
7313baad
UW
3012}
3013
12e2a5fd
GB
3014/* See target.h. */
3015
7313baad 3016int
07c138c8
GB
3017target_fileio_unlink (struct inferior *inf, const char *filename,
3018 int *target_errno)
7313baad
UW
3019{
3020 struct target_ops *t;
3021
3022 for (t = default_fileio_target (); t != NULL; t = t->beneath)
3023 {
3024 if (t->to_fileio_unlink != NULL)
3025 {
07c138c8
GB
3026 int ret = t->to_fileio_unlink (t, inf, filename,
3027 target_errno);
7313baad
UW
3028
3029 if (targetdebug)
3030 fprintf_unfiltered (gdb_stdlog,
07c138c8
GB
3031 "target_fileio_unlink (%d,%s)"
3032 " = %d (%d)\n",
3033 inf == NULL ? 0 : inf->num, filename,
3034 ret, ret != -1 ? 0 : *target_errno);
7313baad
UW
3035 return ret;
3036 }
3037 }
3038
3039 *target_errno = FILEIO_ENOSYS;
3040 return -1;
3041}
3042
12e2a5fd
GB
3043/* See target.h. */
3044
b9e7b9c3 3045char *
07c138c8
GB
3046target_fileio_readlink (struct inferior *inf, const char *filename,
3047 int *target_errno)
b9e7b9c3
UW
3048{
3049 struct target_ops *t;
3050
3051 for (t = default_fileio_target (); t != NULL; t = t->beneath)
3052 {
3053 if (t->to_fileio_readlink != NULL)
3054 {
07c138c8
GB
3055 char *ret = t->to_fileio_readlink (t, inf, filename,
3056 target_errno);
b9e7b9c3
UW
3057
3058 if (targetdebug)
3059 fprintf_unfiltered (gdb_stdlog,
07c138c8
GB
3060 "target_fileio_readlink (%d,%s)"
3061 " = %s (%d)\n",
3062 inf == NULL ? 0 : inf->num,
b9e7b9c3
UW
3063 filename, ret? ret : "(nil)",
3064 ret? 0 : *target_errno);
3065 return ret;
3066 }
3067 }
3068
3069 *target_errno = FILEIO_ENOSYS;
3070 return NULL;
3071}
3072
7313baad
UW
3073static void
3074target_fileio_close_cleanup (void *opaque)
3075{
3076 int fd = *(int *) opaque;
3077 int target_errno;
3078
3079 target_fileio_close (fd, &target_errno);
3080}
3081
07c138c8
GB
3082/* Read target file FILENAME, in the filesystem as seen by INF. If
3083 INF is NULL, use the filesystem seen by the debugger (GDB or, for
3084 remote targets, the remote stub). Store the result in *BUF_P and
3085 return the size of the transferred data. PADDING additional bytes
3086 are available in *BUF_P. This is a helper function for
3087 target_fileio_read_alloc; see the declaration of that function for
3088 more information. */
7313baad 3089
f7af1fcd
JK
3090static LONGEST
3091target_fileio_read_alloc_1 (struct inferior *inf, const char *filename,
3092 gdb_byte **buf_p, int padding)
3093{
3094 struct cleanup *close_cleanup;
db1ff28b
JK
3095 size_t buf_alloc, buf_pos;
3096 gdb_byte *buf;
3097 LONGEST n;
3098 int fd;
3099 int target_errno;
f7af1fcd 3100
db1ff28b
JK
3101 fd = target_fileio_open (inf, filename, FILEIO_O_RDONLY, 0700,
3102 &target_errno);
f7af1fcd
JK
3103 if (fd == -1)
3104 return -1;
3105
3106 close_cleanup = make_cleanup (target_fileio_close_cleanup, &fd);
db1ff28b
JK
3107
3108 /* Start by reading up to 4K at a time. The target will throttle
3109 this number down if necessary. */
3110 buf_alloc = 4096;
224c3ddb 3111 buf = (gdb_byte *) xmalloc (buf_alloc);
db1ff28b
JK
3112 buf_pos = 0;
3113 while (1)
3114 {
3115 n = target_fileio_pread (fd, &buf[buf_pos],
3116 buf_alloc - buf_pos - padding, buf_pos,
3117 &target_errno);
3118 if (n < 0)
3119 {
3120 /* An error occurred. */
3121 do_cleanups (close_cleanup);
3122 xfree (buf);
3123 return -1;
3124 }
3125 else if (n == 0)
3126 {
3127 /* Read all there was. */
3128 do_cleanups (close_cleanup);
3129 if (buf_pos == 0)
3130 xfree (buf);
3131 else
3132 *buf_p = buf;
3133 return buf_pos;
3134 }
3135
3136 buf_pos += n;
3137
3138 /* If the buffer is filling up, expand it. */
3139 if (buf_alloc < buf_pos * 2)
3140 {
3141 buf_alloc *= 2;
224c3ddb 3142 buf = (gdb_byte *) xrealloc (buf, buf_alloc);
db1ff28b
JK
3143 }
3144
3145 QUIT;
3146 }
f7af1fcd
JK
3147}
3148
12e2a5fd 3149/* See target.h. */
7313baad
UW
3150
3151LONGEST
07c138c8
GB
3152target_fileio_read_alloc (struct inferior *inf, const char *filename,
3153 gdb_byte **buf_p)
7313baad 3154{
07c138c8 3155 return target_fileio_read_alloc_1 (inf, filename, buf_p, 0);
7313baad
UW
3156}
3157
db1ff28b 3158/* See target.h. */
f7af1fcd
JK
3159
3160char *
3161target_fileio_read_stralloc (struct inferior *inf, const char *filename)
3162{
db1ff28b
JK
3163 gdb_byte *buffer;
3164 char *bufstr;
3165 LONGEST i, transferred;
3166
3167 transferred = target_fileio_read_alloc_1 (inf, filename, &buffer, 1);
3168 bufstr = (char *) buffer;
3169
3170 if (transferred < 0)
3171 return NULL;
3172
3173 if (transferred == 0)
3174 return xstrdup ("");
3175
3176 bufstr[transferred] = 0;
3177
3178 /* Check for embedded NUL bytes; but allow trailing NULs. */
3179 for (i = strlen (bufstr); i < transferred; i++)
3180 if (bufstr[i] != 0)
3181 {
3182 warning (_("target file %s "
3183 "contained unexpected null characters"),
3184 filename);
3185 break;
3186 }
3187
3188 return bufstr;
f7af1fcd 3189}
7313baad 3190
db1ff28b 3191
e0d24f8d 3192static int
31568a15
TT
3193default_region_ok_for_hw_watchpoint (struct target_ops *self,
3194 CORE_ADDR addr, int len)
e0d24f8d 3195{
f5656ead 3196 return (len <= gdbarch_ptr_bit (target_gdbarch ()) / TARGET_CHAR_BIT);
ccaa32c7
GS
3197}
3198
5009afc5
AS
3199static int
3200default_watchpoint_addr_within_range (struct target_ops *target,
3201 CORE_ADDR addr,
3202 CORE_ADDR start, int length)
3203{
3204 return addr >= start && addr < start + length;
3205}
3206
c2250ad1
UW
3207static struct gdbarch *
3208default_thread_architecture (struct target_ops *ops, ptid_t ptid)
3209{
f5656ead 3210 return target_gdbarch ();
c2250ad1
UW
3211}
3212
c906108c 3213static int
555bbdeb
TT
3214return_zero (struct target_ops *ignore)
3215{
3216 return 0;
3217}
3218
3219static int
3220return_zero_has_execution (struct target_ops *ignore, ptid_t ignore2)
c906108c
SS
3221{
3222 return 0;
3223}
3224
ed9a39eb
JM
3225/*
3226 * Find the next target down the stack from the specified target.
3227 */
3228
3229struct target_ops *
fba45db2 3230find_target_beneath (struct target_ops *t)
ed9a39eb 3231{
258b763a 3232 return t->beneath;
ed9a39eb
JM
3233}
3234
8b06beed
TT
3235/* See target.h. */
3236
3237struct target_ops *
3238find_target_at (enum strata stratum)
3239{
3240 struct target_ops *t;
3241
3242 for (t = current_target.beneath; t != NULL; t = t->beneath)
3243 if (t->to_stratum == stratum)
3244 return t;
3245
3246 return NULL;
3247}
3248
c906108c 3249\f
0f48b757
PA
3250
3251/* See target.h */
3252
3253void
3254target_announce_detach (int from_tty)
3255{
3256 pid_t pid;
3257 char *exec_file;
3258
3259 if (!from_tty)
3260 return;
3261
3262 exec_file = get_exec_file (0);
3263 if (exec_file == NULL)
3264 exec_file = "";
3265
3266 pid = ptid_get_pid (inferior_ptid);
3267 printf_unfiltered (_("Detaching from program: %s, %s\n"), exec_file,
3268 target_pid_to_str (pid_to_ptid (pid)));
3269 gdb_flush (gdb_stdout);
3270}
3271
c906108c
SS
3272/* The inferior process has died. Long live the inferior! */
3273
3274void
fba45db2 3275generic_mourn_inferior (void)
c906108c 3276{
7f9f62ba 3277 ptid_t ptid;
c906108c 3278
7f9f62ba 3279 ptid = inferior_ptid;
39f77062 3280 inferior_ptid = null_ptid;
7f9f62ba 3281
f59f708a
PA
3282 /* Mark breakpoints uninserted in case something tries to delete a
3283 breakpoint while we delete the inferior's threads (which would
3284 fail, since the inferior is long gone). */
3285 mark_breakpoints_out ();
3286
7f9f62ba
PA
3287 if (!ptid_equal (ptid, null_ptid))
3288 {
3289 int pid = ptid_get_pid (ptid);
6c95b8df 3290 exit_inferior (pid);
7f9f62ba
PA
3291 }
3292
f59f708a
PA
3293 /* Note this wipes step-resume breakpoints, so needs to be done
3294 after exit_inferior, which ends up referencing the step-resume
3295 breakpoints through clear_thread_inferior_resources. */
c906108c 3296 breakpoint_init_inferior (inf_exited);
f59f708a 3297
c906108c
SS
3298 registers_changed ();
3299
c906108c
SS
3300 reopen_exec_file ();
3301 reinit_frame_cache ();
3302
9a4105ab
AC
3303 if (deprecated_detach_hook)
3304 deprecated_detach_hook ();
c906108c
SS
3305}
3306\f
fd0a2a6f
MK
3307/* Convert a normal process ID to a string. Returns the string in a
3308 static buffer. */
c906108c
SS
3309
3310char *
39f77062 3311normal_pid_to_str (ptid_t ptid)
c906108c 3312{
fd0a2a6f 3313 static char buf[32];
c906108c 3314
5fff8fc0 3315 xsnprintf (buf, sizeof buf, "process %d", ptid_get_pid (ptid));
c906108c
SS
3316 return buf;
3317}
3318
2c0b251b 3319static char *
770234d3 3320default_pid_to_str (struct target_ops *ops, ptid_t ptid)
117de6a9
PA
3321{
3322 return normal_pid_to_str (ptid);
3323}
3324
9b4eba8e
HZ
3325/* Error-catcher for target_find_memory_regions. */
3326static int
2e73927c
TT
3327dummy_find_memory_regions (struct target_ops *self,
3328 find_memory_region_ftype ignore1, void *ignore2)
be4d1333 3329{
9b4eba8e 3330 error (_("Command not implemented for this target."));
be4d1333
MS
3331 return 0;
3332}
3333
9b4eba8e
HZ
3334/* Error-catcher for target_make_corefile_notes. */
3335static char *
fc6691b2
TT
3336dummy_make_corefile_notes (struct target_ops *self,
3337 bfd *ignore1, int *ignore2)
be4d1333 3338{
9b4eba8e 3339 error (_("Command not implemented for this target."));
be4d1333
MS
3340 return NULL;
3341}
3342
c906108c
SS
3343/* Set up the handful of non-empty slots needed by the dummy target
3344 vector. */
3345
3346static void
fba45db2 3347init_dummy_target (void)
c906108c
SS
3348{
3349 dummy_target.to_shortname = "None";
3350 dummy_target.to_longname = "None";
3351 dummy_target.to_doc = "";
03583c20
UW
3352 dummy_target.to_supports_disable_randomization
3353 = find_default_supports_disable_randomization;
c906108c 3354 dummy_target.to_stratum = dummy_stratum;
555bbdeb
TT
3355 dummy_target.to_has_all_memory = return_zero;
3356 dummy_target.to_has_memory = return_zero;
3357 dummy_target.to_has_stack = return_zero;
3358 dummy_target.to_has_registers = return_zero;
3359 dummy_target.to_has_execution = return_zero_has_execution;
c906108c 3360 dummy_target.to_magic = OPS_MAGIC;
1101cb7b
TT
3361
3362 install_dummy_methods (&dummy_target);
c906108c 3363}
c906108c 3364\f
c906108c 3365
f1c07ab0 3366void
460014f5 3367target_close (struct target_ops *targ)
f1c07ab0 3368{
7fdc1521
TT
3369 gdb_assert (!target_is_pushed (targ));
3370
f1c07ab0 3371 if (targ->to_xclose != NULL)
460014f5 3372 targ->to_xclose (targ);
f1c07ab0 3373 else if (targ->to_close != NULL)
de90e03d 3374 targ->to_close (targ);
947b8855
PA
3375
3376 if (targetdebug)
460014f5 3377 fprintf_unfiltered (gdb_stdlog, "target_close ()\n");
f1c07ab0
AC
3378}
3379
28439f5e
PA
3380int
3381target_thread_alive (ptid_t ptid)
c906108c 3382{
a7068b60 3383 return current_target.to_thread_alive (&current_target, ptid);
28439f5e
PA
3384}
3385
3386void
e8032dde 3387target_update_thread_list (void)
28439f5e 3388{
e8032dde 3389 current_target.to_update_thread_list (&current_target);
c906108c
SS
3390}
3391
d914c394
SS
3392void
3393target_stop (ptid_t ptid)
3394{
3395 if (!may_stop)
3396 {
3397 warning (_("May not interrupt or stop the target, ignoring attempt"));
3398 return;
3399 }
3400
1eab8a48 3401 (*current_target.to_stop) (&current_target, ptid);
d914c394
SS
3402}
3403
bfedc46a
PA
3404void
3405target_interrupt (ptid_t ptid)
3406{
3407 if (!may_stop)
3408 {
3409 warning (_("May not interrupt or stop the target, ignoring attempt"));
3410 return;
3411 }
3412
3413 (*current_target.to_interrupt) (&current_target, ptid);
3414}
3415
abc56d60
PA
3416/* See target.h. */
3417
93692b58
PA
3418void
3419target_pass_ctrlc (void)
3420{
3421 (*current_target.to_pass_ctrlc) (&current_target);
3422}
3423
3424/* See target.h. */
3425
3426void
3427default_target_pass_ctrlc (struct target_ops *ops)
3428{
3429 target_interrupt (inferior_ptid);
3430}
3431
f8c1d06b
GB
3432/* See target/target.h. */
3433
3434void
03f4463b 3435target_stop_and_wait (ptid_t ptid)
f8c1d06b
GB
3436{
3437 struct target_waitstatus status;
3438 int was_non_stop = non_stop;
3439
3440 non_stop = 1;
3441 target_stop (ptid);
3442
3443 memset (&status, 0, sizeof (status));
3444 target_wait (ptid, &status, 0);
3445
3446 non_stop = was_non_stop;
3447}
3448
3449/* See target/target.h. */
3450
3451void
03f4463b 3452target_continue_no_signal (ptid_t ptid)
f8c1d06b
GB
3453{
3454 target_resume (ptid, 0, GDB_SIGNAL_0);
3455}
3456
049a8570
SDJ
3457/* See target/target.h. */
3458
3459void
3460target_continue (ptid_t ptid, enum gdb_signal signal)
3461{
3462 target_resume (ptid, 0, signal);
3463}
3464
09826ec5
PA
3465/* Concatenate ELEM to LIST, a comma separate list, and return the
3466 result. The LIST incoming argument is released. */
3467
3468static char *
3469str_comma_list_concat_elem (char *list, const char *elem)
3470{
3471 if (list == NULL)
3472 return xstrdup (elem);
3473 else
3474 return reconcat (list, list, ", ", elem, (char *) NULL);
3475}
3476
3477/* Helper for target_options_to_string. If OPT is present in
3478 TARGET_OPTIONS, append the OPT_STR (string version of OPT) in RET.
3479 Returns the new resulting string. OPT is removed from
3480 TARGET_OPTIONS. */
3481
3482static char *
3483do_option (int *target_options, char *ret,
3484 int opt, char *opt_str)
3485{
3486 if ((*target_options & opt) != 0)
3487 {
3488 ret = str_comma_list_concat_elem (ret, opt_str);
3489 *target_options &= ~opt;
3490 }
3491
3492 return ret;
3493}
3494
3495char *
3496target_options_to_string (int target_options)
3497{
3498 char *ret = NULL;
3499
3500#define DO_TARG_OPTION(OPT) \
3501 ret = do_option (&target_options, ret, OPT, #OPT)
3502
3503 DO_TARG_OPTION (TARGET_WNOHANG);
3504
3505 if (target_options != 0)
3506 ret = str_comma_list_concat_elem (ret, "unknown???");
3507
3508 if (ret == NULL)
3509 ret = xstrdup ("");
3510 return ret;
3511}
3512
bf0c5130 3513static void
56be3814
UW
3514debug_print_register (const char * func,
3515 struct regcache *regcache, int regno)
bf0c5130 3516{
f8d29908 3517 struct gdbarch *gdbarch = get_regcache_arch (regcache);
5d502164 3518
bf0c5130 3519 fprintf_unfiltered (gdb_stdlog, "%s ", func);
f8d29908 3520 if (regno >= 0 && regno < gdbarch_num_regs (gdbarch)
f8d29908
UW
3521 && gdbarch_register_name (gdbarch, regno) != NULL
3522 && gdbarch_register_name (gdbarch, regno)[0] != '\0')
3523 fprintf_unfiltered (gdb_stdlog, "(%s)",
3524 gdbarch_register_name (gdbarch, regno));
bf0c5130
AC
3525 else
3526 fprintf_unfiltered (gdb_stdlog, "(%d)", regno);
0ff58721 3527 if (regno >= 0 && regno < gdbarch_num_regs (gdbarch))
bf0c5130 3528 {
e17a4113 3529 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
f8d29908 3530 int i, size = register_size (gdbarch, regno);
e362b510 3531 gdb_byte buf[MAX_REGISTER_SIZE];
5d502164 3532
0ff58721 3533 regcache_raw_collect (regcache, regno, buf);
bf0c5130 3534 fprintf_unfiltered (gdb_stdlog, " = ");
81c4a259 3535 for (i = 0; i < size; i++)
bf0c5130
AC
3536 {
3537 fprintf_unfiltered (gdb_stdlog, "%02x", buf[i]);
3538 }
81c4a259 3539 if (size <= sizeof (LONGEST))
bf0c5130 3540 {
e17a4113 3541 ULONGEST val = extract_unsigned_integer (buf, size, byte_order);
5d502164 3542
0b1553bc
UW
3543 fprintf_unfiltered (gdb_stdlog, " %s %s",
3544 core_addr_to_string_nz (val), plongest (val));
bf0c5130
AC
3545 }
3546 }
3547 fprintf_unfiltered (gdb_stdlog, "\n");
3548}
3549
28439f5e
PA
3550void
3551target_fetch_registers (struct regcache *regcache, int regno)
c906108c 3552{
ad5989bd
TT
3553 current_target.to_fetch_registers (&current_target, regcache, regno);
3554 if (targetdebug)
3555 debug_print_register ("target_fetch_registers", regcache, regno);
c906108c
SS
3556}
3557
28439f5e
PA
3558void
3559target_store_registers (struct regcache *regcache, int regno)
c906108c 3560{
d914c394
SS
3561 if (!may_write_registers)
3562 error (_("Writing to registers is not allowed (regno %d)"), regno);
3563
6b84065d
TT
3564 current_target.to_store_registers (&current_target, regcache, regno);
3565 if (targetdebug)
28439f5e 3566 {
6b84065d 3567 debug_print_register ("target_store_registers", regcache, regno);
28439f5e 3568 }
c906108c
SS
3569}
3570
dc146f7c
VP
3571int
3572target_core_of_thread (ptid_t ptid)
3573{
a7068b60 3574 return current_target.to_core_of_thread (&current_target, ptid);
dc146f7c
VP
3575}
3576
936d2992
PA
3577int
3578simple_verify_memory (struct target_ops *ops,
3579 const gdb_byte *data, CORE_ADDR lma, ULONGEST size)
3580{
3581 LONGEST total_xfered = 0;
3582
3583 while (total_xfered < size)
3584 {
3585 ULONGEST xfered_len;
3586 enum target_xfer_status status;
3587 gdb_byte buf[1024];
325fac50 3588 ULONGEST howmuch = std::min (sizeof (buf), size - total_xfered);
936d2992
PA
3589
3590 status = target_xfer_partial (ops, TARGET_OBJECT_MEMORY, NULL,
3591 buf, NULL, lma + total_xfered, howmuch,
3592 &xfered_len);
3593 if (status == TARGET_XFER_OK
3594 && memcmp (data + total_xfered, buf, xfered_len) == 0)
3595 {
3596 total_xfered += xfered_len;
3597 QUIT;
3598 }
3599 else
3600 return 0;
3601 }
3602 return 1;
3603}
3604
3605/* Default implementation of memory verification. */
3606
3607static int
3608default_verify_memory (struct target_ops *self,
3609 const gdb_byte *data, CORE_ADDR memaddr, ULONGEST size)
3610{
3611 /* Start over from the top of the target stack. */
3612 return simple_verify_memory (current_target.beneath,
3613 data, memaddr, size);
3614}
3615
4a5e7a5b
PA
3616int
3617target_verify_memory (const gdb_byte *data, CORE_ADDR memaddr, ULONGEST size)
3618{
a7068b60
TT
3619 return current_target.to_verify_memory (&current_target,
3620 data, memaddr, size);
4a5e7a5b
PA
3621}
3622
9c06b0b4
TJB
3623/* The documentation for this function is in its prototype declaration in
3624 target.h. */
3625
3626int
f4b0a671
SM
3627target_insert_mask_watchpoint (CORE_ADDR addr, CORE_ADDR mask,
3628 enum target_hw_bp_type rw)
9c06b0b4 3629{
a7068b60
TT
3630 return current_target.to_insert_mask_watchpoint (&current_target,
3631 addr, mask, rw);
9c06b0b4
TJB
3632}
3633
3634/* The documentation for this function is in its prototype declaration in
3635 target.h. */
3636
3637int
f4b0a671
SM
3638target_remove_mask_watchpoint (CORE_ADDR addr, CORE_ADDR mask,
3639 enum target_hw_bp_type rw)
9c06b0b4 3640{
a7068b60
TT
3641 return current_target.to_remove_mask_watchpoint (&current_target,
3642 addr, mask, rw);
9c06b0b4
TJB
3643}
3644
3645/* The documentation for this function is in its prototype declaration
3646 in target.h. */
3647
3648int
3649target_masked_watch_num_registers (CORE_ADDR addr, CORE_ADDR mask)
3650{
6c7e5e5c
TT
3651 return current_target.to_masked_watch_num_registers (&current_target,
3652 addr, mask);
9c06b0b4
TJB
3653}
3654
f1310107
TJB
3655/* The documentation for this function is in its prototype declaration
3656 in target.h. */
3657
3658int
3659target_ranged_break_num_registers (void)
3660{
a134316b 3661 return current_target.to_ranged_break_num_registers (&current_target);
f1310107
TJB
3662}
3663
02d27625
MM
3664/* See target.h. */
3665
043c3577
MM
3666int
3667target_supports_btrace (enum btrace_format format)
3668{
3669 return current_target.to_supports_btrace (&current_target, format);
3670}
3671
3672/* See target.h. */
3673
02d27625 3674struct btrace_target_info *
f4abbc16 3675target_enable_btrace (ptid_t ptid, const struct btrace_config *conf)
02d27625 3676{
f4abbc16 3677 return current_target.to_enable_btrace (&current_target, ptid, conf);
02d27625
MM
3678}
3679
3680/* See target.h. */
3681
3682void
3683target_disable_btrace (struct btrace_target_info *btinfo)
3684{
8dc292d3 3685 current_target.to_disable_btrace (&current_target, btinfo);
02d27625
MM
3686}
3687
3688/* See target.h. */
3689
3690void
3691target_teardown_btrace (struct btrace_target_info *btinfo)
3692{
9ace480d 3693 current_target.to_teardown_btrace (&current_target, btinfo);
02d27625
MM
3694}
3695
3696/* See target.h. */
3697
969c39fb 3698enum btrace_error
734b0e4b 3699target_read_btrace (struct btrace_data *btrace,
969c39fb 3700 struct btrace_target_info *btinfo,
02d27625
MM
3701 enum btrace_read_type type)
3702{
eb5b20d4 3703 return current_target.to_read_btrace (&current_target, btrace, btinfo, type);
02d27625
MM
3704}
3705
d02ed0bb
MM
3706/* See target.h. */
3707
f4abbc16
MM
3708const struct btrace_config *
3709target_btrace_conf (const struct btrace_target_info *btinfo)
3710{
3711 return current_target.to_btrace_conf (&current_target, btinfo);
3712}
3713
3714/* See target.h. */
3715
7c1687a9
MM
3716void
3717target_stop_recording (void)
3718{
ee97f592 3719 current_target.to_stop_recording (&current_target);
7c1687a9
MM
3720}
3721
3722/* See target.h. */
3723
d02ed0bb 3724void
85e1311a 3725target_save_record (const char *filename)
d02ed0bb 3726{
f09e2107 3727 current_target.to_save_record (&current_target, filename);
d02ed0bb
MM
3728}
3729
3730/* See target.h. */
3731
3732int
3733target_supports_delete_record (void)
3734{
3735 struct target_ops *t;
3736
3737 for (t = current_target.beneath; t != NULL; t = t->beneath)
b0ed115f
TT
3738 if (t->to_delete_record != delegate_delete_record
3739 && t->to_delete_record != tdefault_delete_record)
d02ed0bb
MM
3740 return 1;
3741
3742 return 0;
3743}
3744
3745/* See target.h. */
3746
3747void
3748target_delete_record (void)
3749{
07366925 3750 current_target.to_delete_record (&current_target);
d02ed0bb
MM
3751}
3752
3753/* See target.h. */
3754
3755int
a52eab48 3756target_record_is_replaying (ptid_t ptid)
d02ed0bb 3757{
a52eab48 3758 return current_target.to_record_is_replaying (&current_target, ptid);
d02ed0bb
MM
3759}
3760
3761/* See target.h. */
3762
7ff27e9b
MM
3763int
3764target_record_will_replay (ptid_t ptid, int dir)
3765{
3766 return current_target.to_record_will_replay (&current_target, ptid, dir);
3767}
3768
3769/* See target.h. */
3770
797094dd
MM
3771void
3772target_record_stop_replaying (void)
3773{
3774 current_target.to_record_stop_replaying (&current_target);
3775}
3776
3777/* See target.h. */
3778
d02ed0bb
MM
3779void
3780target_goto_record_begin (void)
3781{
671e76cc 3782 current_target.to_goto_record_begin (&current_target);
d02ed0bb
MM
3783}
3784
3785/* See target.h. */
3786
3787void
3788target_goto_record_end (void)
3789{
e9179bb3 3790 current_target.to_goto_record_end (&current_target);
d02ed0bb
MM
3791}
3792
3793/* See target.h. */
3794
3795void
3796target_goto_record (ULONGEST insn)
3797{
05969c84 3798 current_target.to_goto_record (&current_target, insn);
d02ed0bb
MM
3799}
3800
67c86d06
MM
3801/* See target.h. */
3802
3803void
3804target_insn_history (int size, int flags)
3805{
3679abfa 3806 current_target.to_insn_history (&current_target, size, flags);
67c86d06
MM
3807}
3808
3809/* See target.h. */
3810
3811void
3812target_insn_history_from (ULONGEST from, int size, int flags)
3813{
8444ab58 3814 current_target.to_insn_history_from (&current_target, from, size, flags);
67c86d06
MM
3815}
3816
3817/* See target.h. */
3818
3819void
3820target_insn_history_range (ULONGEST begin, ULONGEST end, int flags)
3821{
c29302cc 3822 current_target.to_insn_history_range (&current_target, begin, end, flags);
67c86d06
MM
3823}
3824
15984c13
MM
3825/* See target.h. */
3826
3827void
3828target_call_history (int size, int flags)
3829{
170049d4 3830 current_target.to_call_history (&current_target, size, flags);
15984c13
MM
3831}
3832
3833/* See target.h. */
3834
3835void
3836target_call_history_from (ULONGEST begin, int size, int flags)
3837{
16fc27d6 3838 current_target.to_call_history_from (&current_target, begin, size, flags);
15984c13
MM
3839}
3840
3841/* See target.h. */
3842
3843void
3844target_call_history_range (ULONGEST begin, ULONGEST end, int flags)
3845{
115d9817 3846 current_target.to_call_history_range (&current_target, begin, end, flags);
15984c13
MM
3847}
3848
ea001bdc
MM
3849/* See target.h. */
3850
3851const struct frame_unwind *
3852target_get_unwinder (void)
3853{
ac01945b 3854 return current_target.to_get_unwinder (&current_target);
ea001bdc
MM
3855}
3856
3857/* See target.h. */
3858
3859const struct frame_unwind *
3860target_get_tailcall_unwinder (void)
3861{
ac01945b 3862 return current_target.to_get_tailcall_unwinder (&current_target);
ea001bdc
MM
3863}
3864
5fff78c4
MM
3865/* See target.h. */
3866
3867void
3868target_prepare_to_generate_core (void)
3869{
3870 current_target.to_prepare_to_generate_core (&current_target);
3871}
3872
3873/* See target.h. */
3874
3875void
3876target_done_generating_core (void)
3877{
3878 current_target.to_done_generating_core (&current_target);
3879}
3880
c906108c 3881static void
fba45db2 3882setup_target_debug (void)
c906108c
SS
3883{
3884 memcpy (&debug_target, &current_target, sizeof debug_target);
3885
a7068b60 3886 init_debug_target (&current_target);
c906108c 3887}
c906108c 3888\f
c5aa993b
JM
3889
3890static char targ_desc[] =
3e43a32a
MS
3891"Names of targets and files being debugged.\nShows the entire \
3892stack of targets currently in use (including the exec-file,\n\
c906108c
SS
3893core-file, and process, if any), as well as the symbol file name.";
3894
a53f3625 3895static void
a30bf1f1
TT
3896default_rcmd (struct target_ops *self, const char *command,
3897 struct ui_file *output)
a53f3625
TT
3898{
3899 error (_("\"monitor\" command not supported by this target."));
3900}
3901
96baa820
JM
3902static void
3903do_monitor_command (char *cmd,
3904 int from_tty)
3905{
96baa820
JM
3906 target_rcmd (cmd, gdb_stdtarg);
3907}
3908
87680a14
JB
3909/* Print the name of each layers of our target stack. */
3910
3911static void
3912maintenance_print_target_stack (char *cmd, int from_tty)
3913{
3914 struct target_ops *t;
3915
3916 printf_filtered (_("The current target stack is:\n"));
3917
3918 for (t = target_stack; t != NULL; t = t->beneath)
3919 {
3920 printf_filtered (" - %s (%s)\n", t->to_shortname, t->to_longname);
3921 }
3922}
3923
372316f1
PA
3924/* See target.h. */
3925
3926void
3927target_async (int enable)
3928{
3929 infrun_async (enable);
3930 current_target.to_async (&current_target, enable);
3931}
3932
65706a29
PA
3933/* See target.h. */
3934
3935void
3936target_thread_events (int enable)
3937{
3938 current_target.to_thread_events (&current_target, enable);
3939}
3940
329ea579
PA
3941/* Controls if targets can report that they can/are async. This is
3942 just for maintainers to use when debugging gdb. */
3943int target_async_permitted = 1;
c6ebd6cf
VP
3944
3945/* The set command writes to this variable. If the inferior is
b5419e49 3946 executing, target_async_permitted is *not* updated. */
329ea579 3947static int target_async_permitted_1 = 1;
c6ebd6cf
VP
3948
3949static void
329ea579
PA
3950maint_set_target_async_command (char *args, int from_tty,
3951 struct cmd_list_element *c)
c6ebd6cf 3952{
c35b1492 3953 if (have_live_inferiors ())
c6ebd6cf
VP
3954 {
3955 target_async_permitted_1 = target_async_permitted;
3956 error (_("Cannot change this setting while the inferior is running."));
3957 }
3958
3959 target_async_permitted = target_async_permitted_1;
3960}
3961
3962static void
329ea579
PA
3963maint_show_target_async_command (struct ui_file *file, int from_tty,
3964 struct cmd_list_element *c,
3965 const char *value)
c6ebd6cf 3966{
3e43a32a
MS
3967 fprintf_filtered (file,
3968 _("Controlling the inferior in "
3969 "asynchronous mode is %s.\n"), value);
c6ebd6cf
VP
3970}
3971
fbea99ea
PA
3972/* Return true if the target operates in non-stop mode even with "set
3973 non-stop off". */
3974
3975static int
3976target_always_non_stop_p (void)
3977{
3978 return current_target.to_always_non_stop_p (&current_target);
3979}
3980
3981/* See target.h. */
3982
3983int
3984target_is_non_stop_p (void)
3985{
3986 return (non_stop
3987 || target_non_stop_enabled == AUTO_BOOLEAN_TRUE
3988 || (target_non_stop_enabled == AUTO_BOOLEAN_AUTO
3989 && target_always_non_stop_p ()));
3990}
3991
3992/* Controls if targets can report that they always run in non-stop
3993 mode. This is just for maintainers to use when debugging gdb. */
3994enum auto_boolean target_non_stop_enabled = AUTO_BOOLEAN_AUTO;
3995
3996/* The set command writes to this variable. If the inferior is
3997 executing, target_non_stop_enabled is *not* updated. */
3998static enum auto_boolean target_non_stop_enabled_1 = AUTO_BOOLEAN_AUTO;
3999
4000/* Implementation of "maint set target-non-stop". */
4001
4002static void
4003maint_set_target_non_stop_command (char *args, int from_tty,
4004 struct cmd_list_element *c)
4005{
4006 if (have_live_inferiors ())
4007 {
4008 target_non_stop_enabled_1 = target_non_stop_enabled;
4009 error (_("Cannot change this setting while the inferior is running."));
4010 }
4011
4012 target_non_stop_enabled = target_non_stop_enabled_1;
4013}
4014
4015/* Implementation of "maint show target-non-stop". */
4016
4017static void
4018maint_show_target_non_stop_command (struct ui_file *file, int from_tty,
4019 struct cmd_list_element *c,
4020 const char *value)
4021{
4022 if (target_non_stop_enabled == AUTO_BOOLEAN_AUTO)
4023 fprintf_filtered (file,
4024 _("Whether the target is always in non-stop mode "
4025 "is %s (currently %s).\n"), value,
4026 target_always_non_stop_p () ? "on" : "off");
4027 else
4028 fprintf_filtered (file,
4029 _("Whether the target is always in non-stop mode "
4030 "is %s.\n"), value);
4031}
4032
d914c394
SS
4033/* Temporary copies of permission settings. */
4034
4035static int may_write_registers_1 = 1;
4036static int may_write_memory_1 = 1;
4037static int may_insert_breakpoints_1 = 1;
4038static int may_insert_tracepoints_1 = 1;
4039static int may_insert_fast_tracepoints_1 = 1;
4040static int may_stop_1 = 1;
4041
4042/* Make the user-set values match the real values again. */
4043
4044void
4045update_target_permissions (void)
4046{
4047 may_write_registers_1 = may_write_registers;
4048 may_write_memory_1 = may_write_memory;
4049 may_insert_breakpoints_1 = may_insert_breakpoints;
4050 may_insert_tracepoints_1 = may_insert_tracepoints;
4051 may_insert_fast_tracepoints_1 = may_insert_fast_tracepoints;
4052 may_stop_1 = may_stop;
4053}
4054
4055/* The one function handles (most of) the permission flags in the same
4056 way. */
4057
4058static void
4059set_target_permissions (char *args, int from_tty,
4060 struct cmd_list_element *c)
4061{
4062 if (target_has_execution)
4063 {
4064 update_target_permissions ();
4065 error (_("Cannot change this setting while the inferior is running."));
4066 }
4067
4068 /* Make the real values match the user-changed values. */
4069 may_write_registers = may_write_registers_1;
4070 may_insert_breakpoints = may_insert_breakpoints_1;
4071 may_insert_tracepoints = may_insert_tracepoints_1;
4072 may_insert_fast_tracepoints = may_insert_fast_tracepoints_1;
4073 may_stop = may_stop_1;
4074 update_observer_mode ();
4075}
4076
4077/* Set memory write permission independently of observer mode. */
4078
4079static void
4080set_write_memory_permission (char *args, int from_tty,
4081 struct cmd_list_element *c)
4082{
4083 /* Make the real values match the user-changed values. */
4084 may_write_memory = may_write_memory_1;
4085 update_observer_mode ();
4086}
4087
4088
c906108c 4089void
fba45db2 4090initialize_targets (void)
c906108c
SS
4091{
4092 init_dummy_target ();
4093 push_target (&dummy_target);
4094
4095 add_info ("target", target_info, targ_desc);
4096 add_info ("files", target_info, targ_desc);
4097
ccce17b0 4098 add_setshow_zuinteger_cmd ("target", class_maintenance, &targetdebug, _("\
85c07804
AC
4099Set target debugging."), _("\
4100Show target debugging."), _("\
333dabeb 4101When non-zero, target debugging is enabled. Higher numbers are more\n\
3cecbbbe
TT
4102verbose."),
4103 set_targetdebug,
ccce17b0
YQ
4104 show_targetdebug,
4105 &setdebuglist, &showdebuglist);
3a11626d 4106
2bc416ba 4107 add_setshow_boolean_cmd ("trust-readonly-sections", class_support,
7915a72c
AC
4108 &trust_readonly, _("\
4109Set mode for reading from readonly sections."), _("\
4110Show mode for reading from readonly sections."), _("\
3a11626d
MS
4111When this mode is on, memory reads from readonly sections (such as .text)\n\
4112will be read from the object file instead of from the target. This will\n\
7915a72c 4113result in significant performance improvement for remote targets."),
2c5b56ce 4114 NULL,
920d2a44 4115 show_trust_readonly,
e707bbc2 4116 &setlist, &showlist);
96baa820
JM
4117
4118 add_com ("monitor", class_obscure, do_monitor_command,
1bedd215 4119 _("Send a command to the remote monitor (remote targets only)."));
96baa820 4120
87680a14
JB
4121 add_cmd ("target-stack", class_maintenance, maintenance_print_target_stack,
4122 _("Print the name of each layer of the internal target stack."),
4123 &maintenanceprintlist);
4124
c6ebd6cf
VP
4125 add_setshow_boolean_cmd ("target-async", no_class,
4126 &target_async_permitted_1, _("\
4127Set whether gdb controls the inferior in asynchronous mode."), _("\
4128Show whether gdb controls the inferior in asynchronous mode."), _("\
4129Tells gdb whether to control the inferior in asynchronous mode."),
329ea579
PA
4130 maint_set_target_async_command,
4131 maint_show_target_async_command,
4132 &maintenance_set_cmdlist,
4133 &maintenance_show_cmdlist);
c6ebd6cf 4134
fbea99ea
PA
4135 add_setshow_auto_boolean_cmd ("target-non-stop", no_class,
4136 &target_non_stop_enabled_1, _("\
4137Set whether gdb always controls the inferior in non-stop mode."), _("\
4138Show whether gdb always controls the inferior in non-stop mode."), _("\
4139Tells gdb whether to control the inferior in non-stop mode."),
4140 maint_set_target_non_stop_command,
4141 maint_show_target_non_stop_command,
4142 &maintenance_set_cmdlist,
4143 &maintenance_show_cmdlist);
4144
d914c394
SS
4145 add_setshow_boolean_cmd ("may-write-registers", class_support,
4146 &may_write_registers_1, _("\
4147Set permission to write into registers."), _("\
4148Show permission to write into registers."), _("\
4149When this permission is on, GDB may write into the target's registers.\n\
4150Otherwise, any sort of write attempt will result in an error."),
4151 set_target_permissions, NULL,
4152 &setlist, &showlist);
4153
4154 add_setshow_boolean_cmd ("may-write-memory", class_support,
4155 &may_write_memory_1, _("\
4156Set permission to write into target memory."), _("\
4157Show permission to write into target memory."), _("\
4158When this permission is on, GDB may write into the target's memory.\n\
4159Otherwise, any sort of write attempt will result in an error."),
4160 set_write_memory_permission, NULL,
4161 &setlist, &showlist);
4162
4163 add_setshow_boolean_cmd ("may-insert-breakpoints", class_support,
4164 &may_insert_breakpoints_1, _("\
4165Set permission to insert breakpoints in the target."), _("\
4166Show permission to insert breakpoints in the target."), _("\
4167When this permission is on, GDB may insert breakpoints in the program.\n\
4168Otherwise, any sort of insertion attempt will result in an error."),
4169 set_target_permissions, NULL,
4170 &setlist, &showlist);
4171
4172 add_setshow_boolean_cmd ("may-insert-tracepoints", class_support,
4173 &may_insert_tracepoints_1, _("\
4174Set permission to insert tracepoints in the target."), _("\
4175Show permission to insert tracepoints in the target."), _("\
4176When this permission is on, GDB may insert tracepoints in the program.\n\
4177Otherwise, any sort of insertion attempt will result in an error."),
4178 set_target_permissions, NULL,
4179 &setlist, &showlist);
4180
4181 add_setshow_boolean_cmd ("may-insert-fast-tracepoints", class_support,
4182 &may_insert_fast_tracepoints_1, _("\
4183Set permission to insert fast tracepoints in the target."), _("\
4184Show permission to insert fast tracepoints in the target."), _("\
4185When this permission is on, GDB may insert fast tracepoints.\n\
4186Otherwise, any sort of insertion attempt will result in an error."),
4187 set_target_permissions, NULL,
4188 &setlist, &showlist);
4189
4190 add_setshow_boolean_cmd ("may-interrupt", class_support,
4191 &may_stop_1, _("\
4192Set permission to interrupt or signal the target."), _("\
4193Show permission to interrupt or signal the target."), _("\
4194When this permission is on, GDB may interrupt/stop the target's execution.\n\
4195Otherwise, any attempt to interrupt or stop will be ignored."),
4196 set_target_permissions, NULL,
4197 &setlist, &showlist);
6a3cb8e8
PA
4198
4199 add_setshow_boolean_cmd ("auto-connect-native-target", class_support,
4200 &auto_connect_native_target, _("\
4201Set whether GDB may automatically connect to the native target."), _("\
4202Show whether GDB may automatically connect to the native target."), _("\
4203When on, and GDB is not connected to a target yet, GDB\n\
4204attempts \"run\" and other commands with the native target."),
4205 NULL, show_auto_connect_native_target,
4206 &setlist, &showlist);
c906108c 4207}
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