gdb/
[deliverable/binutils-gdb.git] / gdb / mi / mi-main.c
CommitLineData
fb40c209 1/* MI Command Set.
cd0bfa36 2
4c38e0a4 3 Copyright (C) 2000, 2001, 2002, 2003, 2004, 2005, 2007, 2008, 2009, 2010
6aba47ca 4 Free Software Foundation, Inc.
cd0bfa36 5
ab91fdd5 6 Contributed by Cygnus Solutions (a Red Hat company).
fb40c209
AC
7
8 This file is part of GDB.
9
10 This program is free software; you can redistribute it and/or modify
11 it under the terms of the GNU General Public License as published by
a9762ec7 12 the Free Software Foundation; either version 3 of the License, or
fb40c209
AC
13 (at your option) any later version.
14
15 This program is distributed in the hope that it will be useful,
16 but WITHOUT ANY WARRANTY; without even the implied warranty of
17 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
18 GNU General Public License for more details.
19
20 You should have received a copy of the GNU General Public License
a9762ec7 21 along with this program. If not, see <http://www.gnu.org/licenses/>. */
fb40c209 22
41296c92 23/* Work in progress. */
fb40c209
AC
24
25#include "defs.h"
e17c207e 26#include "arch-utils.h"
fb40c209
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27#include "target.h"
28#include "inferior.h"
29#include "gdb_string.h"
60250e8b 30#include "exceptions.h"
fb40c209
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31#include "top.h"
32#include "gdbthread.h"
33#include "mi-cmds.h"
34#include "mi-parse.h"
35#include "mi-getopt.h"
36#include "mi-console.h"
37#include "ui-out.h"
38#include "mi-out.h"
4389a95a 39#include "interps.h"
fb40c209
AC
40#include "event-loop.h"
41#include "event-top.h"
41296c92 42#include "gdbcore.h" /* For write_memory(). */
56178203 43#include "value.h"
4e052eda 44#include "regcache.h"
5b7f31a4 45#include "gdb.h"
36dc181b 46#include "frame.h"
b9362cc7 47#include "mi-main.h"
66bb093b 48#include "mi-common.h"
d8ca156b 49#include "language.h"
79a45b7d 50#include "valprint.h"
3ee1c036 51#include "inferior.h"
07e059b5 52#include "osdata.h"
dc146f7c 53#include "splay-tree.h"
f224b49d 54#include "tracepoint.h"
36dc181b 55
fb40c209
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56#include <ctype.h>
57#include <sys/time.h>
58
d8c83789
NR
59#if defined HAVE_SYS_RESOURCE_H
60#include <sys/resource.h>
61#endif
62
63#ifdef HAVE_GETRUSAGE
64struct rusage rusage;
65#endif
66
fb40c209
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67enum
68 {
69 FROM_TTY = 0
70 };
71
fb40c209
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72int mi_debug_p;
73struct ui_file *raw_stdout;
74
d8c83789
NR
75/* This is used to pass the current command timestamp
76 down to continuation routines. */
77static struct mi_timestamp *current_command_ts;
78
79static int do_timings = 0;
80
a2840c35 81char *current_token;
a79b8f6e
VP
82/* Few commands would like to know if options like --thread-group
83 were explicitly specified. This variable keeps the current
84 parsed command including all option, and make it possible. */
85static struct mi_parse *current_context;
86
a2840c35 87int running_result_record_printed = 1;
fb40c209 88
f3b1572e
PA
89/* Flag indicating that the target has proceeded since the last
90 command was issued. */
91int mi_proceeded;
92
fb40c209 93extern void _initialize_mi_main (void);
ce8f13f8 94static void mi_cmd_execute (struct mi_parse *parse);
fb40c209 95
b2af646b
AC
96static void mi_execute_cli_command (const char *cmd, int args_p,
97 const char *args);
ce8f13f8 98static void mi_execute_async_cli_command (char *cli_command,
9e22b03a 99 char **argv, int argc);
6ed7ea50
UW
100static int register_changed_p (int regnum, struct regcache *,
101 struct regcache *);
7ccb0be9 102static void get_register (struct frame_info *, int regnum, int format);
4389a95a 103
41296c92 104/* Command implementations. FIXME: Is this libgdb? No. This is the MI
fb40c209 105 layer that calls libgdb. Any operation used in the below should be
41296c92 106 formalized. */
fb40c209 107
d8c83789
NR
108static void timestamp (struct mi_timestamp *tv);
109
110static void print_diff_now (struct mi_timestamp *start);
111static void print_diff (struct mi_timestamp *start, struct mi_timestamp *end);
112
ce8f13f8 113void
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114mi_cmd_gdb_exit (char *command, char **argv, int argc)
115{
41296c92 116 /* We have to print everything right here because we never return. */
721c02de
VP
117 if (current_token)
118 fputs_unfiltered (current_token, raw_stdout);
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AC
119 fputs_unfiltered ("^exit\n", raw_stdout);
120 mi_out_put (uiout, raw_stdout);
a6b29f87 121 gdb_flush (raw_stdout);
41296c92 122 /* FIXME: The function called is not yet a formal libgdb function. */
fb40c209 123 quit_force (NULL, FROM_TTY);
fb40c209
AC
124}
125
ce8f13f8 126void
9e22b03a 127mi_cmd_exec_next (char *command, char **argv, int argc)
fb40c209 128{
41296c92 129 /* FIXME: Should call a libgdb function, not a cli wrapper. */
e5829bee
MS
130 if (argc > 0 && strcmp(argv[0], "--reverse") == 0)
131 mi_execute_async_cli_command ("reverse-next", argv + 1, argc - 1);
132 else
133 mi_execute_async_cli_command ("next", argv, argc);
fb40c209
AC
134}
135
ce8f13f8 136void
9e22b03a 137mi_cmd_exec_next_instruction (char *command, char **argv, int argc)
fb40c209 138{
41296c92 139 /* FIXME: Should call a libgdb function, not a cli wrapper. */
e5829bee
MS
140 if (argc > 0 && strcmp(argv[0], "--reverse") == 0)
141 mi_execute_async_cli_command ("reverse-nexti", argv + 1, argc - 1);
142 else
143 mi_execute_async_cli_command ("nexti", argv, argc);
fb40c209
AC
144}
145
ce8f13f8 146void
9e22b03a 147mi_cmd_exec_step (char *command, char **argv, int argc)
fb40c209 148{
41296c92 149 /* FIXME: Should call a libgdb function, not a cli wrapper. */
e5829bee
MS
150 if (argc > 0 && strcmp(argv[0], "--reverse") == 0)
151 mi_execute_async_cli_command ("reverse-step", argv + 1, argc - 1);
152 else
153 mi_execute_async_cli_command ("step", argv, argc);
fb40c209
AC
154}
155
ce8f13f8 156void
9e22b03a 157mi_cmd_exec_step_instruction (char *command, char **argv, int argc)
fb40c209 158{
41296c92 159 /* FIXME: Should call a libgdb function, not a cli wrapper. */
e5829bee
MS
160 if (argc > 0 && strcmp(argv[0], "--reverse") == 0)
161 mi_execute_async_cli_command ("reverse-stepi", argv + 1, argc - 1);
162 else
163 mi_execute_async_cli_command ("stepi", argv, argc);
fb40c209
AC
164}
165
ce8f13f8 166void
9e22b03a 167mi_cmd_exec_finish (char *command, char **argv, int argc)
fb40c209 168{
41296c92 169 /* FIXME: Should call a libgdb function, not a cli wrapper. */
e5829bee
MS
170 if (argc > 0 && strcmp(argv[0], "--reverse") == 0)
171 mi_execute_async_cli_command ("reverse-finish", argv + 1, argc - 1);
172 else
173 mi_execute_async_cli_command ("finish", argv, argc);
fb40c209
AC
174}
175
ce8f13f8 176void
9e22b03a 177mi_cmd_exec_return (char *command, char **argv, int argc)
fb40c209 178{
fb40c209
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179 /* This command doesn't really execute the target, it just pops the
180 specified number of frames. */
9e22b03a 181 if (argc)
fb40c209 182 /* Call return_command with from_tty argument equal to 0 so as to
41296c92 183 avoid being queried. */
9e22b03a 184 return_command (*argv, 0);
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185 else
186 /* Call return_command with from_tty argument equal to 0 so as to
41296c92 187 avoid being queried. */
36dc181b 188 return_command (NULL, 0);
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189
190 /* Because we have called return_command with from_tty = 0, we need
41296c92 191 to print the frame here. */
b04f3ab4 192 print_stack_frame (get_selected_frame (NULL), 1, LOC_AND_ADDRESS);
fb40c209
AC
193}
194
143260c9
VP
195void
196mi_cmd_exec_jump (char *args, char **argv, int argc)
197{
198 /* FIXME: Should call a libgdb function, not a cli wrapper. */
202b96c1 199 mi_execute_async_cli_command ("jump", argv, argc);
143260c9
VP
200}
201
a79b8f6e
VP
202static void
203proceed_thread (struct thread_info *thread, int pid)
8dd4f202 204{
8dd4f202 205 if (!is_stopped (thread->ptid))
a79b8f6e 206 return;
8dd4f202 207
a79b8f6e
VP
208 if (pid != 0 && PIDGET (thread->ptid) != pid)
209 return;
8dd4f202
VP
210
211 switch_to_thread (thread->ptid);
212 clear_proceed_status ();
213 proceed ((CORE_ADDR) -1, TARGET_SIGNAL_DEFAULT, 0);
a79b8f6e
VP
214}
215
216
217static int
218proceed_thread_callback (struct thread_info *thread, void *arg)
219{
220 int pid = *(int *)arg;
102040f0 221
a79b8f6e 222 proceed_thread (thread, pid);
8dd4f202
VP
223 return 0;
224}
225
e5829bee
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226static void
227exec_continue (char **argv, int argc)
fb40c209 228{
a79b8f6e 229 if (non_stop)
8dd4f202 230 {
a79b8f6e
VP
231 /* In non-stop mode, 'resume' always resumes a single thread. Therefore,
232 to resume all threads of the current inferior, or all threads in all
233 inferiors, we need to iterate over threads.
234
235 See comment on infcmd.c:proceed_thread_callback for rationale. */
236 if (current_context->all || current_context->thread_group != -1)
237 {
238 int pid = 0;
239 struct cleanup *back_to = make_cleanup_restore_current_thread ();
8dd4f202 240
a79b8f6e
VP
241 if (!current_context->all)
242 {
243 struct inferior *inf = find_inferior_id (current_context->thread_group);
244 pid = inf->pid;
245 }
246 iterate_over_threads (proceed_thread_callback, &pid);
247 do_cleanups (back_to);
248 }
249 else
250 {
251 continue_1 (0);
252 }
8dd4f202 253 }
77ebaa5a 254 else
a79b8f6e
VP
255 {
256 struct cleanup *back_to = make_cleanup_restore_integer (&sched_multi);
102040f0 257
a79b8f6e
VP
258 if (current_context->all)
259 {
260 sched_multi = 1;
261 continue_1 (0);
262 }
263 else
264 {
265 /* In all-stop mode, -exec-continue traditionally resumed either
266 all threads, or one thread, depending on the 'scheduler-locking'
267 variable. Let's continue to do the same. */
268 continue_1 (1);
269 }
270 do_cleanups (back_to);
271 }
e5829bee
MS
272}
273
e5829bee 274static void
a79b8f6e 275exec_direction_forward (void *notused)
e5829bee 276{
e5829bee
MS
277 execution_direction = EXEC_FORWARD;
278}
279
280static void
281exec_reverse_continue (char **argv, int argc)
282{
283 enum exec_direction_kind dir = execution_direction;
284 struct cleanup *old_chain;
285
286 if (dir == EXEC_ERROR)
287 error (_("Target %s does not support this command."), target_shortname);
288
289 if (dir == EXEC_REVERSE)
290 error (_("Already in reverse mode."));
291
292 if (!target_can_execute_reverse)
293 error (_("Target %s does not support this command."), target_shortname);
294
a79b8f6e 295 old_chain = make_cleanup (exec_direction_forward, NULL);
e5829bee
MS
296 execution_direction = EXEC_REVERSE;
297 exec_continue (argv, argc);
298 do_cleanups (old_chain);
299}
300
301void
302mi_cmd_exec_continue (char *command, char **argv, int argc)
303{
a79b8f6e 304 if (argc > 0 && strcmp (argv[0], "--reverse") == 0)
e5829bee
MS
305 exec_reverse_continue (argv + 1, argc - 1);
306 else
307 exec_continue (argv, argc);
8dd4f202
VP
308}
309
310static int
311interrupt_thread_callback (struct thread_info *thread, void *arg)
312{
313 int pid = *(int *)arg;
314
315 if (!is_running (thread->ptid))
316 return 0;
317
318 if (PIDGET (thread->ptid) != pid)
319 return 0;
320
321 target_stop (thread->ptid);
322 return 0;
fb40c209
AC
323}
324
41296c92 325/* Interrupt the execution of the target. Note how we must play around
d8c83789 326 with the token variables, in order to display the current token in
fb40c209 327 the result of the interrupt command, and the previous execution
41296c92
NR
328 token when the target finally stops. See comments in
329 mi_cmd_execute. */
ce8f13f8 330void
9e22b03a 331mi_cmd_exec_interrupt (char *command, char **argv, int argc)
fb40c209 332{
a79b8f6e
VP
333 /* In all-stop mode, everything stops, so we don't need to try
334 anything specific. */
335 if (!non_stop)
77ebaa5a 336 {
77ebaa5a 337 interrupt_target_1 (0);
a79b8f6e 338 return;
77ebaa5a 339 }
a79b8f6e
VP
340
341 if (current_context->all)
77ebaa5a 342 {
a79b8f6e 343 /* This will interrupt all threads in all inferiors. */
77ebaa5a
VP
344 interrupt_target_1 (1);
345 }
a79b8f6e 346 else if (current_context->thread_group != -1)
8dd4f202 347 {
a79b8f6e 348 struct inferior *inf = find_inferior_id (current_context->thread_group);
102040f0 349
a79b8f6e
VP
350 iterate_over_threads (interrupt_thread_callback, &inf->pid);
351 }
352 else
353 {
354 /* Interrupt just the current thread -- either explicitly
355 specified via --thread or whatever was current before
356 MI command was sent. */
357 interrupt_target_1 (0);
358 }
359}
360
361static int
362run_one_inferior (struct inferior *inf, void *arg)
363{
a79b8f6e
VP
364 if (inf->pid != 0)
365 {
366 if (inf->pid != ptid_get_pid (inferior_ptid))
367 {
368 struct thread_info *tp;
8dd4f202 369
a79b8f6e
VP
370 tp = any_thread_of_process (inf->pid);
371 if (!tp)
372 error (_("Inferior has no threads."));
373
374 switch_to_thread (tp->ptid);
375 }
8dd4f202 376 }
77ebaa5a 377 else
a79b8f6e
VP
378 {
379 set_current_inferior (inf);
380 switch_to_thread (null_ptid);
381 set_current_program_space (inf->pspace);
382 }
383 mi_execute_cli_command ("run", target_can_async_p (),
384 target_can_async_p () ? "&" : NULL);
385 return 0;
fb40c209
AC
386}
387
115d30f9
VP
388void
389mi_cmd_exec_run (char *command, char **argv, int argc)
390{
a79b8f6e
VP
391 if (current_context->all)
392 {
393 struct cleanup *back_to = save_current_space_and_thread ();
102040f0 394
a79b8f6e
VP
395 iterate_over_inferiors (run_one_inferior, NULL);
396 do_cleanups (back_to);
397 }
398 else
399 {
400 mi_execute_cli_command ("run", target_can_async_p (),
401 target_can_async_p () ? "&" : NULL);
402 }
115d30f9
VP
403}
404
a79b8f6e 405
6418d433
VP
406static int
407find_thread_of_process (struct thread_info *ti, void *p)
408{
409 int pid = *(int *)p;
102040f0 410
6418d433
VP
411 if (PIDGET (ti->ptid) == pid && !is_exited (ti->ptid))
412 return 1;
413
414 return 0;
415}
416
417void
418mi_cmd_target_detach (char *command, char **argv, int argc)
419{
420 if (argc != 0 && argc != 1)
421 error ("Usage: -target-detach [thread-group]");
422
423 if (argc == 1)
424 {
425 struct thread_info *tp;
426 char *end = argv[0];
427 int pid = strtol (argv[0], &end, 10);
102040f0 428
6418d433
VP
429 if (*end != '\0')
430 error (_("Cannot parse thread group id '%s'"), argv[0]);
431
432 /* Pick any thread in the desired process. Current
433 target_detach deteches from the parent of inferior_ptid. */
434 tp = iterate_over_threads (find_thread_of_process, &pid);
435 if (!tp)
436 error (_("Thread group is empty"));
437
438 switch_to_thread (tp->ptid);
439 }
440
441 detach_command (NULL, 0);
442}
443
ce8f13f8 444void
fb40c209
AC
445mi_cmd_thread_select (char *command, char **argv, int argc)
446{
447 enum gdb_rc rc;
a13e061a 448 char *mi_error_message;
fb40c209
AC
449
450 if (argc != 1)
a13e061a
PA
451 error ("mi_cmd_thread_select: USAGE: threadnum.");
452
453 rc = gdb_thread_select (uiout, argv[0], &mi_error_message);
454
455 if (rc == GDB_RC_FAIL)
fb40c209 456 {
a13e061a
PA
457 make_cleanup (xfree, mi_error_message);
458 error ("%s", mi_error_message);
fb40c209 459 }
fb40c209
AC
460}
461
ce8f13f8 462void
fb40c209
AC
463mi_cmd_thread_list_ids (char *command, char **argv, int argc)
464{
b0b13bb4 465 enum gdb_rc rc;
a13e061a 466 char *mi_error_message;
fb40c209
AC
467
468 if (argc != 0)
a13e061a
PA
469 error ("mi_cmd_thread_list_ids: No arguments required.");
470
471 rc = gdb_list_thread_ids (uiout, &mi_error_message);
472
473 if (rc == GDB_RC_FAIL)
fb40c209 474 {
a13e061a
PA
475 make_cleanup (xfree, mi_error_message);
476 error ("%s", mi_error_message);
fb40c209 477 }
fb40c209
AC
478}
479
ce8f13f8 480void
8e8901c5
VP
481mi_cmd_thread_info (char *command, char **argv, int argc)
482{
483 int thread = -1;
484
485 if (argc != 0 && argc != 1)
a13e061a 486 error ("Invalid MI command");
8e8901c5
VP
487
488 if (argc == 1)
489 thread = atoi (argv[0]);
490
3ee1c036
VP
491 print_thread_info (uiout, thread, -1);
492}
493
dc146f7c
VP
494struct collect_cores_data
495{
496 int pid;
497
498 VEC (int) *cores;
499};
500
3ee1c036 501static int
dc146f7c 502collect_cores (struct thread_info *ti, void *xdata)
3ee1c036 503{
dc146f7c
VP
504 struct collect_cores_data *data = xdata;
505
506 if (ptid_get_pid (ti->ptid) == data->pid)
6c95b8df 507 {
dc146f7c 508 int core = target_core_of_thread (ti->ptid);
102040f0 509
dc146f7c
VP
510 if (core != -1)
511 VEC_safe_push (int, data->cores, core);
512 }
513
514 return 0;
515}
516
517static int *
518unique (int *b, int *e)
519{
520 int *d = b;
102040f0 521
dc146f7c
VP
522 while (++b != e)
523 if (*d != *b)
524 *++d = *b;
525 return ++d;
526}
527
528struct print_one_inferior_data
529{
530 int recurse;
531 VEC (int) *inferiors;
532};
533
534static int
535print_one_inferior (struct inferior *inferior, void *xdata)
536{
537 struct print_one_inferior_data *top_data = xdata;
538
539 if (VEC_empty (int, top_data->inferiors)
540 || bsearch (&(inferior->pid), VEC_address (int, top_data->inferiors),
541 VEC_length (int, top_data->inferiors), sizeof (int),
542 compare_positive_ints))
543 {
544 struct collect_cores_data data;
6c95b8df
PA
545 struct cleanup *back_to
546 = make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
547
a79b8f6e 548 ui_out_field_fmt (uiout, "id", "i%d", inferior->num);
6c95b8df 549 ui_out_field_string (uiout, "type", "process");
a79b8f6e
VP
550 if (inferior->pid != 0)
551 ui_out_field_int (uiout, "pid", inferior->pid);
552
553 if (inferior->pspace->ebfd)
554 {
555 ui_out_field_string (uiout, "executable",
556 bfd_get_filename (inferior->pspace->ebfd));
557 }
6c95b8df 558
dc146f7c 559 data.cores = 0;
a79b8f6e
VP
560 if (inferior->pid != 0)
561 {
562 data.pid = inferior->pid;
563 iterate_over_threads (collect_cores, &data);
564 }
dc146f7c
VP
565
566 if (!VEC_empty (int, data.cores))
567 {
dc146f7c
VP
568 int *b, *e;
569 struct cleanup *back_to_2 =
570 make_cleanup_ui_out_list_begin_end (uiout, "cores");
571
572 qsort (VEC_address (int, data.cores),
573 VEC_length (int, data.cores), sizeof (int),
574 compare_positive_ints);
575
576 b = VEC_address (int, data.cores);
577 e = b + VEC_length (int, data.cores);
578 e = unique (b, e);
579
580 for (; b != e; ++b)
581 ui_out_field_int (uiout, NULL, *b);
582
583 do_cleanups (back_to_2);
584 }
585
586 if (top_data->recurse)
587 print_thread_info (uiout, -1, inferior->pid);
588
6c95b8df
PA
589 do_cleanups (back_to);
590 }
3ee1c036 591
3ee1c036
VP
592 return 0;
593}
594
dc146f7c
VP
595/* Output a field named 'cores' with a list as the value. The elements of
596 the list are obtained by splitting 'cores' on comma. */
597
598static void
599output_cores (struct ui_out *uiout, const char *field_name, const char *xcores)
3ee1c036 600{
dc146f7c
VP
601 struct cleanup *back_to = make_cleanup_ui_out_list_begin_end (uiout,
602 field_name);
603 char *cores = xstrdup (xcores);
604 char *p = cores;
3ee1c036 605
dc146f7c 606 make_cleanup (xfree, cores);
3ee1c036 607
dc146f7c
VP
608 for (p = strtok (p, ","); p; p = strtok (NULL, ","))
609 ui_out_field_string (uiout, NULL, p);
3ee1c036 610
dc146f7c
VP
611 do_cleanups (back_to);
612}
3ee1c036 613
dc146f7c
VP
614static void
615free_vector_of_ints (void *xvector)
616{
617 VEC (int) **vector = xvector;
102040f0 618
dc146f7c
VP
619 VEC_free (int, *vector);
620}
621
622static void
623do_nothing (splay_tree_key k)
624{
625}
07e059b5 626
dc146f7c
VP
627static void
628free_vector_of_osdata_items (splay_tree_value xvalue)
629{
630 VEC (osdata_item_s) *value = (VEC (osdata_item_s) *) xvalue;
102040f0 631
dc146f7c
VP
632 /* We don't free the items itself, it will be done separately. */
633 VEC_free (osdata_item_s, value);
634}
e0665bc8 635
dc146f7c
VP
636static int
637splay_tree_int_comparator (splay_tree_key xa, splay_tree_key xb)
638{
639 int a = xa;
640 int b = xb;
102040f0 641
dc146f7c
VP
642 return a - b;
643}
644
645static void
646free_splay_tree (void *xt)
647{
648 splay_tree t = xt;
649 splay_tree_delete (t);
650}
651
652static void
653list_available_thread_groups (VEC (int) *ids, int recurse)
654{
655 struct osdata *data;
656 struct osdata_item *item;
657 int ix_items;
102040f0 658
dc146f7c 659 /* This keeps a map from integer (pid) to VEC (struct osdata_item *)*
8eee9c5a
DE
660 The vector contains information about all threads for the given pid.
661 This is assigned an initial value to avoid "may be used uninitialized"
662 warning from gcc. */
663 splay_tree tree = NULL;
dc146f7c
VP
664
665 /* get_osdata will throw if it cannot return data. */
666 data = get_osdata ("processes");
667 make_cleanup_osdata_free (data);
668
669 if (recurse)
670 {
671 struct osdata *threads = get_osdata ("threads");
dc146f7c 672
102040f0 673 make_cleanup_osdata_free (threads);
dc146f7c
VP
674 tree = splay_tree_new (splay_tree_int_comparator,
675 do_nothing,
676 free_vector_of_osdata_items);
677 make_cleanup (free_splay_tree, tree);
e0665bc8 678
07e059b5 679 for (ix_items = 0;
dc146f7c 680 VEC_iterate (osdata_item_s, threads->items,
e0665bc8 681 ix_items, item);
07e059b5
VP
682 ix_items++)
683 {
07e059b5 684 const char *pid = get_osdata_column (item, "pid");
dc146f7c
VP
685 int pid_i = strtoul (pid, NULL, 0);
686 VEC (osdata_item_s) *vec = 0;
687
688 splay_tree_node n = splay_tree_lookup (tree, pid_i);
689 if (!n)
690 {
691 VEC_safe_push (osdata_item_s, vec, item);
692 splay_tree_insert (tree, pid_i, (splay_tree_value)vec);
693 }
694 else
695 {
696 vec = (VEC (osdata_item_s) *) n->value;
697 VEC_safe_push (osdata_item_s, vec, item);
698 n->value = (splay_tree_value) vec;
699 }
700 }
701 }
702
703 make_cleanup_ui_out_list_begin_end (uiout, "groups");
07e059b5 704
dc146f7c
VP
705 for (ix_items = 0;
706 VEC_iterate (osdata_item_s, data->items,
707 ix_items, item);
708 ix_items++)
709 {
710 struct cleanup *back_to;
e0665bc8 711
dc146f7c
VP
712 const char *pid = get_osdata_column (item, "pid");
713 const char *cmd = get_osdata_column (item, "command");
714 const char *user = get_osdata_column (item, "user");
715 const char *cores = get_osdata_column (item, "cores");
716
717 int pid_i = strtoul (pid, NULL, 0);
718
719 /* At present, the target will return all available processes
720 and if information about specific ones was required, we filter
721 undesired processes here. */
722 if (ids && bsearch (&pid_i, VEC_address (int, ids),
723 VEC_length (int, ids),
724 sizeof (int), compare_positive_ints) == NULL)
725 continue;
726
727
728 back_to = make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
729
730 ui_out_field_fmt (uiout, "id", "%s", pid);
731 ui_out_field_string (uiout, "type", "process");
732 if (cmd)
733 ui_out_field_string (uiout, "description", cmd);
734 if (user)
735 ui_out_field_string (uiout, "user", user);
736 if (cores)
737 output_cores (uiout, "cores", cores);
738
739 if (recurse)
740 {
741 splay_tree_node n = splay_tree_lookup (tree, pid_i);
742 if (n)
743 {
744 VEC (osdata_item_s) *children = (VEC (osdata_item_s) *) n->value;
745 struct osdata_item *child;
746 int ix_child;
747
748 make_cleanup_ui_out_list_begin_end (uiout, "threads");
749
750 for (ix_child = 0;
751 VEC_iterate (osdata_item_s, children, ix_child, child);
752 ++ix_child)
753 {
754 struct cleanup *back_to_2 =
755 make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
dc146f7c
VP
756 const char *tid = get_osdata_column (child, "tid");
757 const char *tcore = get_osdata_column (child, "core");
102040f0 758
dc146f7c
VP
759 ui_out_field_string (uiout, "id", tid);
760 if (tcore)
761 ui_out_field_string (uiout, "core", tcore);
762
763 do_cleanups (back_to_2);
764 }
765 }
07e059b5 766 }
dc146f7c
VP
767
768 do_cleanups (back_to);
07e059b5 769 }
dc146f7c
VP
770}
771
772void
773mi_cmd_list_thread_groups (char *command, char **argv, int argc)
774{
775 struct cleanup *back_to;
776 int available = 0;
777 int recurse = 0;
778 VEC (int) *ids = 0;
779
780 enum opt
781 {
782 AVAILABLE_OPT, RECURSE_OPT
783 };
784 static struct mi_opt opts[] =
785 {
786 {"-available", AVAILABLE_OPT, 0},
787 {"-recurse", RECURSE_OPT, 1},
788 { 0, 0, 0 }
789 };
790
791 int optind = 0;
792 char *optarg;
793
794 while (1)
795 {
796 int opt = mi_getopt ("-list-thread-groups", argc, argv, opts,
797 &optind, &optarg);
102040f0 798
dc146f7c
VP
799 if (opt < 0)
800 break;
801 switch ((enum opt) opt)
802 {
803 case AVAILABLE_OPT:
804 available = 1;
805 break;
806 case RECURSE_OPT:
807 if (strcmp (optarg, "0") == 0)
808 ;
809 else if (strcmp (optarg, "1") == 0)
810 recurse = 1;
811 else
812 error ("only '0' and '1' are valid values for the '--recurse' option");
813 break;
814 }
815 }
816
817 for (; optind < argc; ++optind)
818 {
819 char *end;
2f296114
VP
820 int inf;
821
822 if (*(argv[optind]) != 'i')
823 error ("invalid syntax of group id '%s'", argv[optind]);
824
825 inf = strtoul (argv[optind] + 1, &end, 0);
102040f0 826
dc146f7c 827 if (*end != '\0')
2f296114 828 error ("invalid syntax of group id '%s'", argv[optind]);
dc146f7c
VP
829 VEC_safe_push (int, ids, inf);
830 }
831 if (VEC_length (int, ids) > 1)
832 qsort (VEC_address (int, ids),
833 VEC_length (int, ids),
834 sizeof (int), compare_positive_ints);
835
836 back_to = make_cleanup (free_vector_of_ints, &ids);
837
838 if (available)
839 {
840 list_available_thread_groups (ids, recurse);
841 }
842 else if (VEC_length (int, ids) == 1)
3ee1c036 843 {
dc146f7c 844 /* Local thread groups, single id. */
2f296114
VP
845 int id = *VEC_address (int, ids);
846 struct inferior *inf = find_inferior_id (id);
102040f0 847
2f296114
VP
848 if (!inf)
849 error ("Non-existent thread group id '%d'", id);
850
851 print_thread_info (uiout, -1, inf->pid);
3ee1c036
VP
852 }
853 else
854 {
dc146f7c 855 struct print_one_inferior_data data;
102040f0 856
dc146f7c
VP
857 data.recurse = recurse;
858 data.inferiors = ids;
859
860 /* Local thread groups. Either no explicit ids -- and we
861 print everything, or several explicit ids. In both cases,
862 we print more than one group, and have to use 'groups'
863 as the top-level element. */
3ee1c036 864 make_cleanup_ui_out_list_begin_end (uiout, "groups");
dc146f7c
VP
865 update_thread_list ();
866 iterate_over_inferiors (print_one_inferior, &data);
3ee1c036 867 }
dc146f7c 868
3ee1c036 869 do_cleanups (back_to);
8e8901c5
VP
870}
871
ce8f13f8 872void
fb40c209
AC
873mi_cmd_data_list_register_names (char *command, char **argv, int argc)
874{
7ccb0be9 875 struct gdbarch *gdbarch;
fb40c209
AC
876 int regnum, numregs;
877 int i;
4060713b 878 struct cleanup *cleanup;
fb40c209
AC
879
880 /* Note that the test for a valid register must include checking the
c9f4d572
UW
881 gdbarch_register_name because gdbarch_num_regs may be allocated for
882 the union of the register sets within a family of related processors.
883 In this case, some entries of gdbarch_register_name will change depending
884 upon the particular processor being debugged. */
fb40c209 885
441b986a 886 gdbarch = get_current_arch ();
7ccb0be9 887 numregs = gdbarch_num_regs (gdbarch) + gdbarch_num_pseudo_regs (gdbarch);
fb40c209 888
4060713b 889 cleanup = make_cleanup_ui_out_list_begin_end (uiout, "register-names");
fb40c209 890
41296c92 891 if (argc == 0) /* No args, just do all the regs. */
fb40c209
AC
892 {
893 for (regnum = 0;
894 regnum < numregs;
895 regnum++)
896 {
7ccb0be9
UW
897 if (gdbarch_register_name (gdbarch, regnum) == NULL
898 || *(gdbarch_register_name (gdbarch, regnum)) == '\0')
173d6894
AC
899 ui_out_field_string (uiout, NULL, "");
900 else
c9f4d572 901 ui_out_field_string (uiout, NULL,
7ccb0be9 902 gdbarch_register_name (gdbarch, regnum));
fb40c209
AC
903 }
904 }
905
41296c92 906 /* Else, list of register #s, just do listed regs. */
fb40c209
AC
907 for (i = 0; i < argc; i++)
908 {
909 regnum = atoi (argv[i]);
173d6894 910 if (regnum < 0 || regnum >= numregs)
a13e061a
PA
911 error ("bad register number");
912
7ccb0be9
UW
913 if (gdbarch_register_name (gdbarch, regnum) == NULL
914 || *(gdbarch_register_name (gdbarch, regnum)) == '\0')
173d6894
AC
915 ui_out_field_string (uiout, NULL, "");
916 else
c9f4d572 917 ui_out_field_string (uiout, NULL,
7ccb0be9 918 gdbarch_register_name (gdbarch, regnum));
fb40c209 919 }
4060713b 920 do_cleanups (cleanup);
fb40c209
AC
921}
922
ce8f13f8 923void
fb40c209
AC
924mi_cmd_data_list_changed_registers (char *command, char **argv, int argc)
925{
6ed7ea50
UW
926 static struct regcache *this_regs = NULL;
927 struct regcache *prev_regs;
7ccb0be9 928 struct gdbarch *gdbarch;
fb40c209
AC
929 int regnum, numregs, changed;
930 int i;
4060713b 931 struct cleanup *cleanup;
fb40c209 932
6ed7ea50
UW
933 /* The last time we visited this function, the current frame's register
934 contents were saved in THIS_REGS. Move THIS_REGS over to PREV_REGS,
935 and refresh THIS_REGS with the now-current register contents. */
936
937 prev_regs = this_regs;
938 this_regs = frame_save_as_regcache (get_selected_frame (NULL));
939 cleanup = make_cleanup_regcache_xfree (prev_regs);
940
fb40c209 941 /* Note that the test for a valid register must include checking the
c9f4d572
UW
942 gdbarch_register_name because gdbarch_num_regs may be allocated for
943 the union of the register sets within a family of related processors.
944 In this case, some entries of gdbarch_register_name will change depending
945 upon the particular processor being debugged. */
fb40c209 946
7ccb0be9
UW
947 gdbarch = get_regcache_arch (this_regs);
948 numregs = gdbarch_num_regs (gdbarch) + gdbarch_num_pseudo_regs (gdbarch);
fb40c209 949
6ed7ea50 950 make_cleanup_ui_out_list_begin_end (uiout, "changed-registers");
fb40c209 951
41296c92 952 if (argc == 0) /* No args, just do all the regs. */
fb40c209
AC
953 {
954 for (regnum = 0;
955 regnum < numregs;
956 regnum++)
957 {
7ccb0be9
UW
958 if (gdbarch_register_name (gdbarch, regnum) == NULL
959 || *(gdbarch_register_name (gdbarch, regnum)) == '\0')
fb40c209 960 continue;
6ed7ea50 961 changed = register_changed_p (regnum, prev_regs, this_regs);
fb40c209 962 if (changed < 0)
a13e061a 963 error ("mi_cmd_data_list_changed_registers: Unable to read register contents.");
fb40c209
AC
964 else if (changed)
965 ui_out_field_int (uiout, NULL, regnum);
966 }
967 }
968
41296c92 969 /* Else, list of register #s, just do listed regs. */
fb40c209
AC
970 for (i = 0; i < argc; i++)
971 {
972 regnum = atoi (argv[i]);
973
974 if (regnum >= 0
975 && regnum < numregs
7ccb0be9
UW
976 && gdbarch_register_name (gdbarch, regnum) != NULL
977 && *gdbarch_register_name (gdbarch, regnum) != '\000')
fb40c209 978 {
6ed7ea50 979 changed = register_changed_p (regnum, prev_regs, this_regs);
fb40c209 980 if (changed < 0)
a13e061a 981 error ("mi_cmd_data_list_register_change: Unable to read register contents.");
fb40c209
AC
982 else if (changed)
983 ui_out_field_int (uiout, NULL, regnum);
984 }
985 else
a13e061a 986 error ("bad register number");
fb40c209 987 }
4060713b 988 do_cleanups (cleanup);
fb40c209
AC
989}
990
991static int
6ed7ea50
UW
992register_changed_p (int regnum, struct regcache *prev_regs,
993 struct regcache *this_regs)
fb40c209 994{
6ed7ea50
UW
995 struct gdbarch *gdbarch = get_regcache_arch (this_regs);
996 gdb_byte prev_buffer[MAX_REGISTER_SIZE];
997 gdb_byte this_buffer[MAX_REGISTER_SIZE];
fb40c209 998
6ed7ea50
UW
999 /* Registers not valid in this frame return count as unchanged. */
1000 if (!regcache_valid_p (this_regs, regnum))
fb40c209
AC
1001 return 0;
1002
6ed7ea50
UW
1003 /* First time through or after gdbarch change consider all registers as
1004 changed. Same for registers not valid in the previous frame. */
1005 if (!prev_regs || get_regcache_arch (prev_regs) != gdbarch
1006 || !regcache_valid_p (prev_regs, regnum))
1007 return 1;
fb40c209 1008
6ed7ea50
UW
1009 /* Get register contents and compare. */
1010 regcache_cooked_read (prev_regs, regnum, prev_buffer);
1011 regcache_cooked_read (this_regs, regnum, this_buffer);
fb40c209 1012
6ed7ea50
UW
1013 return memcmp (prev_buffer, this_buffer,
1014 register_size (gdbarch, regnum)) != 0;
fb40c209
AC
1015}
1016
41296c92 1017/* Return a list of register number and value pairs. The valid
fb40c209 1018 arguments expected are: a letter indicating the format in which to
41296c92 1019 display the registers contents. This can be one of: x (hexadecimal), d
fb40c209
AC
1020 (decimal), N (natural), t (binary), o (octal), r (raw). After the
1021 format argumetn there can be a sequence of numbers, indicating which
41296c92
NR
1022 registers to fetch the content of. If the format is the only argument,
1023 a list of all the registers with their values is returned. */
ce8f13f8 1024void
fb40c209
AC
1025mi_cmd_data_list_register_values (char *command, char **argv, int argc)
1026{
7ccb0be9
UW
1027 struct frame_info *frame;
1028 struct gdbarch *gdbarch;
a13e061a 1029 int regnum, numregs, format;
fb40c209 1030 int i;
4060713b 1031 struct cleanup *list_cleanup, *tuple_cleanup;
fb40c209
AC
1032
1033 /* Note that the test for a valid register must include checking the
c9f4d572
UW
1034 gdbarch_register_name because gdbarch_num_regs may be allocated for
1035 the union of the register sets within a family of related processors.
1036 In this case, some entries of gdbarch_register_name will change depending
1037 upon the particular processor being debugged. */
fb40c209 1038
fb40c209 1039 if (argc == 0)
a13e061a 1040 error ("mi_cmd_data_list_register_values: Usage: -data-list-register-values <format> [<regnum1>...<regnumN>]");
fb40c209
AC
1041
1042 format = (int) argv[0][0];
1043
7ccb0be9
UW
1044 frame = get_selected_frame (NULL);
1045 gdbarch = get_frame_arch (frame);
1046 numregs = gdbarch_num_regs (gdbarch) + gdbarch_num_pseudo_regs (gdbarch);
1047
4060713b 1048 list_cleanup = make_cleanup_ui_out_list_begin_end (uiout, "register-values");
fb40c209 1049
41296c92 1050 if (argc == 1) /* No args, beside the format: do all the regs. */
fb40c209
AC
1051 {
1052 for (regnum = 0;
1053 regnum < numregs;
1054 regnum++)
1055 {
7ccb0be9
UW
1056 if (gdbarch_register_name (gdbarch, regnum) == NULL
1057 || *(gdbarch_register_name (gdbarch, regnum)) == '\0')
fb40c209 1058 continue;
4060713b 1059 tuple_cleanup = make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
fb40c209 1060 ui_out_field_int (uiout, "number", regnum);
7ccb0be9 1061 get_register (frame, regnum, format);
4060713b 1062 do_cleanups (tuple_cleanup);
fb40c209
AC
1063 }
1064 }
1065
41296c92 1066 /* Else, list of register #s, just do listed regs. */
fb40c209
AC
1067 for (i = 1; i < argc; i++)
1068 {
1069 regnum = atoi (argv[i]);
1070
1071 if (regnum >= 0
1072 && regnum < numregs
7ccb0be9
UW
1073 && gdbarch_register_name (gdbarch, regnum) != NULL
1074 && *gdbarch_register_name (gdbarch, regnum) != '\000')
fb40c209 1075 {
4060713b 1076 tuple_cleanup = make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
fb40c209 1077 ui_out_field_int (uiout, "number", regnum);
7ccb0be9 1078 get_register (frame, regnum, format);
4060713b 1079 do_cleanups (tuple_cleanup);
fb40c209
AC
1080 }
1081 else
a13e061a 1082 error ("bad register number");
fb40c209 1083 }
4060713b 1084 do_cleanups (list_cleanup);
fb40c209
AC
1085}
1086
41296c92 1087/* Output one register's contents in the desired format. */
a13e061a 1088static void
7ccb0be9 1089get_register (struct frame_info *frame, int regnum, int format)
fb40c209 1090{
7ccb0be9 1091 struct gdbarch *gdbarch = get_frame_arch (frame);
10c42a71 1092 gdb_byte buffer[MAX_REGISTER_SIZE];
fb40c209 1093 int optim;
ac2adee5
AC
1094 int realnum;
1095 CORE_ADDR addr;
1096 enum lval_type lval;
fb40c209
AC
1097 static struct ui_stream *stb = NULL;
1098
1099 stb = ui_out_stream_new (uiout);
1100
1101 if (format == 'N')
1102 format = 0;
1103
7ccb0be9 1104 frame_register (frame, regnum, &optim, &lval, &addr, &realnum, buffer);
ac2adee5 1105
fb40c209 1106 if (optim)
a13e061a 1107 error ("Optimized out");
fb40c209 1108
fb40c209
AC
1109 if (format == 'r')
1110 {
1111 int j;
1112 char *ptr, buf[1024];
1113
1114 strcpy (buf, "0x");
1115 ptr = buf + 2;
7ccb0be9 1116 for (j = 0; j < register_size (gdbarch, regnum); j++)
fb40c209 1117 {
7ccb0be9
UW
1118 int idx = gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG ?
1119 j : register_size (gdbarch, regnum) - 1 - j;
102040f0 1120
9730f241 1121 sprintf (ptr, "%02x", (unsigned char) buffer[idx]);
fb40c209
AC
1122 ptr += 2;
1123 }
1124 ui_out_field_string (uiout, "value", buf);
1125 /*fputs_filtered (buf, gdb_stdout); */
1126 }
1127 else
1128 {
79a45b7d 1129 struct value_print_options opts;
102040f0 1130
59669435 1131 get_formatted_print_options (&opts, format);
79a45b7d 1132 opts.deref_ref = 1;
7ccb0be9 1133 val_print (register_type (gdbarch, regnum), buffer, 0, 0,
0e03807e 1134 stb->stream, 0, NULL, &opts, current_language);
fb40c209
AC
1135 ui_out_field_stream (uiout, "value", stb);
1136 ui_out_stream_delete (stb);
1137 }
fb40c209
AC
1138}
1139
24e8cecf 1140/* Write given values into registers. The registers and values are
41296c92 1141 given as pairs. The corresponding MI command is
24e8cecf 1142 -data-write-register-values <format> [<regnum1> <value1>...<regnumN> <valueN>]*/
ce8f13f8 1143void
24e8cecf
EZ
1144mi_cmd_data_write_register_values (char *command, char **argv, int argc)
1145{
7ccb0be9
UW
1146 struct regcache *regcache;
1147 struct gdbarch *gdbarch;
9f3a1602 1148 int numregs, i;
24e8cecf
EZ
1149 char format;
1150
1151 /* Note that the test for a valid register must include checking the
c9f4d572
UW
1152 gdbarch_register_name because gdbarch_num_regs may be allocated for
1153 the union of the register sets within a family of related processors.
1154 In this case, some entries of gdbarch_register_name will change depending
1155 upon the particular processor being debugged. */
24e8cecf 1156
7ccb0be9
UW
1157 regcache = get_current_regcache ();
1158 gdbarch = get_regcache_arch (regcache);
1159 numregs = gdbarch_num_regs (gdbarch) + gdbarch_num_pseudo_regs (gdbarch);
24e8cecf
EZ
1160
1161 if (argc == 0)
a13e061a 1162 error ("mi_cmd_data_write_register_values: Usage: -data-write-register-values <format> [<regnum1> <value1>...<regnumN> <valueN>]");
24e8cecf
EZ
1163
1164 format = (int) argv[0][0];
1165
1166 if (!target_has_registers)
a13e061a 1167 error ("mi_cmd_data_write_register_values: No registers.");
24e8cecf
EZ
1168
1169 if (!(argc - 1))
a13e061a 1170 error ("mi_cmd_data_write_register_values: No regs and values specified.");
24e8cecf
EZ
1171
1172 if ((argc - 1) % 2)
a13e061a 1173 error ("mi_cmd_data_write_register_values: Regs and vals are not in pairs.");
24e8cecf
EZ
1174
1175 for (i = 1; i < argc; i = i + 2)
1176 {
9f3a1602 1177 int regnum = atoi (argv[i]);
24e8cecf 1178
9f3a1602 1179 if (regnum >= 0 && regnum < numregs
7ccb0be9
UW
1180 && gdbarch_register_name (gdbarch, regnum)
1181 && *gdbarch_register_name (gdbarch, regnum))
24e8cecf 1182 {
9f3a1602 1183 LONGEST value;
d8bf3afa 1184
9f3a1602 1185 /* Get the value as a number. */
24e8cecf 1186 value = parse_and_eval_address (argv[i + 1]);
9f3a1602 1187
41296c92 1188 /* Write it down. */
7ccb0be9 1189 regcache_cooked_write_signed (regcache, regnum, value);
24e8cecf
EZ
1190 }
1191 else
a13e061a 1192 error ("bad register number");
24e8cecf 1193 }
24e8cecf
EZ
1194}
1195
41296c92 1196/* Evaluate the value of the argument. The argument is an
fb40c209 1197 expression. If the expression contains spaces it needs to be
41296c92 1198 included in double quotes. */
ce8f13f8 1199void
fb40c209
AC
1200mi_cmd_data_evaluate_expression (char *command, char **argv, int argc)
1201{
1202 struct expression *expr;
1203 struct cleanup *old_chain = NULL;
96052a95 1204 struct value *val;
fb40c209 1205 struct ui_stream *stb = NULL;
79a45b7d 1206 struct value_print_options opts;
fb40c209
AC
1207
1208 stb = ui_out_stream_new (uiout);
1209
1210 if (argc != 1)
1211 {
412bbd6c 1212 ui_out_stream_delete (stb);
a13e061a 1213 error ("mi_cmd_data_evaluate_expression: Usage: -data-evaluate-expression expression");
fb40c209
AC
1214 }
1215
1216 expr = parse_expression (argv[0]);
1217
47cf603e 1218 old_chain = make_cleanup (free_current_contents, &expr);
fb40c209
AC
1219
1220 val = evaluate_expression (expr);
1221
41296c92 1222 /* Print the result of the expression evaluation. */
79a45b7d
TT
1223 get_user_print_options (&opts);
1224 opts.deref_ref = 0;
0e03807e 1225 common_val_print (val, stb->stream, 0, &opts, current_language);
fb40c209
AC
1226
1227 ui_out_field_stream (uiout, "value", stb);
1228 ui_out_stream_delete (stb);
1229
1230 do_cleanups (old_chain);
fb40c209
AC
1231}
1232
fb40c209
AC
1233/* DATA-MEMORY-READ:
1234
1235 ADDR: start address of data to be dumped.
41296c92 1236 WORD-FORMAT: a char indicating format for the ``word''. See
fb40c209 1237 the ``x'' command.
41296c92 1238 WORD-SIZE: size of each ``word''; 1,2,4, or 8 bytes.
fb40c209
AC
1239 NR_ROW: Number of rows.
1240 NR_COL: The number of colums (words per row).
1241 ASCHAR: (OPTIONAL) Append an ascii character dump to each row. Use
1242 ASCHAR for unprintable characters.
1243
1244 Reads SIZE*NR_ROW*NR_COL bytes starting at ADDR from memory and
1245 displayes them. Returns:
1246
1247 {addr="...",rowN={wordN="..." ,... [,ascii="..."]}, ...}
1248
1249 Returns:
1250 The number of bytes read is SIZE*ROW*COL. */
1251
ce8f13f8 1252void
fb40c209
AC
1253mi_cmd_data_read_memory (char *command, char **argv, int argc)
1254{
e17c207e 1255 struct gdbarch *gdbarch = get_current_arch ();
fb40c209
AC
1256 struct cleanup *cleanups = make_cleanup (null_cleanup, NULL);
1257 CORE_ADDR addr;
1258 long total_bytes;
1259 long nr_cols;
1260 long nr_rows;
1261 char word_format;
1262 struct type *word_type;
1263 long word_size;
1264 char word_asize;
1265 char aschar;
508416a1 1266 gdb_byte *mbuf;
fb40c209
AC
1267 int nr_bytes;
1268 long offset = 0;
1269 int optind = 0;
1270 char *optarg;
1271 enum opt
1272 {
1273 OFFSET_OPT
1274 };
1275 static struct mi_opt opts[] =
1276 {
1277 {"o", OFFSET_OPT, 1},
d5d6fca5 1278 { 0, 0, 0 }
fb40c209
AC
1279 };
1280
1281 while (1)
1282 {
1283 int opt = mi_getopt ("mi_cmd_data_read_memory", argc, argv, opts,
1284 &optind, &optarg);
102040f0 1285
fb40c209
AC
1286 if (opt < 0)
1287 break;
1288 switch ((enum opt) opt)
1289 {
1290 case OFFSET_OPT:
1291 offset = atol (optarg);
1292 break;
1293 }
1294 }
1295 argv += optind;
1296 argc -= optind;
1297
1298 if (argc < 5 || argc > 6)
a13e061a 1299 error ("mi_cmd_data_read_memory: Usage: ADDR WORD-FORMAT WORD-SIZE NR-ROWS NR-COLS [ASCHAR].");
fb40c209
AC
1300
1301 /* Extract all the arguments. */
1302
41296c92 1303 /* Start address of the memory dump. */
fb40c209 1304 addr = parse_and_eval_address (argv[0]) + offset;
41296c92 1305 /* The format character to use when displaying a memory word. See
fb40c209
AC
1306 the ``x'' command. */
1307 word_format = argv[1][0];
41296c92 1308 /* The size of the memory word. */
fb40c209
AC
1309 word_size = atol (argv[2]);
1310 switch (word_size)
1311 {
1312 case 1:
df4df182 1313 word_type = builtin_type (gdbarch)->builtin_int8;
fb40c209
AC
1314 word_asize = 'b';
1315 break;
1316 case 2:
df4df182 1317 word_type = builtin_type (gdbarch)->builtin_int16;
fb40c209
AC
1318 word_asize = 'h';
1319 break;
1320 case 4:
df4df182 1321 word_type = builtin_type (gdbarch)->builtin_int32;
fb40c209
AC
1322 word_asize = 'w';
1323 break;
1324 case 8:
df4df182 1325 word_type = builtin_type (gdbarch)->builtin_int64;
fb40c209
AC
1326 word_asize = 'g';
1327 break;
1328 default:
df4df182 1329 word_type = builtin_type (gdbarch)->builtin_int8;
fb40c209
AC
1330 word_asize = 'b';
1331 }
41296c92 1332 /* The number of rows. */
fb40c209
AC
1333 nr_rows = atol (argv[3]);
1334 if (nr_rows <= 0)
a13e061a
PA
1335 error ("mi_cmd_data_read_memory: invalid number of rows.");
1336
41296c92 1337 /* Number of bytes per row. */
fb40c209
AC
1338 nr_cols = atol (argv[4]);
1339 if (nr_cols <= 0)
a13e061a
PA
1340 error ("mi_cmd_data_read_memory: invalid number of columns.");
1341
41296c92 1342 /* The un-printable character when printing ascii. */
fb40c209
AC
1343 if (argc == 6)
1344 aschar = *argv[5];
1345 else
1346 aschar = 0;
1347
41296c92 1348 /* Create a buffer and read it in. */
fb40c209 1349 total_bytes = word_size * nr_rows * nr_cols;
2e94c453 1350 mbuf = xcalloc (total_bytes, 1);
b8c9b27d 1351 make_cleanup (xfree, mbuf);
cf7a04e8 1352
a4261689
PA
1353 /* Dispatch memory reads to the topmost target, not the flattened
1354 current_target. */
8dedea02
VP
1355 nr_bytes = target_read (current_target.beneath,
1356 TARGET_OBJECT_MEMORY, NULL, mbuf,
1357 addr, total_bytes);
cf7a04e8 1358 if (nr_bytes <= 0)
a13e061a 1359 error ("Unable to read memory.");
fb40c209 1360
41296c92 1361 /* Output the header information. */
5af949e3 1362 ui_out_field_core_addr (uiout, "addr", gdbarch, addr);
fb40c209
AC
1363 ui_out_field_int (uiout, "nr-bytes", nr_bytes);
1364 ui_out_field_int (uiout, "total-bytes", total_bytes);
5af949e3
UW
1365 ui_out_field_core_addr (uiout, "next-row",
1366 gdbarch, addr + word_size * nr_cols);
1367 ui_out_field_core_addr (uiout, "prev-row",
1368 gdbarch, addr - word_size * nr_cols);
1369 ui_out_field_core_addr (uiout, "next-page", gdbarch, addr + total_bytes);
1370 ui_out_field_core_addr (uiout, "prev-page", gdbarch, addr - total_bytes);
fb40c209 1371
41296c92 1372 /* Build the result as a two dimentional table. */
fb40c209
AC
1373 {
1374 struct ui_stream *stream = ui_out_stream_new (uiout);
6ad4a2cf 1375 struct cleanup *cleanup_list_memory;
fb40c209
AC
1376 int row;
1377 int row_byte;
102040f0 1378
6ad4a2cf 1379 cleanup_list_memory = make_cleanup_ui_out_list_begin_end (uiout, "memory");
fb40c209
AC
1380 for (row = 0, row_byte = 0;
1381 row < nr_rows;
1382 row++, row_byte += nr_cols * word_size)
1383 {
1384 int col;
1385 int col_byte;
6ad4a2cf
JJ
1386 struct cleanup *cleanup_tuple;
1387 struct cleanup *cleanup_list_data;
79a45b7d
TT
1388 struct value_print_options opts;
1389
6ad4a2cf 1390 cleanup_tuple = make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
5af949e3 1391 ui_out_field_core_addr (uiout, "addr", gdbarch, addr + row_byte);
fb40c209 1392 /* ui_out_field_core_addr_symbolic (uiout, "saddr", addr + row_byte); */
6ad4a2cf 1393 cleanup_list_data = make_cleanup_ui_out_list_begin_end (uiout, "data");
79a45b7d 1394 get_formatted_print_options (&opts, word_format);
fb40c209
AC
1395 for (col = 0, col_byte = row_byte;
1396 col < nr_cols;
1397 col++, col_byte += word_size)
1398 {
1399 if (col_byte + word_size > nr_bytes)
1400 {
1401 ui_out_field_string (uiout, NULL, "N/A");
1402 }
1403 else
1404 {
1405 ui_file_rewind (stream->stream);
79a45b7d 1406 print_scalar_formatted (mbuf + col_byte, word_type, &opts,
fb40c209
AC
1407 word_asize, stream->stream);
1408 ui_out_field_stream (uiout, NULL, stream);
1409 }
1410 }
6ad4a2cf 1411 do_cleanups (cleanup_list_data);
fb40c209
AC
1412 if (aschar)
1413 {
1414 int byte;
102040f0 1415
fb40c209
AC
1416 ui_file_rewind (stream->stream);
1417 for (byte = row_byte; byte < row_byte + word_size * nr_cols; byte++)
1418 {
1419 if (byte >= nr_bytes)
1420 {
1421 fputc_unfiltered ('X', stream->stream);
1422 }
1423 else if (mbuf[byte] < 32 || mbuf[byte] > 126)
1424 {
1425 fputc_unfiltered (aschar, stream->stream);
1426 }
1427 else
1428 fputc_unfiltered (mbuf[byte], stream->stream);
1429 }
1430 ui_out_field_stream (uiout, "ascii", stream);
1431 }
6ad4a2cf 1432 do_cleanups (cleanup_tuple);
fb40c209
AC
1433 }
1434 ui_out_stream_delete (stream);
6ad4a2cf 1435 do_cleanups (cleanup_list_memory);
fb40c209
AC
1436 }
1437 do_cleanups (cleanups);
fb40c209
AC
1438}
1439
8dedea02
VP
1440void
1441mi_cmd_data_read_memory_bytes (char *command, char **argv, int argc)
1442{
1443 struct gdbarch *gdbarch = get_current_arch ();
1444 struct cleanup *cleanups;
1445 CORE_ADDR addr;
1446 LONGEST length;
1447 memory_read_result_s *read_result;
1448 int ix;
1449 VEC(memory_read_result_s) *result;
1450 long offset = 0;
1451 int optind = 0;
1452 char *optarg;
1453 enum opt
1454 {
1455 OFFSET_OPT
1456 };
1457 static struct mi_opt opts[] =
1458 {
1459 {"o", OFFSET_OPT, 1},
1460 { 0, 0, 0 }
1461 };
1462
1463 while (1)
1464 {
1465 int opt = mi_getopt ("mi_cmd_data_read_memory_bytes", argc, argv, opts,
1466 &optind, &optarg);
1467 if (opt < 0)
1468 break;
1469 switch ((enum opt) opt)
1470 {
1471 case OFFSET_OPT:
1472 offset = atol (optarg);
1473 break;
1474 }
1475 }
1476 argv += optind;
1477 argc -= optind;
1478
1479 if (argc != 2)
1480 error ("Usage: [ -o OFFSET ] ADDR LENGTH.");
1481
1482 addr = parse_and_eval_address (argv[0]) + offset;
1483 length = atol (argv[1]);
1484
1485 result = read_memory_robust (current_target.beneath, addr, length);
1486
1487 cleanups = make_cleanup (free_memory_read_result_vector, result);
1488
1489 if (VEC_length (memory_read_result_s, result) == 0)
1490 error ("Unable to read memory.");
1491
1492 make_cleanup_ui_out_list_begin_end (uiout, "memory");
1493 for (ix = 0;
1494 VEC_iterate (memory_read_result_s, result, ix, read_result);
1495 ++ix)
1496 {
1497 struct cleanup *t = make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
1498 char *data, *p;
1499 int i;
1500
1501 ui_out_field_core_addr (uiout, "begin", gdbarch, read_result->begin);
1502 ui_out_field_core_addr (uiout, "offset", gdbarch, read_result->begin
1503 - addr);
1504 ui_out_field_core_addr (uiout, "end", gdbarch, read_result->end);
1505
1506 data = xmalloc ((read_result->end - read_result->begin) * 2 + 1);
1507
1508 for (i = 0, p = data;
1509 i < (read_result->end - read_result->begin);
1510 ++i, p += 2)
1511 {
1512 sprintf (p, "%02x", read_result->data[i]);
1513 }
1514 ui_out_field_string (uiout, "contents", data);
1515 xfree (data);
1516 do_cleanups (t);
1517 }
1518 do_cleanups (cleanups);
1519}
1520
1521
fb40c209
AC
1522/* DATA-MEMORY-WRITE:
1523
1524 COLUMN_OFFSET: optional argument. Must be preceeded by '-o'. The
1525 offset from the beginning of the memory grid row where the cell to
1526 be written is.
1527 ADDR: start address of the row in the memory grid where the memory
41296c92 1528 cell is, if OFFSET_COLUMN is specified. Otherwise, the address of
fb40c209 1529 the location to write to.
41296c92 1530 FORMAT: a char indicating format for the ``word''. See
fb40c209
AC
1531 the ``x'' command.
1532 WORD_SIZE: size of each ``word''; 1,2,4, or 8 bytes
1533 VALUE: value to be written into the memory address.
1534
1535 Writes VALUE into ADDR + (COLUMN_OFFSET * WORD_SIZE).
1536
41296c92 1537 Prints nothing. */
ce8f13f8 1538void
fb40c209
AC
1539mi_cmd_data_write_memory (char *command, char **argv, int argc)
1540{
e17a4113
UW
1541 struct gdbarch *gdbarch = get_current_arch ();
1542 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
fb40c209
AC
1543 CORE_ADDR addr;
1544 char word_format;
1545 long word_size;
1546 /* FIXME: ezannoni 2000-02-17 LONGEST could possibly not be big
41296c92 1547 enough when using a compiler other than GCC. */
fb40c209 1548 LONGEST value;
d8bf3afa
KB
1549 void *buffer;
1550 struct cleanup *old_chain;
fb40c209
AC
1551 long offset = 0;
1552 int optind = 0;
1553 char *optarg;
1554 enum opt
1555 {
1556 OFFSET_OPT
1557 };
1558 static struct mi_opt opts[] =
1559 {
1560 {"o", OFFSET_OPT, 1},
d5d6fca5 1561 { 0, 0, 0 }
fb40c209
AC
1562 };
1563
1564 while (1)
1565 {
1566 int opt = mi_getopt ("mi_cmd_data_write_memory", argc, argv, opts,
1567 &optind, &optarg);
102040f0 1568
fb40c209
AC
1569 if (opt < 0)
1570 break;
1571 switch ((enum opt) opt)
1572 {
1573 case OFFSET_OPT:
1574 offset = atol (optarg);
1575 break;
1576 }
1577 }
1578 argv += optind;
1579 argc -= optind;
1580
1581 if (argc != 4)
a13e061a 1582 error ("mi_cmd_data_write_memory: Usage: [-o COLUMN_OFFSET] ADDR FORMAT WORD-SIZE VALUE.");
fb40c209 1583
41296c92
NR
1584 /* Extract all the arguments. */
1585 /* Start address of the memory dump. */
fb40c209 1586 addr = parse_and_eval_address (argv[0]);
41296c92
NR
1587 /* The format character to use when displaying a memory word. See
1588 the ``x'' command. */
fb40c209
AC
1589 word_format = argv[1][0];
1590 /* The size of the memory word. */
1591 word_size = atol (argv[2]);
1592
41296c92 1593 /* Calculate the real address of the write destination. */
fb40c209
AC
1594 addr += (offset * word_size);
1595
41296c92 1596 /* Get the value as a number. */
fb40c209 1597 value = parse_and_eval_address (argv[3]);
41296c92 1598 /* Get the value into an array. */
d8bf3afa
KB
1599 buffer = xmalloc (word_size);
1600 old_chain = make_cleanup (xfree, buffer);
e17a4113 1601 store_signed_integer (buffer, word_size, byte_order, value);
41296c92 1602 /* Write it down to memory. */
fb40c209 1603 write_memory (addr, buffer, word_size);
d8bf3afa
KB
1604 /* Free the buffer. */
1605 do_cleanups (old_chain);
fb40c209
AC
1606}
1607
8dedea02
VP
1608/* DATA-MEMORY-WRITE-RAW:
1609
1610 ADDR: start address
1611 DATA: string of bytes to write at that address. */
1612void
1613mi_cmd_data_write_memory_bytes (char *command, char **argv, int argc)
1614{
1615 CORE_ADDR addr;
1616 char *cdata;
1617 gdb_byte *data;
1618 int len, r, i;
1619 struct cleanup *back_to;
1620
1621 if (argc != 2)
1622 error ("Usage: ADDR DATA.");
1623
1624 addr = parse_and_eval_address (argv[0]);
1625 cdata = argv[1];
1626 len = strlen (cdata)/2;
1627
1628 data = xmalloc (len);
1629 back_to = make_cleanup (xfree, data);
1630
1631 for (i = 0; i < len; ++i)
1632 {
1633 int x;
1634 sscanf (cdata + i * 2, "%02x", &x);
1635 data[i] = (gdb_byte)x;
1636 }
1637
1638 r = target_write_memory (addr, data, len);
1639 if (r != 0)
1640 error (_("Could not write memory"));
1641
1642 do_cleanups (back_to);
1643}
1644
1645
ce8f13f8 1646void
d8c83789
NR
1647mi_cmd_enable_timings (char *command, char **argv, int argc)
1648{
1649 if (argc == 0)
1650 do_timings = 1;
1651 else if (argc == 1)
1652 {
1653 if (strcmp (argv[0], "yes") == 0)
1654 do_timings = 1;
1655 else if (strcmp (argv[0], "no") == 0)
1656 do_timings = 0;
1657 else
1658 goto usage_error;
1659 }
1660 else
1661 goto usage_error;
1662
ce8f13f8 1663 return;
d8c83789
NR
1664
1665 usage_error:
1666 error ("mi_cmd_enable_timings: Usage: %s {yes|no}", command);
d8c83789
NR
1667}
1668
ce8f13f8 1669void
084344da
VP
1670mi_cmd_list_features (char *command, char **argv, int argc)
1671{
1672 if (argc == 0)
1673 {
1674 struct cleanup *cleanup = NULL;
084344da 1675
102040f0 1676 cleanup = make_cleanup_ui_out_list_begin_end (uiout, "features");
084344da 1677 ui_out_field_string (uiout, NULL, "frozen-varobjs");
8b4ed427 1678 ui_out_field_string (uiout, NULL, "pending-breakpoints");
8e8901c5 1679 ui_out_field_string (uiout, NULL, "thread-info");
8dedea02 1680 ui_out_field_string (uiout, NULL, "data-read-memory-bytes");
084344da 1681
b6313243
TT
1682#if HAVE_PYTHON
1683 ui_out_field_string (uiout, NULL, "python");
1684#endif
1685
084344da 1686 do_cleanups (cleanup);
ce8f13f8 1687 return;
084344da
VP
1688 }
1689
1690 error ("-list-features should be passed no arguments");
084344da 1691}
c6ebd6cf
VP
1692
1693void
1694mi_cmd_list_target_features (char *command, char **argv, int argc)
1695{
1696 if (argc == 0)
1697 {
1698 struct cleanup *cleanup = NULL;
c6ebd6cf 1699
102040f0 1700 cleanup = make_cleanup_ui_out_list_begin_end (uiout, "features");
c6ebd6cf
VP
1701 if (target_can_async_p ())
1702 ui_out_field_string (uiout, NULL, "async");
f75d858b
MK
1703 if (target_can_execute_reverse)
1704 ui_out_field_string (uiout, NULL, "reverse");
c6ebd6cf
VP
1705
1706 do_cleanups (cleanup);
1707 return;
1708 }
1709
1710 error ("-list-target-features should be passed no arguments");
1711}
1712
a79b8f6e
VP
1713void
1714mi_cmd_add_inferior (char *command, char **argv, int argc)
1715{
1716 struct inferior *inf;
1717
1718 if (argc != 0)
1719 error (_("-add-inferior should be passed no arguments"));
1720
1721 inf = add_inferior_with_spaces ();
1722
1723 ui_out_field_fmt (uiout, "inferior", "i%d", inf->num);
1724}
1725
1726void
1727mi_cmd_remove_inferior (char *command, char **argv, int argc)
1728{
1729 int id;
1730 struct inferior *inf;
1731
1732 if (argc != 1)
1733 error ("-remove-inferior should be passed a single argument");
1734
e2b4a699 1735 if (sscanf (argv[0], "i%d", &id) != 1)
a79b8f6e
VP
1736 error ("the thread group id is syntactically invalid");
1737
1738 inf = find_inferior_id (id);
1739 if (!inf)
1740 error ("the specified thread group does not exist");
1741
1742 delete_inferior_1 (inf, 1 /* silent */);
1743}
1744
1745\f
1746
8d34ea23
KS
1747/* Execute a command within a safe environment.
1748 Return <0 for error; >=0 for ok.
1749
1750 args->action will tell mi_execute_command what action
42972f50 1751 to perfrom after the given command has executed (display/suppress
8d34ea23 1752 prompt, display error). */
fb40c209 1753
f30f06b8 1754static void
8d34ea23 1755captured_mi_execute_command (struct ui_out *uiout, void *data)
fb40c209 1756{
1f31650a 1757 struct cleanup *cleanup;
e111d6c9 1758 struct mi_parse *context = (struct mi_parse *) data;
fb40c209 1759
4333ada3
VP
1760 if (do_timings)
1761 current_command_ts = context->cmd_start;
d8c83789 1762
1f31650a
VP
1763 current_token = xstrdup (context->token);
1764 cleanup = make_cleanup (free_current_contents, &current_token);
1765
a2840c35 1766 running_result_record_printed = 0;
f3b1572e 1767 mi_proceeded = 0;
fb40c209
AC
1768 switch (context->op)
1769 {
fb40c209 1770 case MI_COMMAND:
41296c92 1771 /* A MI command was read from the input stream. */
fb40c209
AC
1772 if (mi_debug_p)
1773 /* FIXME: gdb_???? */
1774 fprintf_unfiltered (raw_stdout, " token=`%s' command=`%s' args=`%s'\n",
1775 context->token, context->command, context->args);
d8c83789 1776
d8c83789 1777
ce8f13f8 1778 mi_cmd_execute (context);
8d34ea23 1779
a2840c35 1780 /* Print the result if there were no errors.
4389a95a 1781
a2840c35
VP
1782 Remember that on the way out of executing a command, you have
1783 to directly use the mi_interp's uiout, since the command could
1784 have reset the interpreter, in which case the current uiout
1785 will most likely crash in the mi_out_* routines. */
ce8f13f8 1786 if (!running_result_record_printed)
a2840c35
VP
1787 {
1788 fputs_unfiltered (context->token, raw_stdout);
ce8f13f8
VP
1789 /* There's no particularly good reason why target-connect results
1790 in not ^done. Should kill ^connected for MI3. */
1791 fputs_unfiltered (strcmp (context->command, "target-select") == 0
1792 ? "^connected" : "^done", raw_stdout);
a2840c35
VP
1793 mi_out_put (uiout, raw_stdout);
1794 mi_out_rewind (uiout);
4333ada3 1795 mi_print_timing_maybe ();
a2840c35
VP
1796 fputs_unfiltered ("\n", raw_stdout);
1797 }
1798 else
f7f9a841
VP
1799 /* The command does not want anything to be printed. In that
1800 case, the command probably should not have written anything
1801 to uiout, but in case it has written something, discard it. */
a2840c35 1802 mi_out_rewind (uiout);
fb40c209
AC
1803 break;
1804
1805 case CLI_COMMAND:
78f5381d
AC
1806 {
1807 char *argv[2];
102040f0 1808
78f5381d
AC
1809 /* A CLI command was read from the input stream. */
1810 /* This "feature" will be removed as soon as we have a
1811 complete set of mi commands. */
1812 /* Echo the command on the console. */
1813 fprintf_unfiltered (gdb_stdlog, "%s\n", context->command);
1814 /* Call the "console" interpreter. */
1815 argv[0] = "console";
1816 argv[1] = context->command;
ce8f13f8 1817 mi_cmd_interpreter_exec ("-interpreter-exec", argv, 2);
78f5381d 1818
eec01795 1819 /* If we changed interpreters, DON'T print out anything. */
78f5381d
AC
1820 if (current_interp_named_p (INTERP_MI)
1821 || current_interp_named_p (INTERP_MI1)
1822 || current_interp_named_p (INTERP_MI2)
1823 || current_interp_named_p (INTERP_MI3))
1824 {
ce8f13f8 1825 if (!running_result_record_printed)
eec01795
DJ
1826 {
1827 fputs_unfiltered (context->token, raw_stdout);
1828 fputs_unfiltered ("^done", raw_stdout);
1829 mi_out_put (uiout, raw_stdout);
1830 mi_out_rewind (uiout);
4333ada3
VP
1831 mi_print_timing_maybe ();
1832 fputs_unfiltered ("\n", raw_stdout);
eec01795 1833 }
eec01795
DJ
1834 else
1835 mi_out_rewind (uiout);
78f5381d
AC
1836 }
1837 break;
1838 }
fb40c209
AC
1839
1840 }
8d34ea23 1841
1f31650a
VP
1842 do_cleanups (cleanup);
1843
f30f06b8 1844 return;
fb40c209
AC
1845}
1846
1847
1848void
1849mi_execute_command (char *cmd, int from_tty)
1850{
1851 struct mi_parse *command;
1852
41296c92
NR
1853 /* This is to handle EOF (^D). We just quit gdb. */
1854 /* FIXME: we should call some API function here. */
fb40c209
AC
1855 if (cmd == 0)
1856 quit_force (NULL, from_tty);
1857
11334b82
VP
1858 target_log_command (cmd);
1859
fb40c209
AC
1860 command = mi_parse (cmd);
1861
1862 if (command != NULL)
1863 {
71fff37b 1864 struct gdb_exception result;
66bb093b 1865 ptid_t previous_ptid = inferior_ptid;
d8c83789
NR
1866
1867 if (do_timings)
1868 {
1869 command->cmd_start = (struct mi_timestamp *)
1870 xmalloc (sizeof (struct mi_timestamp));
1871 timestamp (command->cmd_start);
1872 }
1873
e111d6c9 1874 result = catch_exception (uiout, captured_mi_execute_command, command,
f30f06b8 1875 RETURN_MASK_ALL);
ce43223b 1876 if (result.reason < 0)
fb40c209 1877 {
fb40c209 1878 /* The command execution failed and error() was called
589e074d 1879 somewhere. */
fb40c209
AC
1880 fputs_unfiltered (command->token, raw_stdout);
1881 fputs_unfiltered ("^error,msg=\"", raw_stdout);
63f06803
DJ
1882 if (result.message == NULL)
1883 fputs_unfiltered ("unknown error", raw_stdout);
1884 else
a13e061a 1885 fputstr_unfiltered (result.message, '"', raw_stdout);
fb40c209 1886 fputs_unfiltered ("\"\n", raw_stdout);
589e074d 1887 mi_out_rewind (uiout);
fb40c209 1888 }
a13e061a 1889
5d4e2b76
VP
1890 bpstat_do_actions ();
1891
66bb093b
VP
1892 if (/* The notifications are only output when the top-level
1893 interpreter (specified on the command line) is MI. */
1894 ui_out_is_mi_like_p (interp_ui_out (top_level_interpreter ()))
1895 /* Don't try report anything if there are no threads --
1896 the program is dead. */
1897 && thread_count () != 0
1898 /* -thread-select explicitly changes thread. If frontend uses that
1899 internally, we don't want to emit =thread-selected, since
1900 =thread-selected is supposed to indicate user's intentions. */
1901 && strcmp (command->command, "thread-select") != 0)
1902 {
1903 struct mi_interp *mi = top_level_interpreter_data ();
d729566a 1904 int report_change = 0;
66bb093b
VP
1905
1906 if (command->thread == -1)
1907 {
d729566a
PA
1908 report_change = (!ptid_equal (previous_ptid, null_ptid)
1909 && !ptid_equal (inferior_ptid, previous_ptid)
1910 && !ptid_equal (inferior_ptid, null_ptid));
66bb093b 1911 }
d729566a 1912 else if (!ptid_equal (inferior_ptid, null_ptid))
66bb093b 1913 {
d729566a 1914 struct thread_info *ti = inferior_thread ();
102040f0 1915
66bb093b
VP
1916 report_change = (ti->num != command->thread);
1917 }
1918
1919 if (report_change)
1920 {
d729566a 1921 struct thread_info *ti = inferior_thread ();
102040f0 1922
66bb093b
VP
1923 target_terminal_ours ();
1924 fprintf_unfiltered (mi->event_channel,
1925 "thread-selected,id=\"%d\"",
1926 ti->num);
1927 gdb_flush (mi->event_channel);
1928 }
1929 }
1930
fb40c209
AC
1931 mi_parse_free (command);
1932 }
1933
fb40c209 1934 fputs_unfiltered ("(gdb) \n", raw_stdout);
a433f9e4 1935 gdb_flush (raw_stdout);
41296c92 1936 /* Print any buffered hook code. */
fb40c209
AC
1937 /* ..... */
1938}
1939
ce8f13f8 1940static void
fb40c209
AC
1941mi_cmd_execute (struct mi_parse *parse)
1942{
f107f563 1943 struct cleanup *cleanup;
e23110bb 1944
4e5d721f
DE
1945 prepare_execute_command ();
1946
1f31650a 1947 cleanup = make_cleanup (null_cleanup, NULL);
1b98914a 1948
a79b8f6e
VP
1949 if (parse->all && parse->thread_group != -1)
1950 error (_("Cannot specify --thread-group together with --all"));
1951
1952 if (parse->all && parse->thread != -1)
1953 error (_("Cannot specify --thread together with --all"));
1954
1955 if (parse->thread_group != -1 && parse->thread != -1)
1956 error (_("Cannot specify --thread together with --thread-group"));
1957
1e92afda
VP
1958 if (parse->frame != -1 && parse->thread == -1)
1959 error (_("Cannot specify --frame without --thread"));
dcf4fbde 1960
a79b8f6e
VP
1961 if (parse->thread_group != -1)
1962 {
1963 struct inferior *inf = find_inferior_id (parse->thread_group);
1964 struct thread_info *tp = 0;
1965
1966 if (!inf)
46ef47e5 1967 error (_("Invalid thread group for the --thread-group option"));
a79b8f6e
VP
1968
1969 set_current_inferior (inf);
1970 /* This behaviour means that if --thread-group option identifies
1971 an inferior with multiple threads, then a random one will be picked.
1972 This is not a problem -- frontend should always provide --thread if
1973 it wishes to operate on a specific thread. */
1974 if (inf->pid != 0)
1975 tp = any_thread_of_process (inf->pid);
1976 switch_to_thread (tp ? tp->ptid : null_ptid);
1977 set_current_program_space (inf->pspace);
1978 }
1979
1e92afda
VP
1980 if (parse->thread != -1)
1981 {
1982 struct thread_info *tp = find_thread_id (parse->thread);
102040f0 1983
1e92afda
VP
1984 if (!tp)
1985 error (_("Invalid thread id: %d"), parse->thread);
dcf4fbde
PA
1986
1987 if (is_exited (tp->ptid))
1988 error (_("Thread id: %d has terminated"), parse->thread);
1989
1990 switch_to_thread (tp->ptid);
1e92afda 1991 }
dcf4fbde 1992
1e92afda
VP
1993 if (parse->frame != -1)
1994 {
1995 struct frame_info *fid;
1996 int frame = parse->frame;
102040f0 1997
1e92afda
VP
1998 fid = find_relative_frame (get_current_frame (), &frame);
1999 if (frame == 0)
2000 /* find_relative_frame was successful */
2001 select_frame (fid);
2002 else
ea069267 2003 error (_("Invalid frame id: %d"), frame);
1e92afda 2004 }
dcf4fbde 2005
a79b8f6e
VP
2006 current_context = parse;
2007
9e22b03a 2008 if (parse->cmd->argv_func != NULL)
d729566a 2009 parse->cmd->argv_func (parse->command, parse->argv, parse->argc);
b2af646b 2010 else if (parse->cmd->cli.cmd != 0)
fb40c209
AC
2011 {
2012 /* FIXME: DELETE THIS. */
41296c92
NR
2013 /* The operation is still implemented by a cli command. */
2014 /* Must be a synchronous one. */
b2af646b
AC
2015 mi_execute_cli_command (parse->cmd->cli.cmd, parse->cmd->cli.args_p,
2016 parse->args);
fb40c209
AC
2017 }
2018 else
2019 {
41296c92 2020 /* FIXME: DELETE THIS. */
a13e061a
PA
2021 struct ui_file *stb;
2022
2023 stb = mem_fileopen ();
2024
2025 fputs_unfiltered ("Undefined mi command: ", stb);
2026 fputstr_unfiltered (parse->command, '"', stb);
2027 fputs_unfiltered (" (missing implementation)", stb);
2028
2029 make_cleanup_ui_file_delete (stb);
2030 error_stream (stb);
fb40c209 2031 }
1b98914a 2032 do_cleanups (cleanup);
fb40c209
AC
2033}
2034
fb40c209 2035/* FIXME: This is just a hack so we can get some extra commands going.
41296c92
NR
2036 We don't want to channel things through the CLI, but call libgdb directly.
2037 Use only for synchronous commands. */
fb40c209
AC
2038
2039void
b2af646b 2040mi_execute_cli_command (const char *cmd, int args_p, const char *args)
fb40c209 2041{
b2af646b 2042 if (cmd != 0)
fb40c209
AC
2043 {
2044 struct cleanup *old_cleanups;
2045 char *run;
102040f0 2046
b2af646b 2047 if (args_p)
c6902d46 2048 run = xstrprintf ("%s %s", cmd, args);
b2af646b
AC
2049 else
2050 run = xstrdup (cmd);
fb40c209
AC
2051 if (mi_debug_p)
2052 /* FIXME: gdb_???? */
2053 fprintf_unfiltered (gdb_stdout, "cli=%s run=%s\n",
b2af646b 2054 cmd, run);
b8c9b27d 2055 old_cleanups = make_cleanup (xfree, run);
fb40c209
AC
2056 execute_command ( /*ui */ run, 0 /*from_tty */ );
2057 do_cleanups (old_cleanups);
2058 return;
2059 }
2060}
2061
ce8f13f8 2062void
9e22b03a 2063mi_execute_async_cli_command (char *cli_command, char **argv, int argc)
fb40c209
AC
2064{
2065 struct cleanup *old_cleanups;
2066 char *run;
fb40c209
AC
2067
2068 if (target_can_async_p ())
9e22b03a 2069 run = xstrprintf ("%s %s&", cli_command, argc ? *argv : "");
fb40c209 2070 else
9e22b03a 2071 run = xstrprintf ("%s %s", cli_command, argc ? *argv : "");
f107f563 2072 old_cleanups = make_cleanup (xfree, run);
fb40c209 2073
fb40c209
AC
2074 execute_command ( /*ui */ run, 0 /*from_tty */ );
2075
f107f563
VP
2076 if (target_can_async_p ())
2077 {
2078 /* If we're not executing, an exception should have been throw. */
8ea051c5 2079 gdb_assert (is_running (inferior_ptid));
f107f563
VP
2080 do_cleanups (old_cleanups);
2081 }
2082 else
fb40c209
AC
2083 {
2084 /* Do this before doing any printing. It would appear that some
41296c92 2085 print code leaves garbage around in the buffer. */
fb40c209 2086 do_cleanups (old_cleanups);
ce8f13f8 2087 }
fb40c209
AC
2088}
2089
2090void
fb40c209
AC
2091mi_load_progress (const char *section_name,
2092 unsigned long sent_so_far,
2093 unsigned long total_section,
2094 unsigned long total_sent,
2095 unsigned long grand_total)
2096{
2097 struct timeval time_now, delta, update_threshold;
2098 static struct timeval last_update;
2099 static char *previous_sect_name = NULL;
2100 int new_section;
0be75e02 2101 struct ui_out *saved_uiout;
fb40c209 2102
0be75e02
AS
2103 /* This function is called through deprecated_show_load_progress
2104 which means uiout may not be correct. Fix it for the duration
2105 of this function. */
2106 saved_uiout = uiout;
2107
edff0c0a
DJ
2108 if (current_interp_named_p (INTERP_MI)
2109 || current_interp_named_p (INTERP_MI2))
0be75e02
AS
2110 uiout = mi_out_new (2);
2111 else if (current_interp_named_p (INTERP_MI1))
2112 uiout = mi_out_new (1);
edff0c0a
DJ
2113 else if (current_interp_named_p (INTERP_MI3))
2114 uiout = mi_out_new (3);
0be75e02 2115 else
fb40c209
AC
2116 return;
2117
2118 update_threshold.tv_sec = 0;
2119 update_threshold.tv_usec = 500000;
2120 gettimeofday (&time_now, NULL);
2121
2122 delta.tv_usec = time_now.tv_usec - last_update.tv_usec;
2123 delta.tv_sec = time_now.tv_sec - last_update.tv_sec;
2124
2125 if (delta.tv_usec < 0)
2126 {
2127 delta.tv_sec -= 1;
f2395593 2128 delta.tv_usec += 1000000L;
fb40c209
AC
2129 }
2130
2131 new_section = (previous_sect_name ?
2132 strcmp (previous_sect_name, section_name) : 1);
2133 if (new_section)
2134 {
6ad4a2cf 2135 struct cleanup *cleanup_tuple;
102040f0 2136
b8c9b27d 2137 xfree (previous_sect_name);
fb40c209
AC
2138 previous_sect_name = xstrdup (section_name);
2139
721c02de
VP
2140 if (current_token)
2141 fputs_unfiltered (current_token, raw_stdout);
fb40c209 2142 fputs_unfiltered ("+download", raw_stdout);
6ad4a2cf 2143 cleanup_tuple = make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
fb40c209
AC
2144 ui_out_field_string (uiout, "section", section_name);
2145 ui_out_field_int (uiout, "section-size", total_section);
2146 ui_out_field_int (uiout, "total-size", grand_total);
6ad4a2cf 2147 do_cleanups (cleanup_tuple);
fb40c209
AC
2148 mi_out_put (uiout, raw_stdout);
2149 fputs_unfiltered ("\n", raw_stdout);
2150 gdb_flush (raw_stdout);
2151 }
2152
2153 if (delta.tv_sec >= update_threshold.tv_sec &&
2154 delta.tv_usec >= update_threshold.tv_usec)
2155 {
6ad4a2cf 2156 struct cleanup *cleanup_tuple;
102040f0 2157
fb40c209
AC
2158 last_update.tv_sec = time_now.tv_sec;
2159 last_update.tv_usec = time_now.tv_usec;
721c02de
VP
2160 if (current_token)
2161 fputs_unfiltered (current_token, raw_stdout);
fb40c209 2162 fputs_unfiltered ("+download", raw_stdout);
6ad4a2cf 2163 cleanup_tuple = make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
fb40c209
AC
2164 ui_out_field_string (uiout, "section", section_name);
2165 ui_out_field_int (uiout, "section-sent", sent_so_far);
2166 ui_out_field_int (uiout, "section-size", total_section);
2167 ui_out_field_int (uiout, "total-sent", total_sent);
2168 ui_out_field_int (uiout, "total-size", grand_total);
6ad4a2cf 2169 do_cleanups (cleanup_tuple);
fb40c209
AC
2170 mi_out_put (uiout, raw_stdout);
2171 fputs_unfiltered ("\n", raw_stdout);
2172 gdb_flush (raw_stdout);
2173 }
0be75e02
AS
2174
2175 xfree (uiout);
2176 uiout = saved_uiout;
fb40c209
AC
2177}
2178
d8c83789
NR
2179static void
2180timestamp (struct mi_timestamp *tv)
2181 {
d8c83789
NR
2182 gettimeofday (&tv->wallclock, NULL);
2183#ifdef HAVE_GETRUSAGE
2184 getrusage (RUSAGE_SELF, &rusage);
2185 tv->utime.tv_sec = rusage.ru_utime.tv_sec;
2186 tv->utime.tv_usec = rusage.ru_utime.tv_usec;
2187 tv->stime.tv_sec = rusage.ru_stime.tv_sec;
2188 tv->stime.tv_usec = rusage.ru_stime.tv_usec;
2189#else
a1b7d198
MS
2190 {
2191 long usec = get_run_time ();
2192
2193 tv->utime.tv_sec = usec/1000000L;
2194 tv->utime.tv_usec = usec - 1000000L*tv->utime.tv_sec;
2195 tv->stime.tv_sec = 0;
2196 tv->stime.tv_usec = 0;
2197 }
d8c83789
NR
2198#endif
2199 }
2200
2201static void
2202print_diff_now (struct mi_timestamp *start)
2203 {
2204 struct mi_timestamp now;
102040f0 2205
d8c83789
NR
2206 timestamp (&now);
2207 print_diff (start, &now);
2208 }
2209
4333ada3
VP
2210void
2211mi_print_timing_maybe (void)
2212{
2213 /* If the command is -enable-timing then do_timings may be
2214 true whilst current_command_ts is not initialized. */
2215 if (do_timings && current_command_ts)
2216 print_diff_now (current_command_ts);
2217}
2218
d8c83789
NR
2219static long
2220timeval_diff (struct timeval start, struct timeval end)
2221 {
f2395593 2222 return ((end.tv_sec - start.tv_sec) * 1000000L)
d8c83789
NR
2223 + (end.tv_usec - start.tv_usec);
2224 }
2225
2226static void
2227print_diff (struct mi_timestamp *start, struct mi_timestamp *end)
2228 {
2229 fprintf_unfiltered
2230 (raw_stdout,
2231 ",time={wallclock=\"%0.5f\",user=\"%0.5f\",system=\"%0.5f\"}",
2232 timeval_diff (start->wallclock, end->wallclock) / 1000000.0,
2233 timeval_diff (start->utime, end->utime) / 1000000.0,
2234 timeval_diff (start->stime, end->stime) / 1000000.0);
2235 }
f224b49d 2236
40e1c229
VP
2237void
2238mi_cmd_trace_define_variable (char *command, char **argv, int argc)
2239{
2240 struct expression *expr;
2241 struct cleanup *back_to;
2242 LONGEST initval = 0;
2243 struct trace_state_variable *tsv;
2244 char *name = 0;
2245
2246 if (argc != 1 && argc != 2)
2247 error (_("Usage: -trace-define-variable VARIABLE [VALUE]"));
2248
2249 expr = parse_expression (argv[0]);
2250 back_to = make_cleanup (xfree, expr);
2251
2252 if (expr->nelts == 3 && expr->elts[0].opcode == OP_INTERNALVAR)
2253 {
2254 struct internalvar *intvar = expr->elts[1].internalvar;
102040f0 2255
40e1c229
VP
2256 if (intvar)
2257 name = internalvar_name (intvar);
2258 }
2259
2260 if (!name || *name == '\0')
2261 error (_("Invalid name of trace variable"));
2262
2263 tsv = find_trace_state_variable (name);
2264 if (!tsv)
2265 tsv = create_trace_state_variable (name);
2266
2267 if (argc == 2)
2268 initval = value_as_long (parse_and_eval (argv[1]));
2269
2270 tsv->initial_value = initval;
2271
2272 do_cleanups (back_to);
2273}
2274
2275void
2276mi_cmd_trace_list_variables (char *command, char **argv, int argc)
2277{
2278 if (argc != 0)
2279 error (_("-trace-list-variables: no arguments are allowed"));
2280
2281 tvariables_info_1 ();
2282}
2283
f197e0f1
VP
2284void
2285mi_cmd_trace_find (char *command, char **argv, int argc)
2286{
2287 char *mode;
2288
2289 if (argc == 0)
2290 error (_("trace selection mode is required"));
2291
2292 mode = argv[0];
2293
2294 if (strcmp (mode, "none") == 0)
2295 {
2296 tfind_1 (tfind_number, -1, 0, 0, 0);
2297 return;
2298 }
2299
2300 if (current_trace_status ()->running)
2301 error (_("May not look at trace frames while trace is running."));
2302
2303 if (strcmp (mode, "frame-number") == 0)
2304 {
2305 if (argc != 2)
2306 error (_("frame number is required"));
2307 tfind_1 (tfind_number, atoi (argv[1]), 0, 0, 0);
2308 }
2309 else if (strcmp (mode, "tracepoint-number") == 0)
2310 {
2311 if (argc != 2)
2312 error (_("tracepoint number is required"));
2313 tfind_1 (tfind_tp, atoi (argv[1]), 0, 0, 0);
2314 }
2315 else if (strcmp (mode, "pc") == 0)
2316 {
2317 if (argc != 2)
2318 error (_("PC is required"));
2319 tfind_1 (tfind_pc, 0, parse_and_eval_address (argv[1]), 0, 0);
2320 }
2321 else if (strcmp (mode, "pc-inside-range") == 0)
2322 {
2323 if (argc != 3)
2324 error (_("Start and end PC are required"));
2325 tfind_1 (tfind_range, 0, parse_and_eval_address (argv[1]),
2326 parse_and_eval_address (argv[2]), 0);
2327 }
2328 else if (strcmp (mode, "pc-outside-range") == 0)
2329 {
2330 if (argc != 3)
2331 error (_("Start and end PC are required"));
2332 tfind_1 (tfind_outside, 0, parse_and_eval_address (argv[1]),
2333 parse_and_eval_address (argv[2]), 0);
2334 }
2335 else if (strcmp (mode, "line") == 0)
2336 {
2337 struct symtabs_and_lines sals;
2338 struct symtab_and_line sal;
2339 static CORE_ADDR start_pc, end_pc;
2340 struct cleanup *back_to;
2341
2342 if (argc != 2)
2343 error (_("Line is required"));
2344
2345 sals = decode_line_spec (argv[1], 1);
2346 back_to = make_cleanup (xfree, sals.sals);
2347
2348 sal = sals.sals[0];
2349
2350 if (sal.symtab == 0)
2351 error (_("Could not find the specified line"));
2352
2353 if (sal.line > 0 && find_line_pc_range (sal, &start_pc, &end_pc))
2354 tfind_1 (tfind_range, 0, start_pc, end_pc - 1, 0);
2355 else
2356 error (_("Could not find the specified line"));
2357
2358 do_cleanups (back_to);
2359 }
2360 else
2361 error (_("Invalid mode '%s'"), mode);
2362
2363 if (has_stack_frames () || get_traceframe_number () >= 0)
2364 {
2365 print_stack_frame (get_selected_frame (NULL), 1, SRC_AND_LOC);
2366 }
2367}
2368
011aacb0
VP
2369void
2370mi_cmd_trace_save (char *command, char **argv, int argc)
2371{
2372 int target_saves = 0;
2373 char *filename;
2374
2375 if (argc != 1 && argc != 2)
2376 error (_("Usage: -trace-save [-r] filename"));
2377
2378 if (argc == 2)
2379 {
2380 filename = argv[1];
2381 if (strcmp (argv[0], "-r") == 0)
2382 target_saves = 1;
2383 else
2384 error (_("Invalid option: %s"), argv[0]);
2385 }
2386 else
2387 {
2388 filename = argv[0];
2389 }
2390
2391 trace_save (filename, target_saves);
2392}
2393
2394
f224b49d
VP
2395void
2396mi_cmd_trace_start (char *command, char **argv, int argc)
2397{
2398 start_tracing ();
2399}
2400
2401void
2402mi_cmd_trace_status (char *command, char **argv, int argc)
2403{
2404 trace_status_mi (0);
2405}
2406
2407void
2408mi_cmd_trace_stop (char *command, char **argv, int argc)
2409{
2410 stop_tracing ();
2411 trace_status_mi (1);
2412}
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