Replace some xmalloc-family functions with XNEW-family ones
[deliverable/binutils-gdb.git] / gdb / mi / mi-main.c
CommitLineData
fb40c209 1/* MI Command Set.
cd0bfa36 2
32d0add0 3 Copyright (C) 2000-2015 Free Software Foundation, Inc.
cd0bfa36 4
ab91fdd5 5 Contributed by Cygnus Solutions (a Red Hat company).
fb40c209
AC
6
7 This file is part of GDB.
8
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
fb40c209
AC
12 (at your option) any later version.
13
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.
18
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/>. */
fb40c209 21
fb40c209 22#include "defs.h"
e17c207e 23#include "arch-utils.h"
fb40c209
AC
24#include "target.h"
25#include "inferior.h"
45741a9c 26#include "infrun.h"
fb40c209
AC
27#include "top.h"
28#include "gdbthread.h"
29#include "mi-cmds.h"
30#include "mi-parse.h"
31#include "mi-getopt.h"
32#include "mi-console.h"
33#include "ui-out.h"
34#include "mi-out.h"
4389a95a 35#include "interps.h"
fb40c209
AC
36#include "event-loop.h"
37#include "event-top.h"
41296c92 38#include "gdbcore.h" /* For write_memory(). */
56178203 39#include "value.h"
4e052eda 40#include "regcache.h"
5b7f31a4 41#include "gdb.h"
36dc181b 42#include "frame.h"
b9362cc7 43#include "mi-main.h"
66bb093b 44#include "mi-common.h"
d8ca156b 45#include "language.h"
79a45b7d 46#include "valprint.h"
3ee1c036 47#include "inferior.h"
07e059b5 48#include "osdata.h"
dc146f7c 49#include "splay-tree.h"
f224b49d 50#include "tracepoint.h"
d0353e76 51#include "ctf.h"
75082e8c 52#include "ada-lang.h"
f8eba3c6 53#include "linespec.h"
6dddc817 54#include "extension.h"
329ea579 55#include "gdbcmd.h"
36dc181b 56
fb40c209 57#include <ctype.h>
438e1e42 58#include "gdb_sys_time.h"
fb40c209 59
d8c83789
NR
60#if defined HAVE_SYS_RESOURCE_H
61#include <sys/resource.h>
62#endif
63
64#ifdef HAVE_GETRUSAGE
65struct rusage rusage;
66#endif
67
fb40c209
AC
68enum
69 {
70 FROM_TTY = 0
71 };
72
fb40c209 73int mi_debug_p;
2b03b41d 74
fb40c209
AC
75struct ui_file *raw_stdout;
76
2b03b41d
SS
77/* This is used to pass the current command timestamp down to
78 continuation routines. */
d8c83789
NR
79static struct mi_timestamp *current_command_ts;
80
81static int do_timings = 0;
82
a2840c35 83char *current_token;
2b03b41d
SS
84/* Few commands would like to know if options like --thread-group were
85 explicitly specified. This variable keeps the current parsed
86 command including all option, and make it possible. */
a79b8f6e
VP
87static struct mi_parse *current_context;
88
a2840c35 89int running_result_record_printed = 1;
fb40c209 90
f3b1572e
PA
91/* Flag indicating that the target has proceeded since the last
92 command was issued. */
93int mi_proceeded;
94
fb40c209 95extern void _initialize_mi_main (void);
ce8f13f8 96static void mi_cmd_execute (struct mi_parse *parse);
fb40c209 97
b2af646b
AC
98static void mi_execute_cli_command (const char *cmd, int args_p,
99 const char *args);
c1244769 100static void mi_execute_async_cli_command (char *cli_command,
9a2b4c1b 101 char **argv, int argc);
6ed7ea50
UW
102static int register_changed_p (int regnum, struct regcache *,
103 struct regcache *);
c898adb7
YQ
104static void output_register (struct frame_info *, int regnum, int format,
105 int skip_unavailable);
4389a95a 106
329ea579
PA
107/* Controls whether the frontend wants MI in async mode. */
108static int mi_async = 0;
109
110/* The set command writes to this variable. If the inferior is
111 executing, mi_async is *not* updated. */
112static int mi_async_1 = 0;
113
114static void
115set_mi_async_command (char *args, int from_tty,
116 struct cmd_list_element *c)
117{
118 if (have_live_inferiors ())
119 {
120 mi_async_1 = mi_async;
121 error (_("Cannot change this setting while the inferior is running."));
122 }
123
124 mi_async = mi_async_1;
125}
126
127static void
128show_mi_async_command (struct ui_file *file, int from_tty,
129 struct cmd_list_element *c,
130 const char *value)
131{
132 fprintf_filtered (file,
133 _("Whether MI is in asynchronous mode is %s.\n"),
134 value);
135}
136
137/* A wrapper for target_can_async_p that takes the MI setting into
138 account. */
139
140int
141mi_async_p (void)
142{
143 return mi_async && target_can_async_p ();
144}
145
41296c92 146/* Command implementations. FIXME: Is this libgdb? No. This is the MI
fb40c209 147 layer that calls libgdb. Any operation used in the below should be
41296c92 148 formalized. */
fb40c209 149
d8c83789
NR
150static void timestamp (struct mi_timestamp *tv);
151
152static void print_diff_now (struct mi_timestamp *start);
153static void print_diff (struct mi_timestamp *start, struct mi_timestamp *end);
154
ce8f13f8 155void
fb40c209
AC
156mi_cmd_gdb_exit (char *command, char **argv, int argc)
157{
41296c92 158 /* We have to print everything right here because we never return. */
721c02de
VP
159 if (current_token)
160 fputs_unfiltered (current_token, raw_stdout);
fb40c209 161 fputs_unfiltered ("^exit\n", raw_stdout);
79a45e25 162 mi_out_put (current_uiout, raw_stdout);
a6b29f87 163 gdb_flush (raw_stdout);
41296c92 164 /* FIXME: The function called is not yet a formal libgdb function. */
fb40c209 165 quit_force (NULL, FROM_TTY);
fb40c209
AC
166}
167
ce8f13f8 168void
9e22b03a 169mi_cmd_exec_next (char *command, char **argv, int argc)
fb40c209 170{
41296c92 171 /* FIXME: Should call a libgdb function, not a cli wrapper. */
e5829bee
MS
172 if (argc > 0 && strcmp(argv[0], "--reverse") == 0)
173 mi_execute_async_cli_command ("reverse-next", argv + 1, argc - 1);
174 else
175 mi_execute_async_cli_command ("next", argv, argc);
fb40c209
AC
176}
177
ce8f13f8 178void
9e22b03a 179mi_cmd_exec_next_instruction (char *command, char **argv, int argc)
fb40c209 180{
41296c92 181 /* FIXME: Should call a libgdb function, not a cli wrapper. */
e5829bee
MS
182 if (argc > 0 && strcmp(argv[0], "--reverse") == 0)
183 mi_execute_async_cli_command ("reverse-nexti", argv + 1, argc - 1);
184 else
185 mi_execute_async_cli_command ("nexti", argv, argc);
fb40c209
AC
186}
187
ce8f13f8 188void
9e22b03a 189mi_cmd_exec_step (char *command, char **argv, int argc)
fb40c209 190{
41296c92 191 /* FIXME: Should call a libgdb function, not a cli wrapper. */
e5829bee
MS
192 if (argc > 0 && strcmp(argv[0], "--reverse") == 0)
193 mi_execute_async_cli_command ("reverse-step", argv + 1, argc - 1);
194 else
195 mi_execute_async_cli_command ("step", argv, argc);
fb40c209
AC
196}
197
ce8f13f8 198void
9e22b03a 199mi_cmd_exec_step_instruction (char *command, char **argv, int argc)
fb40c209 200{
41296c92 201 /* FIXME: Should call a libgdb function, not a cli wrapper. */
e5829bee
MS
202 if (argc > 0 && strcmp(argv[0], "--reverse") == 0)
203 mi_execute_async_cli_command ("reverse-stepi", argv + 1, argc - 1);
204 else
205 mi_execute_async_cli_command ("stepi", argv, argc);
fb40c209
AC
206}
207
ce8f13f8 208void
9e22b03a 209mi_cmd_exec_finish (char *command, char **argv, int argc)
fb40c209 210{
41296c92 211 /* FIXME: Should call a libgdb function, not a cli wrapper. */
e5829bee
MS
212 if (argc > 0 && strcmp(argv[0], "--reverse") == 0)
213 mi_execute_async_cli_command ("reverse-finish", argv + 1, argc - 1);
214 else
215 mi_execute_async_cli_command ("finish", argv, argc);
fb40c209
AC
216}
217
ce8f13f8 218void
9e22b03a 219mi_cmd_exec_return (char *command, char **argv, int argc)
fb40c209 220{
fb40c209 221 /* This command doesn't really execute the target, it just pops the
2b03b41d 222 specified number of frames. */
9e22b03a 223 if (argc)
fb40c209 224 /* Call return_command with from_tty argument equal to 0 so as to
41296c92 225 avoid being queried. */
9e22b03a 226 return_command (*argv, 0);
fb40c209
AC
227 else
228 /* Call return_command with from_tty argument equal to 0 so as to
41296c92 229 avoid being queried. */
36dc181b 230 return_command (NULL, 0);
fb40c209
AC
231
232 /* Because we have called return_command with from_tty = 0, we need
41296c92 233 to print the frame here. */
08d72866 234 print_stack_frame (get_selected_frame (NULL), 1, LOC_AND_ADDRESS, 1);
fb40c209
AC
235}
236
143260c9
VP
237void
238mi_cmd_exec_jump (char *args, char **argv, int argc)
239{
240 /* FIXME: Should call a libgdb function, not a cli wrapper. */
202b96c1 241 mi_execute_async_cli_command ("jump", argv, argc);
143260c9 242}
c1244769 243
a79b8f6e
VP
244static void
245proceed_thread (struct thread_info *thread, int pid)
8dd4f202 246{
8dd4f202 247 if (!is_stopped (thread->ptid))
a79b8f6e 248 return;
8dd4f202 249
dfd4cc63 250 if (pid != 0 && ptid_get_pid (thread->ptid) != pid)
a79b8f6e 251 return;
8dd4f202
VP
252
253 switch_to_thread (thread->ptid);
70509625 254 clear_proceed_status (0);
64ce06e4 255 proceed ((CORE_ADDR) -1, GDB_SIGNAL_DEFAULT);
a79b8f6e
VP
256}
257
a79b8f6e
VP
258static int
259proceed_thread_callback (struct thread_info *thread, void *arg)
260{
261 int pid = *(int *)arg;
102040f0 262
a79b8f6e 263 proceed_thread (thread, pid);
8dd4f202
VP
264 return 0;
265}
266
e5829bee
MS
267static void
268exec_continue (char **argv, int argc)
fb40c209 269{
329ea579
PA
270 prepare_execution_command (&current_target, mi_async_p ());
271
a79b8f6e 272 if (non_stop)
8dd4f202 273 {
2b03b41d
SS
274 /* In non-stop mode, 'resume' always resumes a single thread.
275 Therefore, to resume all threads of the current inferior, or
276 all threads in all inferiors, we need to iterate over
277 threads.
a79b8f6e
VP
278
279 See comment on infcmd.c:proceed_thread_callback for rationale. */
280 if (current_context->all || current_context->thread_group != -1)
281 {
282 int pid = 0;
283 struct cleanup *back_to = make_cleanup_restore_current_thread ();
8dd4f202 284
a79b8f6e
VP
285 if (!current_context->all)
286 {
9a2b4c1b
MS
287 struct inferior *inf
288 = find_inferior_id (current_context->thread_group);
289
a79b8f6e
VP
290 pid = inf->pid;
291 }
292 iterate_over_threads (proceed_thread_callback, &pid);
293 do_cleanups (back_to);
294 }
295 else
296 {
297 continue_1 (0);
298 }
8dd4f202 299 }
77ebaa5a 300 else
a79b8f6e
VP
301 {
302 struct cleanup *back_to = make_cleanup_restore_integer (&sched_multi);
102040f0 303
a79b8f6e
VP
304 if (current_context->all)
305 {
306 sched_multi = 1;
307 continue_1 (0);
308 }
309 else
310 {
2b03b41d
SS
311 /* In all-stop mode, -exec-continue traditionally resumed
312 either all threads, or one thread, depending on the
313 'scheduler-locking' variable. Let's continue to do the
314 same. */
a79b8f6e
VP
315 continue_1 (1);
316 }
317 do_cleanups (back_to);
318 }
e5829bee
MS
319}
320
e5829bee 321static void
a79b8f6e 322exec_direction_forward (void *notused)
e5829bee 323{
e5829bee
MS
324 execution_direction = EXEC_FORWARD;
325}
326
327static void
328exec_reverse_continue (char **argv, int argc)
329{
330 enum exec_direction_kind dir = execution_direction;
331 struct cleanup *old_chain;
332
e5829bee
MS
333 if (dir == EXEC_REVERSE)
334 error (_("Already in reverse mode."));
335
336 if (!target_can_execute_reverse)
337 error (_("Target %s does not support this command."), target_shortname);
338
a79b8f6e 339 old_chain = make_cleanup (exec_direction_forward, NULL);
e5829bee
MS
340 execution_direction = EXEC_REVERSE;
341 exec_continue (argv, argc);
342 do_cleanups (old_chain);
343}
344
345void
346mi_cmd_exec_continue (char *command, char **argv, int argc)
347{
a79b8f6e 348 if (argc > 0 && strcmp (argv[0], "--reverse") == 0)
e5829bee
MS
349 exec_reverse_continue (argv + 1, argc - 1);
350 else
351 exec_continue (argv, argc);
8dd4f202
VP
352}
353
354static int
355interrupt_thread_callback (struct thread_info *thread, void *arg)
356{
357 int pid = *(int *)arg;
358
359 if (!is_running (thread->ptid))
360 return 0;
361
dfd4cc63 362 if (ptid_get_pid (thread->ptid) != pid)
8dd4f202
VP
363 return 0;
364
365 target_stop (thread->ptid);
366 return 0;
fb40c209
AC
367}
368
2b03b41d
SS
369/* Interrupt the execution of the target. Note how we must play
370 around with the token variables, in order to display the current
371 token in the result of the interrupt command, and the previous
372 execution token when the target finally stops. See comments in
41296c92 373 mi_cmd_execute. */
2b03b41d 374
ce8f13f8 375void
9e22b03a 376mi_cmd_exec_interrupt (char *command, char **argv, int argc)
fb40c209 377{
a79b8f6e
VP
378 /* In all-stop mode, everything stops, so we don't need to try
379 anything specific. */
380 if (!non_stop)
77ebaa5a 381 {
77ebaa5a 382 interrupt_target_1 (0);
a79b8f6e 383 return;
77ebaa5a 384 }
a79b8f6e
VP
385
386 if (current_context->all)
77ebaa5a 387 {
a79b8f6e 388 /* This will interrupt all threads in all inferiors. */
77ebaa5a
VP
389 interrupt_target_1 (1);
390 }
a79b8f6e 391 else if (current_context->thread_group != -1)
8dd4f202 392 {
a79b8f6e 393 struct inferior *inf = find_inferior_id (current_context->thread_group);
102040f0 394
a79b8f6e
VP
395 iterate_over_threads (interrupt_thread_callback, &inf->pid);
396 }
397 else
398 {
399 /* Interrupt just the current thread -- either explicitly
400 specified via --thread or whatever was current before
401 MI command was sent. */
402 interrupt_target_1 (0);
403 }
404}
405
5713b9b5
JB
406/* Callback for iterate_over_inferiors which starts the execution
407 of the given inferior.
408
409 ARG is a pointer to an integer whose value, if non-zero, indicates
410 that the program should be stopped when reaching the main subprogram
411 (similar to what the CLI "start" command does). */
412
a79b8f6e
VP
413static int
414run_one_inferior (struct inferior *inf, void *arg)
415{
5713b9b5
JB
416 int start_p = *(int *) arg;
417 const char *run_cmd = start_p ? "start" : "run";
418
a79b8f6e
VP
419 if (inf->pid != 0)
420 {
421 if (inf->pid != ptid_get_pid (inferior_ptid))
422 {
423 struct thread_info *tp;
8dd4f202 424
a79b8f6e
VP
425 tp = any_thread_of_process (inf->pid);
426 if (!tp)
427 error (_("Inferior has no threads."));
428
429 switch_to_thread (tp->ptid);
430 }
8dd4f202 431 }
77ebaa5a 432 else
a79b8f6e
VP
433 {
434 set_current_inferior (inf);
435 switch_to_thread (null_ptid);
436 set_current_program_space (inf->pspace);
437 }
329ea579
PA
438 mi_execute_cli_command (run_cmd, mi_async_p (),
439 mi_async_p () ? "&" : NULL);
a79b8f6e 440 return 0;
fb40c209
AC
441}
442
115d30f9
VP
443void
444mi_cmd_exec_run (char *command, char **argv, int argc)
445{
5713b9b5
JB
446 int i;
447 int start_p = 0;
448
449 /* Parse the command options. */
450 enum opt
451 {
452 START_OPT,
453 };
454 static const struct mi_opt opts[] =
455 {
456 {"-start", START_OPT, 0},
457 {NULL, 0, 0},
458 };
459
460 int oind = 0;
461 char *oarg;
462
463 while (1)
464 {
465 int opt = mi_getopt ("-exec-run", argc, argv, opts, &oind, &oarg);
466
467 if (opt < 0)
468 break;
469 switch ((enum opt) opt)
470 {
471 case START_OPT:
472 start_p = 1;
473 break;
474 }
475 }
476
477 /* This command does not accept any argument. Make sure the user
478 did not provide any. */
479 if (oind != argc)
480 error (_("Invalid argument: %s"), argv[oind]);
481
a79b8f6e
VP
482 if (current_context->all)
483 {
484 struct cleanup *back_to = save_current_space_and_thread ();
102040f0 485
5713b9b5 486 iterate_over_inferiors (run_one_inferior, &start_p);
a79b8f6e
VP
487 do_cleanups (back_to);
488 }
489 else
490 {
5713b9b5
JB
491 const char *run_cmd = start_p ? "start" : "run";
492
329ea579
PA
493 mi_execute_cli_command (run_cmd, mi_async_p (),
494 mi_async_p () ? "&" : NULL);
a79b8f6e 495 }
115d30f9
VP
496}
497
a79b8f6e 498
6418d433
VP
499static int
500find_thread_of_process (struct thread_info *ti, void *p)
501{
502 int pid = *(int *)p;
102040f0 503
dfd4cc63 504 if (ptid_get_pid (ti->ptid) == pid && !is_exited (ti->ptid))
6418d433
VP
505 return 1;
506
507 return 0;
508}
509
510void
511mi_cmd_target_detach (char *command, char **argv, int argc)
512{
513 if (argc != 0 && argc != 1)
9b20d036 514 error (_("Usage: -target-detach [pid | thread-group]"));
6418d433
VP
515
516 if (argc == 1)
517 {
518 struct thread_info *tp;
519 char *end = argv[0];
f1b9e6e7 520 int pid;
102040f0 521
f1b9e6e7
MK
522 /* First see if we are dealing with a thread-group id. */
523 if (*argv[0] == 'i')
524 {
525 struct inferior *inf;
526 int id = strtoul (argv[0] + 1, &end, 0);
527
528 if (*end != '\0')
529 error (_("Invalid syntax of thread-group id '%s'"), argv[0]);
530
531 inf = find_inferior_id (id);
532 if (!inf)
533 error (_("Non-existent thread-group id '%d'"), id);
534
535 pid = inf->pid;
536 }
537 else
538 {
539 /* We must be dealing with a pid. */
540 pid = strtol (argv[0], &end, 10);
541
542 if (*end != '\0')
543 error (_("Invalid identifier '%s'"), argv[0]);
544 }
6418d433
VP
545
546 /* Pick any thread in the desired process. Current
f1b9e6e7 547 target_detach detaches from the parent of inferior_ptid. */
6418d433
VP
548 tp = iterate_over_threads (find_thread_of_process, &pid);
549 if (!tp)
550 error (_("Thread group is empty"));
551
552 switch_to_thread (tp->ptid);
553 }
554
555 detach_command (NULL, 0);
556}
557
ce8f13f8 558void
fb40c209
AC
559mi_cmd_thread_select (char *command, char **argv, int argc)
560{
561 enum gdb_rc rc;
a13e061a 562 char *mi_error_message;
fb40c209
AC
563
564 if (argc != 1)
1b05df00 565 error (_("-thread-select: USAGE: threadnum."));
a13e061a 566
79a45e25 567 rc = gdb_thread_select (current_uiout, argv[0], &mi_error_message);
a13e061a
PA
568
569 if (rc == GDB_RC_FAIL)
fb40c209 570 {
a13e061a
PA
571 make_cleanup (xfree, mi_error_message);
572 error ("%s", mi_error_message);
fb40c209 573 }
fb40c209
AC
574}
575
ce8f13f8 576void
fb40c209
AC
577mi_cmd_thread_list_ids (char *command, char **argv, int argc)
578{
b0b13bb4 579 enum gdb_rc rc;
a13e061a 580 char *mi_error_message;
fb40c209
AC
581
582 if (argc != 0)
7ea6d463 583 error (_("-thread-list-ids: No arguments required."));
a13e061a 584
79a45e25 585 rc = gdb_list_thread_ids (current_uiout, &mi_error_message);
a13e061a
PA
586
587 if (rc == GDB_RC_FAIL)
fb40c209 588 {
a13e061a
PA
589 make_cleanup (xfree, mi_error_message);
590 error ("%s", mi_error_message);
fb40c209 591 }
fb40c209
AC
592}
593
ce8f13f8 594void
8e8901c5
VP
595mi_cmd_thread_info (char *command, char **argv, int argc)
596{
8e8901c5 597 if (argc != 0 && argc != 1)
7ea6d463 598 error (_("Invalid MI command"));
8e8901c5 599
79a45e25 600 print_thread_info (current_uiout, argv[0], -1);
3ee1c036
VP
601}
602
dc146f7c
VP
603struct collect_cores_data
604{
605 int pid;
606
607 VEC (int) *cores;
608};
609
3ee1c036 610static int
dc146f7c 611collect_cores (struct thread_info *ti, void *xdata)
3ee1c036 612{
dc146f7c
VP
613 struct collect_cores_data *data = xdata;
614
615 if (ptid_get_pid (ti->ptid) == data->pid)
6c95b8df 616 {
dc146f7c 617 int core = target_core_of_thread (ti->ptid);
102040f0 618
dc146f7c
VP
619 if (core != -1)
620 VEC_safe_push (int, data->cores, core);
621 }
622
623 return 0;
624}
625
626static int *
627unique (int *b, int *e)
628{
629 int *d = b;
102040f0 630
dc146f7c
VP
631 while (++b != e)
632 if (*d != *b)
633 *++d = *b;
634 return ++d;
635}
636
637struct print_one_inferior_data
638{
639 int recurse;
640 VEC (int) *inferiors;
641};
642
643static int
644print_one_inferior (struct inferior *inferior, void *xdata)
645{
646 struct print_one_inferior_data *top_data = xdata;
79a45e25 647 struct ui_out *uiout = current_uiout;
dc146f7c
VP
648
649 if (VEC_empty (int, top_data->inferiors)
650 || bsearch (&(inferior->pid), VEC_address (int, top_data->inferiors),
651 VEC_length (int, top_data->inferiors), sizeof (int),
652 compare_positive_ints))
653 {
654 struct collect_cores_data data;
6c95b8df
PA
655 struct cleanup *back_to
656 = make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
657
a79b8f6e 658 ui_out_field_fmt (uiout, "id", "i%d", inferior->num);
6c95b8df 659 ui_out_field_string (uiout, "type", "process");
2ddf4301
SM
660 if (inferior->has_exit_code)
661 ui_out_field_string (uiout, "exit-code",
662 int_string (inferior->exit_code, 8, 0, 0, 1));
a79b8f6e
VP
663 if (inferior->pid != 0)
664 ui_out_field_int (uiout, "pid", inferior->pid);
665
1f0c4988 666 if (inferior->pspace->pspace_exec_filename != NULL)
a79b8f6e
VP
667 {
668 ui_out_field_string (uiout, "executable",
1f0c4988 669 inferior->pspace->pspace_exec_filename);
a79b8f6e 670 }
6c95b8df 671
dc146f7c 672 data.cores = 0;
a79b8f6e
VP
673 if (inferior->pid != 0)
674 {
675 data.pid = inferior->pid;
676 iterate_over_threads (collect_cores, &data);
677 }
dc146f7c
VP
678
679 if (!VEC_empty (int, data.cores))
680 {
dc146f7c
VP
681 int *b, *e;
682 struct cleanup *back_to_2 =
683 make_cleanup_ui_out_list_begin_end (uiout, "cores");
684
685 qsort (VEC_address (int, data.cores),
686 VEC_length (int, data.cores), sizeof (int),
687 compare_positive_ints);
688
689 b = VEC_address (int, data.cores);
690 e = b + VEC_length (int, data.cores);
691 e = unique (b, e);
692
693 for (; b != e; ++b)
694 ui_out_field_int (uiout, NULL, *b);
695
696 do_cleanups (back_to_2);
697 }
698
699 if (top_data->recurse)
aea5b279 700 print_thread_info (uiout, NULL, inferior->pid);
dc146f7c 701
6c95b8df
PA
702 do_cleanups (back_to);
703 }
3ee1c036 704
3ee1c036
VP
705 return 0;
706}
707
2b03b41d
SS
708/* Output a field named 'cores' with a list as the value. The
709 elements of the list are obtained by splitting 'cores' on
710 comma. */
dc146f7c
VP
711
712static void
713output_cores (struct ui_out *uiout, const char *field_name, const char *xcores)
3ee1c036 714{
dc146f7c
VP
715 struct cleanup *back_to = make_cleanup_ui_out_list_begin_end (uiout,
716 field_name);
717 char *cores = xstrdup (xcores);
718 char *p = cores;
3ee1c036 719
dc146f7c 720 make_cleanup (xfree, cores);
3ee1c036 721
dc146f7c
VP
722 for (p = strtok (p, ","); p; p = strtok (NULL, ","))
723 ui_out_field_string (uiout, NULL, p);
3ee1c036 724
dc146f7c
VP
725 do_cleanups (back_to);
726}
3ee1c036 727
dc146f7c
VP
728static void
729free_vector_of_ints (void *xvector)
730{
731 VEC (int) **vector = xvector;
102040f0 732
dc146f7c
VP
733 VEC_free (int, *vector);
734}
735
736static void
737do_nothing (splay_tree_key k)
738{
739}
07e059b5 740
dc146f7c
VP
741static void
742free_vector_of_osdata_items (splay_tree_value xvalue)
743{
744 VEC (osdata_item_s) *value = (VEC (osdata_item_s) *) xvalue;
102040f0 745
dc146f7c
VP
746 /* We don't free the items itself, it will be done separately. */
747 VEC_free (osdata_item_s, value);
748}
e0665bc8 749
dc146f7c
VP
750static int
751splay_tree_int_comparator (splay_tree_key xa, splay_tree_key xb)
752{
753 int a = xa;
754 int b = xb;
102040f0 755
dc146f7c
VP
756 return a - b;
757}
758
759static void
760free_splay_tree (void *xt)
761{
762 splay_tree t = xt;
763 splay_tree_delete (t);
764}
765
766static void
767list_available_thread_groups (VEC (int) *ids, int recurse)
768{
769 struct osdata *data;
770 struct osdata_item *item;
771 int ix_items;
79a45e25 772 struct ui_out *uiout = current_uiout;
b9635925 773 struct cleanup *cleanup;
102040f0 774
dc146f7c 775 /* This keeps a map from integer (pid) to VEC (struct osdata_item *)*
8eee9c5a
DE
776 The vector contains information about all threads for the given pid.
777 This is assigned an initial value to avoid "may be used uninitialized"
778 warning from gcc. */
779 splay_tree tree = NULL;
dc146f7c
VP
780
781 /* get_osdata will throw if it cannot return data. */
782 data = get_osdata ("processes");
b9635925 783 cleanup = make_cleanup_osdata_free (data);
dc146f7c
VP
784
785 if (recurse)
786 {
787 struct osdata *threads = get_osdata ("threads");
dc146f7c 788
102040f0 789 make_cleanup_osdata_free (threads);
dc146f7c
VP
790 tree = splay_tree_new (splay_tree_int_comparator,
791 do_nothing,
792 free_vector_of_osdata_items);
793 make_cleanup (free_splay_tree, tree);
e0665bc8 794
07e059b5 795 for (ix_items = 0;
dc146f7c 796 VEC_iterate (osdata_item_s, threads->items,
e0665bc8 797 ix_items, item);
07e059b5
VP
798 ix_items++)
799 {
07e059b5 800 const char *pid = get_osdata_column (item, "pid");
dc146f7c
VP
801 int pid_i = strtoul (pid, NULL, 0);
802 VEC (osdata_item_s) *vec = 0;
803
804 splay_tree_node n = splay_tree_lookup (tree, pid_i);
805 if (!n)
806 {
807 VEC_safe_push (osdata_item_s, vec, item);
808 splay_tree_insert (tree, pid_i, (splay_tree_value)vec);
809 }
810 else
811 {
812 vec = (VEC (osdata_item_s) *) n->value;
813 VEC_safe_push (osdata_item_s, vec, item);
814 n->value = (splay_tree_value) vec;
815 }
816 }
817 }
818
819 make_cleanup_ui_out_list_begin_end (uiout, "groups");
07e059b5 820
dc146f7c
VP
821 for (ix_items = 0;
822 VEC_iterate (osdata_item_s, data->items,
823 ix_items, item);
824 ix_items++)
825 {
826 struct cleanup *back_to;
e0665bc8 827
dc146f7c
VP
828 const char *pid = get_osdata_column (item, "pid");
829 const char *cmd = get_osdata_column (item, "command");
830 const char *user = get_osdata_column (item, "user");
831 const char *cores = get_osdata_column (item, "cores");
832
833 int pid_i = strtoul (pid, NULL, 0);
834
835 /* At present, the target will return all available processes
836 and if information about specific ones was required, we filter
837 undesired processes here. */
838 if (ids && bsearch (&pid_i, VEC_address (int, ids),
839 VEC_length (int, ids),
840 sizeof (int), compare_positive_ints) == NULL)
841 continue;
842
843
844 back_to = make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
845
846 ui_out_field_fmt (uiout, "id", "%s", pid);
847 ui_out_field_string (uiout, "type", "process");
848 if (cmd)
849 ui_out_field_string (uiout, "description", cmd);
850 if (user)
851 ui_out_field_string (uiout, "user", user);
852 if (cores)
853 output_cores (uiout, "cores", cores);
854
855 if (recurse)
856 {
857 splay_tree_node n = splay_tree_lookup (tree, pid_i);
858 if (n)
859 {
860 VEC (osdata_item_s) *children = (VEC (osdata_item_s) *) n->value;
861 struct osdata_item *child;
862 int ix_child;
863
864 make_cleanup_ui_out_list_begin_end (uiout, "threads");
865
866 for (ix_child = 0;
867 VEC_iterate (osdata_item_s, children, ix_child, child);
868 ++ix_child)
869 {
870 struct cleanup *back_to_2 =
871 make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
dc146f7c
VP
872 const char *tid = get_osdata_column (child, "tid");
873 const char *tcore = get_osdata_column (child, "core");
102040f0 874
dc146f7c
VP
875 ui_out_field_string (uiout, "id", tid);
876 if (tcore)
877 ui_out_field_string (uiout, "core", tcore);
878
879 do_cleanups (back_to_2);
880 }
881 }
07e059b5 882 }
dc146f7c
VP
883
884 do_cleanups (back_to);
07e059b5 885 }
b9635925
TT
886
887 do_cleanups (cleanup);
dc146f7c
VP
888}
889
890void
891mi_cmd_list_thread_groups (char *command, char **argv, int argc)
892{
79a45e25 893 struct ui_out *uiout = current_uiout;
dc146f7c
VP
894 struct cleanup *back_to;
895 int available = 0;
896 int recurse = 0;
897 VEC (int) *ids = 0;
898
899 enum opt
dc146f7c 900 {
2b03b41d 901 AVAILABLE_OPT, RECURSE_OPT
dc146f7c 902 };
2b03b41d
SS
903 static const struct mi_opt opts[] =
904 {
905 {"-available", AVAILABLE_OPT, 0},
906 {"-recurse", RECURSE_OPT, 1},
907 { 0, 0, 0 }
908 };
dc146f7c 909
56934ab1
AS
910 int oind = 0;
911 char *oarg;
dc146f7c
VP
912
913 while (1)
914 {
915 int opt = mi_getopt ("-list-thread-groups", argc, argv, opts,
56934ab1 916 &oind, &oarg);
102040f0 917
dc146f7c
VP
918 if (opt < 0)
919 break;
920 switch ((enum opt) opt)
921 {
922 case AVAILABLE_OPT:
923 available = 1;
924 break;
925 case RECURSE_OPT:
56934ab1 926 if (strcmp (oarg, "0") == 0)
dc146f7c 927 ;
56934ab1 928 else if (strcmp (oarg, "1") == 0)
dc146f7c
VP
929 recurse = 1;
930 else
7ea6d463
PM
931 error (_("only '0' and '1' are valid values "
932 "for the '--recurse' option"));
dc146f7c
VP
933 break;
934 }
935 }
936
56934ab1 937 for (; oind < argc; ++oind)
dc146f7c
VP
938 {
939 char *end;
2f296114
VP
940 int inf;
941
56934ab1
AS
942 if (*(argv[oind]) != 'i')
943 error (_("invalid syntax of group id '%s'"), argv[oind]);
2f296114 944
56934ab1 945 inf = strtoul (argv[oind] + 1, &end, 0);
102040f0 946
dc146f7c 947 if (*end != '\0')
56934ab1 948 error (_("invalid syntax of group id '%s'"), argv[oind]);
dc146f7c
VP
949 VEC_safe_push (int, ids, inf);
950 }
951 if (VEC_length (int, ids) > 1)
952 qsort (VEC_address (int, ids),
953 VEC_length (int, ids),
954 sizeof (int), compare_positive_ints);
955
956 back_to = make_cleanup (free_vector_of_ints, &ids);
957
958 if (available)
959 {
960 list_available_thread_groups (ids, recurse);
961 }
962 else if (VEC_length (int, ids) == 1)
3ee1c036 963 {
2b03b41d 964 /* Local thread groups, single id. */
2f296114
VP
965 int id = *VEC_address (int, ids);
966 struct inferior *inf = find_inferior_id (id);
102040f0 967
2f296114 968 if (!inf)
7ea6d463 969 error (_("Non-existent thread group id '%d'"), id);
c1244769 970
aea5b279 971 print_thread_info (uiout, NULL, inf->pid);
3ee1c036
VP
972 }
973 else
974 {
dc146f7c 975 struct print_one_inferior_data data;
102040f0 976
dc146f7c
VP
977 data.recurse = recurse;
978 data.inferiors = ids;
979
980 /* Local thread groups. Either no explicit ids -- and we
981 print everything, or several explicit ids. In both cases,
982 we print more than one group, and have to use 'groups'
983 as the top-level element. */
3ee1c036 984 make_cleanup_ui_out_list_begin_end (uiout, "groups");
dc146f7c
VP
985 update_thread_list ();
986 iterate_over_inferiors (print_one_inferior, &data);
3ee1c036 987 }
dc146f7c 988
3ee1c036 989 do_cleanups (back_to);
8e8901c5
VP
990}
991
ce8f13f8 992void
fb40c209
AC
993mi_cmd_data_list_register_names (char *command, char **argv, int argc)
994{
7ccb0be9 995 struct gdbarch *gdbarch;
79a45e25 996 struct ui_out *uiout = current_uiout;
fb40c209
AC
997 int regnum, numregs;
998 int i;
4060713b 999 struct cleanup *cleanup;
fb40c209
AC
1000
1001 /* Note that the test for a valid register must include checking the
2b03b41d
SS
1002 gdbarch_register_name because gdbarch_num_regs may be allocated
1003 for the union of the register sets within a family of related
1004 processors. In this case, some entries of gdbarch_register_name
1005 will change depending upon the particular processor being
1006 debugged. */
fb40c209 1007
441b986a 1008 gdbarch = get_current_arch ();
7ccb0be9 1009 numregs = gdbarch_num_regs (gdbarch) + gdbarch_num_pseudo_regs (gdbarch);
fb40c209 1010
4060713b 1011 cleanup = make_cleanup_ui_out_list_begin_end (uiout, "register-names");
fb40c209 1012
41296c92 1013 if (argc == 0) /* No args, just do all the regs. */
fb40c209
AC
1014 {
1015 for (regnum = 0;
1016 regnum < numregs;
1017 regnum++)
1018 {
7ccb0be9
UW
1019 if (gdbarch_register_name (gdbarch, regnum) == NULL
1020 || *(gdbarch_register_name (gdbarch, regnum)) == '\0')
173d6894
AC
1021 ui_out_field_string (uiout, NULL, "");
1022 else
c9f4d572 1023 ui_out_field_string (uiout, NULL,
7ccb0be9 1024 gdbarch_register_name (gdbarch, regnum));
fb40c209
AC
1025 }
1026 }
1027
41296c92 1028 /* Else, list of register #s, just do listed regs. */
fb40c209
AC
1029 for (i = 0; i < argc; i++)
1030 {
1031 regnum = atoi (argv[i]);
173d6894 1032 if (regnum < 0 || regnum >= numregs)
7ea6d463 1033 error (_("bad register number"));
a13e061a 1034
7ccb0be9
UW
1035 if (gdbarch_register_name (gdbarch, regnum) == NULL
1036 || *(gdbarch_register_name (gdbarch, regnum)) == '\0')
173d6894
AC
1037 ui_out_field_string (uiout, NULL, "");
1038 else
c9f4d572 1039 ui_out_field_string (uiout, NULL,
7ccb0be9 1040 gdbarch_register_name (gdbarch, regnum));
fb40c209 1041 }
4060713b 1042 do_cleanups (cleanup);
fb40c209
AC
1043}
1044
ce8f13f8 1045void
fb40c209
AC
1046mi_cmd_data_list_changed_registers (char *command, char **argv, int argc)
1047{
6ed7ea50 1048 static struct regcache *this_regs = NULL;
79a45e25 1049 struct ui_out *uiout = current_uiout;
6ed7ea50 1050 struct regcache *prev_regs;
7ccb0be9 1051 struct gdbarch *gdbarch;
fb40c209
AC
1052 int regnum, numregs, changed;
1053 int i;
4060713b 1054 struct cleanup *cleanup;
fb40c209 1055
2b03b41d
SS
1056 /* The last time we visited this function, the current frame's
1057 register contents were saved in THIS_REGS. Move THIS_REGS over
1058 to PREV_REGS, and refresh THIS_REGS with the now-current register
1059 contents. */
6ed7ea50
UW
1060
1061 prev_regs = this_regs;
1062 this_regs = frame_save_as_regcache (get_selected_frame (NULL));
1063 cleanup = make_cleanup_regcache_xfree (prev_regs);
1064
fb40c209 1065 /* Note that the test for a valid register must include checking the
2b03b41d
SS
1066 gdbarch_register_name because gdbarch_num_regs may be allocated
1067 for the union of the register sets within a family of related
1068 processors. In this case, some entries of gdbarch_register_name
1069 will change depending upon the particular processor being
1070 debugged. */
fb40c209 1071
7ccb0be9
UW
1072 gdbarch = get_regcache_arch (this_regs);
1073 numregs = gdbarch_num_regs (gdbarch) + gdbarch_num_pseudo_regs (gdbarch);
fb40c209 1074
6ed7ea50 1075 make_cleanup_ui_out_list_begin_end (uiout, "changed-registers");
fb40c209 1076
2b03b41d 1077 if (argc == 0)
fb40c209 1078 {
2b03b41d 1079 /* No args, just do all the regs. */
fb40c209
AC
1080 for (regnum = 0;
1081 regnum < numregs;
1082 regnum++)
1083 {
7ccb0be9
UW
1084 if (gdbarch_register_name (gdbarch, regnum) == NULL
1085 || *(gdbarch_register_name (gdbarch, regnum)) == '\0')
fb40c209 1086 continue;
6ed7ea50 1087 changed = register_changed_p (regnum, prev_regs, this_regs);
fb40c209 1088 if (changed < 0)
7ea6d463
PM
1089 error (_("-data-list-changed-registers: "
1090 "Unable to read register contents."));
fb40c209
AC
1091 else if (changed)
1092 ui_out_field_int (uiout, NULL, regnum);
1093 }
1094 }
1095
41296c92 1096 /* Else, list of register #s, just do listed regs. */
fb40c209
AC
1097 for (i = 0; i < argc; i++)
1098 {
1099 regnum = atoi (argv[i]);
1100
1101 if (regnum >= 0
1102 && regnum < numregs
7ccb0be9
UW
1103 && gdbarch_register_name (gdbarch, regnum) != NULL
1104 && *gdbarch_register_name (gdbarch, regnum) != '\000')
fb40c209 1105 {
6ed7ea50 1106 changed = register_changed_p (regnum, prev_regs, this_regs);
fb40c209 1107 if (changed < 0)
7ea6d463
PM
1108 error (_("-data-list-changed-registers: "
1109 "Unable to read register contents."));
fb40c209
AC
1110 else if (changed)
1111 ui_out_field_int (uiout, NULL, regnum);
1112 }
1113 else
7ea6d463 1114 error (_("bad register number"));
fb40c209 1115 }
4060713b 1116 do_cleanups (cleanup);
fb40c209
AC
1117}
1118
1119static int
6ed7ea50
UW
1120register_changed_p (int regnum, struct regcache *prev_regs,
1121 struct regcache *this_regs)
fb40c209 1122{
6ed7ea50
UW
1123 struct gdbarch *gdbarch = get_regcache_arch (this_regs);
1124 gdb_byte prev_buffer[MAX_REGISTER_SIZE];
1125 gdb_byte this_buffer[MAX_REGISTER_SIZE];
e69aa73e
PA
1126 enum register_status prev_status;
1127 enum register_status this_status;
fb40c209 1128
e69aa73e
PA
1129 /* First time through or after gdbarch change consider all registers
1130 as changed. */
1131 if (!prev_regs || get_regcache_arch (prev_regs) != gdbarch)
6ed7ea50 1132 return 1;
fb40c209 1133
6ed7ea50 1134 /* Get register contents and compare. */
e69aa73e
PA
1135 prev_status = regcache_cooked_read (prev_regs, regnum, prev_buffer);
1136 this_status = regcache_cooked_read (this_regs, regnum, this_buffer);
fb40c209 1137
e69aa73e
PA
1138 if (this_status != prev_status)
1139 return 1;
1140 else if (this_status == REG_VALID)
1141 return memcmp (prev_buffer, this_buffer,
1142 register_size (gdbarch, regnum)) != 0;
1143 else
1144 return 0;
fb40c209
AC
1145}
1146
41296c92 1147/* Return a list of register number and value pairs. The valid
fb40c209 1148 arguments expected are: a letter indicating the format in which to
2b03b41d
SS
1149 display the registers contents. This can be one of: x
1150 (hexadecimal), d (decimal), N (natural), t (binary), o (octal), r
1151 (raw). After the format argument there can be a sequence of
1152 numbers, indicating which registers to fetch the content of. If
1153 the format is the only argument, a list of all the registers with
1154 their values is returned. */
1155
ce8f13f8 1156void
fb40c209
AC
1157mi_cmd_data_list_register_values (char *command, char **argv, int argc)
1158{
79a45e25 1159 struct ui_out *uiout = current_uiout;
7ccb0be9
UW
1160 struct frame_info *frame;
1161 struct gdbarch *gdbarch;
a13e061a 1162 int regnum, numregs, format;
fb40c209 1163 int i;
1edebdbf 1164 struct cleanup *list_cleanup;
c898adb7
YQ
1165 int skip_unavailable = 0;
1166 int oind = 0;
1167 enum opt
1168 {
1169 SKIP_UNAVAILABLE,
1170 };
1171 static const struct mi_opt opts[] =
1172 {
1173 {"-skip-unavailable", SKIP_UNAVAILABLE, 0},
1174 { 0, 0, 0 }
1175 };
fb40c209
AC
1176
1177 /* Note that the test for a valid register must include checking the
2b03b41d
SS
1178 gdbarch_register_name because gdbarch_num_regs may be allocated
1179 for the union of the register sets within a family of related
1180 processors. In this case, some entries of gdbarch_register_name
1181 will change depending upon the particular processor being
1182 debugged. */
fb40c209 1183
c898adb7
YQ
1184 while (1)
1185 {
1186 char *oarg;
1187 int opt = mi_getopt ("-data-list-register-values", argc, argv,
1188 opts, &oind, &oarg);
1189
1190 if (opt < 0)
1191 break;
1192 switch ((enum opt) opt)
1193 {
1194 case SKIP_UNAVAILABLE:
1195 skip_unavailable = 1;
1196 break;
1197 }
1198 }
1199
1200 if (argc - oind < 1)
7ea6d463 1201 error (_("-data-list-register-values: Usage: "
c898adb7
YQ
1202 "-data-list-register-values [--skip-unavailable] <format>"
1203 " [<regnum1>...<regnumN>]"));
fb40c209 1204
c898adb7 1205 format = (int) argv[oind][0];
fb40c209 1206
7ccb0be9
UW
1207 frame = get_selected_frame (NULL);
1208 gdbarch = get_frame_arch (frame);
1209 numregs = gdbarch_num_regs (gdbarch) + gdbarch_num_pseudo_regs (gdbarch);
1210
4060713b 1211 list_cleanup = make_cleanup_ui_out_list_begin_end (uiout, "register-values");
fb40c209 1212
c898adb7 1213 if (argc - oind == 1)
fb40c209 1214 {
2b03b41d 1215 /* No args, beside the format: do all the regs. */
fb40c209
AC
1216 for (regnum = 0;
1217 regnum < numregs;
1218 regnum++)
1219 {
7ccb0be9
UW
1220 if (gdbarch_register_name (gdbarch, regnum) == NULL
1221 || *(gdbarch_register_name (gdbarch, regnum)) == '\0')
fb40c209 1222 continue;
1edebdbf 1223
c898adb7 1224 output_register (frame, regnum, format, skip_unavailable);
fb40c209
AC
1225 }
1226 }
1227
41296c92 1228 /* Else, list of register #s, just do listed regs. */
c898adb7 1229 for (i = 1 + oind; i < argc; i++)
fb40c209
AC
1230 {
1231 regnum = atoi (argv[i]);
1232
1233 if (regnum >= 0
1234 && regnum < numregs
7ccb0be9
UW
1235 && gdbarch_register_name (gdbarch, regnum) != NULL
1236 && *gdbarch_register_name (gdbarch, regnum) != '\000')
c898adb7 1237 output_register (frame, regnum, format, skip_unavailable);
fb40c209 1238 else
7ea6d463 1239 error (_("bad register number"));
fb40c209 1240 }
4060713b 1241 do_cleanups (list_cleanup);
fb40c209
AC
1242}
1243
c898adb7
YQ
1244/* Output one register REGNUM's contents in the desired FORMAT. If
1245 SKIP_UNAVAILABLE is true, skip the register if it is
1246 unavailable. */
2b03b41d 1247
a13e061a 1248static void
c898adb7
YQ
1249output_register (struct frame_info *frame, int regnum, int format,
1250 int skip_unavailable)
fb40c209 1251{
7ccb0be9 1252 struct gdbarch *gdbarch = get_frame_arch (frame);
79a45e25 1253 struct ui_out *uiout = current_uiout;
901461f8 1254 struct value *val = value_of_register (regnum, frame);
1edebdbf 1255 struct cleanup *tuple_cleanup;
fdc8aae8
AB
1256 struct value_print_options opts;
1257 struct ui_file *stb;
1edebdbf 1258
c898adb7
YQ
1259 if (skip_unavailable && !value_entirely_available (val))
1260 return;
1261
1edebdbf
YQ
1262 tuple_cleanup = make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
1263 ui_out_field_int (uiout, "number", regnum);
fb40c209 1264
fb40c209
AC
1265 if (format == 'N')
1266 format = 0;
1267
fb40c209 1268 if (format == 'r')
fdc8aae8
AB
1269 format = 'z';
1270
1271 stb = mem_fileopen ();
1272 make_cleanup_ui_file_delete (stb);
1273
1274 get_formatted_print_options (&opts, format);
1275 opts.deref_ref = 1;
1276 val_print (value_type (val),
1277 value_contents_for_printing (val),
1278 value_embedded_offset (val), 0,
1279 stb, 0, val, &opts, current_language);
1280 ui_out_field_stream (uiout, "value", stb);
1edebdbf
YQ
1281
1282 do_cleanups (tuple_cleanup);
fb40c209
AC
1283}
1284
24e8cecf 1285/* Write given values into registers. The registers and values are
c1244769 1286 given as pairs. The corresponding MI command is
9a2b4c1b
MS
1287 -data-write-register-values <format>
1288 [<regnum1> <value1>...<regnumN> <valueN>] */
ce8f13f8 1289void
24e8cecf
EZ
1290mi_cmd_data_write_register_values (char *command, char **argv, int argc)
1291{
7ccb0be9
UW
1292 struct regcache *regcache;
1293 struct gdbarch *gdbarch;
9f3a1602 1294 int numregs, i;
24e8cecf
EZ
1295
1296 /* Note that the test for a valid register must include checking the
2b03b41d
SS
1297 gdbarch_register_name because gdbarch_num_regs may be allocated
1298 for the union of the register sets within a family of related
1299 processors. In this case, some entries of gdbarch_register_name
1300 will change depending upon the particular processor being
1301 debugged. */
24e8cecf 1302
7ccb0be9
UW
1303 regcache = get_current_regcache ();
1304 gdbarch = get_regcache_arch (regcache);
1305 numregs = gdbarch_num_regs (gdbarch) + gdbarch_num_pseudo_regs (gdbarch);
24e8cecf
EZ
1306
1307 if (argc == 0)
7ea6d463
PM
1308 error (_("-data-write-register-values: Usage: -data-write-register-"
1309 "values <format> [<regnum1> <value1>...<regnumN> <valueN>]"));
24e8cecf 1310
24e8cecf 1311 if (!target_has_registers)
7ea6d463 1312 error (_("-data-write-register-values: No registers."));
24e8cecf
EZ
1313
1314 if (!(argc - 1))
7ea6d463 1315 error (_("-data-write-register-values: No regs and values specified."));
24e8cecf
EZ
1316
1317 if ((argc - 1) % 2)
7ea6d463
PM
1318 error (_("-data-write-register-values: "
1319 "Regs and vals are not in pairs."));
24e8cecf
EZ
1320
1321 for (i = 1; i < argc; i = i + 2)
1322 {
9f3a1602 1323 int regnum = atoi (argv[i]);
24e8cecf 1324
9f3a1602 1325 if (regnum >= 0 && regnum < numregs
7ccb0be9
UW
1326 && gdbarch_register_name (gdbarch, regnum)
1327 && *gdbarch_register_name (gdbarch, regnum))
24e8cecf 1328 {
9f3a1602 1329 LONGEST value;
d8bf3afa 1330
9f3a1602 1331 /* Get the value as a number. */
24e8cecf 1332 value = parse_and_eval_address (argv[i + 1]);
9f3a1602 1333
41296c92 1334 /* Write it down. */
7ccb0be9 1335 regcache_cooked_write_signed (regcache, regnum, value);
24e8cecf
EZ
1336 }
1337 else
7ea6d463 1338 error (_("bad register number"));
24e8cecf 1339 }
24e8cecf
EZ
1340}
1341
41296c92 1342/* Evaluate the value of the argument. The argument is an
fb40c209 1343 expression. If the expression contains spaces it needs to be
41296c92 1344 included in double quotes. */
2b03b41d 1345
ce8f13f8 1346void
fb40c209
AC
1347mi_cmd_data_evaluate_expression (char *command, char **argv, int argc)
1348{
1349 struct expression *expr;
f99d8bf4 1350 struct cleanup *old_chain;
96052a95 1351 struct value *val;
f99d8bf4 1352 struct ui_file *stb;
79a45b7d 1353 struct value_print_options opts;
79a45e25 1354 struct ui_out *uiout = current_uiout;
fb40c209 1355
f99d8bf4
PA
1356 stb = mem_fileopen ();
1357 old_chain = make_cleanup_ui_file_delete (stb);
fb40c209
AC
1358
1359 if (argc != 1)
f99d8bf4
PA
1360 error (_("-data-evaluate-expression: "
1361 "Usage: -data-evaluate-expression expression"));
fb40c209
AC
1362
1363 expr = parse_expression (argv[0]);
1364
f99d8bf4 1365 make_cleanup (free_current_contents, &expr);
fb40c209
AC
1366
1367 val = evaluate_expression (expr);
1368
41296c92 1369 /* Print the result of the expression evaluation. */
79a45b7d
TT
1370 get_user_print_options (&opts);
1371 opts.deref_ref = 0;
f99d8bf4 1372 common_val_print (val, stb, 0, &opts, current_language);
fb40c209
AC
1373
1374 ui_out_field_stream (uiout, "value", stb);
fb40c209
AC
1375
1376 do_cleanups (old_chain);
fb40c209
AC
1377}
1378
2b03b41d 1379/* This is the -data-read-memory command.
fb40c209
AC
1380
1381 ADDR: start address of data to be dumped.
c1244769 1382 WORD-FORMAT: a char indicating format for the ``word''. See
fb40c209 1383 the ``x'' command.
41296c92 1384 WORD-SIZE: size of each ``word''; 1,2,4, or 8 bytes.
fb40c209
AC
1385 NR_ROW: Number of rows.
1386 NR_COL: The number of colums (words per row).
1387 ASCHAR: (OPTIONAL) Append an ascii character dump to each row. Use
1388 ASCHAR for unprintable characters.
1389
1390 Reads SIZE*NR_ROW*NR_COL bytes starting at ADDR from memory and
1391 displayes them. Returns:
1392
1393 {addr="...",rowN={wordN="..." ,... [,ascii="..."]}, ...}
1394
c1244769 1395 Returns:
2b03b41d 1396 The number of bytes read is SIZE*ROW*COL. */
fb40c209 1397
ce8f13f8 1398void
fb40c209
AC
1399mi_cmd_data_read_memory (char *command, char **argv, int argc)
1400{
e17c207e 1401 struct gdbarch *gdbarch = get_current_arch ();
79a45e25 1402 struct ui_out *uiout = current_uiout;
fb40c209
AC
1403 struct cleanup *cleanups = make_cleanup (null_cleanup, NULL);
1404 CORE_ADDR addr;
2b03b41d 1405 long total_bytes, nr_cols, nr_rows;
fb40c209
AC
1406 char word_format;
1407 struct type *word_type;
1408 long word_size;
1409 char word_asize;
1410 char aschar;
508416a1 1411 gdb_byte *mbuf;
fb40c209
AC
1412 int nr_bytes;
1413 long offset = 0;
56934ab1
AS
1414 int oind = 0;
1415 char *oarg;
fb40c209 1416 enum opt
fb40c209 1417 {
2b03b41d 1418 OFFSET_OPT
fb40c209 1419 };
2b03b41d
SS
1420 static const struct mi_opt opts[] =
1421 {
1422 {"o", OFFSET_OPT, 1},
1423 { 0, 0, 0 }
1424 };
fb40c209
AC
1425
1426 while (1)
1427 {
1b05df00 1428 int opt = mi_getopt ("-data-read-memory", argc, argv, opts,
56934ab1 1429 &oind, &oarg);
102040f0 1430
fb40c209
AC
1431 if (opt < 0)
1432 break;
1433 switch ((enum opt) opt)
1434 {
1435 case OFFSET_OPT:
56934ab1 1436 offset = atol (oarg);
fb40c209
AC
1437 break;
1438 }
1439 }
56934ab1
AS
1440 argv += oind;
1441 argc -= oind;
fb40c209
AC
1442
1443 if (argc < 5 || argc > 6)
7ea6d463
PM
1444 error (_("-data-read-memory: Usage: "
1445 "ADDR WORD-FORMAT WORD-SIZE NR-ROWS NR-COLS [ASCHAR]."));
fb40c209
AC
1446
1447 /* Extract all the arguments. */
1448
41296c92 1449 /* Start address of the memory dump. */
fb40c209 1450 addr = parse_and_eval_address (argv[0]) + offset;
41296c92 1451 /* The format character to use when displaying a memory word. See
2b03b41d 1452 the ``x'' command. */
fb40c209 1453 word_format = argv[1][0];
41296c92 1454 /* The size of the memory word. */
fb40c209
AC
1455 word_size = atol (argv[2]);
1456 switch (word_size)
1457 {
1458 case 1:
df4df182 1459 word_type = builtin_type (gdbarch)->builtin_int8;
fb40c209
AC
1460 word_asize = 'b';
1461 break;
1462 case 2:
df4df182 1463 word_type = builtin_type (gdbarch)->builtin_int16;
fb40c209
AC
1464 word_asize = 'h';
1465 break;
1466 case 4:
df4df182 1467 word_type = builtin_type (gdbarch)->builtin_int32;
fb40c209
AC
1468 word_asize = 'w';
1469 break;
1470 case 8:
df4df182 1471 word_type = builtin_type (gdbarch)->builtin_int64;
fb40c209
AC
1472 word_asize = 'g';
1473 break;
1474 default:
df4df182 1475 word_type = builtin_type (gdbarch)->builtin_int8;
fb40c209
AC
1476 word_asize = 'b';
1477 }
41296c92 1478 /* The number of rows. */
fb40c209
AC
1479 nr_rows = atol (argv[3]);
1480 if (nr_rows <= 0)
7ea6d463 1481 error (_("-data-read-memory: invalid number of rows."));
a13e061a 1482
41296c92 1483 /* Number of bytes per row. */
fb40c209
AC
1484 nr_cols = atol (argv[4]);
1485 if (nr_cols <= 0)
7ea6d463 1486 error (_("-data-read-memory: invalid number of columns."));
a13e061a 1487
41296c92 1488 /* The un-printable character when printing ascii. */
fb40c209
AC
1489 if (argc == 6)
1490 aschar = *argv[5];
1491 else
1492 aschar = 0;
1493
41296c92 1494 /* Create a buffer and read it in. */
fb40c209 1495 total_bytes = word_size * nr_rows * nr_cols;
2e94c453 1496 mbuf = xcalloc (total_bytes, 1);
b8c9b27d 1497 make_cleanup (xfree, mbuf);
cf7a04e8 1498
a4261689
PA
1499 /* Dispatch memory reads to the topmost target, not the flattened
1500 current_target. */
8dedea02
VP
1501 nr_bytes = target_read (current_target.beneath,
1502 TARGET_OBJECT_MEMORY, NULL, mbuf,
1503 addr, total_bytes);
cf7a04e8 1504 if (nr_bytes <= 0)
7ea6d463 1505 error (_("Unable to read memory."));
fb40c209 1506
41296c92 1507 /* Output the header information. */
5af949e3 1508 ui_out_field_core_addr (uiout, "addr", gdbarch, addr);
fb40c209
AC
1509 ui_out_field_int (uiout, "nr-bytes", nr_bytes);
1510 ui_out_field_int (uiout, "total-bytes", total_bytes);
5af949e3
UW
1511 ui_out_field_core_addr (uiout, "next-row",
1512 gdbarch, addr + word_size * nr_cols);
1513 ui_out_field_core_addr (uiout, "prev-row",
1514 gdbarch, addr - word_size * nr_cols);
1515 ui_out_field_core_addr (uiout, "next-page", gdbarch, addr + total_bytes);
1516 ui_out_field_core_addr (uiout, "prev-page", gdbarch, addr - total_bytes);
fb40c209 1517
41296c92 1518 /* Build the result as a two dimentional table. */
fb40c209 1519 {
f99d8bf4
PA
1520 struct ui_file *stream;
1521 struct cleanup *cleanup_stream;
fb40c209
AC
1522 int row;
1523 int row_byte;
102040f0 1524
f99d8bf4
PA
1525 stream = mem_fileopen ();
1526 cleanup_stream = make_cleanup_ui_file_delete (stream);
1527
1528 make_cleanup_ui_out_list_begin_end (uiout, "memory");
fb40c209
AC
1529 for (row = 0, row_byte = 0;
1530 row < nr_rows;
1531 row++, row_byte += nr_cols * word_size)
1532 {
1533 int col;
1534 int col_byte;
6ad4a2cf
JJ
1535 struct cleanup *cleanup_tuple;
1536 struct cleanup *cleanup_list_data;
79a45b7d
TT
1537 struct value_print_options opts;
1538
6ad4a2cf 1539 cleanup_tuple = make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
5af949e3 1540 ui_out_field_core_addr (uiout, "addr", gdbarch, addr + row_byte);
9a2b4c1b
MS
1541 /* ui_out_field_core_addr_symbolic (uiout, "saddr", addr +
1542 row_byte); */
6ad4a2cf 1543 cleanup_list_data = make_cleanup_ui_out_list_begin_end (uiout, "data");
79a45b7d 1544 get_formatted_print_options (&opts, word_format);
fb40c209
AC
1545 for (col = 0, col_byte = row_byte;
1546 col < nr_cols;
1547 col++, col_byte += word_size)
1548 {
1549 if (col_byte + word_size > nr_bytes)
1550 {
1551 ui_out_field_string (uiout, NULL, "N/A");
1552 }
1553 else
1554 {
f99d8bf4 1555 ui_file_rewind (stream);
79a45b7d 1556 print_scalar_formatted (mbuf + col_byte, word_type, &opts,
f99d8bf4 1557 word_asize, stream);
fb40c209
AC
1558 ui_out_field_stream (uiout, NULL, stream);
1559 }
1560 }
6ad4a2cf 1561 do_cleanups (cleanup_list_data);
fb40c209
AC
1562 if (aschar)
1563 {
1564 int byte;
102040f0 1565
f99d8bf4 1566 ui_file_rewind (stream);
9a2b4c1b
MS
1567 for (byte = row_byte;
1568 byte < row_byte + word_size * nr_cols; byte++)
fb40c209
AC
1569 {
1570 if (byte >= nr_bytes)
f99d8bf4 1571 fputc_unfiltered ('X', stream);
fb40c209 1572 else if (mbuf[byte] < 32 || mbuf[byte] > 126)
f99d8bf4 1573 fputc_unfiltered (aschar, stream);
fb40c209 1574 else
f99d8bf4 1575 fputc_unfiltered (mbuf[byte], stream);
fb40c209
AC
1576 }
1577 ui_out_field_stream (uiout, "ascii", stream);
1578 }
6ad4a2cf 1579 do_cleanups (cleanup_tuple);
fb40c209 1580 }
f99d8bf4 1581 do_cleanups (cleanup_stream);
fb40c209
AC
1582 }
1583 do_cleanups (cleanups);
fb40c209
AC
1584}
1585
8dedea02
VP
1586void
1587mi_cmd_data_read_memory_bytes (char *command, char **argv, int argc)
1588{
1589 struct gdbarch *gdbarch = get_current_arch ();
79a45e25 1590 struct ui_out *uiout = current_uiout;
8dedea02
VP
1591 struct cleanup *cleanups;
1592 CORE_ADDR addr;
1593 LONGEST length;
1594 memory_read_result_s *read_result;
1595 int ix;
1596 VEC(memory_read_result_s) *result;
1597 long offset = 0;
cfc32360 1598 int unit_size = gdbarch_addressable_memory_unit_size (gdbarch);
56934ab1
AS
1599 int oind = 0;
1600 char *oarg;
8dedea02 1601 enum opt
8dedea02 1602 {
2b03b41d 1603 OFFSET_OPT
8dedea02 1604 };
2b03b41d
SS
1605 static const struct mi_opt opts[] =
1606 {
1607 {"o", OFFSET_OPT, 1},
1608 { 0, 0, 0 }
1609 };
8dedea02
VP
1610
1611 while (1)
1612 {
1b05df00 1613 int opt = mi_getopt ("-data-read-memory-bytes", argc, argv, opts,
56934ab1 1614 &oind, &oarg);
8dedea02
VP
1615 if (opt < 0)
1616 break;
1617 switch ((enum opt) opt)
1618 {
1619 case OFFSET_OPT:
56934ab1 1620 offset = atol (oarg);
8dedea02
VP
1621 break;
1622 }
1623 }
56934ab1
AS
1624 argv += oind;
1625 argc -= oind;
8dedea02
VP
1626
1627 if (argc != 2)
7ea6d463 1628 error (_("Usage: [ -o OFFSET ] ADDR LENGTH."));
8dedea02
VP
1629
1630 addr = parse_and_eval_address (argv[0]) + offset;
1631 length = atol (argv[1]);
1632
1633 result = read_memory_robust (current_target.beneath, addr, length);
1634
1635 cleanups = make_cleanup (free_memory_read_result_vector, result);
1636
1637 if (VEC_length (memory_read_result_s, result) == 0)
7ea6d463 1638 error (_("Unable to read memory."));
8dedea02
VP
1639
1640 make_cleanup_ui_out_list_begin_end (uiout, "memory");
1641 for (ix = 0;
1642 VEC_iterate (memory_read_result_s, result, ix, read_result);
1643 ++ix)
1644 {
1645 struct cleanup *t = make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
1646 char *data, *p;
1647 int i;
1648
1649 ui_out_field_core_addr (uiout, "begin", gdbarch, read_result->begin);
1650 ui_out_field_core_addr (uiout, "offset", gdbarch, read_result->begin
1651 - addr);
1652 ui_out_field_core_addr (uiout, "end", gdbarch, read_result->end);
1653
cfc32360
SM
1654 data = xmalloc (
1655 (read_result->end - read_result->begin) * 2 * unit_size + 1);
8dedea02
VP
1656
1657 for (i = 0, p = data;
cfc32360 1658 i < ((read_result->end - read_result->begin) * unit_size);
8dedea02
VP
1659 ++i, p += 2)
1660 {
1661 sprintf (p, "%02x", read_result->data[i]);
1662 }
1663 ui_out_field_string (uiout, "contents", data);
1664 xfree (data);
1665 do_cleanups (t);
1666 }
1667 do_cleanups (cleanups);
1668}
1669
2b03b41d 1670/* Implementation of the -data-write_memory command.
fb40c209 1671
177b42fe 1672 COLUMN_OFFSET: optional argument. Must be preceded by '-o'. The
fb40c209
AC
1673 offset from the beginning of the memory grid row where the cell to
1674 be written is.
1675 ADDR: start address of the row in the memory grid where the memory
41296c92 1676 cell is, if OFFSET_COLUMN is specified. Otherwise, the address of
fb40c209 1677 the location to write to.
c1244769 1678 FORMAT: a char indicating format for the ``word''. See
fb40c209
AC
1679 the ``x'' command.
1680 WORD_SIZE: size of each ``word''; 1,2,4, or 8 bytes
1681 VALUE: value to be written into the memory address.
1682
1683 Writes VALUE into ADDR + (COLUMN_OFFSET * WORD_SIZE).
1684
41296c92 1685 Prints nothing. */
2b03b41d 1686
ce8f13f8 1687void
fb40c209
AC
1688mi_cmd_data_write_memory (char *command, char **argv, int argc)
1689{
e17a4113
UW
1690 struct gdbarch *gdbarch = get_current_arch ();
1691 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
fb40c209 1692 CORE_ADDR addr;
fb40c209
AC
1693 long word_size;
1694 /* FIXME: ezannoni 2000-02-17 LONGEST could possibly not be big
41296c92 1695 enough when using a compiler other than GCC. */
fb40c209 1696 LONGEST value;
d8bf3afa
KB
1697 void *buffer;
1698 struct cleanup *old_chain;
fb40c209 1699 long offset = 0;
56934ab1
AS
1700 int oind = 0;
1701 char *oarg;
fb40c209 1702 enum opt
fb40c209 1703 {
2b03b41d 1704 OFFSET_OPT
fb40c209 1705 };
2b03b41d
SS
1706 static const struct mi_opt opts[] =
1707 {
1708 {"o", OFFSET_OPT, 1},
1709 { 0, 0, 0 }
1710 };
fb40c209
AC
1711
1712 while (1)
1713 {
1b05df00 1714 int opt = mi_getopt ("-data-write-memory", argc, argv, opts,
56934ab1 1715 &oind, &oarg);
102040f0 1716
fb40c209
AC
1717 if (opt < 0)
1718 break;
1719 switch ((enum opt) opt)
1720 {
1721 case OFFSET_OPT:
56934ab1 1722 offset = atol (oarg);
fb40c209
AC
1723 break;
1724 }
1725 }
56934ab1
AS
1726 argv += oind;
1727 argc -= oind;
fb40c209
AC
1728
1729 if (argc != 4)
7ea6d463
PM
1730 error (_("-data-write-memory: Usage: "
1731 "[-o COLUMN_OFFSET] ADDR FORMAT WORD-SIZE VALUE."));
fb40c209 1732
41296c92
NR
1733 /* Extract all the arguments. */
1734 /* Start address of the memory dump. */
fb40c209 1735 addr = parse_and_eval_address (argv[0]);
2b03b41d 1736 /* The size of the memory word. */
fb40c209
AC
1737 word_size = atol (argv[2]);
1738
41296c92 1739 /* Calculate the real address of the write destination. */
fb40c209
AC
1740 addr += (offset * word_size);
1741
41296c92 1742 /* Get the value as a number. */
fb40c209 1743 value = parse_and_eval_address (argv[3]);
41296c92 1744 /* Get the value into an array. */
d8bf3afa
KB
1745 buffer = xmalloc (word_size);
1746 old_chain = make_cleanup (xfree, buffer);
e17a4113 1747 store_signed_integer (buffer, word_size, byte_order, value);
41296c92 1748 /* Write it down to memory. */
4c2786ba 1749 write_memory_with_notification (addr, buffer, word_size);
d8bf3afa
KB
1750 /* Free the buffer. */
1751 do_cleanups (old_chain);
fb40c209
AC
1752}
1753
2b03b41d 1754/* Implementation of the -data-write-memory-bytes command.
8dedea02
VP
1755
1756 ADDR: start address
62747a60
TT
1757 DATA: string of bytes to write at that address
1758 COUNT: number of bytes to be filled (decimal integer). */
2b03b41d 1759
8dedea02
VP
1760void
1761mi_cmd_data_write_memory_bytes (char *command, char **argv, int argc)
1762{
1763 CORE_ADDR addr;
1764 char *cdata;
1765 gdb_byte *data;
62747a60 1766 gdb_byte *databuf;
cfc32360
SM
1767 size_t len_hex, len_bytes, len_units, i, steps, remaining_units;
1768 long int count_units;
8dedea02 1769 struct cleanup *back_to;
cfc32360 1770 int unit_size;
8dedea02 1771
62747a60
TT
1772 if (argc != 2 && argc != 3)
1773 error (_("Usage: ADDR DATA [COUNT]."));
8dedea02
VP
1774
1775 addr = parse_and_eval_address (argv[0]);
1776 cdata = argv[1];
cfc32360
SM
1777 len_hex = strlen (cdata);
1778 unit_size = gdbarch_addressable_memory_unit_size (get_current_arch ());
1779
1780 if (len_hex % (unit_size * 2) != 0)
1781 error (_("Hex-encoded '%s' must represent an integral number of "
1782 "addressable memory units."),
1ae0c35e
YQ
1783 cdata);
1784
cfc32360
SM
1785 len_bytes = len_hex / 2;
1786 len_units = len_bytes / unit_size;
1787
62747a60 1788 if (argc == 3)
cfc32360 1789 count_units = strtoul (argv[2], NULL, 10);
62747a60 1790 else
cfc32360 1791 count_units = len_units;
8dedea02 1792
cfc32360 1793 databuf = xmalloc (len_bytes * sizeof (gdb_byte));
62747a60 1794 back_to = make_cleanup (xfree, databuf);
8dedea02 1795
cfc32360 1796 for (i = 0; i < len_bytes; ++i)
8dedea02
VP
1797 {
1798 int x;
62747a60
TT
1799 if (sscanf (cdata + i * 2, "%02x", &x) != 1)
1800 error (_("Invalid argument"));
1801 databuf[i] = (gdb_byte) x;
1802 }
1803
cfc32360 1804 if (len_units < count_units)
62747a60 1805 {
cfc32360 1806 /* Pattern is made of less units than count:
62747a60 1807 repeat pattern to fill memory. */
cfc32360 1808 data = xmalloc (count_units * unit_size);
62747a60 1809 make_cleanup (xfree, data);
c1244769 1810
cfc32360
SM
1811 /* Number of times the pattern is entirely repeated. */
1812 steps = count_units / len_units;
1813 /* Number of remaining addressable memory units. */
1814 remaining_units = count_units % len_units;
1815 for (i = 0; i < steps; i++)
1816 memcpy (data + i * len_bytes, databuf, len_bytes);
62747a60 1817
cfc32360
SM
1818 if (remaining_units > 0)
1819 memcpy (data + steps * len_bytes, databuf,
1820 remaining_units * unit_size);
62747a60 1821 }
c1244769 1822 else
62747a60 1823 {
c1244769 1824 /* Pattern is longer than or equal to count:
cfc32360 1825 just copy count addressable memory units. */
62747a60 1826 data = databuf;
8dedea02
VP
1827 }
1828
cfc32360 1829 write_memory_with_notification (addr, data, count_units);
8dedea02
VP
1830
1831 do_cleanups (back_to);
1832}
1833
ce8f13f8 1834void
d8c83789
NR
1835mi_cmd_enable_timings (char *command, char **argv, int argc)
1836{
1837 if (argc == 0)
1838 do_timings = 1;
1839 else if (argc == 1)
1840 {
1841 if (strcmp (argv[0], "yes") == 0)
1842 do_timings = 1;
1843 else if (strcmp (argv[0], "no") == 0)
1844 do_timings = 0;
1845 else
1846 goto usage_error;
1847 }
1848 else
1849 goto usage_error;
c1244769 1850
ce8f13f8 1851 return;
d8c83789
NR
1852
1853 usage_error:
7ea6d463 1854 error (_("-enable-timings: Usage: %s {yes|no}"), command);
d8c83789
NR
1855}
1856
ce8f13f8 1857void
084344da
VP
1858mi_cmd_list_features (char *command, char **argv, int argc)
1859{
1860 if (argc == 0)
1861 {
1862 struct cleanup *cleanup = NULL;
79a45e25 1863 struct ui_out *uiout = current_uiout;
084344da 1864
c1244769 1865 cleanup = make_cleanup_ui_out_list_begin_end (uiout, "features");
084344da 1866 ui_out_field_string (uiout, NULL, "frozen-varobjs");
8b4ed427 1867 ui_out_field_string (uiout, NULL, "pending-breakpoints");
8e8901c5 1868 ui_out_field_string (uiout, NULL, "thread-info");
8dedea02 1869 ui_out_field_string (uiout, NULL, "data-read-memory-bytes");
39c4d40a 1870 ui_out_field_string (uiout, NULL, "breakpoint-notifications");
75082e8c 1871 ui_out_field_string (uiout, NULL, "ada-task-info");
422ad5c2 1872 ui_out_field_string (uiout, NULL, "language-option");
6b7cbff1 1873 ui_out_field_string (uiout, NULL, "info-gdb-mi-command");
2ea126fa 1874 ui_out_field_string (uiout, NULL, "undefined-command-error-code");
72bfa06c 1875 ui_out_field_string (uiout, NULL, "exec-run-start-option");
c1244769 1876
6dddc817 1877 if (ext_lang_initialized_p (get_ext_lang_defn (EXT_LANG_PYTHON)))
0646da15 1878 ui_out_field_string (uiout, NULL, "python");
c1244769 1879
084344da 1880 do_cleanups (cleanup);
ce8f13f8 1881 return;
084344da
VP
1882 }
1883
7ea6d463 1884 error (_("-list-features should be passed no arguments"));
084344da 1885}
c6ebd6cf
VP
1886
1887void
1888mi_cmd_list_target_features (char *command, char **argv, int argc)
1889{
1890 if (argc == 0)
1891 {
1892 struct cleanup *cleanup = NULL;
79a45e25 1893 struct ui_out *uiout = current_uiout;
c6ebd6cf 1894
c1244769 1895 cleanup = make_cleanup_ui_out_list_begin_end (uiout, "features");
329ea579 1896 if (mi_async_p ())
c6ebd6cf 1897 ui_out_field_string (uiout, NULL, "async");
f75d858b
MK
1898 if (target_can_execute_reverse)
1899 ui_out_field_string (uiout, NULL, "reverse");
c6ebd6cf
VP
1900 do_cleanups (cleanup);
1901 return;
1902 }
1903
7ea6d463 1904 error (_("-list-target-features should be passed no arguments"));
c6ebd6cf
VP
1905}
1906
a79b8f6e
VP
1907void
1908mi_cmd_add_inferior (char *command, char **argv, int argc)
1909{
1910 struct inferior *inf;
1911
1912 if (argc != 0)
1913 error (_("-add-inferior should be passed no arguments"));
1914
1915 inf = add_inferior_with_spaces ();
1916
79a45e25 1917 ui_out_field_fmt (current_uiout, "inferior", "i%d", inf->num);
a79b8f6e
VP
1918}
1919
2b03b41d
SS
1920/* Callback used to find the first inferior other than the current
1921 one. */
c1244769 1922
57bf2d7e
MK
1923static int
1924get_other_inferior (struct inferior *inf, void *arg)
1925{
1926 if (inf == current_inferior ())
1927 return 0;
1928
1929 return 1;
1930}
1931
a79b8f6e
VP
1932void
1933mi_cmd_remove_inferior (char *command, char **argv, int argc)
1934{
1935 int id;
1936 struct inferior *inf;
1937
1938 if (argc != 1)
7ea6d463 1939 error (_("-remove-inferior should be passed a single argument"));
a79b8f6e 1940
e2b4a699 1941 if (sscanf (argv[0], "i%d", &id) != 1)
7ea6d463 1942 error (_("the thread group id is syntactically invalid"));
a79b8f6e
VP
1943
1944 inf = find_inferior_id (id);
1945 if (!inf)
7ea6d463 1946 error (_("the specified thread group does not exist"));
a79b8f6e 1947
8fa067af 1948 if (inf->pid != 0)
81ec3cce 1949 error (_("cannot remove an active inferior"));
8fa067af 1950
57bf2d7e
MK
1951 if (inf == current_inferior ())
1952 {
1953 struct thread_info *tp = 0;
c1244769 1954 struct inferior *new_inferior
57bf2d7e
MK
1955 = iterate_over_inferiors (get_other_inferior, NULL);
1956
1957 if (new_inferior == NULL)
1958 error (_("Cannot remove last inferior"));
1959
1960 set_current_inferior (new_inferior);
1961 if (new_inferior->pid != 0)
1962 tp = any_thread_of_process (new_inferior->pid);
1963 switch_to_thread (tp ? tp->ptid : null_ptid);
1964 set_current_program_space (new_inferior->pspace);
1965 }
1966
7a41607e 1967 delete_inferior (inf);
a79b8f6e
VP
1968}
1969
1970\f
1971
8d34ea23
KS
1972/* Execute a command within a safe environment.
1973 Return <0 for error; >=0 for ok.
1974
1975 args->action will tell mi_execute_command what action
42972f50 1976 to perfrom after the given command has executed (display/suppress
2b03b41d 1977 prompt, display error). */
fb40c209 1978
f30f06b8 1979static void
04bd08de 1980captured_mi_execute_command (struct ui_out *uiout, struct mi_parse *context)
fb40c209 1981{
1f31650a 1982 struct cleanup *cleanup;
fb40c209 1983
4333ada3
VP
1984 if (do_timings)
1985 current_command_ts = context->cmd_start;
d8c83789 1986
1f31650a
VP
1987 current_token = xstrdup (context->token);
1988 cleanup = make_cleanup (free_current_contents, &current_token);
1989
a2840c35 1990 running_result_record_printed = 0;
f3b1572e 1991 mi_proceeded = 0;
fb40c209
AC
1992 switch (context->op)
1993 {
fb40c209 1994 case MI_COMMAND:
41296c92 1995 /* A MI command was read from the input stream. */
fb40c209
AC
1996 if (mi_debug_p)
1997 /* FIXME: gdb_???? */
1998 fprintf_unfiltered (raw_stdout, " token=`%s' command=`%s' args=`%s'\n",
1999 context->token, context->command, context->args);
d8c83789 2000
ce8f13f8 2001 mi_cmd_execute (context);
8d34ea23 2002
a2840c35 2003 /* Print the result if there were no errors.
4389a95a 2004
a2840c35 2005 Remember that on the way out of executing a command, you have
2b03b41d
SS
2006 to directly use the mi_interp's uiout, since the command
2007 could have reset the interpreter, in which case the current
2008 uiout will most likely crash in the mi_out_* routines. */
ce8f13f8 2009 if (!running_result_record_printed)
a2840c35
VP
2010 {
2011 fputs_unfiltered (context->token, raw_stdout);
ce8f13f8
VP
2012 /* There's no particularly good reason why target-connect results
2013 in not ^done. Should kill ^connected for MI3. */
2014 fputs_unfiltered (strcmp (context->command, "target-select") == 0
2015 ? "^connected" : "^done", raw_stdout);
a2840c35
VP
2016 mi_out_put (uiout, raw_stdout);
2017 mi_out_rewind (uiout);
4333ada3 2018 mi_print_timing_maybe ();
a2840c35
VP
2019 fputs_unfiltered ("\n", raw_stdout);
2020 }
2021 else
2b03b41d
SS
2022 /* The command does not want anything to be printed. In that
2023 case, the command probably should not have written anything
2024 to uiout, but in case it has written something, discard it. */
a2840c35 2025 mi_out_rewind (uiout);
fb40c209
AC
2026 break;
2027
2028 case CLI_COMMAND:
78f5381d
AC
2029 {
2030 char *argv[2];
102040f0 2031
78f5381d
AC
2032 /* A CLI command was read from the input stream. */
2033 /* This "feature" will be removed as soon as we have a
2034 complete set of mi commands. */
2035 /* Echo the command on the console. */
2036 fprintf_unfiltered (gdb_stdlog, "%s\n", context->command);
2037 /* Call the "console" interpreter. */
2038 argv[0] = "console";
2039 argv[1] = context->command;
ce8f13f8 2040 mi_cmd_interpreter_exec ("-interpreter-exec", argv, 2);
78f5381d 2041
eec01795 2042 /* If we changed interpreters, DON'T print out anything. */
78f5381d
AC
2043 if (current_interp_named_p (INTERP_MI)
2044 || current_interp_named_p (INTERP_MI1)
2045 || current_interp_named_p (INTERP_MI2)
2046 || current_interp_named_p (INTERP_MI3))
2047 {
ce8f13f8 2048 if (!running_result_record_printed)
eec01795
DJ
2049 {
2050 fputs_unfiltered (context->token, raw_stdout);
2051 fputs_unfiltered ("^done", raw_stdout);
2052 mi_out_put (uiout, raw_stdout);
2053 mi_out_rewind (uiout);
4333ada3 2054 mi_print_timing_maybe ();
c1244769 2055 fputs_unfiltered ("\n", raw_stdout);
eec01795 2056 }
eec01795
DJ
2057 else
2058 mi_out_rewind (uiout);
78f5381d
AC
2059 }
2060 break;
2061 }
fb40c209 2062 }
8d34ea23 2063
1f31650a 2064 do_cleanups (cleanup);
fb40c209
AC
2065}
2066
305aeedc
TT
2067/* Print a gdb exception to the MI output stream. */
2068
2069static void
2070mi_print_exception (const char *token, struct gdb_exception exception)
2071{
2072 fputs_unfiltered (token, raw_stdout);
2073 fputs_unfiltered ("^error,msg=\"", raw_stdout);
2074 if (exception.message == NULL)
2075 fputs_unfiltered ("unknown error", raw_stdout);
2076 else
2077 fputstr_unfiltered (exception.message, '"', raw_stdout);
2ea126fa
JB
2078 fputs_unfiltered ("\"", raw_stdout);
2079
2080 switch (exception.error)
2081 {
2082 case UNDEFINED_COMMAND_ERROR:
2083 fputs_unfiltered (",code=\"undefined-command\"", raw_stdout);
2084 break;
2085 }
2086
2087 fputs_unfiltered ("\n", raw_stdout);
305aeedc 2088}
fb40c209
AC
2089
2090void
ee047554 2091mi_execute_command (const char *cmd, int from_tty)
fb40c209 2092{
305aeedc
TT
2093 char *token;
2094 struct mi_parse *command = NULL;
fb40c209 2095
41296c92
NR
2096 /* This is to handle EOF (^D). We just quit gdb. */
2097 /* FIXME: we should call some API function here. */
fb40c209
AC
2098 if (cmd == 0)
2099 quit_force (NULL, from_tty);
2100
11334b82
VP
2101 target_log_command (cmd);
2102
492d29ea 2103 TRY
305aeedc
TT
2104 {
2105 command = mi_parse (cmd, &token);
2106 }
492d29ea 2107 CATCH (exception, RETURN_MASK_ALL)
305aeedc
TT
2108 {
2109 mi_print_exception (token, exception);
2110 xfree (token);
2111 }
492d29ea
PA
2112 END_CATCH
2113
2114 if (command != NULL)
fb40c209 2115 {
66bb093b 2116 ptid_t previous_ptid = inferior_ptid;
d8c83789 2117
305aeedc
TT
2118 command->token = token;
2119
d8c83789
NR
2120 if (do_timings)
2121 {
8d749320 2122 command->cmd_start = XNEW (struct mi_timestamp);
d8c83789
NR
2123 timestamp (command->cmd_start);
2124 }
2125
492d29ea 2126 TRY
04bd08de 2127 {
79a45e25 2128 captured_mi_execute_command (current_uiout, command);
04bd08de 2129 }
492d29ea 2130 CATCH (result, RETURN_MASK_ALL)
fb40c209 2131 {
fb40c209 2132 /* The command execution failed and error() was called
589e074d 2133 somewhere. */
305aeedc 2134 mi_print_exception (command->token, result);
79a45e25 2135 mi_out_rewind (current_uiout);
fb40c209 2136 }
492d29ea 2137 END_CATCH
a13e061a 2138
5d4e2b76
VP
2139 bpstat_do_actions ();
2140
66bb093b 2141 if (/* The notifications are only output when the top-level
c1244769 2142 interpreter (specified on the command line) is MI. */
66bb093b 2143 ui_out_is_mi_like_p (interp_ui_out (top_level_interpreter ()))
c1244769 2144 /* Don't try report anything if there are no threads --
66bb093b
VP
2145 the program is dead. */
2146 && thread_count () != 0
2147 /* -thread-select explicitly changes thread. If frontend uses that
2148 internally, we don't want to emit =thread-selected, since
2149 =thread-selected is supposed to indicate user's intentions. */
2150 && strcmp (command->command, "thread-select") != 0)
2151 {
2152 struct mi_interp *mi = top_level_interpreter_data ();
d729566a 2153 int report_change = 0;
66bb093b
VP
2154
2155 if (command->thread == -1)
2156 {
d729566a
PA
2157 report_change = (!ptid_equal (previous_ptid, null_ptid)
2158 && !ptid_equal (inferior_ptid, previous_ptid)
2159 && !ptid_equal (inferior_ptid, null_ptid));
66bb093b 2160 }
d729566a 2161 else if (!ptid_equal (inferior_ptid, null_ptid))
66bb093b 2162 {
d729566a 2163 struct thread_info *ti = inferior_thread ();
102040f0 2164
66bb093b
VP
2165 report_change = (ti->num != command->thread);
2166 }
2167
2168 if (report_change)
c1244769 2169 {
d729566a 2170 struct thread_info *ti = inferior_thread ();
102040f0 2171
66bb093b 2172 target_terminal_ours ();
c1244769 2173 fprintf_unfiltered (mi->event_channel,
66bb093b
VP
2174 "thread-selected,id=\"%d\"",
2175 ti->num);
2176 gdb_flush (mi->event_channel);
2177 }
2178 }
2179
fb40c209
AC
2180 mi_parse_free (command);
2181 }
fb40c209
AC
2182}
2183
ce8f13f8 2184static void
fb40c209
AC
2185mi_cmd_execute (struct mi_parse *parse)
2186{
f107f563 2187 struct cleanup *cleanup;
403cb6b1 2188 enum language saved_language;
e23110bb 2189
028d0ed5 2190 cleanup = prepare_execute_command ();
1b98914a 2191
a79b8f6e
VP
2192 if (parse->all && parse->thread_group != -1)
2193 error (_("Cannot specify --thread-group together with --all"));
2194
2195 if (parse->all && parse->thread != -1)
2196 error (_("Cannot specify --thread together with --all"));
2197
2198 if (parse->thread_group != -1 && parse->thread != -1)
2199 error (_("Cannot specify --thread together with --thread-group"));
2200
1e92afda
VP
2201 if (parse->frame != -1 && parse->thread == -1)
2202 error (_("Cannot specify --frame without --thread"));
dcf4fbde 2203
a79b8f6e
VP
2204 if (parse->thread_group != -1)
2205 {
2206 struct inferior *inf = find_inferior_id (parse->thread_group);
2207 struct thread_info *tp = 0;
2208
2209 if (!inf)
46ef47e5 2210 error (_("Invalid thread group for the --thread-group option"));
a79b8f6e
VP
2211
2212 set_current_inferior (inf);
2213 /* This behaviour means that if --thread-group option identifies
2b03b41d
SS
2214 an inferior with multiple threads, then a random one will be
2215 picked. This is not a problem -- frontend should always
2216 provide --thread if it wishes to operate on a specific
2217 thread. */
a79b8f6e 2218 if (inf->pid != 0)
4734f50e 2219 tp = any_live_thread_of_process (inf->pid);
a79b8f6e
VP
2220 switch_to_thread (tp ? tp->ptid : null_ptid);
2221 set_current_program_space (inf->pspace);
2222 }
2223
1e92afda
VP
2224 if (parse->thread != -1)
2225 {
2226 struct thread_info *tp = find_thread_id (parse->thread);
102040f0 2227
1e92afda
VP
2228 if (!tp)
2229 error (_("Invalid thread id: %d"), parse->thread);
dcf4fbde
PA
2230
2231 if (is_exited (tp->ptid))
2232 error (_("Thread id: %d has terminated"), parse->thread);
2233
2234 switch_to_thread (tp->ptid);
1e92afda 2235 }
dcf4fbde 2236
1e92afda
VP
2237 if (parse->frame != -1)
2238 {
2239 struct frame_info *fid;
2240 int frame = parse->frame;
102040f0 2241
1e92afda
VP
2242 fid = find_relative_frame (get_current_frame (), &frame);
2243 if (frame == 0)
2244 /* find_relative_frame was successful */
2245 select_frame (fid);
2246 else
ea069267 2247 error (_("Invalid frame id: %d"), frame);
1e92afda 2248 }
dcf4fbde 2249
403cb6b1
JB
2250 if (parse->language != language_unknown)
2251 {
2252 make_cleanup_restore_current_language ();
2253 set_language (parse->language);
2254 }
2255
a79b8f6e
VP
2256 current_context = parse;
2257
648beb2b 2258 if (parse->cmd->suppress_notification != NULL)
8d3788bd 2259 {
648beb2b
YQ
2260 make_cleanup_restore_integer (parse->cmd->suppress_notification);
2261 *parse->cmd->suppress_notification = 1;
8d3788bd
VP
2262 }
2263
9e22b03a 2264 if (parse->cmd->argv_func != NULL)
8d3788bd
VP
2265 {
2266 parse->cmd->argv_func (parse->command, parse->argv, parse->argc);
2267 }
b2af646b 2268 else if (parse->cmd->cli.cmd != 0)
fb40c209
AC
2269 {
2270 /* FIXME: DELETE THIS. */
41296c92
NR
2271 /* The operation is still implemented by a cli command. */
2272 /* Must be a synchronous one. */
b2af646b
AC
2273 mi_execute_cli_command (parse->cmd->cli.cmd, parse->cmd->cli.args_p,
2274 parse->args);
fb40c209
AC
2275 }
2276 else
2277 {
41296c92 2278 /* FIXME: DELETE THIS. */
a13e061a
PA
2279 struct ui_file *stb;
2280
2281 stb = mem_fileopen ();
2282
2283 fputs_unfiltered ("Undefined mi command: ", stb);
2284 fputstr_unfiltered (parse->command, '"', stb);
2285 fputs_unfiltered (" (missing implementation)", stb);
2286
2287 make_cleanup_ui_file_delete (stb);
2288 error_stream (stb);
fb40c209 2289 }
1b98914a 2290 do_cleanups (cleanup);
fb40c209
AC
2291}
2292
fb40c209 2293/* FIXME: This is just a hack so we can get some extra commands going.
41296c92
NR
2294 We don't want to channel things through the CLI, but call libgdb directly.
2295 Use only for synchronous commands. */
fb40c209
AC
2296
2297void
b2af646b 2298mi_execute_cli_command (const char *cmd, int args_p, const char *args)
fb40c209 2299{
b2af646b 2300 if (cmd != 0)
fb40c209
AC
2301 {
2302 struct cleanup *old_cleanups;
2303 char *run;
102040f0 2304
b2af646b 2305 if (args_p)
c6902d46 2306 run = xstrprintf ("%s %s", cmd, args);
b2af646b
AC
2307 else
2308 run = xstrdup (cmd);
fb40c209
AC
2309 if (mi_debug_p)
2310 /* FIXME: gdb_???? */
2311 fprintf_unfiltered (gdb_stdout, "cli=%s run=%s\n",
b2af646b 2312 cmd, run);
b8c9b27d 2313 old_cleanups = make_cleanup (xfree, run);
2b03b41d 2314 execute_command (run, 0 /* from_tty */ );
fb40c209
AC
2315 do_cleanups (old_cleanups);
2316 return;
2317 }
2318}
2319
ce8f13f8 2320void
9e22b03a 2321mi_execute_async_cli_command (char *cli_command, char **argv, int argc)
fb40c209
AC
2322{
2323 struct cleanup *old_cleanups;
2324 char *run;
fb40c209 2325
329ea579 2326 if (mi_async_p ())
9e22b03a 2327 run = xstrprintf ("%s %s&", cli_command, argc ? *argv : "");
fb40c209 2328 else
9e22b03a 2329 run = xstrprintf ("%s %s", cli_command, argc ? *argv : "");
c1244769 2330 old_cleanups = make_cleanup (xfree, run);
fb40c209 2331
2b03b41d 2332 execute_command (run, 0 /* from_tty */ );
fb40c209 2333
09cee04b
PA
2334 /* Do this before doing any printing. It would appear that some
2335 print code leaves garbage around in the buffer. */
2336 do_cleanups (old_cleanups);
fb40c209
AC
2337}
2338
2339void
fb40c209
AC
2340mi_load_progress (const char *section_name,
2341 unsigned long sent_so_far,
2342 unsigned long total_section,
2343 unsigned long total_sent,
2344 unsigned long grand_total)
2345{
2346 struct timeval time_now, delta, update_threshold;
2347 static struct timeval last_update;
2348 static char *previous_sect_name = NULL;
2349 int new_section;
0be75e02 2350 struct ui_out *saved_uiout;
79a45e25 2351 struct ui_out *uiout;
fb40c209 2352
0be75e02
AS
2353 /* This function is called through deprecated_show_load_progress
2354 which means uiout may not be correct. Fix it for the duration
2355 of this function. */
79a45e25 2356 saved_uiout = current_uiout;
0be75e02 2357
edff0c0a
DJ
2358 if (current_interp_named_p (INTERP_MI)
2359 || current_interp_named_p (INTERP_MI2))
79a45e25 2360 current_uiout = mi_out_new (2);
0be75e02 2361 else if (current_interp_named_p (INTERP_MI1))
79a45e25 2362 current_uiout = mi_out_new (1);
edff0c0a 2363 else if (current_interp_named_p (INTERP_MI3))
79a45e25 2364 current_uiout = mi_out_new (3);
0be75e02 2365 else
fb40c209
AC
2366 return;
2367
79a45e25
PA
2368 uiout = current_uiout;
2369
fb40c209
AC
2370 update_threshold.tv_sec = 0;
2371 update_threshold.tv_usec = 500000;
2372 gettimeofday (&time_now, NULL);
2373
2374 delta.tv_usec = time_now.tv_usec - last_update.tv_usec;
2375 delta.tv_sec = time_now.tv_sec - last_update.tv_sec;
2376
2377 if (delta.tv_usec < 0)
2378 {
2379 delta.tv_sec -= 1;
f2395593 2380 delta.tv_usec += 1000000L;
fb40c209
AC
2381 }
2382
2383 new_section = (previous_sect_name ?
2384 strcmp (previous_sect_name, section_name) : 1);
2385 if (new_section)
2386 {
6ad4a2cf 2387 struct cleanup *cleanup_tuple;
102040f0 2388
b8c9b27d 2389 xfree (previous_sect_name);
fb40c209
AC
2390 previous_sect_name = xstrdup (section_name);
2391
721c02de
VP
2392 if (current_token)
2393 fputs_unfiltered (current_token, raw_stdout);
fb40c209 2394 fputs_unfiltered ("+download", raw_stdout);
6ad4a2cf 2395 cleanup_tuple = make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
fb40c209
AC
2396 ui_out_field_string (uiout, "section", section_name);
2397 ui_out_field_int (uiout, "section-size", total_section);
2398 ui_out_field_int (uiout, "total-size", grand_total);
6ad4a2cf 2399 do_cleanups (cleanup_tuple);
fb40c209
AC
2400 mi_out_put (uiout, raw_stdout);
2401 fputs_unfiltered ("\n", raw_stdout);
2402 gdb_flush (raw_stdout);
2403 }
2404
2405 if (delta.tv_sec >= update_threshold.tv_sec &&
2406 delta.tv_usec >= update_threshold.tv_usec)
2407 {
6ad4a2cf 2408 struct cleanup *cleanup_tuple;
102040f0 2409
fb40c209
AC
2410 last_update.tv_sec = time_now.tv_sec;
2411 last_update.tv_usec = time_now.tv_usec;
721c02de
VP
2412 if (current_token)
2413 fputs_unfiltered (current_token, raw_stdout);
fb40c209 2414 fputs_unfiltered ("+download", raw_stdout);
6ad4a2cf 2415 cleanup_tuple = make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
fb40c209
AC
2416 ui_out_field_string (uiout, "section", section_name);
2417 ui_out_field_int (uiout, "section-sent", sent_so_far);
2418 ui_out_field_int (uiout, "section-size", total_section);
2419 ui_out_field_int (uiout, "total-sent", total_sent);
2420 ui_out_field_int (uiout, "total-size", grand_total);
6ad4a2cf 2421 do_cleanups (cleanup_tuple);
fb40c209
AC
2422 mi_out_put (uiout, raw_stdout);
2423 fputs_unfiltered ("\n", raw_stdout);
2424 gdb_flush (raw_stdout);
2425 }
0be75e02
AS
2426
2427 xfree (uiout);
67ba4e42 2428 current_uiout = saved_uiout;
fb40c209
AC
2429}
2430
c1244769 2431static void
d8c83789 2432timestamp (struct mi_timestamp *tv)
2b03b41d
SS
2433{
2434 gettimeofday (&tv->wallclock, NULL);
d8c83789 2435#ifdef HAVE_GETRUSAGE
2b03b41d
SS
2436 getrusage (RUSAGE_SELF, &rusage);
2437 tv->utime.tv_sec = rusage.ru_utime.tv_sec;
2438 tv->utime.tv_usec = rusage.ru_utime.tv_usec;
2439 tv->stime.tv_sec = rusage.ru_stime.tv_sec;
2440 tv->stime.tv_usec = rusage.ru_stime.tv_usec;
d8c83789 2441#else
2b03b41d
SS
2442 {
2443 long usec = get_run_time ();
a1b7d198 2444
2b03b41d
SS
2445 tv->utime.tv_sec = usec/1000000L;
2446 tv->utime.tv_usec = usec - 1000000L*tv->utime.tv_sec;
2447 tv->stime.tv_sec = 0;
2448 tv->stime.tv_usec = 0;
d8c83789 2449 }
2b03b41d
SS
2450#endif
2451}
d8c83789 2452
c1244769 2453static void
d8c83789 2454print_diff_now (struct mi_timestamp *start)
2b03b41d
SS
2455{
2456 struct mi_timestamp now;
102040f0 2457
2b03b41d
SS
2458 timestamp (&now);
2459 print_diff (start, &now);
2460}
d8c83789 2461
4333ada3
VP
2462void
2463mi_print_timing_maybe (void)
2464{
2b03b41d
SS
2465 /* If the command is -enable-timing then do_timings may be true
2466 whilst current_command_ts is not initialized. */
4333ada3
VP
2467 if (do_timings && current_command_ts)
2468 print_diff_now (current_command_ts);
2469}
2470
c1244769 2471static long
d8c83789 2472timeval_diff (struct timeval start, struct timeval end)
2b03b41d
SS
2473{
2474 return ((end.tv_sec - start.tv_sec) * 1000000L)
2475 + (end.tv_usec - start.tv_usec);
2476}
d8c83789 2477
c1244769 2478static void
d8c83789 2479print_diff (struct mi_timestamp *start, struct mi_timestamp *end)
2b03b41d
SS
2480{
2481 fprintf_unfiltered
2482 (raw_stdout,
c1244769
JB
2483 ",time={wallclock=\"%0.5f\",user=\"%0.5f\",system=\"%0.5f\"}",
2484 timeval_diff (start->wallclock, end->wallclock) / 1000000.0,
2485 timeval_diff (start->utime, end->utime) / 1000000.0,
2b03b41d
SS
2486 timeval_diff (start->stime, end->stime) / 1000000.0);
2487}
f224b49d 2488
40e1c229
VP
2489void
2490mi_cmd_trace_define_variable (char *command, char **argv, int argc)
2491{
2492 struct expression *expr;
40e1c229
VP
2493 LONGEST initval = 0;
2494 struct trace_state_variable *tsv;
2495 char *name = 0;
2496
2497 if (argc != 1 && argc != 2)
2498 error (_("Usage: -trace-define-variable VARIABLE [VALUE]"));
2499
1773c82c
HAQ
2500 name = argv[0];
2501 if (*name++ != '$')
2502 error (_("Name of trace variable should start with '$'"));
40e1c229 2503
1773c82c 2504 validate_trace_state_variable_name (name);
40e1c229
VP
2505
2506 tsv = find_trace_state_variable (name);
2507 if (!tsv)
2508 tsv = create_trace_state_variable (name);
2509
2510 if (argc == 2)
2511 initval = value_as_long (parse_and_eval (argv[1]));
2512
2513 tsv->initial_value = initval;
40e1c229
VP
2514}
2515
2516void
2517mi_cmd_trace_list_variables (char *command, char **argv, int argc)
2518{
2519 if (argc != 0)
2b03b41d 2520 error (_("-trace-list-variables: no arguments allowed"));
40e1c229
VP
2521
2522 tvariables_info_1 ();
2523}
2524
f197e0f1
VP
2525void
2526mi_cmd_trace_find (char *command, char **argv, int argc)
2527{
2528 char *mode;
2529
2530 if (argc == 0)
2531 error (_("trace selection mode is required"));
2532
2533 mode = argv[0];
2534
2535 if (strcmp (mode, "none") == 0)
2536 {
2537 tfind_1 (tfind_number, -1, 0, 0, 0);
2538 return;
2539 }
2540
cc3da688 2541 check_trace_running (current_trace_status ());
f197e0f1
VP
2542
2543 if (strcmp (mode, "frame-number") == 0)
2544 {
2545 if (argc != 2)
2546 error (_("frame number is required"));
2547 tfind_1 (tfind_number, atoi (argv[1]), 0, 0, 0);
2548 }
2549 else if (strcmp (mode, "tracepoint-number") == 0)
2550 {
2551 if (argc != 2)
2552 error (_("tracepoint number is required"));
2553 tfind_1 (tfind_tp, atoi (argv[1]), 0, 0, 0);
2554 }
2555 else if (strcmp (mode, "pc") == 0)
2556 {
2557 if (argc != 2)
2558 error (_("PC is required"));
2559 tfind_1 (tfind_pc, 0, parse_and_eval_address (argv[1]), 0, 0);
2560 }
2561 else if (strcmp (mode, "pc-inside-range") == 0)
2562 {
2563 if (argc != 3)
2564 error (_("Start and end PC are required"));
2565 tfind_1 (tfind_range, 0, parse_and_eval_address (argv[1]),
2566 parse_and_eval_address (argv[2]), 0);
2567 }
2568 else if (strcmp (mode, "pc-outside-range") == 0)
2569 {
2570 if (argc != 3)
2571 error (_("Start and end PC are required"));
2572 tfind_1 (tfind_outside, 0, parse_and_eval_address (argv[1]),
2573 parse_and_eval_address (argv[2]), 0);
2574 }
2575 else if (strcmp (mode, "line") == 0)
2576 {
2577 struct symtabs_and_lines sals;
2578 struct symtab_and_line sal;
2579 static CORE_ADDR start_pc, end_pc;
2580 struct cleanup *back_to;
2581
2582 if (argc != 2)
2583 error (_("Line is required"));
2584
39cf75f7
DE
2585 sals = decode_line_with_current_source (argv[1],
2586 DECODE_LINE_FUNFIRSTLINE);
f197e0f1
VP
2587 back_to = make_cleanup (xfree, sals.sals);
2588
2589 sal = sals.sals[0];
2590
2591 if (sal.symtab == 0)
2592 error (_("Could not find the specified line"));
2593
2594 if (sal.line > 0 && find_line_pc_range (sal, &start_pc, &end_pc))
2595 tfind_1 (tfind_range, 0, start_pc, end_pc - 1, 0);
2596 else
2597 error (_("Could not find the specified line"));
2598
2599 do_cleanups (back_to);
2600 }
2601 else
2602 error (_("Invalid mode '%s'"), mode);
2603
2604 if (has_stack_frames () || get_traceframe_number () >= 0)
08d72866 2605 print_stack_frame (get_selected_frame (NULL), 1, LOC_AND_ADDRESS, 1);
f197e0f1
VP
2606}
2607
011aacb0
VP
2608void
2609mi_cmd_trace_save (char *command, char **argv, int argc)
2610{
2611 int target_saves = 0;
d0353e76 2612 int generate_ctf = 0;
011aacb0 2613 char *filename;
d0353e76
YQ
2614 int oind = 0;
2615 char *oarg;
011aacb0 2616
d0353e76
YQ
2617 enum opt
2618 {
2619 TARGET_SAVE_OPT, CTF_OPT
2620 };
2621 static const struct mi_opt opts[] =
011aacb0 2622 {
d0353e76
YQ
2623 {"r", TARGET_SAVE_OPT, 0},
2624 {"ctf", CTF_OPT, 0},
2625 { 0, 0, 0 }
2626 };
2627
2628 while (1)
011aacb0 2629 {
d0353e76
YQ
2630 int opt = mi_getopt ("-trace-save", argc, argv, opts,
2631 &oind, &oarg);
2632
2633 if (opt < 0)
2634 break;
2635 switch ((enum opt) opt)
2636 {
2637 case TARGET_SAVE_OPT:
2638 target_saves = 1;
2639 break;
2640 case CTF_OPT:
2641 generate_ctf = 1;
2642 break;
2643 }
011aacb0 2644 }
d0353e76 2645 filename = argv[oind];
011aacb0 2646
d0353e76
YQ
2647 if (generate_ctf)
2648 trace_save_ctf (filename, target_saves);
2649 else
2650 trace_save_tfile (filename, target_saves);
011aacb0
VP
2651}
2652
f224b49d
VP
2653void
2654mi_cmd_trace_start (char *command, char **argv, int argc)
2655{
f196051f 2656 start_tracing (NULL);
f224b49d
VP
2657}
2658
2659void
2660mi_cmd_trace_status (char *command, char **argv, int argc)
2661{
2662 trace_status_mi (0);
2663}
2664
2665void
2666mi_cmd_trace_stop (char *command, char **argv, int argc)
2667{
f196051f 2668 stop_tracing (NULL);
f224b49d
VP
2669 trace_status_mi (1);
2670}
75082e8c 2671
2b03b41d 2672/* Implement the "-ada-task-info" command. */
75082e8c
JB
2673
2674void
2675mi_cmd_ada_task_info (char *command, char **argv, int argc)
2676{
2677 if (argc != 0 && argc != 1)
2678 error (_("Invalid MI command"));
2679
2680 print_ada_task_info (current_uiout, argv[0], current_inferior ());
2681}
dc673c81
YQ
2682
2683/* Print EXPRESSION according to VALUES. */
2684
2685static void
2686print_variable_or_computed (char *expression, enum print_values values)
2687{
2688 struct expression *expr;
2689 struct cleanup *old_chain;
2690 struct value *val;
2691 struct ui_file *stb;
2692 struct value_print_options opts;
2693 struct type *type;
2694 struct ui_out *uiout = current_uiout;
2695
2696 stb = mem_fileopen ();
2697 old_chain = make_cleanup_ui_file_delete (stb);
2698
2699 expr = parse_expression (expression);
2700
2701 make_cleanup (free_current_contents, &expr);
2702
2703 if (values == PRINT_SIMPLE_VALUES)
2704 val = evaluate_type (expr);
2705 else
2706 val = evaluate_expression (expr);
2707
2708 if (values != PRINT_NO_VALUES)
2709 make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
2710 ui_out_field_string (uiout, "name", expression);
2711
2712 switch (values)
2713 {
2714 case PRINT_SIMPLE_VALUES:
2715 type = check_typedef (value_type (val));
2716 type_print (value_type (val), "", stb, -1);
2717 ui_out_field_stream (uiout, "type", stb);
2718 if (TYPE_CODE (type) != TYPE_CODE_ARRAY
2719 && TYPE_CODE (type) != TYPE_CODE_STRUCT
2720 && TYPE_CODE (type) != TYPE_CODE_UNION)
2721 {
2722 struct value_print_options opts;
2723
2a998fc0 2724 get_no_prettyformat_print_options (&opts);
dc673c81
YQ
2725 opts.deref_ref = 1;
2726 common_val_print (val, stb, 0, &opts, current_language);
2727 ui_out_field_stream (uiout, "value", stb);
2728 }
2729 break;
2730 case PRINT_ALL_VALUES:
2731 {
2732 struct value_print_options opts;
2733
2a998fc0 2734 get_no_prettyformat_print_options (&opts);
dc673c81
YQ
2735 opts.deref_ref = 1;
2736 common_val_print (val, stb, 0, &opts, current_language);
2737 ui_out_field_stream (uiout, "value", stb);
2738 }
2739 break;
2740 }
2741
2742 do_cleanups (old_chain);
2743}
2744
2745/* Implement the "-trace-frame-collected" command. */
2746
2747void
2748mi_cmd_trace_frame_collected (char *command, char **argv, int argc)
2749{
2750 struct cleanup *old_chain;
2751 struct bp_location *tloc;
2752 int stepping_frame;
2753 struct collection_list *clist;
2754 struct collection_list tracepoint_list, stepping_list;
2755 struct traceframe_info *tinfo;
2756 int oind = 0;
f486487f
SM
2757 enum print_values var_print_values = PRINT_ALL_VALUES;
2758 enum print_values comp_print_values = PRINT_ALL_VALUES;
dc673c81
YQ
2759 int registers_format = 'x';
2760 int memory_contents = 0;
2761 struct ui_out *uiout = current_uiout;
2762 enum opt
2763 {
2764 VAR_PRINT_VALUES,
2765 COMP_PRINT_VALUES,
2766 REGISTERS_FORMAT,
2767 MEMORY_CONTENTS,
2768 };
2769 static const struct mi_opt opts[] =
2770 {
2771 {"-var-print-values", VAR_PRINT_VALUES, 1},
2772 {"-comp-print-values", COMP_PRINT_VALUES, 1},
2773 {"-registers-format", REGISTERS_FORMAT, 1},
2774 {"-memory-contents", MEMORY_CONTENTS, 0},
2775 { 0, 0, 0 }
2776 };
2777
2778 while (1)
2779 {
2780 char *oarg;
2781 int opt = mi_getopt ("-trace-frame-collected", argc, argv, opts,
2782 &oind, &oarg);
2783 if (opt < 0)
2784 break;
2785 switch ((enum opt) opt)
2786 {
2787 case VAR_PRINT_VALUES:
2788 var_print_values = mi_parse_print_values (oarg);
2789 break;
2790 case COMP_PRINT_VALUES:
2791 comp_print_values = mi_parse_print_values (oarg);
2792 break;
2793 case REGISTERS_FORMAT:
2794 registers_format = oarg[0];
2795 case MEMORY_CONTENTS:
2796 memory_contents = 1;
2797 break;
2798 }
2799 }
2800
2801 if (oind != argc)
2802 error (_("Usage: -trace-frame-collected "
2803 "[--var-print-values PRINT_VALUES] "
2804 "[--comp-print-values PRINT_VALUES] "
2805 "[--registers-format FORMAT]"
2806 "[--memory-contents]"));
2807
2808 /* This throws an error is not inspecting a trace frame. */
2809 tloc = get_traceframe_location (&stepping_frame);
2810
2811 /* This command only makes sense for the current frame, not the
2812 selected frame. */
2813 old_chain = make_cleanup_restore_current_thread ();
2814 select_frame (get_current_frame ());
2815
2816 encode_actions_and_make_cleanup (tloc, &tracepoint_list,
2817 &stepping_list);
2818
2819 if (stepping_frame)
2820 clist = &stepping_list;
2821 else
2822 clist = &tracepoint_list;
2823
2824 tinfo = get_traceframe_info ();
2825
2826 /* Explicitly wholly collected variables. */
2827 {
2828 struct cleanup *list_cleanup;
2829 char *p;
2830 int i;
2831
2832 list_cleanup = make_cleanup_ui_out_list_begin_end (uiout,
2833 "explicit-variables");
2834 for (i = 0; VEC_iterate (char_ptr, clist->wholly_collected, i, p); i++)
2835 print_variable_or_computed (p, var_print_values);
2836 do_cleanups (list_cleanup);
2837 }
2838
2839 /* Computed expressions. */
2840 {
2841 struct cleanup *list_cleanup;
2842 char *p;
2843 int i;
2844
2845 list_cleanup
2846 = make_cleanup_ui_out_list_begin_end (uiout,
2847 "computed-expressions");
2848 for (i = 0; VEC_iterate (char_ptr, clist->computed, i, p); i++)
2849 print_variable_or_computed (p, comp_print_values);
2850 do_cleanups (list_cleanup);
2851 }
2852
2853 /* Registers. Given pseudo-registers, and that some architectures
2854 (like MIPS) actually hide the raw registers, we don't go through
2855 the trace frame info, but instead consult the register cache for
2856 register availability. */
2857 {
2858 struct cleanup *list_cleanup;
2859 struct frame_info *frame;
2860 struct gdbarch *gdbarch;
2861 int regnum;
2862 int numregs;
2863
2864 list_cleanup = make_cleanup_ui_out_list_begin_end (uiout, "registers");
2865
2866 frame = get_selected_frame (NULL);
2867 gdbarch = get_frame_arch (frame);
2868 numregs = gdbarch_num_regs (gdbarch) + gdbarch_num_pseudo_regs (gdbarch);
2869
2870 for (regnum = 0; regnum < numregs; regnum++)
2871 {
2872 if (gdbarch_register_name (gdbarch, regnum) == NULL
2873 || *(gdbarch_register_name (gdbarch, regnum)) == '\0')
2874 continue;
2875
2876 output_register (frame, regnum, registers_format, 1);
2877 }
2878
2879 do_cleanups (list_cleanup);
2880 }
2881
2882 /* Trace state variables. */
2883 {
2884 struct cleanup *list_cleanup;
2885 int tvar;
2886 char *tsvname;
2887 int i;
2888
2889 list_cleanup = make_cleanup_ui_out_list_begin_end (uiout, "tvars");
2890
2891 tsvname = NULL;
2892 make_cleanup (free_current_contents, &tsvname);
2893
2894 for (i = 0; VEC_iterate (int, tinfo->tvars, i, tvar); i++)
2895 {
2896 struct cleanup *cleanup_child;
2897 struct trace_state_variable *tsv;
2898
2899 tsv = find_trace_state_variable_by_number (tvar);
2900
2901 cleanup_child = make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
2902
2903 if (tsv != NULL)
2904 {
2905 tsvname = xrealloc (tsvname, strlen (tsv->name) + 2);
2906 tsvname[0] = '$';
2907 strcpy (tsvname + 1, tsv->name);
2908 ui_out_field_string (uiout, "name", tsvname);
2909
2910 tsv->value_known = target_get_trace_state_variable_value (tsv->number,
2911 &tsv->value);
2912 ui_out_field_int (uiout, "current", tsv->value);
2913 }
2914 else
2915 {
2916 ui_out_field_skip (uiout, "name");
2917 ui_out_field_skip (uiout, "current");
2918 }
2919
2920 do_cleanups (cleanup_child);
2921 }
2922
2923 do_cleanups (list_cleanup);
2924 }
2925
2926 /* Memory. */
2927 {
2928 struct cleanup *list_cleanup;
2929 VEC(mem_range_s) *available_memory = NULL;
2930 struct mem_range *r;
2931 int i;
2932
2933 traceframe_available_memory (&available_memory, 0, ULONGEST_MAX);
2934 make_cleanup (VEC_cleanup(mem_range_s), &available_memory);
2935
2936 list_cleanup = make_cleanup_ui_out_list_begin_end (uiout, "memory");
2937
2938 for (i = 0; VEC_iterate (mem_range_s, available_memory, i, r); i++)
2939 {
2940 struct cleanup *cleanup_child;
2941 gdb_byte *data;
2942 struct gdbarch *gdbarch = target_gdbarch ();
2943
2944 cleanup_child = make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
2945
2946 ui_out_field_core_addr (uiout, "address", gdbarch, r->start);
2947 ui_out_field_int (uiout, "length", r->length);
2948
2949 data = xmalloc (r->length);
2950 make_cleanup (xfree, data);
2951
2952 if (memory_contents)
2953 {
2954 if (target_read_memory (r->start, data, r->length) == 0)
2955 {
2956 int m;
2957 char *data_str, *p;
2958
2959 data_str = xmalloc (r->length * 2 + 1);
2960 make_cleanup (xfree, data_str);
2961
2962 for (m = 0, p = data_str; m < r->length; ++m, p += 2)
2963 sprintf (p, "%02x", data[m]);
2964 ui_out_field_string (uiout, "contents", data_str);
2965 }
2966 else
2967 ui_out_field_skip (uiout, "contents");
2968 }
2969 do_cleanups (cleanup_child);
2970 }
2971
2972 do_cleanups (list_cleanup);
2973 }
2974
2975 do_cleanups (old_chain);
2976}
329ea579
PA
2977
2978void
2979_initialize_mi_main (void)
2980{
2981 struct cmd_list_element *c;
2982
2983 add_setshow_boolean_cmd ("mi-async", class_run,
2984 &mi_async_1, _("\
2985Set whether MI asynchronous mode is enabled."), _("\
2986Show whether MI asynchronous mode is enabled."), _("\
2987Tells GDB whether MI should be in asynchronous mode."),
2988 set_mi_async_command,
2989 show_mi_async_command,
2990 &setlist,
2991 &showlist);
2992
2993 /* Alias old "target-async" to "mi-async". */
2994 c = add_alias_cmd ("target-async", "mi-async", class_run, 0, &setlist);
2995 deprecate_cmd (c, "set mi-async");
2996 c = add_alias_cmd ("target-async", "mi-async", class_run, 0, &showlist);
2997 deprecate_cmd (c, "show mi-async");
2998}
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