]> git.proxmox.com Git - qemu.git/blob - monitor.c
Merge remote-tracking branch 'mst/tags/for_anthony' into staging
[qemu.git] / monitor.c
1 /*
2 * QEMU monitor
3 *
4 * Copyright (c) 2003-2004 Fabrice Bellard
5 *
6 * Permission is hereby granted, free of charge, to any person obtaining a copy
7 * of this software and associated documentation files (the "Software"), to deal
8 * in the Software without restriction, including without limitation the rights
9 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
10 * copies of the Software, and to permit persons to whom the Software is
11 * furnished to do so, subject to the following conditions:
12 *
13 * The above copyright notice and this permission notice shall be included in
14 * all copies or substantial portions of the Software.
15 *
16 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
17 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
18 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
19 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
20 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
21 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
22 * THE SOFTWARE.
23 */
24 #include <dirent.h>
25 #include "hw/hw.h"
26 #include "monitor/qdev.h"
27 #include "hw/usb.h"
28 #include "hw/pcmcia.h"
29 #include "hw/pc.h"
30 #include "hw/pci/pci.h"
31 #include "hw/watchdog.h"
32 #include "hw/loader.h"
33 #include "exec/gdbstub.h"
34 #include "net/net.h"
35 #include "net/slirp.h"
36 #include "char/char.h"
37 #include "ui/qemu-spice.h"
38 #include "sysemu/sysemu.h"
39 #include "monitor/monitor.h"
40 #include "monitor/readline.h"
41 #include "ui/console.h"
42 #include "sysemu/blockdev.h"
43 #include "audio/audio.h"
44 #include "disas/disas.h"
45 #include "sysemu/balloon.h"
46 #include "qemu/timer.h"
47 #include "migration/migration.h"
48 #include "sysemu/kvm.h"
49 #include "qemu/acl.h"
50 #include "tpm/tpm.h"
51 #include "qapi/qmp/qint.h"
52 #include "qapi/qmp/qfloat.h"
53 #include "qapi/qmp/qlist.h"
54 #include "qapi/qmp/qbool.h"
55 #include "qapi/qmp/qstring.h"
56 #include "qapi/qmp/qjson.h"
57 #include "qapi/qmp/json-streamer.h"
58 #include "qapi/qmp/json-parser.h"
59 #include "qemu/osdep.h"
60 #include "cpu.h"
61 #include "trace.h"
62 #include "trace/control.h"
63 #ifdef CONFIG_TRACE_SIMPLE
64 #include "trace/simple.h"
65 #endif
66 #include "ui/qemu-spice.h"
67 #include "exec/memory.h"
68 #include "qmp-commands.h"
69 #include "hmp.h"
70 #include "qemu/thread.h"
71
72 /* for pic/irq_info */
73 #if defined(TARGET_SPARC)
74 #include "hw/sun4m.h"
75 #endif
76 #include "hw/lm32_pic.h"
77
78 //#define DEBUG
79 //#define DEBUG_COMPLETION
80
81 /*
82 * Supported types:
83 *
84 * 'F' filename
85 * 'B' block device name
86 * 's' string (accept optional quote)
87 * 'O' option string of the form NAME=VALUE,...
88 * parsed according to QemuOptsList given by its name
89 * Example: 'device:O' uses qemu_device_opts.
90 * Restriction: only lists with empty desc are supported
91 * TODO lift the restriction
92 * 'i' 32 bit integer
93 * 'l' target long (32 or 64 bit)
94 * 'M' Non-negative target long (32 or 64 bit), in user mode the
95 * value is multiplied by 2^20 (think Mebibyte)
96 * 'o' octets (aka bytes)
97 * user mode accepts an optional T, t, G, g, M, m, K, k
98 * suffix, which multiplies the value by 2^40 for
99 * suffixes T and t, 2^30 for suffixes G and g, 2^20 for
100 * M and m, 2^10 for K and k
101 * 'T' double
102 * user mode accepts an optional ms, us, ns suffix,
103 * which divides the value by 1e3, 1e6, 1e9, respectively
104 * '/' optional gdb-like print format (like "/10x")
105 *
106 * '?' optional type (for all types, except '/')
107 * '.' other form of optional type (for 'i' and 'l')
108 * 'b' boolean
109 * user mode accepts "on" or "off"
110 * '-' optional parameter (eg. '-f')
111 *
112 */
113
114 typedef struct MonitorCompletionData MonitorCompletionData;
115 struct MonitorCompletionData {
116 Monitor *mon;
117 void (*user_print)(Monitor *mon, const QObject *data);
118 };
119
120 typedef struct mon_cmd_t {
121 const char *name;
122 const char *args_type;
123 const char *params;
124 const char *help;
125 void (*user_print)(Monitor *mon, const QObject *data);
126 union {
127 void (*cmd)(Monitor *mon, const QDict *qdict);
128 int (*cmd_new)(Monitor *mon, const QDict *params, QObject **ret_data);
129 int (*cmd_async)(Monitor *mon, const QDict *params,
130 MonitorCompletion *cb, void *opaque);
131 } mhandler;
132 int flags;
133 /* @sub_table is a list of 2nd level of commands. If it do not exist,
134 * mhandler should be used. If it exist, sub_table[?].mhandler should be
135 * used, and mhandler of 1st level plays the role of help function.
136 */
137 struct mon_cmd_t *sub_table;
138 } mon_cmd_t;
139
140 /* file descriptors passed via SCM_RIGHTS */
141 typedef struct mon_fd_t mon_fd_t;
142 struct mon_fd_t {
143 char *name;
144 int fd;
145 QLIST_ENTRY(mon_fd_t) next;
146 };
147
148 /* file descriptor associated with a file descriptor set */
149 typedef struct MonFdsetFd MonFdsetFd;
150 struct MonFdsetFd {
151 int fd;
152 bool removed;
153 char *opaque;
154 QLIST_ENTRY(MonFdsetFd) next;
155 };
156
157 /* file descriptor set containing fds passed via SCM_RIGHTS */
158 typedef struct MonFdset MonFdset;
159 struct MonFdset {
160 int64_t id;
161 QLIST_HEAD(, MonFdsetFd) fds;
162 QLIST_HEAD(, MonFdsetFd) dup_fds;
163 QLIST_ENTRY(MonFdset) next;
164 };
165
166 typedef struct MonitorControl {
167 QObject *id;
168 JSONMessageParser parser;
169 int command_mode;
170 } MonitorControl;
171
172 /*
173 * To prevent flooding clients, events can be throttled. The
174 * throttling is calculated globally, rather than per-Monitor
175 * instance.
176 */
177 typedef struct MonitorEventState {
178 MonitorEvent event; /* Event being tracked */
179 int64_t rate; /* Period over which to throttle. 0 to disable */
180 int64_t last; /* Time at which event was last emitted */
181 QEMUTimer *timer; /* Timer for handling delayed events */
182 QObject *data; /* Event pending delayed dispatch */
183 } MonitorEventState;
184
185 struct Monitor {
186 CharDriverState *chr;
187 int mux_out;
188 int reset_seen;
189 int flags;
190 int suspend_cnt;
191 uint8_t outbuf[1024];
192 int outbuf_index;
193 ReadLineState *rs;
194 MonitorControl *mc;
195 CPUArchState *mon_cpu;
196 BlockDriverCompletionFunc *password_completion_cb;
197 void *password_opaque;
198 QError *error;
199 QLIST_HEAD(,mon_fd_t) fds;
200 QLIST_ENTRY(Monitor) entry;
201 };
202
203 /* QMP checker flags */
204 #define QMP_ACCEPT_UNKNOWNS 1
205
206 static QLIST_HEAD(mon_list, Monitor) mon_list;
207 static QLIST_HEAD(mon_fdsets, MonFdset) mon_fdsets;
208 static int mon_refcount;
209
210 static mon_cmd_t mon_cmds[];
211 static mon_cmd_t info_cmds[];
212
213 static const mon_cmd_t qmp_cmds[];
214
215 Monitor *cur_mon;
216 Monitor *default_mon;
217
218 static void monitor_command_cb(Monitor *mon, const char *cmdline,
219 void *opaque);
220
221 static inline int qmp_cmd_mode(const Monitor *mon)
222 {
223 return (mon->mc ? mon->mc->command_mode : 0);
224 }
225
226 /* Return true if in control mode, false otherwise */
227 static inline int monitor_ctrl_mode(const Monitor *mon)
228 {
229 return (mon->flags & MONITOR_USE_CONTROL);
230 }
231
232 /* Return non-zero iff we have a current monitor, and it is in QMP mode. */
233 int monitor_cur_is_qmp(void)
234 {
235 return cur_mon && monitor_ctrl_mode(cur_mon);
236 }
237
238 void monitor_read_command(Monitor *mon, int show_prompt)
239 {
240 if (!mon->rs)
241 return;
242
243 readline_start(mon->rs, "(qemu) ", 0, monitor_command_cb, NULL);
244 if (show_prompt)
245 readline_show_prompt(mon->rs);
246 }
247
248 int monitor_read_password(Monitor *mon, ReadLineFunc *readline_func,
249 void *opaque)
250 {
251 if (monitor_ctrl_mode(mon)) {
252 qerror_report(QERR_MISSING_PARAMETER, "password");
253 return -EINVAL;
254 } else if (mon->rs) {
255 readline_start(mon->rs, "Password: ", 1, readline_func, opaque);
256 /* prompt is printed on return from the command handler */
257 return 0;
258 } else {
259 monitor_printf(mon, "terminal does not support password prompting\n");
260 return -ENOTTY;
261 }
262 }
263
264 static gboolean monitor_unblocked(GIOChannel *chan, GIOCondition cond,
265 void *opaque)
266 {
267 monitor_flush(opaque);
268 return FALSE;
269 }
270
271 void monitor_flush(Monitor *mon)
272 {
273 int rc;
274
275 if (mon && mon->outbuf_index != 0 && !mon->mux_out) {
276 rc = qemu_chr_fe_write(mon->chr, mon->outbuf, mon->outbuf_index);
277 if (rc == mon->outbuf_index) {
278 /* all flushed */
279 mon->outbuf_index = 0;
280 return;
281 }
282 if (rc > 0) {
283 /* partinal write */
284 memmove(mon->outbuf, mon->outbuf + rc, mon->outbuf_index - rc);
285 mon->outbuf_index -= rc;
286 }
287 qemu_chr_fe_add_watch(mon->chr, G_IO_OUT, monitor_unblocked, mon);
288 }
289 }
290
291 /* flush at every end of line or if the buffer is full */
292 static void monitor_puts(Monitor *mon, const char *str)
293 {
294 char c;
295
296 for(;;) {
297 assert(mon->outbuf_index < sizeof(mon->outbuf) - 1);
298 c = *str++;
299 if (c == '\0')
300 break;
301 if (c == '\n')
302 mon->outbuf[mon->outbuf_index++] = '\r';
303 mon->outbuf[mon->outbuf_index++] = c;
304 if (mon->outbuf_index >= (sizeof(mon->outbuf) - 1)
305 || c == '\n')
306 monitor_flush(mon);
307 }
308 }
309
310 void monitor_vprintf(Monitor *mon, const char *fmt, va_list ap)
311 {
312 char buf[4096];
313
314 if (!mon)
315 return;
316
317 if (monitor_ctrl_mode(mon)) {
318 return;
319 }
320
321 vsnprintf(buf, sizeof(buf), fmt, ap);
322 monitor_puts(mon, buf);
323 }
324
325 void monitor_printf(Monitor *mon, const char *fmt, ...)
326 {
327 va_list ap;
328 va_start(ap, fmt);
329 monitor_vprintf(mon, fmt, ap);
330 va_end(ap);
331 }
332
333 void monitor_print_filename(Monitor *mon, const char *filename)
334 {
335 int i;
336
337 for (i = 0; filename[i]; i++) {
338 switch (filename[i]) {
339 case ' ':
340 case '"':
341 case '\\':
342 monitor_printf(mon, "\\%c", filename[i]);
343 break;
344 case '\t':
345 monitor_printf(mon, "\\t");
346 break;
347 case '\r':
348 monitor_printf(mon, "\\r");
349 break;
350 case '\n':
351 monitor_printf(mon, "\\n");
352 break;
353 default:
354 monitor_printf(mon, "%c", filename[i]);
355 break;
356 }
357 }
358 }
359
360 static int GCC_FMT_ATTR(2, 3) monitor_fprintf(FILE *stream,
361 const char *fmt, ...)
362 {
363 va_list ap;
364 va_start(ap, fmt);
365 monitor_vprintf((Monitor *)stream, fmt, ap);
366 va_end(ap);
367 return 0;
368 }
369
370 static void monitor_user_noop(Monitor *mon, const QObject *data) { }
371
372 static inline int handler_is_qobject(const mon_cmd_t *cmd)
373 {
374 return cmd->user_print != NULL;
375 }
376
377 static inline bool handler_is_async(const mon_cmd_t *cmd)
378 {
379 return cmd->flags & MONITOR_CMD_ASYNC;
380 }
381
382 static inline int monitor_has_error(const Monitor *mon)
383 {
384 return mon->error != NULL;
385 }
386
387 static void monitor_json_emitter(Monitor *mon, const QObject *data)
388 {
389 QString *json;
390
391 json = mon->flags & MONITOR_USE_PRETTY ? qobject_to_json_pretty(data) :
392 qobject_to_json(data);
393 assert(json != NULL);
394
395 qstring_append_chr(json, '\n');
396 monitor_puts(mon, qstring_get_str(json));
397
398 QDECREF(json);
399 }
400
401 static QDict *build_qmp_error_dict(const QError *err)
402 {
403 QObject *obj;
404
405 obj = qobject_from_jsonf("{ 'error': { 'class': %s, 'desc': %p } }",
406 ErrorClass_lookup[err->err_class],
407 qerror_human(err));
408
409 return qobject_to_qdict(obj);
410 }
411
412 static void monitor_protocol_emitter(Monitor *mon, QObject *data)
413 {
414 QDict *qmp;
415
416 trace_monitor_protocol_emitter(mon);
417
418 if (!monitor_has_error(mon)) {
419 /* success response */
420 qmp = qdict_new();
421 if (data) {
422 qobject_incref(data);
423 qdict_put_obj(qmp, "return", data);
424 } else {
425 /* return an empty QDict by default */
426 qdict_put(qmp, "return", qdict_new());
427 }
428 } else {
429 /* error response */
430 qmp = build_qmp_error_dict(mon->error);
431 QDECREF(mon->error);
432 mon->error = NULL;
433 }
434
435 if (mon->mc->id) {
436 qdict_put_obj(qmp, "id", mon->mc->id);
437 mon->mc->id = NULL;
438 }
439
440 monitor_json_emitter(mon, QOBJECT(qmp));
441 QDECREF(qmp);
442 }
443
444 static void timestamp_put(QDict *qdict)
445 {
446 int err;
447 QObject *obj;
448 qemu_timeval tv;
449
450 err = qemu_gettimeofday(&tv);
451 if (err < 0)
452 return;
453
454 obj = qobject_from_jsonf("{ 'seconds': %" PRId64 ", "
455 "'microseconds': %" PRId64 " }",
456 (int64_t) tv.tv_sec, (int64_t) tv.tv_usec);
457 qdict_put_obj(qdict, "timestamp", obj);
458 }
459
460
461 static const char *monitor_event_names[] = {
462 [QEVENT_SHUTDOWN] = "SHUTDOWN",
463 [QEVENT_RESET] = "RESET",
464 [QEVENT_POWERDOWN] = "POWERDOWN",
465 [QEVENT_STOP] = "STOP",
466 [QEVENT_RESUME] = "RESUME",
467 [QEVENT_VNC_CONNECTED] = "VNC_CONNECTED",
468 [QEVENT_VNC_INITIALIZED] = "VNC_INITIALIZED",
469 [QEVENT_VNC_DISCONNECTED] = "VNC_DISCONNECTED",
470 [QEVENT_BLOCK_IO_ERROR] = "BLOCK_IO_ERROR",
471 [QEVENT_RTC_CHANGE] = "RTC_CHANGE",
472 [QEVENT_WATCHDOG] = "WATCHDOG",
473 [QEVENT_SPICE_CONNECTED] = "SPICE_CONNECTED",
474 [QEVENT_SPICE_INITIALIZED] = "SPICE_INITIALIZED",
475 [QEVENT_SPICE_DISCONNECTED] = "SPICE_DISCONNECTED",
476 [QEVENT_BLOCK_JOB_COMPLETED] = "BLOCK_JOB_COMPLETED",
477 [QEVENT_BLOCK_JOB_CANCELLED] = "BLOCK_JOB_CANCELLED",
478 [QEVENT_BLOCK_JOB_ERROR] = "BLOCK_JOB_ERROR",
479 [QEVENT_BLOCK_JOB_READY] = "BLOCK_JOB_READY",
480 [QEVENT_DEVICE_DELETED] = "DEVICE_DELETED",
481 [QEVENT_DEVICE_TRAY_MOVED] = "DEVICE_TRAY_MOVED",
482 [QEVENT_SUSPEND] = "SUSPEND",
483 [QEVENT_SUSPEND_DISK] = "SUSPEND_DISK",
484 [QEVENT_WAKEUP] = "WAKEUP",
485 [QEVENT_BALLOON_CHANGE] = "BALLOON_CHANGE",
486 [QEVENT_SPICE_MIGRATE_COMPLETED] = "SPICE_MIGRATE_COMPLETED",
487 };
488 QEMU_BUILD_BUG_ON(ARRAY_SIZE(monitor_event_names) != QEVENT_MAX)
489
490 MonitorEventState monitor_event_state[QEVENT_MAX];
491 QemuMutex monitor_event_state_lock;
492
493 /*
494 * Emits the event to every monitor instance
495 */
496 static void
497 monitor_protocol_event_emit(MonitorEvent event,
498 QObject *data)
499 {
500 Monitor *mon;
501
502 trace_monitor_protocol_event_emit(event, data);
503 QLIST_FOREACH(mon, &mon_list, entry) {
504 if (monitor_ctrl_mode(mon) && qmp_cmd_mode(mon)) {
505 monitor_json_emitter(mon, data);
506 }
507 }
508 }
509
510
511 /*
512 * Queue a new event for emission to Monitor instances,
513 * applying any rate limiting if required.
514 */
515 static void
516 monitor_protocol_event_queue(MonitorEvent event,
517 QObject *data)
518 {
519 MonitorEventState *evstate;
520 int64_t now = qemu_get_clock_ns(rt_clock);
521 assert(event < QEVENT_MAX);
522
523 qemu_mutex_lock(&monitor_event_state_lock);
524 evstate = &(monitor_event_state[event]);
525 trace_monitor_protocol_event_queue(event,
526 data,
527 evstate->rate,
528 evstate->last,
529 now);
530
531 /* Rate limit of 0 indicates no throttling */
532 if (!evstate->rate) {
533 monitor_protocol_event_emit(event, data);
534 evstate->last = now;
535 } else {
536 int64_t delta = now - evstate->last;
537 if (evstate->data ||
538 delta < evstate->rate) {
539 /* If there's an existing event pending, replace
540 * it with the new event, otherwise schedule a
541 * timer for delayed emission
542 */
543 if (evstate->data) {
544 qobject_decref(evstate->data);
545 } else {
546 int64_t then = evstate->last + evstate->rate;
547 qemu_mod_timer_ns(evstate->timer, then);
548 }
549 evstate->data = data;
550 qobject_incref(evstate->data);
551 } else {
552 monitor_protocol_event_emit(event, data);
553 evstate->last = now;
554 }
555 }
556 qemu_mutex_unlock(&monitor_event_state_lock);
557 }
558
559
560 /*
561 * The callback invoked by QemuTimer when a delayed
562 * event is ready to be emitted
563 */
564 static void monitor_protocol_event_handler(void *opaque)
565 {
566 MonitorEventState *evstate = opaque;
567 int64_t now = qemu_get_clock_ns(rt_clock);
568
569 qemu_mutex_lock(&monitor_event_state_lock);
570
571 trace_monitor_protocol_event_handler(evstate->event,
572 evstate->data,
573 evstate->last,
574 now);
575 if (evstate->data) {
576 monitor_protocol_event_emit(evstate->event, evstate->data);
577 qobject_decref(evstate->data);
578 evstate->data = NULL;
579 }
580 evstate->last = now;
581 qemu_mutex_unlock(&monitor_event_state_lock);
582 }
583
584
585 /*
586 * @event: the event ID to be limited
587 * @rate: the rate limit in milliseconds
588 *
589 * Sets a rate limit on a particular event, so no
590 * more than 1 event will be emitted within @rate
591 * milliseconds
592 */
593 static void
594 monitor_protocol_event_throttle(MonitorEvent event,
595 int64_t rate)
596 {
597 MonitorEventState *evstate;
598 assert(event < QEVENT_MAX);
599
600 evstate = &(monitor_event_state[event]);
601
602 trace_monitor_protocol_event_throttle(event, rate);
603 evstate->event = event;
604 evstate->rate = rate * SCALE_MS;
605 evstate->timer = qemu_new_timer(rt_clock,
606 SCALE_MS,
607 monitor_protocol_event_handler,
608 evstate);
609 evstate->last = 0;
610 evstate->data = NULL;
611 }
612
613
614 /* Global, one-time initializer to configure the rate limiting
615 * and initialize state */
616 static void monitor_protocol_event_init(void)
617 {
618 qemu_mutex_init(&monitor_event_state_lock);
619 /* Limit RTC & BALLOON events to 1 per second */
620 monitor_protocol_event_throttle(QEVENT_RTC_CHANGE, 1000);
621 monitor_protocol_event_throttle(QEVENT_BALLOON_CHANGE, 1000);
622 monitor_protocol_event_throttle(QEVENT_WATCHDOG, 1000);
623 }
624
625 /**
626 * monitor_protocol_event(): Generate a Monitor event
627 *
628 * Event-specific data can be emitted through the (optional) 'data' parameter.
629 */
630 void monitor_protocol_event(MonitorEvent event, QObject *data)
631 {
632 QDict *qmp;
633 const char *event_name;
634
635 assert(event < QEVENT_MAX);
636
637 event_name = monitor_event_names[event];
638 assert(event_name != NULL);
639
640 qmp = qdict_new();
641 timestamp_put(qmp);
642 qdict_put(qmp, "event", qstring_from_str(event_name));
643 if (data) {
644 qobject_incref(data);
645 qdict_put_obj(qmp, "data", data);
646 }
647
648 trace_monitor_protocol_event(event, event_name, qmp);
649 monitor_protocol_event_queue(event, QOBJECT(qmp));
650 QDECREF(qmp);
651 }
652
653 static int do_qmp_capabilities(Monitor *mon, const QDict *params,
654 QObject **ret_data)
655 {
656 /* Will setup QMP capabilities in the future */
657 if (monitor_ctrl_mode(mon)) {
658 mon->mc->command_mode = 1;
659 }
660
661 return 0;
662 }
663
664 static void handle_user_command(Monitor *mon, const char *cmdline);
665
666 char *qmp_human_monitor_command(const char *command_line, bool has_cpu_index,
667 int64_t cpu_index, Error **errp)
668 {
669 char *output = NULL;
670 Monitor *old_mon, hmp;
671 CharDriverState mchar;
672
673 memset(&hmp, 0, sizeof(hmp));
674 qemu_chr_init_mem(&mchar);
675 hmp.chr = &mchar;
676
677 old_mon = cur_mon;
678 cur_mon = &hmp;
679
680 if (has_cpu_index) {
681 int ret = monitor_set_cpu(cpu_index);
682 if (ret < 0) {
683 cur_mon = old_mon;
684 error_set(errp, QERR_INVALID_PARAMETER_VALUE, "cpu-index",
685 "a CPU number");
686 goto out;
687 }
688 }
689
690 handle_user_command(&hmp, command_line);
691 cur_mon = old_mon;
692
693 if (qemu_chr_mem_osize(hmp.chr) > 0) {
694 QString *str = qemu_chr_mem_to_qs(hmp.chr);
695 output = g_strdup(qstring_get_str(str));
696 QDECREF(str);
697 } else {
698 output = g_strdup("");
699 }
700
701 out:
702 qemu_chr_close_mem(hmp.chr);
703 return output;
704 }
705
706 static int compare_cmd(const char *name, const char *list)
707 {
708 const char *p, *pstart;
709 int len;
710 len = strlen(name);
711 p = list;
712 for(;;) {
713 pstart = p;
714 p = strchr(p, '|');
715 if (!p)
716 p = pstart + strlen(pstart);
717 if ((p - pstart) == len && !memcmp(pstart, name, len))
718 return 1;
719 if (*p == '\0')
720 break;
721 p++;
722 }
723 return 0;
724 }
725
726 static void help_cmd_dump(Monitor *mon, const mon_cmd_t *cmds,
727 const char *prefix, const char *name)
728 {
729 const mon_cmd_t *cmd;
730
731 for(cmd = cmds; cmd->name != NULL; cmd++) {
732 if (!name || !strcmp(name, cmd->name))
733 monitor_printf(mon, "%s%s %s -- %s\n", prefix, cmd->name,
734 cmd->params, cmd->help);
735 }
736 }
737
738 static void help_cmd(Monitor *mon, const char *name)
739 {
740 if (name && !strcmp(name, "info")) {
741 help_cmd_dump(mon, info_cmds, "info ", NULL);
742 } else {
743 help_cmd_dump(mon, mon_cmds, "", name);
744 if (name && !strcmp(name, "log")) {
745 const QEMULogItem *item;
746 monitor_printf(mon, "Log items (comma separated):\n");
747 monitor_printf(mon, "%-10s %s\n", "none", "remove all logs");
748 for (item = qemu_log_items; item->mask != 0; item++) {
749 monitor_printf(mon, "%-10s %s\n", item->name, item->help);
750 }
751 }
752 }
753 }
754
755 static void do_help_cmd(Monitor *mon, const QDict *qdict)
756 {
757 help_cmd(mon, qdict_get_try_str(qdict, "name"));
758 }
759
760 static void do_trace_event_set_state(Monitor *mon, const QDict *qdict)
761 {
762 const char *tp_name = qdict_get_str(qdict, "name");
763 bool new_state = qdict_get_bool(qdict, "option");
764 int ret = trace_event_set_state(tp_name, new_state);
765
766 if (!ret) {
767 monitor_printf(mon, "unknown event name \"%s\"\n", tp_name);
768 }
769 }
770
771 #ifdef CONFIG_TRACE_SIMPLE
772 static void do_trace_file(Monitor *mon, const QDict *qdict)
773 {
774 const char *op = qdict_get_try_str(qdict, "op");
775 const char *arg = qdict_get_try_str(qdict, "arg");
776
777 if (!op) {
778 st_print_trace_file_status((FILE *)mon, &monitor_fprintf);
779 } else if (!strcmp(op, "on")) {
780 st_set_trace_file_enabled(true);
781 } else if (!strcmp(op, "off")) {
782 st_set_trace_file_enabled(false);
783 } else if (!strcmp(op, "flush")) {
784 st_flush_trace_buffer();
785 } else if (!strcmp(op, "set")) {
786 if (arg) {
787 st_set_trace_file(arg);
788 }
789 } else {
790 monitor_printf(mon, "unexpected argument \"%s\"\n", op);
791 help_cmd(mon, "trace-file");
792 }
793 }
794 #endif
795
796 static void user_monitor_complete(void *opaque, QObject *ret_data)
797 {
798 MonitorCompletionData *data = (MonitorCompletionData *)opaque;
799
800 if (ret_data) {
801 data->user_print(data->mon, ret_data);
802 }
803 monitor_resume(data->mon);
804 g_free(data);
805 }
806
807 static void qmp_monitor_complete(void *opaque, QObject *ret_data)
808 {
809 monitor_protocol_emitter(opaque, ret_data);
810 }
811
812 static int qmp_async_cmd_handler(Monitor *mon, const mon_cmd_t *cmd,
813 const QDict *params)
814 {
815 return cmd->mhandler.cmd_async(mon, params, qmp_monitor_complete, mon);
816 }
817
818 static void user_async_cmd_handler(Monitor *mon, const mon_cmd_t *cmd,
819 const QDict *params)
820 {
821 int ret;
822
823 MonitorCompletionData *cb_data = g_malloc(sizeof(*cb_data));
824 cb_data->mon = mon;
825 cb_data->user_print = cmd->user_print;
826 monitor_suspend(mon);
827 ret = cmd->mhandler.cmd_async(mon, params,
828 user_monitor_complete, cb_data);
829 if (ret < 0) {
830 monitor_resume(mon);
831 g_free(cb_data);
832 }
833 }
834
835 static void do_info_help(Monitor *mon, const QDict *qdict)
836 {
837 help_cmd(mon, "info");
838 }
839
840 CommandInfoList *qmp_query_commands(Error **errp)
841 {
842 CommandInfoList *info, *cmd_list = NULL;
843 const mon_cmd_t *cmd;
844
845 for (cmd = qmp_cmds; cmd->name != NULL; cmd++) {
846 info = g_malloc0(sizeof(*info));
847 info->value = g_malloc0(sizeof(*info->value));
848 info->value->name = g_strdup(cmd->name);
849
850 info->next = cmd_list;
851 cmd_list = info;
852 }
853
854 return cmd_list;
855 }
856
857 EventInfoList *qmp_query_events(Error **errp)
858 {
859 EventInfoList *info, *ev_list = NULL;
860 MonitorEvent e;
861
862 for (e = 0 ; e < QEVENT_MAX ; e++) {
863 const char *event_name = monitor_event_names[e];
864 assert(event_name != NULL);
865 info = g_malloc0(sizeof(*info));
866 info->value = g_malloc0(sizeof(*info->value));
867 info->value->name = g_strdup(event_name);
868
869 info->next = ev_list;
870 ev_list = info;
871 }
872
873 return ev_list;
874 }
875
876 /* set the current CPU defined by the user */
877 int monitor_set_cpu(int cpu_index)
878 {
879 CPUState *cpu;
880
881 cpu = qemu_get_cpu(cpu_index);
882 if (cpu == NULL) {
883 return -1;
884 }
885 cur_mon->mon_cpu = cpu->env_ptr;
886 return 0;
887 }
888
889 static CPUArchState *mon_get_cpu(void)
890 {
891 if (!cur_mon->mon_cpu) {
892 monitor_set_cpu(0);
893 }
894 cpu_synchronize_state(cur_mon->mon_cpu);
895 return cur_mon->mon_cpu;
896 }
897
898 int monitor_get_cpu_index(void)
899 {
900 CPUState *cpu = ENV_GET_CPU(mon_get_cpu());
901 return cpu->cpu_index;
902 }
903
904 static void do_info_registers(Monitor *mon, const QDict *qdict)
905 {
906 CPUArchState *env;
907 env = mon_get_cpu();
908 cpu_dump_state(env, (FILE *)mon, monitor_fprintf, CPU_DUMP_FPU);
909 }
910
911 static void do_info_jit(Monitor *mon, const QDict *qdict)
912 {
913 dump_exec_info((FILE *)mon, monitor_fprintf);
914 }
915
916 static void do_info_history(Monitor *mon, const QDict *qdict)
917 {
918 int i;
919 const char *str;
920
921 if (!mon->rs)
922 return;
923 i = 0;
924 for(;;) {
925 str = readline_get_history(mon->rs, i);
926 if (!str)
927 break;
928 monitor_printf(mon, "%d: '%s'\n", i, str);
929 i++;
930 }
931 }
932
933 #if defined(TARGET_PPC)
934 /* XXX: not implemented in other targets */
935 static void do_info_cpu_stats(Monitor *mon, const QDict *qdict)
936 {
937 CPUArchState *env;
938
939 env = mon_get_cpu();
940 cpu_dump_statistics(env, (FILE *)mon, &monitor_fprintf, 0);
941 }
942 #endif
943
944 static void do_trace_print_events(Monitor *mon, const QDict *qdict)
945 {
946 trace_print_events((FILE *)mon, &monitor_fprintf);
947 }
948
949 static int client_migrate_info(Monitor *mon, const QDict *qdict,
950 MonitorCompletion cb, void *opaque)
951 {
952 const char *protocol = qdict_get_str(qdict, "protocol");
953 const char *hostname = qdict_get_str(qdict, "hostname");
954 const char *subject = qdict_get_try_str(qdict, "cert-subject");
955 int port = qdict_get_try_int(qdict, "port", -1);
956 int tls_port = qdict_get_try_int(qdict, "tls-port", -1);
957 int ret;
958
959 if (strcmp(protocol, "spice") == 0) {
960 if (!using_spice) {
961 qerror_report(QERR_DEVICE_NOT_ACTIVE, "spice");
962 return -1;
963 }
964
965 if (port == -1 && tls_port == -1) {
966 qerror_report(QERR_MISSING_PARAMETER, "port/tls-port");
967 return -1;
968 }
969
970 ret = qemu_spice_migrate_info(hostname, port, tls_port, subject,
971 cb, opaque);
972 if (ret != 0) {
973 qerror_report(QERR_UNDEFINED_ERROR);
974 return -1;
975 }
976 return 0;
977 }
978
979 qerror_report(QERR_INVALID_PARAMETER, "protocol");
980 return -1;
981 }
982
983 static void do_logfile(Monitor *mon, const QDict *qdict)
984 {
985 qemu_set_log_filename(qdict_get_str(qdict, "filename"));
986 }
987
988 static void do_log(Monitor *mon, const QDict *qdict)
989 {
990 int mask;
991 const char *items = qdict_get_str(qdict, "items");
992
993 if (!strcmp(items, "none")) {
994 mask = 0;
995 } else {
996 mask = qemu_str_to_log_mask(items);
997 if (!mask) {
998 help_cmd(mon, "log");
999 return;
1000 }
1001 }
1002 qemu_set_log(mask);
1003 }
1004
1005 static void do_singlestep(Monitor *mon, const QDict *qdict)
1006 {
1007 const char *option = qdict_get_try_str(qdict, "option");
1008 if (!option || !strcmp(option, "on")) {
1009 singlestep = 1;
1010 } else if (!strcmp(option, "off")) {
1011 singlestep = 0;
1012 } else {
1013 monitor_printf(mon, "unexpected option %s\n", option);
1014 }
1015 }
1016
1017 static void do_gdbserver(Monitor *mon, const QDict *qdict)
1018 {
1019 const char *device = qdict_get_try_str(qdict, "device");
1020 if (!device)
1021 device = "tcp::" DEFAULT_GDBSTUB_PORT;
1022 if (gdbserver_start(device) < 0) {
1023 monitor_printf(mon, "Could not open gdbserver on device '%s'\n",
1024 device);
1025 } else if (strcmp(device, "none") == 0) {
1026 monitor_printf(mon, "Disabled gdbserver\n");
1027 } else {
1028 monitor_printf(mon, "Waiting for gdb connection on device '%s'\n",
1029 device);
1030 }
1031 }
1032
1033 static void do_watchdog_action(Monitor *mon, const QDict *qdict)
1034 {
1035 const char *action = qdict_get_str(qdict, "action");
1036 if (select_watchdog_action(action) == -1) {
1037 monitor_printf(mon, "Unknown watchdog action '%s'\n", action);
1038 }
1039 }
1040
1041 static void monitor_printc(Monitor *mon, int c)
1042 {
1043 monitor_printf(mon, "'");
1044 switch(c) {
1045 case '\'':
1046 monitor_printf(mon, "\\'");
1047 break;
1048 case '\\':
1049 monitor_printf(mon, "\\\\");
1050 break;
1051 case '\n':
1052 monitor_printf(mon, "\\n");
1053 break;
1054 case '\r':
1055 monitor_printf(mon, "\\r");
1056 break;
1057 default:
1058 if (c >= 32 && c <= 126) {
1059 monitor_printf(mon, "%c", c);
1060 } else {
1061 monitor_printf(mon, "\\x%02x", c);
1062 }
1063 break;
1064 }
1065 monitor_printf(mon, "'");
1066 }
1067
1068 static void memory_dump(Monitor *mon, int count, int format, int wsize,
1069 hwaddr addr, int is_physical)
1070 {
1071 CPUArchState *env;
1072 int l, line_size, i, max_digits, len;
1073 uint8_t buf[16];
1074 uint64_t v;
1075
1076 if (format == 'i') {
1077 int flags;
1078 flags = 0;
1079 env = mon_get_cpu();
1080 #ifdef TARGET_I386
1081 if (wsize == 2) {
1082 flags = 1;
1083 } else if (wsize == 4) {
1084 flags = 0;
1085 } else {
1086 /* as default we use the current CS size */
1087 flags = 0;
1088 if (env) {
1089 #ifdef TARGET_X86_64
1090 if ((env->efer & MSR_EFER_LMA) &&
1091 (env->segs[R_CS].flags & DESC_L_MASK))
1092 flags = 2;
1093 else
1094 #endif
1095 if (!(env->segs[R_CS].flags & DESC_B_MASK))
1096 flags = 1;
1097 }
1098 }
1099 #endif
1100 monitor_disas(mon, env, addr, count, is_physical, flags);
1101 return;
1102 }
1103
1104 len = wsize * count;
1105 if (wsize == 1)
1106 line_size = 8;
1107 else
1108 line_size = 16;
1109 max_digits = 0;
1110
1111 switch(format) {
1112 case 'o':
1113 max_digits = (wsize * 8 + 2) / 3;
1114 break;
1115 default:
1116 case 'x':
1117 max_digits = (wsize * 8) / 4;
1118 break;
1119 case 'u':
1120 case 'd':
1121 max_digits = (wsize * 8 * 10 + 32) / 33;
1122 break;
1123 case 'c':
1124 wsize = 1;
1125 break;
1126 }
1127
1128 while (len > 0) {
1129 if (is_physical)
1130 monitor_printf(mon, TARGET_FMT_plx ":", addr);
1131 else
1132 monitor_printf(mon, TARGET_FMT_lx ":", (target_ulong)addr);
1133 l = len;
1134 if (l > line_size)
1135 l = line_size;
1136 if (is_physical) {
1137 cpu_physical_memory_read(addr, buf, l);
1138 } else {
1139 env = mon_get_cpu();
1140 if (cpu_memory_rw_debug(env, addr, buf, l, 0) < 0) {
1141 monitor_printf(mon, " Cannot access memory\n");
1142 break;
1143 }
1144 }
1145 i = 0;
1146 while (i < l) {
1147 switch(wsize) {
1148 default:
1149 case 1:
1150 v = ldub_raw(buf + i);
1151 break;
1152 case 2:
1153 v = lduw_raw(buf + i);
1154 break;
1155 case 4:
1156 v = (uint32_t)ldl_raw(buf + i);
1157 break;
1158 case 8:
1159 v = ldq_raw(buf + i);
1160 break;
1161 }
1162 monitor_printf(mon, " ");
1163 switch(format) {
1164 case 'o':
1165 monitor_printf(mon, "%#*" PRIo64, max_digits, v);
1166 break;
1167 case 'x':
1168 monitor_printf(mon, "0x%0*" PRIx64, max_digits, v);
1169 break;
1170 case 'u':
1171 monitor_printf(mon, "%*" PRIu64, max_digits, v);
1172 break;
1173 case 'd':
1174 monitor_printf(mon, "%*" PRId64, max_digits, v);
1175 break;
1176 case 'c':
1177 monitor_printc(mon, v);
1178 break;
1179 }
1180 i += wsize;
1181 }
1182 monitor_printf(mon, "\n");
1183 addr += l;
1184 len -= l;
1185 }
1186 }
1187
1188 static void do_memory_dump(Monitor *mon, const QDict *qdict)
1189 {
1190 int count = qdict_get_int(qdict, "count");
1191 int format = qdict_get_int(qdict, "format");
1192 int size = qdict_get_int(qdict, "size");
1193 target_long addr = qdict_get_int(qdict, "addr");
1194
1195 memory_dump(mon, count, format, size, addr, 0);
1196 }
1197
1198 static void do_physical_memory_dump(Monitor *mon, const QDict *qdict)
1199 {
1200 int count = qdict_get_int(qdict, "count");
1201 int format = qdict_get_int(qdict, "format");
1202 int size = qdict_get_int(qdict, "size");
1203 hwaddr addr = qdict_get_int(qdict, "addr");
1204
1205 memory_dump(mon, count, format, size, addr, 1);
1206 }
1207
1208 static void do_print(Monitor *mon, const QDict *qdict)
1209 {
1210 int format = qdict_get_int(qdict, "format");
1211 hwaddr val = qdict_get_int(qdict, "val");
1212
1213 switch(format) {
1214 case 'o':
1215 monitor_printf(mon, "%#" HWADDR_PRIo, val);
1216 break;
1217 case 'x':
1218 monitor_printf(mon, "%#" HWADDR_PRIx, val);
1219 break;
1220 case 'u':
1221 monitor_printf(mon, "%" HWADDR_PRIu, val);
1222 break;
1223 default:
1224 case 'd':
1225 monitor_printf(mon, "%" HWADDR_PRId, val);
1226 break;
1227 case 'c':
1228 monitor_printc(mon, val);
1229 break;
1230 }
1231 monitor_printf(mon, "\n");
1232 }
1233
1234 static void do_sum(Monitor *mon, const QDict *qdict)
1235 {
1236 uint32_t addr;
1237 uint16_t sum;
1238 uint32_t start = qdict_get_int(qdict, "start");
1239 uint32_t size = qdict_get_int(qdict, "size");
1240
1241 sum = 0;
1242 for(addr = start; addr < (start + size); addr++) {
1243 uint8_t val = ldub_phys(addr);
1244 /* BSD sum algorithm ('sum' Unix command) */
1245 sum = (sum >> 1) | (sum << 15);
1246 sum += val;
1247 }
1248 monitor_printf(mon, "%05d\n", sum);
1249 }
1250
1251 static int mouse_button_state;
1252
1253 static void do_mouse_move(Monitor *mon, const QDict *qdict)
1254 {
1255 int dx, dy, dz;
1256 const char *dx_str = qdict_get_str(qdict, "dx_str");
1257 const char *dy_str = qdict_get_str(qdict, "dy_str");
1258 const char *dz_str = qdict_get_try_str(qdict, "dz_str");
1259 dx = strtol(dx_str, NULL, 0);
1260 dy = strtol(dy_str, NULL, 0);
1261 dz = 0;
1262 if (dz_str)
1263 dz = strtol(dz_str, NULL, 0);
1264 kbd_mouse_event(dx, dy, dz, mouse_button_state);
1265 }
1266
1267 static void do_mouse_button(Monitor *mon, const QDict *qdict)
1268 {
1269 int button_state = qdict_get_int(qdict, "button_state");
1270 mouse_button_state = button_state;
1271 kbd_mouse_event(0, 0, 0, mouse_button_state);
1272 }
1273
1274 static void do_ioport_read(Monitor *mon, const QDict *qdict)
1275 {
1276 int size = qdict_get_int(qdict, "size");
1277 int addr = qdict_get_int(qdict, "addr");
1278 int has_index = qdict_haskey(qdict, "index");
1279 uint32_t val;
1280 int suffix;
1281
1282 if (has_index) {
1283 int index = qdict_get_int(qdict, "index");
1284 cpu_outb(addr & IOPORTS_MASK, index & 0xff);
1285 addr++;
1286 }
1287 addr &= 0xffff;
1288
1289 switch(size) {
1290 default:
1291 case 1:
1292 val = cpu_inb(addr);
1293 suffix = 'b';
1294 break;
1295 case 2:
1296 val = cpu_inw(addr);
1297 suffix = 'w';
1298 break;
1299 case 4:
1300 val = cpu_inl(addr);
1301 suffix = 'l';
1302 break;
1303 }
1304 monitor_printf(mon, "port%c[0x%04x] = %#0*x\n",
1305 suffix, addr, size * 2, val);
1306 }
1307
1308 static void do_ioport_write(Monitor *mon, const QDict *qdict)
1309 {
1310 int size = qdict_get_int(qdict, "size");
1311 int addr = qdict_get_int(qdict, "addr");
1312 int val = qdict_get_int(qdict, "val");
1313
1314 addr &= IOPORTS_MASK;
1315
1316 switch (size) {
1317 default:
1318 case 1:
1319 cpu_outb(addr, val);
1320 break;
1321 case 2:
1322 cpu_outw(addr, val);
1323 break;
1324 case 4:
1325 cpu_outl(addr, val);
1326 break;
1327 }
1328 }
1329
1330 static void do_boot_set(Monitor *mon, const QDict *qdict)
1331 {
1332 int res;
1333 const char *bootdevice = qdict_get_str(qdict, "bootdevice");
1334
1335 res = qemu_boot_set(bootdevice);
1336 if (res == 0) {
1337 monitor_printf(mon, "boot device list now set to %s\n", bootdevice);
1338 } else if (res > 0) {
1339 monitor_printf(mon, "setting boot device list failed\n");
1340 } else {
1341 monitor_printf(mon, "no function defined to set boot device list for "
1342 "this architecture\n");
1343 }
1344 }
1345
1346 #if defined(TARGET_I386)
1347 static void print_pte(Monitor *mon, hwaddr addr,
1348 hwaddr pte,
1349 hwaddr mask)
1350 {
1351 #ifdef TARGET_X86_64
1352 if (addr & (1ULL << 47)) {
1353 addr |= -1LL << 48;
1354 }
1355 #endif
1356 monitor_printf(mon, TARGET_FMT_plx ": " TARGET_FMT_plx
1357 " %c%c%c%c%c%c%c%c%c\n",
1358 addr,
1359 pte & mask,
1360 pte & PG_NX_MASK ? 'X' : '-',
1361 pte & PG_GLOBAL_MASK ? 'G' : '-',
1362 pte & PG_PSE_MASK ? 'P' : '-',
1363 pte & PG_DIRTY_MASK ? 'D' : '-',
1364 pte & PG_ACCESSED_MASK ? 'A' : '-',
1365 pte & PG_PCD_MASK ? 'C' : '-',
1366 pte & PG_PWT_MASK ? 'T' : '-',
1367 pte & PG_USER_MASK ? 'U' : '-',
1368 pte & PG_RW_MASK ? 'W' : '-');
1369 }
1370
1371 static void tlb_info_32(Monitor *mon, CPUArchState *env)
1372 {
1373 unsigned int l1, l2;
1374 uint32_t pgd, pde, pte;
1375
1376 pgd = env->cr[3] & ~0xfff;
1377 for(l1 = 0; l1 < 1024; l1++) {
1378 cpu_physical_memory_read(pgd + l1 * 4, &pde, 4);
1379 pde = le32_to_cpu(pde);
1380 if (pde & PG_PRESENT_MASK) {
1381 if ((pde & PG_PSE_MASK) && (env->cr[4] & CR4_PSE_MASK)) {
1382 /* 4M pages */
1383 print_pte(mon, (l1 << 22), pde, ~((1 << 21) - 1));
1384 } else {
1385 for(l2 = 0; l2 < 1024; l2++) {
1386 cpu_physical_memory_read((pde & ~0xfff) + l2 * 4, &pte, 4);
1387 pte = le32_to_cpu(pte);
1388 if (pte & PG_PRESENT_MASK) {
1389 print_pte(mon, (l1 << 22) + (l2 << 12),
1390 pte & ~PG_PSE_MASK,
1391 ~0xfff);
1392 }
1393 }
1394 }
1395 }
1396 }
1397 }
1398
1399 static void tlb_info_pae32(Monitor *mon, CPUArchState *env)
1400 {
1401 unsigned int l1, l2, l3;
1402 uint64_t pdpe, pde, pte;
1403 uint64_t pdp_addr, pd_addr, pt_addr;
1404
1405 pdp_addr = env->cr[3] & ~0x1f;
1406 for (l1 = 0; l1 < 4; l1++) {
1407 cpu_physical_memory_read(pdp_addr + l1 * 8, &pdpe, 8);
1408 pdpe = le64_to_cpu(pdpe);
1409 if (pdpe & PG_PRESENT_MASK) {
1410 pd_addr = pdpe & 0x3fffffffff000ULL;
1411 for (l2 = 0; l2 < 512; l2++) {
1412 cpu_physical_memory_read(pd_addr + l2 * 8, &pde, 8);
1413 pde = le64_to_cpu(pde);
1414 if (pde & PG_PRESENT_MASK) {
1415 if (pde & PG_PSE_MASK) {
1416 /* 2M pages with PAE, CR4.PSE is ignored */
1417 print_pte(mon, (l1 << 30 ) + (l2 << 21), pde,
1418 ~((hwaddr)(1 << 20) - 1));
1419 } else {
1420 pt_addr = pde & 0x3fffffffff000ULL;
1421 for (l3 = 0; l3 < 512; l3++) {
1422 cpu_physical_memory_read(pt_addr + l3 * 8, &pte, 8);
1423 pte = le64_to_cpu(pte);
1424 if (pte & PG_PRESENT_MASK) {
1425 print_pte(mon, (l1 << 30 ) + (l2 << 21)
1426 + (l3 << 12),
1427 pte & ~PG_PSE_MASK,
1428 ~(hwaddr)0xfff);
1429 }
1430 }
1431 }
1432 }
1433 }
1434 }
1435 }
1436 }
1437
1438 #ifdef TARGET_X86_64
1439 static void tlb_info_64(Monitor *mon, CPUArchState *env)
1440 {
1441 uint64_t l1, l2, l3, l4;
1442 uint64_t pml4e, pdpe, pde, pte;
1443 uint64_t pml4_addr, pdp_addr, pd_addr, pt_addr;
1444
1445 pml4_addr = env->cr[3] & 0x3fffffffff000ULL;
1446 for (l1 = 0; l1 < 512; l1++) {
1447 cpu_physical_memory_read(pml4_addr + l1 * 8, &pml4e, 8);
1448 pml4e = le64_to_cpu(pml4e);
1449 if (pml4e & PG_PRESENT_MASK) {
1450 pdp_addr = pml4e & 0x3fffffffff000ULL;
1451 for (l2 = 0; l2 < 512; l2++) {
1452 cpu_physical_memory_read(pdp_addr + l2 * 8, &pdpe, 8);
1453 pdpe = le64_to_cpu(pdpe);
1454 if (pdpe & PG_PRESENT_MASK) {
1455 if (pdpe & PG_PSE_MASK) {
1456 /* 1G pages, CR4.PSE is ignored */
1457 print_pte(mon, (l1 << 39) + (l2 << 30), pdpe,
1458 0x3ffffc0000000ULL);
1459 } else {
1460 pd_addr = pdpe & 0x3fffffffff000ULL;
1461 for (l3 = 0; l3 < 512; l3++) {
1462 cpu_physical_memory_read(pd_addr + l3 * 8, &pde, 8);
1463 pde = le64_to_cpu(pde);
1464 if (pde & PG_PRESENT_MASK) {
1465 if (pde & PG_PSE_MASK) {
1466 /* 2M pages, CR4.PSE is ignored */
1467 print_pte(mon, (l1 << 39) + (l2 << 30) +
1468 (l3 << 21), pde,
1469 0x3ffffffe00000ULL);
1470 } else {
1471 pt_addr = pde & 0x3fffffffff000ULL;
1472 for (l4 = 0; l4 < 512; l4++) {
1473 cpu_physical_memory_read(pt_addr
1474 + l4 * 8,
1475 &pte, 8);
1476 pte = le64_to_cpu(pte);
1477 if (pte & PG_PRESENT_MASK) {
1478 print_pte(mon, (l1 << 39) +
1479 (l2 << 30) +
1480 (l3 << 21) + (l4 << 12),
1481 pte & ~PG_PSE_MASK,
1482 0x3fffffffff000ULL);
1483 }
1484 }
1485 }
1486 }
1487 }
1488 }
1489 }
1490 }
1491 }
1492 }
1493 }
1494 #endif
1495
1496 static void tlb_info(Monitor *mon, const QDict *qdict)
1497 {
1498 CPUArchState *env;
1499
1500 env = mon_get_cpu();
1501
1502 if (!(env->cr[0] & CR0_PG_MASK)) {
1503 monitor_printf(mon, "PG disabled\n");
1504 return;
1505 }
1506 if (env->cr[4] & CR4_PAE_MASK) {
1507 #ifdef TARGET_X86_64
1508 if (env->hflags & HF_LMA_MASK) {
1509 tlb_info_64(mon, env);
1510 } else
1511 #endif
1512 {
1513 tlb_info_pae32(mon, env);
1514 }
1515 } else {
1516 tlb_info_32(mon, env);
1517 }
1518 }
1519
1520 static void mem_print(Monitor *mon, hwaddr *pstart,
1521 int *plast_prot,
1522 hwaddr end, int prot)
1523 {
1524 int prot1;
1525 prot1 = *plast_prot;
1526 if (prot != prot1) {
1527 if (*pstart != -1) {
1528 monitor_printf(mon, TARGET_FMT_plx "-" TARGET_FMT_plx " "
1529 TARGET_FMT_plx " %c%c%c\n",
1530 *pstart, end, end - *pstart,
1531 prot1 & PG_USER_MASK ? 'u' : '-',
1532 'r',
1533 prot1 & PG_RW_MASK ? 'w' : '-');
1534 }
1535 if (prot != 0)
1536 *pstart = end;
1537 else
1538 *pstart = -1;
1539 *plast_prot = prot;
1540 }
1541 }
1542
1543 static void mem_info_32(Monitor *mon, CPUArchState *env)
1544 {
1545 unsigned int l1, l2;
1546 int prot, last_prot;
1547 uint32_t pgd, pde, pte;
1548 hwaddr start, end;
1549
1550 pgd = env->cr[3] & ~0xfff;
1551 last_prot = 0;
1552 start = -1;
1553 for(l1 = 0; l1 < 1024; l1++) {
1554 cpu_physical_memory_read(pgd + l1 * 4, &pde, 4);
1555 pde = le32_to_cpu(pde);
1556 end = l1 << 22;
1557 if (pde & PG_PRESENT_MASK) {
1558 if ((pde & PG_PSE_MASK) && (env->cr[4] & CR4_PSE_MASK)) {
1559 prot = pde & (PG_USER_MASK | PG_RW_MASK | PG_PRESENT_MASK);
1560 mem_print(mon, &start, &last_prot, end, prot);
1561 } else {
1562 for(l2 = 0; l2 < 1024; l2++) {
1563 cpu_physical_memory_read((pde & ~0xfff) + l2 * 4, &pte, 4);
1564 pte = le32_to_cpu(pte);
1565 end = (l1 << 22) + (l2 << 12);
1566 if (pte & PG_PRESENT_MASK) {
1567 prot = pte & pde &
1568 (PG_USER_MASK | PG_RW_MASK | PG_PRESENT_MASK);
1569 } else {
1570 prot = 0;
1571 }
1572 mem_print(mon, &start, &last_prot, end, prot);
1573 }
1574 }
1575 } else {
1576 prot = 0;
1577 mem_print(mon, &start, &last_prot, end, prot);
1578 }
1579 }
1580 /* Flush last range */
1581 mem_print(mon, &start, &last_prot, (hwaddr)1 << 32, 0);
1582 }
1583
1584 static void mem_info_pae32(Monitor *mon, CPUArchState *env)
1585 {
1586 unsigned int l1, l2, l3;
1587 int prot, last_prot;
1588 uint64_t pdpe, pde, pte;
1589 uint64_t pdp_addr, pd_addr, pt_addr;
1590 hwaddr start, end;
1591
1592 pdp_addr = env->cr[3] & ~0x1f;
1593 last_prot = 0;
1594 start = -1;
1595 for (l1 = 0; l1 < 4; l1++) {
1596 cpu_physical_memory_read(pdp_addr + l1 * 8, &pdpe, 8);
1597 pdpe = le64_to_cpu(pdpe);
1598 end = l1 << 30;
1599 if (pdpe & PG_PRESENT_MASK) {
1600 pd_addr = pdpe & 0x3fffffffff000ULL;
1601 for (l2 = 0; l2 < 512; l2++) {
1602 cpu_physical_memory_read(pd_addr + l2 * 8, &pde, 8);
1603 pde = le64_to_cpu(pde);
1604 end = (l1 << 30) + (l2 << 21);
1605 if (pde & PG_PRESENT_MASK) {
1606 if (pde & PG_PSE_MASK) {
1607 prot = pde & (PG_USER_MASK | PG_RW_MASK |
1608 PG_PRESENT_MASK);
1609 mem_print(mon, &start, &last_prot, end, prot);
1610 } else {
1611 pt_addr = pde & 0x3fffffffff000ULL;
1612 for (l3 = 0; l3 < 512; l3++) {
1613 cpu_physical_memory_read(pt_addr + l3 * 8, &pte, 8);
1614 pte = le64_to_cpu(pte);
1615 end = (l1 << 30) + (l2 << 21) + (l3 << 12);
1616 if (pte & PG_PRESENT_MASK) {
1617 prot = pte & pde & (PG_USER_MASK | PG_RW_MASK |
1618 PG_PRESENT_MASK);
1619 } else {
1620 prot = 0;
1621 }
1622 mem_print(mon, &start, &last_prot, end, prot);
1623 }
1624 }
1625 } else {
1626 prot = 0;
1627 mem_print(mon, &start, &last_prot, end, prot);
1628 }
1629 }
1630 } else {
1631 prot = 0;
1632 mem_print(mon, &start, &last_prot, end, prot);
1633 }
1634 }
1635 /* Flush last range */
1636 mem_print(mon, &start, &last_prot, (hwaddr)1 << 32, 0);
1637 }
1638
1639
1640 #ifdef TARGET_X86_64
1641 static void mem_info_64(Monitor *mon, CPUArchState *env)
1642 {
1643 int prot, last_prot;
1644 uint64_t l1, l2, l3, l4;
1645 uint64_t pml4e, pdpe, pde, pte;
1646 uint64_t pml4_addr, pdp_addr, pd_addr, pt_addr, start, end;
1647
1648 pml4_addr = env->cr[3] & 0x3fffffffff000ULL;
1649 last_prot = 0;
1650 start = -1;
1651 for (l1 = 0; l1 < 512; l1++) {
1652 cpu_physical_memory_read(pml4_addr + l1 * 8, &pml4e, 8);
1653 pml4e = le64_to_cpu(pml4e);
1654 end = l1 << 39;
1655 if (pml4e & PG_PRESENT_MASK) {
1656 pdp_addr = pml4e & 0x3fffffffff000ULL;
1657 for (l2 = 0; l2 < 512; l2++) {
1658 cpu_physical_memory_read(pdp_addr + l2 * 8, &pdpe, 8);
1659 pdpe = le64_to_cpu(pdpe);
1660 end = (l1 << 39) + (l2 << 30);
1661 if (pdpe & PG_PRESENT_MASK) {
1662 if (pdpe & PG_PSE_MASK) {
1663 prot = pdpe & (PG_USER_MASK | PG_RW_MASK |
1664 PG_PRESENT_MASK);
1665 prot &= pml4e;
1666 mem_print(mon, &start, &last_prot, end, prot);
1667 } else {
1668 pd_addr = pdpe & 0x3fffffffff000ULL;
1669 for (l3 = 0; l3 < 512; l3++) {
1670 cpu_physical_memory_read(pd_addr + l3 * 8, &pde, 8);
1671 pde = le64_to_cpu(pde);
1672 end = (l1 << 39) + (l2 << 30) + (l3 << 21);
1673 if (pde & PG_PRESENT_MASK) {
1674 if (pde & PG_PSE_MASK) {
1675 prot = pde & (PG_USER_MASK | PG_RW_MASK |
1676 PG_PRESENT_MASK);
1677 prot &= pml4e & pdpe;
1678 mem_print(mon, &start, &last_prot, end, prot);
1679 } else {
1680 pt_addr = pde & 0x3fffffffff000ULL;
1681 for (l4 = 0; l4 < 512; l4++) {
1682 cpu_physical_memory_read(pt_addr
1683 + l4 * 8,
1684 &pte, 8);
1685 pte = le64_to_cpu(pte);
1686 end = (l1 << 39) + (l2 << 30) +
1687 (l3 << 21) + (l4 << 12);
1688 if (pte & PG_PRESENT_MASK) {
1689 prot = pte & (PG_USER_MASK | PG_RW_MASK |
1690 PG_PRESENT_MASK);
1691 prot &= pml4e & pdpe & pde;
1692 } else {
1693 prot = 0;
1694 }
1695 mem_print(mon, &start, &last_prot, end, prot);
1696 }
1697 }
1698 } else {
1699 prot = 0;
1700 mem_print(mon, &start, &last_prot, end, prot);
1701 }
1702 }
1703 }
1704 } else {
1705 prot = 0;
1706 mem_print(mon, &start, &last_prot, end, prot);
1707 }
1708 }
1709 } else {
1710 prot = 0;
1711 mem_print(mon, &start, &last_prot, end, prot);
1712 }
1713 }
1714 /* Flush last range */
1715 mem_print(mon, &start, &last_prot, (hwaddr)1 << 48, 0);
1716 }
1717 #endif
1718
1719 static void mem_info(Monitor *mon, const QDict *qdict)
1720 {
1721 CPUArchState *env;
1722
1723 env = mon_get_cpu();
1724
1725 if (!(env->cr[0] & CR0_PG_MASK)) {
1726 monitor_printf(mon, "PG disabled\n");
1727 return;
1728 }
1729 if (env->cr[4] & CR4_PAE_MASK) {
1730 #ifdef TARGET_X86_64
1731 if (env->hflags & HF_LMA_MASK) {
1732 mem_info_64(mon, env);
1733 } else
1734 #endif
1735 {
1736 mem_info_pae32(mon, env);
1737 }
1738 } else {
1739 mem_info_32(mon, env);
1740 }
1741 }
1742 #endif
1743
1744 #if defined(TARGET_SH4)
1745
1746 static void print_tlb(Monitor *mon, int idx, tlb_t *tlb)
1747 {
1748 monitor_printf(mon, " tlb%i:\t"
1749 "asid=%hhu vpn=%x\tppn=%x\tsz=%hhu size=%u\t"
1750 "v=%hhu shared=%hhu cached=%hhu prot=%hhu "
1751 "dirty=%hhu writethrough=%hhu\n",
1752 idx,
1753 tlb->asid, tlb->vpn, tlb->ppn, tlb->sz, tlb->size,
1754 tlb->v, tlb->sh, tlb->c, tlb->pr,
1755 tlb->d, tlb->wt);
1756 }
1757
1758 static void tlb_info(Monitor *mon, const QDict *qdict)
1759 {
1760 CPUArchState *env = mon_get_cpu();
1761 int i;
1762
1763 monitor_printf (mon, "ITLB:\n");
1764 for (i = 0 ; i < ITLB_SIZE ; i++)
1765 print_tlb (mon, i, &env->itlb[i]);
1766 monitor_printf (mon, "UTLB:\n");
1767 for (i = 0 ; i < UTLB_SIZE ; i++)
1768 print_tlb (mon, i, &env->utlb[i]);
1769 }
1770
1771 #endif
1772
1773 #if defined(TARGET_SPARC) || defined(TARGET_PPC) || defined(TARGET_XTENSA)
1774 static void tlb_info(Monitor *mon, const QDict *qdict)
1775 {
1776 CPUArchState *env1 = mon_get_cpu();
1777
1778 dump_mmu((FILE*)mon, (fprintf_function)monitor_printf, env1);
1779 }
1780 #endif
1781
1782 static void do_info_mtree(Monitor *mon, const QDict *qdict)
1783 {
1784 mtree_info((fprintf_function)monitor_printf, mon);
1785 }
1786
1787 static void do_info_numa(Monitor *mon, const QDict *qdict)
1788 {
1789 int i;
1790 CPUArchState *env;
1791 CPUState *cpu;
1792
1793 monitor_printf(mon, "%d nodes\n", nb_numa_nodes);
1794 for (i = 0; i < nb_numa_nodes; i++) {
1795 monitor_printf(mon, "node %d cpus:", i);
1796 for (env = first_cpu; env != NULL; env = env->next_cpu) {
1797 cpu = ENV_GET_CPU(env);
1798 if (cpu->numa_node == i) {
1799 monitor_printf(mon, " %d", cpu->cpu_index);
1800 }
1801 }
1802 monitor_printf(mon, "\n");
1803 monitor_printf(mon, "node %d size: %" PRId64 " MB\n", i,
1804 node_mem[i] >> 20);
1805 }
1806 }
1807
1808 #ifdef CONFIG_PROFILER
1809
1810 int64_t qemu_time;
1811 int64_t dev_time;
1812
1813 static void do_info_profile(Monitor *mon, const QDict *qdict)
1814 {
1815 int64_t total;
1816 total = qemu_time;
1817 if (total == 0)
1818 total = 1;
1819 monitor_printf(mon, "async time %" PRId64 " (%0.3f)\n",
1820 dev_time, dev_time / (double)get_ticks_per_sec());
1821 monitor_printf(mon, "qemu time %" PRId64 " (%0.3f)\n",
1822 qemu_time, qemu_time / (double)get_ticks_per_sec());
1823 qemu_time = 0;
1824 dev_time = 0;
1825 }
1826 #else
1827 static void do_info_profile(Monitor *mon, const QDict *qdict)
1828 {
1829 monitor_printf(mon, "Internal profiler not compiled\n");
1830 }
1831 #endif
1832
1833 /* Capture support */
1834 static QLIST_HEAD (capture_list_head, CaptureState) capture_head;
1835
1836 static void do_info_capture(Monitor *mon, const QDict *qdict)
1837 {
1838 int i;
1839 CaptureState *s;
1840
1841 for (s = capture_head.lh_first, i = 0; s; s = s->entries.le_next, ++i) {
1842 monitor_printf(mon, "[%d]: ", i);
1843 s->ops.info (s->opaque);
1844 }
1845 }
1846
1847 #ifdef HAS_AUDIO
1848 static void do_stop_capture(Monitor *mon, const QDict *qdict)
1849 {
1850 int i;
1851 int n = qdict_get_int(qdict, "n");
1852 CaptureState *s;
1853
1854 for (s = capture_head.lh_first, i = 0; s; s = s->entries.le_next, ++i) {
1855 if (i == n) {
1856 s->ops.destroy (s->opaque);
1857 QLIST_REMOVE (s, entries);
1858 g_free (s);
1859 return;
1860 }
1861 }
1862 }
1863
1864 static void do_wav_capture(Monitor *mon, const QDict *qdict)
1865 {
1866 const char *path = qdict_get_str(qdict, "path");
1867 int has_freq = qdict_haskey(qdict, "freq");
1868 int freq = qdict_get_try_int(qdict, "freq", -1);
1869 int has_bits = qdict_haskey(qdict, "bits");
1870 int bits = qdict_get_try_int(qdict, "bits", -1);
1871 int has_channels = qdict_haskey(qdict, "nchannels");
1872 int nchannels = qdict_get_try_int(qdict, "nchannels", -1);
1873 CaptureState *s;
1874
1875 s = g_malloc0 (sizeof (*s));
1876
1877 freq = has_freq ? freq : 44100;
1878 bits = has_bits ? bits : 16;
1879 nchannels = has_channels ? nchannels : 2;
1880
1881 if (wav_start_capture (s, path, freq, bits, nchannels)) {
1882 monitor_printf(mon, "Failed to add wave capture\n");
1883 g_free (s);
1884 return;
1885 }
1886 QLIST_INSERT_HEAD (&capture_head, s, entries);
1887 }
1888 #endif
1889
1890 static qemu_acl *find_acl(Monitor *mon, const char *name)
1891 {
1892 qemu_acl *acl = qemu_acl_find(name);
1893
1894 if (!acl) {
1895 monitor_printf(mon, "acl: unknown list '%s'\n", name);
1896 }
1897 return acl;
1898 }
1899
1900 static void do_acl_show(Monitor *mon, const QDict *qdict)
1901 {
1902 const char *aclname = qdict_get_str(qdict, "aclname");
1903 qemu_acl *acl = find_acl(mon, aclname);
1904 qemu_acl_entry *entry;
1905 int i = 0;
1906
1907 if (acl) {
1908 monitor_printf(mon, "policy: %s\n",
1909 acl->defaultDeny ? "deny" : "allow");
1910 QTAILQ_FOREACH(entry, &acl->entries, next) {
1911 i++;
1912 monitor_printf(mon, "%d: %s %s\n", i,
1913 entry->deny ? "deny" : "allow", entry->match);
1914 }
1915 }
1916 }
1917
1918 static void do_acl_reset(Monitor *mon, const QDict *qdict)
1919 {
1920 const char *aclname = qdict_get_str(qdict, "aclname");
1921 qemu_acl *acl = find_acl(mon, aclname);
1922
1923 if (acl) {
1924 qemu_acl_reset(acl);
1925 monitor_printf(mon, "acl: removed all rules\n");
1926 }
1927 }
1928
1929 static void do_acl_policy(Monitor *mon, const QDict *qdict)
1930 {
1931 const char *aclname = qdict_get_str(qdict, "aclname");
1932 const char *policy = qdict_get_str(qdict, "policy");
1933 qemu_acl *acl = find_acl(mon, aclname);
1934
1935 if (acl) {
1936 if (strcmp(policy, "allow") == 0) {
1937 acl->defaultDeny = 0;
1938 monitor_printf(mon, "acl: policy set to 'allow'\n");
1939 } else if (strcmp(policy, "deny") == 0) {
1940 acl->defaultDeny = 1;
1941 monitor_printf(mon, "acl: policy set to 'deny'\n");
1942 } else {
1943 monitor_printf(mon, "acl: unknown policy '%s', "
1944 "expected 'deny' or 'allow'\n", policy);
1945 }
1946 }
1947 }
1948
1949 static void do_acl_add(Monitor *mon, const QDict *qdict)
1950 {
1951 const char *aclname = qdict_get_str(qdict, "aclname");
1952 const char *match = qdict_get_str(qdict, "match");
1953 const char *policy = qdict_get_str(qdict, "policy");
1954 int has_index = qdict_haskey(qdict, "index");
1955 int index = qdict_get_try_int(qdict, "index", -1);
1956 qemu_acl *acl = find_acl(mon, aclname);
1957 int deny, ret;
1958
1959 if (acl) {
1960 if (strcmp(policy, "allow") == 0) {
1961 deny = 0;
1962 } else if (strcmp(policy, "deny") == 0) {
1963 deny = 1;
1964 } else {
1965 monitor_printf(mon, "acl: unknown policy '%s', "
1966 "expected 'deny' or 'allow'\n", policy);
1967 return;
1968 }
1969 if (has_index)
1970 ret = qemu_acl_insert(acl, deny, match, index);
1971 else
1972 ret = qemu_acl_append(acl, deny, match);
1973 if (ret < 0)
1974 monitor_printf(mon, "acl: unable to add acl entry\n");
1975 else
1976 monitor_printf(mon, "acl: added rule at position %d\n", ret);
1977 }
1978 }
1979
1980 static void do_acl_remove(Monitor *mon, const QDict *qdict)
1981 {
1982 const char *aclname = qdict_get_str(qdict, "aclname");
1983 const char *match = qdict_get_str(qdict, "match");
1984 qemu_acl *acl = find_acl(mon, aclname);
1985 int ret;
1986
1987 if (acl) {
1988 ret = qemu_acl_remove(acl, match);
1989 if (ret < 0)
1990 monitor_printf(mon, "acl: no matching acl entry\n");
1991 else
1992 monitor_printf(mon, "acl: removed rule at position %d\n", ret);
1993 }
1994 }
1995
1996 #if defined(TARGET_I386)
1997 static void do_inject_mce(Monitor *mon, const QDict *qdict)
1998 {
1999 X86CPU *cpu;
2000 CPUX86State *cenv;
2001 CPUState *cs;
2002 int cpu_index = qdict_get_int(qdict, "cpu_index");
2003 int bank = qdict_get_int(qdict, "bank");
2004 uint64_t status = qdict_get_int(qdict, "status");
2005 uint64_t mcg_status = qdict_get_int(qdict, "mcg_status");
2006 uint64_t addr = qdict_get_int(qdict, "addr");
2007 uint64_t misc = qdict_get_int(qdict, "misc");
2008 int flags = MCE_INJECT_UNCOND_AO;
2009
2010 if (qdict_get_try_bool(qdict, "broadcast", 0)) {
2011 flags |= MCE_INJECT_BROADCAST;
2012 }
2013 for (cenv = first_cpu; cenv != NULL; cenv = cenv->next_cpu) {
2014 cpu = x86_env_get_cpu(cenv);
2015 cs = CPU(cpu);
2016 if (cs->cpu_index == cpu_index) {
2017 cpu_x86_inject_mce(mon, cpu, bank, status, mcg_status, addr, misc,
2018 flags);
2019 break;
2020 }
2021 }
2022 }
2023 #endif
2024
2025 void qmp_getfd(const char *fdname, Error **errp)
2026 {
2027 mon_fd_t *monfd;
2028 int fd;
2029
2030 fd = qemu_chr_fe_get_msgfd(cur_mon->chr);
2031 if (fd == -1) {
2032 error_set(errp, QERR_FD_NOT_SUPPLIED);
2033 return;
2034 }
2035
2036 if (qemu_isdigit(fdname[0])) {
2037 error_set(errp, QERR_INVALID_PARAMETER_VALUE, "fdname",
2038 "a name not starting with a digit");
2039 return;
2040 }
2041
2042 QLIST_FOREACH(monfd, &cur_mon->fds, next) {
2043 if (strcmp(monfd->name, fdname) != 0) {
2044 continue;
2045 }
2046
2047 close(monfd->fd);
2048 monfd->fd = fd;
2049 return;
2050 }
2051
2052 monfd = g_malloc0(sizeof(mon_fd_t));
2053 monfd->name = g_strdup(fdname);
2054 monfd->fd = fd;
2055
2056 QLIST_INSERT_HEAD(&cur_mon->fds, monfd, next);
2057 }
2058
2059 void qmp_closefd(const char *fdname, Error **errp)
2060 {
2061 mon_fd_t *monfd;
2062
2063 QLIST_FOREACH(monfd, &cur_mon->fds, next) {
2064 if (strcmp(monfd->name, fdname) != 0) {
2065 continue;
2066 }
2067
2068 QLIST_REMOVE(monfd, next);
2069 close(monfd->fd);
2070 g_free(monfd->name);
2071 g_free(monfd);
2072 return;
2073 }
2074
2075 error_set(errp, QERR_FD_NOT_FOUND, fdname);
2076 }
2077
2078 static void do_loadvm(Monitor *mon, const QDict *qdict)
2079 {
2080 int saved_vm_running = runstate_is_running();
2081 const char *name = qdict_get_str(qdict, "name");
2082
2083 vm_stop(RUN_STATE_RESTORE_VM);
2084
2085 if (load_vmstate(name) == 0 && saved_vm_running) {
2086 vm_start();
2087 }
2088 }
2089
2090 int monitor_get_fd(Monitor *mon, const char *fdname, Error **errp)
2091 {
2092 mon_fd_t *monfd;
2093
2094 QLIST_FOREACH(monfd, &mon->fds, next) {
2095 int fd;
2096
2097 if (strcmp(monfd->name, fdname) != 0) {
2098 continue;
2099 }
2100
2101 fd = monfd->fd;
2102
2103 /* caller takes ownership of fd */
2104 QLIST_REMOVE(monfd, next);
2105 g_free(monfd->name);
2106 g_free(monfd);
2107
2108 return fd;
2109 }
2110
2111 error_setg(errp, "File descriptor named '%s' has not been found", fdname);
2112 return -1;
2113 }
2114
2115 static void monitor_fdset_cleanup(MonFdset *mon_fdset)
2116 {
2117 MonFdsetFd *mon_fdset_fd;
2118 MonFdsetFd *mon_fdset_fd_next;
2119
2120 QLIST_FOREACH_SAFE(mon_fdset_fd, &mon_fdset->fds, next, mon_fdset_fd_next) {
2121 if ((mon_fdset_fd->removed ||
2122 (QLIST_EMPTY(&mon_fdset->dup_fds) && mon_refcount == 0)) &&
2123 runstate_is_running()) {
2124 close(mon_fdset_fd->fd);
2125 g_free(mon_fdset_fd->opaque);
2126 QLIST_REMOVE(mon_fdset_fd, next);
2127 g_free(mon_fdset_fd);
2128 }
2129 }
2130
2131 if (QLIST_EMPTY(&mon_fdset->fds) && QLIST_EMPTY(&mon_fdset->dup_fds)) {
2132 QLIST_REMOVE(mon_fdset, next);
2133 g_free(mon_fdset);
2134 }
2135 }
2136
2137 static void monitor_fdsets_cleanup(void)
2138 {
2139 MonFdset *mon_fdset;
2140 MonFdset *mon_fdset_next;
2141
2142 QLIST_FOREACH_SAFE(mon_fdset, &mon_fdsets, next, mon_fdset_next) {
2143 monitor_fdset_cleanup(mon_fdset);
2144 }
2145 }
2146
2147 AddfdInfo *qmp_add_fd(bool has_fdset_id, int64_t fdset_id, bool has_opaque,
2148 const char *opaque, Error **errp)
2149 {
2150 int fd;
2151 Monitor *mon = cur_mon;
2152 AddfdInfo *fdinfo;
2153
2154 fd = qemu_chr_fe_get_msgfd(mon->chr);
2155 if (fd == -1) {
2156 error_set(errp, QERR_FD_NOT_SUPPLIED);
2157 goto error;
2158 }
2159
2160 fdinfo = monitor_fdset_add_fd(fd, has_fdset_id, fdset_id,
2161 has_opaque, opaque, errp);
2162 if (fdinfo) {
2163 return fdinfo;
2164 }
2165
2166 error:
2167 if (fd != -1) {
2168 close(fd);
2169 }
2170 return NULL;
2171 }
2172
2173 void qmp_remove_fd(int64_t fdset_id, bool has_fd, int64_t fd, Error **errp)
2174 {
2175 MonFdset *mon_fdset;
2176 MonFdsetFd *mon_fdset_fd;
2177 char fd_str[60];
2178
2179 QLIST_FOREACH(mon_fdset, &mon_fdsets, next) {
2180 if (mon_fdset->id != fdset_id) {
2181 continue;
2182 }
2183 QLIST_FOREACH(mon_fdset_fd, &mon_fdset->fds, next) {
2184 if (has_fd) {
2185 if (mon_fdset_fd->fd != fd) {
2186 continue;
2187 }
2188 mon_fdset_fd->removed = true;
2189 break;
2190 } else {
2191 mon_fdset_fd->removed = true;
2192 }
2193 }
2194 if (has_fd && !mon_fdset_fd) {
2195 goto error;
2196 }
2197 monitor_fdset_cleanup(mon_fdset);
2198 return;
2199 }
2200
2201 error:
2202 if (has_fd) {
2203 snprintf(fd_str, sizeof(fd_str), "fdset-id:%" PRId64 ", fd:%" PRId64,
2204 fdset_id, fd);
2205 } else {
2206 snprintf(fd_str, sizeof(fd_str), "fdset-id:%" PRId64, fdset_id);
2207 }
2208 error_set(errp, QERR_FD_NOT_FOUND, fd_str);
2209 }
2210
2211 FdsetInfoList *qmp_query_fdsets(Error **errp)
2212 {
2213 MonFdset *mon_fdset;
2214 MonFdsetFd *mon_fdset_fd;
2215 FdsetInfoList *fdset_list = NULL;
2216
2217 QLIST_FOREACH(mon_fdset, &mon_fdsets, next) {
2218 FdsetInfoList *fdset_info = g_malloc0(sizeof(*fdset_info));
2219 FdsetFdInfoList *fdsetfd_list = NULL;
2220
2221 fdset_info->value = g_malloc0(sizeof(*fdset_info->value));
2222 fdset_info->value->fdset_id = mon_fdset->id;
2223
2224 QLIST_FOREACH(mon_fdset_fd, &mon_fdset->fds, next) {
2225 FdsetFdInfoList *fdsetfd_info;
2226
2227 fdsetfd_info = g_malloc0(sizeof(*fdsetfd_info));
2228 fdsetfd_info->value = g_malloc0(sizeof(*fdsetfd_info->value));
2229 fdsetfd_info->value->fd = mon_fdset_fd->fd;
2230 if (mon_fdset_fd->opaque) {
2231 fdsetfd_info->value->has_opaque = true;
2232 fdsetfd_info->value->opaque = g_strdup(mon_fdset_fd->opaque);
2233 } else {
2234 fdsetfd_info->value->has_opaque = false;
2235 }
2236
2237 fdsetfd_info->next = fdsetfd_list;
2238 fdsetfd_list = fdsetfd_info;
2239 }
2240
2241 fdset_info->value->fds = fdsetfd_list;
2242
2243 fdset_info->next = fdset_list;
2244 fdset_list = fdset_info;
2245 }
2246
2247 return fdset_list;
2248 }
2249
2250 AddfdInfo *monitor_fdset_add_fd(int fd, bool has_fdset_id, int64_t fdset_id,
2251 bool has_opaque, const char *opaque,
2252 Error **errp)
2253 {
2254 MonFdset *mon_fdset = NULL;
2255 MonFdsetFd *mon_fdset_fd;
2256 AddfdInfo *fdinfo;
2257
2258 if (has_fdset_id) {
2259 QLIST_FOREACH(mon_fdset, &mon_fdsets, next) {
2260 /* Break if match found or match impossible due to ordering by ID */
2261 if (fdset_id <= mon_fdset->id) {
2262 if (fdset_id < mon_fdset->id) {
2263 mon_fdset = NULL;
2264 }
2265 break;
2266 }
2267 }
2268 }
2269
2270 if (mon_fdset == NULL) {
2271 int64_t fdset_id_prev = -1;
2272 MonFdset *mon_fdset_cur = QLIST_FIRST(&mon_fdsets);
2273
2274 if (has_fdset_id) {
2275 if (fdset_id < 0) {
2276 error_set(errp, QERR_INVALID_PARAMETER_VALUE, "fdset-id",
2277 "a non-negative value");
2278 return NULL;
2279 }
2280 /* Use specified fdset ID */
2281 QLIST_FOREACH(mon_fdset, &mon_fdsets, next) {
2282 mon_fdset_cur = mon_fdset;
2283 if (fdset_id < mon_fdset_cur->id) {
2284 break;
2285 }
2286 }
2287 } else {
2288 /* Use first available fdset ID */
2289 QLIST_FOREACH(mon_fdset, &mon_fdsets, next) {
2290 mon_fdset_cur = mon_fdset;
2291 if (fdset_id_prev == mon_fdset_cur->id - 1) {
2292 fdset_id_prev = mon_fdset_cur->id;
2293 continue;
2294 }
2295 break;
2296 }
2297 }
2298
2299 mon_fdset = g_malloc0(sizeof(*mon_fdset));
2300 if (has_fdset_id) {
2301 mon_fdset->id = fdset_id;
2302 } else {
2303 mon_fdset->id = fdset_id_prev + 1;
2304 }
2305
2306 /* The fdset list is ordered by fdset ID */
2307 if (!mon_fdset_cur) {
2308 QLIST_INSERT_HEAD(&mon_fdsets, mon_fdset, next);
2309 } else if (mon_fdset->id < mon_fdset_cur->id) {
2310 QLIST_INSERT_BEFORE(mon_fdset_cur, mon_fdset, next);
2311 } else {
2312 QLIST_INSERT_AFTER(mon_fdset_cur, mon_fdset, next);
2313 }
2314 }
2315
2316 mon_fdset_fd = g_malloc0(sizeof(*mon_fdset_fd));
2317 mon_fdset_fd->fd = fd;
2318 mon_fdset_fd->removed = false;
2319 if (has_opaque) {
2320 mon_fdset_fd->opaque = g_strdup(opaque);
2321 }
2322 QLIST_INSERT_HEAD(&mon_fdset->fds, mon_fdset_fd, next);
2323
2324 fdinfo = g_malloc0(sizeof(*fdinfo));
2325 fdinfo->fdset_id = mon_fdset->id;
2326 fdinfo->fd = mon_fdset_fd->fd;
2327
2328 return fdinfo;
2329 }
2330
2331 int monitor_fdset_get_fd(int64_t fdset_id, int flags)
2332 {
2333 #ifndef _WIN32
2334 MonFdset *mon_fdset;
2335 MonFdsetFd *mon_fdset_fd;
2336 int mon_fd_flags;
2337
2338 QLIST_FOREACH(mon_fdset, &mon_fdsets, next) {
2339 if (mon_fdset->id != fdset_id) {
2340 continue;
2341 }
2342 QLIST_FOREACH(mon_fdset_fd, &mon_fdset->fds, next) {
2343 mon_fd_flags = fcntl(mon_fdset_fd->fd, F_GETFL);
2344 if (mon_fd_flags == -1) {
2345 return -1;
2346 }
2347
2348 if ((flags & O_ACCMODE) == (mon_fd_flags & O_ACCMODE)) {
2349 return mon_fdset_fd->fd;
2350 }
2351 }
2352 errno = EACCES;
2353 return -1;
2354 }
2355 #endif
2356
2357 errno = ENOENT;
2358 return -1;
2359 }
2360
2361 int monitor_fdset_dup_fd_add(int64_t fdset_id, int dup_fd)
2362 {
2363 MonFdset *mon_fdset;
2364 MonFdsetFd *mon_fdset_fd_dup;
2365
2366 QLIST_FOREACH(mon_fdset, &mon_fdsets, next) {
2367 if (mon_fdset->id != fdset_id) {
2368 continue;
2369 }
2370 QLIST_FOREACH(mon_fdset_fd_dup, &mon_fdset->dup_fds, next) {
2371 if (mon_fdset_fd_dup->fd == dup_fd) {
2372 return -1;
2373 }
2374 }
2375 mon_fdset_fd_dup = g_malloc0(sizeof(*mon_fdset_fd_dup));
2376 mon_fdset_fd_dup->fd = dup_fd;
2377 QLIST_INSERT_HEAD(&mon_fdset->dup_fds, mon_fdset_fd_dup, next);
2378 return 0;
2379 }
2380 return -1;
2381 }
2382
2383 static int monitor_fdset_dup_fd_find_remove(int dup_fd, bool remove)
2384 {
2385 MonFdset *mon_fdset;
2386 MonFdsetFd *mon_fdset_fd_dup;
2387
2388 QLIST_FOREACH(mon_fdset, &mon_fdsets, next) {
2389 QLIST_FOREACH(mon_fdset_fd_dup, &mon_fdset->dup_fds, next) {
2390 if (mon_fdset_fd_dup->fd == dup_fd) {
2391 if (remove) {
2392 QLIST_REMOVE(mon_fdset_fd_dup, next);
2393 if (QLIST_EMPTY(&mon_fdset->dup_fds)) {
2394 monitor_fdset_cleanup(mon_fdset);
2395 }
2396 }
2397 return mon_fdset->id;
2398 }
2399 }
2400 }
2401 return -1;
2402 }
2403
2404 int monitor_fdset_dup_fd_find(int dup_fd)
2405 {
2406 return monitor_fdset_dup_fd_find_remove(dup_fd, false);
2407 }
2408
2409 int monitor_fdset_dup_fd_remove(int dup_fd)
2410 {
2411 return monitor_fdset_dup_fd_find_remove(dup_fd, true);
2412 }
2413
2414 int monitor_handle_fd_param(Monitor *mon, const char *fdname)
2415 {
2416 int fd;
2417 Error *local_err = NULL;
2418
2419 if (!qemu_isdigit(fdname[0]) && mon) {
2420
2421 fd = monitor_get_fd(mon, fdname, &local_err);
2422 if (fd == -1) {
2423 qerror_report_err(local_err);
2424 error_free(local_err);
2425 return -1;
2426 }
2427 } else {
2428 fd = qemu_parse_fd(fdname);
2429 }
2430
2431 return fd;
2432 }
2433
2434 /* Please update hmp-commands.hx when adding or changing commands */
2435 static mon_cmd_t info_cmds[] = {
2436 {
2437 .name = "version",
2438 .args_type = "",
2439 .params = "",
2440 .help = "show the version of QEMU",
2441 .mhandler.cmd = hmp_info_version,
2442 },
2443 {
2444 .name = "network",
2445 .args_type = "",
2446 .params = "",
2447 .help = "show the network state",
2448 .mhandler.cmd = do_info_network,
2449 },
2450 {
2451 .name = "chardev",
2452 .args_type = "",
2453 .params = "",
2454 .help = "show the character devices",
2455 .mhandler.cmd = hmp_info_chardev,
2456 },
2457 {
2458 .name = "block",
2459 .args_type = "",
2460 .params = "",
2461 .help = "show the block devices",
2462 .mhandler.cmd = hmp_info_block,
2463 },
2464 {
2465 .name = "blockstats",
2466 .args_type = "",
2467 .params = "",
2468 .help = "show block device statistics",
2469 .mhandler.cmd = hmp_info_blockstats,
2470 },
2471 {
2472 .name = "block-jobs",
2473 .args_type = "",
2474 .params = "",
2475 .help = "show progress of ongoing block device operations",
2476 .mhandler.cmd = hmp_info_block_jobs,
2477 },
2478 {
2479 .name = "registers",
2480 .args_type = "",
2481 .params = "",
2482 .help = "show the cpu registers",
2483 .mhandler.cmd = do_info_registers,
2484 },
2485 {
2486 .name = "cpus",
2487 .args_type = "",
2488 .params = "",
2489 .help = "show infos for each CPU",
2490 .mhandler.cmd = hmp_info_cpus,
2491 },
2492 {
2493 .name = "history",
2494 .args_type = "",
2495 .params = "",
2496 .help = "show the command line history",
2497 .mhandler.cmd = do_info_history,
2498 },
2499 #if defined(TARGET_I386) || defined(TARGET_PPC) || defined(TARGET_MIPS) || \
2500 defined(TARGET_LM32) || (defined(TARGET_SPARC) && !defined(TARGET_SPARC64))
2501 {
2502 .name = "irq",
2503 .args_type = "",
2504 .params = "",
2505 .help = "show the interrupts statistics (if available)",
2506 #ifdef TARGET_SPARC
2507 .mhandler.cmd = sun4m_irq_info,
2508 #elif defined(TARGET_LM32)
2509 .mhandler.cmd = lm32_irq_info,
2510 #else
2511 .mhandler.cmd = irq_info,
2512 #endif
2513 },
2514 {
2515 .name = "pic",
2516 .args_type = "",
2517 .params = "",
2518 .help = "show i8259 (PIC) state",
2519 #ifdef TARGET_SPARC
2520 .mhandler.cmd = sun4m_pic_info,
2521 #elif defined(TARGET_LM32)
2522 .mhandler.cmd = lm32_do_pic_info,
2523 #else
2524 .mhandler.cmd = pic_info,
2525 #endif
2526 },
2527 #endif
2528 {
2529 .name = "pci",
2530 .args_type = "",
2531 .params = "",
2532 .help = "show PCI info",
2533 .mhandler.cmd = hmp_info_pci,
2534 },
2535 #if defined(TARGET_I386) || defined(TARGET_SH4) || defined(TARGET_SPARC) || \
2536 defined(TARGET_PPC) || defined(TARGET_XTENSA)
2537 {
2538 .name = "tlb",
2539 .args_type = "",
2540 .params = "",
2541 .help = "show virtual to physical memory mappings",
2542 .mhandler.cmd = tlb_info,
2543 },
2544 #endif
2545 #if defined(TARGET_I386)
2546 {
2547 .name = "mem",
2548 .args_type = "",
2549 .params = "",
2550 .help = "show the active virtual memory mappings",
2551 .mhandler.cmd = mem_info,
2552 },
2553 #endif
2554 {
2555 .name = "mtree",
2556 .args_type = "",
2557 .params = "",
2558 .help = "show memory tree",
2559 .mhandler.cmd = do_info_mtree,
2560 },
2561 {
2562 .name = "jit",
2563 .args_type = "",
2564 .params = "",
2565 .help = "show dynamic compiler info",
2566 .mhandler.cmd = do_info_jit,
2567 },
2568 {
2569 .name = "kvm",
2570 .args_type = "",
2571 .params = "",
2572 .help = "show KVM information",
2573 .mhandler.cmd = hmp_info_kvm,
2574 },
2575 {
2576 .name = "numa",
2577 .args_type = "",
2578 .params = "",
2579 .help = "show NUMA information",
2580 .mhandler.cmd = do_info_numa,
2581 },
2582 {
2583 .name = "usb",
2584 .args_type = "",
2585 .params = "",
2586 .help = "show guest USB devices",
2587 .mhandler.cmd = usb_info,
2588 },
2589 {
2590 .name = "usbhost",
2591 .args_type = "",
2592 .params = "",
2593 .help = "show host USB devices",
2594 .mhandler.cmd = usb_host_info,
2595 },
2596 {
2597 .name = "profile",
2598 .args_type = "",
2599 .params = "",
2600 .help = "show profiling information",
2601 .mhandler.cmd = do_info_profile,
2602 },
2603 {
2604 .name = "capture",
2605 .args_type = "",
2606 .params = "",
2607 .help = "show capture information",
2608 .mhandler.cmd = do_info_capture,
2609 },
2610 {
2611 .name = "snapshots",
2612 .args_type = "",
2613 .params = "",
2614 .help = "show the currently saved VM snapshots",
2615 .mhandler.cmd = do_info_snapshots,
2616 },
2617 {
2618 .name = "status",
2619 .args_type = "",
2620 .params = "",
2621 .help = "show the current VM status (running|paused)",
2622 .mhandler.cmd = hmp_info_status,
2623 },
2624 {
2625 .name = "pcmcia",
2626 .args_type = "",
2627 .params = "",
2628 .help = "show guest PCMCIA status",
2629 .mhandler.cmd = pcmcia_info,
2630 },
2631 {
2632 .name = "mice",
2633 .args_type = "",
2634 .params = "",
2635 .help = "show which guest mouse is receiving events",
2636 .mhandler.cmd = hmp_info_mice,
2637 },
2638 {
2639 .name = "vnc",
2640 .args_type = "",
2641 .params = "",
2642 .help = "show the vnc server status",
2643 .mhandler.cmd = hmp_info_vnc,
2644 },
2645 #if defined(CONFIG_SPICE)
2646 {
2647 .name = "spice",
2648 .args_type = "",
2649 .params = "",
2650 .help = "show the spice server status",
2651 .mhandler.cmd = hmp_info_spice,
2652 },
2653 #endif
2654 {
2655 .name = "name",
2656 .args_type = "",
2657 .params = "",
2658 .help = "show the current VM name",
2659 .mhandler.cmd = hmp_info_name,
2660 },
2661 {
2662 .name = "uuid",
2663 .args_type = "",
2664 .params = "",
2665 .help = "show the current VM UUID",
2666 .mhandler.cmd = hmp_info_uuid,
2667 },
2668 #if defined(TARGET_PPC)
2669 {
2670 .name = "cpustats",
2671 .args_type = "",
2672 .params = "",
2673 .help = "show CPU statistics",
2674 .mhandler.cmd = do_info_cpu_stats,
2675 },
2676 #endif
2677 #if defined(CONFIG_SLIRP)
2678 {
2679 .name = "usernet",
2680 .args_type = "",
2681 .params = "",
2682 .help = "show user network stack connection states",
2683 .mhandler.cmd = do_info_usernet,
2684 },
2685 #endif
2686 {
2687 .name = "migrate",
2688 .args_type = "",
2689 .params = "",
2690 .help = "show migration status",
2691 .mhandler.cmd = hmp_info_migrate,
2692 },
2693 {
2694 .name = "migrate_capabilities",
2695 .args_type = "",
2696 .params = "",
2697 .help = "show current migration capabilities",
2698 .mhandler.cmd = hmp_info_migrate_capabilities,
2699 },
2700 {
2701 .name = "migrate_cache_size",
2702 .args_type = "",
2703 .params = "",
2704 .help = "show current migration xbzrle cache size",
2705 .mhandler.cmd = hmp_info_migrate_cache_size,
2706 },
2707 {
2708 .name = "balloon",
2709 .args_type = "",
2710 .params = "",
2711 .help = "show balloon information",
2712 .mhandler.cmd = hmp_info_balloon,
2713 },
2714 {
2715 .name = "qtree",
2716 .args_type = "",
2717 .params = "",
2718 .help = "show device tree",
2719 .mhandler.cmd = do_info_qtree,
2720 },
2721 {
2722 .name = "qdm",
2723 .args_type = "",
2724 .params = "",
2725 .help = "show qdev device model list",
2726 .mhandler.cmd = do_info_qdm,
2727 },
2728 {
2729 .name = "roms",
2730 .args_type = "",
2731 .params = "",
2732 .help = "show roms",
2733 .mhandler.cmd = do_info_roms,
2734 },
2735 {
2736 .name = "trace-events",
2737 .args_type = "",
2738 .params = "",
2739 .help = "show available trace-events & their state",
2740 .mhandler.cmd = do_trace_print_events,
2741 },
2742 {
2743 .name = "tpm",
2744 .args_type = "",
2745 .params = "",
2746 .help = "show the TPM device",
2747 .mhandler.cmd = hmp_info_tpm,
2748 },
2749 {
2750 .name = "cpu_max",
2751 .args_type = "",
2752 .params = "",
2753 .help = "Get maximum number of VCPUs supported by machine",
2754 .mhandler.cmd = hmp_query_cpu_max,
2755 },
2756 {
2757 .name = NULL,
2758 },
2759 };
2760
2761 /* mon_cmds and info_cmds would be sorted at runtime */
2762 static mon_cmd_t mon_cmds[] = {
2763 #include "hmp-commands.h"
2764 { NULL, NULL, },
2765 };
2766
2767 static const mon_cmd_t qmp_cmds[] = {
2768 #include "qmp-commands-old.h"
2769 { /* NULL */ },
2770 };
2771
2772 /*******************************************************************/
2773
2774 static const char *pch;
2775 static sigjmp_buf expr_env;
2776
2777 #define MD_TLONG 0
2778 #define MD_I32 1
2779
2780 typedef struct MonitorDef {
2781 const char *name;
2782 int offset;
2783 target_long (*get_value)(const struct MonitorDef *md, int val);
2784 int type;
2785 } MonitorDef;
2786
2787 #if defined(TARGET_I386)
2788 static target_long monitor_get_pc (const struct MonitorDef *md, int val)
2789 {
2790 CPUArchState *env = mon_get_cpu();
2791 return env->eip + env->segs[R_CS].base;
2792 }
2793 #endif
2794
2795 #if defined(TARGET_PPC)
2796 static target_long monitor_get_ccr (const struct MonitorDef *md, int val)
2797 {
2798 CPUArchState *env = mon_get_cpu();
2799 unsigned int u;
2800 int i;
2801
2802 u = 0;
2803 for (i = 0; i < 8; i++)
2804 u |= env->crf[i] << (32 - (4 * i));
2805
2806 return u;
2807 }
2808
2809 static target_long monitor_get_msr (const struct MonitorDef *md, int val)
2810 {
2811 CPUArchState *env = mon_get_cpu();
2812 return env->msr;
2813 }
2814
2815 static target_long monitor_get_xer (const struct MonitorDef *md, int val)
2816 {
2817 CPUArchState *env = mon_get_cpu();
2818 return env->xer;
2819 }
2820
2821 static target_long monitor_get_decr (const struct MonitorDef *md, int val)
2822 {
2823 CPUArchState *env = mon_get_cpu();
2824 return cpu_ppc_load_decr(env);
2825 }
2826
2827 static target_long monitor_get_tbu (const struct MonitorDef *md, int val)
2828 {
2829 CPUArchState *env = mon_get_cpu();
2830 return cpu_ppc_load_tbu(env);
2831 }
2832
2833 static target_long monitor_get_tbl (const struct MonitorDef *md, int val)
2834 {
2835 CPUArchState *env = mon_get_cpu();
2836 return cpu_ppc_load_tbl(env);
2837 }
2838 #endif
2839
2840 #if defined(TARGET_SPARC)
2841 #ifndef TARGET_SPARC64
2842 static target_long monitor_get_psr (const struct MonitorDef *md, int val)
2843 {
2844 CPUArchState *env = mon_get_cpu();
2845
2846 return cpu_get_psr(env);
2847 }
2848 #endif
2849
2850 static target_long monitor_get_reg(const struct MonitorDef *md, int val)
2851 {
2852 CPUArchState *env = mon_get_cpu();
2853 return env->regwptr[val];
2854 }
2855 #endif
2856
2857 static const MonitorDef monitor_defs[] = {
2858 #ifdef TARGET_I386
2859
2860 #define SEG(name, seg) \
2861 { name, offsetof(CPUX86State, segs[seg].selector), NULL, MD_I32 },\
2862 { name ".base", offsetof(CPUX86State, segs[seg].base) },\
2863 { name ".limit", offsetof(CPUX86State, segs[seg].limit), NULL, MD_I32 },
2864
2865 { "eax", offsetof(CPUX86State, regs[0]) },
2866 { "ecx", offsetof(CPUX86State, regs[1]) },
2867 { "edx", offsetof(CPUX86State, regs[2]) },
2868 { "ebx", offsetof(CPUX86State, regs[3]) },
2869 { "esp|sp", offsetof(CPUX86State, regs[4]) },
2870 { "ebp|fp", offsetof(CPUX86State, regs[5]) },
2871 { "esi", offsetof(CPUX86State, regs[6]) },
2872 { "edi", offsetof(CPUX86State, regs[7]) },
2873 #ifdef TARGET_X86_64
2874 { "r8", offsetof(CPUX86State, regs[8]) },
2875 { "r9", offsetof(CPUX86State, regs[9]) },
2876 { "r10", offsetof(CPUX86State, regs[10]) },
2877 { "r11", offsetof(CPUX86State, regs[11]) },
2878 { "r12", offsetof(CPUX86State, regs[12]) },
2879 { "r13", offsetof(CPUX86State, regs[13]) },
2880 { "r14", offsetof(CPUX86State, regs[14]) },
2881 { "r15", offsetof(CPUX86State, regs[15]) },
2882 #endif
2883 { "eflags", offsetof(CPUX86State, eflags) },
2884 { "eip", offsetof(CPUX86State, eip) },
2885 SEG("cs", R_CS)
2886 SEG("ds", R_DS)
2887 SEG("es", R_ES)
2888 SEG("ss", R_SS)
2889 SEG("fs", R_FS)
2890 SEG("gs", R_GS)
2891 { "pc", 0, monitor_get_pc, },
2892 #elif defined(TARGET_PPC)
2893 /* General purpose registers */
2894 { "r0", offsetof(CPUPPCState, gpr[0]) },
2895 { "r1", offsetof(CPUPPCState, gpr[1]) },
2896 { "r2", offsetof(CPUPPCState, gpr[2]) },
2897 { "r3", offsetof(CPUPPCState, gpr[3]) },
2898 { "r4", offsetof(CPUPPCState, gpr[4]) },
2899 { "r5", offsetof(CPUPPCState, gpr[5]) },
2900 { "r6", offsetof(CPUPPCState, gpr[6]) },
2901 { "r7", offsetof(CPUPPCState, gpr[7]) },
2902 { "r8", offsetof(CPUPPCState, gpr[8]) },
2903 { "r9", offsetof(CPUPPCState, gpr[9]) },
2904 { "r10", offsetof(CPUPPCState, gpr[10]) },
2905 { "r11", offsetof(CPUPPCState, gpr[11]) },
2906 { "r12", offsetof(CPUPPCState, gpr[12]) },
2907 { "r13", offsetof(CPUPPCState, gpr[13]) },
2908 { "r14", offsetof(CPUPPCState, gpr[14]) },
2909 { "r15", offsetof(CPUPPCState, gpr[15]) },
2910 { "r16", offsetof(CPUPPCState, gpr[16]) },
2911 { "r17", offsetof(CPUPPCState, gpr[17]) },
2912 { "r18", offsetof(CPUPPCState, gpr[18]) },
2913 { "r19", offsetof(CPUPPCState, gpr[19]) },
2914 { "r20", offsetof(CPUPPCState, gpr[20]) },
2915 { "r21", offsetof(CPUPPCState, gpr[21]) },
2916 { "r22", offsetof(CPUPPCState, gpr[22]) },
2917 { "r23", offsetof(CPUPPCState, gpr[23]) },
2918 { "r24", offsetof(CPUPPCState, gpr[24]) },
2919 { "r25", offsetof(CPUPPCState, gpr[25]) },
2920 { "r26", offsetof(CPUPPCState, gpr[26]) },
2921 { "r27", offsetof(CPUPPCState, gpr[27]) },
2922 { "r28", offsetof(CPUPPCState, gpr[28]) },
2923 { "r29", offsetof(CPUPPCState, gpr[29]) },
2924 { "r30", offsetof(CPUPPCState, gpr[30]) },
2925 { "r31", offsetof(CPUPPCState, gpr[31]) },
2926 /* Floating point registers */
2927 { "f0", offsetof(CPUPPCState, fpr[0]) },
2928 { "f1", offsetof(CPUPPCState, fpr[1]) },
2929 { "f2", offsetof(CPUPPCState, fpr[2]) },
2930 { "f3", offsetof(CPUPPCState, fpr[3]) },
2931 { "f4", offsetof(CPUPPCState, fpr[4]) },
2932 { "f5", offsetof(CPUPPCState, fpr[5]) },
2933 { "f6", offsetof(CPUPPCState, fpr[6]) },
2934 { "f7", offsetof(CPUPPCState, fpr[7]) },
2935 { "f8", offsetof(CPUPPCState, fpr[8]) },
2936 { "f9", offsetof(CPUPPCState, fpr[9]) },
2937 { "f10", offsetof(CPUPPCState, fpr[10]) },
2938 { "f11", offsetof(CPUPPCState, fpr[11]) },
2939 { "f12", offsetof(CPUPPCState, fpr[12]) },
2940 { "f13", offsetof(CPUPPCState, fpr[13]) },
2941 { "f14", offsetof(CPUPPCState, fpr[14]) },
2942 { "f15", offsetof(CPUPPCState, fpr[15]) },
2943 { "f16", offsetof(CPUPPCState, fpr[16]) },
2944 { "f17", offsetof(CPUPPCState, fpr[17]) },
2945 { "f18", offsetof(CPUPPCState, fpr[18]) },
2946 { "f19", offsetof(CPUPPCState, fpr[19]) },
2947 { "f20", offsetof(CPUPPCState, fpr[20]) },
2948 { "f21", offsetof(CPUPPCState, fpr[21]) },
2949 { "f22", offsetof(CPUPPCState, fpr[22]) },
2950 { "f23", offsetof(CPUPPCState, fpr[23]) },
2951 { "f24", offsetof(CPUPPCState, fpr[24]) },
2952 { "f25", offsetof(CPUPPCState, fpr[25]) },
2953 { "f26", offsetof(CPUPPCState, fpr[26]) },
2954 { "f27", offsetof(CPUPPCState, fpr[27]) },
2955 { "f28", offsetof(CPUPPCState, fpr[28]) },
2956 { "f29", offsetof(CPUPPCState, fpr[29]) },
2957 { "f30", offsetof(CPUPPCState, fpr[30]) },
2958 { "f31", offsetof(CPUPPCState, fpr[31]) },
2959 { "fpscr", offsetof(CPUPPCState, fpscr) },
2960 /* Next instruction pointer */
2961 { "nip|pc", offsetof(CPUPPCState, nip) },
2962 { "lr", offsetof(CPUPPCState, lr) },
2963 { "ctr", offsetof(CPUPPCState, ctr) },
2964 { "decr", 0, &monitor_get_decr, },
2965 { "ccr", 0, &monitor_get_ccr, },
2966 /* Machine state register */
2967 { "msr", 0, &monitor_get_msr, },
2968 { "xer", 0, &monitor_get_xer, },
2969 { "tbu", 0, &monitor_get_tbu, },
2970 { "tbl", 0, &monitor_get_tbl, },
2971 /* Segment registers */
2972 { "sdr1", offsetof(CPUPPCState, spr[SPR_SDR1]) },
2973 { "sr0", offsetof(CPUPPCState, sr[0]) },
2974 { "sr1", offsetof(CPUPPCState, sr[1]) },
2975 { "sr2", offsetof(CPUPPCState, sr[2]) },
2976 { "sr3", offsetof(CPUPPCState, sr[3]) },
2977 { "sr4", offsetof(CPUPPCState, sr[4]) },
2978 { "sr5", offsetof(CPUPPCState, sr[5]) },
2979 { "sr6", offsetof(CPUPPCState, sr[6]) },
2980 { "sr7", offsetof(CPUPPCState, sr[7]) },
2981 { "sr8", offsetof(CPUPPCState, sr[8]) },
2982 { "sr9", offsetof(CPUPPCState, sr[9]) },
2983 { "sr10", offsetof(CPUPPCState, sr[10]) },
2984 { "sr11", offsetof(CPUPPCState, sr[11]) },
2985 { "sr12", offsetof(CPUPPCState, sr[12]) },
2986 { "sr13", offsetof(CPUPPCState, sr[13]) },
2987 { "sr14", offsetof(CPUPPCState, sr[14]) },
2988 { "sr15", offsetof(CPUPPCState, sr[15]) },
2989 /* Too lazy to put BATs... */
2990 { "pvr", offsetof(CPUPPCState, spr[SPR_PVR]) },
2991
2992 { "srr0", offsetof(CPUPPCState, spr[SPR_SRR0]) },
2993 { "srr1", offsetof(CPUPPCState, spr[SPR_SRR1]) },
2994 { "sprg0", offsetof(CPUPPCState, spr[SPR_SPRG0]) },
2995 { "sprg1", offsetof(CPUPPCState, spr[SPR_SPRG1]) },
2996 { "sprg2", offsetof(CPUPPCState, spr[SPR_SPRG2]) },
2997 { "sprg3", offsetof(CPUPPCState, spr[SPR_SPRG3]) },
2998 { "sprg4", offsetof(CPUPPCState, spr[SPR_SPRG4]) },
2999 { "sprg5", offsetof(CPUPPCState, spr[SPR_SPRG5]) },
3000 { "sprg6", offsetof(CPUPPCState, spr[SPR_SPRG6]) },
3001 { "sprg7", offsetof(CPUPPCState, spr[SPR_SPRG7]) },
3002 { "pid", offsetof(CPUPPCState, spr[SPR_BOOKE_PID]) },
3003 { "csrr0", offsetof(CPUPPCState, spr[SPR_BOOKE_CSRR0]) },
3004 { "csrr1", offsetof(CPUPPCState, spr[SPR_BOOKE_CSRR1]) },
3005 { "esr", offsetof(CPUPPCState, spr[SPR_BOOKE_ESR]) },
3006 { "dear", offsetof(CPUPPCState, spr[SPR_BOOKE_DEAR]) },
3007 { "mcsr", offsetof(CPUPPCState, spr[SPR_BOOKE_MCSR]) },
3008 { "tsr", offsetof(CPUPPCState, spr[SPR_BOOKE_TSR]) },
3009 { "tcr", offsetof(CPUPPCState, spr[SPR_BOOKE_TCR]) },
3010 { "vrsave", offsetof(CPUPPCState, spr[SPR_VRSAVE]) },
3011 { "pir", offsetof(CPUPPCState, spr[SPR_BOOKE_PIR]) },
3012 { "mcsrr0", offsetof(CPUPPCState, spr[SPR_BOOKE_MCSRR0]) },
3013 { "mcsrr1", offsetof(CPUPPCState, spr[SPR_BOOKE_MCSRR1]) },
3014 { "decar", offsetof(CPUPPCState, spr[SPR_BOOKE_DECAR]) },
3015 { "ivpr", offsetof(CPUPPCState, spr[SPR_BOOKE_IVPR]) },
3016 { "epcr", offsetof(CPUPPCState, spr[SPR_BOOKE_EPCR]) },
3017 { "sprg8", offsetof(CPUPPCState, spr[SPR_BOOKE_SPRG8]) },
3018 { "ivor0", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR0]) },
3019 { "ivor1", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR1]) },
3020 { "ivor2", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR2]) },
3021 { "ivor3", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR3]) },
3022 { "ivor4", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR4]) },
3023 { "ivor5", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR5]) },
3024 { "ivor6", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR6]) },
3025 { "ivor7", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR7]) },
3026 { "ivor8", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR8]) },
3027 { "ivor9", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR9]) },
3028 { "ivor10", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR10]) },
3029 { "ivor11", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR11]) },
3030 { "ivor12", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR12]) },
3031 { "ivor13", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR13]) },
3032 { "ivor14", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR14]) },
3033 { "ivor15", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR15]) },
3034 { "ivor32", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR32]) },
3035 { "ivor33", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR33]) },
3036 { "ivor34", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR34]) },
3037 { "ivor35", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR35]) },
3038 { "ivor36", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR36]) },
3039 { "ivor37", offsetof(CPUPPCState, spr[SPR_BOOKE_IVOR37]) },
3040 { "mas0", offsetof(CPUPPCState, spr[SPR_BOOKE_MAS0]) },
3041 { "mas1", offsetof(CPUPPCState, spr[SPR_BOOKE_MAS1]) },
3042 { "mas2", offsetof(CPUPPCState, spr[SPR_BOOKE_MAS2]) },
3043 { "mas3", offsetof(CPUPPCState, spr[SPR_BOOKE_MAS3]) },
3044 { "mas4", offsetof(CPUPPCState, spr[SPR_BOOKE_MAS4]) },
3045 { "mas6", offsetof(CPUPPCState, spr[SPR_BOOKE_MAS6]) },
3046 { "mas7", offsetof(CPUPPCState, spr[SPR_BOOKE_MAS7]) },
3047 { "mmucfg", offsetof(CPUPPCState, spr[SPR_MMUCFG]) },
3048 { "tlb0cfg", offsetof(CPUPPCState, spr[SPR_BOOKE_TLB0CFG]) },
3049 { "tlb1cfg", offsetof(CPUPPCState, spr[SPR_BOOKE_TLB1CFG]) },
3050 { "epr", offsetof(CPUPPCState, spr[SPR_BOOKE_EPR]) },
3051 { "eplc", offsetof(CPUPPCState, spr[SPR_BOOKE_EPLC]) },
3052 { "epsc", offsetof(CPUPPCState, spr[SPR_BOOKE_EPSC]) },
3053 { "svr", offsetof(CPUPPCState, spr[SPR_E500_SVR]) },
3054 { "mcar", offsetof(CPUPPCState, spr[SPR_Exxx_MCAR]) },
3055 { "pid1", offsetof(CPUPPCState, spr[SPR_BOOKE_PID1]) },
3056 { "pid2", offsetof(CPUPPCState, spr[SPR_BOOKE_PID2]) },
3057 { "hid0", offsetof(CPUPPCState, spr[SPR_HID0]) },
3058
3059 #elif defined(TARGET_SPARC)
3060 { "g0", offsetof(CPUSPARCState, gregs[0]) },
3061 { "g1", offsetof(CPUSPARCState, gregs[1]) },
3062 { "g2", offsetof(CPUSPARCState, gregs[2]) },
3063 { "g3", offsetof(CPUSPARCState, gregs[3]) },
3064 { "g4", offsetof(CPUSPARCState, gregs[4]) },
3065 { "g5", offsetof(CPUSPARCState, gregs[5]) },
3066 { "g6", offsetof(CPUSPARCState, gregs[6]) },
3067 { "g7", offsetof(CPUSPARCState, gregs[7]) },
3068 { "o0", 0, monitor_get_reg },
3069 { "o1", 1, monitor_get_reg },
3070 { "o2", 2, monitor_get_reg },
3071 { "o3", 3, monitor_get_reg },
3072 { "o4", 4, monitor_get_reg },
3073 { "o5", 5, monitor_get_reg },
3074 { "o6", 6, monitor_get_reg },
3075 { "o7", 7, monitor_get_reg },
3076 { "l0", 8, monitor_get_reg },
3077 { "l1", 9, monitor_get_reg },
3078 { "l2", 10, monitor_get_reg },
3079 { "l3", 11, monitor_get_reg },
3080 { "l4", 12, monitor_get_reg },
3081 { "l5", 13, monitor_get_reg },
3082 { "l6", 14, monitor_get_reg },
3083 { "l7", 15, monitor_get_reg },
3084 { "i0", 16, monitor_get_reg },
3085 { "i1", 17, monitor_get_reg },
3086 { "i2", 18, monitor_get_reg },
3087 { "i3", 19, monitor_get_reg },
3088 { "i4", 20, monitor_get_reg },
3089 { "i5", 21, monitor_get_reg },
3090 { "i6", 22, monitor_get_reg },
3091 { "i7", 23, monitor_get_reg },
3092 { "pc", offsetof(CPUSPARCState, pc) },
3093 { "npc", offsetof(CPUSPARCState, npc) },
3094 { "y", offsetof(CPUSPARCState, y) },
3095 #ifndef TARGET_SPARC64
3096 { "psr", 0, &monitor_get_psr, },
3097 { "wim", offsetof(CPUSPARCState, wim) },
3098 #endif
3099 { "tbr", offsetof(CPUSPARCState, tbr) },
3100 { "fsr", offsetof(CPUSPARCState, fsr) },
3101 { "f0", offsetof(CPUSPARCState, fpr[0].l.upper) },
3102 { "f1", offsetof(CPUSPARCState, fpr[0].l.lower) },
3103 { "f2", offsetof(CPUSPARCState, fpr[1].l.upper) },
3104 { "f3", offsetof(CPUSPARCState, fpr[1].l.lower) },
3105 { "f4", offsetof(CPUSPARCState, fpr[2].l.upper) },
3106 { "f5", offsetof(CPUSPARCState, fpr[2].l.lower) },
3107 { "f6", offsetof(CPUSPARCState, fpr[3].l.upper) },
3108 { "f7", offsetof(CPUSPARCState, fpr[3].l.lower) },
3109 { "f8", offsetof(CPUSPARCState, fpr[4].l.upper) },
3110 { "f9", offsetof(CPUSPARCState, fpr[4].l.lower) },
3111 { "f10", offsetof(CPUSPARCState, fpr[5].l.upper) },
3112 { "f11", offsetof(CPUSPARCState, fpr[5].l.lower) },
3113 { "f12", offsetof(CPUSPARCState, fpr[6].l.upper) },
3114 { "f13", offsetof(CPUSPARCState, fpr[6].l.lower) },
3115 { "f14", offsetof(CPUSPARCState, fpr[7].l.upper) },
3116 { "f15", offsetof(CPUSPARCState, fpr[7].l.lower) },
3117 { "f16", offsetof(CPUSPARCState, fpr[8].l.upper) },
3118 { "f17", offsetof(CPUSPARCState, fpr[8].l.lower) },
3119 { "f18", offsetof(CPUSPARCState, fpr[9].l.upper) },
3120 { "f19", offsetof(CPUSPARCState, fpr[9].l.lower) },
3121 { "f20", offsetof(CPUSPARCState, fpr[10].l.upper) },
3122 { "f21", offsetof(CPUSPARCState, fpr[10].l.lower) },
3123 { "f22", offsetof(CPUSPARCState, fpr[11].l.upper) },
3124 { "f23", offsetof(CPUSPARCState, fpr[11].l.lower) },
3125 { "f24", offsetof(CPUSPARCState, fpr[12].l.upper) },
3126 { "f25", offsetof(CPUSPARCState, fpr[12].l.lower) },
3127 { "f26", offsetof(CPUSPARCState, fpr[13].l.upper) },
3128 { "f27", offsetof(CPUSPARCState, fpr[13].l.lower) },
3129 { "f28", offsetof(CPUSPARCState, fpr[14].l.upper) },
3130 { "f29", offsetof(CPUSPARCState, fpr[14].l.lower) },
3131 { "f30", offsetof(CPUSPARCState, fpr[15].l.upper) },
3132 { "f31", offsetof(CPUSPARCState, fpr[15].l.lower) },
3133 #ifdef TARGET_SPARC64
3134 { "f32", offsetof(CPUSPARCState, fpr[16]) },
3135 { "f34", offsetof(CPUSPARCState, fpr[17]) },
3136 { "f36", offsetof(CPUSPARCState, fpr[18]) },
3137 { "f38", offsetof(CPUSPARCState, fpr[19]) },
3138 { "f40", offsetof(CPUSPARCState, fpr[20]) },
3139 { "f42", offsetof(CPUSPARCState, fpr[21]) },
3140 { "f44", offsetof(CPUSPARCState, fpr[22]) },
3141 { "f46", offsetof(CPUSPARCState, fpr[23]) },
3142 { "f48", offsetof(CPUSPARCState, fpr[24]) },
3143 { "f50", offsetof(CPUSPARCState, fpr[25]) },
3144 { "f52", offsetof(CPUSPARCState, fpr[26]) },
3145 { "f54", offsetof(CPUSPARCState, fpr[27]) },
3146 { "f56", offsetof(CPUSPARCState, fpr[28]) },
3147 { "f58", offsetof(CPUSPARCState, fpr[29]) },
3148 { "f60", offsetof(CPUSPARCState, fpr[30]) },
3149 { "f62", offsetof(CPUSPARCState, fpr[31]) },
3150 { "asi", offsetof(CPUSPARCState, asi) },
3151 { "pstate", offsetof(CPUSPARCState, pstate) },
3152 { "cansave", offsetof(CPUSPARCState, cansave) },
3153 { "canrestore", offsetof(CPUSPARCState, canrestore) },
3154 { "otherwin", offsetof(CPUSPARCState, otherwin) },
3155 { "wstate", offsetof(CPUSPARCState, wstate) },
3156 { "cleanwin", offsetof(CPUSPARCState, cleanwin) },
3157 { "fprs", offsetof(CPUSPARCState, fprs) },
3158 #endif
3159 #endif
3160 { NULL },
3161 };
3162
3163 static void expr_error(Monitor *mon, const char *msg)
3164 {
3165 monitor_printf(mon, "%s\n", msg);
3166 siglongjmp(expr_env, 1);
3167 }
3168
3169 /* return 0 if OK, -1 if not found */
3170 static int get_monitor_def(target_long *pval, const char *name)
3171 {
3172 const MonitorDef *md;
3173 void *ptr;
3174
3175 for(md = monitor_defs; md->name != NULL; md++) {
3176 if (compare_cmd(name, md->name)) {
3177 if (md->get_value) {
3178 *pval = md->get_value(md, md->offset);
3179 } else {
3180 CPUArchState *env = mon_get_cpu();
3181 ptr = (uint8_t *)env + md->offset;
3182 switch(md->type) {
3183 case MD_I32:
3184 *pval = *(int32_t *)ptr;
3185 break;
3186 case MD_TLONG:
3187 *pval = *(target_long *)ptr;
3188 break;
3189 default:
3190 *pval = 0;
3191 break;
3192 }
3193 }
3194 return 0;
3195 }
3196 }
3197 return -1;
3198 }
3199
3200 static void next(void)
3201 {
3202 if (*pch != '\0') {
3203 pch++;
3204 while (qemu_isspace(*pch))
3205 pch++;
3206 }
3207 }
3208
3209 static int64_t expr_sum(Monitor *mon);
3210
3211 static int64_t expr_unary(Monitor *mon)
3212 {
3213 int64_t n;
3214 char *p;
3215 int ret;
3216
3217 switch(*pch) {
3218 case '+':
3219 next();
3220 n = expr_unary(mon);
3221 break;
3222 case '-':
3223 next();
3224 n = -expr_unary(mon);
3225 break;
3226 case '~':
3227 next();
3228 n = ~expr_unary(mon);
3229 break;
3230 case '(':
3231 next();
3232 n = expr_sum(mon);
3233 if (*pch != ')') {
3234 expr_error(mon, "')' expected");
3235 }
3236 next();
3237 break;
3238 case '\'':
3239 pch++;
3240 if (*pch == '\0')
3241 expr_error(mon, "character constant expected");
3242 n = *pch;
3243 pch++;
3244 if (*pch != '\'')
3245 expr_error(mon, "missing terminating \' character");
3246 next();
3247 break;
3248 case '$':
3249 {
3250 char buf[128], *q;
3251 target_long reg=0;
3252
3253 pch++;
3254 q = buf;
3255 while ((*pch >= 'a' && *pch <= 'z') ||
3256 (*pch >= 'A' && *pch <= 'Z') ||
3257 (*pch >= '0' && *pch <= '9') ||
3258 *pch == '_' || *pch == '.') {
3259 if ((q - buf) < sizeof(buf) - 1)
3260 *q++ = *pch;
3261 pch++;
3262 }
3263 while (qemu_isspace(*pch))
3264 pch++;
3265 *q = 0;
3266 ret = get_monitor_def(&reg, buf);
3267 if (ret < 0)
3268 expr_error(mon, "unknown register");
3269 n = reg;
3270 }
3271 break;
3272 case '\0':
3273 expr_error(mon, "unexpected end of expression");
3274 n = 0;
3275 break;
3276 default:
3277 errno = 0;
3278 n = strtoull(pch, &p, 0);
3279 if (errno == ERANGE) {
3280 expr_error(mon, "number too large");
3281 }
3282 if (pch == p) {
3283 expr_error(mon, "invalid char in expression");
3284 }
3285 pch = p;
3286 while (qemu_isspace(*pch))
3287 pch++;
3288 break;
3289 }
3290 return n;
3291 }
3292
3293
3294 static int64_t expr_prod(Monitor *mon)
3295 {
3296 int64_t val, val2;
3297 int op;
3298
3299 val = expr_unary(mon);
3300 for(;;) {
3301 op = *pch;
3302 if (op != '*' && op != '/' && op != '%')
3303 break;
3304 next();
3305 val2 = expr_unary(mon);
3306 switch(op) {
3307 default:
3308 case '*':
3309 val *= val2;
3310 break;
3311 case '/':
3312 case '%':
3313 if (val2 == 0)
3314 expr_error(mon, "division by zero");
3315 if (op == '/')
3316 val /= val2;
3317 else
3318 val %= val2;
3319 break;
3320 }
3321 }
3322 return val;
3323 }
3324
3325 static int64_t expr_logic(Monitor *mon)
3326 {
3327 int64_t val, val2;
3328 int op;
3329
3330 val = expr_prod(mon);
3331 for(;;) {
3332 op = *pch;
3333 if (op != '&' && op != '|' && op != '^')
3334 break;
3335 next();
3336 val2 = expr_prod(mon);
3337 switch(op) {
3338 default:
3339 case '&':
3340 val &= val2;
3341 break;
3342 case '|':
3343 val |= val2;
3344 break;
3345 case '^':
3346 val ^= val2;
3347 break;
3348 }
3349 }
3350 return val;
3351 }
3352
3353 static int64_t expr_sum(Monitor *mon)
3354 {
3355 int64_t val, val2;
3356 int op;
3357
3358 val = expr_logic(mon);
3359 for(;;) {
3360 op = *pch;
3361 if (op != '+' && op != '-')
3362 break;
3363 next();
3364 val2 = expr_logic(mon);
3365 if (op == '+')
3366 val += val2;
3367 else
3368 val -= val2;
3369 }
3370 return val;
3371 }
3372
3373 static int get_expr(Monitor *mon, int64_t *pval, const char **pp)
3374 {
3375 pch = *pp;
3376 if (sigsetjmp(expr_env, 0)) {
3377 *pp = pch;
3378 return -1;
3379 }
3380 while (qemu_isspace(*pch))
3381 pch++;
3382 *pval = expr_sum(mon);
3383 *pp = pch;
3384 return 0;
3385 }
3386
3387 static int get_double(Monitor *mon, double *pval, const char **pp)
3388 {
3389 const char *p = *pp;
3390 char *tailp;
3391 double d;
3392
3393 d = strtod(p, &tailp);
3394 if (tailp == p) {
3395 monitor_printf(mon, "Number expected\n");
3396 return -1;
3397 }
3398 if (d != d || d - d != 0) {
3399 /* NaN or infinity */
3400 monitor_printf(mon, "Bad number\n");
3401 return -1;
3402 }
3403 *pval = d;
3404 *pp = tailp;
3405 return 0;
3406 }
3407
3408 static int get_str(char *buf, int buf_size, const char **pp)
3409 {
3410 const char *p;
3411 char *q;
3412 int c;
3413
3414 q = buf;
3415 p = *pp;
3416 while (qemu_isspace(*p))
3417 p++;
3418 if (*p == '\0') {
3419 fail:
3420 *q = '\0';
3421 *pp = p;
3422 return -1;
3423 }
3424 if (*p == '\"') {
3425 p++;
3426 while (*p != '\0' && *p != '\"') {
3427 if (*p == '\\') {
3428 p++;
3429 c = *p++;
3430 switch(c) {
3431 case 'n':
3432 c = '\n';
3433 break;
3434 case 'r':
3435 c = '\r';
3436 break;
3437 case '\\':
3438 case '\'':
3439 case '\"':
3440 break;
3441 default:
3442 qemu_printf("unsupported escape code: '\\%c'\n", c);
3443 goto fail;
3444 }
3445 if ((q - buf) < buf_size - 1) {
3446 *q++ = c;
3447 }
3448 } else {
3449 if ((q - buf) < buf_size - 1) {
3450 *q++ = *p;
3451 }
3452 p++;
3453 }
3454 }
3455 if (*p != '\"') {
3456 qemu_printf("unterminated string\n");
3457 goto fail;
3458 }
3459 p++;
3460 } else {
3461 while (*p != '\0' && !qemu_isspace(*p)) {
3462 if ((q - buf) < buf_size - 1) {
3463 *q++ = *p;
3464 }
3465 p++;
3466 }
3467 }
3468 *q = '\0';
3469 *pp = p;
3470 return 0;
3471 }
3472
3473 /*
3474 * Store the command-name in cmdname, and return a pointer to
3475 * the remaining of the command string.
3476 */
3477 static const char *get_command_name(const char *cmdline,
3478 char *cmdname, size_t nlen)
3479 {
3480 size_t len;
3481 const char *p, *pstart;
3482
3483 p = cmdline;
3484 while (qemu_isspace(*p))
3485 p++;
3486 if (*p == '\0')
3487 return NULL;
3488 pstart = p;
3489 while (*p != '\0' && *p != '/' && !qemu_isspace(*p))
3490 p++;
3491 len = p - pstart;
3492 if (len > nlen - 1)
3493 len = nlen - 1;
3494 memcpy(cmdname, pstart, len);
3495 cmdname[len] = '\0';
3496 return p;
3497 }
3498
3499 /**
3500 * Read key of 'type' into 'key' and return the current
3501 * 'type' pointer.
3502 */
3503 static char *key_get_info(const char *type, char **key)
3504 {
3505 size_t len;
3506 char *p, *str;
3507
3508 if (*type == ',')
3509 type++;
3510
3511 p = strchr(type, ':');
3512 if (!p) {
3513 *key = NULL;
3514 return NULL;
3515 }
3516 len = p - type;
3517
3518 str = g_malloc(len + 1);
3519 memcpy(str, type, len);
3520 str[len] = '\0';
3521
3522 *key = str;
3523 return ++p;
3524 }
3525
3526 static int default_fmt_format = 'x';
3527 static int default_fmt_size = 4;
3528
3529 #define MAX_ARGS 16
3530
3531 static int is_valid_option(const char *c, const char *typestr)
3532 {
3533 char option[3];
3534
3535 option[0] = '-';
3536 option[1] = *c;
3537 option[2] = '\0';
3538
3539 typestr = strstr(typestr, option);
3540 return (typestr != NULL);
3541 }
3542
3543 static const mon_cmd_t *search_dispatch_table(const mon_cmd_t *disp_table,
3544 const char *cmdname)
3545 {
3546 const mon_cmd_t *cmd;
3547
3548 for (cmd = disp_table; cmd->name != NULL; cmd++) {
3549 if (compare_cmd(cmdname, cmd->name)) {
3550 return cmd;
3551 }
3552 }
3553
3554 return NULL;
3555 }
3556
3557 static const mon_cmd_t *qmp_find_cmd(const char *cmdname)
3558 {
3559 return search_dispatch_table(qmp_cmds, cmdname);
3560 }
3561
3562 /*
3563 * Parse @cmdline according to command table @table.
3564 * If @cmdline is blank, return NULL.
3565 * If it can't be parsed, report to @mon, and return NULL.
3566 * Else, insert command arguments into @qdict, and return the command.
3567 * If a sub-command table exists, and if @cmdline contains an additional string
3568 * for a sub-command, this function will try to search the sub-command table.
3569 * If no additional string for a sub-command is present, this function will
3570 * return the command found in @table.
3571 * Do not assume the returned command points into @table! It doesn't
3572 * when the command is a sub-command.
3573 */
3574 static const mon_cmd_t *monitor_parse_command(Monitor *mon,
3575 const char *cmdline,
3576 int start,
3577 mon_cmd_t *table,
3578 QDict *qdict)
3579 {
3580 const char *p, *typestr;
3581 int c;
3582 const mon_cmd_t *cmd;
3583 char cmdname[256];
3584 char buf[1024];
3585 char *key;
3586
3587 #ifdef DEBUG
3588 monitor_printf(mon, "command='%s', start='%d'\n", cmdline, start);
3589 #endif
3590
3591 /* extract the command name */
3592 p = get_command_name(cmdline + start, cmdname, sizeof(cmdname));
3593 if (!p)
3594 return NULL;
3595
3596 cmd = search_dispatch_table(table, cmdname);
3597 if (!cmd) {
3598 monitor_printf(mon, "unknown command: '%.*s'\n",
3599 (int)(p - cmdline), cmdline);
3600 return NULL;
3601 }
3602
3603 /* filter out following useless space */
3604 while (qemu_isspace(*p)) {
3605 p++;
3606 }
3607 /* search sub command */
3608 if (cmd->sub_table != NULL) {
3609 /* check if user set additional command */
3610 if (*p == '\0') {
3611 return cmd;
3612 }
3613 return monitor_parse_command(mon, cmdline, p - cmdline,
3614 cmd->sub_table, qdict);
3615 }
3616
3617 /* parse the parameters */
3618 typestr = cmd->args_type;
3619 for(;;) {
3620 typestr = key_get_info(typestr, &key);
3621 if (!typestr)
3622 break;
3623 c = *typestr;
3624 typestr++;
3625 switch(c) {
3626 case 'F':
3627 case 'B':
3628 case 's':
3629 {
3630 int ret;
3631
3632 while (qemu_isspace(*p))
3633 p++;
3634 if (*typestr == '?') {
3635 typestr++;
3636 if (*p == '\0') {
3637 /* no optional string: NULL argument */
3638 break;
3639 }
3640 }
3641 ret = get_str(buf, sizeof(buf), &p);
3642 if (ret < 0) {
3643 switch(c) {
3644 case 'F':
3645 monitor_printf(mon, "%s: filename expected\n",
3646 cmdname);
3647 break;
3648 case 'B':
3649 monitor_printf(mon, "%s: block device name expected\n",
3650 cmdname);
3651 break;
3652 default:
3653 monitor_printf(mon, "%s: string expected\n", cmdname);
3654 break;
3655 }
3656 goto fail;
3657 }
3658 qdict_put(qdict, key, qstring_from_str(buf));
3659 }
3660 break;
3661 case 'O':
3662 {
3663 QemuOptsList *opts_list;
3664 QemuOpts *opts;
3665
3666 opts_list = qemu_find_opts(key);
3667 if (!opts_list || opts_list->desc->name) {
3668 goto bad_type;
3669 }
3670 while (qemu_isspace(*p)) {
3671 p++;
3672 }
3673 if (!*p)
3674 break;
3675 if (get_str(buf, sizeof(buf), &p) < 0) {
3676 goto fail;
3677 }
3678 opts = qemu_opts_parse(opts_list, buf, 1);
3679 if (!opts) {
3680 goto fail;
3681 }
3682 qemu_opts_to_qdict(opts, qdict);
3683 qemu_opts_del(opts);
3684 }
3685 break;
3686 case '/':
3687 {
3688 int count, format, size;
3689
3690 while (qemu_isspace(*p))
3691 p++;
3692 if (*p == '/') {
3693 /* format found */
3694 p++;
3695 count = 1;
3696 if (qemu_isdigit(*p)) {
3697 count = 0;
3698 while (qemu_isdigit(*p)) {
3699 count = count * 10 + (*p - '0');
3700 p++;
3701 }
3702 }
3703 size = -1;
3704 format = -1;
3705 for(;;) {
3706 switch(*p) {
3707 case 'o':
3708 case 'd':
3709 case 'u':
3710 case 'x':
3711 case 'i':
3712 case 'c':
3713 format = *p++;
3714 break;
3715 case 'b':
3716 size = 1;
3717 p++;
3718 break;
3719 case 'h':
3720 size = 2;
3721 p++;
3722 break;
3723 case 'w':
3724 size = 4;
3725 p++;
3726 break;
3727 case 'g':
3728 case 'L':
3729 size = 8;
3730 p++;
3731 break;
3732 default:
3733 goto next;
3734 }
3735 }
3736 next:
3737 if (*p != '\0' && !qemu_isspace(*p)) {
3738 monitor_printf(mon, "invalid char in format: '%c'\n",
3739 *p);
3740 goto fail;
3741 }
3742 if (format < 0)
3743 format = default_fmt_format;
3744 if (format != 'i') {
3745 /* for 'i', not specifying a size gives -1 as size */
3746 if (size < 0)
3747 size = default_fmt_size;
3748 default_fmt_size = size;
3749 }
3750 default_fmt_format = format;
3751 } else {
3752 count = 1;
3753 format = default_fmt_format;
3754 if (format != 'i') {
3755 size = default_fmt_size;
3756 } else {
3757 size = -1;
3758 }
3759 }
3760 qdict_put(qdict, "count", qint_from_int(count));
3761 qdict_put(qdict, "format", qint_from_int(format));
3762 qdict_put(qdict, "size", qint_from_int(size));
3763 }
3764 break;
3765 case 'i':
3766 case 'l':
3767 case 'M':
3768 {
3769 int64_t val;
3770
3771 while (qemu_isspace(*p))
3772 p++;
3773 if (*typestr == '?' || *typestr == '.') {
3774 if (*typestr == '?') {
3775 if (*p == '\0') {
3776 typestr++;
3777 break;
3778 }
3779 } else {
3780 if (*p == '.') {
3781 p++;
3782 while (qemu_isspace(*p))
3783 p++;
3784 } else {
3785 typestr++;
3786 break;
3787 }
3788 }
3789 typestr++;
3790 }
3791 if (get_expr(mon, &val, &p))
3792 goto fail;
3793 /* Check if 'i' is greater than 32-bit */
3794 if ((c == 'i') && ((val >> 32) & 0xffffffff)) {
3795 monitor_printf(mon, "\'%s\' has failed: ", cmdname);
3796 monitor_printf(mon, "integer is for 32-bit values\n");
3797 goto fail;
3798 } else if (c == 'M') {
3799 if (val < 0) {
3800 monitor_printf(mon, "enter a positive value\n");
3801 goto fail;
3802 }
3803 val <<= 20;
3804 }
3805 qdict_put(qdict, key, qint_from_int(val));
3806 }
3807 break;
3808 case 'o':
3809 {
3810 int64_t val;
3811 char *end;
3812
3813 while (qemu_isspace(*p)) {
3814 p++;
3815 }
3816 if (*typestr == '?') {
3817 typestr++;
3818 if (*p == '\0') {
3819 break;
3820 }
3821 }
3822 val = strtosz(p, &end);
3823 if (val < 0) {
3824 monitor_printf(mon, "invalid size\n");
3825 goto fail;
3826 }
3827 qdict_put(qdict, key, qint_from_int(val));
3828 p = end;
3829 }
3830 break;
3831 case 'T':
3832 {
3833 double val;
3834
3835 while (qemu_isspace(*p))
3836 p++;
3837 if (*typestr == '?') {
3838 typestr++;
3839 if (*p == '\0') {
3840 break;
3841 }
3842 }
3843 if (get_double(mon, &val, &p) < 0) {
3844 goto fail;
3845 }
3846 if (p[0] && p[1] == 's') {
3847 switch (*p) {
3848 case 'm':
3849 val /= 1e3; p += 2; break;
3850 case 'u':
3851 val /= 1e6; p += 2; break;
3852 case 'n':
3853 val /= 1e9; p += 2; break;
3854 }
3855 }
3856 if (*p && !qemu_isspace(*p)) {
3857 monitor_printf(mon, "Unknown unit suffix\n");
3858 goto fail;
3859 }
3860 qdict_put(qdict, key, qfloat_from_double(val));
3861 }
3862 break;
3863 case 'b':
3864 {
3865 const char *beg;
3866 int val;
3867
3868 while (qemu_isspace(*p)) {
3869 p++;
3870 }
3871 beg = p;
3872 while (qemu_isgraph(*p)) {
3873 p++;
3874 }
3875 if (p - beg == 2 && !memcmp(beg, "on", p - beg)) {
3876 val = 1;
3877 } else if (p - beg == 3 && !memcmp(beg, "off", p - beg)) {
3878 val = 0;
3879 } else {
3880 monitor_printf(mon, "Expected 'on' or 'off'\n");
3881 goto fail;
3882 }
3883 qdict_put(qdict, key, qbool_from_int(val));
3884 }
3885 break;
3886 case '-':
3887 {
3888 const char *tmp = p;
3889 int skip_key = 0;
3890 /* option */
3891
3892 c = *typestr++;
3893 if (c == '\0')
3894 goto bad_type;
3895 while (qemu_isspace(*p))
3896 p++;
3897 if (*p == '-') {
3898 p++;
3899 if(c != *p) {
3900 if(!is_valid_option(p, typestr)) {
3901
3902 monitor_printf(mon, "%s: unsupported option -%c\n",
3903 cmdname, *p);
3904 goto fail;
3905 } else {
3906 skip_key = 1;
3907 }
3908 }
3909 if(skip_key) {
3910 p = tmp;
3911 } else {
3912 /* has option */
3913 p++;
3914 qdict_put(qdict, key, qbool_from_int(1));
3915 }
3916 }
3917 }
3918 break;
3919 default:
3920 bad_type:
3921 monitor_printf(mon, "%s: unknown type '%c'\n", cmdname, c);
3922 goto fail;
3923 }
3924 g_free(key);
3925 key = NULL;
3926 }
3927 /* check that all arguments were parsed */
3928 while (qemu_isspace(*p))
3929 p++;
3930 if (*p != '\0') {
3931 monitor_printf(mon, "%s: extraneous characters at the end of line\n",
3932 cmdname);
3933 goto fail;
3934 }
3935
3936 return cmd;
3937
3938 fail:
3939 g_free(key);
3940 return NULL;
3941 }
3942
3943 void monitor_set_error(Monitor *mon, QError *qerror)
3944 {
3945 /* report only the first error */
3946 if (!mon->error) {
3947 mon->error = qerror;
3948 } else {
3949 QDECREF(qerror);
3950 }
3951 }
3952
3953 static void handler_audit(Monitor *mon, const mon_cmd_t *cmd, int ret)
3954 {
3955 if (ret && !monitor_has_error(mon)) {
3956 /*
3957 * If it returns failure, it must have passed on error.
3958 *
3959 * Action: Report an internal error to the client if in QMP.
3960 */
3961 qerror_report(QERR_UNDEFINED_ERROR);
3962 }
3963 }
3964
3965 static void handle_user_command(Monitor *mon, const char *cmdline)
3966 {
3967 QDict *qdict;
3968 const mon_cmd_t *cmd;
3969
3970 qdict = qdict_new();
3971
3972 cmd = monitor_parse_command(mon, cmdline, 0, mon_cmds, qdict);
3973 if (!cmd)
3974 goto out;
3975
3976 if (handler_is_async(cmd)) {
3977 user_async_cmd_handler(mon, cmd, qdict);
3978 } else if (handler_is_qobject(cmd)) {
3979 QObject *data = NULL;
3980
3981 /* XXX: ignores the error code */
3982 cmd->mhandler.cmd_new(mon, qdict, &data);
3983 assert(!monitor_has_error(mon));
3984 if (data) {
3985 cmd->user_print(mon, data);
3986 qobject_decref(data);
3987 }
3988 } else {
3989 cmd->mhandler.cmd(mon, qdict);
3990 }
3991
3992 out:
3993 QDECREF(qdict);
3994 }
3995
3996 static void cmd_completion(const char *name, const char *list)
3997 {
3998 const char *p, *pstart;
3999 char cmd[128];
4000 int len;
4001
4002 p = list;
4003 for(;;) {
4004 pstart = p;
4005 p = strchr(p, '|');
4006 if (!p)
4007 p = pstart + strlen(pstart);
4008 len = p - pstart;
4009 if (len > sizeof(cmd) - 2)
4010 len = sizeof(cmd) - 2;
4011 memcpy(cmd, pstart, len);
4012 cmd[len] = '\0';
4013 if (name[0] == '\0' || !strncmp(name, cmd, strlen(name))) {
4014 readline_add_completion(cur_mon->rs, cmd);
4015 }
4016 if (*p == '\0')
4017 break;
4018 p++;
4019 }
4020 }
4021
4022 static void file_completion(const char *input)
4023 {
4024 DIR *ffs;
4025 struct dirent *d;
4026 char path[1024];
4027 char file[1024], file_prefix[1024];
4028 int input_path_len;
4029 const char *p;
4030
4031 p = strrchr(input, '/');
4032 if (!p) {
4033 input_path_len = 0;
4034 pstrcpy(file_prefix, sizeof(file_prefix), input);
4035 pstrcpy(path, sizeof(path), ".");
4036 } else {
4037 input_path_len = p - input + 1;
4038 memcpy(path, input, input_path_len);
4039 if (input_path_len > sizeof(path) - 1)
4040 input_path_len = sizeof(path) - 1;
4041 path[input_path_len] = '\0';
4042 pstrcpy(file_prefix, sizeof(file_prefix), p + 1);
4043 }
4044 #ifdef DEBUG_COMPLETION
4045 monitor_printf(cur_mon, "input='%s' path='%s' prefix='%s'\n",
4046 input, path, file_prefix);
4047 #endif
4048 ffs = opendir(path);
4049 if (!ffs)
4050 return;
4051 for(;;) {
4052 struct stat sb;
4053 d = readdir(ffs);
4054 if (!d)
4055 break;
4056
4057 if (strcmp(d->d_name, ".") == 0 || strcmp(d->d_name, "..") == 0) {
4058 continue;
4059 }
4060
4061 if (strstart(d->d_name, file_prefix, NULL)) {
4062 memcpy(file, input, input_path_len);
4063 if (input_path_len < sizeof(file))
4064 pstrcpy(file + input_path_len, sizeof(file) - input_path_len,
4065 d->d_name);
4066 /* stat the file to find out if it's a directory.
4067 * In that case add a slash to speed up typing long paths
4068 */
4069 if (stat(file, &sb) == 0 && S_ISDIR(sb.st_mode)) {
4070 pstrcat(file, sizeof(file), "/");
4071 }
4072 readline_add_completion(cur_mon->rs, file);
4073 }
4074 }
4075 closedir(ffs);
4076 }
4077
4078 static void block_completion_it(void *opaque, BlockDriverState *bs)
4079 {
4080 const char *name = bdrv_get_device_name(bs);
4081 const char *input = opaque;
4082
4083 if (input[0] == '\0' ||
4084 !strncmp(name, (char *)input, strlen(input))) {
4085 readline_add_completion(cur_mon->rs, name);
4086 }
4087 }
4088
4089 /* NOTE: this parser is an approximate form of the real command parser */
4090 static void parse_cmdline(const char *cmdline,
4091 int *pnb_args, char **args)
4092 {
4093 const char *p;
4094 int nb_args, ret;
4095 char buf[1024];
4096
4097 p = cmdline;
4098 nb_args = 0;
4099 for(;;) {
4100 while (qemu_isspace(*p))
4101 p++;
4102 if (*p == '\0')
4103 break;
4104 if (nb_args >= MAX_ARGS)
4105 break;
4106 ret = get_str(buf, sizeof(buf), &p);
4107 args[nb_args] = g_strdup(buf);
4108 nb_args++;
4109 if (ret < 0)
4110 break;
4111 }
4112 *pnb_args = nb_args;
4113 }
4114
4115 static const char *next_arg_type(const char *typestr)
4116 {
4117 const char *p = strchr(typestr, ':');
4118 return (p != NULL ? ++p : typestr);
4119 }
4120
4121 static void monitor_find_completion(const char *cmdline)
4122 {
4123 const char *cmdname;
4124 char *args[MAX_ARGS];
4125 int nb_args, i, len;
4126 const char *ptype, *str;
4127 const mon_cmd_t *cmd;
4128
4129 parse_cmdline(cmdline, &nb_args, args);
4130 #ifdef DEBUG_COMPLETION
4131 for(i = 0; i < nb_args; i++) {
4132 monitor_printf(cur_mon, "arg%d = '%s'\n", i, (char *)args[i]);
4133 }
4134 #endif
4135
4136 /* if the line ends with a space, it means we want to complete the
4137 next arg */
4138 len = strlen(cmdline);
4139 if (len > 0 && qemu_isspace(cmdline[len - 1])) {
4140 if (nb_args >= MAX_ARGS) {
4141 goto cleanup;
4142 }
4143 args[nb_args++] = g_strdup("");
4144 }
4145 if (nb_args <= 1) {
4146 /* command completion */
4147 if (nb_args == 0)
4148 cmdname = "";
4149 else
4150 cmdname = args[0];
4151 readline_set_completion_index(cur_mon->rs, strlen(cmdname));
4152 for(cmd = mon_cmds; cmd->name != NULL; cmd++) {
4153 cmd_completion(cmdname, cmd->name);
4154 }
4155 } else {
4156 /* find the command */
4157 for (cmd = mon_cmds; cmd->name != NULL; cmd++) {
4158 if (compare_cmd(args[0], cmd->name)) {
4159 break;
4160 }
4161 }
4162 if (!cmd->name) {
4163 goto cleanup;
4164 }
4165
4166 ptype = next_arg_type(cmd->args_type);
4167 for(i = 0; i < nb_args - 2; i++) {
4168 if (*ptype != '\0') {
4169 ptype = next_arg_type(ptype);
4170 while (*ptype == '?')
4171 ptype = next_arg_type(ptype);
4172 }
4173 }
4174 str = args[nb_args - 1];
4175 if (*ptype == '-' && ptype[1] != '\0') {
4176 ptype = next_arg_type(ptype);
4177 }
4178 switch(*ptype) {
4179 case 'F':
4180 /* file completion */
4181 readline_set_completion_index(cur_mon->rs, strlen(str));
4182 file_completion(str);
4183 break;
4184 case 'B':
4185 /* block device name completion */
4186 readline_set_completion_index(cur_mon->rs, strlen(str));
4187 bdrv_iterate(block_completion_it, (void *)str);
4188 break;
4189 case 's':
4190 /* XXX: more generic ? */
4191 if (!strcmp(cmd->name, "info")) {
4192 readline_set_completion_index(cur_mon->rs, strlen(str));
4193 for(cmd = info_cmds; cmd->name != NULL; cmd++) {
4194 cmd_completion(str, cmd->name);
4195 }
4196 } else if (!strcmp(cmd->name, "sendkey")) {
4197 char *sep = strrchr(str, '-');
4198 if (sep)
4199 str = sep + 1;
4200 readline_set_completion_index(cur_mon->rs, strlen(str));
4201 for (i = 0; i < Q_KEY_CODE_MAX; i++) {
4202 cmd_completion(str, QKeyCode_lookup[i]);
4203 }
4204 } else if (!strcmp(cmd->name, "help|?")) {
4205 readline_set_completion_index(cur_mon->rs, strlen(str));
4206 for (cmd = mon_cmds; cmd->name != NULL; cmd++) {
4207 cmd_completion(str, cmd->name);
4208 }
4209 }
4210 break;
4211 default:
4212 break;
4213 }
4214 }
4215
4216 cleanup:
4217 for (i = 0; i < nb_args; i++) {
4218 g_free(args[i]);
4219 }
4220 }
4221
4222 static int monitor_can_read(void *opaque)
4223 {
4224 Monitor *mon = opaque;
4225
4226 return (mon->suspend_cnt == 0) ? 1 : 0;
4227 }
4228
4229 static int invalid_qmp_mode(const Monitor *mon, const char *cmd_name)
4230 {
4231 int is_cap = compare_cmd(cmd_name, "qmp_capabilities");
4232 return (qmp_cmd_mode(mon) ? is_cap : !is_cap);
4233 }
4234
4235 /*
4236 * Argument validation rules:
4237 *
4238 * 1. The argument must exist in cmd_args qdict
4239 * 2. The argument type must be the expected one
4240 *
4241 * Special case: If the argument doesn't exist in cmd_args and
4242 * the QMP_ACCEPT_UNKNOWNS flag is set, then the
4243 * checking is skipped for it.
4244 */
4245 static int check_client_args_type(const QDict *client_args,
4246 const QDict *cmd_args, int flags)
4247 {
4248 const QDictEntry *ent;
4249
4250 for (ent = qdict_first(client_args); ent;ent = qdict_next(client_args,ent)){
4251 QObject *obj;
4252 QString *arg_type;
4253 const QObject *client_arg = qdict_entry_value(ent);
4254 const char *client_arg_name = qdict_entry_key(ent);
4255
4256 obj = qdict_get(cmd_args, client_arg_name);
4257 if (!obj) {
4258 if (flags & QMP_ACCEPT_UNKNOWNS) {
4259 /* handler accepts unknowns */
4260 continue;
4261 }
4262 /* client arg doesn't exist */
4263 qerror_report(QERR_INVALID_PARAMETER, client_arg_name);
4264 return -1;
4265 }
4266
4267 arg_type = qobject_to_qstring(obj);
4268 assert(arg_type != NULL);
4269
4270 /* check if argument's type is correct */
4271 switch (qstring_get_str(arg_type)[0]) {
4272 case 'F':
4273 case 'B':
4274 case 's':
4275 if (qobject_type(client_arg) != QTYPE_QSTRING) {
4276 qerror_report(QERR_INVALID_PARAMETER_TYPE, client_arg_name,
4277 "string");
4278 return -1;
4279 }
4280 break;
4281 case 'i':
4282 case 'l':
4283 case 'M':
4284 case 'o':
4285 if (qobject_type(client_arg) != QTYPE_QINT) {
4286 qerror_report(QERR_INVALID_PARAMETER_TYPE, client_arg_name,
4287 "int");
4288 return -1;
4289 }
4290 break;
4291 case 'T':
4292 if (qobject_type(client_arg) != QTYPE_QINT &&
4293 qobject_type(client_arg) != QTYPE_QFLOAT) {
4294 qerror_report(QERR_INVALID_PARAMETER_TYPE, client_arg_name,
4295 "number");
4296 return -1;
4297 }
4298 break;
4299 case 'b':
4300 case '-':
4301 if (qobject_type(client_arg) != QTYPE_QBOOL) {
4302 qerror_report(QERR_INVALID_PARAMETER_TYPE, client_arg_name,
4303 "bool");
4304 return -1;
4305 }
4306 break;
4307 case 'O':
4308 assert(flags & QMP_ACCEPT_UNKNOWNS);
4309 break;
4310 case 'q':
4311 /* Any QObject can be passed. */
4312 break;
4313 case '/':
4314 case '.':
4315 /*
4316 * These types are not supported by QMP and thus are not
4317 * handled here. Fall through.
4318 */
4319 default:
4320 abort();
4321 }
4322 }
4323
4324 return 0;
4325 }
4326
4327 /*
4328 * - Check if the client has passed all mandatory args
4329 * - Set special flags for argument validation
4330 */
4331 static int check_mandatory_args(const QDict *cmd_args,
4332 const QDict *client_args, int *flags)
4333 {
4334 const QDictEntry *ent;
4335
4336 for (ent = qdict_first(cmd_args); ent; ent = qdict_next(cmd_args, ent)) {
4337 const char *cmd_arg_name = qdict_entry_key(ent);
4338 QString *type = qobject_to_qstring(qdict_entry_value(ent));
4339 assert(type != NULL);
4340
4341 if (qstring_get_str(type)[0] == 'O') {
4342 assert((*flags & QMP_ACCEPT_UNKNOWNS) == 0);
4343 *flags |= QMP_ACCEPT_UNKNOWNS;
4344 } else if (qstring_get_str(type)[0] != '-' &&
4345 qstring_get_str(type)[1] != '?' &&
4346 !qdict_haskey(client_args, cmd_arg_name)) {
4347 qerror_report(QERR_MISSING_PARAMETER, cmd_arg_name);
4348 return -1;
4349 }
4350 }
4351
4352 return 0;
4353 }
4354
4355 static QDict *qdict_from_args_type(const char *args_type)
4356 {
4357 int i;
4358 QDict *qdict;
4359 QString *key, *type, *cur_qs;
4360
4361 assert(args_type != NULL);
4362
4363 qdict = qdict_new();
4364
4365 if (args_type == NULL || args_type[0] == '\0') {
4366 /* no args, empty qdict */
4367 goto out;
4368 }
4369
4370 key = qstring_new();
4371 type = qstring_new();
4372
4373 cur_qs = key;
4374
4375 for (i = 0;; i++) {
4376 switch (args_type[i]) {
4377 case ',':
4378 case '\0':
4379 qdict_put(qdict, qstring_get_str(key), type);
4380 QDECREF(key);
4381 if (args_type[i] == '\0') {
4382 goto out;
4383 }
4384 type = qstring_new(); /* qdict has ref */
4385 cur_qs = key = qstring_new();
4386 break;
4387 case ':':
4388 cur_qs = type;
4389 break;
4390 default:
4391 qstring_append_chr(cur_qs, args_type[i]);
4392 break;
4393 }
4394 }
4395
4396 out:
4397 return qdict;
4398 }
4399
4400 /*
4401 * Client argument checking rules:
4402 *
4403 * 1. Client must provide all mandatory arguments
4404 * 2. Each argument provided by the client must be expected
4405 * 3. Each argument provided by the client must have the type expected
4406 * by the command
4407 */
4408 static int qmp_check_client_args(const mon_cmd_t *cmd, QDict *client_args)
4409 {
4410 int flags, err;
4411 QDict *cmd_args;
4412
4413 cmd_args = qdict_from_args_type(cmd->args_type);
4414
4415 flags = 0;
4416 err = check_mandatory_args(cmd_args, client_args, &flags);
4417 if (err) {
4418 goto out;
4419 }
4420
4421 err = check_client_args_type(client_args, cmd_args, flags);
4422
4423 out:
4424 QDECREF(cmd_args);
4425 return err;
4426 }
4427
4428 /*
4429 * Input object checking rules
4430 *
4431 * 1. Input object must be a dict
4432 * 2. The "execute" key must exist
4433 * 3. The "execute" key must be a string
4434 * 4. If the "arguments" key exists, it must be a dict
4435 * 5. If the "id" key exists, it can be anything (ie. json-value)
4436 * 6. Any argument not listed above is considered invalid
4437 */
4438 static QDict *qmp_check_input_obj(QObject *input_obj)
4439 {
4440 const QDictEntry *ent;
4441 int has_exec_key = 0;
4442 QDict *input_dict;
4443
4444 if (qobject_type(input_obj) != QTYPE_QDICT) {
4445 qerror_report(QERR_QMP_BAD_INPUT_OBJECT, "object");
4446 return NULL;
4447 }
4448
4449 input_dict = qobject_to_qdict(input_obj);
4450
4451 for (ent = qdict_first(input_dict); ent; ent = qdict_next(input_dict, ent)){
4452 const char *arg_name = qdict_entry_key(ent);
4453 const QObject *arg_obj = qdict_entry_value(ent);
4454
4455 if (!strcmp(arg_name, "execute")) {
4456 if (qobject_type(arg_obj) != QTYPE_QSTRING) {
4457 qerror_report(QERR_QMP_BAD_INPUT_OBJECT_MEMBER, "execute",
4458 "string");
4459 return NULL;
4460 }
4461 has_exec_key = 1;
4462 } else if (!strcmp(arg_name, "arguments")) {
4463 if (qobject_type(arg_obj) != QTYPE_QDICT) {
4464 qerror_report(QERR_QMP_BAD_INPUT_OBJECT_MEMBER, "arguments",
4465 "object");
4466 return NULL;
4467 }
4468 } else if (!strcmp(arg_name, "id")) {
4469 /* FIXME: check duplicated IDs for async commands */
4470 } else {
4471 qerror_report(QERR_QMP_EXTRA_MEMBER, arg_name);
4472 return NULL;
4473 }
4474 }
4475
4476 if (!has_exec_key) {
4477 qerror_report(QERR_QMP_BAD_INPUT_OBJECT, "execute");
4478 return NULL;
4479 }
4480
4481 return input_dict;
4482 }
4483
4484 static void qmp_call_cmd(Monitor *mon, const mon_cmd_t *cmd,
4485 const QDict *params)
4486 {
4487 int ret;
4488 QObject *data = NULL;
4489
4490 ret = cmd->mhandler.cmd_new(mon, params, &data);
4491 handler_audit(mon, cmd, ret);
4492 monitor_protocol_emitter(mon, data);
4493 qobject_decref(data);
4494 }
4495
4496 static void handle_qmp_command(JSONMessageParser *parser, QList *tokens)
4497 {
4498 int err;
4499 QObject *obj;
4500 QDict *input, *args;
4501 const mon_cmd_t *cmd;
4502 const char *cmd_name;
4503 Monitor *mon = cur_mon;
4504
4505 args = input = NULL;
4506
4507 obj = json_parser_parse(tokens, NULL);
4508 if (!obj) {
4509 // FIXME: should be triggered in json_parser_parse()
4510 qerror_report(QERR_JSON_PARSING);
4511 goto err_out;
4512 }
4513
4514 input = qmp_check_input_obj(obj);
4515 if (!input) {
4516 qobject_decref(obj);
4517 goto err_out;
4518 }
4519
4520 mon->mc->id = qdict_get(input, "id");
4521 qobject_incref(mon->mc->id);
4522
4523 cmd_name = qdict_get_str(input, "execute");
4524 trace_handle_qmp_command(mon, cmd_name);
4525 if (invalid_qmp_mode(mon, cmd_name)) {
4526 qerror_report(QERR_COMMAND_NOT_FOUND, cmd_name);
4527 goto err_out;
4528 }
4529
4530 cmd = qmp_find_cmd(cmd_name);
4531 if (!cmd) {
4532 qerror_report(QERR_COMMAND_NOT_FOUND, cmd_name);
4533 goto err_out;
4534 }
4535
4536 obj = qdict_get(input, "arguments");
4537 if (!obj) {
4538 args = qdict_new();
4539 } else {
4540 args = qobject_to_qdict(obj);
4541 QINCREF(args);
4542 }
4543
4544 err = qmp_check_client_args(cmd, args);
4545 if (err < 0) {
4546 goto err_out;
4547 }
4548
4549 if (handler_is_async(cmd)) {
4550 err = qmp_async_cmd_handler(mon, cmd, args);
4551 if (err) {
4552 /* emit the error response */
4553 goto err_out;
4554 }
4555 } else {
4556 qmp_call_cmd(mon, cmd, args);
4557 }
4558
4559 goto out;
4560
4561 err_out:
4562 monitor_protocol_emitter(mon, NULL);
4563 out:
4564 QDECREF(input);
4565 QDECREF(args);
4566 }
4567
4568 /**
4569 * monitor_control_read(): Read and handle QMP input
4570 */
4571 static void monitor_control_read(void *opaque, const uint8_t *buf, int size)
4572 {
4573 Monitor *old_mon = cur_mon;
4574
4575 cur_mon = opaque;
4576
4577 json_message_parser_feed(&cur_mon->mc->parser, (const char *) buf, size);
4578
4579 cur_mon = old_mon;
4580 }
4581
4582 static void monitor_read(void *opaque, const uint8_t *buf, int size)
4583 {
4584 Monitor *old_mon = cur_mon;
4585 int i;
4586
4587 cur_mon = opaque;
4588
4589 if (cur_mon->rs) {
4590 for (i = 0; i < size; i++)
4591 readline_handle_byte(cur_mon->rs, buf[i]);
4592 } else {
4593 if (size == 0 || buf[size - 1] != 0)
4594 monitor_printf(cur_mon, "corrupted command\n");
4595 else
4596 handle_user_command(cur_mon, (char *)buf);
4597 }
4598
4599 cur_mon = old_mon;
4600 }
4601
4602 static void monitor_command_cb(Monitor *mon, const char *cmdline, void *opaque)
4603 {
4604 monitor_suspend(mon);
4605 handle_user_command(mon, cmdline);
4606 monitor_resume(mon);
4607 }
4608
4609 int monitor_suspend(Monitor *mon)
4610 {
4611 if (!mon->rs)
4612 return -ENOTTY;
4613 mon->suspend_cnt++;
4614 return 0;
4615 }
4616
4617 void monitor_resume(Monitor *mon)
4618 {
4619 if (!mon->rs)
4620 return;
4621 if (--mon->suspend_cnt == 0)
4622 readline_show_prompt(mon->rs);
4623 }
4624
4625 static QObject *get_qmp_greeting(void)
4626 {
4627 QObject *ver = NULL;
4628
4629 qmp_marshal_input_query_version(NULL, NULL, &ver);
4630 return qobject_from_jsonf("{'QMP':{'version': %p,'capabilities': []}}",ver);
4631 }
4632
4633 /**
4634 * monitor_control_event(): Print QMP gretting
4635 */
4636 static void monitor_control_event(void *opaque, int event)
4637 {
4638 QObject *data;
4639 Monitor *mon = opaque;
4640
4641 switch (event) {
4642 case CHR_EVENT_OPENED:
4643 mon->mc->command_mode = 0;
4644 data = get_qmp_greeting();
4645 monitor_json_emitter(mon, data);
4646 qobject_decref(data);
4647 mon_refcount++;
4648 break;
4649 case CHR_EVENT_CLOSED:
4650 json_message_parser_destroy(&mon->mc->parser);
4651 json_message_parser_init(&mon->mc->parser, handle_qmp_command);
4652 mon_refcount--;
4653 monitor_fdsets_cleanup();
4654 break;
4655 }
4656 }
4657
4658 static void monitor_event(void *opaque, int event)
4659 {
4660 Monitor *mon = opaque;
4661
4662 switch (event) {
4663 case CHR_EVENT_MUX_IN:
4664 mon->mux_out = 0;
4665 if (mon->reset_seen) {
4666 readline_restart(mon->rs);
4667 monitor_resume(mon);
4668 monitor_flush(mon);
4669 } else {
4670 mon->suspend_cnt = 0;
4671 }
4672 break;
4673
4674 case CHR_EVENT_MUX_OUT:
4675 if (mon->reset_seen) {
4676 if (mon->suspend_cnt == 0) {
4677 monitor_printf(mon, "\n");
4678 }
4679 monitor_flush(mon);
4680 monitor_suspend(mon);
4681 } else {
4682 mon->suspend_cnt++;
4683 }
4684 mon->mux_out = 1;
4685 break;
4686
4687 case CHR_EVENT_OPENED:
4688 monitor_printf(mon, "QEMU %s monitor - type 'help' for more "
4689 "information\n", QEMU_VERSION);
4690 if (!mon->mux_out) {
4691 readline_show_prompt(mon->rs);
4692 }
4693 mon->reset_seen = 1;
4694 mon_refcount++;
4695 break;
4696
4697 case CHR_EVENT_CLOSED:
4698 mon_refcount--;
4699 monitor_fdsets_cleanup();
4700 break;
4701 }
4702 }
4703
4704 static int
4705 compare_mon_cmd(const void *a, const void *b)
4706 {
4707 return strcmp(((const mon_cmd_t *)a)->name,
4708 ((const mon_cmd_t *)b)->name);
4709 }
4710
4711 static void sortcmdlist(void)
4712 {
4713 int array_num;
4714 int elem_size = sizeof(mon_cmd_t);
4715
4716 array_num = sizeof(mon_cmds)/elem_size-1;
4717 qsort((void *)mon_cmds, array_num, elem_size, compare_mon_cmd);
4718
4719 array_num = sizeof(info_cmds)/elem_size-1;
4720 qsort((void *)info_cmds, array_num, elem_size, compare_mon_cmd);
4721 }
4722
4723
4724 /*
4725 * Local variables:
4726 * c-indent-level: 4
4727 * c-basic-offset: 4
4728 * tab-width: 8
4729 * End:
4730 */
4731
4732 void monitor_init(CharDriverState *chr, int flags)
4733 {
4734 static int is_first_init = 1;
4735 Monitor *mon;
4736
4737 if (is_first_init) {
4738 monitor_protocol_event_init();
4739 is_first_init = 0;
4740 }
4741
4742 mon = g_malloc0(sizeof(*mon));
4743
4744 mon->chr = chr;
4745 mon->flags = flags;
4746 if (flags & MONITOR_USE_READLINE) {
4747 mon->rs = readline_init(mon, monitor_find_completion);
4748 monitor_read_command(mon, 0);
4749 }
4750
4751 if (monitor_ctrl_mode(mon)) {
4752 mon->mc = g_malloc0(sizeof(MonitorControl));
4753 /* Control mode requires special handlers */
4754 qemu_chr_add_handlers(chr, monitor_can_read, monitor_control_read,
4755 monitor_control_event, mon);
4756 qemu_chr_fe_set_echo(chr, true);
4757
4758 json_message_parser_init(&mon->mc->parser, handle_qmp_command);
4759 } else {
4760 qemu_chr_add_handlers(chr, monitor_can_read, monitor_read,
4761 monitor_event, mon);
4762 }
4763
4764 QLIST_INSERT_HEAD(&mon_list, mon, entry);
4765 if (!default_mon || (flags & MONITOR_IS_DEFAULT))
4766 default_mon = mon;
4767
4768 sortcmdlist();
4769 }
4770
4771 static void bdrv_password_cb(Monitor *mon, const char *password, void *opaque)
4772 {
4773 BlockDriverState *bs = opaque;
4774 int ret = 0;
4775
4776 if (bdrv_set_key(bs, password) != 0) {
4777 monitor_printf(mon, "invalid password\n");
4778 ret = -EPERM;
4779 }
4780 if (mon->password_completion_cb)
4781 mon->password_completion_cb(mon->password_opaque, ret);
4782
4783 monitor_read_command(mon, 1);
4784 }
4785
4786 ReadLineState *monitor_get_rs(Monitor *mon)
4787 {
4788 return mon->rs;
4789 }
4790
4791 int monitor_read_bdrv_key_start(Monitor *mon, BlockDriverState *bs,
4792 BlockDriverCompletionFunc *completion_cb,
4793 void *opaque)
4794 {
4795 int err;
4796
4797 if (!bdrv_key_required(bs)) {
4798 if (completion_cb)
4799 completion_cb(opaque, 0);
4800 return 0;
4801 }
4802
4803 if (monitor_ctrl_mode(mon)) {
4804 qerror_report(QERR_DEVICE_ENCRYPTED, bdrv_get_device_name(bs),
4805 bdrv_get_encrypted_filename(bs));
4806 return -1;
4807 }
4808
4809 monitor_printf(mon, "%s (%s) is encrypted.\n", bdrv_get_device_name(bs),
4810 bdrv_get_encrypted_filename(bs));
4811
4812 mon->password_completion_cb = completion_cb;
4813 mon->password_opaque = opaque;
4814
4815 err = monitor_read_password(mon, bdrv_password_cb, bs);
4816
4817 if (err && completion_cb)
4818 completion_cb(opaque, err);
4819
4820 return err;
4821 }
4822
4823 int monitor_read_block_device_key(Monitor *mon, const char *device,
4824 BlockDriverCompletionFunc *completion_cb,
4825 void *opaque)
4826 {
4827 BlockDriverState *bs;
4828
4829 bs = bdrv_find(device);
4830 if (!bs) {
4831 monitor_printf(mon, "Device not found %s\n", device);
4832 return -1;
4833 }
4834
4835 return monitor_read_bdrv_key_start(mon, bs, completion_cb, opaque);
4836 }
4837
4838 QemuOptsList qemu_mon_opts = {
4839 .name = "mon",
4840 .implied_opt_name = "chardev",
4841 .head = QTAILQ_HEAD_INITIALIZER(qemu_mon_opts.head),
4842 .desc = {
4843 {
4844 .name = "mode",
4845 .type = QEMU_OPT_STRING,
4846 },{
4847 .name = "chardev",
4848 .type = QEMU_OPT_STRING,
4849 },{
4850 .name = "default",
4851 .type = QEMU_OPT_BOOL,
4852 },{
4853 .name = "pretty",
4854 .type = QEMU_OPT_BOOL,
4855 },
4856 { /* end of list */ }
4857 },
4858 };