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migration: register_savevm_live doesn't need dev
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1 /*
2 * QEMU System Emulator
3 *
4 * Copyright (c) 2003-2008 Fabrice Bellard
5 * Copyright (c) 2009-2015 Red Hat Inc
6 *
7 * Authors:
8 * Juan Quintela <quintela@redhat.com>
9 *
10 * Permission is hereby granted, free of charge, to any person obtaining a copy
11 * of this software and associated documentation files (the "Software"), to deal
12 * in the Software without restriction, including without limitation the rights
13 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
14 * copies of the Software, and to permit persons to whom the Software is
15 * furnished to do so, subject to the following conditions:
16 *
17 * The above copyright notice and this permission notice shall be included in
18 * all copies or substantial portions of the Software.
19 *
20 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
21 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
22 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
23 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
24 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
25 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
26 * THE SOFTWARE.
27 */
28
29 #include "qemu/osdep.h"
30 #include "hw/boards.h"
31 #include "hw/xen/xen.h"
32 #include "net/net.h"
33 #include "migration.h"
34 #include "migration/snapshot.h"
35 #include "migration/vmstate.h"
36 #include "migration/misc.h"
37 #include "migration/register.h"
38 #include "migration/global_state.h"
39 #include "ram.h"
40 #include "qemu-file-channel.h"
41 #include "qemu-file.h"
42 #include "savevm.h"
43 #include "postcopy-ram.h"
44 #include "qapi/error.h"
45 #include "qapi/qapi-commands-migration.h"
46 #include "qapi/qapi-commands-misc.h"
47 #include "qapi/qmp/qerror.h"
48 #include "qemu/error-report.h"
49 #include "sysemu/cpus.h"
50 #include "exec/memory.h"
51 #include "exec/target_page.h"
52 #include "trace.h"
53 #include "qemu/iov.h"
54 #include "qemu/main-loop.h"
55 #include "block/snapshot.h"
56 #include "qemu/cutils.h"
57 #include "io/channel-buffer.h"
58 #include "io/channel-file.h"
59 #include "sysemu/replay.h"
60 #include "sysemu/runstate.h"
61 #include "sysemu/sysemu.h"
62 #include "qjson.h"
63 #include "migration/colo.h"
64 #include "qemu/bitmap.h"
65 #include "net/announce.h"
66
67 const unsigned int postcopy_ram_discard_version = 0;
68
69 /* Subcommands for QEMU_VM_COMMAND */
70 enum qemu_vm_cmd {
71 MIG_CMD_INVALID = 0, /* Must be 0 */
72 MIG_CMD_OPEN_RETURN_PATH, /* Tell the dest to open the Return path */
73 MIG_CMD_PING, /* Request a PONG on the RP */
74
75 MIG_CMD_POSTCOPY_ADVISE, /* Prior to any page transfers, just
76 warn we might want to do PC */
77 MIG_CMD_POSTCOPY_LISTEN, /* Start listening for incoming
78 pages as it's running. */
79 MIG_CMD_POSTCOPY_RUN, /* Start execution */
80
81 MIG_CMD_POSTCOPY_RAM_DISCARD, /* A list of pages to discard that
82 were previously sent during
83 precopy but are dirty. */
84 MIG_CMD_PACKAGED, /* Send a wrapped stream within this stream */
85 MIG_CMD_ENABLE_COLO, /* Enable COLO */
86 MIG_CMD_POSTCOPY_RESUME, /* resume postcopy on dest */
87 MIG_CMD_RECV_BITMAP, /* Request for recved bitmap on dst */
88 MIG_CMD_MAX
89 };
90
91 #define MAX_VM_CMD_PACKAGED_SIZE UINT32_MAX
92 static struct mig_cmd_args {
93 ssize_t len; /* -1 = variable */
94 const char *name;
95 } mig_cmd_args[] = {
96 [MIG_CMD_INVALID] = { .len = -1, .name = "INVALID" },
97 [MIG_CMD_OPEN_RETURN_PATH] = { .len = 0, .name = "OPEN_RETURN_PATH" },
98 [MIG_CMD_PING] = { .len = sizeof(uint32_t), .name = "PING" },
99 [MIG_CMD_POSTCOPY_ADVISE] = { .len = -1, .name = "POSTCOPY_ADVISE" },
100 [MIG_CMD_POSTCOPY_LISTEN] = { .len = 0, .name = "POSTCOPY_LISTEN" },
101 [MIG_CMD_POSTCOPY_RUN] = { .len = 0, .name = "POSTCOPY_RUN" },
102 [MIG_CMD_POSTCOPY_RAM_DISCARD] = {
103 .len = -1, .name = "POSTCOPY_RAM_DISCARD" },
104 [MIG_CMD_POSTCOPY_RESUME] = { .len = 0, .name = "POSTCOPY_RESUME" },
105 [MIG_CMD_PACKAGED] = { .len = 4, .name = "PACKAGED" },
106 [MIG_CMD_RECV_BITMAP] = { .len = -1, .name = "RECV_BITMAP" },
107 [MIG_CMD_MAX] = { .len = -1, .name = "MAX" },
108 };
109
110 /* Note for MIG_CMD_POSTCOPY_ADVISE:
111 * The format of arguments is depending on postcopy mode:
112 * - postcopy RAM only
113 * uint64_t host page size
114 * uint64_t taget page size
115 *
116 * - postcopy RAM and postcopy dirty bitmaps
117 * format is the same as for postcopy RAM only
118 *
119 * - postcopy dirty bitmaps only
120 * Nothing. Command length field is 0.
121 *
122 * Be careful: adding a new postcopy entity with some other parameters should
123 * not break format self-description ability. Good way is to introduce some
124 * generic extendable format with an exception for two old entities.
125 */
126
127 /***********************************************************/
128 /* savevm/loadvm support */
129
130 static ssize_t block_writev_buffer(void *opaque, struct iovec *iov, int iovcnt,
131 int64_t pos, Error **errp)
132 {
133 int ret;
134 QEMUIOVector qiov;
135
136 qemu_iovec_init_external(&qiov, iov, iovcnt);
137 ret = bdrv_writev_vmstate(opaque, &qiov, pos);
138 if (ret < 0) {
139 return ret;
140 }
141
142 return qiov.size;
143 }
144
145 static ssize_t block_get_buffer(void *opaque, uint8_t *buf, int64_t pos,
146 size_t size, Error **errp)
147 {
148 return bdrv_load_vmstate(opaque, buf, pos, size);
149 }
150
151 static int bdrv_fclose(void *opaque, Error **errp)
152 {
153 return bdrv_flush(opaque);
154 }
155
156 static const QEMUFileOps bdrv_read_ops = {
157 .get_buffer = block_get_buffer,
158 .close = bdrv_fclose
159 };
160
161 static const QEMUFileOps bdrv_write_ops = {
162 .writev_buffer = block_writev_buffer,
163 .close = bdrv_fclose
164 };
165
166 static QEMUFile *qemu_fopen_bdrv(BlockDriverState *bs, int is_writable)
167 {
168 if (is_writable) {
169 return qemu_fopen_ops(bs, &bdrv_write_ops);
170 }
171 return qemu_fopen_ops(bs, &bdrv_read_ops);
172 }
173
174
175 /* QEMUFile timer support.
176 * Not in qemu-file.c to not add qemu-timer.c as dependency to qemu-file.c
177 */
178
179 void timer_put(QEMUFile *f, QEMUTimer *ts)
180 {
181 uint64_t expire_time;
182
183 expire_time = timer_expire_time_ns(ts);
184 qemu_put_be64(f, expire_time);
185 }
186
187 void timer_get(QEMUFile *f, QEMUTimer *ts)
188 {
189 uint64_t expire_time;
190
191 expire_time = qemu_get_be64(f);
192 if (expire_time != -1) {
193 timer_mod_ns(ts, expire_time);
194 } else {
195 timer_del(ts);
196 }
197 }
198
199
200 /* VMState timer support.
201 * Not in vmstate.c to not add qemu-timer.c as dependency to vmstate.c
202 */
203
204 static int get_timer(QEMUFile *f, void *pv, size_t size,
205 const VMStateField *field)
206 {
207 QEMUTimer *v = pv;
208 timer_get(f, v);
209 return 0;
210 }
211
212 static int put_timer(QEMUFile *f, void *pv, size_t size,
213 const VMStateField *field, QJSON *vmdesc)
214 {
215 QEMUTimer *v = pv;
216 timer_put(f, v);
217
218 return 0;
219 }
220
221 const VMStateInfo vmstate_info_timer = {
222 .name = "timer",
223 .get = get_timer,
224 .put = put_timer,
225 };
226
227
228 typedef struct CompatEntry {
229 char idstr[256];
230 int instance_id;
231 } CompatEntry;
232
233 typedef struct SaveStateEntry {
234 QTAILQ_ENTRY(SaveStateEntry) entry;
235 char idstr[256];
236 int instance_id;
237 int alias_id;
238 int version_id;
239 /* version id read from the stream */
240 int load_version_id;
241 int section_id;
242 /* section id read from the stream */
243 int load_section_id;
244 const SaveVMHandlers *ops;
245 const VMStateDescription *vmsd;
246 void *opaque;
247 CompatEntry *compat;
248 int is_ram;
249 } SaveStateEntry;
250
251 typedef struct SaveState {
252 QTAILQ_HEAD(, SaveStateEntry) handlers;
253 int global_section_id;
254 uint32_t len;
255 const char *name;
256 uint32_t target_page_bits;
257 uint32_t caps_count;
258 MigrationCapability *capabilities;
259 } SaveState;
260
261 static SaveState savevm_state = {
262 .handlers = QTAILQ_HEAD_INITIALIZER(savevm_state.handlers),
263 .global_section_id = 0,
264 };
265
266 static bool should_validate_capability(int capability)
267 {
268 assert(capability >= 0 && capability < MIGRATION_CAPABILITY__MAX);
269 /* Validate only new capabilities to keep compatibility. */
270 switch (capability) {
271 case MIGRATION_CAPABILITY_X_IGNORE_SHARED:
272 return true;
273 default:
274 return false;
275 }
276 }
277
278 static uint32_t get_validatable_capabilities_count(void)
279 {
280 MigrationState *s = migrate_get_current();
281 uint32_t result = 0;
282 int i;
283 for (i = 0; i < MIGRATION_CAPABILITY__MAX; i++) {
284 if (should_validate_capability(i) && s->enabled_capabilities[i]) {
285 result++;
286 }
287 }
288 return result;
289 }
290
291 static int configuration_pre_save(void *opaque)
292 {
293 SaveState *state = opaque;
294 const char *current_name = MACHINE_GET_CLASS(current_machine)->name;
295 MigrationState *s = migrate_get_current();
296 int i, j;
297
298 state->len = strlen(current_name);
299 state->name = current_name;
300 state->target_page_bits = qemu_target_page_bits();
301
302 state->caps_count = get_validatable_capabilities_count();
303 state->capabilities = g_renew(MigrationCapability, state->capabilities,
304 state->caps_count);
305 for (i = j = 0; i < MIGRATION_CAPABILITY__MAX; i++) {
306 if (should_validate_capability(i) && s->enabled_capabilities[i]) {
307 state->capabilities[j++] = i;
308 }
309 }
310
311 return 0;
312 }
313
314 static int configuration_pre_load(void *opaque)
315 {
316 SaveState *state = opaque;
317
318 /* If there is no target-page-bits subsection it means the source
319 * predates the variable-target-page-bits support and is using the
320 * minimum possible value for this CPU.
321 */
322 state->target_page_bits = qemu_target_page_bits_min();
323 return 0;
324 }
325
326 static bool configuration_validate_capabilities(SaveState *state)
327 {
328 bool ret = true;
329 MigrationState *s = migrate_get_current();
330 unsigned long *source_caps_bm;
331 int i;
332
333 source_caps_bm = bitmap_new(MIGRATION_CAPABILITY__MAX);
334 for (i = 0; i < state->caps_count; i++) {
335 MigrationCapability capability = state->capabilities[i];
336 set_bit(capability, source_caps_bm);
337 }
338
339 for (i = 0; i < MIGRATION_CAPABILITY__MAX; i++) {
340 bool source_state, target_state;
341 if (!should_validate_capability(i)) {
342 continue;
343 }
344 source_state = test_bit(i, source_caps_bm);
345 target_state = s->enabled_capabilities[i];
346 if (source_state != target_state) {
347 error_report("Capability %s is %s, but received capability is %s",
348 MigrationCapability_str(i),
349 target_state ? "on" : "off",
350 source_state ? "on" : "off");
351 ret = false;
352 /* Don't break here to report all failed capabilities */
353 }
354 }
355
356 g_free(source_caps_bm);
357 return ret;
358 }
359
360 static int configuration_post_load(void *opaque, int version_id)
361 {
362 SaveState *state = opaque;
363 const char *current_name = MACHINE_GET_CLASS(current_machine)->name;
364
365 if (strncmp(state->name, current_name, state->len) != 0) {
366 error_report("Machine type received is '%.*s' and local is '%s'",
367 (int) state->len, state->name, current_name);
368 return -EINVAL;
369 }
370
371 if (state->target_page_bits != qemu_target_page_bits()) {
372 error_report("Received TARGET_PAGE_BITS is %d but local is %d",
373 state->target_page_bits, qemu_target_page_bits());
374 return -EINVAL;
375 }
376
377 if (!configuration_validate_capabilities(state)) {
378 return -EINVAL;
379 }
380
381 return 0;
382 }
383
384 static int get_capability(QEMUFile *f, void *pv, size_t size,
385 const VMStateField *field)
386 {
387 MigrationCapability *capability = pv;
388 char capability_str[UINT8_MAX + 1];
389 uint8_t len;
390 int i;
391
392 len = qemu_get_byte(f);
393 qemu_get_buffer(f, (uint8_t *)capability_str, len);
394 capability_str[len] = '\0';
395 for (i = 0; i < MIGRATION_CAPABILITY__MAX; i++) {
396 if (!strcmp(MigrationCapability_str(i), capability_str)) {
397 *capability = i;
398 return 0;
399 }
400 }
401 error_report("Received unknown capability %s", capability_str);
402 return -EINVAL;
403 }
404
405 static int put_capability(QEMUFile *f, void *pv, size_t size,
406 const VMStateField *field, QJSON *vmdesc)
407 {
408 MigrationCapability *capability = pv;
409 const char *capability_str = MigrationCapability_str(*capability);
410 size_t len = strlen(capability_str);
411 assert(len <= UINT8_MAX);
412
413 qemu_put_byte(f, len);
414 qemu_put_buffer(f, (uint8_t *)capability_str, len);
415 return 0;
416 }
417
418 static const VMStateInfo vmstate_info_capability = {
419 .name = "capability",
420 .get = get_capability,
421 .put = put_capability,
422 };
423
424 /* The target-page-bits subsection is present only if the
425 * target page size is not the same as the default (ie the
426 * minimum page size for a variable-page-size guest CPU).
427 * If it is present then it contains the actual target page
428 * bits for the machine, and migration will fail if the
429 * two ends don't agree about it.
430 */
431 static bool vmstate_target_page_bits_needed(void *opaque)
432 {
433 return qemu_target_page_bits()
434 > qemu_target_page_bits_min();
435 }
436
437 static const VMStateDescription vmstate_target_page_bits = {
438 .name = "configuration/target-page-bits",
439 .version_id = 1,
440 .minimum_version_id = 1,
441 .needed = vmstate_target_page_bits_needed,
442 .fields = (VMStateField[]) {
443 VMSTATE_UINT32(target_page_bits, SaveState),
444 VMSTATE_END_OF_LIST()
445 }
446 };
447
448 static bool vmstate_capabilites_needed(void *opaque)
449 {
450 return get_validatable_capabilities_count() > 0;
451 }
452
453 static const VMStateDescription vmstate_capabilites = {
454 .name = "configuration/capabilities",
455 .version_id = 1,
456 .minimum_version_id = 1,
457 .needed = vmstate_capabilites_needed,
458 .fields = (VMStateField[]) {
459 VMSTATE_UINT32_V(caps_count, SaveState, 1),
460 VMSTATE_VARRAY_UINT32_ALLOC(capabilities, SaveState, caps_count, 1,
461 vmstate_info_capability,
462 MigrationCapability),
463 VMSTATE_END_OF_LIST()
464 }
465 };
466
467 static const VMStateDescription vmstate_configuration = {
468 .name = "configuration",
469 .version_id = 1,
470 .pre_load = configuration_pre_load,
471 .post_load = configuration_post_load,
472 .pre_save = configuration_pre_save,
473 .fields = (VMStateField[]) {
474 VMSTATE_UINT32(len, SaveState),
475 VMSTATE_VBUFFER_ALLOC_UINT32(name, SaveState, 0, NULL, len),
476 VMSTATE_END_OF_LIST()
477 },
478 .subsections = (const VMStateDescription*[]) {
479 &vmstate_target_page_bits,
480 &vmstate_capabilites,
481 NULL
482 }
483 };
484
485 static void dump_vmstate_vmsd(FILE *out_file,
486 const VMStateDescription *vmsd, int indent,
487 bool is_subsection);
488
489 static void dump_vmstate_vmsf(FILE *out_file, const VMStateField *field,
490 int indent)
491 {
492 fprintf(out_file, "%*s{\n", indent, "");
493 indent += 2;
494 fprintf(out_file, "%*s\"field\": \"%s\",\n", indent, "", field->name);
495 fprintf(out_file, "%*s\"version_id\": %d,\n", indent, "",
496 field->version_id);
497 fprintf(out_file, "%*s\"field_exists\": %s,\n", indent, "",
498 field->field_exists ? "true" : "false");
499 fprintf(out_file, "%*s\"size\": %zu", indent, "", field->size);
500 if (field->vmsd != NULL) {
501 fprintf(out_file, ",\n");
502 dump_vmstate_vmsd(out_file, field->vmsd, indent, false);
503 }
504 fprintf(out_file, "\n%*s}", indent - 2, "");
505 }
506
507 static void dump_vmstate_vmss(FILE *out_file,
508 const VMStateDescription **subsection,
509 int indent)
510 {
511 if (*subsection != NULL) {
512 dump_vmstate_vmsd(out_file, *subsection, indent, true);
513 }
514 }
515
516 static void dump_vmstate_vmsd(FILE *out_file,
517 const VMStateDescription *vmsd, int indent,
518 bool is_subsection)
519 {
520 if (is_subsection) {
521 fprintf(out_file, "%*s{\n", indent, "");
522 } else {
523 fprintf(out_file, "%*s\"%s\": {\n", indent, "", "Description");
524 }
525 indent += 2;
526 fprintf(out_file, "%*s\"name\": \"%s\",\n", indent, "", vmsd->name);
527 fprintf(out_file, "%*s\"version_id\": %d,\n", indent, "",
528 vmsd->version_id);
529 fprintf(out_file, "%*s\"minimum_version_id\": %d", indent, "",
530 vmsd->minimum_version_id);
531 if (vmsd->fields != NULL) {
532 const VMStateField *field = vmsd->fields;
533 bool first;
534
535 fprintf(out_file, ",\n%*s\"Fields\": [\n", indent, "");
536 first = true;
537 while (field->name != NULL) {
538 if (field->flags & VMS_MUST_EXIST) {
539 /* Ignore VMSTATE_VALIDATE bits; these don't get migrated */
540 field++;
541 continue;
542 }
543 if (!first) {
544 fprintf(out_file, ",\n");
545 }
546 dump_vmstate_vmsf(out_file, field, indent + 2);
547 field++;
548 first = false;
549 }
550 fprintf(out_file, "\n%*s]", indent, "");
551 }
552 if (vmsd->subsections != NULL) {
553 const VMStateDescription **subsection = vmsd->subsections;
554 bool first;
555
556 fprintf(out_file, ",\n%*s\"Subsections\": [\n", indent, "");
557 first = true;
558 while (*subsection != NULL) {
559 if (!first) {
560 fprintf(out_file, ",\n");
561 }
562 dump_vmstate_vmss(out_file, subsection, indent + 2);
563 subsection++;
564 first = false;
565 }
566 fprintf(out_file, "\n%*s]", indent, "");
567 }
568 fprintf(out_file, "\n%*s}", indent - 2, "");
569 }
570
571 static void dump_machine_type(FILE *out_file)
572 {
573 MachineClass *mc;
574
575 mc = MACHINE_GET_CLASS(current_machine);
576
577 fprintf(out_file, " \"vmschkmachine\": {\n");
578 fprintf(out_file, " \"Name\": \"%s\"\n", mc->name);
579 fprintf(out_file, " },\n");
580 }
581
582 void dump_vmstate_json_to_file(FILE *out_file)
583 {
584 GSList *list, *elt;
585 bool first;
586
587 fprintf(out_file, "{\n");
588 dump_machine_type(out_file);
589
590 first = true;
591 list = object_class_get_list(TYPE_DEVICE, true);
592 for (elt = list; elt; elt = elt->next) {
593 DeviceClass *dc = OBJECT_CLASS_CHECK(DeviceClass, elt->data,
594 TYPE_DEVICE);
595 const char *name;
596 int indent = 2;
597
598 if (!dc->vmsd) {
599 continue;
600 }
601
602 if (!first) {
603 fprintf(out_file, ",\n");
604 }
605 name = object_class_get_name(OBJECT_CLASS(dc));
606 fprintf(out_file, "%*s\"%s\": {\n", indent, "", name);
607 indent += 2;
608 fprintf(out_file, "%*s\"Name\": \"%s\",\n", indent, "", name);
609 fprintf(out_file, "%*s\"version_id\": %d,\n", indent, "",
610 dc->vmsd->version_id);
611 fprintf(out_file, "%*s\"minimum_version_id\": %d,\n", indent, "",
612 dc->vmsd->minimum_version_id);
613
614 dump_vmstate_vmsd(out_file, dc->vmsd, indent, false);
615
616 fprintf(out_file, "\n%*s}", indent - 2, "");
617 first = false;
618 }
619 fprintf(out_file, "\n}\n");
620 fclose(out_file);
621 }
622
623 static int calculate_new_instance_id(const char *idstr)
624 {
625 SaveStateEntry *se;
626 int instance_id = 0;
627
628 QTAILQ_FOREACH(se, &savevm_state.handlers, entry) {
629 if (strcmp(idstr, se->idstr) == 0
630 && instance_id <= se->instance_id) {
631 instance_id = se->instance_id + 1;
632 }
633 }
634 return instance_id;
635 }
636
637 static int calculate_compat_instance_id(const char *idstr)
638 {
639 SaveStateEntry *se;
640 int instance_id = 0;
641
642 QTAILQ_FOREACH(se, &savevm_state.handlers, entry) {
643 if (!se->compat) {
644 continue;
645 }
646
647 if (strcmp(idstr, se->compat->idstr) == 0
648 && instance_id <= se->compat->instance_id) {
649 instance_id = se->compat->instance_id + 1;
650 }
651 }
652 return instance_id;
653 }
654
655 static inline MigrationPriority save_state_priority(SaveStateEntry *se)
656 {
657 if (se->vmsd) {
658 return se->vmsd->priority;
659 }
660 return MIG_PRI_DEFAULT;
661 }
662
663 static void savevm_state_handler_insert(SaveStateEntry *nse)
664 {
665 MigrationPriority priority = save_state_priority(nse);
666 SaveStateEntry *se;
667
668 assert(priority <= MIG_PRI_MAX);
669
670 QTAILQ_FOREACH(se, &savevm_state.handlers, entry) {
671 if (save_state_priority(se) < priority) {
672 break;
673 }
674 }
675
676 if (se) {
677 QTAILQ_INSERT_BEFORE(se, nse, entry);
678 } else {
679 QTAILQ_INSERT_TAIL(&savevm_state.handlers, nse, entry);
680 }
681 }
682
683 /* TODO: Individual devices generally have very little idea about the rest
684 of the system, so instance_id should be removed/replaced.
685 Meanwhile pass -1 as instance_id if you do not already have a clearly
686 distinguishing id for all instances of your device class. */
687 int register_savevm_live(const char *idstr,
688 int instance_id,
689 int version_id,
690 const SaveVMHandlers *ops,
691 void *opaque)
692 {
693 SaveStateEntry *se;
694
695 se = g_new0(SaveStateEntry, 1);
696 se->version_id = version_id;
697 se->section_id = savevm_state.global_section_id++;
698 se->ops = ops;
699 se->opaque = opaque;
700 se->vmsd = NULL;
701 /* if this is a live_savem then set is_ram */
702 if (ops->save_setup != NULL) {
703 se->is_ram = 1;
704 }
705
706 pstrcat(se->idstr, sizeof(se->idstr), idstr);
707
708 if (instance_id == -1) {
709 se->instance_id = calculate_new_instance_id(se->idstr);
710 } else {
711 se->instance_id = instance_id;
712 }
713 assert(!se->compat || se->instance_id == 0);
714 savevm_state_handler_insert(se);
715 return 0;
716 }
717
718 void unregister_savevm(DeviceState *dev, const char *idstr, void *opaque)
719 {
720 SaveStateEntry *se, *new_se;
721 char id[256] = "";
722
723 if (dev) {
724 char *path = qdev_get_dev_path(dev);
725 if (path) {
726 pstrcpy(id, sizeof(id), path);
727 pstrcat(id, sizeof(id), "/");
728 g_free(path);
729 }
730 }
731 pstrcat(id, sizeof(id), idstr);
732
733 QTAILQ_FOREACH_SAFE(se, &savevm_state.handlers, entry, new_se) {
734 if (strcmp(se->idstr, id) == 0 && se->opaque == opaque) {
735 QTAILQ_REMOVE(&savevm_state.handlers, se, entry);
736 g_free(se->compat);
737 g_free(se);
738 }
739 }
740 }
741
742 int vmstate_register_with_alias_id(DeviceState *dev, int instance_id,
743 const VMStateDescription *vmsd,
744 void *opaque, int alias_id,
745 int required_for_version,
746 Error **errp)
747 {
748 SaveStateEntry *se;
749
750 /* If this triggers, alias support can be dropped for the vmsd. */
751 assert(alias_id == -1 || required_for_version >= vmsd->minimum_version_id);
752
753 se = g_new0(SaveStateEntry, 1);
754 se->version_id = vmsd->version_id;
755 se->section_id = savevm_state.global_section_id++;
756 se->opaque = opaque;
757 se->vmsd = vmsd;
758 se->alias_id = alias_id;
759
760 if (dev) {
761 char *id = qdev_get_dev_path(dev);
762 if (id) {
763 if (snprintf(se->idstr, sizeof(se->idstr), "%s/", id) >=
764 sizeof(se->idstr)) {
765 error_setg(errp, "Path too long for VMState (%s)", id);
766 g_free(id);
767 g_free(se);
768
769 return -1;
770 }
771 g_free(id);
772
773 se->compat = g_new0(CompatEntry, 1);
774 pstrcpy(se->compat->idstr, sizeof(se->compat->idstr), vmsd->name);
775 se->compat->instance_id = instance_id == -1 ?
776 calculate_compat_instance_id(vmsd->name) : instance_id;
777 instance_id = -1;
778 }
779 }
780 pstrcat(se->idstr, sizeof(se->idstr), vmsd->name);
781
782 if (instance_id == -1) {
783 se->instance_id = calculate_new_instance_id(se->idstr);
784 } else {
785 se->instance_id = instance_id;
786 }
787 assert(!se->compat || se->instance_id == 0);
788 savevm_state_handler_insert(se);
789 return 0;
790 }
791
792 void vmstate_unregister(DeviceState *dev, const VMStateDescription *vmsd,
793 void *opaque)
794 {
795 SaveStateEntry *se, *new_se;
796
797 QTAILQ_FOREACH_SAFE(se, &savevm_state.handlers, entry, new_se) {
798 if (se->vmsd == vmsd && se->opaque == opaque) {
799 QTAILQ_REMOVE(&savevm_state.handlers, se, entry);
800 g_free(se->compat);
801 g_free(se);
802 }
803 }
804 }
805
806 static int vmstate_load(QEMUFile *f, SaveStateEntry *se)
807 {
808 trace_vmstate_load(se->idstr, se->vmsd ? se->vmsd->name : "(old)");
809 if (!se->vmsd) { /* Old style */
810 return se->ops->load_state(f, se->opaque, se->load_version_id);
811 }
812 return vmstate_load_state(f, se->vmsd, se->opaque, se->load_version_id);
813 }
814
815 static void vmstate_save_old_style(QEMUFile *f, SaveStateEntry *se, QJSON *vmdesc)
816 {
817 int64_t old_offset, size;
818
819 old_offset = qemu_ftell_fast(f);
820 se->ops->save_state(f, se->opaque);
821 size = qemu_ftell_fast(f) - old_offset;
822
823 if (vmdesc) {
824 json_prop_int(vmdesc, "size", size);
825 json_start_array(vmdesc, "fields");
826 json_start_object(vmdesc, NULL);
827 json_prop_str(vmdesc, "name", "data");
828 json_prop_int(vmdesc, "size", size);
829 json_prop_str(vmdesc, "type", "buffer");
830 json_end_object(vmdesc);
831 json_end_array(vmdesc);
832 }
833 }
834
835 static int vmstate_save(QEMUFile *f, SaveStateEntry *se, QJSON *vmdesc)
836 {
837 trace_vmstate_save(se->idstr, se->vmsd ? se->vmsd->name : "(old)");
838 if (!se->vmsd) {
839 vmstate_save_old_style(f, se, vmdesc);
840 return 0;
841 }
842 return vmstate_save_state(f, se->vmsd, se->opaque, vmdesc);
843 }
844
845 /*
846 * Write the header for device section (QEMU_VM_SECTION START/END/PART/FULL)
847 */
848 static void save_section_header(QEMUFile *f, SaveStateEntry *se,
849 uint8_t section_type)
850 {
851 qemu_put_byte(f, section_type);
852 qemu_put_be32(f, se->section_id);
853
854 if (section_type == QEMU_VM_SECTION_FULL ||
855 section_type == QEMU_VM_SECTION_START) {
856 /* ID string */
857 size_t len = strlen(se->idstr);
858 qemu_put_byte(f, len);
859 qemu_put_buffer(f, (uint8_t *)se->idstr, len);
860
861 qemu_put_be32(f, se->instance_id);
862 qemu_put_be32(f, se->version_id);
863 }
864 }
865
866 /*
867 * Write a footer onto device sections that catches cases misformatted device
868 * sections.
869 */
870 static void save_section_footer(QEMUFile *f, SaveStateEntry *se)
871 {
872 if (migrate_get_current()->send_section_footer) {
873 qemu_put_byte(f, QEMU_VM_SECTION_FOOTER);
874 qemu_put_be32(f, se->section_id);
875 }
876 }
877
878 /**
879 * qemu_savevm_command_send: Send a 'QEMU_VM_COMMAND' type element with the
880 * command and associated data.
881 *
882 * @f: File to send command on
883 * @command: Command type to send
884 * @len: Length of associated data
885 * @data: Data associated with command.
886 */
887 static void qemu_savevm_command_send(QEMUFile *f,
888 enum qemu_vm_cmd command,
889 uint16_t len,
890 uint8_t *data)
891 {
892 trace_savevm_command_send(command, len);
893 qemu_put_byte(f, QEMU_VM_COMMAND);
894 qemu_put_be16(f, (uint16_t)command);
895 qemu_put_be16(f, len);
896 qemu_put_buffer(f, data, len);
897 qemu_fflush(f);
898 }
899
900 void qemu_savevm_send_colo_enable(QEMUFile *f)
901 {
902 trace_savevm_send_colo_enable();
903 qemu_savevm_command_send(f, MIG_CMD_ENABLE_COLO, 0, NULL);
904 }
905
906 void qemu_savevm_send_ping(QEMUFile *f, uint32_t value)
907 {
908 uint32_t buf;
909
910 trace_savevm_send_ping(value);
911 buf = cpu_to_be32(value);
912 qemu_savevm_command_send(f, MIG_CMD_PING, sizeof(value), (uint8_t *)&buf);
913 }
914
915 void qemu_savevm_send_open_return_path(QEMUFile *f)
916 {
917 trace_savevm_send_open_return_path();
918 qemu_savevm_command_send(f, MIG_CMD_OPEN_RETURN_PATH, 0, NULL);
919 }
920
921 /* We have a buffer of data to send; we don't want that all to be loaded
922 * by the command itself, so the command contains just the length of the
923 * extra buffer that we then send straight after it.
924 * TODO: Must be a better way to organise that
925 *
926 * Returns:
927 * 0 on success
928 * -ve on error
929 */
930 int qemu_savevm_send_packaged(QEMUFile *f, const uint8_t *buf, size_t len)
931 {
932 uint32_t tmp;
933
934 if (len > MAX_VM_CMD_PACKAGED_SIZE) {
935 error_report("%s: Unreasonably large packaged state: %zu",
936 __func__, len);
937 return -1;
938 }
939
940 tmp = cpu_to_be32(len);
941
942 trace_qemu_savevm_send_packaged();
943 qemu_savevm_command_send(f, MIG_CMD_PACKAGED, 4, (uint8_t *)&tmp);
944
945 qemu_put_buffer(f, buf, len);
946
947 return 0;
948 }
949
950 /* Send prior to any postcopy transfer */
951 void qemu_savevm_send_postcopy_advise(QEMUFile *f)
952 {
953 if (migrate_postcopy_ram()) {
954 uint64_t tmp[2];
955 tmp[0] = cpu_to_be64(ram_pagesize_summary());
956 tmp[1] = cpu_to_be64(qemu_target_page_size());
957
958 trace_qemu_savevm_send_postcopy_advise();
959 qemu_savevm_command_send(f, MIG_CMD_POSTCOPY_ADVISE,
960 16, (uint8_t *)tmp);
961 } else {
962 qemu_savevm_command_send(f, MIG_CMD_POSTCOPY_ADVISE, 0, NULL);
963 }
964 }
965
966 /* Sent prior to starting the destination running in postcopy, discard pages
967 * that have already been sent but redirtied on the source.
968 * CMD_POSTCOPY_RAM_DISCARD consist of:
969 * byte version (0)
970 * byte Length of name field (not including 0)
971 * n x byte RAM block name
972 * byte 0 terminator (just for safety)
973 * n x Byte ranges within the named RAMBlock
974 * be64 Start of the range
975 * be64 Length
976 *
977 * name: RAMBlock name that these entries are part of
978 * len: Number of page entries
979 * start_list: 'len' addresses
980 * length_list: 'len' addresses
981 *
982 */
983 void qemu_savevm_send_postcopy_ram_discard(QEMUFile *f, const char *name,
984 uint16_t len,
985 uint64_t *start_list,
986 uint64_t *length_list)
987 {
988 uint8_t *buf;
989 uint16_t tmplen;
990 uint16_t t;
991 size_t name_len = strlen(name);
992
993 trace_qemu_savevm_send_postcopy_ram_discard(name, len);
994 assert(name_len < 256);
995 buf = g_malloc0(1 + 1 + name_len + 1 + (8 + 8) * len);
996 buf[0] = postcopy_ram_discard_version;
997 buf[1] = name_len;
998 memcpy(buf + 2, name, name_len);
999 tmplen = 2 + name_len;
1000 buf[tmplen++] = '\0';
1001
1002 for (t = 0; t < len; t++) {
1003 stq_be_p(buf + tmplen, start_list[t]);
1004 tmplen += 8;
1005 stq_be_p(buf + tmplen, length_list[t]);
1006 tmplen += 8;
1007 }
1008 qemu_savevm_command_send(f, MIG_CMD_POSTCOPY_RAM_DISCARD, tmplen, buf);
1009 g_free(buf);
1010 }
1011
1012 /* Get the destination into a state where it can receive postcopy data. */
1013 void qemu_savevm_send_postcopy_listen(QEMUFile *f)
1014 {
1015 trace_savevm_send_postcopy_listen();
1016 qemu_savevm_command_send(f, MIG_CMD_POSTCOPY_LISTEN, 0, NULL);
1017 }
1018
1019 /* Kick the destination into running */
1020 void qemu_savevm_send_postcopy_run(QEMUFile *f)
1021 {
1022 trace_savevm_send_postcopy_run();
1023 qemu_savevm_command_send(f, MIG_CMD_POSTCOPY_RUN, 0, NULL);
1024 }
1025
1026 void qemu_savevm_send_postcopy_resume(QEMUFile *f)
1027 {
1028 trace_savevm_send_postcopy_resume();
1029 qemu_savevm_command_send(f, MIG_CMD_POSTCOPY_RESUME, 0, NULL);
1030 }
1031
1032 void qemu_savevm_send_recv_bitmap(QEMUFile *f, char *block_name)
1033 {
1034 size_t len;
1035 char buf[256];
1036
1037 trace_savevm_send_recv_bitmap(block_name);
1038
1039 buf[0] = len = strlen(block_name);
1040 memcpy(buf + 1, block_name, len);
1041
1042 qemu_savevm_command_send(f, MIG_CMD_RECV_BITMAP, len + 1, (uint8_t *)buf);
1043 }
1044
1045 bool qemu_savevm_state_blocked(Error **errp)
1046 {
1047 SaveStateEntry *se;
1048
1049 QTAILQ_FOREACH(se, &savevm_state.handlers, entry) {
1050 if (se->vmsd && se->vmsd->unmigratable) {
1051 error_setg(errp, "State blocked by non-migratable device '%s'",
1052 se->idstr);
1053 return true;
1054 }
1055 }
1056 return false;
1057 }
1058
1059 void qemu_savevm_state_header(QEMUFile *f)
1060 {
1061 trace_savevm_state_header();
1062 qemu_put_be32(f, QEMU_VM_FILE_MAGIC);
1063 qemu_put_be32(f, QEMU_VM_FILE_VERSION);
1064
1065 if (migrate_get_current()->send_configuration) {
1066 qemu_put_byte(f, QEMU_VM_CONFIGURATION);
1067 vmstate_save_state(f, &vmstate_configuration, &savevm_state, 0);
1068 }
1069 }
1070
1071 void qemu_savevm_state_setup(QEMUFile *f)
1072 {
1073 SaveStateEntry *se;
1074 Error *local_err = NULL;
1075 int ret;
1076
1077 trace_savevm_state_setup();
1078 QTAILQ_FOREACH(se, &savevm_state.handlers, entry) {
1079 if (!se->ops || !se->ops->save_setup) {
1080 continue;
1081 }
1082 if (se->ops->is_active) {
1083 if (!se->ops->is_active(se->opaque)) {
1084 continue;
1085 }
1086 }
1087 save_section_header(f, se, QEMU_VM_SECTION_START);
1088
1089 ret = se->ops->save_setup(f, se->opaque);
1090 save_section_footer(f, se);
1091 if (ret < 0) {
1092 qemu_file_set_error(f, ret);
1093 break;
1094 }
1095 }
1096
1097 if (precopy_notify(PRECOPY_NOTIFY_SETUP, &local_err)) {
1098 error_report_err(local_err);
1099 }
1100 }
1101
1102 int qemu_savevm_state_resume_prepare(MigrationState *s)
1103 {
1104 SaveStateEntry *se;
1105 int ret;
1106
1107 trace_savevm_state_resume_prepare();
1108
1109 QTAILQ_FOREACH(se, &savevm_state.handlers, entry) {
1110 if (!se->ops || !se->ops->resume_prepare) {
1111 continue;
1112 }
1113 if (se->ops->is_active) {
1114 if (!se->ops->is_active(se->opaque)) {
1115 continue;
1116 }
1117 }
1118 ret = se->ops->resume_prepare(s, se->opaque);
1119 if (ret < 0) {
1120 return ret;
1121 }
1122 }
1123
1124 return 0;
1125 }
1126
1127 /*
1128 * this function has three return values:
1129 * negative: there was one error, and we have -errno.
1130 * 0 : We haven't finished, caller have to go again
1131 * 1 : We have finished, we can go to complete phase
1132 */
1133 int qemu_savevm_state_iterate(QEMUFile *f, bool postcopy)
1134 {
1135 SaveStateEntry *se;
1136 int ret = 1;
1137
1138 trace_savevm_state_iterate();
1139 QTAILQ_FOREACH(se, &savevm_state.handlers, entry) {
1140 if (!se->ops || !se->ops->save_live_iterate) {
1141 continue;
1142 }
1143 if (se->ops->is_active &&
1144 !se->ops->is_active(se->opaque)) {
1145 continue;
1146 }
1147 if (se->ops->is_active_iterate &&
1148 !se->ops->is_active_iterate(se->opaque)) {
1149 continue;
1150 }
1151 /*
1152 * In the postcopy phase, any device that doesn't know how to
1153 * do postcopy should have saved it's state in the _complete
1154 * call that's already run, it might get confused if we call
1155 * iterate afterwards.
1156 */
1157 if (postcopy &&
1158 !(se->ops->has_postcopy && se->ops->has_postcopy(se->opaque))) {
1159 continue;
1160 }
1161 if (qemu_file_rate_limit(f)) {
1162 return 0;
1163 }
1164 trace_savevm_section_start(se->idstr, se->section_id);
1165
1166 save_section_header(f, se, QEMU_VM_SECTION_PART);
1167
1168 ret = se->ops->save_live_iterate(f, se->opaque);
1169 trace_savevm_section_end(se->idstr, se->section_id, ret);
1170 save_section_footer(f, se);
1171
1172 if (ret < 0) {
1173 qemu_file_set_error(f, ret);
1174 }
1175 if (ret <= 0) {
1176 /* Do not proceed to the next vmstate before this one reported
1177 completion of the current stage. This serializes the migration
1178 and reduces the probability that a faster changing state is
1179 synchronized over and over again. */
1180 break;
1181 }
1182 }
1183 return ret;
1184 }
1185
1186 static bool should_send_vmdesc(void)
1187 {
1188 MachineState *machine = MACHINE(qdev_get_machine());
1189 bool in_postcopy = migration_in_postcopy();
1190 return !machine->suppress_vmdesc && !in_postcopy;
1191 }
1192
1193 /*
1194 * Calls the save_live_complete_postcopy methods
1195 * causing the last few pages to be sent immediately and doing any associated
1196 * cleanup.
1197 * Note postcopy also calls qemu_savevm_state_complete_precopy to complete
1198 * all the other devices, but that happens at the point we switch to postcopy.
1199 */
1200 void qemu_savevm_state_complete_postcopy(QEMUFile *f)
1201 {
1202 SaveStateEntry *se;
1203 int ret;
1204
1205 QTAILQ_FOREACH(se, &savevm_state.handlers, entry) {
1206 if (!se->ops || !se->ops->save_live_complete_postcopy) {
1207 continue;
1208 }
1209 if (se->ops->is_active) {
1210 if (!se->ops->is_active(se->opaque)) {
1211 continue;
1212 }
1213 }
1214 trace_savevm_section_start(se->idstr, se->section_id);
1215 /* Section type */
1216 qemu_put_byte(f, QEMU_VM_SECTION_END);
1217 qemu_put_be32(f, se->section_id);
1218
1219 ret = se->ops->save_live_complete_postcopy(f, se->opaque);
1220 trace_savevm_section_end(se->idstr, se->section_id, ret);
1221 save_section_footer(f, se);
1222 if (ret < 0) {
1223 qemu_file_set_error(f, ret);
1224 return;
1225 }
1226 }
1227
1228 qemu_put_byte(f, QEMU_VM_EOF);
1229 qemu_fflush(f);
1230 }
1231
1232 static
1233 int qemu_savevm_state_complete_precopy_iterable(QEMUFile *f, bool in_postcopy)
1234 {
1235 SaveStateEntry *se;
1236 int ret;
1237
1238 QTAILQ_FOREACH(se, &savevm_state.handlers, entry) {
1239 if (!se->ops ||
1240 (in_postcopy && se->ops->has_postcopy &&
1241 se->ops->has_postcopy(se->opaque)) ||
1242 !se->ops->save_live_complete_precopy) {
1243 continue;
1244 }
1245
1246 if (se->ops->is_active) {
1247 if (!se->ops->is_active(se->opaque)) {
1248 continue;
1249 }
1250 }
1251 trace_savevm_section_start(se->idstr, se->section_id);
1252
1253 save_section_header(f, se, QEMU_VM_SECTION_END);
1254
1255 ret = se->ops->save_live_complete_precopy(f, se->opaque);
1256 trace_savevm_section_end(se->idstr, se->section_id, ret);
1257 save_section_footer(f, se);
1258 if (ret < 0) {
1259 qemu_file_set_error(f, ret);
1260 return -1;
1261 }
1262 }
1263
1264 return 0;
1265 }
1266
1267 static
1268 int qemu_savevm_state_complete_precopy_non_iterable(QEMUFile *f,
1269 bool in_postcopy,
1270 bool inactivate_disks)
1271 {
1272 QJSON *vmdesc;
1273 int vmdesc_len;
1274 SaveStateEntry *se;
1275 int ret;
1276
1277 vmdesc = qjson_new();
1278 json_prop_int(vmdesc, "page_size", qemu_target_page_size());
1279 json_start_array(vmdesc, "devices");
1280 QTAILQ_FOREACH(se, &savevm_state.handlers, entry) {
1281
1282 if ((!se->ops || !se->ops->save_state) && !se->vmsd) {
1283 continue;
1284 }
1285 if (se->vmsd && !vmstate_save_needed(se->vmsd, se->opaque)) {
1286 trace_savevm_section_skip(se->idstr, se->section_id);
1287 continue;
1288 }
1289
1290 trace_savevm_section_start(se->idstr, se->section_id);
1291
1292 json_start_object(vmdesc, NULL);
1293 json_prop_str(vmdesc, "name", se->idstr);
1294 json_prop_int(vmdesc, "instance_id", se->instance_id);
1295
1296 save_section_header(f, se, QEMU_VM_SECTION_FULL);
1297 ret = vmstate_save(f, se, vmdesc);
1298 if (ret) {
1299 qemu_file_set_error(f, ret);
1300 return ret;
1301 }
1302 trace_savevm_section_end(se->idstr, se->section_id, 0);
1303 save_section_footer(f, se);
1304
1305 json_end_object(vmdesc);
1306 }
1307
1308 if (inactivate_disks) {
1309 /* Inactivate before sending QEMU_VM_EOF so that the
1310 * bdrv_invalidate_cache_all() on the other end won't fail. */
1311 ret = bdrv_inactivate_all();
1312 if (ret) {
1313 error_report("%s: bdrv_inactivate_all() failed (%d)",
1314 __func__, ret);
1315 qemu_file_set_error(f, ret);
1316 return ret;
1317 }
1318 }
1319 if (!in_postcopy) {
1320 /* Postcopy stream will still be going */
1321 qemu_put_byte(f, QEMU_VM_EOF);
1322 }
1323
1324 json_end_array(vmdesc);
1325 qjson_finish(vmdesc);
1326 vmdesc_len = strlen(qjson_get_str(vmdesc));
1327
1328 if (should_send_vmdesc()) {
1329 qemu_put_byte(f, QEMU_VM_VMDESCRIPTION);
1330 qemu_put_be32(f, vmdesc_len);
1331 qemu_put_buffer(f, (uint8_t *)qjson_get_str(vmdesc), vmdesc_len);
1332 }
1333 qjson_destroy(vmdesc);
1334
1335 return 0;
1336 }
1337
1338 int qemu_savevm_state_complete_precopy(QEMUFile *f, bool iterable_only,
1339 bool inactivate_disks)
1340 {
1341 int ret;
1342 Error *local_err = NULL;
1343 bool in_postcopy = migration_in_postcopy();
1344
1345 if (precopy_notify(PRECOPY_NOTIFY_COMPLETE, &local_err)) {
1346 error_report_err(local_err);
1347 }
1348
1349 trace_savevm_state_complete_precopy();
1350
1351 cpu_synchronize_all_states();
1352
1353 if (!in_postcopy || iterable_only) {
1354 ret = qemu_savevm_state_complete_precopy_iterable(f, in_postcopy);
1355 if (ret) {
1356 return ret;
1357 }
1358 }
1359
1360 if (iterable_only) {
1361 goto flush;
1362 }
1363
1364 ret = qemu_savevm_state_complete_precopy_non_iterable(f, in_postcopy,
1365 inactivate_disks);
1366 if (ret) {
1367 return ret;
1368 }
1369
1370 flush:
1371 qemu_fflush(f);
1372 return 0;
1373 }
1374
1375 /* Give an estimate of the amount left to be transferred,
1376 * the result is split into the amount for units that can and
1377 * for units that can't do postcopy.
1378 */
1379 void qemu_savevm_state_pending(QEMUFile *f, uint64_t threshold_size,
1380 uint64_t *res_precopy_only,
1381 uint64_t *res_compatible,
1382 uint64_t *res_postcopy_only)
1383 {
1384 SaveStateEntry *se;
1385
1386 *res_precopy_only = 0;
1387 *res_compatible = 0;
1388 *res_postcopy_only = 0;
1389
1390
1391 QTAILQ_FOREACH(se, &savevm_state.handlers, entry) {
1392 if (!se->ops || !se->ops->save_live_pending) {
1393 continue;
1394 }
1395 if (se->ops->is_active) {
1396 if (!se->ops->is_active(se->opaque)) {
1397 continue;
1398 }
1399 }
1400 se->ops->save_live_pending(f, se->opaque, threshold_size,
1401 res_precopy_only, res_compatible,
1402 res_postcopy_only);
1403 }
1404 }
1405
1406 void qemu_savevm_state_cleanup(void)
1407 {
1408 SaveStateEntry *se;
1409 Error *local_err = NULL;
1410
1411 if (precopy_notify(PRECOPY_NOTIFY_CLEANUP, &local_err)) {
1412 error_report_err(local_err);
1413 }
1414
1415 trace_savevm_state_cleanup();
1416 QTAILQ_FOREACH(se, &savevm_state.handlers, entry) {
1417 if (se->ops && se->ops->save_cleanup) {
1418 se->ops->save_cleanup(se->opaque);
1419 }
1420 }
1421 }
1422
1423 static int qemu_savevm_state(QEMUFile *f, Error **errp)
1424 {
1425 int ret;
1426 MigrationState *ms = migrate_get_current();
1427 MigrationStatus status;
1428
1429 if (migration_is_setup_or_active(ms->state) ||
1430 ms->state == MIGRATION_STATUS_CANCELLING ||
1431 ms->state == MIGRATION_STATUS_COLO) {
1432 error_setg(errp, QERR_MIGRATION_ACTIVE);
1433 return -EINVAL;
1434 }
1435
1436 if (migrate_use_block()) {
1437 error_setg(errp, "Block migration and snapshots are incompatible");
1438 return -EINVAL;
1439 }
1440
1441 migrate_init(ms);
1442 memset(&ram_counters, 0, sizeof(ram_counters));
1443 ms->to_dst_file = f;
1444
1445 qemu_mutex_unlock_iothread();
1446 qemu_savevm_state_header(f);
1447 qemu_savevm_state_setup(f);
1448 qemu_mutex_lock_iothread();
1449
1450 while (qemu_file_get_error(f) == 0) {
1451 if (qemu_savevm_state_iterate(f, false) > 0) {
1452 break;
1453 }
1454 }
1455
1456 ret = qemu_file_get_error(f);
1457 if (ret == 0) {
1458 qemu_savevm_state_complete_precopy(f, false, false);
1459 ret = qemu_file_get_error(f);
1460 }
1461 qemu_savevm_state_cleanup();
1462 if (ret != 0) {
1463 error_setg_errno(errp, -ret, "Error while writing VM state");
1464 }
1465
1466 if (ret != 0) {
1467 status = MIGRATION_STATUS_FAILED;
1468 } else {
1469 status = MIGRATION_STATUS_COMPLETED;
1470 }
1471 migrate_set_state(&ms->state, MIGRATION_STATUS_SETUP, status);
1472
1473 /* f is outer parameter, it should not stay in global migration state after
1474 * this function finished */
1475 ms->to_dst_file = NULL;
1476
1477 return ret;
1478 }
1479
1480 void qemu_savevm_live_state(QEMUFile *f)
1481 {
1482 /* save QEMU_VM_SECTION_END section */
1483 qemu_savevm_state_complete_precopy(f, true, false);
1484 qemu_put_byte(f, QEMU_VM_EOF);
1485 }
1486
1487 int qemu_save_device_state(QEMUFile *f)
1488 {
1489 SaveStateEntry *se;
1490
1491 if (!migration_in_colo_state()) {
1492 qemu_put_be32(f, QEMU_VM_FILE_MAGIC);
1493 qemu_put_be32(f, QEMU_VM_FILE_VERSION);
1494 }
1495 cpu_synchronize_all_states();
1496
1497 QTAILQ_FOREACH(se, &savevm_state.handlers, entry) {
1498 int ret;
1499
1500 if (se->is_ram) {
1501 continue;
1502 }
1503 if ((!se->ops || !se->ops->save_state) && !se->vmsd) {
1504 continue;
1505 }
1506 if (se->vmsd && !vmstate_save_needed(se->vmsd, se->opaque)) {
1507 continue;
1508 }
1509
1510 save_section_header(f, se, QEMU_VM_SECTION_FULL);
1511
1512 ret = vmstate_save(f, se, NULL);
1513 if (ret) {
1514 return ret;
1515 }
1516
1517 save_section_footer(f, se);
1518 }
1519
1520 qemu_put_byte(f, QEMU_VM_EOF);
1521
1522 return qemu_file_get_error(f);
1523 }
1524
1525 static SaveStateEntry *find_se(const char *idstr, int instance_id)
1526 {
1527 SaveStateEntry *se;
1528
1529 QTAILQ_FOREACH(se, &savevm_state.handlers, entry) {
1530 if (!strcmp(se->idstr, idstr) &&
1531 (instance_id == se->instance_id ||
1532 instance_id == se->alias_id))
1533 return se;
1534 /* Migrating from an older version? */
1535 if (strstr(se->idstr, idstr) && se->compat) {
1536 if (!strcmp(se->compat->idstr, idstr) &&
1537 (instance_id == se->compat->instance_id ||
1538 instance_id == se->alias_id))
1539 return se;
1540 }
1541 }
1542 return NULL;
1543 }
1544
1545 enum LoadVMExitCodes {
1546 /* Allow a command to quit all layers of nested loadvm loops */
1547 LOADVM_QUIT = 1,
1548 };
1549
1550 /* ------ incoming postcopy messages ------ */
1551 /* 'advise' arrives before any transfers just to tell us that a postcopy
1552 * *might* happen - it might be skipped if precopy transferred everything
1553 * quickly.
1554 */
1555 static int loadvm_postcopy_handle_advise(MigrationIncomingState *mis,
1556 uint16_t len)
1557 {
1558 PostcopyState ps = postcopy_state_set(POSTCOPY_INCOMING_ADVISE);
1559 uint64_t remote_pagesize_summary, local_pagesize_summary, remote_tps;
1560 Error *local_err = NULL;
1561
1562 trace_loadvm_postcopy_handle_advise();
1563 if (ps != POSTCOPY_INCOMING_NONE) {
1564 error_report("CMD_POSTCOPY_ADVISE in wrong postcopy state (%d)", ps);
1565 return -1;
1566 }
1567
1568 switch (len) {
1569 case 0:
1570 if (migrate_postcopy_ram()) {
1571 error_report("RAM postcopy is enabled but have 0 byte advise");
1572 return -EINVAL;
1573 }
1574 return 0;
1575 case 8 + 8:
1576 if (!migrate_postcopy_ram()) {
1577 error_report("RAM postcopy is disabled but have 16 byte advise");
1578 return -EINVAL;
1579 }
1580 break;
1581 default:
1582 error_report("CMD_POSTCOPY_ADVISE invalid length (%d)", len);
1583 return -EINVAL;
1584 }
1585
1586 if (!postcopy_ram_supported_by_host(mis)) {
1587 postcopy_state_set(POSTCOPY_INCOMING_NONE);
1588 return -1;
1589 }
1590
1591 remote_pagesize_summary = qemu_get_be64(mis->from_src_file);
1592 local_pagesize_summary = ram_pagesize_summary();
1593
1594 if (remote_pagesize_summary != local_pagesize_summary) {
1595 /*
1596 * This detects two potential causes of mismatch:
1597 * a) A mismatch in host page sizes
1598 * Some combinations of mismatch are probably possible but it gets
1599 * a bit more complicated. In particular we need to place whole
1600 * host pages on the dest at once, and we need to ensure that we
1601 * handle dirtying to make sure we never end up sending part of
1602 * a hostpage on it's own.
1603 * b) The use of different huge page sizes on source/destination
1604 * a more fine grain test is performed during RAM block migration
1605 * but this test here causes a nice early clear failure, and
1606 * also fails when passed to an older qemu that doesn't
1607 * do huge pages.
1608 */
1609 error_report("Postcopy needs matching RAM page sizes (s=%" PRIx64
1610 " d=%" PRIx64 ")",
1611 remote_pagesize_summary, local_pagesize_summary);
1612 return -1;
1613 }
1614
1615 remote_tps = qemu_get_be64(mis->from_src_file);
1616 if (remote_tps != qemu_target_page_size()) {
1617 /*
1618 * Again, some differences could be dealt with, but for now keep it
1619 * simple.
1620 */
1621 error_report("Postcopy needs matching target page sizes (s=%d d=%zd)",
1622 (int)remote_tps, qemu_target_page_size());
1623 return -1;
1624 }
1625
1626 if (postcopy_notify(POSTCOPY_NOTIFY_INBOUND_ADVISE, &local_err)) {
1627 error_report_err(local_err);
1628 return -1;
1629 }
1630
1631 if (ram_postcopy_incoming_init(mis)) {
1632 return -1;
1633 }
1634
1635 return 0;
1636 }
1637
1638 /* After postcopy we will be told to throw some pages away since they're
1639 * dirty and will have to be demand fetched. Must happen before CPU is
1640 * started.
1641 * There can be 0..many of these messages, each encoding multiple pages.
1642 */
1643 static int loadvm_postcopy_ram_handle_discard(MigrationIncomingState *mis,
1644 uint16_t len)
1645 {
1646 int tmp;
1647 char ramid[256];
1648 PostcopyState ps = postcopy_state_get();
1649
1650 trace_loadvm_postcopy_ram_handle_discard();
1651
1652 switch (ps) {
1653 case POSTCOPY_INCOMING_ADVISE:
1654 /* 1st discard */
1655 tmp = postcopy_ram_prepare_discard(mis);
1656 if (tmp) {
1657 return tmp;
1658 }
1659 break;
1660
1661 case POSTCOPY_INCOMING_DISCARD:
1662 /* Expected state */
1663 break;
1664
1665 default:
1666 error_report("CMD_POSTCOPY_RAM_DISCARD in wrong postcopy state (%d)",
1667 ps);
1668 return -1;
1669 }
1670 /* We're expecting a
1671 * Version (0)
1672 * a RAM ID string (length byte, name, 0 term)
1673 * then at least 1 16 byte chunk
1674 */
1675 if (len < (1 + 1 + 1 + 1 + 2 * 8)) {
1676 error_report("CMD_POSTCOPY_RAM_DISCARD invalid length (%d)", len);
1677 return -1;
1678 }
1679
1680 tmp = qemu_get_byte(mis->from_src_file);
1681 if (tmp != postcopy_ram_discard_version) {
1682 error_report("CMD_POSTCOPY_RAM_DISCARD invalid version (%d)", tmp);
1683 return -1;
1684 }
1685
1686 if (!qemu_get_counted_string(mis->from_src_file, ramid)) {
1687 error_report("CMD_POSTCOPY_RAM_DISCARD Failed to read RAMBlock ID");
1688 return -1;
1689 }
1690 tmp = qemu_get_byte(mis->from_src_file);
1691 if (tmp != 0) {
1692 error_report("CMD_POSTCOPY_RAM_DISCARD missing nil (%d)", tmp);
1693 return -1;
1694 }
1695
1696 len -= 3 + strlen(ramid);
1697 if (len % 16) {
1698 error_report("CMD_POSTCOPY_RAM_DISCARD invalid length (%d)", len);
1699 return -1;
1700 }
1701 trace_loadvm_postcopy_ram_handle_discard_header(ramid, len);
1702 while (len) {
1703 uint64_t start_addr, block_length;
1704 start_addr = qemu_get_be64(mis->from_src_file);
1705 block_length = qemu_get_be64(mis->from_src_file);
1706
1707 len -= 16;
1708 int ret = ram_discard_range(ramid, start_addr, block_length);
1709 if (ret) {
1710 return ret;
1711 }
1712 }
1713 trace_loadvm_postcopy_ram_handle_discard_end();
1714
1715 return 0;
1716 }
1717
1718 /*
1719 * Triggered by a postcopy_listen command; this thread takes over reading
1720 * the input stream, leaving the main thread free to carry on loading the rest
1721 * of the device state (from RAM).
1722 * (TODO:This could do with being in a postcopy file - but there again it's
1723 * just another input loop, not that postcopy specific)
1724 */
1725 static void *postcopy_ram_listen_thread(void *opaque)
1726 {
1727 MigrationIncomingState *mis = migration_incoming_get_current();
1728 QEMUFile *f = mis->from_src_file;
1729 int load_res;
1730
1731 migrate_set_state(&mis->state, MIGRATION_STATUS_ACTIVE,
1732 MIGRATION_STATUS_POSTCOPY_ACTIVE);
1733 qemu_sem_post(&mis->listen_thread_sem);
1734 trace_postcopy_ram_listen_thread_start();
1735
1736 rcu_register_thread();
1737 /*
1738 * Because we're a thread and not a coroutine we can't yield
1739 * in qemu_file, and thus we must be blocking now.
1740 */
1741 qemu_file_set_blocking(f, true);
1742 load_res = qemu_loadvm_state_main(f, mis);
1743
1744 /*
1745 * This is tricky, but, mis->from_src_file can change after it
1746 * returns, when postcopy recovery happened. In the future, we may
1747 * want a wrapper for the QEMUFile handle.
1748 */
1749 f = mis->from_src_file;
1750
1751 /* And non-blocking again so we don't block in any cleanup */
1752 qemu_file_set_blocking(f, false);
1753
1754 trace_postcopy_ram_listen_thread_exit();
1755 if (load_res < 0) {
1756 error_report("%s: loadvm failed: %d", __func__, load_res);
1757 qemu_file_set_error(f, load_res);
1758 migrate_set_state(&mis->state, MIGRATION_STATUS_POSTCOPY_ACTIVE,
1759 MIGRATION_STATUS_FAILED);
1760 } else {
1761 /*
1762 * This looks good, but it's possible that the device loading in the
1763 * main thread hasn't finished yet, and so we might not be in 'RUN'
1764 * state yet; wait for the end of the main thread.
1765 */
1766 qemu_event_wait(&mis->main_thread_load_event);
1767 }
1768 postcopy_ram_incoming_cleanup(mis);
1769
1770 if (load_res < 0) {
1771 /*
1772 * If something went wrong then we have a bad state so exit;
1773 * depending how far we got it might be possible at this point
1774 * to leave the guest running and fire MCEs for pages that never
1775 * arrived as a desperate recovery step.
1776 */
1777 rcu_unregister_thread();
1778 exit(EXIT_FAILURE);
1779 }
1780
1781 migrate_set_state(&mis->state, MIGRATION_STATUS_POSTCOPY_ACTIVE,
1782 MIGRATION_STATUS_COMPLETED);
1783 /*
1784 * If everything has worked fine, then the main thread has waited
1785 * for us to start, and we're the last use of the mis.
1786 * (If something broke then qemu will have to exit anyway since it's
1787 * got a bad migration state).
1788 */
1789 migration_incoming_state_destroy();
1790 qemu_loadvm_state_cleanup();
1791
1792 rcu_unregister_thread();
1793 mis->have_listen_thread = false;
1794 return NULL;
1795 }
1796
1797 /* After this message we must be able to immediately receive postcopy data */
1798 static int loadvm_postcopy_handle_listen(MigrationIncomingState *mis)
1799 {
1800 PostcopyState ps = postcopy_state_set(POSTCOPY_INCOMING_LISTENING);
1801 trace_loadvm_postcopy_handle_listen();
1802 Error *local_err = NULL;
1803
1804 if (ps != POSTCOPY_INCOMING_ADVISE && ps != POSTCOPY_INCOMING_DISCARD) {
1805 error_report("CMD_POSTCOPY_LISTEN in wrong postcopy state (%d)", ps);
1806 return -1;
1807 }
1808 if (ps == POSTCOPY_INCOMING_ADVISE) {
1809 /*
1810 * A rare case, we entered listen without having to do any discards,
1811 * so do the setup that's normally done at the time of the 1st discard.
1812 */
1813 if (migrate_postcopy_ram()) {
1814 postcopy_ram_prepare_discard(mis);
1815 }
1816 }
1817
1818 /*
1819 * Sensitise RAM - can now generate requests for blocks that don't exist
1820 * However, at this point the CPU shouldn't be running, and the IO
1821 * shouldn't be doing anything yet so don't actually expect requests
1822 */
1823 if (migrate_postcopy_ram()) {
1824 if (postcopy_ram_enable_notify(mis)) {
1825 postcopy_ram_incoming_cleanup(mis);
1826 return -1;
1827 }
1828 }
1829
1830 if (postcopy_notify(POSTCOPY_NOTIFY_INBOUND_LISTEN, &local_err)) {
1831 error_report_err(local_err);
1832 return -1;
1833 }
1834
1835 if (mis->have_listen_thread) {
1836 error_report("CMD_POSTCOPY_RAM_LISTEN already has a listen thread");
1837 return -1;
1838 }
1839
1840 mis->have_listen_thread = true;
1841 /* Start up the listening thread and wait for it to signal ready */
1842 qemu_sem_init(&mis->listen_thread_sem, 0);
1843 qemu_thread_create(&mis->listen_thread, "postcopy/listen",
1844 postcopy_ram_listen_thread, NULL,
1845 QEMU_THREAD_DETACHED);
1846 qemu_sem_wait(&mis->listen_thread_sem);
1847 qemu_sem_destroy(&mis->listen_thread_sem);
1848
1849 return 0;
1850 }
1851
1852 static void loadvm_postcopy_handle_run_bh(void *opaque)
1853 {
1854 Error *local_err = NULL;
1855 MigrationIncomingState *mis = opaque;
1856
1857 /* TODO we should move all of this lot into postcopy_ram.c or a shared code
1858 * in migration.c
1859 */
1860 cpu_synchronize_all_post_init();
1861
1862 qemu_announce_self(&mis->announce_timer, migrate_announce_params());
1863
1864 /* Make sure all file formats flush their mutable metadata.
1865 * If we get an error here, just don't restart the VM yet. */
1866 bdrv_invalidate_cache_all(&local_err);
1867 if (local_err) {
1868 error_report_err(local_err);
1869 local_err = NULL;
1870 autostart = false;
1871 }
1872
1873 trace_loadvm_postcopy_handle_run_cpu_sync();
1874
1875 trace_loadvm_postcopy_handle_run_vmstart();
1876
1877 dirty_bitmap_mig_before_vm_start();
1878
1879 if (autostart) {
1880 /* Hold onto your hats, starting the CPU */
1881 vm_start();
1882 } else {
1883 /* leave it paused and let management decide when to start the CPU */
1884 runstate_set(RUN_STATE_PAUSED);
1885 }
1886
1887 qemu_bh_delete(mis->bh);
1888 }
1889
1890 /* After all discards we can start running and asking for pages */
1891 static int loadvm_postcopy_handle_run(MigrationIncomingState *mis)
1892 {
1893 PostcopyState ps = postcopy_state_set(POSTCOPY_INCOMING_RUNNING);
1894
1895 trace_loadvm_postcopy_handle_run();
1896 if (ps != POSTCOPY_INCOMING_LISTENING) {
1897 error_report("CMD_POSTCOPY_RUN in wrong postcopy state (%d)", ps);
1898 return -1;
1899 }
1900
1901 mis->bh = qemu_bh_new(loadvm_postcopy_handle_run_bh, mis);
1902 qemu_bh_schedule(mis->bh);
1903
1904 /* We need to finish reading the stream from the package
1905 * and also stop reading anything more from the stream that loaded the
1906 * package (since it's now being read by the listener thread).
1907 * LOADVM_QUIT will quit all the layers of nested loadvm loops.
1908 */
1909 return LOADVM_QUIT;
1910 }
1911
1912 static int loadvm_postcopy_handle_resume(MigrationIncomingState *mis)
1913 {
1914 if (mis->state != MIGRATION_STATUS_POSTCOPY_RECOVER) {
1915 error_report("%s: illegal resume received", __func__);
1916 /* Don't fail the load, only for this. */
1917 return 0;
1918 }
1919
1920 /*
1921 * This means source VM is ready to resume the postcopy migration.
1922 * It's time to switch state and release the fault thread to
1923 * continue service page faults.
1924 */
1925 migrate_set_state(&mis->state, MIGRATION_STATUS_POSTCOPY_RECOVER,
1926 MIGRATION_STATUS_POSTCOPY_ACTIVE);
1927 qemu_sem_post(&mis->postcopy_pause_sem_fault);
1928
1929 trace_loadvm_postcopy_handle_resume();
1930
1931 /* Tell source that "we are ready" */
1932 migrate_send_rp_resume_ack(mis, MIGRATION_RESUME_ACK_VALUE);
1933
1934 return 0;
1935 }
1936
1937 /**
1938 * Immediately following this command is a blob of data containing an embedded
1939 * chunk of migration stream; read it and load it.
1940 *
1941 * @mis: Incoming state
1942 * @length: Length of packaged data to read
1943 *
1944 * Returns: Negative values on error
1945 *
1946 */
1947 static int loadvm_handle_cmd_packaged(MigrationIncomingState *mis)
1948 {
1949 int ret;
1950 size_t length;
1951 QIOChannelBuffer *bioc;
1952
1953 length = qemu_get_be32(mis->from_src_file);
1954 trace_loadvm_handle_cmd_packaged(length);
1955
1956 if (length > MAX_VM_CMD_PACKAGED_SIZE) {
1957 error_report("Unreasonably large packaged state: %zu", length);
1958 return -1;
1959 }
1960
1961 bioc = qio_channel_buffer_new(length);
1962 qio_channel_set_name(QIO_CHANNEL(bioc), "migration-loadvm-buffer");
1963 ret = qemu_get_buffer(mis->from_src_file,
1964 bioc->data,
1965 length);
1966 if (ret != length) {
1967 object_unref(OBJECT(bioc));
1968 error_report("CMD_PACKAGED: Buffer receive fail ret=%d length=%zu",
1969 ret, length);
1970 return (ret < 0) ? ret : -EAGAIN;
1971 }
1972 bioc->usage += length;
1973 trace_loadvm_handle_cmd_packaged_received(ret);
1974
1975 QEMUFile *packf = qemu_fopen_channel_input(QIO_CHANNEL(bioc));
1976
1977 ret = qemu_loadvm_state_main(packf, mis);
1978 trace_loadvm_handle_cmd_packaged_main(ret);
1979 qemu_fclose(packf);
1980 object_unref(OBJECT(bioc));
1981
1982 return ret;
1983 }
1984
1985 /*
1986 * Handle request that source requests for recved_bitmap on
1987 * destination. Payload format:
1988 *
1989 * len (1 byte) + ramblock_name (<255 bytes)
1990 */
1991 static int loadvm_handle_recv_bitmap(MigrationIncomingState *mis,
1992 uint16_t len)
1993 {
1994 QEMUFile *file = mis->from_src_file;
1995 RAMBlock *rb;
1996 char block_name[256];
1997 size_t cnt;
1998
1999 cnt = qemu_get_counted_string(file, block_name);
2000 if (!cnt) {
2001 error_report("%s: failed to read block name", __func__);
2002 return -EINVAL;
2003 }
2004
2005 /* Validate before using the data */
2006 if (qemu_file_get_error(file)) {
2007 return qemu_file_get_error(file);
2008 }
2009
2010 if (len != cnt + 1) {
2011 error_report("%s: invalid payload length (%d)", __func__, len);
2012 return -EINVAL;
2013 }
2014
2015 rb = qemu_ram_block_by_name(block_name);
2016 if (!rb) {
2017 error_report("%s: block '%s' not found", __func__, block_name);
2018 return -EINVAL;
2019 }
2020
2021 migrate_send_rp_recv_bitmap(mis, block_name);
2022
2023 trace_loadvm_handle_recv_bitmap(block_name);
2024
2025 return 0;
2026 }
2027
2028 static int loadvm_process_enable_colo(MigrationIncomingState *mis)
2029 {
2030 migration_incoming_enable_colo();
2031 return colo_init_ram_cache();
2032 }
2033
2034 /*
2035 * Process an incoming 'QEMU_VM_COMMAND'
2036 * 0 just a normal return
2037 * LOADVM_QUIT All good, but exit the loop
2038 * <0 Error
2039 */
2040 static int loadvm_process_command(QEMUFile *f)
2041 {
2042 MigrationIncomingState *mis = migration_incoming_get_current();
2043 uint16_t cmd;
2044 uint16_t len;
2045 uint32_t tmp32;
2046
2047 cmd = qemu_get_be16(f);
2048 len = qemu_get_be16(f);
2049
2050 /* Check validity before continue processing of cmds */
2051 if (qemu_file_get_error(f)) {
2052 return qemu_file_get_error(f);
2053 }
2054
2055 trace_loadvm_process_command(cmd, len);
2056 if (cmd >= MIG_CMD_MAX || cmd == MIG_CMD_INVALID) {
2057 error_report("MIG_CMD 0x%x unknown (len 0x%x)", cmd, len);
2058 return -EINVAL;
2059 }
2060
2061 if (mig_cmd_args[cmd].len != -1 && mig_cmd_args[cmd].len != len) {
2062 error_report("%s received with bad length - expecting %zu, got %d",
2063 mig_cmd_args[cmd].name,
2064 (size_t)mig_cmd_args[cmd].len, len);
2065 return -ERANGE;
2066 }
2067
2068 switch (cmd) {
2069 case MIG_CMD_OPEN_RETURN_PATH:
2070 if (mis->to_src_file) {
2071 error_report("CMD_OPEN_RETURN_PATH called when RP already open");
2072 /* Not really a problem, so don't give up */
2073 return 0;
2074 }
2075 mis->to_src_file = qemu_file_get_return_path(f);
2076 if (!mis->to_src_file) {
2077 error_report("CMD_OPEN_RETURN_PATH failed");
2078 return -1;
2079 }
2080 break;
2081
2082 case MIG_CMD_PING:
2083 tmp32 = qemu_get_be32(f);
2084 trace_loadvm_process_command_ping(tmp32);
2085 if (!mis->to_src_file) {
2086 error_report("CMD_PING (0x%x) received with no return path",
2087 tmp32);
2088 return -1;
2089 }
2090 migrate_send_rp_pong(mis, tmp32);
2091 break;
2092
2093 case MIG_CMD_PACKAGED:
2094 return loadvm_handle_cmd_packaged(mis);
2095
2096 case MIG_CMD_POSTCOPY_ADVISE:
2097 return loadvm_postcopy_handle_advise(mis, len);
2098
2099 case MIG_CMD_POSTCOPY_LISTEN:
2100 return loadvm_postcopy_handle_listen(mis);
2101
2102 case MIG_CMD_POSTCOPY_RUN:
2103 return loadvm_postcopy_handle_run(mis);
2104
2105 case MIG_CMD_POSTCOPY_RAM_DISCARD:
2106 return loadvm_postcopy_ram_handle_discard(mis, len);
2107
2108 case MIG_CMD_POSTCOPY_RESUME:
2109 return loadvm_postcopy_handle_resume(mis);
2110
2111 case MIG_CMD_RECV_BITMAP:
2112 return loadvm_handle_recv_bitmap(mis, len);
2113
2114 case MIG_CMD_ENABLE_COLO:
2115 return loadvm_process_enable_colo(mis);
2116 }
2117
2118 return 0;
2119 }
2120
2121 /*
2122 * Read a footer off the wire and check that it matches the expected section
2123 *
2124 * Returns: true if the footer was good
2125 * false if there is a problem (and calls error_report to say why)
2126 */
2127 static bool check_section_footer(QEMUFile *f, SaveStateEntry *se)
2128 {
2129 int ret;
2130 uint8_t read_mark;
2131 uint32_t read_section_id;
2132
2133 if (!migrate_get_current()->send_section_footer) {
2134 /* No footer to check */
2135 return true;
2136 }
2137
2138 read_mark = qemu_get_byte(f);
2139
2140 ret = qemu_file_get_error(f);
2141 if (ret) {
2142 error_report("%s: Read section footer failed: %d",
2143 __func__, ret);
2144 return false;
2145 }
2146
2147 if (read_mark != QEMU_VM_SECTION_FOOTER) {
2148 error_report("Missing section footer for %s", se->idstr);
2149 return false;
2150 }
2151
2152 read_section_id = qemu_get_be32(f);
2153 if (read_section_id != se->load_section_id) {
2154 error_report("Mismatched section id in footer for %s -"
2155 " read 0x%x expected 0x%x",
2156 se->idstr, read_section_id, se->load_section_id);
2157 return false;
2158 }
2159
2160 /* All good */
2161 return true;
2162 }
2163
2164 static int
2165 qemu_loadvm_section_start_full(QEMUFile *f, MigrationIncomingState *mis)
2166 {
2167 uint32_t instance_id, version_id, section_id;
2168 SaveStateEntry *se;
2169 char idstr[256];
2170 int ret;
2171
2172 /* Read section start */
2173 section_id = qemu_get_be32(f);
2174 if (!qemu_get_counted_string(f, idstr)) {
2175 error_report("Unable to read ID string for section %u",
2176 section_id);
2177 return -EINVAL;
2178 }
2179 instance_id = qemu_get_be32(f);
2180 version_id = qemu_get_be32(f);
2181
2182 ret = qemu_file_get_error(f);
2183 if (ret) {
2184 error_report("%s: Failed to read instance/version ID: %d",
2185 __func__, ret);
2186 return ret;
2187 }
2188
2189 trace_qemu_loadvm_state_section_startfull(section_id, idstr,
2190 instance_id, version_id);
2191 /* Find savevm section */
2192 se = find_se(idstr, instance_id);
2193 if (se == NULL) {
2194 error_report("Unknown savevm section or instance '%s' %d. "
2195 "Make sure that your current VM setup matches your "
2196 "saved VM setup, including any hotplugged devices",
2197 idstr, instance_id);
2198 return -EINVAL;
2199 }
2200
2201 /* Validate version */
2202 if (version_id > se->version_id) {
2203 error_report("savevm: unsupported version %d for '%s' v%d",
2204 version_id, idstr, se->version_id);
2205 return -EINVAL;
2206 }
2207 se->load_version_id = version_id;
2208 se->load_section_id = section_id;
2209
2210 /* Validate if it is a device's state */
2211 if (xen_enabled() && se->is_ram) {
2212 error_report("loadvm: %s RAM loading not allowed on Xen", idstr);
2213 return -EINVAL;
2214 }
2215
2216 ret = vmstate_load(f, se);
2217 if (ret < 0) {
2218 error_report("error while loading state for instance 0x%x of"
2219 " device '%s'", instance_id, idstr);
2220 return ret;
2221 }
2222 if (!check_section_footer(f, se)) {
2223 return -EINVAL;
2224 }
2225
2226 return 0;
2227 }
2228
2229 static int
2230 qemu_loadvm_section_part_end(QEMUFile *f, MigrationIncomingState *mis)
2231 {
2232 uint32_t section_id;
2233 SaveStateEntry *se;
2234 int ret;
2235
2236 section_id = qemu_get_be32(f);
2237
2238 ret = qemu_file_get_error(f);
2239 if (ret) {
2240 error_report("%s: Failed to read section ID: %d",
2241 __func__, ret);
2242 return ret;
2243 }
2244
2245 trace_qemu_loadvm_state_section_partend(section_id);
2246 QTAILQ_FOREACH(se, &savevm_state.handlers, entry) {
2247 if (se->load_section_id == section_id) {
2248 break;
2249 }
2250 }
2251 if (se == NULL) {
2252 error_report("Unknown savevm section %d", section_id);
2253 return -EINVAL;
2254 }
2255
2256 ret = vmstate_load(f, se);
2257 if (ret < 0) {
2258 error_report("error while loading state section id %d(%s)",
2259 section_id, se->idstr);
2260 return ret;
2261 }
2262 if (!check_section_footer(f, se)) {
2263 return -EINVAL;
2264 }
2265
2266 return 0;
2267 }
2268
2269 static int qemu_loadvm_state_header(QEMUFile *f)
2270 {
2271 unsigned int v;
2272 int ret;
2273
2274 v = qemu_get_be32(f);
2275 if (v != QEMU_VM_FILE_MAGIC) {
2276 error_report("Not a migration stream");
2277 return -EINVAL;
2278 }
2279
2280 v = qemu_get_be32(f);
2281 if (v == QEMU_VM_FILE_VERSION_COMPAT) {
2282 error_report("SaveVM v2 format is obsolete and don't work anymore");
2283 return -ENOTSUP;
2284 }
2285 if (v != QEMU_VM_FILE_VERSION) {
2286 error_report("Unsupported migration stream version");
2287 return -ENOTSUP;
2288 }
2289
2290 if (migrate_get_current()->send_configuration) {
2291 if (qemu_get_byte(f) != QEMU_VM_CONFIGURATION) {
2292 error_report("Configuration section missing");
2293 qemu_loadvm_state_cleanup();
2294 return -EINVAL;
2295 }
2296 ret = vmstate_load_state(f, &vmstate_configuration, &savevm_state, 0);
2297
2298 if (ret) {
2299 qemu_loadvm_state_cleanup();
2300 return ret;
2301 }
2302 }
2303 return 0;
2304 }
2305
2306 static int qemu_loadvm_state_setup(QEMUFile *f)
2307 {
2308 SaveStateEntry *se;
2309 int ret;
2310
2311 trace_loadvm_state_setup();
2312 QTAILQ_FOREACH(se, &savevm_state.handlers, entry) {
2313 if (!se->ops || !se->ops->load_setup) {
2314 continue;
2315 }
2316 if (se->ops->is_active) {
2317 if (!se->ops->is_active(se->opaque)) {
2318 continue;
2319 }
2320 }
2321
2322 ret = se->ops->load_setup(f, se->opaque);
2323 if (ret < 0) {
2324 qemu_file_set_error(f, ret);
2325 error_report("Load state of device %s failed", se->idstr);
2326 return ret;
2327 }
2328 }
2329 return 0;
2330 }
2331
2332 void qemu_loadvm_state_cleanup(void)
2333 {
2334 SaveStateEntry *se;
2335
2336 trace_loadvm_state_cleanup();
2337 QTAILQ_FOREACH(se, &savevm_state.handlers, entry) {
2338 if (se->ops && se->ops->load_cleanup) {
2339 se->ops->load_cleanup(se->opaque);
2340 }
2341 }
2342 }
2343
2344 /* Return true if we should continue the migration, or false. */
2345 static bool postcopy_pause_incoming(MigrationIncomingState *mis)
2346 {
2347 trace_postcopy_pause_incoming();
2348
2349 /* Clear the triggered bit to allow one recovery */
2350 mis->postcopy_recover_triggered = false;
2351
2352 assert(mis->from_src_file);
2353 qemu_file_shutdown(mis->from_src_file);
2354 qemu_fclose(mis->from_src_file);
2355 mis->from_src_file = NULL;
2356
2357 assert(mis->to_src_file);
2358 qemu_file_shutdown(mis->to_src_file);
2359 qemu_mutex_lock(&mis->rp_mutex);
2360 qemu_fclose(mis->to_src_file);
2361 mis->to_src_file = NULL;
2362 qemu_mutex_unlock(&mis->rp_mutex);
2363
2364 migrate_set_state(&mis->state, MIGRATION_STATUS_POSTCOPY_ACTIVE,
2365 MIGRATION_STATUS_POSTCOPY_PAUSED);
2366
2367 /* Notify the fault thread for the invalidated file handle */
2368 postcopy_fault_thread_notify(mis);
2369
2370 error_report("Detected IO failure for postcopy. "
2371 "Migration paused.");
2372
2373 while (mis->state == MIGRATION_STATUS_POSTCOPY_PAUSED) {
2374 qemu_sem_wait(&mis->postcopy_pause_sem_dst);
2375 }
2376
2377 trace_postcopy_pause_incoming_continued();
2378
2379 return true;
2380 }
2381
2382 int qemu_loadvm_state_main(QEMUFile *f, MigrationIncomingState *mis)
2383 {
2384 uint8_t section_type;
2385 int ret = 0;
2386
2387 retry:
2388 while (true) {
2389 section_type = qemu_get_byte(f);
2390
2391 if (qemu_file_get_error(f)) {
2392 ret = qemu_file_get_error(f);
2393 break;
2394 }
2395
2396 trace_qemu_loadvm_state_section(section_type);
2397 switch (section_type) {
2398 case QEMU_VM_SECTION_START:
2399 case QEMU_VM_SECTION_FULL:
2400 ret = qemu_loadvm_section_start_full(f, mis);
2401 if (ret < 0) {
2402 goto out;
2403 }
2404 break;
2405 case QEMU_VM_SECTION_PART:
2406 case QEMU_VM_SECTION_END:
2407 ret = qemu_loadvm_section_part_end(f, mis);
2408 if (ret < 0) {
2409 goto out;
2410 }
2411 break;
2412 case QEMU_VM_COMMAND:
2413 ret = loadvm_process_command(f);
2414 trace_qemu_loadvm_state_section_command(ret);
2415 if ((ret < 0) || (ret == LOADVM_QUIT)) {
2416 goto out;
2417 }
2418 break;
2419 case QEMU_VM_EOF:
2420 /* This is the end of migration */
2421 goto out;
2422 default:
2423 error_report("Unknown savevm section type %d", section_type);
2424 ret = -EINVAL;
2425 goto out;
2426 }
2427 }
2428
2429 out:
2430 if (ret < 0) {
2431 qemu_file_set_error(f, ret);
2432
2433 /*
2434 * If we are during an active postcopy, then we pause instead
2435 * of bail out to at least keep the VM's dirty data. Note
2436 * that POSTCOPY_INCOMING_LISTENING stage is still not enough,
2437 * during which we're still receiving device states and we
2438 * still haven't yet started the VM on destination.
2439 */
2440 if (postcopy_state_get() == POSTCOPY_INCOMING_RUNNING &&
2441 postcopy_pause_incoming(mis)) {
2442 /* Reset f to point to the newly created channel */
2443 f = mis->from_src_file;
2444 goto retry;
2445 }
2446 }
2447 return ret;
2448 }
2449
2450 int qemu_loadvm_state(QEMUFile *f)
2451 {
2452 MigrationIncomingState *mis = migration_incoming_get_current();
2453 Error *local_err = NULL;
2454 int ret;
2455
2456 if (qemu_savevm_state_blocked(&local_err)) {
2457 error_report_err(local_err);
2458 return -EINVAL;
2459 }
2460
2461 ret = qemu_loadvm_state_header(f);
2462 if (ret) {
2463 return ret;
2464 }
2465
2466 if (qemu_loadvm_state_setup(f) != 0) {
2467 return -EINVAL;
2468 }
2469
2470 cpu_synchronize_all_pre_loadvm();
2471
2472 ret = qemu_loadvm_state_main(f, mis);
2473 qemu_event_set(&mis->main_thread_load_event);
2474
2475 trace_qemu_loadvm_state_post_main(ret);
2476
2477 if (mis->have_listen_thread) {
2478 /* Listen thread still going, can't clean up yet */
2479 return ret;
2480 }
2481
2482 if (ret == 0) {
2483 ret = qemu_file_get_error(f);
2484 }
2485
2486 /*
2487 * Try to read in the VMDESC section as well, so that dumping tools that
2488 * intercept our migration stream have the chance to see it.
2489 */
2490
2491 /* We've got to be careful; if we don't read the data and just shut the fd
2492 * then the sender can error if we close while it's still sending.
2493 * We also mustn't read data that isn't there; some transports (RDMA)
2494 * will stall waiting for that data when the source has already closed.
2495 */
2496 if (ret == 0 && should_send_vmdesc()) {
2497 uint8_t *buf;
2498 uint32_t size;
2499 uint8_t section_type = qemu_get_byte(f);
2500
2501 if (section_type != QEMU_VM_VMDESCRIPTION) {
2502 error_report("Expected vmdescription section, but got %d",
2503 section_type);
2504 /*
2505 * It doesn't seem worth failing at this point since
2506 * we apparently have an otherwise valid VM state
2507 */
2508 } else {
2509 buf = g_malloc(0x1000);
2510 size = qemu_get_be32(f);
2511
2512 while (size > 0) {
2513 uint32_t read_chunk = MIN(size, 0x1000);
2514 qemu_get_buffer(f, buf, read_chunk);
2515 size -= read_chunk;
2516 }
2517 g_free(buf);
2518 }
2519 }
2520
2521 qemu_loadvm_state_cleanup();
2522 cpu_synchronize_all_post_init();
2523
2524 return ret;
2525 }
2526
2527 int qemu_load_device_state(QEMUFile *f)
2528 {
2529 MigrationIncomingState *mis = migration_incoming_get_current();
2530 int ret;
2531
2532 /* Load QEMU_VM_SECTION_FULL section */
2533 ret = qemu_loadvm_state_main(f, mis);
2534 if (ret < 0) {
2535 error_report("Failed to load device state: %d", ret);
2536 return ret;
2537 }
2538
2539 cpu_synchronize_all_post_init();
2540 return 0;
2541 }
2542
2543 int save_snapshot(const char *name, Error **errp)
2544 {
2545 BlockDriverState *bs, *bs1;
2546 QEMUSnapshotInfo sn1, *sn = &sn1, old_sn1, *old_sn = &old_sn1;
2547 int ret = -1;
2548 QEMUFile *f;
2549 int saved_vm_running;
2550 uint64_t vm_state_size;
2551 qemu_timeval tv;
2552 struct tm tm;
2553 AioContext *aio_context;
2554
2555 if (migration_is_blocked(errp)) {
2556 return ret;
2557 }
2558
2559 if (!replay_can_snapshot()) {
2560 error_setg(errp, "Record/replay does not allow making snapshot "
2561 "right now. Try once more later.");
2562 return ret;
2563 }
2564
2565 if (!bdrv_all_can_snapshot(&bs)) {
2566 error_setg(errp, "Device '%s' is writable but does not support "
2567 "snapshots", bdrv_get_device_name(bs));
2568 return ret;
2569 }
2570
2571 /* Delete old snapshots of the same name */
2572 if (name) {
2573 ret = bdrv_all_delete_snapshot(name, &bs1, errp);
2574 if (ret < 0) {
2575 error_prepend(errp, "Error while deleting snapshot on device "
2576 "'%s': ", bdrv_get_device_name(bs1));
2577 return ret;
2578 }
2579 }
2580
2581 bs = bdrv_all_find_vmstate_bs();
2582 if (bs == NULL) {
2583 error_setg(errp, "No block device can accept snapshots");
2584 return ret;
2585 }
2586 aio_context = bdrv_get_aio_context(bs);
2587
2588 saved_vm_running = runstate_is_running();
2589
2590 ret = global_state_store();
2591 if (ret) {
2592 error_setg(errp, "Error saving global state");
2593 return ret;
2594 }
2595 vm_stop(RUN_STATE_SAVE_VM);
2596
2597 bdrv_drain_all_begin();
2598
2599 aio_context_acquire(aio_context);
2600
2601 memset(sn, 0, sizeof(*sn));
2602
2603 /* fill auxiliary fields */
2604 qemu_gettimeofday(&tv);
2605 sn->date_sec = tv.tv_sec;
2606 sn->date_nsec = tv.tv_usec * 1000;
2607 sn->vm_clock_nsec = qemu_clock_get_ns(QEMU_CLOCK_VIRTUAL);
2608
2609 if (name) {
2610 ret = bdrv_snapshot_find(bs, old_sn, name);
2611 if (ret >= 0) {
2612 pstrcpy(sn->name, sizeof(sn->name), old_sn->name);
2613 pstrcpy(sn->id_str, sizeof(sn->id_str), old_sn->id_str);
2614 } else {
2615 pstrcpy(sn->name, sizeof(sn->name), name);
2616 }
2617 } else {
2618 /* cast below needed for OpenBSD where tv_sec is still 'long' */
2619 localtime_r((const time_t *)&tv.tv_sec, &tm);
2620 strftime(sn->name, sizeof(sn->name), "vm-%Y%m%d%H%M%S", &tm);
2621 }
2622
2623 /* save the VM state */
2624 f = qemu_fopen_bdrv(bs, 1);
2625 if (!f) {
2626 error_setg(errp, "Could not open VM state file");
2627 goto the_end;
2628 }
2629 ret = qemu_savevm_state(f, errp);
2630 vm_state_size = qemu_ftell(f);
2631 qemu_fclose(f);
2632 if (ret < 0) {
2633 goto the_end;
2634 }
2635
2636 /* The bdrv_all_create_snapshot() call that follows acquires the AioContext
2637 * for itself. BDRV_POLL_WHILE() does not support nested locking because
2638 * it only releases the lock once. Therefore synchronous I/O will deadlock
2639 * unless we release the AioContext before bdrv_all_create_snapshot().
2640 */
2641 aio_context_release(aio_context);
2642 aio_context = NULL;
2643
2644 ret = bdrv_all_create_snapshot(sn, bs, vm_state_size, &bs);
2645 if (ret < 0) {
2646 error_setg(errp, "Error while creating snapshot on '%s'",
2647 bdrv_get_device_name(bs));
2648 goto the_end;
2649 }
2650
2651 ret = 0;
2652
2653 the_end:
2654 if (aio_context) {
2655 aio_context_release(aio_context);
2656 }
2657
2658 bdrv_drain_all_end();
2659
2660 if (saved_vm_running) {
2661 vm_start();
2662 }
2663 return ret;
2664 }
2665
2666 void qmp_xen_save_devices_state(const char *filename, bool has_live, bool live,
2667 Error **errp)
2668 {
2669 QEMUFile *f;
2670 QIOChannelFile *ioc;
2671 int saved_vm_running;
2672 int ret;
2673
2674 if (!has_live) {
2675 /* live default to true so old version of Xen tool stack can have a
2676 * successfull live migration */
2677 live = true;
2678 }
2679
2680 saved_vm_running = runstate_is_running();
2681 vm_stop(RUN_STATE_SAVE_VM);
2682 global_state_store_running();
2683
2684 ioc = qio_channel_file_new_path(filename, O_WRONLY | O_CREAT, 0660, errp);
2685 if (!ioc) {
2686 goto the_end;
2687 }
2688 qio_channel_set_name(QIO_CHANNEL(ioc), "migration-xen-save-state");
2689 f = qemu_fopen_channel_output(QIO_CHANNEL(ioc));
2690 object_unref(OBJECT(ioc));
2691 ret = qemu_save_device_state(f);
2692 if (ret < 0 || qemu_fclose(f) < 0) {
2693 error_setg(errp, QERR_IO_ERROR);
2694 } else {
2695 /* libxl calls the QMP command "stop" before calling
2696 * "xen-save-devices-state" and in case of migration failure, libxl
2697 * would call "cont".
2698 * So call bdrv_inactivate_all (release locks) here to let the other
2699 * side of the migration take controle of the images.
2700 */
2701 if (live && !saved_vm_running) {
2702 ret = bdrv_inactivate_all();
2703 if (ret) {
2704 error_setg(errp, "%s: bdrv_inactivate_all() failed (%d)",
2705 __func__, ret);
2706 }
2707 }
2708 }
2709
2710 the_end:
2711 if (saved_vm_running) {
2712 vm_start();
2713 }
2714 }
2715
2716 void qmp_xen_load_devices_state(const char *filename, Error **errp)
2717 {
2718 QEMUFile *f;
2719 QIOChannelFile *ioc;
2720 int ret;
2721
2722 /* Guest must be paused before loading the device state; the RAM state
2723 * will already have been loaded by xc
2724 */
2725 if (runstate_is_running()) {
2726 error_setg(errp, "Cannot update device state while vm is running");
2727 return;
2728 }
2729 vm_stop(RUN_STATE_RESTORE_VM);
2730
2731 ioc = qio_channel_file_new_path(filename, O_RDONLY | O_BINARY, 0, errp);
2732 if (!ioc) {
2733 return;
2734 }
2735 qio_channel_set_name(QIO_CHANNEL(ioc), "migration-xen-load-state");
2736 f = qemu_fopen_channel_input(QIO_CHANNEL(ioc));
2737 object_unref(OBJECT(ioc));
2738
2739 ret = qemu_loadvm_state(f);
2740 qemu_fclose(f);
2741 if (ret < 0) {
2742 error_setg(errp, QERR_IO_ERROR);
2743 }
2744 migration_incoming_state_destroy();
2745 }
2746
2747 int load_snapshot(const char *name, Error **errp)
2748 {
2749 BlockDriverState *bs, *bs_vm_state;
2750 QEMUSnapshotInfo sn;
2751 QEMUFile *f;
2752 int ret;
2753 AioContext *aio_context;
2754 MigrationIncomingState *mis = migration_incoming_get_current();
2755
2756 if (!replay_can_snapshot()) {
2757 error_setg(errp, "Record/replay does not allow loading snapshot "
2758 "right now. Try once more later.");
2759 return -EINVAL;
2760 }
2761
2762 if (!bdrv_all_can_snapshot(&bs)) {
2763 error_setg(errp,
2764 "Device '%s' is writable but does not support snapshots",
2765 bdrv_get_device_name(bs));
2766 return -ENOTSUP;
2767 }
2768 ret = bdrv_all_find_snapshot(name, &bs);
2769 if (ret < 0) {
2770 error_setg(errp,
2771 "Device '%s' does not have the requested snapshot '%s'",
2772 bdrv_get_device_name(bs), name);
2773 return ret;
2774 }
2775
2776 bs_vm_state = bdrv_all_find_vmstate_bs();
2777 if (!bs_vm_state) {
2778 error_setg(errp, "No block device supports snapshots");
2779 return -ENOTSUP;
2780 }
2781 aio_context = bdrv_get_aio_context(bs_vm_state);
2782
2783 /* Don't even try to load empty VM states */
2784 aio_context_acquire(aio_context);
2785 ret = bdrv_snapshot_find(bs_vm_state, &sn, name);
2786 aio_context_release(aio_context);
2787 if (ret < 0) {
2788 return ret;
2789 } else if (sn.vm_state_size == 0) {
2790 error_setg(errp, "This is a disk-only snapshot. Revert to it "
2791 " offline using qemu-img");
2792 return -EINVAL;
2793 }
2794
2795 /* Flush all IO requests so they don't interfere with the new state. */
2796 bdrv_drain_all_begin();
2797
2798 ret = bdrv_all_goto_snapshot(name, &bs, errp);
2799 if (ret < 0) {
2800 error_prepend(errp, "Could not load snapshot '%s' on '%s': ",
2801 name, bdrv_get_device_name(bs));
2802 goto err_drain;
2803 }
2804
2805 /* restore the VM state */
2806 f = qemu_fopen_bdrv(bs_vm_state, 0);
2807 if (!f) {
2808 error_setg(errp, "Could not open VM state file");
2809 ret = -EINVAL;
2810 goto err_drain;
2811 }
2812
2813 qemu_system_reset(SHUTDOWN_CAUSE_NONE);
2814 mis->from_src_file = f;
2815
2816 aio_context_acquire(aio_context);
2817 ret = qemu_loadvm_state(f);
2818 migration_incoming_state_destroy();
2819 aio_context_release(aio_context);
2820
2821 bdrv_drain_all_end();
2822
2823 if (ret < 0) {
2824 error_setg(errp, "Error %d while loading VM state", ret);
2825 return ret;
2826 }
2827
2828 return 0;
2829
2830 err_drain:
2831 bdrv_drain_all_end();
2832 return ret;
2833 }
2834
2835 void vmstate_register_ram(MemoryRegion *mr, DeviceState *dev)
2836 {
2837 qemu_ram_set_idstr(mr->ram_block,
2838 memory_region_name(mr), dev);
2839 qemu_ram_set_migratable(mr->ram_block);
2840 }
2841
2842 void vmstate_unregister_ram(MemoryRegion *mr, DeviceState *dev)
2843 {
2844 qemu_ram_unset_idstr(mr->ram_block);
2845 qemu_ram_unset_migratable(mr->ram_block);
2846 }
2847
2848 void vmstate_register_ram_global(MemoryRegion *mr)
2849 {
2850 vmstate_register_ram(mr, NULL);
2851 }
2852
2853 bool vmstate_check_only_migratable(const VMStateDescription *vmsd)
2854 {
2855 /* check needed if --only-migratable is specified */
2856 if (!only_migratable) {
2857 return true;
2858 }
2859
2860 return !(vmsd && vmsd->unmigratable);
2861 }