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[qemu.git] / migration / postcopy-ram.c
CommitLineData
eb59db53
DDAG
1/*
2 * Postcopy migration for RAM
3 *
4 * Copyright 2013-2015 Red Hat, Inc. and/or its affiliates
5 *
6 * Authors:
7 * Dave Gilbert <[email protected]>
8 *
9 * This work is licensed under the terms of the GNU GPL, version 2 or later.
10 * See the COPYING file in the top-level directory.
11 *
12 */
13
14/*
15 * Postcopy is a migration technique where the execution flips from the
16 * source to the destination before all the data has been copied.
17 */
18
1393a485 19#include "qemu/osdep.h"
51180423 20#include "exec/target_page.h"
6666c96a 21#include "migration.h"
08a0aee1 22#include "qemu-file.h"
20a519a0 23#include "savevm.h"
be07b0ac 24#include "postcopy-ram.h"
7b1e1a22 25#include "ram.h"
1693c64c
DDAG
26#include "qapi/error.h"
27#include "qemu/notify.h"
d4842052 28#include "qemu/rcu.h"
eb59db53
DDAG
29#include "sysemu/sysemu.h"
30#include "qemu/error-report.h"
31#include "trace.h"
5cc8767d 32#include "hw/boards.h"
eb59db53 33
e0b266f0
DDAG
34/* Arbitrary limit on size of each discard command,
35 * keeps them around ~200 bytes
36 */
37#define MAX_DISCARDS_PER_COMMAND 12
38
39struct PostcopyDiscardState {
40 const char *ramblock_name;
e0b266f0
DDAG
41 uint16_t cur_entry;
42 /*
43 * Start and length of a discard range (bytes)
44 */
45 uint64_t start_list[MAX_DISCARDS_PER_COMMAND];
46 uint64_t length_list[MAX_DISCARDS_PER_COMMAND];
47 unsigned int nsentwords;
48 unsigned int nsentcmds;
49};
50
1693c64c
DDAG
51static NotifierWithReturnList postcopy_notifier_list;
52
53void postcopy_infrastructure_init(void)
54{
55 notifier_with_return_list_init(&postcopy_notifier_list);
56}
57
58void postcopy_add_notifier(NotifierWithReturn *nn)
59{
60 notifier_with_return_list_add(&postcopy_notifier_list, nn);
61}
62
63void postcopy_remove_notifier(NotifierWithReturn *n)
64{
65 notifier_with_return_remove(n);
66}
67
68int postcopy_notify(enum PostcopyNotifyReason reason, Error **errp)
69{
70 struct PostcopyNotifyData pnd;
71 pnd.reason = reason;
72 pnd.errp = errp;
73
74 return notifier_with_return_list_notify(&postcopy_notifier_list,
75 &pnd);
76}
77
eb59db53
DDAG
78/* Postcopy needs to detect accesses to pages that haven't yet been copied
79 * across, and efficiently map new pages in, the techniques for doing this
80 * are target OS specific.
81 */
82#if defined(__linux__)
83
c4faeed2 84#include <poll.h>
eb59db53
DDAG
85#include <sys/ioctl.h>
86#include <sys/syscall.h>
eb59db53
DDAG
87#include <asm/types.h> /* for __u64 */
88#endif
89
d8b9d771
MF
90#if defined(__linux__) && defined(__NR_userfaultfd) && defined(CONFIG_EVENTFD)
91#include <sys/eventfd.h>
eb59db53
DDAG
92#include <linux/userfaultfd.h>
93
2a4c42f1
AP
94typedef struct PostcopyBlocktimeContext {
95 /* time when page fault initiated per vCPU */
96 uint32_t *page_fault_vcpu_time;
97 /* page address per vCPU */
98 uintptr_t *vcpu_addr;
99 uint32_t total_blocktime;
100 /* blocktime per vCPU */
101 uint32_t *vcpu_blocktime;
102 /* point in time when last page fault was initiated */
103 uint32_t last_begin;
104 /* number of vCPU are suspended */
105 int smp_cpus_down;
106 uint64_t start_time;
107
108 /*
109 * Handler for exit event, necessary for
110 * releasing whole blocktime_ctx
111 */
112 Notifier exit_notifier;
113} PostcopyBlocktimeContext;
114
115static void destroy_blocktime_context(struct PostcopyBlocktimeContext *ctx)
116{
117 g_free(ctx->page_fault_vcpu_time);
118 g_free(ctx->vcpu_addr);
119 g_free(ctx->vcpu_blocktime);
120 g_free(ctx);
121}
122
123static void migration_exit_cb(Notifier *n, void *data)
124{
125 PostcopyBlocktimeContext *ctx = container_of(n, PostcopyBlocktimeContext,
126 exit_notifier);
127 destroy_blocktime_context(ctx);
128}
129
130static struct PostcopyBlocktimeContext *blocktime_context_new(void)
131{
5cc8767d
LX
132 MachineState *ms = MACHINE(qdev_get_machine());
133 unsigned int smp_cpus = ms->smp.cpus;
2a4c42f1
AP
134 PostcopyBlocktimeContext *ctx = g_new0(PostcopyBlocktimeContext, 1);
135 ctx->page_fault_vcpu_time = g_new0(uint32_t, smp_cpus);
136 ctx->vcpu_addr = g_new0(uintptr_t, smp_cpus);
137 ctx->vcpu_blocktime = g_new0(uint32_t, smp_cpus);
138
139 ctx->exit_notifier.notify = migration_exit_cb;
140 ctx->start_time = qemu_clock_get_ms(QEMU_CLOCK_REALTIME);
141 qemu_add_exit_notifier(&ctx->exit_notifier);
142 return ctx;
143}
ca6011c2 144
65ace060
AP
145static uint32List *get_vcpu_blocktime_list(PostcopyBlocktimeContext *ctx)
146{
5cc8767d 147 MachineState *ms = MACHINE(qdev_get_machine());
65ace060
AP
148 uint32List *list = NULL, *entry = NULL;
149 int i;
150
5cc8767d 151 for (i = ms->smp.cpus - 1; i >= 0; i--) {
65ace060
AP
152 entry = g_new0(uint32List, 1);
153 entry->value = ctx->vcpu_blocktime[i];
154 entry->next = list;
155 list = entry;
156 }
157
158 return list;
159}
160
161/*
162 * This function just populates MigrationInfo from postcopy's
163 * blocktime context. It will not populate MigrationInfo,
164 * unless postcopy-blocktime capability was set.
165 *
166 * @info: pointer to MigrationInfo to populate
167 */
168void fill_destination_postcopy_migration_info(MigrationInfo *info)
169{
170 MigrationIncomingState *mis = migration_incoming_get_current();
171 PostcopyBlocktimeContext *bc = mis->blocktime_ctx;
172
173 if (!bc) {
174 return;
175 }
176
177 info->has_postcopy_blocktime = true;
178 info->postcopy_blocktime = bc->total_blocktime;
179 info->has_postcopy_vcpu_blocktime = true;
180 info->postcopy_vcpu_blocktime = get_vcpu_blocktime_list(bc);
181}
182
183static uint32_t get_postcopy_total_blocktime(void)
184{
185 MigrationIncomingState *mis = migration_incoming_get_current();
186 PostcopyBlocktimeContext *bc = mis->blocktime_ctx;
187
188 if (!bc) {
189 return 0;
190 }
191
192 return bc->total_blocktime;
193}
194
54ae0886
AP
195/**
196 * receive_ufd_features: check userfault fd features, to request only supported
197 * features in the future.
198 *
199 * Returns: true on success
200 *
201 * __NR_userfaultfd - should be checked before
202 * @features: out parameter will contain uffdio_api.features provided by kernel
203 * in case of success
204 */
205static bool receive_ufd_features(uint64_t *features)
eb59db53 206{
54ae0886
AP
207 struct uffdio_api api_struct = {0};
208 int ufd;
209 bool ret = true;
210
211 /* if we are here __NR_userfaultfd should exists */
212 ufd = syscall(__NR_userfaultfd, O_CLOEXEC);
213 if (ufd == -1) {
214 error_report("%s: syscall __NR_userfaultfd failed: %s", __func__,
215 strerror(errno));
216 return false;
217 }
eb59db53 218
54ae0886 219 /* ask features */
eb59db53
DDAG
220 api_struct.api = UFFD_API;
221 api_struct.features = 0;
222 if (ioctl(ufd, UFFDIO_API, &api_struct)) {
5553499f 223 error_report("%s: UFFDIO_API failed: %s", __func__,
eb59db53 224 strerror(errno));
54ae0886
AP
225 ret = false;
226 goto release_ufd;
227 }
228
229 *features = api_struct.features;
230
231release_ufd:
232 close(ufd);
233 return ret;
234}
235
236/**
237 * request_ufd_features: this function should be called only once on a newly
238 * opened ufd, subsequent calls will lead to error.
239 *
3a4452d8 240 * Returns: true on success
54ae0886
AP
241 *
242 * @ufd: fd obtained from userfaultfd syscall
243 * @features: bit mask see UFFD_API_FEATURES
244 */
245static bool request_ufd_features(int ufd, uint64_t features)
246{
247 struct uffdio_api api_struct = {0};
248 uint64_t ioctl_mask;
249
250 api_struct.api = UFFD_API;
251 api_struct.features = features;
252 if (ioctl(ufd, UFFDIO_API, &api_struct)) {
253 error_report("%s failed: UFFDIO_API failed: %s", __func__,
254 strerror(errno));
eb59db53
DDAG
255 return false;
256 }
257
258 ioctl_mask = (__u64)1 << _UFFDIO_REGISTER |
259 (__u64)1 << _UFFDIO_UNREGISTER;
260 if ((api_struct.ioctls & ioctl_mask) != ioctl_mask) {
261 error_report("Missing userfault features: %" PRIx64,
262 (uint64_t)(~api_struct.ioctls & ioctl_mask));
263 return false;
264 }
265
54ae0886
AP
266 return true;
267}
268
269static bool ufd_check_and_apply(int ufd, MigrationIncomingState *mis)
270{
271 uint64_t asked_features = 0;
272 static uint64_t supported_features;
273
274 /*
275 * it's not possible to
276 * request UFFD_API twice per one fd
277 * userfault fd features is persistent
278 */
279 if (!supported_features) {
280 if (!receive_ufd_features(&supported_features)) {
281 error_report("%s failed", __func__);
282 return false;
283 }
284 }
285
2a4c42f1
AP
286#ifdef UFFD_FEATURE_THREAD_ID
287 if (migrate_postcopy_blocktime() && mis &&
288 UFFD_FEATURE_THREAD_ID & supported_features) {
289 /* kernel supports that feature */
290 /* don't create blocktime_context if it exists */
291 if (!mis->blocktime_ctx) {
292 mis->blocktime_ctx = blocktime_context_new();
293 }
294
295 asked_features |= UFFD_FEATURE_THREAD_ID;
296 }
297#endif
298
54ae0886
AP
299 /*
300 * request features, even if asked_features is 0, due to
301 * kernel expects UFFD_API before UFFDIO_REGISTER, per
302 * userfault file descriptor
303 */
304 if (!request_ufd_features(ufd, asked_features)) {
305 error_report("%s failed: features %" PRIu64, __func__,
306 asked_features);
307 return false;
308 }
309
038adc2f 310 if (qemu_real_host_page_size != ram_pagesize_summary()) {
7e8cafb7
DDAG
311 bool have_hp = false;
312 /* We've got a huge page */
313#ifdef UFFD_FEATURE_MISSING_HUGETLBFS
54ae0886 314 have_hp = supported_features & UFFD_FEATURE_MISSING_HUGETLBFS;
7e8cafb7
DDAG
315#endif
316 if (!have_hp) {
317 error_report("Userfault on this host does not support huge pages");
318 return false;
319 }
320 }
eb59db53
DDAG
321 return true;
322}
323
8679638b
DDAG
324/* Callback from postcopy_ram_supported_by_host block iterator.
325 */
754cb9c0 326static int test_ramblock_postcopiable(RAMBlock *rb, void *opaque)
8679638b 327{
754cb9c0
YK
328 const char *block_name = qemu_ram_get_idstr(rb);
329 ram_addr_t length = qemu_ram_get_used_length(rb);
5d214a92
DDAG
330 size_t pagesize = qemu_ram_pagesize(rb);
331
5d214a92
DDAG
332 if (length % pagesize) {
333 error_report("Postcopy requires RAM blocks to be a page size multiple,"
334 " block %s is 0x" RAM_ADDR_FMT " bytes with a "
335 "page size of 0x%zx", block_name, length, pagesize);
336 return 1;
337 }
8679638b
DDAG
338 return 0;
339}
340
58b7c17e
DDAG
341/*
342 * Note: This has the side effect of munlock'ing all of RAM, that's
343 * normally fine since if the postcopy succeeds it gets turned back on at the
344 * end.
345 */
d7651f15 346bool postcopy_ram_supported_by_host(MigrationIncomingState *mis)
eb59db53 347{
038adc2f 348 long pagesize = qemu_real_host_page_size;
eb59db53
DDAG
349 int ufd = -1;
350 bool ret = false; /* Error unless we change it */
351 void *testarea = NULL;
352 struct uffdio_register reg_struct;
353 struct uffdio_range range_struct;
354 uint64_t feature_mask;
1693c64c 355 Error *local_err = NULL;
eb59db53 356
20afaed9 357 if (qemu_target_page_size() > pagesize) {
eb59db53
DDAG
358 error_report("Target page size bigger than host page size");
359 goto out;
360 }
361
362 ufd = syscall(__NR_userfaultfd, O_CLOEXEC);
363 if (ufd == -1) {
364 error_report("%s: userfaultfd not available: %s", __func__,
365 strerror(errno));
366 goto out;
367 }
368
1693c64c
DDAG
369 /* Give devices a chance to object */
370 if (postcopy_notify(POSTCOPY_NOTIFY_PROBE, &local_err)) {
371 error_report_err(local_err);
372 goto out;
373 }
374
eb59db53 375 /* Version and features check */
54ae0886 376 if (!ufd_check_and_apply(ufd, mis)) {
eb59db53
DDAG
377 goto out;
378 }
379
8679638b 380 /* We don't support postcopy with shared RAM yet */
fbd162e6 381 if (foreach_not_ignored_block(test_ramblock_postcopiable, NULL)) {
8679638b
DDAG
382 goto out;
383 }
384
58b7c17e
DDAG
385 /*
386 * userfault and mlock don't go together; we'll put it back later if
387 * it was enabled.
388 */
389 if (munlockall()) {
390 error_report("%s: munlockall: %s", __func__, strerror(errno));
617a32f5 391 goto out;
58b7c17e
DDAG
392 }
393
eb59db53
DDAG
394 /*
395 * We need to check that the ops we need are supported on anon memory
396 * To do that we need to register a chunk and see the flags that
397 * are returned.
398 */
399 testarea = mmap(NULL, pagesize, PROT_READ | PROT_WRITE, MAP_PRIVATE |
400 MAP_ANONYMOUS, -1, 0);
401 if (testarea == MAP_FAILED) {
402 error_report("%s: Failed to map test area: %s", __func__,
403 strerror(errno));
404 goto out;
405 }
395cb450 406 g_assert(((size_t)testarea & (pagesize - 1)) == 0);
eb59db53
DDAG
407
408 reg_struct.range.start = (uintptr_t)testarea;
409 reg_struct.range.len = pagesize;
410 reg_struct.mode = UFFDIO_REGISTER_MODE_MISSING;
411
412 if (ioctl(ufd, UFFDIO_REGISTER, &reg_struct)) {
413 error_report("%s userfault register: %s", __func__, strerror(errno));
414 goto out;
415 }
416
417 range_struct.start = (uintptr_t)testarea;
418 range_struct.len = pagesize;
419 if (ioctl(ufd, UFFDIO_UNREGISTER, &range_struct)) {
420 error_report("%s userfault unregister: %s", __func__, strerror(errno));
421 goto out;
422 }
423
424 feature_mask = (__u64)1 << _UFFDIO_WAKE |
425 (__u64)1 << _UFFDIO_COPY |
426 (__u64)1 << _UFFDIO_ZEROPAGE;
427 if ((reg_struct.ioctls & feature_mask) != feature_mask) {
428 error_report("Missing userfault map features: %" PRIx64,
429 (uint64_t)(~reg_struct.ioctls & feature_mask));
430 goto out;
431 }
432
433 /* Success! */
434 ret = true;
435out:
436 if (testarea) {
437 munmap(testarea, pagesize);
438 }
439 if (ufd != -1) {
440 close(ufd);
441 }
442 return ret;
443}
444
1caddf8a
DDAG
445/*
446 * Setup an area of RAM so that it *can* be used for postcopy later; this
447 * must be done right at the start prior to pre-copy.
448 * opaque should be the MIS.
449 */
754cb9c0 450static int init_range(RAMBlock *rb, void *opaque)
1caddf8a 451{
754cb9c0
YK
452 const char *block_name = qemu_ram_get_idstr(rb);
453 void *host_addr = qemu_ram_get_host_addr(rb);
454 ram_addr_t offset = qemu_ram_get_offset(rb);
455 ram_addr_t length = qemu_ram_get_used_length(rb);
1caddf8a
DDAG
456 trace_postcopy_init_range(block_name, host_addr, offset, length);
457
458 /*
459 * We need the whole of RAM to be truly empty for postcopy, so things
460 * like ROMs and any data tables built during init must be zero'd
461 * - we're going to get the copy from the source anyway.
462 * (Precopy will just overwrite this data, so doesn't need the discard)
463 */
aaa2064c 464 if (ram_discard_range(block_name, 0, length)) {
1caddf8a
DDAG
465 return -1;
466 }
467
468 return 0;
469}
470
471/*
472 * At the end of migration, undo the effects of init_range
473 * opaque should be the MIS.
474 */
754cb9c0 475static int cleanup_range(RAMBlock *rb, void *opaque)
1caddf8a 476{
754cb9c0
YK
477 const char *block_name = qemu_ram_get_idstr(rb);
478 void *host_addr = qemu_ram_get_host_addr(rb);
479 ram_addr_t offset = qemu_ram_get_offset(rb);
480 ram_addr_t length = qemu_ram_get_used_length(rb);
1caddf8a
DDAG
481 MigrationIncomingState *mis = opaque;
482 struct uffdio_range range_struct;
483 trace_postcopy_cleanup_range(block_name, host_addr, offset, length);
484
485 /*
486 * We turned off hugepage for the precopy stage with postcopy enabled
487 * we can turn it back on now.
488 */
1d741439 489 qemu_madvise(host_addr, length, QEMU_MADV_HUGEPAGE);
1caddf8a
DDAG
490
491 /*
492 * We can also turn off userfault now since we should have all the
493 * pages. It can be useful to leave it on to debug postcopy
494 * if you're not sure it's always getting every page.
495 */
496 range_struct.start = (uintptr_t)host_addr;
497 range_struct.len = length;
498
499 if (ioctl(mis->userfault_fd, UFFDIO_UNREGISTER, &range_struct)) {
500 error_report("%s: userfault unregister %s", __func__, strerror(errno));
501
502 return -1;
503 }
504
505 return 0;
506}
507
508/*
509 * Initialise postcopy-ram, setting the RAM to a state where we can go into
510 * postcopy later; must be called prior to any precopy.
511 * called from arch_init's similarly named ram_postcopy_incoming_init
512 */
c136180c 513int postcopy_ram_incoming_init(MigrationIncomingState *mis)
1caddf8a 514{
fbd162e6 515 if (foreach_not_ignored_block(init_range, NULL)) {
1caddf8a
DDAG
516 return -1;
517 }
518
519 return 0;
520}
521
522/*
523 * At the end of a migration where postcopy_ram_incoming_init was called.
524 */
525int postcopy_ram_incoming_cleanup(MigrationIncomingState *mis)
526{
c4faeed2
DDAG
527 trace_postcopy_ram_incoming_cleanup_entry();
528
529 if (mis->have_fault_thread) {
46343570
DDAG
530 Error *local_err = NULL;
531
55d0fe82 532 /* Let the fault thread quit */
d73415a3 533 qatomic_set(&mis->fault_thread_quit, 1);
55d0fe82
IM
534 postcopy_fault_thread_notify(mis);
535 trace_postcopy_ram_incoming_cleanup_join();
536 qemu_thread_join(&mis->fault_thread);
537
46343570
DDAG
538 if (postcopy_notify(POSTCOPY_NOTIFY_INBOUND_END, &local_err)) {
539 error_report_err(local_err);
540 return -1;
541 }
542
fbd162e6 543 if (foreach_not_ignored_block(cleanup_range, mis)) {
c4faeed2
DDAG
544 return -1;
545 }
9ab7ef9b 546
c4faeed2
DDAG
547 trace_postcopy_ram_incoming_cleanup_closeuf();
548 close(mis->userfault_fd);
64f615fe 549 close(mis->userfault_event_fd);
c4faeed2 550 mis->have_fault_thread = false;
1caddf8a
DDAG
551 }
552
58b7c17e
DDAG
553 if (enable_mlock) {
554 if (os_mlock() < 0) {
555 error_report("mlock: %s", strerror(errno));
556 /*
557 * It doesn't feel right to fail at this point, we have a valid
558 * VM state.
559 */
560 }
561 }
562
696ed9a9 563 if (mis->postcopy_tmp_page) {
df9ff5e1 564 munmap(mis->postcopy_tmp_page, mis->largest_page_size);
696ed9a9
DDAG
565 mis->postcopy_tmp_page = NULL;
566 }
41d84210
DDAG
567 if (mis->postcopy_tmp_zero_page) {
568 munmap(mis->postcopy_tmp_zero_page, mis->largest_page_size);
569 mis->postcopy_tmp_zero_page = NULL;
570 }
65ace060
AP
571 trace_postcopy_ram_incoming_cleanup_blocktime(
572 get_postcopy_total_blocktime());
573
c4faeed2 574 trace_postcopy_ram_incoming_cleanup_exit();
1caddf8a
DDAG
575 return 0;
576}
577
f9527107
DDAG
578/*
579 * Disable huge pages on an area
580 */
754cb9c0 581static int nhp_range(RAMBlock *rb, void *opaque)
f9527107 582{
754cb9c0
YK
583 const char *block_name = qemu_ram_get_idstr(rb);
584 void *host_addr = qemu_ram_get_host_addr(rb);
585 ram_addr_t offset = qemu_ram_get_offset(rb);
586 ram_addr_t length = qemu_ram_get_used_length(rb);
f9527107
DDAG
587 trace_postcopy_nhp_range(block_name, host_addr, offset, length);
588
589 /*
590 * Before we do discards we need to ensure those discards really
591 * do delete areas of the page, even if THP thinks a hugepage would
592 * be a good idea, so force hugepages off.
593 */
1d741439 594 qemu_madvise(host_addr, length, QEMU_MADV_NOHUGEPAGE);
f9527107
DDAG
595
596 return 0;
597}
598
599/*
600 * Userfault requires us to mark RAM as NOHUGEPAGE prior to discard
601 * however leaving it until after precopy means that most of the precopy
602 * data is still THPd
603 */
604int postcopy_ram_prepare_discard(MigrationIncomingState *mis)
605{
fbd162e6 606 if (foreach_not_ignored_block(nhp_range, mis)) {
f9527107
DDAG
607 return -1;
608 }
609
610 postcopy_state_set(POSTCOPY_INCOMING_DISCARD);
611
612 return 0;
613}
614
f0a227ad
DDAG
615/*
616 * Mark the given area of RAM as requiring notification to unwritten areas
fbd162e6 617 * Used as a callback on foreach_not_ignored_block.
f0a227ad
DDAG
618 * host_addr: Base of area to mark
619 * offset: Offset in the whole ram arena
620 * length: Length of the section
621 * opaque: MigrationIncomingState pointer
622 * Returns 0 on success
623 */
754cb9c0 624static int ram_block_enable_notify(RAMBlock *rb, void *opaque)
f0a227ad
DDAG
625{
626 MigrationIncomingState *mis = opaque;
627 struct uffdio_register reg_struct;
628
754cb9c0
YK
629 reg_struct.range.start = (uintptr_t)qemu_ram_get_host_addr(rb);
630 reg_struct.range.len = qemu_ram_get_used_length(rb);
f0a227ad
DDAG
631 reg_struct.mode = UFFDIO_REGISTER_MODE_MISSING;
632
633 /* Now tell our userfault_fd that it's responsible for this area */
634 if (ioctl(mis->userfault_fd, UFFDIO_REGISTER, &reg_struct)) {
635 error_report("%s userfault register: %s", __func__, strerror(errno));
636 return -1;
637 }
665414ad
DDAG
638 if (!(reg_struct.ioctls & ((__u64)1 << _UFFDIO_COPY))) {
639 error_report("%s userfault: Region doesn't support COPY", __func__);
640 return -1;
641 }
2ce16640 642 if (reg_struct.ioctls & ((__u64)1 << _UFFDIO_ZEROPAGE)) {
2ce16640
DDAG
643 qemu_ram_set_uf_zeroable(rb);
644 }
f0a227ad
DDAG
645
646 return 0;
647}
648
5efc3564
DDAG
649int postcopy_wake_shared(struct PostCopyFD *pcfd,
650 uint64_t client_addr,
651 RAMBlock *rb)
652{
653 size_t pagesize = qemu_ram_pagesize(rb);
654 struct uffdio_range range;
655 int ret;
656 trace_postcopy_wake_shared(client_addr, qemu_ram_get_idstr(rb));
657 range.start = client_addr & ~(pagesize - 1);
658 range.len = pagesize;
659 ret = ioctl(pcfd->fd, UFFDIO_WAKE, &range);
660 if (ret) {
661 error_report("%s: Failed to wake: %zx in %s (%s)",
662 __func__, (size_t)client_addr, qemu_ram_get_idstr(rb),
663 strerror(errno));
664 }
665 return ret;
666}
667
096bf4c8
DDAG
668/*
669 * Callback from shared fault handlers to ask for a page,
670 * the page must be specified by a RAMBlock and an offset in that rb
671 * Note: Only for use by shared fault handlers (in fault thread)
672 */
673int postcopy_request_shared_page(struct PostCopyFD *pcfd, RAMBlock *rb,
674 uint64_t client_addr, uint64_t rb_offset)
675{
676 size_t pagesize = qemu_ram_pagesize(rb);
677 uint64_t aligned_rbo = rb_offset & ~(pagesize - 1);
678 MigrationIncomingState *mis = migration_incoming_get_current();
679
680 trace_postcopy_request_shared_page(pcfd->idstr, qemu_ram_get_idstr(rb),
681 rb_offset);
dedfb4b2
DDAG
682 if (ramblock_recv_bitmap_test_byte_offset(rb, aligned_rbo)) {
683 trace_postcopy_request_shared_page_present(pcfd->idstr,
684 qemu_ram_get_idstr(rb), rb_offset);
685 return postcopy_wake_shared(pcfd, client_addr, rb);
686 }
8f8bfffc 687 migrate_send_rp_req_pages(mis, rb, aligned_rbo, client_addr);
096bf4c8
DDAG
688 return 0;
689}
690
575b0b33
AP
691static int get_mem_fault_cpu_index(uint32_t pid)
692{
693 CPUState *cpu_iter;
694
695 CPU_FOREACH(cpu_iter) {
696 if (cpu_iter->thread_id == pid) {
697 trace_get_mem_fault_cpu_index(cpu_iter->cpu_index, pid);
698 return cpu_iter->cpu_index;
699 }
700 }
701 trace_get_mem_fault_cpu_index(-1, pid);
702 return -1;
703}
704
705static uint32_t get_low_time_offset(PostcopyBlocktimeContext *dc)
706{
707 int64_t start_time_offset = qemu_clock_get_ms(QEMU_CLOCK_REALTIME) -
708 dc->start_time;
709 return start_time_offset < 1 ? 1 : start_time_offset & UINT32_MAX;
710}
711
712/*
713 * This function is being called when pagefault occurs. It
714 * tracks down vCPU blocking time.
715 *
716 * @addr: faulted host virtual address
717 * @ptid: faulted process thread id
718 * @rb: ramblock appropriate to addr
719 */
720static void mark_postcopy_blocktime_begin(uintptr_t addr, uint32_t ptid,
721 RAMBlock *rb)
722{
723 int cpu, already_received;
724 MigrationIncomingState *mis = migration_incoming_get_current();
725 PostcopyBlocktimeContext *dc = mis->blocktime_ctx;
726 uint32_t low_time_offset;
727
728 if (!dc || ptid == 0) {
729 return;
730 }
731 cpu = get_mem_fault_cpu_index(ptid);
732 if (cpu < 0) {
733 return;
734 }
735
736 low_time_offset = get_low_time_offset(dc);
737 if (dc->vcpu_addr[cpu] == 0) {
d73415a3 738 qatomic_inc(&dc->smp_cpus_down);
575b0b33
AP
739 }
740
d73415a3
SH
741 qatomic_xchg(&dc->last_begin, low_time_offset);
742 qatomic_xchg(&dc->page_fault_vcpu_time[cpu], low_time_offset);
743 qatomic_xchg(&dc->vcpu_addr[cpu], addr);
575b0b33 744
da1725d3
WY
745 /*
746 * check it here, not at the beginning of the function,
747 * due to, check could occur early than bitmap_set in
748 * qemu_ufd_copy_ioctl
749 */
575b0b33
AP
750 already_received = ramblock_recv_bitmap_test(rb, (void *)addr);
751 if (already_received) {
d73415a3
SH
752 qatomic_xchg(&dc->vcpu_addr[cpu], 0);
753 qatomic_xchg(&dc->page_fault_vcpu_time[cpu], 0);
754 qatomic_dec(&dc->smp_cpus_down);
575b0b33
AP
755 }
756 trace_mark_postcopy_blocktime_begin(addr, dc, dc->page_fault_vcpu_time[cpu],
757 cpu, already_received);
758}
759
760/*
761 * This function just provide calculated blocktime per cpu and trace it.
762 * Total blocktime is calculated in mark_postcopy_blocktime_end.
763 *
764 *
765 * Assume we have 3 CPU
766 *
767 * S1 E1 S1 E1
768 * -----***********------------xxx***************------------------------> CPU1
769 *
770 * S2 E2
771 * ------------****************xxx---------------------------------------> CPU2
772 *
773 * S3 E3
774 * ------------------------****xxx********-------------------------------> CPU3
775 *
776 * We have sequence S1,S2,E1,S3,S1,E2,E3,E1
777 * S2,E1 - doesn't match condition due to sequence S1,S2,E1 doesn't include CPU3
778 * S3,S1,E2 - sequence includes all CPUs, in this case overlap will be S1,E2 -
779 * it's a part of total blocktime.
780 * S1 - here is last_begin
781 * Legend of the picture is following:
782 * * - means blocktime per vCPU
783 * x - means overlapped blocktime (total blocktime)
784 *
785 * @addr: host virtual address
786 */
787static void mark_postcopy_blocktime_end(uintptr_t addr)
788{
789 MigrationIncomingState *mis = migration_incoming_get_current();
790 PostcopyBlocktimeContext *dc = mis->blocktime_ctx;
5cc8767d
LX
791 MachineState *ms = MACHINE(qdev_get_machine());
792 unsigned int smp_cpus = ms->smp.cpus;
575b0b33
AP
793 int i, affected_cpu = 0;
794 bool vcpu_total_blocktime = false;
795 uint32_t read_vcpu_time, low_time_offset;
796
797 if (!dc) {
798 return;
799 }
800
801 low_time_offset = get_low_time_offset(dc);
802 /* lookup cpu, to clear it,
3a4452d8 803 * that algorithm looks straightforward, but it's not
575b0b33
AP
804 * optimal, more optimal algorithm is keeping tree or hash
805 * where key is address value is a list of */
806 for (i = 0; i < smp_cpus; i++) {
807 uint32_t vcpu_blocktime = 0;
808
d73415a3
SH
809 read_vcpu_time = qatomic_fetch_add(&dc->page_fault_vcpu_time[i], 0);
810 if (qatomic_fetch_add(&dc->vcpu_addr[i], 0) != addr ||
575b0b33
AP
811 read_vcpu_time == 0) {
812 continue;
813 }
d73415a3 814 qatomic_xchg(&dc->vcpu_addr[i], 0);
575b0b33
AP
815 vcpu_blocktime = low_time_offset - read_vcpu_time;
816 affected_cpu += 1;
817 /* we need to know is that mark_postcopy_end was due to
818 * faulted page, another possible case it's prefetched
819 * page and in that case we shouldn't be here */
820 if (!vcpu_total_blocktime &&
d73415a3 821 qatomic_fetch_add(&dc->smp_cpus_down, 0) == smp_cpus) {
575b0b33
AP
822 vcpu_total_blocktime = true;
823 }
824 /* continue cycle, due to one page could affect several vCPUs */
825 dc->vcpu_blocktime[i] += vcpu_blocktime;
826 }
827
d73415a3 828 qatomic_sub(&dc->smp_cpus_down, affected_cpu);
575b0b33 829 if (vcpu_total_blocktime) {
d73415a3 830 dc->total_blocktime += low_time_offset - qatomic_fetch_add(
575b0b33
AP
831 &dc->last_begin, 0);
832 }
833 trace_mark_postcopy_blocktime_end(addr, dc, dc->total_blocktime,
834 affected_cpu);
835}
836
3a7804c3
PX
837static bool postcopy_pause_fault_thread(MigrationIncomingState *mis)
838{
839 trace_postcopy_pause_fault_thread();
840
841 qemu_sem_wait(&mis->postcopy_pause_sem_fault);
842
843 trace_postcopy_pause_fault_thread_continued();
844
845 return true;
846}
847
f0a227ad
DDAG
848/*
849 * Handle faults detected by the USERFAULT markings
850 */
851static void *postcopy_ram_fault_thread(void *opaque)
852{
853 MigrationIncomingState *mis = opaque;
c4faeed2
DDAG
854 struct uffd_msg msg;
855 int ret;
00fa4fc8 856 size_t index;
c4faeed2 857 RAMBlock *rb = NULL;
f0a227ad 858
c4faeed2 859 trace_postcopy_ram_fault_thread_entry();
74637e6f 860 rcu_register_thread();
096bf4c8 861 mis->last_rb = NULL; /* last RAMBlock we sent part of */
f0a227ad 862 qemu_sem_post(&mis->fault_thread_sem);
f0a227ad 863
00fa4fc8
DDAG
864 struct pollfd *pfd;
865 size_t pfd_len = 2 + mis->postcopy_remote_fds->len;
866
867 pfd = g_new0(struct pollfd, pfd_len);
868
869 pfd[0].fd = mis->userfault_fd;
870 pfd[0].events = POLLIN;
871 pfd[1].fd = mis->userfault_event_fd;
872 pfd[1].events = POLLIN; /* Waiting for eventfd to go positive */
873 trace_postcopy_ram_fault_thread_fds_core(pfd[0].fd, pfd[1].fd);
874 for (index = 0; index < mis->postcopy_remote_fds->len; index++) {
875 struct PostCopyFD *pcfd = &g_array_index(mis->postcopy_remote_fds,
876 struct PostCopyFD, index);
877 pfd[2 + index].fd = pcfd->fd;
878 pfd[2 + index].events = POLLIN;
879 trace_postcopy_ram_fault_thread_fds_extra(2 + index, pcfd->idstr,
880 pcfd->fd);
881 }
882
c4faeed2
DDAG
883 while (true) {
884 ram_addr_t rb_offset;
00fa4fc8 885 int poll_result;
c4faeed2
DDAG
886
887 /*
888 * We're mainly waiting for the kernel to give us a faulting HVA,
889 * however we can be told to quit via userfault_quit_fd which is
890 * an eventfd
891 */
00fa4fc8
DDAG
892
893 poll_result = poll(pfd, pfd_len, -1 /* Wait forever */);
894 if (poll_result == -1) {
c4faeed2
DDAG
895 error_report("%s: userfault poll: %s", __func__, strerror(errno));
896 break;
897 }
898
3a7804c3
PX
899 if (!mis->to_src_file) {
900 /*
901 * Possibly someone tells us that the return path is
902 * broken already using the event. We should hold until
903 * the channel is rebuilt.
904 */
905 if (postcopy_pause_fault_thread(mis)) {
3a7804c3
PX
906 /* Continue to read the userfaultfd */
907 } else {
908 error_report("%s: paused but don't allow to continue",
909 __func__);
910 break;
911 }
912 }
913
c4faeed2 914 if (pfd[1].revents) {
64f615fe
PX
915 uint64_t tmp64 = 0;
916
917 /* Consume the signal */
918 if (read(mis->userfault_event_fd, &tmp64, 8) != 8) {
919 /* Nothing obviously nicer than posting this error. */
920 error_report("%s: read() failed", __func__);
921 }
922
d73415a3 923 if (qatomic_read(&mis->fault_thread_quit)) {
64f615fe
PX
924 trace_postcopy_ram_fault_thread_quit();
925 break;
926 }
c4faeed2
DDAG
927 }
928
00fa4fc8
DDAG
929 if (pfd[0].revents) {
930 poll_result--;
931 ret = read(mis->userfault_fd, &msg, sizeof(msg));
932 if (ret != sizeof(msg)) {
933 if (errno == EAGAIN) {
934 /*
935 * if a wake up happens on the other thread just after
936 * the poll, there is nothing to read.
937 */
938 continue;
939 }
940 if (ret < 0) {
941 error_report("%s: Failed to read full userfault "
942 "message: %s",
943 __func__, strerror(errno));
944 break;
945 } else {
946 error_report("%s: Read %d bytes from userfaultfd "
947 "expected %zd",
948 __func__, ret, sizeof(msg));
949 break; /* Lost alignment, don't know what we'd read next */
950 }
c4faeed2 951 }
00fa4fc8
DDAG
952 if (msg.event != UFFD_EVENT_PAGEFAULT) {
953 error_report("%s: Read unexpected event %ud from userfaultfd",
954 __func__, msg.event);
955 continue; /* It's not a page fault, shouldn't happen */
c4faeed2 956 }
c4faeed2 957
00fa4fc8
DDAG
958 rb = qemu_ram_block_from_host(
959 (void *)(uintptr_t)msg.arg.pagefault.address,
960 true, &rb_offset);
961 if (!rb) {
962 error_report("postcopy_ram_fault_thread: Fault outside guest: %"
963 PRIx64, (uint64_t)msg.arg.pagefault.address);
964 break;
965 }
c4faeed2 966
00fa4fc8
DDAG
967 rb_offset &= ~(qemu_ram_pagesize(rb) - 1);
968 trace_postcopy_ram_fault_thread_request(msg.arg.pagefault.address,
c4faeed2 969 qemu_ram_get_idstr(rb),
575b0b33
AP
970 rb_offset,
971 msg.arg.pagefault.feat.ptid);
972 mark_postcopy_blocktime_begin(
973 (uintptr_t)(msg.arg.pagefault.address),
974 msg.arg.pagefault.feat.ptid, rb);
975
3a7804c3 976retry:
00fa4fc8
DDAG
977 /*
978 * Send the request to the source - we want to request one
979 * of our host page sizes (which is >= TPS)
980 */
8f8bfffc
PX
981 ret = migrate_send_rp_req_pages(mis, rb, rb_offset,
982 msg.arg.pagefault.address);
3a7804c3
PX
983 if (ret) {
984 /* May be network failure, try to wait for recovery */
985 if (ret == -EIO && postcopy_pause_fault_thread(mis)) {
986 /* We got reconnected somehow, try to continue */
3a7804c3
PX
987 goto retry;
988 } else {
989 /* This is a unavoidable fault */
990 error_report("%s: migrate_send_rp_req_pages() get %d",
991 __func__, ret);
992 break;
993 }
00fa4fc8
DDAG
994 }
995 }
c4faeed2 996
00fa4fc8
DDAG
997 /* Now handle any requests from external processes on shared memory */
998 /* TODO: May need to handle devices deregistering during postcopy */
999 for (index = 2; index < pfd_len && poll_result; index++) {
1000 if (pfd[index].revents) {
1001 struct PostCopyFD *pcfd =
1002 &g_array_index(mis->postcopy_remote_fds,
1003 struct PostCopyFD, index - 2);
1004
1005 poll_result--;
1006 if (pfd[index].revents & POLLERR) {
1007 error_report("%s: POLLERR on poll %zd fd=%d",
1008 __func__, index, pcfd->fd);
1009 pfd[index].events = 0;
1010 continue;
1011 }
1012
1013 ret = read(pcfd->fd, &msg, sizeof(msg));
1014 if (ret != sizeof(msg)) {
1015 if (errno == EAGAIN) {
1016 /*
1017 * if a wake up happens on the other thread just after
1018 * the poll, there is nothing to read.
1019 */
1020 continue;
1021 }
1022 if (ret < 0) {
1023 error_report("%s: Failed to read full userfault "
1024 "message: %s (shared) revents=%d",
1025 __func__, strerror(errno),
1026 pfd[index].revents);
1027 /*TODO: Could just disable this sharer */
1028 break;
1029 } else {
1030 error_report("%s: Read %d bytes from userfaultfd "
1031 "expected %zd (shared)",
1032 __func__, ret, sizeof(msg));
1033 /*TODO: Could just disable this sharer */
1034 break; /*Lost alignment,don't know what we'd read next*/
1035 }
1036 }
1037 if (msg.event != UFFD_EVENT_PAGEFAULT) {
1038 error_report("%s: Read unexpected event %ud "
1039 "from userfaultfd (shared)",
1040 __func__, msg.event);
1041 continue; /* It's not a page fault, shouldn't happen */
1042 }
1043 /* Call the device handler registered with us */
1044 ret = pcfd->handler(pcfd, &msg);
1045 if (ret) {
1046 error_report("%s: Failed to resolve shared fault on %zd/%s",
1047 __func__, index, pcfd->idstr);
1048 /* TODO: Fail? Disable this sharer? */
1049 }
1050 }
c4faeed2
DDAG
1051 }
1052 }
74637e6f 1053 rcu_unregister_thread();
c4faeed2 1054 trace_postcopy_ram_fault_thread_exit();
fc6008f3 1055 g_free(pfd);
f0a227ad
DDAG
1056 return NULL;
1057}
1058
2a7eb148 1059int postcopy_ram_incoming_setup(MigrationIncomingState *mis)
f0a227ad 1060{
c4faeed2
DDAG
1061 /* Open the fd for the kernel to give us userfaults */
1062 mis->userfault_fd = syscall(__NR_userfaultfd, O_CLOEXEC | O_NONBLOCK);
1063 if (mis->userfault_fd == -1) {
1064 error_report("%s: Failed to open userfault fd: %s", __func__,
1065 strerror(errno));
1066 return -1;
1067 }
1068
1069 /*
1070 * Although the host check already tested the API, we need to
1071 * do the check again as an ABI handshake on the new fd.
1072 */
54ae0886 1073 if (!ufd_check_and_apply(mis->userfault_fd, mis)) {
c4faeed2
DDAG
1074 return -1;
1075 }
1076
1077 /* Now an eventfd we use to tell the fault-thread to quit */
64f615fe
PX
1078 mis->userfault_event_fd = eventfd(0, EFD_CLOEXEC);
1079 if (mis->userfault_event_fd == -1) {
1080 error_report("%s: Opening userfault_event_fd: %s", __func__,
c4faeed2
DDAG
1081 strerror(errno));
1082 close(mis->userfault_fd);
1083 return -1;
1084 }
1085
f0a227ad
DDAG
1086 qemu_sem_init(&mis->fault_thread_sem, 0);
1087 qemu_thread_create(&mis->fault_thread, "postcopy/fault",
1088 postcopy_ram_fault_thread, mis, QEMU_THREAD_JOINABLE);
1089 qemu_sem_wait(&mis->fault_thread_sem);
1090 qemu_sem_destroy(&mis->fault_thread_sem);
c4faeed2 1091 mis->have_fault_thread = true;
f0a227ad
DDAG
1092
1093 /* Mark so that we get notified of accesses to unwritten areas */
fbd162e6 1094 if (foreach_not_ignored_block(ram_block_enable_notify, mis)) {
91b02dc7 1095 error_report("ram_block_enable_notify failed");
f0a227ad
DDAG
1096 return -1;
1097 }
1098
3414322a
WY
1099 mis->postcopy_tmp_page = mmap(NULL, mis->largest_page_size,
1100 PROT_READ | PROT_WRITE, MAP_PRIVATE |
1101 MAP_ANONYMOUS, -1, 0);
1102 if (mis->postcopy_tmp_page == MAP_FAILED) {
1103 mis->postcopy_tmp_page = NULL;
1104 error_report("%s: Failed to map postcopy_tmp_page %s",
1105 __func__, strerror(errno));
1106 return -1;
1107 }
1108
6629890d
WY
1109 /*
1110 * Map large zero page when kernel can't use UFFDIO_ZEROPAGE for hugepages
1111 */
1112 mis->postcopy_tmp_zero_page = mmap(NULL, mis->largest_page_size,
1113 PROT_READ | PROT_WRITE,
1114 MAP_PRIVATE | MAP_ANONYMOUS,
1115 -1, 0);
1116 if (mis->postcopy_tmp_zero_page == MAP_FAILED) {
1117 int e = errno;
1118 mis->postcopy_tmp_zero_page = NULL;
1119 error_report("%s: Failed to map large zero page %s",
1120 __func__, strerror(e));
1121 return -e;
1122 }
1123 memset(mis->postcopy_tmp_zero_page, '\0', mis->largest_page_size);
1124
c4faeed2
DDAG
1125 trace_postcopy_ram_enable_notify();
1126
f0a227ad
DDAG
1127 return 0;
1128}
1129
eef621c4 1130static int qemu_ufd_copy_ioctl(MigrationIncomingState *mis, void *host_addr,
f9494614 1131 void *from_addr, uint64_t pagesize, RAMBlock *rb)
727b9d7e 1132{
eef621c4 1133 int userfault_fd = mis->userfault_fd;
f9494614 1134 int ret;
eef621c4 1135
727b9d7e
AP
1136 if (from_addr) {
1137 struct uffdio_copy copy_struct;
1138 copy_struct.dst = (uint64_t)(uintptr_t)host_addr;
1139 copy_struct.src = (uint64_t)(uintptr_t)from_addr;
1140 copy_struct.len = pagesize;
1141 copy_struct.mode = 0;
f9494614 1142 ret = ioctl(userfault_fd, UFFDIO_COPY, &copy_struct);
727b9d7e
AP
1143 } else {
1144 struct uffdio_zeropage zero_struct;
1145 zero_struct.range.start = (uint64_t)(uintptr_t)host_addr;
1146 zero_struct.range.len = pagesize;
1147 zero_struct.mode = 0;
f9494614
AP
1148 ret = ioctl(userfault_fd, UFFDIO_ZEROPAGE, &zero_struct);
1149 }
1150 if (!ret) {
8f8bfffc 1151 qemu_mutex_lock(&mis->page_request_mutex);
f9494614
AP
1152 ramblock_recv_bitmap_set_range(rb, host_addr,
1153 pagesize / qemu_target_page_size());
8f8bfffc
PX
1154 /*
1155 * If this page resolves a page fault for a previous recorded faulted
1156 * address, take a special note to maintain the requested page list.
1157 */
1158 if (g_tree_lookup(mis->page_requested, host_addr)) {
1159 g_tree_remove(mis->page_requested, host_addr);
1160 mis->page_requested_count--;
1161 trace_postcopy_page_req_del(host_addr, mis->page_requested_count);
1162 }
1163 qemu_mutex_unlock(&mis->page_request_mutex);
575b0b33 1164 mark_postcopy_blocktime_end((uintptr_t)host_addr);
727b9d7e 1165 }
f9494614 1166 return ret;
727b9d7e
AP
1167}
1168
d488b349
DDAG
1169int postcopy_notify_shared_wake(RAMBlock *rb, uint64_t offset)
1170{
1171 int i;
1172 MigrationIncomingState *mis = migration_incoming_get_current();
1173 GArray *pcrfds = mis->postcopy_remote_fds;
1174
1175 for (i = 0; i < pcrfds->len; i++) {
1176 struct PostCopyFD *cur = &g_array_index(pcrfds, struct PostCopyFD, i);
1177 int ret = cur->waker(cur, rb, offset);
1178 if (ret) {
1179 return ret;
1180 }
1181 }
1182 return 0;
1183}
1184
696ed9a9
DDAG
1185/*
1186 * Place a host page (from) at (host) atomically
1187 * returns 0 on success
1188 */
df9ff5e1 1189int postcopy_place_page(MigrationIncomingState *mis, void *host, void *from,
8be4620b 1190 RAMBlock *rb)
696ed9a9 1191{
8be4620b 1192 size_t pagesize = qemu_ram_pagesize(rb);
696ed9a9 1193
696ed9a9
DDAG
1194 /* copy also acks to the kernel waking the stalled thread up
1195 * TODO: We can inhibit that ack and only do it if it was requested
1196 * which would be slightly cheaper, but we'd have to be careful
1197 * of the order of updating our page state.
1198 */
eef621c4 1199 if (qemu_ufd_copy_ioctl(mis, host, from, pagesize, rb)) {
696ed9a9 1200 int e = errno;
df9ff5e1
DDAG
1201 error_report("%s: %s copy host: %p from: %p (size: %zd)",
1202 __func__, strerror(e), host, from, pagesize);
696ed9a9
DDAG
1203
1204 return -e;
1205 }
1206
1207 trace_postcopy_place_page(host);
dedfb4b2
DDAG
1208 return postcopy_notify_shared_wake(rb,
1209 qemu_ram_block_host_offset(rb, host));
696ed9a9
DDAG
1210}
1211
1212/*
1213 * Place a zero page at (host) atomically
1214 * returns 0 on success
1215 */
df9ff5e1 1216int postcopy_place_page_zero(MigrationIncomingState *mis, void *host,
8be4620b 1217 RAMBlock *rb)
696ed9a9 1218{
2ce16640 1219 size_t pagesize = qemu_ram_pagesize(rb);
df9ff5e1 1220 trace_postcopy_place_page_zero(host);
696ed9a9 1221
2ce16640
DDAG
1222 /* Normal RAMBlocks can zero a page using UFFDIO_ZEROPAGE
1223 * but it's not available for everything (e.g. hugetlbpages)
1224 */
1225 if (qemu_ram_is_uf_zeroable(rb)) {
eef621c4 1226 if (qemu_ufd_copy_ioctl(mis, host, NULL, pagesize, rb)) {
df9ff5e1
DDAG
1227 int e = errno;
1228 error_report("%s: %s zero host: %p",
1229 __func__, strerror(e), host);
696ed9a9 1230
df9ff5e1
DDAG
1231 return -e;
1232 }
dedfb4b2
DDAG
1233 return postcopy_notify_shared_wake(rb,
1234 qemu_ram_block_host_offset(rb,
1235 host));
df9ff5e1 1236 } else {
6629890d 1237 return postcopy_place_page(mis, host, mis->postcopy_tmp_zero_page, rb);
696ed9a9 1238 }
696ed9a9
DDAG
1239}
1240
eb59db53
DDAG
1241#else
1242/* No target OS support, stubs just fail */
65ace060
AP
1243void fill_destination_postcopy_migration_info(MigrationInfo *info)
1244{
1245}
1246
d7651f15 1247bool postcopy_ram_supported_by_host(MigrationIncomingState *mis)
eb59db53
DDAG
1248{
1249 error_report("%s: No OS support", __func__);
1250 return false;
1251}
1252
c136180c 1253int postcopy_ram_incoming_init(MigrationIncomingState *mis)
1caddf8a
DDAG
1254{
1255 error_report("postcopy_ram_incoming_init: No OS support");
1256 return -1;
1257}
1258
1259int postcopy_ram_incoming_cleanup(MigrationIncomingState *mis)
1260{
1261 assert(0);
1262 return -1;
1263}
1264
f9527107
DDAG
1265int postcopy_ram_prepare_discard(MigrationIncomingState *mis)
1266{
1267 assert(0);
1268 return -1;
1269}
1270
c188c539
MT
1271int postcopy_request_shared_page(struct PostCopyFD *pcfd, RAMBlock *rb,
1272 uint64_t client_addr, uint64_t rb_offset)
1273{
1274 assert(0);
1275 return -1;
1276}
1277
2a7eb148 1278int postcopy_ram_incoming_setup(MigrationIncomingState *mis)
f0a227ad
DDAG
1279{
1280 assert(0);
1281 return -1;
1282}
696ed9a9 1283
df9ff5e1 1284int postcopy_place_page(MigrationIncomingState *mis, void *host, void *from,
8be4620b 1285 RAMBlock *rb)
696ed9a9
DDAG
1286{
1287 assert(0);
1288 return -1;
1289}
1290
df9ff5e1 1291int postcopy_place_page_zero(MigrationIncomingState *mis, void *host,
8be4620b 1292 RAMBlock *rb)
696ed9a9
DDAG
1293{
1294 assert(0);
1295 return -1;
1296}
1297
5efc3564
DDAG
1298int postcopy_wake_shared(struct PostCopyFD *pcfd,
1299 uint64_t client_addr,
1300 RAMBlock *rb)
1301{
1302 assert(0);
1303 return -1;
1304}
eb59db53
DDAG
1305#endif
1306
e0b266f0
DDAG
1307/* ------------------------------------------------------------------------- */
1308
9ab7ef9b
PX
1309void postcopy_fault_thread_notify(MigrationIncomingState *mis)
1310{
1311 uint64_t tmp64 = 1;
1312
1313 /*
1314 * Wakeup the fault_thread. It's an eventfd that should currently
1315 * be at 0, we're going to increment it to 1
1316 */
1317 if (write(mis->userfault_event_fd, &tmp64, 8) != 8) {
1318 /* Not much we can do here, but may as well report it */
1319 error_report("%s: incrementing failed: %s", __func__,
1320 strerror(errno));
1321 }
1322}
1323
e0b266f0
DDAG
1324/**
1325 * postcopy_discard_send_init: Called at the start of each RAMBlock before
1326 * asking to discard individual ranges.
1327 *
1328 * @ms: The current migration state.
810cf2bb 1329 * @offset: the bitmap offset of the named RAMBlock in the migration bitmap.
e0b266f0 1330 * @name: RAMBlock that discards will operate on.
e0b266f0 1331 */
810cf2bb
WY
1332static PostcopyDiscardState pds = {0};
1333void postcopy_discard_send_init(MigrationState *ms, const char *name)
e0b266f0 1334{
810cf2bb
WY
1335 pds.ramblock_name = name;
1336 pds.cur_entry = 0;
1337 pds.nsentwords = 0;
1338 pds.nsentcmds = 0;
e0b266f0
DDAG
1339}
1340
1341/**
1342 * postcopy_discard_send_range: Called by the bitmap code for each chunk to
1343 * discard. May send a discard message, may just leave it queued to
1344 * be sent later.
1345 *
1346 * @ms: Current migration state.
e0b266f0
DDAG
1347 * @start,@length: a range of pages in the migration bitmap in the
1348 * RAM block passed to postcopy_discard_send_init() (length=1 is one page)
1349 */
810cf2bb
WY
1350void postcopy_discard_send_range(MigrationState *ms, unsigned long start,
1351 unsigned long length)
e0b266f0 1352{
20afaed9 1353 size_t tp_size = qemu_target_page_size();
e0b266f0 1354 /* Convert to byte offsets within the RAM block */
810cf2bb
WY
1355 pds.start_list[pds.cur_entry] = start * tp_size;
1356 pds.length_list[pds.cur_entry] = length * tp_size;
1357 trace_postcopy_discard_send_range(pds.ramblock_name, start, length);
1358 pds.cur_entry++;
1359 pds.nsentwords++;
e0b266f0 1360
810cf2bb 1361 if (pds.cur_entry == MAX_DISCARDS_PER_COMMAND) {
e0b266f0 1362 /* Full set, ship it! */
89a02a9f 1363 qemu_savevm_send_postcopy_ram_discard(ms->to_dst_file,
810cf2bb
WY
1364 pds.ramblock_name,
1365 pds.cur_entry,
1366 pds.start_list,
1367 pds.length_list);
1368 pds.nsentcmds++;
1369 pds.cur_entry = 0;
e0b266f0
DDAG
1370 }
1371}
1372
1373/**
1374 * postcopy_discard_send_finish: Called at the end of each RAMBlock by the
1375 * bitmap code. Sends any outstanding discard messages, frees the PDS
1376 *
1377 * @ms: Current migration state.
e0b266f0 1378 */
810cf2bb 1379void postcopy_discard_send_finish(MigrationState *ms)
e0b266f0
DDAG
1380{
1381 /* Anything unsent? */
810cf2bb 1382 if (pds.cur_entry) {
89a02a9f 1383 qemu_savevm_send_postcopy_ram_discard(ms->to_dst_file,
810cf2bb
WY
1384 pds.ramblock_name,
1385 pds.cur_entry,
1386 pds.start_list,
1387 pds.length_list);
1388 pds.nsentcmds++;
e0b266f0
DDAG
1389 }
1390
810cf2bb
WY
1391 trace_postcopy_discard_send_finish(pds.ramblock_name, pds.nsentwords,
1392 pds.nsentcmds);
e0b266f0 1393}
bac3b212
JQ
1394
1395/*
1396 * Current state of incoming postcopy; note this is not part of
1397 * MigrationIncomingState since it's state is used during cleanup
1398 * at the end as MIS is being freed.
1399 */
1400static PostcopyState incoming_postcopy_state;
1401
1402PostcopyState postcopy_state_get(void)
1403{
d73415a3 1404 return qatomic_mb_read(&incoming_postcopy_state);
bac3b212
JQ
1405}
1406
1407/* Set the state and return the old state */
1408PostcopyState postcopy_state_set(PostcopyState new_state)
1409{
d73415a3 1410 return qatomic_xchg(&incoming_postcopy_state, new_state);
bac3b212 1411}
00fa4fc8
DDAG
1412
1413/* Register a handler for external shared memory postcopy
1414 * called on the destination.
1415 */
1416void postcopy_register_shared_ufd(struct PostCopyFD *pcfd)
1417{
1418 MigrationIncomingState *mis = migration_incoming_get_current();
1419
1420 mis->postcopy_remote_fds = g_array_append_val(mis->postcopy_remote_fds,
1421 *pcfd);
1422}
1423
1424/* Unregister a handler for external shared memory postcopy
1425 */
1426void postcopy_unregister_shared_ufd(struct PostCopyFD *pcfd)
1427{
1428 guint i;
1429 MigrationIncomingState *mis = migration_incoming_get_current();
1430 GArray *pcrfds = mis->postcopy_remote_fds;
1431
1432 for (i = 0; i < pcrfds->len; i++) {
1433 struct PostCopyFD *cur = &g_array_index(pcrfds, struct PostCopyFD, i);
1434 if (cur->fd == pcfd->fd) {
1435 mis->postcopy_remote_fds = g_array_remove_index(pcrfds, i);
1436 return;
1437 }
1438 }
1439}
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