1 /* 2 * Multifd common code 3 * 4 * Copyright (c) 2019-2020 Red Hat Inc 5 * 6 * Authors: 7 * Juan Quintela <quintela@redhat.com> 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 #include "qemu/osdep.h" 14 #include "qemu/rcu.h" 15 #include "exec/target_page.h" 16 #include "sysemu/sysemu.h" 17 #include "exec/ramblock.h" 18 #include "qemu/error-report.h" 19 #include "qapi/error.h" 20 #include "ram.h" 21 #include "migration.h" 22 #include "socket.h" 23 #include "tls.h" 24 #include "qemu-file.h" 25 #include "trace.h" 26 #include "multifd.h" 27 #include "threadinfo.h" 28 29 #include "qemu/yank.h" 30 #include "io/channel-socket.h" 31 #include "yank_functions.h" 32 33 /* Multiple fd's */ 34 35 #define MULTIFD_MAGIC 0x11223344U 36 #define MULTIFD_VERSION 1 37 38 typedef struct { 39 uint32_t magic; 40 uint32_t version; 41 unsigned char uuid[16]; /* QemuUUID */ 42 uint8_t id; 43 uint8_t unused1[7]; /* Reserved for future use */ 44 uint64_t unused2[4]; /* Reserved for future use */ 45 } __attribute__((packed)) MultiFDInit_t; 46 47 /* Multifd without compression */ 48 49 /** 50 * nocomp_send_setup: setup send side 51 * 52 * For no compression this function does nothing. 53 * 54 * Returns 0 for success or -1 for error 55 * 56 * @p: Params for the channel that we are using 57 * @errp: pointer to an error 58 */ 59 static int nocomp_send_setup(MultiFDSendParams *p, Error **errp) 60 { 61 return 0; 62 } 63 64 /** 65 * nocomp_send_cleanup: cleanup send side 66 * 67 * For no compression this function does nothing. 68 * 69 * @p: Params for the channel that we are using 70 * @errp: pointer to an error 71 */ 72 static void nocomp_send_cleanup(MultiFDSendParams *p, Error **errp) 73 { 74 return; 75 } 76 77 /** 78 * nocomp_send_prepare: prepare date to be able to send 79 * 80 * For no compression we just have to calculate the size of the 81 * packet. 82 * 83 * Returns 0 for success or -1 for error 84 * 85 * @p: Params for the channel that we are using 86 * @errp: pointer to an error 87 */ 88 static int nocomp_send_prepare(MultiFDSendParams *p, Error **errp) 89 { 90 MultiFDPages_t *pages = p->pages; 91 92 for (int i = 0; i < p->normal_num; i++) { 93 p->iov[p->iovs_num].iov_base = pages->block->host + p->normal[i]; 94 p->iov[p->iovs_num].iov_len = p->page_size; 95 p->iovs_num++; 96 } 97 98 p->next_packet_size = p->normal_num * p->page_size; 99 p->flags |= MULTIFD_FLAG_NOCOMP; 100 return 0; 101 } 102 103 /** 104 * nocomp_recv_setup: setup receive side 105 * 106 * For no compression this function does nothing. 107 * 108 * Returns 0 for success or -1 for error 109 * 110 * @p: Params for the channel that we are using 111 * @errp: pointer to an error 112 */ 113 static int nocomp_recv_setup(MultiFDRecvParams *p, Error **errp) 114 { 115 return 0; 116 } 117 118 /** 119 * nocomp_recv_cleanup: setup receive side 120 * 121 * For no compression this function does nothing. 122 * 123 * @p: Params for the channel that we are using 124 */ 125 static void nocomp_recv_cleanup(MultiFDRecvParams *p) 126 { 127 } 128 129 /** 130 * nocomp_recv_pages: read the data from the channel into actual pages 131 * 132 * For no compression we just need to read things into the correct place. 133 * 134 * Returns 0 for success or -1 for error 135 * 136 * @p: Params for the channel that we are using 137 * @errp: pointer to an error 138 */ 139 static int nocomp_recv_pages(MultiFDRecvParams *p, Error **errp) 140 { 141 uint32_t flags = p->flags & MULTIFD_FLAG_COMPRESSION_MASK; 142 143 if (flags != MULTIFD_FLAG_NOCOMP) { 144 error_setg(errp, "multifd %u: flags received %x flags expected %x", 145 p->id, flags, MULTIFD_FLAG_NOCOMP); 146 return -1; 147 } 148 for (int i = 0; i < p->normal_num; i++) { 149 p->iov[i].iov_base = p->host + p->normal[i]; 150 p->iov[i].iov_len = p->page_size; 151 } 152 return qio_channel_readv_all(p->c, p->iov, p->normal_num, errp); 153 } 154 155 static MultiFDMethods multifd_nocomp_ops = { 156 .send_setup = nocomp_send_setup, 157 .send_cleanup = nocomp_send_cleanup, 158 .send_prepare = nocomp_send_prepare, 159 .recv_setup = nocomp_recv_setup, 160 .recv_cleanup = nocomp_recv_cleanup, 161 .recv_pages = nocomp_recv_pages 162 }; 163 164 static MultiFDMethods *multifd_ops[MULTIFD_COMPRESSION__MAX] = { 165 [MULTIFD_COMPRESSION_NONE] = &multifd_nocomp_ops, 166 }; 167 168 void multifd_register_ops(int method, MultiFDMethods *ops) 169 { 170 assert(0 < method && method < MULTIFD_COMPRESSION__MAX); 171 multifd_ops[method] = ops; 172 } 173 174 static int multifd_send_initial_packet(MultiFDSendParams *p, Error **errp) 175 { 176 MultiFDInit_t msg = {}; 177 int ret; 178 179 msg.magic = cpu_to_be32(MULTIFD_MAGIC); 180 msg.version = cpu_to_be32(MULTIFD_VERSION); 181 msg.id = p->id; 182 memcpy(msg.uuid, &qemu_uuid.data, sizeof(msg.uuid)); 183 184 ret = qio_channel_write_all(p->c, (char *)&msg, sizeof(msg), errp); 185 if (ret != 0) { 186 return -1; 187 } 188 return 0; 189 } 190 191 static int multifd_recv_initial_packet(QIOChannel *c, Error **errp) 192 { 193 MultiFDInit_t msg; 194 int ret; 195 196 ret = qio_channel_read_all(c, (char *)&msg, sizeof(msg), errp); 197 if (ret != 0) { 198 return -1; 199 } 200 201 msg.magic = be32_to_cpu(msg.magic); 202 msg.version = be32_to_cpu(msg.version); 203 204 if (msg.magic != MULTIFD_MAGIC) { 205 error_setg(errp, "multifd: received packet magic %x " 206 "expected %x", msg.magic, MULTIFD_MAGIC); 207 return -1; 208 } 209 210 if (msg.version != MULTIFD_VERSION) { 211 error_setg(errp, "multifd: received packet version %u " 212 "expected %u", msg.version, MULTIFD_VERSION); 213 return -1; 214 } 215 216 if (memcmp(msg.uuid, &qemu_uuid, sizeof(qemu_uuid))) { 217 char *uuid = qemu_uuid_unparse_strdup(&qemu_uuid); 218 char *msg_uuid = qemu_uuid_unparse_strdup((const QemuUUID *)msg.uuid); 219 220 error_setg(errp, "multifd: received uuid '%s' and expected " 221 "uuid '%s' for channel %hhd", msg_uuid, uuid, msg.id); 222 g_free(uuid); 223 g_free(msg_uuid); 224 return -1; 225 } 226 227 if (msg.id > migrate_multifd_channels()) { 228 error_setg(errp, "multifd: received channel version %u " 229 "expected %u", msg.version, MULTIFD_VERSION); 230 return -1; 231 } 232 233 return msg.id; 234 } 235 236 static MultiFDPages_t *multifd_pages_init(size_t size) 237 { 238 MultiFDPages_t *pages = g_new0(MultiFDPages_t, 1); 239 240 pages->allocated = size; 241 pages->offset = g_new0(ram_addr_t, size); 242 243 return pages; 244 } 245 246 static void multifd_pages_clear(MultiFDPages_t *pages) 247 { 248 pages->num = 0; 249 pages->allocated = 0; 250 pages->packet_num = 0; 251 pages->block = NULL; 252 g_free(pages->offset); 253 pages->offset = NULL; 254 g_free(pages); 255 } 256 257 static void multifd_send_fill_packet(MultiFDSendParams *p) 258 { 259 MultiFDPacket_t *packet = p->packet; 260 int i; 261 262 packet->flags = cpu_to_be32(p->flags); 263 packet->pages_alloc = cpu_to_be32(p->pages->allocated); 264 packet->normal_pages = cpu_to_be32(p->normal_num); 265 packet->next_packet_size = cpu_to_be32(p->next_packet_size); 266 packet->packet_num = cpu_to_be64(p->packet_num); 267 268 if (p->pages->block) { 269 strncpy(packet->ramblock, p->pages->block->idstr, 256); 270 } 271 272 for (i = 0; i < p->normal_num; i++) { 273 /* there are architectures where ram_addr_t is 32 bit */ 274 uint64_t temp = p->normal[i]; 275 276 packet->offset[i] = cpu_to_be64(temp); 277 } 278 } 279 280 static int multifd_recv_unfill_packet(MultiFDRecvParams *p, Error **errp) 281 { 282 MultiFDPacket_t *packet = p->packet; 283 RAMBlock *block; 284 int i; 285 286 packet->magic = be32_to_cpu(packet->magic); 287 if (packet->magic != MULTIFD_MAGIC) { 288 error_setg(errp, "multifd: received packet " 289 "magic %x and expected magic %x", 290 packet->magic, MULTIFD_MAGIC); 291 return -1; 292 } 293 294 packet->version = be32_to_cpu(packet->version); 295 if (packet->version != MULTIFD_VERSION) { 296 error_setg(errp, "multifd: received packet " 297 "version %u and expected version %u", 298 packet->version, MULTIFD_VERSION); 299 return -1; 300 } 301 302 p->flags = be32_to_cpu(packet->flags); 303 304 packet->pages_alloc = be32_to_cpu(packet->pages_alloc); 305 /* 306 * If we received a packet that is 100 times bigger than expected 307 * just stop migration. It is a magic number. 308 */ 309 if (packet->pages_alloc > p->page_count) { 310 error_setg(errp, "multifd: received packet " 311 "with size %u and expected a size of %u", 312 packet->pages_alloc, p->page_count) ; 313 return -1; 314 } 315 316 p->normal_num = be32_to_cpu(packet->normal_pages); 317 if (p->normal_num > packet->pages_alloc) { 318 error_setg(errp, "multifd: received packet " 319 "with %u pages and expected maximum pages are %u", 320 p->normal_num, packet->pages_alloc) ; 321 return -1; 322 } 323 324 p->next_packet_size = be32_to_cpu(packet->next_packet_size); 325 p->packet_num = be64_to_cpu(packet->packet_num); 326 327 if (p->normal_num == 0) { 328 return 0; 329 } 330 331 /* make sure that ramblock is 0 terminated */ 332 packet->ramblock[255] = 0; 333 block = qemu_ram_block_by_name(packet->ramblock); 334 if (!block) { 335 error_setg(errp, "multifd: unknown ram block %s", 336 packet->ramblock); 337 return -1; 338 } 339 340 p->host = block->host; 341 for (i = 0; i < p->normal_num; i++) { 342 uint64_t offset = be64_to_cpu(packet->offset[i]); 343 344 if (offset > (block->used_length - p->page_size)) { 345 error_setg(errp, "multifd: offset too long %" PRIu64 346 " (max " RAM_ADDR_FMT ")", 347 offset, block->used_length); 348 return -1; 349 } 350 p->normal[i] = offset; 351 } 352 353 return 0; 354 } 355 356 struct { 357 MultiFDSendParams *params; 358 /* array of pages to sent */ 359 MultiFDPages_t *pages; 360 /* global number of generated multifd packets */ 361 uint64_t packet_num; 362 /* send channels ready */ 363 QemuSemaphore channels_ready; 364 /* 365 * Have we already run terminate threads. There is a race when it 366 * happens that we got one error while we are exiting. 367 * We will use atomic operations. Only valid values are 0 and 1. 368 */ 369 int exiting; 370 /* multifd ops */ 371 MultiFDMethods *ops; 372 } *multifd_send_state; 373 374 /* 375 * How we use multifd_send_state->pages and channel->pages? 376 * 377 * We create a pages for each channel, and a main one. Each time that 378 * we need to send a batch of pages we interchange the ones between 379 * multifd_send_state and the channel that is sending it. There are 380 * two reasons for that: 381 * - to not have to do so many mallocs during migration 382 * - to make easier to know what to free at the end of migration 383 * 384 * This way we always know who is the owner of each "pages" struct, 385 * and we don't need any locking. It belongs to the migration thread 386 * or to the channel thread. Switching is safe because the migration 387 * thread is using the channel mutex when changing it, and the channel 388 * have to had finish with its own, otherwise pending_job can't be 389 * false. 390 */ 391 392 static int multifd_send_pages(QEMUFile *f) 393 { 394 int i; 395 static int next_channel; 396 MultiFDSendParams *p = NULL; /* make happy gcc */ 397 MultiFDPages_t *pages = multifd_send_state->pages; 398 uint64_t transferred; 399 400 if (qatomic_read(&multifd_send_state->exiting)) { 401 return -1; 402 } 403 404 qemu_sem_wait(&multifd_send_state->channels_ready); 405 /* 406 * next_channel can remain from a previous migration that was 407 * using more channels, so ensure it doesn't overflow if the 408 * limit is lower now. 409 */ 410 next_channel %= migrate_multifd_channels(); 411 for (i = next_channel;; i = (i + 1) % migrate_multifd_channels()) { 412 p = &multifd_send_state->params[i]; 413 414 qemu_mutex_lock(&p->mutex); 415 if (p->quit) { 416 error_report("%s: channel %d has already quit!", __func__, i); 417 qemu_mutex_unlock(&p->mutex); 418 return -1; 419 } 420 if (!p->pending_job) { 421 p->pending_job++; 422 next_channel = (i + 1) % migrate_multifd_channels(); 423 break; 424 } 425 qemu_mutex_unlock(&p->mutex); 426 } 427 assert(!p->pages->num); 428 assert(!p->pages->block); 429 430 p->packet_num = multifd_send_state->packet_num++; 431 multifd_send_state->pages = p->pages; 432 p->pages = pages; 433 transferred = ((uint64_t) pages->num) * p->page_size + p->packet_len; 434 qemu_file_acct_rate_limit(f, transferred); 435 ram_counters.multifd_bytes += transferred; 436 stat64_add(&ram_atomic_counters.transferred, transferred); 437 qemu_mutex_unlock(&p->mutex); 438 qemu_sem_post(&p->sem); 439 440 return 1; 441 } 442 443 int multifd_queue_page(QEMUFile *f, RAMBlock *block, ram_addr_t offset) 444 { 445 MultiFDPages_t *pages = multifd_send_state->pages; 446 bool changed = false; 447 448 if (!pages->block) { 449 pages->block = block; 450 } 451 452 if (pages->block == block) { 453 pages->offset[pages->num] = offset; 454 pages->num++; 455 456 if (pages->num < pages->allocated) { 457 return 1; 458 } 459 } else { 460 changed = true; 461 } 462 463 if (multifd_send_pages(f) < 0) { 464 return -1; 465 } 466 467 if (changed) { 468 return multifd_queue_page(f, block, offset); 469 } 470 471 return 1; 472 } 473 474 static void multifd_send_terminate_threads(Error *err) 475 { 476 int i; 477 478 trace_multifd_send_terminate_threads(err != NULL); 479 480 if (err) { 481 MigrationState *s = migrate_get_current(); 482 migrate_set_error(s, err); 483 if (s->state == MIGRATION_STATUS_SETUP || 484 s->state == MIGRATION_STATUS_PRE_SWITCHOVER || 485 s->state == MIGRATION_STATUS_DEVICE || 486 s->state == MIGRATION_STATUS_ACTIVE) { 487 migrate_set_state(&s->state, s->state, 488 MIGRATION_STATUS_FAILED); 489 } 490 } 491 492 /* 493 * We don't want to exit each threads twice. Depending on where 494 * we get the error, or if there are two independent errors in two 495 * threads at the same time, we can end calling this function 496 * twice. 497 */ 498 if (qatomic_xchg(&multifd_send_state->exiting, 1)) { 499 return; 500 } 501 502 for (i = 0; i < migrate_multifd_channels(); i++) { 503 MultiFDSendParams *p = &multifd_send_state->params[i]; 504 505 qemu_mutex_lock(&p->mutex); 506 p->quit = true; 507 qemu_sem_post(&p->sem); 508 if (p->c) { 509 qio_channel_shutdown(p->c, QIO_CHANNEL_SHUTDOWN_BOTH, NULL); 510 } 511 qemu_mutex_unlock(&p->mutex); 512 } 513 } 514 515 void multifd_save_cleanup(void) 516 { 517 int i; 518 519 if (!migrate_use_multifd()) { 520 return; 521 } 522 multifd_send_terminate_threads(NULL); 523 for (i = 0; i < migrate_multifd_channels(); i++) { 524 MultiFDSendParams *p = &multifd_send_state->params[i]; 525 526 if (p->running) { 527 qemu_thread_join(&p->thread); 528 } 529 } 530 for (i = 0; i < migrate_multifd_channels(); i++) { 531 MultiFDSendParams *p = &multifd_send_state->params[i]; 532 Error *local_err = NULL; 533 534 if (p->registered_yank) { 535 migration_ioc_unregister_yank(p->c); 536 } 537 socket_send_channel_destroy(p->c); 538 p->c = NULL; 539 qemu_mutex_destroy(&p->mutex); 540 qemu_sem_destroy(&p->sem); 541 qemu_sem_destroy(&p->sem_sync); 542 g_free(p->name); 543 p->name = NULL; 544 multifd_pages_clear(p->pages); 545 p->pages = NULL; 546 p->packet_len = 0; 547 g_free(p->packet); 548 p->packet = NULL; 549 g_free(p->iov); 550 p->iov = NULL; 551 g_free(p->normal); 552 p->normal = NULL; 553 multifd_send_state->ops->send_cleanup(p, &local_err); 554 if (local_err) { 555 migrate_set_error(migrate_get_current(), local_err); 556 error_free(local_err); 557 } 558 } 559 qemu_sem_destroy(&multifd_send_state->channels_ready); 560 g_free(multifd_send_state->params); 561 multifd_send_state->params = NULL; 562 multifd_pages_clear(multifd_send_state->pages); 563 multifd_send_state->pages = NULL; 564 g_free(multifd_send_state); 565 multifd_send_state = NULL; 566 } 567 568 static int multifd_zero_copy_flush(QIOChannel *c) 569 { 570 int ret; 571 Error *err = NULL; 572 573 ret = qio_channel_flush(c, &err); 574 if (ret < 0) { 575 error_report_err(err); 576 return -1; 577 } 578 if (ret == 1) { 579 dirty_sync_missed_zero_copy(); 580 } 581 582 return ret; 583 } 584 585 int multifd_send_sync_main(QEMUFile *f) 586 { 587 int i; 588 bool flush_zero_copy; 589 590 if (!migrate_use_multifd()) { 591 return 0; 592 } 593 if (multifd_send_state->pages->num) { 594 if (multifd_send_pages(f) < 0) { 595 error_report("%s: multifd_send_pages fail", __func__); 596 return -1; 597 } 598 } 599 600 /* 601 * When using zero-copy, it's necessary to flush the pages before any of 602 * the pages can be sent again, so we'll make sure the new version of the 603 * pages will always arrive _later_ than the old pages. 604 * 605 * Currently we achieve this by flushing the zero-page requested writes 606 * per ram iteration, but in the future we could potentially optimize it 607 * to be less frequent, e.g. only after we finished one whole scanning of 608 * all the dirty bitmaps. 609 */ 610 611 flush_zero_copy = migrate_use_zero_copy_send(); 612 613 for (i = 0; i < migrate_multifd_channels(); i++) { 614 MultiFDSendParams *p = &multifd_send_state->params[i]; 615 616 trace_multifd_send_sync_main_signal(p->id); 617 618 qemu_mutex_lock(&p->mutex); 619 620 if (p->quit) { 621 error_report("%s: channel %d has already quit", __func__, i); 622 qemu_mutex_unlock(&p->mutex); 623 return -1; 624 } 625 626 p->packet_num = multifd_send_state->packet_num++; 627 p->flags |= MULTIFD_FLAG_SYNC; 628 p->pending_job++; 629 qemu_file_acct_rate_limit(f, p->packet_len); 630 ram_counters.multifd_bytes += p->packet_len; 631 stat64_add(&ram_atomic_counters.transferred, p->packet_len); 632 qemu_mutex_unlock(&p->mutex); 633 qemu_sem_post(&p->sem); 634 } 635 for (i = 0; i < migrate_multifd_channels(); i++) { 636 MultiFDSendParams *p = &multifd_send_state->params[i]; 637 638 trace_multifd_send_sync_main_wait(p->id); 639 qemu_sem_wait(&p->sem_sync); 640 641 if (flush_zero_copy && p->c && (multifd_zero_copy_flush(p->c) < 0)) { 642 return -1; 643 } 644 } 645 trace_multifd_send_sync_main(multifd_send_state->packet_num); 646 647 return 0; 648 } 649 650 static void *multifd_send_thread(void *opaque) 651 { 652 MultiFDSendParams *p = opaque; 653 MigrationThread *thread = NULL; 654 Error *local_err = NULL; 655 int ret = 0; 656 bool use_zero_copy_send = migrate_use_zero_copy_send(); 657 658 thread = MigrationThreadAdd(p->name, qemu_get_thread_id()); 659 660 trace_multifd_send_thread_start(p->id); 661 rcu_register_thread(); 662 663 if (multifd_send_initial_packet(p, &local_err) < 0) { 664 ret = -1; 665 goto out; 666 } 667 /* initial packet */ 668 p->num_packets = 1; 669 670 while (true) { 671 qemu_sem_wait(&p->sem); 672 673 if (qatomic_read(&multifd_send_state->exiting)) { 674 break; 675 } 676 qemu_mutex_lock(&p->mutex); 677 678 if (p->pending_job) { 679 uint64_t packet_num = p->packet_num; 680 uint32_t flags; 681 p->normal_num = 0; 682 683 if (use_zero_copy_send) { 684 p->iovs_num = 0; 685 } else { 686 p->iovs_num = 1; 687 } 688 689 for (int i = 0; i < p->pages->num; i++) { 690 p->normal[p->normal_num] = p->pages->offset[i]; 691 p->normal_num++; 692 } 693 694 if (p->normal_num) { 695 ret = multifd_send_state->ops->send_prepare(p, &local_err); 696 if (ret != 0) { 697 qemu_mutex_unlock(&p->mutex); 698 break; 699 } 700 } 701 multifd_send_fill_packet(p); 702 flags = p->flags; 703 p->flags = 0; 704 p->num_packets++; 705 p->total_normal_pages += p->normal_num; 706 p->pages->num = 0; 707 p->pages->block = NULL; 708 qemu_mutex_unlock(&p->mutex); 709 710 trace_multifd_send(p->id, packet_num, p->normal_num, flags, 711 p->next_packet_size); 712 713 if (use_zero_copy_send) { 714 /* Send header first, without zerocopy */ 715 ret = qio_channel_write_all(p->c, (void *)p->packet, 716 p->packet_len, &local_err); 717 if (ret != 0) { 718 break; 719 } 720 } else { 721 /* Send header using the same writev call */ 722 p->iov[0].iov_len = p->packet_len; 723 p->iov[0].iov_base = p->packet; 724 } 725 726 ret = qio_channel_writev_full_all(p->c, p->iov, p->iovs_num, NULL, 727 0, p->write_flags, &local_err); 728 if (ret != 0) { 729 break; 730 } 731 732 qemu_mutex_lock(&p->mutex); 733 p->pending_job--; 734 qemu_mutex_unlock(&p->mutex); 735 736 if (flags & MULTIFD_FLAG_SYNC) { 737 qemu_sem_post(&p->sem_sync); 738 } 739 qemu_sem_post(&multifd_send_state->channels_ready); 740 } else if (p->quit) { 741 qemu_mutex_unlock(&p->mutex); 742 break; 743 } else { 744 qemu_mutex_unlock(&p->mutex); 745 /* sometimes there are spurious wakeups */ 746 } 747 } 748 749 out: 750 if (local_err) { 751 trace_multifd_send_error(p->id); 752 multifd_send_terminate_threads(local_err); 753 error_free(local_err); 754 } 755 756 /* 757 * Error happen, I will exit, but I can't just leave, tell 758 * who pay attention to me. 759 */ 760 if (ret != 0) { 761 qemu_sem_post(&p->sem_sync); 762 qemu_sem_post(&multifd_send_state->channels_ready); 763 } 764 765 qemu_mutex_lock(&p->mutex); 766 p->running = false; 767 qemu_mutex_unlock(&p->mutex); 768 769 rcu_unregister_thread(); 770 MigrationThreadDel(thread); 771 trace_multifd_send_thread_end(p->id, p->num_packets, p->total_normal_pages); 772 773 return NULL; 774 } 775 776 static bool multifd_channel_connect(MultiFDSendParams *p, 777 QIOChannel *ioc, 778 Error *error); 779 780 static void multifd_tls_outgoing_handshake(QIOTask *task, 781 gpointer opaque) 782 { 783 MultiFDSendParams *p = opaque; 784 QIOChannel *ioc = QIO_CHANNEL(qio_task_get_source(task)); 785 Error *err = NULL; 786 787 if (qio_task_propagate_error(task, &err)) { 788 trace_multifd_tls_outgoing_handshake_error(ioc, error_get_pretty(err)); 789 } else { 790 trace_multifd_tls_outgoing_handshake_complete(ioc); 791 } 792 793 if (!multifd_channel_connect(p, ioc, err)) { 794 /* 795 * Error happen, mark multifd_send_thread status as 'quit' although it 796 * is not created, and then tell who pay attention to me. 797 */ 798 p->quit = true; 799 qemu_sem_post(&multifd_send_state->channels_ready); 800 qemu_sem_post(&p->sem_sync); 801 } 802 } 803 804 static void *multifd_tls_handshake_thread(void *opaque) 805 { 806 MultiFDSendParams *p = opaque; 807 QIOChannelTLS *tioc = QIO_CHANNEL_TLS(p->c); 808 809 qio_channel_tls_handshake(tioc, 810 multifd_tls_outgoing_handshake, 811 p, 812 NULL, 813 NULL); 814 return NULL; 815 } 816 817 static void multifd_tls_channel_connect(MultiFDSendParams *p, 818 QIOChannel *ioc, 819 Error **errp) 820 { 821 MigrationState *s = migrate_get_current(); 822 const char *hostname = s->hostname; 823 QIOChannelTLS *tioc; 824 825 tioc = migration_tls_client_create(s, ioc, hostname, errp); 826 if (!tioc) { 827 return; 828 } 829 830 object_unref(OBJECT(ioc)); 831 trace_multifd_tls_outgoing_handshake_start(ioc, tioc, hostname); 832 qio_channel_set_name(QIO_CHANNEL(tioc), "multifd-tls-outgoing"); 833 p->c = QIO_CHANNEL(tioc); 834 qemu_thread_create(&p->thread, "multifd-tls-handshake-worker", 835 multifd_tls_handshake_thread, p, 836 QEMU_THREAD_JOINABLE); 837 } 838 839 static bool multifd_channel_connect(MultiFDSendParams *p, 840 QIOChannel *ioc, 841 Error *error) 842 { 843 trace_multifd_set_outgoing_channel( 844 ioc, object_get_typename(OBJECT(ioc)), 845 migrate_get_current()->hostname, error); 846 847 if (error) { 848 return false; 849 } 850 if (migrate_channel_requires_tls_upgrade(ioc)) { 851 multifd_tls_channel_connect(p, ioc, &error); 852 if (!error) { 853 /* 854 * tls_channel_connect will call back to this 855 * function after the TLS handshake, 856 * so we mustn't call multifd_send_thread until then 857 */ 858 return true; 859 } else { 860 return false; 861 } 862 } else { 863 migration_ioc_register_yank(ioc); 864 p->registered_yank = true; 865 p->c = ioc; 866 qemu_thread_create(&p->thread, p->name, multifd_send_thread, p, 867 QEMU_THREAD_JOINABLE); 868 } 869 return true; 870 } 871 872 static void multifd_new_send_channel_cleanup(MultiFDSendParams *p, 873 QIOChannel *ioc, Error *err) 874 { 875 migrate_set_error(migrate_get_current(), err); 876 /* Error happen, we need to tell who pay attention to me */ 877 qemu_sem_post(&multifd_send_state->channels_ready); 878 qemu_sem_post(&p->sem_sync); 879 /* 880 * Although multifd_send_thread is not created, but main migration 881 * thread neet to judge whether it is running, so we need to mark 882 * its status. 883 */ 884 p->quit = true; 885 object_unref(OBJECT(ioc)); 886 error_free(err); 887 } 888 889 static void multifd_new_send_channel_async(QIOTask *task, gpointer opaque) 890 { 891 MultiFDSendParams *p = opaque; 892 QIOChannel *sioc = QIO_CHANNEL(qio_task_get_source(task)); 893 Error *local_err = NULL; 894 895 trace_multifd_new_send_channel_async(p->id); 896 if (!qio_task_propagate_error(task, &local_err)) { 897 p->c = QIO_CHANNEL(sioc); 898 qio_channel_set_delay(p->c, false); 899 p->running = true; 900 if (multifd_channel_connect(p, sioc, local_err)) { 901 return; 902 } 903 } 904 905 multifd_new_send_channel_cleanup(p, sioc, local_err); 906 } 907 908 int multifd_save_setup(Error **errp) 909 { 910 int thread_count; 911 uint32_t page_count = MULTIFD_PACKET_SIZE / qemu_target_page_size(); 912 uint8_t i; 913 914 if (!migrate_use_multifd()) { 915 return 0; 916 } 917 918 thread_count = migrate_multifd_channels(); 919 multifd_send_state = g_malloc0(sizeof(*multifd_send_state)); 920 multifd_send_state->params = g_new0(MultiFDSendParams, thread_count); 921 multifd_send_state->pages = multifd_pages_init(page_count); 922 qemu_sem_init(&multifd_send_state->channels_ready, 0); 923 qatomic_set(&multifd_send_state->exiting, 0); 924 multifd_send_state->ops = multifd_ops[migrate_multifd_compression()]; 925 926 for (i = 0; i < thread_count; i++) { 927 MultiFDSendParams *p = &multifd_send_state->params[i]; 928 929 qemu_mutex_init(&p->mutex); 930 qemu_sem_init(&p->sem, 0); 931 qemu_sem_init(&p->sem_sync, 0); 932 p->quit = false; 933 p->pending_job = 0; 934 p->id = i; 935 p->pages = multifd_pages_init(page_count); 936 p->packet_len = sizeof(MultiFDPacket_t) 937 + sizeof(uint64_t) * page_count; 938 p->packet = g_malloc0(p->packet_len); 939 p->packet->magic = cpu_to_be32(MULTIFD_MAGIC); 940 p->packet->version = cpu_to_be32(MULTIFD_VERSION); 941 p->name = g_strdup_printf("multifdsend_%d", i); 942 /* We need one extra place for the packet header */ 943 p->iov = g_new0(struct iovec, page_count + 1); 944 p->normal = g_new0(ram_addr_t, page_count); 945 p->page_size = qemu_target_page_size(); 946 p->page_count = page_count; 947 948 if (migrate_use_zero_copy_send()) { 949 p->write_flags = QIO_CHANNEL_WRITE_FLAG_ZERO_COPY; 950 } else { 951 p->write_flags = 0; 952 } 953 954 socket_send_channel_create(multifd_new_send_channel_async, p); 955 } 956 957 for (i = 0; i < thread_count; i++) { 958 MultiFDSendParams *p = &multifd_send_state->params[i]; 959 Error *local_err = NULL; 960 int ret; 961 962 ret = multifd_send_state->ops->send_setup(p, &local_err); 963 if (ret) { 964 error_propagate(errp, local_err); 965 return ret; 966 } 967 } 968 return 0; 969 } 970 971 struct { 972 MultiFDRecvParams *params; 973 /* number of created threads */ 974 int count; 975 /* syncs main thread and channels */ 976 QemuSemaphore sem_sync; 977 /* global number of generated multifd packets */ 978 uint64_t packet_num; 979 /* multifd ops */ 980 MultiFDMethods *ops; 981 } *multifd_recv_state; 982 983 static void multifd_recv_terminate_threads(Error *err) 984 { 985 int i; 986 987 trace_multifd_recv_terminate_threads(err != NULL); 988 989 if (err) { 990 MigrationState *s = migrate_get_current(); 991 migrate_set_error(s, err); 992 if (s->state == MIGRATION_STATUS_SETUP || 993 s->state == MIGRATION_STATUS_ACTIVE) { 994 migrate_set_state(&s->state, s->state, 995 MIGRATION_STATUS_FAILED); 996 } 997 } 998 999 for (i = 0; i < migrate_multifd_channels(); i++) { 1000 MultiFDRecvParams *p = &multifd_recv_state->params[i]; 1001 1002 qemu_mutex_lock(&p->mutex); 1003 p->quit = true; 1004 /* 1005 * We could arrive here for two reasons: 1006 * - normal quit, i.e. everything went fine, just finished 1007 * - error quit: We close the channels so the channel threads 1008 * finish the qio_channel_read_all_eof() 1009 */ 1010 if (p->c) { 1011 qio_channel_shutdown(p->c, QIO_CHANNEL_SHUTDOWN_BOTH, NULL); 1012 } 1013 qemu_mutex_unlock(&p->mutex); 1014 } 1015 } 1016 1017 void multifd_load_shutdown(void) 1018 { 1019 if (migrate_use_multifd()) { 1020 multifd_recv_terminate_threads(NULL); 1021 } 1022 } 1023 1024 void multifd_load_cleanup(void) 1025 { 1026 int i; 1027 1028 if (!migrate_use_multifd()) { 1029 return; 1030 } 1031 multifd_recv_terminate_threads(NULL); 1032 for (i = 0; i < migrate_multifd_channels(); i++) { 1033 MultiFDRecvParams *p = &multifd_recv_state->params[i]; 1034 1035 if (p->running) { 1036 /* 1037 * multifd_recv_thread may hung at MULTIFD_FLAG_SYNC handle code, 1038 * however try to wakeup it without harm in cleanup phase. 1039 */ 1040 qemu_sem_post(&p->sem_sync); 1041 } 1042 1043 qemu_thread_join(&p->thread); 1044 } 1045 for (i = 0; i < migrate_multifd_channels(); i++) { 1046 MultiFDRecvParams *p = &multifd_recv_state->params[i]; 1047 1048 migration_ioc_unregister_yank(p->c); 1049 object_unref(OBJECT(p->c)); 1050 p->c = NULL; 1051 qemu_mutex_destroy(&p->mutex); 1052 qemu_sem_destroy(&p->sem_sync); 1053 g_free(p->name); 1054 p->name = NULL; 1055 p->packet_len = 0; 1056 g_free(p->packet); 1057 p->packet = NULL; 1058 g_free(p->iov); 1059 p->iov = NULL; 1060 g_free(p->normal); 1061 p->normal = NULL; 1062 multifd_recv_state->ops->recv_cleanup(p); 1063 } 1064 qemu_sem_destroy(&multifd_recv_state->sem_sync); 1065 g_free(multifd_recv_state->params); 1066 multifd_recv_state->params = NULL; 1067 g_free(multifd_recv_state); 1068 multifd_recv_state = NULL; 1069 } 1070 1071 void multifd_recv_sync_main(void) 1072 { 1073 int i; 1074 1075 if (!migrate_use_multifd()) { 1076 return; 1077 } 1078 for (i = 0; i < migrate_multifd_channels(); i++) { 1079 MultiFDRecvParams *p = &multifd_recv_state->params[i]; 1080 1081 trace_multifd_recv_sync_main_wait(p->id); 1082 qemu_sem_wait(&multifd_recv_state->sem_sync); 1083 } 1084 for (i = 0; i < migrate_multifd_channels(); i++) { 1085 MultiFDRecvParams *p = &multifd_recv_state->params[i]; 1086 1087 WITH_QEMU_LOCK_GUARD(&p->mutex) { 1088 if (multifd_recv_state->packet_num < p->packet_num) { 1089 multifd_recv_state->packet_num = p->packet_num; 1090 } 1091 } 1092 trace_multifd_recv_sync_main_signal(p->id); 1093 qemu_sem_post(&p->sem_sync); 1094 } 1095 trace_multifd_recv_sync_main(multifd_recv_state->packet_num); 1096 } 1097 1098 static void *multifd_recv_thread(void *opaque) 1099 { 1100 MultiFDRecvParams *p = opaque; 1101 Error *local_err = NULL; 1102 int ret; 1103 1104 trace_multifd_recv_thread_start(p->id); 1105 rcu_register_thread(); 1106 1107 while (true) { 1108 uint32_t flags; 1109 1110 if (p->quit) { 1111 break; 1112 } 1113 1114 ret = qio_channel_read_all_eof(p->c, (void *)p->packet, 1115 p->packet_len, &local_err); 1116 if (ret == 0 || ret == -1) { /* 0: EOF -1: Error */ 1117 break; 1118 } 1119 1120 qemu_mutex_lock(&p->mutex); 1121 ret = multifd_recv_unfill_packet(p, &local_err); 1122 if (ret) { 1123 qemu_mutex_unlock(&p->mutex); 1124 break; 1125 } 1126 1127 flags = p->flags; 1128 /* recv methods don't know how to handle the SYNC flag */ 1129 p->flags &= ~MULTIFD_FLAG_SYNC; 1130 trace_multifd_recv(p->id, p->packet_num, p->normal_num, flags, 1131 p->next_packet_size); 1132 p->num_packets++; 1133 p->total_normal_pages += p->normal_num; 1134 qemu_mutex_unlock(&p->mutex); 1135 1136 if (p->normal_num) { 1137 ret = multifd_recv_state->ops->recv_pages(p, &local_err); 1138 if (ret != 0) { 1139 break; 1140 } 1141 } 1142 1143 if (flags & MULTIFD_FLAG_SYNC) { 1144 qemu_sem_post(&multifd_recv_state->sem_sync); 1145 qemu_sem_wait(&p->sem_sync); 1146 } 1147 } 1148 1149 if (local_err) { 1150 multifd_recv_terminate_threads(local_err); 1151 error_free(local_err); 1152 } 1153 qemu_mutex_lock(&p->mutex); 1154 p->running = false; 1155 qemu_mutex_unlock(&p->mutex); 1156 1157 rcu_unregister_thread(); 1158 trace_multifd_recv_thread_end(p->id, p->num_packets, p->total_normal_pages); 1159 1160 return NULL; 1161 } 1162 1163 int multifd_load_setup(Error **errp) 1164 { 1165 int thread_count; 1166 uint32_t page_count = MULTIFD_PACKET_SIZE / qemu_target_page_size(); 1167 uint8_t i; 1168 1169 /* 1170 * Return successfully if multiFD recv state is already initialised 1171 * or multiFD is not enabled. 1172 */ 1173 if (multifd_recv_state || !migrate_use_multifd()) { 1174 return 0; 1175 } 1176 1177 thread_count = migrate_multifd_channels(); 1178 multifd_recv_state = g_malloc0(sizeof(*multifd_recv_state)); 1179 multifd_recv_state->params = g_new0(MultiFDRecvParams, thread_count); 1180 qatomic_set(&multifd_recv_state->count, 0); 1181 qemu_sem_init(&multifd_recv_state->sem_sync, 0); 1182 multifd_recv_state->ops = multifd_ops[migrate_multifd_compression()]; 1183 1184 for (i = 0; i < thread_count; i++) { 1185 MultiFDRecvParams *p = &multifd_recv_state->params[i]; 1186 1187 qemu_mutex_init(&p->mutex); 1188 qemu_sem_init(&p->sem_sync, 0); 1189 p->quit = false; 1190 p->id = i; 1191 p->packet_len = sizeof(MultiFDPacket_t) 1192 + sizeof(uint64_t) * page_count; 1193 p->packet = g_malloc0(p->packet_len); 1194 p->name = g_strdup_printf("multifdrecv_%d", i); 1195 p->iov = g_new0(struct iovec, page_count); 1196 p->normal = g_new0(ram_addr_t, page_count); 1197 p->page_count = page_count; 1198 p->page_size = qemu_target_page_size(); 1199 } 1200 1201 for (i = 0; i < thread_count; i++) { 1202 MultiFDRecvParams *p = &multifd_recv_state->params[i]; 1203 Error *local_err = NULL; 1204 int ret; 1205 1206 ret = multifd_recv_state->ops->recv_setup(p, &local_err); 1207 if (ret) { 1208 error_propagate(errp, local_err); 1209 return ret; 1210 } 1211 } 1212 return 0; 1213 } 1214 1215 bool multifd_recv_all_channels_created(void) 1216 { 1217 int thread_count = migrate_multifd_channels(); 1218 1219 if (!migrate_use_multifd()) { 1220 return true; 1221 } 1222 1223 if (!multifd_recv_state) { 1224 /* Called before any connections created */ 1225 return false; 1226 } 1227 1228 return thread_count == qatomic_read(&multifd_recv_state->count); 1229 } 1230 1231 /* 1232 * Try to receive all multifd channels to get ready for the migration. 1233 * Sets @errp when failing to receive the current channel. 1234 */ 1235 void multifd_recv_new_channel(QIOChannel *ioc, Error **errp) 1236 { 1237 MultiFDRecvParams *p; 1238 Error *local_err = NULL; 1239 int id; 1240 1241 id = multifd_recv_initial_packet(ioc, &local_err); 1242 if (id < 0) { 1243 multifd_recv_terminate_threads(local_err); 1244 error_propagate_prepend(errp, local_err, 1245 "failed to receive packet" 1246 " via multifd channel %d: ", 1247 qatomic_read(&multifd_recv_state->count)); 1248 return; 1249 } 1250 trace_multifd_recv_new_channel(id); 1251 1252 p = &multifd_recv_state->params[id]; 1253 if (p->c != NULL) { 1254 error_setg(&local_err, "multifd: received id '%d' already setup'", 1255 id); 1256 multifd_recv_terminate_threads(local_err); 1257 error_propagate(errp, local_err); 1258 return; 1259 } 1260 p->c = ioc; 1261 object_ref(OBJECT(ioc)); 1262 /* initial packet */ 1263 p->num_packets = 1; 1264 1265 p->running = true; 1266 qemu_thread_create(&p->thread, p->name, multifd_recv_thread, p, 1267 QEMU_THREAD_JOINABLE); 1268 qatomic_inc(&multifd_recv_state->count); 1269 } 1270