1 // SPDX-License-Identifier: CDDL-1.0 2 /* 3 * CDDL HEADER START 4 * 5 * The contents of this file are subject to the terms of the 6 * Common Development and Distribution License (the "License"). 7 * You may not use this file except in compliance with the License. 8 * 9 * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE 10 * or https://opensource.org/licenses/CDDL-1.0. 11 * See the License for the specific language governing permissions 12 * and limitations under the License. 13 * 14 * When distributing Covered Code, include this CDDL HEADER in each 15 * file and include the License file at usr/src/OPENSOLARIS.LICENSE. 16 * If applicable, add the following below this CDDL HEADER, with the 17 * fields enclosed by brackets "[]" replaced with your own identifying 18 * information: Portions Copyright [yyyy] [name of copyright owner] 19 * 20 * CDDL HEADER END 21 */ 22 /* 23 * Copyright (c) 2017 by Lawrence Livermore National Security, LLC. 24 */ 25 26 #include <sys/abd.h> 27 #include <sys/mmp.h> 28 #include <sys/spa.h> 29 #include <sys/spa_impl.h> 30 #include <sys/time.h> 31 #include <sys/vdev.h> 32 #include <sys/vdev_impl.h> 33 #include <sys/zfs_context.h> 34 #include <sys/callb.h> 35 36 /* 37 * Multi-Modifier Protection (MMP) attempts to prevent a user from importing 38 * or opening a pool on more than one host at a time. In particular, it 39 * prevents "zpool import -f" on a host from succeeding while the pool is 40 * already imported on another host. There are many other ways in which a 41 * device could be used by two hosts for different purposes at the same time 42 * resulting in pool damage. This implementation does not attempt to detect 43 * those cases. 44 * 45 * MMP operates by ensuring there are frequent visible changes on disk (a 46 * "heartbeat") at all times. And by altering the import process to check 47 * for these changes and failing the import when they are detected. This 48 * functionality is enabled by setting the 'multihost' pool property to on. 49 * 50 * Uberblocks written by the txg_sync thread always go into the first 51 * (N-MMP_BLOCKS_PER_LABEL) slots, the remaining slots are reserved for MMP. 52 * They are used to hold uberblocks which are exactly the same as the last 53 * synced uberblock except that the ub_timestamp and mmp_config are frequently 54 * updated. Like all other uberblocks, the slot is written with an embedded 55 * checksum, and slots with invalid checksums are ignored. This provides the 56 * "heartbeat", with no risk of overwriting good uberblocks that must be 57 * preserved, e.g. previous txgs and associated block pointers. 58 * 59 * Three optional fields are added to uberblock structure; ub_mmp_magic, 60 * ub_mmp_config, and ub_mmp_delay. The ub_mmp_magic value allows zfs to tell 61 * whether the other ub_mmp_* fields are valid. The ub_mmp_config field tells 62 * the importing host the settings of zfs_multihost_interval and 63 * zfs_multihost_fail_intervals on the host which last had (or currently has) 64 * the pool imported. These determine how long a host must wait to detect 65 * activity in the pool, before concluding the pool is not in use. The 66 * mmp_delay field is a decaying average of the amount of time between 67 * completion of successive MMP writes, in nanoseconds. It indicates whether 68 * MMP is enabled. 69 * 70 * During import an activity test may now be performed to determine if 71 * the pool is in use. The activity test is typically required if the 72 * ZPOOL_CONFIG_HOSTID does not match the system hostid, the pool state is 73 * POOL_STATE_ACTIVE, and the pool is not a root pool. 74 * 75 * The activity test finds the "best" uberblock (highest txg, timestamp, and, if 76 * ub_mmp_magic is valid, sequence number from ub_mmp_config). It then waits 77 * some time, and finds the "best" uberblock again. If any of the mentioned 78 * fields have different values in the newly read uberblock, the pool is in use 79 * by another host and the import fails. In order to assure the accuracy of the 80 * activity test, the default values result in an activity test duration of 20x 81 * the mmp write interval. 82 * 83 * The duration of the "zpool import" activity test depends on the information 84 * available in the "best" uberblock: 85 * 86 * 1) If uberblock was written by zfs-0.8 or newer and fail_intervals > 0: 87 * ub_mmp_config.fail_intervals * ub_mmp_config.multihost_interval * 2 88 * 89 * In this case, a weak guarantee is provided. Since the host which last had 90 * the pool imported will suspend the pool if no mmp writes land within 91 * fail_intervals * multihost_interval ms, the absence of writes during that 92 * time means either the pool is not imported, or it is imported but the pool 93 * is suspended and no further writes will occur. 94 * 95 * Note that resuming the suspended pool on the remote host would invalidate 96 * this guarantee, and so it is not allowed. 97 * 98 * The factor of 2 provides a conservative safety factor and derives from 99 * MMP_IMPORT_SAFETY_FACTOR; 100 * 101 * 2) If uberblock was written by zfs-0.8 or newer and fail_intervals == 0: 102 * (ub_mmp_config.multihost_interval + ub_mmp_delay) * 103 * zfs_multihost_import_intervals 104 * 105 * In this case no guarantee can provided. However, as long as some devices 106 * are healthy and connected, it is likely that at least one write will land 107 * within (multihost_interval + mmp_delay) because multihost_interval is 108 * enough time for a write to be attempted to each leaf vdev, and mmp_delay 109 * is enough for one to land, based on past delays. Multiplying by 110 * zfs_multihost_import_intervals provides a conservative safety factor. 111 * 112 * 3) If uberblock was written by zfs-0.7: 113 * (zfs_multihost_interval + ub_mmp_delay) * zfs_multihost_import_intervals 114 * 115 * The same logic as case #2 applies, but we do not know remote tunables. 116 * 117 * We use the local value for zfs_multihost_interval because the original MMP 118 * did not record this value in the uberblock. 119 * 120 * ub_mmp_delay >= (zfs_multihost_interval / leaves), so if the other host 121 * has a much larger zfs_multihost_interval set, ub_mmp_delay will reflect 122 * that. We will have waited enough time for zfs_multihost_import_intervals 123 * writes to be issued and all but one to land. 124 * 125 * single device pool example delays 126 * 127 * import_delay = (1 + 1) * 20 = 40s #defaults, no I/O delay 128 * import_delay = (1 + 10) * 20 = 220s #defaults, 10s I/O delay 129 * import_delay = (10 + 10) * 20 = 400s #10s multihost_interval, 130 * no I/O delay 131 * 100 device pool example delays 132 * 133 * import_delay = (1 + .01) * 20 = 20s #defaults, no I/O delay 134 * import_delay = (1 + 10) * 20 = 220s #defaults, 10s I/O delay 135 * import_delay = (10 + .1) * 20 = 202s #10s multihost_interval, 136 * no I/O delay 137 * 138 * 4) Otherwise, this uberblock was written by a pre-MMP zfs: 139 * zfs_multihost_import_intervals * zfs_multihost_interval 140 * 141 * In this case local tunables are used. By default this product = 10s, long 142 * enough for a pool with any activity at all to write at least one 143 * uberblock. No guarantee can be provided. 144 * 145 * Additionally, the duration is then extended by a random 25% to attempt to to 146 * detect simultaneous imports. For example, if both partner hosts are rebooted 147 * at the same time and automatically attempt to import the pool. 148 */ 149 150 /* 151 * Used to control the frequency of mmp writes which are performed when the 152 * 'multihost' pool property is on. This is one factor used to determine the 153 * length of the activity check during import. 154 * 155 * On average an mmp write will be issued for each leaf vdev every 156 * zfs_multihost_interval milliseconds. In practice, the observed period can 157 * vary with the I/O load and this observed value is the ub_mmp_delay which is 158 * stored in the uberblock. The minimum allowed value is 100 ms. 159 */ 160 uint64_t zfs_multihost_interval = MMP_DEFAULT_INTERVAL; 161 162 /* 163 * Used to control the duration of the activity test on import. Smaller values 164 * of zfs_multihost_import_intervals will reduce the import time but increase 165 * the risk of failing to detect an active pool. The total activity check time 166 * is never allowed to drop below one second. A value of 0 is ignored and 167 * treated as if it was set to 1. 168 */ 169 uint_t zfs_multihost_import_intervals = MMP_DEFAULT_IMPORT_INTERVALS; 170 171 /* 172 * Controls the behavior of the pool when mmp write failures or delays are 173 * detected. 174 * 175 * When zfs_multihost_fail_intervals = 0, mmp write failures or delays are 176 * ignored. The failures will still be reported to the ZED which depending on 177 * its configuration may take action such as suspending the pool or taking a 178 * device offline. 179 * 180 * When zfs_multihost_fail_intervals > 0, the pool will be suspended if 181 * zfs_multihost_fail_intervals * zfs_multihost_interval milliseconds pass 182 * without a successful mmp write. This guarantees the activity test will see 183 * mmp writes if the pool is imported. A value of 1 is ignored and treated as 184 * if it was set to 2, because a single leaf vdev pool will issue a write once 185 * per multihost_interval and thus any variation in latency would cause the 186 * pool to be suspended. 187 */ 188 uint_t zfs_multihost_fail_intervals = MMP_DEFAULT_FAIL_INTERVALS; 189 190 static const void *const mmp_tag = "mmp_write_uberblock"; 191 static __attribute__((noreturn)) void mmp_thread(void *arg); 192 193 void 194 mmp_init(spa_t *spa) 195 { 196 mmp_thread_t *mmp = &spa->spa_mmp; 197 198 mutex_init(&mmp->mmp_thread_lock, NULL, MUTEX_DEFAULT, NULL); 199 cv_init(&mmp->mmp_thread_cv, NULL, CV_DEFAULT, NULL); 200 mutex_init(&mmp->mmp_io_lock, NULL, MUTEX_DEFAULT, NULL); 201 mmp->mmp_kstat_id = 1; 202 } 203 204 void 205 mmp_fini(spa_t *spa) 206 { 207 mmp_thread_t *mmp = &spa->spa_mmp; 208 209 mutex_destroy(&mmp->mmp_thread_lock); 210 cv_destroy(&mmp->mmp_thread_cv); 211 mutex_destroy(&mmp->mmp_io_lock); 212 } 213 214 static void 215 mmp_thread_enter(mmp_thread_t *mmp, callb_cpr_t *cpr) 216 { 217 CALLB_CPR_INIT(cpr, &mmp->mmp_thread_lock, callb_generic_cpr, FTAG); 218 mutex_enter(&mmp->mmp_thread_lock); 219 } 220 221 static void 222 mmp_thread_exit(mmp_thread_t *mmp, kthread_t **mpp, callb_cpr_t *cpr) 223 { 224 ASSERT(*mpp != NULL); 225 *mpp = NULL; 226 cv_broadcast(&mmp->mmp_thread_cv); 227 CALLB_CPR_EXIT(cpr); /* drops &mmp->mmp_thread_lock */ 228 } 229 230 void 231 mmp_thread_start(spa_t *spa) 232 { 233 mmp_thread_t *mmp = &spa->spa_mmp; 234 235 if (spa_writeable(spa)) { 236 mutex_enter(&mmp->mmp_thread_lock); 237 if (!mmp->mmp_thread) { 238 mmp->mmp_thread = thread_create(NULL, 0, mmp_thread, 239 spa, 0, &p0, TS_RUN, defclsyspri); 240 zfs_dbgmsg("MMP thread started pool '%s' " 241 "gethrtime %llu", spa_name(spa), gethrtime()); 242 } 243 mutex_exit(&mmp->mmp_thread_lock); 244 } 245 } 246 247 void 248 mmp_thread_stop(spa_t *spa) 249 { 250 mmp_thread_t *mmp = &spa->spa_mmp; 251 252 mutex_enter(&mmp->mmp_thread_lock); 253 mmp->mmp_thread_exiting = 1; 254 cv_broadcast(&mmp->mmp_thread_cv); 255 256 while (mmp->mmp_thread) { 257 cv_wait(&mmp->mmp_thread_cv, &mmp->mmp_thread_lock); 258 } 259 mutex_exit(&mmp->mmp_thread_lock); 260 zfs_dbgmsg("MMP thread stopped pool '%s' gethrtime %llu", 261 spa_name(spa), gethrtime()); 262 263 ASSERT(mmp->mmp_thread == NULL); 264 mmp->mmp_thread_exiting = 0; 265 } 266 267 typedef enum mmp_vdev_state_flag { 268 MMP_FAIL_NOT_WRITABLE = (1 << 0), 269 MMP_FAIL_WRITE_PENDING = (1 << 1), 270 } mmp_vdev_state_flag_t; 271 272 /* 273 * Find a leaf vdev to write an MMP block to. It must not have an outstanding 274 * mmp write (if so a new write will also likely block). If there is no usable 275 * leaf, a nonzero error value is returned. The error value returned is a bit 276 * field. 277 * 278 * MMP_FAIL_WRITE_PENDING One or more leaf vdevs are writeable, but have an 279 * outstanding MMP write. 280 * MMP_FAIL_NOT_WRITABLE One or more leaf vdevs are not writeable. 281 */ 282 283 static int 284 mmp_next_leaf(spa_t *spa) 285 { 286 vdev_t *leaf; 287 vdev_t *starting_leaf; 288 int fail_mask = 0; 289 290 ASSERT(MUTEX_HELD(&spa->spa_mmp.mmp_io_lock)); 291 ASSERT(spa_config_held(spa, SCL_STATE, RW_READER)); 292 ASSERT(list_link_active(&spa->spa_leaf_list.list_head) == B_TRUE); 293 ASSERT(!list_is_empty(&spa->spa_leaf_list)); 294 295 if (spa->spa_mmp.mmp_leaf_last_gen != spa->spa_leaf_list_gen) { 296 spa->spa_mmp.mmp_last_leaf = list_head(&spa->spa_leaf_list); 297 spa->spa_mmp.mmp_leaf_last_gen = spa->spa_leaf_list_gen; 298 } 299 300 leaf = spa->spa_mmp.mmp_last_leaf; 301 if (leaf == NULL) 302 leaf = list_head(&spa->spa_leaf_list); 303 starting_leaf = leaf; 304 305 do { 306 leaf = list_next(&spa->spa_leaf_list, leaf); 307 if (leaf == NULL) { 308 leaf = list_head(&spa->spa_leaf_list); 309 ASSERT3P(leaf, !=, NULL); 310 } 311 312 /* 313 * We skip unwritable, offline, detached, and dRAID spare 314 * devices as they are either not legal targets or the write 315 * may fail or not be seen by other hosts. Skipped dRAID 316 * spares can never be written so the fail mask is not set. 317 */ 318 if (!vdev_writeable(leaf) || leaf->vdev_offline || 319 leaf->vdev_detached) { 320 fail_mask |= MMP_FAIL_NOT_WRITABLE; 321 } else if (leaf->vdev_ops == &vdev_draid_spare_ops) { 322 continue; 323 } else if (leaf->vdev_mmp_pending != 0) { 324 fail_mask |= MMP_FAIL_WRITE_PENDING; 325 } else { 326 spa->spa_mmp.mmp_last_leaf = leaf; 327 return (0); 328 } 329 } while (leaf != starting_leaf); 330 331 ASSERT(fail_mask); 332 333 return (fail_mask); 334 } 335 336 /* 337 * MMP writes are issued on a fixed schedule, but may complete at variable, 338 * much longer, intervals. The mmp_delay captures long periods between 339 * successful writes for any reason, including disk latency, scheduling delays, 340 * etc. 341 * 342 * The mmp_delay is usually calculated as a decaying average, but if the latest 343 * delay is higher we do not average it, so that we do not hide sudden spikes 344 * which the importing host must wait for. 345 * 346 * If writes are occurring frequently, such as due to a high rate of txg syncs, 347 * the mmp_delay could become very small. Since those short delays depend on 348 * activity we cannot count on, we never allow mmp_delay to get lower than rate 349 * expected if only mmp_thread writes occur. 350 * 351 * If an mmp write was skipped or fails, and we have already waited longer than 352 * mmp_delay, we need to update it so the next write reflects the longer delay. 353 * 354 * Do not set mmp_delay if the multihost property is not on, so as not to 355 * trigger an activity check on import. 356 */ 357 static void 358 mmp_delay_update(spa_t *spa, boolean_t write_completed) 359 { 360 mmp_thread_t *mts = &spa->spa_mmp; 361 hrtime_t delay = gethrtime() - mts->mmp_last_write; 362 363 ASSERT(MUTEX_HELD(&mts->mmp_io_lock)); 364 365 if (spa_multihost(spa) == B_FALSE) { 366 mts->mmp_delay = 0; 367 return; 368 } 369 370 if (delay > mts->mmp_delay) 371 mts->mmp_delay = delay; 372 373 if (write_completed == B_FALSE) 374 return; 375 376 mts->mmp_last_write = gethrtime(); 377 378 /* 379 * strictly less than, in case delay was changed above. 380 */ 381 if (delay < mts->mmp_delay) { 382 hrtime_t min_delay = 383 MSEC2NSEC(MMP_INTERVAL_OK(zfs_multihost_interval)) / 384 MAX(1, vdev_count_leaves(spa)); 385 mts->mmp_delay = MAX(((delay + mts->mmp_delay * 127) / 128), 386 min_delay); 387 } 388 } 389 390 static void 391 mmp_write_done(zio_t *zio) 392 { 393 spa_t *spa = zio->io_spa; 394 vdev_t *vd = zio->io_vd; 395 mmp_thread_t *mts = zio->io_private; 396 397 mutex_enter(&mts->mmp_io_lock); 398 uint64_t mmp_kstat_id = vd->vdev_mmp_kstat_id; 399 hrtime_t mmp_write_duration = gethrtime() - vd->vdev_mmp_pending; 400 401 mmp_delay_update(spa, (zio->io_error == 0)); 402 403 vd->vdev_mmp_pending = 0; 404 vd->vdev_mmp_kstat_id = 0; 405 406 mutex_exit(&mts->mmp_io_lock); 407 spa_config_exit(spa, SCL_STATE, mmp_tag); 408 409 spa_mmp_history_set(spa, mmp_kstat_id, zio->io_error, 410 mmp_write_duration); 411 412 abd_free(zio->io_abd); 413 } 414 415 /* 416 * When the uberblock on-disk is updated by a spa_sync, 417 * creating a new "best" uberblock, update the one stored 418 * in the mmp thread state, used for mmp writes. 419 */ 420 void 421 mmp_update_uberblock(spa_t *spa, uberblock_t *ub) 422 { 423 mmp_thread_t *mmp = &spa->spa_mmp; 424 425 mutex_enter(&mmp->mmp_io_lock); 426 mmp->mmp_ub = *ub; 427 mmp->mmp_seq = 1; 428 mmp->mmp_ub.ub_timestamp = gethrestime_sec(); 429 mmp_delay_update(spa, B_TRUE); 430 mutex_exit(&mmp->mmp_io_lock); 431 } 432 433 /* 434 * Choose a random vdev, label, and MMP block, and write over it 435 * with a copy of the last-synced uberblock, whose timestamp 436 * has been updated to reflect that the pool is in use. 437 */ 438 static void 439 mmp_write_uberblock(spa_t *spa) 440 { 441 int flags = ZIO_FLAG_CONFIG_WRITER | ZIO_FLAG_CANFAIL; 442 mmp_thread_t *mmp = &spa->spa_mmp; 443 uberblock_t *ub; 444 vdev_t *vd = NULL; 445 int label, error; 446 uint64_t offset; 447 448 hrtime_t lock_acquire_time = gethrtime(); 449 spa_config_enter_mmp(spa, SCL_STATE, mmp_tag, RW_READER); 450 lock_acquire_time = gethrtime() - lock_acquire_time; 451 if (lock_acquire_time > (MSEC2NSEC(MMP_MIN_INTERVAL) / 10)) 452 zfs_dbgmsg("MMP SCL_STATE acquisition pool '%s' took %llu ns " 453 "gethrtime %llu", spa_name(spa), lock_acquire_time, 454 gethrtime()); 455 456 mutex_enter(&mmp->mmp_io_lock); 457 458 error = mmp_next_leaf(spa); 459 460 /* 461 * spa_mmp_history has two types of entries: 462 * Issued MMP write: records time issued, error status, etc. 463 * Skipped MMP write: an MMP write could not be issued because no 464 * suitable leaf vdev was available. See comment above struct 465 * spa_mmp_history for details. 466 */ 467 468 if (error) { 469 mmp_delay_update(spa, B_FALSE); 470 if (mmp->mmp_skip_error == error) { 471 spa_mmp_history_set_skip(spa, mmp->mmp_kstat_id - 1); 472 } else { 473 mmp->mmp_skip_error = error; 474 spa_mmp_history_add(spa, mmp->mmp_ub.ub_txg, 475 gethrestime_sec(), mmp->mmp_delay, NULL, 0, 476 mmp->mmp_kstat_id++, error); 477 zfs_dbgmsg("MMP error choosing leaf pool '%s' " 478 "gethrtime %llu fail_mask %#x", spa_name(spa), 479 gethrtime(), error); 480 } 481 mutex_exit(&mmp->mmp_io_lock); 482 spa_config_exit(spa, SCL_STATE, mmp_tag); 483 return; 484 } 485 486 vd = spa->spa_mmp.mmp_last_leaf; 487 if (mmp->mmp_skip_error != 0) { 488 mmp->mmp_skip_error = 0; 489 zfs_dbgmsg("MMP write after skipping due to unavailable " 490 "leaves, pool '%s' gethrtime %llu leaf %llu", 491 spa_name(spa), (u_longlong_t)gethrtime(), 492 (u_longlong_t)vd->vdev_guid); 493 } 494 495 if (mmp->mmp_zio_root == NULL) 496 mmp->mmp_zio_root = zio_root(spa, NULL, NULL, 497 flags | ZIO_FLAG_GODFATHER); 498 499 if (mmp->mmp_ub.ub_timestamp != gethrestime_sec()) { 500 /* 501 * Want to reset mmp_seq when timestamp advances because after 502 * an mmp_seq wrap new values will not be chosen by 503 * uberblock_compare() as the "best". 504 */ 505 mmp->mmp_ub.ub_timestamp = gethrestime_sec(); 506 mmp->mmp_seq = 1; 507 } 508 509 ub = &mmp->mmp_ub; 510 ub->ub_mmp_magic = MMP_MAGIC; 511 ub->ub_mmp_delay = mmp->mmp_delay; 512 ub->ub_mmp_config = MMP_SEQ_SET(mmp->mmp_seq) | 513 MMP_INTERVAL_SET(MMP_INTERVAL_OK(zfs_multihost_interval)) | 514 MMP_FAIL_INT_SET(MMP_FAIL_INTVS_OK( 515 zfs_multihost_fail_intervals)); 516 vd->vdev_mmp_pending = gethrtime(); 517 vd->vdev_mmp_kstat_id = mmp->mmp_kstat_id; 518 519 zio_t *zio = zio_null(mmp->mmp_zio_root, spa, NULL, NULL, NULL, flags); 520 abd_t *ub_abd = abd_alloc_for_io(VDEV_UBERBLOCK_SIZE(vd), B_TRUE); 521 abd_copy_from_buf(ub_abd, ub, sizeof (uberblock_t)); 522 abd_zero_off(ub_abd, sizeof (uberblock_t), 523 VDEV_UBERBLOCK_SIZE(vd) - sizeof (uberblock_t)); 524 525 mmp->mmp_seq++; 526 mmp->mmp_kstat_id++; 527 mutex_exit(&mmp->mmp_io_lock); 528 529 offset = VDEV_UBERBLOCK_OFFSET(vd, VDEV_UBERBLOCK_COUNT(vd) - 530 MMP_BLOCKS_PER_LABEL + random_in_range(MMP_BLOCKS_PER_LABEL)); 531 532 label = random_in_range(VDEV_LABELS); 533 vdev_label_write(zio, vd, label, ub_abd, offset, 534 VDEV_UBERBLOCK_SIZE(vd), mmp_write_done, mmp, 535 flags | ZIO_FLAG_DONT_PROPAGATE); 536 537 (void) spa_mmp_history_add(spa, ub->ub_txg, ub->ub_timestamp, 538 ub->ub_mmp_delay, vd, label, vd->vdev_mmp_kstat_id, 0); 539 540 zio_nowait(zio); 541 } 542 543 static __attribute__((noreturn)) void 544 mmp_thread(void *arg) 545 { 546 spa_t *spa = (spa_t *)arg; 547 mmp_thread_t *mmp = &spa->spa_mmp; 548 boolean_t suspended = spa_suspended(spa); 549 boolean_t multihost = spa_multihost(spa); 550 uint64_t mmp_interval = MSEC2NSEC(MMP_INTERVAL_OK( 551 zfs_multihost_interval)); 552 uint32_t mmp_fail_intervals = MMP_FAIL_INTVS_OK( 553 zfs_multihost_fail_intervals); 554 hrtime_t mmp_fail_ns = mmp_fail_intervals * mmp_interval; 555 boolean_t last_spa_suspended; 556 boolean_t last_spa_multihost; 557 uint64_t last_mmp_interval; 558 uint32_t last_mmp_fail_intervals; 559 hrtime_t last_mmp_fail_ns; 560 callb_cpr_t cpr; 561 int skip_wait = 0; 562 563 mmp_thread_enter(mmp, &cpr); 564 565 /* 566 * There have been no MMP writes yet. Setting mmp_last_write here gives 567 * us one mmp_fail_ns period, which is consistent with the activity 568 * check duration, to try to land an MMP write before MMP suspends the 569 * pool (if so configured). 570 */ 571 572 mutex_enter(&mmp->mmp_io_lock); 573 mmp->mmp_last_write = gethrtime(); 574 mmp->mmp_delay = MSEC2NSEC(MMP_INTERVAL_OK(zfs_multihost_interval)); 575 mutex_exit(&mmp->mmp_io_lock); 576 577 while (!mmp->mmp_thread_exiting) { 578 hrtime_t next_time = gethrtime() + 579 MSEC2NSEC(MMP_DEFAULT_INTERVAL); 580 int leaves = MAX(vdev_count_leaves(spa), 1); 581 582 /* Detect changes in tunables or state */ 583 584 last_spa_suspended = suspended; 585 last_spa_multihost = multihost; 586 suspended = spa_suspended(spa); 587 multihost = spa_multihost(spa); 588 589 last_mmp_interval = mmp_interval; 590 last_mmp_fail_intervals = mmp_fail_intervals; 591 last_mmp_fail_ns = mmp_fail_ns; 592 mmp_interval = MSEC2NSEC(MMP_INTERVAL_OK( 593 zfs_multihost_interval)); 594 mmp_fail_intervals = MMP_FAIL_INTVS_OK( 595 zfs_multihost_fail_intervals); 596 597 /* Smooth so pool is not suspended when reducing tunables */ 598 if (mmp_fail_intervals * mmp_interval < mmp_fail_ns) { 599 mmp_fail_ns = (mmp_fail_ns * 31 + 600 mmp_fail_intervals * mmp_interval) / 32; 601 } else { 602 mmp_fail_ns = mmp_fail_intervals * 603 mmp_interval; 604 } 605 606 if (mmp_interval != last_mmp_interval || 607 mmp_fail_intervals != last_mmp_fail_intervals) { 608 /* 609 * We want other hosts to see new tunables as quickly as 610 * possible. Write out at higher frequency than usual. 611 */ 612 skip_wait += leaves; 613 } 614 615 if (multihost) 616 next_time = gethrtime() + mmp_interval / leaves; 617 618 if (mmp_fail_ns != last_mmp_fail_ns) { 619 zfs_dbgmsg("MMP interval change pool '%s' " 620 "gethrtime %llu last_mmp_interval %llu " 621 "mmp_interval %llu last_mmp_fail_intervals %u " 622 "mmp_fail_intervals %u mmp_fail_ns %llu " 623 "skip_wait %d leaves %d next_time %llu", 624 spa_name(spa), (u_longlong_t)gethrtime(), 625 (u_longlong_t)last_mmp_interval, 626 (u_longlong_t)mmp_interval, last_mmp_fail_intervals, 627 mmp_fail_intervals, (u_longlong_t)mmp_fail_ns, 628 skip_wait, leaves, (u_longlong_t)next_time); 629 } 630 631 /* 632 * MMP off => on, or suspended => !suspended: 633 * No writes occurred recently. Update mmp_last_write to give 634 * us some time to try. 635 */ 636 if ((!last_spa_multihost && multihost) || 637 (last_spa_suspended && !suspended)) { 638 zfs_dbgmsg("MMP state change pool '%s': gethrtime %llu " 639 "last_spa_multihost %u multihost %u " 640 "last_spa_suspended %u suspended %u", 641 spa_name(spa), (u_longlong_t)gethrtime(), 642 last_spa_multihost, multihost, last_spa_suspended, 643 suspended); 644 mutex_enter(&mmp->mmp_io_lock); 645 mmp->mmp_last_write = gethrtime(); 646 mmp->mmp_delay = mmp_interval; 647 mutex_exit(&mmp->mmp_io_lock); 648 } 649 650 /* 651 * MMP on => off: 652 * mmp_delay == 0 tells importing node to skip activity check. 653 */ 654 if (last_spa_multihost && !multihost) { 655 mutex_enter(&mmp->mmp_io_lock); 656 mmp->mmp_delay = 0; 657 mutex_exit(&mmp->mmp_io_lock); 658 } 659 660 /* 661 * Suspend the pool if no MMP write has succeeded in over 662 * mmp_interval * mmp_fail_intervals nanoseconds. 663 */ 664 if (multihost && !suspended && mmp_fail_intervals && 665 (gethrtime() - mmp->mmp_last_write) > mmp_fail_ns) { 666 zfs_dbgmsg("MMP suspending pool '%s': gethrtime %llu " 667 "mmp_last_write %llu mmp_interval %llu " 668 "mmp_fail_intervals %llu mmp_fail_ns %llu txg %llu", 669 spa_name(spa), (u_longlong_t)gethrtime(), 670 (u_longlong_t)mmp->mmp_last_write, 671 (u_longlong_t)mmp_interval, 672 (u_longlong_t)mmp_fail_intervals, 673 (u_longlong_t)mmp_fail_ns, 674 (u_longlong_t)spa->spa_uberblock.ub_txg); 675 cmn_err(CE_WARN, "MMP writes to pool '%s' have not " 676 "succeeded in over %llu ms; suspending pool. " 677 "Hrtime %llu", 678 spa_name(spa), 679 NSEC2MSEC(gethrtime() - mmp->mmp_last_write), 680 gethrtime()); 681 zio_suspend(spa, NULL, ZIO_SUSPEND_MMP); 682 } 683 684 if (multihost && !suspended) 685 mmp_write_uberblock(spa); 686 687 if (skip_wait > 0) { 688 next_time = gethrtime() + MSEC2NSEC(MMP_MIN_INTERVAL) / 689 leaves; 690 skip_wait--; 691 } 692 693 CALLB_CPR_SAFE_BEGIN(&cpr); 694 (void) cv_timedwait_idle_hires(&mmp->mmp_thread_cv, 695 &mmp->mmp_thread_lock, next_time, USEC2NSEC(100), 696 CALLOUT_FLAG_ABSOLUTE); 697 CALLB_CPR_SAFE_END(&cpr, &mmp->mmp_thread_lock); 698 } 699 700 /* Outstanding writes are allowed to complete. */ 701 zio_wait(mmp->mmp_zio_root); 702 703 mmp->mmp_zio_root = NULL; 704 mmp_thread_exit(mmp, &mmp->mmp_thread, &cpr); 705 706 thread_exit(); 707 } 708 709 /* 710 * Signal the MMP thread to wake it, when it is sleeping on 711 * its cv. Used when some module parameter has changed and 712 * we want the thread to know about it. 713 * Only signal if the pool is active and mmp thread is 714 * running, otherwise there is no thread to wake. 715 */ 716 static void 717 mmp_signal_thread(spa_t *spa) 718 { 719 mmp_thread_t *mmp = &spa->spa_mmp; 720 721 mutex_enter(&mmp->mmp_thread_lock); 722 if (mmp->mmp_thread) 723 cv_broadcast(&mmp->mmp_thread_cv); 724 mutex_exit(&mmp->mmp_thread_lock); 725 } 726 727 void 728 mmp_signal_all_threads(void) 729 { 730 spa_t *spa = NULL; 731 732 mutex_enter(&spa_namespace_lock); 733 while ((spa = spa_next(spa))) { 734 if (spa->spa_state == POOL_STATE_ACTIVE) 735 mmp_signal_thread(spa); 736 } 737 mutex_exit(&spa_namespace_lock); 738 } 739 740 ZFS_MODULE_PARAM_CALL(zfs_multihost, zfs_multihost_, interval, 741 param_set_multihost_interval, spl_param_get_u64, ZMOD_RW, 742 "Milliseconds between mmp writes to each leaf"); 743 744 ZFS_MODULE_PARAM(zfs_multihost, zfs_multihost_, fail_intervals, UINT, ZMOD_RW, 745 "Max allowed period without a successful mmp write"); 746 747 ZFS_MODULE_PARAM(zfs_multihost, zfs_multihost_, import_intervals, UINT, ZMOD_RW, 748 "Number of zfs_multihost_interval periods to wait for activity"); 749