1 // SPDX-License-Identifier: CDDL-1.0 2 /* 3 * This file and its contents are supplied under the terms of the 4 * Common Development and Distribution License ("CDDL"), version 1.0. 5 * You may only use this file in accordance with the terms of version 6 * 1.0 of the CDDL. 7 * 8 * A full copy of the text of the CDDL should have accompanied this 9 * source. A copy of the CDDL is also available via the Internet at 10 * https://opensource.org/license/CDDL-1.0. 11 */ 12 13 /* 14 * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved. 15 * Copyright (c) 2011, 2021 by Delphix. All rights reserved. 16 * Copyright 2017 Nexenta Systems, Inc. 17 * Copyright (c) 2014 Integros [integros.com] 18 * Copyright 2016 Toomas Soome <tsoome@me.com> 19 * Copyright 2017 Joyent, Inc. 20 * Copyright (c) 2017, Intel Corporation. 21 * Copyright (c) 2019, Datto Inc. All rights reserved. 22 * Copyright (c) 2021, 2025, Klara, Inc. 23 * Copyright (c) 2021, 2023 Hewlett Packard Enterprise Development LP. 24 * Copyright (c) 2026, Seagate Technology, LLC. 25 * Copyright (c) 2026, TrueNAS. 26 */ 27 28 #include <sys/zfs_context.h> 29 #include <sys/fm/fs/zfs.h> 30 #include <sys/spa.h> 31 #include <sys/spa_impl.h> 32 #include <sys/bpobj.h> 33 #include <sys/dmu.h> 34 #include <sys/dmu_tx.h> 35 #include <sys/dsl_dir.h> 36 #include <sys/vdev_impl.h> 37 #include <sys/vdev_rebuild.h> 38 #include <sys/vdev_draid.h> 39 #include <sys/uberblock_impl.h> 40 #include <sys/metaslab.h> 41 #include <sys/metaslab_impl.h> 42 #include <sys/space_map.h> 43 #include <sys/space_reftree.h> 44 #include <sys/zio.h> 45 #include <sys/zap.h> 46 #include <sys/fs/zfs.h> 47 #include <sys/arc.h> 48 #include <sys/zil.h> 49 #include <sys/dsl_scan.h> 50 #include <sys/vdev_raidz.h> 51 #include <sys/abd.h> 52 #include <sys/vdev_initialize.h> 53 #include <sys/vdev_trim.h> 54 #include <sys/vdev_raidz.h> 55 #include <sys/zvol.h> 56 #include <sys/zfs_ratelimit.h> 57 #include "zfs_prop.h" 58 59 /* 60 * One metaslab from each (normal-class) vdev is used by the ZIL. These are 61 * called "embedded slog metaslabs", are referenced by vdev_log_mg, and are 62 * part of the spa_embedded_log_class. The metaslab with the most free space 63 * in each vdev is selected for this purpose when the pool is opened (or a 64 * vdev is added). See vdev_metaslab_init(). 65 * 66 * Log blocks can be allocated from the following locations. Each one is tried 67 * in order until the allocation succeeds: 68 * 1. dedicated log vdevs, aka "slog" (spa_log_class) 69 * 2. embedded slog metaslabs (spa_embedded_log_class) 70 * 3. other metaslabs in normal vdevs (spa_normal_class) 71 * 72 * zfs_embedded_slog_min_ms disables the embedded slog if there are fewer 73 * than this number of metaslabs in the vdev. This ensures that we don't set 74 * aside an unreasonable amount of space for the ZIL. If set to less than 75 * 1 << (spa_slop_shift + 1), on small pools the usable space may be reduced 76 * (by more than 1<<spa_slop_shift) due to the embedded slog metaslab. 77 */ 78 static uint_t zfs_embedded_slog_min_ms = 64; 79 80 /* default target for number of metaslabs per top-level vdev */ 81 static uint_t zfs_vdev_default_ms_count = 200; 82 83 /* minimum number of metaslabs per top-level vdev */ 84 static uint_t zfs_vdev_min_ms_count = 16; 85 86 /* practical upper limit of total metaslabs per top-level vdev */ 87 static uint_t zfs_vdev_ms_count_limit = 1ULL << 17; 88 89 /* lower limit for metaslab size (512M) */ 90 static uint_t zfs_vdev_default_ms_shift = 29; 91 92 /* upper limit for metaslab size (16G) */ 93 static uint_t zfs_vdev_max_ms_shift = 34; 94 95 int vdev_validate_skip = B_FALSE; 96 97 /* 98 * Since the DTL space map of a vdev is not expected to have a lot of 99 * entries, we default its block size to 4K. 100 */ 101 int zfs_vdev_dtl_sm_blksz = (1 << 12); 102 103 /* 104 * Rate limit slow IO (delay) events to this many per second. 105 */ 106 static unsigned int zfs_slow_io_events_per_second = 20; 107 108 /* 109 * Rate limit deadman "hung IO" events to this many per second. 110 */ 111 static unsigned int zfs_deadman_events_per_second = 1; 112 113 /* 114 * Rate limit direct write IO verify failures to this many per scond. 115 */ 116 static unsigned int zfs_dio_write_verify_events_per_second = 20; 117 118 /* 119 * Rate limit checksum events after this many checksum errors per second. 120 */ 121 static unsigned int zfs_checksum_events_per_second = 20; 122 123 /* 124 * Ignore errors during scrub/resilver. Allows to work around resilver 125 * upon import when there are pool errors. 126 */ 127 static int zfs_scan_ignore_errors = 0; 128 129 /* 130 * vdev-wide space maps that have lots of entries written to them at 131 * the end of each transaction can benefit from a higher I/O bandwidth 132 * (e.g. vdev_obsolete_sm), thus we default their block size to 128K. 133 */ 134 int zfs_vdev_standard_sm_blksz = (1 << 17); 135 136 /* 137 * Tunable parameter for debugging or performance analysis. Setting this 138 * will cause pool corruption on power loss if a volatile out-of-order 139 * write cache is enabled. 140 */ 141 int zfs_nocacheflush = 0; 142 143 /* 144 * Maximum and minimum ashift values that can be automatically set based on 145 * vdev's physical ashift (disk's physical sector size). While ASHIFT_MAX 146 * is higher than the maximum value, it is intentionally limited here to not 147 * excessively impact pool space efficiency. Higher ashift values may still 148 * be forced by vdev logical ashift or by user via ashift property, but won't 149 * be set automatically as a performance optimization. 150 */ 151 uint_t zfs_vdev_max_auto_ashift = 14; 152 uint_t zfs_vdev_min_auto_ashift = ASHIFT_MIN; 153 154 /* 155 * VDEV checksum verification for Direct I/O writes. This is neccessary for 156 * Linux, because anonymous pages can not be placed under write protection 157 * during Direct I/O writes. 158 */ 159 #if !defined(__FreeBSD__) 160 uint_t zfs_vdev_direct_write_verify = 1; 161 #else 162 uint_t zfs_vdev_direct_write_verify = 0; 163 #endif 164 165 void 166 vdev_dbgmsg(vdev_t *vd, const char *fmt, ...) 167 { 168 va_list adx; 169 char buf[256]; 170 171 va_start(adx, fmt); 172 (void) vsnprintf(buf, sizeof (buf), fmt, adx); 173 va_end(adx); 174 175 if (vd->vdev_path != NULL) { 176 zfs_dbgmsg("%s vdev '%s': %s", vd->vdev_ops->vdev_op_type, 177 vd->vdev_path, buf); 178 } else { 179 zfs_dbgmsg("%s-%llu vdev (guid %llu): %s", 180 vd->vdev_ops->vdev_op_type, 181 (u_longlong_t)vd->vdev_id, 182 (u_longlong_t)vd->vdev_guid, buf); 183 } 184 } 185 186 void 187 vdev_dbgmsg_print_tree(vdev_t *vd, int indent) 188 { 189 char state[20]; 190 191 if (vd->vdev_ishole || vd->vdev_ops == &vdev_missing_ops) { 192 zfs_dbgmsg("%*svdev %llu: %s", indent, "", 193 (u_longlong_t)vd->vdev_id, 194 vd->vdev_ops->vdev_op_type); 195 return; 196 } 197 198 switch (vd->vdev_state) { 199 case VDEV_STATE_UNKNOWN: 200 (void) snprintf(state, sizeof (state), "unknown"); 201 break; 202 case VDEV_STATE_CLOSED: 203 (void) snprintf(state, sizeof (state), "closed"); 204 break; 205 case VDEV_STATE_OFFLINE: 206 (void) snprintf(state, sizeof (state), "offline"); 207 break; 208 case VDEV_STATE_REMOVED: 209 (void) snprintf(state, sizeof (state), "removed"); 210 break; 211 case VDEV_STATE_CANT_OPEN: 212 (void) snprintf(state, sizeof (state), "can't open"); 213 break; 214 case VDEV_STATE_FAULTED: 215 (void) snprintf(state, sizeof (state), "faulted"); 216 break; 217 case VDEV_STATE_DEGRADED: 218 (void) snprintf(state, sizeof (state), "degraded"); 219 break; 220 case VDEV_STATE_HEALTHY: 221 (void) snprintf(state, sizeof (state), "healthy"); 222 break; 223 default: 224 (void) snprintf(state, sizeof (state), "<state %u>", 225 (uint_t)vd->vdev_state); 226 } 227 228 zfs_dbgmsg("%*svdev %u: %s%s, guid: %llu, path: %s, %s", indent, 229 "", (int)vd->vdev_id, vd->vdev_ops->vdev_op_type, 230 vd->vdev_islog ? " (log)" : "", 231 (u_longlong_t)vd->vdev_guid, 232 vd->vdev_path ? vd->vdev_path : "N/A", state); 233 234 for (uint64_t i = 0; i < vd->vdev_children; i++) 235 vdev_dbgmsg_print_tree(vd->vdev_child[i], indent + 2); 236 } 237 238 char * 239 vdev_rt_name(vdev_t *vd, const char *name) 240 { 241 return (kmem_asprintf("{spa=%s vdev_guid=%llu %s}", 242 spa_name(vd->vdev_spa), 243 (u_longlong_t)vd->vdev_guid, 244 name)); 245 } 246 247 static char * 248 vdev_rt_name_dtl(vdev_t *vd, const char *name, vdev_dtl_type_t dtl_type) 249 { 250 return (kmem_asprintf("{spa=%s vdev_guid=%llu %s[%d]}", 251 spa_name(vd->vdev_spa), 252 (u_longlong_t)vd->vdev_guid, 253 name, 254 dtl_type)); 255 } 256 257 /* 258 * Virtual device management. 259 */ 260 261 static vdev_ops_t *const vdev_ops_table[] = { 262 &vdev_root_ops, 263 &vdev_raidz_ops, 264 &vdev_draid_ops, 265 &vdev_draid_spare_ops, 266 &vdev_mirror_ops, 267 &vdev_replacing_ops, 268 &vdev_spare_ops, 269 &vdev_disk_ops, 270 &vdev_file_ops, 271 &vdev_missing_ops, 272 &vdev_hole_ops, 273 &vdev_indirect_ops, 274 NULL 275 }; 276 277 /* 278 * Given a vdev type, return the appropriate ops vector. 279 */ 280 static vdev_ops_t * 281 vdev_getops(const char *type) 282 { 283 vdev_ops_t *ops, *const *opspp; 284 285 for (opspp = vdev_ops_table; (ops = *opspp) != NULL; opspp++) 286 if (strcmp(ops->vdev_op_type, type) == 0) 287 break; 288 289 return (ops); 290 } 291 292 /* 293 * Given a vdev and a metaslab class, find which metaslab group we're 294 * interested in. All vdevs may belong to two different metaslab classes. 295 * Dedicated slog devices use only the primary metaslab group, rather than a 296 * separate log group. For embedded slogs, vdev_log_mg will be non-NULL and 297 * will point to a metaslab group of either embedded_log_class (for normal 298 * vdevs) or special_embedded_log_class (for special vdevs). 299 */ 300 metaslab_group_t * 301 vdev_get_mg(vdev_t *vd, metaslab_class_t *mc) 302 { 303 if ((mc == spa_embedded_log_class(vd->vdev_spa) || 304 mc == spa_special_embedded_log_class(vd->vdev_spa)) && 305 vd->vdev_log_mg != NULL) 306 return (vd->vdev_log_mg); 307 else 308 return (vd->vdev_mg); 309 } 310 311 void 312 vdev_default_xlate(vdev_t *vd, const zfs_range_seg64_t *logical_rs, 313 zfs_range_seg64_t *physical_rs, zfs_range_seg64_t *remain_rs) 314 { 315 (void) vd, (void) remain_rs; 316 317 physical_rs->rs_start = logical_rs->rs_start; 318 physical_rs->rs_end = logical_rs->rs_end; 319 } 320 321 /* 322 * Derive the enumerated allocation bias from string input. 323 * String origin is either the per-vdev zap or zpool(8). 324 */ 325 static vdev_alloc_bias_t 326 vdev_derive_alloc_bias(const char *bias) 327 { 328 vdev_alloc_bias_t alloc_bias = VDEV_BIAS_NONE; 329 330 if (strcmp(bias, VDEV_ALLOC_BIAS_LOG) == 0) 331 alloc_bias = VDEV_BIAS_LOG; 332 else if (strcmp(bias, VDEV_ALLOC_BIAS_SPECIAL) == 0) 333 alloc_bias = VDEV_BIAS_SPECIAL; 334 else if (strcmp(bias, VDEV_ALLOC_BIAS_DEDUP) == 0) 335 alloc_bias = VDEV_BIAS_DEDUP; 336 337 return (alloc_bias); 338 } 339 340 uint64_t 341 vdev_default_psize(vdev_t *vd, uint64_t asize, uint64_t txg) 342 { 343 ASSERT0(asize % (1ULL << vd->vdev_top->vdev_ashift)); 344 uint64_t csize, psize = asize; 345 for (int c = 0; c < vd->vdev_children; c++) { 346 csize = vdev_asize_to_psize_txg(vd->vdev_child[c], asize, txg); 347 psize = MIN(psize, csize); 348 } 349 350 return (psize); 351 } 352 353 /* 354 * Default asize function: return the MAX of psize with the asize of 355 * all children. This is what's used by anything other than RAID-Z. 356 */ 357 uint64_t 358 vdev_default_asize(vdev_t *vd, uint64_t psize, uint64_t txg) 359 { 360 uint64_t asize = P2ROUNDUP(psize, 1ULL << vd->vdev_top->vdev_ashift); 361 uint64_t csize; 362 363 for (int c = 0; c < vd->vdev_children; c++) { 364 csize = vdev_psize_to_asize_txg(vd->vdev_child[c], psize, txg); 365 asize = MAX(asize, csize); 366 } 367 368 return (asize); 369 } 370 371 uint64_t 372 vdev_default_min_asize(vdev_t *vd) 373 { 374 return (vd->vdev_min_asize); 375 } 376 377 /* 378 * Get the minimum allocatable size. We define the allocatable size as 379 * the vdev's asize rounded to the nearest metaslab. This allows us to 380 * replace or attach devices which don't have the same physical size but 381 * can still satisfy the same number of allocations. 382 */ 383 uint64_t 384 vdev_get_min_asize(vdev_t *vd) 385 { 386 vdev_t *pvd = vd->vdev_parent; 387 388 /* 389 * If our parent is NULL (inactive spare or cache) or is the root, 390 * just return our own asize. 391 */ 392 if (pvd == NULL) 393 return (vd->vdev_asize); 394 395 /* 396 * The top-level vdev just returns the allocatable size rounded 397 * to the nearest metaslab. 398 */ 399 if (vd == vd->vdev_top) 400 return (P2ALIGN_TYPED(vd->vdev_asize, 1ULL << vd->vdev_ms_shift, 401 uint64_t)); 402 403 return (pvd->vdev_ops->vdev_op_min_asize(pvd)); 404 } 405 406 void 407 vdev_set_min_asize(vdev_t *vd) 408 { 409 vd->vdev_min_asize = vdev_get_min_asize(vd); 410 411 for (int c = 0; c < vd->vdev_children; c++) 412 vdev_set_min_asize(vd->vdev_child[c]); 413 } 414 415 /* 416 * Get the minimal allocation size for the top-level vdev. 417 */ 418 uint64_t 419 vdev_get_min_alloc(vdev_t *vd) 420 { 421 uint64_t min_alloc = 1ULL << vd->vdev_ashift; 422 423 if (vd->vdev_ops->vdev_op_min_alloc != NULL) 424 min_alloc = vd->vdev_ops->vdev_op_min_alloc(vd); 425 426 return (min_alloc); 427 } 428 429 /* 430 * Get the parity level for a top-level vdev. 431 */ 432 uint64_t 433 vdev_get_nparity(vdev_t *vd) 434 { 435 uint64_t nparity = 0; 436 437 if (vd->vdev_ops->vdev_op_nparity != NULL) 438 nparity = vd->vdev_ops->vdev_op_nparity(vd); 439 440 return (nparity); 441 } 442 443 static int 444 vdev_prop_get_objid(vdev_t *vd, uint64_t *objid) 445 { 446 447 if (vd->vdev_root_zap != 0) { 448 *objid = vd->vdev_root_zap; 449 } else if (vd->vdev_top_zap != 0) { 450 *objid = vd->vdev_top_zap; 451 } else if (vd->vdev_leaf_zap != 0) { 452 *objid = vd->vdev_leaf_zap; 453 } else { 454 *objid = 0; 455 return (EINVAL); 456 } 457 458 return (0); 459 } 460 461 static int 462 vdev_prop_get_int(vdev_t *vd, vdev_prop_t prop, uint64_t *value) 463 { 464 spa_t *spa = vd->vdev_spa; 465 objset_t *mos = spa->spa_meta_objset; 466 uint64_t objid; 467 int err; 468 469 if (vdev_prop_get_objid(vd, &objid) != 0) { 470 /* No ZAP: property was never set, return the default. */ 471 *value = vdev_prop_default_numeric(prop); 472 return (ENOENT); 473 } 474 475 err = zap_lookup(mos, objid, vdev_prop_to_name(prop), 476 sizeof (uint64_t), 1, value); 477 if (err == ENOENT) 478 *value = vdev_prop_default_numeric(prop); 479 480 return (err); 481 } 482 483 static int 484 vdev_prop_get_bool(vdev_t *vd, vdev_prop_t prop, boolean_t *bvalue) 485 { 486 int err; 487 uint64_t ivalue; 488 489 err = vdev_prop_get_int(vd, prop, &ivalue); 490 *bvalue = ivalue != 0; 491 492 return (err); 493 } 494 495 /* 496 * Get the number of data disks for a top-level vdev. 497 */ 498 uint64_t 499 vdev_get_ndisks(vdev_t *vd) 500 { 501 uint64_t ndisks = 1; 502 503 if (vd->vdev_ops->vdev_op_ndisks != NULL) 504 ndisks = vd->vdev_ops->vdev_op_ndisks(vd); 505 506 return (ndisks); 507 } 508 509 vdev_t * 510 vdev_lookup_top(spa_t *spa, uint64_t vdev) 511 { 512 vdev_t *rvd = spa->spa_root_vdev; 513 514 ASSERT(spa_config_held(spa, SCL_ALL, RW_READER) != 0); 515 516 if (vdev < rvd->vdev_children) { 517 ASSERT(rvd->vdev_child[vdev] != NULL); 518 return (rvd->vdev_child[vdev]); 519 } 520 521 return (NULL); 522 } 523 524 vdev_t * 525 vdev_lookup_by_guid(vdev_t *vd, uint64_t guid) 526 { 527 vdev_t *mvd; 528 529 if (vd->vdev_guid == guid) 530 return (vd); 531 532 for (int c = 0; c < vd->vdev_children; c++) 533 if ((mvd = vdev_lookup_by_guid(vd->vdev_child[c], guid)) != 534 NULL) 535 return (mvd); 536 537 return (NULL); 538 } 539 540 static int 541 vdev_count_leaves_impl(vdev_t *vd) 542 { 543 int n = 0; 544 545 if (vd->vdev_ops->vdev_op_leaf) 546 return (1); 547 548 for (int c = 0; c < vd->vdev_children; c++) 549 n += vdev_count_leaves_impl(vd->vdev_child[c]); 550 551 return (n); 552 } 553 554 int 555 vdev_count_leaves(spa_t *spa) 556 { 557 int rc; 558 boolean_t held; 559 560 held = (spa_config_held(spa, SCL_VDEV, RW_WRITER) == SCL_VDEV); 561 562 if (!held) 563 spa_config_enter(spa, SCL_VDEV, FTAG, RW_READER); 564 rc = vdev_count_leaves_impl(spa->spa_root_vdev); 565 if (!held) 566 spa_config_exit(spa, SCL_VDEV, FTAG); 567 568 return (rc); 569 } 570 571 void 572 vdev_add_child(vdev_t *pvd, vdev_t *cvd) 573 { 574 size_t oldsize, newsize; 575 uint64_t id = cvd->vdev_id; 576 vdev_t **newchild; 577 578 ASSERT(spa_config_held(cvd->vdev_spa, SCL_ALL, RW_WRITER) == SCL_ALL); 579 ASSERT0P(cvd->vdev_parent); 580 581 cvd->vdev_parent = pvd; 582 583 if (pvd == NULL) 584 return; 585 586 ASSERT(id >= pvd->vdev_children || pvd->vdev_child[id] == NULL); 587 588 oldsize = pvd->vdev_children * sizeof (vdev_t *); 589 pvd->vdev_children = MAX(pvd->vdev_children, id + 1); 590 newsize = pvd->vdev_children * sizeof (vdev_t *); 591 592 newchild = kmem_alloc(newsize, KM_SLEEP); 593 if (pvd->vdev_child != NULL) { 594 memcpy(newchild, pvd->vdev_child, oldsize); 595 kmem_free(pvd->vdev_child, oldsize); 596 } 597 598 pvd->vdev_child = newchild; 599 pvd->vdev_child[id] = cvd; 600 pvd->vdev_nonrot &= cvd->vdev_nonrot; 601 602 cvd->vdev_top = (pvd->vdev_top ? pvd->vdev_top: cvd); 603 ASSERT0P(cvd->vdev_top->vdev_parent->vdev_parent); 604 605 /* 606 * Walk up all ancestors to update guid sum. 607 */ 608 for (; pvd != NULL; pvd = pvd->vdev_parent) 609 pvd->vdev_guid_sum += cvd->vdev_guid_sum; 610 611 if (cvd->vdev_ops->vdev_op_leaf) { 612 list_insert_head(&cvd->vdev_spa->spa_leaf_list, cvd); 613 cvd->vdev_spa->spa_leaf_list_gen++; 614 } 615 } 616 617 void 618 vdev_remove_child(vdev_t *pvd, vdev_t *cvd) 619 { 620 int c; 621 uint_t id = cvd->vdev_id; 622 623 ASSERT(cvd->vdev_parent == pvd); 624 625 if (pvd == NULL) 626 return; 627 628 ASSERT(id < pvd->vdev_children); 629 ASSERT(pvd->vdev_child[id] == cvd); 630 631 pvd->vdev_child[id] = NULL; 632 cvd->vdev_parent = NULL; 633 634 for (c = 0; c < pvd->vdev_children; c++) 635 if (pvd->vdev_child[c]) 636 break; 637 638 if (c == pvd->vdev_children) { 639 kmem_free(pvd->vdev_child, c * sizeof (vdev_t *)); 640 pvd->vdev_child = NULL; 641 pvd->vdev_children = 0; 642 } 643 644 if (cvd->vdev_ops->vdev_op_leaf) { 645 spa_t *spa = cvd->vdev_spa; 646 list_remove(&spa->spa_leaf_list, cvd); 647 spa->spa_leaf_list_gen++; 648 } 649 650 /* 651 * Walk up all ancestors to update guid sum. 652 */ 653 for (; pvd != NULL; pvd = pvd->vdev_parent) 654 pvd->vdev_guid_sum -= cvd->vdev_guid_sum; 655 } 656 657 /* 658 * Remove any holes in the child array. 659 */ 660 void 661 vdev_compact_children(vdev_t *pvd) 662 { 663 vdev_t **newchild, *cvd; 664 int oldc = pvd->vdev_children; 665 int newc; 666 667 ASSERT(spa_config_held(pvd->vdev_spa, SCL_ALL, RW_WRITER) == SCL_ALL); 668 669 if (oldc == 0) 670 return; 671 672 for (int c = newc = 0; c < oldc; c++) 673 if (pvd->vdev_child[c]) 674 newc++; 675 676 if (newc > 0) { 677 newchild = kmem_zalloc(newc * sizeof (vdev_t *), KM_SLEEP); 678 679 for (int c = newc = 0; c < oldc; c++) { 680 if ((cvd = pvd->vdev_child[c]) != NULL) { 681 newchild[newc] = cvd; 682 cvd->vdev_id = newc++; 683 } 684 } 685 } else { 686 newchild = NULL; 687 } 688 689 kmem_free(pvd->vdev_child, oldc * sizeof (vdev_t *)); 690 pvd->vdev_child = newchild; 691 pvd->vdev_children = newc; 692 } 693 694 /* 695 * Allocate and minimally initialize a vdev_t. 696 */ 697 vdev_t * 698 vdev_alloc_common(spa_t *spa, uint_t id, uint64_t guid, vdev_ops_t *ops) 699 { 700 vdev_t *vd; 701 vdev_indirect_config_t *vic; 702 703 vd = kmem_zalloc(sizeof (vdev_t), KM_SLEEP); 704 vic = &vd->vdev_indirect_config; 705 706 if (spa->spa_root_vdev == NULL) { 707 ASSERT(ops == &vdev_root_ops); 708 spa->spa_root_vdev = vd; 709 spa->spa_load_guid = spa_generate_load_guid(); 710 } 711 712 if (guid == 0 && ops != &vdev_hole_ops) { 713 if (spa->spa_root_vdev == vd) { 714 /* 715 * The root vdev's guid will also be the pool guid, 716 * which must be unique among all pools. 717 */ 718 guid = spa_generate_guid(NULL); 719 } else { 720 /* 721 * Any other vdev's guid must be unique within the pool. 722 */ 723 guid = spa_generate_guid(spa); 724 } 725 ASSERT(!spa_guid_exists(spa_guid(spa), guid)); 726 } 727 728 vd->vdev_spa = spa; 729 vd->vdev_id = id; 730 vd->vdev_guid = guid; 731 vd->vdev_guid_sum = guid; 732 vd->vdev_ops = ops; 733 vd->vdev_state = VDEV_STATE_CLOSED; 734 vd->vdev_ishole = (ops == &vdev_hole_ops); 735 vic->vic_prev_indirect_vdev = UINT64_MAX; 736 737 rw_init(&vd->vdev_indirect_rwlock, NULL, RW_DEFAULT, NULL); 738 mutex_init(&vd->vdev_obsolete_lock, NULL, MUTEX_DEFAULT, NULL); 739 vd->vdev_obsolete_segments = zfs_range_tree_create_flags( 740 NULL, ZFS_RANGE_SEG64, NULL, 0, 0, 741 ZFS_RT_F_DYN_NAME, vdev_rt_name(vd, "vdev_obsolete_segments")); 742 743 /* 744 * Initialize rate limit structs for events. We rate limit ZIO delay 745 * and checksum events so that we don't overwhelm ZED with thousands 746 * of events when a disk is acting up. 747 */ 748 zfs_ratelimit_init(&vd->vdev_delay_rl, &zfs_slow_io_events_per_second, 749 1); 750 zfs_ratelimit_init(&vd->vdev_deadman_rl, &zfs_deadman_events_per_second, 751 1); 752 zfs_ratelimit_init(&vd->vdev_dio_verify_rl, 753 &zfs_dio_write_verify_events_per_second, 1); 754 zfs_ratelimit_init(&vd->vdev_checksum_rl, 755 &zfs_checksum_events_per_second, 1); 756 757 /* 758 * Default Thresholds for tuning ZED 759 */ 760 vd->vdev_checksum_n = vdev_prop_default_numeric(VDEV_PROP_CHECKSUM_N); 761 vd->vdev_checksum_t = vdev_prop_default_numeric(VDEV_PROP_CHECKSUM_T); 762 763 vd->vdev_io_n = vdev_prop_default_numeric(VDEV_PROP_IO_N); 764 vd->vdev_io_t = vdev_prop_default_numeric(VDEV_PROP_IO_T); 765 766 vd->vdev_slow_io_events = vdev_prop_default_numeric( 767 VDEV_PROP_SLOW_IO_EVENTS); 768 vd->vdev_slow_io_n = vdev_prop_default_numeric(VDEV_PROP_SLOW_IO_N); 769 vd->vdev_slow_io_t = vdev_prop_default_numeric(VDEV_PROP_SLOW_IO_T); 770 771 vd->vdev_scheduler = vdev_prop_default_numeric(VDEV_PROP_SCHEDULER); 772 773 list_link_init(&vd->vdev_config_dirty_node); 774 list_link_init(&vd->vdev_state_dirty_node); 775 list_link_init(&vd->vdev_initialize_node); 776 list_link_init(&vd->vdev_leaf_node); 777 list_link_init(&vd->vdev_trim_node); 778 779 mutex_init(&vd->vdev_dtl_lock, NULL, MUTEX_NOLOCKDEP, NULL); 780 mutex_init(&vd->vdev_stat_lock, NULL, MUTEX_DEFAULT, NULL); 781 mutex_init(&vd->vdev_probe_lock, NULL, MUTEX_DEFAULT, NULL); 782 mutex_init(&vd->vdev_scan_io_queue_lock, NULL, MUTEX_DEFAULT, NULL); 783 784 mutex_init(&vd->vdev_initialize_lock, NULL, MUTEX_DEFAULT, NULL); 785 mutex_init(&vd->vdev_initialize_io_lock, NULL, MUTEX_DEFAULT, NULL); 786 cv_init(&vd->vdev_initialize_cv, NULL, CV_DEFAULT, NULL); 787 cv_init(&vd->vdev_initialize_io_cv, NULL, CV_DEFAULT, NULL); 788 789 mutex_init(&vd->vdev_trim_lock, NULL, MUTEX_DEFAULT, NULL); 790 mutex_init(&vd->vdev_autotrim_lock, NULL, MUTEX_DEFAULT, NULL); 791 mutex_init(&vd->vdev_trim_io_lock, NULL, MUTEX_DEFAULT, NULL); 792 cv_init(&vd->vdev_trim_cv, NULL, CV_DEFAULT, NULL); 793 cv_init(&vd->vdev_autotrim_cv, NULL, CV_DEFAULT, NULL); 794 cv_init(&vd->vdev_autotrim_kick_cv, NULL, CV_DEFAULT, NULL); 795 cv_init(&vd->vdev_trim_io_cv, NULL, CV_DEFAULT, NULL); 796 797 mutex_init(&vd->vdev_rebuild_lock, NULL, MUTEX_DEFAULT, NULL); 798 cv_init(&vd->vdev_rebuild_cv, NULL, CV_DEFAULT, NULL); 799 800 for (int t = 0; t < DTL_TYPES; t++) { 801 vd->vdev_dtl[t] = zfs_range_tree_create_flags( 802 NULL, ZFS_RANGE_SEG64, NULL, 0, 0, 803 ZFS_RT_F_DYN_NAME, vdev_rt_name_dtl(vd, "vdev_dtl", t)); 804 } 805 806 txg_list_create(&vd->vdev_ms_list, spa, 807 offsetof(struct metaslab, ms_txg_node)); 808 txg_list_create(&vd->vdev_dtl_list, spa, 809 offsetof(struct vdev, vdev_dtl_node)); 810 vd->vdev_stat.vs_timestamp = gethrtime(); 811 vdev_queue_init(vd); 812 813 return (vd); 814 } 815 816 /* 817 * Allocate a new vdev. The 'alloctype' is used to control whether we are 818 * creating a new vdev or loading an existing one - the behavior is slightly 819 * different for each case. 820 */ 821 int 822 vdev_alloc(spa_t *spa, vdev_t **vdp, nvlist_t *nv, vdev_t *parent, uint_t id, 823 int alloctype) 824 { 825 vdev_ops_t *ops; 826 const char *type; 827 uint64_t guid = 0, islog; 828 vdev_t *vd; 829 vdev_indirect_config_t *vic; 830 const char *tmp = NULL; 831 int rc; 832 vdev_alloc_bias_t alloc_bias = VDEV_BIAS_NONE; 833 boolean_t top_level = (parent && !parent->vdev_parent); 834 835 ASSERT(spa_config_held(spa, SCL_ALL, RW_WRITER) == SCL_ALL); 836 837 if (nvlist_lookup_string(nv, ZPOOL_CONFIG_TYPE, &type) != 0) 838 return (SET_ERROR(EINVAL)); 839 840 if ((ops = vdev_getops(type)) == NULL) 841 return (SET_ERROR(EINVAL)); 842 843 /* 844 * If this is a load, get the vdev guid from the nvlist. 845 * Otherwise, vdev_alloc_common() will generate one for us. 846 */ 847 if (alloctype == VDEV_ALLOC_LOAD) { 848 uint64_t label_id; 849 850 if (nvlist_lookup_uint64(nv, ZPOOL_CONFIG_ID, &label_id) || 851 label_id != id) 852 return (SET_ERROR(EINVAL)); 853 854 if (nvlist_lookup_uint64(nv, ZPOOL_CONFIG_GUID, &guid) != 0) 855 return (SET_ERROR(EINVAL)); 856 } else if (alloctype == VDEV_ALLOC_SPARE) { 857 if (nvlist_lookup_uint64(nv, ZPOOL_CONFIG_GUID, &guid) != 0) 858 return (SET_ERROR(EINVAL)); 859 } else if (alloctype == VDEV_ALLOC_L2CACHE) { 860 if (nvlist_lookup_uint64(nv, ZPOOL_CONFIG_GUID, &guid) != 0) 861 return (SET_ERROR(EINVAL)); 862 } else if (alloctype == VDEV_ALLOC_ROOTPOOL) { 863 if (nvlist_lookup_uint64(nv, ZPOOL_CONFIG_GUID, &guid) != 0) 864 return (SET_ERROR(EINVAL)); 865 } 866 867 /* 868 * The first allocated vdev must be of type 'root'. 869 */ 870 if (ops != &vdev_root_ops && spa->spa_root_vdev == NULL) 871 return (SET_ERROR(EINVAL)); 872 873 /* 874 * Determine whether we're a log vdev. 875 */ 876 islog = 0; 877 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_IS_LOG, &islog); 878 if (islog && spa_version(spa) < SPA_VERSION_SLOGS) 879 return (SET_ERROR(ENOTSUP)); 880 881 if (ops == &vdev_hole_ops && spa_version(spa) < SPA_VERSION_HOLES) 882 return (SET_ERROR(ENOTSUP)); 883 884 if (top_level && alloctype == VDEV_ALLOC_ADD) { 885 const char *bias; 886 887 /* 888 * If creating a top-level vdev, check for allocation 889 * classes input. 890 */ 891 if (nvlist_lookup_string(nv, ZPOOL_CONFIG_ALLOCATION_BIAS, 892 &bias) == 0) { 893 alloc_bias = vdev_derive_alloc_bias(bias); 894 895 /* spa_vdev_add() expects feature to be enabled */ 896 if (spa->spa_load_state != SPA_LOAD_CREATE && 897 !spa_feature_is_enabled(spa, 898 SPA_FEATURE_ALLOCATION_CLASSES)) { 899 return (SET_ERROR(ENOTSUP)); 900 } 901 } 902 903 /* spa_vdev_add() expects feature to be enabled */ 904 if (ops == &vdev_draid_ops && 905 spa->spa_load_state != SPA_LOAD_CREATE && 906 !spa_feature_is_enabled(spa, SPA_FEATURE_DRAID)) { 907 return (SET_ERROR(ENOTSUP)); 908 } 909 } 910 911 /* 912 * Initialize the vdev specific data. This is done before calling 913 * vdev_alloc_common() since it may fail and this simplifies the 914 * error reporting and cleanup code paths. 915 */ 916 void *tsd = NULL; 917 if (ops->vdev_op_init != NULL) { 918 rc = ops->vdev_op_init(spa, nv, &tsd); 919 if (rc != 0) { 920 return (rc); 921 } 922 } 923 924 vd = vdev_alloc_common(spa, id, guid, ops); 925 vd->vdev_tsd = tsd; 926 vd->vdev_islog = islog; 927 928 if (top_level && alloc_bias != VDEV_BIAS_NONE) 929 vd->vdev_alloc_bias = alloc_bias; 930 931 if (nvlist_lookup_string(nv, ZPOOL_CONFIG_PATH, &tmp) == 0) 932 vd->vdev_path = spa_strdup(tmp); 933 934 /* 935 * ZPOOL_CONFIG_AUX_STATE = "external" means we previously forced a 936 * fault on a vdev and want it to persist across imports (like with 937 * zpool offline -f). 938 */ 939 rc = nvlist_lookup_string(nv, ZPOOL_CONFIG_AUX_STATE, &tmp); 940 if (rc == 0 && tmp != NULL && strcmp(tmp, "external") == 0) { 941 vd->vdev_stat.vs_aux = VDEV_AUX_EXTERNAL; 942 vd->vdev_faulted = 1; 943 vd->vdev_label_aux = VDEV_AUX_EXTERNAL; 944 } 945 946 if (nvlist_lookup_string(nv, ZPOOL_CONFIG_DEVID, &tmp) == 0) 947 vd->vdev_devid = spa_strdup(tmp); 948 if (nvlist_lookup_string(nv, ZPOOL_CONFIG_PHYS_PATH, &tmp) == 0) 949 vd->vdev_physpath = spa_strdup(tmp); 950 951 if (nvlist_lookup_string(nv, ZPOOL_CONFIG_VDEV_ENC_SYSFS_PATH, 952 &tmp) == 0) 953 vd->vdev_enc_sysfs_path = spa_strdup(tmp); 954 955 if (nvlist_lookup_string(nv, ZPOOL_CONFIG_FRU, &tmp) == 0) 956 vd->vdev_fru = spa_strdup(tmp); 957 958 /* 959 * Set the whole_disk property. If it's not specified, leave the value 960 * as -1. 961 */ 962 if (nvlist_lookup_uint64(nv, ZPOOL_CONFIG_WHOLE_DISK, 963 &vd->vdev_wholedisk) != 0) 964 vd->vdev_wholedisk = -1ULL; 965 966 /* 967 * Restore the last-known rotational status for leaf vdevs. vdev_open() 968 * will overwrite this with the hardware value when the device is 969 * accessible; the persisted value acts as a fallback for failed or 970 * missing devices so that spare selection can still match on device 971 * type even when the original disk is gone. 972 */ 973 if (vd->vdev_ops->vdev_op_leaf) { 974 uint64_t rotational = 0; 975 if (nvlist_lookup_uint64(nv, ZPOOL_CONFIG_VDEV_ROTATIONAL, 976 &rotational) == 0) 977 vd->vdev_nonrot = !rotational; 978 } 979 980 vic = &vd->vdev_indirect_config; 981 982 ASSERT0(vic->vic_mapping_object); 983 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_INDIRECT_OBJECT, 984 &vic->vic_mapping_object); 985 ASSERT0(vic->vic_births_object); 986 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_INDIRECT_BIRTHS, 987 &vic->vic_births_object); 988 ASSERT3U(vic->vic_prev_indirect_vdev, ==, UINT64_MAX); 989 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_PREV_INDIRECT_VDEV, 990 &vic->vic_prev_indirect_vdev); 991 992 /* 993 * Look for the 'not present' flag. This will only be set if the device 994 * was not present at the time of import. 995 */ 996 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_NOT_PRESENT, 997 &vd->vdev_not_present); 998 999 /* 1000 * Get the alignment requirement. Ignore pool ashift for vdev 1001 * attach case. 1002 */ 1003 if (alloctype != VDEV_ALLOC_ATTACH) { 1004 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_ASHIFT, 1005 &vd->vdev_ashift); 1006 } else { 1007 vd->vdev_attaching = B_TRUE; 1008 } 1009 1010 /* 1011 * Retrieve the vdev creation time. 1012 */ 1013 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_CREATE_TXG, 1014 &vd->vdev_crtxg); 1015 1016 if (vd->vdev_ops == &vdev_root_ops && 1017 (alloctype == VDEV_ALLOC_LOAD || 1018 alloctype == VDEV_ALLOC_SPLIT || 1019 alloctype == VDEV_ALLOC_ROOTPOOL)) { 1020 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_VDEV_ROOT_ZAP, 1021 &vd->vdev_root_zap); 1022 } 1023 1024 /* 1025 * If we're a top-level vdev, try to load the allocation parameters. 1026 */ 1027 if (top_level && 1028 (alloctype == VDEV_ALLOC_LOAD || alloctype == VDEV_ALLOC_SPLIT)) { 1029 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_METASLAB_ARRAY, 1030 &vd->vdev_ms_array); 1031 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_METASLAB_SHIFT, 1032 &vd->vdev_ms_shift); 1033 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_ASIZE, 1034 &vd->vdev_asize); 1035 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_NONALLOCATING, 1036 &vd->vdev_noalloc); 1037 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_REMOVING, 1038 &vd->vdev_removing); 1039 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_VDEV_TOP_ZAP, 1040 &vd->vdev_top_zap); 1041 vd->vdev_rz_expanding = nvlist_exists(nv, 1042 ZPOOL_CONFIG_RAIDZ_EXPANDING); 1043 } else { 1044 ASSERT0(vd->vdev_top_zap); 1045 } 1046 1047 if (top_level && alloctype != VDEV_ALLOC_ATTACH) { 1048 ASSERT(alloctype == VDEV_ALLOC_LOAD || 1049 alloctype == VDEV_ALLOC_ADD || 1050 alloctype == VDEV_ALLOC_SPLIT || 1051 alloctype == VDEV_ALLOC_ROOTPOOL); 1052 /* Note: metaslab_group_create() is now deferred */ 1053 } 1054 1055 if (vd->vdev_ops->vdev_op_leaf && 1056 (alloctype == VDEV_ALLOC_LOAD || alloctype == VDEV_ALLOC_SPLIT)) { 1057 (void) nvlist_lookup_uint64(nv, 1058 ZPOOL_CONFIG_VDEV_LEAF_ZAP, &vd->vdev_leaf_zap); 1059 } else { 1060 ASSERT0(vd->vdev_leaf_zap); 1061 } 1062 1063 /* 1064 * If we're a leaf vdev, try to load the DTL object and other state. 1065 */ 1066 1067 if (vd->vdev_ops->vdev_op_leaf && 1068 (alloctype == VDEV_ALLOC_LOAD || alloctype == VDEV_ALLOC_L2CACHE || 1069 alloctype == VDEV_ALLOC_ROOTPOOL)) { 1070 if (alloctype == VDEV_ALLOC_LOAD) { 1071 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_DTL, 1072 &vd->vdev_dtl_object); 1073 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_UNSPARE, 1074 &vd->vdev_unspare); 1075 } 1076 1077 if (alloctype == VDEV_ALLOC_ROOTPOOL) { 1078 uint64_t spare = 0; 1079 1080 if (nvlist_lookup_uint64(nv, ZPOOL_CONFIG_IS_SPARE, 1081 &spare) == 0 && spare) 1082 spa_spare_add(vd); 1083 } 1084 1085 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_OFFLINE, 1086 &vd->vdev_offline); 1087 1088 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_RESILVER_TXG, 1089 &vd->vdev_resilver_txg); 1090 1091 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_REBUILD_TXG, 1092 &vd->vdev_rebuild_txg); 1093 1094 if (nvlist_exists(nv, ZPOOL_CONFIG_RESILVER_DEFER)) 1095 vdev_defer_resilver(vd); 1096 1097 /* 1098 * In general, when importing a pool we want to ignore the 1099 * persistent fault state, as the diagnosis made on another 1100 * system may not be valid in the current context. The only 1101 * exception is if we forced a vdev to a persistently faulted 1102 * state with 'zpool offline -f'. The persistent fault will 1103 * remain across imports until cleared. 1104 * 1105 * Local vdevs will remain in the faulted state. 1106 */ 1107 if (spa_load_state(spa) == SPA_LOAD_OPEN || 1108 spa_load_state(spa) == SPA_LOAD_IMPORT) { 1109 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_FAULTED, 1110 &vd->vdev_faulted); 1111 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_DEGRADED, 1112 &vd->vdev_degraded); 1113 (void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_REMOVED, 1114 &vd->vdev_removed); 1115 1116 if (vd->vdev_faulted || vd->vdev_degraded) { 1117 const char *aux; 1118 1119 vd->vdev_label_aux = 1120 VDEV_AUX_ERR_EXCEEDED; 1121 if (nvlist_lookup_string(nv, 1122 ZPOOL_CONFIG_AUX_STATE, &aux) == 0 && 1123 strcmp(aux, "external") == 0) 1124 vd->vdev_label_aux = VDEV_AUX_EXTERNAL; 1125 else 1126 vd->vdev_faulted = 0ULL; 1127 } 1128 } 1129 } 1130 1131 if (top_level && (ops == &vdev_raidz_ops || ops == &vdev_draid_ops)) 1132 vd->vdev_autosit = 1133 vdev_prop_default_numeric(VDEV_PROP_AUTOSIT); 1134 if (ops == &vdev_root_ops) 1135 vd->vdev_failfast = 1136 vdev_prop_default_numeric(VDEV_PROP_FAILFAST); 1137 else 1138 vd->vdev_failfast = ZPROP_BOOLEAN_INHERIT; 1139 1140 /* 1141 * Add ourselves to the parent's list of children. 1142 */ 1143 vdev_add_child(parent, vd); 1144 1145 *vdp = vd; 1146 1147 return (0); 1148 } 1149 1150 void 1151 vdev_free(vdev_t *vd) 1152 { 1153 spa_t *spa = vd->vdev_spa; 1154 1155 ASSERT0P(vd->vdev_initialize_thread); 1156 ASSERT0P(vd->vdev_trim_thread); 1157 ASSERT0P(vd->vdev_autotrim_thread); 1158 ASSERT0P(vd->vdev_rebuild_thread); 1159 1160 /* 1161 * Scan queues are normally destroyed at the end of a scan. If the 1162 * queue exists here, that implies the vdev is being removed while 1163 * the scan is still running. 1164 */ 1165 if (vd->vdev_scan_io_queue != NULL) { 1166 mutex_enter(&vd->vdev_scan_io_queue_lock); 1167 dsl_scan_io_queue_destroy(vd->vdev_scan_io_queue); 1168 vd->vdev_scan_io_queue = NULL; 1169 mutex_exit(&vd->vdev_scan_io_queue_lock); 1170 } 1171 1172 /* 1173 * vdev_free() implies closing the vdev first. This is simpler than 1174 * trying to ensure complicated semantics for all callers. 1175 */ 1176 vdev_close(vd); 1177 1178 ASSERT(!list_link_active(&vd->vdev_config_dirty_node)); 1179 ASSERT(!list_link_active(&vd->vdev_state_dirty_node)); 1180 1181 /* 1182 * Free all children. 1183 */ 1184 for (int c = 0; c < vd->vdev_children; c++) 1185 vdev_free(vd->vdev_child[c]); 1186 1187 ASSERT0P(vd->vdev_child); 1188 ASSERT(vd->vdev_guid_sum == vd->vdev_guid); 1189 1190 if (vd->vdev_ops->vdev_op_fini != NULL) 1191 vd->vdev_ops->vdev_op_fini(vd); 1192 1193 /* 1194 * Discard allocation state. 1195 */ 1196 if (vd->vdev_mg != NULL) { 1197 vdev_metaslab_fini(vd); 1198 metaslab_group_destroy(vd->vdev_mg); 1199 vd->vdev_mg = NULL; 1200 } 1201 if (vd->vdev_log_mg != NULL) { 1202 ASSERT0(vd->vdev_ms_count); 1203 metaslab_group_destroy(vd->vdev_log_mg); 1204 vd->vdev_log_mg = NULL; 1205 } 1206 1207 ASSERT0(vd->vdev_stat.vs_space); 1208 ASSERT0(vd->vdev_stat.vs_dspace); 1209 ASSERT0(vd->vdev_stat.vs_alloc); 1210 1211 /* 1212 * Remove this vdev from its parent's child list. 1213 */ 1214 vdev_remove_child(vd->vdev_parent, vd); 1215 1216 ASSERT0P(vd->vdev_parent); 1217 ASSERT(!list_link_active(&vd->vdev_leaf_node)); 1218 1219 /* 1220 * Clean up vdev structure. 1221 */ 1222 vdev_queue_fini(vd); 1223 1224 if (vd->vdev_path) 1225 spa_strfree(vd->vdev_path); 1226 if (vd->vdev_devid) 1227 spa_strfree(vd->vdev_devid); 1228 if (vd->vdev_physpath) 1229 spa_strfree(vd->vdev_physpath); 1230 1231 if (vd->vdev_enc_sysfs_path) 1232 spa_strfree(vd->vdev_enc_sysfs_path); 1233 1234 if (vd->vdev_fru) 1235 spa_strfree(vd->vdev_fru); 1236 1237 if (vd->vdev_isspare) 1238 spa_spare_remove(vd); 1239 if (vd->vdev_isl2cache) 1240 spa_l2cache_remove(vd); 1241 if (vd->vdev_prev_histo) 1242 kmem_free(vd->vdev_prev_histo, 1243 sizeof (uint64_t) * VDEV_L_HISTO_BUCKETS); 1244 1245 txg_list_destroy(&vd->vdev_ms_list); 1246 txg_list_destroy(&vd->vdev_dtl_list); 1247 1248 mutex_enter(&vd->vdev_dtl_lock); 1249 space_map_close(vd->vdev_dtl_sm); 1250 for (int t = 0; t < DTL_TYPES; t++) { 1251 zfs_range_tree_vacate(vd->vdev_dtl[t], NULL, NULL); 1252 zfs_range_tree_destroy(vd->vdev_dtl[t]); 1253 } 1254 mutex_exit(&vd->vdev_dtl_lock); 1255 1256 EQUIV(vd->vdev_indirect_births != NULL, 1257 vd->vdev_indirect_mapping != NULL); 1258 if (vd->vdev_indirect_births != NULL) { 1259 vdev_indirect_mapping_close(vd->vdev_indirect_mapping); 1260 vdev_indirect_births_close(vd->vdev_indirect_births); 1261 } 1262 1263 if (vd->vdev_obsolete_sm != NULL) { 1264 ASSERT(vd->vdev_removing || 1265 vd->vdev_ops == &vdev_indirect_ops); 1266 space_map_close(vd->vdev_obsolete_sm); 1267 vd->vdev_obsolete_sm = NULL; 1268 } 1269 zfs_range_tree_destroy(vd->vdev_obsolete_segments); 1270 rw_destroy(&vd->vdev_indirect_rwlock); 1271 mutex_destroy(&vd->vdev_obsolete_lock); 1272 1273 mutex_destroy(&vd->vdev_dtl_lock); 1274 mutex_destroy(&vd->vdev_stat_lock); 1275 mutex_destroy(&vd->vdev_probe_lock); 1276 mutex_destroy(&vd->vdev_scan_io_queue_lock); 1277 1278 mutex_destroy(&vd->vdev_initialize_lock); 1279 mutex_destroy(&vd->vdev_initialize_io_lock); 1280 cv_destroy(&vd->vdev_initialize_io_cv); 1281 cv_destroy(&vd->vdev_initialize_cv); 1282 1283 mutex_destroy(&vd->vdev_trim_lock); 1284 mutex_destroy(&vd->vdev_autotrim_lock); 1285 mutex_destroy(&vd->vdev_trim_io_lock); 1286 cv_destroy(&vd->vdev_trim_cv); 1287 cv_destroy(&vd->vdev_autotrim_cv); 1288 cv_destroy(&vd->vdev_autotrim_kick_cv); 1289 cv_destroy(&vd->vdev_trim_io_cv); 1290 1291 mutex_destroy(&vd->vdev_rebuild_lock); 1292 cv_destroy(&vd->vdev_rebuild_cv); 1293 1294 zfs_ratelimit_fini(&vd->vdev_delay_rl); 1295 zfs_ratelimit_fini(&vd->vdev_deadman_rl); 1296 zfs_ratelimit_fini(&vd->vdev_dio_verify_rl); 1297 zfs_ratelimit_fini(&vd->vdev_checksum_rl); 1298 1299 if (vd == spa->spa_root_vdev) 1300 spa->spa_root_vdev = NULL; 1301 1302 kmem_free(vd, sizeof (vdev_t)); 1303 } 1304 1305 /* 1306 * Transfer top-level vdev state from svd to tvd. 1307 */ 1308 static void 1309 vdev_top_transfer(vdev_t *svd, vdev_t *tvd) 1310 { 1311 spa_t *spa = svd->vdev_spa; 1312 metaslab_t *msp; 1313 vdev_t *vd; 1314 int t; 1315 1316 ASSERT(tvd == tvd->vdev_top); 1317 1318 tvd->vdev_ms_array = svd->vdev_ms_array; 1319 tvd->vdev_ms_shift = svd->vdev_ms_shift; 1320 tvd->vdev_ms_count = svd->vdev_ms_count; 1321 tvd->vdev_top_zap = svd->vdev_top_zap; 1322 1323 svd->vdev_ms_array = 0; 1324 svd->vdev_ms_shift = 0; 1325 svd->vdev_ms_count = 0; 1326 svd->vdev_top_zap = 0; 1327 1328 if (tvd->vdev_mg) 1329 ASSERT3P(tvd->vdev_mg, ==, svd->vdev_mg); 1330 if (tvd->vdev_log_mg) 1331 ASSERT3P(tvd->vdev_log_mg, ==, svd->vdev_log_mg); 1332 tvd->vdev_mg = svd->vdev_mg; 1333 tvd->vdev_log_mg = svd->vdev_log_mg; 1334 tvd->vdev_ms = svd->vdev_ms; 1335 1336 svd->vdev_mg = NULL; 1337 svd->vdev_log_mg = NULL; 1338 svd->vdev_ms = NULL; 1339 1340 if (tvd->vdev_mg != NULL) 1341 tvd->vdev_mg->mg_vd = tvd; 1342 if (tvd->vdev_log_mg != NULL) 1343 tvd->vdev_log_mg->mg_vd = tvd; 1344 1345 tvd->vdev_checkpoint_sm = svd->vdev_checkpoint_sm; 1346 svd->vdev_checkpoint_sm = NULL; 1347 1348 tvd->vdev_alloc_bias = svd->vdev_alloc_bias; 1349 svd->vdev_alloc_bias = VDEV_BIAS_NONE; 1350 1351 tvd->vdev_stat.vs_alloc = svd->vdev_stat.vs_alloc; 1352 tvd->vdev_stat.vs_space = svd->vdev_stat.vs_space; 1353 tvd->vdev_stat.vs_dspace = svd->vdev_stat.vs_dspace; 1354 1355 svd->vdev_stat.vs_alloc = 0; 1356 svd->vdev_stat.vs_space = 0; 1357 svd->vdev_stat.vs_dspace = 0; 1358 1359 /* 1360 * State which may be set on a top-level vdev that's in the 1361 * process of being removed. 1362 */ 1363 ASSERT0(tvd->vdev_indirect_config.vic_births_object); 1364 ASSERT0(tvd->vdev_indirect_config.vic_mapping_object); 1365 ASSERT3U(tvd->vdev_indirect_config.vic_prev_indirect_vdev, ==, -1ULL); 1366 ASSERT0P(tvd->vdev_indirect_mapping); 1367 ASSERT0P(tvd->vdev_indirect_births); 1368 ASSERT0P(tvd->vdev_obsolete_sm); 1369 ASSERT0(tvd->vdev_noalloc); 1370 ASSERT0(tvd->vdev_removing); 1371 ASSERT0(tvd->vdev_rebuilding); 1372 tvd->vdev_noalloc = svd->vdev_noalloc; 1373 tvd->vdev_removing = svd->vdev_removing; 1374 tvd->vdev_rebuilding = svd->vdev_rebuilding; 1375 tvd->vdev_rebuild_config = svd->vdev_rebuild_config; 1376 tvd->vdev_indirect_config = svd->vdev_indirect_config; 1377 tvd->vdev_indirect_mapping = svd->vdev_indirect_mapping; 1378 tvd->vdev_indirect_births = svd->vdev_indirect_births; 1379 zfs_range_tree_swap(&svd->vdev_obsolete_segments, 1380 &tvd->vdev_obsolete_segments); 1381 tvd->vdev_obsolete_sm = svd->vdev_obsolete_sm; 1382 svd->vdev_indirect_config.vic_mapping_object = 0; 1383 svd->vdev_indirect_config.vic_births_object = 0; 1384 svd->vdev_indirect_config.vic_prev_indirect_vdev = -1ULL; 1385 svd->vdev_indirect_mapping = NULL; 1386 svd->vdev_indirect_births = NULL; 1387 svd->vdev_obsolete_sm = NULL; 1388 svd->vdev_noalloc = 0; 1389 svd->vdev_removing = 0; 1390 svd->vdev_rebuilding = 0; 1391 1392 for (t = 0; t < TXG_SIZE; t++) { 1393 while ((msp = txg_list_remove(&svd->vdev_ms_list, t)) != NULL) 1394 (void) txg_list_add(&tvd->vdev_ms_list, msp, t); 1395 while ((vd = txg_list_remove(&svd->vdev_dtl_list, t)) != NULL) 1396 (void) txg_list_add(&tvd->vdev_dtl_list, vd, t); 1397 if (txg_list_remove_this(&spa->spa_vdev_txg_list, svd, t)) 1398 (void) txg_list_add(&spa->spa_vdev_txg_list, tvd, t); 1399 } 1400 1401 if (list_link_active(&svd->vdev_config_dirty_node)) { 1402 vdev_config_clean(svd); 1403 vdev_config_dirty(tvd); 1404 } 1405 1406 if (list_link_active(&svd->vdev_state_dirty_node)) { 1407 vdev_state_clean(svd); 1408 vdev_state_dirty(tvd); 1409 } 1410 1411 tvd->vdev_deflate_ratio = svd->vdev_deflate_ratio; 1412 svd->vdev_deflate_ratio = 0; 1413 1414 tvd->vdev_islog = svd->vdev_islog; 1415 svd->vdev_islog = 0; 1416 1417 dsl_scan_io_queue_vdev_xfer(svd, tvd); 1418 } 1419 1420 static void 1421 vdev_top_update(vdev_t *tvd, vdev_t *vd) 1422 { 1423 if (vd == NULL) 1424 return; 1425 1426 vd->vdev_top = tvd; 1427 1428 for (int c = 0; c < vd->vdev_children; c++) 1429 vdev_top_update(tvd, vd->vdev_child[c]); 1430 } 1431 1432 /* 1433 * Add a mirror/replacing vdev above an existing vdev. There is no need to 1434 * call .vdev_op_init() since mirror/replacing vdevs do not have private state. 1435 */ 1436 vdev_t * 1437 vdev_add_parent(vdev_t *cvd, vdev_ops_t *ops) 1438 { 1439 spa_t *spa = cvd->vdev_spa; 1440 vdev_t *pvd = cvd->vdev_parent; 1441 vdev_t *mvd; 1442 1443 ASSERT(spa_config_held(spa, SCL_ALL, RW_WRITER) == SCL_ALL); 1444 1445 mvd = vdev_alloc_common(spa, cvd->vdev_id, 0, ops); 1446 1447 mvd->vdev_asize = cvd->vdev_asize; 1448 mvd->vdev_min_asize = cvd->vdev_min_asize; 1449 mvd->vdev_max_asize = cvd->vdev_max_asize; 1450 mvd->vdev_psize = cvd->vdev_psize; 1451 mvd->vdev_ashift = cvd->vdev_ashift; 1452 mvd->vdev_logical_ashift = cvd->vdev_logical_ashift; 1453 mvd->vdev_physical_ashift = cvd->vdev_physical_ashift; 1454 mvd->vdev_state = cvd->vdev_state; 1455 mvd->vdev_crtxg = cvd->vdev_crtxg; 1456 mvd->vdev_nonrot = cvd->vdev_nonrot; 1457 1458 vdev_remove_child(pvd, cvd); 1459 vdev_add_child(pvd, mvd); 1460 cvd->vdev_id = mvd->vdev_children; 1461 vdev_add_child(mvd, cvd); 1462 vdev_top_update(cvd->vdev_top, cvd->vdev_top); 1463 1464 if (mvd == mvd->vdev_top) 1465 vdev_top_transfer(cvd, mvd); 1466 1467 return (mvd); 1468 } 1469 1470 /* 1471 * Remove a 1-way mirror/replacing vdev from the tree. 1472 */ 1473 void 1474 vdev_remove_parent(vdev_t *cvd) 1475 { 1476 vdev_t *mvd = cvd->vdev_parent; 1477 vdev_t *pvd = mvd->vdev_parent; 1478 1479 ASSERT(spa_config_held(cvd->vdev_spa, SCL_ALL, RW_WRITER) == SCL_ALL); 1480 1481 ASSERT(mvd->vdev_children == 1); 1482 ASSERT(mvd->vdev_ops == &vdev_mirror_ops || 1483 mvd->vdev_ops == &vdev_replacing_ops || 1484 mvd->vdev_ops == &vdev_spare_ops); 1485 cvd->vdev_ashift = mvd->vdev_ashift; 1486 cvd->vdev_logical_ashift = mvd->vdev_logical_ashift; 1487 cvd->vdev_physical_ashift = mvd->vdev_physical_ashift; 1488 vdev_remove_child(mvd, cvd); 1489 vdev_remove_child(pvd, mvd); 1490 1491 /* 1492 * If cvd will replace mvd as a top-level vdev, preserve mvd's guid. 1493 * Otherwise, we could have detached an offline device, and when we 1494 * go to import the pool we'll think we have two top-level vdevs, 1495 * instead of a different version of the same top-level vdev. 1496 */ 1497 if (mvd->vdev_top == mvd) { 1498 uint64_t guid_delta = mvd->vdev_guid - cvd->vdev_guid; 1499 cvd->vdev_orig_guid = cvd->vdev_guid; 1500 cvd->vdev_guid += guid_delta; 1501 cvd->vdev_guid_sum += guid_delta; 1502 1503 /* 1504 * If pool not set for autoexpand, we need to also preserve 1505 * mvd's asize to prevent automatic expansion of cvd. 1506 * Otherwise if we are adjusting the mirror by attaching and 1507 * detaching children of non-uniform sizes, the mirror could 1508 * autoexpand, unexpectedly requiring larger devices to 1509 * re-establish the mirror. 1510 */ 1511 if (!cvd->vdev_spa->spa_autoexpand) 1512 cvd->vdev_asize = mvd->vdev_asize; 1513 } 1514 cvd->vdev_id = mvd->vdev_id; 1515 vdev_add_child(pvd, cvd); 1516 vdev_top_update(cvd->vdev_top, cvd->vdev_top); 1517 1518 if (cvd == cvd->vdev_top) 1519 vdev_top_transfer(mvd, cvd); 1520 1521 ASSERT0(mvd->vdev_children); 1522 vdev_free(mvd); 1523 } 1524 1525 /* 1526 * Choose GCD for spa_gcd_alloc. 1527 */ 1528 static uint64_t 1529 vdev_gcd(uint64_t a, uint64_t b) 1530 { 1531 while (b != 0) { 1532 uint64_t t = b; 1533 b = a % b; 1534 a = t; 1535 } 1536 return (a); 1537 } 1538 1539 /* 1540 * Set spa_min_alloc and spa_gcd_alloc. 1541 */ 1542 static void 1543 vdev_spa_set_alloc(spa_t *spa, uint64_t min_alloc) 1544 { 1545 if (min_alloc < spa->spa_min_alloc) 1546 spa->spa_min_alloc = min_alloc; 1547 1548 if (min_alloc > spa->spa_max_alloc) 1549 spa->spa_max_alloc = min_alloc; 1550 1551 if (spa->spa_gcd_alloc == INT_MAX) 1552 spa->spa_gcd_alloc = min_alloc; 1553 else 1554 spa->spa_gcd_alloc = vdev_gcd(min_alloc, spa->spa_gcd_alloc); 1555 } 1556 1557 void 1558 vdev_metaslab_group_create(vdev_t *vd) 1559 { 1560 spa_t *spa = vd->vdev_spa; 1561 1562 /* 1563 * metaslab_group_create was delayed until allocation bias was available 1564 */ 1565 if (vd->vdev_mg == NULL) { 1566 metaslab_class_t *mc; 1567 1568 if (vd->vdev_islog && vd->vdev_alloc_bias == VDEV_BIAS_NONE) 1569 vd->vdev_alloc_bias = VDEV_BIAS_LOG; 1570 1571 ASSERT3U(vd->vdev_islog, ==, 1572 (vd->vdev_alloc_bias == VDEV_BIAS_LOG)); 1573 1574 switch (vd->vdev_alloc_bias) { 1575 case VDEV_BIAS_LOG: 1576 mc = spa_log_class(spa); 1577 break; 1578 case VDEV_BIAS_SPECIAL: 1579 mc = spa_special_class(spa); 1580 break; 1581 case VDEV_BIAS_DEDUP: 1582 mc = spa_dedup_class(spa); 1583 break; 1584 default: 1585 mc = spa_normal_class(spa); 1586 } 1587 1588 vd->vdev_mg = metaslab_group_create(mc, vd); 1589 1590 if (!vd->vdev_islog) { 1591 if (mc == spa_special_class(spa)) { 1592 vd->vdev_log_mg = metaslab_group_create( 1593 spa_special_embedded_log_class(spa), vd); 1594 } else { 1595 vd->vdev_log_mg = metaslab_group_create( 1596 spa_embedded_log_class(spa), vd); 1597 } 1598 } 1599 1600 /* 1601 * The spa ashift min/max only apply for the normal metaslab 1602 * class. Class destination is late binding so ashift boundary 1603 * setting had to wait until now. 1604 */ 1605 if (vd->vdev_top == vd && vd->vdev_ashift != 0 && 1606 mc == spa_normal_class(spa) && vd->vdev_aux == NULL) { 1607 if (vd->vdev_ashift > spa->spa_max_ashift) 1608 spa->spa_max_ashift = vd->vdev_ashift; 1609 if (vd->vdev_ashift < spa->spa_min_ashift) 1610 spa->spa_min_ashift = vd->vdev_ashift; 1611 1612 vdev_spa_set_alloc(spa, vdev_get_min_alloc(vd)); 1613 } 1614 } 1615 } 1616 1617 void 1618 vdev_update_nonallocating_space(vdev_t *vd, boolean_t add) 1619 { 1620 spa_t *spa = vd->vdev_spa; 1621 1622 if (vd->vdev_mg->mg_class != spa_normal_class(spa)) 1623 return; 1624 1625 uint64_t raw_space = metaslab_group_get_space(vd->vdev_mg); 1626 uint64_t dspace = spa_deflate(spa) ? 1627 vdev_deflated_space(vd, raw_space) : raw_space; 1628 if (add) { 1629 spa->spa_nonallocating_dspace += dspace; 1630 } else { 1631 ASSERT3U(spa->spa_nonallocating_dspace, >=, dspace); 1632 spa->spa_nonallocating_dspace -= dspace; 1633 } 1634 } 1635 1636 int 1637 vdev_metaslab_init(vdev_t *vd, uint64_t txg) 1638 { 1639 spa_t *spa = vd->vdev_spa; 1640 uint64_t oldc = vd->vdev_ms_count; 1641 uint64_t newc = vd->vdev_asize >> vd->vdev_ms_shift; 1642 metaslab_t **mspp; 1643 int error; 1644 boolean_t expanding = (oldc != 0); 1645 1646 ASSERT(txg == 0 || spa_config_held(spa, SCL_ALLOC, RW_WRITER)); 1647 1648 /* 1649 * This vdev is not being allocated from yet or is a hole. 1650 */ 1651 if (vd->vdev_ms_shift == 0) 1652 return (0); 1653 1654 ASSERT(!vd->vdev_ishole); 1655 1656 ASSERT(oldc <= newc); 1657 1658 mspp = vmem_zalloc(newc * sizeof (*mspp), KM_SLEEP); 1659 1660 if (expanding) { 1661 memcpy(mspp, vd->vdev_ms, oldc * sizeof (*mspp)); 1662 vmem_free(vd->vdev_ms, oldc * sizeof (*mspp)); 1663 } 1664 1665 vd->vdev_ms = mspp; 1666 vd->vdev_ms_count = newc; 1667 1668 /* 1669 * Weighting algorithms can depend on the number of metaslabs in the 1670 * vdev. In order to ensure that all weights are correct at all times, 1671 * we need to recalculate here. 1672 */ 1673 for (uint64_t m = 0; m < oldc; m++) { 1674 metaslab_t *msp = vd->vdev_ms[m]; 1675 mutex_enter(&msp->ms_lock); 1676 metaslab_recalculate_weight_and_sort(msp); 1677 mutex_exit(&msp->ms_lock); 1678 } 1679 1680 for (uint64_t m = oldc; m < newc; m++) { 1681 uint64_t object = 0; 1682 /* 1683 * vdev_ms_array may be 0 if we are creating the "fake" 1684 * metaslabs for an indirect vdev for zdb's leak detection. 1685 * See zdb_leak_init(). 1686 */ 1687 if (txg == 0 && vd->vdev_ms_array != 0) { 1688 error = dmu_read(spa->spa_meta_objset, 1689 vd->vdev_ms_array, 1690 m * sizeof (uint64_t), sizeof (uint64_t), &object, 1691 DMU_READ_PREFETCH); 1692 if (error != 0) { 1693 vdev_dbgmsg(vd, "unable to read the metaslab " 1694 "array [error=%d]", error); 1695 return (error); 1696 } 1697 } 1698 1699 error = metaslab_init(vd->vdev_mg, m, object, txg, 1700 &(vd->vdev_ms[m])); 1701 if (error != 0) { 1702 vdev_dbgmsg(vd, "metaslab_init failed [error=%d]", 1703 error); 1704 return (error); 1705 } 1706 } 1707 1708 /* 1709 * Find the emptiest metaslab on the vdev and mark it for use for 1710 * embedded slog by moving it from the regular to the log metaslab 1711 * group. This works for normal and special vdevs. 1712 */ 1713 if ((vd->vdev_mg->mg_class == spa_normal_class(spa) || 1714 vd->vdev_mg->mg_class == spa_special_class(spa)) && 1715 vd->vdev_ms_count > zfs_embedded_slog_min_ms && 1716 avl_is_empty(&vd->vdev_log_mg->mg_metaslab_tree)) { 1717 uint64_t slog_msid = 0; 1718 uint64_t smallest = UINT64_MAX; 1719 1720 /* 1721 * Note, we only search the new metaslabs, because the old 1722 * (pre-existing) ones may be active (e.g. have non-empty 1723 * range_tree's), and we don't move them to the new 1724 * metaslab_t. 1725 */ 1726 for (uint64_t m = oldc; m < newc; m++) { 1727 uint64_t alloc = 1728 space_map_allocated(vd->vdev_ms[m]->ms_sm); 1729 if (alloc < smallest) { 1730 slog_msid = m; 1731 smallest = alloc; 1732 } 1733 } 1734 metaslab_t *slog_ms = vd->vdev_ms[slog_msid]; 1735 /* 1736 * The metaslab was marked as dirty at the end of 1737 * metaslab_init(). Remove it from the dirty list so that we 1738 * can uninitialize and reinitialize it to the new class. It 1739 * may be dirty in any txg slot, so clear them all. 1740 */ 1741 for (int t = 0; t < TXG_SIZE; t++) { 1742 (void) txg_list_remove_this(&vd->vdev_ms_list, 1743 slog_ms, t); 1744 } 1745 uint64_t sm_obj = space_map_object(slog_ms->ms_sm); 1746 metaslab_fini(slog_ms); 1747 VERIFY0(metaslab_init(vd->vdev_log_mg, slog_msid, sm_obj, txg, 1748 &vd->vdev_ms[slog_msid])); 1749 } 1750 1751 if (txg == 0) 1752 spa_config_enter(spa, SCL_ALLOC, FTAG, RW_WRITER); 1753 1754 /* 1755 * If the vdev is marked as non-allocating then don't 1756 * activate the metaslabs since we want to ensure that 1757 * no allocations are performed on this device. 1758 */ 1759 if (vd->vdev_noalloc) { 1760 /* track non-allocating vdev space */ 1761 vdev_update_nonallocating_space(vd, B_TRUE); 1762 } else if (!expanding) { 1763 metaslab_group_activate(vd->vdev_mg); 1764 if (vd->vdev_log_mg != NULL) 1765 metaslab_group_activate(vd->vdev_log_mg); 1766 } 1767 1768 if (txg == 0) 1769 spa_config_exit(spa, SCL_ALLOC, FTAG); 1770 1771 return (0); 1772 } 1773 1774 void 1775 vdev_metaslab_fini(vdev_t *vd) 1776 { 1777 if (vd->vdev_checkpoint_sm != NULL) { 1778 ASSERT(spa_feature_is_active(vd->vdev_spa, 1779 SPA_FEATURE_POOL_CHECKPOINT)); 1780 vd->vdev_spa->spa_checkpoint_info.sci_dspace -= 1781 vd->vdev_stat.vs_checkpoint_space; 1782 vd->vdev_stat.vs_checkpoint_space = 0; 1783 space_map_close(vd->vdev_checkpoint_sm); 1784 /* 1785 * Even though we close the space map, we need to set its 1786 * pointer to NULL. The reason is that vdev_metaslab_fini() 1787 * may be called multiple times for certain operations 1788 * (i.e. when destroying a pool) so we need to ensure that 1789 * this clause never executes twice. This logic is similar 1790 * to the one used for the vdev_ms clause below. 1791 */ 1792 vd->vdev_checkpoint_sm = NULL; 1793 } 1794 1795 if (vd->vdev_ms != NULL) { 1796 metaslab_group_t *mg = vd->vdev_mg; 1797 1798 metaslab_group_passivate(mg); 1799 if (vd->vdev_log_mg != NULL) { 1800 ASSERT(!vd->vdev_islog); 1801 metaslab_group_passivate(vd->vdev_log_mg); 1802 } 1803 1804 uint64_t count = vd->vdev_ms_count; 1805 for (uint64_t m = 0; m < count; m++) { 1806 metaslab_t *msp = vd->vdev_ms[m]; 1807 if (msp != NULL) 1808 metaslab_fini(msp); 1809 } 1810 vmem_free(vd->vdev_ms, count * sizeof (metaslab_t *)); 1811 vd->vdev_ms = NULL; 1812 vd->vdev_ms_count = 0; 1813 1814 for (int i = 0; i < ZFS_RANGE_TREE_HISTOGRAM_SIZE; i++) { 1815 ASSERT0(mg->mg_histogram[i]); 1816 if (vd->vdev_log_mg != NULL) 1817 ASSERT0(vd->vdev_log_mg->mg_histogram[i]); 1818 } 1819 } 1820 ASSERT0(vd->vdev_ms_count); 1821 } 1822 1823 typedef struct vdev_probe_stats { 1824 boolean_t vps_readable; 1825 boolean_t vps_writeable; 1826 boolean_t vps_zio_done_probe; 1827 int vps_flags; 1828 } vdev_probe_stats_t; 1829 1830 static void 1831 vdev_probe_done(zio_t *zio) 1832 { 1833 spa_t *spa = zio->io_spa; 1834 vdev_t *vd = zio->io_vd; 1835 vdev_probe_stats_t *vps = zio->io_private; 1836 1837 ASSERT(vd->vdev_probe_zio != NULL); 1838 1839 if (zio->io_type == ZIO_TYPE_READ) { 1840 if (zio->io_error == 0) 1841 vps->vps_readable = 1; 1842 if (zio->io_error == 0 && spa_writeable(spa)) { 1843 zio_nowait(zio_write_phys(vd->vdev_probe_zio, vd, 1844 zio->io_offset, zio->io_size, zio->io_abd, 1845 ZIO_CHECKSUM_OFF, vdev_probe_done, vps, 1846 ZIO_PRIORITY_SYNC_WRITE, vps->vps_flags, B_TRUE)); 1847 } else { 1848 abd_free(zio->io_abd); 1849 } 1850 } else if (zio->io_type == ZIO_TYPE_WRITE) { 1851 if (zio->io_error == 0) 1852 vps->vps_writeable = 1; 1853 abd_free(zio->io_abd); 1854 } else if (zio->io_type == ZIO_TYPE_NULL) { 1855 zio_t *pio; 1856 zio_link_t *zl; 1857 1858 vd->vdev_cant_read |= !vps->vps_readable; 1859 vd->vdev_cant_write |= !vps->vps_writeable; 1860 vdev_dbgmsg(vd, "probe done, cant_read=%u cant_write=%u", 1861 vd->vdev_cant_read, vd->vdev_cant_write); 1862 1863 if (vdev_readable(vd) && 1864 (vdev_writeable(vd) || !spa_writeable(spa))) { 1865 zio->io_error = 0; 1866 } else { 1867 ASSERT(zio->io_error != 0); 1868 vdev_dbgmsg(vd, "failed probe"); 1869 (void) zfs_ereport_post(FM_EREPORT_ZFS_PROBE_FAILURE, 1870 spa, vd, NULL, NULL, 0); 1871 zio->io_error = SET_ERROR(ENXIO); 1872 1873 /* 1874 * If this probe was initiated from zio pipeline, then 1875 * change the state in a spa_async_request. Probes that 1876 * were initiated from a vdev_open can change the state 1877 * as part of the open call. 1878 * Skip fault injection if this vdev is already removed 1879 * or a removal is pending. 1880 */ 1881 if (vps->vps_zio_done_probe && 1882 !vd->vdev_remove_wanted && !vd->vdev_removed) { 1883 vd->vdev_fault_wanted = B_TRUE; 1884 spa_async_request(spa, SPA_ASYNC_FAULT_VDEV); 1885 } 1886 } 1887 1888 mutex_enter(&vd->vdev_probe_lock); 1889 ASSERT(vd->vdev_probe_zio == zio); 1890 vd->vdev_probe_zio = NULL; 1891 mutex_exit(&vd->vdev_probe_lock); 1892 1893 zl = NULL; 1894 while ((pio = zio_walk_parents(zio, &zl)) != NULL) 1895 if (!vdev_accessible(vd, pio)) 1896 pio->io_error = SET_ERROR(ENXIO); 1897 1898 kmem_free(vps, sizeof (*vps)); 1899 } 1900 } 1901 1902 /* 1903 * Determine whether this device is accessible. 1904 * 1905 * Read and write to several known locations: the pad regions of each 1906 * vdev label but the first, which we leave alone in case it contains 1907 * a VTOC. 1908 */ 1909 zio_t * 1910 vdev_probe(vdev_t *vd, zio_t *zio) 1911 { 1912 spa_t *spa = vd->vdev_spa; 1913 vdev_probe_stats_t *vps = NULL; 1914 zio_t *pio; 1915 1916 ASSERT(vd->vdev_ops->vdev_op_leaf); 1917 1918 /* 1919 * Don't probe the probe. 1920 */ 1921 if (zio && (zio->io_flags & ZIO_FLAG_PROBE)) 1922 return (NULL); 1923 1924 /* 1925 * To prevent 'probe storms' when a device fails, we create 1926 * just one probe i/o at a time. All zios that want to probe 1927 * this vdev will become parents of the probe io. 1928 */ 1929 mutex_enter(&vd->vdev_probe_lock); 1930 1931 if ((pio = vd->vdev_probe_zio) == NULL) { 1932 vps = kmem_zalloc(sizeof (*vps), KM_SLEEP); 1933 1934 vps->vps_flags = ZIO_FLAG_CANFAIL | ZIO_FLAG_PROBE | 1935 ZIO_FLAG_DONT_AGGREGATE | ZIO_FLAG_TRYHARD; 1936 vps->vps_zio_done_probe = (zio != NULL); 1937 1938 if (spa_config_held(spa, SCL_ZIO, RW_WRITER)) { 1939 /* 1940 * vdev_cant_read and vdev_cant_write can only 1941 * transition from TRUE to FALSE when we have the 1942 * SCL_ZIO lock as writer; otherwise they can only 1943 * transition from FALSE to TRUE. This ensures that 1944 * any zio looking at these values can assume that 1945 * failures persist for the life of the I/O. That's 1946 * important because when a device has intermittent 1947 * connectivity problems, we want to ensure that 1948 * they're ascribed to the device (ENXIO) and not 1949 * the zio (EIO). 1950 * 1951 * Since we hold SCL_ZIO as writer here, clear both 1952 * values so the probe can reevaluate from first 1953 * principles. 1954 */ 1955 vps->vps_flags |= ZIO_FLAG_CONFIG_WRITER; 1956 vd->vdev_cant_read = B_FALSE; 1957 vd->vdev_cant_write = B_FALSE; 1958 } 1959 1960 vd->vdev_probe_zio = pio = zio_null(NULL, spa, vd, 1961 vdev_probe_done, vps, 1962 vps->vps_flags | ZIO_FLAG_DONT_PROPAGATE); 1963 } 1964 1965 if (zio != NULL) 1966 zio_add_child(zio, pio); 1967 1968 mutex_exit(&vd->vdev_probe_lock); 1969 1970 if (vps == NULL) { 1971 ASSERT(zio != NULL); 1972 return (NULL); 1973 } 1974 1975 for (int l = 1; l < VDEV_LABELS; l++) { 1976 zio_nowait(zio_read_phys(pio, vd, 1977 vdev_label_offset(vd->vdev_psize, l, 1978 offsetof(vdev_label_t, vl_be)), VDEV_PAD_SIZE, 1979 abd_alloc_for_io(VDEV_PAD_SIZE, B_TRUE), 1980 ZIO_CHECKSUM_OFF, vdev_probe_done, vps, 1981 ZIO_PRIORITY_SYNC_READ, vps->vps_flags, B_TRUE)); 1982 } 1983 1984 if (zio == NULL) 1985 return (pio); 1986 1987 zio_nowait(pio); 1988 return (NULL); 1989 } 1990 1991 static void 1992 vdev_load_child(void *arg) 1993 { 1994 vdev_t *vd = arg; 1995 1996 vd->vdev_load_error = vdev_load(vd); 1997 } 1998 1999 typedef struct { 2000 vdev_t *voc_vdev; 2001 cred_t *voc_cred; 2002 } vdev_open_child_t; 2003 2004 static void 2005 vdev_open_child(void *arg) 2006 { 2007 vdev_open_child_t *voc = arg; 2008 vdev_t *vd = voc->voc_vdev; 2009 2010 vd->vdev_open_thread = curthread; 2011 vd->vdev_open_error = vdev_open(vd, voc->voc_cred); 2012 vd->vdev_open_thread = NULL; 2013 2014 crfree(voc->voc_cred); 2015 kmem_free(voc, sizeof (vdev_open_child_t)); 2016 } 2017 2018 static boolean_t 2019 vdev_uses_zvols(vdev_t *vd) 2020 { 2021 #ifdef _KERNEL 2022 if (zvol_is_zvol(vd->vdev_path)) 2023 return (B_TRUE); 2024 #endif 2025 2026 for (int c = 0; c < vd->vdev_children; c++) 2027 if (vdev_uses_zvols(vd->vdev_child[c])) 2028 return (B_TRUE); 2029 2030 return (B_FALSE); 2031 } 2032 2033 /* 2034 * Returns B_TRUE if the passed child should be opened. 2035 */ 2036 static boolean_t 2037 vdev_default_open_children_func(vdev_t *vd) 2038 { 2039 (void) vd; 2040 return (B_TRUE); 2041 } 2042 2043 /* 2044 * Open the requested child vdevs. If any of the leaf vdevs are using 2045 * a ZFS volume then do the opens in a single thread. This avoids a 2046 * deadlock when the current thread is holding the spa_namespace_lock. 2047 */ 2048 static void 2049 vdev_open_children_impl(vdev_t *vd, cred_t *cred, 2050 vdev_open_children_func_t *open_func) 2051 { 2052 int children = vd->vdev_children; 2053 2054 taskq_t *tq = taskq_create("vdev_open", children, minclsyspri, 2055 children, children, TASKQ_PREPOPULATE); 2056 vd->vdev_nonrot = B_TRUE; 2057 2058 for (int c = 0; c < children; c++) { 2059 vdev_t *cvd = vd->vdev_child[c]; 2060 2061 if (open_func(cvd) == B_FALSE) 2062 continue; 2063 2064 if (tq == NULL || vdev_uses_zvols(vd)) { 2065 cvd->vdev_open_error = vdev_open(cvd, cred); 2066 } else { 2067 vdev_open_child_t *voc = 2068 kmem_alloc(sizeof (vdev_open_child_t), KM_SLEEP); 2069 voc->voc_vdev = cvd; 2070 voc->voc_cred = cred; 2071 crhold(cred); 2072 VERIFY(taskq_dispatch(tq, vdev_open_child, 2073 voc, TQ_SLEEP) != TASKQID_INVALID); 2074 } 2075 } 2076 2077 if (tq != NULL) 2078 taskq_wait(tq); 2079 for (int c = 0; c < children; c++) { 2080 vdev_t *cvd = vd->vdev_child[c]; 2081 2082 if (open_func(cvd) == B_FALSE || 2083 cvd->vdev_state <= VDEV_STATE_FAULTED) 2084 continue; 2085 vd->vdev_nonrot &= cvd->vdev_nonrot; 2086 } 2087 2088 if (tq != NULL) 2089 taskq_destroy(tq); 2090 } 2091 2092 /* 2093 * Open all child vdevs. 2094 */ 2095 void 2096 vdev_open_children(vdev_t *vd, cred_t *cred) 2097 { 2098 vdev_open_children_impl(vd, cred, vdev_default_open_children_func); 2099 } 2100 2101 /* 2102 * Conditionally open a subset of child vdevs. 2103 */ 2104 void 2105 vdev_open_children_subset(vdev_t *vd, cred_t *cred, 2106 vdev_open_children_func_t *open_func) 2107 { 2108 vdev_open_children_impl(vd, cred, open_func); 2109 } 2110 2111 /* 2112 * Compute the raidz-deflation ratio. Note, we hard-code 128k (1 << 17) 2113 * because it is the "typical" blocksize. Even though SPA_MAXBLOCKSIZE 2114 * changed, this algorithm can not change, otherwise it would inconsistently 2115 * account for existing bp's. We also hard-code txg 0 for the same reason 2116 * since expanded RAIDZ vdevs can use a different asize for different birth 2117 * txg's. 2118 */ 2119 static void 2120 vdev_set_deflate_ratio(vdev_t *vd) 2121 { 2122 if (vd == vd->vdev_top && !vd->vdev_ishole && vd->vdev_ashift != 0) { 2123 vd->vdev_deflate_ratio = (1 << 17) / 2124 (vdev_psize_to_asize_txg(vd, 1 << 17, 0) >> 2125 SPA_MINBLOCKSHIFT); 2126 } 2127 } 2128 2129 /* 2130 * Choose the best of two ashifts, preferring one between logical ashift 2131 * (absolute minimum) and administrator defined maximum, otherwise take 2132 * the biggest of the two. 2133 */ 2134 uint64_t 2135 vdev_best_ashift(uint64_t logical, uint64_t a, uint64_t b) 2136 { 2137 if (a > logical && a <= zfs_vdev_max_auto_ashift) { 2138 if (b <= logical || b > zfs_vdev_max_auto_ashift) 2139 return (a); 2140 else 2141 return (MAX(a, b)); 2142 } else if (b <= logical || b > zfs_vdev_max_auto_ashift) 2143 return (MAX(a, b)); 2144 return (b); 2145 } 2146 2147 /* 2148 * Maximize performance by inflating the configured ashift for top level 2149 * vdevs to be as close to the physical ashift as possible while maintaining 2150 * administrator defined limits and ensuring it doesn't go below the 2151 * logical ashift. 2152 */ 2153 static void 2154 vdev_ashift_optimize(vdev_t *vd) 2155 { 2156 ASSERT(vd == vd->vdev_top); 2157 2158 if (vd->vdev_ashift < vd->vdev_physical_ashift && 2159 vd->vdev_physical_ashift <= zfs_vdev_max_auto_ashift) { 2160 vd->vdev_ashift = MIN( 2161 MAX(zfs_vdev_max_auto_ashift, vd->vdev_ashift), 2162 MAX(zfs_vdev_min_auto_ashift, 2163 vd->vdev_physical_ashift)); 2164 } else { 2165 /* 2166 * If the logical and physical ashifts are the same, then 2167 * we ensure that the top-level vdev's ashift is not smaller 2168 * than our minimum ashift value. For the unusual case 2169 * where logical ashift > physical ashift, we can't cap 2170 * the calculated ashift based on max ashift as that 2171 * would cause failures. 2172 * We still check if we need to increase it to match 2173 * the min ashift. 2174 */ 2175 vd->vdev_ashift = MAX(zfs_vdev_min_auto_ashift, 2176 vd->vdev_ashift); 2177 } 2178 } 2179 2180 /* 2181 * Prepare a virtual device for access. 2182 */ 2183 int 2184 vdev_open(vdev_t *vd, cred_t *cred) 2185 { 2186 spa_t *spa = vd->vdev_spa; 2187 int error; 2188 uint64_t osize = 0; 2189 uint64_t max_osize = 0; 2190 uint64_t asize, max_asize, psize; 2191 uint64_t logical_ashift = 0; 2192 uint64_t physical_ashift = 0; 2193 2194 ASSERT(vd->vdev_open_thread == curthread || 2195 spa_config_held(spa, SCL_STATE_ALL, RW_WRITER) == SCL_STATE_ALL); 2196 ASSERT(vd->vdev_state == VDEV_STATE_CLOSED || 2197 vd->vdev_state == VDEV_STATE_CANT_OPEN || 2198 vd->vdev_state == VDEV_STATE_OFFLINE); 2199 2200 vd->vdev_stat.vs_aux = VDEV_AUX_NONE; 2201 vd->vdev_cant_read = B_FALSE; 2202 vd->vdev_cant_write = B_FALSE; 2203 vd->vdev_fault_wanted = B_FALSE; 2204 vd->vdev_remove_wanted = B_FALSE; 2205 vd->vdev_min_asize = vdev_get_min_asize(vd); 2206 2207 /* 2208 * If this vdev is not removed, check its fault status. If it's 2209 * faulted, bail out of the open. 2210 */ 2211 if (!vd->vdev_removed && vd->vdev_faulted) { 2212 ASSERT0(vd->vdev_children); 2213 ASSERT(vd->vdev_label_aux == VDEV_AUX_ERR_EXCEEDED || 2214 vd->vdev_label_aux == VDEV_AUX_EXTERNAL); 2215 vdev_set_state(vd, B_TRUE, VDEV_STATE_FAULTED, 2216 vd->vdev_label_aux); 2217 return (SET_ERROR(ENXIO)); 2218 } else if (vd->vdev_offline) { 2219 ASSERT0(vd->vdev_children); 2220 vdev_set_state(vd, B_TRUE, VDEV_STATE_OFFLINE, VDEV_AUX_NONE); 2221 return (SET_ERROR(ENXIO)); 2222 } 2223 2224 error = vd->vdev_ops->vdev_op_open(vd, &osize, &max_osize, 2225 &logical_ashift, &physical_ashift, cred); 2226 2227 /* Keep the device in removed state if unplugged */ 2228 if (error == ENOENT && vd->vdev_removed) { 2229 vdev_set_state(vd, B_TRUE, VDEV_STATE_REMOVED, 2230 VDEV_AUX_NONE); 2231 return (error); 2232 } 2233 2234 /* 2235 * Physical volume size should never be larger than its max size, unless 2236 * the disk has shrunk while we were reading it or the device is buggy 2237 * or damaged: either way it's not safe for use, bail out of the open. 2238 */ 2239 if (osize > max_osize) { 2240 vdev_set_state(vd, B_TRUE, VDEV_STATE_CANT_OPEN, 2241 VDEV_AUX_OPEN_FAILED); 2242 return (SET_ERROR(ENXIO)); 2243 } 2244 2245 /* 2246 * Reset the vdev_reopening flag so that we actually close 2247 * the vdev on error. 2248 */ 2249 vd->vdev_reopening = B_FALSE; 2250 if (zio_injection_enabled && error == 0) 2251 error = zio_handle_device_injection(vd, NULL, SET_ERROR(ENXIO)); 2252 2253 if (error) { 2254 if (vd->vdev_removed && 2255 vd->vdev_stat.vs_aux != VDEV_AUX_OPEN_FAILED) 2256 vd->vdev_removed = B_FALSE; 2257 2258 if (vd->vdev_stat.vs_aux == VDEV_AUX_CHILDREN_OFFLINE) { 2259 vdev_set_state(vd, B_TRUE, VDEV_STATE_OFFLINE, 2260 vd->vdev_stat.vs_aux); 2261 } else { 2262 vdev_set_state(vd, B_TRUE, VDEV_STATE_CANT_OPEN, 2263 vd->vdev_stat.vs_aux); 2264 } 2265 return (error); 2266 } 2267 2268 vd->vdev_removed = B_FALSE; 2269 2270 /* 2271 * Recheck the faulted flag now that we have confirmed that 2272 * the vdev is accessible. If we're faulted, bail. 2273 */ 2274 if (vd->vdev_faulted) { 2275 ASSERT0(vd->vdev_children); 2276 ASSERT(vd->vdev_label_aux == VDEV_AUX_ERR_EXCEEDED || 2277 vd->vdev_label_aux == VDEV_AUX_EXTERNAL); 2278 vdev_set_state(vd, B_TRUE, VDEV_STATE_FAULTED, 2279 vd->vdev_label_aux); 2280 return (SET_ERROR(ENXIO)); 2281 } 2282 2283 if (vd->vdev_degraded) { 2284 ASSERT0(vd->vdev_children); 2285 vdev_set_state(vd, B_TRUE, VDEV_STATE_DEGRADED, 2286 VDEV_AUX_ERR_EXCEEDED); 2287 } else { 2288 vdev_set_state(vd, B_TRUE, VDEV_STATE_HEALTHY, 0); 2289 } 2290 2291 /* 2292 * For hole or missing vdevs we just return success. 2293 */ 2294 if (vd->vdev_ishole || vd->vdev_ops == &vdev_missing_ops) 2295 return (0); 2296 2297 for (int c = 0; c < vd->vdev_children; c++) { 2298 if (vd->vdev_child[c]->vdev_state != VDEV_STATE_HEALTHY) { 2299 vdev_set_state(vd, B_TRUE, VDEV_STATE_DEGRADED, 2300 VDEV_AUX_NONE); 2301 break; 2302 } 2303 } 2304 2305 osize = P2ALIGN_TYPED(osize, sizeof (vdev_label_t), uint64_t); 2306 max_osize = P2ALIGN_TYPED(max_osize, sizeof (vdev_label_t), uint64_t); 2307 2308 if (vd->vdev_children == 0) { 2309 if (osize < SPA_MINDEVSIZE) { 2310 vdev_set_state(vd, B_TRUE, VDEV_STATE_CANT_OPEN, 2311 VDEV_AUX_TOO_SMALL); 2312 return (SET_ERROR(EOVERFLOW)); 2313 } 2314 psize = osize; 2315 asize = osize - (VDEV_LABEL_START_SIZE + VDEV_LABEL_END_SIZE); 2316 max_asize = max_osize - (VDEV_LABEL_START_SIZE + 2317 VDEV_LABEL_END_SIZE); 2318 } else { 2319 if (vd->vdev_parent != NULL && osize < SPA_MINDEVSIZE - 2320 (VDEV_LABEL_START_SIZE + VDEV_LABEL_END_SIZE)) { 2321 vdev_set_state(vd, B_TRUE, VDEV_STATE_CANT_OPEN, 2322 VDEV_AUX_TOO_SMALL); 2323 return (SET_ERROR(EOVERFLOW)); 2324 } 2325 psize = 0; 2326 asize = osize; 2327 max_asize = max_osize; 2328 } 2329 2330 /* 2331 * If the vdev was expanded, record this so that we can re-create the 2332 * uberblock rings in labels {2,3}, during the next sync. 2333 */ 2334 if ((psize > vd->vdev_psize) && (vd->vdev_psize != 0)) 2335 vd->vdev_copy_uberblocks = B_TRUE; 2336 2337 vd->vdev_psize = psize; 2338 2339 /* 2340 * Make sure the allocatable size hasn't shrunk too much. 2341 */ 2342 if (asize < vd->vdev_min_asize) { 2343 vdev_set_state(vd, B_TRUE, VDEV_STATE_CANT_OPEN, 2344 VDEV_AUX_BAD_LABEL); 2345 return (SET_ERROR(EINVAL)); 2346 } 2347 2348 /* 2349 * We can always set the logical/physical ashift members since 2350 * their values are only used to calculate the vdev_ashift when 2351 * the device is first added to the config. These values should 2352 * not be used for anything else since they may change whenever 2353 * the device is reopened and we don't store them in the label. 2354 */ 2355 vd->vdev_physical_ashift = 2356 MAX(physical_ashift, vd->vdev_physical_ashift); 2357 vd->vdev_logical_ashift = MAX(logical_ashift, 2358 vd->vdev_logical_ashift); 2359 2360 if (vd->vdev_asize == 0) { 2361 /* 2362 * This is the first-ever open, so use the computed values. 2363 * For compatibility, a different ashift can be requested. 2364 */ 2365 vd->vdev_asize = asize; 2366 vd->vdev_max_asize = max_asize; 2367 2368 /* 2369 * If the vdev_ashift was not overridden at creation time 2370 * (0) or the override value is impossible for the device, 2371 * then set it the logical ashift and optimize the ashift. 2372 */ 2373 if (vd->vdev_ashift < vd->vdev_logical_ashift) { 2374 vd->vdev_ashift = vd->vdev_logical_ashift; 2375 2376 if (vd->vdev_logical_ashift > ASHIFT_MAX) { 2377 vdev_set_state(vd, B_TRUE, VDEV_STATE_CANT_OPEN, 2378 VDEV_AUX_ASHIFT_TOO_BIG); 2379 return (SET_ERROR(EDOM)); 2380 } 2381 2382 if (vd->vdev_top == vd && vd->vdev_attaching == B_FALSE) 2383 vdev_ashift_optimize(vd); 2384 vd->vdev_attaching = B_FALSE; 2385 } 2386 if (vd->vdev_ashift != 0 && (vd->vdev_ashift < ASHIFT_MIN || 2387 vd->vdev_ashift > ASHIFT_MAX)) { 2388 vdev_set_state(vd, B_TRUE, VDEV_STATE_CANT_OPEN, 2389 VDEV_AUX_BAD_ASHIFT); 2390 return (SET_ERROR(EDOM)); 2391 } 2392 } else { 2393 /* 2394 * Make sure the alignment required hasn't increased. 2395 */ 2396 if (vd->vdev_ashift > vd->vdev_top->vdev_ashift && 2397 vd->vdev_ops->vdev_op_leaf) { 2398 (void) zfs_ereport_post( 2399 FM_EREPORT_ZFS_DEVICE_BAD_ASHIFT, 2400 spa, vd, NULL, NULL, 0); 2401 vdev_set_state(vd, B_TRUE, VDEV_STATE_CANT_OPEN, 2402 VDEV_AUX_BAD_LABEL); 2403 return (SET_ERROR(EDOM)); 2404 } 2405 vd->vdev_max_asize = max_asize; 2406 } 2407 2408 /* 2409 * If all children are healthy we update asize if either: 2410 * The asize has increased, due to a device expansion caused by dynamic 2411 * LUN growth or vdev replacement, and automatic expansion is enabled; 2412 * making the additional space available. 2413 * 2414 * The asize has decreased, due to a device shrink usually caused by a 2415 * vdev replace with a smaller device. This ensures that calculations 2416 * based of max_asize and asize e.g. esize are always valid. It's safe 2417 * to do this as we've already validated that asize is greater than 2418 * vdev_min_asize. 2419 */ 2420 if (vd->vdev_state == VDEV_STATE_HEALTHY && 2421 ((asize > vd->vdev_asize && 2422 (vd->vdev_expanding || spa->spa_autoexpand)) || 2423 (asize < vd->vdev_asize))) 2424 vd->vdev_asize = asize; 2425 2426 vdev_set_min_asize(vd); 2427 2428 /* 2429 * Ensure we can issue some IO before declaring the 2430 * vdev open for business. 2431 */ 2432 if (vd->vdev_ops->vdev_op_leaf && 2433 (error = zio_wait(vdev_probe(vd, NULL))) != 0) { 2434 vdev_set_state(vd, B_TRUE, VDEV_STATE_FAULTED, 2435 VDEV_AUX_ERR_EXCEEDED); 2436 return (error); 2437 } 2438 2439 /* 2440 * Track the minimum allocation size. 2441 */ 2442 if (vd->vdev_top == vd && vd->vdev_ashift != 0 && 2443 vd->vdev_islog == 0 && vd->vdev_aux == NULL) { 2444 uint64_t min_alloc = vdev_get_min_alloc(vd); 2445 vdev_spa_set_alloc(spa, min_alloc); 2446 } 2447 2448 /* 2449 * If this is a leaf vdev, assess whether a resilver is needed. 2450 * But don't do this if we are doing a reopen for a scrub, since 2451 * this would just restart the scrub we are already doing. 2452 */ 2453 if (vd->vdev_ops->vdev_op_leaf && !spa->spa_scrub_reopen) 2454 dsl_scan_assess_vdev(spa->spa_dsl_pool, vd); 2455 2456 return (0); 2457 } 2458 2459 /* 2460 * Note whether the labels at the end of the device describe a different pool 2461 * than the ones at its head, which is what a vdev grown over the remains of 2462 * an older pool is left with until the next sync rewrites them. The head 2463 * labels are the ones to believe: their offsets are fixed, while the trailing 2464 * pair moves with the size of the device. 2465 * 2466 * The trailing labels are read without a txg bound: which pool a label names 2467 * does not depend on how recent it is, and a leftover one is quite likely to 2468 * be from beyond our own txg. 2469 */ 2470 static void 2471 vdev_check_tail_labels(vdev_t *vd, nvlist_t *head) 2472 { 2473 nvlist_t *tail; 2474 uint64_t head_guid, tail_guid; 2475 2476 vd->vdev_tail_labels_foreign = B_FALSE; 2477 2478 /* A distributed spare's label is generated, not read off a disk. */ 2479 if (vd->vdev_ops == &vdev_draid_spare_ops) 2480 return; 2481 2482 if (nvlist_lookup_uint64(head, ZPOOL_CONFIG_POOL_GUID, &head_guid) != 0) 2483 return; 2484 2485 tail = vdev_label_read_config(vd, UINT64_MAX, VDEV_LABELS_TAIL); 2486 if (tail == NULL) 2487 return; 2488 2489 if (nvlist_lookup_uint64(tail, ZPOOL_CONFIG_POOL_GUID, 2490 &tail_guid) == 0 && tail_guid != head_guid) { 2491 vd->vdev_tail_labels_foreign = B_TRUE; 2492 vdev_dbgmsg(vd, "labels 2 and 3 belong to pool_guid %llu, not " 2493 "%llu; ignoring them until they are rewritten", 2494 (u_longlong_t)tail_guid, (u_longlong_t)head_guid); 2495 } 2496 2497 nvlist_free(tail); 2498 } 2499 2500 static void 2501 vdev_validate_child(void *arg) 2502 { 2503 vdev_t *vd = arg; 2504 2505 vd->vdev_validate_thread = curthread; 2506 vd->vdev_validate_error = vdev_validate(vd); 2507 vd->vdev_validate_thread = NULL; 2508 } 2509 2510 /* 2511 * Called once the vdevs are all opened, this routine validates the label 2512 * contents. This needs to be done before vdev_load() so that we don't 2513 * inadvertently do repair I/Os to the wrong device. 2514 * 2515 * This function will only return failure if one of the vdevs indicates that it 2516 * has since been destroyed or exported. This is only possible if 2517 * /etc/zfs/zpool.cache was readonly at the time. Otherwise, the vdev state 2518 * will be updated but the function will return 0. 2519 */ 2520 int 2521 vdev_validate(vdev_t *vd) 2522 { 2523 spa_t *spa = vd->vdev_spa; 2524 taskq_t *tq = NULL; 2525 nvlist_t *label; 2526 uint64_t guid = 0, aux_guid = 0, top_guid; 2527 uint64_t state; 2528 nvlist_t *nvl; 2529 uint64_t txg; 2530 int children = vd->vdev_children; 2531 2532 if (vdev_validate_skip) 2533 return (0); 2534 2535 if (children > 0) { 2536 tq = taskq_create("vdev_validate", children, minclsyspri, 2537 children, children, TASKQ_PREPOPULATE); 2538 } 2539 2540 for (uint64_t c = 0; c < children; c++) { 2541 vdev_t *cvd = vd->vdev_child[c]; 2542 2543 if (tq == NULL || vdev_uses_zvols(cvd)) { 2544 vdev_validate_child(cvd); 2545 } else { 2546 VERIFY(taskq_dispatch(tq, vdev_validate_child, cvd, 2547 TQ_SLEEP) != TASKQID_INVALID); 2548 } 2549 } 2550 if (tq != NULL) { 2551 taskq_wait(tq); 2552 taskq_destroy(tq); 2553 } 2554 for (int c = 0; c < children; c++) { 2555 int error = vd->vdev_child[c]->vdev_validate_error; 2556 2557 if (error != 0) 2558 return (SET_ERROR(EBADF)); 2559 } 2560 2561 2562 /* 2563 * If the device has already failed, or was marked offline, don't do 2564 * any further validation. Otherwise, label I/O will fail and we will 2565 * overwrite the previous state. 2566 */ 2567 if (!vd->vdev_ops->vdev_op_leaf || !vdev_readable(vd)) 2568 return (0); 2569 2570 /* 2571 * If we are performing an extreme rewind, we allow for a label that 2572 * was modified at a point after the current txg. 2573 * If config lock is not held do not check for the txg. spa_sync could 2574 * be updating the vdev's label before updating spa_last_synced_txg. 2575 */ 2576 if (spa->spa_extreme_rewind || spa_last_synced_txg(spa) == 0 || 2577 spa_config_held(spa, SCL_CONFIG, RW_WRITER) != SCL_CONFIG) 2578 txg = UINT64_MAX; 2579 else 2580 txg = spa_last_synced_txg(spa); 2581 2582 /* 2583 * Labels 2 and 3 live at offsets relative to the end of the device, so 2584 * growing one moves them onto space this pool has never written: what 2585 * is found there belongs to whatever used the device before us, as 2586 * vdev_copy_uberblocks() already notes for the uberblock rings. Such 2587 * a leftover label is perfectly well formed and routinely carries a 2588 * higher txg than our own, which is all vdev_label_read_config() ranks 2589 * labels on, so it wins and the vdev is failed for belonging to a 2590 * foreign pool. Every label states the same identity, so read it from 2591 * the two whose position does not depend on the size of the device, 2592 * and fall back to the trailing pair only if those cannot be read. 2593 */ 2594 label = vdev_label_read_config(vd, txg, VDEV_LABELS_HEAD); 2595 if (label != NULL) { 2596 vdev_check_tail_labels(vd, label); 2597 } else { 2598 vd->vdev_tail_labels_foreign = B_FALSE; 2599 label = vdev_label_read_config(vd, txg, VDEV_LABELS_TAIL); 2600 } 2601 2602 if (label == NULL) { 2603 vdev_set_state(vd, B_FALSE, VDEV_STATE_CANT_OPEN, 2604 VDEV_AUX_BAD_LABEL); 2605 vdev_dbgmsg(vd, "vdev_validate: failed reading config for " 2606 "txg %llu", (u_longlong_t)txg); 2607 return (0); 2608 } 2609 2610 /* 2611 * Determine if this vdev has been split off into another 2612 * pool. If so, then refuse to open it. 2613 */ 2614 if (nvlist_lookup_uint64(label, ZPOOL_CONFIG_SPLIT_GUID, 2615 &aux_guid) == 0 && aux_guid == spa_guid(spa)) { 2616 vdev_set_state(vd, B_FALSE, VDEV_STATE_CANT_OPEN, 2617 VDEV_AUX_SPLIT_POOL); 2618 nvlist_free(label); 2619 vdev_dbgmsg(vd, "vdev_validate: vdev split into other pool"); 2620 return (0); 2621 } 2622 2623 if (nvlist_lookup_uint64(label, ZPOOL_CONFIG_POOL_GUID, &guid) != 0) { 2624 vdev_set_state(vd, B_FALSE, VDEV_STATE_CANT_OPEN, 2625 VDEV_AUX_CORRUPT_DATA); 2626 nvlist_free(label); 2627 vdev_dbgmsg(vd, "vdev_validate: '%s' missing from label", 2628 ZPOOL_CONFIG_POOL_GUID); 2629 return (0); 2630 } 2631 2632 /* 2633 * If config is not trusted then ignore the spa guid check. This is 2634 * necessary because if the machine crashed during a re-guid the new 2635 * guid might have been written to all of the vdev labels, but not the 2636 * cached config. The check will be performed again once we have the 2637 * trusted config from the MOS. 2638 */ 2639 if (spa->spa_trust_config && guid != spa_guid(spa)) { 2640 vdev_set_state(vd, B_FALSE, VDEV_STATE_CANT_OPEN, 2641 VDEV_AUX_CORRUPT_DATA); 2642 nvlist_free(label); 2643 vdev_dbgmsg(vd, "vdev_validate: vdev label pool_guid doesn't " 2644 "match config (%llu != %llu)", (u_longlong_t)guid, 2645 (u_longlong_t)spa_guid(spa)); 2646 return (0); 2647 } 2648 2649 if (nvlist_lookup_nvlist(label, ZPOOL_CONFIG_VDEV_TREE, &nvl) 2650 != 0 || nvlist_lookup_uint64(nvl, ZPOOL_CONFIG_ORIG_GUID, 2651 &aux_guid) != 0) 2652 aux_guid = 0; 2653 2654 if (nvlist_lookup_uint64(label, ZPOOL_CONFIG_GUID, &guid) != 0) { 2655 vdev_set_state(vd, B_FALSE, VDEV_STATE_CANT_OPEN, 2656 VDEV_AUX_CORRUPT_DATA); 2657 nvlist_free(label); 2658 vdev_dbgmsg(vd, "vdev_validate: '%s' missing from label", 2659 ZPOOL_CONFIG_GUID); 2660 return (0); 2661 } 2662 2663 if (nvlist_lookup_uint64(label, ZPOOL_CONFIG_TOP_GUID, &top_guid) 2664 != 0) { 2665 vdev_set_state(vd, B_FALSE, VDEV_STATE_CANT_OPEN, 2666 VDEV_AUX_CORRUPT_DATA); 2667 nvlist_free(label); 2668 vdev_dbgmsg(vd, "vdev_validate: '%s' missing from label", 2669 ZPOOL_CONFIG_TOP_GUID); 2670 return (0); 2671 } 2672 2673 /* 2674 * If this vdev just became a top-level vdev because its sibling was 2675 * detached, it will have adopted the parent's vdev guid -- but the 2676 * label may or may not be on disk yet. Fortunately, either version 2677 * of the label will have the same top guid, so if we're a top-level 2678 * vdev, we can safely compare to that instead. 2679 * However, if the config comes from a cachefile that failed to update 2680 * after the detach, a top-level vdev will appear as a non top-level 2681 * vdev in the config. Also relax the constraints if we perform an 2682 * extreme rewind. 2683 * 2684 * If we split this vdev off instead, then we also check the 2685 * original pool's guid. We don't want to consider the vdev 2686 * corrupt if it is partway through a split operation. 2687 */ 2688 if (vd->vdev_guid != guid && vd->vdev_guid != aux_guid) { 2689 boolean_t mismatch = B_FALSE; 2690 if (spa->spa_trust_config && !spa->spa_extreme_rewind) { 2691 if (vd != vd->vdev_top || vd->vdev_guid != top_guid) 2692 mismatch = B_TRUE; 2693 } else { 2694 if (vd->vdev_guid != top_guid && 2695 vd->vdev_top->vdev_guid != guid) 2696 mismatch = B_TRUE; 2697 } 2698 2699 if (mismatch) { 2700 vdev_set_state(vd, B_FALSE, VDEV_STATE_CANT_OPEN, 2701 VDEV_AUX_CORRUPT_DATA); 2702 nvlist_free(label); 2703 vdev_dbgmsg(vd, "vdev_validate: config guid " 2704 "doesn't match label guid"); 2705 vdev_dbgmsg(vd, "CONFIG: guid %llu, top_guid %llu", 2706 (u_longlong_t)vd->vdev_guid, 2707 (u_longlong_t)vd->vdev_top->vdev_guid); 2708 vdev_dbgmsg(vd, "LABEL: guid %llu, top_guid %llu, " 2709 "aux_guid %llu", (u_longlong_t)guid, 2710 (u_longlong_t)top_guid, (u_longlong_t)aux_guid); 2711 return (0); 2712 } 2713 } 2714 2715 if (nvlist_lookup_uint64(label, ZPOOL_CONFIG_POOL_STATE, 2716 &state) != 0) { 2717 vdev_set_state(vd, B_FALSE, VDEV_STATE_CANT_OPEN, 2718 VDEV_AUX_CORRUPT_DATA); 2719 nvlist_free(label); 2720 vdev_dbgmsg(vd, "vdev_validate: '%s' missing from label", 2721 ZPOOL_CONFIG_POOL_STATE); 2722 return (0); 2723 } 2724 2725 nvlist_free(label); 2726 2727 /* 2728 * If this is a verbatim import, no need to check the 2729 * state of the pool. 2730 */ 2731 if (!(spa->spa_import_flags & ZFS_IMPORT_VERBATIM) && 2732 spa_load_state(spa) == SPA_LOAD_OPEN && 2733 state != POOL_STATE_ACTIVE) { 2734 vdev_dbgmsg(vd, "vdev_validate: invalid pool state (%llu) " 2735 "for spa %s", (u_longlong_t)state, spa->spa_name); 2736 return (SET_ERROR(EBADF)); 2737 } 2738 2739 /* 2740 * If we were able to open and validate a vdev that was 2741 * previously marked permanently unavailable, clear that state 2742 * now. 2743 */ 2744 if (vd->vdev_not_present) 2745 vd->vdev_not_present = 0; 2746 2747 return (0); 2748 } 2749 2750 static void 2751 vdev_update_path(const char *prefix, char *svd, char **dvd, uint64_t guid) 2752 { 2753 if (svd != NULL && *dvd != NULL) { 2754 if (strcmp(svd, *dvd) != 0) { 2755 zfs_dbgmsg("vdev_copy_path: vdev %llu: %s changed " 2756 "from '%s' to '%s'", (u_longlong_t)guid, prefix, 2757 *dvd, svd); 2758 spa_strfree(*dvd); 2759 *dvd = spa_strdup(svd); 2760 } 2761 } else if (svd != NULL) { 2762 *dvd = spa_strdup(svd); 2763 zfs_dbgmsg("vdev_copy_path: vdev %llu: path set to '%s'", 2764 (u_longlong_t)guid, *dvd); 2765 } 2766 } 2767 2768 static void 2769 vdev_copy_path_impl(vdev_t *svd, vdev_t *dvd) 2770 { 2771 char *old, *new; 2772 2773 vdev_update_path("vdev_path", svd->vdev_path, &dvd->vdev_path, 2774 dvd->vdev_guid); 2775 2776 vdev_update_path("vdev_devid", svd->vdev_devid, &dvd->vdev_devid, 2777 dvd->vdev_guid); 2778 2779 vdev_update_path("vdev_physpath", svd->vdev_physpath, 2780 &dvd->vdev_physpath, dvd->vdev_guid); 2781 2782 /* 2783 * Our enclosure sysfs path may have changed between imports 2784 */ 2785 old = dvd->vdev_enc_sysfs_path; 2786 new = svd->vdev_enc_sysfs_path; 2787 if ((old != NULL && new == NULL) || 2788 (old == NULL && new != NULL) || 2789 ((old != NULL && new != NULL) && strcmp(new, old) != 0)) { 2790 zfs_dbgmsg("vdev_copy_path: vdev %llu: vdev_enc_sysfs_path " 2791 "changed from '%s' to '%s'", (u_longlong_t)dvd->vdev_guid, 2792 old, new); 2793 2794 if (dvd->vdev_enc_sysfs_path) 2795 spa_strfree(dvd->vdev_enc_sysfs_path); 2796 2797 if (svd->vdev_enc_sysfs_path) { 2798 dvd->vdev_enc_sysfs_path = spa_strdup( 2799 svd->vdev_enc_sysfs_path); 2800 } else { 2801 dvd->vdev_enc_sysfs_path = NULL; 2802 } 2803 } 2804 } 2805 2806 /* 2807 * Recursively copy vdev paths from one vdev to another. Source and destination 2808 * vdev trees must have same geometry otherwise return error. Intended to copy 2809 * paths from userland config into MOS config. 2810 */ 2811 int 2812 vdev_copy_path_strict(vdev_t *svd, vdev_t *dvd) 2813 { 2814 if ((svd->vdev_ops == &vdev_missing_ops) || 2815 (svd->vdev_ishole && dvd->vdev_ishole) || 2816 (dvd->vdev_ops == &vdev_indirect_ops)) 2817 return (0); 2818 2819 if (svd->vdev_ops != dvd->vdev_ops) { 2820 vdev_dbgmsg(svd, "vdev_copy_path: vdev type mismatch: %s != %s", 2821 svd->vdev_ops->vdev_op_type, dvd->vdev_ops->vdev_op_type); 2822 return (SET_ERROR(EINVAL)); 2823 } 2824 2825 if (svd->vdev_guid != dvd->vdev_guid) { 2826 vdev_dbgmsg(svd, "vdev_copy_path: guids mismatch (%llu != " 2827 "%llu)", (u_longlong_t)svd->vdev_guid, 2828 (u_longlong_t)dvd->vdev_guid); 2829 return (SET_ERROR(EINVAL)); 2830 } 2831 2832 if (svd->vdev_children != dvd->vdev_children) { 2833 vdev_dbgmsg(svd, "vdev_copy_path: children count mismatch: " 2834 "%llu != %llu", (u_longlong_t)svd->vdev_children, 2835 (u_longlong_t)dvd->vdev_children); 2836 return (SET_ERROR(EINVAL)); 2837 } 2838 2839 for (uint64_t i = 0; i < svd->vdev_children; i++) { 2840 int error = vdev_copy_path_strict(svd->vdev_child[i], 2841 dvd->vdev_child[i]); 2842 if (error != 0) 2843 return (error); 2844 } 2845 2846 if (svd->vdev_ops->vdev_op_leaf) 2847 vdev_copy_path_impl(svd, dvd); 2848 2849 return (0); 2850 } 2851 2852 static void 2853 vdev_copy_path_search(vdev_t *stvd, vdev_t *dvd) 2854 { 2855 ASSERT(stvd->vdev_top == stvd); 2856 ASSERT3U(stvd->vdev_id, ==, dvd->vdev_top->vdev_id); 2857 2858 for (uint64_t i = 0; i < dvd->vdev_children; i++) { 2859 vdev_copy_path_search(stvd, dvd->vdev_child[i]); 2860 } 2861 2862 if (!dvd->vdev_ops->vdev_op_leaf || !vdev_is_concrete(dvd)) 2863 return; 2864 2865 /* 2866 * The idea here is that while a vdev can shift positions within 2867 * a top vdev (when replacing, attaching mirror, etc.) it cannot 2868 * step outside of it. 2869 */ 2870 vdev_t *vd = vdev_lookup_by_guid(stvd, dvd->vdev_guid); 2871 2872 if (vd == NULL || vd->vdev_ops != dvd->vdev_ops) 2873 return; 2874 2875 ASSERT(vd->vdev_ops->vdev_op_leaf); 2876 2877 vdev_copy_path_impl(vd, dvd); 2878 } 2879 2880 /* 2881 * Recursively copy vdev paths from one root vdev to another. Source and 2882 * destination vdev trees may differ in geometry. For each destination leaf 2883 * vdev, search a vdev with the same guid and top vdev id in the source. 2884 * Intended to copy paths from userland config into MOS config. 2885 */ 2886 void 2887 vdev_copy_path_relaxed(vdev_t *srvd, vdev_t *drvd) 2888 { 2889 uint64_t children = MIN(srvd->vdev_children, drvd->vdev_children); 2890 ASSERT(srvd->vdev_ops == &vdev_root_ops); 2891 ASSERT(drvd->vdev_ops == &vdev_root_ops); 2892 2893 for (uint64_t i = 0; i < children; i++) { 2894 vdev_copy_path_search(srvd->vdev_child[i], 2895 drvd->vdev_child[i]); 2896 } 2897 } 2898 2899 /* 2900 * Close a virtual device. 2901 */ 2902 void 2903 vdev_close(vdev_t *vd) 2904 { 2905 vdev_t *pvd = vd->vdev_parent; 2906 spa_t *spa __maybe_unused = vd->vdev_spa; 2907 2908 ASSERT(vd != NULL); 2909 ASSERT(vd->vdev_open_thread == curthread || 2910 spa_config_held(spa, SCL_STATE_ALL, RW_WRITER) == SCL_STATE_ALL); 2911 2912 /* 2913 * If our parent is reopening, then we are as well, unless we are 2914 * going offline. 2915 */ 2916 if (pvd != NULL && pvd->vdev_reopening) 2917 vd->vdev_reopening = (pvd->vdev_reopening && !vd->vdev_offline); 2918 2919 vd->vdev_ops->vdev_op_close(vd); 2920 2921 /* 2922 * We record the previous state before we close it, so that if we are 2923 * doing a reopen(), we don't generate FMA ereports if we notice that 2924 * it's still faulted. 2925 */ 2926 vd->vdev_prevstate = vd->vdev_state; 2927 2928 if (vd->vdev_offline) 2929 vd->vdev_state = VDEV_STATE_OFFLINE; 2930 else 2931 vd->vdev_state = VDEV_STATE_CLOSED; 2932 vd->vdev_stat.vs_aux = VDEV_AUX_NONE; 2933 } 2934 2935 void 2936 vdev_hold(vdev_t *vd) 2937 { 2938 spa_t *spa = vd->vdev_spa; 2939 2940 ASSERT(spa_is_root(spa)); 2941 if (spa->spa_state == POOL_STATE_UNINITIALIZED) 2942 return; 2943 2944 for (int c = 0; c < vd->vdev_children; c++) 2945 vdev_hold(vd->vdev_child[c]); 2946 2947 if (vd->vdev_ops->vdev_op_leaf && vd->vdev_ops->vdev_op_hold != NULL) 2948 vd->vdev_ops->vdev_op_hold(vd); 2949 } 2950 2951 void 2952 vdev_rele(vdev_t *vd) 2953 { 2954 ASSERT(spa_is_root(vd->vdev_spa)); 2955 for (int c = 0; c < vd->vdev_children; c++) 2956 vdev_rele(vd->vdev_child[c]); 2957 2958 if (vd->vdev_ops->vdev_op_leaf && vd->vdev_ops->vdev_op_rele != NULL) 2959 vd->vdev_ops->vdev_op_rele(vd); 2960 } 2961 2962 /* 2963 * Reopen all interior vdevs and any unopened leaves. We don't actually 2964 * reopen leaf vdevs which had previously been opened as they might deadlock 2965 * on the spa_config_lock. Instead we only obtain the leaf's physical size. 2966 * If the leaf has never been opened then open it, as usual. 2967 */ 2968 void 2969 vdev_reopen(vdev_t *vd) 2970 { 2971 spa_t *spa = vd->vdev_spa; 2972 2973 ASSERT(spa_config_held(spa, SCL_STATE_ALL, RW_WRITER) == SCL_STATE_ALL); 2974 2975 /* set the reopening flag unless we're taking the vdev offline */ 2976 vd->vdev_reopening = !vd->vdev_offline; 2977 vdev_close(vd); 2978 (void) vdev_open(vd, CRED()); 2979 2980 /* 2981 * Call vdev_validate() here to make sure we have the same device. 2982 * Otherwise, a device with an invalid label could be successfully 2983 * opened in response to vdev_reopen(). 2984 */ 2985 if (vd->vdev_aux) { 2986 (void) vdev_validate_aux(vd); 2987 if (vdev_readable(vd) && vdev_writeable(vd) && 2988 vd->vdev_aux == &spa->spa_l2cache) { 2989 /* 2990 * In case the vdev is present we should evict all ARC 2991 * buffers and pointers to log blocks and reclaim their 2992 * space before restoring its contents to L2ARC. 2993 */ 2994 if (l2arc_vdev_present(vd)) { 2995 l2arc_rebuild_vdev(vd, B_TRUE); 2996 } else { 2997 l2arc_add_vdev(spa, vd); 2998 } 2999 spa_async_request(spa, SPA_ASYNC_L2CACHE_REBUILD); 3000 spa_async_request(spa, SPA_ASYNC_L2CACHE_TRIM); 3001 } 3002 } else { 3003 (void) vdev_validate(vd); 3004 } 3005 3006 /* 3007 * Recheck if resilver is still needed and cancel any 3008 * scheduled resilver if resilver is unneeded. 3009 */ 3010 if (!vdev_resilver_needed(spa->spa_root_vdev, NULL, NULL) && 3011 spa->spa_async_tasks & SPA_ASYNC_RESILVER) { 3012 mutex_enter(&spa->spa_async_lock); 3013 spa->spa_async_tasks &= ~SPA_ASYNC_RESILVER; 3014 mutex_exit(&spa->spa_async_lock); 3015 } 3016 3017 /* 3018 * Reassess parent vdev's health. 3019 */ 3020 vdev_propagate_state(vd); 3021 } 3022 3023 int 3024 vdev_create(vdev_t *vd, uint64_t txg, boolean_t isreplacing) 3025 { 3026 int error; 3027 3028 /* 3029 * Normally, partial opens (e.g. of a mirror) are allowed. 3030 * For a create, however, we want to fail the request if 3031 * there are any components we can't open. 3032 */ 3033 error = vdev_open(vd, CRED()); 3034 3035 if (error || vd->vdev_state != VDEV_STATE_HEALTHY) { 3036 vdev_close(vd); 3037 return (error ? error : SET_ERROR(ENXIO)); 3038 } 3039 3040 /* 3041 * Recursively load DTLs and initialize all labels. 3042 */ 3043 if ((error = vdev_dtl_load(vd)) != 0 || 3044 (error = vdev_label_init(vd, txg, isreplacing ? 3045 VDEV_LABEL_REPLACE : VDEV_LABEL_CREATE)) != 0) { 3046 vdev_close(vd); 3047 return (error); 3048 } 3049 3050 return (0); 3051 } 3052 3053 void 3054 vdev_metaslab_set_size(vdev_t *vd) 3055 { 3056 uint64_t asize = vd->vdev_asize; 3057 uint64_t ms_count = asize >> zfs_vdev_default_ms_shift; 3058 uint64_t ms_shift; 3059 3060 /* 3061 * There are two dimensions to the metaslab sizing calculation: 3062 * the size of the metaslab and the count of metaslabs per vdev. 3063 * 3064 * The default values used below are a good balance between memory 3065 * usage (larger metaslab size means more memory needed for loaded 3066 * metaslabs; more metaslabs means more memory needed for the 3067 * metaslab_t structs), metaslab load time (larger metaslabs take 3068 * longer to load), and metaslab sync time (more metaslabs means 3069 * more time spent syncing all of them). 3070 * 3071 * In general, we aim for zfs_vdev_default_ms_count (200) metaslabs. 3072 * The range of the dimensions are as follows: 3073 * 3074 * 2^29 <= ms_size <= 2^34 3075 * 16 <= ms_count <= 131,072 3076 * 3077 * On the lower end of vdev sizes, we aim for metaslabs sizes of 3078 * at least 512MB (2^29) to minimize fragmentation effects when 3079 * testing with smaller devices. However, the count constraint 3080 * of at least 16 metaslabs will override this minimum size goal. 3081 * 3082 * On the upper end of vdev sizes, we aim for a maximum metaslab 3083 * size of 16GB. However, we will cap the total count to 2^17 3084 * metaslabs to keep our memory footprint in check and let the 3085 * metaslab size grow from there if that limit is hit. 3086 * 3087 * The net effect of applying above constrains is summarized below. 3088 * 3089 * vdev size metaslab count 3090 * --------------|----------------- 3091 * < 8GB ~16 3092 * 8GB - 100GB one per 512MB 3093 * 100GB - 3TB ~200 3094 * 3TB - 2PB one per 16GB 3095 * > 2PB ~131,072 3096 * -------------------------------- 3097 * 3098 * Finally, note that all of the above calculate the initial 3099 * number of metaslabs. Expanding a top-level vdev will result 3100 * in additional metaslabs being allocated making it possible 3101 * to exceed the zfs_vdev_ms_count_limit. 3102 */ 3103 3104 if (ms_count < zfs_vdev_min_ms_count) 3105 ms_shift = highbit64(asize / zfs_vdev_min_ms_count); 3106 else if (ms_count > zfs_vdev_default_ms_count) 3107 ms_shift = highbit64(asize / zfs_vdev_default_ms_count); 3108 else 3109 ms_shift = zfs_vdev_default_ms_shift; 3110 3111 if (ms_shift < SPA_MAXBLOCKSHIFT) { 3112 ms_shift = SPA_MAXBLOCKSHIFT; 3113 } else if (ms_shift > zfs_vdev_max_ms_shift) { 3114 ms_shift = zfs_vdev_max_ms_shift; 3115 /* cap the total count to constrain memory footprint */ 3116 if ((asize >> ms_shift) > zfs_vdev_ms_count_limit) 3117 ms_shift = highbit64(asize / zfs_vdev_ms_count_limit); 3118 } 3119 3120 vd->vdev_ms_shift = ms_shift; 3121 ASSERT3U(vd->vdev_ms_shift, >=, SPA_MAXBLOCKSHIFT); 3122 } 3123 3124 void 3125 vdev_dirty(vdev_t *vd, int flags, void *arg, uint64_t txg) 3126 { 3127 ASSERT(vd == vd->vdev_top); 3128 /* indirect vdevs don't have metaslabs or dtls */ 3129 ASSERT(vdev_is_concrete(vd) || flags == 0); 3130 ASSERT(ISP2(flags)); 3131 ASSERT(spa_writeable(vd->vdev_spa)); 3132 3133 if (flags & VDD_METASLAB) 3134 (void) txg_list_add(&vd->vdev_ms_list, arg, txg); 3135 3136 if (flags & VDD_DTL) 3137 (void) txg_list_add(&vd->vdev_dtl_list, arg, txg); 3138 3139 (void) txg_list_add(&vd->vdev_spa->spa_vdev_txg_list, vd, txg); 3140 } 3141 3142 void 3143 vdev_dirty_leaves(vdev_t *vd, int flags, uint64_t txg) 3144 { 3145 for (int c = 0; c < vd->vdev_children; c++) 3146 vdev_dirty_leaves(vd->vdev_child[c], flags, txg); 3147 3148 if (vd->vdev_ops->vdev_op_leaf) 3149 vdev_dirty(vd->vdev_top, flags, vd, txg); 3150 } 3151 3152 /* 3153 * DTLs. 3154 * 3155 * A vdev's DTL (dirty time log) is the set of transaction groups for which 3156 * the vdev has less than perfect replication. There are four kinds of DTL: 3157 * 3158 * DTL_MISSING: txgs for which the vdev has no valid copies of the data 3159 * 3160 * DTL_PARTIAL: txgs for which data is available, but not fully replicated 3161 * 3162 * DTL_SCRUB: the txgs that could not be repaired by the last scrub; upon 3163 * scrub completion, DTL_SCRUB replaces DTL_MISSING in the range of 3164 * txgs that was scrubbed. 3165 * 3166 * DTL_OUTAGE: txgs which cannot currently be read, whether due to 3167 * persistent errors or just some device being offline. 3168 * Unlike the other three, the DTL_OUTAGE map is not generally 3169 * maintained; it's only computed when needed, typically to 3170 * determine whether a device can be detached. 3171 * 3172 * For leaf vdevs, DTL_MISSING and DTL_PARTIAL are identical: the device 3173 * either has the data or it doesn't. 3174 * 3175 * For interior vdevs such as mirror and RAID-Z the picture is more complex. 3176 * A vdev's DTL_PARTIAL is the union of its children's DTL_PARTIALs, because 3177 * if any child is less than fully replicated, then so is its parent. 3178 * A vdev's DTL_MISSING is a modified union of its children's DTL_MISSINGs, 3179 * comprising only those txgs which appear in 'maxfaults' or more children; 3180 * those are the txgs we don't have enough replication to read. For example, 3181 * double-parity RAID-Z can tolerate up to two missing devices (maxfaults == 2); 3182 * thus, its DTL_MISSING consists of the set of txgs that appear in more than 3183 * two child DTL_MISSING maps. 3184 * 3185 * It should be clear from the above that to compute the DTLs and outage maps 3186 * for all vdevs, it suffices to know just the leaf vdevs' DTL_MISSING maps. 3187 * Therefore, that is all we keep on disk. When loading the pool, or after 3188 * a configuration change, we generate all other DTLs from first principles. 3189 */ 3190 void 3191 vdev_dtl_dirty(vdev_t *vd, vdev_dtl_type_t t, uint64_t txg, uint64_t size) 3192 { 3193 zfs_range_tree_t *rt = vd->vdev_dtl[t]; 3194 3195 ASSERT(t < DTL_TYPES); 3196 ASSERT(vd != vd->vdev_spa->spa_root_vdev); 3197 ASSERT(spa_writeable(vd->vdev_spa)); 3198 3199 mutex_enter(&vd->vdev_dtl_lock); 3200 if (!zfs_range_tree_contains(rt, txg, size)) { 3201 /* Clear whatever is there already. */ 3202 zfs_range_tree_clear(rt, txg, size); 3203 zfs_range_tree_add(rt, txg, size); 3204 } 3205 mutex_exit(&vd->vdev_dtl_lock); 3206 } 3207 3208 boolean_t 3209 vdev_dtl_contains(vdev_t *vd, vdev_dtl_type_t t, uint64_t txg, uint64_t size) 3210 { 3211 zfs_range_tree_t *rt = vd->vdev_dtl[t]; 3212 boolean_t dirty = B_FALSE; 3213 3214 ASSERT(t < DTL_TYPES); 3215 ASSERT(vd != vd->vdev_spa->spa_root_vdev); 3216 3217 /* 3218 * While we are loading the pool, the DTLs have not been loaded yet. 3219 * This isn't a problem but it can result in devices being tried 3220 * which are known to not have the data. In which case, the import 3221 * is relying on the checksum to ensure that we get the right data. 3222 * Note that while importing we are only reading the MOS, which is 3223 * always checksummed. 3224 */ 3225 mutex_enter(&vd->vdev_dtl_lock); 3226 if (!zfs_range_tree_is_empty(rt)) 3227 dirty = zfs_range_tree_contains(rt, txg, size); 3228 mutex_exit(&vd->vdev_dtl_lock); 3229 3230 return (dirty); 3231 } 3232 3233 boolean_t 3234 vdev_dtl_empty(vdev_t *vd, vdev_dtl_type_t t) 3235 { 3236 zfs_range_tree_t *rt = vd->vdev_dtl[t]; 3237 boolean_t empty; 3238 3239 mutex_enter(&vd->vdev_dtl_lock); 3240 empty = zfs_range_tree_is_empty(rt); 3241 mutex_exit(&vd->vdev_dtl_lock); 3242 3243 return (empty); 3244 } 3245 3246 /* 3247 * Check if the txg falls within the range which must be 3248 * resilvered. DVAs outside this range can always be skipped. 3249 */ 3250 boolean_t 3251 vdev_default_need_resilver(vdev_t *vd, const dva_t *dva, size_t psize, 3252 uint64_t phys_birth) 3253 { 3254 (void) dva, (void) psize; 3255 3256 /* Set by sequential resilver. */ 3257 if (phys_birth == TXG_UNKNOWN) 3258 return (B_TRUE); 3259 3260 return (vdev_dtl_contains(vd, DTL_PARTIAL, phys_birth, 1)); 3261 } 3262 3263 /* 3264 * Returns B_TRUE if the vdev determines the DVA needs to be resilvered. 3265 */ 3266 boolean_t 3267 vdev_dtl_need_resilver(vdev_t *vd, const dva_t *dva, size_t psize, 3268 uint64_t phys_birth) 3269 { 3270 ASSERT(vd != vd->vdev_spa->spa_root_vdev); 3271 3272 if (vd->vdev_ops->vdev_op_need_resilver == NULL || 3273 vd->vdev_ops->vdev_op_leaf) 3274 return (B_TRUE); 3275 3276 return (vd->vdev_ops->vdev_op_need_resilver(vd, dva, psize, 3277 phys_birth)); 3278 } 3279 3280 /* 3281 * Returns the lowest txg in the DTL range. 3282 */ 3283 static uint64_t 3284 vdev_dtl_min(vdev_t *vd) 3285 { 3286 ASSERT(MUTEX_HELD(&vd->vdev_dtl_lock)); 3287 ASSERT3U(zfs_range_tree_space(vd->vdev_dtl[DTL_MISSING]), !=, 0); 3288 ASSERT0(vd->vdev_children); 3289 3290 return (zfs_range_tree_min(vd->vdev_dtl[DTL_MISSING]) - 1); 3291 } 3292 3293 /* 3294 * Returns the highest txg in the DTL. 3295 */ 3296 static uint64_t 3297 vdev_dtl_max(vdev_t *vd) 3298 { 3299 ASSERT(MUTEX_HELD(&vd->vdev_dtl_lock)); 3300 ASSERT3U(zfs_range_tree_space(vd->vdev_dtl[DTL_MISSING]), !=, 0); 3301 ASSERT0(vd->vdev_children); 3302 3303 return (zfs_range_tree_max(vd->vdev_dtl[DTL_MISSING])); 3304 } 3305 3306 /* 3307 * Determine if a resilvering vdev should remove any DTL entries from 3308 * its range. If the vdev was resilvering for the entire duration of the 3309 * scan then it should excise that range from its DTLs. Otherwise, this 3310 * vdev is considered partially resilvered and should leave its DTL 3311 * entries intact. The comment in vdev_dtl_reassess() describes how we 3312 * excise the DTLs. 3313 */ 3314 static boolean_t 3315 vdev_dtl_should_excise(vdev_t *vd, boolean_t rebuild_done) 3316 { 3317 ASSERT0(vd->vdev_children); 3318 3319 if (vd->vdev_state < VDEV_STATE_DEGRADED) 3320 return (B_FALSE); 3321 3322 if (vd->vdev_resilver_deferred) 3323 return (B_FALSE); 3324 3325 if (zfs_range_tree_is_empty(vd->vdev_dtl[DTL_MISSING])) 3326 return (B_TRUE); 3327 3328 if (rebuild_done) { 3329 vdev_rebuild_t *vr = &vd->vdev_top->vdev_rebuild_config; 3330 vdev_rebuild_phys_t *vrp = &vr->vr_rebuild_phys; 3331 3332 /* Rebuild not initiated by attach */ 3333 if (vd->vdev_rebuild_txg == 0) 3334 return (B_TRUE); 3335 3336 /* 3337 * When a rebuild completes without error then all missing data 3338 * up to the rebuild max txg has been reconstructed and the DTL 3339 * is eligible for excision. 3340 */ 3341 if (vrp->vrp_rebuild_state == VDEV_REBUILD_COMPLETE && 3342 vdev_dtl_max(vd) <= vrp->vrp_max_txg) { 3343 ASSERT3U(vrp->vrp_min_txg, <=, vdev_dtl_min(vd)); 3344 ASSERT3U(vrp->vrp_min_txg, <, vd->vdev_rebuild_txg); 3345 ASSERT3U(vd->vdev_rebuild_txg, <=, vrp->vrp_max_txg); 3346 return (B_TRUE); 3347 } 3348 } else { 3349 dsl_scan_t *scn = vd->vdev_spa->spa_dsl_pool->dp_scan; 3350 dsl_scan_phys_t *scnp __maybe_unused = &scn->scn_phys; 3351 3352 /* Resilver not initiated by attach */ 3353 if (vd->vdev_resilver_txg == 0) 3354 return (B_TRUE); 3355 3356 /* 3357 * When a resilver is initiated the scan will assign the 3358 * scn_max_txg value to the highest txg value that exists 3359 * in all DTLs. If this device's max DTL is not part of this 3360 * scan (i.e. it is not in the range (scn_min_txg, scn_max_txg] 3361 * then it is not eligible for excision. 3362 */ 3363 if (vdev_dtl_max(vd) <= scn->scn_phys.scn_max_txg) { 3364 ASSERT3U(scnp->scn_min_txg, <=, vdev_dtl_min(vd)); 3365 ASSERT3U(scnp->scn_min_txg, <, vd->vdev_resilver_txg); 3366 ASSERT3U(vd->vdev_resilver_txg, <=, scnp->scn_max_txg); 3367 return (B_TRUE); 3368 } 3369 } 3370 3371 return (B_FALSE); 3372 } 3373 3374 /* 3375 * Reassess DTLs after a config change or scrub completion. If txg == 0 no 3376 * write operations will be issued to the pool. 3377 */ 3378 static void 3379 vdev_dtl_reassess_impl(vdev_t *vd, uint64_t txg, uint64_t scrub_txg, 3380 boolean_t scrub_done, boolean_t rebuild_done, boolean_t faulting) 3381 { 3382 spa_t *spa = vd->vdev_spa; 3383 avl_tree_t reftree; 3384 int minref; 3385 3386 ASSERT(spa_config_held(spa, SCL_ALL, RW_READER) != 0); 3387 3388 for (int c = 0; c < vd->vdev_children; c++) 3389 vdev_dtl_reassess_impl(vd->vdev_child[c], txg, 3390 scrub_txg, scrub_done, rebuild_done, faulting); 3391 3392 if (vd == spa->spa_root_vdev || !vdev_is_concrete(vd) || vd->vdev_aux) 3393 return; 3394 3395 if (vd->vdev_ops->vdev_op_leaf) { 3396 dsl_scan_t *scn = spa->spa_dsl_pool->dp_scan; 3397 vdev_rebuild_t *vr = &vd->vdev_top->vdev_rebuild_config; 3398 boolean_t check_excise = B_FALSE; 3399 boolean_t wasempty = B_TRUE; 3400 3401 mutex_enter(&vd->vdev_dtl_lock); 3402 3403 /* 3404 * If requested, pretend the scan or rebuild completed cleanly. 3405 */ 3406 if (zfs_scan_ignore_errors) { 3407 if (scn != NULL) 3408 scn->scn_phys.scn_errors = 0; 3409 if (vr != NULL) 3410 vr->vr_rebuild_phys.vrp_errors = 0; 3411 } 3412 3413 if (scrub_txg != 0 && 3414 !zfs_range_tree_is_empty(vd->vdev_dtl[DTL_MISSING])) { 3415 wasempty = B_FALSE; 3416 zfs_dbgmsg("guid:%llu txg:%llu scrub:%llu started:%d " 3417 "dtl:%llu/%llu errors:%llu", 3418 (u_longlong_t)vd->vdev_guid, (u_longlong_t)txg, 3419 (u_longlong_t)scrub_txg, spa->spa_scrub_started, 3420 (u_longlong_t)vdev_dtl_min(vd), 3421 (u_longlong_t)vdev_dtl_max(vd), 3422 (u_longlong_t)(scn ? scn->scn_phys.scn_errors : 0)); 3423 } 3424 3425 /* 3426 * If we've completed a scrub/resilver or a rebuild cleanly 3427 * then determine if this vdev should remove any DTLs. We 3428 * only want to excise regions on vdevs that were available 3429 * during the entire duration of this scan. 3430 */ 3431 if (rebuild_done && 3432 vr != NULL && vr->vr_rebuild_phys.vrp_errors == 0) { 3433 check_excise = B_TRUE; 3434 } else { 3435 if (spa->spa_scrub_started || 3436 (scn != NULL && scn->scn_phys.scn_errors == 0)) { 3437 check_excise = B_TRUE; 3438 } 3439 } 3440 3441 if (scrub_txg && check_excise && 3442 vdev_dtl_should_excise(vd, rebuild_done)) { 3443 /* 3444 * We completed a scrub, resilver or rebuild up to 3445 * scrub_txg. If we did it without rebooting, then 3446 * the scrub dtl will be valid, so excise the old 3447 * region and fold in the scrub dtl. Otherwise, 3448 * leave the dtl as-is if there was an error. 3449 * 3450 * There's little trick here: to excise the beginning 3451 * of the DTL_MISSING map, we put it into a reference 3452 * tree and then add a segment with refcnt -1 that 3453 * covers the range [0, scrub_txg). This means 3454 * that each txg in that range has refcnt -1 or 0. 3455 * We then add DTL_SCRUB with a refcnt of 2, so that 3456 * entries in the range [0, scrub_txg) will have a 3457 * positive refcnt -- either 1 or 2. We then convert 3458 * the reference tree into the new DTL_MISSING map. 3459 */ 3460 space_reftree_create(&reftree); 3461 space_reftree_add_map(&reftree, 3462 vd->vdev_dtl[DTL_MISSING], 1); 3463 space_reftree_add_seg(&reftree, 0, scrub_txg, -1); 3464 space_reftree_add_map(&reftree, 3465 vd->vdev_dtl[DTL_SCRUB], 2); 3466 space_reftree_generate_map(&reftree, 3467 vd->vdev_dtl[DTL_MISSING], 1); 3468 space_reftree_destroy(&reftree); 3469 3470 if (!zfs_range_tree_is_empty( 3471 vd->vdev_dtl[DTL_MISSING])) { 3472 zfs_dbgmsg("update DTL_MISSING:%llu/%llu", 3473 (u_longlong_t)vdev_dtl_min(vd), 3474 (u_longlong_t)vdev_dtl_max(vd)); 3475 } else if (!wasempty) { 3476 zfs_dbgmsg("DTL_MISSING is now empty"); 3477 } 3478 } 3479 zfs_range_tree_vacate(vd->vdev_dtl[DTL_PARTIAL], NULL, NULL); 3480 zfs_range_tree_walk(vd->vdev_dtl[DTL_MISSING], 3481 zfs_range_tree_add, vd->vdev_dtl[DTL_PARTIAL]); 3482 if (scrub_done) 3483 zfs_range_tree_vacate(vd->vdev_dtl[DTL_SCRUB], NULL, 3484 NULL); 3485 zfs_range_tree_vacate(vd->vdev_dtl[DTL_OUTAGE], NULL, NULL); 3486 3487 /* 3488 * For the faulting case, treat members of a replacing vdev 3489 * as if they are not available. It's more likely than not that 3490 * a vdev in a replacing vdev could encounter read errors so 3491 * treat it as not being able to contribute. 3492 */ 3493 if (!vdev_readable(vd) || 3494 (faulting && vd->vdev_parent != NULL && 3495 vd->vdev_parent->vdev_ops == &vdev_replacing_ops)) { 3496 zfs_range_tree_add(vd->vdev_dtl[DTL_OUTAGE], 0, -1ULL); 3497 } else { 3498 zfs_range_tree_walk(vd->vdev_dtl[DTL_MISSING], 3499 zfs_range_tree_add, vd->vdev_dtl[DTL_OUTAGE]); 3500 } 3501 3502 /* 3503 * If the vdev was resilvering or rebuilding and no longer 3504 * has any DTLs then reset the appropriate flag and dirty 3505 * the top level so that we persist the change. 3506 */ 3507 if (txg != 0 && 3508 zfs_range_tree_is_empty(vd->vdev_dtl[DTL_MISSING]) && 3509 zfs_range_tree_is_empty(vd->vdev_dtl[DTL_OUTAGE])) { 3510 if (vd->vdev_rebuild_txg != 0) { 3511 vd->vdev_rebuild_txg = 0; 3512 vdev_config_dirty(vd->vdev_top); 3513 } else if (vd->vdev_resilver_txg != 0) { 3514 vd->vdev_resilver_txg = 0; 3515 vdev_config_dirty(vd->vdev_top); 3516 } 3517 } 3518 3519 mutex_exit(&vd->vdev_dtl_lock); 3520 3521 if (txg != 0) 3522 vdev_dirty(vd->vdev_top, VDD_DTL, vd, txg); 3523 } else { 3524 mutex_enter(&vd->vdev_dtl_lock); 3525 for (int t = 0; t < DTL_TYPES; t++) { 3526 /* account for child's outage in parent's missing map */ 3527 int s = (t == DTL_MISSING) ? DTL_OUTAGE: t; 3528 if (t == DTL_SCRUB) { 3529 /* leaf vdevs only */ 3530 continue; 3531 } 3532 int children = vd->vdev_children; 3533 int width = children; 3534 if (t == DTL_PARTIAL) { 3535 /* i.e. non-zero */ 3536 minref = 1; 3537 } else if (vdev_get_nparity(vd) != 0) { 3538 /* RAIDZ, DRAID */ 3539 minref = vdev_get_nparity(vd) + 1; 3540 if (vd->vdev_ops == &vdev_draid_ops) { 3541 vdev_draid_config_t *vdc = vd->vdev_tsd; 3542 minref = vdc->vdc_nparity + 1; 3543 children = vdc->vdc_children; 3544 } 3545 } else { 3546 /* any kind of mirror */ 3547 minref = vd->vdev_children; 3548 } 3549 /* 3550 * For dRAID with failure domains, count failures 3551 * only once for any i-th child failure in each failure 3552 * group, but only if the failures threshold is not 3553 * reached in any of the groups. 3554 */ 3555 boolean_t safe2skip = B_FALSE; 3556 if (width > children && 3557 vdev_draid_fail_domain_allowed(vd)) 3558 safe2skip = B_TRUE; 3559 3560 space_reftree_create(&reftree); 3561 for (int c = 0; c < children; c++) { 3562 for (int i = c; i < width; i += children) { 3563 vdev_t *cvd = vd->vdev_child[i]; 3564 3565 mutex_enter(&cvd->vdev_dtl_lock); 3566 space_reftree_add_map(&reftree, 3567 cvd->vdev_dtl[s], 1); 3568 boolean_t empty = 3569 zfs_range_tree_is_empty( 3570 cvd->vdev_dtl[s]); 3571 mutex_exit(&cvd->vdev_dtl_lock); 3572 3573 if (s == DTL_OUTAGE && !empty && 3574 safe2skip) 3575 break; 3576 } 3577 } 3578 space_reftree_generate_map(&reftree, 3579 vd->vdev_dtl[t], minref); 3580 space_reftree_destroy(&reftree); 3581 } 3582 mutex_exit(&vd->vdev_dtl_lock); 3583 } 3584 3585 if (vd->vdev_top->vdev_ops == &vdev_raidz_ops) { 3586 raidz_dtl_reassessed(vd); 3587 } 3588 } 3589 3590 void 3591 vdev_dtl_reassess(vdev_t *vd, uint64_t txg, uint64_t scrub_txg, 3592 boolean_t scrub_done, boolean_t rebuild_done) 3593 { 3594 return (vdev_dtl_reassess_impl(vd, txg, scrub_txg, scrub_done, 3595 rebuild_done, B_FALSE)); 3596 } 3597 3598 /* 3599 * Iterate over all the vdevs except spare, and post kobj events 3600 */ 3601 void 3602 vdev_post_kobj_evt(vdev_t *vd) 3603 { 3604 if (vd->vdev_ops->vdev_op_kobj_evt_post && 3605 vd->vdev_kobj_flag == B_FALSE) { 3606 vd->vdev_kobj_flag = B_TRUE; 3607 vd->vdev_ops->vdev_op_kobj_evt_post(vd); 3608 } 3609 3610 for (int c = 0; c < vd->vdev_children; c++) 3611 vdev_post_kobj_evt(vd->vdev_child[c]); 3612 } 3613 3614 /* 3615 * Iterate over all the vdevs except spare, and clear kobj events 3616 */ 3617 void 3618 vdev_clear_kobj_evt(vdev_t *vd) 3619 { 3620 vd->vdev_kobj_flag = B_FALSE; 3621 3622 for (int c = 0; c < vd->vdev_children; c++) 3623 vdev_clear_kobj_evt(vd->vdev_child[c]); 3624 } 3625 3626 int 3627 vdev_dtl_load(vdev_t *vd) 3628 { 3629 spa_t *spa = vd->vdev_spa; 3630 objset_t *mos = spa->spa_meta_objset; 3631 zfs_range_tree_t *rt; 3632 int error = 0; 3633 3634 if (vd->vdev_ops->vdev_op_leaf && vd->vdev_dtl_object != 0) { 3635 ASSERT(vdev_is_concrete(vd)); 3636 3637 /* 3638 * If the dtl cannot be sync'd there is no need to open it. 3639 */ 3640 if (spa->spa_mode == SPA_MODE_READ && !spa->spa_read_spacemaps) 3641 return (0); 3642 3643 error = space_map_open(&vd->vdev_dtl_sm, mos, 3644 vd->vdev_dtl_object, 0, -1ULL, 0); 3645 if (error) 3646 return (error); 3647 ASSERT(vd->vdev_dtl_sm != NULL); 3648 3649 rt = zfs_range_tree_create_flags( 3650 NULL, ZFS_RANGE_SEG64, NULL, 0, 0, 3651 ZFS_RT_F_DYN_NAME, vdev_rt_name(vd, "vdev_dtl_load:rt")); 3652 error = space_map_load(vd->vdev_dtl_sm, rt, SM_ALLOC); 3653 if (error == 0) { 3654 mutex_enter(&vd->vdev_dtl_lock); 3655 zfs_range_tree_walk(rt, zfs_range_tree_add, 3656 vd->vdev_dtl[DTL_MISSING]); 3657 mutex_exit(&vd->vdev_dtl_lock); 3658 } 3659 3660 zfs_range_tree_vacate(rt, NULL, NULL); 3661 zfs_range_tree_destroy(rt); 3662 3663 return (error); 3664 } 3665 3666 for (int c = 0; c < vd->vdev_children; c++) { 3667 error = vdev_dtl_load(vd->vdev_child[c]); 3668 if (error != 0) 3669 break; 3670 } 3671 3672 return (error); 3673 } 3674 3675 static void 3676 vdev_zap_allocation_data(vdev_t *vd, dmu_tx_t *tx) 3677 { 3678 spa_t *spa = vd->vdev_spa; 3679 objset_t *mos = spa->spa_meta_objset; 3680 vdev_alloc_bias_t alloc_bias = vd->vdev_alloc_bias; 3681 const char *string; 3682 3683 ASSERT(alloc_bias != VDEV_BIAS_NONE); 3684 3685 string = 3686 (alloc_bias == VDEV_BIAS_LOG) ? VDEV_ALLOC_BIAS_LOG : 3687 (alloc_bias == VDEV_BIAS_SPECIAL) ? VDEV_ALLOC_BIAS_SPECIAL : 3688 (alloc_bias == VDEV_BIAS_DEDUP) ? VDEV_ALLOC_BIAS_DEDUP : NULL; 3689 3690 ASSERT(string != NULL); 3691 VERIFY0(zap_add(mos, vd->vdev_top_zap, VDEV_TOP_ZAP_ALLOCATION_BIAS, 3692 1, strlen(string) + 1, string, tx)); 3693 3694 if (alloc_bias == VDEV_BIAS_SPECIAL || alloc_bias == VDEV_BIAS_DEDUP) { 3695 spa_activate_allocation_classes(spa, tx); 3696 } 3697 } 3698 3699 void 3700 vdev_destroy_unlink_zap(vdev_t *vd, uint64_t zapobj, dmu_tx_t *tx) 3701 { 3702 spa_t *spa = vd->vdev_spa; 3703 3704 VERIFY0(zap_destroy(spa->spa_meta_objset, zapobj, tx)); 3705 VERIFY0(zap_remove_int(spa->spa_meta_objset, spa->spa_all_vdev_zaps, 3706 zapobj, tx)); 3707 } 3708 3709 uint64_t 3710 vdev_create_link_zap(vdev_t *vd, dmu_tx_t *tx) 3711 { 3712 spa_t *spa = vd->vdev_spa; 3713 uint64_t zap = zap_create(spa->spa_meta_objset, DMU_OTN_ZAP_METADATA, 3714 DMU_OT_NONE, 0, tx); 3715 3716 ASSERT(zap != 0); 3717 VERIFY0(zap_add_int(spa->spa_meta_objset, spa->spa_all_vdev_zaps, 3718 zap, tx)); 3719 3720 return (zap); 3721 } 3722 3723 void 3724 vdev_construct_zaps(vdev_t *vd, dmu_tx_t *tx) 3725 { 3726 if (vd->vdev_ops != &vdev_hole_ops && 3727 vd->vdev_ops != &vdev_missing_ops && 3728 vd->vdev_ops != &vdev_root_ops && 3729 !vd->vdev_top->vdev_removing) { 3730 if (vd->vdev_ops->vdev_op_leaf && vd->vdev_leaf_zap == 0) { 3731 vd->vdev_leaf_zap = vdev_create_link_zap(vd, tx); 3732 } 3733 if (vd == vd->vdev_top && vd->vdev_top_zap == 0) { 3734 vd->vdev_top_zap = vdev_create_link_zap(vd, tx); 3735 if (vd->vdev_alloc_bias != VDEV_BIAS_NONE) 3736 vdev_zap_allocation_data(vd, tx); 3737 } 3738 } 3739 if (vd->vdev_ops == &vdev_root_ops && vd->vdev_root_zap == 0 && 3740 spa_feature_is_enabled(vd->vdev_spa, SPA_FEATURE_AVZ_V2)) { 3741 if (!spa_feature_is_active(vd->vdev_spa, SPA_FEATURE_AVZ_V2)) 3742 spa_feature_incr(vd->vdev_spa, SPA_FEATURE_AVZ_V2, tx); 3743 vd->vdev_root_zap = vdev_create_link_zap(vd, tx); 3744 } 3745 3746 for (uint64_t i = 0; i < vd->vdev_children; i++) { 3747 vdev_construct_zaps(vd->vdev_child[i], tx); 3748 } 3749 } 3750 3751 static void 3752 vdev_dtl_sync(vdev_t *vd, uint64_t txg) 3753 { 3754 spa_t *spa = vd->vdev_spa; 3755 zfs_range_tree_t *rt = vd->vdev_dtl[DTL_MISSING]; 3756 objset_t *mos = spa->spa_meta_objset; 3757 zfs_range_tree_t *rtsync; 3758 dmu_tx_t *tx; 3759 uint64_t object = space_map_object(vd->vdev_dtl_sm); 3760 3761 ASSERT(vdev_is_concrete(vd)); 3762 ASSERT(vd->vdev_ops->vdev_op_leaf); 3763 3764 tx = dmu_tx_create_assigned(spa->spa_dsl_pool, txg); 3765 3766 if (vd->vdev_detached || vd->vdev_top->vdev_removing) { 3767 mutex_enter(&vd->vdev_dtl_lock); 3768 space_map_free(vd->vdev_dtl_sm, tx); 3769 space_map_close(vd->vdev_dtl_sm); 3770 vd->vdev_dtl_sm = NULL; 3771 mutex_exit(&vd->vdev_dtl_lock); 3772 3773 /* 3774 * We only destroy the leaf ZAP for detached leaves or for 3775 * removed log devices. Removed data devices handle leaf ZAP 3776 * cleanup later, once cancellation is no longer possible. 3777 */ 3778 if (vd->vdev_leaf_zap != 0 && (vd->vdev_detached || 3779 vd->vdev_top->vdev_islog)) { 3780 vdev_destroy_unlink_zap(vd, vd->vdev_leaf_zap, tx); 3781 vd->vdev_leaf_zap = 0; 3782 } 3783 3784 dmu_tx_commit(tx); 3785 return; 3786 } 3787 3788 if (vd->vdev_dtl_sm == NULL) { 3789 uint64_t new_object; 3790 3791 new_object = space_map_alloc(mos, zfs_vdev_dtl_sm_blksz, tx); 3792 VERIFY3U(new_object, !=, 0); 3793 3794 VERIFY0(space_map_open(&vd->vdev_dtl_sm, mos, new_object, 3795 0, -1ULL, 0)); 3796 ASSERT(vd->vdev_dtl_sm != NULL); 3797 } 3798 3799 rtsync = zfs_range_tree_create_flags(NULL, ZFS_RANGE_SEG64, NULL, 0, 0, 3800 ZFS_RT_F_DYN_NAME, vdev_rt_name(vd, "rtsync")); 3801 3802 mutex_enter(&vd->vdev_dtl_lock); 3803 zfs_range_tree_walk(rt, zfs_range_tree_add, rtsync); 3804 mutex_exit(&vd->vdev_dtl_lock); 3805 3806 space_map_truncate(vd->vdev_dtl_sm, zfs_vdev_dtl_sm_blksz, tx); 3807 space_map_write(vd->vdev_dtl_sm, rtsync, SM_ALLOC, SM_NO_VDEVID, tx); 3808 zfs_range_tree_vacate(rtsync, NULL, NULL); 3809 3810 zfs_range_tree_destroy(rtsync); 3811 3812 /* 3813 * If the object for the space map has changed then dirty 3814 * the top level so that we update the config. 3815 */ 3816 if (object != space_map_object(vd->vdev_dtl_sm)) { 3817 vdev_dbgmsg(vd, "txg %llu, spa %s, DTL old object %llu, " 3818 "new object %llu", (u_longlong_t)txg, spa_name(spa), 3819 (u_longlong_t)object, 3820 (u_longlong_t)space_map_object(vd->vdev_dtl_sm)); 3821 vdev_config_dirty(vd->vdev_top); 3822 } 3823 3824 dmu_tx_commit(tx); 3825 } 3826 3827 /* 3828 * Determine whether the specified vdev can be 3829 * - offlined 3830 * - detached 3831 * - removed 3832 * - faulted 3833 * without losing data. 3834 */ 3835 boolean_t 3836 vdev_dtl_required(vdev_t *vd) 3837 { 3838 spa_t *spa = vd->vdev_spa; 3839 vdev_t *tvd = vd->vdev_top; 3840 uint8_t cant_read = vd->vdev_cant_read; 3841 boolean_t required; 3842 boolean_t faulting = vd->vdev_state == VDEV_STATE_FAULTED; 3843 3844 ASSERT(spa_config_held(spa, SCL_STATE_ALL, RW_WRITER) == SCL_STATE_ALL); 3845 3846 if (vd == spa->spa_root_vdev || vd == tvd) 3847 return (B_TRUE); 3848 3849 /* 3850 * Temporarily mark the device as unreadable, and then determine 3851 * whether this results in any DTL outages in the top-level vdev. 3852 * If not, we can safely offline/detach/remove the device. 3853 */ 3854 vd->vdev_cant_read = B_TRUE; 3855 vdev_dtl_reassess_impl(tvd, 0, 0, B_FALSE, B_FALSE, faulting); 3856 required = !vdev_dtl_empty(tvd, DTL_OUTAGE); 3857 vd->vdev_cant_read = cant_read; 3858 vdev_dtl_reassess_impl(tvd, 0, 0, B_FALSE, B_FALSE, faulting); 3859 3860 if (!required && zio_injection_enabled) { 3861 required = !!zio_handle_device_injection(vd, NULL, 3862 SET_ERROR(ECHILD)); 3863 } 3864 3865 return (required); 3866 } 3867 3868 /* 3869 * Determine if resilver is needed, and if so the txg range. 3870 */ 3871 boolean_t 3872 vdev_resilver_needed(vdev_t *vd, uint64_t *minp, uint64_t *maxp) 3873 { 3874 boolean_t needed = B_FALSE; 3875 uint64_t thismin = UINT64_MAX; 3876 uint64_t thismax = 0; 3877 3878 if (vd->vdev_children == 0) { 3879 mutex_enter(&vd->vdev_dtl_lock); 3880 if (!zfs_range_tree_is_empty(vd->vdev_dtl[DTL_MISSING]) && 3881 vdev_writeable(vd)) { 3882 3883 thismin = vdev_dtl_min(vd); 3884 thismax = vdev_dtl_max(vd); 3885 needed = B_TRUE; 3886 } 3887 mutex_exit(&vd->vdev_dtl_lock); 3888 } else { 3889 for (int c = 0; c < vd->vdev_children; c++) { 3890 vdev_t *cvd = vd->vdev_child[c]; 3891 uint64_t cmin, cmax; 3892 3893 if (vdev_resilver_needed(cvd, &cmin, &cmax)) { 3894 thismin = MIN(thismin, cmin); 3895 thismax = MAX(thismax, cmax); 3896 needed = B_TRUE; 3897 } 3898 } 3899 } 3900 3901 if (needed && minp) { 3902 *minp = thismin; 3903 *maxp = thismax; 3904 } 3905 return (needed); 3906 } 3907 3908 /* 3909 * Gets the checkpoint space map object from the vdev's ZAP. On success sm_obj 3910 * will contain either the checkpoint spacemap object or zero if none exists. 3911 * All other errors are returned to the caller. 3912 */ 3913 int 3914 vdev_checkpoint_sm_object(vdev_t *vd, uint64_t *sm_obj) 3915 { 3916 ASSERT0(spa_config_held(vd->vdev_spa, SCL_ALL, RW_WRITER)); 3917 3918 if (vd->vdev_top_zap == 0) { 3919 *sm_obj = 0; 3920 return (0); 3921 } 3922 3923 int error = zap_lookup(spa_meta_objset(vd->vdev_spa), vd->vdev_top_zap, 3924 VDEV_TOP_ZAP_POOL_CHECKPOINT_SM, sizeof (uint64_t), 1, sm_obj); 3925 if (error == ENOENT) { 3926 *sm_obj = 0; 3927 error = 0; 3928 } 3929 3930 return (error); 3931 } 3932 3933 int 3934 vdev_load(vdev_t *vd) 3935 { 3936 int children = vd->vdev_children; 3937 int error = 0; 3938 taskq_t *tq = NULL; 3939 3940 /* 3941 * It's only worthwhile to use the taskq for the root vdev, because the 3942 * slow part is metaslab_init, and that only happens for top-level 3943 * vdevs. 3944 */ 3945 if (vd->vdev_ops == &vdev_root_ops && vd->vdev_children > 0) { 3946 tq = taskq_create("vdev_load", children, minclsyspri, 3947 children, children, TASKQ_PREPOPULATE); 3948 } 3949 3950 /* 3951 * Recursively load all children. 3952 */ 3953 for (int c = 0; c < vd->vdev_children; c++) { 3954 vdev_t *cvd = vd->vdev_child[c]; 3955 3956 if (tq == NULL || vdev_uses_zvols(cvd)) { 3957 cvd->vdev_load_error = vdev_load(cvd); 3958 } else { 3959 VERIFY(taskq_dispatch(tq, vdev_load_child, 3960 cvd, TQ_SLEEP) != TASKQID_INVALID); 3961 } 3962 } 3963 3964 if (tq != NULL) { 3965 taskq_wait(tq); 3966 taskq_destroy(tq); 3967 } 3968 3969 for (int c = 0; c < vd->vdev_children; c++) { 3970 int error = vd->vdev_child[c]->vdev_load_error; 3971 3972 if (error != 0) 3973 return (error); 3974 } 3975 3976 vdev_set_deflate_ratio(vd); 3977 3978 if (vd->vdev_ops == &vdev_raidz_ops) { 3979 error = vdev_raidz_load(vd); 3980 if (error != 0) 3981 return (error); 3982 } 3983 3984 /* 3985 * On spa_load path, grab the allocation bias from our zap 3986 */ 3987 if (vd == vd->vdev_top && vd->vdev_top_zap != 0) { 3988 spa_t *spa = vd->vdev_spa; 3989 char bias_str[64]; 3990 3991 error = zap_lookup(spa->spa_meta_objset, vd->vdev_top_zap, 3992 VDEV_TOP_ZAP_ALLOCATION_BIAS, 1, sizeof (bias_str), 3993 bias_str); 3994 if (error == 0) { 3995 ASSERT(vd->vdev_alloc_bias == VDEV_BIAS_NONE); 3996 vd->vdev_alloc_bias = vdev_derive_alloc_bias(bias_str); 3997 } else if (error != ENOENT) { 3998 vdev_set_state(vd, B_FALSE, VDEV_STATE_CANT_OPEN, 3999 VDEV_AUX_CORRUPT_DATA); 4000 vdev_dbgmsg(vd, "vdev_load: zap_lookup(top_zap=%llu) " 4001 "failed [error=%d]", 4002 (u_longlong_t)vd->vdev_top_zap, error); 4003 return (error); 4004 } 4005 } 4006 4007 if (vd == vd->vdev_top && vd->vdev_top_zap != 0) { 4008 spa_t *spa = vd->vdev_spa; 4009 uint64_t failfast; 4010 4011 error = zap_lookup(spa->spa_meta_objset, vd->vdev_top_zap, 4012 vdev_prop_to_name(VDEV_PROP_FAILFAST), sizeof (failfast), 4013 1, &failfast); 4014 if (error == 0) { 4015 vd->vdev_failfast = failfast; 4016 } else if (error == ENOENT) { 4017 vd->vdev_failfast = ZPROP_BOOLEAN_INHERIT; 4018 } else { 4019 vdev_dbgmsg(vd, 4020 "vdev_load: zap_lookup(top_zap=%llu) " 4021 "failed [error=%d]", 4022 (u_longlong_t)vd->vdev_top_zap, error); 4023 } 4024 } 4025 4026 if (vd == vd->vdev_top && vd->vdev_top_zap != 0) { 4027 spa_t *spa = vd->vdev_spa; 4028 uint64_t autosit; 4029 4030 error = zap_lookup(spa->spa_meta_objset, vd->vdev_top_zap, 4031 vdev_prop_to_name(VDEV_PROP_AUTOSIT), sizeof (autosit), 4032 1, &autosit); 4033 if (error == 0) { 4034 vd->vdev_autosit = autosit == 1; 4035 } else if (error == ENOENT) { 4036 vd->vdev_autosit = vdev_prop_default_numeric( 4037 VDEV_PROP_AUTOSIT); 4038 } else { 4039 vdev_dbgmsg(vd, 4040 "vdev_load: zap_lookup(top_zap=%llu) " 4041 "failed [error=%d]", 4042 (u_longlong_t)vd->vdev_top_zap, error); 4043 } 4044 } 4045 4046 /* 4047 * Load any rebuild state from the top-level vdev zap. 4048 */ 4049 if (vd == vd->vdev_top && vd->vdev_top_zap != 0) { 4050 error = vdev_rebuild_load(vd); 4051 if (error && error != ENOTSUP) { 4052 vdev_set_state(vd, B_FALSE, VDEV_STATE_CANT_OPEN, 4053 VDEV_AUX_CORRUPT_DATA); 4054 vdev_dbgmsg(vd, "vdev_load: vdev_rebuild_load " 4055 "failed [error=%d]", error); 4056 return (error); 4057 } 4058 } 4059 4060 if (vd->vdev_top_zap != 0 || vd->vdev_leaf_zap != 0) { 4061 uint64_t zapobj; 4062 4063 if (vd->vdev_top_zap != 0) 4064 zapobj = vd->vdev_top_zap; 4065 else 4066 zapobj = vd->vdev_leaf_zap; 4067 4068 error = vdev_prop_get_int(vd, VDEV_PROP_CHECKSUM_N, 4069 &vd->vdev_checksum_n); 4070 if (error && error != ENOENT) 4071 vdev_dbgmsg(vd, "vdev_load: zap_lookup(zap=%llu) " 4072 "failed [error=%d]", (u_longlong_t)zapobj, error); 4073 4074 error = vdev_prop_get_int(vd, VDEV_PROP_CHECKSUM_T, 4075 &vd->vdev_checksum_t); 4076 if (error && error != ENOENT) 4077 vdev_dbgmsg(vd, "vdev_load: zap_lookup(zap=%llu) " 4078 "failed [error=%d]", (u_longlong_t)zapobj, error); 4079 4080 error = vdev_prop_get_int(vd, VDEV_PROP_IO_N, 4081 &vd->vdev_io_n); 4082 if (error && error != ENOENT) 4083 vdev_dbgmsg(vd, "vdev_load: zap_lookup(zap=%llu) " 4084 "failed [error=%d]", (u_longlong_t)zapobj, error); 4085 4086 error = vdev_prop_get_int(vd, VDEV_PROP_IO_T, 4087 &vd->vdev_io_t); 4088 if (error && error != ENOENT) 4089 vdev_dbgmsg(vd, "vdev_load: zap_lookup(zap=%llu) " 4090 "failed [error=%d]", (u_longlong_t)zapobj, error); 4091 4092 error = vdev_prop_get_bool(vd, VDEV_PROP_SLOW_IO_EVENTS, 4093 &vd->vdev_slow_io_events); 4094 if (error && error != ENOENT) 4095 vdev_dbgmsg(vd, "vdev_load: zap_lookup(zap=%llu) " 4096 "failed [error=%d]", (u_longlong_t)zapobj, error); 4097 error = vdev_prop_get_int(vd, VDEV_PROP_SLOW_IO_N, 4098 &vd->vdev_slow_io_n); 4099 if (error && error != ENOENT) 4100 vdev_dbgmsg(vd, "vdev_load: zap_lookup(zap=%llu) " 4101 "failed [error=%d]", (u_longlong_t)zapobj, error); 4102 4103 error = vdev_prop_get_int(vd, VDEV_PROP_SLOW_IO_T, 4104 &vd->vdev_slow_io_t); 4105 if (error && error != ENOENT) 4106 vdev_dbgmsg(vd, "vdev_load: zap_lookup(zap=%llu) " 4107 "failed [error=%d]", (u_longlong_t)zapobj, error); 4108 4109 error = vdev_prop_get_int(vd, VDEV_PROP_SCHEDULER, 4110 &vd->vdev_scheduler); 4111 if (error && error != ENOENT) 4112 vdev_dbgmsg(vd, "vdev_load: zap_lookup(zap=%llu) " 4113 "failed [error=%d]", (u_longlong_t)zapobj, error); 4114 } 4115 4116 /* 4117 * If this is a top-level vdev, initialize its metaslabs. 4118 */ 4119 if (vd == vd->vdev_top && vdev_is_concrete(vd)) { 4120 vdev_metaslab_group_create(vd); 4121 4122 if (vd->vdev_ashift == 0 || vd->vdev_asize == 0) { 4123 vdev_set_state(vd, B_FALSE, VDEV_STATE_CANT_OPEN, 4124 VDEV_AUX_CORRUPT_DATA); 4125 vdev_dbgmsg(vd, "vdev_load: invalid size. ashift=%llu, " 4126 "asize=%llu", (u_longlong_t)vd->vdev_ashift, 4127 (u_longlong_t)vd->vdev_asize); 4128 return (SET_ERROR(ENXIO)); 4129 } 4130 4131 error = vdev_metaslab_init(vd, 0); 4132 if (error != 0) { 4133 vdev_dbgmsg(vd, "vdev_load: metaslab_init failed " 4134 "[error=%d]", error); 4135 vdev_set_state(vd, B_FALSE, VDEV_STATE_CANT_OPEN, 4136 VDEV_AUX_CORRUPT_DATA); 4137 return (error); 4138 } 4139 4140 uint64_t checkpoint_sm_obj; 4141 error = vdev_checkpoint_sm_object(vd, &checkpoint_sm_obj); 4142 if (error == 0 && checkpoint_sm_obj != 0) { 4143 objset_t *mos = spa_meta_objset(vd->vdev_spa); 4144 ASSERT(vd->vdev_asize != 0); 4145 ASSERT0P(vd->vdev_checkpoint_sm); 4146 4147 error = space_map_open(&vd->vdev_checkpoint_sm, 4148 mos, checkpoint_sm_obj, 0, vd->vdev_asize, 4149 vd->vdev_ashift); 4150 if (error != 0) { 4151 vdev_dbgmsg(vd, "vdev_load: space_map_open " 4152 "failed for checkpoint spacemap (obj %llu) " 4153 "[error=%d]", 4154 (u_longlong_t)checkpoint_sm_obj, error); 4155 return (error); 4156 } 4157 ASSERT3P(vd->vdev_checkpoint_sm, !=, NULL); 4158 4159 /* 4160 * Since the checkpoint_sm contains free entries 4161 * exclusively we can use space_map_allocated() to 4162 * indicate the cumulative checkpointed space that 4163 * has been freed. 4164 */ 4165 vd->vdev_stat.vs_checkpoint_space = 4166 -space_map_allocated(vd->vdev_checkpoint_sm); 4167 vd->vdev_spa->spa_checkpoint_info.sci_dspace += 4168 vd->vdev_stat.vs_checkpoint_space; 4169 } else if (error != 0) { 4170 vdev_dbgmsg(vd, "vdev_load: failed to retrieve " 4171 "checkpoint space map object from vdev ZAP " 4172 "[error=%d]", error); 4173 return (error); 4174 } 4175 } 4176 4177 /* 4178 * If this is a leaf vdev, load its DTL. 4179 */ 4180 if (vd->vdev_ops->vdev_op_leaf && (error = vdev_dtl_load(vd)) != 0) { 4181 vdev_set_state(vd, B_FALSE, VDEV_STATE_CANT_OPEN, 4182 VDEV_AUX_CORRUPT_DATA); 4183 vdev_dbgmsg(vd, "vdev_load: vdev_dtl_load failed " 4184 "[error=%d]", error); 4185 return (error); 4186 } 4187 4188 uint64_t obsolete_sm_object; 4189 error = vdev_obsolete_sm_object(vd, &obsolete_sm_object); 4190 if (error == 0 && obsolete_sm_object != 0) { 4191 objset_t *mos = vd->vdev_spa->spa_meta_objset; 4192 ASSERT(vd->vdev_asize != 0); 4193 ASSERT0P(vd->vdev_obsolete_sm); 4194 4195 if ((error = space_map_open(&vd->vdev_obsolete_sm, mos, 4196 obsolete_sm_object, 0, vd->vdev_asize, 0))) { 4197 vdev_set_state(vd, B_FALSE, VDEV_STATE_CANT_OPEN, 4198 VDEV_AUX_CORRUPT_DATA); 4199 vdev_dbgmsg(vd, "vdev_load: space_map_open failed for " 4200 "obsolete spacemap (obj %llu) [error=%d]", 4201 (u_longlong_t)obsolete_sm_object, error); 4202 return (error); 4203 } 4204 } else if (error != 0) { 4205 vdev_dbgmsg(vd, "vdev_load: failed to retrieve obsolete " 4206 "space map object from vdev ZAP [error=%d]", error); 4207 return (error); 4208 } 4209 4210 return (0); 4211 } 4212 4213 /* 4214 * The special vdev case is used for hot spares and l2cache devices. Its 4215 * sole purpose it to set the vdev state for the associated vdev. To do this, 4216 * we make sure that we can open the underlying device, then try to read the 4217 * label, and make sure that the label is sane and that it hasn't been 4218 * repurposed to another pool. 4219 */ 4220 int 4221 vdev_validate_aux(vdev_t *vd) 4222 { 4223 nvlist_t *label; 4224 uint64_t guid, version; 4225 uint64_t state; 4226 4227 if (!vdev_readable(vd)) 4228 return (0); 4229 4230 if ((label = vdev_label_read_config(vd, -1ULL, 4231 VDEV_LABELS_ALL)) == NULL) { 4232 vdev_set_state(vd, B_TRUE, VDEV_STATE_CANT_OPEN, 4233 VDEV_AUX_CORRUPT_DATA); 4234 return (-1); 4235 } 4236 4237 if (nvlist_lookup_uint64(label, ZPOOL_CONFIG_VERSION, &version) != 0 || 4238 !SPA_VERSION_IS_SUPPORTED(version) || 4239 nvlist_lookup_uint64(label, ZPOOL_CONFIG_GUID, &guid) != 0 || 4240 guid != vd->vdev_guid || 4241 nvlist_lookup_uint64(label, ZPOOL_CONFIG_POOL_STATE, &state) != 0) { 4242 vdev_set_state(vd, B_TRUE, VDEV_STATE_CANT_OPEN, 4243 VDEV_AUX_CORRUPT_DATA); 4244 nvlist_free(label); 4245 return (-1); 4246 } 4247 4248 /* 4249 * We don't actually check the pool state here. If it's in fact in 4250 * use by another pool, we update this fact on the fly when requested. 4251 */ 4252 nvlist_free(label); 4253 return (0); 4254 } 4255 4256 static void 4257 vdev_destroy_ms_flush_data(vdev_t *vd, dmu_tx_t *tx) 4258 { 4259 objset_t *mos = spa_meta_objset(vd->vdev_spa); 4260 4261 if (vd->vdev_top_zap == 0) 4262 return; 4263 4264 uint64_t object = 0; 4265 int err = zap_lookup(mos, vd->vdev_top_zap, 4266 VDEV_TOP_ZAP_MS_UNFLUSHED_PHYS_TXGS, sizeof (uint64_t), 1, &object); 4267 if (err == ENOENT) 4268 return; 4269 VERIFY0(err); 4270 4271 VERIFY0(dmu_object_free(mos, object, tx)); 4272 VERIFY0(zap_remove(mos, vd->vdev_top_zap, 4273 VDEV_TOP_ZAP_MS_UNFLUSHED_PHYS_TXGS, tx)); 4274 } 4275 4276 /* 4277 * Free the objects used to store this vdev's spacemaps, and the array 4278 * that points to them. 4279 */ 4280 void 4281 vdev_destroy_spacemaps(vdev_t *vd, dmu_tx_t *tx) 4282 { 4283 if (vd->vdev_ms_array == 0) 4284 return; 4285 4286 objset_t *mos = vd->vdev_spa->spa_meta_objset; 4287 uint64_t array_count = vd->vdev_asize >> vd->vdev_ms_shift; 4288 size_t array_bytes = array_count * sizeof (uint64_t); 4289 uint64_t *smobj_array = kmem_alloc(array_bytes, KM_SLEEP); 4290 VERIFY0(dmu_read(mos, vd->vdev_ms_array, 0, 4291 array_bytes, smobj_array, 0)); 4292 4293 for (uint64_t i = 0; i < array_count; i++) { 4294 uint64_t smobj = smobj_array[i]; 4295 if (smobj == 0) 4296 continue; 4297 4298 space_map_free_obj(mos, smobj, tx); 4299 } 4300 4301 kmem_free(smobj_array, array_bytes); 4302 VERIFY0(dmu_object_free(mos, vd->vdev_ms_array, tx)); 4303 vdev_destroy_ms_flush_data(vd, tx); 4304 vd->vdev_ms_array = 0; 4305 } 4306 4307 static void 4308 vdev_remove_empty_log(vdev_t *vd, uint64_t txg) 4309 { 4310 spa_t *spa = vd->vdev_spa; 4311 4312 ASSERT(vd->vdev_islog); 4313 ASSERT(vd == vd->vdev_top); 4314 ASSERT3U(txg, ==, spa_syncing_txg(spa)); 4315 4316 dmu_tx_t *tx = dmu_tx_create_assigned(spa_get_dsl(spa), txg); 4317 4318 vdev_destroy_spacemaps(vd, tx); 4319 if (vd->vdev_top_zap != 0) { 4320 vdev_destroy_unlink_zap(vd, vd->vdev_top_zap, tx); 4321 vd->vdev_top_zap = 0; 4322 } 4323 4324 dmu_tx_commit(tx); 4325 } 4326 4327 static void 4328 metaslab_sync_done_task(void *arg) 4329 { 4330 metaslab_t *msp = arg; 4331 spa_t *spa = msp->ms_group->mg_vd->vdev_spa; 4332 metaslab_sync_done(msp, spa_syncing_txg(spa)); 4333 } 4334 4335 void 4336 vdev_sync_dispatch(vdev_t *vd, uint64_t txg) 4337 { 4338 spa_t *spa = vd->vdev_spa; 4339 4340 ASSERT(vdev_is_concrete(vd)); 4341 4342 for (metaslab_t *msp = txg_list_head(&vd->vdev_ms_list, TXG_CLEAN(txg)); 4343 msp; msp = txg_list_next(&vd->vdev_ms_list, msp, TXG_CLEAN(txg))) { 4344 (void) taskq_dispatch(spa->spa_sync_tq, 4345 metaslab_sync_done_task, msp, TQ_SLEEP); 4346 } 4347 } 4348 4349 void 4350 vdev_sync_done(vdev_t *vd, uint64_t txg) 4351 { 4352 boolean_t reassess = !txg_list_empty(&vd->vdev_ms_list, TXG_CLEAN(txg)); 4353 4354 ASSERT(vdev_is_concrete(vd)); 4355 4356 taskq_wait(vd->vdev_spa->spa_sync_tq); 4357 4358 while (txg_list_remove(&vd->vdev_ms_list, TXG_CLEAN(txg)) != NULL) 4359 ; 4360 4361 if (reassess) { 4362 metaslab_sync_reassess(vd->vdev_mg); 4363 if (vd->vdev_log_mg != NULL) 4364 metaslab_sync_reassess(vd->vdev_log_mg); 4365 } 4366 } 4367 4368 void 4369 vdev_sync(vdev_t *vd, uint64_t txg) 4370 { 4371 spa_t *spa = vd->vdev_spa; 4372 vdev_t *lvd; 4373 metaslab_t *msp; 4374 4375 ASSERT3U(txg, ==, spa->spa_syncing_txg); 4376 dmu_tx_t *tx = dmu_tx_create_assigned(spa->spa_dsl_pool, txg); 4377 if (zfs_range_tree_space(vd->vdev_obsolete_segments) > 0) { 4378 ASSERT(vd->vdev_removing || 4379 vd->vdev_ops == &vdev_indirect_ops); 4380 4381 vdev_indirect_sync_obsolete(vd, tx); 4382 4383 /* 4384 * If the vdev is indirect, it can't have dirty 4385 * metaslabs or DTLs. 4386 */ 4387 if (vd->vdev_ops == &vdev_indirect_ops) { 4388 ASSERT(txg_list_empty(&vd->vdev_ms_list, txg)); 4389 ASSERT(txg_list_empty(&vd->vdev_dtl_list, txg)); 4390 dmu_tx_commit(tx); 4391 return; 4392 } 4393 } 4394 4395 ASSERT(vdev_is_concrete(vd)); 4396 4397 if (vd->vdev_ms_array == 0 && vd->vdev_ms_shift != 0 && 4398 !vd->vdev_removing) { 4399 ASSERT(vd == vd->vdev_top); 4400 ASSERT0(vd->vdev_indirect_config.vic_mapping_object); 4401 vd->vdev_ms_array = dmu_object_alloc(spa->spa_meta_objset, 4402 DMU_OT_OBJECT_ARRAY, 0, DMU_OT_NONE, 0, tx); 4403 ASSERT(vd->vdev_ms_array != 0); 4404 vdev_config_dirty(vd); 4405 } 4406 4407 while ((msp = txg_list_remove(&vd->vdev_ms_list, txg)) != NULL) { 4408 metaslab_sync(msp, txg); 4409 (void) txg_list_add(&vd->vdev_ms_list, msp, TXG_CLEAN(txg)); 4410 } 4411 4412 while ((lvd = txg_list_remove(&vd->vdev_dtl_list, txg)) != NULL) 4413 vdev_dtl_sync(lvd, txg); 4414 4415 /* 4416 * If this is an empty log device being removed, destroy the 4417 * metadata associated with it. 4418 */ 4419 if (vd->vdev_islog && vd->vdev_stat.vs_alloc == 0 && vd->vdev_removing) 4420 vdev_remove_empty_log(vd, txg); 4421 4422 (void) txg_list_add(&spa->spa_vdev_txg_list, vd, TXG_CLEAN(txg)); 4423 dmu_tx_commit(tx); 4424 } 4425 uint64_t 4426 vdev_asize_to_psize_txg(vdev_t *vd, uint64_t asize, uint64_t txg) 4427 { 4428 return (vd->vdev_ops->vdev_op_asize_to_psize(vd, asize, txg)); 4429 } 4430 4431 /* 4432 * Return the amount of space that should be (or was) allocated for the given 4433 * psize (compressed block size) in the given TXG. Note that for expanded 4434 * RAIDZ vdevs, the size allocated for older BP's may be larger. See 4435 * vdev_raidz_psize_to_asize(). 4436 */ 4437 uint64_t 4438 vdev_psize_to_asize_txg(vdev_t *vd, uint64_t psize, uint64_t txg) 4439 { 4440 return (vd->vdev_ops->vdev_op_psize_to_asize(vd, psize, txg)); 4441 } 4442 4443 uint64_t 4444 vdev_psize_to_asize(vdev_t *vd, uint64_t psize) 4445 { 4446 return (vdev_psize_to_asize_txg(vd, psize, 0)); 4447 } 4448 4449 /* 4450 * Stop any TRIM or initialize operation running on a vdev which has just 4451 * stopped being writeable, and wait for its thread to exit, so that no IO 4452 * from the operation outlives the ioctl and the state "zpool status" reports 4453 * is the final one. Otherwise the thread only notices at its next 4454 * vdev_trim_should_stop() check, and it is that thread which records the 4455 * final state, so "zpool offline -f" would return with the operation still 4456 * running -- and still issuing IO to the device the administrator has just 4457 * faulted. spa_vdev_state_exit() already waits for the txg to sync for the 4458 * same reason: "when the command completes, you expect no further I/O from 4459 * ZFS". 4460 * 4461 * A faulted vdev cancels, the way spa_vdev_config_exit() does for a vdev on 4462 * its way out, so that the result is recorded here rather than left to the 4463 * thread. A vdev which is merely offline only waits: its operation stays 4464 * VDEV_TRIM_ACTIVE / VDEV_INITIALIZE_ACTIVE on disk and resumes on 4465 * "zpool online", which is what vdev_trim_restart() is for. 4466 * 4467 * This has to run after spa_vdev_state_exit() has dropped the config locks: 4468 * vdev_trim_stop() must not be called with SCL_STATE held as a writer, which 4469 * spa_vdev_state_enter() holds, and the thread being waited for takes 4470 * SCL_CONFIG as a reader and calls txg_wait_synced() on its way out. 4471 */ 4472 static void 4473 vdev_stop_trim_initialize(spa_t *spa, uint64_t guid) 4474 { 4475 vdev_t *vd; 4476 boolean_t cancel; 4477 4478 spa_namespace_enter(FTAG); 4479 4480 spa_config_enter(spa, SCL_CONFIG | SCL_STATE, FTAG, RW_READER); 4481 vd = spa_lookup_by_guid(spa, guid, B_TRUE); 4482 if (vd == NULL || !vd->vdev_ops->vdev_op_leaf || 4483 !vdev_is_concrete(vd) || vdev_writeable(vd)) { 4484 spa_config_exit(spa, SCL_CONFIG | SCL_STATE, FTAG); 4485 spa_namespace_exit(FTAG); 4486 return; 4487 } 4488 cancel = vd->vdev_faulted; 4489 spa_config_exit(spa, SCL_CONFIG | SCL_STATE, FTAG); 4490 4491 /* 4492 * Only cancel an operation which is actually running: a canceling 4493 * vdev_trim_stop() proceeds with no thread as well, and would then 4494 * overwrite the recorded result of one which had already finished. 4495 */ 4496 mutex_enter(&vd->vdev_trim_lock); 4497 if (cancel && vd->vdev_trim_thread != NULL && 4498 vd->vdev_trim_state == VDEV_TRIM_ACTIVE) { 4499 vdev_trim_stop(vd, VDEV_TRIM_CANCELED, NULL); 4500 } else { 4501 while (vd->vdev_trim_thread != NULL) 4502 cv_wait(&vd->vdev_trim_cv, &vd->vdev_trim_lock); 4503 } 4504 mutex_exit(&vd->vdev_trim_lock); 4505 4506 mutex_enter(&vd->vdev_initialize_lock); 4507 if (cancel && vd->vdev_initialize_thread != NULL && 4508 vd->vdev_initialize_state == VDEV_INITIALIZE_ACTIVE) { 4509 vdev_initialize_stop(vd, VDEV_INITIALIZE_CANCELED, NULL); 4510 } else { 4511 while (vd->vdev_initialize_thread != NULL) { 4512 cv_wait(&vd->vdev_initialize_cv, 4513 &vd->vdev_initialize_lock); 4514 } 4515 } 4516 mutex_exit(&vd->vdev_initialize_lock); 4517 4518 spa_namespace_exit(FTAG); 4519 } 4520 4521 /* 4522 * Mark the given vdev faulted. A faulted vdev behaves as if the device could 4523 * not be opened, and no I/O is attempted. 4524 */ 4525 int 4526 vdev_fault(spa_t *spa, uint64_t guid, vdev_aux_t aux) 4527 { 4528 vdev_t *vd, *tvd; 4529 int error; 4530 4531 spa_vdev_state_enter(spa, SCL_NONE); 4532 4533 if ((vd = spa_lookup_by_guid(spa, guid, B_TRUE)) == NULL) 4534 return (spa_vdev_state_exit(spa, NULL, SET_ERROR(ENODEV))); 4535 4536 if (!vd->vdev_ops->vdev_op_leaf) 4537 return (spa_vdev_state_exit(spa, NULL, SET_ERROR(ENOTSUP))); 4538 4539 tvd = vd->vdev_top; 4540 4541 /* 4542 * If user did a 'zpool offline -f' then make the fault persist across 4543 * reboots. 4544 */ 4545 if (aux == VDEV_AUX_EXTERNAL_PERSIST) { 4546 /* 4547 * There are two kinds of forced faults: temporary and 4548 * persistent. Temporary faults go away at pool import, while 4549 * persistent faults stay set. Both types of faults can be 4550 * cleared with a zpool clear. 4551 * 4552 * We tell if a vdev is persistently faulted by looking at the 4553 * ZPOOL_CONFIG_AUX_STATE nvpair. If it's set to "external" at 4554 * import then it's a persistent fault. Otherwise, it's 4555 * temporary. We get ZPOOL_CONFIG_AUX_STATE set to "external" 4556 * by setting vd.vdev_stat.vs_aux to VDEV_AUX_EXTERNAL. This 4557 * tells vdev_config_generate() (which gets run later) to set 4558 * ZPOOL_CONFIG_AUX_STATE to "external" in the nvlist. 4559 */ 4560 vd->vdev_stat.vs_aux = VDEV_AUX_EXTERNAL; 4561 vd->vdev_tmpoffline = B_FALSE; 4562 aux = VDEV_AUX_EXTERNAL; 4563 } else { 4564 vd->vdev_tmpoffline = B_TRUE; 4565 } 4566 4567 /* 4568 * We don't directly use the aux state here, but if we do a 4569 * vdev_reopen(), we need this value to be present to remember why we 4570 * were faulted. 4571 */ 4572 vd->vdev_label_aux = aux; 4573 4574 /* 4575 * Faulted state takes precedence over degraded. 4576 */ 4577 vd->vdev_delayed_close = B_FALSE; 4578 vd->vdev_faulted = 1ULL; 4579 vd->vdev_degraded = 0ULL; 4580 vdev_set_state(vd, B_FALSE, VDEV_STATE_FAULTED, aux); 4581 4582 /* 4583 * If this device has the only valid copy of the data, then 4584 * back off and simply mark the vdev as degraded instead. 4585 */ 4586 if (!tvd->vdev_islog && vd->vdev_aux == NULL && vdev_dtl_required(vd)) { 4587 vd->vdev_degraded = 1ULL; 4588 vd->vdev_faulted = 0ULL; 4589 4590 /* 4591 * If we reopen the device and it's not dead, only then do we 4592 * mark it degraded. 4593 */ 4594 vdev_reopen(tvd); 4595 4596 if (vdev_readable(vd)) 4597 vdev_set_state(vd, B_FALSE, VDEV_STATE_DEGRADED, aux); 4598 } 4599 4600 error = spa_vdev_state_exit(spa, vd, 0); 4601 4602 if (error == 0) 4603 vdev_stop_trim_initialize(spa, guid); 4604 4605 return (error); 4606 } 4607 4608 /* 4609 * Mark the given vdev degraded. A degraded vdev is purely an indication to the 4610 * user that something is wrong. The vdev continues to operate as normal as far 4611 * as I/O is concerned. 4612 */ 4613 int 4614 vdev_degrade(spa_t *spa, uint64_t guid, vdev_aux_t aux) 4615 { 4616 vdev_t *vd; 4617 4618 spa_vdev_state_enter(spa, SCL_NONE); 4619 4620 if ((vd = spa_lookup_by_guid(spa, guid, B_TRUE)) == NULL) 4621 return (spa_vdev_state_exit(spa, NULL, SET_ERROR(ENODEV))); 4622 4623 if (!vd->vdev_ops->vdev_op_leaf) 4624 return (spa_vdev_state_exit(spa, NULL, SET_ERROR(ENOTSUP))); 4625 4626 /* 4627 * If the vdev is already faulted, then don't do anything. 4628 */ 4629 if (vd->vdev_faulted || vd->vdev_degraded) 4630 return (spa_vdev_state_exit(spa, NULL, 0)); 4631 4632 vd->vdev_degraded = 1ULL; 4633 if (!vdev_is_dead(vd)) 4634 vdev_set_state(vd, B_FALSE, VDEV_STATE_DEGRADED, 4635 aux); 4636 4637 return (spa_vdev_state_exit(spa, vd, 0)); 4638 } 4639 4640 int 4641 vdev_remove_wanted(spa_t *spa, uint64_t guid) 4642 { 4643 vdev_t *vd; 4644 4645 spa_vdev_state_enter(spa, SCL_NONE); 4646 4647 if ((vd = spa_lookup_by_guid(spa, guid, B_TRUE)) == NULL) 4648 return (spa_vdev_state_exit(spa, NULL, SET_ERROR(ENODEV))); 4649 4650 /* 4651 * If the vdev is already removed, or expanding which can trigger 4652 * repartition add/remove events, then don't do anything. 4653 */ 4654 if (vd->vdev_removed || vd->vdev_expanding) 4655 return (spa_vdev_state_exit(spa, NULL, 0)); 4656 4657 /* 4658 * Confirm the vdev has been removed, otherwise don't do anything. 4659 */ 4660 if (vd->vdev_ops->vdev_op_leaf && !zio_wait(vdev_probe(vd, NULL))) 4661 return (spa_vdev_state_exit(spa, NULL, SET_ERROR(EEXIST))); 4662 4663 vd->vdev_remove_wanted = B_TRUE; 4664 spa_async_request(spa, SPA_ASYNC_REMOVE_BY_USER); 4665 4666 return (spa_vdev_state_exit(spa, vd, 0)); 4667 } 4668 4669 4670 /* 4671 * Online the given vdev. 4672 * 4673 * If 'ZFS_ONLINE_UNSPARE' is set, it implies two things. First, any attached 4674 * spare device should be detached when the device finishes resilvering. 4675 * Second, the online should be treated like a 'test' online case, so no FMA 4676 * events are generated if the device fails to open. 4677 */ 4678 int 4679 vdev_online(spa_t *spa, uint64_t guid, uint64_t flags, vdev_state_t *newstate) 4680 { 4681 vdev_t *vd, *tvd, *pvd, *rvd = spa->spa_root_vdev; 4682 boolean_t wasoffline; 4683 vdev_state_t oldstate; 4684 4685 spa_vdev_state_enter(spa, SCL_NONE); 4686 4687 if ((vd = spa_lookup_by_guid(spa, guid, B_TRUE)) == NULL) 4688 return (spa_vdev_state_exit(spa, NULL, SET_ERROR(ENODEV))); 4689 4690 wasoffline = (vd->vdev_offline || vd->vdev_tmpoffline); 4691 oldstate = vd->vdev_state; 4692 4693 tvd = vd->vdev_top; 4694 vd->vdev_offline = B_FALSE; 4695 vd->vdev_tmpoffline = B_FALSE; 4696 vd->vdev_checkremove = !!(flags & ZFS_ONLINE_CHECKREMOVE); 4697 vd->vdev_forcefault = !!(flags & ZFS_ONLINE_FORCEFAULT); 4698 4699 /* XXX - L2ARC 1.0 does not support expansion */ 4700 if (!vd->vdev_aux) { 4701 for (pvd = vd; pvd != rvd; pvd = pvd->vdev_parent) 4702 pvd->vdev_expanding = !!((flags & ZFS_ONLINE_EXPAND) || 4703 spa->spa_autoexpand); 4704 vd->vdev_expansion_time = gethrestime_sec(); 4705 } 4706 4707 vdev_reopen(tvd); 4708 vd->vdev_checkremove = vd->vdev_forcefault = B_FALSE; 4709 4710 if (!vd->vdev_aux) { 4711 for (pvd = vd; pvd != rvd; pvd = pvd->vdev_parent) 4712 pvd->vdev_expanding = B_FALSE; 4713 } 4714 4715 if (newstate) 4716 *newstate = vd->vdev_state; 4717 if ((flags & ZFS_ONLINE_UNSPARE) && 4718 !vdev_is_dead(vd) && vd->vdev_parent && 4719 vd->vdev_parent->vdev_ops == &vdev_spare_ops && 4720 vd->vdev_parent->vdev_child[0] == vd) 4721 vd->vdev_unspare = B_TRUE; 4722 4723 if ((flags & ZFS_ONLINE_EXPAND) || spa->spa_autoexpand) { 4724 4725 /* XXX - L2ARC 1.0 does not support expansion */ 4726 if (vd->vdev_aux) 4727 return (spa_vdev_state_exit(spa, vd, ENOTSUP)); 4728 spa->spa_ccw_fail_time = 0; 4729 spa_async_request(spa, SPA_ASYNC_CONFIG_UPDATE); 4730 } 4731 4732 /* Restart initializing if necessary */ 4733 mutex_enter(&vd->vdev_initialize_lock); 4734 if (vdev_writeable(vd) && 4735 vd->vdev_initialize_thread == NULL && 4736 vd->vdev_initialize_state == VDEV_INITIALIZE_ACTIVE) { 4737 /* Preserve the fill value chosen when the run started. */ 4738 vdev_initialize(vd, vd->vdev_initialize_value, B_TRUE); 4739 } 4740 mutex_exit(&vd->vdev_initialize_lock); 4741 4742 /* 4743 * Restart trimming if necessary. We do not restart trimming for cache 4744 * devices here. This is triggered by l2arc_rebuild_vdev() 4745 * asynchronously for the whole device or in l2arc_evict() as it evicts 4746 * space for upcoming writes. 4747 */ 4748 mutex_enter(&vd->vdev_trim_lock); 4749 if (vdev_writeable(vd) && !vd->vdev_isl2cache && 4750 vd->vdev_trim_thread == NULL && 4751 vd->vdev_trim_state == VDEV_TRIM_ACTIVE) { 4752 (void) vdev_trim(vd, vd->vdev_trim_rate, vd->vdev_trim_partial, 4753 vd->vdev_trim_secure); 4754 } 4755 mutex_exit(&vd->vdev_trim_lock); 4756 4757 if (wasoffline || 4758 (oldstate < VDEV_STATE_DEGRADED && 4759 vd->vdev_state >= VDEV_STATE_DEGRADED)) { 4760 spa_event_notify(spa, vd, NULL, ESC_ZFS_VDEV_ONLINE); 4761 4762 /* 4763 * Asynchronously detach spare vdev if resilver or 4764 * rebuild is not required 4765 */ 4766 if (vd->vdev_unspare && 4767 !dsl_scan_resilvering(spa->spa_dsl_pool) && 4768 !dsl_scan_resilver_scheduled(spa->spa_dsl_pool) && 4769 !vdev_rebuild_active(tvd)) 4770 spa_async_request(spa, SPA_ASYNC_DETACH_SPARE); 4771 } 4772 return (spa_vdev_state_exit(spa, vd, 0)); 4773 } 4774 4775 static int 4776 vdev_offline_locked(spa_t *spa, uint64_t guid, uint64_t flags) 4777 { 4778 vdev_t *vd, *tvd; 4779 int error = 0; 4780 uint64_t generation; 4781 metaslab_group_t *mg; 4782 boolean_t dtl_required; 4783 4784 top: 4785 spa_vdev_state_enter(spa, SCL_ALLOC); 4786 4787 if ((vd = spa_lookup_by_guid(spa, guid, B_TRUE)) == NULL) 4788 return (spa_vdev_state_exit(spa, NULL, SET_ERROR(ENODEV))); 4789 4790 if (!vd->vdev_ops->vdev_op_leaf) 4791 return (spa_vdev_state_exit(spa, NULL, SET_ERROR(ENOTSUP))); 4792 4793 if (vd->vdev_ops == &vdev_draid_spare_ops) 4794 return (spa_vdev_state_exit(spa, NULL, ENOTSUP)); 4795 4796 tvd = vd->vdev_top; 4797 mg = tvd->vdev_mg; 4798 generation = spa->spa_config_generation + 1; 4799 4800 /* 4801 * If the device isn't already offline, try to offline it. 4802 */ 4803 if (!vd->vdev_offline) { 4804 dtl_required = vdev_dtl_required(vd); 4805 4806 /* 4807 * If this device has the only valid copy of some data, 4808 * don't allow it to be offlined. Log devices are always 4809 * expendable. 4810 */ 4811 if (!tvd->vdev_islog && vd->vdev_aux == NULL && dtl_required) 4812 return (spa_vdev_state_exit(spa, NULL, 4813 SET_ERROR(EBUSY))); 4814 4815 /* 4816 * If the top-level is a slog and it has had allocations 4817 * then proceed. We check that the vdev's metaslab group 4818 * is not NULL since it's possible that we may have just 4819 * added this vdev but not yet initialized its metaslabs. 4820 */ 4821 if (tvd->vdev_islog && mg != NULL && dtl_required) { 4822 /* 4823 * Prevent future allocations unless the log device is 4824 * redundant. 4825 */ 4826 ASSERT0P(tvd->vdev_log_mg); 4827 metaslab_group_passivate(mg); 4828 (void) spa_vdev_state_exit(spa, vd, 0); 4829 4830 error = spa_reset_logs(spa); 4831 4832 /* 4833 * If the log device was successfully reset but has 4834 * checkpointed data, do not offline it. 4835 */ 4836 if (error == 0 && 4837 tvd->vdev_checkpoint_sm != NULL) { 4838 ASSERT3U(space_map_allocated( 4839 tvd->vdev_checkpoint_sm), !=, 0); 4840 error = ZFS_ERR_CHECKPOINT_EXISTS; 4841 } 4842 4843 spa_vdev_state_enter(spa, SCL_ALLOC); 4844 4845 /* 4846 * Check to see if the config has changed. 4847 */ 4848 if (error || generation != spa->spa_config_generation) { 4849 metaslab_group_activate(mg); 4850 if (error) 4851 return (spa_vdev_state_exit(spa, 4852 vd, error)); 4853 (void) spa_vdev_state_exit(spa, vd, 0); 4854 goto top; 4855 } 4856 ASSERT0(tvd->vdev_stat.vs_alloc); 4857 } 4858 4859 /* 4860 * Offline this device and reopen its top-level vdev. 4861 * If the top-level vdev is a log device then just offline 4862 * it. Otherwise, if this action results in the top-level 4863 * vdev becoming unusable, undo it and fail the request. 4864 */ 4865 vd->vdev_offline = B_TRUE; 4866 vdev_reopen(tvd); 4867 4868 if (!tvd->vdev_islog && vd->vdev_aux == NULL && 4869 vdev_is_dead(tvd)) { 4870 vd->vdev_offline = B_FALSE; 4871 vdev_reopen(tvd); 4872 return (spa_vdev_state_exit(spa, NULL, 4873 SET_ERROR(EBUSY))); 4874 } 4875 4876 /* 4877 * Add the device back into the metaslab rotor so that 4878 * once we online the device it's open for business. 4879 */ 4880 if (tvd->vdev_islog && mg != NULL && dtl_required) 4881 metaslab_group_activate(mg); 4882 } 4883 4884 vd->vdev_tmpoffline = !!(flags & ZFS_OFFLINE_TEMPORARY); 4885 4886 return (spa_vdev_state_exit(spa, vd, 0)); 4887 } 4888 4889 int 4890 vdev_offline(spa_t *spa, uint64_t guid, uint64_t flags) 4891 { 4892 int error; 4893 4894 mutex_enter(&spa->spa_vdev_top_lock); 4895 error = vdev_offline_locked(spa, guid, flags); 4896 mutex_exit(&spa->spa_vdev_top_lock); 4897 4898 if (error == 0) 4899 vdev_stop_trim_initialize(spa, guid); 4900 4901 return (error); 4902 } 4903 4904 /* 4905 * Clear the error counts associated with this vdev. Unlike vdev_online() and 4906 * vdev_offline(), we assume the spa config is locked. We also clear all 4907 * children. If 'vd' is NULL, then the user wants to clear all vdevs. 4908 */ 4909 void 4910 vdev_clear(spa_t *spa, vdev_t *vd) 4911 { 4912 vdev_t *rvd = spa->spa_root_vdev; 4913 4914 ASSERT(spa_config_held(spa, SCL_STATE_ALL, RW_WRITER) == SCL_STATE_ALL); 4915 4916 if (vd == NULL) 4917 vd = rvd; 4918 4919 vd->vdev_stat.vs_read_errors = 0; 4920 vd->vdev_stat.vs_write_errors = 0; 4921 vd->vdev_stat.vs_checksum_errors = 0; 4922 vd->vdev_stat.vs_dio_verify_errors = 0; 4923 vd->vdev_stat.vs_slow_ios = 0; 4924 atomic_store_64((volatile uint64_t *)&vd->vdev_outlier_count, 0); 4925 vd->vdev_read_sit_out_expire = 0; 4926 4927 for (int c = 0; c < vd->vdev_children; c++) 4928 vdev_clear(spa, vd->vdev_child[c]); 4929 4930 /* 4931 * It makes no sense to "clear" an indirect or removed vdev. 4932 */ 4933 if (!vdev_is_concrete(vd) || vd->vdev_removed) 4934 return; 4935 4936 /* 4937 * If we're in the FAULTED state or have experienced failed I/O, then 4938 * clear the persistent state and attempt to reopen the device. We 4939 * also mark the vdev config dirty, so that the new faulted state is 4940 * written out to disk. 4941 */ 4942 if (vd->vdev_faulted || vd->vdev_degraded || 4943 !vdev_readable(vd) || !vdev_writeable(vd)) { 4944 /* 4945 * When reopening in response to a clear event, it may be due to 4946 * a fmadm repair request. In this case, if the device is 4947 * still broken, we want to still post the ereport again. 4948 */ 4949 vd->vdev_forcefault = B_TRUE; 4950 4951 vd->vdev_faulted = vd->vdev_degraded = 0ULL; 4952 vd->vdev_cant_read = B_FALSE; 4953 vd->vdev_cant_write = B_FALSE; 4954 vd->vdev_stat.vs_aux = 0; 4955 4956 vdev_reopen(vd == rvd ? rvd : vd->vdev_top); 4957 4958 vd->vdev_forcefault = B_FALSE; 4959 4960 if (vd != rvd && vdev_writeable(vd->vdev_top)) 4961 vdev_state_dirty(vd->vdev_top); 4962 4963 /* If a resilver isn't required, check if vdevs can be culled */ 4964 if (vd->vdev_aux == NULL && !vdev_is_dead(vd) && 4965 !dsl_scan_resilvering(spa->spa_dsl_pool) && 4966 !dsl_scan_resilver_scheduled(spa->spa_dsl_pool)) 4967 spa_async_request(spa, SPA_ASYNC_RESILVER_DONE); 4968 4969 spa_event_notify(spa, vd, NULL, ESC_ZFS_VDEV_CLEAR); 4970 } 4971 4972 /* 4973 * When clearing a FMA-diagnosed fault, we always want to 4974 * unspare the device, as we assume that the original spare was 4975 * done in response to the FMA fault. 4976 */ 4977 if (!vdev_is_dead(vd) && vd->vdev_parent != NULL && 4978 vd->vdev_parent->vdev_ops == &vdev_spare_ops && 4979 vd->vdev_parent->vdev_child[0] == vd) 4980 vd->vdev_unspare = B_TRUE; 4981 4982 /* Clear recent error events cache (i.e. duplicate events tracking) */ 4983 zfs_ereport_clear(spa, vd); 4984 } 4985 4986 boolean_t 4987 vdev_is_dead(vdev_t *vd) 4988 { 4989 /* 4990 * Holes and missing devices are always considered "dead". 4991 * This simplifies the code since we don't have to check for 4992 * these types of devices in the various code paths. 4993 * Instead we rely on the fact that we skip over dead devices 4994 * before issuing I/O to them. 4995 */ 4996 return (vd->vdev_state < VDEV_STATE_DEGRADED || 4997 vd->vdev_ops == &vdev_hole_ops || 4998 vd->vdev_ops == &vdev_missing_ops); 4999 } 5000 5001 boolean_t 5002 vdev_readable(vdev_t *vd) 5003 { 5004 return (!vdev_is_dead(vd) && !vd->vdev_cant_read); 5005 } 5006 5007 boolean_t 5008 vdev_writeable(vdev_t *vd) 5009 { 5010 return (!vdev_is_dead(vd) && !vd->vdev_cant_write && 5011 vdev_is_concrete(vd)); 5012 } 5013 5014 boolean_t 5015 vdev_allocatable(vdev_t *vd) 5016 { 5017 uint64_t state = vd->vdev_state; 5018 5019 /* 5020 * We currently allow allocations from vdevs which may be in the 5021 * process of reopening (i.e. VDEV_STATE_CLOSED). If the device 5022 * fails to reopen then we'll catch it later when we're holding 5023 * the proper locks. Note that we have to get the vdev state 5024 * in a local variable because although it changes atomically, 5025 * we're asking two separate questions about it. 5026 */ 5027 return (!(state < VDEV_STATE_DEGRADED && state != VDEV_STATE_CLOSED) && 5028 !vd->vdev_cant_write && vdev_is_concrete(vd) && 5029 vd->vdev_mg->mg_initialized); 5030 } 5031 5032 boolean_t 5033 vdev_accessible(vdev_t *vd, zio_t *zio) 5034 { 5035 ASSERT(zio->io_vd == vd); 5036 5037 if (vdev_is_dead(vd) || vd->vdev_remove_wanted) 5038 return (B_FALSE); 5039 5040 if (zio->io_type == ZIO_TYPE_READ) 5041 return (!vd->vdev_cant_read); 5042 5043 if (zio->io_type == ZIO_TYPE_WRITE) 5044 return (!vd->vdev_cant_write); 5045 5046 return (B_TRUE); 5047 } 5048 5049 static void 5050 vdev_get_child_stat(vdev_t *cvd, vdev_stat_t *vs, vdev_stat_t *cvs) 5051 { 5052 /* 5053 * Exclude the dRAID spare when aggregating to avoid double counting 5054 * the ops and bytes. These IOs are counted by the physical leaves. 5055 */ 5056 if (cvd->vdev_ops == &vdev_draid_spare_ops) 5057 return; 5058 5059 for (int t = 0; t < VS_ZIO_TYPES; t++) { 5060 vs->vs_ops[t] += cvs->vs_ops[t]; 5061 vs->vs_bytes[t] += cvs->vs_bytes[t]; 5062 } 5063 5064 cvs->vs_scan_removing = cvd->vdev_removing; 5065 } 5066 5067 /* 5068 * Get extended stats 5069 */ 5070 static void 5071 vdev_get_child_stat_ex(vdev_t *cvd, vdev_stat_ex_t *vsx, vdev_stat_ex_t *cvsx) 5072 { 5073 (void) cvd; 5074 5075 int t, b; 5076 for (t = 0; t < ZIO_TYPES; t++) { 5077 for (b = 0; b < ARRAY_SIZE(vsx->vsx_disk_histo[0]); b++) 5078 vsx->vsx_disk_histo[t][b] += cvsx->vsx_disk_histo[t][b]; 5079 5080 for (b = 0; b < ARRAY_SIZE(vsx->vsx_total_histo[0]); b++) { 5081 vsx->vsx_total_histo[t][b] += 5082 cvsx->vsx_total_histo[t][b]; 5083 } 5084 } 5085 5086 for (t = 0; t < ZIO_PRIORITY_NUM_QUEUEABLE; t++) { 5087 for (b = 0; b < ARRAY_SIZE(vsx->vsx_queue_histo[0]); b++) { 5088 vsx->vsx_queue_histo[t][b] += 5089 cvsx->vsx_queue_histo[t][b]; 5090 } 5091 vsx->vsx_active_queue[t] += cvsx->vsx_active_queue[t]; 5092 vsx->vsx_pend_queue[t] += cvsx->vsx_pend_queue[t]; 5093 5094 for (b = 0; b < ARRAY_SIZE(vsx->vsx_ind_histo[0]); b++) 5095 vsx->vsx_ind_histo[t][b] += cvsx->vsx_ind_histo[t][b]; 5096 5097 for (b = 0; b < ARRAY_SIZE(vsx->vsx_agg_histo[0]); b++) 5098 vsx->vsx_agg_histo[t][b] += cvsx->vsx_agg_histo[t][b]; 5099 } 5100 5101 } 5102 5103 boolean_t 5104 vdev_is_spacemap_addressable(vdev_t *vd) 5105 { 5106 if (spa_feature_is_active(vd->vdev_spa, SPA_FEATURE_SPACEMAP_V2)) 5107 return (B_TRUE); 5108 5109 /* 5110 * If double-word space map entries are not enabled we assume 5111 * 47 bits of the space map entry are dedicated to the entry's 5112 * offset (see SM_OFFSET_BITS in space_map.h). We then use that 5113 * to calculate the maximum address that can be described by a 5114 * space map entry for the given device. 5115 */ 5116 uint64_t shift = vd->vdev_ashift + SM_OFFSET_BITS; 5117 5118 if (shift >= 63) /* detect potential overflow */ 5119 return (B_TRUE); 5120 5121 return (vd->vdev_asize < (1ULL << shift)); 5122 } 5123 5124 /* 5125 * Get statistics for the given vdev. 5126 */ 5127 static void 5128 vdev_get_stats_ex_impl(vdev_t *vd, vdev_stat_t *vs, vdev_stat_ex_t *vsx) 5129 { 5130 int t; 5131 /* 5132 * If we're getting stats on the root vdev, aggregate the I/O counts 5133 * over all top-level vdevs (i.e. the direct children of the root). 5134 */ 5135 if (!vd->vdev_ops->vdev_op_leaf) { 5136 if (vs) { 5137 memset(vs->vs_ops, 0, sizeof (vs->vs_ops)); 5138 memset(vs->vs_bytes, 0, sizeof (vs->vs_bytes)); 5139 } 5140 if (vsx) 5141 memset(vsx, 0, sizeof (*vsx)); 5142 5143 for (int c = 0; c < vd->vdev_children; c++) { 5144 vdev_t *cvd = vd->vdev_child[c]; 5145 vdev_stat_t *cvs = &cvd->vdev_stat; 5146 vdev_stat_ex_t *cvsx = &cvd->vdev_stat_ex; 5147 5148 vdev_get_stats_ex_impl(cvd, cvs, cvsx); 5149 if (vs) 5150 vdev_get_child_stat(cvd, vs, cvs); 5151 if (vsx) 5152 vdev_get_child_stat_ex(cvd, vsx, cvsx); 5153 } 5154 } else { 5155 /* 5156 * We're a leaf. Just copy our ZIO active queue stats in. The 5157 * other leaf stats are updated in vdev_stat_update(). 5158 */ 5159 if (!vsx) 5160 return; 5161 5162 memcpy(vsx, &vd->vdev_stat_ex, sizeof (vd->vdev_stat_ex)); 5163 5164 for (t = 0; t < ZIO_PRIORITY_NUM_QUEUEABLE; t++) { 5165 vsx->vsx_active_queue[t] = vd->vdev_queue.vq_cactive[t]; 5166 vsx->vsx_pend_queue[t] = vdev_queue_class_length(vd, t); 5167 } 5168 } 5169 } 5170 5171 void 5172 vdev_get_stats_ex(vdev_t *vd, vdev_stat_t *vs, vdev_stat_ex_t *vsx) 5173 { 5174 vdev_t *tvd = vd->vdev_top; 5175 mutex_enter(&vd->vdev_stat_lock); 5176 if (vs) { 5177 memcpy(vs, &vd->vdev_stat, sizeof (*vs)); 5178 vs->vs_timestamp = gethrtime() - vs->vs_timestamp; 5179 vs->vs_state = vd->vdev_state; 5180 vs->vs_rsize = vdev_get_min_asize(vd); 5181 5182 if (vd->vdev_ops->vdev_op_leaf) { 5183 vs->vs_pspace = vd->vdev_psize; 5184 vs->vs_rsize += VDEV_LABEL_START_SIZE + 5185 VDEV_LABEL_END_SIZE; 5186 /* 5187 * Report initializing progress. Since we don't 5188 * have the initializing locks held, this is only 5189 * an estimate (although a fairly accurate one). 5190 */ 5191 vs->vs_initialize_bytes_done = 5192 vd->vdev_initialize_bytes_done; 5193 vs->vs_initialize_bytes_est = 5194 vd->vdev_initialize_bytes_est; 5195 vs->vs_initialize_state = vd->vdev_initialize_state; 5196 vs->vs_initialize_action_time = 5197 vd->vdev_initialize_action_time; 5198 5199 /* 5200 * Report manual TRIM progress. Since we don't have 5201 * the manual TRIM locks held, this is only an 5202 * estimate (although fairly accurate one). 5203 */ 5204 vs->vs_trim_notsup = !vd->vdev_has_trim; 5205 vs->vs_trim_bytes_done = vd->vdev_trim_bytes_done; 5206 vs->vs_trim_bytes_est = vd->vdev_trim_bytes_est; 5207 vs->vs_trim_state = vd->vdev_trim_state; 5208 vs->vs_trim_action_time = vd->vdev_trim_action_time; 5209 5210 /* Set when there is a deferred resilver. */ 5211 vs->vs_resilver_deferred = vd->vdev_resilver_deferred; 5212 } 5213 5214 /* 5215 * Report expandable space on top-level, non-auxiliary devices 5216 * only. The expandable space is reported in terms of metaslab 5217 * sized units since that determines how much space the pool 5218 * can expand. 5219 */ 5220 if (vd->vdev_aux == NULL && tvd != NULL) { 5221 vs->vs_esize = P2ALIGN_TYPED( 5222 vd->vdev_max_asize - vd->vdev_asize, 5223 1ULL << tvd->vdev_ms_shift, uint64_t); 5224 } 5225 5226 vs->vs_configured_ashift = vd->vdev_top != NULL 5227 ? vd->vdev_top->vdev_ashift : vd->vdev_ashift; 5228 vs->vs_logical_ashift = vd->vdev_logical_ashift; 5229 if (vd->vdev_physical_ashift <= ASHIFT_MAX) 5230 vs->vs_physical_ashift = vd->vdev_physical_ashift; 5231 else 5232 vs->vs_physical_ashift = 0; 5233 5234 /* 5235 * Report fragmentation and rebuild progress for top-level, 5236 * non-auxiliary, concrete devices. 5237 */ 5238 if (vd->vdev_aux == NULL && vd == vd->vdev_top && 5239 vdev_is_concrete(vd)) { 5240 /* 5241 * The vdev fragmentation rating doesn't take into 5242 * account the embedded slog metaslab (vdev_log_mg). 5243 * Since it's only one metaslab, it would have a tiny 5244 * impact on the overall fragmentation. 5245 */ 5246 vs->vs_fragmentation = (vd->vdev_mg != NULL) ? 5247 vd->vdev_mg->mg_fragmentation : 0; 5248 } 5249 vs->vs_noalloc = MAX(vd->vdev_noalloc, 5250 tvd ? tvd->vdev_noalloc : 0); 5251 } 5252 5253 vdev_get_stats_ex_impl(vd, vs, vsx); 5254 mutex_exit(&vd->vdev_stat_lock); 5255 } 5256 5257 void 5258 vdev_get_stats(vdev_t *vd, vdev_stat_t *vs) 5259 { 5260 return (vdev_get_stats_ex(vd, vs, NULL)); 5261 } 5262 5263 void 5264 vdev_clear_stats(vdev_t *vd) 5265 { 5266 mutex_enter(&vd->vdev_stat_lock); 5267 vd->vdev_stat.vs_space = 0; 5268 vd->vdev_stat.vs_dspace = 0; 5269 vd->vdev_stat.vs_alloc = 0; 5270 mutex_exit(&vd->vdev_stat_lock); 5271 } 5272 5273 void 5274 vdev_scan_stat_init(vdev_t *vd) 5275 { 5276 vdev_stat_t *vs = &vd->vdev_stat; 5277 5278 for (int c = 0; c < vd->vdev_children; c++) 5279 vdev_scan_stat_init(vd->vdev_child[c]); 5280 5281 mutex_enter(&vd->vdev_stat_lock); 5282 vs->vs_scan_processed = 0; 5283 mutex_exit(&vd->vdev_stat_lock); 5284 } 5285 5286 void 5287 vdev_stat_update(zio_t *zio, uint64_t psize) 5288 { 5289 spa_t *spa = zio->io_spa; 5290 vdev_t *rvd = spa->spa_root_vdev; 5291 vdev_t *vd = zio->io_vd ? zio->io_vd : rvd; 5292 vdev_t *pvd; 5293 uint64_t txg = zio->io_txg; 5294 /* Suppress ASAN false positive */ 5295 #ifdef __SANITIZE_ADDRESS__ 5296 vdev_stat_t *vs = vd ? &vd->vdev_stat : NULL; 5297 vdev_stat_ex_t *vsx = vd ? &vd->vdev_stat_ex : NULL; 5298 #else 5299 vdev_stat_t *vs = &vd->vdev_stat; 5300 vdev_stat_ex_t *vsx = &vd->vdev_stat_ex; 5301 #endif 5302 zio_type_t type = zio->io_type; 5303 int flags = zio->io_flags; 5304 5305 /* 5306 * If this i/o is a gang leader, it didn't do any actual work. 5307 */ 5308 if (zio->io_gang_tree) 5309 return; 5310 5311 if (zio->io_error == 0) { 5312 /* 5313 * If this is a root i/o, don't count it -- we've already 5314 * counted the top-level vdevs, and vdev_get_stats() will 5315 * aggregate them when asked. This reduces contention on 5316 * the root vdev_stat_lock and implicitly handles blocks 5317 * that compress away to holes, for which there is no i/o. 5318 * (Holes never create vdev children, so all the counters 5319 * remain zero, which is what we want.) 5320 * 5321 * Note: this only applies to successful i/o (io_error == 0) 5322 * because unlike i/o counts, errors are not additive. 5323 * When reading a ditto block, for example, failure of 5324 * one top-level vdev does not imply a root-level error. 5325 */ 5326 if (vd == rvd) 5327 return; 5328 5329 ASSERT(vd == zio->io_vd); 5330 5331 if (flags & ZIO_FLAG_IO_BYPASS) 5332 return; 5333 5334 mutex_enter(&vd->vdev_stat_lock); 5335 5336 if (flags & ZIO_FLAG_IO_REPAIR) { 5337 /* 5338 * Repair is the result of a resilver issued by the 5339 * scan thread (spa_sync). 5340 */ 5341 if (flags & ZIO_FLAG_SCAN_THREAD) { 5342 dsl_scan_t *scn = spa->spa_dsl_pool->dp_scan; 5343 dsl_scan_phys_t *scn_phys = &scn->scn_phys; 5344 uint64_t *processed = &scn_phys->scn_processed; 5345 5346 if (vd->vdev_ops->vdev_op_leaf) 5347 atomic_add_64(processed, psize); 5348 vs->vs_scan_processed += psize; 5349 } 5350 5351 /* 5352 * Repair is the result of a rebuild issued by the 5353 * rebuild thread (vdev_rebuild_thread). To avoid 5354 * double counting repaired bytes the virtual dRAID 5355 * spare vdev is excluded from the processed bytes. 5356 */ 5357 if (zio->io_priority == ZIO_PRIORITY_REBUILD) { 5358 vdev_t *tvd = vd->vdev_top; 5359 vdev_rebuild_t *vr = &tvd->vdev_rebuild_config; 5360 vdev_rebuild_phys_t *vrp = &vr->vr_rebuild_phys; 5361 uint64_t *rebuilt = &vrp->vrp_bytes_rebuilt; 5362 5363 if (vd->vdev_ops->vdev_op_leaf && 5364 vd->vdev_ops != &vdev_draid_spare_ops) { 5365 atomic_add_64(rebuilt, psize); 5366 } 5367 vs->vs_rebuild_processed += psize; 5368 } 5369 5370 if (flags & ZIO_FLAG_SELF_HEAL) 5371 vs->vs_self_healed += psize; 5372 } 5373 5374 /* 5375 * The bytes/ops/histograms are recorded at the leaf level and 5376 * aggregated into the higher level vdevs in vdev_get_stats(). 5377 */ 5378 if (vd->vdev_ops->vdev_op_leaf && 5379 (zio->io_priority < ZIO_PRIORITY_NUM_QUEUEABLE)) { 5380 zio_type_t vs_type = type; 5381 zio_priority_t priority = zio->io_priority; 5382 5383 /* 5384 * TRIM ops and bytes are reported to user space as 5385 * ZIO_TYPE_FLUSH. This is done to preserve the 5386 * vdev_stat_t structure layout for user space. 5387 */ 5388 if (type == ZIO_TYPE_TRIM) 5389 vs_type = ZIO_TYPE_FLUSH; 5390 5391 /* 5392 * Solely for the purposes of 'zpool iostat -lqrw' 5393 * reporting use the priority to categorize the IO. 5394 * Only the following are reported to user space: 5395 * 5396 * ZIO_PRIORITY_SYNC_READ, 5397 * ZIO_PRIORITY_SYNC_WRITE, 5398 * ZIO_PRIORITY_ASYNC_READ, 5399 * ZIO_PRIORITY_ASYNC_WRITE, 5400 * ZIO_PRIORITY_SCRUB, 5401 * ZIO_PRIORITY_TRIM, 5402 * ZIO_PRIORITY_REBUILD. 5403 */ 5404 if (priority == ZIO_PRIORITY_INITIALIZING) { 5405 ASSERT3U(type, ==, ZIO_TYPE_WRITE); 5406 priority = ZIO_PRIORITY_ASYNC_WRITE; 5407 } else if (priority == ZIO_PRIORITY_REMOVAL) { 5408 priority = ((type == ZIO_TYPE_WRITE) ? 5409 ZIO_PRIORITY_ASYNC_WRITE : 5410 ZIO_PRIORITY_ASYNC_READ); 5411 } 5412 5413 vs->vs_ops[vs_type]++; 5414 vs->vs_bytes[vs_type] += psize; 5415 5416 if (flags & ZIO_FLAG_DELEGATED) { 5417 vsx->vsx_agg_histo[priority] 5418 [RQ_HISTO(zio->io_size)]++; 5419 } else { 5420 vsx->vsx_ind_histo[priority] 5421 [RQ_HISTO(zio->io_size)]++; 5422 } 5423 5424 if (zio->io_delta && zio->io_delay) { 5425 vsx->vsx_queue_histo[priority] 5426 [L_HISTO(zio->io_delta - zio->io_delay)]++; 5427 vsx->vsx_disk_histo[type] 5428 [L_HISTO(zio->io_delay)]++; 5429 vsx->vsx_total_histo[type] 5430 [L_HISTO(zio->io_delta)]++; 5431 } 5432 } 5433 5434 mutex_exit(&vd->vdev_stat_lock); 5435 return; 5436 } 5437 5438 if (flags & ZIO_FLAG_SPECULATIVE) 5439 return; 5440 5441 /* 5442 * If this is an I/O error that is going to be retried, then ignore the 5443 * error. Otherwise, the user may interpret B_FAILFAST I/O errors as 5444 * hard errors, when in reality they can happen for any number of 5445 * innocuous reasons (bus resets, MPxIO link failure, etc). 5446 */ 5447 if (zio->io_error == EIO && 5448 !(zio->io_flags & ZIO_FLAG_IO_RETRY)) 5449 return; 5450 5451 /* 5452 * Intent logs writes won't propagate their error to the root 5453 * I/O so don't mark these types of failures as pool-level 5454 * errors. 5455 */ 5456 if (zio->io_vd == NULL && (zio->io_flags & ZIO_FLAG_DONT_PROPAGATE)) 5457 return; 5458 5459 if (type == ZIO_TYPE_WRITE && txg != 0 && 5460 (!(flags & ZIO_FLAG_IO_REPAIR) || 5461 (flags & ZIO_FLAG_SCAN_THREAD) || 5462 zio->io_priority == ZIO_PRIORITY_REBUILD || 5463 spa->spa_claiming)) { 5464 /* 5465 * This is either a normal write (not a repair), or it's 5466 * a repair induced by the scrub thread, or it's a repair 5467 * made by zil_claim() during spa_load() in the first txg, 5468 * or its repair induced by rebuild (sequential resilver). 5469 * In the normal case, we commit the DTL change in the same 5470 * txg as the block was born. In the scrub-induced repair 5471 * case, we know that scrubs run in first-pass syncing context, 5472 * so we commit the DTL change in spa_syncing_txg(spa). 5473 * In the zil_claim() case, we commit in spa_first_txg(spa). 5474 * 5475 * We currently do not make DTL entries for failed spontaneous 5476 * self-healing writes triggered by normal (non-scrubbing) 5477 * reads, because we have no transactional context in which to 5478 * do so -- and it's not clear that it'd be desirable anyway. 5479 * 5480 * For rebuild, since we don't have any information about BPs 5481 * and txgs that are being rebuilt, we need to add all known 5482 * txgs (starting from TXG_INITIAL) to DTL so that during 5483 * healing resilver we would be able to check all txgs at 5484 * vdev_draid_need_resilver(). 5485 */ 5486 uint64_t size = 1; 5487 if (vd->vdev_ops->vdev_op_leaf) { 5488 uint64_t commit_txg = txg; 5489 if (flags & ZIO_FLAG_SCAN_THREAD) { 5490 ASSERT(flags & ZIO_FLAG_IO_REPAIR); 5491 ASSERT(spa_sync_pass(spa) == 1); 5492 vdev_dtl_dirty(vd, DTL_SCRUB, txg, size); 5493 commit_txg = spa_syncing_txg(spa); 5494 } else if (spa->spa_claiming) { 5495 ASSERT(flags & ZIO_FLAG_IO_REPAIR); 5496 commit_txg = spa_first_txg(spa); 5497 } else if (zio->io_priority == ZIO_PRIORITY_REBUILD) { 5498 ASSERT(flags & ZIO_FLAG_IO_REPAIR); 5499 vdev_rebuild_txgs(vd->vdev_top, &txg, &size); 5500 commit_txg = spa_open_txg(spa); 5501 } 5502 ASSERT(commit_txg >= spa_syncing_txg(spa)); 5503 if (vdev_dtl_contains(vd, DTL_MISSING, txg, size)) 5504 return; 5505 for (pvd = vd; pvd != rvd; pvd = pvd->vdev_parent) 5506 vdev_dtl_dirty(pvd, DTL_PARTIAL, txg, size); 5507 vdev_dirty(vd->vdev_top, VDD_DTL, vd, commit_txg); 5508 } 5509 if (vd != rvd) 5510 vdev_dtl_dirty(vd, DTL_MISSING, txg, size); 5511 } 5512 } 5513 5514 int64_t 5515 vdev_deflated_space(vdev_t *vd, int64_t space) 5516 { 5517 ASSERT0((space & (SPA_MINBLOCKSIZE-1))); 5518 ASSERT(vd->vdev_deflate_ratio != 0 || vd->vdev_isl2cache); 5519 5520 return ((space >> SPA_MINBLOCKSHIFT) * vd->vdev_deflate_ratio); 5521 } 5522 5523 /* 5524 * Update the in-core space usage stats for this vdev, its metaslab class, 5525 * and the root vdev. 5526 */ 5527 void 5528 vdev_space_update(vdev_t *vd, int64_t alloc_delta, int64_t defer_delta, 5529 int64_t space_delta) 5530 { 5531 (void) defer_delta; 5532 int64_t dspace_delta; 5533 spa_t *spa = vd->vdev_spa; 5534 vdev_t *rvd = spa->spa_root_vdev; 5535 5536 ASSERT(vd == vd->vdev_top); 5537 5538 /* 5539 * Apply the inverse of the psize-to-asize (ie. RAID-Z) space-expansion 5540 * factor. We must calculate this here and not at the root vdev 5541 * because the root vdev's psize-to-asize is simply the max of its 5542 * children's, thus not accurate enough for us. 5543 */ 5544 dspace_delta = vdev_deflated_space(vd, space_delta); 5545 5546 mutex_enter(&vd->vdev_stat_lock); 5547 /* ensure we won't underflow */ 5548 if (alloc_delta < 0) { 5549 ASSERT3U(vd->vdev_stat.vs_alloc, >=, -alloc_delta); 5550 } 5551 5552 vd->vdev_stat.vs_alloc += alloc_delta; 5553 vd->vdev_stat.vs_space += space_delta; 5554 vd->vdev_stat.vs_dspace += dspace_delta; 5555 mutex_exit(&vd->vdev_stat_lock); 5556 5557 /* every class but log contributes to root space stats */ 5558 if (vd->vdev_mg != NULL && !vd->vdev_islog) { 5559 ASSERT(!vd->vdev_isl2cache); 5560 mutex_enter(&rvd->vdev_stat_lock); 5561 rvd->vdev_stat.vs_alloc += alloc_delta; 5562 rvd->vdev_stat.vs_space += space_delta; 5563 rvd->vdev_stat.vs_dspace += dspace_delta; 5564 mutex_exit(&rvd->vdev_stat_lock); 5565 } 5566 /* Note: metaslab_class_space_update moved to metaslab_space_update */ 5567 } 5568 5569 /* 5570 * Mark a top-level vdev's config as dirty, placing it on the dirty list 5571 * so that it will be written out next time the vdev configuration is synced. 5572 * If the root vdev is specified (vdev_top == NULL), dirty all top-level vdevs. 5573 */ 5574 void 5575 vdev_config_dirty(vdev_t *vd) 5576 { 5577 spa_t *spa = vd->vdev_spa; 5578 vdev_t *rvd = spa->spa_root_vdev; 5579 int c; 5580 5581 ASSERT(spa_writeable(spa)); 5582 5583 /* 5584 * If this is an aux vdev (as with l2cache and spare devices), then we 5585 * update the vdev config manually and set the sync flag. 5586 */ 5587 if (vd->vdev_aux != NULL) { 5588 spa_aux_vdev_t *sav = vd->vdev_aux; 5589 nvlist_t **aux; 5590 uint_t naux; 5591 5592 for (c = 0; c < sav->sav_count; c++) { 5593 if (sav->sav_vdevs[c] == vd) 5594 break; 5595 } 5596 5597 if (c == sav->sav_count) { 5598 /* 5599 * We're being removed. There's nothing more to do. 5600 */ 5601 ASSERT(sav->sav_sync == B_TRUE); 5602 return; 5603 } 5604 5605 sav->sav_sync = B_TRUE; 5606 5607 if (nvlist_lookup_nvlist_array(sav->sav_config, 5608 ZPOOL_CONFIG_L2CACHE, &aux, &naux) != 0) { 5609 VERIFY0(nvlist_lookup_nvlist_array(sav->sav_config, 5610 ZPOOL_CONFIG_SPARES, &aux, &naux)); 5611 } 5612 5613 ASSERT(c < naux); 5614 5615 /* 5616 * Setting the nvlist in the middle if the array is a little 5617 * sketchy, but it will work. 5618 */ 5619 nvlist_free(aux[c]); 5620 aux[c] = vdev_config_generate(spa, vd, B_TRUE, 0); 5621 5622 return; 5623 } 5624 5625 /* 5626 * The dirty list is protected by the SCL_CONFIG lock. The caller 5627 * must either hold SCL_CONFIG as writer, or must be the sync thread 5628 * (which holds SCL_CONFIG as reader). There's only one sync thread, 5629 * so this is sufficient to ensure mutual exclusion. 5630 */ 5631 ASSERT(spa_config_held(spa, SCL_CONFIG, RW_WRITER) || 5632 (dsl_pool_sync_context(spa_get_dsl(spa)) && 5633 spa_config_held(spa, SCL_CONFIG, RW_READER))); 5634 5635 if (vd == rvd) { 5636 for (c = 0; c < rvd->vdev_children; c++) 5637 vdev_config_dirty(rvd->vdev_child[c]); 5638 } else { 5639 ASSERT(vd == vd->vdev_top); 5640 5641 if (!list_link_active(&vd->vdev_config_dirty_node) && 5642 vdev_is_concrete(vd)) { 5643 list_insert_head(&spa->spa_config_dirty_list, vd); 5644 } 5645 } 5646 } 5647 5648 void 5649 vdev_config_clean(vdev_t *vd) 5650 { 5651 spa_t *spa = vd->vdev_spa; 5652 5653 ASSERT(spa_config_held(spa, SCL_CONFIG, RW_WRITER) || 5654 (dsl_pool_sync_context(spa_get_dsl(spa)) && 5655 spa_config_held(spa, SCL_CONFIG, RW_READER))); 5656 5657 ASSERT(list_link_active(&vd->vdev_config_dirty_node)); 5658 list_remove(&spa->spa_config_dirty_list, vd); 5659 } 5660 5661 /* 5662 * Mark a top-level vdev's state as dirty, so that the next pass of 5663 * spa_sync() can convert this into vdev_config_dirty(). We distinguish 5664 * the state changes from larger config changes because they require 5665 * much less locking, and are often needed for administrative actions. 5666 */ 5667 void 5668 vdev_state_dirty(vdev_t *vd) 5669 { 5670 spa_t *spa = vd->vdev_spa; 5671 5672 ASSERT(spa_writeable(spa)); 5673 ASSERT(vd == vd->vdev_top); 5674 5675 /* 5676 * The state list is protected by the SCL_STATE lock. The caller 5677 * must either hold SCL_STATE as writer, or must be the sync thread 5678 * (which holds SCL_STATE as reader). There's only one sync thread, 5679 * so this is sufficient to ensure mutual exclusion. 5680 */ 5681 ASSERT(spa_config_held(spa, SCL_STATE, RW_WRITER) || 5682 (dsl_pool_sync_context(spa_get_dsl(spa)) && 5683 spa_config_held(spa, SCL_STATE, RW_READER))); 5684 5685 if (!list_link_active(&vd->vdev_state_dirty_node) && 5686 vdev_is_concrete(vd)) 5687 list_insert_head(&spa->spa_state_dirty_list, vd); 5688 } 5689 5690 void 5691 vdev_state_clean(vdev_t *vd) 5692 { 5693 spa_t *spa = vd->vdev_spa; 5694 5695 ASSERT(spa_config_held(spa, SCL_STATE, RW_WRITER) || 5696 (dsl_pool_sync_context(spa_get_dsl(spa)) && 5697 spa_config_held(spa, SCL_STATE, RW_READER))); 5698 5699 ASSERT(list_link_active(&vd->vdev_state_dirty_node)); 5700 list_remove(&spa->spa_state_dirty_list, vd); 5701 } 5702 5703 /* 5704 * Propagate vdev state up from children to parent. 5705 */ 5706 void 5707 vdev_propagate_state(vdev_t *vd) 5708 { 5709 spa_t *spa = vd->vdev_spa; 5710 vdev_t *rvd = spa->spa_root_vdev; 5711 int degraded = 0, faulted = 0; 5712 int corrupted = 0; 5713 vdev_t *child; 5714 5715 if (vd->vdev_children > 0) { 5716 for (int c = 0; c < vd->vdev_children; c++) { 5717 child = vd->vdev_child[c]; 5718 5719 /* 5720 * Don't factor holes or indirect vdevs into the 5721 * decision. 5722 */ 5723 if (!vdev_is_concrete(child)) 5724 continue; 5725 5726 if (!vdev_readable(child) || 5727 (!vdev_writeable(child) && spa_writeable(spa))) { 5728 /* 5729 * Root special: if there is a top-level log 5730 * device, treat the root vdev as if it were 5731 * degraded. 5732 */ 5733 if (child->vdev_islog && vd == rvd) 5734 degraded++; 5735 else 5736 faulted++; 5737 } else if (child->vdev_state <= VDEV_STATE_DEGRADED) { 5738 degraded++; 5739 } 5740 5741 if (child->vdev_stat.vs_aux == VDEV_AUX_CORRUPT_DATA) 5742 corrupted++; 5743 } 5744 5745 vd->vdev_ops->vdev_op_state_change(vd, faulted, degraded); 5746 5747 /* 5748 * Root special: if there is a top-level vdev that cannot be 5749 * opened due to corrupted metadata, then propagate the root 5750 * vdev's aux state as 'corrupt' rather than 'insufficient 5751 * replicas'. 5752 */ 5753 if (corrupted && vd == rvd && 5754 rvd->vdev_state == VDEV_STATE_CANT_OPEN) 5755 vdev_set_state(rvd, B_FALSE, VDEV_STATE_CANT_OPEN, 5756 VDEV_AUX_CORRUPT_DATA); 5757 } 5758 5759 if (vd->vdev_parent) 5760 vdev_propagate_state(vd->vdev_parent); 5761 } 5762 5763 /* 5764 * Set a vdev's state. If this is during an open, we don't update the parent 5765 * state, because we're in the process of opening children depth-first. 5766 * Otherwise, we propagate the change to the parent. 5767 * 5768 * If this routine places a device in a faulted state, an appropriate ereport is 5769 * generated. 5770 */ 5771 void 5772 vdev_set_state(vdev_t *vd, boolean_t isopen, vdev_state_t state, vdev_aux_t aux) 5773 { 5774 uint64_t save_state; 5775 spa_t *spa = vd->vdev_spa; 5776 5777 if (state == vd->vdev_state) { 5778 /* 5779 * Since vdev_offline() code path is already in an offline 5780 * state we can miss a statechange event to OFFLINE. Check 5781 * the previous state to catch this condition. 5782 */ 5783 if (vd->vdev_ops->vdev_op_leaf && 5784 (state == VDEV_STATE_OFFLINE) && 5785 (vd->vdev_prevstate >= VDEV_STATE_FAULTED)) { 5786 /* post an offline state change */ 5787 zfs_post_state_change(spa, vd, vd->vdev_prevstate); 5788 } 5789 vd->vdev_stat.vs_aux = aux; 5790 return; 5791 } 5792 5793 save_state = vd->vdev_state; 5794 5795 vd->vdev_state = state; 5796 vd->vdev_stat.vs_aux = aux; 5797 5798 /* 5799 * If we are setting the vdev state to anything but an open state, then 5800 * always close the underlying device unless the device has requested 5801 * a delayed close (i.e. we're about to remove or fault the device). 5802 * Otherwise, we keep accessible but invalid devices open forever. 5803 * We don't call vdev_close() itself, because that implies some extra 5804 * checks (offline, etc) that we don't want here. This is limited to 5805 * leaf devices, because otherwise closing the device will affect other 5806 * children. 5807 */ 5808 if (!vd->vdev_delayed_close && vdev_is_dead(vd) && 5809 vd->vdev_ops->vdev_op_leaf) 5810 vd->vdev_ops->vdev_op_close(vd); 5811 5812 if (vd->vdev_removed && 5813 state == VDEV_STATE_CANT_OPEN && 5814 (aux == VDEV_AUX_OPEN_FAILED || vd->vdev_checkremove)) { 5815 /* 5816 * If the previous state is set to VDEV_STATE_REMOVED, then this 5817 * device was previously marked removed and someone attempted to 5818 * reopen it. If this failed due to a nonexistent device, then 5819 * keep the device in the REMOVED state. We also let this be if 5820 * it is one of our special test online cases, which is only 5821 * attempting to online the device and shouldn't generate an FMA 5822 * fault. 5823 */ 5824 vd->vdev_state = VDEV_STATE_REMOVED; 5825 vd->vdev_stat.vs_aux = VDEV_AUX_NONE; 5826 } else if (state == VDEV_STATE_REMOVED) { 5827 vd->vdev_removed = B_TRUE; 5828 } else if (state == VDEV_STATE_CANT_OPEN) { 5829 /* 5830 * If we fail to open a vdev during an import or recovery, we 5831 * mark it as "not available", which signifies that it was 5832 * never there to begin with. Failure to open such a device 5833 * is not considered an error. 5834 */ 5835 if ((spa_load_state(spa) == SPA_LOAD_IMPORT || 5836 spa_load_state(spa) == SPA_LOAD_RECOVER) && 5837 vd->vdev_ops->vdev_op_leaf) 5838 vd->vdev_not_present = 1; 5839 5840 /* 5841 * Post the appropriate ereport. If the 'prevstate' field is 5842 * set to something other than VDEV_STATE_UNKNOWN, it indicates 5843 * that this is part of a vdev_reopen(). In this case, we don't 5844 * want to post the ereport if the device was already in the 5845 * CANT_OPEN state beforehand. 5846 * 5847 * If the 'checkremove' flag is set, then this is an attempt to 5848 * online the device in response to an insertion event. If we 5849 * hit this case, then we have detected an insertion event for a 5850 * faulted or offline device that wasn't in the removed state. 5851 * In this scenario, we don't post an ereport because we are 5852 * about to replace the device, or attempt an online with 5853 * vdev_forcefault, which will generate the fault for us. 5854 */ 5855 if ((vd->vdev_prevstate != state || vd->vdev_forcefault) && 5856 !vd->vdev_not_present && !vd->vdev_checkremove && 5857 vd != spa->spa_root_vdev) { 5858 const char *class; 5859 5860 switch (aux) { 5861 case VDEV_AUX_OPEN_FAILED: 5862 class = FM_EREPORT_ZFS_DEVICE_OPEN_FAILED; 5863 break; 5864 case VDEV_AUX_CORRUPT_DATA: 5865 class = FM_EREPORT_ZFS_DEVICE_CORRUPT_DATA; 5866 break; 5867 case VDEV_AUX_NO_REPLICAS: 5868 class = FM_EREPORT_ZFS_DEVICE_NO_REPLICAS; 5869 break; 5870 case VDEV_AUX_BAD_GUID_SUM: 5871 class = FM_EREPORT_ZFS_DEVICE_BAD_GUID_SUM; 5872 break; 5873 case VDEV_AUX_TOO_SMALL: 5874 class = FM_EREPORT_ZFS_DEVICE_TOO_SMALL; 5875 break; 5876 case VDEV_AUX_BAD_LABEL: 5877 class = FM_EREPORT_ZFS_DEVICE_BAD_LABEL; 5878 break; 5879 case VDEV_AUX_BAD_ASHIFT: 5880 class = FM_EREPORT_ZFS_DEVICE_BAD_ASHIFT; 5881 break; 5882 default: 5883 class = FM_EREPORT_ZFS_DEVICE_UNKNOWN; 5884 } 5885 5886 (void) zfs_ereport_post(class, spa, vd, NULL, NULL, 5887 save_state); 5888 } 5889 5890 /* Erase any notion of persistent removed state */ 5891 vd->vdev_removed = B_FALSE; 5892 } else { 5893 vd->vdev_removed = B_FALSE; 5894 } 5895 5896 /* 5897 * Notify ZED of any significant state-change on a leaf vdev. 5898 * 5899 */ 5900 if (vd->vdev_ops->vdev_op_leaf) { 5901 /* preserve original state from a vdev_reopen() */ 5902 if ((vd->vdev_prevstate != VDEV_STATE_UNKNOWN) && 5903 (vd->vdev_prevstate != vd->vdev_state) && 5904 (save_state <= VDEV_STATE_CLOSED)) 5905 save_state = vd->vdev_prevstate; 5906 5907 /* filter out state change due to initial vdev_open */ 5908 if (save_state > VDEV_STATE_CLOSED) 5909 zfs_post_state_change(spa, vd, save_state); 5910 } 5911 5912 if (!isopen && vd->vdev_parent) 5913 vdev_propagate_state(vd->vdev_parent); 5914 } 5915 5916 boolean_t 5917 vdev_children_are_offline(vdev_t *vd) 5918 { 5919 ASSERT(!vd->vdev_ops->vdev_op_leaf); 5920 5921 for (uint64_t i = 0; i < vd->vdev_children; i++) { 5922 if (vd->vdev_child[i]->vdev_state != VDEV_STATE_OFFLINE) 5923 return (B_FALSE); 5924 } 5925 5926 return (B_TRUE); 5927 } 5928 5929 /* 5930 * Check the vdev configuration to ensure that it's capable of supporting 5931 * a root pool. We do not support partial configuration. 5932 */ 5933 boolean_t 5934 vdev_is_bootable(vdev_t *vd) 5935 { 5936 if (!vd->vdev_ops->vdev_op_leaf) { 5937 const char *vdev_type = vd->vdev_ops->vdev_op_type; 5938 5939 if (strcmp(vdev_type, VDEV_TYPE_MISSING) == 0) 5940 return (B_FALSE); 5941 } 5942 5943 for (int c = 0; c < vd->vdev_children; c++) { 5944 if (!vdev_is_bootable(vd->vdev_child[c])) 5945 return (B_FALSE); 5946 } 5947 return (B_TRUE); 5948 } 5949 5950 boolean_t 5951 vdev_is_concrete(vdev_t *vd) 5952 { 5953 vdev_ops_t *ops = vd->vdev_ops; 5954 if (ops == &vdev_indirect_ops || ops == &vdev_hole_ops || 5955 ops == &vdev_missing_ops || ops == &vdev_root_ops) { 5956 return (B_FALSE); 5957 } else { 5958 return (B_TRUE); 5959 } 5960 } 5961 5962 /* 5963 * Determine if a log device has valid content. If the vdev was 5964 * removed or faulted in the MOS config then we know that 5965 * the content on the log device has already been written to the pool. 5966 */ 5967 boolean_t 5968 vdev_log_state_valid(vdev_t *vd) 5969 { 5970 if (vd->vdev_ops->vdev_op_leaf && !vd->vdev_faulted && 5971 !vd->vdev_removed) 5972 return (B_TRUE); 5973 5974 for (int c = 0; c < vd->vdev_children; c++) 5975 if (vdev_log_state_valid(vd->vdev_child[c])) 5976 return (B_TRUE); 5977 5978 return (B_FALSE); 5979 } 5980 5981 /* 5982 * Expand a vdev if possible. 5983 */ 5984 void 5985 vdev_expand(vdev_t *vd, uint64_t txg) 5986 { 5987 ASSERT(vd->vdev_top == vd); 5988 ASSERT(spa_config_held(vd->vdev_spa, SCL_ALL, RW_WRITER) == SCL_ALL); 5989 ASSERT(vdev_is_concrete(vd)); 5990 5991 vdev_set_deflate_ratio(vd); 5992 5993 if ((vd->vdev_spa->spa_raidz_expand == NULL || 5994 vd->vdev_spa->spa_raidz_expand->vre_vdev_id != vd->vdev_id) && 5995 (vd->vdev_asize >> vd->vdev_ms_shift) > vd->vdev_ms_count && 5996 vdev_is_concrete(vd)) { 5997 vdev_metaslab_group_create(vd); 5998 VERIFY0(vdev_metaslab_init(vd, txg)); 5999 vdev_config_dirty(vd); 6000 } 6001 } 6002 6003 /* 6004 * Split a vdev. 6005 */ 6006 void 6007 vdev_split(vdev_t *vd) 6008 { 6009 vdev_t *cvd, *pvd = vd->vdev_parent; 6010 6011 VERIFY3U(pvd->vdev_children, >, 1); 6012 6013 vdev_remove_child(pvd, vd); 6014 vdev_compact_children(pvd); 6015 6016 ASSERT3P(pvd->vdev_child, !=, NULL); 6017 6018 cvd = pvd->vdev_child[0]; 6019 if (pvd->vdev_children == 1) { 6020 vdev_remove_parent(cvd); 6021 cvd->vdev_splitting = B_TRUE; 6022 } 6023 vdev_propagate_state(cvd); 6024 } 6025 6026 void 6027 vdev_deadman(vdev_t *vd, const char *tag) 6028 { 6029 for (int c = 0; c < vd->vdev_children; c++) { 6030 vdev_t *cvd = vd->vdev_child[c]; 6031 6032 vdev_deadman(cvd, tag); 6033 } 6034 6035 if (vd->vdev_ops->vdev_op_leaf) { 6036 vdev_queue_t *vq = &vd->vdev_queue; 6037 6038 mutex_enter(&vq->vq_lock); 6039 if (vq->vq_active > 0) { 6040 spa_t *spa = vd->vdev_spa; 6041 zio_t *fio; 6042 uint64_t delta; 6043 6044 zfs_dbgmsg("slow vdev: %s has %u active IOs", 6045 vd->vdev_path, vq->vq_active); 6046 6047 /* 6048 * Look at the head of all the pending queues, 6049 * if any I/O has been outstanding for longer than 6050 * the spa_deadman_synctime invoke the deadman logic. 6051 */ 6052 fio = list_head(&vq->vq_active_list); 6053 delta = gethrtime() - fio->io_timestamp; 6054 if (delta > spa_deadman_synctime(spa)) 6055 zio_deadman(fio, tag); 6056 } 6057 mutex_exit(&vq->vq_lock); 6058 } 6059 } 6060 6061 void 6062 vdev_defer_resilver(vdev_t *vd) 6063 { 6064 ASSERT(vd->vdev_ops->vdev_op_leaf); 6065 6066 vd->vdev_resilver_deferred = B_TRUE; 6067 vd->vdev_spa->spa_resilver_deferred = B_TRUE; 6068 } 6069 6070 /* 6071 * Clears the resilver deferred flag on all leaf devs under vd. Returns 6072 * B_TRUE if we have devices that need to be resilvered and are available to 6073 * accept resilver I/Os. 6074 */ 6075 boolean_t 6076 vdev_clear_resilver_deferred(vdev_t *vd, dmu_tx_t *tx) 6077 { 6078 boolean_t resilver_needed = B_FALSE; 6079 spa_t *spa = vd->vdev_spa; 6080 6081 for (int c = 0; c < vd->vdev_children; c++) { 6082 vdev_t *cvd = vd->vdev_child[c]; 6083 resilver_needed |= vdev_clear_resilver_deferred(cvd, tx); 6084 } 6085 6086 if (vd == spa->spa_root_vdev && 6087 spa_feature_is_active(spa, SPA_FEATURE_RESILVER_DEFER)) { 6088 spa_feature_decr(spa, SPA_FEATURE_RESILVER_DEFER, tx); 6089 vdev_config_dirty(vd); 6090 spa->spa_resilver_deferred = B_FALSE; 6091 return (resilver_needed); 6092 } 6093 6094 if (!vdev_is_concrete(vd) || vd->vdev_aux || 6095 !vd->vdev_ops->vdev_op_leaf) 6096 return (resilver_needed); 6097 6098 vd->vdev_resilver_deferred = B_FALSE; 6099 6100 return (!vdev_is_dead(vd) && !vd->vdev_offline && 6101 vdev_resilver_needed(vd, NULL, NULL)); 6102 } 6103 6104 boolean_t 6105 vdev_xlate_is_empty(zfs_range_seg64_t *rs) 6106 { 6107 return (rs->rs_start == rs->rs_end); 6108 } 6109 6110 /* 6111 * Translate a logical range to the first contiguous physical range for the 6112 * specified vdev_t. This function is initially called with a leaf vdev and 6113 * will walk each parent vdev until it reaches a top-level vdev. Once the 6114 * top-level is reached the physical range is initialized and the recursive 6115 * function begins to unwind. As it unwinds it calls the parent's vdev 6116 * specific translation function to do the real conversion. 6117 */ 6118 void 6119 vdev_xlate(vdev_t *vd, const zfs_range_seg64_t *logical_rs, 6120 zfs_range_seg64_t *physical_rs, zfs_range_seg64_t *remain_rs) 6121 { 6122 /* 6123 * Walk up the vdev tree 6124 */ 6125 if (vd != vd->vdev_top) { 6126 vdev_xlate(vd->vdev_parent, logical_rs, physical_rs, 6127 remain_rs); 6128 } else { 6129 /* 6130 * We've reached the top-level vdev, initialize the physical 6131 * range to the logical range and set an empty remaining 6132 * range then start to unwind. 6133 */ 6134 physical_rs->rs_start = logical_rs->rs_start; 6135 physical_rs->rs_end = logical_rs->rs_end; 6136 6137 remain_rs->rs_start = logical_rs->rs_start; 6138 remain_rs->rs_end = logical_rs->rs_start; 6139 6140 return; 6141 } 6142 6143 vdev_t *pvd = vd->vdev_parent; 6144 ASSERT3P(pvd, !=, NULL); 6145 ASSERT3P(pvd->vdev_ops->vdev_op_xlate, !=, NULL); 6146 6147 /* 6148 * As this recursive function unwinds, translate the logical 6149 * range into its physical and any remaining components by calling 6150 * the vdev specific translate function. 6151 */ 6152 zfs_range_seg64_t intermediate = { 0 }; 6153 pvd->vdev_ops->vdev_op_xlate(vd, physical_rs, &intermediate, remain_rs); 6154 6155 physical_rs->rs_start = intermediate.rs_start; 6156 physical_rs->rs_end = intermediate.rs_end; 6157 } 6158 6159 void 6160 vdev_xlate_walk(vdev_t *vd, const zfs_range_seg64_t *logical_rs, 6161 vdev_xlate_func_t *func, void *arg) 6162 { 6163 zfs_range_seg64_t iter_rs = *logical_rs; 6164 zfs_range_seg64_t physical_rs; 6165 zfs_range_seg64_t remain_rs; 6166 6167 while (!vdev_xlate_is_empty(&iter_rs)) { 6168 6169 vdev_xlate(vd, &iter_rs, &physical_rs, &remain_rs); 6170 6171 /* 6172 * With raidz and dRAID, it's possible that the logical range 6173 * does not live on this leaf vdev. Only when there is a non- 6174 * zero physical size call the provided function. 6175 */ 6176 if (!vdev_xlate_is_empty(&physical_rs)) 6177 func(arg, &physical_rs); 6178 6179 iter_rs = remain_rs; 6180 } 6181 } 6182 6183 static char * 6184 vdev_name(vdev_t *vd, char *buf, int buflen) 6185 { 6186 if (vd->vdev_path == NULL) { 6187 if (strcmp(vd->vdev_ops->vdev_op_type, "root") == 0) { 6188 strlcpy(buf, vd->vdev_spa->spa_name, buflen); 6189 } else if (!vd->vdev_ops->vdev_op_leaf) { 6190 snprintf(buf, buflen, "%s-%llu", 6191 vd->vdev_ops->vdev_op_type, 6192 (u_longlong_t)vd->vdev_id); 6193 } 6194 } else { 6195 strlcpy(buf, vd->vdev_path, buflen); 6196 } 6197 return (buf); 6198 } 6199 6200 /* 6201 * Look at the vdev tree and determine whether any devices are currently being 6202 * replaced. 6203 */ 6204 boolean_t 6205 vdev_replace_in_progress(vdev_t *vdev) 6206 { 6207 ASSERT(spa_config_held(vdev->vdev_spa, SCL_ALL, RW_READER) != 0); 6208 6209 if (vdev->vdev_ops == &vdev_replacing_ops) 6210 return (B_TRUE); 6211 6212 /* 6213 * A 'spare' vdev indicates that we have a replace in progress, unless 6214 * it has exactly two children, and the second, the hot spare, has 6215 * finished being resilvered. 6216 */ 6217 if (vdev->vdev_ops == &vdev_spare_ops && (vdev->vdev_children > 2 || 6218 !vdev_dtl_empty(vdev->vdev_child[1], DTL_MISSING))) 6219 return (B_TRUE); 6220 6221 for (int i = 0; i < vdev->vdev_children; i++) { 6222 if (vdev_replace_in_progress(vdev->vdev_child[i])) 6223 return (B_TRUE); 6224 } 6225 6226 return (B_FALSE); 6227 } 6228 6229 /* 6230 * Add a (source=src, propname=propval) list to an nvlist. 6231 */ 6232 static void 6233 vdev_prop_add_list(nvlist_t *nvl, const char *propname, const char *strval, 6234 uint64_t intval, zprop_source_t src) 6235 { 6236 nvlist_t *propval; 6237 6238 propval = fnvlist_alloc(); 6239 fnvlist_add_uint64(propval, ZPROP_SOURCE, src); 6240 6241 if (strval != NULL) 6242 fnvlist_add_string(propval, ZPROP_VALUE, strval); 6243 else 6244 fnvlist_add_uint64(propval, ZPROP_VALUE, intval); 6245 6246 fnvlist_add_nvlist(nvl, propname, propval); 6247 nvlist_free(propval); 6248 } 6249 6250 static void 6251 vdev_props_set_sync(void *arg, dmu_tx_t *tx) 6252 { 6253 vdev_t *vd; 6254 nvlist_t *nvp = arg; 6255 spa_t *spa = dmu_tx_pool(tx)->dp_spa; 6256 objset_t *mos = spa->spa_meta_objset; 6257 nvpair_t *elem = NULL; 6258 uint64_t vdev_guid; 6259 uint64_t objid; 6260 nvlist_t *nvprops; 6261 6262 vdev_guid = fnvlist_lookup_uint64(nvp, ZPOOL_VDEV_PROPS_SET_VDEV); 6263 nvprops = fnvlist_lookup_nvlist(nvp, ZPOOL_VDEV_PROPS_SET_PROPS); 6264 vd = spa_lookup_by_guid(spa, vdev_guid, B_TRUE); 6265 6266 /* this vdev could get removed while waiting for this sync task */ 6267 if (vd == NULL) 6268 return; 6269 6270 /* 6271 * Set vdev property values in the vdev props mos object. 6272 */ 6273 if (vdev_prop_get_objid(vd, &objid) != 0) 6274 panic("unexpected vdev type"); 6275 6276 mutex_enter(&spa->spa_props_lock); 6277 6278 while ((elem = nvlist_next_nvpair(nvprops, elem)) != NULL) { 6279 uint64_t intval; 6280 const char *strval; 6281 vdev_prop_t prop; 6282 const char *propname = nvpair_name(elem); 6283 zprop_type_t proptype; 6284 6285 switch (prop = vdev_name_to_prop(propname)) { 6286 case VDEV_PROP_USERPROP: 6287 if (vdev_prop_user(propname)) { 6288 strval = fnvpair_value_string(elem); 6289 if (strlen(strval) == 0) { 6290 /* remove the property if value == "" */ 6291 (void) zap_remove(mos, objid, propname, 6292 tx); 6293 } else { 6294 VERIFY0(zap_update(mos, objid, propname, 6295 1, strlen(strval) + 1, strval, tx)); 6296 } 6297 spa_history_log_internal(spa, "vdev set", tx, 6298 "vdev_guid=%llu: %s=%s", 6299 (u_longlong_t)vdev_guid, nvpair_name(elem), 6300 strval); 6301 } 6302 break; 6303 case VDEV_PROP_ALLOC_BIAS: { 6304 intval = fnvpair_value_uint64(elem); 6305 ASSERT3U(intval, !=, VDEV_BIAS_LOG); 6306 const char *bias_str = 6307 (intval == VDEV_BIAS_SPECIAL) ? 6308 VDEV_ALLOC_BIAS_SPECIAL : 6309 (intval == VDEV_BIAS_DEDUP) ? 6310 VDEV_ALLOC_BIAS_DEDUP : NULL; 6311 if (bias_str == NULL) { 6312 (void) zap_remove(mos, objid, 6313 VDEV_TOP_ZAP_ALLOCATION_BIAS, tx); 6314 } else { 6315 VERIFY0(zap_update(mos, objid, 6316 VDEV_TOP_ZAP_ALLOCATION_BIAS, 6317 1, strlen(bias_str) + 1, bias_str, tx)); 6318 spa_activate_allocation_classes(spa, tx); 6319 } 6320 spa_history_log_internal(spa, "vdev set", tx, 6321 "vdev_guid=%llu: alloc_bias=%s", 6322 (u_longlong_t)vdev_guid, 6323 bias_str != NULL ? bias_str : "none"); 6324 break; 6325 } 6326 default: 6327 /* normalize the property name */ 6328 propname = vdev_prop_to_name(prop); 6329 proptype = vdev_prop_get_type(prop); 6330 6331 if (nvpair_type(elem) == DATA_TYPE_STRING) { 6332 ASSERT(proptype == PROP_TYPE_STRING); 6333 strval = fnvpair_value_string(elem); 6334 VERIFY0(zap_update(mos, objid, propname, 6335 1, strlen(strval) + 1, strval, tx)); 6336 spa_history_log_internal(spa, "vdev set", tx, 6337 "vdev_guid=%llu: %s=%s", 6338 (u_longlong_t)vdev_guid, nvpair_name(elem), 6339 strval); 6340 } else if (nvpair_type(elem) == DATA_TYPE_UINT64) { 6341 intval = fnvpair_value_uint64(elem); 6342 6343 if (proptype == PROP_TYPE_INDEX) { 6344 const char *unused; 6345 VERIFY0(vdev_prop_index_to_string( 6346 prop, intval, &unused)); 6347 } 6348 VERIFY0(zap_update(mos, objid, propname, 6349 sizeof (uint64_t), 1, &intval, tx)); 6350 spa_history_log_internal(spa, "vdev set", tx, 6351 "vdev_guid=%llu: %s=%lld", 6352 (u_longlong_t)vdev_guid, 6353 nvpair_name(elem), (longlong_t)intval); 6354 } else { 6355 panic("invalid vdev property type %u", 6356 nvpair_type(elem)); 6357 } 6358 } 6359 6360 } 6361 6362 mutex_exit(&spa->spa_props_lock); 6363 } 6364 6365 int 6366 vdev_prop_set(spa_t *spa, nvlist_t *innvl, nvlist_t *outnvl) 6367 { 6368 vdev_t *vd; 6369 nvpair_t *elem = NULL; 6370 uint64_t vdev_guid; 6371 nvlist_t *nvprops; 6372 int error = 0; 6373 6374 if (nvlist_lookup_uint64(innvl, ZPOOL_VDEV_PROPS_SET_VDEV, 6375 &vdev_guid) != 0) 6376 return (SET_ERROR(EINVAL)); 6377 6378 if (nvlist_lookup_nvlist(innvl, ZPOOL_VDEV_PROPS_SET_PROPS, 6379 &nvprops) != 0) 6380 return (SET_ERROR(EINVAL)); 6381 6382 /* 6383 * Resolve the vdev by guid and hold SCL_CONFIG as a reader so the 6384 * vdev tree can't change beneath us while we touch vd. The lock is 6385 * dropped around the "path" and "allocating" handlers below: those 6386 * descend into spa_vdev_enter() -> spa_config_enter(SCL_ALL, 6387 * RW_WRITER), and taking SCL_CONFIG as a writer while this same 6388 * thread already holds it as a reader is a self-deadlock (the writer 6389 * waits for scl_count to drain to 0, but scl_count is this thread's 6390 * own reader, which is never released). Those handlers re-resolve 6391 * the vdev by guid under their own locking, so we re-resolve here 6392 * after each one in case the tree changed. 6393 */ 6394 spa_config_enter(spa, SCL_CONFIG, FTAG, RW_READER); 6395 if ((vd = spa_lookup_by_guid(spa, vdev_guid, B_TRUE)) == NULL) { 6396 spa_config_exit(spa, SCL_CONFIG, FTAG); 6397 return (SET_ERROR(ENOENT)); 6398 } 6399 6400 /* Check that vdev has a zap we can use */ 6401 if (vd->vdev_root_zap == 0 && 6402 vd->vdev_top_zap == 0 && 6403 vd->vdev_leaf_zap == 0) { 6404 spa_config_exit(spa, SCL_CONFIG, FTAG); 6405 return (SET_ERROR(EINVAL)); 6406 } 6407 6408 while ((elem = nvlist_next_nvpair(nvprops, elem)) != NULL) { 6409 const char *propname = nvpair_name(elem); 6410 vdev_prop_t prop = vdev_name_to_prop(propname); 6411 uint64_t intval = 0; 6412 const char *strval = NULL; 6413 6414 if (prop == VDEV_PROP_USERPROP && !vdev_prop_user(propname)) { 6415 error = EINVAL; 6416 goto end; 6417 } 6418 6419 if (prop != VDEV_PROP_USERPROP && vdev_prop_readonly(prop)) { 6420 error = EROFS; 6421 goto end; 6422 } 6423 6424 /* Special Processing */ 6425 switch (prop) { 6426 case VDEV_PROP_PATH: 6427 if (vd->vdev_path == NULL) { 6428 error = EROFS; 6429 break; 6430 } 6431 if (nvpair_value_string(elem, &strval) != 0) { 6432 error = EINVAL; 6433 break; 6434 } 6435 /* New path must start with /dev/ */ 6436 if (strncmp(strval, "/dev/", 5)) { 6437 error = EINVAL; 6438 break; 6439 } 6440 /* 6441 * spa_vdev_setpath() takes SCL_ALL as a writer, so we 6442 * must not hold SCL_CONFIG across it (see above). Drop 6443 * it, then re-resolve vd in case the tree changed. 6444 */ 6445 spa_config_exit(spa, SCL_CONFIG, FTAG); 6446 error = spa_vdev_setpath(spa, vdev_guid, strval); 6447 spa_config_enter(spa, SCL_CONFIG, FTAG, RW_READER); 6448 vd = spa_lookup_by_guid(spa, vdev_guid, B_TRUE); 6449 if (vd == NULL && error == 0) 6450 error = SET_ERROR(ENOENT); 6451 break; 6452 case VDEV_PROP_ALLOCATING: 6453 if (nvpair_value_uint64(elem, &intval) != 0) { 6454 error = EINVAL; 6455 break; 6456 } 6457 if (intval != vd->vdev_noalloc) 6458 break; 6459 /* 6460 * spa_vdev_noalloc()/spa_vdev_alloc() take SCL_ALL as a 6461 * writer; same locking dance as VDEV_PROP_PATH above. 6462 */ 6463 spa_config_exit(spa, SCL_CONFIG, FTAG); 6464 if (intval == 0) 6465 error = spa_vdev_noalloc(spa, vdev_guid); 6466 else 6467 error = spa_vdev_alloc(spa, vdev_guid); 6468 spa_config_enter(spa, SCL_CONFIG, FTAG, RW_READER); 6469 vd = spa_lookup_by_guid(spa, vdev_guid, B_TRUE); 6470 if (vd == NULL && error == 0) 6471 error = SET_ERROR(ENOENT); 6472 break; 6473 case VDEV_PROP_FAILFAST: 6474 if (nvpair_value_uint64(elem, &intval) != 0 || 6475 intval > ZPROP_BOOLEAN_INHERIT || 6476 (intval == ZPROP_BOOLEAN_INHERIT && 6477 vd->vdev_ops == &vdev_root_ops)) { 6478 error = EINVAL; 6479 break; 6480 } 6481 vd->vdev_failfast = intval; 6482 break; 6483 case VDEV_PROP_SIT_OUT: 6484 /* Only expose this for a draid or raidz leaf */ 6485 if (!vd->vdev_ops->vdev_op_leaf || 6486 vd->vdev_top == NULL || 6487 (vd->vdev_top->vdev_ops != &vdev_raidz_ops && 6488 vd->vdev_top->vdev_ops != &vdev_draid_ops)) { 6489 error = ENOTSUP; 6490 break; 6491 } 6492 if (nvpair_value_uint64(elem, &intval) != 0) { 6493 error = EINVAL; 6494 break; 6495 } 6496 if (intval == 1) { 6497 vdev_t *ancestor = vd; 6498 while (ancestor->vdev_parent != vd->vdev_top) 6499 ancestor = ancestor->vdev_parent; 6500 vdev_t *pvd = vd->vdev_top; 6501 uint_t sitouts = 0; 6502 for (int i = 0; i < pvd->vdev_children; i++) { 6503 if (pvd->vdev_child[i] == ancestor) 6504 continue; 6505 if (vdev_sit_out_reads( 6506 pvd->vdev_child[i], 0)) { 6507 sitouts++; 6508 } 6509 } 6510 if (sitouts >= vdev_get_nparity(pvd)) { 6511 error = ZFS_ERR_TOO_MANY_SITOUTS; 6512 break; 6513 } 6514 if (error == 0) 6515 vdev_raidz_sit_child(vd, 6516 INT64_MAX - gethrestime_sec()); 6517 } else { 6518 vdev_raidz_unsit_child(vd); 6519 } 6520 break; 6521 case VDEV_PROP_AUTOSIT: 6522 if (vd->vdev_ops != &vdev_raidz_ops && 6523 vd->vdev_ops != &vdev_draid_ops) { 6524 error = ENOTSUP; 6525 break; 6526 } 6527 if (nvpair_value_uint64(elem, &intval) != 0) { 6528 error = EINVAL; 6529 break; 6530 } 6531 vd->vdev_autosit = intval == 1; 6532 break; 6533 case VDEV_PROP_CHECKSUM_N: 6534 if (nvpair_value_uint64(elem, &intval) != 0) { 6535 error = EINVAL; 6536 break; 6537 } 6538 vd->vdev_checksum_n = intval; 6539 break; 6540 case VDEV_PROP_CHECKSUM_T: 6541 if (nvpair_value_uint64(elem, &intval) != 0) { 6542 error = EINVAL; 6543 break; 6544 } 6545 vd->vdev_checksum_t = intval; 6546 break; 6547 case VDEV_PROP_IO_N: 6548 if (nvpair_value_uint64(elem, &intval) != 0) { 6549 error = EINVAL; 6550 break; 6551 } 6552 vd->vdev_io_n = intval; 6553 break; 6554 case VDEV_PROP_IO_T: 6555 if (nvpair_value_uint64(elem, &intval) != 0) { 6556 error = EINVAL; 6557 break; 6558 } 6559 vd->vdev_io_t = intval; 6560 break; 6561 case VDEV_PROP_SLOW_IO_EVENTS: 6562 if (nvpair_value_uint64(elem, &intval) != 0) { 6563 error = EINVAL; 6564 break; 6565 } 6566 vd->vdev_slow_io_events = intval != 0; 6567 break; 6568 case VDEV_PROP_SLOW_IO_N: 6569 if (nvpair_value_uint64(elem, &intval) != 0) { 6570 error = EINVAL; 6571 break; 6572 } 6573 vd->vdev_slow_io_n = intval; 6574 break; 6575 case VDEV_PROP_SLOW_IO_T: 6576 if (nvpair_value_uint64(elem, &intval) != 0) { 6577 error = EINVAL; 6578 break; 6579 } 6580 vd->vdev_slow_io_t = intval; 6581 break; 6582 case VDEV_PROP_SCHEDULER: 6583 if (nvpair_value_uint64(elem, &intval) != 0) { 6584 error = EINVAL; 6585 break; 6586 } 6587 vd->vdev_scheduler = intval; 6588 break; 6589 case VDEV_PROP_ALLOC_BIAS: 6590 if (nvpair_value_uint64(elem, &intval) != 0) { 6591 error = EINVAL; 6592 break; 6593 } 6594 if (vd != vd->vdev_top || vd->vdev_top_zap == 0) { 6595 error = ENOTSUP; 6596 break; 6597 } 6598 /* Log vdevs are not supported: remove and re-add. */ 6599 if (vd->vdev_islog) { 6600 error = ENOTSUP; 6601 break; 6602 } 6603 /* special/dedup needs allocation_classes feature */ 6604 if (intval != VDEV_BIAS_NONE && 6605 ((intval != VDEV_BIAS_SPECIAL && 6606 intval != VDEV_BIAS_DEDUP) || 6607 !spa_feature_is_enabled(spa, 6608 SPA_FEATURE_ALLOCATION_CLASSES))) { 6609 error = ENOTSUP; 6610 break; 6611 } 6612 /* 6613 * Disallow converting the last normal vdev to 6614 * avoid pool suspension on failed allocations. 6615 */ 6616 if (intval != VDEV_BIAS_NONE && 6617 vd->vdev_alloc_bias == VDEV_BIAS_NONE) { 6618 vdev_t *rvd = spa->spa_root_vdev; 6619 int normal = 0; 6620 for (uint64_t c = 0; 6621 c < rvd->vdev_children; c++) { 6622 vdev_t *cvd = rvd->vdev_child[c]; 6623 if (vdev_is_concrete(cvd) && 6624 cvd->vdev_alloc_bias == 6625 VDEV_BIAS_NONE && 6626 !cvd->vdev_noalloc) 6627 normal++; 6628 } 6629 if (normal <= 1) { 6630 error = ENOTSUP; 6631 break; 6632 } 6633 } 6634 vd->vdev_alloc_bias = (vdev_alloc_bias_t)intval; 6635 break; 6636 default: 6637 /* Most processing is done in vdev_props_set_sync */ 6638 break; 6639 } 6640 end: 6641 if (error != 0) { 6642 intval = error; 6643 vdev_prop_add_list(outnvl, propname, strval, intval, 0); 6644 break; 6645 } 6646 } 6647 6648 spa_config_exit(spa, SCL_CONFIG, FTAG); 6649 6650 if (error != 0) 6651 return (error); 6652 6653 return (dsl_sync_task(spa->spa_name, NULL, vdev_props_set_sync, 6654 innvl, 6, ZFS_SPACE_CHECK_EXTRA_RESERVED)); 6655 } 6656 6657 static int 6658 vdev_get_child_idx(vdev_t *vd, uint64_t c_guid) 6659 { 6660 for (int c = 0; c < vd->vdev_children; c++) 6661 if (vd->vdev_child[c]->vdev_guid == c_guid) 6662 return (c); 6663 return (0); 6664 } 6665 6666 int 6667 vdev_prop_get(spa_t *spa, nvlist_t *innvl, nvlist_t *outnvl) 6668 { 6669 objset_t *mos = spa->spa_meta_objset; 6670 vdev_t *vd; 6671 int err = 0; 6672 uint64_t objid = 0; 6673 uint64_t vdev_guid; 6674 nvpair_t *elem = NULL; 6675 nvlist_t *nvprops = NULL; 6676 uint64_t intval = 0; 6677 boolean_t boolval = 0; 6678 char *strval = NULL; 6679 const char *propname = NULL; 6680 vdev_prop_t prop; 6681 6682 ASSERT(mos != NULL); 6683 6684 if (nvlist_lookup_uint64(innvl, ZPOOL_VDEV_PROPS_GET_VDEV, 6685 &vdev_guid) != 0) 6686 return (SET_ERROR(EINVAL)); 6687 6688 nvlist_lookup_nvlist(innvl, ZPOOL_VDEV_PROPS_GET_PROPS, &nvprops); 6689 6690 /* 6691 * Resolve the vdev by guid and hold SCL_CONFIG as a reader across the 6692 * property fetch so the vdev tree can't change beneath us. This path 6693 * is read-only and never takes SCL_CONFIG as a writer, so holding the 6694 * reader throughout is safe. 6695 */ 6696 spa_config_enter(spa, SCL_CONFIG, FTAG, RW_READER); 6697 if ((vd = spa_lookup_by_guid(spa, vdev_guid, B_TRUE)) == NULL) { 6698 spa_config_exit(spa, SCL_CONFIG, FTAG); 6699 return (SET_ERROR(ENOENT)); 6700 } 6701 6702 /* 6703 * A missing ZAP is normal for spare and L2ARC vdevs, which are 6704 * not part of the main vdev tree and never get ZAPs allocated. 6705 * Many properties are sourced directly from vdev_t fields and 6706 * work fine without one; ZAP-backed properties will return their 6707 * default values. objid is set to 0 when absent and the few 6708 * cases that call zap_lookup directly guard against this below. 6709 */ 6710 (void) vdev_prop_get_objid(vd, &objid); 6711 6712 mutex_enter(&spa->spa_props_lock); 6713 6714 if (nvprops != NULL) { 6715 char namebuf[64] = { 0 }; 6716 6717 while ((elem = nvlist_next_nvpair(nvprops, elem)) != NULL) { 6718 intval = 0; 6719 strval = NULL; 6720 propname = nvpair_name(elem); 6721 prop = vdev_name_to_prop(propname); 6722 zprop_source_t src = ZPROP_SRC_DEFAULT; 6723 uint64_t integer_size, num_integers; 6724 6725 switch (prop) { 6726 /* Special Read-only Properties */ 6727 case VDEV_PROP_NAME: 6728 strval = vdev_name(vd, namebuf, 6729 sizeof (namebuf)); 6730 if (strval == NULL) 6731 continue; 6732 vdev_prop_add_list(outnvl, propname, strval, 0, 6733 ZPROP_SRC_NONE); 6734 continue; 6735 case VDEV_PROP_CAPACITY: 6736 /* percent used */ 6737 intval = (vd->vdev_stat.vs_dspace == 0) ? 0 : 6738 (vd->vdev_stat.vs_alloc * 100 / 6739 vd->vdev_stat.vs_dspace); 6740 vdev_prop_add_list(outnvl, propname, NULL, 6741 intval, ZPROP_SRC_NONE); 6742 continue; 6743 case VDEV_PROP_STATE: 6744 vdev_prop_add_list(outnvl, propname, NULL, 6745 vd->vdev_state, ZPROP_SRC_NONE); 6746 continue; 6747 case VDEV_PROP_GUID: 6748 vdev_prop_add_list(outnvl, propname, NULL, 6749 vd->vdev_guid, ZPROP_SRC_NONE); 6750 continue; 6751 case VDEV_PROP_ASIZE: 6752 vdev_prop_add_list(outnvl, propname, NULL, 6753 vd->vdev_asize, ZPROP_SRC_NONE); 6754 continue; 6755 case VDEV_PROP_PSIZE: 6756 vdev_prop_add_list(outnvl, propname, NULL, 6757 vd->vdev_psize, ZPROP_SRC_NONE); 6758 continue; 6759 case VDEV_PROP_ASHIFT: 6760 vdev_prop_add_list(outnvl, propname, NULL, 6761 vd->vdev_ashift, ZPROP_SRC_NONE); 6762 continue; 6763 case VDEV_PROP_SIZE: 6764 vdev_prop_add_list(outnvl, propname, NULL, 6765 vd->vdev_stat.vs_dspace, ZPROP_SRC_NONE); 6766 continue; 6767 case VDEV_PROP_FREE: 6768 vdev_prop_add_list(outnvl, propname, NULL, 6769 vd->vdev_stat.vs_dspace - 6770 vd->vdev_stat.vs_alloc, ZPROP_SRC_NONE); 6771 continue; 6772 case VDEV_PROP_ALLOCATED: 6773 vdev_prop_add_list(outnvl, propname, NULL, 6774 vd->vdev_stat.vs_alloc, ZPROP_SRC_NONE); 6775 continue; 6776 case VDEV_PROP_EXPANDSZ: 6777 vdev_prop_add_list(outnvl, propname, NULL, 6778 vd->vdev_stat.vs_esize, ZPROP_SRC_NONE); 6779 continue; 6780 case VDEV_PROP_FRAGMENTATION: 6781 vdev_prop_add_list(outnvl, propname, NULL, 6782 vd->vdev_stat.vs_fragmentation, 6783 ZPROP_SRC_NONE); 6784 continue; 6785 case VDEV_PROP_PARITY: 6786 vdev_prop_add_list(outnvl, propname, NULL, 6787 vdev_get_nparity(vd), ZPROP_SRC_NONE); 6788 continue; 6789 case VDEV_PROP_FDOMAIN: 6790 case VDEV_PROP_FGROUP: 6791 if (vd->vdev_ops->vdev_op_leaf && 6792 vd->vdev_top != NULL && 6793 vd->vdev_top->vdev_ops == 6794 &vdev_draid_ops) { 6795 vdev_draid_config_t *vdc = 6796 vd->vdev_top->vdev_tsd; 6797 if (vdc->vdc_width == vdc->vdc_children) 6798 continue; 6799 int c_idx = vdev_get_child_idx( 6800 vd->vdev_top, vd->vdev_guid); 6801 vdev_prop_add_list(outnvl, propname, 6802 NULL, prop == VDEV_PROP_FDOMAIN ? 6803 (c_idx % vdc->vdc_children) : 6804 (c_idx / vdc->vdc_children), 6805 ZPROP_SRC_NONE); 6806 } 6807 continue; 6808 case VDEV_PROP_PATH: 6809 if (vd->vdev_path == NULL) 6810 continue; 6811 vdev_prop_add_list(outnvl, propname, 6812 vd->vdev_path, 0, ZPROP_SRC_NONE); 6813 continue; 6814 case VDEV_PROP_DEVID: 6815 if (vd->vdev_devid == NULL) 6816 continue; 6817 vdev_prop_add_list(outnvl, propname, 6818 vd->vdev_devid, 0, ZPROP_SRC_NONE); 6819 continue; 6820 case VDEV_PROP_PHYS_PATH: 6821 if (vd->vdev_physpath == NULL) 6822 continue; 6823 vdev_prop_add_list(outnvl, propname, 6824 vd->vdev_physpath, 0, ZPROP_SRC_NONE); 6825 continue; 6826 case VDEV_PROP_ENC_PATH: 6827 if (vd->vdev_enc_sysfs_path == NULL) 6828 continue; 6829 vdev_prop_add_list(outnvl, propname, 6830 vd->vdev_enc_sysfs_path, 0, ZPROP_SRC_NONE); 6831 continue; 6832 case VDEV_PROP_FRU: 6833 if (vd->vdev_fru == NULL) 6834 continue; 6835 vdev_prop_add_list(outnvl, propname, 6836 vd->vdev_fru, 0, ZPROP_SRC_NONE); 6837 continue; 6838 case VDEV_PROP_PARENT: 6839 if (vd->vdev_parent != NULL) { 6840 strval = vdev_name(vd->vdev_parent, 6841 namebuf, sizeof (namebuf)); 6842 vdev_prop_add_list(outnvl, propname, 6843 strval, 0, ZPROP_SRC_NONE); 6844 } 6845 continue; 6846 case VDEV_PROP_CHILDREN: 6847 if (vd->vdev_children > 0) 6848 strval = kmem_zalloc(ZAP_MAXVALUELEN, 6849 KM_SLEEP); 6850 for (uint64_t i = 0; i < vd->vdev_children; 6851 i++) { 6852 const char *vname; 6853 6854 vname = vdev_name(vd->vdev_child[i], 6855 namebuf, sizeof (namebuf)); 6856 if (vname == NULL) 6857 vname = "(unknown)"; 6858 if (strlen(strval) > 0) 6859 strlcat(strval, ",", 6860 ZAP_MAXVALUELEN); 6861 strlcat(strval, vname, ZAP_MAXVALUELEN); 6862 } 6863 if (strval != NULL) { 6864 vdev_prop_add_list(outnvl, propname, 6865 strval, 0, ZPROP_SRC_NONE); 6866 kmem_free(strval, ZAP_MAXVALUELEN); 6867 } 6868 continue; 6869 case VDEV_PROP_NUMCHILDREN: 6870 vdev_prop_add_list(outnvl, propname, NULL, 6871 vd->vdev_children, ZPROP_SRC_NONE); 6872 continue; 6873 case VDEV_PROP_READ_ERRORS: 6874 vdev_prop_add_list(outnvl, propname, NULL, 6875 vd->vdev_stat.vs_read_errors, 6876 ZPROP_SRC_NONE); 6877 continue; 6878 case VDEV_PROP_WRITE_ERRORS: 6879 vdev_prop_add_list(outnvl, propname, NULL, 6880 vd->vdev_stat.vs_write_errors, 6881 ZPROP_SRC_NONE); 6882 continue; 6883 case VDEV_PROP_CHECKSUM_ERRORS: 6884 vdev_prop_add_list(outnvl, propname, NULL, 6885 vd->vdev_stat.vs_checksum_errors, 6886 ZPROP_SRC_NONE); 6887 continue; 6888 case VDEV_PROP_INITIALIZE_ERRORS: 6889 vdev_prop_add_list(outnvl, propname, NULL, 6890 vd->vdev_stat.vs_initialize_errors, 6891 ZPROP_SRC_NONE); 6892 continue; 6893 case VDEV_PROP_TRIM_ERRORS: 6894 vdev_prop_add_list(outnvl, propname, NULL, 6895 vd->vdev_stat.vs_trim_errors, 6896 ZPROP_SRC_NONE); 6897 continue; 6898 case VDEV_PROP_SLOW_IOS: 6899 vdev_prop_add_list(outnvl, propname, NULL, 6900 vd->vdev_stat.vs_slow_ios, 6901 ZPROP_SRC_NONE); 6902 continue; 6903 case VDEV_PROP_OPS_NULL: 6904 vdev_prop_add_list(outnvl, propname, NULL, 6905 vd->vdev_stat.vs_ops[ZIO_TYPE_NULL], 6906 ZPROP_SRC_NONE); 6907 continue; 6908 case VDEV_PROP_OPS_READ: 6909 vdev_prop_add_list(outnvl, propname, NULL, 6910 vd->vdev_stat.vs_ops[ZIO_TYPE_READ], 6911 ZPROP_SRC_NONE); 6912 continue; 6913 case VDEV_PROP_OPS_WRITE: 6914 vdev_prop_add_list(outnvl, propname, NULL, 6915 vd->vdev_stat.vs_ops[ZIO_TYPE_WRITE], 6916 ZPROP_SRC_NONE); 6917 continue; 6918 case VDEV_PROP_OPS_FREE: 6919 vdev_prop_add_list(outnvl, propname, NULL, 6920 vd->vdev_stat.vs_ops[ZIO_TYPE_FREE], 6921 ZPROP_SRC_NONE); 6922 continue; 6923 case VDEV_PROP_OPS_CLAIM: 6924 vdev_prop_add_list(outnvl, propname, NULL, 6925 vd->vdev_stat.vs_ops[ZIO_TYPE_CLAIM], 6926 ZPROP_SRC_NONE); 6927 continue; 6928 case VDEV_PROP_OPS_TRIM: 6929 /* 6930 * TRIM ops and bytes are reported to user 6931 * space as ZIO_TYPE_FLUSH. This is done to 6932 * preserve the vdev_stat_t structure layout 6933 * for user space. 6934 */ 6935 vdev_prop_add_list(outnvl, propname, NULL, 6936 vd->vdev_stat.vs_ops[ZIO_TYPE_FLUSH], 6937 ZPROP_SRC_NONE); 6938 continue; 6939 case VDEV_PROP_BYTES_NULL: 6940 vdev_prop_add_list(outnvl, propname, NULL, 6941 vd->vdev_stat.vs_bytes[ZIO_TYPE_NULL], 6942 ZPROP_SRC_NONE); 6943 continue; 6944 case VDEV_PROP_BYTES_READ: 6945 vdev_prop_add_list(outnvl, propname, NULL, 6946 vd->vdev_stat.vs_bytes[ZIO_TYPE_READ], 6947 ZPROP_SRC_NONE); 6948 continue; 6949 case VDEV_PROP_BYTES_WRITE: 6950 vdev_prop_add_list(outnvl, propname, NULL, 6951 vd->vdev_stat.vs_bytes[ZIO_TYPE_WRITE], 6952 ZPROP_SRC_NONE); 6953 continue; 6954 case VDEV_PROP_BYTES_FREE: 6955 vdev_prop_add_list(outnvl, propname, NULL, 6956 vd->vdev_stat.vs_bytes[ZIO_TYPE_FREE], 6957 ZPROP_SRC_NONE); 6958 continue; 6959 case VDEV_PROP_BYTES_CLAIM: 6960 vdev_prop_add_list(outnvl, propname, NULL, 6961 vd->vdev_stat.vs_bytes[ZIO_TYPE_CLAIM], 6962 ZPROP_SRC_NONE); 6963 continue; 6964 case VDEV_PROP_BYTES_TRIM: 6965 /* 6966 * TRIM ops and bytes are reported to user 6967 * space as ZIO_TYPE_FLUSH. This is done to 6968 * preserve the vdev_stat_t structure layout 6969 * for user space. 6970 */ 6971 vdev_prop_add_list(outnvl, propname, NULL, 6972 vd->vdev_stat.vs_bytes[ZIO_TYPE_FLUSH], 6973 ZPROP_SRC_NONE); 6974 continue; 6975 case VDEV_PROP_REMOVING: 6976 vdev_prop_add_list(outnvl, propname, NULL, 6977 vd->vdev_removing, ZPROP_SRC_NONE); 6978 continue; 6979 case VDEV_PROP_RAIDZ_EXPANDING: 6980 /* Only expose this for raidz */ 6981 if (vd->vdev_ops == &vdev_raidz_ops) { 6982 vdev_prop_add_list(outnvl, propname, 6983 NULL, vd->vdev_rz_expanding, 6984 ZPROP_SRC_NONE); 6985 } 6986 continue; 6987 case VDEV_PROP_SIT_OUT: 6988 /* Only expose this for a draid or raidz leaf */ 6989 if (vd->vdev_ops->vdev_op_leaf && 6990 vd->vdev_top != NULL && 6991 (vd->vdev_top->vdev_ops == 6992 &vdev_raidz_ops || 6993 vd->vdev_top->vdev_ops == 6994 &vdev_draid_ops)) { 6995 vdev_prop_add_list(outnvl, propname, 6996 NULL, vdev_sit_out_reads(vd, 0), 6997 ZPROP_SRC_NONE); 6998 } 6999 continue; 7000 case VDEV_PROP_TRIM_SUPPORT: 7001 /* only valid for leaf vdevs */ 7002 if (vd->vdev_ops->vdev_op_leaf) { 7003 vdev_prop_add_list(outnvl, propname, 7004 NULL, vd->vdev_has_trim, 7005 ZPROP_SRC_NONE); 7006 } 7007 continue; 7008 /* Numeric Properites */ 7009 case VDEV_PROP_ALLOCATING: 7010 /* Leaf vdevs cannot have this property */ 7011 if (vd->vdev_mg == NULL && 7012 vd->vdev_top != NULL) { 7013 src = ZPROP_SRC_NONE; 7014 intval = ZPROP_BOOLEAN_NA; 7015 } else { 7016 err = vdev_prop_get_int(vd, prop, 7017 &intval); 7018 if (err && err != ENOENT) 7019 break; 7020 7021 if (intval == 7022 vdev_prop_default_numeric(prop)) 7023 src = ZPROP_SRC_DEFAULT; 7024 else 7025 src = ZPROP_SRC_LOCAL; 7026 } 7027 7028 vdev_prop_add_list(outnvl, propname, NULL, 7029 intval, src); 7030 break; 7031 case VDEV_PROP_FAILFAST: 7032 src = ZPROP_SRC_LOCAL; 7033 7034 if (objid != 0) { 7035 err = zap_lookup(mos, objid, 7036 nvpair_name(elem), 7037 sizeof (uint64_t), 1, &intval); 7038 } else { 7039 err = ENOENT; 7040 } 7041 if (err == ENOENT) { 7042 if (vd->vdev_ops == &vdev_root_ops) 7043 intval = 7044 vdev_prop_default_numeric( 7045 prop); 7046 else 7047 intval = ZPROP_BOOLEAN_INHERIT; 7048 err = 0; 7049 } else if (err) { 7050 break; 7051 } 7052 if (intval == ZPROP_BOOLEAN_INHERIT || 7053 (vd->vdev_ops == &vdev_root_ops && 7054 intval == 1)) 7055 src = ZPROP_SRC_DEFAULT; 7056 7057 vdev_prop_add_list(outnvl, propname, strval, 7058 intval, src); 7059 break; 7060 case VDEV_PROP_AUTOSIT: 7061 /* Only raidz vdevs cannot have this property */ 7062 if (vd->vdev_ops != &vdev_raidz_ops && 7063 vd->vdev_ops != &vdev_draid_ops) { 7064 src = ZPROP_SRC_NONE; 7065 intval = ZPROP_BOOLEAN_NA; 7066 } else { 7067 err = vdev_prop_get_int(vd, prop, 7068 &intval); 7069 if (err && err != ENOENT) 7070 break; 7071 7072 if (intval == 7073 vdev_prop_default_numeric(prop)) 7074 src = ZPROP_SRC_DEFAULT; 7075 else 7076 src = ZPROP_SRC_LOCAL; 7077 } 7078 7079 vdev_prop_add_list(outnvl, propname, NULL, 7080 intval, src); 7081 break; 7082 7083 case VDEV_PROP_SLOW_IO_EVENTS: 7084 err = vdev_prop_get_bool(vd, prop, &boolval); 7085 if (err && err != ENOENT) 7086 break; 7087 7088 src = ZPROP_SRC_LOCAL; 7089 if (boolval == vdev_prop_default_numeric(prop)) 7090 src = ZPROP_SRC_DEFAULT; 7091 7092 vdev_prop_add_list(outnvl, propname, NULL, 7093 boolval, src); 7094 break; 7095 case VDEV_PROP_ALLOC_BIAS: 7096 if (vd == vd->vdev_top) { 7097 vdev_prop_add_list(outnvl, propname, 7098 NULL, vd->vdev_alloc_bias, 7099 ZPROP_SRC_NONE); 7100 } 7101 continue; 7102 case VDEV_PROP_ROTATIONAL: 7103 vdev_prop_add_list(outnvl, propname, NULL, 7104 !vd->vdev_nonrot, ZPROP_SRC_NONE); 7105 continue; 7106 case VDEV_PROP_CHECKSUM_N: 7107 case VDEV_PROP_CHECKSUM_T: 7108 case VDEV_PROP_IO_N: 7109 case VDEV_PROP_IO_T: 7110 case VDEV_PROP_SLOW_IO_N: 7111 case VDEV_PROP_SLOW_IO_T: 7112 case VDEV_PROP_SCHEDULER: 7113 err = vdev_prop_get_int(vd, prop, &intval); 7114 if (err && err != ENOENT) 7115 break; 7116 7117 if (intval == vdev_prop_default_numeric(prop)) 7118 src = ZPROP_SRC_DEFAULT; 7119 else 7120 src = ZPROP_SRC_LOCAL; 7121 7122 vdev_prop_add_list(outnvl, propname, NULL, 7123 intval, src); 7124 break; 7125 /* Text Properties */ 7126 case VDEV_PROP_COMMENT: 7127 /* Exists in the ZAP below */ 7128 /* FALLTHRU */ 7129 case VDEV_PROP_USERPROP: 7130 /* User Properites */ 7131 if (objid == 0) 7132 continue; 7133 src = ZPROP_SRC_LOCAL; 7134 7135 err = zap_length(mos, objid, nvpair_name(elem), 7136 &integer_size, &num_integers); 7137 if (err) 7138 break; 7139 7140 switch (integer_size) { 7141 case 8: 7142 /* User properties cannot be integers */ 7143 err = EINVAL; 7144 break; 7145 case 1: 7146 /* string property */ 7147 strval = kmem_alloc(num_integers, 7148 KM_SLEEP); 7149 err = zap_lookup(mos, objid, 7150 nvpair_name(elem), 1, 7151 num_integers, strval); 7152 if (err) { 7153 kmem_free(strval, 7154 num_integers); 7155 break; 7156 } 7157 vdev_prop_add_list(outnvl, propname, 7158 strval, 0, src); 7159 kmem_free(strval, num_integers); 7160 break; 7161 } 7162 break; 7163 default: 7164 err = ENOENT; 7165 break; 7166 } 7167 if (err) 7168 break; 7169 } 7170 } else { 7171 /* 7172 * Get all properties from the MOS vdev property object. 7173 */ 7174 zap_cursor_t zc; 7175 zap_attribute_t *za = zap_attribute_alloc(); 7176 for (zap_cursor_init(&zc, mos, objid); 7177 (err = zap_cursor_retrieve(&zc, za)) == 0; 7178 zap_cursor_advance(&zc)) { 7179 intval = 0; 7180 strval = NULL; 7181 zprop_source_t src = ZPROP_SRC_DEFAULT; 7182 propname = za->za_name; 7183 7184 switch (za->za_integer_length) { 7185 case 8: 7186 /* We do not allow integer user properties */ 7187 /* This is likely an internal value */ 7188 break; 7189 case 1: 7190 /* string property */ 7191 strval = kmem_alloc(za->za_num_integers, 7192 KM_SLEEP); 7193 err = zap_lookup(mos, objid, za->za_name, 1, 7194 za->za_num_integers, strval); 7195 if (err) { 7196 kmem_free(strval, za->za_num_integers); 7197 break; 7198 } 7199 vdev_prop_add_list(outnvl, propname, strval, 0, 7200 src); 7201 kmem_free(strval, za->za_num_integers); 7202 break; 7203 7204 default: 7205 break; 7206 } 7207 } 7208 zap_cursor_fini(&zc); 7209 zap_attribute_free(za); 7210 } 7211 7212 mutex_exit(&spa->spa_props_lock); 7213 spa_config_exit(spa, SCL_CONFIG, FTAG); 7214 7215 if (err && err != ENOENT) { 7216 return (err); 7217 } 7218 7219 return (0); 7220 } 7221 7222 EXPORT_SYMBOL(vdev_fault); 7223 EXPORT_SYMBOL(vdev_degrade); 7224 EXPORT_SYMBOL(vdev_online); 7225 EXPORT_SYMBOL(vdev_offline); 7226 EXPORT_SYMBOL(vdev_clear); 7227 7228 ZFS_MODULE_PARAM(zfs_vdev, zfs_vdev_, default_ms_count, UINT, ZMOD_RW, 7229 "Target number of metaslabs per top-level vdev"); 7230 7231 ZFS_MODULE_PARAM(zfs_vdev, zfs_vdev_, default_ms_shift, UINT, ZMOD_RW, 7232 "Default lower limit for metaslab size"); 7233 7234 ZFS_MODULE_PARAM(zfs_vdev, zfs_vdev_, max_ms_shift, UINT, ZMOD_RW, 7235 "Default upper limit for metaslab size"); 7236 7237 ZFS_MODULE_PARAM(zfs_vdev, zfs_vdev_, min_ms_count, UINT, ZMOD_RW, 7238 "Minimum number of metaslabs per top-level vdev"); 7239 7240 ZFS_MODULE_PARAM(zfs_vdev, zfs_vdev_, ms_count_limit, UINT, ZMOD_RW, 7241 "Practical upper limit of total metaslabs per top-level vdev"); 7242 7243 ZFS_MODULE_PARAM(zfs, zfs_vdev_, dtl_sm_blksz, INT, ZMOD_RW, 7244 "Block size for DTL space map. Power of 2 greater than 4096."); 7245 7246 ZFS_MODULE_PARAM(zfs, zfs_vdev_, standard_sm_blksz, INT, ZMOD_RW, 7247 "Block size for standard space map. Power of 2 greater than 4096."); 7248 7249 ZFS_MODULE_PARAM(zfs, zfs_, slow_io_events_per_second, UINT, ZMOD_RW, 7250 "Rate limit slow IO (delay) events to this many per second"); 7251 7252 ZFS_MODULE_PARAM(zfs, zfs_, deadman_events_per_second, UINT, ZMOD_RW, 7253 "Rate limit hung IO (deadman) events to this many per second"); 7254 7255 ZFS_MODULE_PARAM(zfs, zfs_, dio_write_verify_events_per_second, UINT, ZMOD_RW, 7256 "Rate Direct I/O write verify events to this many per second"); 7257 7258 ZFS_MODULE_PARAM(zfs_vdev, zfs_vdev_, direct_write_verify, UINT, ZMOD_RW, 7259 "Direct I/O writes will perform for checksum verification before " 7260 "commiting write"); 7261 7262 ZFS_MODULE_PARAM(zfs, zfs_, checksum_events_per_second, UINT, ZMOD_RW, 7263 "Rate limit checksum events to this many checksum errors per second " 7264 "(do not set below ZED threshold)."); 7265 7266 ZFS_MODULE_PARAM(zfs, zfs_, scan_ignore_errors, INT, ZMOD_RW, 7267 "Ignore errors during resilver/scrub"); 7268 7269 ZFS_MODULE_PARAM(zfs_vdev, vdev_, validate_skip, INT, ZMOD_RW, 7270 "Bypass vdev_validate()"); 7271 7272 ZFS_MODULE_PARAM(zfs, zfs_, nocacheflush, INT, ZMOD_RW, 7273 "Disable cache flushes"); 7274 7275 ZFS_MODULE_PARAM(zfs, zfs_, embedded_slog_min_ms, UINT, ZMOD_RW, 7276 "Minimum number of metaslabs required to dedicate one for log blocks"); 7277 7278 ZFS_MODULE_PARAM_CALL(zfs_vdev, zfs_vdev_, min_auto_ashift, 7279 param_set_min_auto_ashift, param_get_uint, ZMOD_RW, 7280 "Minimum ashift used when creating new top-level vdevs"); 7281 7282 ZFS_MODULE_PARAM_CALL(zfs_vdev, zfs_vdev_, max_auto_ashift, 7283 param_set_max_auto_ashift, param_get_uint, ZMOD_RW, 7284 "Maximum ashift used when optimizing for logical -> physical sector " 7285 "size on new top-level vdevs"); 7286 7287 ZFS_MODULE_PARAM_CALL(zfs_vdev, zfs_vdev_, raidz_impl, 7288 param_set_raidz_impl, param_get_raidz_impl, ZMOD_RW, 7289 "RAIDZ implementation"); 7290