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 * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved. 14 * Copyright (c) 2011, 2022 by Delphix. All rights reserved. 15 * Copyright (c) 2011 Nexenta Systems, Inc. All rights reserved. 16 * Copyright (c) 2017, Intel Corporation. 17 * Copyright (c) 2019, 2023, 2024, 2025, Klara, Inc. 18 * Copyright (c) 2019, Allan Jude 19 * Copyright (c) 2021, Datto, Inc. 20 * Copyright (c) 2021, 2024 by George Melikov. All rights reserved. 21 */ 22 23 #include <sys/sysmacros.h> 24 #include <sys/zfs_context.h> 25 #include <sys/fm/fs/zfs.h> 26 #include <sys/spa.h> 27 #include <sys/txg.h> 28 #include <sys/spa_impl.h> 29 #include <sys/vdev_impl.h> 30 #include <sys/vdev_trim.h> 31 #include <sys/zio_impl.h> 32 #include <sys/zio_compress.h> 33 #include <sys/zio_checksum.h> 34 #include <sys/dmu_objset.h> 35 #include <sys/arc.h> 36 #include <sys/brt.h> 37 #include <sys/ddt.h> 38 #include <sys/blkptr.h> 39 #include <sys/zfeature.h> 40 #include <sys/dsl_scan.h> 41 #include <sys/metaslab_impl.h> 42 #include <sys/time.h> 43 #include <sys/trace_zfs.h> 44 #include <sys/abd.h> 45 #include <sys/dsl_crypt.h> 46 #include <cityhash.h> 47 48 /* 49 * ========================================================================== 50 * I/O type descriptions 51 * ========================================================================== 52 */ 53 const char *const zio_type_name[ZIO_TYPES] = { 54 /* 55 * Note: Linux kernel thread name length is limited 56 * so these names will differ from upstream open zfs. 57 */ 58 "z_null", "z_rd", "z_wr", "z_fr", "z_cl", "z_flush", "z_trim" 59 }; 60 61 int zio_dva_throttle_enabled = B_TRUE; 62 static int zio_deadman_log_all = B_FALSE; 63 64 /* 65 * ========================================================================== 66 * I/O kmem caches 67 * ========================================================================== 68 */ 69 static kmem_cache_t *zio_cache; 70 static kmem_cache_t *zio_link_cache; 71 kmem_cache_t *zio_buf_cache[SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT]; 72 kmem_cache_t *zio_data_buf_cache[SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT]; 73 #if defined(ZFS_DEBUG) && !defined(_KERNEL) 74 static uint64_t zio_buf_cache_allocs[SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT]; 75 static uint64_t zio_buf_cache_frees[SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT]; 76 #endif 77 78 /* Mark IOs as "slow" if they take longer than 30 seconds */ 79 static uint_t zio_slow_io_ms = (30 * MILLISEC); 80 81 #define BP_SPANB(indblkshift, level) \ 82 (((uint64_t)1) << ((level) * ((indblkshift) - SPA_BLKPTRSHIFT))) 83 #define COMPARE_META_LEVEL 0x80000000ul 84 /* 85 * The following actions directly effect the spa's sync-to-convergence logic. 86 * The values below define the sync pass when we start performing the action. 87 * Care should be taken when changing these values as they directly impact 88 * spa_sync() performance. Tuning these values may introduce subtle performance 89 * pathologies and should only be done in the context of performance analysis. 90 * These tunables will eventually be removed and replaced with #defines once 91 * enough analysis has been done to determine optimal values. 92 * 93 * The 'zfs_sync_pass_deferred_free' pass must be greater than 1 to ensure that 94 * regular blocks are not deferred. 95 * 96 * Starting in sync pass 8 (zfs_sync_pass_dont_compress), we disable 97 * compression (including of metadata). In practice, we don't have this 98 * many sync passes, so this has no effect. 99 * 100 * The original intent was that disabling compression would help the sync 101 * passes to converge. However, in practice disabling compression increases 102 * the average number of sync passes, because when we turn compression off, a 103 * lot of block's size will change and thus we have to re-allocate (not 104 * overwrite) them. It also increases the number of 128KB allocations (e.g. 105 * for indirect blocks and spacemaps) because these will not be compressed. 106 * The 128K allocations are especially detrimental to performance on highly 107 * fragmented systems, which may have very few free segments of this size, 108 * and may need to load new metaslabs to satisfy 128K allocations. 109 */ 110 111 /* defer frees starting in this pass */ 112 uint_t zfs_sync_pass_deferred_free = 2; 113 114 /* don't compress starting in this pass */ 115 static uint_t zfs_sync_pass_dont_compress = 8; 116 117 /* rewrite new bps starting in this pass */ 118 static uint_t zfs_sync_pass_rewrite = 2; 119 120 /* 121 * An allocating zio is one that either currently has the DVA allocate 122 * stage set or will have it later in its lifetime. 123 */ 124 #define IO_IS_ALLOCATING(zio) ((zio)->io_orig_pipeline & ZIO_STAGE_DVA_ALLOCATE) 125 126 /* 127 * Enable smaller cores by excluding metadata 128 * allocations as well. 129 */ 130 int zio_exclude_metadata = 0; 131 static int zio_requeue_io_start_cut_in_line = 1; 132 133 #ifdef ZFS_DEBUG 134 static const int zio_buf_debug_limit = 16384; 135 #else 136 static const int zio_buf_debug_limit = 0; 137 #endif 138 139 typedef struct zio_stats { 140 kstat_named_t ziostat_total_allocations; 141 kstat_named_t ziostat_alloc_class_fallbacks; 142 kstat_named_t ziostat_gang_writes; 143 kstat_named_t ziostat_gang_multilevel; 144 } zio_stats_t; 145 146 static zio_stats_t zio_stats = { 147 { "total_allocations", KSTAT_DATA_UINT64 }, 148 { "alloc_class_fallbacks", KSTAT_DATA_UINT64 }, 149 { "gang_writes", KSTAT_DATA_UINT64 }, 150 { "gang_multilevel", KSTAT_DATA_UINT64 }, 151 }; 152 153 struct { 154 wmsum_t ziostat_total_allocations; 155 wmsum_t ziostat_alloc_class_fallbacks; 156 wmsum_t ziostat_gang_writes; 157 wmsum_t ziostat_gang_multilevel; 158 } ziostat_sums; 159 160 #define ZIOSTAT_BUMP(stat) wmsum_add(&ziostat_sums.stat, 1); 161 162 static kstat_t *zio_ksp; 163 164 static inline void __zio_execute(zio_t *zio); 165 166 static void zio_taskq_dispatch(zio_t *, zio_taskq_type_t, boolean_t); 167 static void zio_batch_join(zio_batch_t *, zio_t *); 168 169 static int 170 zio_kstats_update(kstat_t *ksp, int rw) 171 { 172 zio_stats_t *zs = ksp->ks_data; 173 if (rw == KSTAT_WRITE) 174 return (EACCES); 175 176 zs->ziostat_total_allocations.value.ui64 = 177 wmsum_value(&ziostat_sums.ziostat_total_allocations); 178 zs->ziostat_alloc_class_fallbacks.value.ui64 = 179 wmsum_value(&ziostat_sums.ziostat_alloc_class_fallbacks); 180 zs->ziostat_gang_writes.value.ui64 = 181 wmsum_value(&ziostat_sums.ziostat_gang_writes); 182 zs->ziostat_gang_multilevel.value.ui64 = 183 wmsum_value(&ziostat_sums.ziostat_gang_multilevel); 184 return (0); 185 } 186 187 void 188 zio_init(void) 189 { 190 size_t c; 191 192 zio_cache = kmem_cache_create("zio_cache", 193 sizeof (zio_t), 0, NULL, NULL, NULL, NULL, NULL, 0); 194 zio_link_cache = kmem_cache_create("zio_link_cache", 195 sizeof (zio_link_t), 0, NULL, NULL, NULL, NULL, NULL, 0); 196 197 wmsum_init(&ziostat_sums.ziostat_total_allocations, 0); 198 wmsum_init(&ziostat_sums.ziostat_alloc_class_fallbacks, 0); 199 wmsum_init(&ziostat_sums.ziostat_gang_writes, 0); 200 wmsum_init(&ziostat_sums.ziostat_gang_multilevel, 0); 201 zio_ksp = kstat_create("zfs", 0, "zio_stats", 202 "misc", KSTAT_TYPE_NAMED, sizeof (zio_stats) / 203 sizeof (kstat_named_t), KSTAT_FLAG_VIRTUAL); 204 if (zio_ksp != NULL) { 205 zio_ksp->ks_data = &zio_stats; 206 zio_ksp->ks_update = zio_kstats_update; 207 kstat_install(zio_ksp); 208 } 209 210 for (c = 0; c < SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT; c++) { 211 size_t size = (c + 1) << SPA_MINBLOCKSHIFT; 212 size_t align, cflags, data_cflags; 213 char name[32]; 214 215 /* 216 * Create cache for each half-power of 2 size, starting from 217 * SPA_MINBLOCKSIZE. It should give us memory space efficiency 218 * of ~7/8, sufficient for transient allocations mostly using 219 * these caches. 220 */ 221 size_t p2 = size; 222 while (!ISP2(p2)) 223 p2 &= p2 - 1; 224 if (!IS_P2ALIGNED(size, p2 / 2)) 225 continue; 226 227 #ifndef _KERNEL 228 /* 229 * If we are using watchpoints, put each buffer on its own page, 230 * to eliminate the performance overhead of trapping to the 231 * kernel when modifying a non-watched buffer that shares the 232 * page with a watched buffer. 233 */ 234 if (arc_watch && !IS_P2ALIGNED(size, PAGESIZE)) 235 continue; 236 #endif 237 238 if (IS_P2ALIGNED(size, PAGESIZE)) 239 align = PAGESIZE; 240 else 241 align = 1 << (highbit64(size ^ (size - 1)) - 1); 242 243 cflags = (zio_exclude_metadata || size > zio_buf_debug_limit) ? 244 KMC_NODEBUG : 0; 245 data_cflags = KMC_NODEBUG; 246 if (abd_size_alloc_linear(size)) { 247 cflags |= KMC_RECLAIMABLE; 248 data_cflags |= KMC_RECLAIMABLE; 249 } 250 if (cflags == data_cflags) { 251 /* 252 * Resulting kmem caches would be identical. 253 * Save memory by creating only one. 254 */ 255 (void) snprintf(name, sizeof (name), 256 "zio_buf_comb_%lu", (ulong_t)size); 257 zio_buf_cache[c] = kmem_cache_create(name, size, align, 258 NULL, NULL, NULL, NULL, NULL, cflags); 259 zio_data_buf_cache[c] = zio_buf_cache[c]; 260 continue; 261 } 262 (void) snprintf(name, sizeof (name), "zio_buf_%lu", 263 (ulong_t)size); 264 zio_buf_cache[c] = kmem_cache_create(name, size, align, 265 NULL, NULL, NULL, NULL, NULL, cflags); 266 267 (void) snprintf(name, sizeof (name), "zio_data_buf_%lu", 268 (ulong_t)size); 269 zio_data_buf_cache[c] = kmem_cache_create(name, size, align, 270 NULL, NULL, NULL, NULL, NULL, data_cflags); 271 } 272 273 while (--c != 0) { 274 ASSERT(zio_buf_cache[c] != NULL); 275 if (zio_buf_cache[c - 1] == NULL) 276 zio_buf_cache[c - 1] = zio_buf_cache[c]; 277 278 ASSERT(zio_data_buf_cache[c] != NULL); 279 if (zio_data_buf_cache[c - 1] == NULL) 280 zio_data_buf_cache[c - 1] = zio_data_buf_cache[c]; 281 } 282 283 zio_inject_init(); 284 285 lz4_init(); 286 } 287 288 void 289 zio_fini(void) 290 { 291 size_t n = SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT; 292 293 #if defined(ZFS_DEBUG) && !defined(_KERNEL) 294 for (size_t i = 0; i < n; i++) { 295 if (zio_buf_cache_allocs[i] != zio_buf_cache_frees[i]) 296 (void) printf("zio_fini: [%d] %llu != %llu\n", 297 (int)((i + 1) << SPA_MINBLOCKSHIFT), 298 (long long unsigned)zio_buf_cache_allocs[i], 299 (long long unsigned)zio_buf_cache_frees[i]); 300 } 301 #endif 302 303 /* 304 * The same kmem cache can show up multiple times in both zio_buf_cache 305 * and zio_data_buf_cache. Do a wasteful but trivially correct scan to 306 * sort it out. 307 */ 308 for (size_t i = 0; i < n; i++) { 309 kmem_cache_t *cache = zio_buf_cache[i]; 310 if (cache == NULL) 311 continue; 312 for (size_t j = i; j < n; j++) { 313 if (cache == zio_buf_cache[j]) 314 zio_buf_cache[j] = NULL; 315 if (cache == zio_data_buf_cache[j]) 316 zio_data_buf_cache[j] = NULL; 317 } 318 kmem_cache_destroy(cache); 319 } 320 321 for (size_t i = 0; i < n; i++) { 322 kmem_cache_t *cache = zio_data_buf_cache[i]; 323 if (cache == NULL) 324 continue; 325 for (size_t j = i; j < n; j++) { 326 if (cache == zio_data_buf_cache[j]) 327 zio_data_buf_cache[j] = NULL; 328 } 329 kmem_cache_destroy(cache); 330 } 331 332 for (size_t i = 0; i < n; i++) { 333 VERIFY0P(zio_buf_cache[i]); 334 VERIFY0P(zio_data_buf_cache[i]); 335 } 336 337 if (zio_ksp != NULL) { 338 kstat_delete(zio_ksp); 339 zio_ksp = NULL; 340 } 341 342 wmsum_fini(&ziostat_sums.ziostat_total_allocations); 343 wmsum_fini(&ziostat_sums.ziostat_alloc_class_fallbacks); 344 wmsum_fini(&ziostat_sums.ziostat_gang_writes); 345 wmsum_fini(&ziostat_sums.ziostat_gang_multilevel); 346 347 kmem_cache_destroy(zio_link_cache); 348 kmem_cache_destroy(zio_cache); 349 350 zio_inject_fini(); 351 352 lz4_fini(); 353 } 354 355 /* 356 * ========================================================================== 357 * Allocate and free I/O buffers 358 * ========================================================================== 359 */ 360 361 #if defined(ZFS_DEBUG) && defined(_KERNEL) 362 #define ZFS_ZIO_BUF_CANARY 1 363 #endif 364 365 #ifdef ZFS_ZIO_BUF_CANARY 366 static const ulong_t zio_buf_canary = (ulong_t)0xdeadc0dedead210b; 367 368 /* 369 * Use empty space after the buffer to detect overflows. 370 * 371 * Since zio_init() creates kmem caches only for certain set of buffer sizes, 372 * allocations of different sizes may have some unused space after the data. 373 * Filling part of that space with a known pattern on allocation and checking 374 * it on free should allow us to detect some buffer overflows. 375 */ 376 static void 377 zio_buf_put_canary(ulong_t *p, size_t size, kmem_cache_t **cache, size_t c) 378 { 379 size_t off = P2ROUNDUP(size, sizeof (ulong_t)); 380 ulong_t *canary = p + off / sizeof (ulong_t); 381 size_t asize = (c + 1) << SPA_MINBLOCKSHIFT; 382 if (c + 1 < SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT && 383 cache[c] == cache[c + 1]) 384 asize = (c + 2) << SPA_MINBLOCKSHIFT; 385 for (; off < asize; canary++, off += sizeof (ulong_t)) 386 *canary = zio_buf_canary; 387 } 388 389 static void 390 zio_buf_check_canary(ulong_t *p, size_t size, kmem_cache_t **cache, size_t c) 391 { 392 size_t off = P2ROUNDUP(size, sizeof (ulong_t)); 393 ulong_t *canary = p + off / sizeof (ulong_t); 394 size_t asize = (c + 1) << SPA_MINBLOCKSHIFT; 395 if (c + 1 < SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT && 396 cache[c] == cache[c + 1]) 397 asize = (c + 2) << SPA_MINBLOCKSHIFT; 398 for (; off < asize; canary++, off += sizeof (ulong_t)) { 399 if (unlikely(*canary != zio_buf_canary)) { 400 PANIC("ZIO buffer overflow %p (%zu) + %zu %#lx != %#lx", 401 p, size, (canary - p) * sizeof (ulong_t), 402 *canary, zio_buf_canary); 403 } 404 } 405 } 406 #endif 407 408 /* 409 * Use zio_buf_alloc to allocate ZFS metadata. This data will appear in a 410 * crashdump if the kernel panics, so use it judiciously. Obviously, it's 411 * useful to inspect ZFS metadata, but if possible, we should avoid keeping 412 * excess / transient data in-core during a crashdump. 413 */ 414 void * 415 zio_buf_alloc(size_t size) 416 { 417 size_t c = (size - 1) >> SPA_MINBLOCKSHIFT; 418 419 VERIFY3U(c, <, SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT); 420 #if defined(ZFS_DEBUG) && !defined(_KERNEL) 421 atomic_add_64(&zio_buf_cache_allocs[c], 1); 422 #endif 423 424 void *p = kmem_cache_alloc(zio_buf_cache[c], KM_PUSHPAGE); 425 #ifdef ZFS_ZIO_BUF_CANARY 426 zio_buf_put_canary(p, size, zio_buf_cache, c); 427 #endif 428 return (p); 429 } 430 431 /* 432 * Use zio_data_buf_alloc to allocate data. The data will not appear in a 433 * crashdump if the kernel panics. This exists so that we will limit the amount 434 * of ZFS data that shows up in a kernel crashdump. (Thus reducing the amount 435 * of kernel heap dumped to disk when the kernel panics) 436 */ 437 void * 438 zio_data_buf_alloc(size_t size) 439 { 440 size_t c = (size - 1) >> SPA_MINBLOCKSHIFT; 441 442 VERIFY3U(c, <, SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT); 443 444 void *p = kmem_cache_alloc(zio_data_buf_cache[c], KM_PUSHPAGE); 445 #ifdef ZFS_ZIO_BUF_CANARY 446 zio_buf_put_canary(p, size, zio_data_buf_cache, c); 447 #endif 448 return (p); 449 } 450 451 void 452 zio_buf_free(void *buf, size_t size) 453 { 454 size_t c = (size - 1) >> SPA_MINBLOCKSHIFT; 455 456 VERIFY3U(c, <, SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT); 457 #if defined(ZFS_DEBUG) && !defined(_KERNEL) 458 atomic_add_64(&zio_buf_cache_frees[c], 1); 459 #endif 460 461 #ifdef ZFS_ZIO_BUF_CANARY 462 zio_buf_check_canary(buf, size, zio_buf_cache, c); 463 #endif 464 kmem_cache_free(zio_buf_cache[c], buf); 465 } 466 467 void 468 zio_data_buf_free(void *buf, size_t size) 469 { 470 size_t c = (size - 1) >> SPA_MINBLOCKSHIFT; 471 472 VERIFY3U(c, <, SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT); 473 474 #ifdef ZFS_ZIO_BUF_CANARY 475 zio_buf_check_canary(buf, size, zio_data_buf_cache, c); 476 #endif 477 kmem_cache_free(zio_data_buf_cache[c], buf); 478 } 479 480 static void 481 zio_abd_free(void *abd, size_t size) 482 { 483 (void) size; 484 abd_free((abd_t *)abd); 485 } 486 487 /* 488 * ========================================================================== 489 * Push and pop I/O transform buffers 490 * ========================================================================== 491 */ 492 void 493 zio_push_transform(zio_t *zio, abd_t *data, uint64_t size, uint64_t bufsize, 494 zio_transform_func_t *transform) 495 { 496 zio_transform_t *zt = kmem_alloc(sizeof (zio_transform_t), KM_SLEEP); 497 498 zt->zt_orig_abd = zio->io_abd; 499 zt->zt_orig_size = zio->io_size; 500 zt->zt_bufsize = bufsize; 501 zt->zt_transform = transform; 502 503 zt->zt_next = zio->io_transform_stack; 504 zio->io_transform_stack = zt; 505 506 zio->io_abd = data; 507 zio->io_size = size; 508 } 509 510 void 511 zio_pop_transforms(zio_t *zio) 512 { 513 zio_transform_t *zt; 514 515 while ((zt = zio->io_transform_stack) != NULL) { 516 if (zt->zt_transform != NULL) 517 zt->zt_transform(zio, 518 zt->zt_orig_abd, zt->zt_orig_size); 519 520 if (zt->zt_bufsize != 0) 521 abd_free(zio->io_abd); 522 523 zio->io_abd = zt->zt_orig_abd; 524 zio->io_size = zt->zt_orig_size; 525 zio->io_transform_stack = zt->zt_next; 526 527 kmem_free(zt, sizeof (zio_transform_t)); 528 } 529 } 530 531 /* 532 * ========================================================================== 533 * I/O transform callbacks for subblocks, decompression, and decryption 534 * ========================================================================== 535 */ 536 static void 537 zio_subblock(zio_t *zio, abd_t *data, uint64_t size) 538 { 539 ASSERT(zio->io_size > size); 540 541 if (zio->io_type == ZIO_TYPE_READ) 542 abd_copy(data, zio->io_abd, size); 543 } 544 545 static void 546 zio_decompress(zio_t *zio, abd_t *data, uint64_t size) 547 { 548 if (zio->io_error == 0) { 549 int ret = zio_decompress_data(BP_GET_COMPRESS(zio->io_bp), 550 zio->io_abd, data, zio->io_size, size, 551 &zio->io_prop.zp_complevel); 552 553 if (zio_injection_enabled && ret == 0) 554 ret = zio_handle_fault_injection(zio, EINVAL); 555 556 if (ret != 0) 557 zio->io_error = SET_ERROR(EIO); 558 } 559 } 560 561 static void 562 zio_decrypt(zio_t *zio, abd_t *data, uint64_t size) 563 { 564 int ret; 565 void *tmp; 566 blkptr_t *bp = zio->io_bp; 567 spa_t *spa = zio->io_spa; 568 uint64_t dsobj = zio->io_bookmark.zb_objset; 569 uint64_t lsize = BP_GET_LSIZE(bp); 570 dmu_object_type_t ot = BP_GET_TYPE(bp); 571 uint8_t salt[ZIO_DATA_SALT_LEN]; 572 uint8_t iv[ZIO_DATA_IV_LEN]; 573 uint8_t mac[ZIO_DATA_MAC_LEN]; 574 boolean_t no_crypt = B_FALSE; 575 576 ASSERT(BP_USES_CRYPT(bp)); 577 ASSERT3U(size, !=, 0); 578 579 if (zio->io_error != 0) 580 return; 581 582 /* 583 * Verify the cksum of MACs stored in an indirect bp. It will always 584 * be possible to verify this since it does not require an encryption 585 * key. 586 */ 587 if (BP_HAS_INDIRECT_MAC_CKSUM(bp)) { 588 zio_crypt_decode_mac_bp(bp, mac); 589 590 if (BP_GET_COMPRESS(bp) != ZIO_COMPRESS_OFF) { 591 /* 592 * We haven't decompressed the data yet, but 593 * zio_crypt_do_indirect_mac_checksum() requires 594 * decompressed data to be able to parse out the MACs 595 * from the indirect block. We decompress it now and 596 * throw away the result after we are finished. 597 */ 598 abd_t *abd = abd_alloc_linear(lsize, B_TRUE); 599 ret = zio_decompress_data(BP_GET_COMPRESS(bp), 600 zio->io_abd, abd, zio->io_size, lsize, 601 &zio->io_prop.zp_complevel); 602 if (ret != 0) { 603 abd_free(abd); 604 ret = SET_ERROR(EIO); 605 goto error; 606 } 607 ret = zio_crypt_do_indirect_mac_checksum_abd(B_FALSE, 608 abd, lsize, BP_SHOULD_BYTESWAP(bp), mac); 609 abd_free(abd); 610 } else { 611 ret = zio_crypt_do_indirect_mac_checksum_abd(B_FALSE, 612 zio->io_abd, size, BP_SHOULD_BYTESWAP(bp), mac); 613 } 614 abd_copy(data, zio->io_abd, size); 615 616 if (zio_injection_enabled && ot != DMU_OT_DNODE && ret == 0) { 617 ret = zio_handle_decrypt_injection(spa, 618 &zio->io_bookmark, ot, ECKSUM); 619 } 620 if (ret != 0) 621 goto error; 622 623 return; 624 } 625 626 /* 627 * If this is an authenticated block, just check the MAC. It would be 628 * nice to separate this out into its own flag, but when this was done, 629 * we had run out of bits in what is now zio_flag_t. Future cleanup 630 * could make this a flag bit. 631 */ 632 if (BP_IS_AUTHENTICATED(bp)) { 633 if (ot == DMU_OT_OBJSET) { 634 ret = spa_do_crypt_objset_mac_abd(B_FALSE, spa, 635 dsobj, zio->io_abd, size, BP_SHOULD_BYTESWAP(bp)); 636 } else { 637 zio_crypt_decode_mac_bp(bp, mac); 638 ret = spa_do_crypt_mac_abd(B_FALSE, spa, dsobj, 639 zio->io_abd, size, mac); 640 if (zio_injection_enabled && ret == 0) { 641 ret = zio_handle_decrypt_injection(spa, 642 &zio->io_bookmark, ot, ECKSUM); 643 } 644 } 645 abd_copy(data, zio->io_abd, size); 646 647 if (ret != 0) 648 goto error; 649 650 return; 651 } 652 653 zio_crypt_decode_params_bp(bp, salt, iv); 654 655 if (ot == DMU_OT_INTENT_LOG) { 656 tmp = abd_borrow_buf_copy(zio->io_abd, sizeof (zil_chain_t)); 657 zio_crypt_decode_mac_zil(tmp, mac); 658 abd_return_buf(zio->io_abd, tmp, sizeof (zil_chain_t)); 659 } else { 660 zio_crypt_decode_mac_bp(bp, mac); 661 } 662 663 ret = spa_do_crypt_abd(B_FALSE, spa, &zio->io_bookmark, BP_GET_TYPE(bp), 664 BP_GET_DEDUP(bp), BP_SHOULD_BYTESWAP(bp), salt, iv, mac, size, data, 665 zio->io_abd, &no_crypt); 666 if (no_crypt) 667 abd_copy(data, zio->io_abd, size); 668 669 if (ret != 0) 670 goto error; 671 672 return; 673 674 error: 675 /* the key was found unless this was speculative or a thorough scrub */ 676 ASSERT(ret != EACCES || (zio->io_flags & ZIO_FLAG_SPECULATIVE) || 677 ((zio->io_flags & ZIO_FLAG_SCRUB) && 678 !(zio->io_flags & ZIO_FLAG_RAW))); 679 680 /* 681 * If there was a decryption / authentication error return EIO as 682 * the io_error. If this was not a speculative zio, create an ereport. 683 */ 684 if (ret == ECKSUM) { 685 zio->io_error = SET_ERROR(EIO); 686 if ((zio->io_flags & ZIO_FLAG_SPECULATIVE) == 0) { 687 spa_log_error(spa, &zio->io_bookmark, 688 BP_GET_PHYSICAL_BIRTH(zio->io_bp)); 689 (void) zfs_ereport_post(FM_EREPORT_ZFS_AUTHENTICATION, 690 spa, NULL, &zio->io_bookmark, zio, 0); 691 } 692 } else { 693 zio->io_error = ret; 694 } 695 } 696 697 /* 698 * ========================================================================== 699 * I/O parent/child relationships and pipeline interlocks 700 * ========================================================================== 701 */ 702 zio_t * 703 zio_walk_parents(zio_t *cio, zio_link_t **zl) 704 { 705 list_t *pl = &cio->io_parent_list; 706 707 *zl = (*zl == NULL) ? list_head(pl) : list_next(pl, *zl); 708 if (*zl == NULL) 709 return (NULL); 710 711 ASSERT((*zl)->zl_child == cio); 712 return ((*zl)->zl_parent); 713 } 714 715 zio_t * 716 zio_walk_children(zio_t *pio, zio_link_t **zl) 717 { 718 list_t *cl = &pio->io_child_list; 719 720 ASSERT(MUTEX_HELD(&pio->io_lock)); 721 722 *zl = (*zl == NULL) ? list_head(cl) : list_next(cl, *zl); 723 if (*zl == NULL) 724 return (NULL); 725 726 ASSERT((*zl)->zl_parent == pio); 727 return ((*zl)->zl_child); 728 } 729 730 zio_t * 731 zio_unique_parent(zio_t *cio) 732 { 733 zio_link_t *zl = NULL; 734 zio_t *pio = zio_walk_parents(cio, &zl); 735 736 VERIFY3P(zio_walk_parents(cio, &zl), ==, NULL); 737 return (pio); 738 } 739 740 static void 741 zio_add_child_impl(zio_t *pio, zio_t *cio, boolean_t first) 742 { 743 /* 744 * Logical I/Os can have logical, gang, or vdev children. 745 * Gang I/Os can have gang or vdev children. 746 * Vdev I/Os can only have vdev children. 747 * The following ASSERT captures all of these constraints. 748 */ 749 ASSERT3S(cio->io_child_type, <=, pio->io_child_type); 750 751 /* Parent should not have READY stage if child doesn't have it. */ 752 IMPLY((cio->io_pipeline & ZIO_STAGE_READY) == 0 && 753 (cio->io_child_type != ZIO_CHILD_VDEV), 754 (pio->io_pipeline & ZIO_STAGE_READY) == 0); 755 756 zio_link_t *zl = kmem_cache_alloc(zio_link_cache, KM_SLEEP); 757 zl->zl_parent = pio; 758 zl->zl_child = cio; 759 760 mutex_enter(&pio->io_lock); 761 762 if (first) 763 ASSERT(list_is_empty(&cio->io_parent_list)); 764 else 765 mutex_enter(&cio->io_lock); 766 767 ASSERT0(pio->io_state[ZIO_WAIT_DONE]); 768 769 uint64_t *countp = pio->io_children[cio->io_child_type]; 770 for (int w = 0; w < ZIO_WAIT_TYPES; w++) 771 countp[w] += !cio->io_state[w]; 772 773 list_insert_head(&pio->io_child_list, zl); 774 list_insert_head(&cio->io_parent_list, zl); 775 776 if (!first) 777 mutex_exit(&cio->io_lock); 778 779 mutex_exit(&pio->io_lock); 780 } 781 782 void 783 zio_add_child(zio_t *pio, zio_t *cio) 784 { 785 zio_add_child_impl(pio, cio, B_FALSE); 786 } 787 788 static void 789 zio_add_child_first(zio_t *pio, zio_t *cio) 790 { 791 zio_add_child_impl(pio, cio, B_TRUE); 792 } 793 794 static void 795 zio_remove_child(zio_t *pio, zio_t *cio, zio_link_t *zl) 796 { 797 ASSERT(zl->zl_parent == pio); 798 ASSERT(zl->zl_child == cio); 799 800 mutex_enter(&pio->io_lock); 801 mutex_enter(&cio->io_lock); 802 803 list_remove(&pio->io_child_list, zl); 804 list_remove(&cio->io_parent_list, zl); 805 806 mutex_exit(&cio->io_lock); 807 mutex_exit(&pio->io_lock); 808 kmem_cache_free(zio_link_cache, zl); 809 } 810 811 static boolean_t 812 zio_wait_for_children(zio_t *zio, uint8_t childbits, enum zio_wait_type wait) 813 { 814 boolean_t waiting = B_FALSE; 815 816 mutex_enter(&zio->io_lock); 817 ASSERT0P(zio->io_stall); 818 for (int c = 0; c < ZIO_CHILD_TYPES; c++) { 819 if (!(ZIO_CHILD_BIT_IS_SET(childbits, c))) 820 continue; 821 822 uint64_t *countp = &zio->io_children[c][wait]; 823 if (*countp != 0) { 824 zio->io_stage >>= 1; 825 ASSERT3U(zio->io_stage, !=, ZIO_STAGE_OPEN); 826 zio->io_stall = countp; 827 waiting = B_TRUE; 828 break; 829 } 830 } 831 mutex_exit(&zio->io_lock); 832 return (waiting); 833 } 834 835 /* 836 * The zios a pipeline stage hands back to zio_execute() to run once the 837 * current one stops, chained through io_exec_next in the order they were 838 * added. 839 */ 840 typedef struct zio_next { 841 zio_t *zn_list; 842 zio_t **zn_tailp; /* where the next one is appended */ 843 } zio_next_t; 844 845 static inline void 846 zio_next_init(zio_next_t *next) 847 { 848 next->zn_list = NULL; 849 next->zn_tailp = &next->zn_list; 850 } 851 852 __attribute__((always_inline)) 853 static inline void 854 zio_notify_parent(zio_t *pio, zio_t *zio, enum zio_wait_type wait, 855 zio_next_t *nextp) 856 { 857 uint64_t *countp = &pio->io_children[zio->io_child_type][wait]; 858 int *errorp = &pio->io_child_error[zio->io_child_type]; 859 860 mutex_enter(&pio->io_lock); 861 if (zio->io_error && !(zio->io_flags & ZIO_FLAG_DONT_PROPAGATE)) 862 *errorp = zio_worst_error(*errorp, zio->io_error); 863 pio->io_post |= zio->io_post; 864 ASSERT3U(*countp, >, 0); 865 866 (*countp)--; 867 868 if (*countp == 0 && pio->io_stall == countp) { 869 zio_taskq_type_t type = 870 pio->io_stage < ZIO_STAGE_VDEV_IO_START ? ZIO_TASKQ_ISSUE : 871 ZIO_TASKQ_INTERRUPT; 872 pio->io_stall = NULL; 873 mutex_exit(&pio->io_lock); 874 875 /* 876 * If we can tell the caller to execute this parent next, do 877 * so. We do this if the parent's zio type matches the child's 878 * type, or if it's a zio_null() with no done callback, and so 879 * has no actual work to do. Otherwise dispatch the parent zio 880 * in its own taskq. 881 * 882 * Having the caller execute the parent when possible reduces 883 * locking on the zio taskq's, reduces context switch 884 * overhead, and has no recursion penalty. Note that one 885 * read from disk typically causes at least 3 zio's: a 886 * zio_null(), the logical zio_read(), and then a physical 887 * zio. When the physical ZIO completes, we are able to call 888 * zio_done() on all 3 of these zio's from one invocation of 889 * zio_execute() by returning the parent back to 890 * zio_execute(). Since the parent isn't executed until this 891 * thread returns back to zio_execute(), the caller should do 892 * so promptly. 893 * 894 * In other cases, dispatching the parent prevents 895 * overflowing the stack when we have deeply nested 896 * parent-child relationships, as we do with the "mega zio" 897 * of writes for spa_sync(), and the chain of ZIL blocks. 898 * 899 * More than one parent may become executable at once, and all 900 * of them go back to the caller. It is the caller that keeps 901 * one and dispatches the rest, since only it knows what else 902 * is already waiting for its thread. 903 */ 904 if (nextp != NULL && 905 (pio->io_type == zio->io_type || 906 (pio->io_type == ZIO_TYPE_NULL && !pio->io_done))) { 907 ASSERT3P(pio->io_exec_next, ==, NULL); 908 *nextp->zn_tailp = pio; 909 nextp->zn_tailp = &pio->io_exec_next; 910 } else { 911 zio_taskq_dispatch(pio, type, B_FALSE); 912 } 913 } else { 914 mutex_exit(&pio->io_lock); 915 } 916 } 917 918 static void 919 zio_inherit_child_errors(zio_t *zio, enum zio_child c) 920 { 921 if (zio->io_child_error[c] != 0 && zio->io_error == 0) 922 zio->io_error = zio->io_child_error[c]; 923 } 924 925 int 926 zio_bookmark_compare(const void *x1, const void *x2) 927 { 928 const zio_t *z1 = x1; 929 const zio_t *z2 = x2; 930 const zbookmark_phys_t *zb1 = &z1->io_bookmark; 931 const zbookmark_phys_t *zb2 = &z2->io_bookmark; 932 933 int cmp = TREE_CMP(zb1->zb_objset, zb2->zb_objset); 934 if (cmp != 0) 935 return (cmp); 936 937 cmp = TREE_CMP(zb1->zb_object, zb2->zb_object); 938 if (cmp != 0) 939 return (cmp); 940 941 cmp = TREE_CMP(zb1->zb_level, zb2->zb_level); 942 if (cmp != 0) 943 return (cmp); 944 945 cmp = TREE_CMP(zb1->zb_blkid, zb2->zb_blkid); 946 if (cmp != 0) 947 return (cmp); 948 949 return (TREE_PCMP(z1, z2)); 950 } 951 952 /* 953 * ========================================================================== 954 * Create the various types of I/O (read, write, free, etc) 955 * ========================================================================== 956 */ 957 static zio_t * 958 zio_create(zio_t *pio, spa_t *spa, uint64_t txg, const blkptr_t *bp, 959 abd_t *data, uint64_t lsize, uint64_t psize, zio_done_func_t *done, 960 void *private, zio_type_t type, zio_priority_t priority, 961 zio_flag_t flags, vdev_t *vd, uint64_t offset, 962 const zbookmark_phys_t *zb, enum zio_stage stage, 963 enum zio_stage pipeline) 964 { 965 zio_t *zio; 966 967 IMPLY(type != ZIO_TYPE_TRIM, psize <= SPA_MAXBLOCKSIZE); 968 ASSERT0(P2PHASE(psize, SPA_MINBLOCKSIZE)); 969 ASSERT0(P2PHASE(offset, SPA_MINBLOCKSIZE)); 970 971 ASSERT(!vd || spa_config_held(spa, SCL_STATE_ALL, RW_READER)); 972 ASSERT(!bp || !(flags & ZIO_FLAG_CONFIG_WRITER)); 973 ASSERT(vd || stage == ZIO_STAGE_OPEN); 974 975 IMPLY(lsize != psize, (flags & ZIO_FLAG_RAW_COMPRESS) != 0); 976 977 zio = kmem_cache_alloc(zio_cache, KM_SLEEP); 978 memset(zio, 0, sizeof (zio_t)); 979 980 mutex_init(&zio->io_lock, NULL, MUTEX_NOLOCKDEP, NULL); 981 cv_init(&zio->io_cv, NULL, CV_DEFAULT, NULL); 982 983 list_create(&zio->io_parent_list, sizeof (zio_link_t), 984 offsetof(zio_link_t, zl_parent_node)); 985 list_create(&zio->io_child_list, sizeof (zio_link_t), 986 offsetof(zio_link_t, zl_child_node)); 987 metaslab_trace_init(ZIO_ALLOC_LIST(zio)); 988 989 if (vd != NULL) 990 zio->io_child_type = ZIO_CHILD_VDEV; 991 else if (flags & ZIO_FLAG_GANG_CHILD) 992 zio->io_child_type = ZIO_CHILD_GANG; 993 else if (flags & ZIO_FLAG_DDT_CHILD) 994 zio->io_child_type = ZIO_CHILD_DDT; 995 else 996 zio->io_child_type = ZIO_CHILD_LOGICAL; 997 998 if (bp != NULL) { 999 if (type != ZIO_TYPE_WRITE || 1000 zio->io_child_type == ZIO_CHILD_DDT) { 1001 zio->io_bp_copy = *bp; 1002 zio->io_bp = &zio->io_bp_copy; /* so caller can free */ 1003 } else { 1004 zio->io_bp = (blkptr_t *)bp; 1005 } 1006 zio->io_bp_orig = *bp; 1007 if (zio->io_child_type == ZIO_CHILD_LOGICAL) 1008 zio->io_logical = zio; 1009 if (zio->io_child_type > ZIO_CHILD_GANG && BP_IS_GANG(bp)) 1010 pipeline |= ZIO_GANG_STAGES; 1011 if (flags & ZIO_FLAG_PREALLOCATED) { 1012 BP_ZERO_DVAS(zio->io_bp); 1013 BP_SET_BIRTH(zio->io_bp, 0, 0); 1014 } 1015 } 1016 1017 zio->io_spa = spa; 1018 zio->io_txg = txg; 1019 zio->io_done = done; 1020 zio->io_private = private; 1021 zio->io_type = type; 1022 zio->io_priority = priority; 1023 zio->io_vd = vd; 1024 zio->io_offset = offset; 1025 zio->io_orig_abd = zio->io_abd = data; 1026 zio->io_orig_size = zio->io_size = psize; 1027 zio->io_lsize = lsize; 1028 zio->io_orig_flags = zio->io_flags = flags; 1029 zio->io_orig_stage = zio->io_stage = stage; 1030 zio->io_orig_pipeline = zio->io_pipeline = pipeline; 1031 zio->io_pipeline_trace = ZIO_STAGE_OPEN; 1032 zio->io_allocator = ZIO_ALLOCATOR_NONE; 1033 1034 zio->io_state[ZIO_WAIT_READY] = (stage >= ZIO_STAGE_READY) || 1035 (pipeline & ZIO_STAGE_READY) == 0; 1036 zio->io_state[ZIO_WAIT_DONE] = (stage >= ZIO_STAGE_DONE); 1037 1038 if (zb != NULL) 1039 zio->io_bookmark = *zb; 1040 1041 if (pio != NULL) { 1042 zio->io_metaslab_class = pio->io_metaslab_class; 1043 if (zio->io_logical == NULL) 1044 zio->io_logical = pio->io_logical; 1045 if (zio->io_child_type == ZIO_CHILD_GANG) 1046 zio->io_gang_leader = pio->io_gang_leader; 1047 zio_add_child_first(pio, zio); 1048 } 1049 1050 taskq_init_ent(&zio->io_tqent); 1051 1052 return (zio); 1053 } 1054 1055 void 1056 zio_destroy(zio_t *zio) 1057 { 1058 ASSERT3P(zio->io_batch, ==, NULL); 1059 ASSERT3P(zio->io_child_batch, ==, NULL); 1060 ASSERT3P(zio->io_exec_next, ==, NULL); 1061 metaslab_trace_fini(ZIO_ALLOC_LIST(zio)); 1062 list_destroy(&zio->io_parent_list); 1063 list_destroy(&zio->io_child_list); 1064 mutex_destroy(&zio->io_lock); 1065 cv_destroy(&zio->io_cv); 1066 kmem_cache_free(zio_cache, zio); 1067 } 1068 1069 /* 1070 * ZIO intended to be between others. Provides synchronization at READY 1071 * and DONE pipeline stages and calls the respective callbacks. 1072 */ 1073 zio_t * 1074 zio_null(zio_t *pio, spa_t *spa, vdev_t *vd, zio_done_func_t *done, 1075 void *private, zio_flag_t flags) 1076 { 1077 zio_t *zio; 1078 1079 zio = zio_create(pio, spa, 0, NULL, NULL, 0, 0, done, private, 1080 ZIO_TYPE_NULL, ZIO_PRIORITY_NOW, flags, vd, 0, NULL, 1081 ZIO_STAGE_OPEN, ZIO_INTERLOCK_PIPELINE); 1082 1083 return (zio); 1084 } 1085 1086 /* 1087 * ZIO intended to be a root of a tree. Unlike null ZIO does not have a 1088 * READY pipeline stage (is ready on creation), so it should not be used 1089 * as child of any ZIO that may need waiting for grandchildren READY stage 1090 * (any other ZIO type). 1091 */ 1092 zio_t * 1093 zio_root(spa_t *spa, zio_done_func_t *done, void *private, zio_flag_t flags) 1094 { 1095 zio_t *zio; 1096 1097 zio = zio_create(NULL, spa, 0, NULL, NULL, 0, 0, done, private, 1098 ZIO_TYPE_NULL, ZIO_PRIORITY_NOW, flags, NULL, 0, NULL, 1099 ZIO_STAGE_OPEN, ZIO_ROOT_PIPELINE); 1100 1101 return (zio); 1102 } 1103 1104 static int 1105 zfs_blkptr_verify_log(spa_t *spa, const blkptr_t *bp, 1106 enum blk_verify_flag blk_verify, const char *fmt, ...) 1107 { 1108 va_list adx; 1109 char buf[256]; 1110 1111 va_start(adx, fmt); 1112 (void) vsnprintf(buf, sizeof (buf), fmt, adx); 1113 va_end(adx); 1114 1115 zfs_dbgmsg("bad blkptr at %px: " 1116 "DVA[0]=%#llx/%#llx " 1117 "DVA[1]=%#llx/%#llx " 1118 "DVA[2]=%#llx/%#llx " 1119 "prop=%#llx " 1120 "prop2=%#llx " 1121 "pad=%#llx " 1122 "phys_birth=%#llx " 1123 "birth=%#llx " 1124 "fill=%#llx " 1125 "cksum=%#llx/%#llx/%#llx/%#llx", 1126 bp, 1127 (long long)bp->blk_dva[0].dva_word[0], 1128 (long long)bp->blk_dva[0].dva_word[1], 1129 (long long)bp->blk_dva[1].dva_word[0], 1130 (long long)bp->blk_dva[1].dva_word[1], 1131 (long long)bp->blk_dva[2].dva_word[0], 1132 (long long)bp->blk_dva[2].dva_word[1], 1133 (long long)bp->blk_prop, 1134 (long long)bp->blk_prop2, 1135 (long long)bp->blk_pad, 1136 (long long)BP_GET_RAW_PHYSICAL_BIRTH(bp), 1137 (long long)BP_GET_LOGICAL_BIRTH(bp), 1138 (long long)bp->blk_fill, 1139 (long long)bp->blk_cksum.zc_word[0], 1140 (long long)bp->blk_cksum.zc_word[1], 1141 (long long)bp->blk_cksum.zc_word[2], 1142 (long long)bp->blk_cksum.zc_word[3]); 1143 switch (blk_verify) { 1144 case BLK_VERIFY_HALT: 1145 zfs_panic_recover("%s: %s", spa_name(spa), buf); 1146 break; 1147 case BLK_VERIFY_LOG: 1148 zfs_dbgmsg("%s: %s", spa_name(spa), buf); 1149 break; 1150 case BLK_VERIFY_ONLY: 1151 break; 1152 } 1153 1154 return (1); 1155 } 1156 1157 /* 1158 * Verify the block pointer fields contain reasonable values. This means 1159 * it only contains known object types, checksum/compression identifiers, 1160 * block sizes within the maximum allowed limits, valid DVAs, etc. 1161 * 1162 * If everything checks out 0 is returned. The zfs_blkptr_verify 1163 * argument controls the behavior when an invalid field is detected. 1164 * 1165 * Values for blk_verify_flag: 1166 * BLK_VERIFY_ONLY: evaluate the block 1167 * BLK_VERIFY_LOG: evaluate the block and log problems 1168 * BLK_VERIFY_HALT: call zfs_panic_recover on error 1169 * 1170 * Values for blk_config_flag: 1171 * BLK_CONFIG_HELD: caller holds SCL_VDEV for writer 1172 * BLK_CONFIG_NEEDED: caller holds no config lock, SCL_VDEV will be 1173 * obtained for reader 1174 * BLK_CONFIG_SKIP: skip checks which require SCL_VDEV, for better 1175 * performance 1176 */ 1177 int 1178 zfs_blkptr_verify(spa_t *spa, const blkptr_t *bp, 1179 enum blk_config_flag blk_config, enum blk_verify_flag blk_verify) 1180 { 1181 int errors = 0; 1182 1183 if (unlikely(!DMU_OT_IS_VALID(BP_GET_TYPE(bp)))) { 1184 errors += zfs_blkptr_verify_log(spa, bp, blk_verify, 1185 "blkptr at %px has invalid TYPE %llu", 1186 bp, (longlong_t)BP_GET_TYPE(bp)); 1187 } 1188 if (unlikely(BP_GET_COMPRESS(bp) >= ZIO_COMPRESS_FUNCTIONS)) { 1189 errors += zfs_blkptr_verify_log(spa, bp, blk_verify, 1190 "blkptr at %px has invalid COMPRESS %llu", 1191 bp, (longlong_t)BP_GET_COMPRESS(bp)); 1192 } 1193 if (unlikely(BP_GET_LSIZE(bp) > SPA_MAXBLOCKSIZE)) { 1194 errors += zfs_blkptr_verify_log(spa, bp, blk_verify, 1195 "blkptr at %px has invalid LSIZE %llu", 1196 bp, (longlong_t)BP_GET_LSIZE(bp)); 1197 } 1198 if (BP_IS_EMBEDDED(bp)) { 1199 if (unlikely(BPE_GET_ETYPE(bp) >= NUM_BP_EMBEDDED_TYPES)) { 1200 errors += zfs_blkptr_verify_log(spa, bp, blk_verify, 1201 "blkptr at %px has invalid ETYPE %llu", 1202 bp, (longlong_t)BPE_GET_ETYPE(bp)); 1203 } 1204 if (unlikely(BPE_GET_PSIZE(bp) > BPE_PAYLOAD_SIZE)) { 1205 errors += zfs_blkptr_verify_log(spa, bp, blk_verify, 1206 "blkptr at %px has invalid PSIZE %llu", 1207 bp, (longlong_t)BPE_GET_PSIZE(bp)); 1208 } 1209 return (errors ? ECKSUM : 0); 1210 } else if (BP_IS_HOLE(bp)) { 1211 /* 1212 * Holes are allowed (expected, even) to have no DVAs, no 1213 * checksum, and no psize. 1214 */ 1215 return (errors ? ECKSUM : 0); 1216 } else if (unlikely(!DVA_IS_VALID(&bp->blk_dva[0]))) { 1217 /* Non-hole, non-embedded BPs _must_ have at least one DVA */ 1218 errors += zfs_blkptr_verify_log(spa, bp, blk_verify, 1219 "blkptr at %px has no valid DVAs", bp); 1220 } 1221 if (unlikely(BP_GET_CHECKSUM(bp) >= ZIO_CHECKSUM_FUNCTIONS)) { 1222 errors += zfs_blkptr_verify_log(spa, bp, blk_verify, 1223 "blkptr at %px has invalid CHECKSUM %llu", 1224 bp, (longlong_t)BP_GET_CHECKSUM(bp)); 1225 } 1226 if (unlikely(BP_GET_PSIZE(bp) > SPA_MAXBLOCKSIZE)) { 1227 errors += zfs_blkptr_verify_log(spa, bp, blk_verify, 1228 "blkptr at %px has invalid PSIZE %llu", 1229 bp, (longlong_t)BP_GET_PSIZE(bp)); 1230 } 1231 1232 /* 1233 * Do not verify individual DVAs if the config is not trusted. This 1234 * will be done once the zio is executed in vdev_mirror_map_alloc. 1235 */ 1236 if (unlikely(!spa->spa_trust_config)) 1237 return (errors ? ECKSUM : 0); 1238 1239 switch (blk_config) { 1240 case BLK_CONFIG_HELD: 1241 ASSERT(spa_config_held(spa, SCL_VDEV, RW_WRITER)); 1242 break; 1243 case BLK_CONFIG_NEEDED: 1244 spa_config_enter(spa, SCL_VDEV, bp, RW_READER); 1245 break; 1246 case BLK_CONFIG_NEEDED_TRY: 1247 if (!spa_config_tryenter(spa, SCL_VDEV, bp, RW_READER)) 1248 return (EBUSY); 1249 break; 1250 case BLK_CONFIG_SKIP: 1251 return (errors ? ECKSUM : 0); 1252 default: 1253 panic("invalid blk_config %u", blk_config); 1254 } 1255 1256 /* 1257 * Pool-specific checks. 1258 * 1259 * Note: it would be nice to verify that the logical birth 1260 * and physical birth are not too large. However, 1261 * spa_freeze() allows the birth time of log blocks (and 1262 * dmu_sync()-ed blocks that are in the log) to be arbitrarily 1263 * large. 1264 */ 1265 for (int i = 0; i < BP_GET_NDVAS(bp); i++) { 1266 const dva_t *dva = &bp->blk_dva[i]; 1267 uint64_t vdevid = DVA_GET_VDEV(dva); 1268 1269 if (unlikely(vdevid >= spa->spa_root_vdev->vdev_children)) { 1270 errors += zfs_blkptr_verify_log(spa, bp, blk_verify, 1271 "blkptr at %px DVA %u has invalid VDEV %llu", 1272 bp, i, (longlong_t)vdevid); 1273 continue; 1274 } 1275 vdev_t *vd = spa->spa_root_vdev->vdev_child[vdevid]; 1276 if (unlikely(vd == NULL)) { 1277 errors += zfs_blkptr_verify_log(spa, bp, blk_verify, 1278 "blkptr at %px DVA %u has invalid VDEV %llu", 1279 bp, i, (longlong_t)vdevid); 1280 continue; 1281 } 1282 if (unlikely(vd->vdev_ops == &vdev_hole_ops)) { 1283 errors += zfs_blkptr_verify_log(spa, bp, blk_verify, 1284 "blkptr at %px DVA %u has hole VDEV %llu", 1285 bp, i, (longlong_t)vdevid); 1286 continue; 1287 } 1288 if (vd->vdev_ops == &vdev_missing_ops) { 1289 /* 1290 * "missing" vdevs are valid during import, but we 1291 * don't have their detailed info (e.g. asize), so 1292 * we can't perform any more checks on them. 1293 */ 1294 continue; 1295 } 1296 uint64_t offset = DVA_GET_OFFSET(dva); 1297 uint64_t asize = DVA_GET_ASIZE(dva); 1298 if (DVA_GET_GANG(dva)) 1299 asize = vdev_gang_header_asize(vd); 1300 if (unlikely(offset + asize > vd->vdev_asize)) { 1301 errors += zfs_blkptr_verify_log(spa, bp, blk_verify, 1302 "blkptr at %px DVA %u has invalid OFFSET %llu", 1303 bp, i, (longlong_t)offset); 1304 } 1305 } 1306 if (blk_config == BLK_CONFIG_NEEDED || blk_config == 1307 BLK_CONFIG_NEEDED_TRY) 1308 spa_config_exit(spa, SCL_VDEV, bp); 1309 1310 return (errors ? ECKSUM : 0); 1311 } 1312 1313 boolean_t 1314 zfs_dva_valid(spa_t *spa, const dva_t *dva, const blkptr_t *bp) 1315 { 1316 (void) bp; 1317 uint64_t vdevid = DVA_GET_VDEV(dva); 1318 1319 if (vdevid >= spa->spa_root_vdev->vdev_children) 1320 return (B_FALSE); 1321 1322 vdev_t *vd = spa->spa_root_vdev->vdev_child[vdevid]; 1323 if (vd == NULL) 1324 return (B_FALSE); 1325 1326 if (vd->vdev_ops == &vdev_hole_ops) 1327 return (B_FALSE); 1328 1329 if (vd->vdev_ops == &vdev_missing_ops) { 1330 return (B_FALSE); 1331 } 1332 1333 uint64_t offset = DVA_GET_OFFSET(dva); 1334 uint64_t asize = DVA_GET_ASIZE(dva); 1335 1336 if (DVA_GET_GANG(dva)) 1337 asize = vdev_gang_header_asize(vd); 1338 if (offset + asize > vd->vdev_asize) 1339 return (B_FALSE); 1340 1341 return (B_TRUE); 1342 } 1343 1344 zio_t * 1345 zio_read(zio_t *pio, spa_t *spa, const blkptr_t *bp, 1346 abd_t *data, uint64_t size, zio_done_func_t *done, void *private, 1347 zio_priority_t priority, zio_flag_t flags, const zbookmark_phys_t *zb) 1348 { 1349 zio_t *zio; 1350 1351 zio = zio_create(pio, spa, BP_GET_PHYSICAL_BIRTH(bp), bp, 1352 data, size, size, done, private, 1353 ZIO_TYPE_READ, priority, flags, NULL, 0, zb, 1354 ZIO_STAGE_OPEN, (flags & ZIO_FLAG_DDT_CHILD) ? 1355 ZIO_DDT_CHILD_READ_PIPELINE : ZIO_READ_PIPELINE); 1356 1357 return (zio); 1358 } 1359 1360 zio_t * 1361 zio_write(zio_t *pio, spa_t *spa, uint64_t txg, blkptr_t *bp, 1362 abd_t *data, uint64_t lsize, uint64_t psize, const zio_prop_t *zp, 1363 zio_done_func_t *ready, zio_done_func_t *children_ready, 1364 zio_done_func_t *done, void *private, zio_priority_t priority, 1365 zio_flag_t flags, const zbookmark_phys_t *zb) 1366 { 1367 zio_t *zio; 1368 enum zio_stage pipeline = zp->zp_direct_write == B_TRUE ? 1369 ZIO_DIRECT_WRITE_PIPELINE : (flags & ZIO_FLAG_DDT_CHILD) ? 1370 ZIO_DDT_CHILD_WRITE_PIPELINE : ZIO_WRITE_PIPELINE; 1371 1372 1373 zio = zio_create(pio, spa, txg, bp, data, lsize, psize, done, private, 1374 ZIO_TYPE_WRITE, priority, flags, NULL, 0, zb, 1375 ZIO_STAGE_OPEN, pipeline); 1376 1377 zio->io_ready = ready; 1378 zio->io_children_ready = children_ready; 1379 zio->io_prop = *zp; 1380 1381 /* 1382 * Data can be NULL if we are going to call zio_write_override() to 1383 * provide the already-allocated BP. But we may need the data to 1384 * verify a dedup hit (if requested). In this case, don't try to 1385 * dedup (just take the already-allocated BP verbatim). Encrypted 1386 * dedup blocks need data as well so we also disable dedup in this 1387 * case. 1388 */ 1389 if (data == NULL && 1390 (zio->io_prop.zp_dedup_verify || zio->io_prop.zp_encrypt)) { 1391 zio->io_prop.zp_dedup = zio->io_prop.zp_dedup_verify = B_FALSE; 1392 } 1393 1394 return (zio); 1395 } 1396 1397 zio_t * 1398 zio_rewrite(zio_t *pio, spa_t *spa, uint64_t txg, blkptr_t *bp, abd_t *data, 1399 uint64_t size, zio_done_func_t *done, void *private, 1400 zio_priority_t priority, zio_flag_t flags, zbookmark_phys_t *zb) 1401 { 1402 zio_t *zio; 1403 1404 zio = zio_create(pio, spa, txg, bp, data, size, size, done, private, 1405 ZIO_TYPE_WRITE, priority, flags | ZIO_FLAG_IO_REWRITE, NULL, 0, zb, 1406 ZIO_STAGE_OPEN, ZIO_REWRITE_PIPELINE); 1407 1408 return (zio); 1409 } 1410 1411 void 1412 zio_write_override(zio_t *zio, blkptr_t *bp, int copies, int gang_copies, 1413 boolean_t nopwrite, boolean_t brtwrite) 1414 { 1415 ASSERT(zio->io_type == ZIO_TYPE_WRITE); 1416 ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL); 1417 ASSERT(zio->io_stage == ZIO_STAGE_OPEN); 1418 ASSERT(zio->io_txg == spa_syncing_txg(zio->io_spa)); 1419 ASSERT(!brtwrite || !nopwrite); 1420 1421 /* 1422 * We must reset the io_prop to match the values that existed 1423 * when the bp was first written by dmu_sync() keeping in mind 1424 * that nopwrite and dedup are mutually exclusive. 1425 */ 1426 zio->io_prop.zp_dedup = nopwrite ? B_FALSE : zio->io_prop.zp_dedup; 1427 zio->io_prop.zp_nopwrite = nopwrite; 1428 zio->io_prop.zp_brtwrite = brtwrite; 1429 zio->io_prop.zp_copies = copies; 1430 zio->io_prop.zp_gang_copies = gang_copies; 1431 zio->io_bp_override = bp; 1432 } 1433 1434 void 1435 zio_free(spa_t *spa, uint64_t txg, const blkptr_t *bp) 1436 { 1437 1438 (void) zfs_blkptr_verify(spa, bp, BLK_CONFIG_NEEDED, BLK_VERIFY_HALT); 1439 1440 /* 1441 * The check for EMBEDDED is a performance optimization. We 1442 * process the free here (by ignoring it) rather than 1443 * putting it on the list and then processing it in zio_free_sync(). 1444 */ 1445 if (BP_IS_EMBEDDED(bp)) 1446 return; 1447 1448 /* 1449 * Frees that are for the currently-syncing txg, are not going to be 1450 * deferred, and which will not need to do a read (i.e. not GANG or 1451 * DEDUP), can be processed immediately. Otherwise, put them on the 1452 * in-memory list for later processing. 1453 * 1454 * Note that we only defer frees after zfs_sync_pass_deferred_free 1455 * when the log space map feature is disabled. [see relevant comment 1456 * in spa_sync_iterate_to_convergence()] 1457 */ 1458 if (BP_IS_GANG(bp) || 1459 BP_GET_DEDUP(bp) || 1460 txg != spa->spa_syncing_txg || 1461 (spa_sync_pass(spa) >= zfs_sync_pass_deferred_free && 1462 !spa_feature_is_active(spa, SPA_FEATURE_LOG_SPACEMAP)) || 1463 brt_maybe_exists(spa, bp)) { 1464 metaslab_check_free(spa, bp); 1465 bplist_append(&spa->spa_free_bplist[txg & TXG_MASK], bp); 1466 } else { 1467 VERIFY0P(zio_free_sync(NULL, spa, txg, bp, 0)); 1468 } 1469 } 1470 1471 /* 1472 * To improve performance, this function may return NULL if we were able 1473 * to do the free immediately. This avoids the cost of creating a zio 1474 * (and linking it to the parent, etc). 1475 */ 1476 zio_t * 1477 zio_free_sync(zio_t *pio, spa_t *spa, uint64_t txg, const blkptr_t *bp, 1478 zio_flag_t flags) 1479 { 1480 ASSERT(!BP_IS_HOLE(bp)); 1481 ASSERT(spa_syncing_txg(spa) == txg); 1482 1483 if (BP_IS_EMBEDDED(bp)) 1484 return (NULL); 1485 1486 metaslab_check_free(spa, bp); 1487 arc_freed(spa, bp); 1488 dsl_scan_freed(spa, bp); 1489 1490 if (BP_IS_GANG(bp) || 1491 BP_GET_DEDUP(bp) || 1492 brt_maybe_exists(spa, bp)) { 1493 /* 1494 * GANG, DEDUP and BRT blocks can induce a read (for the gang 1495 * block header, the DDT or the BRT), so issue them 1496 * asynchronously so that this thread is not tied up. 1497 */ 1498 enum zio_stage stage = 1499 ZIO_FREE_PIPELINE | ZIO_STAGE_ISSUE_ASYNC; 1500 1501 return (zio_create(pio, spa, txg, bp, NULL, BP_GET_PSIZE(bp), 1502 BP_GET_PSIZE(bp), NULL, NULL, 1503 ZIO_TYPE_FREE, ZIO_PRIORITY_NOW, 1504 flags, NULL, 0, NULL, ZIO_STAGE_OPEN, stage)); 1505 } else { 1506 metaslab_free(spa, bp, txg, B_FALSE); 1507 return (NULL); 1508 } 1509 } 1510 1511 zio_t * 1512 zio_claim(zio_t *pio, spa_t *spa, uint64_t txg, const blkptr_t *bp, 1513 zio_done_func_t *done, void *private, zio_flag_t flags) 1514 { 1515 zio_t *zio; 1516 1517 (void) zfs_blkptr_verify(spa, bp, (flags & ZIO_FLAG_CONFIG_WRITER) ? 1518 BLK_CONFIG_HELD : BLK_CONFIG_NEEDED, BLK_VERIFY_HALT); 1519 1520 if (BP_IS_EMBEDDED(bp)) 1521 return (zio_null(pio, spa, NULL, NULL, NULL, 0)); 1522 1523 /* 1524 * A claim is an allocation of a specific block. Claims are needed 1525 * to support immediate writes in the intent log. The issue is that 1526 * immediate writes contain committed data, but in a txg that was 1527 * *not* committed. Upon opening the pool after an unclean shutdown, 1528 * the intent log claims all blocks that contain immediate write data 1529 * so that the SPA knows they're in use. 1530 * 1531 * All claims *must* be resolved in the first txg -- before the SPA 1532 * starts allocating blocks -- so that nothing is allocated twice. 1533 * If txg == 0 we just verify that the block is claimable. 1534 */ 1535 ASSERT3U(BP_GET_LOGICAL_BIRTH(&spa->spa_uberblock.ub_rootbp), <, 1536 spa_min_claim_txg(spa)); 1537 ASSERT(txg == spa_min_claim_txg(spa) || txg == 0); 1538 ASSERT(!BP_GET_DEDUP(bp) || !spa_writeable(spa)); /* zdb(8) */ 1539 1540 zio = zio_create(pio, spa, txg, bp, NULL, BP_GET_PSIZE(bp), 1541 BP_GET_PSIZE(bp), done, private, ZIO_TYPE_CLAIM, ZIO_PRIORITY_NOW, 1542 flags, NULL, 0, NULL, ZIO_STAGE_OPEN, ZIO_CLAIM_PIPELINE); 1543 ASSERT0(zio->io_queued_timestamp); 1544 1545 return (zio); 1546 } 1547 1548 zio_t * 1549 zio_trim(zio_t *pio, vdev_t *vd, uint64_t offset, uint64_t size, 1550 zio_done_func_t *done, void *private, zio_priority_t priority, 1551 zio_flag_t flags, enum trim_flag trim_flags) 1552 { 1553 zio_t *zio; 1554 1555 ASSERT0(vd->vdev_children); 1556 ASSERT0(P2PHASE(offset, 1ULL << vd->vdev_ashift)); 1557 ASSERT0(P2PHASE(size, 1ULL << vd->vdev_ashift)); 1558 ASSERT3U(size, !=, 0); 1559 1560 zio = zio_create(pio, vd->vdev_spa, 0, NULL, NULL, size, size, done, 1561 private, ZIO_TYPE_TRIM, priority, flags | ZIO_FLAG_PHYSICAL, 1562 vd, offset, NULL, ZIO_STAGE_OPEN, ZIO_TRIM_PIPELINE); 1563 zio->io_trim_flags = trim_flags; 1564 1565 return (zio); 1566 } 1567 1568 zio_t * 1569 zio_read_phys(zio_t *pio, vdev_t *vd, uint64_t offset, uint64_t size, 1570 abd_t *data, int checksum, zio_done_func_t *done, void *private, 1571 zio_priority_t priority, zio_flag_t flags, boolean_t labels) 1572 { 1573 zio_t *zio; 1574 1575 ASSERT0(vd->vdev_children); 1576 ASSERT(!labels || offset + size <= VDEV_LABEL_START_SIZE || 1577 offset >= vd->vdev_psize - VDEV_LABEL_END_SIZE); 1578 ASSERT3U(offset + size, <=, vd->vdev_psize); 1579 1580 zio = zio_create(pio, vd->vdev_spa, 0, NULL, data, size, size, done, 1581 private, ZIO_TYPE_READ, priority, flags | ZIO_FLAG_PHYSICAL, vd, 1582 offset, NULL, ZIO_STAGE_OPEN, ZIO_READ_PHYS_PIPELINE); 1583 1584 zio->io_prop.zp_checksum = checksum; 1585 1586 return (zio); 1587 } 1588 1589 zio_t * 1590 zio_write_phys(zio_t *pio, vdev_t *vd, uint64_t offset, uint64_t size, 1591 abd_t *data, int checksum, zio_done_func_t *done, void *private, 1592 zio_priority_t priority, zio_flag_t flags, boolean_t labels) 1593 { 1594 zio_t *zio; 1595 1596 ASSERT0(vd->vdev_children); 1597 ASSERT(!labels || offset + size <= VDEV_LABEL_START_SIZE || 1598 offset >= vd->vdev_psize - VDEV_LABEL_END_SIZE); 1599 ASSERT3U(offset + size, <=, vd->vdev_psize); 1600 1601 zio = zio_create(pio, vd->vdev_spa, 0, NULL, data, size, size, done, 1602 private, ZIO_TYPE_WRITE, priority, flags | ZIO_FLAG_PHYSICAL, vd, 1603 offset, NULL, ZIO_STAGE_OPEN, ZIO_WRITE_PHYS_PIPELINE); 1604 1605 zio->io_prop.zp_checksum = checksum; 1606 1607 if (zio_checksum_table[checksum].ci_flags & ZCHECKSUM_FLAG_EMBEDDED) { 1608 /* 1609 * zec checksums are necessarily destructive -- they modify 1610 * the end of the write buffer to hold the verifier/checksum. 1611 * Therefore, we must make a local copy in case the data is 1612 * being written to multiple places in parallel. 1613 */ 1614 abd_t *wbuf = abd_alloc_sametype(data, size); 1615 abd_copy(wbuf, data, size); 1616 1617 zio_push_transform(zio, wbuf, size, size, NULL); 1618 } 1619 1620 return (zio); 1621 } 1622 1623 /* 1624 * Create a child I/O to do some work for us. 1625 */ 1626 zio_t * 1627 zio_vdev_child_io(zio_t *pio, blkptr_t *bp, vdev_t *vd, uint64_t offset, 1628 abd_t *data, uint64_t size, int type, zio_priority_t priority, 1629 zio_flag_t flags, zio_done_func_t *done, void *private) 1630 { 1631 enum zio_stage pipeline = ZIO_VDEV_CHILD_PIPELINE; 1632 zio_t *zio; 1633 1634 /* 1635 * vdev child I/Os do not propagate their error to the parent. 1636 * Therefore, for correct operation the caller *must* check for 1637 * and handle the error in the child i/o's done callback. 1638 * The only exceptions are i/os that we don't care about 1639 * (OPTIONAL or REPAIR). 1640 */ 1641 ASSERT((flags & ZIO_FLAG_OPTIONAL) || (flags & ZIO_FLAG_IO_REPAIR) || 1642 done != NULL); 1643 1644 if (type == ZIO_TYPE_READ && bp != NULL) { 1645 /* 1646 * If we have the bp, then the child should perform the 1647 * checksum and the parent need not. This pushes error 1648 * detection as close to the leaves as possible and 1649 * eliminates redundant checksums in the interior nodes. 1650 */ 1651 pipeline |= ZIO_STAGE_CHECKSUM_VERIFY; 1652 pio->io_pipeline &= ~ZIO_STAGE_CHECKSUM_VERIFY; 1653 /* 1654 * We never allow the mirror VDEV to attempt reading from any 1655 * additional data copies after the first Direct I/O checksum 1656 * verify failure. This is to avoid bad data being written out 1657 * through the mirror during self healing. See comment in 1658 * vdev_mirror_io_done() for more details. 1659 */ 1660 ASSERT0(pio->io_post & ZIO_POST_DIO_CHKSUM_ERR); 1661 } else if (type == ZIO_TYPE_WRITE && 1662 pio->io_prop.zp_direct_write == B_TRUE) { 1663 /* 1664 * By default we only will verify checksums for Direct I/O 1665 * writes for Linux. FreeBSD is able to place user pages under 1666 * write protection before issuing them to the ZIO pipeline. 1667 * 1668 * Checksum validation errors will only be reported through 1669 * the top-level VDEV, which is set by this child ZIO. 1670 */ 1671 ASSERT3P(bp, !=, NULL); 1672 ASSERT3U(pio->io_child_type, ==, ZIO_CHILD_LOGICAL); 1673 pipeline |= ZIO_STAGE_DIO_CHECKSUM_VERIFY; 1674 } 1675 1676 if (vd->vdev_ops->vdev_op_leaf) { 1677 ASSERT0(vd->vdev_children); 1678 offset += VDEV_LABEL_START_SIZE; 1679 } 1680 1681 flags |= ZIO_VDEV_CHILD_FLAGS(pio); 1682 1683 /* 1684 * If we've decided to do a repair, the write is not speculative -- 1685 * even if the original read was. Rebuild is an exception since we 1686 * cannot always ensure its data integrity. 1687 */ 1688 if ((flags & ZIO_FLAG_IO_REPAIR) && 1689 pio->io_priority != ZIO_PRIORITY_REBUILD) 1690 flags &= ~ZIO_FLAG_SPECULATIVE; 1691 1692 /* 1693 * If we're creating a child I/O that is not associated with a 1694 * top-level vdev, then the child zio is not an allocating I/O. 1695 * If this is a retried I/O then we ignore it since we will 1696 * have already processed the original allocating I/O. 1697 */ 1698 if (flags & ZIO_FLAG_ALLOC_THROTTLED && 1699 (vd != vd->vdev_top || (flags & ZIO_FLAG_IO_RETRY)) && 1700 type == ZIO_TYPE_WRITE) { 1701 ASSERT(pio->io_metaslab_class != NULL); 1702 ASSERT(pio->io_metaslab_class->mc_alloc_throttle_enabled); 1703 ASSERT(priority == ZIO_PRIORITY_ASYNC_WRITE); 1704 ASSERT(!(flags & ZIO_FLAG_IO_REPAIR)); 1705 ASSERT(!(pio->io_flags & ZIO_FLAG_IO_REWRITE) || 1706 pio->io_child_type == ZIO_CHILD_GANG); 1707 1708 flags &= ~ZIO_FLAG_ALLOC_THROTTLED; 1709 } 1710 1711 zio = zio_create(pio, pio->io_spa, pio->io_txg, bp, data, size, size, 1712 done, private, type, priority, flags, vd, offset, &pio->io_bookmark, 1713 ZIO_STAGE_VDEV_IO_START >> 1, pipeline); 1714 ASSERT3U(zio->io_child_type, ==, ZIO_CHILD_VDEV); 1715 1716 if (pio->io_child_batch != NULL) { 1717 /* 1718 * Whatever wakes this child up, all it has left to do are the 1719 * few cheap stages of ZIO_VDEV_CHILD_PIPELINE, so it is better 1720 * run right there than dispatched. 1721 */ 1722 zio->io_flags |= ZIO_FLAG_LIGHTWEIGHT; 1723 1724 /* 1725 * Only children that come back from the block layer gain 1726 * anything from a batch. Interior ones are dispatched by their 1727 * own child's zio_notify_parent() instead, as are distributed 1728 * spares, which are leaves that issue children of their own. 1729 * The scheduler may change before a queue slot is actually 1730 * taken, so vdev_should_queue_io() here only keeps the batch 1731 * away from vdevs that can never use it; the binding decision 1732 * is vdev_queue_io()'s. 1733 */ 1734 if (vd->vdev_ops->vdev_op_leaf && 1735 vd->vdev_ops != &vdev_draid_spare_ops && 1736 !vdev_should_queue_io(zio)) { 1737 /* 1738 * The batch is dispatched to the taskq chosen for 1739 * whichever member arrives last, so they all have to 1740 * choose the same one. The flags that steer the choice 1741 * are vdev-inherited, and type and priority come from 1742 * the parent at every call site. 1743 */ 1744 ASSERT3U(zio->io_type, ==, pio->io_type); 1745 ASSERT3U(zio->io_priority, ==, pio->io_priority); 1746 zio_batch_join(pio->io_child_batch, zio); 1747 } 1748 } 1749 1750 return (zio); 1751 } 1752 1753 zio_t * 1754 zio_vdev_delegated_io(vdev_t *vd, uint64_t offset, abd_t *data, uint64_t size, 1755 zio_type_t type, zio_priority_t priority, zio_flag_t flags, 1756 zio_done_func_t *done, void *private) 1757 { 1758 zio_t *zio; 1759 1760 ASSERT(vd->vdev_ops->vdev_op_leaf); 1761 1762 zio = zio_create(NULL, vd->vdev_spa, 0, NULL, 1763 data, size, size, done, private, type, priority, 1764 flags | ZIO_FLAG_CANFAIL | ZIO_FLAG_DONT_RETRY | ZIO_FLAG_DELEGATED, 1765 vd, offset, NULL, 1766 ZIO_STAGE_VDEV_IO_START >> 1, ZIO_VDEV_CHILD_PIPELINE); 1767 1768 return (zio); 1769 } 1770 1771 1772 /* 1773 * Send a flush command to the given vdev. Unlike most zio creation functions, 1774 * the flush zios are issued immediately. You can wait on pio to pause until 1775 * the flushes complete. 1776 */ 1777 void 1778 zio_flush(zio_t *pio, vdev_t *vd) 1779 { 1780 const zio_flag_t flags = ZIO_FLAG_CANFAIL | ZIO_FLAG_DONT_PROPAGATE | 1781 ZIO_FLAG_DONT_RETRY; 1782 1783 if (vd->vdev_nowritecache) 1784 return; 1785 1786 if (vd->vdev_children == 0) { 1787 /* 1788 * A non-concrete vdev (a hole or indirect vdev left behind 1789 * by removing a log or data device) has no leaf device to 1790 * flush. Skip it; issuing a flush to an indirect vdev would 1791 * trip the ZIO_TYPE_WRITE assertion in 1792 * vdev_indirect_io_start(). 1793 */ 1794 if (!vdev_is_concrete(vd)) 1795 return; 1796 zio_nowait(zio_create(pio, vd->vdev_spa, 0, NULL, NULL, 0, 0, 1797 NULL, NULL, ZIO_TYPE_FLUSH, ZIO_PRIORITY_NOW, flags, vd, 0, 1798 NULL, ZIO_STAGE_OPEN, ZIO_FLUSH_PIPELINE)); 1799 } else { 1800 for (uint64_t c = 0; c < vd->vdev_children; c++) 1801 zio_flush(pio, vd->vdev_child[c]); 1802 } 1803 } 1804 1805 void 1806 zio_shrink(zio_t *zio, uint64_t size) 1807 { 1808 ASSERT0P(zio->io_executor); 1809 ASSERT3U(zio->io_orig_size, ==, zio->io_size); 1810 ASSERT3U(size, <=, zio->io_size); 1811 1812 /* 1813 * We don't shrink for raidz because of problems with the 1814 * reconstruction when reading back less than the block size. 1815 * Note, BP_IS_RAIDZ() assumes no compression. 1816 */ 1817 ASSERT(BP_GET_COMPRESS(zio->io_bp) == ZIO_COMPRESS_OFF); 1818 if (!BP_IS_RAIDZ(zio->io_bp)) { 1819 /* we are not doing a raw write */ 1820 ASSERT3U(zio->io_size, ==, zio->io_lsize); 1821 zio->io_orig_size = zio->io_size = zio->io_lsize = size; 1822 } 1823 } 1824 1825 /* 1826 * Round provided allocation size up to a value that can be allocated 1827 * by at least some vdev(s) in the pool with minimum or no additional 1828 * padding and without extra space usage on others 1829 */ 1830 static uint64_t 1831 zio_roundup_alloc_size(spa_t *spa, uint64_t size) 1832 { 1833 if (size > spa->spa_min_alloc) 1834 return (roundup(size, spa->spa_gcd_alloc)); 1835 return (spa->spa_min_alloc); 1836 } 1837 1838 size_t 1839 zio_get_compression_max_size(enum zio_compress compress, uint64_t gcd_alloc, 1840 uint64_t min_alloc, size_t s_len) 1841 { 1842 size_t d_len; 1843 1844 /* minimum 12.5% must be saved (legacy value, may be changed later) */ 1845 d_len = s_len - (s_len >> 3); 1846 1847 /* ZLE can't use exactly d_len bytes, it needs more, so ignore it */ 1848 if (compress == ZIO_COMPRESS_ZLE) 1849 return (d_len); 1850 1851 d_len = d_len - d_len % gcd_alloc; 1852 1853 if (d_len < min_alloc) 1854 return (BPE_PAYLOAD_SIZE); 1855 return (d_len); 1856 } 1857 1858 /* 1859 * ========================================================================== 1860 * Prepare to read and write logical blocks 1861 * ========================================================================== 1862 */ 1863 1864 static zio_t * 1865 zio_read_bp_init(zio_t *zio) 1866 { 1867 blkptr_t *bp = zio->io_bp; 1868 uint64_t psize = 1869 BP_IS_EMBEDDED(bp) ? BPE_GET_PSIZE(bp) : BP_GET_PSIZE(bp); 1870 1871 ASSERT3P(zio->io_bp, ==, &zio->io_bp_copy); 1872 1873 if (BP_GET_COMPRESS(bp) != ZIO_COMPRESS_OFF && 1874 zio->io_child_type == ZIO_CHILD_LOGICAL && 1875 !(zio->io_flags & ZIO_FLAG_RAW_COMPRESS)) { 1876 zio_push_transform(zio, abd_alloc_sametype(zio->io_abd, psize), 1877 psize, psize, zio_decompress); 1878 } 1879 1880 if (((BP_IS_PROTECTED(bp) && !(zio->io_flags & ZIO_FLAG_RAW_ENCRYPT)) || 1881 BP_HAS_INDIRECT_MAC_CKSUM(bp)) && 1882 zio->io_child_type == ZIO_CHILD_LOGICAL) { 1883 zio_push_transform(zio, abd_alloc_sametype(zio->io_abd, psize), 1884 psize, psize, zio_decrypt); 1885 } 1886 1887 if (BP_IS_EMBEDDED(bp) && BPE_GET_ETYPE(bp) == BP_EMBEDDED_TYPE_DATA) { 1888 int psize = BPE_GET_PSIZE(bp); 1889 void *data = abd_borrow_buf(zio->io_abd, psize); 1890 1891 zio->io_pipeline = ZIO_INTERLOCK_PIPELINE; 1892 decode_embedded_bp_compressed(bp, data); 1893 abd_return_buf_copy(zio->io_abd, data, psize); 1894 } else { 1895 ASSERT(!BP_IS_EMBEDDED(bp)); 1896 } 1897 1898 if (BP_GET_DEDUP(bp) && zio->io_child_type == ZIO_CHILD_LOGICAL) 1899 zio->io_pipeline = ZIO_DDT_READ_PIPELINE; 1900 1901 return (zio); 1902 } 1903 1904 static zio_t * 1905 zio_write_bp_init(zio_t *zio) 1906 { 1907 if (!IO_IS_ALLOCATING(zio)) 1908 return (zio); 1909 1910 ASSERT(zio->io_child_type != ZIO_CHILD_DDT); 1911 1912 if (zio->io_bp_override) { 1913 blkptr_t *bp = zio->io_bp; 1914 zio_prop_t *zp = &zio->io_prop; 1915 1916 ASSERT(BP_GET_BIRTH(bp) != zio->io_txg); 1917 1918 *bp = *zio->io_bp_override; 1919 zio->io_pipeline = ZIO_INTERLOCK_PIPELINE; 1920 1921 if (zp->zp_brtwrite) 1922 return (zio); 1923 1924 ASSERT(!BP_GET_DEDUP(zio->io_bp_override)); 1925 1926 if (BP_IS_EMBEDDED(bp)) 1927 return (zio); 1928 1929 /* 1930 * If we've been overridden and nopwrite is set then 1931 * set the flag accordingly to indicate that a nopwrite 1932 * has already occurred. 1933 */ 1934 if (!BP_IS_HOLE(bp) && zp->zp_nopwrite) { 1935 ASSERT(!zp->zp_dedup); 1936 ASSERT3U(BP_GET_CHECKSUM(bp), ==, zp->zp_checksum); 1937 zio->io_flags |= ZIO_FLAG_NOPWRITE; 1938 return (zio); 1939 } 1940 1941 ASSERT(!zp->zp_nopwrite); 1942 1943 if (BP_IS_HOLE(bp) || !zp->zp_dedup) 1944 return (zio); 1945 1946 ASSERT((zio_checksum_table[zp->zp_checksum].ci_flags & 1947 ZCHECKSUM_FLAG_DEDUP) || zp->zp_dedup_verify); 1948 1949 if (BP_GET_CHECKSUM(bp) == zp->zp_checksum && 1950 !zp->zp_encrypt) { 1951 BP_SET_DEDUP(bp, 1); 1952 zio->io_pipeline |= ZIO_STAGE_DDT_WRITE; 1953 return (zio); 1954 } 1955 1956 /* 1957 * We were unable to handle this as an override bp, treat 1958 * it as a regular write I/O. 1959 */ 1960 zio->io_bp_override = NULL; 1961 *bp = zio->io_bp_orig; 1962 zio->io_pipeline = zio->io_orig_pipeline; 1963 } 1964 1965 return (zio); 1966 } 1967 1968 static zio_t * 1969 zio_write_compress(zio_t *zio) 1970 { 1971 spa_t *spa = zio->io_spa; 1972 zio_prop_t *zp = &zio->io_prop; 1973 enum zio_compress compress = zp->zp_compress; 1974 blkptr_t *bp = zio->io_bp; 1975 uint64_t lsize = zio->io_lsize; 1976 uint64_t psize = zio->io_size; 1977 uint32_t pass = 1; 1978 1979 /* 1980 * If our children haven't all reached the ready stage, 1981 * wait for them and then repeat this pipeline stage. 1982 */ 1983 if (zio_wait_for_children(zio, ZIO_CHILD_LOGICAL_BIT | 1984 ZIO_CHILD_GANG_BIT, ZIO_WAIT_READY)) { 1985 return (NULL); 1986 } 1987 1988 if (!IO_IS_ALLOCATING(zio)) 1989 return (zio); 1990 1991 if (zio->io_children_ready != NULL) { 1992 /* 1993 * Now that all our children are ready, run the callback 1994 * associated with this zio in case it wants to modify the 1995 * data to be written. 1996 */ 1997 ASSERT3U(zp->zp_level, >, 0); 1998 zio->io_children_ready(zio); 1999 } 2000 2001 ASSERT(zio->io_child_type != ZIO_CHILD_DDT); 2002 ASSERT0P(zio->io_bp_override); 2003 2004 if (!BP_IS_HOLE(bp) && BP_GET_BIRTH(bp) == zio->io_txg) { 2005 /* 2006 * We're rewriting an existing block, which means we're 2007 * working on behalf of spa_sync(). For spa_sync() to 2008 * converge, it must eventually be the case that we don't 2009 * have to allocate new blocks. But compression changes 2010 * the blocksize, which forces a reallocate, and makes 2011 * convergence take longer. Therefore, after the first 2012 * few passes, stop compressing to ensure convergence. 2013 */ 2014 pass = spa_sync_pass(spa); 2015 2016 ASSERT(zio->io_txg == spa_syncing_txg(spa)); 2017 ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL); 2018 ASSERT(!BP_GET_DEDUP(bp)); 2019 2020 if (pass >= zfs_sync_pass_dont_compress) 2021 compress = ZIO_COMPRESS_OFF; 2022 2023 /* Make sure someone doesn't change their mind on overwrites */ 2024 ASSERT(BP_IS_EMBEDDED(bp) || BP_IS_GANG(bp) || 2025 MIN(zp->zp_copies, spa_max_replication(spa)) 2026 == BP_GET_NDVAS(bp)); 2027 } 2028 2029 /* If it's a compressed write that is not raw, compress the buffer. */ 2030 if (compress != ZIO_COMPRESS_OFF && 2031 !(zio->io_flags & ZIO_FLAG_RAW_COMPRESS)) { 2032 abd_t *cabd = NULL; 2033 if (abd_cmp_zero(zio->io_abd, lsize) == 0) 2034 psize = 0; 2035 else if (compress == ZIO_COMPRESS_EMPTY) 2036 psize = lsize; 2037 else 2038 psize = zio_compress_data(compress, zio->io_abd, &cabd, 2039 lsize, 2040 zio_get_compression_max_size(compress, 2041 spa->spa_gcd_alloc, spa->spa_min_alloc, lsize), 2042 zp->zp_complevel); 2043 if (psize == 0) { 2044 compress = ZIO_COMPRESS_OFF; 2045 } else if (psize >= lsize) { 2046 compress = ZIO_COMPRESS_OFF; 2047 if (cabd != NULL) 2048 abd_free(cabd); 2049 } else if (psize <= BPE_PAYLOAD_SIZE && !zp->zp_encrypt && 2050 zp->zp_level == 0 && !DMU_OT_HAS_FILL(zp->zp_type) && 2051 spa_feature_is_enabled(spa, SPA_FEATURE_EMBEDDED_DATA)) { 2052 void *cbuf = abd_borrow_buf_copy(cabd, lsize); 2053 encode_embedded_bp_compressed(bp, 2054 cbuf, compress, lsize, psize); 2055 BPE_SET_ETYPE(bp, BP_EMBEDDED_TYPE_DATA); 2056 BP_SET_TYPE(bp, zio->io_prop.zp_type); 2057 BP_SET_LEVEL(bp, zio->io_prop.zp_level); 2058 abd_return_buf(cabd, cbuf, lsize); 2059 abd_free(cabd); 2060 BP_SET_LOGICAL_BIRTH(bp, zio->io_txg); 2061 zio->io_pipeline = ZIO_INTERLOCK_PIPELINE; 2062 ASSERT(spa_feature_is_active(spa, 2063 SPA_FEATURE_EMBEDDED_DATA)); 2064 return (zio); 2065 } else { 2066 /* 2067 * Round compressed size up to the minimum allocation 2068 * size of the smallest-ashift device, and zero the 2069 * tail. This ensures that the compressed size of the 2070 * BP (and thus compressratio property) are correct, 2071 * in that we charge for the padding used to fill out 2072 * the last sector. 2073 */ 2074 size_t rounded = (size_t)zio_roundup_alloc_size(spa, 2075 psize); 2076 if (rounded >= lsize) { 2077 compress = ZIO_COMPRESS_OFF; 2078 abd_free(cabd); 2079 psize = lsize; 2080 } else { 2081 abd_zero_off(cabd, psize, rounded - psize); 2082 psize = rounded; 2083 zio_push_transform(zio, cabd, 2084 psize, lsize, NULL); 2085 } 2086 } 2087 2088 /* 2089 * We were unable to handle this as an override bp, treat 2090 * it as a regular write I/O. 2091 */ 2092 zio->io_bp_override = NULL; 2093 *bp = zio->io_bp_orig; 2094 zio->io_pipeline = zio->io_orig_pipeline; 2095 2096 } else if ((zio->io_flags & ZIO_FLAG_RAW_ENCRYPT) != 0 && 2097 zp->zp_type == DMU_OT_DNODE) { 2098 /* 2099 * The DMU actually relies on the zio layer's compression 2100 * to free metadnode blocks that have had all contained 2101 * dnodes freed. As a result, even when doing a raw 2102 * receive, we must check whether the block can be compressed 2103 * to a hole. 2104 */ 2105 if (abd_cmp_zero(zio->io_abd, lsize) == 0) { 2106 psize = 0; 2107 compress = ZIO_COMPRESS_OFF; 2108 } else { 2109 psize = lsize; 2110 } 2111 } else if (zio->io_flags & ZIO_FLAG_RAW_COMPRESS && 2112 !(zio->io_flags & ZIO_FLAG_RAW_ENCRYPT)) { 2113 /* 2114 * If we are raw receiving an encrypted dataset we should not 2115 * take this codepath because it will change the on-disk block 2116 * and decryption will fail. 2117 */ 2118 size_t rounded = MIN((size_t)zio_roundup_alloc_size(spa, psize), 2119 lsize); 2120 2121 if (rounded != psize) { 2122 abd_t *cdata = abd_alloc_linear(rounded, B_TRUE); 2123 abd_zero_off(cdata, psize, rounded - psize); 2124 abd_copy_off(cdata, zio->io_abd, 0, 0, psize); 2125 psize = rounded; 2126 zio_push_transform(zio, cdata, 2127 psize, rounded, NULL); 2128 } 2129 } else { 2130 ASSERT3U(psize, !=, 0); 2131 } 2132 2133 /* 2134 * The final pass of spa_sync() must be all rewrites, but the first 2135 * few passes offer a trade-off: allocating blocks defers convergence, 2136 * but newly allocated blocks are sequential, so they can be written 2137 * to disk faster. Therefore, we allow the first few passes of 2138 * spa_sync() to allocate new blocks, but force rewrites after that. 2139 * There should only be a handful of blocks after pass 1 in any case. 2140 */ 2141 if (!BP_IS_HOLE(bp) && BP_GET_BIRTH(bp) == zio->io_txg && 2142 BP_GET_PSIZE(bp) == psize && 2143 pass >= zfs_sync_pass_rewrite) { 2144 VERIFY3U(psize, !=, 0); 2145 enum zio_stage gang_stages = zio->io_pipeline & ZIO_GANG_STAGES; 2146 2147 zio->io_pipeline = ZIO_REWRITE_PIPELINE | gang_stages; 2148 zio->io_flags |= ZIO_FLAG_IO_REWRITE; 2149 } else { 2150 BP_ZERO(bp); 2151 zio->io_pipeline = ZIO_WRITE_PIPELINE; 2152 } 2153 2154 if (psize == 0) { 2155 if (BP_GET_LOGICAL_BIRTH(&zio->io_bp_orig) != 0 && 2156 spa_feature_is_active(spa, SPA_FEATURE_HOLE_BIRTH)) { 2157 BP_SET_LSIZE(bp, lsize); 2158 BP_SET_TYPE(bp, zp->zp_type); 2159 BP_SET_LEVEL(bp, zp->zp_level); 2160 BP_SET_BIRTH(bp, zio->io_txg, 0); 2161 } 2162 zio->io_pipeline = ZIO_INTERLOCK_PIPELINE; 2163 } else { 2164 ASSERT(zp->zp_checksum != ZIO_CHECKSUM_GANG_HEADER); 2165 BP_SET_LSIZE(bp, lsize); 2166 BP_SET_TYPE(bp, zp->zp_type); 2167 BP_SET_LEVEL(bp, zp->zp_level); 2168 BP_SET_PSIZE(bp, psize); 2169 BP_SET_COMPRESS(bp, compress); 2170 BP_SET_CHECKSUM(bp, zp->zp_checksum); 2171 BP_SET_DEDUP(bp, zp->zp_dedup); 2172 BP_SET_BYTEORDER(bp, ZFS_HOST_BYTEORDER); 2173 if (zp->zp_dedup) { 2174 ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL); 2175 ASSERT(!(zio->io_flags & ZIO_FLAG_IO_REWRITE)); 2176 ASSERT(!zp->zp_encrypt || 2177 DMU_OT_IS_ENCRYPTED(zp->zp_type)); 2178 zio->io_pipeline = ZIO_DDT_WRITE_PIPELINE; 2179 } 2180 if (zp->zp_nopwrite) { 2181 ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL); 2182 ASSERT(!(zio->io_flags & ZIO_FLAG_IO_REWRITE)); 2183 zio->io_pipeline |= ZIO_STAGE_NOP_WRITE; 2184 } 2185 } 2186 return (zio); 2187 } 2188 2189 static zio_t * 2190 zio_free_bp_init(zio_t *zio) 2191 { 2192 blkptr_t *bp = zio->io_bp; 2193 2194 if (zio->io_child_type == ZIO_CHILD_LOGICAL) { 2195 if (BP_GET_DEDUP(bp)) 2196 /* 2197 * Keep the gang stages zio_create() added: if 2198 * zio_ddt_free() falls back to a plain free, they 2199 * free the gang members along with the header. 2200 */ 2201 zio->io_pipeline |= ZIO_DDT_FREE_PIPELINE; 2202 } 2203 2204 ASSERT3P(zio->io_bp, ==, &zio->io_bp_copy); 2205 2206 return (zio); 2207 } 2208 2209 /* 2210 * ========================================================================== 2211 * Execute the I/O pipeline 2212 * ========================================================================== 2213 */ 2214 2215 static void 2216 zio_taskq_dispatch_func(zio_t *zio, zio_taskq_type_t q, boolean_t cutinline, 2217 task_func_t *func) 2218 { 2219 spa_t *spa = zio->io_spa; 2220 zio_type_t t = zio->io_type; 2221 2222 /* 2223 * If we're a config writer or a probe, the normal issue and 2224 * interrupt threads may all be blocked waiting for the config lock. 2225 * In this case, select the otherwise-unused taskq for ZIO_TYPE_NULL. 2226 */ 2227 if (zio->io_flags & (ZIO_FLAG_CONFIG_WRITER | ZIO_FLAG_PROBE)) 2228 t = ZIO_TYPE_NULL; 2229 2230 /* 2231 * A similar issue exists for the L2ARC write thread until L2ARC 2.0. 2232 */ 2233 if (t == ZIO_TYPE_WRITE && zio->io_vd && zio->io_vd->vdev_aux) 2234 t = ZIO_TYPE_NULL; 2235 2236 /* 2237 * If this is a high priority I/O, then use the high priority taskq if 2238 * available or cut the line otherwise. 2239 */ 2240 if (zio->io_priority == ZIO_PRIORITY_SYNC_WRITE) { 2241 if (spa->spa_zio_taskq[t][q + 1].stqs_count != 0) 2242 q++; 2243 else 2244 cutinline = B_TRUE; 2245 } 2246 2247 ASSERT3U(q, <, ZIO_TASKQ_TYPES); 2248 2249 spa_taskq_dispatch(spa, t, q, func, zio, cutinline); 2250 } 2251 2252 static void 2253 zio_taskq_dispatch(zio_t *zio, zio_taskq_type_t q, boolean_t cutinline) 2254 { 2255 zio_taskq_dispatch_func(zio, q, cutinline, zio_execute); 2256 } 2257 2258 static boolean_t 2259 zio_taskq_member(zio_t *zio, zio_taskq_type_t q) 2260 { 2261 spa_t *spa = zio->io_spa; 2262 2263 taskq_t *tq = taskq_of_curthread(); 2264 2265 for (zio_type_t t = 0; t < ZIO_TYPES; t++) { 2266 spa_taskqs_t *tqs = &spa->spa_zio_taskq[t][q]; 2267 uint_t i; 2268 for (i = 0; i < tqs->stqs_count; i++) { 2269 if (tqs->stqs_taskq[i] == tq) 2270 return (B_TRUE); 2271 } 2272 } 2273 2274 return (B_FALSE); 2275 } 2276 2277 static zio_t * 2278 zio_issue_async(zio_t *zio) 2279 { 2280 ASSERT((zio->io_type != ZIO_TYPE_WRITE) || ZIO_HAS_ALLOCATOR(zio)); 2281 2282 /* Whatever may execute this again, it won't be this thread. */ 2283 zio->io_pipeline &= ~ZIO_STAGE_ISSUE_ASYNC; 2284 2285 /* 2286 * A zio whose children are not ready yet, such as an indirect block 2287 * write, has nothing to do in WRITE_COMPRESS but wait for them, so a 2288 * thread dispatched for it would only block. Do that wait here and let 2289 * whoever wakes it up carry on, since that is not this thread anymore. 2290 */ 2291 if ((zio->io_pipeline & ZIO_STAGE_WRITE_COMPRESS) && 2292 zio_wait_for_children(zio, ZIO_CHILD_LOGICAL_BIT | 2293 ZIO_CHILD_GANG_BIT, ZIO_WAIT_READY)) 2294 return (NULL); 2295 2296 zio_taskq_dispatch(zio, ZIO_TASKQ_ISSUE, B_FALSE); 2297 return (NULL); 2298 } 2299 2300 /* 2301 * ========================================================================== 2302 * Completion batching 2303 * ========================================================================== 2304 * 2305 * A vdev child's entire life after the block layer returns is three pipeline 2306 * stages: VDEV_IO_DONE, VDEV_IO_ASSESS and DONE (ZIO_VDEV_CHILD_PIPELINE). 2307 * For a parent with many children, such as RAIDZ or a mirror, every child but 2308 * the last does nothing there except decrement the parent's child count, yet 2309 * each one costs a taskq dispatch and a context switch to get there. 2310 * 2311 * A batch collects the children of one parent as they return, and once the last 2312 * of them is in, runs all of their completions, and then the parent's, on one 2313 * thread. Arrival happens in the block layer completion context, so it is 2314 * lock-free: bio_endio() on Linux can run in softirq, where the sleepable 2315 * mutex_t is not usable. 2316 * 2317 * Only children that actually arrive from the block layer join zb_arrived; one 2318 * that reaches its completion on a pipeline thread instead just releases its 2319 * hold and runs that completion itself, as it would have without any of this. 2320 * Building the list on arrival is what allows that, since such a child may run 2321 * all the way to zio_destroy() long before the batch does. 2322 * 2323 * A child that occupies a vdev queue slot must never be a member. The slot is 2324 * released by vdev_queue_io_done(), part of the deferred completion, while a 2325 * sibling may still be queued for a slot on another vdev whose slots are in 2326 * turn held by the members of other waiting batches -- a cycle that deadlocks. 2327 */ 2328 static int zio_batch_enabled = 1; 2329 2330 /* 2331 * Open a batch collecting the completions of the vdev children this zio is 2332 * about to create, which do little but count down to it. Every one of those 2333 * children must be created before the matching zio_batch_rele(). 2334 */ 2335 void 2336 zio_batch_create(zio_t *pio) 2337 { 2338 zio_batch_t *zb; 2339 2340 ASSERT3P(pio->io_child_batch, ==, NULL); 2341 2342 if (!zio_batch_enabled) 2343 return; 2344 2345 zb = kmem_alloc(sizeof (*zb), KM_SLEEP); 2346 zb->zb_arrived = NULL; 2347 zb->zb_holds = 1; /* creator's hold */ 2348 pio->io_child_batch = zb; 2349 } 2350 2351 /* 2352 * Free the batch and return the list of members that arrived on it, for the 2353 * caller to execute. Members arrive by prepending, and are equal peers of one 2354 * parent, so their order should not matter; the list is reversed into 2355 * completion order only because it is walked here anyway. Membership is 2356 * dropped in that walk, both because VDEV_IO_ASSESS may reissue a member, which 2357 * must not rejoin, and so that a member's later zio_batch_leave() does not 2358 * touch the batch once it is freed. 2359 */ 2360 static zio_t * 2361 zio_batch_run(zio_batch_t *zb) 2362 { 2363 zio_t *list = NULL, *zio, *next; 2364 2365 for (zio = zb->zb_arrived; zio != NULL; zio = next) { 2366 next = zio->io_exec_next; 2367 zio->io_batch = NULL; 2368 zio->io_exec_next = list; 2369 list = zio; 2370 } 2371 2372 kmem_free(zb, sizeof (*zb)); 2373 2374 return (list); 2375 } 2376 2377 static void 2378 zio_batch_execute(void *arg) 2379 { 2380 zio_execute(zio_batch_run(((zio_t *)arg)->io_batch)); 2381 } 2382 2383 static void 2384 zio_batch_join(zio_batch_t *zb, zio_t *zio) 2385 { 2386 ASSERT3P(zio->io_batch, ==, NULL); 2387 atomic_inc_64(&zb->zb_holds); 2388 zio->io_batch = zb; 2389 } 2390 2391 /* 2392 * Close the batch, once all of its members have been created, dropping the hold 2393 * that kept it from running while they were still being created. Callers do 2394 * this before advancing the parent into VDEV_IO_DONE, where it will wait for 2395 * them; the members go ahead of it in the list, which is harmless, since all 2396 * they do there is decrement its child count. io_child_batch is cleared, so 2397 * that children created later, such as the repair writes from 2398 * vdev_raidz_io_done(), do not join a batch that is already gone. Returns the 2399 * parent, preceded by any members that arrived while it was still creating 2400 * them, for the caller to execute. 2401 */ 2402 zio_t * 2403 zio_batch_rele(zio_t *pio) 2404 { 2405 zio_batch_t *zb = pio->io_child_batch; 2406 zio_t *list, *last; 2407 2408 ASSERT3P(pio->io_exec_next, ==, NULL); 2409 2410 if (zb == NULL) 2411 return (pio); 2412 2413 pio->io_child_batch = NULL; 2414 if (atomic_dec_64_nv(&zb->zb_holds) != 0) 2415 return (pio); 2416 2417 if ((list = zio_batch_run(zb)) == NULL) 2418 return (pio); 2419 2420 last = list; 2421 while (last->io_exec_next != NULL) 2422 last = last->io_exec_next; 2423 last->io_exec_next = pio; 2424 return (list); 2425 } 2426 2427 /* 2428 * Called in place of a member's taskq dispatch, from the block layer 2429 * completion context. Returns B_TRUE if the zio was absorbed by a batch, in 2430 * which case the caller must not touch it again. 2431 */ 2432 static boolean_t 2433 zio_batch_arrive(zio_t *zio) 2434 { 2435 zio_batch_t *zb = zio->io_batch; 2436 zio_t *head; 2437 2438 if (zb == NULL) 2439 return (B_FALSE); 2440 2441 /* 2442 * The completion is deferred, so take the service time here, while it 2443 * still is one: vdev_child_slow_outlier() sits out RAIDZ children based 2444 * on io_delta and io_delay. A non-zero io_delta also tells the stages 2445 * below when the block layer returned, as io_timestamp + io_delta. 2446 */ 2447 ASSERT3U(zio->io_timestamp, !=, 0); 2448 zio->io_delta = gethrtime() - zio->io_timestamp; 2449 2450 do { 2451 head = zb->zb_arrived; 2452 zio->io_exec_next = head; 2453 } while (atomic_cas_ptr(&zb->zb_arrived, head, zio) != head); 2454 2455 if (atomic_dec_64_nv(&zb->zb_holds) == 0) { 2456 zio_taskq_dispatch_func(zio, ZIO_TASKQ_INTERRUPT, B_FALSE, 2457 zio_batch_execute); 2458 } 2459 return (B_TRUE); 2460 } 2461 2462 /* 2463 * Give up a membership, either because the zio is about to take a vdev queue 2464 * slot after all, or because it reached its completion on a pipeline thread 2465 * rather than from the block layer, and so will run that completion itself. 2466 * Clearing io_batch makes this idempotent. Returns the members for the caller 2467 * to execute if this was the last hold on the batch, and NULL otherwise. 2468 */ 2469 zio_t * 2470 zio_batch_leave(zio_t *zio) 2471 { 2472 zio_batch_t *zb = zio->io_batch; 2473 2474 if (likely(zb == NULL)) 2475 return (NULL); 2476 2477 zio->io_batch = NULL; 2478 if (atomic_dec_64_nv(&zb->zb_holds) != 0) 2479 return (NULL); 2480 2481 return (zio_batch_run(zb)); 2482 } 2483 2484 void 2485 zio_interrupt(void *zio) 2486 { 2487 if (zio_batch_arrive(zio)) 2488 return; 2489 zio_taskq_dispatch(zio, ZIO_TASKQ_INTERRUPT, B_FALSE); 2490 } 2491 2492 void 2493 zio_delay_interrupt(zio_t *zio) 2494 { 2495 /* 2496 * The timeout_generic() function isn't defined in userspace, so 2497 * rather than trying to implement the function, the zio delay 2498 * functionality has been disabled for userspace builds. 2499 */ 2500 2501 #ifdef _KERNEL 2502 /* 2503 * If io_target_timestamp is zero, then no delay has been registered 2504 * for this IO, thus jump to the end of this function and "skip" the 2505 * delay; issuing it directly to the zio layer. 2506 */ 2507 if (zio->io_target_timestamp != 0) { 2508 hrtime_t now = gethrtime(); 2509 2510 if (now >= zio->io_target_timestamp) { 2511 /* 2512 * This IO has already taken longer than the target 2513 * delay to complete, so we don't want to delay it 2514 * any longer; we "miss" the delay and issue it 2515 * directly to the zio layer. This is likely due to 2516 * the target latency being set to a value less than 2517 * the underlying hardware can satisfy (e.g. delay 2518 * set to 1ms, but the disks take 10ms to complete an 2519 * IO request). 2520 */ 2521 2522 DTRACE_PROBE2(zio__delay__miss, zio_t *, zio, 2523 hrtime_t, now); 2524 2525 zio_interrupt(zio); 2526 } else { 2527 taskqid_t tid; 2528 hrtime_t diff = zio->io_target_timestamp - now; 2529 int ticks = MAX(1, NSEC_TO_TICK(diff)); 2530 clock_t expire_at_tick = ddi_get_lbolt() + ticks; 2531 2532 DTRACE_PROBE3(zio__delay__hit, zio_t *, zio, 2533 hrtime_t, now, hrtime_t, diff); 2534 2535 tid = taskq_dispatch_delay(system_taskq, zio_interrupt, 2536 zio, TQ_NOSLEEP, expire_at_tick); 2537 if (tid == TASKQID_INVALID) { 2538 /* 2539 * Couldn't allocate a task. Just finish the 2540 * zio without a delay. 2541 */ 2542 zio_interrupt(zio); 2543 } 2544 } 2545 return; 2546 } 2547 #endif 2548 DTRACE_PROBE1(zio__delay__skip, zio_t *, zio); 2549 zio_interrupt(zio); 2550 } 2551 2552 static void 2553 zio_deadman_impl(zio_t *pio, int ziodepth) 2554 { 2555 zio_t *cio, *cio_next; 2556 zio_link_t *zl = NULL; 2557 vdev_t *vd = pio->io_vd; 2558 uint64_t failmode = spa_get_deadman_failmode(pio->io_spa); 2559 2560 if (zio_deadman_log_all || (vd != NULL && vd->vdev_ops->vdev_op_leaf)) { 2561 vdev_queue_t *vq = vd ? &vd->vdev_queue : NULL; 2562 zbookmark_phys_t *zb = &pio->io_bookmark; 2563 uint64_t delta = gethrtime() - pio->io_timestamp; 2564 2565 zfs_dbgmsg("slow zio[%d]: zio=%px timestamp=%llu " 2566 "delta=%llu queued=%llu io=%llu " 2567 "path=%s " 2568 "last=%llu type=%d " 2569 "priority=%d flags=0x%llx stage=0x%x " 2570 "pipeline=0x%x pipeline-trace=0x%x " 2571 "objset=%llu object=%llu " 2572 "level=%llu blkid=%llu " 2573 "offset=%llu size=%llu " 2574 "error=%d", 2575 ziodepth, pio, pio->io_timestamp, 2576 (u_longlong_t)delta, pio->io_delta, pio->io_delay, 2577 vd ? vd->vdev_path : "NULL", 2578 vq ? vq->vq_io_complete_ts : 0, pio->io_type, 2579 pio->io_priority, (u_longlong_t)pio->io_flags, 2580 pio->io_stage, pio->io_pipeline, pio->io_pipeline_trace, 2581 (u_longlong_t)zb->zb_objset, (u_longlong_t)zb->zb_object, 2582 (u_longlong_t)zb->zb_level, (u_longlong_t)zb->zb_blkid, 2583 (u_longlong_t)pio->io_offset, (u_longlong_t)pio->io_size, 2584 pio->io_error); 2585 (void) zfs_ereport_post(FM_EREPORT_ZFS_DEADMAN, 2586 pio->io_spa, vd, zb, pio, 0); 2587 } 2588 2589 if (vd != NULL && vd->vdev_ops->vdev_op_leaf && 2590 list_is_empty(&pio->io_child_list) && 2591 failmode == ZIO_FAILURE_MODE_CONTINUE && 2592 taskq_empty_ent(&pio->io_tqent) && 2593 pio->io_queue_state == ZIO_QS_ACTIVE) { 2594 pio->io_error = EINTR; 2595 zio_interrupt(pio); 2596 } 2597 2598 mutex_enter(&pio->io_lock); 2599 for (cio = zio_walk_children(pio, &zl); cio != NULL; cio = cio_next) { 2600 cio_next = zio_walk_children(pio, &zl); 2601 zio_deadman_impl(cio, ziodepth + 1); 2602 } 2603 mutex_exit(&pio->io_lock); 2604 } 2605 2606 /* 2607 * Log the critical information describing this zio and all of its children 2608 * using the zfs_dbgmsg() interface then post deadman event for the ZED. 2609 */ 2610 void 2611 zio_deadman(zio_t *pio, const char *tag) 2612 { 2613 spa_t *spa = pio->io_spa; 2614 char *name = spa_name(spa); 2615 2616 if (!zfs_deadman_enabled || spa_suspended(spa)) 2617 return; 2618 2619 zio_deadman_impl(pio, 0); 2620 2621 switch (spa_get_deadman_failmode(spa)) { 2622 case ZIO_FAILURE_MODE_WAIT: 2623 zfs_dbgmsg("%s waiting for hung I/O to pool '%s'", tag, name); 2624 break; 2625 2626 case ZIO_FAILURE_MODE_CONTINUE: 2627 zfs_dbgmsg("%s restarting hung I/O for pool '%s'", tag, name); 2628 break; 2629 2630 case ZIO_FAILURE_MODE_PANIC: 2631 fm_panic("%s determined I/O to pool '%s' is hung.", tag, name); 2632 break; 2633 } 2634 } 2635 2636 /* 2637 * Execute the I/O pipeline until one of the following occurs: 2638 * (1) the I/O completes; (2) the pipeline stalls waiting for 2639 * dependent child I/Os; (3) the I/O issues, so we're waiting 2640 * for an I/O completion interrupt; (4) the I/O is delegated by 2641 * vdev-level caching or aggregation; (5) the I/O is deferred 2642 * due to vdev-level queueing; (6) the I/O is handed off to 2643 * another thread. In all cases, the pipeline stops whenever 2644 * there's no CPU work; it never burns a thread in cv_wait_io(). 2645 * 2646 * There's no locking on io_stage because there's no legitimate way 2647 * for multiple threads to be attempting to process the same I/O. 2648 */ 2649 static zio_pipe_stage_t *zio_pipeline[]; 2650 2651 /* 2652 * zio_execute() is a wrapper around the static function 2653 * __zio_execute() so that we can force __zio_execute() to be 2654 * inlined. This reduces stack overhead which is important 2655 * because __zio_execute() is called recursively in several zio 2656 * code paths. zio_execute() itself cannot be inlined because 2657 * it is externally visible. 2658 */ 2659 void 2660 zio_execute(void *zio) 2661 { 2662 fstrans_cookie_t cookie; 2663 2664 cookie = spl_fstrans_mark(); 2665 __zio_execute(zio); 2666 spl_fstrans_unmark(cookie); 2667 } 2668 2669 /* 2670 * Used to determine if in the current context the stack is sized large 2671 * enough to allow zio_execute() to be called recursively. A minimum 2672 * stack size of 16K is required to avoid needing to re-dispatch the zio. 2673 */ 2674 static boolean_t 2675 zio_execute_stack_check(zio_t *zio) 2676 { 2677 #if !defined(HAVE_LARGE_STACKS) 2678 dsl_pool_t *dp = spa_get_dsl(zio->io_spa); 2679 2680 /* Executing in txg_sync_thread() context. */ 2681 if (dp && curthread == dp->dp_tx.tx_sync_thread) 2682 return (B_TRUE); 2683 2684 /* Pool initialization outside of zio_taskq context. */ 2685 if (dp && spa_is_initializing(dp->dp_spa) && 2686 !zio_taskq_member(zio, ZIO_TASKQ_ISSUE) && 2687 !zio_taskq_member(zio, ZIO_TASKQ_ISSUE_HIGH)) 2688 return (B_TRUE); 2689 #else 2690 (void) zio; 2691 #endif /* HAVE_LARGE_STACKS */ 2692 2693 return (B_FALSE); 2694 } 2695 2696 /* 2697 * Run one pipeline stage, returning a list of zios to continue with, or NULL 2698 * if this thread is done with it. 2699 */ 2700 __attribute__((always_inline)) 2701 static inline zio_t * 2702 zio_execute_stage(zio_t *zio) 2703 { 2704 enum zio_stage pipeline = zio->io_pipeline; 2705 enum zio_stage stage = zio->io_stage; 2706 2707 zio->io_executor = curthread; 2708 2709 ASSERT(!MUTEX_HELD(&zio->io_lock)); 2710 ASSERT0P(zio->io_stall); 2711 ASSERT(ISP2(stage)); 2712 ASSERT(pipeline & ~((stage << 1) - 1)); 2713 2714 do { 2715 stage <<= 1; 2716 } while ((stage & pipeline) == 0); 2717 2718 ASSERT(stage <= ZIO_STAGE_DONE); 2719 2720 /* 2721 * If we are in interrupt context and this pipeline stage will grab 2722 * a config lock that is held across I/O, or may wait for an I/O that 2723 * needs an interrupt thread to complete, issue async to avoid deadlock. 2724 * 2725 * For VDEV_IO_START, we cut in line so that the io will be sent to 2726 * disk promptly. 2727 */ 2728 if ((stage & ZIO_BLOCKING_STAGES) && zio->io_vd == NULL && 2729 zio_taskq_member(zio, ZIO_TASKQ_INTERRUPT)) { 2730 boolean_t cut = (stage == ZIO_STAGE_VDEV_IO_START) ? 2731 zio_requeue_io_start_cut_in_line : B_FALSE; 2732 zio_taskq_dispatch(zio, ZIO_TASKQ_ISSUE, cut); 2733 return (NULL); 2734 } 2735 2736 /* 2737 * If the current context doesn't have large enough stacks 2738 * the zio must be issued asynchronously to prevent overflow. 2739 */ 2740 if (zio_execute_stack_check(zio)) { 2741 boolean_t cut = (stage == ZIO_STAGE_VDEV_IO_START) ? 2742 zio_requeue_io_start_cut_in_line : B_FALSE; 2743 zio_taskq_dispatch(zio, ZIO_TASKQ_ISSUE, cut); 2744 return (NULL); 2745 } 2746 2747 zio->io_stage = stage; 2748 zio->io_pipeline_trace |= zio->io_stage; 2749 2750 /* 2751 * The zio pipeline stage returns the next zio to execute (typically 2752 * the same as this one), or NULL if we should stop. It may also 2753 * chain more zios to it for us to execute later. 2754 */ 2755 return (zio_pipeline[highbit64(stage) - 1](zio)); 2756 } 2757 2758 /* 2759 * Take all but the first of the zios a stage handed back off its head, and 2760 * prepend the rest to those already pending. Dispatch heavyweight ZIOs except 2761 * the last, so that they could run in parallel. 2762 */ 2763 static inline void 2764 zio_execute_defer(zio_t *zio, zio_t **pendingp) 2765 { 2766 zio_t *list = NULL, **tailp = &list; 2767 zio_t *next; 2768 2769 for (zio_t *cur = zio->io_exec_next; cur != NULL; cur = next) { 2770 next = cur->io_exec_next; 2771 cur->io_exec_next = NULL; 2772 if ((next != NULL || *pendingp != NULL) && 2773 !(cur->io_flags & ZIO_FLAG_LIGHTWEIGHT)) { 2774 zio_taskq_dispatch(cur, 2775 cur->io_stage < ZIO_STAGE_VDEV_IO_START ? 2776 ZIO_TASKQ_ISSUE : ZIO_TASKQ_INTERRUPT, B_FALSE); 2777 continue; 2778 } 2779 *tailp = cur; 2780 tailp = &cur->io_exec_next; 2781 } 2782 2783 *tailp = *pendingp; 2784 *pendingp = list; 2785 zio->io_exec_next = NULL; 2786 } 2787 2788 __attribute__((always_inline)) 2789 static inline void 2790 __zio_execute(zio_t *zio) 2791 { 2792 zio_t *pending = zio->io_exec_next; 2793 zio->io_exec_next = NULL; 2794 2795 for (;;) { 2796 zio_t *last = zio; 2797 while ((zio = zio_execute_stage(zio)) != NULL) { 2798 if (zio->io_exec_next != NULL) 2799 zio_execute_defer(zio, &pending); 2800 2801 /* 2802 * A heavyweight zio is dispatched if others are already 2803 * waiting for this thread to let them run in parallel. 2804 */ 2805 if (zio != last && pending != NULL && 2806 !(zio->io_flags & ZIO_FLAG_LIGHTWEIGHT)) { 2807 zio_taskq_dispatch(zio, 2808 zio->io_stage < ZIO_STAGE_VDEV_IO_START ? 2809 ZIO_TASKQ_ISSUE : ZIO_TASKQ_INTERRUPT, 2810 B_FALSE); 2811 break; 2812 } 2813 last = zio; 2814 } 2815 2816 if ((zio = pending) == NULL) 2817 return; 2818 pending = zio->io_exec_next; 2819 zio->io_exec_next = NULL; 2820 } 2821 } 2822 2823 2824 /* 2825 * ========================================================================== 2826 * Initiate I/O, either sync or async 2827 * ========================================================================== 2828 */ 2829 int 2830 zio_wait(zio_t *zio) 2831 { 2832 /* 2833 * Some routines, like zio_free_sync(), may return a NULL zio 2834 * to avoid the performance overhead of creating and then destroying 2835 * an unneeded zio. For the callers' simplicity, we accept a NULL 2836 * zio and ignore it. 2837 */ 2838 if (zio == NULL) 2839 return (0); 2840 2841 long timeout = MSEC_TO_TICK(zfs_deadman_ziotime_ms); 2842 int error; 2843 2844 ASSERT3S(zio->io_stage, ==, ZIO_STAGE_OPEN); 2845 ASSERT0P(zio->io_executor); 2846 2847 zio->io_waiter = curthread; 2848 ASSERT0(zio->io_queued_timestamp); 2849 zio->io_queued_timestamp = gethrtime(); 2850 2851 if (zio->io_type == ZIO_TYPE_WRITE) { 2852 spa_select_allocator(zio); 2853 } 2854 __zio_execute(zio); 2855 2856 mutex_enter(&zio->io_lock); 2857 while (zio->io_executor != NULL) { 2858 error = cv_timedwait_io(&zio->io_cv, &zio->io_lock, 2859 ddi_get_lbolt() + timeout); 2860 2861 if (zfs_deadman_enabled && error == -1 && 2862 gethrtime() - zio->io_queued_timestamp > 2863 spa_deadman_ziotime(zio->io_spa)) { 2864 mutex_exit(&zio->io_lock); 2865 timeout = MSEC_TO_TICK(zfs_deadman_checktime_ms); 2866 zio_deadman(zio, FTAG); 2867 mutex_enter(&zio->io_lock); 2868 } 2869 } 2870 mutex_exit(&zio->io_lock); 2871 2872 error = zio->io_error; 2873 zio_destroy(zio); 2874 2875 return (error); 2876 } 2877 2878 void 2879 zio_nowait(zio_t *zio) 2880 { 2881 /* 2882 * See comment in zio_wait(). 2883 */ 2884 if (zio == NULL) 2885 return; 2886 2887 ASSERT0P(zio->io_executor); 2888 2889 if (zio->io_child_type == ZIO_CHILD_LOGICAL && 2890 list_is_empty(&zio->io_parent_list)) { 2891 zio_t *pio; 2892 2893 /* 2894 * This is a logical async I/O with no parent to wait for it. 2895 * We add it to the spa_async_root_zio "Godfather" I/O which 2896 * will ensure they complete prior to unloading the pool. 2897 */ 2898 spa_t *spa = zio->io_spa; 2899 pio = spa->spa_async_zio_root[CPU_SEQID_UNSTABLE]; 2900 2901 zio_add_child(pio, zio); 2902 } 2903 2904 ASSERT0(zio->io_queued_timestamp); 2905 zio->io_queued_timestamp = gethrtime(); 2906 if (zio->io_type == ZIO_TYPE_WRITE) { 2907 spa_select_allocator(zio); 2908 } 2909 __zio_execute(zio); 2910 } 2911 2912 /* 2913 * ========================================================================== 2914 * Reexecute, cancel, or suspend/resume failed I/O 2915 * ========================================================================== 2916 */ 2917 2918 static void 2919 zio_reexecute(void *arg) 2920 { 2921 zio_t *pio = arg; 2922 zio_t *cio, *cio_next, *gio; 2923 2924 ASSERT(pio->io_child_type == ZIO_CHILD_LOGICAL); 2925 ASSERT(pio->io_orig_stage == ZIO_STAGE_OPEN); 2926 ASSERT0P(pio->io_gang_leader); 2927 ASSERT0P(pio->io_gang_tree); 2928 2929 mutex_enter(&pio->io_lock); 2930 pio->io_flags = pio->io_orig_flags; 2931 pio->io_stage = pio->io_orig_stage; 2932 pio->io_pipeline = pio->io_orig_pipeline; 2933 pio->io_post = 0; 2934 pio->io_flags |= ZIO_FLAG_REEXECUTED; 2935 pio->io_pipeline_trace = 0; 2936 pio->io_error = 0; 2937 pio->io_state[ZIO_WAIT_READY] = (pio->io_stage >= ZIO_STAGE_READY) || 2938 (pio->io_pipeline & ZIO_STAGE_READY) == 0; 2939 pio->io_state[ZIO_WAIT_DONE] = (pio->io_stage >= ZIO_STAGE_DONE); 2940 2941 /* 2942 * It's possible for a failed ZIO to be a descendant of more than one 2943 * ZIO tree. When reexecuting it, we have to be sure to add its wait 2944 * states to all parent wait counts. 2945 * 2946 * Those parents, in turn, may have other children that are currently 2947 * active, usually because they've already been reexecuted after 2948 * resuming. Those children may be executing and may call 2949 * zio_notify_parent() at the same time as we're updating our parent's 2950 * counts. To avoid races while updating the counts, we take 2951 * gio->io_lock before each update. 2952 */ 2953 zio_link_t *zl = NULL; 2954 while ((gio = zio_walk_parents(pio, &zl)) != NULL) { 2955 mutex_enter(&gio->io_lock); 2956 for (int w = 0; w < ZIO_WAIT_TYPES; w++) { 2957 gio->io_children[pio->io_child_type][w] += 2958 !pio->io_state[w]; 2959 } 2960 mutex_exit(&gio->io_lock); 2961 } 2962 2963 for (int c = 0; c < ZIO_CHILD_TYPES; c++) 2964 pio->io_child_error[c] = 0; 2965 2966 if (IO_IS_ALLOCATING(pio)) 2967 BP_ZERO(pio->io_bp); 2968 2969 /* 2970 * As we reexecute pio's children, new children could be created. 2971 * New children go to the head of pio's io_child_list, however, 2972 * so we will (correctly) not reexecute them. The key is that 2973 * the remainder of pio's io_child_list, from 'cio_next' onward, 2974 * cannot be affected by any side effects of reexecuting 'cio'. 2975 */ 2976 zl = NULL; 2977 for (cio = zio_walk_children(pio, &zl); cio != NULL; cio = cio_next) { 2978 cio_next = zio_walk_children(pio, &zl); 2979 mutex_exit(&pio->io_lock); 2980 zio_reexecute(cio); 2981 mutex_enter(&pio->io_lock); 2982 } 2983 mutex_exit(&pio->io_lock); 2984 2985 /* 2986 * Now that all children have been reexecuted, execute the parent. 2987 * We don't reexecute "The Godfather" I/O here as it's the 2988 * responsibility of the caller to wait on it. 2989 */ 2990 if (!(pio->io_flags & ZIO_FLAG_GODFATHER)) { 2991 pio->io_queued_timestamp = gethrtime(); 2992 __zio_execute(pio); 2993 } 2994 } 2995 2996 void 2997 zio_suspend(spa_t *spa, zio_t *zio, zio_suspend_reason_t reason) 2998 { 2999 if (spa_get_failmode(spa) == ZIO_FAILURE_MODE_PANIC) 3000 fm_panic("Pool '%s' has encountered an uncorrectable I/O " 3001 "failure and the failure mode property for this pool " 3002 "is set to panic.", spa_name(spa)); 3003 3004 if (reason != ZIO_SUSPEND_MMP) { 3005 cmn_err(CE_WARN, "Pool '%s' has encountered an uncorrectable " 3006 "I/O failure and has been suspended.", spa_name(spa)); 3007 } 3008 3009 (void) zfs_ereport_post(FM_EREPORT_ZFS_IO_FAILURE, spa, NULL, 3010 NULL, NULL, 0); 3011 3012 mutex_enter(&spa->spa_suspend_lock); 3013 3014 if (spa->spa_suspend_zio_root == NULL) 3015 spa->spa_suspend_zio_root = zio_root(spa, NULL, NULL, 3016 ZIO_FLAG_CANFAIL | ZIO_FLAG_SPECULATIVE | 3017 ZIO_FLAG_GODFATHER); 3018 3019 spa->spa_suspended = reason; 3020 3021 if (zio != NULL) { 3022 ASSERT(!(zio->io_flags & ZIO_FLAG_GODFATHER)); 3023 ASSERT(zio != spa->spa_suspend_zio_root); 3024 ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL); 3025 ASSERT0P(zio_unique_parent(zio)); 3026 ASSERT(zio->io_stage == ZIO_STAGE_DONE); 3027 zio_add_child(spa->spa_suspend_zio_root, zio); 3028 } 3029 3030 mutex_exit(&spa->spa_suspend_lock); 3031 3032 txg_wait_kick(spa->spa_dsl_pool); 3033 } 3034 3035 int 3036 zio_resume(spa_t *spa) 3037 { 3038 zio_t *pio; 3039 3040 /* 3041 * Reexecute all previously suspended i/o. 3042 */ 3043 mutex_enter(&spa->spa_suspend_lock); 3044 if (spa->spa_suspended != ZIO_SUSPEND_NONE) 3045 cmn_err(CE_WARN, "Pool '%s' was suspended and is being " 3046 "resumed. Failed I/O will be retried.", 3047 spa_name(spa)); 3048 spa->spa_suspended = ZIO_SUSPEND_NONE; 3049 cv_broadcast(&spa->spa_suspend_cv); 3050 pio = spa->spa_suspend_zio_root; 3051 spa->spa_suspend_zio_root = NULL; 3052 mutex_exit(&spa->spa_suspend_lock); 3053 3054 if (pio == NULL) 3055 return (0); 3056 3057 zio_reexecute(pio); 3058 return (zio_wait(pio)); 3059 } 3060 3061 void 3062 zio_resume_wait(spa_t *spa) 3063 { 3064 mutex_enter(&spa->spa_suspend_lock); 3065 while (spa_suspended(spa)) 3066 cv_wait(&spa->spa_suspend_cv, &spa->spa_suspend_lock); 3067 mutex_exit(&spa->spa_suspend_lock); 3068 } 3069 3070 /* 3071 * ========================================================================== 3072 * Gang blocks. 3073 * 3074 * A gang block is a collection of small blocks that looks to the DMU 3075 * like one large block. When zio_dva_allocate() cannot find a block 3076 * of the requested size, due to either severe fragmentation or the pool 3077 * being nearly full, it calls zio_write_gang_block() to construct the 3078 * block from smaller fragments. 3079 * 3080 * A gang block consists of a a gang header and up to gbh_nblkptrs(size) 3081 * gang members. The gang header is like an indirect block: it's an array 3082 * of block pointers, though the header has a small tail (a zio_eck_t) 3083 * that stores an embedded checksum. It is allocated using only a single 3084 * sector as the requested size, and hence is allocatable regardless of 3085 * fragmentation. Its size is determined by the smallest allocatable 3086 * asize of the vdevs it was allocated on. The gang header's bps point 3087 * to its gang members, which hold the data. 3088 * 3089 * Gang blocks are self-checksumming, using the bp's <vdev, offset, txg> 3090 * as the verifier to ensure uniqueness of the SHA256 checksum. 3091 * Critically, the gang block bp's blk_cksum is the checksum of the data, 3092 * not the gang header. This ensures that data block signatures (needed for 3093 * deduplication) are independent of how the block is physically stored. 3094 * 3095 * Gang blocks can be nested: a gang member may itself be a gang block. 3096 * Thus every gang block is a tree in which root and all interior nodes are 3097 * gang headers, and the leaves are normal blocks that contain user data. 3098 * The root of the gang tree is called the gang leader. 3099 * 3100 * To perform any operation (read, rewrite, free, claim) on a gang block, 3101 * zio_gang_assemble() first assembles the gang tree (minus data leaves) 3102 * in the io_gang_tree field of the original logical i/o by recursively 3103 * reading the gang leader and all gang headers below it. This yields 3104 * an in-core tree containing the contents of every gang header and the 3105 * bps for every constituent of the gang block. 3106 * 3107 * With the gang tree now assembled, zio_gang_issue() just walks the gang tree 3108 * and invokes a callback on each bp. To free a gang block, zio_gang_issue() 3109 * calls zio_free_gang() -- a trivial wrapper around zio_free() -- for each bp. 3110 * zio_claim_gang() provides a similarly trivial wrapper for zio_claim(). 3111 * zio_read_gang() is a wrapper around zio_read() that omits reading gang 3112 * headers, since we already have those in io_gang_tree. zio_rewrite_gang() 3113 * performs a zio_rewrite() of the data or, for gang headers, a zio_rewrite() 3114 * of the gang header plus zio_checksum_compute() of the data to update the 3115 * gang header's blk_cksum as described above. 3116 * 3117 * The two-phase assemble/issue model solves the problem of partial failure -- 3118 * what if you'd freed part of a gang block but then couldn't read the 3119 * gang header for another part? Assembling the entire gang tree first 3120 * ensures that all the necessary gang header I/O has succeeded before 3121 * starting the actual work of free, claim, or write. Once the gang tree 3122 * is assembled, free and claim are in-memory operations that cannot fail. 3123 * 3124 * In the event that a gang write fails, zio_dva_unallocate() walks the 3125 * gang tree to immediately free (i.e. insert back into the space map) 3126 * everything we've allocated. This ensures that we don't get ENOSPC 3127 * errors during repeated suspend/resume cycles due to a flaky device. 3128 * 3129 * Gang rewrites only happen during sync-to-convergence. If we can't assemble 3130 * the gang tree, we won't modify the block, so we can safely defer the free 3131 * (knowing that the block is still intact). If we *can* assemble the gang 3132 * tree, then even if some of the rewrites fail, zio_dva_unallocate() will free 3133 * each constituent bp and we can allocate a new block on the next sync pass. 3134 * 3135 * In all cases, the gang tree allows complete recovery from partial failure. 3136 * ========================================================================== 3137 */ 3138 3139 static void 3140 zio_gang_issue_func_done(zio_t *zio) 3141 { 3142 abd_free(zio->io_abd); 3143 } 3144 3145 static zio_t * 3146 zio_read_gang(zio_t *pio, blkptr_t *bp, zio_gang_node_t *gn, abd_t *data, 3147 uint64_t offset) 3148 { 3149 if (gn != NULL) 3150 return (pio); 3151 3152 return (zio_read(pio, pio->io_spa, bp, abd_get_offset(data, offset), 3153 BP_GET_PSIZE(bp), zio_gang_issue_func_done, 3154 NULL, pio->io_priority, ZIO_GANG_CHILD_FLAGS(pio), 3155 &pio->io_bookmark)); 3156 } 3157 3158 static zio_t * 3159 zio_rewrite_gang(zio_t *pio, blkptr_t *bp, zio_gang_node_t *gn, abd_t *data, 3160 uint64_t offset) 3161 { 3162 zio_t *zio; 3163 3164 if (gn != NULL) { 3165 abd_t *gbh_abd = 3166 abd_get_from_buf(gn->gn_gbh, gn->gn_gangblocksize); 3167 zio = zio_rewrite(pio, pio->io_spa, pio->io_txg, bp, 3168 gbh_abd, gn->gn_gangblocksize, zio_gang_issue_func_done, 3169 NULL, pio->io_priority, ZIO_GANG_CHILD_FLAGS(pio), 3170 &pio->io_bookmark); 3171 /* 3172 * As we rewrite each gang header, the pipeline will compute 3173 * a new gang block header checksum for it; but no one will 3174 * compute a new data checksum, so we do that here. The one 3175 * exception is the gang leader: the pipeline already computed 3176 * its data checksum because that stage precedes gang assembly. 3177 * (Presently, nothing actually uses interior data checksums; 3178 * this is just good hygiene.) 3179 */ 3180 if (gn != pio->io_gang_leader->io_gang_tree) { 3181 abd_t *buf = abd_get_offset(data, offset); 3182 3183 zio_checksum_compute(zio, BP_GET_CHECKSUM(bp), 3184 buf, BP_GET_PSIZE(bp)); 3185 3186 abd_free(buf); 3187 } 3188 /* 3189 * If we are here to damage data for testing purposes, 3190 * leave the GBH alone so that we can detect the damage. 3191 */ 3192 if (pio->io_gang_leader->io_flags & ZIO_FLAG_INDUCE_DAMAGE) 3193 zio->io_pipeline &= ~ZIO_VDEV_IO_STAGES; 3194 } else { 3195 zio = zio_rewrite(pio, pio->io_spa, pio->io_txg, bp, 3196 abd_get_offset(data, offset), BP_GET_PSIZE(bp), 3197 zio_gang_issue_func_done, NULL, pio->io_priority, 3198 ZIO_GANG_CHILD_FLAGS(pio), &pio->io_bookmark); 3199 } 3200 3201 return (zio); 3202 } 3203 3204 static zio_t * 3205 zio_free_gang(zio_t *pio, blkptr_t *bp, zio_gang_node_t *gn, abd_t *data, 3206 uint64_t offset) 3207 { 3208 (void) gn, (void) data, (void) offset; 3209 3210 zio_t *zio = zio_free_sync(pio, pio->io_spa, pio->io_txg, bp, 3211 ZIO_GANG_CHILD_FLAGS(pio)); 3212 if (zio == NULL) { 3213 zio = zio_null(pio, pio->io_spa, 3214 NULL, NULL, NULL, ZIO_GANG_CHILD_FLAGS(pio)); 3215 } 3216 return (zio); 3217 } 3218 3219 static zio_t * 3220 zio_claim_gang(zio_t *pio, blkptr_t *bp, zio_gang_node_t *gn, abd_t *data, 3221 uint64_t offset) 3222 { 3223 (void) gn, (void) data, (void) offset; 3224 return (zio_claim(pio, pio->io_spa, pio->io_txg, bp, 3225 NULL, NULL, ZIO_GANG_CHILD_FLAGS(pio))); 3226 } 3227 3228 static zio_gang_issue_func_t *zio_gang_issue_func[ZIO_TYPES] = { 3229 NULL, 3230 zio_read_gang, 3231 zio_rewrite_gang, 3232 zio_free_gang, 3233 zio_claim_gang, 3234 NULL 3235 }; 3236 3237 static void zio_gang_tree_assemble_done(zio_t *zio); 3238 3239 static zio_gang_node_t * 3240 zio_gang_node_alloc(zio_gang_node_t **gnpp, uint64_t gangblocksize) 3241 { 3242 zio_gang_node_t *gn; 3243 3244 ASSERT0P(*gnpp); 3245 3246 gn = kmem_zalloc(sizeof (*gn) + 3247 (gbh_nblkptrs(gangblocksize) * sizeof (gn)), KM_SLEEP); 3248 gn->gn_gangblocksize = gn->gn_allocsize = gangblocksize; 3249 gn->gn_gbh = zio_buf_alloc(gangblocksize); 3250 *gnpp = gn; 3251 3252 return (gn); 3253 } 3254 3255 static void 3256 zio_gang_node_free(zio_gang_node_t **gnpp) 3257 { 3258 zio_gang_node_t *gn = *gnpp; 3259 3260 for (int g = 0; g < gbh_nblkptrs(gn->gn_allocsize); g++) 3261 ASSERT0P(gn->gn_child[g]); 3262 3263 zio_buf_free(gn->gn_gbh, gn->gn_allocsize); 3264 kmem_free(gn, sizeof (*gn) + 3265 (gbh_nblkptrs(gn->gn_allocsize) * sizeof (gn))); 3266 *gnpp = NULL; 3267 } 3268 3269 static void 3270 zio_gang_tree_free(zio_gang_node_t **gnpp) 3271 { 3272 zio_gang_node_t *gn = *gnpp; 3273 3274 if (gn == NULL) 3275 return; 3276 3277 for (int g = 0; g < gbh_nblkptrs(gn->gn_allocsize); g++) 3278 zio_gang_tree_free(&gn->gn_child[g]); 3279 3280 zio_gang_node_free(gnpp); 3281 } 3282 3283 static void 3284 zio_gang_tree_assemble(zio_t *gio, blkptr_t *bp, zio_gang_node_t **gnpp) 3285 { 3286 uint64_t gangblocksize = UINT64_MAX; 3287 if (spa_feature_is_active(gio->io_spa, 3288 SPA_FEATURE_DYNAMIC_GANG_HEADER)) { 3289 spa_config_enter(gio->io_spa, SCL_VDEV, FTAG, RW_READER); 3290 for (int dva = 0; dva < BP_GET_NDVAS(bp); dva++) { 3291 vdev_t *vd = vdev_lookup_top(gio->io_spa, 3292 DVA_GET_VDEV(&bp->blk_dva[dva])); 3293 uint64_t psize = vdev_gang_header_psize(vd); 3294 gangblocksize = MIN(gangblocksize, psize); 3295 } 3296 spa_config_exit(gio->io_spa, SCL_VDEV, FTAG); 3297 } else { 3298 gangblocksize = SPA_OLD_GANGBLOCKSIZE; 3299 } 3300 ASSERT3U(gangblocksize, !=, UINT64_MAX); 3301 zio_gang_node_t *gn = zio_gang_node_alloc(gnpp, gangblocksize); 3302 abd_t *gbh_abd = abd_get_from_buf(gn->gn_gbh, gangblocksize); 3303 3304 ASSERT(gio->io_gang_leader == gio); 3305 ASSERT(BP_IS_GANG(bp)); 3306 3307 zio_nowait(zio_read(gio, gio->io_spa, bp, gbh_abd, gangblocksize, 3308 zio_gang_tree_assemble_done, gn, gio->io_priority, 3309 ZIO_GANG_CHILD_FLAGS(gio), &gio->io_bookmark)); 3310 } 3311 3312 static void 3313 zio_gang_tree_assemble_done(zio_t *zio) 3314 { 3315 zio_t *gio = zio->io_gang_leader; 3316 zio_gang_node_t *gn = zio->io_private; 3317 blkptr_t *bp = zio->io_bp; 3318 3319 ASSERT(gio == zio_unique_parent(zio)); 3320 ASSERT(list_is_empty(&zio->io_child_list)); 3321 3322 if (zio->io_error) 3323 return; 3324 3325 /* this ABD was created from a linear buf in zio_gang_tree_assemble */ 3326 if (BP_SHOULD_BYTESWAP(bp)) 3327 byteswap_uint64_array(abd_to_buf(zio->io_abd), zio->io_size); 3328 3329 ASSERT3P(abd_to_buf(zio->io_abd), ==, gn->gn_gbh); 3330 /* 3331 * If this was an old-style gangblock, the gangblocksize should have 3332 * been updated in zio_checksum_error to reflect that. 3333 */ 3334 ASSERT3U(gbh_eck(gn->gn_gbh, gn->gn_gangblocksize)->zec_magic, 3335 ==, ZEC_MAGIC); 3336 3337 abd_free(zio->io_abd); 3338 3339 for (int g = 0; g < gbh_nblkptrs(gn->gn_gangblocksize); g++) { 3340 blkptr_t *gbp = gbh_bp(gn->gn_gbh, g); 3341 if (!BP_IS_GANG(gbp)) 3342 continue; 3343 zio_gang_tree_assemble(gio, gbp, &gn->gn_child[g]); 3344 } 3345 } 3346 3347 static void 3348 zio_gang_tree_issue(zio_t *pio, zio_gang_node_t *gn, blkptr_t *bp, abd_t *data, 3349 uint64_t offset) 3350 { 3351 zio_t *gio = pio->io_gang_leader; 3352 zio_t *zio; 3353 3354 ASSERT(BP_IS_GANG(bp) == !!gn); 3355 ASSERT(BP_GET_CHECKSUM(bp) == BP_GET_CHECKSUM(gio->io_bp)); 3356 ASSERT(BP_GET_LSIZE(bp) == BP_GET_PSIZE(bp) || gn == gio->io_gang_tree); 3357 3358 /* 3359 * If you're a gang header, your data is in gn->gn_gbh. 3360 * If you're a gang member, your data is in 'data' and gn == NULL. 3361 */ 3362 zio = zio_gang_issue_func[gio->io_type](pio, bp, gn, data, offset); 3363 3364 if (gn != NULL) { 3365 ASSERT3U(gbh_eck(gn->gn_gbh, 3366 gn->gn_gangblocksize)->zec_magic, ==, ZEC_MAGIC); 3367 3368 for (int g = 0; g < gbh_nblkptrs(gn->gn_gangblocksize); g++) { 3369 blkptr_t *gbp = gbh_bp(gn->gn_gbh, g); 3370 if (BP_IS_HOLE(gbp)) 3371 continue; 3372 zio_gang_tree_issue(zio, gn->gn_child[g], gbp, data, 3373 offset); 3374 offset += BP_GET_PSIZE(gbp); 3375 } 3376 } 3377 3378 if (gn == gio->io_gang_tree) 3379 ASSERT3U(gio->io_size, ==, offset); 3380 3381 if (zio != pio) 3382 zio_nowait(zio); 3383 } 3384 3385 static zio_t * 3386 zio_gang_assemble(zio_t *zio) 3387 { 3388 blkptr_t *bp = zio->io_bp; 3389 3390 ASSERT(BP_IS_GANG(bp) && zio->io_gang_leader == NULL); 3391 ASSERT(zio->io_child_type > ZIO_CHILD_GANG); 3392 3393 zio->io_gang_leader = zio; 3394 3395 zio_gang_tree_assemble(zio, bp, &zio->io_gang_tree); 3396 3397 return (zio); 3398 } 3399 3400 static zio_t * 3401 zio_gang_issue(zio_t *zio) 3402 { 3403 blkptr_t *bp = zio->io_bp; 3404 3405 if (zio_wait_for_children(zio, ZIO_CHILD_GANG_BIT, ZIO_WAIT_DONE)) { 3406 return (NULL); 3407 } 3408 3409 ASSERT(BP_IS_GANG(bp) && zio->io_gang_leader == zio); 3410 ASSERT(zio->io_child_type > ZIO_CHILD_GANG); 3411 3412 if (zio->io_child_error[ZIO_CHILD_GANG] == 0) 3413 zio_gang_tree_issue(zio, zio->io_gang_tree, bp, zio->io_abd, 3414 0); 3415 else 3416 zio_gang_tree_free(&zio->io_gang_tree); 3417 3418 zio->io_pipeline = ZIO_INTERLOCK_PIPELINE; 3419 3420 return (zio); 3421 } 3422 3423 static void 3424 zio_inherit_allocator(zio_t *pio, zio_t *cio) 3425 { 3426 cio->io_allocator = pio->io_allocator; 3427 } 3428 3429 static void 3430 zio_write_gang_member_ready(zio_t *zio) 3431 { 3432 zio_t *pio = zio_unique_parent(zio); 3433 dva_t *cdva = zio->io_bp->blk_dva; 3434 dva_t *pdva = pio->io_bp->blk_dva; 3435 uint64_t asize; 3436 zio_t *gio __maybe_unused = zio->io_gang_leader; 3437 3438 if (BP_IS_HOLE(zio->io_bp)) 3439 return; 3440 3441 /* 3442 * If we're getting direct-invoked from zio_write_gang_block(), 3443 * the bp_orig will be set. 3444 */ 3445 ASSERT(BP_IS_HOLE(&zio->io_bp_orig) || 3446 zio->io_flags & ZIO_FLAG_PREALLOCATED); 3447 3448 ASSERT(zio->io_child_type == ZIO_CHILD_GANG); 3449 ASSERT3U(zio->io_prop.zp_copies, ==, gio->io_prop.zp_copies); 3450 ASSERT3U(zio->io_prop.zp_copies, <=, BP_GET_NDVAS(zio->io_bp)); 3451 ASSERT3U(pio->io_prop.zp_copies, <=, BP_GET_NDVAS(pio->io_bp)); 3452 VERIFY3U(BP_GET_NDVAS(zio->io_bp), <=, BP_GET_NDVAS(pio->io_bp)); 3453 3454 mutex_enter(&pio->io_lock); 3455 for (int d = 0; d < BP_GET_NDVAS(zio->io_bp); d++) { 3456 ASSERT(DVA_GET_GANG(&pdva[d])); 3457 asize = DVA_GET_ASIZE(&pdva[d]); 3458 asize += DVA_GET_ASIZE(&cdva[d]); 3459 DVA_SET_ASIZE(&pdva[d], asize); 3460 } 3461 mutex_exit(&pio->io_lock); 3462 } 3463 3464 static void 3465 zio_write_gang_done(zio_t *zio) 3466 { 3467 /* 3468 * The io_abd field will be NULL for a zio with no data. The io_flags 3469 * will initially have the ZIO_FLAG_NODATA bit flag set, but we can't 3470 * check for it here as it is cleared in zio_ready. 3471 */ 3472 if (zio->io_abd != NULL) 3473 abd_free(zio->io_abd); 3474 } 3475 3476 static void 3477 zio_update_feature(void *arg, dmu_tx_t *tx) 3478 { 3479 spa_t *spa = dmu_tx_pool(tx)->dp_spa; 3480 spa_feature_incr(spa, (spa_feature_t)(uintptr_t)arg, tx); 3481 } 3482 3483 static zio_t * 3484 zio_write_gang_block(zio_t *pio, metaslab_class_t *mc) 3485 { 3486 spa_t *spa = pio->io_spa; 3487 blkptr_t *bp = pio->io_bp; 3488 zio_t *gio = pio->io_gang_leader; 3489 zio_t *zio; 3490 zio_gang_node_t *gn, **gnpp; 3491 zio_gbh_phys_t *gbh; 3492 abd_t *gbh_abd; 3493 uint64_t txg = pio->io_txg; 3494 uint64_t resid = pio->io_size; 3495 zio_prop_t zp; 3496 int error; 3497 boolean_t has_data = !(pio->io_flags & ZIO_FLAG_NODATA); 3498 3499 /* 3500 * Store multiple copies of the GBH, so that we can still traverse 3501 * all the data (e.g. to free or scrub) even if a block is damaged. 3502 * This value respects the redundant_metadata property. 3503 */ 3504 int gbh_copies = gio->io_prop.zp_gang_copies; 3505 if (gbh_copies == 0) { 3506 /* 3507 * This should only happen in the case where we're filling in 3508 * DDT entries for a parent that wants more copies than the DDT 3509 * has. In that case, we cannot gang without creating a mixed 3510 * blkptr, which is illegal. 3511 */ 3512 ASSERT3U(gio->io_child_type, ==, ZIO_CHILD_DDT); 3513 pio->io_error = EAGAIN; 3514 return (pio); 3515 } 3516 ASSERT3S(gbh_copies, >, 0); 3517 ASSERT3S(gbh_copies, <=, SPA_DVAS_PER_BP); 3518 3519 ASSERT(ZIO_HAS_ALLOCATOR(pio)); 3520 int flags = METASLAB_GANG_HEADER; 3521 if (pio->io_flags & ZIO_FLAG_ALLOC_THROTTLED) { 3522 ASSERT(pio->io_priority == ZIO_PRIORITY_ASYNC_WRITE); 3523 ASSERT(has_data); 3524 3525 flags |= METASLAB_ASYNC_ALLOC; 3526 } 3527 3528 uint64_t gangblocksize = SPA_OLD_GANGBLOCKSIZE; 3529 uint64_t candidate = gangblocksize; 3530 error = metaslab_alloc_range(spa, mc, gangblocksize, gangblocksize, 3531 bp, gbh_copies, txg, pio == gio ? NULL : gio->io_bp, flags, 3532 ZIO_ALLOC_LIST(pio), pio->io_allocator, pio, &candidate); 3533 if (error) { 3534 pio->io_error = error; 3535 return (pio); 3536 } 3537 if (spa_feature_is_active(spa, SPA_FEATURE_DYNAMIC_GANG_HEADER)) 3538 gangblocksize = candidate; 3539 3540 if (pio == gio) { 3541 gnpp = &gio->io_gang_tree; 3542 } else { 3543 gnpp = pio->io_private; 3544 ASSERT(pio->io_ready == zio_write_gang_member_ready); 3545 } 3546 3547 gn = zio_gang_node_alloc(gnpp, gangblocksize); 3548 gbh = gn->gn_gbh; 3549 memset(gbh, 0, gangblocksize); 3550 gbh_abd = abd_get_from_buf(gbh, gangblocksize); 3551 3552 /* 3553 * Create the gang header. 3554 */ 3555 zio = zio_rewrite(pio, spa, txg, bp, gbh_abd, gangblocksize, 3556 zio_write_gang_done, NULL, pio->io_priority, 3557 ZIO_GANG_CHILD_FLAGS(pio), &pio->io_bookmark); 3558 3559 zio_inherit_allocator(pio, zio); 3560 if (pio->io_flags & ZIO_FLAG_ALLOC_THROTTLED) { 3561 boolean_t more; 3562 VERIFY(metaslab_class_throttle_reserve(mc, zio->io_allocator, 3563 gbh_copies, zio->io_size, B_TRUE, &more)); 3564 zio->io_flags |= ZIO_FLAG_ALLOC_THROTTLED; 3565 } 3566 3567 /* 3568 * Create and nowait the gang children. First, we try to do 3569 * opportunistic allocations. If that fails to generate enough 3570 * space, we fall back to normal zio_write calls for nested gang. 3571 */ 3572 int g; 3573 boolean_t any_failed = B_FALSE; 3574 for (g = 0; resid != 0; g++) { 3575 flags &= METASLAB_ASYNC_ALLOC; 3576 flags |= METASLAB_GANG_CHILD; 3577 zp.zp_checksum = gio->io_prop.zp_checksum; 3578 zp.zp_compress = ZIO_COMPRESS_OFF; 3579 zp.zp_complevel = gio->io_prop.zp_complevel; 3580 zp.zp_type = zp.zp_storage_type = DMU_OT_NONE; 3581 zp.zp_level = 0; 3582 zp.zp_copies = gio->io_prop.zp_copies; 3583 zp.zp_gang_copies = gio->io_prop.zp_gang_copies; 3584 zp.zp_dedup = B_FALSE; 3585 zp.zp_dedup_verify = B_FALSE; 3586 zp.zp_nopwrite = B_FALSE; 3587 zp.zp_encrypt = gio->io_prop.zp_encrypt; 3588 zp.zp_byteorder = gio->io_prop.zp_byteorder; 3589 zp.zp_direct_write = B_FALSE; 3590 memset(zp.zp_salt, 0, ZIO_DATA_SALT_LEN); 3591 memset(zp.zp_iv, 0, ZIO_DATA_IV_LEN); 3592 memset(zp.zp_mac, 0, ZIO_DATA_MAC_LEN); 3593 3594 uint64_t min_size = zio_roundup_alloc_size(spa, 3595 resid / (gbh_nblkptrs(gangblocksize) - g)); 3596 min_size = MIN(min_size, resid); 3597 bp = &((blkptr_t *)gbh)[g]; 3598 3599 zio_alloc_list_t cio_list; 3600 metaslab_trace_init(&cio_list); 3601 uint64_t allocated_size = UINT64_MAX; 3602 error = metaslab_alloc_range(spa, mc, min_size, resid, 3603 bp, gio->io_prop.zp_copies, txg, NULL, 3604 flags, &cio_list, zio->io_allocator, NULL, &allocated_size); 3605 3606 boolean_t allocated = error == 0; 3607 any_failed |= !allocated; 3608 3609 uint64_t psize = allocated ? MIN(resid, allocated_size) : 3610 min_size; 3611 ASSERT3U(psize, >=, min_size); 3612 3613 zio_t *cio = zio_write(zio, spa, txg, bp, has_data ? 3614 abd_get_offset(pio->io_abd, pio->io_size - resid) : NULL, 3615 psize, psize, &zp, zio_write_gang_member_ready, NULL, 3616 zio_write_gang_done, &gn->gn_child[g], pio->io_priority, 3617 ZIO_GANG_CHILD_FLAGS(pio) | 3618 (allocated ? ZIO_FLAG_PREALLOCATED : 0), &pio->io_bookmark); 3619 3620 resid -= psize; 3621 zio_inherit_allocator(zio, cio); 3622 if (allocated) { 3623 metaslab_trace_move(&cio_list, ZIO_ALLOC_LIST(cio)); 3624 metaslab_group_alloc_increment_all(spa, 3625 &cio->io_bp_orig, zio->io_allocator, flags, psize, 3626 cio); 3627 } 3628 /* 3629 * We do not reserve for the child writes, since we already 3630 * reserved for the parent. Unreserve though will be called 3631 * for individual children. We can do this since sum of all 3632 * child's physical sizes is equal to parent's physical size. 3633 * It would not work for potentially bigger allocation sizes. 3634 */ 3635 3636 zio_nowait(cio); 3637 } 3638 3639 /* 3640 * If we used more gang children than the old limit, we must already be 3641 * using the new headers. No need to update anything, just move on. 3642 * 3643 * Otherwise, we might be in a case where we need to turn on the new 3644 * feature, so we check that. We enable the new feature if we didn't 3645 * manage to fit everything into 3 gang children and we could have 3646 * written more than that. 3647 */ 3648 if (g > gbh_nblkptrs(SPA_OLD_GANGBLOCKSIZE)) { 3649 ASSERT(spa_feature_is_active(spa, 3650 SPA_FEATURE_DYNAMIC_GANG_HEADER)); 3651 } else if (any_failed && candidate > SPA_OLD_GANGBLOCKSIZE && 3652 spa_feature_is_enabled(spa, SPA_FEATURE_DYNAMIC_GANG_HEADER) && 3653 !spa_feature_is_active(spa, SPA_FEATURE_DYNAMIC_GANG_HEADER)) { 3654 dmu_tx_t *tx = dmu_tx_create_assigned(spa->spa_dsl_pool, 3655 MAX(txg, spa_syncing_txg(spa) + 1)); 3656 dsl_sync_task_nowait(spa->spa_dsl_pool, 3657 zio_update_feature, 3658 (void *)SPA_FEATURE_DYNAMIC_GANG_HEADER, tx); 3659 dmu_tx_commit(tx); 3660 } 3661 3662 /* 3663 * Set pio's pipeline to just wait for zio to finish. 3664 */ 3665 pio->io_pipeline = ZIO_INTERLOCK_PIPELINE; 3666 3667 zio_nowait(zio); 3668 3669 return (pio); 3670 } 3671 3672 /* 3673 * The zio_nop_write stage in the pipeline determines if allocating a 3674 * new bp is necessary. The nopwrite feature can handle writes in 3675 * either syncing or open context (i.e. zil writes) and as a result is 3676 * mutually exclusive with dedup. 3677 * 3678 * By leveraging a cryptographically secure checksum, such as SHA256, we 3679 * can compare the checksums of the new data and the old to determine if 3680 * allocating a new block is required. Note that our requirements for 3681 * cryptographic strength are fairly weak: there can't be any accidental 3682 * hash collisions, but we don't need to be secure against intentional 3683 * (malicious) collisions. To trigger a nopwrite, you have to be able 3684 * to write the file to begin with, and triggering an incorrect (hash 3685 * collision) nopwrite is no worse than simply writing to the file. 3686 * That said, there are no known attacks against the checksum algorithms 3687 * used for nopwrite, assuming that the salt and the checksums 3688 * themselves remain secret. 3689 */ 3690 static zio_t * 3691 zio_nop_write(zio_t *zio) 3692 { 3693 blkptr_t *bp = zio->io_bp; 3694 blkptr_t *bp_orig = &zio->io_bp_orig; 3695 zio_prop_t *zp = &zio->io_prop; 3696 3697 ASSERT(BP_IS_HOLE(bp)); 3698 ASSERT0(BP_GET_LEVEL(bp)); 3699 ASSERT(!(zio->io_flags & ZIO_FLAG_IO_REWRITE)); 3700 ASSERT(zp->zp_nopwrite); 3701 ASSERT(!zp->zp_dedup); 3702 ASSERT0P(zio->io_bp_override); 3703 ASSERT(IO_IS_ALLOCATING(zio)); 3704 3705 /* 3706 * Check to see if the original bp and the new bp have matching 3707 * characteristics (i.e. same checksum, compression algorithms, etc). 3708 * If they don't then just continue with the pipeline which will 3709 * allocate a new bp. 3710 */ 3711 if (BP_IS_HOLE(bp_orig) || 3712 !(zio_checksum_table[BP_GET_CHECKSUM(bp)].ci_flags & 3713 ZCHECKSUM_FLAG_NOPWRITE) || 3714 BP_IS_ENCRYPTED(bp) || BP_IS_ENCRYPTED(bp_orig) || 3715 BP_GET_CHECKSUM(bp) != BP_GET_CHECKSUM(bp_orig) || 3716 BP_GET_COMPRESS(bp) != BP_GET_COMPRESS(bp_orig) || 3717 BP_GET_DEDUP(bp) != BP_GET_DEDUP(bp_orig) || 3718 zp->zp_copies != BP_GET_NDVAS(bp_orig)) 3719 return (zio); 3720 3721 /* 3722 * If the checksums match then reset the pipeline so that we 3723 * avoid allocating a new bp and issuing any I/O. 3724 */ 3725 if (ZIO_CHECKSUM_EQUAL(bp->blk_cksum, bp_orig->blk_cksum)) { 3726 ASSERT(zio_checksum_table[zp->zp_checksum].ci_flags & 3727 ZCHECKSUM_FLAG_NOPWRITE); 3728 ASSERT3U(BP_GET_PSIZE(bp), ==, BP_GET_PSIZE(bp_orig)); 3729 ASSERT3U(BP_GET_LSIZE(bp), ==, BP_GET_LSIZE(bp_orig)); 3730 ASSERT(zp->zp_compress != ZIO_COMPRESS_OFF); 3731 ASSERT3U(bp->blk_prop, ==, bp_orig->blk_prop); 3732 3733 /* 3734 * If we're overwriting a block that is currently on an 3735 * indirect vdev, then ignore the nopwrite request and 3736 * allow a new block to be allocated on a concrete vdev. 3737 */ 3738 spa_config_enter(zio->io_spa, SCL_VDEV, FTAG, RW_READER); 3739 for (int d = 0; d < BP_GET_NDVAS(bp_orig); d++) { 3740 vdev_t *tvd = vdev_lookup_top(zio->io_spa, 3741 DVA_GET_VDEV(&bp_orig->blk_dva[d])); 3742 if (tvd->vdev_ops == &vdev_indirect_ops) { 3743 spa_config_exit(zio->io_spa, SCL_VDEV, FTAG); 3744 return (zio); 3745 } 3746 } 3747 spa_config_exit(zio->io_spa, SCL_VDEV, FTAG); 3748 3749 *bp = *bp_orig; 3750 zio->io_pipeline = ZIO_INTERLOCK_PIPELINE; 3751 zio->io_flags |= ZIO_FLAG_NOPWRITE; 3752 } 3753 3754 return (zio); 3755 } 3756 3757 /* 3758 * ========================================================================== 3759 * Block Reference Table 3760 * ========================================================================== 3761 */ 3762 static zio_t * 3763 zio_brt_free(zio_t *zio) 3764 { 3765 blkptr_t *bp; 3766 3767 bp = zio->io_bp; 3768 3769 if (BP_GET_LEVEL(bp) > 0 || 3770 BP_IS_METADATA(bp) || 3771 !brt_maybe_exists(zio->io_spa, bp)) { 3772 return (zio); 3773 } 3774 3775 if (!brt_entry_decref(zio->io_spa, bp)) { 3776 /* 3777 * This isn't the last reference, so we cannot free 3778 * the data yet. 3779 */ 3780 zio->io_pipeline = ZIO_INTERLOCK_PIPELINE; 3781 } 3782 3783 return (zio); 3784 } 3785 3786 /* 3787 * ========================================================================== 3788 * Dedup 3789 * ========================================================================== 3790 */ 3791 static void 3792 zio_ddt_child_read_done(zio_t *zio) 3793 { 3794 blkptr_t *bp = zio->io_bp; 3795 ddt_t *ddt; 3796 ddt_entry_t *dde = zio->io_private; 3797 zio_t *pio = zio_unique_parent(zio); 3798 3799 mutex_enter(&pio->io_lock); 3800 ddt = ddt_select(zio->io_spa, bp); 3801 3802 if (zio->io_error == 0) { 3803 ddt_phys_variant_t v = ddt_phys_select(ddt, dde, bp); 3804 /* this phys variant doesn't need repair */ 3805 ddt_phys_clear(dde->dde_phys, v); 3806 } 3807 3808 if (zio->io_error == 0 && dde->dde_io->dde_repair_abd == NULL) 3809 dde->dde_io->dde_repair_abd = zio->io_abd; 3810 else 3811 abd_free(zio->io_abd); 3812 mutex_exit(&pio->io_lock); 3813 } 3814 3815 static zio_t * 3816 zio_ddt_read_start(zio_t *zio) 3817 { 3818 blkptr_t *bp = zio->io_bp; 3819 3820 ASSERT(BP_GET_DEDUP(bp)); 3821 ASSERT(BP_GET_PSIZE(bp) == zio->io_size); 3822 ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL); 3823 3824 if (zio->io_child_error[ZIO_CHILD_DDT]) { 3825 ddt_t *ddt = ddt_select(zio->io_spa, bp); 3826 ddt_entry_t *dde = ddt_repair_start(ddt, bp); 3827 ddt_phys_variant_t v_self = ddt_phys_select(ddt, dde, bp); 3828 ddt_univ_phys_t *ddp = dde->dde_phys; 3829 blkptr_t blk; 3830 3831 ASSERT0P(zio->io_vsd); 3832 zio->io_vsd = dde; 3833 3834 if (v_self == DDT_PHYS_NONE) 3835 return (zio); 3836 3837 /* issue I/O for the other copies */ 3838 for (int p = 0; p < DDT_NPHYS(ddt); p++) { 3839 ddt_phys_variant_t v = DDT_PHYS_VARIANT(ddt, p); 3840 3841 if (ddt_phys_birth(ddp, v) == 0 || v == v_self) 3842 continue; 3843 3844 ddt_bp_create(ddt->ddt_checksum, &dde->dde_key, 3845 ddp, v, &blk); 3846 zio_nowait(zio_read(zio, zio->io_spa, &blk, 3847 abd_alloc_for_io(zio->io_size, B_TRUE), 3848 zio->io_size, zio_ddt_child_read_done, dde, 3849 zio->io_priority, ZIO_DDT_CHILD_FLAGS(zio) | 3850 ZIO_FLAG_DONT_PROPAGATE, &zio->io_bookmark)); 3851 } 3852 return (zio); 3853 } 3854 3855 zio_nowait(zio_read(zio, zio->io_spa, bp, 3856 zio->io_abd, zio->io_size, NULL, NULL, zio->io_priority, 3857 ZIO_DDT_CHILD_FLAGS(zio), &zio->io_bookmark)); 3858 3859 return (zio); 3860 } 3861 3862 static zio_t * 3863 zio_ddt_read_done(zio_t *zio) 3864 { 3865 blkptr_t *bp = zio->io_bp; 3866 3867 if (zio_wait_for_children(zio, ZIO_CHILD_DDT_BIT, ZIO_WAIT_DONE)) { 3868 return (NULL); 3869 } 3870 3871 ASSERT(BP_GET_DEDUP(bp)); 3872 ASSERT(BP_GET_PSIZE(bp) == zio->io_size); 3873 ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL); 3874 3875 if (zio->io_child_error[ZIO_CHILD_DDT]) { 3876 ddt_t *ddt = ddt_select(zio->io_spa, bp); 3877 ddt_entry_t *dde = zio->io_vsd; 3878 if (ddt == NULL) { 3879 ASSERT(spa_load_state(zio->io_spa) != SPA_LOAD_NONE); 3880 return (zio); 3881 } 3882 if (dde == NULL) { 3883 zio->io_stage = ZIO_STAGE_DDT_READ_START >> 1; 3884 zio_taskq_dispatch(zio, ZIO_TASKQ_ISSUE, B_FALSE); 3885 return (NULL); 3886 } 3887 if (dde->dde_io->dde_repair_abd != NULL) { 3888 abd_copy(zio->io_abd, dde->dde_io->dde_repair_abd, 3889 zio->io_size); 3890 zio->io_child_error[ZIO_CHILD_DDT] = 0; 3891 } 3892 ddt_repair_done(ddt, dde); 3893 zio->io_vsd = NULL; 3894 } 3895 3896 ASSERT0P(zio->io_vsd); 3897 3898 return (zio); 3899 } 3900 3901 static boolean_t 3902 zio_ddt_collision(zio_t *zio, ddt_t *ddt, ddt_entry_t *dde) 3903 { 3904 spa_t *spa = zio->io_spa; 3905 boolean_t do_raw = !!(zio->io_flags & ZIO_FLAG_RAW); 3906 3907 ASSERT(!(zio->io_bp_override && do_raw)); 3908 3909 /* 3910 * Note: we compare the original data, not the transformed data, 3911 * because when zio->io_bp is an override bp, we will not have 3912 * pushed the I/O transforms. That's an important optimization 3913 * because otherwise we'd compress/encrypt all dmu_sync() data twice. 3914 * However, we should never get a raw, override zio so in these 3915 * cases we can compare the io_abd directly. This is useful because 3916 * it allows us to do dedup verification even if we don't have access 3917 * to the original data (for instance, if the encryption keys aren't 3918 * loaded). 3919 */ 3920 3921 for (int p = 0; p < DDT_NPHYS(ddt); p++) { 3922 if (DDT_PHYS_IS_DITTO(ddt, p)) 3923 continue; 3924 3925 if (dde->dde_io == NULL) 3926 continue; 3927 3928 /* 3929 * Lock dde_io to prevent the lead zio from completing 3930 * and freeing its ABD while we compare against it. 3931 */ 3932 mutex_enter(&dde->dde_io->dde_io_lock); 3933 zio_t *lio = dde->dde_io->dde_lead_zio[p]; 3934 if (lio == NULL) { 3935 mutex_exit(&dde->dde_io->dde_io_lock); 3936 continue; 3937 } 3938 boolean_t collision; 3939 if (do_raw) { 3940 collision = lio->io_size != zio->io_size || 3941 abd_cmp(zio->io_abd, lio->io_abd) != 0; 3942 } else { 3943 collision = lio->io_orig_size != zio->io_orig_size || 3944 abd_cmp(zio->io_orig_abd, lio->io_orig_abd) != 0; 3945 } 3946 mutex_exit(&dde->dde_io->dde_io_lock); 3947 return (collision); 3948 } 3949 3950 for (int p = 0; p < DDT_NPHYS(ddt); p++) { 3951 ddt_phys_variant_t v = DDT_PHYS_VARIANT(ddt, p); 3952 uint64_t phys_birth = ddt_phys_birth(dde->dde_phys, v); 3953 3954 if (phys_birth != 0 && do_raw) { 3955 blkptr_t blk = *zio->io_bp; 3956 uint64_t psize; 3957 abd_t *tmpabd; 3958 int error; 3959 3960 ddt_bp_fill(dde->dde_phys, v, &blk, phys_birth); 3961 psize = BP_GET_PSIZE(&blk); 3962 3963 if (psize != zio->io_size) 3964 return (B_TRUE); 3965 3966 ddt_exit(ddt); 3967 3968 tmpabd = abd_alloc_for_io(psize, B_TRUE); 3969 3970 error = zio_wait(zio_read(NULL, spa, &blk, tmpabd, 3971 psize, NULL, NULL, ZIO_PRIORITY_SYNC_READ, 3972 ZIO_FLAG_CANFAIL | ZIO_FLAG_SPECULATIVE | 3973 ZIO_FLAG_RAW, &zio->io_bookmark)); 3974 3975 if (error == 0) { 3976 if (abd_cmp(tmpabd, zio->io_abd) != 0) 3977 error = SET_ERROR(ENOENT); 3978 } 3979 3980 abd_free(tmpabd); 3981 ddt_enter(ddt); 3982 return (error != 0); 3983 } else if (phys_birth != 0) { 3984 arc_buf_t *abuf = NULL; 3985 arc_flags_t aflags = ARC_FLAG_WAIT; 3986 blkptr_t blk = *zio->io_bp; 3987 int error; 3988 3989 ddt_bp_fill(dde->dde_phys, v, &blk, phys_birth); 3990 3991 if (BP_GET_LSIZE(&blk) != zio->io_orig_size) 3992 return (B_TRUE); 3993 3994 ddt_exit(ddt); 3995 3996 error = arc_read(NULL, spa, &blk, 3997 arc_getbuf_func, &abuf, ZIO_PRIORITY_SYNC_READ, 3998 ZIO_FLAG_CANFAIL | ZIO_FLAG_SPECULATIVE, 3999 &aflags, &zio->io_bookmark); 4000 4001 if (error == 0) { 4002 if (abd_cmp_buf(zio->io_orig_abd, abuf->b_data, 4003 zio->io_orig_size) != 0) 4004 error = SET_ERROR(ENOENT); 4005 arc_buf_destroy(abuf, &abuf); 4006 } 4007 4008 ddt_enter(ddt); 4009 return (error != 0); 4010 } 4011 } 4012 4013 return (B_FALSE); 4014 } 4015 4016 static void 4017 zio_ddt_child_write_done(zio_t *zio) 4018 { 4019 ddt_t *ddt = ddt_select(zio->io_spa, zio->io_bp); 4020 ddt_entry_t *dde = zio->io_private; 4021 4022 zio_link_t *zl = NULL; 4023 ASSERT3P(zio_walk_parents(zio, &zl), !=, NULL); 4024 4025 int p = DDT_PHYS_FOR_COPIES(ddt, zio->io_prop.zp_copies); 4026 ddt_phys_variant_t v = DDT_PHYS_VARIANT(ddt, p); 4027 ddt_univ_phys_t *ddp = dde->dde_phys; 4028 4029 mutex_enter(&dde->dde_io->dde_io_lock); 4030 4031 /* we're the lead, so once we're done there's no one else outstanding */ 4032 if (dde->dde_io->dde_lead_zio[p] == zio) 4033 dde->dde_io->dde_lead_zio[p] = NULL; 4034 4035 ddt_univ_phys_t *orig = &dde->dde_io->dde_orig_phys; 4036 4037 if (zio->io_error != 0) { 4038 /* 4039 * The write failed, so we're about to abort the entire IO 4040 * chain. We need to revert the entry back to what it was at 4041 * the last time it was successfully extended. 4042 */ 4043 ddt_phys_unextend(ddp, orig, v); 4044 ddt_phys_clear(orig, v); 4045 4046 mutex_exit(&dde->dde_io->dde_io_lock); 4047 4048 /* 4049 * Undo the optimistic refcount increments that were done in 4050 * zio_ddt_write() for all non-DDT-child parents. Since errors 4051 * are rare, taking the global lock here is acceptable. 4052 */ 4053 ddt_enter(ddt); 4054 zio_t *pio; 4055 zl = NULL; 4056 while ((pio = zio_walk_parents(zio, &zl)) != NULL) { 4057 if (!(pio->io_flags & ZIO_FLAG_DDT_CHILD)) 4058 ddt_phys_decref(ddp, v); 4059 } 4060 ddt_exit(ddt); 4061 return; 4062 } 4063 4064 /* 4065 * We've successfully added new DVAs to the entry. Clear the saved 4066 * state or, if there's still outstanding IO, remember it so we can 4067 * revert to a known good state if that IO fails. 4068 */ 4069 if (dde->dde_io->dde_lead_zio[p] == NULL) 4070 ddt_phys_clear(orig, v); 4071 else 4072 ddt_phys_copy(orig, ddp, v); 4073 4074 mutex_exit(&dde->dde_io->dde_io_lock); 4075 } 4076 4077 static void 4078 zio_ddt_child_write_ready(zio_t *zio) 4079 { 4080 ddt_t *ddt = ddt_select(zio->io_spa, zio->io_bp); 4081 ddt_entry_t *dde = zio->io_private; 4082 4083 zio_link_t *zl = NULL; 4084 ASSERT3P(zio_walk_parents(zio, &zl), !=, NULL); 4085 4086 int p = DDT_PHYS_FOR_COPIES(ddt, zio->io_prop.zp_copies); 4087 ddt_phys_variant_t v = DDT_PHYS_VARIANT(ddt, p); 4088 4089 if (ddt_phys_is_gang(dde->dde_phys, v)) { 4090 for (int i = 0; i < BP_GET_NDVAS(zio->io_bp); i++) { 4091 dva_t *d = &zio->io_bp->blk_dva[i]; 4092 metaslab_group_alloc_decrement(zio->io_spa, 4093 DVA_GET_VDEV(d), zio->io_allocator, 4094 METASLAB_ASYNC_ALLOC, zio->io_size, zio); 4095 } 4096 zio->io_error = EAGAIN; 4097 } 4098 4099 if (zio->io_error != 0) 4100 return; 4101 4102 mutex_enter(&dde->dde_io->dde_io_lock); 4103 4104 ddt_phys_extend(dde->dde_phys, v, zio->io_bp); 4105 4106 zio_t *pio; 4107 zl = NULL; 4108 while ((pio = zio_walk_parents(zio, &zl)) != NULL) { 4109 if (!(pio->io_flags & ZIO_FLAG_DDT_CHILD)) 4110 ddt_bp_fill(dde->dde_phys, v, pio->io_bp, zio->io_txg); 4111 } 4112 4113 mutex_exit(&dde->dde_io->dde_io_lock); 4114 } 4115 4116 static zio_t * 4117 zio_ddt_write(zio_t *zio) 4118 { 4119 spa_t *spa = zio->io_spa; 4120 blkptr_t *bp = zio->io_bp; 4121 uint64_t txg = zio->io_txg; 4122 zio_prop_t *zp = &zio->io_prop; 4123 ddt_t *ddt = ddt_select(spa, bp); 4124 ddt_entry_t *dde; 4125 4126 ASSERT(BP_GET_DEDUP(bp)); 4127 ASSERT(BP_GET_CHECKSUM(bp) == zp->zp_checksum); 4128 ASSERT(BP_IS_HOLE(bp) || zio->io_bp_override); 4129 ASSERT(!(zio->io_bp_override && (zio->io_flags & ZIO_FLAG_RAW))); 4130 /* 4131 * Deduplication will not take place for Direct I/O writes. The 4132 * ddt_tree will be emptied in syncing context. Direct I/O writes take 4133 * place in the open-context. Direct I/O write can not attempt to 4134 * modify the ddt_tree while issuing out a write. 4135 */ 4136 ASSERT3B(zio->io_prop.zp_direct_write, ==, B_FALSE); 4137 4138 ddt_enter(ddt); 4139 /* 4140 * Search DDT for matching entry. Skip DVAs verification here, since 4141 * they can go only from override, and once we get here the override 4142 * pointer can't have "D" flag to be confused with pruned DDT entries. 4143 */ 4144 IMPLY(zio->io_bp_override, !BP_GET_DEDUP(zio->io_bp_override)); 4145 dde = ddt_lookup(ddt, bp, B_FALSE); 4146 if (dde == NULL) { 4147 /* DDT size is over its quota so no new entries */ 4148 ddt_exit(ddt); 4149 zp->zp_dedup = B_FALSE; 4150 BP_SET_DEDUP(bp, B_FALSE); 4151 if (zio->io_bp_override == NULL) 4152 zio->io_pipeline = ZIO_WRITE_PIPELINE; 4153 return (zio); 4154 } 4155 4156 if (zp->zp_dedup_verify && zio_ddt_collision(zio, ddt, dde)) { 4157 /* 4158 * If we're using a weak checksum, upgrade to a strong checksum 4159 * and try again. If we're already using a strong checksum, 4160 * we can't resolve it, so just convert to an ordinary write. 4161 * (And automatically e-mail a paper to Nature?) 4162 */ 4163 ddt_exit(ddt); 4164 if (!(zio_checksum_table[zp->zp_checksum].ci_flags & 4165 ZCHECKSUM_FLAG_DEDUP)) { 4166 zp->zp_checksum = spa_dedup_checksum(spa); 4167 zio_pop_transforms(zio); 4168 zio->io_stage = ZIO_STAGE_OPEN; 4169 BP_ZERO(bp); 4170 } else { 4171 zp->zp_dedup = B_FALSE; 4172 BP_SET_DEDUP(bp, B_FALSE); 4173 } 4174 ASSERT(!BP_GET_DEDUP(bp)); 4175 zio->io_pipeline = ZIO_WRITE_PIPELINE; 4176 return (zio); 4177 } 4178 4179 int p = DDT_PHYS_FOR_COPIES(ddt, zp->zp_copies); 4180 ddt_phys_variant_t v = DDT_PHYS_VARIANT(ddt, p); 4181 4182 /* 4183 * In the common cases, at this point we have a regular BP with no 4184 * allocated DVAs, and the corresponding DDT entry for its checksum. 4185 * Our goal is to fill the BP with enough DVAs to satisfy its copies= 4186 * requirement. 4187 * 4188 * One of three things needs to happen to fulfill this: 4189 * 4190 * - if the DDT entry has enough DVAs to satisfy the BP, we just copy 4191 * them out of the entry and return; 4192 * 4193 * - if the DDT entry has no DVAs (ie its brand new), then we have to 4194 * issue the write as normal so that DVAs can be allocated and the 4195 * data land on disk. We then copy the DVAs into the DDT entry on 4196 * return. 4197 * 4198 * - if the DDT entry has some DVAs, but too few, we have to issue the 4199 * write, adjusted to have allocate fewer copies. When it returns, we 4200 * add the new DVAs to the DDT entry, and update the BP to have the 4201 * full amount it originally requested. 4202 * 4203 * In all cases, if there's already a writing IO in flight, we need to 4204 * defer the action until after the write is done. If our action is to 4205 * write, we need to adjust our request for additional DVAs to match 4206 * what will be in the DDT entry after it completes. In this way every 4207 * IO can be guaranteed to recieve enough DVAs simply by joining the 4208 * end of the chain and letting the sequence play out. 4209 */ 4210 4211 /* Number of DVAs requested by the IO. */ 4212 uint8_t need_dvas = zp->zp_copies; 4213 /* Number of DVAs in outstanding writes for this dde. */ 4214 uint8_t parent_dvas = 0; 4215 4216 /* 4217 * What we do next depends on whether or not there's IO outstanding 4218 * that will update this entry. If dde_io exists, we need to hold 4219 * its lock to safely check and use dde_lead_zio. 4220 */ 4221 ddt_entry_io_t *dde_io = dde->dde_io; 4222 if (dde_io != NULL) 4223 mutex_enter(&dde_io->dde_io_lock); 4224 4225 /* 4226 * Number of DVAs in the DDT entry. If the BP is encrypted we ignore 4227 * the third one as normal. 4228 * 4229 * Must be computed after taking dde_io_lock (if held) to avoid 4230 * racing with ddt_phys_unextend() in zio_ddt_child_write_done() 4231 * error path, which can zero DVAs under dde_io_lock. Without the 4232 * lock, a stale have_dvas causes ddt_bp_fill() to copy a zeroed 4233 * DVA into the BP, producing a hole that reads back as zeros. 4234 */ 4235 ddt_univ_phys_t *ddp = dde->dde_phys; 4236 int have_dvas = ddt_phys_dva_count(ddp, v, BP_IS_ENCRYPTED(bp)); 4237 IMPLY(have_dvas == 0, ddt_phys_birth(ddp, v) == 0); 4238 boolean_t is_ganged = ddt_phys_is_gang(ddp, v); 4239 4240 if (dde_io == NULL || dde_io->dde_lead_zio[p] == NULL) { 4241 /* 4242 * No IO outstanding, so we only need to worry about ourselves. 4243 */ 4244 4245 /* 4246 * Override BPs bring their own DVAs and their own problems. 4247 */ 4248 if (zio->io_bp_override) { 4249 /* 4250 * For a brand-new entry, all the work has been done 4251 * for us, and we can just fill it out from the provided 4252 * block and leave. 4253 */ 4254 if (have_dvas == 0) { 4255 if (dde_io != NULL) 4256 mutex_exit(&dde_io->dde_io_lock); 4257 ASSERT(BP_GET_BIRTH(bp) == txg); 4258 ASSERT(BP_EQUAL(bp, zio->io_bp_override)); 4259 ddt_phys_extend(ddp, v, bp); 4260 ddt_phys_addref(ddp, v); 4261 ddt_exit(ddt); 4262 return (zio); 4263 } 4264 4265 /* 4266 * If we already have this entry, then we want to treat 4267 * it like a regular write. To do this we just wipe 4268 * them out and proceed like a regular write. 4269 * 4270 * Even if there are some DVAs in the entry, we still 4271 * have to clear them out. We can't use them to fill 4272 * out the dedup entry, as they are all referenced 4273 * together by a bp already on disk, and will be freed 4274 * as a group. 4275 */ 4276 BP_ZERO_DVAS(bp); 4277 BP_SET_BIRTH(bp, 0, 0); 4278 } 4279 4280 /* 4281 * If there are enough DVAs in the entry to service our request, 4282 * then we can just use them as-is. 4283 */ 4284 if (have_dvas >= need_dvas) { 4285 if (dde_io != NULL) 4286 mutex_exit(&dde_io->dde_io_lock); 4287 4288 /* 4289 * For rewrite operations, try preserving the original 4290 * logical birth time. If the result matches the 4291 * original BP, this becomes a NOP. 4292 */ 4293 if (zp->zp_rewrite) { 4294 uint64_t orig_logical_birth = 4295 BP_GET_LOGICAL_BIRTH(&zio->io_bp_orig); 4296 ddt_bp_fill(ddp, v, bp, orig_logical_birth); 4297 if (BP_EQUAL(bp, &zio->io_bp_orig)) { 4298 /* We can skip accounting. */ 4299 ddt_exit(ddt); 4300 zio->io_flags |= ZIO_FLAG_NOPWRITE; 4301 return (zio); 4302 } 4303 } 4304 4305 ddt_bp_fill(ddp, v, bp, txg); 4306 ddt_phys_addref(ddp, v); 4307 ddt_exit(ddt); 4308 return (zio); 4309 } 4310 4311 /* 4312 * Otherwise, we have to issue IO to fill the entry up to the 4313 * amount we need. 4314 */ 4315 need_dvas -= have_dvas; 4316 } else { 4317 /* 4318 * There's a write in-flight. If there's already enough DVAs on 4319 * the entry, then either there were already enough to start 4320 * with, or the in-flight IO is between READY and DONE, and so 4321 * has extended the entry with new DVAs. Either way, we don't 4322 * need to do anything, we can just slot in behind it. 4323 */ 4324 4325 if (zio->io_bp_override) { 4326 /* 4327 * If there's a write out, then we're soon going to 4328 * have our own copies of this block, so clear out the 4329 * override block and treat it as a regular dedup 4330 * write. See comment above. 4331 */ 4332 BP_ZERO_DVAS(bp); 4333 BP_SET_BIRTH(bp, 0, 0); 4334 } 4335 4336 if (have_dvas >= need_dvas) { 4337 /* 4338 * A minor point: there might already be enough 4339 * committed DVAs in the entry to service our request, 4340 * but we don't know which are completed and which are 4341 * allocated but not yet written. In this case, should 4342 * the IO for the new DVAs fail, we will be on the end 4343 * of the IO chain and will also recieve an error, even 4344 * though our request could have been serviced. 4345 * 4346 * This is an extremely rare case, as it requires the 4347 * original block to be copied with a request for a 4348 * larger number of DVAs, then copied again requesting 4349 * the same (or already fulfilled) number of DVAs while 4350 * the first request is active, and then that first 4351 * request errors. In return, the logic required to 4352 * catch and handle it is complex. For now, I'm just 4353 * not going to bother with it. 4354 */ 4355 4356 /* 4357 * We always fill the bp here as we may have arrived 4358 * after the in-flight write has passed READY, and so 4359 * missed out. 4360 */ 4361 ddt_bp_fill(ddp, v, bp, txg); 4362 piggyback: 4363 zio_add_child(zio, dde_io->dde_lead_zio[p]); 4364 4365 /* 4366 * Optimistically increment refcount for this parent. 4367 * If the write fails, zio_ddt_child_write_done() will 4368 * decrement for all non-DDT-child parents. 4369 */ 4370 ddt_phys_addref(ddp, v); 4371 mutex_exit(&dde_io->dde_io_lock); 4372 ddt_exit(ddt); 4373 return (zio); 4374 } 4375 4376 /* 4377 * There's not enough in the entry yet, so we need to look at 4378 * the write in-flight and see how many DVAs it will have once 4379 * it completes. 4380 * 4381 * The in-flight write has potentially had its copies request 4382 * reduced (if we're filling out an existing entry), so we need 4383 * to reach in and get the original write to find out what it is 4384 * expecting. 4385 * 4386 * Note that the parent of the lead zio will always have the 4387 * highest zp_copies of any zio in the chain, because ones that 4388 * can be serviced without additional IO are always added to 4389 * the back of the chain. 4390 */ 4391 zio_link_t *zl = NULL; 4392 zio_t *pio = 4393 zio_walk_parents(dde->dde_io->dde_lead_zio[p], &zl); 4394 ASSERT(pio); 4395 parent_dvas = pio->io_prop.zp_copies; 4396 4397 if (parent_dvas >= need_dvas) 4398 goto piggyback; 4399 4400 /* 4401 * Still not enough, so we will need to issue to get the 4402 * shortfall. 4403 */ 4404 need_dvas -= parent_dvas; 4405 } 4406 4407 if (is_ganged) { 4408 if (dde_io != NULL) 4409 mutex_exit(&dde_io->dde_io_lock); 4410 ddt_exit(ddt); 4411 zp->zp_dedup = B_FALSE; 4412 BP_SET_DEDUP(bp, B_FALSE); 4413 zio->io_pipeline = ZIO_WRITE_PIPELINE; 4414 return (zio); 4415 } 4416 4417 /* 4418 * We need to write. We will create a new write with the copies 4419 * property adjusted to match the number of DVAs we need to grow 4420 * the DDT entry by to satisfy the request. 4421 */ 4422 zio_prop_t czp; 4423 if (have_dvas > 0 || parent_dvas > 0) { 4424 czp = *zp; 4425 czp.zp_copies = need_dvas; 4426 czp.zp_gang_copies = 0; 4427 zp = &czp; 4428 } else { 4429 ASSERT3U(zp->zp_copies, ==, need_dvas); 4430 } 4431 4432 zio_t *cio = zio_write(zio, spa, txg, bp, zio->io_orig_abd, 4433 zio->io_orig_size, zio->io_orig_size, zp, 4434 zio_ddt_child_write_ready, NULL, 4435 zio_ddt_child_write_done, dde, zio->io_priority, 4436 ZIO_DDT_CHILD_FLAGS(zio), &zio->io_bookmark); 4437 zio_inherit_allocator(zio, cio); 4438 4439 zio_push_transform(cio, zio->io_abd, zio->io_size, 0, NULL); 4440 4441 /* 4442 * We are the new lead zio, because our parent has the highest 4443 * zp_copies that has been requested for this entry so far. 4444 */ 4445 if (dde_io == NULL) { 4446 /* 4447 * New dde_io. No lock needed since no other thread can have 4448 * a reference yet. 4449 */ 4450 ddt_alloc_entry_io(dde); 4451 dde_io = dde->dde_io; 4452 /* 4453 * First time out, take a copy of the stable entry to revert 4454 * to if there's an error (see zio_ddt_child_write_done()) 4455 */ 4456 ddt_phys_copy(&dde_io->dde_orig_phys, dde->dde_phys, v); 4457 dde_io->dde_lead_zio[p] = cio; 4458 } else { 4459 if (dde_io->dde_lead_zio[p] == NULL) { 4460 /* 4461 * First time out, take a copy of the stable entry 4462 * to revert to if there's an error (see 4463 * zio_ddt_child_write_done()) 4464 */ 4465 ddt_phys_copy(&dde_io->dde_orig_phys, dde->dde_phys, 4466 v); 4467 } else { 4468 /* 4469 * Make the existing chain our child, because it 4470 * cannot complete until we have. 4471 */ 4472 zio_add_child(cio, dde_io->dde_lead_zio[p]); 4473 } 4474 dde_io->dde_lead_zio[p] = cio; 4475 mutex_exit(&dde_io->dde_io_lock); 4476 } 4477 4478 /* 4479 * Optimistically increment the refcount for this dedup write. 4480 * If the write fails, zio_ddt_child_write_done() will decrement 4481 * for all non-DDT-child parents. 4482 */ 4483 ddt_phys_addref(ddp, v); 4484 4485 ddt_exit(ddt); 4486 4487 zio_nowait(cio); 4488 4489 return (zio); 4490 } 4491 4492 static ddt_entry_t *freedde; /* for debugging */ 4493 4494 static zio_t * 4495 zio_ddt_free(zio_t *zio) 4496 { 4497 spa_t *spa = zio->io_spa; 4498 blkptr_t *bp = zio->io_bp; 4499 ddt_t *ddt = ddt_select(spa, bp); 4500 ddt_entry_t *dde = NULL; 4501 4502 ASSERT(BP_GET_DEDUP(bp)); 4503 ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL); 4504 4505 ddt_enter(ddt); 4506 freedde = dde = ddt_lookup(ddt, bp, B_TRUE); 4507 if (dde) { 4508 ddt_phys_variant_t v = ddt_phys_select(ddt, dde, bp); 4509 if (v != DDT_PHYS_NONE) 4510 ddt_phys_decref(dde->dde_phys, v); 4511 else 4512 /* 4513 * No phys matches this BP; ddt_lookup() returned a 4514 * fresh, empty entry because the key is not in the 4515 * table at all (eg the original entry was pruned). 4516 * There is no reference to release, so we need to do 4517 * a normal (not dedup) free. Clear dde so we fall 4518 * into the block below. 4519 */ 4520 dde = NULL; 4521 } 4522 ddt_exit(ddt); 4523 4524 if (dde) { 4525 /* 4526 * DDT entry found and the refcount has been decremented. 4527 * Stop the pipeline — there is nothing more to do right now. 4528 */ 4529 zio->io_pipeline = ZIO_INTERLOCK_PIPELINE; 4530 } else { 4531 /* 4532 * No DDT entry; the block must have been pruned from the 4533 * table. Clear the DEDUP bit so it is treated as a normal 4534 * block from here on. BRT_FREE and DVA_FREE follow in the 4535 * pipeline and will handle any cloned references and the 4536 * actual block free respectively, along with the gang stages 4537 * for a gang BP. 4538 * 4539 * Only flat (FDT) tables are ever pruned, so a miss against 4540 * a traditional table means the table and the BP disagree, 4541 * which should not be possible. The plain free below is 4542 * still the best we can do for this BP, but leave a trace. 4543 */ 4544 if (!(ddt->ddt_flags & DDT_FLAG_FLAT)) { 4545 zfs_dbgmsg("%s: no matching traditional DDT phys for " 4546 "dedup BP DVA[0]=<%llu:%llx:%llx> phys_birth=%llu; " 4547 "freeing without a refcount decrement", 4548 spa_name(spa), 4549 (u_longlong_t)DVA_GET_VDEV(&bp->blk_dva[0]), 4550 (u_longlong_t)DVA_GET_OFFSET(&bp->blk_dva[0]), 4551 (u_longlong_t)DVA_GET_ASIZE(&bp->blk_dva[0]), 4552 (u_longlong_t)BP_GET_PHYSICAL_BIRTH(bp)); 4553 } 4554 BP_SET_DEDUP(bp, 0); 4555 } 4556 4557 return (zio); 4558 } 4559 4560 /* 4561 * ========================================================================== 4562 * Allocate and free blocks 4563 * ========================================================================== 4564 */ 4565 4566 static zio_t * 4567 zio_io_to_allocate(metaslab_class_allocator_t *mca, boolean_t *more) 4568 { 4569 zio_t *zio; 4570 4571 ASSERT(MUTEX_HELD(&mca->mca_lock)); 4572 4573 zio = avl_first(&mca->mca_tree); 4574 if (zio == NULL) { 4575 *more = B_FALSE; 4576 return (NULL); 4577 } 4578 4579 ASSERT(IO_IS_ALLOCATING(zio)); 4580 ASSERT(ZIO_HAS_ALLOCATOR(zio)); 4581 4582 /* 4583 * Try to place a reservation for this zio. If we're unable to 4584 * reserve then we throttle. 4585 */ 4586 if (!metaslab_class_throttle_reserve(zio->io_metaslab_class, 4587 zio->io_allocator, zio->io_prop.zp_copies, zio->io_size, 4588 B_FALSE, more)) { 4589 return (NULL); 4590 } 4591 zio->io_flags |= ZIO_FLAG_ALLOC_THROTTLED; 4592 4593 avl_remove(&mca->mca_tree, zio); 4594 ASSERT3U(zio->io_stage, <, ZIO_STAGE_DVA_ALLOCATE); 4595 4596 if (avl_is_empty(&mca->mca_tree)) 4597 *more = B_FALSE; 4598 return (zio); 4599 } 4600 4601 static zio_t * 4602 zio_dva_throttle(zio_t *zio) 4603 { 4604 spa_t *spa = zio->io_spa; 4605 zio_t *nio; 4606 metaslab_class_t *mc; 4607 boolean_t more; 4608 4609 /* 4610 * If not already chosen, choose an appropriate allocation class. 4611 */ 4612 mc = zio->io_metaslab_class; 4613 if (mc == NULL) 4614 mc = spa_preferred_class(spa, zio); 4615 4616 if (zio->io_priority == ZIO_PRIORITY_SYNC_WRITE || 4617 !mc->mc_alloc_throttle_enabled || 4618 zio->io_child_type == ZIO_CHILD_GANG || 4619 zio->io_flags & ZIO_FLAG_NODATA) { 4620 return (zio); 4621 } 4622 4623 ASSERT(zio->io_type == ZIO_TYPE_WRITE); 4624 ASSERT(ZIO_HAS_ALLOCATOR(zio)); 4625 ASSERT(zio->io_child_type > ZIO_CHILD_GANG); 4626 ASSERT3U(zio->io_queued_timestamp, >, 0); 4627 ASSERT(zio->io_stage == ZIO_STAGE_DVA_THROTTLE); 4628 4629 zio->io_metaslab_class = mc; 4630 metaslab_class_allocator_t *mca = &mc->mc_allocator[zio->io_allocator]; 4631 mutex_enter(&mca->mca_lock); 4632 avl_add(&mca->mca_tree, zio); 4633 nio = zio_io_to_allocate(mca, &more); 4634 mutex_exit(&mca->mca_lock); 4635 return (nio); 4636 } 4637 4638 static void 4639 zio_allocate_dispatch(metaslab_class_t *mc, int allocator) 4640 { 4641 metaslab_class_allocator_t *mca = &mc->mc_allocator[allocator]; 4642 zio_t *zio; 4643 boolean_t more; 4644 4645 do { 4646 mutex_enter(&mca->mca_lock); 4647 zio = zio_io_to_allocate(mca, &more); 4648 mutex_exit(&mca->mca_lock); 4649 if (zio == NULL) 4650 return; 4651 4652 ASSERT3U(zio->io_stage, ==, ZIO_STAGE_DVA_THROTTLE); 4653 ASSERT0(zio->io_error); 4654 zio_taskq_dispatch(zio, ZIO_TASKQ_ISSUE, B_TRUE); 4655 } while (more); 4656 } 4657 4658 static zio_t * 4659 zio_dva_allocate(zio_t *zio) 4660 { 4661 spa_t *spa = zio->io_spa; 4662 metaslab_class_t *mc, *newmc; 4663 blkptr_t *bp = zio->io_bp; 4664 int error; 4665 int flags = 0; 4666 4667 if (zio->io_gang_leader == NULL) { 4668 ASSERT(zio->io_child_type > ZIO_CHILD_GANG); 4669 zio->io_gang_leader = zio; 4670 } 4671 if (zio->io_flags & ZIO_FLAG_PREALLOCATED) { 4672 ASSERT3U(zio->io_child_type, ==, ZIO_CHILD_GANG); 4673 memcpy(zio->io_bp->blk_dva, zio->io_bp_orig.blk_dva, 4674 3 * sizeof (dva_t)); 4675 BP_SET_LOGICAL_BIRTH(zio->io_bp, 4676 BP_GET_LOGICAL_BIRTH(&zio->io_bp_orig)); 4677 BP_SET_PHYSICAL_BIRTH(zio->io_bp, 4678 BP_GET_RAW_PHYSICAL_BIRTH(&zio->io_bp_orig)); 4679 return (zio); 4680 } 4681 4682 ASSERT(BP_IS_HOLE(bp)); 4683 ASSERT0(BP_GET_NDVAS(bp)); 4684 ASSERT3U(zio->io_prop.zp_copies, >, 0); 4685 4686 ASSERT3U(zio->io_prop.zp_copies, <=, spa_max_replication(spa)); 4687 ASSERT3U(zio->io_size, ==, BP_GET_PSIZE(bp)); 4688 4689 if (zio->io_flags & ZIO_FLAG_GANG_CHILD) 4690 flags |= METASLAB_GANG_CHILD; 4691 if (zio->io_priority == ZIO_PRIORITY_ASYNC_WRITE) 4692 flags |= METASLAB_ASYNC_ALLOC; 4693 4694 /* 4695 * If not already chosen, choose an appropriate allocation class. 4696 */ 4697 mc = zio->io_metaslab_class; 4698 if (mc == NULL) { 4699 mc = spa_preferred_class(spa, zio); 4700 zio->io_metaslab_class = mc; 4701 } 4702 ZIOSTAT_BUMP(ziostat_total_allocations); 4703 4704 again: 4705 /* 4706 * Try allocating the block in the usual metaslab class. 4707 * If that's full, allocate it in some other class(es). 4708 * If that's full, allocate as a gang block, 4709 * and if all are full, the allocation fails (which shouldn't happen). 4710 * 4711 * Note that we do not fall back on embedded slog (ZIL) space, to 4712 * preserve unfragmented slog space, which is critical for decent 4713 * sync write performance. If a log allocation fails, we will fall 4714 * back to spa_sync() which is abysmal for performance. 4715 */ 4716 ASSERT(ZIO_HAS_ALLOCATOR(zio)); 4717 error = metaslab_alloc(spa, mc, zio->io_size, bp, 4718 zio->io_prop.zp_copies, zio->io_txg, NULL, flags, 4719 ZIO_ALLOC_LIST(zio), zio->io_allocator, zio); 4720 4721 /* 4722 * When the dedup or special class is spilling into the normal class, 4723 * there can still be significant space available due to deferred 4724 * frees that are in-flight. We track the txg when this occurred and 4725 * back off adding new DDT entries for a few txgs to allow the free 4726 * blocks to be processed. 4727 */ 4728 if (error == ENOSPC && spa->spa_dedup_class_full_txg != zio->io_txg && 4729 (mc == spa_dedup_class(spa) || (mc == spa_special_class(spa) && 4730 !spa_has_dedup(spa) && spa_special_has_ddt(spa)))) { 4731 spa->spa_dedup_class_full_txg = zio->io_txg; 4732 zfs_dbgmsg("%s[%llu]: %s class spilling, req size %llu, " 4733 "%llu allocated of %llu", 4734 spa_name(spa), (u_longlong_t)zio->io_txg, 4735 metaslab_class_get_name(mc), 4736 (u_longlong_t)zio->io_size, 4737 (u_longlong_t)metaslab_class_get_alloc(mc), 4738 (u_longlong_t)metaslab_class_get_space(mc)); 4739 } 4740 4741 /* 4742 * Fall back to some other class when this one is full. 4743 */ 4744 if (error == ENOSPC && (newmc = spa_preferred_class(spa, zio)) != mc) { 4745 /* 4746 * If we are holding old class reservation, drop it. 4747 * Dispatch the next ZIO(s) there if some are waiting. 4748 */ 4749 if (zio->io_flags & ZIO_FLAG_ALLOC_THROTTLED) { 4750 if (metaslab_class_throttle_unreserve(mc, 4751 zio->io_allocator, zio->io_prop.zp_copies, 4752 zio->io_size)) { 4753 zio_allocate_dispatch(zio->io_metaslab_class, 4754 zio->io_allocator); 4755 } 4756 zio->io_flags &= ~ZIO_FLAG_ALLOC_THROTTLED; 4757 } 4758 4759 if (zfs_flags & ZFS_DEBUG_METASLAB_ALLOC) { 4760 zfs_dbgmsg("%s: metaslab allocation failure in %s " 4761 "class, trying fallback to %s class: zio %px, " 4762 "size %llu, error %d", spa_name(spa), 4763 metaslab_class_get_name(mc), 4764 metaslab_class_get_name(newmc), 4765 zio, (u_longlong_t)zio->io_size, error); 4766 } 4767 zio->io_metaslab_class = mc = newmc; 4768 ZIOSTAT_BUMP(ziostat_alloc_class_fallbacks); 4769 4770 /* 4771 * If the new class uses throttling, return to that pipeline 4772 * stage. Otherwise just do another allocation attempt. 4773 */ 4774 if (zio->io_priority != ZIO_PRIORITY_SYNC_WRITE && 4775 mc->mc_alloc_throttle_enabled && 4776 zio->io_child_type != ZIO_CHILD_GANG && 4777 !(zio->io_flags & ZIO_FLAG_NODATA)) { 4778 zio->io_stage = ZIO_STAGE_DVA_THROTTLE >> 1; 4779 return (zio); 4780 } 4781 goto again; 4782 } 4783 4784 if (error == ENOSPC && zio->io_size > spa->spa_min_alloc) { 4785 if (zfs_flags & ZFS_DEBUG_METASLAB_ALLOC) { 4786 zfs_dbgmsg("%s: metaslab allocation failure, " 4787 "trying ganging: zio %px, size %llu, error %d", 4788 spa_name(spa), zio, (u_longlong_t)zio->io_size, 4789 error); 4790 } 4791 ZIOSTAT_BUMP(ziostat_gang_writes); 4792 if (flags & METASLAB_GANG_CHILD) 4793 ZIOSTAT_BUMP(ziostat_gang_multilevel); 4794 return (zio_write_gang_block(zio, mc)); 4795 } 4796 if (error != 0) { 4797 if (error != ENOSPC || 4798 (zfs_flags & ZFS_DEBUG_METASLAB_ALLOC)) { 4799 zfs_dbgmsg("%s: metaslab allocation failure: zio %px, " 4800 "size %llu, error %d", 4801 spa_name(spa), zio, (u_longlong_t)zio->io_size, 4802 error); 4803 } 4804 zio->io_error = error; 4805 } else if (zio->io_prop.zp_rewrite) { 4806 /* 4807 * For rewrite operations, preserve the logical birth time 4808 * but set the physical birth time to the current txg. 4809 */ 4810 uint64_t logical_birth = BP_GET_LOGICAL_BIRTH(&zio->io_bp_orig); 4811 ASSERT3U(logical_birth, <=, zio->io_txg); 4812 BP_SET_BIRTH(zio->io_bp, logical_birth, zio->io_txg); 4813 BP_SET_REWRITE(zio->io_bp, 1); 4814 } 4815 4816 return (zio); 4817 } 4818 4819 static zio_t * 4820 zio_dva_free(zio_t *zio) 4821 { 4822 metaslab_free(zio->io_spa, zio->io_bp, zio->io_txg, B_FALSE); 4823 4824 return (zio); 4825 } 4826 4827 static zio_t * 4828 zio_dva_claim(zio_t *zio) 4829 { 4830 int error; 4831 4832 error = metaslab_claim(zio->io_spa, zio->io_bp, zio->io_txg); 4833 if (error) 4834 zio->io_error = error; 4835 4836 return (zio); 4837 } 4838 4839 /* 4840 * Undo an allocation. This is used by zio_done() when an I/O fails 4841 * and we want to give back the block we just allocated. 4842 * This handles both normal blocks and gang blocks. 4843 */ 4844 static void 4845 zio_dva_unallocate(zio_t *zio, zio_gang_node_t *gn, blkptr_t *bp) 4846 { 4847 ASSERT(BP_GET_BIRTH(bp) == zio->io_txg || BP_IS_HOLE(bp)); 4848 ASSERT0P(zio->io_bp_override); 4849 4850 if (!BP_IS_HOLE(bp)) { 4851 metaslab_free(zio->io_spa, bp, BP_GET_BIRTH(bp), B_TRUE); 4852 } 4853 4854 if (gn != NULL) { 4855 for (int g = 0; g < gbh_nblkptrs(gn->gn_gangblocksize); g++) { 4856 zio_dva_unallocate(zio, gn->gn_child[g], 4857 gbh_bp(gn->gn_gbh, g)); 4858 } 4859 } 4860 } 4861 4862 /* 4863 * Try to allocate an intent log block. Return 0 on success, errno on failure. 4864 */ 4865 int 4866 zio_alloc_zil(spa_t *spa, objset_t *os, uint64_t txg, blkptr_t *new_bp, 4867 uint64_t min_size, uint64_t max_size, boolean_t *slog, 4868 boolean_t allow_larger) 4869 { 4870 int error; 4871 zio_alloc_list_t io_alloc_list; 4872 uint64_t alloc_size = 0; 4873 4874 ASSERT(txg > spa_syncing_txg(spa)); 4875 ASSERT3U(min_size, <=, max_size); 4876 4877 metaslab_trace_init(&io_alloc_list); 4878 4879 /* 4880 * Block pointer fields are useful to metaslabs for stats and debugging. 4881 * Fill in the obvious ones before calling into metaslab_alloc(). 4882 */ 4883 BP_SET_TYPE(new_bp, DMU_OT_INTENT_LOG); 4884 BP_SET_PSIZE(new_bp, max_size); 4885 BP_SET_LEVEL(new_bp, 0); 4886 4887 /* 4888 * When allocating a zil block, we don't have information about 4889 * the final destination of the block except the objset it's part 4890 * of, so we just hash the objset ID to pick the allocator to get 4891 * some parallelism. 4892 */ 4893 int flags = METASLAB_ZIL; 4894 int allocator = (uint_t)cityhash1(os->os_dsl_dataset->ds_object) 4895 % spa->spa_alloc_count; 4896 ZIOSTAT_BUMP(ziostat_total_allocations); 4897 4898 /* Try log class (dedicated slog devices) first */ 4899 error = metaslab_alloc_range(spa, spa_log_class(spa), min_size, 4900 max_size, new_bp, 1, txg, NULL, flags, &io_alloc_list, allocator, 4901 NULL, &alloc_size); 4902 *slog = (error == 0); 4903 4904 /* Try special_embedded_log class (reserved on special vdevs) */ 4905 if (error != 0) { 4906 error = metaslab_alloc_range(spa, 4907 spa_special_embedded_log_class(spa), min_size, max_size, 4908 new_bp, 1, txg, NULL, flags, &io_alloc_list, allocator, 4909 NULL, &alloc_size); 4910 } 4911 4912 /* Try special class (general special vdev allocation) */ 4913 if (error != 0) { 4914 error = metaslab_alloc_range(spa, spa_special_class(spa), 4915 min_size, max_size, new_bp, 1, txg, NULL, flags, 4916 &io_alloc_list, allocator, NULL, &alloc_size); 4917 } 4918 4919 /* Try embedded_log class (reserved on normal vdevs) */ 4920 if (error != 0) { 4921 error = metaslab_alloc_range(spa, spa_embedded_log_class(spa), 4922 min_size, max_size, new_bp, 1, txg, NULL, flags, 4923 &io_alloc_list, allocator, NULL, &alloc_size); 4924 } 4925 4926 /* Finally fall back to normal class */ 4927 if (error != 0) { 4928 ZIOSTAT_BUMP(ziostat_alloc_class_fallbacks); 4929 error = metaslab_alloc_range(spa, spa_normal_class(spa), 4930 min_size, max_size, new_bp, 1, txg, NULL, flags, 4931 &io_alloc_list, allocator, NULL, &alloc_size); 4932 } 4933 metaslab_trace_fini(&io_alloc_list); 4934 4935 if (error == 0) { 4936 if (!allow_larger) 4937 alloc_size = MIN(alloc_size, max_size); 4938 else if (max_size <= SPA_OLD_MAXBLOCKSIZE) 4939 alloc_size = MIN(alloc_size, SPA_OLD_MAXBLOCKSIZE); 4940 alloc_size = P2ALIGN_TYPED(alloc_size, ZIL_MIN_BLKSZ, uint64_t); 4941 4942 BP_SET_LSIZE(new_bp, alloc_size); 4943 BP_SET_PSIZE(new_bp, alloc_size); 4944 BP_SET_COMPRESS(new_bp, ZIO_COMPRESS_OFF); 4945 BP_SET_CHECKSUM(new_bp, 4946 spa_version(spa) >= SPA_VERSION_SLIM_ZIL 4947 ? ZIO_CHECKSUM_ZILOG2 : ZIO_CHECKSUM_ZILOG); 4948 BP_SET_TYPE(new_bp, DMU_OT_INTENT_LOG); 4949 BP_SET_LEVEL(new_bp, 0); 4950 BP_SET_DEDUP(new_bp, 0); 4951 BP_SET_BYTEORDER(new_bp, ZFS_HOST_BYTEORDER); 4952 4953 /* 4954 * encrypted blocks will require an IV and salt. We generate 4955 * these now since we will not be rewriting the bp at 4956 * rewrite time. 4957 */ 4958 if (os->os_encrypted) { 4959 uint8_t iv[ZIO_DATA_IV_LEN]; 4960 uint8_t salt[ZIO_DATA_SALT_LEN]; 4961 4962 BP_SET_CRYPT(new_bp, B_TRUE); 4963 VERIFY0(spa_crypt_get_salt(spa, 4964 dmu_objset_id(os), salt)); 4965 VERIFY0(zio_crypt_generate_iv(iv)); 4966 4967 zio_crypt_encode_params_bp(new_bp, salt, iv); 4968 } 4969 } else { 4970 zfs_dbgmsg("%s: zil block allocation failure: " 4971 "min_size %llu, max_size %llu, error %d", spa_name(spa), 4972 (u_longlong_t)min_size, (u_longlong_t)max_size, error); 4973 } 4974 4975 return (error); 4976 } 4977 4978 /* 4979 * ========================================================================== 4980 * Read and write to physical devices 4981 * ========================================================================== 4982 */ 4983 4984 /* 4985 * Issue an I/O to the underlying vdev. Typically the issue pipeline 4986 * stops after this stage and will resume upon I/O completion. 4987 * However, there are instances where the vdev layer may need to 4988 * continue the pipeline when an I/O was not issued. Since the I/O 4989 * that was sent to the vdev layer might be different than the one 4990 * currently active in the pipeline (see vdev_queue_io()), we explicitly 4991 * force the underlying vdev layers to call either zio_execute() or 4992 * zio_interrupt() to ensure that the pipeline continues with the correct I/O. 4993 */ 4994 static zio_t * 4995 zio_vdev_io_start(zio_t *zio) 4996 { 4997 vdev_t *vd = zio->io_vd; 4998 uint64_t align; 4999 spa_t *spa = zio->io_spa; 5000 5001 zio->io_delta = 0; 5002 zio->io_delay = 0; 5003 5004 ASSERT0(zio->io_error); 5005 ASSERT0(zio->io_child_error[ZIO_CHILD_VDEV]); 5006 5007 if (vd == NULL) { 5008 if (!(zio->io_flags & ZIO_FLAG_CONFIG_WRITER)) { 5009 /* 5010 * A deadlock workaround. The ddt_prune_unique_entries() 5011 * -> prune_candidates_sync() code path takes the 5012 * SCL_ZIO reader lock and may request it again here. 5013 * If there is another thread who wants the SCL_ZIO 5014 * writer lock, then scl_write_wanted will be set. 5015 * Thus, the spa_config_enter_priority() is used to 5016 * ignore pending writer requests. 5017 * 5018 * The locking should be revised to remove the need 5019 * for this workaround. If that's not workable then 5020 * it should only be applied to the zios involved in 5021 * the pruning process. This impacts the read/write 5022 * I/O balance while pruning. 5023 */ 5024 if (spa->spa_active_ddt_prune) 5025 spa_config_enter_priority(spa, SCL_ZIO, zio, 5026 RW_READER); 5027 else 5028 spa_config_enter(spa, SCL_ZIO, zio, 5029 RW_READER); 5030 } 5031 5032 /* 5033 * The mirror_ops handle multiple DVAs in a single BP. 5034 */ 5035 vdev_mirror_ops.vdev_op_io_start(zio); 5036 return (NULL); 5037 } 5038 5039 ASSERT3P(zio->io_logical, !=, zio); 5040 if (zio->io_type == ZIO_TYPE_WRITE) { 5041 ASSERT(spa->spa_trust_config); 5042 5043 /* 5044 * Note: the code can handle other kinds of writes, 5045 * but we don't expect them. 5046 */ 5047 if (zio->io_vd->vdev_noalloc) { 5048 ASSERT(zio->io_flags & 5049 (ZIO_FLAG_PHYSICAL | ZIO_FLAG_SELF_HEAL | 5050 ZIO_FLAG_RESILVER | ZIO_FLAG_INDUCE_DAMAGE)); 5051 } 5052 } 5053 5054 align = 1ULL << vd->vdev_top->vdev_ashift; 5055 5056 if (!(zio->io_flags & ZIO_FLAG_PHYSICAL) && 5057 P2PHASE(zio->io_size, align) != 0) { 5058 /* Transform logical writes to be a full physical block size. */ 5059 uint64_t asize = P2ROUNDUP(zio->io_size, align); 5060 abd_t *abuf = abd_alloc_sametype(zio->io_abd, asize); 5061 ASSERT(vd == vd->vdev_top); 5062 if (zio->io_type == ZIO_TYPE_WRITE) { 5063 abd_copy(abuf, zio->io_abd, zio->io_size); 5064 abd_zero_off(abuf, zio->io_size, asize - zio->io_size); 5065 } 5066 zio_push_transform(zio, abuf, asize, asize, zio_subblock); 5067 } 5068 5069 /* 5070 * If this is not a physical io, make sure that it is properly aligned 5071 * before proceeding. 5072 */ 5073 if (!(zio->io_flags & ZIO_FLAG_PHYSICAL)) { 5074 ASSERT0(P2PHASE(zio->io_offset, align)); 5075 ASSERT0(P2PHASE(zio->io_size, align)); 5076 } else { 5077 /* 5078 * For physical writes, we allow 512b aligned writes and assume 5079 * the device will perform a read-modify-write as necessary. 5080 */ 5081 ASSERT0(P2PHASE(zio->io_offset, SPA_MINBLOCKSIZE)); 5082 ASSERT0(P2PHASE(zio->io_size, SPA_MINBLOCKSIZE)); 5083 } 5084 5085 VERIFY(zio->io_type != ZIO_TYPE_WRITE || spa_writeable(spa)); 5086 5087 /* 5088 * If this is a repair I/O, and there's no self-healing involved -- 5089 * that is, we're just resilvering what we expect to resilver -- 5090 * then don't do the I/O unless zio's txg is actually in vd's DTL. 5091 * This prevents spurious resilvering. 5092 * 5093 * There are a few ways that we can end up creating these spurious 5094 * resilver i/os: 5095 * 5096 * 1. A resilver i/o will be issued if any DVA in the BP has a 5097 * dirty DTL. The mirror code will issue resilver writes to 5098 * each DVA, including the one(s) that are not on vdevs with dirty 5099 * DTLs. 5100 * 5101 * 2. With nested replication, which happens when we have a 5102 * "replacing" or "spare" vdev that's a child of a mirror or raidz. 5103 * For example, given mirror(replacing(A+B), C), it's likely that 5104 * only A is out of date (it's the new device). In this case, we'll 5105 * read from C, then use the data to resilver A+B -- but we don't 5106 * actually want to resilver B, just A. The top-level mirror has no 5107 * way to know this, so instead we just discard unnecessary repairs 5108 * as we work our way down the vdev tree. 5109 * 5110 * 3. ZTEST also creates mirrors of mirrors, mirrors of raidz, etc. 5111 * The same logic applies to any form of nested replication: ditto 5112 * + mirror, RAID-Z + replacing, etc. 5113 * 5114 * However, indirect vdevs point off to other vdevs which may have 5115 * DTL's, so we never bypass them. The child i/os on concrete vdevs 5116 * will be properly bypassed instead. 5117 * 5118 * Leaf DTL_PARTIAL can be empty when a legitimate write comes from 5119 * a dRAID spare vdev. For example, when a dRAID spare is first 5120 * used, its spare blocks need to be written to but the leaf vdev's 5121 * of such blocks can have empty DTL_PARTIAL. 5122 * 5123 * There seemed no clean way to allow such writes while bypassing 5124 * spurious ones. At this point, just avoid all bypassing for dRAID 5125 * for correctness. 5126 */ 5127 if ((zio->io_flags & ZIO_FLAG_IO_REPAIR) && 5128 !(zio->io_flags & ZIO_FLAG_SELF_HEAL) && 5129 zio->io_txg != 0 && /* not a delegated i/o */ 5130 vd->vdev_ops != &vdev_indirect_ops && 5131 vd->vdev_top->vdev_ops != &vdev_draid_ops && 5132 !vdev_dtl_contains(vd, DTL_PARTIAL, zio->io_txg, 1)) { 5133 ASSERT(zio->io_type == ZIO_TYPE_WRITE); 5134 zio_vdev_io_bypass(zio); 5135 return (zio); 5136 } 5137 5138 /* 5139 * Select the next best leaf I/O to process. Distributed spares are 5140 * excluded since they dispatch the I/O directly to a leaf vdev after 5141 * applying the dRAID mapping. 5142 */ 5143 if (vd->vdev_ops->vdev_op_leaf && 5144 vd->vdev_ops != &vdev_draid_spare_ops && 5145 (zio->io_type == ZIO_TYPE_READ || 5146 zio->io_type == ZIO_TYPE_WRITE || 5147 zio->io_type == ZIO_TYPE_TRIM)) { 5148 5149 if ((zio = vdev_queue_io(zio)) == NULL) 5150 return (NULL); 5151 5152 if (!vdev_accessible(vd, zio)) { 5153 zio->io_error = SET_ERROR(ENXIO); 5154 zio_interrupt(zio); 5155 return (NULL); 5156 } 5157 zio->io_delay = gethrtime(); 5158 5159 int error = zio_handle_device_injections(vd, zio, ENOSYS, 5160 EFAULT); 5161 if (error == ENOSYS || (error == EFAULT && 5162 !(zio->io_flags & ZIO_FLAG_IO_REPAIR))) { 5163 /* 5164 * "no-op" injections return success, but do no actual 5165 * work. Just return it. "io-prefail" injections are 5166 * similar, but don't return success. 5167 */ 5168 if (error == EFAULT) 5169 zio->io_error = EIO; 5170 zio_delay_interrupt(zio); 5171 return (NULL); 5172 } 5173 } 5174 5175 vd->vdev_ops->vdev_op_io_start(zio); 5176 return (NULL); 5177 } 5178 5179 static zio_t * 5180 zio_vdev_io_done(zio_t *zio) 5181 { 5182 vdev_t *vd = zio->io_vd; 5183 vdev_ops_t *ops = vd ? vd->vdev_ops : &vdev_mirror_ops; 5184 boolean_t unexpected_error = B_FALSE; 5185 5186 if (zio_wait_for_children(zio, ZIO_CHILD_VDEV_BIT, ZIO_WAIT_DONE)) { 5187 return (NULL); 5188 } 5189 5190 ASSERT(zio->io_type == ZIO_TYPE_READ || 5191 zio->io_type == ZIO_TYPE_WRITE || 5192 zio->io_type == ZIO_TYPE_FLUSH || 5193 zio->io_type == ZIO_TYPE_TRIM); 5194 5195 if (zio->io_delay) { 5196 /* io_delta is set only if the completion was deferred. */ 5197 zio->io_delay = (zio->io_delta != 0 ? 5198 zio->io_timestamp + zio->io_delta : gethrtime()) - 5199 zio->io_delay; 5200 } 5201 5202 if (vd != NULL && vd->vdev_ops->vdev_op_leaf && 5203 vd->vdev_ops != &vdev_draid_spare_ops) { 5204 if (zio->io_type != ZIO_TYPE_FLUSH) 5205 vdev_queue_io_done(zio); 5206 5207 if (zio_injection_enabled && zio->io_error == 0) 5208 zio->io_error = zio_handle_device_injections(vd, zio, 5209 EIO, EILSEQ); 5210 5211 if (zio_injection_enabled && zio->io_error == 0) 5212 zio->io_error = zio_handle_label_injection(zio, EIO); 5213 5214 if (zio->io_error && zio->io_type != ZIO_TYPE_FLUSH && 5215 zio->io_type != ZIO_TYPE_TRIM) { 5216 if (!vdev_accessible(vd, zio)) { 5217 zio->io_error = SET_ERROR(ENXIO); 5218 } else { 5219 unexpected_error = B_TRUE; 5220 } 5221 } 5222 } 5223 5224 /* 5225 * This zio got here on a pipeline thread rather than from the block 5226 * layer, so it runs its own completion and gives up its membership. 5227 * The batch is chained only below, to keep it clear of whatever 5228 * vdev_op_io_done() may do with this zio. 5229 */ 5230 zio_t *batch = zio_batch_leave(zio); 5231 5232 ops->vdev_op_io_done(zio); 5233 5234 if (unexpected_error && vd->vdev_remove_wanted == B_FALSE) 5235 VERIFY0P(vdev_probe(vd, zio)); 5236 5237 zio->io_exec_next = batch; 5238 return (zio); 5239 } 5240 5241 /* 5242 * This function is used to change the priority of an existing zio that is 5243 * currently in-flight. This is used by the arc to upgrade priority in the 5244 * event that a demand read is made for a block that is currently queued 5245 * as a scrub or async read IO. Otherwise, the high priority read request 5246 * would end up having to wait for the lower priority IO. 5247 */ 5248 void 5249 zio_change_priority(zio_t *pio, zio_priority_t priority) 5250 { 5251 zio_t *cio, *cio_next; 5252 zio_link_t *zl = NULL; 5253 5254 ASSERT3U(priority, <, ZIO_PRIORITY_NUM_QUEUEABLE); 5255 5256 if (pio->io_vd != NULL && pio->io_vd->vdev_ops->vdev_op_leaf) { 5257 vdev_queue_change_io_priority(pio, priority); 5258 } else { 5259 pio->io_priority = priority; 5260 } 5261 5262 mutex_enter(&pio->io_lock); 5263 for (cio = zio_walk_children(pio, &zl); cio != NULL; cio = cio_next) { 5264 cio_next = zio_walk_children(pio, &zl); 5265 zio_change_priority(cio, priority); 5266 } 5267 mutex_exit(&pio->io_lock); 5268 } 5269 5270 /* 5271 * For non-raidz ZIOs, we can just copy aside the bad data read from the 5272 * disk, and use that to finish the checksum ereport later. 5273 */ 5274 static void 5275 zio_vsd_default_cksum_finish(zio_cksum_report_t *zcr, 5276 const abd_t *good_buf) 5277 { 5278 /* no processing needed */ 5279 zfs_ereport_finish_checksum(zcr, good_buf, zcr->zcr_cbdata, B_FALSE); 5280 } 5281 5282 void 5283 zio_vsd_default_cksum_report(zio_t *zio, zio_cksum_report_t *zcr) 5284 { 5285 void *abd = abd_alloc_sametype(zio->io_abd, zio->io_size); 5286 5287 abd_copy(abd, zio->io_abd, zio->io_size); 5288 5289 zcr->zcr_cbinfo = zio->io_size; 5290 zcr->zcr_cbdata = abd; 5291 zcr->zcr_finish = zio_vsd_default_cksum_finish; 5292 zcr->zcr_free = zio_abd_free; 5293 } 5294 5295 static zio_t * 5296 zio_vdev_io_assess(zio_t *zio) 5297 { 5298 vdev_t *vd = zio->io_vd; 5299 5300 if (zio_wait_for_children(zio, ZIO_CHILD_VDEV_BIT, ZIO_WAIT_DONE)) { 5301 return (NULL); 5302 } 5303 5304 /* A repair write bypass skips VDEV_IO_DONE entirely. */ 5305 zio->io_exec_next = zio_batch_leave(zio); 5306 5307 if (vd == NULL && !(zio->io_flags & ZIO_FLAG_CONFIG_WRITER)) 5308 spa_config_exit(zio->io_spa, SCL_ZIO, zio); 5309 5310 if (zio->io_vsd != NULL) { 5311 zio->io_vsd_ops->vsd_free(zio); 5312 zio->io_vsd = NULL; 5313 } 5314 5315 /* 5316 * If a Direct I/O operation has a checksum verify error then this I/O 5317 * should not attempt to be issued again. 5318 */ 5319 if (zio->io_post & ZIO_POST_DIO_CHKSUM_ERR) { 5320 if (zio->io_type == ZIO_TYPE_WRITE) { 5321 ASSERT3U(zio->io_child_type, ==, ZIO_CHILD_LOGICAL); 5322 ASSERT3U(zio->io_error, ==, EIO); 5323 } 5324 zio->io_pipeline = ZIO_INTERLOCK_PIPELINE; 5325 return (zio); 5326 } 5327 5328 if (zio_injection_enabled && zio->io_error == 0) 5329 zio->io_error = zio_handle_fault_injection(zio, EIO); 5330 5331 /* 5332 * If the I/O failed, determine whether we should attempt to retry it. 5333 * 5334 * On retry, we cut in line in the issue queue, since we don't want 5335 * compression/checksumming/etc. work to prevent our (cheap) IO reissue. 5336 */ 5337 if (zio->io_error && vd == NULL && 5338 !(zio->io_flags & (ZIO_FLAG_DONT_RETRY | ZIO_FLAG_IO_RETRY))) { 5339 ASSERT(!(zio->io_flags & ZIO_FLAG_DONT_QUEUE)); /* not a leaf */ 5340 ASSERT(!(zio->io_flags & ZIO_FLAG_IO_BYPASS)); /* not a leaf */ 5341 zio->io_error = 0; 5342 zio->io_flags |= ZIO_FLAG_IO_RETRY | ZIO_FLAG_DONT_AGGREGATE; 5343 zio->io_stage = ZIO_STAGE_VDEV_IO_START >> 1; 5344 zio_taskq_dispatch(zio, ZIO_TASKQ_ISSUE, 5345 zio_requeue_io_start_cut_in_line); 5346 return (NULL); 5347 } 5348 5349 /* 5350 * If we got an error on a leaf device, convert it to ENXIO 5351 * if the device is not accessible at all. 5352 */ 5353 if (zio->io_error && vd != NULL && vd->vdev_ops->vdev_op_leaf && 5354 !vdev_accessible(vd, zio)) 5355 zio->io_error = SET_ERROR(ENXIO); 5356 5357 /* 5358 * If we can't write to an interior vdev (mirror or RAID-Z), 5359 * set vdev_cant_write so that we stop trying to allocate from it. 5360 */ 5361 if (zio->io_error == ENXIO && zio->io_type == ZIO_TYPE_WRITE && 5362 vd != NULL && !vd->vdev_ops->vdev_op_leaf) { 5363 vdev_dbgmsg(vd, "zio_vdev_io_assess(zio=%px) setting " 5364 "cant_write=TRUE due to write failure with ENXIO", 5365 zio); 5366 vd->vdev_cant_write = B_TRUE; 5367 } 5368 5369 /* 5370 * If a cache flush returns ENOTSUP we know that no future 5371 * attempts will ever succeed. In this case we set a persistent 5372 * boolean flag so that we don't bother with it in the future, and 5373 * then we act like the flush succeeded. 5374 */ 5375 if (zio->io_error == ENOTSUP && zio->io_type == ZIO_TYPE_FLUSH && 5376 vd != NULL) { 5377 vd->vdev_nowritecache = B_TRUE; 5378 zio->io_error = 0; 5379 } 5380 5381 if (zio->io_error) 5382 zio->io_pipeline = ZIO_INTERLOCK_PIPELINE; 5383 5384 return (zio); 5385 } 5386 5387 void 5388 zio_vdev_io_reissue(zio_t *zio) 5389 { 5390 ASSERT(zio->io_stage == ZIO_STAGE_VDEV_IO_START); 5391 ASSERT0(zio->io_error); 5392 5393 zio->io_stage >>= 1; 5394 } 5395 5396 void 5397 zio_vdev_io_redone(zio_t *zio) 5398 { 5399 ASSERT(zio->io_stage == ZIO_STAGE_VDEV_IO_DONE); 5400 5401 zio->io_stage >>= 1; 5402 } 5403 5404 void 5405 zio_vdev_io_bypass(zio_t *zio) 5406 { 5407 ASSERT(zio->io_stage == ZIO_STAGE_VDEV_IO_START); 5408 ASSERT0(zio->io_error); 5409 5410 zio->io_flags |= ZIO_FLAG_IO_BYPASS; 5411 zio->io_stage = ZIO_STAGE_VDEV_IO_ASSESS >> 1; 5412 } 5413 5414 /* 5415 * ========================================================================== 5416 * Encrypt and store encryption parameters 5417 * ========================================================================== 5418 */ 5419 5420 5421 /* 5422 * This function is used for ZIO_STAGE_ENCRYPT. It is responsible for 5423 * managing the storage of encryption parameters and passing them to the 5424 * lower-level encryption functions. 5425 */ 5426 static zio_t * 5427 zio_encrypt(zio_t *zio) 5428 { 5429 zio_prop_t *zp = &zio->io_prop; 5430 spa_t *spa = zio->io_spa; 5431 blkptr_t *bp = zio->io_bp; 5432 uint64_t psize = BP_GET_PSIZE(bp); 5433 uint64_t dsobj = zio->io_bookmark.zb_objset; 5434 dmu_object_type_t ot = BP_GET_TYPE(bp); 5435 void *enc_buf = NULL; 5436 abd_t *eabd = NULL; 5437 uint8_t salt[ZIO_DATA_SALT_LEN]; 5438 uint8_t iv[ZIO_DATA_IV_LEN]; 5439 uint8_t mac[ZIO_DATA_MAC_LEN]; 5440 boolean_t no_crypt = B_FALSE; 5441 5442 /* the root zio already encrypted the data */ 5443 if (zio->io_child_type == ZIO_CHILD_GANG) 5444 return (zio); 5445 5446 /* only ZIL blocks are re-encrypted on rewrite */ 5447 if (!IO_IS_ALLOCATING(zio) && ot != DMU_OT_INTENT_LOG) 5448 return (zio); 5449 5450 if (!(zp->zp_encrypt || BP_IS_ENCRYPTED(bp))) { 5451 BP_SET_CRYPT(bp, B_FALSE); 5452 return (zio); 5453 } 5454 5455 /* if we are doing raw encryption set the provided encryption params */ 5456 if (zio->io_flags & ZIO_FLAG_RAW_ENCRYPT) { 5457 ASSERT0(BP_GET_LEVEL(bp)); 5458 BP_SET_CRYPT(bp, B_TRUE); 5459 BP_SET_BYTEORDER(bp, zp->zp_byteorder); 5460 if (ot != DMU_OT_OBJSET) 5461 zio_crypt_encode_mac_bp(bp, zp->zp_mac); 5462 5463 /* dnode blocks must be written out in the provided byteorder */ 5464 if (zp->zp_byteorder != ZFS_HOST_BYTEORDER && 5465 ot == DMU_OT_DNODE) { 5466 void *bswap_buf = zio_buf_alloc(psize); 5467 abd_t *babd = abd_get_from_buf(bswap_buf, psize); 5468 5469 ASSERT3U(BP_GET_COMPRESS(bp), ==, ZIO_COMPRESS_OFF); 5470 abd_copy_to_buf(bswap_buf, zio->io_abd, psize); 5471 dmu_ot_byteswap[DMU_OT_BYTESWAP(ot)].ob_func(bswap_buf, 5472 psize); 5473 5474 abd_take_ownership_of_buf(babd, B_TRUE); 5475 zio_push_transform(zio, babd, psize, psize, NULL); 5476 } 5477 5478 if (DMU_OT_IS_ENCRYPTED(ot)) 5479 zio_crypt_encode_params_bp(bp, zp->zp_salt, zp->zp_iv); 5480 return (zio); 5481 } 5482 5483 /* indirect blocks only maintain a cksum of the lower level MACs */ 5484 if (BP_GET_LEVEL(bp) > 0) { 5485 BP_SET_CRYPT(bp, B_TRUE); 5486 VERIFY0(zio_crypt_do_indirect_mac_checksum_abd(B_TRUE, 5487 zio->io_orig_abd, BP_GET_LSIZE(bp), BP_SHOULD_BYTESWAP(bp), 5488 mac)); 5489 zio_crypt_encode_mac_bp(bp, mac); 5490 return (zio); 5491 } 5492 5493 /* 5494 * Objset blocks are a special case since they have 2 256-bit MACs 5495 * embedded within them. 5496 */ 5497 if (ot == DMU_OT_OBJSET) { 5498 ASSERT0(DMU_OT_IS_ENCRYPTED(ot)); 5499 ASSERT3U(BP_GET_COMPRESS(bp), ==, ZIO_COMPRESS_OFF); 5500 BP_SET_CRYPT(bp, B_TRUE); 5501 VERIFY0(spa_do_crypt_objset_mac_abd(B_TRUE, spa, dsobj, 5502 zio->io_abd, psize, BP_SHOULD_BYTESWAP(bp))); 5503 return (zio); 5504 } 5505 5506 /* unencrypted object types are only authenticated with a MAC */ 5507 if (!DMU_OT_IS_ENCRYPTED(ot)) { 5508 BP_SET_CRYPT(bp, B_TRUE); 5509 VERIFY0(spa_do_crypt_mac_abd(B_TRUE, spa, dsobj, 5510 zio->io_abd, psize, mac)); 5511 zio_crypt_encode_mac_bp(bp, mac); 5512 return (zio); 5513 } 5514 5515 /* 5516 * Later passes of sync-to-convergence may decide to rewrite data 5517 * in place to avoid more disk reallocations. This presents a problem 5518 * for encryption because this constitutes rewriting the new data with 5519 * the same encryption key and IV. However, this only applies to blocks 5520 * in the MOS (particularly the spacemaps) and we do not encrypt the 5521 * MOS. We assert that the zio is allocating or an intent log write 5522 * to enforce this. 5523 */ 5524 ASSERT(IO_IS_ALLOCATING(zio) || ot == DMU_OT_INTENT_LOG); 5525 ASSERT(BP_GET_LEVEL(bp) == 0 || ot == DMU_OT_INTENT_LOG); 5526 ASSERT(spa_feature_is_active(spa, SPA_FEATURE_ENCRYPTION)); 5527 ASSERT3U(psize, !=, 0); 5528 5529 enc_buf = zio_buf_alloc(psize); 5530 eabd = abd_get_from_buf(enc_buf, psize); 5531 abd_take_ownership_of_buf(eabd, B_TRUE); 5532 5533 /* 5534 * For an explanation of what encryption parameters are stored 5535 * where, see the block comment in zio_crypt.c. 5536 */ 5537 if (ot == DMU_OT_INTENT_LOG) { 5538 zio_crypt_decode_params_bp(bp, salt, iv); 5539 } else { 5540 BP_SET_CRYPT(bp, B_TRUE); 5541 } 5542 5543 /* Perform the encryption. This should not fail */ 5544 VERIFY0(spa_do_crypt_abd(B_TRUE, spa, &zio->io_bookmark, 5545 BP_GET_TYPE(bp), BP_GET_DEDUP(bp), BP_SHOULD_BYTESWAP(bp), 5546 salt, iv, mac, psize, zio->io_abd, eabd, &no_crypt)); 5547 5548 /* encode encryption metadata into the bp */ 5549 if (ot == DMU_OT_INTENT_LOG) { 5550 /* 5551 * ZIL blocks store the MAC in the embedded checksum, so the 5552 * transform must always be applied. 5553 */ 5554 zio_crypt_encode_mac_zil(enc_buf, mac); 5555 zio_push_transform(zio, eabd, psize, psize, NULL); 5556 } else { 5557 BP_SET_CRYPT(bp, B_TRUE); 5558 zio_crypt_encode_params_bp(bp, salt, iv); 5559 zio_crypt_encode_mac_bp(bp, mac); 5560 5561 if (no_crypt) { 5562 ASSERT3U(ot, ==, DMU_OT_DNODE); 5563 abd_free(eabd); 5564 } else { 5565 zio_push_transform(zio, eabd, psize, psize, NULL); 5566 } 5567 } 5568 5569 return (zio); 5570 } 5571 5572 /* 5573 * ========================================================================== 5574 * Generate and verify checksums 5575 * ========================================================================== 5576 */ 5577 static zio_t * 5578 zio_checksum_generate(zio_t *zio) 5579 { 5580 blkptr_t *bp = zio->io_bp; 5581 enum zio_checksum checksum; 5582 5583 if (bp == NULL) { 5584 /* 5585 * This is zio_write_phys(). 5586 * We're either generating a label checksum, or none at all. 5587 */ 5588 checksum = zio->io_prop.zp_checksum; 5589 5590 if (checksum == ZIO_CHECKSUM_OFF) 5591 return (zio); 5592 5593 ASSERT(checksum == ZIO_CHECKSUM_LABEL); 5594 } else { 5595 if (BP_IS_GANG(bp) && zio->io_child_type == ZIO_CHILD_GANG) { 5596 ASSERT(!IO_IS_ALLOCATING(zio)); 5597 checksum = ZIO_CHECKSUM_GANG_HEADER; 5598 } else { 5599 checksum = BP_GET_CHECKSUM(bp); 5600 } 5601 } 5602 5603 zio_checksum_compute(zio, checksum, zio->io_abd, zio->io_size); 5604 5605 return (zio); 5606 } 5607 5608 static zio_t * 5609 zio_checksum_verify(zio_t *zio) 5610 { 5611 zio_bad_cksum_t info; 5612 blkptr_t *bp = zio->io_bp; 5613 int error; 5614 5615 ASSERT(zio->io_vd != NULL); 5616 5617 if (bp == NULL) { 5618 /* 5619 * This is zio_read_phys(). 5620 * We're either verifying a label checksum, or nothing at all. 5621 */ 5622 if (zio->io_prop.zp_checksum == ZIO_CHECKSUM_OFF) 5623 return (zio); 5624 5625 ASSERT3U(zio->io_prop.zp_checksum, ==, ZIO_CHECKSUM_LABEL); 5626 } 5627 5628 ASSERT0(zio->io_post & ZIO_POST_DIO_CHKSUM_ERR); 5629 IMPLY(zio->io_flags & ZIO_FLAG_DIO_READ, 5630 !(zio->io_flags & ZIO_FLAG_SPECULATIVE)); 5631 5632 if ((error = zio_checksum_error(zio, &info)) != 0) { 5633 zio->io_error = error; 5634 if (error == ECKSUM && 5635 !(zio->io_flags & ZIO_FLAG_SPECULATIVE)) { 5636 if (zio->io_flags & ZIO_FLAG_DIO_READ) { 5637 zio->io_post |= ZIO_POST_DIO_CHKSUM_ERR; 5638 zio_t *pio = zio_unique_parent(zio); 5639 /* 5640 * Any Direct I/O read that has a checksum 5641 * error must be treated as suspicous as the 5642 * contents of the buffer could be getting 5643 * manipulated while the I/O is taking place. 5644 * 5645 * The checksum verify error will only be 5646 * reported here for disk and file VDEV's and 5647 * will be reported on those that the failure 5648 * occurred on. Other types of VDEV's report the 5649 * verify failure in their own code paths. 5650 */ 5651 if (pio->io_child_type == ZIO_CHILD_LOGICAL) { 5652 zio_dio_chksum_verify_error_report(zio); 5653 } 5654 } else { 5655 mutex_enter(&zio->io_vd->vdev_stat_lock); 5656 zio->io_vd->vdev_stat.vs_checksum_errors++; 5657 mutex_exit(&zio->io_vd->vdev_stat_lock); 5658 (void) zfs_ereport_start_checksum(zio->io_spa, 5659 zio->io_vd, &zio->io_bookmark, zio, 5660 zio->io_offset, zio->io_size, &info); 5661 } 5662 } 5663 } 5664 5665 return (zio); 5666 } 5667 5668 static zio_t * 5669 zio_dio_checksum_verify(zio_t *zio) 5670 { 5671 zio_t *pio = zio_unique_parent(zio); 5672 int error; 5673 5674 ASSERT3P(zio->io_vd, !=, NULL); 5675 ASSERT3P(zio->io_bp, !=, NULL); 5676 ASSERT3U(zio->io_child_type, ==, ZIO_CHILD_VDEV); 5677 ASSERT3U(zio->io_type, ==, ZIO_TYPE_WRITE); 5678 ASSERT3B(pio->io_prop.zp_direct_write, ==, B_TRUE); 5679 ASSERT3U(pio->io_child_type, ==, ZIO_CHILD_LOGICAL); 5680 5681 if (zfs_vdev_direct_write_verify == 0 || zio->io_error != 0) 5682 goto out; 5683 5684 if ((error = zio_checksum_error(zio, NULL)) != 0) { 5685 zio->io_error = error; 5686 if (error == ECKSUM) { 5687 zio->io_post |= ZIO_POST_DIO_CHKSUM_ERR; 5688 zio_dio_chksum_verify_error_report(zio); 5689 } 5690 } 5691 5692 out: 5693 return (zio); 5694 } 5695 5696 5697 /* 5698 * Called by RAID-Z to ensure we don't compute the checksum twice. 5699 */ 5700 void 5701 zio_checksum_verified(zio_t *zio) 5702 { 5703 zio->io_pipeline &= ~ZIO_STAGE_CHECKSUM_VERIFY; 5704 } 5705 5706 /* 5707 * Report Direct I/O checksum verify error and create ZED event. 5708 */ 5709 void 5710 zio_dio_chksum_verify_error_report(zio_t *zio) 5711 { 5712 ASSERT(zio->io_post & ZIO_POST_DIO_CHKSUM_ERR); 5713 5714 if (zio->io_child_type == ZIO_CHILD_LOGICAL) 5715 return; 5716 5717 mutex_enter(&zio->io_vd->vdev_stat_lock); 5718 zio->io_vd->vdev_stat.vs_dio_verify_errors++; 5719 mutex_exit(&zio->io_vd->vdev_stat_lock); 5720 if (zio->io_type == ZIO_TYPE_WRITE) { 5721 /* 5722 * Convert checksum error for writes into EIO. 5723 */ 5724 zio->io_error = SET_ERROR(EIO); 5725 /* 5726 * Report dio_verify_wr ZED event, rate limited. 5727 */ 5728 if (zfs_ratelimit(&zio->io_vd->vdev_dio_verify_rl)) 5729 (void) zfs_ereport_post(FM_EREPORT_ZFS_DIO_VERIFY_WR, 5730 zio->io_spa, zio->io_vd, &zio->io_bookmark, zio, 0); 5731 } else { 5732 /* 5733 * Report dio_verify_rd ZED event, rate limited. 5734 */ 5735 if (zfs_ratelimit(&zio->io_vd->vdev_dio_verify_rl)) 5736 (void) zfs_ereport_post(FM_EREPORT_ZFS_DIO_VERIFY_RD, 5737 zio->io_spa, zio->io_vd, &zio->io_bookmark, zio, 0); 5738 } 5739 } 5740 5741 /* 5742 * ========================================================================== 5743 * Error rank. Error are ranked in the order 0, ENXIO, ECKSUM, EIO, other. 5744 * An error of 0 indicates success. ENXIO indicates whole-device failure, 5745 * which may be transient (e.g. unplugged) or permanent. ECKSUM and EIO 5746 * indicate errors that are specific to one I/O, and most likely permanent. 5747 * Any other error is presumed to be worse because we weren't expecting it. 5748 * ========================================================================== 5749 */ 5750 int 5751 zio_worst_error(int e1, int e2) 5752 { 5753 static int zio_error_rank[] = { 0, ENXIO, ECKSUM, EIO }; 5754 int r1, r2; 5755 5756 for (r1 = 0; r1 < sizeof (zio_error_rank) / sizeof (int); r1++) 5757 if (e1 == zio_error_rank[r1]) 5758 break; 5759 5760 for (r2 = 0; r2 < sizeof (zio_error_rank) / sizeof (int); r2++) 5761 if (e2 == zio_error_rank[r2]) 5762 break; 5763 5764 return (r1 > r2 ? e1 : e2); 5765 } 5766 5767 /* 5768 * ========================================================================== 5769 * I/O completion 5770 * ========================================================================== 5771 */ 5772 static zio_t * 5773 zio_ready(zio_t *zio) 5774 { 5775 blkptr_t *bp = zio->io_bp; 5776 zio_t *pio, *pio_next; 5777 zio_link_t *zl = NULL; 5778 5779 if (zio_wait_for_children(zio, ZIO_CHILD_LOGICAL_BIT | 5780 ZIO_CHILD_GANG_BIT | ZIO_CHILD_DDT_BIT, ZIO_WAIT_READY)) { 5781 return (NULL); 5782 } 5783 5784 if (zio_injection_enabled) { 5785 hrtime_t target = zio_handle_ready_delay(zio); 5786 if (target != 0 && zio->io_target_timestamp == 0) { 5787 zio->io_stage >>= 1; 5788 zio->io_target_timestamp = target; 5789 zio_delay_interrupt(zio); 5790 return (NULL); 5791 } 5792 } 5793 5794 if (zio->io_ready) { 5795 ASSERT(IO_IS_ALLOCATING(zio)); 5796 ASSERT(BP_GET_BIRTH(bp) == zio->io_txg || 5797 BP_IS_HOLE(bp) || (zio->io_flags & ZIO_FLAG_NOPWRITE)); 5798 ASSERT0(zio->io_children[ZIO_CHILD_GANG][ZIO_WAIT_READY]); 5799 5800 zio->io_ready(zio); 5801 } 5802 5803 #ifdef ZFS_DEBUG 5804 if (bp != NULL && bp != &zio->io_bp_copy) 5805 zio->io_bp_copy = *bp; 5806 #endif 5807 5808 if (zio->io_error != 0) { 5809 zio->io_pipeline = ZIO_INTERLOCK_PIPELINE; 5810 5811 if (zio->io_flags & ZIO_FLAG_ALLOC_THROTTLED) { 5812 ASSERT(IO_IS_ALLOCATING(zio)); 5813 ASSERT(zio->io_priority == ZIO_PRIORITY_ASYNC_WRITE); 5814 ASSERT(zio->io_metaslab_class != NULL); 5815 ASSERT(ZIO_HAS_ALLOCATOR(zio)); 5816 5817 /* 5818 * We were unable to allocate anything, unreserve and 5819 * issue the next I/O to allocate. 5820 */ 5821 if (metaslab_class_throttle_unreserve( 5822 zio->io_metaslab_class, zio->io_allocator, 5823 zio->io_prop.zp_copies, zio->io_size)) { 5824 zio_allocate_dispatch(zio->io_metaslab_class, 5825 zio->io_allocator); 5826 } 5827 } 5828 } 5829 5830 mutex_enter(&zio->io_lock); 5831 zio->io_state[ZIO_WAIT_READY] = 1; 5832 pio = zio_walk_parents(zio, &zl); 5833 mutex_exit(&zio->io_lock); 5834 5835 /* 5836 * As we notify zio's parents, new parents could be added. 5837 * New parents go to the head of zio's io_parent_list, however, 5838 * so we will (correctly) not notify them. The remainder of zio's 5839 * io_parent_list, from 'pio_next' onward, cannot change because 5840 * all parents must wait for us to be done before they can be done. 5841 */ 5842 zio_next_t next; 5843 zio_next_init(&next); 5844 for (; pio != NULL; pio = pio_next) { 5845 pio_next = zio_walk_parents(zio, &zl); 5846 zio_notify_parent(pio, zio, ZIO_WAIT_READY, &next); 5847 } 5848 ASSERT3P(zio->io_exec_next, ==, NULL); 5849 zio->io_exec_next = next.zn_list; 5850 5851 if (zio->io_flags & ZIO_FLAG_NODATA) { 5852 if (bp != NULL && BP_IS_GANG(bp)) { 5853 zio->io_flags &= ~ZIO_FLAG_NODATA; 5854 } else { 5855 ASSERT((uintptr_t)zio->io_abd < SPA_MAXBLOCKSIZE); 5856 zio->io_pipeline &= ~ZIO_VDEV_IO_STAGES; 5857 } 5858 } 5859 5860 if (zio_injection_enabled && 5861 zio->io_spa->spa_syncing_txg == zio->io_txg) 5862 zio_handle_ignored_writes(zio); 5863 5864 return (zio); 5865 } 5866 5867 /* 5868 * Update the allocation throttle accounting. 5869 */ 5870 static void 5871 zio_dva_throttle_done(zio_t *zio) 5872 { 5873 zio_t *pio = zio_unique_parent(zio); 5874 vdev_t *vd = zio->io_vd; 5875 int flags = METASLAB_ASYNC_ALLOC; 5876 const void *tag = pio; 5877 uint64_t size = pio->io_size; 5878 5879 ASSERT3P(zio->io_bp, !=, NULL); 5880 ASSERT3U(zio->io_type, ==, ZIO_TYPE_WRITE); 5881 ASSERT3U(zio->io_priority, ==, ZIO_PRIORITY_ASYNC_WRITE); 5882 ASSERT3U(zio->io_child_type, ==, ZIO_CHILD_VDEV); 5883 ASSERT(vd != NULL); 5884 ASSERT3P(vd, ==, vd->vdev_top); 5885 ASSERT(zio_injection_enabled || !(zio->io_flags & ZIO_FLAG_IO_RETRY)); 5886 ASSERT(!(zio->io_flags & ZIO_FLAG_IO_REPAIR)); 5887 ASSERT(zio->io_flags & ZIO_FLAG_ALLOC_THROTTLED); 5888 5889 /* 5890 * Parents of gang children can have two flavors -- ones that allocated 5891 * the gang header (will have ZIO_FLAG_IO_REWRITE set) and ones that 5892 * allocated the constituent blocks. The first use their parent as tag. 5893 * We set the size to match the original allocation call for that case. 5894 */ 5895 if (pio->io_child_type == ZIO_CHILD_GANG && 5896 (pio->io_flags & ZIO_FLAG_IO_REWRITE)) { 5897 tag = zio_unique_parent(pio); 5898 size = SPA_OLD_GANGBLOCKSIZE; 5899 } 5900 5901 ASSERT(IO_IS_ALLOCATING(pio) || (pio->io_child_type == ZIO_CHILD_GANG && 5902 (pio->io_flags & ZIO_FLAG_IO_REWRITE))); 5903 ASSERT(ZIO_HAS_ALLOCATOR(pio)); 5904 ASSERT3P(zio, !=, zio->io_logical); 5905 ASSERT(zio->io_logical != NULL); 5906 ASSERT(!(zio->io_flags & ZIO_FLAG_IO_REPAIR)); 5907 ASSERT0(zio->io_flags & ZIO_FLAG_NOPWRITE); 5908 ASSERT(zio->io_metaslab_class != NULL); 5909 ASSERT(zio->io_metaslab_class->mc_alloc_throttle_enabled); 5910 5911 metaslab_group_alloc_decrement(zio->io_spa, vd->vdev_id, 5912 pio->io_allocator, flags, size, tag); 5913 5914 if (metaslab_class_throttle_unreserve(pio->io_metaslab_class, 5915 pio->io_allocator, 1, pio->io_size)) { 5916 zio_allocate_dispatch(zio->io_metaslab_class, 5917 pio->io_allocator); 5918 } 5919 } 5920 5921 static void 5922 zio_done_postread_done(zio_t *zio) 5923 { 5924 abd_free(zio->io_abd); 5925 } 5926 5927 static zio_t * 5928 zio_done(zio_t *zio) 5929 { 5930 /* 5931 * Always attempt to keep stack usage minimal here since 5932 * we can be called recursively up to 19 levels deep. 5933 */ 5934 const uint64_t psize = zio->io_size; 5935 zio_t *pio, *pio_next; 5936 zio_link_t *zl = NULL; 5937 5938 /* 5939 * If our children haven't all completed, 5940 * wait for them and then repeat this pipeline stage. 5941 */ 5942 if (zio_wait_for_children(zio, ZIO_CHILD_ALL_BITS, ZIO_WAIT_DONE)) { 5943 return (NULL); 5944 } 5945 5946 /* 5947 * If the allocation throttle is enabled, then update the accounting. 5948 * We only track child I/Os that are part of an allocating async 5949 * write. We must do this since the allocation is performed 5950 * by the logical I/O but the actual write is done by child I/Os. 5951 */ 5952 if (zio->io_flags & ZIO_FLAG_ALLOC_THROTTLED && 5953 zio->io_child_type == ZIO_CHILD_VDEV) 5954 zio_dva_throttle_done(zio); 5955 5956 for (int c = 0; c < ZIO_CHILD_TYPES; c++) 5957 for (int w = 0; w < ZIO_WAIT_TYPES; w++) 5958 ASSERT0(zio->io_children[c][w]); 5959 5960 if (zio->io_bp != NULL && !BP_IS_EMBEDDED(zio->io_bp)) { 5961 ASSERT(memcmp(zio->io_bp, &zio->io_bp_copy, 5962 sizeof (blkptr_t)) == 0 || 5963 (zio->io_bp == zio_unique_parent(zio)->io_bp)); 5964 if (zio->io_type == ZIO_TYPE_WRITE && !BP_IS_HOLE(zio->io_bp) && 5965 zio->io_bp_override == NULL && 5966 !(zio->io_flags & ZIO_FLAG_IO_REPAIR)) { 5967 ASSERT3U(zio->io_prop.zp_copies, <=, 5968 BP_GET_NDVAS(zio->io_bp)); 5969 ASSERT(BP_COUNT_GANG(zio->io_bp) == 0 || 5970 (BP_COUNT_GANG(zio->io_bp) == 5971 BP_GET_NDVAS(zio->io_bp))); 5972 } 5973 if (zio->io_flags & ZIO_FLAG_NOPWRITE) 5974 VERIFY(BP_EQUAL(zio->io_bp, &zio->io_bp_orig)); 5975 } 5976 5977 /* 5978 * If there were child vdev/gang/ddt errors, they apply to us now. 5979 */ 5980 zio_inherit_child_errors(zio, ZIO_CHILD_VDEV); 5981 zio_inherit_child_errors(zio, ZIO_CHILD_GANG); 5982 zio_inherit_child_errors(zio, ZIO_CHILD_DDT); 5983 5984 /* 5985 * If the I/O on the transformed data was successful, generate any 5986 * checksum reports now while we still have the transformed data. 5987 */ 5988 if (zio->io_error == 0) { 5989 while (zio->io_cksum_report != NULL) { 5990 zio_cksum_report_t *zcr = zio->io_cksum_report; 5991 uint64_t align = zcr->zcr_align; 5992 uint64_t asize = P2ROUNDUP(psize, align); 5993 abd_t *adata = zio->io_abd; 5994 5995 if (adata != NULL && asize != psize) { 5996 adata = abd_alloc(asize, B_TRUE); 5997 abd_copy(adata, zio->io_abd, psize); 5998 abd_zero_off(adata, psize, asize - psize); 5999 } 6000 6001 zio->io_cksum_report = zcr->zcr_next; 6002 zcr->zcr_next = NULL; 6003 zcr->zcr_finish(zcr, adata); 6004 zfs_ereport_free_checksum(zcr); 6005 6006 if (adata != NULL && asize != psize) 6007 abd_free(adata); 6008 } 6009 } 6010 6011 zio_pop_transforms(zio); /* note: may set zio->io_error */ 6012 6013 /* 6014 * During thorough scrub, if the dataset key is not loaded, decryption 6015 * or MAC verification fails with EACCES (spa_do_crypt_abd() and the 6016 * MAC helpers). Since the block's checksum was already successfully 6017 * verified by zio_checksum_verify() before we got here, treat it as 6018 * success and move on; this is as much as we can do without the keys 6019 * loaded. 6020 */ 6021 if (zio->io_error == EACCES && (zio->io_flags & ZIO_FLAG_SCRUB) && 6022 !(zio->io_flags & ZIO_FLAG_RAW)) 6023 zio->io_error = 0; 6024 6025 vdev_stat_update(zio, psize); 6026 6027 /* 6028 * If this I/O is attached to a particular vdev is slow, exceeding 6029 * 30 seconds to complete, post an error described the I/O delay. 6030 * We ignore these errors if the device is currently unavailable. 6031 */ 6032 if (zio->io_delay >= MSEC2NSEC(zio_slow_io_ms)) { 6033 if (zio->io_vd != NULL && !vdev_is_dead(zio->io_vd)) { 6034 /* 6035 * We want to only increment our slow IO counters if 6036 * the IO is valid (i.e. not if the drive is removed). 6037 * 6038 * zfs_ereport_post() will also do these checks, but 6039 * it can also ratelimit and have other failures, so we 6040 * need to increment the slow_io counters independent 6041 * of it. 6042 */ 6043 if (zfs_ereport_is_valid(FM_EREPORT_ZFS_DELAY, 6044 zio->io_spa, zio->io_vd, zio)) { 6045 mutex_enter(&zio->io_vd->vdev_stat_lock); 6046 zio->io_vd->vdev_stat.vs_slow_ios++; 6047 mutex_exit(&zio->io_vd->vdev_stat_lock); 6048 6049 if (zio->io_vd->vdev_slow_io_events) { 6050 (void) zfs_ereport_post( 6051 FM_EREPORT_ZFS_DELAY, 6052 zio->io_spa, zio->io_vd, 6053 &zio->io_bookmark, zio, 0); 6054 } 6055 } 6056 } 6057 } 6058 6059 if (zio->io_error) { 6060 /* 6061 * If this I/O is attached to a particular vdev, 6062 * generate an error message describing the I/O failure 6063 * at the block level. We ignore these errors if the 6064 * device is currently unavailable. 6065 */ 6066 if (zio->io_error != ECKSUM && zio->io_vd != NULL && 6067 !vdev_is_dead(zio->io_vd) && 6068 !(zio->io_post & ZIO_POST_DIO_CHKSUM_ERR)) { 6069 int ret = zfs_ereport_post(FM_EREPORT_ZFS_IO, 6070 zio->io_spa, zio->io_vd, &zio->io_bookmark, zio, 0); 6071 if (ret != EALREADY) { 6072 mutex_enter(&zio->io_vd->vdev_stat_lock); 6073 if (zio->io_type == ZIO_TYPE_READ) 6074 zio->io_vd->vdev_stat.vs_read_errors++; 6075 else if (zio->io_type == ZIO_TYPE_WRITE) 6076 zio->io_vd->vdev_stat.vs_write_errors++; 6077 mutex_exit(&zio->io_vd->vdev_stat_lock); 6078 } 6079 } 6080 6081 if ((zio->io_error == EIO || !(zio->io_flags & 6082 (ZIO_FLAG_SPECULATIVE | ZIO_FLAG_DONT_PROPAGATE))) && 6083 !(zio->io_post & ZIO_POST_DIO_CHKSUM_ERR) && 6084 zio == zio->io_logical) { 6085 /* 6086 * For logical I/O requests, tell the SPA to log the 6087 * error and generate a logical data ereport. 6088 */ 6089 spa_log_error(zio->io_spa, &zio->io_bookmark, 6090 BP_GET_PHYSICAL_BIRTH(zio->io_bp)); 6091 (void) zfs_ereport_post(FM_EREPORT_ZFS_DATA, 6092 zio->io_spa, NULL, &zio->io_bookmark, zio, 0); 6093 } 6094 } 6095 6096 if (zio->io_error && zio == zio->io_logical) { 6097 6098 /* 6099 * A DDT child tried to create a mixed gang/non-gang BP. We're 6100 * going to have to just retry as a non-dedup IO. 6101 */ 6102 if (zio->io_error == EAGAIN && IO_IS_ALLOCATING(zio) && 6103 zio->io_prop.zp_dedup) { 6104 zio->io_post |= ZIO_POST_REEXECUTE; 6105 zio->io_prop.zp_dedup = B_FALSE; 6106 } 6107 /* 6108 * Determine whether zio should be reexecuted. This will 6109 * propagate all the way to the root via zio_notify_parent(). 6110 */ 6111 ASSERT(zio->io_vd == NULL && zio->io_bp != NULL); 6112 ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL); 6113 6114 if (IO_IS_ALLOCATING(zio) && 6115 !(zio->io_flags & ZIO_FLAG_CANFAIL) && 6116 !(zio->io_post & ZIO_POST_DIO_CHKSUM_ERR)) { 6117 if (zio->io_error != ENOSPC) 6118 zio->io_post |= ZIO_POST_REEXECUTE; 6119 else 6120 zio->io_post |= ZIO_POST_SUSPEND; 6121 } 6122 6123 if ((zio->io_type == ZIO_TYPE_READ || 6124 zio->io_type == ZIO_TYPE_FREE) && 6125 !(zio->io_flags & ZIO_FLAG_SCAN_THREAD) && 6126 zio->io_error == ENXIO && 6127 spa_load_state(zio->io_spa) == SPA_LOAD_NONE && 6128 spa_get_failmode(zio->io_spa) != ZIO_FAILURE_MODE_CONTINUE) 6129 zio->io_post |= ZIO_POST_SUSPEND; 6130 6131 if (!(zio->io_flags & ZIO_FLAG_CANFAIL) && 6132 !(zio->io_post & (ZIO_POST_REEXECUTE|ZIO_POST_SUSPEND))) 6133 zio->io_post |= ZIO_POST_SUSPEND; 6134 6135 /* 6136 * Here is a possibly good place to attempt to do 6137 * either combinatorial reconstruction or error correction 6138 * based on checksums. It also might be a good place 6139 * to send out preliminary ereports before we suspend 6140 * processing. 6141 */ 6142 } 6143 6144 /* 6145 * If there were logical child errors, they apply to us now. 6146 * We defer this until now to avoid conflating logical child 6147 * errors with errors that happened to the zio itself when 6148 * updating vdev stats and reporting FMA events above. 6149 */ 6150 zio_inherit_child_errors(zio, ZIO_CHILD_LOGICAL); 6151 6152 if ((zio->io_error || 6153 (zio->io_post & (ZIO_POST_REEXECUTE|ZIO_POST_SUSPEND))) && 6154 IO_IS_ALLOCATING(zio) && zio->io_gang_leader == zio && 6155 !(zio->io_flags & (ZIO_FLAG_IO_REWRITE | ZIO_FLAG_NOPWRITE))) 6156 zio_dva_unallocate(zio, zio->io_gang_tree, zio->io_bp); 6157 6158 zio_gang_tree_free(&zio->io_gang_tree); 6159 6160 /* 6161 * Godfather I/Os should never suspend. 6162 */ 6163 if ((zio->io_flags & ZIO_FLAG_GODFATHER) && 6164 (zio->io_post & ZIO_POST_SUSPEND)) 6165 zio->io_post &= ~ZIO_POST_SUSPEND; 6166 6167 if (zio->io_post & (ZIO_POST_REEXECUTE|ZIO_POST_SUSPEND)) { 6168 /* 6169 * A Direct I/O operation that has a checksum verify error 6170 * should not attempt to reexecute. Instead, the error should 6171 * just be propagated back. 6172 */ 6173 ASSERT0(zio->io_post & ZIO_POST_DIO_CHKSUM_ERR); 6174 6175 /* 6176 * This is a logical I/O that wants to reexecute. 6177 * 6178 * Reexecute is top-down. When an i/o fails, if it's not 6179 * the root, it simply notifies its parent and sticks around. 6180 * The parent, seeing that it still has children in zio_done(), 6181 * does the same. This percolates all the way up to the root. 6182 * The root i/o will reexecute or suspend the entire tree. 6183 * 6184 * This approach ensures that zio_reexecute() honors 6185 * all the original i/o dependency relationships, e.g. 6186 * parents not executing until children are ready. 6187 */ 6188 ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL); 6189 6190 zio->io_gang_leader = NULL; 6191 6192 mutex_enter(&zio->io_lock); 6193 zio->io_state[ZIO_WAIT_DONE] = 1; 6194 mutex_exit(&zio->io_lock); 6195 6196 /* 6197 * "The Godfather" I/O monitors its children but is 6198 * not a true parent to them. It will track them through 6199 * the pipeline but severs its ties whenever they get into 6200 * trouble (e.g. suspended). This allows "The Godfather" 6201 * I/O to return status without blocking. 6202 */ 6203 zl = NULL; 6204 for (pio = zio_walk_parents(zio, &zl); pio != NULL; 6205 pio = pio_next) { 6206 zio_link_t *remove_zl = zl; 6207 pio_next = zio_walk_parents(zio, &zl); 6208 6209 if ((pio->io_flags & ZIO_FLAG_GODFATHER) && 6210 (zio->io_post & ZIO_POST_SUSPEND)) { 6211 zio_remove_child(pio, zio, remove_zl); 6212 /* 6213 * This is a rare code path, so we don't 6214 * bother with the "next" list. 6215 */ 6216 zio_notify_parent(pio, zio, ZIO_WAIT_DONE, 6217 NULL); 6218 } 6219 } 6220 6221 if ((pio = zio_unique_parent(zio)) != NULL) { 6222 /* 6223 * We're not a root i/o, so there's nothing to do 6224 * but notify our parent. Don't propagate errors 6225 * upward since we haven't permanently failed yet. 6226 */ 6227 ASSERT(!(zio->io_flags & ZIO_FLAG_GODFATHER)); 6228 zio->io_flags |= ZIO_FLAG_DONT_PROPAGATE; 6229 /* 6230 * This is a rare code path, so we don't bother with 6231 * the "next" list. 6232 */ 6233 zio_notify_parent(pio, zio, ZIO_WAIT_DONE, NULL); 6234 } else if (zio->io_post & ZIO_POST_SUSPEND) { 6235 /* 6236 * We'd fail again if we reexecuted now, so suspend 6237 * until conditions improve (e.g. device comes online). 6238 */ 6239 zio_suspend(zio->io_spa, zio, ZIO_SUSPEND_IOERR); 6240 } else { 6241 ASSERT(zio->io_post & ZIO_POST_REEXECUTE); 6242 /* 6243 * Reexecution is potentially a huge amount of work. 6244 * Hand it off to the otherwise-unused claim taskq. 6245 */ 6246 spa_taskq_dispatch(zio->io_spa, 6247 ZIO_TYPE_CLAIM, ZIO_TASKQ_ISSUE, 6248 zio_reexecute, zio, B_FALSE); 6249 } 6250 return (NULL); 6251 } 6252 6253 ASSERT(list_is_empty(&zio->io_child_list)); 6254 ASSERT0(zio->io_post & ZIO_POST_REEXECUTE); 6255 ASSERT0(zio->io_post & ZIO_POST_SUSPEND); 6256 ASSERT(zio->io_error == 0 || (zio->io_flags & ZIO_FLAG_CANFAIL)); 6257 6258 /* 6259 * Report any checksum errors, since the I/O is complete. 6260 */ 6261 while (zio->io_cksum_report != NULL) { 6262 zio_cksum_report_t *zcr = zio->io_cksum_report; 6263 zio->io_cksum_report = zcr->zcr_next; 6264 zcr->zcr_next = NULL; 6265 zcr->zcr_finish(zcr, NULL); 6266 zfs_ereport_free_checksum(zcr); 6267 } 6268 6269 if (zio->io_flags & ZIO_FLAG_POSTREAD) { 6270 ASSERT3U(zio->io_type, ==, ZIO_TYPE_WRITE); 6271 zl = NULL; 6272 zio_t *pio = zio_walk_parents(zio, &zl); 6273 blkptr_t *bp = zio->io_bp; 6274 abd_t *abd = abd_alloc_for_io(BP_GET_PSIZE(bp), B_FALSE); 6275 zio_priority_t prio = zio->io_priority == 6276 ZIO_PRIORITY_SYNC_WRITE ? ZIO_PRIORITY_SYNC_READ : 6277 ZIO_PRIORITY_SCRUB; 6278 zio_t *cio = zio_vdev_child_io(pio, zio->io_bp, zio->io_vd, 6279 zio->io_offset, abd, zio->io_size, ZIO_TYPE_READ, prio, 6280 ZIO_FLAG_SCRUB | ZIO_FLAG_RAW | ZIO_FLAG_CANFAIL | 6281 ZIO_FLAG_RESILVER | ZIO_FLAG_DONT_PROPAGATE, 6282 zio_done_postread_done, NULL); 6283 cio->io_flags &= ~ZIO_FLAG_ALLOC_THROTTLED; 6284 zio_nowait(cio); 6285 } 6286 6287 /* 6288 * It is the responsibility of the done callback to ensure that this 6289 * particular zio is no longer discoverable for adoption, and as 6290 * such, cannot acquire any new parents. 6291 */ 6292 if (zio->io_done) 6293 zio->io_done(zio); 6294 6295 mutex_enter(&zio->io_lock); 6296 zio->io_state[ZIO_WAIT_DONE] = 1; 6297 mutex_exit(&zio->io_lock); 6298 6299 /* 6300 * We are done executing this zio. We may want to execute some of its 6301 * parents next. See the comment in zio_notify_parent(). 6302 */ 6303 zio_next_t next; 6304 zio_next_init(&next); 6305 zl = NULL; 6306 for (pio = zio_walk_parents(zio, &zl); pio != NULL; pio = pio_next) { 6307 zio_link_t *remove_zl = zl; 6308 pio_next = zio_walk_parents(zio, &zl); 6309 zio_remove_child(pio, zio, remove_zl); 6310 zio_notify_parent(pio, zio, ZIO_WAIT_DONE, &next); 6311 } 6312 6313 if (zio->io_waiter != NULL) { 6314 mutex_enter(&zio->io_lock); 6315 zio->io_executor = NULL; 6316 cv_broadcast(&zio->io_cv); 6317 mutex_exit(&zio->io_lock); 6318 } else { 6319 zio_destroy(zio); 6320 } 6321 6322 return (next.zn_list); 6323 } 6324 6325 /* 6326 * ========================================================================== 6327 * I/O pipeline definition 6328 * ========================================================================== 6329 */ 6330 static zio_pipe_stage_t *zio_pipeline[] = { 6331 NULL, 6332 zio_read_bp_init, 6333 zio_write_bp_init, 6334 zio_free_bp_init, 6335 zio_issue_async, 6336 zio_write_compress, 6337 zio_encrypt, 6338 zio_checksum_generate, 6339 zio_nop_write, 6340 zio_ddt_read_start, 6341 zio_ddt_read_done, 6342 zio_ddt_write, 6343 zio_ddt_free, 6344 zio_brt_free, 6345 zio_gang_assemble, 6346 zio_gang_issue, 6347 zio_dva_throttle, 6348 zio_dva_allocate, 6349 zio_dva_free, 6350 zio_dva_claim, 6351 zio_ready, 6352 zio_vdev_io_start, 6353 zio_vdev_io_done, 6354 zio_vdev_io_assess, 6355 zio_checksum_verify, 6356 zio_dio_checksum_verify, 6357 zio_done 6358 }; 6359 6360 6361 6362 6363 /* 6364 * Compare two zbookmark_phys_t's to see which we would reach first in a 6365 * pre-order traversal of the object tree. 6366 * 6367 * This is simple in every case aside from the meta-dnode object. For all other 6368 * objects, we traverse them in order (object 1 before object 2, and so on). 6369 * However, all of these objects are traversed while traversing object 0, since 6370 * the data it points to is the list of objects. Thus, we need to convert to a 6371 * canonical representation so we can compare meta-dnode bookmarks to 6372 * non-meta-dnode bookmarks. 6373 * 6374 * We do this by calculating "equivalents" for each field of the zbookmark. 6375 * zbookmarks outside of the meta-dnode use their own object and level, and 6376 * calculate the level 0 equivalent (the first L0 blkid that is contained in the 6377 * blocks this bookmark refers to) by multiplying their blkid by their span 6378 * (the number of L0 blocks contained within one block at their level). 6379 * zbookmarks inside the meta-dnode calculate their object equivalent 6380 * (which is L0equiv * dnodes per data block), use 0 for their L0equiv, and use 6381 * level + 1<<31 (any value larger than a level could ever be) for their level. 6382 * This causes them to always compare before a bookmark in their object 6383 * equivalent, compare appropriately to bookmarks in other objects, and to 6384 * compare appropriately to other bookmarks in the meta-dnode. 6385 */ 6386 int 6387 zbookmark_compare(uint16_t dbss1, uint8_t ibs1, uint16_t dbss2, uint8_t ibs2, 6388 const zbookmark_phys_t *zb1, const zbookmark_phys_t *zb2) 6389 { 6390 /* 6391 * These variables represent the "equivalent" values for the zbookmark, 6392 * after converting zbookmarks inside the meta dnode to their 6393 * normal-object equivalents. 6394 */ 6395 uint64_t zb1obj, zb2obj; 6396 uint64_t zb1L0, zb2L0; 6397 uint64_t zb1level, zb2level; 6398 6399 if (zb1->zb_object == zb2->zb_object && 6400 zb1->zb_level == zb2->zb_level && 6401 zb1->zb_blkid == zb2->zb_blkid) 6402 return (0); 6403 6404 if (zb1->zb_level < 0 || zb2->zb_level < 0) { 6405 /* 6406 * "Negative" levels are ZB_ROOT_LEVEL, ZB_ZIL_LEVEL or 6407 * ZB_DNODE_LEVEL, and represent some sort of auxiliary dataset 6408 * block or object. In this case, we're usually being called 6409 * from dsl_scan or dmu_traverse. 6410 * 6411 * These "levels" are more like a "type" signal, not directly 6412 * comparable, but we have to do something. So we order them in 6413 * the order we would see them during a typical scan or 6414 * traverse: 6415 * 6416 * - ZB_ROOT_LEVEL: the "top" block carrying the dataset head 6417 * - ZB_ZIL_LEVEL: the head ZIL block attached to the dataset 6418 * - ZB_DNODE_LEVEL: "virtual" position representing an 6419 * entire object. Sorts ahead of the true 6420 * data blocks for the object. 6421 * - level >= 0: data blocks 6422 * 6423 * We work through these cases from top to bottom, with 6424 * appropriate tiebreaks for each kind. 6425 */ 6426 6427 /* 6428 * Root level wins. It shouldn't be possible for both to be the 6429 * root level in this per-dataset tree, and there's no obvious 6430 * tiebreaker, but we handle it as a defensive measure. 6431 */ 6432 if (zb1->zb_level == ZB_ROOT_LEVEL && 6433 zb2->zb_level == ZB_ROOT_LEVEL) 6434 return (TREE_PCMP(zb1, zb2)); 6435 if (zb1->zb_level == ZB_ROOT_LEVEL) 6436 return (-1); 6437 if (zb2->zb_level == ZB_ROOT_LEVEL) 6438 return (1); 6439 6440 /* ZIL bookmarks have valid blkid, so the earlier one wins. */ 6441 if (zb1->zb_level == ZB_ZIL_LEVEL && 6442 zb2->zb_level == ZB_ZIL_LEVEL) 6443 return (TREE_CMP(zb1->zb_blkid, zb2->zb_blkid)); 6444 if (zb1->zb_level == ZB_ZIL_LEVEL) 6445 return (-1); 6446 if (zb2->zb_level == ZB_ZIL_LEVEL) 6447 return (1); 6448 6449 /* 6450 * If we get this far, then at least one is ZB_DNODE_LEVEL, and 6451 * the other is either ZB_DNODE_LEVEL or a data block. 6452 * Regardless, the one with the lower-numbered object wins - 6453 * earler ZB_DNODE_LEVEL beats later, but data block on earlier 6454 * objects beats the virtual marker on later objects. 6455 */ 6456 int cmp = TREE_CMP(zb1->zb_object, zb2->zb_object); 6457 if (cmp != 0) 6458 return (cmp); 6459 6460 if (zb1->zb_level == ZB_DNODE_LEVEL) 6461 return (-1); 6462 return (1); 6463 } 6464 6465 IMPLY(zb1->zb_level > 0, ibs1 >= SPA_MINBLOCKSHIFT); 6466 IMPLY(zb2->zb_level > 0, ibs2 >= SPA_MINBLOCKSHIFT); 6467 6468 /* 6469 * BP_SPANB calculates the span in blocks. 6470 */ 6471 zb1L0 = (zb1->zb_blkid) * BP_SPANB(ibs1, zb1->zb_level); 6472 zb2L0 = (zb2->zb_blkid) * BP_SPANB(ibs2, zb2->zb_level); 6473 6474 if (zb1->zb_object == DMU_META_DNODE_OBJECT) { 6475 zb1obj = zb1L0 * (dbss1 << (SPA_MINBLOCKSHIFT - DNODE_SHIFT)); 6476 zb1L0 = 0; 6477 zb1level = zb1->zb_level + COMPARE_META_LEVEL; 6478 } else { 6479 zb1obj = zb1->zb_object; 6480 zb1level = zb1->zb_level; 6481 } 6482 6483 if (zb2->zb_object == DMU_META_DNODE_OBJECT) { 6484 zb2obj = zb2L0 * (dbss2 << (SPA_MINBLOCKSHIFT - DNODE_SHIFT)); 6485 zb2L0 = 0; 6486 zb2level = zb2->zb_level + COMPARE_META_LEVEL; 6487 } else { 6488 zb2obj = zb2->zb_object; 6489 zb2level = zb2->zb_level; 6490 } 6491 6492 /* Now that we have a canonical representation, do the comparison. */ 6493 if (zb1obj != zb2obj) 6494 return (zb1obj < zb2obj ? -1 : 1); 6495 else if (zb1L0 != zb2L0) 6496 return (zb1L0 < zb2L0 ? -1 : 1); 6497 else if (zb1level != zb2level) 6498 return (zb1level > zb2level ? -1 : 1); 6499 /* 6500 * This can (theoretically) happen if the bookmarks have the same object 6501 * and level, but different blkids, if the block sizes are not the same. 6502 * There is presently no way to change the indirect block sizes 6503 */ 6504 return (0); 6505 } 6506 6507 /* 6508 * This function checks the following: given that last_block is the place that 6509 * our traversal stopped last time, does that guarantee that we've visited 6510 * every node under subtree_root? Therefore, we can't just use the raw output 6511 * of zbookmark_compare. We have to pass in a modified version of 6512 * subtree_root; by incrementing the block id, and then checking whether 6513 * last_block is before or equal to that, we can tell whether or not having 6514 * visited last_block implies that all of subtree_root's children have been 6515 * visited. 6516 */ 6517 boolean_t 6518 zbookmark_subtree_completed(const dnode_phys_t *dnp, 6519 const zbookmark_phys_t *subtree_root, const zbookmark_phys_t *last_block) 6520 { 6521 zbookmark_phys_t mod_zb = *subtree_root; 6522 mod_zb.zb_blkid++; 6523 ASSERT0(last_block->zb_level); 6524 6525 /* The objset_phys_t isn't before anything. */ 6526 if (dnp == NULL) 6527 return (B_FALSE); 6528 6529 /* 6530 * We pass in 1ULL << (DNODE_BLOCK_SHIFT - SPA_MINBLOCKSHIFT) for the 6531 * data block size in sectors, because that variable is only used if 6532 * the bookmark refers to a block in the meta-dnode. Since we don't 6533 * know without examining it what object it refers to, and there's no 6534 * harm in passing in this value in other cases, we always pass it in. 6535 * 6536 * We pass in 0 for the indirect block size shift because zb2 must be 6537 * level 0. The indirect block size is only used to calculate the span 6538 * of the bookmark, but since the bookmark must be level 0, the span is 6539 * always 1, so the math works out. 6540 * 6541 * If you make changes to how the zbookmark_compare code works, be sure 6542 * to make sure that this code still works afterwards. 6543 */ 6544 return (zbookmark_compare(dnp->dn_datablkszsec, dnp->dn_indblkshift, 6545 1ULL << (DNODE_BLOCK_SHIFT - SPA_MINBLOCKSHIFT), 0, &mod_zb, 6546 last_block) <= 0); 6547 } 6548 6549 /* 6550 * This function is similar to zbookmark_subtree_completed(), but returns true 6551 * if subtree_root is equal or ahead of last_block, i.e. still to be done. 6552 */ 6553 boolean_t 6554 zbookmark_subtree_tbd(const dnode_phys_t *dnp, 6555 const zbookmark_phys_t *subtree_root, const zbookmark_phys_t *last_block) 6556 { 6557 ASSERT0(last_block->zb_level); 6558 if (dnp == NULL) 6559 return (B_FALSE); 6560 return (zbookmark_compare(dnp->dn_datablkszsec, dnp->dn_indblkshift, 6561 1ULL << (DNODE_BLOCK_SHIFT - SPA_MINBLOCKSHIFT), 0, subtree_root, 6562 last_block) >= 0); 6563 } 6564 6565 EXPORT_SYMBOL(zio_type_name); 6566 EXPORT_SYMBOL(zio_buf_alloc); 6567 EXPORT_SYMBOL(zio_data_buf_alloc); 6568 EXPORT_SYMBOL(zio_buf_free); 6569 EXPORT_SYMBOL(zio_data_buf_free); 6570 6571 ZFS_MODULE_PARAM(zfs_zio, zio_, slow_io_ms, INT, ZMOD_RW, 6572 "Max I/O completion time (milliseconds) before marking it as slow"); 6573 6574 ZFS_MODULE_PARAM(zfs_zio, zio_, requeue_io_start_cut_in_line, INT, ZMOD_RW, 6575 "Prioritize requeued I/O"); 6576 6577 ZFS_MODULE_PARAM(zfs_zio, zio_, batch_enabled, INT, ZMOD_RW, 6578 "Batch processing of vdev children I/O completions"); 6579 6580 ZFS_MODULE_PARAM(zfs, zfs_, sync_pass_deferred_free, UINT, ZMOD_RW, 6581 "Defer frees starting in this pass"); 6582 6583 ZFS_MODULE_PARAM(zfs, zfs_, sync_pass_dont_compress, UINT, ZMOD_RW, 6584 "Don't compress starting in this pass"); 6585 6586 ZFS_MODULE_PARAM(zfs, zfs_, sync_pass_rewrite, UINT, ZMOD_RW, 6587 "Rewrite new bps starting in this pass"); 6588 6589 ZFS_MODULE_PARAM(zfs_zio, zio_, dva_throttle_enabled, INT, ZMOD_RW, 6590 "Throttle block allocations in the ZIO pipeline"); 6591 6592 ZFS_MODULE_PARAM(zfs_zio, zio_, deadman_log_all, INT, ZMOD_RW, 6593 "Log all slow ZIOs, not just those with vdevs"); 6594