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) 2018, Joyent, Inc. 15 * Copyright (c) 2011, 2020, Delphix. All rights reserved. 16 * Copyright (c) 2014, Saso Kiselkov. All rights reserved. 17 * Copyright (c) 2017, Nexenta Systems, Inc. All rights reserved. 18 * Copyright (c) 2019, loli10K <ezomori.nozomu@gmail.com>. All rights reserved. 19 * Copyright (c) 2020, George Amanakis. All rights reserved. 20 * Copyright (c) 2019, 2024, 2025, Klara, Inc. 21 * Copyright (c) 2019, Allan Jude 22 * Copyright (c) 2020, The FreeBSD Foundation [1] 23 * Copyright (c) 2021, 2024 by George Melikov. All rights reserved. 24 * 25 * [1] Portions of this software were developed by Allan Jude 26 * under sponsorship from the FreeBSD Foundation. 27 */ 28 29 /* 30 * DVA-based Adjustable Replacement Cache 31 * 32 * While much of the theory of operation used here is 33 * based on the self-tuning, low overhead replacement cache 34 * presented by Megiddo and Modha at FAST 2003, there are some 35 * significant differences: 36 * 37 * 1. The Megiddo and Modha model assumes any page is evictable. 38 * Pages in its cache cannot be "locked" into memory. This makes 39 * the eviction algorithm simple: evict the last page in the list. 40 * This also make the performance characteristics easy to reason 41 * about. Our cache is not so simple. At any given moment, some 42 * subset of the blocks in the cache are un-evictable because we 43 * have handed out a reference to them. Blocks are only evictable 44 * when there are no external references active. This makes 45 * eviction far more problematic: we choose to evict the evictable 46 * blocks that are the "lowest" in the list. 47 * 48 * There are times when it is not possible to evict the requested 49 * space. In these circumstances we are unable to adjust the cache 50 * size. To prevent the cache growing unbounded at these times we 51 * implement a "cache throttle" that slows the flow of new data 52 * into the cache until we can make space available. 53 * 54 * 2. The Megiddo and Modha model assumes a fixed cache size. 55 * Pages are evicted when the cache is full and there is a cache 56 * miss. Our model has a variable sized cache. It grows with 57 * high use, but also tries to react to memory pressure from the 58 * operating system: decreasing its size when system memory is 59 * tight. 60 * 61 * 3. The Megiddo and Modha model assumes a fixed page size. All 62 * elements of the cache are therefore exactly the same size. So 63 * when adjusting the cache size following a cache miss, its simply 64 * a matter of choosing a single page to evict. In our model, we 65 * have variable sized cache blocks (ranging from 512 bytes to 66 * 128K bytes). We therefore choose a set of blocks to evict to make 67 * space for a cache miss that approximates as closely as possible 68 * the space used by the new block. 69 * 70 * See also: "ARC: A Self-Tuning, Low Overhead Replacement Cache" 71 * by N. Megiddo & D. Modha, FAST 2003 72 */ 73 74 /* 75 * The locking model: 76 * 77 * A new reference to a cache buffer can be obtained in two 78 * ways: 1) via a hash table lookup using the DVA as a key, 79 * or 2) via one of the ARC lists. The arc_read() interface 80 * uses method 1, while the internal ARC algorithms for 81 * adjusting the cache use method 2. We therefore provide two 82 * types of locks: 1) the hash table lock array, and 2) the 83 * ARC list locks. 84 * 85 * Buffers do not have their own mutexes, rather they rely on the 86 * hash table mutexes for the bulk of their protection (i.e. most 87 * fields in the arc_buf_hdr_t are protected by these mutexes). 88 * 89 * buf_hash_find() returns the appropriate mutex (held) when it 90 * locates the requested buffer in the hash table. It returns 91 * NULL for the mutex if the buffer was not in the table. 92 * 93 * buf_hash_remove() expects the appropriate hash mutex to be 94 * already held before it is invoked. 95 * 96 * Each ARC state also has a mutex which is used to protect the 97 * buffer list associated with the state. When attempting to 98 * obtain a hash table lock while holding an ARC list lock you 99 * must use: mutex_tryenter() to avoid deadlock. Also note that 100 * the active state mutex must be held before the ghost state mutex. 101 * 102 * It as also possible to register a callback which is run when the 103 * metadata limit is reached and no buffers can be safely evicted. In 104 * this case the arc user should drop a reference on some arc buffers so 105 * they can be reclaimed. For example, when using the ZPL each dentry 106 * holds a references on a znode. These dentries must be pruned before 107 * the arc buffer holding the znode can be safely evicted. 108 * 109 * Note that the majority of the performance stats are manipulated 110 * with atomic operations. 111 * 112 * The L2ARC uses the l2ad_mtx on each vdev for the following: 113 * 114 * - L2ARC buflist creation 115 * - L2ARC buflist eviction 116 * - L2ARC write completion, which walks L2ARC buflists 117 * - ARC header destruction, as it removes from L2ARC buflists 118 * - ARC header release, as it removes from L2ARC buflists 119 */ 120 121 /* 122 * ARC operation: 123 * 124 * Every block that is in the ARC is tracked by an arc_buf_hdr_t structure. 125 * This structure can point either to a block that is still in the cache or to 126 * one that is only accessible in an L2 ARC device, or it can provide 127 * information about a block that was recently evicted. If a block is 128 * only accessible in the L2ARC, then the arc_buf_hdr_t only has enough 129 * information to retrieve it from the L2ARC device. This information is 130 * stored in the l2arc_buf_hdr_t sub-structure of the arc_buf_hdr_t. A block 131 * that is in this state cannot access the data directly. 132 * 133 * Blocks that are actively being referenced or have not been evicted 134 * are cached in the L1ARC. The L1ARC (l1arc_buf_hdr_t) is a structure within 135 * the arc_buf_hdr_t that will point to the data block in memory. A block can 136 * only be read by a consumer if it has an l1arc_buf_hdr_t. The L1ARC 137 * caches data in two ways -- in a list of ARC buffers (arc_buf_t) and 138 * also in the arc_buf_hdr_t's private physical data block pointer (b_pabd). 139 * 140 * The L1ARC's data pointer may or may not be uncompressed. The ARC has the 141 * ability to store the physical data (b_pabd) associated with the DVA of the 142 * arc_buf_hdr_t. Since the b_pabd is a copy of the on-disk physical block, 143 * it will match its on-disk compression characteristics. This behavior can be 144 * disabled by setting 'zfs_compressed_arc_enabled' to B_FALSE. When the 145 * compressed ARC functionality is disabled, the b_pabd will point to an 146 * uncompressed version of the on-disk data. 147 * 148 * Data in the L1ARC is not accessed by consumers of the ARC directly. Each 149 * arc_buf_hdr_t can have multiple ARC buffers (arc_buf_t) which reference it. 150 * Each ARC buffer (arc_buf_t) is being actively accessed by a specific ARC 151 * consumer. The ARC will provide references to this data and will keep it 152 * cached until it is no longer in use. The ARC caches only the L1ARC's physical 153 * data block and will evict any arc_buf_t that is no longer referenced. The 154 * amount of memory consumed by the arc_buf_ts' data buffers can be seen via the 155 * "overhead_size" kstat. 156 * 157 * Depending on the consumer, an arc_buf_t can be requested in uncompressed or 158 * compressed form. The typical case is that consumers will want uncompressed 159 * data, and when that happens a new data buffer is allocated where the data is 160 * decompressed for them to use. Currently the only consumer who wants 161 * compressed arc_buf_t's is "zfs send", when it streams data exactly as it 162 * exists on disk. When this happens, the arc_buf_t's data buffer is shared 163 * with the arc_buf_hdr_t. 164 * 165 * Here is a diagram showing an arc_buf_hdr_t referenced by two arc_buf_t's. The 166 * first one is owned by a compressed send consumer (and therefore references 167 * the same compressed data buffer as the arc_buf_hdr_t) and the second could be 168 * used by any other consumer (and has its own uncompressed copy of the data 169 * buffer). 170 * 171 * arc_buf_hdr_t 172 * +-----------+ 173 * | fields | 174 * | common to | 175 * | L1- and | 176 * | L2ARC | 177 * +-----------+ 178 * | l2arc_buf_hdr_t 179 * | | 180 * +-----------+ 181 * | l1arc_buf_hdr_t 182 * | | arc_buf_t 183 * | b_buf +------------>+-----------+ arc_buf_t 184 * | b_pabd +-+ |b_next +---->+-----------+ 185 * +-----------+ | |-----------| |b_next +-->NULL 186 * | |b_comp = T | +-----------+ 187 * | |b_data +-+ |b_comp = F | 188 * | +-----------+ | |b_data +-+ 189 * +->+------+ | +-----------+ | 190 * compressed | | | | 191 * data | |<--------------+ | uncompressed 192 * +------+ compressed, | data 193 * shared +-->+------+ 194 * data | | 195 * | | 196 * +------+ 197 * 198 * When a consumer reads a block, the ARC must first look to see if the 199 * arc_buf_hdr_t is cached. If the hdr is cached then the ARC allocates a new 200 * arc_buf_t and either copies uncompressed data into a new data buffer from an 201 * existing uncompressed arc_buf_t, decompresses the hdr's b_pabd buffer into a 202 * new data buffer, or shares the hdr's b_pabd buffer, depending on whether the 203 * hdr is compressed and the desired compression characteristics of the 204 * arc_buf_t consumer. If the arc_buf_t ends up sharing data with the 205 * arc_buf_hdr_t and both of them are uncompressed then the arc_buf_t must be 206 * the last buffer in the hdr's b_buf list, however a shared compressed buf can 207 * be anywhere in the hdr's list. 208 * 209 * The diagram below shows an example of an uncompressed ARC hdr that is 210 * sharing its data with an arc_buf_t (note that the shared uncompressed buf is 211 * the last element in the buf list): 212 * 213 * arc_buf_hdr_t 214 * +-----------+ 215 * | | 216 * | | 217 * | | 218 * +-----------+ 219 * l2arc_buf_hdr_t| | 220 * | | 221 * +-----------+ 222 * l1arc_buf_hdr_t| | 223 * | | arc_buf_t (shared) 224 * | b_buf +------------>+---------+ arc_buf_t 225 * | | |b_next +---->+---------+ 226 * | b_pabd +-+ |---------| |b_next +-->NULL 227 * +-----------+ | | | +---------+ 228 * | |b_data +-+ | | 229 * | +---------+ | |b_data +-+ 230 * +->+------+ | +---------+ | 231 * | | | | 232 * uncompressed | | | | 233 * data +------+ | | 234 * ^ +->+------+ | 235 * | uncompressed | | | 236 * | data | | | 237 * | +------+ | 238 * +---------------------------------+ 239 * 240 * Writing to the ARC requires that the ARC first discard the hdr's b_pabd 241 * since the physical block is about to be rewritten. The new data contents 242 * will be contained in the arc_buf_t. As the I/O pipeline performs the write, 243 * it may compress the data before writing it to disk. The ARC will be called 244 * with the transformed data and will memcpy the transformed on-disk block into 245 * a newly allocated b_pabd. Writes are always done into buffers which have 246 * either been loaned (and hence are new and don't have other readers) or 247 * buffers which have been released (and hence have their own hdr, if there 248 * were originally other readers of the buf's original hdr). This ensures that 249 * the ARC only needs to update a single buf and its hdr after a write occurs. 250 * 251 * When the L2ARC is in use, it will also take advantage of the b_pabd. The 252 * L2ARC will always write the contents of b_pabd to the L2ARC. This means 253 * that when compressed ARC is enabled that the L2ARC blocks are identical 254 * to the on-disk block in the main data pool. This provides a significant 255 * advantage since the ARC can leverage the bp's checksum when reading from the 256 * L2ARC to determine if the contents are valid. However, if the compressed 257 * ARC is disabled, then the L2ARC's block must be transformed to look 258 * like the physical block in the main data pool before comparing the 259 * checksum and determining its validity. 260 * 261 * The L1ARC has a slightly different system for storing encrypted data. 262 * Raw (encrypted + possibly compressed) data has a few subtle differences from 263 * data that is just compressed. The biggest difference is that it is not 264 * possible to decrypt encrypted data (or vice-versa) if the keys aren't loaded. 265 * The other difference is that encryption cannot be treated as a suggestion. 266 * If a caller would prefer compressed data, but they actually wind up with 267 * uncompressed data the worst thing that could happen is there might be a 268 * performance hit. If the caller requests encrypted data, however, we must be 269 * sure they actually get it or else secret information could be leaked. Raw 270 * data is stored in hdr->b_crypt_hdr.b_rabd. An encrypted header, therefore, 271 * may have both an encrypted version and a decrypted version of its data at 272 * once. When a caller needs a raw arc_buf_t, it is allocated and the data is 273 * copied out of this header. To avoid complications with b_pabd, raw buffers 274 * cannot be shared. 275 */ 276 277 #include <sys/spa.h> 278 #include <sys/zio.h> 279 #include <sys/spa_impl.h> 280 #include <sys/zio_compress.h> 281 #include <sys/zio_checksum.h> 282 #include <sys/zfs_context.h> 283 #include <sys/arc.h> 284 #include <sys/zfs_refcount.h> 285 #include <sys/vdev.h> 286 #include <sys/vdev_impl.h> 287 #include <sys/dsl_pool.h> 288 #include <sys/multilist.h> 289 #include <sys/abd.h> 290 #include <sys/dbuf.h> 291 #include <sys/zil.h> 292 #include <sys/fm/fs/zfs.h> 293 #include <sys/callb.h> 294 #include <sys/kstat.h> 295 #include <sys/zthr.h> 296 #include <zfs_fletcher.h> 297 #include <sys/arc_impl.h> 298 #include <sys/trace_zfs.h> 299 #include <sys/aggsum.h> 300 #include <sys/wmsum.h> 301 #include <cityhash.h> 302 #include <sys/vdev_trim.h> 303 #include <sys/zfs_racct.h> 304 #include <sys/zstd/zstd.h> 305 306 #ifndef _KERNEL 307 /* set with ZFS_DEBUG=watch, to enable watchpoints on frozen buffers */ 308 boolean_t arc_watch = B_FALSE; 309 #endif 310 311 /* 312 * This thread's job is to keep enough free memory in the system, by 313 * calling arc_kmem_reap_soon() plus arc_reduce_target_size(), which improves 314 * arc_available_memory(). 315 */ 316 static zthr_t *arc_reap_zthr; 317 318 /* 319 * This thread's job is to keep arc_size under arc_c, by calling 320 * arc_evict(), which improves arc_is_overflowing(). 321 */ 322 static zthr_t *arc_evict_zthr; 323 static arc_buf_hdr_t **arc_state_evict_markers; 324 static int arc_state_evict_marker_count; 325 326 static kmutex_t arc_evict_lock; 327 static boolean_t arc_evict_needed = B_FALSE; 328 static clock_t arc_last_uncached_flush; 329 330 static taskq_t *arc_evict_taskq; 331 static struct evict_arg *arc_evict_arg; 332 333 /* 334 * Count of bytes evicted since boot. 335 */ 336 static uint64_t arc_evict_count; 337 338 /* 339 * List of arc_evict_waiter_t's, representing threads waiting for the 340 * arc_evict_count to reach specific values. 341 */ 342 static list_t arc_evict_waiters; 343 344 /* 345 * When arc_is_overflowing(), arc_get_data_impl() waits for this percent of 346 * the requested amount of data to be evicted. For example, by default for 347 * every 2KB that's evicted, 1KB of it may be "reused" by a new allocation. 348 * Since this is above 100%, it ensures that progress is made towards getting 349 * arc_size under arc_c. Since this is finite, it ensures that allocations 350 * can still happen, even during the potentially long time that arc_size is 351 * more than arc_c. 352 */ 353 static uint_t zfs_arc_eviction_pct = 200; 354 355 /* 356 * The number of headers to evict in arc_evict_state_impl() before 357 * dropping the sublist lock and evicting from another sublist. A lower 358 * value means we're more likely to evict the "correct" header (i.e. the 359 * oldest header in the arc state), but comes with higher overhead 360 * (i.e. more invocations of arc_evict_state_impl()). 361 */ 362 static uint_t zfs_arc_evict_batch_limit = 10; 363 364 /* 365 * Number batches to process per parallel eviction task under heavy load to 366 * reduce number of context switches. 367 */ 368 static uint_t zfs_arc_evict_batches_limit = 5; 369 370 /* number of seconds before growing cache again */ 371 uint_t arc_grow_retry = 5; 372 373 /* 374 * Minimum time between calls to arc_kmem_reap_soon(). 375 */ 376 static const int arc_kmem_cache_reap_retry_ms = 1000; 377 378 /* shift of arc_c for calculating overflow limit in arc_get_data_impl */ 379 static int zfs_arc_overflow_shift = 8; 380 381 /* log2(fraction of arc to reclaim) */ 382 uint_t arc_shrink_shift = 7; 383 384 #ifdef _KERNEL 385 /* percent of pagecache to reclaim arc to */ 386 uint_t zfs_arc_pc_percent = 0; 387 #endif 388 389 /* 390 * log2(fraction of ARC which must be free to allow growing). 391 * I.e. If there is less than arc_c >> zfs_arc_no_grow_shift free memory, 392 * when reading a new block into the ARC, we will evict an equal-sized block 393 * from the ARC. 394 * 395 * This must be less than arc_shrink_shift, so that when we shrink the ARC, 396 * we will still not allow it to grow. 397 */ 398 uint_t zfs_arc_no_grow_shift = 5; 399 400 401 /* 402 * minimum lifespan of a prefetch block in clock ticks 403 * (initialized in arc_init()) 404 */ 405 static uint_t arc_min_prefetch; 406 static uint_t arc_min_prescient_prefetch; 407 408 /* 409 * If this percent of memory is free, don't throttle. 410 */ 411 uint_t arc_lotsfree_percent = 10; 412 413 /* 414 * The arc has filled available memory and has now warmed up. 415 */ 416 boolean_t arc_warm; 417 418 /* 419 * These tunables are for performance analysis. 420 */ 421 uint64_t zfs_arc_max = 0; 422 uint64_t zfs_arc_min = 0; 423 static uint64_t zfs_arc_dnode_limit = 0; 424 static uint_t zfs_arc_dnode_reduce_percent = 10; 425 static uint_t zfs_arc_grow_retry = 0; 426 static uint_t zfs_arc_shrink_shift = 0; 427 uint_t zfs_arc_average_blocksize = 8 * 1024; /* 8KB */ 428 429 /* 430 * ARC dirty data constraints for arc_tempreserve_space() throttle: 431 * * total dirty data limit 432 * * anon block dirty limit 433 * * each pool's anon allowance 434 */ 435 static const unsigned long zfs_arc_dirty_limit_percent = 50; 436 static const unsigned long zfs_arc_anon_limit_percent = 25; 437 static const unsigned long zfs_arc_pool_dirty_percent = 20; 438 439 /* 440 * Enable or disable compressed arc buffers. 441 */ 442 int zfs_compressed_arc_enabled = B_TRUE; 443 444 /* 445 * Balance between metadata and data on ghost hits. Values above 100 446 * increase metadata caching by proportionally reducing effect of ghost 447 * data hits on target data/metadata rate. 448 */ 449 static uint_t zfs_arc_meta_balance = 500; 450 451 /* 452 * Percentage that can be consumed by dnodes of ARC meta buffers. 453 */ 454 static uint_t zfs_arc_dnode_limit_percent = 10; 455 456 /* 457 * These tunables are Linux-specific 458 */ 459 static uint64_t zfs_arc_sys_free = 0; 460 static uint_t zfs_arc_min_prefetch_ms = 0; 461 static uint_t zfs_arc_min_prescient_prefetch_ms = 0; 462 static uint_t zfs_arc_lotsfree_percent = 10; 463 464 /* 465 * Number of arc_prune threads 466 */ 467 static int zfs_arc_prune_task_threads = 1; 468 469 /* Used by spa_export/spa_destroy to flush the arc asynchronously */ 470 static taskq_t *arc_flush_taskq; 471 472 /* 473 * Controls the number of ARC eviction threads to dispatch sublists to. 474 * 475 * Possible values: 476 * 0 (auto) compute the number of threads using a logarithmic formula. 477 * 1 (disabled) one thread - parallel eviction is disabled. 478 * 2+ (manual) set the number manually. 479 * 480 * See arc_evict_thread_init() for how "auto" is computed. 481 */ 482 static uint_t zfs_arc_evict_threads = 0; 483 484 /* The 7 states: */ 485 arc_state_t ARC_anon; 486 arc_state_t ARC_mru; 487 arc_state_t ARC_mru_ghost; 488 arc_state_t ARC_mfu; 489 arc_state_t ARC_mfu_ghost; 490 arc_state_t ARC_l2c_only; 491 arc_state_t ARC_uncached; 492 493 arc_stats_t arc_stats = { 494 { "hits", KSTAT_DATA_UINT64 }, 495 { "iohits", KSTAT_DATA_UINT64 }, 496 { "misses", KSTAT_DATA_UINT64 }, 497 { "demand_data_hits", KSTAT_DATA_UINT64 }, 498 { "demand_data_iohits", KSTAT_DATA_UINT64 }, 499 { "demand_data_misses", KSTAT_DATA_UINT64 }, 500 { "demand_metadata_hits", KSTAT_DATA_UINT64 }, 501 { "demand_metadata_iohits", KSTAT_DATA_UINT64 }, 502 { "demand_metadata_misses", KSTAT_DATA_UINT64 }, 503 { "prefetch_data_hits", KSTAT_DATA_UINT64 }, 504 { "prefetch_data_iohits", KSTAT_DATA_UINT64 }, 505 { "prefetch_data_misses", KSTAT_DATA_UINT64 }, 506 { "prefetch_metadata_hits", KSTAT_DATA_UINT64 }, 507 { "prefetch_metadata_iohits", KSTAT_DATA_UINT64 }, 508 { "prefetch_metadata_misses", KSTAT_DATA_UINT64 }, 509 { "mru_hits", KSTAT_DATA_UINT64 }, 510 { "mru_ghost_hits", KSTAT_DATA_UINT64 }, 511 { "mfu_hits", KSTAT_DATA_UINT64 }, 512 { "mfu_ghost_hits", KSTAT_DATA_UINT64 }, 513 { "uncached_hits", KSTAT_DATA_UINT64 }, 514 { "deleted", KSTAT_DATA_UINT64 }, 515 { "mutex_miss", KSTAT_DATA_UINT64 }, 516 { "access_skip", KSTAT_DATA_UINT64 }, 517 { "evict_skip", KSTAT_DATA_UINT64 }, 518 { "evict_not_enough", KSTAT_DATA_UINT64 }, 519 { "evict_l2_cached", KSTAT_DATA_UINT64 }, 520 { "evict_l2_eligible", KSTAT_DATA_UINT64 }, 521 { "evict_l2_eligible_mfu", KSTAT_DATA_UINT64 }, 522 { "evict_l2_eligible_mru", KSTAT_DATA_UINT64 }, 523 { "evict_l2_ineligible", KSTAT_DATA_UINT64 }, 524 { "evict_l2_skip", KSTAT_DATA_UINT64 }, 525 { "hash_elements", KSTAT_DATA_UINT64 }, 526 { "hash_elements_max", KSTAT_DATA_UINT64 }, 527 { "hash_collisions", KSTAT_DATA_UINT64 }, 528 { "hash_chains", KSTAT_DATA_UINT64 }, 529 { "hash_chain_max", KSTAT_DATA_UINT64 }, 530 { "meta", KSTAT_DATA_UINT64 }, 531 { "pd", KSTAT_DATA_UINT64 }, 532 { "pm", KSTAT_DATA_UINT64 }, 533 { "c", KSTAT_DATA_UINT64 }, 534 { "c_min", KSTAT_DATA_UINT64 }, 535 { "c_max", KSTAT_DATA_UINT64 }, 536 { "size", KSTAT_DATA_UINT64 }, 537 { "compressed_size", KSTAT_DATA_UINT64 }, 538 { "uncompressed_size", KSTAT_DATA_UINT64 }, 539 { "overhead_size", KSTAT_DATA_UINT64 }, 540 { "hdr_size", KSTAT_DATA_UINT64 }, 541 { "data_size", KSTAT_DATA_UINT64 }, 542 { "metadata_size", KSTAT_DATA_UINT64 }, 543 { "dbuf_size", KSTAT_DATA_UINT64 }, 544 { "dnode_size", KSTAT_DATA_UINT64 }, 545 { "bonus_size", KSTAT_DATA_UINT64 }, 546 #if defined(COMPAT_FREEBSD11) 547 { "other_size", KSTAT_DATA_UINT64 }, 548 #endif 549 { "anon_size", KSTAT_DATA_UINT64 }, 550 { "anon_data", KSTAT_DATA_UINT64 }, 551 { "anon_metadata", KSTAT_DATA_UINT64 }, 552 { "anon_evictable_data", KSTAT_DATA_UINT64 }, 553 { "anon_evictable_metadata", KSTAT_DATA_UINT64 }, 554 { "mru_size", KSTAT_DATA_UINT64 }, 555 { "mru_data", KSTAT_DATA_UINT64 }, 556 { "mru_metadata", KSTAT_DATA_UINT64 }, 557 { "mru_evictable_data", KSTAT_DATA_UINT64 }, 558 { "mru_evictable_metadata", KSTAT_DATA_UINT64 }, 559 { "mru_ghost_size", KSTAT_DATA_UINT64 }, 560 { "mru_ghost_data", KSTAT_DATA_UINT64 }, 561 { "mru_ghost_metadata", KSTAT_DATA_UINT64 }, 562 { "mru_ghost_evictable_data", KSTAT_DATA_UINT64 }, 563 { "mru_ghost_evictable_metadata", KSTAT_DATA_UINT64 }, 564 { "mfu_size", KSTAT_DATA_UINT64 }, 565 { "mfu_data", KSTAT_DATA_UINT64 }, 566 { "mfu_metadata", KSTAT_DATA_UINT64 }, 567 { "mfu_evictable_data", KSTAT_DATA_UINT64 }, 568 { "mfu_evictable_metadata", KSTAT_DATA_UINT64 }, 569 { "mfu_ghost_size", KSTAT_DATA_UINT64 }, 570 { "mfu_ghost_data", KSTAT_DATA_UINT64 }, 571 { "mfu_ghost_metadata", KSTAT_DATA_UINT64 }, 572 { "mfu_ghost_evictable_data", KSTAT_DATA_UINT64 }, 573 { "mfu_ghost_evictable_metadata", KSTAT_DATA_UINT64 }, 574 { "uncached_size", KSTAT_DATA_UINT64 }, 575 { "uncached_data", KSTAT_DATA_UINT64 }, 576 { "uncached_metadata", KSTAT_DATA_UINT64 }, 577 { "uncached_evictable_data", KSTAT_DATA_UINT64 }, 578 { "uncached_evictable_metadata", KSTAT_DATA_UINT64 }, 579 { "l2_ndev", KSTAT_DATA_UINT64 }, 580 { "l2_hits", KSTAT_DATA_UINT64 }, 581 { "l2_misses", KSTAT_DATA_UINT64 }, 582 { "l2_prefetch_asize", KSTAT_DATA_UINT64 }, 583 { "l2_mru_asize", KSTAT_DATA_UINT64 }, 584 { "l2_mfu_asize", KSTAT_DATA_UINT64 }, 585 { "l2_bufc_data_asize", KSTAT_DATA_UINT64 }, 586 { "l2_bufc_metadata_asize", KSTAT_DATA_UINT64 }, 587 { "l2_feeds", KSTAT_DATA_UINT64 }, 588 { "l2_rw_clash", KSTAT_DATA_UINT64 }, 589 { "l2_read_bytes", KSTAT_DATA_UINT64 }, 590 { "l2_write_bytes", KSTAT_DATA_UINT64 }, 591 { "l2_writes_sent", KSTAT_DATA_UINT64 }, 592 { "l2_writes_done", KSTAT_DATA_UINT64 }, 593 { "l2_writes_error", KSTAT_DATA_UINT64 }, 594 { "l2_writes_lock_retry", KSTAT_DATA_UINT64 }, 595 { "l2_evict_lock_retry", KSTAT_DATA_UINT64 }, 596 { "l2_evict_reading", KSTAT_DATA_UINT64 }, 597 { "l2_evict_l1cached", KSTAT_DATA_UINT64 }, 598 { "l2_free_on_write", KSTAT_DATA_UINT64 }, 599 { "l2_abort_lowmem", KSTAT_DATA_UINT64 }, 600 { "l2_cksum_bad", KSTAT_DATA_UINT64 }, 601 { "l2_io_error", KSTAT_DATA_UINT64 }, 602 { "l2_size", KSTAT_DATA_UINT64 }, 603 { "l2_asize", KSTAT_DATA_UINT64 }, 604 { "l2_hdr_size", KSTAT_DATA_UINT64 }, 605 { "l2_log_blk_writes", KSTAT_DATA_UINT64 }, 606 { "l2_log_blk_avg_asize", KSTAT_DATA_UINT64 }, 607 { "l2_log_blk_asize", KSTAT_DATA_UINT64 }, 608 { "l2_log_blk_count", KSTAT_DATA_UINT64 }, 609 { "l2_data_to_meta_ratio", KSTAT_DATA_UINT64 }, 610 { "l2_rebuild_success", KSTAT_DATA_UINT64 }, 611 { "l2_rebuild_unsupported", KSTAT_DATA_UINT64 }, 612 { "l2_rebuild_io_errors", KSTAT_DATA_UINT64 }, 613 { "l2_rebuild_dh_errors", KSTAT_DATA_UINT64 }, 614 { "l2_rebuild_cksum_lb_errors", KSTAT_DATA_UINT64 }, 615 { "l2_rebuild_lowmem", KSTAT_DATA_UINT64 }, 616 { "l2_rebuild_size", KSTAT_DATA_UINT64 }, 617 { "l2_rebuild_asize", KSTAT_DATA_UINT64 }, 618 { "l2_rebuild_bufs", KSTAT_DATA_UINT64 }, 619 { "l2_rebuild_bufs_precached", KSTAT_DATA_UINT64 }, 620 { "l2_rebuild_log_blks", KSTAT_DATA_UINT64 }, 621 { "memory_throttle_count", KSTAT_DATA_UINT64 }, 622 { "memory_direct_count", KSTAT_DATA_UINT64 }, 623 { "memory_indirect_count", KSTAT_DATA_UINT64 }, 624 { "memory_all_bytes", KSTAT_DATA_UINT64 }, 625 { "memory_free_bytes", KSTAT_DATA_UINT64 }, 626 { "memory_available_bytes", KSTAT_DATA_INT64 }, 627 { "arc_no_grow", KSTAT_DATA_UINT64 }, 628 { "arc_tempreserve", KSTAT_DATA_UINT64 }, 629 { "arc_loaned_bytes", KSTAT_DATA_UINT64 }, 630 { "arc_prune", KSTAT_DATA_UINT64 }, 631 { "arc_meta_used", KSTAT_DATA_UINT64 }, 632 { "arc_dnode_limit", KSTAT_DATA_UINT64 }, 633 { "async_upgrade_sync", KSTAT_DATA_UINT64 }, 634 { "predictive_prefetch", KSTAT_DATA_UINT64 }, 635 { "demand_hit_predictive_prefetch", KSTAT_DATA_UINT64 }, 636 { "demand_iohit_predictive_prefetch", KSTAT_DATA_UINT64 }, 637 { "prescient_prefetch", KSTAT_DATA_UINT64 }, 638 { "demand_hit_prescient_prefetch", KSTAT_DATA_UINT64 }, 639 { "demand_iohit_prescient_prefetch", KSTAT_DATA_UINT64 }, 640 { "arc_need_free", KSTAT_DATA_UINT64 }, 641 { "arc_sys_free", KSTAT_DATA_UINT64 }, 642 { "arc_raw_size", KSTAT_DATA_UINT64 }, 643 { "cached_only_in_progress", KSTAT_DATA_UINT64 }, 644 { "abd_chunk_waste_size", KSTAT_DATA_UINT64 }, 645 }; 646 647 arc_sums_t arc_sums; 648 649 #define ARCSTAT_MAX(stat, val) { \ 650 uint64_t m; \ 651 while ((val) > (m = arc_stats.stat.value.ui64) && \ 652 (m != atomic_cas_64(&arc_stats.stat.value.ui64, m, (val)))) \ 653 continue; \ 654 } 655 656 /* 657 * We define a macro to allow ARC hits/misses to be easily broken down by 658 * two separate conditions, giving a total of four different subtypes for 659 * each of hits and misses (so eight statistics total). 660 */ 661 #define ARCSTAT_CONDSTAT(cond1, stat1, notstat1, cond2, stat2, notstat2, stat) \ 662 if (cond1) { \ 663 if (cond2) { \ 664 ARCSTAT_BUMP(arcstat_##stat1##_##stat2##_##stat); \ 665 } else { \ 666 ARCSTAT_BUMP(arcstat_##stat1##_##notstat2##_##stat); \ 667 } \ 668 } else { \ 669 if (cond2) { \ 670 ARCSTAT_BUMP(arcstat_##notstat1##_##stat2##_##stat); \ 671 } else { \ 672 ARCSTAT_BUMP(arcstat_##notstat1##_##notstat2##_##stat);\ 673 } \ 674 } 675 676 /* 677 * This macro allows us to use kstats as floating averages. Each time we 678 * update this kstat, we first factor it and the update value by 679 * ARCSTAT_AVG_FACTOR to shrink the new value's contribution to the overall 680 * average. This macro assumes that integer loads and stores are atomic, but 681 * is not safe for multiple writers updating the kstat in parallel (only the 682 * last writer's update will remain). 683 */ 684 #define ARCSTAT_F_AVG_FACTOR 3 685 #define ARCSTAT_F_AVG(stat, value) \ 686 do { \ 687 uint64_t x = ARCSTAT(stat); \ 688 x = x - x / ARCSTAT_F_AVG_FACTOR + \ 689 (value) / ARCSTAT_F_AVG_FACTOR; \ 690 ARCSTAT(stat) = x; \ 691 } while (0) 692 693 static kstat_t *arc_ksp; 694 695 /* 696 * There are several ARC variables that are critical to export as kstats -- 697 * but we don't want to have to grovel around in the kstat whenever we wish to 698 * manipulate them. For these variables, we therefore define them to be in 699 * terms of the statistic variable. This assures that we are not introducing 700 * the possibility of inconsistency by having shadow copies of the variables, 701 * while still allowing the code to be readable. 702 */ 703 #define arc_tempreserve ARCSTAT(arcstat_tempreserve) 704 #define arc_loaned_bytes ARCSTAT(arcstat_loaned_bytes) 705 #define arc_dnode_limit ARCSTAT(arcstat_dnode_limit) /* max size for dnodes */ 706 #define arc_need_free ARCSTAT(arcstat_need_free) /* waiting to be evicted */ 707 708 hrtime_t arc_growtime; 709 list_t arc_prune_list; 710 kmutex_t arc_prune_mtx; 711 taskq_t *arc_prune_taskq; 712 713 #define GHOST_STATE(state) \ 714 ((state) == arc_mru_ghost || (state) == arc_mfu_ghost || \ 715 (state) == arc_l2c_only) 716 717 #define HDR_IN_HASH_TABLE(hdr) ((hdr)->b_flags & ARC_FLAG_IN_HASH_TABLE) 718 #define HDR_IO_IN_PROGRESS(hdr) ((hdr)->b_flags & ARC_FLAG_IO_IN_PROGRESS) 719 #define HDR_IO_ERROR(hdr) ((hdr)->b_flags & ARC_FLAG_IO_ERROR) 720 #define HDR_PREFETCH(hdr) ((hdr)->b_flags & ARC_FLAG_PREFETCH) 721 #define HDR_PRESCIENT_PREFETCH(hdr) \ 722 ((hdr)->b_flags & ARC_FLAG_PRESCIENT_PREFETCH) 723 #define HDR_COMPRESSION_ENABLED(hdr) \ 724 ((hdr)->b_flags & ARC_FLAG_COMPRESSED_ARC) 725 726 #define HDR_L2CACHE(hdr) ((hdr)->b_flags & ARC_FLAG_L2CACHE) 727 #define HDR_UNCACHED(hdr) ((hdr)->b_flags & ARC_FLAG_UNCACHED) 728 #define HDR_L2_READING(hdr) \ 729 (((hdr)->b_flags & ARC_FLAG_IO_IN_PROGRESS) && \ 730 ((hdr)->b_flags & ARC_FLAG_HAS_L2HDR)) 731 #define HDR_L2_WRITING(hdr) ((hdr)->b_flags & ARC_FLAG_L2_WRITING) 732 #define HDR_L2_EVICTED(hdr) ((hdr)->b_flags & ARC_FLAG_L2_EVICTED) 733 #define HDR_L2_WRITE_HEAD(hdr) ((hdr)->b_flags & ARC_FLAG_L2_WRITE_HEAD) 734 #define HDR_PROTECTED(hdr) ((hdr)->b_flags & ARC_FLAG_PROTECTED) 735 #define HDR_NOAUTH(hdr) ((hdr)->b_flags & ARC_FLAG_NOAUTH) 736 #define HDR_SHARED_DATA(hdr) ((hdr)->b_flags & ARC_FLAG_SHARED_DATA) 737 738 #define HDR_ISTYPE_METADATA(hdr) \ 739 ((hdr)->b_flags & ARC_FLAG_BUFC_METADATA) 740 #define HDR_ISTYPE_DATA(hdr) (!HDR_ISTYPE_METADATA(hdr)) 741 742 #define HDR_HAS_L1HDR(hdr) ((hdr)->b_flags & ARC_FLAG_HAS_L1HDR) 743 #define HDR_HAS_L2HDR(hdr) ((hdr)->b_flags & ARC_FLAG_HAS_L2HDR) 744 #define HDR_HAS_RABD(hdr) \ 745 (HDR_HAS_L1HDR(hdr) && HDR_PROTECTED(hdr) && \ 746 (hdr)->b_crypt_hdr.b_rabd != NULL) 747 #define HDR_ENCRYPTED(hdr) \ 748 (HDR_PROTECTED(hdr) && DMU_OT_IS_ENCRYPTED((hdr)->b_crypt_hdr.b_ot)) 749 #define HDR_AUTHENTICATED(hdr) \ 750 (HDR_PROTECTED(hdr) && !DMU_OT_IS_ENCRYPTED((hdr)->b_crypt_hdr.b_ot)) 751 752 /* For storing compression mode in b_flags */ 753 #define HDR_COMPRESS_OFFSET (highbit64(ARC_FLAG_COMPRESS_0) - 1) 754 755 #define HDR_GET_COMPRESS(hdr) ((enum zio_compress)BF32_GET((hdr)->b_flags, \ 756 HDR_COMPRESS_OFFSET, SPA_COMPRESSBITS)) 757 #define HDR_SET_COMPRESS(hdr, cmp) BF32_SET((hdr)->b_flags, \ 758 HDR_COMPRESS_OFFSET, SPA_COMPRESSBITS, (cmp)); 759 760 #define ARC_BUF_LAST(buf) ((buf)->b_next == NULL) 761 #define ARC_BUF_SHARED(buf) ((buf)->b_flags & ARC_BUF_FLAG_SHARED) 762 #define ARC_BUF_COMPRESSED(buf) ((buf)->b_flags & ARC_BUF_FLAG_COMPRESSED) 763 #define ARC_BUF_ENCRYPTED(buf) ((buf)->b_flags & ARC_BUF_FLAG_ENCRYPTED) 764 765 /* 766 * Other sizes 767 */ 768 769 #define HDR_FULL_SIZE ((int64_t)sizeof (arc_buf_hdr_t)) 770 #define HDR_L2ONLY_SIZE ((int64_t)offsetof(arc_buf_hdr_t, b_l1hdr)) 771 772 /* 773 * Hash table routines 774 */ 775 776 #define BUF_LOCKS 2048 777 typedef struct buf_hash_table { 778 uint64_t ht_mask; 779 arc_buf_hdr_t **ht_table; 780 kmutex_t ht_locks[BUF_LOCKS] ____cacheline_aligned; 781 } buf_hash_table_t; 782 783 static buf_hash_table_t buf_hash_table; 784 785 #define BUF_HASH_INDEX(spa, dva, birth) \ 786 (buf_hash(spa, dva, birth) & buf_hash_table.ht_mask) 787 #define BUF_HASH_LOCK(idx) (&buf_hash_table.ht_locks[idx & (BUF_LOCKS-1)]) 788 #define HDR_LOCK(hdr) \ 789 (BUF_HASH_LOCK(BUF_HASH_INDEX(hdr->b_spa, &hdr->b_dva, hdr->b_birth))) 790 791 uint64_t zfs_crc64_table[256]; 792 793 /* 794 * Asynchronous ARC flush 795 * 796 * We track these in a list for arc_async_flush_guid_inuse(). 797 * Used for both L1 and L2 async teardown. 798 */ 799 static list_t arc_async_flush_list; 800 static kmutex_t arc_async_flush_lock; 801 802 typedef struct arc_async_flush { 803 uint64_t af_spa_guid; 804 taskq_ent_t af_tqent; 805 uint_t af_cache_level; /* 1 or 2 to differentiate node */ 806 list_node_t af_node; 807 } arc_async_flush_t; 808 809 810 /* 811 * Level 2 ARC 812 */ 813 814 #define L2ARC_WRITE_SIZE (64 * 1024 * 1024) /* initial write max */ 815 #define L2ARC_BURST_SIZE_MAX (64 * 1024 * 1024) /* max burst size */ 816 #define L2ARC_HEADROOM 8 /* num of writes */ 817 818 /* 819 * If we discover during ARC scan any buffers to be compressed, we boost 820 * our headroom for the next scanning cycle by this percentage multiple. 821 */ 822 #define L2ARC_HEADROOM_BOOST 200 823 #define L2ARC_FEED_SECS 1 /* caching interval secs */ 824 #define L2ARC_FEED_MIN_MS 200 /* min caching interval ms */ 825 826 /* 827 * Min L2ARC capacity to enable persistent markers, adaptive intervals, and 828 * DWPD rate limiting. L2ARC must be at least twice arc_c_max to benefit from 829 * inclusive caching - smaller L2ARC would either cyclically overwrite itself 830 * (if L2ARC < ARC) or merely duplicate ARC contents (if L2ARC = ARC). 831 * With L2ARC >= 2*ARC, there's room for ARC duplication plus additional 832 * cached data. 833 */ 834 #define L2ARC_PERSIST_THRESHOLD (arc_c_max * 2) 835 836 /* L2ARC Performance Tunables */ 837 static uint64_t l2arc_write_max = L2ARC_WRITE_SIZE; /* def max write size */ 838 uint64_t l2arc_dwpd_limit = 100; /* 100 = 1.0 DWPD */ 839 static uint64_t l2arc_dwpd_bump = 0; /* DWPD reset trigger */ 840 static uint64_t l2arc_headroom = L2ARC_HEADROOM; /* # of dev writes */ 841 static uint64_t l2arc_headroom_boost = L2ARC_HEADROOM_BOOST; 842 static uint64_t l2arc_feed_secs = L2ARC_FEED_SECS; /* interval seconds */ 843 static uint64_t l2arc_feed_min_ms = L2ARC_FEED_MIN_MS; /* min interval msecs */ 844 static int l2arc_noprefetch = B_TRUE; /* don't cache prefetch bufs */ 845 static int l2arc_feed_again = B_TRUE; /* turbo warmup */ 846 static int l2arc_norw = B_FALSE; /* no reads during writes */ 847 static uint_t l2arc_meta_percent = 33; /* limit on headers size */ 848 849 /* 850 * L2ARC Internals 851 */ 852 static list_t L2ARC_dev_list; /* device list */ 853 static list_t *l2arc_dev_list; /* device list pointer */ 854 static kmutex_t l2arc_dev_mtx; /* device list mutex */ 855 static list_t L2ARC_free_on_write; /* free after write buf list */ 856 static list_t *l2arc_free_on_write; /* free after write list ptr */ 857 static kmutex_t l2arc_free_on_write_mtx; /* mutex for list */ 858 static uint64_t l2arc_ndev; /* number of devices */ 859 860 typedef struct l2arc_read_callback { 861 arc_buf_hdr_t *l2rcb_hdr; /* read header */ 862 blkptr_t l2rcb_bp; /* original blkptr */ 863 zbookmark_phys_t l2rcb_zb; /* original bookmark */ 864 int l2rcb_flags; /* original flags */ 865 abd_t *l2rcb_abd; /* temporary buffer */ 866 } l2arc_read_callback_t; 867 868 typedef struct l2arc_data_free { 869 /* protected by l2arc_free_on_write_mtx */ 870 abd_t *l2df_abd; 871 l2arc_dev_t *l2df_dev; /* L2ARC device that owns this ABD */ 872 list_node_t l2df_list_node; 873 } l2arc_data_free_t; 874 875 typedef enum arc_fill_flags { 876 ARC_FILL_LOCKED = 1 << 0, /* hdr lock is held */ 877 ARC_FILL_COMPRESSED = 1 << 1, /* fill with compressed data */ 878 ARC_FILL_ENCRYPTED = 1 << 2, /* fill with encrypted data */ 879 ARC_FILL_NOAUTH = 1 << 3, /* don't attempt to authenticate */ 880 ARC_FILL_IN_PLACE = 1 << 4 /* fill in place (special case) */ 881 } arc_fill_flags_t; 882 883 typedef enum arc_ovf_level { 884 ARC_OVF_NONE, /* ARC within target size. */ 885 ARC_OVF_SOME, /* ARC is slightly overflowed. */ 886 ARC_OVF_SEVERE /* ARC is severely overflowed. */ 887 } arc_ovf_level_t; 888 889 static kmutex_t l2arc_rebuild_thr_lock; 890 static kcondvar_t l2arc_rebuild_thr_cv; 891 892 enum arc_hdr_alloc_flags { 893 ARC_HDR_ALLOC_RDATA = 0x1, 894 ARC_HDR_USE_RESERVE = 0x4, 895 ARC_HDR_ALLOC_LINEAR = 0x8, 896 }; 897 898 899 static abd_t *arc_get_data_abd(arc_buf_hdr_t *, uint64_t, const void *, int); 900 static void *arc_get_data_buf(arc_buf_hdr_t *, uint64_t, const void *); 901 static void arc_get_data_impl(arc_buf_hdr_t *, uint64_t, const void *, int); 902 static void arc_free_data_abd(arc_buf_hdr_t *, abd_t *, uint64_t, const void *); 903 static void arc_free_data_buf(arc_buf_hdr_t *, void *, uint64_t, const void *); 904 static void arc_free_data_impl(arc_buf_hdr_t *hdr, uint64_t size, 905 const void *tag); 906 static void arc_hdr_free_abd(arc_buf_hdr_t *, boolean_t); 907 static void arc_hdr_alloc_abd(arc_buf_hdr_t *, int); 908 static void arc_hdr_destroy(arc_buf_hdr_t *); 909 static void arc_access(arc_buf_hdr_t *, arc_flags_t, boolean_t); 910 static void arc_buf_watch(arc_buf_t *); 911 static void arc_change_state(arc_state_t *, arc_buf_hdr_t *); 912 913 static arc_buf_contents_t arc_buf_type(arc_buf_hdr_t *); 914 static uint32_t arc_bufc_to_flags(arc_buf_contents_t); 915 static inline void arc_hdr_set_flags(arc_buf_hdr_t *hdr, arc_flags_t flags); 916 static inline void arc_hdr_clear_flags(arc_buf_hdr_t *hdr, arc_flags_t flags); 917 918 static boolean_t l2arc_write_eligible(uint64_t, arc_buf_hdr_t *); 919 static void l2arc_read_done(zio_t *); 920 static void l2arc_do_free_on_write(l2arc_dev_t *dev); 921 static void l2arc_hdr_arcstats_update(arc_buf_hdr_t *hdr, boolean_t incr, 922 boolean_t state_only); 923 static uint64_t l2arc_get_write_rate(l2arc_dev_t *dev); 924 925 static void arc_prune_async(uint64_t adjust); 926 927 #define l2arc_hdr_arcstats_increment(hdr) \ 928 l2arc_hdr_arcstats_update((hdr), B_TRUE, B_FALSE) 929 #define l2arc_hdr_arcstats_decrement(hdr) \ 930 l2arc_hdr_arcstats_update((hdr), B_FALSE, B_FALSE) 931 #define l2arc_hdr_arcstats_increment_state(hdr) \ 932 l2arc_hdr_arcstats_update((hdr), B_TRUE, B_TRUE) 933 #define l2arc_hdr_arcstats_decrement_state(hdr) \ 934 l2arc_hdr_arcstats_update((hdr), B_FALSE, B_TRUE) 935 936 /* 937 * l2arc_exclude_special : A zfs module parameter that controls whether buffers 938 * present on special vdevs are eligibile for caching in L2ARC. If 939 * set to 1, exclude dbufs on special vdevs from being cached to 940 * L2ARC. 941 */ 942 int l2arc_exclude_special = 0; 943 944 /* 945 * l2arc_mfuonly : A ZFS module parameter that controls whether only MFU 946 * metadata and data are cached from ARC into L2ARC. 947 */ 948 static int l2arc_mfuonly = 0; 949 950 /* 951 * Depth cap as percentage of state size. Each pass resets its markers 952 * to tail after scanning this fraction of the state. Keeps markers 953 * focused on the tail zone where L2ARC adds the most value. 954 */ 955 static uint64_t l2arc_ext_headroom_pct = 25; 956 957 /* 958 * Metadata monopolization limit. When metadata fills the write budget 959 * for this many consecutive cycles while data gets nothing, skip metadata 960 * for one cycle to let data run, then reset the counter. 961 * With N=2, the steady-state pattern under sustained monopolization is 962 * 2 metadata cycles followed by 1 data cycle (67%/33% split). 963 */ 964 static uint64_t l2arc_meta_cycles = 2; 965 966 /* 967 * L2ARC TRIM 968 * l2arc_trim_ahead : A ZFS module parameter that controls how much ahead of 969 * the current write size (l2arc_write_max) we should TRIM if we 970 * have filled the device. It is defined as a percentage of the 971 * write size. If set to 100 we trim twice the space required to 972 * accommodate upcoming writes. A minimum of 64MB will be trimmed. 973 * It also enables TRIM of the whole L2ARC device upon creation or 974 * addition to an existing pool or if the header of the device is 975 * invalid upon importing a pool or onlining a cache device. The 976 * default is 0, which disables TRIM on L2ARC altogether as it can 977 * put significant stress on the underlying storage devices. This 978 * will vary depending of how well the specific device handles 979 * these commands. 980 */ 981 static uint64_t l2arc_trim_ahead = 0; 982 983 /* 984 * Performance tuning of L2ARC persistence: 985 * 986 * l2arc_rebuild_enabled : A ZFS module parameter that controls whether adding 987 * an L2ARC device (either at pool import or later) will attempt 988 * to rebuild L2ARC buffer contents. 989 * l2arc_rebuild_blocks_min_l2size : A ZFS module parameter that controls 990 * whether log blocks are written to the L2ARC device. If the L2ARC 991 * device is less than 1GB, the amount of data l2arc_evict() 992 * evicts is significant compared to the amount of restored L2ARC 993 * data. In this case do not write log blocks in L2ARC in order 994 * not to waste space. 995 */ 996 static int l2arc_rebuild_enabled = B_TRUE; 997 static uint64_t l2arc_rebuild_blocks_min_l2size = 1024 * 1024 * 1024; 998 999 /* L2ARC persistence rebuild control routines. */ 1000 void l2arc_rebuild_vdev(vdev_t *vd, boolean_t reopen); 1001 static __attribute__((noreturn)) void l2arc_dev_rebuild_thread(void *arg); 1002 static int l2arc_rebuild(l2arc_dev_t *dev); 1003 1004 /* L2ARC persistence read I/O routines. */ 1005 static int l2arc_dev_hdr_read(l2arc_dev_t *dev); 1006 static int l2arc_log_blk_read(l2arc_dev_t *dev, 1007 const l2arc_log_blkptr_t *this_lp, const l2arc_log_blkptr_t *next_lp, 1008 l2arc_log_blk_phys_t *this_lb, l2arc_log_blk_phys_t *next_lb, 1009 zio_t *this_io, zio_t **next_io); 1010 static zio_t *l2arc_log_blk_fetch(vdev_t *vd, 1011 const l2arc_log_blkptr_t *lp, l2arc_log_blk_phys_t *lb); 1012 static void l2arc_log_blk_fetch_abort(zio_t *zio); 1013 1014 /* L2ARC persistence block restoration routines. */ 1015 static void l2arc_log_blk_restore(l2arc_dev_t *dev, 1016 const l2arc_log_blk_phys_t *lb, uint64_t lb_asize); 1017 static void l2arc_hdr_restore(const l2arc_log_ent_phys_t *le, 1018 l2arc_dev_t *dev); 1019 1020 /* L2ARC persistence write I/O routines. */ 1021 static uint64_t l2arc_log_blk_commit(l2arc_dev_t *dev, zio_t *pio, 1022 l2arc_write_callback_t *cb); 1023 1024 /* L2ARC persistence auxiliary routines. */ 1025 boolean_t l2arc_log_blkptr_valid(l2arc_dev_t *dev, 1026 const l2arc_log_blkptr_t *lbp); 1027 static boolean_t l2arc_log_blk_insert(l2arc_dev_t *dev, 1028 const arc_buf_hdr_t *ab); 1029 boolean_t l2arc_range_check_overlap(uint64_t bottom, 1030 uint64_t top, uint64_t check); 1031 static void l2arc_blk_fetch_done(zio_t *zio); 1032 static inline uint64_t 1033 l2arc_log_blk_overhead(uint64_t write_sz, l2arc_dev_t *dev); 1034 1035 /* 1036 * We use Cityhash for this. It's fast, and has good hash properties without 1037 * requiring any large static buffers. 1038 */ 1039 static uint64_t 1040 buf_hash(uint64_t spa, const dva_t *dva, uint64_t birth) 1041 { 1042 return (cityhash4(spa, dva->dva_word[0], dva->dva_word[1], birth)); 1043 } 1044 1045 #define HDR_EMPTY(hdr) \ 1046 ((hdr)->b_dva.dva_word[0] == 0 && \ 1047 (hdr)->b_dva.dva_word[1] == 0) 1048 1049 #define HDR_EMPTY_OR_LOCKED(hdr) \ 1050 (HDR_EMPTY(hdr) || MUTEX_HELD(HDR_LOCK(hdr))) 1051 1052 #define HDR_EQUAL(spa, dva, birth, hdr) \ 1053 ((hdr)->b_dva.dva_word[0] == (dva)->dva_word[0]) && \ 1054 ((hdr)->b_dva.dva_word[1] == (dva)->dva_word[1]) && \ 1055 ((hdr)->b_birth == birth) && ((hdr)->b_spa == spa) 1056 1057 static void 1058 buf_discard_identity(arc_buf_hdr_t *hdr) 1059 { 1060 VERIFY(!HDR_IN_HASH_TABLE(hdr)); 1061 hdr->b_dva.dva_word[0] = 0; 1062 hdr->b_dva.dva_word[1] = 0; 1063 hdr->b_birth = 0; 1064 } 1065 1066 static arc_buf_hdr_t * 1067 buf_hash_find(uint64_t spa, const blkptr_t *bp, kmutex_t **lockp) 1068 { 1069 const dva_t *dva = BP_IDENTITY(bp); 1070 uint64_t birth = BP_GET_PHYSICAL_BIRTH(bp); 1071 uint64_t idx = BUF_HASH_INDEX(spa, dva, birth); 1072 kmutex_t *hash_lock = BUF_HASH_LOCK(idx); 1073 arc_buf_hdr_t *hdr; 1074 1075 mutex_enter(hash_lock); 1076 for (hdr = buf_hash_table.ht_table[idx]; hdr != NULL; 1077 hdr = hdr->b_hash_next) { 1078 if (HDR_EQUAL(spa, dva, birth, hdr)) { 1079 *lockp = hash_lock; 1080 return (hdr); 1081 } 1082 } 1083 mutex_exit(hash_lock); 1084 *lockp = NULL; 1085 return (NULL); 1086 } 1087 1088 /* 1089 * Insert an entry into the hash table. If there is already an element 1090 * equal to elem in the hash table, then the already existing element 1091 * will be returned and the new element will not be inserted. 1092 * Otherwise returns NULL. 1093 * If lockp == NULL, the caller is assumed to already hold the hash lock. 1094 */ 1095 static arc_buf_hdr_t * 1096 buf_hash_insert(arc_buf_hdr_t *hdr, kmutex_t **lockp) 1097 { 1098 uint64_t idx = BUF_HASH_INDEX(hdr->b_spa, &hdr->b_dva, hdr->b_birth); 1099 kmutex_t *hash_lock = BUF_HASH_LOCK(idx); 1100 arc_buf_hdr_t *fhdr; 1101 uint32_t i; 1102 1103 ASSERT(!DVA_IS_EMPTY(&hdr->b_dva)); 1104 ASSERT(hdr->b_birth != 0); 1105 ASSERT(!HDR_IN_HASH_TABLE(hdr)); 1106 1107 if (lockp != NULL) { 1108 *lockp = hash_lock; 1109 mutex_enter(hash_lock); 1110 } else { 1111 ASSERT(MUTEX_HELD(hash_lock)); 1112 } 1113 1114 for (fhdr = buf_hash_table.ht_table[idx], i = 0; fhdr != NULL; 1115 fhdr = fhdr->b_hash_next, i++) { 1116 if (HDR_EQUAL(hdr->b_spa, &hdr->b_dva, hdr->b_birth, fhdr)) 1117 return (fhdr); 1118 } 1119 1120 hdr->b_hash_next = buf_hash_table.ht_table[idx]; 1121 buf_hash_table.ht_table[idx] = hdr; 1122 arc_hdr_set_flags(hdr, ARC_FLAG_IN_HASH_TABLE); 1123 1124 /* collect some hash table performance data */ 1125 if (i > 0) { 1126 ARCSTAT_BUMP(arcstat_hash_collisions); 1127 if (i == 1) 1128 ARCSTAT_BUMP(arcstat_hash_chains); 1129 ARCSTAT_MAX(arcstat_hash_chain_max, i); 1130 } 1131 ARCSTAT_BUMP(arcstat_hash_elements); 1132 1133 return (NULL); 1134 } 1135 1136 static void 1137 buf_hash_remove(arc_buf_hdr_t *hdr) 1138 { 1139 arc_buf_hdr_t *fhdr, **hdrp; 1140 uint64_t idx = BUF_HASH_INDEX(hdr->b_spa, &hdr->b_dva, hdr->b_birth); 1141 1142 VERIFY(MUTEX_HELD(BUF_HASH_LOCK(idx))); 1143 ASSERT(HDR_IN_HASH_TABLE(hdr)); 1144 1145 hdrp = &buf_hash_table.ht_table[idx]; 1146 while ((fhdr = *hdrp) != hdr) { 1147 ASSERT3P(fhdr, !=, NULL); 1148 hdrp = &fhdr->b_hash_next; 1149 } 1150 *hdrp = hdr->b_hash_next; 1151 hdr->b_hash_next = NULL; 1152 arc_hdr_clear_flags(hdr, ARC_FLAG_IN_HASH_TABLE); 1153 1154 /* collect some hash table performance data */ 1155 ARCSTAT_BUMPDOWN(arcstat_hash_elements); 1156 if (buf_hash_table.ht_table[idx] && 1157 buf_hash_table.ht_table[idx]->b_hash_next == NULL) 1158 ARCSTAT_BUMPDOWN(arcstat_hash_chains); 1159 } 1160 1161 /* 1162 * Global data structures and functions for the buf kmem cache. 1163 */ 1164 1165 static kmem_cache_t *hdr_full_cache; 1166 static kmem_cache_t *hdr_l2only_cache; 1167 static kmem_cache_t *buf_cache; 1168 1169 static void 1170 buf_fini(void) 1171 { 1172 #if defined(_KERNEL) 1173 /* 1174 * Large allocations which do not require contiguous pages 1175 * should be using vmem_free() in the linux kernel. 1176 */ 1177 vmem_free(buf_hash_table.ht_table, 1178 (buf_hash_table.ht_mask + 1) * sizeof (void *)); 1179 #else 1180 kmem_free(buf_hash_table.ht_table, 1181 (buf_hash_table.ht_mask + 1) * sizeof (void *)); 1182 #endif 1183 for (int i = 0; i < BUF_LOCKS; i++) 1184 mutex_destroy(BUF_HASH_LOCK(i)); 1185 kmem_cache_destroy(hdr_full_cache); 1186 kmem_cache_destroy(hdr_l2only_cache); 1187 kmem_cache_destroy(buf_cache); 1188 } 1189 1190 /* 1191 * Constructor callback - called when the cache is empty 1192 * and a new buf is requested. 1193 */ 1194 static int 1195 hdr_full_cons(void *vbuf, void *unused, int kmflag) 1196 { 1197 (void) unused, (void) kmflag; 1198 arc_buf_hdr_t *hdr = vbuf; 1199 1200 memset(hdr, 0, HDR_FULL_SIZE); 1201 hdr->b_l1hdr.b_byteswap = DMU_BSWAP_NUMFUNCS; 1202 zfs_refcount_create(&hdr->b_l1hdr.b_refcnt); 1203 #ifdef ZFS_DEBUG 1204 mutex_init(&hdr->b_l1hdr.b_freeze_lock, NULL, MUTEX_DEFAULT, NULL); 1205 #endif 1206 multilist_link_init(&hdr->b_l1hdr.b_arc_node); 1207 list_link_init(&hdr->b_l2hdr.b_l2node); 1208 arc_space_consume(HDR_FULL_SIZE, ARC_SPACE_HDRS); 1209 1210 return (0); 1211 } 1212 1213 static int 1214 hdr_l2only_cons(void *vbuf, void *unused, int kmflag) 1215 { 1216 (void) unused, (void) kmflag; 1217 arc_buf_hdr_t *hdr = vbuf; 1218 1219 memset(hdr, 0, HDR_L2ONLY_SIZE); 1220 arc_space_consume(HDR_L2ONLY_SIZE, ARC_SPACE_L2HDRS); 1221 1222 return (0); 1223 } 1224 1225 static int 1226 buf_cons(void *vbuf, void *unused, int kmflag) 1227 { 1228 (void) unused, (void) kmflag; 1229 arc_buf_t *buf = vbuf; 1230 1231 memset(buf, 0, sizeof (arc_buf_t)); 1232 arc_space_consume(sizeof (arc_buf_t), ARC_SPACE_HDRS); 1233 1234 return (0); 1235 } 1236 1237 /* 1238 * Destructor callback - called when a cached buf is 1239 * no longer required. 1240 */ 1241 static void 1242 hdr_full_dest(void *vbuf, void *unused) 1243 { 1244 (void) unused; 1245 arc_buf_hdr_t *hdr = vbuf; 1246 1247 ASSERT(HDR_EMPTY(hdr)); 1248 zfs_refcount_destroy(&hdr->b_l1hdr.b_refcnt); 1249 #ifdef ZFS_DEBUG 1250 mutex_destroy(&hdr->b_l1hdr.b_freeze_lock); 1251 #endif 1252 ASSERT(!multilist_link_active(&hdr->b_l1hdr.b_arc_node)); 1253 arc_space_return(HDR_FULL_SIZE, ARC_SPACE_HDRS); 1254 } 1255 1256 static void 1257 hdr_l2only_dest(void *vbuf, void *unused) 1258 { 1259 (void) unused; 1260 arc_buf_hdr_t *hdr = vbuf; 1261 1262 ASSERT(HDR_EMPTY(hdr)); 1263 arc_space_return(HDR_L2ONLY_SIZE, ARC_SPACE_L2HDRS); 1264 } 1265 1266 static void 1267 buf_dest(void *vbuf, void *unused) 1268 { 1269 (void) unused; 1270 (void) vbuf; 1271 1272 arc_space_return(sizeof (arc_buf_t), ARC_SPACE_HDRS); 1273 } 1274 1275 static void 1276 buf_init(void) 1277 { 1278 uint64_t *ct = NULL; 1279 uint64_t hsize = 1ULL << 12; 1280 int i, j; 1281 1282 /* 1283 * The hash table is big enough to fill all of physical memory 1284 * with an average block size of zfs_arc_average_blocksize (default 8K). 1285 * By default, the table will take up 1286 * totalmem * sizeof(void*) / 8K (1MB per GB with 8-byte pointers). 1287 */ 1288 while (hsize * zfs_arc_average_blocksize < arc_all_memory()) 1289 hsize <<= 1; 1290 retry: 1291 buf_hash_table.ht_mask = hsize - 1; 1292 #if defined(_KERNEL) 1293 /* 1294 * Large allocations which do not require contiguous pages 1295 * should be using vmem_alloc() in the linux kernel 1296 */ 1297 buf_hash_table.ht_table = 1298 vmem_zalloc(hsize * sizeof (void*), KM_SLEEP); 1299 #else 1300 buf_hash_table.ht_table = 1301 kmem_zalloc(hsize * sizeof (void*), KM_NOSLEEP); 1302 #endif 1303 if (buf_hash_table.ht_table == NULL) { 1304 ASSERT(hsize > (1ULL << 8)); 1305 hsize >>= 1; 1306 goto retry; 1307 } 1308 1309 hdr_full_cache = kmem_cache_create("arc_buf_hdr_t_full", HDR_FULL_SIZE, 1310 0, hdr_full_cons, hdr_full_dest, NULL, NULL, NULL, KMC_RECLAIMABLE); 1311 hdr_l2only_cache = kmem_cache_create("arc_buf_hdr_t_l2only", 1312 HDR_L2ONLY_SIZE, 0, hdr_l2only_cons, hdr_l2only_dest, NULL, 1313 NULL, NULL, 0); 1314 buf_cache = kmem_cache_create("arc_buf_t", sizeof (arc_buf_t), 1315 0, buf_cons, buf_dest, NULL, NULL, NULL, 0); 1316 1317 for (i = 0; i < 256; i++) 1318 for (ct = zfs_crc64_table + i, *ct = i, j = 8; j > 0; j--) 1319 *ct = (*ct >> 1) ^ (-(*ct & 1) & ZFS_CRC64_POLY); 1320 1321 for (i = 0; i < BUF_LOCKS; i++) 1322 mutex_init(BUF_HASH_LOCK(i), NULL, MUTEX_DEFAULT, NULL); 1323 } 1324 1325 #define ARC_MINTIME (hz>>4) /* 62 ms */ 1326 1327 /* 1328 * This is the size that the buf occupies in memory. If the buf is compressed, 1329 * it will correspond to the compressed size. You should use this method of 1330 * getting the buf size unless you explicitly need the logical size. 1331 */ 1332 uint64_t 1333 arc_buf_size(arc_buf_t *buf) 1334 { 1335 return (ARC_BUF_COMPRESSED(buf) ? 1336 HDR_GET_PSIZE(buf->b_hdr) : HDR_GET_LSIZE(buf->b_hdr)); 1337 } 1338 1339 uint64_t 1340 arc_buf_lsize(arc_buf_t *buf) 1341 { 1342 return (HDR_GET_LSIZE(buf->b_hdr)); 1343 } 1344 1345 /* 1346 * This function will return B_TRUE if the buffer is encrypted in memory. 1347 * This buffer can be decrypted by calling arc_untransform(). 1348 */ 1349 boolean_t 1350 arc_is_encrypted(arc_buf_t *buf) 1351 { 1352 return (ARC_BUF_ENCRYPTED(buf) != 0); 1353 } 1354 1355 /* 1356 * Returns B_TRUE if the buffer represents data that has not had its MAC 1357 * verified yet. 1358 */ 1359 boolean_t 1360 arc_is_unauthenticated(arc_buf_t *buf) 1361 { 1362 return (HDR_NOAUTH(buf->b_hdr) != 0); 1363 } 1364 1365 void 1366 arc_get_raw_params(arc_buf_t *buf, boolean_t *byteorder, uint8_t *salt, 1367 uint8_t *iv, uint8_t *mac) 1368 { 1369 arc_buf_hdr_t *hdr = buf->b_hdr; 1370 1371 ASSERT(HDR_PROTECTED(hdr)); 1372 1373 memcpy(salt, hdr->b_crypt_hdr.b_salt, ZIO_DATA_SALT_LEN); 1374 memcpy(iv, hdr->b_crypt_hdr.b_iv, ZIO_DATA_IV_LEN); 1375 memcpy(mac, hdr->b_crypt_hdr.b_mac, ZIO_DATA_MAC_LEN); 1376 *byteorder = (hdr->b_l1hdr.b_byteswap == DMU_BSWAP_NUMFUNCS) ? 1377 ZFS_HOST_BYTEORDER : !ZFS_HOST_BYTEORDER; 1378 } 1379 1380 /* 1381 * Indicates how this buffer is compressed in memory. If it is not compressed 1382 * the value will be ZIO_COMPRESS_OFF. It can be made normally readable with 1383 * arc_untransform() as long as it is also unencrypted. 1384 */ 1385 enum zio_compress 1386 arc_get_compression(arc_buf_t *buf) 1387 { 1388 return (ARC_BUF_COMPRESSED(buf) ? 1389 HDR_GET_COMPRESS(buf->b_hdr) : ZIO_COMPRESS_OFF); 1390 } 1391 1392 /* 1393 * Return the compression algorithm used to store this data in the ARC. If ARC 1394 * compression is enabled or this is an encrypted block, this will be the same 1395 * as what's used to store it on-disk. Otherwise, this will be ZIO_COMPRESS_OFF. 1396 */ 1397 static inline enum zio_compress 1398 arc_hdr_get_compress(arc_buf_hdr_t *hdr) 1399 { 1400 return (HDR_COMPRESSION_ENABLED(hdr) ? 1401 HDR_GET_COMPRESS(hdr) : ZIO_COMPRESS_OFF); 1402 } 1403 1404 uint8_t 1405 arc_get_complevel(arc_buf_t *buf) 1406 { 1407 return (buf->b_hdr->b_complevel); 1408 } 1409 1410 __maybe_unused 1411 static inline boolean_t 1412 arc_buf_is_shared(arc_buf_t *buf) 1413 { 1414 boolean_t shared = (buf->b_data != NULL && 1415 buf->b_hdr->b_l1hdr.b_pabd != NULL && 1416 abd_is_linear(buf->b_hdr->b_l1hdr.b_pabd) && 1417 buf->b_data == abd_to_buf(buf->b_hdr->b_l1hdr.b_pabd)); 1418 IMPLY(shared, HDR_SHARED_DATA(buf->b_hdr)); 1419 EQUIV(shared, ARC_BUF_SHARED(buf)); 1420 IMPLY(shared, ARC_BUF_COMPRESSED(buf) || ARC_BUF_LAST(buf)); 1421 1422 /* 1423 * It would be nice to assert arc_can_share() too, but the "hdr isn't 1424 * already being shared" requirement prevents us from doing that. 1425 */ 1426 1427 return (shared); 1428 } 1429 1430 /* 1431 * Free the checksum associated with this header. If there is no checksum, this 1432 * is a no-op. 1433 */ 1434 static inline void 1435 arc_cksum_free(arc_buf_hdr_t *hdr) 1436 { 1437 #ifdef ZFS_DEBUG 1438 ASSERT(HDR_HAS_L1HDR(hdr)); 1439 1440 mutex_enter(&hdr->b_l1hdr.b_freeze_lock); 1441 if (hdr->b_l1hdr.b_freeze_cksum != NULL) { 1442 kmem_free(hdr->b_l1hdr.b_freeze_cksum, sizeof (zio_cksum_t)); 1443 hdr->b_l1hdr.b_freeze_cksum = NULL; 1444 } 1445 mutex_exit(&hdr->b_l1hdr.b_freeze_lock); 1446 #endif 1447 } 1448 1449 /* 1450 * Return true iff at least one of the bufs on hdr is not compressed. 1451 * Encrypted buffers count as compressed. 1452 */ 1453 static boolean_t 1454 arc_hdr_has_uncompressed_buf(arc_buf_hdr_t *hdr) 1455 { 1456 ASSERT(hdr->b_l1hdr.b_state == arc_anon || HDR_EMPTY_OR_LOCKED(hdr)); 1457 1458 for (arc_buf_t *b = hdr->b_l1hdr.b_buf; b != NULL; b = b->b_next) { 1459 if (!ARC_BUF_COMPRESSED(b)) { 1460 return (B_TRUE); 1461 } 1462 } 1463 return (B_FALSE); 1464 } 1465 1466 1467 /* 1468 * If we've turned on the ZFS_DEBUG_MODIFY flag, verify that the buf's data 1469 * matches the checksum that is stored in the hdr. If there is no checksum, 1470 * or if the buf is compressed, this is a no-op. 1471 */ 1472 static void 1473 arc_cksum_verify(arc_buf_t *buf) 1474 { 1475 #ifdef ZFS_DEBUG 1476 arc_buf_hdr_t *hdr = buf->b_hdr; 1477 zio_cksum_t zc; 1478 1479 if (!(zfs_flags & ZFS_DEBUG_MODIFY)) 1480 return; 1481 1482 if (ARC_BUF_COMPRESSED(buf)) 1483 return; 1484 1485 ASSERT(HDR_HAS_L1HDR(hdr)); 1486 1487 mutex_enter(&hdr->b_l1hdr.b_freeze_lock); 1488 1489 if (hdr->b_l1hdr.b_freeze_cksum == NULL || HDR_IO_ERROR(hdr)) { 1490 mutex_exit(&hdr->b_l1hdr.b_freeze_lock); 1491 return; 1492 } 1493 1494 fletcher_2_native(buf->b_data, arc_buf_size(buf), NULL, &zc); 1495 if (!ZIO_CHECKSUM_EQUAL(*hdr->b_l1hdr.b_freeze_cksum, zc)) 1496 panic("buffer modified while frozen!"); 1497 mutex_exit(&hdr->b_l1hdr.b_freeze_lock); 1498 #endif 1499 } 1500 1501 /* 1502 * This function makes the assumption that data stored in the L2ARC 1503 * will be transformed exactly as it is in the main pool. Because of 1504 * this we can verify the checksum against the reading process's bp. 1505 */ 1506 static boolean_t 1507 arc_cksum_is_equal(arc_buf_hdr_t *hdr, zio_t *zio) 1508 { 1509 ASSERT(!BP_IS_EMBEDDED(zio->io_bp)); 1510 VERIFY3U(BP_GET_PSIZE(zio->io_bp), ==, HDR_GET_PSIZE(hdr)); 1511 1512 /* 1513 * Block pointers always store the checksum for the logical data. 1514 * If the block pointer has the gang bit set, then the checksum 1515 * it represents is for the reconstituted data and not for an 1516 * individual gang member. The zio pipeline, however, must be able to 1517 * determine the checksum of each of the gang constituents so it 1518 * treats the checksum comparison differently than what we need 1519 * for l2arc blocks. This prevents us from using the 1520 * zio_checksum_error() interface directly. Instead we must call the 1521 * zio_checksum_error_impl() so that we can ensure the checksum is 1522 * generated using the correct checksum algorithm and accounts for the 1523 * logical I/O size and not just a gang fragment. 1524 */ 1525 return (zio_checksum_error_impl(zio->io_spa, zio->io_bp, 1526 BP_GET_CHECKSUM(zio->io_bp), zio->io_abd, zio->io_size, 1527 zio->io_offset, NULL) == 0); 1528 } 1529 1530 /* 1531 * Given a buf full of data, if ZFS_DEBUG_MODIFY is enabled this computes a 1532 * checksum and attaches it to the buf's hdr so that we can ensure that the buf 1533 * isn't modified later on. If buf is compressed or there is already a checksum 1534 * on the hdr, this is a no-op (we only checksum uncompressed bufs). 1535 */ 1536 static void 1537 arc_cksum_compute(arc_buf_t *buf) 1538 { 1539 if (!(zfs_flags & ZFS_DEBUG_MODIFY)) 1540 return; 1541 1542 #ifdef ZFS_DEBUG 1543 arc_buf_hdr_t *hdr = buf->b_hdr; 1544 ASSERT(HDR_HAS_L1HDR(hdr)); 1545 mutex_enter(&hdr->b_l1hdr.b_freeze_lock); 1546 if (hdr->b_l1hdr.b_freeze_cksum != NULL || ARC_BUF_COMPRESSED(buf)) { 1547 mutex_exit(&hdr->b_l1hdr.b_freeze_lock); 1548 return; 1549 } 1550 1551 ASSERT(!ARC_BUF_ENCRYPTED(buf)); 1552 ASSERT(!ARC_BUF_COMPRESSED(buf)); 1553 hdr->b_l1hdr.b_freeze_cksum = kmem_alloc(sizeof (zio_cksum_t), 1554 KM_SLEEP); 1555 fletcher_2_native(buf->b_data, arc_buf_size(buf), NULL, 1556 hdr->b_l1hdr.b_freeze_cksum); 1557 mutex_exit(&hdr->b_l1hdr.b_freeze_lock); 1558 #endif 1559 arc_buf_watch(buf); 1560 } 1561 1562 #ifndef _KERNEL 1563 void 1564 arc_buf_sigsegv(int sig, siginfo_t *si, void *unused) 1565 { 1566 (void) sig, (void) unused; 1567 panic("Got SIGSEGV at address: 0x%lx\n", (long)si->si_addr); 1568 } 1569 #endif 1570 1571 static void 1572 arc_buf_unwatch(arc_buf_t *buf) 1573 { 1574 #ifndef _KERNEL 1575 if (arc_watch) { 1576 ASSERT0(mprotect(buf->b_data, arc_buf_size(buf), 1577 PROT_READ | PROT_WRITE)); 1578 } 1579 #else 1580 (void) buf; 1581 #endif 1582 } 1583 1584 static void 1585 arc_buf_watch(arc_buf_t *buf) 1586 { 1587 #ifndef _KERNEL 1588 if (arc_watch) 1589 ASSERT0(mprotect(buf->b_data, arc_buf_size(buf), 1590 PROT_READ)); 1591 #else 1592 (void) buf; 1593 #endif 1594 } 1595 1596 static arc_buf_contents_t 1597 arc_buf_type(arc_buf_hdr_t *hdr) 1598 { 1599 arc_buf_contents_t type; 1600 if (HDR_ISTYPE_METADATA(hdr)) { 1601 type = ARC_BUFC_METADATA; 1602 } else { 1603 type = ARC_BUFC_DATA; 1604 } 1605 VERIFY3U(hdr->b_type, ==, type); 1606 return (type); 1607 } 1608 1609 boolean_t 1610 arc_is_metadata(arc_buf_t *buf) 1611 { 1612 return (HDR_ISTYPE_METADATA(buf->b_hdr) != 0); 1613 } 1614 1615 static uint32_t 1616 arc_bufc_to_flags(arc_buf_contents_t type) 1617 { 1618 switch (type) { 1619 case ARC_BUFC_DATA: 1620 /* metadata field is 0 if buffer contains normal data */ 1621 return (0); 1622 case ARC_BUFC_METADATA: 1623 return (ARC_FLAG_BUFC_METADATA); 1624 default: 1625 break; 1626 } 1627 panic("undefined ARC buffer type!"); 1628 return ((uint32_t)-1); 1629 } 1630 1631 void 1632 arc_buf_thaw(arc_buf_t *buf) 1633 { 1634 arc_buf_hdr_t *hdr = buf->b_hdr; 1635 1636 ASSERT3P(hdr->b_l1hdr.b_state, ==, arc_anon); 1637 ASSERT(!HDR_IO_IN_PROGRESS(hdr)); 1638 1639 arc_cksum_verify(buf); 1640 1641 /* 1642 * Compressed buffers do not manipulate the b_freeze_cksum. 1643 */ 1644 if (ARC_BUF_COMPRESSED(buf)) 1645 return; 1646 1647 ASSERT(HDR_HAS_L1HDR(hdr)); 1648 arc_cksum_free(hdr); 1649 arc_buf_unwatch(buf); 1650 } 1651 1652 void 1653 arc_buf_freeze(arc_buf_t *buf) 1654 { 1655 if (!(zfs_flags & ZFS_DEBUG_MODIFY)) 1656 return; 1657 1658 if (ARC_BUF_COMPRESSED(buf)) 1659 return; 1660 1661 ASSERT(HDR_HAS_L1HDR(buf->b_hdr)); 1662 arc_cksum_compute(buf); 1663 } 1664 1665 /* 1666 * The arc_buf_hdr_t's b_flags should never be modified directly. Instead, 1667 * the following functions should be used to ensure that the flags are 1668 * updated in a thread-safe way. When manipulating the flags either 1669 * the hash_lock must be held or the hdr must be undiscoverable. This 1670 * ensures that we're not racing with any other threads when updating 1671 * the flags. 1672 */ 1673 static inline void 1674 arc_hdr_set_flags(arc_buf_hdr_t *hdr, arc_flags_t flags) 1675 { 1676 ASSERT(HDR_EMPTY_OR_LOCKED(hdr)); 1677 hdr->b_flags |= flags; 1678 } 1679 1680 static inline void 1681 arc_hdr_clear_flags(arc_buf_hdr_t *hdr, arc_flags_t flags) 1682 { 1683 ASSERT(HDR_EMPTY_OR_LOCKED(hdr)); 1684 hdr->b_flags &= ~flags; 1685 } 1686 1687 /* 1688 * Setting the compression bits in the arc_buf_hdr_t's b_flags is 1689 * done in a special way since we have to clear and set bits 1690 * at the same time. Consumers that wish to set the compression bits 1691 * must use this function to ensure that the flags are updated in 1692 * thread-safe manner. 1693 */ 1694 static void 1695 arc_hdr_set_compress(arc_buf_hdr_t *hdr, enum zio_compress cmp) 1696 { 1697 ASSERT(HDR_EMPTY_OR_LOCKED(hdr)); 1698 1699 /* 1700 * Holes and embedded blocks will always have a psize = 0 so 1701 * we ignore the compression of the blkptr and set the 1702 * want to uncompress them. Mark them as uncompressed. 1703 */ 1704 if (!zfs_compressed_arc_enabled || HDR_GET_PSIZE(hdr) == 0) { 1705 arc_hdr_clear_flags(hdr, ARC_FLAG_COMPRESSED_ARC); 1706 ASSERT(!HDR_COMPRESSION_ENABLED(hdr)); 1707 } else { 1708 arc_hdr_set_flags(hdr, ARC_FLAG_COMPRESSED_ARC); 1709 ASSERT(HDR_COMPRESSION_ENABLED(hdr)); 1710 } 1711 1712 HDR_SET_COMPRESS(hdr, cmp); 1713 ASSERT3U(HDR_GET_COMPRESS(hdr), ==, cmp); 1714 } 1715 1716 /* 1717 * Looks for another buf on the same hdr which has the data decompressed, copies 1718 * from it, and returns true. If no such buf exists, returns false. 1719 */ 1720 static boolean_t 1721 arc_buf_try_copy_decompressed_data(arc_buf_t *buf) 1722 { 1723 arc_buf_hdr_t *hdr = buf->b_hdr; 1724 boolean_t copied = B_FALSE; 1725 1726 ASSERT(HDR_HAS_L1HDR(hdr)); 1727 ASSERT3P(buf->b_data, !=, NULL); 1728 ASSERT(!ARC_BUF_COMPRESSED(buf)); 1729 1730 for (arc_buf_t *from = hdr->b_l1hdr.b_buf; from != NULL; 1731 from = from->b_next) { 1732 /* can't use our own data buffer */ 1733 if (from == buf) { 1734 continue; 1735 } 1736 1737 if (!ARC_BUF_COMPRESSED(from)) { 1738 memcpy(buf->b_data, from->b_data, arc_buf_size(buf)); 1739 copied = B_TRUE; 1740 break; 1741 } 1742 } 1743 1744 #ifdef ZFS_DEBUG 1745 /* 1746 * There were no decompressed bufs, so there should not be a 1747 * checksum on the hdr either. 1748 */ 1749 if (zfs_flags & ZFS_DEBUG_MODIFY) 1750 EQUIV(!copied, hdr->b_l1hdr.b_freeze_cksum == NULL); 1751 #endif 1752 1753 return (copied); 1754 } 1755 1756 /* 1757 * Allocates an ARC buf header that's in an evicted & L2-cached state. 1758 * This is used during l2arc reconstruction to make empty ARC buffers 1759 * which circumvent the regular disk->arc->l2arc path and instead come 1760 * into being in the reverse order, i.e. l2arc->arc. 1761 */ 1762 static arc_buf_hdr_t * 1763 arc_buf_alloc_l2only(size_t size, arc_buf_contents_t type, l2arc_dev_t *dev, 1764 dva_t dva, uint64_t daddr, int32_t psize, uint64_t asize, uint64_t birth, 1765 enum zio_compress compress, uint8_t complevel, boolean_t protected, 1766 boolean_t prefetch, arc_state_type_t arcs_state) 1767 { 1768 arc_buf_hdr_t *hdr; 1769 1770 ASSERT(size != 0); 1771 ASSERT(dev->l2ad_vdev != NULL); 1772 1773 hdr = kmem_cache_alloc(hdr_l2only_cache, KM_SLEEP); 1774 hdr->b_birth = birth; 1775 hdr->b_type = type; 1776 hdr->b_flags = 0; 1777 arc_hdr_set_flags(hdr, arc_bufc_to_flags(type) | ARC_FLAG_HAS_L2HDR); 1778 HDR_SET_LSIZE(hdr, size); 1779 HDR_SET_PSIZE(hdr, psize); 1780 HDR_SET_L2SIZE(hdr, asize); 1781 arc_hdr_set_compress(hdr, compress); 1782 hdr->b_complevel = complevel; 1783 if (protected) 1784 arc_hdr_set_flags(hdr, ARC_FLAG_PROTECTED); 1785 if (prefetch) 1786 arc_hdr_set_flags(hdr, ARC_FLAG_PREFETCH); 1787 hdr->b_spa = spa_load_guid(dev->l2ad_vdev->vdev_spa); 1788 1789 hdr->b_dva = dva; 1790 1791 hdr->b_l2hdr.b_dev = dev; 1792 hdr->b_l2hdr.b_daddr = daddr; 1793 hdr->b_l2hdr.b_arcs_state = arcs_state; 1794 1795 return (hdr); 1796 } 1797 1798 /* 1799 * Return the size of the block, b_pabd, that is stored in the arc_buf_hdr_t. 1800 */ 1801 static uint64_t 1802 arc_hdr_size(arc_buf_hdr_t *hdr) 1803 { 1804 uint64_t size; 1805 1806 if (arc_hdr_get_compress(hdr) != ZIO_COMPRESS_OFF && 1807 HDR_GET_PSIZE(hdr) > 0) { 1808 size = HDR_GET_PSIZE(hdr); 1809 } else { 1810 ASSERT3U(HDR_GET_LSIZE(hdr), !=, 0); 1811 size = HDR_GET_LSIZE(hdr); 1812 } 1813 return (size); 1814 } 1815 1816 static int 1817 arc_hdr_authenticate(arc_buf_hdr_t *hdr, spa_t *spa, uint64_t dsobj) 1818 { 1819 int ret; 1820 uint64_t csize; 1821 uint64_t lsize = HDR_GET_LSIZE(hdr); 1822 uint64_t psize = HDR_GET_PSIZE(hdr); 1823 abd_t *abd = hdr->b_l1hdr.b_pabd; 1824 boolean_t free_abd = B_FALSE; 1825 1826 ASSERT(HDR_EMPTY_OR_LOCKED(hdr)); 1827 ASSERT(HDR_AUTHENTICATED(hdr)); 1828 ASSERT3P(abd, !=, NULL); 1829 1830 /* 1831 * The MAC is calculated on the compressed data that is stored on disk. 1832 * However, if compressed arc is disabled we will only have the 1833 * decompressed data available to us now. Compress it into a temporary 1834 * abd so we can verify the MAC. The performance overhead of this will 1835 * be relatively low, since most objects in an encrypted objset will 1836 * be encrypted (instead of authenticated) anyway. 1837 */ 1838 if (HDR_GET_COMPRESS(hdr) != ZIO_COMPRESS_OFF && 1839 !HDR_COMPRESSION_ENABLED(hdr)) { 1840 abd = NULL; 1841 csize = zio_compress_data(HDR_GET_COMPRESS(hdr), 1842 hdr->b_l1hdr.b_pabd, &abd, lsize, MIN(lsize, psize), 1843 hdr->b_complevel); 1844 if (csize >= lsize || csize > psize) { 1845 ret = SET_ERROR(EIO); 1846 return (ret); 1847 } 1848 ASSERT3P(abd, !=, NULL); 1849 abd_zero_off(abd, csize, psize - csize); 1850 free_abd = B_TRUE; 1851 } 1852 1853 /* 1854 * Authentication is best effort. We authenticate whenever the key is 1855 * available. If we succeed we clear ARC_FLAG_NOAUTH. 1856 */ 1857 if (hdr->b_crypt_hdr.b_ot == DMU_OT_OBJSET) { 1858 ASSERT3U(HDR_GET_COMPRESS(hdr), ==, ZIO_COMPRESS_OFF); 1859 ASSERT3U(lsize, ==, psize); 1860 ret = spa_do_crypt_objset_mac_abd(B_FALSE, spa, dsobj, abd, 1861 psize, hdr->b_l1hdr.b_byteswap != DMU_BSWAP_NUMFUNCS); 1862 } else { 1863 ret = spa_do_crypt_mac_abd(B_FALSE, spa, dsobj, abd, psize, 1864 hdr->b_crypt_hdr.b_mac); 1865 } 1866 1867 if (ret == 0) 1868 arc_hdr_clear_flags(hdr, ARC_FLAG_NOAUTH); 1869 else if (ret == EACCES) 1870 ret = 0; 1871 1872 if (free_abd) 1873 abd_free(abd); 1874 1875 return (ret); 1876 } 1877 1878 /* 1879 * This function will take a header that only has raw encrypted data in 1880 * b_crypt_hdr.b_rabd and decrypt it into a new buffer which is stored in 1881 * b_l1hdr.b_pabd. If designated in the header flags, this function will 1882 * also decompress the data. 1883 */ 1884 static int 1885 arc_hdr_decrypt(arc_buf_hdr_t *hdr, spa_t *spa, const zbookmark_phys_t *zb) 1886 { 1887 int ret; 1888 abd_t *cabd = NULL; 1889 boolean_t no_crypt = B_FALSE; 1890 boolean_t bswap = (hdr->b_l1hdr.b_byteswap != DMU_BSWAP_NUMFUNCS); 1891 1892 ASSERT(HDR_EMPTY_OR_LOCKED(hdr)); 1893 ASSERT(HDR_ENCRYPTED(hdr)); 1894 1895 arc_hdr_alloc_abd(hdr, 0); 1896 1897 ret = spa_do_crypt_abd(B_FALSE, spa, zb, hdr->b_crypt_hdr.b_ot, 1898 B_FALSE, bswap, hdr->b_crypt_hdr.b_salt, hdr->b_crypt_hdr.b_iv, 1899 hdr->b_crypt_hdr.b_mac, HDR_GET_PSIZE(hdr), hdr->b_l1hdr.b_pabd, 1900 hdr->b_crypt_hdr.b_rabd, &no_crypt); 1901 if (ret != 0) 1902 goto error; 1903 1904 if (no_crypt) { 1905 abd_copy(hdr->b_l1hdr.b_pabd, hdr->b_crypt_hdr.b_rabd, 1906 HDR_GET_PSIZE(hdr)); 1907 } 1908 1909 /* 1910 * If this header has disabled arc compression but the b_pabd is 1911 * compressed after decrypting it, we need to decompress the newly 1912 * decrypted data. 1913 */ 1914 if (HDR_GET_COMPRESS(hdr) != ZIO_COMPRESS_OFF && 1915 !HDR_COMPRESSION_ENABLED(hdr)) { 1916 /* 1917 * We want to make sure that we are correctly honoring the 1918 * zfs_abd_scatter_enabled setting, so we allocate an abd here 1919 * and then loan a buffer from it, rather than allocating a 1920 * linear buffer and wrapping it in an abd later. 1921 */ 1922 cabd = arc_get_data_abd(hdr, arc_hdr_size(hdr), hdr, 0); 1923 1924 ret = zio_decompress_data(HDR_GET_COMPRESS(hdr), 1925 hdr->b_l1hdr.b_pabd, cabd, HDR_GET_PSIZE(hdr), 1926 HDR_GET_LSIZE(hdr), &hdr->b_complevel); 1927 if (ret != 0) { 1928 goto error; 1929 } 1930 1931 arc_free_data_abd(hdr, hdr->b_l1hdr.b_pabd, 1932 arc_hdr_size(hdr), hdr); 1933 hdr->b_l1hdr.b_pabd = cabd; 1934 } 1935 1936 return (0); 1937 1938 error: 1939 arc_hdr_free_abd(hdr, B_FALSE); 1940 if (cabd != NULL) 1941 arc_free_data_abd(hdr, cabd, arc_hdr_size(hdr), hdr); 1942 1943 return (ret); 1944 } 1945 1946 /* 1947 * This function is called during arc_buf_fill() to prepare the header's 1948 * abd plaintext pointer for use. This involves authenticated protected 1949 * data and decrypting encrypted data into the plaintext abd. 1950 */ 1951 static int 1952 arc_fill_hdr_crypt(arc_buf_hdr_t *hdr, kmutex_t *hash_lock, spa_t *spa, 1953 const zbookmark_phys_t *zb, boolean_t noauth) 1954 { 1955 int ret; 1956 1957 ASSERT(HDR_PROTECTED(hdr)); 1958 1959 if (hash_lock != NULL) 1960 mutex_enter(hash_lock); 1961 1962 if (HDR_NOAUTH(hdr) && !noauth) { 1963 /* 1964 * The caller requested authenticated data but our data has 1965 * not been authenticated yet. Verify the MAC now if we can. 1966 */ 1967 ret = arc_hdr_authenticate(hdr, spa, zb->zb_objset); 1968 if (ret != 0) 1969 goto error; 1970 } else if (HDR_HAS_RABD(hdr) && hdr->b_l1hdr.b_pabd == NULL) { 1971 /* 1972 * If we only have the encrypted version of the data, but the 1973 * unencrypted version was requested we take this opportunity 1974 * to store the decrypted version in the header for future use. 1975 */ 1976 ret = arc_hdr_decrypt(hdr, spa, zb); 1977 if (ret != 0) 1978 goto error; 1979 } 1980 1981 ASSERT3P(hdr->b_l1hdr.b_pabd, !=, NULL); 1982 1983 if (hash_lock != NULL) 1984 mutex_exit(hash_lock); 1985 1986 return (0); 1987 1988 error: 1989 if (hash_lock != NULL) 1990 mutex_exit(hash_lock); 1991 1992 return (ret); 1993 } 1994 1995 /* 1996 * This function is used by the dbuf code to decrypt bonus buffers in place. 1997 * The dbuf code itself doesn't have any locking for decrypting a shared dnode 1998 * block, so we use the hash lock here to protect against concurrent calls to 1999 * arc_buf_fill(). 2000 */ 2001 static void 2002 arc_buf_untransform_in_place(arc_buf_t *buf) 2003 { 2004 arc_buf_hdr_t *hdr = buf->b_hdr; 2005 2006 ASSERT(HDR_ENCRYPTED(hdr)); 2007 ASSERT3U(hdr->b_crypt_hdr.b_ot, ==, DMU_OT_DNODE); 2008 ASSERT(HDR_EMPTY_OR_LOCKED(hdr)); 2009 ASSERT3PF(hdr->b_l1hdr.b_pabd, !=, NULL, "hdr %px buf %px", hdr, buf); 2010 2011 zio_crypt_copy_dnode_bonus(hdr->b_l1hdr.b_pabd, buf->b_data, 2012 arc_buf_size(buf)); 2013 buf->b_flags &= ~ARC_BUF_FLAG_ENCRYPTED; 2014 buf->b_flags &= ~ARC_BUF_FLAG_COMPRESSED; 2015 } 2016 2017 /* 2018 * Given a buf that has a data buffer attached to it, this function will 2019 * efficiently fill the buf with data of the specified compression setting from 2020 * the hdr and update the hdr's b_freeze_cksum if necessary. If the buf and hdr 2021 * are already sharing a data buf, no copy is performed. 2022 * 2023 * If the buf is marked as compressed but uncompressed data was requested, this 2024 * will allocate a new data buffer for the buf, remove that flag, and fill the 2025 * buf with uncompressed data. You can't request a compressed buf on a hdr with 2026 * uncompressed data, and (since we haven't added support for it yet) if you 2027 * want compressed data your buf must already be marked as compressed and have 2028 * the correct-sized data buffer. 2029 */ 2030 static int 2031 arc_buf_fill(arc_buf_t *buf, spa_t *spa, const zbookmark_phys_t *zb, 2032 arc_fill_flags_t flags) 2033 { 2034 int error = 0; 2035 arc_buf_hdr_t *hdr = buf->b_hdr; 2036 boolean_t hdr_compressed = 2037 (arc_hdr_get_compress(hdr) != ZIO_COMPRESS_OFF); 2038 boolean_t compressed = (flags & ARC_FILL_COMPRESSED) != 0; 2039 boolean_t encrypted = (flags & ARC_FILL_ENCRYPTED) != 0; 2040 dmu_object_byteswap_t bswap = hdr->b_l1hdr.b_byteswap; 2041 kmutex_t *hash_lock = (flags & ARC_FILL_LOCKED) ? NULL : HDR_LOCK(hdr); 2042 2043 ASSERT3P(buf->b_data, !=, NULL); 2044 IMPLY(compressed, hdr_compressed || ARC_BUF_ENCRYPTED(buf)); 2045 IMPLY(compressed, ARC_BUF_COMPRESSED(buf)); 2046 IMPLY(encrypted, HDR_ENCRYPTED(hdr)); 2047 IMPLY(encrypted, ARC_BUF_ENCRYPTED(buf)); 2048 IMPLY(encrypted, ARC_BUF_COMPRESSED(buf)); 2049 IMPLY(encrypted, !arc_buf_is_shared(buf)); 2050 2051 /* 2052 * If the caller wanted encrypted data we just need to copy it from 2053 * b_rabd and potentially byteswap it. We won't be able to do any 2054 * further transforms on it. 2055 */ 2056 if (encrypted) { 2057 ASSERT(HDR_HAS_RABD(hdr)); 2058 abd_copy_to_buf(buf->b_data, hdr->b_crypt_hdr.b_rabd, 2059 HDR_GET_PSIZE(hdr)); 2060 goto byteswap; 2061 } 2062 2063 /* 2064 * Adjust encrypted and authenticated headers to accommodate 2065 * the request if needed. Dnode blocks (ARC_FILL_IN_PLACE) are 2066 * allowed to fail decryption due to keys not being loaded 2067 * without being marked as an IO error. 2068 */ 2069 if (HDR_PROTECTED(hdr)) { 2070 error = arc_fill_hdr_crypt(hdr, hash_lock, spa, 2071 zb, !!(flags & ARC_FILL_NOAUTH)); 2072 if (error == EACCES && (flags & ARC_FILL_IN_PLACE) != 0) { 2073 return (error); 2074 } else if (error != 0) { 2075 if (hash_lock != NULL) 2076 mutex_enter(hash_lock); 2077 arc_hdr_set_flags(hdr, ARC_FLAG_IO_ERROR); 2078 if (hash_lock != NULL) 2079 mutex_exit(hash_lock); 2080 return (error); 2081 } 2082 } 2083 2084 /* 2085 * There is a special case here for dnode blocks which are 2086 * decrypting their bonus buffers. These blocks may request to 2087 * be decrypted in-place. This is necessary because there may 2088 * be many dnodes pointing into this buffer and there is 2089 * currently no method to synchronize replacing the backing 2090 * b_data buffer and updating all of the pointers. Here we use 2091 * the hash lock to ensure there are no races. If the need 2092 * arises for other types to be decrypted in-place, they must 2093 * add handling here as well. 2094 */ 2095 if ((flags & ARC_FILL_IN_PLACE) != 0) { 2096 ASSERT(!hdr_compressed); 2097 ASSERT(!compressed); 2098 ASSERT(!encrypted); 2099 2100 if (HDR_ENCRYPTED(hdr) && ARC_BUF_ENCRYPTED(buf)) { 2101 ASSERT3U(hdr->b_crypt_hdr.b_ot, ==, DMU_OT_DNODE); 2102 2103 if (hash_lock != NULL) 2104 mutex_enter(hash_lock); 2105 arc_buf_untransform_in_place(buf); 2106 if (hash_lock != NULL) 2107 mutex_exit(hash_lock); 2108 2109 /* Compute the hdr's checksum if necessary */ 2110 arc_cksum_compute(buf); 2111 } 2112 2113 return (0); 2114 } 2115 2116 if (hdr_compressed == compressed) { 2117 if (ARC_BUF_SHARED(buf)) { 2118 ASSERT(arc_buf_is_shared(buf)); 2119 } else { 2120 abd_copy_to_buf(buf->b_data, hdr->b_l1hdr.b_pabd, 2121 arc_buf_size(buf)); 2122 } 2123 } else { 2124 ASSERT(hdr_compressed); 2125 ASSERT(!compressed); 2126 2127 /* 2128 * If the buf is sharing its data with the hdr, unlink it and 2129 * allocate a new data buffer for the buf. 2130 */ 2131 if (ARC_BUF_SHARED(buf)) { 2132 ASSERTF(ARC_BUF_COMPRESSED(buf), 2133 "buf %p was uncompressed", buf); 2134 2135 /* We need to give the buf its own b_data */ 2136 buf->b_flags &= ~ARC_BUF_FLAG_SHARED; 2137 buf->b_data = 2138 arc_get_data_buf(hdr, HDR_GET_LSIZE(hdr), buf); 2139 arc_hdr_clear_flags(hdr, ARC_FLAG_SHARED_DATA); 2140 2141 /* Previously overhead was 0; just add new overhead */ 2142 ARCSTAT_INCR(arcstat_overhead_size, HDR_GET_LSIZE(hdr)); 2143 } else if (ARC_BUF_COMPRESSED(buf)) { 2144 ASSERT(!arc_buf_is_shared(buf)); 2145 2146 /* We need to reallocate the buf's b_data */ 2147 arc_free_data_buf(hdr, buf->b_data, HDR_GET_PSIZE(hdr), 2148 buf); 2149 buf->b_data = 2150 arc_get_data_buf(hdr, HDR_GET_LSIZE(hdr), buf); 2151 2152 /* We increased the size of b_data; update overhead */ 2153 ARCSTAT_INCR(arcstat_overhead_size, 2154 HDR_GET_LSIZE(hdr) - HDR_GET_PSIZE(hdr)); 2155 } 2156 2157 /* 2158 * Regardless of the buf's previous compression settings, it 2159 * should not be compressed at the end of this function. 2160 */ 2161 buf->b_flags &= ~ARC_BUF_FLAG_COMPRESSED; 2162 2163 /* 2164 * Try copying the data from another buf which already has a 2165 * decompressed version. If that's not possible, it's time to 2166 * bite the bullet and decompress the data from the hdr. 2167 */ 2168 if (arc_buf_try_copy_decompressed_data(buf)) { 2169 /* Skip byteswapping and checksumming (already done) */ 2170 return (0); 2171 } else { 2172 abd_t dabd; 2173 abd_get_from_buf_struct(&dabd, buf->b_data, 2174 HDR_GET_LSIZE(hdr)); 2175 error = zio_decompress_data(HDR_GET_COMPRESS(hdr), 2176 hdr->b_l1hdr.b_pabd, &dabd, 2177 HDR_GET_PSIZE(hdr), HDR_GET_LSIZE(hdr), 2178 &hdr->b_complevel); 2179 abd_free(&dabd); 2180 2181 /* 2182 * Absent hardware errors or software bugs, this should 2183 * be impossible, but log it anyway so we can debug it. 2184 */ 2185 if (error != 0) { 2186 zfs_dbgmsg( 2187 "hdr %px, compress %d, psize %d, lsize %d", 2188 hdr, arc_hdr_get_compress(hdr), 2189 HDR_GET_PSIZE(hdr), HDR_GET_LSIZE(hdr)); 2190 if (hash_lock != NULL) 2191 mutex_enter(hash_lock); 2192 arc_hdr_set_flags(hdr, ARC_FLAG_IO_ERROR); 2193 if (hash_lock != NULL) 2194 mutex_exit(hash_lock); 2195 return (SET_ERROR(EIO)); 2196 } 2197 } 2198 } 2199 2200 byteswap: 2201 /* Byteswap the buf's data if necessary */ 2202 if (bswap != DMU_BSWAP_NUMFUNCS) { 2203 ASSERT(!HDR_SHARED_DATA(hdr)); 2204 ASSERT3U(bswap, <, DMU_BSWAP_NUMFUNCS); 2205 dmu_ot_byteswap[bswap].ob_func(buf->b_data, HDR_GET_LSIZE(hdr)); 2206 } 2207 2208 /* Compute the hdr's checksum if necessary */ 2209 arc_cksum_compute(buf); 2210 2211 return (0); 2212 } 2213 2214 /* 2215 * If this function is being called to decrypt an encrypted buffer or verify an 2216 * authenticated one, the key must be loaded and a mapping must be made 2217 * available in the keystore via spa_keystore_create_mapping() or one of its 2218 * callers. 2219 */ 2220 int 2221 arc_untransform(arc_buf_t *buf, spa_t *spa, const zbookmark_phys_t *zb, 2222 boolean_t in_place) 2223 { 2224 int ret; 2225 arc_fill_flags_t flags = 0; 2226 2227 if (in_place) 2228 flags |= ARC_FILL_IN_PLACE; 2229 2230 ret = arc_buf_fill(buf, spa, zb, flags); 2231 if (ret == ECKSUM) { 2232 /* 2233 * Convert authentication and decryption errors to EIO 2234 * (and generate an ereport) before leaving the ARC. 2235 */ 2236 ret = SET_ERROR(EIO); 2237 spa_log_error(spa, zb, buf->b_hdr->b_birth); 2238 (void) zfs_ereport_post(FM_EREPORT_ZFS_AUTHENTICATION, 2239 spa, NULL, zb, NULL, 0); 2240 } 2241 2242 return (ret); 2243 } 2244 2245 /* 2246 * Increment the amount of evictable space in the arc_state_t's refcount. 2247 * We account for the space used by the hdr and the arc buf individually 2248 * so that we can add and remove them from the refcount individually. 2249 */ 2250 static void 2251 arc_evictable_space_increment(arc_buf_hdr_t *hdr, arc_state_t *state) 2252 { 2253 arc_buf_contents_t type = arc_buf_type(hdr); 2254 2255 ASSERT(HDR_HAS_L1HDR(hdr)); 2256 2257 if (GHOST_STATE(state)) { 2258 ASSERT0P(hdr->b_l1hdr.b_buf); 2259 ASSERT0P(hdr->b_l1hdr.b_pabd); 2260 ASSERT(!HDR_HAS_RABD(hdr)); 2261 (void) zfs_refcount_add_many(&state->arcs_esize[type], 2262 HDR_GET_LSIZE(hdr), hdr); 2263 return; 2264 } 2265 2266 if (hdr->b_l1hdr.b_pabd != NULL) { 2267 (void) zfs_refcount_add_many(&state->arcs_esize[type], 2268 arc_hdr_size(hdr), hdr); 2269 } 2270 if (HDR_HAS_RABD(hdr)) { 2271 (void) zfs_refcount_add_many(&state->arcs_esize[type], 2272 HDR_GET_PSIZE(hdr), hdr); 2273 } 2274 2275 for (arc_buf_t *buf = hdr->b_l1hdr.b_buf; buf != NULL; 2276 buf = buf->b_next) { 2277 if (ARC_BUF_SHARED(buf)) 2278 continue; 2279 (void) zfs_refcount_add_many(&state->arcs_esize[type], 2280 arc_buf_size(buf), buf); 2281 } 2282 } 2283 2284 /* 2285 * Decrement the amount of evictable space in the arc_state_t's refcount. 2286 * We account for the space used by the hdr and the arc buf individually 2287 * so that we can add and remove them from the refcount individually. 2288 */ 2289 static void 2290 arc_evictable_space_decrement(arc_buf_hdr_t *hdr, arc_state_t *state) 2291 { 2292 arc_buf_contents_t type = arc_buf_type(hdr); 2293 2294 ASSERT(HDR_HAS_L1HDR(hdr)); 2295 2296 if (GHOST_STATE(state)) { 2297 ASSERT0P(hdr->b_l1hdr.b_buf); 2298 ASSERT0P(hdr->b_l1hdr.b_pabd); 2299 ASSERT(!HDR_HAS_RABD(hdr)); 2300 (void) zfs_refcount_remove_many(&state->arcs_esize[type], 2301 HDR_GET_LSIZE(hdr), hdr); 2302 return; 2303 } 2304 2305 if (hdr->b_l1hdr.b_pabd != NULL) { 2306 (void) zfs_refcount_remove_many(&state->arcs_esize[type], 2307 arc_hdr_size(hdr), hdr); 2308 } 2309 if (HDR_HAS_RABD(hdr)) { 2310 (void) zfs_refcount_remove_many(&state->arcs_esize[type], 2311 HDR_GET_PSIZE(hdr), hdr); 2312 } 2313 2314 for (arc_buf_t *buf = hdr->b_l1hdr.b_buf; buf != NULL; 2315 buf = buf->b_next) { 2316 if (ARC_BUF_SHARED(buf)) 2317 continue; 2318 (void) zfs_refcount_remove_many(&state->arcs_esize[type], 2319 arc_buf_size(buf), buf); 2320 } 2321 } 2322 2323 /* 2324 * Add a reference to this hdr indicating that someone is actively 2325 * referencing that memory. When the refcount transitions from 0 to 1, 2326 * we remove it from the respective arc_state_t list to indicate that 2327 * it is not evictable. 2328 */ 2329 static void 2330 add_reference(arc_buf_hdr_t *hdr, const void *tag) 2331 { 2332 arc_state_t *state = hdr->b_l1hdr.b_state; 2333 2334 ASSERT(HDR_HAS_L1HDR(hdr)); 2335 if (!HDR_EMPTY(hdr) && !MUTEX_HELD(HDR_LOCK(hdr))) { 2336 ASSERT(state == arc_anon); 2337 ASSERT(zfs_refcount_is_zero(&hdr->b_l1hdr.b_refcnt)); 2338 ASSERT0P(hdr->b_l1hdr.b_buf); 2339 } 2340 2341 if ((zfs_refcount_add(&hdr->b_l1hdr.b_refcnt, tag) == 1) && 2342 state != arc_anon && state != arc_l2c_only) { 2343 /* We don't use the L2-only state list. */ 2344 multilist_remove(&state->arcs_list[arc_buf_type(hdr)], hdr); 2345 arc_evictable_space_decrement(hdr, state); 2346 } 2347 } 2348 2349 /* 2350 * Remove a reference from this hdr. When the reference transitions from 2351 * 1 to 0 and we're not anonymous, then we add this hdr to the arc_state_t's 2352 * list making it eligible for eviction. 2353 */ 2354 static int 2355 remove_reference(arc_buf_hdr_t *hdr, const void *tag) 2356 { 2357 int cnt; 2358 arc_state_t *state = hdr->b_l1hdr.b_state; 2359 2360 ASSERT(HDR_HAS_L1HDR(hdr)); 2361 ASSERT(state == arc_anon || MUTEX_HELD(HDR_LOCK(hdr))); 2362 ASSERT(!GHOST_STATE(state)); /* arc_l2c_only counts as a ghost. */ 2363 2364 if ((cnt = zfs_refcount_remove(&hdr->b_l1hdr.b_refcnt, tag)) != 0) 2365 return (cnt); 2366 2367 if (state == arc_anon) { 2368 arc_hdr_destroy(hdr); 2369 return (0); 2370 } 2371 if ((state == arc_uncached && !HDR_PREFETCH(hdr)) || 2372 HDR_IO_ERROR(hdr)) { 2373 arc_change_state(arc_anon, hdr); 2374 arc_hdr_destroy(hdr); 2375 return (0); 2376 } 2377 multilist_insert(&state->arcs_list[arc_buf_type(hdr)], hdr); 2378 arc_evictable_space_increment(hdr, state); 2379 return (0); 2380 } 2381 2382 /* 2383 * Returns detailed information about a specific arc buffer. When the 2384 * state_index argument is set the function will calculate the arc header 2385 * list position for its arc state. Since this requires a linear traversal 2386 * callers are strongly encourage not to do this. However, it can be helpful 2387 * for targeted analysis so the functionality is provided. 2388 */ 2389 void 2390 arc_buf_info(arc_buf_t *ab, arc_buf_info_t *abi, int state_index) 2391 { 2392 (void) state_index; 2393 arc_buf_hdr_t *hdr = ab->b_hdr; 2394 l1arc_buf_hdr_t *l1hdr = NULL; 2395 l2arc_buf_hdr_t *l2hdr = NULL; 2396 arc_state_t *state = NULL; 2397 2398 memset(abi, 0, sizeof (arc_buf_info_t)); 2399 2400 if (hdr == NULL) 2401 return; 2402 2403 abi->abi_flags = hdr->b_flags; 2404 2405 if (HDR_HAS_L1HDR(hdr)) { 2406 l1hdr = &hdr->b_l1hdr; 2407 state = l1hdr->b_state; 2408 } 2409 if (HDR_HAS_L2HDR(hdr)) 2410 l2hdr = &hdr->b_l2hdr; 2411 2412 if (l1hdr) { 2413 abi->abi_bufcnt = 0; 2414 for (arc_buf_t *buf = l1hdr->b_buf; buf; buf = buf->b_next) 2415 abi->abi_bufcnt++; 2416 abi->abi_access = l1hdr->b_arc_access; 2417 abi->abi_mru_hits = l1hdr->b_mru_hits; 2418 abi->abi_mru_ghost_hits = l1hdr->b_mru_ghost_hits; 2419 abi->abi_mfu_hits = l1hdr->b_mfu_hits; 2420 abi->abi_mfu_ghost_hits = l1hdr->b_mfu_ghost_hits; 2421 abi->abi_holds = zfs_refcount_count(&l1hdr->b_refcnt); 2422 } 2423 2424 if (l2hdr) { 2425 abi->abi_l2arc_dattr = l2hdr->b_daddr; 2426 abi->abi_l2arc_hits = l2hdr->b_hits; 2427 } 2428 2429 abi->abi_state_type = state ? state->arcs_state : ARC_STATE_ANON; 2430 abi->abi_state_contents = arc_buf_type(hdr); 2431 abi->abi_size = arc_hdr_size(hdr); 2432 } 2433 2434 /* 2435 * Move the supplied buffer to the indicated state. The hash lock 2436 * for the buffer must be held by the caller. 2437 */ 2438 static void 2439 arc_change_state(arc_state_t *new_state, arc_buf_hdr_t *hdr) 2440 { 2441 arc_state_t *old_state; 2442 int64_t refcnt; 2443 boolean_t update_old, update_new; 2444 arc_buf_contents_t type = arc_buf_type(hdr); 2445 2446 /* 2447 * We almost always have an L1 hdr here, since we call arc_hdr_realloc() 2448 * in arc_read() when bringing a buffer out of the L2ARC. However, the 2449 * L1 hdr doesn't always exist when we change state to arc_anon before 2450 * destroying a header, in which case reallocating to add the L1 hdr is 2451 * pointless. 2452 */ 2453 if (HDR_HAS_L1HDR(hdr)) { 2454 old_state = hdr->b_l1hdr.b_state; 2455 refcnt = zfs_refcount_count(&hdr->b_l1hdr.b_refcnt); 2456 update_old = (hdr->b_l1hdr.b_buf != NULL || 2457 hdr->b_l1hdr.b_pabd != NULL || HDR_HAS_RABD(hdr)); 2458 2459 IMPLY(GHOST_STATE(old_state), hdr->b_l1hdr.b_buf == NULL); 2460 IMPLY(GHOST_STATE(new_state), hdr->b_l1hdr.b_buf == NULL); 2461 IMPLY(old_state == arc_anon, hdr->b_l1hdr.b_buf == NULL || 2462 ARC_BUF_LAST(hdr->b_l1hdr.b_buf)); 2463 } else { 2464 old_state = arc_l2c_only; 2465 refcnt = 0; 2466 update_old = B_FALSE; 2467 } 2468 update_new = update_old; 2469 if (GHOST_STATE(old_state)) 2470 update_old = B_TRUE; 2471 if (GHOST_STATE(new_state)) 2472 update_new = B_TRUE; 2473 2474 ASSERT(MUTEX_HELD(HDR_LOCK(hdr))); 2475 VERIFY3P(new_state, !=, old_state); 2476 2477 /* 2478 * If this buffer is evictable, transfer it from the 2479 * old state list to the new state list. 2480 */ 2481 if (refcnt == 0) { 2482 if (old_state != arc_anon && old_state != arc_l2c_only) { 2483 ASSERT(HDR_HAS_L1HDR(hdr)); 2484 /* remove_reference() saves on insert. */ 2485 if (multilist_link_active(&hdr->b_l1hdr.b_arc_node)) { 2486 multilist_remove(&old_state->arcs_list[type], 2487 hdr); 2488 arc_evictable_space_decrement(hdr, old_state); 2489 } 2490 } 2491 if (new_state != arc_anon && new_state != arc_l2c_only) { 2492 /* 2493 * An L1 header always exists here, since if we're 2494 * moving to some L1-cached state (i.e. not l2c_only or 2495 * anonymous), we realloc the header to add an L1hdr 2496 * beforehand. 2497 */ 2498 ASSERT(HDR_HAS_L1HDR(hdr)); 2499 multilist_insert(&new_state->arcs_list[type], hdr); 2500 arc_evictable_space_increment(hdr, new_state); 2501 } 2502 } 2503 2504 ASSERT(!HDR_EMPTY(hdr)); 2505 if (new_state == arc_anon && HDR_IN_HASH_TABLE(hdr)) 2506 buf_hash_remove(hdr); 2507 2508 /* adjust state sizes (ignore arc_l2c_only) */ 2509 2510 if (update_new && new_state != arc_l2c_only) { 2511 ASSERT(HDR_HAS_L1HDR(hdr)); 2512 if (GHOST_STATE(new_state)) { 2513 2514 /* 2515 * When moving a header to a ghost state, we first 2516 * remove all arc buffers. Thus, we'll have no arc 2517 * buffer to use for the reference. As a result, we 2518 * use the arc header pointer for the reference. 2519 */ 2520 (void) zfs_refcount_add_many( 2521 &new_state->arcs_size[type], 2522 HDR_GET_LSIZE(hdr), hdr); 2523 ASSERT0P(hdr->b_l1hdr.b_pabd); 2524 ASSERT(!HDR_HAS_RABD(hdr)); 2525 } else { 2526 2527 /* 2528 * Each individual buffer holds a unique reference, 2529 * thus we must remove each of these references one 2530 * at a time. 2531 */ 2532 for (arc_buf_t *buf = hdr->b_l1hdr.b_buf; buf != NULL; 2533 buf = buf->b_next) { 2534 2535 /* 2536 * When the arc_buf_t is sharing the data 2537 * block with the hdr, the owner of the 2538 * reference belongs to the hdr. Only 2539 * add to the refcount if the arc_buf_t is 2540 * not shared. 2541 */ 2542 if (ARC_BUF_SHARED(buf)) 2543 continue; 2544 2545 (void) zfs_refcount_add_many( 2546 &new_state->arcs_size[type], 2547 arc_buf_size(buf), buf); 2548 } 2549 2550 if (hdr->b_l1hdr.b_pabd != NULL) { 2551 (void) zfs_refcount_add_many( 2552 &new_state->arcs_size[type], 2553 arc_hdr_size(hdr), hdr); 2554 } 2555 2556 if (HDR_HAS_RABD(hdr)) { 2557 (void) zfs_refcount_add_many( 2558 &new_state->arcs_size[type], 2559 HDR_GET_PSIZE(hdr), hdr); 2560 } 2561 } 2562 } 2563 2564 if (update_old && old_state != arc_l2c_only) { 2565 ASSERT(HDR_HAS_L1HDR(hdr)); 2566 if (GHOST_STATE(old_state)) { 2567 ASSERT0P(hdr->b_l1hdr.b_pabd); 2568 ASSERT(!HDR_HAS_RABD(hdr)); 2569 2570 /* 2571 * When moving a header off of a ghost state, 2572 * the header will not contain any arc buffers. 2573 * We use the arc header pointer for the reference 2574 * which is exactly what we did when we put the 2575 * header on the ghost state. 2576 */ 2577 2578 (void) zfs_refcount_remove_many( 2579 &old_state->arcs_size[type], 2580 HDR_GET_LSIZE(hdr), hdr); 2581 } else { 2582 2583 /* 2584 * Each individual buffer holds a unique reference, 2585 * thus we must remove each of these references one 2586 * at a time. 2587 */ 2588 for (arc_buf_t *buf = hdr->b_l1hdr.b_buf; buf != NULL; 2589 buf = buf->b_next) { 2590 2591 /* 2592 * When the arc_buf_t is sharing the data 2593 * block with the hdr, the owner of the 2594 * reference belongs to the hdr. Only 2595 * add to the refcount if the arc_buf_t is 2596 * not shared. 2597 */ 2598 if (ARC_BUF_SHARED(buf)) 2599 continue; 2600 2601 (void) zfs_refcount_remove_many( 2602 &old_state->arcs_size[type], 2603 arc_buf_size(buf), buf); 2604 } 2605 ASSERT(hdr->b_l1hdr.b_pabd != NULL || 2606 HDR_HAS_RABD(hdr)); 2607 2608 if (hdr->b_l1hdr.b_pabd != NULL) { 2609 (void) zfs_refcount_remove_many( 2610 &old_state->arcs_size[type], 2611 arc_hdr_size(hdr), hdr); 2612 } 2613 2614 if (HDR_HAS_RABD(hdr)) { 2615 (void) zfs_refcount_remove_many( 2616 &old_state->arcs_size[type], 2617 HDR_GET_PSIZE(hdr), hdr); 2618 } 2619 } 2620 } 2621 2622 if (HDR_HAS_L1HDR(hdr)) { 2623 hdr->b_l1hdr.b_state = new_state; 2624 2625 if (HDR_HAS_L2HDR(hdr) && new_state != arc_l2c_only) { 2626 l2arc_hdr_arcstats_decrement_state(hdr); 2627 hdr->b_l2hdr.b_arcs_state = new_state->arcs_state; 2628 l2arc_hdr_arcstats_increment_state(hdr); 2629 } 2630 } 2631 } 2632 2633 void 2634 arc_space_consume(uint64_t space, arc_space_type_t type) 2635 { 2636 ASSERT(type >= 0 && type < ARC_SPACE_NUMTYPES); 2637 2638 switch (type) { 2639 default: 2640 break; 2641 case ARC_SPACE_DATA: 2642 ARCSTAT_INCR(arcstat_data_size, space); 2643 break; 2644 case ARC_SPACE_META: 2645 ARCSTAT_INCR(arcstat_metadata_size, space); 2646 break; 2647 case ARC_SPACE_BONUS: 2648 ARCSTAT_INCR(arcstat_bonus_size, space); 2649 break; 2650 case ARC_SPACE_DNODE: 2651 aggsum_add(&arc_sums.arcstat_dnode_size, space); 2652 break; 2653 case ARC_SPACE_DBUF: 2654 ARCSTAT_INCR(arcstat_dbuf_size, space); 2655 break; 2656 case ARC_SPACE_HDRS: 2657 ARCSTAT_INCR(arcstat_hdr_size, space); 2658 break; 2659 case ARC_SPACE_L2HDRS: 2660 aggsum_add(&arc_sums.arcstat_l2_hdr_size, space); 2661 break; 2662 case ARC_SPACE_ABD_CHUNK_WASTE: 2663 /* 2664 * Note: this includes space wasted by all scatter ABD's, not 2665 * just those allocated by the ARC. But the vast majority of 2666 * scatter ABD's come from the ARC, because other users are 2667 * very short-lived. 2668 */ 2669 ARCSTAT_INCR(arcstat_abd_chunk_waste_size, space); 2670 break; 2671 } 2672 2673 if (type != ARC_SPACE_DATA && type != ARC_SPACE_ABD_CHUNK_WASTE) 2674 ARCSTAT_INCR(arcstat_meta_used, space); 2675 2676 aggsum_add(&arc_sums.arcstat_size, space); 2677 } 2678 2679 void 2680 arc_space_return(uint64_t space, arc_space_type_t type) 2681 { 2682 ASSERT(type >= 0 && type < ARC_SPACE_NUMTYPES); 2683 2684 switch (type) { 2685 default: 2686 break; 2687 case ARC_SPACE_DATA: 2688 ARCSTAT_INCR(arcstat_data_size, -space); 2689 break; 2690 case ARC_SPACE_META: 2691 ARCSTAT_INCR(arcstat_metadata_size, -space); 2692 break; 2693 case ARC_SPACE_BONUS: 2694 ARCSTAT_INCR(arcstat_bonus_size, -space); 2695 break; 2696 case ARC_SPACE_DNODE: 2697 aggsum_add(&arc_sums.arcstat_dnode_size, -space); 2698 break; 2699 case ARC_SPACE_DBUF: 2700 ARCSTAT_INCR(arcstat_dbuf_size, -space); 2701 break; 2702 case ARC_SPACE_HDRS: 2703 ARCSTAT_INCR(arcstat_hdr_size, -space); 2704 break; 2705 case ARC_SPACE_L2HDRS: 2706 aggsum_add(&arc_sums.arcstat_l2_hdr_size, -space); 2707 break; 2708 case ARC_SPACE_ABD_CHUNK_WASTE: 2709 ARCSTAT_INCR(arcstat_abd_chunk_waste_size, -space); 2710 break; 2711 } 2712 2713 if (type != ARC_SPACE_DATA && type != ARC_SPACE_ABD_CHUNK_WASTE) 2714 ARCSTAT_INCR(arcstat_meta_used, -space); 2715 2716 ASSERT(aggsum_compare(&arc_sums.arcstat_size, space) >= 0); 2717 aggsum_add(&arc_sums.arcstat_size, -space); 2718 } 2719 2720 /* 2721 * Given a hdr and a buf, returns whether that buf can share its b_data buffer 2722 * with the hdr's b_pabd. 2723 */ 2724 static boolean_t 2725 arc_can_share(arc_buf_hdr_t *hdr, arc_buf_t *buf) 2726 { 2727 /* 2728 * The criteria for sharing a hdr's data are: 2729 * 1. the buffer is not encrypted 2730 * 2. the hdr's compression matches the buf's compression 2731 * 3. the hdr doesn't need to be byteswapped 2732 * 4. the hdr isn't already being shared 2733 * 5. the buf is either compressed or it is the last buf in the hdr list 2734 * 2735 * Criterion #5 maintains the invariant that shared uncompressed 2736 * bufs must be the final buf in the hdr's b_buf list. Reading this, you 2737 * might ask, "if a compressed buf is allocated first, won't that be the 2738 * last thing in the list?", but in that case it's impossible to create 2739 * a shared uncompressed buf anyway (because the hdr must be compressed 2740 * to have the compressed buf). You might also think that #3 is 2741 * sufficient to make this guarantee, however it's possible 2742 * (specifically in the rare L2ARC write race mentioned in 2743 * arc_buf_alloc_impl()) there will be an existing uncompressed buf that 2744 * is shareable, but wasn't at the time of its allocation. Rather than 2745 * allow a new shared uncompressed buf to be created and then shuffle 2746 * the list around to make it the last element, this simply disallows 2747 * sharing if the new buf isn't the first to be added. 2748 */ 2749 ASSERT3P(buf->b_hdr, ==, hdr); 2750 boolean_t hdr_compressed = 2751 arc_hdr_get_compress(hdr) != ZIO_COMPRESS_OFF; 2752 boolean_t buf_compressed = ARC_BUF_COMPRESSED(buf) != 0; 2753 return (!ARC_BUF_ENCRYPTED(buf) && 2754 buf_compressed == hdr_compressed && 2755 hdr->b_l1hdr.b_byteswap == DMU_BSWAP_NUMFUNCS && 2756 !HDR_SHARED_DATA(hdr) && 2757 (ARC_BUF_LAST(buf) || ARC_BUF_COMPRESSED(buf))); 2758 } 2759 2760 /* 2761 * Allocate a buf for this hdr. If you care about the data that's in the hdr, 2762 * or if you want a compressed buffer, pass those flags in. Returns 0 if the 2763 * copy was made successfully, or an error code otherwise. 2764 */ 2765 static int 2766 arc_buf_alloc_impl(arc_buf_hdr_t *hdr, spa_t *spa, const zbookmark_phys_t *zb, 2767 const void *tag, boolean_t encrypted, boolean_t compressed, 2768 boolean_t noauth, boolean_t fill, arc_buf_t **ret) 2769 { 2770 arc_buf_t *buf; 2771 arc_fill_flags_t flags = ARC_FILL_LOCKED; 2772 2773 ASSERT(HDR_HAS_L1HDR(hdr)); 2774 ASSERT3U(HDR_GET_LSIZE(hdr), >, 0); 2775 VERIFY(hdr->b_type == ARC_BUFC_DATA || 2776 hdr->b_type == ARC_BUFC_METADATA); 2777 ASSERT3P(ret, !=, NULL); 2778 ASSERT0P(*ret); 2779 IMPLY(encrypted, compressed); 2780 2781 buf = *ret = kmem_cache_alloc(buf_cache, KM_PUSHPAGE); 2782 buf->b_hdr = hdr; 2783 buf->b_data = NULL; 2784 buf->b_next = hdr->b_l1hdr.b_buf; 2785 buf->b_flags = 0; 2786 2787 add_reference(hdr, tag); 2788 2789 /* 2790 * We're about to change the hdr's b_flags. We must either 2791 * hold the hash_lock or be undiscoverable. 2792 */ 2793 ASSERT(HDR_EMPTY_OR_LOCKED(hdr)); 2794 2795 /* 2796 * Only honor requests for compressed bufs if the hdr is actually 2797 * compressed. This must be overridden if the buffer is encrypted since 2798 * encrypted buffers cannot be decompressed. 2799 */ 2800 if (encrypted) { 2801 buf->b_flags |= ARC_BUF_FLAG_COMPRESSED; 2802 buf->b_flags |= ARC_BUF_FLAG_ENCRYPTED; 2803 flags |= ARC_FILL_COMPRESSED | ARC_FILL_ENCRYPTED; 2804 } else if (compressed && 2805 arc_hdr_get_compress(hdr) != ZIO_COMPRESS_OFF) { 2806 buf->b_flags |= ARC_BUF_FLAG_COMPRESSED; 2807 flags |= ARC_FILL_COMPRESSED; 2808 } 2809 2810 if (noauth) { 2811 ASSERT0(encrypted); 2812 flags |= ARC_FILL_NOAUTH; 2813 } 2814 2815 /* 2816 * If the hdr's data can be shared then we share the data buffer and 2817 * set the appropriate bit in the hdr's b_flags to indicate the hdr is 2818 * sharing it's b_pabd with the arc_buf_t. Otherwise, we allocate a new 2819 * buffer to store the buf's data. 2820 * 2821 * There are two additional restrictions here because we're sharing 2822 * hdr -> buf instead of the usual buf -> hdr. First, the hdr can't be 2823 * actively involved in an L2ARC write, because if this buf is used by 2824 * an arc_write() then the hdr's data buffer will be released when the 2825 * write completes, even though the L2ARC write might still be using it. 2826 * Second, the hdr's ABD must be linear so that the buf's user doesn't 2827 * need to be ABD-aware. It must be allocated via 2828 * zio_[data_]buf_alloc(), not as a page, because we need to be able 2829 * to abd_release_ownership_of_buf(), which isn't allowed on "linear 2830 * page" buffers because the ABD code needs to handle freeing them 2831 * specially. 2832 */ 2833 boolean_t can_share = arc_can_share(hdr, buf) && 2834 !HDR_L2_WRITING(hdr) && 2835 hdr->b_l1hdr.b_pabd != NULL && 2836 abd_is_linear(hdr->b_l1hdr.b_pabd) && 2837 !abd_is_linear_page(hdr->b_l1hdr.b_pabd); 2838 2839 /* Set up b_data and sharing */ 2840 if (can_share) { 2841 buf->b_data = abd_to_buf(hdr->b_l1hdr.b_pabd); 2842 buf->b_flags |= ARC_BUF_FLAG_SHARED; 2843 arc_hdr_set_flags(hdr, ARC_FLAG_SHARED_DATA); 2844 } else { 2845 buf->b_data = 2846 arc_get_data_buf(hdr, arc_buf_size(buf), buf); 2847 ARCSTAT_INCR(arcstat_overhead_size, arc_buf_size(buf)); 2848 } 2849 VERIFY3P(buf->b_data, !=, NULL); 2850 2851 hdr->b_l1hdr.b_buf = buf; 2852 2853 /* 2854 * If the user wants the data from the hdr, we need to either copy or 2855 * decompress the data. 2856 */ 2857 if (fill) { 2858 ASSERT3P(zb, !=, NULL); 2859 return (arc_buf_fill(buf, spa, zb, flags)); 2860 } 2861 2862 return (0); 2863 } 2864 2865 static const char *arc_onloan_tag = "onloan"; 2866 2867 static inline void 2868 arc_loaned_bytes_update(int64_t delta) 2869 { 2870 atomic_add_64(&arc_loaned_bytes, delta); 2871 2872 /* assert that it did not wrap around */ 2873 ASSERT3S(atomic_add_64_nv(&arc_loaned_bytes, 0), >=, 0); 2874 } 2875 2876 /* 2877 * Loan out an anonymous arc buffer. Loaned buffers are not counted as in 2878 * flight data by arc_tempreserve_space() until they are "returned". Loaned 2879 * buffers must be returned to the arc before they can be used by the DMU or 2880 * freed. 2881 */ 2882 arc_buf_t * 2883 arc_loan_buf(spa_t *spa, boolean_t is_metadata, int size) 2884 { 2885 arc_buf_t *buf = arc_alloc_buf(spa, arc_onloan_tag, 2886 is_metadata ? ARC_BUFC_METADATA : ARC_BUFC_DATA, size); 2887 2888 arc_loaned_bytes_update(arc_buf_size(buf)); 2889 2890 return (buf); 2891 } 2892 2893 arc_buf_t * 2894 arc_loan_compressed_buf(spa_t *spa, uint64_t psize, uint64_t lsize, 2895 enum zio_compress compression_type, uint8_t complevel) 2896 { 2897 arc_buf_t *buf = arc_alloc_compressed_buf(spa, arc_onloan_tag, 2898 psize, lsize, compression_type, complevel); 2899 2900 arc_loaned_bytes_update(arc_buf_size(buf)); 2901 2902 return (buf); 2903 } 2904 2905 arc_buf_t * 2906 arc_loan_raw_buf(spa_t *spa, uint64_t dsobj, boolean_t byteorder, 2907 const uint8_t *salt, const uint8_t *iv, const uint8_t *mac, 2908 dmu_object_type_t ot, uint64_t psize, uint64_t lsize, 2909 enum zio_compress compression_type, uint8_t complevel) 2910 { 2911 arc_buf_t *buf = arc_alloc_raw_buf(spa, arc_onloan_tag, dsobj, 2912 byteorder, salt, iv, mac, ot, psize, lsize, compression_type, 2913 complevel); 2914 2915 atomic_add_64(&arc_loaned_bytes, psize); 2916 return (buf); 2917 } 2918 2919 2920 /* 2921 * Return a loaned arc buffer to the arc. 2922 */ 2923 void 2924 arc_return_buf(arc_buf_t *buf, const void *tag) 2925 { 2926 arc_buf_hdr_t *hdr = buf->b_hdr; 2927 2928 ASSERT3P(buf->b_data, !=, NULL); 2929 ASSERT(HDR_HAS_L1HDR(hdr)); 2930 (void) zfs_refcount_add(&hdr->b_l1hdr.b_refcnt, tag); 2931 (void) zfs_refcount_remove(&hdr->b_l1hdr.b_refcnt, arc_onloan_tag); 2932 2933 arc_loaned_bytes_update(-arc_buf_size(buf)); 2934 } 2935 2936 /* Detach an arc_buf from a dbuf (tag) */ 2937 void 2938 arc_loan_inuse_buf(arc_buf_t *buf, const void *tag) 2939 { 2940 arc_buf_hdr_t *hdr = buf->b_hdr; 2941 2942 ASSERT3P(buf->b_data, !=, NULL); 2943 ASSERT(HDR_HAS_L1HDR(hdr)); 2944 (void) zfs_refcount_add(&hdr->b_l1hdr.b_refcnt, arc_onloan_tag); 2945 (void) zfs_refcount_remove(&hdr->b_l1hdr.b_refcnt, tag); 2946 2947 arc_loaned_bytes_update(arc_buf_size(buf)); 2948 } 2949 2950 static void 2951 l2arc_free_abd_on_write(abd_t *abd, l2arc_dev_t *dev) 2952 { 2953 l2arc_data_free_t *df = kmem_alloc(sizeof (*df), KM_SLEEP); 2954 2955 df->l2df_abd = abd; 2956 df->l2df_dev = dev; 2957 mutex_enter(&l2arc_free_on_write_mtx); 2958 list_insert_head(l2arc_free_on_write, df); 2959 mutex_exit(&l2arc_free_on_write_mtx); 2960 } 2961 2962 static void 2963 arc_hdr_free_on_write(arc_buf_hdr_t *hdr, boolean_t free_rdata) 2964 { 2965 arc_state_t *state = hdr->b_l1hdr.b_state; 2966 arc_buf_contents_t type = arc_buf_type(hdr); 2967 uint64_t size = (free_rdata) ? HDR_GET_PSIZE(hdr) : arc_hdr_size(hdr); 2968 2969 /* protected by hash lock, if in the hash table */ 2970 if (multilist_link_active(&hdr->b_l1hdr.b_arc_node)) { 2971 ASSERT(zfs_refcount_is_zero(&hdr->b_l1hdr.b_refcnt)); 2972 ASSERT(state != arc_anon && state != arc_l2c_only); 2973 2974 (void) zfs_refcount_remove_many(&state->arcs_esize[type], 2975 size, hdr); 2976 } 2977 (void) zfs_refcount_remove_many(&state->arcs_size[type], size, hdr); 2978 if (type == ARC_BUFC_METADATA) { 2979 arc_space_return(size, ARC_SPACE_META); 2980 } else { 2981 ASSERT(type == ARC_BUFC_DATA); 2982 arc_space_return(size, ARC_SPACE_DATA); 2983 } 2984 2985 /* 2986 * L2HDR must exist since we're freeing an L2ARC-related ABD. 2987 */ 2988 ASSERT(HDR_HAS_L2HDR(hdr)); 2989 2990 if (free_rdata) { 2991 l2arc_free_abd_on_write(hdr->b_crypt_hdr.b_rabd, 2992 hdr->b_l2hdr.b_dev); 2993 } else { 2994 l2arc_free_abd_on_write(hdr->b_l1hdr.b_pabd, 2995 hdr->b_l2hdr.b_dev); 2996 } 2997 } 2998 2999 /* 3000 * Share the arc_buf_t's data with the hdr. Whenever we are sharing the 3001 * data buffer, we transfer the refcount ownership to the hdr and update 3002 * the appropriate kstats. 3003 */ 3004 static void 3005 arc_share_buf(arc_buf_hdr_t *hdr, arc_buf_t *buf) 3006 { 3007 ASSERT(arc_can_share(hdr, buf)); 3008 ASSERT0P(hdr->b_l1hdr.b_pabd); 3009 ASSERT(!ARC_BUF_ENCRYPTED(buf)); 3010 ASSERT(HDR_EMPTY_OR_LOCKED(hdr)); 3011 3012 /* 3013 * Start sharing the data buffer. We transfer the 3014 * refcount ownership to the hdr since it always owns 3015 * the refcount whenever an arc_buf_t is shared. 3016 */ 3017 zfs_refcount_transfer_ownership_many( 3018 &hdr->b_l1hdr.b_state->arcs_size[arc_buf_type(hdr)], 3019 arc_hdr_size(hdr), buf, hdr); 3020 hdr->b_l1hdr.b_pabd = abd_get_from_buf(buf->b_data, arc_buf_size(buf)); 3021 abd_take_ownership_of_buf(hdr->b_l1hdr.b_pabd, 3022 HDR_ISTYPE_METADATA(hdr)); 3023 arc_hdr_set_flags(hdr, ARC_FLAG_SHARED_DATA); 3024 buf->b_flags |= ARC_BUF_FLAG_SHARED; 3025 3026 /* 3027 * Since we've transferred ownership to the hdr we need 3028 * to increment its compressed and uncompressed kstats and 3029 * decrement the overhead size. 3030 */ 3031 ARCSTAT_INCR(arcstat_compressed_size, arc_hdr_size(hdr)); 3032 ARCSTAT_INCR(arcstat_uncompressed_size, HDR_GET_LSIZE(hdr)); 3033 ARCSTAT_INCR(arcstat_overhead_size, -arc_buf_size(buf)); 3034 } 3035 3036 static void 3037 arc_unshare_buf(arc_buf_hdr_t *hdr, arc_buf_t *buf) 3038 { 3039 ASSERT(arc_buf_is_shared(buf)); 3040 ASSERT3P(hdr->b_l1hdr.b_pabd, !=, NULL); 3041 ASSERT(HDR_EMPTY_OR_LOCKED(hdr)); 3042 3043 /* 3044 * We are no longer sharing this buffer so we need 3045 * to transfer its ownership to the rightful owner. 3046 */ 3047 zfs_refcount_transfer_ownership_many( 3048 &hdr->b_l1hdr.b_state->arcs_size[arc_buf_type(hdr)], 3049 arc_hdr_size(hdr), hdr, buf); 3050 arc_hdr_clear_flags(hdr, ARC_FLAG_SHARED_DATA); 3051 abd_release_ownership_of_buf(hdr->b_l1hdr.b_pabd); 3052 abd_free(hdr->b_l1hdr.b_pabd); 3053 hdr->b_l1hdr.b_pabd = NULL; 3054 buf->b_flags &= ~ARC_BUF_FLAG_SHARED; 3055 3056 /* 3057 * Since the buffer is no longer shared between 3058 * the arc buf and the hdr, count it as overhead. 3059 */ 3060 ARCSTAT_INCR(arcstat_compressed_size, -arc_hdr_size(hdr)); 3061 ARCSTAT_INCR(arcstat_uncompressed_size, -HDR_GET_LSIZE(hdr)); 3062 ARCSTAT_INCR(arcstat_overhead_size, arc_buf_size(buf)); 3063 } 3064 3065 /* 3066 * Remove an arc_buf_t from the hdr's buf list and return the last 3067 * arc_buf_t on the list. If no buffers remain on the list then return 3068 * NULL. 3069 */ 3070 static arc_buf_t * 3071 arc_buf_remove(arc_buf_hdr_t *hdr, arc_buf_t *buf) 3072 { 3073 ASSERT(HDR_HAS_L1HDR(hdr)); 3074 ASSERT(HDR_EMPTY_OR_LOCKED(hdr)); 3075 3076 arc_buf_t **bufp = &hdr->b_l1hdr.b_buf; 3077 arc_buf_t *lastbuf = NULL; 3078 3079 /* 3080 * Remove the buf from the hdr list and locate the last 3081 * remaining buffer on the list. 3082 */ 3083 while (*bufp != NULL) { 3084 if (*bufp == buf) 3085 *bufp = buf->b_next; 3086 3087 /* 3088 * If we've removed a buffer in the middle of 3089 * the list then update the lastbuf and update 3090 * bufp. 3091 */ 3092 if (*bufp != NULL) { 3093 lastbuf = *bufp; 3094 bufp = &(*bufp)->b_next; 3095 } 3096 } 3097 buf->b_next = NULL; 3098 ASSERT3P(lastbuf, !=, buf); 3099 IMPLY(lastbuf != NULL, ARC_BUF_LAST(lastbuf)); 3100 3101 return (lastbuf); 3102 } 3103 3104 /* 3105 * Free up buf->b_data and pull the arc_buf_t off of the arc_buf_hdr_t's 3106 * list and free it. 3107 */ 3108 static void 3109 arc_buf_destroy_impl(arc_buf_t *buf) 3110 { 3111 arc_buf_hdr_t *hdr = buf->b_hdr; 3112 3113 /* 3114 * Free up the data associated with the buf but only if we're not 3115 * sharing this with the hdr. If we are sharing it with the hdr, the 3116 * hdr is responsible for doing the free. 3117 */ 3118 if (buf->b_data != NULL) { 3119 /* 3120 * We're about to change the hdr's b_flags. We must either 3121 * hold the hash_lock or be undiscoverable. 3122 */ 3123 ASSERT(HDR_EMPTY_OR_LOCKED(hdr)); 3124 3125 arc_cksum_verify(buf); 3126 arc_buf_unwatch(buf); 3127 3128 if (ARC_BUF_SHARED(buf)) { 3129 arc_hdr_clear_flags(hdr, ARC_FLAG_SHARED_DATA); 3130 } else { 3131 ASSERT(!arc_buf_is_shared(buf)); 3132 uint64_t size = arc_buf_size(buf); 3133 arc_free_data_buf(hdr, buf->b_data, size, buf); 3134 ARCSTAT_INCR(arcstat_overhead_size, -size); 3135 } 3136 buf->b_data = NULL; 3137 3138 /* 3139 * If we have no more encrypted buffers and we've already 3140 * gotten a copy of the decrypted data we can free b_rabd 3141 * to save some space. 3142 */ 3143 if (ARC_BUF_ENCRYPTED(buf) && HDR_HAS_RABD(hdr) && 3144 hdr->b_l1hdr.b_pabd != NULL && !HDR_IO_IN_PROGRESS(hdr)) { 3145 arc_buf_t *b; 3146 for (b = hdr->b_l1hdr.b_buf; b; b = b->b_next) { 3147 if (b != buf && ARC_BUF_ENCRYPTED(b)) 3148 break; 3149 } 3150 if (b == NULL) 3151 arc_hdr_free_abd(hdr, B_TRUE); 3152 } 3153 } 3154 3155 arc_buf_t *lastbuf = arc_buf_remove(hdr, buf); 3156 3157 if (ARC_BUF_SHARED(buf) && !ARC_BUF_COMPRESSED(buf)) { 3158 /* 3159 * If the current arc_buf_t is sharing its data buffer with the 3160 * hdr, then reassign the hdr's b_pabd to share it with the new 3161 * buffer at the end of the list. The shared buffer is always 3162 * the last one on the hdr's buffer list. 3163 * 3164 * There is an equivalent case for compressed bufs, but since 3165 * they aren't guaranteed to be the last buf in the list and 3166 * that is an exceedingly rare case, we just allow that space be 3167 * wasted temporarily. We must also be careful not to share 3168 * encrypted buffers, since they cannot be shared. 3169 */ 3170 if (lastbuf != NULL && !ARC_BUF_ENCRYPTED(lastbuf)) { 3171 /* Only one buf can be shared at once */ 3172 ASSERT(!arc_buf_is_shared(lastbuf)); 3173 /* hdr is uncompressed so can't have compressed buf */ 3174 ASSERT(!ARC_BUF_COMPRESSED(lastbuf)); 3175 3176 ASSERT3P(hdr->b_l1hdr.b_pabd, !=, NULL); 3177 arc_hdr_free_abd(hdr, B_FALSE); 3178 3179 /* 3180 * We must setup a new shared block between the 3181 * last buffer and the hdr. The data would have 3182 * been allocated by the arc buf so we need to transfer 3183 * ownership to the hdr since it's now being shared. 3184 */ 3185 arc_share_buf(hdr, lastbuf); 3186 } 3187 } else if (HDR_SHARED_DATA(hdr)) { 3188 /* 3189 * Uncompressed shared buffers are always at the end 3190 * of the list. Compressed buffers don't have the 3191 * same requirements. This makes it hard to 3192 * simply assert that the lastbuf is shared so 3193 * we rely on the hdr's compression flags to determine 3194 * if we have a compressed, shared buffer. 3195 */ 3196 ASSERT3P(lastbuf, !=, NULL); 3197 ASSERT(arc_buf_is_shared(lastbuf) || 3198 arc_hdr_get_compress(hdr) != ZIO_COMPRESS_OFF); 3199 } 3200 3201 /* 3202 * Free the checksum if we're removing the last uncompressed buf from 3203 * this hdr. 3204 */ 3205 if (!arc_hdr_has_uncompressed_buf(hdr)) { 3206 arc_cksum_free(hdr); 3207 } 3208 3209 /* clean up the buf */ 3210 buf->b_hdr = NULL; 3211 kmem_cache_free(buf_cache, buf); 3212 } 3213 3214 static void 3215 arc_hdr_alloc_abd(arc_buf_hdr_t *hdr, int alloc_flags) 3216 { 3217 uint64_t size; 3218 boolean_t alloc_rdata = ((alloc_flags & ARC_HDR_ALLOC_RDATA) != 0); 3219 3220 ASSERT3U(HDR_GET_LSIZE(hdr), >, 0); 3221 ASSERT(HDR_HAS_L1HDR(hdr)); 3222 ASSERT(!HDR_SHARED_DATA(hdr) || alloc_rdata); 3223 IMPLY(alloc_rdata, HDR_PROTECTED(hdr)); 3224 3225 if (alloc_rdata) { 3226 size = HDR_GET_PSIZE(hdr); 3227 ASSERT0P(hdr->b_crypt_hdr.b_rabd); 3228 hdr->b_crypt_hdr.b_rabd = arc_get_data_abd(hdr, size, hdr, 3229 alloc_flags); 3230 ASSERT3P(hdr->b_crypt_hdr.b_rabd, !=, NULL); 3231 ARCSTAT_INCR(arcstat_raw_size, size); 3232 } else { 3233 size = arc_hdr_size(hdr); 3234 ASSERT0P(hdr->b_l1hdr.b_pabd); 3235 hdr->b_l1hdr.b_pabd = arc_get_data_abd(hdr, size, hdr, 3236 alloc_flags); 3237 ASSERT3P(hdr->b_l1hdr.b_pabd, !=, NULL); 3238 } 3239 3240 ARCSTAT_INCR(arcstat_compressed_size, size); 3241 ARCSTAT_INCR(arcstat_uncompressed_size, HDR_GET_LSIZE(hdr)); 3242 } 3243 3244 static void 3245 arc_hdr_free_abd(arc_buf_hdr_t *hdr, boolean_t free_rdata) 3246 { 3247 uint64_t size = (free_rdata) ? HDR_GET_PSIZE(hdr) : arc_hdr_size(hdr); 3248 3249 ASSERT(HDR_HAS_L1HDR(hdr)); 3250 ASSERT(hdr->b_l1hdr.b_pabd != NULL || HDR_HAS_RABD(hdr)); 3251 IMPLY(free_rdata, HDR_HAS_RABD(hdr)); 3252 3253 /* 3254 * If the hdr is currently being written to the l2arc then 3255 * we defer freeing the data by adding it to the l2arc_free_on_write 3256 * list. The l2arc will free the data once it's finished 3257 * writing it to the l2arc device. 3258 */ 3259 if (HDR_L2_WRITING(hdr)) { 3260 arc_hdr_free_on_write(hdr, free_rdata); 3261 ARCSTAT_BUMP(arcstat_l2_free_on_write); 3262 } else if (free_rdata) { 3263 arc_free_data_abd(hdr, hdr->b_crypt_hdr.b_rabd, size, hdr); 3264 } else { 3265 arc_free_data_abd(hdr, hdr->b_l1hdr.b_pabd, size, hdr); 3266 } 3267 3268 if (free_rdata) { 3269 hdr->b_crypt_hdr.b_rabd = NULL; 3270 ARCSTAT_INCR(arcstat_raw_size, -size); 3271 } else { 3272 hdr->b_l1hdr.b_pabd = NULL; 3273 } 3274 3275 if (hdr->b_l1hdr.b_pabd == NULL && !HDR_HAS_RABD(hdr)) 3276 hdr->b_l1hdr.b_byteswap = DMU_BSWAP_NUMFUNCS; 3277 3278 ARCSTAT_INCR(arcstat_compressed_size, -size); 3279 ARCSTAT_INCR(arcstat_uncompressed_size, -HDR_GET_LSIZE(hdr)); 3280 } 3281 3282 /* 3283 * Allocate empty anonymous ARC header. The header will get its identity 3284 * assigned and buffers attached later as part of read or write operations. 3285 * 3286 * In case of read arc_read() assigns header its identify (b_dva + b_birth), 3287 * inserts it into ARC hash to become globally visible and allocates physical 3288 * (b_pabd) or raw (b_rabd) ABD buffer to read into from disk. On disk read 3289 * completion arc_read_done() allocates ARC buffer(s) as needed, potentially 3290 * sharing one of them with the physical ABD buffer. 3291 * 3292 * In case of write arc_alloc_buf() allocates ARC buffer to be filled with 3293 * data. Then after compression and/or encryption arc_write_ready() allocates 3294 * and fills (or potentially shares) physical (b_pabd) or raw (b_rabd) ABD 3295 * buffer. On disk write completion arc_write_done() assigns the header its 3296 * new identity (b_dva + b_birth) and inserts into ARC hash. 3297 * 3298 * In case of partial overwrite the old data is read first as described. Then 3299 * arc_release() either allocates new anonymous ARC header and moves the ARC 3300 * buffer to it, or reuses the old ARC header by discarding its identity and 3301 * removing it from ARC hash. After buffer modification normal write process 3302 * follows as described. 3303 */ 3304 static arc_buf_hdr_t * 3305 arc_hdr_alloc(uint64_t spa, int32_t psize, int32_t lsize, 3306 boolean_t protected, enum zio_compress compression_type, uint8_t complevel, 3307 arc_buf_contents_t type) 3308 { 3309 arc_buf_hdr_t *hdr; 3310 3311 VERIFY(type == ARC_BUFC_DATA || type == ARC_BUFC_METADATA); 3312 hdr = kmem_cache_alloc(hdr_full_cache, KM_PUSHPAGE); 3313 3314 ASSERT(HDR_EMPTY(hdr)); 3315 #ifdef ZFS_DEBUG 3316 ASSERT0P(hdr->b_l1hdr.b_freeze_cksum); 3317 #endif 3318 HDR_SET_PSIZE(hdr, psize); 3319 HDR_SET_LSIZE(hdr, lsize); 3320 hdr->b_spa = spa; 3321 hdr->b_type = type; 3322 hdr->b_flags = 0; 3323 arc_hdr_set_flags(hdr, arc_bufc_to_flags(type) | ARC_FLAG_HAS_L1HDR); 3324 arc_hdr_set_compress(hdr, compression_type); 3325 hdr->b_complevel = complevel; 3326 if (protected) 3327 arc_hdr_set_flags(hdr, ARC_FLAG_PROTECTED); 3328 3329 hdr->b_l1hdr.b_state = arc_anon; 3330 hdr->b_l1hdr.b_arc_access = 0; 3331 hdr->b_l1hdr.b_mru_hits = 0; 3332 hdr->b_l1hdr.b_mru_ghost_hits = 0; 3333 hdr->b_l1hdr.b_mfu_hits = 0; 3334 hdr->b_l1hdr.b_mfu_ghost_hits = 0; 3335 hdr->b_l1hdr.b_buf = NULL; 3336 3337 ASSERT(zfs_refcount_is_zero(&hdr->b_l1hdr.b_refcnt)); 3338 3339 return (hdr); 3340 } 3341 3342 /* 3343 * Transition between the two allocation states for the arc_buf_hdr struct. 3344 * The arc_buf_hdr struct can be allocated with (hdr_full_cache) or without 3345 * (hdr_l2only_cache) the fields necessary for the L1 cache - the smaller 3346 * version is used when a cache buffer is only in the L2ARC in order to reduce 3347 * memory usage. 3348 */ 3349 static arc_buf_hdr_t * 3350 arc_hdr_realloc(arc_buf_hdr_t *hdr, kmem_cache_t *old, kmem_cache_t *new) 3351 { 3352 ASSERT(HDR_HAS_L2HDR(hdr)); 3353 3354 arc_buf_hdr_t *nhdr; 3355 l2arc_dev_t *dev = hdr->b_l2hdr.b_dev; 3356 3357 ASSERT((old == hdr_full_cache && new == hdr_l2only_cache) || 3358 (old == hdr_l2only_cache && new == hdr_full_cache)); 3359 3360 nhdr = kmem_cache_alloc(new, KM_PUSHPAGE); 3361 3362 ASSERT(MUTEX_HELD(HDR_LOCK(hdr))); 3363 buf_hash_remove(hdr); 3364 3365 memcpy(nhdr, hdr, HDR_L2ONLY_SIZE); 3366 3367 if (new == hdr_full_cache) { 3368 arc_hdr_set_flags(nhdr, ARC_FLAG_HAS_L1HDR); 3369 /* 3370 * arc_access and arc_change_state need to be aware that a 3371 * header has just come out of L2ARC, so we set its state to 3372 * l2c_only even though it's about to change. 3373 */ 3374 nhdr->b_l1hdr.b_state = arc_l2c_only; 3375 3376 /* Verify previous threads set to NULL before freeing */ 3377 ASSERT0P(nhdr->b_l1hdr.b_pabd); 3378 ASSERT(!HDR_HAS_RABD(hdr)); 3379 } else { 3380 ASSERT0P(hdr->b_l1hdr.b_buf); 3381 #ifdef ZFS_DEBUG 3382 ASSERT0P(hdr->b_l1hdr.b_freeze_cksum); 3383 #endif 3384 3385 /* 3386 * If we've reached here, We must have been called from 3387 * arc_evict_hdr(), as such we should have already been 3388 * removed from any ghost list we were previously on 3389 * (which protects us from racing with arc_evict_state), 3390 * thus no locking is needed during this check. 3391 */ 3392 ASSERT(!multilist_link_active(&hdr->b_l1hdr.b_arc_node)); 3393 3394 /* 3395 * A buffer must not be moved into the arc_l2c_only 3396 * state if it's not finished being written out to the 3397 * l2arc device. Otherwise, the b_l1hdr.b_pabd field 3398 * might try to be accessed, even though it was removed. 3399 */ 3400 VERIFY(!HDR_L2_WRITING(hdr)); 3401 VERIFY0P(hdr->b_l1hdr.b_pabd); 3402 ASSERT(!HDR_HAS_RABD(hdr)); 3403 3404 arc_hdr_clear_flags(nhdr, ARC_FLAG_HAS_L1HDR); 3405 } 3406 /* 3407 * The header has been reallocated so we need to re-insert it into any 3408 * lists it was on. 3409 */ 3410 (void) buf_hash_insert(nhdr, NULL); 3411 3412 ASSERT(list_link_active(&hdr->b_l2hdr.b_l2node)); 3413 3414 mutex_enter(&dev->l2ad_mtx); 3415 3416 /* 3417 * We must place the realloc'ed header back into the list at 3418 * the same spot. Otherwise, if it's placed earlier in the list, 3419 * l2arc_write_buffers() could find it during the function's 3420 * write phase, and try to write it out to the l2arc. 3421 */ 3422 list_insert_after(&dev->l2ad_buflist, hdr, nhdr); 3423 list_remove(&dev->l2ad_buflist, hdr); 3424 3425 mutex_exit(&dev->l2ad_mtx); 3426 3427 /* 3428 * Since we're using the pointer address as the tag when 3429 * incrementing and decrementing the l2ad_alloc refcount, we 3430 * must remove the old pointer (that we're about to destroy) and 3431 * add the new pointer to the refcount. Otherwise we'd remove 3432 * the wrong pointer address when calling arc_hdr_destroy() later. 3433 */ 3434 3435 (void) zfs_refcount_remove_many(&dev->l2ad_alloc, 3436 arc_hdr_size(hdr), hdr); 3437 (void) zfs_refcount_add_many(&dev->l2ad_alloc, 3438 arc_hdr_size(nhdr), nhdr); 3439 3440 buf_discard_identity(hdr); 3441 kmem_cache_free(old, hdr); 3442 3443 return (nhdr); 3444 } 3445 3446 /* 3447 * This function is used by the send / receive code to convert a newly 3448 * allocated arc_buf_t to one that is suitable for a raw encrypted write. It 3449 * is also used to allow the root objset block to be updated without altering 3450 * its embedded MACs. Both block types will always be uncompressed so we do not 3451 * have to worry about compression type or psize. 3452 */ 3453 void 3454 arc_convert_to_raw(arc_buf_t *buf, uint64_t dsobj, boolean_t byteorder, 3455 dmu_object_type_t ot, const uint8_t *salt, const uint8_t *iv, 3456 const uint8_t *mac) 3457 { 3458 arc_buf_hdr_t *hdr = buf->b_hdr; 3459 3460 ASSERT(ot == DMU_OT_DNODE || ot == DMU_OT_OBJSET); 3461 ASSERT(HDR_HAS_L1HDR(hdr)); 3462 ASSERT3P(hdr->b_l1hdr.b_state, ==, arc_anon); 3463 3464 buf->b_flags |= (ARC_BUF_FLAG_COMPRESSED | ARC_BUF_FLAG_ENCRYPTED); 3465 arc_hdr_set_flags(hdr, ARC_FLAG_PROTECTED); 3466 hdr->b_crypt_hdr.b_dsobj = dsobj; 3467 hdr->b_crypt_hdr.b_ot = ot; 3468 hdr->b_l1hdr.b_byteswap = (byteorder == ZFS_HOST_BYTEORDER) ? 3469 DMU_BSWAP_NUMFUNCS : DMU_OT_BYTESWAP(ot); 3470 if (!arc_hdr_has_uncompressed_buf(hdr)) 3471 arc_cksum_free(hdr); 3472 3473 if (salt != NULL) 3474 memcpy(hdr->b_crypt_hdr.b_salt, salt, ZIO_DATA_SALT_LEN); 3475 if (iv != NULL) 3476 memcpy(hdr->b_crypt_hdr.b_iv, iv, ZIO_DATA_IV_LEN); 3477 if (mac != NULL) 3478 memcpy(hdr->b_crypt_hdr.b_mac, mac, ZIO_DATA_MAC_LEN); 3479 } 3480 3481 /* 3482 * Allocate a new arc_buf_hdr_t and arc_buf_t and return the buf to the caller. 3483 * The buf is returned thawed since we expect the consumer to modify it. 3484 */ 3485 arc_buf_t * 3486 arc_alloc_buf(spa_t *spa, const void *tag, arc_buf_contents_t type, 3487 int32_t size) 3488 { 3489 arc_buf_hdr_t *hdr = arc_hdr_alloc(spa_load_guid(spa), size, size, 3490 B_FALSE, ZIO_COMPRESS_OFF, 0, type); 3491 3492 arc_buf_t *buf = NULL; 3493 VERIFY0(arc_buf_alloc_impl(hdr, spa, NULL, tag, B_FALSE, B_FALSE, 3494 B_FALSE, B_FALSE, &buf)); 3495 arc_buf_thaw(buf); 3496 3497 return (buf); 3498 } 3499 3500 /* 3501 * Allocate a compressed buf in the same manner as arc_alloc_buf. Don't use this 3502 * for bufs containing metadata. 3503 */ 3504 arc_buf_t * 3505 arc_alloc_compressed_buf(spa_t *spa, const void *tag, uint64_t psize, 3506 uint64_t lsize, enum zio_compress compression_type, uint8_t complevel) 3507 { 3508 ASSERT3U(lsize, >, 0); 3509 ASSERT3U(lsize, >=, psize); 3510 ASSERT3U(compression_type, >, ZIO_COMPRESS_OFF); 3511 ASSERT3U(compression_type, <, ZIO_COMPRESS_FUNCTIONS); 3512 3513 arc_buf_hdr_t *hdr = arc_hdr_alloc(spa_load_guid(spa), psize, lsize, 3514 B_FALSE, compression_type, complevel, ARC_BUFC_DATA); 3515 3516 arc_buf_t *buf = NULL; 3517 VERIFY0(arc_buf_alloc_impl(hdr, spa, NULL, tag, B_FALSE, 3518 B_TRUE, B_FALSE, B_FALSE, &buf)); 3519 arc_buf_thaw(buf); 3520 3521 /* 3522 * To ensure that the hdr has the correct data in it if we call 3523 * arc_untransform() on this buf before it's been written to disk, 3524 * it's easiest if we just set up sharing between the buf and the hdr. 3525 */ 3526 arc_share_buf(hdr, buf); 3527 3528 return (buf); 3529 } 3530 3531 arc_buf_t * 3532 arc_alloc_raw_buf(spa_t *spa, const void *tag, uint64_t dsobj, 3533 boolean_t byteorder, const uint8_t *salt, const uint8_t *iv, 3534 const uint8_t *mac, dmu_object_type_t ot, uint64_t psize, uint64_t lsize, 3535 enum zio_compress compression_type, uint8_t complevel) 3536 { 3537 arc_buf_hdr_t *hdr; 3538 arc_buf_t *buf; 3539 arc_buf_contents_t type = DMU_OT_IS_METADATA(ot) ? 3540 ARC_BUFC_METADATA : ARC_BUFC_DATA; 3541 3542 ASSERT3U(lsize, >, 0); 3543 ASSERT3U(lsize, >=, psize); 3544 ASSERT3U(compression_type, >=, ZIO_COMPRESS_OFF); 3545 ASSERT3U(compression_type, <, ZIO_COMPRESS_FUNCTIONS); 3546 3547 hdr = arc_hdr_alloc(spa_load_guid(spa), psize, lsize, B_TRUE, 3548 compression_type, complevel, type); 3549 3550 hdr->b_crypt_hdr.b_dsobj = dsobj; 3551 hdr->b_crypt_hdr.b_ot = ot; 3552 hdr->b_l1hdr.b_byteswap = (byteorder == ZFS_HOST_BYTEORDER) ? 3553 DMU_BSWAP_NUMFUNCS : DMU_OT_BYTESWAP(ot); 3554 memcpy(hdr->b_crypt_hdr.b_salt, salt, ZIO_DATA_SALT_LEN); 3555 memcpy(hdr->b_crypt_hdr.b_iv, iv, ZIO_DATA_IV_LEN); 3556 memcpy(hdr->b_crypt_hdr.b_mac, mac, ZIO_DATA_MAC_LEN); 3557 3558 /* 3559 * This buffer will be considered encrypted even if the ot is not an 3560 * encrypted type. It will become authenticated instead in 3561 * arc_write_ready(). 3562 */ 3563 buf = NULL; 3564 VERIFY0(arc_buf_alloc_impl(hdr, spa, NULL, tag, B_TRUE, B_TRUE, 3565 B_FALSE, B_FALSE, &buf)); 3566 arc_buf_thaw(buf); 3567 3568 return (buf); 3569 } 3570 3571 static void 3572 l2arc_hdr_arcstats_update(arc_buf_hdr_t *hdr, boolean_t incr, 3573 boolean_t state_only) 3574 { 3575 uint64_t lsize = HDR_GET_LSIZE(hdr); 3576 uint64_t psize = HDR_GET_PSIZE(hdr); 3577 uint64_t asize = HDR_GET_L2SIZE(hdr); 3578 arc_buf_contents_t type = hdr->b_type; 3579 int64_t lsize_s; 3580 int64_t psize_s; 3581 int64_t asize_s; 3582 3583 /* For L2 we expect the header's b_l2size to be valid */ 3584 ASSERT3U(asize, >=, psize); 3585 3586 if (incr) { 3587 lsize_s = lsize; 3588 psize_s = psize; 3589 asize_s = asize; 3590 } else { 3591 lsize_s = -lsize; 3592 psize_s = -psize; 3593 asize_s = -asize; 3594 } 3595 3596 /* If the buffer is a prefetch, count it as such. */ 3597 if (HDR_PREFETCH(hdr)) { 3598 ARCSTAT_INCR(arcstat_l2_prefetch_asize, asize_s); 3599 } else { 3600 /* 3601 * We use the value stored in the L2 header upon initial 3602 * caching in L2ARC. This value will be updated in case 3603 * an MRU/MRU_ghost buffer transitions to MFU but the L2ARC 3604 * metadata (log entry) cannot currently be updated. Having 3605 * the ARC state in the L2 header solves the problem of a 3606 * possibly absent L1 header (apparent in buffers restored 3607 * from persistent L2ARC). 3608 */ 3609 switch (hdr->b_l2hdr.b_arcs_state) { 3610 case ARC_STATE_MRU_GHOST: 3611 case ARC_STATE_MRU: 3612 ARCSTAT_INCR(arcstat_l2_mru_asize, asize_s); 3613 break; 3614 case ARC_STATE_MFU_GHOST: 3615 case ARC_STATE_MFU: 3616 ARCSTAT_INCR(arcstat_l2_mfu_asize, asize_s); 3617 break; 3618 default: 3619 break; 3620 } 3621 } 3622 3623 if (state_only) 3624 return; 3625 3626 ARCSTAT_INCR(arcstat_l2_psize, psize_s); 3627 ARCSTAT_INCR(arcstat_l2_lsize, lsize_s); 3628 3629 switch (type) { 3630 case ARC_BUFC_DATA: 3631 ARCSTAT_INCR(arcstat_l2_bufc_data_asize, asize_s); 3632 break; 3633 case ARC_BUFC_METADATA: 3634 ARCSTAT_INCR(arcstat_l2_bufc_metadata_asize, asize_s); 3635 break; 3636 default: 3637 break; 3638 } 3639 } 3640 3641 3642 static void 3643 arc_hdr_l2hdr_destroy(arc_buf_hdr_t *hdr) 3644 { 3645 l2arc_buf_hdr_t *l2hdr = &hdr->b_l2hdr; 3646 l2arc_dev_t *dev = l2hdr->b_dev; 3647 3648 ASSERT(MUTEX_HELD(&dev->l2ad_mtx)); 3649 ASSERT(HDR_HAS_L2HDR(hdr)); 3650 3651 list_remove(&dev->l2ad_buflist, hdr); 3652 3653 l2arc_hdr_arcstats_decrement(hdr); 3654 if (dev->l2ad_vdev != NULL) { 3655 uint64_t asize = HDR_GET_L2SIZE(hdr); 3656 vdev_space_update(dev->l2ad_vdev, -asize, 0, 0); 3657 } 3658 3659 (void) zfs_refcount_remove_many(&dev->l2ad_alloc, arc_hdr_size(hdr), 3660 hdr); 3661 arc_hdr_clear_flags(hdr, ARC_FLAG_HAS_L2HDR); 3662 } 3663 3664 static void 3665 arc_hdr_destroy(arc_buf_hdr_t *hdr) 3666 { 3667 if (HDR_HAS_L1HDR(hdr)) { 3668 ASSERT(zfs_refcount_is_zero(&hdr->b_l1hdr.b_refcnt)); 3669 ASSERT3P(hdr->b_l1hdr.b_state, ==, arc_anon); 3670 } 3671 VERIFY(!HDR_IO_IN_PROGRESS(hdr)); 3672 VERIFY(!HDR_IN_HASH_TABLE(hdr)); 3673 boolean_t l1hdr_destroyed = B_FALSE; 3674 3675 /* 3676 * If L2_WRITING, destroy L1HDR before L2HDR (under mutex) so 3677 * arc_hdr_free_abd() can properly defer ABDs. Otherwise, destroy 3678 * L1HDR outside mutex to minimize contention. 3679 */ 3680 if (HDR_HAS_L2HDR(hdr)) { 3681 l2arc_dev_t *dev = hdr->b_l2hdr.b_dev; 3682 boolean_t buflist_held = MUTEX_HELD(&dev->l2ad_mtx); 3683 3684 if (!buflist_held) 3685 mutex_enter(&dev->l2ad_mtx); 3686 3687 /* 3688 * Even though we checked this conditional above, we 3689 * need to check this again now that we have the 3690 * l2ad_mtx. This is because we could be racing with 3691 * another thread calling l2arc_evict() which might have 3692 * destroyed this header's L2 portion as we were waiting 3693 * to acquire the l2ad_mtx. If that happens, we don't 3694 * want to re-destroy the header's L2 portion. 3695 */ 3696 if (HDR_HAS_L2HDR(hdr)) { 3697 if (HDR_L2_WRITING(hdr)) { 3698 l1hdr_destroyed = B_TRUE; 3699 3700 if (!HDR_EMPTY(hdr)) 3701 buf_discard_identity(hdr); 3702 3703 if (HDR_HAS_L1HDR(hdr)) { 3704 arc_cksum_free(hdr); 3705 3706 while (hdr->b_l1hdr.b_buf != NULL) 3707 arc_buf_destroy_impl( 3708 hdr->b_l1hdr.b_buf); 3709 3710 if (hdr->b_l1hdr.b_pabd != NULL) 3711 arc_hdr_free_abd(hdr, B_FALSE); 3712 3713 if (HDR_HAS_RABD(hdr)) 3714 arc_hdr_free_abd(hdr, B_TRUE); 3715 } 3716 } 3717 3718 arc_hdr_l2hdr_destroy(hdr); 3719 } 3720 3721 if (!buflist_held) 3722 mutex_exit(&dev->l2ad_mtx); 3723 } 3724 3725 if (!l1hdr_destroyed) { 3726 if (!HDR_EMPTY(hdr)) 3727 buf_discard_identity(hdr); 3728 3729 if (HDR_HAS_L1HDR(hdr)) { 3730 arc_cksum_free(hdr); 3731 3732 while (hdr->b_l1hdr.b_buf != NULL) 3733 arc_buf_destroy_impl(hdr->b_l1hdr.b_buf); 3734 3735 if (hdr->b_l1hdr.b_pabd != NULL) 3736 arc_hdr_free_abd(hdr, B_FALSE); 3737 3738 if (HDR_HAS_RABD(hdr)) 3739 arc_hdr_free_abd(hdr, B_TRUE); 3740 } 3741 } 3742 3743 VERIFY0P(hdr->b_hash_next); 3744 if (HDR_HAS_L1HDR(hdr)) { 3745 VERIFY(!multilist_link_active(&hdr->b_l1hdr.b_arc_node)); 3746 ASSERT0P(hdr->b_l1hdr.b_acb); 3747 #ifdef ZFS_DEBUG 3748 ASSERT0P(hdr->b_l1hdr.b_freeze_cksum); 3749 #endif 3750 kmem_cache_free(hdr_full_cache, hdr); 3751 } else { 3752 kmem_cache_free(hdr_l2only_cache, hdr); 3753 } 3754 } 3755 3756 void 3757 arc_buf_destroy(arc_buf_t *buf, const void *tag) 3758 { 3759 arc_buf_hdr_t *hdr = buf->b_hdr; 3760 3761 if (hdr->b_l1hdr.b_state == arc_anon) { 3762 ASSERT3P(hdr->b_l1hdr.b_buf, ==, buf); 3763 ASSERT(ARC_BUF_LAST(buf)); 3764 ASSERT(!HDR_IO_IN_PROGRESS(hdr)); 3765 VERIFY0(remove_reference(hdr, tag)); 3766 return; 3767 } 3768 3769 kmutex_t *hash_lock = HDR_LOCK(hdr); 3770 mutex_enter(hash_lock); 3771 3772 ASSERT3P(hdr, ==, buf->b_hdr); 3773 ASSERT3P(hdr->b_l1hdr.b_buf, !=, NULL); 3774 ASSERT3P(hash_lock, ==, HDR_LOCK(hdr)); 3775 ASSERT3P(hdr->b_l1hdr.b_state, !=, arc_anon); 3776 ASSERT3P(buf->b_data, !=, NULL); 3777 3778 arc_buf_destroy_impl(buf); 3779 (void) remove_reference(hdr, tag); 3780 mutex_exit(hash_lock); 3781 } 3782 3783 /* 3784 * Evict the arc_buf_hdr that is provided as a parameter. The resultant 3785 * state of the header is dependent on its state prior to entering this 3786 * function. The following transitions are possible: 3787 * 3788 * - arc_mru -> arc_mru_ghost 3789 * - arc_mfu -> arc_mfu_ghost 3790 * - arc_mru_ghost -> arc_l2c_only 3791 * - arc_mru_ghost -> deleted 3792 * - arc_mfu_ghost -> arc_l2c_only 3793 * - arc_mfu_ghost -> deleted 3794 * - arc_uncached -> deleted 3795 * 3796 * Return total size of evicted data buffers for eviction progress tracking. 3797 * When evicting from ghost states return logical buffer size to make eviction 3798 * progress at the same (or at least comparable) rate as from non-ghost states. 3799 * 3800 * Return *real_evicted for actual ARC size reduction to wake up threads 3801 * waiting for it. For non-ghost states it includes size of evicted data 3802 * buffers (the headers are not freed there). For ghost states it includes 3803 * only the evicted headers size. 3804 */ 3805 static int64_t 3806 arc_evict_hdr(arc_buf_hdr_t *hdr, uint64_t *real_evicted) 3807 { 3808 arc_state_t *evicted_state, *state; 3809 int64_t bytes_evicted = 0; 3810 3811 ASSERT(MUTEX_HELD(HDR_LOCK(hdr))); 3812 ASSERT(HDR_HAS_L1HDR(hdr)); 3813 ASSERT(!HDR_IO_IN_PROGRESS(hdr)); 3814 ASSERT0P(hdr->b_l1hdr.b_buf); 3815 ASSERT0(zfs_refcount_count(&hdr->b_l1hdr.b_refcnt)); 3816 3817 *real_evicted = 0; 3818 state = hdr->b_l1hdr.b_state; 3819 if (GHOST_STATE(state)) { 3820 3821 /* 3822 * l2arc_write_buffers() relies on a header's L1 portion 3823 * (i.e. its b_pabd field) during it's write phase. 3824 * Thus, we cannot push a header onto the arc_l2c_only 3825 * state (removing its L1 piece) until the header is 3826 * done being written to the l2arc. 3827 */ 3828 if (HDR_HAS_L2HDR(hdr) && HDR_L2_WRITING(hdr)) { 3829 ARCSTAT_BUMP(arcstat_evict_l2_skip); 3830 return (bytes_evicted); 3831 } 3832 3833 ARCSTAT_BUMP(arcstat_deleted); 3834 bytes_evicted += HDR_GET_LSIZE(hdr); 3835 3836 DTRACE_PROBE1(arc__delete, arc_buf_hdr_t *, hdr); 3837 3838 if (HDR_HAS_L2HDR(hdr)) { 3839 ASSERT0P(hdr->b_l1hdr.b_pabd); 3840 ASSERT(!HDR_HAS_RABD(hdr)); 3841 /* 3842 * This buffer is cached on the 2nd Level ARC; 3843 * don't destroy the header. 3844 */ 3845 arc_change_state(arc_l2c_only, hdr); 3846 /* 3847 * dropping from L1+L2 cached to L2-only, 3848 * realloc to remove the L1 header. 3849 */ 3850 (void) arc_hdr_realloc(hdr, hdr_full_cache, 3851 hdr_l2only_cache); 3852 *real_evicted += HDR_FULL_SIZE - HDR_L2ONLY_SIZE; 3853 } else { 3854 arc_change_state(arc_anon, hdr); 3855 arc_hdr_destroy(hdr); 3856 *real_evicted += HDR_FULL_SIZE; 3857 } 3858 return (bytes_evicted); 3859 } 3860 3861 ASSERT(state == arc_mru || state == arc_mfu || state == arc_uncached); 3862 evicted_state = (state == arc_uncached) ? arc_anon : 3863 ((state == arc_mru) ? arc_mru_ghost : arc_mfu_ghost); 3864 3865 /* prefetch buffers have a minimum lifespan */ 3866 uint_t min_lifetime = HDR_PRESCIENT_PREFETCH(hdr) ? 3867 arc_min_prescient_prefetch : arc_min_prefetch; 3868 if ((hdr->b_flags & (ARC_FLAG_PREFETCH | ARC_FLAG_INDIRECT)) && 3869 ddi_get_lbolt() - hdr->b_l1hdr.b_arc_access < min_lifetime) { 3870 ARCSTAT_BUMP(arcstat_evict_skip); 3871 return (bytes_evicted); 3872 } 3873 3874 if (HDR_HAS_L2HDR(hdr)) { 3875 ARCSTAT_INCR(arcstat_evict_l2_cached, HDR_GET_LSIZE(hdr)); 3876 } else { 3877 if (l2arc_write_eligible(hdr->b_spa, hdr)) { 3878 ARCSTAT_INCR(arcstat_evict_l2_eligible, 3879 HDR_GET_LSIZE(hdr)); 3880 3881 switch (state->arcs_state) { 3882 case ARC_STATE_MRU: 3883 ARCSTAT_INCR( 3884 arcstat_evict_l2_eligible_mru, 3885 HDR_GET_LSIZE(hdr)); 3886 break; 3887 case ARC_STATE_MFU: 3888 ARCSTAT_INCR( 3889 arcstat_evict_l2_eligible_mfu, 3890 HDR_GET_LSIZE(hdr)); 3891 break; 3892 default: 3893 break; 3894 } 3895 } else { 3896 ARCSTAT_INCR(arcstat_evict_l2_ineligible, 3897 HDR_GET_LSIZE(hdr)); 3898 } 3899 } 3900 3901 bytes_evicted += arc_hdr_size(hdr); 3902 *real_evicted += arc_hdr_size(hdr); 3903 3904 /* 3905 * If this hdr is being evicted and has a compressed buffer then we 3906 * discard it here before we change states. This ensures that the 3907 * accounting is updated correctly in arc_free_data_impl(). 3908 */ 3909 if (hdr->b_l1hdr.b_pabd != NULL) 3910 arc_hdr_free_abd(hdr, B_FALSE); 3911 3912 if (HDR_HAS_RABD(hdr)) 3913 arc_hdr_free_abd(hdr, B_TRUE); 3914 3915 arc_change_state(evicted_state, hdr); 3916 DTRACE_PROBE1(arc__evict, arc_buf_hdr_t *, hdr); 3917 if (evicted_state == arc_anon) { 3918 arc_hdr_destroy(hdr); 3919 *real_evicted += HDR_FULL_SIZE; 3920 } else { 3921 ASSERT(HDR_IN_HASH_TABLE(hdr)); 3922 } 3923 3924 return (bytes_evicted); 3925 } 3926 3927 static void 3928 arc_set_need_free(void) 3929 { 3930 ASSERT(MUTEX_HELD(&arc_evict_lock)); 3931 int64_t remaining = arc_free_memory() - arc_sys_free / 2; 3932 arc_evict_waiter_t *aw = list_tail(&arc_evict_waiters); 3933 if (aw == NULL) { 3934 arc_need_free = MAX(-remaining, 0); 3935 } else { 3936 arc_need_free = 3937 MAX(-remaining, (int64_t)(aw->aew_count - arc_evict_count)); 3938 } 3939 } 3940 3941 static uint64_t 3942 arc_evict_state_impl(multilist_t *ml, int idx, arc_buf_hdr_t *marker, 3943 uint64_t spa, uint64_t bytes, boolean_t *more) 3944 { 3945 multilist_sublist_t *mls; 3946 uint64_t bytes_evicted = 0, real_evicted = 0; 3947 arc_buf_hdr_t *hdr; 3948 kmutex_t *hash_lock; 3949 uint_t evict_count = zfs_arc_evict_batch_limit; 3950 3951 ASSERT3P(marker, !=, NULL); 3952 3953 mls = multilist_sublist_lock_idx(ml, idx); 3954 3955 for (hdr = multilist_sublist_prev(mls, marker); likely(hdr != NULL); 3956 hdr = multilist_sublist_prev(mls, marker)) { 3957 if ((evict_count == 0) || (bytes_evicted >= bytes)) 3958 break; 3959 3960 /* 3961 * To keep our iteration location, move the marker 3962 * forward. Since we're not holding hdr's hash lock, we 3963 * must be very careful and not remove 'hdr' from the 3964 * sublist. Otherwise, other consumers might mistake the 3965 * 'hdr' as not being on a sublist when they call the 3966 * multilist_link_active() function (they all rely on 3967 * the hash lock protecting concurrent insertions and 3968 * removals). multilist_sublist_move_forward() was 3969 * specifically implemented to ensure this is the case 3970 * (only 'marker' will be removed and re-inserted). 3971 */ 3972 multilist_sublist_move_forward(mls, marker); 3973 3974 /* 3975 * The only case where the b_spa field should ever be 3976 * zero, is the marker headers inserted by 3977 * arc_evict_state(). It's possible for multiple threads 3978 * to be calling arc_evict_state() concurrently (e.g. 3979 * dsl_pool_close() and zio_inject_fault()), so we must 3980 * skip any markers we see from these other threads. 3981 */ 3982 if (hdr->b_spa == 0) 3983 continue; 3984 3985 /* we're only interested in evicting buffers of a certain spa */ 3986 if (spa != 0 && hdr->b_spa != spa) { 3987 ARCSTAT_BUMP(arcstat_evict_skip); 3988 continue; 3989 } 3990 3991 hash_lock = HDR_LOCK(hdr); 3992 3993 /* 3994 * We aren't calling this function from any code path 3995 * that would already be holding a hash lock, so we're 3996 * asserting on this assumption to be defensive in case 3997 * this ever changes. Without this check, it would be 3998 * possible to incorrectly increment arcstat_mutex_miss 3999 * below (e.g. if the code changed such that we called 4000 * this function with a hash lock held). 4001 */ 4002 ASSERT(!MUTEX_HELD(hash_lock)); 4003 4004 if (mutex_tryenter(hash_lock)) { 4005 uint64_t revicted; 4006 uint64_t evicted = arc_evict_hdr(hdr, &revicted); 4007 mutex_exit(hash_lock); 4008 4009 bytes_evicted += evicted; 4010 real_evicted += revicted; 4011 4012 /* 4013 * If evicted is zero, arc_evict_hdr() must have 4014 * decided to skip this header, don't increment 4015 * evict_count in this case. 4016 */ 4017 if (evicted != 0) 4018 evict_count--; 4019 4020 } else { 4021 ARCSTAT_BUMP(arcstat_mutex_miss); 4022 } 4023 } 4024 4025 multilist_sublist_unlock(mls); 4026 4027 /* Indicate if another iteration may be productive. */ 4028 if (more) 4029 *more = (hdr != NULL); 4030 4031 /* 4032 * Increment the count of evicted bytes, and wake up any threads that 4033 * are waiting for the count to reach this value. Since the list is 4034 * ordered by ascending aew_count, we pop off the beginning of the 4035 * list until we reach the end, or a waiter that's past the current 4036 * "count". Doing this outside the loop reduces the number of times 4037 * we need to acquire the global arc_evict_lock. 4038 * 4039 * Only wake when there's sufficient free memory in the system 4040 * (specifically, arc_sys_free/2, which by default is a bit more than 4041 * 1/64th of RAM). See the comments in arc_wait_for_eviction(). 4042 */ 4043 mutex_enter(&arc_evict_lock); 4044 arc_evict_count += real_evicted; 4045 4046 if (arc_free_memory() > arc_sys_free / 2) { 4047 arc_evict_waiter_t *aw; 4048 while ((aw = list_head(&arc_evict_waiters)) != NULL && 4049 aw->aew_count <= arc_evict_count) { 4050 list_remove(&arc_evict_waiters, aw); 4051 cv_signal(&aw->aew_cv); 4052 } 4053 } 4054 arc_set_need_free(); 4055 mutex_exit(&arc_evict_lock); 4056 4057 return (bytes_evicted); 4058 } 4059 4060 static arc_buf_hdr_t * 4061 arc_state_alloc_marker(void) 4062 { 4063 arc_buf_hdr_t *marker = kmem_cache_alloc(hdr_full_cache, KM_SLEEP); 4064 4065 /* 4066 * A b_spa of 0 is used to indicate that this header is 4067 * a marker. This fact is used in arc_evict_state_impl(). 4068 */ 4069 marker->b_spa = 0; 4070 4071 return (marker); 4072 } 4073 4074 static void 4075 arc_state_free_marker(arc_buf_hdr_t *marker) 4076 { 4077 kmem_cache_free(hdr_full_cache, marker); 4078 } 4079 4080 /* 4081 * Allocate an array of buffer headers used as placeholders during arc state 4082 * eviction. 4083 */ 4084 static arc_buf_hdr_t ** 4085 arc_state_alloc_markers(int count) 4086 { 4087 arc_buf_hdr_t **markers; 4088 4089 markers = kmem_zalloc(sizeof (*markers) * count, KM_SLEEP); 4090 for (int i = 0; i < count; i++) 4091 markers[i] = arc_state_alloc_marker(); 4092 return (markers); 4093 } 4094 4095 static void 4096 arc_state_free_markers(arc_buf_hdr_t **markers, int count) 4097 { 4098 for (int i = 0; i < count; i++) 4099 arc_state_free_marker(markers[i]); 4100 kmem_free(markers, sizeof (*markers) * count); 4101 } 4102 4103 typedef struct evict_arg { 4104 taskq_ent_t eva_tqent; 4105 multilist_t *eva_ml; 4106 arc_buf_hdr_t *eva_marker; 4107 int eva_idx; 4108 uint64_t eva_spa; 4109 uint64_t eva_bytes; 4110 uint64_t eva_evicted; 4111 } evict_arg_t; 4112 4113 static void 4114 arc_evict_task(void *arg) 4115 { 4116 evict_arg_t *eva = arg; 4117 uint64_t total_evicted = 0; 4118 boolean_t more; 4119 uint_t batches = zfs_arc_evict_batches_limit; 4120 4121 /* Process multiple batches to amortize taskq dispatch overhead. */ 4122 do { 4123 total_evicted += arc_evict_state_impl(eva->eva_ml, 4124 eva->eva_idx, eva->eva_marker, eva->eva_spa, 4125 eva->eva_bytes - total_evicted, &more); 4126 } while (total_evicted < eva->eva_bytes && --batches > 0 && more); 4127 4128 eva->eva_evicted = total_evicted; 4129 } 4130 4131 static void 4132 arc_evict_thread_init(void) 4133 { 4134 if (zfs_arc_evict_threads == 0) { 4135 /* 4136 * Compute number of threads we want to use for eviction. 4137 * 4138 * Normally, it's log2(ncpus) + ncpus/32, which gets us to the 4139 * default max of 16 threads at ~256 CPUs. 4140 * 4141 * However, that formula goes to two threads at 4 CPUs, which 4142 * is still rather to low to be really useful, so we just go 4143 * with 1 thread at fewer than 6 cores. 4144 */ 4145 if (max_ncpus < 6) 4146 zfs_arc_evict_threads = 1; 4147 else 4148 zfs_arc_evict_threads = 4149 (highbit64(max_ncpus) - 1) + max_ncpus / 32; 4150 } else if (zfs_arc_evict_threads > max_ncpus) 4151 zfs_arc_evict_threads = max_ncpus; 4152 4153 if (zfs_arc_evict_threads > 1) { 4154 arc_evict_taskq = taskq_create("arc_evict", 4155 zfs_arc_evict_threads, defclsyspri, 0, INT_MAX, 4156 TASKQ_PREPOPULATE); 4157 arc_evict_arg = kmem_zalloc( 4158 sizeof (evict_arg_t) * zfs_arc_evict_threads, KM_SLEEP); 4159 } 4160 } 4161 4162 /* 4163 * The minimum number of bytes we can evict at once is a block size. 4164 * So, SPA_MAXBLOCKSIZE is a reasonable minimal value per an eviction task. 4165 * We use this value to compute a scaling factor for the eviction tasks. 4166 */ 4167 #define MIN_EVICT_SIZE (SPA_MAXBLOCKSIZE) 4168 4169 /* 4170 * Evict buffers from the given arc state, until we've removed the 4171 * specified number of bytes. Move the removed buffers to the 4172 * appropriate evict state. 4173 * 4174 * This function makes a "best effort". It skips over any buffers 4175 * it can't get a hash_lock on, and so, may not catch all candidates. 4176 * It may also return without evicting as much space as requested. 4177 * 4178 * If bytes is specified using the special value ARC_EVICT_ALL, this 4179 * will evict all available (i.e. unlocked and evictable) buffers from 4180 * the given arc state; which is used by arc_flush(). 4181 */ 4182 static uint64_t 4183 arc_evict_state(arc_state_t *state, arc_buf_contents_t type, uint64_t spa, 4184 uint64_t bytes) 4185 { 4186 uint64_t total_evicted = 0; 4187 multilist_t *ml = &state->arcs_list[type]; 4188 int num_sublists; 4189 arc_buf_hdr_t **markers; 4190 evict_arg_t *eva = NULL; 4191 4192 num_sublists = multilist_get_num_sublists(ml); 4193 4194 boolean_t use_evcttq = zfs_arc_evict_threads > 1; 4195 4196 /* 4197 * If we've tried to evict from each sublist, made some 4198 * progress, but still have not hit the target number of bytes 4199 * to evict, we want to keep trying. The markers allow us to 4200 * pick up where we left off for each individual sublist, rather 4201 * than starting from the tail each time. 4202 */ 4203 if (zthr_iscurthread(arc_evict_zthr)) { 4204 markers = arc_state_evict_markers; 4205 ASSERT3S(num_sublists, <=, arc_state_evict_marker_count); 4206 } else { 4207 markers = arc_state_alloc_markers(num_sublists); 4208 } 4209 for (int i = 0; i < num_sublists; i++) { 4210 multilist_sublist_t *mls; 4211 4212 mls = multilist_sublist_lock_idx(ml, i); 4213 multilist_sublist_insert_tail(mls, markers[i]); 4214 multilist_sublist_unlock(mls); 4215 } 4216 4217 if (use_evcttq) { 4218 if (zthr_iscurthread(arc_evict_zthr)) 4219 eva = arc_evict_arg; 4220 else 4221 eva = kmem_alloc(sizeof (evict_arg_t) * 4222 zfs_arc_evict_threads, KM_NOSLEEP); 4223 if (eva) { 4224 for (int i = 0; i < zfs_arc_evict_threads; i++) { 4225 taskq_init_ent(&eva[i].eva_tqent); 4226 eva[i].eva_ml = ml; 4227 eva[i].eva_spa = spa; 4228 } 4229 } else { 4230 /* 4231 * Fall back to the regular single evict if it is not 4232 * possible to allocate memory for the taskq entries. 4233 */ 4234 use_evcttq = B_FALSE; 4235 } 4236 } 4237 4238 /* 4239 * Start eviction using a randomly selected sublist, this is to try and 4240 * evenly balance eviction across all sublists. Always starting at the 4241 * same sublist (e.g. index 0) would cause evictions to favor certain 4242 * sublists over others. 4243 */ 4244 uint64_t scan_evicted = 0; 4245 int sublists_left = num_sublists; 4246 int sublist_idx = multilist_get_random_index(ml); 4247 4248 /* 4249 * While we haven't hit our target number of bytes to evict, or 4250 * we're evicting all available buffers. 4251 */ 4252 while (total_evicted < bytes) { 4253 uint64_t evict = MIN_EVICT_SIZE; 4254 uint_t ntasks = zfs_arc_evict_threads; 4255 4256 if (use_evcttq) { 4257 if (sublists_left < ntasks) 4258 ntasks = sublists_left; 4259 4260 if (ntasks < 2) 4261 use_evcttq = B_FALSE; 4262 } 4263 4264 if (use_evcttq) { 4265 uint64_t left = bytes - total_evicted; 4266 4267 if (bytes == ARC_EVICT_ALL) { 4268 evict = bytes; 4269 } else if (left >= ntasks * MIN_EVICT_SIZE) { 4270 evict = DIV_ROUND_UP(left, ntasks); 4271 } else { 4272 ntasks = left / MIN_EVICT_SIZE; 4273 if (ntasks < 2) 4274 use_evcttq = B_FALSE; 4275 else 4276 evict = DIV_ROUND_UP(left, ntasks); 4277 } 4278 } 4279 4280 for (int i = 0; sublists_left > 0; i++, sublist_idx++, 4281 sublists_left--) { 4282 uint64_t bytes_evicted; 4283 4284 /* we've reached the end, wrap to the beginning */ 4285 if (sublist_idx >= num_sublists) 4286 sublist_idx = 0; 4287 4288 if (use_evcttq) { 4289 if (i == ntasks) 4290 break; 4291 4292 eva[i].eva_marker = markers[sublist_idx]; 4293 eva[i].eva_idx = sublist_idx; 4294 eva[i].eva_bytes = evict; 4295 4296 taskq_dispatch_ent(arc_evict_taskq, 4297 arc_evict_task, &eva[i], 0, 4298 &eva[i].eva_tqent); 4299 4300 continue; 4301 } 4302 4303 bytes_evicted = arc_evict_state_impl(ml, sublist_idx, 4304 markers[sublist_idx], spa, bytes - total_evicted, 4305 NULL); 4306 4307 scan_evicted += bytes_evicted; 4308 total_evicted += bytes_evicted; 4309 4310 if (total_evicted < bytes) 4311 kpreempt(KPREEMPT_SYNC); 4312 else 4313 break; 4314 } 4315 4316 if (use_evcttq) { 4317 taskq_wait(arc_evict_taskq); 4318 4319 for (int i = 0; i < ntasks; i++) { 4320 scan_evicted += eva[i].eva_evicted; 4321 total_evicted += eva[i].eva_evicted; 4322 } 4323 } 4324 4325 /* 4326 * If we scanned all sublists and didn't evict anything, we 4327 * have no reason to believe we'll evict more during another 4328 * scan, so break the loop. 4329 */ 4330 if (scan_evicted == 0 && sublists_left == 0) { 4331 /* This isn't possible, let's make that obvious */ 4332 ASSERT3S(bytes, !=, 0); 4333 4334 /* 4335 * When bytes is ARC_EVICT_ALL, the only way to 4336 * break the loop is when scan_evicted is zero. 4337 * In that case, we actually have evicted enough, 4338 * so we don't want to increment the kstat. 4339 */ 4340 if (bytes != ARC_EVICT_ALL) { 4341 ASSERT3S(total_evicted, <, bytes); 4342 ARCSTAT_BUMP(arcstat_evict_not_enough); 4343 } 4344 4345 break; 4346 } 4347 4348 /* 4349 * If we scanned all sublists but still have more to do, 4350 * reset the counts so we can go around again. 4351 */ 4352 if (sublists_left == 0) { 4353 sublists_left = num_sublists; 4354 sublist_idx = multilist_get_random_index(ml); 4355 scan_evicted = 0; 4356 4357 /* 4358 * Since we're about to reconsider all sublists, 4359 * re-enable use of the evict threads if available. 4360 */ 4361 use_evcttq = (zfs_arc_evict_threads > 1 && eva != NULL); 4362 } 4363 } 4364 4365 if (eva != NULL && eva != arc_evict_arg) 4366 kmem_free(eva, sizeof (evict_arg_t) * zfs_arc_evict_threads); 4367 4368 for (int i = 0; i < num_sublists; i++) { 4369 multilist_sublist_t *mls = multilist_sublist_lock_idx(ml, i); 4370 multilist_sublist_remove(mls, markers[i]); 4371 multilist_sublist_unlock(mls); 4372 } 4373 4374 if (markers != arc_state_evict_markers) 4375 arc_state_free_markers(markers, num_sublists); 4376 4377 return (total_evicted); 4378 } 4379 4380 /* 4381 * Flush all "evictable" data of the given type from the arc state 4382 * specified. This will not evict any "active" buffers (i.e. referenced). 4383 * 4384 * When 'retry' is set to B_FALSE, the function will make a single pass 4385 * over the state and evict any buffers that it can. Since it doesn't 4386 * continually retry the eviction, it might end up leaving some buffers 4387 * in the ARC due to lock misses. 4388 * 4389 * When 'retry' is set to B_TRUE, the function will continually retry the 4390 * eviction until *all* evictable buffers have been removed from the 4391 * state. As a result, if concurrent insertions into the state are 4392 * allowed (e.g. if the ARC isn't shutting down), this function might 4393 * wind up in an infinite loop, continually trying to evict buffers. 4394 */ 4395 static uint64_t 4396 arc_flush_state(arc_state_t *state, uint64_t spa, arc_buf_contents_t type, 4397 boolean_t retry) 4398 { 4399 uint64_t evicted = 0; 4400 4401 while (zfs_refcount_count(&state->arcs_esize[type]) != 0) { 4402 evicted += arc_evict_state(state, type, spa, ARC_EVICT_ALL); 4403 4404 if (!retry) 4405 break; 4406 } 4407 4408 return (evicted); 4409 } 4410 4411 /* 4412 * Evict the specified number of bytes from the state specified. This 4413 * function prevents us from trying to evict more from a state's list 4414 * than is "evictable", and to skip evicting altogether when passed a 4415 * negative value for "bytes". In contrast, arc_evict_state() will 4416 * evict everything it can, when passed a negative value for "bytes". 4417 */ 4418 static uint64_t 4419 arc_evict_impl(arc_state_t *state, arc_buf_contents_t type, int64_t bytes) 4420 { 4421 uint64_t delta; 4422 4423 if (bytes > 0 && zfs_refcount_count(&state->arcs_esize[type]) > 0) { 4424 delta = MIN(zfs_refcount_count(&state->arcs_esize[type]), 4425 bytes); 4426 return (arc_evict_state(state, type, 0, delta)); 4427 } 4428 4429 return (0); 4430 } 4431 4432 /* 4433 * Adjust specified fraction, taking into account initial ghost state(s) size, 4434 * ghost hit bytes towards increasing the fraction, ghost hit bytes towards 4435 * decreasing it, plus a balance factor, controlling the decrease rate, used 4436 * to balance metadata vs data. 4437 */ 4438 static uint64_t 4439 arc_evict_adj(uint64_t frac, uint64_t total, uint64_t up, uint64_t down, 4440 uint_t balance) 4441 { 4442 if (total < 32 || up + down == 0) 4443 return (frac); 4444 4445 /* 4446 * We should not have more ghost hits than ghost size, but they may 4447 * get close. To avoid overflows below up/down should not be bigger 4448 * than 1/5 of total. But to limit maximum adjustment speed restrict 4449 * it some more. 4450 */ 4451 if (up + down >= total / 16) { 4452 uint64_t scale = (up + down) / (total / 32); 4453 up /= scale; 4454 down /= scale; 4455 } 4456 4457 /* Get maximal dynamic range by choosing optimal shifts. */ 4458 int s = highbit64(total); 4459 s = MIN(64 - s, 32); 4460 4461 ASSERT3U(frac, <=, 1ULL << 32); 4462 uint64_t ofrac = (1ULL << 32) - frac; 4463 4464 if (frac >= 4 * ofrac) 4465 up /= frac / (2 * ofrac + 1); 4466 up = (up << s) / (total >> (32 - s)); 4467 if (ofrac >= 4 * frac) 4468 down /= ofrac / (2 * frac + 1); 4469 down = (down << s) / (total >> (32 - s)); 4470 down = down * 100 / balance; 4471 4472 ASSERT3U(up, <=, (1ULL << 32) - frac); 4473 ASSERT3U(down, <=, frac); 4474 return (frac + up - down); 4475 } 4476 4477 /* 4478 * Calculate (x * multiplier / divisor) without unnecesary overflows. 4479 */ 4480 static uint64_t 4481 arc_mf(uint64_t x, uint64_t multiplier, uint64_t divisor) 4482 { 4483 uint64_t q = (x / divisor); 4484 uint64_t r = (x % divisor); 4485 4486 return ((q * multiplier) + ((r * multiplier) / divisor)); 4487 } 4488 4489 /* 4490 * Evict buffers from the cache, such that arcstat_size is capped by arc_c. 4491 */ 4492 static uint64_t 4493 arc_evict(void) 4494 { 4495 uint64_t bytes, total_evicted = 0; 4496 int64_t e, mrud, mrum, mfud, mfum, w; 4497 static uint64_t ogrd, ogrm, ogfd, ogfm; 4498 static uint64_t gsrd, gsrm, gsfd, gsfm; 4499 uint64_t ngrd, ngrm, ngfd, ngfm; 4500 4501 /* Get current size of ARC states we can evict from. */ 4502 mrud = zfs_refcount_count(&arc_mru->arcs_size[ARC_BUFC_DATA]) + 4503 zfs_refcount_count(&arc_anon->arcs_size[ARC_BUFC_DATA]); 4504 mrum = zfs_refcount_count(&arc_mru->arcs_size[ARC_BUFC_METADATA]) + 4505 zfs_refcount_count(&arc_anon->arcs_size[ARC_BUFC_METADATA]); 4506 mfud = zfs_refcount_count(&arc_mfu->arcs_size[ARC_BUFC_DATA]); 4507 mfum = zfs_refcount_count(&arc_mfu->arcs_size[ARC_BUFC_METADATA]); 4508 uint64_t d = mrud + mfud; 4509 uint64_t m = mrum + mfum; 4510 uint64_t t = d + m; 4511 4512 /* Get ARC ghost hits since last eviction. */ 4513 ngrd = wmsum_value(&arc_mru_ghost->arcs_hits[ARC_BUFC_DATA]); 4514 uint64_t grd = ngrd - ogrd; 4515 ogrd = ngrd; 4516 ngrm = wmsum_value(&arc_mru_ghost->arcs_hits[ARC_BUFC_METADATA]); 4517 uint64_t grm = ngrm - ogrm; 4518 ogrm = ngrm; 4519 ngfd = wmsum_value(&arc_mfu_ghost->arcs_hits[ARC_BUFC_DATA]); 4520 uint64_t gfd = ngfd - ogfd; 4521 ogfd = ngfd; 4522 ngfm = wmsum_value(&arc_mfu_ghost->arcs_hits[ARC_BUFC_METADATA]); 4523 uint64_t gfm = ngfm - ogfm; 4524 ogfm = ngfm; 4525 4526 /* Adjust ARC states balance based on ghost hits. */ 4527 arc_meta = arc_evict_adj(arc_meta, gsrd + gsrm + gsfd + gsfm, 4528 grm + gfm, grd + gfd, zfs_arc_meta_balance); 4529 arc_pd = arc_evict_adj(arc_pd, gsrd + gsfd, grd, gfd, 100); 4530 arc_pm = arc_evict_adj(arc_pm, gsrm + gsfm, grm, gfm, 100); 4531 4532 uint64_t asize = aggsum_value(&arc_sums.arcstat_size); 4533 uint64_t ac = arc_c; 4534 int64_t wt = t - (asize - ac); 4535 4536 /* 4537 * Try to reduce pinned dnodes if more than 3/4 of wanted metadata 4538 * target is not evictable or if they go over arc_dnode_limit. 4539 */ 4540 int64_t prune = 0; 4541 int64_t dn = aggsum_value(&arc_sums.arcstat_dnode_size); 4542 int64_t nem = zfs_refcount_count(&arc_mru->arcs_size[ARC_BUFC_METADATA]) 4543 + zfs_refcount_count(&arc_mfu->arcs_size[ARC_BUFC_METADATA]) 4544 - zfs_refcount_count(&arc_mru->arcs_esize[ARC_BUFC_METADATA]) 4545 - zfs_refcount_count(&arc_mfu->arcs_esize[ARC_BUFC_METADATA]); 4546 w = wt * (int64_t)(arc_meta >> 16) >> 16; 4547 if (nem > w * 3 / 4) { 4548 prune = dn / sizeof (dnode_t) * 4549 zfs_arc_dnode_reduce_percent / 100; 4550 if (nem < w && w > 4) 4551 prune = arc_mf(prune, nem - w * 3 / 4, w / 4); 4552 } 4553 if (dn > arc_dnode_limit) { 4554 prune = MAX(prune, (dn - arc_dnode_limit) / sizeof (dnode_t) * 4555 zfs_arc_dnode_reduce_percent / 100); 4556 } 4557 if (prune > 0) 4558 arc_prune_async(prune); 4559 4560 /* Evict MRU metadata. */ 4561 w = wt * (int64_t)(arc_meta * arc_pm >> 48) >> 16; 4562 e = MIN((int64_t)(asize - ac), (int64_t)(mrum - w)); 4563 bytes = arc_evict_impl(arc_mru, ARC_BUFC_METADATA, e); 4564 total_evicted += bytes; 4565 mrum -= bytes; 4566 asize -= bytes; 4567 4568 /* Evict MFU metadata. */ 4569 w = wt * (int64_t)(arc_meta >> 16) >> 16; 4570 e = MIN((int64_t)(asize - ac), (int64_t)(m - bytes - w)); 4571 bytes = arc_evict_impl(arc_mfu, ARC_BUFC_METADATA, e); 4572 total_evicted += bytes; 4573 mfum -= bytes; 4574 asize -= bytes; 4575 4576 /* Evict MRU data. */ 4577 wt -= m - total_evicted; 4578 w = wt * (int64_t)(arc_pd >> 16) >> 16; 4579 e = MIN((int64_t)(asize - ac), (int64_t)(mrud - w)); 4580 bytes = arc_evict_impl(arc_mru, ARC_BUFC_DATA, e); 4581 total_evicted += bytes; 4582 mrud -= bytes; 4583 asize -= bytes; 4584 4585 /* Evict MFU data. */ 4586 e = asize - ac; 4587 bytes = arc_evict_impl(arc_mfu, ARC_BUFC_DATA, e); 4588 mfud -= bytes; 4589 total_evicted += bytes; 4590 4591 /* 4592 * Evict ghost lists 4593 * 4594 * Size of each state's ghost list represents how much that state 4595 * may grow by shrinking the other states. Would it need to shrink 4596 * other states to zero (that is unlikely), its ghost size would be 4597 * equal to sum of other three state sizes. But excessive ghost 4598 * size may result in false ghost hits (too far back), that may 4599 * never result in real cache hits if several states are competing. 4600 * So choose some arbitraty point of 1/2 of other state sizes. 4601 */ 4602 gsrd = (mrum + mfud + mfum) / 2; 4603 e = zfs_refcount_count(&arc_mru_ghost->arcs_size[ARC_BUFC_DATA]) - 4604 gsrd; 4605 (void) arc_evict_impl(arc_mru_ghost, ARC_BUFC_DATA, e); 4606 4607 gsrm = (mrud + mfud + mfum) / 2; 4608 e = zfs_refcount_count(&arc_mru_ghost->arcs_size[ARC_BUFC_METADATA]) - 4609 gsrm; 4610 (void) arc_evict_impl(arc_mru_ghost, ARC_BUFC_METADATA, e); 4611 4612 gsfd = (mrud + mrum + mfum) / 2; 4613 e = zfs_refcount_count(&arc_mfu_ghost->arcs_size[ARC_BUFC_DATA]) - 4614 gsfd; 4615 (void) arc_evict_impl(arc_mfu_ghost, ARC_BUFC_DATA, e); 4616 4617 gsfm = (mrud + mrum + mfud) / 2; 4618 e = zfs_refcount_count(&arc_mfu_ghost->arcs_size[ARC_BUFC_METADATA]) - 4619 gsfm; 4620 (void) arc_evict_impl(arc_mfu_ghost, ARC_BUFC_METADATA, e); 4621 4622 return (total_evicted); 4623 } 4624 4625 static void 4626 arc_flush_impl(uint64_t guid, boolean_t retry) 4627 { 4628 ASSERT(!retry || guid == 0); 4629 4630 (void) arc_flush_state(arc_mru, guid, ARC_BUFC_DATA, retry); 4631 (void) arc_flush_state(arc_mru, guid, ARC_BUFC_METADATA, retry); 4632 4633 (void) arc_flush_state(arc_mfu, guid, ARC_BUFC_DATA, retry); 4634 (void) arc_flush_state(arc_mfu, guid, ARC_BUFC_METADATA, retry); 4635 4636 (void) arc_flush_state(arc_mru_ghost, guid, ARC_BUFC_DATA, retry); 4637 (void) arc_flush_state(arc_mru_ghost, guid, ARC_BUFC_METADATA, retry); 4638 4639 (void) arc_flush_state(arc_mfu_ghost, guid, ARC_BUFC_DATA, retry); 4640 (void) arc_flush_state(arc_mfu_ghost, guid, ARC_BUFC_METADATA, retry); 4641 4642 (void) arc_flush_state(arc_uncached, guid, ARC_BUFC_DATA, retry); 4643 (void) arc_flush_state(arc_uncached, guid, ARC_BUFC_METADATA, retry); 4644 } 4645 4646 void 4647 arc_flush(spa_t *spa, boolean_t retry) 4648 { 4649 /* 4650 * If retry is B_TRUE, a spa must not be specified since we have 4651 * no good way to determine if all of a spa's buffers have been 4652 * evicted from an arc state. 4653 */ 4654 ASSERT(!retry || spa == NULL); 4655 4656 arc_flush_impl(spa != NULL ? spa_load_guid(spa) : 0, retry); 4657 } 4658 4659 static arc_async_flush_t * 4660 arc_async_flush_add(uint64_t spa_guid, uint_t level) 4661 { 4662 arc_async_flush_t *af = kmem_alloc(sizeof (*af), KM_SLEEP); 4663 af->af_spa_guid = spa_guid; 4664 af->af_cache_level = level; 4665 taskq_init_ent(&af->af_tqent); 4666 list_link_init(&af->af_node); 4667 4668 mutex_enter(&arc_async_flush_lock); 4669 list_insert_tail(&arc_async_flush_list, af); 4670 mutex_exit(&arc_async_flush_lock); 4671 4672 return (af); 4673 } 4674 4675 static void 4676 arc_async_flush_remove(uint64_t spa_guid, uint_t level) 4677 { 4678 mutex_enter(&arc_async_flush_lock); 4679 for (arc_async_flush_t *af = list_head(&arc_async_flush_list); 4680 af != NULL; af = list_next(&arc_async_flush_list, af)) { 4681 if (af->af_spa_guid == spa_guid && 4682 af->af_cache_level == level) { 4683 list_remove(&arc_async_flush_list, af); 4684 kmem_free(af, sizeof (*af)); 4685 break; 4686 } 4687 } 4688 mutex_exit(&arc_async_flush_lock); 4689 } 4690 4691 static void 4692 arc_flush_task(void *arg) 4693 { 4694 arc_async_flush_t *af = arg; 4695 hrtime_t start_time = gethrtime(); 4696 uint64_t spa_guid = af->af_spa_guid; 4697 4698 arc_flush_impl(spa_guid, B_FALSE); 4699 arc_async_flush_remove(spa_guid, af->af_cache_level); 4700 4701 uint64_t elapsed = NSEC2MSEC(gethrtime() - start_time); 4702 if (elapsed > 0) { 4703 zfs_dbgmsg("spa %llu arc flushed in %llu ms", 4704 (u_longlong_t)spa_guid, (u_longlong_t)elapsed); 4705 } 4706 } 4707 4708 /* 4709 * ARC buffers use the spa's load guid and can continue to exist after 4710 * the spa_t is gone (exported). The blocks are orphaned since each 4711 * spa import has a different load guid. 4712 * 4713 * It's OK if the spa is re-imported while this asynchronous flush is 4714 * still in progress. The new spa_load_guid will be different. 4715 * 4716 * Also, arc_fini will wait for any arc_flush_task to finish. 4717 */ 4718 void 4719 arc_flush_async(spa_t *spa) 4720 { 4721 uint64_t spa_guid = spa_load_guid(spa); 4722 arc_async_flush_t *af = arc_async_flush_add(spa_guid, 1); 4723 4724 taskq_dispatch_ent(arc_flush_taskq, arc_flush_task, 4725 af, TQ_SLEEP, &af->af_tqent); 4726 } 4727 4728 /* 4729 * Check if a guid is still in-use as part of an async teardown task 4730 */ 4731 boolean_t 4732 arc_async_flush_guid_inuse(uint64_t spa_guid) 4733 { 4734 mutex_enter(&arc_async_flush_lock); 4735 for (arc_async_flush_t *af = list_head(&arc_async_flush_list); 4736 af != NULL; af = list_next(&arc_async_flush_list, af)) { 4737 if (af->af_spa_guid == spa_guid) { 4738 mutex_exit(&arc_async_flush_lock); 4739 return (B_TRUE); 4740 } 4741 } 4742 mutex_exit(&arc_async_flush_lock); 4743 return (B_FALSE); 4744 } 4745 4746 uint64_t 4747 arc_reduce_target_size(uint64_t to_free) 4748 { 4749 /* 4750 * Get the actual arc size. Even if we don't need it, this updates 4751 * the aggsum lower bound estimate for arc_is_overflowing(). 4752 */ 4753 uint64_t asize = aggsum_value(&arc_sums.arcstat_size); 4754 4755 /* 4756 * All callers want the ARC to actually evict (at least) this much 4757 * memory. Therefore we reduce from the lower of the current size and 4758 * the target size. This way, even if arc_c is much higher than 4759 * arc_size (as can be the case after many calls to arc_freed(), we will 4760 * immediately have arc_c < arc_size and therefore the arc_evict_zthr 4761 * will evict. 4762 */ 4763 uint64_t c = arc_c; 4764 if (c > arc_c_min) { 4765 c = MIN(c, MAX(asize, arc_c_min)); 4766 to_free = MIN(to_free, c - arc_c_min); 4767 arc_c = c - to_free; 4768 } else { 4769 to_free = 0; 4770 } 4771 4772 /* 4773 * Since dbuf cache size is a fraction of target ARC size, we should 4774 * notify dbuf about the reduction, which might be significant, 4775 * especially if current ARC size was much smaller than the target. 4776 */ 4777 dbuf_cache_reduce_target_size(); 4778 4779 /* 4780 * Whether or not we reduced the target size, request eviction if the 4781 * current size is over it now, since caller obviously wants some RAM. 4782 */ 4783 if (asize > arc_c) { 4784 /* See comment in arc_evict_cb_check() on why lock+flag */ 4785 mutex_enter(&arc_evict_lock); 4786 arc_evict_needed = B_TRUE; 4787 mutex_exit(&arc_evict_lock); 4788 zthr_wakeup(arc_evict_zthr); 4789 } 4790 4791 return (to_free); 4792 } 4793 4794 /* 4795 * Determine if the system is under memory pressure and is asking 4796 * to reclaim memory. A return value of B_TRUE indicates that the system 4797 * is under memory pressure and that the arc should adjust accordingly. 4798 */ 4799 boolean_t 4800 arc_reclaim_needed(void) 4801 { 4802 return (arc_available_memory() < 0); 4803 } 4804 4805 void 4806 arc_kmem_reap_soon(void) 4807 { 4808 size_t i; 4809 kmem_cache_t *prev_cache = NULL; 4810 kmem_cache_t *prev_data_cache = NULL; 4811 4812 #ifdef _KERNEL 4813 #if defined(_ILP32) 4814 /* 4815 * Reclaim unused memory from all kmem caches. 4816 */ 4817 kmem_reap(); 4818 #endif 4819 #endif 4820 4821 for (i = 0; i < SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT; i++) { 4822 #if defined(_ILP32) 4823 /* reach upper limit of cache size on 32-bit */ 4824 if (zio_buf_cache[i] == NULL) 4825 break; 4826 #endif 4827 if (zio_buf_cache[i] != prev_cache) { 4828 prev_cache = zio_buf_cache[i]; 4829 kmem_cache_reap_now(zio_buf_cache[i]); 4830 } 4831 if (zio_data_buf_cache[i] != prev_data_cache) { 4832 prev_data_cache = zio_data_buf_cache[i]; 4833 kmem_cache_reap_now(zio_data_buf_cache[i]); 4834 } 4835 } 4836 kmem_cache_reap_now(buf_cache); 4837 kmem_cache_reap_now(hdr_full_cache); 4838 kmem_cache_reap_now(hdr_l2only_cache); 4839 kmem_cache_reap_now(zfs_btree_leaf_cache); 4840 abd_cache_reap_now(); 4841 } 4842 4843 static boolean_t 4844 arc_evict_cb_check(void *arg, zthr_t *zthr) 4845 { 4846 (void) arg, (void) zthr; 4847 4848 #ifdef ZFS_DEBUG 4849 /* 4850 * This is necessary in order to keep the kstat information 4851 * up to date for tools that display kstat data such as the 4852 * mdb ::arc dcmd and the Linux crash utility. These tools 4853 * typically do not call kstat's update function, but simply 4854 * dump out stats from the most recent update. Without 4855 * this call, these commands may show stale stats for the 4856 * anon, mru, mru_ghost, mfu, and mfu_ghost lists. Even 4857 * with this call, the data might be out of date if the 4858 * evict thread hasn't been woken recently; but that should 4859 * suffice. The arc_state_t structures can be queried 4860 * directly if more accurate information is needed. 4861 */ 4862 if (arc_ksp != NULL) 4863 arc_ksp->ks_update(arc_ksp, KSTAT_READ); 4864 #endif 4865 4866 /* 4867 * We have to rely on arc_wait_for_eviction() to tell us when to 4868 * evict, rather than checking if we are overflowing here, so that we 4869 * are sure to not leave arc_wait_for_eviction() waiting on aew_cv. 4870 * If we have become "not overflowing" since arc_wait_for_eviction() 4871 * checked, we need to wake it up. We could broadcast the CV here, 4872 * but arc_wait_for_eviction() may have not yet gone to sleep. We 4873 * would need to use a mutex to ensure that this function doesn't 4874 * broadcast until arc_wait_for_eviction() has gone to sleep (e.g. 4875 * the arc_evict_lock). However, the lock ordering of such a lock 4876 * would necessarily be incorrect with respect to the zthr_lock, 4877 * which is held before this function is called, and is held by 4878 * arc_wait_for_eviction() when it calls zthr_wakeup(). 4879 */ 4880 if (arc_evict_needed) 4881 return (B_TRUE); 4882 4883 /* 4884 * If we have buffers in uncached state, evict them periodically. 4885 */ 4886 return ((zfs_refcount_count(&arc_uncached->arcs_esize[ARC_BUFC_DATA]) + 4887 zfs_refcount_count(&arc_uncached->arcs_esize[ARC_BUFC_METADATA]) && 4888 ddi_get_lbolt() - arc_last_uncached_flush > arc_min_prefetch / 2)); 4889 } 4890 4891 /* 4892 * Keep arc_size under arc_c by running arc_evict which evicts data 4893 * from the ARC. 4894 */ 4895 static void 4896 arc_evict_cb(void *arg, zthr_t *zthr) 4897 { 4898 (void) arg; 4899 4900 uint64_t evicted = 0; 4901 fstrans_cookie_t cookie = spl_fstrans_mark(); 4902 4903 /* Always try to evict from uncached state. */ 4904 arc_last_uncached_flush = ddi_get_lbolt(); 4905 evicted += arc_flush_state(arc_uncached, 0, ARC_BUFC_DATA, B_FALSE); 4906 evicted += arc_flush_state(arc_uncached, 0, ARC_BUFC_METADATA, B_FALSE); 4907 4908 /* Evict from other states only if told to. */ 4909 if (arc_evict_needed) 4910 evicted += arc_evict(); 4911 4912 /* 4913 * If evicted is zero, we couldn't evict anything 4914 * via arc_evict(). This could be due to hash lock 4915 * collisions, but more likely due to the majority of 4916 * arc buffers being unevictable. Therefore, even if 4917 * arc_size is above arc_c, another pass is unlikely to 4918 * be helpful and could potentially cause us to enter an 4919 * infinite loop. Additionally, zthr_iscancelled() is 4920 * checked here so that if the arc is shutting down, the 4921 * broadcast will wake any remaining arc evict waiters. 4922 * 4923 * Note we cancel using zthr instead of arc_evict_zthr 4924 * because the latter may not yet be initializd when the 4925 * callback is first invoked. 4926 */ 4927 mutex_enter(&arc_evict_lock); 4928 arc_evict_needed = !zthr_iscancelled(zthr) && 4929 evicted > 0 && aggsum_compare(&arc_sums.arcstat_size, arc_c) > 0; 4930 if (!arc_evict_needed) { 4931 /* 4932 * We're either no longer overflowing, or we 4933 * can't evict anything more, so we should wake 4934 * arc_get_data_impl() sooner. 4935 */ 4936 arc_evict_waiter_t *aw; 4937 while ((aw = list_remove_head(&arc_evict_waiters)) != NULL) { 4938 cv_signal(&aw->aew_cv); 4939 } 4940 arc_set_need_free(); 4941 } 4942 mutex_exit(&arc_evict_lock); 4943 spl_fstrans_unmark(cookie); 4944 } 4945 4946 static boolean_t 4947 arc_reap_cb_check(void *arg, zthr_t *zthr) 4948 { 4949 (void) arg, (void) zthr; 4950 4951 int64_t free_memory = arc_available_memory(); 4952 static int reap_cb_check_counter = 0; 4953 4954 /* 4955 * If a kmem reap is already active, don't schedule more. We must 4956 * check for this because kmem_cache_reap_soon() won't actually 4957 * block on the cache being reaped (this is to prevent callers from 4958 * becoming implicitly blocked by a system-wide kmem reap -- which, 4959 * on a system with many, many full magazines, can take minutes). 4960 */ 4961 if (!kmem_cache_reap_active() && free_memory < 0) { 4962 4963 arc_no_grow = B_TRUE; 4964 arc_warm = B_TRUE; 4965 /* 4966 * Wait at least zfs_grow_retry (default 5) seconds 4967 * before considering growing. 4968 */ 4969 arc_growtime = gethrtime() + SEC2NSEC(arc_grow_retry); 4970 return (B_TRUE); 4971 } else if (free_memory < arc_c >> zfs_arc_no_grow_shift) { 4972 arc_no_grow = B_TRUE; 4973 } else if (gethrtime() >= arc_growtime) { 4974 arc_no_grow = B_FALSE; 4975 } 4976 4977 /* 4978 * Called unconditionally every 60 seconds to reclaim unused 4979 * zstd compression and decompression context. This is done 4980 * here to avoid the need for an independent thread. 4981 */ 4982 if (!((reap_cb_check_counter++) % 60)) 4983 zfs_zstd_cache_reap_now(); 4984 4985 return (B_FALSE); 4986 } 4987 4988 /* 4989 * Keep enough free memory in the system by reaping the ARC's kmem 4990 * caches. To cause more slabs to be reapable, we may reduce the 4991 * target size of the cache (arc_c), causing the arc_evict_cb() 4992 * to free more buffers. 4993 */ 4994 static void 4995 arc_reap_cb(void *arg, zthr_t *zthr) 4996 { 4997 int64_t can_free, free_memory, to_free; 4998 4999 (void) arg, (void) zthr; 5000 fstrans_cookie_t cookie = spl_fstrans_mark(); 5001 5002 /* 5003 * Kick off asynchronous kmem_reap()'s of all our caches. 5004 */ 5005 arc_kmem_reap_soon(); 5006 5007 /* 5008 * Wait at least arc_kmem_cache_reap_retry_ms between 5009 * arc_kmem_reap_soon() calls. Without this check it is possible to 5010 * end up in a situation where we spend lots of time reaping 5011 * caches, while we're near arc_c_min. Waiting here also gives the 5012 * subsequent free memory check a chance of finding that the 5013 * asynchronous reap has already freed enough memory, and we don't 5014 * need to call arc_reduce_target_size(). 5015 */ 5016 delay((hz * arc_kmem_cache_reap_retry_ms + 999) / 1000); 5017 5018 /* 5019 * Reduce the target size as needed to maintain the amount of free 5020 * memory in the system at a fraction of the arc_size (1/128th by 5021 * default). If oversubscribed (free_memory < 0) then reduce the 5022 * target arc_size by the deficit amount plus the fractional 5023 * amount. If free memory is positive but less than the fractional 5024 * amount, reduce by what is needed to hit the fractional amount. 5025 */ 5026 free_memory = arc_available_memory(); 5027 can_free = arc_c - arc_c_min; 5028 to_free = (MAX(can_free, 0) >> arc_shrink_shift) - free_memory; 5029 if (to_free > 0) 5030 arc_reduce_target_size(to_free); 5031 spl_fstrans_unmark(cookie); 5032 } 5033 5034 #ifdef _KERNEL 5035 /* 5036 * Determine the amount of memory eligible for eviction contained in the 5037 * ARC. All clean data reported by the ghost lists can always be safely 5038 * evicted. Due to arc_c_min, the same does not hold for all clean data 5039 * contained by the regular mru and mfu lists. 5040 * 5041 * In the case of the regular mru and mfu lists, we need to report as 5042 * much clean data as possible, such that evicting that same reported 5043 * data will not bring arc_size below arc_c_min. Thus, in certain 5044 * circumstances, the total amount of clean data in the mru and mfu 5045 * lists might not actually be evictable. 5046 * 5047 * The following two distinct cases are accounted for: 5048 * 5049 * 1. The sum of the amount of dirty data contained by both the mru and 5050 * mfu lists, plus the ARC's other accounting (e.g. the anon list), 5051 * is greater than or equal to arc_c_min. 5052 * (i.e. amount of dirty data >= arc_c_min) 5053 * 5054 * This is the easy case; all clean data contained by the mru and mfu 5055 * lists is evictable. Evicting all clean data can only drop arc_size 5056 * to the amount of dirty data, which is greater than arc_c_min. 5057 * 5058 * 2. The sum of the amount of dirty data contained by both the mru and 5059 * mfu lists, plus the ARC's other accounting (e.g. the anon list), 5060 * is less than arc_c_min. 5061 * (i.e. arc_c_min > amount of dirty data) 5062 * 5063 * 2.1. arc_size is greater than or equal arc_c_min. 5064 * (i.e. arc_size >= arc_c_min > amount of dirty data) 5065 * 5066 * In this case, not all clean data from the regular mru and mfu 5067 * lists is actually evictable; we must leave enough clean data 5068 * to keep arc_size above arc_c_min. Thus, the maximum amount of 5069 * evictable data from the two lists combined, is exactly the 5070 * difference between arc_size and arc_c_min. 5071 * 5072 * 2.2. arc_size is less than arc_c_min 5073 * (i.e. arc_c_min > arc_size > amount of dirty data) 5074 * 5075 * In this case, none of the data contained in the mru and mfu 5076 * lists is evictable, even if it's clean. Since arc_size is 5077 * already below arc_c_min, evicting any more would only 5078 * increase this negative difference. 5079 */ 5080 5081 #endif /* _KERNEL */ 5082 5083 /* 5084 * Adapt arc info given the number of bytes we are trying to add and 5085 * the state that we are coming from. This function is only called 5086 * when we are adding new content to the cache. 5087 */ 5088 static void 5089 arc_adapt(uint64_t bytes) 5090 { 5091 /* 5092 * Wake reap thread if we do not have any available memory 5093 */ 5094 if (arc_reclaim_needed()) { 5095 zthr_wakeup(arc_reap_zthr); 5096 return; 5097 } 5098 5099 if (arc_no_grow) 5100 return; 5101 5102 if (arc_c >= arc_c_max) 5103 return; 5104 5105 /* 5106 * If we're within (2 * maxblocksize) bytes of the target 5107 * cache size, increment the target cache size 5108 */ 5109 if (aggsum_upper_bound(&arc_sums.arcstat_size) + 5110 2 * SPA_MAXBLOCKSIZE >= arc_c) { 5111 uint64_t dc = MAX(bytes, SPA_OLD_MAXBLOCKSIZE); 5112 if (atomic_add_64_nv(&arc_c, dc) > arc_c_max) 5113 arc_c = arc_c_max; 5114 } 5115 } 5116 5117 /* 5118 * Check if ARC current size has grown past our upper thresholds. 5119 */ 5120 static arc_ovf_level_t 5121 arc_is_overflowing(boolean_t lax, boolean_t use_reserve) 5122 { 5123 /* 5124 * We just compare the lower bound here for performance reasons. Our 5125 * primary goals are to make sure that the arc never grows without 5126 * bound, and that it can reach its maximum size. This check 5127 * accomplishes both goals. The maximum amount we could run over by is 5128 * 2 * aggsum_borrow_multiplier * NUM_CPUS * the average size of a block 5129 * in the ARC. In practice, that's in the tens of MB, which is low 5130 * enough to be safe. 5131 */ 5132 int64_t arc_over = aggsum_lower_bound(&arc_sums.arcstat_size) - arc_c - 5133 zfs_max_recordsize; 5134 int64_t dn_over = aggsum_lower_bound(&arc_sums.arcstat_dnode_size) - 5135 arc_dnode_limit; 5136 5137 /* Always allow at least one block of overflow. */ 5138 if (arc_over < 0 && dn_over <= 0) 5139 return (ARC_OVF_NONE); 5140 5141 /* If we are under memory pressure, report severe overflow. */ 5142 if (!lax) 5143 return (ARC_OVF_SEVERE); 5144 5145 /* We are not under pressure, so be more or less relaxed. */ 5146 int64_t overflow = (arc_c >> zfs_arc_overflow_shift) / 2; 5147 if (use_reserve) 5148 overflow *= 3; 5149 return (arc_over < overflow ? ARC_OVF_SOME : ARC_OVF_SEVERE); 5150 } 5151 5152 static abd_t * 5153 arc_get_data_abd(arc_buf_hdr_t *hdr, uint64_t size, const void *tag, 5154 int alloc_flags) 5155 { 5156 arc_buf_contents_t type = arc_buf_type(hdr); 5157 5158 arc_get_data_impl(hdr, size, tag, alloc_flags); 5159 if (alloc_flags & ARC_HDR_ALLOC_LINEAR) 5160 return (abd_alloc_linear(size, type == ARC_BUFC_METADATA)); 5161 else 5162 return (abd_alloc(size, type == ARC_BUFC_METADATA)); 5163 } 5164 5165 static void * 5166 arc_get_data_buf(arc_buf_hdr_t *hdr, uint64_t size, const void *tag) 5167 { 5168 arc_buf_contents_t type = arc_buf_type(hdr); 5169 5170 arc_get_data_impl(hdr, size, tag, 0); 5171 if (type == ARC_BUFC_METADATA) { 5172 return (zio_buf_alloc(size)); 5173 } else { 5174 ASSERT(type == ARC_BUFC_DATA); 5175 return (zio_data_buf_alloc(size)); 5176 } 5177 } 5178 5179 /* 5180 * Wait for the specified amount of data (in bytes) to be evicted from the 5181 * ARC, and for there to be sufficient free memory in the system. 5182 * The lax argument specifies that caller does not have a specific reason 5183 * to wait, not aware of any memory pressure. Low memory handlers though 5184 * should set it to B_FALSE to wait for all required evictions to complete. 5185 * The use_reserve argument allows some callers to wait less than others 5186 * to not block critical code paths, possibly blocking other resources. 5187 */ 5188 void 5189 arc_wait_for_eviction(uint64_t amount, boolean_t lax, boolean_t use_reserve) 5190 { 5191 switch (arc_is_overflowing(lax, use_reserve)) { 5192 case ARC_OVF_NONE: 5193 return; 5194 case ARC_OVF_SOME: 5195 /* 5196 * This is a bit racy without taking arc_evict_lock, but the 5197 * worst that can happen is we either call zthr_wakeup() extra 5198 * time due to race with other thread here, or the set flag 5199 * get cleared by arc_evict_cb(), which is unlikely due to 5200 * big hysteresis, but also not important since at this level 5201 * of overflow the eviction is purely advisory. Same time 5202 * taking the global lock here every time without waiting for 5203 * the actual eviction creates a significant lock contention. 5204 */ 5205 if (!arc_evict_needed) { 5206 arc_evict_needed = B_TRUE; 5207 zthr_wakeup(arc_evict_zthr); 5208 } 5209 return; 5210 case ARC_OVF_SEVERE: 5211 default: 5212 { 5213 arc_evict_waiter_t aw; 5214 list_link_init(&aw.aew_node); 5215 cv_init(&aw.aew_cv, NULL, CV_DEFAULT, NULL); 5216 5217 uint64_t last_count = 0; 5218 mutex_enter(&arc_evict_lock); 5219 arc_evict_waiter_t *last; 5220 if ((last = list_tail(&arc_evict_waiters)) != NULL) { 5221 last_count = last->aew_count; 5222 } else if (!arc_evict_needed) { 5223 arc_evict_needed = B_TRUE; 5224 zthr_wakeup(arc_evict_zthr); 5225 } 5226 /* 5227 * Note, the last waiter's count may be less than 5228 * arc_evict_count if we are low on memory in which 5229 * case arc_evict_state_impl() may have deferred 5230 * wakeups (but still incremented arc_evict_count). 5231 */ 5232 aw.aew_count = MAX(last_count, arc_evict_count) + amount; 5233 5234 list_insert_tail(&arc_evict_waiters, &aw); 5235 5236 arc_set_need_free(); 5237 5238 DTRACE_PROBE3(arc__wait__for__eviction, 5239 uint64_t, amount, 5240 uint64_t, arc_evict_count, 5241 uint64_t, aw.aew_count); 5242 5243 /* 5244 * We will be woken up either when arc_evict_count reaches 5245 * aew_count, or when the ARC is no longer overflowing and 5246 * eviction completes. 5247 * In case of "false" wakeup, we will still be on the list. 5248 */ 5249 do { 5250 cv_wait(&aw.aew_cv, &arc_evict_lock); 5251 } while (list_link_active(&aw.aew_node)); 5252 mutex_exit(&arc_evict_lock); 5253 5254 cv_destroy(&aw.aew_cv); 5255 } 5256 } 5257 } 5258 5259 /* 5260 * Allocate a block and return it to the caller. If we are hitting the 5261 * hard limit for the cache size, we must sleep, waiting for the eviction 5262 * thread to catch up. If we're past the target size but below the hard 5263 * limit, we'll only signal the reclaim thread and continue on. 5264 */ 5265 static void 5266 arc_get_data_impl(arc_buf_hdr_t *hdr, uint64_t size, const void *tag, 5267 int alloc_flags) 5268 { 5269 arc_adapt(size); 5270 5271 /* 5272 * If arc_size is currently overflowing, we must be adding data 5273 * faster than we are evicting. To ensure we don't compound the 5274 * problem by adding more data and forcing arc_size to grow even 5275 * further past it's target size, we wait for the eviction thread to 5276 * make some progress. We also wait for there to be sufficient free 5277 * memory in the system, as measured by arc_free_memory(). 5278 * 5279 * Specifically, we wait for zfs_arc_eviction_pct percent of the 5280 * requested size to be evicted. This should be more than 100%, to 5281 * ensure that that progress is also made towards getting arc_size 5282 * under arc_c. See the comment above zfs_arc_eviction_pct. 5283 */ 5284 arc_wait_for_eviction(size * zfs_arc_eviction_pct / 100, 5285 B_TRUE, alloc_flags & ARC_HDR_USE_RESERVE); 5286 5287 arc_buf_contents_t type = arc_buf_type(hdr); 5288 if (type == ARC_BUFC_METADATA) { 5289 arc_space_consume(size, ARC_SPACE_META); 5290 } else { 5291 arc_space_consume(size, ARC_SPACE_DATA); 5292 } 5293 5294 /* 5295 * Update the state size. Note that ghost states have a 5296 * "ghost size" and so don't need to be updated. 5297 */ 5298 arc_state_t *state = hdr->b_l1hdr.b_state; 5299 if (!GHOST_STATE(state)) { 5300 5301 (void) zfs_refcount_add_many(&state->arcs_size[type], size, 5302 tag); 5303 5304 /* 5305 * If this is reached via arc_read, the link is 5306 * protected by the hash lock. If reached via 5307 * arc_buf_alloc, the header should not be accessed by 5308 * any other thread. And, if reached via arc_read_done, 5309 * the hash lock will protect it if it's found in the 5310 * hash table; otherwise no other thread should be 5311 * trying to [add|remove]_reference it. 5312 */ 5313 if (multilist_link_active(&hdr->b_l1hdr.b_arc_node)) { 5314 ASSERT(zfs_refcount_is_zero(&hdr->b_l1hdr.b_refcnt)); 5315 (void) zfs_refcount_add_many(&state->arcs_esize[type], 5316 size, tag); 5317 } 5318 } 5319 } 5320 5321 static void 5322 arc_free_data_abd(arc_buf_hdr_t *hdr, abd_t *abd, uint64_t size, 5323 const void *tag) 5324 { 5325 arc_free_data_impl(hdr, size, tag); 5326 abd_free(abd); 5327 } 5328 5329 static void 5330 arc_free_data_buf(arc_buf_hdr_t *hdr, void *buf, uint64_t size, const void *tag) 5331 { 5332 arc_buf_contents_t type = arc_buf_type(hdr); 5333 5334 arc_free_data_impl(hdr, size, tag); 5335 if (type == ARC_BUFC_METADATA) { 5336 zio_buf_free(buf, size); 5337 } else { 5338 ASSERT(type == ARC_BUFC_DATA); 5339 zio_data_buf_free(buf, size); 5340 } 5341 } 5342 5343 /* 5344 * Free the arc data buffer. 5345 */ 5346 static void 5347 arc_free_data_impl(arc_buf_hdr_t *hdr, uint64_t size, const void *tag) 5348 { 5349 arc_state_t *state = hdr->b_l1hdr.b_state; 5350 arc_buf_contents_t type = arc_buf_type(hdr); 5351 5352 /* protected by hash lock, if in the hash table */ 5353 if (multilist_link_active(&hdr->b_l1hdr.b_arc_node)) { 5354 ASSERT(zfs_refcount_is_zero(&hdr->b_l1hdr.b_refcnt)); 5355 ASSERT(state != arc_anon && state != arc_l2c_only); 5356 5357 (void) zfs_refcount_remove_many(&state->arcs_esize[type], 5358 size, tag); 5359 } 5360 (void) zfs_refcount_remove_many(&state->arcs_size[type], size, tag); 5361 5362 VERIFY3U(hdr->b_type, ==, type); 5363 if (type == ARC_BUFC_METADATA) { 5364 arc_space_return(size, ARC_SPACE_META); 5365 } else { 5366 ASSERT(type == ARC_BUFC_DATA); 5367 arc_space_return(size, ARC_SPACE_DATA); 5368 } 5369 } 5370 5371 /* 5372 * This routine is called whenever a buffer is accessed. 5373 */ 5374 static void 5375 arc_access(arc_buf_hdr_t *hdr, arc_flags_t arc_flags, boolean_t hit) 5376 { 5377 ASSERT(MUTEX_HELD(HDR_LOCK(hdr))); 5378 ASSERT(HDR_HAS_L1HDR(hdr)); 5379 5380 /* 5381 * Update buffer prefetch status. 5382 */ 5383 boolean_t was_prefetch = HDR_PREFETCH(hdr); 5384 boolean_t now_prefetch = arc_flags & ARC_FLAG_PREFETCH; 5385 if (was_prefetch != now_prefetch) { 5386 if (was_prefetch) { 5387 ARCSTAT_CONDSTAT(hit, demand_hit, demand_iohit, 5388 HDR_PRESCIENT_PREFETCH(hdr), prescient, predictive, 5389 prefetch); 5390 } 5391 if (HDR_HAS_L2HDR(hdr)) 5392 l2arc_hdr_arcstats_decrement_state(hdr); 5393 if (was_prefetch) { 5394 arc_hdr_clear_flags(hdr, 5395 ARC_FLAG_PREFETCH | ARC_FLAG_PRESCIENT_PREFETCH); 5396 } else { 5397 arc_hdr_set_flags(hdr, ARC_FLAG_PREFETCH); 5398 } 5399 if (HDR_HAS_L2HDR(hdr)) 5400 l2arc_hdr_arcstats_increment_state(hdr); 5401 } 5402 if (now_prefetch) { 5403 if (arc_flags & ARC_FLAG_PRESCIENT_PREFETCH) { 5404 arc_hdr_set_flags(hdr, ARC_FLAG_PRESCIENT_PREFETCH); 5405 ARCSTAT_BUMP(arcstat_prescient_prefetch); 5406 } else { 5407 ARCSTAT_BUMP(arcstat_predictive_prefetch); 5408 } 5409 } 5410 if (arc_flags & ARC_FLAG_L2CACHE) 5411 arc_hdr_set_flags(hdr, ARC_FLAG_L2CACHE); 5412 5413 clock_t now = ddi_get_lbolt(); 5414 if (hdr->b_l1hdr.b_state == arc_anon) { 5415 arc_state_t *new_state; 5416 /* 5417 * This buffer is not in the cache, and does not appear in 5418 * our "ghost" lists. Add it to the MRU or uncached state. 5419 */ 5420 ASSERT0(hdr->b_l1hdr.b_arc_access); 5421 hdr->b_l1hdr.b_arc_access = now; 5422 if (HDR_UNCACHED(hdr)) { 5423 new_state = arc_uncached; 5424 DTRACE_PROBE1(new_state__uncached, arc_buf_hdr_t *, 5425 hdr); 5426 } else { 5427 new_state = arc_mru; 5428 DTRACE_PROBE1(new_state__mru, arc_buf_hdr_t *, hdr); 5429 } 5430 arc_change_state(new_state, hdr); 5431 } else if (hdr->b_l1hdr.b_state == arc_mru) { 5432 /* 5433 * This buffer has been accessed once recently and either 5434 * its read is still in progress or it is in the cache. 5435 */ 5436 if (HDR_IO_IN_PROGRESS(hdr)) { 5437 hdr->b_l1hdr.b_arc_access = now; 5438 return; 5439 } 5440 hdr->b_l1hdr.b_mru_hits++; 5441 ARCSTAT_BUMP(arcstat_mru_hits); 5442 5443 /* 5444 * If the previous access was a prefetch, then it already 5445 * handled possible promotion, so nothing more to do for now. 5446 */ 5447 if (was_prefetch) { 5448 hdr->b_l1hdr.b_arc_access = now; 5449 return; 5450 } 5451 5452 /* 5453 * If more than ARC_MINTIME have passed from the previous 5454 * hit, promote the buffer to the MFU state. 5455 */ 5456 if (ddi_time_after(now, hdr->b_l1hdr.b_arc_access + 5457 ARC_MINTIME)) { 5458 hdr->b_l1hdr.b_arc_access = now; 5459 DTRACE_PROBE1(new_state__mfu, arc_buf_hdr_t *, hdr); 5460 arc_change_state(arc_mfu, hdr); 5461 } 5462 } else if (hdr->b_l1hdr.b_state == arc_mru_ghost) { 5463 arc_state_t *new_state; 5464 /* 5465 * This buffer has been accessed once recently, but was 5466 * evicted from the cache. Would we have bigger MRU, it 5467 * would be an MRU hit, so handle it the same way, except 5468 * we don't need to check the previous access time. 5469 */ 5470 hdr->b_l1hdr.b_mru_ghost_hits++; 5471 ARCSTAT_BUMP(arcstat_mru_ghost_hits); 5472 hdr->b_l1hdr.b_arc_access = now; 5473 wmsum_add(&arc_mru_ghost->arcs_hits[arc_buf_type(hdr)], 5474 arc_hdr_size(hdr)); 5475 if (was_prefetch) { 5476 new_state = arc_mru; 5477 DTRACE_PROBE1(new_state__mru, arc_buf_hdr_t *, hdr); 5478 } else { 5479 new_state = arc_mfu; 5480 DTRACE_PROBE1(new_state__mfu, arc_buf_hdr_t *, hdr); 5481 } 5482 arc_change_state(new_state, hdr); 5483 } else if (hdr->b_l1hdr.b_state == arc_mfu) { 5484 /* 5485 * This buffer has been accessed more than once and either 5486 * still in the cache or being restored from one of ghosts. 5487 */ 5488 if (!HDR_IO_IN_PROGRESS(hdr)) { 5489 hdr->b_l1hdr.b_mfu_hits++; 5490 ARCSTAT_BUMP(arcstat_mfu_hits); 5491 } 5492 hdr->b_l1hdr.b_arc_access = now; 5493 } else if (hdr->b_l1hdr.b_state == arc_mfu_ghost) { 5494 /* 5495 * This buffer has been accessed more than once recently, but 5496 * has been evicted from the cache. Would we have bigger MFU 5497 * it would stay in cache, so move it back to MFU state. 5498 */ 5499 hdr->b_l1hdr.b_mfu_ghost_hits++; 5500 ARCSTAT_BUMP(arcstat_mfu_ghost_hits); 5501 hdr->b_l1hdr.b_arc_access = now; 5502 wmsum_add(&arc_mfu_ghost->arcs_hits[arc_buf_type(hdr)], 5503 arc_hdr_size(hdr)); 5504 DTRACE_PROBE1(new_state__mfu, arc_buf_hdr_t *, hdr); 5505 arc_change_state(arc_mfu, hdr); 5506 } else if (hdr->b_l1hdr.b_state == arc_uncached) { 5507 /* 5508 * This buffer is uncacheable, but we got a hit. Probably 5509 * a demand read after prefetch. Nothing more to do here. 5510 */ 5511 if (!HDR_IO_IN_PROGRESS(hdr)) 5512 ARCSTAT_BUMP(arcstat_uncached_hits); 5513 hdr->b_l1hdr.b_arc_access = now; 5514 } else if (hdr->b_l1hdr.b_state == arc_l2c_only) { 5515 /* 5516 * This buffer is on the 2nd Level ARC and was not accessed 5517 * for a long time, so treat it as new and put into MRU. 5518 */ 5519 hdr->b_l1hdr.b_arc_access = now; 5520 DTRACE_PROBE1(new_state__mru, arc_buf_hdr_t *, hdr); 5521 arc_change_state(arc_mru, hdr); 5522 } else { 5523 cmn_err(CE_PANIC, "invalid arc state 0x%p", 5524 hdr->b_l1hdr.b_state); 5525 } 5526 } 5527 5528 /* 5529 * This routine is called by dbuf_hold() to update the arc_access() state 5530 * which otherwise would be skipped for entries in the dbuf cache. 5531 */ 5532 void 5533 arc_buf_access(arc_buf_t *buf) 5534 { 5535 arc_buf_hdr_t *hdr = buf->b_hdr; 5536 5537 /* 5538 * Avoid taking the hash_lock when possible as an optimization. 5539 * The header must be checked again under the hash_lock in order 5540 * to handle the case where it is concurrently being released. 5541 */ 5542 if (hdr->b_l1hdr.b_state == arc_anon || HDR_EMPTY(hdr)) 5543 return; 5544 5545 kmutex_t *hash_lock = HDR_LOCK(hdr); 5546 mutex_enter(hash_lock); 5547 5548 if (hdr->b_l1hdr.b_state == arc_anon || HDR_EMPTY(hdr)) { 5549 mutex_exit(hash_lock); 5550 ARCSTAT_BUMP(arcstat_access_skip); 5551 return; 5552 } 5553 5554 ASSERT(hdr->b_l1hdr.b_state == arc_mru || 5555 hdr->b_l1hdr.b_state == arc_mfu || 5556 hdr->b_l1hdr.b_state == arc_uncached); 5557 5558 DTRACE_PROBE1(arc__hit, arc_buf_hdr_t *, hdr); 5559 arc_access(hdr, 0, B_TRUE); 5560 mutex_exit(hash_lock); 5561 5562 ARCSTAT_BUMP(arcstat_hits); 5563 ARCSTAT_CONDSTAT(B_TRUE /* demand */, demand, prefetch, 5564 !HDR_ISTYPE_METADATA(hdr), data, metadata, hits); 5565 } 5566 5567 /* a generic arc_read_done_func_t */ 5568 void 5569 arc_getbuf_func(zio_t *zio, const zbookmark_phys_t *zb, const blkptr_t *bp, 5570 arc_buf_t *buf, void *arg) 5571 { 5572 (void) zb, (void) bp; 5573 arc_buf_t **bufp = arg; 5574 5575 if (buf == NULL) { 5576 ASSERT(zio == NULL || zio->io_error != 0); 5577 *bufp = NULL; 5578 } else { 5579 ASSERT(zio == NULL || zio->io_error == 0); 5580 *bufp = buf; 5581 ASSERT(buf->b_data != NULL); 5582 } 5583 } 5584 5585 static void 5586 arc_hdr_verify(arc_buf_hdr_t *hdr, blkptr_t *bp) 5587 { 5588 if (BP_IS_HOLE(bp) || BP_IS_EMBEDDED(bp)) { 5589 ASSERT0(HDR_GET_PSIZE(hdr)); 5590 ASSERT3U(arc_hdr_get_compress(hdr), ==, ZIO_COMPRESS_OFF); 5591 } else { 5592 if (HDR_COMPRESSION_ENABLED(hdr)) { 5593 ASSERT3U(arc_hdr_get_compress(hdr), ==, 5594 BP_GET_COMPRESS(bp)); 5595 } 5596 ASSERT3U(HDR_GET_LSIZE(hdr), ==, BP_GET_LSIZE(bp)); 5597 ASSERT3U(HDR_GET_PSIZE(hdr), ==, BP_GET_PSIZE(bp)); 5598 ASSERT3U(!!HDR_PROTECTED(hdr), ==, BP_IS_PROTECTED(bp)); 5599 } 5600 } 5601 5602 static void 5603 arc_read_done(zio_t *zio) 5604 { 5605 blkptr_t *bp = zio->io_bp; 5606 arc_buf_hdr_t *hdr = zio->io_private; 5607 kmutex_t *hash_lock = NULL; 5608 arc_callback_t *callback_list; 5609 arc_callback_t *acb; 5610 boolean_t read_error = (zio->io_error != 0); 5611 5612 /* 5613 * The hdr was inserted into hash-table and removed from lists 5614 * prior to starting I/O. The reference taken for the I/O 5615 * keeps it from being evicted, freed or re-keyed, so its identity 5616 * is stable here and the hash lock can be derived from it directly. 5617 * Embedded bps have no DVA, are never hashed and need no lock. 5618 */ 5619 if (!BP_IS_EMBEDDED(bp)) { 5620 hash_lock = HDR_LOCK(hdr); 5621 mutex_enter(hash_lock); 5622 5623 ASSERT(HDR_IN_HASH_TABLE(hdr)); 5624 ASSERT(hdr->b_l1hdr.b_state != arc_anon); 5625 5626 ASSERT3U(hdr->b_birth, ==, BP_GET_PHYSICAL_BIRTH(zio->io_bp)); 5627 ASSERT3U(hdr->b_dva.dva_word[0], ==, 5628 BP_IDENTITY(zio->io_bp)->dva_word[0]); 5629 ASSERT3U(hdr->b_dva.dva_word[1], ==, 5630 BP_IDENTITY(zio->io_bp)->dva_word[1]); 5631 } 5632 5633 if (BP_IS_PROTECTED(bp)) { 5634 hdr->b_crypt_hdr.b_ot = BP_GET_TYPE(bp); 5635 hdr->b_crypt_hdr.b_dsobj = zio->io_bookmark.zb_objset; 5636 zio_crypt_decode_params_bp(bp, hdr->b_crypt_hdr.b_salt, 5637 hdr->b_crypt_hdr.b_iv); 5638 5639 if (zio->io_error == 0) { 5640 if (BP_GET_TYPE(bp) == DMU_OT_INTENT_LOG) { 5641 void *tmpbuf; 5642 5643 tmpbuf = abd_borrow_buf_copy(zio->io_abd, 5644 sizeof (zil_chain_t)); 5645 zio_crypt_decode_mac_zil(tmpbuf, 5646 hdr->b_crypt_hdr.b_mac); 5647 abd_return_buf(zio->io_abd, tmpbuf, 5648 sizeof (zil_chain_t)); 5649 } else { 5650 zio_crypt_decode_mac_bp(bp, 5651 hdr->b_crypt_hdr.b_mac); 5652 } 5653 } 5654 } 5655 5656 if (zio->io_error == 0) { 5657 /* byteswap if necessary */ 5658 if (BP_SHOULD_BYTESWAP(zio->io_bp)) { 5659 if (BP_GET_LEVEL(zio->io_bp) > 0) { 5660 hdr->b_l1hdr.b_byteswap = DMU_BSWAP_UINT64; 5661 } else { 5662 hdr->b_l1hdr.b_byteswap = 5663 DMU_OT_BYTESWAP(BP_GET_TYPE(zio->io_bp)); 5664 } 5665 } else { 5666 hdr->b_l1hdr.b_byteswap = DMU_BSWAP_NUMFUNCS; 5667 } 5668 if (!HDR_L2_READING(hdr)) { 5669 hdr->b_complevel = zio->io_prop.zp_complevel; 5670 } 5671 } 5672 5673 arc_hdr_clear_flags(hdr, ARC_FLAG_L2_EVICTED); 5674 if (l2arc_noprefetch && HDR_PREFETCH(hdr)) 5675 arc_hdr_clear_flags(hdr, ARC_FLAG_L2CACHE); 5676 5677 callback_list = hdr->b_l1hdr.b_acb; 5678 ASSERT3P(callback_list, !=, NULL); 5679 hdr->b_l1hdr.b_acb = NULL; 5680 5681 /* 5682 * If a read request has a callback (i.e. acb_done is not NULL), then we 5683 * make a buf containing the data according to the parameters which were 5684 * passed in. The implementation of arc_buf_alloc_impl() ensures that we 5685 * aren't needlessly decompressing the data multiple times. 5686 */ 5687 int callback_cnt = 0; 5688 for (acb = callback_list; acb != NULL; acb = acb->acb_next) { 5689 5690 /* We need the last one to call below in original order. */ 5691 callback_list = acb; 5692 5693 if (!acb->acb_done || acb->acb_nobuf) 5694 continue; 5695 5696 callback_cnt++; 5697 5698 if (zio->io_error != 0) 5699 continue; 5700 5701 int error = arc_buf_alloc_impl(hdr, zio->io_spa, 5702 &acb->acb_zb, acb->acb_private, acb->acb_encrypted, 5703 acb->acb_compressed, acb->acb_noauth, B_TRUE, 5704 &acb->acb_buf); 5705 5706 /* 5707 * Assert non-speculative zios didn't fail because an 5708 * encryption key wasn't loaded 5709 */ 5710 ASSERT((zio->io_flags & ZIO_FLAG_SPECULATIVE) || 5711 error != EACCES); 5712 5713 /* 5714 * If we failed to decrypt, report an error now (as the zio 5715 * layer would have done if it had done the transforms). 5716 */ 5717 if (error == ECKSUM) { 5718 ASSERT(BP_IS_PROTECTED(bp)); 5719 error = SET_ERROR(EIO); 5720 if ((zio->io_flags & ZIO_FLAG_SPECULATIVE) == 0) { 5721 spa_log_error(zio->io_spa, &acb->acb_zb, 5722 BP_GET_PHYSICAL_BIRTH(zio->io_bp)); 5723 (void) zfs_ereport_post( 5724 FM_EREPORT_ZFS_AUTHENTICATION, 5725 zio->io_spa, NULL, &acb->acb_zb, zio, 0); 5726 } 5727 } 5728 5729 if (error != 0) { 5730 /* 5731 * Decompression or decryption failed. Set 5732 * io_error so that when we call acb_done 5733 * (below), we will indicate that the read 5734 * failed. Note that in the unusual case 5735 * where one callback is compressed and another 5736 * uncompressed, we will mark all of them 5737 * as failed, even though the uncompressed 5738 * one can't actually fail. In this case, 5739 * the hdr will not be anonymous, because 5740 * if there are multiple callbacks, it's 5741 * because multiple threads found the same 5742 * arc buf in the hash table. 5743 */ 5744 zio->io_error = error; 5745 } 5746 } 5747 5748 /* 5749 * If there are multiple callbacks, we must have the hash lock, 5750 * because the only way for multiple threads to find this hdr is 5751 * in the hash table. This ensures that if there are multiple 5752 * callbacks, the hdr is not anonymous. If it were anonymous, 5753 * we couldn't use arc_buf_destroy() in the error case below. 5754 */ 5755 ASSERT(callback_cnt < 2 || hash_lock != NULL); 5756 5757 if (zio->io_error == 0) { 5758 arc_hdr_verify(hdr, zio->io_bp); 5759 } else { 5760 /* 5761 * A failed *physical* read leaves the raw/encrypted buffer it 5762 * was filling full of garbage. If a valid decrypted b_pabd 5763 * survives (the raw re-read case) the header stays cached, and 5764 * a later raw read would be served this garbage as a hit — 5765 * arc_read()'s hit test honors HDR_HAS_RABD, not IO_ERROR, and 5766 * arc_cksum_verify() skips IO_ERROR headers. We should free it 5767 * so that representation misses and re-fetches from disk. 5768 * 5769 * Gate on read_error: a *valid* b_rabd whose consumer merely 5770 * failed to decrypt it (keys not loaded) also reaches here, 5771 * but the read succeeded and the data should be kept. 5772 */ 5773 if (read_error) { 5774 if (HDR_HAS_RABD(hdr)) 5775 arc_hdr_free_abd(hdr, B_TRUE); 5776 else if (hdr->b_l1hdr.b_pabd != NULL) 5777 arc_hdr_free_abd(hdr, B_FALSE); 5778 } 5779 /* Flag for teardown only if nothing valid remains. */ 5780 if (hdr->b_l1hdr.b_pabd == NULL && !HDR_HAS_RABD(hdr) && 5781 hdr->b_l1hdr.b_buf == NULL) 5782 arc_hdr_set_flags(hdr, ARC_FLAG_IO_ERROR); 5783 } 5784 5785 arc_hdr_clear_flags(hdr, ARC_FLAG_IO_IN_PROGRESS); 5786 (void) remove_reference(hdr, hdr); 5787 5788 if (hash_lock != NULL) 5789 mutex_exit(hash_lock); 5790 5791 /* execute each callback and free its structure */ 5792 while ((acb = callback_list) != NULL) { 5793 if (acb->acb_done != NULL) { 5794 if (zio->io_error != 0 && acb->acb_buf != NULL) { 5795 /* 5796 * If arc_buf_alloc_impl() fails during 5797 * decompression, the buf will still be 5798 * allocated, and needs to be freed here. 5799 */ 5800 arc_buf_destroy(acb->acb_buf, 5801 acb->acb_private); 5802 acb->acb_buf = NULL; 5803 } 5804 acb->acb_done(zio, &zio->io_bookmark, zio->io_bp, 5805 acb->acb_buf, acb->acb_private); 5806 } 5807 5808 if (acb->acb_zio_dummy != NULL) { 5809 acb->acb_zio_dummy->io_error = zio->io_error; 5810 zio_nowait(acb->acb_zio_dummy); 5811 } 5812 5813 callback_list = acb->acb_prev; 5814 if (acb->acb_wait) { 5815 mutex_enter(&acb->acb_wait_lock); 5816 acb->acb_wait_error = zio->io_error; 5817 acb->acb_wait = B_FALSE; 5818 cv_signal(&acb->acb_wait_cv); 5819 mutex_exit(&acb->acb_wait_lock); 5820 /* acb will be freed by the waiting thread. */ 5821 } else { 5822 kmem_free(acb, sizeof (arc_callback_t)); 5823 } 5824 } 5825 } 5826 5827 /* 5828 * Lookup the block at the specified DVA (in bp), and return the manner in 5829 * which the block is cached. A zero return indicates not cached. 5830 */ 5831 int 5832 arc_cached(spa_t *spa, const blkptr_t *bp) 5833 { 5834 arc_buf_hdr_t *hdr = NULL; 5835 kmutex_t *hash_lock = NULL; 5836 uint64_t guid = spa_load_guid(spa); 5837 int flags = 0; 5838 5839 if (BP_IS_EMBEDDED(bp)) 5840 return (ARC_CACHED_EMBEDDED); 5841 5842 hdr = buf_hash_find(guid, bp, &hash_lock); 5843 if (hdr == NULL) 5844 return (0); 5845 5846 if (HDR_HAS_L1HDR(hdr)) { 5847 arc_state_t *state = hdr->b_l1hdr.b_state; 5848 /* 5849 * We switch to ensure that any future arc_state_type_t 5850 * changes are handled. This is just a shift to promote 5851 * more compile-time checking. 5852 */ 5853 switch (state->arcs_state) { 5854 case ARC_STATE_ANON: 5855 break; 5856 case ARC_STATE_MRU: 5857 flags |= ARC_CACHED_IN_MRU | ARC_CACHED_IN_L1; 5858 break; 5859 case ARC_STATE_MFU: 5860 flags |= ARC_CACHED_IN_MFU | ARC_CACHED_IN_L1; 5861 break; 5862 case ARC_STATE_UNCACHED: 5863 /* The header is still in L1, probably not for long */ 5864 flags |= ARC_CACHED_IN_L1; 5865 break; 5866 default: 5867 break; 5868 } 5869 } 5870 if (HDR_HAS_L2HDR(hdr)) 5871 flags |= ARC_CACHED_IN_L2; 5872 5873 mutex_exit(hash_lock); 5874 5875 return (flags); 5876 } 5877 5878 /* 5879 * "Read" the block at the specified DVA (in bp) via the 5880 * cache. If the block is found in the cache, invoke the provided 5881 * callback immediately and return. Note that the `zio' parameter 5882 * in the callback will be NULL in this case, since no IO was 5883 * required. If the block is not in the cache pass the read request 5884 * on to the spa with a substitute callback function, so that the 5885 * requested block will be added to the cache. 5886 * 5887 * If a read request arrives for a block that has a read in-progress, 5888 * either wait for the in-progress read to complete (and return the 5889 * results); or, if this is a read with a "done" func, add a record 5890 * to the read to invoke the "done" func when the read completes, 5891 * and return; or just return. 5892 * 5893 * arc_read_done() will invoke all the requested "done" functions 5894 * for readers of this block. 5895 */ 5896 int 5897 arc_read(zio_t *pio, spa_t *spa, const blkptr_t *bp, 5898 arc_read_done_func_t *done, void *private, zio_priority_t priority, 5899 int zio_flags, arc_flags_t *arc_flags, const zbookmark_phys_t *zb) 5900 { 5901 arc_buf_hdr_t *hdr = NULL; 5902 kmutex_t *hash_lock = NULL; 5903 zio_t *rzio; 5904 uint64_t guid = spa_load_guid(spa); 5905 boolean_t compressed_read = (zio_flags & ZIO_FLAG_RAW_COMPRESS) != 0; 5906 boolean_t encrypted_read = BP_IS_ENCRYPTED(bp) && 5907 (zio_flags & ZIO_FLAG_RAW_ENCRYPT) != 0; 5908 boolean_t noauth_read = BP_IS_AUTHENTICATED(bp) && 5909 (zio_flags & ZIO_FLAG_RAW_ENCRYPT) != 0; 5910 boolean_t embedded_bp = !!BP_IS_EMBEDDED(bp); 5911 boolean_t no_buf = *arc_flags & ARC_FLAG_NO_BUF; 5912 arc_buf_t *buf = NULL; 5913 int rc = 0; 5914 boolean_t bp_validation = B_FALSE; 5915 5916 ASSERT(!embedded_bp || 5917 BPE_GET_ETYPE(bp) == BP_EMBEDDED_TYPE_DATA); 5918 ASSERT(!BP_IS_HOLE(bp)); 5919 ASSERT(!BP_IS_REDACTED(bp)); 5920 5921 /* 5922 * Normally SPL_FSTRANS will already be set since kernel threads which 5923 * expect to call the DMU interfaces will set it when created. System 5924 * calls are similarly handled by setting/cleaning the bit in the 5925 * registered callback (module/os/.../zfs/zpl_*). 5926 * 5927 * External consumers such as Lustre which call the exported DMU 5928 * interfaces may not have set SPL_FSTRANS. To avoid a deadlock 5929 * on the hash_lock always set and clear the bit. 5930 */ 5931 fstrans_cookie_t cookie = spl_fstrans_mark(); 5932 top: 5933 if (!embedded_bp) { 5934 /* 5935 * Embedded BP's have no DVA and require no I/O to "read". 5936 * Create an anonymous arc buf to back it. 5937 */ 5938 hdr = buf_hash_find(guid, bp, &hash_lock); 5939 } 5940 5941 /* 5942 * Determine if we have an L1 cache hit or a cache miss. For simplicity 5943 * we maintain encrypted data separately from compressed / uncompressed 5944 * data. If the user is requesting raw encrypted data and we don't have 5945 * that in the header we will read from disk to guarantee that we can 5946 * get it even if the encryption keys aren't loaded. 5947 */ 5948 if (hdr != NULL && HDR_HAS_L1HDR(hdr) && (HDR_HAS_RABD(hdr) || 5949 (hdr->b_l1hdr.b_pabd != NULL && !encrypted_read))) { 5950 boolean_t is_data = !HDR_ISTYPE_METADATA(hdr); 5951 5952 /* 5953 * Verify the block pointer contents are reasonable. This 5954 * should always be the case since the blkptr is protected by 5955 * a checksum. 5956 */ 5957 if (zfs_blkptr_verify(spa, bp, BLK_CONFIG_SKIP, 5958 BLK_VERIFY_LOG)) { 5959 mutex_exit(hash_lock); 5960 rc = SET_ERROR(ECKSUM); 5961 goto done; 5962 } 5963 5964 if (HDR_IO_IN_PROGRESS(hdr)) { 5965 if (*arc_flags & ARC_FLAG_CACHED_ONLY) { 5966 mutex_exit(hash_lock); 5967 ARCSTAT_BUMP(arcstat_cached_only_in_progress); 5968 rc = SET_ERROR(ENOENT); 5969 goto done; 5970 } 5971 5972 zio_t *head_zio = hdr->b_l1hdr.b_acb->acb_zio_head; 5973 ASSERT3P(head_zio, !=, NULL); 5974 if ((hdr->b_flags & ARC_FLAG_PRIO_ASYNC_READ) && 5975 priority == ZIO_PRIORITY_SYNC_READ) { 5976 /* 5977 * This is a sync read that needs to wait for 5978 * an in-flight async read. Request that the 5979 * zio have its priority upgraded. 5980 */ 5981 zio_change_priority(head_zio, priority); 5982 DTRACE_PROBE1(arc__async__upgrade__sync, 5983 arc_buf_hdr_t *, hdr); 5984 ARCSTAT_BUMP(arcstat_async_upgrade_sync); 5985 } 5986 5987 DTRACE_PROBE1(arc__iohit, arc_buf_hdr_t *, hdr); 5988 arc_access(hdr, *arc_flags, B_FALSE); 5989 5990 /* 5991 * If there are multiple threads reading the same block 5992 * and that block is not yet in the ARC, then only one 5993 * thread will do the physical I/O and all other 5994 * threads will wait until that I/O completes. 5995 * Synchronous reads use the acb_wait_cv whereas nowait 5996 * reads register a callback. Both are signalled/called 5997 * in arc_read_done. 5998 * 5999 * Errors of the physical I/O may need to be propagated. 6000 * Synchronous read errors are returned here from 6001 * arc_read_done via acb_wait_error. Nowait reads 6002 * attach the acb_zio_dummy zio to pio and 6003 * arc_read_done propagates the physical I/O's io_error 6004 * to acb_zio_dummy, and thereby to pio. 6005 */ 6006 arc_callback_t *acb = NULL; 6007 if (done || pio || *arc_flags & ARC_FLAG_WAIT) { 6008 acb = kmem_zalloc(sizeof (arc_callback_t), 6009 KM_SLEEP); 6010 acb->acb_done = done; 6011 acb->acb_private = private; 6012 acb->acb_compressed = compressed_read; 6013 acb->acb_encrypted = encrypted_read; 6014 acb->acb_noauth = noauth_read; 6015 acb->acb_nobuf = no_buf; 6016 if (*arc_flags & ARC_FLAG_WAIT) { 6017 acb->acb_wait = B_TRUE; 6018 mutex_init(&acb->acb_wait_lock, NULL, 6019 MUTEX_DEFAULT, NULL); 6020 cv_init(&acb->acb_wait_cv, NULL, 6021 CV_DEFAULT, NULL); 6022 } 6023 acb->acb_zb = *zb; 6024 if (pio != NULL) { 6025 acb->acb_zio_dummy = zio_null(pio, 6026 spa, NULL, NULL, NULL, zio_flags); 6027 } 6028 acb->acb_zio_head = head_zio; 6029 acb->acb_next = hdr->b_l1hdr.b_acb; 6030 hdr->b_l1hdr.b_acb->acb_prev = acb; 6031 hdr->b_l1hdr.b_acb = acb; 6032 } 6033 mutex_exit(hash_lock); 6034 6035 ARCSTAT_BUMP(arcstat_iohits); 6036 ARCSTAT_CONDSTAT(!(*arc_flags & ARC_FLAG_PREFETCH), 6037 demand, prefetch, is_data, data, metadata, iohits); 6038 6039 if (*arc_flags & ARC_FLAG_WAIT) { 6040 mutex_enter(&acb->acb_wait_lock); 6041 while (acb->acb_wait) { 6042 cv_wait(&acb->acb_wait_cv, 6043 &acb->acb_wait_lock); 6044 } 6045 rc = acb->acb_wait_error; 6046 mutex_exit(&acb->acb_wait_lock); 6047 mutex_destroy(&acb->acb_wait_lock); 6048 cv_destroy(&acb->acb_wait_cv); 6049 kmem_free(acb, sizeof (arc_callback_t)); 6050 } 6051 goto out; 6052 } 6053 6054 ASSERT(hdr->b_l1hdr.b_state == arc_mru || 6055 hdr->b_l1hdr.b_state == arc_mfu || 6056 hdr->b_l1hdr.b_state == arc_uncached); 6057 6058 DTRACE_PROBE1(arc__hit, arc_buf_hdr_t *, hdr); 6059 arc_access(hdr, *arc_flags, B_TRUE); 6060 6061 if (done && !no_buf) { 6062 ASSERT(!embedded_bp || !BP_IS_HOLE(bp)); 6063 6064 /* Get a buf with the desired data in it. */ 6065 rc = arc_buf_alloc_impl(hdr, spa, zb, private, 6066 encrypted_read, compressed_read, noauth_read, 6067 B_TRUE, &buf); 6068 if (rc == ECKSUM) { 6069 /* 6070 * Convert authentication and decryption errors 6071 * to EIO (and generate an ereport if needed) 6072 * before leaving the ARC. 6073 */ 6074 rc = SET_ERROR(EIO); 6075 if ((zio_flags & ZIO_FLAG_SPECULATIVE) == 0) { 6076 spa_log_error(spa, zb, hdr->b_birth); 6077 (void) zfs_ereport_post( 6078 FM_EREPORT_ZFS_AUTHENTICATION, 6079 spa, NULL, zb, NULL, 0); 6080 } 6081 } 6082 if (rc != 0) { 6083 arc_buf_destroy_impl(buf); 6084 buf = NULL; 6085 (void) remove_reference(hdr, private); 6086 } 6087 6088 /* assert any errors weren't due to unloaded keys */ 6089 ASSERT((zio_flags & ZIO_FLAG_SPECULATIVE) || 6090 rc != EACCES); 6091 } 6092 mutex_exit(hash_lock); 6093 ARCSTAT_BUMP(arcstat_hits); 6094 ARCSTAT_CONDSTAT(!(*arc_flags & ARC_FLAG_PREFETCH), 6095 demand, prefetch, is_data, data, metadata, hits); 6096 *arc_flags |= ARC_FLAG_CACHED; 6097 goto done; 6098 } else { 6099 uint64_t lsize = BP_GET_LSIZE(bp); 6100 uint64_t psize = BP_GET_PSIZE(bp); 6101 arc_callback_t *acb; 6102 vdev_t *vd = NULL; 6103 uint64_t addr = 0; 6104 boolean_t devw = B_FALSE; 6105 uint64_t size; 6106 abd_t *hdr_abd; 6107 int alloc_flags = encrypted_read ? ARC_HDR_ALLOC_RDATA : 0; 6108 arc_buf_contents_t type = BP_GET_BUFC_TYPE(bp); 6109 int config_lock; 6110 int error; 6111 6112 if (*arc_flags & ARC_FLAG_CACHED_ONLY) { 6113 if (hash_lock != NULL) 6114 mutex_exit(hash_lock); 6115 rc = SET_ERROR(ENOENT); 6116 goto done; 6117 } 6118 6119 if (zio_flags & ZIO_FLAG_CONFIG_WRITER) { 6120 config_lock = BLK_CONFIG_HELD; 6121 } else if (hash_lock != NULL) { 6122 /* 6123 * Prevent lock order reversal 6124 */ 6125 config_lock = BLK_CONFIG_NEEDED_TRY; 6126 } else { 6127 config_lock = BLK_CONFIG_NEEDED; 6128 } 6129 6130 /* 6131 * Verify the block pointer contents are reasonable. This 6132 * should always be the case since the blkptr is protected by 6133 * a checksum. 6134 */ 6135 if (!bp_validation && (error = zfs_blkptr_verify(spa, bp, 6136 config_lock, BLK_VERIFY_LOG))) { 6137 if (hash_lock != NULL) 6138 mutex_exit(hash_lock); 6139 if (error == EBUSY && !zfs_blkptr_verify(spa, bp, 6140 BLK_CONFIG_NEEDED, BLK_VERIFY_LOG)) { 6141 bp_validation = B_TRUE; 6142 goto top; 6143 } 6144 rc = SET_ERROR(ECKSUM); 6145 goto done; 6146 } 6147 6148 if (hdr == NULL) { 6149 /* 6150 * This block is not in the cache or it has 6151 * embedded data. 6152 */ 6153 arc_buf_hdr_t *exists = NULL; 6154 hdr = arc_hdr_alloc(guid, psize, lsize, 6155 BP_IS_PROTECTED(bp), BP_GET_COMPRESS(bp), 0, type); 6156 6157 if (!embedded_bp) { 6158 hdr->b_dva = *BP_IDENTITY(bp); 6159 hdr->b_birth = BP_GET_PHYSICAL_BIRTH(bp); 6160 exists = buf_hash_insert(hdr, &hash_lock); 6161 } 6162 if (exists != NULL) { 6163 /* somebody beat us to the hash insert */ 6164 mutex_exit(hash_lock); 6165 buf_discard_identity(hdr); 6166 arc_hdr_destroy(hdr); 6167 goto top; /* restart the IO request */ 6168 } 6169 } else { 6170 /* 6171 * This block is in the ghost cache or encrypted data 6172 * was requested and we didn't have it. If it was 6173 * L2-only (and thus didn't have an L1 hdr), 6174 * we realloc the header to add an L1 hdr. 6175 */ 6176 if (!HDR_HAS_L1HDR(hdr)) { 6177 hdr = arc_hdr_realloc(hdr, hdr_l2only_cache, 6178 hdr_full_cache); 6179 } 6180 6181 if (GHOST_STATE(hdr->b_l1hdr.b_state)) { 6182 ASSERT0P(hdr->b_l1hdr.b_pabd); 6183 ASSERT(!HDR_HAS_RABD(hdr)); 6184 ASSERT(!HDR_IO_IN_PROGRESS(hdr)); 6185 ASSERT0(zfs_refcount_count( 6186 &hdr->b_l1hdr.b_refcnt)); 6187 ASSERT0P(hdr->b_l1hdr.b_buf); 6188 #ifdef ZFS_DEBUG 6189 ASSERT0P(hdr->b_l1hdr.b_freeze_cksum); 6190 #endif 6191 } else if (HDR_IO_IN_PROGRESS(hdr)) { 6192 /* 6193 * If this header already had an IO in progress 6194 * and we are performing another IO to fetch 6195 * encrypted data we must wait until the first 6196 * IO completes so as not to confuse 6197 * arc_read_done(). This should be very rare 6198 * and so the performance impact shouldn't 6199 * matter. 6200 */ 6201 arc_callback_t *acb = kmem_zalloc( 6202 sizeof (arc_callback_t), KM_SLEEP); 6203 acb->acb_wait = B_TRUE; 6204 mutex_init(&acb->acb_wait_lock, NULL, 6205 MUTEX_DEFAULT, NULL); 6206 cv_init(&acb->acb_wait_cv, NULL, CV_DEFAULT, 6207 NULL); 6208 acb->acb_zio_head = 6209 hdr->b_l1hdr.b_acb->acb_zio_head; 6210 acb->acb_next = hdr->b_l1hdr.b_acb; 6211 hdr->b_l1hdr.b_acb->acb_prev = acb; 6212 hdr->b_l1hdr.b_acb = acb; 6213 mutex_exit(hash_lock); 6214 mutex_enter(&acb->acb_wait_lock); 6215 while (acb->acb_wait) { 6216 cv_wait(&acb->acb_wait_cv, 6217 &acb->acb_wait_lock); 6218 } 6219 mutex_exit(&acb->acb_wait_lock); 6220 mutex_destroy(&acb->acb_wait_lock); 6221 cv_destroy(&acb->acb_wait_cv); 6222 kmem_free(acb, sizeof (arc_callback_t)); 6223 goto top; 6224 } 6225 } 6226 if (*arc_flags & ARC_FLAG_UNCACHED) { 6227 arc_hdr_set_flags(hdr, ARC_FLAG_UNCACHED); 6228 if (!encrypted_read) 6229 alloc_flags |= ARC_HDR_ALLOC_LINEAR; 6230 } 6231 6232 /* 6233 * Take additional reference for IO_IN_PROGRESS. It stops 6234 * arc_access() from putting this header without any buffers 6235 * and so other references but obviously nonevictable onto 6236 * the evictable list of MRU or MFU state. 6237 */ 6238 add_reference(hdr, hdr); 6239 if (!embedded_bp) 6240 arc_access(hdr, *arc_flags, B_FALSE); 6241 arc_hdr_set_flags(hdr, ARC_FLAG_IO_IN_PROGRESS); 6242 arc_hdr_alloc_abd(hdr, alloc_flags); 6243 if (encrypted_read) { 6244 ASSERT(HDR_HAS_RABD(hdr)); 6245 size = HDR_GET_PSIZE(hdr); 6246 hdr_abd = hdr->b_crypt_hdr.b_rabd; 6247 zio_flags |= ZIO_FLAG_RAW; 6248 } else { 6249 ASSERT3P(hdr->b_l1hdr.b_pabd, !=, NULL); 6250 size = arc_hdr_size(hdr); 6251 hdr_abd = hdr->b_l1hdr.b_pabd; 6252 6253 if (arc_hdr_get_compress(hdr) != ZIO_COMPRESS_OFF) { 6254 zio_flags |= ZIO_FLAG_RAW_COMPRESS; 6255 } 6256 6257 /* 6258 * For authenticated bp's, we do not ask the ZIO layer 6259 * to authenticate them since this will cause the entire 6260 * IO to fail if the key isn't loaded. Instead, we 6261 * defer authentication until arc_buf_fill(), which will 6262 * verify the data when the key is available. 6263 */ 6264 if (BP_IS_AUTHENTICATED(bp)) 6265 zio_flags |= ZIO_FLAG_RAW_ENCRYPT; 6266 } 6267 6268 if (BP_IS_AUTHENTICATED(bp)) 6269 arc_hdr_set_flags(hdr, ARC_FLAG_NOAUTH); 6270 if (BP_GET_LEVEL(bp) > 0) 6271 arc_hdr_set_flags(hdr, ARC_FLAG_INDIRECT); 6272 ASSERT(!GHOST_STATE(hdr->b_l1hdr.b_state)); 6273 6274 acb = kmem_zalloc(sizeof (arc_callback_t), KM_SLEEP); 6275 acb->acb_done = done; 6276 acb->acb_private = private; 6277 acb->acb_compressed = compressed_read; 6278 acb->acb_encrypted = encrypted_read; 6279 acb->acb_noauth = noauth_read; 6280 acb->acb_nobuf = no_buf; 6281 acb->acb_zb = *zb; 6282 6283 ASSERT0P(hdr->b_l1hdr.b_acb); 6284 hdr->b_l1hdr.b_acb = acb; 6285 6286 if (HDR_HAS_L2HDR(hdr) && 6287 (vd = hdr->b_l2hdr.b_dev->l2ad_vdev) != NULL) { 6288 devw = hdr->b_l2hdr.b_dev->l2ad_writing; 6289 addr = hdr->b_l2hdr.b_daddr; 6290 /* 6291 * Lock out L2ARC device removal. 6292 */ 6293 if (vdev_is_dead(vd) || 6294 !spa_config_tryenter(spa, SCL_L2ARC, vd, RW_READER)) 6295 vd = NULL; 6296 } 6297 6298 /* 6299 * We count both async reads and scrub IOs as asynchronous so 6300 * that both can be upgraded in the event of a cache hit while 6301 * the read IO is still in-flight. 6302 */ 6303 if (priority == ZIO_PRIORITY_ASYNC_READ || 6304 priority == ZIO_PRIORITY_SCRUB) 6305 arc_hdr_set_flags(hdr, ARC_FLAG_PRIO_ASYNC_READ); 6306 else 6307 arc_hdr_clear_flags(hdr, ARC_FLAG_PRIO_ASYNC_READ); 6308 6309 /* 6310 * At this point, we have a level 1 cache miss or a blkptr 6311 * with embedded data. Try again in L2ARC if possible. 6312 */ 6313 ASSERT3U(HDR_GET_LSIZE(hdr), ==, lsize); 6314 6315 /* 6316 * Skip ARC stat bump for block pointers with embedded 6317 * data. The data are read from the blkptr itself via 6318 * decode_embedded_bp_compressed(). 6319 */ 6320 if (!embedded_bp) { 6321 DTRACE_PROBE4(arc__miss, arc_buf_hdr_t *, hdr, 6322 blkptr_t *, bp, uint64_t, lsize, 6323 zbookmark_phys_t *, zb); 6324 ARCSTAT_BUMP(arcstat_misses); 6325 ARCSTAT_CONDSTAT(!(*arc_flags & ARC_FLAG_PREFETCH), 6326 demand, prefetch, !HDR_ISTYPE_METADATA(hdr), data, 6327 metadata, misses); 6328 zfs_racct_read(spa, size, 1, 6329 (*arc_flags & ARC_FLAG_UNCACHED) ? 6330 DMU_UNCACHEDIO : 0); 6331 } 6332 6333 /* Check if the spa even has l2 configured */ 6334 const boolean_t spa_has_l2 = l2arc_ndev != 0 && 6335 spa->spa_l2cache.sav_count > 0; 6336 6337 if (vd != NULL && spa_has_l2 && !(l2arc_norw && devw)) { 6338 /* 6339 * Read from the L2ARC if the following are true: 6340 * 1. The L2ARC vdev was previously cached. 6341 * 2. This buffer still has L2ARC metadata. 6342 * 3. This buffer isn't currently writing to the L2ARC. 6343 * 4. The L2ARC entry wasn't evicted, which may 6344 * also have invalidated the vdev. 6345 */ 6346 if (HDR_HAS_L2HDR(hdr) && 6347 !HDR_L2_WRITING(hdr) && !HDR_L2_EVICTED(hdr)) { 6348 l2arc_read_callback_t *cb; 6349 abd_t *abd; 6350 uint64_t asize; 6351 6352 DTRACE_PROBE1(l2arc__hit, arc_buf_hdr_t *, hdr); 6353 ARCSTAT_BUMP(arcstat_l2_hits); 6354 hdr->b_l2hdr.b_hits++; 6355 6356 cb = kmem_zalloc(sizeof (l2arc_read_callback_t), 6357 KM_SLEEP); 6358 cb->l2rcb_hdr = hdr; 6359 cb->l2rcb_bp = *bp; 6360 cb->l2rcb_zb = *zb; 6361 cb->l2rcb_flags = zio_flags; 6362 6363 /* 6364 * When Compressed ARC is disabled, but the 6365 * L2ARC block is compressed, arc_hdr_size() 6366 * will have returned LSIZE rather than PSIZE. 6367 */ 6368 if (HDR_GET_COMPRESS(hdr) != ZIO_COMPRESS_OFF && 6369 !HDR_COMPRESSION_ENABLED(hdr) && 6370 HDR_GET_PSIZE(hdr) != 0) { 6371 size = HDR_GET_PSIZE(hdr); 6372 } 6373 6374 asize = vdev_psize_to_asize(vd, size); 6375 if (asize != size) { 6376 abd = abd_alloc_for_io(asize, 6377 HDR_ISTYPE_METADATA(hdr)); 6378 cb->l2rcb_abd = abd; 6379 } else { 6380 abd = hdr_abd; 6381 } 6382 6383 ASSERT(addr >= VDEV_LABEL_START_SIZE && 6384 addr + asize <= vd->vdev_psize - 6385 VDEV_LABEL_END_SIZE); 6386 6387 /* 6388 * l2arc read. The SCL_L2ARC lock will be 6389 * released by l2arc_read_done(). 6390 * Issue a null zio if the underlying buffer 6391 * was squashed to zero size by compression. 6392 */ 6393 ASSERT3U(arc_hdr_get_compress(hdr), !=, 6394 ZIO_COMPRESS_EMPTY); 6395 rzio = zio_read_phys(pio, vd, addr, 6396 asize, abd, 6397 ZIO_CHECKSUM_OFF, 6398 l2arc_read_done, cb, priority, 6399 zio_flags | ZIO_FLAG_CANFAIL | 6400 ZIO_FLAG_DONT_PROPAGATE | 6401 ZIO_FLAG_DONT_RETRY, B_FALSE); 6402 acb->acb_zio_head = rzio; 6403 6404 if (hash_lock != NULL) 6405 mutex_exit(hash_lock); 6406 6407 DTRACE_PROBE2(l2arc__read, vdev_t *, vd, 6408 zio_t *, rzio); 6409 ARCSTAT_INCR(arcstat_l2_read_bytes, 6410 HDR_GET_PSIZE(hdr)); 6411 6412 if (*arc_flags & ARC_FLAG_NOWAIT) { 6413 zio_nowait(rzio); 6414 goto out; 6415 } 6416 6417 ASSERT(*arc_flags & ARC_FLAG_WAIT); 6418 if (zio_wait(rzio) == 0) 6419 goto out; 6420 6421 /* l2arc read error; goto zio_read() */ 6422 if (hash_lock != NULL) 6423 mutex_enter(hash_lock); 6424 } else { 6425 DTRACE_PROBE1(l2arc__miss, 6426 arc_buf_hdr_t *, hdr); 6427 ARCSTAT_BUMP(arcstat_l2_misses); 6428 if (HDR_L2_WRITING(hdr)) 6429 ARCSTAT_BUMP(arcstat_l2_rw_clash); 6430 spa_config_exit(spa, SCL_L2ARC, vd); 6431 } 6432 } else { 6433 if (vd != NULL) 6434 spa_config_exit(spa, SCL_L2ARC, vd); 6435 6436 /* 6437 * Only a spa with l2 should contribute to l2 6438 * miss stats. (Including the case of having a 6439 * faulted cache device - that's also a miss.) 6440 */ 6441 if (spa_has_l2) { 6442 /* 6443 * Skip ARC stat bump for block pointers with 6444 * embedded data. The data are read from the 6445 * blkptr itself via 6446 * decode_embedded_bp_compressed(). 6447 */ 6448 if (!embedded_bp) { 6449 DTRACE_PROBE1(l2arc__miss, 6450 arc_buf_hdr_t *, hdr); 6451 ARCSTAT_BUMP(arcstat_l2_misses); 6452 } 6453 } 6454 } 6455 6456 rzio = zio_read(pio, spa, bp, hdr_abd, size, 6457 arc_read_done, hdr, priority, zio_flags, zb); 6458 acb->acb_zio_head = rzio; 6459 6460 if (hash_lock != NULL) 6461 mutex_exit(hash_lock); 6462 6463 if (*arc_flags & ARC_FLAG_WAIT) { 6464 rc = zio_wait(rzio); 6465 goto out; 6466 } 6467 6468 ASSERT(*arc_flags & ARC_FLAG_NOWAIT); 6469 zio_nowait(rzio); 6470 } 6471 6472 out: 6473 /* embedded bps don't actually go to disk */ 6474 if (!embedded_bp) 6475 spa_read_history_add(spa, zb, *arc_flags); 6476 spl_fstrans_unmark(cookie); 6477 return (rc); 6478 6479 done: 6480 if (done) 6481 done(NULL, zb, bp, buf, private); 6482 if (pio && rc != 0) { 6483 zio_t *zio = zio_null(pio, spa, NULL, NULL, NULL, zio_flags); 6484 zio->io_error = rc; 6485 zio_nowait(zio); 6486 } 6487 goto out; 6488 } 6489 6490 arc_prune_t * 6491 arc_add_prune_callback(arc_prune_func_t *func, void *private) 6492 { 6493 arc_prune_t *p; 6494 6495 p = kmem_alloc(sizeof (*p), KM_SLEEP); 6496 p->p_pfunc = func; 6497 p->p_private = private; 6498 list_link_init(&p->p_node); 6499 zfs_refcount_create(&p->p_refcnt); 6500 6501 mutex_enter(&arc_prune_mtx); 6502 zfs_refcount_add(&p->p_refcnt, &arc_prune_list); 6503 list_insert_head(&arc_prune_list, p); 6504 mutex_exit(&arc_prune_mtx); 6505 6506 return (p); 6507 } 6508 6509 void 6510 arc_remove_prune_callback(arc_prune_t *p) 6511 { 6512 boolean_t wait = B_FALSE; 6513 mutex_enter(&arc_prune_mtx); 6514 list_remove(&arc_prune_list, p); 6515 if (zfs_refcount_remove(&p->p_refcnt, &arc_prune_list) > 0) 6516 wait = B_TRUE; 6517 mutex_exit(&arc_prune_mtx); 6518 6519 /* wait for arc_prune_task to finish */ 6520 if (wait) 6521 taskq_wait_outstanding(arc_prune_taskq, 0); 6522 ASSERT0(zfs_refcount_count(&p->p_refcnt)); 6523 zfs_refcount_destroy(&p->p_refcnt); 6524 kmem_free(p, sizeof (*p)); 6525 } 6526 6527 /* 6528 * Helper function for arc_prune_async() it is responsible for safely 6529 * handling the execution of a registered arc_prune_func_t. 6530 */ 6531 static void 6532 arc_prune_task(void *ptr) 6533 { 6534 arc_prune_t *ap = (arc_prune_t *)ptr; 6535 arc_prune_func_t *func = ap->p_pfunc; 6536 6537 if (func != NULL) 6538 func(ap->p_adjust, ap->p_private); 6539 6540 (void) zfs_refcount_remove(&ap->p_refcnt, func); 6541 } 6542 6543 /* 6544 * Notify registered consumers they must drop holds on a portion of the ARC 6545 * buffers they reference. This provides a mechanism to ensure the ARC can 6546 * honor the metadata limit and reclaim otherwise pinned ARC buffers. 6547 * 6548 * This operation is performed asynchronously so it may be safely called 6549 * in the context of the arc_reclaim_thread(). A reference is taken here 6550 * for each registered arc_prune_t and the arc_prune_task() is responsible 6551 * for releasing it once the registered arc_prune_func_t has completed. 6552 */ 6553 static void 6554 arc_prune_async(uint64_t adjust) 6555 { 6556 arc_prune_t *ap; 6557 6558 mutex_enter(&arc_prune_mtx); 6559 for (ap = list_head(&arc_prune_list); ap != NULL; 6560 ap = list_next(&arc_prune_list, ap)) { 6561 6562 if (zfs_refcount_count(&ap->p_refcnt) >= 2) 6563 continue; 6564 6565 zfs_refcount_add(&ap->p_refcnt, ap->p_pfunc); 6566 ap->p_adjust = adjust; 6567 if (taskq_dispatch(arc_prune_taskq, arc_prune_task, 6568 ap, TQ_SLEEP) == TASKQID_INVALID) { 6569 (void) zfs_refcount_remove(&ap->p_refcnt, ap->p_pfunc); 6570 continue; 6571 } 6572 ARCSTAT_BUMP(arcstat_prune); 6573 } 6574 mutex_exit(&arc_prune_mtx); 6575 } 6576 6577 /* 6578 * Notify the arc that a block was freed, and thus will never be used again. 6579 */ 6580 void 6581 arc_freed(spa_t *spa, const blkptr_t *bp) 6582 { 6583 arc_buf_hdr_t *hdr; 6584 kmutex_t *hash_lock; 6585 uint64_t guid = spa_load_guid(spa); 6586 6587 ASSERT(!BP_IS_EMBEDDED(bp)); 6588 6589 hdr = buf_hash_find(guid, bp, &hash_lock); 6590 if (hdr == NULL) 6591 return; 6592 6593 /* 6594 * We might be trying to free a block that is still doing I/O 6595 * (i.e. prefetch) or has some other reference (i.e. a dedup-ed, 6596 * dmu_sync-ed block). A block may also have a reference if it is 6597 * part of a dedup-ed, dmu_synced write. The dmu_sync() function would 6598 * have written the new block to its final resting place on disk but 6599 * without the dedup flag set. This would have left the hdr in the MRU 6600 * state and discoverable. When the txg finally syncs it detects that 6601 * the block was overridden in open context and issues an override I/O. 6602 * Since this is a dedup block, the override I/O will determine if the 6603 * block is already in the DDT. If so, then it will replace the io_bp 6604 * with the bp from the DDT and allow the I/O to finish. When the I/O 6605 * reaches the done callback, dbuf_write_override_done, it will 6606 * check to see if the io_bp and io_bp_override are identical. 6607 * If they are not, then it indicates that the bp was replaced with 6608 * the bp in the DDT and the override bp is freed. This allows 6609 * us to arrive here with a reference on a block that is being 6610 * freed. So if we have an I/O in progress, or a reference to 6611 * this hdr, then we don't destroy the hdr. 6612 */ 6613 if (!HDR_HAS_L1HDR(hdr) || 6614 zfs_refcount_is_zero(&hdr->b_l1hdr.b_refcnt)) { 6615 arc_change_state(arc_anon, hdr); 6616 arc_hdr_destroy(hdr); 6617 mutex_exit(hash_lock); 6618 } else { 6619 mutex_exit(hash_lock); 6620 } 6621 } 6622 6623 /* 6624 * Release this buffer from the cache, making it an anonymous buffer. This 6625 * must be done after a read and prior to modifying the buffer contents. 6626 * If the buffer has more than one reference, we must make 6627 * a new hdr for the buffer. 6628 */ 6629 void 6630 arc_release(arc_buf_t *buf, const void *tag) 6631 { 6632 arc_buf_hdr_t *hdr = buf->b_hdr; 6633 6634 /* 6635 * It would be nice to assert that if its DMU metadata (level > 6636 * 0 || it's the dnode file), then it must be syncing context. 6637 * But we don't know that information at this level. 6638 */ 6639 6640 ASSERT(HDR_HAS_L1HDR(hdr)); 6641 6642 /* 6643 * We don't grab the hash lock prior to this check, because if 6644 * the buffer's header is in the arc_anon state, it won't be 6645 * linked into the hash table. 6646 */ 6647 if (hdr->b_l1hdr.b_state == arc_anon) { 6648 VERIFY(!HDR_IO_IN_PROGRESS(hdr)); 6649 ASSERT(!HDR_IN_HASH_TABLE(hdr)); 6650 ASSERT(!HDR_HAS_L2HDR(hdr)); 6651 6652 ASSERT3P(hdr->b_l1hdr.b_buf, ==, buf); 6653 ASSERT(ARC_BUF_LAST(buf)); 6654 ASSERT3S(zfs_refcount_count(&hdr->b_l1hdr.b_refcnt), ==, 1); 6655 ASSERT(!multilist_link_active(&hdr->b_l1hdr.b_arc_node)); 6656 6657 hdr->b_l1hdr.b_arc_access = 0; 6658 6659 /* 6660 * If the buf is being overridden then it may already 6661 * have a hdr that is not empty. 6662 */ 6663 buf_discard_identity(hdr); 6664 arc_buf_thaw(buf); 6665 6666 return; 6667 } 6668 6669 kmutex_t *hash_lock = HDR_LOCK(hdr); 6670 mutex_enter(hash_lock); 6671 6672 /* 6673 * This assignment is only valid as long as the hash_lock is 6674 * held, we must be careful not to reference state or the 6675 * b_state field after dropping the lock. 6676 */ 6677 arc_state_t *state = hdr->b_l1hdr.b_state; 6678 ASSERT3P(hash_lock, ==, HDR_LOCK(hdr)); 6679 ASSERT3P(state, !=, arc_anon); 6680 ASSERT3P(state, !=, arc_l2c_only); 6681 6682 /* this buffer is not on any list */ 6683 ASSERT3S(zfs_refcount_count(&hdr->b_l1hdr.b_refcnt), >, 0); 6684 6685 /* 6686 * Do we have more than one buf? Or L2_WRITING with unshared data? 6687 * Single-buf L2_WRITING with shared data can reuse the header since 6688 * L2ARC uses its own transformed copy. 6689 * Or I/O is in progress (a raw/encrypted read filling b_rabd while 6690 * our decrypted buf backs b_pabd) and arc_read_done() is yet to add 6691 * more bufs? 6692 */ 6693 if (hdr->b_l1hdr.b_buf != buf || !ARC_BUF_LAST(buf) || 6694 (HDR_L2_WRITING(hdr) && !ARC_BUF_SHARED(buf)) || 6695 HDR_IO_IN_PROGRESS(hdr)) { 6696 arc_buf_hdr_t *nhdr; 6697 uint64_t spa = hdr->b_spa; 6698 uint64_t psize = HDR_GET_PSIZE(hdr); 6699 uint64_t lsize = HDR_GET_LSIZE(hdr); 6700 boolean_t protected = HDR_PROTECTED(hdr); 6701 enum zio_compress compress = arc_hdr_get_compress(hdr); 6702 uint8_t complevel = hdr->b_complevel; 6703 arc_buf_contents_t type = arc_buf_type(hdr); 6704 boolean_t single_buf = (hdr->b_l1hdr.b_buf == buf && 6705 ARC_BUF_LAST(buf)); 6706 boolean_t single_buf_l2writing = (single_buf && 6707 HDR_L2_WRITING(hdr) && !HDR_IO_IN_PROGRESS(hdr)); 6708 6709 if (ARC_BUF_SHARED(buf) && !ARC_BUF_COMPRESSED(buf)) { 6710 ASSERT3P(hdr->b_l1hdr.b_buf, !=, buf); 6711 ASSERT(ARC_BUF_LAST(buf)); 6712 } 6713 6714 /* 6715 * Pull the buffer off of this hdr and find the last buffer 6716 * in the hdr's buffer list. 6717 */ 6718 arc_buf_t *lastbuf = arc_buf_remove(hdr, buf); 6719 EQUIV(single_buf, lastbuf == NULL); 6720 6721 /* 6722 * If the current arc_buf_t and the hdr are sharing their data 6723 * buffer, then we must stop sharing that block. 6724 */ 6725 if (!single_buf_l2writing) { 6726 if (ARC_BUF_SHARED(buf)) { 6727 ASSERT(single_buf || 6728 !arc_buf_is_shared(lastbuf)); 6729 6730 /* 6731 * First, sever the block sharing relationship 6732 * between buf and the arc_buf_hdr_t. 6733 */ 6734 arc_unshare_buf(hdr, buf); 6735 6736 /* 6737 * Now we need to recreate the hdr's b_pabd. 6738 * Since we have lastbuf handy, we try to share 6739 * with it, but if we can't then we allocate a 6740 * new b_pabd and copy the data from buf into it 6741 */ 6742 if (!single_buf && 6743 arc_can_share(hdr, lastbuf)) { 6744 arc_share_buf(hdr, lastbuf); 6745 } else { 6746 arc_hdr_alloc_abd(hdr, 0); 6747 abd_copy_from_buf(hdr->b_l1hdr.b_pabd, 6748 buf->b_data, psize); 6749 } 6750 } else if (HDR_SHARED_DATA(hdr)) { 6751 /* 6752 * Uncompressed shared buffers are always at the 6753 * end of the list. Compressed buffers don't 6754 * have the same requirements. This makes it 6755 * hard to simply assert that the lastbuf is 6756 * shared so we rely on the hdr's compression 6757 * flags to determine if we have a compressed, 6758 * shared buffer. 6759 */ 6760 ASSERT(arc_buf_is_shared(lastbuf) || 6761 arc_hdr_get_compress(hdr) != 6762 ZIO_COMPRESS_OFF); 6763 ASSERT(!arc_buf_is_shared(buf)); 6764 } 6765 } 6766 6767 ASSERT(hdr->b_l1hdr.b_pabd != NULL || HDR_HAS_RABD(hdr)); 6768 6769 (void) zfs_refcount_remove_many(&state->arcs_size[type], 6770 arc_buf_size(buf), buf); 6771 6772 arc_cksum_verify(buf); 6773 arc_buf_unwatch(buf); 6774 6775 /* If this is the last uncompressed buf, free the checksum. */ 6776 if (!arc_hdr_has_uncompressed_buf(hdr)) 6777 arc_cksum_free(hdr); 6778 6779 if (single_buf_l2writing) 6780 VERIFY3S(remove_reference(hdr, tag), ==, 0); 6781 else 6782 VERIFY3S(remove_reference(hdr, tag), >, 0); 6783 6784 mutex_exit(hash_lock); 6785 6786 nhdr = arc_hdr_alloc(spa, psize, lsize, protected, compress, 6787 complevel, type); 6788 ASSERT0P(nhdr->b_l1hdr.b_buf); 6789 ASSERT0(zfs_refcount_count(&nhdr->b_l1hdr.b_refcnt)); 6790 VERIFY3U(nhdr->b_type, ==, type); 6791 ASSERT(!HDR_SHARED_DATA(nhdr)); 6792 6793 nhdr->b_l1hdr.b_buf = buf; 6794 (void) zfs_refcount_add(&nhdr->b_l1hdr.b_refcnt, tag); 6795 buf->b_hdr = nhdr; 6796 6797 (void) zfs_refcount_add_many(&arc_anon->arcs_size[type], 6798 arc_buf_size(buf), buf); 6799 } else { 6800 ASSERT(zfs_refcount_count(&hdr->b_l1hdr.b_refcnt) == 1); 6801 /* protected by hash lock, or hdr is on arc_anon */ 6802 ASSERT(!multilist_link_active(&hdr->b_l1hdr.b_arc_node)); 6803 ASSERT(!HDR_IO_IN_PROGRESS(hdr)); 6804 6805 if (HDR_HAS_L2HDR(hdr)) { 6806 mutex_enter(&hdr->b_l2hdr.b_dev->l2ad_mtx); 6807 /* Recheck to prevent race with l2arc_evict(). */ 6808 if (HDR_HAS_L2HDR(hdr)) 6809 arc_hdr_l2hdr_destroy(hdr); 6810 mutex_exit(&hdr->b_l2hdr.b_dev->l2ad_mtx); 6811 } 6812 6813 hdr->b_l1hdr.b_mru_hits = 0; 6814 hdr->b_l1hdr.b_mru_ghost_hits = 0; 6815 hdr->b_l1hdr.b_mfu_hits = 0; 6816 hdr->b_l1hdr.b_mfu_ghost_hits = 0; 6817 arc_change_state(arc_anon, hdr); 6818 hdr->b_l1hdr.b_arc_access = 0; 6819 6820 mutex_exit(hash_lock); 6821 buf_discard_identity(hdr); 6822 arc_buf_thaw(buf); 6823 } 6824 } 6825 6826 int 6827 arc_released(arc_buf_t *buf) 6828 { 6829 return (buf->b_data != NULL && 6830 buf->b_hdr->b_l1hdr.b_state == arc_anon); 6831 } 6832 6833 #ifdef ZFS_DEBUG 6834 int 6835 arc_referenced(arc_buf_t *buf) 6836 { 6837 return (zfs_refcount_count(&buf->b_hdr->b_l1hdr.b_refcnt)); 6838 } 6839 #endif 6840 6841 static void 6842 arc_write_ready(zio_t *zio) 6843 { 6844 arc_write_callback_t *callback = zio->io_private; 6845 arc_buf_t *buf = callback->awcb_buf; 6846 arc_buf_hdr_t *hdr = buf->b_hdr; 6847 blkptr_t *bp = zio->io_bp; 6848 uint64_t psize = BP_IS_HOLE(bp) ? 0 : BP_GET_PSIZE(bp); 6849 fstrans_cookie_t cookie = spl_fstrans_mark(); 6850 6851 ASSERT(HDR_HAS_L1HDR(hdr)); 6852 ASSERT(!zfs_refcount_is_zero(&buf->b_hdr->b_l1hdr.b_refcnt)); 6853 ASSERT3P(hdr->b_l1hdr.b_buf, !=, NULL); 6854 6855 /* 6856 * If we're reexecuting this zio because the pool suspended, then 6857 * cleanup any state that was previously set the first time the 6858 * callback was invoked. 6859 */ 6860 if (zio->io_flags & ZIO_FLAG_REEXECUTED) { 6861 arc_cksum_free(hdr); 6862 arc_buf_unwatch(buf); 6863 if (hdr->b_l1hdr.b_pabd != NULL) { 6864 if (ARC_BUF_SHARED(buf)) { 6865 arc_unshare_buf(hdr, buf); 6866 } else { 6867 ASSERT(!arc_buf_is_shared(buf)); 6868 arc_hdr_free_abd(hdr, B_FALSE); 6869 } 6870 } 6871 6872 if (HDR_HAS_RABD(hdr)) 6873 arc_hdr_free_abd(hdr, B_TRUE); 6874 } 6875 ASSERT0P(hdr->b_l1hdr.b_pabd); 6876 ASSERT(!HDR_HAS_RABD(hdr)); 6877 ASSERT(!HDR_SHARED_DATA(hdr)); 6878 ASSERT(!arc_buf_is_shared(buf)); 6879 6880 callback->awcb_ready(zio, buf, callback->awcb_private); 6881 6882 if (HDR_IO_IN_PROGRESS(hdr)) { 6883 ASSERT(zio->io_flags & ZIO_FLAG_REEXECUTED); 6884 } else { 6885 add_reference(hdr, hdr); /* For IO_IN_PROGRESS. */ 6886 arc_hdr_set_flags(hdr, ARC_FLAG_IO_IN_PROGRESS); 6887 } 6888 6889 if (BP_IS_PROTECTED(bp)) { 6890 /* ZIL blocks are written through zio_rewrite */ 6891 ASSERT3U(BP_GET_TYPE(bp), !=, DMU_OT_INTENT_LOG); 6892 6893 if (BP_SHOULD_BYTESWAP(bp)) { 6894 if (BP_GET_LEVEL(bp) > 0) { 6895 hdr->b_l1hdr.b_byteswap = DMU_BSWAP_UINT64; 6896 } else { 6897 hdr->b_l1hdr.b_byteswap = 6898 DMU_OT_BYTESWAP(BP_GET_TYPE(bp)); 6899 } 6900 } else { 6901 hdr->b_l1hdr.b_byteswap = DMU_BSWAP_NUMFUNCS; 6902 } 6903 6904 arc_hdr_set_flags(hdr, ARC_FLAG_PROTECTED); 6905 hdr->b_crypt_hdr.b_ot = BP_GET_TYPE(bp); 6906 hdr->b_crypt_hdr.b_dsobj = zio->io_bookmark.zb_objset; 6907 zio_crypt_decode_params_bp(bp, hdr->b_crypt_hdr.b_salt, 6908 hdr->b_crypt_hdr.b_iv); 6909 zio_crypt_decode_mac_bp(bp, hdr->b_crypt_hdr.b_mac); 6910 } else { 6911 arc_hdr_clear_flags(hdr, ARC_FLAG_PROTECTED); 6912 } 6913 6914 /* 6915 * If this block was written for raw encryption but the zio layer 6916 * ended up only authenticating it, adjust the buffer flags now. 6917 */ 6918 if (BP_IS_AUTHENTICATED(bp) && ARC_BUF_ENCRYPTED(buf)) { 6919 arc_hdr_set_flags(hdr, ARC_FLAG_NOAUTH); 6920 buf->b_flags &= ~ARC_BUF_FLAG_ENCRYPTED; 6921 if (BP_GET_COMPRESS(bp) == ZIO_COMPRESS_OFF) 6922 buf->b_flags &= ~ARC_BUF_FLAG_COMPRESSED; 6923 } else if (BP_IS_HOLE(bp) && ARC_BUF_ENCRYPTED(buf)) { 6924 buf->b_flags &= ~ARC_BUF_FLAG_ENCRYPTED; 6925 buf->b_flags &= ~ARC_BUF_FLAG_COMPRESSED; 6926 } 6927 6928 /* this must be done after the buffer flags are adjusted */ 6929 arc_cksum_compute(buf); 6930 6931 enum zio_compress compress; 6932 if (BP_IS_HOLE(bp) || BP_IS_EMBEDDED(bp)) { 6933 compress = ZIO_COMPRESS_OFF; 6934 } else { 6935 ASSERT3U(HDR_GET_LSIZE(hdr), ==, BP_GET_LSIZE(bp)); 6936 compress = BP_GET_COMPRESS(bp); 6937 } 6938 HDR_SET_PSIZE(hdr, psize); 6939 arc_hdr_set_compress(hdr, compress); 6940 hdr->b_complevel = zio->io_prop.zp_complevel; 6941 6942 if (zio->io_error != 0 || psize == 0) 6943 goto out; 6944 6945 /* 6946 * Fill the hdr with data. If the buffer is encrypted we have no choice 6947 * but to copy the data into b_radb. If the hdr is compressed, the data 6948 * we want is available from the zio, otherwise we can take it from 6949 * the buf. 6950 * 6951 * We might be able to share the buf's data with the hdr here. However, 6952 * doing so would cause the ARC to be full of linear ABDs if we write a 6953 * lot of shareable data. As a compromise, we check whether scattered 6954 * ABDs are allowed, and assume that if they are then the user wants 6955 * the ARC to be primarily filled with them regardless of the data being 6956 * written. Therefore, if they're allowed then we allocate one and copy 6957 * the data into it; otherwise, we share the data directly if we can. 6958 */ 6959 if (ARC_BUF_ENCRYPTED(buf)) { 6960 ASSERT3U(psize, >, 0); 6961 ASSERT(ARC_BUF_COMPRESSED(buf)); 6962 arc_hdr_alloc_abd(hdr, ARC_HDR_ALLOC_RDATA | 6963 ARC_HDR_USE_RESERVE); 6964 abd_copy(hdr->b_crypt_hdr.b_rabd, zio->io_abd, psize); 6965 } else if (!(HDR_UNCACHED(hdr) || 6966 abd_size_alloc_linear(arc_buf_size(buf))) || 6967 !arc_can_share(hdr, buf)) { 6968 /* 6969 * Ideally, we would always copy the io_abd into b_pabd, but the 6970 * user may have disabled compressed ARC, thus we must check the 6971 * hdr's compression setting rather than the io_bp's. 6972 */ 6973 if (BP_IS_ENCRYPTED(bp)) { 6974 ASSERT3U(psize, >, 0); 6975 arc_hdr_alloc_abd(hdr, ARC_HDR_ALLOC_RDATA | 6976 ARC_HDR_USE_RESERVE); 6977 abd_copy(hdr->b_crypt_hdr.b_rabd, zio->io_abd, psize); 6978 } else if (arc_hdr_get_compress(hdr) != ZIO_COMPRESS_OFF && 6979 !ARC_BUF_COMPRESSED(buf)) { 6980 ASSERT3U(psize, >, 0); 6981 arc_hdr_alloc_abd(hdr, ARC_HDR_USE_RESERVE); 6982 abd_copy(hdr->b_l1hdr.b_pabd, zio->io_abd, psize); 6983 } else { 6984 ASSERT3U(zio->io_orig_size, ==, arc_hdr_size(hdr)); 6985 arc_hdr_alloc_abd(hdr, ARC_HDR_USE_RESERVE); 6986 abd_copy_from_buf(hdr->b_l1hdr.b_pabd, buf->b_data, 6987 arc_buf_size(buf)); 6988 } 6989 } else { 6990 ASSERT3P(buf->b_data, ==, abd_to_buf(zio->io_orig_abd)); 6991 ASSERT3U(zio->io_orig_size, ==, arc_buf_size(buf)); 6992 ASSERT3P(hdr->b_l1hdr.b_buf, ==, buf); 6993 ASSERT(ARC_BUF_LAST(buf)); 6994 6995 arc_share_buf(hdr, buf); 6996 } 6997 6998 out: 6999 arc_hdr_verify(hdr, bp); 7000 spl_fstrans_unmark(cookie); 7001 } 7002 7003 static void 7004 arc_write_children_ready(zio_t *zio) 7005 { 7006 arc_write_callback_t *callback = zio->io_private; 7007 arc_buf_t *buf = callback->awcb_buf; 7008 7009 callback->awcb_children_ready(zio, buf, callback->awcb_private); 7010 } 7011 7012 static void 7013 arc_write_done(zio_t *zio) 7014 { 7015 arc_write_callback_t *callback = zio->io_private; 7016 arc_buf_t *buf = callback->awcb_buf; 7017 arc_buf_hdr_t *hdr = buf->b_hdr; 7018 7019 ASSERT0P(hdr->b_l1hdr.b_acb); 7020 7021 if (zio->io_error == 0) { 7022 arc_hdr_verify(hdr, zio->io_bp); 7023 7024 if (BP_IS_HOLE(zio->io_bp) || BP_IS_EMBEDDED(zio->io_bp)) { 7025 buf_discard_identity(hdr); 7026 } else { 7027 hdr->b_dva = *BP_IDENTITY(zio->io_bp); 7028 hdr->b_birth = BP_GET_PHYSICAL_BIRTH(zio->io_bp); 7029 } 7030 } else { 7031 ASSERT(HDR_EMPTY(hdr)); 7032 } 7033 7034 /* 7035 * If the block to be written was all-zero or compressed enough to be 7036 * embedded in the BP, no write was performed so there will be no 7037 * dva/birth/checksum. The buffer must therefore remain anonymous 7038 * (and uncached). 7039 */ 7040 if (!HDR_EMPTY(hdr)) { 7041 arc_buf_hdr_t *exists; 7042 kmutex_t *hash_lock; 7043 7044 ASSERT0(zio->io_error); 7045 7046 arc_cksum_verify(buf); 7047 7048 exists = buf_hash_insert(hdr, &hash_lock); 7049 if (exists != NULL) { 7050 /* 7051 * This can only happen if we overwrite for 7052 * sync-to-convergence, because we remove 7053 * buffers from the hash table at arc_release(). 7054 */ 7055 if (zio->io_flags & ZIO_FLAG_IO_REWRITE) { 7056 if (!BP_EQUAL(&zio->io_bp_orig, zio->io_bp)) 7057 panic("bad overwrite, hdr=%p exists=%p", 7058 (void *)hdr, (void *)exists); 7059 VERIFY(zfs_refcount_is_zero( 7060 &exists->b_l1hdr.b_refcnt)); 7061 arc_change_state(arc_anon, exists); 7062 arc_hdr_destroy(exists); 7063 mutex_exit(hash_lock); 7064 exists = buf_hash_insert(hdr, &hash_lock); 7065 VERIFY0P(exists); 7066 } else if (zio->io_flags & ZIO_FLAG_NOPWRITE) { 7067 /* nopwrite */ 7068 ASSERT(zio->io_prop.zp_nopwrite); 7069 if (!BP_EQUAL(&zio->io_bp_orig, zio->io_bp)) 7070 panic("bad nopwrite, hdr=%p exists=%p", 7071 (void *)hdr, (void *)exists); 7072 } else { 7073 /* Dedup */ 7074 ASSERT3P(hdr->b_l1hdr.b_buf, !=, NULL); 7075 ASSERT(ARC_BUF_LAST(hdr->b_l1hdr.b_buf)); 7076 ASSERT(hdr->b_l1hdr.b_state == arc_anon); 7077 ASSERT(BP_GET_DEDUP(zio->io_bp)); 7078 ASSERT0(BP_GET_LEVEL(zio->io_bp)); 7079 } 7080 } 7081 /* if it's not anon, we are doing a scrub */ 7082 if (exists == NULL && hdr->b_l1hdr.b_state == arc_anon) 7083 arc_access(hdr, 0, B_FALSE); 7084 arc_hdr_clear_flags(hdr, ARC_FLAG_IO_IN_PROGRESS); 7085 VERIFY3S(remove_reference(hdr, hdr), >, 0); 7086 mutex_exit(hash_lock); 7087 } else { 7088 arc_hdr_clear_flags(hdr, ARC_FLAG_IO_IN_PROGRESS); 7089 VERIFY3S(remove_reference(hdr, hdr), >, 0); 7090 } 7091 7092 callback->awcb_done(zio, buf, callback->awcb_private); 7093 7094 abd_free(zio->io_abd); 7095 kmem_free(callback, sizeof (arc_write_callback_t)); 7096 } 7097 7098 zio_t * 7099 arc_write(zio_t *pio, spa_t *spa, uint64_t txg, 7100 blkptr_t *bp, arc_buf_t *buf, boolean_t uncached, boolean_t l2arc, 7101 const zio_prop_t *zp, arc_write_done_func_t *ready, 7102 arc_write_done_func_t *children_ready, arc_write_done_func_t *done, 7103 void *private, zio_priority_t priority, int zio_flags, 7104 const zbookmark_phys_t *zb) 7105 { 7106 arc_buf_hdr_t *hdr = buf->b_hdr; 7107 arc_write_callback_t *callback; 7108 zio_t *zio; 7109 zio_prop_t localprop = *zp; 7110 7111 ASSERT3P(ready, !=, NULL); 7112 ASSERT3P(done, !=, NULL); 7113 ASSERT(!HDR_IO_ERROR(hdr)); 7114 ASSERT(!HDR_IO_IN_PROGRESS(hdr)); 7115 ASSERT0P(hdr->b_l1hdr.b_acb); 7116 ASSERT3P(hdr->b_l1hdr.b_buf, !=, NULL); 7117 if (uncached) 7118 arc_hdr_set_flags(hdr, ARC_FLAG_UNCACHED); 7119 else if (l2arc) 7120 arc_hdr_set_flags(hdr, ARC_FLAG_L2CACHE); 7121 7122 if (ARC_BUF_ENCRYPTED(buf)) { 7123 ASSERT(ARC_BUF_COMPRESSED(buf)); 7124 localprop.zp_encrypt = B_TRUE; 7125 localprop.zp_compress = HDR_GET_COMPRESS(hdr); 7126 localprop.zp_complevel = hdr->b_complevel; 7127 localprop.zp_byteorder = 7128 (hdr->b_l1hdr.b_byteswap == DMU_BSWAP_NUMFUNCS) ? 7129 ZFS_HOST_BYTEORDER : !ZFS_HOST_BYTEORDER; 7130 memcpy(localprop.zp_salt, hdr->b_crypt_hdr.b_salt, 7131 ZIO_DATA_SALT_LEN); 7132 memcpy(localprop.zp_iv, hdr->b_crypt_hdr.b_iv, 7133 ZIO_DATA_IV_LEN); 7134 memcpy(localprop.zp_mac, hdr->b_crypt_hdr.b_mac, 7135 ZIO_DATA_MAC_LEN); 7136 if (DMU_OT_IS_ENCRYPTED(localprop.zp_type)) { 7137 localprop.zp_nopwrite = B_FALSE; 7138 localprop.zp_copies = 7139 MIN(localprop.zp_copies, SPA_DVAS_PER_BP - 1); 7140 localprop.zp_gang_copies = 7141 MIN(localprop.zp_gang_copies, SPA_DVAS_PER_BP - 1); 7142 } 7143 zio_flags |= ZIO_FLAG_RAW; 7144 } else if (ARC_BUF_COMPRESSED(buf)) { 7145 ASSERT3U(HDR_GET_LSIZE(hdr), !=, arc_buf_size(buf)); 7146 localprop.zp_compress = HDR_GET_COMPRESS(hdr); 7147 localprop.zp_complevel = hdr->b_complevel; 7148 zio_flags |= ZIO_FLAG_RAW_COMPRESS; 7149 } 7150 callback = kmem_zalloc(sizeof (arc_write_callback_t), KM_SLEEP); 7151 callback->awcb_ready = ready; 7152 callback->awcb_children_ready = children_ready; 7153 callback->awcb_done = done; 7154 callback->awcb_private = private; 7155 callback->awcb_buf = buf; 7156 7157 /* 7158 * The hdr's b_pabd is now stale, free it now. A new data block 7159 * will be allocated when the zio pipeline calls arc_write_ready(). 7160 */ 7161 if (hdr->b_l1hdr.b_pabd != NULL) { 7162 /* 7163 * If the buf is currently sharing the data block with 7164 * the hdr then we need to break that relationship here. 7165 * The hdr will remain with a NULL data pointer and the 7166 * buf will take sole ownership of the block. 7167 */ 7168 if (ARC_BUF_SHARED(buf)) { 7169 arc_unshare_buf(hdr, buf); 7170 } else { 7171 ASSERT(!arc_buf_is_shared(buf)); 7172 arc_hdr_free_abd(hdr, B_FALSE); 7173 } 7174 VERIFY3P(buf->b_data, !=, NULL); 7175 } 7176 7177 if (HDR_HAS_RABD(hdr)) 7178 arc_hdr_free_abd(hdr, B_TRUE); 7179 7180 if (!(zio_flags & ZIO_FLAG_RAW)) 7181 arc_hdr_set_compress(hdr, ZIO_COMPRESS_OFF); 7182 7183 ASSERT(!arc_buf_is_shared(buf)); 7184 ASSERT0P(hdr->b_l1hdr.b_pabd); 7185 7186 zio = zio_write(pio, spa, txg, bp, 7187 abd_get_from_buf(buf->b_data, HDR_GET_LSIZE(hdr)), 7188 HDR_GET_LSIZE(hdr), arc_buf_size(buf), &localprop, arc_write_ready, 7189 (children_ready != NULL) ? arc_write_children_ready : NULL, 7190 arc_write_done, callback, priority, zio_flags, zb); 7191 7192 return (zio); 7193 } 7194 7195 void 7196 arc_tempreserve_clear(uint64_t reserve) 7197 { 7198 atomic_add_64(&arc_tempreserve, -reserve); 7199 ASSERT((int64_t)arc_tempreserve >= 0); 7200 } 7201 7202 int 7203 arc_tempreserve_space(spa_t *spa, uint64_t reserve, uint64_t txg) 7204 { 7205 int error; 7206 uint64_t anon_size; 7207 7208 if (!arc_no_grow && 7209 reserve > arc_c/4 && 7210 reserve * 4 > (2ULL << SPA_MAXBLOCKSHIFT)) 7211 arc_c = MIN(arc_c_max, reserve * 4); 7212 7213 /* 7214 * Throttle when the calculated memory footprint for the TXG 7215 * exceeds the target ARC size. 7216 */ 7217 if (reserve > arc_c) { 7218 DMU_TX_STAT_BUMP(dmu_tx_memory_reserve); 7219 return (SET_ERROR(ERESTART)); 7220 } 7221 7222 /* 7223 * Don't count loaned bufs as in flight dirty data to prevent long 7224 * network delays from blocking transactions that are ready to be 7225 * assigned to a txg. 7226 */ 7227 7228 /* assert that it has not wrapped around */ 7229 ASSERT3S(atomic_add_64_nv(&arc_loaned_bytes, 0), >=, 0); 7230 7231 anon_size = MAX((int64_t) 7232 (zfs_refcount_count(&arc_anon->arcs_size[ARC_BUFC_DATA]) + 7233 zfs_refcount_count(&arc_anon->arcs_size[ARC_BUFC_METADATA]) - 7234 arc_loaned_bytes), 0); 7235 7236 /* 7237 * Writes will, almost always, require additional memory allocations 7238 * in order to compress/encrypt/etc the data. We therefore need to 7239 * make sure that there is sufficient available memory for this. 7240 */ 7241 error = arc_memory_throttle(spa, reserve, txg); 7242 if (error != 0) 7243 return (error); 7244 7245 /* 7246 * Throttle writes when the amount of dirty data in the cache 7247 * gets too large. We try to keep the cache less than half full 7248 * of dirty blocks so that our sync times don't grow too large. 7249 * 7250 * In the case of one pool being built on another pool, we want 7251 * to make sure we don't end up throttling the lower (backing) 7252 * pool when the upper pool is the majority contributor to dirty 7253 * data. To insure we make forward progress during throttling, we 7254 * also check the current pool's net dirty data and only throttle 7255 * if it exceeds zfs_arc_pool_dirty_percent of the anonymous dirty 7256 * data in the cache. 7257 * 7258 * Note: if two requests come in concurrently, we might let them 7259 * both succeed, when one of them should fail. Not a huge deal. 7260 */ 7261 uint64_t total_dirty = reserve + arc_tempreserve + anon_size; 7262 uint64_t spa_dirty_anon = spa_dirty_data(spa); 7263 uint64_t rarc_c = arc_warm ? arc_c : arc_c_max; 7264 if (total_dirty > rarc_c * zfs_arc_dirty_limit_percent / 100 && 7265 anon_size > rarc_c * zfs_arc_anon_limit_percent / 100 && 7266 spa_dirty_anon > anon_size * zfs_arc_pool_dirty_percent / 100) { 7267 #ifdef ZFS_DEBUG 7268 uint64_t meta_esize = zfs_refcount_count( 7269 &arc_anon->arcs_esize[ARC_BUFC_METADATA]); 7270 uint64_t data_esize = 7271 zfs_refcount_count(&arc_anon->arcs_esize[ARC_BUFC_DATA]); 7272 dprintf("failing, arc_tempreserve=%lluK anon_meta=%lluK " 7273 "anon_data=%lluK tempreserve=%lluK rarc_c=%lluK\n", 7274 (u_longlong_t)arc_tempreserve >> 10, 7275 (u_longlong_t)meta_esize >> 10, 7276 (u_longlong_t)data_esize >> 10, 7277 (u_longlong_t)reserve >> 10, 7278 (u_longlong_t)rarc_c >> 10); 7279 #endif 7280 DMU_TX_STAT_BUMP(dmu_tx_dirty_throttle); 7281 return (SET_ERROR(ERESTART)); 7282 } 7283 atomic_add_64(&arc_tempreserve, reserve); 7284 return (0); 7285 } 7286 7287 static void 7288 arc_kstat_update_state(arc_state_t *state, kstat_named_t *size, 7289 kstat_named_t *data, kstat_named_t *metadata, 7290 kstat_named_t *evict_data, kstat_named_t *evict_metadata) 7291 { 7292 data->value.ui64 = 7293 zfs_refcount_count(&state->arcs_size[ARC_BUFC_DATA]); 7294 metadata->value.ui64 = 7295 zfs_refcount_count(&state->arcs_size[ARC_BUFC_METADATA]); 7296 size->value.ui64 = data->value.ui64 + metadata->value.ui64; 7297 evict_data->value.ui64 = 7298 zfs_refcount_count(&state->arcs_esize[ARC_BUFC_DATA]); 7299 evict_metadata->value.ui64 = 7300 zfs_refcount_count(&state->arcs_esize[ARC_BUFC_METADATA]); 7301 } 7302 7303 static int 7304 arc_kstat_update(kstat_t *ksp, int rw) 7305 { 7306 arc_stats_t *as = ksp->ks_data; 7307 7308 if (rw == KSTAT_WRITE) 7309 return (SET_ERROR(EACCES)); 7310 7311 as->arcstat_hits.value.ui64 = 7312 wmsum_value(&arc_sums.arcstat_hits); 7313 as->arcstat_iohits.value.ui64 = 7314 wmsum_value(&arc_sums.arcstat_iohits); 7315 as->arcstat_misses.value.ui64 = 7316 wmsum_value(&arc_sums.arcstat_misses); 7317 as->arcstat_demand_data_hits.value.ui64 = 7318 wmsum_value(&arc_sums.arcstat_demand_data_hits); 7319 as->arcstat_demand_data_iohits.value.ui64 = 7320 wmsum_value(&arc_sums.arcstat_demand_data_iohits); 7321 as->arcstat_demand_data_misses.value.ui64 = 7322 wmsum_value(&arc_sums.arcstat_demand_data_misses); 7323 as->arcstat_demand_metadata_hits.value.ui64 = 7324 wmsum_value(&arc_sums.arcstat_demand_metadata_hits); 7325 as->arcstat_demand_metadata_iohits.value.ui64 = 7326 wmsum_value(&arc_sums.arcstat_demand_metadata_iohits); 7327 as->arcstat_demand_metadata_misses.value.ui64 = 7328 wmsum_value(&arc_sums.arcstat_demand_metadata_misses); 7329 as->arcstat_prefetch_data_hits.value.ui64 = 7330 wmsum_value(&arc_sums.arcstat_prefetch_data_hits); 7331 as->arcstat_prefetch_data_iohits.value.ui64 = 7332 wmsum_value(&arc_sums.arcstat_prefetch_data_iohits); 7333 as->arcstat_prefetch_data_misses.value.ui64 = 7334 wmsum_value(&arc_sums.arcstat_prefetch_data_misses); 7335 as->arcstat_prefetch_metadata_hits.value.ui64 = 7336 wmsum_value(&arc_sums.arcstat_prefetch_metadata_hits); 7337 as->arcstat_prefetch_metadata_iohits.value.ui64 = 7338 wmsum_value(&arc_sums.arcstat_prefetch_metadata_iohits); 7339 as->arcstat_prefetch_metadata_misses.value.ui64 = 7340 wmsum_value(&arc_sums.arcstat_prefetch_metadata_misses); 7341 as->arcstat_mru_hits.value.ui64 = 7342 wmsum_value(&arc_sums.arcstat_mru_hits); 7343 as->arcstat_mru_ghost_hits.value.ui64 = 7344 wmsum_value(&arc_sums.arcstat_mru_ghost_hits); 7345 as->arcstat_mfu_hits.value.ui64 = 7346 wmsum_value(&arc_sums.arcstat_mfu_hits); 7347 as->arcstat_mfu_ghost_hits.value.ui64 = 7348 wmsum_value(&arc_sums.arcstat_mfu_ghost_hits); 7349 as->arcstat_uncached_hits.value.ui64 = 7350 wmsum_value(&arc_sums.arcstat_uncached_hits); 7351 as->arcstat_deleted.value.ui64 = 7352 wmsum_value(&arc_sums.arcstat_deleted); 7353 as->arcstat_mutex_miss.value.ui64 = 7354 wmsum_value(&arc_sums.arcstat_mutex_miss); 7355 as->arcstat_access_skip.value.ui64 = 7356 wmsum_value(&arc_sums.arcstat_access_skip); 7357 as->arcstat_evict_skip.value.ui64 = 7358 wmsum_value(&arc_sums.arcstat_evict_skip); 7359 as->arcstat_evict_not_enough.value.ui64 = 7360 wmsum_value(&arc_sums.arcstat_evict_not_enough); 7361 as->arcstat_evict_l2_cached.value.ui64 = 7362 wmsum_value(&arc_sums.arcstat_evict_l2_cached); 7363 as->arcstat_evict_l2_eligible.value.ui64 = 7364 wmsum_value(&arc_sums.arcstat_evict_l2_eligible); 7365 as->arcstat_evict_l2_eligible_mfu.value.ui64 = 7366 wmsum_value(&arc_sums.arcstat_evict_l2_eligible_mfu); 7367 as->arcstat_evict_l2_eligible_mru.value.ui64 = 7368 wmsum_value(&arc_sums.arcstat_evict_l2_eligible_mru); 7369 as->arcstat_evict_l2_ineligible.value.ui64 = 7370 wmsum_value(&arc_sums.arcstat_evict_l2_ineligible); 7371 as->arcstat_evict_l2_skip.value.ui64 = 7372 wmsum_value(&arc_sums.arcstat_evict_l2_skip); 7373 as->arcstat_hash_elements.value.ui64 = 7374 as->arcstat_hash_elements_max.value.ui64 = 7375 wmsum_value(&arc_sums.arcstat_hash_elements); 7376 as->arcstat_hash_collisions.value.ui64 = 7377 wmsum_value(&arc_sums.arcstat_hash_collisions); 7378 as->arcstat_hash_chains.value.ui64 = 7379 wmsum_value(&arc_sums.arcstat_hash_chains); 7380 as->arcstat_size.value.ui64 = 7381 aggsum_value(&arc_sums.arcstat_size); 7382 as->arcstat_compressed_size.value.ui64 = 7383 wmsum_value(&arc_sums.arcstat_compressed_size); 7384 as->arcstat_uncompressed_size.value.ui64 = 7385 wmsum_value(&arc_sums.arcstat_uncompressed_size); 7386 as->arcstat_overhead_size.value.ui64 = 7387 wmsum_value(&arc_sums.arcstat_overhead_size); 7388 as->arcstat_hdr_size.value.ui64 = 7389 wmsum_value(&arc_sums.arcstat_hdr_size); 7390 as->arcstat_data_size.value.ui64 = 7391 wmsum_value(&arc_sums.arcstat_data_size); 7392 as->arcstat_metadata_size.value.ui64 = 7393 wmsum_value(&arc_sums.arcstat_metadata_size); 7394 as->arcstat_dbuf_size.value.ui64 = 7395 wmsum_value(&arc_sums.arcstat_dbuf_size); 7396 #if defined(COMPAT_FREEBSD11) 7397 as->arcstat_other_size.value.ui64 = 7398 wmsum_value(&arc_sums.arcstat_bonus_size) + 7399 aggsum_value(&arc_sums.arcstat_dnode_size) + 7400 wmsum_value(&arc_sums.arcstat_dbuf_size); 7401 #endif 7402 7403 arc_kstat_update_state(arc_anon, 7404 &as->arcstat_anon_size, 7405 &as->arcstat_anon_data, 7406 &as->arcstat_anon_metadata, 7407 &as->arcstat_anon_evictable_data, 7408 &as->arcstat_anon_evictable_metadata); 7409 arc_kstat_update_state(arc_mru, 7410 &as->arcstat_mru_size, 7411 &as->arcstat_mru_data, 7412 &as->arcstat_mru_metadata, 7413 &as->arcstat_mru_evictable_data, 7414 &as->arcstat_mru_evictable_metadata); 7415 arc_kstat_update_state(arc_mru_ghost, 7416 &as->arcstat_mru_ghost_size, 7417 &as->arcstat_mru_ghost_data, 7418 &as->arcstat_mru_ghost_metadata, 7419 &as->arcstat_mru_ghost_evictable_data, 7420 &as->arcstat_mru_ghost_evictable_metadata); 7421 arc_kstat_update_state(arc_mfu, 7422 &as->arcstat_mfu_size, 7423 &as->arcstat_mfu_data, 7424 &as->arcstat_mfu_metadata, 7425 &as->arcstat_mfu_evictable_data, 7426 &as->arcstat_mfu_evictable_metadata); 7427 arc_kstat_update_state(arc_mfu_ghost, 7428 &as->arcstat_mfu_ghost_size, 7429 &as->arcstat_mfu_ghost_data, 7430 &as->arcstat_mfu_ghost_metadata, 7431 &as->arcstat_mfu_ghost_evictable_data, 7432 &as->arcstat_mfu_ghost_evictable_metadata); 7433 arc_kstat_update_state(arc_uncached, 7434 &as->arcstat_uncached_size, 7435 &as->arcstat_uncached_data, 7436 &as->arcstat_uncached_metadata, 7437 &as->arcstat_uncached_evictable_data, 7438 &as->arcstat_uncached_evictable_metadata); 7439 7440 as->arcstat_dnode_size.value.ui64 = 7441 aggsum_value(&arc_sums.arcstat_dnode_size); 7442 as->arcstat_bonus_size.value.ui64 = 7443 wmsum_value(&arc_sums.arcstat_bonus_size); 7444 as->arcstat_l2_ndev.value.ui64 = l2arc_ndev; 7445 as->arcstat_l2_hits.value.ui64 = 7446 wmsum_value(&arc_sums.arcstat_l2_hits); 7447 as->arcstat_l2_misses.value.ui64 = 7448 wmsum_value(&arc_sums.arcstat_l2_misses); 7449 as->arcstat_l2_prefetch_asize.value.ui64 = 7450 wmsum_value(&arc_sums.arcstat_l2_prefetch_asize); 7451 as->arcstat_l2_mru_asize.value.ui64 = 7452 wmsum_value(&arc_sums.arcstat_l2_mru_asize); 7453 as->arcstat_l2_mfu_asize.value.ui64 = 7454 wmsum_value(&arc_sums.arcstat_l2_mfu_asize); 7455 as->arcstat_l2_bufc_data_asize.value.ui64 = 7456 wmsum_value(&arc_sums.arcstat_l2_bufc_data_asize); 7457 as->arcstat_l2_bufc_metadata_asize.value.ui64 = 7458 wmsum_value(&arc_sums.arcstat_l2_bufc_metadata_asize); 7459 as->arcstat_l2_feeds.value.ui64 = 7460 wmsum_value(&arc_sums.arcstat_l2_feeds); 7461 as->arcstat_l2_rw_clash.value.ui64 = 7462 wmsum_value(&arc_sums.arcstat_l2_rw_clash); 7463 as->arcstat_l2_read_bytes.value.ui64 = 7464 wmsum_value(&arc_sums.arcstat_l2_read_bytes); 7465 as->arcstat_l2_write_bytes.value.ui64 = 7466 wmsum_value(&arc_sums.arcstat_l2_write_bytes); 7467 as->arcstat_l2_writes_sent.value.ui64 = 7468 wmsum_value(&arc_sums.arcstat_l2_writes_sent); 7469 as->arcstat_l2_writes_done.value.ui64 = 7470 wmsum_value(&arc_sums.arcstat_l2_writes_done); 7471 as->arcstat_l2_writes_error.value.ui64 = 7472 wmsum_value(&arc_sums.arcstat_l2_writes_error); 7473 as->arcstat_l2_writes_lock_retry.value.ui64 = 7474 wmsum_value(&arc_sums.arcstat_l2_writes_lock_retry); 7475 as->arcstat_l2_evict_lock_retry.value.ui64 = 7476 wmsum_value(&arc_sums.arcstat_l2_evict_lock_retry); 7477 as->arcstat_l2_evict_reading.value.ui64 = 7478 wmsum_value(&arc_sums.arcstat_l2_evict_reading); 7479 as->arcstat_l2_evict_l1cached.value.ui64 = 7480 wmsum_value(&arc_sums.arcstat_l2_evict_l1cached); 7481 as->arcstat_l2_free_on_write.value.ui64 = 7482 wmsum_value(&arc_sums.arcstat_l2_free_on_write); 7483 as->arcstat_l2_abort_lowmem.value.ui64 = 7484 wmsum_value(&arc_sums.arcstat_l2_abort_lowmem); 7485 as->arcstat_l2_cksum_bad.value.ui64 = 7486 wmsum_value(&arc_sums.arcstat_l2_cksum_bad); 7487 as->arcstat_l2_io_error.value.ui64 = 7488 wmsum_value(&arc_sums.arcstat_l2_io_error); 7489 as->arcstat_l2_lsize.value.ui64 = 7490 wmsum_value(&arc_sums.arcstat_l2_lsize); 7491 as->arcstat_l2_psize.value.ui64 = 7492 wmsum_value(&arc_sums.arcstat_l2_psize); 7493 as->arcstat_l2_hdr_size.value.ui64 = 7494 aggsum_value(&arc_sums.arcstat_l2_hdr_size); 7495 as->arcstat_l2_log_blk_writes.value.ui64 = 7496 wmsum_value(&arc_sums.arcstat_l2_log_blk_writes); 7497 as->arcstat_l2_log_blk_asize.value.ui64 = 7498 wmsum_value(&arc_sums.arcstat_l2_log_blk_asize); 7499 as->arcstat_l2_log_blk_count.value.ui64 = 7500 wmsum_value(&arc_sums.arcstat_l2_log_blk_count); 7501 as->arcstat_l2_rebuild_success.value.ui64 = 7502 wmsum_value(&arc_sums.arcstat_l2_rebuild_success); 7503 as->arcstat_l2_rebuild_abort_unsupported.value.ui64 = 7504 wmsum_value(&arc_sums.arcstat_l2_rebuild_abort_unsupported); 7505 as->arcstat_l2_rebuild_abort_io_errors.value.ui64 = 7506 wmsum_value(&arc_sums.arcstat_l2_rebuild_abort_io_errors); 7507 as->arcstat_l2_rebuild_abort_dh_errors.value.ui64 = 7508 wmsum_value(&arc_sums.arcstat_l2_rebuild_abort_dh_errors); 7509 as->arcstat_l2_rebuild_abort_cksum_lb_errors.value.ui64 = 7510 wmsum_value(&arc_sums.arcstat_l2_rebuild_abort_cksum_lb_errors); 7511 as->arcstat_l2_rebuild_abort_lowmem.value.ui64 = 7512 wmsum_value(&arc_sums.arcstat_l2_rebuild_abort_lowmem); 7513 as->arcstat_l2_rebuild_size.value.ui64 = 7514 wmsum_value(&arc_sums.arcstat_l2_rebuild_size); 7515 as->arcstat_l2_rebuild_asize.value.ui64 = 7516 wmsum_value(&arc_sums.arcstat_l2_rebuild_asize); 7517 as->arcstat_l2_rebuild_bufs.value.ui64 = 7518 wmsum_value(&arc_sums.arcstat_l2_rebuild_bufs); 7519 as->arcstat_l2_rebuild_bufs_precached.value.ui64 = 7520 wmsum_value(&arc_sums.arcstat_l2_rebuild_bufs_precached); 7521 as->arcstat_l2_rebuild_log_blks.value.ui64 = 7522 wmsum_value(&arc_sums.arcstat_l2_rebuild_log_blks); 7523 as->arcstat_memory_throttle_count.value.ui64 = 7524 wmsum_value(&arc_sums.arcstat_memory_throttle_count); 7525 as->arcstat_memory_direct_count.value.ui64 = 7526 wmsum_value(&arc_sums.arcstat_memory_direct_count); 7527 as->arcstat_memory_indirect_count.value.ui64 = 7528 wmsum_value(&arc_sums.arcstat_memory_indirect_count); 7529 7530 as->arcstat_memory_all_bytes.value.ui64 = 7531 arc_all_memory(); 7532 as->arcstat_memory_free_bytes.value.ui64 = 7533 arc_free_memory(); 7534 as->arcstat_memory_available_bytes.value.i64 = 7535 arc_available_memory(); 7536 7537 as->arcstat_prune.value.ui64 = 7538 wmsum_value(&arc_sums.arcstat_prune); 7539 as->arcstat_meta_used.value.ui64 = 7540 wmsum_value(&arc_sums.arcstat_meta_used); 7541 as->arcstat_async_upgrade_sync.value.ui64 = 7542 wmsum_value(&arc_sums.arcstat_async_upgrade_sync); 7543 as->arcstat_predictive_prefetch.value.ui64 = 7544 wmsum_value(&arc_sums.arcstat_predictive_prefetch); 7545 as->arcstat_demand_hit_predictive_prefetch.value.ui64 = 7546 wmsum_value(&arc_sums.arcstat_demand_hit_predictive_prefetch); 7547 as->arcstat_demand_iohit_predictive_prefetch.value.ui64 = 7548 wmsum_value(&arc_sums.arcstat_demand_iohit_predictive_prefetch); 7549 as->arcstat_prescient_prefetch.value.ui64 = 7550 wmsum_value(&arc_sums.arcstat_prescient_prefetch); 7551 as->arcstat_demand_hit_prescient_prefetch.value.ui64 = 7552 wmsum_value(&arc_sums.arcstat_demand_hit_prescient_prefetch); 7553 as->arcstat_demand_iohit_prescient_prefetch.value.ui64 = 7554 wmsum_value(&arc_sums.arcstat_demand_iohit_prescient_prefetch); 7555 as->arcstat_raw_size.value.ui64 = 7556 wmsum_value(&arc_sums.arcstat_raw_size); 7557 as->arcstat_cached_only_in_progress.value.ui64 = 7558 wmsum_value(&arc_sums.arcstat_cached_only_in_progress); 7559 as->arcstat_abd_chunk_waste_size.value.ui64 = 7560 wmsum_value(&arc_sums.arcstat_abd_chunk_waste_size); 7561 7562 return (0); 7563 } 7564 7565 /* 7566 * This function *must* return indices evenly distributed between all 7567 * sublists of the multilist. This is needed due to how the ARC eviction 7568 * code is laid out; arc_evict_state() assumes ARC buffers are evenly 7569 * distributed between all sublists and uses this assumption when 7570 * deciding which sublist to evict from and how much to evict from it. 7571 */ 7572 static unsigned int 7573 arc_state_multilist_index_func(multilist_t *ml, void *obj) 7574 { 7575 arc_buf_hdr_t *hdr = obj; 7576 7577 /* 7578 * We rely on b_dva to generate evenly distributed index 7579 * numbers using buf_hash below. So, as an added precaution, 7580 * let's make sure we never add empty buffers to the arc lists. 7581 */ 7582 ASSERT(!HDR_EMPTY(hdr)); 7583 7584 /* 7585 * The assumption here, is the hash value for a given 7586 * arc_buf_hdr_t will remain constant throughout its lifetime 7587 * (i.e. its b_spa, b_dva, and b_birth fields don't change). 7588 * Thus, we don't need to store the header's sublist index 7589 * on insertion, as this index can be recalculated on removal. 7590 * 7591 * Also, the low order bits of the hash value are thought to be 7592 * distributed evenly. Otherwise, in the case that the multilist 7593 * has a power of two number of sublists, each sublists' usage 7594 * would not be evenly distributed. In this context full 64bit 7595 * division would be a waste of time, so limit it to 32 bits. 7596 */ 7597 return ((unsigned int)buf_hash(hdr->b_spa, &hdr->b_dva, hdr->b_birth) % 7598 multilist_get_num_sublists(ml)); 7599 } 7600 7601 static unsigned int 7602 arc_state_l2c_multilist_index_func(multilist_t *ml, void *obj) 7603 { 7604 panic("Header %p insert into arc_l2c_only %p", obj, ml); 7605 } 7606 7607 #define WARN_IF_TUNING_IGNORED(tuning, value, do_warn) do { \ 7608 if ((do_warn) && (tuning) && ((tuning) != (value))) { \ 7609 cmn_err(CE_WARN, \ 7610 "ignoring tunable %s (using %llu instead)", \ 7611 (#tuning), (u_longlong_t)(value)); \ 7612 } \ 7613 } while (0) 7614 7615 /* 7616 * Called during module initialization and periodically thereafter to 7617 * apply reasonable changes to the exposed performance tunings. Can also be 7618 * called explicitly by param_set_arc_*() functions when ARC tunables are 7619 * updated manually. Non-zero zfs_* values which differ from the currently set 7620 * values will be applied. 7621 */ 7622 void 7623 arc_tuning_update(boolean_t verbose) 7624 { 7625 uint64_t allmem = arc_all_memory(); 7626 7627 if (arc_c_max == 0) 7628 return; 7629 7630 /* Valid range: 32M - <arc_c_max> */ 7631 if ((zfs_arc_min) && (zfs_arc_min != arc_c_min) && 7632 (zfs_arc_min >= 2ULL << SPA_MAXBLOCKSHIFT) && 7633 (zfs_arc_min <= arc_c_max)) { 7634 arc_c_min = zfs_arc_min; 7635 arc_c = MAX(arc_c, arc_c_min); 7636 } 7637 WARN_IF_TUNING_IGNORED(zfs_arc_min, arc_c_min, verbose); 7638 7639 /* Valid range: 64M - <all physical memory> */ 7640 if ((zfs_arc_max) && (zfs_arc_max != arc_c_max) && 7641 (zfs_arc_max >= MIN_ARC_MAX) && (zfs_arc_max < allmem) && 7642 (zfs_arc_max > arc_c_min)) { 7643 arc_c_max = zfs_arc_max; 7644 arc_c = MIN(arc_c, arc_c_max); 7645 if (arc_dnode_limit > arc_c_max) 7646 arc_dnode_limit = arc_c_max; 7647 } 7648 WARN_IF_TUNING_IGNORED(zfs_arc_max, arc_c_max, verbose); 7649 7650 /* Valid range: 0 - <all physical memory> */ 7651 arc_dnode_limit = zfs_arc_dnode_limit ? zfs_arc_dnode_limit : 7652 MIN(zfs_arc_dnode_limit_percent, 100) * arc_c_max / 100; 7653 WARN_IF_TUNING_IGNORED(zfs_arc_dnode_limit, arc_dnode_limit, verbose); 7654 7655 /* Valid range: 1 - N */ 7656 if (zfs_arc_grow_retry) 7657 arc_grow_retry = zfs_arc_grow_retry; 7658 7659 /* Valid range: 1 - N */ 7660 if (zfs_arc_shrink_shift) { 7661 arc_shrink_shift = zfs_arc_shrink_shift; 7662 zfs_arc_no_grow_shift = MIN(zfs_arc_no_grow_shift, 7663 arc_shrink_shift - 1); 7664 } 7665 7666 /* Valid range: 1 - N ms */ 7667 if (zfs_arc_min_prefetch_ms) 7668 arc_min_prefetch = MSEC_TO_TICK(zfs_arc_min_prefetch_ms); 7669 7670 /* Valid range: 1 - N ms */ 7671 if (zfs_arc_min_prescient_prefetch_ms) { 7672 arc_min_prescient_prefetch = 7673 MSEC_TO_TICK(zfs_arc_min_prescient_prefetch_ms); 7674 } 7675 7676 /* Valid range: 0 - 100 */ 7677 if (zfs_arc_lotsfree_percent <= 100) 7678 arc_lotsfree_percent = zfs_arc_lotsfree_percent; 7679 WARN_IF_TUNING_IGNORED(zfs_arc_lotsfree_percent, arc_lotsfree_percent, 7680 verbose); 7681 7682 /* Valid range: 0 - <all physical memory> */ 7683 if ((zfs_arc_sys_free) && (zfs_arc_sys_free != arc_sys_free)) 7684 arc_sys_free = MIN(zfs_arc_sys_free, allmem); 7685 WARN_IF_TUNING_IGNORED(zfs_arc_sys_free, arc_sys_free, verbose); 7686 } 7687 7688 static void 7689 arc_state_multilist_init(multilist_t *ml, 7690 multilist_sublist_index_func_t *index_func, int *maxcountp) 7691 { 7692 multilist_create(ml, sizeof (arc_buf_hdr_t), 7693 offsetof(arc_buf_hdr_t, b_l1hdr.b_arc_node), index_func); 7694 *maxcountp = MAX(*maxcountp, multilist_get_num_sublists(ml)); 7695 } 7696 7697 static void 7698 arc_state_init(void) 7699 { 7700 int num_sublists = 0; 7701 7702 arc_state_multilist_init(&arc_mru->arcs_list[ARC_BUFC_METADATA], 7703 arc_state_multilist_index_func, &num_sublists); 7704 arc_state_multilist_init(&arc_mru->arcs_list[ARC_BUFC_DATA], 7705 arc_state_multilist_index_func, &num_sublists); 7706 arc_state_multilist_init(&arc_mru_ghost->arcs_list[ARC_BUFC_METADATA], 7707 arc_state_multilist_index_func, &num_sublists); 7708 arc_state_multilist_init(&arc_mru_ghost->arcs_list[ARC_BUFC_DATA], 7709 arc_state_multilist_index_func, &num_sublists); 7710 arc_state_multilist_init(&arc_mfu->arcs_list[ARC_BUFC_METADATA], 7711 arc_state_multilist_index_func, &num_sublists); 7712 arc_state_multilist_init(&arc_mfu->arcs_list[ARC_BUFC_DATA], 7713 arc_state_multilist_index_func, &num_sublists); 7714 arc_state_multilist_init(&arc_mfu_ghost->arcs_list[ARC_BUFC_METADATA], 7715 arc_state_multilist_index_func, &num_sublists); 7716 arc_state_multilist_init(&arc_mfu_ghost->arcs_list[ARC_BUFC_DATA], 7717 arc_state_multilist_index_func, &num_sublists); 7718 arc_state_multilist_init(&arc_uncached->arcs_list[ARC_BUFC_METADATA], 7719 arc_state_multilist_index_func, &num_sublists); 7720 arc_state_multilist_init(&arc_uncached->arcs_list[ARC_BUFC_DATA], 7721 arc_state_multilist_index_func, &num_sublists); 7722 7723 /* 7724 * L2 headers should never be on the L2 state list since they don't 7725 * have L1 headers allocated. Special index function asserts that. 7726 */ 7727 arc_state_multilist_init(&arc_l2c_only->arcs_list[ARC_BUFC_METADATA], 7728 arc_state_l2c_multilist_index_func, &num_sublists); 7729 arc_state_multilist_init(&arc_l2c_only->arcs_list[ARC_BUFC_DATA], 7730 arc_state_l2c_multilist_index_func, &num_sublists); 7731 7732 /* 7733 * Keep track of the number of markers needed to reclaim buffers from 7734 * any ARC state. The markers will be pre-allocated so as to minimize 7735 * the number of memory allocations performed by the eviction thread. 7736 */ 7737 arc_state_evict_marker_count = num_sublists; 7738 7739 zfs_refcount_create(&arc_anon->arcs_esize[ARC_BUFC_METADATA]); 7740 zfs_refcount_create(&arc_anon->arcs_esize[ARC_BUFC_DATA]); 7741 zfs_refcount_create(&arc_mru->arcs_esize[ARC_BUFC_METADATA]); 7742 zfs_refcount_create(&arc_mru->arcs_esize[ARC_BUFC_DATA]); 7743 zfs_refcount_create(&arc_mru_ghost->arcs_esize[ARC_BUFC_METADATA]); 7744 zfs_refcount_create(&arc_mru_ghost->arcs_esize[ARC_BUFC_DATA]); 7745 zfs_refcount_create(&arc_mfu->arcs_esize[ARC_BUFC_METADATA]); 7746 zfs_refcount_create(&arc_mfu->arcs_esize[ARC_BUFC_DATA]); 7747 zfs_refcount_create(&arc_mfu_ghost->arcs_esize[ARC_BUFC_METADATA]); 7748 zfs_refcount_create(&arc_mfu_ghost->arcs_esize[ARC_BUFC_DATA]); 7749 zfs_refcount_create(&arc_l2c_only->arcs_esize[ARC_BUFC_METADATA]); 7750 zfs_refcount_create(&arc_l2c_only->arcs_esize[ARC_BUFC_DATA]); 7751 zfs_refcount_create(&arc_uncached->arcs_esize[ARC_BUFC_METADATA]); 7752 zfs_refcount_create(&arc_uncached->arcs_esize[ARC_BUFC_DATA]); 7753 7754 zfs_refcount_create(&arc_anon->arcs_size[ARC_BUFC_DATA]); 7755 zfs_refcount_create(&arc_anon->arcs_size[ARC_BUFC_METADATA]); 7756 zfs_refcount_create(&arc_mru->arcs_size[ARC_BUFC_DATA]); 7757 zfs_refcount_create(&arc_mru->arcs_size[ARC_BUFC_METADATA]); 7758 zfs_refcount_create(&arc_mru_ghost->arcs_size[ARC_BUFC_DATA]); 7759 zfs_refcount_create(&arc_mru_ghost->arcs_size[ARC_BUFC_METADATA]); 7760 zfs_refcount_create(&arc_mfu->arcs_size[ARC_BUFC_DATA]); 7761 zfs_refcount_create(&arc_mfu->arcs_size[ARC_BUFC_METADATA]); 7762 zfs_refcount_create(&arc_mfu_ghost->arcs_size[ARC_BUFC_DATA]); 7763 zfs_refcount_create(&arc_mfu_ghost->arcs_size[ARC_BUFC_METADATA]); 7764 zfs_refcount_create(&arc_l2c_only->arcs_size[ARC_BUFC_DATA]); 7765 zfs_refcount_create(&arc_l2c_only->arcs_size[ARC_BUFC_METADATA]); 7766 zfs_refcount_create(&arc_uncached->arcs_size[ARC_BUFC_DATA]); 7767 zfs_refcount_create(&arc_uncached->arcs_size[ARC_BUFC_METADATA]); 7768 7769 wmsum_init(&arc_mru_ghost->arcs_hits[ARC_BUFC_DATA], 0); 7770 wmsum_init(&arc_mru_ghost->arcs_hits[ARC_BUFC_METADATA], 0); 7771 wmsum_init(&arc_mfu_ghost->arcs_hits[ARC_BUFC_DATA], 0); 7772 wmsum_init(&arc_mfu_ghost->arcs_hits[ARC_BUFC_METADATA], 0); 7773 7774 wmsum_init(&arc_sums.arcstat_hits, 0); 7775 wmsum_init(&arc_sums.arcstat_iohits, 0); 7776 wmsum_init(&arc_sums.arcstat_misses, 0); 7777 wmsum_init(&arc_sums.arcstat_demand_data_hits, 0); 7778 wmsum_init(&arc_sums.arcstat_demand_data_iohits, 0); 7779 wmsum_init(&arc_sums.arcstat_demand_data_misses, 0); 7780 wmsum_init(&arc_sums.arcstat_demand_metadata_hits, 0); 7781 wmsum_init(&arc_sums.arcstat_demand_metadata_iohits, 0); 7782 wmsum_init(&arc_sums.arcstat_demand_metadata_misses, 0); 7783 wmsum_init(&arc_sums.arcstat_prefetch_data_hits, 0); 7784 wmsum_init(&arc_sums.arcstat_prefetch_data_iohits, 0); 7785 wmsum_init(&arc_sums.arcstat_prefetch_data_misses, 0); 7786 wmsum_init(&arc_sums.arcstat_prefetch_metadata_hits, 0); 7787 wmsum_init(&arc_sums.arcstat_prefetch_metadata_iohits, 0); 7788 wmsum_init(&arc_sums.arcstat_prefetch_metadata_misses, 0); 7789 wmsum_init(&arc_sums.arcstat_mru_hits, 0); 7790 wmsum_init(&arc_sums.arcstat_mru_ghost_hits, 0); 7791 wmsum_init(&arc_sums.arcstat_mfu_hits, 0); 7792 wmsum_init(&arc_sums.arcstat_mfu_ghost_hits, 0); 7793 wmsum_init(&arc_sums.arcstat_uncached_hits, 0); 7794 wmsum_init(&arc_sums.arcstat_deleted, 0); 7795 wmsum_init(&arc_sums.arcstat_mutex_miss, 0); 7796 wmsum_init(&arc_sums.arcstat_access_skip, 0); 7797 wmsum_init(&arc_sums.arcstat_evict_skip, 0); 7798 wmsum_init(&arc_sums.arcstat_evict_not_enough, 0); 7799 wmsum_init(&arc_sums.arcstat_evict_l2_cached, 0); 7800 wmsum_init(&arc_sums.arcstat_evict_l2_eligible, 0); 7801 wmsum_init(&arc_sums.arcstat_evict_l2_eligible_mfu, 0); 7802 wmsum_init(&arc_sums.arcstat_evict_l2_eligible_mru, 0); 7803 wmsum_init(&arc_sums.arcstat_evict_l2_ineligible, 0); 7804 wmsum_init(&arc_sums.arcstat_evict_l2_skip, 0); 7805 wmsum_init(&arc_sums.arcstat_hash_elements, 0); 7806 wmsum_init(&arc_sums.arcstat_hash_collisions, 0); 7807 wmsum_init(&arc_sums.arcstat_hash_chains, 0); 7808 aggsum_init(&arc_sums.arcstat_size, 0); 7809 wmsum_init(&arc_sums.arcstat_compressed_size, 0); 7810 wmsum_init(&arc_sums.arcstat_uncompressed_size, 0); 7811 wmsum_init(&arc_sums.arcstat_overhead_size, 0); 7812 wmsum_init(&arc_sums.arcstat_hdr_size, 0); 7813 wmsum_init(&arc_sums.arcstat_data_size, 0); 7814 wmsum_init(&arc_sums.arcstat_metadata_size, 0); 7815 wmsum_init(&arc_sums.arcstat_dbuf_size, 0); 7816 aggsum_init(&arc_sums.arcstat_dnode_size, 0); 7817 wmsum_init(&arc_sums.arcstat_bonus_size, 0); 7818 wmsum_init(&arc_sums.arcstat_l2_hits, 0); 7819 wmsum_init(&arc_sums.arcstat_l2_misses, 0); 7820 wmsum_init(&arc_sums.arcstat_l2_prefetch_asize, 0); 7821 wmsum_init(&arc_sums.arcstat_l2_mru_asize, 0); 7822 wmsum_init(&arc_sums.arcstat_l2_mfu_asize, 0); 7823 wmsum_init(&arc_sums.arcstat_l2_bufc_data_asize, 0); 7824 wmsum_init(&arc_sums.arcstat_l2_bufc_metadata_asize, 0); 7825 wmsum_init(&arc_sums.arcstat_l2_feeds, 0); 7826 wmsum_init(&arc_sums.arcstat_l2_rw_clash, 0); 7827 wmsum_init(&arc_sums.arcstat_l2_read_bytes, 0); 7828 wmsum_init(&arc_sums.arcstat_l2_write_bytes, 0); 7829 wmsum_init(&arc_sums.arcstat_l2_writes_sent, 0); 7830 wmsum_init(&arc_sums.arcstat_l2_writes_done, 0); 7831 wmsum_init(&arc_sums.arcstat_l2_writes_error, 0); 7832 wmsum_init(&arc_sums.arcstat_l2_writes_lock_retry, 0); 7833 wmsum_init(&arc_sums.arcstat_l2_evict_lock_retry, 0); 7834 wmsum_init(&arc_sums.arcstat_l2_evict_reading, 0); 7835 wmsum_init(&arc_sums.arcstat_l2_evict_l1cached, 0); 7836 wmsum_init(&arc_sums.arcstat_l2_free_on_write, 0); 7837 wmsum_init(&arc_sums.arcstat_l2_abort_lowmem, 0); 7838 wmsum_init(&arc_sums.arcstat_l2_cksum_bad, 0); 7839 wmsum_init(&arc_sums.arcstat_l2_io_error, 0); 7840 wmsum_init(&arc_sums.arcstat_l2_lsize, 0); 7841 wmsum_init(&arc_sums.arcstat_l2_psize, 0); 7842 aggsum_init(&arc_sums.arcstat_l2_hdr_size, 0); 7843 wmsum_init(&arc_sums.arcstat_l2_log_blk_writes, 0); 7844 wmsum_init(&arc_sums.arcstat_l2_log_blk_asize, 0); 7845 wmsum_init(&arc_sums.arcstat_l2_log_blk_count, 0); 7846 wmsum_init(&arc_sums.arcstat_l2_rebuild_success, 0); 7847 wmsum_init(&arc_sums.arcstat_l2_rebuild_abort_unsupported, 0); 7848 wmsum_init(&arc_sums.arcstat_l2_rebuild_abort_io_errors, 0); 7849 wmsum_init(&arc_sums.arcstat_l2_rebuild_abort_dh_errors, 0); 7850 wmsum_init(&arc_sums.arcstat_l2_rebuild_abort_cksum_lb_errors, 0); 7851 wmsum_init(&arc_sums.arcstat_l2_rebuild_abort_lowmem, 0); 7852 wmsum_init(&arc_sums.arcstat_l2_rebuild_size, 0); 7853 wmsum_init(&arc_sums.arcstat_l2_rebuild_asize, 0); 7854 wmsum_init(&arc_sums.arcstat_l2_rebuild_bufs, 0); 7855 wmsum_init(&arc_sums.arcstat_l2_rebuild_bufs_precached, 0); 7856 wmsum_init(&arc_sums.arcstat_l2_rebuild_log_blks, 0); 7857 wmsum_init(&arc_sums.arcstat_memory_throttle_count, 0); 7858 wmsum_init(&arc_sums.arcstat_memory_direct_count, 0); 7859 wmsum_init(&arc_sums.arcstat_memory_indirect_count, 0); 7860 wmsum_init(&arc_sums.arcstat_prune, 0); 7861 wmsum_init(&arc_sums.arcstat_meta_used, 0); 7862 wmsum_init(&arc_sums.arcstat_async_upgrade_sync, 0); 7863 wmsum_init(&arc_sums.arcstat_predictive_prefetch, 0); 7864 wmsum_init(&arc_sums.arcstat_demand_hit_predictive_prefetch, 0); 7865 wmsum_init(&arc_sums.arcstat_demand_iohit_predictive_prefetch, 0); 7866 wmsum_init(&arc_sums.arcstat_prescient_prefetch, 0); 7867 wmsum_init(&arc_sums.arcstat_demand_hit_prescient_prefetch, 0); 7868 wmsum_init(&arc_sums.arcstat_demand_iohit_prescient_prefetch, 0); 7869 wmsum_init(&arc_sums.arcstat_raw_size, 0); 7870 wmsum_init(&arc_sums.arcstat_cached_only_in_progress, 0); 7871 wmsum_init(&arc_sums.arcstat_abd_chunk_waste_size, 0); 7872 7873 arc_anon->arcs_state = ARC_STATE_ANON; 7874 arc_mru->arcs_state = ARC_STATE_MRU; 7875 arc_mru_ghost->arcs_state = ARC_STATE_MRU_GHOST; 7876 arc_mfu->arcs_state = ARC_STATE_MFU; 7877 arc_mfu_ghost->arcs_state = ARC_STATE_MFU_GHOST; 7878 arc_l2c_only->arcs_state = ARC_STATE_L2C_ONLY; 7879 arc_uncached->arcs_state = ARC_STATE_UNCACHED; 7880 } 7881 7882 static void 7883 arc_state_fini(void) 7884 { 7885 zfs_refcount_destroy(&arc_anon->arcs_esize[ARC_BUFC_METADATA]); 7886 zfs_refcount_destroy(&arc_anon->arcs_esize[ARC_BUFC_DATA]); 7887 zfs_refcount_destroy(&arc_mru->arcs_esize[ARC_BUFC_METADATA]); 7888 zfs_refcount_destroy(&arc_mru->arcs_esize[ARC_BUFC_DATA]); 7889 zfs_refcount_destroy(&arc_mru_ghost->arcs_esize[ARC_BUFC_METADATA]); 7890 zfs_refcount_destroy(&arc_mru_ghost->arcs_esize[ARC_BUFC_DATA]); 7891 zfs_refcount_destroy(&arc_mfu->arcs_esize[ARC_BUFC_METADATA]); 7892 zfs_refcount_destroy(&arc_mfu->arcs_esize[ARC_BUFC_DATA]); 7893 zfs_refcount_destroy(&arc_mfu_ghost->arcs_esize[ARC_BUFC_METADATA]); 7894 zfs_refcount_destroy(&arc_mfu_ghost->arcs_esize[ARC_BUFC_DATA]); 7895 zfs_refcount_destroy(&arc_l2c_only->arcs_esize[ARC_BUFC_METADATA]); 7896 zfs_refcount_destroy(&arc_l2c_only->arcs_esize[ARC_BUFC_DATA]); 7897 zfs_refcount_destroy(&arc_uncached->arcs_esize[ARC_BUFC_METADATA]); 7898 zfs_refcount_destroy(&arc_uncached->arcs_esize[ARC_BUFC_DATA]); 7899 7900 zfs_refcount_destroy(&arc_anon->arcs_size[ARC_BUFC_DATA]); 7901 zfs_refcount_destroy(&arc_anon->arcs_size[ARC_BUFC_METADATA]); 7902 zfs_refcount_destroy(&arc_mru->arcs_size[ARC_BUFC_DATA]); 7903 zfs_refcount_destroy(&arc_mru->arcs_size[ARC_BUFC_METADATA]); 7904 zfs_refcount_destroy(&arc_mru_ghost->arcs_size[ARC_BUFC_DATA]); 7905 zfs_refcount_destroy(&arc_mru_ghost->arcs_size[ARC_BUFC_METADATA]); 7906 zfs_refcount_destroy(&arc_mfu->arcs_size[ARC_BUFC_DATA]); 7907 zfs_refcount_destroy(&arc_mfu->arcs_size[ARC_BUFC_METADATA]); 7908 zfs_refcount_destroy(&arc_mfu_ghost->arcs_size[ARC_BUFC_DATA]); 7909 zfs_refcount_destroy(&arc_mfu_ghost->arcs_size[ARC_BUFC_METADATA]); 7910 zfs_refcount_destroy(&arc_l2c_only->arcs_size[ARC_BUFC_DATA]); 7911 zfs_refcount_destroy(&arc_l2c_only->arcs_size[ARC_BUFC_METADATA]); 7912 zfs_refcount_destroy(&arc_uncached->arcs_size[ARC_BUFC_DATA]); 7913 zfs_refcount_destroy(&arc_uncached->arcs_size[ARC_BUFC_METADATA]); 7914 7915 multilist_destroy(&arc_mru->arcs_list[ARC_BUFC_METADATA]); 7916 multilist_destroy(&arc_mru_ghost->arcs_list[ARC_BUFC_METADATA]); 7917 multilist_destroy(&arc_mfu->arcs_list[ARC_BUFC_METADATA]); 7918 multilist_destroy(&arc_mfu_ghost->arcs_list[ARC_BUFC_METADATA]); 7919 multilist_destroy(&arc_mru->arcs_list[ARC_BUFC_DATA]); 7920 multilist_destroy(&arc_mru_ghost->arcs_list[ARC_BUFC_DATA]); 7921 multilist_destroy(&arc_mfu->arcs_list[ARC_BUFC_DATA]); 7922 multilist_destroy(&arc_mfu_ghost->arcs_list[ARC_BUFC_DATA]); 7923 multilist_destroy(&arc_l2c_only->arcs_list[ARC_BUFC_METADATA]); 7924 multilist_destroy(&arc_l2c_only->arcs_list[ARC_BUFC_DATA]); 7925 multilist_destroy(&arc_uncached->arcs_list[ARC_BUFC_METADATA]); 7926 multilist_destroy(&arc_uncached->arcs_list[ARC_BUFC_DATA]); 7927 7928 wmsum_fini(&arc_mru_ghost->arcs_hits[ARC_BUFC_DATA]); 7929 wmsum_fini(&arc_mru_ghost->arcs_hits[ARC_BUFC_METADATA]); 7930 wmsum_fini(&arc_mfu_ghost->arcs_hits[ARC_BUFC_DATA]); 7931 wmsum_fini(&arc_mfu_ghost->arcs_hits[ARC_BUFC_METADATA]); 7932 7933 wmsum_fini(&arc_sums.arcstat_hits); 7934 wmsum_fini(&arc_sums.arcstat_iohits); 7935 wmsum_fini(&arc_sums.arcstat_misses); 7936 wmsum_fini(&arc_sums.arcstat_demand_data_hits); 7937 wmsum_fini(&arc_sums.arcstat_demand_data_iohits); 7938 wmsum_fini(&arc_sums.arcstat_demand_data_misses); 7939 wmsum_fini(&arc_sums.arcstat_demand_metadata_hits); 7940 wmsum_fini(&arc_sums.arcstat_demand_metadata_iohits); 7941 wmsum_fini(&arc_sums.arcstat_demand_metadata_misses); 7942 wmsum_fini(&arc_sums.arcstat_prefetch_data_hits); 7943 wmsum_fini(&arc_sums.arcstat_prefetch_data_iohits); 7944 wmsum_fini(&arc_sums.arcstat_prefetch_data_misses); 7945 wmsum_fini(&arc_sums.arcstat_prefetch_metadata_hits); 7946 wmsum_fini(&arc_sums.arcstat_prefetch_metadata_iohits); 7947 wmsum_fini(&arc_sums.arcstat_prefetch_metadata_misses); 7948 wmsum_fini(&arc_sums.arcstat_mru_hits); 7949 wmsum_fini(&arc_sums.arcstat_mru_ghost_hits); 7950 wmsum_fini(&arc_sums.arcstat_mfu_hits); 7951 wmsum_fini(&arc_sums.arcstat_mfu_ghost_hits); 7952 wmsum_fini(&arc_sums.arcstat_uncached_hits); 7953 wmsum_fini(&arc_sums.arcstat_deleted); 7954 wmsum_fini(&arc_sums.arcstat_mutex_miss); 7955 wmsum_fini(&arc_sums.arcstat_access_skip); 7956 wmsum_fini(&arc_sums.arcstat_evict_skip); 7957 wmsum_fini(&arc_sums.arcstat_evict_not_enough); 7958 wmsum_fini(&arc_sums.arcstat_evict_l2_cached); 7959 wmsum_fini(&arc_sums.arcstat_evict_l2_eligible); 7960 wmsum_fini(&arc_sums.arcstat_evict_l2_eligible_mfu); 7961 wmsum_fini(&arc_sums.arcstat_evict_l2_eligible_mru); 7962 wmsum_fini(&arc_sums.arcstat_evict_l2_ineligible); 7963 wmsum_fini(&arc_sums.arcstat_evict_l2_skip); 7964 wmsum_fini(&arc_sums.arcstat_hash_elements); 7965 wmsum_fini(&arc_sums.arcstat_hash_collisions); 7966 wmsum_fini(&arc_sums.arcstat_hash_chains); 7967 aggsum_fini(&arc_sums.arcstat_size); 7968 wmsum_fini(&arc_sums.arcstat_compressed_size); 7969 wmsum_fini(&arc_sums.arcstat_uncompressed_size); 7970 wmsum_fini(&arc_sums.arcstat_overhead_size); 7971 wmsum_fini(&arc_sums.arcstat_hdr_size); 7972 wmsum_fini(&arc_sums.arcstat_data_size); 7973 wmsum_fini(&arc_sums.arcstat_metadata_size); 7974 wmsum_fini(&arc_sums.arcstat_dbuf_size); 7975 aggsum_fini(&arc_sums.arcstat_dnode_size); 7976 wmsum_fini(&arc_sums.arcstat_bonus_size); 7977 wmsum_fini(&arc_sums.arcstat_l2_hits); 7978 wmsum_fini(&arc_sums.arcstat_l2_misses); 7979 wmsum_fini(&arc_sums.arcstat_l2_prefetch_asize); 7980 wmsum_fini(&arc_sums.arcstat_l2_mru_asize); 7981 wmsum_fini(&arc_sums.arcstat_l2_mfu_asize); 7982 wmsum_fini(&arc_sums.arcstat_l2_bufc_data_asize); 7983 wmsum_fini(&arc_sums.arcstat_l2_bufc_metadata_asize); 7984 wmsum_fini(&arc_sums.arcstat_l2_feeds); 7985 wmsum_fini(&arc_sums.arcstat_l2_rw_clash); 7986 wmsum_fini(&arc_sums.arcstat_l2_read_bytes); 7987 wmsum_fini(&arc_sums.arcstat_l2_write_bytes); 7988 wmsum_fini(&arc_sums.arcstat_l2_writes_sent); 7989 wmsum_fini(&arc_sums.arcstat_l2_writes_done); 7990 wmsum_fini(&arc_sums.arcstat_l2_writes_error); 7991 wmsum_fini(&arc_sums.arcstat_l2_writes_lock_retry); 7992 wmsum_fini(&arc_sums.arcstat_l2_evict_lock_retry); 7993 wmsum_fini(&arc_sums.arcstat_l2_evict_reading); 7994 wmsum_fini(&arc_sums.arcstat_l2_evict_l1cached); 7995 wmsum_fini(&arc_sums.arcstat_l2_free_on_write); 7996 wmsum_fini(&arc_sums.arcstat_l2_abort_lowmem); 7997 wmsum_fini(&arc_sums.arcstat_l2_cksum_bad); 7998 wmsum_fini(&arc_sums.arcstat_l2_io_error); 7999 wmsum_fini(&arc_sums.arcstat_l2_lsize); 8000 wmsum_fini(&arc_sums.arcstat_l2_psize); 8001 aggsum_fini(&arc_sums.arcstat_l2_hdr_size); 8002 wmsum_fini(&arc_sums.arcstat_l2_log_blk_writes); 8003 wmsum_fini(&arc_sums.arcstat_l2_log_blk_asize); 8004 wmsum_fini(&arc_sums.arcstat_l2_log_blk_count); 8005 wmsum_fini(&arc_sums.arcstat_l2_rebuild_success); 8006 wmsum_fini(&arc_sums.arcstat_l2_rebuild_abort_unsupported); 8007 wmsum_fini(&arc_sums.arcstat_l2_rebuild_abort_io_errors); 8008 wmsum_fini(&arc_sums.arcstat_l2_rebuild_abort_dh_errors); 8009 wmsum_fini(&arc_sums.arcstat_l2_rebuild_abort_cksum_lb_errors); 8010 wmsum_fini(&arc_sums.arcstat_l2_rebuild_abort_lowmem); 8011 wmsum_fini(&arc_sums.arcstat_l2_rebuild_size); 8012 wmsum_fini(&arc_sums.arcstat_l2_rebuild_asize); 8013 wmsum_fini(&arc_sums.arcstat_l2_rebuild_bufs); 8014 wmsum_fini(&arc_sums.arcstat_l2_rebuild_bufs_precached); 8015 wmsum_fini(&arc_sums.arcstat_l2_rebuild_log_blks); 8016 wmsum_fini(&arc_sums.arcstat_memory_throttle_count); 8017 wmsum_fini(&arc_sums.arcstat_memory_direct_count); 8018 wmsum_fini(&arc_sums.arcstat_memory_indirect_count); 8019 wmsum_fini(&arc_sums.arcstat_prune); 8020 wmsum_fini(&arc_sums.arcstat_meta_used); 8021 wmsum_fini(&arc_sums.arcstat_async_upgrade_sync); 8022 wmsum_fini(&arc_sums.arcstat_predictive_prefetch); 8023 wmsum_fini(&arc_sums.arcstat_demand_hit_predictive_prefetch); 8024 wmsum_fini(&arc_sums.arcstat_demand_iohit_predictive_prefetch); 8025 wmsum_fini(&arc_sums.arcstat_prescient_prefetch); 8026 wmsum_fini(&arc_sums.arcstat_demand_hit_prescient_prefetch); 8027 wmsum_fini(&arc_sums.arcstat_demand_iohit_prescient_prefetch); 8028 wmsum_fini(&arc_sums.arcstat_raw_size); 8029 wmsum_fini(&arc_sums.arcstat_cached_only_in_progress); 8030 wmsum_fini(&arc_sums.arcstat_abd_chunk_waste_size); 8031 } 8032 8033 uint64_t 8034 arc_target_bytes(void) 8035 { 8036 return (arc_c); 8037 } 8038 8039 /* 8040 * Byte budget for a single explicit (user) prefetch request, e.g. 8041 * POSIX_FADV_WILLNEED. Follows the adaptive ARC target (arc_c) once the cache 8042 * is warm, but while cold -- when arc_c still sits near arc_c_min -- uses the 8043 * midpoint toward arc_c_max so a hint issued right after boot is not starved. 8044 * The caller applies the fraction that may be outstanding at once. 8045 */ 8046 uint64_t 8047 arc_boot_target_bytes(void) 8048 { 8049 return (arc_warm ? arc_c : (arc_c + arc_c_max) / 2); 8050 } 8051 8052 void 8053 arc_set_limits(uint64_t allmem) 8054 { 8055 /* Set min cache to 1/32 of all memory, or 32MB, whichever is more. */ 8056 arc_c_min = MAX(allmem / 32, 2ULL << SPA_MAXBLOCKSHIFT); 8057 8058 /* How to set default max varies by platform. */ 8059 arc_c_max = arc_default_max(arc_c_min, allmem); 8060 } 8061 8062 void 8063 arc_init(void) 8064 { 8065 uint64_t percent, allmem = arc_all_memory(); 8066 mutex_init(&arc_evict_lock, NULL, MUTEX_DEFAULT, NULL); 8067 list_create(&arc_evict_waiters, sizeof (arc_evict_waiter_t), 8068 offsetof(arc_evict_waiter_t, aew_node)); 8069 8070 arc_min_prefetch = MSEC_TO_TICK(1000); 8071 arc_min_prescient_prefetch = MSEC_TO_TICK(6000); 8072 8073 #if defined(_KERNEL) 8074 arc_lowmem_init(); 8075 #endif 8076 8077 arc_set_limits(allmem); 8078 8079 #ifdef _KERNEL 8080 /* 8081 * If zfs_arc_max is non-zero at init, meaning it was set in the kernel 8082 * environment before the module was loaded, don't block setting the 8083 * maximum because it is less than arc_c_min, instead, reset arc_c_min 8084 * to a lower value. 8085 * zfs_arc_min will be handled by arc_tuning_update(). 8086 */ 8087 if (zfs_arc_max != 0 && zfs_arc_max >= MIN_ARC_MAX && 8088 zfs_arc_max < allmem) { 8089 arc_c_max = zfs_arc_max; 8090 if (arc_c_min >= arc_c_max) { 8091 arc_c_min = MAX(zfs_arc_max / 2, 8092 2ULL << SPA_MAXBLOCKSHIFT); 8093 } 8094 } 8095 #else 8096 /* 8097 * In userland, there's only the memory pressure that we artificially 8098 * create (see arc_available_memory()). Don't let arc_c get too 8099 * small, because it can cause transactions to be larger than 8100 * arc_c, causing arc_tempreserve_space() to fail. 8101 */ 8102 arc_c_min = MAX(arc_c_max / 2, 2ULL << SPA_MAXBLOCKSHIFT); 8103 #endif 8104 8105 arc_c = arc_c_min; 8106 /* 8107 * 32-bit fixed point fractions of metadata from total ARC size, 8108 * MRU data from all data and MRU metadata from all metadata. 8109 */ 8110 arc_meta = (1ULL << 32) / 4; /* Metadata is 25% of arc_c. */ 8111 arc_pd = (1ULL << 32) / 2; /* Data MRU is 50% of data. */ 8112 arc_pm = (1ULL << 32) / 2; /* Metadata MRU is 50% of metadata. */ 8113 8114 percent = MIN(zfs_arc_dnode_limit_percent, 100); 8115 arc_dnode_limit = arc_c_max * percent / 100; 8116 8117 /* Apply user specified tunings */ 8118 arc_tuning_update(B_TRUE); 8119 8120 /* if kmem_flags are set, lets try to use less memory */ 8121 if (kmem_debugging()) 8122 arc_c = arc_c / 2; 8123 if (arc_c < arc_c_min) 8124 arc_c = arc_c_min; 8125 8126 arc_register_hotplug(); 8127 8128 arc_state_init(); 8129 8130 buf_init(); 8131 8132 list_create(&arc_prune_list, sizeof (arc_prune_t), 8133 offsetof(arc_prune_t, p_node)); 8134 mutex_init(&arc_prune_mtx, NULL, MUTEX_DEFAULT, NULL); 8135 8136 arc_prune_taskq = taskq_create("arc_prune", zfs_arc_prune_task_threads, 8137 defclsyspri, 100, INT_MAX, TASKQ_PREPOPULATE | TASKQ_DYNAMIC); 8138 8139 arc_evict_thread_init(); 8140 8141 list_create(&arc_async_flush_list, sizeof (arc_async_flush_t), 8142 offsetof(arc_async_flush_t, af_node)); 8143 mutex_init(&arc_async_flush_lock, NULL, MUTEX_DEFAULT, NULL); 8144 arc_flush_taskq = taskq_create("arc_flush", MIN(boot_ncpus, 4), 8145 defclsyspri, 1, INT_MAX, TASKQ_DYNAMIC); 8146 8147 arc_ksp = kstat_create("zfs", 0, "arcstats", "misc", KSTAT_TYPE_NAMED, 8148 sizeof (arc_stats) / sizeof (kstat_named_t), KSTAT_FLAG_VIRTUAL); 8149 8150 if (arc_ksp != NULL) { 8151 arc_ksp->ks_data = &arc_stats; 8152 arc_ksp->ks_update = arc_kstat_update; 8153 kstat_install(arc_ksp); 8154 } 8155 8156 arc_state_evict_markers = 8157 arc_state_alloc_markers(arc_state_evict_marker_count); 8158 arc_evict_zthr = zthr_create_timer("arc_evict", 8159 arc_evict_cb_check, arc_evict_cb, NULL, SEC2NSEC(1), defclsyspri); 8160 arc_reap_zthr = zthr_create_timer("arc_reap", 8161 arc_reap_cb_check, arc_reap_cb, NULL, SEC2NSEC(1), minclsyspri); 8162 8163 arc_warm = B_FALSE; 8164 8165 /* 8166 * Calculate maximum amount of dirty data per pool. 8167 * 8168 * If it has been set by a module parameter, take that. 8169 * Otherwise, use a percentage of physical memory defined by 8170 * zfs_dirty_data_max_percent (default 10%) with a cap at 8171 * zfs_dirty_data_max_max (default 4G or 25% of physical memory). 8172 */ 8173 #ifdef __LP64__ 8174 if (zfs_dirty_data_max_max == 0) 8175 zfs_dirty_data_max_max = MIN(4ULL * 1024 * 1024 * 1024, 8176 allmem * zfs_dirty_data_max_max_percent / 100); 8177 #else 8178 if (zfs_dirty_data_max_max == 0) 8179 zfs_dirty_data_max_max = MIN(1ULL * 1024 * 1024 * 1024, 8180 allmem * zfs_dirty_data_max_max_percent / 100); 8181 #endif 8182 8183 if (zfs_dirty_data_max == 0) { 8184 zfs_dirty_data_max = allmem * 8185 zfs_dirty_data_max_percent / 100; 8186 zfs_dirty_data_max = MIN(zfs_dirty_data_max, 8187 zfs_dirty_data_max_max); 8188 } 8189 8190 if (zfs_wrlog_data_max == 0) { 8191 8192 /* 8193 * dp_wrlog_total is reduced for each txg at the end of 8194 * spa_sync(). However, dp_dirty_total is reduced every time 8195 * a block is written out. Thus under normal operation, 8196 * dp_wrlog_total could grow 2 times as big as 8197 * zfs_dirty_data_max. 8198 */ 8199 zfs_wrlog_data_max = zfs_dirty_data_max * 2; 8200 } 8201 } 8202 8203 void 8204 arc_fini(void) 8205 { 8206 arc_prune_t *p; 8207 8208 #ifdef _KERNEL 8209 arc_lowmem_fini(); 8210 #endif /* _KERNEL */ 8211 8212 /* Wait for any background flushes */ 8213 taskq_wait(arc_flush_taskq); 8214 taskq_destroy(arc_flush_taskq); 8215 8216 /* Use B_TRUE to ensure *all* buffers are evicted */ 8217 arc_flush(NULL, B_TRUE); 8218 8219 if (arc_ksp != NULL) { 8220 kstat_delete(arc_ksp); 8221 arc_ksp = NULL; 8222 } 8223 8224 taskq_wait(arc_prune_taskq); 8225 taskq_destroy(arc_prune_taskq); 8226 8227 list_destroy(&arc_async_flush_list); 8228 mutex_destroy(&arc_async_flush_lock); 8229 8230 mutex_enter(&arc_prune_mtx); 8231 while ((p = list_remove_head(&arc_prune_list)) != NULL) { 8232 (void) zfs_refcount_remove(&p->p_refcnt, &arc_prune_list); 8233 zfs_refcount_destroy(&p->p_refcnt); 8234 kmem_free(p, sizeof (*p)); 8235 } 8236 mutex_exit(&arc_prune_mtx); 8237 8238 list_destroy(&arc_prune_list); 8239 mutex_destroy(&arc_prune_mtx); 8240 8241 if (arc_evict_taskq != NULL) 8242 taskq_wait(arc_evict_taskq); 8243 8244 (void) zthr_cancel(arc_evict_zthr); 8245 (void) zthr_cancel(arc_reap_zthr); 8246 arc_state_free_markers(arc_state_evict_markers, 8247 arc_state_evict_marker_count); 8248 8249 if (arc_evict_taskq != NULL) { 8250 taskq_destroy(arc_evict_taskq); 8251 kmem_free(arc_evict_arg, 8252 sizeof (evict_arg_t) * zfs_arc_evict_threads); 8253 } 8254 8255 mutex_destroy(&arc_evict_lock); 8256 list_destroy(&arc_evict_waiters); 8257 8258 /* 8259 * Free any buffers that were tagged for destruction. This needs 8260 * to occur before arc_state_fini() runs and destroys the aggsum 8261 * values which are updated when freeing scatter ABDs. 8262 * Pass NULL to free all ABDs regardless of device. 8263 */ 8264 l2arc_do_free_on_write(NULL); 8265 8266 /* 8267 * buf_fini() must proceed arc_state_fini() because buf_fin() may 8268 * trigger the release of kmem magazines, which can callback to 8269 * arc_space_return() which accesses aggsums freed in act_state_fini(). 8270 */ 8271 buf_fini(); 8272 arc_state_fini(); 8273 8274 arc_unregister_hotplug(); 8275 8276 /* 8277 * We destroy the zthrs after all the ARC state has been 8278 * torn down to avoid the case of them receiving any 8279 * wakeup() signals after they are destroyed. 8280 */ 8281 zthr_destroy(arc_evict_zthr); 8282 zthr_destroy(arc_reap_zthr); 8283 8284 ASSERT0(arc_loaned_bytes); 8285 } 8286 8287 /* 8288 * Level 2 ARC 8289 * 8290 * The level 2 ARC (L2ARC) is a cache layer in-between main memory and disk. 8291 * It uses dedicated storage devices to hold cached data, which are populated 8292 * using large infrequent writes. The main role of this cache is to boost 8293 * the performance of random read workloads. The intended L2ARC devices 8294 * include short-stroked disks, solid state disks, and other media with 8295 * substantially faster read latency than disk. 8296 * 8297 * +-----------------------+ 8298 * | ARC | 8299 * +-----------------------+ 8300 * | ^ ^ 8301 * | | | 8302 * l2arc_feed_thread() arc_read() 8303 * | | | 8304 * | l2arc read | 8305 * V | | 8306 * +---------------+ | 8307 * | L2ARC | | 8308 * +---------------+ | 8309 * | ^ | 8310 * l2arc_write() | | 8311 * | | | 8312 * V | | 8313 * +-------+ +-------+ 8314 * | vdev | | vdev | 8315 * | cache | | cache | 8316 * +-------+ +-------+ 8317 * +=========+ .-----. 8318 * : L2ARC : |-_____-| 8319 * : devices : | Disks | 8320 * +=========+ `-_____-' 8321 * 8322 * Read requests are satisfied from the following sources, in order: 8323 * 8324 * 1) ARC 8325 * 2) vdev cache of L2ARC devices 8326 * 3) L2ARC devices 8327 * 4) vdev cache of disks 8328 * 5) disks 8329 * 8330 * Some L2ARC device types exhibit extremely slow write performance. 8331 * To accommodate for this there are some significant differences between 8332 * the L2ARC and traditional cache design: 8333 * 8334 * 1. There is no eviction path from the ARC to the L2ARC. Evictions from 8335 * the ARC behave as usual, freeing buffers and placing headers on ghost 8336 * lists. The ARC does not send buffers to the L2ARC during eviction as 8337 * this would add inflated write latencies for all ARC memory pressure. 8338 * 8339 * 2. The L2ARC attempts to cache data from the ARC before it is evicted. 8340 * It does this by periodically scanning buffers from the eviction-end of 8341 * the MFU and MRU ARC lists, copying them to the L2ARC devices if they are 8342 * not already there. It scans until a headroom of buffers is satisfied, 8343 * which itself is a buffer for ARC eviction. If a compressible buffer is 8344 * found during scanning and selected for writing to an L2ARC device, we 8345 * temporarily boost scanning headroom during the next scan cycle to make 8346 * sure we adapt to compression effects (which might significantly reduce 8347 * the data volume we write to L2ARC). The thread that does this is 8348 * l2arc_feed_thread(), illustrated below; example sizes are included to 8349 * provide a better sense of ratio than this diagram: 8350 * 8351 * head --> tail 8352 * +---------------------+----------+ 8353 * ARC_mfu |:::::#:::::::::::::::|o#o###o###|-->. # already on L2ARC 8354 * +---------------------+----------+ | o L2ARC eligible 8355 * ARC_mru |:#:::::::::::::::::::|#o#ooo####|-->| : ARC buffer 8356 * +---------------------+----------+ | 8357 * 15.9 Gbytes ^ 32 Mbytes | 8358 * headroom | 8359 * l2arc_feed_thread() 8360 * | 8361 * l2arc write hand <--[oooo]--' 8362 * | 8 Mbyte 8363 * | write max 8364 * V 8365 * +==============================+ 8366 * L2ARC dev |####|#|###|###| |####| ... | 8367 * +==============================+ 8368 * 32 Gbytes 8369 * 8370 * 3. If an ARC buffer is copied to the L2ARC but then hit instead of 8371 * evicted, then the L2ARC has cached a buffer much sooner than it probably 8372 * needed to, potentially wasting L2ARC device bandwidth and storage. It is 8373 * safe to say that this is an uncommon case, since buffers at the end of 8374 * the ARC lists have moved there due to inactivity. 8375 * 8376 * 4. If the ARC evicts faster than the L2ARC can maintain a headroom, 8377 * then the L2ARC simply misses copying some buffers. This serves as a 8378 * pressure valve to prevent heavy read workloads from both stalling the ARC 8379 * with waits and clogging the L2ARC with writes. This also helps prevent 8380 * the potential for the L2ARC to churn if it attempts to cache content too 8381 * quickly, such as during backups of the entire pool. 8382 * 8383 * 5. After system boot and before the ARC has filled main memory, there are 8384 * no evictions from the ARC and so the tails of the ARC_mfu and ARC_mru 8385 * lists can remain mostly static. Instead of searching from tail of these 8386 * lists as pictured, the l2arc_feed_thread() will search from the list heads 8387 * for eligible buffers, greatly increasing its chance of finding them. 8388 * 8389 * The L2ARC device write speed is also boosted during this time so that 8390 * the L2ARC warms up faster. Since there have been no ARC evictions yet, 8391 * there are no L2ARC reads, and no fear of degrading read performance 8392 * through increased writes. 8393 * 8394 * 6. Writes to the L2ARC devices are grouped and sent in-sequence, so that 8395 * the vdev queue can aggregate them into larger and fewer writes. Each 8396 * device is written to in a rotor fashion, sweeping writes through 8397 * available space then repeating. 8398 * 8399 * 7. The L2ARC does not store dirty content. It never needs to flush 8400 * write buffers back to disk based storage. 8401 * 8402 * 8. If an ARC buffer is written (and dirtied) which also exists in the 8403 * L2ARC, the now stale L2ARC buffer is immediately dropped. 8404 * 8405 * The performance of the L2ARC can be tweaked by a number of tunables, which 8406 * may be necessary for different workloads: 8407 * 8408 * l2arc_write_max max write bytes per interval 8409 * l2arc_dwpd_limit device write endurance limit (100 = 1.0 DWPD) 8410 * l2arc_noprefetch skip caching prefetched buffers 8411 * l2arc_headroom number of max device writes to precache 8412 * l2arc_headroom_boost when we find compressed buffers during ARC 8413 * scanning, we multiply headroom by this 8414 * percentage factor for the next scan cycle, 8415 * since more compressed buffers are likely to 8416 * be present 8417 * l2arc_feed_secs seconds between L2ARC writing 8418 * 8419 * Tunables may be removed or added as future performance improvements are 8420 * integrated, and also may become zpool properties. 8421 * 8422 * There are three key functions that control how the L2ARC warms up: 8423 * 8424 * l2arc_write_eligible() check if a buffer is eligible to cache 8425 * l2arc_write_size() calculate how much to write 8426 * 8427 * These three functions determine what to write, how much, and how quickly 8428 * to send writes. 8429 * 8430 * L2ARC persistence: 8431 * 8432 * When writing buffers to L2ARC, we periodically add some metadata to 8433 * make sure we can pick them up after reboot, thus dramatically reducing 8434 * the impact that any downtime has on the performance of storage systems 8435 * with large caches. 8436 * 8437 * The implementation works fairly simply by integrating the following two 8438 * modifications: 8439 * 8440 * *) When writing to the L2ARC, we occasionally write a "l2arc log block", 8441 * which is an additional piece of metadata which describes what's been 8442 * written. This allows us to rebuild the arc_buf_hdr_t structures of the 8443 * main ARC buffers. There are 2 linked-lists of log blocks headed by 8444 * dh_start_lbps[2]. We alternate which chain we append to, so they are 8445 * time-wise and offset-wise interleaved, but that is an optimization rather 8446 * than for correctness. The log block also includes a pointer to the 8447 * previous block in its chain. 8448 * 8449 * *) We reserve SPA_MINBLOCKSIZE of space at the start of each L2ARC device 8450 * for our header bookkeeping purposes. This contains a device header, 8451 * which contains our top-level reference structures. We update it each 8452 * time we write a new log block, so that we're able to locate it in the 8453 * L2ARC device. If this write results in an inconsistent device header 8454 * (e.g. due to power failure), we detect this by verifying the header's 8455 * checksum and simply fail to reconstruct the L2ARC after reboot. 8456 * 8457 * Implementation diagram: 8458 * 8459 * +=== L2ARC device (not to scale) ======================================+ 8460 * | ___two newest log block pointers__.__________ | 8461 * | / \dh_start_lbps[1] | 8462 * | / \ \dh_start_lbps[0]| 8463 * |.___/__. V V | 8464 * ||L2 dev|....|lb |bufs |lb |bufs |lb |bufs |lb |bufs |lb |---(empty)---| 8465 * || hdr| ^ /^ /^ / / | 8466 * |+------+ ...--\-------/ \-----/--\------/ / | 8467 * | \--------------/ \--------------/ | 8468 * +======================================================================+ 8469 * 8470 * As can be seen on the diagram, rather than using a simple linked list, 8471 * we use a pair of linked lists with alternating elements. This is a 8472 * performance enhancement due to the fact that we only find out the 8473 * address of the next log block access once the current block has been 8474 * completely read in. Obviously, this hurts performance, because we'd be 8475 * keeping the device's I/O queue at only a 1 operation deep, thus 8476 * incurring a large amount of I/O round-trip latency. Having two lists 8477 * allows us to fetch two log blocks ahead of where we are currently 8478 * rebuilding L2ARC buffers. 8479 * 8480 * On-device data structures: 8481 * 8482 * L2ARC device header: l2arc_dev_hdr_phys_t 8483 * L2ARC log block: l2arc_log_blk_phys_t 8484 * 8485 * L2ARC reconstruction: 8486 * 8487 * When writing data, we simply write in the standard rotary fashion, 8488 * evicting buffers as we go and simply writing new data over them (writing 8489 * a new log block every now and then). This obviously means that once we 8490 * loop around the end of the device, we will start cutting into an already 8491 * committed log block (and its referenced data buffers), like so: 8492 * 8493 * current write head__ __old tail 8494 * \ / 8495 * V V 8496 * <--|bufs |lb |bufs |lb | |bufs |lb |bufs |lb |--> 8497 * ^ ^^^^^^^^^___________________________________ 8498 * | \ 8499 * <<nextwrite>> may overwrite this blk and/or its bufs --' 8500 * 8501 * When importing the pool, we detect this situation and use it to stop 8502 * our scanning process (see l2arc_rebuild). 8503 * 8504 * There is one significant caveat to consider when rebuilding ARC contents 8505 * from an L2ARC device: what about invalidated buffers? Given the above 8506 * construction, we cannot update blocks which we've already written to amend 8507 * them to remove buffers which were invalidated. Thus, during reconstruction, 8508 * we might be populating the cache with buffers for data that's not on the 8509 * main pool anymore, or may have been overwritten! 8510 * 8511 * As it turns out, this isn't a problem. Every arc_read request includes 8512 * both the DVA and, crucially, the birth TXG of the BP the caller is 8513 * looking for. So even if the cache were populated by completely rotten 8514 * blocks for data that had been long deleted and/or overwritten, we'll 8515 * never actually return bad data from the cache, since the DVA with the 8516 * birth TXG uniquely identify a block in space and time - once created, 8517 * a block is immutable on disk. The worst thing we have done is wasted 8518 * some time and memory at l2arc rebuild to reconstruct outdated ARC 8519 * entries that will get dropped from the l2arc as it is being updated 8520 * with new blocks. 8521 * 8522 * L2ARC buffers that have been evicted by l2arc_evict() ahead of the write 8523 * hand are not restored. This is done by saving the offset (in bytes) 8524 * l2arc_evict() has evicted to in the L2ARC device header and taking it 8525 * into account when restoring buffers. 8526 */ 8527 8528 static boolean_t 8529 l2arc_write_eligible(uint64_t spa_guid, arc_buf_hdr_t *hdr) 8530 { 8531 /* 8532 * A buffer is *not* eligible for the L2ARC if it: 8533 * 1. belongs to a different spa. 8534 * 2. is already cached on the L2ARC. 8535 * 3. has an I/O in progress (it may be an incomplete read). 8536 * 4. is flagged not eligible (zfs property). 8537 */ 8538 if (hdr->b_spa != spa_guid || HDR_HAS_L2HDR(hdr) || 8539 HDR_IO_IN_PROGRESS(hdr) || !HDR_L2CACHE(hdr)) 8540 return (B_FALSE); 8541 8542 return (B_TRUE); 8543 } 8544 8545 static uint64_t 8546 l2arc_write_size(l2arc_dev_t *dev, clock_t *interval) 8547 { 8548 uint64_t size; 8549 uint64_t write_rate = l2arc_get_write_rate(dev); 8550 8551 if (write_rate > L2ARC_BURST_SIZE_MAX) { 8552 /* Calculate interval to achieve desired rate with burst cap */ 8553 uint64_t feeds_per_sec = 8554 MAX(DIV_ROUND_UP(write_rate, L2ARC_BURST_SIZE_MAX), 1); 8555 *interval = hz / feeds_per_sec; 8556 size = write_rate / feeds_per_sec; 8557 } else { 8558 *interval = hz; /* 1 second default */ 8559 size = write_rate; 8560 } 8561 8562 /* We need to add in the worst case scenario of log block overhead. */ 8563 size += l2arc_log_blk_overhead(size, dev); 8564 if (dev->l2ad_vdev->vdev_has_trim && l2arc_trim_ahead > 0) { 8565 /* 8566 * Trim ahead of the write size 64MB or (l2arc_trim_ahead/100) 8567 * times the writesize, whichever is greater. 8568 */ 8569 size += MAX(64 * 1024 * 1024, 8570 (size * l2arc_trim_ahead) / 100); 8571 } 8572 8573 /* 8574 * Make sure the write size does not exceed the size of the cache 8575 * device. This is important in l2arc_evict(), otherwise infinite 8576 * iteration can occur. 8577 */ 8578 size = MIN(size, (dev->l2ad_end - dev->l2ad_start) / 4); 8579 8580 size = P2ROUNDUP(size, 1ULL << dev->l2ad_vdev->vdev_ashift); 8581 8582 return (size); 8583 8584 } 8585 8586 /* 8587 * Free buffers that were tagged for destruction. 8588 */ 8589 static void 8590 l2arc_do_free_on_write(l2arc_dev_t *dev) 8591 { 8592 l2arc_data_free_t *df, *df_next; 8593 boolean_t all = (dev == NULL); 8594 8595 mutex_enter(&l2arc_free_on_write_mtx); 8596 df = list_head(l2arc_free_on_write); 8597 while (df != NULL) { 8598 df_next = list_next(l2arc_free_on_write, df); 8599 if (all || df->l2df_dev == dev) { 8600 list_remove(l2arc_free_on_write, df); 8601 ASSERT3P(df->l2df_abd, !=, NULL); 8602 abd_free(df->l2df_abd); 8603 kmem_free(df, sizeof (l2arc_data_free_t)); 8604 } 8605 df = df_next; 8606 } 8607 mutex_exit(&l2arc_free_on_write_mtx); 8608 } 8609 8610 /* 8611 * A write to a cache device has completed. Update all headers to allow 8612 * reads from these buffers to begin. 8613 */ 8614 static void 8615 l2arc_write_done(zio_t *zio) 8616 { 8617 l2arc_write_callback_t *cb; 8618 l2arc_lb_abd_buf_t *abd_buf; 8619 l2arc_lb_ptr_buf_t *lb_ptr_buf; 8620 l2arc_dev_t *dev; 8621 l2arc_dev_hdr_phys_t *l2dhdr; 8622 list_t *buflist; 8623 arc_buf_hdr_t *head, *hdr, *hdr_prev; 8624 kmutex_t *hash_lock; 8625 int64_t bytes_dropped = 0; 8626 8627 cb = zio->io_private; 8628 ASSERT3P(cb, !=, NULL); 8629 dev = cb->l2wcb_dev; 8630 l2dhdr = dev->l2ad_dev_hdr; 8631 ASSERT3P(dev, !=, NULL); 8632 head = cb->l2wcb_head; 8633 ASSERT3P(head, !=, NULL); 8634 buflist = &dev->l2ad_buflist; 8635 ASSERT3P(buflist, !=, NULL); 8636 DTRACE_PROBE2(l2arc__iodone, zio_t *, zio, 8637 l2arc_write_callback_t *, cb); 8638 8639 /* 8640 * All writes completed, or an error was hit. 8641 */ 8642 top: 8643 mutex_enter(&dev->l2ad_mtx); 8644 for (hdr = list_prev(buflist, head); hdr; hdr = hdr_prev) { 8645 hdr_prev = list_prev(buflist, hdr); 8646 8647 hash_lock = HDR_LOCK(hdr); 8648 8649 /* 8650 * We cannot use mutex_enter or else we can deadlock 8651 * with l2arc_write_buffers (due to swapping the order 8652 * the hash lock and l2ad_mtx are taken). 8653 */ 8654 if (!mutex_tryenter(hash_lock)) { 8655 /* 8656 * Missed the hash lock. We must retry so we 8657 * don't leave the ARC_FLAG_L2_WRITING bit set. 8658 */ 8659 ARCSTAT_BUMP(arcstat_l2_writes_lock_retry); 8660 8661 /* 8662 * We don't want to rescan the headers we've 8663 * already marked as having been written out, so 8664 * we reinsert the head node so we can pick up 8665 * where we left off. 8666 */ 8667 list_remove(buflist, head); 8668 list_insert_after(buflist, hdr, head); 8669 8670 mutex_exit(&dev->l2ad_mtx); 8671 8672 /* 8673 * We wait for the hash lock to become available 8674 * to try and prevent busy waiting, and increase 8675 * the chance we'll be able to acquire the lock 8676 * the next time around. 8677 */ 8678 mutex_enter(hash_lock); 8679 mutex_exit(hash_lock); 8680 goto top; 8681 } 8682 8683 /* 8684 * We could not have been moved into the arc_l2c_only 8685 * state while in-flight due to our ARC_FLAG_L2_WRITING 8686 * bit being set. Let's just ensure that's being enforced. 8687 */ 8688 ASSERT(HDR_HAS_L1HDR(hdr)); 8689 8690 /* 8691 * Skipped - drop L2ARC entry and mark the header as no 8692 * longer L2 eligibile. 8693 */ 8694 if (zio->io_error != 0) { 8695 /* 8696 * Error - drop L2ARC entry. 8697 */ 8698 list_remove(buflist, hdr); 8699 arc_hdr_clear_flags(hdr, ARC_FLAG_HAS_L2HDR); 8700 8701 uint64_t psize = HDR_GET_PSIZE(hdr); 8702 l2arc_hdr_arcstats_decrement(hdr); 8703 8704 ASSERT(dev->l2ad_vdev != NULL); 8705 8706 bytes_dropped += 8707 vdev_psize_to_asize(dev->l2ad_vdev, psize); 8708 (void) zfs_refcount_remove_many(&dev->l2ad_alloc, 8709 arc_hdr_size(hdr), hdr); 8710 } 8711 8712 /* 8713 * Allow ARC to begin reads and ghost list evictions to 8714 * this L2ARC entry. 8715 */ 8716 arc_hdr_clear_flags(hdr, ARC_FLAG_L2_WRITING); 8717 8718 mutex_exit(hash_lock); 8719 } 8720 8721 /* 8722 * Free the allocated abd buffers for writing the log blocks. 8723 * If the zio failed reclaim the allocated space and remove the 8724 * pointers to these log blocks from the log block pointer list 8725 * of the L2ARC device. 8726 */ 8727 while ((abd_buf = list_remove_tail(&cb->l2wcb_abd_list)) != NULL) { 8728 abd_free(abd_buf->abd); 8729 zio_buf_free(abd_buf, sizeof (*abd_buf)); 8730 if (zio->io_error != 0) { 8731 lb_ptr_buf = list_remove_head(&dev->l2ad_lbptr_list); 8732 /* 8733 * L2BLK_GET_PSIZE returns aligned size for log 8734 * blocks. 8735 */ 8736 uint64_t asize = 8737 L2BLK_GET_PSIZE((lb_ptr_buf->lb_ptr)->lbp_prop); 8738 bytes_dropped += asize; 8739 ARCSTAT_INCR(arcstat_l2_log_blk_asize, -asize); 8740 ARCSTAT_BUMPDOWN(arcstat_l2_log_blk_count); 8741 zfs_refcount_remove_many(&dev->l2ad_lb_asize, asize, 8742 lb_ptr_buf); 8743 (void) zfs_refcount_remove(&dev->l2ad_lb_count, 8744 lb_ptr_buf); 8745 kmem_free(lb_ptr_buf->lb_ptr, 8746 sizeof (l2arc_log_blkptr_t)); 8747 kmem_free(lb_ptr_buf, sizeof (l2arc_lb_ptr_buf_t)); 8748 } 8749 } 8750 list_destroy(&cb->l2wcb_abd_list); 8751 8752 if (zio->io_error != 0) { 8753 ARCSTAT_BUMP(arcstat_l2_writes_error); 8754 8755 /* 8756 * Restore the lbps array in the header to its previous state. 8757 * If the list of log block pointers is empty, zero out the 8758 * log block pointers in the device header. 8759 */ 8760 lb_ptr_buf = list_head(&dev->l2ad_lbptr_list); 8761 for (int i = 0; i < 2; i++) { 8762 if (lb_ptr_buf == NULL) { 8763 /* 8764 * If the list is empty zero out the device 8765 * header. Otherwise zero out the second log 8766 * block pointer in the header. 8767 */ 8768 if (i == 0) { 8769 memset(l2dhdr, 0, 8770 dev->l2ad_dev_hdr_asize); 8771 } else { 8772 memset(&l2dhdr->dh_start_lbps[i], 0, 8773 sizeof (l2arc_log_blkptr_t)); 8774 } 8775 break; 8776 } 8777 memcpy(&l2dhdr->dh_start_lbps[i], lb_ptr_buf->lb_ptr, 8778 sizeof (l2arc_log_blkptr_t)); 8779 lb_ptr_buf = list_next(&dev->l2ad_lbptr_list, 8780 lb_ptr_buf); 8781 } 8782 } 8783 8784 ARCSTAT_BUMP(arcstat_l2_writes_done); 8785 list_remove(buflist, head); 8786 ASSERT(!HDR_HAS_L1HDR(head)); 8787 kmem_cache_free(hdr_l2only_cache, head); 8788 mutex_exit(&dev->l2ad_mtx); 8789 8790 ASSERT(dev->l2ad_vdev != NULL); 8791 vdev_space_update(dev->l2ad_vdev, -bytes_dropped, 0, 0); 8792 8793 l2arc_do_free_on_write(dev); 8794 8795 kmem_free(cb, sizeof (l2arc_write_callback_t)); 8796 } 8797 8798 static int 8799 l2arc_untransform(zio_t *zio, l2arc_read_callback_t *cb) 8800 { 8801 int ret; 8802 spa_t *spa = zio->io_spa; 8803 arc_buf_hdr_t *hdr = cb->l2rcb_hdr; 8804 blkptr_t *bp = zio->io_bp; 8805 uint8_t salt[ZIO_DATA_SALT_LEN]; 8806 uint8_t iv[ZIO_DATA_IV_LEN]; 8807 uint8_t mac[ZIO_DATA_MAC_LEN]; 8808 boolean_t no_crypt = B_FALSE; 8809 8810 /* 8811 * ZIL data is never be written to the L2ARC, so we don't need 8812 * special handling for its unique MAC storage. 8813 */ 8814 ASSERT3U(BP_GET_TYPE(bp), !=, DMU_OT_INTENT_LOG); 8815 ASSERT(MUTEX_HELD(HDR_LOCK(hdr))); 8816 ASSERT3P(hdr->b_l1hdr.b_pabd, !=, NULL); 8817 8818 /* 8819 * If the data was encrypted, decrypt it now. Note that 8820 * we must check the bp here and not the hdr, since the 8821 * hdr does not have its encryption parameters updated 8822 * until arc_read_done(). 8823 */ 8824 if (BP_IS_ENCRYPTED(bp)) { 8825 abd_t *eabd = arc_get_data_abd(hdr, arc_hdr_size(hdr), hdr, 8826 ARC_HDR_USE_RESERVE); 8827 8828 zio_crypt_decode_params_bp(bp, salt, iv); 8829 zio_crypt_decode_mac_bp(bp, mac); 8830 8831 ret = spa_do_crypt_abd(B_FALSE, spa, &cb->l2rcb_zb, 8832 BP_GET_TYPE(bp), BP_GET_DEDUP(bp), BP_SHOULD_BYTESWAP(bp), 8833 salt, iv, mac, HDR_GET_PSIZE(hdr), eabd, 8834 hdr->b_l1hdr.b_pabd, &no_crypt); 8835 if (ret != 0) { 8836 arc_free_data_abd(hdr, eabd, arc_hdr_size(hdr), hdr); 8837 goto error; 8838 } 8839 8840 /* 8841 * If we actually performed decryption, replace b_pabd 8842 * with the decrypted data. Otherwise we can just throw 8843 * our decryption buffer away. 8844 */ 8845 if (!no_crypt) { 8846 arc_free_data_abd(hdr, hdr->b_l1hdr.b_pabd, 8847 arc_hdr_size(hdr), hdr); 8848 hdr->b_l1hdr.b_pabd = eabd; 8849 zio->io_abd = eabd; 8850 } else { 8851 arc_free_data_abd(hdr, eabd, arc_hdr_size(hdr), hdr); 8852 } 8853 } 8854 8855 /* 8856 * If the L2ARC block was compressed, but ARC compression 8857 * is disabled we decompress the data into a new buffer and 8858 * replace the existing data. 8859 */ 8860 if (HDR_GET_COMPRESS(hdr) != ZIO_COMPRESS_OFF && 8861 !HDR_COMPRESSION_ENABLED(hdr)) { 8862 abd_t *cabd = arc_get_data_abd(hdr, arc_hdr_size(hdr), hdr, 8863 ARC_HDR_USE_RESERVE); 8864 8865 ret = zio_decompress_data(HDR_GET_COMPRESS(hdr), 8866 hdr->b_l1hdr.b_pabd, cabd, HDR_GET_PSIZE(hdr), 8867 HDR_GET_LSIZE(hdr), &hdr->b_complevel); 8868 if (ret != 0) { 8869 arc_free_data_abd(hdr, cabd, arc_hdr_size(hdr), hdr); 8870 goto error; 8871 } 8872 8873 arc_free_data_abd(hdr, hdr->b_l1hdr.b_pabd, 8874 arc_hdr_size(hdr), hdr); 8875 hdr->b_l1hdr.b_pabd = cabd; 8876 zio->io_abd = cabd; 8877 zio->io_size = HDR_GET_LSIZE(hdr); 8878 } 8879 8880 return (0); 8881 8882 error: 8883 return (ret); 8884 } 8885 8886 8887 /* 8888 * A read to a cache device completed. Validate buffer contents before 8889 * handing over to the regular ARC routines. 8890 */ 8891 static void 8892 l2arc_read_done(zio_t *zio) 8893 { 8894 int tfm_error = 0; 8895 l2arc_read_callback_t *cb = zio->io_private; 8896 arc_buf_hdr_t *hdr; 8897 kmutex_t *hash_lock; 8898 boolean_t valid_cksum; 8899 boolean_t using_rdata = (BP_IS_ENCRYPTED(&cb->l2rcb_bp) && 8900 (cb->l2rcb_flags & ZIO_FLAG_RAW_ENCRYPT)); 8901 8902 ASSERT3P(zio->io_vd, !=, NULL); 8903 ASSERT(zio->io_flags & ZIO_FLAG_DONT_PROPAGATE); 8904 8905 spa_config_exit(zio->io_spa, SCL_L2ARC, zio->io_vd); 8906 8907 ASSERT3P(cb, !=, NULL); 8908 hdr = cb->l2rcb_hdr; 8909 ASSERT3P(hdr, !=, NULL); 8910 8911 hash_lock = HDR_LOCK(hdr); 8912 mutex_enter(hash_lock); 8913 ASSERT3P(hash_lock, ==, HDR_LOCK(hdr)); 8914 8915 /* 8916 * If the data was read into a temporary buffer, 8917 * move it and free the buffer. 8918 */ 8919 if (cb->l2rcb_abd != NULL) { 8920 ASSERT3U(arc_hdr_size(hdr), <, zio->io_size); 8921 if (zio->io_error == 0) { 8922 if (using_rdata) { 8923 abd_copy(hdr->b_crypt_hdr.b_rabd, 8924 cb->l2rcb_abd, arc_hdr_size(hdr)); 8925 } else { 8926 abd_copy(hdr->b_l1hdr.b_pabd, 8927 cb->l2rcb_abd, arc_hdr_size(hdr)); 8928 } 8929 } 8930 8931 /* 8932 * The following must be done regardless of whether 8933 * there was an error: 8934 * - free the temporary buffer 8935 * - point zio to the real ARC buffer 8936 * - set zio size accordingly 8937 * These are required because zio is either re-used for 8938 * an I/O of the block in the case of the error 8939 * or the zio is passed to arc_read_done() and it 8940 * needs real data. 8941 */ 8942 abd_free(cb->l2rcb_abd); 8943 zio->io_size = zio->io_orig_size = arc_hdr_size(hdr); 8944 8945 if (using_rdata) { 8946 ASSERT(HDR_HAS_RABD(hdr)); 8947 zio->io_abd = zio->io_orig_abd = 8948 hdr->b_crypt_hdr.b_rabd; 8949 } else { 8950 ASSERT3P(hdr->b_l1hdr.b_pabd, !=, NULL); 8951 zio->io_abd = zio->io_orig_abd = hdr->b_l1hdr.b_pabd; 8952 } 8953 } 8954 8955 ASSERT3P(zio->io_abd, !=, NULL); 8956 8957 /* 8958 * Check this survived the L2ARC journey. 8959 */ 8960 ASSERT(zio->io_abd == hdr->b_l1hdr.b_pabd || 8961 (HDR_HAS_RABD(hdr) && zio->io_abd == hdr->b_crypt_hdr.b_rabd)); 8962 zio->io_bp_copy = cb->l2rcb_bp; /* XXX fix in L2ARC 2.0 */ 8963 zio->io_bp = &zio->io_bp_copy; /* XXX fix in L2ARC 2.0 */ 8964 zio->io_prop.zp_complevel = hdr->b_complevel; 8965 8966 valid_cksum = arc_cksum_is_equal(hdr, zio); 8967 8968 /* 8969 * b_rabd will always match the data as it exists on disk if it is 8970 * being used. Therefore if we are reading into b_rabd we do not 8971 * attempt to untransform the data. 8972 */ 8973 if (valid_cksum && !using_rdata) 8974 tfm_error = l2arc_untransform(zio, cb); 8975 8976 if (valid_cksum && tfm_error == 0 && zio->io_error == 0 && 8977 !HDR_L2_EVICTED(hdr)) { 8978 mutex_exit(hash_lock); 8979 zio->io_private = hdr; 8980 arc_read_done(zio); 8981 } else { 8982 /* 8983 * Buffer didn't survive caching. Increment stats and 8984 * reissue to the original storage device. 8985 */ 8986 if (zio->io_error != 0) { 8987 ARCSTAT_BUMP(arcstat_l2_io_error); 8988 } else { 8989 zio->io_error = SET_ERROR(EIO); 8990 } 8991 if (!valid_cksum || tfm_error != 0) 8992 ARCSTAT_BUMP(arcstat_l2_cksum_bad); 8993 8994 /* 8995 * If there's no waiter, issue an async i/o to the primary 8996 * storage now. If there *is* a waiter, the caller must 8997 * issue the i/o in a context where it's OK to block. 8998 */ 8999 if (zio->io_waiter == NULL) { 9000 zio_t *pio = zio_unique_parent(zio); 9001 void *abd = (using_rdata) ? 9002 hdr->b_crypt_hdr.b_rabd : hdr->b_l1hdr.b_pabd; 9003 9004 ASSERT(!pio || pio->io_child_type == ZIO_CHILD_LOGICAL); 9005 9006 zio = zio_read(pio, zio->io_spa, zio->io_bp, 9007 abd, zio->io_size, arc_read_done, 9008 hdr, zio->io_priority, cb->l2rcb_flags, 9009 &cb->l2rcb_zb); 9010 9011 /* 9012 * Original ZIO will be freed, so we need to update 9013 * ARC header with the new ZIO pointer to be used 9014 * by zio_change_priority() in arc_read(). 9015 */ 9016 for (struct arc_callback *acb = hdr->b_l1hdr.b_acb; 9017 acb != NULL; acb = acb->acb_next) 9018 acb->acb_zio_head = zio; 9019 9020 mutex_exit(hash_lock); 9021 zio_nowait(zio); 9022 } else { 9023 mutex_exit(hash_lock); 9024 } 9025 } 9026 9027 kmem_free(cb, sizeof (l2arc_read_callback_t)); 9028 } 9029 9030 /* 9031 * Get the multilist for the given list number (0..3) to cycle through 9032 * lists in the desired order. This order can have a significant effect 9033 * on cache performance. 9034 * 9035 * Currently the metadata lists are hit first, MFU then MRU, followed by 9036 * the data lists. 9037 */ 9038 static multilist_t * 9039 l2arc_get_list(int list_num) 9040 { 9041 ASSERT(list_num >= 0 && list_num < L2ARC_FEED_TYPES); 9042 9043 switch (list_num) { 9044 case 0: 9045 return (&arc_mfu->arcs_list[ARC_BUFC_METADATA]); 9046 case 1: 9047 return (&arc_mru->arcs_list[ARC_BUFC_METADATA]); 9048 case 2: 9049 return (&arc_mfu->arcs_list[ARC_BUFC_DATA]); 9050 case 3: 9051 return (&arc_mru->arcs_list[ARC_BUFC_DATA]); 9052 default: 9053 return (NULL); 9054 } 9055 } 9056 9057 9058 /* 9059 * Lock a specific sublist within the given list number. 9060 */ 9061 static multilist_sublist_t * 9062 l2arc_sublist_lock(int list_num, int sublist_idx) 9063 { 9064 multilist_t *ml = l2arc_get_list(list_num); 9065 if (ml == NULL) 9066 return (NULL); 9067 9068 return (multilist_sublist_lock_idx(ml, sublist_idx)); 9069 } 9070 9071 /* 9072 * Check if a pool has any L2ARC devices. 9073 */ 9074 static boolean_t 9075 l2arc_pool_has_devices(spa_t *target_spa) 9076 { 9077 l2arc_dev_t *dev; 9078 9079 ASSERT(MUTEX_HELD(&l2arc_dev_mtx)); 9080 9081 for (dev = list_head(l2arc_dev_list); dev != NULL; 9082 dev = list_next(l2arc_dev_list, dev)) { 9083 if (dev->l2ad_spa == target_spa) { 9084 return (B_TRUE); 9085 } 9086 } 9087 9088 return (B_FALSE); 9089 } 9090 9091 /* 9092 * Initialize pool-based markers for l2arc position saving. 9093 */ 9094 static void 9095 l2arc_pool_markers_init(spa_t *spa) 9096 { 9097 mutex_init(&spa->spa_l2arc_info.l2arc_sublist_lock, NULL, 9098 MUTEX_DEFAULT, NULL); 9099 9100 for (int pass = 0; pass < L2ARC_FEED_TYPES; pass++) { 9101 multilist_t *ml = l2arc_get_list(pass); 9102 if (ml == NULL) 9103 continue; 9104 9105 int num_sublists = multilist_get_num_sublists(ml); 9106 9107 spa->spa_l2arc_info.l2arc_markers[pass] = 9108 arc_state_alloc_markers(num_sublists); 9109 spa->spa_l2arc_info.l2arc_sublist_busy[pass] = 9110 kmem_zalloc(num_sublists * sizeof (boolean_t), KM_SLEEP); 9111 spa->spa_l2arc_info.l2arc_sublist_reset[pass] = 9112 kmem_zalloc(num_sublists * sizeof (boolean_t), KM_SLEEP); 9113 9114 for (int i = 0; i < num_sublists; i++) { 9115 multilist_sublist_t *mls = 9116 multilist_sublist_lock_idx(ml, i); 9117 multilist_sublist_insert_tail(mls, 9118 spa->spa_l2arc_info.l2arc_markers[pass][i]); 9119 multilist_sublist_unlock(mls); 9120 } 9121 9122 spa->spa_l2arc_info.l2arc_ext_scanned[pass] = 0; 9123 } 9124 } 9125 9126 /* 9127 * Free all allocated pool-based markers. 9128 */ 9129 static void 9130 l2arc_pool_markers_fini(spa_t *spa) 9131 { 9132 for (int pass = 0; pass < L2ARC_FEED_TYPES; pass++) { 9133 if (spa->spa_l2arc_info.l2arc_markers[pass] == NULL) 9134 continue; 9135 9136 multilist_t *ml = l2arc_get_list(pass); 9137 if (ml == NULL) 9138 continue; 9139 9140 int num_sublists = multilist_get_num_sublists(ml); 9141 9142 for (int i = 0; i < num_sublists; i++) { 9143 ASSERT3P(spa->spa_l2arc_info.l2arc_markers[pass][i], 9144 !=, NULL); 9145 multilist_sublist_t *mls = 9146 multilist_sublist_lock_idx(ml, i); 9147 ASSERT(multilist_link_active( 9148 &spa->spa_l2arc_info.l2arc_markers[pass][i]-> 9149 b_l1hdr.b_arc_node)); 9150 multilist_sublist_remove(mls, 9151 spa->spa_l2arc_info.l2arc_markers[pass][i]); 9152 multilist_sublist_unlock(mls); 9153 } 9154 9155 arc_state_free_markers(spa->spa_l2arc_info.l2arc_markers[pass], 9156 num_sublists); 9157 spa->spa_l2arc_info.l2arc_markers[pass] = NULL; 9158 9159 /* Free sublist busy and reset flags for this pass */ 9160 ASSERT3P(spa->spa_l2arc_info.l2arc_sublist_busy[pass], !=, 9161 NULL); 9162 kmem_free(spa->spa_l2arc_info.l2arc_sublist_busy[pass], 9163 num_sublists * sizeof (boolean_t)); 9164 spa->spa_l2arc_info.l2arc_sublist_busy[pass] = NULL; 9165 9166 ASSERT3P(spa->spa_l2arc_info.l2arc_sublist_reset[pass], !=, 9167 NULL); 9168 kmem_free(spa->spa_l2arc_info.l2arc_sublist_reset[pass], 9169 num_sublists * sizeof (boolean_t)); 9170 spa->spa_l2arc_info.l2arc_sublist_reset[pass] = NULL; 9171 } 9172 9173 mutex_destroy(&spa->spa_l2arc_info.l2arc_sublist_lock); 9174 } 9175 9176 /* 9177 * Calculates the maximum overhead of L2ARC metadata log blocks for a given 9178 * L2ARC write size. l2arc_evict and l2arc_write_size need to include this 9179 * overhead in processing to make sure there is enough headroom available 9180 * when writing buffers. 9181 */ 9182 static inline uint64_t 9183 l2arc_log_blk_overhead(uint64_t write_sz, l2arc_dev_t *dev) 9184 { 9185 if (dev->l2ad_log_entries == 0) { 9186 return (0); 9187 } else { 9188 ASSERT(dev->l2ad_vdev != NULL); 9189 9190 uint64_t log_entries = write_sz >> SPA_MINBLOCKSHIFT; 9191 9192 uint64_t log_blocks = (log_entries + 9193 dev->l2ad_log_entries - 1) / 9194 dev->l2ad_log_entries; 9195 9196 return (vdev_psize_to_asize(dev->l2ad_vdev, 9197 sizeof (l2arc_log_blk_phys_t)) * log_blocks); 9198 } 9199 } 9200 9201 /* 9202 * Bump the DWPD generation to trigger stats reset on all devices. 9203 */ 9204 void 9205 l2arc_dwpd_bump_reset(void) 9206 { 9207 l2arc_dwpd_bump++; 9208 } 9209 9210 /* 9211 * Calculate DWPD rate limit for L2ARC device. 9212 */ 9213 static uint64_t 9214 l2arc_dwpd_rate_limit(l2arc_dev_t *dev) 9215 { 9216 uint64_t device_size = dev->l2ad_end - dev->l2ad_start; 9217 uint64_t daily_budget = (device_size * l2arc_dwpd_limit) / 100; 9218 uint64_t now = gethrestime_sec(); 9219 9220 /* Reset stats on param change or daily period expiry */ 9221 if (dev->l2ad_dwpd_bump != l2arc_dwpd_bump || 9222 (now - dev->l2ad_dwpd_start) >= 24 * 3600) { 9223 if (dev->l2ad_dwpd_bump != l2arc_dwpd_bump) { 9224 /* Full reset on param change, no carryover */ 9225 dev->l2ad_dwpd_accumulated = 0; 9226 dev->l2ad_dwpd_bump = l2arc_dwpd_bump; 9227 } else { 9228 /* Save unused budget from last period (max 1 day) */ 9229 if (dev->l2ad_dwpd_writes >= daily_budget) 9230 dev->l2ad_dwpd_accumulated = 0; 9231 else 9232 dev->l2ad_dwpd_accumulated = 9233 daily_budget - dev->l2ad_dwpd_writes; 9234 } 9235 dev->l2ad_dwpd_writes = 0; 9236 dev->l2ad_dwpd_start = now; 9237 } 9238 9239 uint64_t elapsed = now - dev->l2ad_dwpd_start; 9240 uint64_t remaining_secs = MAX((24 * 3600) - elapsed, 1); 9241 /* Add burst allowance for the first write after device wrap */ 9242 uint64_t total_budget = daily_budget + dev->l2ad_dwpd_accumulated + 9243 L2ARC_BURST_SIZE_MAX; 9244 9245 if (dev->l2ad_dwpd_writes >= total_budget) 9246 return (0); 9247 9248 return ((total_budget - dev->l2ad_dwpd_writes) / remaining_secs); 9249 } 9250 9251 /* 9252 * Get write rate based on device state and DWPD configuration. 9253 */ 9254 static uint64_t 9255 l2arc_get_write_rate(l2arc_dev_t *dev) 9256 { 9257 uint64_t write_max = l2arc_write_max; 9258 spa_t *spa = dev->l2ad_spa; 9259 9260 /* 9261 * Make sure l2arc_write_max is valid in case user altered it. 9262 */ 9263 if (write_max == 0) { 9264 cmn_err(CE_NOTE, "l2arc_write_max must be greater than zero, " 9265 "resetting it to the default (%d)", L2ARC_WRITE_SIZE); 9266 write_max = l2arc_write_max = L2ARC_WRITE_SIZE; 9267 } 9268 9269 /* Apply DWPD rate limit for persistent marker configurations */ 9270 if (!dev->l2ad_first && l2arc_dwpd_limit > 0 && 9271 spa->spa_l2arc_info.l2arc_total_capacity >= 9272 L2ARC_PERSIST_THRESHOLD) { 9273 uint64_t dwpd_rate = l2arc_dwpd_rate_limit(dev); 9274 return (MIN(dwpd_rate, write_max)); 9275 } 9276 9277 return (write_max); 9278 } 9279 9280 /* 9281 * Evict buffers from the device write hand to the distance specified in 9282 * bytes. This distance may span populated buffers, it may span nothing. 9283 * This is clearing a region on the L2ARC device ready for writing. 9284 * If the 'all' boolean is set, every buffer is evicted. 9285 */ 9286 static void 9287 l2arc_evict(l2arc_dev_t *dev, uint64_t distance, boolean_t all) 9288 { 9289 list_t *buflist; 9290 arc_buf_hdr_t *hdr, *hdr_prev; 9291 kmutex_t *hash_lock; 9292 uint64_t taddr; 9293 l2arc_lb_ptr_buf_t *lb_ptr_buf, *lb_ptr_buf_prev; 9294 vdev_t *vd = dev->l2ad_vdev; 9295 boolean_t rerun; 9296 9297 ASSERT(vd != NULL || all); 9298 ASSERT(dev->l2ad_spa != NULL || all); 9299 9300 buflist = &dev->l2ad_buflist; 9301 9302 top: 9303 rerun = B_FALSE; 9304 if (dev->l2ad_hand + distance > dev->l2ad_end) { 9305 /* 9306 * When there is no space to accommodate upcoming writes, 9307 * evict to the end. Then bump the write and evict hands 9308 * to the start and iterate. This iteration does not 9309 * happen indefinitely as we make sure in 9310 * l2arc_write_size() that when the write hand is reset, 9311 * the write size does not exceed the end of the device. 9312 */ 9313 rerun = B_TRUE; 9314 taddr = dev->l2ad_end; 9315 } else { 9316 taddr = dev->l2ad_hand + distance; 9317 } 9318 DTRACE_PROBE4(l2arc__evict, l2arc_dev_t *, dev, list_t *, buflist, 9319 uint64_t, taddr, boolean_t, all); 9320 9321 if (!all) { 9322 /* 9323 * This check has to be placed after deciding whether to 9324 * iterate (rerun). 9325 */ 9326 if (dev->l2ad_first) { 9327 /* 9328 * This is the first sweep through the device. There is 9329 * nothing to evict. We have already trimmed the 9330 * whole device. 9331 */ 9332 goto out; 9333 } else { 9334 /* 9335 * Trim the space to be evicted. 9336 */ 9337 if (vd->vdev_has_trim && dev->l2ad_evict < taddr && 9338 l2arc_trim_ahead > 0) { 9339 /* 9340 * We have to drop the spa_config lock because 9341 * vdev_trim_range() will acquire it. 9342 * l2ad_evict already accounts for the label 9343 * size. To prevent vdev_trim_ranges() from 9344 * adding it again, we subtract it from 9345 * l2ad_evict. 9346 */ 9347 spa_config_exit(dev->l2ad_spa, SCL_L2ARC, dev); 9348 vdev_trim_simple(vd, 9349 dev->l2ad_evict - VDEV_LABEL_START_SIZE, 9350 taddr - dev->l2ad_evict); 9351 spa_config_enter(dev->l2ad_spa, SCL_L2ARC, dev, 9352 RW_READER); 9353 } 9354 9355 /* 9356 * When rebuilding L2ARC we retrieve the evict hand 9357 * from the header of the device. Of note, l2arc_evict() 9358 * does not actually delete buffers from the cache 9359 * device, but trimming may do so depending on the 9360 * hardware implementation. Thus keeping track of the 9361 * evict hand is useful. 9362 */ 9363 dev->l2ad_evict = MAX(dev->l2ad_evict, taddr); 9364 } 9365 } 9366 9367 retry: 9368 mutex_enter(&dev->l2ad_mtx); 9369 /* 9370 * We have to account for evicted log blocks. Run vdev_space_update() 9371 * on log blocks whose offset (in bytes) is before the evicted offset 9372 * (in bytes) by searching in the list of pointers to log blocks 9373 * present in the L2ARC device. 9374 */ 9375 for (lb_ptr_buf = list_tail(&dev->l2ad_lbptr_list); lb_ptr_buf; 9376 lb_ptr_buf = lb_ptr_buf_prev) { 9377 9378 lb_ptr_buf_prev = list_prev(&dev->l2ad_lbptr_list, lb_ptr_buf); 9379 9380 /* L2BLK_GET_PSIZE returns aligned size for log blocks */ 9381 uint64_t asize = L2BLK_GET_PSIZE( 9382 (lb_ptr_buf->lb_ptr)->lbp_prop); 9383 9384 /* 9385 * We don't worry about log blocks left behind (ie 9386 * lbp_payload_start < l2ad_hand) because l2arc_write_buffers() 9387 * will never write more than l2arc_evict() evicts. 9388 */ 9389 if (!all && l2arc_log_blkptr_valid(dev, lb_ptr_buf->lb_ptr)) { 9390 break; 9391 } else { 9392 if (vd != NULL) 9393 vdev_space_update(vd, -asize, 0, 0); 9394 ARCSTAT_INCR(arcstat_l2_log_blk_asize, -asize); 9395 ARCSTAT_BUMPDOWN(arcstat_l2_log_blk_count); 9396 zfs_refcount_remove_many(&dev->l2ad_lb_asize, asize, 9397 lb_ptr_buf); 9398 (void) zfs_refcount_remove(&dev->l2ad_lb_count, 9399 lb_ptr_buf); 9400 list_remove(&dev->l2ad_lbptr_list, lb_ptr_buf); 9401 kmem_free(lb_ptr_buf->lb_ptr, 9402 sizeof (l2arc_log_blkptr_t)); 9403 kmem_free(lb_ptr_buf, sizeof (l2arc_lb_ptr_buf_t)); 9404 } 9405 } 9406 9407 for (hdr = list_tail(buflist); hdr; hdr = hdr_prev) { 9408 hdr_prev = list_prev(buflist, hdr); 9409 9410 ASSERT(!HDR_EMPTY(hdr)); 9411 hash_lock = HDR_LOCK(hdr); 9412 9413 /* 9414 * We cannot use mutex_enter or else we can deadlock 9415 * with l2arc_write_buffers (due to swapping the order 9416 * the hash lock and l2ad_mtx are taken). 9417 */ 9418 if (!mutex_tryenter(hash_lock)) { 9419 /* 9420 * Missed the hash lock. Retry. 9421 */ 9422 ARCSTAT_BUMP(arcstat_l2_evict_lock_retry); 9423 mutex_exit(&dev->l2ad_mtx); 9424 mutex_enter(hash_lock); 9425 mutex_exit(hash_lock); 9426 goto retry; 9427 } 9428 9429 /* 9430 * A header can't be on this list if it doesn't have L2 header. 9431 */ 9432 ASSERT(HDR_HAS_L2HDR(hdr)); 9433 9434 /* Ensure this header has finished being written. */ 9435 ASSERT(!HDR_L2_WRITING(hdr)); 9436 ASSERT(!HDR_L2_WRITE_HEAD(hdr)); 9437 9438 if (!all && (hdr->b_l2hdr.b_daddr >= dev->l2ad_evict || 9439 hdr->b_l2hdr.b_daddr < dev->l2ad_hand)) { 9440 /* 9441 * We've evicted to the target address, 9442 * or the end of the device. 9443 */ 9444 mutex_exit(hash_lock); 9445 break; 9446 } 9447 9448 if (!HDR_HAS_L1HDR(hdr)) { 9449 ASSERT(!HDR_L2_READING(hdr)); 9450 /* 9451 * This doesn't exist in the ARC. Destroy. 9452 * arc_hdr_destroy() will call list_remove() 9453 * and decrement arcstat_l2_lsize. 9454 */ 9455 arc_change_state(arc_anon, hdr); 9456 arc_hdr_destroy(hdr); 9457 } else { 9458 ASSERT(hdr->b_l1hdr.b_state != arc_l2c_only); 9459 ARCSTAT_BUMP(arcstat_l2_evict_l1cached); 9460 /* 9461 * Invalidate issued or about to be issued 9462 * reads, since we may be about to write 9463 * over this location. 9464 */ 9465 if (HDR_L2_READING(hdr)) { 9466 ARCSTAT_BUMP(arcstat_l2_evict_reading); 9467 arc_hdr_set_flags(hdr, ARC_FLAG_L2_EVICTED); 9468 } 9469 9470 arc_hdr_l2hdr_destroy(hdr); 9471 } 9472 mutex_exit(hash_lock); 9473 } 9474 mutex_exit(&dev->l2ad_mtx); 9475 9476 out: 9477 /* 9478 * We need to check if we evict all buffers, otherwise we may iterate 9479 * unnecessarily. 9480 */ 9481 if (!all && rerun) { 9482 /* 9483 * Bump device hand to the device start if it is approaching the 9484 * end. l2arc_evict() has already evicted ahead for this case. 9485 */ 9486 dev->l2ad_hand = dev->l2ad_start; 9487 dev->l2ad_evict = dev->l2ad_start; 9488 dev->l2ad_first = B_FALSE; 9489 /* 9490 * Reset DWPD counters - first pass writes are free, start 9491 * fresh 24h budget period now that device is full. 9492 */ 9493 dev->l2ad_dwpd_writes = 0; 9494 dev->l2ad_dwpd_start = gethrestime_sec(); 9495 dev->l2ad_dwpd_accumulated = 0; 9496 dev->l2ad_dwpd_bump = l2arc_dwpd_bump; 9497 goto top; 9498 } 9499 9500 if (!all) { 9501 /* 9502 * In case of cache device removal (all) the following 9503 * assertions may be violated without functional consequences 9504 * as the device is about to be removed. 9505 */ 9506 ASSERT3U(dev->l2ad_hand + distance, <=, dev->l2ad_end); 9507 if (!dev->l2ad_first) 9508 ASSERT3U(dev->l2ad_hand, <=, dev->l2ad_evict); 9509 } 9510 } 9511 9512 /* 9513 * Handle any abd transforms that might be required for writing to the L2ARC. 9514 * If successful, this function will always return an abd with the data 9515 * transformed as it is on disk in a new abd of asize bytes. 9516 */ 9517 static int 9518 l2arc_apply_transforms(spa_t *spa, arc_buf_hdr_t *hdr, uint64_t asize, 9519 abd_t **abd_out) 9520 { 9521 int ret; 9522 abd_t *cabd = NULL, *eabd = NULL, *to_write = hdr->b_l1hdr.b_pabd; 9523 enum zio_compress compress = HDR_GET_COMPRESS(hdr); 9524 uint64_t psize = HDR_GET_PSIZE(hdr); 9525 uint64_t size = arc_hdr_size(hdr); 9526 boolean_t ismd = HDR_ISTYPE_METADATA(hdr); 9527 boolean_t bswap = (hdr->b_l1hdr.b_byteswap != DMU_BSWAP_NUMFUNCS); 9528 dsl_crypto_key_t *dck = NULL; 9529 uint8_t mac[ZIO_DATA_MAC_LEN] = { 0 }; 9530 boolean_t no_crypt = B_FALSE; 9531 9532 ASSERT((HDR_GET_COMPRESS(hdr) != ZIO_COMPRESS_OFF && 9533 !HDR_COMPRESSION_ENABLED(hdr)) || 9534 HDR_ENCRYPTED(hdr) || HDR_SHARED_DATA(hdr) || psize != asize); 9535 ASSERT3U(psize, <=, asize); 9536 9537 /* 9538 * If this data simply needs its own buffer, we simply allocate it 9539 * and copy the data. This may be done to eliminate a dependency on a 9540 * shared buffer or to reallocate the buffer to match asize. 9541 */ 9542 if (HDR_HAS_RABD(hdr)) { 9543 ASSERT3U(asize, >, psize); 9544 to_write = abd_alloc_for_io(asize, ismd); 9545 abd_copy(to_write, hdr->b_crypt_hdr.b_rabd, psize); 9546 abd_zero_off(to_write, psize, asize - psize); 9547 goto out; 9548 } 9549 9550 if ((compress == ZIO_COMPRESS_OFF || HDR_COMPRESSION_ENABLED(hdr)) && 9551 !HDR_ENCRYPTED(hdr)) { 9552 ASSERT3U(size, ==, psize); 9553 to_write = abd_alloc_for_io(asize, ismd); 9554 abd_copy(to_write, hdr->b_l1hdr.b_pabd, size); 9555 if (asize > size) 9556 abd_zero_off(to_write, size, asize - size); 9557 goto out; 9558 } 9559 9560 if (compress != ZIO_COMPRESS_OFF && !HDR_COMPRESSION_ENABLED(hdr)) { 9561 cabd = abd_alloc_for_io(MAX(size, asize), ismd); 9562 uint64_t csize = zio_compress_data(compress, to_write, &cabd, 9563 size, MIN(size, psize), hdr->b_complevel); 9564 if (csize >= size || csize > psize) { 9565 /* 9566 * We can't re-compress the block into the original 9567 * psize. Even if it fits into asize, it does not 9568 * matter, since checksum will never match on read. 9569 */ 9570 abd_free(cabd); 9571 return (SET_ERROR(EIO)); 9572 } 9573 if (asize > csize) 9574 abd_zero_off(cabd, csize, asize - csize); 9575 to_write = cabd; 9576 } 9577 9578 if (HDR_ENCRYPTED(hdr)) { 9579 eabd = abd_alloc_for_io(asize, ismd); 9580 9581 /* 9582 * If the dataset was disowned before the buffer 9583 * made it to this point, the key to re-encrypt 9584 * it won't be available. In this case we simply 9585 * won't write the buffer to the L2ARC. 9586 */ 9587 ret = spa_keystore_lookup_key(spa, hdr->b_crypt_hdr.b_dsobj, 9588 FTAG, &dck); 9589 if (ret != 0) 9590 goto error; 9591 9592 ret = zio_do_crypt_abd(B_TRUE, &dck->dck_key, 9593 hdr->b_crypt_hdr.b_ot, bswap, hdr->b_crypt_hdr.b_salt, 9594 hdr->b_crypt_hdr.b_iv, mac, psize, to_write, eabd, 9595 &no_crypt); 9596 if (ret != 0) 9597 goto error; 9598 9599 if (no_crypt) 9600 abd_copy(eabd, to_write, psize); 9601 9602 if (psize != asize) 9603 abd_zero_off(eabd, psize, asize - psize); 9604 9605 /* assert that the MAC we got here matches the one we saved */ 9606 ASSERT0(memcmp(mac, hdr->b_crypt_hdr.b_mac, ZIO_DATA_MAC_LEN)); 9607 spa_keystore_dsl_key_rele(spa, dck, FTAG); 9608 9609 if (to_write == cabd) 9610 abd_free(cabd); 9611 9612 to_write = eabd; 9613 } 9614 9615 out: 9616 ASSERT3P(to_write, !=, hdr->b_l1hdr.b_pabd); 9617 *abd_out = to_write; 9618 return (0); 9619 9620 error: 9621 if (dck != NULL) 9622 spa_keystore_dsl_key_rele(spa, dck, FTAG); 9623 if (cabd != NULL) 9624 abd_free(cabd); 9625 if (eabd != NULL) 9626 abd_free(eabd); 9627 9628 *abd_out = NULL; 9629 return (ret); 9630 } 9631 9632 /* 9633 * Write buffers from a single sublist to L2ARC. 9634 * Handles locking, marker determination, and buffer processing. 9635 * Returns B_TRUE if target size reached, B_FALSE otherwise. 9636 */ 9637 static boolean_t 9638 l2arc_write_sublist(spa_t *spa, l2arc_dev_t *dev, int pass, int sublist_idx, 9639 uint64_t target_sz, uint64_t *write_asize, uint64_t *write_psize, 9640 zio_t **pio, l2arc_write_callback_t **cb, arc_buf_hdr_t *head, 9641 uint64_t *consumed, uint64_t sublist_headroom, boolean_t save_position) 9642 { 9643 multilist_sublist_t *mls; 9644 arc_buf_hdr_t *hdr; 9645 arc_buf_hdr_t *persistent_marker, *local_marker; 9646 boolean_t full = B_FALSE; 9647 boolean_t scan_from_head = B_FALSE; 9648 uint64_t guid = spa_load_guid(spa); 9649 9650 mls = l2arc_sublist_lock(pass, sublist_idx); 9651 ASSERT3P(mls, !=, NULL); 9652 9653 persistent_marker = spa->spa_l2arc_info. 9654 l2arc_markers[pass][sublist_idx]; 9655 9656 /* 9657 * Check if this sublist's marker was flagged for reset to tail. 9658 * This handles depth cap resets and global resets without needing 9659 * to coordinate with actively-scanning threads. 9660 */ 9661 if (save_position && 9662 spa->spa_l2arc_info.l2arc_sublist_reset[pass][sublist_idx]) { 9663 multilist_sublist_remove(mls, persistent_marker); 9664 multilist_sublist_insert_tail(mls, persistent_marker); 9665 spa->spa_l2arc_info.l2arc_sublist_reset[pass][sublist_idx] = 9666 B_FALSE; 9667 } 9668 9669 if (save_position && persistent_marker == multilist_sublist_head(mls)) { 9670 multilist_sublist_unlock(mls); 9671 return (B_FALSE); 9672 } 9673 9674 local_marker = arc_state_alloc_marker(); 9675 9676 if (save_position) { 9677 hdr = multilist_sublist_prev(mls, persistent_marker); 9678 ASSERT3P(hdr, !=, NULL); 9679 scan_from_head = B_FALSE; 9680 } else { 9681 if (arc_warm) { 9682 hdr = multilist_sublist_tail(mls); 9683 scan_from_head = B_FALSE; 9684 } else { 9685 hdr = multilist_sublist_head(mls); 9686 scan_from_head = B_TRUE; 9687 } 9688 ASSERT3P(hdr, !=, NULL); 9689 } 9690 9691 while (hdr != NULL) { 9692 kmutex_t *hash_lock; 9693 abd_t *to_write = NULL; 9694 9695 hash_lock = HDR_LOCK(hdr); 9696 if (!mutex_tryenter(hash_lock)) { 9697 skip: 9698 /* Skip this buffer rather than waiting. */ 9699 if (scan_from_head) 9700 hdr = multilist_sublist_next(mls, hdr); 9701 else 9702 hdr = multilist_sublist_prev(mls, hdr); 9703 continue; 9704 } 9705 9706 if (l2arc_headroom != 0 && 9707 *consumed + HDR_GET_LSIZE(hdr) > 9708 MAX(sublist_headroom, HDR_GET_LSIZE(hdr))) { 9709 /* 9710 * Searched too far in this sublist. 9711 */ 9712 mutex_exit(hash_lock); 9713 break; 9714 } 9715 9716 *consumed += HDR_GET_LSIZE(hdr); 9717 9718 if (!l2arc_write_eligible(guid, hdr)) { 9719 mutex_exit(hash_lock); 9720 goto skip; 9721 } 9722 9723 ASSERT(HDR_HAS_L1HDR(hdr)); 9724 ASSERT3U(HDR_GET_PSIZE(hdr), >, 0); 9725 ASSERT3U(arc_hdr_size(hdr), >, 0); 9726 ASSERT(hdr->b_l1hdr.b_pabd != NULL || HDR_HAS_RABD(hdr)); 9727 uint64_t psize = HDR_GET_PSIZE(hdr); 9728 uint64_t asize = vdev_psize_to_asize(dev->l2ad_vdev, psize); 9729 9730 /* 9731 * If the allocated size of this buffer plus the max 9732 * size for the pending log block exceeds the evicted 9733 * target size, terminate writing buffers for this run. 9734 */ 9735 if (*write_asize + asize + 9736 sizeof (l2arc_log_blk_phys_t) > target_sz) { 9737 full = B_TRUE; 9738 mutex_exit(hash_lock); 9739 break; 9740 } 9741 9742 /* 9743 * We should not sleep with sublist lock held or it 9744 * may block ARC eviction. Insert a marker to save 9745 * the position and drop the lock. 9746 */ 9747 if (scan_from_head) 9748 multilist_sublist_insert_after(mls, hdr, local_marker); 9749 else 9750 multilist_sublist_insert_before(mls, hdr, local_marker); 9751 multilist_sublist_unlock(mls); 9752 9753 /* 9754 * If this header has b_rabd, we can use this since it 9755 * must always match the data exactly as it exists on 9756 * disk. Otherwise, the L2ARC can normally use the 9757 * hdr's data, but if we're sharing data between the 9758 * hdr and one of its bufs, L2ARC needs its own copy of 9759 * the data so that the ZIO below can't race with the 9760 * buf consumer. To ensure that this copy will be 9761 * available for the lifetime of the ZIO and be cleaned 9762 * up afterwards, we add it to the l2arc_free_on_write 9763 * queue. If we need to apply any transforms to the 9764 * data (compression, encryption) we will also need the 9765 * extra buffer. 9766 */ 9767 if (HDR_HAS_RABD(hdr) && psize == asize) { 9768 to_write = hdr->b_crypt_hdr.b_rabd; 9769 } else if ((HDR_COMPRESSION_ENABLED(hdr) || 9770 HDR_GET_COMPRESS(hdr) == ZIO_COMPRESS_OFF) && 9771 !HDR_ENCRYPTED(hdr) && !HDR_SHARED_DATA(hdr) && 9772 psize == asize) { 9773 to_write = hdr->b_l1hdr.b_pabd; 9774 } else { 9775 int ret = l2arc_apply_transforms(spa, hdr, asize, 9776 &to_write); 9777 if (ret != 0) { 9778 arc_hdr_clear_flags(hdr, ARC_FLAG_L2CACHE); 9779 mutex_exit(hash_lock); 9780 goto next; 9781 } 9782 9783 l2arc_free_abd_on_write(to_write, dev); 9784 } 9785 9786 hdr->b_l2hdr.b_dev = dev; 9787 hdr->b_l2hdr.b_daddr = dev->l2ad_hand; 9788 hdr->b_l2hdr.b_hits = 0; 9789 hdr->b_l2hdr.b_arcs_state = 9790 hdr->b_l1hdr.b_state->arcs_state; 9791 /* l2arc_hdr_arcstats_update() expects a valid asize */ 9792 HDR_SET_L2SIZE(hdr, asize); 9793 arc_hdr_set_flags(hdr, ARC_FLAG_HAS_L2HDR | 9794 ARC_FLAG_L2_WRITING); 9795 9796 (void) zfs_refcount_add_many(&dev->l2ad_alloc, 9797 arc_hdr_size(hdr), hdr); 9798 l2arc_hdr_arcstats_increment(hdr); 9799 vdev_space_update(dev->l2ad_vdev, asize, 0, 0); 9800 9801 mutex_enter(&dev->l2ad_mtx); 9802 if (*pio == NULL) { 9803 /* 9804 * Insert a dummy header on the buflist so 9805 * l2arc_write_done() can find where the 9806 * write buffers begin without searching. 9807 */ 9808 list_insert_head(&dev->l2ad_buflist, head); 9809 } 9810 list_insert_head(&dev->l2ad_buflist, hdr); 9811 mutex_exit(&dev->l2ad_mtx); 9812 9813 boolean_t commit = l2arc_log_blk_insert(dev, hdr); 9814 mutex_exit(hash_lock); 9815 9816 if (*pio == NULL) { 9817 *cb = kmem_alloc(sizeof (l2arc_write_callback_t), 9818 KM_SLEEP); 9819 (*cb)->l2wcb_dev = dev; 9820 (*cb)->l2wcb_head = head; 9821 list_create(&(*cb)->l2wcb_abd_list, 9822 sizeof (l2arc_lb_abd_buf_t), 9823 offsetof(l2arc_lb_abd_buf_t, node)); 9824 *pio = zio_root(spa, l2arc_write_done, *cb, 9825 ZIO_FLAG_CANFAIL); 9826 } 9827 9828 zio_t *wzio = zio_write_phys(*pio, dev->l2ad_vdev, 9829 dev->l2ad_hand, asize, to_write, ZIO_CHECKSUM_OFF, 9830 NULL, hdr, ZIO_PRIORITY_ASYNC_WRITE, 9831 ZIO_FLAG_CANFAIL, B_FALSE); 9832 9833 DTRACE_PROBE2(l2arc__write, vdev_t *, dev->l2ad_vdev, 9834 zio_t *, wzio); 9835 zio_nowait(wzio); 9836 9837 *write_psize += psize; 9838 *write_asize += asize; 9839 dev->l2ad_hand += asize; 9840 9841 if (commit) { 9842 /* l2ad_hand will be adjusted inside. */ 9843 *write_asize += l2arc_log_blk_commit(dev, *pio, *cb); 9844 } 9845 9846 next: 9847 multilist_sublist_lock(mls); 9848 if (scan_from_head) 9849 hdr = multilist_sublist_next(mls, local_marker); 9850 else 9851 hdr = multilist_sublist_prev(mls, local_marker); 9852 multilist_sublist_remove(mls, local_marker); 9853 } 9854 9855 /* Reposition persistent marker for next iteration. */ 9856 multilist_sublist_remove(mls, persistent_marker); 9857 if (save_position && 9858 spa->spa_l2arc_info.l2arc_sublist_reset[pass][sublist_idx]) { 9859 /* Reset flagged during scan, restart from tail. */ 9860 multilist_sublist_insert_tail(mls, persistent_marker); 9861 spa->spa_l2arc_info.l2arc_sublist_reset[pass][sublist_idx] = 9862 B_FALSE; 9863 } else if (save_position && hdr != NULL) { 9864 /* 9865 * Write budget or sublist headroom exhausted, position 9866 * marker after hdr to retry it next time. 9867 */ 9868 multilist_sublist_insert_after(mls, hdr, persistent_marker); 9869 } else if (save_position) { 9870 /* End of sublist, position marker at head. */ 9871 multilist_sublist_insert_head(mls, persistent_marker); 9872 } else { 9873 /* Non-persistent, reset marker to tail. */ 9874 multilist_sublist_insert_tail(mls, persistent_marker); 9875 } 9876 9877 multilist_sublist_unlock(mls); 9878 9879 arc_state_free_marker(local_marker); 9880 9881 return (full); 9882 } 9883 9884 static void 9885 l2arc_blk_fetch_done(zio_t *zio) 9886 { 9887 l2arc_read_callback_t *cb; 9888 9889 cb = zio->io_private; 9890 if (cb->l2rcb_abd != NULL) 9891 abd_free(cb->l2rcb_abd); 9892 kmem_free(cb, sizeof (l2arc_read_callback_t)); 9893 } 9894 9895 /* 9896 * Return the total size of the ARC state corresponding to the given 9897 * L2ARC pass number (0..3). 9898 */ 9899 static uint64_t 9900 l2arc_get_state_size(int pass) 9901 { 9902 switch (pass) { 9903 case L2ARC_MFU_META: 9904 return (zfs_refcount_count( 9905 &arc_mfu->arcs_size[ARC_BUFC_METADATA])); 9906 case L2ARC_MRU_META: 9907 return (zfs_refcount_count( 9908 &arc_mru->arcs_size[ARC_BUFC_METADATA])); 9909 case L2ARC_MFU_DATA: 9910 return (zfs_refcount_count( 9911 &arc_mfu->arcs_size[ARC_BUFC_DATA])); 9912 case L2ARC_MRU_DATA: 9913 return (zfs_refcount_count( 9914 &arc_mru->arcs_size[ARC_BUFC_DATA])); 9915 default: 9916 return (0); 9917 } 9918 } 9919 9920 /* 9921 * Flag all sublists for a single pass for lazy marker reset to tail. 9922 * Each sublist's marker will be reset when next visited by a feed thread. 9923 */ 9924 static void 9925 l2arc_flag_pass_reset(spa_t *spa, int pass) 9926 { 9927 ASSERT(MUTEX_HELD(&spa->spa_l2arc_info.l2arc_sublist_lock)); 9928 9929 multilist_t *ml = l2arc_get_list(pass); 9930 int num_sublists = multilist_get_num_sublists(ml); 9931 9932 for (int i = 0; i < num_sublists; i++) { 9933 multilist_sublist_t *mls = multilist_sublist_lock_idx(ml, i); 9934 spa->spa_l2arc_info.l2arc_sublist_reset[pass][i] = B_TRUE; 9935 multilist_sublist_unlock(mls); 9936 } 9937 9938 spa->spa_l2arc_info.l2arc_ext_scanned[pass] = 0; 9939 } 9940 9941 /* 9942 * Flag all L2ARC markers for lazy reset to tail for the given spa. 9943 * Each sublist's marker will be reset when next visited by a feed thread. 9944 */ 9945 static void 9946 l2arc_reset_all_markers(spa_t *spa) 9947 { 9948 for (int pass = 0; pass < L2ARC_FEED_TYPES; pass++) 9949 l2arc_flag_pass_reset(spa, pass); 9950 9951 /* Reset write counter */ 9952 spa->spa_l2arc_info.l2arc_total_writes = 0; 9953 } 9954 9955 /* 9956 * Find and write ARC buffers to the L2ARC device. 9957 * 9958 * An ARC_FLAG_L2_WRITING flag is set so that the L2ARC buffers are not valid 9959 * for reading until they have completed writing. 9960 * The headroom_boost is an in-out parameter used to maintain headroom boost 9961 * state between calls to this function. 9962 * 9963 * Returns the number of bytes actually written (which may be smaller than 9964 * the delta by which the device hand has changed due to alignment and the 9965 * writing of log blocks). 9966 */ 9967 static uint64_t 9968 l2arc_write_buffers(spa_t *spa, l2arc_dev_t *dev, uint64_t target_sz) 9969 { 9970 arc_buf_hdr_t *head; 9971 uint64_t write_asize, write_psize, headroom; 9972 boolean_t full; 9973 l2arc_write_callback_t *cb = NULL; 9974 zio_t *pio; 9975 l2arc_dev_hdr_phys_t *l2dhdr = dev->l2ad_dev_hdr; 9976 9977 ASSERT3P(dev->l2ad_vdev, !=, NULL); 9978 9979 pio = NULL; 9980 write_asize = write_psize = 0; 9981 full = B_FALSE; 9982 head = kmem_cache_alloc(hdr_l2only_cache, KM_PUSHPAGE); 9983 arc_hdr_set_flags(head, ARC_FLAG_L2_WRITE_HEAD | ARC_FLAG_HAS_L2HDR); 9984 9985 /* 9986 * Determine L2ARC implementation based on total pool L2ARC capacity 9987 * vs ARC size. Use persistent markers for pools with significant 9988 * L2ARC investment, otherwise use simple HEAD/TAIL scanning. 9989 */ 9990 boolean_t save_position = 9991 (spa->spa_l2arc_info.l2arc_total_capacity >= 9992 L2ARC_PERSIST_THRESHOLD); 9993 9994 /* 9995 * Check if markers need reset based on smallest device threshold. 9996 * Reset when cumulative writes exceed 1/8th of smallest device. 9997 * Must be protected since multiple device threads may check/update. 9998 */ 9999 mutex_enter(&spa->spa_l2arc_info.l2arc_sublist_lock); 10000 if (save_position && spa->spa_l2arc_info.l2arc_total_writes >= 10001 spa->spa_l2arc_info.l2arc_smallest_capacity / 8) { 10002 l2arc_reset_all_markers(spa); 10003 } 10004 mutex_exit(&spa->spa_l2arc_info.l2arc_sublist_lock); 10005 10006 /* 10007 * Copy buffers for L2ARC writing. 10008 */ 10009 boolean_t skip_meta = (save_position && 10010 l2arc_meta_cycles > 0 && 10011 dev->l2ad_meta_cycles >= l2arc_meta_cycles); 10012 if (skip_meta) 10013 dev->l2ad_meta_cycles = 0; 10014 10015 for (int pass = 0; pass < L2ARC_FEED_TYPES; pass++) { 10016 /* 10017 * pass == 0: MFU meta 10018 * pass == 1: MRU meta 10019 * pass == 2: MFU data 10020 * pass == 3: MRU data 10021 */ 10022 if (l2arc_mfuonly == 1) { 10023 if (pass == 1 || pass == 3) 10024 continue; 10025 } else if (l2arc_mfuonly > 1) { 10026 if (pass == 3) 10027 continue; 10028 } 10029 10030 if (skip_meta && pass <= L2ARC_MRU_META) 10031 continue; 10032 10033 headroom = target_sz * l2arc_headroom; 10034 if (zfs_compressed_arc_enabled) 10035 headroom = (headroom * l2arc_headroom_boost) / 100; 10036 10037 multilist_t *ml = l2arc_get_list(pass); 10038 ASSERT3P(ml, !=, NULL); 10039 int num_sublists = multilist_get_num_sublists(ml); 10040 uint64_t consumed_headroom = 0; 10041 10042 /* 10043 * Equal per-sublist headroom prevents later 10044 * sublists from getting disproportionate shares 10045 * that would defeat the depth cap. 10046 */ 10047 uint64_t sublist_headroom = headroom / num_sublists; 10048 10049 int current_sublist = spa->spa_l2arc_info. 10050 l2arc_next_sublist[pass]; 10051 int processed_sublists = 0; 10052 while (processed_sublists < num_sublists && !full) { 10053 if (consumed_headroom >= headroom) 10054 break; 10055 10056 /* 10057 * Check if sublist is busy (being processed by another 10058 * L2ARC device thread). If so, skip to next sublist. 10059 */ 10060 mutex_enter(&spa->spa_l2arc_info.l2arc_sublist_lock); 10061 if (spa->spa_l2arc_info.l2arc_sublist_busy[pass] 10062 [current_sublist]) { 10063 mutex_exit(&spa->spa_l2arc_info. 10064 l2arc_sublist_lock); 10065 current_sublist = (current_sublist + 1) % 10066 num_sublists; 10067 processed_sublists++; 10068 continue; 10069 } 10070 /* Mark sublist as busy */ 10071 spa->spa_l2arc_info.l2arc_sublist_busy[pass] 10072 [current_sublist] = B_TRUE; 10073 mutex_exit(&spa->spa_l2arc_info.l2arc_sublist_lock); 10074 10075 /* 10076 * Write buffers from this sublist to L2ARC. 10077 * Function handles locking, marker management, and 10078 * buffer processing internally. 10079 */ 10080 full = l2arc_write_sublist(spa, dev, pass, 10081 current_sublist, target_sz, &write_asize, 10082 &write_psize, &pio, &cb, head, 10083 &consumed_headroom, sublist_headroom, 10084 save_position); 10085 10086 /* Clear busy flag for this sublist */ 10087 mutex_enter(&spa->spa_l2arc_info.l2arc_sublist_lock); 10088 spa->spa_l2arc_info.l2arc_sublist_busy[pass] 10089 [current_sublist] = B_FALSE; 10090 mutex_exit(&spa->spa_l2arc_info.l2arc_sublist_lock); 10091 10092 current_sublist = (current_sublist + 1) % num_sublists; 10093 processed_sublists++; 10094 } 10095 10096 spa->spa_l2arc_info.l2arc_next_sublist[pass] = 10097 (spa->spa_l2arc_info.l2arc_next_sublist[pass] + 1) % 10098 num_sublists; 10099 10100 /* 10101 * Count consecutive metadata monopolization toward 10102 * l2arc_meta_cycles. Only count when metadata actually 10103 * filled the write budget, starving data passes. 10104 */ 10105 if (save_position && pass <= L2ARC_MRU_META && full) 10106 dev->l2ad_meta_cycles++; 10107 10108 /* 10109 * Depth cap: track cumulative bytes scanned per pass 10110 * and reset markers when the scan cap is reached. 10111 * Keeps the marker near the tail where L2ARC adds 10112 * the most value. 10113 */ 10114 if (save_position) { 10115 mutex_enter(&spa->spa_l2arc_info.l2arc_sublist_lock); 10116 10117 spa->spa_l2arc_info.l2arc_ext_scanned[pass] += 10118 consumed_headroom; 10119 10120 uint64_t state_sz = l2arc_get_state_size(pass); 10121 uint64_t scan_cap = 10122 state_sz * l2arc_ext_headroom_pct / 100; 10123 10124 if (scan_cap > 0 && 10125 spa->spa_l2arc_info.l2arc_ext_scanned[pass] >= 10126 scan_cap) { 10127 l2arc_flag_pass_reset(spa, pass); 10128 } 10129 10130 mutex_exit(&spa->spa_l2arc_info.l2arc_sublist_lock); 10131 } 10132 10133 if (full == B_TRUE) 10134 break; 10135 } 10136 10137 /* 10138 * If nothing was written at all, reset monopolization counter. 10139 * No point skipping metadata if data has nothing either. 10140 */ 10141 if (write_asize == 0) 10142 dev->l2ad_meta_cycles = 0; 10143 10144 /* No buffers selected for writing? */ 10145 if (pio == NULL) { 10146 ASSERT0(write_psize); 10147 ASSERT(!HDR_HAS_L1HDR(head)); 10148 kmem_cache_free(hdr_l2only_cache, head); 10149 10150 /* 10151 * Although we did not write any buffers l2ad_evict may 10152 * have advanced. 10153 */ 10154 if (dev->l2ad_evict != l2dhdr->dh_evict) 10155 l2arc_dev_hdr_update(dev); 10156 10157 return (0); 10158 } 10159 10160 if (!dev->l2ad_first) 10161 ASSERT3U(dev->l2ad_hand, <=, dev->l2ad_evict); 10162 10163 ASSERT3U(write_asize, <=, target_sz); 10164 ARCSTAT_BUMP(arcstat_l2_writes_sent); 10165 ARCSTAT_INCR(arcstat_l2_write_bytes, write_psize); 10166 10167 dev->l2ad_writing = B_TRUE; 10168 (void) zio_wait(pio); 10169 dev->l2ad_writing = B_FALSE; 10170 10171 /* 10172 * Update cumulative write tracking for marker reset logic. 10173 * Protected for multi-device thread access. 10174 */ 10175 mutex_enter(&spa->spa_l2arc_info.l2arc_sublist_lock); 10176 spa->spa_l2arc_info.l2arc_total_writes += write_asize; 10177 mutex_exit(&spa->spa_l2arc_info.l2arc_sublist_lock); 10178 10179 /* Track writes for DWPD rate limiting */ 10180 dev->l2ad_dwpd_writes += write_asize; 10181 10182 /* 10183 * Update the device header after the zio completes as 10184 * l2arc_write_done() may have updated the memory holding the log block 10185 * pointers in the device header. 10186 */ 10187 l2arc_dev_hdr_update(dev); 10188 10189 return (write_asize); 10190 } 10191 10192 static boolean_t 10193 l2arc_hdr_limit_reached(void) 10194 { 10195 int64_t s = aggsum_upper_bound(&arc_sums.arcstat_l2_hdr_size); 10196 10197 return (arc_reclaim_needed() || 10198 (s > (arc_warm ? arc_c : arc_c_max) * l2arc_meta_percent / 100)); 10199 } 10200 10201 /* 10202 * Per-device L2ARC feed thread. Each L2ARC device has its own thread 10203 * to allow parallel writes to multiple devices. 10204 */ 10205 static __attribute__((noreturn)) void 10206 l2arc_feed_thread(void *arg) 10207 { 10208 l2arc_dev_t *dev = arg; 10209 callb_cpr_t cpr; 10210 spa_t *spa; 10211 uint64_t size, wrote; 10212 clock_t begin, next = ddi_get_lbolt(); 10213 fstrans_cookie_t cookie; 10214 10215 ASSERT3P(dev, !=, NULL); 10216 10217 CALLB_CPR_INIT(&cpr, &dev->l2ad_feed_thr_lock, callb_generic_cpr, FTAG); 10218 10219 mutex_enter(&dev->l2ad_feed_thr_lock); 10220 10221 cookie = spl_fstrans_mark(); 10222 while (dev->l2ad_thread_exit == B_FALSE) { 10223 CALLB_CPR_SAFE_BEGIN(&cpr); 10224 (void) cv_timedwait_idle(&dev->l2ad_feed_cv, 10225 &dev->l2ad_feed_thr_lock, next); 10226 CALLB_CPR_SAFE_END(&cpr, &dev->l2ad_feed_thr_lock); 10227 next = ddi_get_lbolt() + hz; 10228 10229 /* 10230 * Check if thread should exit. 10231 */ 10232 if (dev->l2ad_thread_exit) 10233 break; 10234 10235 /* 10236 * Check if device is still valid. If not, thread should exit. 10237 */ 10238 if (dev->l2ad_vdev == NULL || vdev_is_dead(dev->l2ad_vdev)) 10239 break; 10240 begin = ddi_get_lbolt(); 10241 10242 /* 10243 * Try to acquire the spa config lock. If we can't get it, 10244 * skip this iteration as removal might be in progress. 10245 * The feed thread will exit naturally when it wakes up and 10246 * sees l2ad_thread_exit is set. 10247 */ 10248 spa = dev->l2ad_spa; 10249 ASSERT3P(spa, !=, NULL); 10250 if (!spa_config_tryenter(spa, SCL_L2ARC, dev, RW_READER)) 10251 continue; 10252 10253 if (dev->l2ad_rebuild || dev->l2ad_trim_all) { 10254 spa_config_exit(spa, SCL_L2ARC, dev); 10255 continue; 10256 } 10257 10258 /* 10259 * Avoid contributing to memory pressure. 10260 */ 10261 if (l2arc_hdr_limit_reached()) { 10262 ARCSTAT_BUMP(arcstat_l2_abort_lowmem); 10263 spa_config_exit(spa, SCL_L2ARC, dev); 10264 continue; 10265 } 10266 10267 ARCSTAT_BUMP(arcstat_l2_feeds); 10268 10269 clock_t interval; 10270 size = l2arc_write_size(dev, &interval); 10271 10272 /* 10273 * Evict L2ARC buffers that will be overwritten. 10274 */ 10275 l2arc_evict(dev, size, B_FALSE); 10276 10277 /* 10278 * Write ARC buffers. 10279 */ 10280 wrote = l2arc_write_buffers(spa, dev, size); 10281 10282 /* 10283 * Adjust interval based on actual write. 10284 */ 10285 if (wrote == 0) 10286 interval = hz * l2arc_feed_secs; 10287 else if (wrote < size) 10288 interval = (interval * wrote) / size; 10289 10290 /* 10291 * Calculate next feed time. 10292 */ 10293 clock_t now = ddi_get_lbolt(); 10294 next = MAX(now, MIN(now + interval, begin + interval)); 10295 spa_config_exit(spa, SCL_L2ARC, dev); 10296 } 10297 spl_fstrans_unmark(cookie); 10298 10299 dev->l2ad_feed_thread = NULL; 10300 cv_broadcast(&dev->l2ad_feed_cv); 10301 CALLB_CPR_EXIT(&cpr); /* drops dev->l2ad_feed_thr_lock */ 10302 thread_exit(); 10303 } 10304 10305 boolean_t 10306 l2arc_vdev_present(vdev_t *vd) 10307 { 10308 return (l2arc_vdev_get(vd) != NULL); 10309 } 10310 10311 /* 10312 * Returns the l2arc_dev_t associated with a particular vdev_t or NULL if 10313 * the vdev_t isn't an L2ARC device. 10314 */ 10315 l2arc_dev_t * 10316 l2arc_vdev_get(vdev_t *vd) 10317 { 10318 l2arc_dev_t *dev; 10319 10320 mutex_enter(&l2arc_dev_mtx); 10321 for (dev = list_head(l2arc_dev_list); dev != NULL; 10322 dev = list_next(l2arc_dev_list, dev)) { 10323 if (dev->l2ad_vdev == vd) 10324 break; 10325 } 10326 mutex_exit(&l2arc_dev_mtx); 10327 10328 return (dev); 10329 } 10330 10331 static void 10332 l2arc_rebuild_dev(l2arc_dev_t *dev, boolean_t reopen) 10333 { 10334 l2arc_dev_hdr_phys_t *l2dhdr = dev->l2ad_dev_hdr; 10335 uint64_t l2dhdr_asize = dev->l2ad_dev_hdr_asize; 10336 spa_t *spa = dev->l2ad_spa; 10337 10338 /* 10339 * After a l2arc_remove_vdev(), the spa_t will no longer be valid 10340 */ 10341 if (spa == NULL) 10342 return; 10343 10344 /* 10345 * The L2ARC has to hold at least the payload of one log block for 10346 * them to be restored (persistent L2ARC). The payload of a log block 10347 * depends on the amount of its log entries. We always write log blocks 10348 * with 1022 entries. How many of them are committed or restored depends 10349 * on the size of the L2ARC device. Thus the maximum payload of 10350 * one log block is 1022 * SPA_MAXBLOCKSIZE = 16GB. If the L2ARC device 10351 * is less than that, we reduce the amount of committed and restored 10352 * log entries per block so as to enable persistence. 10353 */ 10354 if (dev->l2ad_end < l2arc_rebuild_blocks_min_l2size) { 10355 dev->l2ad_log_entries = 0; 10356 } else { 10357 dev->l2ad_log_entries = MIN((dev->l2ad_end - 10358 dev->l2ad_start) >> SPA_MAXBLOCKSHIFT, 10359 L2ARC_LOG_BLK_MAX_ENTRIES); 10360 } 10361 10362 /* 10363 * Read the device header, if an error is returned do not rebuild L2ARC. 10364 */ 10365 if (l2arc_dev_hdr_read(dev) == 0 && dev->l2ad_log_entries > 0) { 10366 /* 10367 * If we are onlining a cache device (vdev_reopen) that was 10368 * still present (l2arc_vdev_present()) and rebuild is enabled, 10369 * we should evict all ARC buffers and pointers to log blocks 10370 * and reclaim their space before restoring its contents to 10371 * L2ARC. 10372 */ 10373 if (reopen) { 10374 if (!l2arc_rebuild_enabled) { 10375 return; 10376 } else { 10377 l2arc_evict(dev, 0, B_TRUE); 10378 /* start a new log block */ 10379 dev->l2ad_log_ent_idx = 0; 10380 dev->l2ad_log_blk_payload_asize = 0; 10381 dev->l2ad_log_blk_payload_start = 0; 10382 } 10383 } 10384 /* 10385 * Just mark the device as pending for a rebuild. We won't 10386 * be starting a rebuild in line here as it would block pool 10387 * import. Instead spa_load_impl will hand that off to an 10388 * async task which will call l2arc_spa_rebuild_start. 10389 */ 10390 dev->l2ad_rebuild = B_TRUE; 10391 } else if (spa_writeable(spa)) { 10392 /* 10393 * In this case TRIM the whole device if l2arc_trim_ahead > 0, 10394 * otherwise create a new header. We zero out the memory holding 10395 * the header to reset dh_start_lbps. If we TRIM the whole 10396 * device the new header will be written by 10397 * vdev_trim_l2arc_thread() at the end of the TRIM to update the 10398 * trim_state in the header too. When reading the header, if 10399 * trim_state is not VDEV_TRIM_COMPLETE and l2arc_trim_ahead > 0 10400 * we opt to TRIM the whole device again. 10401 */ 10402 if (l2arc_trim_ahead > 0) { 10403 dev->l2ad_trim_all = B_TRUE; 10404 } else { 10405 memset(l2dhdr, 0, l2dhdr_asize); 10406 l2arc_dev_hdr_update(dev); 10407 } 10408 } 10409 } 10410 10411 10412 /* 10413 * Recalculate smallest L2ARC device capacity for the given spa. 10414 * Must be called under l2arc_dev_mtx. 10415 */ 10416 static void 10417 l2arc_update_smallest_capacity(spa_t *spa) 10418 { 10419 ASSERT(MUTEX_HELD(&l2arc_dev_mtx)); 10420 l2arc_dev_t *dev; 10421 uint64_t smallest = UINT64_MAX; 10422 10423 for (dev = list_head(l2arc_dev_list); dev != NULL; 10424 dev = list_next(l2arc_dev_list, dev)) { 10425 if (dev->l2ad_spa == spa) { 10426 uint64_t cap = dev->l2ad_end - dev->l2ad_start; 10427 if (cap < smallest) 10428 smallest = cap; 10429 } 10430 } 10431 10432 spa->spa_l2arc_info.l2arc_smallest_capacity = smallest; 10433 } 10434 10435 /* 10436 * Add a vdev for use by the L2ARC. By this point the spa has already 10437 * validated the vdev and opened it. 10438 */ 10439 void 10440 l2arc_add_vdev(spa_t *spa, vdev_t *vd) 10441 { 10442 l2arc_dev_t *adddev; 10443 uint64_t l2dhdr_asize; 10444 10445 ASSERT(!l2arc_vdev_present(vd)); 10446 10447 /* 10448 * Create a new l2arc device entry. 10449 */ 10450 adddev = vmem_zalloc(sizeof (l2arc_dev_t), KM_SLEEP); 10451 adddev->l2ad_spa = spa; 10452 adddev->l2ad_vdev = vd; 10453 /* leave extra size for an l2arc device header */ 10454 l2dhdr_asize = adddev->l2ad_dev_hdr_asize = 10455 MAX(sizeof (*adddev->l2ad_dev_hdr), 1 << vd->vdev_ashift); 10456 adddev->l2ad_start = VDEV_LABEL_START_SIZE + l2dhdr_asize; 10457 adddev->l2ad_end = VDEV_LABEL_START_SIZE + vdev_get_min_asize(vd); 10458 ASSERT3U(adddev->l2ad_start, <, adddev->l2ad_end); 10459 adddev->l2ad_hand = adddev->l2ad_start; 10460 adddev->l2ad_evict = adddev->l2ad_start; 10461 adddev->l2ad_first = B_TRUE; 10462 adddev->l2ad_writing = B_FALSE; 10463 adddev->l2ad_trim_all = B_FALSE; 10464 adddev->l2ad_dwpd_writes = 0; 10465 adddev->l2ad_dwpd_start = gethrestime_sec(); 10466 adddev->l2ad_dwpd_accumulated = 0; 10467 adddev->l2ad_dwpd_bump = l2arc_dwpd_bump; 10468 list_link_init(&adddev->l2ad_node); 10469 adddev->l2ad_dev_hdr = kmem_zalloc(l2dhdr_asize, KM_SLEEP); 10470 10471 mutex_init(&adddev->l2ad_mtx, NULL, MUTEX_DEFAULT, NULL); 10472 /* 10473 * This is a list of all ARC buffers that are still valid on the 10474 * device. 10475 */ 10476 list_create(&adddev->l2ad_buflist, sizeof (arc_buf_hdr_t), 10477 offsetof(arc_buf_hdr_t, b_l2hdr.b_l2node)); 10478 10479 /* 10480 * This is a list of pointers to log blocks that are still present 10481 * on the device. 10482 */ 10483 list_create(&adddev->l2ad_lbptr_list, sizeof (l2arc_lb_ptr_buf_t), 10484 offsetof(l2arc_lb_ptr_buf_t, node)); 10485 10486 vdev_space_update(vd, 0, 0, adddev->l2ad_end - adddev->l2ad_hand); 10487 zfs_refcount_create(&adddev->l2ad_alloc); 10488 10489 /* 10490 * Initialize per-device thread fields 10491 */ 10492 adddev->l2ad_thread_exit = B_FALSE; 10493 mutex_init(&adddev->l2ad_feed_thr_lock, NULL, MUTEX_DEFAULT, NULL); 10494 cv_init(&adddev->l2ad_feed_cv, NULL, CV_DEFAULT, NULL); 10495 10496 zfs_refcount_create(&adddev->l2ad_lb_asize); 10497 zfs_refcount_create(&adddev->l2ad_lb_count); 10498 10499 /* 10500 * Decide if dev is eligible for L2ARC rebuild or whole device 10501 * trimming. This has to happen before the device is added in the 10502 * cache device list and l2arc_dev_mtx is released. Otherwise 10503 * l2arc_feed_thread() might already start writing on the 10504 * device. 10505 */ 10506 l2arc_rebuild_dev(adddev, B_FALSE); 10507 10508 /* 10509 * Add device to global list 10510 */ 10511 mutex_enter(&l2arc_dev_mtx); 10512 10513 /* 10514 * Initialize pool-based position saving markers if this is the first 10515 * L2ARC device for this pool 10516 */ 10517 if (!l2arc_pool_has_devices(spa)) { 10518 l2arc_pool_markers_init(spa); 10519 } 10520 10521 list_insert_head(l2arc_dev_list, adddev); 10522 atomic_inc_64(&l2arc_ndev); 10523 spa->spa_l2arc_info.l2arc_total_capacity += (adddev->l2ad_end - 10524 adddev->l2ad_start); 10525 l2arc_update_smallest_capacity(spa); 10526 10527 /* 10528 * Create per-device feed thread only if spa is writable. 10529 * The thread name includes the spa name and device number 10530 * for easy identification. 10531 */ 10532 if (spa_writeable(spa)) { 10533 char thread_name[MAXNAMELEN]; 10534 snprintf(thread_name, sizeof (thread_name), "l2arc_%s_%llu", 10535 spa_name(spa), (u_longlong_t)vd->vdev_id); 10536 adddev->l2ad_feed_thread = thread_create_named(thread_name, 10537 NULL, 0, l2arc_feed_thread, adddev, 0, &p0, TS_RUN, 10538 minclsyspri); 10539 if (adddev->l2ad_feed_thread == NULL) { 10540 cmn_err(CE_WARN, "l2arc: failed to create feed thread " 10541 "for vdev %llu in pool '%s'", 10542 (u_longlong_t)vd->vdev_id, spa_name(spa)); 10543 } 10544 } else { 10545 adddev->l2ad_feed_thread = NULL; 10546 } 10547 10548 mutex_exit(&l2arc_dev_mtx); 10549 } 10550 10551 /* 10552 * Decide if a vdev is eligible for L2ARC rebuild, called from vdev_reopen() 10553 * in case of onlining a cache device. 10554 */ 10555 void 10556 l2arc_rebuild_vdev(vdev_t *vd, boolean_t reopen) 10557 { 10558 l2arc_dev_t *dev = NULL; 10559 10560 dev = l2arc_vdev_get(vd); 10561 ASSERT3P(dev, !=, NULL); 10562 10563 /* 10564 * In contrast to l2arc_add_vdev() we do not have to worry about 10565 * l2arc_feed_thread() invalidating previous content when onlining a 10566 * cache device. The device parameters (l2ad*) are not cleared when 10567 * offlining the device and writing new buffers will not invalidate 10568 * all previous content. In worst case only buffers that have not had 10569 * their log block written to the device will be lost. 10570 * When onlining the cache device (ie offline->online without exporting 10571 * the pool in between) this happens: 10572 * vdev_reopen() -> vdev_open() -> l2arc_rebuild_vdev() 10573 * | | 10574 * vdev_is_dead() = B_FALSE l2ad_rebuild = B_TRUE 10575 * During the time where vdev_is_dead = B_FALSE and until l2ad_rebuild 10576 * is set to B_TRUE we might write additional buffers to the device. 10577 */ 10578 l2arc_rebuild_dev(dev, reopen); 10579 } 10580 10581 typedef struct { 10582 l2arc_dev_t *rva_l2arc_dev; 10583 uint64_t rva_spa_gid; 10584 uint64_t rva_vdev_gid; 10585 boolean_t rva_async; 10586 10587 } remove_vdev_args_t; 10588 10589 static void 10590 l2arc_device_teardown(void *arg) 10591 { 10592 remove_vdev_args_t *rva = arg; 10593 l2arc_dev_t *remdev = rva->rva_l2arc_dev; 10594 hrtime_t start_time = gethrtime(); 10595 10596 /* 10597 * Clear all buflists and ARC references. L2ARC device flush. 10598 */ 10599 l2arc_evict(remdev, 0, B_TRUE); 10600 list_destroy(&remdev->l2ad_buflist); 10601 ASSERT(list_is_empty(&remdev->l2ad_lbptr_list)); 10602 list_destroy(&remdev->l2ad_lbptr_list); 10603 mutex_destroy(&remdev->l2ad_mtx); 10604 mutex_destroy(&remdev->l2ad_feed_thr_lock); 10605 cv_destroy(&remdev->l2ad_feed_cv); 10606 zfs_refcount_destroy(&remdev->l2ad_alloc); 10607 zfs_refcount_destroy(&remdev->l2ad_lb_asize); 10608 zfs_refcount_destroy(&remdev->l2ad_lb_count); 10609 kmem_free(remdev->l2ad_dev_hdr, remdev->l2ad_dev_hdr_asize); 10610 vmem_free(remdev, sizeof (l2arc_dev_t)); 10611 10612 uint64_t elapsed = NSEC2MSEC(gethrtime() - start_time); 10613 if (elapsed > 0) { 10614 zfs_dbgmsg("spa %llu, vdev %llu removed in %llu ms", 10615 (u_longlong_t)rva->rva_spa_gid, 10616 (u_longlong_t)rva->rva_vdev_gid, 10617 (u_longlong_t)elapsed); 10618 } 10619 10620 if (rva->rva_async) 10621 arc_async_flush_remove(rva->rva_spa_gid, 2); 10622 kmem_free(rva, sizeof (remove_vdev_args_t)); 10623 } 10624 10625 /* 10626 * Remove a vdev from the L2ARC. 10627 */ 10628 void 10629 l2arc_remove_vdev(vdev_t *vd) 10630 { 10631 spa_t *spa = vd->vdev_spa; 10632 boolean_t asynchronous = spa->spa_state == POOL_STATE_EXPORTED || 10633 spa->spa_state == POOL_STATE_DESTROYED; 10634 10635 /* 10636 * Find the device by vdev 10637 */ 10638 l2arc_dev_t *remdev = l2arc_vdev_get(vd); 10639 ASSERT3P(remdev, !=, NULL); 10640 10641 /* 10642 * Save info for final teardown 10643 */ 10644 remove_vdev_args_t *rva = kmem_alloc(sizeof (remove_vdev_args_t), 10645 KM_SLEEP); 10646 rva->rva_l2arc_dev = remdev; 10647 rva->rva_spa_gid = spa_load_guid(spa); 10648 rva->rva_vdev_gid = remdev->l2ad_vdev->vdev_guid; 10649 10650 /* 10651 * Cancel any ongoing or scheduled rebuild. 10652 */ 10653 mutex_enter(&l2arc_rebuild_thr_lock); 10654 remdev->l2ad_rebuild_cancel = B_TRUE; 10655 if (remdev->l2ad_rebuild_began == B_TRUE) { 10656 while (remdev->l2ad_rebuild == B_TRUE) 10657 cv_wait(&l2arc_rebuild_thr_cv, &l2arc_rebuild_thr_lock); 10658 } 10659 mutex_exit(&l2arc_rebuild_thr_lock); 10660 10661 /* 10662 * Signal per-device feed thread to exit and wait for it. 10663 * Thread only exists if pool was imported read-write. 10664 */ 10665 if (remdev->l2ad_feed_thread != NULL) { 10666 mutex_enter(&remdev->l2ad_feed_thr_lock); 10667 remdev->l2ad_thread_exit = B_TRUE; 10668 cv_signal(&remdev->l2ad_feed_cv); 10669 while (remdev->l2ad_feed_thread != NULL) 10670 cv_wait(&remdev->l2ad_feed_cv, 10671 &remdev->l2ad_feed_thr_lock); 10672 mutex_exit(&remdev->l2ad_feed_thr_lock); 10673 } 10674 10675 rva->rva_async = asynchronous; 10676 10677 /* 10678 * Remove device from global list 10679 */ 10680 ASSERT(spa_config_held(spa, SCL_L2ARC, RW_WRITER) & SCL_L2ARC); 10681 mutex_enter(&l2arc_dev_mtx); 10682 list_remove(l2arc_dev_list, remdev); 10683 atomic_dec_64(&l2arc_ndev); 10684 spa->spa_l2arc_info.l2arc_total_capacity -= 10685 (remdev->l2ad_end - remdev->l2ad_start); 10686 l2arc_update_smallest_capacity(spa); 10687 10688 /* 10689 * Clean up pool-based markers if this was the last L2ARC device 10690 * for this pool 10691 */ 10692 if (!l2arc_pool_has_devices(spa)) { 10693 l2arc_pool_markers_fini(spa); 10694 } 10695 10696 /* During a pool export spa & vdev will no longer be valid */ 10697 if (asynchronous) { 10698 remdev->l2ad_spa = NULL; 10699 remdev->l2ad_vdev = NULL; 10700 } 10701 mutex_exit(&l2arc_dev_mtx); 10702 10703 if (!asynchronous) { 10704 l2arc_device_teardown(rva); 10705 return; 10706 } 10707 10708 arc_async_flush_t *af = arc_async_flush_add(rva->rva_spa_gid, 2); 10709 10710 taskq_dispatch_ent(arc_flush_taskq, l2arc_device_teardown, rva, 10711 TQ_SLEEP, &af->af_tqent); 10712 } 10713 10714 void 10715 l2arc_init(void) 10716 { 10717 l2arc_ndev = 0; 10718 10719 mutex_init(&l2arc_rebuild_thr_lock, NULL, MUTEX_DEFAULT, NULL); 10720 cv_init(&l2arc_rebuild_thr_cv, NULL, CV_DEFAULT, NULL); 10721 mutex_init(&l2arc_dev_mtx, NULL, MUTEX_DEFAULT, NULL); 10722 mutex_init(&l2arc_free_on_write_mtx, NULL, MUTEX_DEFAULT, NULL); 10723 10724 l2arc_dev_list = &L2ARC_dev_list; 10725 l2arc_free_on_write = &L2ARC_free_on_write; 10726 list_create(l2arc_dev_list, sizeof (l2arc_dev_t), 10727 offsetof(l2arc_dev_t, l2ad_node)); 10728 list_create(l2arc_free_on_write, sizeof (l2arc_data_free_t), 10729 offsetof(l2arc_data_free_t, l2df_list_node)); 10730 } 10731 10732 void 10733 l2arc_fini(void) 10734 { 10735 mutex_destroy(&l2arc_rebuild_thr_lock); 10736 cv_destroy(&l2arc_rebuild_thr_cv); 10737 mutex_destroy(&l2arc_dev_mtx); 10738 mutex_destroy(&l2arc_free_on_write_mtx); 10739 10740 list_destroy(l2arc_dev_list); 10741 list_destroy(l2arc_free_on_write); 10742 } 10743 10744 10745 /* 10746 * Punches out rebuild threads for the L2ARC devices in a spa. This should 10747 * be called after pool import from the spa async thread, since starting 10748 * these threads directly from spa_import() will make them part of the 10749 * "zpool import" context and delay process exit (and thus pool import). 10750 */ 10751 void 10752 l2arc_spa_rebuild_start(spa_t *spa) 10753 { 10754 ASSERT(spa_namespace_held()); 10755 10756 /* 10757 * Locate the spa's l2arc devices and kick off rebuild threads. 10758 */ 10759 for (int i = 0; i < spa->spa_l2cache.sav_count; i++) { 10760 l2arc_dev_t *dev = 10761 l2arc_vdev_get(spa->spa_l2cache.sav_vdevs[i]); 10762 if (dev == NULL) { 10763 /* Don't attempt a rebuild if the vdev is UNAVAIL */ 10764 continue; 10765 } 10766 mutex_enter(&l2arc_rebuild_thr_lock); 10767 if (dev->l2ad_rebuild && !dev->l2ad_rebuild_cancel) { 10768 dev->l2ad_rebuild_began = B_TRUE; 10769 (void) thread_create(NULL, 0, l2arc_dev_rebuild_thread, 10770 dev, 0, &p0, TS_RUN, minclsyspri); 10771 } 10772 mutex_exit(&l2arc_rebuild_thr_lock); 10773 } 10774 } 10775 10776 void 10777 l2arc_spa_rebuild_stop(spa_t *spa) 10778 { 10779 ASSERT(spa_namespace_held() || 10780 spa->spa_export_thread == curthread); 10781 10782 for (int i = 0; i < spa->spa_l2cache.sav_count; i++) { 10783 l2arc_dev_t *dev = 10784 l2arc_vdev_get(spa->spa_l2cache.sav_vdevs[i]); 10785 if (dev == NULL) 10786 continue; 10787 mutex_enter(&l2arc_rebuild_thr_lock); 10788 dev->l2ad_rebuild_cancel = B_TRUE; 10789 mutex_exit(&l2arc_rebuild_thr_lock); 10790 } 10791 for (int i = 0; i < spa->spa_l2cache.sav_count; i++) { 10792 l2arc_dev_t *dev = 10793 l2arc_vdev_get(spa->spa_l2cache.sav_vdevs[i]); 10794 if (dev == NULL) 10795 continue; 10796 mutex_enter(&l2arc_rebuild_thr_lock); 10797 if (dev->l2ad_rebuild_began == B_TRUE) { 10798 while (dev->l2ad_rebuild == B_TRUE) { 10799 cv_wait(&l2arc_rebuild_thr_cv, 10800 &l2arc_rebuild_thr_lock); 10801 } 10802 } 10803 mutex_exit(&l2arc_rebuild_thr_lock); 10804 } 10805 } 10806 10807 /* 10808 * Main entry point for L2ARC rebuilding. 10809 */ 10810 static __attribute__((noreturn)) void 10811 l2arc_dev_rebuild_thread(void *arg) 10812 { 10813 l2arc_dev_t *dev = arg; 10814 10815 VERIFY(dev->l2ad_rebuild); 10816 (void) l2arc_rebuild(dev); 10817 mutex_enter(&l2arc_rebuild_thr_lock); 10818 dev->l2ad_rebuild_began = B_FALSE; 10819 dev->l2ad_rebuild = B_FALSE; 10820 cv_signal(&l2arc_rebuild_thr_cv); 10821 mutex_exit(&l2arc_rebuild_thr_lock); 10822 10823 thread_exit(); 10824 } 10825 10826 /* 10827 * This function implements the actual L2ARC metadata rebuild. It: 10828 * starts reading the log block chain and restores each block's contents 10829 * to memory (reconstructing arc_buf_hdr_t's). 10830 * 10831 * Operation stops under any of the following conditions: 10832 * 10833 * 1) We reach the end of the log block chain. 10834 * 2) We encounter *any* error condition (cksum errors, io errors) 10835 */ 10836 static int 10837 l2arc_rebuild(l2arc_dev_t *dev) 10838 { 10839 vdev_t *vd = dev->l2ad_vdev; 10840 spa_t *spa = vd->vdev_spa; 10841 int err = 0; 10842 l2arc_dev_hdr_phys_t *l2dhdr = dev->l2ad_dev_hdr; 10843 l2arc_log_blk_phys_t *this_lb, *next_lb; 10844 zio_t *this_io = NULL, *next_io = NULL; 10845 l2arc_log_blkptr_t lbps[2]; 10846 l2arc_lb_ptr_buf_t *lb_ptr_buf; 10847 boolean_t lock_held; 10848 10849 this_lb = vmem_zalloc(sizeof (*this_lb), KM_SLEEP); 10850 next_lb = vmem_zalloc(sizeof (*next_lb), KM_SLEEP); 10851 10852 /* 10853 * We prevent device removal while issuing reads to the device, 10854 * then during the rebuilding phases we drop this lock again so 10855 * that a spa_unload or device remove can be initiated - this is 10856 * safe, because the spa will signal us to stop before removing 10857 * our device and wait for us to stop. 10858 */ 10859 spa_config_enter(spa, SCL_L2ARC, vd, RW_READER); 10860 lock_held = B_TRUE; 10861 10862 /* 10863 * Retrieve the persistent L2ARC device state. 10864 * L2BLK_GET_PSIZE returns aligned size for log blocks. 10865 */ 10866 dev->l2ad_evict = MAX(l2dhdr->dh_evict, dev->l2ad_start); 10867 dev->l2ad_hand = MAX(l2dhdr->dh_start_lbps[0].lbp_daddr + 10868 L2BLK_GET_PSIZE((&l2dhdr->dh_start_lbps[0])->lbp_prop), 10869 dev->l2ad_start); 10870 dev->l2ad_first = !!(l2dhdr->dh_flags & L2ARC_DEV_HDR_EVICT_FIRST); 10871 10872 vd->vdev_trim_action_time = l2dhdr->dh_trim_action_time; 10873 vd->vdev_trim_state = l2dhdr->dh_trim_state; 10874 10875 /* 10876 * In case the zfs module parameter l2arc_rebuild_enabled is false 10877 * we do not start the rebuild process. 10878 */ 10879 if (!l2arc_rebuild_enabled) 10880 goto out; 10881 10882 /* Prepare the rebuild process */ 10883 memcpy(lbps, l2dhdr->dh_start_lbps, sizeof (lbps)); 10884 10885 /* Start the rebuild process */ 10886 for (;;) { 10887 if (!l2arc_log_blkptr_valid(dev, &lbps[0])) 10888 break; 10889 10890 if ((err = l2arc_log_blk_read(dev, &lbps[0], &lbps[1], 10891 this_lb, next_lb, this_io, &next_io)) != 0) 10892 goto out; 10893 10894 /* 10895 * Our memory pressure valve. If the system is running low 10896 * on memory, rather than swamping memory with new ARC buf 10897 * hdrs, we opt not to rebuild the L2ARC. At this point, 10898 * however, we have already set up our L2ARC dev to chain in 10899 * new metadata log blocks, so the user may choose to offline/ 10900 * online the L2ARC dev at a later time (or re-import the pool) 10901 * to reconstruct it (when there's less memory pressure). 10902 */ 10903 if (l2arc_hdr_limit_reached()) { 10904 ARCSTAT_BUMP(arcstat_l2_rebuild_abort_lowmem); 10905 cmn_err(CE_NOTE, "System running low on memory, " 10906 "aborting L2ARC rebuild."); 10907 err = SET_ERROR(ENOMEM); 10908 goto out; 10909 } 10910 10911 spa_config_exit(spa, SCL_L2ARC, vd); 10912 lock_held = B_FALSE; 10913 10914 /* 10915 * Now that we know that the next_lb checks out alright, we 10916 * can start reconstruction from this log block. 10917 * L2BLK_GET_PSIZE returns aligned size for log blocks. 10918 */ 10919 uint64_t asize = L2BLK_GET_PSIZE((&lbps[0])->lbp_prop); 10920 l2arc_log_blk_restore(dev, this_lb, asize); 10921 10922 /* 10923 * log block restored, include its pointer in the list of 10924 * pointers to log blocks present in the L2ARC device. 10925 */ 10926 lb_ptr_buf = kmem_zalloc(sizeof (l2arc_lb_ptr_buf_t), KM_SLEEP); 10927 lb_ptr_buf->lb_ptr = kmem_zalloc(sizeof (l2arc_log_blkptr_t), 10928 KM_SLEEP); 10929 memcpy(lb_ptr_buf->lb_ptr, &lbps[0], 10930 sizeof (l2arc_log_blkptr_t)); 10931 mutex_enter(&dev->l2ad_mtx); 10932 list_insert_tail(&dev->l2ad_lbptr_list, lb_ptr_buf); 10933 ARCSTAT_INCR(arcstat_l2_log_blk_asize, asize); 10934 ARCSTAT_BUMP(arcstat_l2_log_blk_count); 10935 zfs_refcount_add_many(&dev->l2ad_lb_asize, asize, lb_ptr_buf); 10936 zfs_refcount_add(&dev->l2ad_lb_count, lb_ptr_buf); 10937 mutex_exit(&dev->l2ad_mtx); 10938 vdev_space_update(vd, asize, 0, 0); 10939 10940 /* 10941 * Protection against loops of log blocks: 10942 * 10943 * l2ad_hand l2ad_evict 10944 * V V 10945 * l2ad_start |=======================================| l2ad_end 10946 * -----|||----|||---|||----||| 10947 * (3) (2) (1) (0) 10948 * ---|||---|||----|||---||| 10949 * (7) (6) (5) (4) 10950 * 10951 * In this situation the pointer of log block (4) passes 10952 * l2arc_log_blkptr_valid() but the log block should not be 10953 * restored as it is overwritten by the payload of log block 10954 * (0). Only log blocks (0)-(3) should be restored. We check 10955 * whether l2ad_evict lies in between the payload starting 10956 * offset of the next log block (lbps[1].lbp_payload_start) 10957 * and the payload starting offset of the present log block 10958 * (lbps[0].lbp_payload_start). If true and this isn't the 10959 * first pass, we are looping from the beginning and we should 10960 * stop. 10961 */ 10962 if (l2arc_range_check_overlap(lbps[1].lbp_payload_start, 10963 lbps[0].lbp_payload_start, dev->l2ad_evict) && 10964 !dev->l2ad_first) 10965 goto out; 10966 10967 kpreempt(KPREEMPT_SYNC); 10968 for (;;) { 10969 mutex_enter(&l2arc_rebuild_thr_lock); 10970 if (dev->l2ad_rebuild_cancel) { 10971 mutex_exit(&l2arc_rebuild_thr_lock); 10972 err = SET_ERROR(ECANCELED); 10973 goto out; 10974 } 10975 mutex_exit(&l2arc_rebuild_thr_lock); 10976 if (spa_config_tryenter(spa, SCL_L2ARC, vd, 10977 RW_READER)) { 10978 lock_held = B_TRUE; 10979 break; 10980 } 10981 /* 10982 * L2ARC config lock held by somebody in writer, 10983 * possibly due to them trying to remove us. They'll 10984 * likely to want us to shut down, so after a little 10985 * delay, we check l2ad_rebuild_cancel and retry 10986 * the lock again. 10987 */ 10988 delay(1); 10989 } 10990 10991 /* 10992 * Continue with the next log block. 10993 */ 10994 lbps[0] = lbps[1]; 10995 lbps[1] = this_lb->lb_prev_lbp; 10996 PTR_SWAP(this_lb, next_lb); 10997 this_io = next_io; 10998 next_io = NULL; 10999 } 11000 11001 if (this_io != NULL) 11002 l2arc_log_blk_fetch_abort(this_io); 11003 out: 11004 if (next_io != NULL) 11005 l2arc_log_blk_fetch_abort(next_io); 11006 vmem_free(this_lb, sizeof (*this_lb)); 11007 vmem_free(next_lb, sizeof (*next_lb)); 11008 11009 if (err == ECANCELED) { 11010 /* 11011 * In case the rebuild was canceled do not log to spa history 11012 * log as the pool may be in the process of being removed. 11013 */ 11014 zfs_dbgmsg("L2ARC rebuild aborted, restored %llu blocks", 11015 (u_longlong_t)zfs_refcount_count(&dev->l2ad_lb_count)); 11016 return (err); 11017 } else if (!l2arc_rebuild_enabled) { 11018 spa_history_log_internal(spa, "L2ARC rebuild", NULL, 11019 "disabled"); 11020 } else if (err == 0 && zfs_refcount_count(&dev->l2ad_lb_count) > 0) { 11021 ARCSTAT_BUMP(arcstat_l2_rebuild_success); 11022 spa_history_log_internal(spa, "L2ARC rebuild", NULL, 11023 "successful, restored %llu blocks", 11024 (u_longlong_t)zfs_refcount_count(&dev->l2ad_lb_count)); 11025 } else if (err == 0 && zfs_refcount_count(&dev->l2ad_lb_count) == 0) { 11026 /* 11027 * No error but also nothing restored, meaning the lbps array 11028 * in the device header points to invalid/non-present log 11029 * blocks. Reset the header. 11030 */ 11031 spa_history_log_internal(spa, "L2ARC rebuild", NULL, 11032 "no valid log blocks"); 11033 memset(l2dhdr, 0, dev->l2ad_dev_hdr_asize); 11034 l2arc_dev_hdr_update(dev); 11035 } else if (err != 0) { 11036 spa_history_log_internal(spa, "L2ARC rebuild", NULL, 11037 "aborted, restored %llu blocks", 11038 (u_longlong_t)zfs_refcount_count(&dev->l2ad_lb_count)); 11039 } 11040 11041 if (lock_held) 11042 spa_config_exit(spa, SCL_L2ARC, vd); 11043 11044 return (err); 11045 } 11046 11047 /* 11048 * Attempts to read the device header on the provided L2ARC device and writes 11049 * it to `hdr'. On success, this function returns 0, otherwise the appropriate 11050 * error code is returned. 11051 */ 11052 static int 11053 l2arc_dev_hdr_read(l2arc_dev_t *dev) 11054 { 11055 int err; 11056 uint64_t guid; 11057 l2arc_dev_hdr_phys_t *l2dhdr = dev->l2ad_dev_hdr; 11058 const uint64_t l2dhdr_asize = dev->l2ad_dev_hdr_asize; 11059 abd_t *abd; 11060 11061 guid = spa_guid(dev->l2ad_vdev->vdev_spa); 11062 11063 abd = abd_get_from_buf(l2dhdr, l2dhdr_asize); 11064 11065 err = zio_wait(zio_read_phys(NULL, dev->l2ad_vdev, 11066 VDEV_LABEL_START_SIZE, l2dhdr_asize, abd, 11067 ZIO_CHECKSUM_LABEL, NULL, NULL, ZIO_PRIORITY_SYNC_READ, 11068 ZIO_FLAG_CANFAIL | ZIO_FLAG_DONT_PROPAGATE | ZIO_FLAG_DONT_RETRY | 11069 ZIO_FLAG_SPECULATIVE, B_FALSE)); 11070 11071 abd_free(abd); 11072 11073 if (err != 0) { 11074 ARCSTAT_BUMP(arcstat_l2_rebuild_abort_dh_errors); 11075 zfs_dbgmsg("L2ARC IO error (%d) while reading device header, " 11076 "vdev guid: %llu", err, 11077 (u_longlong_t)dev->l2ad_vdev->vdev_guid); 11078 return (err); 11079 } 11080 11081 if (l2dhdr->dh_magic == BSWAP_64(L2ARC_DEV_HDR_MAGIC)) 11082 byteswap_uint64_array(l2dhdr, sizeof (*l2dhdr)); 11083 11084 if (l2dhdr->dh_magic != L2ARC_DEV_HDR_MAGIC || 11085 l2dhdr->dh_spa_guid != guid || 11086 l2dhdr->dh_vdev_guid != dev->l2ad_vdev->vdev_guid || 11087 l2dhdr->dh_version != L2ARC_PERSISTENT_VERSION || 11088 l2dhdr->dh_log_entries != dev->l2ad_log_entries || 11089 l2dhdr->dh_end != dev->l2ad_end || 11090 !l2arc_range_check_overlap(dev->l2ad_start, dev->l2ad_end, 11091 l2dhdr->dh_evict) || 11092 (l2dhdr->dh_trim_state != VDEV_TRIM_COMPLETE && 11093 l2arc_trim_ahead > 0)) { 11094 /* 11095 * Attempt to rebuild a device containing no actual dev hdr 11096 * or containing a header from some other pool or from another 11097 * version of persistent L2ARC. 11098 */ 11099 ARCSTAT_BUMP(arcstat_l2_rebuild_abort_unsupported); 11100 return (SET_ERROR(ENOTSUP)); 11101 } 11102 11103 return (0); 11104 } 11105 11106 /* 11107 * Reads L2ARC log blocks from storage and validates their contents. 11108 * 11109 * This function implements a simple fetcher to make sure that while 11110 * we're processing one buffer the L2ARC is already fetching the next 11111 * one in the chain. 11112 * 11113 * The arguments this_lp and next_lp point to the current and next log block 11114 * address in the block chain. Similarly, this_lb and next_lb hold the 11115 * l2arc_log_blk_phys_t's of the current and next L2ARC blk. 11116 * 11117 * The `this_io' and `next_io' arguments are used for block fetching. 11118 * When issuing the first blk IO during rebuild, you should pass NULL for 11119 * `this_io'. This function will then issue a sync IO to read the block and 11120 * also issue an async IO to fetch the next block in the block chain. The 11121 * fetched IO is returned in `next_io'. On subsequent calls to this 11122 * function, pass the value returned in `next_io' from the previous call 11123 * as `this_io' and a fresh `next_io' pointer to hold the next fetch IO. 11124 * Prior to the call, you should initialize your `next_io' pointer to be 11125 * NULL. If no fetch IO was issued, the pointer is left set at NULL. 11126 * 11127 * On success, this function returns 0, otherwise it returns an appropriate 11128 * error code. On error the fetching IO is aborted and cleared before 11129 * returning from this function. Therefore, if we return `success', the 11130 * caller can assume that we have taken care of cleanup of fetch IOs. 11131 */ 11132 static int 11133 l2arc_log_blk_read(l2arc_dev_t *dev, 11134 const l2arc_log_blkptr_t *this_lbp, const l2arc_log_blkptr_t *next_lbp, 11135 l2arc_log_blk_phys_t *this_lb, l2arc_log_blk_phys_t *next_lb, 11136 zio_t *this_io, zio_t **next_io) 11137 { 11138 int err = 0; 11139 zio_cksum_t cksum; 11140 uint64_t asize; 11141 11142 ASSERT(this_lbp != NULL && next_lbp != NULL); 11143 ASSERT(this_lb != NULL && next_lb != NULL); 11144 ASSERT(next_io != NULL && *next_io == NULL); 11145 ASSERT(l2arc_log_blkptr_valid(dev, this_lbp)); 11146 11147 /* 11148 * Check to see if we have issued the IO for this log block in a 11149 * previous run. If not, this is the first call, so issue it now. 11150 */ 11151 if (this_io == NULL) { 11152 this_io = l2arc_log_blk_fetch(dev->l2ad_vdev, this_lbp, 11153 this_lb); 11154 } 11155 11156 /* 11157 * Peek to see if we can start issuing the next IO immediately. 11158 */ 11159 if (l2arc_log_blkptr_valid(dev, next_lbp)) { 11160 /* 11161 * Start issuing IO for the next log block early - this 11162 * should help keep the L2ARC device busy while we 11163 * decompress and restore this log block. 11164 */ 11165 *next_io = l2arc_log_blk_fetch(dev->l2ad_vdev, next_lbp, 11166 next_lb); 11167 } 11168 11169 /* Wait for the IO to read this log block to complete */ 11170 if ((err = zio_wait(this_io)) != 0) { 11171 ARCSTAT_BUMP(arcstat_l2_rebuild_abort_io_errors); 11172 zfs_dbgmsg("L2ARC IO error (%d) while reading log block, " 11173 "offset: %llu, vdev guid: %llu", err, 11174 (u_longlong_t)this_lbp->lbp_daddr, 11175 (u_longlong_t)dev->l2ad_vdev->vdev_guid); 11176 goto cleanup; 11177 } 11178 11179 /* 11180 * Make sure the buffer checks out. 11181 * L2BLK_GET_PSIZE returns aligned size for log blocks. 11182 */ 11183 asize = L2BLK_GET_PSIZE((this_lbp)->lbp_prop); 11184 fletcher_4_native(this_lb, asize, NULL, &cksum); 11185 if (!ZIO_CHECKSUM_EQUAL(cksum, this_lbp->lbp_cksum)) { 11186 ARCSTAT_BUMP(arcstat_l2_rebuild_abort_cksum_lb_errors); 11187 zfs_dbgmsg("L2ARC log block cksum failed, offset: %llu, " 11188 "vdev guid: %llu, l2ad_hand: %llu, l2ad_evict: %llu", 11189 (u_longlong_t)this_lbp->lbp_daddr, 11190 (u_longlong_t)dev->l2ad_vdev->vdev_guid, 11191 (u_longlong_t)dev->l2ad_hand, 11192 (u_longlong_t)dev->l2ad_evict); 11193 err = SET_ERROR(ECKSUM); 11194 goto cleanup; 11195 } 11196 11197 /* Now we can take our time decoding this buffer */ 11198 switch (L2BLK_GET_COMPRESS((this_lbp)->lbp_prop)) { 11199 case ZIO_COMPRESS_OFF: 11200 break; 11201 case ZIO_COMPRESS_LZ4: { 11202 abd_t *abd = abd_alloc_linear(asize, B_TRUE); 11203 abd_copy_from_buf_off(abd, this_lb, 0, asize); 11204 abd_t dabd; 11205 abd_get_from_buf_struct(&dabd, this_lb, sizeof (*this_lb)); 11206 err = zio_decompress_data( 11207 L2BLK_GET_COMPRESS((this_lbp)->lbp_prop), 11208 abd, &dabd, asize, sizeof (*this_lb), NULL); 11209 abd_free(&dabd); 11210 abd_free(abd); 11211 if (err != 0) { 11212 err = SET_ERROR(EINVAL); 11213 goto cleanup; 11214 } 11215 break; 11216 } 11217 default: 11218 err = SET_ERROR(EINVAL); 11219 goto cleanup; 11220 } 11221 if (this_lb->lb_magic == BSWAP_64(L2ARC_LOG_BLK_MAGIC)) 11222 byteswap_uint64_array(this_lb, sizeof (*this_lb)); 11223 if (this_lb->lb_magic != L2ARC_LOG_BLK_MAGIC) { 11224 err = SET_ERROR(EINVAL); 11225 goto cleanup; 11226 } 11227 cleanup: 11228 /* Abort an in-flight fetch I/O in case of error */ 11229 if (err != 0 && *next_io != NULL) { 11230 l2arc_log_blk_fetch_abort(*next_io); 11231 *next_io = NULL; 11232 } 11233 return (err); 11234 } 11235 11236 /* 11237 * Restores the payload of a log block to ARC. This creates empty ARC hdr 11238 * entries which only contain an l2arc hdr, essentially restoring the 11239 * buffers to their L2ARC evicted state. This function also updates space 11240 * usage on the L2ARC vdev to make sure it tracks restored buffers. 11241 */ 11242 static void 11243 l2arc_log_blk_restore(l2arc_dev_t *dev, const l2arc_log_blk_phys_t *lb, 11244 uint64_t lb_asize) 11245 { 11246 uint64_t size = 0, asize = 0; 11247 uint64_t log_entries = dev->l2ad_log_entries; 11248 11249 /* 11250 * Usually arc_adapt() is called only for data, not headers, but 11251 * since we may allocate significant amount of memory here, let ARC 11252 * grow its arc_c. 11253 */ 11254 arc_adapt(log_entries * HDR_L2ONLY_SIZE); 11255 11256 for (int i = log_entries - 1; i >= 0; i--) { 11257 /* 11258 * Restore goes in the reverse temporal direction to preserve 11259 * correct temporal ordering of buffers in the l2ad_buflist. 11260 * l2arc_hdr_restore also does a list_insert_tail instead of 11261 * list_insert_head on the l2ad_buflist: 11262 * 11263 * LIST l2ad_buflist LIST 11264 * HEAD <------ (time) ------ TAIL 11265 * direction +-----+-----+-----+-----+-----+ direction 11266 * of l2arc <== | buf | buf | buf | buf | buf | ===> of rebuild 11267 * fill +-----+-----+-----+-----+-----+ 11268 * ^ ^ 11269 * | | 11270 * | | 11271 * l2arc_feed_thread l2arc_rebuild 11272 * will place new bufs here restores bufs here 11273 * 11274 * During l2arc_rebuild() the device is not used by 11275 * l2arc_feed_thread() as dev->l2ad_rebuild is set to true. 11276 */ 11277 size += L2BLK_GET_LSIZE((&lb->lb_entries[i])->le_prop); 11278 asize += vdev_psize_to_asize(dev->l2ad_vdev, 11279 L2BLK_GET_PSIZE((&lb->lb_entries[i])->le_prop)); 11280 l2arc_hdr_restore(&lb->lb_entries[i], dev); 11281 } 11282 11283 /* 11284 * Record rebuild stats: 11285 * size Logical size of restored buffers in the L2ARC 11286 * asize Aligned size of restored buffers in the L2ARC 11287 */ 11288 ARCSTAT_INCR(arcstat_l2_rebuild_size, size); 11289 ARCSTAT_INCR(arcstat_l2_rebuild_asize, asize); 11290 ARCSTAT_INCR(arcstat_l2_rebuild_bufs, log_entries); 11291 ARCSTAT_F_AVG(arcstat_l2_log_blk_avg_asize, lb_asize); 11292 ARCSTAT_F_AVG(arcstat_l2_data_to_meta_ratio, asize / lb_asize); 11293 ARCSTAT_BUMP(arcstat_l2_rebuild_log_blks); 11294 } 11295 11296 /* 11297 * Restores a single ARC buf hdr from a log entry. The ARC buffer is put 11298 * into a state indicating that it has been evicted to L2ARC. 11299 */ 11300 static void 11301 l2arc_hdr_restore(const l2arc_log_ent_phys_t *le, l2arc_dev_t *dev) 11302 { 11303 arc_buf_hdr_t *hdr, *exists; 11304 kmutex_t *hash_lock; 11305 arc_buf_contents_t type = L2BLK_GET_TYPE((le)->le_prop); 11306 uint64_t asize = vdev_psize_to_asize(dev->l2ad_vdev, 11307 L2BLK_GET_PSIZE((le)->le_prop)); 11308 11309 /* 11310 * Do all the allocation before grabbing any locks, this lets us 11311 * sleep if memory is full and we don't have to deal with failed 11312 * allocations. 11313 */ 11314 hdr = arc_buf_alloc_l2only(L2BLK_GET_LSIZE((le)->le_prop), type, 11315 dev, le->le_dva, le->le_daddr, 11316 L2BLK_GET_PSIZE((le)->le_prop), asize, le->le_birth, 11317 L2BLK_GET_COMPRESS((le)->le_prop), le->le_complevel, 11318 L2BLK_GET_PROTECTED((le)->le_prop), 11319 L2BLK_GET_PREFETCH((le)->le_prop), 11320 L2BLK_GET_STATE((le)->le_prop)); 11321 11322 /* 11323 * vdev_space_update() has to be called before arc_hdr_destroy() to 11324 * avoid underflow since the latter also calls vdev_space_update(). 11325 */ 11326 l2arc_hdr_arcstats_increment(hdr); 11327 vdev_space_update(dev->l2ad_vdev, asize, 0, 0); 11328 11329 mutex_enter(&dev->l2ad_mtx); 11330 list_insert_tail(&dev->l2ad_buflist, hdr); 11331 (void) zfs_refcount_add_many(&dev->l2ad_alloc, arc_hdr_size(hdr), hdr); 11332 mutex_exit(&dev->l2ad_mtx); 11333 11334 exists = buf_hash_insert(hdr, &hash_lock); 11335 if (exists) { 11336 /* Buffer was already cached, no need to restore it. */ 11337 arc_hdr_destroy(hdr); 11338 /* 11339 * If the buffer is already cached, check whether it has 11340 * L2ARC metadata. If not, enter them and update the flag. 11341 * This is important is case of onlining a cache device, since 11342 * we previously evicted all L2ARC metadata from ARC. 11343 */ 11344 if (!HDR_HAS_L2HDR(exists)) { 11345 arc_hdr_set_flags(exists, ARC_FLAG_HAS_L2HDR); 11346 exists->b_l2hdr.b_dev = dev; 11347 exists->b_l2hdr.b_daddr = le->le_daddr; 11348 exists->b_l2hdr.b_arcs_state = 11349 L2BLK_GET_STATE((le)->le_prop); 11350 /* l2arc_hdr_arcstats_update() expects a valid asize */ 11351 HDR_SET_L2SIZE(exists, asize); 11352 mutex_enter(&dev->l2ad_mtx); 11353 list_insert_tail(&dev->l2ad_buflist, exists); 11354 (void) zfs_refcount_add_many(&dev->l2ad_alloc, 11355 arc_hdr_size(exists), exists); 11356 mutex_exit(&dev->l2ad_mtx); 11357 l2arc_hdr_arcstats_increment(exists); 11358 vdev_space_update(dev->l2ad_vdev, asize, 0, 0); 11359 } 11360 ARCSTAT_BUMP(arcstat_l2_rebuild_bufs_precached); 11361 } 11362 11363 mutex_exit(hash_lock); 11364 } 11365 11366 /* 11367 * Starts an asynchronous read IO to read a log block. This is used in log 11368 * block reconstruction to start reading the next block before we are done 11369 * decoding and reconstructing the current block, to keep the l2arc device 11370 * nice and hot with read IO to process. 11371 * The returned zio will contain a newly allocated memory buffers for the IO 11372 * data which should then be freed by the caller once the zio is no longer 11373 * needed (i.e. due to it having completed). If you wish to abort this 11374 * zio, you should do so using l2arc_log_blk_fetch_abort, which takes 11375 * care of disposing of the allocated buffers correctly. 11376 */ 11377 static zio_t * 11378 l2arc_log_blk_fetch(vdev_t *vd, const l2arc_log_blkptr_t *lbp, 11379 l2arc_log_blk_phys_t *lb) 11380 { 11381 uint32_t asize; 11382 zio_t *pio; 11383 l2arc_read_callback_t *cb; 11384 11385 /* L2BLK_GET_PSIZE returns aligned size for log blocks */ 11386 asize = L2BLK_GET_PSIZE((lbp)->lbp_prop); 11387 ASSERT(asize <= sizeof (l2arc_log_blk_phys_t)); 11388 11389 cb = kmem_zalloc(sizeof (l2arc_read_callback_t), KM_SLEEP); 11390 cb->l2rcb_abd = abd_get_from_buf(lb, asize); 11391 pio = zio_root(vd->vdev_spa, l2arc_blk_fetch_done, cb, 11392 ZIO_FLAG_CANFAIL | ZIO_FLAG_DONT_PROPAGATE | ZIO_FLAG_DONT_RETRY); 11393 (void) zio_nowait(zio_read_phys(pio, vd, lbp->lbp_daddr, asize, 11394 cb->l2rcb_abd, ZIO_CHECKSUM_OFF, NULL, NULL, 11395 ZIO_PRIORITY_ASYNC_READ, ZIO_FLAG_CANFAIL | 11396 ZIO_FLAG_DONT_PROPAGATE | ZIO_FLAG_DONT_RETRY, B_FALSE)); 11397 11398 return (pio); 11399 } 11400 11401 /* 11402 * Aborts a zio returned from l2arc_log_blk_fetch and frees the data 11403 * buffers allocated for it. 11404 */ 11405 static void 11406 l2arc_log_blk_fetch_abort(zio_t *zio) 11407 { 11408 (void) zio_wait(zio); 11409 } 11410 11411 /* 11412 * Creates a zio to update the device header on an l2arc device. 11413 */ 11414 void 11415 l2arc_dev_hdr_update(l2arc_dev_t *dev) 11416 { 11417 l2arc_dev_hdr_phys_t *l2dhdr = dev->l2ad_dev_hdr; 11418 const uint64_t l2dhdr_asize = dev->l2ad_dev_hdr_asize; 11419 abd_t *abd; 11420 int err; 11421 11422 VERIFY(spa_config_held(dev->l2ad_spa, SCL_STATE_ALL, RW_READER)); 11423 11424 l2dhdr->dh_magic = L2ARC_DEV_HDR_MAGIC; 11425 l2dhdr->dh_version = L2ARC_PERSISTENT_VERSION; 11426 l2dhdr->dh_spa_guid = spa_guid(dev->l2ad_vdev->vdev_spa); 11427 l2dhdr->dh_vdev_guid = dev->l2ad_vdev->vdev_guid; 11428 l2dhdr->dh_log_entries = dev->l2ad_log_entries; 11429 l2dhdr->dh_evict = dev->l2ad_evict; 11430 l2dhdr->dh_start = dev->l2ad_start; 11431 l2dhdr->dh_end = dev->l2ad_end; 11432 l2dhdr->dh_lb_asize = zfs_refcount_count(&dev->l2ad_lb_asize); 11433 l2dhdr->dh_lb_count = zfs_refcount_count(&dev->l2ad_lb_count); 11434 l2dhdr->dh_flags = 0; 11435 l2dhdr->dh_trim_action_time = dev->l2ad_vdev->vdev_trim_action_time; 11436 l2dhdr->dh_trim_state = dev->l2ad_vdev->vdev_trim_state; 11437 if (dev->l2ad_first) 11438 l2dhdr->dh_flags |= L2ARC_DEV_HDR_EVICT_FIRST; 11439 11440 abd = abd_get_from_buf(l2dhdr, l2dhdr_asize); 11441 11442 err = zio_wait(zio_write_phys(NULL, dev->l2ad_vdev, 11443 VDEV_LABEL_START_SIZE, l2dhdr_asize, abd, ZIO_CHECKSUM_LABEL, NULL, 11444 NULL, ZIO_PRIORITY_ASYNC_WRITE, ZIO_FLAG_CANFAIL, B_FALSE)); 11445 11446 abd_free(abd); 11447 11448 if (err != 0) { 11449 zfs_dbgmsg("L2ARC IO error (%d) while writing device header, " 11450 "vdev guid: %llu", err, 11451 (u_longlong_t)dev->l2ad_vdev->vdev_guid); 11452 } 11453 } 11454 11455 /* 11456 * Commits a log block to the L2ARC device. This routine is invoked from 11457 * l2arc_write_buffers when the log block fills up. 11458 * This function allocates some memory to temporarily hold the serialized 11459 * buffer to be written. This is then released in l2arc_write_done. 11460 */ 11461 static uint64_t 11462 l2arc_log_blk_commit(l2arc_dev_t *dev, zio_t *pio, l2arc_write_callback_t *cb) 11463 { 11464 l2arc_log_blk_phys_t *lb = &dev->l2ad_log_blk; 11465 l2arc_dev_hdr_phys_t *l2dhdr = dev->l2ad_dev_hdr; 11466 uint64_t psize, asize; 11467 zio_t *wzio; 11468 l2arc_lb_abd_buf_t *abd_buf; 11469 abd_t *abd = NULL; 11470 l2arc_lb_ptr_buf_t *lb_ptr_buf; 11471 11472 VERIFY3S(dev->l2ad_log_ent_idx, ==, dev->l2ad_log_entries); 11473 11474 abd_buf = zio_buf_alloc(sizeof (*abd_buf)); 11475 abd_buf->abd = abd_get_from_buf(lb, sizeof (*lb)); 11476 lb_ptr_buf = kmem_zalloc(sizeof (l2arc_lb_ptr_buf_t), KM_SLEEP); 11477 lb_ptr_buf->lb_ptr = kmem_zalloc(sizeof (l2arc_log_blkptr_t), KM_SLEEP); 11478 11479 /* link the buffer into the block chain */ 11480 lb->lb_prev_lbp = l2dhdr->dh_start_lbps[1]; 11481 lb->lb_magic = L2ARC_LOG_BLK_MAGIC; 11482 11483 /* 11484 * l2arc_log_blk_commit() may be called multiple times during a single 11485 * l2arc_write_buffers() call. Save the allocated abd buffers in a list 11486 * so we can free them in l2arc_write_done() later on. 11487 */ 11488 list_insert_tail(&cb->l2wcb_abd_list, abd_buf); 11489 11490 /* try to compress the buffer, at least one sector to save */ 11491 psize = zio_compress_data(ZIO_COMPRESS_LZ4, 11492 abd_buf->abd, &abd, sizeof (*lb), 11493 zio_get_compression_max_size(ZIO_COMPRESS_LZ4, 11494 dev->l2ad_vdev->vdev_ashift, 11495 dev->l2ad_vdev->vdev_ashift, sizeof (*lb)), 0); 11496 11497 /* a log block is never entirely zero */ 11498 ASSERT(psize != 0); 11499 asize = vdev_psize_to_asize(dev->l2ad_vdev, psize); 11500 ASSERT(asize <= sizeof (*lb)); 11501 11502 /* 11503 * Update the start log block pointer in the device header to point 11504 * to the log block we're about to write. 11505 */ 11506 l2dhdr->dh_start_lbps[1] = l2dhdr->dh_start_lbps[0]; 11507 l2dhdr->dh_start_lbps[0].lbp_daddr = dev->l2ad_hand; 11508 l2dhdr->dh_start_lbps[0].lbp_payload_asize = 11509 dev->l2ad_log_blk_payload_asize; 11510 l2dhdr->dh_start_lbps[0].lbp_payload_start = 11511 dev->l2ad_log_blk_payload_start; 11512 L2BLK_SET_LSIZE( 11513 (&l2dhdr->dh_start_lbps[0])->lbp_prop, sizeof (*lb)); 11514 L2BLK_SET_PSIZE( 11515 (&l2dhdr->dh_start_lbps[0])->lbp_prop, asize); 11516 L2BLK_SET_CHECKSUM( 11517 (&l2dhdr->dh_start_lbps[0])->lbp_prop, 11518 ZIO_CHECKSUM_FLETCHER_4); 11519 if (asize < sizeof (*lb)) { 11520 /* compression succeeded */ 11521 abd_zero_off(abd, psize, asize - psize); 11522 L2BLK_SET_COMPRESS( 11523 (&l2dhdr->dh_start_lbps[0])->lbp_prop, 11524 ZIO_COMPRESS_LZ4); 11525 } else { 11526 /* compression failed */ 11527 abd_copy_from_buf_off(abd, lb, 0, sizeof (*lb)); 11528 L2BLK_SET_COMPRESS( 11529 (&l2dhdr->dh_start_lbps[0])->lbp_prop, 11530 ZIO_COMPRESS_OFF); 11531 } 11532 11533 /* checksum what we're about to write */ 11534 abd_fletcher_4_native(abd, asize, NULL, 11535 &l2dhdr->dh_start_lbps[0].lbp_cksum); 11536 11537 abd_free(abd_buf->abd); 11538 11539 /* perform the write itself */ 11540 abd_buf->abd = abd; 11541 wzio = zio_write_phys(pio, dev->l2ad_vdev, dev->l2ad_hand, 11542 asize, abd_buf->abd, ZIO_CHECKSUM_OFF, NULL, NULL, 11543 ZIO_PRIORITY_ASYNC_WRITE, ZIO_FLAG_CANFAIL, B_FALSE); 11544 DTRACE_PROBE2(l2arc__write, vdev_t *, dev->l2ad_vdev, zio_t *, wzio); 11545 (void) zio_nowait(wzio); 11546 11547 dev->l2ad_hand += asize; 11548 vdev_space_update(dev->l2ad_vdev, asize, 0, 0); 11549 11550 /* 11551 * Include the committed log block's pointer in the list of pointers 11552 * to log blocks present in the L2ARC device. 11553 */ 11554 memcpy(lb_ptr_buf->lb_ptr, &l2dhdr->dh_start_lbps[0], 11555 sizeof (l2arc_log_blkptr_t)); 11556 mutex_enter(&dev->l2ad_mtx); 11557 list_insert_head(&dev->l2ad_lbptr_list, lb_ptr_buf); 11558 ARCSTAT_INCR(arcstat_l2_log_blk_asize, asize); 11559 ARCSTAT_BUMP(arcstat_l2_log_blk_count); 11560 zfs_refcount_add_many(&dev->l2ad_lb_asize, asize, lb_ptr_buf); 11561 zfs_refcount_add(&dev->l2ad_lb_count, lb_ptr_buf); 11562 mutex_exit(&dev->l2ad_mtx); 11563 11564 /* bump the kstats */ 11565 ARCSTAT_INCR(arcstat_l2_write_bytes, asize); 11566 ARCSTAT_BUMP(arcstat_l2_log_blk_writes); 11567 ARCSTAT_F_AVG(arcstat_l2_log_blk_avg_asize, asize); 11568 ARCSTAT_F_AVG(arcstat_l2_data_to_meta_ratio, 11569 dev->l2ad_log_blk_payload_asize / asize); 11570 11571 /* start a new log block */ 11572 dev->l2ad_log_ent_idx = 0; 11573 dev->l2ad_log_blk_payload_asize = 0; 11574 dev->l2ad_log_blk_payload_start = 0; 11575 11576 return (asize); 11577 } 11578 11579 /* 11580 * Validates an L2ARC log block address to make sure that it can be read 11581 * from the provided L2ARC device. 11582 */ 11583 boolean_t 11584 l2arc_log_blkptr_valid(l2arc_dev_t *dev, const l2arc_log_blkptr_t *lbp) 11585 { 11586 /* L2BLK_GET_PSIZE returns aligned size for log blocks */ 11587 uint64_t asize = L2BLK_GET_PSIZE((lbp)->lbp_prop); 11588 uint64_t end = lbp->lbp_daddr + asize - 1; 11589 uint64_t start = lbp->lbp_payload_start; 11590 boolean_t evicted = B_FALSE; 11591 11592 /* 11593 * A log block is valid if all of the following conditions are true: 11594 * - it fits entirely (including its payload) between l2ad_start and 11595 * l2ad_end 11596 * - it has a valid size 11597 * - neither the log block itself nor part of its payload was evicted 11598 * by l2arc_evict(): 11599 * 11600 * l2ad_hand l2ad_evict 11601 * | | lbp_daddr 11602 * | start | | end 11603 * | | | | | 11604 * V V V V V 11605 * l2ad_start ============================================ l2ad_end 11606 * --------------------------|||| 11607 * ^ ^ 11608 * | log block 11609 * payload 11610 */ 11611 11612 evicted = 11613 l2arc_range_check_overlap(start, end, dev->l2ad_hand) || 11614 l2arc_range_check_overlap(start, end, dev->l2ad_evict) || 11615 l2arc_range_check_overlap(dev->l2ad_hand, dev->l2ad_evict, start) || 11616 l2arc_range_check_overlap(dev->l2ad_hand, dev->l2ad_evict, end); 11617 11618 if (asize == 0 || asize > sizeof (l2arc_log_blk_phys_t) || 11619 start < dev->l2ad_start || end > dev->l2ad_end) 11620 return (B_FALSE); 11621 11622 /* On a first sweep only the region below the write hand was written. */ 11623 if (dev->l2ad_first) 11624 return (end < dev->l2ad_hand); 11625 11626 return (!evicted); 11627 } 11628 11629 /* 11630 * Inserts ARC buffer header `hdr' into the current L2ARC log block on 11631 * the device. The buffer being inserted must be present in L2ARC. 11632 * Returns B_TRUE if the L2ARC log block is full and needs to be committed 11633 * to L2ARC, or B_FALSE if it still has room for more ARC buffers. 11634 */ 11635 static boolean_t 11636 l2arc_log_blk_insert(l2arc_dev_t *dev, const arc_buf_hdr_t *hdr) 11637 { 11638 l2arc_log_blk_phys_t *lb = &dev->l2ad_log_blk; 11639 l2arc_log_ent_phys_t *le; 11640 11641 if (dev->l2ad_log_entries == 0) 11642 return (B_FALSE); 11643 11644 int index = dev->l2ad_log_ent_idx++; 11645 11646 ASSERT3S(index, <, dev->l2ad_log_entries); 11647 ASSERT(HDR_HAS_L2HDR(hdr)); 11648 11649 le = &lb->lb_entries[index]; 11650 memset(le, 0, sizeof (*le)); 11651 le->le_dva = hdr->b_dva; 11652 le->le_birth = hdr->b_birth; 11653 le->le_daddr = hdr->b_l2hdr.b_daddr; 11654 if (index == 0) 11655 dev->l2ad_log_blk_payload_start = le->le_daddr; 11656 L2BLK_SET_LSIZE((le)->le_prop, HDR_GET_LSIZE(hdr)); 11657 L2BLK_SET_PSIZE((le)->le_prop, HDR_GET_PSIZE(hdr)); 11658 L2BLK_SET_COMPRESS((le)->le_prop, HDR_GET_COMPRESS(hdr)); 11659 le->le_complevel = hdr->b_complevel; 11660 L2BLK_SET_TYPE((le)->le_prop, hdr->b_type); 11661 L2BLK_SET_PROTECTED((le)->le_prop, !!(HDR_PROTECTED(hdr))); 11662 L2BLK_SET_PREFETCH((le)->le_prop, !!(HDR_PREFETCH(hdr))); 11663 L2BLK_SET_STATE((le)->le_prop, hdr->b_l2hdr.b_arcs_state); 11664 11665 dev->l2ad_log_blk_payload_asize += vdev_psize_to_asize(dev->l2ad_vdev, 11666 HDR_GET_PSIZE(hdr)); 11667 11668 return (dev->l2ad_log_ent_idx == dev->l2ad_log_entries); 11669 } 11670 11671 /* 11672 * Checks whether a given L2ARC device address sits in a time-sequential 11673 * range. The trick here is that the L2ARC is a rotary buffer, so we can't 11674 * just do a range comparison, we need to handle the situation in which the 11675 * range wraps around the end of the L2ARC device. Arguments: 11676 * bottom -- Lower end of the range to check (written to earlier). 11677 * top -- Upper end of the range to check (written to later). 11678 * check -- The address for which we want to determine if it sits in 11679 * between the top and bottom. 11680 * 11681 * The 3-way conditional below represents the following cases: 11682 * 11683 * bottom < top : Sequentially ordered case: 11684 * <check>--------+-------------------+ 11685 * | (overlap here?) | 11686 * L2ARC dev V V 11687 * |---------------<bottom>============<top>--------------| 11688 * 11689 * bottom > top: Looped-around case: 11690 * <check>--------+------------------+ 11691 * | (overlap here?) | 11692 * L2ARC dev V V 11693 * |===============<top>---------------<bottom>===========| 11694 * ^ ^ 11695 * | (or here?) | 11696 * +---------------+---------<check> 11697 * 11698 * top == bottom : Just a single address comparison. 11699 */ 11700 boolean_t 11701 l2arc_range_check_overlap(uint64_t bottom, uint64_t top, uint64_t check) 11702 { 11703 if (bottom < top) 11704 return (bottom <= check && check <= top); 11705 else if (bottom > top) 11706 return (check <= top || bottom <= check); 11707 else 11708 return (check == top); 11709 } 11710 11711 EXPORT_SYMBOL(arc_buf_size); 11712 EXPORT_SYMBOL(arc_write); 11713 EXPORT_SYMBOL(arc_read); 11714 EXPORT_SYMBOL(arc_buf_info); 11715 EXPORT_SYMBOL(arc_getbuf_func); 11716 EXPORT_SYMBOL(arc_buf_destroy); 11717 EXPORT_SYMBOL(arc_add_prune_callback); 11718 EXPORT_SYMBOL(arc_remove_prune_callback); 11719 11720 ZFS_MODULE_PARAM_CALL(zfs_arc, zfs_arc_, min, param_set_arc_min, 11721 spl_param_get_u64, ZMOD_RW, "Minimum ARC size in bytes"); 11722 11723 ZFS_MODULE_PARAM_CALL(zfs_arc, zfs_arc_, max, param_set_arc_max, 11724 spl_param_get_u64, ZMOD_RW, "Maximum ARC size in bytes"); 11725 11726 ZFS_MODULE_PARAM(zfs_arc, zfs_arc_, meta_balance, UINT, ZMOD_RW, 11727 "Balance between metadata and data on ghost hits."); 11728 11729 ZFS_MODULE_PARAM_CALL(zfs_arc, zfs_arc_, grow_retry, param_set_arc_int, 11730 param_get_uint, ZMOD_RW, "Seconds before growing ARC size"); 11731 11732 ZFS_MODULE_PARAM_CALL(zfs_arc, zfs_arc_, shrink_shift, param_set_arc_int, 11733 param_get_uint, ZMOD_RW, "log2(fraction of ARC to reclaim)"); 11734 11735 ZFS_MODULE_PARAM_CALL(zfs_arc, zfs_arc_, no_grow_shift, 11736 param_set_arc_no_grow_shift, param_get_uint, ZMOD_RW, 11737 "log2(fraction of ARC which must be free to allow growing)"); 11738 11739 #ifdef _KERNEL 11740 ZFS_MODULE_PARAM(zfs_arc, zfs_arc_, pc_percent, UINT, ZMOD_RW, 11741 "Percent of pagecache to reclaim ARC to"); 11742 #endif 11743 11744 ZFS_MODULE_PARAM(zfs_arc, zfs_arc_, average_blocksize, UINT, ZMOD_RD, 11745 "Target average block size"); 11746 11747 ZFS_MODULE_PARAM(zfs, zfs_, compressed_arc_enabled, INT, ZMOD_RW, 11748 "Disable compressed ARC buffers"); 11749 11750 ZFS_MODULE_PARAM_CALL(zfs_arc, zfs_arc_, min_prefetch_ms, param_set_arc_int, 11751 param_get_uint, ZMOD_RW, "Min life of prefetch block in ms"); 11752 11753 ZFS_MODULE_PARAM_CALL(zfs_arc, zfs_arc_, min_prescient_prefetch_ms, 11754 param_set_arc_int, param_get_uint, ZMOD_RW, 11755 "Min life of prescient prefetched block in ms"); 11756 11757 ZFS_MODULE_PARAM(zfs_l2arc, l2arc_, write_max, U64, ZMOD_RW, 11758 "Max write bytes per interval"); 11759 11760 ZFS_MODULE_PARAM_CALL(zfs_l2arc, l2arc_, dwpd_limit, param_set_l2arc_dwpd_limit, 11761 spl_param_get_u64, ZMOD_RW, 11762 "L2ARC device endurance limit as percentage (100 = 1.0 DWPD)"); 11763 11764 ZFS_MODULE_PARAM(zfs_l2arc, l2arc_, headroom, U64, ZMOD_RW, 11765 "Number of max device writes to precache"); 11766 11767 ZFS_MODULE_PARAM(zfs_l2arc, l2arc_, headroom_boost, U64, ZMOD_RW, 11768 "Compressed l2arc_headroom multiplier"); 11769 11770 ZFS_MODULE_PARAM(zfs_l2arc, l2arc_, trim_ahead, U64, ZMOD_RW, 11771 "TRIM ahead L2ARC write size multiplier"); 11772 11773 ZFS_MODULE_PARAM(zfs_l2arc, l2arc_, feed_secs, U64, ZMOD_RW, 11774 "Seconds between L2ARC writing"); 11775 11776 ZFS_MODULE_PARAM(zfs_l2arc, l2arc_, feed_min_ms, U64, ZMOD_RW, 11777 "Min feed interval in milliseconds"); 11778 11779 ZFS_MODULE_PARAM(zfs_l2arc, l2arc_, noprefetch, INT, ZMOD_RW, 11780 "Skip caching prefetched buffers"); 11781 11782 ZFS_MODULE_PARAM(zfs_l2arc, l2arc_, feed_again, INT, ZMOD_RW, 11783 "Turbo L2ARC warmup"); 11784 11785 ZFS_MODULE_PARAM(zfs_l2arc, l2arc_, norw, INT, ZMOD_RW, 11786 "No reads during writes"); 11787 11788 ZFS_MODULE_PARAM(zfs_l2arc, l2arc_, meta_percent, UINT, ZMOD_RW, 11789 "Percent of ARC size allowed for L2ARC-only headers"); 11790 11791 ZFS_MODULE_PARAM(zfs_l2arc, l2arc_, rebuild_enabled, INT, ZMOD_RW, 11792 "Rebuild the L2ARC when importing a pool"); 11793 11794 ZFS_MODULE_PARAM(zfs_l2arc, l2arc_, rebuild_blocks_min_l2size, U64, ZMOD_RW, 11795 "Min size in bytes to write rebuild log blocks in L2ARC"); 11796 11797 ZFS_MODULE_PARAM(zfs_l2arc, l2arc_, mfuonly, INT, ZMOD_RW, 11798 "Cache only MFU data from ARC into L2ARC"); 11799 11800 ZFS_MODULE_PARAM(zfs_l2arc, l2arc_, exclude_special, INT, ZMOD_RW, 11801 "Exclude dbufs on special vdevs from being cached to L2ARC if set."); 11802 11803 ZFS_MODULE_PARAM(zfs_l2arc, l2arc_, meta_cycles, U64, ZMOD_RW, 11804 "Consecutive metadata cycles before skipping to let data run"); 11805 11806 ZFS_MODULE_PARAM(zfs_l2arc, l2arc_, ext_headroom_pct, U64, ZMOD_RW, 11807 "Depth cap as percentage of state size for marker reset"); 11808 11809 ZFS_MODULE_PARAM_CALL(zfs_arc, zfs_arc_, lotsfree_percent, param_set_arc_int, 11810 param_get_uint, ZMOD_RW, "System free memory I/O throttle in bytes"); 11811 11812 ZFS_MODULE_PARAM_CALL(zfs_arc, zfs_arc_, sys_free, param_set_arc_u64, 11813 spl_param_get_u64, ZMOD_RW, "System free memory target size in bytes"); 11814 11815 ZFS_MODULE_PARAM_CALL(zfs_arc, zfs_arc_, dnode_limit, param_set_arc_u64, 11816 spl_param_get_u64, ZMOD_RW, "Minimum bytes of dnodes in ARC"); 11817 11818 ZFS_MODULE_PARAM_CALL(zfs_arc, zfs_arc_, dnode_limit_percent, 11819 param_set_arc_int, param_get_uint, ZMOD_RW, 11820 "Percent of ARC meta buffers for dnodes"); 11821 11822 ZFS_MODULE_PARAM(zfs_arc, zfs_arc_, dnode_reduce_percent, UINT, ZMOD_RW, 11823 "Percentage of excess dnodes to try to unpin"); 11824 11825 ZFS_MODULE_PARAM(zfs_arc, zfs_arc_, eviction_pct, UINT, ZMOD_RW, 11826 "When full, ARC allocation waits for eviction of this % of alloc size"); 11827 11828 ZFS_MODULE_PARAM(zfs_arc, zfs_arc_, evict_batch_limit, UINT, ZMOD_RW, 11829 "The number of headers to evict per sublist before moving to the next"); 11830 11831 ZFS_MODULE_PARAM(zfs_arc, zfs_arc_, evict_batches_limit, UINT, ZMOD_RW, 11832 "The number of batches to run per parallel eviction task"); 11833 11834 ZFS_MODULE_PARAM(zfs_arc, zfs_arc_, prune_task_threads, INT, ZMOD_RW, 11835 "Number of arc_prune threads"); 11836 11837 ZFS_MODULE_PARAM(zfs_arc, zfs_arc_, evict_threads, UINT, ZMOD_RD, 11838 "Number of threads to use for ARC eviction."); 11839