1789Sahrens /* 2789Sahrens * CDDL HEADER START 3789Sahrens * 4789Sahrens * The contents of this file are subject to the terms of the 51484Sek110237 * Common Development and Distribution License (the "License"). 61484Sek110237 * You may not use this file except in compliance with the License. 7789Sahrens * 8789Sahrens * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE 9789Sahrens * or http://www.opensolaris.org/os/licensing. 10789Sahrens * See the License for the specific language governing permissions 11789Sahrens * and limitations under the License. 12789Sahrens * 13789Sahrens * When distributing Covered Code, include this CDDL HEADER in each 14789Sahrens * file and include the License file at usr/src/OPENSOLARIS.LICENSE. 15789Sahrens * If applicable, add the following below this CDDL HEADER, with the 16789Sahrens * fields enclosed by brackets "[]" replaced with your own identifying 17789Sahrens * information: Portions Copyright [yyyy] [name of copyright owner] 18789Sahrens * 19789Sahrens * CDDL HEADER END 20789Sahrens */ 21789Sahrens /* 221484Sek110237 * Copyright 2006 Sun Microsystems, Inc. All rights reserved. 23789Sahrens * Use is subject to license terms. 24789Sahrens */ 25789Sahrens 26789Sahrens #pragma ident "%Z%%M% %I% %E% SMI" 27789Sahrens 28789Sahrens /* 29789Sahrens * DVA-based Adjustable Relpacement Cache 30789Sahrens * 311544Seschrock * While much of the theory of operation used here is 321544Seschrock * based on the self-tuning, low overhead replacement cache 33789Sahrens * presented by Megiddo and Modha at FAST 2003, there are some 34789Sahrens * significant differences: 35789Sahrens * 36789Sahrens * 1. The Megiddo and Modha model assumes any page is evictable. 37789Sahrens * Pages in its cache cannot be "locked" into memory. This makes 38789Sahrens * the eviction algorithm simple: evict the last page in the list. 39789Sahrens * This also make the performance characteristics easy to reason 40789Sahrens * about. Our cache is not so simple. At any given moment, some 41789Sahrens * subset of the blocks in the cache are un-evictable because we 42789Sahrens * have handed out a reference to them. Blocks are only evictable 43789Sahrens * when there are no external references active. This makes 44789Sahrens * eviction far more problematic: we choose to evict the evictable 45789Sahrens * blocks that are the "lowest" in the list. 46789Sahrens * 47789Sahrens * There are times when it is not possible to evict the requested 48789Sahrens * space. In these circumstances we are unable to adjust the cache 49789Sahrens * size. To prevent the cache growing unbounded at these times we 50789Sahrens * implement a "cache throttle" that slowes the flow of new data 51789Sahrens * into the cache until we can make space avaiable. 52789Sahrens * 53789Sahrens * 2. The Megiddo and Modha model assumes a fixed cache size. 54789Sahrens * Pages are evicted when the cache is full and there is a cache 55789Sahrens * miss. Our model has a variable sized cache. It grows with 56789Sahrens * high use, but also tries to react to memory preasure from the 57789Sahrens * operating system: decreasing its size when system memory is 58789Sahrens * tight. 59789Sahrens * 60789Sahrens * 3. The Megiddo and Modha model assumes a fixed page size. All 61789Sahrens * elements of the cache are therefor exactly the same size. So 62789Sahrens * when adjusting the cache size following a cache miss, its simply 63789Sahrens * a matter of choosing a single page to evict. In our model, we 64789Sahrens * have variable sized cache blocks (rangeing from 512 bytes to 65789Sahrens * 128K bytes). We therefor choose a set of blocks to evict to make 66789Sahrens * space for a cache miss that approximates as closely as possible 67789Sahrens * the space used by the new block. 68789Sahrens * 69789Sahrens * See also: "ARC: A Self-Tuning, Low Overhead Replacement Cache" 70789Sahrens * by N. Megiddo & D. Modha, FAST 2003 71789Sahrens */ 72789Sahrens 73789Sahrens /* 74789Sahrens * The locking model: 75789Sahrens * 76789Sahrens * A new reference to a cache buffer can be obtained in two 77789Sahrens * ways: 1) via a hash table lookup using the DVA as a key, 78789Sahrens * or 2) via one of the ARC lists. The arc_read() inerface 79789Sahrens * uses method 1, while the internal arc algorithms for 80789Sahrens * adjusting the cache use method 2. We therefor provide two 81789Sahrens * types of locks: 1) the hash table lock array, and 2) the 82789Sahrens * arc list locks. 83789Sahrens * 84789Sahrens * Buffers do not have their own mutexs, rather they rely on the 85789Sahrens * hash table mutexs for the bulk of their protection (i.e. most 86789Sahrens * fields in the arc_buf_hdr_t are protected by these mutexs). 87789Sahrens * 88789Sahrens * buf_hash_find() returns the appropriate mutex (held) when it 89789Sahrens * locates the requested buffer in the hash table. It returns 90789Sahrens * NULL for the mutex if the buffer was not in the table. 91789Sahrens * 92789Sahrens * buf_hash_remove() expects the appropriate hash mutex to be 93789Sahrens * already held before it is invoked. 94789Sahrens * 95789Sahrens * Each arc state also has a mutex which is used to protect the 96789Sahrens * buffer list associated with the state. When attempting to 97789Sahrens * obtain a hash table lock while holding an arc list lock you 98789Sahrens * must use: mutex_tryenter() to avoid deadlock. Also note that 99789Sahrens * the "top" state mutex must be held before the "bot" state mutex. 100789Sahrens * 1011544Seschrock * Arc buffers may have an associated eviction callback function. 1021544Seschrock * This function will be invoked prior to removing the buffer (e.g. 1031544Seschrock * in arc_do_user_evicts()). Note however that the data associated 1041544Seschrock * with the buffer may be evicted prior to the callback. The callback 1051544Seschrock * must be made with *no locks held* (to prevent deadlock). Additionally, 1061544Seschrock * the users of callbacks must ensure that their private data is 1071544Seschrock * protected from simultaneous callbacks from arc_buf_evict() 1081544Seschrock * and arc_do_user_evicts(). 1091544Seschrock * 110789Sahrens * Note that the majority of the performance stats are manipulated 111789Sahrens * with atomic operations. 112789Sahrens */ 113789Sahrens 114789Sahrens #include <sys/spa.h> 115789Sahrens #include <sys/zio.h> 116789Sahrens #include <sys/zfs_context.h> 117789Sahrens #include <sys/arc.h> 118789Sahrens #include <sys/refcount.h> 119789Sahrens #ifdef _KERNEL 120789Sahrens #include <sys/vmsystm.h> 121789Sahrens #include <vm/anon.h> 122789Sahrens #include <sys/fs/swapnode.h> 1231484Sek110237 #include <sys/dnlc.h> 124789Sahrens #endif 125789Sahrens #include <sys/callb.h> 126789Sahrens 127789Sahrens static kmutex_t arc_reclaim_thr_lock; 128789Sahrens static kcondvar_t arc_reclaim_thr_cv; /* used to signal reclaim thr */ 129789Sahrens static uint8_t arc_thread_exit; 130789Sahrens 1311484Sek110237 #define ARC_REDUCE_DNLC_PERCENT 3 1321484Sek110237 uint_t arc_reduce_dnlc_percent = ARC_REDUCE_DNLC_PERCENT; 1331484Sek110237 134789Sahrens typedef enum arc_reclaim_strategy { 135789Sahrens ARC_RECLAIM_AGGR, /* Aggressive reclaim strategy */ 136789Sahrens ARC_RECLAIM_CONS /* Conservative reclaim strategy */ 137789Sahrens } arc_reclaim_strategy_t; 138789Sahrens 139789Sahrens /* number of seconds before growing cache again */ 140789Sahrens static int arc_grow_retry = 60; 141789Sahrens 142789Sahrens static kmutex_t arc_reclaim_lock; 143789Sahrens static int arc_dead; 144789Sahrens 145789Sahrens /* 146789Sahrens * Note that buffers can be on one of 5 states: 147789Sahrens * ARC_anon - anonymous (discussed below) 1481544Seschrock * ARC_mru - recently used, currently cached 1491544Seschrock * ARC_mru_ghost - recentely used, no longer in cache 1501544Seschrock * ARC_mfu - frequently used, currently cached 1511544Seschrock * ARC_mfu_ghost - frequently used, no longer in cache 152789Sahrens * When there are no active references to the buffer, they 153789Sahrens * are linked onto one of the lists in arc. These are the 154789Sahrens * only buffers that can be evicted or deleted. 155789Sahrens * 156789Sahrens * Anonymous buffers are buffers that are not associated with 157789Sahrens * a DVA. These are buffers that hold dirty block copies 158789Sahrens * before they are written to stable storage. By definition, 1591544Seschrock * they are "ref'd" and are considered part of arc_mru 160789Sahrens * that cannot be freed. Generally, they will aquire a DVA 1611544Seschrock * as they are written and migrate onto the arc_mru list. 162789Sahrens */ 163789Sahrens 164789Sahrens typedef struct arc_state { 165789Sahrens list_t list; /* linked list of evictable buffer in state */ 166789Sahrens uint64_t lsize; /* total size of buffers in the linked list */ 167789Sahrens uint64_t size; /* total size of all buffers in this state */ 168789Sahrens uint64_t hits; 169789Sahrens kmutex_t mtx; 170789Sahrens } arc_state_t; 171789Sahrens 172789Sahrens /* The 5 states: */ 173789Sahrens static arc_state_t ARC_anon; 1741544Seschrock static arc_state_t ARC_mru; 1751544Seschrock static arc_state_t ARC_mru_ghost; 1761544Seschrock static arc_state_t ARC_mfu; 1771544Seschrock static arc_state_t ARC_mfu_ghost; 178789Sahrens 179789Sahrens static struct arc { 180789Sahrens arc_state_t *anon; 1811544Seschrock arc_state_t *mru; 1821544Seschrock arc_state_t *mru_ghost; 1831544Seschrock arc_state_t *mfu; 1841544Seschrock arc_state_t *mfu_ghost; 185789Sahrens uint64_t size; /* Actual total arc size */ 1861544Seschrock uint64_t p; /* Target size (in bytes) of mru */ 187789Sahrens uint64_t c; /* Target size of cache (in bytes) */ 188789Sahrens uint64_t c_min; /* Minimum target cache size */ 189789Sahrens uint64_t c_max; /* Maximum target cache size */ 190789Sahrens 191789Sahrens /* performance stats */ 192789Sahrens uint64_t hits; 193789Sahrens uint64_t misses; 194789Sahrens uint64_t deleted; 195789Sahrens uint64_t skipped; 196789Sahrens uint64_t hash_elements; 197789Sahrens uint64_t hash_elements_max; 198789Sahrens uint64_t hash_collisions; 199789Sahrens uint64_t hash_chains; 200789Sahrens uint32_t hash_chain_max; 201789Sahrens 202789Sahrens int no_grow; /* Don't try to grow cache size */ 203789Sahrens } arc; 204789Sahrens 205789Sahrens static uint64_t arc_tempreserve; 206789Sahrens 207789Sahrens typedef struct arc_callback arc_callback_t; 208789Sahrens 209789Sahrens struct arc_callback { 210789Sahrens arc_done_func_t *acb_done; 211789Sahrens void *acb_private; 212789Sahrens arc_byteswap_func_t *acb_byteswap; 213789Sahrens arc_buf_t *acb_buf; 214789Sahrens zio_t *acb_zio_dummy; 215789Sahrens arc_callback_t *acb_next; 216789Sahrens }; 217789Sahrens 218789Sahrens struct arc_buf_hdr { 219789Sahrens /* immutable */ 220789Sahrens uint64_t b_size; 221789Sahrens spa_t *b_spa; 222789Sahrens 223789Sahrens /* protected by hash lock */ 224789Sahrens dva_t b_dva; 225789Sahrens uint64_t b_birth; 226789Sahrens uint64_t b_cksum0; 227789Sahrens 228789Sahrens arc_buf_hdr_t *b_hash_next; 229789Sahrens arc_buf_t *b_buf; 230789Sahrens uint32_t b_flags; 2311544Seschrock uint32_t b_datacnt; 232789Sahrens 233789Sahrens kcondvar_t b_cv; 234789Sahrens arc_callback_t *b_acb; 235789Sahrens 236789Sahrens /* protected by arc state mutex */ 237789Sahrens arc_state_t *b_state; 238789Sahrens list_node_t b_arc_node; 239789Sahrens 240789Sahrens /* updated atomically */ 241789Sahrens clock_t b_arc_access; 242789Sahrens 243789Sahrens /* self protecting */ 244789Sahrens refcount_t b_refcnt; 245789Sahrens }; 246789Sahrens 2471544Seschrock static arc_buf_t *arc_eviction_list; 2481544Seschrock static kmutex_t arc_eviction_mtx; 2491544Seschrock static void arc_access_and_exit(arc_buf_hdr_t *buf, kmutex_t *hash_lock); 2501544Seschrock 2511544Seschrock #define GHOST_STATE(state) \ 2521544Seschrock ((state) == arc.mru_ghost || (state) == arc.mfu_ghost) 2531544Seschrock 254789Sahrens /* 255789Sahrens * Private ARC flags. These flags are private ARC only flags that will show up 256789Sahrens * in b_flags in the arc_hdr_buf_t. Some flags are publicly declared, and can 257789Sahrens * be passed in as arc_flags in things like arc_read. However, these flags 258789Sahrens * should never be passed and should only be set by ARC code. When adding new 259789Sahrens * public flags, make sure not to smash the private ones. 260789Sahrens */ 261789Sahrens 2621544Seschrock #define ARC_IN_HASH_TABLE (1 << 9) /* this buffer is hashed */ 263789Sahrens #define ARC_IO_IN_PROGRESS (1 << 10) /* I/O in progress for buf */ 264789Sahrens #define ARC_IO_ERROR (1 << 11) /* I/O failed for buf */ 265789Sahrens #define ARC_FREED_IN_READ (1 << 12) /* buf freed while in read */ 2661544Seschrock #define ARC_BUF_AVAILABLE (1 << 13) /* block not in active use */ 267789Sahrens 2681544Seschrock #define HDR_IN_HASH_TABLE(hdr) ((hdr)->b_flags & ARC_IN_HASH_TABLE) 269789Sahrens #define HDR_IO_IN_PROGRESS(hdr) ((hdr)->b_flags & ARC_IO_IN_PROGRESS) 270789Sahrens #define HDR_IO_ERROR(hdr) ((hdr)->b_flags & ARC_IO_ERROR) 271789Sahrens #define HDR_FREED_IN_READ(hdr) ((hdr)->b_flags & ARC_FREED_IN_READ) 2721544Seschrock #define HDR_BUF_AVAILABLE(hdr) ((hdr)->b_flags & ARC_BUF_AVAILABLE) 273789Sahrens 274789Sahrens /* 275789Sahrens * Hash table routines 276789Sahrens */ 277789Sahrens 278789Sahrens #define HT_LOCK_PAD 64 279789Sahrens 280789Sahrens struct ht_lock { 281789Sahrens kmutex_t ht_lock; 282789Sahrens #ifdef _KERNEL 283789Sahrens unsigned char pad[(HT_LOCK_PAD - sizeof (kmutex_t))]; 284789Sahrens #endif 285789Sahrens }; 286789Sahrens 287789Sahrens #define BUF_LOCKS 256 288789Sahrens typedef struct buf_hash_table { 289789Sahrens uint64_t ht_mask; 290789Sahrens arc_buf_hdr_t **ht_table; 291789Sahrens struct ht_lock ht_locks[BUF_LOCKS]; 292789Sahrens } buf_hash_table_t; 293789Sahrens 294789Sahrens static buf_hash_table_t buf_hash_table; 295789Sahrens 296789Sahrens #define BUF_HASH_INDEX(spa, dva, birth) \ 297789Sahrens (buf_hash(spa, dva, birth) & buf_hash_table.ht_mask) 298789Sahrens #define BUF_HASH_LOCK_NTRY(idx) (buf_hash_table.ht_locks[idx & (BUF_LOCKS-1)]) 299789Sahrens #define BUF_HASH_LOCK(idx) (&(BUF_HASH_LOCK_NTRY(idx).ht_lock)) 300789Sahrens #define HDR_LOCK(buf) \ 301789Sahrens (BUF_HASH_LOCK(BUF_HASH_INDEX(buf->b_spa, &buf->b_dva, buf->b_birth))) 302789Sahrens 303789Sahrens uint64_t zfs_crc64_table[256]; 304789Sahrens 305789Sahrens static uint64_t 306789Sahrens buf_hash(spa_t *spa, dva_t *dva, uint64_t birth) 307789Sahrens { 308789Sahrens uintptr_t spav = (uintptr_t)spa; 309789Sahrens uint8_t *vdva = (uint8_t *)dva; 310789Sahrens uint64_t crc = -1ULL; 311789Sahrens int i; 312789Sahrens 313789Sahrens ASSERT(zfs_crc64_table[128] == ZFS_CRC64_POLY); 314789Sahrens 315789Sahrens for (i = 0; i < sizeof (dva_t); i++) 316789Sahrens crc = (crc >> 8) ^ zfs_crc64_table[(crc ^ vdva[i]) & 0xFF]; 317789Sahrens 318789Sahrens crc ^= (spav>>8) ^ birth; 319789Sahrens 320789Sahrens return (crc); 321789Sahrens } 322789Sahrens 323789Sahrens #define BUF_EMPTY(buf) \ 324789Sahrens ((buf)->b_dva.dva_word[0] == 0 && \ 325789Sahrens (buf)->b_dva.dva_word[1] == 0 && \ 326789Sahrens (buf)->b_birth == 0) 327789Sahrens 328789Sahrens #define BUF_EQUAL(spa, dva, birth, buf) \ 329789Sahrens ((buf)->b_dva.dva_word[0] == (dva)->dva_word[0]) && \ 330789Sahrens ((buf)->b_dva.dva_word[1] == (dva)->dva_word[1]) && \ 331789Sahrens ((buf)->b_birth == birth) && ((buf)->b_spa == spa) 332789Sahrens 333789Sahrens static arc_buf_hdr_t * 334789Sahrens buf_hash_find(spa_t *spa, dva_t *dva, uint64_t birth, kmutex_t **lockp) 335789Sahrens { 336789Sahrens uint64_t idx = BUF_HASH_INDEX(spa, dva, birth); 337789Sahrens kmutex_t *hash_lock = BUF_HASH_LOCK(idx); 338789Sahrens arc_buf_hdr_t *buf; 339789Sahrens 340789Sahrens mutex_enter(hash_lock); 341789Sahrens for (buf = buf_hash_table.ht_table[idx]; buf != NULL; 342789Sahrens buf = buf->b_hash_next) { 343789Sahrens if (BUF_EQUAL(spa, dva, birth, buf)) { 344789Sahrens *lockp = hash_lock; 345789Sahrens return (buf); 346789Sahrens } 347789Sahrens } 348789Sahrens mutex_exit(hash_lock); 349789Sahrens *lockp = NULL; 350789Sahrens return (NULL); 351789Sahrens } 352789Sahrens 353789Sahrens /* 354789Sahrens * Insert an entry into the hash table. If there is already an element 355789Sahrens * equal to elem in the hash table, then the already existing element 356789Sahrens * will be returned and the new element will not be inserted. 357789Sahrens * Otherwise returns NULL. 358789Sahrens */ 359789Sahrens static arc_buf_hdr_t * 360789Sahrens buf_hash_insert(arc_buf_hdr_t *buf, kmutex_t **lockp) 361789Sahrens { 362789Sahrens uint64_t idx = BUF_HASH_INDEX(buf->b_spa, &buf->b_dva, buf->b_birth); 363789Sahrens kmutex_t *hash_lock = BUF_HASH_LOCK(idx); 364789Sahrens arc_buf_hdr_t *fbuf; 365789Sahrens uint32_t max, i; 366789Sahrens 3671544Seschrock ASSERT(!HDR_IN_HASH_TABLE(buf)); 368789Sahrens *lockp = hash_lock; 369789Sahrens mutex_enter(hash_lock); 370789Sahrens for (fbuf = buf_hash_table.ht_table[idx], i = 0; fbuf != NULL; 371789Sahrens fbuf = fbuf->b_hash_next, i++) { 372789Sahrens if (BUF_EQUAL(buf->b_spa, &buf->b_dva, buf->b_birth, fbuf)) 373789Sahrens return (fbuf); 374789Sahrens } 375789Sahrens 376789Sahrens buf->b_hash_next = buf_hash_table.ht_table[idx]; 377789Sahrens buf_hash_table.ht_table[idx] = buf; 3781544Seschrock buf->b_flags |= ARC_IN_HASH_TABLE; 379789Sahrens 380789Sahrens /* collect some hash table performance data */ 381789Sahrens if (i > 0) { 382789Sahrens atomic_add_64(&arc.hash_collisions, 1); 383789Sahrens if (i == 1) 384789Sahrens atomic_add_64(&arc.hash_chains, 1); 385789Sahrens } 386789Sahrens while (i > (max = arc.hash_chain_max) && 387789Sahrens max != atomic_cas_32(&arc.hash_chain_max, max, i)) { 388789Sahrens continue; 389789Sahrens } 390789Sahrens atomic_add_64(&arc.hash_elements, 1); 391789Sahrens if (arc.hash_elements > arc.hash_elements_max) 392789Sahrens atomic_add_64(&arc.hash_elements_max, 1); 393789Sahrens 394789Sahrens return (NULL); 395789Sahrens } 396789Sahrens 397789Sahrens static void 398789Sahrens buf_hash_remove(arc_buf_hdr_t *buf) 399789Sahrens { 400789Sahrens arc_buf_hdr_t *fbuf, **bufp; 401789Sahrens uint64_t idx = BUF_HASH_INDEX(buf->b_spa, &buf->b_dva, buf->b_birth); 402789Sahrens 403789Sahrens ASSERT(MUTEX_HELD(BUF_HASH_LOCK(idx))); 4041544Seschrock ASSERT(HDR_IN_HASH_TABLE(buf)); 405789Sahrens 406789Sahrens bufp = &buf_hash_table.ht_table[idx]; 407789Sahrens while ((fbuf = *bufp) != buf) { 408789Sahrens ASSERT(fbuf != NULL); 409789Sahrens bufp = &fbuf->b_hash_next; 410789Sahrens } 411789Sahrens *bufp = buf->b_hash_next; 412789Sahrens buf->b_hash_next = NULL; 4131544Seschrock buf->b_flags &= ~ARC_IN_HASH_TABLE; 414789Sahrens 415789Sahrens /* collect some hash table performance data */ 416789Sahrens atomic_add_64(&arc.hash_elements, -1); 417789Sahrens if (buf_hash_table.ht_table[idx] && 418789Sahrens buf_hash_table.ht_table[idx]->b_hash_next == NULL) 419789Sahrens atomic_add_64(&arc.hash_chains, -1); 420789Sahrens } 421789Sahrens 422789Sahrens /* 423789Sahrens * Global data structures and functions for the buf kmem cache. 424789Sahrens */ 425789Sahrens static kmem_cache_t *hdr_cache; 426789Sahrens static kmem_cache_t *buf_cache; 427789Sahrens 428789Sahrens static void 429789Sahrens buf_fini(void) 430789Sahrens { 431789Sahrens int i; 432789Sahrens 433789Sahrens kmem_free(buf_hash_table.ht_table, 434789Sahrens (buf_hash_table.ht_mask + 1) * sizeof (void *)); 435789Sahrens for (i = 0; i < BUF_LOCKS; i++) 436789Sahrens mutex_destroy(&buf_hash_table.ht_locks[i].ht_lock); 437789Sahrens kmem_cache_destroy(hdr_cache); 438789Sahrens kmem_cache_destroy(buf_cache); 439789Sahrens } 440789Sahrens 441789Sahrens /* 442789Sahrens * Constructor callback - called when the cache is empty 443789Sahrens * and a new buf is requested. 444789Sahrens */ 445789Sahrens /* ARGSUSED */ 446789Sahrens static int 447789Sahrens hdr_cons(void *vbuf, void *unused, int kmflag) 448789Sahrens { 449789Sahrens arc_buf_hdr_t *buf = vbuf; 450789Sahrens 451789Sahrens bzero(buf, sizeof (arc_buf_hdr_t)); 452789Sahrens refcount_create(&buf->b_refcnt); 453789Sahrens cv_init(&buf->b_cv, NULL, CV_DEFAULT, NULL); 454789Sahrens return (0); 455789Sahrens } 456789Sahrens 457789Sahrens /* 458789Sahrens * Destructor callback - called when a cached buf is 459789Sahrens * no longer required. 460789Sahrens */ 461789Sahrens /* ARGSUSED */ 462789Sahrens static void 463789Sahrens hdr_dest(void *vbuf, void *unused) 464789Sahrens { 465789Sahrens arc_buf_hdr_t *buf = vbuf; 466789Sahrens 467789Sahrens refcount_destroy(&buf->b_refcnt); 468789Sahrens cv_destroy(&buf->b_cv); 469789Sahrens } 470789Sahrens 4711544Seschrock static int arc_reclaim_needed(void); 472789Sahrens void arc_kmem_reclaim(void); 473789Sahrens 474789Sahrens /* 475789Sahrens * Reclaim callback -- invoked when memory is low. 476789Sahrens */ 477789Sahrens /* ARGSUSED */ 478789Sahrens static void 479789Sahrens hdr_recl(void *unused) 480789Sahrens { 481789Sahrens dprintf("hdr_recl called\n"); 4821544Seschrock if (arc_reclaim_needed()) 4831544Seschrock arc_kmem_reclaim(); 484789Sahrens } 485789Sahrens 486789Sahrens static void 487789Sahrens buf_init(void) 488789Sahrens { 489789Sahrens uint64_t *ct; 4901544Seschrock uint64_t hsize = 1ULL << 12; 491789Sahrens int i, j; 492789Sahrens 493789Sahrens /* 494789Sahrens * The hash table is big enough to fill all of physical memory 4951544Seschrock * with an average 64K block size. The table will take up 4961544Seschrock * totalmem*sizeof(void*)/64K (eg. 128KB/GB with 8-byte pointers). 497789Sahrens */ 4981544Seschrock while (hsize * 65536 < physmem * PAGESIZE) 499789Sahrens hsize <<= 1; 5001544Seschrock retry: 501789Sahrens buf_hash_table.ht_mask = hsize - 1; 5021544Seschrock buf_hash_table.ht_table = 5031544Seschrock kmem_zalloc(hsize * sizeof (void*), KM_NOSLEEP); 5041544Seschrock if (buf_hash_table.ht_table == NULL) { 5051544Seschrock ASSERT(hsize > (1ULL << 8)); 5061544Seschrock hsize >>= 1; 5071544Seschrock goto retry; 5081544Seschrock } 509789Sahrens 510789Sahrens hdr_cache = kmem_cache_create("arc_buf_hdr_t", sizeof (arc_buf_hdr_t), 511789Sahrens 0, hdr_cons, hdr_dest, hdr_recl, NULL, NULL, 0); 512789Sahrens buf_cache = kmem_cache_create("arc_buf_t", sizeof (arc_buf_t), 513789Sahrens 0, NULL, NULL, NULL, NULL, NULL, 0); 514789Sahrens 515789Sahrens for (i = 0; i < 256; i++) 516789Sahrens for (ct = zfs_crc64_table + i, *ct = i, j = 8; j > 0; j--) 517789Sahrens *ct = (*ct >> 1) ^ (-(*ct & 1) & ZFS_CRC64_POLY); 518789Sahrens 519789Sahrens for (i = 0; i < BUF_LOCKS; i++) { 520789Sahrens mutex_init(&buf_hash_table.ht_locks[i].ht_lock, 521789Sahrens NULL, MUTEX_DEFAULT, NULL); 522789Sahrens } 523789Sahrens } 524789Sahrens 525789Sahrens #define ARC_MINTIME (hz>>4) /* 62 ms */ 526789Sahrens 527789Sahrens static void 528789Sahrens add_reference(arc_buf_hdr_t *ab, kmutex_t *hash_lock, void *tag) 529789Sahrens { 530789Sahrens ASSERT(MUTEX_HELD(hash_lock)); 531789Sahrens 532789Sahrens if ((refcount_add(&ab->b_refcnt, tag) == 1) && 533789Sahrens (ab->b_state != arc.anon)) { 5341544Seschrock int delta = ab->b_size * ab->b_datacnt; 535789Sahrens 536789Sahrens ASSERT(!MUTEX_HELD(&ab->b_state->mtx)); 537789Sahrens mutex_enter(&ab->b_state->mtx); 5381544Seschrock ASSERT(refcount_count(&ab->b_refcnt) > 0); 539789Sahrens ASSERT(list_link_active(&ab->b_arc_node)); 540789Sahrens list_remove(&ab->b_state->list, ab); 5411544Seschrock if (GHOST_STATE(ab->b_state)) { 5421544Seschrock ASSERT3U(ab->b_datacnt, ==, 0); 5431544Seschrock ASSERT3P(ab->b_buf, ==, NULL); 5441544Seschrock delta = ab->b_size; 5451544Seschrock } 5461544Seschrock ASSERT(delta > 0); 5471544Seschrock ASSERT3U(ab->b_state->lsize, >=, delta); 5481544Seschrock atomic_add_64(&ab->b_state->lsize, -delta); 549789Sahrens mutex_exit(&ab->b_state->mtx); 550789Sahrens } 551789Sahrens } 552789Sahrens 553789Sahrens static int 554789Sahrens remove_reference(arc_buf_hdr_t *ab, kmutex_t *hash_lock, void *tag) 555789Sahrens { 556789Sahrens int cnt; 557789Sahrens 5581544Seschrock ASSERT(ab->b_state == arc.anon || MUTEX_HELD(hash_lock)); 5591544Seschrock ASSERT(!GHOST_STATE(ab->b_state)); 560789Sahrens 561789Sahrens if (((cnt = refcount_remove(&ab->b_refcnt, tag)) == 0) && 562789Sahrens (ab->b_state != arc.anon)) { 563789Sahrens 564789Sahrens ASSERT(!MUTEX_HELD(&ab->b_state->mtx)); 565789Sahrens mutex_enter(&ab->b_state->mtx); 566789Sahrens ASSERT(!list_link_active(&ab->b_arc_node)); 567789Sahrens list_insert_head(&ab->b_state->list, ab); 5681544Seschrock ASSERT(ab->b_datacnt > 0); 5691544Seschrock atomic_add_64(&ab->b_state->lsize, ab->b_size * ab->b_datacnt); 5701544Seschrock ASSERT3U(ab->b_state->size, >=, ab->b_state->lsize); 571789Sahrens mutex_exit(&ab->b_state->mtx); 572789Sahrens } 573789Sahrens return (cnt); 574789Sahrens } 575789Sahrens 576789Sahrens /* 577789Sahrens * Move the supplied buffer to the indicated state. The mutex 578789Sahrens * for the buffer must be held by the caller. 579789Sahrens */ 580789Sahrens static void 5811544Seschrock arc_change_state(arc_state_t *new_state, arc_buf_hdr_t *ab, kmutex_t *hash_lock) 582789Sahrens { 5831544Seschrock arc_state_t *old_state = ab->b_state; 5841544Seschrock int refcnt = refcount_count(&ab->b_refcnt); 5851544Seschrock int from_delta, to_delta; 586789Sahrens 587789Sahrens ASSERT(MUTEX_HELD(hash_lock)); 5881544Seschrock ASSERT(new_state != old_state); 5891544Seschrock ASSERT(refcnt == 0 || ab->b_datacnt > 0); 5901544Seschrock ASSERT(ab->b_datacnt == 0 || !GHOST_STATE(new_state)); 5911544Seschrock 5921544Seschrock from_delta = to_delta = ab->b_datacnt * ab->b_size; 593789Sahrens 594789Sahrens /* 595789Sahrens * If this buffer is evictable, transfer it from the 596789Sahrens * old state list to the new state list. 597789Sahrens */ 5981544Seschrock if (refcnt == 0) { 5991544Seschrock if (old_state != arc.anon) { 6001544Seschrock int use_mutex = !MUTEX_HELD(&old_state->mtx); 6011544Seschrock 6021544Seschrock if (use_mutex) 6031544Seschrock mutex_enter(&old_state->mtx); 6041544Seschrock 6051544Seschrock ASSERT(list_link_active(&ab->b_arc_node)); 6061544Seschrock list_remove(&old_state->list, ab); 607789Sahrens 6081544Seschrock /* ghost elements have a ghost size */ 6091544Seschrock if (GHOST_STATE(old_state)) { 6101544Seschrock ASSERT(ab->b_datacnt == 0); 6111544Seschrock ASSERT(ab->b_buf == NULL); 6121544Seschrock from_delta = ab->b_size; 613789Sahrens } 6141544Seschrock ASSERT3U(old_state->lsize, >=, from_delta); 6151544Seschrock atomic_add_64(&old_state->lsize, -from_delta); 6161544Seschrock 6171544Seschrock if (use_mutex) 6181544Seschrock mutex_exit(&old_state->mtx); 619789Sahrens } 620789Sahrens if (new_state != arc.anon) { 6211544Seschrock int use_mutex = !MUTEX_HELD(&new_state->mtx); 622789Sahrens 6231544Seschrock if (use_mutex) 624789Sahrens mutex_enter(&new_state->mtx); 6251544Seschrock 626789Sahrens list_insert_head(&new_state->list, ab); 6271544Seschrock 6281544Seschrock /* ghost elements have a ghost size */ 6291544Seschrock if (GHOST_STATE(new_state)) { 6301544Seschrock ASSERT(ab->b_datacnt == 0); 6311544Seschrock ASSERT(ab->b_buf == NULL); 6321544Seschrock to_delta = ab->b_size; 6331544Seschrock } 6341544Seschrock atomic_add_64(&new_state->lsize, to_delta); 6351544Seschrock ASSERT3U(new_state->size + to_delta, >=, 6361544Seschrock new_state->lsize); 6371544Seschrock 6381544Seschrock if (use_mutex) 639789Sahrens mutex_exit(&new_state->mtx); 640789Sahrens } 641789Sahrens } 642789Sahrens 643789Sahrens ASSERT(!BUF_EMPTY(ab)); 6441544Seschrock if (new_state == arc.anon && old_state != arc.anon) { 645789Sahrens buf_hash_remove(ab); 646789Sahrens } 647789Sahrens 648789Sahrens /* 649789Sahrens * If this buffer isn't being transferred to the MRU-top 650789Sahrens * state, it's safe to clear its prefetch flag 651789Sahrens */ 6521544Seschrock if ((new_state != arc.mru) && (new_state != arc.mru_ghost)) { 653789Sahrens ab->b_flags &= ~ARC_PREFETCH; 654789Sahrens } 655789Sahrens 6561544Seschrock /* adjust state sizes */ 6571544Seschrock if (to_delta) 6581544Seschrock atomic_add_64(&new_state->size, to_delta); 6591544Seschrock if (from_delta) { 6601544Seschrock ASSERT3U(old_state->size, >=, from_delta); 6611544Seschrock atomic_add_64(&old_state->size, -from_delta); 662789Sahrens } 663789Sahrens ab->b_state = new_state; 664789Sahrens } 665789Sahrens 666789Sahrens arc_buf_t * 667789Sahrens arc_buf_alloc(spa_t *spa, int size, void *tag) 668789Sahrens { 669789Sahrens arc_buf_hdr_t *hdr; 670789Sahrens arc_buf_t *buf; 671789Sahrens 672789Sahrens ASSERT3U(size, >, 0); 673789Sahrens hdr = kmem_cache_alloc(hdr_cache, KM_SLEEP); 674789Sahrens ASSERT(BUF_EMPTY(hdr)); 675789Sahrens hdr->b_size = size; 676789Sahrens hdr->b_spa = spa; 677789Sahrens hdr->b_state = arc.anon; 678789Sahrens hdr->b_arc_access = 0; 679789Sahrens buf = kmem_cache_alloc(buf_cache, KM_SLEEP); 680789Sahrens buf->b_hdr = hdr; 6811544Seschrock buf->b_efunc = NULL; 6821544Seschrock buf->b_private = NULL; 683789Sahrens buf->b_next = NULL; 684789Sahrens buf->b_data = zio_buf_alloc(size); 685789Sahrens hdr->b_buf = buf; 6861544Seschrock hdr->b_datacnt = 1; 687789Sahrens hdr->b_flags = 0; 688789Sahrens ASSERT(refcount_is_zero(&hdr->b_refcnt)); 689789Sahrens (void) refcount_add(&hdr->b_refcnt, tag); 690789Sahrens 691789Sahrens atomic_add_64(&arc.size, size); 692789Sahrens atomic_add_64(&arc.anon->size, size); 693789Sahrens 694789Sahrens return (buf); 695789Sahrens } 696789Sahrens 6971544Seschrock static void * 6981544Seschrock arc_data_copy(arc_buf_hdr_t *hdr, void *old_data) 6991544Seschrock { 7001544Seschrock void *new_data = zio_buf_alloc(hdr->b_size); 7011544Seschrock 7021544Seschrock atomic_add_64(&arc.size, hdr->b_size); 7031544Seschrock bcopy(old_data, new_data, hdr->b_size); 7041544Seschrock atomic_add_64(&hdr->b_state->size, hdr->b_size); 7051544Seschrock if (list_link_active(&hdr->b_arc_node)) { 7061544Seschrock ASSERT(refcount_is_zero(&hdr->b_refcnt)); 7071544Seschrock atomic_add_64(&hdr->b_state->lsize, hdr->b_size); 7081544Seschrock } 7091544Seschrock return (new_data); 7101544Seschrock } 7111544Seschrock 7121544Seschrock void 7131544Seschrock arc_buf_add_ref(arc_buf_t *buf, void* tag) 7141544Seschrock { 7151544Seschrock arc_buf_hdr_t *hdr; 7161544Seschrock kmutex_t *hash_lock; 7171544Seschrock 7181544Seschrock mutex_enter(&arc_eviction_mtx); 7191544Seschrock hdr = buf->b_hdr; 7201544Seschrock if (buf->b_data == NULL) { 7211544Seschrock /* 7221544Seschrock * This buffer is evicted. 7231544Seschrock */ 7241544Seschrock mutex_exit(&arc_eviction_mtx); 7251544Seschrock return; 7261544Seschrock } else { 7271544Seschrock /* 7281544Seschrock * Prevent this buffer from being evicted 7291544Seschrock * while we add a reference. 7301544Seschrock */ 7311544Seschrock buf->b_hdr = NULL; 7321544Seschrock } 7331544Seschrock mutex_exit(&arc_eviction_mtx); 7341544Seschrock 7351544Seschrock ASSERT(hdr->b_state != arc.anon); 7361544Seschrock hash_lock = HDR_LOCK(hdr); 7371544Seschrock mutex_enter(hash_lock); 7381544Seschrock ASSERT(!GHOST_STATE(hdr->b_state)); 7391544Seschrock buf->b_hdr = hdr; 7401544Seschrock add_reference(hdr, hash_lock, tag); 7411544Seschrock arc_access_and_exit(hdr, hash_lock); 7421544Seschrock atomic_add_64(&arc.hits, 1); 7431544Seschrock } 7441544Seschrock 745789Sahrens static void 7461544Seschrock arc_buf_destroy(arc_buf_t *buf, boolean_t all) 7471544Seschrock { 7481544Seschrock arc_buf_t **bufp; 7491544Seschrock 7501544Seschrock /* free up data associated with the buf */ 7511544Seschrock if (buf->b_data) { 7521544Seschrock arc_state_t *state = buf->b_hdr->b_state; 7531544Seschrock uint64_t size = buf->b_hdr->b_size; 7541544Seschrock 7551544Seschrock zio_buf_free(buf->b_data, size); 7561544Seschrock atomic_add_64(&arc.size, -size); 7571544Seschrock if (list_link_active(&buf->b_hdr->b_arc_node)) { 7581544Seschrock ASSERT(refcount_is_zero(&buf->b_hdr->b_refcnt)); 7591544Seschrock ASSERT(state != arc.anon); 7601544Seschrock ASSERT3U(state->lsize, >=, size); 7611544Seschrock atomic_add_64(&state->lsize, -size); 7621544Seschrock } 7631544Seschrock ASSERT3U(state->size, >=, size); 7641544Seschrock atomic_add_64(&state->size, -size); 7651544Seschrock buf->b_data = NULL; 7661544Seschrock ASSERT(buf->b_hdr->b_datacnt > 0); 7671544Seschrock buf->b_hdr->b_datacnt -= 1; 7681544Seschrock } 7691544Seschrock 7701544Seschrock /* only remove the buf if requested */ 7711544Seschrock if (!all) 7721544Seschrock return; 7731544Seschrock 7741544Seschrock /* remove the buf from the hdr list */ 7751544Seschrock for (bufp = &buf->b_hdr->b_buf; *bufp != buf; bufp = &(*bufp)->b_next) 7761544Seschrock continue; 7771544Seschrock *bufp = buf->b_next; 7781544Seschrock 7791544Seschrock ASSERT(buf->b_efunc == NULL); 7801544Seschrock 7811544Seschrock /* clean up the buf */ 7821544Seschrock buf->b_hdr = NULL; 7831544Seschrock kmem_cache_free(buf_cache, buf); 7841544Seschrock } 7851544Seschrock 7861544Seschrock static void 7871544Seschrock arc_hdr_destroy(arc_buf_hdr_t *hdr) 788789Sahrens { 789789Sahrens ASSERT(refcount_is_zero(&hdr->b_refcnt)); 790789Sahrens ASSERT3P(hdr->b_state, ==, arc.anon); 7911544Seschrock ASSERT(!HDR_IO_IN_PROGRESS(hdr)); 792789Sahrens 793789Sahrens if (!BUF_EMPTY(hdr)) { 7941544Seschrock ASSERT(!HDR_IN_HASH_TABLE(hdr)); 795789Sahrens bzero(&hdr->b_dva, sizeof (dva_t)); 796789Sahrens hdr->b_birth = 0; 797789Sahrens hdr->b_cksum0 = 0; 798789Sahrens } 7991544Seschrock while (hdr->b_buf) { 800789Sahrens arc_buf_t *buf = hdr->b_buf; 801789Sahrens 8021544Seschrock if (buf->b_efunc) { 8031544Seschrock mutex_enter(&arc_eviction_mtx); 8041544Seschrock ASSERT(buf->b_hdr != NULL); 8051544Seschrock arc_buf_destroy(hdr->b_buf, FALSE); 8061544Seschrock hdr->b_buf = buf->b_next; 8071544Seschrock buf->b_next = arc_eviction_list; 8081544Seschrock arc_eviction_list = buf; 8091544Seschrock mutex_exit(&arc_eviction_mtx); 8101544Seschrock } else { 8111544Seschrock arc_buf_destroy(hdr->b_buf, TRUE); 8121544Seschrock } 813789Sahrens } 8141544Seschrock 815789Sahrens ASSERT(!list_link_active(&hdr->b_arc_node)); 816789Sahrens ASSERT3P(hdr->b_hash_next, ==, NULL); 817789Sahrens ASSERT3P(hdr->b_acb, ==, NULL); 818789Sahrens kmem_cache_free(hdr_cache, hdr); 819789Sahrens } 820789Sahrens 821789Sahrens void 822789Sahrens arc_buf_free(arc_buf_t *buf, void *tag) 823789Sahrens { 824789Sahrens arc_buf_hdr_t *hdr = buf->b_hdr; 8251544Seschrock int hashed = hdr->b_state != arc.anon; 8261544Seschrock 8271544Seschrock ASSERT(buf->b_efunc == NULL); 8281544Seschrock ASSERT(buf->b_data != NULL); 8291544Seschrock 8301544Seschrock if (hashed) { 8311544Seschrock kmutex_t *hash_lock = HDR_LOCK(hdr); 8321544Seschrock 8331544Seschrock mutex_enter(hash_lock); 8341544Seschrock (void) remove_reference(hdr, hash_lock, tag); 8351544Seschrock if (hdr->b_datacnt > 1) 8361544Seschrock arc_buf_destroy(buf, TRUE); 8371544Seschrock else 8381544Seschrock hdr->b_flags |= ARC_BUF_AVAILABLE; 8391544Seschrock mutex_exit(hash_lock); 8401544Seschrock } else if (HDR_IO_IN_PROGRESS(hdr)) { 8411544Seschrock int destroy_hdr; 8421544Seschrock /* 8431544Seschrock * We are in the middle of an async write. Don't destroy 8441544Seschrock * this buffer unless the write completes before we finish 8451544Seschrock * decrementing the reference count. 8461544Seschrock */ 8471544Seschrock mutex_enter(&arc_eviction_mtx); 8481544Seschrock (void) remove_reference(hdr, NULL, tag); 8491544Seschrock ASSERT(refcount_is_zero(&hdr->b_refcnt)); 8501544Seschrock destroy_hdr = !HDR_IO_IN_PROGRESS(hdr); 8511544Seschrock mutex_exit(&arc_eviction_mtx); 8521544Seschrock if (destroy_hdr) 8531544Seschrock arc_hdr_destroy(hdr); 8541544Seschrock } else { 8551544Seschrock if (remove_reference(hdr, NULL, tag) > 0) { 8561544Seschrock ASSERT(HDR_IO_ERROR(hdr)); 8571544Seschrock arc_buf_destroy(buf, TRUE); 8581544Seschrock } else { 8591544Seschrock arc_hdr_destroy(hdr); 8601544Seschrock } 8611544Seschrock } 8621544Seschrock } 8631544Seschrock 8641544Seschrock int 8651544Seschrock arc_buf_remove_ref(arc_buf_t *buf, void* tag) 8661544Seschrock { 8671544Seschrock arc_buf_hdr_t *hdr = buf->b_hdr; 868789Sahrens kmutex_t *hash_lock = HDR_LOCK(hdr); 8691544Seschrock int no_callback = (buf->b_efunc == NULL); 8701544Seschrock 8711544Seschrock if (hdr->b_state == arc.anon) { 8721544Seschrock arc_buf_free(buf, tag); 8731544Seschrock return (no_callback); 8741544Seschrock } 875789Sahrens 876789Sahrens mutex_enter(hash_lock); 8771544Seschrock ASSERT(hdr->b_state != arc.anon); 8781544Seschrock ASSERT(buf->b_data != NULL); 879789Sahrens 8801544Seschrock (void) remove_reference(hdr, hash_lock, tag); 8811544Seschrock if (hdr->b_datacnt > 1) { 8821544Seschrock if (no_callback) 8831544Seschrock arc_buf_destroy(buf, TRUE); 8841544Seschrock } else if (no_callback) { 8851544Seschrock ASSERT(hdr->b_buf == buf && buf->b_next == NULL); 8861544Seschrock hdr->b_flags |= ARC_BUF_AVAILABLE; 887789Sahrens } 8881544Seschrock ASSERT(no_callback || hdr->b_datacnt > 1 || 8891544Seschrock refcount_is_zero(&hdr->b_refcnt)); 890789Sahrens mutex_exit(hash_lock); 8911544Seschrock return (no_callback); 892789Sahrens } 893789Sahrens 894789Sahrens int 895789Sahrens arc_buf_size(arc_buf_t *buf) 896789Sahrens { 897789Sahrens return (buf->b_hdr->b_size); 898789Sahrens } 899789Sahrens 900789Sahrens /* 901789Sahrens * Evict buffers from list until we've removed the specified number of 902789Sahrens * bytes. Move the removed buffers to the appropriate evict state. 903789Sahrens */ 904789Sahrens static uint64_t 9051544Seschrock arc_evict(arc_state_t *state, int64_t bytes) 906789Sahrens { 907789Sahrens arc_state_t *evicted_state; 9081544Seschrock uint64_t bytes_evicted = 0, skipped = 0; 909789Sahrens arc_buf_hdr_t *ab, *ab_prev; 910789Sahrens kmutex_t *hash_lock; 911789Sahrens 9121544Seschrock ASSERT(state == arc.mru || state == arc.mfu); 913789Sahrens 9141544Seschrock evicted_state = (state == arc.mru) ? arc.mru_ghost : arc.mfu_ghost; 915789Sahrens 916789Sahrens mutex_enter(&state->mtx); 917789Sahrens mutex_enter(&evicted_state->mtx); 918789Sahrens 919789Sahrens for (ab = list_tail(&state->list); ab; ab = ab_prev) { 920789Sahrens ab_prev = list_prev(&state->list, ab); 921789Sahrens hash_lock = HDR_LOCK(ab); 922789Sahrens if (mutex_tryenter(hash_lock)) { 923789Sahrens ASSERT3U(refcount_count(&ab->b_refcnt), ==, 0); 9241544Seschrock ASSERT(ab->b_datacnt > 0); 9251544Seschrock while (ab->b_buf) { 9261544Seschrock arc_buf_t *buf = ab->b_buf; 9271544Seschrock if (buf->b_data) 9281544Seschrock bytes_evicted += ab->b_size; 9291544Seschrock if (buf->b_efunc) { 9301544Seschrock mutex_enter(&arc_eviction_mtx); 9311544Seschrock /* 9321544Seschrock * arc_buf_add_ref() could derail 9331544Seschrock * this eviction. 9341544Seschrock */ 9351544Seschrock if (buf->b_hdr == NULL) { 9361544Seschrock mutex_exit(&arc_eviction_mtx); 9371544Seschrock mutex_exit(hash_lock); 9381544Seschrock goto skip; 9391544Seschrock } 9401544Seschrock arc_buf_destroy(buf, FALSE); 9411544Seschrock ab->b_buf = buf->b_next; 9421544Seschrock buf->b_next = arc_eviction_list; 9431544Seschrock arc_eviction_list = buf; 9441544Seschrock mutex_exit(&arc_eviction_mtx); 9451544Seschrock } else { 9461544Seschrock arc_buf_destroy(buf, TRUE); 9471544Seschrock } 9481544Seschrock } 9491544Seschrock ASSERT(ab->b_datacnt == 0); 950789Sahrens arc_change_state(evicted_state, ab, hash_lock); 9511544Seschrock ASSERT(HDR_IN_HASH_TABLE(ab)); 9521544Seschrock ab->b_flags = ARC_IN_HASH_TABLE; 953789Sahrens DTRACE_PROBE1(arc__evict, arc_buf_hdr_t *, ab); 954789Sahrens mutex_exit(hash_lock); 9551544Seschrock if (bytes >= 0 && bytes_evicted >= bytes) 956789Sahrens break; 957789Sahrens } else { 9581544Seschrock skip: 9591544Seschrock skipped += 1; 960789Sahrens } 961789Sahrens } 962789Sahrens mutex_exit(&evicted_state->mtx); 963789Sahrens mutex_exit(&state->mtx); 964789Sahrens 965789Sahrens if (bytes_evicted < bytes) 966789Sahrens dprintf("only evicted %lld bytes from %x", 967789Sahrens (longlong_t)bytes_evicted, state); 968789Sahrens 9691544Seschrock atomic_add_64(&arc.skipped, skipped); 9701544Seschrock if (bytes < 0) 9711544Seschrock return (skipped); 972789Sahrens return (bytes_evicted); 973789Sahrens } 974789Sahrens 975789Sahrens /* 976789Sahrens * Remove buffers from list until we've removed the specified number of 977789Sahrens * bytes. Destroy the buffers that are removed. 978789Sahrens */ 979789Sahrens static void 9801544Seschrock arc_evict_ghost(arc_state_t *state, int64_t bytes) 981789Sahrens { 982789Sahrens arc_buf_hdr_t *ab, *ab_prev; 983789Sahrens kmutex_t *hash_lock; 9841544Seschrock uint64_t bytes_deleted = 0; 9851544Seschrock uint_t bufs_skipped = 0; 986789Sahrens 9871544Seschrock ASSERT(GHOST_STATE(state)); 988789Sahrens top: 989789Sahrens mutex_enter(&state->mtx); 990789Sahrens for (ab = list_tail(&state->list); ab; ab = ab_prev) { 991789Sahrens ab_prev = list_prev(&state->list, ab); 992789Sahrens hash_lock = HDR_LOCK(ab); 993789Sahrens if (mutex_tryenter(hash_lock)) { 9941544Seschrock ASSERT(ab->b_buf == NULL); 995789Sahrens arc_change_state(arc.anon, ab, hash_lock); 996789Sahrens mutex_exit(hash_lock); 997789Sahrens atomic_add_64(&arc.deleted, 1); 9981544Seschrock bytes_deleted += ab->b_size; 9991544Seschrock arc_hdr_destroy(ab); 1000789Sahrens DTRACE_PROBE1(arc__delete, arc_buf_hdr_t *, ab); 1001789Sahrens if (bytes >= 0 && bytes_deleted >= bytes) 1002789Sahrens break; 1003789Sahrens } else { 1004789Sahrens if (bytes < 0) { 1005789Sahrens mutex_exit(&state->mtx); 1006789Sahrens mutex_enter(hash_lock); 1007789Sahrens mutex_exit(hash_lock); 1008789Sahrens goto top; 1009789Sahrens } 1010789Sahrens bufs_skipped += 1; 1011789Sahrens } 1012789Sahrens } 1013789Sahrens mutex_exit(&state->mtx); 1014789Sahrens 1015789Sahrens if (bufs_skipped) { 1016789Sahrens atomic_add_64(&arc.skipped, bufs_skipped); 1017789Sahrens ASSERT(bytes >= 0); 1018789Sahrens } 1019789Sahrens 1020789Sahrens if (bytes_deleted < bytes) 1021789Sahrens dprintf("only deleted %lld bytes from %p", 1022789Sahrens (longlong_t)bytes_deleted, state); 1023789Sahrens } 1024789Sahrens 1025789Sahrens static void 1026789Sahrens arc_adjust(void) 1027789Sahrens { 1028789Sahrens int64_t top_sz, mru_over, arc_over; 1029789Sahrens 10301544Seschrock top_sz = arc.anon->size + arc.mru->size; 1031789Sahrens 10321544Seschrock if (top_sz > arc.p && arc.mru->lsize > 0) { 10331544Seschrock int64_t toevict = MIN(arc.mru->lsize, top_sz-arc.p); 10341544Seschrock (void) arc_evict(arc.mru, toevict); 10351544Seschrock top_sz = arc.anon->size + arc.mru->size; 1036789Sahrens } 1037789Sahrens 10381544Seschrock mru_over = top_sz + arc.mru_ghost->size - arc.c; 1039789Sahrens 1040789Sahrens if (mru_over > 0) { 10411544Seschrock if (arc.mru_ghost->lsize > 0) { 10421544Seschrock int64_t todelete = MIN(arc.mru_ghost->lsize, mru_over); 10431544Seschrock arc_evict_ghost(arc.mru_ghost, todelete); 1044789Sahrens } 1045789Sahrens } 1046789Sahrens 1047789Sahrens if ((arc_over = arc.size - arc.c) > 0) { 10481544Seschrock int64_t tbl_over; 1049789Sahrens 10501544Seschrock if (arc.mfu->lsize > 0) { 10511544Seschrock int64_t toevict = MIN(arc.mfu->lsize, arc_over); 10521544Seschrock (void) arc_evict(arc.mfu, toevict); 1053789Sahrens } 1054789Sahrens 10551544Seschrock tbl_over = arc.size + arc.mru_ghost->lsize + 10561544Seschrock arc.mfu_ghost->lsize - arc.c*2; 1057789Sahrens 10581544Seschrock if (tbl_over > 0 && arc.mfu_ghost->lsize > 0) { 10591544Seschrock int64_t todelete = MIN(arc.mfu_ghost->lsize, tbl_over); 10601544Seschrock arc_evict_ghost(arc.mfu_ghost, todelete); 1061789Sahrens } 1062789Sahrens } 1063789Sahrens } 1064789Sahrens 10651544Seschrock static void 10661544Seschrock arc_do_user_evicts(void) 10671544Seschrock { 10681544Seschrock mutex_enter(&arc_eviction_mtx); 10691544Seschrock while (arc_eviction_list != NULL) { 10701544Seschrock arc_buf_t *buf = arc_eviction_list; 10711544Seschrock arc_eviction_list = buf->b_next; 10721544Seschrock buf->b_hdr = NULL; 10731544Seschrock mutex_exit(&arc_eviction_mtx); 10741544Seschrock 10751819Smaybee if (buf->b_efunc != NULL) 10761819Smaybee VERIFY(buf->b_efunc(buf) == 0); 10771544Seschrock 10781544Seschrock buf->b_efunc = NULL; 10791544Seschrock buf->b_private = NULL; 10801544Seschrock kmem_cache_free(buf_cache, buf); 10811544Seschrock mutex_enter(&arc_eviction_mtx); 10821544Seschrock } 10831544Seschrock mutex_exit(&arc_eviction_mtx); 10841544Seschrock } 10851544Seschrock 1086789Sahrens /* 1087789Sahrens * Flush all *evictable* data from the cache. 1088789Sahrens * NOTE: this will not touch "active" (i.e. referenced) data. 1089789Sahrens */ 1090789Sahrens void 1091789Sahrens arc_flush(void) 1092789Sahrens { 10931544Seschrock while (arc_evict(arc.mru, -1)); 10941544Seschrock while (arc_evict(arc.mfu, -1)); 1095789Sahrens 10961544Seschrock arc_evict_ghost(arc.mru_ghost, -1); 10971544Seschrock arc_evict_ghost(arc.mfu_ghost, -1); 10981544Seschrock 10991544Seschrock mutex_enter(&arc_reclaim_thr_lock); 11001544Seschrock arc_do_user_evicts(); 11011544Seschrock mutex_exit(&arc_reclaim_thr_lock); 11021544Seschrock ASSERT(arc_eviction_list == NULL); 1103789Sahrens } 1104789Sahrens 1105789Sahrens void 1106789Sahrens arc_kmem_reclaim(void) 1107789Sahrens { 11082048Sstans uint64_t to_free; 11092048Sstans 11101544Seschrock /* Remove 12.5% */ 1111789Sahrens /* 1112789Sahrens * We need arc_reclaim_lock because we don't want multiple 1113789Sahrens * threads trying to reclaim concurrently. 1114789Sahrens */ 1115789Sahrens 1116789Sahrens /* 1117789Sahrens * umem calls the reclaim func when we destroy the buf cache, 1118789Sahrens * which is after we do arc_fini(). So we set a flag to prevent 1119789Sahrens * accessing the destroyed mutexes and lists. 1120789Sahrens */ 1121789Sahrens if (arc_dead) 1122789Sahrens return; 1123789Sahrens 11241544Seschrock if (arc.c <= arc.c_min) 11251544Seschrock return; 11261544Seschrock 1127789Sahrens mutex_enter(&arc_reclaim_lock); 1128789Sahrens 11292048Sstans #ifdef _KERNEL 11302048Sstans to_free = MAX(arc.c >> 3, ptob(needfree)); 11312048Sstans #else 11322048Sstans to_free = arc.c >> 3; 11332048Sstans #endif 11342048Sstans if (arc.c > to_free) 11352048Sstans atomic_add_64(&arc.c, -to_free); 11362048Sstans else 11372048Sstans arc.c = arc.c_min; 11382048Sstans 11391544Seschrock atomic_add_64(&arc.p, -(arc.p >> 3)); 11401544Seschrock if (arc.c > arc.size) 11411544Seschrock arc.c = arc.size; 1142789Sahrens if (arc.c < arc.c_min) 1143789Sahrens arc.c = arc.c_min; 11441544Seschrock if (arc.p > arc.c) 11451544Seschrock arc.p = (arc.c >> 1); 11461544Seschrock ASSERT((int64_t)arc.p >= 0); 1147789Sahrens 1148789Sahrens arc_adjust(); 1149789Sahrens 1150789Sahrens mutex_exit(&arc_reclaim_lock); 1151789Sahrens } 1152789Sahrens 1153789Sahrens static int 1154789Sahrens arc_reclaim_needed(void) 1155789Sahrens { 1156789Sahrens uint64_t extra; 1157789Sahrens 1158789Sahrens #ifdef _KERNEL 11592048Sstans 11602048Sstans if (needfree) 11612048Sstans return (1); 11622048Sstans 1163789Sahrens /* 1164789Sahrens * take 'desfree' extra pages, so we reclaim sooner, rather than later 1165789Sahrens */ 1166789Sahrens extra = desfree; 1167789Sahrens 1168789Sahrens /* 1169789Sahrens * check that we're out of range of the pageout scanner. It starts to 1170789Sahrens * schedule paging if freemem is less than lotsfree and needfree. 1171789Sahrens * lotsfree is the high-water mark for pageout, and needfree is the 1172789Sahrens * number of needed free pages. We add extra pages here to make sure 1173789Sahrens * the scanner doesn't start up while we're freeing memory. 1174789Sahrens */ 1175789Sahrens if (freemem < lotsfree + needfree + extra) 1176789Sahrens return (1); 1177789Sahrens 1178789Sahrens /* 1179789Sahrens * check to make sure that swapfs has enough space so that anon 1180789Sahrens * reservations can still succeeed. anon_resvmem() checks that the 1181789Sahrens * availrmem is greater than swapfs_minfree, and the number of reserved 1182789Sahrens * swap pages. We also add a bit of extra here just to prevent 1183789Sahrens * circumstances from getting really dire. 1184789Sahrens */ 1185789Sahrens if (availrmem < swapfs_minfree + swapfs_reserve + extra) 1186789Sahrens return (1); 1187789Sahrens 11881936Smaybee #if defined(__i386) 1189789Sahrens /* 1190789Sahrens * If we're on an i386 platform, it's possible that we'll exhaust the 1191789Sahrens * kernel heap space before we ever run out of available physical 1192789Sahrens * memory. Most checks of the size of the heap_area compare against 1193789Sahrens * tune.t_minarmem, which is the minimum available real memory that we 1194789Sahrens * can have in the system. However, this is generally fixed at 25 pages 1195789Sahrens * which is so low that it's useless. In this comparison, we seek to 1196789Sahrens * calculate the total heap-size, and reclaim if more than 3/4ths of the 1197789Sahrens * heap is allocated. (Or, in the caclulation, if less than 1/4th is 1198789Sahrens * free) 1199789Sahrens */ 1200789Sahrens if (btop(vmem_size(heap_arena, VMEM_FREE)) < 1201789Sahrens (btop(vmem_size(heap_arena, VMEM_FREE | VMEM_ALLOC)) >> 2)) 1202789Sahrens return (1); 1203789Sahrens #endif 1204789Sahrens 1205789Sahrens #else 1206789Sahrens if (spa_get_random(100) == 0) 1207789Sahrens return (1); 1208789Sahrens #endif 1209789Sahrens return (0); 1210789Sahrens } 1211789Sahrens 1212789Sahrens static void 1213789Sahrens arc_kmem_reap_now(arc_reclaim_strategy_t strat) 1214789Sahrens { 1215789Sahrens size_t i; 1216789Sahrens kmem_cache_t *prev_cache = NULL; 1217789Sahrens extern kmem_cache_t *zio_buf_cache[]; 1218789Sahrens 12191484Sek110237 #ifdef _KERNEL 12201484Sek110237 /* 12211484Sek110237 * First purge some DNLC entries, in case the DNLC is using 12221484Sek110237 * up too much memory. 12231484Sek110237 */ 12241505Sek110237 dnlc_reduce_cache((void *)(uintptr_t)arc_reduce_dnlc_percent); 12251936Smaybee 12261936Smaybee #if defined(__i386) 12271936Smaybee /* 12281936Smaybee * Reclaim unused memory from all kmem caches. 12291936Smaybee */ 12301936Smaybee kmem_reap(); 12311936Smaybee #endif 12321484Sek110237 #endif 12331484Sek110237 1234789Sahrens /* 12351544Seschrock * An agressive reclamation will shrink the cache size as well as 12361544Seschrock * reap free buffers from the arc kmem caches. 1237789Sahrens */ 1238789Sahrens if (strat == ARC_RECLAIM_AGGR) 12391544Seschrock arc_kmem_reclaim(); 1240789Sahrens 1241789Sahrens for (i = 0; i < SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT; i++) { 1242789Sahrens if (zio_buf_cache[i] != prev_cache) { 1243789Sahrens prev_cache = zio_buf_cache[i]; 1244789Sahrens kmem_cache_reap_now(zio_buf_cache[i]); 1245789Sahrens } 1246789Sahrens } 12471544Seschrock kmem_cache_reap_now(buf_cache); 12481544Seschrock kmem_cache_reap_now(hdr_cache); 1249789Sahrens } 1250789Sahrens 1251789Sahrens static void 1252789Sahrens arc_reclaim_thread(void) 1253789Sahrens { 1254789Sahrens clock_t growtime = 0; 1255789Sahrens arc_reclaim_strategy_t last_reclaim = ARC_RECLAIM_CONS; 1256789Sahrens callb_cpr_t cpr; 1257789Sahrens 1258789Sahrens CALLB_CPR_INIT(&cpr, &arc_reclaim_thr_lock, callb_generic_cpr, FTAG); 1259789Sahrens 1260789Sahrens mutex_enter(&arc_reclaim_thr_lock); 1261789Sahrens while (arc_thread_exit == 0) { 1262789Sahrens if (arc_reclaim_needed()) { 1263789Sahrens 1264789Sahrens if (arc.no_grow) { 1265789Sahrens if (last_reclaim == ARC_RECLAIM_CONS) { 1266789Sahrens last_reclaim = ARC_RECLAIM_AGGR; 1267789Sahrens } else { 1268789Sahrens last_reclaim = ARC_RECLAIM_CONS; 1269789Sahrens } 1270789Sahrens } else { 1271789Sahrens arc.no_grow = TRUE; 1272789Sahrens last_reclaim = ARC_RECLAIM_AGGR; 1273789Sahrens membar_producer(); 1274789Sahrens } 1275789Sahrens 1276789Sahrens /* reset the growth delay for every reclaim */ 1277789Sahrens growtime = lbolt + (arc_grow_retry * hz); 1278789Sahrens 1279789Sahrens arc_kmem_reap_now(last_reclaim); 1280789Sahrens 1281789Sahrens } else if ((growtime > 0) && ((growtime - lbolt) <= 0)) { 1282789Sahrens arc.no_grow = FALSE; 1283789Sahrens } 1284789Sahrens 12851544Seschrock if (arc_eviction_list != NULL) 12861544Seschrock arc_do_user_evicts(); 12871544Seschrock 1288789Sahrens /* block until needed, or one second, whichever is shorter */ 1289789Sahrens CALLB_CPR_SAFE_BEGIN(&cpr); 1290789Sahrens (void) cv_timedwait(&arc_reclaim_thr_cv, 1291789Sahrens &arc_reclaim_thr_lock, (lbolt + hz)); 1292789Sahrens CALLB_CPR_SAFE_END(&cpr, &arc_reclaim_thr_lock); 1293789Sahrens } 1294789Sahrens 1295789Sahrens arc_thread_exit = 0; 1296789Sahrens cv_broadcast(&arc_reclaim_thr_cv); 1297789Sahrens CALLB_CPR_EXIT(&cpr); /* drops arc_reclaim_thr_lock */ 1298789Sahrens thread_exit(); 1299789Sahrens } 1300789Sahrens 13011544Seschrock /* 13021544Seschrock * Adapt arc info given the number of bytes we are trying to add and 13031544Seschrock * the state that we are comming from. This function is only called 13041544Seschrock * when we are adding new content to the cache. 13051544Seschrock */ 1306789Sahrens static void 13071544Seschrock arc_adapt(int bytes, arc_state_t *state) 1308789Sahrens { 13091544Seschrock int mult; 13101544Seschrock 13111544Seschrock ASSERT(bytes > 0); 1312789Sahrens /* 13131544Seschrock * Adapt the target size of the MRU list: 13141544Seschrock * - if we just hit in the MRU ghost list, then increase 13151544Seschrock * the target size of the MRU list. 13161544Seschrock * - if we just hit in the MFU ghost list, then increase 13171544Seschrock * the target size of the MFU list by decreasing the 13181544Seschrock * target size of the MRU list. 1319789Sahrens */ 13201544Seschrock if (state == arc.mru_ghost) { 13211544Seschrock mult = ((arc.mru_ghost->size >= arc.mfu_ghost->size) ? 13221544Seschrock 1 : (arc.mfu_ghost->size/arc.mru_ghost->size)); 13231544Seschrock 13241544Seschrock arc.p = MIN(arc.c, arc.p + bytes * mult); 13251544Seschrock } else if (state == arc.mfu_ghost) { 13261544Seschrock mult = ((arc.mfu_ghost->size >= arc.mru_ghost->size) ? 13271544Seschrock 1 : (arc.mru_ghost->size/arc.mfu_ghost->size)); 13281544Seschrock 13291544Seschrock arc.p = MAX(0, (int64_t)arc.p - bytes * mult); 13301544Seschrock } 13311544Seschrock ASSERT((int64_t)arc.p >= 0); 1332789Sahrens 1333789Sahrens if (arc_reclaim_needed()) { 1334789Sahrens cv_signal(&arc_reclaim_thr_cv); 1335789Sahrens return; 1336789Sahrens } 1337789Sahrens 1338789Sahrens if (arc.no_grow) 1339789Sahrens return; 1340789Sahrens 13411544Seschrock if (arc.c >= arc.c_max) 13421544Seschrock return; 13431544Seschrock 1344789Sahrens /* 13451544Seschrock * If we're within (2 * maxblocksize) bytes of the target 13461544Seschrock * cache size, increment the target cache size 1347789Sahrens */ 13481544Seschrock if (arc.size > arc.c - (2ULL << SPA_MAXBLOCKSHIFT)) { 13491544Seschrock atomic_add_64(&arc.c, (int64_t)bytes); 1350789Sahrens if (arc.c > arc.c_max) 1351789Sahrens arc.c = arc.c_max; 13521544Seschrock else if (state == arc.anon) 13531544Seschrock atomic_add_64(&arc.p, (int64_t)bytes); 13541544Seschrock if (arc.p > arc.c) 13551544Seschrock arc.p = arc.c; 1356789Sahrens } 13571544Seschrock ASSERT((int64_t)arc.p >= 0); 1358789Sahrens } 1359789Sahrens 1360789Sahrens /* 13611544Seschrock * Check if the cache has reached its limits and eviction is required 13621544Seschrock * prior to insert. 1363789Sahrens */ 1364789Sahrens static int 1365789Sahrens arc_evict_needed() 1366789Sahrens { 1367789Sahrens if (arc_reclaim_needed()) 1368789Sahrens return (1); 1369789Sahrens 13701544Seschrock return (arc.size > arc.c); 1371789Sahrens } 1372789Sahrens 1373789Sahrens /* 1374789Sahrens * The state, supplied as the first argument, is going to have something 1375789Sahrens * inserted on its behalf. So, determine which cache must be victimized to 1376789Sahrens * satisfy an insertion for this state. We have the following cases: 1377789Sahrens * 13781544Seschrock * 1. Insert for MRU, p > sizeof(arc.anon + arc.mru) -> 1379789Sahrens * In this situation if we're out of space, but the resident size of the MFU is 1380789Sahrens * under the limit, victimize the MFU cache to satisfy this insertion request. 1381789Sahrens * 13821544Seschrock * 2. Insert for MRU, p <= sizeof(arc.anon + arc.mru) -> 1383789Sahrens * Here, we've used up all of the available space for the MRU, so we need to 1384789Sahrens * evict from our own cache instead. Evict from the set of resident MRU 1385789Sahrens * entries. 1386789Sahrens * 13871544Seschrock * 3. Insert for MFU (c - p) > sizeof(arc.mfu) -> 1388789Sahrens * c minus p represents the MFU space in the cache, since p is the size of the 1389789Sahrens * cache that is dedicated to the MRU. In this situation there's still space on 1390789Sahrens * the MFU side, so the MRU side needs to be victimized. 1391789Sahrens * 13921544Seschrock * 4. Insert for MFU (c - p) < sizeof(arc.mfu) -> 1393789Sahrens * MFU's resident set is consuming more space than it has been allotted. In 1394789Sahrens * this situation, we must victimize our own cache, the MFU, for this insertion. 1395789Sahrens */ 1396789Sahrens static void 1397789Sahrens arc_evict_for_state(arc_state_t *state, uint64_t bytes) 1398789Sahrens { 1399789Sahrens uint64_t mru_used; 1400789Sahrens uint64_t mfu_space; 1401789Sahrens uint64_t evicted; 1402789Sahrens 14031544Seschrock ASSERT(state == arc.mru || state == arc.mfu); 1404789Sahrens 14051544Seschrock if (state == arc.mru) { 14061544Seschrock mru_used = arc.anon->size + arc.mru->size; 1407789Sahrens if (arc.p > mru_used) { 1408789Sahrens /* case 1 */ 14091544Seschrock evicted = arc_evict(arc.mfu, bytes); 1410789Sahrens if (evicted < bytes) { 1411789Sahrens arc_adjust(); 1412789Sahrens } 1413789Sahrens } else { 1414789Sahrens /* case 2 */ 14151544Seschrock evicted = arc_evict(arc.mru, bytes); 1416789Sahrens if (evicted < bytes) { 1417789Sahrens arc_adjust(); 1418789Sahrens } 1419789Sahrens } 1420789Sahrens } else { 14211544Seschrock /* MFU case */ 1422789Sahrens mfu_space = arc.c - arc.p; 14231544Seschrock if (mfu_space > arc.mfu->size) { 1424789Sahrens /* case 3 */ 14251544Seschrock evicted = arc_evict(arc.mru, bytes); 1426789Sahrens if (evicted < bytes) { 1427789Sahrens arc_adjust(); 1428789Sahrens } 1429789Sahrens } else { 1430789Sahrens /* case 4 */ 14311544Seschrock evicted = arc_evict(arc.mfu, bytes); 1432789Sahrens if (evicted < bytes) { 1433789Sahrens arc_adjust(); 1434789Sahrens } 1435789Sahrens } 1436789Sahrens } 1437789Sahrens } 1438789Sahrens 1439789Sahrens /* 1440789Sahrens * This routine is called whenever a buffer is accessed. 14411544Seschrock * NOTE: the hash lock is dropped in this function. 1442789Sahrens */ 1443789Sahrens static void 14441544Seschrock arc_access_and_exit(arc_buf_hdr_t *buf, kmutex_t *hash_lock) 1445789Sahrens { 14461544Seschrock arc_state_t *evict_state = NULL; 14471544Seschrock int blksz; 1448789Sahrens 1449789Sahrens ASSERT(MUTEX_HELD(hash_lock)); 1450789Sahrens 1451789Sahrens blksz = buf->b_size; 1452789Sahrens 1453789Sahrens if (buf->b_state == arc.anon) { 1454789Sahrens /* 1455789Sahrens * This buffer is not in the cache, and does not 1456789Sahrens * appear in our "ghost" list. Add the new buffer 1457789Sahrens * to the MRU state. 1458789Sahrens */ 1459789Sahrens 14601544Seschrock arc_adapt(blksz, arc.anon); 14611544Seschrock if (arc_evict_needed()) 14621544Seschrock evict_state = arc.mru; 1463789Sahrens 1464789Sahrens ASSERT(buf->b_arc_access == 0); 1465789Sahrens buf->b_arc_access = lbolt; 14661544Seschrock DTRACE_PROBE1(new_state__mru, arc_buf_hdr_t *, buf); 14671544Seschrock arc_change_state(arc.mru, buf, hash_lock); 1468789Sahrens 14691544Seschrock } else if (buf->b_state == arc.mru) { 1470789Sahrens /* 1471789Sahrens * If this buffer is in the MRU-top state and has the prefetch 1472789Sahrens * flag, the first read was actually part of a prefetch. In 1473789Sahrens * this situation, we simply want to clear the flag and return. 1474789Sahrens * A subsequent access should bump this into the MFU state. 1475789Sahrens */ 1476789Sahrens if ((buf->b_flags & ARC_PREFETCH) != 0) { 1477789Sahrens buf->b_flags &= ~ARC_PREFETCH; 14781544Seschrock atomic_add_64(&arc.mru->hits, 1); 14791544Seschrock mutex_exit(hash_lock); 1480789Sahrens return; 1481789Sahrens } 1482789Sahrens 1483789Sahrens /* 1484789Sahrens * This buffer has been "accessed" only once so far, 1485789Sahrens * but it is still in the cache. Move it to the MFU 1486789Sahrens * state. 1487789Sahrens */ 1488789Sahrens if (lbolt > buf->b_arc_access + ARC_MINTIME) { 1489789Sahrens /* 1490789Sahrens * More than 125ms have passed since we 1491789Sahrens * instantiated this buffer. Move it to the 1492789Sahrens * most frequently used state. 1493789Sahrens */ 1494789Sahrens buf->b_arc_access = lbolt; 14951544Seschrock DTRACE_PROBE1(new_state__mfu, arc_buf_hdr_t *, buf); 14961544Seschrock arc_change_state(arc.mfu, buf, hash_lock); 1497789Sahrens } 14981544Seschrock atomic_add_64(&arc.mru->hits, 1); 14991544Seschrock } else if (buf->b_state == arc.mru_ghost) { 1500789Sahrens arc_state_t *new_state; 1501789Sahrens /* 1502789Sahrens * This buffer has been "accessed" recently, but 1503789Sahrens * was evicted from the cache. Move it to the 1504789Sahrens * MFU state. 1505789Sahrens */ 1506789Sahrens 1507789Sahrens if (buf->b_flags & ARC_PREFETCH) { 15081544Seschrock new_state = arc.mru; 15091544Seschrock buf->b_flags &= ~ARC_PREFETCH; 15101544Seschrock DTRACE_PROBE1(new_state__mru, arc_buf_hdr_t *, buf); 1511789Sahrens } else { 15121544Seschrock new_state = arc.mfu; 15131544Seschrock DTRACE_PROBE1(new_state__mfu, arc_buf_hdr_t *, buf); 1514789Sahrens } 1515789Sahrens 15161544Seschrock arc_adapt(blksz, arc.mru_ghost); 15171544Seschrock if (arc_evict_needed()) 15181544Seschrock evict_state = new_state; 1519789Sahrens 1520789Sahrens buf->b_arc_access = lbolt; 1521789Sahrens arc_change_state(new_state, buf, hash_lock); 1522789Sahrens 15231544Seschrock atomic_add_64(&arc.mru_ghost->hits, 1); 15241544Seschrock } else if (buf->b_state == arc.mfu) { 1525789Sahrens /* 1526789Sahrens * This buffer has been accessed more than once and is 1527789Sahrens * still in the cache. Keep it in the MFU state. 1528789Sahrens * 1529789Sahrens * NOTE: the add_reference() that occurred when we did 1530789Sahrens * the arc_read() should have kicked this off the list, 1531789Sahrens * so even if it was a prefetch, it will be put back at 1532789Sahrens * the head of the list when we remove_reference(). 1533789Sahrens */ 15341544Seschrock atomic_add_64(&arc.mfu->hits, 1); 15351544Seschrock } else if (buf->b_state == arc.mfu_ghost) { 1536789Sahrens /* 1537789Sahrens * This buffer has been accessed more than once but has 1538789Sahrens * been evicted from the cache. Move it back to the 1539789Sahrens * MFU state. 1540789Sahrens */ 1541789Sahrens 15421544Seschrock arc_adapt(blksz, arc.mfu_ghost); 15431544Seschrock if (arc_evict_needed()) 15441544Seschrock evict_state = arc.mfu; 1545789Sahrens 1546789Sahrens buf->b_arc_access = lbolt; 15471544Seschrock DTRACE_PROBE1(new_state__mfu, arc_buf_hdr_t *, buf); 15481544Seschrock arc_change_state(arc.mfu, buf, hash_lock); 1549789Sahrens 15501544Seschrock atomic_add_64(&arc.mfu_ghost->hits, 1); 1551789Sahrens } else { 1552789Sahrens ASSERT(!"invalid arc state"); 1553789Sahrens } 1554789Sahrens 15551544Seschrock mutex_exit(hash_lock); 15561544Seschrock if (evict_state) 15571544Seschrock arc_evict_for_state(evict_state, blksz); 1558789Sahrens } 1559789Sahrens 1560789Sahrens /* a generic arc_done_func_t which you can use */ 1561789Sahrens /* ARGSUSED */ 1562789Sahrens void 1563789Sahrens arc_bcopy_func(zio_t *zio, arc_buf_t *buf, void *arg) 1564789Sahrens { 1565789Sahrens bcopy(buf->b_data, arg, buf->b_hdr->b_size); 15661544Seschrock VERIFY(arc_buf_remove_ref(buf, arg) == 1); 1567789Sahrens } 1568789Sahrens 1569789Sahrens /* a generic arc_done_func_t which you can use */ 1570789Sahrens void 1571789Sahrens arc_getbuf_func(zio_t *zio, arc_buf_t *buf, void *arg) 1572789Sahrens { 1573789Sahrens arc_buf_t **bufp = arg; 1574789Sahrens if (zio && zio->io_error) { 15751544Seschrock VERIFY(arc_buf_remove_ref(buf, arg) == 1); 1576789Sahrens *bufp = NULL; 1577789Sahrens } else { 1578789Sahrens *bufp = buf; 1579789Sahrens } 1580789Sahrens } 1581789Sahrens 1582789Sahrens static void 1583789Sahrens arc_read_done(zio_t *zio) 1584789Sahrens { 15851589Smaybee arc_buf_hdr_t *hdr, *found; 1586789Sahrens arc_buf_t *buf; 1587789Sahrens arc_buf_t *abuf; /* buffer we're assigning to callback */ 1588789Sahrens kmutex_t *hash_lock; 1589789Sahrens arc_callback_t *callback_list, *acb; 1590789Sahrens int freeable = FALSE; 1591789Sahrens 1592789Sahrens buf = zio->io_private; 1593789Sahrens hdr = buf->b_hdr; 1594789Sahrens 15951589Smaybee /* 15961589Smaybee * The hdr was inserted into hash-table and removed from lists 15971589Smaybee * prior to starting I/O. We should find this header, since 15981589Smaybee * it's in the hash table, and it should be legit since it's 15991589Smaybee * not possible to evict it during the I/O. The only possible 16001589Smaybee * reason for it not to be found is if we were freed during the 16011589Smaybee * read. 16021589Smaybee */ 16031589Smaybee found = buf_hash_find(zio->io_spa, &hdr->b_dva, hdr->b_birth, 1604789Sahrens &hash_lock); 1605789Sahrens 16061589Smaybee ASSERT((found == NULL && HDR_FREED_IN_READ(hdr) && hash_lock == NULL) || 16071589Smaybee (found == hdr && DVA_EQUAL(&hdr->b_dva, BP_IDENTITY(zio->io_bp)))); 1608789Sahrens 1609789Sahrens /* byteswap if necessary */ 1610789Sahrens callback_list = hdr->b_acb; 1611789Sahrens ASSERT(callback_list != NULL); 1612789Sahrens if (BP_SHOULD_BYTESWAP(zio->io_bp) && callback_list->acb_byteswap) 1613789Sahrens callback_list->acb_byteswap(buf->b_data, hdr->b_size); 1614789Sahrens 1615789Sahrens /* create copies of the data buffer for the callers */ 1616789Sahrens abuf = buf; 1617789Sahrens for (acb = callback_list; acb; acb = acb->acb_next) { 1618789Sahrens if (acb->acb_done) { 1619789Sahrens if (abuf == NULL) { 1620789Sahrens abuf = kmem_cache_alloc(buf_cache, KM_SLEEP); 16211544Seschrock abuf->b_data = arc_data_copy(hdr, buf->b_data); 1622789Sahrens abuf->b_hdr = hdr; 16231544Seschrock abuf->b_efunc = NULL; 16241544Seschrock abuf->b_private = NULL; 1625789Sahrens abuf->b_next = hdr->b_buf; 1626789Sahrens hdr->b_buf = abuf; 16271544Seschrock hdr->b_datacnt += 1; 1628789Sahrens } 1629789Sahrens acb->acb_buf = abuf; 1630789Sahrens abuf = NULL; 1631789Sahrens } else { 1632789Sahrens /* 1633789Sahrens * The caller did not provide a callback function. 1634789Sahrens * In this case, we should just remove the reference. 1635789Sahrens */ 1636789Sahrens if (HDR_FREED_IN_READ(hdr)) { 1637789Sahrens ASSERT3P(hdr->b_state, ==, arc.anon); 1638789Sahrens (void) refcount_remove(&hdr->b_refcnt, 1639789Sahrens acb->acb_private); 1640789Sahrens } else { 1641789Sahrens (void) remove_reference(hdr, hash_lock, 1642789Sahrens acb->acb_private); 1643789Sahrens } 1644789Sahrens } 1645789Sahrens } 1646789Sahrens hdr->b_acb = NULL; 1647789Sahrens hdr->b_flags &= ~ARC_IO_IN_PROGRESS; 16481544Seschrock ASSERT(!HDR_BUF_AVAILABLE(hdr)); 16491544Seschrock if (abuf == buf) 16501544Seschrock hdr->b_flags |= ARC_BUF_AVAILABLE; 1651789Sahrens 1652789Sahrens ASSERT(refcount_is_zero(&hdr->b_refcnt) || callback_list != NULL); 1653789Sahrens 1654789Sahrens if (zio->io_error != 0) { 1655789Sahrens hdr->b_flags |= ARC_IO_ERROR; 1656789Sahrens if (hdr->b_state != arc.anon) 1657789Sahrens arc_change_state(arc.anon, hdr, hash_lock); 16581544Seschrock if (HDR_IN_HASH_TABLE(hdr)) 16591544Seschrock buf_hash_remove(hdr); 1660789Sahrens freeable = refcount_is_zero(&hdr->b_refcnt); 16611544Seschrock /* translate checksum errors into IO errors */ 16621544Seschrock if (zio->io_error == ECKSUM) 16631544Seschrock zio->io_error = EIO; 1664789Sahrens } 1665789Sahrens 16661544Seschrock /* 16671544Seschrock * Broadcast before we drop the hash_lock. This is less efficient, 16681544Seschrock * but avoids the possibility that the hdr (and hence the cv) might 16691544Seschrock * be freed before we get to the cv_broadcast(). 16701544Seschrock */ 16711544Seschrock cv_broadcast(&hdr->b_cv); 16721544Seschrock 16731589Smaybee if (hash_lock) { 1674789Sahrens /* 1675789Sahrens * Only call arc_access on anonymous buffers. This is because 1676789Sahrens * if we've issued an I/O for an evicted buffer, we've already 1677789Sahrens * called arc_access (to prevent any simultaneous readers from 1678789Sahrens * getting confused). 1679789Sahrens */ 1680789Sahrens if (zio->io_error == 0 && hdr->b_state == arc.anon) 16811544Seschrock arc_access_and_exit(hdr, hash_lock); 16821544Seschrock else 16831544Seschrock mutex_exit(hash_lock); 1684789Sahrens } else { 1685789Sahrens /* 1686789Sahrens * This block was freed while we waited for the read to 1687789Sahrens * complete. It has been removed from the hash table and 1688789Sahrens * moved to the anonymous state (so that it won't show up 1689789Sahrens * in the cache). 1690789Sahrens */ 1691789Sahrens ASSERT3P(hdr->b_state, ==, arc.anon); 1692789Sahrens freeable = refcount_is_zero(&hdr->b_refcnt); 1693789Sahrens } 1694789Sahrens 1695789Sahrens /* execute each callback and free its structure */ 1696789Sahrens while ((acb = callback_list) != NULL) { 1697789Sahrens if (acb->acb_done) 1698789Sahrens acb->acb_done(zio, acb->acb_buf, acb->acb_private); 1699789Sahrens 1700789Sahrens if (acb->acb_zio_dummy != NULL) { 1701789Sahrens acb->acb_zio_dummy->io_error = zio->io_error; 1702789Sahrens zio_nowait(acb->acb_zio_dummy); 1703789Sahrens } 1704789Sahrens 1705789Sahrens callback_list = acb->acb_next; 1706789Sahrens kmem_free(acb, sizeof (arc_callback_t)); 1707789Sahrens } 1708789Sahrens 1709789Sahrens if (freeable) 17101544Seschrock arc_hdr_destroy(hdr); 1711789Sahrens } 1712789Sahrens 1713789Sahrens /* 1714789Sahrens * "Read" the block block at the specified DVA (in bp) via the 1715789Sahrens * cache. If the block is found in the cache, invoke the provided 1716789Sahrens * callback immediately and return. Note that the `zio' parameter 1717789Sahrens * in the callback will be NULL in this case, since no IO was 1718789Sahrens * required. If the block is not in the cache pass the read request 1719789Sahrens * on to the spa with a substitute callback function, so that the 1720789Sahrens * requested block will be added to the cache. 1721789Sahrens * 1722789Sahrens * If a read request arrives for a block that has a read in-progress, 1723789Sahrens * either wait for the in-progress read to complete (and return the 1724789Sahrens * results); or, if this is a read with a "done" func, add a record 1725789Sahrens * to the read to invoke the "done" func when the read completes, 1726789Sahrens * and return; or just return. 1727789Sahrens * 1728789Sahrens * arc_read_done() will invoke all the requested "done" functions 1729789Sahrens * for readers of this block. 1730789Sahrens */ 1731789Sahrens int 1732789Sahrens arc_read(zio_t *pio, spa_t *spa, blkptr_t *bp, arc_byteswap_func_t *swap, 1733789Sahrens arc_done_func_t *done, void *private, int priority, int flags, 17341544Seschrock uint32_t arc_flags, zbookmark_t *zb) 1735789Sahrens { 1736789Sahrens arc_buf_hdr_t *hdr; 1737789Sahrens arc_buf_t *buf; 1738789Sahrens kmutex_t *hash_lock; 1739789Sahrens zio_t *rzio; 1740789Sahrens 1741789Sahrens top: 1742789Sahrens hdr = buf_hash_find(spa, BP_IDENTITY(bp), bp->blk_birth, &hash_lock); 17431544Seschrock if (hdr && hdr->b_datacnt > 0) { 1744789Sahrens 1745789Sahrens if (HDR_IO_IN_PROGRESS(hdr)) { 1746789Sahrens if ((arc_flags & ARC_NOWAIT) && done) { 1747789Sahrens arc_callback_t *acb = NULL; 1748789Sahrens 1749789Sahrens acb = kmem_zalloc(sizeof (arc_callback_t), 1750789Sahrens KM_SLEEP); 1751789Sahrens acb->acb_done = done; 1752789Sahrens acb->acb_private = private; 1753789Sahrens acb->acb_byteswap = swap; 1754789Sahrens if (pio != NULL) 1755789Sahrens acb->acb_zio_dummy = zio_null(pio, 1756789Sahrens spa, NULL, NULL, flags); 1757789Sahrens 1758789Sahrens ASSERT(acb->acb_done != NULL); 1759789Sahrens acb->acb_next = hdr->b_acb; 1760789Sahrens hdr->b_acb = acb; 1761789Sahrens add_reference(hdr, hash_lock, private); 1762789Sahrens mutex_exit(hash_lock); 1763789Sahrens return (0); 1764789Sahrens } else if (arc_flags & ARC_WAIT) { 1765789Sahrens cv_wait(&hdr->b_cv, hash_lock); 1766789Sahrens mutex_exit(hash_lock); 1767789Sahrens goto top; 1768789Sahrens } 1769789Sahrens mutex_exit(hash_lock); 1770789Sahrens return (0); 1771789Sahrens } 1772789Sahrens 17731544Seschrock ASSERT(hdr->b_state == arc.mru || hdr->b_state == arc.mfu); 1774789Sahrens 17751544Seschrock if (done) { 17761544Seschrock /* 17771544Seschrock * If this block is already in use, create a new 17781544Seschrock * copy of the data so that we will be guaranteed 17791544Seschrock * that arc_release() will always succeed. 17801544Seschrock */ 17811544Seschrock buf = hdr->b_buf; 17821544Seschrock ASSERT(buf); 17831544Seschrock ASSERT(buf->b_data); 17841544Seschrock if (!HDR_BUF_AVAILABLE(hdr)) { 17851544Seschrock void *data = arc_data_copy(hdr, buf->b_data); 17861544Seschrock buf = kmem_cache_alloc(buf_cache, KM_SLEEP); 17871544Seschrock buf->b_hdr = hdr; 17881544Seschrock buf->b_data = data; 17891544Seschrock buf->b_efunc = NULL; 17901544Seschrock buf->b_private = NULL; 17911544Seschrock buf->b_next = hdr->b_buf; 17921544Seschrock hdr->b_buf = buf; 17931544Seschrock hdr->b_datacnt += 1; 17941544Seschrock } else { 17951544Seschrock ASSERT(buf->b_efunc == NULL); 17961544Seschrock hdr->b_flags &= ~ARC_BUF_AVAILABLE; 17971544Seschrock } 1798789Sahrens add_reference(hdr, hash_lock, private); 1799789Sahrens } 1800789Sahrens DTRACE_PROBE1(arc__hit, arc_buf_hdr_t *, hdr); 18011544Seschrock arc_access_and_exit(hdr, hash_lock); 1802789Sahrens atomic_add_64(&arc.hits, 1); 1803789Sahrens if (done) 1804789Sahrens done(NULL, buf, private); 1805789Sahrens } else { 1806789Sahrens uint64_t size = BP_GET_LSIZE(bp); 1807789Sahrens arc_callback_t *acb; 1808789Sahrens 1809789Sahrens if (hdr == NULL) { 1810789Sahrens /* this block is not in the cache */ 1811789Sahrens arc_buf_hdr_t *exists; 1812789Sahrens 1813789Sahrens buf = arc_buf_alloc(spa, size, private); 1814789Sahrens hdr = buf->b_hdr; 1815789Sahrens hdr->b_dva = *BP_IDENTITY(bp); 1816789Sahrens hdr->b_birth = bp->blk_birth; 1817789Sahrens hdr->b_cksum0 = bp->blk_cksum.zc_word[0]; 1818789Sahrens exists = buf_hash_insert(hdr, &hash_lock); 1819789Sahrens if (exists) { 1820789Sahrens /* somebody beat us to the hash insert */ 1821789Sahrens mutex_exit(hash_lock); 1822789Sahrens bzero(&hdr->b_dva, sizeof (dva_t)); 1823789Sahrens hdr->b_birth = 0; 1824789Sahrens hdr->b_cksum0 = 0; 18251544Seschrock (void) arc_buf_remove_ref(buf, private); 1826789Sahrens goto top; /* restart the IO request */ 1827789Sahrens } 1828789Sahrens 1829789Sahrens } else { 1830789Sahrens /* this block is in the ghost cache */ 18311544Seschrock ASSERT(GHOST_STATE(hdr->b_state)); 18321544Seschrock ASSERT(!HDR_IO_IN_PROGRESS(hdr)); 1833789Sahrens add_reference(hdr, hash_lock, private); 18341544Seschrock ASSERT3U(refcount_count(&hdr->b_refcnt), ==, 1); 1835789Sahrens 18361544Seschrock ASSERT(hdr->b_buf == NULL); 1837789Sahrens buf = kmem_cache_alloc(buf_cache, KM_SLEEP); 18381544Seschrock buf->b_hdr = hdr; 18391544Seschrock buf->b_efunc = NULL; 18401544Seschrock buf->b_private = NULL; 18411544Seschrock buf->b_next = NULL; 18421544Seschrock hdr->b_buf = buf; 1843789Sahrens buf->b_data = zio_buf_alloc(hdr->b_size); 1844789Sahrens atomic_add_64(&arc.size, hdr->b_size); 18451544Seschrock ASSERT(hdr->b_datacnt == 0); 18461544Seschrock hdr->b_datacnt = 1; 1847789Sahrens } 1848789Sahrens 1849789Sahrens acb = kmem_zalloc(sizeof (arc_callback_t), KM_SLEEP); 1850789Sahrens acb->acb_done = done; 1851789Sahrens acb->acb_private = private; 1852789Sahrens acb->acb_byteswap = swap; 1853789Sahrens 1854789Sahrens ASSERT(hdr->b_acb == NULL); 1855789Sahrens hdr->b_acb = acb; 1856789Sahrens 1857789Sahrens /* 1858789Sahrens * If this DVA is part of a prefetch, mark the buf 1859789Sahrens * header with the prefetch flag 1860789Sahrens */ 1861789Sahrens if (arc_flags & ARC_PREFETCH) 1862789Sahrens hdr->b_flags |= ARC_PREFETCH; 1863789Sahrens hdr->b_flags |= ARC_IO_IN_PROGRESS; 1864789Sahrens 1865789Sahrens /* 1866789Sahrens * If the buffer has been evicted, migrate it to a present state 1867789Sahrens * before issuing the I/O. Once we drop the hash-table lock, 1868789Sahrens * the header will be marked as I/O in progress and have an 1869789Sahrens * attached buffer. At this point, anybody who finds this 1870789Sahrens * buffer ought to notice that it's legit but has a pending I/O. 1871789Sahrens */ 1872789Sahrens 18731544Seschrock if (GHOST_STATE(hdr->b_state)) 18741544Seschrock arc_access_and_exit(hdr, hash_lock); 18751544Seschrock else 18761544Seschrock mutex_exit(hash_lock); 1877789Sahrens 1878789Sahrens ASSERT3U(hdr->b_size, ==, size); 18791596Sahrens DTRACE_PROBE3(arc__miss, blkptr_t *, bp, uint64_t, size, 18801596Sahrens zbookmark_t *, zb); 1881789Sahrens atomic_add_64(&arc.misses, 1); 18821544Seschrock 1883789Sahrens rzio = zio_read(pio, spa, bp, buf->b_data, size, 18841544Seschrock arc_read_done, buf, priority, flags, zb); 1885789Sahrens 1886789Sahrens if (arc_flags & ARC_WAIT) 1887789Sahrens return (zio_wait(rzio)); 1888789Sahrens 1889789Sahrens ASSERT(arc_flags & ARC_NOWAIT); 1890789Sahrens zio_nowait(rzio); 1891789Sahrens } 1892789Sahrens return (0); 1893789Sahrens } 1894789Sahrens 1895789Sahrens /* 1896789Sahrens * arc_read() variant to support pool traversal. If the block is already 1897789Sahrens * in the ARC, make a copy of it; otherwise, the caller will do the I/O. 1898789Sahrens * The idea is that we don't want pool traversal filling up memory, but 1899789Sahrens * if the ARC already has the data anyway, we shouldn't pay for the I/O. 1900789Sahrens */ 1901789Sahrens int 1902789Sahrens arc_tryread(spa_t *spa, blkptr_t *bp, void *data) 1903789Sahrens { 1904789Sahrens arc_buf_hdr_t *hdr; 1905789Sahrens kmutex_t *hash_mtx; 1906789Sahrens int rc = 0; 1907789Sahrens 1908789Sahrens hdr = buf_hash_find(spa, BP_IDENTITY(bp), bp->blk_birth, &hash_mtx); 1909789Sahrens 19101544Seschrock if (hdr && hdr->b_datacnt > 0 && !HDR_IO_IN_PROGRESS(hdr)) { 19111544Seschrock arc_buf_t *buf = hdr->b_buf; 19121544Seschrock 19131544Seschrock ASSERT(buf); 19141544Seschrock while (buf->b_data == NULL) { 19151544Seschrock buf = buf->b_next; 19161544Seschrock ASSERT(buf); 19171544Seschrock } 19181544Seschrock bcopy(buf->b_data, data, hdr->b_size); 19191544Seschrock } else { 1920789Sahrens rc = ENOENT; 19211544Seschrock } 1922789Sahrens 1923789Sahrens if (hash_mtx) 1924789Sahrens mutex_exit(hash_mtx); 1925789Sahrens 1926789Sahrens return (rc); 1927789Sahrens } 1928789Sahrens 19291544Seschrock void 19301544Seschrock arc_set_callback(arc_buf_t *buf, arc_evict_func_t *func, void *private) 19311544Seschrock { 19321544Seschrock ASSERT(buf->b_hdr != NULL); 19331544Seschrock ASSERT(buf->b_hdr->b_state != arc.anon); 19341544Seschrock ASSERT(!refcount_is_zero(&buf->b_hdr->b_refcnt) || func == NULL); 19351544Seschrock buf->b_efunc = func; 19361544Seschrock buf->b_private = private; 19371544Seschrock } 19381544Seschrock 19391544Seschrock /* 19401544Seschrock * This is used by the DMU to let the ARC know that a buffer is 19411544Seschrock * being evicted, so the ARC should clean up. If this arc buf 19421544Seschrock * is not yet in the evicted state, it will be put there. 19431544Seschrock */ 19441544Seschrock int 19451544Seschrock arc_buf_evict(arc_buf_t *buf) 19461544Seschrock { 19471544Seschrock arc_buf_hdr_t *hdr; 19481544Seschrock kmutex_t *hash_lock; 19491544Seschrock arc_buf_t **bufp; 19501544Seschrock 19511544Seschrock mutex_enter(&arc_eviction_mtx); 19521544Seschrock hdr = buf->b_hdr; 19531544Seschrock if (hdr == NULL) { 19541544Seschrock /* 19551544Seschrock * We are in arc_do_user_evicts(). 19561544Seschrock * NOTE: We can't be in arc_buf_add_ref() because 19571544Seschrock * that would violate the interface rules. 19581544Seschrock */ 19591544Seschrock ASSERT(buf->b_data == NULL); 19601544Seschrock mutex_exit(&arc_eviction_mtx); 19611544Seschrock return (0); 19621544Seschrock } else if (buf->b_data == NULL) { 19631819Smaybee arc_buf_t copy = *buf; /* structure assignment */ 19641544Seschrock /* 19651819Smaybee * We are on the eviction list. Process this buffer 19661819Smaybee * now but let arc_do_user_evicts() do the reaping. 19671544Seschrock */ 19681819Smaybee buf->b_efunc = NULL; 19691819Smaybee buf->b_hdr = NULL; 19701544Seschrock mutex_exit(&arc_eviction_mtx); 19711819Smaybee VERIFY(copy.b_efunc(©) == 0); 19721819Smaybee return (1); 19731544Seschrock } else { 19741544Seschrock /* 19751544Seschrock * Prevent a race with arc_evict() 19761544Seschrock */ 19771544Seschrock ASSERT3U(refcount_count(&hdr->b_refcnt), <, hdr->b_datacnt); 19781544Seschrock buf->b_hdr = NULL; 19791544Seschrock } 19801544Seschrock mutex_exit(&arc_eviction_mtx); 19811544Seschrock 19821544Seschrock hash_lock = HDR_LOCK(hdr); 19831544Seschrock mutex_enter(hash_lock); 19841544Seschrock 19851544Seschrock ASSERT(hdr->b_state == arc.mru || hdr->b_state == arc.mfu); 19861544Seschrock 19871544Seschrock /* 19881544Seschrock * Pull this buffer off of the hdr 19891544Seschrock */ 19901544Seschrock bufp = &hdr->b_buf; 19911544Seschrock while (*bufp != buf) 19921544Seschrock bufp = &(*bufp)->b_next; 19931544Seschrock *bufp = buf->b_next; 19941544Seschrock 19951544Seschrock ASSERT(buf->b_data != NULL); 19961544Seschrock buf->b_hdr = hdr; 19971544Seschrock arc_buf_destroy(buf, FALSE); 19981544Seschrock 19991544Seschrock if (hdr->b_datacnt == 0) { 20001544Seschrock arc_state_t *old_state = hdr->b_state; 20011544Seschrock arc_state_t *evicted_state; 20021544Seschrock 20031544Seschrock ASSERT(refcount_is_zero(&hdr->b_refcnt)); 20041544Seschrock 20051544Seschrock evicted_state = 20061544Seschrock (old_state == arc.mru) ? arc.mru_ghost : arc.mfu_ghost; 20071544Seschrock 20081544Seschrock mutex_enter(&old_state->mtx); 20091544Seschrock mutex_enter(&evicted_state->mtx); 20101544Seschrock 20111544Seschrock arc_change_state(evicted_state, hdr, hash_lock); 20121544Seschrock ASSERT(HDR_IN_HASH_TABLE(hdr)); 20131544Seschrock hdr->b_flags = ARC_IN_HASH_TABLE; 20141544Seschrock 20151544Seschrock mutex_exit(&evicted_state->mtx); 20161544Seschrock mutex_exit(&old_state->mtx); 20171544Seschrock } 20181544Seschrock mutex_exit(hash_lock); 20191819Smaybee 20201544Seschrock VERIFY(buf->b_efunc(buf) == 0); 20211544Seschrock buf->b_efunc = NULL; 20221544Seschrock buf->b_private = NULL; 20231544Seschrock buf->b_hdr = NULL; 20241544Seschrock kmem_cache_free(buf_cache, buf); 20251544Seschrock return (1); 20261544Seschrock } 20271544Seschrock 2028789Sahrens /* 2029789Sahrens * Release this buffer from the cache. This must be done 2030789Sahrens * after a read and prior to modifying the buffer contents. 2031789Sahrens * If the buffer has more than one reference, we must make 2032789Sahrens * make a new hdr for the buffer. 2033789Sahrens */ 2034789Sahrens void 2035789Sahrens arc_release(arc_buf_t *buf, void *tag) 2036789Sahrens { 2037789Sahrens arc_buf_hdr_t *hdr = buf->b_hdr; 2038789Sahrens kmutex_t *hash_lock = HDR_LOCK(hdr); 2039789Sahrens 2040789Sahrens /* this buffer is not on any list */ 2041789Sahrens ASSERT(refcount_count(&hdr->b_refcnt) > 0); 2042789Sahrens 2043789Sahrens if (hdr->b_state == arc.anon) { 2044789Sahrens /* this buffer is already released */ 2045789Sahrens ASSERT3U(refcount_count(&hdr->b_refcnt), ==, 1); 2046789Sahrens ASSERT(BUF_EMPTY(hdr)); 20471544Seschrock ASSERT(buf->b_efunc == NULL); 2048789Sahrens return; 2049789Sahrens } 2050789Sahrens 2051789Sahrens mutex_enter(hash_lock); 2052789Sahrens 20531544Seschrock /* 20541544Seschrock * Do we have more than one buf? 20551544Seschrock */ 20561544Seschrock if (hdr->b_buf != buf || buf->b_next != NULL) { 2057789Sahrens arc_buf_hdr_t *nhdr; 2058789Sahrens arc_buf_t **bufp; 2059789Sahrens uint64_t blksz = hdr->b_size; 2060789Sahrens spa_t *spa = hdr->b_spa; 2061789Sahrens 20621544Seschrock ASSERT(hdr->b_datacnt > 1); 2063789Sahrens /* 2064789Sahrens * Pull the data off of this buf and attach it to 2065789Sahrens * a new anonymous buf. 2066789Sahrens */ 20671544Seschrock (void) remove_reference(hdr, hash_lock, tag); 2068789Sahrens bufp = &hdr->b_buf; 20691544Seschrock while (*bufp != buf) 2070789Sahrens bufp = &(*bufp)->b_next; 2071789Sahrens *bufp = (*bufp)->b_next; 20721544Seschrock 2073789Sahrens ASSERT3U(hdr->b_state->size, >=, hdr->b_size); 2074789Sahrens atomic_add_64(&hdr->b_state->size, -hdr->b_size); 20751544Seschrock if (refcount_is_zero(&hdr->b_refcnt)) { 20761544Seschrock ASSERT3U(hdr->b_state->lsize, >=, hdr->b_size); 20771544Seschrock atomic_add_64(&hdr->b_state->lsize, -hdr->b_size); 20781544Seschrock } 20791544Seschrock hdr->b_datacnt -= 1; 20801544Seschrock 2081789Sahrens mutex_exit(hash_lock); 2082789Sahrens 2083789Sahrens nhdr = kmem_cache_alloc(hdr_cache, KM_SLEEP); 2084789Sahrens nhdr->b_size = blksz; 2085789Sahrens nhdr->b_spa = spa; 2086789Sahrens nhdr->b_buf = buf; 2087789Sahrens nhdr->b_state = arc.anon; 2088789Sahrens nhdr->b_arc_access = 0; 2089789Sahrens nhdr->b_flags = 0; 20901544Seschrock nhdr->b_datacnt = 1; 2091789Sahrens buf->b_hdr = nhdr; 2092789Sahrens buf->b_next = NULL; 2093789Sahrens (void) refcount_add(&nhdr->b_refcnt, tag); 2094789Sahrens atomic_add_64(&arc.anon->size, blksz); 2095789Sahrens 2096789Sahrens hdr = nhdr; 2097789Sahrens } else { 20981544Seschrock ASSERT(refcount_count(&hdr->b_refcnt) == 1); 2099789Sahrens ASSERT(!list_link_active(&hdr->b_arc_node)); 2100789Sahrens ASSERT(!HDR_IO_IN_PROGRESS(hdr)); 2101789Sahrens arc_change_state(arc.anon, hdr, hash_lock); 2102789Sahrens hdr->b_arc_access = 0; 2103789Sahrens mutex_exit(hash_lock); 2104789Sahrens bzero(&hdr->b_dva, sizeof (dva_t)); 2105789Sahrens hdr->b_birth = 0; 2106789Sahrens hdr->b_cksum0 = 0; 2107789Sahrens } 21081544Seschrock buf->b_efunc = NULL; 21091544Seschrock buf->b_private = NULL; 2110789Sahrens } 2111789Sahrens 2112789Sahrens int 2113789Sahrens arc_released(arc_buf_t *buf) 2114789Sahrens { 21151544Seschrock return (buf->b_data != NULL && buf->b_hdr->b_state == arc.anon); 21161544Seschrock } 21171544Seschrock 21181544Seschrock int 21191544Seschrock arc_has_callback(arc_buf_t *buf) 21201544Seschrock { 21211544Seschrock return (buf->b_efunc != NULL); 2122789Sahrens } 2123789Sahrens 21241544Seschrock #ifdef ZFS_DEBUG 21251544Seschrock int 21261544Seschrock arc_referenced(arc_buf_t *buf) 21271544Seschrock { 21281544Seschrock return (refcount_count(&buf->b_hdr->b_refcnt)); 21291544Seschrock } 21301544Seschrock #endif 21311544Seschrock 2132789Sahrens static void 2133789Sahrens arc_write_done(zio_t *zio) 2134789Sahrens { 2135789Sahrens arc_buf_t *buf; 2136789Sahrens arc_buf_hdr_t *hdr; 2137789Sahrens arc_callback_t *acb; 2138789Sahrens 2139789Sahrens buf = zio->io_private; 2140789Sahrens hdr = buf->b_hdr; 2141789Sahrens acb = hdr->b_acb; 2142789Sahrens hdr->b_acb = NULL; 21431544Seschrock ASSERT(acb != NULL); 2144789Sahrens 2145789Sahrens /* this buffer is on no lists and is not in the hash table */ 2146789Sahrens ASSERT3P(hdr->b_state, ==, arc.anon); 2147789Sahrens 2148789Sahrens hdr->b_dva = *BP_IDENTITY(zio->io_bp); 2149789Sahrens hdr->b_birth = zio->io_bp->blk_birth; 2150789Sahrens hdr->b_cksum0 = zio->io_bp->blk_cksum.zc_word[0]; 21511544Seschrock /* 21521544Seschrock * If the block to be written was all-zero, we may have 21531544Seschrock * compressed it away. In this case no write was performed 21541544Seschrock * so there will be no dva/birth-date/checksum. The buffer 21551544Seschrock * must therefor remain anonymous (and uncached). 21561544Seschrock */ 2157789Sahrens if (!BUF_EMPTY(hdr)) { 2158789Sahrens arc_buf_hdr_t *exists; 2159789Sahrens kmutex_t *hash_lock; 2160789Sahrens 2161789Sahrens exists = buf_hash_insert(hdr, &hash_lock); 2162789Sahrens if (exists) { 2163789Sahrens /* 2164789Sahrens * This can only happen if we overwrite for 2165789Sahrens * sync-to-convergence, because we remove 2166789Sahrens * buffers from the hash table when we arc_free(). 2167789Sahrens */ 2168789Sahrens ASSERT(DVA_EQUAL(BP_IDENTITY(&zio->io_bp_orig), 2169789Sahrens BP_IDENTITY(zio->io_bp))); 2170789Sahrens ASSERT3U(zio->io_bp_orig.blk_birth, ==, 2171789Sahrens zio->io_bp->blk_birth); 2172789Sahrens 2173789Sahrens ASSERT(refcount_is_zero(&exists->b_refcnt)); 2174789Sahrens arc_change_state(arc.anon, exists, hash_lock); 2175789Sahrens mutex_exit(hash_lock); 21761544Seschrock arc_hdr_destroy(exists); 2177789Sahrens exists = buf_hash_insert(hdr, &hash_lock); 2178789Sahrens ASSERT3P(exists, ==, NULL); 2179789Sahrens } 21801544Seschrock hdr->b_flags &= ~ARC_IO_IN_PROGRESS; 21811544Seschrock arc_access_and_exit(hdr, hash_lock); 21821544Seschrock } else if (acb->acb_done == NULL) { 21831544Seschrock int destroy_hdr; 21841544Seschrock /* 21851544Seschrock * This is an anonymous buffer with no user callback, 21861544Seschrock * destroy it if there are no active references. 21871544Seschrock */ 21881544Seschrock mutex_enter(&arc_eviction_mtx); 21891544Seschrock destroy_hdr = refcount_is_zero(&hdr->b_refcnt); 21901544Seschrock hdr->b_flags &= ~ARC_IO_IN_PROGRESS; 21911544Seschrock mutex_exit(&arc_eviction_mtx); 21921544Seschrock if (destroy_hdr) 21931544Seschrock arc_hdr_destroy(hdr); 21941544Seschrock } else { 21951544Seschrock hdr->b_flags &= ~ARC_IO_IN_PROGRESS; 2196789Sahrens } 21971544Seschrock 21981544Seschrock if (acb->acb_done) { 2199789Sahrens ASSERT(!refcount_is_zero(&hdr->b_refcnt)); 2200789Sahrens acb->acb_done(zio, buf, acb->acb_private); 2201789Sahrens } 2202789Sahrens 22031544Seschrock kmem_free(acb, sizeof (arc_callback_t)); 2204789Sahrens } 2205789Sahrens 2206789Sahrens int 22071775Sbillm arc_write(zio_t *pio, spa_t *spa, int checksum, int compress, int ncopies, 2208789Sahrens uint64_t txg, blkptr_t *bp, arc_buf_t *buf, 2209789Sahrens arc_done_func_t *done, void *private, int priority, int flags, 22101544Seschrock uint32_t arc_flags, zbookmark_t *zb) 2211789Sahrens { 2212789Sahrens arc_buf_hdr_t *hdr = buf->b_hdr; 2213789Sahrens arc_callback_t *acb; 2214789Sahrens zio_t *rzio; 2215789Sahrens 2216789Sahrens /* this is a private buffer - no locking required */ 2217789Sahrens ASSERT3P(hdr->b_state, ==, arc.anon); 2218789Sahrens ASSERT(BUF_EMPTY(hdr)); 2219789Sahrens ASSERT(!HDR_IO_ERROR(hdr)); 2220*2237Smaybee ASSERT((hdr->b_flags & ARC_IO_IN_PROGRESS) == 0); 2221*2237Smaybee ASSERT(hdr->b_acb == 0); 2222789Sahrens acb = kmem_zalloc(sizeof (arc_callback_t), KM_SLEEP); 2223789Sahrens acb->acb_done = done; 2224789Sahrens acb->acb_private = private; 2225789Sahrens acb->acb_byteswap = (arc_byteswap_func_t *)-1; 2226789Sahrens hdr->b_acb = acb; 22271544Seschrock hdr->b_flags |= ARC_IO_IN_PROGRESS; 22281775Sbillm rzio = zio_write(pio, spa, checksum, compress, ncopies, txg, bp, 22291544Seschrock buf->b_data, hdr->b_size, arc_write_done, buf, priority, flags, zb); 2230789Sahrens 2231789Sahrens if (arc_flags & ARC_WAIT) 2232789Sahrens return (zio_wait(rzio)); 2233789Sahrens 2234789Sahrens ASSERT(arc_flags & ARC_NOWAIT); 2235789Sahrens zio_nowait(rzio); 2236789Sahrens 2237789Sahrens return (0); 2238789Sahrens } 2239789Sahrens 2240789Sahrens int 2241789Sahrens arc_free(zio_t *pio, spa_t *spa, uint64_t txg, blkptr_t *bp, 2242789Sahrens zio_done_func_t *done, void *private, uint32_t arc_flags) 2243789Sahrens { 2244789Sahrens arc_buf_hdr_t *ab; 2245789Sahrens kmutex_t *hash_lock; 2246789Sahrens zio_t *zio; 2247789Sahrens 2248789Sahrens /* 2249789Sahrens * If this buffer is in the cache, release it, so it 2250789Sahrens * can be re-used. 2251789Sahrens */ 2252789Sahrens ab = buf_hash_find(spa, BP_IDENTITY(bp), bp->blk_birth, &hash_lock); 2253789Sahrens if (ab != NULL) { 2254789Sahrens /* 2255789Sahrens * The checksum of blocks to free is not always 2256789Sahrens * preserved (eg. on the deadlist). However, if it is 2257789Sahrens * nonzero, it should match what we have in the cache. 2258789Sahrens */ 2259789Sahrens ASSERT(bp->blk_cksum.zc_word[0] == 0 || 2260789Sahrens ab->b_cksum0 == bp->blk_cksum.zc_word[0]); 22611990Smaybee if (ab->b_state != arc.anon) 22621990Smaybee arc_change_state(arc.anon, ab, hash_lock); 2263789Sahrens if (refcount_is_zero(&ab->b_refcnt)) { 2264789Sahrens mutex_exit(hash_lock); 22651544Seschrock arc_hdr_destroy(ab); 2266789Sahrens atomic_add_64(&arc.deleted, 1); 2267789Sahrens } else { 22681589Smaybee /* 22691589Smaybee * We could have an outstanding read on this 22701589Smaybee * block, so multiple active references are 22711589Smaybee * possible. But we should only have a single 22721589Smaybee * data buffer associated at this point. 22731589Smaybee */ 22741544Seschrock ASSERT3U(ab->b_datacnt, ==, 1); 2275789Sahrens if (HDR_IO_IN_PROGRESS(ab)) 2276789Sahrens ab->b_flags |= ARC_FREED_IN_READ; 22771544Seschrock if (HDR_IN_HASH_TABLE(ab)) 22781544Seschrock buf_hash_remove(ab); 2279789Sahrens ab->b_arc_access = 0; 2280789Sahrens bzero(&ab->b_dva, sizeof (dva_t)); 2281789Sahrens ab->b_birth = 0; 2282789Sahrens ab->b_cksum0 = 0; 22831544Seschrock ab->b_buf->b_efunc = NULL; 22841544Seschrock ab->b_buf->b_private = NULL; 2285789Sahrens mutex_exit(hash_lock); 2286789Sahrens } 2287789Sahrens } 2288789Sahrens 2289789Sahrens zio = zio_free(pio, spa, txg, bp, done, private); 2290789Sahrens 2291789Sahrens if (arc_flags & ARC_WAIT) 2292789Sahrens return (zio_wait(zio)); 2293789Sahrens 2294789Sahrens ASSERT(arc_flags & ARC_NOWAIT); 2295789Sahrens zio_nowait(zio); 2296789Sahrens 2297789Sahrens return (0); 2298789Sahrens } 2299789Sahrens 2300789Sahrens void 2301789Sahrens arc_tempreserve_clear(uint64_t tempreserve) 2302789Sahrens { 2303789Sahrens atomic_add_64(&arc_tempreserve, -tempreserve); 2304789Sahrens ASSERT((int64_t)arc_tempreserve >= 0); 2305789Sahrens } 2306789Sahrens 2307789Sahrens int 2308789Sahrens arc_tempreserve_space(uint64_t tempreserve) 2309789Sahrens { 2310789Sahrens #ifdef ZFS_DEBUG 2311789Sahrens /* 2312789Sahrens * Once in a while, fail for no reason. Everything should cope. 2313789Sahrens */ 2314789Sahrens if (spa_get_random(10000) == 0) { 2315789Sahrens dprintf("forcing random failure\n"); 2316789Sahrens return (ERESTART); 2317789Sahrens } 2318789Sahrens #endif 2319982Smaybee if (tempreserve > arc.c/4 && !arc.no_grow) 2320982Smaybee arc.c = MIN(arc.c_max, tempreserve * 4); 2321982Smaybee if (tempreserve > arc.c) 2322982Smaybee return (ENOMEM); 2323982Smaybee 2324789Sahrens /* 2325982Smaybee * Throttle writes when the amount of dirty data in the cache 2326982Smaybee * gets too large. We try to keep the cache less than half full 2327982Smaybee * of dirty blocks so that our sync times don't grow too large. 2328982Smaybee * Note: if two requests come in concurrently, we might let them 2329982Smaybee * both succeed, when one of them should fail. Not a huge deal. 2330982Smaybee * 2331982Smaybee * XXX The limit should be adjusted dynamically to keep the time 2332982Smaybee * to sync a dataset fixed (around 1-5 seconds?). 2333789Sahrens */ 2334789Sahrens 2335982Smaybee if (tempreserve + arc_tempreserve + arc.anon->size > arc.c / 2 && 2336982Smaybee arc_tempreserve + arc.anon->size > arc.c / 4) { 2337789Sahrens dprintf("failing, arc_tempreserve=%lluK anon=%lluK " 2338789Sahrens "tempreserve=%lluK arc.c=%lluK\n", 2339789Sahrens arc_tempreserve>>10, arc.anon->lsize>>10, 2340789Sahrens tempreserve>>10, arc.c>>10); 2341789Sahrens return (ERESTART); 2342789Sahrens } 2343789Sahrens atomic_add_64(&arc_tempreserve, tempreserve); 2344789Sahrens return (0); 2345789Sahrens } 2346789Sahrens 2347789Sahrens void 2348789Sahrens arc_init(void) 2349789Sahrens { 2350789Sahrens mutex_init(&arc_reclaim_lock, NULL, MUTEX_DEFAULT, NULL); 2351789Sahrens mutex_init(&arc_reclaim_thr_lock, NULL, MUTEX_DEFAULT, NULL); 2352789Sahrens cv_init(&arc_reclaim_thr_cv, NULL, CV_DEFAULT, NULL); 2353789Sahrens 2354789Sahrens /* Start out with 1/8 of all memory */ 2355789Sahrens arc.c = physmem * PAGESIZE / 8; 2356789Sahrens 2357789Sahrens #ifdef _KERNEL 2358789Sahrens /* 2359789Sahrens * On architectures where the physical memory can be larger 2360789Sahrens * than the addressable space (intel in 32-bit mode), we may 2361789Sahrens * need to limit the cache to 1/8 of VM size. 2362789Sahrens */ 2363789Sahrens arc.c = MIN(arc.c, vmem_size(heap_arena, VMEM_ALLOC | VMEM_FREE) / 8); 2364789Sahrens #endif 2365789Sahrens 2366982Smaybee /* set min cache to 1/32 of all memory, or 64MB, whichever is more */ 2367789Sahrens arc.c_min = MAX(arc.c / 4, 64<<20); 2368982Smaybee /* set max to 3/4 of all memory, or all but 1GB, whichever is more */ 2369789Sahrens if (arc.c * 8 >= 1<<30) 2370789Sahrens arc.c_max = (arc.c * 8) - (1<<30); 2371789Sahrens else 2372789Sahrens arc.c_max = arc.c_min; 2373789Sahrens arc.c_max = MAX(arc.c * 6, arc.c_max); 2374789Sahrens arc.c = arc.c_max; 2375789Sahrens arc.p = (arc.c >> 1); 2376789Sahrens 2377789Sahrens /* if kmem_flags are set, lets try to use less memory */ 2378789Sahrens if (kmem_debugging()) 2379789Sahrens arc.c = arc.c / 2; 2380789Sahrens if (arc.c < arc.c_min) 2381789Sahrens arc.c = arc.c_min; 2382789Sahrens 2383789Sahrens arc.anon = &ARC_anon; 23841544Seschrock arc.mru = &ARC_mru; 23851544Seschrock arc.mru_ghost = &ARC_mru_ghost; 23861544Seschrock arc.mfu = &ARC_mfu; 23871544Seschrock arc.mfu_ghost = &ARC_mfu_ghost; 23881544Seschrock arc.size = 0; 2389789Sahrens 23901544Seschrock list_create(&arc.mru->list, sizeof (arc_buf_hdr_t), 2391789Sahrens offsetof(arc_buf_hdr_t, b_arc_node)); 23921544Seschrock list_create(&arc.mru_ghost->list, sizeof (arc_buf_hdr_t), 2393789Sahrens offsetof(arc_buf_hdr_t, b_arc_node)); 23941544Seschrock list_create(&arc.mfu->list, sizeof (arc_buf_hdr_t), 2395789Sahrens offsetof(arc_buf_hdr_t, b_arc_node)); 23961544Seschrock list_create(&arc.mfu_ghost->list, sizeof (arc_buf_hdr_t), 2397789Sahrens offsetof(arc_buf_hdr_t, b_arc_node)); 2398789Sahrens 2399789Sahrens buf_init(); 2400789Sahrens 2401789Sahrens arc_thread_exit = 0; 24021544Seschrock arc_eviction_list = NULL; 24031544Seschrock mutex_init(&arc_eviction_mtx, NULL, MUTEX_DEFAULT, NULL); 2404789Sahrens 2405789Sahrens (void) thread_create(NULL, 0, arc_reclaim_thread, NULL, 0, &p0, 2406789Sahrens TS_RUN, minclsyspri); 2407789Sahrens } 2408789Sahrens 2409789Sahrens void 2410789Sahrens arc_fini(void) 2411789Sahrens { 2412789Sahrens mutex_enter(&arc_reclaim_thr_lock); 2413789Sahrens arc_thread_exit = 1; 2414789Sahrens while (arc_thread_exit != 0) 2415789Sahrens cv_wait(&arc_reclaim_thr_cv, &arc_reclaim_thr_lock); 2416789Sahrens mutex_exit(&arc_reclaim_thr_lock); 2417789Sahrens 2418789Sahrens arc_flush(); 2419789Sahrens 2420789Sahrens arc_dead = TRUE; 2421789Sahrens 24221544Seschrock mutex_destroy(&arc_eviction_mtx); 2423789Sahrens mutex_destroy(&arc_reclaim_lock); 2424789Sahrens mutex_destroy(&arc_reclaim_thr_lock); 2425789Sahrens cv_destroy(&arc_reclaim_thr_cv); 2426789Sahrens 24271544Seschrock list_destroy(&arc.mru->list); 24281544Seschrock list_destroy(&arc.mru_ghost->list); 24291544Seschrock list_destroy(&arc.mfu->list); 24301544Seschrock list_destroy(&arc.mfu_ghost->list); 2431789Sahrens 2432789Sahrens buf_fini(); 2433789Sahrens } 2434