1 /*
2 * CDDL HEADER START
3 *
4 * The contents of this file are subject to the terms of the
5 * Common Development and Distribution License (the "License").
6 * You may not use this file except in compliance with the License.
7 *
8 * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9 * or http://www.opensolaris.org/os/licensing.
10 * See the License for the specific language governing permissions
11 * and limitations under the License.
12 *
13 * When distributing Covered Code, include this CDDL HEADER in each
14 * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15 * If applicable, add the following below this CDDL HEADER, with the
16 * fields enclosed by brackets "[]" replaced with your own identifying
17 * information: Portions Copyright [yyyy] [name of copyright owner]
18 *
19 * CDDL HEADER END
20 */
21 /*
22 * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved.
23 * Copyright 2011 Nexenta Systems, Inc. All rights reserved.
24 * Copyright (c) 2012, 2020 by Delphix. All rights reserved.
25 * Copyright (c) 2013 by Saso Kiselkov. All rights reserved.
26 * Copyright (c) 2014 Spectra Logic Corporation, All rights reserved.
27 * Copyright (c) 2019, Klara Inc.
28 * Copyright (c) 2019, Allan Jude
29 */
30
31 #include <sys/zfs_context.h>
32 #include <sys/arc.h>
33 #include <sys/dmu.h>
34 #include <sys/dmu_send.h>
35 #include <sys/dmu_impl.h>
36 #include <sys/dbuf.h>
37 #include <sys/dmu_objset.h>
38 #include <sys/dsl_dataset.h>
39 #include <sys/dsl_dir.h>
40 #include <sys/dmu_tx.h>
41 #include <sys/spa.h>
42 #include <sys/zio.h>
43 #include <sys/dmu_zfetch.h>
44 #include <sys/sa.h>
45 #include <sys/sa_impl.h>
46 #include <sys/zfeature.h>
47 #include <sys/blkptr.h>
48 #include <sys/range_tree.h>
49 #include <sys/trace_zfs.h>
50 #include <sys/callb.h>
51 #include <sys/abd.h>
52 #include <sys/vdev.h>
53 #include <cityhash.h>
54 #include <sys/spa_impl.h>
55 #include <sys/wmsum.h>
56 #include <sys/vdev_impl.h>
57
58 kstat_t *dbuf_ksp;
59
60 typedef struct dbuf_stats {
61 /*
62 * Various statistics about the size of the dbuf cache.
63 */
64 kstat_named_t cache_count;
65 kstat_named_t cache_size_bytes;
66 kstat_named_t cache_size_bytes_max;
67 /*
68 * Statistics regarding the bounds on the dbuf cache size.
69 */
70 kstat_named_t cache_target_bytes;
71 kstat_named_t cache_lowater_bytes;
72 kstat_named_t cache_hiwater_bytes;
73 /*
74 * Total number of dbuf cache evictions that have occurred.
75 */
76 kstat_named_t cache_total_evicts;
77 /*
78 * The distribution of dbuf levels in the dbuf cache and
79 * the total size of all dbufs at each level.
80 */
81 kstat_named_t cache_levels[DN_MAX_LEVELS];
82 kstat_named_t cache_levels_bytes[DN_MAX_LEVELS];
83 /*
84 * Statistics about the dbuf hash table.
85 */
86 kstat_named_t hash_hits;
87 kstat_named_t hash_misses;
88 kstat_named_t hash_collisions;
89 kstat_named_t hash_elements;
90 kstat_named_t hash_elements_max;
91 /*
92 * Number of sublists containing more than one dbuf in the dbuf
93 * hash table. Keep track of the longest hash chain.
94 */
95 kstat_named_t hash_chains;
96 kstat_named_t hash_chain_max;
97 /*
98 * Number of times a dbuf_create() discovers that a dbuf was
99 * already created and in the dbuf hash table.
100 */
101 kstat_named_t hash_insert_race;
102 /*
103 * Statistics about the size of the metadata dbuf cache.
104 */
105 kstat_named_t metadata_cache_count;
106 kstat_named_t metadata_cache_size_bytes;
107 kstat_named_t metadata_cache_size_bytes_max;
108 /*
109 * For diagnostic purposes, this is incremented whenever we can't add
110 * something to the metadata cache because it's full, and instead put
111 * the data in the regular dbuf cache.
112 */
113 kstat_named_t metadata_cache_overflow;
114 } dbuf_stats_t;
115
116 dbuf_stats_t dbuf_stats = {
117 { "cache_count", KSTAT_DATA_UINT64 },
118 { "cache_size_bytes", KSTAT_DATA_UINT64 },
119 { "cache_size_bytes_max", KSTAT_DATA_UINT64 },
120 { "cache_target_bytes", KSTAT_DATA_UINT64 },
121 { "cache_lowater_bytes", KSTAT_DATA_UINT64 },
122 { "cache_hiwater_bytes", KSTAT_DATA_UINT64 },
123 { "cache_total_evicts", KSTAT_DATA_UINT64 },
124 { { "cache_levels_N", KSTAT_DATA_UINT64 } },
125 { { "cache_levels_bytes_N", KSTAT_DATA_UINT64 } },
126 { "hash_hits", KSTAT_DATA_UINT64 },
127 { "hash_misses", KSTAT_DATA_UINT64 },
128 { "hash_collisions", KSTAT_DATA_UINT64 },
129 { "hash_elements", KSTAT_DATA_UINT64 },
130 { "hash_elements_max", KSTAT_DATA_UINT64 },
131 { "hash_chains", KSTAT_DATA_UINT64 },
132 { "hash_chain_max", KSTAT_DATA_UINT64 },
133 { "hash_insert_race", KSTAT_DATA_UINT64 },
134 { "metadata_cache_count", KSTAT_DATA_UINT64 },
135 { "metadata_cache_size_bytes", KSTAT_DATA_UINT64 },
136 { "metadata_cache_size_bytes_max", KSTAT_DATA_UINT64 },
137 { "metadata_cache_overflow", KSTAT_DATA_UINT64 }
138 };
139
140 struct {
141 wmsum_t cache_count;
142 wmsum_t cache_total_evicts;
143 wmsum_t cache_levels[DN_MAX_LEVELS];
144 wmsum_t cache_levels_bytes[DN_MAX_LEVELS];
145 wmsum_t hash_hits;
146 wmsum_t hash_misses;
147 wmsum_t hash_collisions;
148 wmsum_t hash_chains;
149 wmsum_t hash_insert_race;
150 wmsum_t metadata_cache_count;
151 wmsum_t metadata_cache_overflow;
152 } dbuf_sums;
153
154 #define DBUF_STAT_INCR(stat, val) \
155 wmsum_add(&dbuf_sums.stat, val);
156 #define DBUF_STAT_DECR(stat, val) \
157 DBUF_STAT_INCR(stat, -(val));
158 #define DBUF_STAT_BUMP(stat) \
159 DBUF_STAT_INCR(stat, 1);
160 #define DBUF_STAT_BUMPDOWN(stat) \
161 DBUF_STAT_INCR(stat, -1);
162 #define DBUF_STAT_MAX(stat, v) { \
163 uint64_t _m; \
164 while ((v) > (_m = dbuf_stats.stat.value.ui64) && \
165 (_m != atomic_cas_64(&dbuf_stats.stat.value.ui64, _m, (v))))\
166 continue; \
167 }
168
169 static boolean_t dbuf_undirty(dmu_buf_impl_t *db, dmu_tx_t *tx);
170 static void dbuf_write(dbuf_dirty_record_t *dr, arc_buf_t *data, dmu_tx_t *tx);
171 static void dbuf_sync_leaf_verify_bonus_dnode(dbuf_dirty_record_t *dr);
172 static int dbuf_read_verify_dnode_crypt(dmu_buf_impl_t *db, uint32_t flags);
173
174 /*
175 * Global data structures and functions for the dbuf cache.
176 */
177 static kmem_cache_t *dbuf_kmem_cache;
178 static taskq_t *dbu_evict_taskq;
179
180 static kthread_t *dbuf_cache_evict_thread;
181 static kmutex_t dbuf_evict_lock;
182 static kcondvar_t dbuf_evict_cv;
183 static boolean_t dbuf_evict_thread_exit;
184
185 /*
186 * There are two dbuf caches; each dbuf can only be in one of them at a time.
187 *
188 * 1. Cache of metadata dbufs, to help make read-heavy administrative commands
189 * from /sbin/zfs run faster. The "metadata cache" specifically stores dbufs
190 * that represent the metadata that describes filesystems/snapshots/
191 * bookmarks/properties/etc. We only evict from this cache when we export a
192 * pool, to short-circuit as much I/O as possible for all administrative
193 * commands that need the metadata. There is no eviction policy for this
194 * cache, because we try to only include types in it which would occupy a
195 * very small amount of space per object but create a large impact on the
196 * performance of these commands. Instead, after it reaches a maximum size
197 * (which should only happen on very small memory systems with a very large
198 * number of filesystem objects), we stop taking new dbufs into the
199 * metadata cache, instead putting them in the normal dbuf cache.
200 *
201 * 2. LRU cache of dbufs. The dbuf cache maintains a list of dbufs that
202 * are not currently held but have been recently released. These dbufs
203 * are not eligible for arc eviction until they are aged out of the cache.
204 * Dbufs that are aged out of the cache will be immediately destroyed and
205 * become eligible for arc eviction.
206 *
207 * Dbufs are added to these caches once the last hold is released. If a dbuf is
208 * later accessed and still exists in the dbuf cache, then it will be removed
209 * from the cache and later re-added to the head of the cache.
210 *
211 * If a given dbuf meets the requirements for the metadata cache, it will go
212 * there, otherwise it will be considered for the generic LRU dbuf cache. The
213 * caches and the refcounts tracking their sizes are stored in an array indexed
214 * by those caches' matching enum values (from dbuf_cached_state_t).
215 */
216 typedef struct dbuf_cache {
217 multilist_t cache;
218 zfs_refcount_t size ____cacheline_aligned;
219 } dbuf_cache_t;
220 dbuf_cache_t dbuf_caches[DB_CACHE_MAX];
221
222 /* Size limits for the caches */
223 unsigned long dbuf_cache_max_bytes = ULONG_MAX;
224 unsigned long dbuf_metadata_cache_max_bytes = ULONG_MAX;
225
226 /* Set the default sizes of the caches to log2 fraction of arc size */
227 int dbuf_cache_shift = 5;
228 int dbuf_metadata_cache_shift = 6;
229
230 static unsigned long dbuf_cache_target_bytes(void);
231 static unsigned long dbuf_metadata_cache_target_bytes(void);
232
233 /*
234 * The LRU dbuf cache uses a three-stage eviction policy:
235 * - A low water marker designates when the dbuf eviction thread
236 * should stop evicting from the dbuf cache.
237 * - When we reach the maximum size (aka mid water mark), we
238 * signal the eviction thread to run.
239 * - The high water mark indicates when the eviction thread
240 * is unable to keep up with the incoming load and eviction must
241 * happen in the context of the calling thread.
242 *
243 * The dbuf cache:
244 * (max size)
245 * low water mid water hi water
246 * +----------------------------------------+----------+----------+
247 * | | | |
248 * | | | |
249 * | | | |
250 * | | | |
251 * +----------------------------------------+----------+----------+
252 * stop signal evict
253 * evicting eviction directly
254 * thread
255 *
256 * The high and low water marks indicate the operating range for the eviction
257 * thread. The low water mark is, by default, 90% of the total size of the
258 * cache and the high water mark is at 110% (both of these percentages can be
259 * changed by setting dbuf_cache_lowater_pct and dbuf_cache_hiwater_pct,
260 * respectively). The eviction thread will try to ensure that the cache remains
261 * within this range by waking up every second and checking if the cache is
262 * above the low water mark. The thread can also be woken up by callers adding
263 * elements into the cache if the cache is larger than the mid water (i.e max
264 * cache size). Once the eviction thread is woken up and eviction is required,
265 * it will continue evicting buffers until it's able to reduce the cache size
266 * to the low water mark. If the cache size continues to grow and hits the high
267 * water mark, then callers adding elements to the cache will begin to evict
268 * directly from the cache until the cache is no longer above the high water
269 * mark.
270 */
271
272 /*
273 * The percentage above and below the maximum cache size.
274 */
275 uint_t dbuf_cache_hiwater_pct = 10;
276 uint_t dbuf_cache_lowater_pct = 10;
277
278 static int
dbuf_cons(void * vdb,void * unused,int kmflag)279 dbuf_cons(void *vdb, void *unused, int kmflag)
280 {
281 (void) unused, (void) kmflag;
282 dmu_buf_impl_t *db = vdb;
283 bzero(db, sizeof (dmu_buf_impl_t));
284
285 mutex_init(&db->db_mtx, NULL, MUTEX_DEFAULT, NULL);
286 rw_init(&db->db_rwlock, NULL, RW_DEFAULT, NULL);
287 cv_init(&db->db_changed, NULL, CV_DEFAULT, NULL);
288 multilist_link_init(&db->db_cache_link);
289 zfs_refcount_create(&db->db_holds);
290
291 return (0);
292 }
293
294 static void
dbuf_dest(void * vdb,void * unused)295 dbuf_dest(void *vdb, void *unused)
296 {
297 (void) unused;
298 dmu_buf_impl_t *db = vdb;
299 mutex_destroy(&db->db_mtx);
300 rw_destroy(&db->db_rwlock);
301 cv_destroy(&db->db_changed);
302 ASSERT(!multilist_link_active(&db->db_cache_link));
303 zfs_refcount_destroy(&db->db_holds);
304 }
305
306 /*
307 * dbuf hash table routines
308 */
309 static dbuf_hash_table_t dbuf_hash_table;
310
311 /*
312 * We use Cityhash for this. It's fast, and has good hash properties without
313 * requiring any large static buffers.
314 */
315 static uint64_t
dbuf_hash(void * os,uint64_t obj,uint8_t lvl,uint64_t blkid)316 dbuf_hash(void *os, uint64_t obj, uint8_t lvl, uint64_t blkid)
317 {
318 return (cityhash4((uintptr_t)os, obj, (uint64_t)lvl, blkid));
319 }
320
321 #define DTRACE_SET_STATE(db, why) \
322 DTRACE_PROBE2(dbuf__state_change, dmu_buf_impl_t *, db, \
323 const char *, why)
324
325 #define DBUF_EQUAL(dbuf, os, obj, level, blkid) \
326 ((dbuf)->db.db_object == (obj) && \
327 (dbuf)->db_objset == (os) && \
328 (dbuf)->db_level == (level) && \
329 (dbuf)->db_blkid == (blkid))
330
331 dmu_buf_impl_t *
dbuf_find(objset_t * os,uint64_t obj,uint8_t level,uint64_t blkid)332 dbuf_find(objset_t *os, uint64_t obj, uint8_t level, uint64_t blkid)
333 {
334 dbuf_hash_table_t *h = &dbuf_hash_table;
335 uint64_t hv;
336 uint64_t idx;
337 dmu_buf_impl_t *db;
338
339 hv = dbuf_hash(os, obj, level, blkid);
340 idx = hv & h->hash_table_mask;
341
342 mutex_enter(DBUF_HASH_MUTEX(h, idx));
343 for (db = h->hash_table[idx]; db != NULL; db = db->db_hash_next) {
344 if (DBUF_EQUAL(db, os, obj, level, blkid)) {
345 mutex_enter(&db->db_mtx);
346 if (db->db_state != DB_EVICTING) {
347 mutex_exit(DBUF_HASH_MUTEX(h, idx));
348 return (db);
349 }
350 mutex_exit(&db->db_mtx);
351 }
352 }
353 mutex_exit(DBUF_HASH_MUTEX(h, idx));
354 return (NULL);
355 }
356
357 static dmu_buf_impl_t *
dbuf_find_bonus(objset_t * os,uint64_t object)358 dbuf_find_bonus(objset_t *os, uint64_t object)
359 {
360 dnode_t *dn;
361 dmu_buf_impl_t *db = NULL;
362
363 if (dnode_hold(os, object, FTAG, &dn) == 0) {
364 rw_enter(&dn->dn_struct_rwlock, RW_READER);
365 if (dn->dn_bonus != NULL) {
366 db = dn->dn_bonus;
367 mutex_enter(&db->db_mtx);
368 }
369 rw_exit(&dn->dn_struct_rwlock);
370 dnode_rele(dn, FTAG);
371 }
372 return (db);
373 }
374
375 /*
376 * Insert an entry into the hash table. If there is already an element
377 * equal to elem in the hash table, then the already existing element
378 * will be returned and the new element will not be inserted.
379 * Otherwise returns NULL.
380 */
381 static dmu_buf_impl_t *
dbuf_hash_insert(dmu_buf_impl_t * db)382 dbuf_hash_insert(dmu_buf_impl_t *db)
383 {
384 dbuf_hash_table_t *h = &dbuf_hash_table;
385 objset_t *os = db->db_objset;
386 uint64_t obj = db->db.db_object;
387 int level = db->db_level;
388 uint64_t blkid, hv, idx;
389 dmu_buf_impl_t *dbf;
390 uint32_t i;
391
392 blkid = db->db_blkid;
393 hv = dbuf_hash(os, obj, level, blkid);
394 idx = hv & h->hash_table_mask;
395
396 mutex_enter(DBUF_HASH_MUTEX(h, idx));
397 for (dbf = h->hash_table[idx], i = 0; dbf != NULL;
398 dbf = dbf->db_hash_next, i++) {
399 if (DBUF_EQUAL(dbf, os, obj, level, blkid)) {
400 mutex_enter(&dbf->db_mtx);
401 if (dbf->db_state != DB_EVICTING) {
402 mutex_exit(DBUF_HASH_MUTEX(h, idx));
403 return (dbf);
404 }
405 mutex_exit(&dbf->db_mtx);
406 }
407 }
408
409 if (i > 0) {
410 DBUF_STAT_BUMP(hash_collisions);
411 if (i == 1)
412 DBUF_STAT_BUMP(hash_chains);
413
414 DBUF_STAT_MAX(hash_chain_max, i);
415 }
416
417 mutex_enter(&db->db_mtx);
418 db->db_hash_next = h->hash_table[idx];
419 h->hash_table[idx] = db;
420 mutex_exit(DBUF_HASH_MUTEX(h, idx));
421 uint64_t he = atomic_inc_64_nv(&dbuf_stats.hash_elements.value.ui64);
422 DBUF_STAT_MAX(hash_elements_max, he);
423
424 return (NULL);
425 }
426
427 /*
428 * This returns whether this dbuf should be stored in the metadata cache, which
429 * is based on whether it's from one of the dnode types that store data related
430 * to traversing dataset hierarchies.
431 */
432 static boolean_t
dbuf_include_in_metadata_cache(dmu_buf_impl_t * db)433 dbuf_include_in_metadata_cache(dmu_buf_impl_t *db)
434 {
435 DB_DNODE_ENTER(db);
436 dmu_object_type_t type = DB_DNODE(db)->dn_type;
437 DB_DNODE_EXIT(db);
438
439 /* Check if this dbuf is one of the types we care about */
440 if (DMU_OT_IS_METADATA_CACHED(type)) {
441 /* If we hit this, then we set something up wrong in dmu_ot */
442 ASSERT(DMU_OT_IS_METADATA(type));
443
444 /*
445 * Sanity check for small-memory systems: don't allocate too
446 * much memory for this purpose.
447 */
448 if (zfs_refcount_count(
449 &dbuf_caches[DB_DBUF_METADATA_CACHE].size) >
450 dbuf_metadata_cache_target_bytes()) {
451 DBUF_STAT_BUMP(metadata_cache_overflow);
452 return (B_FALSE);
453 }
454
455 return (B_TRUE);
456 }
457
458 return (B_FALSE);
459 }
460
461 /*
462 * Remove an entry from the hash table. It must be in the EVICTING state.
463 */
464 static void
dbuf_hash_remove(dmu_buf_impl_t * db)465 dbuf_hash_remove(dmu_buf_impl_t *db)
466 {
467 dbuf_hash_table_t *h = &dbuf_hash_table;
468 uint64_t hv, idx;
469 dmu_buf_impl_t *dbf, **dbp;
470
471 hv = dbuf_hash(db->db_objset, db->db.db_object,
472 db->db_level, db->db_blkid);
473 idx = hv & h->hash_table_mask;
474
475 /*
476 * We mustn't hold db_mtx to maintain lock ordering:
477 * DBUF_HASH_MUTEX > db_mtx.
478 */
479 ASSERT(zfs_refcount_is_zero(&db->db_holds));
480 ASSERT(db->db_state == DB_EVICTING);
481 ASSERT(!MUTEX_HELD(&db->db_mtx));
482
483 mutex_enter(DBUF_HASH_MUTEX(h, idx));
484 dbp = &h->hash_table[idx];
485 while ((dbf = *dbp) != db) {
486 dbp = &dbf->db_hash_next;
487 ASSERT(dbf != NULL);
488 }
489 *dbp = db->db_hash_next;
490 db->db_hash_next = NULL;
491 if (h->hash_table[idx] &&
492 h->hash_table[idx]->db_hash_next == NULL)
493 DBUF_STAT_BUMPDOWN(hash_chains);
494 mutex_exit(DBUF_HASH_MUTEX(h, idx));
495 atomic_dec_64(&dbuf_stats.hash_elements.value.ui64);
496 }
497
498 typedef enum {
499 DBVU_EVICTING,
500 DBVU_NOT_EVICTING
501 } dbvu_verify_type_t;
502
503 static void
dbuf_verify_user(dmu_buf_impl_t * db,dbvu_verify_type_t verify_type)504 dbuf_verify_user(dmu_buf_impl_t *db, dbvu_verify_type_t verify_type)
505 {
506 #ifdef ZFS_DEBUG
507 int64_t holds;
508
509 if (db->db_user == NULL)
510 return;
511
512 /* Only data blocks support the attachment of user data. */
513 ASSERT(db->db_level == 0);
514
515 /* Clients must resolve a dbuf before attaching user data. */
516 ASSERT(db->db.db_data != NULL);
517 ASSERT3U(db->db_state, ==, DB_CACHED);
518
519 holds = zfs_refcount_count(&db->db_holds);
520 if (verify_type == DBVU_EVICTING) {
521 /*
522 * Immediate eviction occurs when holds == dirtycnt.
523 * For normal eviction buffers, holds is zero on
524 * eviction, except when dbuf_fix_old_data() calls
525 * dbuf_clear_data(). However, the hold count can grow
526 * during eviction even though db_mtx is held (see
527 * dmu_bonus_hold() for an example), so we can only
528 * test the generic invariant that holds >= dirtycnt.
529 */
530 ASSERT3U(holds, >=, db->db_dirtycnt);
531 } else {
532 if (db->db_user_immediate_evict == TRUE)
533 ASSERT3U(holds, >=, db->db_dirtycnt);
534 else
535 ASSERT3U(holds, >, 0);
536 }
537 #endif
538 }
539
540 static void
dbuf_evict_user(dmu_buf_impl_t * db)541 dbuf_evict_user(dmu_buf_impl_t *db)
542 {
543 dmu_buf_user_t *dbu = db->db_user;
544
545 ASSERT(MUTEX_HELD(&db->db_mtx));
546
547 if (dbu == NULL)
548 return;
549
550 dbuf_verify_user(db, DBVU_EVICTING);
551 db->db_user = NULL;
552
553 #ifdef ZFS_DEBUG
554 if (dbu->dbu_clear_on_evict_dbufp != NULL)
555 *dbu->dbu_clear_on_evict_dbufp = NULL;
556 #endif
557
558 /*
559 * There are two eviction callbacks - one that we call synchronously
560 * and one that we invoke via a taskq. The async one is useful for
561 * avoiding lock order reversals and limiting stack depth.
562 *
563 * Note that if we have a sync callback but no async callback,
564 * it's likely that the sync callback will free the structure
565 * containing the dbu. In that case we need to take care to not
566 * dereference dbu after calling the sync evict func.
567 */
568 boolean_t has_async = (dbu->dbu_evict_func_async != NULL);
569
570 if (dbu->dbu_evict_func_sync != NULL)
571 dbu->dbu_evict_func_sync(dbu);
572
573 if (has_async) {
574 taskq_dispatch_ent(dbu_evict_taskq, dbu->dbu_evict_func_async,
575 dbu, 0, &dbu->dbu_tqent);
576 }
577 }
578
579 boolean_t
dbuf_is_metadata(dmu_buf_impl_t * db)580 dbuf_is_metadata(dmu_buf_impl_t *db)
581 {
582 /*
583 * Consider indirect blocks and spill blocks to be meta data.
584 */
585 if (db->db_level > 0 || db->db_blkid == DMU_SPILL_BLKID) {
586 return (B_TRUE);
587 } else {
588 boolean_t is_metadata;
589
590 DB_DNODE_ENTER(db);
591 is_metadata = DMU_OT_IS_METADATA(DB_DNODE(db)->dn_type);
592 DB_DNODE_EXIT(db);
593
594 return (is_metadata);
595 }
596 }
597
598 /*
599 * We want to exclude buffers that are on a special allocation class from
600 * L2ARC.
601 */
602 boolean_t
dbuf_is_l2cacheable(dmu_buf_impl_t * db)603 dbuf_is_l2cacheable(dmu_buf_impl_t *db)
604 {
605 if (db->db_objset->os_secondary_cache == ZFS_CACHE_ALL ||
606 (db->db_objset->os_secondary_cache ==
607 ZFS_CACHE_METADATA && dbuf_is_metadata(db))) {
608 if (l2arc_exclude_special == 0)
609 return (B_TRUE);
610
611 blkptr_t *bp = db->db_blkptr;
612 if (bp == NULL || BP_IS_HOLE(bp))
613 return (B_FALSE);
614 uint64_t vdev = DVA_GET_VDEV(bp->blk_dva);
615 vdev_t *rvd = db->db_objset->os_spa->spa_root_vdev;
616 vdev_t *vd = NULL;
617
618 if (vdev < rvd->vdev_children)
619 vd = rvd->vdev_child[vdev];
620
621 if (vd == NULL)
622 return (B_TRUE);
623
624 if (vd->vdev_alloc_bias != VDEV_BIAS_SPECIAL &&
625 vd->vdev_alloc_bias != VDEV_BIAS_DEDUP)
626 return (B_TRUE);
627 }
628 return (B_FALSE);
629 }
630
631 static inline boolean_t
dnode_level_is_l2cacheable(blkptr_t * bp,dnode_t * dn,int64_t level)632 dnode_level_is_l2cacheable(blkptr_t *bp, dnode_t *dn, int64_t level)
633 {
634 if (dn->dn_objset->os_secondary_cache == ZFS_CACHE_ALL ||
635 (dn->dn_objset->os_secondary_cache == ZFS_CACHE_METADATA &&
636 (level > 0 ||
637 DMU_OT_IS_METADATA(dn->dn_handle->dnh_dnode->dn_type)))) {
638 if (l2arc_exclude_special == 0)
639 return (B_TRUE);
640
641 if (bp == NULL || BP_IS_HOLE(bp))
642 return (B_FALSE);
643 uint64_t vdev = DVA_GET_VDEV(bp->blk_dva);
644 vdev_t *rvd = dn->dn_objset->os_spa->spa_root_vdev;
645 vdev_t *vd = NULL;
646
647 if (vdev < rvd->vdev_children)
648 vd = rvd->vdev_child[vdev];
649
650 if (vd == NULL)
651 return (B_TRUE);
652
653 if (vd->vdev_alloc_bias != VDEV_BIAS_SPECIAL &&
654 vd->vdev_alloc_bias != VDEV_BIAS_DEDUP)
655 return (B_TRUE);
656 }
657 return (B_FALSE);
658 }
659
660
661 /*
662 * This function *must* return indices evenly distributed between all
663 * sublists of the multilist. This is needed due to how the dbuf eviction
664 * code is laid out; dbuf_evict_thread() assumes dbufs are evenly
665 * distributed between all sublists and uses this assumption when
666 * deciding which sublist to evict from and how much to evict from it.
667 */
668 static unsigned int
dbuf_cache_multilist_index_func(multilist_t * ml,void * obj)669 dbuf_cache_multilist_index_func(multilist_t *ml, void *obj)
670 {
671 dmu_buf_impl_t *db = obj;
672
673 /*
674 * The assumption here, is the hash value for a given
675 * dmu_buf_impl_t will remain constant throughout it's lifetime
676 * (i.e. it's objset, object, level and blkid fields don't change).
677 * Thus, we don't need to store the dbuf's sublist index
678 * on insertion, as this index can be recalculated on removal.
679 *
680 * Also, the low order bits of the hash value are thought to be
681 * distributed evenly. Otherwise, in the case that the multilist
682 * has a power of two number of sublists, each sublists' usage
683 * would not be evenly distributed. In this context full 64bit
684 * division would be a waste of time, so limit it to 32 bits.
685 */
686 return ((unsigned int)dbuf_hash(db->db_objset, db->db.db_object,
687 db->db_level, db->db_blkid) %
688 multilist_get_num_sublists(ml));
689 }
690
691 /*
692 * The target size of the dbuf cache can grow with the ARC target,
693 * unless limited by the tunable dbuf_cache_max_bytes.
694 */
695 static inline unsigned long
dbuf_cache_target_bytes(void)696 dbuf_cache_target_bytes(void)
697 {
698 return (MIN(dbuf_cache_max_bytes,
699 arc_target_bytes() >> dbuf_cache_shift));
700 }
701
702 /*
703 * The target size of the dbuf metadata cache can grow with the ARC target,
704 * unless limited by the tunable dbuf_metadata_cache_max_bytes.
705 */
706 static inline unsigned long
dbuf_metadata_cache_target_bytes(void)707 dbuf_metadata_cache_target_bytes(void)
708 {
709 return (MIN(dbuf_metadata_cache_max_bytes,
710 arc_target_bytes() >> dbuf_metadata_cache_shift));
711 }
712
713 static inline uint64_t
dbuf_cache_hiwater_bytes(void)714 dbuf_cache_hiwater_bytes(void)
715 {
716 uint64_t dbuf_cache_target = dbuf_cache_target_bytes();
717 return (dbuf_cache_target +
718 (dbuf_cache_target * dbuf_cache_hiwater_pct) / 100);
719 }
720
721 static inline uint64_t
dbuf_cache_lowater_bytes(void)722 dbuf_cache_lowater_bytes(void)
723 {
724 uint64_t dbuf_cache_target = dbuf_cache_target_bytes();
725 return (dbuf_cache_target -
726 (dbuf_cache_target * dbuf_cache_lowater_pct) / 100);
727 }
728
729 static inline boolean_t
dbuf_cache_above_lowater(void)730 dbuf_cache_above_lowater(void)
731 {
732 return (zfs_refcount_count(&dbuf_caches[DB_DBUF_CACHE].size) >
733 dbuf_cache_lowater_bytes());
734 }
735
736 /*
737 * Evict the oldest eligible dbuf from the dbuf cache.
738 */
739 static void
dbuf_evict_one(void)740 dbuf_evict_one(void)
741 {
742 int idx = multilist_get_random_index(&dbuf_caches[DB_DBUF_CACHE].cache);
743 multilist_sublist_t *mls = multilist_sublist_lock(
744 &dbuf_caches[DB_DBUF_CACHE].cache, idx);
745
746 ASSERT(!MUTEX_HELD(&dbuf_evict_lock));
747
748 dmu_buf_impl_t *db = multilist_sublist_tail(mls);
749 while (db != NULL && mutex_tryenter(&db->db_mtx) == 0) {
750 db = multilist_sublist_prev(mls, db);
751 }
752
753 DTRACE_PROBE2(dbuf__evict__one, dmu_buf_impl_t *, db,
754 multilist_sublist_t *, mls);
755
756 if (db != NULL) {
757 multilist_sublist_remove(mls, db);
758 multilist_sublist_unlock(mls);
759 (void) zfs_refcount_remove_many(
760 &dbuf_caches[DB_DBUF_CACHE].size, db->db.db_size, db);
761 DBUF_STAT_BUMPDOWN(cache_levels[db->db_level]);
762 DBUF_STAT_BUMPDOWN(cache_count);
763 DBUF_STAT_DECR(cache_levels_bytes[db->db_level],
764 db->db.db_size);
765 ASSERT3U(db->db_caching_status, ==, DB_DBUF_CACHE);
766 db->db_caching_status = DB_NO_CACHE;
767 dbuf_destroy(db);
768 DBUF_STAT_BUMP(cache_total_evicts);
769 } else {
770 multilist_sublist_unlock(mls);
771 }
772 }
773
774 /*
775 * The dbuf evict thread is responsible for aging out dbufs from the
776 * cache. Once the cache has reached it's maximum size, dbufs are removed
777 * and destroyed. The eviction thread will continue running until the size
778 * of the dbuf cache is at or below the maximum size. Once the dbuf is aged
779 * out of the cache it is destroyed and becomes eligible for arc eviction.
780 */
781 static void
dbuf_evict_thread(void * unused)782 dbuf_evict_thread(void *unused)
783 {
784 (void) unused;
785 callb_cpr_t cpr;
786
787 CALLB_CPR_INIT(&cpr, &dbuf_evict_lock, callb_generic_cpr, FTAG);
788
789 mutex_enter(&dbuf_evict_lock);
790 while (!dbuf_evict_thread_exit) {
791 while (!dbuf_cache_above_lowater() && !dbuf_evict_thread_exit) {
792 CALLB_CPR_SAFE_BEGIN(&cpr);
793 (void) cv_timedwait_idle_hires(&dbuf_evict_cv,
794 &dbuf_evict_lock, SEC2NSEC(1), MSEC2NSEC(1), 0);
795 CALLB_CPR_SAFE_END(&cpr, &dbuf_evict_lock);
796 }
797 mutex_exit(&dbuf_evict_lock);
798
799 /*
800 * Keep evicting as long as we're above the low water mark
801 * for the cache. We do this without holding the locks to
802 * minimize lock contention.
803 */
804 while (dbuf_cache_above_lowater() && !dbuf_evict_thread_exit) {
805 dbuf_evict_one();
806 }
807
808 mutex_enter(&dbuf_evict_lock);
809 }
810
811 dbuf_evict_thread_exit = B_FALSE;
812 cv_broadcast(&dbuf_evict_cv);
813 CALLB_CPR_EXIT(&cpr); /* drops dbuf_evict_lock */
814 thread_exit();
815 }
816
817 /*
818 * Wake up the dbuf eviction thread if the dbuf cache is at its max size.
819 * If the dbuf cache is at its high water mark, then evict a dbuf from the
820 * dbuf cache using the callers context.
821 */
822 static void
dbuf_evict_notify(uint64_t size)823 dbuf_evict_notify(uint64_t size)
824 {
825 /*
826 * We check if we should evict without holding the dbuf_evict_lock,
827 * because it's OK to occasionally make the wrong decision here,
828 * and grabbing the lock results in massive lock contention.
829 */
830 if (size > dbuf_cache_target_bytes()) {
831 if (size > dbuf_cache_hiwater_bytes())
832 dbuf_evict_one();
833 cv_signal(&dbuf_evict_cv);
834 }
835 }
836
837 static int
dbuf_kstat_update(kstat_t * ksp,int rw)838 dbuf_kstat_update(kstat_t *ksp, int rw)
839 {
840 dbuf_stats_t *ds = ksp->ks_data;
841
842 if (rw == KSTAT_WRITE)
843 return (SET_ERROR(EACCES));
844
845 ds->cache_count.value.ui64 =
846 wmsum_value(&dbuf_sums.cache_count);
847 ds->cache_size_bytes.value.ui64 =
848 zfs_refcount_count(&dbuf_caches[DB_DBUF_CACHE].size);
849 ds->cache_target_bytes.value.ui64 = dbuf_cache_target_bytes();
850 ds->cache_hiwater_bytes.value.ui64 = dbuf_cache_hiwater_bytes();
851 ds->cache_lowater_bytes.value.ui64 = dbuf_cache_lowater_bytes();
852 ds->cache_total_evicts.value.ui64 =
853 wmsum_value(&dbuf_sums.cache_total_evicts);
854 for (int i = 0; i < DN_MAX_LEVELS; i++) {
855 ds->cache_levels[i].value.ui64 =
856 wmsum_value(&dbuf_sums.cache_levels[i]);
857 ds->cache_levels_bytes[i].value.ui64 =
858 wmsum_value(&dbuf_sums.cache_levels_bytes[i]);
859 }
860 ds->hash_hits.value.ui64 =
861 wmsum_value(&dbuf_sums.hash_hits);
862 ds->hash_misses.value.ui64 =
863 wmsum_value(&dbuf_sums.hash_misses);
864 ds->hash_collisions.value.ui64 =
865 wmsum_value(&dbuf_sums.hash_collisions);
866 ds->hash_chains.value.ui64 =
867 wmsum_value(&dbuf_sums.hash_chains);
868 ds->hash_insert_race.value.ui64 =
869 wmsum_value(&dbuf_sums.hash_insert_race);
870 ds->metadata_cache_count.value.ui64 =
871 wmsum_value(&dbuf_sums.metadata_cache_count);
872 ds->metadata_cache_size_bytes.value.ui64 = zfs_refcount_count(
873 &dbuf_caches[DB_DBUF_METADATA_CACHE].size);
874 ds->metadata_cache_overflow.value.ui64 =
875 wmsum_value(&dbuf_sums.metadata_cache_overflow);
876 return (0);
877 }
878
879 void
dbuf_init(void)880 dbuf_init(void)
881 {
882 uint64_t hsize = 1ULL << 16;
883 dbuf_hash_table_t *h = &dbuf_hash_table;
884 int i;
885
886 /*
887 * The hash table is big enough to fill one eighth of physical memory
888 * with an average block size of zfs_arc_average_blocksize (default 8K).
889 * By default, the table will take up
890 * totalmem * sizeof(void*) / 8K (1MB per GB with 8-byte pointers).
891 */
892 while (hsize * zfs_arc_average_blocksize < arc_all_memory() / 8)
893 hsize <<= 1;
894
895 retry:
896 h->hash_table_mask = hsize - 1;
897 #if defined(_KERNEL)
898 /*
899 * Large allocations which do not require contiguous pages
900 * should be using vmem_alloc() in the linux kernel
901 */
902 h->hash_table = vmem_zalloc(hsize * sizeof (void *), KM_SLEEP);
903 #else
904 h->hash_table = kmem_zalloc(hsize * sizeof (void *), KM_NOSLEEP);
905 #endif
906 if (h->hash_table == NULL) {
907 /* XXX - we should really return an error instead of assert */
908 ASSERT(hsize > (1ULL << 10));
909 hsize >>= 1;
910 goto retry;
911 }
912
913 dbuf_kmem_cache = kmem_cache_create("dmu_buf_impl_t",
914 sizeof (dmu_buf_impl_t),
915 0, dbuf_cons, dbuf_dest, NULL, NULL, NULL, 0);
916
917 for (i = 0; i < DBUF_MUTEXES; i++)
918 mutex_init(&h->hash_mutexes[i], NULL, MUTEX_DEFAULT, NULL);
919
920 dbuf_stats_init(h);
921
922 /*
923 * All entries are queued via taskq_dispatch_ent(), so min/maxalloc
924 * configuration is not required.
925 */
926 dbu_evict_taskq = taskq_create("dbu_evict", 1, defclsyspri, 0, 0, 0);
927
928 for (dbuf_cached_state_t dcs = 0; dcs < DB_CACHE_MAX; dcs++) {
929 multilist_create(&dbuf_caches[dcs].cache,
930 sizeof (dmu_buf_impl_t),
931 offsetof(dmu_buf_impl_t, db_cache_link),
932 dbuf_cache_multilist_index_func);
933 zfs_refcount_create(&dbuf_caches[dcs].size);
934 }
935
936 dbuf_evict_thread_exit = B_FALSE;
937 mutex_init(&dbuf_evict_lock, NULL, MUTEX_DEFAULT, NULL);
938 cv_init(&dbuf_evict_cv, NULL, CV_DEFAULT, NULL);
939 dbuf_cache_evict_thread = thread_create(NULL, 0, dbuf_evict_thread,
940 NULL, 0, &p0, TS_RUN, minclsyspri);
941
942 wmsum_init(&dbuf_sums.cache_count, 0);
943 wmsum_init(&dbuf_sums.cache_total_evicts, 0);
944 for (i = 0; i < DN_MAX_LEVELS; i++) {
945 wmsum_init(&dbuf_sums.cache_levels[i], 0);
946 wmsum_init(&dbuf_sums.cache_levels_bytes[i], 0);
947 }
948 wmsum_init(&dbuf_sums.hash_hits, 0);
949 wmsum_init(&dbuf_sums.hash_misses, 0);
950 wmsum_init(&dbuf_sums.hash_collisions, 0);
951 wmsum_init(&dbuf_sums.hash_chains, 0);
952 wmsum_init(&dbuf_sums.hash_insert_race, 0);
953 wmsum_init(&dbuf_sums.metadata_cache_count, 0);
954 wmsum_init(&dbuf_sums.metadata_cache_overflow, 0);
955
956 dbuf_ksp = kstat_create("zfs", 0, "dbufstats", "misc",
957 KSTAT_TYPE_NAMED, sizeof (dbuf_stats) / sizeof (kstat_named_t),
958 KSTAT_FLAG_VIRTUAL);
959 if (dbuf_ksp != NULL) {
960 for (i = 0; i < DN_MAX_LEVELS; i++) {
961 snprintf(dbuf_stats.cache_levels[i].name,
962 KSTAT_STRLEN, "cache_level_%d", i);
963 dbuf_stats.cache_levels[i].data_type =
964 KSTAT_DATA_UINT64;
965 snprintf(dbuf_stats.cache_levels_bytes[i].name,
966 KSTAT_STRLEN, "cache_level_%d_bytes", i);
967 dbuf_stats.cache_levels_bytes[i].data_type =
968 KSTAT_DATA_UINT64;
969 }
970 dbuf_ksp->ks_data = &dbuf_stats;
971 dbuf_ksp->ks_update = dbuf_kstat_update;
972 kstat_install(dbuf_ksp);
973 }
974 }
975
976 void
dbuf_fini(void)977 dbuf_fini(void)
978 {
979 dbuf_hash_table_t *h = &dbuf_hash_table;
980 int i;
981
982 dbuf_stats_destroy();
983
984 for (i = 0; i < DBUF_MUTEXES; i++)
985 mutex_destroy(&h->hash_mutexes[i]);
986 #if defined(_KERNEL)
987 /*
988 * Large allocations which do not require contiguous pages
989 * should be using vmem_free() in the linux kernel
990 */
991 vmem_free(h->hash_table, (h->hash_table_mask + 1) * sizeof (void *));
992 #else
993 kmem_free(h->hash_table, (h->hash_table_mask + 1) * sizeof (void *));
994 #endif
995 kmem_cache_destroy(dbuf_kmem_cache);
996 taskq_destroy(dbu_evict_taskq);
997
998 mutex_enter(&dbuf_evict_lock);
999 dbuf_evict_thread_exit = B_TRUE;
1000 while (dbuf_evict_thread_exit) {
1001 cv_signal(&dbuf_evict_cv);
1002 cv_wait(&dbuf_evict_cv, &dbuf_evict_lock);
1003 }
1004 mutex_exit(&dbuf_evict_lock);
1005
1006 mutex_destroy(&dbuf_evict_lock);
1007 cv_destroy(&dbuf_evict_cv);
1008
1009 for (dbuf_cached_state_t dcs = 0; dcs < DB_CACHE_MAX; dcs++) {
1010 zfs_refcount_destroy(&dbuf_caches[dcs].size);
1011 multilist_destroy(&dbuf_caches[dcs].cache);
1012 }
1013
1014 if (dbuf_ksp != NULL) {
1015 kstat_delete(dbuf_ksp);
1016 dbuf_ksp = NULL;
1017 }
1018
1019 wmsum_fini(&dbuf_sums.cache_count);
1020 wmsum_fini(&dbuf_sums.cache_total_evicts);
1021 for (i = 0; i < DN_MAX_LEVELS; i++) {
1022 wmsum_fini(&dbuf_sums.cache_levels[i]);
1023 wmsum_fini(&dbuf_sums.cache_levels_bytes[i]);
1024 }
1025 wmsum_fini(&dbuf_sums.hash_hits);
1026 wmsum_fini(&dbuf_sums.hash_misses);
1027 wmsum_fini(&dbuf_sums.hash_collisions);
1028 wmsum_fini(&dbuf_sums.hash_chains);
1029 wmsum_fini(&dbuf_sums.hash_insert_race);
1030 wmsum_fini(&dbuf_sums.metadata_cache_count);
1031 wmsum_fini(&dbuf_sums.metadata_cache_overflow);
1032 }
1033
1034 /*
1035 * Other stuff.
1036 */
1037
1038 #ifdef ZFS_DEBUG
1039 static void
dbuf_verify(dmu_buf_impl_t * db)1040 dbuf_verify(dmu_buf_impl_t *db)
1041 {
1042 dnode_t *dn;
1043 dbuf_dirty_record_t *dr;
1044 uint32_t txg_prev;
1045
1046 ASSERT(MUTEX_HELD(&db->db_mtx));
1047
1048 if (!(zfs_flags & ZFS_DEBUG_DBUF_VERIFY))
1049 return;
1050
1051 ASSERT(db->db_objset != NULL);
1052 DB_DNODE_ENTER(db);
1053 dn = DB_DNODE(db);
1054 if (dn == NULL) {
1055 ASSERT(db->db_parent == NULL);
1056 ASSERT(db->db_blkptr == NULL);
1057 } else {
1058 ASSERT3U(db->db.db_object, ==, dn->dn_object);
1059 ASSERT3P(db->db_objset, ==, dn->dn_objset);
1060 ASSERT3U(db->db_level, <, dn->dn_nlevels);
1061 ASSERT(db->db_blkid == DMU_BONUS_BLKID ||
1062 db->db_blkid == DMU_SPILL_BLKID ||
1063 !avl_is_empty(&dn->dn_dbufs));
1064 }
1065 if (db->db_blkid == DMU_BONUS_BLKID) {
1066 ASSERT(dn != NULL);
1067 ASSERT3U(db->db.db_size, >=, dn->dn_bonuslen);
1068 ASSERT3U(db->db.db_offset, ==, DMU_BONUS_BLKID);
1069 } else if (db->db_blkid == DMU_SPILL_BLKID) {
1070 ASSERT(dn != NULL);
1071 ASSERT0(db->db.db_offset);
1072 } else {
1073 ASSERT3U(db->db.db_offset, ==, db->db_blkid * db->db.db_size);
1074 }
1075
1076 if ((dr = list_head(&db->db_dirty_records)) != NULL) {
1077 ASSERT(dr->dr_dbuf == db);
1078 txg_prev = dr->dr_txg;
1079 for (dr = list_next(&db->db_dirty_records, dr); dr != NULL;
1080 dr = list_next(&db->db_dirty_records, dr)) {
1081 ASSERT(dr->dr_dbuf == db);
1082 ASSERT(txg_prev > dr->dr_txg);
1083 txg_prev = dr->dr_txg;
1084 }
1085 }
1086
1087 /*
1088 * We can't assert that db_size matches dn_datablksz because it
1089 * can be momentarily different when another thread is doing
1090 * dnode_set_blksz().
1091 */
1092 if (db->db_level == 0 && db->db.db_object == DMU_META_DNODE_OBJECT) {
1093 dr = db->db_data_pending;
1094 /*
1095 * It should only be modified in syncing context, so
1096 * make sure we only have one copy of the data.
1097 */
1098 ASSERT(dr == NULL || dr->dt.dl.dr_data == db->db_buf);
1099 }
1100
1101 /* verify db->db_blkptr */
1102 if (db->db_blkptr) {
1103 if (db->db_parent == dn->dn_dbuf) {
1104 /* db is pointed to by the dnode */
1105 /* ASSERT3U(db->db_blkid, <, dn->dn_nblkptr); */
1106 if (DMU_OBJECT_IS_SPECIAL(db->db.db_object))
1107 ASSERT(db->db_parent == NULL);
1108 else
1109 ASSERT(db->db_parent != NULL);
1110 if (db->db_blkid != DMU_SPILL_BLKID)
1111 ASSERT3P(db->db_blkptr, ==,
1112 &dn->dn_phys->dn_blkptr[db->db_blkid]);
1113 } else {
1114 /* db is pointed to by an indirect block */
1115 int epb __maybe_unused = db->db_parent->db.db_size >>
1116 SPA_BLKPTRSHIFT;
1117 ASSERT3U(db->db_parent->db_level, ==, db->db_level+1);
1118 ASSERT3U(db->db_parent->db.db_object, ==,
1119 db->db.db_object);
1120 /*
1121 * dnode_grow_indblksz() can make this fail if we don't
1122 * have the parent's rwlock. XXX indblksz no longer
1123 * grows. safe to do this now?
1124 */
1125 if (RW_LOCK_HELD(&db->db_parent->db_rwlock)) {
1126 ASSERT3P(db->db_blkptr, ==,
1127 ((blkptr_t *)db->db_parent->db.db_data +
1128 db->db_blkid % epb));
1129 }
1130 }
1131 }
1132 if ((db->db_blkptr == NULL || BP_IS_HOLE(db->db_blkptr)) &&
1133 (db->db_buf == NULL || db->db_buf->b_data) &&
1134 db->db.db_data && db->db_blkid != DMU_BONUS_BLKID &&
1135 db->db_state != DB_FILL && !dn->dn_free_txg) {
1136 /*
1137 * If the blkptr isn't set but they have nonzero data,
1138 * it had better be dirty, otherwise we'll lose that
1139 * data when we evict this buffer.
1140 *
1141 * There is an exception to this rule for indirect blocks; in
1142 * this case, if the indirect block is a hole, we fill in a few
1143 * fields on each of the child blocks (importantly, birth time)
1144 * to prevent hole birth times from being lost when you
1145 * partially fill in a hole.
1146 */
1147 if (db->db_dirtycnt == 0) {
1148 if (db->db_level == 0) {
1149 uint64_t *buf = db->db.db_data;
1150 int i;
1151
1152 for (i = 0; i < db->db.db_size >> 3; i++) {
1153 ASSERT(buf[i] == 0);
1154 }
1155 } else {
1156 blkptr_t *bps = db->db.db_data;
1157 ASSERT3U(1 << DB_DNODE(db)->dn_indblkshift, ==,
1158 db->db.db_size);
1159 /*
1160 * We want to verify that all the blkptrs in the
1161 * indirect block are holes, but we may have
1162 * automatically set up a few fields for them.
1163 * We iterate through each blkptr and verify
1164 * they only have those fields set.
1165 */
1166 for (int i = 0;
1167 i < db->db.db_size / sizeof (blkptr_t);
1168 i++) {
1169 blkptr_t *bp = &bps[i];
1170 ASSERT(ZIO_CHECKSUM_IS_ZERO(
1171 &bp->blk_cksum));
1172 ASSERT(
1173 DVA_IS_EMPTY(&bp->blk_dva[0]) &&
1174 DVA_IS_EMPTY(&bp->blk_dva[1]) &&
1175 DVA_IS_EMPTY(&bp->blk_dva[2]));
1176 ASSERT0(bp->blk_fill);
1177 ASSERT0(bp->blk_pad[0]);
1178 ASSERT0(bp->blk_pad[1]);
1179 ASSERT(!BP_IS_EMBEDDED(bp));
1180 ASSERT(BP_IS_HOLE(bp));
1181 ASSERT0(bp->blk_phys_birth);
1182 }
1183 }
1184 }
1185 }
1186 DB_DNODE_EXIT(db);
1187 }
1188 #endif
1189
1190 static void
dbuf_clear_data(dmu_buf_impl_t * db)1191 dbuf_clear_data(dmu_buf_impl_t *db)
1192 {
1193 ASSERT(MUTEX_HELD(&db->db_mtx));
1194 dbuf_evict_user(db);
1195 ASSERT3P(db->db_buf, ==, NULL);
1196 db->db.db_data = NULL;
1197 if (db->db_state != DB_NOFILL) {
1198 db->db_state = DB_UNCACHED;
1199 DTRACE_SET_STATE(db, "clear data");
1200 }
1201 }
1202
1203 static void
dbuf_set_data(dmu_buf_impl_t * db,arc_buf_t * buf)1204 dbuf_set_data(dmu_buf_impl_t *db, arc_buf_t *buf)
1205 {
1206 ASSERT(MUTEX_HELD(&db->db_mtx));
1207 ASSERT(buf != NULL);
1208
1209 db->db_buf = buf;
1210 ASSERT(buf->b_data != NULL);
1211 db->db.db_data = buf->b_data;
1212 }
1213
1214 static arc_buf_t *
dbuf_alloc_arcbuf(dmu_buf_impl_t * db)1215 dbuf_alloc_arcbuf(dmu_buf_impl_t *db)
1216 {
1217 spa_t *spa = db->db_objset->os_spa;
1218
1219 return (arc_alloc_buf(spa, db, DBUF_GET_BUFC_TYPE(db), db->db.db_size));
1220 }
1221
1222 /*
1223 * Loan out an arc_buf for read. Return the loaned arc_buf.
1224 */
1225 arc_buf_t *
dbuf_loan_arcbuf(dmu_buf_impl_t * db)1226 dbuf_loan_arcbuf(dmu_buf_impl_t *db)
1227 {
1228 arc_buf_t *abuf;
1229
1230 ASSERT(db->db_blkid != DMU_BONUS_BLKID);
1231 mutex_enter(&db->db_mtx);
1232 if (arc_released(db->db_buf) || zfs_refcount_count(&db->db_holds) > 1) {
1233 int blksz = db->db.db_size;
1234 spa_t *spa = db->db_objset->os_spa;
1235
1236 mutex_exit(&db->db_mtx);
1237 abuf = arc_loan_buf(spa, B_FALSE, blksz);
1238 bcopy(db->db.db_data, abuf->b_data, blksz);
1239 } else {
1240 abuf = db->db_buf;
1241 arc_loan_inuse_buf(abuf, db);
1242 db->db_buf = NULL;
1243 dbuf_clear_data(db);
1244 mutex_exit(&db->db_mtx);
1245 }
1246 return (abuf);
1247 }
1248
1249 /*
1250 * Calculate which level n block references the data at the level 0 offset
1251 * provided.
1252 */
1253 uint64_t
dbuf_whichblock(const dnode_t * dn,const int64_t level,const uint64_t offset)1254 dbuf_whichblock(const dnode_t *dn, const int64_t level, const uint64_t offset)
1255 {
1256 if (dn->dn_datablkshift != 0 && dn->dn_indblkshift != 0) {
1257 /*
1258 * The level n blkid is equal to the level 0 blkid divided by
1259 * the number of level 0s in a level n block.
1260 *
1261 * The level 0 blkid is offset >> datablkshift =
1262 * offset / 2^datablkshift.
1263 *
1264 * The number of level 0s in a level n is the number of block
1265 * pointers in an indirect block, raised to the power of level.
1266 * This is 2^(indblkshift - SPA_BLKPTRSHIFT)^level =
1267 * 2^(level*(indblkshift - SPA_BLKPTRSHIFT)).
1268 *
1269 * Thus, the level n blkid is: offset /
1270 * ((2^datablkshift)*(2^(level*(indblkshift-SPA_BLKPTRSHIFT))))
1271 * = offset / 2^(datablkshift + level *
1272 * (indblkshift - SPA_BLKPTRSHIFT))
1273 * = offset >> (datablkshift + level *
1274 * (indblkshift - SPA_BLKPTRSHIFT))
1275 */
1276
1277 const unsigned exp = dn->dn_datablkshift +
1278 level * (dn->dn_indblkshift - SPA_BLKPTRSHIFT);
1279
1280 if (exp >= 8 * sizeof (offset)) {
1281 /* This only happens on the highest indirection level */
1282 ASSERT3U(level, ==, dn->dn_nlevels - 1);
1283 return (0);
1284 }
1285
1286 ASSERT3U(exp, <, 8 * sizeof (offset));
1287
1288 return (offset >> exp);
1289 } else {
1290 ASSERT3U(offset, <, dn->dn_datablksz);
1291 return (0);
1292 }
1293 }
1294
1295 /*
1296 * This function is used to lock the parent of the provided dbuf. This should be
1297 * used when modifying or reading db_blkptr.
1298 */
1299 db_lock_type_t
dmu_buf_lock_parent(dmu_buf_impl_t * db,krw_t rw,void * tag)1300 dmu_buf_lock_parent(dmu_buf_impl_t *db, krw_t rw, void *tag)
1301 {
1302 enum db_lock_type ret = DLT_NONE;
1303 if (db->db_parent != NULL) {
1304 rw_enter(&db->db_parent->db_rwlock, rw);
1305 ret = DLT_PARENT;
1306 } else if (dmu_objset_ds(db->db_objset) != NULL) {
1307 rrw_enter(&dmu_objset_ds(db->db_objset)->ds_bp_rwlock, rw,
1308 tag);
1309 ret = DLT_OBJSET;
1310 }
1311 /*
1312 * We only return a DLT_NONE lock when it's the top-most indirect block
1313 * of the meta-dnode of the MOS.
1314 */
1315 return (ret);
1316 }
1317
1318 /*
1319 * We need to pass the lock type in because it's possible that the block will
1320 * move from being the topmost indirect block in a dnode (and thus, have no
1321 * parent) to not the top-most via an indirection increase. This would cause a
1322 * panic if we didn't pass the lock type in.
1323 */
1324 void
dmu_buf_unlock_parent(dmu_buf_impl_t * db,db_lock_type_t type,void * tag)1325 dmu_buf_unlock_parent(dmu_buf_impl_t *db, db_lock_type_t type, void *tag)
1326 {
1327 if (type == DLT_PARENT)
1328 rw_exit(&db->db_parent->db_rwlock);
1329 else if (type == DLT_OBJSET)
1330 rrw_exit(&dmu_objset_ds(db->db_objset)->ds_bp_rwlock, tag);
1331 }
1332
1333 static void
dbuf_read_done(zio_t * zio,const zbookmark_phys_t * zb,const blkptr_t * bp,arc_buf_t * buf,void * vdb)1334 dbuf_read_done(zio_t *zio, const zbookmark_phys_t *zb, const blkptr_t *bp,
1335 arc_buf_t *buf, void *vdb)
1336 {
1337 (void) zb, (void) bp;
1338 dmu_buf_impl_t *db = vdb;
1339
1340 mutex_enter(&db->db_mtx);
1341 ASSERT3U(db->db_state, ==, DB_READ);
1342 /*
1343 * All reads are synchronous, so we must have a hold on the dbuf
1344 */
1345 ASSERT(zfs_refcount_count(&db->db_holds) > 0);
1346 ASSERT(db->db_buf == NULL);
1347 ASSERT(db->db.db_data == NULL);
1348 if (buf == NULL) {
1349 /* i/o error */
1350 ASSERT(zio == NULL || zio->io_error != 0);
1351 ASSERT(db->db_blkid != DMU_BONUS_BLKID);
1352 ASSERT3P(db->db_buf, ==, NULL);
1353 db->db_state = DB_UNCACHED;
1354 DTRACE_SET_STATE(db, "i/o error");
1355 } else if (db->db_level == 0 && db->db_freed_in_flight) {
1356 /* freed in flight */
1357 ASSERT(zio == NULL || zio->io_error == 0);
1358 arc_release(buf, db);
1359 bzero(buf->b_data, db->db.db_size);
1360 arc_buf_freeze(buf);
1361 db->db_freed_in_flight = FALSE;
1362 dbuf_set_data(db, buf);
1363 db->db_state = DB_CACHED;
1364 DTRACE_SET_STATE(db, "freed in flight");
1365 } else {
1366 /* success */
1367 ASSERT(zio == NULL || zio->io_error == 0);
1368 dbuf_set_data(db, buf);
1369 db->db_state = DB_CACHED;
1370 DTRACE_SET_STATE(db, "successful read");
1371 }
1372 cv_broadcast(&db->db_changed);
1373 dbuf_rele_and_unlock(db, NULL, B_FALSE);
1374 }
1375
1376 /*
1377 * Shortcut for performing reads on bonus dbufs. Returns
1378 * an error if we fail to verify the dnode associated with
1379 * a decrypted block. Otherwise success.
1380 */
1381 static int
dbuf_read_bonus(dmu_buf_impl_t * db,dnode_t * dn,uint32_t flags)1382 dbuf_read_bonus(dmu_buf_impl_t *db, dnode_t *dn, uint32_t flags)
1383 {
1384 int bonuslen, max_bonuslen, err;
1385
1386 err = dbuf_read_verify_dnode_crypt(db, flags);
1387 if (err)
1388 return (err);
1389
1390 bonuslen = MIN(dn->dn_bonuslen, dn->dn_phys->dn_bonuslen);
1391 max_bonuslen = DN_SLOTS_TO_BONUSLEN(dn->dn_num_slots);
1392 ASSERT(MUTEX_HELD(&db->db_mtx));
1393 ASSERT(DB_DNODE_HELD(db));
1394 ASSERT3U(bonuslen, <=, db->db.db_size);
1395 db->db.db_data = kmem_alloc(max_bonuslen, KM_SLEEP);
1396 arc_space_consume(max_bonuslen, ARC_SPACE_BONUS);
1397 if (bonuslen < max_bonuslen)
1398 bzero(db->db.db_data, max_bonuslen);
1399 if (bonuslen)
1400 bcopy(DN_BONUS(dn->dn_phys), db->db.db_data, bonuslen);
1401 db->db_state = DB_CACHED;
1402 DTRACE_SET_STATE(db, "bonus buffer filled");
1403 return (0);
1404 }
1405
1406 static void
dbuf_handle_indirect_hole(dmu_buf_impl_t * db,dnode_t * dn)1407 dbuf_handle_indirect_hole(dmu_buf_impl_t *db, dnode_t *dn)
1408 {
1409 blkptr_t *bps = db->db.db_data;
1410 uint32_t indbs = 1ULL << dn->dn_indblkshift;
1411 int n_bps = indbs >> SPA_BLKPTRSHIFT;
1412
1413 for (int i = 0; i < n_bps; i++) {
1414 blkptr_t *bp = &bps[i];
1415
1416 ASSERT3U(BP_GET_LSIZE(db->db_blkptr), ==, indbs);
1417 BP_SET_LSIZE(bp, BP_GET_LEVEL(db->db_blkptr) == 1 ?
1418 dn->dn_datablksz : BP_GET_LSIZE(db->db_blkptr));
1419 BP_SET_TYPE(bp, BP_GET_TYPE(db->db_blkptr));
1420 BP_SET_LEVEL(bp, BP_GET_LEVEL(db->db_blkptr) - 1);
1421 BP_SET_BIRTH(bp, db->db_blkptr->blk_birth, 0);
1422 }
1423 }
1424
1425 /*
1426 * Handle reads on dbufs that are holes, if necessary. This function
1427 * requires that the dbuf's mutex is held. Returns success (0) if action
1428 * was taken, ENOENT if no action was taken.
1429 */
1430 static int
dbuf_read_hole(dmu_buf_impl_t * db,dnode_t * dn)1431 dbuf_read_hole(dmu_buf_impl_t *db, dnode_t *dn)
1432 {
1433 ASSERT(MUTEX_HELD(&db->db_mtx));
1434
1435 int is_hole = db->db_blkptr == NULL || BP_IS_HOLE(db->db_blkptr);
1436 /*
1437 * For level 0 blocks only, if the above check fails:
1438 * Recheck BP_IS_HOLE() after dnode_block_freed() in case dnode_sync()
1439 * processes the delete record and clears the bp while we are waiting
1440 * for the dn_mtx (resulting in a "no" from block_freed).
1441 */
1442 if (!is_hole && db->db_level == 0) {
1443 is_hole = dnode_block_freed(dn, db->db_blkid) ||
1444 BP_IS_HOLE(db->db_blkptr);
1445 }
1446
1447 if (is_hole) {
1448 dbuf_set_data(db, dbuf_alloc_arcbuf(db));
1449 bzero(db->db.db_data, db->db.db_size);
1450
1451 if (db->db_blkptr != NULL && db->db_level > 0 &&
1452 BP_IS_HOLE(db->db_blkptr) &&
1453 db->db_blkptr->blk_birth != 0) {
1454 dbuf_handle_indirect_hole(db, dn);
1455 }
1456 db->db_state = DB_CACHED;
1457 DTRACE_SET_STATE(db, "hole read satisfied");
1458 return (0);
1459 }
1460 return (ENOENT);
1461 }
1462
1463 /*
1464 * This function ensures that, when doing a decrypting read of a block,
1465 * we make sure we have decrypted the dnode associated with it. We must do
1466 * this so that we ensure we are fully authenticating the checksum-of-MACs
1467 * tree from the root of the objset down to this block. Indirect blocks are
1468 * always verified against their secure checksum-of-MACs assuming that the
1469 * dnode containing them is correct. Now that we are doing a decrypting read,
1470 * we can be sure that the key is loaded and verify that assumption. This is
1471 * especially important considering that we always read encrypted dnode
1472 * blocks as raw data (without verifying their MACs) to start, and
1473 * decrypt / authenticate them when we need to read an encrypted bonus buffer.
1474 */
1475 static int
dbuf_read_verify_dnode_crypt(dmu_buf_impl_t * db,uint32_t flags)1476 dbuf_read_verify_dnode_crypt(dmu_buf_impl_t *db, uint32_t flags)
1477 {
1478 int err = 0;
1479 objset_t *os = db->db_objset;
1480 arc_buf_t *dnode_abuf;
1481 dnode_t *dn;
1482 zbookmark_phys_t zb;
1483
1484 ASSERT(MUTEX_HELD(&db->db_mtx));
1485
1486 if ((flags & DB_RF_NO_DECRYPT) != 0 ||
1487 !os->os_encrypted || os->os_raw_receive)
1488 return (0);
1489
1490 DB_DNODE_ENTER(db);
1491 dn = DB_DNODE(db);
1492 dnode_abuf = (dn->dn_dbuf != NULL) ? dn->dn_dbuf->db_buf : NULL;
1493
1494 if (dnode_abuf == NULL || !arc_is_encrypted(dnode_abuf)) {
1495 DB_DNODE_EXIT(db);
1496 return (0);
1497 }
1498
1499 SET_BOOKMARK(&zb, dmu_objset_id(os),
1500 DMU_META_DNODE_OBJECT, 0, dn->dn_dbuf->db_blkid);
1501 err = arc_untransform(dnode_abuf, os->os_spa, &zb, B_TRUE);
1502
1503 /*
1504 * An error code of EACCES tells us that the key is still not
1505 * available. This is ok if we are only reading authenticated
1506 * (and therefore non-encrypted) blocks.
1507 */
1508 if (err == EACCES && ((db->db_blkid != DMU_BONUS_BLKID &&
1509 !DMU_OT_IS_ENCRYPTED(dn->dn_type)) ||
1510 (db->db_blkid == DMU_BONUS_BLKID &&
1511 !DMU_OT_IS_ENCRYPTED(dn->dn_bonustype))))
1512 err = 0;
1513
1514 DB_DNODE_EXIT(db);
1515
1516 return (err);
1517 }
1518
1519 /*
1520 * Drops db_mtx and the parent lock specified by dblt and tag before
1521 * returning.
1522 */
1523 static int
dbuf_read_impl(dmu_buf_impl_t * db,zio_t * zio,uint32_t flags,db_lock_type_t dblt,void * tag)1524 dbuf_read_impl(dmu_buf_impl_t *db, zio_t *zio, uint32_t flags,
1525 db_lock_type_t dblt, void *tag)
1526 {
1527 dnode_t *dn;
1528 zbookmark_phys_t zb;
1529 uint32_t aflags = ARC_FLAG_NOWAIT;
1530 int err, zio_flags;
1531
1532 err = zio_flags = 0;
1533 DB_DNODE_ENTER(db);
1534 dn = DB_DNODE(db);
1535 ASSERT(!zfs_refcount_is_zero(&db->db_holds));
1536 ASSERT(MUTEX_HELD(&db->db_mtx));
1537 ASSERT(db->db_state == DB_UNCACHED);
1538 ASSERT(db->db_buf == NULL);
1539 ASSERT(db->db_parent == NULL ||
1540 RW_LOCK_HELD(&db->db_parent->db_rwlock));
1541
1542 if (db->db_blkid == DMU_BONUS_BLKID) {
1543 err = dbuf_read_bonus(db, dn, flags);
1544 goto early_unlock;
1545 }
1546
1547 err = dbuf_read_hole(db, dn);
1548 if (err == 0)
1549 goto early_unlock;
1550
1551 /*
1552 * Any attempt to read a redacted block should result in an error. This
1553 * will never happen under normal conditions, but can be useful for
1554 * debugging purposes.
1555 */
1556 if (BP_IS_REDACTED(db->db_blkptr)) {
1557 ASSERT(dsl_dataset_feature_is_active(
1558 db->db_objset->os_dsl_dataset,
1559 SPA_FEATURE_REDACTED_DATASETS));
1560 err = SET_ERROR(EIO);
1561 goto early_unlock;
1562 }
1563
1564 SET_BOOKMARK(&zb, dmu_objset_id(db->db_objset),
1565 db->db.db_object, db->db_level, db->db_blkid);
1566
1567 /*
1568 * All bps of an encrypted os should have the encryption bit set.
1569 * If this is not true it indicates tampering and we report an error.
1570 */
1571 if (db->db_objset->os_encrypted && !BP_USES_CRYPT(db->db_blkptr)) {
1572 spa_log_error(db->db_objset->os_spa, &zb);
1573 zfs_panic_recover("unencrypted block in encrypted "
1574 "object set %llu", dmu_objset_id(db->db_objset));
1575 err = SET_ERROR(EIO);
1576 goto early_unlock;
1577 }
1578
1579 err = dbuf_read_verify_dnode_crypt(db, flags);
1580 if (err != 0)
1581 goto early_unlock;
1582
1583 DB_DNODE_EXIT(db);
1584
1585 db->db_state = DB_READ;
1586 DTRACE_SET_STATE(db, "read issued");
1587 mutex_exit(&db->db_mtx);
1588
1589 if (dbuf_is_l2cacheable(db))
1590 aflags |= ARC_FLAG_L2CACHE;
1591
1592 dbuf_add_ref(db, NULL);
1593
1594 zio_flags = (flags & DB_RF_CANFAIL) ?
1595 ZIO_FLAG_CANFAIL : ZIO_FLAG_MUSTSUCCEED;
1596
1597 if ((flags & DB_RF_NO_DECRYPT) && BP_IS_PROTECTED(db->db_blkptr))
1598 zio_flags |= ZIO_FLAG_RAW;
1599 /*
1600 * The zio layer will copy the provided blkptr later, but we need to
1601 * do this now so that we can release the parent's rwlock. We have to
1602 * do that now so that if dbuf_read_done is called synchronously (on
1603 * an l1 cache hit) we don't acquire the db_mtx while holding the
1604 * parent's rwlock, which would be a lock ordering violation.
1605 */
1606 blkptr_t bp = *db->db_blkptr;
1607 dmu_buf_unlock_parent(db, dblt, tag);
1608 (void) arc_read(zio, db->db_objset->os_spa, &bp,
1609 dbuf_read_done, db, ZIO_PRIORITY_SYNC_READ, zio_flags,
1610 &aflags, &zb);
1611 return (err);
1612 early_unlock:
1613 DB_DNODE_EXIT(db);
1614 mutex_exit(&db->db_mtx);
1615 dmu_buf_unlock_parent(db, dblt, tag);
1616 return (err);
1617 }
1618
1619 /*
1620 * This is our just-in-time copy function. It makes a copy of buffers that
1621 * have been modified in a previous transaction group before we access them in
1622 * the current active group.
1623 *
1624 * This function is used in three places: when we are dirtying a buffer for the
1625 * first time in a txg, when we are freeing a range in a dnode that includes
1626 * this buffer, and when we are accessing a buffer which was received compressed
1627 * and later referenced in a WRITE_BYREF record.
1628 *
1629 * Note that when we are called from dbuf_free_range() we do not put a hold on
1630 * the buffer, we just traverse the active dbuf list for the dnode.
1631 */
1632 static void
dbuf_fix_old_data(dmu_buf_impl_t * db,uint64_t txg)1633 dbuf_fix_old_data(dmu_buf_impl_t *db, uint64_t txg)
1634 {
1635 dbuf_dirty_record_t *dr = list_head(&db->db_dirty_records);
1636
1637 ASSERT(MUTEX_HELD(&db->db_mtx));
1638 ASSERT(db->db.db_data != NULL);
1639 ASSERT(db->db_level == 0);
1640 ASSERT(db->db.db_object != DMU_META_DNODE_OBJECT);
1641
1642 if (dr == NULL ||
1643 (dr->dt.dl.dr_data !=
1644 ((db->db_blkid == DMU_BONUS_BLKID) ? db->db.db_data : db->db_buf)))
1645 return;
1646
1647 /*
1648 * If the last dirty record for this dbuf has not yet synced
1649 * and its referencing the dbuf data, either:
1650 * reset the reference to point to a new copy,
1651 * or (if there a no active holders)
1652 * just null out the current db_data pointer.
1653 */
1654 ASSERT3U(dr->dr_txg, >=, txg - 2);
1655 if (db->db_blkid == DMU_BONUS_BLKID) {
1656 dnode_t *dn = DB_DNODE(db);
1657 int bonuslen = DN_SLOTS_TO_BONUSLEN(dn->dn_num_slots);
1658 dr->dt.dl.dr_data = kmem_alloc(bonuslen, KM_SLEEP);
1659 arc_space_consume(bonuslen, ARC_SPACE_BONUS);
1660 bcopy(db->db.db_data, dr->dt.dl.dr_data, bonuslen);
1661 } else if (zfs_refcount_count(&db->db_holds) > db->db_dirtycnt) {
1662 dnode_t *dn = DB_DNODE(db);
1663 int size = arc_buf_size(db->db_buf);
1664 arc_buf_contents_t type = DBUF_GET_BUFC_TYPE(db);
1665 spa_t *spa = db->db_objset->os_spa;
1666 enum zio_compress compress_type =
1667 arc_get_compression(db->db_buf);
1668 uint8_t complevel = arc_get_complevel(db->db_buf);
1669
1670 if (arc_is_encrypted(db->db_buf)) {
1671 boolean_t byteorder;
1672 uint8_t salt[ZIO_DATA_SALT_LEN];
1673 uint8_t iv[ZIO_DATA_IV_LEN];
1674 uint8_t mac[ZIO_DATA_MAC_LEN];
1675
1676 arc_get_raw_params(db->db_buf, &byteorder, salt,
1677 iv, mac);
1678 dr->dt.dl.dr_data = arc_alloc_raw_buf(spa, db,
1679 dmu_objset_id(dn->dn_objset), byteorder, salt, iv,
1680 mac, dn->dn_type, size, arc_buf_lsize(db->db_buf),
1681 compress_type, complevel);
1682 } else if (compress_type != ZIO_COMPRESS_OFF) {
1683 ASSERT3U(type, ==, ARC_BUFC_DATA);
1684 dr->dt.dl.dr_data = arc_alloc_compressed_buf(spa, db,
1685 size, arc_buf_lsize(db->db_buf), compress_type,
1686 complevel);
1687 } else {
1688 dr->dt.dl.dr_data = arc_alloc_buf(spa, db, type, size);
1689 }
1690 bcopy(db->db.db_data, dr->dt.dl.dr_data->b_data, size);
1691 } else {
1692 db->db_buf = NULL;
1693 dbuf_clear_data(db);
1694 }
1695 }
1696
1697 int
dbuf_read(dmu_buf_impl_t * db,zio_t * zio,uint32_t flags)1698 dbuf_read(dmu_buf_impl_t *db, zio_t *zio, uint32_t flags)
1699 {
1700 int err = 0;
1701 boolean_t prefetch;
1702 dnode_t *dn;
1703
1704 /*
1705 * We don't have to hold the mutex to check db_state because it
1706 * can't be freed while we have a hold on the buffer.
1707 */
1708 ASSERT(!zfs_refcount_is_zero(&db->db_holds));
1709
1710 if (db->db_state == DB_NOFILL)
1711 return (SET_ERROR(EIO));
1712
1713 DB_DNODE_ENTER(db);
1714 dn = DB_DNODE(db);
1715
1716 prefetch = db->db_level == 0 && db->db_blkid != DMU_BONUS_BLKID &&
1717 (flags & DB_RF_NOPREFETCH) == 0 && dn != NULL &&
1718 DBUF_IS_CACHEABLE(db);
1719
1720 mutex_enter(&db->db_mtx);
1721 if (db->db_state == DB_CACHED) {
1722 /*
1723 * Ensure that this block's dnode has been decrypted if
1724 * the caller has requested decrypted data.
1725 */
1726 err = dbuf_read_verify_dnode_crypt(db, flags);
1727
1728 /*
1729 * If the arc buf is compressed or encrypted and the caller
1730 * requested uncompressed data, we need to untransform it
1731 * before returning. We also call arc_untransform() on any
1732 * unauthenticated blocks, which will verify their MAC if
1733 * the key is now available.
1734 */
1735 if (err == 0 && db->db_buf != NULL &&
1736 (flags & DB_RF_NO_DECRYPT) == 0 &&
1737 (arc_is_encrypted(db->db_buf) ||
1738 arc_is_unauthenticated(db->db_buf) ||
1739 arc_get_compression(db->db_buf) != ZIO_COMPRESS_OFF)) {
1740 spa_t *spa = dn->dn_objset->os_spa;
1741 zbookmark_phys_t zb;
1742
1743 SET_BOOKMARK(&zb, dmu_objset_id(db->db_objset),
1744 db->db.db_object, db->db_level, db->db_blkid);
1745 dbuf_fix_old_data(db, spa_syncing_txg(spa));
1746 err = arc_untransform(db->db_buf, spa, &zb, B_FALSE);
1747 dbuf_set_data(db, db->db_buf);
1748 }
1749 mutex_exit(&db->db_mtx);
1750 if (err == 0 && prefetch) {
1751 dmu_zfetch(&dn->dn_zfetch, db->db_blkid, 1, B_TRUE,
1752 B_FALSE, flags & DB_RF_HAVESTRUCT);
1753 }
1754 DB_DNODE_EXIT(db);
1755 DBUF_STAT_BUMP(hash_hits);
1756 } else if (db->db_state == DB_UNCACHED) {
1757 boolean_t need_wait = B_FALSE;
1758
1759 db_lock_type_t dblt = dmu_buf_lock_parent(db, RW_READER, FTAG);
1760
1761 if (zio == NULL &&
1762 db->db_blkptr != NULL && !BP_IS_HOLE(db->db_blkptr)) {
1763 spa_t *spa = dn->dn_objset->os_spa;
1764 zio = zio_root(spa, NULL, NULL, ZIO_FLAG_CANFAIL);
1765 need_wait = B_TRUE;
1766 }
1767 err = dbuf_read_impl(db, zio, flags, dblt, FTAG);
1768 /*
1769 * dbuf_read_impl has dropped db_mtx and our parent's rwlock
1770 * for us
1771 */
1772 if (!err && prefetch) {
1773 dmu_zfetch(&dn->dn_zfetch, db->db_blkid, 1, B_TRUE,
1774 db->db_state != DB_CACHED,
1775 flags & DB_RF_HAVESTRUCT);
1776 }
1777
1778 DB_DNODE_EXIT(db);
1779 DBUF_STAT_BUMP(hash_misses);
1780
1781 /*
1782 * If we created a zio_root we must execute it to avoid
1783 * leaking it, even if it isn't attached to any work due
1784 * to an error in dbuf_read_impl().
1785 */
1786 if (need_wait) {
1787 if (err == 0)
1788 err = zio_wait(zio);
1789 else
1790 VERIFY0(zio_wait(zio));
1791 }
1792 } else {
1793 /*
1794 * Another reader came in while the dbuf was in flight
1795 * between UNCACHED and CACHED. Either a writer will finish
1796 * writing the buffer (sending the dbuf to CACHED) or the
1797 * first reader's request will reach the read_done callback
1798 * and send the dbuf to CACHED. Otherwise, a failure
1799 * occurred and the dbuf went to UNCACHED.
1800 */
1801 mutex_exit(&db->db_mtx);
1802 if (prefetch) {
1803 dmu_zfetch(&dn->dn_zfetch, db->db_blkid, 1, B_TRUE,
1804 B_TRUE, flags & DB_RF_HAVESTRUCT);
1805 }
1806 DB_DNODE_EXIT(db);
1807 DBUF_STAT_BUMP(hash_misses);
1808
1809 /* Skip the wait per the caller's request. */
1810 if ((flags & DB_RF_NEVERWAIT) == 0) {
1811 mutex_enter(&db->db_mtx);
1812 while (db->db_state == DB_READ ||
1813 db->db_state == DB_FILL) {
1814 ASSERT(db->db_state == DB_READ ||
1815 (flags & DB_RF_HAVESTRUCT) == 0);
1816 DTRACE_PROBE2(blocked__read, dmu_buf_impl_t *,
1817 db, zio_t *, zio);
1818 cv_wait(&db->db_changed, &db->db_mtx);
1819 }
1820 if (db->db_state == DB_UNCACHED)
1821 err = SET_ERROR(EIO);
1822 mutex_exit(&db->db_mtx);
1823 }
1824 }
1825
1826 return (err);
1827 }
1828
1829 static void
dbuf_noread(dmu_buf_impl_t * db)1830 dbuf_noread(dmu_buf_impl_t *db)
1831 {
1832 ASSERT(!zfs_refcount_is_zero(&db->db_holds));
1833 ASSERT(db->db_blkid != DMU_BONUS_BLKID);
1834 mutex_enter(&db->db_mtx);
1835 while (db->db_state == DB_READ || db->db_state == DB_FILL)
1836 cv_wait(&db->db_changed, &db->db_mtx);
1837 if (db->db_state == DB_UNCACHED) {
1838 ASSERT(db->db_buf == NULL);
1839 ASSERT(db->db.db_data == NULL);
1840 dbuf_set_data(db, dbuf_alloc_arcbuf(db));
1841 db->db_state = DB_FILL;
1842 DTRACE_SET_STATE(db, "assigning filled buffer");
1843 } else if (db->db_state == DB_NOFILL) {
1844 dbuf_clear_data(db);
1845 } else {
1846 ASSERT3U(db->db_state, ==, DB_CACHED);
1847 }
1848 mutex_exit(&db->db_mtx);
1849 }
1850
1851 void
dbuf_unoverride(dbuf_dirty_record_t * dr)1852 dbuf_unoverride(dbuf_dirty_record_t *dr)
1853 {
1854 dmu_buf_impl_t *db = dr->dr_dbuf;
1855 blkptr_t *bp = &dr->dt.dl.dr_overridden_by;
1856 uint64_t txg = dr->dr_txg;
1857
1858 ASSERT(MUTEX_HELD(&db->db_mtx));
1859 /*
1860 * This assert is valid because dmu_sync() expects to be called by
1861 * a zilog's get_data while holding a range lock. This call only
1862 * comes from dbuf_dirty() callers who must also hold a range lock.
1863 */
1864 ASSERT(dr->dt.dl.dr_override_state != DR_IN_DMU_SYNC);
1865 ASSERT(db->db_level == 0);
1866
1867 if (db->db_blkid == DMU_BONUS_BLKID ||
1868 dr->dt.dl.dr_override_state == DR_NOT_OVERRIDDEN)
1869 return;
1870
1871 ASSERT(db->db_data_pending != dr);
1872
1873 /* free this block */
1874 if (!BP_IS_HOLE(bp) && !dr->dt.dl.dr_nopwrite)
1875 zio_free(db->db_objset->os_spa, txg, bp);
1876
1877 dr->dt.dl.dr_override_state = DR_NOT_OVERRIDDEN;
1878 dr->dt.dl.dr_nopwrite = B_FALSE;
1879 dr->dt.dl.dr_has_raw_params = B_FALSE;
1880
1881 /*
1882 * Release the already-written buffer, so we leave it in
1883 * a consistent dirty state. Note that all callers are
1884 * modifying the buffer, so they will immediately do
1885 * another (redundant) arc_release(). Therefore, leave
1886 * the buf thawed to save the effort of freezing &
1887 * immediately re-thawing it.
1888 */
1889 arc_release(dr->dt.dl.dr_data, db);
1890 }
1891
1892 /*
1893 * Evict (if its unreferenced) or clear (if its referenced) any level-0
1894 * data blocks in the free range, so that any future readers will find
1895 * empty blocks.
1896 */
1897 void
dbuf_free_range(dnode_t * dn,uint64_t start_blkid,uint64_t end_blkid,dmu_tx_t * tx)1898 dbuf_free_range(dnode_t *dn, uint64_t start_blkid, uint64_t end_blkid,
1899 dmu_tx_t *tx)
1900 {
1901 dmu_buf_impl_t *db_search;
1902 dmu_buf_impl_t *db, *db_next;
1903 uint64_t txg = tx->tx_txg;
1904 avl_index_t where;
1905 dbuf_dirty_record_t *dr;
1906
1907 if (end_blkid > dn->dn_maxblkid &&
1908 !(start_blkid == DMU_SPILL_BLKID || end_blkid == DMU_SPILL_BLKID))
1909 end_blkid = dn->dn_maxblkid;
1910 dprintf_dnode(dn, "start=%llu end=%llu\n", (u_longlong_t)start_blkid,
1911 (u_longlong_t)end_blkid);
1912
1913 db_search = kmem_alloc(sizeof (dmu_buf_impl_t), KM_SLEEP);
1914 db_search->db_level = 0;
1915 db_search->db_blkid = start_blkid;
1916 db_search->db_state = DB_SEARCH;
1917
1918 mutex_enter(&dn->dn_dbufs_mtx);
1919 db = avl_find(&dn->dn_dbufs, db_search, &where);
1920 ASSERT3P(db, ==, NULL);
1921
1922 db = avl_nearest(&dn->dn_dbufs, where, AVL_AFTER);
1923
1924 for (; db != NULL; db = db_next) {
1925 db_next = AVL_NEXT(&dn->dn_dbufs, db);
1926 ASSERT(db->db_blkid != DMU_BONUS_BLKID);
1927
1928 if (db->db_level != 0 || db->db_blkid > end_blkid) {
1929 break;
1930 }
1931 ASSERT3U(db->db_blkid, >=, start_blkid);
1932
1933 /* found a level 0 buffer in the range */
1934 mutex_enter(&db->db_mtx);
1935 if (dbuf_undirty(db, tx)) {
1936 /* mutex has been dropped and dbuf destroyed */
1937 continue;
1938 }
1939
1940 if (db->db_state == DB_UNCACHED ||
1941 db->db_state == DB_NOFILL ||
1942 db->db_state == DB_EVICTING) {
1943 ASSERT(db->db.db_data == NULL);
1944 mutex_exit(&db->db_mtx);
1945 continue;
1946 }
1947 if (db->db_state == DB_READ || db->db_state == DB_FILL) {
1948 /* will be handled in dbuf_read_done or dbuf_rele */
1949 db->db_freed_in_flight = TRUE;
1950 mutex_exit(&db->db_mtx);
1951 continue;
1952 }
1953 if (zfs_refcount_count(&db->db_holds) == 0) {
1954 ASSERT(db->db_buf);
1955 dbuf_destroy(db);
1956 continue;
1957 }
1958 /* The dbuf is referenced */
1959
1960 dr = list_head(&db->db_dirty_records);
1961 if (dr != NULL) {
1962 if (dr->dr_txg == txg) {
1963 /*
1964 * This buffer is "in-use", re-adjust the file
1965 * size to reflect that this buffer may
1966 * contain new data when we sync.
1967 */
1968 if (db->db_blkid != DMU_SPILL_BLKID &&
1969 db->db_blkid > dn->dn_maxblkid)
1970 dn->dn_maxblkid = db->db_blkid;
1971 dbuf_unoverride(dr);
1972 } else {
1973 /*
1974 * This dbuf is not dirty in the open context.
1975 * Either uncache it (if its not referenced in
1976 * the open context) or reset its contents to
1977 * empty.
1978 */
1979 dbuf_fix_old_data(db, txg);
1980 }
1981 }
1982 /* clear the contents if its cached */
1983 if (db->db_state == DB_CACHED) {
1984 ASSERT(db->db.db_data != NULL);
1985 arc_release(db->db_buf, db);
1986 rw_enter(&db->db_rwlock, RW_WRITER);
1987 bzero(db->db.db_data, db->db.db_size);
1988 rw_exit(&db->db_rwlock);
1989 arc_buf_freeze(db->db_buf);
1990 }
1991
1992 mutex_exit(&db->db_mtx);
1993 }
1994
1995 kmem_free(db_search, sizeof (dmu_buf_impl_t));
1996 mutex_exit(&dn->dn_dbufs_mtx);
1997 }
1998
1999 void
dbuf_new_size(dmu_buf_impl_t * db,int size,dmu_tx_t * tx)2000 dbuf_new_size(dmu_buf_impl_t *db, int size, dmu_tx_t *tx)
2001 {
2002 arc_buf_t *buf, *old_buf;
2003 dbuf_dirty_record_t *dr;
2004 int osize = db->db.db_size;
2005 arc_buf_contents_t type = DBUF_GET_BUFC_TYPE(db);
2006 dnode_t *dn;
2007
2008 ASSERT(db->db_blkid != DMU_BONUS_BLKID);
2009
2010 DB_DNODE_ENTER(db);
2011 dn = DB_DNODE(db);
2012
2013 /*
2014 * XXX we should be doing a dbuf_read, checking the return
2015 * value and returning that up to our callers
2016 */
2017 dmu_buf_will_dirty(&db->db, tx);
2018
2019 /* create the data buffer for the new block */
2020 buf = arc_alloc_buf(dn->dn_objset->os_spa, db, type, size);
2021
2022 /* copy old block data to the new block */
2023 old_buf = db->db_buf;
2024 bcopy(old_buf->b_data, buf->b_data, MIN(osize, size));
2025 /* zero the remainder */
2026 if (size > osize)
2027 bzero((uint8_t *)buf->b_data + osize, size - osize);
2028
2029 mutex_enter(&db->db_mtx);
2030 dbuf_set_data(db, buf);
2031 arc_buf_destroy(old_buf, db);
2032 db->db.db_size = size;
2033
2034 dr = list_head(&db->db_dirty_records);
2035 /* dirty record added by dmu_buf_will_dirty() */
2036 VERIFY(dr != NULL);
2037 if (db->db_level == 0)
2038 dr->dt.dl.dr_data = buf;
2039 ASSERT3U(dr->dr_txg, ==, tx->tx_txg);
2040 ASSERT3U(dr->dr_accounted, ==, osize);
2041 dr->dr_accounted = size;
2042 mutex_exit(&db->db_mtx);
2043
2044 dmu_objset_willuse_space(dn->dn_objset, size - osize, tx);
2045 DB_DNODE_EXIT(db);
2046 }
2047
2048 void
dbuf_release_bp(dmu_buf_impl_t * db)2049 dbuf_release_bp(dmu_buf_impl_t *db)
2050 {
2051 objset_t *os __maybe_unused = db->db_objset;
2052
2053 ASSERT(dsl_pool_sync_context(dmu_objset_pool(os)));
2054 ASSERT(arc_released(os->os_phys_buf) ||
2055 list_link_active(&os->os_dsl_dataset->ds_synced_link));
2056 ASSERT(db->db_parent == NULL || arc_released(db->db_parent->db_buf));
2057
2058 (void) arc_release(db->db_buf, db);
2059 }
2060
2061 /*
2062 * We already have a dirty record for this TXG, and we are being
2063 * dirtied again.
2064 */
2065 static void
dbuf_redirty(dbuf_dirty_record_t * dr)2066 dbuf_redirty(dbuf_dirty_record_t *dr)
2067 {
2068 dmu_buf_impl_t *db = dr->dr_dbuf;
2069
2070 ASSERT(MUTEX_HELD(&db->db_mtx));
2071
2072 if (db->db_level == 0 && db->db_blkid != DMU_BONUS_BLKID) {
2073 /*
2074 * If this buffer has already been written out,
2075 * we now need to reset its state.
2076 */
2077 dbuf_unoverride(dr);
2078 if (db->db.db_object != DMU_META_DNODE_OBJECT &&
2079 db->db_state != DB_NOFILL) {
2080 /* Already released on initial dirty, so just thaw. */
2081 ASSERT(arc_released(db->db_buf));
2082 arc_buf_thaw(db->db_buf);
2083 }
2084 }
2085 }
2086
2087 dbuf_dirty_record_t *
dbuf_dirty_lightweight(dnode_t * dn,uint64_t blkid,dmu_tx_t * tx)2088 dbuf_dirty_lightweight(dnode_t *dn, uint64_t blkid, dmu_tx_t *tx)
2089 {
2090 rw_enter(&dn->dn_struct_rwlock, RW_READER);
2091 IMPLY(dn->dn_objset->os_raw_receive, dn->dn_maxblkid >= blkid);
2092 dnode_new_blkid(dn, blkid, tx, B_TRUE, B_FALSE);
2093 ASSERT(dn->dn_maxblkid >= blkid);
2094
2095 dbuf_dirty_record_t *dr = kmem_zalloc(sizeof (*dr), KM_SLEEP);
2096 list_link_init(&dr->dr_dirty_node);
2097 list_link_init(&dr->dr_dbuf_node);
2098 dr->dr_dnode = dn;
2099 dr->dr_txg = tx->tx_txg;
2100 dr->dt.dll.dr_blkid = blkid;
2101 dr->dr_accounted = dn->dn_datablksz;
2102
2103 /*
2104 * There should not be any dbuf for the block that we're dirtying.
2105 * Otherwise the buffer contents could be inconsistent between the
2106 * dbuf and the lightweight dirty record.
2107 */
2108 ASSERT3P(NULL, ==, dbuf_find(dn->dn_objset, dn->dn_object, 0, blkid));
2109
2110 mutex_enter(&dn->dn_mtx);
2111 int txgoff = tx->tx_txg & TXG_MASK;
2112 if (dn->dn_free_ranges[txgoff] != NULL) {
2113 range_tree_clear(dn->dn_free_ranges[txgoff], blkid, 1);
2114 }
2115
2116 if (dn->dn_nlevels == 1) {
2117 ASSERT3U(blkid, <, dn->dn_nblkptr);
2118 list_insert_tail(&dn->dn_dirty_records[txgoff], dr);
2119 mutex_exit(&dn->dn_mtx);
2120 rw_exit(&dn->dn_struct_rwlock);
2121 dnode_setdirty(dn, tx);
2122 } else {
2123 mutex_exit(&dn->dn_mtx);
2124
2125 int epbs = dn->dn_indblkshift - SPA_BLKPTRSHIFT;
2126 dmu_buf_impl_t *parent_db = dbuf_hold_level(dn,
2127 1, blkid >> epbs, FTAG);
2128 rw_exit(&dn->dn_struct_rwlock);
2129 if (parent_db == NULL) {
2130 kmem_free(dr, sizeof (*dr));
2131 return (NULL);
2132 }
2133 int err = dbuf_read(parent_db, NULL,
2134 (DB_RF_NOPREFETCH | DB_RF_CANFAIL));
2135 if (err != 0) {
2136 dbuf_rele(parent_db, FTAG);
2137 kmem_free(dr, sizeof (*dr));
2138 return (NULL);
2139 }
2140
2141 dbuf_dirty_record_t *parent_dr = dbuf_dirty(parent_db, tx);
2142 dbuf_rele(parent_db, FTAG);
2143 mutex_enter(&parent_dr->dt.di.dr_mtx);
2144 ASSERT3U(parent_dr->dr_txg, ==, tx->tx_txg);
2145 list_insert_tail(&parent_dr->dt.di.dr_children, dr);
2146 mutex_exit(&parent_dr->dt.di.dr_mtx);
2147 dr->dr_parent = parent_dr;
2148 }
2149
2150 dmu_objset_willuse_space(dn->dn_objset, dr->dr_accounted, tx);
2151
2152 return (dr);
2153 }
2154
2155 dbuf_dirty_record_t *
dbuf_dirty(dmu_buf_impl_t * db,dmu_tx_t * tx)2156 dbuf_dirty(dmu_buf_impl_t *db, dmu_tx_t *tx)
2157 {
2158 dnode_t *dn;
2159 objset_t *os;
2160 dbuf_dirty_record_t *dr, *dr_next, *dr_head;
2161 int txgoff = tx->tx_txg & TXG_MASK;
2162 boolean_t drop_struct_rwlock = B_FALSE;
2163
2164 ASSERT(tx->tx_txg != 0);
2165 ASSERT(!zfs_refcount_is_zero(&db->db_holds));
2166 DMU_TX_DIRTY_BUF(tx, db);
2167
2168 DB_DNODE_ENTER(db);
2169 dn = DB_DNODE(db);
2170 /*
2171 * Shouldn't dirty a regular buffer in syncing context. Private
2172 * objects may be dirtied in syncing context, but only if they
2173 * were already pre-dirtied in open context.
2174 */
2175 #ifdef ZFS_DEBUG
2176 if (dn->dn_objset->os_dsl_dataset != NULL) {
2177 rrw_enter(&dn->dn_objset->os_dsl_dataset->ds_bp_rwlock,
2178 RW_READER, FTAG);
2179 }
2180 ASSERT(!dmu_tx_is_syncing(tx) ||
2181 BP_IS_HOLE(dn->dn_objset->os_rootbp) ||
2182 DMU_OBJECT_IS_SPECIAL(dn->dn_object) ||
2183 dn->dn_objset->os_dsl_dataset == NULL);
2184 if (dn->dn_objset->os_dsl_dataset != NULL)
2185 rrw_exit(&dn->dn_objset->os_dsl_dataset->ds_bp_rwlock, FTAG);
2186 #endif
2187 /*
2188 * We make this assert for private objects as well, but after we
2189 * check if we're already dirty. They are allowed to re-dirty
2190 * in syncing context.
2191 */
2192 ASSERT(dn->dn_object == DMU_META_DNODE_OBJECT ||
2193 dn->dn_dirtyctx == DN_UNDIRTIED || dn->dn_dirtyctx ==
2194 (dmu_tx_is_syncing(tx) ? DN_DIRTY_SYNC : DN_DIRTY_OPEN));
2195
2196 mutex_enter(&db->db_mtx);
2197 /*
2198 * XXX make this true for indirects too? The problem is that
2199 * transactions created with dmu_tx_create_assigned() from
2200 * syncing context don't bother holding ahead.
2201 */
2202 ASSERT(db->db_level != 0 ||
2203 db->db_state == DB_CACHED || db->db_state == DB_FILL ||
2204 db->db_state == DB_NOFILL);
2205
2206 mutex_enter(&dn->dn_mtx);
2207 dnode_set_dirtyctx(dn, tx, db);
2208 if (tx->tx_txg > dn->dn_dirty_txg)
2209 dn->dn_dirty_txg = tx->tx_txg;
2210 mutex_exit(&dn->dn_mtx);
2211
2212 if (db->db_blkid == DMU_SPILL_BLKID)
2213 dn->dn_have_spill = B_TRUE;
2214
2215 /*
2216 * If this buffer is already dirty, we're done.
2217 */
2218 dr_head = list_head(&db->db_dirty_records);
2219 ASSERT(dr_head == NULL || dr_head->dr_txg <= tx->tx_txg ||
2220 db->db.db_object == DMU_META_DNODE_OBJECT);
2221 dr_next = dbuf_find_dirty_lte(db, tx->tx_txg);
2222 if (dr_next && dr_next->dr_txg == tx->tx_txg) {
2223 DB_DNODE_EXIT(db);
2224
2225 dbuf_redirty(dr_next);
2226 mutex_exit(&db->db_mtx);
2227 return (dr_next);
2228 }
2229
2230 /*
2231 * Only valid if not already dirty.
2232 */
2233 ASSERT(dn->dn_object == 0 ||
2234 dn->dn_dirtyctx == DN_UNDIRTIED || dn->dn_dirtyctx ==
2235 (dmu_tx_is_syncing(tx) ? DN_DIRTY_SYNC : DN_DIRTY_OPEN));
2236
2237 ASSERT3U(dn->dn_nlevels, >, db->db_level);
2238
2239 /*
2240 * We should only be dirtying in syncing context if it's the
2241 * mos or we're initializing the os or it's a special object.
2242 * However, we are allowed to dirty in syncing context provided
2243 * we already dirtied it in open context. Hence we must make
2244 * this assertion only if we're not already dirty.
2245 */
2246 os = dn->dn_objset;
2247 VERIFY3U(tx->tx_txg, <=, spa_final_dirty_txg(os->os_spa));
2248 #ifdef ZFS_DEBUG
2249 if (dn->dn_objset->os_dsl_dataset != NULL)
2250 rrw_enter(&os->os_dsl_dataset->ds_bp_rwlock, RW_READER, FTAG);
2251 ASSERT(!dmu_tx_is_syncing(tx) || DMU_OBJECT_IS_SPECIAL(dn->dn_object) ||
2252 os->os_dsl_dataset == NULL || BP_IS_HOLE(os->os_rootbp));
2253 if (dn->dn_objset->os_dsl_dataset != NULL)
2254 rrw_exit(&os->os_dsl_dataset->ds_bp_rwlock, FTAG);
2255 #endif
2256 ASSERT(db->db.db_size != 0);
2257
2258 dprintf_dbuf(db, "size=%llx\n", (u_longlong_t)db->db.db_size);
2259
2260 if (db->db_blkid != DMU_BONUS_BLKID) {
2261 dmu_objset_willuse_space(os, db->db.db_size, tx);
2262 }
2263
2264 /*
2265 * If this buffer is dirty in an old transaction group we need
2266 * to make a copy of it so that the changes we make in this
2267 * transaction group won't leak out when we sync the older txg.
2268 */
2269 dr = kmem_zalloc(sizeof (dbuf_dirty_record_t), KM_SLEEP);
2270 list_link_init(&dr->dr_dirty_node);
2271 list_link_init(&dr->dr_dbuf_node);
2272 dr->dr_dnode = dn;
2273 if (db->db_level == 0) {
2274 void *data_old = db->db_buf;
2275
2276 if (db->db_state != DB_NOFILL) {
2277 if (db->db_blkid == DMU_BONUS_BLKID) {
2278 dbuf_fix_old_data(db, tx->tx_txg);
2279 data_old = db->db.db_data;
2280 } else if (db->db.db_object != DMU_META_DNODE_OBJECT) {
2281 /*
2282 * Release the data buffer from the cache so
2283 * that we can modify it without impacting
2284 * possible other users of this cached data
2285 * block. Note that indirect blocks and
2286 * private objects are not released until the
2287 * syncing state (since they are only modified
2288 * then).
2289 */
2290 arc_release(db->db_buf, db);
2291 dbuf_fix_old_data(db, tx->tx_txg);
2292 data_old = db->db_buf;
2293 }
2294 ASSERT(data_old != NULL);
2295 }
2296 dr->dt.dl.dr_data = data_old;
2297 } else {
2298 mutex_init(&dr->dt.di.dr_mtx, NULL, MUTEX_NOLOCKDEP, NULL);
2299 list_create(&dr->dt.di.dr_children,
2300 sizeof (dbuf_dirty_record_t),
2301 offsetof(dbuf_dirty_record_t, dr_dirty_node));
2302 }
2303 if (db->db_blkid != DMU_BONUS_BLKID)
2304 dr->dr_accounted = db->db.db_size;
2305 dr->dr_dbuf = db;
2306 dr->dr_txg = tx->tx_txg;
2307 list_insert_before(&db->db_dirty_records, dr_next, dr);
2308
2309 /*
2310 * We could have been freed_in_flight between the dbuf_noread
2311 * and dbuf_dirty. We win, as though the dbuf_noread() had
2312 * happened after the free.
2313 */
2314 if (db->db_level == 0 && db->db_blkid != DMU_BONUS_BLKID &&
2315 db->db_blkid != DMU_SPILL_BLKID) {
2316 mutex_enter(&dn->dn_mtx);
2317 if (dn->dn_free_ranges[txgoff] != NULL) {
2318 range_tree_clear(dn->dn_free_ranges[txgoff],
2319 db->db_blkid, 1);
2320 }
2321 mutex_exit(&dn->dn_mtx);
2322 db->db_freed_in_flight = FALSE;
2323 }
2324
2325 /*
2326 * This buffer is now part of this txg
2327 */
2328 dbuf_add_ref(db, (void *)(uintptr_t)tx->tx_txg);
2329 db->db_dirtycnt += 1;
2330 ASSERT3U(db->db_dirtycnt, <=, 3);
2331
2332 mutex_exit(&db->db_mtx);
2333
2334 if (db->db_blkid == DMU_BONUS_BLKID ||
2335 db->db_blkid == DMU_SPILL_BLKID) {
2336 mutex_enter(&dn->dn_mtx);
2337 ASSERT(!list_link_active(&dr->dr_dirty_node));
2338 list_insert_tail(&dn->dn_dirty_records[txgoff], dr);
2339 mutex_exit(&dn->dn_mtx);
2340 dnode_setdirty(dn, tx);
2341 DB_DNODE_EXIT(db);
2342 return (dr);
2343 }
2344
2345 if (!RW_WRITE_HELD(&dn->dn_struct_rwlock)) {
2346 rw_enter(&dn->dn_struct_rwlock, RW_READER);
2347 drop_struct_rwlock = B_TRUE;
2348 }
2349
2350 /*
2351 * If we are overwriting a dedup BP, then unless it is snapshotted,
2352 * when we get to syncing context we will need to decrement its
2353 * refcount in the DDT. Prefetch the relevant DDT block so that
2354 * syncing context won't have to wait for the i/o.
2355 */
2356 if (db->db_blkptr != NULL) {
2357 db_lock_type_t dblt = dmu_buf_lock_parent(db, RW_READER, FTAG);
2358 ddt_prefetch(os->os_spa, db->db_blkptr);
2359 dmu_buf_unlock_parent(db, dblt, FTAG);
2360 }
2361
2362 /*
2363 * We need to hold the dn_struct_rwlock to make this assertion,
2364 * because it protects dn_phys / dn_next_nlevels from changing.
2365 */
2366 ASSERT((dn->dn_phys->dn_nlevels == 0 && db->db_level == 0) ||
2367 dn->dn_phys->dn_nlevels > db->db_level ||
2368 dn->dn_next_nlevels[txgoff] > db->db_level ||
2369 dn->dn_next_nlevels[(tx->tx_txg-1) & TXG_MASK] > db->db_level ||
2370 dn->dn_next_nlevels[(tx->tx_txg-2) & TXG_MASK] > db->db_level);
2371
2372
2373 if (db->db_level == 0) {
2374 ASSERT(!db->db_objset->os_raw_receive ||
2375 dn->dn_maxblkid >= db->db_blkid);
2376 dnode_new_blkid(dn, db->db_blkid, tx,
2377 drop_struct_rwlock, B_FALSE);
2378 ASSERT(dn->dn_maxblkid >= db->db_blkid);
2379 }
2380
2381 if (db->db_level+1 < dn->dn_nlevels) {
2382 dmu_buf_impl_t *parent = db->db_parent;
2383 dbuf_dirty_record_t *di;
2384 int parent_held = FALSE;
2385
2386 if (db->db_parent == NULL || db->db_parent == dn->dn_dbuf) {
2387 int epbs = dn->dn_indblkshift - SPA_BLKPTRSHIFT;
2388 parent = dbuf_hold_level(dn, db->db_level + 1,
2389 db->db_blkid >> epbs, FTAG);
2390 ASSERT(parent != NULL);
2391 parent_held = TRUE;
2392 }
2393 if (drop_struct_rwlock)
2394 rw_exit(&dn->dn_struct_rwlock);
2395 ASSERT3U(db->db_level + 1, ==, parent->db_level);
2396 di = dbuf_dirty(parent, tx);
2397 if (parent_held)
2398 dbuf_rele(parent, FTAG);
2399
2400 mutex_enter(&db->db_mtx);
2401 /*
2402 * Since we've dropped the mutex, it's possible that
2403 * dbuf_undirty() might have changed this out from under us.
2404 */
2405 if (list_head(&db->db_dirty_records) == dr ||
2406 dn->dn_object == DMU_META_DNODE_OBJECT) {
2407 mutex_enter(&di->dt.di.dr_mtx);
2408 ASSERT3U(di->dr_txg, ==, tx->tx_txg);
2409 ASSERT(!list_link_active(&dr->dr_dirty_node));
2410 list_insert_tail(&di->dt.di.dr_children, dr);
2411 mutex_exit(&di->dt.di.dr_mtx);
2412 dr->dr_parent = di;
2413 }
2414 mutex_exit(&db->db_mtx);
2415 } else {
2416 ASSERT(db->db_level + 1 == dn->dn_nlevels);
2417 ASSERT(db->db_blkid < dn->dn_nblkptr);
2418 ASSERT(db->db_parent == NULL || db->db_parent == dn->dn_dbuf);
2419 mutex_enter(&dn->dn_mtx);
2420 ASSERT(!list_link_active(&dr->dr_dirty_node));
2421 list_insert_tail(&dn->dn_dirty_records[txgoff], dr);
2422 mutex_exit(&dn->dn_mtx);
2423 if (drop_struct_rwlock)
2424 rw_exit(&dn->dn_struct_rwlock);
2425 }
2426
2427 dnode_setdirty(dn, tx);
2428 DB_DNODE_EXIT(db);
2429 return (dr);
2430 }
2431
2432 static void
dbuf_undirty_bonus(dbuf_dirty_record_t * dr)2433 dbuf_undirty_bonus(dbuf_dirty_record_t *dr)
2434 {
2435 dmu_buf_impl_t *db = dr->dr_dbuf;
2436
2437 if (dr->dt.dl.dr_data != db->db.db_data) {
2438 struct dnode *dn = dr->dr_dnode;
2439 int max_bonuslen = DN_SLOTS_TO_BONUSLEN(dn->dn_num_slots);
2440
2441 kmem_free(dr->dt.dl.dr_data, max_bonuslen);
2442 arc_space_return(max_bonuslen, ARC_SPACE_BONUS);
2443 }
2444 db->db_data_pending = NULL;
2445 ASSERT(list_next(&db->db_dirty_records, dr) == NULL);
2446 list_remove(&db->db_dirty_records, dr);
2447 if (dr->dr_dbuf->db_level != 0) {
2448 mutex_destroy(&dr->dt.di.dr_mtx);
2449 list_destroy(&dr->dt.di.dr_children);
2450 }
2451 kmem_free(dr, sizeof (dbuf_dirty_record_t));
2452 ASSERT3U(db->db_dirtycnt, >, 0);
2453 db->db_dirtycnt -= 1;
2454 }
2455
2456 /*
2457 * Undirty a buffer in the transaction group referenced by the given
2458 * transaction. Return whether this evicted the dbuf.
2459 */
2460 static boolean_t
dbuf_undirty(dmu_buf_impl_t * db,dmu_tx_t * tx)2461 dbuf_undirty(dmu_buf_impl_t *db, dmu_tx_t *tx)
2462 {
2463 uint64_t txg = tx->tx_txg;
2464
2465 ASSERT(txg != 0);
2466
2467 /*
2468 * Due to our use of dn_nlevels below, this can only be called
2469 * in open context, unless we are operating on the MOS.
2470 * From syncing context, dn_nlevels may be different from the
2471 * dn_nlevels used when dbuf was dirtied.
2472 */
2473 ASSERT(db->db_objset ==
2474 dmu_objset_pool(db->db_objset)->dp_meta_objset ||
2475 txg != spa_syncing_txg(dmu_objset_spa(db->db_objset)));
2476 ASSERT(db->db_blkid != DMU_BONUS_BLKID);
2477 ASSERT0(db->db_level);
2478 ASSERT(MUTEX_HELD(&db->db_mtx));
2479
2480 /*
2481 * If this buffer is not dirty, we're done.
2482 */
2483 dbuf_dirty_record_t *dr = dbuf_find_dirty_eq(db, txg);
2484 if (dr == NULL)
2485 return (B_FALSE);
2486 ASSERT(dr->dr_dbuf == db);
2487
2488 dnode_t *dn = dr->dr_dnode;
2489
2490 dprintf_dbuf(db, "size=%llx\n", (u_longlong_t)db->db.db_size);
2491
2492 ASSERT(db->db.db_size != 0);
2493
2494 dsl_pool_undirty_space(dmu_objset_pool(dn->dn_objset),
2495 dr->dr_accounted, txg);
2496
2497 list_remove(&db->db_dirty_records, dr);
2498
2499 /*
2500 * Note that there are three places in dbuf_dirty()
2501 * where this dirty record may be put on a list.
2502 * Make sure to do a list_remove corresponding to
2503 * every one of those list_insert calls.
2504 */
2505 if (dr->dr_parent) {
2506 mutex_enter(&dr->dr_parent->dt.di.dr_mtx);
2507 list_remove(&dr->dr_parent->dt.di.dr_children, dr);
2508 mutex_exit(&dr->dr_parent->dt.di.dr_mtx);
2509 } else if (db->db_blkid == DMU_SPILL_BLKID ||
2510 db->db_level + 1 == dn->dn_nlevels) {
2511 ASSERT(db->db_blkptr == NULL || db->db_parent == dn->dn_dbuf);
2512 mutex_enter(&dn->dn_mtx);
2513 list_remove(&dn->dn_dirty_records[txg & TXG_MASK], dr);
2514 mutex_exit(&dn->dn_mtx);
2515 }
2516
2517 if (db->db_state != DB_NOFILL) {
2518 dbuf_unoverride(dr);
2519
2520 ASSERT(db->db_buf != NULL);
2521 ASSERT(dr->dt.dl.dr_data != NULL);
2522 if (dr->dt.dl.dr_data != db->db_buf)
2523 arc_buf_destroy(dr->dt.dl.dr_data, db);
2524 }
2525
2526 kmem_free(dr, sizeof (dbuf_dirty_record_t));
2527
2528 ASSERT(db->db_dirtycnt > 0);
2529 db->db_dirtycnt -= 1;
2530
2531 if (zfs_refcount_remove(&db->db_holds, (void *)(uintptr_t)txg) == 0) {
2532 ASSERT(db->db_state == DB_NOFILL || arc_released(db->db_buf));
2533 dbuf_destroy(db);
2534 return (B_TRUE);
2535 }
2536
2537 return (B_FALSE);
2538 }
2539
2540 static void
dmu_buf_will_dirty_impl(dmu_buf_t * db_fake,int flags,dmu_tx_t * tx)2541 dmu_buf_will_dirty_impl(dmu_buf_t *db_fake, int flags, dmu_tx_t *tx)
2542 {
2543 dmu_buf_impl_t *db = (dmu_buf_impl_t *)db_fake;
2544
2545 ASSERT(tx->tx_txg != 0);
2546 ASSERT(!zfs_refcount_is_zero(&db->db_holds));
2547
2548 /*
2549 * Quick check for dirtiness. For already dirty blocks, this
2550 * reduces runtime of this function by >90%, and overall performance
2551 * by 50% for some workloads (e.g. file deletion with indirect blocks
2552 * cached).
2553 */
2554 mutex_enter(&db->db_mtx);
2555
2556 if (db->db_state == DB_CACHED) {
2557 dbuf_dirty_record_t *dr = dbuf_find_dirty_eq(db, tx->tx_txg);
2558 /*
2559 * It's possible that it is already dirty but not cached,
2560 * because there are some calls to dbuf_dirty() that don't
2561 * go through dmu_buf_will_dirty().
2562 */
2563 if (dr != NULL) {
2564 /* This dbuf is already dirty and cached. */
2565 dbuf_redirty(dr);
2566 mutex_exit(&db->db_mtx);
2567 return;
2568 }
2569 }
2570 mutex_exit(&db->db_mtx);
2571
2572 DB_DNODE_ENTER(db);
2573 if (RW_WRITE_HELD(&DB_DNODE(db)->dn_struct_rwlock))
2574 flags |= DB_RF_HAVESTRUCT;
2575 DB_DNODE_EXIT(db);
2576 (void) dbuf_read(db, NULL, flags);
2577 (void) dbuf_dirty(db, tx);
2578 }
2579
2580 void
dmu_buf_will_dirty(dmu_buf_t * db_fake,dmu_tx_t * tx)2581 dmu_buf_will_dirty(dmu_buf_t *db_fake, dmu_tx_t *tx)
2582 {
2583 dmu_buf_will_dirty_impl(db_fake,
2584 DB_RF_MUST_SUCCEED | DB_RF_NOPREFETCH, tx);
2585 }
2586
2587 boolean_t
dmu_buf_is_dirty(dmu_buf_t * db_fake,dmu_tx_t * tx)2588 dmu_buf_is_dirty(dmu_buf_t *db_fake, dmu_tx_t *tx)
2589 {
2590 dmu_buf_impl_t *db = (dmu_buf_impl_t *)db_fake;
2591 dbuf_dirty_record_t *dr;
2592
2593 mutex_enter(&db->db_mtx);
2594 dr = dbuf_find_dirty_eq(db, tx->tx_txg);
2595 mutex_exit(&db->db_mtx);
2596 return (dr != NULL);
2597 }
2598
2599 void
dmu_buf_will_not_fill(dmu_buf_t * db_fake,dmu_tx_t * tx)2600 dmu_buf_will_not_fill(dmu_buf_t *db_fake, dmu_tx_t *tx)
2601 {
2602 dmu_buf_impl_t *db = (dmu_buf_impl_t *)db_fake;
2603
2604 db->db_state = DB_NOFILL;
2605 DTRACE_SET_STATE(db, "allocating NOFILL buffer");
2606 dmu_buf_will_fill(db_fake, tx);
2607 }
2608
2609 void
dmu_buf_will_fill(dmu_buf_t * db_fake,dmu_tx_t * tx)2610 dmu_buf_will_fill(dmu_buf_t *db_fake, dmu_tx_t *tx)
2611 {
2612 dmu_buf_impl_t *db = (dmu_buf_impl_t *)db_fake;
2613
2614 ASSERT(db->db_blkid != DMU_BONUS_BLKID);
2615 ASSERT(tx->tx_txg != 0);
2616 ASSERT(db->db_level == 0);
2617 ASSERT(!zfs_refcount_is_zero(&db->db_holds));
2618
2619 ASSERT(db->db.db_object != DMU_META_DNODE_OBJECT ||
2620 dmu_tx_private_ok(tx));
2621
2622 dbuf_noread(db);
2623 (void) dbuf_dirty(db, tx);
2624 }
2625
2626 /*
2627 * This function is effectively the same as dmu_buf_will_dirty(), but
2628 * indicates the caller expects raw encrypted data in the db, and provides
2629 * the crypt params (byteorder, salt, iv, mac) which should be stored in the
2630 * blkptr_t when this dbuf is written. This is only used for blocks of
2631 * dnodes, during raw receive.
2632 */
2633 void
dmu_buf_set_crypt_params(dmu_buf_t * db_fake,boolean_t byteorder,const uint8_t * salt,const uint8_t * iv,const uint8_t * mac,dmu_tx_t * tx)2634 dmu_buf_set_crypt_params(dmu_buf_t *db_fake, boolean_t byteorder,
2635 const uint8_t *salt, const uint8_t *iv, const uint8_t *mac, dmu_tx_t *tx)
2636 {
2637 dmu_buf_impl_t *db = (dmu_buf_impl_t *)db_fake;
2638 dbuf_dirty_record_t *dr;
2639
2640 /*
2641 * dr_has_raw_params is only processed for blocks of dnodes
2642 * (see dbuf_sync_dnode_leaf_crypt()).
2643 */
2644 ASSERT3U(db->db.db_object, ==, DMU_META_DNODE_OBJECT);
2645 ASSERT3U(db->db_level, ==, 0);
2646 ASSERT(db->db_objset->os_raw_receive);
2647
2648 dmu_buf_will_dirty_impl(db_fake,
2649 DB_RF_MUST_SUCCEED | DB_RF_NOPREFETCH | DB_RF_NO_DECRYPT, tx);
2650
2651 dr = dbuf_find_dirty_eq(db, tx->tx_txg);
2652
2653 ASSERT3P(dr, !=, NULL);
2654
2655 dr->dt.dl.dr_has_raw_params = B_TRUE;
2656 dr->dt.dl.dr_byteorder = byteorder;
2657 bcopy(salt, dr->dt.dl.dr_salt, ZIO_DATA_SALT_LEN);
2658 bcopy(iv, dr->dt.dl.dr_iv, ZIO_DATA_IV_LEN);
2659 bcopy(mac, dr->dt.dl.dr_mac, ZIO_DATA_MAC_LEN);
2660 }
2661
2662 static void
dbuf_override_impl(dmu_buf_impl_t * db,const blkptr_t * bp,dmu_tx_t * tx)2663 dbuf_override_impl(dmu_buf_impl_t *db, const blkptr_t *bp, dmu_tx_t *tx)
2664 {
2665 struct dirty_leaf *dl;
2666 dbuf_dirty_record_t *dr;
2667
2668 dr = list_head(&db->db_dirty_records);
2669 ASSERT3U(dr->dr_txg, ==, tx->tx_txg);
2670 dl = &dr->dt.dl;
2671 dl->dr_overridden_by = *bp;
2672 dl->dr_override_state = DR_OVERRIDDEN;
2673 dl->dr_overridden_by.blk_birth = dr->dr_txg;
2674 }
2675
2676 void
dmu_buf_fill_done(dmu_buf_t * dbuf,dmu_tx_t * tx)2677 dmu_buf_fill_done(dmu_buf_t *dbuf, dmu_tx_t *tx)
2678 {
2679 (void) tx;
2680 dmu_buf_impl_t *db = (dmu_buf_impl_t *)dbuf;
2681 dbuf_states_t old_state;
2682 mutex_enter(&db->db_mtx);
2683 DBUF_VERIFY(db);
2684
2685 old_state = db->db_state;
2686 db->db_state = DB_CACHED;
2687 if (old_state == DB_FILL) {
2688 if (db->db_level == 0 && db->db_freed_in_flight) {
2689 ASSERT(db->db_blkid != DMU_BONUS_BLKID);
2690 /* we were freed while filling */
2691 /* XXX dbuf_undirty? */
2692 bzero(db->db.db_data, db->db.db_size);
2693 db->db_freed_in_flight = FALSE;
2694 DTRACE_SET_STATE(db,
2695 "fill done handling freed in flight");
2696 } else {
2697 DTRACE_SET_STATE(db, "fill done");
2698 }
2699 cv_broadcast(&db->db_changed);
2700 }
2701 mutex_exit(&db->db_mtx);
2702 }
2703
2704 void
dmu_buf_write_embedded(dmu_buf_t * dbuf,void * data,bp_embedded_type_t etype,enum zio_compress comp,int uncompressed_size,int compressed_size,int byteorder,dmu_tx_t * tx)2705 dmu_buf_write_embedded(dmu_buf_t *dbuf, void *data,
2706 bp_embedded_type_t etype, enum zio_compress comp,
2707 int uncompressed_size, int compressed_size, int byteorder,
2708 dmu_tx_t *tx)
2709 {
2710 dmu_buf_impl_t *db = (dmu_buf_impl_t *)dbuf;
2711 struct dirty_leaf *dl;
2712 dmu_object_type_t type;
2713 dbuf_dirty_record_t *dr;
2714
2715 if (etype == BP_EMBEDDED_TYPE_DATA) {
2716 ASSERT(spa_feature_is_active(dmu_objset_spa(db->db_objset),
2717 SPA_FEATURE_EMBEDDED_DATA));
2718 }
2719
2720 DB_DNODE_ENTER(db);
2721 type = DB_DNODE(db)->dn_type;
2722 DB_DNODE_EXIT(db);
2723
2724 ASSERT0(db->db_level);
2725 ASSERT(db->db_blkid != DMU_BONUS_BLKID);
2726
2727 dmu_buf_will_not_fill(dbuf, tx);
2728
2729 dr = list_head(&db->db_dirty_records);
2730 ASSERT3U(dr->dr_txg, ==, tx->tx_txg);
2731 dl = &dr->dt.dl;
2732 encode_embedded_bp_compressed(&dl->dr_overridden_by,
2733 data, comp, uncompressed_size, compressed_size);
2734 BPE_SET_ETYPE(&dl->dr_overridden_by, etype);
2735 BP_SET_TYPE(&dl->dr_overridden_by, type);
2736 BP_SET_LEVEL(&dl->dr_overridden_by, 0);
2737 BP_SET_BYTEORDER(&dl->dr_overridden_by, byteorder);
2738
2739 dl->dr_override_state = DR_OVERRIDDEN;
2740 dl->dr_overridden_by.blk_birth = dr->dr_txg;
2741 }
2742
2743 void
dmu_buf_redact(dmu_buf_t * dbuf,dmu_tx_t * tx)2744 dmu_buf_redact(dmu_buf_t *dbuf, dmu_tx_t *tx)
2745 {
2746 dmu_buf_impl_t *db = (dmu_buf_impl_t *)dbuf;
2747 dmu_object_type_t type;
2748 ASSERT(dsl_dataset_feature_is_active(db->db_objset->os_dsl_dataset,
2749 SPA_FEATURE_REDACTED_DATASETS));
2750
2751 DB_DNODE_ENTER(db);
2752 type = DB_DNODE(db)->dn_type;
2753 DB_DNODE_EXIT(db);
2754
2755 ASSERT0(db->db_level);
2756 dmu_buf_will_not_fill(dbuf, tx);
2757
2758 blkptr_t bp = { { { {0} } } };
2759 BP_SET_TYPE(&bp, type);
2760 BP_SET_LEVEL(&bp, 0);
2761 BP_SET_BIRTH(&bp, tx->tx_txg, 0);
2762 BP_SET_REDACTED(&bp);
2763 BPE_SET_LSIZE(&bp, dbuf->db_size);
2764
2765 dbuf_override_impl(db, &bp, tx);
2766 }
2767
2768 /*
2769 * Directly assign a provided arc buf to a given dbuf if it's not referenced
2770 * by anybody except our caller. Otherwise copy arcbuf's contents to dbuf.
2771 */
2772 void
dbuf_assign_arcbuf(dmu_buf_impl_t * db,arc_buf_t * buf,dmu_tx_t * tx)2773 dbuf_assign_arcbuf(dmu_buf_impl_t *db, arc_buf_t *buf, dmu_tx_t *tx)
2774 {
2775 ASSERT(!zfs_refcount_is_zero(&db->db_holds));
2776 ASSERT(db->db_blkid != DMU_BONUS_BLKID);
2777 ASSERT(db->db_level == 0);
2778 ASSERT3U(dbuf_is_metadata(db), ==, arc_is_metadata(buf));
2779 ASSERT(buf != NULL);
2780 ASSERT3U(arc_buf_lsize(buf), ==, db->db.db_size);
2781 ASSERT(tx->tx_txg != 0);
2782
2783 arc_return_buf(buf, db);
2784 ASSERT(arc_released(buf));
2785
2786 mutex_enter(&db->db_mtx);
2787
2788 while (db->db_state == DB_READ || db->db_state == DB_FILL)
2789 cv_wait(&db->db_changed, &db->db_mtx);
2790
2791 ASSERT(db->db_state == DB_CACHED || db->db_state == DB_UNCACHED);
2792
2793 if (db->db_state == DB_CACHED &&
2794 zfs_refcount_count(&db->db_holds) - 1 > db->db_dirtycnt) {
2795 /*
2796 * In practice, we will never have a case where we have an
2797 * encrypted arc buffer while additional holds exist on the
2798 * dbuf. We don't handle this here so we simply assert that
2799 * fact instead.
2800 */
2801 ASSERT(!arc_is_encrypted(buf));
2802 mutex_exit(&db->db_mtx);
2803 (void) dbuf_dirty(db, tx);
2804 bcopy(buf->b_data, db->db.db_data, db->db.db_size);
2805 arc_buf_destroy(buf, db);
2806 return;
2807 }
2808
2809 if (db->db_state == DB_CACHED) {
2810 dbuf_dirty_record_t *dr = list_head(&db->db_dirty_records);
2811
2812 ASSERT(db->db_buf != NULL);
2813 if (dr != NULL && dr->dr_txg == tx->tx_txg) {
2814 ASSERT(dr->dt.dl.dr_data == db->db_buf);
2815
2816 if (!arc_released(db->db_buf)) {
2817 ASSERT(dr->dt.dl.dr_override_state ==
2818 DR_OVERRIDDEN);
2819 arc_release(db->db_buf, db);
2820 }
2821 dr->dt.dl.dr_data = buf;
2822 arc_buf_destroy(db->db_buf, db);
2823 } else if (dr == NULL || dr->dt.dl.dr_data != db->db_buf) {
2824 arc_release(db->db_buf, db);
2825 arc_buf_destroy(db->db_buf, db);
2826 }
2827 db->db_buf = NULL;
2828 }
2829 ASSERT(db->db_buf == NULL);
2830 dbuf_set_data(db, buf);
2831 db->db_state = DB_FILL;
2832 DTRACE_SET_STATE(db, "filling assigned arcbuf");
2833 mutex_exit(&db->db_mtx);
2834 (void) dbuf_dirty(db, tx);
2835 dmu_buf_fill_done(&db->db, tx);
2836 }
2837
2838 void
dbuf_destroy(dmu_buf_impl_t * db)2839 dbuf_destroy(dmu_buf_impl_t *db)
2840 {
2841 dnode_t *dn;
2842 dmu_buf_impl_t *parent = db->db_parent;
2843 dmu_buf_impl_t *dndb;
2844
2845 ASSERT(MUTEX_HELD(&db->db_mtx));
2846 ASSERT(zfs_refcount_is_zero(&db->db_holds));
2847
2848 if (db->db_buf != NULL) {
2849 arc_buf_destroy(db->db_buf, db);
2850 db->db_buf = NULL;
2851 }
2852
2853 if (db->db_blkid == DMU_BONUS_BLKID) {
2854 int slots = DB_DNODE(db)->dn_num_slots;
2855 int bonuslen = DN_SLOTS_TO_BONUSLEN(slots);
2856 if (db->db.db_data != NULL) {
2857 kmem_free(db->db.db_data, bonuslen);
2858 arc_space_return(bonuslen, ARC_SPACE_BONUS);
2859 db->db_state = DB_UNCACHED;
2860 DTRACE_SET_STATE(db, "buffer cleared");
2861 }
2862 }
2863
2864 dbuf_clear_data(db);
2865
2866 if (multilist_link_active(&db->db_cache_link)) {
2867 ASSERT(db->db_caching_status == DB_DBUF_CACHE ||
2868 db->db_caching_status == DB_DBUF_METADATA_CACHE);
2869
2870 multilist_remove(&dbuf_caches[db->db_caching_status].cache, db);
2871 (void) zfs_refcount_remove_many(
2872 &dbuf_caches[db->db_caching_status].size,
2873 db->db.db_size, db);
2874
2875 if (db->db_caching_status == DB_DBUF_METADATA_CACHE) {
2876 DBUF_STAT_BUMPDOWN(metadata_cache_count);
2877 } else {
2878 DBUF_STAT_BUMPDOWN(cache_levels[db->db_level]);
2879 DBUF_STAT_BUMPDOWN(cache_count);
2880 DBUF_STAT_DECR(cache_levels_bytes[db->db_level],
2881 db->db.db_size);
2882 }
2883 db->db_caching_status = DB_NO_CACHE;
2884 }
2885
2886 ASSERT(db->db_state == DB_UNCACHED || db->db_state == DB_NOFILL);
2887 ASSERT(db->db_data_pending == NULL);
2888 ASSERT(list_is_empty(&db->db_dirty_records));
2889
2890 db->db_state = DB_EVICTING;
2891 DTRACE_SET_STATE(db, "buffer eviction started");
2892 db->db_blkptr = NULL;
2893
2894 /*
2895 * Now that db_state is DB_EVICTING, nobody else can find this via
2896 * the hash table. We can now drop db_mtx, which allows us to
2897 * acquire the dn_dbufs_mtx.
2898 */
2899 mutex_exit(&db->db_mtx);
2900
2901 DB_DNODE_ENTER(db);
2902 dn = DB_DNODE(db);
2903 dndb = dn->dn_dbuf;
2904 if (db->db_blkid != DMU_BONUS_BLKID) {
2905 boolean_t needlock = !MUTEX_HELD(&dn->dn_dbufs_mtx);
2906 if (needlock)
2907 mutex_enter_nested(&dn->dn_dbufs_mtx,
2908 NESTED_SINGLE);
2909 avl_remove(&dn->dn_dbufs, db);
2910 membar_producer();
2911 DB_DNODE_EXIT(db);
2912 if (needlock)
2913 mutex_exit(&dn->dn_dbufs_mtx);
2914 /*
2915 * Decrementing the dbuf count means that the hold corresponding
2916 * to the removed dbuf is no longer discounted in dnode_move(),
2917 * so the dnode cannot be moved until after we release the hold.
2918 * The membar_producer() ensures visibility of the decremented
2919 * value in dnode_move(), since DB_DNODE_EXIT doesn't actually
2920 * release any lock.
2921 */
2922 mutex_enter(&dn->dn_mtx);
2923 dnode_rele_and_unlock(dn, db, B_TRUE);
2924 db->db_dnode_handle = NULL;
2925
2926 dbuf_hash_remove(db);
2927 } else {
2928 DB_DNODE_EXIT(db);
2929 }
2930
2931 ASSERT(zfs_refcount_is_zero(&db->db_holds));
2932
2933 db->db_parent = NULL;
2934
2935 ASSERT(db->db_buf == NULL);
2936 ASSERT(db->db.db_data == NULL);
2937 ASSERT(db->db_hash_next == NULL);
2938 ASSERT(db->db_blkptr == NULL);
2939 ASSERT(db->db_data_pending == NULL);
2940 ASSERT3U(db->db_caching_status, ==, DB_NO_CACHE);
2941 ASSERT(!multilist_link_active(&db->db_cache_link));
2942
2943 /*
2944 * If this dbuf is referenced from an indirect dbuf,
2945 * decrement the ref count on the indirect dbuf.
2946 */
2947 if (parent && parent != dndb) {
2948 mutex_enter(&parent->db_mtx);
2949 dbuf_rele_and_unlock(parent, db, B_TRUE);
2950 }
2951
2952 kmem_cache_free(dbuf_kmem_cache, db);
2953 arc_space_return(sizeof (dmu_buf_impl_t), ARC_SPACE_DBUF);
2954 }
2955
2956 /*
2957 * Note: While bpp will always be updated if the function returns success,
2958 * parentp will not be updated if the dnode does not have dn_dbuf filled in;
2959 * this happens when the dnode is the meta-dnode, or {user|group|project}used
2960 * object.
2961 */
2962 __attribute__((always_inline))
2963 static inline int
dbuf_findbp(dnode_t * dn,int level,uint64_t blkid,int fail_sparse,dmu_buf_impl_t ** parentp,blkptr_t ** bpp)2964 dbuf_findbp(dnode_t *dn, int level, uint64_t blkid, int fail_sparse,
2965 dmu_buf_impl_t **parentp, blkptr_t **bpp)
2966 {
2967 *parentp = NULL;
2968 *bpp = NULL;
2969
2970 ASSERT(blkid != DMU_BONUS_BLKID);
2971
2972 if (blkid == DMU_SPILL_BLKID) {
2973 mutex_enter(&dn->dn_mtx);
2974 if (dn->dn_have_spill &&
2975 (dn->dn_phys->dn_flags & DNODE_FLAG_SPILL_BLKPTR))
2976 *bpp = DN_SPILL_BLKPTR(dn->dn_phys);
2977 else
2978 *bpp = NULL;
2979 dbuf_add_ref(dn->dn_dbuf, NULL);
2980 *parentp = dn->dn_dbuf;
2981 mutex_exit(&dn->dn_mtx);
2982 return (0);
2983 }
2984
2985 int nlevels =
2986 (dn->dn_phys->dn_nlevels == 0) ? 1 : dn->dn_phys->dn_nlevels;
2987 int epbs = dn->dn_indblkshift - SPA_BLKPTRSHIFT;
2988
2989 ASSERT3U(level * epbs, <, 64);
2990 ASSERT(RW_LOCK_HELD(&dn->dn_struct_rwlock));
2991 /*
2992 * This assertion shouldn't trip as long as the max indirect block size
2993 * is less than 1M. The reason for this is that up to that point,
2994 * the number of levels required to address an entire object with blocks
2995 * of size SPA_MINBLOCKSIZE satisfies nlevels * epbs + 1 <= 64. In
2996 * other words, if N * epbs + 1 > 64, then if (N-1) * epbs + 1 > 55
2997 * (i.e. we can address the entire object), objects will all use at most
2998 * N-1 levels and the assertion won't overflow. However, once epbs is
2999 * 13, 4 * 13 + 1 = 53, but 5 * 13 + 1 = 66. Then, 4 levels will not be
3000 * enough to address an entire object, so objects will have 5 levels,
3001 * but then this assertion will overflow.
3002 *
3003 * All this is to say that if we ever increase DN_MAX_INDBLKSHIFT, we
3004 * need to redo this logic to handle overflows.
3005 */
3006 ASSERT(level >= nlevels ||
3007 ((nlevels - level - 1) * epbs) +
3008 highbit64(dn->dn_phys->dn_nblkptr) <= 64);
3009 if (level >= nlevels ||
3010 blkid >= ((uint64_t)dn->dn_phys->dn_nblkptr <<
3011 ((nlevels - level - 1) * epbs)) ||
3012 (fail_sparse &&
3013 blkid > (dn->dn_phys->dn_maxblkid >> (level * epbs)))) {
3014 /* the buffer has no parent yet */
3015 return (SET_ERROR(ENOENT));
3016 } else if (level < nlevels-1) {
3017 /* this block is referenced from an indirect block */
3018 int err;
3019
3020 err = dbuf_hold_impl(dn, level + 1,
3021 blkid >> epbs, fail_sparse, FALSE, NULL, parentp);
3022
3023 if (err)
3024 return (err);
3025 err = dbuf_read(*parentp, NULL,
3026 (DB_RF_HAVESTRUCT | DB_RF_NOPREFETCH | DB_RF_CANFAIL));
3027 if (err) {
3028 dbuf_rele(*parentp, NULL);
3029 *parentp = NULL;
3030 return (err);
3031 }
3032 rw_enter(&(*parentp)->db_rwlock, RW_READER);
3033 *bpp = ((blkptr_t *)(*parentp)->db.db_data) +
3034 (blkid & ((1ULL << epbs) - 1));
3035 if (blkid > (dn->dn_phys->dn_maxblkid >> (level * epbs)))
3036 ASSERT(BP_IS_HOLE(*bpp));
3037 rw_exit(&(*parentp)->db_rwlock);
3038 return (0);
3039 } else {
3040 /* the block is referenced from the dnode */
3041 ASSERT3U(level, ==, nlevels-1);
3042 ASSERT(dn->dn_phys->dn_nblkptr == 0 ||
3043 blkid < dn->dn_phys->dn_nblkptr);
3044 if (dn->dn_dbuf) {
3045 dbuf_add_ref(dn->dn_dbuf, NULL);
3046 *parentp = dn->dn_dbuf;
3047 }
3048 *bpp = &dn->dn_phys->dn_blkptr[blkid];
3049 return (0);
3050 }
3051 }
3052
3053 static dmu_buf_impl_t *
dbuf_create(dnode_t * dn,uint8_t level,uint64_t blkid,dmu_buf_impl_t * parent,blkptr_t * blkptr)3054 dbuf_create(dnode_t *dn, uint8_t level, uint64_t blkid,
3055 dmu_buf_impl_t *parent, blkptr_t *blkptr)
3056 {
3057 objset_t *os = dn->dn_objset;
3058 dmu_buf_impl_t *db, *odb;
3059
3060 ASSERT(RW_LOCK_HELD(&dn->dn_struct_rwlock));
3061 ASSERT(dn->dn_type != DMU_OT_NONE);
3062
3063 db = kmem_cache_alloc(dbuf_kmem_cache, KM_SLEEP);
3064
3065 list_create(&db->db_dirty_records, sizeof (dbuf_dirty_record_t),
3066 offsetof(dbuf_dirty_record_t, dr_dbuf_node));
3067
3068 db->db_objset = os;
3069 db->db.db_object = dn->dn_object;
3070 db->db_level = level;
3071 db->db_blkid = blkid;
3072 db->db_dirtycnt = 0;
3073 db->db_dnode_handle = dn->dn_handle;
3074 db->db_parent = parent;
3075 db->db_blkptr = blkptr;
3076
3077 db->db_user = NULL;
3078 db->db_user_immediate_evict = FALSE;
3079 db->db_freed_in_flight = FALSE;
3080 db->db_pending_evict = FALSE;
3081
3082 if (blkid == DMU_BONUS_BLKID) {
3083 ASSERT3P(parent, ==, dn->dn_dbuf);
3084 db->db.db_size = DN_SLOTS_TO_BONUSLEN(dn->dn_num_slots) -
3085 (dn->dn_nblkptr-1) * sizeof (blkptr_t);
3086 ASSERT3U(db->db.db_size, >=, dn->dn_bonuslen);
3087 db->db.db_offset = DMU_BONUS_BLKID;
3088 db->db_state = DB_UNCACHED;
3089 DTRACE_SET_STATE(db, "bonus buffer created");
3090 db->db_caching_status = DB_NO_CACHE;
3091 /* the bonus dbuf is not placed in the hash table */
3092 arc_space_consume(sizeof (dmu_buf_impl_t), ARC_SPACE_DBUF);
3093 return (db);
3094 } else if (blkid == DMU_SPILL_BLKID) {
3095 db->db.db_size = (blkptr != NULL) ?
3096 BP_GET_LSIZE(blkptr) : SPA_MINBLOCKSIZE;
3097 db->db.db_offset = 0;
3098 } else {
3099 int blocksize =
3100 db->db_level ? 1 << dn->dn_indblkshift : dn->dn_datablksz;
3101 db->db.db_size = blocksize;
3102 db->db.db_offset = db->db_blkid * blocksize;
3103 }
3104
3105 /*
3106 * Hold the dn_dbufs_mtx while we get the new dbuf
3107 * in the hash table *and* added to the dbufs list.
3108 * This prevents a possible deadlock with someone
3109 * trying to look up this dbuf before it's added to the
3110 * dn_dbufs list.
3111 */
3112 mutex_enter(&dn->dn_dbufs_mtx);
3113 db->db_state = DB_EVICTING; /* not worth logging this state change */
3114 if ((odb = dbuf_hash_insert(db)) != NULL) {
3115 /* someone else inserted it first */
3116 mutex_exit(&dn->dn_dbufs_mtx);
3117 kmem_cache_free(dbuf_kmem_cache, db);
3118 DBUF_STAT_BUMP(hash_insert_race);
3119 return (odb);
3120 }
3121 avl_add(&dn->dn_dbufs, db);
3122
3123 db->db_state = DB_UNCACHED;
3124 DTRACE_SET_STATE(db, "regular buffer created");
3125 db->db_caching_status = DB_NO_CACHE;
3126 mutex_exit(&dn->dn_dbufs_mtx);
3127 arc_space_consume(sizeof (dmu_buf_impl_t), ARC_SPACE_DBUF);
3128
3129 if (parent && parent != dn->dn_dbuf)
3130 dbuf_add_ref(parent, db);
3131
3132 ASSERT(dn->dn_object == DMU_META_DNODE_OBJECT ||
3133 zfs_refcount_count(&dn->dn_holds) > 0);
3134 (void) zfs_refcount_add(&dn->dn_holds, db);
3135
3136 dprintf_dbuf(db, "db=%p\n", db);
3137
3138 return (db);
3139 }
3140
3141 /*
3142 * This function returns a block pointer and information about the object,
3143 * given a dnode and a block. This is a publicly accessible version of
3144 * dbuf_findbp that only returns some information, rather than the
3145 * dbuf. Note that the dnode passed in must be held, and the dn_struct_rwlock
3146 * should be locked as (at least) a reader.
3147 */
3148 int
dbuf_dnode_findbp(dnode_t * dn,uint64_t level,uint64_t blkid,blkptr_t * bp,uint16_t * datablkszsec,uint8_t * indblkshift)3149 dbuf_dnode_findbp(dnode_t *dn, uint64_t level, uint64_t blkid,
3150 blkptr_t *bp, uint16_t *datablkszsec, uint8_t *indblkshift)
3151 {
3152 dmu_buf_impl_t *dbp = NULL;
3153 blkptr_t *bp2;
3154 int err = 0;
3155 ASSERT(RW_LOCK_HELD(&dn->dn_struct_rwlock));
3156
3157 err = dbuf_findbp(dn, level, blkid, B_FALSE, &dbp, &bp2);
3158 if (err == 0) {
3159 *bp = *bp2;
3160 if (dbp != NULL)
3161 dbuf_rele(dbp, NULL);
3162 if (datablkszsec != NULL)
3163 *datablkszsec = dn->dn_phys->dn_datablkszsec;
3164 if (indblkshift != NULL)
3165 *indblkshift = dn->dn_phys->dn_indblkshift;
3166 }
3167
3168 return (err);
3169 }
3170
3171 typedef struct dbuf_prefetch_arg {
3172 spa_t *dpa_spa; /* The spa to issue the prefetch in. */
3173 zbookmark_phys_t dpa_zb; /* The target block to prefetch. */
3174 int dpa_epbs; /* Entries (blkptr_t's) Per Block Shift. */
3175 int dpa_curlevel; /* The current level that we're reading */
3176 dnode_t *dpa_dnode; /* The dnode associated with the prefetch */
3177 zio_priority_t dpa_prio; /* The priority I/Os should be issued at. */
3178 zio_t *dpa_zio; /* The parent zio_t for all prefetches. */
3179 arc_flags_t dpa_aflags; /* Flags to pass to the final prefetch. */
3180 dbuf_prefetch_fn dpa_cb; /* prefetch completion callback */
3181 void *dpa_arg; /* prefetch completion arg */
3182 } dbuf_prefetch_arg_t;
3183
3184 static void
dbuf_prefetch_fini(dbuf_prefetch_arg_t * dpa,boolean_t io_done)3185 dbuf_prefetch_fini(dbuf_prefetch_arg_t *dpa, boolean_t io_done)
3186 {
3187 if (dpa->dpa_cb != NULL) {
3188 dpa->dpa_cb(dpa->dpa_arg, dpa->dpa_zb.zb_level,
3189 dpa->dpa_zb.zb_blkid, io_done);
3190 }
3191 kmem_free(dpa, sizeof (*dpa));
3192 }
3193
3194 static void
dbuf_issue_final_prefetch_done(zio_t * zio,const zbookmark_phys_t * zb,const blkptr_t * iobp,arc_buf_t * abuf,void * private)3195 dbuf_issue_final_prefetch_done(zio_t *zio, const zbookmark_phys_t *zb,
3196 const blkptr_t *iobp, arc_buf_t *abuf, void *private)
3197 {
3198 (void) zio, (void) zb, (void) iobp;
3199 dbuf_prefetch_arg_t *dpa = private;
3200
3201 if (abuf != NULL)
3202 arc_buf_destroy(abuf, private);
3203
3204 dbuf_prefetch_fini(dpa, B_TRUE);
3205 }
3206
3207 /*
3208 * Actually issue the prefetch read for the block given.
3209 */
3210 static void
dbuf_issue_final_prefetch(dbuf_prefetch_arg_t * dpa,blkptr_t * bp)3211 dbuf_issue_final_prefetch(dbuf_prefetch_arg_t *dpa, blkptr_t *bp)
3212 {
3213 ASSERT(!BP_IS_REDACTED(bp) ||
3214 dsl_dataset_feature_is_active(
3215 dpa->dpa_dnode->dn_objset->os_dsl_dataset,
3216 SPA_FEATURE_REDACTED_DATASETS));
3217
3218 if (BP_IS_HOLE(bp) || BP_IS_EMBEDDED(bp) || BP_IS_REDACTED(bp))
3219 return (dbuf_prefetch_fini(dpa, B_FALSE));
3220
3221 int zio_flags = ZIO_FLAG_CANFAIL | ZIO_FLAG_SPECULATIVE;
3222 arc_flags_t aflags =
3223 dpa->dpa_aflags | ARC_FLAG_NOWAIT | ARC_FLAG_PREFETCH |
3224 ARC_FLAG_NO_BUF;
3225
3226 /* dnodes are always read as raw and then converted later */
3227 if (BP_GET_TYPE(bp) == DMU_OT_DNODE && BP_IS_PROTECTED(bp) &&
3228 dpa->dpa_curlevel == 0)
3229 zio_flags |= ZIO_FLAG_RAW;
3230
3231 ASSERT3U(dpa->dpa_curlevel, ==, BP_GET_LEVEL(bp));
3232 ASSERT3U(dpa->dpa_curlevel, ==, dpa->dpa_zb.zb_level);
3233 ASSERT(dpa->dpa_zio != NULL);
3234 (void) arc_read(dpa->dpa_zio, dpa->dpa_spa, bp,
3235 dbuf_issue_final_prefetch_done, dpa,
3236 dpa->dpa_prio, zio_flags, &aflags, &dpa->dpa_zb);
3237 }
3238
3239 /*
3240 * Called when an indirect block above our prefetch target is read in. This
3241 * will either read in the next indirect block down the tree or issue the actual
3242 * prefetch if the next block down is our target.
3243 */
3244 static void
dbuf_prefetch_indirect_done(zio_t * zio,const zbookmark_phys_t * zb,const blkptr_t * iobp,arc_buf_t * abuf,void * private)3245 dbuf_prefetch_indirect_done(zio_t *zio, const zbookmark_phys_t *zb,
3246 const blkptr_t *iobp, arc_buf_t *abuf, void *private)
3247 {
3248 (void) zb, (void) iobp;
3249 dbuf_prefetch_arg_t *dpa = private;
3250
3251 ASSERT3S(dpa->dpa_zb.zb_level, <, dpa->dpa_curlevel);
3252 ASSERT3S(dpa->dpa_curlevel, >, 0);
3253
3254 if (abuf == NULL) {
3255 ASSERT(zio == NULL || zio->io_error != 0);
3256 return (dbuf_prefetch_fini(dpa, B_TRUE));
3257 }
3258 ASSERT(zio == NULL || zio->io_error == 0);
3259
3260 /*
3261 * The dpa_dnode is only valid if we are called with a NULL
3262 * zio. This indicates that the arc_read() returned without
3263 * first calling zio_read() to issue a physical read. Once
3264 * a physical read is made the dpa_dnode must be invalidated
3265 * as the locks guarding it may have been dropped. If the
3266 * dpa_dnode is still valid, then we want to add it to the dbuf
3267 * cache. To do so, we must hold the dbuf associated with the block
3268 * we just prefetched, read its contents so that we associate it
3269 * with an arc_buf_t, and then release it.
3270 */
3271 if (zio != NULL) {
3272 ASSERT3S(BP_GET_LEVEL(zio->io_bp), ==, dpa->dpa_curlevel);
3273 if (zio->io_flags & ZIO_FLAG_RAW_COMPRESS) {
3274 ASSERT3U(BP_GET_PSIZE(zio->io_bp), ==, zio->io_size);
3275 } else {
3276 ASSERT3U(BP_GET_LSIZE(zio->io_bp), ==, zio->io_size);
3277 }
3278 ASSERT3P(zio->io_spa, ==, dpa->dpa_spa);
3279
3280 dpa->dpa_dnode = NULL;
3281 } else if (dpa->dpa_dnode != NULL) {
3282 uint64_t curblkid = dpa->dpa_zb.zb_blkid >>
3283 (dpa->dpa_epbs * (dpa->dpa_curlevel -
3284 dpa->dpa_zb.zb_level));
3285 dmu_buf_impl_t *db = dbuf_hold_level(dpa->dpa_dnode,
3286 dpa->dpa_curlevel, curblkid, FTAG);
3287 if (db == NULL) {
3288 arc_buf_destroy(abuf, private);
3289 return (dbuf_prefetch_fini(dpa, B_TRUE));
3290 }
3291 (void) dbuf_read(db, NULL,
3292 DB_RF_MUST_SUCCEED | DB_RF_NOPREFETCH | DB_RF_HAVESTRUCT);
3293 dbuf_rele(db, FTAG);
3294 }
3295
3296 dpa->dpa_curlevel--;
3297 uint64_t nextblkid = dpa->dpa_zb.zb_blkid >>
3298 (dpa->dpa_epbs * (dpa->dpa_curlevel - dpa->dpa_zb.zb_level));
3299 blkptr_t *bp = ((blkptr_t *)abuf->b_data) +
3300 P2PHASE(nextblkid, 1ULL << dpa->dpa_epbs);
3301
3302 ASSERT(!BP_IS_REDACTED(bp) || (dpa->dpa_dnode &&
3303 dsl_dataset_feature_is_active(
3304 dpa->dpa_dnode->dn_objset->os_dsl_dataset,
3305 SPA_FEATURE_REDACTED_DATASETS)));
3306 if (BP_IS_HOLE(bp) || BP_IS_REDACTED(bp)) {
3307 dbuf_prefetch_fini(dpa, B_TRUE);
3308 } else if (dpa->dpa_curlevel == dpa->dpa_zb.zb_level) {
3309 ASSERT3U(nextblkid, ==, dpa->dpa_zb.zb_blkid);
3310 dbuf_issue_final_prefetch(dpa, bp);
3311 } else {
3312 arc_flags_t iter_aflags = ARC_FLAG_NOWAIT;
3313 zbookmark_phys_t zb;
3314
3315 /* flag if L2ARC eligible, l2arc_noprefetch then decides */
3316 if (dpa->dpa_aflags & ARC_FLAG_L2CACHE)
3317 iter_aflags |= ARC_FLAG_L2CACHE;
3318
3319 ASSERT3U(dpa->dpa_curlevel, ==, BP_GET_LEVEL(bp));
3320
3321 SET_BOOKMARK(&zb, dpa->dpa_zb.zb_objset,
3322 dpa->dpa_zb.zb_object, dpa->dpa_curlevel, nextblkid);
3323
3324 (void) arc_read(dpa->dpa_zio, dpa->dpa_spa,
3325 bp, dbuf_prefetch_indirect_done, dpa,
3326 ZIO_PRIORITY_SYNC_READ,
3327 ZIO_FLAG_CANFAIL | ZIO_FLAG_SPECULATIVE,
3328 &iter_aflags, &zb);
3329 }
3330
3331 arc_buf_destroy(abuf, private);
3332 }
3333
3334 /*
3335 * Issue prefetch reads for the given block on the given level. If the indirect
3336 * blocks above that block are not in memory, we will read them in
3337 * asynchronously. As a result, this call never blocks waiting for a read to
3338 * complete. Note that the prefetch might fail if the dataset is encrypted and
3339 * the encryption key is unmapped before the IO completes.
3340 */
3341 int
dbuf_prefetch_impl(dnode_t * dn,int64_t level,uint64_t blkid,zio_priority_t prio,arc_flags_t aflags,dbuf_prefetch_fn cb,void * arg)3342 dbuf_prefetch_impl(dnode_t *dn, int64_t level, uint64_t blkid,
3343 zio_priority_t prio, arc_flags_t aflags, dbuf_prefetch_fn cb,
3344 void *arg)
3345 {
3346 blkptr_t bp;
3347 int epbs, nlevels, curlevel;
3348 uint64_t curblkid;
3349
3350 ASSERT(blkid != DMU_BONUS_BLKID);
3351 ASSERT(RW_LOCK_HELD(&dn->dn_struct_rwlock));
3352
3353 if (blkid > dn->dn_maxblkid)
3354 goto no_issue;
3355
3356 if (level == 0 && dnode_block_freed(dn, blkid))
3357 goto no_issue;
3358
3359 /*
3360 * This dnode hasn't been written to disk yet, so there's nothing to
3361 * prefetch.
3362 */
3363 nlevels = dn->dn_phys->dn_nlevels;
3364 if (level >= nlevels || dn->dn_phys->dn_nblkptr == 0)
3365 goto no_issue;
3366
3367 epbs = dn->dn_phys->dn_indblkshift - SPA_BLKPTRSHIFT;
3368 if (dn->dn_phys->dn_maxblkid < blkid << (epbs * level))
3369 goto no_issue;
3370
3371 dmu_buf_impl_t *db = dbuf_find(dn->dn_objset, dn->dn_object,
3372 level, blkid);
3373 if (db != NULL) {
3374 mutex_exit(&db->db_mtx);
3375 /*
3376 * This dbuf already exists. It is either CACHED, or
3377 * (we assume) about to be read or filled.
3378 */
3379 goto no_issue;
3380 }
3381
3382 /*
3383 * Find the closest ancestor (indirect block) of the target block
3384 * that is present in the cache. In this indirect block, we will
3385 * find the bp that is at curlevel, curblkid.
3386 */
3387 curlevel = level;
3388 curblkid = blkid;
3389 while (curlevel < nlevels - 1) {
3390 int parent_level = curlevel + 1;
3391 uint64_t parent_blkid = curblkid >> epbs;
3392 dmu_buf_impl_t *db;
3393
3394 if (dbuf_hold_impl(dn, parent_level, parent_blkid,
3395 FALSE, TRUE, FTAG, &db) == 0) {
3396 blkptr_t *bpp = db->db_buf->b_data;
3397 bp = bpp[P2PHASE(curblkid, 1 << epbs)];
3398 dbuf_rele(db, FTAG);
3399 break;
3400 }
3401
3402 curlevel = parent_level;
3403 curblkid = parent_blkid;
3404 }
3405
3406 if (curlevel == nlevels - 1) {
3407 /* No cached indirect blocks found. */
3408 ASSERT3U(curblkid, <, dn->dn_phys->dn_nblkptr);
3409 bp = dn->dn_phys->dn_blkptr[curblkid];
3410 }
3411 ASSERT(!BP_IS_REDACTED(&bp) ||
3412 dsl_dataset_feature_is_active(dn->dn_objset->os_dsl_dataset,
3413 SPA_FEATURE_REDACTED_DATASETS));
3414 if (BP_IS_HOLE(&bp) || BP_IS_REDACTED(&bp))
3415 goto no_issue;
3416
3417 ASSERT3U(curlevel, ==, BP_GET_LEVEL(&bp));
3418
3419 zio_t *pio = zio_root(dmu_objset_spa(dn->dn_objset), NULL, NULL,
3420 ZIO_FLAG_CANFAIL);
3421
3422 dbuf_prefetch_arg_t *dpa = kmem_zalloc(sizeof (*dpa), KM_SLEEP);
3423 dsl_dataset_t *ds = dn->dn_objset->os_dsl_dataset;
3424 SET_BOOKMARK(&dpa->dpa_zb, ds != NULL ? ds->ds_object : DMU_META_OBJSET,
3425 dn->dn_object, level, blkid);
3426 dpa->dpa_curlevel = curlevel;
3427 dpa->dpa_prio = prio;
3428 dpa->dpa_aflags = aflags;
3429 dpa->dpa_spa = dn->dn_objset->os_spa;
3430 dpa->dpa_dnode = dn;
3431 dpa->dpa_epbs = epbs;
3432 dpa->dpa_zio = pio;
3433 dpa->dpa_cb = cb;
3434 dpa->dpa_arg = arg;
3435
3436 /* flag if L2ARC eligible, l2arc_noprefetch then decides */
3437 if (dnode_level_is_l2cacheable(&bp, dn, level))
3438 dpa->dpa_aflags |= ARC_FLAG_L2CACHE;
3439
3440 /*
3441 * If we have the indirect just above us, no need to do the asynchronous
3442 * prefetch chain; we'll just run the last step ourselves. If we're at
3443 * a higher level, though, we want to issue the prefetches for all the
3444 * indirect blocks asynchronously, so we can go on with whatever we were
3445 * doing.
3446 */
3447 if (curlevel == level) {
3448 ASSERT3U(curblkid, ==, blkid);
3449 dbuf_issue_final_prefetch(dpa, &bp);
3450 } else {
3451 arc_flags_t iter_aflags = ARC_FLAG_NOWAIT;
3452 zbookmark_phys_t zb;
3453
3454 /* flag if L2ARC eligible, l2arc_noprefetch then decides */
3455 if (dnode_level_is_l2cacheable(&bp, dn, level))
3456 iter_aflags |= ARC_FLAG_L2CACHE;
3457
3458 SET_BOOKMARK(&zb, ds != NULL ? ds->ds_object : DMU_META_OBJSET,
3459 dn->dn_object, curlevel, curblkid);
3460 (void) arc_read(dpa->dpa_zio, dpa->dpa_spa,
3461 &bp, dbuf_prefetch_indirect_done, dpa,
3462 ZIO_PRIORITY_SYNC_READ,
3463 ZIO_FLAG_CANFAIL | ZIO_FLAG_SPECULATIVE,
3464 &iter_aflags, &zb);
3465 }
3466 /*
3467 * We use pio here instead of dpa_zio since it's possible that
3468 * dpa may have already been freed.
3469 */
3470 zio_nowait(pio);
3471 return (1);
3472 no_issue:
3473 if (cb != NULL)
3474 cb(arg, level, blkid, B_FALSE);
3475 return (0);
3476 }
3477
3478 int
dbuf_prefetch(dnode_t * dn,int64_t level,uint64_t blkid,zio_priority_t prio,arc_flags_t aflags)3479 dbuf_prefetch(dnode_t *dn, int64_t level, uint64_t blkid, zio_priority_t prio,
3480 arc_flags_t aflags)
3481 {
3482
3483 return (dbuf_prefetch_impl(dn, level, blkid, prio, aflags, NULL, NULL));
3484 }
3485
3486 /*
3487 * Helper function for dbuf_hold_impl() to copy a buffer. Handles
3488 * the case of encrypted, compressed and uncompressed buffers by
3489 * allocating the new buffer, respectively, with arc_alloc_raw_buf(),
3490 * arc_alloc_compressed_buf() or arc_alloc_buf().*
3491 *
3492 * NOTE: Declared noinline to avoid stack bloat in dbuf_hold_impl().
3493 */
3494 noinline static void
dbuf_hold_copy(dnode_t * dn,dmu_buf_impl_t * db)3495 dbuf_hold_copy(dnode_t *dn, dmu_buf_impl_t *db)
3496 {
3497 dbuf_dirty_record_t *dr = db->db_data_pending;
3498 arc_buf_t *data = dr->dt.dl.dr_data;
3499 enum zio_compress compress_type = arc_get_compression(data);
3500 uint8_t complevel = arc_get_complevel(data);
3501
3502 if (arc_is_encrypted(data)) {
3503 boolean_t byteorder;
3504 uint8_t salt[ZIO_DATA_SALT_LEN];
3505 uint8_t iv[ZIO_DATA_IV_LEN];
3506 uint8_t mac[ZIO_DATA_MAC_LEN];
3507
3508 arc_get_raw_params(data, &byteorder, salt, iv, mac);
3509 dbuf_set_data(db, arc_alloc_raw_buf(dn->dn_objset->os_spa, db,
3510 dmu_objset_id(dn->dn_objset), byteorder, salt, iv, mac,
3511 dn->dn_type, arc_buf_size(data), arc_buf_lsize(data),
3512 compress_type, complevel));
3513 } else if (compress_type != ZIO_COMPRESS_OFF) {
3514 dbuf_set_data(db, arc_alloc_compressed_buf(
3515 dn->dn_objset->os_spa, db, arc_buf_size(data),
3516 arc_buf_lsize(data), compress_type, complevel));
3517 } else {
3518 dbuf_set_data(db, arc_alloc_buf(dn->dn_objset->os_spa, db,
3519 DBUF_GET_BUFC_TYPE(db), db->db.db_size));
3520 }
3521
3522 rw_enter(&db->db_rwlock, RW_WRITER);
3523 bcopy(data->b_data, db->db.db_data, arc_buf_size(data));
3524 rw_exit(&db->db_rwlock);
3525 }
3526
3527 /*
3528 * Returns with db_holds incremented, and db_mtx not held.
3529 * Note: dn_struct_rwlock must be held.
3530 */
3531 int
dbuf_hold_impl(dnode_t * dn,uint8_t level,uint64_t blkid,boolean_t fail_sparse,boolean_t fail_uncached,void * tag,dmu_buf_impl_t ** dbp)3532 dbuf_hold_impl(dnode_t *dn, uint8_t level, uint64_t blkid,
3533 boolean_t fail_sparse, boolean_t fail_uncached,
3534 void *tag, dmu_buf_impl_t **dbp)
3535 {
3536 dmu_buf_impl_t *db, *parent = NULL;
3537
3538 /* If the pool has been created, verify the tx_sync_lock is not held */
3539 spa_t *spa = dn->dn_objset->os_spa;
3540 dsl_pool_t *dp = spa->spa_dsl_pool;
3541 if (dp != NULL) {
3542 ASSERT(!MUTEX_HELD(&dp->dp_tx.tx_sync_lock));
3543 }
3544
3545 ASSERT(blkid != DMU_BONUS_BLKID);
3546 ASSERT(RW_LOCK_HELD(&dn->dn_struct_rwlock));
3547 ASSERT3U(dn->dn_nlevels, >, level);
3548
3549 *dbp = NULL;
3550
3551 /* dbuf_find() returns with db_mtx held */
3552 db = dbuf_find(dn->dn_objset, dn->dn_object, level, blkid);
3553
3554 if (db == NULL) {
3555 blkptr_t *bp = NULL;
3556 int err;
3557
3558 if (fail_uncached)
3559 return (SET_ERROR(ENOENT));
3560
3561 ASSERT3P(parent, ==, NULL);
3562 err = dbuf_findbp(dn, level, blkid, fail_sparse, &parent, &bp);
3563 if (fail_sparse) {
3564 if (err == 0 && bp && BP_IS_HOLE(bp))
3565 err = SET_ERROR(ENOENT);
3566 if (err) {
3567 if (parent)
3568 dbuf_rele(parent, NULL);
3569 return (err);
3570 }
3571 }
3572 if (err && err != ENOENT)
3573 return (err);
3574 db = dbuf_create(dn, level, blkid, parent, bp);
3575 }
3576
3577 if (fail_uncached && db->db_state != DB_CACHED) {
3578 mutex_exit(&db->db_mtx);
3579 return (SET_ERROR(ENOENT));
3580 }
3581
3582 if (db->db_buf != NULL) {
3583 arc_buf_access(db->db_buf);
3584 ASSERT3P(db->db.db_data, ==, db->db_buf->b_data);
3585 }
3586
3587 ASSERT(db->db_buf == NULL || arc_referenced(db->db_buf));
3588
3589 /*
3590 * If this buffer is currently syncing out, and we are
3591 * still referencing it from db_data, we need to make a copy
3592 * of it in case we decide we want to dirty it again in this txg.
3593 */
3594 if (db->db_level == 0 && db->db_blkid != DMU_BONUS_BLKID &&
3595 dn->dn_object != DMU_META_DNODE_OBJECT &&
3596 db->db_state == DB_CACHED && db->db_data_pending) {
3597 dbuf_dirty_record_t *dr = db->db_data_pending;
3598 if (dr->dt.dl.dr_data == db->db_buf)
3599 dbuf_hold_copy(dn, db);
3600 }
3601
3602 if (multilist_link_active(&db->db_cache_link)) {
3603 ASSERT(zfs_refcount_is_zero(&db->db_holds));
3604 ASSERT(db->db_caching_status == DB_DBUF_CACHE ||
3605 db->db_caching_status == DB_DBUF_METADATA_CACHE);
3606
3607 multilist_remove(&dbuf_caches[db->db_caching_status].cache, db);
3608 (void) zfs_refcount_remove_many(
3609 &dbuf_caches[db->db_caching_status].size,
3610 db->db.db_size, db);
3611
3612 if (db->db_caching_status == DB_DBUF_METADATA_CACHE) {
3613 DBUF_STAT_BUMPDOWN(metadata_cache_count);
3614 } else {
3615 DBUF_STAT_BUMPDOWN(cache_levels[db->db_level]);
3616 DBUF_STAT_BUMPDOWN(cache_count);
3617 DBUF_STAT_DECR(cache_levels_bytes[db->db_level],
3618 db->db.db_size);
3619 }
3620 db->db_caching_status = DB_NO_CACHE;
3621 }
3622 (void) zfs_refcount_add(&db->db_holds, tag);
3623 DBUF_VERIFY(db);
3624 mutex_exit(&db->db_mtx);
3625
3626 /* NOTE: we can't rele the parent until after we drop the db_mtx */
3627 if (parent)
3628 dbuf_rele(parent, NULL);
3629
3630 ASSERT3P(DB_DNODE(db), ==, dn);
3631 ASSERT3U(db->db_blkid, ==, blkid);
3632 ASSERT3U(db->db_level, ==, level);
3633 *dbp = db;
3634
3635 return (0);
3636 }
3637
3638 dmu_buf_impl_t *
dbuf_hold(dnode_t * dn,uint64_t blkid,void * tag)3639 dbuf_hold(dnode_t *dn, uint64_t blkid, void *tag)
3640 {
3641 return (dbuf_hold_level(dn, 0, blkid, tag));
3642 }
3643
3644 dmu_buf_impl_t *
dbuf_hold_level(dnode_t * dn,int level,uint64_t blkid,void * tag)3645 dbuf_hold_level(dnode_t *dn, int level, uint64_t blkid, void *tag)
3646 {
3647 dmu_buf_impl_t *db;
3648 int err = dbuf_hold_impl(dn, level, blkid, FALSE, FALSE, tag, &db);
3649 return (err ? NULL : db);
3650 }
3651
3652 void
dbuf_create_bonus(dnode_t * dn)3653 dbuf_create_bonus(dnode_t *dn)
3654 {
3655 ASSERT(RW_WRITE_HELD(&dn->dn_struct_rwlock));
3656
3657 ASSERT(dn->dn_bonus == NULL);
3658 dn->dn_bonus = dbuf_create(dn, 0, DMU_BONUS_BLKID, dn->dn_dbuf, NULL);
3659 }
3660
3661 int
dbuf_spill_set_blksz(dmu_buf_t * db_fake,uint64_t blksz,dmu_tx_t * tx)3662 dbuf_spill_set_blksz(dmu_buf_t *db_fake, uint64_t blksz, dmu_tx_t *tx)
3663 {
3664 dmu_buf_impl_t *db = (dmu_buf_impl_t *)db_fake;
3665
3666 if (db->db_blkid != DMU_SPILL_BLKID)
3667 return (SET_ERROR(ENOTSUP));
3668 if (blksz == 0)
3669 blksz = SPA_MINBLOCKSIZE;
3670 ASSERT3U(blksz, <=, spa_maxblocksize(dmu_objset_spa(db->db_objset)));
3671 blksz = P2ROUNDUP(blksz, SPA_MINBLOCKSIZE);
3672
3673 dbuf_new_size(db, blksz, tx);
3674
3675 return (0);
3676 }
3677
3678 void
dbuf_rm_spill(dnode_t * dn,dmu_tx_t * tx)3679 dbuf_rm_spill(dnode_t *dn, dmu_tx_t *tx)
3680 {
3681 dbuf_free_range(dn, DMU_SPILL_BLKID, DMU_SPILL_BLKID, tx);
3682 }
3683
3684 #pragma weak dmu_buf_add_ref = dbuf_add_ref
3685 void
dbuf_add_ref(dmu_buf_impl_t * db,void * tag)3686 dbuf_add_ref(dmu_buf_impl_t *db, void *tag)
3687 {
3688 int64_t holds = zfs_refcount_add(&db->db_holds, tag);
3689 VERIFY3S(holds, >, 1);
3690 }
3691
3692 #pragma weak dmu_buf_try_add_ref = dbuf_try_add_ref
3693 boolean_t
dbuf_try_add_ref(dmu_buf_t * db_fake,objset_t * os,uint64_t obj,uint64_t blkid,void * tag)3694 dbuf_try_add_ref(dmu_buf_t *db_fake, objset_t *os, uint64_t obj, uint64_t blkid,
3695 void *tag)
3696 {
3697 dmu_buf_impl_t *db = (dmu_buf_impl_t *)db_fake;
3698 dmu_buf_impl_t *found_db;
3699 boolean_t result = B_FALSE;
3700
3701 if (blkid == DMU_BONUS_BLKID)
3702 found_db = dbuf_find_bonus(os, obj);
3703 else
3704 found_db = dbuf_find(os, obj, 0, blkid);
3705
3706 if (found_db != NULL) {
3707 if (db == found_db && dbuf_refcount(db) > db->db_dirtycnt) {
3708 (void) zfs_refcount_add(&db->db_holds, tag);
3709 result = B_TRUE;
3710 }
3711 mutex_exit(&found_db->db_mtx);
3712 }
3713 return (result);
3714 }
3715
3716 /*
3717 * If you call dbuf_rele() you had better not be referencing the dnode handle
3718 * unless you have some other direct or indirect hold on the dnode. (An indirect
3719 * hold is a hold on one of the dnode's dbufs, including the bonus buffer.)
3720 * Without that, the dbuf_rele() could lead to a dnode_rele() followed by the
3721 * dnode's parent dbuf evicting its dnode handles.
3722 */
3723 void
dbuf_rele(dmu_buf_impl_t * db,void * tag)3724 dbuf_rele(dmu_buf_impl_t *db, void *tag)
3725 {
3726 mutex_enter(&db->db_mtx);
3727 dbuf_rele_and_unlock(db, tag, B_FALSE);
3728 }
3729
3730 void
dmu_buf_rele(dmu_buf_t * db,void * tag)3731 dmu_buf_rele(dmu_buf_t *db, void *tag)
3732 {
3733 dbuf_rele((dmu_buf_impl_t *)db, tag);
3734 }
3735
3736 /*
3737 * dbuf_rele() for an already-locked dbuf. This is necessary to allow
3738 * db_dirtycnt and db_holds to be updated atomically. The 'evicting'
3739 * argument should be set if we are already in the dbuf-evicting code
3740 * path, in which case we don't want to recursively evict. This allows us to
3741 * avoid deeply nested stacks that would have a call flow similar to this:
3742 *
3743 * dbuf_rele()-->dbuf_rele_and_unlock()-->dbuf_evict_notify()
3744 * ^ |
3745 * | |
3746 * +-----dbuf_destroy()<--dbuf_evict_one()<--------+
3747 *
3748 */
3749 void
dbuf_rele_and_unlock(dmu_buf_impl_t * db,void * tag,boolean_t evicting)3750 dbuf_rele_and_unlock(dmu_buf_impl_t *db, void *tag, boolean_t evicting)
3751 {
3752 int64_t holds;
3753 uint64_t size;
3754
3755 ASSERT(MUTEX_HELD(&db->db_mtx));
3756 DBUF_VERIFY(db);
3757
3758 /*
3759 * Remove the reference to the dbuf before removing its hold on the
3760 * dnode so we can guarantee in dnode_move() that a referenced bonus
3761 * buffer has a corresponding dnode hold.
3762 */
3763 holds = zfs_refcount_remove(&db->db_holds, tag);
3764 ASSERT(holds >= 0);
3765
3766 /*
3767 * We can't freeze indirects if there is a possibility that they
3768 * may be modified in the current syncing context.
3769 */
3770 if (db->db_buf != NULL &&
3771 holds == (db->db_level == 0 ? db->db_dirtycnt : 0)) {
3772 arc_buf_freeze(db->db_buf);
3773 }
3774
3775 if (holds == db->db_dirtycnt &&
3776 db->db_level == 0 && db->db_user_immediate_evict)
3777 dbuf_evict_user(db);
3778
3779 if (holds == 0) {
3780 if (db->db_blkid == DMU_BONUS_BLKID) {
3781 dnode_t *dn;
3782 boolean_t evict_dbuf = db->db_pending_evict;
3783
3784 /*
3785 * If the dnode moves here, we cannot cross this
3786 * barrier until the move completes.
3787 */
3788 DB_DNODE_ENTER(db);
3789
3790 dn = DB_DNODE(db);
3791 atomic_dec_32(&dn->dn_dbufs_count);
3792
3793 /*
3794 * Decrementing the dbuf count means that the bonus
3795 * buffer's dnode hold is no longer discounted in
3796 * dnode_move(). The dnode cannot move until after
3797 * the dnode_rele() below.
3798 */
3799 DB_DNODE_EXIT(db);
3800
3801 /*
3802 * Do not reference db after its lock is dropped.
3803 * Another thread may evict it.
3804 */
3805 mutex_exit(&db->db_mtx);
3806
3807 if (evict_dbuf)
3808 dnode_evict_bonus(dn);
3809
3810 dnode_rele(dn, db);
3811 } else if (db->db_buf == NULL) {
3812 /*
3813 * This is a special case: we never associated this
3814 * dbuf with any data allocated from the ARC.
3815 */
3816 ASSERT(db->db_state == DB_UNCACHED ||
3817 db->db_state == DB_NOFILL);
3818 dbuf_destroy(db);
3819 } else if (arc_released(db->db_buf)) {
3820 /*
3821 * This dbuf has anonymous data associated with it.
3822 */
3823 dbuf_destroy(db);
3824 } else {
3825 boolean_t do_arc_evict = B_FALSE;
3826 blkptr_t bp;
3827 spa_t *spa = dmu_objset_spa(db->db_objset);
3828
3829 if (!DBUF_IS_CACHEABLE(db) &&
3830 db->db_blkptr != NULL &&
3831 !BP_IS_HOLE(db->db_blkptr) &&
3832 !BP_IS_EMBEDDED(db->db_blkptr)) {
3833 do_arc_evict = B_TRUE;
3834 bp = *db->db_blkptr;
3835 }
3836
3837 if (!DBUF_IS_CACHEABLE(db) ||
3838 db->db_pending_evict) {
3839 dbuf_destroy(db);
3840 } else if (!multilist_link_active(&db->db_cache_link)) {
3841 ASSERT3U(db->db_caching_status, ==,
3842 DB_NO_CACHE);
3843
3844 dbuf_cached_state_t dcs =
3845 dbuf_include_in_metadata_cache(db) ?
3846 DB_DBUF_METADATA_CACHE : DB_DBUF_CACHE;
3847 db->db_caching_status = dcs;
3848
3849 multilist_insert(&dbuf_caches[dcs].cache, db);
3850 uint64_t db_size = db->db.db_size;
3851 size = zfs_refcount_add_many(
3852 &dbuf_caches[dcs].size, db_size, db);
3853 uint8_t db_level = db->db_level;
3854 mutex_exit(&db->db_mtx);
3855
3856 if (dcs == DB_DBUF_METADATA_CACHE) {
3857 DBUF_STAT_BUMP(metadata_cache_count);
3858 DBUF_STAT_MAX(
3859 metadata_cache_size_bytes_max,
3860 size);
3861 } else {
3862 DBUF_STAT_BUMP(cache_count);
3863 DBUF_STAT_MAX(cache_size_bytes_max,
3864 size);
3865 DBUF_STAT_BUMP(cache_levels[db_level]);
3866 DBUF_STAT_INCR(
3867 cache_levels_bytes[db_level],
3868 db_size);
3869 }
3870
3871 if (dcs == DB_DBUF_CACHE && !evicting)
3872 dbuf_evict_notify(size);
3873 }
3874
3875 if (do_arc_evict)
3876 arc_freed(spa, &bp);
3877 }
3878 } else {
3879 mutex_exit(&db->db_mtx);
3880 }
3881
3882 }
3883
3884 #pragma weak dmu_buf_refcount = dbuf_refcount
3885 uint64_t
dbuf_refcount(dmu_buf_impl_t * db)3886 dbuf_refcount(dmu_buf_impl_t *db)
3887 {
3888 return (zfs_refcount_count(&db->db_holds));
3889 }
3890
3891 uint64_t
dmu_buf_user_refcount(dmu_buf_t * db_fake)3892 dmu_buf_user_refcount(dmu_buf_t *db_fake)
3893 {
3894 uint64_t holds;
3895 dmu_buf_impl_t *db = (dmu_buf_impl_t *)db_fake;
3896
3897 mutex_enter(&db->db_mtx);
3898 ASSERT3U(zfs_refcount_count(&db->db_holds), >=, db->db_dirtycnt);
3899 holds = zfs_refcount_count(&db->db_holds) - db->db_dirtycnt;
3900 mutex_exit(&db->db_mtx);
3901
3902 return (holds);
3903 }
3904
3905 void *
dmu_buf_replace_user(dmu_buf_t * db_fake,dmu_buf_user_t * old_user,dmu_buf_user_t * new_user)3906 dmu_buf_replace_user(dmu_buf_t *db_fake, dmu_buf_user_t *old_user,
3907 dmu_buf_user_t *new_user)
3908 {
3909 dmu_buf_impl_t *db = (dmu_buf_impl_t *)db_fake;
3910
3911 mutex_enter(&db->db_mtx);
3912 dbuf_verify_user(db, DBVU_NOT_EVICTING);
3913 if (db->db_user == old_user)
3914 db->db_user = new_user;
3915 else
3916 old_user = db->db_user;
3917 dbuf_verify_user(db, DBVU_NOT_EVICTING);
3918 mutex_exit(&db->db_mtx);
3919
3920 return (old_user);
3921 }
3922
3923 void *
dmu_buf_set_user(dmu_buf_t * db_fake,dmu_buf_user_t * user)3924 dmu_buf_set_user(dmu_buf_t *db_fake, dmu_buf_user_t *user)
3925 {
3926 return (dmu_buf_replace_user(db_fake, NULL, user));
3927 }
3928
3929 void *
dmu_buf_set_user_ie(dmu_buf_t * db_fake,dmu_buf_user_t * user)3930 dmu_buf_set_user_ie(dmu_buf_t *db_fake, dmu_buf_user_t *user)
3931 {
3932 dmu_buf_impl_t *db = (dmu_buf_impl_t *)db_fake;
3933
3934 db->db_user_immediate_evict = TRUE;
3935 return (dmu_buf_set_user(db_fake, user));
3936 }
3937
3938 void *
dmu_buf_remove_user(dmu_buf_t * db_fake,dmu_buf_user_t * user)3939 dmu_buf_remove_user(dmu_buf_t *db_fake, dmu_buf_user_t *user)
3940 {
3941 return (dmu_buf_replace_user(db_fake, user, NULL));
3942 }
3943
3944 void *
dmu_buf_get_user(dmu_buf_t * db_fake)3945 dmu_buf_get_user(dmu_buf_t *db_fake)
3946 {
3947 dmu_buf_impl_t *db = (dmu_buf_impl_t *)db_fake;
3948
3949 dbuf_verify_user(db, DBVU_NOT_EVICTING);
3950 return (db->db_user);
3951 }
3952
3953 void
dmu_buf_user_evict_wait(void)3954 dmu_buf_user_evict_wait(void)
3955 {
3956 taskq_wait(dbu_evict_taskq);
3957 }
3958
3959 blkptr_t *
dmu_buf_get_blkptr(dmu_buf_t * db)3960 dmu_buf_get_blkptr(dmu_buf_t *db)
3961 {
3962 dmu_buf_impl_t *dbi = (dmu_buf_impl_t *)db;
3963 return (dbi->db_blkptr);
3964 }
3965
3966 objset_t *
dmu_buf_get_objset(dmu_buf_t * db)3967 dmu_buf_get_objset(dmu_buf_t *db)
3968 {
3969 dmu_buf_impl_t *dbi = (dmu_buf_impl_t *)db;
3970 return (dbi->db_objset);
3971 }
3972
3973 dnode_t *
dmu_buf_dnode_enter(dmu_buf_t * db)3974 dmu_buf_dnode_enter(dmu_buf_t *db)
3975 {
3976 dmu_buf_impl_t *dbi = (dmu_buf_impl_t *)db;
3977 DB_DNODE_ENTER(dbi);
3978 return (DB_DNODE(dbi));
3979 }
3980
3981 void
dmu_buf_dnode_exit(dmu_buf_t * db)3982 dmu_buf_dnode_exit(dmu_buf_t *db)
3983 {
3984 dmu_buf_impl_t *dbi = (dmu_buf_impl_t *)db;
3985 DB_DNODE_EXIT(dbi);
3986 }
3987
3988 static void
dbuf_check_blkptr(dnode_t * dn,dmu_buf_impl_t * db)3989 dbuf_check_blkptr(dnode_t *dn, dmu_buf_impl_t *db)
3990 {
3991 /* ASSERT(dmu_tx_is_syncing(tx) */
3992 ASSERT(MUTEX_HELD(&db->db_mtx));
3993
3994 if (db->db_blkptr != NULL)
3995 return;
3996
3997 if (db->db_blkid == DMU_SPILL_BLKID) {
3998 db->db_blkptr = DN_SPILL_BLKPTR(dn->dn_phys);
3999 BP_ZERO(db->db_blkptr);
4000 return;
4001 }
4002 if (db->db_level == dn->dn_phys->dn_nlevels-1) {
4003 /*
4004 * This buffer was allocated at a time when there was
4005 * no available blkptrs from the dnode, or it was
4006 * inappropriate to hook it in (i.e., nlevels mismatch).
4007 */
4008 ASSERT(db->db_blkid < dn->dn_phys->dn_nblkptr);
4009 ASSERT(db->db_parent == NULL);
4010 db->db_parent = dn->dn_dbuf;
4011 db->db_blkptr = &dn->dn_phys->dn_blkptr[db->db_blkid];
4012 DBUF_VERIFY(db);
4013 } else {
4014 dmu_buf_impl_t *parent = db->db_parent;
4015 int epbs = dn->dn_phys->dn_indblkshift - SPA_BLKPTRSHIFT;
4016
4017 ASSERT(dn->dn_phys->dn_nlevels > 1);
4018 if (parent == NULL) {
4019 mutex_exit(&db->db_mtx);
4020 rw_enter(&dn->dn_struct_rwlock, RW_READER);
4021 parent = dbuf_hold_level(dn, db->db_level + 1,
4022 db->db_blkid >> epbs, db);
4023 rw_exit(&dn->dn_struct_rwlock);
4024 mutex_enter(&db->db_mtx);
4025 db->db_parent = parent;
4026 }
4027 db->db_blkptr = (blkptr_t *)parent->db.db_data +
4028 (db->db_blkid & ((1ULL << epbs) - 1));
4029 DBUF_VERIFY(db);
4030 }
4031 }
4032
4033 static void
dbuf_sync_bonus(dbuf_dirty_record_t * dr,dmu_tx_t * tx)4034 dbuf_sync_bonus(dbuf_dirty_record_t *dr, dmu_tx_t *tx)
4035 {
4036 dmu_buf_impl_t *db = dr->dr_dbuf;
4037 void *data = dr->dt.dl.dr_data;
4038
4039 ASSERT0(db->db_level);
4040 ASSERT(MUTEX_HELD(&db->db_mtx));
4041 ASSERT(db->db_blkid == DMU_BONUS_BLKID);
4042 ASSERT(data != NULL);
4043
4044 dnode_t *dn = dr->dr_dnode;
4045 ASSERT3U(DN_MAX_BONUS_LEN(dn->dn_phys), <=,
4046 DN_SLOTS_TO_BONUSLEN(dn->dn_phys->dn_extra_slots + 1));
4047 bcopy(data, DN_BONUS(dn->dn_phys), DN_MAX_BONUS_LEN(dn->dn_phys));
4048
4049 dbuf_sync_leaf_verify_bonus_dnode(dr);
4050
4051 dbuf_undirty_bonus(dr);
4052 dbuf_rele_and_unlock(db, (void *)(uintptr_t)tx->tx_txg, B_FALSE);
4053 }
4054
4055 /*
4056 * When syncing out a blocks of dnodes, adjust the block to deal with
4057 * encryption. Normally, we make sure the block is decrypted before writing
4058 * it. If we have crypt params, then we are writing a raw (encrypted) block,
4059 * from a raw receive. In this case, set the ARC buf's crypt params so
4060 * that the BP will be filled with the correct byteorder, salt, iv, and mac.
4061 */
4062 static void
dbuf_prepare_encrypted_dnode_leaf(dbuf_dirty_record_t * dr)4063 dbuf_prepare_encrypted_dnode_leaf(dbuf_dirty_record_t *dr)
4064 {
4065 int err;
4066 dmu_buf_impl_t *db = dr->dr_dbuf;
4067
4068 ASSERT(MUTEX_HELD(&db->db_mtx));
4069 ASSERT3U(db->db.db_object, ==, DMU_META_DNODE_OBJECT);
4070 ASSERT3U(db->db_level, ==, 0);
4071
4072 if (!db->db_objset->os_raw_receive && arc_is_encrypted(db->db_buf)) {
4073 zbookmark_phys_t zb;
4074
4075 /*
4076 * Unfortunately, there is currently no mechanism for
4077 * syncing context to handle decryption errors. An error
4078 * here is only possible if an attacker maliciously
4079 * changed a dnode block and updated the associated
4080 * checksums going up the block tree.
4081 */
4082 SET_BOOKMARK(&zb, dmu_objset_id(db->db_objset),
4083 db->db.db_object, db->db_level, db->db_blkid);
4084 err = arc_untransform(db->db_buf, db->db_objset->os_spa,
4085 &zb, B_TRUE);
4086 if (err)
4087 panic("Invalid dnode block MAC");
4088 } else if (dr->dt.dl.dr_has_raw_params) {
4089 (void) arc_release(dr->dt.dl.dr_data, db);
4090 arc_convert_to_raw(dr->dt.dl.dr_data,
4091 dmu_objset_id(db->db_objset),
4092 dr->dt.dl.dr_byteorder, DMU_OT_DNODE,
4093 dr->dt.dl.dr_salt, dr->dt.dl.dr_iv, dr->dt.dl.dr_mac);
4094 }
4095 }
4096
4097 /*
4098 * dbuf_sync_indirect() is called recursively from dbuf_sync_list() so it
4099 * is critical the we not allow the compiler to inline this function in to
4100 * dbuf_sync_list() thereby drastically bloating the stack usage.
4101 */
4102 noinline static void
dbuf_sync_indirect(dbuf_dirty_record_t * dr,dmu_tx_t * tx)4103 dbuf_sync_indirect(dbuf_dirty_record_t *dr, dmu_tx_t *tx)
4104 {
4105 dmu_buf_impl_t *db = dr->dr_dbuf;
4106 dnode_t *dn = dr->dr_dnode;
4107
4108 ASSERT(dmu_tx_is_syncing(tx));
4109
4110 dprintf_dbuf_bp(db, db->db_blkptr, "blkptr=%p", db->db_blkptr);
4111
4112 mutex_enter(&db->db_mtx);
4113
4114 ASSERT(db->db_level > 0);
4115 DBUF_VERIFY(db);
4116
4117 /* Read the block if it hasn't been read yet. */
4118 if (db->db_buf == NULL) {
4119 mutex_exit(&db->db_mtx);
4120 (void) dbuf_read(db, NULL, DB_RF_MUST_SUCCEED);
4121 mutex_enter(&db->db_mtx);
4122 }
4123 ASSERT3U(db->db_state, ==, DB_CACHED);
4124 ASSERT(db->db_buf != NULL);
4125
4126 /* Indirect block size must match what the dnode thinks it is. */
4127 ASSERT3U(db->db.db_size, ==, 1<<dn->dn_phys->dn_indblkshift);
4128 dbuf_check_blkptr(dn, db);
4129
4130 /* Provide the pending dirty record to child dbufs */
4131 db->db_data_pending = dr;
4132
4133 mutex_exit(&db->db_mtx);
4134
4135 dbuf_write(dr, db->db_buf, tx);
4136
4137 zio_t *zio = dr->dr_zio;
4138 mutex_enter(&dr->dt.di.dr_mtx);
4139 dbuf_sync_list(&dr->dt.di.dr_children, db->db_level - 1, tx);
4140 ASSERT(list_head(&dr->dt.di.dr_children) == NULL);
4141 mutex_exit(&dr->dt.di.dr_mtx);
4142 zio_nowait(zio);
4143 }
4144
4145 /*
4146 * Verify that the size of the data in our bonus buffer does not exceed
4147 * its recorded size.
4148 *
4149 * The purpose of this verification is to catch any cases in development
4150 * where the size of a phys structure (i.e space_map_phys_t) grows and,
4151 * due to incorrect feature management, older pools expect to read more
4152 * data even though they didn't actually write it to begin with.
4153 *
4154 * For a example, this would catch an error in the feature logic where we
4155 * open an older pool and we expect to write the space map histogram of
4156 * a space map with size SPACE_MAP_SIZE_V0.
4157 */
4158 static void
dbuf_sync_leaf_verify_bonus_dnode(dbuf_dirty_record_t * dr)4159 dbuf_sync_leaf_verify_bonus_dnode(dbuf_dirty_record_t *dr)
4160 {
4161 #ifdef ZFS_DEBUG
4162 dnode_t *dn = dr->dr_dnode;
4163
4164 /*
4165 * Encrypted bonus buffers can have data past their bonuslen.
4166 * Skip the verification of these blocks.
4167 */
4168 if (DMU_OT_IS_ENCRYPTED(dn->dn_bonustype))
4169 return;
4170
4171 uint16_t bonuslen = dn->dn_phys->dn_bonuslen;
4172 uint16_t maxbonuslen = DN_SLOTS_TO_BONUSLEN(dn->dn_num_slots);
4173 ASSERT3U(bonuslen, <=, maxbonuslen);
4174
4175 arc_buf_t *datap = dr->dt.dl.dr_data;
4176 char *datap_end = ((char *)datap) + bonuslen;
4177 char *datap_max = ((char *)datap) + maxbonuslen;
4178
4179 /* ensure that everything is zero after our data */
4180 for (; datap_end < datap_max; datap_end++)
4181 ASSERT(*datap_end == 0);
4182 #endif
4183 }
4184
4185 static blkptr_t *
dbuf_lightweight_bp(dbuf_dirty_record_t * dr)4186 dbuf_lightweight_bp(dbuf_dirty_record_t *dr)
4187 {
4188 /* This must be a lightweight dirty record. */
4189 ASSERT3P(dr->dr_dbuf, ==, NULL);
4190 dnode_t *dn = dr->dr_dnode;
4191
4192 if (dn->dn_phys->dn_nlevels == 1) {
4193 VERIFY3U(dr->dt.dll.dr_blkid, <, dn->dn_phys->dn_nblkptr);
4194 return (&dn->dn_phys->dn_blkptr[dr->dt.dll.dr_blkid]);
4195 } else {
4196 dmu_buf_impl_t *parent_db = dr->dr_parent->dr_dbuf;
4197 int epbs = dn->dn_indblkshift - SPA_BLKPTRSHIFT;
4198 VERIFY3U(parent_db->db_level, ==, 1);
4199 VERIFY3P(parent_db->db_dnode_handle->dnh_dnode, ==, dn);
4200 VERIFY3U(dr->dt.dll.dr_blkid >> epbs, ==, parent_db->db_blkid);
4201 blkptr_t *bp = parent_db->db.db_data;
4202 return (&bp[dr->dt.dll.dr_blkid & ((1 << epbs) - 1)]);
4203 }
4204 }
4205
4206 static void
dbuf_lightweight_ready(zio_t * zio)4207 dbuf_lightweight_ready(zio_t *zio)
4208 {
4209 dbuf_dirty_record_t *dr = zio->io_private;
4210 blkptr_t *bp = zio->io_bp;
4211
4212 if (zio->io_error != 0)
4213 return;
4214
4215 dnode_t *dn = dr->dr_dnode;
4216
4217 blkptr_t *bp_orig = dbuf_lightweight_bp(dr);
4218 spa_t *spa = dmu_objset_spa(dn->dn_objset);
4219 int64_t delta = bp_get_dsize_sync(spa, bp) -
4220 bp_get_dsize_sync(spa, bp_orig);
4221 dnode_diduse_space(dn, delta);
4222
4223 uint64_t blkid = dr->dt.dll.dr_blkid;
4224 mutex_enter(&dn->dn_mtx);
4225 if (blkid > dn->dn_phys->dn_maxblkid) {
4226 ASSERT0(dn->dn_objset->os_raw_receive);
4227 dn->dn_phys->dn_maxblkid = blkid;
4228 }
4229 mutex_exit(&dn->dn_mtx);
4230
4231 if (!BP_IS_EMBEDDED(bp)) {
4232 uint64_t fill = BP_IS_HOLE(bp) ? 0 : 1;
4233 BP_SET_FILL(bp, fill);
4234 }
4235
4236 dmu_buf_impl_t *parent_db;
4237 EQUIV(dr->dr_parent == NULL, dn->dn_phys->dn_nlevels == 1);
4238 if (dr->dr_parent == NULL) {
4239 parent_db = dn->dn_dbuf;
4240 } else {
4241 parent_db = dr->dr_parent->dr_dbuf;
4242 }
4243 rw_enter(&parent_db->db_rwlock, RW_WRITER);
4244 *bp_orig = *bp;
4245 rw_exit(&parent_db->db_rwlock);
4246 }
4247
4248 static void
dbuf_lightweight_physdone(zio_t * zio)4249 dbuf_lightweight_physdone(zio_t *zio)
4250 {
4251 dbuf_dirty_record_t *dr = zio->io_private;
4252 dsl_pool_t *dp = spa_get_dsl(zio->io_spa);
4253 ASSERT3U(dr->dr_txg, ==, zio->io_txg);
4254
4255 /*
4256 * The callback will be called io_phys_children times. Retire one
4257 * portion of our dirty space each time we are called. Any rounding
4258 * error will be cleaned up by dbuf_lightweight_done().
4259 */
4260 int delta = dr->dr_accounted / zio->io_phys_children;
4261 dsl_pool_undirty_space(dp, delta, zio->io_txg);
4262 }
4263
4264 static void
dbuf_lightweight_done(zio_t * zio)4265 dbuf_lightweight_done(zio_t *zio)
4266 {
4267 dbuf_dirty_record_t *dr = zio->io_private;
4268
4269 VERIFY0(zio->io_error);
4270
4271 objset_t *os = dr->dr_dnode->dn_objset;
4272 dmu_tx_t *tx = os->os_synctx;
4273
4274 if (zio->io_flags & (ZIO_FLAG_IO_REWRITE | ZIO_FLAG_NOPWRITE)) {
4275 ASSERT(BP_EQUAL(zio->io_bp, &zio->io_bp_orig));
4276 } else {
4277 dsl_dataset_t *ds = os->os_dsl_dataset;
4278 (void) dsl_dataset_block_kill(ds, &zio->io_bp_orig, tx, B_TRUE);
4279 dsl_dataset_block_born(ds, zio->io_bp, tx);
4280 }
4281
4282 /*
4283 * See comment in dbuf_write_done().
4284 */
4285 if (zio->io_phys_children == 0) {
4286 dsl_pool_undirty_space(dmu_objset_pool(os),
4287 dr->dr_accounted, zio->io_txg);
4288 } else {
4289 dsl_pool_undirty_space(dmu_objset_pool(os),
4290 dr->dr_accounted % zio->io_phys_children, zio->io_txg);
4291 }
4292
4293 abd_free(dr->dt.dll.dr_abd);
4294 kmem_free(dr, sizeof (*dr));
4295 }
4296
4297 noinline static void
dbuf_sync_lightweight(dbuf_dirty_record_t * dr,dmu_tx_t * tx)4298 dbuf_sync_lightweight(dbuf_dirty_record_t *dr, dmu_tx_t *tx)
4299 {
4300 dnode_t *dn = dr->dr_dnode;
4301 zio_t *pio;
4302 if (dn->dn_phys->dn_nlevels == 1) {
4303 pio = dn->dn_zio;
4304 } else {
4305 pio = dr->dr_parent->dr_zio;
4306 }
4307
4308 zbookmark_phys_t zb = {
4309 .zb_objset = dmu_objset_id(dn->dn_objset),
4310 .zb_object = dn->dn_object,
4311 .zb_level = 0,
4312 .zb_blkid = dr->dt.dll.dr_blkid,
4313 };
4314
4315 /*
4316 * See comment in dbuf_write(). This is so that zio->io_bp_orig
4317 * will have the old BP in dbuf_lightweight_done().
4318 */
4319 dr->dr_bp_copy = *dbuf_lightweight_bp(dr);
4320
4321 dr->dr_zio = zio_write(pio, dmu_objset_spa(dn->dn_objset),
4322 dmu_tx_get_txg(tx), &dr->dr_bp_copy, dr->dt.dll.dr_abd,
4323 dn->dn_datablksz, abd_get_size(dr->dt.dll.dr_abd),
4324 &dr->dt.dll.dr_props, dbuf_lightweight_ready, NULL,
4325 dbuf_lightweight_physdone, dbuf_lightweight_done, dr,
4326 ZIO_PRIORITY_ASYNC_WRITE,
4327 ZIO_FLAG_MUSTSUCCEED | dr->dt.dll.dr_flags, &zb);
4328
4329 zio_nowait(dr->dr_zio);
4330 }
4331
4332 /*
4333 * dbuf_sync_leaf() is called recursively from dbuf_sync_list() so it is
4334 * critical the we not allow the compiler to inline this function in to
4335 * dbuf_sync_list() thereby drastically bloating the stack usage.
4336 */
4337 noinline static void
dbuf_sync_leaf(dbuf_dirty_record_t * dr,dmu_tx_t * tx)4338 dbuf_sync_leaf(dbuf_dirty_record_t *dr, dmu_tx_t *tx)
4339 {
4340 arc_buf_t **datap = &dr->dt.dl.dr_data;
4341 dmu_buf_impl_t *db = dr->dr_dbuf;
4342 dnode_t *dn = dr->dr_dnode;
4343 objset_t *os;
4344 uint64_t txg = tx->tx_txg;
4345
4346 ASSERT(dmu_tx_is_syncing(tx));
4347
4348 dprintf_dbuf_bp(db, db->db_blkptr, "blkptr=%p", db->db_blkptr);
4349
4350 mutex_enter(&db->db_mtx);
4351 /*
4352 * To be synced, we must be dirtied. But we
4353 * might have been freed after the dirty.
4354 */
4355 if (db->db_state == DB_UNCACHED) {
4356 /* This buffer has been freed since it was dirtied */
4357 ASSERT(db->db.db_data == NULL);
4358 } else if (db->db_state == DB_FILL) {
4359 /* This buffer was freed and is now being re-filled */
4360 ASSERT(db->db.db_data != dr->dt.dl.dr_data);
4361 } else {
4362 ASSERT(db->db_state == DB_CACHED || db->db_state == DB_NOFILL);
4363 }
4364 DBUF_VERIFY(db);
4365
4366 if (db->db_blkid == DMU_SPILL_BLKID) {
4367 mutex_enter(&dn->dn_mtx);
4368 if (!(dn->dn_phys->dn_flags & DNODE_FLAG_SPILL_BLKPTR)) {
4369 /*
4370 * In the previous transaction group, the bonus buffer
4371 * was entirely used to store the attributes for the
4372 * dnode which overrode the dn_spill field. However,
4373 * when adding more attributes to the file a spill
4374 * block was required to hold the extra attributes.
4375 *
4376 * Make sure to clear the garbage left in the dn_spill
4377 * field from the previous attributes in the bonus
4378 * buffer. Otherwise, after writing out the spill
4379 * block to the new allocated dva, it will free
4380 * the old block pointed to by the invalid dn_spill.
4381 */
4382 db->db_blkptr = NULL;
4383 }
4384 dn->dn_phys->dn_flags |= DNODE_FLAG_SPILL_BLKPTR;
4385 mutex_exit(&dn->dn_mtx);
4386 }
4387
4388 /*
4389 * If this is a bonus buffer, simply copy the bonus data into the
4390 * dnode. It will be written out when the dnode is synced (and it
4391 * will be synced, since it must have been dirty for dbuf_sync to
4392 * be called).
4393 */
4394 if (db->db_blkid == DMU_BONUS_BLKID) {
4395 ASSERT(dr->dr_dbuf == db);
4396 dbuf_sync_bonus(dr, tx);
4397 return;
4398 }
4399
4400 os = dn->dn_objset;
4401
4402 /*
4403 * This function may have dropped the db_mtx lock allowing a dmu_sync
4404 * operation to sneak in. As a result, we need to ensure that we
4405 * don't check the dr_override_state until we have returned from
4406 * dbuf_check_blkptr.
4407 */
4408 dbuf_check_blkptr(dn, db);
4409
4410 /*
4411 * If this buffer is in the middle of an immediate write,
4412 * wait for the synchronous IO to complete.
4413 */
4414 while (dr->dt.dl.dr_override_state == DR_IN_DMU_SYNC) {
4415 ASSERT(dn->dn_object != DMU_META_DNODE_OBJECT);
4416 cv_wait(&db->db_changed, &db->db_mtx);
4417 ASSERT(dr->dt.dl.dr_override_state != DR_NOT_OVERRIDDEN);
4418 }
4419
4420 /*
4421 * If this is a dnode block, ensure it is appropriately encrypted
4422 * or decrypted, depending on what we are writing to it this txg.
4423 */
4424 if (os->os_encrypted && dn->dn_object == DMU_META_DNODE_OBJECT)
4425 dbuf_prepare_encrypted_dnode_leaf(dr);
4426
4427 if (db->db_state != DB_NOFILL &&
4428 dn->dn_object != DMU_META_DNODE_OBJECT &&
4429 zfs_refcount_count(&db->db_holds) > 1 &&
4430 dr->dt.dl.dr_override_state != DR_OVERRIDDEN &&
4431 *datap == db->db_buf) {
4432 /*
4433 * If this buffer is currently "in use" (i.e., there
4434 * are active holds and db_data still references it),
4435 * then make a copy before we start the write so that
4436 * any modifications from the open txg will not leak
4437 * into this write.
4438 *
4439 * NOTE: this copy does not need to be made for
4440 * objects only modified in the syncing context (e.g.
4441 * DNONE_DNODE blocks).
4442 */
4443 int psize = arc_buf_size(*datap);
4444 int lsize = arc_buf_lsize(*datap);
4445 arc_buf_contents_t type = DBUF_GET_BUFC_TYPE(db);
4446 enum zio_compress compress_type = arc_get_compression(*datap);
4447 uint8_t complevel = arc_get_complevel(*datap);
4448
4449 if (arc_is_encrypted(*datap)) {
4450 boolean_t byteorder;
4451 uint8_t salt[ZIO_DATA_SALT_LEN];
4452 uint8_t iv[ZIO_DATA_IV_LEN];
4453 uint8_t mac[ZIO_DATA_MAC_LEN];
4454
4455 arc_get_raw_params(*datap, &byteorder, salt, iv, mac);
4456 *datap = arc_alloc_raw_buf(os->os_spa, db,
4457 dmu_objset_id(os), byteorder, salt, iv, mac,
4458 dn->dn_type, psize, lsize, compress_type,
4459 complevel);
4460 } else if (compress_type != ZIO_COMPRESS_OFF) {
4461 ASSERT3U(type, ==, ARC_BUFC_DATA);
4462 *datap = arc_alloc_compressed_buf(os->os_spa, db,
4463 psize, lsize, compress_type, complevel);
4464 } else {
4465 *datap = arc_alloc_buf(os->os_spa, db, type, psize);
4466 }
4467 bcopy(db->db.db_data, (*datap)->b_data, psize);
4468 }
4469 db->db_data_pending = dr;
4470
4471 mutex_exit(&db->db_mtx);
4472
4473 dbuf_write(dr, *datap, tx);
4474
4475 ASSERT(!list_link_active(&dr->dr_dirty_node));
4476 if (dn->dn_object == DMU_META_DNODE_OBJECT) {
4477 list_insert_tail(&dn->dn_dirty_records[txg & TXG_MASK], dr);
4478 } else {
4479 zio_nowait(dr->dr_zio);
4480 }
4481 }
4482
4483 void
dbuf_sync_list(list_t * list,int level,dmu_tx_t * tx)4484 dbuf_sync_list(list_t *list, int level, dmu_tx_t *tx)
4485 {
4486 dbuf_dirty_record_t *dr;
4487
4488 while ((dr = list_head(list))) {
4489 if (dr->dr_zio != NULL) {
4490 /*
4491 * If we find an already initialized zio then we
4492 * are processing the meta-dnode, and we have finished.
4493 * The dbufs for all dnodes are put back on the list
4494 * during processing, so that we can zio_wait()
4495 * these IOs after initiating all child IOs.
4496 */
4497 ASSERT3U(dr->dr_dbuf->db.db_object, ==,
4498 DMU_META_DNODE_OBJECT);
4499 break;
4500 }
4501 list_remove(list, dr);
4502 if (dr->dr_dbuf == NULL) {
4503 dbuf_sync_lightweight(dr, tx);
4504 } else {
4505 if (dr->dr_dbuf->db_blkid != DMU_BONUS_BLKID &&
4506 dr->dr_dbuf->db_blkid != DMU_SPILL_BLKID) {
4507 VERIFY3U(dr->dr_dbuf->db_level, ==, level);
4508 }
4509 if (dr->dr_dbuf->db_level > 0)
4510 dbuf_sync_indirect(dr, tx);
4511 else
4512 dbuf_sync_leaf(dr, tx);
4513 }
4514 }
4515 }
4516
4517 static void
dbuf_write_ready(zio_t * zio,arc_buf_t * buf,void * vdb)4518 dbuf_write_ready(zio_t *zio, arc_buf_t *buf, void *vdb)
4519 {
4520 (void) buf;
4521 dmu_buf_impl_t *db = vdb;
4522 dnode_t *dn;
4523 blkptr_t *bp = zio->io_bp;
4524 blkptr_t *bp_orig = &zio->io_bp_orig;
4525 spa_t *spa = zio->io_spa;
4526 int64_t delta;
4527 uint64_t fill = 0;
4528 int i;
4529
4530 ASSERT3P(db->db_blkptr, !=, NULL);
4531 ASSERT3P(&db->db_data_pending->dr_bp_copy, ==, bp);
4532
4533 DB_DNODE_ENTER(db);
4534 dn = DB_DNODE(db);
4535 delta = bp_get_dsize_sync(spa, bp) - bp_get_dsize_sync(spa, bp_orig);
4536 dnode_diduse_space(dn, delta - zio->io_prev_space_delta);
4537 zio->io_prev_space_delta = delta;
4538
4539 if (bp->blk_birth != 0) {
4540 ASSERT((db->db_blkid != DMU_SPILL_BLKID &&
4541 BP_GET_TYPE(bp) == dn->dn_type) ||
4542 (db->db_blkid == DMU_SPILL_BLKID &&
4543 BP_GET_TYPE(bp) == dn->dn_bonustype) ||
4544 BP_IS_EMBEDDED(bp));
4545 ASSERT(BP_GET_LEVEL(bp) == db->db_level);
4546 }
4547
4548 mutex_enter(&db->db_mtx);
4549
4550 #ifdef ZFS_DEBUG
4551 if (db->db_blkid == DMU_SPILL_BLKID) {
4552 ASSERT(dn->dn_phys->dn_flags & DNODE_FLAG_SPILL_BLKPTR);
4553 ASSERT(!(BP_IS_HOLE(bp)) &&
4554 db->db_blkptr == DN_SPILL_BLKPTR(dn->dn_phys));
4555 }
4556 #endif
4557
4558 if (db->db_level == 0) {
4559 mutex_enter(&dn->dn_mtx);
4560 if (db->db_blkid > dn->dn_phys->dn_maxblkid &&
4561 db->db_blkid != DMU_SPILL_BLKID) {
4562 ASSERT0(db->db_objset->os_raw_receive);
4563 dn->dn_phys->dn_maxblkid = db->db_blkid;
4564 }
4565 mutex_exit(&dn->dn_mtx);
4566
4567 if (dn->dn_type == DMU_OT_DNODE) {
4568 i = 0;
4569 while (i < db->db.db_size) {
4570 dnode_phys_t *dnp =
4571 (void *)(((char *)db->db.db_data) + i);
4572
4573 i += DNODE_MIN_SIZE;
4574 if (dnp->dn_type != DMU_OT_NONE) {
4575 fill++;
4576 i += dnp->dn_extra_slots *
4577 DNODE_MIN_SIZE;
4578 }
4579 }
4580 } else {
4581 if (BP_IS_HOLE(bp)) {
4582 fill = 0;
4583 } else {
4584 fill = 1;
4585 }
4586 }
4587 } else {
4588 blkptr_t *ibp = db->db.db_data;
4589 ASSERT3U(db->db.db_size, ==, 1<<dn->dn_phys->dn_indblkshift);
4590 for (i = db->db.db_size >> SPA_BLKPTRSHIFT; i > 0; i--, ibp++) {
4591 if (BP_IS_HOLE(ibp))
4592 continue;
4593 fill += BP_GET_FILL(ibp);
4594 }
4595 }
4596 DB_DNODE_EXIT(db);
4597
4598 if (!BP_IS_EMBEDDED(bp))
4599 BP_SET_FILL(bp, fill);
4600
4601 mutex_exit(&db->db_mtx);
4602
4603 db_lock_type_t dblt = dmu_buf_lock_parent(db, RW_WRITER, FTAG);
4604 *db->db_blkptr = *bp;
4605 dmu_buf_unlock_parent(db, dblt, FTAG);
4606 }
4607
4608 /*
4609 * This function gets called just prior to running through the compression
4610 * stage of the zio pipeline. If we're an indirect block comprised of only
4611 * holes, then we want this indirect to be compressed away to a hole. In
4612 * order to do that we must zero out any information about the holes that
4613 * this indirect points to prior to before we try to compress it.
4614 */
4615 static void
dbuf_write_children_ready(zio_t * zio,arc_buf_t * buf,void * vdb)4616 dbuf_write_children_ready(zio_t *zio, arc_buf_t *buf, void *vdb)
4617 {
4618 (void) zio, (void) buf;
4619 dmu_buf_impl_t *db = vdb;
4620 dnode_t *dn;
4621 blkptr_t *bp;
4622 unsigned int epbs, i;
4623
4624 ASSERT3U(db->db_level, >, 0);
4625 DB_DNODE_ENTER(db);
4626 dn = DB_DNODE(db);
4627 epbs = dn->dn_phys->dn_indblkshift - SPA_BLKPTRSHIFT;
4628 ASSERT3U(epbs, <, 31);
4629
4630 /* Determine if all our children are holes */
4631 for (i = 0, bp = db->db.db_data; i < 1ULL << epbs; i++, bp++) {
4632 if (!BP_IS_HOLE(bp))
4633 break;
4634 }
4635
4636 /*
4637 * If all the children are holes, then zero them all out so that
4638 * we may get compressed away.
4639 */
4640 if (i == 1ULL << epbs) {
4641 /*
4642 * We only found holes. Grab the rwlock to prevent
4643 * anybody from reading the blocks we're about to
4644 * zero out.
4645 */
4646 rw_enter(&db->db_rwlock, RW_WRITER);
4647 bzero(db->db.db_data, db->db.db_size);
4648 rw_exit(&db->db_rwlock);
4649 }
4650 DB_DNODE_EXIT(db);
4651 }
4652
4653 /*
4654 * The SPA will call this callback several times for each zio - once
4655 * for every physical child i/o (zio->io_phys_children times). This
4656 * allows the DMU to monitor the progress of each logical i/o. For example,
4657 * there may be 2 copies of an indirect block, or many fragments of a RAID-Z
4658 * block. There may be a long delay before all copies/fragments are completed,
4659 * so this callback allows us to retire dirty space gradually, as the physical
4660 * i/os complete.
4661 */
4662 static void
dbuf_write_physdone(zio_t * zio,arc_buf_t * buf,void * arg)4663 dbuf_write_physdone(zio_t *zio, arc_buf_t *buf, void *arg)
4664 {
4665 (void) buf;
4666 dmu_buf_impl_t *db = arg;
4667 objset_t *os = db->db_objset;
4668 dsl_pool_t *dp = dmu_objset_pool(os);
4669 dbuf_dirty_record_t *dr;
4670 int delta = 0;
4671
4672 dr = db->db_data_pending;
4673 ASSERT3U(dr->dr_txg, ==, zio->io_txg);
4674
4675 /*
4676 * The callback will be called io_phys_children times. Retire one
4677 * portion of our dirty space each time we are called. Any rounding
4678 * error will be cleaned up by dbuf_write_done().
4679 */
4680 delta = dr->dr_accounted / zio->io_phys_children;
4681 dsl_pool_undirty_space(dp, delta, zio->io_txg);
4682 }
4683
4684 static void
dbuf_write_done(zio_t * zio,arc_buf_t * buf,void * vdb)4685 dbuf_write_done(zio_t *zio, arc_buf_t *buf, void *vdb)
4686 {
4687 (void) buf;
4688 dmu_buf_impl_t *db = vdb;
4689 blkptr_t *bp_orig = &zio->io_bp_orig;
4690 blkptr_t *bp = db->db_blkptr;
4691 objset_t *os = db->db_objset;
4692 dmu_tx_t *tx = os->os_synctx;
4693
4694 ASSERT0(zio->io_error);
4695 ASSERT(db->db_blkptr == bp);
4696
4697 /*
4698 * For nopwrites and rewrites we ensure that the bp matches our
4699 * original and bypass all the accounting.
4700 */
4701 if (zio->io_flags & (ZIO_FLAG_IO_REWRITE | ZIO_FLAG_NOPWRITE)) {
4702 ASSERT(BP_EQUAL(bp, bp_orig));
4703 } else {
4704 dsl_dataset_t *ds = os->os_dsl_dataset;
4705 (void) dsl_dataset_block_kill(ds, bp_orig, tx, B_TRUE);
4706 dsl_dataset_block_born(ds, bp, tx);
4707 }
4708
4709 mutex_enter(&db->db_mtx);
4710
4711 DBUF_VERIFY(db);
4712
4713 dbuf_dirty_record_t *dr = db->db_data_pending;
4714 dnode_t *dn = dr->dr_dnode;
4715 ASSERT(!list_link_active(&dr->dr_dirty_node));
4716 ASSERT(dr->dr_dbuf == db);
4717 ASSERT(list_next(&db->db_dirty_records, dr) == NULL);
4718 list_remove(&db->db_dirty_records, dr);
4719
4720 #ifdef ZFS_DEBUG
4721 if (db->db_blkid == DMU_SPILL_BLKID) {
4722 ASSERT(dn->dn_phys->dn_flags & DNODE_FLAG_SPILL_BLKPTR);
4723 ASSERT(!(BP_IS_HOLE(db->db_blkptr)) &&
4724 db->db_blkptr == DN_SPILL_BLKPTR(dn->dn_phys));
4725 }
4726 #endif
4727
4728 if (db->db_level == 0) {
4729 ASSERT(db->db_blkid != DMU_BONUS_BLKID);
4730 ASSERT(dr->dt.dl.dr_override_state == DR_NOT_OVERRIDDEN);
4731 if (db->db_state != DB_NOFILL) {
4732 if (dr->dt.dl.dr_data != db->db_buf)
4733 arc_buf_destroy(dr->dt.dl.dr_data, db);
4734 }
4735 } else {
4736 ASSERT(list_head(&dr->dt.di.dr_children) == NULL);
4737 ASSERT3U(db->db.db_size, ==, 1 << dn->dn_phys->dn_indblkshift);
4738 if (!BP_IS_HOLE(db->db_blkptr)) {
4739 int epbs __maybe_unused = dn->dn_phys->dn_indblkshift -
4740 SPA_BLKPTRSHIFT;
4741 ASSERT3U(db->db_blkid, <=,
4742 dn->dn_phys->dn_maxblkid >> (db->db_level * epbs));
4743 ASSERT3U(BP_GET_LSIZE(db->db_blkptr), ==,
4744 db->db.db_size);
4745 }
4746 mutex_destroy(&dr->dt.di.dr_mtx);
4747 list_destroy(&dr->dt.di.dr_children);
4748 }
4749
4750 cv_broadcast(&db->db_changed);
4751 ASSERT(db->db_dirtycnt > 0);
4752 db->db_dirtycnt -= 1;
4753 db->db_data_pending = NULL;
4754 dbuf_rele_and_unlock(db, (void *)(uintptr_t)tx->tx_txg, B_FALSE);
4755
4756 /*
4757 * If we didn't do a physical write in this ZIO and we
4758 * still ended up here, it means that the space of the
4759 * dbuf that we just released (and undirtied) above hasn't
4760 * been marked as undirtied in the pool's accounting.
4761 *
4762 * Thus, we undirty that space in the pool's view of the
4763 * world here. For physical writes this type of update
4764 * happens in dbuf_write_physdone().
4765 *
4766 * If we did a physical write, cleanup any rounding errors
4767 * that came up due to writing multiple copies of a block
4768 * on disk [see dbuf_write_physdone()].
4769 */
4770 if (zio->io_phys_children == 0) {
4771 dsl_pool_undirty_space(dmu_objset_pool(os),
4772 dr->dr_accounted, zio->io_txg);
4773 } else {
4774 dsl_pool_undirty_space(dmu_objset_pool(os),
4775 dr->dr_accounted % zio->io_phys_children, zio->io_txg);
4776 }
4777
4778 kmem_free(dr, sizeof (dbuf_dirty_record_t));
4779 }
4780
4781 static void
dbuf_write_nofill_ready(zio_t * zio)4782 dbuf_write_nofill_ready(zio_t *zio)
4783 {
4784 dbuf_write_ready(zio, NULL, zio->io_private);
4785 }
4786
4787 static void
dbuf_write_nofill_done(zio_t * zio)4788 dbuf_write_nofill_done(zio_t *zio)
4789 {
4790 dbuf_write_done(zio, NULL, zio->io_private);
4791 }
4792
4793 static void
dbuf_write_override_ready(zio_t * zio)4794 dbuf_write_override_ready(zio_t *zio)
4795 {
4796 dbuf_dirty_record_t *dr = zio->io_private;
4797 dmu_buf_impl_t *db = dr->dr_dbuf;
4798
4799 dbuf_write_ready(zio, NULL, db);
4800 }
4801
4802 static void
dbuf_write_override_done(zio_t * zio)4803 dbuf_write_override_done(zio_t *zio)
4804 {
4805 dbuf_dirty_record_t *dr = zio->io_private;
4806 dmu_buf_impl_t *db = dr->dr_dbuf;
4807 blkptr_t *obp = &dr->dt.dl.dr_overridden_by;
4808
4809 mutex_enter(&db->db_mtx);
4810 if (!BP_EQUAL(zio->io_bp, obp)) {
4811 if (!BP_IS_HOLE(obp))
4812 dsl_free(spa_get_dsl(zio->io_spa), zio->io_txg, obp);
4813 arc_release(dr->dt.dl.dr_data, db);
4814 }
4815 mutex_exit(&db->db_mtx);
4816
4817 dbuf_write_done(zio, NULL, db);
4818
4819 if (zio->io_abd != NULL)
4820 abd_free(zio->io_abd);
4821 }
4822
4823 typedef struct dbuf_remap_impl_callback_arg {
4824 objset_t *drica_os;
4825 uint64_t drica_blk_birth;
4826 dmu_tx_t *drica_tx;
4827 } dbuf_remap_impl_callback_arg_t;
4828
4829 static void
dbuf_remap_impl_callback(uint64_t vdev,uint64_t offset,uint64_t size,void * arg)4830 dbuf_remap_impl_callback(uint64_t vdev, uint64_t offset, uint64_t size,
4831 void *arg)
4832 {
4833 dbuf_remap_impl_callback_arg_t *drica = arg;
4834 objset_t *os = drica->drica_os;
4835 spa_t *spa = dmu_objset_spa(os);
4836 dmu_tx_t *tx = drica->drica_tx;
4837
4838 ASSERT(dsl_pool_sync_context(spa_get_dsl(spa)));
4839
4840 if (os == spa_meta_objset(spa)) {
4841 spa_vdev_indirect_mark_obsolete(spa, vdev, offset, size, tx);
4842 } else {
4843 dsl_dataset_block_remapped(dmu_objset_ds(os), vdev, offset,
4844 size, drica->drica_blk_birth, tx);
4845 }
4846 }
4847
4848 static void
dbuf_remap_impl(dnode_t * dn,blkptr_t * bp,krwlock_t * rw,dmu_tx_t * tx)4849 dbuf_remap_impl(dnode_t *dn, blkptr_t *bp, krwlock_t *rw, dmu_tx_t *tx)
4850 {
4851 blkptr_t bp_copy = *bp;
4852 spa_t *spa = dmu_objset_spa(dn->dn_objset);
4853 dbuf_remap_impl_callback_arg_t drica;
4854
4855 ASSERT(dsl_pool_sync_context(spa_get_dsl(spa)));
4856
4857 drica.drica_os = dn->dn_objset;
4858 drica.drica_blk_birth = bp->blk_birth;
4859 drica.drica_tx = tx;
4860 if (spa_remap_blkptr(spa, &bp_copy, dbuf_remap_impl_callback,
4861 &drica)) {
4862 /*
4863 * If the blkptr being remapped is tracked by a livelist,
4864 * then we need to make sure the livelist reflects the update.
4865 * First, cancel out the old blkptr by appending a 'FREE'
4866 * entry. Next, add an 'ALLOC' to track the new version. This
4867 * way we avoid trying to free an inaccurate blkptr at delete.
4868 * Note that embedded blkptrs are not tracked in livelists.
4869 */
4870 if (dn->dn_objset != spa_meta_objset(spa)) {
4871 dsl_dataset_t *ds = dmu_objset_ds(dn->dn_objset);
4872 if (dsl_deadlist_is_open(&ds->ds_dir->dd_livelist) &&
4873 bp->blk_birth > ds->ds_dir->dd_origin_txg) {
4874 ASSERT(!BP_IS_EMBEDDED(bp));
4875 ASSERT(dsl_dir_is_clone(ds->ds_dir));
4876 ASSERT(spa_feature_is_enabled(spa,
4877 SPA_FEATURE_LIVELIST));
4878 bplist_append(&ds->ds_dir->dd_pending_frees,
4879 bp);
4880 bplist_append(&ds->ds_dir->dd_pending_allocs,
4881 &bp_copy);
4882 }
4883 }
4884
4885 /*
4886 * The db_rwlock prevents dbuf_read_impl() from
4887 * dereferencing the BP while we are changing it. To
4888 * avoid lock contention, only grab it when we are actually
4889 * changing the BP.
4890 */
4891 if (rw != NULL)
4892 rw_enter(rw, RW_WRITER);
4893 *bp = bp_copy;
4894 if (rw != NULL)
4895 rw_exit(rw);
4896 }
4897 }
4898
4899 /*
4900 * Remap any existing BP's to concrete vdevs, if possible.
4901 */
4902 static void
dbuf_remap(dnode_t * dn,dmu_buf_impl_t * db,dmu_tx_t * tx)4903 dbuf_remap(dnode_t *dn, dmu_buf_impl_t *db, dmu_tx_t *tx)
4904 {
4905 spa_t *spa = dmu_objset_spa(db->db_objset);
4906 ASSERT(dsl_pool_sync_context(spa_get_dsl(spa)));
4907
4908 if (!spa_feature_is_active(spa, SPA_FEATURE_DEVICE_REMOVAL))
4909 return;
4910
4911 if (db->db_level > 0) {
4912 blkptr_t *bp = db->db.db_data;
4913 for (int i = 0; i < db->db.db_size >> SPA_BLKPTRSHIFT; i++) {
4914 dbuf_remap_impl(dn, &bp[i], &db->db_rwlock, tx);
4915 }
4916 } else if (db->db.db_object == DMU_META_DNODE_OBJECT) {
4917 dnode_phys_t *dnp = db->db.db_data;
4918 ASSERT3U(db->db_dnode_handle->dnh_dnode->dn_type, ==,
4919 DMU_OT_DNODE);
4920 for (int i = 0; i < db->db.db_size >> DNODE_SHIFT;
4921 i += dnp[i].dn_extra_slots + 1) {
4922 for (int j = 0; j < dnp[i].dn_nblkptr; j++) {
4923 krwlock_t *lock = (dn->dn_dbuf == NULL ? NULL :
4924 &dn->dn_dbuf->db_rwlock);
4925 dbuf_remap_impl(dn, &dnp[i].dn_blkptr[j], lock,
4926 tx);
4927 }
4928 }
4929 }
4930 }
4931
4932
4933 /* Issue I/O to commit a dirty buffer to disk. */
4934 static void
dbuf_write(dbuf_dirty_record_t * dr,arc_buf_t * data,dmu_tx_t * tx)4935 dbuf_write(dbuf_dirty_record_t *dr, arc_buf_t *data, dmu_tx_t *tx)
4936 {
4937 dmu_buf_impl_t *db = dr->dr_dbuf;
4938 dnode_t *dn = dr->dr_dnode;
4939 objset_t *os;
4940 dmu_buf_impl_t *parent = db->db_parent;
4941 uint64_t txg = tx->tx_txg;
4942 zbookmark_phys_t zb;
4943 zio_prop_t zp;
4944 zio_t *pio; /* parent I/O */
4945 int wp_flag = 0;
4946
4947 ASSERT(dmu_tx_is_syncing(tx));
4948
4949 os = dn->dn_objset;
4950
4951 if (db->db_state != DB_NOFILL) {
4952 if (db->db_level > 0 || dn->dn_type == DMU_OT_DNODE) {
4953 /*
4954 * Private object buffers are released here rather
4955 * than in dbuf_dirty() since they are only modified
4956 * in the syncing context and we don't want the
4957 * overhead of making multiple copies of the data.
4958 */
4959 if (BP_IS_HOLE(db->db_blkptr)) {
4960 arc_buf_thaw(data);
4961 } else {
4962 dbuf_release_bp(db);
4963 }
4964 dbuf_remap(dn, db, tx);
4965 }
4966 }
4967
4968 if (parent != dn->dn_dbuf) {
4969 /* Our parent is an indirect block. */
4970 /* We have a dirty parent that has been scheduled for write. */
4971 ASSERT(parent && parent->db_data_pending);
4972 /* Our parent's buffer is one level closer to the dnode. */
4973 ASSERT(db->db_level == parent->db_level-1);
4974 /*
4975 * We're about to modify our parent's db_data by modifying
4976 * our block pointer, so the parent must be released.
4977 */
4978 ASSERT(arc_released(parent->db_buf));
4979 pio = parent->db_data_pending->dr_zio;
4980 } else {
4981 /* Our parent is the dnode itself. */
4982 ASSERT((db->db_level == dn->dn_phys->dn_nlevels-1 &&
4983 db->db_blkid != DMU_SPILL_BLKID) ||
4984 (db->db_blkid == DMU_SPILL_BLKID && db->db_level == 0));
4985 if (db->db_blkid != DMU_SPILL_BLKID)
4986 ASSERT3P(db->db_blkptr, ==,
4987 &dn->dn_phys->dn_blkptr[db->db_blkid]);
4988 pio = dn->dn_zio;
4989 }
4990
4991 ASSERT(db->db_level == 0 || data == db->db_buf);
4992 ASSERT3U(db->db_blkptr->blk_birth, <=, txg);
4993 ASSERT(pio);
4994
4995 SET_BOOKMARK(&zb, os->os_dsl_dataset ?
4996 os->os_dsl_dataset->ds_object : DMU_META_OBJSET,
4997 db->db.db_object, db->db_level, db->db_blkid);
4998
4999 if (db->db_blkid == DMU_SPILL_BLKID)
5000 wp_flag = WP_SPILL;
5001 wp_flag |= (db->db_state == DB_NOFILL) ? WP_NOFILL : 0;
5002
5003 dmu_write_policy(os, dn, db->db_level, wp_flag, &zp);
5004
5005 /*
5006 * We copy the blkptr now (rather than when we instantiate the dirty
5007 * record), because its value can change between open context and
5008 * syncing context. We do not need to hold dn_struct_rwlock to read
5009 * db_blkptr because we are in syncing context.
5010 */
5011 dr->dr_bp_copy = *db->db_blkptr;
5012
5013 if (db->db_level == 0 &&
5014 dr->dt.dl.dr_override_state == DR_OVERRIDDEN) {
5015 /*
5016 * The BP for this block has been provided by open context
5017 * (by dmu_sync() or dmu_buf_write_embedded()).
5018 */
5019 abd_t *contents = (data != NULL) ?
5020 abd_get_from_buf(data->b_data, arc_buf_size(data)) : NULL;
5021
5022 dr->dr_zio = zio_write(pio, os->os_spa, txg, &dr->dr_bp_copy,
5023 contents, db->db.db_size, db->db.db_size, &zp,
5024 dbuf_write_override_ready, NULL, NULL,
5025 dbuf_write_override_done,
5026 dr, ZIO_PRIORITY_ASYNC_WRITE, ZIO_FLAG_MUSTSUCCEED, &zb);
5027 mutex_enter(&db->db_mtx);
5028 dr->dt.dl.dr_override_state = DR_NOT_OVERRIDDEN;
5029 zio_write_override(dr->dr_zio, &dr->dt.dl.dr_overridden_by,
5030 dr->dt.dl.dr_copies, dr->dt.dl.dr_nopwrite);
5031 mutex_exit(&db->db_mtx);
5032 } else if (db->db_state == DB_NOFILL) {
5033 ASSERT(zp.zp_checksum == ZIO_CHECKSUM_OFF ||
5034 zp.zp_checksum == ZIO_CHECKSUM_NOPARITY);
5035 dr->dr_zio = zio_write(pio, os->os_spa, txg,
5036 &dr->dr_bp_copy, NULL, db->db.db_size, db->db.db_size, &zp,
5037 dbuf_write_nofill_ready, NULL, NULL,
5038 dbuf_write_nofill_done, db,
5039 ZIO_PRIORITY_ASYNC_WRITE,
5040 ZIO_FLAG_MUSTSUCCEED | ZIO_FLAG_NODATA, &zb);
5041 } else {
5042 ASSERT(arc_released(data));
5043
5044 /*
5045 * For indirect blocks, we want to setup the children
5046 * ready callback so that we can properly handle an indirect
5047 * block that only contains holes.
5048 */
5049 arc_write_done_func_t *children_ready_cb = NULL;
5050 if (db->db_level != 0)
5051 children_ready_cb = dbuf_write_children_ready;
5052
5053 dr->dr_zio = arc_write(pio, os->os_spa, txg,
5054 &dr->dr_bp_copy, data, dbuf_is_l2cacheable(db),
5055 &zp, dbuf_write_ready,
5056 children_ready_cb, dbuf_write_physdone,
5057 dbuf_write_done, db, ZIO_PRIORITY_ASYNC_WRITE,
5058 ZIO_FLAG_MUSTSUCCEED, &zb);
5059 }
5060 }
5061
5062 EXPORT_SYMBOL(dbuf_find);
5063 EXPORT_SYMBOL(dbuf_is_metadata);
5064 EXPORT_SYMBOL(dbuf_destroy);
5065 EXPORT_SYMBOL(dbuf_loan_arcbuf);
5066 EXPORT_SYMBOL(dbuf_whichblock);
5067 EXPORT_SYMBOL(dbuf_read);
5068 EXPORT_SYMBOL(dbuf_unoverride);
5069 EXPORT_SYMBOL(dbuf_free_range);
5070 EXPORT_SYMBOL(dbuf_new_size);
5071 EXPORT_SYMBOL(dbuf_release_bp);
5072 EXPORT_SYMBOL(dbuf_dirty);
5073 EXPORT_SYMBOL(dmu_buf_set_crypt_params);
5074 EXPORT_SYMBOL(dmu_buf_will_dirty);
5075 EXPORT_SYMBOL(dmu_buf_is_dirty);
5076 EXPORT_SYMBOL(dmu_buf_will_not_fill);
5077 EXPORT_SYMBOL(dmu_buf_will_fill);
5078 EXPORT_SYMBOL(dmu_buf_fill_done);
5079 EXPORT_SYMBOL(dmu_buf_rele);
5080 EXPORT_SYMBOL(dbuf_assign_arcbuf);
5081 EXPORT_SYMBOL(dbuf_prefetch);
5082 EXPORT_SYMBOL(dbuf_hold_impl);
5083 EXPORT_SYMBOL(dbuf_hold);
5084 EXPORT_SYMBOL(dbuf_hold_level);
5085 EXPORT_SYMBOL(dbuf_create_bonus);
5086 EXPORT_SYMBOL(dbuf_spill_set_blksz);
5087 EXPORT_SYMBOL(dbuf_rm_spill);
5088 EXPORT_SYMBOL(dbuf_add_ref);
5089 EXPORT_SYMBOL(dbuf_rele);
5090 EXPORT_SYMBOL(dbuf_rele_and_unlock);
5091 EXPORT_SYMBOL(dbuf_refcount);
5092 EXPORT_SYMBOL(dbuf_sync_list);
5093 EXPORT_SYMBOL(dmu_buf_set_user);
5094 EXPORT_SYMBOL(dmu_buf_set_user_ie);
5095 EXPORT_SYMBOL(dmu_buf_get_user);
5096 EXPORT_SYMBOL(dmu_buf_get_blkptr);
5097
5098 /* BEGIN CSTYLED */
5099 ZFS_MODULE_PARAM(zfs_dbuf_cache, dbuf_cache_, max_bytes, ULONG, ZMOD_RW,
5100 "Maximum size in bytes of the dbuf cache.");
5101
5102 ZFS_MODULE_PARAM(zfs_dbuf_cache, dbuf_cache_, hiwater_pct, UINT, ZMOD_RW,
5103 "Percentage over dbuf_cache_max_bytes when dbufs must be evicted "
5104 "directly.");
5105
5106 ZFS_MODULE_PARAM(zfs_dbuf_cache, dbuf_cache_, lowater_pct, UINT, ZMOD_RW,
5107 "Percentage below dbuf_cache_max_bytes when the evict thread stops "
5108 "evicting dbufs.");
5109
5110 ZFS_MODULE_PARAM(zfs_dbuf, dbuf_, metadata_cache_max_bytes, ULONG, ZMOD_RW,
5111 "Maximum size in bytes of the dbuf metadata cache.");
5112
5113 ZFS_MODULE_PARAM(zfs_dbuf, dbuf_, cache_shift, INT, ZMOD_RW,
5114 "Set the size of the dbuf cache to a log2 fraction of arc size.");
5115
5116 ZFS_MODULE_PARAM(zfs_dbuf, dbuf_, metadata_cache_shift, INT, ZMOD_RW,
5117 "Set the size of the dbuf metadata cache to a log2 fraction of arc "
5118 "size.");
5119 /* END CSTYLED */
5120