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 https://opensource.org/licenses/CDDL-1.0.
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 (c) 2011, 2020 by Delphix. All rights reserved.
24 * Copyright (c) 2013 by Saso Kiselkov. All rights reserved.
25 * Copyright (c) 2013, Joyent, Inc. All rights reserved.
26 * Copyright (c) 2016, Nexenta Systems, Inc. All rights reserved.
27 * Copyright (c) 2015 by Chunwei Chen. All rights reserved.
28 * Copyright (c) 2019 Datto Inc.
29 * Copyright (c) 2019, Klara Inc.
30 * Copyright (c) 2019, Allan Jude
31 * Copyright (c) 2022 Hewlett Packard Enterprise Development LP.
32 * Copyright (c) 2021, 2022 by Pawel Jakub Dawidek
33 */
34
35 #include <sys/dmu.h>
36 #include <sys/dmu_impl.h>
37 #include <sys/dmu_tx.h>
38 #include <sys/dbuf.h>
39 #include <sys/dnode.h>
40 #include <sys/zfs_context.h>
41 #include <sys/dmu_objset.h>
42 #include <sys/dmu_traverse.h>
43 #include <sys/dsl_dataset.h>
44 #include <sys/dsl_dir.h>
45 #include <sys/dsl_pool.h>
46 #include <sys/dsl_synctask.h>
47 #include <sys/dsl_prop.h>
48 #include <sys/dmu_zfetch.h>
49 #include <sys/zfs_ioctl.h>
50 #include <sys/zap.h>
51 #include <sys/zio_checksum.h>
52 #include <sys/zio_compress.h>
53 #include <sys/sa.h>
54 #include <sys/zfeature.h>
55 #include <sys/abd.h>
56 #include <sys/brt.h>
57 #include <sys/trace_zfs.h>
58 #include <sys/zfs_racct.h>
59 #include <sys/zfs_rlock.h>
60 #ifdef _KERNEL
61 #include <sys/vmsystm.h>
62 #include <sys/zfs_znode.h>
63 #endif
64
65 /*
66 * Enable/disable nopwrite feature.
67 */
68 static int zfs_nopwrite_enabled = 1;
69
70 /*
71 * Tunable to control percentage of dirtied L1 blocks from frees allowed into
72 * one TXG. After this threshold is crossed, additional dirty blocks from frees
73 * will wait until the next TXG.
74 * A value of zero will disable this throttle.
75 */
76 static uint_t zfs_per_txg_dirty_frees_percent = 30;
77
78 /*
79 * Enable/disable forcing txg sync when dirty checking for holes with lseek().
80 * By default this is enabled to ensure accurate hole reporting, it can result
81 * in a significant performance penalty for lseek(SEEK_HOLE) heavy workloads.
82 * Disabling this option will result in holes never being reported in dirty
83 * files which is always safe.
84 */
85 static int zfs_dmu_offset_next_sync = 1;
86
87 /*
88 * Limit the amount we can prefetch with one call to this amount. This
89 * helps to limit the amount of memory that can be used by prefetching.
90 * Larger objects should be prefetched a bit at a time.
91 */
92 #ifdef _ILP32
93 uint_t dmu_prefetch_max = 8 * 1024 * 1024;
94 #else
95 uint_t dmu_prefetch_max = 8 * SPA_MAXBLOCKSIZE;
96 #endif
97
98 const dmu_object_type_info_t dmu_ot[DMU_OT_NUMTYPES] = {
99 {DMU_BSWAP_UINT8, TRUE, FALSE, FALSE, "unallocated" },
100 {DMU_BSWAP_ZAP, TRUE, TRUE, FALSE, "object directory" },
101 {DMU_BSWAP_UINT64, TRUE, TRUE, FALSE, "object array" },
102 {DMU_BSWAP_UINT8, TRUE, FALSE, FALSE, "packed nvlist" },
103 {DMU_BSWAP_UINT64, TRUE, FALSE, FALSE, "packed nvlist size" },
104 {DMU_BSWAP_UINT64, TRUE, FALSE, FALSE, "bpobj" },
105 {DMU_BSWAP_UINT64, TRUE, FALSE, FALSE, "bpobj header" },
106 {DMU_BSWAP_UINT64, TRUE, FALSE, FALSE, "SPA space map header" },
107 {DMU_BSWAP_UINT64, TRUE, FALSE, FALSE, "SPA space map" },
108 {DMU_BSWAP_UINT64, TRUE, FALSE, TRUE, "ZIL intent log" },
109 {DMU_BSWAP_DNODE, TRUE, FALSE, TRUE, "DMU dnode" },
110 {DMU_BSWAP_OBJSET, TRUE, TRUE, FALSE, "DMU objset" },
111 {DMU_BSWAP_UINT64, TRUE, TRUE, FALSE, "DSL directory" },
112 {DMU_BSWAP_ZAP, TRUE, TRUE, FALSE, "DSL directory child map"},
113 {DMU_BSWAP_ZAP, TRUE, TRUE, FALSE, "DSL dataset snap map" },
114 {DMU_BSWAP_ZAP, TRUE, TRUE, FALSE, "DSL props" },
115 {DMU_BSWAP_UINT64, TRUE, TRUE, FALSE, "DSL dataset" },
116 {DMU_BSWAP_ZNODE, TRUE, FALSE, FALSE, "ZFS znode" },
117 {DMU_BSWAP_OLDACL, TRUE, FALSE, TRUE, "ZFS V0 ACL" },
118 {DMU_BSWAP_UINT8, FALSE, FALSE, TRUE, "ZFS plain file" },
119 {DMU_BSWAP_ZAP, TRUE, FALSE, TRUE, "ZFS directory" },
120 {DMU_BSWAP_ZAP, TRUE, FALSE, FALSE, "ZFS master node" },
121 {DMU_BSWAP_ZAP, TRUE, FALSE, TRUE, "ZFS delete queue" },
122 {DMU_BSWAP_UINT8, FALSE, FALSE, TRUE, "zvol object" },
123 {DMU_BSWAP_ZAP, TRUE, FALSE, FALSE, "zvol prop" },
124 {DMU_BSWAP_UINT8, FALSE, FALSE, TRUE, "other uint8[]" },
125 {DMU_BSWAP_UINT64, FALSE, FALSE, TRUE, "other uint64[]" },
126 {DMU_BSWAP_ZAP, TRUE, FALSE, FALSE, "other ZAP" },
127 {DMU_BSWAP_ZAP, TRUE, FALSE, FALSE, "persistent error log" },
128 {DMU_BSWAP_UINT8, TRUE, FALSE, FALSE, "SPA history" },
129 {DMU_BSWAP_UINT64, TRUE, FALSE, FALSE, "SPA history offsets" },
130 {DMU_BSWAP_ZAP, TRUE, TRUE, FALSE, "Pool properties" },
131 {DMU_BSWAP_ZAP, TRUE, TRUE, FALSE, "DSL permissions" },
132 {DMU_BSWAP_ACL, TRUE, FALSE, TRUE, "ZFS ACL" },
133 {DMU_BSWAP_UINT8, TRUE, FALSE, TRUE, "ZFS SYSACL" },
134 {DMU_BSWAP_UINT8, TRUE, FALSE, TRUE, "FUID table" },
135 {DMU_BSWAP_UINT64, TRUE, FALSE, FALSE, "FUID table size" },
136 {DMU_BSWAP_ZAP, TRUE, TRUE, FALSE, "DSL dataset next clones"},
137 {DMU_BSWAP_ZAP, TRUE, FALSE, FALSE, "scan work queue" },
138 {DMU_BSWAP_ZAP, TRUE, FALSE, TRUE, "ZFS user/group/project used" },
139 {DMU_BSWAP_ZAP, TRUE, FALSE, TRUE, "ZFS user/group/project quota"},
140 {DMU_BSWAP_ZAP, TRUE, TRUE, FALSE, "snapshot refcount tags"},
141 {DMU_BSWAP_ZAP, TRUE, FALSE, FALSE, "DDT ZAP algorithm" },
142 {DMU_BSWAP_ZAP, TRUE, FALSE, FALSE, "DDT statistics" },
143 {DMU_BSWAP_UINT8, TRUE, FALSE, TRUE, "System attributes" },
144 {DMU_BSWAP_ZAP, TRUE, FALSE, TRUE, "SA master node" },
145 {DMU_BSWAP_ZAP, TRUE, FALSE, TRUE, "SA attr registration" },
146 {DMU_BSWAP_ZAP, TRUE, FALSE, TRUE, "SA attr layouts" },
147 {DMU_BSWAP_ZAP, TRUE, FALSE, FALSE, "scan translations" },
148 {DMU_BSWAP_UINT8, FALSE, FALSE, TRUE, "deduplicated block" },
149 {DMU_BSWAP_ZAP, TRUE, TRUE, FALSE, "DSL deadlist map" },
150 {DMU_BSWAP_UINT64, TRUE, TRUE, FALSE, "DSL deadlist map hdr" },
151 {DMU_BSWAP_ZAP, TRUE, TRUE, FALSE, "DSL dir clones" },
152 {DMU_BSWAP_UINT64, TRUE, FALSE, FALSE, "bpobj subobj" }
153 };
154
155 dmu_object_byteswap_info_t dmu_ot_byteswap[DMU_BSWAP_NUMFUNCS] = {
156 { byteswap_uint8_array, "uint8" },
157 { byteswap_uint16_array, "uint16" },
158 { byteswap_uint32_array, "uint32" },
159 { byteswap_uint64_array, "uint64" },
160 { zap_byteswap, "zap" },
161 { dnode_buf_byteswap, "dnode" },
162 { dmu_objset_byteswap, "objset" },
163 { zfs_znode_byteswap, "znode" },
164 { zfs_oldacl_byteswap, "oldacl" },
165 { zfs_acl_byteswap, "acl" }
166 };
167
168 int
dmu_buf_hold_noread_by_dnode(dnode_t * dn,uint64_t offset,const void * tag,dmu_buf_t ** dbp)169 dmu_buf_hold_noread_by_dnode(dnode_t *dn, uint64_t offset,
170 const void *tag, dmu_buf_t **dbp)
171 {
172 uint64_t blkid;
173 dmu_buf_impl_t *db;
174
175 rw_enter(&dn->dn_struct_rwlock, RW_READER);
176 blkid = dbuf_whichblock(dn, 0, offset);
177 db = dbuf_hold(dn, blkid, tag);
178 rw_exit(&dn->dn_struct_rwlock);
179
180 if (db == NULL) {
181 *dbp = NULL;
182 return (SET_ERROR(EIO));
183 }
184
185 *dbp = &db->db;
186 return (0);
187 }
188
189 int
dmu_buf_hold_noread(objset_t * os,uint64_t object,uint64_t offset,const void * tag,dmu_buf_t ** dbp)190 dmu_buf_hold_noread(objset_t *os, uint64_t object, uint64_t offset,
191 const void *tag, dmu_buf_t **dbp)
192 {
193 dnode_t *dn;
194 uint64_t blkid;
195 dmu_buf_impl_t *db;
196 int err;
197
198 err = dnode_hold(os, object, FTAG, &dn);
199 if (err)
200 return (err);
201 rw_enter(&dn->dn_struct_rwlock, RW_READER);
202 blkid = dbuf_whichblock(dn, 0, offset);
203 db = dbuf_hold(dn, blkid, tag);
204 rw_exit(&dn->dn_struct_rwlock);
205 dnode_rele(dn, FTAG);
206
207 if (db == NULL) {
208 *dbp = NULL;
209 return (SET_ERROR(EIO));
210 }
211
212 *dbp = &db->db;
213 return (err);
214 }
215
216 int
dmu_buf_hold_by_dnode(dnode_t * dn,uint64_t offset,const void * tag,dmu_buf_t ** dbp,int flags)217 dmu_buf_hold_by_dnode(dnode_t *dn, uint64_t offset,
218 const void *tag, dmu_buf_t **dbp, int flags)
219 {
220 int err;
221 int db_flags = DB_RF_CANFAIL;
222
223 if (flags & DMU_READ_NO_PREFETCH)
224 db_flags |= DB_RF_NOPREFETCH;
225 if (flags & DMU_READ_NO_DECRYPT)
226 db_flags |= DB_RF_NO_DECRYPT;
227
228 err = dmu_buf_hold_noread_by_dnode(dn, offset, tag, dbp);
229 if (err == 0) {
230 dmu_buf_impl_t *db = (dmu_buf_impl_t *)(*dbp);
231 err = dbuf_read(db, NULL, db_flags);
232 if (err != 0) {
233 dbuf_rele(db, tag);
234 *dbp = NULL;
235 }
236 }
237
238 return (err);
239 }
240
241 int
dmu_buf_hold(objset_t * os,uint64_t object,uint64_t offset,const void * tag,dmu_buf_t ** dbp,int flags)242 dmu_buf_hold(objset_t *os, uint64_t object, uint64_t offset,
243 const void *tag, dmu_buf_t **dbp, int flags)
244 {
245 int err;
246 int db_flags = DB_RF_CANFAIL;
247
248 if (flags & DMU_READ_NO_PREFETCH)
249 db_flags |= DB_RF_NOPREFETCH;
250 if (flags & DMU_READ_NO_DECRYPT)
251 db_flags |= DB_RF_NO_DECRYPT;
252
253 err = dmu_buf_hold_noread(os, object, offset, tag, dbp);
254 if (err == 0) {
255 dmu_buf_impl_t *db = (dmu_buf_impl_t *)(*dbp);
256 err = dbuf_read(db, NULL, db_flags);
257 if (err != 0) {
258 dbuf_rele(db, tag);
259 *dbp = NULL;
260 }
261 }
262
263 return (err);
264 }
265
266 int
dmu_bonus_max(void)267 dmu_bonus_max(void)
268 {
269 return (DN_OLD_MAX_BONUSLEN);
270 }
271
272 int
dmu_set_bonus(dmu_buf_t * db_fake,int newsize,dmu_tx_t * tx)273 dmu_set_bonus(dmu_buf_t *db_fake, int newsize, dmu_tx_t *tx)
274 {
275 dmu_buf_impl_t *db = (dmu_buf_impl_t *)db_fake;
276 dnode_t *dn;
277 int error;
278
279 DB_DNODE_ENTER(db);
280 dn = DB_DNODE(db);
281
282 if (dn->dn_bonus != db) {
283 error = SET_ERROR(EINVAL);
284 } else if (newsize < 0 || newsize > db_fake->db_size) {
285 error = SET_ERROR(EINVAL);
286 } else {
287 dnode_setbonuslen(dn, newsize, tx);
288 error = 0;
289 }
290
291 DB_DNODE_EXIT(db);
292 return (error);
293 }
294
295 int
dmu_set_bonustype(dmu_buf_t * db_fake,dmu_object_type_t type,dmu_tx_t * tx)296 dmu_set_bonustype(dmu_buf_t *db_fake, dmu_object_type_t type, dmu_tx_t *tx)
297 {
298 dmu_buf_impl_t *db = (dmu_buf_impl_t *)db_fake;
299 dnode_t *dn;
300 int error;
301
302 DB_DNODE_ENTER(db);
303 dn = DB_DNODE(db);
304
305 if (!DMU_OT_IS_VALID(type)) {
306 error = SET_ERROR(EINVAL);
307 } else if (dn->dn_bonus != db) {
308 error = SET_ERROR(EINVAL);
309 } else {
310 dnode_setbonus_type(dn, type, tx);
311 error = 0;
312 }
313
314 DB_DNODE_EXIT(db);
315 return (error);
316 }
317
318 dmu_object_type_t
dmu_get_bonustype(dmu_buf_t * db_fake)319 dmu_get_bonustype(dmu_buf_t *db_fake)
320 {
321 dmu_buf_impl_t *db = (dmu_buf_impl_t *)db_fake;
322 dnode_t *dn;
323 dmu_object_type_t type;
324
325 DB_DNODE_ENTER(db);
326 dn = DB_DNODE(db);
327 type = dn->dn_bonustype;
328 DB_DNODE_EXIT(db);
329
330 return (type);
331 }
332
333 int
dmu_rm_spill(objset_t * os,uint64_t object,dmu_tx_t * tx)334 dmu_rm_spill(objset_t *os, uint64_t object, dmu_tx_t *tx)
335 {
336 dnode_t *dn;
337 int error;
338
339 error = dnode_hold(os, object, FTAG, &dn);
340 dbuf_rm_spill(dn, tx);
341 rw_enter(&dn->dn_struct_rwlock, RW_WRITER);
342 dnode_rm_spill(dn, tx);
343 rw_exit(&dn->dn_struct_rwlock);
344 dnode_rele(dn, FTAG);
345 return (error);
346 }
347
348 /*
349 * Lookup and hold the bonus buffer for the provided dnode. If the dnode
350 * has not yet been allocated a new bonus dbuf a will be allocated.
351 * Returns ENOENT, EIO, or 0.
352 */
dmu_bonus_hold_by_dnode(dnode_t * dn,const void * tag,dmu_buf_t ** dbp,uint32_t flags)353 int dmu_bonus_hold_by_dnode(dnode_t *dn, const void *tag, dmu_buf_t **dbp,
354 uint32_t flags)
355 {
356 dmu_buf_impl_t *db;
357 int error;
358 uint32_t db_flags = DB_RF_MUST_SUCCEED;
359
360 if (flags & DMU_READ_NO_PREFETCH)
361 db_flags |= DB_RF_NOPREFETCH;
362 if (flags & DMU_READ_NO_DECRYPT)
363 db_flags |= DB_RF_NO_DECRYPT;
364
365 rw_enter(&dn->dn_struct_rwlock, RW_READER);
366 if (dn->dn_bonus == NULL) {
367 if (!rw_tryupgrade(&dn->dn_struct_rwlock)) {
368 rw_exit(&dn->dn_struct_rwlock);
369 rw_enter(&dn->dn_struct_rwlock, RW_WRITER);
370 }
371 if (dn->dn_bonus == NULL)
372 dbuf_create_bonus(dn);
373 }
374 db = dn->dn_bonus;
375
376 /* as long as the bonus buf is held, the dnode will be held */
377 if (zfs_refcount_add(&db->db_holds, tag) == 1) {
378 VERIFY(dnode_add_ref(dn, db));
379 atomic_inc_32(&dn->dn_dbufs_count);
380 }
381
382 /*
383 * Wait to drop dn_struct_rwlock until after adding the bonus dbuf's
384 * hold and incrementing the dbuf count to ensure that dnode_move() sees
385 * a dnode hold for every dbuf.
386 */
387 rw_exit(&dn->dn_struct_rwlock);
388
389 error = dbuf_read(db, NULL, db_flags);
390 if (error) {
391 dnode_evict_bonus(dn);
392 dbuf_rele(db, tag);
393 *dbp = NULL;
394 return (error);
395 }
396
397 *dbp = &db->db;
398 return (0);
399 }
400
401 int
dmu_bonus_hold(objset_t * os,uint64_t object,const void * tag,dmu_buf_t ** dbp)402 dmu_bonus_hold(objset_t *os, uint64_t object, const void *tag, dmu_buf_t **dbp)
403 {
404 dnode_t *dn;
405 int error;
406
407 error = dnode_hold(os, object, FTAG, &dn);
408 if (error)
409 return (error);
410
411 error = dmu_bonus_hold_by_dnode(dn, tag, dbp, DMU_READ_NO_PREFETCH);
412 dnode_rele(dn, FTAG);
413
414 return (error);
415 }
416
417 /*
418 * returns ENOENT, EIO, or 0.
419 *
420 * This interface will allocate a blank spill dbuf when a spill blk
421 * doesn't already exist on the dnode.
422 *
423 * if you only want to find an already existing spill db, then
424 * dmu_spill_hold_existing() should be used.
425 */
426 int
dmu_spill_hold_by_dnode(dnode_t * dn,uint32_t flags,const void * tag,dmu_buf_t ** dbp)427 dmu_spill_hold_by_dnode(dnode_t *dn, uint32_t flags, const void *tag,
428 dmu_buf_t **dbp)
429 {
430 dmu_buf_impl_t *db = NULL;
431 int err;
432
433 if ((flags & DB_RF_HAVESTRUCT) == 0)
434 rw_enter(&dn->dn_struct_rwlock, RW_READER);
435
436 db = dbuf_hold(dn, DMU_SPILL_BLKID, tag);
437
438 if ((flags & DB_RF_HAVESTRUCT) == 0)
439 rw_exit(&dn->dn_struct_rwlock);
440
441 if (db == NULL) {
442 *dbp = NULL;
443 return (SET_ERROR(EIO));
444 }
445 err = dbuf_read(db, NULL, flags);
446 if (err == 0)
447 *dbp = &db->db;
448 else {
449 dbuf_rele(db, tag);
450 *dbp = NULL;
451 }
452 return (err);
453 }
454
455 int
dmu_spill_hold_existing(dmu_buf_t * bonus,const void * tag,dmu_buf_t ** dbp)456 dmu_spill_hold_existing(dmu_buf_t *bonus, const void *tag, dmu_buf_t **dbp)
457 {
458 dmu_buf_impl_t *db = (dmu_buf_impl_t *)bonus;
459 dnode_t *dn;
460 int err;
461
462 DB_DNODE_ENTER(db);
463 dn = DB_DNODE(db);
464
465 if (spa_version(dn->dn_objset->os_spa) < SPA_VERSION_SA) {
466 err = SET_ERROR(EINVAL);
467 } else {
468 rw_enter(&dn->dn_struct_rwlock, RW_READER);
469
470 if (!dn->dn_have_spill) {
471 err = SET_ERROR(ENOENT);
472 } else {
473 err = dmu_spill_hold_by_dnode(dn,
474 DB_RF_HAVESTRUCT | DB_RF_CANFAIL, tag, dbp);
475 }
476
477 rw_exit(&dn->dn_struct_rwlock);
478 }
479
480 DB_DNODE_EXIT(db);
481 return (err);
482 }
483
484 int
dmu_spill_hold_by_bonus(dmu_buf_t * bonus,uint32_t flags,const void * tag,dmu_buf_t ** dbp)485 dmu_spill_hold_by_bonus(dmu_buf_t *bonus, uint32_t flags, const void *tag,
486 dmu_buf_t **dbp)
487 {
488 dmu_buf_impl_t *db = (dmu_buf_impl_t *)bonus;
489 dnode_t *dn;
490 int err;
491 uint32_t db_flags = DB_RF_CANFAIL;
492
493 if (flags & DMU_READ_NO_DECRYPT)
494 db_flags |= DB_RF_NO_DECRYPT;
495
496 DB_DNODE_ENTER(db);
497 dn = DB_DNODE(db);
498 err = dmu_spill_hold_by_dnode(dn, db_flags, tag, dbp);
499 DB_DNODE_EXIT(db);
500
501 return (err);
502 }
503
504 /*
505 * Note: longer-term, we should modify all of the dmu_buf_*() interfaces
506 * to take a held dnode rather than <os, object> -- the lookup is wasteful,
507 * and can induce severe lock contention when writing to several files
508 * whose dnodes are in the same block.
509 */
510 int
dmu_buf_hold_array_by_dnode(dnode_t * dn,uint64_t offset,uint64_t length,boolean_t read,const void * tag,int * numbufsp,dmu_buf_t *** dbpp,uint32_t flags)511 dmu_buf_hold_array_by_dnode(dnode_t *dn, uint64_t offset, uint64_t length,
512 boolean_t read, const void *tag, int *numbufsp, dmu_buf_t ***dbpp,
513 uint32_t flags)
514 {
515 dmu_buf_t **dbp;
516 zstream_t *zs = NULL;
517 uint64_t blkid, nblks, i;
518 uint32_t dbuf_flags;
519 int err;
520 zio_t *zio = NULL;
521 boolean_t missed = B_FALSE;
522
523 ASSERT(!read || length <= DMU_MAX_ACCESS);
524
525 /*
526 * Note: We directly notify the prefetch code of this read, so that
527 * we can tell it about the multi-block read. dbuf_read() only knows
528 * about the one block it is accessing.
529 */
530 dbuf_flags = DB_RF_CANFAIL | DB_RF_NEVERWAIT | DB_RF_HAVESTRUCT |
531 DB_RF_NOPREFETCH;
532
533 if ((flags & DMU_READ_NO_DECRYPT) != 0)
534 dbuf_flags |= DB_RF_NO_DECRYPT;
535
536 rw_enter(&dn->dn_struct_rwlock, RW_READER);
537 if (dn->dn_datablkshift) {
538 int blkshift = dn->dn_datablkshift;
539 nblks = (P2ROUNDUP(offset + length, 1ULL << blkshift) -
540 P2ALIGN_TYPED(offset, 1ULL << blkshift, uint64_t))
541 >> blkshift;
542 } else {
543 if (offset + length > dn->dn_datablksz) {
544 zfs_panic_recover("zfs: accessing past end of object "
545 "%llx/%llx (size=%u access=%llu+%llu)",
546 (longlong_t)dn->dn_objset->
547 os_dsl_dataset->ds_object,
548 (longlong_t)dn->dn_object, dn->dn_datablksz,
549 (longlong_t)offset, (longlong_t)length);
550 rw_exit(&dn->dn_struct_rwlock);
551 return (SET_ERROR(EIO));
552 }
553 nblks = 1;
554 }
555 dbp = kmem_zalloc(sizeof (dmu_buf_t *) * nblks, KM_SLEEP);
556
557 if (read)
558 zio = zio_root(dn->dn_objset->os_spa, NULL, NULL,
559 ZIO_FLAG_CANFAIL);
560 blkid = dbuf_whichblock(dn, 0, offset);
561 if ((flags & DMU_READ_NO_PREFETCH) == 0) {
562 /*
563 * Prepare the zfetch before initiating the demand reads, so
564 * that if multiple threads block on same indirect block, we
565 * base predictions on the original less racy request order.
566 */
567 zs = dmu_zfetch_prepare(&dn->dn_zfetch, blkid, nblks, read,
568 B_TRUE);
569 }
570 for (i = 0; i < nblks; i++) {
571 dmu_buf_impl_t *db = dbuf_hold(dn, blkid + i, tag);
572 if (db == NULL) {
573 if (zs) {
574 dmu_zfetch_run(&dn->dn_zfetch, zs, missed,
575 B_TRUE);
576 }
577 rw_exit(&dn->dn_struct_rwlock);
578 dmu_buf_rele_array(dbp, nblks, tag);
579 if (read)
580 zio_nowait(zio);
581 return (SET_ERROR(EIO));
582 }
583
584 /*
585 * Initiate async demand data read.
586 * We check the db_state after calling dbuf_read() because
587 * (1) dbuf_read() may change the state to CACHED due to a
588 * hit in the ARC, and (2) on a cache miss, a child will
589 * have been added to "zio" but not yet completed, so the
590 * state will not yet be CACHED.
591 */
592 if (read) {
593 if (i == nblks - 1 && blkid + i < dn->dn_maxblkid &&
594 offset + length < db->db.db_offset +
595 db->db.db_size) {
596 if (offset <= db->db.db_offset)
597 dbuf_flags |= DB_RF_PARTIAL_FIRST;
598 else
599 dbuf_flags |= DB_RF_PARTIAL_MORE;
600 }
601 (void) dbuf_read(db, zio, dbuf_flags);
602 if (db->db_state != DB_CACHED)
603 missed = B_TRUE;
604 }
605 dbp[i] = &db->db;
606 }
607
608 if (!read)
609 zfs_racct_write(length, nblks);
610
611 if (zs)
612 dmu_zfetch_run(&dn->dn_zfetch, zs, missed, B_TRUE);
613 rw_exit(&dn->dn_struct_rwlock);
614
615 if (read) {
616 /* wait for async read i/o */
617 err = zio_wait(zio);
618 if (err) {
619 dmu_buf_rele_array(dbp, nblks, tag);
620 return (err);
621 }
622
623 /* wait for other io to complete */
624 for (i = 0; i < nblks; i++) {
625 dmu_buf_impl_t *db = (dmu_buf_impl_t *)dbp[i];
626 mutex_enter(&db->db_mtx);
627 while (db->db_state == DB_READ ||
628 db->db_state == DB_FILL)
629 cv_wait(&db->db_changed, &db->db_mtx);
630 if (db->db_state == DB_UNCACHED)
631 err = SET_ERROR(EIO);
632 mutex_exit(&db->db_mtx);
633 if (err) {
634 dmu_buf_rele_array(dbp, nblks, tag);
635 return (err);
636 }
637 }
638 }
639
640 *numbufsp = nblks;
641 *dbpp = dbp;
642 return (0);
643 }
644
645 int
dmu_buf_hold_array(objset_t * os,uint64_t object,uint64_t offset,uint64_t length,int read,const void * tag,int * numbufsp,dmu_buf_t *** dbpp)646 dmu_buf_hold_array(objset_t *os, uint64_t object, uint64_t offset,
647 uint64_t length, int read, const void *tag, int *numbufsp,
648 dmu_buf_t ***dbpp)
649 {
650 dnode_t *dn;
651 int err;
652
653 err = dnode_hold(os, object, FTAG, &dn);
654 if (err)
655 return (err);
656
657 err = dmu_buf_hold_array_by_dnode(dn, offset, length, read, tag,
658 numbufsp, dbpp, DMU_READ_PREFETCH);
659
660 dnode_rele(dn, FTAG);
661
662 return (err);
663 }
664
665 int
dmu_buf_hold_array_by_bonus(dmu_buf_t * db_fake,uint64_t offset,uint64_t length,boolean_t read,const void * tag,int * numbufsp,dmu_buf_t *** dbpp)666 dmu_buf_hold_array_by_bonus(dmu_buf_t *db_fake, uint64_t offset,
667 uint64_t length, boolean_t read, const void *tag, int *numbufsp,
668 dmu_buf_t ***dbpp)
669 {
670 dmu_buf_impl_t *db = (dmu_buf_impl_t *)db_fake;
671 dnode_t *dn;
672 int err;
673
674 DB_DNODE_ENTER(db);
675 dn = DB_DNODE(db);
676 err = dmu_buf_hold_array_by_dnode(dn, offset, length, read, tag,
677 numbufsp, dbpp, DMU_READ_PREFETCH);
678 DB_DNODE_EXIT(db);
679
680 return (err);
681 }
682
683 void
dmu_buf_rele_array(dmu_buf_t ** dbp_fake,int numbufs,const void * tag)684 dmu_buf_rele_array(dmu_buf_t **dbp_fake, int numbufs, const void *tag)
685 {
686 int i;
687 dmu_buf_impl_t **dbp = (dmu_buf_impl_t **)dbp_fake;
688
689 if (numbufs == 0)
690 return;
691
692 for (i = 0; i < numbufs; i++) {
693 if (dbp[i])
694 dbuf_rele(dbp[i], tag);
695 }
696
697 kmem_free(dbp, sizeof (dmu_buf_t *) * numbufs);
698 }
699
700 /*
701 * Issue prefetch I/Os for the given blocks. If level is greater than 0, the
702 * indirect blocks prefetched will be those that point to the blocks containing
703 * the data starting at offset, and continuing to offset + len. If the range
704 * it too long, prefetch the first dmu_prefetch_max bytes as requested, while
705 * for the rest only a higher level, also fitting within dmu_prefetch_max. It
706 * should primarily help random reads, since for long sequential reads there is
707 * a speculative prefetcher.
708 *
709 * Note that if the indirect blocks above the blocks being prefetched are not
710 * in cache, they will be asynchronously read in. Dnode read by dnode_hold()
711 * is currently synchronous.
712 */
713 void
dmu_prefetch(objset_t * os,uint64_t object,int64_t level,uint64_t offset,uint64_t len,zio_priority_t pri)714 dmu_prefetch(objset_t *os, uint64_t object, int64_t level, uint64_t offset,
715 uint64_t len, zio_priority_t pri)
716 {
717 dnode_t *dn;
718
719 if (dmu_prefetch_max == 0 || len == 0) {
720 dmu_prefetch_dnode(os, object, pri);
721 return;
722 }
723
724 if (dnode_hold(os, object, FTAG, &dn) != 0)
725 return;
726
727 dmu_prefetch_by_dnode(dn, level, offset, len, pri);
728
729 dnode_rele(dn, FTAG);
730 }
731
732 void
dmu_prefetch_by_dnode(dnode_t * dn,int64_t level,uint64_t offset,uint64_t len,zio_priority_t pri)733 dmu_prefetch_by_dnode(dnode_t *dn, int64_t level, uint64_t offset,
734 uint64_t len, zio_priority_t pri)
735 {
736 int64_t level2 = level;
737 uint64_t start, end, start2, end2;
738
739 /*
740 * Depending on len we may do two prefetches: blocks [start, end) at
741 * level, and following blocks [start2, end2) at higher level2.
742 */
743 rw_enter(&dn->dn_struct_rwlock, RW_READER);
744 if (dn->dn_datablkshift != 0) {
745 /*
746 * The object has multiple blocks. Calculate the full range
747 * of blocks [start, end2) and then split it into two parts,
748 * so that the first [start, end) fits into dmu_prefetch_max.
749 */
750 start = dbuf_whichblock(dn, level, offset);
751 end2 = dbuf_whichblock(dn, level, offset + len - 1) + 1;
752 uint8_t ibs = dn->dn_indblkshift;
753 uint8_t bs = (level == 0) ? dn->dn_datablkshift : ibs;
754 uint_t limit = P2ROUNDUP(dmu_prefetch_max, 1 << bs) >> bs;
755 start2 = end = MIN(end2, start + limit);
756
757 /*
758 * Find level2 where [start2, end2) fits into dmu_prefetch_max.
759 */
760 uint8_t ibps = ibs - SPA_BLKPTRSHIFT;
761 limit = P2ROUNDUP(dmu_prefetch_max, 1 << ibs) >> ibs;
762 do {
763 level2++;
764 start2 = P2ROUNDUP(start2, 1 << ibps) >> ibps;
765 end2 = P2ROUNDUP(end2, 1 << ibps) >> ibps;
766 } while (end2 - start2 > limit);
767 } else {
768 /* There is only one block. Prefetch it or nothing. */
769 start = start2 = end2 = 0;
770 end = start + (level == 0 && offset < dn->dn_datablksz);
771 }
772
773 for (uint64_t i = start; i < end; i++)
774 dbuf_prefetch(dn, level, i, pri, 0);
775 for (uint64_t i = start2; i < end2; i++)
776 dbuf_prefetch(dn, level2, i, pri, 0);
777 rw_exit(&dn->dn_struct_rwlock);
778 }
779
780 /*
781 * Issue prefetch I/Os for the given object's dnode.
782 */
783 void
dmu_prefetch_dnode(objset_t * os,uint64_t object,zio_priority_t pri)784 dmu_prefetch_dnode(objset_t *os, uint64_t object, zio_priority_t pri)
785 {
786 if (object == 0 || object >= DN_MAX_OBJECT)
787 return;
788
789 dnode_t *dn = DMU_META_DNODE(os);
790 rw_enter(&dn->dn_struct_rwlock, RW_READER);
791 uint64_t blkid = dbuf_whichblock(dn, 0, object * sizeof (dnode_phys_t));
792 dbuf_prefetch(dn, 0, blkid, pri, 0);
793 rw_exit(&dn->dn_struct_rwlock);
794 }
795
796 /*
797 * Get the next "chunk" of file data to free. We traverse the file from
798 * the end so that the file gets shorter over time (if we crashes in the
799 * middle, this will leave us in a better state). We find allocated file
800 * data by simply searching the allocated level 1 indirects.
801 *
802 * On input, *start should be the first offset that does not need to be
803 * freed (e.g. "offset + length"). On return, *start will be the first
804 * offset that should be freed and l1blks is set to the number of level 1
805 * indirect blocks found within the chunk.
806 */
807 static int
get_next_chunk(dnode_t * dn,uint64_t * start,uint64_t minimum,uint64_t * l1blks)808 get_next_chunk(dnode_t *dn, uint64_t *start, uint64_t minimum, uint64_t *l1blks)
809 {
810 uint64_t blks;
811 uint64_t maxblks = DMU_MAX_ACCESS >> (dn->dn_indblkshift + 1);
812 /* bytes of data covered by a level-1 indirect block */
813 uint64_t iblkrange = (uint64_t)dn->dn_datablksz *
814 EPB(dn->dn_indblkshift, SPA_BLKPTRSHIFT);
815
816 ASSERT3U(minimum, <=, *start);
817
818 /* dn_nlevels == 1 means we don't have any L1 blocks */
819 if (dn->dn_nlevels <= 1) {
820 *l1blks = 0;
821 *start = minimum;
822 return (0);
823 }
824
825 /*
826 * Check if we can free the entire range assuming that all of the
827 * L1 blocks in this range have data. If we can, we use this
828 * worst case value as an estimate so we can avoid having to look
829 * at the object's actual data.
830 */
831 uint64_t total_l1blks =
832 (roundup(*start, iblkrange) - (minimum / iblkrange * iblkrange)) /
833 iblkrange;
834 if (total_l1blks <= maxblks) {
835 *l1blks = total_l1blks;
836 *start = minimum;
837 return (0);
838 }
839 ASSERT(ISP2(iblkrange));
840
841 for (blks = 0; *start > minimum && blks < maxblks; blks++) {
842 int err;
843
844 /*
845 * dnode_next_offset(BACKWARDS) will find an allocated L1
846 * indirect block at or before the input offset. We must
847 * decrement *start so that it is at the end of the region
848 * to search.
849 */
850 (*start)--;
851
852 err = dnode_next_offset(dn,
853 DNODE_FIND_BACKWARDS, start, 2, 1, 0);
854
855 /* if there are no indirect blocks before start, we are done */
856 if (err == ESRCH) {
857 *start = minimum;
858 break;
859 } else if (err != 0) {
860 *l1blks = blks;
861 return (err);
862 }
863
864 /* set start to the beginning of this L1 indirect */
865 *start = P2ALIGN_TYPED(*start, iblkrange, uint64_t);
866 }
867 if (*start < minimum)
868 *start = minimum;
869 *l1blks = blks;
870
871 return (0);
872 }
873
874 /*
875 * If this objset is of type OST_ZFS return true if vfs's unmounted flag is set,
876 * otherwise return false.
877 * Used below in dmu_free_long_range_impl() to enable abort when unmounting
878 */
879 static boolean_t
dmu_objset_zfs_unmounting(objset_t * os)880 dmu_objset_zfs_unmounting(objset_t *os)
881 {
882 #ifdef _KERNEL
883 if (dmu_objset_type(os) == DMU_OST_ZFS)
884 return (zfs_get_vfs_flag_unmounted(os));
885 #else
886 (void) os;
887 #endif
888 return (B_FALSE);
889 }
890
891 static int
dmu_free_long_range_impl(objset_t * os,dnode_t * dn,uint64_t offset,uint64_t length)892 dmu_free_long_range_impl(objset_t *os, dnode_t *dn, uint64_t offset,
893 uint64_t length)
894 {
895 uint64_t object_size;
896 int err;
897 uint64_t dirty_frees_threshold;
898 dsl_pool_t *dp = dmu_objset_pool(os);
899
900 if (dn == NULL)
901 return (SET_ERROR(EINVAL));
902
903 object_size = (dn->dn_maxblkid + 1) * dn->dn_datablksz;
904 if (offset >= object_size)
905 return (0);
906
907 if (zfs_per_txg_dirty_frees_percent <= 100)
908 dirty_frees_threshold =
909 zfs_per_txg_dirty_frees_percent * zfs_dirty_data_max / 100;
910 else
911 dirty_frees_threshold = zfs_dirty_data_max / 20;
912
913 if (length == DMU_OBJECT_END || offset + length > object_size)
914 length = object_size - offset;
915
916 while (length != 0) {
917 uint64_t chunk_end, chunk_begin, chunk_len;
918 uint64_t l1blks;
919 dmu_tx_t *tx;
920
921 if (dmu_objset_zfs_unmounting(dn->dn_objset))
922 return (SET_ERROR(EINTR));
923
924 chunk_end = chunk_begin = offset + length;
925
926 /* move chunk_begin backwards to the beginning of this chunk */
927 err = get_next_chunk(dn, &chunk_begin, offset, &l1blks);
928 if (err)
929 return (err);
930 ASSERT3U(chunk_begin, >=, offset);
931 ASSERT3U(chunk_begin, <=, chunk_end);
932
933 chunk_len = chunk_end - chunk_begin;
934
935 tx = dmu_tx_create(os);
936 dmu_tx_hold_free(tx, dn->dn_object, chunk_begin, chunk_len);
937
938 /*
939 * Mark this transaction as typically resulting in a net
940 * reduction in space used.
941 */
942 dmu_tx_mark_netfree(tx);
943 err = dmu_tx_assign(tx, TXG_WAIT);
944 if (err) {
945 dmu_tx_abort(tx);
946 return (err);
947 }
948
949 uint64_t txg = dmu_tx_get_txg(tx);
950
951 mutex_enter(&dp->dp_lock);
952 uint64_t long_free_dirty =
953 dp->dp_long_free_dirty_pertxg[txg & TXG_MASK];
954 mutex_exit(&dp->dp_lock);
955
956 /*
957 * To avoid filling up a TXG with just frees, wait for
958 * the next TXG to open before freeing more chunks if
959 * we have reached the threshold of frees.
960 */
961 if (dirty_frees_threshold != 0 &&
962 long_free_dirty >= dirty_frees_threshold) {
963 DMU_TX_STAT_BUMP(dmu_tx_dirty_frees_delay);
964 dmu_tx_commit(tx);
965 txg_wait_open(dp, 0, B_TRUE);
966 continue;
967 }
968
969 /*
970 * In order to prevent unnecessary write throttling, for each
971 * TXG, we track the cumulative size of L1 blocks being dirtied
972 * in dnode_free_range() below. We compare this number to a
973 * tunable threshold, past which we prevent new L1 dirty freeing
974 * blocks from being added into the open TXG. See
975 * dmu_free_long_range_impl() for details. The threshold
976 * prevents write throttle activation due to dirty freeing L1
977 * blocks taking up a large percentage of zfs_dirty_data_max.
978 */
979 mutex_enter(&dp->dp_lock);
980 dp->dp_long_free_dirty_pertxg[txg & TXG_MASK] +=
981 l1blks << dn->dn_indblkshift;
982 mutex_exit(&dp->dp_lock);
983 DTRACE_PROBE3(free__long__range,
984 uint64_t, long_free_dirty, uint64_t, chunk_len,
985 uint64_t, txg);
986 dnode_free_range(dn, chunk_begin, chunk_len, tx);
987
988 dmu_tx_commit(tx);
989
990 length -= chunk_len;
991 }
992 return (0);
993 }
994
995 int
dmu_free_long_range(objset_t * os,uint64_t object,uint64_t offset,uint64_t length)996 dmu_free_long_range(objset_t *os, uint64_t object,
997 uint64_t offset, uint64_t length)
998 {
999 dnode_t *dn;
1000 int err;
1001
1002 err = dnode_hold(os, object, FTAG, &dn);
1003 if (err != 0)
1004 return (err);
1005 err = dmu_free_long_range_impl(os, dn, offset, length);
1006
1007 /*
1008 * It is important to zero out the maxblkid when freeing the entire
1009 * file, so that (a) subsequent calls to dmu_free_long_range_impl()
1010 * will take the fast path, and (b) dnode_reallocate() can verify
1011 * that the entire file has been freed.
1012 */
1013 if (err == 0 && offset == 0 && length == DMU_OBJECT_END)
1014 dn->dn_maxblkid = 0;
1015
1016 dnode_rele(dn, FTAG);
1017 return (err);
1018 }
1019
1020 int
dmu_free_long_object(objset_t * os,uint64_t object)1021 dmu_free_long_object(objset_t *os, uint64_t object)
1022 {
1023 dmu_tx_t *tx;
1024 int err;
1025
1026 err = dmu_free_long_range(os, object, 0, DMU_OBJECT_END);
1027 if (err != 0)
1028 return (err);
1029
1030 tx = dmu_tx_create(os);
1031 dmu_tx_hold_bonus(tx, object);
1032 dmu_tx_hold_free(tx, object, 0, DMU_OBJECT_END);
1033 dmu_tx_mark_netfree(tx);
1034 err = dmu_tx_assign(tx, TXG_WAIT);
1035 if (err == 0) {
1036 err = dmu_object_free(os, object, tx);
1037 dmu_tx_commit(tx);
1038 } else {
1039 dmu_tx_abort(tx);
1040 }
1041
1042 return (err);
1043 }
1044
1045 int
dmu_free_range(objset_t * os,uint64_t object,uint64_t offset,uint64_t size,dmu_tx_t * tx)1046 dmu_free_range(objset_t *os, uint64_t object, uint64_t offset,
1047 uint64_t size, dmu_tx_t *tx)
1048 {
1049 dnode_t *dn;
1050 int err = dnode_hold(os, object, FTAG, &dn);
1051 if (err)
1052 return (err);
1053 ASSERT(offset < UINT64_MAX);
1054 ASSERT(size == DMU_OBJECT_END || size <= UINT64_MAX - offset);
1055 dnode_free_range(dn, offset, size, tx);
1056 dnode_rele(dn, FTAG);
1057 return (0);
1058 }
1059
1060 static int
dmu_read_impl(dnode_t * dn,uint64_t offset,uint64_t size,void * buf,uint32_t flags)1061 dmu_read_impl(dnode_t *dn, uint64_t offset, uint64_t size,
1062 void *buf, uint32_t flags)
1063 {
1064 dmu_buf_t **dbp;
1065 int numbufs, err = 0;
1066
1067 /*
1068 * Deal with odd block sizes, where there can't be data past the first
1069 * block. If we ever do the tail block optimization, we will need to
1070 * handle that here as well.
1071 */
1072 if (dn->dn_maxblkid == 0) {
1073 uint64_t newsz = offset > dn->dn_datablksz ? 0 :
1074 MIN(size, dn->dn_datablksz - offset);
1075 memset((char *)buf + newsz, 0, size - newsz);
1076 size = newsz;
1077 }
1078
1079 while (size > 0) {
1080 uint64_t mylen = MIN(size, DMU_MAX_ACCESS / 2);
1081 int i;
1082
1083 /*
1084 * NB: we could do this block-at-a-time, but it's nice
1085 * to be reading in parallel.
1086 */
1087 err = dmu_buf_hold_array_by_dnode(dn, offset, mylen,
1088 TRUE, FTAG, &numbufs, &dbp, flags);
1089 if (err)
1090 break;
1091
1092 for (i = 0; i < numbufs; i++) {
1093 uint64_t tocpy;
1094 int64_t bufoff;
1095 dmu_buf_t *db = dbp[i];
1096
1097 ASSERT(size > 0);
1098
1099 bufoff = offset - db->db_offset;
1100 tocpy = MIN(db->db_size - bufoff, size);
1101
1102 (void) memcpy(buf, (char *)db->db_data + bufoff, tocpy);
1103
1104 offset += tocpy;
1105 size -= tocpy;
1106 buf = (char *)buf + tocpy;
1107 }
1108 dmu_buf_rele_array(dbp, numbufs, FTAG);
1109 }
1110 return (err);
1111 }
1112
1113 int
dmu_read(objset_t * os,uint64_t object,uint64_t offset,uint64_t size,void * buf,uint32_t flags)1114 dmu_read(objset_t *os, uint64_t object, uint64_t offset, uint64_t size,
1115 void *buf, uint32_t flags)
1116 {
1117 dnode_t *dn;
1118 int err;
1119
1120 err = dnode_hold(os, object, FTAG, &dn);
1121 if (err != 0)
1122 return (err);
1123
1124 err = dmu_read_impl(dn, offset, size, buf, flags);
1125 dnode_rele(dn, FTAG);
1126 return (err);
1127 }
1128
1129 int
dmu_read_by_dnode(dnode_t * dn,uint64_t offset,uint64_t size,void * buf,uint32_t flags)1130 dmu_read_by_dnode(dnode_t *dn, uint64_t offset, uint64_t size, void *buf,
1131 uint32_t flags)
1132 {
1133 return (dmu_read_impl(dn, offset, size, buf, flags));
1134 }
1135
1136 static void
dmu_write_impl(dmu_buf_t ** dbp,int numbufs,uint64_t offset,uint64_t size,const void * buf,dmu_tx_t * tx)1137 dmu_write_impl(dmu_buf_t **dbp, int numbufs, uint64_t offset, uint64_t size,
1138 const void *buf, dmu_tx_t *tx)
1139 {
1140 int i;
1141
1142 for (i = 0; i < numbufs; i++) {
1143 uint64_t tocpy;
1144 int64_t bufoff;
1145 dmu_buf_t *db = dbp[i];
1146
1147 ASSERT(size > 0);
1148
1149 bufoff = offset - db->db_offset;
1150 tocpy = MIN(db->db_size - bufoff, size);
1151
1152 ASSERT(i == 0 || i == numbufs-1 || tocpy == db->db_size);
1153
1154 if (tocpy == db->db_size)
1155 dmu_buf_will_fill(db, tx, B_FALSE);
1156 else
1157 dmu_buf_will_dirty(db, tx);
1158
1159 (void) memcpy((char *)db->db_data + bufoff, buf, tocpy);
1160
1161 if (tocpy == db->db_size)
1162 dmu_buf_fill_done(db, tx, B_FALSE);
1163
1164 offset += tocpy;
1165 size -= tocpy;
1166 buf = (char *)buf + tocpy;
1167 }
1168 }
1169
1170 void
dmu_write(objset_t * os,uint64_t object,uint64_t offset,uint64_t size,const void * buf,dmu_tx_t * tx)1171 dmu_write(objset_t *os, uint64_t object, uint64_t offset, uint64_t size,
1172 const void *buf, dmu_tx_t *tx)
1173 {
1174 dmu_buf_t **dbp;
1175 int numbufs;
1176
1177 if (size == 0)
1178 return;
1179
1180 VERIFY0(dmu_buf_hold_array(os, object, offset, size,
1181 FALSE, FTAG, &numbufs, &dbp));
1182 dmu_write_impl(dbp, numbufs, offset, size, buf, tx);
1183 dmu_buf_rele_array(dbp, numbufs, FTAG);
1184 }
1185
1186 /*
1187 * Note: Lustre is an external consumer of this interface.
1188 */
1189 void
dmu_write_by_dnode(dnode_t * dn,uint64_t offset,uint64_t size,const void * buf,dmu_tx_t * tx)1190 dmu_write_by_dnode(dnode_t *dn, uint64_t offset, uint64_t size,
1191 const void *buf, dmu_tx_t *tx)
1192 {
1193 dmu_buf_t **dbp;
1194 int numbufs;
1195
1196 if (size == 0)
1197 return;
1198
1199 VERIFY0(dmu_buf_hold_array_by_dnode(dn, offset, size,
1200 FALSE, FTAG, &numbufs, &dbp, DMU_READ_PREFETCH));
1201 dmu_write_impl(dbp, numbufs, offset, size, buf, tx);
1202 dmu_buf_rele_array(dbp, numbufs, FTAG);
1203 }
1204
1205 void
dmu_prealloc(objset_t * os,uint64_t object,uint64_t offset,uint64_t size,dmu_tx_t * tx)1206 dmu_prealloc(objset_t *os, uint64_t object, uint64_t offset, uint64_t size,
1207 dmu_tx_t *tx)
1208 {
1209 dmu_buf_t **dbp;
1210 int numbufs, i;
1211
1212 if (size == 0)
1213 return;
1214
1215 VERIFY(0 == dmu_buf_hold_array(os, object, offset, size,
1216 FALSE, FTAG, &numbufs, &dbp));
1217
1218 for (i = 0; i < numbufs; i++) {
1219 dmu_buf_t *db = dbp[i];
1220
1221 dmu_buf_will_not_fill(db, tx);
1222 }
1223 dmu_buf_rele_array(dbp, numbufs, FTAG);
1224 }
1225
1226 void
dmu_write_embedded(objset_t * os,uint64_t object,uint64_t offset,void * data,uint8_t etype,uint8_t comp,int uncompressed_size,int compressed_size,int byteorder,dmu_tx_t * tx)1227 dmu_write_embedded(objset_t *os, uint64_t object, uint64_t offset,
1228 void *data, uint8_t etype, uint8_t comp, int uncompressed_size,
1229 int compressed_size, int byteorder, dmu_tx_t *tx)
1230 {
1231 dmu_buf_t *db;
1232
1233 ASSERT3U(etype, <, NUM_BP_EMBEDDED_TYPES);
1234 ASSERT3U(comp, <, ZIO_COMPRESS_FUNCTIONS);
1235 VERIFY0(dmu_buf_hold_noread(os, object, offset,
1236 FTAG, &db));
1237
1238 dmu_buf_write_embedded(db,
1239 data, (bp_embedded_type_t)etype, (enum zio_compress)comp,
1240 uncompressed_size, compressed_size, byteorder, tx);
1241
1242 dmu_buf_rele(db, FTAG);
1243 }
1244
1245 void
dmu_redact(objset_t * os,uint64_t object,uint64_t offset,uint64_t size,dmu_tx_t * tx)1246 dmu_redact(objset_t *os, uint64_t object, uint64_t offset, uint64_t size,
1247 dmu_tx_t *tx)
1248 {
1249 int numbufs, i;
1250 dmu_buf_t **dbp;
1251
1252 VERIFY0(dmu_buf_hold_array(os, object, offset, size, FALSE, FTAG,
1253 &numbufs, &dbp));
1254 for (i = 0; i < numbufs; i++)
1255 dmu_buf_redact(dbp[i], tx);
1256 dmu_buf_rele_array(dbp, numbufs, FTAG);
1257 }
1258
1259 #ifdef _KERNEL
1260 int
dmu_read_uio_dnode(dnode_t * dn,zfs_uio_t * uio,uint64_t size)1261 dmu_read_uio_dnode(dnode_t *dn, zfs_uio_t *uio, uint64_t size)
1262 {
1263 dmu_buf_t **dbp;
1264 int numbufs, i, err;
1265
1266 /*
1267 * NB: we could do this block-at-a-time, but it's nice
1268 * to be reading in parallel.
1269 */
1270 err = dmu_buf_hold_array_by_dnode(dn, zfs_uio_offset(uio), size,
1271 TRUE, FTAG, &numbufs, &dbp, 0);
1272 if (err)
1273 return (err);
1274
1275 for (i = 0; i < numbufs; i++) {
1276 uint64_t tocpy;
1277 int64_t bufoff;
1278 dmu_buf_t *db = dbp[i];
1279
1280 ASSERT(size > 0);
1281
1282 bufoff = zfs_uio_offset(uio) - db->db_offset;
1283 tocpy = MIN(db->db_size - bufoff, size);
1284
1285 err = zfs_uio_fault_move((char *)db->db_data + bufoff, tocpy,
1286 UIO_READ, uio);
1287
1288 if (err)
1289 break;
1290
1291 size -= tocpy;
1292 }
1293 dmu_buf_rele_array(dbp, numbufs, FTAG);
1294
1295 return (err);
1296 }
1297
1298 /*
1299 * Read 'size' bytes into the uio buffer.
1300 * From object zdb->db_object.
1301 * Starting at zfs_uio_offset(uio).
1302 *
1303 * If the caller already has a dbuf in the target object
1304 * (e.g. its bonus buffer), this routine is faster than dmu_read_uio(),
1305 * because we don't have to find the dnode_t for the object.
1306 */
1307 int
dmu_read_uio_dbuf(dmu_buf_t * zdb,zfs_uio_t * uio,uint64_t size)1308 dmu_read_uio_dbuf(dmu_buf_t *zdb, zfs_uio_t *uio, uint64_t size)
1309 {
1310 dmu_buf_impl_t *db = (dmu_buf_impl_t *)zdb;
1311 dnode_t *dn;
1312 int err;
1313
1314 if (size == 0)
1315 return (0);
1316
1317 DB_DNODE_ENTER(db);
1318 dn = DB_DNODE(db);
1319 err = dmu_read_uio_dnode(dn, uio, size);
1320 DB_DNODE_EXIT(db);
1321
1322 return (err);
1323 }
1324
1325 /*
1326 * Read 'size' bytes into the uio buffer.
1327 * From the specified object
1328 * Starting at offset zfs_uio_offset(uio).
1329 */
1330 int
dmu_read_uio(objset_t * os,uint64_t object,zfs_uio_t * uio,uint64_t size)1331 dmu_read_uio(objset_t *os, uint64_t object, zfs_uio_t *uio, uint64_t size)
1332 {
1333 dnode_t *dn;
1334 int err;
1335
1336 if (size == 0)
1337 return (0);
1338
1339 err = dnode_hold(os, object, FTAG, &dn);
1340 if (err)
1341 return (err);
1342
1343 err = dmu_read_uio_dnode(dn, uio, size);
1344
1345 dnode_rele(dn, FTAG);
1346
1347 return (err);
1348 }
1349
1350 int
dmu_write_uio_dnode(dnode_t * dn,zfs_uio_t * uio,uint64_t size,dmu_tx_t * tx)1351 dmu_write_uio_dnode(dnode_t *dn, zfs_uio_t *uio, uint64_t size, dmu_tx_t *tx)
1352 {
1353 dmu_buf_t **dbp;
1354 int numbufs;
1355 int err = 0;
1356 int i;
1357
1358 err = dmu_buf_hold_array_by_dnode(dn, zfs_uio_offset(uio), size,
1359 FALSE, FTAG, &numbufs, &dbp, DMU_READ_PREFETCH);
1360 if (err)
1361 return (err);
1362
1363 for (i = 0; i < numbufs; i++) {
1364 uint64_t tocpy;
1365 int64_t bufoff;
1366 dmu_buf_t *db = dbp[i];
1367
1368 ASSERT(size > 0);
1369
1370 offset_t off = zfs_uio_offset(uio);
1371 bufoff = off - db->db_offset;
1372 tocpy = MIN(db->db_size - bufoff, size);
1373
1374 ASSERT(i == 0 || i == numbufs-1 || tocpy == db->db_size);
1375
1376 if (tocpy == db->db_size)
1377 dmu_buf_will_fill(db, tx, B_TRUE);
1378 else
1379 dmu_buf_will_dirty(db, tx);
1380
1381 err = zfs_uio_fault_move((char *)db->db_data + bufoff,
1382 tocpy, UIO_WRITE, uio);
1383
1384 if (tocpy == db->db_size && dmu_buf_fill_done(db, tx, err)) {
1385 /* The fill was reverted. Undo any uio progress. */
1386 zfs_uio_advance(uio, off - zfs_uio_offset(uio));
1387 }
1388
1389 if (err)
1390 break;
1391
1392 size -= tocpy;
1393 }
1394
1395 dmu_buf_rele_array(dbp, numbufs, FTAG);
1396 return (err);
1397 }
1398
1399 /*
1400 * Write 'size' bytes from the uio buffer.
1401 * To object zdb->db_object.
1402 * Starting at offset zfs_uio_offset(uio).
1403 *
1404 * If the caller already has a dbuf in the target object
1405 * (e.g. its bonus buffer), this routine is faster than dmu_write_uio(),
1406 * because we don't have to find the dnode_t for the object.
1407 */
1408 int
dmu_write_uio_dbuf(dmu_buf_t * zdb,zfs_uio_t * uio,uint64_t size,dmu_tx_t * tx)1409 dmu_write_uio_dbuf(dmu_buf_t *zdb, zfs_uio_t *uio, uint64_t size,
1410 dmu_tx_t *tx)
1411 {
1412 dmu_buf_impl_t *db = (dmu_buf_impl_t *)zdb;
1413 dnode_t *dn;
1414 int err;
1415
1416 if (size == 0)
1417 return (0);
1418
1419 DB_DNODE_ENTER(db);
1420 dn = DB_DNODE(db);
1421 err = dmu_write_uio_dnode(dn, uio, size, tx);
1422 DB_DNODE_EXIT(db);
1423
1424 return (err);
1425 }
1426
1427 /*
1428 * Write 'size' bytes from the uio buffer.
1429 * To the specified object.
1430 * Starting at offset zfs_uio_offset(uio).
1431 */
1432 int
dmu_write_uio(objset_t * os,uint64_t object,zfs_uio_t * uio,uint64_t size,dmu_tx_t * tx)1433 dmu_write_uio(objset_t *os, uint64_t object, zfs_uio_t *uio, uint64_t size,
1434 dmu_tx_t *tx)
1435 {
1436 dnode_t *dn;
1437 int err;
1438
1439 if (size == 0)
1440 return (0);
1441
1442 err = dnode_hold(os, object, FTAG, &dn);
1443 if (err)
1444 return (err);
1445
1446 err = dmu_write_uio_dnode(dn, uio, size, tx);
1447
1448 dnode_rele(dn, FTAG);
1449
1450 return (err);
1451 }
1452 #endif /* _KERNEL */
1453
1454 /*
1455 * Allocate a loaned anonymous arc buffer.
1456 */
1457 arc_buf_t *
dmu_request_arcbuf(dmu_buf_t * handle,int size)1458 dmu_request_arcbuf(dmu_buf_t *handle, int size)
1459 {
1460 dmu_buf_impl_t *db = (dmu_buf_impl_t *)handle;
1461
1462 return (arc_loan_buf(db->db_objset->os_spa, B_FALSE, size));
1463 }
1464
1465 /*
1466 * Free a loaned arc buffer.
1467 */
1468 void
dmu_return_arcbuf(arc_buf_t * buf)1469 dmu_return_arcbuf(arc_buf_t *buf)
1470 {
1471 arc_return_buf(buf, FTAG);
1472 arc_buf_destroy(buf, FTAG);
1473 }
1474
1475 /*
1476 * A "lightweight" write is faster than a regular write (e.g.
1477 * dmu_write_by_dnode() or dmu_assign_arcbuf_by_dnode()), because it avoids the
1478 * CPU cost of creating a dmu_buf_impl_t and arc_buf_[hdr_]_t. However, the
1479 * data can not be read or overwritten until the transaction's txg has been
1480 * synced. This makes it appropriate for workloads that are known to be
1481 * (temporarily) write-only, like "zfs receive".
1482 *
1483 * A single block is written, starting at the specified offset in bytes. If
1484 * the call is successful, it returns 0 and the provided abd has been
1485 * consumed (the caller should not free it).
1486 */
1487 int
dmu_lightweight_write_by_dnode(dnode_t * dn,uint64_t offset,abd_t * abd,const zio_prop_t * zp,zio_flag_t flags,dmu_tx_t * tx)1488 dmu_lightweight_write_by_dnode(dnode_t *dn, uint64_t offset, abd_t *abd,
1489 const zio_prop_t *zp, zio_flag_t flags, dmu_tx_t *tx)
1490 {
1491 dbuf_dirty_record_t *dr =
1492 dbuf_dirty_lightweight(dn, dbuf_whichblock(dn, 0, offset), tx);
1493 if (dr == NULL)
1494 return (SET_ERROR(EIO));
1495 dr->dt.dll.dr_abd = abd;
1496 dr->dt.dll.dr_props = *zp;
1497 dr->dt.dll.dr_flags = flags;
1498 return (0);
1499 }
1500
1501 /*
1502 * When possible directly assign passed loaned arc buffer to a dbuf.
1503 * If this is not possible copy the contents of passed arc buf via
1504 * dmu_write().
1505 */
1506 int
dmu_assign_arcbuf_by_dnode(dnode_t * dn,uint64_t offset,arc_buf_t * buf,dmu_tx_t * tx)1507 dmu_assign_arcbuf_by_dnode(dnode_t *dn, uint64_t offset, arc_buf_t *buf,
1508 dmu_tx_t *tx)
1509 {
1510 dmu_buf_impl_t *db;
1511 objset_t *os = dn->dn_objset;
1512 uint64_t object = dn->dn_object;
1513 uint32_t blksz = (uint32_t)arc_buf_lsize(buf);
1514 uint64_t blkid;
1515
1516 rw_enter(&dn->dn_struct_rwlock, RW_READER);
1517 blkid = dbuf_whichblock(dn, 0, offset);
1518 db = dbuf_hold(dn, blkid, FTAG);
1519 rw_exit(&dn->dn_struct_rwlock);
1520 if (db == NULL)
1521 return (SET_ERROR(EIO));
1522
1523 /*
1524 * We can only assign if the offset is aligned and the arc buf is the
1525 * same size as the dbuf.
1526 */
1527 if (offset == db->db.db_offset && blksz == db->db.db_size) {
1528 zfs_racct_write(blksz, 1);
1529 dbuf_assign_arcbuf(db, buf, tx);
1530 dbuf_rele(db, FTAG);
1531 } else {
1532 /* compressed bufs must always be assignable to their dbuf */
1533 ASSERT3U(arc_get_compression(buf), ==, ZIO_COMPRESS_OFF);
1534 ASSERT(!(buf->b_flags & ARC_BUF_FLAG_COMPRESSED));
1535
1536 dbuf_rele(db, FTAG);
1537 dmu_write(os, object, offset, blksz, buf->b_data, tx);
1538 dmu_return_arcbuf(buf);
1539 }
1540
1541 return (0);
1542 }
1543
1544 int
dmu_assign_arcbuf_by_dbuf(dmu_buf_t * handle,uint64_t offset,arc_buf_t * buf,dmu_tx_t * tx)1545 dmu_assign_arcbuf_by_dbuf(dmu_buf_t *handle, uint64_t offset, arc_buf_t *buf,
1546 dmu_tx_t *tx)
1547 {
1548 int err;
1549 dmu_buf_impl_t *dbuf = (dmu_buf_impl_t *)handle;
1550
1551 DB_DNODE_ENTER(dbuf);
1552 err = dmu_assign_arcbuf_by_dnode(DB_DNODE(dbuf), offset, buf, tx);
1553 DB_DNODE_EXIT(dbuf);
1554
1555 return (err);
1556 }
1557
1558 typedef struct {
1559 dbuf_dirty_record_t *dsa_dr;
1560 dmu_sync_cb_t *dsa_done;
1561 zgd_t *dsa_zgd;
1562 dmu_tx_t *dsa_tx;
1563 } dmu_sync_arg_t;
1564
1565 static void
dmu_sync_ready(zio_t * zio,arc_buf_t * buf,void * varg)1566 dmu_sync_ready(zio_t *zio, arc_buf_t *buf, void *varg)
1567 {
1568 (void) buf;
1569 dmu_sync_arg_t *dsa = varg;
1570 dmu_buf_t *db = dsa->dsa_zgd->zgd_db;
1571 blkptr_t *bp = zio->io_bp;
1572
1573 if (zio->io_error == 0) {
1574 if (BP_IS_HOLE(bp)) {
1575 /*
1576 * A block of zeros may compress to a hole, but the
1577 * block size still needs to be known for replay.
1578 */
1579 BP_SET_LSIZE(bp, db->db_size);
1580 } else if (!BP_IS_EMBEDDED(bp)) {
1581 ASSERT(BP_GET_LEVEL(bp) == 0);
1582 BP_SET_FILL(bp, 1);
1583 }
1584 }
1585 }
1586
1587 static void
dmu_sync_late_arrival_ready(zio_t * zio)1588 dmu_sync_late_arrival_ready(zio_t *zio)
1589 {
1590 dmu_sync_ready(zio, NULL, zio->io_private);
1591 }
1592
1593 static void
dmu_sync_done(zio_t * zio,arc_buf_t * buf,void * varg)1594 dmu_sync_done(zio_t *zio, arc_buf_t *buf, void *varg)
1595 {
1596 (void) buf;
1597 dmu_sync_arg_t *dsa = varg;
1598 dbuf_dirty_record_t *dr = dsa->dsa_dr;
1599 dmu_buf_impl_t *db = dr->dr_dbuf;
1600 zgd_t *zgd = dsa->dsa_zgd;
1601
1602 /*
1603 * Record the vdev(s) backing this blkptr so they can be flushed after
1604 * the writes for the lwb have completed.
1605 */
1606 if (zio->io_error == 0) {
1607 zil_lwb_add_block(zgd->zgd_lwb, zgd->zgd_bp);
1608 }
1609
1610 mutex_enter(&db->db_mtx);
1611 ASSERT(dr->dt.dl.dr_override_state == DR_IN_DMU_SYNC);
1612 if (zio->io_error == 0) {
1613 dr->dt.dl.dr_nopwrite = !!(zio->io_flags & ZIO_FLAG_NOPWRITE);
1614 if (dr->dt.dl.dr_nopwrite) {
1615 blkptr_t *bp = zio->io_bp;
1616 blkptr_t *bp_orig = &zio->io_bp_orig;
1617 uint8_t chksum = BP_GET_CHECKSUM(bp_orig);
1618
1619 ASSERT(BP_EQUAL(bp, bp_orig));
1620 VERIFY(BP_EQUAL(bp, db->db_blkptr));
1621 ASSERT(zio->io_prop.zp_compress != ZIO_COMPRESS_OFF);
1622 VERIFY(zio_checksum_table[chksum].ci_flags &
1623 ZCHECKSUM_FLAG_NOPWRITE);
1624 }
1625 dr->dt.dl.dr_overridden_by = *zio->io_bp;
1626 dr->dt.dl.dr_override_state = DR_OVERRIDDEN;
1627 dr->dt.dl.dr_copies = zio->io_prop.zp_copies;
1628
1629 /*
1630 * Old style holes are filled with all zeros, whereas
1631 * new-style holes maintain their lsize, type, level,
1632 * and birth time (see zio_write_compress). While we
1633 * need to reset the BP_SET_LSIZE() call that happened
1634 * in dmu_sync_ready for old style holes, we do *not*
1635 * want to wipe out the information contained in new
1636 * style holes. Thus, only zero out the block pointer if
1637 * it's an old style hole.
1638 */
1639 if (BP_IS_HOLE(&dr->dt.dl.dr_overridden_by) &&
1640 dr->dt.dl.dr_overridden_by.blk_birth == 0)
1641 BP_ZERO(&dr->dt.dl.dr_overridden_by);
1642 } else {
1643 dr->dt.dl.dr_override_state = DR_NOT_OVERRIDDEN;
1644 }
1645 cv_broadcast(&db->db_changed);
1646 mutex_exit(&db->db_mtx);
1647
1648 dsa->dsa_done(dsa->dsa_zgd, zio->io_error);
1649
1650 kmem_free(dsa, sizeof (*dsa));
1651 }
1652
1653 static void
dmu_sync_late_arrival_done(zio_t * zio)1654 dmu_sync_late_arrival_done(zio_t *zio)
1655 {
1656 blkptr_t *bp = zio->io_bp;
1657 dmu_sync_arg_t *dsa = zio->io_private;
1658 zgd_t *zgd = dsa->dsa_zgd;
1659
1660 if (zio->io_error == 0) {
1661 /*
1662 * Record the vdev(s) backing this blkptr so they can be
1663 * flushed after the writes for the lwb have completed.
1664 */
1665 zil_lwb_add_block(zgd->zgd_lwb, zgd->zgd_bp);
1666
1667 if (!BP_IS_HOLE(bp)) {
1668 blkptr_t *bp_orig __maybe_unused = &zio->io_bp_orig;
1669 ASSERT(!(zio->io_flags & ZIO_FLAG_NOPWRITE));
1670 ASSERT(BP_IS_HOLE(bp_orig) || !BP_EQUAL(bp, bp_orig));
1671 ASSERT(zio->io_bp->blk_birth == zio->io_txg);
1672 ASSERT(zio->io_txg > spa_syncing_txg(zio->io_spa));
1673 zio_free(zio->io_spa, zio->io_txg, zio->io_bp);
1674 }
1675 }
1676
1677 dmu_tx_commit(dsa->dsa_tx);
1678
1679 dsa->dsa_done(dsa->dsa_zgd, zio->io_error);
1680
1681 abd_free(zio->io_abd);
1682 kmem_free(dsa, sizeof (*dsa));
1683 }
1684
1685 static int
dmu_sync_late_arrival(zio_t * pio,objset_t * os,dmu_sync_cb_t * done,zgd_t * zgd,zio_prop_t * zp,zbookmark_phys_t * zb)1686 dmu_sync_late_arrival(zio_t *pio, objset_t *os, dmu_sync_cb_t *done, zgd_t *zgd,
1687 zio_prop_t *zp, zbookmark_phys_t *zb)
1688 {
1689 dmu_sync_arg_t *dsa;
1690 dmu_tx_t *tx;
1691 int error;
1692
1693 error = dbuf_read((dmu_buf_impl_t *)zgd->zgd_db, NULL,
1694 DB_RF_CANFAIL | DB_RF_NOPREFETCH);
1695 if (error != 0)
1696 return (error);
1697
1698 tx = dmu_tx_create(os);
1699 dmu_tx_hold_space(tx, zgd->zgd_db->db_size);
1700 /*
1701 * This transaction does not produce any dirty data or log blocks, so
1702 * it should not be throttled. All other cases wait for TXG sync, by
1703 * which time the log block we are writing will be obsolete, so we can
1704 * skip waiting and just return error here instead.
1705 */
1706 if (dmu_tx_assign(tx, TXG_NOWAIT | TXG_NOTHROTTLE) != 0) {
1707 dmu_tx_abort(tx);
1708 /* Make zl_get_data do txg_waited_synced() */
1709 return (SET_ERROR(EIO));
1710 }
1711
1712 /*
1713 * In order to prevent the zgd's lwb from being free'd prior to
1714 * dmu_sync_late_arrival_done() being called, we have to ensure
1715 * the lwb's "max txg" takes this tx's txg into account.
1716 */
1717 zil_lwb_add_txg(zgd->zgd_lwb, dmu_tx_get_txg(tx));
1718
1719 dsa = kmem_alloc(sizeof (dmu_sync_arg_t), KM_SLEEP);
1720 dsa->dsa_dr = NULL;
1721 dsa->dsa_done = done;
1722 dsa->dsa_zgd = zgd;
1723 dsa->dsa_tx = tx;
1724
1725 /*
1726 * Since we are currently syncing this txg, it's nontrivial to
1727 * determine what BP to nopwrite against, so we disable nopwrite.
1728 *
1729 * When syncing, the db_blkptr is initially the BP of the previous
1730 * txg. We can not nopwrite against it because it will be changed
1731 * (this is similar to the non-late-arrival case where the dbuf is
1732 * dirty in a future txg).
1733 *
1734 * Then dbuf_write_ready() sets bp_blkptr to the location we will write.
1735 * We can not nopwrite against it because although the BP will not
1736 * (typically) be changed, the data has not yet been persisted to this
1737 * location.
1738 *
1739 * Finally, when dbuf_write_done() is called, it is theoretically
1740 * possible to always nopwrite, because the data that was written in
1741 * this txg is the same data that we are trying to write. However we
1742 * would need to check that this dbuf is not dirty in any future
1743 * txg's (as we do in the normal dmu_sync() path). For simplicity, we
1744 * don't nopwrite in this case.
1745 */
1746 zp->zp_nopwrite = B_FALSE;
1747
1748 zio_nowait(zio_write(pio, os->os_spa, dmu_tx_get_txg(tx), zgd->zgd_bp,
1749 abd_get_from_buf(zgd->zgd_db->db_data, zgd->zgd_db->db_size),
1750 zgd->zgd_db->db_size, zgd->zgd_db->db_size, zp,
1751 dmu_sync_late_arrival_ready, NULL, dmu_sync_late_arrival_done,
1752 dsa, ZIO_PRIORITY_SYNC_WRITE, ZIO_FLAG_CANFAIL, zb));
1753
1754 return (0);
1755 }
1756
1757 /*
1758 * Intent log support: sync the block associated with db to disk.
1759 * N.B. and XXX: the caller is responsible for making sure that the
1760 * data isn't changing while dmu_sync() is writing it.
1761 *
1762 * Return values:
1763 *
1764 * EEXIST: this txg has already been synced, so there's nothing to do.
1765 * The caller should not log the write.
1766 *
1767 * ENOENT: the block was dbuf_free_range()'d, so there's nothing to do.
1768 * The caller should not log the write.
1769 *
1770 * EALREADY: this block is already in the process of being synced.
1771 * The caller should track its progress (somehow).
1772 *
1773 * EIO: could not do the I/O.
1774 * The caller should do a txg_wait_synced().
1775 *
1776 * 0: the I/O has been initiated.
1777 * The caller should log this blkptr in the done callback.
1778 * It is possible that the I/O will fail, in which case
1779 * the error will be reported to the done callback and
1780 * propagated to pio from zio_done().
1781 */
1782 int
dmu_sync(zio_t * pio,uint64_t txg,dmu_sync_cb_t * done,zgd_t * zgd)1783 dmu_sync(zio_t *pio, uint64_t txg, dmu_sync_cb_t *done, zgd_t *zgd)
1784 {
1785 dmu_buf_impl_t *db = (dmu_buf_impl_t *)zgd->zgd_db;
1786 objset_t *os = db->db_objset;
1787 dsl_dataset_t *ds = os->os_dsl_dataset;
1788 dbuf_dirty_record_t *dr, *dr_next;
1789 dmu_sync_arg_t *dsa;
1790 zbookmark_phys_t zb;
1791 zio_prop_t zp;
1792 dnode_t *dn;
1793
1794 ASSERT(pio != NULL);
1795 ASSERT(txg != 0);
1796
1797 SET_BOOKMARK(&zb, ds->ds_object,
1798 db->db.db_object, db->db_level, db->db_blkid);
1799
1800 DB_DNODE_ENTER(db);
1801 dn = DB_DNODE(db);
1802 dmu_write_policy(os, dn, db->db_level, WP_DMU_SYNC, &zp);
1803 DB_DNODE_EXIT(db);
1804
1805 /*
1806 * If we're frozen (running ziltest), we always need to generate a bp.
1807 */
1808 if (txg > spa_freeze_txg(os->os_spa))
1809 return (dmu_sync_late_arrival(pio, os, done, zgd, &zp, &zb));
1810
1811 /*
1812 * Grabbing db_mtx now provides a barrier between dbuf_sync_leaf()
1813 * and us. If we determine that this txg is not yet syncing,
1814 * but it begins to sync a moment later, that's OK because the
1815 * sync thread will block in dbuf_sync_leaf() until we drop db_mtx.
1816 */
1817 mutex_enter(&db->db_mtx);
1818
1819 if (txg <= spa_last_synced_txg(os->os_spa)) {
1820 /*
1821 * This txg has already synced. There's nothing to do.
1822 */
1823 mutex_exit(&db->db_mtx);
1824 return (SET_ERROR(EEXIST));
1825 }
1826
1827 if (txg <= spa_syncing_txg(os->os_spa)) {
1828 /*
1829 * This txg is currently syncing, so we can't mess with
1830 * the dirty record anymore; just write a new log block.
1831 */
1832 mutex_exit(&db->db_mtx);
1833 return (dmu_sync_late_arrival(pio, os, done, zgd, &zp, &zb));
1834 }
1835
1836 dr = dbuf_find_dirty_eq(db, txg);
1837
1838 if (dr == NULL) {
1839 /*
1840 * There's no dr for this dbuf, so it must have been freed.
1841 * There's no need to log writes to freed blocks, so we're done.
1842 */
1843 mutex_exit(&db->db_mtx);
1844 return (SET_ERROR(ENOENT));
1845 }
1846
1847 dr_next = list_next(&db->db_dirty_records, dr);
1848 ASSERT(dr_next == NULL || dr_next->dr_txg < txg);
1849
1850 if (db->db_blkptr != NULL) {
1851 /*
1852 * We need to fill in zgd_bp with the current blkptr so that
1853 * the nopwrite code can check if we're writing the same
1854 * data that's already on disk. We can only nopwrite if we
1855 * are sure that after making the copy, db_blkptr will not
1856 * change until our i/o completes. We ensure this by
1857 * holding the db_mtx, and only allowing nopwrite if the
1858 * block is not already dirty (see below). This is verified
1859 * by dmu_sync_done(), which VERIFYs that the db_blkptr has
1860 * not changed.
1861 */
1862 *zgd->zgd_bp = *db->db_blkptr;
1863 }
1864
1865 /*
1866 * Assume the on-disk data is X, the current syncing data (in
1867 * txg - 1) is Y, and the current in-memory data is Z (currently
1868 * in dmu_sync).
1869 *
1870 * We usually want to perform a nopwrite if X and Z are the
1871 * same. However, if Y is different (i.e. the BP is going to
1872 * change before this write takes effect), then a nopwrite will
1873 * be incorrect - we would override with X, which could have
1874 * been freed when Y was written.
1875 *
1876 * (Note that this is not a concern when we are nop-writing from
1877 * syncing context, because X and Y must be identical, because
1878 * all previous txgs have been synced.)
1879 *
1880 * Therefore, we disable nopwrite if the current BP could change
1881 * before this TXG. There are two ways it could change: by
1882 * being dirty (dr_next is non-NULL), or by being freed
1883 * (dnode_block_freed()). This behavior is verified by
1884 * zio_done(), which VERIFYs that the override BP is identical
1885 * to the on-disk BP.
1886 */
1887 DB_DNODE_ENTER(db);
1888 dn = DB_DNODE(db);
1889 if (dr_next != NULL || dnode_block_freed(dn, db->db_blkid))
1890 zp.zp_nopwrite = B_FALSE;
1891 DB_DNODE_EXIT(db);
1892
1893 ASSERT(dr->dr_txg == txg);
1894 if (dr->dt.dl.dr_override_state == DR_IN_DMU_SYNC ||
1895 dr->dt.dl.dr_override_state == DR_OVERRIDDEN) {
1896 /*
1897 * We have already issued a sync write for this buffer,
1898 * or this buffer has already been synced. It could not
1899 * have been dirtied since, or we would have cleared the state.
1900 */
1901 mutex_exit(&db->db_mtx);
1902 return (SET_ERROR(EALREADY));
1903 }
1904
1905 ASSERT(dr->dt.dl.dr_override_state == DR_NOT_OVERRIDDEN);
1906 dr->dt.dl.dr_override_state = DR_IN_DMU_SYNC;
1907 mutex_exit(&db->db_mtx);
1908
1909 dsa = kmem_alloc(sizeof (dmu_sync_arg_t), KM_SLEEP);
1910 dsa->dsa_dr = dr;
1911 dsa->dsa_done = done;
1912 dsa->dsa_zgd = zgd;
1913 dsa->dsa_tx = NULL;
1914
1915 zio_nowait(arc_write(pio, os->os_spa, txg, zgd->zgd_bp,
1916 dr->dt.dl.dr_data, !DBUF_IS_CACHEABLE(db), dbuf_is_l2cacheable(db),
1917 &zp, dmu_sync_ready, NULL, dmu_sync_done, dsa,
1918 ZIO_PRIORITY_SYNC_WRITE, ZIO_FLAG_CANFAIL, &zb));
1919
1920 return (0);
1921 }
1922
1923 int
dmu_object_set_nlevels(objset_t * os,uint64_t object,int nlevels,dmu_tx_t * tx)1924 dmu_object_set_nlevels(objset_t *os, uint64_t object, int nlevels, dmu_tx_t *tx)
1925 {
1926 dnode_t *dn;
1927 int err;
1928
1929 err = dnode_hold(os, object, FTAG, &dn);
1930 if (err)
1931 return (err);
1932 err = dnode_set_nlevels(dn, nlevels, tx);
1933 dnode_rele(dn, FTAG);
1934 return (err);
1935 }
1936
1937 int
dmu_object_set_blocksize(objset_t * os,uint64_t object,uint64_t size,int ibs,dmu_tx_t * tx)1938 dmu_object_set_blocksize(objset_t *os, uint64_t object, uint64_t size, int ibs,
1939 dmu_tx_t *tx)
1940 {
1941 dnode_t *dn;
1942 int err;
1943
1944 err = dnode_hold(os, object, FTAG, &dn);
1945 if (err)
1946 return (err);
1947 err = dnode_set_blksz(dn, size, ibs, tx);
1948 dnode_rele(dn, FTAG);
1949 return (err);
1950 }
1951
1952 int
dmu_object_set_maxblkid(objset_t * os,uint64_t object,uint64_t maxblkid,dmu_tx_t * tx)1953 dmu_object_set_maxblkid(objset_t *os, uint64_t object, uint64_t maxblkid,
1954 dmu_tx_t *tx)
1955 {
1956 dnode_t *dn;
1957 int err;
1958
1959 err = dnode_hold(os, object, FTAG, &dn);
1960 if (err)
1961 return (err);
1962 rw_enter(&dn->dn_struct_rwlock, RW_WRITER);
1963 dnode_new_blkid(dn, maxblkid, tx, B_FALSE, B_TRUE);
1964 rw_exit(&dn->dn_struct_rwlock);
1965 dnode_rele(dn, FTAG);
1966 return (0);
1967 }
1968
1969 void
dmu_object_set_checksum(objset_t * os,uint64_t object,uint8_t checksum,dmu_tx_t * tx)1970 dmu_object_set_checksum(objset_t *os, uint64_t object, uint8_t checksum,
1971 dmu_tx_t *tx)
1972 {
1973 dnode_t *dn;
1974
1975 /*
1976 * Send streams include each object's checksum function. This
1977 * check ensures that the receiving system can understand the
1978 * checksum function transmitted.
1979 */
1980 ASSERT3U(checksum, <, ZIO_CHECKSUM_LEGACY_FUNCTIONS);
1981
1982 VERIFY0(dnode_hold(os, object, FTAG, &dn));
1983 ASSERT3U(checksum, <, ZIO_CHECKSUM_FUNCTIONS);
1984 dn->dn_checksum = checksum;
1985 dnode_setdirty(dn, tx);
1986 dnode_rele(dn, FTAG);
1987 }
1988
1989 void
dmu_object_set_compress(objset_t * os,uint64_t object,uint8_t compress,dmu_tx_t * tx)1990 dmu_object_set_compress(objset_t *os, uint64_t object, uint8_t compress,
1991 dmu_tx_t *tx)
1992 {
1993 dnode_t *dn;
1994
1995 /*
1996 * Send streams include each object's compression function. This
1997 * check ensures that the receiving system can understand the
1998 * compression function transmitted.
1999 */
2000 ASSERT3U(compress, <, ZIO_COMPRESS_LEGACY_FUNCTIONS);
2001
2002 VERIFY0(dnode_hold(os, object, FTAG, &dn));
2003 dn->dn_compress = compress;
2004 dnode_setdirty(dn, tx);
2005 dnode_rele(dn, FTAG);
2006 }
2007
2008 /*
2009 * When the "redundant_metadata" property is set to "most", only indirect
2010 * blocks of this level and higher will have an additional ditto block.
2011 */
2012 static const int zfs_redundant_metadata_most_ditto_level = 2;
2013
2014 void
dmu_write_policy(objset_t * os,dnode_t * dn,int level,int wp,zio_prop_t * zp)2015 dmu_write_policy(objset_t *os, dnode_t *dn, int level, int wp, zio_prop_t *zp)
2016 {
2017 dmu_object_type_t type = dn ? dn->dn_type : DMU_OT_OBJSET;
2018 boolean_t ismd = (level > 0 || DMU_OT_IS_METADATA(type) ||
2019 (wp & WP_SPILL));
2020 enum zio_checksum checksum = os->os_checksum;
2021 enum zio_compress compress = os->os_compress;
2022 uint8_t complevel = os->os_complevel;
2023 enum zio_checksum dedup_checksum = os->os_dedup_checksum;
2024 boolean_t dedup = B_FALSE;
2025 boolean_t nopwrite = B_FALSE;
2026 boolean_t dedup_verify = os->os_dedup_verify;
2027 boolean_t encrypt = B_FALSE;
2028 int copies = os->os_copies;
2029
2030 /*
2031 * We maintain different write policies for each of the following
2032 * types of data:
2033 * 1. metadata
2034 * 2. preallocated blocks (i.e. level-0 blocks of a dump device)
2035 * 3. all other level 0 blocks
2036 */
2037 if (ismd) {
2038 /*
2039 * XXX -- we should design a compression algorithm
2040 * that specializes in arrays of bps.
2041 */
2042 compress = zio_compress_select(os->os_spa,
2043 ZIO_COMPRESS_ON, ZIO_COMPRESS_ON);
2044
2045 /*
2046 * Metadata always gets checksummed. If the data
2047 * checksum is multi-bit correctable, and it's not a
2048 * ZBT-style checksum, then it's suitable for metadata
2049 * as well. Otherwise, the metadata checksum defaults
2050 * to fletcher4.
2051 */
2052 if (!(zio_checksum_table[checksum].ci_flags &
2053 ZCHECKSUM_FLAG_METADATA) ||
2054 (zio_checksum_table[checksum].ci_flags &
2055 ZCHECKSUM_FLAG_EMBEDDED))
2056 checksum = ZIO_CHECKSUM_FLETCHER_4;
2057
2058 switch (os->os_redundant_metadata) {
2059 case ZFS_REDUNDANT_METADATA_ALL:
2060 copies++;
2061 break;
2062 case ZFS_REDUNDANT_METADATA_MOST:
2063 if (level >= zfs_redundant_metadata_most_ditto_level ||
2064 DMU_OT_IS_METADATA(type) || (wp & WP_SPILL))
2065 copies++;
2066 break;
2067 case ZFS_REDUNDANT_METADATA_SOME:
2068 if (DMU_OT_IS_CRITICAL(type))
2069 copies++;
2070 break;
2071 case ZFS_REDUNDANT_METADATA_NONE:
2072 break;
2073 }
2074 } else if (wp & WP_NOFILL) {
2075 ASSERT(level == 0);
2076
2077 /*
2078 * If we're writing preallocated blocks, we aren't actually
2079 * writing them so don't set any policy properties. These
2080 * blocks are currently only used by an external subsystem
2081 * outside of zfs (i.e. dump) and not written by the zio
2082 * pipeline.
2083 */
2084 compress = ZIO_COMPRESS_OFF;
2085 checksum = ZIO_CHECKSUM_OFF;
2086 } else {
2087 compress = zio_compress_select(os->os_spa, dn->dn_compress,
2088 compress);
2089 complevel = zio_complevel_select(os->os_spa, compress,
2090 complevel, complevel);
2091
2092 checksum = (dedup_checksum == ZIO_CHECKSUM_OFF) ?
2093 zio_checksum_select(dn->dn_checksum, checksum) :
2094 dedup_checksum;
2095
2096 /*
2097 * Determine dedup setting. If we are in dmu_sync(),
2098 * we won't actually dedup now because that's all
2099 * done in syncing context; but we do want to use the
2100 * dedup checksum. If the checksum is not strong
2101 * enough to ensure unique signatures, force
2102 * dedup_verify.
2103 */
2104 if (dedup_checksum != ZIO_CHECKSUM_OFF) {
2105 dedup = (wp & WP_DMU_SYNC) ? B_FALSE : B_TRUE;
2106 if (!(zio_checksum_table[checksum].ci_flags &
2107 ZCHECKSUM_FLAG_DEDUP))
2108 dedup_verify = B_TRUE;
2109 }
2110
2111 /*
2112 * Enable nopwrite if we have secure enough checksum
2113 * algorithm (see comment in zio_nop_write) and
2114 * compression is enabled. We don't enable nopwrite if
2115 * dedup is enabled as the two features are mutually
2116 * exclusive.
2117 */
2118 nopwrite = (!dedup && (zio_checksum_table[checksum].ci_flags &
2119 ZCHECKSUM_FLAG_NOPWRITE) &&
2120 compress != ZIO_COMPRESS_OFF && zfs_nopwrite_enabled);
2121 }
2122
2123 /*
2124 * All objects in an encrypted objset are protected from modification
2125 * via a MAC. Encrypted objects store their IV and salt in the last DVA
2126 * in the bp, so we cannot use all copies. Encrypted objects are also
2127 * not subject to nopwrite since writing the same data will still
2128 * result in a new ciphertext. Only encrypted blocks can be dedup'd
2129 * to avoid ambiguity in the dedup code since the DDT does not store
2130 * object types.
2131 */
2132 if (os->os_encrypted && (wp & WP_NOFILL) == 0) {
2133 encrypt = B_TRUE;
2134
2135 if (DMU_OT_IS_ENCRYPTED(type)) {
2136 copies = MIN(copies, SPA_DVAS_PER_BP - 1);
2137 nopwrite = B_FALSE;
2138 } else {
2139 dedup = B_FALSE;
2140 }
2141
2142 if (level <= 0 &&
2143 (type == DMU_OT_DNODE || type == DMU_OT_OBJSET)) {
2144 compress = ZIO_COMPRESS_EMPTY;
2145 }
2146 }
2147
2148 zp->zp_compress = compress;
2149 zp->zp_complevel = complevel;
2150 zp->zp_checksum = checksum;
2151 zp->zp_type = (wp & WP_SPILL) ? dn->dn_bonustype : type;
2152 zp->zp_level = level;
2153 zp->zp_copies = MIN(copies, spa_max_replication(os->os_spa));
2154 zp->zp_dedup = dedup;
2155 zp->zp_dedup_verify = dedup && dedup_verify;
2156 zp->zp_nopwrite = nopwrite;
2157 zp->zp_encrypt = encrypt;
2158 zp->zp_byteorder = ZFS_HOST_BYTEORDER;
2159 memset(zp->zp_salt, 0, ZIO_DATA_SALT_LEN);
2160 memset(zp->zp_iv, 0, ZIO_DATA_IV_LEN);
2161 memset(zp->zp_mac, 0, ZIO_DATA_MAC_LEN);
2162 zp->zp_zpl_smallblk = DMU_OT_IS_FILE(zp->zp_type) ?
2163 os->os_zpl_special_smallblock : 0;
2164
2165 ASSERT3U(zp->zp_compress, !=, ZIO_COMPRESS_INHERIT);
2166 }
2167
2168 /*
2169 * Reports the location of data and holes in an object. In order to
2170 * accurately report holes all dirty data must be synced to disk. This
2171 * causes extremely poor performance when seeking for holes in a dirty file.
2172 * As a compromise, only provide hole data when the dnode is clean. When
2173 * a dnode is dirty report the dnode as having no holes by returning EBUSY
2174 * which is always safe to do.
2175 */
2176 int
dmu_offset_next(objset_t * os,uint64_t object,boolean_t hole,uint64_t * off)2177 dmu_offset_next(objset_t *os, uint64_t object, boolean_t hole, uint64_t *off)
2178 {
2179 dnode_t *dn;
2180 int restarted = 0, err;
2181
2182 restart:
2183 err = dnode_hold(os, object, FTAG, &dn);
2184 if (err)
2185 return (err);
2186
2187 rw_enter(&dn->dn_struct_rwlock, RW_READER);
2188
2189 if (dnode_is_dirty(dn)) {
2190 /*
2191 * If the zfs_dmu_offset_next_sync module option is enabled
2192 * then hole reporting has been requested. Dirty dnodes
2193 * must be synced to disk to accurately report holes.
2194 *
2195 * Provided a RL_READER rangelock spanning 0-UINT64_MAX is
2196 * held by the caller only a single restart will be required.
2197 * We tolerate callers which do not hold the rangelock by
2198 * returning EBUSY and not reporting holes after one restart.
2199 */
2200 if (zfs_dmu_offset_next_sync) {
2201 rw_exit(&dn->dn_struct_rwlock);
2202 dnode_rele(dn, FTAG);
2203
2204 if (restarted)
2205 return (SET_ERROR(EBUSY));
2206
2207 txg_wait_synced(dmu_objset_pool(os), 0);
2208 restarted = 1;
2209 goto restart;
2210 }
2211
2212 err = SET_ERROR(EBUSY);
2213 } else {
2214 err = dnode_next_offset(dn, DNODE_FIND_HAVELOCK |
2215 (hole ? DNODE_FIND_HOLE : 0), off, 1, 1, 0);
2216 }
2217
2218 rw_exit(&dn->dn_struct_rwlock);
2219 dnode_rele(dn, FTAG);
2220
2221 return (err);
2222 }
2223
2224 int
dmu_read_l0_bps(objset_t * os,uint64_t object,uint64_t offset,uint64_t length,blkptr_t * bps,size_t * nbpsp)2225 dmu_read_l0_bps(objset_t *os, uint64_t object, uint64_t offset, uint64_t length,
2226 blkptr_t *bps, size_t *nbpsp)
2227 {
2228 dmu_buf_t **dbp, *dbuf;
2229 dmu_buf_impl_t *db;
2230 blkptr_t *bp;
2231 int error, numbufs;
2232
2233 error = dmu_buf_hold_array(os, object, offset, length, FALSE, FTAG,
2234 &numbufs, &dbp);
2235 if (error != 0) {
2236 if (error == ESRCH) {
2237 error = SET_ERROR(ENXIO);
2238 }
2239 return (error);
2240 }
2241
2242 ASSERT3U(numbufs, <=, *nbpsp);
2243
2244 for (int i = 0; i < numbufs; i++) {
2245 dbuf = dbp[i];
2246 db = (dmu_buf_impl_t *)dbuf;
2247
2248 mutex_enter(&db->db_mtx);
2249
2250 if (!list_is_empty(&db->db_dirty_records)) {
2251 dbuf_dirty_record_t *dr;
2252
2253 dr = list_head(&db->db_dirty_records);
2254 if (dr->dt.dl.dr_brtwrite) {
2255 /*
2256 * This is very special case where we clone a
2257 * block and in the same transaction group we
2258 * read its BP (most likely to clone the clone).
2259 */
2260 bp = &dr->dt.dl.dr_overridden_by;
2261 } else {
2262 /*
2263 * The block was modified in the same
2264 * transaction group.
2265 */
2266 mutex_exit(&db->db_mtx);
2267 error = SET_ERROR(EAGAIN);
2268 goto out;
2269 }
2270 } else {
2271 bp = db->db_blkptr;
2272 }
2273
2274 mutex_exit(&db->db_mtx);
2275
2276 if (bp == NULL) {
2277 /*
2278 * The file size was increased, but the block was never
2279 * written, otherwise we would either have the block
2280 * pointer or the dirty record and would not get here.
2281 * It is effectively a hole, so report it as such.
2282 */
2283 BP_ZERO(&bps[i]);
2284 continue;
2285 }
2286 /*
2287 * Make sure we clone only data blocks.
2288 */
2289 if (BP_IS_METADATA(bp) && !BP_IS_HOLE(bp)) {
2290 error = SET_ERROR(EINVAL);
2291 goto out;
2292 }
2293
2294 /*
2295 * If the block was allocated in transaction group that is not
2296 * yet synced, we could clone it, but we couldn't write this
2297 * operation into ZIL, or it may be impossible to replay, since
2298 * the block may appear not yet allocated at that point.
2299 */
2300 if (BP_PHYSICAL_BIRTH(bp) > spa_freeze_txg(os->os_spa)) {
2301 error = SET_ERROR(EINVAL);
2302 goto out;
2303 }
2304 if (BP_PHYSICAL_BIRTH(bp) > spa_last_synced_txg(os->os_spa)) {
2305 error = SET_ERROR(EAGAIN);
2306 goto out;
2307 }
2308
2309 bps[i] = *bp;
2310 }
2311
2312 *nbpsp = numbufs;
2313 out:
2314 dmu_buf_rele_array(dbp, numbufs, FTAG);
2315
2316 return (error);
2317 }
2318
2319 int
dmu_brt_clone(objset_t * os,uint64_t object,uint64_t offset,uint64_t length,dmu_tx_t * tx,const blkptr_t * bps,size_t nbps)2320 dmu_brt_clone(objset_t *os, uint64_t object, uint64_t offset, uint64_t length,
2321 dmu_tx_t *tx, const blkptr_t *bps, size_t nbps)
2322 {
2323 spa_t *spa;
2324 dmu_buf_t **dbp, *dbuf;
2325 dmu_buf_impl_t *db;
2326 struct dirty_leaf *dl;
2327 dbuf_dirty_record_t *dr;
2328 const blkptr_t *bp;
2329 int error = 0, i, numbufs;
2330
2331 spa = os->os_spa;
2332
2333 VERIFY0(dmu_buf_hold_array(os, object, offset, length, FALSE, FTAG,
2334 &numbufs, &dbp));
2335 ASSERT3U(nbps, ==, numbufs);
2336
2337 /*
2338 * Before we start cloning make sure that the dbufs sizes match new BPs
2339 * sizes. If they don't, that's a no-go, as we are not able to shrink
2340 * dbufs.
2341 */
2342 for (i = 0; i < numbufs; i++) {
2343 dbuf = dbp[i];
2344 db = (dmu_buf_impl_t *)dbuf;
2345 bp = &bps[i];
2346
2347 ASSERT0(db->db_level);
2348 ASSERT(db->db_blkid != DMU_BONUS_BLKID);
2349 ASSERT(db->db_blkid != DMU_SPILL_BLKID);
2350
2351 if (!BP_IS_HOLE(bp) && BP_GET_LSIZE(bp) != dbuf->db_size) {
2352 error = SET_ERROR(EXDEV);
2353 goto out;
2354 }
2355 }
2356
2357 for (i = 0; i < numbufs; i++) {
2358 dbuf = dbp[i];
2359 db = (dmu_buf_impl_t *)dbuf;
2360 bp = &bps[i];
2361
2362 ASSERT0(db->db_level);
2363 ASSERT(db->db_blkid != DMU_BONUS_BLKID);
2364 ASSERT(db->db_blkid != DMU_SPILL_BLKID);
2365 ASSERT(BP_IS_HOLE(bp) || dbuf->db_size == BP_GET_LSIZE(bp));
2366
2367 dmu_buf_will_clone(dbuf, tx);
2368
2369 mutex_enter(&db->db_mtx);
2370
2371 dr = list_head(&db->db_dirty_records);
2372 VERIFY(dr != NULL);
2373 ASSERT3U(dr->dr_txg, ==, tx->tx_txg);
2374 dl = &dr->dt.dl;
2375 dl->dr_overridden_by = *bp;
2376 if (!BP_IS_HOLE(bp) || bp->blk_birth != 0) {
2377 if (!BP_IS_EMBEDDED(bp)) {
2378 BP_SET_BIRTH(&dl->dr_overridden_by, dr->dr_txg,
2379 BP_PHYSICAL_BIRTH(bp));
2380 } else {
2381 dl->dr_overridden_by.blk_birth = dr->dr_txg;
2382 }
2383 }
2384 dl->dr_brtwrite = B_TRUE;
2385 dl->dr_override_state = DR_OVERRIDDEN;
2386
2387 mutex_exit(&db->db_mtx);
2388
2389 /*
2390 * When data in embedded into BP there is no need to create
2391 * BRT entry as there is no data block. Just copy the BP as
2392 * it contains the data.
2393 */
2394 if (!BP_IS_HOLE(bp) && !BP_IS_EMBEDDED(bp)) {
2395 brt_pending_add(spa, bp, tx);
2396 }
2397 }
2398 out:
2399 dmu_buf_rele_array(dbp, numbufs, FTAG);
2400
2401 return (error);
2402 }
2403
2404 void
__dmu_object_info_from_dnode(dnode_t * dn,dmu_object_info_t * doi)2405 __dmu_object_info_from_dnode(dnode_t *dn, dmu_object_info_t *doi)
2406 {
2407 dnode_phys_t *dnp = dn->dn_phys;
2408
2409 doi->doi_data_block_size = dn->dn_datablksz;
2410 doi->doi_metadata_block_size = dn->dn_indblkshift ?
2411 1ULL << dn->dn_indblkshift : 0;
2412 doi->doi_type = dn->dn_type;
2413 doi->doi_bonus_type = dn->dn_bonustype;
2414 doi->doi_bonus_size = dn->dn_bonuslen;
2415 doi->doi_dnodesize = dn->dn_num_slots << DNODE_SHIFT;
2416 doi->doi_indirection = dn->dn_nlevels;
2417 doi->doi_checksum = dn->dn_checksum;
2418 doi->doi_compress = dn->dn_compress;
2419 doi->doi_nblkptr = dn->dn_nblkptr;
2420 doi->doi_physical_blocks_512 = (DN_USED_BYTES(dnp) + 256) >> 9;
2421 doi->doi_max_offset = (dn->dn_maxblkid + 1) * dn->dn_datablksz;
2422 doi->doi_fill_count = 0;
2423 for (int i = 0; i < dnp->dn_nblkptr; i++)
2424 doi->doi_fill_count += BP_GET_FILL(&dnp->dn_blkptr[i]);
2425 }
2426
2427 void
dmu_object_info_from_dnode(dnode_t * dn,dmu_object_info_t * doi)2428 dmu_object_info_from_dnode(dnode_t *dn, dmu_object_info_t *doi)
2429 {
2430 rw_enter(&dn->dn_struct_rwlock, RW_READER);
2431 mutex_enter(&dn->dn_mtx);
2432
2433 __dmu_object_info_from_dnode(dn, doi);
2434
2435 mutex_exit(&dn->dn_mtx);
2436 rw_exit(&dn->dn_struct_rwlock);
2437 }
2438
2439 /*
2440 * Get information on a DMU object.
2441 * If doi is NULL, just indicates whether the object exists.
2442 */
2443 int
dmu_object_info(objset_t * os,uint64_t object,dmu_object_info_t * doi)2444 dmu_object_info(objset_t *os, uint64_t object, dmu_object_info_t *doi)
2445 {
2446 dnode_t *dn;
2447 int err = dnode_hold(os, object, FTAG, &dn);
2448
2449 if (err)
2450 return (err);
2451
2452 if (doi != NULL)
2453 dmu_object_info_from_dnode(dn, doi);
2454
2455 dnode_rele(dn, FTAG);
2456 return (0);
2457 }
2458
2459 /*
2460 * As above, but faster; can be used when you have a held dbuf in hand.
2461 */
2462 void
dmu_object_info_from_db(dmu_buf_t * db_fake,dmu_object_info_t * doi)2463 dmu_object_info_from_db(dmu_buf_t *db_fake, dmu_object_info_t *doi)
2464 {
2465 dmu_buf_impl_t *db = (dmu_buf_impl_t *)db_fake;
2466
2467 DB_DNODE_ENTER(db);
2468 dmu_object_info_from_dnode(DB_DNODE(db), doi);
2469 DB_DNODE_EXIT(db);
2470 }
2471
2472 /*
2473 * Faster still when you only care about the size.
2474 */
2475 void
dmu_object_size_from_db(dmu_buf_t * db_fake,uint32_t * blksize,u_longlong_t * nblk512)2476 dmu_object_size_from_db(dmu_buf_t *db_fake, uint32_t *blksize,
2477 u_longlong_t *nblk512)
2478 {
2479 dmu_buf_impl_t *db = (dmu_buf_impl_t *)db_fake;
2480 dnode_t *dn;
2481
2482 DB_DNODE_ENTER(db);
2483 dn = DB_DNODE(db);
2484
2485 *blksize = dn->dn_datablksz;
2486 /* add in number of slots used for the dnode itself */
2487 *nblk512 = ((DN_USED_BYTES(dn->dn_phys) + SPA_MINBLOCKSIZE/2) >>
2488 SPA_MINBLOCKSHIFT) + dn->dn_num_slots;
2489 DB_DNODE_EXIT(db);
2490 }
2491
2492 void
dmu_object_dnsize_from_db(dmu_buf_t * db_fake,int * dnsize)2493 dmu_object_dnsize_from_db(dmu_buf_t *db_fake, int *dnsize)
2494 {
2495 dmu_buf_impl_t *db = (dmu_buf_impl_t *)db_fake;
2496 dnode_t *dn;
2497
2498 DB_DNODE_ENTER(db);
2499 dn = DB_DNODE(db);
2500 *dnsize = dn->dn_num_slots << DNODE_SHIFT;
2501 DB_DNODE_EXIT(db);
2502 }
2503
2504 void
byteswap_uint64_array(void * vbuf,size_t size)2505 byteswap_uint64_array(void *vbuf, size_t size)
2506 {
2507 uint64_t *buf = vbuf;
2508 size_t count = size >> 3;
2509 int i;
2510
2511 ASSERT((size & 7) == 0);
2512
2513 for (i = 0; i < count; i++)
2514 buf[i] = BSWAP_64(buf[i]);
2515 }
2516
2517 void
byteswap_uint32_array(void * vbuf,size_t size)2518 byteswap_uint32_array(void *vbuf, size_t size)
2519 {
2520 uint32_t *buf = vbuf;
2521 size_t count = size >> 2;
2522 int i;
2523
2524 ASSERT((size & 3) == 0);
2525
2526 for (i = 0; i < count; i++)
2527 buf[i] = BSWAP_32(buf[i]);
2528 }
2529
2530 void
byteswap_uint16_array(void * vbuf,size_t size)2531 byteswap_uint16_array(void *vbuf, size_t size)
2532 {
2533 uint16_t *buf = vbuf;
2534 size_t count = size >> 1;
2535 int i;
2536
2537 ASSERT((size & 1) == 0);
2538
2539 for (i = 0; i < count; i++)
2540 buf[i] = BSWAP_16(buf[i]);
2541 }
2542
2543 void
byteswap_uint8_array(void * vbuf,size_t size)2544 byteswap_uint8_array(void *vbuf, size_t size)
2545 {
2546 (void) vbuf, (void) size;
2547 }
2548
2549 void
dmu_init(void)2550 dmu_init(void)
2551 {
2552 abd_init();
2553 zfs_dbgmsg_init();
2554 sa_cache_init();
2555 dmu_objset_init();
2556 dnode_init();
2557 zfetch_init();
2558 dmu_tx_init();
2559 l2arc_init();
2560 arc_init();
2561 dbuf_init();
2562 }
2563
2564 void
dmu_fini(void)2565 dmu_fini(void)
2566 {
2567 arc_fini(); /* arc depends on l2arc, so arc must go first */
2568 l2arc_fini();
2569 dmu_tx_fini();
2570 zfetch_fini();
2571 dbuf_fini();
2572 dnode_fini();
2573 dmu_objset_fini();
2574 sa_cache_fini();
2575 zfs_dbgmsg_fini();
2576 abd_fini();
2577 }
2578
2579 EXPORT_SYMBOL(dmu_bonus_hold);
2580 EXPORT_SYMBOL(dmu_bonus_hold_by_dnode);
2581 EXPORT_SYMBOL(dmu_buf_hold_array_by_bonus);
2582 EXPORT_SYMBOL(dmu_buf_rele_array);
2583 EXPORT_SYMBOL(dmu_prefetch);
2584 EXPORT_SYMBOL(dmu_prefetch_by_dnode);
2585 EXPORT_SYMBOL(dmu_prefetch_dnode);
2586 EXPORT_SYMBOL(dmu_free_range);
2587 EXPORT_SYMBOL(dmu_free_long_range);
2588 EXPORT_SYMBOL(dmu_free_long_object);
2589 EXPORT_SYMBOL(dmu_read);
2590 EXPORT_SYMBOL(dmu_read_by_dnode);
2591 EXPORT_SYMBOL(dmu_write);
2592 EXPORT_SYMBOL(dmu_write_by_dnode);
2593 EXPORT_SYMBOL(dmu_prealloc);
2594 EXPORT_SYMBOL(dmu_object_info);
2595 EXPORT_SYMBOL(dmu_object_info_from_dnode);
2596 EXPORT_SYMBOL(dmu_object_info_from_db);
2597 EXPORT_SYMBOL(dmu_object_size_from_db);
2598 EXPORT_SYMBOL(dmu_object_dnsize_from_db);
2599 EXPORT_SYMBOL(dmu_object_set_nlevels);
2600 EXPORT_SYMBOL(dmu_object_set_blocksize);
2601 EXPORT_SYMBOL(dmu_object_set_maxblkid);
2602 EXPORT_SYMBOL(dmu_object_set_checksum);
2603 EXPORT_SYMBOL(dmu_object_set_compress);
2604 EXPORT_SYMBOL(dmu_offset_next);
2605 EXPORT_SYMBOL(dmu_write_policy);
2606 EXPORT_SYMBOL(dmu_sync);
2607 EXPORT_SYMBOL(dmu_request_arcbuf);
2608 EXPORT_SYMBOL(dmu_return_arcbuf);
2609 EXPORT_SYMBOL(dmu_assign_arcbuf_by_dnode);
2610 EXPORT_SYMBOL(dmu_assign_arcbuf_by_dbuf);
2611 EXPORT_SYMBOL(dmu_buf_hold);
2612 EXPORT_SYMBOL(dmu_ot);
2613
2614 ZFS_MODULE_PARAM(zfs, zfs_, nopwrite_enabled, INT, ZMOD_RW,
2615 "Enable NOP writes");
2616
2617 ZFS_MODULE_PARAM(zfs, zfs_, per_txg_dirty_frees_percent, UINT, ZMOD_RW,
2618 "Percentage of dirtied blocks from frees in one TXG");
2619
2620 ZFS_MODULE_PARAM(zfs, zfs_, dmu_offset_next_sync, INT, ZMOD_RW,
2621 "Enable forcing txg sync to find holes");
2622
2623 /* CSTYLED */
2624 ZFS_MODULE_PARAM(zfs, , dmu_prefetch_max, UINT, ZMOD_RW,
2625 "Limit one prefetch call to this size");
2626