1 // SPDX-License-Identifier: CDDL-1.0
2 /*
3 * This file and its contents are supplied under the terms of the
4 * Common Development and Distribution License ("CDDL"), version 1.0.
5 * You may only use this file in accordance with the terms of version
6 * 1.0 of the CDDL.
7 *
8 * A full copy of the text of the CDDL should have accompanied this
9 * source. A copy of the CDDL is also available via the Internet at
10 * https://opensource.org/license/CDDL-1.0.
11 */
12
13 /*
14 * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved.
15 * Copyright (c) 2012, 2020 by Delphix. All rights reserved.
16 * Copyright (c) 2014 Spectra Logic Corporation, All rights reserved.
17 * Copyright 2020 Oxide Computer Company
18 */
19
20 #include <sys/zfs_context.h>
21 #include <sys/dbuf.h>
22 #include <sys/dnode.h>
23 #include <sys/dmu.h>
24 #include <sys/dmu_tx.h>
25 #include <sys/dmu_objset.h>
26 #include <sys/dmu_recv.h>
27 #include <sys/dsl_dataset.h>
28 #include <sys/spa.h>
29 #include <sys/range_tree.h>
30 #include <sys/zfeature.h>
31
32 static void
dnode_increase_indirection(dnode_t * dn,dmu_tx_t * tx)33 dnode_increase_indirection(dnode_t *dn, dmu_tx_t *tx)
34 {
35 dmu_buf_impl_t *db;
36 int txgoff = tx->tx_txg & TXG_MASK;
37 int nblkptr = dn->dn_phys->dn_nblkptr;
38 int old_toplvl = dn->dn_phys->dn_nlevels - 1;
39 int new_level = dn->dn_next_nlevels[txgoff];
40 int i;
41
42 rw_enter(&dn->dn_struct_rwlock, RW_WRITER);
43
44 /* this dnode can't be paged out because it's dirty */
45 ASSERT(dn->dn_phys->dn_type != DMU_OT_NONE);
46 ASSERT(new_level > 1 && dn->dn_phys->dn_nlevels > 0);
47
48 db = dbuf_hold_level(dn, dn->dn_phys->dn_nlevels, 0, FTAG);
49 ASSERT(db != NULL);
50
51 dn->dn_phys->dn_nlevels = new_level;
52 dprintf("os=%p obj=%llu, increase to %d\n", dn->dn_objset,
53 (u_longlong_t)dn->dn_object, dn->dn_phys->dn_nlevels);
54
55 /*
56 * Lock ordering requires that we hold the children's db_mutexes (by
57 * calling dbuf_find()) before holding the parent's db_rwlock. The lock
58 * order is imposed by dbuf_read's steps of "grab the lock to protect
59 * db_parent, get db_parent, hold db_parent's db_rwlock".
60 */
61 dmu_buf_impl_t *children[DN_MAX_NBLKPTR];
62 ASSERT3U(nblkptr, <=, DN_MAX_NBLKPTR);
63 for (i = 0; i < nblkptr; i++) {
64 children[i] = dbuf_find(dn->dn_objset, dn->dn_object,
65 old_toplvl, i, NULL);
66 }
67
68 /* transfer dnode's block pointers to new indirect block */
69 (void) dbuf_read(db, NULL, DB_RF_MUST_SUCCEED|DB_RF_HAVESTRUCT);
70 if (dn->dn_dbuf != NULL)
71 rw_enter(&dn->dn_dbuf->db_rwlock, RW_WRITER);
72 rw_enter(&db->db_rwlock, RW_WRITER);
73 ASSERT(db->db.db_data);
74 ASSERT(arc_released(db->db_buf));
75 ASSERT3U(sizeof (blkptr_t) * nblkptr, <=, db->db.db_size);
76 memcpy(db->db.db_data, dn->dn_phys->dn_blkptr,
77 sizeof (blkptr_t) * nblkptr);
78 arc_buf_freeze(db->db_buf);
79
80 /* set dbuf's parent pointers to new indirect buf */
81 for (i = 0; i < nblkptr; i++) {
82 dmu_buf_impl_t *child = children[i];
83
84 if (child == NULL)
85 continue;
86 #ifdef ZFS_DEBUG
87 DB_DNODE_ENTER(child);
88 ASSERT3P(DB_DNODE(child), ==, dn);
89 DB_DNODE_EXIT(child);
90 #endif /* DEBUG */
91 if (child->db_parent && child->db_parent != dn->dn_dbuf) {
92 ASSERT(child->db_parent->db_level == db->db_level);
93 ASSERT(child->db_blkptr !=
94 &dn->dn_phys->dn_blkptr[child->db_blkid]);
95 mutex_exit(&child->db_mtx);
96 continue;
97 }
98 ASSERT(child->db_parent == NULL ||
99 child->db_parent == dn->dn_dbuf);
100
101 child->db_parent = db;
102 dbuf_add_ref(db, child);
103 if (db->db.db_data)
104 child->db_blkptr = (blkptr_t *)db->db.db_data + i;
105 else
106 child->db_blkptr = NULL;
107 dprintf_dbuf_bp(child, child->db_blkptr,
108 "changed db_blkptr to new indirect %s", "");
109
110 mutex_exit(&child->db_mtx);
111 }
112
113 memset(dn->dn_phys->dn_blkptr, 0, sizeof (blkptr_t) * nblkptr);
114
115 rw_exit(&db->db_rwlock);
116 if (dn->dn_dbuf != NULL)
117 rw_exit(&dn->dn_dbuf->db_rwlock);
118
119 dbuf_rele(db, FTAG);
120
121 rw_exit(&dn->dn_struct_rwlock);
122 }
123
124 static void
free_blocks(dnode_t * dn,blkptr_t * bp,int num,dmu_tx_t * tx)125 free_blocks(dnode_t *dn, blkptr_t *bp, int num, dmu_tx_t *tx)
126 {
127 dsl_dataset_t *ds = dn->dn_objset->os_dsl_dataset;
128 uint64_t bytesfreed = 0;
129
130 dprintf("ds=%p obj=%llx num=%d\n", ds, (u_longlong_t)dn->dn_object,
131 num);
132
133 for (int i = 0; i < num; i++, bp++) {
134 if (BP_IS_HOLE(bp))
135 continue;
136
137 bytesfreed += dsl_dataset_block_kill(ds, bp, tx, B_FALSE);
138 ASSERT3U(bytesfreed, <=, DN_USED_BYTES(dn->dn_phys));
139
140 /*
141 * Save some useful information on the holes being
142 * punched, including logical size, type, and indirection
143 * level. Retaining birth time enables detection of when
144 * holes are punched for reducing the number of free
145 * records transmitted during a zfs send.
146 */
147
148 uint64_t lsize = BP_GET_LSIZE(bp);
149 dmu_object_type_t type = BP_GET_TYPE(bp);
150 uint64_t lvl = BP_GET_LEVEL(bp);
151
152 memset(bp, 0, sizeof (blkptr_t));
153
154 if (spa_feature_is_active(dn->dn_objset->os_spa,
155 SPA_FEATURE_HOLE_BIRTH)) {
156 BP_SET_LSIZE(bp, lsize);
157 BP_SET_TYPE(bp, type);
158 BP_SET_LEVEL(bp, lvl);
159 BP_SET_BIRTH(bp, dmu_tx_get_txg(tx), 0);
160 }
161 }
162 dnode_diduse_space(dn, -bytesfreed);
163 }
164
165 #ifdef ZFS_DEBUG
166 static void
free_verify(dmu_buf_impl_t * db,uint64_t start,uint64_t end,dmu_tx_t * tx)167 free_verify(dmu_buf_impl_t *db, uint64_t start, uint64_t end, dmu_tx_t *tx)
168 {
169 uint64_t off, num, i, j;
170 unsigned int epbs;
171 int err;
172 uint64_t txg = tx->tx_txg;
173 dnode_t *dn;
174
175 DB_DNODE_ENTER(db);
176 dn = DB_DNODE(db);
177 epbs = dn->dn_phys->dn_indblkshift - SPA_BLKPTRSHIFT;
178 off = start - (db->db_blkid << epbs);
179 num = end - start + 1;
180
181 ASSERT3U(dn->dn_phys->dn_indblkshift, >=, SPA_BLKPTRSHIFT);
182 ASSERT3U(end + 1, >=, start);
183 ASSERT3U(start, >=, (db->db_blkid << epbs));
184 ASSERT3U(db->db_level, >, 0);
185 ASSERT3U(db->db.db_size, ==, 1 << dn->dn_phys->dn_indblkshift);
186 ASSERT3U(off+num, <=, db->db.db_size >> SPA_BLKPTRSHIFT);
187 ASSERT(db->db_blkptr != NULL);
188
189 for (i = off; i < off+num; i++) {
190 uint64_t *buf;
191 dmu_buf_impl_t *child;
192 dbuf_dirty_record_t *dr;
193
194 ASSERT(db->db_level == 1);
195
196 rw_enter(&dn->dn_struct_rwlock, RW_READER);
197 err = dbuf_hold_impl(dn, db->db_level - 1,
198 (db->db_blkid << epbs) + i, TRUE, FALSE, FTAG, &child);
199 rw_exit(&dn->dn_struct_rwlock);
200 if (err == ENOENT)
201 continue;
202 ASSERT0(err);
203 ASSERT0(child->db_level);
204 dr = dbuf_find_dirty_eq(child, txg);
205
206 /* data_old better be zeroed */
207 if (dr) {
208 buf = dr->dt.dl.dr_data->b_data;
209 for (j = 0; j < child->db.db_size >> 3; j++) {
210 if (buf[j] != 0) {
211 panic("freed data not zero: "
212 "child=%p i=%llu off=%llu "
213 "num=%llu\n",
214 (void *)child, (u_longlong_t)i,
215 (u_longlong_t)off,
216 (u_longlong_t)num);
217 }
218 }
219 }
220
221 /*
222 * db_data better be zeroed unless it's dirty in a
223 * future txg.
224 */
225 mutex_enter(&child->db_mtx);
226 buf = child->db.db_data;
227 if (buf != NULL && child->db_state != DB_FILL &&
228 list_is_empty(&child->db_dirty_records)) {
229 for (j = 0; j < child->db.db_size >> 3; j++) {
230 if (buf[j] != 0) {
231 panic("freed data not zero: "
232 "child=%p i=%llu off=%llu "
233 "num=%llu\n",
234 (void *)child, (u_longlong_t)i,
235 (u_longlong_t)off,
236 (u_longlong_t)num);
237 }
238 }
239 }
240 mutex_exit(&child->db_mtx);
241
242 dbuf_rele(child, FTAG);
243 }
244 DB_DNODE_EXIT(db);
245 }
246 #endif
247
248 /*
249 * We don't usually free the indirect blocks here. If in one txg we have a
250 * free_range and a write to the same indirect block, it's important that we
251 * preserve the hole's birth times. Therefore, we don't free any any indirect
252 * blocks in free_children(). If an indirect block happens to turn into all
253 * holes, it will be freed by dbuf_write_children_ready, which happens at a
254 * point in the syncing process where we know for certain the contents of the
255 * indirect block.
256 *
257 * However, if we're freeing a dnode, its space accounting must go to zero
258 * before we actually try to free the dnode, or we will trip an assertion. In
259 * addition, we know the case described above cannot occur, because the dnode is
260 * being freed. Therefore, we free the indirect blocks immediately in that
261 * case.
262 */
263 static void
free_children(dmu_buf_impl_t * db,uint64_t blkid,uint64_t nblks,boolean_t free_indirects,dmu_tx_t * tx)264 free_children(dmu_buf_impl_t *db, uint64_t blkid, uint64_t nblks,
265 boolean_t free_indirects, dmu_tx_t *tx)
266 {
267 dnode_t *dn;
268 blkptr_t *bp;
269 dmu_buf_impl_t *subdb;
270 uint64_t start, end, dbstart, dbend;
271 unsigned int epbs, shift, i;
272
273 /*
274 * There is a small possibility that this block will not be cached:
275 * 1 - if level > 1 and there are no children with level <= 1
276 * 2 - if this block was evicted since we read it from
277 * dmu_tx_hold_free().
278 */
279 if (db->db_state != DB_CACHED)
280 (void) dbuf_read(db, NULL, DB_RF_MUST_SUCCEED);
281
282 /*
283 * If we modify this indirect block, and we are not freeing the
284 * dnode (!free_indirects), then this indirect block needs to get
285 * written to disk by dbuf_write(). If it is dirty, we know it will
286 * be written (otherwise, we would have incorrect on-disk state
287 * because the space would be freed but still referenced by the BP
288 * in this indirect block). Therefore we VERIFY that it is
289 * dirty.
290 *
291 * Our VERIFY covers some cases that do not actually have to be
292 * dirty, but the open-context code happens to dirty. E.g. if the
293 * blocks we are freeing are all holes, because in that case, we
294 * are only freeing part of this indirect block, so it is an
295 * ancestor of the first or last block to be freed. The first and
296 * last L1 indirect blocks are always dirtied by dnode_free_range().
297 */
298 if (!free_indirects) {
299 db_lock_type_t dblt = dmu_buf_lock_parent(db, RW_READER, FTAG);
300 VERIFY_IMPLY(BP_GET_FILL(db->db_blkptr) > 0,
301 db->db_dirtycnt > 0);
302 dmu_buf_unlock_parent(db, dblt, FTAG);
303 }
304
305 dbuf_release_bp(db);
306 bp = db->db.db_data;
307
308 DB_DNODE_ENTER(db);
309 dn = DB_DNODE(db);
310 epbs = dn->dn_phys->dn_indblkshift - SPA_BLKPTRSHIFT;
311 ASSERT3U(epbs, <, 31);
312 shift = (db->db_level - 1) * epbs;
313 dbstart = db->db_blkid << epbs;
314 start = blkid >> shift;
315 if (dbstart < start) {
316 bp += start - dbstart;
317 } else {
318 start = dbstart;
319 }
320 dbend = ((db->db_blkid + 1) << epbs) - 1;
321 end = (blkid + nblks - 1) >> shift;
322 if (dbend <= end)
323 end = dbend;
324
325 ASSERT3U(start, <=, end);
326
327 if (db->db_level == 1) {
328 FREE_VERIFY(db, start, end, tx);
329 rw_enter(&db->db_rwlock, RW_WRITER);
330 free_blocks(dn, bp, end - start + 1, tx);
331 rw_exit(&db->db_rwlock);
332 } else {
333 for (uint64_t id = start; id <= end; id++, bp++) {
334 if (BP_IS_HOLE(bp))
335 continue;
336 rw_enter(&dn->dn_struct_rwlock, RW_READER);
337 VERIFY0(dbuf_hold_impl(dn, db->db_level - 1,
338 id, TRUE, FALSE, FTAG, &subdb));
339 rw_exit(&dn->dn_struct_rwlock);
340 ASSERT3P(bp, ==, subdb->db_blkptr);
341
342 free_children(subdb, blkid, nblks, free_indirects, tx);
343 dbuf_rele(subdb, FTAG);
344 }
345 }
346
347 if (free_indirects) {
348 rw_enter(&db->db_rwlock, RW_WRITER);
349 for (i = 0, bp = db->db.db_data; i < 1 << epbs; i++, bp++)
350 ASSERT(BP_IS_HOLE(bp));
351 memset(db->db.db_data, 0, db->db.db_size);
352 free_blocks(dn, db->db_blkptr, 1, tx);
353 rw_exit(&db->db_rwlock);
354 }
355
356 DB_DNODE_EXIT(db);
357 arc_buf_freeze(db->db_buf);
358 }
359
360 /*
361 * Traverse the indicated range of the provided file
362 * and "free" all the blocks contained there.
363 */
364 static void
dnode_sync_free_range_impl(dnode_t * dn,uint64_t blkid,uint64_t nblks,boolean_t free_indirects,dmu_tx_t * tx)365 dnode_sync_free_range_impl(dnode_t *dn, uint64_t blkid, uint64_t nblks,
366 boolean_t free_indirects, dmu_tx_t *tx)
367 {
368 blkptr_t *bp = dn->dn_phys->dn_blkptr;
369 int dnlevel = dn->dn_phys->dn_nlevels;
370 boolean_t trunc = B_FALSE;
371
372 if (blkid > dn->dn_phys->dn_maxblkid)
373 return;
374
375 ASSERT(dn->dn_phys->dn_maxblkid < UINT64_MAX);
376 if (blkid + nblks > dn->dn_phys->dn_maxblkid) {
377 nblks = dn->dn_phys->dn_maxblkid - blkid + 1;
378 trunc = B_TRUE;
379 }
380
381 /* There are no indirect blocks in the object */
382 if (dnlevel == 1) {
383 if (blkid >= dn->dn_phys->dn_nblkptr) {
384 /* this range was never made persistent */
385 return;
386 }
387 ASSERT3U(blkid + nblks, <=, dn->dn_phys->dn_nblkptr);
388 free_blocks(dn, bp + blkid, nblks, tx);
389 } else {
390 int shift = (dnlevel - 1) *
391 (dn->dn_phys->dn_indblkshift - SPA_BLKPTRSHIFT);
392 int start = blkid >> shift;
393 int end = (blkid + nblks - 1) >> shift;
394 dmu_buf_impl_t *db;
395
396 ASSERT(start < dn->dn_phys->dn_nblkptr);
397 bp += start;
398 for (int i = start; i <= end; i++, bp++) {
399 if (BP_IS_HOLE(bp))
400 continue;
401 rw_enter(&dn->dn_struct_rwlock, RW_READER);
402 VERIFY0(dbuf_hold_impl(dn, dnlevel - 1, i,
403 TRUE, FALSE, FTAG, &db));
404 rw_exit(&dn->dn_struct_rwlock);
405 free_children(db, blkid, nblks, free_indirects, tx);
406 dbuf_rele(db, FTAG);
407 }
408 }
409
410 /*
411 * Do not truncate the maxblkid if we are performing a raw
412 * receive. The raw receive sets the maxblkid manually and
413 * must not be overridden. Usually, the last DRR_FREE record
414 * will be at the maxblkid, because the source system sets
415 * the maxblkid when truncating. However, if the last block
416 * was freed by overwriting with zeros and being compressed
417 * away to a hole, the source system will generate a DRR_FREE
418 * record while leaving the maxblkid after the end of that
419 * record. In this case we need to leave the maxblkid as
420 * indicated in the DRR_OBJECT record, so that it matches the
421 * source system, ensuring that the cryptographic hashes will
422 * match.
423 */
424 if (trunc && !dn->dn_objset->os_raw_receive) {
425 uint64_t off __maybe_unused;
426 dn->dn_phys->dn_maxblkid = blkid == 0 ? 0 : blkid - 1;
427
428 off = (dn->dn_phys->dn_maxblkid + 1) *
429 (dn->dn_phys->dn_datablkszsec << SPA_MINBLOCKSHIFT);
430 ASSERT(off < dn->dn_phys->dn_maxblkid ||
431 dn->dn_phys->dn_maxblkid == 0 ||
432 dnode_next_offset(dn, 0, &off, 1, 1, 0) != 0);
433 }
434 }
435
436 /*
437 * Try to kick all the dnode's dbufs out of the cache...
438 */
439 void
dnode_evict_dbufs(dnode_t * dn)440 dnode_evict_dbufs(dnode_t *dn)
441 {
442 dmu_buf_impl_t *db_marker;
443 dmu_buf_impl_t *db, *db_next;
444
445 db_marker = kmem_alloc(sizeof (dmu_buf_impl_t), KM_SLEEP);
446
447 mutex_enter(&dn->dn_dbufs_mtx);
448 for (db = avl_first(&dn->dn_dbufs); db != NULL; db = db_next) {
449
450 #ifdef ZFS_DEBUG
451 DB_DNODE_ENTER(db);
452 ASSERT3P(DB_DNODE(db), ==, dn);
453 DB_DNODE_EXIT(db);
454 #endif /* DEBUG */
455
456 mutex_enter(&db->db_mtx);
457 if (db->db_state != DB_EVICTING &&
458 zfs_refcount_is_zero(&db->db_holds)) {
459 db_marker->db_level = db->db_level;
460 db_marker->db_blkid = db->db_blkid;
461 /*
462 * Insert a MARKER node with the same level and blkid.
463 * And to resolve any ties in dbuf_compare() use the
464 * pointer of the dbuf that we are evicting. Pass the
465 * address in db_parent.
466 */
467 db_marker->db_state = DB_MARKER;
468 db_marker->db_parent = (void *)((uintptr_t)db - 1);
469 avl_insert_here(&dn->dn_dbufs, db_marker, db,
470 AVL_BEFORE);
471
472 /*
473 * We need to use the "marker" dbuf rather than
474 * simply getting the next dbuf, because
475 * dbuf_destroy() may actually remove multiple dbufs.
476 * It can call itself recursively on the parent dbuf,
477 * which may also be removed from dn_dbufs. The code
478 * flow would look like:
479 *
480 * dbuf_destroy():
481 * dnode_rele_and_unlock(parent_dbuf, evicting=TRUE):
482 * if (!cacheable || pending_evict)
483 * dbuf_destroy()
484 */
485 dbuf_destroy(db);
486
487 db_next = AVL_NEXT(&dn->dn_dbufs, db_marker);
488 avl_remove(&dn->dn_dbufs, db_marker);
489 } else {
490 db->db_pending_evict = TRUE;
491 db->db_partial_read = FALSE;
492 mutex_exit(&db->db_mtx);
493 db_next = AVL_NEXT(&dn->dn_dbufs, db);
494 }
495 }
496 mutex_exit(&dn->dn_dbufs_mtx);
497
498 kmem_free(db_marker, sizeof (dmu_buf_impl_t));
499
500 dnode_evict_bonus(dn);
501 }
502
503 void
dnode_evict_bonus(dnode_t * dn)504 dnode_evict_bonus(dnode_t *dn)
505 {
506 rw_enter(&dn->dn_struct_rwlock, RW_WRITER);
507 if (dn->dn_bonus != NULL) {
508 if (zfs_refcount_is_zero(&dn->dn_bonus->db_holds)) {
509 mutex_enter(&dn->dn_bonus->db_mtx);
510 dbuf_destroy(dn->dn_bonus);
511 dn->dn_bonus = NULL;
512 } else {
513 dn->dn_bonus->db_pending_evict = TRUE;
514 }
515 }
516 rw_exit(&dn->dn_struct_rwlock);
517 }
518
519 static void
dnode_undirty_dbufs(list_t * list)520 dnode_undirty_dbufs(list_t *list)
521 {
522 dbuf_dirty_record_t *dr;
523
524 while ((dr = list_head(list))) {
525 dmu_buf_impl_t *db = dr->dr_dbuf;
526 uint64_t txg = dr->dr_txg;
527
528 if (db->db_level != 0)
529 dnode_undirty_dbufs(&dr->dt.di.dr_children);
530
531 mutex_enter(&db->db_mtx);
532 /* XXX - use dbuf_undirty()? */
533 list_remove(list, dr);
534 ASSERT(list_head(&db->db_dirty_records) == dr);
535 list_remove_head(&db->db_dirty_records);
536 ASSERT(list_is_empty(&db->db_dirty_records));
537 db->db_dirtycnt -= 1;
538 if (db->db_level == 0) {
539 ASSERT(db->db_blkid == DMU_BONUS_BLKID ||
540 dr->dt.dl.dr_data == db->db_buf);
541 dbuf_unoverride(dr);
542 } else {
543 mutex_destroy(&dr->dt.di.dr_mtx);
544 list_destroy(&dr->dt.di.dr_children);
545 }
546 kmem_cache_free(dbuf_dirty_kmem_cache, dr);
547 dbuf_rele_and_unlock(db, (void *)(uintptr_t)txg, B_FALSE);
548 }
549 }
550
551 static void
dnode_sync_free(dnode_t * dn,dmu_tx_t * tx)552 dnode_sync_free(dnode_t *dn, dmu_tx_t *tx)
553 {
554 int txgoff = tx->tx_txg & TXG_MASK;
555
556 ASSERT(dmu_tx_is_syncing(tx));
557
558 /*
559 * Our contents should have been freed in dnode_sync() by the
560 * free range record inserted by the caller of dnode_free().
561 */
562 ASSERT0(DN_USED_BYTES(dn->dn_phys));
563 ASSERT(BP_IS_HOLE(dn->dn_phys->dn_blkptr));
564
565 dnode_undirty_dbufs(&dn->dn_dirty_records[txgoff]);
566 dnode_evict_dbufs(dn);
567
568 /*
569 * XXX - It would be nice to assert this, but we may still
570 * have residual holds from async evictions from the arc...
571 *
572 * zfs_obj_to_path() also depends on this being
573 * commented out.
574 *
575 * ASSERT3U(zfs_refcount_count(&dn->dn_holds), ==, 1);
576 */
577
578 /* Undirty next bits */
579 dn->dn_next_nlevels[txgoff] = 0;
580 dn->dn_next_indblkshift[txgoff] = 0;
581 dn->dn_next_blksz[txgoff] = 0;
582 dn->dn_next_maxblkid[txgoff] = 0;
583
584 /* ASSERT(blkptrs are zero); */
585 ASSERT(dn->dn_phys->dn_type != DMU_OT_NONE);
586 ASSERT(dn->dn_type != DMU_OT_NONE);
587
588 ASSERT(dn->dn_free_txg > 0);
589 if (dn->dn_allocated_txg != dn->dn_free_txg)
590 dmu_buf_will_dirty(&dn->dn_dbuf->db, tx);
591 memset(dn->dn_phys, 0, sizeof (dnode_phys_t) * dn->dn_num_slots);
592 dnode_free_interior_slots(dn);
593
594 mutex_enter(&dn->dn_mtx);
595 dn->dn_type = DMU_OT_NONE;
596 dn->dn_maxblkid = 0;
597 dn->dn_allocated_txg = 0;
598 dn->dn_free_txg = 0;
599 dn->dn_have_spill = B_FALSE;
600 dn->dn_num_slots = 1;
601 mutex_exit(&dn->dn_mtx);
602
603 ASSERT(dn->dn_object != DMU_META_DNODE_OBJECT);
604
605 dnode_rele(dn, (void *)(uintptr_t)tx->tx_txg);
606 /*
607 * Now that we've released our hold, the dnode may
608 * be evicted, so we mustn't access it.
609 */
610 }
611
612 /*
613 * We cannot simply detach the range tree (set dn_free_ranges to NULL)
614 * before processing it because dnode_block_freed() relies on it to
615 * correctly identify blocks that have been freed in the current TXG
616 * (for dbuf_read() calls on holes). If we detached it early, a concurrent
617 * reader might see the block as valid on disk and return stale data
618 * instead of zeros.
619 *
620 * We also can't use zfs_range_tree_walk() nor zfs_range_tree_vacate()
621 * with a callback that drops dn_mtx (dnode_sync_free_range()). This is
622 * unsafe because another thread (spa_sync_deferred_frees() ->
623 * dnode_free_range()) could acquire dn_mtx and modify the tree while the
624 * walk or vacate was in progress. This leads to tree corruption or panic
625 * when we resume.
626 *
627 * To fix the race while maintaining visibility, we process the tree
628 * incrementally. We pick a segment, drop the lock to sync it, and
629 * re-acquire the lock to remove it. By always restarting from the head
630 * of the tree, we ensure we are never using an invalid iterator.
631 * We use zfs_range_tree_clear() instead of ..._remove() because the range
632 * might have already been removed while the lock was dropped (specifically
633 * in the dbuf_dirty path mentioned above). ..._clear() handles this
634 * gracefully, while ..._remove() would panic on a missing segment.
635 */
636 static void
dnode_sync_free_ranges(dnode_t * dn,dmu_tx_t * tx)637 dnode_sync_free_ranges(dnode_t *dn, dmu_tx_t *tx)
638 {
639 int txgoff = tx->tx_txg & TXG_MASK;
640
641 mutex_enter(&dn->dn_mtx);
642 zfs_range_tree_t *rt = dn->dn_free_ranges[txgoff];
643 if (rt != NULL) {
644 boolean_t freeing_dnode = dn->dn_free_txg > 0 &&
645 dn->dn_free_txg <= tx->tx_txg;
646 zfs_range_seg_t *rs;
647
648 if (freeing_dnode) {
649 ASSERT(zfs_range_tree_contains(rt, 0,
650 dn->dn_maxblkid + 1));
651 }
652
653 while ((rs = zfs_range_tree_first(rt)) != NULL) {
654 uint64_t start = zfs_rs_get_start(rs, rt);
655 uint64_t size = zfs_rs_get_end(rs, rt) - start;
656
657 mutex_exit(&dn->dn_mtx);
658 dnode_sync_free_range_impl(dn, start, size,
659 freeing_dnode, tx);
660 mutex_enter(&dn->dn_mtx);
661
662 zfs_range_tree_clear(rt, start, size);
663 }
664 zfs_range_tree_destroy(rt);
665 dn->dn_free_ranges[txgoff] = NULL;
666 }
667 mutex_exit(&dn->dn_mtx);
668 }
669
670 /*
671 * Write out the dnode's dirty buffers.
672 * Does not wait for zio completions.
673 */
674 void
dnode_sync(dnode_t * dn,dmu_tx_t * tx)675 dnode_sync(dnode_t *dn, dmu_tx_t *tx)
676 {
677 objset_t *os = dn->dn_objset;
678 dnode_phys_t *dnp = dn->dn_phys;
679 int txgoff = tx->tx_txg & TXG_MASK;
680 list_t *list = &dn->dn_dirty_records[txgoff];
681 static const dnode_phys_t zerodn __maybe_unused = { 0 };
682 boolean_t kill_spill = B_FALSE;
683
684 ASSERT(dmu_tx_is_syncing(tx));
685 ASSERT(dnp->dn_type != DMU_OT_NONE || dn->dn_allocated_txg);
686 ASSERT(dnp->dn_type != DMU_OT_NONE ||
687 memcmp(dnp, &zerodn, DNODE_MIN_SIZE) == 0);
688 DNODE_VERIFY(dn);
689
690 ASSERT(dn->dn_dbuf == NULL || arc_released(dn->dn_dbuf->db_buf));
691
692 /*
693 * Do user accounting if it is enabled and this is not
694 * an encrypted receive.
695 */
696 if (dmu_objset_userused_enabled(os) &&
697 !DMU_OBJECT_IS_SPECIAL(dn->dn_object) &&
698 (!os->os_encrypted || !dmu_objset_is_receiving(os))) {
699 mutex_enter(&dn->dn_mtx);
700 dn->dn_oldused = DN_USED_BYTES(dn->dn_phys);
701 dn->dn_oldflags = dn->dn_phys->dn_flags;
702 dn->dn_phys->dn_flags |= DNODE_FLAG_USERUSED_ACCOUNTED;
703 if (dmu_objset_userobjused_enabled(dn->dn_objset))
704 dn->dn_phys->dn_flags |=
705 DNODE_FLAG_USEROBJUSED_ACCOUNTED;
706 mutex_exit(&dn->dn_mtx);
707 dmu_objset_userquota_get_ids(dn, B_FALSE, tx);
708 } else if (!(os->os_encrypted && dmu_objset_is_receiving(os))) {
709 /*
710 * Once we account for it, we should always account for it,
711 * except for the case of a raw receive. We will not be able
712 * to account for it until the receiving dataset has been
713 * mounted.
714 */
715 ASSERT(!(dn->dn_phys->dn_flags &
716 DNODE_FLAG_USERUSED_ACCOUNTED));
717 ASSERT(!(dn->dn_phys->dn_flags &
718 DNODE_FLAG_USEROBJUSED_ACCOUNTED));
719 }
720
721 mutex_enter(&dn->dn_mtx);
722 if (dn->dn_allocated_txg == tx->tx_txg) {
723 /* The dnode is newly allocated or reallocated */
724 if (dnp->dn_type == DMU_OT_NONE) {
725 /* this is a first alloc, not a realloc */
726 dnp->dn_nlevels = 1;
727 dnp->dn_nblkptr = dn->dn_nblkptr;
728 }
729
730 dnp->dn_type = dn->dn_type;
731 dnp->dn_bonustype = dn->dn_bonustype;
732 dnp->dn_bonuslen = dn->dn_bonuslen;
733 }
734
735 dnp->dn_extra_slots = dn->dn_num_slots - 1;
736
737 ASSERT(dnp->dn_nlevels > 1 ||
738 BP_IS_HOLE(&dnp->dn_blkptr[0]) ||
739 BP_IS_EMBEDDED(&dnp->dn_blkptr[0]) ||
740 BP_GET_LSIZE(&dnp->dn_blkptr[0]) ==
741 dnp->dn_datablkszsec << SPA_MINBLOCKSHIFT);
742 ASSERT(dnp->dn_nlevels < 2 ||
743 BP_IS_HOLE(&dnp->dn_blkptr[0]) ||
744 BP_GET_LSIZE(&dnp->dn_blkptr[0]) == 1 << dnp->dn_indblkshift);
745
746 if (dn->dn_next_type[txgoff] != 0) {
747 dnp->dn_type = dn->dn_type;
748 dn->dn_next_type[txgoff] = 0;
749 }
750
751 if (dn->dn_next_blksz[txgoff] != 0) {
752 ASSERT(P2PHASE(dn->dn_next_blksz[txgoff],
753 SPA_MINBLOCKSIZE) == 0);
754 ASSERT(BP_IS_HOLE(&dnp->dn_blkptr[0]) ||
755 dn->dn_maxblkid == 0 || list_head(list) != NULL ||
756 dn->dn_next_blksz[txgoff] >> SPA_MINBLOCKSHIFT ==
757 dnp->dn_datablkszsec ||
758 !zfs_range_tree_is_empty(dn->dn_free_ranges[txgoff]));
759 dnp->dn_datablkszsec =
760 dn->dn_next_blksz[txgoff] >> SPA_MINBLOCKSHIFT;
761 dn->dn_next_blksz[txgoff] = 0;
762 }
763
764 if (dn->dn_next_bonuslen[txgoff] != 0) {
765 if (dn->dn_next_bonuslen[txgoff] == DN_ZERO_BONUSLEN)
766 dnp->dn_bonuslen = 0;
767 else
768 dnp->dn_bonuslen = dn->dn_next_bonuslen[txgoff];
769 ASSERT(dnp->dn_bonuslen <=
770 DN_SLOTS_TO_BONUSLEN(dnp->dn_extra_slots + 1));
771 dn->dn_next_bonuslen[txgoff] = 0;
772 }
773
774 if (dn->dn_next_bonustype[txgoff] != 0) {
775 ASSERT(DMU_OT_IS_VALID(dn->dn_next_bonustype[txgoff]));
776 dnp->dn_bonustype = dn->dn_next_bonustype[txgoff];
777 dn->dn_next_bonustype[txgoff] = 0;
778 }
779
780 boolean_t freeing_dnode = dn->dn_free_txg > 0 &&
781 dn->dn_free_txg <= tx->tx_txg;
782
783 /*
784 * Remove the spill block if we have been explicitly asked to
785 * remove it, or if the object is being removed.
786 */
787 if (dn->dn_rm_spillblk[txgoff] || freeing_dnode) {
788 if (dnp->dn_flags & DNODE_FLAG_SPILL_BLKPTR)
789 kill_spill = B_TRUE;
790 dn->dn_rm_spillblk[txgoff] = 0;
791 }
792
793 if (dn->dn_next_indblkshift[txgoff] != 0) {
794 ASSERT(dnp->dn_nlevels == 1);
795 dnp->dn_indblkshift = dn->dn_next_indblkshift[txgoff];
796 dn->dn_next_indblkshift[txgoff] = 0;
797 }
798
799 /*
800 * Just take the live (open-context) values for checksum and compress.
801 * Strictly speaking it's a future leak, but nothing bad happens if we
802 * start using the new checksum or compress algorithm a little early.
803 */
804 dnp->dn_checksum = dn->dn_checksum;
805 dnp->dn_compress = dn->dn_compress;
806
807 mutex_exit(&dn->dn_mtx);
808
809 if (kill_spill) {
810 free_blocks(dn, DN_SPILL_BLKPTR(dn->dn_phys), 1, tx);
811 mutex_enter(&dn->dn_mtx);
812 dnp->dn_flags &= ~DNODE_FLAG_SPILL_BLKPTR;
813 mutex_exit(&dn->dn_mtx);
814 }
815
816 /* process all the "freed" ranges in the file */
817 dnode_sync_free_ranges(dn, tx);
818
819 if (freeing_dnode) {
820 dn->dn_objset->os_freed_dnodes++;
821 dnode_sync_free(dn, tx);
822 return;
823 }
824
825 if (dn->dn_num_slots > DNODE_MIN_SLOTS) {
826 dsl_dataset_t *ds = dn->dn_objset->os_dsl_dataset;
827 mutex_enter(&ds->ds_lock);
828 ds->ds_feature_activation[SPA_FEATURE_LARGE_DNODE] =
829 (void *)B_TRUE;
830 mutex_exit(&ds->ds_lock);
831 }
832
833 if (dn->dn_next_nlevels[txgoff]) {
834 dnode_increase_indirection(dn, tx);
835 dn->dn_next_nlevels[txgoff] = 0;
836 }
837
838 /*
839 * This must be done after dnode_sync_free_ranges()
840 * and dnode_increase_indirection(). See dnode_new_blkid()
841 * for an explanation of the high bit being set.
842 */
843 if (dn->dn_next_maxblkid[txgoff]) {
844 mutex_enter(&dn->dn_mtx);
845 dnp->dn_maxblkid =
846 dn->dn_next_maxblkid[txgoff] & ~DMU_NEXT_MAXBLKID_SET;
847 dn->dn_next_maxblkid[txgoff] = 0;
848 mutex_exit(&dn->dn_mtx);
849 }
850
851 if (dn->dn_next_nblkptr[txgoff]) {
852 /* this should only happen on a realloc */
853 ASSERT(dn->dn_allocated_txg == tx->tx_txg);
854 if (dn->dn_next_nblkptr[txgoff] > dnp->dn_nblkptr) {
855 /* zero the new blkptrs we are gaining */
856 memset(dnp->dn_blkptr + dnp->dn_nblkptr, 0,
857 sizeof (blkptr_t) *
858 (dn->dn_next_nblkptr[txgoff] - dnp->dn_nblkptr));
859 #ifdef ZFS_DEBUG
860 } else {
861 int i;
862 ASSERT(dn->dn_next_nblkptr[txgoff] < dnp->dn_nblkptr);
863 /* the blkptrs we are losing better be unallocated */
864 for (i = 0; i < dnp->dn_nblkptr; i++) {
865 if (i >= dn->dn_next_nblkptr[txgoff])
866 ASSERT(BP_IS_HOLE(&dnp->dn_blkptr[i]));
867 }
868 #endif
869 }
870 mutex_enter(&dn->dn_mtx);
871 dnp->dn_nblkptr = dn->dn_next_nblkptr[txgoff];
872 dn->dn_next_nblkptr[txgoff] = 0;
873 mutex_exit(&dn->dn_mtx);
874 }
875
876 dbuf_sync_list(list, dn->dn_phys->dn_nlevels - 1, tx);
877
878 if (!DMU_OBJECT_IS_SPECIAL(dn->dn_object)) {
879 ASSERT0P(list_head(list));
880 dnode_rele(dn, (void *)(uintptr_t)tx->tx_txg);
881 }
882
883 ASSERT3U(dnp->dn_bonuslen, <=, DN_MAX_BONUS_LEN(dnp));
884
885 /*
886 * Although we have dropped our reference to the dnode, it
887 * can't be evicted until its written, and we haven't yet
888 * initiated the IO for the dnode's dbuf. Additionally, the caller
889 * has already added a reference to the dnode because it's on the
890 * os_synced_dnodes list.
891 */
892 }
893