1 /*
2 * CDDL HEADER START
3 *
4 * The contents of this file are subject to the terms of the
5 * Common Development and Distribution License (the "License").
6 * You may not use this file except in compliance with the License.
7 *
8 * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9 * or http://www.opensolaris.org/os/licensing.
10 * See the License for the specific language governing permissions
11 * and limitations under the License.
12 *
13 * When distributing Covered Code, include this CDDL HEADER in each
14 * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15 * If applicable, add the following below this CDDL HEADER, with the
16 * fields enclosed by brackets "[]" replaced with your own identifying
17 * information: Portions Copyright [yyyy] [name of copyright owner]
18 *
19 * CDDL HEADER END
20 */
21 /*
22 * Copyright (c) 2010, Oracle and/or its affiliates. All rights reserved.
23 * Copyright (c) 2012, 2019 by Delphix. All rights reserved.
24 * Copyright (c) 2014 Spectra Logic Corporation, All rights reserved.
25 */
26
27 #include <sys/dmu.h>
28 #include <sys/zap.h>
29 #include <sys/zfs_context.h>
30 #include <sys/dsl_pool.h>
31 #include <sys/dsl_dataset.h>
32
33 /*
34 * Deadlist concurrency:
35 *
36 * Deadlists can only be modified from the syncing thread.
37 *
38 * Except for dsl_deadlist_insert(), it can only be modified with the
39 * dp_config_rwlock held with RW_WRITER.
40 *
41 * The accessors (dsl_deadlist_space() and dsl_deadlist_space_range()) can
42 * be called concurrently, from open context, with the dl_config_rwlock held
43 * with RW_READER.
44 *
45 * Therefore, we only need to provide locking between dsl_deadlist_insert() and
46 * the accessors, protecting:
47 * dl_phys->dl_used,comp,uncomp
48 * and protecting the dl_tree from being loaded.
49 * The locking is provided by dl_lock. Note that locking on the bpobj_t
50 * provides its own locking, and dl_oldfmt is immutable.
51 */
52
53 /*
54 * Livelist Overview
55 * ================
56 *
57 * Livelists use the same 'deadlist_t' struct as deadlists and are also used
58 * to track blkptrs over the lifetime of a dataset. Livelists however, belong
59 * to clones and track the blkptrs that are clone-specific (were born after
60 * the clone's creation). The exception is embedded block pointers which are
61 * not included in livelists because they do not need to be freed.
62 *
63 * When it comes time to delete the clone, the livelist provides a quick
64 * reference as to what needs to be freed. For this reason, livelists also track
65 * when clone-specific blkptrs are freed before deletion to prevent double
66 * frees. Each blkptr in a livelist is marked as a FREE or an ALLOC and the
67 * deletion algorithm iterates backwards over the livelist, matching
68 * FREE/ALLOC pairs and then freeing those ALLOCs which remain. livelists
69 * are also updated in the case when blkptrs are remapped: the old version
70 * of the blkptr is cancelled out with a FREE and the new version is tracked
71 * with an ALLOC.
72 *
73 * To bound the amount of memory required for deletion, livelists over a
74 * certain size are spread over multiple entries. Entries are grouped by
75 * birth txg so we can be sure the ALLOC/FREE pair for a given blkptr will
76 * be in the same entry. This allows us to delete livelists incrementally
77 * over multiple syncs, one entry at a time.
78 *
79 * During the lifetime of the clone, livelists can get extremely large.
80 * Their size is managed by periodic condensing (preemptively cancelling out
81 * FREE/ALLOC pairs). Livelists are disabled when a clone is promoted or when
82 * the shared space between the clone and its origin is so small that it
83 * doesn't make sense to use livelists anymore.
84 */
85
86 /*
87 * The threshold sublist size at which we create a new sub-livelist for the
88 * next txg. However, since blkptrs of the same transaction group must be in
89 * the same sub-list, the actual sublist size may exceed this. When picking the
90 * size we had to balance the fact that larger sublists mean fewer sublists
91 * (decreasing the cost of insertion) against the consideration that sublists
92 * will be loaded into memory and shouldn't take up an inordinate amount of
93 * space. We settled on ~500000 entries, corresponding to roughly 128M.
94 */
95 unsigned long zfs_livelist_max_entries = 500000;
96
97 /*
98 * We can approximate how much of a performance gain a livelist will give us
99 * based on the percentage of blocks shared between the clone and its origin.
100 * 0 percent shared means that the clone has completely diverged and that the
101 * old method is maximally effective: every read from the block tree will
102 * result in lots of frees. Livelists give us gains when they track blocks
103 * scattered across the tree, when one read in the old method might only
104 * result in a few frees. Once the clone has been overwritten enough,
105 * writes are no longer sparse and we'll no longer get much of a benefit from
106 * tracking them with a livelist. We chose a lower limit of 75 percent shared
107 * (25 percent overwritten). This means that 1/4 of all block pointers will be
108 * freed (e.g. each read frees 256, out of a max of 1024) so we expect livelists
109 * to make deletion 4x faster. Once the amount of shared space drops below this
110 * threshold, the clone will revert to the old deletion method.
111 */
112 int zfs_livelist_min_percent_shared = 75;
113
114 static int
dsl_deadlist_compare(const void * arg1,const void * arg2)115 dsl_deadlist_compare(const void *arg1, const void *arg2)
116 {
117 const dsl_deadlist_entry_t *dle1 = arg1;
118 const dsl_deadlist_entry_t *dle2 = arg2;
119
120 return (TREE_CMP(dle1->dle_mintxg, dle2->dle_mintxg));
121 }
122
123 static int
dsl_deadlist_cache_compare(const void * arg1,const void * arg2)124 dsl_deadlist_cache_compare(const void *arg1, const void *arg2)
125 {
126 const dsl_deadlist_cache_entry_t *dlce1 = arg1;
127 const dsl_deadlist_cache_entry_t *dlce2 = arg2;
128
129 return (TREE_CMP(dlce1->dlce_mintxg, dlce2->dlce_mintxg));
130 }
131
132 static void
dsl_deadlist_load_tree(dsl_deadlist_t * dl)133 dsl_deadlist_load_tree(dsl_deadlist_t *dl)
134 {
135 zap_cursor_t zc;
136 zap_attribute_t za;
137 int error;
138
139 ASSERT(MUTEX_HELD(&dl->dl_lock));
140
141 ASSERT(!dl->dl_oldfmt);
142 if (dl->dl_havecache) {
143 /*
144 * After loading the tree, the caller may modify the tree,
145 * e.g. to add or remove nodes, or to make a node no longer
146 * refer to the empty_bpobj. These changes would make the
147 * dl_cache incorrect. Therefore we discard the cache here,
148 * so that it can't become incorrect.
149 */
150 dsl_deadlist_cache_entry_t *dlce;
151 void *cookie = NULL;
152 while ((dlce = avl_destroy_nodes(&dl->dl_cache, &cookie))
153 != NULL) {
154 kmem_free(dlce, sizeof (*dlce));
155 }
156 avl_destroy(&dl->dl_cache);
157 dl->dl_havecache = B_FALSE;
158 }
159 if (dl->dl_havetree)
160 return;
161
162 avl_create(&dl->dl_tree, dsl_deadlist_compare,
163 sizeof (dsl_deadlist_entry_t),
164 offsetof(dsl_deadlist_entry_t, dle_node));
165 for (zap_cursor_init(&zc, dl->dl_os, dl->dl_object);
166 (error = zap_cursor_retrieve(&zc, &za)) == 0;
167 zap_cursor_advance(&zc)) {
168 dsl_deadlist_entry_t *dle = kmem_alloc(sizeof (*dle), KM_SLEEP);
169 dle->dle_mintxg = zfs_strtonum(za.za_name, NULL);
170
171 /*
172 * Prefetch all the bpobj's so that we do that i/o
173 * in parallel. Then open them all in a second pass.
174 */
175 dle->dle_bpobj.bpo_object = za.za_first_integer;
176 dmu_prefetch(dl->dl_os, dle->dle_bpobj.bpo_object,
177 0, 0, 0, ZIO_PRIORITY_SYNC_READ);
178
179 avl_add(&dl->dl_tree, dle);
180 }
181 VERIFY3U(error, ==, ENOENT);
182 zap_cursor_fini(&zc);
183
184 for (dsl_deadlist_entry_t *dle = avl_first(&dl->dl_tree);
185 dle != NULL; dle = AVL_NEXT(&dl->dl_tree, dle)) {
186 VERIFY0(bpobj_open(&dle->dle_bpobj, dl->dl_os,
187 dle->dle_bpobj.bpo_object));
188 }
189 dl->dl_havetree = B_TRUE;
190 }
191
192 /*
193 * Load only the non-empty bpobj's into the dl_cache. The cache is an analog
194 * of the dl_tree, but contains only non-empty_bpobj nodes from the ZAP. It
195 * is used only for gathering space statistics. The dl_cache has two
196 * advantages over the dl_tree:
197 *
198 * 1. Loading the dl_cache is ~5x faster than loading the dl_tree (if it's
199 * mostly empty_bpobj's), due to less CPU overhead to open the empty_bpobj
200 * many times and to inquire about its (zero) space stats many times.
201 *
202 * 2. The dl_cache uses less memory than the dl_tree. We only need to load
203 * the dl_tree of snapshots when deleting a snapshot, after which we free the
204 * dl_tree with dsl_deadlist_discard_tree
205 */
206 static void
dsl_deadlist_load_cache(dsl_deadlist_t * dl)207 dsl_deadlist_load_cache(dsl_deadlist_t *dl)
208 {
209 zap_cursor_t zc;
210 zap_attribute_t za;
211 int error;
212
213 ASSERT(MUTEX_HELD(&dl->dl_lock));
214
215 ASSERT(!dl->dl_oldfmt);
216 if (dl->dl_havecache)
217 return;
218
219 uint64_t empty_bpobj = dmu_objset_pool(dl->dl_os)->dp_empty_bpobj;
220
221 avl_create(&dl->dl_cache, dsl_deadlist_cache_compare,
222 sizeof (dsl_deadlist_cache_entry_t),
223 offsetof(dsl_deadlist_cache_entry_t, dlce_node));
224 for (zap_cursor_init(&zc, dl->dl_os, dl->dl_object);
225 (error = zap_cursor_retrieve(&zc, &za)) == 0;
226 zap_cursor_advance(&zc)) {
227 if (za.za_first_integer == empty_bpobj)
228 continue;
229 dsl_deadlist_cache_entry_t *dlce =
230 kmem_zalloc(sizeof (*dlce), KM_SLEEP);
231 dlce->dlce_mintxg = zfs_strtonum(za.za_name, NULL);
232
233 /*
234 * Prefetch all the bpobj's so that we do that i/o
235 * in parallel. Then open them all in a second pass.
236 */
237 dlce->dlce_bpobj = za.za_first_integer;
238 dmu_prefetch(dl->dl_os, dlce->dlce_bpobj,
239 0, 0, 0, ZIO_PRIORITY_SYNC_READ);
240 avl_add(&dl->dl_cache, dlce);
241 }
242 VERIFY3U(error, ==, ENOENT);
243 zap_cursor_fini(&zc);
244
245 for (dsl_deadlist_cache_entry_t *dlce = avl_first(&dl->dl_cache);
246 dlce != NULL; dlce = AVL_NEXT(&dl->dl_cache, dlce)) {
247 bpobj_t bpo;
248 VERIFY0(bpobj_open(&bpo, dl->dl_os, dlce->dlce_bpobj));
249
250 VERIFY0(bpobj_space(&bpo,
251 &dlce->dlce_bytes, &dlce->dlce_comp, &dlce->dlce_uncomp));
252 bpobj_close(&bpo);
253 }
254 dl->dl_havecache = B_TRUE;
255 }
256
257 /*
258 * Discard the tree to save memory.
259 */
260 void
dsl_deadlist_discard_tree(dsl_deadlist_t * dl)261 dsl_deadlist_discard_tree(dsl_deadlist_t *dl)
262 {
263 mutex_enter(&dl->dl_lock);
264
265 if (!dl->dl_havetree) {
266 mutex_exit(&dl->dl_lock);
267 return;
268 }
269 dsl_deadlist_entry_t *dle;
270 void *cookie = NULL;
271 while ((dle = avl_destroy_nodes(&dl->dl_tree, &cookie)) != NULL) {
272 bpobj_close(&dle->dle_bpobj);
273 kmem_free(dle, sizeof (*dle));
274 }
275 avl_destroy(&dl->dl_tree);
276
277 dl->dl_havetree = B_FALSE;
278 mutex_exit(&dl->dl_lock);
279 }
280
281 void
dsl_deadlist_iterate(dsl_deadlist_t * dl,deadlist_iter_t func,void * args)282 dsl_deadlist_iterate(dsl_deadlist_t *dl, deadlist_iter_t func, void *args)
283 {
284 dsl_deadlist_entry_t *dle;
285
286 ASSERT(dsl_deadlist_is_open(dl));
287
288 mutex_enter(&dl->dl_lock);
289 dsl_deadlist_load_tree(dl);
290 mutex_exit(&dl->dl_lock);
291 for (dle = avl_first(&dl->dl_tree); dle != NULL;
292 dle = AVL_NEXT(&dl->dl_tree, dle)) {
293 if (func(args, dle) != 0)
294 break;
295 }
296 }
297
298 void
dsl_deadlist_open(dsl_deadlist_t * dl,objset_t * os,uint64_t object)299 dsl_deadlist_open(dsl_deadlist_t *dl, objset_t *os, uint64_t object)
300 {
301 dmu_object_info_t doi;
302
303 ASSERT(!dsl_deadlist_is_open(dl));
304
305 mutex_init(&dl->dl_lock, NULL, MUTEX_DEFAULT, NULL);
306 dl->dl_os = os;
307 dl->dl_object = object;
308 VERIFY0(dmu_bonus_hold(os, object, dl, &dl->dl_dbuf));
309 dmu_object_info_from_db(dl->dl_dbuf, &doi);
310 if (doi.doi_type == DMU_OT_BPOBJ) {
311 dmu_buf_rele(dl->dl_dbuf, dl);
312 dl->dl_dbuf = NULL;
313 dl->dl_oldfmt = B_TRUE;
314 VERIFY0(bpobj_open(&dl->dl_bpobj, os, object));
315 return;
316 }
317
318 dl->dl_oldfmt = B_FALSE;
319 dl->dl_phys = dl->dl_dbuf->db_data;
320 dl->dl_havetree = B_FALSE;
321 dl->dl_havecache = B_FALSE;
322 }
323
324 boolean_t
dsl_deadlist_is_open(dsl_deadlist_t * dl)325 dsl_deadlist_is_open(dsl_deadlist_t *dl)
326 {
327 return (dl->dl_os != NULL);
328 }
329
330 void
dsl_deadlist_close(dsl_deadlist_t * dl)331 dsl_deadlist_close(dsl_deadlist_t *dl)
332 {
333 ASSERT(dsl_deadlist_is_open(dl));
334 mutex_destroy(&dl->dl_lock);
335
336 if (dl->dl_oldfmt) {
337 dl->dl_oldfmt = B_FALSE;
338 bpobj_close(&dl->dl_bpobj);
339 dl->dl_os = NULL;
340 dl->dl_object = 0;
341 return;
342 }
343
344 if (dl->dl_havetree) {
345 dsl_deadlist_entry_t *dle;
346 void *cookie = NULL;
347 while ((dle = avl_destroy_nodes(&dl->dl_tree, &cookie))
348 != NULL) {
349 bpobj_close(&dle->dle_bpobj);
350 kmem_free(dle, sizeof (*dle));
351 }
352 avl_destroy(&dl->dl_tree);
353 }
354 if (dl->dl_havecache) {
355 dsl_deadlist_cache_entry_t *dlce;
356 void *cookie = NULL;
357 while ((dlce = avl_destroy_nodes(&dl->dl_cache, &cookie))
358 != NULL) {
359 kmem_free(dlce, sizeof (*dlce));
360 }
361 avl_destroy(&dl->dl_cache);
362 }
363 dmu_buf_rele(dl->dl_dbuf, dl);
364 dl->dl_dbuf = NULL;
365 dl->dl_phys = NULL;
366 dl->dl_os = NULL;
367 dl->dl_object = 0;
368 }
369
370 uint64_t
dsl_deadlist_alloc(objset_t * os,dmu_tx_t * tx)371 dsl_deadlist_alloc(objset_t *os, dmu_tx_t *tx)
372 {
373 if (spa_version(dmu_objset_spa(os)) < SPA_VERSION_DEADLISTS)
374 return (bpobj_alloc(os, SPA_OLD_MAXBLOCKSIZE, tx));
375 return (zap_create(os, DMU_OT_DEADLIST, DMU_OT_DEADLIST_HDR,
376 sizeof (dsl_deadlist_phys_t), tx));
377 }
378
379 void
dsl_deadlist_free(objset_t * os,uint64_t dlobj,dmu_tx_t * tx)380 dsl_deadlist_free(objset_t *os, uint64_t dlobj, dmu_tx_t *tx)
381 {
382 dmu_object_info_t doi;
383 zap_cursor_t zc;
384 zap_attribute_t za;
385 int error;
386
387 VERIFY0(dmu_object_info(os, dlobj, &doi));
388 if (doi.doi_type == DMU_OT_BPOBJ) {
389 bpobj_free(os, dlobj, tx);
390 return;
391 }
392
393 for (zap_cursor_init(&zc, os, dlobj);
394 (error = zap_cursor_retrieve(&zc, &za)) == 0;
395 zap_cursor_advance(&zc)) {
396 uint64_t obj = za.za_first_integer;
397 if (obj == dmu_objset_pool(os)->dp_empty_bpobj)
398 bpobj_decr_empty(os, tx);
399 else
400 bpobj_free(os, obj, tx);
401 }
402 VERIFY3U(error, ==, ENOENT);
403 zap_cursor_fini(&zc);
404 VERIFY0(dmu_object_free(os, dlobj, tx));
405 }
406
407 static void
dle_enqueue(dsl_deadlist_t * dl,dsl_deadlist_entry_t * dle,const blkptr_t * bp,boolean_t bp_freed,dmu_tx_t * tx)408 dle_enqueue(dsl_deadlist_t *dl, dsl_deadlist_entry_t *dle,
409 const blkptr_t *bp, boolean_t bp_freed, dmu_tx_t *tx)
410 {
411 ASSERT(MUTEX_HELD(&dl->dl_lock));
412 if (dle->dle_bpobj.bpo_object ==
413 dmu_objset_pool(dl->dl_os)->dp_empty_bpobj) {
414 uint64_t obj = bpobj_alloc(dl->dl_os, SPA_OLD_MAXBLOCKSIZE, tx);
415 bpobj_close(&dle->dle_bpobj);
416 bpobj_decr_empty(dl->dl_os, tx);
417 VERIFY0(bpobj_open(&dle->dle_bpobj, dl->dl_os, obj));
418 VERIFY0(zap_update_int_key(dl->dl_os, dl->dl_object,
419 dle->dle_mintxg, obj, tx));
420 }
421 bpobj_enqueue(&dle->dle_bpobj, bp, bp_freed, tx);
422 }
423
424 static void
dle_enqueue_subobj(dsl_deadlist_t * dl,dsl_deadlist_entry_t * dle,uint64_t obj,dmu_tx_t * tx)425 dle_enqueue_subobj(dsl_deadlist_t *dl, dsl_deadlist_entry_t *dle,
426 uint64_t obj, dmu_tx_t *tx)
427 {
428 ASSERT(MUTEX_HELD(&dl->dl_lock));
429 if (dle->dle_bpobj.bpo_object !=
430 dmu_objset_pool(dl->dl_os)->dp_empty_bpobj) {
431 bpobj_enqueue_subobj(&dle->dle_bpobj, obj, tx);
432 } else {
433 bpobj_close(&dle->dle_bpobj);
434 bpobj_decr_empty(dl->dl_os, tx);
435 VERIFY0(bpobj_open(&dle->dle_bpobj, dl->dl_os, obj));
436 VERIFY0(zap_update_int_key(dl->dl_os, dl->dl_object,
437 dle->dle_mintxg, obj, tx));
438 }
439 }
440
441 /*
442 * Prefetch metadata required for dle_enqueue_subobj().
443 */
444 static void
dle_prefetch_subobj(dsl_deadlist_t * dl,dsl_deadlist_entry_t * dle,uint64_t obj)445 dle_prefetch_subobj(dsl_deadlist_t *dl, dsl_deadlist_entry_t *dle,
446 uint64_t obj)
447 {
448 if (dle->dle_bpobj.bpo_object !=
449 dmu_objset_pool(dl->dl_os)->dp_empty_bpobj)
450 bpobj_prefetch_subobj(&dle->dle_bpobj, obj);
451 }
452
453 void
dsl_deadlist_insert(dsl_deadlist_t * dl,const blkptr_t * bp,boolean_t bp_freed,dmu_tx_t * tx)454 dsl_deadlist_insert(dsl_deadlist_t *dl, const blkptr_t *bp, boolean_t bp_freed,
455 dmu_tx_t *tx)
456 {
457 dsl_deadlist_entry_t dle_tofind;
458 dsl_deadlist_entry_t *dle;
459 avl_index_t where;
460
461 if (dl->dl_oldfmt) {
462 bpobj_enqueue(&dl->dl_bpobj, bp, bp_freed, tx);
463 return;
464 }
465
466 mutex_enter(&dl->dl_lock);
467 dsl_deadlist_load_tree(dl);
468
469 dmu_buf_will_dirty(dl->dl_dbuf, tx);
470
471 int sign = bp_freed ? -1 : +1;
472 dl->dl_phys->dl_used +=
473 sign * bp_get_dsize_sync(dmu_objset_spa(dl->dl_os), bp);
474 dl->dl_phys->dl_comp += sign * BP_GET_PSIZE(bp);
475 dl->dl_phys->dl_uncomp += sign * BP_GET_UCSIZE(bp);
476
477 dle_tofind.dle_mintxg = bp->blk_birth;
478 dle = avl_find(&dl->dl_tree, &dle_tofind, &where);
479 if (dle == NULL)
480 dle = avl_nearest(&dl->dl_tree, where, AVL_BEFORE);
481 else
482 dle = AVL_PREV(&dl->dl_tree, dle);
483
484 if (dle == NULL) {
485 zfs_panic_recover("blkptr at %p has invalid BLK_BIRTH %llu",
486 bp, (longlong_t)bp->blk_birth);
487 dle = avl_first(&dl->dl_tree);
488 }
489
490 ASSERT3P(dle, !=, NULL);
491 dle_enqueue(dl, dle, bp, bp_freed, tx);
492 mutex_exit(&dl->dl_lock);
493 }
494
495 int
dsl_deadlist_insert_alloc_cb(void * arg,const blkptr_t * bp,dmu_tx_t * tx)496 dsl_deadlist_insert_alloc_cb(void *arg, const blkptr_t *bp, dmu_tx_t *tx)
497 {
498 dsl_deadlist_t *dl = arg;
499 dsl_deadlist_insert(dl, bp, B_FALSE, tx);
500 return (0);
501 }
502
503 int
dsl_deadlist_insert_free_cb(void * arg,const blkptr_t * bp,dmu_tx_t * tx)504 dsl_deadlist_insert_free_cb(void *arg, const blkptr_t *bp, dmu_tx_t *tx)
505 {
506 dsl_deadlist_t *dl = arg;
507 dsl_deadlist_insert(dl, bp, B_TRUE, tx);
508 return (0);
509 }
510
511 /*
512 * Insert new key in deadlist, which must be > all current entries.
513 * mintxg is not inclusive.
514 */
515 void
dsl_deadlist_add_key(dsl_deadlist_t * dl,uint64_t mintxg,dmu_tx_t * tx)516 dsl_deadlist_add_key(dsl_deadlist_t *dl, uint64_t mintxg, dmu_tx_t *tx)
517 {
518 uint64_t obj;
519 dsl_deadlist_entry_t *dle;
520
521 if (dl->dl_oldfmt)
522 return;
523
524 dle = kmem_alloc(sizeof (*dle), KM_SLEEP);
525 dle->dle_mintxg = mintxg;
526
527 mutex_enter(&dl->dl_lock);
528 dsl_deadlist_load_tree(dl);
529
530 obj = bpobj_alloc_empty(dl->dl_os, SPA_OLD_MAXBLOCKSIZE, tx);
531 VERIFY0(bpobj_open(&dle->dle_bpobj, dl->dl_os, obj));
532 avl_add(&dl->dl_tree, dle);
533
534 VERIFY0(zap_add_int_key(dl->dl_os, dl->dl_object,
535 mintxg, obj, tx));
536 mutex_exit(&dl->dl_lock);
537 }
538
539 /*
540 * Remove this key, merging its entries into the previous key.
541 */
542 void
dsl_deadlist_remove_key(dsl_deadlist_t * dl,uint64_t mintxg,dmu_tx_t * tx)543 dsl_deadlist_remove_key(dsl_deadlist_t *dl, uint64_t mintxg, dmu_tx_t *tx)
544 {
545 dsl_deadlist_entry_t dle_tofind;
546 dsl_deadlist_entry_t *dle, *dle_prev;
547
548 if (dl->dl_oldfmt)
549 return;
550 mutex_enter(&dl->dl_lock);
551 dsl_deadlist_load_tree(dl);
552
553 dle_tofind.dle_mintxg = mintxg;
554 dle = avl_find(&dl->dl_tree, &dle_tofind, NULL);
555 ASSERT3P(dle, !=, NULL);
556 dle_prev = AVL_PREV(&dl->dl_tree, dle);
557
558 dle_enqueue_subobj(dl, dle_prev, dle->dle_bpobj.bpo_object, tx);
559
560 avl_remove(&dl->dl_tree, dle);
561 bpobj_close(&dle->dle_bpobj);
562 kmem_free(dle, sizeof (*dle));
563
564 VERIFY0(zap_remove_int(dl->dl_os, dl->dl_object, mintxg, tx));
565 mutex_exit(&dl->dl_lock);
566 }
567
568 /*
569 * Remove a deadlist entry and all of its contents by removing the entry from
570 * the deadlist's avl tree, freeing the entry's bpobj and adjusting the
571 * deadlist's space accounting accordingly.
572 */
573 void
dsl_deadlist_remove_entry(dsl_deadlist_t * dl,uint64_t mintxg,dmu_tx_t * tx)574 dsl_deadlist_remove_entry(dsl_deadlist_t *dl, uint64_t mintxg, dmu_tx_t *tx)
575 {
576 uint64_t used, comp, uncomp;
577 dsl_deadlist_entry_t dle_tofind;
578 dsl_deadlist_entry_t *dle;
579 objset_t *os = dl->dl_os;
580
581 if (dl->dl_oldfmt)
582 return;
583
584 mutex_enter(&dl->dl_lock);
585 dsl_deadlist_load_tree(dl);
586
587 dle_tofind.dle_mintxg = mintxg;
588 dle = avl_find(&dl->dl_tree, &dle_tofind, NULL);
589 VERIFY3P(dle, !=, NULL);
590
591 avl_remove(&dl->dl_tree, dle);
592 VERIFY0(zap_remove_int(os, dl->dl_object, mintxg, tx));
593 VERIFY0(bpobj_space(&dle->dle_bpobj, &used, &comp, &uncomp));
594 dmu_buf_will_dirty(dl->dl_dbuf, tx);
595 dl->dl_phys->dl_used -= used;
596 dl->dl_phys->dl_comp -= comp;
597 dl->dl_phys->dl_uncomp -= uncomp;
598 if (dle->dle_bpobj.bpo_object == dmu_objset_pool(os)->dp_empty_bpobj) {
599 bpobj_decr_empty(os, tx);
600 } else {
601 bpobj_free(os, dle->dle_bpobj.bpo_object, tx);
602 }
603 bpobj_close(&dle->dle_bpobj);
604 kmem_free(dle, sizeof (*dle));
605 mutex_exit(&dl->dl_lock);
606 }
607
608 /*
609 * Clear out the contents of a deadlist_entry by freeing its bpobj,
610 * replacing it with an empty bpobj and adjusting the deadlist's
611 * space accounting
612 */
613 void
dsl_deadlist_clear_entry(dsl_deadlist_entry_t * dle,dsl_deadlist_t * dl,dmu_tx_t * tx)614 dsl_deadlist_clear_entry(dsl_deadlist_entry_t *dle, dsl_deadlist_t *dl,
615 dmu_tx_t *tx)
616 {
617 uint64_t new_obj, used, comp, uncomp;
618 objset_t *os = dl->dl_os;
619
620 mutex_enter(&dl->dl_lock);
621 VERIFY0(zap_remove_int(os, dl->dl_object, dle->dle_mintxg, tx));
622 VERIFY0(bpobj_space(&dle->dle_bpobj, &used, &comp, &uncomp));
623 dmu_buf_will_dirty(dl->dl_dbuf, tx);
624 dl->dl_phys->dl_used -= used;
625 dl->dl_phys->dl_comp -= comp;
626 dl->dl_phys->dl_uncomp -= uncomp;
627 if (dle->dle_bpobj.bpo_object == dmu_objset_pool(os)->dp_empty_bpobj)
628 bpobj_decr_empty(os, tx);
629 else
630 bpobj_free(os, dle->dle_bpobj.bpo_object, tx);
631 bpobj_close(&dle->dle_bpobj);
632 new_obj = bpobj_alloc_empty(os, SPA_OLD_MAXBLOCKSIZE, tx);
633 VERIFY0(bpobj_open(&dle->dle_bpobj, os, new_obj));
634 VERIFY0(zap_add_int_key(os, dl->dl_object, dle->dle_mintxg,
635 new_obj, tx));
636 ASSERT(bpobj_is_empty(&dle->dle_bpobj));
637 mutex_exit(&dl->dl_lock);
638 }
639
640 /*
641 * Return the first entry in deadlist's avl tree
642 */
643 dsl_deadlist_entry_t *
dsl_deadlist_first(dsl_deadlist_t * dl)644 dsl_deadlist_first(dsl_deadlist_t *dl)
645 {
646 dsl_deadlist_entry_t *dle;
647
648 mutex_enter(&dl->dl_lock);
649 dsl_deadlist_load_tree(dl);
650 dle = avl_first(&dl->dl_tree);
651 mutex_exit(&dl->dl_lock);
652
653 return (dle);
654 }
655
656 /*
657 * Return the last entry in deadlist's avl tree
658 */
659 dsl_deadlist_entry_t *
dsl_deadlist_last(dsl_deadlist_t * dl)660 dsl_deadlist_last(dsl_deadlist_t *dl)
661 {
662 dsl_deadlist_entry_t *dle;
663
664 mutex_enter(&dl->dl_lock);
665 dsl_deadlist_load_tree(dl);
666 dle = avl_last(&dl->dl_tree);
667 mutex_exit(&dl->dl_lock);
668
669 return (dle);
670 }
671
672 /*
673 * Walk ds's snapshots to regenerate generate ZAP & AVL.
674 */
675 static void
dsl_deadlist_regenerate(objset_t * os,uint64_t dlobj,uint64_t mrs_obj,dmu_tx_t * tx)676 dsl_deadlist_regenerate(objset_t *os, uint64_t dlobj,
677 uint64_t mrs_obj, dmu_tx_t *tx)
678 {
679 dsl_deadlist_t dl = { 0 };
680 dsl_pool_t *dp = dmu_objset_pool(os);
681
682 dsl_deadlist_open(&dl, os, dlobj);
683 if (dl.dl_oldfmt) {
684 dsl_deadlist_close(&dl);
685 return;
686 }
687
688 while (mrs_obj != 0) {
689 dsl_dataset_t *ds;
690 VERIFY0(dsl_dataset_hold_obj(dp, mrs_obj, FTAG, &ds));
691 dsl_deadlist_add_key(&dl,
692 dsl_dataset_phys(ds)->ds_prev_snap_txg, tx);
693 mrs_obj = dsl_dataset_phys(ds)->ds_prev_snap_obj;
694 dsl_dataset_rele(ds, FTAG);
695 }
696 dsl_deadlist_close(&dl);
697 }
698
699 uint64_t
dsl_deadlist_clone(dsl_deadlist_t * dl,uint64_t maxtxg,uint64_t mrs_obj,dmu_tx_t * tx)700 dsl_deadlist_clone(dsl_deadlist_t *dl, uint64_t maxtxg,
701 uint64_t mrs_obj, dmu_tx_t *tx)
702 {
703 dsl_deadlist_entry_t *dle;
704 uint64_t newobj;
705
706 newobj = dsl_deadlist_alloc(dl->dl_os, tx);
707
708 if (dl->dl_oldfmt) {
709 dsl_deadlist_regenerate(dl->dl_os, newobj, mrs_obj, tx);
710 return (newobj);
711 }
712
713 mutex_enter(&dl->dl_lock);
714 dsl_deadlist_load_tree(dl);
715
716 for (dle = avl_first(&dl->dl_tree); dle;
717 dle = AVL_NEXT(&dl->dl_tree, dle)) {
718 uint64_t obj;
719
720 if (dle->dle_mintxg >= maxtxg)
721 break;
722
723 obj = bpobj_alloc_empty(dl->dl_os, SPA_OLD_MAXBLOCKSIZE, tx);
724 VERIFY0(zap_add_int_key(dl->dl_os, newobj,
725 dle->dle_mintxg, obj, tx));
726 }
727 mutex_exit(&dl->dl_lock);
728 return (newobj);
729 }
730
731 void
dsl_deadlist_space(dsl_deadlist_t * dl,uint64_t * usedp,uint64_t * compp,uint64_t * uncompp)732 dsl_deadlist_space(dsl_deadlist_t *dl,
733 uint64_t *usedp, uint64_t *compp, uint64_t *uncompp)
734 {
735 ASSERT(dsl_deadlist_is_open(dl));
736 if (dl->dl_oldfmt) {
737 VERIFY0(bpobj_space(&dl->dl_bpobj,
738 usedp, compp, uncompp));
739 return;
740 }
741
742 mutex_enter(&dl->dl_lock);
743 *usedp = dl->dl_phys->dl_used;
744 *compp = dl->dl_phys->dl_comp;
745 *uncompp = dl->dl_phys->dl_uncomp;
746 mutex_exit(&dl->dl_lock);
747 }
748
749 /*
750 * return space used in the range (mintxg, maxtxg].
751 * Includes maxtxg, does not include mintxg.
752 * mintxg and maxtxg must both be keys in the deadlist (unless maxtxg is
753 * UINT64_MAX).
754 */
755 void
dsl_deadlist_space_range(dsl_deadlist_t * dl,uint64_t mintxg,uint64_t maxtxg,uint64_t * usedp,uint64_t * compp,uint64_t * uncompp)756 dsl_deadlist_space_range(dsl_deadlist_t *dl, uint64_t mintxg, uint64_t maxtxg,
757 uint64_t *usedp, uint64_t *compp, uint64_t *uncompp)
758 {
759 dsl_deadlist_cache_entry_t *dlce;
760 dsl_deadlist_cache_entry_t dlce_tofind;
761 avl_index_t where;
762
763 if (dl->dl_oldfmt) {
764 VERIFY0(bpobj_space_range(&dl->dl_bpobj,
765 mintxg, maxtxg, usedp, compp, uncompp));
766 return;
767 }
768
769 *usedp = *compp = *uncompp = 0;
770
771 mutex_enter(&dl->dl_lock);
772 dsl_deadlist_load_cache(dl);
773 dlce_tofind.dlce_mintxg = mintxg;
774 dlce = avl_find(&dl->dl_cache, &dlce_tofind, &where);
775
776 /*
777 * If this mintxg doesn't exist, it may be an empty_bpobj which
778 * is omitted from the sparse tree. Start at the next non-empty
779 * entry.
780 */
781 if (dlce == NULL)
782 dlce = avl_nearest(&dl->dl_cache, where, AVL_AFTER);
783
784 for (; dlce && dlce->dlce_mintxg < maxtxg;
785 dlce = AVL_NEXT(&dl->dl_tree, dlce)) {
786 *usedp += dlce->dlce_bytes;
787 *compp += dlce->dlce_comp;
788 *uncompp += dlce->dlce_uncomp;
789 }
790
791 mutex_exit(&dl->dl_lock);
792 }
793
794 static void
dsl_deadlist_insert_bpobj(dsl_deadlist_t * dl,uint64_t obj,uint64_t birth,dmu_tx_t * tx)795 dsl_deadlist_insert_bpobj(dsl_deadlist_t *dl, uint64_t obj, uint64_t birth,
796 dmu_tx_t *tx)
797 {
798 dsl_deadlist_entry_t dle_tofind;
799 dsl_deadlist_entry_t *dle;
800 avl_index_t where;
801 uint64_t used, comp, uncomp;
802 bpobj_t bpo;
803
804 ASSERT(MUTEX_HELD(&dl->dl_lock));
805
806 VERIFY0(bpobj_open(&bpo, dl->dl_os, obj));
807 VERIFY0(bpobj_space(&bpo, &used, &comp, &uncomp));
808 bpobj_close(&bpo);
809
810 dsl_deadlist_load_tree(dl);
811
812 dmu_buf_will_dirty(dl->dl_dbuf, tx);
813 dl->dl_phys->dl_used += used;
814 dl->dl_phys->dl_comp += comp;
815 dl->dl_phys->dl_uncomp += uncomp;
816
817 dle_tofind.dle_mintxg = birth;
818 dle = avl_find(&dl->dl_tree, &dle_tofind, &where);
819 if (dle == NULL)
820 dle = avl_nearest(&dl->dl_tree, where, AVL_BEFORE);
821 dle_enqueue_subobj(dl, dle, obj, tx);
822 }
823
824 /*
825 * Prefetch metadata required for dsl_deadlist_insert_bpobj().
826 */
827 static void
dsl_deadlist_prefetch_bpobj(dsl_deadlist_t * dl,uint64_t obj,uint64_t birth)828 dsl_deadlist_prefetch_bpobj(dsl_deadlist_t *dl, uint64_t obj, uint64_t birth)
829 {
830 dsl_deadlist_entry_t dle_tofind;
831 dsl_deadlist_entry_t *dle;
832 avl_index_t where;
833
834 ASSERT(MUTEX_HELD(&dl->dl_lock));
835
836 dsl_deadlist_load_tree(dl);
837
838 dle_tofind.dle_mintxg = birth;
839 dle = avl_find(&dl->dl_tree, &dle_tofind, &where);
840 if (dle == NULL)
841 dle = avl_nearest(&dl->dl_tree, where, AVL_BEFORE);
842 dle_prefetch_subobj(dl, dle, obj);
843 }
844
845 static int
dsl_deadlist_insert_cb(void * arg,const blkptr_t * bp,boolean_t bp_freed,dmu_tx_t * tx)846 dsl_deadlist_insert_cb(void *arg, const blkptr_t *bp, boolean_t bp_freed,
847 dmu_tx_t *tx)
848 {
849 dsl_deadlist_t *dl = arg;
850 dsl_deadlist_insert(dl, bp, bp_freed, tx);
851 return (0);
852 }
853
854 /*
855 * Merge the deadlist pointed to by 'obj' into dl. obj will be left as
856 * an empty deadlist.
857 */
858 void
dsl_deadlist_merge(dsl_deadlist_t * dl,uint64_t obj,dmu_tx_t * tx)859 dsl_deadlist_merge(dsl_deadlist_t *dl, uint64_t obj, dmu_tx_t *tx)
860 {
861 zap_cursor_t zc, pzc;
862 zap_attribute_t *za, *pza;
863 dmu_buf_t *bonus;
864 dsl_deadlist_phys_t *dlp;
865 dmu_object_info_t doi;
866 int error, perror, i;
867
868 VERIFY0(dmu_object_info(dl->dl_os, obj, &doi));
869 if (doi.doi_type == DMU_OT_BPOBJ) {
870 bpobj_t bpo;
871 VERIFY0(bpobj_open(&bpo, dl->dl_os, obj));
872 VERIFY0(bpobj_iterate(&bpo, dsl_deadlist_insert_cb, dl, tx));
873 bpobj_close(&bpo);
874 return;
875 }
876
877 za = kmem_alloc(sizeof (*za), KM_SLEEP);
878 pza = kmem_alloc(sizeof (*pza), KM_SLEEP);
879
880 mutex_enter(&dl->dl_lock);
881 /*
882 * Prefetch up to 128 deadlists first and then more as we progress.
883 * The limit is a balance between ARC use and diminishing returns.
884 */
885 for (zap_cursor_init(&pzc, dl->dl_os, obj), i = 0;
886 (perror = zap_cursor_retrieve(&pzc, pza)) == 0 && i < 128;
887 zap_cursor_advance(&pzc), i++) {
888 dsl_deadlist_prefetch_bpobj(dl, pza->za_first_integer,
889 zfs_strtonum(pza->za_name, NULL));
890 }
891 for (zap_cursor_init(&zc, dl->dl_os, obj);
892 (error = zap_cursor_retrieve(&zc, za)) == 0;
893 zap_cursor_advance(&zc)) {
894 uint64_t mintxg = zfs_strtonum(za->za_name, NULL);
895 dsl_deadlist_insert_bpobj(dl, za->za_first_integer, mintxg, tx);
896 VERIFY0(zap_remove_int(dl->dl_os, obj, mintxg, tx));
897 if (perror == 0) {
898 dsl_deadlist_prefetch_bpobj(dl, pza->za_first_integer,
899 zfs_strtonum(pza->za_name, NULL));
900 zap_cursor_advance(&pzc);
901 perror = zap_cursor_retrieve(&pzc, pza);
902 }
903 }
904 VERIFY3U(error, ==, ENOENT);
905 zap_cursor_fini(&zc);
906 zap_cursor_fini(&pzc);
907
908 VERIFY0(dmu_bonus_hold(dl->dl_os, obj, FTAG, &bonus));
909 dlp = bonus->db_data;
910 dmu_buf_will_dirty(bonus, tx);
911 bzero(dlp, sizeof (*dlp));
912 dmu_buf_rele(bonus, FTAG);
913 mutex_exit(&dl->dl_lock);
914
915 kmem_free(za, sizeof (*za));
916 kmem_free(pza, sizeof (*pza));
917 }
918
919 /*
920 * Remove entries on dl that are born > mintxg, and put them on the bpobj.
921 */
922 void
dsl_deadlist_move_bpobj(dsl_deadlist_t * dl,bpobj_t * bpo,uint64_t mintxg,dmu_tx_t * tx)923 dsl_deadlist_move_bpobj(dsl_deadlist_t *dl, bpobj_t *bpo, uint64_t mintxg,
924 dmu_tx_t *tx)
925 {
926 dsl_deadlist_entry_t dle_tofind;
927 dsl_deadlist_entry_t *dle, *pdle;
928 avl_index_t where;
929 int i;
930
931 ASSERT(!dl->dl_oldfmt);
932
933 mutex_enter(&dl->dl_lock);
934 dmu_buf_will_dirty(dl->dl_dbuf, tx);
935 dsl_deadlist_load_tree(dl);
936
937 dle_tofind.dle_mintxg = mintxg;
938 dle = avl_find(&dl->dl_tree, &dle_tofind, &where);
939 if (dle == NULL)
940 dle = avl_nearest(&dl->dl_tree, where, AVL_AFTER);
941 /*
942 * Prefetch up to 128 deadlists first and then more as we progress.
943 * The limit is a balance between ARC use and diminishing returns.
944 */
945 for (pdle = dle, i = 0; pdle && i < 128; i++) {
946 bpobj_prefetch_subobj(bpo, pdle->dle_bpobj.bpo_object);
947 pdle = AVL_NEXT(&dl->dl_tree, pdle);
948 }
949 while (dle) {
950 uint64_t used, comp, uncomp;
951 dsl_deadlist_entry_t *dle_next;
952
953 bpobj_enqueue_subobj(bpo, dle->dle_bpobj.bpo_object, tx);
954 if (pdle) {
955 bpobj_prefetch_subobj(bpo, pdle->dle_bpobj.bpo_object);
956 pdle = AVL_NEXT(&dl->dl_tree, pdle);
957 }
958
959 VERIFY0(bpobj_space(&dle->dle_bpobj,
960 &used, &comp, &uncomp));
961 ASSERT3U(dl->dl_phys->dl_used, >=, used);
962 ASSERT3U(dl->dl_phys->dl_comp, >=, comp);
963 ASSERT3U(dl->dl_phys->dl_uncomp, >=, uncomp);
964 dl->dl_phys->dl_used -= used;
965 dl->dl_phys->dl_comp -= comp;
966 dl->dl_phys->dl_uncomp -= uncomp;
967
968 VERIFY0(zap_remove_int(dl->dl_os, dl->dl_object,
969 dle->dle_mintxg, tx));
970
971 dle_next = AVL_NEXT(&dl->dl_tree, dle);
972 avl_remove(&dl->dl_tree, dle);
973 bpobj_close(&dle->dle_bpobj);
974 kmem_free(dle, sizeof (*dle));
975 dle = dle_next;
976 }
977 mutex_exit(&dl->dl_lock);
978 }
979
980 typedef struct livelist_entry {
981 blkptr_t le_bp;
982 uint32_t le_refcnt;
983 avl_node_t le_node;
984 } livelist_entry_t;
985
986 static int
livelist_compare(const void * larg,const void * rarg)987 livelist_compare(const void *larg, const void *rarg)
988 {
989 const blkptr_t *l = &((livelist_entry_t *)larg)->le_bp;
990 const blkptr_t *r = &((livelist_entry_t *)rarg)->le_bp;
991
992 /* Sort them according to dva[0] */
993 uint64_t l_dva0_vdev = DVA_GET_VDEV(&l->blk_dva[0]);
994 uint64_t r_dva0_vdev = DVA_GET_VDEV(&r->blk_dva[0]);
995
996 if (l_dva0_vdev != r_dva0_vdev)
997 return (TREE_CMP(l_dva0_vdev, r_dva0_vdev));
998
999 /* if vdevs are equal, sort by offsets. */
1000 uint64_t l_dva0_offset = DVA_GET_OFFSET(&l->blk_dva[0]);
1001 uint64_t r_dva0_offset = DVA_GET_OFFSET(&r->blk_dva[0]);
1002 if (l_dva0_offset == r_dva0_offset)
1003 ASSERT3U(l->blk_birth, ==, r->blk_birth);
1004 return (TREE_CMP(l_dva0_offset, r_dva0_offset));
1005 }
1006
1007 struct livelist_iter_arg {
1008 avl_tree_t *avl;
1009 bplist_t *to_free;
1010 zthr_t *t;
1011 };
1012
1013 /*
1014 * Expects an AVL tree which is incrementally filled will FREE blkptrs
1015 * and used to match up ALLOC/FREE pairs. ALLOC'd blkptrs without a
1016 * corresponding FREE are stored in the supplied bplist.
1017 *
1018 * Note that multiple FREE and ALLOC entries for the same blkptr may
1019 * be encountered when dedup is involved. For this reason we keep a
1020 * refcount for all the FREE entries of each blkptr and ensure that
1021 * each of those FREE entries has a corresponding ALLOC preceding it.
1022 */
1023 static int
dsl_livelist_iterate(void * arg,const blkptr_t * bp,boolean_t bp_freed,dmu_tx_t * tx)1024 dsl_livelist_iterate(void *arg, const blkptr_t *bp, boolean_t bp_freed,
1025 dmu_tx_t *tx)
1026 {
1027 struct livelist_iter_arg *lia = arg;
1028 avl_tree_t *avl = lia->avl;
1029 bplist_t *to_free = lia->to_free;
1030 zthr_t *t = lia->t;
1031 ASSERT(tx == NULL);
1032
1033 if ((t != NULL) && (zthr_has_waiters(t) || zthr_iscancelled(t)))
1034 return (SET_ERROR(EINTR));
1035
1036 livelist_entry_t node;
1037 node.le_bp = *bp;
1038 livelist_entry_t *found = avl_find(avl, &node, NULL);
1039 if (bp_freed) {
1040 if (found == NULL) {
1041 /* first free entry for this blkptr */
1042 livelist_entry_t *e =
1043 kmem_alloc(sizeof (livelist_entry_t), KM_SLEEP);
1044 e->le_bp = *bp;
1045 e->le_refcnt = 1;
1046 avl_add(avl, e);
1047 } else {
1048 /* dedup block free */
1049 ASSERT(BP_GET_DEDUP(bp));
1050 ASSERT3U(BP_GET_CHECKSUM(bp), ==,
1051 BP_GET_CHECKSUM(&found->le_bp));
1052 ASSERT3U(found->le_refcnt + 1, >, found->le_refcnt);
1053 found->le_refcnt++;
1054 }
1055 } else {
1056 if (found == NULL) {
1057 /* block is currently marked as allocated */
1058 bplist_append(to_free, bp);
1059 } else {
1060 /* alloc matches a free entry */
1061 ASSERT3U(found->le_refcnt, !=, 0);
1062 found->le_refcnt--;
1063 if (found->le_refcnt == 0) {
1064 /* all tracked free pairs have been matched */
1065 avl_remove(avl, found);
1066 kmem_free(found, sizeof (livelist_entry_t));
1067 } else {
1068 /*
1069 * This is definitely a deduped blkptr so
1070 * let's validate it.
1071 */
1072 ASSERT(BP_GET_DEDUP(bp));
1073 ASSERT3U(BP_GET_CHECKSUM(bp), ==,
1074 BP_GET_CHECKSUM(&found->le_bp));
1075 }
1076 }
1077 }
1078 return (0);
1079 }
1080
1081 /*
1082 * Accepts a bpobj and a bplist. Will insert into the bplist the blkptrs
1083 * which have an ALLOC entry but no matching FREE
1084 */
1085 int
dsl_process_sub_livelist(bpobj_t * bpobj,bplist_t * to_free,zthr_t * t,uint64_t * size)1086 dsl_process_sub_livelist(bpobj_t *bpobj, bplist_t *to_free, zthr_t *t,
1087 uint64_t *size)
1088 {
1089 avl_tree_t avl;
1090 avl_create(&avl, livelist_compare, sizeof (livelist_entry_t),
1091 offsetof(livelist_entry_t, le_node));
1092
1093 /* process the sublist */
1094 struct livelist_iter_arg arg = {
1095 .avl = &avl,
1096 .to_free = to_free,
1097 .t = t
1098 };
1099 int err = bpobj_iterate_nofree(bpobj, dsl_livelist_iterate, &arg, size);
1100 VERIFY(err != 0 || avl_numnodes(&avl) == 0);
1101
1102 void *cookie = NULL;
1103 livelist_entry_t *le = NULL;
1104 while ((le = avl_destroy_nodes(&avl, &cookie)) != NULL) {
1105 kmem_free(le, sizeof (livelist_entry_t));
1106 }
1107 avl_destroy(&avl);
1108 return (err);
1109 }
1110
1111 /* BEGIN CSTYLED */
1112 ZFS_MODULE_PARAM(zfs_livelist, zfs_livelist_, max_entries, ULONG, ZMOD_RW,
1113 "Size to start the next sub-livelist in a livelist");
1114
1115 ZFS_MODULE_PARAM(zfs_livelist, zfs_livelist_, min_percent_shared, INT, ZMOD_RW,
1116 "Threshold at which livelist is disabled");
1117 /* END CSTYLED */
1118