1 /*
2 * CDDL HEADER START
3 *
4 * The contents of this file are subject to the terms of the
5 * Common Development and Distribution License (the "License").
6 * You may not use this file except in compliance with the License.
7 *
8 * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9 * or http://www.opensolaris.org/os/licensing.
10 * See the License for the specific language governing permissions
11 * and limitations under the License.
12 *
13 * When distributing Covered Code, include this CDDL HEADER in each
14 * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15 * If applicable, add the following below this CDDL HEADER, with the
16 * fields enclosed by brackets "[]" replaced with your own identifying
17 * information: Portions Copyright [yyyy] [name of copyright owner]
18 *
19 * CDDL HEADER END
20 */
21 /*
22 * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved.
23 * Copyright (c) 2011, 2020 by Delphix. All rights reserved.
24 * Copyright (c) 2013 Steven Hartland. All rights reserved.
25 * Copyright (c) 2014 Spectra Logic Corporation, All rights reserved.
26 * Copyright 2016 Nexenta Systems, Inc. All rights reserved.
27 */
28
29 #include <sys/dsl_pool.h>
30 #include <sys/dsl_dataset.h>
31 #include <sys/dsl_prop.h>
32 #include <sys/dsl_dir.h>
33 #include <sys/dsl_synctask.h>
34 #include <sys/dsl_scan.h>
35 #include <sys/dnode.h>
36 #include <sys/dmu_tx.h>
37 #include <sys/dmu_objset.h>
38 #include <sys/arc.h>
39 #include <sys/zap.h>
40 #include <sys/zio.h>
41 #include <sys/zfs_context.h>
42 #include <sys/fs/zfs.h>
43 #include <sys/zfs_znode.h>
44 #include <sys/spa_impl.h>
45 #include <sys/vdev_impl.h>
46 #include <sys/metaslab_impl.h>
47 #include <sys/bptree.h>
48 #include <sys/zfeature.h>
49 #include <sys/zil_impl.h>
50 #include <sys/dsl_userhold.h>
51 #include <sys/trace_zfs.h>
52 #include <sys/mmp.h>
53
54 /*
55 * ZFS Write Throttle
56 * ------------------
57 *
58 * ZFS must limit the rate of incoming writes to the rate at which it is able
59 * to sync data modifications to the backend storage. Throttling by too much
60 * creates an artificial limit; throttling by too little can only be sustained
61 * for short periods and would lead to highly lumpy performance. On a per-pool
62 * basis, ZFS tracks the amount of modified (dirty) data. As operations change
63 * data, the amount of dirty data increases; as ZFS syncs out data, the amount
64 * of dirty data decreases. When the amount of dirty data exceeds a
65 * predetermined threshold further modifications are blocked until the amount
66 * of dirty data decreases (as data is synced out).
67 *
68 * The limit on dirty data is tunable, and should be adjusted according to
69 * both the IO capacity and available memory of the system. The larger the
70 * window, the more ZFS is able to aggregate and amortize metadata (and data)
71 * changes. However, memory is a limited resource, and allowing for more dirty
72 * data comes at the cost of keeping other useful data in memory (for example
73 * ZFS data cached by the ARC).
74 *
75 * Implementation
76 *
77 * As buffers are modified dsl_pool_willuse_space() increments both the per-
78 * txg (dp_dirty_pertxg[]) and poolwide (dp_dirty_total) accounting of
79 * dirty space used; dsl_pool_dirty_space() decrements those values as data
80 * is synced out from dsl_pool_sync(). While only the poolwide value is
81 * relevant, the per-txg value is useful for debugging. The tunable
82 * zfs_dirty_data_max determines the dirty space limit. Once that value is
83 * exceeded, new writes are halted until space frees up.
84 *
85 * The zfs_dirty_data_sync_percent tunable dictates the threshold at which we
86 * ensure that there is a txg syncing (see the comment in txg.c for a full
87 * description of transaction group stages).
88 *
89 * The IO scheduler uses both the dirty space limit and current amount of
90 * dirty data as inputs. Those values affect the number of concurrent IOs ZFS
91 * issues. See the comment in vdev_queue.c for details of the IO scheduler.
92 *
93 * The delay is also calculated based on the amount of dirty data. See the
94 * comment above dmu_tx_delay() for details.
95 */
96
97 /*
98 * zfs_dirty_data_max will be set to zfs_dirty_data_max_percent% of all memory,
99 * capped at zfs_dirty_data_max_max. It can also be overridden with a module
100 * parameter.
101 */
102 unsigned long zfs_dirty_data_max = 0;
103 unsigned long zfs_dirty_data_max_max = 0;
104 int zfs_dirty_data_max_percent = 10;
105 int zfs_dirty_data_max_max_percent = 25;
106
107 /*
108 * If there's at least this much dirty data (as a percentage of
109 * zfs_dirty_data_max), push out a txg. This should be less than
110 * zfs_vdev_async_write_active_min_dirty_percent.
111 */
112 int zfs_dirty_data_sync_percent = 20;
113
114 /*
115 * Once there is this amount of dirty data, the dmu_tx_delay() will kick in
116 * and delay each transaction.
117 * This value should be >= zfs_vdev_async_write_active_max_dirty_percent.
118 */
119 int zfs_delay_min_dirty_percent = 60;
120
121 /*
122 * This controls how quickly the delay approaches infinity.
123 * Larger values cause it to delay more for a given amount of dirty data.
124 * Therefore larger values will cause there to be less dirty data for a
125 * given throughput.
126 *
127 * For the smoothest delay, this value should be about 1 billion divided
128 * by the maximum number of operations per second. This will smoothly
129 * handle between 10x and 1/10th this number.
130 *
131 * Note: zfs_delay_scale * zfs_dirty_data_max must be < 2^64, due to the
132 * multiply in dmu_tx_delay().
133 */
134 unsigned long zfs_delay_scale = 1000 * 1000 * 1000 / 2000;
135
136 /*
137 * This determines the number of threads used by the dp_sync_taskq.
138 */
139 int zfs_sync_taskq_batch_pct = 75;
140
141 /*
142 * These tunables determine the behavior of how zil_itxg_clean() is
143 * called via zil_clean() in the context of spa_sync(). When an itxg
144 * list needs to be cleaned, TQ_NOSLEEP will be used when dispatching.
145 * If the dispatch fails, the call to zil_itxg_clean() will occur
146 * synchronously in the context of spa_sync(), which can negatively
147 * impact the performance of spa_sync() (e.g. in the case of the itxg
148 * list having a large number of itxs that needs to be cleaned).
149 *
150 * Thus, these tunables can be used to manipulate the behavior of the
151 * taskq used by zil_clean(); they determine the number of taskq entries
152 * that are pre-populated when the taskq is first created (via the
153 * "zfs_zil_clean_taskq_minalloc" tunable) and the maximum number of
154 * taskq entries that are cached after an on-demand allocation (via the
155 * "zfs_zil_clean_taskq_maxalloc").
156 *
157 * The idea being, we want to try reasonably hard to ensure there will
158 * already be a taskq entry pre-allocated by the time that it is needed
159 * by zil_clean(). This way, we can avoid the possibility of an
160 * on-demand allocation of a new taskq entry from failing, which would
161 * result in zil_itxg_clean() being called synchronously from zil_clean()
162 * (which can adversely affect performance of spa_sync()).
163 *
164 * Additionally, the number of threads used by the taskq can be
165 * configured via the "zfs_zil_clean_taskq_nthr_pct" tunable.
166 */
167 int zfs_zil_clean_taskq_nthr_pct = 100;
168 int zfs_zil_clean_taskq_minalloc = 1024;
169 int zfs_zil_clean_taskq_maxalloc = 1024 * 1024;
170
171 int
dsl_pool_open_special_dir(dsl_pool_t * dp,const char * name,dsl_dir_t ** ddp)172 dsl_pool_open_special_dir(dsl_pool_t *dp, const char *name, dsl_dir_t **ddp)
173 {
174 uint64_t obj;
175 int err;
176
177 err = zap_lookup(dp->dp_meta_objset,
178 dsl_dir_phys(dp->dp_root_dir)->dd_child_dir_zapobj,
179 name, sizeof (obj), 1, &obj);
180 if (err)
181 return (err);
182
183 return (dsl_dir_hold_obj(dp, obj, name, dp, ddp));
184 }
185
186 static dsl_pool_t *
dsl_pool_open_impl(spa_t * spa,uint64_t txg)187 dsl_pool_open_impl(spa_t *spa, uint64_t txg)
188 {
189 dsl_pool_t *dp;
190 blkptr_t *bp = spa_get_rootblkptr(spa);
191
192 dp = kmem_zalloc(sizeof (dsl_pool_t), KM_SLEEP);
193 dp->dp_spa = spa;
194 dp->dp_meta_rootbp = *bp;
195 rrw_init(&dp->dp_config_rwlock, B_TRUE);
196 txg_init(dp, txg);
197 mmp_init(spa);
198
199 txg_list_create(&dp->dp_dirty_datasets, spa,
200 offsetof(dsl_dataset_t, ds_dirty_link));
201 txg_list_create(&dp->dp_dirty_zilogs, spa,
202 offsetof(zilog_t, zl_dirty_link));
203 txg_list_create(&dp->dp_dirty_dirs, spa,
204 offsetof(dsl_dir_t, dd_dirty_link));
205 txg_list_create(&dp->dp_sync_tasks, spa,
206 offsetof(dsl_sync_task_t, dst_node));
207 txg_list_create(&dp->dp_early_sync_tasks, spa,
208 offsetof(dsl_sync_task_t, dst_node));
209
210 dp->dp_sync_taskq = taskq_create("dp_sync_taskq",
211 zfs_sync_taskq_batch_pct, minclsyspri, 1, INT_MAX,
212 TASKQ_THREADS_CPU_PCT);
213
214 dp->dp_zil_clean_taskq = taskq_create("dp_zil_clean_taskq",
215 zfs_zil_clean_taskq_nthr_pct, minclsyspri,
216 zfs_zil_clean_taskq_minalloc,
217 zfs_zil_clean_taskq_maxalloc,
218 TASKQ_PREPOPULATE | TASKQ_THREADS_CPU_PCT);
219
220 mutex_init(&dp->dp_lock, NULL, MUTEX_DEFAULT, NULL);
221 cv_init(&dp->dp_spaceavail_cv, NULL, CV_DEFAULT, NULL);
222
223 dp->dp_zrele_taskq = taskq_create("z_zrele", 100, defclsyspri,
224 boot_ncpus * 8, INT_MAX, TASKQ_PREPOPULATE | TASKQ_DYNAMIC |
225 TASKQ_THREADS_CPU_PCT);
226 dp->dp_unlinked_drain_taskq = taskq_create("z_unlinked_drain",
227 100, defclsyspri, boot_ncpus, INT_MAX,
228 TASKQ_PREPOPULATE | TASKQ_DYNAMIC | TASKQ_THREADS_CPU_PCT);
229
230 return (dp);
231 }
232
233 int
dsl_pool_init(spa_t * spa,uint64_t txg,dsl_pool_t ** dpp)234 dsl_pool_init(spa_t *spa, uint64_t txg, dsl_pool_t **dpp)
235 {
236 int err;
237 dsl_pool_t *dp = dsl_pool_open_impl(spa, txg);
238
239 /*
240 * Initialize the caller's dsl_pool_t structure before we actually open
241 * the meta objset. This is done because a self-healing write zio may
242 * be issued as part of dmu_objset_open_impl() and the spa needs its
243 * dsl_pool_t initialized in order to handle the write.
244 */
245 *dpp = dp;
246
247 err = dmu_objset_open_impl(spa, NULL, &dp->dp_meta_rootbp,
248 &dp->dp_meta_objset);
249 if (err != 0) {
250 dsl_pool_close(dp);
251 *dpp = NULL;
252 }
253
254 return (err);
255 }
256
257 int
dsl_pool_open(dsl_pool_t * dp)258 dsl_pool_open(dsl_pool_t *dp)
259 {
260 int err;
261 dsl_dir_t *dd;
262 dsl_dataset_t *ds;
263 uint64_t obj;
264
265 rrw_enter(&dp->dp_config_rwlock, RW_WRITER, FTAG);
266 err = zap_lookup(dp->dp_meta_objset, DMU_POOL_DIRECTORY_OBJECT,
267 DMU_POOL_ROOT_DATASET, sizeof (uint64_t), 1,
268 &dp->dp_root_dir_obj);
269 if (err)
270 goto out;
271
272 err = dsl_dir_hold_obj(dp, dp->dp_root_dir_obj,
273 NULL, dp, &dp->dp_root_dir);
274 if (err)
275 goto out;
276
277 err = dsl_pool_open_special_dir(dp, MOS_DIR_NAME, &dp->dp_mos_dir);
278 if (err)
279 goto out;
280
281 if (spa_version(dp->dp_spa) >= SPA_VERSION_ORIGIN) {
282 err = dsl_pool_open_special_dir(dp, ORIGIN_DIR_NAME, &dd);
283 if (err)
284 goto out;
285 err = dsl_dataset_hold_obj(dp,
286 dsl_dir_phys(dd)->dd_head_dataset_obj, FTAG, &ds);
287 if (err == 0) {
288 err = dsl_dataset_hold_obj(dp,
289 dsl_dataset_phys(ds)->ds_prev_snap_obj, dp,
290 &dp->dp_origin_snap);
291 dsl_dataset_rele(ds, FTAG);
292 }
293 dsl_dir_rele(dd, dp);
294 if (err)
295 goto out;
296 }
297
298 if (spa_version(dp->dp_spa) >= SPA_VERSION_DEADLISTS) {
299 err = dsl_pool_open_special_dir(dp, FREE_DIR_NAME,
300 &dp->dp_free_dir);
301 if (err)
302 goto out;
303
304 err = zap_lookup(dp->dp_meta_objset, DMU_POOL_DIRECTORY_OBJECT,
305 DMU_POOL_FREE_BPOBJ, sizeof (uint64_t), 1, &obj);
306 if (err)
307 goto out;
308 VERIFY0(bpobj_open(&dp->dp_free_bpobj,
309 dp->dp_meta_objset, obj));
310 }
311
312 if (spa_feature_is_active(dp->dp_spa, SPA_FEATURE_OBSOLETE_COUNTS)) {
313 err = zap_lookup(dp->dp_meta_objset, DMU_POOL_DIRECTORY_OBJECT,
314 DMU_POOL_OBSOLETE_BPOBJ, sizeof (uint64_t), 1, &obj);
315 if (err == 0) {
316 VERIFY0(bpobj_open(&dp->dp_obsolete_bpobj,
317 dp->dp_meta_objset, obj));
318 } else if (err == ENOENT) {
319 /*
320 * We might not have created the remap bpobj yet.
321 */
322 err = 0;
323 } else {
324 goto out;
325 }
326 }
327
328 /*
329 * Note: errors ignored, because the these special dirs, used for
330 * space accounting, are only created on demand.
331 */
332 (void) dsl_pool_open_special_dir(dp, LEAK_DIR_NAME,
333 &dp->dp_leak_dir);
334
335 if (spa_feature_is_active(dp->dp_spa, SPA_FEATURE_ASYNC_DESTROY)) {
336 err = zap_lookup(dp->dp_meta_objset, DMU_POOL_DIRECTORY_OBJECT,
337 DMU_POOL_BPTREE_OBJ, sizeof (uint64_t), 1,
338 &dp->dp_bptree_obj);
339 if (err != 0)
340 goto out;
341 }
342
343 if (spa_feature_is_active(dp->dp_spa, SPA_FEATURE_EMPTY_BPOBJ)) {
344 err = zap_lookup(dp->dp_meta_objset, DMU_POOL_DIRECTORY_OBJECT,
345 DMU_POOL_EMPTY_BPOBJ, sizeof (uint64_t), 1,
346 &dp->dp_empty_bpobj);
347 if (err != 0)
348 goto out;
349 }
350
351 err = zap_lookup(dp->dp_meta_objset, DMU_POOL_DIRECTORY_OBJECT,
352 DMU_POOL_TMP_USERREFS, sizeof (uint64_t), 1,
353 &dp->dp_tmp_userrefs_obj);
354 if (err == ENOENT)
355 err = 0;
356 if (err)
357 goto out;
358
359 err = dsl_scan_init(dp, dp->dp_tx.tx_open_txg);
360
361 out:
362 rrw_exit(&dp->dp_config_rwlock, FTAG);
363 return (err);
364 }
365
366 void
dsl_pool_close(dsl_pool_t * dp)367 dsl_pool_close(dsl_pool_t *dp)
368 {
369 /*
370 * Drop our references from dsl_pool_open().
371 *
372 * Since we held the origin_snap from "syncing" context (which
373 * includes pool-opening context), it actually only got a "ref"
374 * and not a hold, so just drop that here.
375 */
376 if (dp->dp_origin_snap != NULL)
377 dsl_dataset_rele(dp->dp_origin_snap, dp);
378 if (dp->dp_mos_dir != NULL)
379 dsl_dir_rele(dp->dp_mos_dir, dp);
380 if (dp->dp_free_dir != NULL)
381 dsl_dir_rele(dp->dp_free_dir, dp);
382 if (dp->dp_leak_dir != NULL)
383 dsl_dir_rele(dp->dp_leak_dir, dp);
384 if (dp->dp_root_dir != NULL)
385 dsl_dir_rele(dp->dp_root_dir, dp);
386
387 bpobj_close(&dp->dp_free_bpobj);
388 bpobj_close(&dp->dp_obsolete_bpobj);
389
390 /* undo the dmu_objset_open_impl(mos) from dsl_pool_open() */
391 if (dp->dp_meta_objset != NULL)
392 dmu_objset_evict(dp->dp_meta_objset);
393
394 txg_list_destroy(&dp->dp_dirty_datasets);
395 txg_list_destroy(&dp->dp_dirty_zilogs);
396 txg_list_destroy(&dp->dp_sync_tasks);
397 txg_list_destroy(&dp->dp_early_sync_tasks);
398 txg_list_destroy(&dp->dp_dirty_dirs);
399
400 taskq_destroy(dp->dp_zil_clean_taskq);
401 taskq_destroy(dp->dp_sync_taskq);
402
403 /*
404 * We can't set retry to TRUE since we're explicitly specifying
405 * a spa to flush. This is good enough; any missed buffers for
406 * this spa won't cause trouble, and they'll eventually fall
407 * out of the ARC just like any other unused buffer.
408 */
409 arc_flush(dp->dp_spa, FALSE);
410
411 mmp_fini(dp->dp_spa);
412 txg_fini(dp);
413 dsl_scan_fini(dp);
414 dmu_buf_user_evict_wait();
415
416 rrw_destroy(&dp->dp_config_rwlock);
417 mutex_destroy(&dp->dp_lock);
418 cv_destroy(&dp->dp_spaceavail_cv);
419 taskq_destroy(dp->dp_unlinked_drain_taskq);
420 taskq_destroy(dp->dp_zrele_taskq);
421 if (dp->dp_blkstats != NULL) {
422 mutex_destroy(&dp->dp_blkstats->zab_lock);
423 vmem_free(dp->dp_blkstats, sizeof (zfs_all_blkstats_t));
424 }
425 kmem_free(dp, sizeof (dsl_pool_t));
426 }
427
428 void
dsl_pool_create_obsolete_bpobj(dsl_pool_t * dp,dmu_tx_t * tx)429 dsl_pool_create_obsolete_bpobj(dsl_pool_t *dp, dmu_tx_t *tx)
430 {
431 uint64_t obj;
432 /*
433 * Currently, we only create the obsolete_bpobj where there are
434 * indirect vdevs with referenced mappings.
435 */
436 ASSERT(spa_feature_is_active(dp->dp_spa, SPA_FEATURE_DEVICE_REMOVAL));
437 /* create and open the obsolete_bpobj */
438 obj = bpobj_alloc(dp->dp_meta_objset, SPA_OLD_MAXBLOCKSIZE, tx);
439 VERIFY0(bpobj_open(&dp->dp_obsolete_bpobj, dp->dp_meta_objset, obj));
440 VERIFY0(zap_add(dp->dp_meta_objset, DMU_POOL_DIRECTORY_OBJECT,
441 DMU_POOL_OBSOLETE_BPOBJ, sizeof (uint64_t), 1, &obj, tx));
442 spa_feature_incr(dp->dp_spa, SPA_FEATURE_OBSOLETE_COUNTS, tx);
443 }
444
445 void
dsl_pool_destroy_obsolete_bpobj(dsl_pool_t * dp,dmu_tx_t * tx)446 dsl_pool_destroy_obsolete_bpobj(dsl_pool_t *dp, dmu_tx_t *tx)
447 {
448 spa_feature_decr(dp->dp_spa, SPA_FEATURE_OBSOLETE_COUNTS, tx);
449 VERIFY0(zap_remove(dp->dp_meta_objset,
450 DMU_POOL_DIRECTORY_OBJECT,
451 DMU_POOL_OBSOLETE_BPOBJ, tx));
452 bpobj_free(dp->dp_meta_objset,
453 dp->dp_obsolete_bpobj.bpo_object, tx);
454 bpobj_close(&dp->dp_obsolete_bpobj);
455 }
456
457 dsl_pool_t *
dsl_pool_create(spa_t * spa,nvlist_t * zplprops,dsl_crypto_params_t * dcp,uint64_t txg)458 dsl_pool_create(spa_t *spa, nvlist_t *zplprops __attribute__((unused)),
459 dsl_crypto_params_t *dcp, uint64_t txg)
460 {
461 int err;
462 dsl_pool_t *dp = dsl_pool_open_impl(spa, txg);
463 dmu_tx_t *tx = dmu_tx_create_assigned(dp, txg);
464 #ifdef _KERNEL
465 objset_t *os;
466 #else
467 objset_t *os __attribute__((unused));
468 #endif
469 dsl_dataset_t *ds;
470 uint64_t obj;
471
472 rrw_enter(&dp->dp_config_rwlock, RW_WRITER, FTAG);
473
474 /* create and open the MOS (meta-objset) */
475 dp->dp_meta_objset = dmu_objset_create_impl(spa,
476 NULL, &dp->dp_meta_rootbp, DMU_OST_META, tx);
477 spa->spa_meta_objset = dp->dp_meta_objset;
478
479 /* create the pool directory */
480 err = zap_create_claim(dp->dp_meta_objset, DMU_POOL_DIRECTORY_OBJECT,
481 DMU_OT_OBJECT_DIRECTORY, DMU_OT_NONE, 0, tx);
482 ASSERT0(err);
483
484 /* Initialize scan structures */
485 VERIFY0(dsl_scan_init(dp, txg));
486
487 /* create and open the root dir */
488 dp->dp_root_dir_obj = dsl_dir_create_sync(dp, NULL, NULL, tx);
489 VERIFY0(dsl_dir_hold_obj(dp, dp->dp_root_dir_obj,
490 NULL, dp, &dp->dp_root_dir));
491
492 /* create and open the meta-objset dir */
493 (void) dsl_dir_create_sync(dp, dp->dp_root_dir, MOS_DIR_NAME, tx);
494 VERIFY0(dsl_pool_open_special_dir(dp,
495 MOS_DIR_NAME, &dp->dp_mos_dir));
496
497 if (spa_version(spa) >= SPA_VERSION_DEADLISTS) {
498 /* create and open the free dir */
499 (void) dsl_dir_create_sync(dp, dp->dp_root_dir,
500 FREE_DIR_NAME, tx);
501 VERIFY0(dsl_pool_open_special_dir(dp,
502 FREE_DIR_NAME, &dp->dp_free_dir));
503
504 /* create and open the free_bplist */
505 obj = bpobj_alloc(dp->dp_meta_objset, SPA_OLD_MAXBLOCKSIZE, tx);
506 VERIFY(zap_add(dp->dp_meta_objset, DMU_POOL_DIRECTORY_OBJECT,
507 DMU_POOL_FREE_BPOBJ, sizeof (uint64_t), 1, &obj, tx) == 0);
508 VERIFY0(bpobj_open(&dp->dp_free_bpobj,
509 dp->dp_meta_objset, obj));
510 }
511
512 if (spa_version(spa) >= SPA_VERSION_DSL_SCRUB)
513 dsl_pool_create_origin(dp, tx);
514
515 /*
516 * Some features may be needed when creating the root dataset, so we
517 * create the feature objects here.
518 */
519 if (spa_version(spa) >= SPA_VERSION_FEATURES)
520 spa_feature_create_zap_objects(spa, tx);
521
522 if (dcp != NULL && dcp->cp_crypt != ZIO_CRYPT_OFF &&
523 dcp->cp_crypt != ZIO_CRYPT_INHERIT)
524 spa_feature_enable(spa, SPA_FEATURE_ENCRYPTION, tx);
525
526 /* create the root dataset */
527 obj = dsl_dataset_create_sync_dd(dp->dp_root_dir, NULL, dcp, 0, tx);
528
529 /* create the root objset */
530 VERIFY0(dsl_dataset_hold_obj_flags(dp, obj,
531 DS_HOLD_FLAG_DECRYPT, FTAG, &ds));
532 rrw_enter(&ds->ds_bp_rwlock, RW_READER, FTAG);
533 os = dmu_objset_create_impl(dp->dp_spa, ds,
534 dsl_dataset_get_blkptr(ds), DMU_OST_ZFS, tx);
535 rrw_exit(&ds->ds_bp_rwlock, FTAG);
536 #ifdef _KERNEL
537 zfs_create_fs(os, kcred, zplprops, tx);
538 #endif
539 dsl_dataset_rele_flags(ds, DS_HOLD_FLAG_DECRYPT, FTAG);
540
541 dmu_tx_commit(tx);
542
543 rrw_exit(&dp->dp_config_rwlock, FTAG);
544
545 return (dp);
546 }
547
548 /*
549 * Account for the meta-objset space in its placeholder dsl_dir.
550 */
551 void
dsl_pool_mos_diduse_space(dsl_pool_t * dp,int64_t used,int64_t comp,int64_t uncomp)552 dsl_pool_mos_diduse_space(dsl_pool_t *dp,
553 int64_t used, int64_t comp, int64_t uncomp)
554 {
555 ASSERT3U(comp, ==, uncomp); /* it's all metadata */
556 mutex_enter(&dp->dp_lock);
557 dp->dp_mos_used_delta += used;
558 dp->dp_mos_compressed_delta += comp;
559 dp->dp_mos_uncompressed_delta += uncomp;
560 mutex_exit(&dp->dp_lock);
561 }
562
563 static void
dsl_pool_sync_mos(dsl_pool_t * dp,dmu_tx_t * tx)564 dsl_pool_sync_mos(dsl_pool_t *dp, dmu_tx_t *tx)
565 {
566 zio_t *zio = zio_root(dp->dp_spa, NULL, NULL, ZIO_FLAG_MUSTSUCCEED);
567 dmu_objset_sync(dp->dp_meta_objset, zio, tx);
568 VERIFY0(zio_wait(zio));
569 dmu_objset_sync_done(dp->dp_meta_objset, tx);
570 taskq_wait(dp->dp_sync_taskq);
571 multilist_destroy(&dp->dp_meta_objset->os_synced_dnodes);
572
573 dprintf_bp(&dp->dp_meta_rootbp, "meta objset rootbp is %s", "");
574 spa_set_rootblkptr(dp->dp_spa, &dp->dp_meta_rootbp);
575 }
576
577 static void
dsl_pool_dirty_delta(dsl_pool_t * dp,int64_t delta)578 dsl_pool_dirty_delta(dsl_pool_t *dp, int64_t delta)
579 {
580 ASSERT(MUTEX_HELD(&dp->dp_lock));
581
582 if (delta < 0)
583 ASSERT3U(-delta, <=, dp->dp_dirty_total);
584
585 dp->dp_dirty_total += delta;
586
587 /*
588 * Note: we signal even when increasing dp_dirty_total.
589 * This ensures forward progress -- each thread wakes the next waiter.
590 */
591 if (dp->dp_dirty_total < zfs_dirty_data_max)
592 cv_signal(&dp->dp_spaceavail_cv);
593 }
594
595 #ifdef ZFS_DEBUG
596 static boolean_t
dsl_early_sync_task_verify(dsl_pool_t * dp,uint64_t txg)597 dsl_early_sync_task_verify(dsl_pool_t *dp, uint64_t txg)
598 {
599 spa_t *spa = dp->dp_spa;
600 vdev_t *rvd = spa->spa_root_vdev;
601
602 for (uint64_t c = 0; c < rvd->vdev_children; c++) {
603 vdev_t *vd = rvd->vdev_child[c];
604 txg_list_t *tl = &vd->vdev_ms_list;
605 metaslab_t *ms;
606
607 for (ms = txg_list_head(tl, TXG_CLEAN(txg)); ms;
608 ms = txg_list_next(tl, ms, TXG_CLEAN(txg))) {
609 VERIFY(range_tree_is_empty(ms->ms_freeing));
610 VERIFY(range_tree_is_empty(ms->ms_checkpointing));
611 }
612 }
613
614 return (B_TRUE);
615 }
616 #endif
617
618 void
dsl_pool_sync(dsl_pool_t * dp,uint64_t txg)619 dsl_pool_sync(dsl_pool_t *dp, uint64_t txg)
620 {
621 zio_t *zio;
622 dmu_tx_t *tx;
623 dsl_dir_t *dd;
624 dsl_dataset_t *ds;
625 objset_t *mos = dp->dp_meta_objset;
626 list_t synced_datasets;
627
628 list_create(&synced_datasets, sizeof (dsl_dataset_t),
629 offsetof(dsl_dataset_t, ds_synced_link));
630
631 tx = dmu_tx_create_assigned(dp, txg);
632
633 /*
634 * Run all early sync tasks before writing out any dirty blocks.
635 * For more info on early sync tasks see block comment in
636 * dsl_early_sync_task().
637 */
638 if (!txg_list_empty(&dp->dp_early_sync_tasks, txg)) {
639 dsl_sync_task_t *dst;
640
641 ASSERT3U(spa_sync_pass(dp->dp_spa), ==, 1);
642 while ((dst =
643 txg_list_remove(&dp->dp_early_sync_tasks, txg)) != NULL) {
644 ASSERT(dsl_early_sync_task_verify(dp, txg));
645 dsl_sync_task_sync(dst, tx);
646 }
647 ASSERT(dsl_early_sync_task_verify(dp, txg));
648 }
649
650 /*
651 * Write out all dirty blocks of dirty datasets.
652 */
653 zio = zio_root(dp->dp_spa, NULL, NULL, ZIO_FLAG_MUSTSUCCEED);
654 while ((ds = txg_list_remove(&dp->dp_dirty_datasets, txg)) != NULL) {
655 /*
656 * We must not sync any non-MOS datasets twice, because
657 * we may have taken a snapshot of them. However, we
658 * may sync newly-created datasets on pass 2.
659 */
660 ASSERT(!list_link_active(&ds->ds_synced_link));
661 list_insert_tail(&synced_datasets, ds);
662 dsl_dataset_sync(ds, zio, tx);
663 }
664 VERIFY0(zio_wait(zio));
665
666 /*
667 * Update the long range free counter after
668 * we're done syncing user data
669 */
670 mutex_enter(&dp->dp_lock);
671 ASSERT(spa_sync_pass(dp->dp_spa) == 1 ||
672 dp->dp_long_free_dirty_pertxg[txg & TXG_MASK] == 0);
673 dp->dp_long_free_dirty_pertxg[txg & TXG_MASK] = 0;
674 mutex_exit(&dp->dp_lock);
675
676 /*
677 * After the data blocks have been written (ensured by the zio_wait()
678 * above), update the user/group/project space accounting. This happens
679 * in tasks dispatched to dp_sync_taskq, so wait for them before
680 * continuing.
681 */
682 for (ds = list_head(&synced_datasets); ds != NULL;
683 ds = list_next(&synced_datasets, ds)) {
684 dmu_objset_sync_done(ds->ds_objset, tx);
685 }
686 taskq_wait(dp->dp_sync_taskq);
687
688 /*
689 * Sync the datasets again to push out the changes due to
690 * userspace updates. This must be done before we process the
691 * sync tasks, so that any snapshots will have the correct
692 * user accounting information (and we won't get confused
693 * about which blocks are part of the snapshot).
694 */
695 zio = zio_root(dp->dp_spa, NULL, NULL, ZIO_FLAG_MUSTSUCCEED);
696 while ((ds = txg_list_remove(&dp->dp_dirty_datasets, txg)) != NULL) {
697 objset_t *os = ds->ds_objset;
698
699 ASSERT(list_link_active(&ds->ds_synced_link));
700 dmu_buf_rele(ds->ds_dbuf, ds);
701 dsl_dataset_sync(ds, zio, tx);
702
703 /*
704 * Release any key mappings created by calls to
705 * dsl_dataset_dirty() from the userquota accounting
706 * code paths.
707 */
708 if (os->os_encrypted && !os->os_raw_receive &&
709 !os->os_next_write_raw[txg & TXG_MASK]) {
710 ASSERT3P(ds->ds_key_mapping, !=, NULL);
711 key_mapping_rele(dp->dp_spa, ds->ds_key_mapping, ds);
712 }
713 }
714 VERIFY0(zio_wait(zio));
715
716 /*
717 * Now that the datasets have been completely synced, we can
718 * clean up our in-memory structures accumulated while syncing:
719 *
720 * - move dead blocks from the pending deadlist and livelists
721 * to the on-disk versions
722 * - release hold from dsl_dataset_dirty()
723 * - release key mapping hold from dsl_dataset_dirty()
724 */
725 while ((ds = list_remove_head(&synced_datasets)) != NULL) {
726 objset_t *os = ds->ds_objset;
727
728 if (os->os_encrypted && !os->os_raw_receive &&
729 !os->os_next_write_raw[txg & TXG_MASK]) {
730 ASSERT3P(ds->ds_key_mapping, !=, NULL);
731 key_mapping_rele(dp->dp_spa, ds->ds_key_mapping, ds);
732 }
733
734 dsl_dataset_sync_done(ds, tx);
735 }
736
737 while ((dd = txg_list_remove(&dp->dp_dirty_dirs, txg)) != NULL) {
738 dsl_dir_sync(dd, tx);
739 }
740
741 /*
742 * The MOS's space is accounted for in the pool/$MOS
743 * (dp_mos_dir). We can't modify the mos while we're syncing
744 * it, so we remember the deltas and apply them here.
745 */
746 if (dp->dp_mos_used_delta != 0 || dp->dp_mos_compressed_delta != 0 ||
747 dp->dp_mos_uncompressed_delta != 0) {
748 dsl_dir_diduse_space(dp->dp_mos_dir, DD_USED_HEAD,
749 dp->dp_mos_used_delta,
750 dp->dp_mos_compressed_delta,
751 dp->dp_mos_uncompressed_delta, tx);
752 dp->dp_mos_used_delta = 0;
753 dp->dp_mos_compressed_delta = 0;
754 dp->dp_mos_uncompressed_delta = 0;
755 }
756
757 if (dmu_objset_is_dirty(mos, txg)) {
758 dsl_pool_sync_mos(dp, tx);
759 }
760
761 /*
762 * We have written all of the accounted dirty data, so our
763 * dp_space_towrite should now be zero. However, some seldom-used
764 * code paths do not adhere to this (e.g. dbuf_undirty()). Shore up
765 * the accounting of any dirtied space now.
766 *
767 * Note that, besides any dirty data from datasets, the amount of
768 * dirty data in the MOS is also accounted by the pool. Therefore,
769 * we want to do this cleanup after dsl_pool_sync_mos() so we don't
770 * attempt to update the accounting for the same dirty data twice.
771 * (i.e. at this point we only update the accounting for the space
772 * that we know that we "leaked").
773 */
774 dsl_pool_undirty_space(dp, dp->dp_dirty_pertxg[txg & TXG_MASK], txg);
775
776 /*
777 * If we modify a dataset in the same txg that we want to destroy it,
778 * its dsl_dir's dd_dbuf will be dirty, and thus have a hold on it.
779 * dsl_dir_destroy_check() will fail if there are unexpected holds.
780 * Therefore, we want to sync the MOS (thus syncing the dd_dbuf
781 * and clearing the hold on it) before we process the sync_tasks.
782 * The MOS data dirtied by the sync_tasks will be synced on the next
783 * pass.
784 */
785 if (!txg_list_empty(&dp->dp_sync_tasks, txg)) {
786 dsl_sync_task_t *dst;
787 /*
788 * No more sync tasks should have been added while we
789 * were syncing.
790 */
791 ASSERT3U(spa_sync_pass(dp->dp_spa), ==, 1);
792 while ((dst = txg_list_remove(&dp->dp_sync_tasks, txg)) != NULL)
793 dsl_sync_task_sync(dst, tx);
794 }
795
796 dmu_tx_commit(tx);
797
798 DTRACE_PROBE2(dsl_pool_sync__done, dsl_pool_t *dp, dp, uint64_t, txg);
799 }
800
801 void
dsl_pool_sync_done(dsl_pool_t * dp,uint64_t txg)802 dsl_pool_sync_done(dsl_pool_t *dp, uint64_t txg)
803 {
804 zilog_t *zilog;
805
806 while ((zilog = txg_list_head(&dp->dp_dirty_zilogs, txg))) {
807 dsl_dataset_t *ds = dmu_objset_ds(zilog->zl_os);
808 /*
809 * We don't remove the zilog from the dp_dirty_zilogs
810 * list until after we've cleaned it. This ensures that
811 * callers of zilog_is_dirty() receive an accurate
812 * answer when they are racing with the spa sync thread.
813 */
814 zil_clean(zilog, txg);
815 (void) txg_list_remove_this(&dp->dp_dirty_zilogs, zilog, txg);
816 ASSERT(!dmu_objset_is_dirty(zilog->zl_os, txg));
817 dmu_buf_rele(ds->ds_dbuf, zilog);
818 }
819 ASSERT(!dmu_objset_is_dirty(dp->dp_meta_objset, txg));
820 }
821
822 /*
823 * TRUE if the current thread is the tx_sync_thread or if we
824 * are being called from SPA context during pool initialization.
825 */
826 int
dsl_pool_sync_context(dsl_pool_t * dp)827 dsl_pool_sync_context(dsl_pool_t *dp)
828 {
829 return (curthread == dp->dp_tx.tx_sync_thread ||
830 spa_is_initializing(dp->dp_spa) ||
831 taskq_member(dp->dp_sync_taskq, curthread));
832 }
833
834 /*
835 * This function returns the amount of allocatable space in the pool
836 * minus whatever space is currently reserved by ZFS for specific
837 * purposes. Specifically:
838 *
839 * 1] Any reserved SLOP space
840 * 2] Any space used by the checkpoint
841 * 3] Any space used for deferred frees
842 *
843 * The latter 2 are especially important because they are needed to
844 * rectify the SPA's and DMU's different understanding of how much space
845 * is used. Now the DMU is aware of that extra space tracked by the SPA
846 * without having to maintain a separate special dir (e.g similar to
847 * $MOS, $FREEING, and $LEAKED).
848 *
849 * Note: By deferred frees here, we mean the frees that were deferred
850 * in spa_sync() after sync pass 1 (spa_deferred_bpobj), and not the
851 * segments placed in ms_defer trees during metaslab_sync_done().
852 */
853 uint64_t
dsl_pool_adjustedsize(dsl_pool_t * dp,zfs_space_check_t slop_policy)854 dsl_pool_adjustedsize(dsl_pool_t *dp, zfs_space_check_t slop_policy)
855 {
856 spa_t *spa = dp->dp_spa;
857 uint64_t space, resv, adjustedsize;
858 uint64_t spa_deferred_frees =
859 spa->spa_deferred_bpobj.bpo_phys->bpo_bytes;
860
861 space = spa_get_dspace(spa)
862 - spa_get_checkpoint_space(spa) - spa_deferred_frees;
863 resv = spa_get_slop_space(spa);
864
865 switch (slop_policy) {
866 case ZFS_SPACE_CHECK_NORMAL:
867 break;
868 case ZFS_SPACE_CHECK_RESERVED:
869 resv >>= 1;
870 break;
871 case ZFS_SPACE_CHECK_EXTRA_RESERVED:
872 resv >>= 2;
873 break;
874 case ZFS_SPACE_CHECK_NONE:
875 resv = 0;
876 break;
877 default:
878 panic("invalid slop policy value: %d", slop_policy);
879 break;
880 }
881 adjustedsize = (space >= resv) ? (space - resv) : 0;
882
883 return (adjustedsize);
884 }
885
886 uint64_t
dsl_pool_unreserved_space(dsl_pool_t * dp,zfs_space_check_t slop_policy)887 dsl_pool_unreserved_space(dsl_pool_t *dp, zfs_space_check_t slop_policy)
888 {
889 uint64_t poolsize = dsl_pool_adjustedsize(dp, slop_policy);
890 uint64_t deferred =
891 metaslab_class_get_deferred(spa_normal_class(dp->dp_spa));
892 uint64_t quota = (poolsize >= deferred) ? (poolsize - deferred) : 0;
893 return (quota);
894 }
895
896 uint64_t
dsl_pool_deferred_space(dsl_pool_t * dp)897 dsl_pool_deferred_space(dsl_pool_t *dp)
898 {
899 return (metaslab_class_get_deferred(spa_normal_class(dp->dp_spa)));
900 }
901
902 boolean_t
dsl_pool_need_dirty_delay(dsl_pool_t * dp)903 dsl_pool_need_dirty_delay(dsl_pool_t *dp)
904 {
905 uint64_t delay_min_bytes =
906 zfs_dirty_data_max * zfs_delay_min_dirty_percent / 100;
907 uint64_t dirty_min_bytes =
908 zfs_dirty_data_max * zfs_dirty_data_sync_percent / 100;
909 uint64_t dirty;
910
911 mutex_enter(&dp->dp_lock);
912 dirty = dp->dp_dirty_total;
913 mutex_exit(&dp->dp_lock);
914 if (dirty > dirty_min_bytes)
915 txg_kick(dp);
916 return (dirty > delay_min_bytes);
917 }
918
919 void
dsl_pool_dirty_space(dsl_pool_t * dp,int64_t space,dmu_tx_t * tx)920 dsl_pool_dirty_space(dsl_pool_t *dp, int64_t space, dmu_tx_t *tx)
921 {
922 if (space > 0) {
923 mutex_enter(&dp->dp_lock);
924 dp->dp_dirty_pertxg[tx->tx_txg & TXG_MASK] += space;
925 dsl_pool_dirty_delta(dp, space);
926 mutex_exit(&dp->dp_lock);
927 }
928 }
929
930 void
dsl_pool_undirty_space(dsl_pool_t * dp,int64_t space,uint64_t txg)931 dsl_pool_undirty_space(dsl_pool_t *dp, int64_t space, uint64_t txg)
932 {
933 ASSERT3S(space, >=, 0);
934 if (space == 0)
935 return;
936
937 mutex_enter(&dp->dp_lock);
938 if (dp->dp_dirty_pertxg[txg & TXG_MASK] < space) {
939 /* XXX writing something we didn't dirty? */
940 space = dp->dp_dirty_pertxg[txg & TXG_MASK];
941 }
942 ASSERT3U(dp->dp_dirty_pertxg[txg & TXG_MASK], >=, space);
943 dp->dp_dirty_pertxg[txg & TXG_MASK] -= space;
944 ASSERT3U(dp->dp_dirty_total, >=, space);
945 dsl_pool_dirty_delta(dp, -space);
946 mutex_exit(&dp->dp_lock);
947 }
948
949 /* ARGSUSED */
950 static int
upgrade_clones_cb(dsl_pool_t * dp,dsl_dataset_t * hds,void * arg)951 upgrade_clones_cb(dsl_pool_t *dp, dsl_dataset_t *hds, void *arg)
952 {
953 dmu_tx_t *tx = arg;
954 dsl_dataset_t *ds, *prev = NULL;
955 int err;
956
957 err = dsl_dataset_hold_obj(dp, hds->ds_object, FTAG, &ds);
958 if (err)
959 return (err);
960
961 while (dsl_dataset_phys(ds)->ds_prev_snap_obj != 0) {
962 err = dsl_dataset_hold_obj(dp,
963 dsl_dataset_phys(ds)->ds_prev_snap_obj, FTAG, &prev);
964 if (err) {
965 dsl_dataset_rele(ds, FTAG);
966 return (err);
967 }
968
969 if (dsl_dataset_phys(prev)->ds_next_snap_obj != ds->ds_object)
970 break;
971 dsl_dataset_rele(ds, FTAG);
972 ds = prev;
973 prev = NULL;
974 }
975
976 if (prev == NULL) {
977 prev = dp->dp_origin_snap;
978
979 /*
980 * The $ORIGIN can't have any data, or the accounting
981 * will be wrong.
982 */
983 rrw_enter(&ds->ds_bp_rwlock, RW_READER, FTAG);
984 ASSERT0(dsl_dataset_phys(prev)->ds_bp.blk_birth);
985 rrw_exit(&ds->ds_bp_rwlock, FTAG);
986
987 /* The origin doesn't get attached to itself */
988 if (ds->ds_object == prev->ds_object) {
989 dsl_dataset_rele(ds, FTAG);
990 return (0);
991 }
992
993 dmu_buf_will_dirty(ds->ds_dbuf, tx);
994 dsl_dataset_phys(ds)->ds_prev_snap_obj = prev->ds_object;
995 dsl_dataset_phys(ds)->ds_prev_snap_txg =
996 dsl_dataset_phys(prev)->ds_creation_txg;
997
998 dmu_buf_will_dirty(ds->ds_dir->dd_dbuf, tx);
999 dsl_dir_phys(ds->ds_dir)->dd_origin_obj = prev->ds_object;
1000
1001 dmu_buf_will_dirty(prev->ds_dbuf, tx);
1002 dsl_dataset_phys(prev)->ds_num_children++;
1003
1004 if (dsl_dataset_phys(ds)->ds_next_snap_obj == 0) {
1005 ASSERT(ds->ds_prev == NULL);
1006 VERIFY0(dsl_dataset_hold_obj(dp,
1007 dsl_dataset_phys(ds)->ds_prev_snap_obj,
1008 ds, &ds->ds_prev));
1009 }
1010 }
1011
1012 ASSERT3U(dsl_dir_phys(ds->ds_dir)->dd_origin_obj, ==, prev->ds_object);
1013 ASSERT3U(dsl_dataset_phys(ds)->ds_prev_snap_obj, ==, prev->ds_object);
1014
1015 if (dsl_dataset_phys(prev)->ds_next_clones_obj == 0) {
1016 dmu_buf_will_dirty(prev->ds_dbuf, tx);
1017 dsl_dataset_phys(prev)->ds_next_clones_obj =
1018 zap_create(dp->dp_meta_objset,
1019 DMU_OT_NEXT_CLONES, DMU_OT_NONE, 0, tx);
1020 }
1021 VERIFY0(zap_add_int(dp->dp_meta_objset,
1022 dsl_dataset_phys(prev)->ds_next_clones_obj, ds->ds_object, tx));
1023
1024 dsl_dataset_rele(ds, FTAG);
1025 if (prev != dp->dp_origin_snap)
1026 dsl_dataset_rele(prev, FTAG);
1027 return (0);
1028 }
1029
1030 void
dsl_pool_upgrade_clones(dsl_pool_t * dp,dmu_tx_t * tx)1031 dsl_pool_upgrade_clones(dsl_pool_t *dp, dmu_tx_t *tx)
1032 {
1033 ASSERT(dmu_tx_is_syncing(tx));
1034 ASSERT(dp->dp_origin_snap != NULL);
1035
1036 VERIFY0(dmu_objset_find_dp(dp, dp->dp_root_dir_obj, upgrade_clones_cb,
1037 tx, DS_FIND_CHILDREN | DS_FIND_SERIALIZE));
1038 }
1039
1040 /* ARGSUSED */
1041 static int
upgrade_dir_clones_cb(dsl_pool_t * dp,dsl_dataset_t * ds,void * arg)1042 upgrade_dir_clones_cb(dsl_pool_t *dp, dsl_dataset_t *ds, void *arg)
1043 {
1044 dmu_tx_t *tx = arg;
1045 objset_t *mos = dp->dp_meta_objset;
1046
1047 if (dsl_dir_phys(ds->ds_dir)->dd_origin_obj != 0) {
1048 dsl_dataset_t *origin;
1049
1050 VERIFY0(dsl_dataset_hold_obj(dp,
1051 dsl_dir_phys(ds->ds_dir)->dd_origin_obj, FTAG, &origin));
1052
1053 if (dsl_dir_phys(origin->ds_dir)->dd_clones == 0) {
1054 dmu_buf_will_dirty(origin->ds_dir->dd_dbuf, tx);
1055 dsl_dir_phys(origin->ds_dir)->dd_clones =
1056 zap_create(mos, DMU_OT_DSL_CLONES, DMU_OT_NONE,
1057 0, tx);
1058 }
1059
1060 VERIFY0(zap_add_int(dp->dp_meta_objset,
1061 dsl_dir_phys(origin->ds_dir)->dd_clones,
1062 ds->ds_object, tx));
1063
1064 dsl_dataset_rele(origin, FTAG);
1065 }
1066 return (0);
1067 }
1068
1069 void
dsl_pool_upgrade_dir_clones(dsl_pool_t * dp,dmu_tx_t * tx)1070 dsl_pool_upgrade_dir_clones(dsl_pool_t *dp, dmu_tx_t *tx)
1071 {
1072 uint64_t obj;
1073
1074 ASSERT(dmu_tx_is_syncing(tx));
1075
1076 (void) dsl_dir_create_sync(dp, dp->dp_root_dir, FREE_DIR_NAME, tx);
1077 VERIFY0(dsl_pool_open_special_dir(dp,
1078 FREE_DIR_NAME, &dp->dp_free_dir));
1079
1080 /*
1081 * We can't use bpobj_alloc(), because spa_version() still
1082 * returns the old version, and we need a new-version bpobj with
1083 * subobj support. So call dmu_object_alloc() directly.
1084 */
1085 obj = dmu_object_alloc(dp->dp_meta_objset, DMU_OT_BPOBJ,
1086 SPA_OLD_MAXBLOCKSIZE, DMU_OT_BPOBJ_HDR, sizeof (bpobj_phys_t), tx);
1087 VERIFY0(zap_add(dp->dp_meta_objset, DMU_POOL_DIRECTORY_OBJECT,
1088 DMU_POOL_FREE_BPOBJ, sizeof (uint64_t), 1, &obj, tx));
1089 VERIFY0(bpobj_open(&dp->dp_free_bpobj, dp->dp_meta_objset, obj));
1090
1091 VERIFY0(dmu_objset_find_dp(dp, dp->dp_root_dir_obj,
1092 upgrade_dir_clones_cb, tx, DS_FIND_CHILDREN | DS_FIND_SERIALIZE));
1093 }
1094
1095 void
dsl_pool_create_origin(dsl_pool_t * dp,dmu_tx_t * tx)1096 dsl_pool_create_origin(dsl_pool_t *dp, dmu_tx_t *tx)
1097 {
1098 uint64_t dsobj;
1099 dsl_dataset_t *ds;
1100
1101 ASSERT(dmu_tx_is_syncing(tx));
1102 ASSERT(dp->dp_origin_snap == NULL);
1103 ASSERT(rrw_held(&dp->dp_config_rwlock, RW_WRITER));
1104
1105 /* create the origin dir, ds, & snap-ds */
1106 dsobj = dsl_dataset_create_sync(dp->dp_root_dir, ORIGIN_DIR_NAME,
1107 NULL, 0, kcred, NULL, tx);
1108 VERIFY0(dsl_dataset_hold_obj(dp, dsobj, FTAG, &ds));
1109 dsl_dataset_snapshot_sync_impl(ds, ORIGIN_DIR_NAME, tx);
1110 VERIFY0(dsl_dataset_hold_obj(dp, dsl_dataset_phys(ds)->ds_prev_snap_obj,
1111 dp, &dp->dp_origin_snap));
1112 dsl_dataset_rele(ds, FTAG);
1113 }
1114
1115 taskq_t *
dsl_pool_zrele_taskq(dsl_pool_t * dp)1116 dsl_pool_zrele_taskq(dsl_pool_t *dp)
1117 {
1118 return (dp->dp_zrele_taskq);
1119 }
1120
1121 taskq_t *
dsl_pool_unlinked_drain_taskq(dsl_pool_t * dp)1122 dsl_pool_unlinked_drain_taskq(dsl_pool_t *dp)
1123 {
1124 return (dp->dp_unlinked_drain_taskq);
1125 }
1126
1127 /*
1128 * Walk through the pool-wide zap object of temporary snapshot user holds
1129 * and release them.
1130 */
1131 void
dsl_pool_clean_tmp_userrefs(dsl_pool_t * dp)1132 dsl_pool_clean_tmp_userrefs(dsl_pool_t *dp)
1133 {
1134 zap_attribute_t za;
1135 zap_cursor_t zc;
1136 objset_t *mos = dp->dp_meta_objset;
1137 uint64_t zapobj = dp->dp_tmp_userrefs_obj;
1138 nvlist_t *holds;
1139
1140 if (zapobj == 0)
1141 return;
1142 ASSERT(spa_version(dp->dp_spa) >= SPA_VERSION_USERREFS);
1143
1144 holds = fnvlist_alloc();
1145
1146 for (zap_cursor_init(&zc, mos, zapobj);
1147 zap_cursor_retrieve(&zc, &za) == 0;
1148 zap_cursor_advance(&zc)) {
1149 char *htag;
1150 nvlist_t *tags;
1151
1152 htag = strchr(za.za_name, '-');
1153 *htag = '\0';
1154 ++htag;
1155 if (nvlist_lookup_nvlist(holds, za.za_name, &tags) != 0) {
1156 tags = fnvlist_alloc();
1157 fnvlist_add_boolean(tags, htag);
1158 fnvlist_add_nvlist(holds, za.za_name, tags);
1159 fnvlist_free(tags);
1160 } else {
1161 fnvlist_add_boolean(tags, htag);
1162 }
1163 }
1164 dsl_dataset_user_release_tmp(dp, holds);
1165 fnvlist_free(holds);
1166 zap_cursor_fini(&zc);
1167 }
1168
1169 /*
1170 * Create the pool-wide zap object for storing temporary snapshot holds.
1171 */
1172 static void
dsl_pool_user_hold_create_obj(dsl_pool_t * dp,dmu_tx_t * tx)1173 dsl_pool_user_hold_create_obj(dsl_pool_t *dp, dmu_tx_t *tx)
1174 {
1175 objset_t *mos = dp->dp_meta_objset;
1176
1177 ASSERT(dp->dp_tmp_userrefs_obj == 0);
1178 ASSERT(dmu_tx_is_syncing(tx));
1179
1180 dp->dp_tmp_userrefs_obj = zap_create_link(mos, DMU_OT_USERREFS,
1181 DMU_POOL_DIRECTORY_OBJECT, DMU_POOL_TMP_USERREFS, tx);
1182 }
1183
1184 static int
dsl_pool_user_hold_rele_impl(dsl_pool_t * dp,uint64_t dsobj,const char * tag,uint64_t now,dmu_tx_t * tx,boolean_t holding)1185 dsl_pool_user_hold_rele_impl(dsl_pool_t *dp, uint64_t dsobj,
1186 const char *tag, uint64_t now, dmu_tx_t *tx, boolean_t holding)
1187 {
1188 objset_t *mos = dp->dp_meta_objset;
1189 uint64_t zapobj = dp->dp_tmp_userrefs_obj;
1190 char *name;
1191 int error;
1192
1193 ASSERT(spa_version(dp->dp_spa) >= SPA_VERSION_USERREFS);
1194 ASSERT(dmu_tx_is_syncing(tx));
1195
1196 /*
1197 * If the pool was created prior to SPA_VERSION_USERREFS, the
1198 * zap object for temporary holds might not exist yet.
1199 */
1200 if (zapobj == 0) {
1201 if (holding) {
1202 dsl_pool_user_hold_create_obj(dp, tx);
1203 zapobj = dp->dp_tmp_userrefs_obj;
1204 } else {
1205 return (SET_ERROR(ENOENT));
1206 }
1207 }
1208
1209 name = kmem_asprintf("%llx-%s", (u_longlong_t)dsobj, tag);
1210 if (holding)
1211 error = zap_add(mos, zapobj, name, 8, 1, &now, tx);
1212 else
1213 error = zap_remove(mos, zapobj, name, tx);
1214 kmem_strfree(name);
1215
1216 return (error);
1217 }
1218
1219 /*
1220 * Add a temporary hold for the given dataset object and tag.
1221 */
1222 int
dsl_pool_user_hold(dsl_pool_t * dp,uint64_t dsobj,const char * tag,uint64_t now,dmu_tx_t * tx)1223 dsl_pool_user_hold(dsl_pool_t *dp, uint64_t dsobj, const char *tag,
1224 uint64_t now, dmu_tx_t *tx)
1225 {
1226 return (dsl_pool_user_hold_rele_impl(dp, dsobj, tag, now, tx, B_TRUE));
1227 }
1228
1229 /*
1230 * Release a temporary hold for the given dataset object and tag.
1231 */
1232 int
dsl_pool_user_release(dsl_pool_t * dp,uint64_t dsobj,const char * tag,dmu_tx_t * tx)1233 dsl_pool_user_release(dsl_pool_t *dp, uint64_t dsobj, const char *tag,
1234 dmu_tx_t *tx)
1235 {
1236 return (dsl_pool_user_hold_rele_impl(dp, dsobj, tag, 0,
1237 tx, B_FALSE));
1238 }
1239
1240 /*
1241 * DSL Pool Configuration Lock
1242 *
1243 * The dp_config_rwlock protects against changes to DSL state (e.g. dataset
1244 * creation / destruction / rename / property setting). It must be held for
1245 * read to hold a dataset or dsl_dir. I.e. you must call
1246 * dsl_pool_config_enter() or dsl_pool_hold() before calling
1247 * dsl_{dataset,dir}_hold{_obj}. In most circumstances, the dp_config_rwlock
1248 * must be held continuously until all datasets and dsl_dirs are released.
1249 *
1250 * The only exception to this rule is that if a "long hold" is placed on
1251 * a dataset, then the dp_config_rwlock may be dropped while the dataset
1252 * is still held. The long hold will prevent the dataset from being
1253 * destroyed -- the destroy will fail with EBUSY. A long hold can be
1254 * obtained by calling dsl_dataset_long_hold(), or by "owning" a dataset
1255 * (by calling dsl_{dataset,objset}_{try}own{_obj}).
1256 *
1257 * Legitimate long-holders (including owners) should be long-running, cancelable
1258 * tasks that should cause "zfs destroy" to fail. This includes DMU
1259 * consumers (i.e. a ZPL filesystem being mounted or ZVOL being open),
1260 * "zfs send", and "zfs diff". There are several other long-holders whose
1261 * uses are suboptimal (e.g. "zfs promote", and zil_suspend()).
1262 *
1263 * The usual formula for long-holding would be:
1264 * dsl_pool_hold()
1265 * dsl_dataset_hold()
1266 * ... perform checks ...
1267 * dsl_dataset_long_hold()
1268 * dsl_pool_rele()
1269 * ... perform long-running task ...
1270 * dsl_dataset_long_rele()
1271 * dsl_dataset_rele()
1272 *
1273 * Note that when the long hold is released, the dataset is still held but
1274 * the pool is not held. The dataset may change arbitrarily during this time
1275 * (e.g. it could be destroyed). Therefore you shouldn't do anything to the
1276 * dataset except release it.
1277 *
1278 * Operations generally fall somewhere into the following taxonomy:
1279 *
1280 * Read-Only Modifying
1281 *
1282 * Dataset Layer / MOS zfs get zfs destroy
1283 *
1284 * Individual Dataset read() write()
1285 *
1286 *
1287 * Dataset Layer Operations
1288 *
1289 * Modifying operations should generally use dsl_sync_task(). The synctask
1290 * infrastructure enforces proper locking strategy with respect to the
1291 * dp_config_rwlock. See the comment above dsl_sync_task() for details.
1292 *
1293 * Read-only operations will manually hold the pool, then the dataset, obtain
1294 * information from the dataset, then release the pool and dataset.
1295 * dmu_objset_{hold,rele}() are convenience routines that also do the pool
1296 * hold/rele.
1297 *
1298 *
1299 * Operations On Individual Datasets
1300 *
1301 * Objects _within_ an objset should only be modified by the current 'owner'
1302 * of the objset to prevent incorrect concurrent modification. Thus, use
1303 * {dmu_objset,dsl_dataset}_own to mark some entity as the current owner,
1304 * and fail with EBUSY if there is already an owner. The owner can then
1305 * implement its own locking strategy, independent of the dataset layer's
1306 * locking infrastructure.
1307 * (E.g., the ZPL has its own set of locks to control concurrency. A regular
1308 * vnop will not reach into the dataset layer).
1309 *
1310 * Ideally, objects would also only be read by the objset’s owner, so that we
1311 * don’t observe state mid-modification.
1312 * (E.g. the ZPL is creating a new object and linking it into a directory; if
1313 * you don’t coordinate with the ZPL to hold ZPL-level locks, you could see an
1314 * intermediate state. The ioctl level violates this but in pretty benign
1315 * ways, e.g. reading the zpl props object.)
1316 */
1317
1318 int
dsl_pool_hold(const char * name,void * tag,dsl_pool_t ** dp)1319 dsl_pool_hold(const char *name, void *tag, dsl_pool_t **dp)
1320 {
1321 spa_t *spa;
1322 int error;
1323
1324 error = spa_open(name, &spa, tag);
1325 if (error == 0) {
1326 *dp = spa_get_dsl(spa);
1327 dsl_pool_config_enter(*dp, tag);
1328 }
1329 return (error);
1330 }
1331
1332 void
dsl_pool_rele(dsl_pool_t * dp,void * tag)1333 dsl_pool_rele(dsl_pool_t *dp, void *tag)
1334 {
1335 dsl_pool_config_exit(dp, tag);
1336 spa_close(dp->dp_spa, tag);
1337 }
1338
1339 void
dsl_pool_config_enter(dsl_pool_t * dp,void * tag)1340 dsl_pool_config_enter(dsl_pool_t *dp, void *tag)
1341 {
1342 /*
1343 * We use a "reentrant" reader-writer lock, but not reentrantly.
1344 *
1345 * The rrwlock can (with the track_all flag) track all reading threads,
1346 * which is very useful for debugging which code path failed to release
1347 * the lock, and for verifying that the *current* thread does hold
1348 * the lock.
1349 *
1350 * (Unlike a rwlock, which knows that N threads hold it for
1351 * read, but not *which* threads, so rw_held(RW_READER) returns TRUE
1352 * if any thread holds it for read, even if this thread doesn't).
1353 */
1354 ASSERT(!rrw_held(&dp->dp_config_rwlock, RW_READER));
1355 rrw_enter(&dp->dp_config_rwlock, RW_READER, tag);
1356 }
1357
1358 void
dsl_pool_config_enter_prio(dsl_pool_t * dp,void * tag)1359 dsl_pool_config_enter_prio(dsl_pool_t *dp, void *tag)
1360 {
1361 ASSERT(!rrw_held(&dp->dp_config_rwlock, RW_READER));
1362 rrw_enter_read_prio(&dp->dp_config_rwlock, tag);
1363 }
1364
1365 void
dsl_pool_config_exit(dsl_pool_t * dp,void * tag)1366 dsl_pool_config_exit(dsl_pool_t *dp, void *tag)
1367 {
1368 rrw_exit(&dp->dp_config_rwlock, tag);
1369 }
1370
1371 boolean_t
dsl_pool_config_held(dsl_pool_t * dp)1372 dsl_pool_config_held(dsl_pool_t *dp)
1373 {
1374 return (RRW_LOCK_HELD(&dp->dp_config_rwlock));
1375 }
1376
1377 boolean_t
dsl_pool_config_held_writer(dsl_pool_t * dp)1378 dsl_pool_config_held_writer(dsl_pool_t *dp)
1379 {
1380 return (RRW_WRITE_HELD(&dp->dp_config_rwlock));
1381 }
1382
1383 EXPORT_SYMBOL(dsl_pool_config_enter);
1384 EXPORT_SYMBOL(dsl_pool_config_exit);
1385
1386 /* BEGIN CSTYLED */
1387 /* zfs_dirty_data_max_percent only applied at module load in arc_init(). */
1388 ZFS_MODULE_PARAM(zfs, zfs_, dirty_data_max_percent, INT, ZMOD_RD,
1389 "Max percent of RAM allowed to be dirty");
1390
1391 /* zfs_dirty_data_max_max_percent only applied at module load in arc_init(). */
1392 ZFS_MODULE_PARAM(zfs, zfs_, dirty_data_max_max_percent, INT, ZMOD_RD,
1393 "zfs_dirty_data_max upper bound as % of RAM");
1394
1395 ZFS_MODULE_PARAM(zfs, zfs_, delay_min_dirty_percent, INT, ZMOD_RW,
1396 "Transaction delay threshold");
1397
1398 ZFS_MODULE_PARAM(zfs, zfs_, dirty_data_max, ULONG, ZMOD_RW,
1399 "Determines the dirty space limit");
1400
1401 /* zfs_dirty_data_max_max only applied at module load in arc_init(). */
1402 ZFS_MODULE_PARAM(zfs, zfs_, dirty_data_max_max, ULONG, ZMOD_RD,
1403 "zfs_dirty_data_max upper bound in bytes");
1404
1405 ZFS_MODULE_PARAM(zfs, zfs_, dirty_data_sync_percent, INT, ZMOD_RW,
1406 "Dirty data txg sync threshold as a percentage of zfs_dirty_data_max");
1407
1408 ZFS_MODULE_PARAM(zfs, zfs_, delay_scale, ULONG, ZMOD_RW,
1409 "How quickly delay approaches infinity");
1410
1411 ZFS_MODULE_PARAM(zfs, zfs_, sync_taskq_batch_pct, INT, ZMOD_RW,
1412 "Max percent of CPUs that are used to sync dirty data");
1413
1414 ZFS_MODULE_PARAM(zfs_zil, zfs_zil_, clean_taskq_nthr_pct, INT, ZMOD_RW,
1415 "Max percent of CPUs that are used per dp_sync_taskq");
1416
1417 ZFS_MODULE_PARAM(zfs_zil, zfs_zil_, clean_taskq_minalloc, INT, ZMOD_RW,
1418 "Number of taskq entries that are pre-populated");
1419
1420 ZFS_MODULE_PARAM(zfs_zil, zfs_zil_, clean_taskq_maxalloc, INT, ZMOD_RW,
1421 "Max number of taskq entries that are cached");
1422 /* END CSTYLED */
1423