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 /*
23 * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved.
24 * Copyright (c) 2011, 2020 by Delphix. All rights reserved.
25 * Copyright (c) 2019, loli10K <[email protected]>. All rights reserved.
26 */
27
28 #include <sys/zfs_context.h>
29 #include <sys/spa_impl.h>
30 #include <sys/dmu.h>
31 #include <sys/dmu_tx.h>
32 #include <sys/zap.h>
33 #include <sys/vdev_impl.h>
34 #include <sys/metaslab.h>
35 #include <sys/metaslab_impl.h>
36 #include <sys/uberblock_impl.h>
37 #include <sys/txg.h>
38 #include <sys/avl.h>
39 #include <sys/bpobj.h>
40 #include <sys/dsl_pool.h>
41 #include <sys/dsl_synctask.h>
42 #include <sys/dsl_dir.h>
43 #include <sys/arc.h>
44 #include <sys/zfeature.h>
45 #include <sys/vdev_indirect_births.h>
46 #include <sys/vdev_indirect_mapping.h>
47 #include <sys/abd.h>
48 #include <sys/vdev_initialize.h>
49 #include <sys/vdev_trim.h>
50 #include <sys/trace_zfs.h>
51
52 /*
53 * This file contains the necessary logic to remove vdevs from a
54 * storage pool. Currently, the only devices that can be removed
55 * are log, cache, and spare devices; and top level vdevs from a pool
56 * w/o raidz or mirrors. (Note that members of a mirror can be removed
57 * by the detach operation.)
58 *
59 * Log vdevs are removed by evacuating them and then turning the vdev
60 * into a hole vdev while holding spa config locks.
61 *
62 * Top level vdevs are removed and converted into an indirect vdev via
63 * a multi-step process:
64 *
65 * - Disable allocations from this device (spa_vdev_remove_top).
66 *
67 * - From a new thread (spa_vdev_remove_thread), copy data from
68 * the removing vdev to a different vdev. The copy happens in open
69 * context (spa_vdev_copy_impl) and issues a sync task
70 * (vdev_mapping_sync) so the sync thread can update the partial
71 * indirect mappings in core and on disk.
72 *
73 * - If a free happens during a removal, it is freed from the
74 * removing vdev, and if it has already been copied, from the new
75 * location as well (free_from_removing_vdev).
76 *
77 * - After the removal is completed, the copy thread converts the vdev
78 * into an indirect vdev (vdev_remove_complete) before instructing
79 * the sync thread to destroy the space maps and finish the removal
80 * (spa_finish_removal).
81 */
82
83 typedef struct vdev_copy_arg {
84 metaslab_t *vca_msp;
85 uint64_t vca_outstanding_bytes;
86 uint64_t vca_read_error_bytes;
87 uint64_t vca_write_error_bytes;
88 kcondvar_t vca_cv;
89 kmutex_t vca_lock;
90 } vdev_copy_arg_t;
91
92 /*
93 * The maximum amount of memory we can use for outstanding i/o while
94 * doing a device removal. This determines how much i/o we can have
95 * in flight concurrently.
96 */
97 int zfs_remove_max_copy_bytes = 64 * 1024 * 1024;
98
99 /*
100 * The largest contiguous segment that we will attempt to allocate when
101 * removing a device. This can be no larger than SPA_MAXBLOCKSIZE. If
102 * there is a performance problem with attempting to allocate large blocks,
103 * consider decreasing this.
104 *
105 * See also the accessor function spa_remove_max_segment().
106 */
107 int zfs_remove_max_segment = SPA_MAXBLOCKSIZE;
108
109 /*
110 * Ignore hard IO errors during device removal. When set if a device
111 * encounters hard IO error during the removal process the removal will
112 * not be cancelled. This can result in a normally recoverable block
113 * becoming permanently damaged and is not recommended.
114 */
115 int zfs_removal_ignore_errors = 0;
116
117 /*
118 * Allow a remap segment to span free chunks of at most this size. The main
119 * impact of a larger span is that we will read and write larger, more
120 * contiguous chunks, with more "unnecessary" data -- trading off bandwidth
121 * for iops. The value here was chosen to align with
122 * zfs_vdev_read_gap_limit, which is a similar concept when doing regular
123 * reads (but there's no reason it has to be the same).
124 *
125 * Additionally, a higher span will have the following relatively minor
126 * effects:
127 * - the mapping will be smaller, since one entry can cover more allocated
128 * segments
129 * - more of the fragmentation in the removing device will be preserved
130 * - we'll do larger allocations, which may fail and fall back on smaller
131 * allocations
132 */
133 int vdev_removal_max_span = 32 * 1024;
134
135 /*
136 * This is used by the test suite so that it can ensure that certain
137 * actions happen while in the middle of a removal.
138 */
139 int zfs_removal_suspend_progress = 0;
140
141 #define VDEV_REMOVAL_ZAP_OBJS "lzap"
142
143 static void spa_vdev_remove_thread(void *arg);
144 static int spa_vdev_remove_cancel_impl(spa_t *spa);
145
146 static void
spa_sync_removing_state(spa_t * spa,dmu_tx_t * tx)147 spa_sync_removing_state(spa_t *spa, dmu_tx_t *tx)
148 {
149 VERIFY0(zap_update(spa->spa_dsl_pool->dp_meta_objset,
150 DMU_POOL_DIRECTORY_OBJECT,
151 DMU_POOL_REMOVING, sizeof (uint64_t),
152 sizeof (spa->spa_removing_phys) / sizeof (uint64_t),
153 &spa->spa_removing_phys, tx));
154 }
155
156 static nvlist_t *
spa_nvlist_lookup_by_guid(nvlist_t ** nvpp,int count,uint64_t target_guid)157 spa_nvlist_lookup_by_guid(nvlist_t **nvpp, int count, uint64_t target_guid)
158 {
159 for (int i = 0; i < count; i++) {
160 uint64_t guid =
161 fnvlist_lookup_uint64(nvpp[i], ZPOOL_CONFIG_GUID);
162
163 if (guid == target_guid)
164 return (nvpp[i]);
165 }
166
167 return (NULL);
168 }
169
170 static void
spa_vdev_remove_aux(nvlist_t * config,char * name,nvlist_t ** dev,int count,nvlist_t * dev_to_remove)171 spa_vdev_remove_aux(nvlist_t *config, char *name, nvlist_t **dev, int count,
172 nvlist_t *dev_to_remove)
173 {
174 nvlist_t **newdev = NULL;
175
176 if (count > 1)
177 newdev = kmem_alloc((count - 1) * sizeof (void *), KM_SLEEP);
178
179 for (int i = 0, j = 0; i < count; i++) {
180 if (dev[i] == dev_to_remove)
181 continue;
182 VERIFY(nvlist_dup(dev[i], &newdev[j++], KM_SLEEP) == 0);
183 }
184
185 VERIFY(nvlist_remove(config, name, DATA_TYPE_NVLIST_ARRAY) == 0);
186 VERIFY(nvlist_add_nvlist_array(config, name, newdev, count - 1) == 0);
187
188 for (int i = 0; i < count - 1; i++)
189 nvlist_free(newdev[i]);
190
191 if (count > 1)
192 kmem_free(newdev, (count - 1) * sizeof (void *));
193 }
194
195 static spa_vdev_removal_t *
spa_vdev_removal_create(vdev_t * vd)196 spa_vdev_removal_create(vdev_t *vd)
197 {
198 spa_vdev_removal_t *svr = kmem_zalloc(sizeof (*svr), KM_SLEEP);
199 mutex_init(&svr->svr_lock, NULL, MUTEX_DEFAULT, NULL);
200 cv_init(&svr->svr_cv, NULL, CV_DEFAULT, NULL);
201 svr->svr_allocd_segs = range_tree_create(NULL, RANGE_SEG64, NULL, 0, 0);
202 svr->svr_vdev_id = vd->vdev_id;
203
204 for (int i = 0; i < TXG_SIZE; i++) {
205 svr->svr_frees[i] = range_tree_create(NULL, RANGE_SEG64, NULL,
206 0, 0);
207 list_create(&svr->svr_new_segments[i],
208 sizeof (vdev_indirect_mapping_entry_t),
209 offsetof(vdev_indirect_mapping_entry_t, vime_node));
210 }
211
212 return (svr);
213 }
214
215 void
spa_vdev_removal_destroy(spa_vdev_removal_t * svr)216 spa_vdev_removal_destroy(spa_vdev_removal_t *svr)
217 {
218 for (int i = 0; i < TXG_SIZE; i++) {
219 ASSERT0(svr->svr_bytes_done[i]);
220 ASSERT0(svr->svr_max_offset_to_sync[i]);
221 range_tree_destroy(svr->svr_frees[i]);
222 list_destroy(&svr->svr_new_segments[i]);
223 }
224
225 range_tree_destroy(svr->svr_allocd_segs);
226 mutex_destroy(&svr->svr_lock);
227 cv_destroy(&svr->svr_cv);
228 kmem_free(svr, sizeof (*svr));
229 }
230
231 /*
232 * This is called as a synctask in the txg in which we will mark this vdev
233 * as removing (in the config stored in the MOS).
234 *
235 * It begins the evacuation of a toplevel vdev by:
236 * - initializing the spa_removing_phys which tracks this removal
237 * - computing the amount of space to remove for accounting purposes
238 * - dirtying all dbufs in the spa_config_object
239 * - creating the spa_vdev_removal
240 * - starting the spa_vdev_remove_thread
241 */
242 static void
vdev_remove_initiate_sync(void * arg,dmu_tx_t * tx)243 vdev_remove_initiate_sync(void *arg, dmu_tx_t *tx)
244 {
245 int vdev_id = (uintptr_t)arg;
246 spa_t *spa = dmu_tx_pool(tx)->dp_spa;
247 vdev_t *vd = vdev_lookup_top(spa, vdev_id);
248 vdev_indirect_config_t *vic = &vd->vdev_indirect_config;
249 objset_t *mos = spa->spa_dsl_pool->dp_meta_objset;
250 spa_vdev_removal_t *svr = NULL;
251 uint64_t txg __maybe_unused = dmu_tx_get_txg(tx);
252
253 ASSERT0(vdev_get_nparity(vd));
254 svr = spa_vdev_removal_create(vd);
255
256 ASSERT(vd->vdev_removing);
257 ASSERT3P(vd->vdev_indirect_mapping, ==, NULL);
258
259 spa_feature_incr(spa, SPA_FEATURE_DEVICE_REMOVAL, tx);
260 if (spa_feature_is_enabled(spa, SPA_FEATURE_OBSOLETE_COUNTS)) {
261 /*
262 * By activating the OBSOLETE_COUNTS feature, we prevent
263 * the pool from being downgraded and ensure that the
264 * refcounts are precise.
265 */
266 spa_feature_incr(spa, SPA_FEATURE_OBSOLETE_COUNTS, tx);
267 uint64_t one = 1;
268 VERIFY0(zap_add(spa->spa_meta_objset, vd->vdev_top_zap,
269 VDEV_TOP_ZAP_OBSOLETE_COUNTS_ARE_PRECISE, sizeof (one), 1,
270 &one, tx));
271 boolean_t are_precise __maybe_unused;
272 ASSERT0(vdev_obsolete_counts_are_precise(vd, &are_precise));
273 ASSERT3B(are_precise, ==, B_TRUE);
274 }
275
276 vic->vic_mapping_object = vdev_indirect_mapping_alloc(mos, tx);
277 vd->vdev_indirect_mapping =
278 vdev_indirect_mapping_open(mos, vic->vic_mapping_object);
279 vic->vic_births_object = vdev_indirect_births_alloc(mos, tx);
280 vd->vdev_indirect_births =
281 vdev_indirect_births_open(mos, vic->vic_births_object);
282 spa->spa_removing_phys.sr_removing_vdev = vd->vdev_id;
283 spa->spa_removing_phys.sr_start_time = gethrestime_sec();
284 spa->spa_removing_phys.sr_end_time = 0;
285 spa->spa_removing_phys.sr_state = DSS_SCANNING;
286 spa->spa_removing_phys.sr_to_copy = 0;
287 spa->spa_removing_phys.sr_copied = 0;
288
289 /*
290 * Note: We can't use vdev_stat's vs_alloc for sr_to_copy, because
291 * there may be space in the defer tree, which is free, but still
292 * counted in vs_alloc.
293 */
294 for (uint64_t i = 0; i < vd->vdev_ms_count; i++) {
295 metaslab_t *ms = vd->vdev_ms[i];
296 if (ms->ms_sm == NULL)
297 continue;
298
299 spa->spa_removing_phys.sr_to_copy +=
300 metaslab_allocated_space(ms);
301
302 /*
303 * Space which we are freeing this txg does not need to
304 * be copied.
305 */
306 spa->spa_removing_phys.sr_to_copy -=
307 range_tree_space(ms->ms_freeing);
308
309 ASSERT0(range_tree_space(ms->ms_freed));
310 for (int t = 0; t < TXG_SIZE; t++)
311 ASSERT0(range_tree_space(ms->ms_allocating[t]));
312 }
313
314 /*
315 * Sync tasks are called before metaslab_sync(), so there should
316 * be no already-synced metaslabs in the TXG_CLEAN list.
317 */
318 ASSERT3P(txg_list_head(&vd->vdev_ms_list, TXG_CLEAN(txg)), ==, NULL);
319
320 spa_sync_removing_state(spa, tx);
321
322 /*
323 * All blocks that we need to read the most recent mapping must be
324 * stored on concrete vdevs. Therefore, we must dirty anything that
325 * is read before spa_remove_init(). Specifically, the
326 * spa_config_object. (Note that although we already modified the
327 * spa_config_object in spa_sync_removing_state, that may not have
328 * modified all blocks of the object.)
329 */
330 dmu_object_info_t doi;
331 VERIFY0(dmu_object_info(mos, DMU_POOL_DIRECTORY_OBJECT, &doi));
332 for (uint64_t offset = 0; offset < doi.doi_max_offset; ) {
333 dmu_buf_t *dbuf;
334 VERIFY0(dmu_buf_hold(mos, DMU_POOL_DIRECTORY_OBJECT,
335 offset, FTAG, &dbuf, 0));
336 dmu_buf_will_dirty(dbuf, tx);
337 offset += dbuf->db_size;
338 dmu_buf_rele(dbuf, FTAG);
339 }
340
341 /*
342 * Now that we've allocated the im_object, dirty the vdev to ensure
343 * that the object gets written to the config on disk.
344 */
345 vdev_config_dirty(vd);
346
347 zfs_dbgmsg("starting removal thread for vdev %llu (%px) in txg %llu "
348 "im_obj=%llu", (u_longlong_t)vd->vdev_id, vd,
349 (u_longlong_t)dmu_tx_get_txg(tx),
350 (u_longlong_t)vic->vic_mapping_object);
351
352 spa_history_log_internal(spa, "vdev remove started", tx,
353 "%s vdev %llu %s", spa_name(spa), (u_longlong_t)vd->vdev_id,
354 (vd->vdev_path != NULL) ? vd->vdev_path : "-");
355 /*
356 * Setting spa_vdev_removal causes subsequent frees to call
357 * free_from_removing_vdev(). Note that we don't need any locking
358 * because we are the sync thread, and metaslab_free_impl() is only
359 * called from syncing context (potentially from a zio taskq thread,
360 * but in any case only when there are outstanding free i/os, which
361 * there are not).
362 */
363 ASSERT3P(spa->spa_vdev_removal, ==, NULL);
364 spa->spa_vdev_removal = svr;
365 svr->svr_thread = thread_create(NULL, 0,
366 spa_vdev_remove_thread, spa, 0, &p0, TS_RUN, minclsyspri);
367 }
368
369 /*
370 * When we are opening a pool, we must read the mapping for each
371 * indirect vdev in order from most recently removed to least
372 * recently removed. We do this because the blocks for the mapping
373 * of older indirect vdevs may be stored on more recently removed vdevs.
374 * In order to read each indirect mapping object, we must have
375 * initialized all more recently removed vdevs.
376 */
377 int
spa_remove_init(spa_t * spa)378 spa_remove_init(spa_t *spa)
379 {
380 int error;
381
382 error = zap_lookup(spa->spa_dsl_pool->dp_meta_objset,
383 DMU_POOL_DIRECTORY_OBJECT,
384 DMU_POOL_REMOVING, sizeof (uint64_t),
385 sizeof (spa->spa_removing_phys) / sizeof (uint64_t),
386 &spa->spa_removing_phys);
387
388 if (error == ENOENT) {
389 spa->spa_removing_phys.sr_state = DSS_NONE;
390 spa->spa_removing_phys.sr_removing_vdev = -1;
391 spa->spa_removing_phys.sr_prev_indirect_vdev = -1;
392 spa->spa_indirect_vdevs_loaded = B_TRUE;
393 return (0);
394 } else if (error != 0) {
395 return (error);
396 }
397
398 if (spa->spa_removing_phys.sr_state == DSS_SCANNING) {
399 /*
400 * We are currently removing a vdev. Create and
401 * initialize a spa_vdev_removal_t from the bonus
402 * buffer of the removing vdevs vdev_im_object, and
403 * initialize its partial mapping.
404 */
405 spa_config_enter(spa, SCL_STATE, FTAG, RW_READER);
406 vdev_t *vd = vdev_lookup_top(spa,
407 spa->spa_removing_phys.sr_removing_vdev);
408
409 if (vd == NULL) {
410 spa_config_exit(spa, SCL_STATE, FTAG);
411 return (EINVAL);
412 }
413
414 vdev_indirect_config_t *vic = &vd->vdev_indirect_config;
415
416 ASSERT(vdev_is_concrete(vd));
417 spa_vdev_removal_t *svr = spa_vdev_removal_create(vd);
418 ASSERT3U(svr->svr_vdev_id, ==, vd->vdev_id);
419 ASSERT(vd->vdev_removing);
420
421 vd->vdev_indirect_mapping = vdev_indirect_mapping_open(
422 spa->spa_meta_objset, vic->vic_mapping_object);
423 vd->vdev_indirect_births = vdev_indirect_births_open(
424 spa->spa_meta_objset, vic->vic_births_object);
425 spa_config_exit(spa, SCL_STATE, FTAG);
426
427 spa->spa_vdev_removal = svr;
428 }
429
430 spa_config_enter(spa, SCL_STATE, FTAG, RW_READER);
431 uint64_t indirect_vdev_id =
432 spa->spa_removing_phys.sr_prev_indirect_vdev;
433 while (indirect_vdev_id != UINT64_MAX) {
434 vdev_t *vd = vdev_lookup_top(spa, indirect_vdev_id);
435 vdev_indirect_config_t *vic = &vd->vdev_indirect_config;
436
437 ASSERT3P(vd->vdev_ops, ==, &vdev_indirect_ops);
438 vd->vdev_indirect_mapping = vdev_indirect_mapping_open(
439 spa->spa_meta_objset, vic->vic_mapping_object);
440 vd->vdev_indirect_births = vdev_indirect_births_open(
441 spa->spa_meta_objset, vic->vic_births_object);
442
443 indirect_vdev_id = vic->vic_prev_indirect_vdev;
444 }
445 spa_config_exit(spa, SCL_STATE, FTAG);
446
447 /*
448 * Now that we've loaded all the indirect mappings, we can allow
449 * reads from other blocks (e.g. via predictive prefetch).
450 */
451 spa->spa_indirect_vdevs_loaded = B_TRUE;
452 return (0);
453 }
454
455 void
spa_restart_removal(spa_t * spa)456 spa_restart_removal(spa_t *spa)
457 {
458 spa_vdev_removal_t *svr = spa->spa_vdev_removal;
459
460 if (svr == NULL)
461 return;
462
463 /*
464 * In general when this function is called there is no
465 * removal thread running. The only scenario where this
466 * is not true is during spa_import() where this function
467 * is called twice [once from spa_import_impl() and
468 * spa_async_resume()]. Thus, in the scenario where we
469 * import a pool that has an ongoing removal we don't
470 * want to spawn a second thread.
471 */
472 if (svr->svr_thread != NULL)
473 return;
474
475 if (!spa_writeable(spa))
476 return;
477
478 zfs_dbgmsg("restarting removal of %llu",
479 (u_longlong_t)svr->svr_vdev_id);
480 svr->svr_thread = thread_create(NULL, 0, spa_vdev_remove_thread, spa,
481 0, &p0, TS_RUN, minclsyspri);
482 }
483
484 /*
485 * Process freeing from a device which is in the middle of being removed.
486 * We must handle this carefully so that we attempt to copy freed data,
487 * and we correctly free already-copied data.
488 */
489 void
free_from_removing_vdev(vdev_t * vd,uint64_t offset,uint64_t size)490 free_from_removing_vdev(vdev_t *vd, uint64_t offset, uint64_t size)
491 {
492 spa_t *spa = vd->vdev_spa;
493 spa_vdev_removal_t *svr = spa->spa_vdev_removal;
494 vdev_indirect_mapping_t *vim = vd->vdev_indirect_mapping;
495 uint64_t txg = spa_syncing_txg(spa);
496 uint64_t max_offset_yet = 0;
497
498 ASSERT(vd->vdev_indirect_config.vic_mapping_object != 0);
499 ASSERT3U(vd->vdev_indirect_config.vic_mapping_object, ==,
500 vdev_indirect_mapping_object(vim));
501 ASSERT3U(vd->vdev_id, ==, svr->svr_vdev_id);
502
503 mutex_enter(&svr->svr_lock);
504
505 /*
506 * Remove the segment from the removing vdev's spacemap. This
507 * ensures that we will not attempt to copy this space (if the
508 * removal thread has not yet visited it), and also ensures
509 * that we know what is actually allocated on the new vdevs
510 * (needed if we cancel the removal).
511 *
512 * Note: we must do the metaslab_free_concrete() with the svr_lock
513 * held, so that the remove_thread can not load this metaslab and then
514 * visit this offset between the time that we metaslab_free_concrete()
515 * and when we check to see if it has been visited.
516 *
517 * Note: The checkpoint flag is set to false as having/taking
518 * a checkpoint and removing a device can't happen at the same
519 * time.
520 */
521 ASSERT(!spa_has_checkpoint(spa));
522 metaslab_free_concrete(vd, offset, size, B_FALSE);
523
524 uint64_t synced_size = 0;
525 uint64_t synced_offset = 0;
526 uint64_t max_offset_synced = vdev_indirect_mapping_max_offset(vim);
527 if (offset < max_offset_synced) {
528 /*
529 * The mapping for this offset is already on disk.
530 * Free from the new location.
531 *
532 * Note that we use svr_max_synced_offset because it is
533 * updated atomically with respect to the in-core mapping.
534 * By contrast, vim_max_offset is not.
535 *
536 * This block may be split between a synced entry and an
537 * in-flight or unvisited entry. Only process the synced
538 * portion of it here.
539 */
540 synced_size = MIN(size, max_offset_synced - offset);
541 synced_offset = offset;
542
543 ASSERT3U(max_offset_yet, <=, max_offset_synced);
544 max_offset_yet = max_offset_synced;
545
546 DTRACE_PROBE3(remove__free__synced,
547 spa_t *, spa,
548 uint64_t, offset,
549 uint64_t, synced_size);
550
551 size -= synced_size;
552 offset += synced_size;
553 }
554
555 /*
556 * Look at all in-flight txgs starting from the currently syncing one
557 * and see if a section of this free is being copied. By starting from
558 * this txg and iterating forward, we might find that this region
559 * was copied in two different txgs and handle it appropriately.
560 */
561 for (int i = 0; i < TXG_CONCURRENT_STATES; i++) {
562 int txgoff = (txg + i) & TXG_MASK;
563 if (size > 0 && offset < svr->svr_max_offset_to_sync[txgoff]) {
564 /*
565 * The mapping for this offset is in flight, and
566 * will be synced in txg+i.
567 */
568 uint64_t inflight_size = MIN(size,
569 svr->svr_max_offset_to_sync[txgoff] - offset);
570
571 DTRACE_PROBE4(remove__free__inflight,
572 spa_t *, spa,
573 uint64_t, offset,
574 uint64_t, inflight_size,
575 uint64_t, txg + i);
576
577 /*
578 * We copy data in order of increasing offset.
579 * Therefore the max_offset_to_sync[] must increase
580 * (or be zero, indicating that nothing is being
581 * copied in that txg).
582 */
583 if (svr->svr_max_offset_to_sync[txgoff] != 0) {
584 ASSERT3U(svr->svr_max_offset_to_sync[txgoff],
585 >=, max_offset_yet);
586 max_offset_yet =
587 svr->svr_max_offset_to_sync[txgoff];
588 }
589
590 /*
591 * We've already committed to copying this segment:
592 * we have allocated space elsewhere in the pool for
593 * it and have an IO outstanding to copy the data. We
594 * cannot free the space before the copy has
595 * completed, or else the copy IO might overwrite any
596 * new data. To free that space, we record the
597 * segment in the appropriate svr_frees tree and free
598 * the mapped space later, in the txg where we have
599 * completed the copy and synced the mapping (see
600 * vdev_mapping_sync).
601 */
602 range_tree_add(svr->svr_frees[txgoff],
603 offset, inflight_size);
604 size -= inflight_size;
605 offset += inflight_size;
606
607 /*
608 * This space is already accounted for as being
609 * done, because it is being copied in txg+i.
610 * However, if i!=0, then it is being copied in
611 * a future txg. If we crash after this txg
612 * syncs but before txg+i syncs, then the space
613 * will be free. Therefore we must account
614 * for the space being done in *this* txg
615 * (when it is freed) rather than the future txg
616 * (when it will be copied).
617 */
618 ASSERT3U(svr->svr_bytes_done[txgoff], >=,
619 inflight_size);
620 svr->svr_bytes_done[txgoff] -= inflight_size;
621 svr->svr_bytes_done[txg & TXG_MASK] += inflight_size;
622 }
623 }
624 ASSERT0(svr->svr_max_offset_to_sync[TXG_CLEAN(txg) & TXG_MASK]);
625
626 if (size > 0) {
627 /*
628 * The copy thread has not yet visited this offset. Ensure
629 * that it doesn't.
630 */
631
632 DTRACE_PROBE3(remove__free__unvisited,
633 spa_t *, spa,
634 uint64_t, offset,
635 uint64_t, size);
636
637 if (svr->svr_allocd_segs != NULL)
638 range_tree_clear(svr->svr_allocd_segs, offset, size);
639
640 /*
641 * Since we now do not need to copy this data, for
642 * accounting purposes we have done our job and can count
643 * it as completed.
644 */
645 svr->svr_bytes_done[txg & TXG_MASK] += size;
646 }
647 mutex_exit(&svr->svr_lock);
648
649 /*
650 * Now that we have dropped svr_lock, process the synced portion
651 * of this free.
652 */
653 if (synced_size > 0) {
654 vdev_indirect_mark_obsolete(vd, synced_offset, synced_size);
655
656 /*
657 * Note: this can only be called from syncing context,
658 * and the vdev_indirect_mapping is only changed from the
659 * sync thread, so we don't need svr_lock while doing
660 * metaslab_free_impl_cb.
661 */
662 boolean_t checkpoint = B_FALSE;
663 vdev_indirect_ops.vdev_op_remap(vd, synced_offset, synced_size,
664 metaslab_free_impl_cb, &checkpoint);
665 }
666 }
667
668 /*
669 * Stop an active removal and update the spa_removing phys.
670 */
671 static void
spa_finish_removal(spa_t * spa,dsl_scan_state_t state,dmu_tx_t * tx)672 spa_finish_removal(spa_t *spa, dsl_scan_state_t state, dmu_tx_t *tx)
673 {
674 spa_vdev_removal_t *svr = spa->spa_vdev_removal;
675 ASSERT3U(dmu_tx_get_txg(tx), ==, spa_syncing_txg(spa));
676
677 /* Ensure the removal thread has completed before we free the svr. */
678 spa_vdev_remove_suspend(spa);
679
680 ASSERT(state == DSS_FINISHED || state == DSS_CANCELED);
681
682 if (state == DSS_FINISHED) {
683 spa_removing_phys_t *srp = &spa->spa_removing_phys;
684 vdev_t *vd = vdev_lookup_top(spa, svr->svr_vdev_id);
685 vdev_indirect_config_t *vic = &vd->vdev_indirect_config;
686
687 if (srp->sr_prev_indirect_vdev != -1) {
688 vdev_t *pvd;
689 pvd = vdev_lookup_top(spa,
690 srp->sr_prev_indirect_vdev);
691 ASSERT3P(pvd->vdev_ops, ==, &vdev_indirect_ops);
692 }
693
694 vic->vic_prev_indirect_vdev = srp->sr_prev_indirect_vdev;
695 srp->sr_prev_indirect_vdev = vd->vdev_id;
696 }
697 spa->spa_removing_phys.sr_state = state;
698 spa->spa_removing_phys.sr_end_time = gethrestime_sec();
699
700 spa->spa_vdev_removal = NULL;
701 spa_vdev_removal_destroy(svr);
702
703 spa_sync_removing_state(spa, tx);
704 spa_notify_waiters(spa);
705
706 vdev_config_dirty(spa->spa_root_vdev);
707 }
708
709 static void
free_mapped_segment_cb(void * arg,uint64_t offset,uint64_t size)710 free_mapped_segment_cb(void *arg, uint64_t offset, uint64_t size)
711 {
712 vdev_t *vd = arg;
713 vdev_indirect_mark_obsolete(vd, offset, size);
714 boolean_t checkpoint = B_FALSE;
715 vdev_indirect_ops.vdev_op_remap(vd, offset, size,
716 metaslab_free_impl_cb, &checkpoint);
717 }
718
719 /*
720 * On behalf of the removal thread, syncs an incremental bit more of
721 * the indirect mapping to disk and updates the in-memory mapping.
722 * Called as a sync task in every txg that the removal thread makes progress.
723 */
724 static void
vdev_mapping_sync(void * arg,dmu_tx_t * tx)725 vdev_mapping_sync(void *arg, dmu_tx_t *tx)
726 {
727 spa_vdev_removal_t *svr = arg;
728 spa_t *spa = dmu_tx_pool(tx)->dp_spa;
729 vdev_t *vd = vdev_lookup_top(spa, svr->svr_vdev_id);
730 vdev_indirect_config_t *vic __maybe_unused = &vd->vdev_indirect_config;
731 uint64_t txg = dmu_tx_get_txg(tx);
732 vdev_indirect_mapping_t *vim = vd->vdev_indirect_mapping;
733
734 ASSERT(vic->vic_mapping_object != 0);
735 ASSERT3U(txg, ==, spa_syncing_txg(spa));
736
737 vdev_indirect_mapping_add_entries(vim,
738 &svr->svr_new_segments[txg & TXG_MASK], tx);
739 vdev_indirect_births_add_entry(vd->vdev_indirect_births,
740 vdev_indirect_mapping_max_offset(vim), dmu_tx_get_txg(tx), tx);
741
742 /*
743 * Free the copied data for anything that was freed while the
744 * mapping entries were in flight.
745 */
746 mutex_enter(&svr->svr_lock);
747 range_tree_vacate(svr->svr_frees[txg & TXG_MASK],
748 free_mapped_segment_cb, vd);
749 ASSERT3U(svr->svr_max_offset_to_sync[txg & TXG_MASK], >=,
750 vdev_indirect_mapping_max_offset(vim));
751 svr->svr_max_offset_to_sync[txg & TXG_MASK] = 0;
752 mutex_exit(&svr->svr_lock);
753
754 spa_sync_removing_state(spa, tx);
755 }
756
757 typedef struct vdev_copy_segment_arg {
758 spa_t *vcsa_spa;
759 dva_t *vcsa_dest_dva;
760 uint64_t vcsa_txg;
761 range_tree_t *vcsa_obsolete_segs;
762 } vdev_copy_segment_arg_t;
763
764 static void
unalloc_seg(void * arg,uint64_t start,uint64_t size)765 unalloc_seg(void *arg, uint64_t start, uint64_t size)
766 {
767 vdev_copy_segment_arg_t *vcsa = arg;
768 spa_t *spa = vcsa->vcsa_spa;
769 blkptr_t bp = { { { {0} } } };
770
771 BP_SET_BIRTH(&bp, TXG_INITIAL, TXG_INITIAL);
772 BP_SET_LSIZE(&bp, size);
773 BP_SET_PSIZE(&bp, size);
774 BP_SET_COMPRESS(&bp, ZIO_COMPRESS_OFF);
775 BP_SET_CHECKSUM(&bp, ZIO_CHECKSUM_OFF);
776 BP_SET_TYPE(&bp, DMU_OT_NONE);
777 BP_SET_LEVEL(&bp, 0);
778 BP_SET_DEDUP(&bp, 0);
779 BP_SET_BYTEORDER(&bp, ZFS_HOST_BYTEORDER);
780
781 DVA_SET_VDEV(&bp.blk_dva[0], DVA_GET_VDEV(vcsa->vcsa_dest_dva));
782 DVA_SET_OFFSET(&bp.blk_dva[0],
783 DVA_GET_OFFSET(vcsa->vcsa_dest_dva) + start);
784 DVA_SET_ASIZE(&bp.blk_dva[0], size);
785
786 zio_free(spa, vcsa->vcsa_txg, &bp);
787 }
788
789 /*
790 * All reads and writes associated with a call to spa_vdev_copy_segment()
791 * are done.
792 */
793 static void
spa_vdev_copy_segment_done(zio_t * zio)794 spa_vdev_copy_segment_done(zio_t *zio)
795 {
796 vdev_copy_segment_arg_t *vcsa = zio->io_private;
797
798 range_tree_vacate(vcsa->vcsa_obsolete_segs,
799 unalloc_seg, vcsa);
800 range_tree_destroy(vcsa->vcsa_obsolete_segs);
801 kmem_free(vcsa, sizeof (*vcsa));
802
803 spa_config_exit(zio->io_spa, SCL_STATE, zio->io_spa);
804 }
805
806 /*
807 * The write of the new location is done.
808 */
809 static void
spa_vdev_copy_segment_write_done(zio_t * zio)810 spa_vdev_copy_segment_write_done(zio_t *zio)
811 {
812 vdev_copy_arg_t *vca = zio->io_private;
813
814 abd_free(zio->io_abd);
815
816 mutex_enter(&vca->vca_lock);
817 vca->vca_outstanding_bytes -= zio->io_size;
818
819 if (zio->io_error != 0)
820 vca->vca_write_error_bytes += zio->io_size;
821
822 cv_signal(&vca->vca_cv);
823 mutex_exit(&vca->vca_lock);
824 }
825
826 /*
827 * The read of the old location is done. The parent zio is the write to
828 * the new location. Allow it to start.
829 */
830 static void
spa_vdev_copy_segment_read_done(zio_t * zio)831 spa_vdev_copy_segment_read_done(zio_t *zio)
832 {
833 vdev_copy_arg_t *vca = zio->io_private;
834
835 if (zio->io_error != 0) {
836 mutex_enter(&vca->vca_lock);
837 vca->vca_read_error_bytes += zio->io_size;
838 mutex_exit(&vca->vca_lock);
839 }
840
841 zio_nowait(zio_unique_parent(zio));
842 }
843
844 /*
845 * If the old and new vdevs are mirrors, we will read both sides of the old
846 * mirror, and write each copy to the corresponding side of the new mirror.
847 * If the old and new vdevs have a different number of children, we will do
848 * this as best as possible. Since we aren't verifying checksums, this
849 * ensures that as long as there's a good copy of the data, we'll have a
850 * good copy after the removal, even if there's silent damage to one side
851 * of the mirror. If we're removing a mirror that has some silent damage,
852 * we'll have exactly the same damage in the new location (assuming that
853 * the new location is also a mirror).
854 *
855 * We accomplish this by creating a tree of zio_t's, with as many writes as
856 * there are "children" of the new vdev (a non-redundant vdev counts as one
857 * child, a 2-way mirror has 2 children, etc). Each write has an associated
858 * read from a child of the old vdev. Typically there will be the same
859 * number of children of the old and new vdevs. However, if there are more
860 * children of the new vdev, some child(ren) of the old vdev will be issued
861 * multiple reads. If there are more children of the old vdev, some copies
862 * will be dropped.
863 *
864 * For example, the tree of zio_t's for a 2-way mirror is:
865 *
866 * null
867 * / \
868 * write(new vdev, child 0) write(new vdev, child 1)
869 * | |
870 * read(old vdev, child 0) read(old vdev, child 1)
871 *
872 * Child zio's complete before their parents complete. However, zio's
873 * created with zio_vdev_child_io() may be issued before their children
874 * complete. In this case we need to make sure that the children (reads)
875 * complete before the parents (writes) are *issued*. We do this by not
876 * calling zio_nowait() on each write until its corresponding read has
877 * completed.
878 *
879 * The spa_config_lock must be held while zio's created by
880 * zio_vdev_child_io() are in progress, to ensure that the vdev tree does
881 * not change (e.g. due to a concurrent "zpool attach/detach"). The "null"
882 * zio is needed to release the spa_config_lock after all the reads and
883 * writes complete. (Note that we can't grab the config lock for each read,
884 * because it is not reentrant - we could deadlock with a thread waiting
885 * for a write lock.)
886 */
887 static void
spa_vdev_copy_one_child(vdev_copy_arg_t * vca,zio_t * nzio,vdev_t * source_vd,uint64_t source_offset,vdev_t * dest_child_vd,uint64_t dest_offset,int dest_id,uint64_t size)888 spa_vdev_copy_one_child(vdev_copy_arg_t *vca, zio_t *nzio,
889 vdev_t *source_vd, uint64_t source_offset,
890 vdev_t *dest_child_vd, uint64_t dest_offset, int dest_id, uint64_t size)
891 {
892 ASSERT3U(spa_config_held(nzio->io_spa, SCL_ALL, RW_READER), !=, 0);
893
894 /*
895 * If the destination child in unwritable then there is no point
896 * in issuing the source reads which cannot be written.
897 */
898 if (!vdev_writeable(dest_child_vd))
899 return;
900
901 mutex_enter(&vca->vca_lock);
902 vca->vca_outstanding_bytes += size;
903 mutex_exit(&vca->vca_lock);
904
905 abd_t *abd = abd_alloc_for_io(size, B_FALSE);
906
907 vdev_t *source_child_vd = NULL;
908 if (source_vd->vdev_ops == &vdev_mirror_ops && dest_id != -1) {
909 /*
910 * Source and dest are both mirrors. Copy from the same
911 * child id as we are copying to (wrapping around if there
912 * are more dest children than source children). If the
913 * preferred source child is unreadable select another.
914 */
915 for (int i = 0; i < source_vd->vdev_children; i++) {
916 source_child_vd = source_vd->vdev_child[
917 (dest_id + i) % source_vd->vdev_children];
918 if (vdev_readable(source_child_vd))
919 break;
920 }
921 } else {
922 source_child_vd = source_vd;
923 }
924
925 /*
926 * There should always be at least one readable source child or
927 * the pool would be in a suspended state. Somehow selecting an
928 * unreadable child would result in IO errors, the removal process
929 * being cancelled, and the pool reverting to its pre-removal state.
930 */
931 ASSERT3P(source_child_vd, !=, NULL);
932
933 zio_t *write_zio = zio_vdev_child_io(nzio, NULL,
934 dest_child_vd, dest_offset, abd, size,
935 ZIO_TYPE_WRITE, ZIO_PRIORITY_REMOVAL,
936 ZIO_FLAG_CANFAIL,
937 spa_vdev_copy_segment_write_done, vca);
938
939 zio_nowait(zio_vdev_child_io(write_zio, NULL,
940 source_child_vd, source_offset, abd, size,
941 ZIO_TYPE_READ, ZIO_PRIORITY_REMOVAL,
942 ZIO_FLAG_CANFAIL,
943 spa_vdev_copy_segment_read_done, vca));
944 }
945
946 /*
947 * Allocate a new location for this segment, and create the zio_t's to
948 * read from the old location and write to the new location.
949 */
950 static int
spa_vdev_copy_segment(vdev_t * vd,range_tree_t * segs,uint64_t maxalloc,uint64_t txg,vdev_copy_arg_t * vca,zio_alloc_list_t * zal)951 spa_vdev_copy_segment(vdev_t *vd, range_tree_t *segs,
952 uint64_t maxalloc, uint64_t txg,
953 vdev_copy_arg_t *vca, zio_alloc_list_t *zal)
954 {
955 metaslab_group_t *mg = vd->vdev_mg;
956 spa_t *spa = vd->vdev_spa;
957 spa_vdev_removal_t *svr = spa->spa_vdev_removal;
958 vdev_indirect_mapping_entry_t *entry;
959 dva_t dst = {{ 0 }};
960 uint64_t start = range_tree_min(segs);
961 ASSERT0(P2PHASE(start, 1 << spa->spa_min_ashift));
962
963 ASSERT3U(maxalloc, <=, SPA_MAXBLOCKSIZE);
964 ASSERT0(P2PHASE(maxalloc, 1 << spa->spa_min_ashift));
965
966 uint64_t size = range_tree_span(segs);
967 if (range_tree_span(segs) > maxalloc) {
968 /*
969 * We can't allocate all the segments. Prefer to end
970 * the allocation at the end of a segment, thus avoiding
971 * additional split blocks.
972 */
973 range_seg_max_t search;
974 zfs_btree_index_t where;
975 rs_set_start(&search, segs, start + maxalloc);
976 rs_set_end(&search, segs, start + maxalloc);
977 (void) zfs_btree_find(&segs->rt_root, &search, &where);
978 range_seg_t *rs = zfs_btree_prev(&segs->rt_root, &where,
979 &where);
980 if (rs != NULL) {
981 size = rs_get_end(rs, segs) - start;
982 } else {
983 /*
984 * There are no segments that end before maxalloc.
985 * I.e. the first segment is larger than maxalloc,
986 * so we must split it.
987 */
988 size = maxalloc;
989 }
990 }
991 ASSERT3U(size, <=, maxalloc);
992 ASSERT0(P2PHASE(size, 1 << spa->spa_min_ashift));
993
994 /*
995 * An allocation class might not have any remaining vdevs or space
996 */
997 metaslab_class_t *mc = mg->mg_class;
998 if (mc->mc_groups == 0)
999 mc = spa_normal_class(spa);
1000 int error = metaslab_alloc_dva(spa, mc, size, &dst, 0, NULL, txg, 0,
1001 zal, 0);
1002 if (error == ENOSPC && mc != spa_normal_class(spa)) {
1003 error = metaslab_alloc_dva(spa, spa_normal_class(spa), size,
1004 &dst, 0, NULL, txg, 0, zal, 0);
1005 }
1006 if (error != 0)
1007 return (error);
1008
1009 /*
1010 * Determine the ranges that are not actually needed. Offsets are
1011 * relative to the start of the range to be copied (i.e. relative to the
1012 * local variable "start").
1013 */
1014 range_tree_t *obsolete_segs = range_tree_create(NULL, RANGE_SEG64, NULL,
1015 0, 0);
1016
1017 zfs_btree_index_t where;
1018 range_seg_t *rs = zfs_btree_first(&segs->rt_root, &where);
1019 ASSERT3U(rs_get_start(rs, segs), ==, start);
1020 uint64_t prev_seg_end = rs_get_end(rs, segs);
1021 while ((rs = zfs_btree_next(&segs->rt_root, &where, &where)) != NULL) {
1022 if (rs_get_start(rs, segs) >= start + size) {
1023 break;
1024 } else {
1025 range_tree_add(obsolete_segs,
1026 prev_seg_end - start,
1027 rs_get_start(rs, segs) - prev_seg_end);
1028 }
1029 prev_seg_end = rs_get_end(rs, segs);
1030 }
1031 /* We don't end in the middle of an obsolete range */
1032 ASSERT3U(start + size, <=, prev_seg_end);
1033
1034 range_tree_clear(segs, start, size);
1035
1036 /*
1037 * We can't have any padding of the allocated size, otherwise we will
1038 * misunderstand what's allocated, and the size of the mapping. We
1039 * prevent padding by ensuring that all devices in the pool have the
1040 * same ashift, and the allocation size is a multiple of the ashift.
1041 */
1042 VERIFY3U(DVA_GET_ASIZE(&dst), ==, size);
1043
1044 entry = kmem_zalloc(sizeof (vdev_indirect_mapping_entry_t), KM_SLEEP);
1045 DVA_MAPPING_SET_SRC_OFFSET(&entry->vime_mapping, start);
1046 entry->vime_mapping.vimep_dst = dst;
1047 if (spa_feature_is_enabled(spa, SPA_FEATURE_OBSOLETE_COUNTS)) {
1048 entry->vime_obsolete_count = range_tree_space(obsolete_segs);
1049 }
1050
1051 vdev_copy_segment_arg_t *vcsa = kmem_zalloc(sizeof (*vcsa), KM_SLEEP);
1052 vcsa->vcsa_dest_dva = &entry->vime_mapping.vimep_dst;
1053 vcsa->vcsa_obsolete_segs = obsolete_segs;
1054 vcsa->vcsa_spa = spa;
1055 vcsa->vcsa_txg = txg;
1056
1057 /*
1058 * See comment before spa_vdev_copy_one_child().
1059 */
1060 spa_config_enter(spa, SCL_STATE, spa, RW_READER);
1061 zio_t *nzio = zio_null(spa->spa_txg_zio[txg & TXG_MASK], spa, NULL,
1062 spa_vdev_copy_segment_done, vcsa, 0);
1063 vdev_t *dest_vd = vdev_lookup_top(spa, DVA_GET_VDEV(&dst));
1064 if (dest_vd->vdev_ops == &vdev_mirror_ops) {
1065 for (int i = 0; i < dest_vd->vdev_children; i++) {
1066 vdev_t *child = dest_vd->vdev_child[i];
1067 spa_vdev_copy_one_child(vca, nzio, vd, start,
1068 child, DVA_GET_OFFSET(&dst), i, size);
1069 }
1070 } else {
1071 spa_vdev_copy_one_child(vca, nzio, vd, start,
1072 dest_vd, DVA_GET_OFFSET(&dst), -1, size);
1073 }
1074 zio_nowait(nzio);
1075
1076 list_insert_tail(&svr->svr_new_segments[txg & TXG_MASK], entry);
1077 ASSERT3U(start + size, <=, vd->vdev_ms_count << vd->vdev_ms_shift);
1078 vdev_dirty(vd, 0, NULL, txg);
1079
1080 return (0);
1081 }
1082
1083 /*
1084 * Complete the removal of a toplevel vdev. This is called as a
1085 * synctask in the same txg that we will sync out the new config (to the
1086 * MOS object) which indicates that this vdev is indirect.
1087 */
1088 static void
vdev_remove_complete_sync(void * arg,dmu_tx_t * tx)1089 vdev_remove_complete_sync(void *arg, dmu_tx_t *tx)
1090 {
1091 spa_vdev_removal_t *svr = arg;
1092 spa_t *spa = dmu_tx_pool(tx)->dp_spa;
1093 vdev_t *vd = vdev_lookup_top(spa, svr->svr_vdev_id);
1094
1095 ASSERT3P(vd->vdev_ops, ==, &vdev_indirect_ops);
1096
1097 for (int i = 0; i < TXG_SIZE; i++) {
1098 ASSERT0(svr->svr_bytes_done[i]);
1099 }
1100
1101 ASSERT3U(spa->spa_removing_phys.sr_copied, ==,
1102 spa->spa_removing_phys.sr_to_copy);
1103
1104 vdev_destroy_spacemaps(vd, tx);
1105
1106 /* destroy leaf zaps, if any */
1107 ASSERT3P(svr->svr_zaplist, !=, NULL);
1108 for (nvpair_t *pair = nvlist_next_nvpair(svr->svr_zaplist, NULL);
1109 pair != NULL;
1110 pair = nvlist_next_nvpair(svr->svr_zaplist, pair)) {
1111 vdev_destroy_unlink_zap(vd, fnvpair_value_uint64(pair), tx);
1112 }
1113 fnvlist_free(svr->svr_zaplist);
1114
1115 spa_finish_removal(dmu_tx_pool(tx)->dp_spa, DSS_FINISHED, tx);
1116 /* vd->vdev_path is not available here */
1117 spa_history_log_internal(spa, "vdev remove completed", tx,
1118 "%s vdev %llu", spa_name(spa), (u_longlong_t)vd->vdev_id);
1119 }
1120
1121 static void
vdev_remove_enlist_zaps(vdev_t * vd,nvlist_t * zlist)1122 vdev_remove_enlist_zaps(vdev_t *vd, nvlist_t *zlist)
1123 {
1124 ASSERT3P(zlist, !=, NULL);
1125 ASSERT0(vdev_get_nparity(vd));
1126
1127 if (vd->vdev_leaf_zap != 0) {
1128 char zkey[32];
1129 (void) snprintf(zkey, sizeof (zkey), "%s-%llu",
1130 VDEV_REMOVAL_ZAP_OBJS, (u_longlong_t)vd->vdev_leaf_zap);
1131 fnvlist_add_uint64(zlist, zkey, vd->vdev_leaf_zap);
1132 }
1133
1134 for (uint64_t id = 0; id < vd->vdev_children; id++) {
1135 vdev_remove_enlist_zaps(vd->vdev_child[id], zlist);
1136 }
1137 }
1138
1139 static void
vdev_remove_replace_with_indirect(vdev_t * vd,uint64_t txg)1140 vdev_remove_replace_with_indirect(vdev_t *vd, uint64_t txg)
1141 {
1142 vdev_t *ivd;
1143 dmu_tx_t *tx;
1144 spa_t *spa = vd->vdev_spa;
1145 spa_vdev_removal_t *svr = spa->spa_vdev_removal;
1146
1147 /*
1148 * First, build a list of leaf zaps to be destroyed.
1149 * This is passed to the sync context thread,
1150 * which does the actual unlinking.
1151 */
1152 svr->svr_zaplist = fnvlist_alloc();
1153 vdev_remove_enlist_zaps(vd, svr->svr_zaplist);
1154
1155 ivd = vdev_add_parent(vd, &vdev_indirect_ops);
1156 ivd->vdev_removing = 0;
1157
1158 vd->vdev_leaf_zap = 0;
1159
1160 vdev_remove_child(ivd, vd);
1161 vdev_compact_children(ivd);
1162
1163 ASSERT(!list_link_active(&vd->vdev_state_dirty_node));
1164
1165 mutex_enter(&svr->svr_lock);
1166 svr->svr_thread = NULL;
1167 cv_broadcast(&svr->svr_cv);
1168 mutex_exit(&svr->svr_lock);
1169
1170 /* After this, we can not use svr. */
1171 tx = dmu_tx_create_assigned(spa->spa_dsl_pool, txg);
1172 dsl_sync_task_nowait(spa->spa_dsl_pool,
1173 vdev_remove_complete_sync, svr, tx);
1174 dmu_tx_commit(tx);
1175 }
1176
1177 /*
1178 * Complete the removal of a toplevel vdev. This is called in open
1179 * context by the removal thread after we have copied all vdev's data.
1180 */
1181 static void
vdev_remove_complete(spa_t * spa)1182 vdev_remove_complete(spa_t *spa)
1183 {
1184 uint64_t txg;
1185
1186 /*
1187 * Wait for any deferred frees to be synced before we call
1188 * vdev_metaslab_fini()
1189 */
1190 txg_wait_synced(spa->spa_dsl_pool, 0);
1191 txg = spa_vdev_enter(spa);
1192 vdev_t *vd = vdev_lookup_top(spa, spa->spa_vdev_removal->svr_vdev_id);
1193 ASSERT3P(vd->vdev_initialize_thread, ==, NULL);
1194 ASSERT3P(vd->vdev_trim_thread, ==, NULL);
1195 ASSERT3P(vd->vdev_autotrim_thread, ==, NULL);
1196
1197 sysevent_t *ev = spa_event_create(spa, vd, NULL,
1198 ESC_ZFS_VDEV_REMOVE_DEV);
1199
1200 zfs_dbgmsg("finishing device removal for vdev %llu in txg %llu",
1201 (u_longlong_t)vd->vdev_id, (u_longlong_t)txg);
1202
1203 /*
1204 * Discard allocation state.
1205 */
1206 if (vd->vdev_mg != NULL) {
1207 vdev_metaslab_fini(vd);
1208 metaslab_group_destroy(vd->vdev_mg);
1209 vd->vdev_mg = NULL;
1210 spa_log_sm_set_blocklimit(spa);
1211 }
1212 if (vd->vdev_log_mg != NULL) {
1213 ASSERT0(vd->vdev_ms_count);
1214 metaslab_group_destroy(vd->vdev_log_mg);
1215 vd->vdev_log_mg = NULL;
1216 }
1217 ASSERT0(vd->vdev_stat.vs_space);
1218 ASSERT0(vd->vdev_stat.vs_dspace);
1219
1220 vdev_remove_replace_with_indirect(vd, txg);
1221
1222 /*
1223 * We now release the locks, allowing spa_sync to run and finish the
1224 * removal via vdev_remove_complete_sync in syncing context.
1225 *
1226 * Note that we hold on to the vdev_t that has been replaced. Since
1227 * it isn't part of the vdev tree any longer, it can't be concurrently
1228 * manipulated, even while we don't have the config lock.
1229 */
1230 (void) spa_vdev_exit(spa, NULL, txg, 0);
1231
1232 /*
1233 * Top ZAP should have been transferred to the indirect vdev in
1234 * vdev_remove_replace_with_indirect.
1235 */
1236 ASSERT0(vd->vdev_top_zap);
1237
1238 /*
1239 * Leaf ZAP should have been moved in vdev_remove_replace_with_indirect.
1240 */
1241 ASSERT0(vd->vdev_leaf_zap);
1242
1243 txg = spa_vdev_enter(spa);
1244 (void) vdev_label_init(vd, 0, VDEV_LABEL_REMOVE);
1245 /*
1246 * Request to update the config and the config cachefile.
1247 */
1248 vdev_config_dirty(spa->spa_root_vdev);
1249 (void) spa_vdev_exit(spa, vd, txg, 0);
1250
1251 if (ev != NULL)
1252 spa_event_post(ev);
1253 }
1254
1255 /*
1256 * Evacuates a segment of size at most max_alloc from the vdev
1257 * via repeated calls to spa_vdev_copy_segment. If an allocation
1258 * fails, the pool is probably too fragmented to handle such a
1259 * large size, so decrease max_alloc so that the caller will not try
1260 * this size again this txg.
1261 */
1262 static void
spa_vdev_copy_impl(vdev_t * vd,spa_vdev_removal_t * svr,vdev_copy_arg_t * vca,uint64_t * max_alloc,dmu_tx_t * tx)1263 spa_vdev_copy_impl(vdev_t *vd, spa_vdev_removal_t *svr, vdev_copy_arg_t *vca,
1264 uint64_t *max_alloc, dmu_tx_t *tx)
1265 {
1266 uint64_t txg = dmu_tx_get_txg(tx);
1267 spa_t *spa = dmu_tx_pool(tx)->dp_spa;
1268
1269 mutex_enter(&svr->svr_lock);
1270
1271 /*
1272 * Determine how big of a chunk to copy. We can allocate up
1273 * to max_alloc bytes, and we can span up to vdev_removal_max_span
1274 * bytes of unallocated space at a time. "segs" will track the
1275 * allocated segments that we are copying. We may also be copying
1276 * free segments (of up to vdev_removal_max_span bytes).
1277 */
1278 range_tree_t *segs = range_tree_create(NULL, RANGE_SEG64, NULL, 0, 0);
1279 for (;;) {
1280 range_tree_t *rt = svr->svr_allocd_segs;
1281 range_seg_t *rs = range_tree_first(rt);
1282
1283 if (rs == NULL)
1284 break;
1285
1286 uint64_t seg_length;
1287
1288 if (range_tree_is_empty(segs)) {
1289 /* need to truncate the first seg based on max_alloc */
1290 seg_length = MIN(rs_get_end(rs, rt) - rs_get_start(rs,
1291 rt), *max_alloc);
1292 } else {
1293 if (rs_get_start(rs, rt) - range_tree_max(segs) >
1294 vdev_removal_max_span) {
1295 /*
1296 * Including this segment would cause us to
1297 * copy a larger unneeded chunk than is allowed.
1298 */
1299 break;
1300 } else if (rs_get_end(rs, rt) - range_tree_min(segs) >
1301 *max_alloc) {
1302 /*
1303 * This additional segment would extend past
1304 * max_alloc. Rather than splitting this
1305 * segment, leave it for the next mapping.
1306 */
1307 break;
1308 } else {
1309 seg_length = rs_get_end(rs, rt) -
1310 rs_get_start(rs, rt);
1311 }
1312 }
1313
1314 range_tree_add(segs, rs_get_start(rs, rt), seg_length);
1315 range_tree_remove(svr->svr_allocd_segs,
1316 rs_get_start(rs, rt), seg_length);
1317 }
1318
1319 if (range_tree_is_empty(segs)) {
1320 mutex_exit(&svr->svr_lock);
1321 range_tree_destroy(segs);
1322 return;
1323 }
1324
1325 if (svr->svr_max_offset_to_sync[txg & TXG_MASK] == 0) {
1326 dsl_sync_task_nowait(dmu_tx_pool(tx), vdev_mapping_sync,
1327 svr, tx);
1328 }
1329
1330 svr->svr_max_offset_to_sync[txg & TXG_MASK] = range_tree_max(segs);
1331
1332 /*
1333 * Note: this is the amount of *allocated* space
1334 * that we are taking care of each txg.
1335 */
1336 svr->svr_bytes_done[txg & TXG_MASK] += range_tree_space(segs);
1337
1338 mutex_exit(&svr->svr_lock);
1339
1340 zio_alloc_list_t zal;
1341 metaslab_trace_init(&zal);
1342 uint64_t thismax = SPA_MAXBLOCKSIZE;
1343 while (!range_tree_is_empty(segs)) {
1344 int error = spa_vdev_copy_segment(vd,
1345 segs, thismax, txg, vca, &zal);
1346
1347 if (error == ENOSPC) {
1348 /*
1349 * Cut our segment in half, and don't try this
1350 * segment size again this txg. Note that the
1351 * allocation size must be aligned to the highest
1352 * ashift in the pool, so that the allocation will
1353 * not be padded out to a multiple of the ashift,
1354 * which could cause us to think that this mapping
1355 * is larger than we intended.
1356 */
1357 ASSERT3U(spa->spa_max_ashift, >=, SPA_MINBLOCKSHIFT);
1358 ASSERT3U(spa->spa_max_ashift, ==, spa->spa_min_ashift);
1359 uint64_t attempted =
1360 MIN(range_tree_span(segs), thismax);
1361 thismax = P2ROUNDUP(attempted / 2,
1362 1 << spa->spa_max_ashift);
1363 /*
1364 * The minimum-size allocation can not fail.
1365 */
1366 ASSERT3U(attempted, >, 1 << spa->spa_max_ashift);
1367 *max_alloc = attempted - (1 << spa->spa_max_ashift);
1368 } else {
1369 ASSERT0(error);
1370
1371 /*
1372 * We've performed an allocation, so reset the
1373 * alloc trace list.
1374 */
1375 metaslab_trace_fini(&zal);
1376 metaslab_trace_init(&zal);
1377 }
1378 }
1379 metaslab_trace_fini(&zal);
1380 range_tree_destroy(segs);
1381 }
1382
1383 /*
1384 * The size of each removal mapping is limited by the tunable
1385 * zfs_remove_max_segment, but we must adjust this to be a multiple of the
1386 * pool's ashift, so that we don't try to split individual sectors regardless
1387 * of the tunable value. (Note that device removal requires that all devices
1388 * have the same ashift, so there's no difference between spa_min_ashift and
1389 * spa_max_ashift.) The raw tunable should not be used elsewhere.
1390 */
1391 uint64_t
spa_remove_max_segment(spa_t * spa)1392 spa_remove_max_segment(spa_t *spa)
1393 {
1394 return (P2ROUNDUP(zfs_remove_max_segment, 1 << spa->spa_max_ashift));
1395 }
1396
1397 /*
1398 * The removal thread operates in open context. It iterates over all
1399 * allocated space in the vdev, by loading each metaslab's spacemap.
1400 * For each contiguous segment of allocated space (capping the segment
1401 * size at SPA_MAXBLOCKSIZE), we:
1402 * - Allocate space for it on another vdev.
1403 * - Create a new mapping from the old location to the new location
1404 * (as a record in svr_new_segments).
1405 * - Initiate a physical read zio to get the data off the removing disk.
1406 * - In the read zio's done callback, initiate a physical write zio to
1407 * write it to the new vdev.
1408 * Note that all of this will take effect when a particular TXG syncs.
1409 * The sync thread ensures that all the phys reads and writes for the syncing
1410 * TXG have completed (see spa_txg_zio) and writes the new mappings to disk
1411 * (see vdev_mapping_sync()).
1412 */
1413 static void
spa_vdev_remove_thread(void * arg)1414 spa_vdev_remove_thread(void *arg)
1415 {
1416 spa_t *spa = arg;
1417 spa_vdev_removal_t *svr = spa->spa_vdev_removal;
1418 vdev_copy_arg_t vca;
1419 uint64_t max_alloc = spa_remove_max_segment(spa);
1420 uint64_t last_txg = 0;
1421
1422 spa_config_enter(spa, SCL_CONFIG, FTAG, RW_READER);
1423 vdev_t *vd = vdev_lookup_top(spa, svr->svr_vdev_id);
1424 vdev_indirect_mapping_t *vim = vd->vdev_indirect_mapping;
1425 uint64_t start_offset = vdev_indirect_mapping_max_offset(vim);
1426
1427 ASSERT3P(vd->vdev_ops, !=, &vdev_indirect_ops);
1428 ASSERT(vdev_is_concrete(vd));
1429 ASSERT(vd->vdev_removing);
1430 ASSERT(vd->vdev_indirect_config.vic_mapping_object != 0);
1431 ASSERT(vim != NULL);
1432
1433 mutex_init(&vca.vca_lock, NULL, MUTEX_DEFAULT, NULL);
1434 cv_init(&vca.vca_cv, NULL, CV_DEFAULT, NULL);
1435 vca.vca_outstanding_bytes = 0;
1436 vca.vca_read_error_bytes = 0;
1437 vca.vca_write_error_bytes = 0;
1438
1439 mutex_enter(&svr->svr_lock);
1440
1441 /*
1442 * Start from vim_max_offset so we pick up where we left off
1443 * if we are restarting the removal after opening the pool.
1444 */
1445 uint64_t msi;
1446 for (msi = start_offset >> vd->vdev_ms_shift;
1447 msi < vd->vdev_ms_count && !svr->svr_thread_exit; msi++) {
1448 metaslab_t *msp = vd->vdev_ms[msi];
1449 ASSERT3U(msi, <=, vd->vdev_ms_count);
1450
1451 ASSERT0(range_tree_space(svr->svr_allocd_segs));
1452
1453 mutex_enter(&msp->ms_sync_lock);
1454 mutex_enter(&msp->ms_lock);
1455
1456 /*
1457 * Assert nothing in flight -- ms_*tree is empty.
1458 */
1459 for (int i = 0; i < TXG_SIZE; i++) {
1460 ASSERT0(range_tree_space(msp->ms_allocating[i]));
1461 }
1462
1463 /*
1464 * If the metaslab has ever been allocated from (ms_sm!=NULL),
1465 * read the allocated segments from the space map object
1466 * into svr_allocd_segs. Since we do this while holding
1467 * svr_lock and ms_sync_lock, concurrent frees (which
1468 * would have modified the space map) will wait for us
1469 * to finish loading the spacemap, and then take the
1470 * appropriate action (see free_from_removing_vdev()).
1471 */
1472 if (msp->ms_sm != NULL) {
1473 VERIFY0(space_map_load(msp->ms_sm,
1474 svr->svr_allocd_segs, SM_ALLOC));
1475
1476 range_tree_walk(msp->ms_unflushed_allocs,
1477 range_tree_add, svr->svr_allocd_segs);
1478 range_tree_walk(msp->ms_unflushed_frees,
1479 range_tree_remove, svr->svr_allocd_segs);
1480 range_tree_walk(msp->ms_freeing,
1481 range_tree_remove, svr->svr_allocd_segs);
1482
1483 /*
1484 * When we are resuming from a paused removal (i.e.
1485 * when importing a pool with a removal in progress),
1486 * discard any state that we have already processed.
1487 */
1488 range_tree_clear(svr->svr_allocd_segs, 0, start_offset);
1489 }
1490 mutex_exit(&msp->ms_lock);
1491 mutex_exit(&msp->ms_sync_lock);
1492
1493 vca.vca_msp = msp;
1494 zfs_dbgmsg("copying %llu segments for metaslab %llu",
1495 (u_longlong_t)zfs_btree_numnodes(
1496 &svr->svr_allocd_segs->rt_root),
1497 (u_longlong_t)msp->ms_id);
1498
1499 while (!svr->svr_thread_exit &&
1500 !range_tree_is_empty(svr->svr_allocd_segs)) {
1501
1502 mutex_exit(&svr->svr_lock);
1503
1504 /*
1505 * We need to periodically drop the config lock so that
1506 * writers can get in. Additionally, we can't wait
1507 * for a txg to sync while holding a config lock
1508 * (since a waiting writer could cause a 3-way deadlock
1509 * with the sync thread, which also gets a config
1510 * lock for reader). So we can't hold the config lock
1511 * while calling dmu_tx_assign().
1512 */
1513 spa_config_exit(spa, SCL_CONFIG, FTAG);
1514
1515 /*
1516 * This delay will pause the removal around the point
1517 * specified by zfs_removal_suspend_progress. We do this
1518 * solely from the test suite or during debugging.
1519 */
1520 uint64_t bytes_copied =
1521 spa->spa_removing_phys.sr_copied;
1522 for (int i = 0; i < TXG_SIZE; i++)
1523 bytes_copied += svr->svr_bytes_done[i];
1524 while (zfs_removal_suspend_progress &&
1525 !svr->svr_thread_exit)
1526 delay(hz);
1527
1528 mutex_enter(&vca.vca_lock);
1529 while (vca.vca_outstanding_bytes >
1530 zfs_remove_max_copy_bytes) {
1531 cv_wait(&vca.vca_cv, &vca.vca_lock);
1532 }
1533 mutex_exit(&vca.vca_lock);
1534
1535 dmu_tx_t *tx =
1536 dmu_tx_create_dd(spa_get_dsl(spa)->dp_mos_dir);
1537
1538 VERIFY0(dmu_tx_assign(tx, TXG_WAIT));
1539 uint64_t txg = dmu_tx_get_txg(tx);
1540
1541 /*
1542 * Reacquire the vdev_config lock. The vdev_t
1543 * that we're removing may have changed, e.g. due
1544 * to a vdev_attach or vdev_detach.
1545 */
1546 spa_config_enter(spa, SCL_CONFIG, FTAG, RW_READER);
1547 vd = vdev_lookup_top(spa, svr->svr_vdev_id);
1548
1549 if (txg != last_txg)
1550 max_alloc = spa_remove_max_segment(spa);
1551 last_txg = txg;
1552
1553 spa_vdev_copy_impl(vd, svr, &vca, &max_alloc, tx);
1554
1555 dmu_tx_commit(tx);
1556 mutex_enter(&svr->svr_lock);
1557 }
1558
1559 mutex_enter(&vca.vca_lock);
1560 if (zfs_removal_ignore_errors == 0 &&
1561 (vca.vca_read_error_bytes > 0 ||
1562 vca.vca_write_error_bytes > 0)) {
1563 svr->svr_thread_exit = B_TRUE;
1564 }
1565 mutex_exit(&vca.vca_lock);
1566 }
1567
1568 mutex_exit(&svr->svr_lock);
1569
1570 spa_config_exit(spa, SCL_CONFIG, FTAG);
1571
1572 /*
1573 * Wait for all copies to finish before cleaning up the vca.
1574 */
1575 txg_wait_synced(spa->spa_dsl_pool, 0);
1576 ASSERT0(vca.vca_outstanding_bytes);
1577
1578 mutex_destroy(&vca.vca_lock);
1579 cv_destroy(&vca.vca_cv);
1580
1581 if (svr->svr_thread_exit) {
1582 mutex_enter(&svr->svr_lock);
1583 range_tree_vacate(svr->svr_allocd_segs, NULL, NULL);
1584 svr->svr_thread = NULL;
1585 cv_broadcast(&svr->svr_cv);
1586 mutex_exit(&svr->svr_lock);
1587
1588 /*
1589 * During the removal process an unrecoverable read or write
1590 * error was encountered. The removal process must be
1591 * cancelled or this damage may become permanent.
1592 */
1593 if (zfs_removal_ignore_errors == 0 &&
1594 (vca.vca_read_error_bytes > 0 ||
1595 vca.vca_write_error_bytes > 0)) {
1596 zfs_dbgmsg("canceling removal due to IO errors: "
1597 "[read_error_bytes=%llu] [write_error_bytes=%llu]",
1598 (u_longlong_t)vca.vca_read_error_bytes,
1599 (u_longlong_t)vca.vca_write_error_bytes);
1600 spa_vdev_remove_cancel_impl(spa);
1601 }
1602 } else {
1603 ASSERT0(range_tree_space(svr->svr_allocd_segs));
1604 vdev_remove_complete(spa);
1605 }
1606
1607 thread_exit();
1608 }
1609
1610 void
spa_vdev_remove_suspend(spa_t * spa)1611 spa_vdev_remove_suspend(spa_t *spa)
1612 {
1613 spa_vdev_removal_t *svr = spa->spa_vdev_removal;
1614
1615 if (svr == NULL)
1616 return;
1617
1618 mutex_enter(&svr->svr_lock);
1619 svr->svr_thread_exit = B_TRUE;
1620 while (svr->svr_thread != NULL)
1621 cv_wait(&svr->svr_cv, &svr->svr_lock);
1622 svr->svr_thread_exit = B_FALSE;
1623 mutex_exit(&svr->svr_lock);
1624 }
1625
1626 static int
spa_vdev_remove_cancel_check(void * arg,dmu_tx_t * tx)1627 spa_vdev_remove_cancel_check(void *arg, dmu_tx_t *tx)
1628 {
1629 (void) arg;
1630 spa_t *spa = dmu_tx_pool(tx)->dp_spa;
1631
1632 if (spa->spa_vdev_removal == NULL)
1633 return (ENOTACTIVE);
1634 return (0);
1635 }
1636
1637 /*
1638 * Cancel a removal by freeing all entries from the partial mapping
1639 * and marking the vdev as no longer being removing.
1640 */
1641 static void
spa_vdev_remove_cancel_sync(void * arg,dmu_tx_t * tx)1642 spa_vdev_remove_cancel_sync(void *arg, dmu_tx_t *tx)
1643 {
1644 (void) arg;
1645 spa_t *spa = dmu_tx_pool(tx)->dp_spa;
1646 spa_vdev_removal_t *svr = spa->spa_vdev_removal;
1647 vdev_t *vd = vdev_lookup_top(spa, svr->svr_vdev_id);
1648 vdev_indirect_config_t *vic = &vd->vdev_indirect_config;
1649 vdev_indirect_mapping_t *vim = vd->vdev_indirect_mapping;
1650 objset_t *mos = spa->spa_meta_objset;
1651
1652 ASSERT3P(svr->svr_thread, ==, NULL);
1653
1654 spa_feature_decr(spa, SPA_FEATURE_DEVICE_REMOVAL, tx);
1655
1656 boolean_t are_precise;
1657 VERIFY0(vdev_obsolete_counts_are_precise(vd, &are_precise));
1658 if (are_precise) {
1659 spa_feature_decr(spa, SPA_FEATURE_OBSOLETE_COUNTS, tx);
1660 VERIFY0(zap_remove(spa->spa_meta_objset, vd->vdev_top_zap,
1661 VDEV_TOP_ZAP_OBSOLETE_COUNTS_ARE_PRECISE, tx));
1662 }
1663
1664 uint64_t obsolete_sm_object;
1665 VERIFY0(vdev_obsolete_sm_object(vd, &obsolete_sm_object));
1666 if (obsolete_sm_object != 0) {
1667 ASSERT(vd->vdev_obsolete_sm != NULL);
1668 ASSERT3U(obsolete_sm_object, ==,
1669 space_map_object(vd->vdev_obsolete_sm));
1670
1671 space_map_free(vd->vdev_obsolete_sm, tx);
1672 VERIFY0(zap_remove(spa->spa_meta_objset, vd->vdev_top_zap,
1673 VDEV_TOP_ZAP_INDIRECT_OBSOLETE_SM, tx));
1674 space_map_close(vd->vdev_obsolete_sm);
1675 vd->vdev_obsolete_sm = NULL;
1676 spa_feature_decr(spa, SPA_FEATURE_OBSOLETE_COUNTS, tx);
1677 }
1678 for (int i = 0; i < TXG_SIZE; i++) {
1679 ASSERT(list_is_empty(&svr->svr_new_segments[i]));
1680 ASSERT3U(svr->svr_max_offset_to_sync[i], <=,
1681 vdev_indirect_mapping_max_offset(vim));
1682 }
1683
1684 for (uint64_t msi = 0; msi < vd->vdev_ms_count; msi++) {
1685 metaslab_t *msp = vd->vdev_ms[msi];
1686
1687 if (msp->ms_start >= vdev_indirect_mapping_max_offset(vim))
1688 break;
1689
1690 ASSERT0(range_tree_space(svr->svr_allocd_segs));
1691
1692 mutex_enter(&msp->ms_lock);
1693
1694 /*
1695 * Assert nothing in flight -- ms_*tree is empty.
1696 */
1697 for (int i = 0; i < TXG_SIZE; i++)
1698 ASSERT0(range_tree_space(msp->ms_allocating[i]));
1699 for (int i = 0; i < TXG_DEFER_SIZE; i++)
1700 ASSERT0(range_tree_space(msp->ms_defer[i]));
1701 ASSERT0(range_tree_space(msp->ms_freed));
1702
1703 if (msp->ms_sm != NULL) {
1704 mutex_enter(&svr->svr_lock);
1705 VERIFY0(space_map_load(msp->ms_sm,
1706 svr->svr_allocd_segs, SM_ALLOC));
1707
1708 range_tree_walk(msp->ms_unflushed_allocs,
1709 range_tree_add, svr->svr_allocd_segs);
1710 range_tree_walk(msp->ms_unflushed_frees,
1711 range_tree_remove, svr->svr_allocd_segs);
1712 range_tree_walk(msp->ms_freeing,
1713 range_tree_remove, svr->svr_allocd_segs);
1714
1715 /*
1716 * Clear everything past what has been synced,
1717 * because we have not allocated mappings for it yet.
1718 */
1719 uint64_t syncd = vdev_indirect_mapping_max_offset(vim);
1720 uint64_t sm_end = msp->ms_sm->sm_start +
1721 msp->ms_sm->sm_size;
1722 if (sm_end > syncd)
1723 range_tree_clear(svr->svr_allocd_segs,
1724 syncd, sm_end - syncd);
1725
1726 mutex_exit(&svr->svr_lock);
1727 }
1728 mutex_exit(&msp->ms_lock);
1729
1730 mutex_enter(&svr->svr_lock);
1731 range_tree_vacate(svr->svr_allocd_segs,
1732 free_mapped_segment_cb, vd);
1733 mutex_exit(&svr->svr_lock);
1734 }
1735
1736 /*
1737 * Note: this must happen after we invoke free_mapped_segment_cb,
1738 * because it adds to the obsolete_segments.
1739 */
1740 range_tree_vacate(vd->vdev_obsolete_segments, NULL, NULL);
1741
1742 ASSERT3U(vic->vic_mapping_object, ==,
1743 vdev_indirect_mapping_object(vd->vdev_indirect_mapping));
1744 vdev_indirect_mapping_close(vd->vdev_indirect_mapping);
1745 vd->vdev_indirect_mapping = NULL;
1746 vdev_indirect_mapping_free(mos, vic->vic_mapping_object, tx);
1747 vic->vic_mapping_object = 0;
1748
1749 ASSERT3U(vic->vic_births_object, ==,
1750 vdev_indirect_births_object(vd->vdev_indirect_births));
1751 vdev_indirect_births_close(vd->vdev_indirect_births);
1752 vd->vdev_indirect_births = NULL;
1753 vdev_indirect_births_free(mos, vic->vic_births_object, tx);
1754 vic->vic_births_object = 0;
1755
1756 /*
1757 * We may have processed some frees from the removing vdev in this
1758 * txg, thus increasing svr_bytes_done; discard that here to
1759 * satisfy the assertions in spa_vdev_removal_destroy().
1760 * Note that future txg's can not have any bytes_done, because
1761 * future TXG's are only modified from open context, and we have
1762 * already shut down the copying thread.
1763 */
1764 svr->svr_bytes_done[dmu_tx_get_txg(tx) & TXG_MASK] = 0;
1765 spa_finish_removal(spa, DSS_CANCELED, tx);
1766
1767 vd->vdev_removing = B_FALSE;
1768 vdev_config_dirty(vd);
1769
1770 zfs_dbgmsg("canceled device removal for vdev %llu in %llu",
1771 (u_longlong_t)vd->vdev_id, (u_longlong_t)dmu_tx_get_txg(tx));
1772 spa_history_log_internal(spa, "vdev remove canceled", tx,
1773 "%s vdev %llu %s", spa_name(spa),
1774 (u_longlong_t)vd->vdev_id,
1775 (vd->vdev_path != NULL) ? vd->vdev_path : "-");
1776 }
1777
1778 static int
spa_vdev_remove_cancel_impl(spa_t * spa)1779 spa_vdev_remove_cancel_impl(spa_t *spa)
1780 {
1781 uint64_t vdid = spa->spa_vdev_removal->svr_vdev_id;
1782
1783 int error = dsl_sync_task(spa->spa_name, spa_vdev_remove_cancel_check,
1784 spa_vdev_remove_cancel_sync, NULL, 0,
1785 ZFS_SPACE_CHECK_EXTRA_RESERVED);
1786
1787 if (error == 0) {
1788 spa_config_enter(spa, SCL_ALLOC | SCL_VDEV, FTAG, RW_WRITER);
1789 vdev_t *vd = vdev_lookup_top(spa, vdid);
1790 metaslab_group_activate(vd->vdev_mg);
1791 ASSERT(!vd->vdev_islog);
1792 metaslab_group_activate(vd->vdev_log_mg);
1793 spa_config_exit(spa, SCL_ALLOC | SCL_VDEV, FTAG);
1794 }
1795
1796 return (error);
1797 }
1798
1799 int
spa_vdev_remove_cancel(spa_t * spa)1800 spa_vdev_remove_cancel(spa_t *spa)
1801 {
1802 spa_vdev_remove_suspend(spa);
1803
1804 if (spa->spa_vdev_removal == NULL)
1805 return (ENOTACTIVE);
1806
1807 return (spa_vdev_remove_cancel_impl(spa));
1808 }
1809
1810 void
svr_sync(spa_t * spa,dmu_tx_t * tx)1811 svr_sync(spa_t *spa, dmu_tx_t *tx)
1812 {
1813 spa_vdev_removal_t *svr = spa->spa_vdev_removal;
1814 int txgoff = dmu_tx_get_txg(tx) & TXG_MASK;
1815
1816 if (svr == NULL)
1817 return;
1818
1819 /*
1820 * This check is necessary so that we do not dirty the
1821 * DIRECTORY_OBJECT via spa_sync_removing_state() when there
1822 * is nothing to do. Dirtying it every time would prevent us
1823 * from syncing-to-convergence.
1824 */
1825 if (svr->svr_bytes_done[txgoff] == 0)
1826 return;
1827
1828 /*
1829 * Update progress accounting.
1830 */
1831 spa->spa_removing_phys.sr_copied += svr->svr_bytes_done[txgoff];
1832 svr->svr_bytes_done[txgoff] = 0;
1833
1834 spa_sync_removing_state(spa, tx);
1835 }
1836
1837 static void
vdev_remove_make_hole_and_free(vdev_t * vd)1838 vdev_remove_make_hole_and_free(vdev_t *vd)
1839 {
1840 uint64_t id = vd->vdev_id;
1841 spa_t *spa = vd->vdev_spa;
1842 vdev_t *rvd = spa->spa_root_vdev;
1843
1844 ASSERT(MUTEX_HELD(&spa_namespace_lock));
1845 ASSERT(spa_config_held(spa, SCL_ALL, RW_WRITER) == SCL_ALL);
1846
1847 vdev_free(vd);
1848
1849 vd = vdev_alloc_common(spa, id, 0, &vdev_hole_ops);
1850 vdev_add_child(rvd, vd);
1851 vdev_config_dirty(rvd);
1852
1853 /*
1854 * Reassess the health of our root vdev.
1855 */
1856 vdev_reopen(rvd);
1857 }
1858
1859 /*
1860 * Remove a log device. The config lock is held for the specified TXG.
1861 */
1862 static int
spa_vdev_remove_log(vdev_t * vd,uint64_t * txg)1863 spa_vdev_remove_log(vdev_t *vd, uint64_t *txg)
1864 {
1865 metaslab_group_t *mg = vd->vdev_mg;
1866 spa_t *spa = vd->vdev_spa;
1867 int error = 0;
1868
1869 ASSERT(vd->vdev_islog);
1870 ASSERT(vd == vd->vdev_top);
1871 ASSERT3P(vd->vdev_log_mg, ==, NULL);
1872 ASSERT(MUTEX_HELD(&spa_namespace_lock));
1873
1874 /*
1875 * Stop allocating from this vdev.
1876 */
1877 metaslab_group_passivate(mg);
1878
1879 /*
1880 * Wait for the youngest allocations and frees to sync,
1881 * and then wait for the deferral of those frees to finish.
1882 */
1883 spa_vdev_config_exit(spa, NULL,
1884 *txg + TXG_CONCURRENT_STATES + TXG_DEFER_SIZE, 0, FTAG);
1885
1886 /*
1887 * Cancel any initialize or TRIM which was in progress.
1888 */
1889 vdev_initialize_stop_all(vd, VDEV_INITIALIZE_CANCELED);
1890 vdev_trim_stop_all(vd, VDEV_TRIM_CANCELED);
1891 vdev_autotrim_stop_wait(vd);
1892
1893 /*
1894 * Evacuate the device. We don't hold the config lock as
1895 * writer since we need to do I/O but we do keep the
1896 * spa_namespace_lock held. Once this completes the device
1897 * should no longer have any blocks allocated on it.
1898 */
1899 ASSERT(MUTEX_HELD(&spa_namespace_lock));
1900 if (vd->vdev_stat.vs_alloc != 0)
1901 error = spa_reset_logs(spa);
1902
1903 *txg = spa_vdev_config_enter(spa);
1904
1905 if (error != 0) {
1906 metaslab_group_activate(mg);
1907 ASSERT3P(vd->vdev_log_mg, ==, NULL);
1908 return (error);
1909 }
1910 ASSERT0(vd->vdev_stat.vs_alloc);
1911
1912 /*
1913 * The evacuation succeeded. Remove any remaining MOS metadata
1914 * associated with this vdev, and wait for these changes to sync.
1915 */
1916 vd->vdev_removing = B_TRUE;
1917
1918 vdev_dirty_leaves(vd, VDD_DTL, *txg);
1919 vdev_config_dirty(vd);
1920
1921 /*
1922 * When the log space map feature is enabled we look at
1923 * the vdev's top_zap to find the on-disk flush data of
1924 * the metaslab we just flushed. Thus, while removing a
1925 * log vdev we make sure to call vdev_metaslab_fini()
1926 * first, which removes all metaslabs of this vdev from
1927 * spa_metaslabs_by_flushed before vdev_remove_empty()
1928 * destroys the top_zap of this log vdev.
1929 *
1930 * This avoids the scenario where we flush a metaslab
1931 * from the log vdev being removed that doesn't have a
1932 * top_zap and end up failing to lookup its on-disk flush
1933 * data.
1934 *
1935 * We don't call metaslab_group_destroy() right away
1936 * though (it will be called in vdev_free() later) as
1937 * during metaslab_sync() of metaslabs from other vdevs
1938 * we may touch the metaslab group of this vdev through
1939 * metaslab_class_histogram_verify()
1940 */
1941 vdev_metaslab_fini(vd);
1942 spa_log_sm_set_blocklimit(spa);
1943
1944 spa_vdev_config_exit(spa, NULL, *txg, 0, FTAG);
1945 *txg = spa_vdev_config_enter(spa);
1946
1947 sysevent_t *ev = spa_event_create(spa, vd, NULL,
1948 ESC_ZFS_VDEV_REMOVE_DEV);
1949 ASSERT(MUTEX_HELD(&spa_namespace_lock));
1950 ASSERT(spa_config_held(spa, SCL_ALL, RW_WRITER) == SCL_ALL);
1951
1952 /* The top ZAP should have been destroyed by vdev_remove_empty. */
1953 ASSERT0(vd->vdev_top_zap);
1954 /* The leaf ZAP should have been destroyed by vdev_dtl_sync. */
1955 ASSERT0(vd->vdev_leaf_zap);
1956
1957 (void) vdev_label_init(vd, 0, VDEV_LABEL_REMOVE);
1958
1959 if (list_link_active(&vd->vdev_state_dirty_node))
1960 vdev_state_clean(vd);
1961 if (list_link_active(&vd->vdev_config_dirty_node))
1962 vdev_config_clean(vd);
1963
1964 ASSERT0(vd->vdev_stat.vs_alloc);
1965
1966 /*
1967 * Clean up the vdev namespace.
1968 */
1969 vdev_remove_make_hole_and_free(vd);
1970
1971 if (ev != NULL)
1972 spa_event_post(ev);
1973
1974 return (0);
1975 }
1976
1977 static int
spa_vdev_remove_top_check(vdev_t * vd)1978 spa_vdev_remove_top_check(vdev_t *vd)
1979 {
1980 spa_t *spa = vd->vdev_spa;
1981
1982 if (vd != vd->vdev_top)
1983 return (SET_ERROR(ENOTSUP));
1984
1985 if (!vdev_is_concrete(vd))
1986 return (SET_ERROR(ENOTSUP));
1987
1988 if (!spa_feature_is_enabled(spa, SPA_FEATURE_DEVICE_REMOVAL))
1989 return (SET_ERROR(ENOTSUP));
1990
1991
1992 metaslab_class_t *mc = vd->vdev_mg->mg_class;
1993 metaslab_class_t *normal = spa_normal_class(spa);
1994 if (mc != normal) {
1995 /*
1996 * Space allocated from the special (or dedup) class is
1997 * included in the DMU's space usage, but it's not included
1998 * in spa_dspace (or dsl_pool_adjustedsize()). Therefore
1999 * there is always at least as much free space in the normal
2000 * class, as is allocated from the special (and dedup) class.
2001 * As a backup check, we will return ENOSPC if this is
2002 * violated. See also spa_update_dspace().
2003 */
2004 uint64_t available = metaslab_class_get_space(normal) -
2005 metaslab_class_get_alloc(normal);
2006 ASSERT3U(available, >=, vd->vdev_stat.vs_alloc);
2007 if (available < vd->vdev_stat.vs_alloc)
2008 return (SET_ERROR(ENOSPC));
2009 } else {
2010 /* available space in the pool's normal class */
2011 uint64_t available = dsl_dir_space_available(
2012 spa->spa_dsl_pool->dp_root_dir, NULL, 0, B_TRUE);
2013 if (available <
2014 vd->vdev_stat.vs_dspace + spa_get_slop_space(spa)) {
2015 /*
2016 * This is a normal device. There has to be enough free
2017 * space to remove the device and leave double the
2018 * "slop" space (i.e. we must leave at least 3% of the
2019 * pool free, in addition to the normal slop space).
2020 */
2021 return (SET_ERROR(ENOSPC));
2022 }
2023 }
2024
2025 /*
2026 * There can not be a removal in progress.
2027 */
2028 if (spa->spa_removing_phys.sr_state == DSS_SCANNING)
2029 return (SET_ERROR(EBUSY));
2030
2031 /*
2032 * The device must have all its data.
2033 */
2034 if (!vdev_dtl_empty(vd, DTL_MISSING) ||
2035 !vdev_dtl_empty(vd, DTL_OUTAGE))
2036 return (SET_ERROR(EBUSY));
2037
2038 /*
2039 * The device must be healthy.
2040 */
2041 if (!vdev_readable(vd))
2042 return (SET_ERROR(EIO));
2043
2044 /*
2045 * All vdevs in normal class must have the same ashift.
2046 */
2047 if (spa->spa_max_ashift != spa->spa_min_ashift) {
2048 return (SET_ERROR(EINVAL));
2049 }
2050
2051 /*
2052 * A removed special/dedup vdev must have same ashift as normal class.
2053 */
2054 ASSERT(!vd->vdev_islog);
2055 if (vd->vdev_alloc_bias != VDEV_BIAS_NONE &&
2056 vd->vdev_ashift != spa->spa_max_ashift) {
2057 return (SET_ERROR(EINVAL));
2058 }
2059
2060 /*
2061 * All vdevs in normal class must have the same ashift
2062 * and not be raidz or draid.
2063 */
2064 vdev_t *rvd = spa->spa_root_vdev;
2065 int num_indirect = 0;
2066 for (uint64_t id = 0; id < rvd->vdev_children; id++) {
2067 vdev_t *cvd = rvd->vdev_child[id];
2068
2069 /*
2070 * A removed special/dedup vdev must have the same ashift
2071 * across all vdevs in its class.
2072 */
2073 if (vd->vdev_alloc_bias != VDEV_BIAS_NONE &&
2074 cvd->vdev_alloc_bias == vd->vdev_alloc_bias &&
2075 cvd->vdev_ashift != vd->vdev_ashift) {
2076 return (SET_ERROR(EINVAL));
2077 }
2078 if (cvd->vdev_ashift != 0 &&
2079 cvd->vdev_alloc_bias == VDEV_BIAS_NONE)
2080 ASSERT3U(cvd->vdev_ashift, ==, spa->spa_max_ashift);
2081 if (cvd->vdev_ops == &vdev_indirect_ops)
2082 num_indirect++;
2083 if (!vdev_is_concrete(cvd))
2084 continue;
2085 if (vdev_get_nparity(cvd) != 0)
2086 return (SET_ERROR(EINVAL));
2087 /*
2088 * Need the mirror to be mirror of leaf vdevs only
2089 */
2090 if (cvd->vdev_ops == &vdev_mirror_ops) {
2091 for (uint64_t cid = 0;
2092 cid < cvd->vdev_children; cid++) {
2093 if (!cvd->vdev_child[cid]->vdev_ops->
2094 vdev_op_leaf)
2095 return (SET_ERROR(EINVAL));
2096 }
2097 }
2098 }
2099
2100 return (0);
2101 }
2102
2103 /*
2104 * Initiate removal of a top-level vdev, reducing the total space in the pool.
2105 * The config lock is held for the specified TXG. Once initiated,
2106 * evacuation of all allocated space (copying it to other vdevs) happens
2107 * in the background (see spa_vdev_remove_thread()), and can be canceled
2108 * (see spa_vdev_remove_cancel()). If successful, the vdev will
2109 * be transformed to an indirect vdev (see spa_vdev_remove_complete()).
2110 */
2111 static int
spa_vdev_remove_top(vdev_t * vd,uint64_t * txg)2112 spa_vdev_remove_top(vdev_t *vd, uint64_t *txg)
2113 {
2114 spa_t *spa = vd->vdev_spa;
2115 int error;
2116
2117 /*
2118 * Check for errors up-front, so that we don't waste time
2119 * passivating the metaslab group and clearing the ZIL if there
2120 * are errors.
2121 */
2122 error = spa_vdev_remove_top_check(vd);
2123 if (error != 0)
2124 return (error);
2125
2126 /*
2127 * Stop allocating from this vdev. Note that we must check
2128 * that this is not the only device in the pool before
2129 * passivating, otherwise we will not be able to make
2130 * progress because we can't allocate from any vdevs.
2131 * The above check for sufficient free space serves this
2132 * purpose.
2133 */
2134 metaslab_group_t *mg = vd->vdev_mg;
2135 metaslab_group_passivate(mg);
2136 ASSERT(!vd->vdev_islog);
2137 metaslab_group_passivate(vd->vdev_log_mg);
2138
2139 /*
2140 * Wait for the youngest allocations and frees to sync,
2141 * and then wait for the deferral of those frees to finish.
2142 */
2143 spa_vdev_config_exit(spa, NULL,
2144 *txg + TXG_CONCURRENT_STATES + TXG_DEFER_SIZE, 0, FTAG);
2145
2146 /*
2147 * We must ensure that no "stubby" log blocks are allocated
2148 * on the device to be removed. These blocks could be
2149 * written at any time, including while we are in the middle
2150 * of copying them.
2151 */
2152 error = spa_reset_logs(spa);
2153
2154 /*
2155 * We stop any initializing and TRIM that is currently in progress
2156 * but leave the state as "active". This will allow the process to
2157 * resume if the removal is canceled sometime later.
2158 */
2159 vdev_initialize_stop_all(vd, VDEV_INITIALIZE_ACTIVE);
2160 vdev_trim_stop_all(vd, VDEV_TRIM_ACTIVE);
2161 vdev_autotrim_stop_wait(vd);
2162
2163 *txg = spa_vdev_config_enter(spa);
2164
2165 /*
2166 * Things might have changed while the config lock was dropped
2167 * (e.g. space usage). Check for errors again.
2168 */
2169 if (error == 0)
2170 error = spa_vdev_remove_top_check(vd);
2171
2172 if (error != 0) {
2173 metaslab_group_activate(mg);
2174 ASSERT(!vd->vdev_islog);
2175 metaslab_group_activate(vd->vdev_log_mg);
2176 spa_async_request(spa, SPA_ASYNC_INITIALIZE_RESTART);
2177 spa_async_request(spa, SPA_ASYNC_TRIM_RESTART);
2178 spa_async_request(spa, SPA_ASYNC_AUTOTRIM_RESTART);
2179 return (error);
2180 }
2181
2182 vd->vdev_removing = B_TRUE;
2183
2184 vdev_dirty_leaves(vd, VDD_DTL, *txg);
2185 vdev_config_dirty(vd);
2186 dmu_tx_t *tx = dmu_tx_create_assigned(spa->spa_dsl_pool, *txg);
2187 dsl_sync_task_nowait(spa->spa_dsl_pool,
2188 vdev_remove_initiate_sync, (void *)(uintptr_t)vd->vdev_id, tx);
2189 dmu_tx_commit(tx);
2190
2191 return (0);
2192 }
2193
2194 /*
2195 * Remove a device from the pool.
2196 *
2197 * Removing a device from the vdev namespace requires several steps
2198 * and can take a significant amount of time. As a result we use
2199 * the spa_vdev_config_[enter/exit] functions which allow us to
2200 * grab and release the spa_config_lock while still holding the namespace
2201 * lock. During each step the configuration is synced out.
2202 */
2203 int
spa_vdev_remove(spa_t * spa,uint64_t guid,boolean_t unspare)2204 spa_vdev_remove(spa_t *spa, uint64_t guid, boolean_t unspare)
2205 {
2206 vdev_t *vd;
2207 nvlist_t **spares, **l2cache, *nv;
2208 uint64_t txg = 0;
2209 uint_t nspares, nl2cache;
2210 int error = 0, error_log;
2211 boolean_t locked = MUTEX_HELD(&spa_namespace_lock);
2212 sysevent_t *ev = NULL;
2213 char *vd_type = NULL, *vd_path = NULL;
2214
2215 ASSERT(spa_writeable(spa));
2216
2217 if (!locked)
2218 txg = spa_vdev_enter(spa);
2219
2220 ASSERT(MUTEX_HELD(&spa_namespace_lock));
2221 if (spa_feature_is_active(spa, SPA_FEATURE_POOL_CHECKPOINT)) {
2222 error = (spa_has_checkpoint(spa)) ?
2223 ZFS_ERR_CHECKPOINT_EXISTS : ZFS_ERR_DISCARDING_CHECKPOINT;
2224
2225 if (!locked)
2226 return (spa_vdev_exit(spa, NULL, txg, error));
2227
2228 return (error);
2229 }
2230
2231 vd = spa_lookup_by_guid(spa, guid, B_FALSE);
2232
2233 if (spa->spa_spares.sav_vdevs != NULL &&
2234 nvlist_lookup_nvlist_array(spa->spa_spares.sav_config,
2235 ZPOOL_CONFIG_SPARES, &spares, &nspares) == 0 &&
2236 (nv = spa_nvlist_lookup_by_guid(spares, nspares, guid)) != NULL) {
2237 /*
2238 * Only remove the hot spare if it's not currently in use
2239 * in this pool.
2240 */
2241 if (vd == NULL || unspare) {
2242 char *type;
2243 boolean_t draid_spare = B_FALSE;
2244
2245 if (nvlist_lookup_string(nv, ZPOOL_CONFIG_TYPE, &type)
2246 == 0 && strcmp(type, VDEV_TYPE_DRAID_SPARE) == 0)
2247 draid_spare = B_TRUE;
2248
2249 if (vd == NULL && draid_spare) {
2250 error = SET_ERROR(ENOTSUP);
2251 } else {
2252 if (vd == NULL)
2253 vd = spa_lookup_by_guid(spa,
2254 guid, B_TRUE);
2255 ev = spa_event_create(spa, vd, NULL,
2256 ESC_ZFS_VDEV_REMOVE_AUX);
2257
2258 vd_type = VDEV_TYPE_SPARE;
2259 vd_path = spa_strdup(fnvlist_lookup_string(
2260 nv, ZPOOL_CONFIG_PATH));
2261 spa_vdev_remove_aux(spa->spa_spares.sav_config,
2262 ZPOOL_CONFIG_SPARES, spares, nspares, nv);
2263 spa_load_spares(spa);
2264 spa->spa_spares.sav_sync = B_TRUE;
2265 }
2266 } else {
2267 error = SET_ERROR(EBUSY);
2268 }
2269 } else if (spa->spa_l2cache.sav_vdevs != NULL &&
2270 nvlist_lookup_nvlist_array(spa->spa_l2cache.sav_config,
2271 ZPOOL_CONFIG_L2CACHE, &l2cache, &nl2cache) == 0 &&
2272 (nv = spa_nvlist_lookup_by_guid(l2cache, nl2cache, guid)) != NULL) {
2273 vd_type = VDEV_TYPE_L2CACHE;
2274 vd_path = spa_strdup(fnvlist_lookup_string(
2275 nv, ZPOOL_CONFIG_PATH));
2276 /*
2277 * Cache devices can always be removed.
2278 */
2279 vd = spa_lookup_by_guid(spa, guid, B_TRUE);
2280
2281 /*
2282 * Stop trimming the cache device. We need to release the
2283 * config lock to allow the syncing of TRIM transactions
2284 * without releasing the spa_namespace_lock. The same
2285 * strategy is employed in spa_vdev_remove_top().
2286 */
2287 spa_vdev_config_exit(spa, NULL,
2288 txg + TXG_CONCURRENT_STATES + TXG_DEFER_SIZE, 0, FTAG);
2289 mutex_enter(&vd->vdev_trim_lock);
2290 vdev_trim_stop(vd, VDEV_TRIM_CANCELED, NULL);
2291 mutex_exit(&vd->vdev_trim_lock);
2292 txg = spa_vdev_config_enter(spa);
2293
2294 ev = spa_event_create(spa, vd, NULL, ESC_ZFS_VDEV_REMOVE_AUX);
2295 spa_vdev_remove_aux(spa->spa_l2cache.sav_config,
2296 ZPOOL_CONFIG_L2CACHE, l2cache, nl2cache, nv);
2297 spa_load_l2cache(spa);
2298 spa->spa_l2cache.sav_sync = B_TRUE;
2299 } else if (vd != NULL && vd->vdev_islog) {
2300 ASSERT(!locked);
2301 vd_type = VDEV_TYPE_LOG;
2302 vd_path = spa_strdup((vd->vdev_path != NULL) ?
2303 vd->vdev_path : "-");
2304 error = spa_vdev_remove_log(vd, &txg);
2305 } else if (vd != NULL) {
2306 ASSERT(!locked);
2307 error = spa_vdev_remove_top(vd, &txg);
2308 } else {
2309 /*
2310 * There is no vdev of any kind with the specified guid.
2311 */
2312 error = SET_ERROR(ENOENT);
2313 }
2314
2315 error_log = error;
2316
2317 if (!locked)
2318 error = spa_vdev_exit(spa, NULL, txg, error);
2319
2320 /*
2321 * Logging must be done outside the spa config lock. Otherwise,
2322 * this code path could end up holding the spa config lock while
2323 * waiting for a txg_sync so it can write to the internal log.
2324 * Doing that would prevent the txg sync from actually happening,
2325 * causing a deadlock.
2326 */
2327 if (error_log == 0 && vd_type != NULL && vd_path != NULL) {
2328 spa_history_log_internal(spa, "vdev remove", NULL,
2329 "%s vdev (%s) %s", spa_name(spa), vd_type, vd_path);
2330 }
2331 if (vd_path != NULL)
2332 spa_strfree(vd_path);
2333
2334 if (ev != NULL)
2335 spa_event_post(ev);
2336
2337 return (error);
2338 }
2339
2340 int
spa_removal_get_stats(spa_t * spa,pool_removal_stat_t * prs)2341 spa_removal_get_stats(spa_t *spa, pool_removal_stat_t *prs)
2342 {
2343 prs->prs_state = spa->spa_removing_phys.sr_state;
2344
2345 if (prs->prs_state == DSS_NONE)
2346 return (SET_ERROR(ENOENT));
2347
2348 prs->prs_removing_vdev = spa->spa_removing_phys.sr_removing_vdev;
2349 prs->prs_start_time = spa->spa_removing_phys.sr_start_time;
2350 prs->prs_end_time = spa->spa_removing_phys.sr_end_time;
2351 prs->prs_to_copy = spa->spa_removing_phys.sr_to_copy;
2352 prs->prs_copied = spa->spa_removing_phys.sr_copied;
2353
2354 prs->prs_mapping_memory = 0;
2355 uint64_t indirect_vdev_id =
2356 spa->spa_removing_phys.sr_prev_indirect_vdev;
2357 while (indirect_vdev_id != -1) {
2358 vdev_t *vd = spa->spa_root_vdev->vdev_child[indirect_vdev_id];
2359 vdev_indirect_config_t *vic = &vd->vdev_indirect_config;
2360 vdev_indirect_mapping_t *vim = vd->vdev_indirect_mapping;
2361
2362 ASSERT3P(vd->vdev_ops, ==, &vdev_indirect_ops);
2363 prs->prs_mapping_memory += vdev_indirect_mapping_size(vim);
2364 indirect_vdev_id = vic->vic_prev_indirect_vdev;
2365 }
2366
2367 return (0);
2368 }
2369
2370 /* BEGIN CSTYLED */
2371 ZFS_MODULE_PARAM(zfs_vdev, zfs_, removal_ignore_errors, INT, ZMOD_RW,
2372 "Ignore hard IO errors when removing device");
2373
2374 ZFS_MODULE_PARAM(zfs_vdev, zfs_, remove_max_segment, INT, ZMOD_RW,
2375 "Largest contiguous segment to allocate when removing device");
2376
2377 ZFS_MODULE_PARAM(zfs_vdev, vdev_, removal_max_span, INT, ZMOD_RW,
2378 "Largest span of free chunks a remap segment can span");
2379
2380 ZFS_MODULE_PARAM(zfs_vdev, zfs_, removal_suspend_progress, INT, ZMOD_RW,
2381 "Pause device removal after this many bytes are copied "
2382 "(debug use only - causes removal to hang)");
2383 /* END CSTYLED */
2384
2385 EXPORT_SYMBOL(free_from_removing_vdev);
2386 EXPORT_SYMBOL(spa_removal_get_stats);
2387 EXPORT_SYMBOL(spa_remove_init);
2388 EXPORT_SYMBOL(spa_restart_removal);
2389 EXPORT_SYMBOL(spa_vdev_removal_destroy);
2390 EXPORT_SYMBOL(spa_vdev_remove);
2391 EXPORT_SYMBOL(spa_vdev_remove_cancel);
2392 EXPORT_SYMBOL(spa_vdev_remove_suspend);
2393 EXPORT_SYMBOL(svr_sync);
2394