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) 2013 by Delphix. All rights reserved.
25 * Copyright (c) 2013, 2014, Nexenta Systems, Inc. All rights reserved.
26 * Copyright (c) 2013 Martin Matuska <mm@FreeBSD.org>. All rights reserved.
27 */
28
29 /*
30 * SPA: Storage Pool Allocator
31 *
32 * This file contains all the routines used when modifying on-disk SPA state.
33 * This includes opening, importing, destroying, exporting a pool, and syncing a
34 * pool.
35 */
36
37 #include <sys/zfs_context.h>
38 #include <sys/fm/fs/zfs.h>
39 #include <sys/spa_impl.h>
40 #include <sys/zio.h>
41 #include <sys/zio_checksum.h>
42 #include <sys/dmu.h>
43 #include <sys/dmu_tx.h>
44 #include <sys/zap.h>
45 #include <sys/zil.h>
46 #include <sys/ddt.h>
47 #include <sys/vdev_impl.h>
48 #include <sys/metaslab.h>
49 #include <sys/metaslab_impl.h>
50 #include <sys/uberblock_impl.h>
51 #include <sys/txg.h>
52 #include <sys/avl.h>
53 #include <sys/dmu_traverse.h>
54 #include <sys/dmu_objset.h>
55 #include <sys/unique.h>
56 #include <sys/dsl_pool.h>
57 #include <sys/dsl_dataset.h>
58 #include <sys/dsl_dir.h>
59 #include <sys/dsl_prop.h>
60 #include <sys/dsl_synctask.h>
61 #include <sys/fs/zfs.h>
62 #include <sys/arc.h>
63 #include <sys/callb.h>
64 #include <sys/spa_boot.h>
65 #include <sys/zfs_ioctl.h>
66 #include <sys/dsl_scan.h>
67 #include <sys/dmu_send.h>
68 #include <sys/dsl_destroy.h>
69 #include <sys/dsl_userhold.h>
70 #include <sys/zfeature.h>
71 #include <sys/zvol.h>
72 #include <sys/trim_map.h>
73
74 #ifdef _KERNEL
75 #include <sys/callb.h>
76 #include <sys/cpupart.h>
77 #include <sys/zone.h>
78 #endif /* _KERNEL */
79
80 #include "zfs_prop.h"
81 #include "zfs_comutil.h"
82
83 /* Check hostid on import? */
84 static int check_hostid = 1;
85
86 SYSCTL_DECL(_vfs_zfs);
87 TUNABLE_INT("vfs.zfs.check_hostid", &check_hostid);
88 SYSCTL_INT(_vfs_zfs, OID_AUTO, check_hostid, CTLFLAG_RW, &check_hostid, 0,
89 "Check hostid on import?");
90
91 /*
92 * The interval, in seconds, at which failed configuration cache file writes
93 * should be retried.
94 */
95 static int zfs_ccw_retry_interval = 300;
96
97 TUNABLE_INT("vfs.zfs.ccw_retry_interval", &zfs_ccw_retry_interval);
98 SYSCTL_INT(_vfs_zfs, OID_AUTO, ccw_retry_interval, CTLFLAG_RW,
99 &zfs_ccw_retry_interval, 0,
100 "Configuration cache file write, retry after failure, interval (seconds)");
101
102 typedef enum zti_modes {
103 ZTI_MODE_FIXED, /* value is # of threads (min 1) */
104 ZTI_MODE_BATCH, /* cpu-intensive; value is ignored */
105 ZTI_MODE_NULL, /* don't create a taskq */
106 ZTI_NMODES
107 } zti_modes_t;
108
109 #define ZTI_P(n, q) { ZTI_MODE_FIXED, (n), (q) }
110 #define ZTI_BATCH { ZTI_MODE_BATCH, 0, 1 }
111 #define ZTI_NULL { ZTI_MODE_NULL, 0, 0 }
112
113 #define ZTI_N(n) ZTI_P(n, 1)
114 #define ZTI_ONE ZTI_N(1)
115
116 typedef struct zio_taskq_info {
117 zti_modes_t zti_mode;
118 uint_t zti_value;
119 uint_t zti_count;
120 } zio_taskq_info_t;
121
122 static const char *const zio_taskq_types[ZIO_TASKQ_TYPES] = {
123 "issue", "issue_high", "intr", "intr_high"
124 };
125
126 /*
127 * This table defines the taskq settings for each ZFS I/O type. When
128 * initializing a pool, we use this table to create an appropriately sized
129 * taskq. Some operations are low volume and therefore have a small, static
130 * number of threads assigned to their taskqs using the ZTI_N(#) or ZTI_ONE
131 * macros. Other operations process a large amount of data; the ZTI_BATCH
132 * macro causes us to create a taskq oriented for throughput. Some operations
133 * are so high frequency and short-lived that the taskq itself can become a a
134 * point of lock contention. The ZTI_P(#, #) macro indicates that we need an
135 * additional degree of parallelism specified by the number of threads per-
136 * taskq and the number of taskqs; when dispatching an event in this case, the
137 * particular taskq is chosen at random.
138 *
139 * The different taskq priorities are to handle the different contexts (issue
140 * and interrupt) and then to reserve threads for ZIO_PRIORITY_NOW I/Os that
141 * need to be handled with minimum delay.
142 */
143 const zio_taskq_info_t zio_taskqs[ZIO_TYPES][ZIO_TASKQ_TYPES] = {
144 /* ISSUE ISSUE_HIGH INTR INTR_HIGH */
145 { ZTI_ONE, ZTI_NULL, ZTI_ONE, ZTI_NULL }, /* NULL */
146 { ZTI_N(8), ZTI_NULL, ZTI_P(12, 8), ZTI_NULL }, /* READ */
147 { ZTI_BATCH, ZTI_N(5), ZTI_N(8), ZTI_N(5) }, /* WRITE */
148 { ZTI_P(12, 8), ZTI_NULL, ZTI_ONE, ZTI_NULL }, /* FREE */
149 { ZTI_ONE, ZTI_NULL, ZTI_ONE, ZTI_NULL }, /* CLAIM */
150 { ZTI_ONE, ZTI_NULL, ZTI_ONE, ZTI_NULL }, /* IOCTL */
151 };
152
153 static void spa_sync_version(void *arg, dmu_tx_t *tx);
154 static void spa_sync_props(void *arg, dmu_tx_t *tx);
155 static boolean_t spa_has_active_shared_spare(spa_t *spa);
156 static int spa_load_impl(spa_t *spa, uint64_t, nvlist_t *config,
157 spa_load_state_t state, spa_import_type_t type, boolean_t mosconfig,
158 char **ereport);
159 static void spa_vdev_resilver_done(spa_t *spa);
160
161 uint_t zio_taskq_batch_pct = 75; /* 1 thread per cpu in pset */
162 #ifdef PSRSET_BIND
163 id_t zio_taskq_psrset_bind = PS_NONE;
164 #endif
165 #ifdef SYSDC
166 boolean_t zio_taskq_sysdc = B_TRUE; /* use SDC scheduling class */
167 #endif
168 uint_t zio_taskq_basedc = 80; /* base duty cycle */
169
170 boolean_t spa_create_process = B_TRUE; /* no process ==> no sysdc */
171 extern int zfs_sync_pass_deferred_free;
172
173 #ifndef illumos
174 extern void spa_deadman(void *arg);
175 #endif
176
177 /*
178 * This (illegal) pool name is used when temporarily importing a spa_t in order
179 * to get the vdev stats associated with the imported devices.
180 */
181 #define TRYIMPORT_NAME "$import"
182
183 /*
184 * ==========================================================================
185 * SPA properties routines
186 * ==========================================================================
187 */
188
189 /*
190 * Add a (source=src, propname=propval) list to an nvlist.
191 */
192 static void
spa_prop_add_list(nvlist_t * nvl,zpool_prop_t prop,char * strval,uint64_t intval,zprop_source_t src)193 spa_prop_add_list(nvlist_t *nvl, zpool_prop_t prop, char *strval,
194 uint64_t intval, zprop_source_t src)
195 {
196 const char *propname = zpool_prop_to_name(prop);
197 nvlist_t *propval;
198
199 VERIFY(nvlist_alloc(&propval, NV_UNIQUE_NAME, KM_SLEEP) == 0);
200 VERIFY(nvlist_add_uint64(propval, ZPROP_SOURCE, src) == 0);
201
202 if (strval != NULL)
203 VERIFY(nvlist_add_string(propval, ZPROP_VALUE, strval) == 0);
204 else
205 VERIFY(nvlist_add_uint64(propval, ZPROP_VALUE, intval) == 0);
206
207 VERIFY(nvlist_add_nvlist(nvl, propname, propval) == 0);
208 nvlist_free(propval);
209 }
210
211 /*
212 * Get property values from the spa configuration.
213 */
214 static void
spa_prop_get_config(spa_t * spa,nvlist_t ** nvp)215 spa_prop_get_config(spa_t *spa, nvlist_t **nvp)
216 {
217 vdev_t *rvd = spa->spa_root_vdev;
218 dsl_pool_t *pool = spa->spa_dsl_pool;
219 uint64_t size, alloc, cap, version;
220 zprop_source_t src = ZPROP_SRC_NONE;
221 spa_config_dirent_t *dp;
222 metaslab_class_t *mc = spa_normal_class(spa);
223
224 ASSERT(MUTEX_HELD(&spa->spa_props_lock));
225
226 if (rvd != NULL) {
227 alloc = metaslab_class_get_alloc(spa_normal_class(spa));
228 size = metaslab_class_get_space(spa_normal_class(spa));
229 spa_prop_add_list(*nvp, ZPOOL_PROP_NAME, spa_name(spa), 0, src);
230 spa_prop_add_list(*nvp, ZPOOL_PROP_SIZE, NULL, size, src);
231 spa_prop_add_list(*nvp, ZPOOL_PROP_ALLOCATED, NULL, alloc, src);
232 spa_prop_add_list(*nvp, ZPOOL_PROP_FREE, NULL,
233 size - alloc, src);
234
235 spa_prop_add_list(*nvp, ZPOOL_PROP_FRAGMENTATION, NULL,
236 metaslab_class_fragmentation(mc), src);
237 spa_prop_add_list(*nvp, ZPOOL_PROP_EXPANDSZ, NULL,
238 metaslab_class_expandable_space(mc), src);
239 spa_prop_add_list(*nvp, ZPOOL_PROP_READONLY, NULL,
240 (spa_mode(spa) == FREAD), src);
241
242 cap = (size == 0) ? 0 : (alloc * 100 / size);
243 spa_prop_add_list(*nvp, ZPOOL_PROP_CAPACITY, NULL, cap, src);
244
245 spa_prop_add_list(*nvp, ZPOOL_PROP_DEDUPRATIO, NULL,
246 ddt_get_pool_dedup_ratio(spa), src);
247
248 spa_prop_add_list(*nvp, ZPOOL_PROP_HEALTH, NULL,
249 rvd->vdev_state, src);
250
251 version = spa_version(spa);
252 if (version == zpool_prop_default_numeric(ZPOOL_PROP_VERSION))
253 src = ZPROP_SRC_DEFAULT;
254 else
255 src = ZPROP_SRC_LOCAL;
256 spa_prop_add_list(*nvp, ZPOOL_PROP_VERSION, NULL, version, src);
257 }
258
259 if (pool != NULL) {
260 /*
261 * The $FREE directory was introduced in SPA_VERSION_DEADLISTS,
262 * when opening pools before this version freedir will be NULL.
263 */
264 if (pool->dp_free_dir != NULL) {
265 spa_prop_add_list(*nvp, ZPOOL_PROP_FREEING, NULL,
266 dsl_dir_phys(pool->dp_free_dir)->dd_used_bytes,
267 src);
268 } else {
269 spa_prop_add_list(*nvp, ZPOOL_PROP_FREEING,
270 NULL, 0, src);
271 }
272
273 if (pool->dp_leak_dir != NULL) {
274 spa_prop_add_list(*nvp, ZPOOL_PROP_LEAKED, NULL,
275 dsl_dir_phys(pool->dp_leak_dir)->dd_used_bytes,
276 src);
277 } else {
278 spa_prop_add_list(*nvp, ZPOOL_PROP_LEAKED,
279 NULL, 0, src);
280 }
281 }
282
283 spa_prop_add_list(*nvp, ZPOOL_PROP_GUID, NULL, spa_guid(spa), src);
284
285 if (spa->spa_comment != NULL) {
286 spa_prop_add_list(*nvp, ZPOOL_PROP_COMMENT, spa->spa_comment,
287 0, ZPROP_SRC_LOCAL);
288 }
289
290 if (spa->spa_root != NULL)
291 spa_prop_add_list(*nvp, ZPOOL_PROP_ALTROOT, spa->spa_root,
292 0, ZPROP_SRC_LOCAL);
293
294 if (spa_feature_is_enabled(spa, SPA_FEATURE_LARGE_BLOCKS)) {
295 spa_prop_add_list(*nvp, ZPOOL_PROP_MAXBLOCKSIZE, NULL,
296 MIN(zfs_max_recordsize, SPA_MAXBLOCKSIZE), ZPROP_SRC_NONE);
297 } else {
298 spa_prop_add_list(*nvp, ZPOOL_PROP_MAXBLOCKSIZE, NULL,
299 SPA_OLD_MAXBLOCKSIZE, ZPROP_SRC_NONE);
300 }
301
302 if ((dp = list_head(&spa->spa_config_list)) != NULL) {
303 if (dp->scd_path == NULL) {
304 spa_prop_add_list(*nvp, ZPOOL_PROP_CACHEFILE,
305 "none", 0, ZPROP_SRC_LOCAL);
306 } else if (strcmp(dp->scd_path, spa_config_path) != 0) {
307 spa_prop_add_list(*nvp, ZPOOL_PROP_CACHEFILE,
308 dp->scd_path, 0, ZPROP_SRC_LOCAL);
309 }
310 }
311 }
312
313 /*
314 * Get zpool property values.
315 */
316 int
spa_prop_get(spa_t * spa,nvlist_t ** nvp)317 spa_prop_get(spa_t *spa, nvlist_t **nvp)
318 {
319 objset_t *mos = spa->spa_meta_objset;
320 zap_cursor_t zc;
321 zap_attribute_t za;
322 int err;
323
324 VERIFY(nvlist_alloc(nvp, NV_UNIQUE_NAME, KM_SLEEP) == 0);
325
326 mutex_enter(&spa->spa_props_lock);
327
328 /*
329 * Get properties from the spa config.
330 */
331 spa_prop_get_config(spa, nvp);
332
333 /* If no pool property object, no more prop to get. */
334 if (mos == NULL || spa->spa_pool_props_object == 0) {
335 mutex_exit(&spa->spa_props_lock);
336 return (0);
337 }
338
339 /*
340 * Get properties from the MOS pool property object.
341 */
342 for (zap_cursor_init(&zc, mos, spa->spa_pool_props_object);
343 (err = zap_cursor_retrieve(&zc, &za)) == 0;
344 zap_cursor_advance(&zc)) {
345 uint64_t intval = 0;
346 char *strval = NULL;
347 zprop_source_t src = ZPROP_SRC_DEFAULT;
348 zpool_prop_t prop;
349
350 if ((prop = zpool_name_to_prop(za.za_name)) == ZPROP_INVAL)
351 continue;
352
353 switch (za.za_integer_length) {
354 case 8:
355 /* integer property */
356 if (za.za_first_integer !=
357 zpool_prop_default_numeric(prop))
358 src = ZPROP_SRC_LOCAL;
359
360 if (prop == ZPOOL_PROP_BOOTFS) {
361 dsl_pool_t *dp;
362 dsl_dataset_t *ds = NULL;
363
364 dp = spa_get_dsl(spa);
365 dsl_pool_config_enter(dp, FTAG);
366 if (err = dsl_dataset_hold_obj(dp,
367 za.za_first_integer, FTAG, &ds)) {
368 dsl_pool_config_exit(dp, FTAG);
369 break;
370 }
371
372 strval = kmem_alloc(
373 MAXNAMELEN + strlen(MOS_DIR_NAME) + 1,
374 KM_SLEEP);
375 dsl_dataset_name(ds, strval);
376 dsl_dataset_rele(ds, FTAG);
377 dsl_pool_config_exit(dp, FTAG);
378 } else {
379 strval = NULL;
380 intval = za.za_first_integer;
381 }
382
383 spa_prop_add_list(*nvp, prop, strval, intval, src);
384
385 if (strval != NULL)
386 kmem_free(strval,
387 MAXNAMELEN + strlen(MOS_DIR_NAME) + 1);
388
389 break;
390
391 case 1:
392 /* string property */
393 strval = kmem_alloc(za.za_num_integers, KM_SLEEP);
394 err = zap_lookup(mos, spa->spa_pool_props_object,
395 za.za_name, 1, za.za_num_integers, strval);
396 if (err) {
397 kmem_free(strval, za.za_num_integers);
398 break;
399 }
400 spa_prop_add_list(*nvp, prop, strval, 0, src);
401 kmem_free(strval, za.za_num_integers);
402 break;
403
404 default:
405 break;
406 }
407 }
408 zap_cursor_fini(&zc);
409 mutex_exit(&spa->spa_props_lock);
410 out:
411 if (err && err != ENOENT) {
412 nvlist_free(*nvp);
413 *nvp = NULL;
414 return (err);
415 }
416
417 return (0);
418 }
419
420 /*
421 * Validate the given pool properties nvlist and modify the list
422 * for the property values to be set.
423 */
424 static int
spa_prop_validate(spa_t * spa,nvlist_t * props)425 spa_prop_validate(spa_t *spa, nvlist_t *props)
426 {
427 nvpair_t *elem;
428 int error = 0, reset_bootfs = 0;
429 uint64_t objnum = 0;
430 boolean_t has_feature = B_FALSE;
431
432 elem = NULL;
433 while ((elem = nvlist_next_nvpair(props, elem)) != NULL) {
434 uint64_t intval;
435 char *strval, *slash, *check, *fname;
436 const char *propname = nvpair_name(elem);
437 zpool_prop_t prop = zpool_name_to_prop(propname);
438
439 switch (prop) {
440 case ZPROP_INVAL:
441 if (!zpool_prop_feature(propname)) {
442 error = SET_ERROR(EINVAL);
443 break;
444 }
445
446 /*
447 * Sanitize the input.
448 */
449 if (nvpair_type(elem) != DATA_TYPE_UINT64) {
450 error = SET_ERROR(EINVAL);
451 break;
452 }
453
454 if (nvpair_value_uint64(elem, &intval) != 0) {
455 error = SET_ERROR(EINVAL);
456 break;
457 }
458
459 if (intval != 0) {
460 error = SET_ERROR(EINVAL);
461 break;
462 }
463
464 fname = strchr(propname, '@') + 1;
465 if (zfeature_lookup_name(fname, NULL) != 0) {
466 error = SET_ERROR(EINVAL);
467 break;
468 }
469
470 has_feature = B_TRUE;
471 break;
472
473 case ZPOOL_PROP_VERSION:
474 error = nvpair_value_uint64(elem, &intval);
475 if (!error &&
476 (intval < spa_version(spa) ||
477 intval > SPA_VERSION_BEFORE_FEATURES ||
478 has_feature))
479 error = SET_ERROR(EINVAL);
480 break;
481
482 case ZPOOL_PROP_DELEGATION:
483 case ZPOOL_PROP_AUTOREPLACE:
484 case ZPOOL_PROP_LISTSNAPS:
485 case ZPOOL_PROP_AUTOEXPAND:
486 error = nvpair_value_uint64(elem, &intval);
487 if (!error && intval > 1)
488 error = SET_ERROR(EINVAL);
489 break;
490
491 case ZPOOL_PROP_BOOTFS:
492 /*
493 * If the pool version is less than SPA_VERSION_BOOTFS,
494 * or the pool is still being created (version == 0),
495 * the bootfs property cannot be set.
496 */
497 if (spa_version(spa) < SPA_VERSION_BOOTFS) {
498 error = SET_ERROR(ENOTSUP);
499 break;
500 }
501
502 /*
503 * Make sure the vdev config is bootable
504 */
505 if (!vdev_is_bootable(spa->spa_root_vdev)) {
506 error = SET_ERROR(ENOTSUP);
507 break;
508 }
509
510 reset_bootfs = 1;
511
512 error = nvpair_value_string(elem, &strval);
513
514 if (!error) {
515 objset_t *os;
516 uint64_t propval;
517
518 if (strval == NULL || strval[0] == '\0') {
519 objnum = zpool_prop_default_numeric(
520 ZPOOL_PROP_BOOTFS);
521 break;
522 }
523
524 if (error = dmu_objset_hold(strval, FTAG, &os))
525 break;
526
527 /*
528 * Must be ZPL, and its property settings
529 * must be supported by GRUB (compression
530 * is not gzip, and large blocks are not used).
531 */
532
533 if (dmu_objset_type(os) != DMU_OST_ZFS) {
534 error = SET_ERROR(ENOTSUP);
535 } else if ((error =
536 dsl_prop_get_int_ds(dmu_objset_ds(os),
537 zfs_prop_to_name(ZFS_PROP_COMPRESSION),
538 &propval)) == 0 &&
539 !BOOTFS_COMPRESS_VALID(propval)) {
540 error = SET_ERROR(ENOTSUP);
541 } else if ((error =
542 dsl_prop_get_int_ds(dmu_objset_ds(os),
543 zfs_prop_to_name(ZFS_PROP_RECORDSIZE),
544 &propval)) == 0 &&
545 propval > SPA_OLD_MAXBLOCKSIZE) {
546 error = SET_ERROR(ENOTSUP);
547 } else {
548 objnum = dmu_objset_id(os);
549 }
550 dmu_objset_rele(os, FTAG);
551 }
552 break;
553
554 case ZPOOL_PROP_FAILUREMODE:
555 error = nvpair_value_uint64(elem, &intval);
556 if (!error && (intval < ZIO_FAILURE_MODE_WAIT ||
557 intval > ZIO_FAILURE_MODE_PANIC))
558 error = SET_ERROR(EINVAL);
559
560 /*
561 * This is a special case which only occurs when
562 * the pool has completely failed. This allows
563 * the user to change the in-core failmode property
564 * without syncing it out to disk (I/Os might
565 * currently be blocked). We do this by returning
566 * EIO to the caller (spa_prop_set) to trick it
567 * into thinking we encountered a property validation
568 * error.
569 */
570 if (!error && spa_suspended(spa)) {
571 spa->spa_failmode = intval;
572 error = SET_ERROR(EIO);
573 }
574 break;
575
576 case ZPOOL_PROP_CACHEFILE:
577 if ((error = nvpair_value_string(elem, &strval)) != 0)
578 break;
579
580 if (strval[0] == '\0')
581 break;
582
583 if (strcmp(strval, "none") == 0)
584 break;
585
586 if (strval[0] != '/') {
587 error = SET_ERROR(EINVAL);
588 break;
589 }
590
591 slash = strrchr(strval, '/');
592 ASSERT(slash != NULL);
593
594 if (slash[1] == '\0' || strcmp(slash, "/.") == 0 ||
595 strcmp(slash, "/..") == 0)
596 error = SET_ERROR(EINVAL);
597 break;
598
599 case ZPOOL_PROP_COMMENT:
600 if ((error = nvpair_value_string(elem, &strval)) != 0)
601 break;
602 for (check = strval; *check != '\0'; check++) {
603 /*
604 * The kernel doesn't have an easy isprint()
605 * check. For this kernel check, we merely
606 * check ASCII apart from DEL. Fix this if
607 * there is an easy-to-use kernel isprint().
608 */
609 if (*check >= 0x7f) {
610 error = SET_ERROR(EINVAL);
611 break;
612 }
613 check++;
614 }
615 if (strlen(strval) > ZPROP_MAX_COMMENT)
616 error = E2BIG;
617 break;
618
619 case ZPOOL_PROP_DEDUPDITTO:
620 if (spa_version(spa) < SPA_VERSION_DEDUP)
621 error = SET_ERROR(ENOTSUP);
622 else
623 error = nvpair_value_uint64(elem, &intval);
624 if (error == 0 &&
625 intval != 0 && intval < ZIO_DEDUPDITTO_MIN)
626 error = SET_ERROR(EINVAL);
627 break;
628 }
629
630 if (error)
631 break;
632 }
633
634 if (!error && reset_bootfs) {
635 error = nvlist_remove(props,
636 zpool_prop_to_name(ZPOOL_PROP_BOOTFS), DATA_TYPE_STRING);
637
638 if (!error) {
639 error = nvlist_add_uint64(props,
640 zpool_prop_to_name(ZPOOL_PROP_BOOTFS), objnum);
641 }
642 }
643
644 return (error);
645 }
646
647 void
spa_configfile_set(spa_t * spa,nvlist_t * nvp,boolean_t need_sync)648 spa_configfile_set(spa_t *spa, nvlist_t *nvp, boolean_t need_sync)
649 {
650 char *cachefile;
651 spa_config_dirent_t *dp;
652
653 if (nvlist_lookup_string(nvp, zpool_prop_to_name(ZPOOL_PROP_CACHEFILE),
654 &cachefile) != 0)
655 return;
656
657 dp = kmem_alloc(sizeof (spa_config_dirent_t),
658 KM_SLEEP);
659
660 if (cachefile[0] == '\0')
661 dp->scd_path = spa_strdup(spa_config_path);
662 else if (strcmp(cachefile, "none") == 0)
663 dp->scd_path = NULL;
664 else
665 dp->scd_path = spa_strdup(cachefile);
666
667 list_insert_head(&spa->spa_config_list, dp);
668 if (need_sync)
669 spa_async_request(spa, SPA_ASYNC_CONFIG_UPDATE);
670 }
671
672 int
spa_prop_set(spa_t * spa,nvlist_t * nvp)673 spa_prop_set(spa_t *spa, nvlist_t *nvp)
674 {
675 int error;
676 nvpair_t *elem = NULL;
677 boolean_t need_sync = B_FALSE;
678
679 if ((error = spa_prop_validate(spa, nvp)) != 0)
680 return (error);
681
682 while ((elem = nvlist_next_nvpair(nvp, elem)) != NULL) {
683 zpool_prop_t prop = zpool_name_to_prop(nvpair_name(elem));
684
685 if (prop == ZPOOL_PROP_CACHEFILE ||
686 prop == ZPOOL_PROP_ALTROOT ||
687 prop == ZPOOL_PROP_READONLY)
688 continue;
689
690 if (prop == ZPOOL_PROP_VERSION || prop == ZPROP_INVAL) {
691 uint64_t ver;
692
693 if (prop == ZPOOL_PROP_VERSION) {
694 VERIFY(nvpair_value_uint64(elem, &ver) == 0);
695 } else {
696 ASSERT(zpool_prop_feature(nvpair_name(elem)));
697 ver = SPA_VERSION_FEATURES;
698 need_sync = B_TRUE;
699 }
700
701 /* Save time if the version is already set. */
702 if (ver == spa_version(spa))
703 continue;
704
705 /*
706 * In addition to the pool directory object, we might
707 * create the pool properties object, the features for
708 * read object, the features for write object, or the
709 * feature descriptions object.
710 */
711 error = dsl_sync_task(spa->spa_name, NULL,
712 spa_sync_version, &ver,
713 6, ZFS_SPACE_CHECK_RESERVED);
714 if (error)
715 return (error);
716 continue;
717 }
718
719 need_sync = B_TRUE;
720 break;
721 }
722
723 if (need_sync) {
724 return (dsl_sync_task(spa->spa_name, NULL, spa_sync_props,
725 nvp, 6, ZFS_SPACE_CHECK_RESERVED));
726 }
727
728 return (0);
729 }
730
731 /*
732 * If the bootfs property value is dsobj, clear it.
733 */
734 void
spa_prop_clear_bootfs(spa_t * spa,uint64_t dsobj,dmu_tx_t * tx)735 spa_prop_clear_bootfs(spa_t *spa, uint64_t dsobj, dmu_tx_t *tx)
736 {
737 if (spa->spa_bootfs == dsobj && spa->spa_pool_props_object != 0) {
738 VERIFY(zap_remove(spa->spa_meta_objset,
739 spa->spa_pool_props_object,
740 zpool_prop_to_name(ZPOOL_PROP_BOOTFS), tx) == 0);
741 spa->spa_bootfs = 0;
742 }
743 }
744
745 /*ARGSUSED*/
746 static int
spa_change_guid_check(void * arg,dmu_tx_t * tx)747 spa_change_guid_check(void *arg, dmu_tx_t *tx)
748 {
749 uint64_t *newguid = arg;
750 spa_t *spa = dmu_tx_pool(tx)->dp_spa;
751 vdev_t *rvd = spa->spa_root_vdev;
752 uint64_t vdev_state;
753
754 spa_config_enter(spa, SCL_STATE, FTAG, RW_READER);
755 vdev_state = rvd->vdev_state;
756 spa_config_exit(spa, SCL_STATE, FTAG);
757
758 if (vdev_state != VDEV_STATE_HEALTHY)
759 return (SET_ERROR(ENXIO));
760
761 ASSERT3U(spa_guid(spa), !=, *newguid);
762
763 return (0);
764 }
765
766 static void
spa_change_guid_sync(void * arg,dmu_tx_t * tx)767 spa_change_guid_sync(void *arg, dmu_tx_t *tx)
768 {
769 uint64_t *newguid = arg;
770 spa_t *spa = dmu_tx_pool(tx)->dp_spa;
771 uint64_t oldguid;
772 vdev_t *rvd = spa->spa_root_vdev;
773
774 oldguid = spa_guid(spa);
775
776 spa_config_enter(spa, SCL_STATE, FTAG, RW_READER);
777 rvd->vdev_guid = *newguid;
778 rvd->vdev_guid_sum += (*newguid - oldguid);
779 vdev_config_dirty(rvd);
780 spa_config_exit(spa, SCL_STATE, FTAG);
781
782 spa_history_log_internal(spa, "guid change", tx, "old=%llu new=%llu",
783 oldguid, *newguid);
784 }
785
786 /*
787 * Change the GUID for the pool. This is done so that we can later
788 * re-import a pool built from a clone of our own vdevs. We will modify
789 * the root vdev's guid, our own pool guid, and then mark all of our
790 * vdevs dirty. Note that we must make sure that all our vdevs are
791 * online when we do this, or else any vdevs that weren't present
792 * would be orphaned from our pool. We are also going to issue a
793 * sysevent to update any watchers.
794 */
795 int
spa_change_guid(spa_t * spa)796 spa_change_guid(spa_t *spa)
797 {
798 int error;
799 uint64_t guid;
800
801 mutex_enter(&spa->spa_vdev_top_lock);
802 mutex_enter(&spa_namespace_lock);
803 guid = spa_generate_guid(NULL);
804
805 error = dsl_sync_task(spa->spa_name, spa_change_guid_check,
806 spa_change_guid_sync, &guid, 5, ZFS_SPACE_CHECK_RESERVED);
807
808 if (error == 0) {
809 spa_config_sync(spa, B_FALSE, B_TRUE);
810 spa_event_notify(spa, NULL, ESC_ZFS_POOL_REGUID);
811 }
812
813 mutex_exit(&spa_namespace_lock);
814 mutex_exit(&spa->spa_vdev_top_lock);
815
816 return (error);
817 }
818
819 /*
820 * ==========================================================================
821 * SPA state manipulation (open/create/destroy/import/export)
822 * ==========================================================================
823 */
824
825 static int
spa_error_entry_compare(const void * a,const void * b)826 spa_error_entry_compare(const void *a, const void *b)
827 {
828 spa_error_entry_t *sa = (spa_error_entry_t *)a;
829 spa_error_entry_t *sb = (spa_error_entry_t *)b;
830 int ret;
831
832 ret = bcmp(&sa->se_bookmark, &sb->se_bookmark,
833 sizeof (zbookmark_phys_t));
834
835 if (ret < 0)
836 return (-1);
837 else if (ret > 0)
838 return (1);
839 else
840 return (0);
841 }
842
843 /*
844 * Utility function which retrieves copies of the current logs and
845 * re-initializes them in the process.
846 */
847 void
spa_get_errlists(spa_t * spa,avl_tree_t * last,avl_tree_t * scrub)848 spa_get_errlists(spa_t *spa, avl_tree_t *last, avl_tree_t *scrub)
849 {
850 ASSERT(MUTEX_HELD(&spa->spa_errlist_lock));
851
852 bcopy(&spa->spa_errlist_last, last, sizeof (avl_tree_t));
853 bcopy(&spa->spa_errlist_scrub, scrub, sizeof (avl_tree_t));
854
855 avl_create(&spa->spa_errlist_scrub,
856 spa_error_entry_compare, sizeof (spa_error_entry_t),
857 offsetof(spa_error_entry_t, se_avl));
858 avl_create(&spa->spa_errlist_last,
859 spa_error_entry_compare, sizeof (spa_error_entry_t),
860 offsetof(spa_error_entry_t, se_avl));
861 }
862
863 static void
spa_taskqs_init(spa_t * spa,zio_type_t t,zio_taskq_type_t q)864 spa_taskqs_init(spa_t *spa, zio_type_t t, zio_taskq_type_t q)
865 {
866 const zio_taskq_info_t *ztip = &zio_taskqs[t][q];
867 enum zti_modes mode = ztip->zti_mode;
868 uint_t value = ztip->zti_value;
869 uint_t count = ztip->zti_count;
870 spa_taskqs_t *tqs = &spa->spa_zio_taskq[t][q];
871 char name[32];
872 uint_t flags = 0;
873 boolean_t batch = B_FALSE;
874
875 if (mode == ZTI_MODE_NULL) {
876 tqs->stqs_count = 0;
877 tqs->stqs_taskq = NULL;
878 return;
879 }
880
881 ASSERT3U(count, >, 0);
882
883 tqs->stqs_count = count;
884 tqs->stqs_taskq = kmem_alloc(count * sizeof (taskq_t *), KM_SLEEP);
885
886 switch (mode) {
887 case ZTI_MODE_FIXED:
888 ASSERT3U(value, >=, 1);
889 value = MAX(value, 1);
890 break;
891
892 case ZTI_MODE_BATCH:
893 batch = B_TRUE;
894 flags |= TASKQ_THREADS_CPU_PCT;
895 value = zio_taskq_batch_pct;
896 break;
897
898 default:
899 panic("unrecognized mode for %s_%s taskq (%u:%u) in "
900 "spa_activate()",
901 zio_type_name[t], zio_taskq_types[q], mode, value);
902 break;
903 }
904
905 for (uint_t i = 0; i < count; i++) {
906 taskq_t *tq;
907
908 if (count > 1) {
909 (void) snprintf(name, sizeof (name), "%s_%s_%u",
910 zio_type_name[t], zio_taskq_types[q], i);
911 } else {
912 (void) snprintf(name, sizeof (name), "%s_%s",
913 zio_type_name[t], zio_taskq_types[q]);
914 }
915
916 #ifdef SYSDC
917 if (zio_taskq_sysdc && spa->spa_proc != &p0) {
918 if (batch)
919 flags |= TASKQ_DC_BATCH;
920
921 tq = taskq_create_sysdc(name, value, 50, INT_MAX,
922 spa->spa_proc, zio_taskq_basedc, flags);
923 } else {
924 #endif
925 pri_t pri = maxclsyspri;
926 /*
927 * The write issue taskq can be extremely CPU
928 * intensive. Run it at slightly lower priority
929 * than the other taskqs.
930 */
931 if (t == ZIO_TYPE_WRITE && q == ZIO_TASKQ_ISSUE)
932 pri--;
933
934 tq = taskq_create_proc(name, value, pri, 50,
935 INT_MAX, spa->spa_proc, flags);
936 #ifdef SYSDC
937 }
938 #endif
939
940 tqs->stqs_taskq[i] = tq;
941 }
942 }
943
944 static void
spa_taskqs_fini(spa_t * spa,zio_type_t t,zio_taskq_type_t q)945 spa_taskqs_fini(spa_t *spa, zio_type_t t, zio_taskq_type_t q)
946 {
947 spa_taskqs_t *tqs = &spa->spa_zio_taskq[t][q];
948
949 if (tqs->stqs_taskq == NULL) {
950 ASSERT0(tqs->stqs_count);
951 return;
952 }
953
954 for (uint_t i = 0; i < tqs->stqs_count; i++) {
955 ASSERT3P(tqs->stqs_taskq[i], !=, NULL);
956 taskq_destroy(tqs->stqs_taskq[i]);
957 }
958
959 kmem_free(tqs->stqs_taskq, tqs->stqs_count * sizeof (taskq_t *));
960 tqs->stqs_taskq = NULL;
961 }
962
963 /*
964 * Dispatch a task to the appropriate taskq for the ZFS I/O type and priority.
965 * Note that a type may have multiple discrete taskqs to avoid lock contention
966 * on the taskq itself. In that case we choose which taskq at random by using
967 * the low bits of gethrtime().
968 */
969 void
spa_taskq_dispatch_ent(spa_t * spa,zio_type_t t,zio_taskq_type_t q,task_func_t * func,void * arg,uint_t flags,taskq_ent_t * ent)970 spa_taskq_dispatch_ent(spa_t *spa, zio_type_t t, zio_taskq_type_t q,
971 task_func_t *func, void *arg, uint_t flags, taskq_ent_t *ent)
972 {
973 spa_taskqs_t *tqs = &spa->spa_zio_taskq[t][q];
974 taskq_t *tq;
975
976 ASSERT3P(tqs->stqs_taskq, !=, NULL);
977 ASSERT3U(tqs->stqs_count, !=, 0);
978
979 if (tqs->stqs_count == 1) {
980 tq = tqs->stqs_taskq[0];
981 } else {
982 #ifdef _KERNEL
983 tq = tqs->stqs_taskq[cpu_ticks() % tqs->stqs_count];
984 #else
985 tq = tqs->stqs_taskq[gethrtime() % tqs->stqs_count];
986 #endif
987 }
988
989 taskq_dispatch_ent(tq, func, arg, flags, ent);
990 }
991
992 static void
spa_create_zio_taskqs(spa_t * spa)993 spa_create_zio_taskqs(spa_t *spa)
994 {
995 for (int t = 0; t < ZIO_TYPES; t++) {
996 for (int q = 0; q < ZIO_TASKQ_TYPES; q++) {
997 spa_taskqs_init(spa, t, q);
998 }
999 }
1000 }
1001
1002 #ifdef _KERNEL
1003 #ifdef SPA_PROCESS
1004 static void
spa_thread(void * arg)1005 spa_thread(void *arg)
1006 {
1007 callb_cpr_t cprinfo;
1008
1009 spa_t *spa = arg;
1010 user_t *pu = PTOU(curproc);
1011
1012 CALLB_CPR_INIT(&cprinfo, &spa->spa_proc_lock, callb_generic_cpr,
1013 spa->spa_name);
1014
1015 ASSERT(curproc != &p0);
1016 (void) snprintf(pu->u_psargs, sizeof (pu->u_psargs),
1017 "zpool-%s", spa->spa_name);
1018 (void) strlcpy(pu->u_comm, pu->u_psargs, sizeof (pu->u_comm));
1019
1020 #ifdef PSRSET_BIND
1021 /* bind this thread to the requested psrset */
1022 if (zio_taskq_psrset_bind != PS_NONE) {
1023 pool_lock();
1024 mutex_enter(&cpu_lock);
1025 mutex_enter(&pidlock);
1026 mutex_enter(&curproc->p_lock);
1027
1028 if (cpupart_bind_thread(curthread, zio_taskq_psrset_bind,
1029 0, NULL, NULL) == 0) {
1030 curthread->t_bind_pset = zio_taskq_psrset_bind;
1031 } else {
1032 cmn_err(CE_WARN,
1033 "Couldn't bind process for zfs pool \"%s\" to "
1034 "pset %d\n", spa->spa_name, zio_taskq_psrset_bind);
1035 }
1036
1037 mutex_exit(&curproc->p_lock);
1038 mutex_exit(&pidlock);
1039 mutex_exit(&cpu_lock);
1040 pool_unlock();
1041 }
1042 #endif
1043
1044 #ifdef SYSDC
1045 if (zio_taskq_sysdc) {
1046 sysdc_thread_enter(curthread, 100, 0);
1047 }
1048 #endif
1049
1050 spa->spa_proc = curproc;
1051 spa->spa_did = curthread->t_did;
1052
1053 spa_create_zio_taskqs(spa);
1054
1055 mutex_enter(&spa->spa_proc_lock);
1056 ASSERT(spa->spa_proc_state == SPA_PROC_CREATED);
1057
1058 spa->spa_proc_state = SPA_PROC_ACTIVE;
1059 cv_broadcast(&spa->spa_proc_cv);
1060
1061 CALLB_CPR_SAFE_BEGIN(&cprinfo);
1062 while (spa->spa_proc_state == SPA_PROC_ACTIVE)
1063 cv_wait(&spa->spa_proc_cv, &spa->spa_proc_lock);
1064 CALLB_CPR_SAFE_END(&cprinfo, &spa->spa_proc_lock);
1065
1066 ASSERT(spa->spa_proc_state == SPA_PROC_DEACTIVATE);
1067 spa->spa_proc_state = SPA_PROC_GONE;
1068 spa->spa_proc = &p0;
1069 cv_broadcast(&spa->spa_proc_cv);
1070 CALLB_CPR_EXIT(&cprinfo); /* drops spa_proc_lock */
1071
1072 mutex_enter(&curproc->p_lock);
1073 lwp_exit();
1074 }
1075 #endif /* SPA_PROCESS */
1076 #endif
1077
1078 /*
1079 * Activate an uninitialized pool.
1080 */
1081 static void
spa_activate(spa_t * spa,int mode)1082 spa_activate(spa_t *spa, int mode)
1083 {
1084 ASSERT(spa->spa_state == POOL_STATE_UNINITIALIZED);
1085
1086 spa->spa_state = POOL_STATE_ACTIVE;
1087 spa->spa_mode = mode;
1088
1089 spa->spa_normal_class = metaslab_class_create(spa, zfs_metaslab_ops);
1090 spa->spa_log_class = metaslab_class_create(spa, zfs_metaslab_ops);
1091
1092 /* Try to create a covering process */
1093 mutex_enter(&spa->spa_proc_lock);
1094 ASSERT(spa->spa_proc_state == SPA_PROC_NONE);
1095 ASSERT(spa->spa_proc == &p0);
1096 spa->spa_did = 0;
1097
1098 #ifdef SPA_PROCESS
1099 /* Only create a process if we're going to be around a while. */
1100 if (spa_create_process && strcmp(spa->spa_name, TRYIMPORT_NAME) != 0) {
1101 if (newproc(spa_thread, (caddr_t)spa, syscid, maxclsyspri,
1102 NULL, 0) == 0) {
1103 spa->spa_proc_state = SPA_PROC_CREATED;
1104 while (spa->spa_proc_state == SPA_PROC_CREATED) {
1105 cv_wait(&spa->spa_proc_cv,
1106 &spa->spa_proc_lock);
1107 }
1108 ASSERT(spa->spa_proc_state == SPA_PROC_ACTIVE);
1109 ASSERT(spa->spa_proc != &p0);
1110 ASSERT(spa->spa_did != 0);
1111 } else {
1112 #ifdef _KERNEL
1113 cmn_err(CE_WARN,
1114 "Couldn't create process for zfs pool \"%s\"\n",
1115 spa->spa_name);
1116 #endif
1117 }
1118 }
1119 #endif /* SPA_PROCESS */
1120 mutex_exit(&spa->spa_proc_lock);
1121
1122 /* If we didn't create a process, we need to create our taskqs. */
1123 ASSERT(spa->spa_proc == &p0);
1124 if (spa->spa_proc == &p0) {
1125 spa_create_zio_taskqs(spa);
1126 }
1127
1128 /*
1129 * Start TRIM thread.
1130 */
1131 trim_thread_create(spa);
1132
1133 list_create(&spa->spa_config_dirty_list, sizeof (vdev_t),
1134 offsetof(vdev_t, vdev_config_dirty_node));
1135 list_create(&spa->spa_state_dirty_list, sizeof (vdev_t),
1136 offsetof(vdev_t, vdev_state_dirty_node));
1137
1138 txg_list_create(&spa->spa_vdev_txg_list,
1139 offsetof(struct vdev, vdev_txg_node));
1140
1141 avl_create(&spa->spa_errlist_scrub,
1142 spa_error_entry_compare, sizeof (spa_error_entry_t),
1143 offsetof(spa_error_entry_t, se_avl));
1144 avl_create(&spa->spa_errlist_last,
1145 spa_error_entry_compare, sizeof (spa_error_entry_t),
1146 offsetof(spa_error_entry_t, se_avl));
1147 }
1148
1149 /*
1150 * Opposite of spa_activate().
1151 */
1152 static void
spa_deactivate(spa_t * spa)1153 spa_deactivate(spa_t *spa)
1154 {
1155 ASSERT(spa->spa_sync_on == B_FALSE);
1156 ASSERT(spa->spa_dsl_pool == NULL);
1157 ASSERT(spa->spa_root_vdev == NULL);
1158 ASSERT(spa->spa_async_zio_root == NULL);
1159 ASSERT(spa->spa_state != POOL_STATE_UNINITIALIZED);
1160
1161 /*
1162 * Stop TRIM thread in case spa_unload() wasn't called directly
1163 * before spa_deactivate().
1164 */
1165 trim_thread_destroy(spa);
1166
1167 txg_list_destroy(&spa->spa_vdev_txg_list);
1168
1169 list_destroy(&spa->spa_config_dirty_list);
1170 list_destroy(&spa->spa_state_dirty_list);
1171
1172 for (int t = 0; t < ZIO_TYPES; t++) {
1173 for (int q = 0; q < ZIO_TASKQ_TYPES; q++) {
1174 spa_taskqs_fini(spa, t, q);
1175 }
1176 }
1177
1178 metaslab_class_destroy(spa->spa_normal_class);
1179 spa->spa_normal_class = NULL;
1180
1181 metaslab_class_destroy(spa->spa_log_class);
1182 spa->spa_log_class = NULL;
1183
1184 /*
1185 * If this was part of an import or the open otherwise failed, we may
1186 * still have errors left in the queues. Empty them just in case.
1187 */
1188 spa_errlog_drain(spa);
1189
1190 avl_destroy(&spa->spa_errlist_scrub);
1191 avl_destroy(&spa->spa_errlist_last);
1192
1193 spa->spa_state = POOL_STATE_UNINITIALIZED;
1194
1195 mutex_enter(&spa->spa_proc_lock);
1196 if (spa->spa_proc_state != SPA_PROC_NONE) {
1197 ASSERT(spa->spa_proc_state == SPA_PROC_ACTIVE);
1198 spa->spa_proc_state = SPA_PROC_DEACTIVATE;
1199 cv_broadcast(&spa->spa_proc_cv);
1200 while (spa->spa_proc_state == SPA_PROC_DEACTIVATE) {
1201 ASSERT(spa->spa_proc != &p0);
1202 cv_wait(&spa->spa_proc_cv, &spa->spa_proc_lock);
1203 }
1204 ASSERT(spa->spa_proc_state == SPA_PROC_GONE);
1205 spa->spa_proc_state = SPA_PROC_NONE;
1206 }
1207 ASSERT(spa->spa_proc == &p0);
1208 mutex_exit(&spa->spa_proc_lock);
1209
1210 #ifdef SPA_PROCESS
1211 /*
1212 * We want to make sure spa_thread() has actually exited the ZFS
1213 * module, so that the module can't be unloaded out from underneath
1214 * it.
1215 */
1216 if (spa->spa_did != 0) {
1217 thread_join(spa->spa_did);
1218 spa->spa_did = 0;
1219 }
1220 #endif /* SPA_PROCESS */
1221 }
1222
1223 /*
1224 * Verify a pool configuration, and construct the vdev tree appropriately. This
1225 * will create all the necessary vdevs in the appropriate layout, with each vdev
1226 * in the CLOSED state. This will prep the pool before open/creation/import.
1227 * All vdev validation is done by the vdev_alloc() routine.
1228 */
1229 static int
spa_config_parse(spa_t * spa,vdev_t ** vdp,nvlist_t * nv,vdev_t * parent,uint_t id,int atype)1230 spa_config_parse(spa_t *spa, vdev_t **vdp, nvlist_t *nv, vdev_t *parent,
1231 uint_t id, int atype)
1232 {
1233 nvlist_t **child;
1234 uint_t children;
1235 int error;
1236
1237 if ((error = vdev_alloc(spa, vdp, nv, parent, id, atype)) != 0)
1238 return (error);
1239
1240 if ((*vdp)->vdev_ops->vdev_op_leaf)
1241 return (0);
1242
1243 error = nvlist_lookup_nvlist_array(nv, ZPOOL_CONFIG_CHILDREN,
1244 &child, &children);
1245
1246 if (error == ENOENT)
1247 return (0);
1248
1249 if (error) {
1250 vdev_free(*vdp);
1251 *vdp = NULL;
1252 return (SET_ERROR(EINVAL));
1253 }
1254
1255 for (int c = 0; c < children; c++) {
1256 vdev_t *vd;
1257 if ((error = spa_config_parse(spa, &vd, child[c], *vdp, c,
1258 atype)) != 0) {
1259 vdev_free(*vdp);
1260 *vdp = NULL;
1261 return (error);
1262 }
1263 }
1264
1265 ASSERT(*vdp != NULL);
1266
1267 return (0);
1268 }
1269
1270 /*
1271 * Opposite of spa_load().
1272 */
1273 static void
spa_unload(spa_t * spa)1274 spa_unload(spa_t *spa)
1275 {
1276 int i;
1277
1278 ASSERT(MUTEX_HELD(&spa_namespace_lock));
1279
1280 /*
1281 * Stop TRIM thread.
1282 */
1283 trim_thread_destroy(spa);
1284
1285 /*
1286 * Stop async tasks.
1287 */
1288 spa_async_suspend(spa);
1289
1290 /*
1291 * Stop syncing.
1292 */
1293 if (spa->spa_sync_on) {
1294 txg_sync_stop(spa->spa_dsl_pool);
1295 spa->spa_sync_on = B_FALSE;
1296 }
1297
1298 /*
1299 * Wait for any outstanding async I/O to complete.
1300 */
1301 if (spa->spa_async_zio_root != NULL) {
1302 for (int i = 0; i < max_ncpus; i++)
1303 (void) zio_wait(spa->spa_async_zio_root[i]);
1304 kmem_free(spa->spa_async_zio_root, max_ncpus * sizeof (void *));
1305 spa->spa_async_zio_root = NULL;
1306 }
1307
1308 bpobj_close(&spa->spa_deferred_bpobj);
1309
1310 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
1311
1312 /*
1313 * Close all vdevs.
1314 */
1315 if (spa->spa_root_vdev)
1316 vdev_free(spa->spa_root_vdev);
1317 ASSERT(spa->spa_root_vdev == NULL);
1318
1319 /*
1320 * Close the dsl pool.
1321 */
1322 if (spa->spa_dsl_pool) {
1323 dsl_pool_close(spa->spa_dsl_pool);
1324 spa->spa_dsl_pool = NULL;
1325 spa->spa_meta_objset = NULL;
1326 }
1327
1328 ddt_unload(spa);
1329
1330
1331 /*
1332 * Drop and purge level 2 cache
1333 */
1334 spa_l2cache_drop(spa);
1335
1336 for (i = 0; i < spa->spa_spares.sav_count; i++)
1337 vdev_free(spa->spa_spares.sav_vdevs[i]);
1338 if (spa->spa_spares.sav_vdevs) {
1339 kmem_free(spa->spa_spares.sav_vdevs,
1340 spa->spa_spares.sav_count * sizeof (void *));
1341 spa->spa_spares.sav_vdevs = NULL;
1342 }
1343 if (spa->spa_spares.sav_config) {
1344 nvlist_free(spa->spa_spares.sav_config);
1345 spa->spa_spares.sav_config = NULL;
1346 }
1347 spa->spa_spares.sav_count = 0;
1348
1349 for (i = 0; i < spa->spa_l2cache.sav_count; i++) {
1350 vdev_clear_stats(spa->spa_l2cache.sav_vdevs[i]);
1351 vdev_free(spa->spa_l2cache.sav_vdevs[i]);
1352 }
1353 if (spa->spa_l2cache.sav_vdevs) {
1354 kmem_free(spa->spa_l2cache.sav_vdevs,
1355 spa->spa_l2cache.sav_count * sizeof (void *));
1356 spa->spa_l2cache.sav_vdevs = NULL;
1357 }
1358 if (spa->spa_l2cache.sav_config) {
1359 nvlist_free(spa->spa_l2cache.sav_config);
1360 spa->spa_l2cache.sav_config = NULL;
1361 }
1362 spa->spa_l2cache.sav_count = 0;
1363
1364 spa->spa_async_suspended = 0;
1365
1366 if (spa->spa_comment != NULL) {
1367 spa_strfree(spa->spa_comment);
1368 spa->spa_comment = NULL;
1369 }
1370
1371 spa_config_exit(spa, SCL_ALL, FTAG);
1372 }
1373
1374 /*
1375 * Load (or re-load) the current list of vdevs describing the active spares for
1376 * this pool. When this is called, we have some form of basic information in
1377 * 'spa_spares.sav_config'. We parse this into vdevs, try to open them, and
1378 * then re-generate a more complete list including status information.
1379 */
1380 static void
spa_load_spares(spa_t * spa)1381 spa_load_spares(spa_t *spa)
1382 {
1383 nvlist_t **spares;
1384 uint_t nspares;
1385 int i;
1386 vdev_t *vd, *tvd;
1387
1388 ASSERT(spa_config_held(spa, SCL_ALL, RW_WRITER) == SCL_ALL);
1389
1390 /*
1391 * First, close and free any existing spare vdevs.
1392 */
1393 for (i = 0; i < spa->spa_spares.sav_count; i++) {
1394 vd = spa->spa_spares.sav_vdevs[i];
1395
1396 /* Undo the call to spa_activate() below */
1397 if ((tvd = spa_lookup_by_guid(spa, vd->vdev_guid,
1398 B_FALSE)) != NULL && tvd->vdev_isspare)
1399 spa_spare_remove(tvd);
1400 vdev_close(vd);
1401 vdev_free(vd);
1402 }
1403
1404 if (spa->spa_spares.sav_vdevs)
1405 kmem_free(spa->spa_spares.sav_vdevs,
1406 spa->spa_spares.sav_count * sizeof (void *));
1407
1408 if (spa->spa_spares.sav_config == NULL)
1409 nspares = 0;
1410 else
1411 VERIFY(nvlist_lookup_nvlist_array(spa->spa_spares.sav_config,
1412 ZPOOL_CONFIG_SPARES, &spares, &nspares) == 0);
1413
1414 spa->spa_spares.sav_count = (int)nspares;
1415 spa->spa_spares.sav_vdevs = NULL;
1416
1417 if (nspares == 0)
1418 return;
1419
1420 /*
1421 * Construct the array of vdevs, opening them to get status in the
1422 * process. For each spare, there is potentially two different vdev_t
1423 * structures associated with it: one in the list of spares (used only
1424 * for basic validation purposes) and one in the active vdev
1425 * configuration (if it's spared in). During this phase we open and
1426 * validate each vdev on the spare list. If the vdev also exists in the
1427 * active configuration, then we also mark this vdev as an active spare.
1428 */
1429 spa->spa_spares.sav_vdevs = kmem_alloc(nspares * sizeof (void *),
1430 KM_SLEEP);
1431 for (i = 0; i < spa->spa_spares.sav_count; i++) {
1432 VERIFY(spa_config_parse(spa, &vd, spares[i], NULL, 0,
1433 VDEV_ALLOC_SPARE) == 0);
1434 ASSERT(vd != NULL);
1435
1436 spa->spa_spares.sav_vdevs[i] = vd;
1437
1438 if ((tvd = spa_lookup_by_guid(spa, vd->vdev_guid,
1439 B_FALSE)) != NULL) {
1440 if (!tvd->vdev_isspare)
1441 spa_spare_add(tvd);
1442
1443 /*
1444 * We only mark the spare active if we were successfully
1445 * able to load the vdev. Otherwise, importing a pool
1446 * with a bad active spare would result in strange
1447 * behavior, because multiple pool would think the spare
1448 * is actively in use.
1449 *
1450 * There is a vulnerability here to an equally bizarre
1451 * circumstance, where a dead active spare is later
1452 * brought back to life (onlined or otherwise). Given
1453 * the rarity of this scenario, and the extra complexity
1454 * it adds, we ignore the possibility.
1455 */
1456 if (!vdev_is_dead(tvd))
1457 spa_spare_activate(tvd);
1458 }
1459
1460 vd->vdev_top = vd;
1461 vd->vdev_aux = &spa->spa_spares;
1462
1463 if (vdev_open(vd) != 0)
1464 continue;
1465
1466 if (vdev_validate_aux(vd) == 0)
1467 spa_spare_add(vd);
1468 }
1469
1470 /*
1471 * Recompute the stashed list of spares, with status information
1472 * this time.
1473 */
1474 VERIFY(nvlist_remove(spa->spa_spares.sav_config, ZPOOL_CONFIG_SPARES,
1475 DATA_TYPE_NVLIST_ARRAY) == 0);
1476
1477 spares = kmem_alloc(spa->spa_spares.sav_count * sizeof (void *),
1478 KM_SLEEP);
1479 for (i = 0; i < spa->spa_spares.sav_count; i++)
1480 spares[i] = vdev_config_generate(spa,
1481 spa->spa_spares.sav_vdevs[i], B_TRUE, VDEV_CONFIG_SPARE);
1482 VERIFY(nvlist_add_nvlist_array(spa->spa_spares.sav_config,
1483 ZPOOL_CONFIG_SPARES, spares, spa->spa_spares.sav_count) == 0);
1484 for (i = 0; i < spa->spa_spares.sav_count; i++)
1485 nvlist_free(spares[i]);
1486 kmem_free(spares, spa->spa_spares.sav_count * sizeof (void *));
1487 }
1488
1489 /*
1490 * Load (or re-load) the current list of vdevs describing the active l2cache for
1491 * this pool. When this is called, we have some form of basic information in
1492 * 'spa_l2cache.sav_config'. We parse this into vdevs, try to open them, and
1493 * then re-generate a more complete list including status information.
1494 * Devices which are already active have their details maintained, and are
1495 * not re-opened.
1496 */
1497 static void
spa_load_l2cache(spa_t * spa)1498 spa_load_l2cache(spa_t *spa)
1499 {
1500 nvlist_t **l2cache;
1501 uint_t nl2cache;
1502 int i, j, oldnvdevs;
1503 uint64_t guid;
1504 vdev_t *vd, **oldvdevs, **newvdevs;
1505 spa_aux_vdev_t *sav = &spa->spa_l2cache;
1506
1507 ASSERT(spa_config_held(spa, SCL_ALL, RW_WRITER) == SCL_ALL);
1508
1509 if (sav->sav_config != NULL) {
1510 VERIFY(nvlist_lookup_nvlist_array(sav->sav_config,
1511 ZPOOL_CONFIG_L2CACHE, &l2cache, &nl2cache) == 0);
1512 newvdevs = kmem_alloc(nl2cache * sizeof (void *), KM_SLEEP);
1513 } else {
1514 nl2cache = 0;
1515 newvdevs = NULL;
1516 }
1517
1518 oldvdevs = sav->sav_vdevs;
1519 oldnvdevs = sav->sav_count;
1520 sav->sav_vdevs = NULL;
1521 sav->sav_count = 0;
1522
1523 /*
1524 * Process new nvlist of vdevs.
1525 */
1526 for (i = 0; i < nl2cache; i++) {
1527 VERIFY(nvlist_lookup_uint64(l2cache[i], ZPOOL_CONFIG_GUID,
1528 &guid) == 0);
1529
1530 newvdevs[i] = NULL;
1531 for (j = 0; j < oldnvdevs; j++) {
1532 vd = oldvdevs[j];
1533 if (vd != NULL && guid == vd->vdev_guid) {
1534 /*
1535 * Retain previous vdev for add/remove ops.
1536 */
1537 newvdevs[i] = vd;
1538 oldvdevs[j] = NULL;
1539 break;
1540 }
1541 }
1542
1543 if (newvdevs[i] == NULL) {
1544 /*
1545 * Create new vdev
1546 */
1547 VERIFY(spa_config_parse(spa, &vd, l2cache[i], NULL, 0,
1548 VDEV_ALLOC_L2CACHE) == 0);
1549 ASSERT(vd != NULL);
1550 newvdevs[i] = vd;
1551
1552 /*
1553 * Commit this vdev as an l2cache device,
1554 * even if it fails to open.
1555 */
1556 spa_l2cache_add(vd);
1557
1558 vd->vdev_top = vd;
1559 vd->vdev_aux = sav;
1560
1561 spa_l2cache_activate(vd);
1562
1563 if (vdev_open(vd) != 0)
1564 continue;
1565
1566 (void) vdev_validate_aux(vd);
1567
1568 if (!vdev_is_dead(vd))
1569 l2arc_add_vdev(spa, vd);
1570 }
1571 }
1572
1573 /*
1574 * Purge vdevs that were dropped
1575 */
1576 for (i = 0; i < oldnvdevs; i++) {
1577 uint64_t pool;
1578
1579 vd = oldvdevs[i];
1580 if (vd != NULL) {
1581 ASSERT(vd->vdev_isl2cache);
1582
1583 if (spa_l2cache_exists(vd->vdev_guid, &pool) &&
1584 pool != 0ULL && l2arc_vdev_present(vd))
1585 l2arc_remove_vdev(vd);
1586 vdev_clear_stats(vd);
1587 vdev_free(vd);
1588 }
1589 }
1590
1591 if (oldvdevs)
1592 kmem_free(oldvdevs, oldnvdevs * sizeof (void *));
1593
1594 if (sav->sav_config == NULL)
1595 goto out;
1596
1597 sav->sav_vdevs = newvdevs;
1598 sav->sav_count = (int)nl2cache;
1599
1600 /*
1601 * Recompute the stashed list of l2cache devices, with status
1602 * information this time.
1603 */
1604 VERIFY(nvlist_remove(sav->sav_config, ZPOOL_CONFIG_L2CACHE,
1605 DATA_TYPE_NVLIST_ARRAY) == 0);
1606
1607 l2cache = kmem_alloc(sav->sav_count * sizeof (void *), KM_SLEEP);
1608 for (i = 0; i < sav->sav_count; i++)
1609 l2cache[i] = vdev_config_generate(spa,
1610 sav->sav_vdevs[i], B_TRUE, VDEV_CONFIG_L2CACHE);
1611 VERIFY(nvlist_add_nvlist_array(sav->sav_config,
1612 ZPOOL_CONFIG_L2CACHE, l2cache, sav->sav_count) == 0);
1613 out:
1614 for (i = 0; i < sav->sav_count; i++)
1615 nvlist_free(l2cache[i]);
1616 if (sav->sav_count)
1617 kmem_free(l2cache, sav->sav_count * sizeof (void *));
1618 }
1619
1620 static int
load_nvlist(spa_t * spa,uint64_t obj,nvlist_t ** value)1621 load_nvlist(spa_t *spa, uint64_t obj, nvlist_t **value)
1622 {
1623 dmu_buf_t *db;
1624 char *packed = NULL;
1625 size_t nvsize = 0;
1626 int error;
1627 *value = NULL;
1628
1629 error = dmu_bonus_hold(spa->spa_meta_objset, obj, FTAG, &db);
1630 if (error != 0)
1631 return (error);
1632 nvsize = *(uint64_t *)db->db_data;
1633 dmu_buf_rele(db, FTAG);
1634
1635 packed = kmem_alloc(nvsize, KM_SLEEP);
1636 error = dmu_read(spa->spa_meta_objset, obj, 0, nvsize, packed,
1637 DMU_READ_PREFETCH);
1638 if (error == 0)
1639 error = nvlist_unpack(packed, nvsize, value, 0);
1640 kmem_free(packed, nvsize);
1641
1642 return (error);
1643 }
1644
1645 /*
1646 * Checks to see if the given vdev could not be opened, in which case we post a
1647 * sysevent to notify the autoreplace code that the device has been removed.
1648 */
1649 static void
spa_check_removed(vdev_t * vd)1650 spa_check_removed(vdev_t *vd)
1651 {
1652 for (int c = 0; c < vd->vdev_children; c++)
1653 spa_check_removed(vd->vdev_child[c]);
1654
1655 if (vd->vdev_ops->vdev_op_leaf && vdev_is_dead(vd) &&
1656 !vd->vdev_ishole) {
1657 zfs_post_autoreplace(vd->vdev_spa, vd);
1658 spa_event_notify(vd->vdev_spa, vd, ESC_ZFS_VDEV_CHECK);
1659 }
1660 }
1661
1662 /*
1663 * Validate the current config against the MOS config
1664 */
1665 static boolean_t
spa_config_valid(spa_t * spa,nvlist_t * config)1666 spa_config_valid(spa_t *spa, nvlist_t *config)
1667 {
1668 vdev_t *mrvd, *rvd = spa->spa_root_vdev;
1669 nvlist_t *nv;
1670
1671 VERIFY(nvlist_lookup_nvlist(config, ZPOOL_CONFIG_VDEV_TREE, &nv) == 0);
1672
1673 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
1674 VERIFY(spa_config_parse(spa, &mrvd, nv, NULL, 0, VDEV_ALLOC_LOAD) == 0);
1675
1676 ASSERT3U(rvd->vdev_children, ==, mrvd->vdev_children);
1677
1678 /*
1679 * If we're doing a normal import, then build up any additional
1680 * diagnostic information about missing devices in this config.
1681 * We'll pass this up to the user for further processing.
1682 */
1683 if (!(spa->spa_import_flags & ZFS_IMPORT_MISSING_LOG)) {
1684 nvlist_t **child, *nv;
1685 uint64_t idx = 0;
1686
1687 child = kmem_alloc(rvd->vdev_children * sizeof (nvlist_t **),
1688 KM_SLEEP);
1689 VERIFY(nvlist_alloc(&nv, NV_UNIQUE_NAME, KM_SLEEP) == 0);
1690
1691 for (int c = 0; c < rvd->vdev_children; c++) {
1692 vdev_t *tvd = rvd->vdev_child[c];
1693 vdev_t *mtvd = mrvd->vdev_child[c];
1694
1695 if (tvd->vdev_ops == &vdev_missing_ops &&
1696 mtvd->vdev_ops != &vdev_missing_ops &&
1697 mtvd->vdev_islog)
1698 child[idx++] = vdev_config_generate(spa, mtvd,
1699 B_FALSE, 0);
1700 }
1701
1702 if (idx) {
1703 VERIFY(nvlist_add_nvlist_array(nv,
1704 ZPOOL_CONFIG_CHILDREN, child, idx) == 0);
1705 VERIFY(nvlist_add_nvlist(spa->spa_load_info,
1706 ZPOOL_CONFIG_MISSING_DEVICES, nv) == 0);
1707
1708 for (int i = 0; i < idx; i++)
1709 nvlist_free(child[i]);
1710 }
1711 nvlist_free(nv);
1712 kmem_free(child, rvd->vdev_children * sizeof (char **));
1713 }
1714
1715 /*
1716 * Compare the root vdev tree with the information we have
1717 * from the MOS config (mrvd). Check each top-level vdev
1718 * with the corresponding MOS config top-level (mtvd).
1719 */
1720 for (int c = 0; c < rvd->vdev_children; c++) {
1721 vdev_t *tvd = rvd->vdev_child[c];
1722 vdev_t *mtvd = mrvd->vdev_child[c];
1723
1724 /*
1725 * Resolve any "missing" vdevs in the current configuration.
1726 * If we find that the MOS config has more accurate information
1727 * about the top-level vdev then use that vdev instead.
1728 */
1729 if (tvd->vdev_ops == &vdev_missing_ops &&
1730 mtvd->vdev_ops != &vdev_missing_ops) {
1731
1732 if (!(spa->spa_import_flags & ZFS_IMPORT_MISSING_LOG))
1733 continue;
1734
1735 /*
1736 * Device specific actions.
1737 */
1738 if (mtvd->vdev_islog) {
1739 spa_set_log_state(spa, SPA_LOG_CLEAR);
1740 } else {
1741 /*
1742 * XXX - once we have 'readonly' pool
1743 * support we should be able to handle
1744 * missing data devices by transitioning
1745 * the pool to readonly.
1746 */
1747 continue;
1748 }
1749
1750 /*
1751 * Swap the missing vdev with the data we were
1752 * able to obtain from the MOS config.
1753 */
1754 vdev_remove_child(rvd, tvd);
1755 vdev_remove_child(mrvd, mtvd);
1756
1757 vdev_add_child(rvd, mtvd);
1758 vdev_add_child(mrvd, tvd);
1759
1760 spa_config_exit(spa, SCL_ALL, FTAG);
1761 vdev_load(mtvd);
1762 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
1763
1764 vdev_reopen(rvd);
1765 } else if (mtvd->vdev_islog) {
1766 /*
1767 * Load the slog device's state from the MOS config
1768 * since it's possible that the label does not
1769 * contain the most up-to-date information.
1770 */
1771 vdev_load_log_state(tvd, mtvd);
1772 vdev_reopen(tvd);
1773 }
1774 }
1775 vdev_free(mrvd);
1776 spa_config_exit(spa, SCL_ALL, FTAG);
1777
1778 /*
1779 * Ensure we were able to validate the config.
1780 */
1781 return (rvd->vdev_guid_sum == spa->spa_uberblock.ub_guid_sum);
1782 }
1783
1784 /*
1785 * Check for missing log devices
1786 */
1787 static boolean_t
spa_check_logs(spa_t * spa)1788 spa_check_logs(spa_t *spa)
1789 {
1790 boolean_t rv = B_FALSE;
1791
1792 switch (spa->spa_log_state) {
1793 case SPA_LOG_MISSING:
1794 /* need to recheck in case slog has been restored */
1795 case SPA_LOG_UNKNOWN:
1796 rv = (dmu_objset_find(spa->spa_name, zil_check_log_chain,
1797 NULL, DS_FIND_CHILDREN) != 0);
1798 if (rv)
1799 spa_set_log_state(spa, SPA_LOG_MISSING);
1800 break;
1801 }
1802 return (rv);
1803 }
1804
1805 static boolean_t
spa_passivate_log(spa_t * spa)1806 spa_passivate_log(spa_t *spa)
1807 {
1808 vdev_t *rvd = spa->spa_root_vdev;
1809 boolean_t slog_found = B_FALSE;
1810
1811 ASSERT(spa_config_held(spa, SCL_ALLOC, RW_WRITER));
1812
1813 if (!spa_has_slogs(spa))
1814 return (B_FALSE);
1815
1816 for (int c = 0; c < rvd->vdev_children; c++) {
1817 vdev_t *tvd = rvd->vdev_child[c];
1818 metaslab_group_t *mg = tvd->vdev_mg;
1819
1820 if (tvd->vdev_islog) {
1821 metaslab_group_passivate(mg);
1822 slog_found = B_TRUE;
1823 }
1824 }
1825
1826 return (slog_found);
1827 }
1828
1829 static void
spa_activate_log(spa_t * spa)1830 spa_activate_log(spa_t *spa)
1831 {
1832 vdev_t *rvd = spa->spa_root_vdev;
1833
1834 ASSERT(spa_config_held(spa, SCL_ALLOC, RW_WRITER));
1835
1836 for (int c = 0; c < rvd->vdev_children; c++) {
1837 vdev_t *tvd = rvd->vdev_child[c];
1838 metaslab_group_t *mg = tvd->vdev_mg;
1839
1840 if (tvd->vdev_islog)
1841 metaslab_group_activate(mg);
1842 }
1843 }
1844
1845 int
spa_offline_log(spa_t * spa)1846 spa_offline_log(spa_t *spa)
1847 {
1848 int error;
1849
1850 error = dmu_objset_find(spa_name(spa), zil_vdev_offline,
1851 NULL, DS_FIND_CHILDREN);
1852 if (error == 0) {
1853 /*
1854 * We successfully offlined the log device, sync out the
1855 * current txg so that the "stubby" block can be removed
1856 * by zil_sync().
1857 */
1858 txg_wait_synced(spa->spa_dsl_pool, 0);
1859 }
1860 return (error);
1861 }
1862
1863 static void
spa_aux_check_removed(spa_aux_vdev_t * sav)1864 spa_aux_check_removed(spa_aux_vdev_t *sav)
1865 {
1866 int i;
1867
1868 for (i = 0; i < sav->sav_count; i++)
1869 spa_check_removed(sav->sav_vdevs[i]);
1870 }
1871
1872 void
spa_claim_notify(zio_t * zio)1873 spa_claim_notify(zio_t *zio)
1874 {
1875 spa_t *spa = zio->io_spa;
1876
1877 if (zio->io_error)
1878 return;
1879
1880 mutex_enter(&spa->spa_props_lock); /* any mutex will do */
1881 if (spa->spa_claim_max_txg < zio->io_bp->blk_birth)
1882 spa->spa_claim_max_txg = zio->io_bp->blk_birth;
1883 mutex_exit(&spa->spa_props_lock);
1884 }
1885
1886 typedef struct spa_load_error {
1887 uint64_t sle_meta_count;
1888 uint64_t sle_data_count;
1889 } spa_load_error_t;
1890
1891 static void
spa_load_verify_done(zio_t * zio)1892 spa_load_verify_done(zio_t *zio)
1893 {
1894 blkptr_t *bp = zio->io_bp;
1895 spa_load_error_t *sle = zio->io_private;
1896 dmu_object_type_t type = BP_GET_TYPE(bp);
1897 int error = zio->io_error;
1898 spa_t *spa = zio->io_spa;
1899
1900 if (error) {
1901 if ((BP_GET_LEVEL(bp) != 0 || DMU_OT_IS_METADATA(type)) &&
1902 type != DMU_OT_INTENT_LOG)
1903 atomic_inc_64(&sle->sle_meta_count);
1904 else
1905 atomic_inc_64(&sle->sle_data_count);
1906 }
1907 zio_data_buf_free(zio->io_data, zio->io_size);
1908
1909 mutex_enter(&spa->spa_scrub_lock);
1910 spa->spa_scrub_inflight--;
1911 cv_broadcast(&spa->spa_scrub_io_cv);
1912 mutex_exit(&spa->spa_scrub_lock);
1913 }
1914
1915 /*
1916 * Maximum number of concurrent scrub i/os to create while verifying
1917 * a pool while importing it.
1918 */
1919 int spa_load_verify_maxinflight = 10000;
1920 boolean_t spa_load_verify_metadata = B_TRUE;
1921 boolean_t spa_load_verify_data = B_TRUE;
1922
1923 SYSCTL_INT(_vfs_zfs, OID_AUTO, spa_load_verify_maxinflight, CTLFLAG_RWTUN,
1924 &spa_load_verify_maxinflight, 0,
1925 "Maximum number of concurrent scrub I/Os to create while verifying a "
1926 "pool while importing it");
1927
1928 SYSCTL_INT(_vfs_zfs, OID_AUTO, spa_load_verify_metadata, CTLFLAG_RWTUN,
1929 &spa_load_verify_metadata, 0,
1930 "Check metadata on import?");
1931
1932 SYSCTL_INT(_vfs_zfs, OID_AUTO, spa_load_verify_data, CTLFLAG_RWTUN,
1933 &spa_load_verify_data, 0,
1934 "Check user data on import?");
1935
1936 /*ARGSUSED*/
1937 static int
spa_load_verify_cb(spa_t * spa,zilog_t * zilog,const blkptr_t * bp,const zbookmark_phys_t * zb,const dnode_phys_t * dnp,void * arg)1938 spa_load_verify_cb(spa_t *spa, zilog_t *zilog, const blkptr_t *bp,
1939 const zbookmark_phys_t *zb, const dnode_phys_t *dnp, void *arg)
1940 {
1941 if (BP_IS_HOLE(bp) || BP_IS_EMBEDDED(bp))
1942 return (0);
1943 /*
1944 * Note: normally this routine will not be called if
1945 * spa_load_verify_metadata is not set. However, it may be useful
1946 * to manually set the flag after the traversal has begun.
1947 */
1948 if (!spa_load_verify_metadata)
1949 return (0);
1950 if (BP_GET_BUFC_TYPE(bp) == ARC_BUFC_DATA && !spa_load_verify_data)
1951 return (0);
1952
1953 zio_t *rio = arg;
1954 size_t size = BP_GET_PSIZE(bp);
1955 void *data = zio_data_buf_alloc(size);
1956
1957 mutex_enter(&spa->spa_scrub_lock);
1958 while (spa->spa_scrub_inflight >= spa_load_verify_maxinflight)
1959 cv_wait(&spa->spa_scrub_io_cv, &spa->spa_scrub_lock);
1960 spa->spa_scrub_inflight++;
1961 mutex_exit(&spa->spa_scrub_lock);
1962
1963 zio_nowait(zio_read(rio, spa, bp, data, size,
1964 spa_load_verify_done, rio->io_private, ZIO_PRIORITY_SCRUB,
1965 ZIO_FLAG_SPECULATIVE | ZIO_FLAG_CANFAIL |
1966 ZIO_FLAG_SCRUB | ZIO_FLAG_RAW, zb));
1967 return (0);
1968 }
1969
1970 static int
spa_load_verify(spa_t * spa)1971 spa_load_verify(spa_t *spa)
1972 {
1973 zio_t *rio;
1974 spa_load_error_t sle = { 0 };
1975 zpool_rewind_policy_t policy;
1976 boolean_t verify_ok = B_FALSE;
1977 int error = 0;
1978
1979 zpool_get_rewind_policy(spa->spa_config, &policy);
1980
1981 if (policy.zrp_request & ZPOOL_NEVER_REWIND)
1982 return (0);
1983
1984 rio = zio_root(spa, NULL, &sle,
1985 ZIO_FLAG_CANFAIL | ZIO_FLAG_SPECULATIVE);
1986
1987 if (spa_load_verify_metadata) {
1988 error = traverse_pool(spa, spa->spa_verify_min_txg,
1989 TRAVERSE_PRE | TRAVERSE_PREFETCH_METADATA,
1990 spa_load_verify_cb, rio);
1991 }
1992
1993 (void) zio_wait(rio);
1994
1995 spa->spa_load_meta_errors = sle.sle_meta_count;
1996 spa->spa_load_data_errors = sle.sle_data_count;
1997
1998 if (!error && sle.sle_meta_count <= policy.zrp_maxmeta &&
1999 sle.sle_data_count <= policy.zrp_maxdata) {
2000 int64_t loss = 0;
2001
2002 verify_ok = B_TRUE;
2003 spa->spa_load_txg = spa->spa_uberblock.ub_txg;
2004 spa->spa_load_txg_ts = spa->spa_uberblock.ub_timestamp;
2005
2006 loss = spa->spa_last_ubsync_txg_ts - spa->spa_load_txg_ts;
2007 VERIFY(nvlist_add_uint64(spa->spa_load_info,
2008 ZPOOL_CONFIG_LOAD_TIME, spa->spa_load_txg_ts) == 0);
2009 VERIFY(nvlist_add_int64(spa->spa_load_info,
2010 ZPOOL_CONFIG_REWIND_TIME, loss) == 0);
2011 VERIFY(nvlist_add_uint64(spa->spa_load_info,
2012 ZPOOL_CONFIG_LOAD_DATA_ERRORS, sle.sle_data_count) == 0);
2013 } else {
2014 spa->spa_load_max_txg = spa->spa_uberblock.ub_txg;
2015 }
2016
2017 if (error) {
2018 if (error != ENXIO && error != EIO)
2019 error = SET_ERROR(EIO);
2020 return (error);
2021 }
2022
2023 return (verify_ok ? 0 : EIO);
2024 }
2025
2026 /*
2027 * Find a value in the pool props object.
2028 */
2029 static void
spa_prop_find(spa_t * spa,zpool_prop_t prop,uint64_t * val)2030 spa_prop_find(spa_t *spa, zpool_prop_t prop, uint64_t *val)
2031 {
2032 (void) zap_lookup(spa->spa_meta_objset, spa->spa_pool_props_object,
2033 zpool_prop_to_name(prop), sizeof (uint64_t), 1, val);
2034 }
2035
2036 /*
2037 * Find a value in the pool directory object.
2038 */
2039 static int
spa_dir_prop(spa_t * spa,const char * name,uint64_t * val)2040 spa_dir_prop(spa_t *spa, const char *name, uint64_t *val)
2041 {
2042 return (zap_lookup(spa->spa_meta_objset, DMU_POOL_DIRECTORY_OBJECT,
2043 name, sizeof (uint64_t), 1, val));
2044 }
2045
2046 static int
spa_vdev_err(vdev_t * vdev,vdev_aux_t aux,int err)2047 spa_vdev_err(vdev_t *vdev, vdev_aux_t aux, int err)
2048 {
2049 vdev_set_state(vdev, B_TRUE, VDEV_STATE_CANT_OPEN, aux);
2050 return (err);
2051 }
2052
2053 /*
2054 * Fix up config after a partly-completed split. This is done with the
2055 * ZPOOL_CONFIG_SPLIT nvlist. Both the splitting pool and the split-off
2056 * pool have that entry in their config, but only the splitting one contains
2057 * a list of all the guids of the vdevs that are being split off.
2058 *
2059 * This function determines what to do with that list: either rejoin
2060 * all the disks to the pool, or complete the splitting process. To attempt
2061 * the rejoin, each disk that is offlined is marked online again, and
2062 * we do a reopen() call. If the vdev label for every disk that was
2063 * marked online indicates it was successfully split off (VDEV_AUX_SPLIT_POOL)
2064 * then we call vdev_split() on each disk, and complete the split.
2065 *
2066 * Otherwise we leave the config alone, with all the vdevs in place in
2067 * the original pool.
2068 */
2069 static void
spa_try_repair(spa_t * spa,nvlist_t * config)2070 spa_try_repair(spa_t *spa, nvlist_t *config)
2071 {
2072 uint_t extracted;
2073 uint64_t *glist;
2074 uint_t i, gcount;
2075 nvlist_t *nvl;
2076 vdev_t **vd;
2077 boolean_t attempt_reopen;
2078
2079 if (nvlist_lookup_nvlist(config, ZPOOL_CONFIG_SPLIT, &nvl) != 0)
2080 return;
2081
2082 /* check that the config is complete */
2083 if (nvlist_lookup_uint64_array(nvl, ZPOOL_CONFIG_SPLIT_LIST,
2084 &glist, &gcount) != 0)
2085 return;
2086
2087 vd = kmem_zalloc(gcount * sizeof (vdev_t *), KM_SLEEP);
2088
2089 /* attempt to online all the vdevs & validate */
2090 attempt_reopen = B_TRUE;
2091 for (i = 0; i < gcount; i++) {
2092 if (glist[i] == 0) /* vdev is hole */
2093 continue;
2094
2095 vd[i] = spa_lookup_by_guid(spa, glist[i], B_FALSE);
2096 if (vd[i] == NULL) {
2097 /*
2098 * Don't bother attempting to reopen the disks;
2099 * just do the split.
2100 */
2101 attempt_reopen = B_FALSE;
2102 } else {
2103 /* attempt to re-online it */
2104 vd[i]->vdev_offline = B_FALSE;
2105 }
2106 }
2107
2108 if (attempt_reopen) {
2109 vdev_reopen(spa->spa_root_vdev);
2110
2111 /* check each device to see what state it's in */
2112 for (extracted = 0, i = 0; i < gcount; i++) {
2113 if (vd[i] != NULL &&
2114 vd[i]->vdev_stat.vs_aux != VDEV_AUX_SPLIT_POOL)
2115 break;
2116 ++extracted;
2117 }
2118 }
2119
2120 /*
2121 * If every disk has been moved to the new pool, or if we never
2122 * even attempted to look at them, then we split them off for
2123 * good.
2124 */
2125 if (!attempt_reopen || gcount == extracted) {
2126 for (i = 0; i < gcount; i++)
2127 if (vd[i] != NULL)
2128 vdev_split(vd[i]);
2129 vdev_reopen(spa->spa_root_vdev);
2130 }
2131
2132 kmem_free(vd, gcount * sizeof (vdev_t *));
2133 }
2134
2135 static int
spa_load(spa_t * spa,spa_load_state_t state,spa_import_type_t type,boolean_t mosconfig)2136 spa_load(spa_t *spa, spa_load_state_t state, spa_import_type_t type,
2137 boolean_t mosconfig)
2138 {
2139 nvlist_t *config = spa->spa_config;
2140 char *ereport = FM_EREPORT_ZFS_POOL;
2141 char *comment;
2142 int error;
2143 uint64_t pool_guid;
2144 nvlist_t *nvl;
2145
2146 if (nvlist_lookup_uint64(config, ZPOOL_CONFIG_POOL_GUID, &pool_guid))
2147 return (SET_ERROR(EINVAL));
2148
2149 ASSERT(spa->spa_comment == NULL);
2150 if (nvlist_lookup_string(config, ZPOOL_CONFIG_COMMENT, &comment) == 0)
2151 spa->spa_comment = spa_strdup(comment);
2152
2153 /*
2154 * Versioning wasn't explicitly added to the label until later, so if
2155 * it's not present treat it as the initial version.
2156 */
2157 if (nvlist_lookup_uint64(config, ZPOOL_CONFIG_VERSION,
2158 &spa->spa_ubsync.ub_version) != 0)
2159 spa->spa_ubsync.ub_version = SPA_VERSION_INITIAL;
2160
2161 (void) nvlist_lookup_uint64(config, ZPOOL_CONFIG_POOL_TXG,
2162 &spa->spa_config_txg);
2163
2164 if ((state == SPA_LOAD_IMPORT || state == SPA_LOAD_TRYIMPORT) &&
2165 spa_guid_exists(pool_guid, 0)) {
2166 error = SET_ERROR(EEXIST);
2167 } else {
2168 spa->spa_config_guid = pool_guid;
2169
2170 if (nvlist_lookup_nvlist(config, ZPOOL_CONFIG_SPLIT,
2171 &nvl) == 0) {
2172 VERIFY(nvlist_dup(nvl, &spa->spa_config_splitting,
2173 KM_SLEEP) == 0);
2174 }
2175
2176 nvlist_free(spa->spa_load_info);
2177 spa->spa_load_info = fnvlist_alloc();
2178
2179 gethrestime(&spa->spa_loaded_ts);
2180 error = spa_load_impl(spa, pool_guid, config, state, type,
2181 mosconfig, &ereport);
2182 }
2183
2184 spa->spa_minref = refcount_count(&spa->spa_refcount);
2185 if (error) {
2186 if (error != EEXIST) {
2187 spa->spa_loaded_ts.tv_sec = 0;
2188 spa->spa_loaded_ts.tv_nsec = 0;
2189 }
2190 if (error != EBADF) {
2191 zfs_ereport_post(ereport, spa, NULL, NULL, 0, 0);
2192 }
2193 }
2194 spa->spa_load_state = error ? SPA_LOAD_ERROR : SPA_LOAD_NONE;
2195 spa->spa_ena = 0;
2196
2197 return (error);
2198 }
2199
2200 /*
2201 * Load an existing storage pool, using the pool's builtin spa_config as a
2202 * source of configuration information.
2203 */
2204 static int
spa_load_impl(spa_t * spa,uint64_t pool_guid,nvlist_t * config,spa_load_state_t state,spa_import_type_t type,boolean_t mosconfig,char ** ereport)2205 spa_load_impl(spa_t *spa, uint64_t pool_guid, nvlist_t *config,
2206 spa_load_state_t state, spa_import_type_t type, boolean_t mosconfig,
2207 char **ereport)
2208 {
2209 int error = 0;
2210 nvlist_t *nvroot = NULL;
2211 nvlist_t *label;
2212 vdev_t *rvd;
2213 uberblock_t *ub = &spa->spa_uberblock;
2214 uint64_t children, config_cache_txg = spa->spa_config_txg;
2215 int orig_mode = spa->spa_mode;
2216 int parse;
2217 uint64_t obj;
2218 boolean_t missing_feat_write = B_FALSE;
2219
2220 /*
2221 * If this is an untrusted config, access the pool in read-only mode.
2222 * This prevents things like resilvering recently removed devices.
2223 */
2224 if (!mosconfig)
2225 spa->spa_mode = FREAD;
2226
2227 ASSERT(MUTEX_HELD(&spa_namespace_lock));
2228
2229 spa->spa_load_state = state;
2230
2231 if (nvlist_lookup_nvlist(config, ZPOOL_CONFIG_VDEV_TREE, &nvroot))
2232 return (SET_ERROR(EINVAL));
2233
2234 parse = (type == SPA_IMPORT_EXISTING ?
2235 VDEV_ALLOC_LOAD : VDEV_ALLOC_SPLIT);
2236
2237 /*
2238 * Create "The Godfather" zio to hold all async IOs
2239 */
2240 spa->spa_async_zio_root = kmem_alloc(max_ncpus * sizeof (void *),
2241 KM_SLEEP);
2242 for (int i = 0; i < max_ncpus; i++) {
2243 spa->spa_async_zio_root[i] = zio_root(spa, NULL, NULL,
2244 ZIO_FLAG_CANFAIL | ZIO_FLAG_SPECULATIVE |
2245 ZIO_FLAG_GODFATHER);
2246 }
2247
2248 /*
2249 * Parse the configuration into a vdev tree. We explicitly set the
2250 * value that will be returned by spa_version() since parsing the
2251 * configuration requires knowing the version number.
2252 */
2253 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
2254 error = spa_config_parse(spa, &rvd, nvroot, NULL, 0, parse);
2255 spa_config_exit(spa, SCL_ALL, FTAG);
2256
2257 if (error != 0)
2258 return (error);
2259
2260 ASSERT(spa->spa_root_vdev == rvd);
2261
2262 if (type != SPA_IMPORT_ASSEMBLE) {
2263 ASSERT(spa_guid(spa) == pool_guid);
2264 }
2265
2266 /*
2267 * Try to open all vdevs, loading each label in the process.
2268 */
2269 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
2270 error = vdev_open(rvd);
2271 spa_config_exit(spa, SCL_ALL, FTAG);
2272 if (error != 0)
2273 return (error);
2274
2275 /*
2276 * We need to validate the vdev labels against the configuration that
2277 * we have in hand, which is dependent on the setting of mosconfig. If
2278 * mosconfig is true then we're validating the vdev labels based on
2279 * that config. Otherwise, we're validating against the cached config
2280 * (zpool.cache) that was read when we loaded the zfs module, and then
2281 * later we will recursively call spa_load() and validate against
2282 * the vdev config.
2283 *
2284 * If we're assembling a new pool that's been split off from an
2285 * existing pool, the labels haven't yet been updated so we skip
2286 * validation for now.
2287 */
2288 if (type != SPA_IMPORT_ASSEMBLE) {
2289 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
2290 error = vdev_validate(rvd, mosconfig);
2291 spa_config_exit(spa, SCL_ALL, FTAG);
2292
2293 if (error != 0)
2294 return (error);
2295
2296 if (rvd->vdev_state <= VDEV_STATE_CANT_OPEN)
2297 return (SET_ERROR(ENXIO));
2298 }
2299
2300 /*
2301 * Find the best uberblock.
2302 */
2303 vdev_uberblock_load(rvd, ub, &label);
2304
2305 /*
2306 * If we weren't able to find a single valid uberblock, return failure.
2307 */
2308 if (ub->ub_txg == 0) {
2309 nvlist_free(label);
2310 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, ENXIO));
2311 }
2312
2313 /*
2314 * If the pool has an unsupported version we can't open it.
2315 */
2316 if (!SPA_VERSION_IS_SUPPORTED(ub->ub_version)) {
2317 nvlist_free(label);
2318 return (spa_vdev_err(rvd, VDEV_AUX_VERSION_NEWER, ENOTSUP));
2319 }
2320
2321 if (ub->ub_version >= SPA_VERSION_FEATURES) {
2322 nvlist_t *features;
2323
2324 /*
2325 * If we weren't able to find what's necessary for reading the
2326 * MOS in the label, return failure.
2327 */
2328 if (label == NULL || nvlist_lookup_nvlist(label,
2329 ZPOOL_CONFIG_FEATURES_FOR_READ, &features) != 0) {
2330 nvlist_free(label);
2331 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA,
2332 ENXIO));
2333 }
2334
2335 /*
2336 * Update our in-core representation with the definitive values
2337 * from the label.
2338 */
2339 nvlist_free(spa->spa_label_features);
2340 VERIFY(nvlist_dup(features, &spa->spa_label_features, 0) == 0);
2341 }
2342
2343 nvlist_free(label);
2344
2345 /*
2346 * Look through entries in the label nvlist's features_for_read. If
2347 * there is a feature listed there which we don't understand then we
2348 * cannot open a pool.
2349 */
2350 if (ub->ub_version >= SPA_VERSION_FEATURES) {
2351 nvlist_t *unsup_feat;
2352
2353 VERIFY(nvlist_alloc(&unsup_feat, NV_UNIQUE_NAME, KM_SLEEP) ==
2354 0);
2355
2356 for (nvpair_t *nvp = nvlist_next_nvpair(spa->spa_label_features,
2357 NULL); nvp != NULL;
2358 nvp = nvlist_next_nvpair(spa->spa_label_features, nvp)) {
2359 if (!zfeature_is_supported(nvpair_name(nvp))) {
2360 VERIFY(nvlist_add_string(unsup_feat,
2361 nvpair_name(nvp), "") == 0);
2362 }
2363 }
2364
2365 if (!nvlist_empty(unsup_feat)) {
2366 VERIFY(nvlist_add_nvlist(spa->spa_load_info,
2367 ZPOOL_CONFIG_UNSUP_FEAT, unsup_feat) == 0);
2368 nvlist_free(unsup_feat);
2369 return (spa_vdev_err(rvd, VDEV_AUX_UNSUP_FEAT,
2370 ENOTSUP));
2371 }
2372
2373 nvlist_free(unsup_feat);
2374 }
2375
2376 /*
2377 * If the vdev guid sum doesn't match the uberblock, we have an
2378 * incomplete configuration. We first check to see if the pool
2379 * is aware of the complete config (i.e ZPOOL_CONFIG_VDEV_CHILDREN).
2380 * If it is, defer the vdev_guid_sum check till later so we
2381 * can handle missing vdevs.
2382 */
2383 if (nvlist_lookup_uint64(config, ZPOOL_CONFIG_VDEV_CHILDREN,
2384 &children) != 0 && mosconfig && type != SPA_IMPORT_ASSEMBLE &&
2385 rvd->vdev_guid_sum != ub->ub_guid_sum)
2386 return (spa_vdev_err(rvd, VDEV_AUX_BAD_GUID_SUM, ENXIO));
2387
2388 if (type != SPA_IMPORT_ASSEMBLE && spa->spa_config_splitting) {
2389 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
2390 spa_try_repair(spa, config);
2391 spa_config_exit(spa, SCL_ALL, FTAG);
2392 nvlist_free(spa->spa_config_splitting);
2393 spa->spa_config_splitting = NULL;
2394 }
2395
2396 /*
2397 * Initialize internal SPA structures.
2398 */
2399 spa->spa_state = POOL_STATE_ACTIVE;
2400 spa->spa_ubsync = spa->spa_uberblock;
2401 spa->spa_verify_min_txg = spa->spa_extreme_rewind ?
2402 TXG_INITIAL - 1 : spa_last_synced_txg(spa) - TXG_DEFER_SIZE - 1;
2403 spa->spa_first_txg = spa->spa_last_ubsync_txg ?
2404 spa->spa_last_ubsync_txg : spa_last_synced_txg(spa) + 1;
2405 spa->spa_claim_max_txg = spa->spa_first_txg;
2406 spa->spa_prev_software_version = ub->ub_software_version;
2407
2408 error = dsl_pool_init(spa, spa->spa_first_txg, &spa->spa_dsl_pool);
2409 if (error)
2410 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2411 spa->spa_meta_objset = spa->spa_dsl_pool->dp_meta_objset;
2412
2413 if (spa_dir_prop(spa, DMU_POOL_CONFIG, &spa->spa_config_object) != 0)
2414 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2415
2416 if (spa_version(spa) >= SPA_VERSION_FEATURES) {
2417 boolean_t missing_feat_read = B_FALSE;
2418 nvlist_t *unsup_feat, *enabled_feat;
2419
2420 if (spa_dir_prop(spa, DMU_POOL_FEATURES_FOR_READ,
2421 &spa->spa_feat_for_read_obj) != 0) {
2422 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2423 }
2424
2425 if (spa_dir_prop(spa, DMU_POOL_FEATURES_FOR_WRITE,
2426 &spa->spa_feat_for_write_obj) != 0) {
2427 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2428 }
2429
2430 if (spa_dir_prop(spa, DMU_POOL_FEATURE_DESCRIPTIONS,
2431 &spa->spa_feat_desc_obj) != 0) {
2432 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2433 }
2434
2435 enabled_feat = fnvlist_alloc();
2436 unsup_feat = fnvlist_alloc();
2437
2438 if (!spa_features_check(spa, B_FALSE,
2439 unsup_feat, enabled_feat))
2440 missing_feat_read = B_TRUE;
2441
2442 if (spa_writeable(spa) || state == SPA_LOAD_TRYIMPORT) {
2443 if (!spa_features_check(spa, B_TRUE,
2444 unsup_feat, enabled_feat)) {
2445 missing_feat_write = B_TRUE;
2446 }
2447 }
2448
2449 fnvlist_add_nvlist(spa->spa_load_info,
2450 ZPOOL_CONFIG_ENABLED_FEAT, enabled_feat);
2451
2452 if (!nvlist_empty(unsup_feat)) {
2453 fnvlist_add_nvlist(spa->spa_load_info,
2454 ZPOOL_CONFIG_UNSUP_FEAT, unsup_feat);
2455 }
2456
2457 fnvlist_free(enabled_feat);
2458 fnvlist_free(unsup_feat);
2459
2460 if (!missing_feat_read) {
2461 fnvlist_add_boolean(spa->spa_load_info,
2462 ZPOOL_CONFIG_CAN_RDONLY);
2463 }
2464
2465 /*
2466 * If the state is SPA_LOAD_TRYIMPORT, our objective is
2467 * twofold: to determine whether the pool is available for
2468 * import in read-write mode and (if it is not) whether the
2469 * pool is available for import in read-only mode. If the pool
2470 * is available for import in read-write mode, it is displayed
2471 * as available in userland; if it is not available for import
2472 * in read-only mode, it is displayed as unavailable in
2473 * userland. If the pool is available for import in read-only
2474 * mode but not read-write mode, it is displayed as unavailable
2475 * in userland with a special note that the pool is actually
2476 * available for open in read-only mode.
2477 *
2478 * As a result, if the state is SPA_LOAD_TRYIMPORT and we are
2479 * missing a feature for write, we must first determine whether
2480 * the pool can be opened read-only before returning to
2481 * userland in order to know whether to display the
2482 * abovementioned note.
2483 */
2484 if (missing_feat_read || (missing_feat_write &&
2485 spa_writeable(spa))) {
2486 return (spa_vdev_err(rvd, VDEV_AUX_UNSUP_FEAT,
2487 ENOTSUP));
2488 }
2489
2490 /*
2491 * Load refcounts for ZFS features from disk into an in-memory
2492 * cache during SPA initialization.
2493 */
2494 for (spa_feature_t i = 0; i < SPA_FEATURES; i++) {
2495 uint64_t refcount;
2496
2497 error = feature_get_refcount_from_disk(spa,
2498 &spa_feature_table[i], &refcount);
2499 if (error == 0) {
2500 spa->spa_feat_refcount_cache[i] = refcount;
2501 } else if (error == ENOTSUP) {
2502 spa->spa_feat_refcount_cache[i] =
2503 SPA_FEATURE_DISABLED;
2504 } else {
2505 return (spa_vdev_err(rvd,
2506 VDEV_AUX_CORRUPT_DATA, EIO));
2507 }
2508 }
2509 }
2510
2511 if (spa_feature_is_active(spa, SPA_FEATURE_ENABLED_TXG)) {
2512 if (spa_dir_prop(spa, DMU_POOL_FEATURE_ENABLED_TXG,
2513 &spa->spa_feat_enabled_txg_obj) != 0)
2514 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2515 }
2516
2517 spa->spa_is_initializing = B_TRUE;
2518 error = dsl_pool_open(spa->spa_dsl_pool);
2519 spa->spa_is_initializing = B_FALSE;
2520 if (error != 0)
2521 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2522
2523 if (!mosconfig) {
2524 uint64_t hostid;
2525 nvlist_t *policy = NULL, *nvconfig;
2526
2527 if (load_nvlist(spa, spa->spa_config_object, &nvconfig) != 0)
2528 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2529
2530 if (!spa_is_root(spa) && nvlist_lookup_uint64(nvconfig,
2531 ZPOOL_CONFIG_HOSTID, &hostid) == 0) {
2532 char *hostname;
2533 unsigned long myhostid = 0;
2534
2535 VERIFY(nvlist_lookup_string(nvconfig,
2536 ZPOOL_CONFIG_HOSTNAME, &hostname) == 0);
2537
2538 #ifdef _KERNEL
2539 myhostid = zone_get_hostid(NULL);
2540 #else /* _KERNEL */
2541 /*
2542 * We're emulating the system's hostid in userland, so
2543 * we can't use zone_get_hostid().
2544 */
2545 (void) ddi_strtoul(hw_serial, NULL, 10, &myhostid);
2546 #endif /* _KERNEL */
2547 if (check_hostid && hostid != 0 && myhostid != 0 &&
2548 hostid != myhostid) {
2549 nvlist_free(nvconfig);
2550 cmn_err(CE_WARN, "pool '%s' could not be "
2551 "loaded as it was last accessed by "
2552 "another system (host: %s hostid: 0x%lx). "
2553 "See: http://illumos.org/msg/ZFS-8000-EY",
2554 spa_name(spa), hostname,
2555 (unsigned long)hostid);
2556 return (SET_ERROR(EBADF));
2557 }
2558 }
2559 if (nvlist_lookup_nvlist(spa->spa_config,
2560 ZPOOL_REWIND_POLICY, &policy) == 0)
2561 VERIFY(nvlist_add_nvlist(nvconfig,
2562 ZPOOL_REWIND_POLICY, policy) == 0);
2563
2564 spa_config_set(spa, nvconfig);
2565 spa_unload(spa);
2566 spa_deactivate(spa);
2567 spa_activate(spa, orig_mode);
2568
2569 return (spa_load(spa, state, SPA_IMPORT_EXISTING, B_TRUE));
2570 }
2571
2572 if (spa_dir_prop(spa, DMU_POOL_SYNC_BPOBJ, &obj) != 0)
2573 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2574 error = bpobj_open(&spa->spa_deferred_bpobj, spa->spa_meta_objset, obj);
2575 if (error != 0)
2576 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2577
2578 /*
2579 * Load the bit that tells us to use the new accounting function
2580 * (raid-z deflation). If we have an older pool, this will not
2581 * be present.
2582 */
2583 error = spa_dir_prop(spa, DMU_POOL_DEFLATE, &spa->spa_deflate);
2584 if (error != 0 && error != ENOENT)
2585 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2586
2587 error = spa_dir_prop(spa, DMU_POOL_CREATION_VERSION,
2588 &spa->spa_creation_version);
2589 if (error != 0 && error != ENOENT)
2590 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2591
2592 /*
2593 * Load the persistent error log. If we have an older pool, this will
2594 * not be present.
2595 */
2596 error = spa_dir_prop(spa, DMU_POOL_ERRLOG_LAST, &spa->spa_errlog_last);
2597 if (error != 0 && error != ENOENT)
2598 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2599
2600 error = spa_dir_prop(spa, DMU_POOL_ERRLOG_SCRUB,
2601 &spa->spa_errlog_scrub);
2602 if (error != 0 && error != ENOENT)
2603 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2604
2605 /*
2606 * Load the history object. If we have an older pool, this
2607 * will not be present.
2608 */
2609 error = spa_dir_prop(spa, DMU_POOL_HISTORY, &spa->spa_history);
2610 if (error != 0 && error != ENOENT)
2611 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2612
2613 /*
2614 * If we're assembling the pool from the split-off vdevs of
2615 * an existing pool, we don't want to attach the spares & cache
2616 * devices.
2617 */
2618
2619 /*
2620 * Load any hot spares for this pool.
2621 */
2622 error = spa_dir_prop(spa, DMU_POOL_SPARES, &spa->spa_spares.sav_object);
2623 if (error != 0 && error != ENOENT)
2624 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2625 if (error == 0 && type != SPA_IMPORT_ASSEMBLE) {
2626 ASSERT(spa_version(spa) >= SPA_VERSION_SPARES);
2627 if (load_nvlist(spa, spa->spa_spares.sav_object,
2628 &spa->spa_spares.sav_config) != 0)
2629 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2630
2631 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
2632 spa_load_spares(spa);
2633 spa_config_exit(spa, SCL_ALL, FTAG);
2634 } else if (error == 0) {
2635 spa->spa_spares.sav_sync = B_TRUE;
2636 }
2637
2638 /*
2639 * Load any level 2 ARC devices for this pool.
2640 */
2641 error = spa_dir_prop(spa, DMU_POOL_L2CACHE,
2642 &spa->spa_l2cache.sav_object);
2643 if (error != 0 && error != ENOENT)
2644 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2645 if (error == 0 && type != SPA_IMPORT_ASSEMBLE) {
2646 ASSERT(spa_version(spa) >= SPA_VERSION_L2CACHE);
2647 if (load_nvlist(spa, spa->spa_l2cache.sav_object,
2648 &spa->spa_l2cache.sav_config) != 0)
2649 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2650
2651 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
2652 spa_load_l2cache(spa);
2653 spa_config_exit(spa, SCL_ALL, FTAG);
2654 } else if (error == 0) {
2655 spa->spa_l2cache.sav_sync = B_TRUE;
2656 }
2657
2658 spa->spa_delegation = zpool_prop_default_numeric(ZPOOL_PROP_DELEGATION);
2659
2660 error = spa_dir_prop(spa, DMU_POOL_PROPS, &spa->spa_pool_props_object);
2661 if (error && error != ENOENT)
2662 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2663
2664 if (error == 0) {
2665 uint64_t autoreplace;
2666
2667 spa_prop_find(spa, ZPOOL_PROP_BOOTFS, &spa->spa_bootfs);
2668 spa_prop_find(spa, ZPOOL_PROP_AUTOREPLACE, &autoreplace);
2669 spa_prop_find(spa, ZPOOL_PROP_DELEGATION, &spa->spa_delegation);
2670 spa_prop_find(spa, ZPOOL_PROP_FAILUREMODE, &spa->spa_failmode);
2671 spa_prop_find(spa, ZPOOL_PROP_AUTOEXPAND, &spa->spa_autoexpand);
2672 spa_prop_find(spa, ZPOOL_PROP_DEDUPDITTO,
2673 &spa->spa_dedup_ditto);
2674
2675 spa->spa_autoreplace = (autoreplace != 0);
2676 }
2677
2678 /*
2679 * If the 'autoreplace' property is set, then post a resource notifying
2680 * the ZFS DE that it should not issue any faults for unopenable
2681 * devices. We also iterate over the vdevs, and post a sysevent for any
2682 * unopenable vdevs so that the normal autoreplace handler can take
2683 * over.
2684 */
2685 if (spa->spa_autoreplace && state != SPA_LOAD_TRYIMPORT) {
2686 spa_check_removed(spa->spa_root_vdev);
2687 /*
2688 * For the import case, this is done in spa_import(), because
2689 * at this point we're using the spare definitions from
2690 * the MOS config, not necessarily from the userland config.
2691 */
2692 if (state != SPA_LOAD_IMPORT) {
2693 spa_aux_check_removed(&spa->spa_spares);
2694 spa_aux_check_removed(&spa->spa_l2cache);
2695 }
2696 }
2697
2698 /*
2699 * Load the vdev state for all toplevel vdevs.
2700 */
2701 vdev_load(rvd);
2702
2703 /*
2704 * Propagate the leaf DTLs we just loaded all the way up the tree.
2705 */
2706 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
2707 vdev_dtl_reassess(rvd, 0, 0, B_FALSE);
2708 spa_config_exit(spa, SCL_ALL, FTAG);
2709
2710 /*
2711 * Load the DDTs (dedup tables).
2712 */
2713 error = ddt_load(spa);
2714 if (error != 0)
2715 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2716
2717 spa_update_dspace(spa);
2718
2719 /*
2720 * Validate the config, using the MOS config to fill in any
2721 * information which might be missing. If we fail to validate
2722 * the config then declare the pool unfit for use. If we're
2723 * assembling a pool from a split, the log is not transferred
2724 * over.
2725 */
2726 if (type != SPA_IMPORT_ASSEMBLE) {
2727 nvlist_t *nvconfig;
2728
2729 if (load_nvlist(spa, spa->spa_config_object, &nvconfig) != 0)
2730 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA, EIO));
2731
2732 if (!spa_config_valid(spa, nvconfig)) {
2733 nvlist_free(nvconfig);
2734 return (spa_vdev_err(rvd, VDEV_AUX_BAD_GUID_SUM,
2735 ENXIO));
2736 }
2737 nvlist_free(nvconfig);
2738
2739 /*
2740 * Now that we've validated the config, check the state of the
2741 * root vdev. If it can't be opened, it indicates one or
2742 * more toplevel vdevs are faulted.
2743 */
2744 if (rvd->vdev_state <= VDEV_STATE_CANT_OPEN)
2745 return (SET_ERROR(ENXIO));
2746
2747 if (spa_check_logs(spa)) {
2748 *ereport = FM_EREPORT_ZFS_LOG_REPLAY;
2749 return (spa_vdev_err(rvd, VDEV_AUX_BAD_LOG, ENXIO));
2750 }
2751 }
2752
2753 if (missing_feat_write) {
2754 ASSERT(state == SPA_LOAD_TRYIMPORT);
2755
2756 /*
2757 * At this point, we know that we can open the pool in
2758 * read-only mode but not read-write mode. We now have enough
2759 * information and can return to userland.
2760 */
2761 return (spa_vdev_err(rvd, VDEV_AUX_UNSUP_FEAT, ENOTSUP));
2762 }
2763
2764 /*
2765 * We've successfully opened the pool, verify that we're ready
2766 * to start pushing transactions.
2767 */
2768 if (state != SPA_LOAD_TRYIMPORT) {
2769 if (error = spa_load_verify(spa))
2770 return (spa_vdev_err(rvd, VDEV_AUX_CORRUPT_DATA,
2771 error));
2772 }
2773
2774 if (spa_writeable(spa) && (state == SPA_LOAD_RECOVER ||
2775 spa->spa_load_max_txg == UINT64_MAX)) {
2776 dmu_tx_t *tx;
2777 int need_update = B_FALSE;
2778
2779 ASSERT(state != SPA_LOAD_TRYIMPORT);
2780
2781 /*
2782 * Claim log blocks that haven't been committed yet.
2783 * This must all happen in a single txg.
2784 * Note: spa_claim_max_txg is updated by spa_claim_notify(),
2785 * invoked from zil_claim_log_block()'s i/o done callback.
2786 * Price of rollback is that we abandon the log.
2787 */
2788 spa->spa_claiming = B_TRUE;
2789
2790 tx = dmu_tx_create_assigned(spa_get_dsl(spa),
2791 spa_first_txg(spa));
2792 (void) dmu_objset_find(spa_name(spa),
2793 zil_claim, tx, DS_FIND_CHILDREN);
2794 dmu_tx_commit(tx);
2795
2796 spa->spa_claiming = B_FALSE;
2797
2798 spa_set_log_state(spa, SPA_LOG_GOOD);
2799 spa->spa_sync_on = B_TRUE;
2800 txg_sync_start(spa->spa_dsl_pool);
2801
2802 /*
2803 * Wait for all claims to sync. We sync up to the highest
2804 * claimed log block birth time so that claimed log blocks
2805 * don't appear to be from the future. spa_claim_max_txg
2806 * will have been set for us by either zil_check_log_chain()
2807 * (invoked from spa_check_logs()) or zil_claim() above.
2808 */
2809 txg_wait_synced(spa->spa_dsl_pool, spa->spa_claim_max_txg);
2810
2811 /*
2812 * If the config cache is stale, or we have uninitialized
2813 * metaslabs (see spa_vdev_add()), then update the config.
2814 *
2815 * If this is a verbatim import, trust the current
2816 * in-core spa_config and update the disk labels.
2817 */
2818 if (config_cache_txg != spa->spa_config_txg ||
2819 state == SPA_LOAD_IMPORT ||
2820 state == SPA_LOAD_RECOVER ||
2821 (spa->spa_import_flags & ZFS_IMPORT_VERBATIM))
2822 need_update = B_TRUE;
2823
2824 for (int c = 0; c < rvd->vdev_children; c++)
2825 if (rvd->vdev_child[c]->vdev_ms_array == 0)
2826 need_update = B_TRUE;
2827
2828 /*
2829 * Update the config cache asychronously in case we're the
2830 * root pool, in which case the config cache isn't writable yet.
2831 */
2832 if (need_update)
2833 spa_async_request(spa, SPA_ASYNC_CONFIG_UPDATE);
2834
2835 /*
2836 * Check all DTLs to see if anything needs resilvering.
2837 */
2838 if (!dsl_scan_resilvering(spa->spa_dsl_pool) &&
2839 vdev_resilver_needed(rvd, NULL, NULL))
2840 spa_async_request(spa, SPA_ASYNC_RESILVER);
2841
2842 /*
2843 * Log the fact that we booted up (so that we can detect if
2844 * we rebooted in the middle of an operation).
2845 */
2846 spa_history_log_version(spa, "open");
2847
2848 /*
2849 * Delete any inconsistent datasets.
2850 */
2851 (void) dmu_objset_find(spa_name(spa),
2852 dsl_destroy_inconsistent, NULL, DS_FIND_CHILDREN);
2853
2854 /*
2855 * Clean up any stale temporary dataset userrefs.
2856 */
2857 dsl_pool_clean_tmp_userrefs(spa->spa_dsl_pool);
2858 }
2859
2860 return (0);
2861 }
2862
2863 static int
spa_load_retry(spa_t * spa,spa_load_state_t state,int mosconfig)2864 spa_load_retry(spa_t *spa, spa_load_state_t state, int mosconfig)
2865 {
2866 int mode = spa->spa_mode;
2867
2868 spa_unload(spa);
2869 spa_deactivate(spa);
2870
2871 spa->spa_load_max_txg = spa->spa_uberblock.ub_txg - 1;
2872
2873 spa_activate(spa, mode);
2874 spa_async_suspend(spa);
2875
2876 return (spa_load(spa, state, SPA_IMPORT_EXISTING, mosconfig));
2877 }
2878
2879 /*
2880 * If spa_load() fails this function will try loading prior txg's. If
2881 * 'state' is SPA_LOAD_RECOVER and one of these loads succeeds the pool
2882 * will be rewound to that txg. If 'state' is not SPA_LOAD_RECOVER this
2883 * function will not rewind the pool and will return the same error as
2884 * spa_load().
2885 */
2886 static int
spa_load_best(spa_t * spa,spa_load_state_t state,int mosconfig,uint64_t max_request,int rewind_flags)2887 spa_load_best(spa_t *spa, spa_load_state_t state, int mosconfig,
2888 uint64_t max_request, int rewind_flags)
2889 {
2890 nvlist_t *loadinfo = NULL;
2891 nvlist_t *config = NULL;
2892 int load_error, rewind_error;
2893 uint64_t safe_rewind_txg;
2894 uint64_t min_txg;
2895
2896 if (spa->spa_load_txg && state == SPA_LOAD_RECOVER) {
2897 spa->spa_load_max_txg = spa->spa_load_txg;
2898 spa_set_log_state(spa, SPA_LOG_CLEAR);
2899 } else {
2900 spa->spa_load_max_txg = max_request;
2901 if (max_request != UINT64_MAX)
2902 spa->spa_extreme_rewind = B_TRUE;
2903 }
2904
2905 load_error = rewind_error = spa_load(spa, state, SPA_IMPORT_EXISTING,
2906 mosconfig);
2907 if (load_error == 0)
2908 return (0);
2909
2910 if (spa->spa_root_vdev != NULL)
2911 config = spa_config_generate(spa, NULL, -1ULL, B_TRUE);
2912
2913 spa->spa_last_ubsync_txg = spa->spa_uberblock.ub_txg;
2914 spa->spa_last_ubsync_txg_ts = spa->spa_uberblock.ub_timestamp;
2915
2916 if (rewind_flags & ZPOOL_NEVER_REWIND) {
2917 nvlist_free(config);
2918 return (load_error);
2919 }
2920
2921 if (state == SPA_LOAD_RECOVER) {
2922 /* Price of rolling back is discarding txgs, including log */
2923 spa_set_log_state(spa, SPA_LOG_CLEAR);
2924 } else {
2925 /*
2926 * If we aren't rolling back save the load info from our first
2927 * import attempt so that we can restore it after attempting
2928 * to rewind.
2929 */
2930 loadinfo = spa->spa_load_info;
2931 spa->spa_load_info = fnvlist_alloc();
2932 }
2933
2934 spa->spa_load_max_txg = spa->spa_last_ubsync_txg;
2935 safe_rewind_txg = spa->spa_last_ubsync_txg - TXG_DEFER_SIZE;
2936 min_txg = (rewind_flags & ZPOOL_EXTREME_REWIND) ?
2937 TXG_INITIAL : safe_rewind_txg;
2938
2939 /*
2940 * Continue as long as we're finding errors, we're still within
2941 * the acceptable rewind range, and we're still finding uberblocks
2942 */
2943 while (rewind_error && spa->spa_uberblock.ub_txg >= min_txg &&
2944 spa->spa_uberblock.ub_txg <= spa->spa_load_max_txg) {
2945 if (spa->spa_load_max_txg < safe_rewind_txg)
2946 spa->spa_extreme_rewind = B_TRUE;
2947 rewind_error = spa_load_retry(spa, state, mosconfig);
2948 }
2949
2950 spa->spa_extreme_rewind = B_FALSE;
2951 spa->spa_load_max_txg = UINT64_MAX;
2952
2953 if (config && (rewind_error || state != SPA_LOAD_RECOVER))
2954 spa_config_set(spa, config);
2955
2956 if (state == SPA_LOAD_RECOVER) {
2957 ASSERT3P(loadinfo, ==, NULL);
2958 return (rewind_error);
2959 } else {
2960 /* Store the rewind info as part of the initial load info */
2961 fnvlist_add_nvlist(loadinfo, ZPOOL_CONFIG_REWIND_INFO,
2962 spa->spa_load_info);
2963
2964 /* Restore the initial load info */
2965 fnvlist_free(spa->spa_load_info);
2966 spa->spa_load_info = loadinfo;
2967
2968 return (load_error);
2969 }
2970 }
2971
2972 /*
2973 * Pool Open/Import
2974 *
2975 * The import case is identical to an open except that the configuration is sent
2976 * down from userland, instead of grabbed from the configuration cache. For the
2977 * case of an open, the pool configuration will exist in the
2978 * POOL_STATE_UNINITIALIZED state.
2979 *
2980 * The stats information (gen/count/ustats) is used to gather vdev statistics at
2981 * the same time open the pool, without having to keep around the spa_t in some
2982 * ambiguous state.
2983 */
2984 static int
spa_open_common(const char * pool,spa_t ** spapp,void * tag,nvlist_t * nvpolicy,nvlist_t ** config)2985 spa_open_common(const char *pool, spa_t **spapp, void *tag, nvlist_t *nvpolicy,
2986 nvlist_t **config)
2987 {
2988 spa_t *spa;
2989 spa_load_state_t state = SPA_LOAD_OPEN;
2990 int error;
2991 int locked = B_FALSE;
2992 int firstopen = B_FALSE;
2993
2994 *spapp = NULL;
2995
2996 /*
2997 * As disgusting as this is, we need to support recursive calls to this
2998 * function because dsl_dir_open() is called during spa_load(), and ends
2999 * up calling spa_open() again. The real fix is to figure out how to
3000 * avoid dsl_dir_open() calling this in the first place.
3001 */
3002 if (mutex_owner(&spa_namespace_lock) != curthread) {
3003 mutex_enter(&spa_namespace_lock);
3004 locked = B_TRUE;
3005 }
3006
3007 if ((spa = spa_lookup(pool)) == NULL) {
3008 if (locked)
3009 mutex_exit(&spa_namespace_lock);
3010 return (SET_ERROR(ENOENT));
3011 }
3012
3013 if (spa->spa_state == POOL_STATE_UNINITIALIZED) {
3014 zpool_rewind_policy_t policy;
3015
3016 firstopen = B_TRUE;
3017
3018 zpool_get_rewind_policy(nvpolicy ? nvpolicy : spa->spa_config,
3019 &policy);
3020 if (policy.zrp_request & ZPOOL_DO_REWIND)
3021 state = SPA_LOAD_RECOVER;
3022
3023 spa_activate(spa, spa_mode_global);
3024
3025 if (state != SPA_LOAD_RECOVER)
3026 spa->spa_last_ubsync_txg = spa->spa_load_txg = 0;
3027
3028 error = spa_load_best(spa, state, B_FALSE, policy.zrp_txg,
3029 policy.zrp_request);
3030
3031 if (error == EBADF) {
3032 /*
3033 * If vdev_validate() returns failure (indicated by
3034 * EBADF), it indicates that one of the vdevs indicates
3035 * that the pool has been exported or destroyed. If
3036 * this is the case, the config cache is out of sync and
3037 * we should remove the pool from the namespace.
3038 */
3039 spa_unload(spa);
3040 spa_deactivate(spa);
3041 spa_config_sync(spa, B_TRUE, B_TRUE);
3042 spa_remove(spa);
3043 if (locked)
3044 mutex_exit(&spa_namespace_lock);
3045 return (SET_ERROR(ENOENT));
3046 }
3047
3048 if (error) {
3049 /*
3050 * We can't open the pool, but we still have useful
3051 * information: the state of each vdev after the
3052 * attempted vdev_open(). Return this to the user.
3053 */
3054 if (config != NULL && spa->spa_config) {
3055 VERIFY(nvlist_dup(spa->spa_config, config,
3056 KM_SLEEP) == 0);
3057 VERIFY(nvlist_add_nvlist(*config,
3058 ZPOOL_CONFIG_LOAD_INFO,
3059 spa->spa_load_info) == 0);
3060 }
3061 spa_unload(spa);
3062 spa_deactivate(spa);
3063 spa->spa_last_open_failed = error;
3064 if (locked)
3065 mutex_exit(&spa_namespace_lock);
3066 *spapp = NULL;
3067 return (error);
3068 }
3069 }
3070
3071 spa_open_ref(spa, tag);
3072
3073 if (config != NULL)
3074 *config = spa_config_generate(spa, NULL, -1ULL, B_TRUE);
3075
3076 /*
3077 * If we've recovered the pool, pass back any information we
3078 * gathered while doing the load.
3079 */
3080 if (state == SPA_LOAD_RECOVER) {
3081 VERIFY(nvlist_add_nvlist(*config, ZPOOL_CONFIG_LOAD_INFO,
3082 spa->spa_load_info) == 0);
3083 }
3084
3085 if (locked) {
3086 spa->spa_last_open_failed = 0;
3087 spa->spa_last_ubsync_txg = 0;
3088 spa->spa_load_txg = 0;
3089 mutex_exit(&spa_namespace_lock);
3090 #ifdef __FreeBSD__
3091 #ifdef _KERNEL
3092 if (firstopen)
3093 zvol_create_minors(spa->spa_name);
3094 #endif
3095 #endif
3096 }
3097
3098 *spapp = spa;
3099
3100 return (0);
3101 }
3102
3103 int
spa_open_rewind(const char * name,spa_t ** spapp,void * tag,nvlist_t * policy,nvlist_t ** config)3104 spa_open_rewind(const char *name, spa_t **spapp, void *tag, nvlist_t *policy,
3105 nvlist_t **config)
3106 {
3107 return (spa_open_common(name, spapp, tag, policy, config));
3108 }
3109
3110 int
spa_open(const char * name,spa_t ** spapp,void * tag)3111 spa_open(const char *name, spa_t **spapp, void *tag)
3112 {
3113 return (spa_open_common(name, spapp, tag, NULL, NULL));
3114 }
3115
3116 /*
3117 * Lookup the given spa_t, incrementing the inject count in the process,
3118 * preventing it from being exported or destroyed.
3119 */
3120 spa_t *
spa_inject_addref(char * name)3121 spa_inject_addref(char *name)
3122 {
3123 spa_t *spa;
3124
3125 mutex_enter(&spa_namespace_lock);
3126 if ((spa = spa_lookup(name)) == NULL) {
3127 mutex_exit(&spa_namespace_lock);
3128 return (NULL);
3129 }
3130 spa->spa_inject_ref++;
3131 mutex_exit(&spa_namespace_lock);
3132
3133 return (spa);
3134 }
3135
3136 void
spa_inject_delref(spa_t * spa)3137 spa_inject_delref(spa_t *spa)
3138 {
3139 mutex_enter(&spa_namespace_lock);
3140 spa->spa_inject_ref--;
3141 mutex_exit(&spa_namespace_lock);
3142 }
3143
3144 /*
3145 * Add spares device information to the nvlist.
3146 */
3147 static void
spa_add_spares(spa_t * spa,nvlist_t * config)3148 spa_add_spares(spa_t *spa, nvlist_t *config)
3149 {
3150 nvlist_t **spares;
3151 uint_t i, nspares;
3152 nvlist_t *nvroot;
3153 uint64_t guid;
3154 vdev_stat_t *vs;
3155 uint_t vsc;
3156 uint64_t pool;
3157
3158 ASSERT(spa_config_held(spa, SCL_CONFIG, RW_READER));
3159
3160 if (spa->spa_spares.sav_count == 0)
3161 return;
3162
3163 VERIFY(nvlist_lookup_nvlist(config,
3164 ZPOOL_CONFIG_VDEV_TREE, &nvroot) == 0);
3165 VERIFY(nvlist_lookup_nvlist_array(spa->spa_spares.sav_config,
3166 ZPOOL_CONFIG_SPARES, &spares, &nspares) == 0);
3167 if (nspares != 0) {
3168 VERIFY(nvlist_add_nvlist_array(nvroot,
3169 ZPOOL_CONFIG_SPARES, spares, nspares) == 0);
3170 VERIFY(nvlist_lookup_nvlist_array(nvroot,
3171 ZPOOL_CONFIG_SPARES, &spares, &nspares) == 0);
3172
3173 /*
3174 * Go through and find any spares which have since been
3175 * repurposed as an active spare. If this is the case, update
3176 * their status appropriately.
3177 */
3178 for (i = 0; i < nspares; i++) {
3179 VERIFY(nvlist_lookup_uint64(spares[i],
3180 ZPOOL_CONFIG_GUID, &guid) == 0);
3181 if (spa_spare_exists(guid, &pool, NULL) &&
3182 pool != 0ULL) {
3183 VERIFY(nvlist_lookup_uint64_array(
3184 spares[i], ZPOOL_CONFIG_VDEV_STATS,
3185 (uint64_t **)&vs, &vsc) == 0);
3186 vs->vs_state = VDEV_STATE_CANT_OPEN;
3187 vs->vs_aux = VDEV_AUX_SPARED;
3188 }
3189 }
3190 }
3191 }
3192
3193 /*
3194 * Add l2cache device information to the nvlist, including vdev stats.
3195 */
3196 static void
spa_add_l2cache(spa_t * spa,nvlist_t * config)3197 spa_add_l2cache(spa_t *spa, nvlist_t *config)
3198 {
3199 nvlist_t **l2cache;
3200 uint_t i, j, nl2cache;
3201 nvlist_t *nvroot;
3202 uint64_t guid;
3203 vdev_t *vd;
3204 vdev_stat_t *vs;
3205 uint_t vsc;
3206
3207 ASSERT(spa_config_held(spa, SCL_CONFIG, RW_READER));
3208
3209 if (spa->spa_l2cache.sav_count == 0)
3210 return;
3211
3212 VERIFY(nvlist_lookup_nvlist(config,
3213 ZPOOL_CONFIG_VDEV_TREE, &nvroot) == 0);
3214 VERIFY(nvlist_lookup_nvlist_array(spa->spa_l2cache.sav_config,
3215 ZPOOL_CONFIG_L2CACHE, &l2cache, &nl2cache) == 0);
3216 if (nl2cache != 0) {
3217 VERIFY(nvlist_add_nvlist_array(nvroot,
3218 ZPOOL_CONFIG_L2CACHE, l2cache, nl2cache) == 0);
3219 VERIFY(nvlist_lookup_nvlist_array(nvroot,
3220 ZPOOL_CONFIG_L2CACHE, &l2cache, &nl2cache) == 0);
3221
3222 /*
3223 * Update level 2 cache device stats.
3224 */
3225
3226 for (i = 0; i < nl2cache; i++) {
3227 VERIFY(nvlist_lookup_uint64(l2cache[i],
3228 ZPOOL_CONFIG_GUID, &guid) == 0);
3229
3230 vd = NULL;
3231 for (j = 0; j < spa->spa_l2cache.sav_count; j++) {
3232 if (guid ==
3233 spa->spa_l2cache.sav_vdevs[j]->vdev_guid) {
3234 vd = spa->spa_l2cache.sav_vdevs[j];
3235 break;
3236 }
3237 }
3238 ASSERT(vd != NULL);
3239
3240 VERIFY(nvlist_lookup_uint64_array(l2cache[i],
3241 ZPOOL_CONFIG_VDEV_STATS, (uint64_t **)&vs, &vsc)
3242 == 0);
3243 vdev_get_stats(vd, vs);
3244 }
3245 }
3246 }
3247
3248 static void
spa_add_feature_stats(spa_t * spa,nvlist_t * config)3249 spa_add_feature_stats(spa_t *spa, nvlist_t *config)
3250 {
3251 nvlist_t *features;
3252 zap_cursor_t zc;
3253 zap_attribute_t za;
3254
3255 ASSERT(spa_config_held(spa, SCL_CONFIG, RW_READER));
3256 VERIFY(nvlist_alloc(&features, NV_UNIQUE_NAME, KM_SLEEP) == 0);
3257
3258 /* We may be unable to read features if pool is suspended. */
3259 if (spa_suspended(spa))
3260 goto out;
3261
3262 if (spa->spa_feat_for_read_obj != 0) {
3263 for (zap_cursor_init(&zc, spa->spa_meta_objset,
3264 spa->spa_feat_for_read_obj);
3265 zap_cursor_retrieve(&zc, &za) == 0;
3266 zap_cursor_advance(&zc)) {
3267 ASSERT(za.za_integer_length == sizeof (uint64_t) &&
3268 za.za_num_integers == 1);
3269 VERIFY3U(0, ==, nvlist_add_uint64(features, za.za_name,
3270 za.za_first_integer));
3271 }
3272 zap_cursor_fini(&zc);
3273 }
3274
3275 if (spa->spa_feat_for_write_obj != 0) {
3276 for (zap_cursor_init(&zc, spa->spa_meta_objset,
3277 spa->spa_feat_for_write_obj);
3278 zap_cursor_retrieve(&zc, &za) == 0;
3279 zap_cursor_advance(&zc)) {
3280 ASSERT(za.za_integer_length == sizeof (uint64_t) &&
3281 za.za_num_integers == 1);
3282 VERIFY3U(0, ==, nvlist_add_uint64(features, za.za_name,
3283 za.za_first_integer));
3284 }
3285 zap_cursor_fini(&zc);
3286 }
3287
3288 out:
3289 VERIFY(nvlist_add_nvlist(config, ZPOOL_CONFIG_FEATURE_STATS,
3290 features) == 0);
3291 nvlist_free(features);
3292 }
3293
3294 int
spa_get_stats(const char * name,nvlist_t ** config,char * altroot,size_t buflen)3295 spa_get_stats(const char *name, nvlist_t **config,
3296 char *altroot, size_t buflen)
3297 {
3298 int error;
3299 spa_t *spa;
3300
3301 *config = NULL;
3302 error = spa_open_common(name, &spa, FTAG, NULL, config);
3303
3304 if (spa != NULL) {
3305 /*
3306 * This still leaves a window of inconsistency where the spares
3307 * or l2cache devices could change and the config would be
3308 * self-inconsistent.
3309 */
3310 spa_config_enter(spa, SCL_CONFIG, FTAG, RW_READER);
3311
3312 if (*config != NULL) {
3313 uint64_t loadtimes[2];
3314
3315 loadtimes[0] = spa->spa_loaded_ts.tv_sec;
3316 loadtimes[1] = spa->spa_loaded_ts.tv_nsec;
3317 VERIFY(nvlist_add_uint64_array(*config,
3318 ZPOOL_CONFIG_LOADED_TIME, loadtimes, 2) == 0);
3319
3320 VERIFY(nvlist_add_uint64(*config,
3321 ZPOOL_CONFIG_ERRCOUNT,
3322 spa_get_errlog_size(spa)) == 0);
3323
3324 if (spa_suspended(spa))
3325 VERIFY(nvlist_add_uint64(*config,
3326 ZPOOL_CONFIG_SUSPENDED,
3327 spa->spa_failmode) == 0);
3328
3329 spa_add_spares(spa, *config);
3330 spa_add_l2cache(spa, *config);
3331 spa_add_feature_stats(spa, *config);
3332 }
3333 }
3334
3335 /*
3336 * We want to get the alternate root even for faulted pools, so we cheat
3337 * and call spa_lookup() directly.
3338 */
3339 if (altroot) {
3340 if (spa == NULL) {
3341 mutex_enter(&spa_namespace_lock);
3342 spa = spa_lookup(name);
3343 if (spa)
3344 spa_altroot(spa, altroot, buflen);
3345 else
3346 altroot[0] = '\0';
3347 spa = NULL;
3348 mutex_exit(&spa_namespace_lock);
3349 } else {
3350 spa_altroot(spa, altroot, buflen);
3351 }
3352 }
3353
3354 if (spa != NULL) {
3355 spa_config_exit(spa, SCL_CONFIG, FTAG);
3356 spa_close(spa, FTAG);
3357 }
3358
3359 return (error);
3360 }
3361
3362 /*
3363 * Validate that the auxiliary device array is well formed. We must have an
3364 * array of nvlists, each which describes a valid leaf vdev. If this is an
3365 * import (mode is VDEV_ALLOC_SPARE), then we allow corrupted spares to be
3366 * specified, as long as they are well-formed.
3367 */
3368 static int
spa_validate_aux_devs(spa_t * spa,nvlist_t * nvroot,uint64_t crtxg,int mode,spa_aux_vdev_t * sav,const char * config,uint64_t version,vdev_labeltype_t label)3369 spa_validate_aux_devs(spa_t *spa, nvlist_t *nvroot, uint64_t crtxg, int mode,
3370 spa_aux_vdev_t *sav, const char *config, uint64_t version,
3371 vdev_labeltype_t label)
3372 {
3373 nvlist_t **dev;
3374 uint_t i, ndev;
3375 vdev_t *vd;
3376 int error;
3377
3378 ASSERT(spa_config_held(spa, SCL_ALL, RW_WRITER) == SCL_ALL);
3379
3380 /*
3381 * It's acceptable to have no devs specified.
3382 */
3383 if (nvlist_lookup_nvlist_array(nvroot, config, &dev, &ndev) != 0)
3384 return (0);
3385
3386 if (ndev == 0)
3387 return (SET_ERROR(EINVAL));
3388
3389 /*
3390 * Make sure the pool is formatted with a version that supports this
3391 * device type.
3392 */
3393 if (spa_version(spa) < version)
3394 return (SET_ERROR(ENOTSUP));
3395
3396 /*
3397 * Set the pending device list so we correctly handle device in-use
3398 * checking.
3399 */
3400 sav->sav_pending = dev;
3401 sav->sav_npending = ndev;
3402
3403 for (i = 0; i < ndev; i++) {
3404 if ((error = spa_config_parse(spa, &vd, dev[i], NULL, 0,
3405 mode)) != 0)
3406 goto out;
3407
3408 if (!vd->vdev_ops->vdev_op_leaf) {
3409 vdev_free(vd);
3410 error = SET_ERROR(EINVAL);
3411 goto out;
3412 }
3413
3414 /*
3415 * The L2ARC currently only supports disk devices in
3416 * kernel context. For user-level testing, we allow it.
3417 */
3418 #ifdef _KERNEL
3419 if ((strcmp(config, ZPOOL_CONFIG_L2CACHE) == 0) &&
3420 strcmp(vd->vdev_ops->vdev_op_type, VDEV_TYPE_DISK) != 0) {
3421 error = SET_ERROR(ENOTBLK);
3422 vdev_free(vd);
3423 goto out;
3424 }
3425 #endif
3426 vd->vdev_top = vd;
3427
3428 if ((error = vdev_open(vd)) == 0 &&
3429 (error = vdev_label_init(vd, crtxg, label)) == 0) {
3430 VERIFY(nvlist_add_uint64(dev[i], ZPOOL_CONFIG_GUID,
3431 vd->vdev_guid) == 0);
3432 }
3433
3434 vdev_free(vd);
3435
3436 if (error &&
3437 (mode != VDEV_ALLOC_SPARE && mode != VDEV_ALLOC_L2CACHE))
3438 goto out;
3439 else
3440 error = 0;
3441 }
3442
3443 out:
3444 sav->sav_pending = NULL;
3445 sav->sav_npending = 0;
3446 return (error);
3447 }
3448
3449 static int
spa_validate_aux(spa_t * spa,nvlist_t * nvroot,uint64_t crtxg,int mode)3450 spa_validate_aux(spa_t *spa, nvlist_t *nvroot, uint64_t crtxg, int mode)
3451 {
3452 int error;
3453
3454 ASSERT(spa_config_held(spa, SCL_ALL, RW_WRITER) == SCL_ALL);
3455
3456 if ((error = spa_validate_aux_devs(spa, nvroot, crtxg, mode,
3457 &spa->spa_spares, ZPOOL_CONFIG_SPARES, SPA_VERSION_SPARES,
3458 VDEV_LABEL_SPARE)) != 0) {
3459 return (error);
3460 }
3461
3462 return (spa_validate_aux_devs(spa, nvroot, crtxg, mode,
3463 &spa->spa_l2cache, ZPOOL_CONFIG_L2CACHE, SPA_VERSION_L2CACHE,
3464 VDEV_LABEL_L2CACHE));
3465 }
3466
3467 static void
spa_set_aux_vdevs(spa_aux_vdev_t * sav,nvlist_t ** devs,int ndevs,const char * config)3468 spa_set_aux_vdevs(spa_aux_vdev_t *sav, nvlist_t **devs, int ndevs,
3469 const char *config)
3470 {
3471 int i;
3472
3473 if (sav->sav_config != NULL) {
3474 nvlist_t **olddevs;
3475 uint_t oldndevs;
3476 nvlist_t **newdevs;
3477
3478 /*
3479 * Generate new dev list by concatentating with the
3480 * current dev list.
3481 */
3482 VERIFY(nvlist_lookup_nvlist_array(sav->sav_config, config,
3483 &olddevs, &oldndevs) == 0);
3484
3485 newdevs = kmem_alloc(sizeof (void *) *
3486 (ndevs + oldndevs), KM_SLEEP);
3487 for (i = 0; i < oldndevs; i++)
3488 VERIFY(nvlist_dup(olddevs[i], &newdevs[i],
3489 KM_SLEEP) == 0);
3490 for (i = 0; i < ndevs; i++)
3491 VERIFY(nvlist_dup(devs[i], &newdevs[i + oldndevs],
3492 KM_SLEEP) == 0);
3493
3494 VERIFY(nvlist_remove(sav->sav_config, config,
3495 DATA_TYPE_NVLIST_ARRAY) == 0);
3496
3497 VERIFY(nvlist_add_nvlist_array(sav->sav_config,
3498 config, newdevs, ndevs + oldndevs) == 0);
3499 for (i = 0; i < oldndevs + ndevs; i++)
3500 nvlist_free(newdevs[i]);
3501 kmem_free(newdevs, (oldndevs + ndevs) * sizeof (void *));
3502 } else {
3503 /*
3504 * Generate a new dev list.
3505 */
3506 VERIFY(nvlist_alloc(&sav->sav_config, NV_UNIQUE_NAME,
3507 KM_SLEEP) == 0);
3508 VERIFY(nvlist_add_nvlist_array(sav->sav_config, config,
3509 devs, ndevs) == 0);
3510 }
3511 }
3512
3513 /*
3514 * Stop and drop level 2 ARC devices
3515 */
3516 void
spa_l2cache_drop(spa_t * spa)3517 spa_l2cache_drop(spa_t *spa)
3518 {
3519 vdev_t *vd;
3520 int i;
3521 spa_aux_vdev_t *sav = &spa->spa_l2cache;
3522
3523 for (i = 0; i < sav->sav_count; i++) {
3524 uint64_t pool;
3525
3526 vd = sav->sav_vdevs[i];
3527 ASSERT(vd != NULL);
3528
3529 if (spa_l2cache_exists(vd->vdev_guid, &pool) &&
3530 pool != 0ULL && l2arc_vdev_present(vd))
3531 l2arc_remove_vdev(vd);
3532 }
3533 }
3534
3535 /*
3536 * Pool Creation
3537 */
3538 int
spa_create(const char * pool,nvlist_t * nvroot,nvlist_t * props,nvlist_t * zplprops)3539 spa_create(const char *pool, nvlist_t *nvroot, nvlist_t *props,
3540 nvlist_t *zplprops)
3541 {
3542 spa_t *spa;
3543 char *altroot = NULL;
3544 vdev_t *rvd;
3545 dsl_pool_t *dp;
3546 dmu_tx_t *tx;
3547 int error = 0;
3548 uint64_t txg = TXG_INITIAL;
3549 nvlist_t **spares, **l2cache;
3550 uint_t nspares, nl2cache;
3551 uint64_t version, obj;
3552 boolean_t has_features;
3553
3554 /*
3555 * If this pool already exists, return failure.
3556 */
3557 mutex_enter(&spa_namespace_lock);
3558 if (spa_lookup(pool) != NULL) {
3559 mutex_exit(&spa_namespace_lock);
3560 return (SET_ERROR(EEXIST));
3561 }
3562
3563 /*
3564 * Allocate a new spa_t structure.
3565 */
3566 (void) nvlist_lookup_string(props,
3567 zpool_prop_to_name(ZPOOL_PROP_ALTROOT), &altroot);
3568 spa = spa_add(pool, NULL, altroot);
3569 spa_activate(spa, spa_mode_global);
3570
3571 if (props && (error = spa_prop_validate(spa, props))) {
3572 spa_deactivate(spa);
3573 spa_remove(spa);
3574 mutex_exit(&spa_namespace_lock);
3575 return (error);
3576 }
3577
3578 has_features = B_FALSE;
3579 for (nvpair_t *elem = nvlist_next_nvpair(props, NULL);
3580 elem != NULL; elem = nvlist_next_nvpair(props, elem)) {
3581 if (zpool_prop_feature(nvpair_name(elem)))
3582 has_features = B_TRUE;
3583 }
3584
3585 if (has_features || nvlist_lookup_uint64(props,
3586 zpool_prop_to_name(ZPOOL_PROP_VERSION), &version) != 0) {
3587 version = SPA_VERSION;
3588 }
3589 ASSERT(SPA_VERSION_IS_SUPPORTED(version));
3590
3591 spa->spa_first_txg = txg;
3592 spa->spa_uberblock.ub_txg = txg - 1;
3593 spa->spa_uberblock.ub_version = version;
3594 spa->spa_ubsync = spa->spa_uberblock;
3595
3596 /*
3597 * Create "The Godfather" zio to hold all async IOs
3598 */
3599 spa->spa_async_zio_root = kmem_alloc(max_ncpus * sizeof (void *),
3600 KM_SLEEP);
3601 for (int i = 0; i < max_ncpus; i++) {
3602 spa->spa_async_zio_root[i] = zio_root(spa, NULL, NULL,
3603 ZIO_FLAG_CANFAIL | ZIO_FLAG_SPECULATIVE |
3604 ZIO_FLAG_GODFATHER);
3605 }
3606
3607 /*
3608 * Create the root vdev.
3609 */
3610 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
3611
3612 error = spa_config_parse(spa, &rvd, nvroot, NULL, 0, VDEV_ALLOC_ADD);
3613
3614 ASSERT(error != 0 || rvd != NULL);
3615 ASSERT(error != 0 || spa->spa_root_vdev == rvd);
3616
3617 if (error == 0 && !zfs_allocatable_devs(nvroot))
3618 error = SET_ERROR(EINVAL);
3619
3620 if (error == 0 &&
3621 (error = vdev_create(rvd, txg, B_FALSE)) == 0 &&
3622 (error = spa_validate_aux(spa, nvroot, txg,
3623 VDEV_ALLOC_ADD)) == 0) {
3624 for (int c = 0; c < rvd->vdev_children; c++) {
3625 vdev_ashift_optimize(rvd->vdev_child[c]);
3626 vdev_metaslab_set_size(rvd->vdev_child[c]);
3627 vdev_expand(rvd->vdev_child[c], txg);
3628 }
3629 }
3630
3631 spa_config_exit(spa, SCL_ALL, FTAG);
3632
3633 if (error != 0) {
3634 spa_unload(spa);
3635 spa_deactivate(spa);
3636 spa_remove(spa);
3637 mutex_exit(&spa_namespace_lock);
3638 return (error);
3639 }
3640
3641 /*
3642 * Get the list of spares, if specified.
3643 */
3644 if (nvlist_lookup_nvlist_array(nvroot, ZPOOL_CONFIG_SPARES,
3645 &spares, &nspares) == 0) {
3646 VERIFY(nvlist_alloc(&spa->spa_spares.sav_config, NV_UNIQUE_NAME,
3647 KM_SLEEP) == 0);
3648 VERIFY(nvlist_add_nvlist_array(spa->spa_spares.sav_config,
3649 ZPOOL_CONFIG_SPARES, spares, nspares) == 0);
3650 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
3651 spa_load_spares(spa);
3652 spa_config_exit(spa, SCL_ALL, FTAG);
3653 spa->spa_spares.sav_sync = B_TRUE;
3654 }
3655
3656 /*
3657 * Get the list of level 2 cache devices, if specified.
3658 */
3659 if (nvlist_lookup_nvlist_array(nvroot, ZPOOL_CONFIG_L2CACHE,
3660 &l2cache, &nl2cache) == 0) {
3661 VERIFY(nvlist_alloc(&spa->spa_l2cache.sav_config,
3662 NV_UNIQUE_NAME, KM_SLEEP) == 0);
3663 VERIFY(nvlist_add_nvlist_array(spa->spa_l2cache.sav_config,
3664 ZPOOL_CONFIG_L2CACHE, l2cache, nl2cache) == 0);
3665 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
3666 spa_load_l2cache(spa);
3667 spa_config_exit(spa, SCL_ALL, FTAG);
3668 spa->spa_l2cache.sav_sync = B_TRUE;
3669 }
3670
3671 spa->spa_is_initializing = B_TRUE;
3672 spa->spa_dsl_pool = dp = dsl_pool_create(spa, zplprops, txg);
3673 spa->spa_meta_objset = dp->dp_meta_objset;
3674 spa->spa_is_initializing = B_FALSE;
3675
3676 /*
3677 * Create DDTs (dedup tables).
3678 */
3679 ddt_create(spa);
3680
3681 spa_update_dspace(spa);
3682
3683 tx = dmu_tx_create_assigned(dp, txg);
3684
3685 /*
3686 * Create the pool config object.
3687 */
3688 spa->spa_config_object = dmu_object_alloc(spa->spa_meta_objset,
3689 DMU_OT_PACKED_NVLIST, SPA_CONFIG_BLOCKSIZE,
3690 DMU_OT_PACKED_NVLIST_SIZE, sizeof (uint64_t), tx);
3691
3692 if (zap_add(spa->spa_meta_objset,
3693 DMU_POOL_DIRECTORY_OBJECT, DMU_POOL_CONFIG,
3694 sizeof (uint64_t), 1, &spa->spa_config_object, tx) != 0) {
3695 cmn_err(CE_PANIC, "failed to add pool config");
3696 }
3697
3698 if (spa_version(spa) >= SPA_VERSION_FEATURES)
3699 spa_feature_create_zap_objects(spa, tx);
3700
3701 if (zap_add(spa->spa_meta_objset,
3702 DMU_POOL_DIRECTORY_OBJECT, DMU_POOL_CREATION_VERSION,
3703 sizeof (uint64_t), 1, &version, tx) != 0) {
3704 cmn_err(CE_PANIC, "failed to add pool version");
3705 }
3706
3707 /* Newly created pools with the right version are always deflated. */
3708 if (version >= SPA_VERSION_RAIDZ_DEFLATE) {
3709 spa->spa_deflate = TRUE;
3710 if (zap_add(spa->spa_meta_objset,
3711 DMU_POOL_DIRECTORY_OBJECT, DMU_POOL_DEFLATE,
3712 sizeof (uint64_t), 1, &spa->spa_deflate, tx) != 0) {
3713 cmn_err(CE_PANIC, "failed to add deflate");
3714 }
3715 }
3716
3717 /*
3718 * Create the deferred-free bpobj. Turn off compression
3719 * because sync-to-convergence takes longer if the blocksize
3720 * keeps changing.
3721 */
3722 obj = bpobj_alloc(spa->spa_meta_objset, 1 << 14, tx);
3723 dmu_object_set_compress(spa->spa_meta_objset, obj,
3724 ZIO_COMPRESS_OFF, tx);
3725 if (zap_add(spa->spa_meta_objset,
3726 DMU_POOL_DIRECTORY_OBJECT, DMU_POOL_SYNC_BPOBJ,
3727 sizeof (uint64_t), 1, &obj, tx) != 0) {
3728 cmn_err(CE_PANIC, "failed to add bpobj");
3729 }
3730 VERIFY3U(0, ==, bpobj_open(&spa->spa_deferred_bpobj,
3731 spa->spa_meta_objset, obj));
3732
3733 /*
3734 * Create the pool's history object.
3735 */
3736 if (version >= SPA_VERSION_ZPOOL_HISTORY)
3737 spa_history_create_obj(spa, tx);
3738
3739 /*
3740 * Set pool properties.
3741 */
3742 spa->spa_bootfs = zpool_prop_default_numeric(ZPOOL_PROP_BOOTFS);
3743 spa->spa_delegation = zpool_prop_default_numeric(ZPOOL_PROP_DELEGATION);
3744 spa->spa_failmode = zpool_prop_default_numeric(ZPOOL_PROP_FAILUREMODE);
3745 spa->spa_autoexpand = zpool_prop_default_numeric(ZPOOL_PROP_AUTOEXPAND);
3746
3747 if (props != NULL) {
3748 spa_configfile_set(spa, props, B_FALSE);
3749 spa_sync_props(props, tx);
3750 }
3751
3752 dmu_tx_commit(tx);
3753
3754 spa->spa_sync_on = B_TRUE;
3755 txg_sync_start(spa->spa_dsl_pool);
3756
3757 /*
3758 * We explicitly wait for the first transaction to complete so that our
3759 * bean counters are appropriately updated.
3760 */
3761 txg_wait_synced(spa->spa_dsl_pool, txg);
3762
3763 spa_config_sync(spa, B_FALSE, B_TRUE);
3764
3765 spa_history_log_version(spa, "create");
3766 spa_event_notify(spa, NULL, ESC_ZFS_POOL_CREATE);
3767
3768 spa->spa_minref = refcount_count(&spa->spa_refcount);
3769
3770 mutex_exit(&spa_namespace_lock);
3771
3772 return (0);
3773 }
3774
3775 #ifdef _KERNEL
3776 #if defined(sun)
3777 /*
3778 * Get the root pool information from the root disk, then import the root pool
3779 * during the system boot up time.
3780 */
3781 extern int vdev_disk_read_rootlabel(char *, char *, nvlist_t **);
3782
3783 static nvlist_t *
spa_generate_rootconf(char * devpath,char * devid,uint64_t * guid)3784 spa_generate_rootconf(char *devpath, char *devid, uint64_t *guid)
3785 {
3786 nvlist_t *config;
3787 nvlist_t *nvtop, *nvroot;
3788 uint64_t pgid;
3789
3790 if (vdev_disk_read_rootlabel(devpath, devid, &config) != 0)
3791 return (NULL);
3792
3793 /*
3794 * Add this top-level vdev to the child array.
3795 */
3796 VERIFY(nvlist_lookup_nvlist(config, ZPOOL_CONFIG_VDEV_TREE,
3797 &nvtop) == 0);
3798 VERIFY(nvlist_lookup_uint64(config, ZPOOL_CONFIG_POOL_GUID,
3799 &pgid) == 0);
3800 VERIFY(nvlist_lookup_uint64(config, ZPOOL_CONFIG_GUID, guid) == 0);
3801
3802 /*
3803 * Put this pool's top-level vdevs into a root vdev.
3804 */
3805 VERIFY(nvlist_alloc(&nvroot, NV_UNIQUE_NAME, KM_SLEEP) == 0);
3806 VERIFY(nvlist_add_string(nvroot, ZPOOL_CONFIG_TYPE,
3807 VDEV_TYPE_ROOT) == 0);
3808 VERIFY(nvlist_add_uint64(nvroot, ZPOOL_CONFIG_ID, 0ULL) == 0);
3809 VERIFY(nvlist_add_uint64(nvroot, ZPOOL_CONFIG_GUID, pgid) == 0);
3810 VERIFY(nvlist_add_nvlist_array(nvroot, ZPOOL_CONFIG_CHILDREN,
3811 &nvtop, 1) == 0);
3812
3813 /*
3814 * Replace the existing vdev_tree with the new root vdev in
3815 * this pool's configuration (remove the old, add the new).
3816 */
3817 VERIFY(nvlist_add_nvlist(config, ZPOOL_CONFIG_VDEV_TREE, nvroot) == 0);
3818 nvlist_free(nvroot);
3819 return (config);
3820 }
3821
3822 /*
3823 * Walk the vdev tree and see if we can find a device with "better"
3824 * configuration. A configuration is "better" if the label on that
3825 * device has a more recent txg.
3826 */
3827 static void
spa_alt_rootvdev(vdev_t * vd,vdev_t ** avd,uint64_t * txg)3828 spa_alt_rootvdev(vdev_t *vd, vdev_t **avd, uint64_t *txg)
3829 {
3830 for (int c = 0; c < vd->vdev_children; c++)
3831 spa_alt_rootvdev(vd->vdev_child[c], avd, txg);
3832
3833 if (vd->vdev_ops->vdev_op_leaf) {
3834 nvlist_t *label;
3835 uint64_t label_txg;
3836
3837 if (vdev_disk_read_rootlabel(vd->vdev_physpath, vd->vdev_devid,
3838 &label) != 0)
3839 return;
3840
3841 VERIFY(nvlist_lookup_uint64(label, ZPOOL_CONFIG_POOL_TXG,
3842 &label_txg) == 0);
3843
3844 /*
3845 * Do we have a better boot device?
3846 */
3847 if (label_txg > *txg) {
3848 *txg = label_txg;
3849 *avd = vd;
3850 }
3851 nvlist_free(label);
3852 }
3853 }
3854
3855 /*
3856 * Import a root pool.
3857 *
3858 * For x86. devpath_list will consist of devid and/or physpath name of
3859 * the vdev (e.g. "id1,sd@SSEAGATE..." or "/pci@1f,0/ide@d/disk@0,0:a").
3860 * The GRUB "findroot" command will return the vdev we should boot.
3861 *
3862 * For Sparc, devpath_list consists the physpath name of the booting device
3863 * no matter the rootpool is a single device pool or a mirrored pool.
3864 * e.g.
3865 * "/pci@1f,0/ide@d/disk@0,0:a"
3866 */
3867 int
spa_import_rootpool(char * devpath,char * devid)3868 spa_import_rootpool(char *devpath, char *devid)
3869 {
3870 spa_t *spa;
3871 vdev_t *rvd, *bvd, *avd = NULL;
3872 nvlist_t *config, *nvtop;
3873 uint64_t guid, txg;
3874 char *pname;
3875 int error;
3876
3877 /*
3878 * Read the label from the boot device and generate a configuration.
3879 */
3880 config = spa_generate_rootconf(devpath, devid, &guid);
3881 #if defined(_OBP) && defined(_KERNEL)
3882 if (config == NULL) {
3883 if (strstr(devpath, "/iscsi/ssd") != NULL) {
3884 /* iscsi boot */
3885 get_iscsi_bootpath_phy(devpath);
3886 config = spa_generate_rootconf(devpath, devid, &guid);
3887 }
3888 }
3889 #endif
3890 if (config == NULL) {
3891 cmn_err(CE_NOTE, "Cannot read the pool label from '%s'",
3892 devpath);
3893 return (SET_ERROR(EIO));
3894 }
3895
3896 VERIFY(nvlist_lookup_string(config, ZPOOL_CONFIG_POOL_NAME,
3897 &pname) == 0);
3898 VERIFY(nvlist_lookup_uint64(config, ZPOOL_CONFIG_POOL_TXG, &txg) == 0);
3899
3900 mutex_enter(&spa_namespace_lock);
3901 if ((spa = spa_lookup(pname)) != NULL) {
3902 /*
3903 * Remove the existing root pool from the namespace so that we
3904 * can replace it with the correct config we just read in.
3905 */
3906 spa_remove(spa);
3907 }
3908
3909 spa = spa_add(pname, config, NULL);
3910 spa->spa_is_root = B_TRUE;
3911 spa->spa_import_flags = ZFS_IMPORT_VERBATIM;
3912
3913 /*
3914 * Build up a vdev tree based on the boot device's label config.
3915 */
3916 VERIFY(nvlist_lookup_nvlist(config, ZPOOL_CONFIG_VDEV_TREE,
3917 &nvtop) == 0);
3918 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
3919 error = spa_config_parse(spa, &rvd, nvtop, NULL, 0,
3920 VDEV_ALLOC_ROOTPOOL);
3921 spa_config_exit(spa, SCL_ALL, FTAG);
3922 if (error) {
3923 mutex_exit(&spa_namespace_lock);
3924 nvlist_free(config);
3925 cmn_err(CE_NOTE, "Can not parse the config for pool '%s'",
3926 pname);
3927 return (error);
3928 }
3929
3930 /*
3931 * Get the boot vdev.
3932 */
3933 if ((bvd = vdev_lookup_by_guid(rvd, guid)) == NULL) {
3934 cmn_err(CE_NOTE, "Can not find the boot vdev for guid %llu",
3935 (u_longlong_t)guid);
3936 error = SET_ERROR(ENOENT);
3937 goto out;
3938 }
3939
3940 /*
3941 * Determine if there is a better boot device.
3942 */
3943 avd = bvd;
3944 spa_alt_rootvdev(rvd, &avd, &txg);
3945 if (avd != bvd) {
3946 cmn_err(CE_NOTE, "The boot device is 'degraded'. Please "
3947 "try booting from '%s'", avd->vdev_path);
3948 error = SET_ERROR(EINVAL);
3949 goto out;
3950 }
3951
3952 /*
3953 * If the boot device is part of a spare vdev then ensure that
3954 * we're booting off the active spare.
3955 */
3956 if (bvd->vdev_parent->vdev_ops == &vdev_spare_ops &&
3957 !bvd->vdev_isspare) {
3958 cmn_err(CE_NOTE, "The boot device is currently spared. Please "
3959 "try booting from '%s'",
3960 bvd->vdev_parent->
3961 vdev_child[bvd->vdev_parent->vdev_children - 1]->vdev_path);
3962 error = SET_ERROR(EINVAL);
3963 goto out;
3964 }
3965
3966 error = 0;
3967 out:
3968 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
3969 vdev_free(rvd);
3970 spa_config_exit(spa, SCL_ALL, FTAG);
3971 mutex_exit(&spa_namespace_lock);
3972
3973 nvlist_free(config);
3974 return (error);
3975 }
3976
3977 #else
3978
3979 extern int vdev_geom_read_pool_label(const char *name, nvlist_t ***configs,
3980 uint64_t *count);
3981
3982 static nvlist_t *
spa_generate_rootconf(const char * name)3983 spa_generate_rootconf(const char *name)
3984 {
3985 nvlist_t **configs, **tops;
3986 nvlist_t *config;
3987 nvlist_t *best_cfg, *nvtop, *nvroot;
3988 uint64_t *holes;
3989 uint64_t best_txg;
3990 uint64_t nchildren;
3991 uint64_t pgid;
3992 uint64_t count;
3993 uint64_t i;
3994 uint_t nholes;
3995
3996 if (vdev_geom_read_pool_label(name, &configs, &count) != 0)
3997 return (NULL);
3998
3999 ASSERT3U(count, !=, 0);
4000 best_txg = 0;
4001 for (i = 0; i < count; i++) {
4002 uint64_t txg;
4003
4004 VERIFY(nvlist_lookup_uint64(configs[i], ZPOOL_CONFIG_POOL_TXG,
4005 &txg) == 0);
4006 if (txg > best_txg) {
4007 best_txg = txg;
4008 best_cfg = configs[i];
4009 }
4010 }
4011
4012 /*
4013 * Multi-vdev root pool configuration discovery is not supported yet.
4014 */
4015 nchildren = 1;
4016 nvlist_lookup_uint64(best_cfg, ZPOOL_CONFIG_VDEV_CHILDREN, &nchildren);
4017 holes = NULL;
4018 nvlist_lookup_uint64_array(best_cfg, ZPOOL_CONFIG_HOLE_ARRAY,
4019 &holes, &nholes);
4020
4021 tops = kmem_zalloc(nchildren * sizeof(void *), KM_SLEEP);
4022 for (i = 0; i < nchildren; i++) {
4023 if (i >= count)
4024 break;
4025 if (configs[i] == NULL)
4026 continue;
4027 VERIFY(nvlist_lookup_nvlist(configs[i], ZPOOL_CONFIG_VDEV_TREE,
4028 &nvtop) == 0);
4029 nvlist_dup(nvtop, &tops[i], KM_SLEEP);
4030 }
4031 for (i = 0; holes != NULL && i < nholes; i++) {
4032 if (i >= nchildren)
4033 continue;
4034 if (tops[holes[i]] != NULL)
4035 continue;
4036 nvlist_alloc(&tops[holes[i]], NV_UNIQUE_NAME, KM_SLEEP);
4037 VERIFY(nvlist_add_string(tops[holes[i]], ZPOOL_CONFIG_TYPE,
4038 VDEV_TYPE_HOLE) == 0);
4039 VERIFY(nvlist_add_uint64(tops[holes[i]], ZPOOL_CONFIG_ID,
4040 holes[i]) == 0);
4041 VERIFY(nvlist_add_uint64(tops[holes[i]], ZPOOL_CONFIG_GUID,
4042 0) == 0);
4043 }
4044 for (i = 0; i < nchildren; i++) {
4045 if (tops[i] != NULL)
4046 continue;
4047 nvlist_alloc(&tops[i], NV_UNIQUE_NAME, KM_SLEEP);
4048 VERIFY(nvlist_add_string(tops[i], ZPOOL_CONFIG_TYPE,
4049 VDEV_TYPE_MISSING) == 0);
4050 VERIFY(nvlist_add_uint64(tops[i], ZPOOL_CONFIG_ID,
4051 i) == 0);
4052 VERIFY(nvlist_add_uint64(tops[i], ZPOOL_CONFIG_GUID,
4053 0) == 0);
4054 }
4055
4056 /*
4057 * Create pool config based on the best vdev config.
4058 */
4059 nvlist_dup(best_cfg, &config, KM_SLEEP);
4060
4061 /*
4062 * Put this pool's top-level vdevs into a root vdev.
4063 */
4064 VERIFY(nvlist_lookup_uint64(config, ZPOOL_CONFIG_POOL_GUID,
4065 &pgid) == 0);
4066 VERIFY(nvlist_alloc(&nvroot, NV_UNIQUE_NAME, KM_SLEEP) == 0);
4067 VERIFY(nvlist_add_string(nvroot, ZPOOL_CONFIG_TYPE,
4068 VDEV_TYPE_ROOT) == 0);
4069 VERIFY(nvlist_add_uint64(nvroot, ZPOOL_CONFIG_ID, 0ULL) == 0);
4070 VERIFY(nvlist_add_uint64(nvroot, ZPOOL_CONFIG_GUID, pgid) == 0);
4071 VERIFY(nvlist_add_nvlist_array(nvroot, ZPOOL_CONFIG_CHILDREN,
4072 tops, nchildren) == 0);
4073
4074 /*
4075 * Replace the existing vdev_tree with the new root vdev in
4076 * this pool's configuration (remove the old, add the new).
4077 */
4078 VERIFY(nvlist_add_nvlist(config, ZPOOL_CONFIG_VDEV_TREE, nvroot) == 0);
4079
4080 /*
4081 * Drop vdev config elements that should not be present at pool level.
4082 */
4083 nvlist_remove(config, ZPOOL_CONFIG_GUID, DATA_TYPE_UINT64);
4084 nvlist_remove(config, ZPOOL_CONFIG_TOP_GUID, DATA_TYPE_UINT64);
4085
4086 for (i = 0; i < count; i++)
4087 nvlist_free(configs[i]);
4088 kmem_free(configs, count * sizeof(void *));
4089 for (i = 0; i < nchildren; i++)
4090 nvlist_free(tops[i]);
4091 kmem_free(tops, nchildren * sizeof(void *));
4092 nvlist_free(nvroot);
4093 return (config);
4094 }
4095
4096 int
spa_import_rootpool(const char * name)4097 spa_import_rootpool(const char *name)
4098 {
4099 spa_t *spa;
4100 vdev_t *rvd, *bvd, *avd = NULL;
4101 nvlist_t *config, *nvtop;
4102 uint64_t txg;
4103 char *pname;
4104 int error;
4105
4106 /*
4107 * Read the label from the boot device and generate a configuration.
4108 */
4109 config = spa_generate_rootconf(name);
4110
4111 mutex_enter(&spa_namespace_lock);
4112 if (config != NULL) {
4113 VERIFY(nvlist_lookup_string(config, ZPOOL_CONFIG_POOL_NAME,
4114 &pname) == 0 && strcmp(name, pname) == 0);
4115 VERIFY(nvlist_lookup_uint64(config, ZPOOL_CONFIG_POOL_TXG, &txg)
4116 == 0);
4117
4118 if ((spa = spa_lookup(pname)) != NULL) {
4119 /*
4120 * Remove the existing root pool from the namespace so
4121 * that we can replace it with the correct config
4122 * we just read in.
4123 */
4124 spa_remove(spa);
4125 }
4126 spa = spa_add(pname, config, NULL);
4127
4128 /*
4129 * Set spa_ubsync.ub_version as it can be used in vdev_alloc()
4130 * via spa_version().
4131 */
4132 if (nvlist_lookup_uint64(config, ZPOOL_CONFIG_VERSION,
4133 &spa->spa_ubsync.ub_version) != 0)
4134 spa->spa_ubsync.ub_version = SPA_VERSION_INITIAL;
4135 } else if ((spa = spa_lookup(name)) == NULL) {
4136 cmn_err(CE_NOTE, "Cannot find the pool label for '%s'",
4137 name);
4138 return (EIO);
4139 } else {
4140 VERIFY(nvlist_dup(spa->spa_config, &config, KM_SLEEP) == 0);
4141 }
4142 spa->spa_is_root = B_TRUE;
4143 spa->spa_import_flags = ZFS_IMPORT_VERBATIM;
4144
4145 /*
4146 * Build up a vdev tree based on the boot device's label config.
4147 */
4148 VERIFY(nvlist_lookup_nvlist(config, ZPOOL_CONFIG_VDEV_TREE,
4149 &nvtop) == 0);
4150 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
4151 error = spa_config_parse(spa, &rvd, nvtop, NULL, 0,
4152 VDEV_ALLOC_ROOTPOOL);
4153 spa_config_exit(spa, SCL_ALL, FTAG);
4154 if (error) {
4155 mutex_exit(&spa_namespace_lock);
4156 nvlist_free(config);
4157 cmn_err(CE_NOTE, "Can not parse the config for pool '%s'",
4158 pname);
4159 return (error);
4160 }
4161
4162 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
4163 vdev_free(rvd);
4164 spa_config_exit(spa, SCL_ALL, FTAG);
4165 mutex_exit(&spa_namespace_lock);
4166
4167 nvlist_free(config);
4168 return (0);
4169 }
4170
4171 #endif /* sun */
4172 #endif
4173
4174 /*
4175 * Import a non-root pool into the system.
4176 */
4177 int
spa_import(const char * pool,nvlist_t * config,nvlist_t * props,uint64_t flags)4178 spa_import(const char *pool, nvlist_t *config, nvlist_t *props, uint64_t flags)
4179 {
4180 spa_t *spa;
4181 char *altroot = NULL;
4182 spa_load_state_t state = SPA_LOAD_IMPORT;
4183 zpool_rewind_policy_t policy;
4184 uint64_t mode = spa_mode_global;
4185 uint64_t readonly = B_FALSE;
4186 int error;
4187 nvlist_t *nvroot;
4188 nvlist_t **spares, **l2cache;
4189 uint_t nspares, nl2cache;
4190
4191 /*
4192 * If a pool with this name exists, return failure.
4193 */
4194 mutex_enter(&spa_namespace_lock);
4195 if (spa_lookup(pool) != NULL) {
4196 mutex_exit(&spa_namespace_lock);
4197 return (SET_ERROR(EEXIST));
4198 }
4199
4200 /*
4201 * Create and initialize the spa structure.
4202 */
4203 (void) nvlist_lookup_string(props,
4204 zpool_prop_to_name(ZPOOL_PROP_ALTROOT), &altroot);
4205 (void) nvlist_lookup_uint64(props,
4206 zpool_prop_to_name(ZPOOL_PROP_READONLY), &readonly);
4207 if (readonly)
4208 mode = FREAD;
4209 spa = spa_add(pool, config, altroot);
4210 spa->spa_import_flags = flags;
4211
4212 /*
4213 * Verbatim import - Take a pool and insert it into the namespace
4214 * as if it had been loaded at boot.
4215 */
4216 if (spa->spa_import_flags & ZFS_IMPORT_VERBATIM) {
4217 if (props != NULL)
4218 spa_configfile_set(spa, props, B_FALSE);
4219
4220 spa_config_sync(spa, B_FALSE, B_TRUE);
4221
4222 mutex_exit(&spa_namespace_lock);
4223 return (0);
4224 }
4225
4226 spa_activate(spa, mode);
4227
4228 /*
4229 * Don't start async tasks until we know everything is healthy.
4230 */
4231 spa_async_suspend(spa);
4232
4233 zpool_get_rewind_policy(config, &policy);
4234 if (policy.zrp_request & ZPOOL_DO_REWIND)
4235 state = SPA_LOAD_RECOVER;
4236
4237 /*
4238 * Pass off the heavy lifting to spa_load(). Pass TRUE for mosconfig
4239 * because the user-supplied config is actually the one to trust when
4240 * doing an import.
4241 */
4242 if (state != SPA_LOAD_RECOVER)
4243 spa->spa_last_ubsync_txg = spa->spa_load_txg = 0;
4244
4245 error = spa_load_best(spa, state, B_TRUE, policy.zrp_txg,
4246 policy.zrp_request);
4247
4248 /*
4249 * Propagate anything learned while loading the pool and pass it
4250 * back to caller (i.e. rewind info, missing devices, etc).
4251 */
4252 VERIFY(nvlist_add_nvlist(config, ZPOOL_CONFIG_LOAD_INFO,
4253 spa->spa_load_info) == 0);
4254
4255 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
4256 /*
4257 * Toss any existing sparelist, as it doesn't have any validity
4258 * anymore, and conflicts with spa_has_spare().
4259 */
4260 if (spa->spa_spares.sav_config) {
4261 nvlist_free(spa->spa_spares.sav_config);
4262 spa->spa_spares.sav_config = NULL;
4263 spa_load_spares(spa);
4264 }
4265 if (spa->spa_l2cache.sav_config) {
4266 nvlist_free(spa->spa_l2cache.sav_config);
4267 spa->spa_l2cache.sav_config = NULL;
4268 spa_load_l2cache(spa);
4269 }
4270
4271 VERIFY(nvlist_lookup_nvlist(config, ZPOOL_CONFIG_VDEV_TREE,
4272 &nvroot) == 0);
4273 if (error == 0)
4274 error = spa_validate_aux(spa, nvroot, -1ULL,
4275 VDEV_ALLOC_SPARE);
4276 if (error == 0)
4277 error = spa_validate_aux(spa, nvroot, -1ULL,
4278 VDEV_ALLOC_L2CACHE);
4279 spa_config_exit(spa, SCL_ALL, FTAG);
4280
4281 if (props != NULL)
4282 spa_configfile_set(spa, props, B_FALSE);
4283
4284 if (error != 0 || (props && spa_writeable(spa) &&
4285 (error = spa_prop_set(spa, props)))) {
4286 spa_unload(spa);
4287 spa_deactivate(spa);
4288 spa_remove(spa);
4289 mutex_exit(&spa_namespace_lock);
4290 return (error);
4291 }
4292
4293 spa_async_resume(spa);
4294
4295 /*
4296 * Override any spares and level 2 cache devices as specified by
4297 * the user, as these may have correct device names/devids, etc.
4298 */
4299 if (nvlist_lookup_nvlist_array(nvroot, ZPOOL_CONFIG_SPARES,
4300 &spares, &nspares) == 0) {
4301 if (spa->spa_spares.sav_config)
4302 VERIFY(nvlist_remove(spa->spa_spares.sav_config,
4303 ZPOOL_CONFIG_SPARES, DATA_TYPE_NVLIST_ARRAY) == 0);
4304 else
4305 VERIFY(nvlist_alloc(&spa->spa_spares.sav_config,
4306 NV_UNIQUE_NAME, KM_SLEEP) == 0);
4307 VERIFY(nvlist_add_nvlist_array(spa->spa_spares.sav_config,
4308 ZPOOL_CONFIG_SPARES, spares, nspares) == 0);
4309 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
4310 spa_load_spares(spa);
4311 spa_config_exit(spa, SCL_ALL, FTAG);
4312 spa->spa_spares.sav_sync = B_TRUE;
4313 }
4314 if (nvlist_lookup_nvlist_array(nvroot, ZPOOL_CONFIG_L2CACHE,
4315 &l2cache, &nl2cache) == 0) {
4316 if (spa->spa_l2cache.sav_config)
4317 VERIFY(nvlist_remove(spa->spa_l2cache.sav_config,
4318 ZPOOL_CONFIG_L2CACHE, DATA_TYPE_NVLIST_ARRAY) == 0);
4319 else
4320 VERIFY(nvlist_alloc(&spa->spa_l2cache.sav_config,
4321 NV_UNIQUE_NAME, KM_SLEEP) == 0);
4322 VERIFY(nvlist_add_nvlist_array(spa->spa_l2cache.sav_config,
4323 ZPOOL_CONFIG_L2CACHE, l2cache, nl2cache) == 0);
4324 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
4325 spa_load_l2cache(spa);
4326 spa_config_exit(spa, SCL_ALL, FTAG);
4327 spa->spa_l2cache.sav_sync = B_TRUE;
4328 }
4329
4330 /*
4331 * Check for any removed devices.
4332 */
4333 if (spa->spa_autoreplace) {
4334 spa_aux_check_removed(&spa->spa_spares);
4335 spa_aux_check_removed(&spa->spa_l2cache);
4336 }
4337
4338 if (spa_writeable(spa)) {
4339 /*
4340 * Update the config cache to include the newly-imported pool.
4341 */
4342 spa_config_update(spa, SPA_CONFIG_UPDATE_POOL);
4343 }
4344
4345 /*
4346 * It's possible that the pool was expanded while it was exported.
4347 * We kick off an async task to handle this for us.
4348 */
4349 spa_async_request(spa, SPA_ASYNC_AUTOEXPAND);
4350
4351 mutex_exit(&spa_namespace_lock);
4352 spa_history_log_version(spa, "import");
4353
4354 #ifdef __FreeBSD__
4355 #ifdef _KERNEL
4356 zvol_create_minors(pool);
4357 #endif
4358 #endif
4359 return (0);
4360 }
4361
4362 nvlist_t *
spa_tryimport(nvlist_t * tryconfig)4363 spa_tryimport(nvlist_t *tryconfig)
4364 {
4365 nvlist_t *config = NULL;
4366 char *poolname;
4367 spa_t *spa;
4368 uint64_t state;
4369 int error;
4370
4371 if (nvlist_lookup_string(tryconfig, ZPOOL_CONFIG_POOL_NAME, &poolname))
4372 return (NULL);
4373
4374 if (nvlist_lookup_uint64(tryconfig, ZPOOL_CONFIG_POOL_STATE, &state))
4375 return (NULL);
4376
4377 /*
4378 * Create and initialize the spa structure.
4379 */
4380 mutex_enter(&spa_namespace_lock);
4381 spa = spa_add(TRYIMPORT_NAME, tryconfig, NULL);
4382 spa_activate(spa, FREAD);
4383
4384 /*
4385 * Pass off the heavy lifting to spa_load().
4386 * Pass TRUE for mosconfig because the user-supplied config
4387 * is actually the one to trust when doing an import.
4388 */
4389 error = spa_load(spa, SPA_LOAD_TRYIMPORT, SPA_IMPORT_EXISTING, B_TRUE);
4390
4391 /*
4392 * If 'tryconfig' was at least parsable, return the current config.
4393 */
4394 if (spa->spa_root_vdev != NULL) {
4395 config = spa_config_generate(spa, NULL, -1ULL, B_TRUE);
4396 VERIFY(nvlist_add_string(config, ZPOOL_CONFIG_POOL_NAME,
4397 poolname) == 0);
4398 VERIFY(nvlist_add_uint64(config, ZPOOL_CONFIG_POOL_STATE,
4399 state) == 0);
4400 VERIFY(nvlist_add_uint64(config, ZPOOL_CONFIG_TIMESTAMP,
4401 spa->spa_uberblock.ub_timestamp) == 0);
4402 VERIFY(nvlist_add_nvlist(config, ZPOOL_CONFIG_LOAD_INFO,
4403 spa->spa_load_info) == 0);
4404
4405 /*
4406 * If the bootfs property exists on this pool then we
4407 * copy it out so that external consumers can tell which
4408 * pools are bootable.
4409 */
4410 if ((!error || error == EEXIST) && spa->spa_bootfs) {
4411 char *tmpname = kmem_alloc(MAXPATHLEN, KM_SLEEP);
4412
4413 /*
4414 * We have to play games with the name since the
4415 * pool was opened as TRYIMPORT_NAME.
4416 */
4417 if (dsl_dsobj_to_dsname(spa_name(spa),
4418 spa->spa_bootfs, tmpname) == 0) {
4419 char *cp;
4420 char *dsname = kmem_alloc(MAXPATHLEN, KM_SLEEP);
4421
4422 cp = strchr(tmpname, '/');
4423 if (cp == NULL) {
4424 (void) strlcpy(dsname, tmpname,
4425 MAXPATHLEN);
4426 } else {
4427 (void) snprintf(dsname, MAXPATHLEN,
4428 "%s/%s", poolname, ++cp);
4429 }
4430 VERIFY(nvlist_add_string(config,
4431 ZPOOL_CONFIG_BOOTFS, dsname) == 0);
4432 kmem_free(dsname, MAXPATHLEN);
4433 }
4434 kmem_free(tmpname, MAXPATHLEN);
4435 }
4436
4437 /*
4438 * Add the list of hot spares and level 2 cache devices.
4439 */
4440 spa_config_enter(spa, SCL_CONFIG, FTAG, RW_READER);
4441 spa_add_spares(spa, config);
4442 spa_add_l2cache(spa, config);
4443 spa_config_exit(spa, SCL_CONFIG, FTAG);
4444 }
4445
4446 spa_unload(spa);
4447 spa_deactivate(spa);
4448 spa_remove(spa);
4449 mutex_exit(&spa_namespace_lock);
4450
4451 return (config);
4452 }
4453
4454 /*
4455 * Pool export/destroy
4456 *
4457 * The act of destroying or exporting a pool is very simple. We make sure there
4458 * is no more pending I/O and any references to the pool are gone. Then, we
4459 * update the pool state and sync all the labels to disk, removing the
4460 * configuration from the cache afterwards. If the 'hardforce' flag is set, then
4461 * we don't sync the labels or remove the configuration cache.
4462 */
4463 static int
spa_export_common(char * pool,int new_state,nvlist_t ** oldconfig,boolean_t force,boolean_t hardforce)4464 spa_export_common(char *pool, int new_state, nvlist_t **oldconfig,
4465 boolean_t force, boolean_t hardforce)
4466 {
4467 spa_t *spa;
4468
4469 if (oldconfig)
4470 *oldconfig = NULL;
4471
4472 if (!(spa_mode_global & FWRITE))
4473 return (SET_ERROR(EROFS));
4474
4475 mutex_enter(&spa_namespace_lock);
4476 if ((spa = spa_lookup(pool)) == NULL) {
4477 mutex_exit(&spa_namespace_lock);
4478 return (SET_ERROR(ENOENT));
4479 }
4480
4481 /*
4482 * Put a hold on the pool, drop the namespace lock, stop async tasks,
4483 * reacquire the namespace lock, and see if we can export.
4484 */
4485 spa_open_ref(spa, FTAG);
4486 mutex_exit(&spa_namespace_lock);
4487 spa_async_suspend(spa);
4488 mutex_enter(&spa_namespace_lock);
4489 spa_close(spa, FTAG);
4490
4491 /*
4492 * The pool will be in core if it's openable,
4493 * in which case we can modify its state.
4494 */
4495 if (spa->spa_state != POOL_STATE_UNINITIALIZED && spa->spa_sync_on) {
4496 /*
4497 * Objsets may be open only because they're dirty, so we
4498 * have to force it to sync before checking spa_refcnt.
4499 */
4500 txg_wait_synced(spa->spa_dsl_pool, 0);
4501
4502 /*
4503 * A pool cannot be exported or destroyed if there are active
4504 * references. If we are resetting a pool, allow references by
4505 * fault injection handlers.
4506 */
4507 if (!spa_refcount_zero(spa) ||
4508 (spa->spa_inject_ref != 0 &&
4509 new_state != POOL_STATE_UNINITIALIZED)) {
4510 spa_async_resume(spa);
4511 mutex_exit(&spa_namespace_lock);
4512 return (SET_ERROR(EBUSY));
4513 }
4514
4515 /*
4516 * A pool cannot be exported if it has an active shared spare.
4517 * This is to prevent other pools stealing the active spare
4518 * from an exported pool. At user's own will, such pool can
4519 * be forcedly exported.
4520 */
4521 if (!force && new_state == POOL_STATE_EXPORTED &&
4522 spa_has_active_shared_spare(spa)) {
4523 spa_async_resume(spa);
4524 mutex_exit(&spa_namespace_lock);
4525 return (SET_ERROR(EXDEV));
4526 }
4527
4528 /*
4529 * We want this to be reflected on every label,
4530 * so mark them all dirty. spa_unload() will do the
4531 * final sync that pushes these changes out.
4532 */
4533 if (new_state != POOL_STATE_UNINITIALIZED && !hardforce) {
4534 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
4535 spa->spa_state = new_state;
4536 spa->spa_final_txg = spa_last_synced_txg(spa) +
4537 TXG_DEFER_SIZE + 1;
4538 vdev_config_dirty(spa->spa_root_vdev);
4539 spa_config_exit(spa, SCL_ALL, FTAG);
4540 }
4541 }
4542
4543 spa_event_notify(spa, NULL, ESC_ZFS_POOL_DESTROY);
4544
4545 if (spa->spa_state != POOL_STATE_UNINITIALIZED) {
4546 spa_unload(spa);
4547 spa_deactivate(spa);
4548 }
4549
4550 if (oldconfig && spa->spa_config)
4551 VERIFY(nvlist_dup(spa->spa_config, oldconfig, 0) == 0);
4552
4553 if (new_state != POOL_STATE_UNINITIALIZED) {
4554 if (!hardforce)
4555 spa_config_sync(spa, B_TRUE, B_TRUE);
4556 spa_remove(spa);
4557 }
4558 mutex_exit(&spa_namespace_lock);
4559
4560 return (0);
4561 }
4562
4563 /*
4564 * Destroy a storage pool.
4565 */
4566 int
spa_destroy(char * pool)4567 spa_destroy(char *pool)
4568 {
4569 return (spa_export_common(pool, POOL_STATE_DESTROYED, NULL,
4570 B_FALSE, B_FALSE));
4571 }
4572
4573 /*
4574 * Export a storage pool.
4575 */
4576 int
spa_export(char * pool,nvlist_t ** oldconfig,boolean_t force,boolean_t hardforce)4577 spa_export(char *pool, nvlist_t **oldconfig, boolean_t force,
4578 boolean_t hardforce)
4579 {
4580 return (spa_export_common(pool, POOL_STATE_EXPORTED, oldconfig,
4581 force, hardforce));
4582 }
4583
4584 /*
4585 * Similar to spa_export(), this unloads the spa_t without actually removing it
4586 * from the namespace in any way.
4587 */
4588 int
spa_reset(char * pool)4589 spa_reset(char *pool)
4590 {
4591 return (spa_export_common(pool, POOL_STATE_UNINITIALIZED, NULL,
4592 B_FALSE, B_FALSE));
4593 }
4594
4595 /*
4596 * ==========================================================================
4597 * Device manipulation
4598 * ==========================================================================
4599 */
4600
4601 /*
4602 * Add a device to a storage pool.
4603 */
4604 int
spa_vdev_add(spa_t * spa,nvlist_t * nvroot)4605 spa_vdev_add(spa_t *spa, nvlist_t *nvroot)
4606 {
4607 uint64_t txg, id;
4608 int error;
4609 vdev_t *rvd = spa->spa_root_vdev;
4610 vdev_t *vd, *tvd;
4611 nvlist_t **spares, **l2cache;
4612 uint_t nspares, nl2cache;
4613
4614 ASSERT(spa_writeable(spa));
4615
4616 txg = spa_vdev_enter(spa);
4617
4618 if ((error = spa_config_parse(spa, &vd, nvroot, NULL, 0,
4619 VDEV_ALLOC_ADD)) != 0)
4620 return (spa_vdev_exit(spa, NULL, txg, error));
4621
4622 spa->spa_pending_vdev = vd; /* spa_vdev_exit() will clear this */
4623
4624 if (nvlist_lookup_nvlist_array(nvroot, ZPOOL_CONFIG_SPARES, &spares,
4625 &nspares) != 0)
4626 nspares = 0;
4627
4628 if (nvlist_lookup_nvlist_array(nvroot, ZPOOL_CONFIG_L2CACHE, &l2cache,
4629 &nl2cache) != 0)
4630 nl2cache = 0;
4631
4632 if (vd->vdev_children == 0 && nspares == 0 && nl2cache == 0)
4633 return (spa_vdev_exit(spa, vd, txg, EINVAL));
4634
4635 if (vd->vdev_children != 0 &&
4636 (error = vdev_create(vd, txg, B_FALSE)) != 0)
4637 return (spa_vdev_exit(spa, vd, txg, error));
4638
4639 /*
4640 * We must validate the spares and l2cache devices after checking the
4641 * children. Otherwise, vdev_inuse() will blindly overwrite the spare.
4642 */
4643 if ((error = spa_validate_aux(spa, nvroot, txg, VDEV_ALLOC_ADD)) != 0)
4644 return (spa_vdev_exit(spa, vd, txg, error));
4645
4646 /*
4647 * Transfer each new top-level vdev from vd to rvd.
4648 */
4649 for (int c = 0; c < vd->vdev_children; c++) {
4650
4651 /*
4652 * Set the vdev id to the first hole, if one exists.
4653 */
4654 for (id = 0; id < rvd->vdev_children; id++) {
4655 if (rvd->vdev_child[id]->vdev_ishole) {
4656 vdev_free(rvd->vdev_child[id]);
4657 break;
4658 }
4659 }
4660 tvd = vd->vdev_child[c];
4661 vdev_remove_child(vd, tvd);
4662 tvd->vdev_id = id;
4663 vdev_add_child(rvd, tvd);
4664 vdev_config_dirty(tvd);
4665 }
4666
4667 if (nspares != 0) {
4668 spa_set_aux_vdevs(&spa->spa_spares, spares, nspares,
4669 ZPOOL_CONFIG_SPARES);
4670 spa_load_spares(spa);
4671 spa->spa_spares.sav_sync = B_TRUE;
4672 }
4673
4674 if (nl2cache != 0) {
4675 spa_set_aux_vdevs(&spa->spa_l2cache, l2cache, nl2cache,
4676 ZPOOL_CONFIG_L2CACHE);
4677 spa_load_l2cache(spa);
4678 spa->spa_l2cache.sav_sync = B_TRUE;
4679 }
4680
4681 /*
4682 * We have to be careful when adding new vdevs to an existing pool.
4683 * If other threads start allocating from these vdevs before we
4684 * sync the config cache, and we lose power, then upon reboot we may
4685 * fail to open the pool because there are DVAs that the config cache
4686 * can't translate. Therefore, we first add the vdevs without
4687 * initializing metaslabs; sync the config cache (via spa_vdev_exit());
4688 * and then let spa_config_update() initialize the new metaslabs.
4689 *
4690 * spa_load() checks for added-but-not-initialized vdevs, so that
4691 * if we lose power at any point in this sequence, the remaining
4692 * steps will be completed the next time we load the pool.
4693 */
4694 (void) spa_vdev_exit(spa, vd, txg, 0);
4695
4696 mutex_enter(&spa_namespace_lock);
4697 spa_config_update(spa, SPA_CONFIG_UPDATE_POOL);
4698 mutex_exit(&spa_namespace_lock);
4699
4700 return (0);
4701 }
4702
4703 /*
4704 * Attach a device to a mirror. The arguments are the path to any device
4705 * in the mirror, and the nvroot for the new device. If the path specifies
4706 * a device that is not mirrored, we automatically insert the mirror vdev.
4707 *
4708 * If 'replacing' is specified, the new device is intended to replace the
4709 * existing device; in this case the two devices are made into their own
4710 * mirror using the 'replacing' vdev, which is functionally identical to
4711 * the mirror vdev (it actually reuses all the same ops) but has a few
4712 * extra rules: you can't attach to it after it's been created, and upon
4713 * completion of resilvering, the first disk (the one being replaced)
4714 * is automatically detached.
4715 */
4716 int
spa_vdev_attach(spa_t * spa,uint64_t guid,nvlist_t * nvroot,int replacing)4717 spa_vdev_attach(spa_t *spa, uint64_t guid, nvlist_t *nvroot, int replacing)
4718 {
4719 uint64_t txg, dtl_max_txg;
4720 vdev_t *rvd = spa->spa_root_vdev;
4721 vdev_t *oldvd, *newvd, *newrootvd, *pvd, *tvd;
4722 vdev_ops_t *pvops;
4723 char *oldvdpath, *newvdpath;
4724 int newvd_isspare;
4725 int error;
4726
4727 ASSERT(spa_writeable(spa));
4728
4729 txg = spa_vdev_enter(spa);
4730
4731 oldvd = spa_lookup_by_guid(spa, guid, B_FALSE);
4732
4733 if (oldvd == NULL)
4734 return (spa_vdev_exit(spa, NULL, txg, ENODEV));
4735
4736 if (!oldvd->vdev_ops->vdev_op_leaf)
4737 return (spa_vdev_exit(spa, NULL, txg, ENOTSUP));
4738
4739 pvd = oldvd->vdev_parent;
4740
4741 if ((error = spa_config_parse(spa, &newrootvd, nvroot, NULL, 0,
4742 VDEV_ALLOC_ATTACH)) != 0)
4743 return (spa_vdev_exit(spa, NULL, txg, EINVAL));
4744
4745 if (newrootvd->vdev_children != 1)
4746 return (spa_vdev_exit(spa, newrootvd, txg, EINVAL));
4747
4748 newvd = newrootvd->vdev_child[0];
4749
4750 if (!newvd->vdev_ops->vdev_op_leaf)
4751 return (spa_vdev_exit(spa, newrootvd, txg, EINVAL));
4752
4753 if ((error = vdev_create(newrootvd, txg, replacing)) != 0)
4754 return (spa_vdev_exit(spa, newrootvd, txg, error));
4755
4756 /*
4757 * Spares can't replace logs
4758 */
4759 if (oldvd->vdev_top->vdev_islog && newvd->vdev_isspare)
4760 return (spa_vdev_exit(spa, newrootvd, txg, ENOTSUP));
4761
4762 if (!replacing) {
4763 /*
4764 * For attach, the only allowable parent is a mirror or the root
4765 * vdev.
4766 */
4767 if (pvd->vdev_ops != &vdev_mirror_ops &&
4768 pvd->vdev_ops != &vdev_root_ops)
4769 return (spa_vdev_exit(spa, newrootvd, txg, ENOTSUP));
4770
4771 pvops = &vdev_mirror_ops;
4772 } else {
4773 /*
4774 * Active hot spares can only be replaced by inactive hot
4775 * spares.
4776 */
4777 if (pvd->vdev_ops == &vdev_spare_ops &&
4778 oldvd->vdev_isspare &&
4779 !spa_has_spare(spa, newvd->vdev_guid))
4780 return (spa_vdev_exit(spa, newrootvd, txg, ENOTSUP));
4781
4782 /*
4783 * If the source is a hot spare, and the parent isn't already a
4784 * spare, then we want to create a new hot spare. Otherwise, we
4785 * want to create a replacing vdev. The user is not allowed to
4786 * attach to a spared vdev child unless the 'isspare' state is
4787 * the same (spare replaces spare, non-spare replaces
4788 * non-spare).
4789 */
4790 if (pvd->vdev_ops == &vdev_replacing_ops &&
4791 spa_version(spa) < SPA_VERSION_MULTI_REPLACE) {
4792 return (spa_vdev_exit(spa, newrootvd, txg, ENOTSUP));
4793 } else if (pvd->vdev_ops == &vdev_spare_ops &&
4794 newvd->vdev_isspare != oldvd->vdev_isspare) {
4795 return (spa_vdev_exit(spa, newrootvd, txg, ENOTSUP));
4796 }
4797
4798 if (newvd->vdev_isspare)
4799 pvops = &vdev_spare_ops;
4800 else
4801 pvops = &vdev_replacing_ops;
4802 }
4803
4804 /*
4805 * Make sure the new device is big enough.
4806 */
4807 if (newvd->vdev_asize < vdev_get_min_asize(oldvd))
4808 return (spa_vdev_exit(spa, newrootvd, txg, EOVERFLOW));
4809
4810 /*
4811 * The new device cannot have a higher alignment requirement
4812 * than the top-level vdev.
4813 */
4814 if (newvd->vdev_ashift > oldvd->vdev_top->vdev_ashift)
4815 return (spa_vdev_exit(spa, newrootvd, txg, EDOM));
4816
4817 /*
4818 * If this is an in-place replacement, update oldvd's path and devid
4819 * to make it distinguishable from newvd, and unopenable from now on.
4820 */
4821 if (strcmp(oldvd->vdev_path, newvd->vdev_path) == 0) {
4822 spa_strfree(oldvd->vdev_path);
4823 oldvd->vdev_path = kmem_alloc(strlen(newvd->vdev_path) + 5,
4824 KM_SLEEP);
4825 (void) sprintf(oldvd->vdev_path, "%s/%s",
4826 newvd->vdev_path, "old");
4827 if (oldvd->vdev_devid != NULL) {
4828 spa_strfree(oldvd->vdev_devid);
4829 oldvd->vdev_devid = NULL;
4830 }
4831 }
4832
4833 /* mark the device being resilvered */
4834 newvd->vdev_resilver_txg = txg;
4835
4836 /*
4837 * If the parent is not a mirror, or if we're replacing, insert the new
4838 * mirror/replacing/spare vdev above oldvd.
4839 */
4840 if (pvd->vdev_ops != pvops)
4841 pvd = vdev_add_parent(oldvd, pvops);
4842
4843 ASSERT(pvd->vdev_top->vdev_parent == rvd);
4844 ASSERT(pvd->vdev_ops == pvops);
4845 ASSERT(oldvd->vdev_parent == pvd);
4846
4847 /*
4848 * Extract the new device from its root and add it to pvd.
4849 */
4850 vdev_remove_child(newrootvd, newvd);
4851 newvd->vdev_id = pvd->vdev_children;
4852 newvd->vdev_crtxg = oldvd->vdev_crtxg;
4853 vdev_add_child(pvd, newvd);
4854
4855 tvd = newvd->vdev_top;
4856 ASSERT(pvd->vdev_top == tvd);
4857 ASSERT(tvd->vdev_parent == rvd);
4858
4859 vdev_config_dirty(tvd);
4860
4861 /*
4862 * Set newvd's DTL to [TXG_INITIAL, dtl_max_txg) so that we account
4863 * for any dmu_sync-ed blocks. It will propagate upward when
4864 * spa_vdev_exit() calls vdev_dtl_reassess().
4865 */
4866 dtl_max_txg = txg + TXG_CONCURRENT_STATES;
4867
4868 vdev_dtl_dirty(newvd, DTL_MISSING, TXG_INITIAL,
4869 dtl_max_txg - TXG_INITIAL);
4870
4871 if (newvd->vdev_isspare) {
4872 spa_spare_activate(newvd);
4873 spa_event_notify(spa, newvd, ESC_ZFS_VDEV_SPARE);
4874 }
4875
4876 oldvdpath = spa_strdup(oldvd->vdev_path);
4877 newvdpath = spa_strdup(newvd->vdev_path);
4878 newvd_isspare = newvd->vdev_isspare;
4879
4880 /*
4881 * Mark newvd's DTL dirty in this txg.
4882 */
4883 vdev_dirty(tvd, VDD_DTL, newvd, txg);
4884
4885 /*
4886 * Schedule the resilver to restart in the future. We do this to
4887 * ensure that dmu_sync-ed blocks have been stitched into the
4888 * respective datasets.
4889 */
4890 dsl_resilver_restart(spa->spa_dsl_pool, dtl_max_txg);
4891
4892 /*
4893 * Commit the config
4894 */
4895 (void) spa_vdev_exit(spa, newrootvd, dtl_max_txg, 0);
4896
4897 spa_history_log_internal(spa, "vdev attach", NULL,
4898 "%s vdev=%s %s vdev=%s",
4899 replacing && newvd_isspare ? "spare in" :
4900 replacing ? "replace" : "attach", newvdpath,
4901 replacing ? "for" : "to", oldvdpath);
4902
4903 spa_strfree(oldvdpath);
4904 spa_strfree(newvdpath);
4905
4906 spa_event_notify(spa, newvd, ESC_ZFS_VDEV_ATTACH);
4907
4908 if (spa->spa_bootfs)
4909 spa_event_notify(spa, newvd, ESC_ZFS_BOOTFS_VDEV_ATTACH);
4910
4911 return (0);
4912 }
4913
4914 /*
4915 * Detach a device from a mirror or replacing vdev.
4916 *
4917 * If 'replace_done' is specified, only detach if the parent
4918 * is a replacing vdev.
4919 */
4920 int
spa_vdev_detach(spa_t * spa,uint64_t guid,uint64_t pguid,int replace_done)4921 spa_vdev_detach(spa_t *spa, uint64_t guid, uint64_t pguid, int replace_done)
4922 {
4923 uint64_t txg;
4924 int error;
4925 vdev_t *rvd = spa->spa_root_vdev;
4926 vdev_t *vd, *pvd, *cvd, *tvd;
4927 boolean_t unspare = B_FALSE;
4928 uint64_t unspare_guid = 0;
4929 char *vdpath;
4930
4931 ASSERT(spa_writeable(spa));
4932
4933 txg = spa_vdev_enter(spa);
4934
4935 vd = spa_lookup_by_guid(spa, guid, B_FALSE);
4936
4937 if (vd == NULL)
4938 return (spa_vdev_exit(spa, NULL, txg, ENODEV));
4939
4940 if (!vd->vdev_ops->vdev_op_leaf)
4941 return (spa_vdev_exit(spa, NULL, txg, ENOTSUP));
4942
4943 pvd = vd->vdev_parent;
4944
4945 /*
4946 * If the parent/child relationship is not as expected, don't do it.
4947 * Consider M(A,R(B,C)) -- that is, a mirror of A with a replacing
4948 * vdev that's replacing B with C. The user's intent in replacing
4949 * is to go from M(A,B) to M(A,C). If the user decides to cancel
4950 * the replace by detaching C, the expected behavior is to end up
4951 * M(A,B). But suppose that right after deciding to detach C,
4952 * the replacement of B completes. We would have M(A,C), and then
4953 * ask to detach C, which would leave us with just A -- not what
4954 * the user wanted. To prevent this, we make sure that the
4955 * parent/child relationship hasn't changed -- in this example,
4956 * that C's parent is still the replacing vdev R.
4957 */
4958 if (pvd->vdev_guid != pguid && pguid != 0)
4959 return (spa_vdev_exit(spa, NULL, txg, EBUSY));
4960
4961 /*
4962 * Only 'replacing' or 'spare' vdevs can be replaced.
4963 */
4964 if (replace_done && pvd->vdev_ops != &vdev_replacing_ops &&
4965 pvd->vdev_ops != &vdev_spare_ops)
4966 return (spa_vdev_exit(spa, NULL, txg, ENOTSUP));
4967
4968 ASSERT(pvd->vdev_ops != &vdev_spare_ops ||
4969 spa_version(spa) >= SPA_VERSION_SPARES);
4970
4971 /*
4972 * Only mirror, replacing, and spare vdevs support detach.
4973 */
4974 if (pvd->vdev_ops != &vdev_replacing_ops &&
4975 pvd->vdev_ops != &vdev_mirror_ops &&
4976 pvd->vdev_ops != &vdev_spare_ops)
4977 return (spa_vdev_exit(spa, NULL, txg, ENOTSUP));
4978
4979 /*
4980 * If this device has the only valid copy of some data,
4981 * we cannot safely detach it.
4982 */
4983 if (vdev_dtl_required(vd))
4984 return (spa_vdev_exit(spa, NULL, txg, EBUSY));
4985
4986 ASSERT(pvd->vdev_children >= 2);
4987
4988 /*
4989 * If we are detaching the second disk from a replacing vdev, then
4990 * check to see if we changed the original vdev's path to have "/old"
4991 * at the end in spa_vdev_attach(). If so, undo that change now.
4992 */
4993 if (pvd->vdev_ops == &vdev_replacing_ops && vd->vdev_id > 0 &&
4994 vd->vdev_path != NULL) {
4995 size_t len = strlen(vd->vdev_path);
4996
4997 for (int c = 0; c < pvd->vdev_children; c++) {
4998 cvd = pvd->vdev_child[c];
4999
5000 if (cvd == vd || cvd->vdev_path == NULL)
5001 continue;
5002
5003 if (strncmp(cvd->vdev_path, vd->vdev_path, len) == 0 &&
5004 strcmp(cvd->vdev_path + len, "/old") == 0) {
5005 spa_strfree(cvd->vdev_path);
5006 cvd->vdev_path = spa_strdup(vd->vdev_path);
5007 break;
5008 }
5009 }
5010 }
5011
5012 /*
5013 * If we are detaching the original disk from a spare, then it implies
5014 * that the spare should become a real disk, and be removed from the
5015 * active spare list for the pool.
5016 */
5017 if (pvd->vdev_ops == &vdev_spare_ops &&
5018 vd->vdev_id == 0 &&
5019 pvd->vdev_child[pvd->vdev_children - 1]->vdev_isspare)
5020 unspare = B_TRUE;
5021
5022 /*
5023 * Erase the disk labels so the disk can be used for other things.
5024 * This must be done after all other error cases are handled,
5025 * but before we disembowel vd (so we can still do I/O to it).
5026 * But if we can't do it, don't treat the error as fatal --
5027 * it may be that the unwritability of the disk is the reason
5028 * it's being detached!
5029 */
5030 error = vdev_label_init(vd, 0, VDEV_LABEL_REMOVE);
5031
5032 /*
5033 * Remove vd from its parent and compact the parent's children.
5034 */
5035 vdev_remove_child(pvd, vd);
5036 vdev_compact_children(pvd);
5037
5038 /*
5039 * Remember one of the remaining children so we can get tvd below.
5040 */
5041 cvd = pvd->vdev_child[pvd->vdev_children - 1];
5042
5043 /*
5044 * If we need to remove the remaining child from the list of hot spares,
5045 * do it now, marking the vdev as no longer a spare in the process.
5046 * We must do this before vdev_remove_parent(), because that can
5047 * change the GUID if it creates a new toplevel GUID. For a similar
5048 * reason, we must remove the spare now, in the same txg as the detach;
5049 * otherwise someone could attach a new sibling, change the GUID, and
5050 * the subsequent attempt to spa_vdev_remove(unspare_guid) would fail.
5051 */
5052 if (unspare) {
5053 ASSERT(cvd->vdev_isspare);
5054 spa_spare_remove(cvd);
5055 unspare_guid = cvd->vdev_guid;
5056 (void) spa_vdev_remove(spa, unspare_guid, B_TRUE);
5057 cvd->vdev_unspare = B_TRUE;
5058 }
5059
5060 /*
5061 * If the parent mirror/replacing vdev only has one child,
5062 * the parent is no longer needed. Remove it from the tree.
5063 */
5064 if (pvd->vdev_children == 1) {
5065 if (pvd->vdev_ops == &vdev_spare_ops)
5066 cvd->vdev_unspare = B_FALSE;
5067 vdev_remove_parent(cvd);
5068 }
5069
5070
5071 /*
5072 * We don't set tvd until now because the parent we just removed
5073 * may have been the previous top-level vdev.
5074 */
5075 tvd = cvd->vdev_top;
5076 ASSERT(tvd->vdev_parent == rvd);
5077
5078 /*
5079 * Reevaluate the parent vdev state.
5080 */
5081 vdev_propagate_state(cvd);
5082
5083 /*
5084 * If the 'autoexpand' property is set on the pool then automatically
5085 * try to expand the size of the pool. For example if the device we
5086 * just detached was smaller than the others, it may be possible to
5087 * add metaslabs (i.e. grow the pool). We need to reopen the vdev
5088 * first so that we can obtain the updated sizes of the leaf vdevs.
5089 */
5090 if (spa->spa_autoexpand) {
5091 vdev_reopen(tvd);
5092 vdev_expand(tvd, txg);
5093 }
5094
5095 vdev_config_dirty(tvd);
5096
5097 /*
5098 * Mark vd's DTL as dirty in this txg. vdev_dtl_sync() will see that
5099 * vd->vdev_detached is set and free vd's DTL object in syncing context.
5100 * But first make sure we're not on any *other* txg's DTL list, to
5101 * prevent vd from being accessed after it's freed.
5102 */
5103 vdpath = spa_strdup(vd->vdev_path);
5104 for (int t = 0; t < TXG_SIZE; t++)
5105 (void) txg_list_remove_this(&tvd->vdev_dtl_list, vd, t);
5106 vd->vdev_detached = B_TRUE;
5107 vdev_dirty(tvd, VDD_DTL, vd, txg);
5108
5109 spa_event_notify(spa, vd, ESC_ZFS_VDEV_REMOVE);
5110
5111 /* hang on to the spa before we release the lock */
5112 spa_open_ref(spa, FTAG);
5113
5114 error = spa_vdev_exit(spa, vd, txg, 0);
5115
5116 spa_history_log_internal(spa, "detach", NULL,
5117 "vdev=%s", vdpath);
5118 spa_strfree(vdpath);
5119
5120 /*
5121 * If this was the removal of the original device in a hot spare vdev,
5122 * then we want to go through and remove the device from the hot spare
5123 * list of every other pool.
5124 */
5125 if (unspare) {
5126 spa_t *altspa = NULL;
5127
5128 mutex_enter(&spa_namespace_lock);
5129 while ((altspa = spa_next(altspa)) != NULL) {
5130 if (altspa->spa_state != POOL_STATE_ACTIVE ||
5131 altspa == spa)
5132 continue;
5133
5134 spa_open_ref(altspa, FTAG);
5135 mutex_exit(&spa_namespace_lock);
5136 (void) spa_vdev_remove(altspa, unspare_guid, B_TRUE);
5137 mutex_enter(&spa_namespace_lock);
5138 spa_close(altspa, FTAG);
5139 }
5140 mutex_exit(&spa_namespace_lock);
5141
5142 /* search the rest of the vdevs for spares to remove */
5143 spa_vdev_resilver_done(spa);
5144 }
5145
5146 /* all done with the spa; OK to release */
5147 mutex_enter(&spa_namespace_lock);
5148 spa_close(spa, FTAG);
5149 mutex_exit(&spa_namespace_lock);
5150
5151 return (error);
5152 }
5153
5154 /*
5155 * Split a set of devices from their mirrors, and create a new pool from them.
5156 */
5157 int
spa_vdev_split_mirror(spa_t * spa,char * newname,nvlist_t * config,nvlist_t * props,boolean_t exp)5158 spa_vdev_split_mirror(spa_t *spa, char *newname, nvlist_t *config,
5159 nvlist_t *props, boolean_t exp)
5160 {
5161 int error = 0;
5162 uint64_t txg, *glist;
5163 spa_t *newspa;
5164 uint_t c, children, lastlog;
5165 nvlist_t **child, *nvl, *tmp;
5166 dmu_tx_t *tx;
5167 char *altroot = NULL;
5168 vdev_t *rvd, **vml = NULL; /* vdev modify list */
5169 boolean_t activate_slog;
5170
5171 ASSERT(spa_writeable(spa));
5172
5173 txg = spa_vdev_enter(spa);
5174
5175 /* clear the log and flush everything up to now */
5176 activate_slog = spa_passivate_log(spa);
5177 (void) spa_vdev_config_exit(spa, NULL, txg, 0, FTAG);
5178 error = spa_offline_log(spa);
5179 txg = spa_vdev_config_enter(spa);
5180
5181 if (activate_slog)
5182 spa_activate_log(spa);
5183
5184 if (error != 0)
5185 return (spa_vdev_exit(spa, NULL, txg, error));
5186
5187 /* check new spa name before going any further */
5188 if (spa_lookup(newname) != NULL)
5189 return (spa_vdev_exit(spa, NULL, txg, EEXIST));
5190
5191 /*
5192 * scan through all the children to ensure they're all mirrors
5193 */
5194 if (nvlist_lookup_nvlist(config, ZPOOL_CONFIG_VDEV_TREE, &nvl) != 0 ||
5195 nvlist_lookup_nvlist_array(nvl, ZPOOL_CONFIG_CHILDREN, &child,
5196 &children) != 0)
5197 return (spa_vdev_exit(spa, NULL, txg, EINVAL));
5198
5199 /* first, check to ensure we've got the right child count */
5200 rvd = spa->spa_root_vdev;
5201 lastlog = 0;
5202 for (c = 0; c < rvd->vdev_children; c++) {
5203 vdev_t *vd = rvd->vdev_child[c];
5204
5205 /* don't count the holes & logs as children */
5206 if (vd->vdev_islog || vd->vdev_ishole) {
5207 if (lastlog == 0)
5208 lastlog = c;
5209 continue;
5210 }
5211
5212 lastlog = 0;
5213 }
5214 if (children != (lastlog != 0 ? lastlog : rvd->vdev_children))
5215 return (spa_vdev_exit(spa, NULL, txg, EINVAL));
5216
5217 /* next, ensure no spare or cache devices are part of the split */
5218 if (nvlist_lookup_nvlist(nvl, ZPOOL_CONFIG_SPARES, &tmp) == 0 ||
5219 nvlist_lookup_nvlist(nvl, ZPOOL_CONFIG_L2CACHE, &tmp) == 0)
5220 return (spa_vdev_exit(spa, NULL, txg, EINVAL));
5221
5222 vml = kmem_zalloc(children * sizeof (vdev_t *), KM_SLEEP);
5223 glist = kmem_zalloc(children * sizeof (uint64_t), KM_SLEEP);
5224
5225 /* then, loop over each vdev and validate it */
5226 for (c = 0; c < children; c++) {
5227 uint64_t is_hole = 0;
5228
5229 (void) nvlist_lookup_uint64(child[c], ZPOOL_CONFIG_IS_HOLE,
5230 &is_hole);
5231
5232 if (is_hole != 0) {
5233 if (spa->spa_root_vdev->vdev_child[c]->vdev_ishole ||
5234 spa->spa_root_vdev->vdev_child[c]->vdev_islog) {
5235 continue;
5236 } else {
5237 error = SET_ERROR(EINVAL);
5238 break;
5239 }
5240 }
5241
5242 /* which disk is going to be split? */
5243 if (nvlist_lookup_uint64(child[c], ZPOOL_CONFIG_GUID,
5244 &glist[c]) != 0) {
5245 error = SET_ERROR(EINVAL);
5246 break;
5247 }
5248
5249 /* look it up in the spa */
5250 vml[c] = spa_lookup_by_guid(spa, glist[c], B_FALSE);
5251 if (vml[c] == NULL) {
5252 error = SET_ERROR(ENODEV);
5253 break;
5254 }
5255
5256 /* make sure there's nothing stopping the split */
5257 if (vml[c]->vdev_parent->vdev_ops != &vdev_mirror_ops ||
5258 vml[c]->vdev_islog ||
5259 vml[c]->vdev_ishole ||
5260 vml[c]->vdev_isspare ||
5261 vml[c]->vdev_isl2cache ||
5262 !vdev_writeable(vml[c]) ||
5263 vml[c]->vdev_children != 0 ||
5264 vml[c]->vdev_state != VDEV_STATE_HEALTHY ||
5265 c != spa->spa_root_vdev->vdev_child[c]->vdev_id) {
5266 error = SET_ERROR(EINVAL);
5267 break;
5268 }
5269
5270 if (vdev_dtl_required(vml[c])) {
5271 error = SET_ERROR(EBUSY);
5272 break;
5273 }
5274
5275 /* we need certain info from the top level */
5276 VERIFY(nvlist_add_uint64(child[c], ZPOOL_CONFIG_METASLAB_ARRAY,
5277 vml[c]->vdev_top->vdev_ms_array) == 0);
5278 VERIFY(nvlist_add_uint64(child[c], ZPOOL_CONFIG_METASLAB_SHIFT,
5279 vml[c]->vdev_top->vdev_ms_shift) == 0);
5280 VERIFY(nvlist_add_uint64(child[c], ZPOOL_CONFIG_ASIZE,
5281 vml[c]->vdev_top->vdev_asize) == 0);
5282 VERIFY(nvlist_add_uint64(child[c], ZPOOL_CONFIG_ASHIFT,
5283 vml[c]->vdev_top->vdev_ashift) == 0);
5284 }
5285
5286 if (error != 0) {
5287 kmem_free(vml, children * sizeof (vdev_t *));
5288 kmem_free(glist, children * sizeof (uint64_t));
5289 return (spa_vdev_exit(spa, NULL, txg, error));
5290 }
5291
5292 /* stop writers from using the disks */
5293 for (c = 0; c < children; c++) {
5294 if (vml[c] != NULL)
5295 vml[c]->vdev_offline = B_TRUE;
5296 }
5297 vdev_reopen(spa->spa_root_vdev);
5298
5299 /*
5300 * Temporarily record the splitting vdevs in the spa config. This
5301 * will disappear once the config is regenerated.
5302 */
5303 VERIFY(nvlist_alloc(&nvl, NV_UNIQUE_NAME, KM_SLEEP) == 0);
5304 VERIFY(nvlist_add_uint64_array(nvl, ZPOOL_CONFIG_SPLIT_LIST,
5305 glist, children) == 0);
5306 kmem_free(glist, children * sizeof (uint64_t));
5307
5308 mutex_enter(&spa->spa_props_lock);
5309 VERIFY(nvlist_add_nvlist(spa->spa_config, ZPOOL_CONFIG_SPLIT,
5310 nvl) == 0);
5311 mutex_exit(&spa->spa_props_lock);
5312 spa->spa_config_splitting = nvl;
5313 vdev_config_dirty(spa->spa_root_vdev);
5314
5315 /* configure and create the new pool */
5316 VERIFY(nvlist_add_string(config, ZPOOL_CONFIG_POOL_NAME, newname) == 0);
5317 VERIFY(nvlist_add_uint64(config, ZPOOL_CONFIG_POOL_STATE,
5318 exp ? POOL_STATE_EXPORTED : POOL_STATE_ACTIVE) == 0);
5319 VERIFY(nvlist_add_uint64(config, ZPOOL_CONFIG_VERSION,
5320 spa_version(spa)) == 0);
5321 VERIFY(nvlist_add_uint64(config, ZPOOL_CONFIG_POOL_TXG,
5322 spa->spa_config_txg) == 0);
5323 VERIFY(nvlist_add_uint64(config, ZPOOL_CONFIG_POOL_GUID,
5324 spa_generate_guid(NULL)) == 0);
5325 (void) nvlist_lookup_string(props,
5326 zpool_prop_to_name(ZPOOL_PROP_ALTROOT), &altroot);
5327
5328 /* add the new pool to the namespace */
5329 newspa = spa_add(newname, config, altroot);
5330 newspa->spa_config_txg = spa->spa_config_txg;
5331 spa_set_log_state(newspa, SPA_LOG_CLEAR);
5332
5333 /* release the spa config lock, retaining the namespace lock */
5334 spa_vdev_config_exit(spa, NULL, txg, 0, FTAG);
5335
5336 if (zio_injection_enabled)
5337 zio_handle_panic_injection(spa, FTAG, 1);
5338
5339 spa_activate(newspa, spa_mode_global);
5340 spa_async_suspend(newspa);
5341
5342 #ifndef sun
5343 /* mark that we are creating new spa by splitting */
5344 newspa->spa_splitting_newspa = B_TRUE;
5345 #endif
5346 /* create the new pool from the disks of the original pool */
5347 error = spa_load(newspa, SPA_LOAD_IMPORT, SPA_IMPORT_ASSEMBLE, B_TRUE);
5348 #ifndef sun
5349 newspa->spa_splitting_newspa = B_FALSE;
5350 #endif
5351 if (error)
5352 goto out;
5353
5354 /* if that worked, generate a real config for the new pool */
5355 if (newspa->spa_root_vdev != NULL) {
5356 VERIFY(nvlist_alloc(&newspa->spa_config_splitting,
5357 NV_UNIQUE_NAME, KM_SLEEP) == 0);
5358 VERIFY(nvlist_add_uint64(newspa->spa_config_splitting,
5359 ZPOOL_CONFIG_SPLIT_GUID, spa_guid(spa)) == 0);
5360 spa_config_set(newspa, spa_config_generate(newspa, NULL, -1ULL,
5361 B_TRUE));
5362 }
5363
5364 /* set the props */
5365 if (props != NULL) {
5366 spa_configfile_set(newspa, props, B_FALSE);
5367 error = spa_prop_set(newspa, props);
5368 if (error)
5369 goto out;
5370 }
5371
5372 /* flush everything */
5373 txg = spa_vdev_config_enter(newspa);
5374 vdev_config_dirty(newspa->spa_root_vdev);
5375 (void) spa_vdev_config_exit(newspa, NULL, txg, 0, FTAG);
5376
5377 if (zio_injection_enabled)
5378 zio_handle_panic_injection(spa, FTAG, 2);
5379
5380 spa_async_resume(newspa);
5381
5382 /* finally, update the original pool's config */
5383 txg = spa_vdev_config_enter(spa);
5384 tx = dmu_tx_create_dd(spa_get_dsl(spa)->dp_mos_dir);
5385 error = dmu_tx_assign(tx, TXG_WAIT);
5386 if (error != 0)
5387 dmu_tx_abort(tx);
5388 for (c = 0; c < children; c++) {
5389 if (vml[c] != NULL) {
5390 vdev_split(vml[c]);
5391 if (error == 0)
5392 spa_history_log_internal(spa, "detach", tx,
5393 "vdev=%s", vml[c]->vdev_path);
5394 vdev_free(vml[c]);
5395 }
5396 }
5397 vdev_config_dirty(spa->spa_root_vdev);
5398 spa->spa_config_splitting = NULL;
5399 nvlist_free(nvl);
5400 if (error == 0)
5401 dmu_tx_commit(tx);
5402 (void) spa_vdev_exit(spa, NULL, txg, 0);
5403
5404 if (zio_injection_enabled)
5405 zio_handle_panic_injection(spa, FTAG, 3);
5406
5407 /* split is complete; log a history record */
5408 spa_history_log_internal(newspa, "split", NULL,
5409 "from pool %s", spa_name(spa));
5410
5411 kmem_free(vml, children * sizeof (vdev_t *));
5412
5413 /* if we're not going to mount the filesystems in userland, export */
5414 if (exp)
5415 error = spa_export_common(newname, POOL_STATE_EXPORTED, NULL,
5416 B_FALSE, B_FALSE);
5417
5418 return (error);
5419
5420 out:
5421 spa_unload(newspa);
5422 spa_deactivate(newspa);
5423 spa_remove(newspa);
5424
5425 txg = spa_vdev_config_enter(spa);
5426
5427 /* re-online all offlined disks */
5428 for (c = 0; c < children; c++) {
5429 if (vml[c] != NULL)
5430 vml[c]->vdev_offline = B_FALSE;
5431 }
5432 vdev_reopen(spa->spa_root_vdev);
5433
5434 nvlist_free(spa->spa_config_splitting);
5435 spa->spa_config_splitting = NULL;
5436 (void) spa_vdev_exit(spa, NULL, txg, error);
5437
5438 kmem_free(vml, children * sizeof (vdev_t *));
5439 return (error);
5440 }
5441
5442 static nvlist_t *
spa_nvlist_lookup_by_guid(nvlist_t ** nvpp,int count,uint64_t target_guid)5443 spa_nvlist_lookup_by_guid(nvlist_t **nvpp, int count, uint64_t target_guid)
5444 {
5445 for (int i = 0; i < count; i++) {
5446 uint64_t guid;
5447
5448 VERIFY(nvlist_lookup_uint64(nvpp[i], ZPOOL_CONFIG_GUID,
5449 &guid) == 0);
5450
5451 if (guid == target_guid)
5452 return (nvpp[i]);
5453 }
5454
5455 return (NULL);
5456 }
5457
5458 static void
spa_vdev_remove_aux(nvlist_t * config,char * name,nvlist_t ** dev,int count,nvlist_t * dev_to_remove)5459 spa_vdev_remove_aux(nvlist_t *config, char *name, nvlist_t **dev, int count,
5460 nvlist_t *dev_to_remove)
5461 {
5462 nvlist_t **newdev = NULL;
5463
5464 if (count > 1)
5465 newdev = kmem_alloc((count - 1) * sizeof (void *), KM_SLEEP);
5466
5467 for (int i = 0, j = 0; i < count; i++) {
5468 if (dev[i] == dev_to_remove)
5469 continue;
5470 VERIFY(nvlist_dup(dev[i], &newdev[j++], KM_SLEEP) == 0);
5471 }
5472
5473 VERIFY(nvlist_remove(config, name, DATA_TYPE_NVLIST_ARRAY) == 0);
5474 VERIFY(nvlist_add_nvlist_array(config, name, newdev, count - 1) == 0);
5475
5476 for (int i = 0; i < count - 1; i++)
5477 nvlist_free(newdev[i]);
5478
5479 if (count > 1)
5480 kmem_free(newdev, (count - 1) * sizeof (void *));
5481 }
5482
5483 /*
5484 * Evacuate the device.
5485 */
5486 static int
spa_vdev_remove_evacuate(spa_t * spa,vdev_t * vd)5487 spa_vdev_remove_evacuate(spa_t *spa, vdev_t *vd)
5488 {
5489 uint64_t txg;
5490 int error = 0;
5491
5492 ASSERT(MUTEX_HELD(&spa_namespace_lock));
5493 ASSERT(spa_config_held(spa, SCL_ALL, RW_WRITER) == 0);
5494 ASSERT(vd == vd->vdev_top);
5495
5496 /*
5497 * Evacuate the device. We don't hold the config lock as writer
5498 * since we need to do I/O but we do keep the
5499 * spa_namespace_lock held. Once this completes the device
5500 * should no longer have any blocks allocated on it.
5501 */
5502 if (vd->vdev_islog) {
5503 if (vd->vdev_stat.vs_alloc != 0)
5504 error = spa_offline_log(spa);
5505 } else {
5506 error = SET_ERROR(ENOTSUP);
5507 }
5508
5509 if (error)
5510 return (error);
5511
5512 /*
5513 * The evacuation succeeded. Remove any remaining MOS metadata
5514 * associated with this vdev, and wait for these changes to sync.
5515 */
5516 ASSERT0(vd->vdev_stat.vs_alloc);
5517 txg = spa_vdev_config_enter(spa);
5518 vd->vdev_removing = B_TRUE;
5519 vdev_dirty_leaves(vd, VDD_DTL, txg);
5520 vdev_config_dirty(vd);
5521 spa_vdev_config_exit(spa, NULL, txg, 0, FTAG);
5522
5523 return (0);
5524 }
5525
5526 /*
5527 * Complete the removal by cleaning up the namespace.
5528 */
5529 static void
spa_vdev_remove_from_namespace(spa_t * spa,vdev_t * vd)5530 spa_vdev_remove_from_namespace(spa_t *spa, vdev_t *vd)
5531 {
5532 vdev_t *rvd = spa->spa_root_vdev;
5533 uint64_t id = vd->vdev_id;
5534 boolean_t last_vdev = (id == (rvd->vdev_children - 1));
5535
5536 ASSERT(MUTEX_HELD(&spa_namespace_lock));
5537 ASSERT(spa_config_held(spa, SCL_ALL, RW_WRITER) == SCL_ALL);
5538 ASSERT(vd == vd->vdev_top);
5539
5540 /*
5541 * Only remove any devices which are empty.
5542 */
5543 if (vd->vdev_stat.vs_alloc != 0)
5544 return;
5545
5546 (void) vdev_label_init(vd, 0, VDEV_LABEL_REMOVE);
5547
5548 if (list_link_active(&vd->vdev_state_dirty_node))
5549 vdev_state_clean(vd);
5550 if (list_link_active(&vd->vdev_config_dirty_node))
5551 vdev_config_clean(vd);
5552
5553 vdev_free(vd);
5554
5555 if (last_vdev) {
5556 vdev_compact_children(rvd);
5557 } else {
5558 vd = vdev_alloc_common(spa, id, 0, &vdev_hole_ops);
5559 vdev_add_child(rvd, vd);
5560 }
5561 vdev_config_dirty(rvd);
5562
5563 /*
5564 * Reassess the health of our root vdev.
5565 */
5566 vdev_reopen(rvd);
5567 }
5568
5569 /*
5570 * Remove a device from the pool -
5571 *
5572 * Removing a device from the vdev namespace requires several steps
5573 * and can take a significant amount of time. As a result we use
5574 * the spa_vdev_config_[enter/exit] functions which allow us to
5575 * grab and release the spa_config_lock while still holding the namespace
5576 * lock. During each step the configuration is synced out.
5577 *
5578 * Currently, this supports removing only hot spares, slogs, and level 2 ARC
5579 * devices.
5580 */
5581 int
spa_vdev_remove(spa_t * spa,uint64_t guid,boolean_t unspare)5582 spa_vdev_remove(spa_t *spa, uint64_t guid, boolean_t unspare)
5583 {
5584 vdev_t *vd;
5585 metaslab_group_t *mg;
5586 nvlist_t **spares, **l2cache, *nv;
5587 uint64_t txg = 0;
5588 uint_t nspares, nl2cache;
5589 int error = 0;
5590 boolean_t locked = MUTEX_HELD(&spa_namespace_lock);
5591
5592 ASSERT(spa_writeable(spa));
5593
5594 if (!locked)
5595 txg = spa_vdev_enter(spa);
5596
5597 vd = spa_lookup_by_guid(spa, guid, B_FALSE);
5598
5599 if (spa->spa_spares.sav_vdevs != NULL &&
5600 nvlist_lookup_nvlist_array(spa->spa_spares.sav_config,
5601 ZPOOL_CONFIG_SPARES, &spares, &nspares) == 0 &&
5602 (nv = spa_nvlist_lookup_by_guid(spares, nspares, guid)) != NULL) {
5603 /*
5604 * Only remove the hot spare if it's not currently in use
5605 * in this pool.
5606 */
5607 if (vd == NULL || unspare) {
5608 spa_vdev_remove_aux(spa->spa_spares.sav_config,
5609 ZPOOL_CONFIG_SPARES, spares, nspares, nv);
5610 spa_load_spares(spa);
5611 spa->spa_spares.sav_sync = B_TRUE;
5612 } else {
5613 error = SET_ERROR(EBUSY);
5614 }
5615 } else if (spa->spa_l2cache.sav_vdevs != NULL &&
5616 nvlist_lookup_nvlist_array(spa->spa_l2cache.sav_config,
5617 ZPOOL_CONFIG_L2CACHE, &l2cache, &nl2cache) == 0 &&
5618 (nv = spa_nvlist_lookup_by_guid(l2cache, nl2cache, guid)) != NULL) {
5619 /*
5620 * Cache devices can always be removed.
5621 */
5622 spa_vdev_remove_aux(spa->spa_l2cache.sav_config,
5623 ZPOOL_CONFIG_L2CACHE, l2cache, nl2cache, nv);
5624 spa_load_l2cache(spa);
5625 spa->spa_l2cache.sav_sync = B_TRUE;
5626 } else if (vd != NULL && vd->vdev_islog) {
5627 ASSERT(!locked);
5628 ASSERT(vd == vd->vdev_top);
5629
5630 mg = vd->vdev_mg;
5631
5632 /*
5633 * Stop allocating from this vdev.
5634 */
5635 metaslab_group_passivate(mg);
5636
5637 /*
5638 * Wait for the youngest allocations and frees to sync,
5639 * and then wait for the deferral of those frees to finish.
5640 */
5641 spa_vdev_config_exit(spa, NULL,
5642 txg + TXG_CONCURRENT_STATES + TXG_DEFER_SIZE, 0, FTAG);
5643
5644 /*
5645 * Attempt to evacuate the vdev.
5646 */
5647 error = spa_vdev_remove_evacuate(spa, vd);
5648
5649 txg = spa_vdev_config_enter(spa);
5650
5651 /*
5652 * If we couldn't evacuate the vdev, unwind.
5653 */
5654 if (error) {
5655 metaslab_group_activate(mg);
5656 return (spa_vdev_exit(spa, NULL, txg, error));
5657 }
5658
5659 /*
5660 * Clean up the vdev namespace.
5661 */
5662 spa_vdev_remove_from_namespace(spa, vd);
5663
5664 } else if (vd != NULL) {
5665 /*
5666 * Normal vdevs cannot be removed (yet).
5667 */
5668 error = SET_ERROR(ENOTSUP);
5669 } else {
5670 /*
5671 * There is no vdev of any kind with the specified guid.
5672 */
5673 error = SET_ERROR(ENOENT);
5674 }
5675
5676 if (!locked)
5677 return (spa_vdev_exit(spa, NULL, txg, error));
5678
5679 return (error);
5680 }
5681
5682 /*
5683 * Find any device that's done replacing, or a vdev marked 'unspare' that's
5684 * currently spared, so we can detach it.
5685 */
5686 static vdev_t *
spa_vdev_resilver_done_hunt(vdev_t * vd)5687 spa_vdev_resilver_done_hunt(vdev_t *vd)
5688 {
5689 vdev_t *newvd, *oldvd;
5690
5691 for (int c = 0; c < vd->vdev_children; c++) {
5692 oldvd = spa_vdev_resilver_done_hunt(vd->vdev_child[c]);
5693 if (oldvd != NULL)
5694 return (oldvd);
5695 }
5696
5697 /*
5698 * Check for a completed replacement. We always consider the first
5699 * vdev in the list to be the oldest vdev, and the last one to be
5700 * the newest (see spa_vdev_attach() for how that works). In
5701 * the case where the newest vdev is faulted, we will not automatically
5702 * remove it after a resilver completes. This is OK as it will require
5703 * user intervention to determine which disk the admin wishes to keep.
5704 */
5705 if (vd->vdev_ops == &vdev_replacing_ops) {
5706 ASSERT(vd->vdev_children > 1);
5707
5708 newvd = vd->vdev_child[vd->vdev_children - 1];
5709 oldvd = vd->vdev_child[0];
5710
5711 if (vdev_dtl_empty(newvd, DTL_MISSING) &&
5712 vdev_dtl_empty(newvd, DTL_OUTAGE) &&
5713 !vdev_dtl_required(oldvd))
5714 return (oldvd);
5715 }
5716
5717 /*
5718 * Check for a completed resilver with the 'unspare' flag set.
5719 */
5720 if (vd->vdev_ops == &vdev_spare_ops) {
5721 vdev_t *first = vd->vdev_child[0];
5722 vdev_t *last = vd->vdev_child[vd->vdev_children - 1];
5723
5724 if (last->vdev_unspare) {
5725 oldvd = first;
5726 newvd = last;
5727 } else if (first->vdev_unspare) {
5728 oldvd = last;
5729 newvd = first;
5730 } else {
5731 oldvd = NULL;
5732 }
5733
5734 if (oldvd != NULL &&
5735 vdev_dtl_empty(newvd, DTL_MISSING) &&
5736 vdev_dtl_empty(newvd, DTL_OUTAGE) &&
5737 !vdev_dtl_required(oldvd))
5738 return (oldvd);
5739
5740 /*
5741 * If there are more than two spares attached to a disk,
5742 * and those spares are not required, then we want to
5743 * attempt to free them up now so that they can be used
5744 * by other pools. Once we're back down to a single
5745 * disk+spare, we stop removing them.
5746 */
5747 if (vd->vdev_children > 2) {
5748 newvd = vd->vdev_child[1];
5749
5750 if (newvd->vdev_isspare && last->vdev_isspare &&
5751 vdev_dtl_empty(last, DTL_MISSING) &&
5752 vdev_dtl_empty(last, DTL_OUTAGE) &&
5753 !vdev_dtl_required(newvd))
5754 return (newvd);
5755 }
5756 }
5757
5758 return (NULL);
5759 }
5760
5761 static void
spa_vdev_resilver_done(spa_t * spa)5762 spa_vdev_resilver_done(spa_t *spa)
5763 {
5764 vdev_t *vd, *pvd, *ppvd;
5765 uint64_t guid, sguid, pguid, ppguid;
5766
5767 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
5768
5769 while ((vd = spa_vdev_resilver_done_hunt(spa->spa_root_vdev)) != NULL) {
5770 pvd = vd->vdev_parent;
5771 ppvd = pvd->vdev_parent;
5772 guid = vd->vdev_guid;
5773 pguid = pvd->vdev_guid;
5774 ppguid = ppvd->vdev_guid;
5775 sguid = 0;
5776 /*
5777 * If we have just finished replacing a hot spared device, then
5778 * we need to detach the parent's first child (the original hot
5779 * spare) as well.
5780 */
5781 if (ppvd->vdev_ops == &vdev_spare_ops && pvd->vdev_id == 0 &&
5782 ppvd->vdev_children == 2) {
5783 ASSERT(pvd->vdev_ops == &vdev_replacing_ops);
5784 sguid = ppvd->vdev_child[1]->vdev_guid;
5785 }
5786 ASSERT(vd->vdev_resilver_txg == 0 || !vdev_dtl_required(vd));
5787
5788 spa_config_exit(spa, SCL_ALL, FTAG);
5789 if (spa_vdev_detach(spa, guid, pguid, B_TRUE) != 0)
5790 return;
5791 if (sguid && spa_vdev_detach(spa, sguid, ppguid, B_TRUE) != 0)
5792 return;
5793 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
5794 }
5795
5796 spa_config_exit(spa, SCL_ALL, FTAG);
5797 }
5798
5799 /*
5800 * Update the stored path or FRU for this vdev.
5801 */
5802 int
spa_vdev_set_common(spa_t * spa,uint64_t guid,const char * value,boolean_t ispath)5803 spa_vdev_set_common(spa_t *spa, uint64_t guid, const char *value,
5804 boolean_t ispath)
5805 {
5806 vdev_t *vd;
5807 boolean_t sync = B_FALSE;
5808
5809 ASSERT(spa_writeable(spa));
5810
5811 spa_vdev_state_enter(spa, SCL_ALL);
5812
5813 if ((vd = spa_lookup_by_guid(spa, guid, B_TRUE)) == NULL)
5814 return (spa_vdev_state_exit(spa, NULL, ENOENT));
5815
5816 if (!vd->vdev_ops->vdev_op_leaf)
5817 return (spa_vdev_state_exit(spa, NULL, ENOTSUP));
5818
5819 if (ispath) {
5820 if (strcmp(value, vd->vdev_path) != 0) {
5821 spa_strfree(vd->vdev_path);
5822 vd->vdev_path = spa_strdup(value);
5823 sync = B_TRUE;
5824 }
5825 } else {
5826 if (vd->vdev_fru == NULL) {
5827 vd->vdev_fru = spa_strdup(value);
5828 sync = B_TRUE;
5829 } else if (strcmp(value, vd->vdev_fru) != 0) {
5830 spa_strfree(vd->vdev_fru);
5831 vd->vdev_fru = spa_strdup(value);
5832 sync = B_TRUE;
5833 }
5834 }
5835
5836 return (spa_vdev_state_exit(spa, sync ? vd : NULL, 0));
5837 }
5838
5839 int
spa_vdev_setpath(spa_t * spa,uint64_t guid,const char * newpath)5840 spa_vdev_setpath(spa_t *spa, uint64_t guid, const char *newpath)
5841 {
5842 return (spa_vdev_set_common(spa, guid, newpath, B_TRUE));
5843 }
5844
5845 int
spa_vdev_setfru(spa_t * spa,uint64_t guid,const char * newfru)5846 spa_vdev_setfru(spa_t *spa, uint64_t guid, const char *newfru)
5847 {
5848 return (spa_vdev_set_common(spa, guid, newfru, B_FALSE));
5849 }
5850
5851 /*
5852 * ==========================================================================
5853 * SPA Scanning
5854 * ==========================================================================
5855 */
5856
5857 int
spa_scan_stop(spa_t * spa)5858 spa_scan_stop(spa_t *spa)
5859 {
5860 ASSERT(spa_config_held(spa, SCL_ALL, RW_WRITER) == 0);
5861 if (dsl_scan_resilvering(spa->spa_dsl_pool))
5862 return (SET_ERROR(EBUSY));
5863 return (dsl_scan_cancel(spa->spa_dsl_pool));
5864 }
5865
5866 int
spa_scan(spa_t * spa,pool_scan_func_t func)5867 spa_scan(spa_t *spa, pool_scan_func_t func)
5868 {
5869 ASSERT(spa_config_held(spa, SCL_ALL, RW_WRITER) == 0);
5870
5871 if (func >= POOL_SCAN_FUNCS || func == POOL_SCAN_NONE)
5872 return (SET_ERROR(ENOTSUP));
5873
5874 /*
5875 * If a resilver was requested, but there is no DTL on a
5876 * writeable leaf device, we have nothing to do.
5877 */
5878 if (func == POOL_SCAN_RESILVER &&
5879 !vdev_resilver_needed(spa->spa_root_vdev, NULL, NULL)) {
5880 spa_async_request(spa, SPA_ASYNC_RESILVER_DONE);
5881 return (0);
5882 }
5883
5884 return (dsl_scan(spa->spa_dsl_pool, func));
5885 }
5886
5887 /*
5888 * ==========================================================================
5889 * SPA async task processing
5890 * ==========================================================================
5891 */
5892
5893 static void
spa_async_remove(spa_t * spa,vdev_t * vd)5894 spa_async_remove(spa_t *spa, vdev_t *vd)
5895 {
5896 if (vd->vdev_remove_wanted) {
5897 vd->vdev_remove_wanted = B_FALSE;
5898 vd->vdev_delayed_close = B_FALSE;
5899 vdev_set_state(vd, B_FALSE, VDEV_STATE_REMOVED, VDEV_AUX_NONE);
5900
5901 /*
5902 * We want to clear the stats, but we don't want to do a full
5903 * vdev_clear() as that will cause us to throw away
5904 * degraded/faulted state as well as attempt to reopen the
5905 * device, all of which is a waste.
5906 */
5907 vd->vdev_stat.vs_read_errors = 0;
5908 vd->vdev_stat.vs_write_errors = 0;
5909 vd->vdev_stat.vs_checksum_errors = 0;
5910
5911 vdev_state_dirty(vd->vdev_top);
5912 /* Tell userspace that the vdev is gone. */
5913 zfs_post_remove(spa, vd);
5914 }
5915
5916 for (int c = 0; c < vd->vdev_children; c++)
5917 spa_async_remove(spa, vd->vdev_child[c]);
5918 }
5919
5920 static void
spa_async_probe(spa_t * spa,vdev_t * vd)5921 spa_async_probe(spa_t *spa, vdev_t *vd)
5922 {
5923 if (vd->vdev_probe_wanted) {
5924 vd->vdev_probe_wanted = B_FALSE;
5925 vdev_reopen(vd); /* vdev_open() does the actual probe */
5926 }
5927
5928 for (int c = 0; c < vd->vdev_children; c++)
5929 spa_async_probe(spa, vd->vdev_child[c]);
5930 }
5931
5932 static void
spa_async_autoexpand(spa_t * spa,vdev_t * vd)5933 spa_async_autoexpand(spa_t *spa, vdev_t *vd)
5934 {
5935 sysevent_id_t eid;
5936 nvlist_t *attr;
5937
5938 if (!spa->spa_autoexpand)
5939 return;
5940
5941 for (int c = 0; c < vd->vdev_children; c++) {
5942 vdev_t *cvd = vd->vdev_child[c];
5943 spa_async_autoexpand(spa, cvd);
5944 }
5945
5946 if (!vd->vdev_ops->vdev_op_leaf || vd->vdev_path == NULL)
5947 return;
5948
5949 VERIFY(nvlist_alloc(&attr, NV_UNIQUE_NAME, KM_SLEEP) == 0);
5950 VERIFY(nvlist_add_string(attr, DEV_PATH, vd->vdev_path) == 0);
5951
5952 (void) ddi_log_sysevent(zfs_dip, SUNW_VENDOR, EC_DEV_STATUS,
5953 ESC_ZFS_VDEV_AUTOEXPAND, attr, &eid, DDI_SLEEP);
5954
5955 nvlist_free(attr);
5956 }
5957
5958 static void
spa_async_thread(void * arg)5959 spa_async_thread(void *arg)
5960 {
5961 spa_t *spa = arg;
5962 int tasks;
5963
5964 ASSERT(spa->spa_sync_on);
5965
5966 mutex_enter(&spa->spa_async_lock);
5967 tasks = spa->spa_async_tasks;
5968 spa->spa_async_tasks &= SPA_ASYNC_REMOVE;
5969 mutex_exit(&spa->spa_async_lock);
5970
5971 /*
5972 * See if the config needs to be updated.
5973 */
5974 if (tasks & SPA_ASYNC_CONFIG_UPDATE) {
5975 uint64_t old_space, new_space;
5976
5977 mutex_enter(&spa_namespace_lock);
5978 old_space = metaslab_class_get_space(spa_normal_class(spa));
5979 spa_config_update(spa, SPA_CONFIG_UPDATE_POOL);
5980 new_space = metaslab_class_get_space(spa_normal_class(spa));
5981 mutex_exit(&spa_namespace_lock);
5982
5983 /*
5984 * If the pool grew as a result of the config update,
5985 * then log an internal history event.
5986 */
5987 if (new_space != old_space) {
5988 spa_history_log_internal(spa, "vdev online", NULL,
5989 "pool '%s' size: %llu(+%llu)",
5990 spa_name(spa), new_space, new_space - old_space);
5991 }
5992 }
5993
5994 if ((tasks & SPA_ASYNC_AUTOEXPAND) && !spa_suspended(spa)) {
5995 spa_config_enter(spa, SCL_CONFIG, FTAG, RW_READER);
5996 spa_async_autoexpand(spa, spa->spa_root_vdev);
5997 spa_config_exit(spa, SCL_CONFIG, FTAG);
5998 }
5999
6000 /*
6001 * See if any devices need to be probed.
6002 */
6003 if (tasks & SPA_ASYNC_PROBE) {
6004 spa_vdev_state_enter(spa, SCL_NONE);
6005 spa_async_probe(spa, spa->spa_root_vdev);
6006 (void) spa_vdev_state_exit(spa, NULL, 0);
6007 }
6008
6009 /*
6010 * If any devices are done replacing, detach them.
6011 */
6012 if (tasks & SPA_ASYNC_RESILVER_DONE)
6013 spa_vdev_resilver_done(spa);
6014
6015 /*
6016 * Kick off a resilver.
6017 */
6018 if (tasks & SPA_ASYNC_RESILVER)
6019 dsl_resilver_restart(spa->spa_dsl_pool, 0);
6020
6021 /*
6022 * Let the world know that we're done.
6023 */
6024 mutex_enter(&spa->spa_async_lock);
6025 spa->spa_async_thread = NULL;
6026 cv_broadcast(&spa->spa_async_cv);
6027 mutex_exit(&spa->spa_async_lock);
6028 thread_exit();
6029 }
6030
6031 static void
spa_async_thread_vd(void * arg)6032 spa_async_thread_vd(void *arg)
6033 {
6034 spa_t *spa = arg;
6035 int tasks;
6036
6037 ASSERT(spa->spa_sync_on);
6038
6039 mutex_enter(&spa->spa_async_lock);
6040 tasks = spa->spa_async_tasks;
6041 retry:
6042 spa->spa_async_tasks &= ~SPA_ASYNC_REMOVE;
6043 mutex_exit(&spa->spa_async_lock);
6044
6045 /*
6046 * See if any devices need to be marked REMOVED.
6047 */
6048 if (tasks & SPA_ASYNC_REMOVE) {
6049 spa_vdev_state_enter(spa, SCL_NONE);
6050 spa_async_remove(spa, spa->spa_root_vdev);
6051 for (int i = 0; i < spa->spa_l2cache.sav_count; i++)
6052 spa_async_remove(spa, spa->spa_l2cache.sav_vdevs[i]);
6053 for (int i = 0; i < spa->spa_spares.sav_count; i++)
6054 spa_async_remove(spa, spa->spa_spares.sav_vdevs[i]);
6055 (void) spa_vdev_state_exit(spa, NULL, 0);
6056 }
6057
6058 /*
6059 * Let the world know that we're done.
6060 */
6061 mutex_enter(&spa->spa_async_lock);
6062 tasks = spa->spa_async_tasks;
6063 if ((tasks & SPA_ASYNC_REMOVE) != 0)
6064 goto retry;
6065 spa->spa_async_thread_vd = NULL;
6066 cv_broadcast(&spa->spa_async_cv);
6067 mutex_exit(&spa->spa_async_lock);
6068 thread_exit();
6069 }
6070
6071 void
spa_async_suspend(spa_t * spa)6072 spa_async_suspend(spa_t *spa)
6073 {
6074 mutex_enter(&spa->spa_async_lock);
6075 spa->spa_async_suspended++;
6076 while (spa->spa_async_thread != NULL &&
6077 spa->spa_async_thread_vd != NULL)
6078 cv_wait(&spa->spa_async_cv, &spa->spa_async_lock);
6079 mutex_exit(&spa->spa_async_lock);
6080 }
6081
6082 void
spa_async_resume(spa_t * spa)6083 spa_async_resume(spa_t *spa)
6084 {
6085 mutex_enter(&spa->spa_async_lock);
6086 ASSERT(spa->spa_async_suspended != 0);
6087 spa->spa_async_suspended--;
6088 mutex_exit(&spa->spa_async_lock);
6089 }
6090
6091 static boolean_t
spa_async_tasks_pending(spa_t * spa)6092 spa_async_tasks_pending(spa_t *spa)
6093 {
6094 uint_t non_config_tasks;
6095 uint_t config_task;
6096 boolean_t config_task_suspended;
6097
6098 non_config_tasks = spa->spa_async_tasks & ~(SPA_ASYNC_CONFIG_UPDATE |
6099 SPA_ASYNC_REMOVE);
6100 config_task = spa->spa_async_tasks & SPA_ASYNC_CONFIG_UPDATE;
6101 if (spa->spa_ccw_fail_time == 0) {
6102 config_task_suspended = B_FALSE;
6103 } else {
6104 config_task_suspended =
6105 (gethrtime() - spa->spa_ccw_fail_time) <
6106 (zfs_ccw_retry_interval * NANOSEC);
6107 }
6108
6109 return (non_config_tasks || (config_task && !config_task_suspended));
6110 }
6111
6112 static void
spa_async_dispatch(spa_t * spa)6113 spa_async_dispatch(spa_t *spa)
6114 {
6115 mutex_enter(&spa->spa_async_lock);
6116 if (spa_async_tasks_pending(spa) &&
6117 !spa->spa_async_suspended &&
6118 spa->spa_async_thread == NULL &&
6119 rootdir != NULL)
6120 spa->spa_async_thread = thread_create(NULL, 0,
6121 spa_async_thread, spa, 0, &p0, TS_RUN, maxclsyspri);
6122 mutex_exit(&spa->spa_async_lock);
6123 }
6124
6125 static void
spa_async_dispatch_vd(spa_t * spa)6126 spa_async_dispatch_vd(spa_t *spa)
6127 {
6128 mutex_enter(&spa->spa_async_lock);
6129 if ((spa->spa_async_tasks & SPA_ASYNC_REMOVE) != 0 &&
6130 !spa->spa_async_suspended &&
6131 spa->spa_async_thread_vd == NULL &&
6132 rootdir != NULL)
6133 spa->spa_async_thread_vd = thread_create(NULL, 0,
6134 spa_async_thread_vd, spa, 0, &p0, TS_RUN, maxclsyspri);
6135 mutex_exit(&spa->spa_async_lock);
6136 }
6137
6138 void
spa_async_request(spa_t * spa,int task)6139 spa_async_request(spa_t *spa, int task)
6140 {
6141 zfs_dbgmsg("spa=%s async request task=%u", spa->spa_name, task);
6142 mutex_enter(&spa->spa_async_lock);
6143 spa->spa_async_tasks |= task;
6144 mutex_exit(&spa->spa_async_lock);
6145 spa_async_dispatch_vd(spa);
6146 }
6147
6148 /*
6149 * ==========================================================================
6150 * SPA syncing routines
6151 * ==========================================================================
6152 */
6153
6154 static int
bpobj_enqueue_cb(void * arg,const blkptr_t * bp,dmu_tx_t * tx)6155 bpobj_enqueue_cb(void *arg, const blkptr_t *bp, dmu_tx_t *tx)
6156 {
6157 bpobj_t *bpo = arg;
6158 bpobj_enqueue(bpo, bp, tx);
6159 return (0);
6160 }
6161
6162 static int
spa_free_sync_cb(void * arg,const blkptr_t * bp,dmu_tx_t * tx)6163 spa_free_sync_cb(void *arg, const blkptr_t *bp, dmu_tx_t *tx)
6164 {
6165 zio_t *zio = arg;
6166
6167 zio_nowait(zio_free_sync(zio, zio->io_spa, dmu_tx_get_txg(tx), bp,
6168 BP_GET_PSIZE(bp), zio->io_flags));
6169 return (0);
6170 }
6171
6172 /*
6173 * Note: this simple function is not inlined to make it easier to dtrace the
6174 * amount of time spent syncing frees.
6175 */
6176 static void
spa_sync_frees(spa_t * spa,bplist_t * bpl,dmu_tx_t * tx)6177 spa_sync_frees(spa_t *spa, bplist_t *bpl, dmu_tx_t *tx)
6178 {
6179 zio_t *zio = zio_root(spa, NULL, NULL, 0);
6180 bplist_iterate(bpl, spa_free_sync_cb, zio, tx);
6181 VERIFY(zio_wait(zio) == 0);
6182 }
6183
6184 /*
6185 * Note: this simple function is not inlined to make it easier to dtrace the
6186 * amount of time spent syncing deferred frees.
6187 */
6188 static void
spa_sync_deferred_frees(spa_t * spa,dmu_tx_t * tx)6189 spa_sync_deferred_frees(spa_t *spa, dmu_tx_t *tx)
6190 {
6191 zio_t *zio = zio_root(spa, NULL, NULL, 0);
6192 VERIFY3U(bpobj_iterate(&spa->spa_deferred_bpobj,
6193 spa_free_sync_cb, zio, tx), ==, 0);
6194 VERIFY0(zio_wait(zio));
6195 }
6196
6197
6198 static void
spa_sync_nvlist(spa_t * spa,uint64_t obj,nvlist_t * nv,dmu_tx_t * tx)6199 spa_sync_nvlist(spa_t *spa, uint64_t obj, nvlist_t *nv, dmu_tx_t *tx)
6200 {
6201 char *packed = NULL;
6202 size_t bufsize;
6203 size_t nvsize = 0;
6204 dmu_buf_t *db;
6205
6206 VERIFY(nvlist_size(nv, &nvsize, NV_ENCODE_XDR) == 0);
6207
6208 /*
6209 * Write full (SPA_CONFIG_BLOCKSIZE) blocks of configuration
6210 * information. This avoids the dmu_buf_will_dirty() path and
6211 * saves us a pre-read to get data we don't actually care about.
6212 */
6213 bufsize = P2ROUNDUP((uint64_t)nvsize, SPA_CONFIG_BLOCKSIZE);
6214 packed = kmem_alloc(bufsize, KM_SLEEP);
6215
6216 VERIFY(nvlist_pack(nv, &packed, &nvsize, NV_ENCODE_XDR,
6217 KM_SLEEP) == 0);
6218 bzero(packed + nvsize, bufsize - nvsize);
6219
6220 dmu_write(spa->spa_meta_objset, obj, 0, bufsize, packed, tx);
6221
6222 kmem_free(packed, bufsize);
6223
6224 VERIFY(0 == dmu_bonus_hold(spa->spa_meta_objset, obj, FTAG, &db));
6225 dmu_buf_will_dirty(db, tx);
6226 *(uint64_t *)db->db_data = nvsize;
6227 dmu_buf_rele(db, FTAG);
6228 }
6229
6230 static void
spa_sync_aux_dev(spa_t * spa,spa_aux_vdev_t * sav,dmu_tx_t * tx,const char * config,const char * entry)6231 spa_sync_aux_dev(spa_t *spa, spa_aux_vdev_t *sav, dmu_tx_t *tx,
6232 const char *config, const char *entry)
6233 {
6234 nvlist_t *nvroot;
6235 nvlist_t **list;
6236 int i;
6237
6238 if (!sav->sav_sync)
6239 return;
6240
6241 /*
6242 * Update the MOS nvlist describing the list of available devices.
6243 * spa_validate_aux() will have already made sure this nvlist is
6244 * valid and the vdevs are labeled appropriately.
6245 */
6246 if (sav->sav_object == 0) {
6247 sav->sav_object = dmu_object_alloc(spa->spa_meta_objset,
6248 DMU_OT_PACKED_NVLIST, 1 << 14, DMU_OT_PACKED_NVLIST_SIZE,
6249 sizeof (uint64_t), tx);
6250 VERIFY(zap_update(spa->spa_meta_objset,
6251 DMU_POOL_DIRECTORY_OBJECT, entry, sizeof (uint64_t), 1,
6252 &sav->sav_object, tx) == 0);
6253 }
6254
6255 VERIFY(nvlist_alloc(&nvroot, NV_UNIQUE_NAME, KM_SLEEP) == 0);
6256 if (sav->sav_count == 0) {
6257 VERIFY(nvlist_add_nvlist_array(nvroot, config, NULL, 0) == 0);
6258 } else {
6259 list = kmem_alloc(sav->sav_count * sizeof (void *), KM_SLEEP);
6260 for (i = 0; i < sav->sav_count; i++)
6261 list[i] = vdev_config_generate(spa, sav->sav_vdevs[i],
6262 B_FALSE, VDEV_CONFIG_L2CACHE);
6263 VERIFY(nvlist_add_nvlist_array(nvroot, config, list,
6264 sav->sav_count) == 0);
6265 for (i = 0; i < sav->sav_count; i++)
6266 nvlist_free(list[i]);
6267 kmem_free(list, sav->sav_count * sizeof (void *));
6268 }
6269
6270 spa_sync_nvlist(spa, sav->sav_object, nvroot, tx);
6271 nvlist_free(nvroot);
6272
6273 sav->sav_sync = B_FALSE;
6274 }
6275
6276 static void
spa_sync_config_object(spa_t * spa,dmu_tx_t * tx)6277 spa_sync_config_object(spa_t *spa, dmu_tx_t *tx)
6278 {
6279 nvlist_t *config;
6280
6281 if (list_is_empty(&spa->spa_config_dirty_list))
6282 return;
6283
6284 spa_config_enter(spa, SCL_STATE, FTAG, RW_READER);
6285
6286 config = spa_config_generate(spa, spa->spa_root_vdev,
6287 dmu_tx_get_txg(tx), B_FALSE);
6288
6289 /*
6290 * If we're upgrading the spa version then make sure that
6291 * the config object gets updated with the correct version.
6292 */
6293 if (spa->spa_ubsync.ub_version < spa->spa_uberblock.ub_version)
6294 fnvlist_add_uint64(config, ZPOOL_CONFIG_VERSION,
6295 spa->spa_uberblock.ub_version);
6296
6297 spa_config_exit(spa, SCL_STATE, FTAG);
6298
6299 if (spa->spa_config_syncing)
6300 nvlist_free(spa->spa_config_syncing);
6301 spa->spa_config_syncing = config;
6302
6303 spa_sync_nvlist(spa, spa->spa_config_object, config, tx);
6304 }
6305
6306 static void
spa_sync_version(void * arg,dmu_tx_t * tx)6307 spa_sync_version(void *arg, dmu_tx_t *tx)
6308 {
6309 uint64_t *versionp = arg;
6310 uint64_t version = *versionp;
6311 spa_t *spa = dmu_tx_pool(tx)->dp_spa;
6312
6313 /*
6314 * Setting the version is special cased when first creating the pool.
6315 */
6316 ASSERT(tx->tx_txg != TXG_INITIAL);
6317
6318 ASSERT(SPA_VERSION_IS_SUPPORTED(version));
6319 ASSERT(version >= spa_version(spa));
6320
6321 spa->spa_uberblock.ub_version = version;
6322 vdev_config_dirty(spa->spa_root_vdev);
6323 spa_history_log_internal(spa, "set", tx, "version=%lld", version);
6324 }
6325
6326 /*
6327 * Set zpool properties.
6328 */
6329 static void
spa_sync_props(void * arg,dmu_tx_t * tx)6330 spa_sync_props(void *arg, dmu_tx_t *tx)
6331 {
6332 nvlist_t *nvp = arg;
6333 spa_t *spa = dmu_tx_pool(tx)->dp_spa;
6334 objset_t *mos = spa->spa_meta_objset;
6335 nvpair_t *elem = NULL;
6336
6337 mutex_enter(&spa->spa_props_lock);
6338
6339 while ((elem = nvlist_next_nvpair(nvp, elem))) {
6340 uint64_t intval;
6341 char *strval, *fname;
6342 zpool_prop_t prop;
6343 const char *propname;
6344 zprop_type_t proptype;
6345 spa_feature_t fid;
6346
6347 switch (prop = zpool_name_to_prop(nvpair_name(elem))) {
6348 case ZPROP_INVAL:
6349 /*
6350 * We checked this earlier in spa_prop_validate().
6351 */
6352 ASSERT(zpool_prop_feature(nvpair_name(elem)));
6353
6354 fname = strchr(nvpair_name(elem), '@') + 1;
6355 VERIFY0(zfeature_lookup_name(fname, &fid));
6356
6357 spa_feature_enable(spa, fid, tx);
6358 spa_history_log_internal(spa, "set", tx,
6359 "%s=enabled", nvpair_name(elem));
6360 break;
6361
6362 case ZPOOL_PROP_VERSION:
6363 intval = fnvpair_value_uint64(elem);
6364 /*
6365 * The version is synced seperatly before other
6366 * properties and should be correct by now.
6367 */
6368 ASSERT3U(spa_version(spa), >=, intval);
6369 break;
6370
6371 case ZPOOL_PROP_ALTROOT:
6372 /*
6373 * 'altroot' is a non-persistent property. It should
6374 * have been set temporarily at creation or import time.
6375 */
6376 ASSERT(spa->spa_root != NULL);
6377 break;
6378
6379 case ZPOOL_PROP_READONLY:
6380 case ZPOOL_PROP_CACHEFILE:
6381 /*
6382 * 'readonly' and 'cachefile' are also non-persisitent
6383 * properties.
6384 */
6385 break;
6386 case ZPOOL_PROP_COMMENT:
6387 strval = fnvpair_value_string(elem);
6388 if (spa->spa_comment != NULL)
6389 spa_strfree(spa->spa_comment);
6390 spa->spa_comment = spa_strdup(strval);
6391 /*
6392 * We need to dirty the configuration on all the vdevs
6393 * so that their labels get updated. It's unnecessary
6394 * to do this for pool creation since the vdev's
6395 * configuratoin has already been dirtied.
6396 */
6397 if (tx->tx_txg != TXG_INITIAL)
6398 vdev_config_dirty(spa->spa_root_vdev);
6399 spa_history_log_internal(spa, "set", tx,
6400 "%s=%s", nvpair_name(elem), strval);
6401 break;
6402 default:
6403 /*
6404 * Set pool property values in the poolprops mos object.
6405 */
6406 if (spa->spa_pool_props_object == 0) {
6407 spa->spa_pool_props_object =
6408 zap_create_link(mos, DMU_OT_POOL_PROPS,
6409 DMU_POOL_DIRECTORY_OBJECT, DMU_POOL_PROPS,
6410 tx);
6411 }
6412
6413 /* normalize the property name */
6414 propname = zpool_prop_to_name(prop);
6415 proptype = zpool_prop_get_type(prop);
6416
6417 if (nvpair_type(elem) == DATA_TYPE_STRING) {
6418 ASSERT(proptype == PROP_TYPE_STRING);
6419 strval = fnvpair_value_string(elem);
6420 VERIFY0(zap_update(mos,
6421 spa->spa_pool_props_object, propname,
6422 1, strlen(strval) + 1, strval, tx));
6423 spa_history_log_internal(spa, "set", tx,
6424 "%s=%s", nvpair_name(elem), strval);
6425 } else if (nvpair_type(elem) == DATA_TYPE_UINT64) {
6426 intval = fnvpair_value_uint64(elem);
6427
6428 if (proptype == PROP_TYPE_INDEX) {
6429 const char *unused;
6430 VERIFY0(zpool_prop_index_to_string(
6431 prop, intval, &unused));
6432 }
6433 VERIFY0(zap_update(mos,
6434 spa->spa_pool_props_object, propname,
6435 8, 1, &intval, tx));
6436 spa_history_log_internal(spa, "set", tx,
6437 "%s=%lld", nvpair_name(elem), intval);
6438 } else {
6439 ASSERT(0); /* not allowed */
6440 }
6441
6442 switch (prop) {
6443 case ZPOOL_PROP_DELEGATION:
6444 spa->spa_delegation = intval;
6445 break;
6446 case ZPOOL_PROP_BOOTFS:
6447 spa->spa_bootfs = intval;
6448 break;
6449 case ZPOOL_PROP_FAILUREMODE:
6450 spa->spa_failmode = intval;
6451 break;
6452 case ZPOOL_PROP_AUTOEXPAND:
6453 spa->spa_autoexpand = intval;
6454 if (tx->tx_txg != TXG_INITIAL)
6455 spa_async_request(spa,
6456 SPA_ASYNC_AUTOEXPAND);
6457 break;
6458 case ZPOOL_PROP_DEDUPDITTO:
6459 spa->spa_dedup_ditto = intval;
6460 break;
6461 default:
6462 break;
6463 }
6464 }
6465
6466 }
6467
6468 mutex_exit(&spa->spa_props_lock);
6469 }
6470
6471 /*
6472 * Perform one-time upgrade on-disk changes. spa_version() does not
6473 * reflect the new version this txg, so there must be no changes this
6474 * txg to anything that the upgrade code depends on after it executes.
6475 * Therefore this must be called after dsl_pool_sync() does the sync
6476 * tasks.
6477 */
6478 static void
spa_sync_upgrades(spa_t * spa,dmu_tx_t * tx)6479 spa_sync_upgrades(spa_t *spa, dmu_tx_t *tx)
6480 {
6481 dsl_pool_t *dp = spa->spa_dsl_pool;
6482
6483 ASSERT(spa->spa_sync_pass == 1);
6484
6485 rrw_enter(&dp->dp_config_rwlock, RW_WRITER, FTAG);
6486
6487 if (spa->spa_ubsync.ub_version < SPA_VERSION_ORIGIN &&
6488 spa->spa_uberblock.ub_version >= SPA_VERSION_ORIGIN) {
6489 dsl_pool_create_origin(dp, tx);
6490
6491 /* Keeping the origin open increases spa_minref */
6492 spa->spa_minref += 3;
6493 }
6494
6495 if (spa->spa_ubsync.ub_version < SPA_VERSION_NEXT_CLONES &&
6496 spa->spa_uberblock.ub_version >= SPA_VERSION_NEXT_CLONES) {
6497 dsl_pool_upgrade_clones(dp, tx);
6498 }
6499
6500 if (spa->spa_ubsync.ub_version < SPA_VERSION_DIR_CLONES &&
6501 spa->spa_uberblock.ub_version >= SPA_VERSION_DIR_CLONES) {
6502 dsl_pool_upgrade_dir_clones(dp, tx);
6503
6504 /* Keeping the freedir open increases spa_minref */
6505 spa->spa_minref += 3;
6506 }
6507
6508 if (spa->spa_ubsync.ub_version < SPA_VERSION_FEATURES &&
6509 spa->spa_uberblock.ub_version >= SPA_VERSION_FEATURES) {
6510 spa_feature_create_zap_objects(spa, tx);
6511 }
6512
6513 /*
6514 * LZ4_COMPRESS feature's behaviour was changed to activate_on_enable
6515 * when possibility to use lz4 compression for metadata was added
6516 * Old pools that have this feature enabled must be upgraded to have
6517 * this feature active
6518 */
6519 if (spa->spa_uberblock.ub_version >= SPA_VERSION_FEATURES) {
6520 boolean_t lz4_en = spa_feature_is_enabled(spa,
6521 SPA_FEATURE_LZ4_COMPRESS);
6522 boolean_t lz4_ac = spa_feature_is_active(spa,
6523 SPA_FEATURE_LZ4_COMPRESS);
6524
6525 if (lz4_en && !lz4_ac)
6526 spa_feature_incr(spa, SPA_FEATURE_LZ4_COMPRESS, tx);
6527 }
6528 rrw_exit(&dp->dp_config_rwlock, FTAG);
6529 }
6530
6531 /*
6532 * Sync the specified transaction group. New blocks may be dirtied as
6533 * part of the process, so we iterate until it converges.
6534 */
6535 void
spa_sync(spa_t * spa,uint64_t txg)6536 spa_sync(spa_t *spa, uint64_t txg)
6537 {
6538 dsl_pool_t *dp = spa->spa_dsl_pool;
6539 objset_t *mos = spa->spa_meta_objset;
6540 bplist_t *free_bpl = &spa->spa_free_bplist[txg & TXG_MASK];
6541 vdev_t *rvd = spa->spa_root_vdev;
6542 vdev_t *vd;
6543 dmu_tx_t *tx;
6544 int error;
6545
6546 VERIFY(spa_writeable(spa));
6547
6548 /*
6549 * Lock out configuration changes.
6550 */
6551 spa_config_enter(spa, SCL_CONFIG, FTAG, RW_READER);
6552
6553 spa->spa_syncing_txg = txg;
6554 spa->spa_sync_pass = 0;
6555
6556 /*
6557 * If there are any pending vdev state changes, convert them
6558 * into config changes that go out with this transaction group.
6559 */
6560 spa_config_enter(spa, SCL_STATE, FTAG, RW_READER);
6561 while (list_head(&spa->spa_state_dirty_list) != NULL) {
6562 /*
6563 * We need the write lock here because, for aux vdevs,
6564 * calling vdev_config_dirty() modifies sav_config.
6565 * This is ugly and will become unnecessary when we
6566 * eliminate the aux vdev wart by integrating all vdevs
6567 * into the root vdev tree.
6568 */
6569 spa_config_exit(spa, SCL_CONFIG | SCL_STATE, FTAG);
6570 spa_config_enter(spa, SCL_CONFIG | SCL_STATE, FTAG, RW_WRITER);
6571 while ((vd = list_head(&spa->spa_state_dirty_list)) != NULL) {
6572 vdev_state_clean(vd);
6573 vdev_config_dirty(vd);
6574 }
6575 spa_config_exit(spa, SCL_CONFIG | SCL_STATE, FTAG);
6576 spa_config_enter(spa, SCL_CONFIG | SCL_STATE, FTAG, RW_READER);
6577 }
6578 spa_config_exit(spa, SCL_STATE, FTAG);
6579
6580 tx = dmu_tx_create_assigned(dp, txg);
6581
6582 spa->spa_sync_starttime = gethrtime();
6583 #ifdef illumos
6584 VERIFY(cyclic_reprogram(spa->spa_deadman_cycid,
6585 spa->spa_sync_starttime + spa->spa_deadman_synctime));
6586 #else /* FreeBSD */
6587 #ifdef _KERNEL
6588 callout_reset(&spa->spa_deadman_cycid,
6589 hz * spa->spa_deadman_synctime / NANOSEC, spa_deadman, spa);
6590 #endif
6591 #endif
6592
6593 /*
6594 * If we are upgrading to SPA_VERSION_RAIDZ_DEFLATE this txg,
6595 * set spa_deflate if we have no raid-z vdevs.
6596 */
6597 if (spa->spa_ubsync.ub_version < SPA_VERSION_RAIDZ_DEFLATE &&
6598 spa->spa_uberblock.ub_version >= SPA_VERSION_RAIDZ_DEFLATE) {
6599 int i;
6600
6601 for (i = 0; i < rvd->vdev_children; i++) {
6602 vd = rvd->vdev_child[i];
6603 if (vd->vdev_deflate_ratio != SPA_MINBLOCKSIZE)
6604 break;
6605 }
6606 if (i == rvd->vdev_children) {
6607 spa->spa_deflate = TRUE;
6608 VERIFY(0 == zap_add(spa->spa_meta_objset,
6609 DMU_POOL_DIRECTORY_OBJECT, DMU_POOL_DEFLATE,
6610 sizeof (uint64_t), 1, &spa->spa_deflate, tx));
6611 }
6612 }
6613
6614 /*
6615 * Iterate to convergence.
6616 */
6617 do {
6618 int pass = ++spa->spa_sync_pass;
6619
6620 spa_sync_config_object(spa, tx);
6621 spa_sync_aux_dev(spa, &spa->spa_spares, tx,
6622 ZPOOL_CONFIG_SPARES, DMU_POOL_SPARES);
6623 spa_sync_aux_dev(spa, &spa->spa_l2cache, tx,
6624 ZPOOL_CONFIG_L2CACHE, DMU_POOL_L2CACHE);
6625 spa_errlog_sync(spa, txg);
6626 dsl_pool_sync(dp, txg);
6627
6628 if (pass < zfs_sync_pass_deferred_free) {
6629 spa_sync_frees(spa, free_bpl, tx);
6630 } else {
6631 /*
6632 * We can not defer frees in pass 1, because
6633 * we sync the deferred frees later in pass 1.
6634 */
6635 ASSERT3U(pass, >, 1);
6636 bplist_iterate(free_bpl, bpobj_enqueue_cb,
6637 &spa->spa_deferred_bpobj, tx);
6638 }
6639
6640 ddt_sync(spa, txg);
6641 dsl_scan_sync(dp, tx);
6642
6643 while (vd = txg_list_remove(&spa->spa_vdev_txg_list, txg))
6644 vdev_sync(vd, txg);
6645
6646 if (pass == 1) {
6647 spa_sync_upgrades(spa, tx);
6648 ASSERT3U(txg, >=,
6649 spa->spa_uberblock.ub_rootbp.blk_birth);
6650 /*
6651 * Note: We need to check if the MOS is dirty
6652 * because we could have marked the MOS dirty
6653 * without updating the uberblock (e.g. if we
6654 * have sync tasks but no dirty user data). We
6655 * need to check the uberblock's rootbp because
6656 * it is updated if we have synced out dirty
6657 * data (though in this case the MOS will most
6658 * likely also be dirty due to second order
6659 * effects, we don't want to rely on that here).
6660 */
6661 if (spa->spa_uberblock.ub_rootbp.blk_birth < txg &&
6662 !dmu_objset_is_dirty(mos, txg)) {
6663 /*
6664 * Nothing changed on the first pass,
6665 * therefore this TXG is a no-op. Avoid
6666 * syncing deferred frees, so that we
6667 * can keep this TXG as a no-op.
6668 */
6669 ASSERT(txg_list_empty(&dp->dp_dirty_datasets,
6670 txg));
6671 ASSERT(txg_list_empty(&dp->dp_dirty_dirs, txg));
6672 ASSERT(txg_list_empty(&dp->dp_sync_tasks, txg));
6673 break;
6674 }
6675 spa_sync_deferred_frees(spa, tx);
6676 }
6677
6678 } while (dmu_objset_is_dirty(mos, txg));
6679
6680 /*
6681 * Rewrite the vdev configuration (which includes the uberblock)
6682 * to commit the transaction group.
6683 *
6684 * If there are no dirty vdevs, we sync the uberblock to a few
6685 * random top-level vdevs that are known to be visible in the
6686 * config cache (see spa_vdev_add() for a complete description).
6687 * If there *are* dirty vdevs, sync the uberblock to all vdevs.
6688 */
6689 for (;;) {
6690 /*
6691 * We hold SCL_STATE to prevent vdev open/close/etc.
6692 * while we're attempting to write the vdev labels.
6693 */
6694 spa_config_enter(spa, SCL_STATE, FTAG, RW_READER);
6695
6696 if (list_is_empty(&spa->spa_config_dirty_list)) {
6697 vdev_t *svd[SPA_DVAS_PER_BP];
6698 int svdcount = 0;
6699 int children = rvd->vdev_children;
6700 int c0 = spa_get_random(children);
6701
6702 for (int c = 0; c < children; c++) {
6703 vd = rvd->vdev_child[(c0 + c) % children];
6704 if (vd->vdev_ms_array == 0 || vd->vdev_islog)
6705 continue;
6706 svd[svdcount++] = vd;
6707 if (svdcount == SPA_DVAS_PER_BP)
6708 break;
6709 }
6710 error = vdev_config_sync(svd, svdcount, txg, B_FALSE);
6711 if (error != 0)
6712 error = vdev_config_sync(svd, svdcount, txg,
6713 B_TRUE);
6714 } else {
6715 error = vdev_config_sync(rvd->vdev_child,
6716 rvd->vdev_children, txg, B_FALSE);
6717 if (error != 0)
6718 error = vdev_config_sync(rvd->vdev_child,
6719 rvd->vdev_children, txg, B_TRUE);
6720 }
6721
6722 if (error == 0)
6723 spa->spa_last_synced_guid = rvd->vdev_guid;
6724
6725 spa_config_exit(spa, SCL_STATE, FTAG);
6726
6727 if (error == 0)
6728 break;
6729 zio_suspend(spa, NULL);
6730 zio_resume_wait(spa);
6731 }
6732 dmu_tx_commit(tx);
6733
6734 #ifdef illumos
6735 VERIFY(cyclic_reprogram(spa->spa_deadman_cycid, CY_INFINITY));
6736 #else /* FreeBSD */
6737 #ifdef _KERNEL
6738 callout_drain(&spa->spa_deadman_cycid);
6739 #endif
6740 #endif
6741
6742 /*
6743 * Clear the dirty config list.
6744 */
6745 while ((vd = list_head(&spa->spa_config_dirty_list)) != NULL)
6746 vdev_config_clean(vd);
6747
6748 /*
6749 * Now that the new config has synced transactionally,
6750 * let it become visible to the config cache.
6751 */
6752 if (spa->spa_config_syncing != NULL) {
6753 spa_config_set(spa, spa->spa_config_syncing);
6754 spa->spa_config_txg = txg;
6755 spa->spa_config_syncing = NULL;
6756 }
6757
6758 spa->spa_ubsync = spa->spa_uberblock;
6759
6760 dsl_pool_sync_done(dp, txg);
6761
6762 /*
6763 * Update usable space statistics.
6764 */
6765 while (vd = txg_list_remove(&spa->spa_vdev_txg_list, TXG_CLEAN(txg)))
6766 vdev_sync_done(vd, txg);
6767
6768 spa_update_dspace(spa);
6769
6770 /*
6771 * It had better be the case that we didn't dirty anything
6772 * since vdev_config_sync().
6773 */
6774 ASSERT(txg_list_empty(&dp->dp_dirty_datasets, txg));
6775 ASSERT(txg_list_empty(&dp->dp_dirty_dirs, txg));
6776 ASSERT(txg_list_empty(&spa->spa_vdev_txg_list, txg));
6777
6778 spa->spa_sync_pass = 0;
6779
6780 spa_config_exit(spa, SCL_CONFIG, FTAG);
6781
6782 spa_handle_ignored_writes(spa);
6783
6784 /*
6785 * If any async tasks have been requested, kick them off.
6786 */
6787 spa_async_dispatch(spa);
6788 spa_async_dispatch_vd(spa);
6789 }
6790
6791 /*
6792 * Sync all pools. We don't want to hold the namespace lock across these
6793 * operations, so we take a reference on the spa_t and drop the lock during the
6794 * sync.
6795 */
6796 void
spa_sync_allpools(void)6797 spa_sync_allpools(void)
6798 {
6799 spa_t *spa = NULL;
6800 mutex_enter(&spa_namespace_lock);
6801 while ((spa = spa_next(spa)) != NULL) {
6802 if (spa_state(spa) != POOL_STATE_ACTIVE ||
6803 !spa_writeable(spa) || spa_suspended(spa))
6804 continue;
6805 spa_open_ref(spa, FTAG);
6806 mutex_exit(&spa_namespace_lock);
6807 txg_wait_synced(spa_get_dsl(spa), 0);
6808 mutex_enter(&spa_namespace_lock);
6809 spa_close(spa, FTAG);
6810 }
6811 mutex_exit(&spa_namespace_lock);
6812 }
6813
6814 /*
6815 * ==========================================================================
6816 * Miscellaneous routines
6817 * ==========================================================================
6818 */
6819
6820 /*
6821 * Remove all pools in the system.
6822 */
6823 void
spa_evict_all(void)6824 spa_evict_all(void)
6825 {
6826 spa_t *spa;
6827
6828 /*
6829 * Remove all cached state. All pools should be closed now,
6830 * so every spa in the AVL tree should be unreferenced.
6831 */
6832 mutex_enter(&spa_namespace_lock);
6833 while ((spa = spa_next(NULL)) != NULL) {
6834 /*
6835 * Stop async tasks. The async thread may need to detach
6836 * a device that's been replaced, which requires grabbing
6837 * spa_namespace_lock, so we must drop it here.
6838 */
6839 spa_open_ref(spa, FTAG);
6840 mutex_exit(&spa_namespace_lock);
6841 spa_async_suspend(spa);
6842 mutex_enter(&spa_namespace_lock);
6843 spa_close(spa, FTAG);
6844
6845 if (spa->spa_state != POOL_STATE_UNINITIALIZED) {
6846 spa_unload(spa);
6847 spa_deactivate(spa);
6848 }
6849 spa_remove(spa);
6850 }
6851 mutex_exit(&spa_namespace_lock);
6852 }
6853
6854 vdev_t *
spa_lookup_by_guid(spa_t * spa,uint64_t guid,boolean_t aux)6855 spa_lookup_by_guid(spa_t *spa, uint64_t guid, boolean_t aux)
6856 {
6857 vdev_t *vd;
6858 int i;
6859
6860 if ((vd = vdev_lookup_by_guid(spa->spa_root_vdev, guid)) != NULL)
6861 return (vd);
6862
6863 if (aux) {
6864 for (i = 0; i < spa->spa_l2cache.sav_count; i++) {
6865 vd = spa->spa_l2cache.sav_vdevs[i];
6866 if (vd->vdev_guid == guid)
6867 return (vd);
6868 }
6869
6870 for (i = 0; i < spa->spa_spares.sav_count; i++) {
6871 vd = spa->spa_spares.sav_vdevs[i];
6872 if (vd->vdev_guid == guid)
6873 return (vd);
6874 }
6875 }
6876
6877 return (NULL);
6878 }
6879
6880 void
spa_upgrade(spa_t * spa,uint64_t version)6881 spa_upgrade(spa_t *spa, uint64_t version)
6882 {
6883 ASSERT(spa_writeable(spa));
6884
6885 spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
6886
6887 /*
6888 * This should only be called for a non-faulted pool, and since a
6889 * future version would result in an unopenable pool, this shouldn't be
6890 * possible.
6891 */
6892 ASSERT(SPA_VERSION_IS_SUPPORTED(spa->spa_uberblock.ub_version));
6893 ASSERT3U(version, >=, spa->spa_uberblock.ub_version);
6894
6895 spa->spa_uberblock.ub_version = version;
6896 vdev_config_dirty(spa->spa_root_vdev);
6897
6898 spa_config_exit(spa, SCL_ALL, FTAG);
6899
6900 txg_wait_synced(spa_get_dsl(spa), 0);
6901 }
6902
6903 boolean_t
spa_has_spare(spa_t * spa,uint64_t guid)6904 spa_has_spare(spa_t *spa, uint64_t guid)
6905 {
6906 int i;
6907 uint64_t spareguid;
6908 spa_aux_vdev_t *sav = &spa->spa_spares;
6909
6910 for (i = 0; i < sav->sav_count; i++)
6911 if (sav->sav_vdevs[i]->vdev_guid == guid)
6912 return (B_TRUE);
6913
6914 for (i = 0; i < sav->sav_npending; i++) {
6915 if (nvlist_lookup_uint64(sav->sav_pending[i], ZPOOL_CONFIG_GUID,
6916 &spareguid) == 0 && spareguid == guid)
6917 return (B_TRUE);
6918 }
6919
6920 return (B_FALSE);
6921 }
6922
6923 /*
6924 * Check if a pool has an active shared spare device.
6925 * Note: reference count of an active spare is 2, as a spare and as a replace
6926 */
6927 static boolean_t
spa_has_active_shared_spare(spa_t * spa)6928 spa_has_active_shared_spare(spa_t *spa)
6929 {
6930 int i, refcnt;
6931 uint64_t pool;
6932 spa_aux_vdev_t *sav = &spa->spa_spares;
6933
6934 for (i = 0; i < sav->sav_count; i++) {
6935 if (spa_spare_exists(sav->sav_vdevs[i]->vdev_guid, &pool,
6936 &refcnt) && pool != 0ULL && pool == spa_guid(spa) &&
6937 refcnt > 2)
6938 return (B_TRUE);
6939 }
6940
6941 return (B_FALSE);
6942 }
6943
6944 /*
6945 * Post a sysevent corresponding to the given event. The 'name' must be one of
6946 * the event definitions in sys/sysevent/eventdefs.h. The payload will be
6947 * filled in from the spa and (optionally) the vdev. This doesn't do anything
6948 * in the userland libzpool, as we don't want consumers to misinterpret ztest
6949 * or zdb as real changes.
6950 */
6951 void
spa_event_notify(spa_t * spa,vdev_t * vd,const char * name)6952 spa_event_notify(spa_t *spa, vdev_t *vd, const char *name)
6953 {
6954 #ifdef _KERNEL
6955 sysevent_t *ev;
6956 sysevent_attr_list_t *attr = NULL;
6957 sysevent_value_t value;
6958 sysevent_id_t eid;
6959
6960 ev = sysevent_alloc(EC_ZFS, (char *)name, SUNW_KERN_PUB "zfs",
6961 SE_SLEEP);
6962
6963 value.value_type = SE_DATA_TYPE_STRING;
6964 value.value.sv_string = spa_name(spa);
6965 if (sysevent_add_attr(&attr, ZFS_EV_POOL_NAME, &value, SE_SLEEP) != 0)
6966 goto done;
6967
6968 value.value_type = SE_DATA_TYPE_UINT64;
6969 value.value.sv_uint64 = spa_guid(spa);
6970 if (sysevent_add_attr(&attr, ZFS_EV_POOL_GUID, &value, SE_SLEEP) != 0)
6971 goto done;
6972
6973 if (vd) {
6974 value.value_type = SE_DATA_TYPE_UINT64;
6975 value.value.sv_uint64 = vd->vdev_guid;
6976 if (sysevent_add_attr(&attr, ZFS_EV_VDEV_GUID, &value,
6977 SE_SLEEP) != 0)
6978 goto done;
6979
6980 if (vd->vdev_path) {
6981 value.value_type = SE_DATA_TYPE_STRING;
6982 value.value.sv_string = vd->vdev_path;
6983 if (sysevent_add_attr(&attr, ZFS_EV_VDEV_PATH,
6984 &value, SE_SLEEP) != 0)
6985 goto done;
6986 }
6987 }
6988
6989 if (sysevent_attach_attributes(ev, attr) != 0)
6990 goto done;
6991 attr = NULL;
6992
6993 (void) log_sysevent(ev, SE_SLEEP, &eid);
6994
6995 done:
6996 if (attr)
6997 sysevent_free_attr(attr);
6998 sysevent_free(ev);
6999 #endif
7000 }
7001
7002