xref: /freebsd/sys/contrib/openzfs/module/zfs/vdev_label.c (revision 681ce946f33e75c590e97c53076e86dff1fe8f4a)
1eda14cbcSMatt Macy /*
2eda14cbcSMatt Macy  * CDDL HEADER START
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6eda14cbcSMatt Macy  * You may not use this file except in compliance with the License.
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8eda14cbcSMatt Macy  * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9eda14cbcSMatt Macy  * or http://www.opensolaris.org/os/licensing.
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12eda14cbcSMatt Macy  *
13eda14cbcSMatt Macy  * When distributing Covered Code, include this CDDL HEADER in each
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18eda14cbcSMatt Macy  *
19eda14cbcSMatt Macy  * CDDL HEADER END
20eda14cbcSMatt Macy  */
21eda14cbcSMatt Macy 
22eda14cbcSMatt Macy /*
23eda14cbcSMatt Macy  * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved.
24eda14cbcSMatt Macy  * Copyright (c) 2012, 2020 by Delphix. All rights reserved.
25eda14cbcSMatt Macy  * Copyright (c) 2017, Intel Corporation.
26eda14cbcSMatt Macy  */
27eda14cbcSMatt Macy 
28eda14cbcSMatt Macy /*
29eda14cbcSMatt Macy  * Virtual Device Labels
30eda14cbcSMatt Macy  * ---------------------
31eda14cbcSMatt Macy  *
32eda14cbcSMatt Macy  * The vdev label serves several distinct purposes:
33eda14cbcSMatt Macy  *
34eda14cbcSMatt Macy  *	1. Uniquely identify this device as part of a ZFS pool and confirm its
35eda14cbcSMatt Macy  *	   identity within the pool.
36eda14cbcSMatt Macy  *
37eda14cbcSMatt Macy  *	2. Verify that all the devices given in a configuration are present
38eda14cbcSMatt Macy  *         within the pool.
39eda14cbcSMatt Macy  *
40eda14cbcSMatt Macy  *	3. Determine the uberblock for the pool.
41eda14cbcSMatt Macy  *
42eda14cbcSMatt Macy  *	4. In case of an import operation, determine the configuration of the
43eda14cbcSMatt Macy  *         toplevel vdev of which it is a part.
44eda14cbcSMatt Macy  *
45eda14cbcSMatt Macy  *	5. If an import operation cannot find all the devices in the pool,
46eda14cbcSMatt Macy  *         provide enough information to the administrator to determine which
47eda14cbcSMatt Macy  *         devices are missing.
48eda14cbcSMatt Macy  *
49eda14cbcSMatt Macy  * It is important to note that while the kernel is responsible for writing the
50eda14cbcSMatt Macy  * label, it only consumes the information in the first three cases.  The
51eda14cbcSMatt Macy  * latter information is only consumed in userland when determining the
52eda14cbcSMatt Macy  * configuration to import a pool.
53eda14cbcSMatt Macy  *
54eda14cbcSMatt Macy  *
55eda14cbcSMatt Macy  * Label Organization
56eda14cbcSMatt Macy  * ------------------
57eda14cbcSMatt Macy  *
58eda14cbcSMatt Macy  * Before describing the contents of the label, it's important to understand how
59eda14cbcSMatt Macy  * the labels are written and updated with respect to the uberblock.
60eda14cbcSMatt Macy  *
61eda14cbcSMatt Macy  * When the pool configuration is altered, either because it was newly created
62eda14cbcSMatt Macy  * or a device was added, we want to update all the labels such that we can deal
63eda14cbcSMatt Macy  * with fatal failure at any point.  To this end, each disk has two labels which
64eda14cbcSMatt Macy  * are updated before and after the uberblock is synced.  Assuming we have
65eda14cbcSMatt Macy  * labels and an uberblock with the following transaction groups:
66eda14cbcSMatt Macy  *
67eda14cbcSMatt Macy  *              L1          UB          L2
68eda14cbcSMatt Macy  *           +------+    +------+    +------+
69eda14cbcSMatt Macy  *           |      |    |      |    |      |
70eda14cbcSMatt Macy  *           | t10  |    | t10  |    | t10  |
71eda14cbcSMatt Macy  *           |      |    |      |    |      |
72eda14cbcSMatt Macy  *           +------+    +------+    +------+
73eda14cbcSMatt Macy  *
74eda14cbcSMatt Macy  * In this stable state, the labels and the uberblock were all updated within
75eda14cbcSMatt Macy  * the same transaction group (10).  Each label is mirrored and checksummed, so
76eda14cbcSMatt Macy  * that we can detect when we fail partway through writing the label.
77eda14cbcSMatt Macy  *
78eda14cbcSMatt Macy  * In order to identify which labels are valid, the labels are written in the
79eda14cbcSMatt Macy  * following manner:
80eda14cbcSMatt Macy  *
81eda14cbcSMatt Macy  *	1. For each vdev, update 'L1' to the new label
82eda14cbcSMatt Macy  *	2. Update the uberblock
83eda14cbcSMatt Macy  *	3. For each vdev, update 'L2' to the new label
84eda14cbcSMatt Macy  *
85eda14cbcSMatt Macy  * Given arbitrary failure, we can determine the correct label to use based on
86eda14cbcSMatt Macy  * the transaction group.  If we fail after updating L1 but before updating the
87eda14cbcSMatt Macy  * UB, we will notice that L1's transaction group is greater than the uberblock,
88eda14cbcSMatt Macy  * so L2 must be valid.  If we fail after writing the uberblock but before
89eda14cbcSMatt Macy  * writing L2, we will notice that L2's transaction group is less than L1, and
90eda14cbcSMatt Macy  * therefore L1 is valid.
91eda14cbcSMatt Macy  *
92eda14cbcSMatt Macy  * Another added complexity is that not every label is updated when the config
93eda14cbcSMatt Macy  * is synced.  If we add a single device, we do not want to have to re-write
94eda14cbcSMatt Macy  * every label for every device in the pool.  This means that both L1 and L2 may
95eda14cbcSMatt Macy  * be older than the pool uberblock, because the necessary information is stored
96eda14cbcSMatt Macy  * on another vdev.
97eda14cbcSMatt Macy  *
98eda14cbcSMatt Macy  *
99eda14cbcSMatt Macy  * On-disk Format
100eda14cbcSMatt Macy  * --------------
101eda14cbcSMatt Macy  *
102eda14cbcSMatt Macy  * The vdev label consists of two distinct parts, and is wrapped within the
103eda14cbcSMatt Macy  * vdev_label_t structure.  The label includes 8k of padding to permit legacy
104eda14cbcSMatt Macy  * VTOC disk labels, but is otherwise ignored.
105eda14cbcSMatt Macy  *
106eda14cbcSMatt Macy  * The first half of the label is a packed nvlist which contains pool wide
107eda14cbcSMatt Macy  * properties, per-vdev properties, and configuration information.  It is
108eda14cbcSMatt Macy  * described in more detail below.
109eda14cbcSMatt Macy  *
110eda14cbcSMatt Macy  * The latter half of the label consists of a redundant array of uberblocks.
111eda14cbcSMatt Macy  * These uberblocks are updated whenever a transaction group is committed,
112eda14cbcSMatt Macy  * or when the configuration is updated.  When a pool is loaded, we scan each
113eda14cbcSMatt Macy  * vdev for the 'best' uberblock.
114eda14cbcSMatt Macy  *
115eda14cbcSMatt Macy  *
116eda14cbcSMatt Macy  * Configuration Information
117eda14cbcSMatt Macy  * -------------------------
118eda14cbcSMatt Macy  *
119eda14cbcSMatt Macy  * The nvlist describing the pool and vdev contains the following elements:
120eda14cbcSMatt Macy  *
121eda14cbcSMatt Macy  *	version		ZFS on-disk version
122eda14cbcSMatt Macy  *	name		Pool name
123eda14cbcSMatt Macy  *	state		Pool state
124eda14cbcSMatt Macy  *	txg		Transaction group in which this label was written
125eda14cbcSMatt Macy  *	pool_guid	Unique identifier for this pool
126eda14cbcSMatt Macy  *	vdev_tree	An nvlist describing vdev tree.
127eda14cbcSMatt Macy  *	features_for_read
128eda14cbcSMatt Macy  *			An nvlist of the features necessary for reading the MOS.
129eda14cbcSMatt Macy  *
130eda14cbcSMatt Macy  * Each leaf device label also contains the following:
131eda14cbcSMatt Macy  *
132eda14cbcSMatt Macy  *	top_guid	Unique ID for top-level vdev in which this is contained
133eda14cbcSMatt Macy  *	guid		Unique ID for the leaf vdev
134eda14cbcSMatt Macy  *
135eda14cbcSMatt Macy  * The 'vs' configuration follows the format described in 'spa_config.c'.
136eda14cbcSMatt Macy  */
137eda14cbcSMatt Macy 
138eda14cbcSMatt Macy #include <sys/zfs_context.h>
139eda14cbcSMatt Macy #include <sys/spa.h>
140eda14cbcSMatt Macy #include <sys/spa_impl.h>
141eda14cbcSMatt Macy #include <sys/dmu.h>
142eda14cbcSMatt Macy #include <sys/zap.h>
143eda14cbcSMatt Macy #include <sys/vdev.h>
144eda14cbcSMatt Macy #include <sys/vdev_impl.h>
1457877fdebSMatt Macy #include <sys/vdev_draid.h>
146eda14cbcSMatt Macy #include <sys/uberblock_impl.h>
147eda14cbcSMatt Macy #include <sys/metaslab.h>
148eda14cbcSMatt Macy #include <sys/metaslab_impl.h>
149eda14cbcSMatt Macy #include <sys/zio.h>
150eda14cbcSMatt Macy #include <sys/dsl_scan.h>
151eda14cbcSMatt Macy #include <sys/abd.h>
152eda14cbcSMatt Macy #include <sys/fs/zfs.h>
1532c48331dSMatt Macy #include <sys/byteorder.h>
1542c48331dSMatt Macy #include <sys/zfs_bootenv.h>
155eda14cbcSMatt Macy 
156eda14cbcSMatt Macy /*
157eda14cbcSMatt Macy  * Basic routines to read and write from a vdev label.
158eda14cbcSMatt Macy  * Used throughout the rest of this file.
159eda14cbcSMatt Macy  */
160eda14cbcSMatt Macy uint64_t
161eda14cbcSMatt Macy vdev_label_offset(uint64_t psize, int l, uint64_t offset)
162eda14cbcSMatt Macy {
163eda14cbcSMatt Macy 	ASSERT(offset < sizeof (vdev_label_t));
164eda14cbcSMatt Macy 	ASSERT(P2PHASE_TYPED(psize, sizeof (vdev_label_t), uint64_t) == 0);
165eda14cbcSMatt Macy 
166eda14cbcSMatt Macy 	return (offset + l * sizeof (vdev_label_t) + (l < VDEV_LABELS / 2 ?
167eda14cbcSMatt Macy 	    0 : psize - VDEV_LABELS * sizeof (vdev_label_t)));
168eda14cbcSMatt Macy }
169eda14cbcSMatt Macy 
170eda14cbcSMatt Macy /*
171eda14cbcSMatt Macy  * Returns back the vdev label associated with the passed in offset.
172eda14cbcSMatt Macy  */
173eda14cbcSMatt Macy int
174eda14cbcSMatt Macy vdev_label_number(uint64_t psize, uint64_t offset)
175eda14cbcSMatt Macy {
176eda14cbcSMatt Macy 	int l;
177eda14cbcSMatt Macy 
178eda14cbcSMatt Macy 	if (offset >= psize - VDEV_LABEL_END_SIZE) {
179eda14cbcSMatt Macy 		offset -= psize - VDEV_LABEL_END_SIZE;
180eda14cbcSMatt Macy 		offset += (VDEV_LABELS / 2) * sizeof (vdev_label_t);
181eda14cbcSMatt Macy 	}
182eda14cbcSMatt Macy 	l = offset / sizeof (vdev_label_t);
183eda14cbcSMatt Macy 	return (l < VDEV_LABELS ? l : -1);
184eda14cbcSMatt Macy }
185eda14cbcSMatt Macy 
186eda14cbcSMatt Macy static void
187eda14cbcSMatt Macy vdev_label_read(zio_t *zio, vdev_t *vd, int l, abd_t *buf, uint64_t offset,
188eda14cbcSMatt Macy     uint64_t size, zio_done_func_t *done, void *private, int flags)
189eda14cbcSMatt Macy {
190eda14cbcSMatt Macy 	ASSERT(
191eda14cbcSMatt Macy 	    spa_config_held(zio->io_spa, SCL_STATE, RW_READER) == SCL_STATE ||
192eda14cbcSMatt Macy 	    spa_config_held(zio->io_spa, SCL_STATE, RW_WRITER) == SCL_STATE);
193eda14cbcSMatt Macy 	ASSERT(flags & ZIO_FLAG_CONFIG_WRITER);
194eda14cbcSMatt Macy 
195eda14cbcSMatt Macy 	zio_nowait(zio_read_phys(zio, vd,
196eda14cbcSMatt Macy 	    vdev_label_offset(vd->vdev_psize, l, offset),
197eda14cbcSMatt Macy 	    size, buf, ZIO_CHECKSUM_LABEL, done, private,
198eda14cbcSMatt Macy 	    ZIO_PRIORITY_SYNC_READ, flags, B_TRUE));
199eda14cbcSMatt Macy }
200eda14cbcSMatt Macy 
201eda14cbcSMatt Macy void
202eda14cbcSMatt Macy vdev_label_write(zio_t *zio, vdev_t *vd, int l, abd_t *buf, uint64_t offset,
203eda14cbcSMatt Macy     uint64_t size, zio_done_func_t *done, void *private, int flags)
204eda14cbcSMatt Macy {
205eda14cbcSMatt Macy 	ASSERT(
206eda14cbcSMatt Macy 	    spa_config_held(zio->io_spa, SCL_STATE, RW_READER) == SCL_STATE ||
207eda14cbcSMatt Macy 	    spa_config_held(zio->io_spa, SCL_STATE, RW_WRITER) == SCL_STATE);
208eda14cbcSMatt Macy 	ASSERT(flags & ZIO_FLAG_CONFIG_WRITER);
209eda14cbcSMatt Macy 
210eda14cbcSMatt Macy 	zio_nowait(zio_write_phys(zio, vd,
211eda14cbcSMatt Macy 	    vdev_label_offset(vd->vdev_psize, l, offset),
212eda14cbcSMatt Macy 	    size, buf, ZIO_CHECKSUM_LABEL, done, private,
213eda14cbcSMatt Macy 	    ZIO_PRIORITY_SYNC_WRITE, flags, B_TRUE));
214eda14cbcSMatt Macy }
215eda14cbcSMatt Macy 
216eda14cbcSMatt Macy /*
217eda14cbcSMatt Macy  * Generate the nvlist representing this vdev's stats
218eda14cbcSMatt Macy  */
219eda14cbcSMatt Macy void
220eda14cbcSMatt Macy vdev_config_generate_stats(vdev_t *vd, nvlist_t *nv)
221eda14cbcSMatt Macy {
222eda14cbcSMatt Macy 	nvlist_t *nvx;
223eda14cbcSMatt Macy 	vdev_stat_t *vs;
224eda14cbcSMatt Macy 	vdev_stat_ex_t *vsx;
225eda14cbcSMatt Macy 
226eda14cbcSMatt Macy 	vs = kmem_alloc(sizeof (*vs), KM_SLEEP);
227eda14cbcSMatt Macy 	vsx = kmem_alloc(sizeof (*vsx), KM_SLEEP);
228eda14cbcSMatt Macy 
229eda14cbcSMatt Macy 	vdev_get_stats_ex(vd, vs, vsx);
230eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nv, ZPOOL_CONFIG_VDEV_STATS,
231eda14cbcSMatt Macy 	    (uint64_t *)vs, sizeof (*vs) / sizeof (uint64_t));
232eda14cbcSMatt Macy 
233eda14cbcSMatt Macy 	/*
234eda14cbcSMatt Macy 	 * Add extended stats into a special extended stats nvlist.  This keeps
235eda14cbcSMatt Macy 	 * all the extended stats nicely grouped together.  The extended stats
236eda14cbcSMatt Macy 	 * nvlist is then added to the main nvlist.
237eda14cbcSMatt Macy 	 */
238eda14cbcSMatt Macy 	nvx = fnvlist_alloc();
239eda14cbcSMatt Macy 
240eda14cbcSMatt Macy 	/* ZIOs in flight to disk */
241eda14cbcSMatt Macy 	fnvlist_add_uint64(nvx, ZPOOL_CONFIG_VDEV_SYNC_R_ACTIVE_QUEUE,
242eda14cbcSMatt Macy 	    vsx->vsx_active_queue[ZIO_PRIORITY_SYNC_READ]);
243eda14cbcSMatt Macy 
244eda14cbcSMatt Macy 	fnvlist_add_uint64(nvx, ZPOOL_CONFIG_VDEV_SYNC_W_ACTIVE_QUEUE,
245eda14cbcSMatt Macy 	    vsx->vsx_active_queue[ZIO_PRIORITY_SYNC_WRITE]);
246eda14cbcSMatt Macy 
247eda14cbcSMatt Macy 	fnvlist_add_uint64(nvx, ZPOOL_CONFIG_VDEV_ASYNC_R_ACTIVE_QUEUE,
248eda14cbcSMatt Macy 	    vsx->vsx_active_queue[ZIO_PRIORITY_ASYNC_READ]);
249eda14cbcSMatt Macy 
250eda14cbcSMatt Macy 	fnvlist_add_uint64(nvx, ZPOOL_CONFIG_VDEV_ASYNC_W_ACTIVE_QUEUE,
251eda14cbcSMatt Macy 	    vsx->vsx_active_queue[ZIO_PRIORITY_ASYNC_WRITE]);
252eda14cbcSMatt Macy 
253eda14cbcSMatt Macy 	fnvlist_add_uint64(nvx, ZPOOL_CONFIG_VDEV_SCRUB_ACTIVE_QUEUE,
254eda14cbcSMatt Macy 	    vsx->vsx_active_queue[ZIO_PRIORITY_SCRUB]);
255eda14cbcSMatt Macy 
256eda14cbcSMatt Macy 	fnvlist_add_uint64(nvx, ZPOOL_CONFIG_VDEV_TRIM_ACTIVE_QUEUE,
257eda14cbcSMatt Macy 	    vsx->vsx_active_queue[ZIO_PRIORITY_TRIM]);
258eda14cbcSMatt Macy 
25921b492edSMartin Matuska 	fnvlist_add_uint64(nvx, ZPOOL_CONFIG_VDEV_REBUILD_ACTIVE_QUEUE,
26021b492edSMartin Matuska 	    vsx->vsx_active_queue[ZIO_PRIORITY_REBUILD]);
26121b492edSMartin Matuska 
262eda14cbcSMatt Macy 	/* ZIOs pending */
263eda14cbcSMatt Macy 	fnvlist_add_uint64(nvx, ZPOOL_CONFIG_VDEV_SYNC_R_PEND_QUEUE,
264eda14cbcSMatt Macy 	    vsx->vsx_pend_queue[ZIO_PRIORITY_SYNC_READ]);
265eda14cbcSMatt Macy 
266eda14cbcSMatt Macy 	fnvlist_add_uint64(nvx, ZPOOL_CONFIG_VDEV_SYNC_W_PEND_QUEUE,
267eda14cbcSMatt Macy 	    vsx->vsx_pend_queue[ZIO_PRIORITY_SYNC_WRITE]);
268eda14cbcSMatt Macy 
269eda14cbcSMatt Macy 	fnvlist_add_uint64(nvx, ZPOOL_CONFIG_VDEV_ASYNC_R_PEND_QUEUE,
270eda14cbcSMatt Macy 	    vsx->vsx_pend_queue[ZIO_PRIORITY_ASYNC_READ]);
271eda14cbcSMatt Macy 
272eda14cbcSMatt Macy 	fnvlist_add_uint64(nvx, ZPOOL_CONFIG_VDEV_ASYNC_W_PEND_QUEUE,
273eda14cbcSMatt Macy 	    vsx->vsx_pend_queue[ZIO_PRIORITY_ASYNC_WRITE]);
274eda14cbcSMatt Macy 
275eda14cbcSMatt Macy 	fnvlist_add_uint64(nvx, ZPOOL_CONFIG_VDEV_SCRUB_PEND_QUEUE,
276eda14cbcSMatt Macy 	    vsx->vsx_pend_queue[ZIO_PRIORITY_SCRUB]);
277eda14cbcSMatt Macy 
278eda14cbcSMatt Macy 	fnvlist_add_uint64(nvx, ZPOOL_CONFIG_VDEV_TRIM_PEND_QUEUE,
279eda14cbcSMatt Macy 	    vsx->vsx_pend_queue[ZIO_PRIORITY_TRIM]);
280eda14cbcSMatt Macy 
28121b492edSMartin Matuska 	fnvlist_add_uint64(nvx, ZPOOL_CONFIG_VDEV_REBUILD_PEND_QUEUE,
28221b492edSMartin Matuska 	    vsx->vsx_pend_queue[ZIO_PRIORITY_REBUILD]);
28321b492edSMartin Matuska 
284eda14cbcSMatt Macy 	/* Histograms */
285eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_TOT_R_LAT_HISTO,
286eda14cbcSMatt Macy 	    vsx->vsx_total_histo[ZIO_TYPE_READ],
287eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_total_histo[ZIO_TYPE_READ]));
288eda14cbcSMatt Macy 
289eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_TOT_W_LAT_HISTO,
290eda14cbcSMatt Macy 	    vsx->vsx_total_histo[ZIO_TYPE_WRITE],
291eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_total_histo[ZIO_TYPE_WRITE]));
292eda14cbcSMatt Macy 
293eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_DISK_R_LAT_HISTO,
294eda14cbcSMatt Macy 	    vsx->vsx_disk_histo[ZIO_TYPE_READ],
295eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_disk_histo[ZIO_TYPE_READ]));
296eda14cbcSMatt Macy 
297eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_DISK_W_LAT_HISTO,
298eda14cbcSMatt Macy 	    vsx->vsx_disk_histo[ZIO_TYPE_WRITE],
299eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_disk_histo[ZIO_TYPE_WRITE]));
300eda14cbcSMatt Macy 
301eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_SYNC_R_LAT_HISTO,
302eda14cbcSMatt Macy 	    vsx->vsx_queue_histo[ZIO_PRIORITY_SYNC_READ],
303eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_queue_histo[ZIO_PRIORITY_SYNC_READ]));
304eda14cbcSMatt Macy 
305eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_SYNC_W_LAT_HISTO,
306eda14cbcSMatt Macy 	    vsx->vsx_queue_histo[ZIO_PRIORITY_SYNC_WRITE],
307eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_queue_histo[ZIO_PRIORITY_SYNC_WRITE]));
308eda14cbcSMatt Macy 
309eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_ASYNC_R_LAT_HISTO,
310eda14cbcSMatt Macy 	    vsx->vsx_queue_histo[ZIO_PRIORITY_ASYNC_READ],
311eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_queue_histo[ZIO_PRIORITY_ASYNC_READ]));
312eda14cbcSMatt Macy 
313eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_ASYNC_W_LAT_HISTO,
314eda14cbcSMatt Macy 	    vsx->vsx_queue_histo[ZIO_PRIORITY_ASYNC_WRITE],
315eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_queue_histo[ZIO_PRIORITY_ASYNC_WRITE]));
316eda14cbcSMatt Macy 
317eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_SCRUB_LAT_HISTO,
318eda14cbcSMatt Macy 	    vsx->vsx_queue_histo[ZIO_PRIORITY_SCRUB],
319eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_queue_histo[ZIO_PRIORITY_SCRUB]));
320eda14cbcSMatt Macy 
321eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_TRIM_LAT_HISTO,
322eda14cbcSMatt Macy 	    vsx->vsx_queue_histo[ZIO_PRIORITY_TRIM],
323eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_queue_histo[ZIO_PRIORITY_TRIM]));
324eda14cbcSMatt Macy 
32521b492edSMartin Matuska 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_REBUILD_LAT_HISTO,
32621b492edSMartin Matuska 	    vsx->vsx_queue_histo[ZIO_PRIORITY_REBUILD],
32721b492edSMartin Matuska 	    ARRAY_SIZE(vsx->vsx_queue_histo[ZIO_PRIORITY_REBUILD]));
32821b492edSMartin Matuska 
329eda14cbcSMatt Macy 	/* Request sizes */
330eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_SYNC_IND_R_HISTO,
331eda14cbcSMatt Macy 	    vsx->vsx_ind_histo[ZIO_PRIORITY_SYNC_READ],
332eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_ind_histo[ZIO_PRIORITY_SYNC_READ]));
333eda14cbcSMatt Macy 
334eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_SYNC_IND_W_HISTO,
335eda14cbcSMatt Macy 	    vsx->vsx_ind_histo[ZIO_PRIORITY_SYNC_WRITE],
336eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_ind_histo[ZIO_PRIORITY_SYNC_WRITE]));
337eda14cbcSMatt Macy 
338eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_ASYNC_IND_R_HISTO,
339eda14cbcSMatt Macy 	    vsx->vsx_ind_histo[ZIO_PRIORITY_ASYNC_READ],
340eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_ind_histo[ZIO_PRIORITY_ASYNC_READ]));
341eda14cbcSMatt Macy 
342eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_ASYNC_IND_W_HISTO,
343eda14cbcSMatt Macy 	    vsx->vsx_ind_histo[ZIO_PRIORITY_ASYNC_WRITE],
344eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_ind_histo[ZIO_PRIORITY_ASYNC_WRITE]));
345eda14cbcSMatt Macy 
346eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_IND_SCRUB_HISTO,
347eda14cbcSMatt Macy 	    vsx->vsx_ind_histo[ZIO_PRIORITY_SCRUB],
348eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_ind_histo[ZIO_PRIORITY_SCRUB]));
349eda14cbcSMatt Macy 
350eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_IND_TRIM_HISTO,
351eda14cbcSMatt Macy 	    vsx->vsx_ind_histo[ZIO_PRIORITY_TRIM],
352eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_ind_histo[ZIO_PRIORITY_TRIM]));
353eda14cbcSMatt Macy 
35421b492edSMartin Matuska 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_IND_REBUILD_HISTO,
35521b492edSMartin Matuska 	    vsx->vsx_ind_histo[ZIO_PRIORITY_REBUILD],
35621b492edSMartin Matuska 	    ARRAY_SIZE(vsx->vsx_ind_histo[ZIO_PRIORITY_REBUILD]));
35721b492edSMartin Matuska 
358eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_SYNC_AGG_R_HISTO,
359eda14cbcSMatt Macy 	    vsx->vsx_agg_histo[ZIO_PRIORITY_SYNC_READ],
360eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_agg_histo[ZIO_PRIORITY_SYNC_READ]));
361eda14cbcSMatt Macy 
362eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_SYNC_AGG_W_HISTO,
363eda14cbcSMatt Macy 	    vsx->vsx_agg_histo[ZIO_PRIORITY_SYNC_WRITE],
364eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_agg_histo[ZIO_PRIORITY_SYNC_WRITE]));
365eda14cbcSMatt Macy 
366eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_ASYNC_AGG_R_HISTO,
367eda14cbcSMatt Macy 	    vsx->vsx_agg_histo[ZIO_PRIORITY_ASYNC_READ],
368eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_agg_histo[ZIO_PRIORITY_ASYNC_READ]));
369eda14cbcSMatt Macy 
370eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_ASYNC_AGG_W_HISTO,
371eda14cbcSMatt Macy 	    vsx->vsx_agg_histo[ZIO_PRIORITY_ASYNC_WRITE],
372eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_agg_histo[ZIO_PRIORITY_ASYNC_WRITE]));
373eda14cbcSMatt Macy 
374eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_AGG_SCRUB_HISTO,
375eda14cbcSMatt Macy 	    vsx->vsx_agg_histo[ZIO_PRIORITY_SCRUB],
376eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_agg_histo[ZIO_PRIORITY_SCRUB]));
377eda14cbcSMatt Macy 
378eda14cbcSMatt Macy 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_AGG_TRIM_HISTO,
379eda14cbcSMatt Macy 	    vsx->vsx_agg_histo[ZIO_PRIORITY_TRIM],
380eda14cbcSMatt Macy 	    ARRAY_SIZE(vsx->vsx_agg_histo[ZIO_PRIORITY_TRIM]));
381eda14cbcSMatt Macy 
38221b492edSMartin Matuska 	fnvlist_add_uint64_array(nvx, ZPOOL_CONFIG_VDEV_AGG_REBUILD_HISTO,
38321b492edSMartin Matuska 	    vsx->vsx_agg_histo[ZIO_PRIORITY_REBUILD],
38421b492edSMartin Matuska 	    ARRAY_SIZE(vsx->vsx_agg_histo[ZIO_PRIORITY_REBUILD]));
38521b492edSMartin Matuska 
386eda14cbcSMatt Macy 	/* IO delays */
387eda14cbcSMatt Macy 	fnvlist_add_uint64(nvx, ZPOOL_CONFIG_VDEV_SLOW_IOS, vs->vs_slow_ios);
388eda14cbcSMatt Macy 
389eda14cbcSMatt Macy 	/* Add extended stats nvlist to main nvlist */
390eda14cbcSMatt Macy 	fnvlist_add_nvlist(nv, ZPOOL_CONFIG_VDEV_STATS_EX, nvx);
391eda14cbcSMatt Macy 
392eda14cbcSMatt Macy 	fnvlist_free(nvx);
393eda14cbcSMatt Macy 	kmem_free(vs, sizeof (*vs));
394eda14cbcSMatt Macy 	kmem_free(vsx, sizeof (*vsx));
395eda14cbcSMatt Macy }
396eda14cbcSMatt Macy 
397eda14cbcSMatt Macy static void
398eda14cbcSMatt Macy root_vdev_actions_getprogress(vdev_t *vd, nvlist_t *nvl)
399eda14cbcSMatt Macy {
400eda14cbcSMatt Macy 	spa_t *spa = vd->vdev_spa;
401eda14cbcSMatt Macy 
402eda14cbcSMatt Macy 	if (vd != spa->spa_root_vdev)
403eda14cbcSMatt Macy 		return;
404eda14cbcSMatt Macy 
405eda14cbcSMatt Macy 	/* provide either current or previous scan information */
406eda14cbcSMatt Macy 	pool_scan_stat_t ps;
407eda14cbcSMatt Macy 	if (spa_scan_get_stats(spa, &ps) == 0) {
408eda14cbcSMatt Macy 		fnvlist_add_uint64_array(nvl,
409eda14cbcSMatt Macy 		    ZPOOL_CONFIG_SCAN_STATS, (uint64_t *)&ps,
410eda14cbcSMatt Macy 		    sizeof (pool_scan_stat_t) / sizeof (uint64_t));
411eda14cbcSMatt Macy 	}
412eda14cbcSMatt Macy 
413eda14cbcSMatt Macy 	pool_removal_stat_t prs;
414eda14cbcSMatt Macy 	if (spa_removal_get_stats(spa, &prs) == 0) {
415eda14cbcSMatt Macy 		fnvlist_add_uint64_array(nvl,
416eda14cbcSMatt Macy 		    ZPOOL_CONFIG_REMOVAL_STATS, (uint64_t *)&prs,
417eda14cbcSMatt Macy 		    sizeof (prs) / sizeof (uint64_t));
418eda14cbcSMatt Macy 	}
419eda14cbcSMatt Macy 
420eda14cbcSMatt Macy 	pool_checkpoint_stat_t pcs;
421eda14cbcSMatt Macy 	if (spa_checkpoint_get_stats(spa, &pcs) == 0) {
422eda14cbcSMatt Macy 		fnvlist_add_uint64_array(nvl,
423eda14cbcSMatt Macy 		    ZPOOL_CONFIG_CHECKPOINT_STATS, (uint64_t *)&pcs,
424eda14cbcSMatt Macy 		    sizeof (pcs) / sizeof (uint64_t));
425eda14cbcSMatt Macy 	}
426eda14cbcSMatt Macy }
427eda14cbcSMatt Macy 
428eda14cbcSMatt Macy static void
429eda14cbcSMatt Macy top_vdev_actions_getprogress(vdev_t *vd, nvlist_t *nvl)
430eda14cbcSMatt Macy {
431eda14cbcSMatt Macy 	if (vd == vd->vdev_top) {
432eda14cbcSMatt Macy 		vdev_rebuild_stat_t vrs;
433eda14cbcSMatt Macy 		if (vdev_rebuild_get_stats(vd, &vrs) == 0) {
434eda14cbcSMatt Macy 			fnvlist_add_uint64_array(nvl,
435eda14cbcSMatt Macy 			    ZPOOL_CONFIG_REBUILD_STATS, (uint64_t *)&vrs,
436eda14cbcSMatt Macy 			    sizeof (vrs) / sizeof (uint64_t));
437eda14cbcSMatt Macy 		}
438eda14cbcSMatt Macy 	}
439eda14cbcSMatt Macy }
440eda14cbcSMatt Macy 
441eda14cbcSMatt Macy /*
442eda14cbcSMatt Macy  * Generate the nvlist representing this vdev's config.
443eda14cbcSMatt Macy  */
444eda14cbcSMatt Macy nvlist_t *
445eda14cbcSMatt Macy vdev_config_generate(spa_t *spa, vdev_t *vd, boolean_t getstats,
446eda14cbcSMatt Macy     vdev_config_flag_t flags)
447eda14cbcSMatt Macy {
448eda14cbcSMatt Macy 	nvlist_t *nv = NULL;
449eda14cbcSMatt Macy 	vdev_indirect_config_t *vic = &vd->vdev_indirect_config;
450eda14cbcSMatt Macy 
451eda14cbcSMatt Macy 	nv = fnvlist_alloc();
452eda14cbcSMatt Macy 
453eda14cbcSMatt Macy 	fnvlist_add_string(nv, ZPOOL_CONFIG_TYPE, vd->vdev_ops->vdev_op_type);
454eda14cbcSMatt Macy 	if (!(flags & (VDEV_CONFIG_SPARE | VDEV_CONFIG_L2CACHE)))
455eda14cbcSMatt Macy 		fnvlist_add_uint64(nv, ZPOOL_CONFIG_ID, vd->vdev_id);
456eda14cbcSMatt Macy 	fnvlist_add_uint64(nv, ZPOOL_CONFIG_GUID, vd->vdev_guid);
457eda14cbcSMatt Macy 
458eda14cbcSMatt Macy 	if (vd->vdev_path != NULL)
459eda14cbcSMatt Macy 		fnvlist_add_string(nv, ZPOOL_CONFIG_PATH, vd->vdev_path);
460eda14cbcSMatt Macy 
461eda14cbcSMatt Macy 	if (vd->vdev_devid != NULL)
462eda14cbcSMatt Macy 		fnvlist_add_string(nv, ZPOOL_CONFIG_DEVID, vd->vdev_devid);
463eda14cbcSMatt Macy 
464eda14cbcSMatt Macy 	if (vd->vdev_physpath != NULL)
465eda14cbcSMatt Macy 		fnvlist_add_string(nv, ZPOOL_CONFIG_PHYS_PATH,
466eda14cbcSMatt Macy 		    vd->vdev_physpath);
467eda14cbcSMatt Macy 
468eda14cbcSMatt Macy 	if (vd->vdev_enc_sysfs_path != NULL)
469eda14cbcSMatt Macy 		fnvlist_add_string(nv, ZPOOL_CONFIG_VDEV_ENC_SYSFS_PATH,
470eda14cbcSMatt Macy 		    vd->vdev_enc_sysfs_path);
471eda14cbcSMatt Macy 
472eda14cbcSMatt Macy 	if (vd->vdev_fru != NULL)
473eda14cbcSMatt Macy 		fnvlist_add_string(nv, ZPOOL_CONFIG_FRU, vd->vdev_fru);
474eda14cbcSMatt Macy 
4757877fdebSMatt Macy 	if (vd->vdev_ops->vdev_op_config_generate != NULL)
4767877fdebSMatt Macy 		vd->vdev_ops->vdev_op_config_generate(vd, nv);
477eda14cbcSMatt Macy 
4787877fdebSMatt Macy 	if (vd->vdev_wholedisk != -1ULL) {
479eda14cbcSMatt Macy 		fnvlist_add_uint64(nv, ZPOOL_CONFIG_WHOLE_DISK,
480eda14cbcSMatt Macy 		    vd->vdev_wholedisk);
4817877fdebSMatt Macy 	}
482eda14cbcSMatt Macy 
483eda14cbcSMatt Macy 	if (vd->vdev_not_present && !(flags & VDEV_CONFIG_MISSING))
484eda14cbcSMatt Macy 		fnvlist_add_uint64(nv, ZPOOL_CONFIG_NOT_PRESENT, 1);
485eda14cbcSMatt Macy 
486eda14cbcSMatt Macy 	if (vd->vdev_isspare)
487eda14cbcSMatt Macy 		fnvlist_add_uint64(nv, ZPOOL_CONFIG_IS_SPARE, 1);
488eda14cbcSMatt Macy 
489eda14cbcSMatt Macy 	if (!(flags & (VDEV_CONFIG_SPARE | VDEV_CONFIG_L2CACHE)) &&
490eda14cbcSMatt Macy 	    vd == vd->vdev_top) {
491eda14cbcSMatt Macy 		fnvlist_add_uint64(nv, ZPOOL_CONFIG_METASLAB_ARRAY,
492eda14cbcSMatt Macy 		    vd->vdev_ms_array);
493eda14cbcSMatt Macy 		fnvlist_add_uint64(nv, ZPOOL_CONFIG_METASLAB_SHIFT,
494eda14cbcSMatt Macy 		    vd->vdev_ms_shift);
495eda14cbcSMatt Macy 		fnvlist_add_uint64(nv, ZPOOL_CONFIG_ASHIFT, vd->vdev_ashift);
496eda14cbcSMatt Macy 		fnvlist_add_uint64(nv, ZPOOL_CONFIG_ASIZE,
497eda14cbcSMatt Macy 		    vd->vdev_asize);
498eda14cbcSMatt Macy 		fnvlist_add_uint64(nv, ZPOOL_CONFIG_IS_LOG, vd->vdev_islog);
499*681ce946SMartin Matuska 		if (vd->vdev_noalloc) {
500*681ce946SMartin Matuska 			fnvlist_add_uint64(nv, ZPOOL_CONFIG_NONALLOCATING,
501*681ce946SMartin Matuska 			    vd->vdev_noalloc);
502*681ce946SMartin Matuska 		}
503eda14cbcSMatt Macy 		if (vd->vdev_removing) {
504eda14cbcSMatt Macy 			fnvlist_add_uint64(nv, ZPOOL_CONFIG_REMOVING,
505eda14cbcSMatt Macy 			    vd->vdev_removing);
506eda14cbcSMatt Macy 		}
507eda14cbcSMatt Macy 
508eda14cbcSMatt Macy 		/* zpool command expects alloc class data */
509eda14cbcSMatt Macy 		if (getstats && vd->vdev_alloc_bias != VDEV_BIAS_NONE) {
510eda14cbcSMatt Macy 			const char *bias = NULL;
511eda14cbcSMatt Macy 
512eda14cbcSMatt Macy 			switch (vd->vdev_alloc_bias) {
513eda14cbcSMatt Macy 			case VDEV_BIAS_LOG:
514eda14cbcSMatt Macy 				bias = VDEV_ALLOC_BIAS_LOG;
515eda14cbcSMatt Macy 				break;
516eda14cbcSMatt Macy 			case VDEV_BIAS_SPECIAL:
517eda14cbcSMatt Macy 				bias = VDEV_ALLOC_BIAS_SPECIAL;
518eda14cbcSMatt Macy 				break;
519eda14cbcSMatt Macy 			case VDEV_BIAS_DEDUP:
520eda14cbcSMatt Macy 				bias = VDEV_ALLOC_BIAS_DEDUP;
521eda14cbcSMatt Macy 				break;
522eda14cbcSMatt Macy 			default:
523eda14cbcSMatt Macy 				ASSERT3U(vd->vdev_alloc_bias, ==,
524eda14cbcSMatt Macy 				    VDEV_BIAS_NONE);
525eda14cbcSMatt Macy 			}
526eda14cbcSMatt Macy 			fnvlist_add_string(nv, ZPOOL_CONFIG_ALLOCATION_BIAS,
527eda14cbcSMatt Macy 			    bias);
528eda14cbcSMatt Macy 		}
529eda14cbcSMatt Macy 	}
530eda14cbcSMatt Macy 
531eda14cbcSMatt Macy 	if (vd->vdev_dtl_sm != NULL) {
532eda14cbcSMatt Macy 		fnvlist_add_uint64(nv, ZPOOL_CONFIG_DTL,
533eda14cbcSMatt Macy 		    space_map_object(vd->vdev_dtl_sm));
534eda14cbcSMatt Macy 	}
535eda14cbcSMatt Macy 
536eda14cbcSMatt Macy 	if (vic->vic_mapping_object != 0) {
537eda14cbcSMatt Macy 		fnvlist_add_uint64(nv, ZPOOL_CONFIG_INDIRECT_OBJECT,
538eda14cbcSMatt Macy 		    vic->vic_mapping_object);
539eda14cbcSMatt Macy 	}
540eda14cbcSMatt Macy 
541eda14cbcSMatt Macy 	if (vic->vic_births_object != 0) {
542eda14cbcSMatt Macy 		fnvlist_add_uint64(nv, ZPOOL_CONFIG_INDIRECT_BIRTHS,
543eda14cbcSMatt Macy 		    vic->vic_births_object);
544eda14cbcSMatt Macy 	}
545eda14cbcSMatt Macy 
546eda14cbcSMatt Macy 	if (vic->vic_prev_indirect_vdev != UINT64_MAX) {
547eda14cbcSMatt Macy 		fnvlist_add_uint64(nv, ZPOOL_CONFIG_PREV_INDIRECT_VDEV,
548eda14cbcSMatt Macy 		    vic->vic_prev_indirect_vdev);
549eda14cbcSMatt Macy 	}
550eda14cbcSMatt Macy 
551eda14cbcSMatt Macy 	if (vd->vdev_crtxg)
552eda14cbcSMatt Macy 		fnvlist_add_uint64(nv, ZPOOL_CONFIG_CREATE_TXG, vd->vdev_crtxg);
553eda14cbcSMatt Macy 
554eda14cbcSMatt Macy 	if (vd->vdev_expansion_time)
555eda14cbcSMatt Macy 		fnvlist_add_uint64(nv, ZPOOL_CONFIG_EXPANSION_TIME,
556eda14cbcSMatt Macy 		    vd->vdev_expansion_time);
557eda14cbcSMatt Macy 
558eda14cbcSMatt Macy 	if (flags & VDEV_CONFIG_MOS) {
559eda14cbcSMatt Macy 		if (vd->vdev_leaf_zap != 0) {
560eda14cbcSMatt Macy 			ASSERT(vd->vdev_ops->vdev_op_leaf);
561eda14cbcSMatt Macy 			fnvlist_add_uint64(nv, ZPOOL_CONFIG_VDEV_LEAF_ZAP,
562eda14cbcSMatt Macy 			    vd->vdev_leaf_zap);
563eda14cbcSMatt Macy 		}
564eda14cbcSMatt Macy 
565eda14cbcSMatt Macy 		if (vd->vdev_top_zap != 0) {
566eda14cbcSMatt Macy 			ASSERT(vd == vd->vdev_top);
567eda14cbcSMatt Macy 			fnvlist_add_uint64(nv, ZPOOL_CONFIG_VDEV_TOP_ZAP,
568eda14cbcSMatt Macy 			    vd->vdev_top_zap);
569eda14cbcSMatt Macy 		}
570eda14cbcSMatt Macy 
571eda14cbcSMatt Macy 		if (vd->vdev_resilver_deferred) {
572eda14cbcSMatt Macy 			ASSERT(vd->vdev_ops->vdev_op_leaf);
573eda14cbcSMatt Macy 			ASSERT(spa->spa_resilver_deferred);
574eda14cbcSMatt Macy 			fnvlist_add_boolean(nv, ZPOOL_CONFIG_RESILVER_DEFER);
575eda14cbcSMatt Macy 		}
576eda14cbcSMatt Macy 	}
577eda14cbcSMatt Macy 
578eda14cbcSMatt Macy 	if (getstats) {
579eda14cbcSMatt Macy 		vdev_config_generate_stats(vd, nv);
580eda14cbcSMatt Macy 
581eda14cbcSMatt Macy 		root_vdev_actions_getprogress(vd, nv);
582eda14cbcSMatt Macy 		top_vdev_actions_getprogress(vd, nv);
583eda14cbcSMatt Macy 
584eda14cbcSMatt Macy 		/*
585eda14cbcSMatt Macy 		 * Note: this can be called from open context
586eda14cbcSMatt Macy 		 * (spa_get_stats()), so we need the rwlock to prevent
587eda14cbcSMatt Macy 		 * the mapping from being changed by condensing.
588eda14cbcSMatt Macy 		 */
589eda14cbcSMatt Macy 		rw_enter(&vd->vdev_indirect_rwlock, RW_READER);
590eda14cbcSMatt Macy 		if (vd->vdev_indirect_mapping != NULL) {
591eda14cbcSMatt Macy 			ASSERT(vd->vdev_indirect_births != NULL);
592eda14cbcSMatt Macy 			vdev_indirect_mapping_t *vim =
593eda14cbcSMatt Macy 			    vd->vdev_indirect_mapping;
594eda14cbcSMatt Macy 			fnvlist_add_uint64(nv, ZPOOL_CONFIG_INDIRECT_SIZE,
595eda14cbcSMatt Macy 			    vdev_indirect_mapping_size(vim));
596eda14cbcSMatt Macy 		}
597eda14cbcSMatt Macy 		rw_exit(&vd->vdev_indirect_rwlock);
598eda14cbcSMatt Macy 		if (vd->vdev_mg != NULL &&
599eda14cbcSMatt Macy 		    vd->vdev_mg->mg_fragmentation != ZFS_FRAG_INVALID) {
600eda14cbcSMatt Macy 			/*
601eda14cbcSMatt Macy 			 * Compute approximately how much memory would be used
602eda14cbcSMatt Macy 			 * for the indirect mapping if this device were to
603eda14cbcSMatt Macy 			 * be removed.
604eda14cbcSMatt Macy 			 *
605eda14cbcSMatt Macy 			 * Note: If the frag metric is invalid, then not
606eda14cbcSMatt Macy 			 * enough metaslabs have been converted to have
607eda14cbcSMatt Macy 			 * histograms.
608eda14cbcSMatt Macy 			 */
609eda14cbcSMatt Macy 			uint64_t seg_count = 0;
610eda14cbcSMatt Macy 			uint64_t to_alloc = vd->vdev_stat.vs_alloc;
611eda14cbcSMatt Macy 
612eda14cbcSMatt Macy 			/*
613eda14cbcSMatt Macy 			 * There are the same number of allocated segments
614eda14cbcSMatt Macy 			 * as free segments, so we will have at least one
615eda14cbcSMatt Macy 			 * entry per free segment.  However, small free
616eda14cbcSMatt Macy 			 * segments (smaller than vdev_removal_max_span)
617eda14cbcSMatt Macy 			 * will be combined with adjacent allocated segments
618eda14cbcSMatt Macy 			 * as a single mapping.
619eda14cbcSMatt Macy 			 */
620eda14cbcSMatt Macy 			for (int i = 0; i < RANGE_TREE_HISTOGRAM_SIZE; i++) {
621180f8225SMatt Macy 				if (i + 1 < highbit64(vdev_removal_max_span)
622180f8225SMatt Macy 				    - 1) {
623eda14cbcSMatt Macy 					to_alloc +=
624eda14cbcSMatt Macy 					    vd->vdev_mg->mg_histogram[i] <<
625eda14cbcSMatt Macy 					    (i + 1);
626eda14cbcSMatt Macy 				} else {
627eda14cbcSMatt Macy 					seg_count +=
628eda14cbcSMatt Macy 					    vd->vdev_mg->mg_histogram[i];
629eda14cbcSMatt Macy 				}
630eda14cbcSMatt Macy 			}
631eda14cbcSMatt Macy 
632eda14cbcSMatt Macy 			/*
633eda14cbcSMatt Macy 			 * The maximum length of a mapping is
634eda14cbcSMatt Macy 			 * zfs_remove_max_segment, so we need at least one entry
635eda14cbcSMatt Macy 			 * per zfs_remove_max_segment of allocated data.
636eda14cbcSMatt Macy 			 */
637eda14cbcSMatt Macy 			seg_count += to_alloc / spa_remove_max_segment(spa);
638eda14cbcSMatt Macy 
639eda14cbcSMatt Macy 			fnvlist_add_uint64(nv, ZPOOL_CONFIG_INDIRECT_SIZE,
640eda14cbcSMatt Macy 			    seg_count *
641eda14cbcSMatt Macy 			    sizeof (vdev_indirect_mapping_entry_phys_t));
642eda14cbcSMatt Macy 		}
643eda14cbcSMatt Macy 	}
644eda14cbcSMatt Macy 
645eda14cbcSMatt Macy 	if (!vd->vdev_ops->vdev_op_leaf) {
646eda14cbcSMatt Macy 		nvlist_t **child;
647eda14cbcSMatt Macy 		int c, idx;
648eda14cbcSMatt Macy 
649eda14cbcSMatt Macy 		ASSERT(!vd->vdev_ishole);
650eda14cbcSMatt Macy 
651eda14cbcSMatt Macy 		child = kmem_alloc(vd->vdev_children * sizeof (nvlist_t *),
652eda14cbcSMatt Macy 		    KM_SLEEP);
653eda14cbcSMatt Macy 
654eda14cbcSMatt Macy 		for (c = 0, idx = 0; c < vd->vdev_children; c++) {
655eda14cbcSMatt Macy 			vdev_t *cvd = vd->vdev_child[c];
656eda14cbcSMatt Macy 
657eda14cbcSMatt Macy 			/*
658eda14cbcSMatt Macy 			 * If we're generating an nvlist of removing
659eda14cbcSMatt Macy 			 * vdevs then skip over any device which is
660eda14cbcSMatt Macy 			 * not being removed.
661eda14cbcSMatt Macy 			 */
662eda14cbcSMatt Macy 			if ((flags & VDEV_CONFIG_REMOVING) &&
663eda14cbcSMatt Macy 			    !cvd->vdev_removing)
664eda14cbcSMatt Macy 				continue;
665eda14cbcSMatt Macy 
666eda14cbcSMatt Macy 			child[idx++] = vdev_config_generate(spa, cvd,
667eda14cbcSMatt Macy 			    getstats, flags);
668eda14cbcSMatt Macy 		}
669eda14cbcSMatt Macy 
670eda14cbcSMatt Macy 		if (idx) {
671eda14cbcSMatt Macy 			fnvlist_add_nvlist_array(nv, ZPOOL_CONFIG_CHILDREN,
672*681ce946SMartin Matuska 			    (const nvlist_t * const *)child, idx);
673eda14cbcSMatt Macy 		}
674eda14cbcSMatt Macy 
675eda14cbcSMatt Macy 		for (c = 0; c < idx; c++)
676eda14cbcSMatt Macy 			nvlist_free(child[c]);
677eda14cbcSMatt Macy 
678eda14cbcSMatt Macy 		kmem_free(child, vd->vdev_children * sizeof (nvlist_t *));
679eda14cbcSMatt Macy 
680eda14cbcSMatt Macy 	} else {
681eda14cbcSMatt Macy 		const char *aux = NULL;
682eda14cbcSMatt Macy 
683eda14cbcSMatt Macy 		if (vd->vdev_offline && !vd->vdev_tmpoffline)
684eda14cbcSMatt Macy 			fnvlist_add_uint64(nv, ZPOOL_CONFIG_OFFLINE, B_TRUE);
685eda14cbcSMatt Macy 		if (vd->vdev_resilver_txg != 0)
686eda14cbcSMatt Macy 			fnvlist_add_uint64(nv, ZPOOL_CONFIG_RESILVER_TXG,
687eda14cbcSMatt Macy 			    vd->vdev_resilver_txg);
688eda14cbcSMatt Macy 		if (vd->vdev_rebuild_txg != 0)
689eda14cbcSMatt Macy 			fnvlist_add_uint64(nv, ZPOOL_CONFIG_REBUILD_TXG,
690eda14cbcSMatt Macy 			    vd->vdev_rebuild_txg);
691eda14cbcSMatt Macy 		if (vd->vdev_faulted)
692eda14cbcSMatt Macy 			fnvlist_add_uint64(nv, ZPOOL_CONFIG_FAULTED, B_TRUE);
693eda14cbcSMatt Macy 		if (vd->vdev_degraded)
694eda14cbcSMatt Macy 			fnvlist_add_uint64(nv, ZPOOL_CONFIG_DEGRADED, B_TRUE);
695eda14cbcSMatt Macy 		if (vd->vdev_removed)
696eda14cbcSMatt Macy 			fnvlist_add_uint64(nv, ZPOOL_CONFIG_REMOVED, B_TRUE);
697eda14cbcSMatt Macy 		if (vd->vdev_unspare)
698eda14cbcSMatt Macy 			fnvlist_add_uint64(nv, ZPOOL_CONFIG_UNSPARE, B_TRUE);
699eda14cbcSMatt Macy 		if (vd->vdev_ishole)
700eda14cbcSMatt Macy 			fnvlist_add_uint64(nv, ZPOOL_CONFIG_IS_HOLE, B_TRUE);
701eda14cbcSMatt Macy 
702eda14cbcSMatt Macy 		/* Set the reason why we're FAULTED/DEGRADED. */
703eda14cbcSMatt Macy 		switch (vd->vdev_stat.vs_aux) {
704eda14cbcSMatt Macy 		case VDEV_AUX_ERR_EXCEEDED:
705eda14cbcSMatt Macy 			aux = "err_exceeded";
706eda14cbcSMatt Macy 			break;
707eda14cbcSMatt Macy 
708eda14cbcSMatt Macy 		case VDEV_AUX_EXTERNAL:
709eda14cbcSMatt Macy 			aux = "external";
710eda14cbcSMatt Macy 			break;
711eda14cbcSMatt Macy 		}
712eda14cbcSMatt Macy 
713eda14cbcSMatt Macy 		if (aux != NULL && !vd->vdev_tmpoffline) {
714eda14cbcSMatt Macy 			fnvlist_add_string(nv, ZPOOL_CONFIG_AUX_STATE, aux);
715eda14cbcSMatt Macy 		} else {
716eda14cbcSMatt Macy 			/*
717eda14cbcSMatt Macy 			 * We're healthy - clear any previous AUX_STATE values.
718eda14cbcSMatt Macy 			 */
719eda14cbcSMatt Macy 			if (nvlist_exists(nv, ZPOOL_CONFIG_AUX_STATE))
720eda14cbcSMatt Macy 				nvlist_remove_all(nv, ZPOOL_CONFIG_AUX_STATE);
721eda14cbcSMatt Macy 		}
722eda14cbcSMatt Macy 
723eda14cbcSMatt Macy 		if (vd->vdev_splitting && vd->vdev_orig_guid != 0LL) {
724eda14cbcSMatt Macy 			fnvlist_add_uint64(nv, ZPOOL_CONFIG_ORIG_GUID,
725eda14cbcSMatt Macy 			    vd->vdev_orig_guid);
726eda14cbcSMatt Macy 		}
727eda14cbcSMatt Macy 	}
728eda14cbcSMatt Macy 
729eda14cbcSMatt Macy 	return (nv);
730eda14cbcSMatt Macy }
731eda14cbcSMatt Macy 
732eda14cbcSMatt Macy /*
733eda14cbcSMatt Macy  * Generate a view of the top-level vdevs.  If we currently have holes
734eda14cbcSMatt Macy  * in the namespace, then generate an array which contains a list of holey
735eda14cbcSMatt Macy  * vdevs.  Additionally, add the number of top-level children that currently
736eda14cbcSMatt Macy  * exist.
737eda14cbcSMatt Macy  */
738eda14cbcSMatt Macy void
739eda14cbcSMatt Macy vdev_top_config_generate(spa_t *spa, nvlist_t *config)
740eda14cbcSMatt Macy {
741eda14cbcSMatt Macy 	vdev_t *rvd = spa->spa_root_vdev;
742eda14cbcSMatt Macy 	uint64_t *array;
743eda14cbcSMatt Macy 	uint_t c, idx;
744eda14cbcSMatt Macy 
745eda14cbcSMatt Macy 	array = kmem_alloc(rvd->vdev_children * sizeof (uint64_t), KM_SLEEP);
746eda14cbcSMatt Macy 
747eda14cbcSMatt Macy 	for (c = 0, idx = 0; c < rvd->vdev_children; c++) {
748eda14cbcSMatt Macy 		vdev_t *tvd = rvd->vdev_child[c];
749eda14cbcSMatt Macy 
750eda14cbcSMatt Macy 		if (tvd->vdev_ishole) {
751eda14cbcSMatt Macy 			array[idx++] = c;
752eda14cbcSMatt Macy 		}
753eda14cbcSMatt Macy 	}
754eda14cbcSMatt Macy 
755eda14cbcSMatt Macy 	if (idx) {
756eda14cbcSMatt Macy 		VERIFY(nvlist_add_uint64_array(config, ZPOOL_CONFIG_HOLE_ARRAY,
757eda14cbcSMatt Macy 		    array, idx) == 0);
758eda14cbcSMatt Macy 	}
759eda14cbcSMatt Macy 
760eda14cbcSMatt Macy 	VERIFY(nvlist_add_uint64(config, ZPOOL_CONFIG_VDEV_CHILDREN,
761eda14cbcSMatt Macy 	    rvd->vdev_children) == 0);
762eda14cbcSMatt Macy 
763eda14cbcSMatt Macy 	kmem_free(array, rvd->vdev_children * sizeof (uint64_t));
764eda14cbcSMatt Macy }
765eda14cbcSMatt Macy 
766eda14cbcSMatt Macy /*
767eda14cbcSMatt Macy  * Returns the configuration from the label of the given vdev. For vdevs
768eda14cbcSMatt Macy  * which don't have a txg value stored on their label (i.e. spares/cache)
769eda14cbcSMatt Macy  * or have not been completely initialized (txg = 0) just return
770eda14cbcSMatt Macy  * the configuration from the first valid label we find. Otherwise,
771eda14cbcSMatt Macy  * find the most up-to-date label that does not exceed the specified
772eda14cbcSMatt Macy  * 'txg' value.
773eda14cbcSMatt Macy  */
774eda14cbcSMatt Macy nvlist_t *
775eda14cbcSMatt Macy vdev_label_read_config(vdev_t *vd, uint64_t txg)
776eda14cbcSMatt Macy {
777eda14cbcSMatt Macy 	spa_t *spa = vd->vdev_spa;
778eda14cbcSMatt Macy 	nvlist_t *config = NULL;
779184c1b94SMartin Matuska 	vdev_phys_t *vp[VDEV_LABELS];
780184c1b94SMartin Matuska 	abd_t *vp_abd[VDEV_LABELS];
781184c1b94SMartin Matuska 	zio_t *zio[VDEV_LABELS];
782eda14cbcSMatt Macy 	uint64_t best_txg = 0;
783eda14cbcSMatt Macy 	uint64_t label_txg = 0;
784eda14cbcSMatt Macy 	int error = 0;
785eda14cbcSMatt Macy 	int flags = ZIO_FLAG_CONFIG_WRITER | ZIO_FLAG_CANFAIL |
786eda14cbcSMatt Macy 	    ZIO_FLAG_SPECULATIVE;
787eda14cbcSMatt Macy 
788184c1b94SMartin Matuska 	ASSERT(vd->vdev_validate_thread == curthread ||
789184c1b94SMartin Matuska 	    spa_config_held(spa, SCL_STATE_ALL, RW_WRITER) == SCL_STATE_ALL);
790eda14cbcSMatt Macy 
791eda14cbcSMatt Macy 	if (!vdev_readable(vd))
792eda14cbcSMatt Macy 		return (NULL);
793eda14cbcSMatt Macy 
7947877fdebSMatt Macy 	/*
7957877fdebSMatt Macy 	 * The label for a dRAID distributed spare is not stored on disk.
7967877fdebSMatt Macy 	 * Instead it is generated when needed which allows us to bypass
7977877fdebSMatt Macy 	 * the pipeline when reading the config from the label.
7987877fdebSMatt Macy 	 */
7997877fdebSMatt Macy 	if (vd->vdev_ops == &vdev_draid_spare_ops)
8007877fdebSMatt Macy 		return (vdev_draid_read_config_spare(vd));
8017877fdebSMatt Macy 
802184c1b94SMartin Matuska 	for (int l = 0; l < VDEV_LABELS; l++) {
803184c1b94SMartin Matuska 		vp_abd[l] = abd_alloc_linear(sizeof (vdev_phys_t), B_TRUE);
804184c1b94SMartin Matuska 		vp[l] = abd_to_buf(vp_abd[l]);
805184c1b94SMartin Matuska 	}
806eda14cbcSMatt Macy 
807eda14cbcSMatt Macy retry:
808eda14cbcSMatt Macy 	for (int l = 0; l < VDEV_LABELS; l++) {
809184c1b94SMartin Matuska 		zio[l] = zio_root(spa, NULL, NULL, flags);
810184c1b94SMartin Matuska 
811184c1b94SMartin Matuska 		vdev_label_read(zio[l], vd, l, vp_abd[l],
812184c1b94SMartin Matuska 		    offsetof(vdev_label_t, vl_vdev_phys), sizeof (vdev_phys_t),
813184c1b94SMartin Matuska 		    NULL, NULL, flags);
814184c1b94SMartin Matuska 	}
815184c1b94SMartin Matuska 	for (int l = 0; l < VDEV_LABELS; l++) {
816eda14cbcSMatt Macy 		nvlist_t *label = NULL;
817eda14cbcSMatt Macy 
818184c1b94SMartin Matuska 		if (zio_wait(zio[l]) == 0 &&
819184c1b94SMartin Matuska 		    nvlist_unpack(vp[l]->vp_nvlist, sizeof (vp[l]->vp_nvlist),
820eda14cbcSMatt Macy 		    &label, 0) == 0) {
821eda14cbcSMatt Macy 			/*
822eda14cbcSMatt Macy 			 * Auxiliary vdevs won't have txg values in their
823eda14cbcSMatt Macy 			 * labels and newly added vdevs may not have been
824eda14cbcSMatt Macy 			 * completely initialized so just return the
825eda14cbcSMatt Macy 			 * configuration from the first valid label we
826eda14cbcSMatt Macy 			 * encounter.
827eda14cbcSMatt Macy 			 */
828eda14cbcSMatt Macy 			error = nvlist_lookup_uint64(label,
829eda14cbcSMatt Macy 			    ZPOOL_CONFIG_POOL_TXG, &label_txg);
830eda14cbcSMatt Macy 			if ((error || label_txg == 0) && !config) {
831eda14cbcSMatt Macy 				config = label;
832184c1b94SMartin Matuska 				for (l++; l < VDEV_LABELS; l++)
833184c1b94SMartin Matuska 					zio_wait(zio[l]);
834eda14cbcSMatt Macy 				break;
835eda14cbcSMatt Macy 			} else if (label_txg <= txg && label_txg > best_txg) {
836eda14cbcSMatt Macy 				best_txg = label_txg;
837eda14cbcSMatt Macy 				nvlist_free(config);
838eda14cbcSMatt Macy 				config = fnvlist_dup(label);
839eda14cbcSMatt Macy 			}
840eda14cbcSMatt Macy 		}
841eda14cbcSMatt Macy 
842eda14cbcSMatt Macy 		if (label != NULL) {
843eda14cbcSMatt Macy 			nvlist_free(label);
844eda14cbcSMatt Macy 			label = NULL;
845eda14cbcSMatt Macy 		}
846eda14cbcSMatt Macy 	}
847eda14cbcSMatt Macy 
848eda14cbcSMatt Macy 	if (config == NULL && !(flags & ZIO_FLAG_TRYHARD)) {
849eda14cbcSMatt Macy 		flags |= ZIO_FLAG_TRYHARD;
850eda14cbcSMatt Macy 		goto retry;
851eda14cbcSMatt Macy 	}
852eda14cbcSMatt Macy 
853eda14cbcSMatt Macy 	/*
854eda14cbcSMatt Macy 	 * We found a valid label but it didn't pass txg restrictions.
855eda14cbcSMatt Macy 	 */
856eda14cbcSMatt Macy 	if (config == NULL && label_txg != 0) {
857eda14cbcSMatt Macy 		vdev_dbgmsg(vd, "label discarded as txg is too large "
858eda14cbcSMatt Macy 		    "(%llu > %llu)", (u_longlong_t)label_txg,
859eda14cbcSMatt Macy 		    (u_longlong_t)txg);
860eda14cbcSMatt Macy 	}
861eda14cbcSMatt Macy 
862184c1b94SMartin Matuska 	for (int l = 0; l < VDEV_LABELS; l++) {
863184c1b94SMartin Matuska 		abd_free(vp_abd[l]);
864184c1b94SMartin Matuska 	}
865eda14cbcSMatt Macy 
866eda14cbcSMatt Macy 	return (config);
867eda14cbcSMatt Macy }
868eda14cbcSMatt Macy 
869eda14cbcSMatt Macy /*
870eda14cbcSMatt Macy  * Determine if a device is in use.  The 'spare_guid' parameter will be filled
871eda14cbcSMatt Macy  * in with the device guid if this spare is active elsewhere on the system.
872eda14cbcSMatt Macy  */
873eda14cbcSMatt Macy static boolean_t
874eda14cbcSMatt Macy vdev_inuse(vdev_t *vd, uint64_t crtxg, vdev_labeltype_t reason,
875eda14cbcSMatt Macy     uint64_t *spare_guid, uint64_t *l2cache_guid)
876eda14cbcSMatt Macy {
877eda14cbcSMatt Macy 	spa_t *spa = vd->vdev_spa;
878eda14cbcSMatt Macy 	uint64_t state, pool_guid, device_guid, txg, spare_pool;
879eda14cbcSMatt Macy 	uint64_t vdtxg = 0;
880eda14cbcSMatt Macy 	nvlist_t *label;
881eda14cbcSMatt Macy 
882eda14cbcSMatt Macy 	if (spare_guid)
883eda14cbcSMatt Macy 		*spare_guid = 0ULL;
884eda14cbcSMatt Macy 	if (l2cache_guid)
885eda14cbcSMatt Macy 		*l2cache_guid = 0ULL;
886eda14cbcSMatt Macy 
887eda14cbcSMatt Macy 	/*
888eda14cbcSMatt Macy 	 * Read the label, if any, and perform some basic sanity checks.
889eda14cbcSMatt Macy 	 */
890eda14cbcSMatt Macy 	if ((label = vdev_label_read_config(vd, -1ULL)) == NULL)
891eda14cbcSMatt Macy 		return (B_FALSE);
892eda14cbcSMatt Macy 
893eda14cbcSMatt Macy 	(void) nvlist_lookup_uint64(label, ZPOOL_CONFIG_CREATE_TXG,
894eda14cbcSMatt Macy 	    &vdtxg);
895eda14cbcSMatt Macy 
896eda14cbcSMatt Macy 	if (nvlist_lookup_uint64(label, ZPOOL_CONFIG_POOL_STATE,
897eda14cbcSMatt Macy 	    &state) != 0 ||
898eda14cbcSMatt Macy 	    nvlist_lookup_uint64(label, ZPOOL_CONFIG_GUID,
899eda14cbcSMatt Macy 	    &device_guid) != 0) {
900eda14cbcSMatt Macy 		nvlist_free(label);
901eda14cbcSMatt Macy 		return (B_FALSE);
902eda14cbcSMatt Macy 	}
903eda14cbcSMatt Macy 
904eda14cbcSMatt Macy 	if (state != POOL_STATE_SPARE && state != POOL_STATE_L2CACHE &&
905eda14cbcSMatt Macy 	    (nvlist_lookup_uint64(label, ZPOOL_CONFIG_POOL_GUID,
906eda14cbcSMatt Macy 	    &pool_guid) != 0 ||
907eda14cbcSMatt Macy 	    nvlist_lookup_uint64(label, ZPOOL_CONFIG_POOL_TXG,
908eda14cbcSMatt Macy 	    &txg) != 0)) {
909eda14cbcSMatt Macy 		nvlist_free(label);
910eda14cbcSMatt Macy 		return (B_FALSE);
911eda14cbcSMatt Macy 	}
912eda14cbcSMatt Macy 
913eda14cbcSMatt Macy 	nvlist_free(label);
914eda14cbcSMatt Macy 
915eda14cbcSMatt Macy 	/*
916eda14cbcSMatt Macy 	 * Check to see if this device indeed belongs to the pool it claims to
917eda14cbcSMatt Macy 	 * be a part of.  The only way this is allowed is if the device is a hot
918eda14cbcSMatt Macy 	 * spare (which we check for later on).
919eda14cbcSMatt Macy 	 */
920eda14cbcSMatt Macy 	if (state != POOL_STATE_SPARE && state != POOL_STATE_L2CACHE &&
921eda14cbcSMatt Macy 	    !spa_guid_exists(pool_guid, device_guid) &&
922eda14cbcSMatt Macy 	    !spa_spare_exists(device_guid, NULL, NULL) &&
923eda14cbcSMatt Macy 	    !spa_l2cache_exists(device_guid, NULL))
924eda14cbcSMatt Macy 		return (B_FALSE);
925eda14cbcSMatt Macy 
926eda14cbcSMatt Macy 	/*
927eda14cbcSMatt Macy 	 * If the transaction group is zero, then this an initialized (but
928eda14cbcSMatt Macy 	 * unused) label.  This is only an error if the create transaction
929eda14cbcSMatt Macy 	 * on-disk is the same as the one we're using now, in which case the
930eda14cbcSMatt Macy 	 * user has attempted to add the same vdev multiple times in the same
931eda14cbcSMatt Macy 	 * transaction.
932eda14cbcSMatt Macy 	 */
933eda14cbcSMatt Macy 	if (state != POOL_STATE_SPARE && state != POOL_STATE_L2CACHE &&
934eda14cbcSMatt Macy 	    txg == 0 && vdtxg == crtxg)
935eda14cbcSMatt Macy 		return (B_TRUE);
936eda14cbcSMatt Macy 
937eda14cbcSMatt Macy 	/*
938eda14cbcSMatt Macy 	 * Check to see if this is a spare device.  We do an explicit check for
939eda14cbcSMatt Macy 	 * spa_has_spare() here because it may be on our pending list of spares
940dae17134SMartin Matuska 	 * to add.
941eda14cbcSMatt Macy 	 */
942eda14cbcSMatt Macy 	if (spa_spare_exists(device_guid, &spare_pool, NULL) ||
943eda14cbcSMatt Macy 	    spa_has_spare(spa, device_guid)) {
944eda14cbcSMatt Macy 		if (spare_guid)
945eda14cbcSMatt Macy 			*spare_guid = device_guid;
946eda14cbcSMatt Macy 
947eda14cbcSMatt Macy 		switch (reason) {
948eda14cbcSMatt Macy 		case VDEV_LABEL_CREATE:
949eda14cbcSMatt Macy 			return (B_TRUE);
950eda14cbcSMatt Macy 
951eda14cbcSMatt Macy 		case VDEV_LABEL_REPLACE:
952eda14cbcSMatt Macy 			return (!spa_has_spare(spa, device_guid) ||
953eda14cbcSMatt Macy 			    spare_pool != 0ULL);
954eda14cbcSMatt Macy 
955eda14cbcSMatt Macy 		case VDEV_LABEL_SPARE:
956eda14cbcSMatt Macy 			return (spa_has_spare(spa, device_guid));
957eda14cbcSMatt Macy 		default:
958eda14cbcSMatt Macy 			break;
959eda14cbcSMatt Macy 		}
960eda14cbcSMatt Macy 	}
961eda14cbcSMatt Macy 
962eda14cbcSMatt Macy 	/*
963eda14cbcSMatt Macy 	 * Check to see if this is an l2cache device.
964eda14cbcSMatt Macy 	 */
965dae17134SMartin Matuska 	if (spa_l2cache_exists(device_guid, NULL) ||
966dae17134SMartin Matuska 	    spa_has_l2cache(spa, device_guid)) {
967dae17134SMartin Matuska 		if (l2cache_guid)
968dae17134SMartin Matuska 			*l2cache_guid = device_guid;
969dae17134SMartin Matuska 
970dae17134SMartin Matuska 		switch (reason) {
971dae17134SMartin Matuska 		case VDEV_LABEL_CREATE:
972eda14cbcSMatt Macy 			return (B_TRUE);
973eda14cbcSMatt Macy 
974dae17134SMartin Matuska 		case VDEV_LABEL_REPLACE:
975dae17134SMartin Matuska 			return (!spa_has_l2cache(spa, device_guid));
976dae17134SMartin Matuska 
977dae17134SMartin Matuska 		case VDEV_LABEL_L2CACHE:
978dae17134SMartin Matuska 			return (spa_has_l2cache(spa, device_guid));
979dae17134SMartin Matuska 		default:
980dae17134SMartin Matuska 			break;
981dae17134SMartin Matuska 		}
982dae17134SMartin Matuska 	}
983dae17134SMartin Matuska 
984eda14cbcSMatt Macy 	/*
985eda14cbcSMatt Macy 	 * We can't rely on a pool's state if it's been imported
986eda14cbcSMatt Macy 	 * read-only.  Instead we look to see if the pools is marked
987eda14cbcSMatt Macy 	 * read-only in the namespace and set the state to active.
988eda14cbcSMatt Macy 	 */
989eda14cbcSMatt Macy 	if (state != POOL_STATE_SPARE && state != POOL_STATE_L2CACHE &&
990eda14cbcSMatt Macy 	    (spa = spa_by_guid(pool_guid, device_guid)) != NULL &&
991eda14cbcSMatt Macy 	    spa_mode(spa) == SPA_MODE_READ)
992eda14cbcSMatt Macy 		state = POOL_STATE_ACTIVE;
993eda14cbcSMatt Macy 
994eda14cbcSMatt Macy 	/*
995eda14cbcSMatt Macy 	 * If the device is marked ACTIVE, then this device is in use by another
996eda14cbcSMatt Macy 	 * pool on the system.
997eda14cbcSMatt Macy 	 */
998eda14cbcSMatt Macy 	return (state == POOL_STATE_ACTIVE);
999eda14cbcSMatt Macy }
1000eda14cbcSMatt Macy 
1001eda14cbcSMatt Macy /*
1002eda14cbcSMatt Macy  * Initialize a vdev label.  We check to make sure each leaf device is not in
1003eda14cbcSMatt Macy  * use, and writable.  We put down an initial label which we will later
1004eda14cbcSMatt Macy  * overwrite with a complete label.  Note that it's important to do this
1005eda14cbcSMatt Macy  * sequentially, not in parallel, so that we catch cases of multiple use of the
1006eda14cbcSMatt Macy  * same leaf vdev in the vdev we're creating -- e.g. mirroring a disk with
1007eda14cbcSMatt Macy  * itself.
1008eda14cbcSMatt Macy  */
1009eda14cbcSMatt Macy int
1010eda14cbcSMatt Macy vdev_label_init(vdev_t *vd, uint64_t crtxg, vdev_labeltype_t reason)
1011eda14cbcSMatt Macy {
1012eda14cbcSMatt Macy 	spa_t *spa = vd->vdev_spa;
1013eda14cbcSMatt Macy 	nvlist_t *label;
1014eda14cbcSMatt Macy 	vdev_phys_t *vp;
1015eda14cbcSMatt Macy 	abd_t *vp_abd;
1016eda14cbcSMatt Macy 	abd_t *bootenv;
1017eda14cbcSMatt Macy 	uberblock_t *ub;
1018eda14cbcSMatt Macy 	abd_t *ub_abd;
1019eda14cbcSMatt Macy 	zio_t *zio;
1020eda14cbcSMatt Macy 	char *buf;
1021eda14cbcSMatt Macy 	size_t buflen;
1022eda14cbcSMatt Macy 	int error;
1023eda14cbcSMatt Macy 	uint64_t spare_guid = 0, l2cache_guid = 0;
1024eda14cbcSMatt Macy 	int flags = ZIO_FLAG_CONFIG_WRITER | ZIO_FLAG_CANFAIL;
1025eda14cbcSMatt Macy 
1026eda14cbcSMatt Macy 	ASSERT(spa_config_held(spa, SCL_ALL, RW_WRITER) == SCL_ALL);
1027eda14cbcSMatt Macy 
1028eda14cbcSMatt Macy 	for (int c = 0; c < vd->vdev_children; c++)
1029eda14cbcSMatt Macy 		if ((error = vdev_label_init(vd->vdev_child[c],
1030eda14cbcSMatt Macy 		    crtxg, reason)) != 0)
1031eda14cbcSMatt Macy 			return (error);
1032eda14cbcSMatt Macy 
1033eda14cbcSMatt Macy 	/* Track the creation time for this vdev */
1034eda14cbcSMatt Macy 	vd->vdev_crtxg = crtxg;
1035eda14cbcSMatt Macy 
1036eda14cbcSMatt Macy 	if (!vd->vdev_ops->vdev_op_leaf || !spa_writeable(spa))
1037eda14cbcSMatt Macy 		return (0);
1038eda14cbcSMatt Macy 
1039eda14cbcSMatt Macy 	/*
1040eda14cbcSMatt Macy 	 * Dead vdevs cannot be initialized.
1041eda14cbcSMatt Macy 	 */
1042eda14cbcSMatt Macy 	if (vdev_is_dead(vd))
1043eda14cbcSMatt Macy 		return (SET_ERROR(EIO));
1044eda14cbcSMatt Macy 
1045eda14cbcSMatt Macy 	/*
1046eda14cbcSMatt Macy 	 * Determine if the vdev is in use.
1047eda14cbcSMatt Macy 	 */
1048eda14cbcSMatt Macy 	if (reason != VDEV_LABEL_REMOVE && reason != VDEV_LABEL_SPLIT &&
1049eda14cbcSMatt Macy 	    vdev_inuse(vd, crtxg, reason, &spare_guid, &l2cache_guid))
1050eda14cbcSMatt Macy 		return (SET_ERROR(EBUSY));
1051eda14cbcSMatt Macy 
1052eda14cbcSMatt Macy 	/*
1053eda14cbcSMatt Macy 	 * If this is a request to add or replace a spare or l2cache device
1054eda14cbcSMatt Macy 	 * that is in use elsewhere on the system, then we must update the
1055eda14cbcSMatt Macy 	 * guid (which was initialized to a random value) to reflect the
1056eda14cbcSMatt Macy 	 * actual GUID (which is shared between multiple pools).
1057eda14cbcSMatt Macy 	 */
1058eda14cbcSMatt Macy 	if (reason != VDEV_LABEL_REMOVE && reason != VDEV_LABEL_L2CACHE &&
1059eda14cbcSMatt Macy 	    spare_guid != 0ULL) {
1060eda14cbcSMatt Macy 		uint64_t guid_delta = spare_guid - vd->vdev_guid;
1061eda14cbcSMatt Macy 
1062eda14cbcSMatt Macy 		vd->vdev_guid += guid_delta;
1063eda14cbcSMatt Macy 
1064eda14cbcSMatt Macy 		for (vdev_t *pvd = vd; pvd != NULL; pvd = pvd->vdev_parent)
1065eda14cbcSMatt Macy 			pvd->vdev_guid_sum += guid_delta;
1066eda14cbcSMatt Macy 
1067eda14cbcSMatt Macy 		/*
1068eda14cbcSMatt Macy 		 * If this is a replacement, then we want to fallthrough to the
1069eda14cbcSMatt Macy 		 * rest of the code.  If we're adding a spare, then it's already
1070eda14cbcSMatt Macy 		 * labeled appropriately and we can just return.
1071eda14cbcSMatt Macy 		 */
1072eda14cbcSMatt Macy 		if (reason == VDEV_LABEL_SPARE)
1073eda14cbcSMatt Macy 			return (0);
1074eda14cbcSMatt Macy 		ASSERT(reason == VDEV_LABEL_REPLACE ||
1075eda14cbcSMatt Macy 		    reason == VDEV_LABEL_SPLIT);
1076eda14cbcSMatt Macy 	}
1077eda14cbcSMatt Macy 
1078eda14cbcSMatt Macy 	if (reason != VDEV_LABEL_REMOVE && reason != VDEV_LABEL_SPARE &&
1079eda14cbcSMatt Macy 	    l2cache_guid != 0ULL) {
1080eda14cbcSMatt Macy 		uint64_t guid_delta = l2cache_guid - vd->vdev_guid;
1081eda14cbcSMatt Macy 
1082eda14cbcSMatt Macy 		vd->vdev_guid += guid_delta;
1083eda14cbcSMatt Macy 
1084eda14cbcSMatt Macy 		for (vdev_t *pvd = vd; pvd != NULL; pvd = pvd->vdev_parent)
1085eda14cbcSMatt Macy 			pvd->vdev_guid_sum += guid_delta;
1086eda14cbcSMatt Macy 
1087eda14cbcSMatt Macy 		/*
1088eda14cbcSMatt Macy 		 * If this is a replacement, then we want to fallthrough to the
1089eda14cbcSMatt Macy 		 * rest of the code.  If we're adding an l2cache, then it's
1090eda14cbcSMatt Macy 		 * already labeled appropriately and we can just return.
1091eda14cbcSMatt Macy 		 */
1092eda14cbcSMatt Macy 		if (reason == VDEV_LABEL_L2CACHE)
1093eda14cbcSMatt Macy 			return (0);
1094eda14cbcSMatt Macy 		ASSERT(reason == VDEV_LABEL_REPLACE);
1095eda14cbcSMatt Macy 	}
1096eda14cbcSMatt Macy 
1097eda14cbcSMatt Macy 	/*
1098eda14cbcSMatt Macy 	 * Initialize its label.
1099eda14cbcSMatt Macy 	 */
1100eda14cbcSMatt Macy 	vp_abd = abd_alloc_linear(sizeof (vdev_phys_t), B_TRUE);
1101eda14cbcSMatt Macy 	abd_zero(vp_abd, sizeof (vdev_phys_t));
1102eda14cbcSMatt Macy 	vp = abd_to_buf(vp_abd);
1103eda14cbcSMatt Macy 
1104eda14cbcSMatt Macy 	/*
1105eda14cbcSMatt Macy 	 * Generate a label describing the pool and our top-level vdev.
1106eda14cbcSMatt Macy 	 * We mark it as being from txg 0 to indicate that it's not
1107eda14cbcSMatt Macy 	 * really part of an active pool just yet.  The labels will
1108eda14cbcSMatt Macy 	 * be written again with a meaningful txg by spa_sync().
1109eda14cbcSMatt Macy 	 */
1110eda14cbcSMatt Macy 	if (reason == VDEV_LABEL_SPARE ||
1111eda14cbcSMatt Macy 	    (reason == VDEV_LABEL_REMOVE && vd->vdev_isspare)) {
1112eda14cbcSMatt Macy 		/*
1113eda14cbcSMatt Macy 		 * For inactive hot spares, we generate a special label that
1114eda14cbcSMatt Macy 		 * identifies as a mutually shared hot spare.  We write the
1115eda14cbcSMatt Macy 		 * label if we are adding a hot spare, or if we are removing an
1116eda14cbcSMatt Macy 		 * active hot spare (in which case we want to revert the
1117eda14cbcSMatt Macy 		 * labels).
1118eda14cbcSMatt Macy 		 */
1119eda14cbcSMatt Macy 		VERIFY(nvlist_alloc(&label, NV_UNIQUE_NAME, KM_SLEEP) == 0);
1120eda14cbcSMatt Macy 
1121eda14cbcSMatt Macy 		VERIFY(nvlist_add_uint64(label, ZPOOL_CONFIG_VERSION,
1122eda14cbcSMatt Macy 		    spa_version(spa)) == 0);
1123eda14cbcSMatt Macy 		VERIFY(nvlist_add_uint64(label, ZPOOL_CONFIG_POOL_STATE,
1124eda14cbcSMatt Macy 		    POOL_STATE_SPARE) == 0);
1125eda14cbcSMatt Macy 		VERIFY(nvlist_add_uint64(label, ZPOOL_CONFIG_GUID,
1126eda14cbcSMatt Macy 		    vd->vdev_guid) == 0);
1127eda14cbcSMatt Macy 	} else if (reason == VDEV_LABEL_L2CACHE ||
1128eda14cbcSMatt Macy 	    (reason == VDEV_LABEL_REMOVE && vd->vdev_isl2cache)) {
1129eda14cbcSMatt Macy 		/*
1130eda14cbcSMatt Macy 		 * For level 2 ARC devices, add a special label.
1131eda14cbcSMatt Macy 		 */
1132eda14cbcSMatt Macy 		VERIFY(nvlist_alloc(&label, NV_UNIQUE_NAME, KM_SLEEP) == 0);
1133eda14cbcSMatt Macy 
1134eda14cbcSMatt Macy 		VERIFY(nvlist_add_uint64(label, ZPOOL_CONFIG_VERSION,
1135eda14cbcSMatt Macy 		    spa_version(spa)) == 0);
1136eda14cbcSMatt Macy 		VERIFY(nvlist_add_uint64(label, ZPOOL_CONFIG_POOL_STATE,
1137eda14cbcSMatt Macy 		    POOL_STATE_L2CACHE) == 0);
1138eda14cbcSMatt Macy 		VERIFY(nvlist_add_uint64(label, ZPOOL_CONFIG_GUID,
1139eda14cbcSMatt Macy 		    vd->vdev_guid) == 0);
1140eda14cbcSMatt Macy 	} else {
1141eda14cbcSMatt Macy 		uint64_t txg = 0ULL;
1142eda14cbcSMatt Macy 
1143eda14cbcSMatt Macy 		if (reason == VDEV_LABEL_SPLIT)
1144eda14cbcSMatt Macy 			txg = spa->spa_uberblock.ub_txg;
1145eda14cbcSMatt Macy 		label = spa_config_generate(spa, vd, txg, B_FALSE);
1146eda14cbcSMatt Macy 
1147eda14cbcSMatt Macy 		/*
1148eda14cbcSMatt Macy 		 * Add our creation time.  This allows us to detect multiple
1149eda14cbcSMatt Macy 		 * vdev uses as described above, and automatically expires if we
1150eda14cbcSMatt Macy 		 * fail.
1151eda14cbcSMatt Macy 		 */
1152eda14cbcSMatt Macy 		VERIFY(nvlist_add_uint64(label, ZPOOL_CONFIG_CREATE_TXG,
1153eda14cbcSMatt Macy 		    crtxg) == 0);
1154eda14cbcSMatt Macy 	}
1155eda14cbcSMatt Macy 
1156eda14cbcSMatt Macy 	buf = vp->vp_nvlist;
1157eda14cbcSMatt Macy 	buflen = sizeof (vp->vp_nvlist);
1158eda14cbcSMatt Macy 
1159eda14cbcSMatt Macy 	error = nvlist_pack(label, &buf, &buflen, NV_ENCODE_XDR, KM_SLEEP);
1160eda14cbcSMatt Macy 	if (error != 0) {
1161eda14cbcSMatt Macy 		nvlist_free(label);
1162eda14cbcSMatt Macy 		abd_free(vp_abd);
1163eda14cbcSMatt Macy 		/* EFAULT means nvlist_pack ran out of room */
1164eda14cbcSMatt Macy 		return (SET_ERROR(error == EFAULT ? ENAMETOOLONG : EINVAL));
1165eda14cbcSMatt Macy 	}
1166eda14cbcSMatt Macy 
1167eda14cbcSMatt Macy 	/*
1168eda14cbcSMatt Macy 	 * Initialize uberblock template.
1169eda14cbcSMatt Macy 	 */
1170eda14cbcSMatt Macy 	ub_abd = abd_alloc_linear(VDEV_UBERBLOCK_RING, B_TRUE);
1171eda14cbcSMatt Macy 	abd_zero(ub_abd, VDEV_UBERBLOCK_RING);
1172eda14cbcSMatt Macy 	abd_copy_from_buf(ub_abd, &spa->spa_uberblock, sizeof (uberblock_t));
1173eda14cbcSMatt Macy 	ub = abd_to_buf(ub_abd);
1174eda14cbcSMatt Macy 	ub->ub_txg = 0;
1175eda14cbcSMatt Macy 
1176eda14cbcSMatt Macy 	/* Initialize the 2nd padding area. */
1177eda14cbcSMatt Macy 	bootenv = abd_alloc_for_io(VDEV_PAD_SIZE, B_TRUE);
1178eda14cbcSMatt Macy 	abd_zero(bootenv, VDEV_PAD_SIZE);
1179eda14cbcSMatt Macy 
1180eda14cbcSMatt Macy 	/*
1181eda14cbcSMatt Macy 	 * Write everything in parallel.
1182eda14cbcSMatt Macy 	 */
1183eda14cbcSMatt Macy retry:
1184eda14cbcSMatt Macy 	zio = zio_root(spa, NULL, NULL, flags);
1185eda14cbcSMatt Macy 
1186eda14cbcSMatt Macy 	for (int l = 0; l < VDEV_LABELS; l++) {
1187eda14cbcSMatt Macy 
1188eda14cbcSMatt Macy 		vdev_label_write(zio, vd, l, vp_abd,
1189eda14cbcSMatt Macy 		    offsetof(vdev_label_t, vl_vdev_phys),
1190eda14cbcSMatt Macy 		    sizeof (vdev_phys_t), NULL, NULL, flags);
1191eda14cbcSMatt Macy 
1192eda14cbcSMatt Macy 		/*
1193eda14cbcSMatt Macy 		 * Skip the 1st padding area.
1194eda14cbcSMatt Macy 		 * Zero out the 2nd padding area where it might have
1195eda14cbcSMatt Macy 		 * left over data from previous filesystem format.
1196eda14cbcSMatt Macy 		 */
1197eda14cbcSMatt Macy 		vdev_label_write(zio, vd, l, bootenv,
1198eda14cbcSMatt Macy 		    offsetof(vdev_label_t, vl_be),
1199eda14cbcSMatt Macy 		    VDEV_PAD_SIZE, NULL, NULL, flags);
1200eda14cbcSMatt Macy 
1201eda14cbcSMatt Macy 		vdev_label_write(zio, vd, l, ub_abd,
1202eda14cbcSMatt Macy 		    offsetof(vdev_label_t, vl_uberblock),
1203eda14cbcSMatt Macy 		    VDEV_UBERBLOCK_RING, NULL, NULL, flags);
1204eda14cbcSMatt Macy 	}
1205eda14cbcSMatt Macy 
1206eda14cbcSMatt Macy 	error = zio_wait(zio);
1207eda14cbcSMatt Macy 
1208eda14cbcSMatt Macy 	if (error != 0 && !(flags & ZIO_FLAG_TRYHARD)) {
1209eda14cbcSMatt Macy 		flags |= ZIO_FLAG_TRYHARD;
1210eda14cbcSMatt Macy 		goto retry;
1211eda14cbcSMatt Macy 	}
1212eda14cbcSMatt Macy 
1213eda14cbcSMatt Macy 	nvlist_free(label);
1214eda14cbcSMatt Macy 	abd_free(bootenv);
1215eda14cbcSMatt Macy 	abd_free(ub_abd);
1216eda14cbcSMatt Macy 	abd_free(vp_abd);
1217eda14cbcSMatt Macy 
1218eda14cbcSMatt Macy 	/*
1219eda14cbcSMatt Macy 	 * If this vdev hasn't been previously identified as a spare, then we
1220eda14cbcSMatt Macy 	 * mark it as such only if a) we are labeling it as a spare, or b) it
1221eda14cbcSMatt Macy 	 * exists as a spare elsewhere in the system.  Do the same for
1222eda14cbcSMatt Macy 	 * level 2 ARC devices.
1223eda14cbcSMatt Macy 	 */
1224eda14cbcSMatt Macy 	if (error == 0 && !vd->vdev_isspare &&
1225eda14cbcSMatt Macy 	    (reason == VDEV_LABEL_SPARE ||
1226eda14cbcSMatt Macy 	    spa_spare_exists(vd->vdev_guid, NULL, NULL)))
1227eda14cbcSMatt Macy 		spa_spare_add(vd);
1228eda14cbcSMatt Macy 
1229eda14cbcSMatt Macy 	if (error == 0 && !vd->vdev_isl2cache &&
1230eda14cbcSMatt Macy 	    (reason == VDEV_LABEL_L2CACHE ||
1231eda14cbcSMatt Macy 	    spa_l2cache_exists(vd->vdev_guid, NULL)))
1232eda14cbcSMatt Macy 		spa_l2cache_add(vd);
1233eda14cbcSMatt Macy 
1234eda14cbcSMatt Macy 	return (error);
1235eda14cbcSMatt Macy }
1236eda14cbcSMatt Macy 
1237eda14cbcSMatt Macy /*
1238eda14cbcSMatt Macy  * Done callback for vdev_label_read_bootenv_impl. If this is the first
1239eda14cbcSMatt Macy  * callback to finish, store our abd in the callback pointer. Otherwise, we
1240eda14cbcSMatt Macy  * just free our abd and return.
1241eda14cbcSMatt Macy  */
1242eda14cbcSMatt Macy static void
1243eda14cbcSMatt Macy vdev_label_read_bootenv_done(zio_t *zio)
1244eda14cbcSMatt Macy {
1245eda14cbcSMatt Macy 	zio_t *rio = zio->io_private;
1246eda14cbcSMatt Macy 	abd_t **cbp = rio->io_private;
1247eda14cbcSMatt Macy 
1248eda14cbcSMatt Macy 	ASSERT3U(zio->io_size, ==, VDEV_PAD_SIZE);
1249eda14cbcSMatt Macy 
1250eda14cbcSMatt Macy 	if (zio->io_error == 0) {
1251eda14cbcSMatt Macy 		mutex_enter(&rio->io_lock);
1252eda14cbcSMatt Macy 		if (*cbp == NULL) {
1253eda14cbcSMatt Macy 			/* Will free this buffer in vdev_label_read_bootenv. */
1254eda14cbcSMatt Macy 			*cbp = zio->io_abd;
1255eda14cbcSMatt Macy 		} else {
1256eda14cbcSMatt Macy 			abd_free(zio->io_abd);
1257eda14cbcSMatt Macy 		}
1258eda14cbcSMatt Macy 		mutex_exit(&rio->io_lock);
1259eda14cbcSMatt Macy 	} else {
1260eda14cbcSMatt Macy 		abd_free(zio->io_abd);
1261eda14cbcSMatt Macy 	}
1262eda14cbcSMatt Macy }
1263eda14cbcSMatt Macy 
1264eda14cbcSMatt Macy static void
1265eda14cbcSMatt Macy vdev_label_read_bootenv_impl(zio_t *zio, vdev_t *vd, int flags)
1266eda14cbcSMatt Macy {
1267eda14cbcSMatt Macy 	for (int c = 0; c < vd->vdev_children; c++)
1268eda14cbcSMatt Macy 		vdev_label_read_bootenv_impl(zio, vd->vdev_child[c], flags);
1269eda14cbcSMatt Macy 
1270eda14cbcSMatt Macy 	/*
1271eda14cbcSMatt Macy 	 * We just use the first label that has a correct checksum; the
1272eda14cbcSMatt Macy 	 * bootloader should have rewritten them all to be the same on boot,
1273eda14cbcSMatt Macy 	 * and any changes we made since boot have been the same across all
1274eda14cbcSMatt Macy 	 * labels.
1275eda14cbcSMatt Macy 	 */
1276eda14cbcSMatt Macy 	if (vd->vdev_ops->vdev_op_leaf && vdev_readable(vd)) {
12772c48331dSMatt Macy 		for (int l = 0; l < VDEV_LABELS; l++) {
1278eda14cbcSMatt Macy 			vdev_label_read(zio, vd, l,
1279eda14cbcSMatt Macy 			    abd_alloc_linear(VDEV_PAD_SIZE, B_FALSE),
1280eda14cbcSMatt Macy 			    offsetof(vdev_label_t, vl_be), VDEV_PAD_SIZE,
1281eda14cbcSMatt Macy 			    vdev_label_read_bootenv_done, zio, flags);
1282eda14cbcSMatt Macy 		}
1283eda14cbcSMatt Macy 	}
1284eda14cbcSMatt Macy }
1285eda14cbcSMatt Macy 
1286eda14cbcSMatt Macy int
12872c48331dSMatt Macy vdev_label_read_bootenv(vdev_t *rvd, nvlist_t *bootenv)
1288eda14cbcSMatt Macy {
12892c48331dSMatt Macy 	nvlist_t *config;
1290eda14cbcSMatt Macy 	spa_t *spa = rvd->vdev_spa;
1291eda14cbcSMatt Macy 	abd_t *abd = NULL;
1292eda14cbcSMatt Macy 	int flags = ZIO_FLAG_CONFIG_WRITER | ZIO_FLAG_CANFAIL |
1293eda14cbcSMatt Macy 	    ZIO_FLAG_SPECULATIVE | ZIO_FLAG_TRYHARD;
1294eda14cbcSMatt Macy 
12952c48331dSMatt Macy 	ASSERT(bootenv);
1296eda14cbcSMatt Macy 	ASSERT(spa_config_held(spa, SCL_ALL, RW_WRITER) == SCL_ALL);
1297eda14cbcSMatt Macy 
1298eda14cbcSMatt Macy 	zio_t *zio = zio_root(spa, NULL, &abd, flags);
1299eda14cbcSMatt Macy 	vdev_label_read_bootenv_impl(zio, rvd, flags);
1300eda14cbcSMatt Macy 	int err = zio_wait(zio);
1301eda14cbcSMatt Macy 
1302eda14cbcSMatt Macy 	if (abd != NULL) {
13032c48331dSMatt Macy 		char *buf;
1304eda14cbcSMatt Macy 		vdev_boot_envblock_t *vbe = abd_to_buf(abd);
13052c48331dSMatt Macy 
13062c48331dSMatt Macy 		vbe->vbe_version = ntohll(vbe->vbe_version);
13072c48331dSMatt Macy 		switch (vbe->vbe_version) {
13082c48331dSMatt Macy 		case VB_RAW:
13092c48331dSMatt Macy 			/*
13102c48331dSMatt Macy 			 * if we have textual data in vbe_bootenv, create nvlist
13112c48331dSMatt Macy 			 * with key "envmap".
13122c48331dSMatt Macy 			 */
13132c48331dSMatt Macy 			fnvlist_add_uint64(bootenv, BOOTENV_VERSION, VB_RAW);
1314eda14cbcSMatt Macy 			vbe->vbe_bootenv[sizeof (vbe->vbe_bootenv) - 1] = '\0';
13152c48331dSMatt Macy 			fnvlist_add_string(bootenv, GRUB_ENVMAP,
13162c48331dSMatt Macy 			    vbe->vbe_bootenv);
13172c48331dSMatt Macy 			break;
13182c48331dSMatt Macy 
13192c48331dSMatt Macy 		case VB_NVLIST:
13202c48331dSMatt Macy 			err = nvlist_unpack(vbe->vbe_bootenv,
13212c48331dSMatt Macy 			    sizeof (vbe->vbe_bootenv), &config, 0);
13222c48331dSMatt Macy 			if (err == 0) {
13232c48331dSMatt Macy 				fnvlist_merge(bootenv, config);
13242c48331dSMatt Macy 				nvlist_free(config);
13252c48331dSMatt Macy 				break;
13262c48331dSMatt Macy 			}
132753b70c86SMartin Matuska 			fallthrough;
13282c48331dSMatt Macy 		default:
13292c48331dSMatt Macy 			/* Check for FreeBSD zfs bootonce command string */
13302c48331dSMatt Macy 			buf = abd_to_buf(abd);
13312c48331dSMatt Macy 			if (*buf == '\0') {
13322c48331dSMatt Macy 				fnvlist_add_uint64(bootenv, BOOTENV_VERSION,
13332c48331dSMatt Macy 				    VB_NVLIST);
13342c48331dSMatt Macy 				break;
13352c48331dSMatt Macy 			}
13362c48331dSMatt Macy 			fnvlist_add_string(bootenv, FREEBSD_BOOTONCE, buf);
13372c48331dSMatt Macy 		}
13382c48331dSMatt Macy 
13392c48331dSMatt Macy 		/*
13402c48331dSMatt Macy 		 * abd was allocated in vdev_label_read_bootenv_impl()
13412c48331dSMatt Macy 		 */
1342eda14cbcSMatt Macy 		abd_free(abd);
13432c48331dSMatt Macy 		/*
13442c48331dSMatt Macy 		 * If we managed to read any successfully,
13452c48331dSMatt Macy 		 * return success.
13462c48331dSMatt Macy 		 */
1347eda14cbcSMatt Macy 		return (0);
1348eda14cbcSMatt Macy 	}
1349eda14cbcSMatt Macy 	return (err);
1350eda14cbcSMatt Macy }
1351eda14cbcSMatt Macy 
1352eda14cbcSMatt Macy int
13532c48331dSMatt Macy vdev_label_write_bootenv(vdev_t *vd, nvlist_t *env)
1354eda14cbcSMatt Macy {
1355eda14cbcSMatt Macy 	zio_t *zio;
1356eda14cbcSMatt Macy 	spa_t *spa = vd->vdev_spa;
1357eda14cbcSMatt Macy 	vdev_boot_envblock_t *bootenv;
1358eda14cbcSMatt Macy 	int flags = ZIO_FLAG_CONFIG_WRITER | ZIO_FLAG_CANFAIL;
13592c48331dSMatt Macy 	int error;
13602c48331dSMatt Macy 	size_t nvsize;
13612c48331dSMatt Macy 	char *nvbuf;
1362eda14cbcSMatt Macy 
13632c48331dSMatt Macy 	error = nvlist_size(env, &nvsize, NV_ENCODE_XDR);
13642c48331dSMatt Macy 	if (error != 0)
13652c48331dSMatt Macy 		return (SET_ERROR(error));
13662c48331dSMatt Macy 
13672c48331dSMatt Macy 	if (nvsize >= sizeof (bootenv->vbe_bootenv)) {
1368eda14cbcSMatt Macy 		return (SET_ERROR(E2BIG));
1369eda14cbcSMatt Macy 	}
1370eda14cbcSMatt Macy 
1371eda14cbcSMatt Macy 	ASSERT(spa_config_held(spa, SCL_ALL, RW_WRITER) == SCL_ALL);
1372eda14cbcSMatt Macy 
13732c48331dSMatt Macy 	error = ENXIO;
1374eda14cbcSMatt Macy 	for (int c = 0; c < vd->vdev_children; c++) {
13752c48331dSMatt Macy 		int child_err;
13762c48331dSMatt Macy 
13772c48331dSMatt Macy 		child_err = vdev_label_write_bootenv(vd->vdev_child[c], env);
1378eda14cbcSMatt Macy 		/*
1379eda14cbcSMatt Macy 		 * As long as any of the disks managed to write all of their
1380eda14cbcSMatt Macy 		 * labels successfully, return success.
1381eda14cbcSMatt Macy 		 */
1382eda14cbcSMatt Macy 		if (child_err == 0)
1383eda14cbcSMatt Macy 			error = child_err;
1384eda14cbcSMatt Macy 	}
1385eda14cbcSMatt Macy 
1386eda14cbcSMatt Macy 	if (!vd->vdev_ops->vdev_op_leaf || vdev_is_dead(vd) ||
1387eda14cbcSMatt Macy 	    !vdev_writeable(vd)) {
1388eda14cbcSMatt Macy 		return (error);
1389eda14cbcSMatt Macy 	}
1390eda14cbcSMatt Macy 	ASSERT3U(sizeof (*bootenv), ==, VDEV_PAD_SIZE);
1391eda14cbcSMatt Macy 	abd_t *abd = abd_alloc_for_io(VDEV_PAD_SIZE, B_TRUE);
1392eda14cbcSMatt Macy 	abd_zero(abd, VDEV_PAD_SIZE);
1393eda14cbcSMatt Macy 
13942c48331dSMatt Macy 	bootenv = abd_borrow_buf_copy(abd, VDEV_PAD_SIZE);
13952c48331dSMatt Macy 	nvbuf = bootenv->vbe_bootenv;
13962c48331dSMatt Macy 	nvsize = sizeof (bootenv->vbe_bootenv);
13972c48331dSMatt Macy 
13982c48331dSMatt Macy 	bootenv->vbe_version = fnvlist_lookup_uint64(env, BOOTENV_VERSION);
13992c48331dSMatt Macy 	switch (bootenv->vbe_version) {
14002c48331dSMatt Macy 	case VB_RAW:
14012c48331dSMatt Macy 		if (nvlist_lookup_string(env, GRUB_ENVMAP, &nvbuf) == 0) {
14022c48331dSMatt Macy 			(void) strlcpy(bootenv->vbe_bootenv, nvbuf, nvsize);
14032c48331dSMatt Macy 		}
14042c48331dSMatt Macy 		error = 0;
14052c48331dSMatt Macy 		break;
14062c48331dSMatt Macy 
14072c48331dSMatt Macy 	case VB_NVLIST:
14082c48331dSMatt Macy 		error = nvlist_pack(env, &nvbuf, &nvsize, NV_ENCODE_XDR,
14092c48331dSMatt Macy 		    KM_SLEEP);
14102c48331dSMatt Macy 		break;
14112c48331dSMatt Macy 
14122c48331dSMatt Macy 	default:
14132c48331dSMatt Macy 		error = EINVAL;
14142c48331dSMatt Macy 		break;
14152c48331dSMatt Macy 	}
14162c48331dSMatt Macy 
14172c48331dSMatt Macy 	if (error == 0) {
14182c48331dSMatt Macy 		bootenv->vbe_version = htonll(bootenv->vbe_version);
1419eda14cbcSMatt Macy 		abd_return_buf_copy(abd, bootenv, VDEV_PAD_SIZE);
14202c48331dSMatt Macy 	} else {
14212c48331dSMatt Macy 		abd_free(abd);
14222c48331dSMatt Macy 		return (SET_ERROR(error));
14232c48331dSMatt Macy 	}
1424eda14cbcSMatt Macy 
1425eda14cbcSMatt Macy retry:
1426eda14cbcSMatt Macy 	zio = zio_root(spa, NULL, NULL, flags);
14272c48331dSMatt Macy 	for (int l = 0; l < VDEV_LABELS; l++) {
1428eda14cbcSMatt Macy 		vdev_label_write(zio, vd, l, abd,
1429eda14cbcSMatt Macy 		    offsetof(vdev_label_t, vl_be),
1430eda14cbcSMatt Macy 		    VDEV_PAD_SIZE, NULL, NULL, flags);
1431eda14cbcSMatt Macy 	}
1432eda14cbcSMatt Macy 
1433eda14cbcSMatt Macy 	error = zio_wait(zio);
1434eda14cbcSMatt Macy 	if (error != 0 && !(flags & ZIO_FLAG_TRYHARD)) {
1435eda14cbcSMatt Macy 		flags |= ZIO_FLAG_TRYHARD;
1436eda14cbcSMatt Macy 		goto retry;
1437eda14cbcSMatt Macy 	}
1438eda14cbcSMatt Macy 
1439eda14cbcSMatt Macy 	abd_free(abd);
1440eda14cbcSMatt Macy 	return (error);
1441eda14cbcSMatt Macy }
1442eda14cbcSMatt Macy 
1443eda14cbcSMatt Macy /*
1444eda14cbcSMatt Macy  * ==========================================================================
1445eda14cbcSMatt Macy  * uberblock load/sync
1446eda14cbcSMatt Macy  * ==========================================================================
1447eda14cbcSMatt Macy  */
1448eda14cbcSMatt Macy 
1449eda14cbcSMatt Macy /*
1450eda14cbcSMatt Macy  * Consider the following situation: txg is safely synced to disk.  We've
1451eda14cbcSMatt Macy  * written the first uberblock for txg + 1, and then we lose power.  When we
1452eda14cbcSMatt Macy  * come back up, we fail to see the uberblock for txg + 1 because, say,
1453eda14cbcSMatt Macy  * it was on a mirrored device and the replica to which we wrote txg + 1
1454eda14cbcSMatt Macy  * is now offline.  If we then make some changes and sync txg + 1, and then
1455eda14cbcSMatt Macy  * the missing replica comes back, then for a few seconds we'll have two
1456eda14cbcSMatt Macy  * conflicting uberblocks on disk with the same txg.  The solution is simple:
1457eda14cbcSMatt Macy  * among uberblocks with equal txg, choose the one with the latest timestamp.
1458eda14cbcSMatt Macy  */
1459eda14cbcSMatt Macy static int
1460eda14cbcSMatt Macy vdev_uberblock_compare(const uberblock_t *ub1, const uberblock_t *ub2)
1461eda14cbcSMatt Macy {
1462eda14cbcSMatt Macy 	int cmp = TREE_CMP(ub1->ub_txg, ub2->ub_txg);
1463eda14cbcSMatt Macy 
1464eda14cbcSMatt Macy 	if (likely(cmp))
1465eda14cbcSMatt Macy 		return (cmp);
1466eda14cbcSMatt Macy 
1467eda14cbcSMatt Macy 	cmp = TREE_CMP(ub1->ub_timestamp, ub2->ub_timestamp);
1468eda14cbcSMatt Macy 	if (likely(cmp))
1469eda14cbcSMatt Macy 		return (cmp);
1470eda14cbcSMatt Macy 
1471eda14cbcSMatt Macy 	/*
1472eda14cbcSMatt Macy 	 * If MMP_VALID(ub) && MMP_SEQ_VALID(ub) then the host has an MMP-aware
1473180f8225SMatt Macy 	 * ZFS, e.g. OpenZFS >= 0.7.
1474eda14cbcSMatt Macy 	 *
1475eda14cbcSMatt Macy 	 * If one ub has MMP and the other does not, they were written by
1476eda14cbcSMatt Macy 	 * different hosts, which matters for MMP.  So we treat no MMP/no SEQ as
1477eda14cbcSMatt Macy 	 * a 0 value.
1478eda14cbcSMatt Macy 	 *
1479eda14cbcSMatt Macy 	 * Since timestamp and txg are the same if we get this far, either is
1480eda14cbcSMatt Macy 	 * acceptable for importing the pool.
1481eda14cbcSMatt Macy 	 */
1482eda14cbcSMatt Macy 	unsigned int seq1 = 0;
1483eda14cbcSMatt Macy 	unsigned int seq2 = 0;
1484eda14cbcSMatt Macy 
1485eda14cbcSMatt Macy 	if (MMP_VALID(ub1) && MMP_SEQ_VALID(ub1))
1486eda14cbcSMatt Macy 		seq1 = MMP_SEQ(ub1);
1487eda14cbcSMatt Macy 
1488eda14cbcSMatt Macy 	if (MMP_VALID(ub2) && MMP_SEQ_VALID(ub2))
1489eda14cbcSMatt Macy 		seq2 = MMP_SEQ(ub2);
1490eda14cbcSMatt Macy 
1491eda14cbcSMatt Macy 	return (TREE_CMP(seq1, seq2));
1492eda14cbcSMatt Macy }
1493eda14cbcSMatt Macy 
1494eda14cbcSMatt Macy struct ubl_cbdata {
1495eda14cbcSMatt Macy 	uberblock_t	*ubl_ubbest;	/* Best uberblock */
1496eda14cbcSMatt Macy 	vdev_t		*ubl_vd;	/* vdev associated with the above */
1497eda14cbcSMatt Macy };
1498eda14cbcSMatt Macy 
1499eda14cbcSMatt Macy static void
1500eda14cbcSMatt Macy vdev_uberblock_load_done(zio_t *zio)
1501eda14cbcSMatt Macy {
1502eda14cbcSMatt Macy 	vdev_t *vd = zio->io_vd;
1503eda14cbcSMatt Macy 	spa_t *spa = zio->io_spa;
1504eda14cbcSMatt Macy 	zio_t *rio = zio->io_private;
1505eda14cbcSMatt Macy 	uberblock_t *ub = abd_to_buf(zio->io_abd);
1506eda14cbcSMatt Macy 	struct ubl_cbdata *cbp = rio->io_private;
1507eda14cbcSMatt Macy 
1508eda14cbcSMatt Macy 	ASSERT3U(zio->io_size, ==, VDEV_UBERBLOCK_SIZE(vd));
1509eda14cbcSMatt Macy 
1510eda14cbcSMatt Macy 	if (zio->io_error == 0 && uberblock_verify(ub) == 0) {
1511eda14cbcSMatt Macy 		mutex_enter(&rio->io_lock);
1512eda14cbcSMatt Macy 		if (ub->ub_txg <= spa->spa_load_max_txg &&
1513eda14cbcSMatt Macy 		    vdev_uberblock_compare(ub, cbp->ubl_ubbest) > 0) {
1514eda14cbcSMatt Macy 			/*
1515eda14cbcSMatt Macy 			 * Keep track of the vdev in which this uberblock
1516eda14cbcSMatt Macy 			 * was found. We will use this information later
1517eda14cbcSMatt Macy 			 * to obtain the config nvlist associated with
1518eda14cbcSMatt Macy 			 * this uberblock.
1519eda14cbcSMatt Macy 			 */
1520eda14cbcSMatt Macy 			*cbp->ubl_ubbest = *ub;
1521eda14cbcSMatt Macy 			cbp->ubl_vd = vd;
1522eda14cbcSMatt Macy 		}
1523eda14cbcSMatt Macy 		mutex_exit(&rio->io_lock);
1524eda14cbcSMatt Macy 	}
1525eda14cbcSMatt Macy 
1526eda14cbcSMatt Macy 	abd_free(zio->io_abd);
1527eda14cbcSMatt Macy }
1528eda14cbcSMatt Macy 
1529eda14cbcSMatt Macy static void
1530eda14cbcSMatt Macy vdev_uberblock_load_impl(zio_t *zio, vdev_t *vd, int flags,
1531eda14cbcSMatt Macy     struct ubl_cbdata *cbp)
1532eda14cbcSMatt Macy {
1533eda14cbcSMatt Macy 	for (int c = 0; c < vd->vdev_children; c++)
1534eda14cbcSMatt Macy 		vdev_uberblock_load_impl(zio, vd->vdev_child[c], flags, cbp);
1535eda14cbcSMatt Macy 
15367877fdebSMatt Macy 	if (vd->vdev_ops->vdev_op_leaf && vdev_readable(vd) &&
15377877fdebSMatt Macy 	    vd->vdev_ops != &vdev_draid_spare_ops) {
1538eda14cbcSMatt Macy 		for (int l = 0; l < VDEV_LABELS; l++) {
1539eda14cbcSMatt Macy 			for (int n = 0; n < VDEV_UBERBLOCK_COUNT(vd); n++) {
1540eda14cbcSMatt Macy 				vdev_label_read(zio, vd, l,
1541eda14cbcSMatt Macy 				    abd_alloc_linear(VDEV_UBERBLOCK_SIZE(vd),
1542eda14cbcSMatt Macy 				    B_TRUE), VDEV_UBERBLOCK_OFFSET(vd, n),
1543eda14cbcSMatt Macy 				    VDEV_UBERBLOCK_SIZE(vd),
1544eda14cbcSMatt Macy 				    vdev_uberblock_load_done, zio, flags);
1545eda14cbcSMatt Macy 			}
1546eda14cbcSMatt Macy 		}
1547eda14cbcSMatt Macy 	}
1548eda14cbcSMatt Macy }
1549eda14cbcSMatt Macy 
1550eda14cbcSMatt Macy /*
1551eda14cbcSMatt Macy  * Reads the 'best' uberblock from disk along with its associated
1552eda14cbcSMatt Macy  * configuration. First, we read the uberblock array of each label of each
1553eda14cbcSMatt Macy  * vdev, keeping track of the uberblock with the highest txg in each array.
1554eda14cbcSMatt Macy  * Then, we read the configuration from the same vdev as the best uberblock.
1555eda14cbcSMatt Macy  */
1556eda14cbcSMatt Macy void
1557eda14cbcSMatt Macy vdev_uberblock_load(vdev_t *rvd, uberblock_t *ub, nvlist_t **config)
1558eda14cbcSMatt Macy {
1559eda14cbcSMatt Macy 	zio_t *zio;
1560eda14cbcSMatt Macy 	spa_t *spa = rvd->vdev_spa;
1561eda14cbcSMatt Macy 	struct ubl_cbdata cb;
1562eda14cbcSMatt Macy 	int flags = ZIO_FLAG_CONFIG_WRITER | ZIO_FLAG_CANFAIL |
1563eda14cbcSMatt Macy 	    ZIO_FLAG_SPECULATIVE | ZIO_FLAG_TRYHARD;
1564eda14cbcSMatt Macy 
1565eda14cbcSMatt Macy 	ASSERT(ub);
1566eda14cbcSMatt Macy 	ASSERT(config);
1567eda14cbcSMatt Macy 
1568eda14cbcSMatt Macy 	bzero(ub, sizeof (uberblock_t));
1569eda14cbcSMatt Macy 	*config = NULL;
1570eda14cbcSMatt Macy 
1571eda14cbcSMatt Macy 	cb.ubl_ubbest = ub;
1572eda14cbcSMatt Macy 	cb.ubl_vd = NULL;
1573eda14cbcSMatt Macy 
1574eda14cbcSMatt Macy 	spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER);
1575eda14cbcSMatt Macy 	zio = zio_root(spa, NULL, &cb, flags);
1576eda14cbcSMatt Macy 	vdev_uberblock_load_impl(zio, rvd, flags, &cb);
1577eda14cbcSMatt Macy 	(void) zio_wait(zio);
1578eda14cbcSMatt Macy 
1579eda14cbcSMatt Macy 	/*
1580eda14cbcSMatt Macy 	 * It's possible that the best uberblock was discovered on a label
1581eda14cbcSMatt Macy 	 * that has a configuration which was written in a future txg.
1582eda14cbcSMatt Macy 	 * Search all labels on this vdev to find the configuration that
1583eda14cbcSMatt Macy 	 * matches the txg for our uberblock.
1584eda14cbcSMatt Macy 	 */
1585eda14cbcSMatt Macy 	if (cb.ubl_vd != NULL) {
1586eda14cbcSMatt Macy 		vdev_dbgmsg(cb.ubl_vd, "best uberblock found for spa %s. "
1587eda14cbcSMatt Macy 		    "txg %llu", spa->spa_name, (u_longlong_t)ub->ub_txg);
1588eda14cbcSMatt Macy 
1589eda14cbcSMatt Macy 		*config = vdev_label_read_config(cb.ubl_vd, ub->ub_txg);
1590eda14cbcSMatt Macy 		if (*config == NULL && spa->spa_extreme_rewind) {
1591eda14cbcSMatt Macy 			vdev_dbgmsg(cb.ubl_vd, "failed to read label config. "
1592eda14cbcSMatt Macy 			    "Trying again without txg restrictions.");
1593eda14cbcSMatt Macy 			*config = vdev_label_read_config(cb.ubl_vd, UINT64_MAX);
1594eda14cbcSMatt Macy 		}
1595eda14cbcSMatt Macy 		if (*config == NULL) {
1596eda14cbcSMatt Macy 			vdev_dbgmsg(cb.ubl_vd, "failed to read label config");
1597eda14cbcSMatt Macy 		}
1598eda14cbcSMatt Macy 	}
1599eda14cbcSMatt Macy 	spa_config_exit(spa, SCL_ALL, FTAG);
1600eda14cbcSMatt Macy }
1601eda14cbcSMatt Macy 
1602eda14cbcSMatt Macy /*
1603eda14cbcSMatt Macy  * For use when a leaf vdev is expanded.
1604eda14cbcSMatt Macy  * The location of labels 2 and 3 changed, and at the new location the
1605eda14cbcSMatt Macy  * uberblock rings are either empty or contain garbage.  The sync will write
1606eda14cbcSMatt Macy  * new configs there because the vdev is dirty, but expansion also needs the
1607eda14cbcSMatt Macy  * uberblock rings copied.  Read them from label 0 which did not move.
1608eda14cbcSMatt Macy  *
1609eda14cbcSMatt Macy  * Since the point is to populate labels {2,3} with valid uberblocks,
1610eda14cbcSMatt Macy  * we zero uberblocks we fail to read or which are not valid.
1611eda14cbcSMatt Macy  */
1612eda14cbcSMatt Macy 
1613eda14cbcSMatt Macy static void
1614eda14cbcSMatt Macy vdev_copy_uberblocks(vdev_t *vd)
1615eda14cbcSMatt Macy {
1616eda14cbcSMatt Macy 	abd_t *ub_abd;
1617eda14cbcSMatt Macy 	zio_t *write_zio;
1618eda14cbcSMatt Macy 	int locks = (SCL_L2ARC | SCL_ZIO);
1619eda14cbcSMatt Macy 	int flags = ZIO_FLAG_CONFIG_WRITER | ZIO_FLAG_CANFAIL |
1620eda14cbcSMatt Macy 	    ZIO_FLAG_SPECULATIVE;
1621eda14cbcSMatt Macy 
1622eda14cbcSMatt Macy 	ASSERT(spa_config_held(vd->vdev_spa, SCL_STATE, RW_READER) ==
1623eda14cbcSMatt Macy 	    SCL_STATE);
1624eda14cbcSMatt Macy 	ASSERT(vd->vdev_ops->vdev_op_leaf);
1625eda14cbcSMatt Macy 
16267877fdebSMatt Macy 	/*
16277877fdebSMatt Macy 	 * No uberblocks are stored on distributed spares, they may be
16287877fdebSMatt Macy 	 * safely skipped when expanding a leaf vdev.
16297877fdebSMatt Macy 	 */
16307877fdebSMatt Macy 	if (vd->vdev_ops == &vdev_draid_spare_ops)
16317877fdebSMatt Macy 		return;
16327877fdebSMatt Macy 
1633eda14cbcSMatt Macy 	spa_config_enter(vd->vdev_spa, locks, FTAG, RW_READER);
1634eda14cbcSMatt Macy 
1635eda14cbcSMatt Macy 	ub_abd = abd_alloc_linear(VDEV_UBERBLOCK_SIZE(vd), B_TRUE);
1636eda14cbcSMatt Macy 
1637eda14cbcSMatt Macy 	write_zio = zio_root(vd->vdev_spa, NULL, NULL, flags);
1638eda14cbcSMatt Macy 	for (int n = 0; n < VDEV_UBERBLOCK_COUNT(vd); n++) {
1639eda14cbcSMatt Macy 		const int src_label = 0;
1640eda14cbcSMatt Macy 		zio_t *zio;
1641eda14cbcSMatt Macy 
1642eda14cbcSMatt Macy 		zio = zio_root(vd->vdev_spa, NULL, NULL, flags);
1643eda14cbcSMatt Macy 		vdev_label_read(zio, vd, src_label, ub_abd,
1644eda14cbcSMatt Macy 		    VDEV_UBERBLOCK_OFFSET(vd, n), VDEV_UBERBLOCK_SIZE(vd),
1645eda14cbcSMatt Macy 		    NULL, NULL, flags);
1646eda14cbcSMatt Macy 
1647eda14cbcSMatt Macy 		if (zio_wait(zio) || uberblock_verify(abd_to_buf(ub_abd)))
1648eda14cbcSMatt Macy 			abd_zero(ub_abd, VDEV_UBERBLOCK_SIZE(vd));
1649eda14cbcSMatt Macy 
1650eda14cbcSMatt Macy 		for (int l = 2; l < VDEV_LABELS; l++)
1651eda14cbcSMatt Macy 			vdev_label_write(write_zio, vd, l, ub_abd,
1652eda14cbcSMatt Macy 			    VDEV_UBERBLOCK_OFFSET(vd, n),
1653eda14cbcSMatt Macy 			    VDEV_UBERBLOCK_SIZE(vd), NULL, NULL,
1654eda14cbcSMatt Macy 			    flags | ZIO_FLAG_DONT_PROPAGATE);
1655eda14cbcSMatt Macy 	}
1656eda14cbcSMatt Macy 	(void) zio_wait(write_zio);
1657eda14cbcSMatt Macy 
1658eda14cbcSMatt Macy 	spa_config_exit(vd->vdev_spa, locks, FTAG);
1659eda14cbcSMatt Macy 
1660eda14cbcSMatt Macy 	abd_free(ub_abd);
1661eda14cbcSMatt Macy }
1662eda14cbcSMatt Macy 
1663eda14cbcSMatt Macy /*
1664eda14cbcSMatt Macy  * On success, increment root zio's count of good writes.
1665eda14cbcSMatt Macy  * We only get credit for writes to known-visible vdevs; see spa_vdev_add().
1666eda14cbcSMatt Macy  */
1667eda14cbcSMatt Macy static void
1668eda14cbcSMatt Macy vdev_uberblock_sync_done(zio_t *zio)
1669eda14cbcSMatt Macy {
1670eda14cbcSMatt Macy 	uint64_t *good_writes = zio->io_private;
1671eda14cbcSMatt Macy 
1672eda14cbcSMatt Macy 	if (zio->io_error == 0 && zio->io_vd->vdev_top->vdev_ms_array != 0)
1673eda14cbcSMatt Macy 		atomic_inc_64(good_writes);
1674eda14cbcSMatt Macy }
1675eda14cbcSMatt Macy 
1676eda14cbcSMatt Macy /*
1677eda14cbcSMatt Macy  * Write the uberblock to all labels of all leaves of the specified vdev.
1678eda14cbcSMatt Macy  */
1679eda14cbcSMatt Macy static void
1680eda14cbcSMatt Macy vdev_uberblock_sync(zio_t *zio, uint64_t *good_writes,
1681eda14cbcSMatt Macy     uberblock_t *ub, vdev_t *vd, int flags)
1682eda14cbcSMatt Macy {
1683eda14cbcSMatt Macy 	for (uint64_t c = 0; c < vd->vdev_children; c++) {
1684eda14cbcSMatt Macy 		vdev_uberblock_sync(zio, good_writes,
1685eda14cbcSMatt Macy 		    ub, vd->vdev_child[c], flags);
1686eda14cbcSMatt Macy 	}
1687eda14cbcSMatt Macy 
1688eda14cbcSMatt Macy 	if (!vd->vdev_ops->vdev_op_leaf)
1689eda14cbcSMatt Macy 		return;
1690eda14cbcSMatt Macy 
1691eda14cbcSMatt Macy 	if (!vdev_writeable(vd))
1692eda14cbcSMatt Macy 		return;
1693eda14cbcSMatt Macy 
16947877fdebSMatt Macy 	/*
16957877fdebSMatt Macy 	 * There's no need to write uberblocks to a distributed spare, they
16967877fdebSMatt Macy 	 * are already stored on all the leaves of the parent dRAID.  For
16977877fdebSMatt Macy 	 * this same reason vdev_uberblock_load_impl() skips distributed
16987877fdebSMatt Macy 	 * spares when reading uberblocks.
16997877fdebSMatt Macy 	 */
17007877fdebSMatt Macy 	if (vd->vdev_ops == &vdev_draid_spare_ops)
17017877fdebSMatt Macy 		return;
17027877fdebSMatt Macy 
1703eda14cbcSMatt Macy 	/* If the vdev was expanded, need to copy uberblock rings. */
1704eda14cbcSMatt Macy 	if (vd->vdev_state == VDEV_STATE_HEALTHY &&
1705eda14cbcSMatt Macy 	    vd->vdev_copy_uberblocks == B_TRUE) {
1706eda14cbcSMatt Macy 		vdev_copy_uberblocks(vd);
1707eda14cbcSMatt Macy 		vd->vdev_copy_uberblocks = B_FALSE;
1708eda14cbcSMatt Macy 	}
1709eda14cbcSMatt Macy 
1710eda14cbcSMatt Macy 	int m = spa_multihost(vd->vdev_spa) ? MMP_BLOCKS_PER_LABEL : 0;
1711eda14cbcSMatt Macy 	int n = ub->ub_txg % (VDEV_UBERBLOCK_COUNT(vd) - m);
1712eda14cbcSMatt Macy 
1713eda14cbcSMatt Macy 	/* Copy the uberblock_t into the ABD */
1714eda14cbcSMatt Macy 	abd_t *ub_abd = abd_alloc_for_io(VDEV_UBERBLOCK_SIZE(vd), B_TRUE);
1715eda14cbcSMatt Macy 	abd_zero(ub_abd, VDEV_UBERBLOCK_SIZE(vd));
1716eda14cbcSMatt Macy 	abd_copy_from_buf(ub_abd, ub, sizeof (uberblock_t));
1717eda14cbcSMatt Macy 
1718eda14cbcSMatt Macy 	for (int l = 0; l < VDEV_LABELS; l++)
1719eda14cbcSMatt Macy 		vdev_label_write(zio, vd, l, ub_abd,
1720eda14cbcSMatt Macy 		    VDEV_UBERBLOCK_OFFSET(vd, n), VDEV_UBERBLOCK_SIZE(vd),
1721eda14cbcSMatt Macy 		    vdev_uberblock_sync_done, good_writes,
1722eda14cbcSMatt Macy 		    flags | ZIO_FLAG_DONT_PROPAGATE);
1723eda14cbcSMatt Macy 
1724eda14cbcSMatt Macy 	abd_free(ub_abd);
1725eda14cbcSMatt Macy }
1726eda14cbcSMatt Macy 
1727eda14cbcSMatt Macy /* Sync the uberblocks to all vdevs in svd[] */
1728eda14cbcSMatt Macy static int
1729eda14cbcSMatt Macy vdev_uberblock_sync_list(vdev_t **svd, int svdcount, uberblock_t *ub, int flags)
1730eda14cbcSMatt Macy {
1731eda14cbcSMatt Macy 	spa_t *spa = svd[0]->vdev_spa;
1732eda14cbcSMatt Macy 	zio_t *zio;
1733eda14cbcSMatt Macy 	uint64_t good_writes = 0;
1734eda14cbcSMatt Macy 
1735eda14cbcSMatt Macy 	zio = zio_root(spa, NULL, NULL, flags);
1736eda14cbcSMatt Macy 
1737eda14cbcSMatt Macy 	for (int v = 0; v < svdcount; v++)
1738eda14cbcSMatt Macy 		vdev_uberblock_sync(zio, &good_writes, ub, svd[v], flags);
1739eda14cbcSMatt Macy 
1740eda14cbcSMatt Macy 	(void) zio_wait(zio);
1741eda14cbcSMatt Macy 
1742eda14cbcSMatt Macy 	/*
1743eda14cbcSMatt Macy 	 * Flush the uberblocks to disk.  This ensures that the odd labels
1744eda14cbcSMatt Macy 	 * are no longer needed (because the new uberblocks and the even
1745eda14cbcSMatt Macy 	 * labels are safely on disk), so it is safe to overwrite them.
1746eda14cbcSMatt Macy 	 */
1747eda14cbcSMatt Macy 	zio = zio_root(spa, NULL, NULL, flags);
1748eda14cbcSMatt Macy 
1749eda14cbcSMatt Macy 	for (int v = 0; v < svdcount; v++) {
1750eda14cbcSMatt Macy 		if (vdev_writeable(svd[v])) {
1751eda14cbcSMatt Macy 			zio_flush(zio, svd[v]);
1752eda14cbcSMatt Macy 		}
1753eda14cbcSMatt Macy 	}
1754eda14cbcSMatt Macy 
1755eda14cbcSMatt Macy 	(void) zio_wait(zio);
1756eda14cbcSMatt Macy 
1757eda14cbcSMatt Macy 	return (good_writes >= 1 ? 0 : EIO);
1758eda14cbcSMatt Macy }
1759eda14cbcSMatt Macy 
1760eda14cbcSMatt Macy /*
1761eda14cbcSMatt Macy  * On success, increment the count of good writes for our top-level vdev.
1762eda14cbcSMatt Macy  */
1763eda14cbcSMatt Macy static void
1764eda14cbcSMatt Macy vdev_label_sync_done(zio_t *zio)
1765eda14cbcSMatt Macy {
1766eda14cbcSMatt Macy 	uint64_t *good_writes = zio->io_private;
1767eda14cbcSMatt Macy 
1768eda14cbcSMatt Macy 	if (zio->io_error == 0)
1769eda14cbcSMatt Macy 		atomic_inc_64(good_writes);
1770eda14cbcSMatt Macy }
1771eda14cbcSMatt Macy 
1772eda14cbcSMatt Macy /*
1773eda14cbcSMatt Macy  * If there weren't enough good writes, indicate failure to the parent.
1774eda14cbcSMatt Macy  */
1775eda14cbcSMatt Macy static void
1776eda14cbcSMatt Macy vdev_label_sync_top_done(zio_t *zio)
1777eda14cbcSMatt Macy {
1778eda14cbcSMatt Macy 	uint64_t *good_writes = zio->io_private;
1779eda14cbcSMatt Macy 
1780eda14cbcSMatt Macy 	if (*good_writes == 0)
1781eda14cbcSMatt Macy 		zio->io_error = SET_ERROR(EIO);
1782eda14cbcSMatt Macy 
1783eda14cbcSMatt Macy 	kmem_free(good_writes, sizeof (uint64_t));
1784eda14cbcSMatt Macy }
1785eda14cbcSMatt Macy 
1786eda14cbcSMatt Macy /*
1787eda14cbcSMatt Macy  * We ignore errors for log and cache devices, simply free the private data.
1788eda14cbcSMatt Macy  */
1789eda14cbcSMatt Macy static void
1790eda14cbcSMatt Macy vdev_label_sync_ignore_done(zio_t *zio)
1791eda14cbcSMatt Macy {
1792eda14cbcSMatt Macy 	kmem_free(zio->io_private, sizeof (uint64_t));
1793eda14cbcSMatt Macy }
1794eda14cbcSMatt Macy 
1795eda14cbcSMatt Macy /*
1796eda14cbcSMatt Macy  * Write all even or odd labels to all leaves of the specified vdev.
1797eda14cbcSMatt Macy  */
1798eda14cbcSMatt Macy static void
1799eda14cbcSMatt Macy vdev_label_sync(zio_t *zio, uint64_t *good_writes,
1800eda14cbcSMatt Macy     vdev_t *vd, int l, uint64_t txg, int flags)
1801eda14cbcSMatt Macy {
1802eda14cbcSMatt Macy 	nvlist_t *label;
1803eda14cbcSMatt Macy 	vdev_phys_t *vp;
1804eda14cbcSMatt Macy 	abd_t *vp_abd;
1805eda14cbcSMatt Macy 	char *buf;
1806eda14cbcSMatt Macy 	size_t buflen;
1807eda14cbcSMatt Macy 
1808eda14cbcSMatt Macy 	for (int c = 0; c < vd->vdev_children; c++) {
1809eda14cbcSMatt Macy 		vdev_label_sync(zio, good_writes,
1810eda14cbcSMatt Macy 		    vd->vdev_child[c], l, txg, flags);
1811eda14cbcSMatt Macy 	}
1812eda14cbcSMatt Macy 
1813eda14cbcSMatt Macy 	if (!vd->vdev_ops->vdev_op_leaf)
1814eda14cbcSMatt Macy 		return;
1815eda14cbcSMatt Macy 
1816eda14cbcSMatt Macy 	if (!vdev_writeable(vd))
1817eda14cbcSMatt Macy 		return;
1818eda14cbcSMatt Macy 
1819eda14cbcSMatt Macy 	/*
18207877fdebSMatt Macy 	 * The top-level config never needs to be written to a distributed
18217877fdebSMatt Macy 	 * spare.  When read vdev_dspare_label_read_config() will generate
18227877fdebSMatt Macy 	 * the config for the vdev_label_read_config().
18237877fdebSMatt Macy 	 */
18247877fdebSMatt Macy 	if (vd->vdev_ops == &vdev_draid_spare_ops)
18257877fdebSMatt Macy 		return;
18267877fdebSMatt Macy 
18277877fdebSMatt Macy 	/*
1828eda14cbcSMatt Macy 	 * Generate a label describing the top-level config to which we belong.
1829eda14cbcSMatt Macy 	 */
1830eda14cbcSMatt Macy 	label = spa_config_generate(vd->vdev_spa, vd, txg, B_FALSE);
1831eda14cbcSMatt Macy 
1832eda14cbcSMatt Macy 	vp_abd = abd_alloc_linear(sizeof (vdev_phys_t), B_TRUE);
1833eda14cbcSMatt Macy 	abd_zero(vp_abd, sizeof (vdev_phys_t));
1834eda14cbcSMatt Macy 	vp = abd_to_buf(vp_abd);
1835eda14cbcSMatt Macy 
1836eda14cbcSMatt Macy 	buf = vp->vp_nvlist;
1837eda14cbcSMatt Macy 	buflen = sizeof (vp->vp_nvlist);
1838eda14cbcSMatt Macy 
1839eda14cbcSMatt Macy 	if (!nvlist_pack(label, &buf, &buflen, NV_ENCODE_XDR, KM_SLEEP)) {
1840eda14cbcSMatt Macy 		for (; l < VDEV_LABELS; l += 2) {
1841eda14cbcSMatt Macy 			vdev_label_write(zio, vd, l, vp_abd,
1842eda14cbcSMatt Macy 			    offsetof(vdev_label_t, vl_vdev_phys),
1843eda14cbcSMatt Macy 			    sizeof (vdev_phys_t),
1844eda14cbcSMatt Macy 			    vdev_label_sync_done, good_writes,
1845eda14cbcSMatt Macy 			    flags | ZIO_FLAG_DONT_PROPAGATE);
1846eda14cbcSMatt Macy 		}
1847eda14cbcSMatt Macy 	}
1848eda14cbcSMatt Macy 
1849eda14cbcSMatt Macy 	abd_free(vp_abd);
1850eda14cbcSMatt Macy 	nvlist_free(label);
1851eda14cbcSMatt Macy }
1852eda14cbcSMatt Macy 
1853eda14cbcSMatt Macy static int
1854eda14cbcSMatt Macy vdev_label_sync_list(spa_t *spa, int l, uint64_t txg, int flags)
1855eda14cbcSMatt Macy {
1856eda14cbcSMatt Macy 	list_t *dl = &spa->spa_config_dirty_list;
1857eda14cbcSMatt Macy 	vdev_t *vd;
1858eda14cbcSMatt Macy 	zio_t *zio;
1859eda14cbcSMatt Macy 	int error;
1860eda14cbcSMatt Macy 
1861eda14cbcSMatt Macy 	/*
1862eda14cbcSMatt Macy 	 * Write the new labels to disk.
1863eda14cbcSMatt Macy 	 */
1864eda14cbcSMatt Macy 	zio = zio_root(spa, NULL, NULL, flags);
1865eda14cbcSMatt Macy 
1866eda14cbcSMatt Macy 	for (vd = list_head(dl); vd != NULL; vd = list_next(dl, vd)) {
1867eda14cbcSMatt Macy 		uint64_t *good_writes;
1868eda14cbcSMatt Macy 
1869eda14cbcSMatt Macy 		ASSERT(!vd->vdev_ishole);
1870eda14cbcSMatt Macy 
1871eda14cbcSMatt Macy 		good_writes = kmem_zalloc(sizeof (uint64_t), KM_SLEEP);
1872eda14cbcSMatt Macy 		zio_t *vio = zio_null(zio, spa, NULL,
1873eda14cbcSMatt Macy 		    (vd->vdev_islog || vd->vdev_aux != NULL) ?
1874eda14cbcSMatt Macy 		    vdev_label_sync_ignore_done : vdev_label_sync_top_done,
1875eda14cbcSMatt Macy 		    good_writes, flags);
1876eda14cbcSMatt Macy 		vdev_label_sync(vio, good_writes, vd, l, txg, flags);
1877eda14cbcSMatt Macy 		zio_nowait(vio);
1878eda14cbcSMatt Macy 	}
1879eda14cbcSMatt Macy 
1880eda14cbcSMatt Macy 	error = zio_wait(zio);
1881eda14cbcSMatt Macy 
1882eda14cbcSMatt Macy 	/*
1883eda14cbcSMatt Macy 	 * Flush the new labels to disk.
1884eda14cbcSMatt Macy 	 */
1885eda14cbcSMatt Macy 	zio = zio_root(spa, NULL, NULL, flags);
1886eda14cbcSMatt Macy 
1887eda14cbcSMatt Macy 	for (vd = list_head(dl); vd != NULL; vd = list_next(dl, vd))
1888eda14cbcSMatt Macy 		zio_flush(zio, vd);
1889eda14cbcSMatt Macy 
1890eda14cbcSMatt Macy 	(void) zio_wait(zio);
1891eda14cbcSMatt Macy 
1892eda14cbcSMatt Macy 	return (error);
1893eda14cbcSMatt Macy }
1894eda14cbcSMatt Macy 
1895eda14cbcSMatt Macy /*
1896eda14cbcSMatt Macy  * Sync the uberblock and any changes to the vdev configuration.
1897eda14cbcSMatt Macy  *
1898eda14cbcSMatt Macy  * The order of operations is carefully crafted to ensure that
1899eda14cbcSMatt Macy  * if the system panics or loses power at any time, the state on disk
1900eda14cbcSMatt Macy  * is still transactionally consistent.  The in-line comments below
1901eda14cbcSMatt Macy  * describe the failure semantics at each stage.
1902eda14cbcSMatt Macy  *
1903eda14cbcSMatt Macy  * Moreover, vdev_config_sync() is designed to be idempotent: if it fails
1904eda14cbcSMatt Macy  * at any time, you can just call it again, and it will resume its work.
1905eda14cbcSMatt Macy  */
1906eda14cbcSMatt Macy int
1907eda14cbcSMatt Macy vdev_config_sync(vdev_t **svd, int svdcount, uint64_t txg)
1908eda14cbcSMatt Macy {
1909eda14cbcSMatt Macy 	spa_t *spa = svd[0]->vdev_spa;
1910eda14cbcSMatt Macy 	uberblock_t *ub = &spa->spa_uberblock;
1911eda14cbcSMatt Macy 	int error = 0;
1912eda14cbcSMatt Macy 	int flags = ZIO_FLAG_CONFIG_WRITER | ZIO_FLAG_CANFAIL;
1913eda14cbcSMatt Macy 
1914eda14cbcSMatt Macy 	ASSERT(svdcount != 0);
1915eda14cbcSMatt Macy retry:
1916eda14cbcSMatt Macy 	/*
1917eda14cbcSMatt Macy 	 * Normally, we don't want to try too hard to write every label and
1918eda14cbcSMatt Macy 	 * uberblock.  If there is a flaky disk, we don't want the rest of the
1919eda14cbcSMatt Macy 	 * sync process to block while we retry.  But if we can't write a
1920eda14cbcSMatt Macy 	 * single label out, we should retry with ZIO_FLAG_TRYHARD before
1921eda14cbcSMatt Macy 	 * bailing out and declaring the pool faulted.
1922eda14cbcSMatt Macy 	 */
1923eda14cbcSMatt Macy 	if (error != 0) {
1924eda14cbcSMatt Macy 		if ((flags & ZIO_FLAG_TRYHARD) != 0)
1925eda14cbcSMatt Macy 			return (error);
1926eda14cbcSMatt Macy 		flags |= ZIO_FLAG_TRYHARD;
1927eda14cbcSMatt Macy 	}
1928eda14cbcSMatt Macy 
1929eda14cbcSMatt Macy 	ASSERT(ub->ub_txg <= txg);
1930eda14cbcSMatt Macy 
1931eda14cbcSMatt Macy 	/*
1932eda14cbcSMatt Macy 	 * If this isn't a resync due to I/O errors,
1933eda14cbcSMatt Macy 	 * and nothing changed in this transaction group,
1934eda14cbcSMatt Macy 	 * and the vdev configuration hasn't changed,
1935eda14cbcSMatt Macy 	 * then there's nothing to do.
1936eda14cbcSMatt Macy 	 */
1937eda14cbcSMatt Macy 	if (ub->ub_txg < txg) {
1938eda14cbcSMatt Macy 		boolean_t changed = uberblock_update(ub, spa->spa_root_vdev,
1939eda14cbcSMatt Macy 		    txg, spa->spa_mmp.mmp_delay);
1940eda14cbcSMatt Macy 
1941eda14cbcSMatt Macy 		if (!changed && list_is_empty(&spa->spa_config_dirty_list))
1942eda14cbcSMatt Macy 			return (0);
1943eda14cbcSMatt Macy 	}
1944eda14cbcSMatt Macy 
1945eda14cbcSMatt Macy 	if (txg > spa_freeze_txg(spa))
1946eda14cbcSMatt Macy 		return (0);
1947eda14cbcSMatt Macy 
1948eda14cbcSMatt Macy 	ASSERT(txg <= spa->spa_final_txg);
1949eda14cbcSMatt Macy 
1950eda14cbcSMatt Macy 	/*
1951eda14cbcSMatt Macy 	 * Flush the write cache of every disk that's been written to
1952eda14cbcSMatt Macy 	 * in this transaction group.  This ensures that all blocks
1953eda14cbcSMatt Macy 	 * written in this txg will be committed to stable storage
1954eda14cbcSMatt Macy 	 * before any uberblock that references them.
1955eda14cbcSMatt Macy 	 */
1956eda14cbcSMatt Macy 	zio_t *zio = zio_root(spa, NULL, NULL, flags);
1957eda14cbcSMatt Macy 
1958eda14cbcSMatt Macy 	for (vdev_t *vd =
1959eda14cbcSMatt Macy 	    txg_list_head(&spa->spa_vdev_txg_list, TXG_CLEAN(txg)); vd != NULL;
1960eda14cbcSMatt Macy 	    vd = txg_list_next(&spa->spa_vdev_txg_list, vd, TXG_CLEAN(txg)))
1961eda14cbcSMatt Macy 		zio_flush(zio, vd);
1962eda14cbcSMatt Macy 
1963eda14cbcSMatt Macy 	(void) zio_wait(zio);
1964eda14cbcSMatt Macy 
1965eda14cbcSMatt Macy 	/*
1966eda14cbcSMatt Macy 	 * Sync out the even labels (L0, L2) for every dirty vdev.  If the
1967eda14cbcSMatt Macy 	 * system dies in the middle of this process, that's OK: all of the
1968eda14cbcSMatt Macy 	 * even labels that made it to disk will be newer than any uberblock,
1969eda14cbcSMatt Macy 	 * and will therefore be considered invalid.  The odd labels (L1, L3),
1970eda14cbcSMatt Macy 	 * which have not yet been touched, will still be valid.  We flush
1971eda14cbcSMatt Macy 	 * the new labels to disk to ensure that all even-label updates
1972eda14cbcSMatt Macy 	 * are committed to stable storage before the uberblock update.
1973eda14cbcSMatt Macy 	 */
1974eda14cbcSMatt Macy 	if ((error = vdev_label_sync_list(spa, 0, txg, flags)) != 0) {
1975eda14cbcSMatt Macy 		if ((flags & ZIO_FLAG_TRYHARD) != 0) {
1976eda14cbcSMatt Macy 			zfs_dbgmsg("vdev_label_sync_list() returned error %d "
1977eda14cbcSMatt Macy 			    "for pool '%s' when syncing out the even labels "
1978eda14cbcSMatt Macy 			    "of dirty vdevs", error, spa_name(spa));
1979eda14cbcSMatt Macy 		}
1980eda14cbcSMatt Macy 		goto retry;
1981eda14cbcSMatt Macy 	}
1982eda14cbcSMatt Macy 
1983eda14cbcSMatt Macy 	/*
1984eda14cbcSMatt Macy 	 * Sync the uberblocks to all vdevs in svd[].
1985eda14cbcSMatt Macy 	 * If the system dies in the middle of this step, there are two cases
1986eda14cbcSMatt Macy 	 * to consider, and the on-disk state is consistent either way:
1987eda14cbcSMatt Macy 	 *
1988eda14cbcSMatt Macy 	 * (1)	If none of the new uberblocks made it to disk, then the
1989eda14cbcSMatt Macy 	 *	previous uberblock will be the newest, and the odd labels
1990eda14cbcSMatt Macy 	 *	(which had not yet been touched) will be valid with respect
1991eda14cbcSMatt Macy 	 *	to that uberblock.
1992eda14cbcSMatt Macy 	 *
1993eda14cbcSMatt Macy 	 * (2)	If one or more new uberblocks made it to disk, then they
1994eda14cbcSMatt Macy 	 *	will be the newest, and the even labels (which had all
1995eda14cbcSMatt Macy 	 *	been successfully committed) will be valid with respect
1996eda14cbcSMatt Macy 	 *	to the new uberblocks.
1997eda14cbcSMatt Macy 	 */
1998eda14cbcSMatt Macy 	if ((error = vdev_uberblock_sync_list(svd, svdcount, ub, flags)) != 0) {
1999eda14cbcSMatt Macy 		if ((flags & ZIO_FLAG_TRYHARD) != 0) {
2000eda14cbcSMatt Macy 			zfs_dbgmsg("vdev_uberblock_sync_list() returned error "
2001eda14cbcSMatt Macy 			    "%d for pool '%s'", error, spa_name(spa));
2002eda14cbcSMatt Macy 		}
2003eda14cbcSMatt Macy 		goto retry;
2004eda14cbcSMatt Macy 	}
2005eda14cbcSMatt Macy 
2006eda14cbcSMatt Macy 	if (spa_multihost(spa))
2007eda14cbcSMatt Macy 		mmp_update_uberblock(spa, ub);
2008eda14cbcSMatt Macy 
2009eda14cbcSMatt Macy 	/*
2010eda14cbcSMatt Macy 	 * Sync out odd labels for every dirty vdev.  If the system dies
2011eda14cbcSMatt Macy 	 * in the middle of this process, the even labels and the new
2012eda14cbcSMatt Macy 	 * uberblocks will suffice to open the pool.  The next time
2013eda14cbcSMatt Macy 	 * the pool is opened, the first thing we'll do -- before any
2014eda14cbcSMatt Macy 	 * user data is modified -- is mark every vdev dirty so that
2015eda14cbcSMatt Macy 	 * all labels will be brought up to date.  We flush the new labels
2016eda14cbcSMatt Macy 	 * to disk to ensure that all odd-label updates are committed to
2017eda14cbcSMatt Macy 	 * stable storage before the next transaction group begins.
2018eda14cbcSMatt Macy 	 */
2019eda14cbcSMatt Macy 	if ((error = vdev_label_sync_list(spa, 1, txg, flags)) != 0) {
2020eda14cbcSMatt Macy 		if ((flags & ZIO_FLAG_TRYHARD) != 0) {
2021eda14cbcSMatt Macy 			zfs_dbgmsg("vdev_label_sync_list() returned error %d "
2022eda14cbcSMatt Macy 			    "for pool '%s' when syncing out the odd labels of "
2023eda14cbcSMatt Macy 			    "dirty vdevs", error, spa_name(spa));
2024eda14cbcSMatt Macy 		}
2025eda14cbcSMatt Macy 		goto retry;
2026eda14cbcSMatt Macy 	}
2027eda14cbcSMatt Macy 
2028eda14cbcSMatt Macy 	return (0);
2029eda14cbcSMatt Macy }
2030