1789Sahrens /* 2789Sahrens * CDDL HEADER START 3789Sahrens * 4789Sahrens * The contents of this file are subject to the terms of the 51485Slling * Common Development and Distribution License (the "License"). 61485Slling * You may not use this file except in compliance with the License. 7789Sahrens * 8789Sahrens * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE 9789Sahrens * or http://www.opensolaris.org/os/licensing. 10789Sahrens * See the License for the specific language governing permissions 11789Sahrens * and limitations under the License. 12789Sahrens * 13789Sahrens * When distributing Covered Code, include this CDDL HEADER in each 14789Sahrens * file and include the License file at usr/src/OPENSOLARIS.LICENSE. 15789Sahrens * If applicable, add the following below this CDDL HEADER, with the 16789Sahrens * fields enclosed by brackets "[]" replaced with your own identifying 17789Sahrens * information: Portions Copyright [yyyy] [name of copyright owner] 18789Sahrens * 19789Sahrens * CDDL HEADER END 20789Sahrens */ 21789Sahrens /* 223377Seschrock * Copyright 2007 Sun Microsystems, Inc. All rights reserved. 23789Sahrens * Use is subject to license terms. 24789Sahrens */ 25789Sahrens 26789Sahrens #pragma ident "%Z%%M% %I% %E% SMI" 27789Sahrens 28789Sahrens /* 29789Sahrens * Virtual Device Labels 30789Sahrens * --------------------- 31789Sahrens * 32789Sahrens * The vdev label serves several distinct purposes: 33789Sahrens * 34789Sahrens * 1. Uniquely identify this device as part of a ZFS pool and confirm its 35789Sahrens * identity within the pool. 36789Sahrens * 37789Sahrens * 2. Verify that all the devices given in a configuration are present 38789Sahrens * within the pool. 39789Sahrens * 40789Sahrens * 3. Determine the uberblock for the pool. 41789Sahrens * 42789Sahrens * 4. In case of an import operation, determine the configuration of the 43789Sahrens * toplevel vdev of which it is a part. 44789Sahrens * 45789Sahrens * 5. If an import operation cannot find all the devices in the pool, 46789Sahrens * provide enough information to the administrator to determine which 47789Sahrens * devices are missing. 48789Sahrens * 49789Sahrens * It is important to note that while the kernel is responsible for writing the 50789Sahrens * label, it only consumes the information in the first three cases. The 51789Sahrens * latter information is only consumed in userland when determining the 52789Sahrens * configuration to import a pool. 53789Sahrens * 54789Sahrens * 55789Sahrens * Label Organization 56789Sahrens * ------------------ 57789Sahrens * 58789Sahrens * Before describing the contents of the label, it's important to understand how 59789Sahrens * the labels are written and updated with respect to the uberblock. 60789Sahrens * 61789Sahrens * When the pool configuration is altered, either because it was newly created 62789Sahrens * or a device was added, we want to update all the labels such that we can deal 63789Sahrens * with fatal failure at any point. To this end, each disk has two labels which 64789Sahrens * are updated before and after the uberblock is synced. Assuming we have 65*4451Seschrock * labels and an uberblock with the following transaction groups: 66789Sahrens * 67789Sahrens * L1 UB L2 68789Sahrens * +------+ +------+ +------+ 69789Sahrens * | | | | | | 70789Sahrens * | t10 | | t10 | | t10 | 71789Sahrens * | | | | | | 72789Sahrens * +------+ +------+ +------+ 73789Sahrens * 74789Sahrens * In this stable state, the labels and the uberblock were all updated within 75789Sahrens * the same transaction group (10). Each label is mirrored and checksummed, so 76789Sahrens * that we can detect when we fail partway through writing the label. 77789Sahrens * 78789Sahrens * In order to identify which labels are valid, the labels are written in the 79789Sahrens * following manner: 80789Sahrens * 81789Sahrens * 1. For each vdev, update 'L1' to the new label 82789Sahrens * 2. Update the uberblock 83789Sahrens * 3. For each vdev, update 'L2' to the new label 84789Sahrens * 85789Sahrens * Given arbitrary failure, we can determine the correct label to use based on 86789Sahrens * the transaction group. If we fail after updating L1 but before updating the 87789Sahrens * UB, we will notice that L1's transaction group is greater than the uberblock, 88789Sahrens * so L2 must be valid. If we fail after writing the uberblock but before 89789Sahrens * writing L2, we will notice that L2's transaction group is less than L1, and 90789Sahrens * therefore L1 is valid. 91789Sahrens * 92789Sahrens * Another added complexity is that not every label is updated when the config 93789Sahrens * is synced. If we add a single device, we do not want to have to re-write 94789Sahrens * every label for every device in the pool. This means that both L1 and L2 may 95789Sahrens * be older than the pool uberblock, because the necessary information is stored 96789Sahrens * on another vdev. 97789Sahrens * 98789Sahrens * 99789Sahrens * On-disk Format 100789Sahrens * -------------- 101789Sahrens * 102789Sahrens * The vdev label consists of two distinct parts, and is wrapped within the 103789Sahrens * vdev_label_t structure. The label includes 8k of padding to permit legacy 104789Sahrens * VTOC disk labels, but is otherwise ignored. 105789Sahrens * 106789Sahrens * The first half of the label is a packed nvlist which contains pool wide 107789Sahrens * properties, per-vdev properties, and configuration information. It is 108789Sahrens * described in more detail below. 109789Sahrens * 110789Sahrens * The latter half of the label consists of a redundant array of uberblocks. 111789Sahrens * These uberblocks are updated whenever a transaction group is committed, 112789Sahrens * or when the configuration is updated. When a pool is loaded, we scan each 113789Sahrens * vdev for the 'best' uberblock. 114789Sahrens * 115789Sahrens * 116789Sahrens * Configuration Information 117789Sahrens * ------------------------- 118789Sahrens * 119789Sahrens * The nvlist describing the pool and vdev contains the following elements: 120789Sahrens * 121789Sahrens * version ZFS on-disk version 122789Sahrens * name Pool name 123789Sahrens * state Pool state 124789Sahrens * txg Transaction group in which this label was written 125789Sahrens * pool_guid Unique identifier for this pool 126789Sahrens * vdev_tree An nvlist describing vdev tree. 127789Sahrens * 128789Sahrens * Each leaf device label also contains the following: 129789Sahrens * 130789Sahrens * top_guid Unique ID for top-level vdev in which this is contained 131789Sahrens * guid Unique ID for the leaf vdev 132789Sahrens * 133789Sahrens * The 'vs' configuration follows the format described in 'spa_config.c'. 134789Sahrens */ 135789Sahrens 136789Sahrens #include <sys/zfs_context.h> 137789Sahrens #include <sys/spa.h> 138789Sahrens #include <sys/spa_impl.h> 139789Sahrens #include <sys/dmu.h> 140789Sahrens #include <sys/zap.h> 141789Sahrens #include <sys/vdev.h> 142789Sahrens #include <sys/vdev_impl.h> 143789Sahrens #include <sys/uberblock_impl.h> 144789Sahrens #include <sys/metaslab.h> 145789Sahrens #include <sys/zio.h> 146789Sahrens #include <sys/fs/zfs.h> 147789Sahrens 148789Sahrens /* 149789Sahrens * Basic routines to read and write from a vdev label. 150789Sahrens * Used throughout the rest of this file. 151789Sahrens */ 152789Sahrens uint64_t 153789Sahrens vdev_label_offset(uint64_t psize, int l, uint64_t offset) 154789Sahrens { 1551732Sbonwick ASSERT(offset < sizeof (vdev_label_t)); 1561732Sbonwick 157789Sahrens return (offset + l * sizeof (vdev_label_t) + (l < VDEV_LABELS / 2 ? 158789Sahrens 0 : psize - VDEV_LABELS * sizeof (vdev_label_t))); 159789Sahrens } 160789Sahrens 161789Sahrens static void 162789Sahrens vdev_label_read(zio_t *zio, vdev_t *vd, int l, void *buf, uint64_t offset, 163789Sahrens uint64_t size, zio_done_func_t *done, void *private) 164789Sahrens { 165789Sahrens ASSERT(vd->vdev_children == 0); 166789Sahrens 167789Sahrens zio_nowait(zio_read_phys(zio, vd, 168789Sahrens vdev_label_offset(vd->vdev_psize, l, offset), 169789Sahrens size, buf, ZIO_CHECKSUM_LABEL, done, private, 1701544Seschrock ZIO_PRIORITY_SYNC_READ, 1711544Seschrock ZIO_FLAG_CONFIG_HELD | ZIO_FLAG_CANFAIL | ZIO_FLAG_SPECULATIVE)); 172789Sahrens } 173789Sahrens 174789Sahrens static void 175789Sahrens vdev_label_write(zio_t *zio, vdev_t *vd, int l, void *buf, uint64_t offset, 176789Sahrens uint64_t size, zio_done_func_t *done, void *private) 177789Sahrens { 178789Sahrens ASSERT(vd->vdev_children == 0); 179789Sahrens 180789Sahrens zio_nowait(zio_write_phys(zio, vd, 181789Sahrens vdev_label_offset(vd->vdev_psize, l, offset), 182789Sahrens size, buf, ZIO_CHECKSUM_LABEL, done, private, 1831544Seschrock ZIO_PRIORITY_SYNC_WRITE, ZIO_FLAG_CONFIG_HELD | ZIO_FLAG_CANFAIL)); 184789Sahrens } 185789Sahrens 186789Sahrens /* 187789Sahrens * Generate the nvlist representing this vdev's config. 188789Sahrens */ 189789Sahrens nvlist_t * 1902082Seschrock vdev_config_generate(spa_t *spa, vdev_t *vd, boolean_t getstats, 1912082Seschrock boolean_t isspare) 192789Sahrens { 193789Sahrens nvlist_t *nv = NULL; 194789Sahrens 1951544Seschrock VERIFY(nvlist_alloc(&nv, NV_UNIQUE_NAME, KM_SLEEP) == 0); 196789Sahrens 197789Sahrens VERIFY(nvlist_add_string(nv, ZPOOL_CONFIG_TYPE, 198789Sahrens vd->vdev_ops->vdev_op_type) == 0); 1992082Seschrock if (!isspare) 2002082Seschrock VERIFY(nvlist_add_uint64(nv, ZPOOL_CONFIG_ID, vd->vdev_id) 2012082Seschrock == 0); 202789Sahrens VERIFY(nvlist_add_uint64(nv, ZPOOL_CONFIG_GUID, vd->vdev_guid) == 0); 203789Sahrens 204789Sahrens if (vd->vdev_path != NULL) 205789Sahrens VERIFY(nvlist_add_string(nv, ZPOOL_CONFIG_PATH, 206789Sahrens vd->vdev_path) == 0); 207789Sahrens 208789Sahrens if (vd->vdev_devid != NULL) 209789Sahrens VERIFY(nvlist_add_string(nv, ZPOOL_CONFIG_DEVID, 210789Sahrens vd->vdev_devid) == 0); 211789Sahrens 212*4451Seschrock if (vd->vdev_physpath != NULL) 213*4451Seschrock VERIFY(nvlist_add_string(nv, ZPOOL_CONFIG_PHYS_PATH, 214*4451Seschrock vd->vdev_physpath) == 0); 215*4451Seschrock 2162082Seschrock if (vd->vdev_nparity != 0) { 2172082Seschrock ASSERT(strcmp(vd->vdev_ops->vdev_op_type, 2182082Seschrock VDEV_TYPE_RAIDZ) == 0); 2192082Seschrock 2202082Seschrock /* 2212082Seschrock * Make sure someone hasn't managed to sneak a fancy new vdev 2222082Seschrock * into a crufty old storage pool. 2232082Seschrock */ 2242082Seschrock ASSERT(vd->vdev_nparity == 1 || 2252082Seschrock (vd->vdev_nparity == 2 && 2262082Seschrock spa_version(spa) >= ZFS_VERSION_RAID6)); 2272082Seschrock 2282082Seschrock /* 2292082Seschrock * Note that we'll add the nparity tag even on storage pools 2302082Seschrock * that only support a single parity device -- older software 2312082Seschrock * will just ignore it. 2322082Seschrock */ 2332082Seschrock VERIFY(nvlist_add_uint64(nv, ZPOOL_CONFIG_NPARITY, 2342082Seschrock vd->vdev_nparity) == 0); 2352082Seschrock } 2362082Seschrock 2371171Seschrock if (vd->vdev_wholedisk != -1ULL) 2381171Seschrock VERIFY(nvlist_add_uint64(nv, ZPOOL_CONFIG_WHOLE_DISK, 2391171Seschrock vd->vdev_wholedisk) == 0); 2401171Seschrock 2411544Seschrock if (vd->vdev_not_present) 2421544Seschrock VERIFY(nvlist_add_uint64(nv, ZPOOL_CONFIG_NOT_PRESENT, 1) == 0); 2431544Seschrock 2442082Seschrock if (vd->vdev_isspare) 2452082Seschrock VERIFY(nvlist_add_uint64(nv, ZPOOL_CONFIG_IS_SPARE, 1) == 0); 2462082Seschrock 2472082Seschrock if (!isspare && vd == vd->vdev_top) { 248789Sahrens VERIFY(nvlist_add_uint64(nv, ZPOOL_CONFIG_METASLAB_ARRAY, 249789Sahrens vd->vdev_ms_array) == 0); 250789Sahrens VERIFY(nvlist_add_uint64(nv, ZPOOL_CONFIG_METASLAB_SHIFT, 251789Sahrens vd->vdev_ms_shift) == 0); 252789Sahrens VERIFY(nvlist_add_uint64(nv, ZPOOL_CONFIG_ASHIFT, 253789Sahrens vd->vdev_ashift) == 0); 254789Sahrens VERIFY(nvlist_add_uint64(nv, ZPOOL_CONFIG_ASIZE, 255789Sahrens vd->vdev_asize) == 0); 256789Sahrens } 257789Sahrens 258789Sahrens if (vd->vdev_dtl.smo_object != 0) 259789Sahrens VERIFY(nvlist_add_uint64(nv, ZPOOL_CONFIG_DTL, 260789Sahrens vd->vdev_dtl.smo_object) == 0); 261789Sahrens 262789Sahrens if (getstats) { 263789Sahrens vdev_stat_t vs; 264789Sahrens vdev_get_stats(vd, &vs); 265789Sahrens VERIFY(nvlist_add_uint64_array(nv, ZPOOL_CONFIG_STATS, 266789Sahrens (uint64_t *)&vs, sizeof (vs) / sizeof (uint64_t)) == 0); 267789Sahrens } 268789Sahrens 269789Sahrens if (!vd->vdev_ops->vdev_op_leaf) { 270789Sahrens nvlist_t **child; 271789Sahrens int c; 272789Sahrens 273789Sahrens child = kmem_alloc(vd->vdev_children * sizeof (nvlist_t *), 274789Sahrens KM_SLEEP); 275789Sahrens 276789Sahrens for (c = 0; c < vd->vdev_children; c++) 2772082Seschrock child[c] = vdev_config_generate(spa, vd->vdev_child[c], 2782082Seschrock getstats, isspare); 279789Sahrens 280789Sahrens VERIFY(nvlist_add_nvlist_array(nv, ZPOOL_CONFIG_CHILDREN, 281789Sahrens child, vd->vdev_children) == 0); 282789Sahrens 283789Sahrens for (c = 0; c < vd->vdev_children; c++) 284789Sahrens nvlist_free(child[c]); 285789Sahrens 286789Sahrens kmem_free(child, vd->vdev_children * sizeof (nvlist_t *)); 2871485Slling 2881485Slling } else { 2891732Sbonwick if (vd->vdev_offline && !vd->vdev_tmpoffline) 2901485Slling VERIFY(nvlist_add_uint64(nv, ZPOOL_CONFIG_OFFLINE, 2911732Sbonwick B_TRUE) == 0); 292*4451Seschrock if (vd->vdev_faulted) 293*4451Seschrock VERIFY(nvlist_add_uint64(nv, ZPOOL_CONFIG_FAULTED, 294*4451Seschrock B_TRUE) == 0); 295*4451Seschrock if (vd->vdev_degraded) 296*4451Seschrock VERIFY(nvlist_add_uint64(nv, ZPOOL_CONFIG_DEGRADED, 297*4451Seschrock B_TRUE) == 0); 298*4451Seschrock if (vd->vdev_removed) 299*4451Seschrock VERIFY(nvlist_add_uint64(nv, ZPOOL_CONFIG_REMOVED, 300*4451Seschrock B_TRUE) == 0); 301*4451Seschrock if (vd->vdev_unspare) 302*4451Seschrock VERIFY(nvlist_add_uint64(nv, ZPOOL_CONFIG_UNSPARE, 303*4451Seschrock B_TRUE) == 0); 304789Sahrens } 305789Sahrens 306789Sahrens return (nv); 307789Sahrens } 308789Sahrens 309789Sahrens nvlist_t * 310789Sahrens vdev_label_read_config(vdev_t *vd) 311789Sahrens { 3121635Sbonwick spa_t *spa = vd->vdev_spa; 313789Sahrens nvlist_t *config = NULL; 314789Sahrens vdev_phys_t *vp; 315789Sahrens zio_t *zio; 316789Sahrens int l; 317789Sahrens 3181635Sbonwick ASSERT(spa_config_held(spa, RW_READER)); 3191635Sbonwick 320789Sahrens if (vdev_is_dead(vd)) 321789Sahrens return (NULL); 322789Sahrens 323789Sahrens vp = zio_buf_alloc(sizeof (vdev_phys_t)); 324789Sahrens 325789Sahrens for (l = 0; l < VDEV_LABELS; l++) { 326789Sahrens 3271635Sbonwick zio = zio_root(spa, NULL, NULL, ZIO_FLAG_CANFAIL | 3281544Seschrock ZIO_FLAG_SPECULATIVE | ZIO_FLAG_CONFIG_HELD); 329789Sahrens 330789Sahrens vdev_label_read(zio, vd, l, vp, 331789Sahrens offsetof(vdev_label_t, vl_vdev_phys), 332789Sahrens sizeof (vdev_phys_t), NULL, NULL); 333789Sahrens 334789Sahrens if (zio_wait(zio) == 0 && 335789Sahrens nvlist_unpack(vp->vp_nvlist, sizeof (vp->vp_nvlist), 3361544Seschrock &config, 0) == 0) 337789Sahrens break; 338789Sahrens 339789Sahrens if (config != NULL) { 340789Sahrens nvlist_free(config); 341789Sahrens config = NULL; 342789Sahrens } 343789Sahrens } 344789Sahrens 345789Sahrens zio_buf_free(vp, sizeof (vdev_phys_t)); 346789Sahrens 347789Sahrens return (config); 348789Sahrens } 349789Sahrens 3503377Seschrock /* 3513377Seschrock * Determine if a device is in use. The 'spare_guid' parameter will be filled 3523377Seschrock * in with the device guid if this spare is active elsewhere on the system. 3533377Seschrock */ 3543377Seschrock static boolean_t 3553377Seschrock vdev_inuse(vdev_t *vd, uint64_t crtxg, vdev_labeltype_t reason, 3563377Seschrock uint64_t *spare_guid) 3573377Seschrock { 3583377Seschrock spa_t *spa = vd->vdev_spa; 3593377Seschrock uint64_t state, pool_guid, device_guid, txg, spare_pool; 3603377Seschrock uint64_t vdtxg = 0; 3613377Seschrock nvlist_t *label; 3623377Seschrock 3633377Seschrock if (spare_guid) 3643377Seschrock *spare_guid = 0ULL; 3653377Seschrock 3663377Seschrock /* 3673377Seschrock * Read the label, if any, and perform some basic sanity checks. 3683377Seschrock */ 3693377Seschrock if ((label = vdev_label_read_config(vd)) == NULL) 3703377Seschrock return (B_FALSE); 3713377Seschrock 3723377Seschrock (void) nvlist_lookup_uint64(label, ZPOOL_CONFIG_CREATE_TXG, 3733377Seschrock &vdtxg); 3743377Seschrock 3753377Seschrock if (nvlist_lookup_uint64(label, ZPOOL_CONFIG_POOL_STATE, 3763377Seschrock &state) != 0 || 3773377Seschrock nvlist_lookup_uint64(label, ZPOOL_CONFIG_GUID, 3783377Seschrock &device_guid) != 0) { 3793377Seschrock nvlist_free(label); 3803377Seschrock return (B_FALSE); 3813377Seschrock } 3823377Seschrock 3833377Seschrock if (state != POOL_STATE_SPARE && 3843377Seschrock (nvlist_lookup_uint64(label, ZPOOL_CONFIG_POOL_GUID, 3853377Seschrock &pool_guid) != 0 || 3863377Seschrock nvlist_lookup_uint64(label, ZPOOL_CONFIG_POOL_TXG, 3873377Seschrock &txg) != 0)) { 3883377Seschrock nvlist_free(label); 3893377Seschrock return (B_FALSE); 3903377Seschrock } 3913377Seschrock 3923377Seschrock nvlist_free(label); 3933377Seschrock 3943377Seschrock /* 3953377Seschrock * Check to see if this device indeed belongs to the pool it claims to 3963377Seschrock * be a part of. The only way this is allowed is if the device is a hot 3973377Seschrock * spare (which we check for later on). 3983377Seschrock */ 3993377Seschrock if (state != POOL_STATE_SPARE && 4003377Seschrock !spa_guid_exists(pool_guid, device_guid) && 4013377Seschrock !spa_spare_exists(device_guid, NULL)) 4023377Seschrock return (B_FALSE); 4033377Seschrock 4043377Seschrock /* 4053377Seschrock * If the transaction group is zero, then this an initialized (but 4063377Seschrock * unused) label. This is only an error if the create transaction 4073377Seschrock * on-disk is the same as the one we're using now, in which case the 4083377Seschrock * user has attempted to add the same vdev multiple times in the same 4093377Seschrock * transaction. 4103377Seschrock */ 4113377Seschrock if (state != POOL_STATE_SPARE && txg == 0 && vdtxg == crtxg) 4123377Seschrock return (B_TRUE); 4133377Seschrock 4143377Seschrock /* 4153377Seschrock * Check to see if this is a spare device. We do an explicit check for 4163377Seschrock * spa_has_spare() here because it may be on our pending list of spares 4173377Seschrock * to add. 4183377Seschrock */ 4193377Seschrock if (spa_spare_exists(device_guid, &spare_pool) || 4203377Seschrock spa_has_spare(spa, device_guid)) { 4213377Seschrock if (spare_guid) 4223377Seschrock *spare_guid = device_guid; 4233377Seschrock 4243377Seschrock switch (reason) { 4253377Seschrock case VDEV_LABEL_CREATE: 4263377Seschrock return (B_TRUE); 4273377Seschrock 4283377Seschrock case VDEV_LABEL_REPLACE: 4293377Seschrock return (!spa_has_spare(spa, device_guid) || 4303377Seschrock spare_pool != 0ULL); 4313377Seschrock 4323377Seschrock case VDEV_LABEL_SPARE: 4333377Seschrock return (spa_has_spare(spa, device_guid)); 4343377Seschrock } 4353377Seschrock } 4363377Seschrock 4373377Seschrock /* 4383377Seschrock * If the device is marked ACTIVE, then this device is in use by another 4393377Seschrock * pool on the system. 4403377Seschrock */ 4413377Seschrock return (state == POOL_STATE_ACTIVE); 4423377Seschrock } 4433377Seschrock 4443377Seschrock /* 4453377Seschrock * Initialize a vdev label. We check to make sure each leaf device is not in 4463377Seschrock * use, and writable. We put down an initial label which we will later 4473377Seschrock * overwrite with a complete label. Note that it's important to do this 4483377Seschrock * sequentially, not in parallel, so that we catch cases of multiple use of the 4493377Seschrock * same leaf vdev in the vdev we're creating -- e.g. mirroring a disk with 4503377Seschrock * itself. 4513377Seschrock */ 4523377Seschrock int 4533377Seschrock vdev_label_init(vdev_t *vd, uint64_t crtxg, vdev_labeltype_t reason) 454789Sahrens { 455789Sahrens spa_t *spa = vd->vdev_spa; 456789Sahrens nvlist_t *label; 457789Sahrens vdev_phys_t *vp; 458789Sahrens vdev_boot_header_t *vb; 4591732Sbonwick uberblock_t *ub; 460789Sahrens zio_t *zio; 461789Sahrens int l, c, n; 462789Sahrens char *buf; 463789Sahrens size_t buflen; 464789Sahrens int error; 4653377Seschrock uint64_t spare_guid; 466789Sahrens 4671635Sbonwick ASSERT(spa_config_held(spa, RW_WRITER)); 4681635Sbonwick 469789Sahrens for (c = 0; c < vd->vdev_children; c++) 4703377Seschrock if ((error = vdev_label_init(vd->vdev_child[c], 4713377Seschrock crtxg, reason)) != 0) 472789Sahrens return (error); 473789Sahrens 474789Sahrens if (!vd->vdev_ops->vdev_op_leaf) 475789Sahrens return (0); 476789Sahrens 477789Sahrens /* 4783377Seschrock * Dead vdevs cannot be initialized. 479789Sahrens */ 480789Sahrens if (vdev_is_dead(vd)) 481789Sahrens return (EIO); 482789Sahrens 483789Sahrens /* 4843377Seschrock * Determine if the vdev is in use. 485789Sahrens */ 4863377Seschrock if (reason != VDEV_LABEL_REMOVE && 4873377Seschrock vdev_inuse(vd, crtxg, reason, &spare_guid)) 4883377Seschrock return (EBUSY); 489789Sahrens 4903377Seschrock ASSERT(reason != VDEV_LABEL_REMOVE || 4913377Seschrock vdev_inuse(vd, crtxg, reason, NULL)); 492789Sahrens 4933377Seschrock /* 4943377Seschrock * If this is a request to add or replace a spare that is in use 4953377Seschrock * elsewhere on the system, then we must update the guid (which was 4963377Seschrock * initialized to a random value) to reflect the actual GUID (which is 4973377Seschrock * shared between multiple pools). 4983377Seschrock */ 4993377Seschrock if (reason != VDEV_LABEL_REMOVE && spare_guid != 0ULL) { 5003377Seschrock vdev_t *pvd = vd->vdev_parent; 5012082Seschrock 5023377Seschrock for (; pvd != NULL; pvd = pvd->vdev_parent) { 5033377Seschrock pvd->vdev_guid_sum -= vd->vdev_guid; 5043377Seschrock pvd->vdev_guid_sum += spare_guid; 505789Sahrens } 5062082Seschrock 5073377Seschrock vd->vdev_guid = vd->vdev_guid_sum = spare_guid; 5082082Seschrock 5093377Seschrock /* 5103377Seschrock * If this is a replacement, then we want to fallthrough to the 5113377Seschrock * rest of the code. If we're adding a spare, then it's already 512*4451Seschrock * labeled appropriately and we can just return. 5133377Seschrock */ 5143377Seschrock if (reason == VDEV_LABEL_SPARE) 5153377Seschrock return (0); 5163377Seschrock ASSERT(reason == VDEV_LABEL_REPLACE); 517789Sahrens } 518789Sahrens 519789Sahrens /* 5203377Seschrock * Initialize its label. 521789Sahrens */ 522789Sahrens vp = zio_buf_alloc(sizeof (vdev_phys_t)); 523789Sahrens bzero(vp, sizeof (vdev_phys_t)); 524789Sahrens 525789Sahrens /* 526789Sahrens * Generate a label describing the pool and our top-level vdev. 527789Sahrens * We mark it as being from txg 0 to indicate that it's not 528789Sahrens * really part of an active pool just yet. The labels will 529789Sahrens * be written again with a meaningful txg by spa_sync(). 530789Sahrens */ 5313377Seschrock if (reason == VDEV_LABEL_SPARE || 5323377Seschrock (reason == VDEV_LABEL_REMOVE && vd->vdev_isspare)) { 5333377Seschrock /* 5343377Seschrock * For inactive hot spares, we generate a special label that 5353377Seschrock * identifies as a mutually shared hot spare. We write the 5363377Seschrock * label if we are adding a hot spare, or if we are removing an 5373377Seschrock * active hot spare (in which case we want to revert the 5383377Seschrock * labels). 5393377Seschrock */ 5402082Seschrock VERIFY(nvlist_alloc(&label, NV_UNIQUE_NAME, KM_SLEEP) == 0); 541789Sahrens 5422082Seschrock VERIFY(nvlist_add_uint64(label, ZPOOL_CONFIG_VERSION, 5432082Seschrock spa_version(spa)) == 0); 5442082Seschrock VERIFY(nvlist_add_uint64(label, ZPOOL_CONFIG_POOL_STATE, 5452082Seschrock POOL_STATE_SPARE) == 0); 5462082Seschrock VERIFY(nvlist_add_uint64(label, ZPOOL_CONFIG_GUID, 5472082Seschrock vd->vdev_guid) == 0); 5482082Seschrock } else { 5492082Seschrock label = spa_config_generate(spa, vd, 0ULL, B_FALSE); 5502082Seschrock 5512082Seschrock /* 5522082Seschrock * Add our creation time. This allows us to detect multiple 5532082Seschrock * vdev uses as described above, and automatically expires if we 5542082Seschrock * fail. 5552082Seschrock */ 5562082Seschrock VERIFY(nvlist_add_uint64(label, ZPOOL_CONFIG_CREATE_TXG, 5572082Seschrock crtxg) == 0); 5582082Seschrock } 559789Sahrens 560789Sahrens buf = vp->vp_nvlist; 561789Sahrens buflen = sizeof (vp->vp_nvlist); 562789Sahrens 5633460Smmusante error = nvlist_pack(label, &buf, &buflen, NV_ENCODE_XDR, KM_SLEEP); 5643460Smmusante if (error != 0) { 565789Sahrens nvlist_free(label); 566789Sahrens zio_buf_free(vp, sizeof (vdev_phys_t)); 5673460Smmusante /* EFAULT means nvlist_pack ran out of room */ 5683460Smmusante return (error == EFAULT ? ENAMETOOLONG : EINVAL); 569789Sahrens } 570789Sahrens 571789Sahrens /* 572789Sahrens * Initialize boot block header. 573789Sahrens */ 574789Sahrens vb = zio_buf_alloc(sizeof (vdev_boot_header_t)); 575789Sahrens bzero(vb, sizeof (vdev_boot_header_t)); 576789Sahrens vb->vb_magic = VDEV_BOOT_MAGIC; 577789Sahrens vb->vb_version = VDEV_BOOT_VERSION; 578789Sahrens vb->vb_offset = VDEV_BOOT_OFFSET; 579789Sahrens vb->vb_size = VDEV_BOOT_SIZE; 580789Sahrens 581789Sahrens /* 582789Sahrens * Initialize uberblock template. 583789Sahrens */ 5841732Sbonwick ub = zio_buf_alloc(VDEV_UBERBLOCK_SIZE(vd)); 5851732Sbonwick bzero(ub, VDEV_UBERBLOCK_SIZE(vd)); 5861732Sbonwick *ub = spa->spa_uberblock; 5871732Sbonwick ub->ub_txg = 0; 588789Sahrens 589789Sahrens /* 590789Sahrens * Write everything in parallel. 591789Sahrens */ 592789Sahrens zio = zio_root(spa, NULL, NULL, 593789Sahrens ZIO_FLAG_CONFIG_HELD | ZIO_FLAG_CANFAIL); 594789Sahrens 595789Sahrens for (l = 0; l < VDEV_LABELS; l++) { 596789Sahrens 597789Sahrens vdev_label_write(zio, vd, l, vp, 598789Sahrens offsetof(vdev_label_t, vl_vdev_phys), 599789Sahrens sizeof (vdev_phys_t), NULL, NULL); 600789Sahrens 601789Sahrens vdev_label_write(zio, vd, l, vb, 602789Sahrens offsetof(vdev_label_t, vl_boot_header), 603789Sahrens sizeof (vdev_boot_header_t), NULL, NULL); 604789Sahrens 6051732Sbonwick for (n = 0; n < VDEV_UBERBLOCK_COUNT(vd); n++) { 6061732Sbonwick vdev_label_write(zio, vd, l, ub, 6071732Sbonwick VDEV_UBERBLOCK_OFFSET(vd, n), 6081732Sbonwick VDEV_UBERBLOCK_SIZE(vd), NULL, NULL); 609789Sahrens } 610789Sahrens } 611789Sahrens 612789Sahrens error = zio_wait(zio); 613789Sahrens 614789Sahrens nvlist_free(label); 6151732Sbonwick zio_buf_free(ub, VDEV_UBERBLOCK_SIZE(vd)); 616789Sahrens zio_buf_free(vb, sizeof (vdev_boot_header_t)); 617789Sahrens zio_buf_free(vp, sizeof (vdev_phys_t)); 618789Sahrens 6193377Seschrock /* 6203377Seschrock * If this vdev hasn't been previously identified as a spare, then we 621*4451Seschrock * mark it as such only if a) we are labeling it as a spare, or b) it 6223377Seschrock * exists as a spare elsewhere in the system. 6233377Seschrock */ 6243377Seschrock if (error == 0 && !vd->vdev_isspare && 6253377Seschrock (reason == VDEV_LABEL_SPARE || 6263377Seschrock spa_spare_exists(vd->vdev_guid, NULL))) 6273377Seschrock spa_spare_add(vd); 6282082Seschrock 6293377Seschrock return (error); 6302082Seschrock } 6312082Seschrock 632789Sahrens /* 633789Sahrens * ========================================================================== 634789Sahrens * uberblock load/sync 635789Sahrens * ========================================================================== 636789Sahrens */ 637789Sahrens 638789Sahrens /* 639789Sahrens * Consider the following situation: txg is safely synced to disk. We've 640789Sahrens * written the first uberblock for txg + 1, and then we lose power. When we 641789Sahrens * come back up, we fail to see the uberblock for txg + 1 because, say, 642789Sahrens * it was on a mirrored device and the replica to which we wrote txg + 1 643789Sahrens * is now offline. If we then make some changes and sync txg + 1, and then 644789Sahrens * the missing replica comes back, then for a new seconds we'll have two 645789Sahrens * conflicting uberblocks on disk with the same txg. The solution is simple: 646789Sahrens * among uberblocks with equal txg, choose the one with the latest timestamp. 647789Sahrens */ 648789Sahrens static int 649789Sahrens vdev_uberblock_compare(uberblock_t *ub1, uberblock_t *ub2) 650789Sahrens { 651789Sahrens if (ub1->ub_txg < ub2->ub_txg) 652789Sahrens return (-1); 653789Sahrens if (ub1->ub_txg > ub2->ub_txg) 654789Sahrens return (1); 655789Sahrens 656789Sahrens if (ub1->ub_timestamp < ub2->ub_timestamp) 657789Sahrens return (-1); 658789Sahrens if (ub1->ub_timestamp > ub2->ub_timestamp) 659789Sahrens return (1); 660789Sahrens 661789Sahrens return (0); 662789Sahrens } 663789Sahrens 664789Sahrens static void 665789Sahrens vdev_uberblock_load_done(zio_t *zio) 666789Sahrens { 6671732Sbonwick uberblock_t *ub = zio->io_data; 668789Sahrens uberblock_t *ubbest = zio->io_private; 669789Sahrens spa_t *spa = zio->io_spa; 670789Sahrens 6711732Sbonwick ASSERT3U(zio->io_size, ==, VDEV_UBERBLOCK_SIZE(zio->io_vd)); 672789Sahrens 6731544Seschrock if (zio->io_error == 0 && uberblock_verify(ub) == 0) { 674789Sahrens mutex_enter(&spa->spa_uberblock_lock); 675789Sahrens if (vdev_uberblock_compare(ub, ubbest) > 0) 676789Sahrens *ubbest = *ub; 677789Sahrens mutex_exit(&spa->spa_uberblock_lock); 678789Sahrens } 679789Sahrens 680789Sahrens zio_buf_free(zio->io_data, zio->io_size); 681789Sahrens } 682789Sahrens 683789Sahrens void 684789Sahrens vdev_uberblock_load(zio_t *zio, vdev_t *vd, uberblock_t *ubbest) 685789Sahrens { 686789Sahrens int l, c, n; 687789Sahrens 688789Sahrens for (c = 0; c < vd->vdev_children; c++) 689789Sahrens vdev_uberblock_load(zio, vd->vdev_child[c], ubbest); 690789Sahrens 691789Sahrens if (!vd->vdev_ops->vdev_op_leaf) 692789Sahrens return; 693789Sahrens 694789Sahrens if (vdev_is_dead(vd)) 695789Sahrens return; 696789Sahrens 697789Sahrens for (l = 0; l < VDEV_LABELS; l++) { 6981732Sbonwick for (n = 0; n < VDEV_UBERBLOCK_COUNT(vd); n++) { 699789Sahrens vdev_label_read(zio, vd, l, 7001732Sbonwick zio_buf_alloc(VDEV_UBERBLOCK_SIZE(vd)), 7011732Sbonwick VDEV_UBERBLOCK_OFFSET(vd, n), 7021732Sbonwick VDEV_UBERBLOCK_SIZE(vd), 703789Sahrens vdev_uberblock_load_done, ubbest); 704789Sahrens } 705789Sahrens } 706789Sahrens } 707789Sahrens 708789Sahrens /* 709789Sahrens * Write the uberblock to both labels of all leaves of the specified vdev. 7101635Sbonwick * We only get credit for writes to known-visible vdevs; see spa_vdev_add(). 711789Sahrens */ 712789Sahrens static void 713789Sahrens vdev_uberblock_sync_done(zio_t *zio) 714789Sahrens { 715789Sahrens uint64_t *good_writes = zio->io_root->io_private; 716789Sahrens 7171635Sbonwick if (zio->io_error == 0 && zio->io_vd->vdev_top->vdev_ms_array != 0) 718789Sahrens atomic_add_64(good_writes, 1); 719789Sahrens } 720789Sahrens 721789Sahrens static void 7221732Sbonwick vdev_uberblock_sync(zio_t *zio, uberblock_t *ub, vdev_t *vd, uint64_t txg) 723789Sahrens { 724789Sahrens int l, c, n; 725789Sahrens 726789Sahrens for (c = 0; c < vd->vdev_children; c++) 7271732Sbonwick vdev_uberblock_sync(zio, ub, vd->vdev_child[c], txg); 728789Sahrens 729789Sahrens if (!vd->vdev_ops->vdev_op_leaf) 730789Sahrens return; 731789Sahrens 732789Sahrens if (vdev_is_dead(vd)) 733789Sahrens return; 734789Sahrens 7351732Sbonwick n = txg & (VDEV_UBERBLOCK_COUNT(vd) - 1); 736789Sahrens 7371732Sbonwick ASSERT(ub->ub_txg == txg); 738789Sahrens 739789Sahrens for (l = 0; l < VDEV_LABELS; l++) 7401732Sbonwick vdev_label_write(zio, vd, l, ub, 7411732Sbonwick VDEV_UBERBLOCK_OFFSET(vd, n), 7421732Sbonwick VDEV_UBERBLOCK_SIZE(vd), 7431732Sbonwick vdev_uberblock_sync_done, NULL); 744789Sahrens 745789Sahrens dprintf("vdev %s in txg %llu\n", vdev_description(vd), txg); 746789Sahrens } 747789Sahrens 748789Sahrens static int 7491732Sbonwick vdev_uberblock_sync_tree(spa_t *spa, uberblock_t *ub, vdev_t *vd, uint64_t txg) 750789Sahrens { 7511732Sbonwick uberblock_t *ubbuf; 7521732Sbonwick size_t size = vd->vdev_top ? VDEV_UBERBLOCK_SIZE(vd) : SPA_MAXBLOCKSIZE; 753789Sahrens uint64_t *good_writes; 754789Sahrens zio_t *zio; 755789Sahrens int error; 756789Sahrens 7571732Sbonwick ubbuf = zio_buf_alloc(size); 7581732Sbonwick bzero(ubbuf, size); 7591732Sbonwick *ubbuf = *ub; 760789Sahrens 761789Sahrens good_writes = kmem_zalloc(sizeof (uint64_t), KM_SLEEP); 762789Sahrens 763789Sahrens zio = zio_root(spa, NULL, good_writes, 764789Sahrens ZIO_FLAG_CONFIG_HELD | ZIO_FLAG_CANFAIL); 765789Sahrens 7661732Sbonwick vdev_uberblock_sync(zio, ubbuf, vd, txg); 767789Sahrens 768789Sahrens error = zio_wait(zio); 769789Sahrens 770789Sahrens if (error && *good_writes != 0) { 771789Sahrens dprintf("partial success: good_writes = %llu\n", *good_writes); 772789Sahrens error = 0; 773789Sahrens } 774789Sahrens 775789Sahrens /* 776789Sahrens * It's possible to have no good writes and no error if every vdev is in 777789Sahrens * the CANT_OPEN state. 778789Sahrens */ 779789Sahrens if (*good_writes == 0 && error == 0) 780789Sahrens error = EIO; 781789Sahrens 782789Sahrens kmem_free(good_writes, sizeof (uint64_t)); 7831732Sbonwick zio_buf_free(ubbuf, size); 784789Sahrens 785789Sahrens return (error); 786789Sahrens } 787789Sahrens 788789Sahrens /* 789789Sahrens * Sync out an individual vdev. 790789Sahrens */ 791789Sahrens static void 792789Sahrens vdev_sync_label_done(zio_t *zio) 793789Sahrens { 794789Sahrens uint64_t *good_writes = zio->io_root->io_private; 795789Sahrens 796789Sahrens if (zio->io_error == 0) 797789Sahrens atomic_add_64(good_writes, 1); 798789Sahrens } 799789Sahrens 800789Sahrens static void 801789Sahrens vdev_sync_label(zio_t *zio, vdev_t *vd, int l, uint64_t txg) 802789Sahrens { 803789Sahrens nvlist_t *label; 804789Sahrens vdev_phys_t *vp; 805789Sahrens char *buf; 806789Sahrens size_t buflen; 807789Sahrens int c; 808789Sahrens 809789Sahrens for (c = 0; c < vd->vdev_children; c++) 810789Sahrens vdev_sync_label(zio, vd->vdev_child[c], l, txg); 811789Sahrens 812789Sahrens if (!vd->vdev_ops->vdev_op_leaf) 813789Sahrens return; 814789Sahrens 815789Sahrens if (vdev_is_dead(vd)) 816789Sahrens return; 817789Sahrens 818789Sahrens /* 819789Sahrens * Generate a label describing the top-level config to which we belong. 820789Sahrens */ 8211635Sbonwick label = spa_config_generate(vd->vdev_spa, vd, txg, B_FALSE); 822789Sahrens 823789Sahrens vp = zio_buf_alloc(sizeof (vdev_phys_t)); 824789Sahrens bzero(vp, sizeof (vdev_phys_t)); 825789Sahrens 826789Sahrens buf = vp->vp_nvlist; 827789Sahrens buflen = sizeof (vp->vp_nvlist); 828789Sahrens 8291544Seschrock if (nvlist_pack(label, &buf, &buflen, NV_ENCODE_XDR, KM_SLEEP) == 0) 830789Sahrens vdev_label_write(zio, vd, l, vp, 831789Sahrens offsetof(vdev_label_t, vl_vdev_phys), sizeof (vdev_phys_t), 832789Sahrens vdev_sync_label_done, NULL); 833789Sahrens 834789Sahrens zio_buf_free(vp, sizeof (vdev_phys_t)); 835789Sahrens nvlist_free(label); 836789Sahrens 837789Sahrens dprintf("%s label %d txg %llu\n", vdev_description(vd), l, txg); 838789Sahrens } 839789Sahrens 840789Sahrens static int 841789Sahrens vdev_sync_labels(vdev_t *vd, int l, uint64_t txg) 842789Sahrens { 843789Sahrens uint64_t *good_writes; 844789Sahrens zio_t *zio; 845789Sahrens int error; 846789Sahrens 847789Sahrens ASSERT(vd == vd->vdev_top); 848789Sahrens 849789Sahrens good_writes = kmem_zalloc(sizeof (uint64_t), KM_SLEEP); 850789Sahrens 851789Sahrens zio = zio_root(vd->vdev_spa, NULL, good_writes, 852789Sahrens ZIO_FLAG_CONFIG_HELD | ZIO_FLAG_CANFAIL); 853789Sahrens 854789Sahrens /* 855789Sahrens * Recursively kick off writes to all labels. 856789Sahrens */ 857789Sahrens vdev_sync_label(zio, vd, l, txg); 858789Sahrens 859789Sahrens error = zio_wait(zio); 860789Sahrens 861789Sahrens if (error && *good_writes != 0) { 862789Sahrens dprintf("partial success: good_writes = %llu\n", *good_writes); 863789Sahrens error = 0; 864789Sahrens } 865789Sahrens 866789Sahrens if (*good_writes == 0 && error == 0) 867789Sahrens error = ENODEV; 868789Sahrens 869789Sahrens kmem_free(good_writes, sizeof (uint64_t)); 870789Sahrens 871789Sahrens return (error); 872789Sahrens } 873789Sahrens 874789Sahrens /* 875789Sahrens * Sync the entire vdev configuration. 876789Sahrens * 877789Sahrens * The order of operations is carefully crafted to ensure that 878789Sahrens * if the system panics or loses power at any time, the state on disk 879789Sahrens * is still transactionally consistent. The in-line comments below 880789Sahrens * describe the failure semantics at each stage. 881789Sahrens * 882789Sahrens * Moreover, it is designed to be idempotent: if spa_sync_labels() fails 883789Sahrens * at any time, you can just call it again, and it will resume its work. 884789Sahrens */ 885789Sahrens int 8861635Sbonwick vdev_config_sync(vdev_t *uvd, uint64_t txg) 887789Sahrens { 8881635Sbonwick spa_t *spa = uvd->vdev_spa; 889789Sahrens uberblock_t *ub = &spa->spa_uberblock; 890789Sahrens vdev_t *rvd = spa->spa_root_vdev; 8911635Sbonwick vdev_t *vd; 892789Sahrens zio_t *zio; 8931637Sbonwick int l, error; 894789Sahrens 895789Sahrens ASSERT(ub->ub_txg <= txg); 896789Sahrens 897789Sahrens /* 898789Sahrens * If this isn't a resync due to I/O errors, and nothing changed 899789Sahrens * in this transaction group, and the vdev configuration hasn't changed, 9001635Sbonwick * then there's nothing to do. 901789Sahrens */ 902789Sahrens if (ub->ub_txg < txg && uberblock_update(ub, rvd, txg) == B_FALSE && 903789Sahrens list_is_empty(&spa->spa_dirty_list)) { 904789Sahrens dprintf("nothing to sync in %s in txg %llu\n", 905789Sahrens spa_name(spa), txg); 906789Sahrens return (0); 907789Sahrens } 908789Sahrens 909789Sahrens if (txg > spa_freeze_txg(spa)) 910789Sahrens return (0); 911789Sahrens 9121635Sbonwick ASSERT(txg <= spa->spa_final_txg); 9131635Sbonwick 914789Sahrens dprintf("syncing %s txg %llu\n", spa_name(spa), txg); 915789Sahrens 916789Sahrens /* 917789Sahrens * Flush the write cache of every disk that's been written to 918789Sahrens * in this transaction group. This ensures that all blocks 919789Sahrens * written in this txg will be committed to stable storage 920789Sahrens * before any uberblock that references them. 921789Sahrens */ 922789Sahrens zio = zio_root(spa, NULL, NULL, 923789Sahrens ZIO_FLAG_CONFIG_HELD | ZIO_FLAG_CANFAIL); 924789Sahrens for (vd = txg_list_head(&spa->spa_vdev_txg_list, TXG_CLEAN(txg)); vd; 925789Sahrens vd = txg_list_next(&spa->spa_vdev_txg_list, vd, TXG_CLEAN(txg))) { 926789Sahrens zio_nowait(zio_ioctl(zio, spa, vd, DKIOCFLUSHWRITECACHE, 927789Sahrens NULL, NULL, ZIO_PRIORITY_NOW, 928789Sahrens ZIO_FLAG_CANFAIL | ZIO_FLAG_DONT_RETRY)); 929789Sahrens } 930789Sahrens (void) zio_wait(zio); 931789Sahrens 932789Sahrens /* 933789Sahrens * Sync out the even labels (L0, L2) for every dirty vdev. If the 934789Sahrens * system dies in the middle of this process, that's OK: all of the 935789Sahrens * even labels that made it to disk will be newer than any uberblock, 936789Sahrens * and will therefore be considered invalid. The odd labels (L1, L3), 937789Sahrens * which have not yet been touched, will still be valid. 938789Sahrens */ 939789Sahrens for (vd = list_head(&spa->spa_dirty_list); vd != NULL; 940789Sahrens vd = list_next(&spa->spa_dirty_list, vd)) { 941789Sahrens for (l = 0; l < VDEV_LABELS; l++) { 942789Sahrens if (l & 1) 943789Sahrens continue; 944789Sahrens if ((error = vdev_sync_labels(vd, l, txg)) != 0) 945789Sahrens return (error); 946789Sahrens } 947789Sahrens } 948789Sahrens 949789Sahrens /* 950789Sahrens * Flush the new labels to disk. This ensures that all even-label 951789Sahrens * updates are committed to stable storage before the uberblock update. 952789Sahrens */ 953789Sahrens zio = zio_root(spa, NULL, NULL, 954789Sahrens ZIO_FLAG_CONFIG_HELD | ZIO_FLAG_CANFAIL); 955789Sahrens for (vd = list_head(&spa->spa_dirty_list); vd != NULL; 956789Sahrens vd = list_next(&spa->spa_dirty_list, vd)) { 957789Sahrens zio_nowait(zio_ioctl(zio, spa, vd, DKIOCFLUSHWRITECACHE, 958789Sahrens NULL, NULL, ZIO_PRIORITY_NOW, 959789Sahrens ZIO_FLAG_CANFAIL | ZIO_FLAG_DONT_RETRY)); 960789Sahrens } 961789Sahrens (void) zio_wait(zio); 962789Sahrens 963789Sahrens /* 9641635Sbonwick * Sync the uberblocks to all vdevs in the tree specified by uvd. 9651635Sbonwick * If the system dies in the middle of this step, there are two cases 9661635Sbonwick * to consider, and the on-disk state is consistent either way: 967789Sahrens * 968789Sahrens * (1) If none of the new uberblocks made it to disk, then the 969789Sahrens * previous uberblock will be the newest, and the odd labels 970789Sahrens * (which had not yet been touched) will be valid with respect 971789Sahrens * to that uberblock. 972789Sahrens * 973789Sahrens * (2) If one or more new uberblocks made it to disk, then they 974789Sahrens * will be the newest, and the even labels (which had all 975789Sahrens * been successfully committed) will be valid with respect 976789Sahrens * to the new uberblocks. 977789Sahrens */ 978789Sahrens if ((error = vdev_uberblock_sync_tree(spa, ub, uvd, txg)) != 0) 979789Sahrens return (error); 980789Sahrens 981789Sahrens /* 982789Sahrens * Flush the uberblocks to disk. This ensures that the odd labels 983789Sahrens * are no longer needed (because the new uberblocks and the even 984789Sahrens * labels are safely on disk), so it is safe to overwrite them. 985789Sahrens */ 986789Sahrens (void) zio_wait(zio_ioctl(NULL, spa, uvd, DKIOCFLUSHWRITECACHE, 987789Sahrens NULL, NULL, ZIO_PRIORITY_NOW, 988789Sahrens ZIO_FLAG_CONFIG_HELD | ZIO_FLAG_CANFAIL | ZIO_FLAG_DONT_RETRY)); 989789Sahrens 990789Sahrens /* 991789Sahrens * Sync out odd labels for every dirty vdev. If the system dies 992789Sahrens * in the middle of this process, the even labels and the new 993789Sahrens * uberblocks will suffice to open the pool. The next time 994789Sahrens * the pool is opened, the first thing we'll do -- before any 995789Sahrens * user data is modified -- is mark every vdev dirty so that 996789Sahrens * all labels will be brought up to date. 997789Sahrens */ 998789Sahrens for (vd = list_head(&spa->spa_dirty_list); vd != NULL; 999789Sahrens vd = list_next(&spa->spa_dirty_list, vd)) { 1000789Sahrens for (l = 0; l < VDEV_LABELS; l++) { 1001789Sahrens if ((l & 1) == 0) 1002789Sahrens continue; 1003789Sahrens if ((error = vdev_sync_labels(vd, l, txg)) != 0) 1004789Sahrens return (error); 1005789Sahrens } 1006789Sahrens } 1007789Sahrens 1008789Sahrens /* 1009789Sahrens * Flush the new labels to disk. This ensures that all odd-label 1010789Sahrens * updates are committed to stable storage before the next 1011789Sahrens * transaction group begins. 1012789Sahrens */ 1013789Sahrens zio = zio_root(spa, NULL, NULL, 1014789Sahrens ZIO_FLAG_CONFIG_HELD | ZIO_FLAG_CANFAIL); 1015789Sahrens for (vd = list_head(&spa->spa_dirty_list); vd != NULL; 1016789Sahrens vd = list_next(&spa->spa_dirty_list, vd)) { 1017789Sahrens zio_nowait(zio_ioctl(zio, spa, vd, DKIOCFLUSHWRITECACHE, 1018789Sahrens NULL, NULL, ZIO_PRIORITY_NOW, 1019789Sahrens ZIO_FLAG_CANFAIL | ZIO_FLAG_DONT_RETRY)); 1020789Sahrens } 1021789Sahrens (void) zio_wait(zio); 1022789Sahrens 1023789Sahrens return (0); 1024789Sahrens } 1025