1eda14cbcSMatt Macy /* 2eda14cbcSMatt Macy * CDDL HEADER START 3eda14cbcSMatt Macy * 4eda14cbcSMatt Macy * The contents of this file are subject to the terms of the 5eda14cbcSMatt Macy * Common Development and Distribution License (the "License"). 6eda14cbcSMatt Macy * You may not use this file except in compliance with the License. 7eda14cbcSMatt Macy * 8eda14cbcSMatt Macy * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE 9eda14cbcSMatt Macy * or http://www.opensolaris.org/os/licensing. 10eda14cbcSMatt Macy * See the License for the specific language governing permissions 11eda14cbcSMatt Macy * and limitations under the License. 12eda14cbcSMatt Macy * 13eda14cbcSMatt Macy * When distributing Covered Code, include this CDDL HEADER in each 14eda14cbcSMatt Macy * file and include the License file at usr/src/OPENSOLARIS.LICENSE. 15eda14cbcSMatt Macy * If applicable, add the following below this CDDL HEADER, with the 16eda14cbcSMatt Macy * fields enclosed by brackets "[]" replaced with your own identifying 17eda14cbcSMatt Macy * information: Portions Copyright [yyyy] [name of copyright owner] 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); 499eda14cbcSMatt Macy if (vd->vdev_removing) { 500eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_REMOVING, 501eda14cbcSMatt Macy vd->vdev_removing); 502eda14cbcSMatt Macy } 503eda14cbcSMatt Macy 504eda14cbcSMatt Macy /* zpool command expects alloc class data */ 505eda14cbcSMatt Macy if (getstats && vd->vdev_alloc_bias != VDEV_BIAS_NONE) { 506eda14cbcSMatt Macy const char *bias = NULL; 507eda14cbcSMatt Macy 508eda14cbcSMatt Macy switch (vd->vdev_alloc_bias) { 509eda14cbcSMatt Macy case VDEV_BIAS_LOG: 510eda14cbcSMatt Macy bias = VDEV_ALLOC_BIAS_LOG; 511eda14cbcSMatt Macy break; 512eda14cbcSMatt Macy case VDEV_BIAS_SPECIAL: 513eda14cbcSMatt Macy bias = VDEV_ALLOC_BIAS_SPECIAL; 514eda14cbcSMatt Macy break; 515eda14cbcSMatt Macy case VDEV_BIAS_DEDUP: 516eda14cbcSMatt Macy bias = VDEV_ALLOC_BIAS_DEDUP; 517eda14cbcSMatt Macy break; 518eda14cbcSMatt Macy default: 519eda14cbcSMatt Macy ASSERT3U(vd->vdev_alloc_bias, ==, 520eda14cbcSMatt Macy VDEV_BIAS_NONE); 521eda14cbcSMatt Macy } 522eda14cbcSMatt Macy fnvlist_add_string(nv, ZPOOL_CONFIG_ALLOCATION_BIAS, 523eda14cbcSMatt Macy bias); 524eda14cbcSMatt Macy } 525eda14cbcSMatt Macy } 526eda14cbcSMatt Macy 527eda14cbcSMatt Macy if (vd->vdev_dtl_sm != NULL) { 528eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_DTL, 529eda14cbcSMatt Macy space_map_object(vd->vdev_dtl_sm)); 530eda14cbcSMatt Macy } 531eda14cbcSMatt Macy 532eda14cbcSMatt Macy if (vic->vic_mapping_object != 0) { 533eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_INDIRECT_OBJECT, 534eda14cbcSMatt Macy vic->vic_mapping_object); 535eda14cbcSMatt Macy } 536eda14cbcSMatt Macy 537eda14cbcSMatt Macy if (vic->vic_births_object != 0) { 538eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_INDIRECT_BIRTHS, 539eda14cbcSMatt Macy vic->vic_births_object); 540eda14cbcSMatt Macy } 541eda14cbcSMatt Macy 542eda14cbcSMatt Macy if (vic->vic_prev_indirect_vdev != UINT64_MAX) { 543eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_PREV_INDIRECT_VDEV, 544eda14cbcSMatt Macy vic->vic_prev_indirect_vdev); 545eda14cbcSMatt Macy } 546eda14cbcSMatt Macy 547eda14cbcSMatt Macy if (vd->vdev_crtxg) 548eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_CREATE_TXG, vd->vdev_crtxg); 549eda14cbcSMatt Macy 550eda14cbcSMatt Macy if (vd->vdev_expansion_time) 551eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_EXPANSION_TIME, 552eda14cbcSMatt Macy vd->vdev_expansion_time); 553eda14cbcSMatt Macy 554eda14cbcSMatt Macy if (flags & VDEV_CONFIG_MOS) { 555eda14cbcSMatt Macy if (vd->vdev_leaf_zap != 0) { 556eda14cbcSMatt Macy ASSERT(vd->vdev_ops->vdev_op_leaf); 557eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_VDEV_LEAF_ZAP, 558eda14cbcSMatt Macy vd->vdev_leaf_zap); 559eda14cbcSMatt Macy } 560eda14cbcSMatt Macy 561eda14cbcSMatt Macy if (vd->vdev_top_zap != 0) { 562eda14cbcSMatt Macy ASSERT(vd == vd->vdev_top); 563eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_VDEV_TOP_ZAP, 564eda14cbcSMatt Macy vd->vdev_top_zap); 565eda14cbcSMatt Macy } 566eda14cbcSMatt Macy 567eda14cbcSMatt Macy if (vd->vdev_resilver_deferred) { 568eda14cbcSMatt Macy ASSERT(vd->vdev_ops->vdev_op_leaf); 569eda14cbcSMatt Macy ASSERT(spa->spa_resilver_deferred); 570eda14cbcSMatt Macy fnvlist_add_boolean(nv, ZPOOL_CONFIG_RESILVER_DEFER); 571eda14cbcSMatt Macy } 572eda14cbcSMatt Macy } 573eda14cbcSMatt Macy 574eda14cbcSMatt Macy if (getstats) { 575eda14cbcSMatt Macy vdev_config_generate_stats(vd, nv); 576eda14cbcSMatt Macy 577eda14cbcSMatt Macy root_vdev_actions_getprogress(vd, nv); 578eda14cbcSMatt Macy top_vdev_actions_getprogress(vd, nv); 579eda14cbcSMatt Macy 580eda14cbcSMatt Macy /* 581eda14cbcSMatt Macy * Note: this can be called from open context 582eda14cbcSMatt Macy * (spa_get_stats()), so we need the rwlock to prevent 583eda14cbcSMatt Macy * the mapping from being changed by condensing. 584eda14cbcSMatt Macy */ 585eda14cbcSMatt Macy rw_enter(&vd->vdev_indirect_rwlock, RW_READER); 586eda14cbcSMatt Macy if (vd->vdev_indirect_mapping != NULL) { 587eda14cbcSMatt Macy ASSERT(vd->vdev_indirect_births != NULL); 588eda14cbcSMatt Macy vdev_indirect_mapping_t *vim = 589eda14cbcSMatt Macy vd->vdev_indirect_mapping; 590eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_INDIRECT_SIZE, 591eda14cbcSMatt Macy vdev_indirect_mapping_size(vim)); 592eda14cbcSMatt Macy } 593eda14cbcSMatt Macy rw_exit(&vd->vdev_indirect_rwlock); 594eda14cbcSMatt Macy if (vd->vdev_mg != NULL && 595eda14cbcSMatt Macy vd->vdev_mg->mg_fragmentation != ZFS_FRAG_INVALID) { 596eda14cbcSMatt Macy /* 597eda14cbcSMatt Macy * Compute approximately how much memory would be used 598eda14cbcSMatt Macy * for the indirect mapping if this device were to 599eda14cbcSMatt Macy * be removed. 600eda14cbcSMatt Macy * 601eda14cbcSMatt Macy * Note: If the frag metric is invalid, then not 602eda14cbcSMatt Macy * enough metaslabs have been converted to have 603eda14cbcSMatt Macy * histograms. 604eda14cbcSMatt Macy */ 605eda14cbcSMatt Macy uint64_t seg_count = 0; 606eda14cbcSMatt Macy uint64_t to_alloc = vd->vdev_stat.vs_alloc; 607eda14cbcSMatt Macy 608eda14cbcSMatt Macy /* 609eda14cbcSMatt Macy * There are the same number of allocated segments 610eda14cbcSMatt Macy * as free segments, so we will have at least one 611eda14cbcSMatt Macy * entry per free segment. However, small free 612eda14cbcSMatt Macy * segments (smaller than vdev_removal_max_span) 613eda14cbcSMatt Macy * will be combined with adjacent allocated segments 614eda14cbcSMatt Macy * as a single mapping. 615eda14cbcSMatt Macy */ 616eda14cbcSMatt Macy for (int i = 0; i < RANGE_TREE_HISTOGRAM_SIZE; i++) { 617180f8225SMatt Macy if (i + 1 < highbit64(vdev_removal_max_span) 618180f8225SMatt Macy - 1) { 619eda14cbcSMatt Macy to_alloc += 620eda14cbcSMatt Macy vd->vdev_mg->mg_histogram[i] << 621eda14cbcSMatt Macy (i + 1); 622eda14cbcSMatt Macy } else { 623eda14cbcSMatt Macy seg_count += 624eda14cbcSMatt Macy vd->vdev_mg->mg_histogram[i]; 625eda14cbcSMatt Macy } 626eda14cbcSMatt Macy } 627eda14cbcSMatt Macy 628eda14cbcSMatt Macy /* 629eda14cbcSMatt Macy * The maximum length of a mapping is 630eda14cbcSMatt Macy * zfs_remove_max_segment, so we need at least one entry 631eda14cbcSMatt Macy * per zfs_remove_max_segment of allocated data. 632eda14cbcSMatt Macy */ 633eda14cbcSMatt Macy seg_count += to_alloc / spa_remove_max_segment(spa); 634eda14cbcSMatt Macy 635eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_INDIRECT_SIZE, 636eda14cbcSMatt Macy seg_count * 637eda14cbcSMatt Macy sizeof (vdev_indirect_mapping_entry_phys_t)); 638eda14cbcSMatt Macy } 639eda14cbcSMatt Macy } 640eda14cbcSMatt Macy 641eda14cbcSMatt Macy if (!vd->vdev_ops->vdev_op_leaf) { 642eda14cbcSMatt Macy nvlist_t **child; 643eda14cbcSMatt Macy int c, idx; 644eda14cbcSMatt Macy 645eda14cbcSMatt Macy ASSERT(!vd->vdev_ishole); 646eda14cbcSMatt Macy 647eda14cbcSMatt Macy child = kmem_alloc(vd->vdev_children * sizeof (nvlist_t *), 648eda14cbcSMatt Macy KM_SLEEP); 649eda14cbcSMatt Macy 650eda14cbcSMatt Macy for (c = 0, idx = 0; c < vd->vdev_children; c++) { 651eda14cbcSMatt Macy vdev_t *cvd = vd->vdev_child[c]; 652eda14cbcSMatt Macy 653eda14cbcSMatt Macy /* 654eda14cbcSMatt Macy * If we're generating an nvlist of removing 655eda14cbcSMatt Macy * vdevs then skip over any device which is 656eda14cbcSMatt Macy * not being removed. 657eda14cbcSMatt Macy */ 658eda14cbcSMatt Macy if ((flags & VDEV_CONFIG_REMOVING) && 659eda14cbcSMatt Macy !cvd->vdev_removing) 660eda14cbcSMatt Macy continue; 661eda14cbcSMatt Macy 662eda14cbcSMatt Macy child[idx++] = vdev_config_generate(spa, cvd, 663eda14cbcSMatt Macy getstats, flags); 664eda14cbcSMatt Macy } 665eda14cbcSMatt Macy 666eda14cbcSMatt Macy if (idx) { 667eda14cbcSMatt Macy fnvlist_add_nvlist_array(nv, ZPOOL_CONFIG_CHILDREN, 668eda14cbcSMatt Macy child, idx); 669eda14cbcSMatt Macy } 670eda14cbcSMatt Macy 671eda14cbcSMatt Macy for (c = 0; c < idx; c++) 672eda14cbcSMatt Macy nvlist_free(child[c]); 673eda14cbcSMatt Macy 674eda14cbcSMatt Macy kmem_free(child, vd->vdev_children * sizeof (nvlist_t *)); 675eda14cbcSMatt Macy 676eda14cbcSMatt Macy } else { 677eda14cbcSMatt Macy const char *aux = NULL; 678eda14cbcSMatt Macy 679eda14cbcSMatt Macy if (vd->vdev_offline && !vd->vdev_tmpoffline) 680eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_OFFLINE, B_TRUE); 681eda14cbcSMatt Macy if (vd->vdev_resilver_txg != 0) 682eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_RESILVER_TXG, 683eda14cbcSMatt Macy vd->vdev_resilver_txg); 684eda14cbcSMatt Macy if (vd->vdev_rebuild_txg != 0) 685eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_REBUILD_TXG, 686eda14cbcSMatt Macy vd->vdev_rebuild_txg); 687eda14cbcSMatt Macy if (vd->vdev_faulted) 688eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_FAULTED, B_TRUE); 689eda14cbcSMatt Macy if (vd->vdev_degraded) 690eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_DEGRADED, B_TRUE); 691eda14cbcSMatt Macy if (vd->vdev_removed) 692eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_REMOVED, B_TRUE); 693eda14cbcSMatt Macy if (vd->vdev_unspare) 694eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_UNSPARE, B_TRUE); 695eda14cbcSMatt Macy if (vd->vdev_ishole) 696eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_IS_HOLE, B_TRUE); 697eda14cbcSMatt Macy 698eda14cbcSMatt Macy /* Set the reason why we're FAULTED/DEGRADED. */ 699eda14cbcSMatt Macy switch (vd->vdev_stat.vs_aux) { 700eda14cbcSMatt Macy case VDEV_AUX_ERR_EXCEEDED: 701eda14cbcSMatt Macy aux = "err_exceeded"; 702eda14cbcSMatt Macy break; 703eda14cbcSMatt Macy 704eda14cbcSMatt Macy case VDEV_AUX_EXTERNAL: 705eda14cbcSMatt Macy aux = "external"; 706eda14cbcSMatt Macy break; 707eda14cbcSMatt Macy } 708eda14cbcSMatt Macy 709eda14cbcSMatt Macy if (aux != NULL && !vd->vdev_tmpoffline) { 710eda14cbcSMatt Macy fnvlist_add_string(nv, ZPOOL_CONFIG_AUX_STATE, aux); 711eda14cbcSMatt Macy } else { 712eda14cbcSMatt Macy /* 713eda14cbcSMatt Macy * We're healthy - clear any previous AUX_STATE values. 714eda14cbcSMatt Macy */ 715eda14cbcSMatt Macy if (nvlist_exists(nv, ZPOOL_CONFIG_AUX_STATE)) 716eda14cbcSMatt Macy nvlist_remove_all(nv, ZPOOL_CONFIG_AUX_STATE); 717eda14cbcSMatt Macy } 718eda14cbcSMatt Macy 719eda14cbcSMatt Macy if (vd->vdev_splitting && vd->vdev_orig_guid != 0LL) { 720eda14cbcSMatt Macy fnvlist_add_uint64(nv, ZPOOL_CONFIG_ORIG_GUID, 721eda14cbcSMatt Macy vd->vdev_orig_guid); 722eda14cbcSMatt Macy } 723eda14cbcSMatt Macy } 724eda14cbcSMatt Macy 725eda14cbcSMatt Macy return (nv); 726eda14cbcSMatt Macy } 727eda14cbcSMatt Macy 728eda14cbcSMatt Macy /* 729eda14cbcSMatt Macy * Generate a view of the top-level vdevs. If we currently have holes 730eda14cbcSMatt Macy * in the namespace, then generate an array which contains a list of holey 731eda14cbcSMatt Macy * vdevs. Additionally, add the number of top-level children that currently 732eda14cbcSMatt Macy * exist. 733eda14cbcSMatt Macy */ 734eda14cbcSMatt Macy void 735eda14cbcSMatt Macy vdev_top_config_generate(spa_t *spa, nvlist_t *config) 736eda14cbcSMatt Macy { 737eda14cbcSMatt Macy vdev_t *rvd = spa->spa_root_vdev; 738eda14cbcSMatt Macy uint64_t *array; 739eda14cbcSMatt Macy uint_t c, idx; 740eda14cbcSMatt Macy 741eda14cbcSMatt Macy array = kmem_alloc(rvd->vdev_children * sizeof (uint64_t), KM_SLEEP); 742eda14cbcSMatt Macy 743eda14cbcSMatt Macy for (c = 0, idx = 0; c < rvd->vdev_children; c++) { 744eda14cbcSMatt Macy vdev_t *tvd = rvd->vdev_child[c]; 745eda14cbcSMatt Macy 746eda14cbcSMatt Macy if (tvd->vdev_ishole) { 747eda14cbcSMatt Macy array[idx++] = c; 748eda14cbcSMatt Macy } 749eda14cbcSMatt Macy } 750eda14cbcSMatt Macy 751eda14cbcSMatt Macy if (idx) { 752eda14cbcSMatt Macy VERIFY(nvlist_add_uint64_array(config, ZPOOL_CONFIG_HOLE_ARRAY, 753eda14cbcSMatt Macy array, idx) == 0); 754eda14cbcSMatt Macy } 755eda14cbcSMatt Macy 756eda14cbcSMatt Macy VERIFY(nvlist_add_uint64(config, ZPOOL_CONFIG_VDEV_CHILDREN, 757eda14cbcSMatt Macy rvd->vdev_children) == 0); 758eda14cbcSMatt Macy 759eda14cbcSMatt Macy kmem_free(array, rvd->vdev_children * sizeof (uint64_t)); 760eda14cbcSMatt Macy } 761eda14cbcSMatt Macy 762eda14cbcSMatt Macy /* 763eda14cbcSMatt Macy * Returns the configuration from the label of the given vdev. For vdevs 764eda14cbcSMatt Macy * which don't have a txg value stored on their label (i.e. spares/cache) 765eda14cbcSMatt Macy * or have not been completely initialized (txg = 0) just return 766eda14cbcSMatt Macy * the configuration from the first valid label we find. Otherwise, 767eda14cbcSMatt Macy * find the most up-to-date label that does not exceed the specified 768eda14cbcSMatt Macy * 'txg' value. 769eda14cbcSMatt Macy */ 770eda14cbcSMatt Macy nvlist_t * 771eda14cbcSMatt Macy vdev_label_read_config(vdev_t *vd, uint64_t txg) 772eda14cbcSMatt Macy { 773eda14cbcSMatt Macy spa_t *spa = vd->vdev_spa; 774eda14cbcSMatt Macy nvlist_t *config = NULL; 775184c1b94SMartin Matuska vdev_phys_t *vp[VDEV_LABELS]; 776184c1b94SMartin Matuska abd_t *vp_abd[VDEV_LABELS]; 777184c1b94SMartin Matuska zio_t *zio[VDEV_LABELS]; 778eda14cbcSMatt Macy uint64_t best_txg = 0; 779eda14cbcSMatt Macy uint64_t label_txg = 0; 780eda14cbcSMatt Macy int error = 0; 781eda14cbcSMatt Macy int flags = ZIO_FLAG_CONFIG_WRITER | ZIO_FLAG_CANFAIL | 782eda14cbcSMatt Macy ZIO_FLAG_SPECULATIVE; 783eda14cbcSMatt Macy 784184c1b94SMartin Matuska ASSERT(vd->vdev_validate_thread == curthread || 785184c1b94SMartin Matuska spa_config_held(spa, SCL_STATE_ALL, RW_WRITER) == SCL_STATE_ALL); 786eda14cbcSMatt Macy 787eda14cbcSMatt Macy if (!vdev_readable(vd)) 788eda14cbcSMatt Macy return (NULL); 789eda14cbcSMatt Macy 7907877fdebSMatt Macy /* 7917877fdebSMatt Macy * The label for a dRAID distributed spare is not stored on disk. 7927877fdebSMatt Macy * Instead it is generated when needed which allows us to bypass 7937877fdebSMatt Macy * the pipeline when reading the config from the label. 7947877fdebSMatt Macy */ 7957877fdebSMatt Macy if (vd->vdev_ops == &vdev_draid_spare_ops) 7967877fdebSMatt Macy return (vdev_draid_read_config_spare(vd)); 7977877fdebSMatt Macy 798184c1b94SMartin Matuska for (int l = 0; l < VDEV_LABELS; l++) { 799184c1b94SMartin Matuska vp_abd[l] = abd_alloc_linear(sizeof (vdev_phys_t), B_TRUE); 800184c1b94SMartin Matuska vp[l] = abd_to_buf(vp_abd[l]); 801184c1b94SMartin Matuska } 802eda14cbcSMatt Macy 803eda14cbcSMatt Macy retry: 804eda14cbcSMatt Macy for (int l = 0; l < VDEV_LABELS; l++) { 805184c1b94SMartin Matuska zio[l] = zio_root(spa, NULL, NULL, flags); 806184c1b94SMartin Matuska 807184c1b94SMartin Matuska vdev_label_read(zio[l], vd, l, vp_abd[l], 808184c1b94SMartin Matuska offsetof(vdev_label_t, vl_vdev_phys), sizeof (vdev_phys_t), 809184c1b94SMartin Matuska NULL, NULL, flags); 810184c1b94SMartin Matuska } 811184c1b94SMartin Matuska for (int l = 0; l < VDEV_LABELS; l++) { 812eda14cbcSMatt Macy nvlist_t *label = NULL; 813eda14cbcSMatt Macy 814184c1b94SMartin Matuska if (zio_wait(zio[l]) == 0 && 815184c1b94SMartin Matuska nvlist_unpack(vp[l]->vp_nvlist, sizeof (vp[l]->vp_nvlist), 816eda14cbcSMatt Macy &label, 0) == 0) { 817eda14cbcSMatt Macy /* 818eda14cbcSMatt Macy * Auxiliary vdevs won't have txg values in their 819eda14cbcSMatt Macy * labels and newly added vdevs may not have been 820eda14cbcSMatt Macy * completely initialized so just return the 821eda14cbcSMatt Macy * configuration from the first valid label we 822eda14cbcSMatt Macy * encounter. 823eda14cbcSMatt Macy */ 824eda14cbcSMatt Macy error = nvlist_lookup_uint64(label, 825eda14cbcSMatt Macy ZPOOL_CONFIG_POOL_TXG, &label_txg); 826eda14cbcSMatt Macy if ((error || label_txg == 0) && !config) { 827eda14cbcSMatt Macy config = label; 828184c1b94SMartin Matuska for (l++; l < VDEV_LABELS; l++) 829184c1b94SMartin Matuska zio_wait(zio[l]); 830eda14cbcSMatt Macy break; 831eda14cbcSMatt Macy } else if (label_txg <= txg && label_txg > best_txg) { 832eda14cbcSMatt Macy best_txg = label_txg; 833eda14cbcSMatt Macy nvlist_free(config); 834eda14cbcSMatt Macy config = fnvlist_dup(label); 835eda14cbcSMatt Macy } 836eda14cbcSMatt Macy } 837eda14cbcSMatt Macy 838eda14cbcSMatt Macy if (label != NULL) { 839eda14cbcSMatt Macy nvlist_free(label); 840eda14cbcSMatt Macy label = NULL; 841eda14cbcSMatt Macy } 842eda14cbcSMatt Macy } 843eda14cbcSMatt Macy 844eda14cbcSMatt Macy if (config == NULL && !(flags & ZIO_FLAG_TRYHARD)) { 845eda14cbcSMatt Macy flags |= ZIO_FLAG_TRYHARD; 846eda14cbcSMatt Macy goto retry; 847eda14cbcSMatt Macy } 848eda14cbcSMatt Macy 849eda14cbcSMatt Macy /* 850eda14cbcSMatt Macy * We found a valid label but it didn't pass txg restrictions. 851eda14cbcSMatt Macy */ 852eda14cbcSMatt Macy if (config == NULL && label_txg != 0) { 853eda14cbcSMatt Macy vdev_dbgmsg(vd, "label discarded as txg is too large " 854eda14cbcSMatt Macy "(%llu > %llu)", (u_longlong_t)label_txg, 855eda14cbcSMatt Macy (u_longlong_t)txg); 856eda14cbcSMatt Macy } 857eda14cbcSMatt Macy 858184c1b94SMartin Matuska for (int l = 0; l < VDEV_LABELS; l++) { 859184c1b94SMartin Matuska abd_free(vp_abd[l]); 860184c1b94SMartin Matuska } 861eda14cbcSMatt Macy 862eda14cbcSMatt Macy return (config); 863eda14cbcSMatt Macy } 864eda14cbcSMatt Macy 865eda14cbcSMatt Macy /* 866eda14cbcSMatt Macy * Determine if a device is in use. The 'spare_guid' parameter will be filled 867eda14cbcSMatt Macy * in with the device guid if this spare is active elsewhere on the system. 868eda14cbcSMatt Macy */ 869eda14cbcSMatt Macy static boolean_t 870eda14cbcSMatt Macy vdev_inuse(vdev_t *vd, uint64_t crtxg, vdev_labeltype_t reason, 871eda14cbcSMatt Macy uint64_t *spare_guid, uint64_t *l2cache_guid) 872eda14cbcSMatt Macy { 873eda14cbcSMatt Macy spa_t *spa = vd->vdev_spa; 874eda14cbcSMatt Macy uint64_t state, pool_guid, device_guid, txg, spare_pool; 875eda14cbcSMatt Macy uint64_t vdtxg = 0; 876eda14cbcSMatt Macy nvlist_t *label; 877eda14cbcSMatt Macy 878eda14cbcSMatt Macy if (spare_guid) 879eda14cbcSMatt Macy *spare_guid = 0ULL; 880eda14cbcSMatt Macy if (l2cache_guid) 881eda14cbcSMatt Macy *l2cache_guid = 0ULL; 882eda14cbcSMatt Macy 883eda14cbcSMatt Macy /* 884eda14cbcSMatt Macy * Read the label, if any, and perform some basic sanity checks. 885eda14cbcSMatt Macy */ 886eda14cbcSMatt Macy if ((label = vdev_label_read_config(vd, -1ULL)) == NULL) 887eda14cbcSMatt Macy return (B_FALSE); 888eda14cbcSMatt Macy 889eda14cbcSMatt Macy (void) nvlist_lookup_uint64(label, ZPOOL_CONFIG_CREATE_TXG, 890eda14cbcSMatt Macy &vdtxg); 891eda14cbcSMatt Macy 892eda14cbcSMatt Macy if (nvlist_lookup_uint64(label, ZPOOL_CONFIG_POOL_STATE, 893eda14cbcSMatt Macy &state) != 0 || 894eda14cbcSMatt Macy nvlist_lookup_uint64(label, ZPOOL_CONFIG_GUID, 895eda14cbcSMatt Macy &device_guid) != 0) { 896eda14cbcSMatt Macy nvlist_free(label); 897eda14cbcSMatt Macy return (B_FALSE); 898eda14cbcSMatt Macy } 899eda14cbcSMatt Macy 900eda14cbcSMatt Macy if (state != POOL_STATE_SPARE && state != POOL_STATE_L2CACHE && 901eda14cbcSMatt Macy (nvlist_lookup_uint64(label, ZPOOL_CONFIG_POOL_GUID, 902eda14cbcSMatt Macy &pool_guid) != 0 || 903eda14cbcSMatt Macy nvlist_lookup_uint64(label, ZPOOL_CONFIG_POOL_TXG, 904eda14cbcSMatt Macy &txg) != 0)) { 905eda14cbcSMatt Macy nvlist_free(label); 906eda14cbcSMatt Macy return (B_FALSE); 907eda14cbcSMatt Macy } 908eda14cbcSMatt Macy 909eda14cbcSMatt Macy nvlist_free(label); 910eda14cbcSMatt Macy 911eda14cbcSMatt Macy /* 912eda14cbcSMatt Macy * Check to see if this device indeed belongs to the pool it claims to 913eda14cbcSMatt Macy * be a part of. The only way this is allowed is if the device is a hot 914eda14cbcSMatt Macy * spare (which we check for later on). 915eda14cbcSMatt Macy */ 916eda14cbcSMatt Macy if (state != POOL_STATE_SPARE && state != POOL_STATE_L2CACHE && 917eda14cbcSMatt Macy !spa_guid_exists(pool_guid, device_guid) && 918eda14cbcSMatt Macy !spa_spare_exists(device_guid, NULL, NULL) && 919eda14cbcSMatt Macy !spa_l2cache_exists(device_guid, NULL)) 920eda14cbcSMatt Macy return (B_FALSE); 921eda14cbcSMatt Macy 922eda14cbcSMatt Macy /* 923eda14cbcSMatt Macy * If the transaction group is zero, then this an initialized (but 924eda14cbcSMatt Macy * unused) label. This is only an error if the create transaction 925eda14cbcSMatt Macy * on-disk is the same as the one we're using now, in which case the 926eda14cbcSMatt Macy * user has attempted to add the same vdev multiple times in the same 927eda14cbcSMatt Macy * transaction. 928eda14cbcSMatt Macy */ 929eda14cbcSMatt Macy if (state != POOL_STATE_SPARE && state != POOL_STATE_L2CACHE && 930eda14cbcSMatt Macy txg == 0 && vdtxg == crtxg) 931eda14cbcSMatt Macy return (B_TRUE); 932eda14cbcSMatt Macy 933eda14cbcSMatt Macy /* 934eda14cbcSMatt Macy * Check to see if this is a spare device. We do an explicit check for 935eda14cbcSMatt Macy * spa_has_spare() here because it may be on our pending list of spares 936*dae17134SMartin Matuska * to add. 937eda14cbcSMatt Macy */ 938eda14cbcSMatt Macy if (spa_spare_exists(device_guid, &spare_pool, NULL) || 939eda14cbcSMatt Macy spa_has_spare(spa, device_guid)) { 940eda14cbcSMatt Macy if (spare_guid) 941eda14cbcSMatt Macy *spare_guid = device_guid; 942eda14cbcSMatt Macy 943eda14cbcSMatt Macy switch (reason) { 944eda14cbcSMatt Macy case VDEV_LABEL_CREATE: 945eda14cbcSMatt Macy return (B_TRUE); 946eda14cbcSMatt Macy 947eda14cbcSMatt Macy case VDEV_LABEL_REPLACE: 948eda14cbcSMatt Macy return (!spa_has_spare(spa, device_guid) || 949eda14cbcSMatt Macy spare_pool != 0ULL); 950eda14cbcSMatt Macy 951eda14cbcSMatt Macy case VDEV_LABEL_SPARE: 952eda14cbcSMatt Macy return (spa_has_spare(spa, device_guid)); 953eda14cbcSMatt Macy default: 954eda14cbcSMatt Macy break; 955eda14cbcSMatt Macy } 956eda14cbcSMatt Macy } 957eda14cbcSMatt Macy 958eda14cbcSMatt Macy /* 959eda14cbcSMatt Macy * Check to see if this is an l2cache device. 960eda14cbcSMatt Macy */ 961*dae17134SMartin Matuska if (spa_l2cache_exists(device_guid, NULL) || 962*dae17134SMartin Matuska spa_has_l2cache(spa, device_guid)) { 963*dae17134SMartin Matuska if (l2cache_guid) 964*dae17134SMartin Matuska *l2cache_guid = device_guid; 965*dae17134SMartin Matuska 966*dae17134SMartin Matuska switch (reason) { 967*dae17134SMartin Matuska case VDEV_LABEL_CREATE: 968eda14cbcSMatt Macy return (B_TRUE); 969eda14cbcSMatt Macy 970*dae17134SMartin Matuska case VDEV_LABEL_REPLACE: 971*dae17134SMartin Matuska return (!spa_has_l2cache(spa, device_guid)); 972*dae17134SMartin Matuska 973*dae17134SMartin Matuska case VDEV_LABEL_L2CACHE: 974*dae17134SMartin Matuska return (spa_has_l2cache(spa, device_guid)); 975*dae17134SMartin Matuska default: 976*dae17134SMartin Matuska break; 977*dae17134SMartin Matuska } 978*dae17134SMartin Matuska } 979*dae17134SMartin Matuska 980eda14cbcSMatt Macy /* 981eda14cbcSMatt Macy * We can't rely on a pool's state if it's been imported 982eda14cbcSMatt Macy * read-only. Instead we look to see if the pools is marked 983eda14cbcSMatt Macy * read-only in the namespace and set the state to active. 984eda14cbcSMatt Macy */ 985eda14cbcSMatt Macy if (state != POOL_STATE_SPARE && state != POOL_STATE_L2CACHE && 986eda14cbcSMatt Macy (spa = spa_by_guid(pool_guid, device_guid)) != NULL && 987eda14cbcSMatt Macy spa_mode(spa) == SPA_MODE_READ) 988eda14cbcSMatt Macy state = POOL_STATE_ACTIVE; 989eda14cbcSMatt Macy 990eda14cbcSMatt Macy /* 991eda14cbcSMatt Macy * If the device is marked ACTIVE, then this device is in use by another 992eda14cbcSMatt Macy * pool on the system. 993eda14cbcSMatt Macy */ 994eda14cbcSMatt Macy return (state == POOL_STATE_ACTIVE); 995eda14cbcSMatt Macy } 996eda14cbcSMatt Macy 997eda14cbcSMatt Macy /* 998eda14cbcSMatt Macy * Initialize a vdev label. We check to make sure each leaf device is not in 999eda14cbcSMatt Macy * use, and writable. We put down an initial label which we will later 1000eda14cbcSMatt Macy * overwrite with a complete label. Note that it's important to do this 1001eda14cbcSMatt Macy * sequentially, not in parallel, so that we catch cases of multiple use of the 1002eda14cbcSMatt Macy * same leaf vdev in the vdev we're creating -- e.g. mirroring a disk with 1003eda14cbcSMatt Macy * itself. 1004eda14cbcSMatt Macy */ 1005eda14cbcSMatt Macy int 1006eda14cbcSMatt Macy vdev_label_init(vdev_t *vd, uint64_t crtxg, vdev_labeltype_t reason) 1007eda14cbcSMatt Macy { 1008eda14cbcSMatt Macy spa_t *spa = vd->vdev_spa; 1009eda14cbcSMatt Macy nvlist_t *label; 1010eda14cbcSMatt Macy vdev_phys_t *vp; 1011eda14cbcSMatt Macy abd_t *vp_abd; 1012eda14cbcSMatt Macy abd_t *bootenv; 1013eda14cbcSMatt Macy uberblock_t *ub; 1014eda14cbcSMatt Macy abd_t *ub_abd; 1015eda14cbcSMatt Macy zio_t *zio; 1016eda14cbcSMatt Macy char *buf; 1017eda14cbcSMatt Macy size_t buflen; 1018eda14cbcSMatt Macy int error; 1019eda14cbcSMatt Macy uint64_t spare_guid = 0, l2cache_guid = 0; 1020eda14cbcSMatt Macy int flags = ZIO_FLAG_CONFIG_WRITER | ZIO_FLAG_CANFAIL; 1021eda14cbcSMatt Macy 1022eda14cbcSMatt Macy ASSERT(spa_config_held(spa, SCL_ALL, RW_WRITER) == SCL_ALL); 1023eda14cbcSMatt Macy 1024eda14cbcSMatt Macy for (int c = 0; c < vd->vdev_children; c++) 1025eda14cbcSMatt Macy if ((error = vdev_label_init(vd->vdev_child[c], 1026eda14cbcSMatt Macy crtxg, reason)) != 0) 1027eda14cbcSMatt Macy return (error); 1028eda14cbcSMatt Macy 1029eda14cbcSMatt Macy /* Track the creation time for this vdev */ 1030eda14cbcSMatt Macy vd->vdev_crtxg = crtxg; 1031eda14cbcSMatt Macy 1032eda14cbcSMatt Macy if (!vd->vdev_ops->vdev_op_leaf || !spa_writeable(spa)) 1033eda14cbcSMatt Macy return (0); 1034eda14cbcSMatt Macy 1035eda14cbcSMatt Macy /* 1036eda14cbcSMatt Macy * Dead vdevs cannot be initialized. 1037eda14cbcSMatt Macy */ 1038eda14cbcSMatt Macy if (vdev_is_dead(vd)) 1039eda14cbcSMatt Macy return (SET_ERROR(EIO)); 1040eda14cbcSMatt Macy 1041eda14cbcSMatt Macy /* 1042eda14cbcSMatt Macy * Determine if the vdev is in use. 1043eda14cbcSMatt Macy */ 1044eda14cbcSMatt Macy if (reason != VDEV_LABEL_REMOVE && reason != VDEV_LABEL_SPLIT && 1045eda14cbcSMatt Macy vdev_inuse(vd, crtxg, reason, &spare_guid, &l2cache_guid)) 1046eda14cbcSMatt Macy return (SET_ERROR(EBUSY)); 1047eda14cbcSMatt Macy 1048eda14cbcSMatt Macy /* 1049eda14cbcSMatt Macy * If this is a request to add or replace a spare or l2cache device 1050eda14cbcSMatt Macy * that is in use elsewhere on the system, then we must update the 1051eda14cbcSMatt Macy * guid (which was initialized to a random value) to reflect the 1052eda14cbcSMatt Macy * actual GUID (which is shared between multiple pools). 1053eda14cbcSMatt Macy */ 1054eda14cbcSMatt Macy if (reason != VDEV_LABEL_REMOVE && reason != VDEV_LABEL_L2CACHE && 1055eda14cbcSMatt Macy spare_guid != 0ULL) { 1056eda14cbcSMatt Macy uint64_t guid_delta = spare_guid - vd->vdev_guid; 1057eda14cbcSMatt Macy 1058eda14cbcSMatt Macy vd->vdev_guid += guid_delta; 1059eda14cbcSMatt Macy 1060eda14cbcSMatt Macy for (vdev_t *pvd = vd; pvd != NULL; pvd = pvd->vdev_parent) 1061eda14cbcSMatt Macy pvd->vdev_guid_sum += guid_delta; 1062eda14cbcSMatt Macy 1063eda14cbcSMatt Macy /* 1064eda14cbcSMatt Macy * If this is a replacement, then we want to fallthrough to the 1065eda14cbcSMatt Macy * rest of the code. If we're adding a spare, then it's already 1066eda14cbcSMatt Macy * labeled appropriately and we can just return. 1067eda14cbcSMatt Macy */ 1068eda14cbcSMatt Macy if (reason == VDEV_LABEL_SPARE) 1069eda14cbcSMatt Macy return (0); 1070eda14cbcSMatt Macy ASSERT(reason == VDEV_LABEL_REPLACE || 1071eda14cbcSMatt Macy reason == VDEV_LABEL_SPLIT); 1072eda14cbcSMatt Macy } 1073eda14cbcSMatt Macy 1074eda14cbcSMatt Macy if (reason != VDEV_LABEL_REMOVE && reason != VDEV_LABEL_SPARE && 1075eda14cbcSMatt Macy l2cache_guid != 0ULL) { 1076eda14cbcSMatt Macy uint64_t guid_delta = l2cache_guid - vd->vdev_guid; 1077eda14cbcSMatt Macy 1078eda14cbcSMatt Macy vd->vdev_guid += guid_delta; 1079eda14cbcSMatt Macy 1080eda14cbcSMatt Macy for (vdev_t *pvd = vd; pvd != NULL; pvd = pvd->vdev_parent) 1081eda14cbcSMatt Macy pvd->vdev_guid_sum += guid_delta; 1082eda14cbcSMatt Macy 1083eda14cbcSMatt Macy /* 1084eda14cbcSMatt Macy * If this is a replacement, then we want to fallthrough to the 1085eda14cbcSMatt Macy * rest of the code. If we're adding an l2cache, then it's 1086eda14cbcSMatt Macy * already labeled appropriately and we can just return. 1087eda14cbcSMatt Macy */ 1088eda14cbcSMatt Macy if (reason == VDEV_LABEL_L2CACHE) 1089eda14cbcSMatt Macy return (0); 1090eda14cbcSMatt Macy ASSERT(reason == VDEV_LABEL_REPLACE); 1091eda14cbcSMatt Macy } 1092eda14cbcSMatt Macy 1093eda14cbcSMatt Macy /* 1094eda14cbcSMatt Macy * Initialize its label. 1095eda14cbcSMatt Macy */ 1096eda14cbcSMatt Macy vp_abd = abd_alloc_linear(sizeof (vdev_phys_t), B_TRUE); 1097eda14cbcSMatt Macy abd_zero(vp_abd, sizeof (vdev_phys_t)); 1098eda14cbcSMatt Macy vp = abd_to_buf(vp_abd); 1099eda14cbcSMatt Macy 1100eda14cbcSMatt Macy /* 1101eda14cbcSMatt Macy * Generate a label describing the pool and our top-level vdev. 1102eda14cbcSMatt Macy * We mark it as being from txg 0 to indicate that it's not 1103eda14cbcSMatt Macy * really part of an active pool just yet. The labels will 1104eda14cbcSMatt Macy * be written again with a meaningful txg by spa_sync(). 1105eda14cbcSMatt Macy */ 1106eda14cbcSMatt Macy if (reason == VDEV_LABEL_SPARE || 1107eda14cbcSMatt Macy (reason == VDEV_LABEL_REMOVE && vd->vdev_isspare)) { 1108eda14cbcSMatt Macy /* 1109eda14cbcSMatt Macy * For inactive hot spares, we generate a special label that 1110eda14cbcSMatt Macy * identifies as a mutually shared hot spare. We write the 1111eda14cbcSMatt Macy * label if we are adding a hot spare, or if we are removing an 1112eda14cbcSMatt Macy * active hot spare (in which case we want to revert the 1113eda14cbcSMatt Macy * labels). 1114eda14cbcSMatt Macy */ 1115eda14cbcSMatt Macy VERIFY(nvlist_alloc(&label, NV_UNIQUE_NAME, KM_SLEEP) == 0); 1116eda14cbcSMatt Macy 1117eda14cbcSMatt Macy VERIFY(nvlist_add_uint64(label, ZPOOL_CONFIG_VERSION, 1118eda14cbcSMatt Macy spa_version(spa)) == 0); 1119eda14cbcSMatt Macy VERIFY(nvlist_add_uint64(label, ZPOOL_CONFIG_POOL_STATE, 1120eda14cbcSMatt Macy POOL_STATE_SPARE) == 0); 1121eda14cbcSMatt Macy VERIFY(nvlist_add_uint64(label, ZPOOL_CONFIG_GUID, 1122eda14cbcSMatt Macy vd->vdev_guid) == 0); 1123eda14cbcSMatt Macy } else if (reason == VDEV_LABEL_L2CACHE || 1124eda14cbcSMatt Macy (reason == VDEV_LABEL_REMOVE && vd->vdev_isl2cache)) { 1125eda14cbcSMatt Macy /* 1126eda14cbcSMatt Macy * For level 2 ARC devices, add a special label. 1127eda14cbcSMatt Macy */ 1128eda14cbcSMatt Macy VERIFY(nvlist_alloc(&label, NV_UNIQUE_NAME, KM_SLEEP) == 0); 1129eda14cbcSMatt Macy 1130eda14cbcSMatt Macy VERIFY(nvlist_add_uint64(label, ZPOOL_CONFIG_VERSION, 1131eda14cbcSMatt Macy spa_version(spa)) == 0); 1132eda14cbcSMatt Macy VERIFY(nvlist_add_uint64(label, ZPOOL_CONFIG_POOL_STATE, 1133eda14cbcSMatt Macy POOL_STATE_L2CACHE) == 0); 1134eda14cbcSMatt Macy VERIFY(nvlist_add_uint64(label, ZPOOL_CONFIG_GUID, 1135eda14cbcSMatt Macy vd->vdev_guid) == 0); 1136eda14cbcSMatt Macy } else { 1137eda14cbcSMatt Macy uint64_t txg = 0ULL; 1138eda14cbcSMatt Macy 1139eda14cbcSMatt Macy if (reason == VDEV_LABEL_SPLIT) 1140eda14cbcSMatt Macy txg = spa->spa_uberblock.ub_txg; 1141eda14cbcSMatt Macy label = spa_config_generate(spa, vd, txg, B_FALSE); 1142eda14cbcSMatt Macy 1143eda14cbcSMatt Macy /* 1144eda14cbcSMatt Macy * Add our creation time. This allows us to detect multiple 1145eda14cbcSMatt Macy * vdev uses as described above, and automatically expires if we 1146eda14cbcSMatt Macy * fail. 1147eda14cbcSMatt Macy */ 1148eda14cbcSMatt Macy VERIFY(nvlist_add_uint64(label, ZPOOL_CONFIG_CREATE_TXG, 1149eda14cbcSMatt Macy crtxg) == 0); 1150eda14cbcSMatt Macy } 1151eda14cbcSMatt Macy 1152eda14cbcSMatt Macy buf = vp->vp_nvlist; 1153eda14cbcSMatt Macy buflen = sizeof (vp->vp_nvlist); 1154eda14cbcSMatt Macy 1155eda14cbcSMatt Macy error = nvlist_pack(label, &buf, &buflen, NV_ENCODE_XDR, KM_SLEEP); 1156eda14cbcSMatt Macy if (error != 0) { 1157eda14cbcSMatt Macy nvlist_free(label); 1158eda14cbcSMatt Macy abd_free(vp_abd); 1159eda14cbcSMatt Macy /* EFAULT means nvlist_pack ran out of room */ 1160eda14cbcSMatt Macy return (SET_ERROR(error == EFAULT ? ENAMETOOLONG : EINVAL)); 1161eda14cbcSMatt Macy } 1162eda14cbcSMatt Macy 1163eda14cbcSMatt Macy /* 1164eda14cbcSMatt Macy * Initialize uberblock template. 1165eda14cbcSMatt Macy */ 1166eda14cbcSMatt Macy ub_abd = abd_alloc_linear(VDEV_UBERBLOCK_RING, B_TRUE); 1167eda14cbcSMatt Macy abd_zero(ub_abd, VDEV_UBERBLOCK_RING); 1168eda14cbcSMatt Macy abd_copy_from_buf(ub_abd, &spa->spa_uberblock, sizeof (uberblock_t)); 1169eda14cbcSMatt Macy ub = abd_to_buf(ub_abd); 1170eda14cbcSMatt Macy ub->ub_txg = 0; 1171eda14cbcSMatt Macy 1172eda14cbcSMatt Macy /* Initialize the 2nd padding area. */ 1173eda14cbcSMatt Macy bootenv = abd_alloc_for_io(VDEV_PAD_SIZE, B_TRUE); 1174eda14cbcSMatt Macy abd_zero(bootenv, VDEV_PAD_SIZE); 1175eda14cbcSMatt Macy 1176eda14cbcSMatt Macy /* 1177eda14cbcSMatt Macy * Write everything in parallel. 1178eda14cbcSMatt Macy */ 1179eda14cbcSMatt Macy retry: 1180eda14cbcSMatt Macy zio = zio_root(spa, NULL, NULL, flags); 1181eda14cbcSMatt Macy 1182eda14cbcSMatt Macy for (int l = 0; l < VDEV_LABELS; l++) { 1183eda14cbcSMatt Macy 1184eda14cbcSMatt Macy vdev_label_write(zio, vd, l, vp_abd, 1185eda14cbcSMatt Macy offsetof(vdev_label_t, vl_vdev_phys), 1186eda14cbcSMatt Macy sizeof (vdev_phys_t), NULL, NULL, flags); 1187eda14cbcSMatt Macy 1188eda14cbcSMatt Macy /* 1189eda14cbcSMatt Macy * Skip the 1st padding area. 1190eda14cbcSMatt Macy * Zero out the 2nd padding area where it might have 1191eda14cbcSMatt Macy * left over data from previous filesystem format. 1192eda14cbcSMatt Macy */ 1193eda14cbcSMatt Macy vdev_label_write(zio, vd, l, bootenv, 1194eda14cbcSMatt Macy offsetof(vdev_label_t, vl_be), 1195eda14cbcSMatt Macy VDEV_PAD_SIZE, NULL, NULL, flags); 1196eda14cbcSMatt Macy 1197eda14cbcSMatt Macy vdev_label_write(zio, vd, l, ub_abd, 1198eda14cbcSMatt Macy offsetof(vdev_label_t, vl_uberblock), 1199eda14cbcSMatt Macy VDEV_UBERBLOCK_RING, NULL, NULL, flags); 1200eda14cbcSMatt Macy } 1201eda14cbcSMatt Macy 1202eda14cbcSMatt Macy error = zio_wait(zio); 1203eda14cbcSMatt Macy 1204eda14cbcSMatt Macy if (error != 0 && !(flags & ZIO_FLAG_TRYHARD)) { 1205eda14cbcSMatt Macy flags |= ZIO_FLAG_TRYHARD; 1206eda14cbcSMatt Macy goto retry; 1207eda14cbcSMatt Macy } 1208eda14cbcSMatt Macy 1209eda14cbcSMatt Macy nvlist_free(label); 1210eda14cbcSMatt Macy abd_free(bootenv); 1211eda14cbcSMatt Macy abd_free(ub_abd); 1212eda14cbcSMatt Macy abd_free(vp_abd); 1213eda14cbcSMatt Macy 1214eda14cbcSMatt Macy /* 1215eda14cbcSMatt Macy * If this vdev hasn't been previously identified as a spare, then we 1216eda14cbcSMatt Macy * mark it as such only if a) we are labeling it as a spare, or b) it 1217eda14cbcSMatt Macy * exists as a spare elsewhere in the system. Do the same for 1218eda14cbcSMatt Macy * level 2 ARC devices. 1219eda14cbcSMatt Macy */ 1220eda14cbcSMatt Macy if (error == 0 && !vd->vdev_isspare && 1221eda14cbcSMatt Macy (reason == VDEV_LABEL_SPARE || 1222eda14cbcSMatt Macy spa_spare_exists(vd->vdev_guid, NULL, NULL))) 1223eda14cbcSMatt Macy spa_spare_add(vd); 1224eda14cbcSMatt Macy 1225eda14cbcSMatt Macy if (error == 0 && !vd->vdev_isl2cache && 1226eda14cbcSMatt Macy (reason == VDEV_LABEL_L2CACHE || 1227eda14cbcSMatt Macy spa_l2cache_exists(vd->vdev_guid, NULL))) 1228eda14cbcSMatt Macy spa_l2cache_add(vd); 1229eda14cbcSMatt Macy 1230eda14cbcSMatt Macy return (error); 1231eda14cbcSMatt Macy } 1232eda14cbcSMatt Macy 1233eda14cbcSMatt Macy /* 1234eda14cbcSMatt Macy * Done callback for vdev_label_read_bootenv_impl. If this is the first 1235eda14cbcSMatt Macy * callback to finish, store our abd in the callback pointer. Otherwise, we 1236eda14cbcSMatt Macy * just free our abd and return. 1237eda14cbcSMatt Macy */ 1238eda14cbcSMatt Macy static void 1239eda14cbcSMatt Macy vdev_label_read_bootenv_done(zio_t *zio) 1240eda14cbcSMatt Macy { 1241eda14cbcSMatt Macy zio_t *rio = zio->io_private; 1242eda14cbcSMatt Macy abd_t **cbp = rio->io_private; 1243eda14cbcSMatt Macy 1244eda14cbcSMatt Macy ASSERT3U(zio->io_size, ==, VDEV_PAD_SIZE); 1245eda14cbcSMatt Macy 1246eda14cbcSMatt Macy if (zio->io_error == 0) { 1247eda14cbcSMatt Macy mutex_enter(&rio->io_lock); 1248eda14cbcSMatt Macy if (*cbp == NULL) { 1249eda14cbcSMatt Macy /* Will free this buffer in vdev_label_read_bootenv. */ 1250eda14cbcSMatt Macy *cbp = zio->io_abd; 1251eda14cbcSMatt Macy } else { 1252eda14cbcSMatt Macy abd_free(zio->io_abd); 1253eda14cbcSMatt Macy } 1254eda14cbcSMatt Macy mutex_exit(&rio->io_lock); 1255eda14cbcSMatt Macy } else { 1256eda14cbcSMatt Macy abd_free(zio->io_abd); 1257eda14cbcSMatt Macy } 1258eda14cbcSMatt Macy } 1259eda14cbcSMatt Macy 1260eda14cbcSMatt Macy static void 1261eda14cbcSMatt Macy vdev_label_read_bootenv_impl(zio_t *zio, vdev_t *vd, int flags) 1262eda14cbcSMatt Macy { 1263eda14cbcSMatt Macy for (int c = 0; c < vd->vdev_children; c++) 1264eda14cbcSMatt Macy vdev_label_read_bootenv_impl(zio, vd->vdev_child[c], flags); 1265eda14cbcSMatt Macy 1266eda14cbcSMatt Macy /* 1267eda14cbcSMatt Macy * We just use the first label that has a correct checksum; the 1268eda14cbcSMatt Macy * bootloader should have rewritten them all to be the same on boot, 1269eda14cbcSMatt Macy * and any changes we made since boot have been the same across all 1270eda14cbcSMatt Macy * labels. 1271eda14cbcSMatt Macy */ 1272eda14cbcSMatt Macy if (vd->vdev_ops->vdev_op_leaf && vdev_readable(vd)) { 12732c48331dSMatt Macy for (int l = 0; l < VDEV_LABELS; l++) { 1274eda14cbcSMatt Macy vdev_label_read(zio, vd, l, 1275eda14cbcSMatt Macy abd_alloc_linear(VDEV_PAD_SIZE, B_FALSE), 1276eda14cbcSMatt Macy offsetof(vdev_label_t, vl_be), VDEV_PAD_SIZE, 1277eda14cbcSMatt Macy vdev_label_read_bootenv_done, zio, flags); 1278eda14cbcSMatt Macy } 1279eda14cbcSMatt Macy } 1280eda14cbcSMatt Macy } 1281eda14cbcSMatt Macy 1282eda14cbcSMatt Macy int 12832c48331dSMatt Macy vdev_label_read_bootenv(vdev_t *rvd, nvlist_t *bootenv) 1284eda14cbcSMatt Macy { 12852c48331dSMatt Macy nvlist_t *config; 1286eda14cbcSMatt Macy spa_t *spa = rvd->vdev_spa; 1287eda14cbcSMatt Macy abd_t *abd = NULL; 1288eda14cbcSMatt Macy int flags = ZIO_FLAG_CONFIG_WRITER | ZIO_FLAG_CANFAIL | 1289eda14cbcSMatt Macy ZIO_FLAG_SPECULATIVE | ZIO_FLAG_TRYHARD; 1290eda14cbcSMatt Macy 12912c48331dSMatt Macy ASSERT(bootenv); 1292eda14cbcSMatt Macy ASSERT(spa_config_held(spa, SCL_ALL, RW_WRITER) == SCL_ALL); 1293eda14cbcSMatt Macy 1294eda14cbcSMatt Macy zio_t *zio = zio_root(spa, NULL, &abd, flags); 1295eda14cbcSMatt Macy vdev_label_read_bootenv_impl(zio, rvd, flags); 1296eda14cbcSMatt Macy int err = zio_wait(zio); 1297eda14cbcSMatt Macy 1298eda14cbcSMatt Macy if (abd != NULL) { 12992c48331dSMatt Macy char *buf; 1300eda14cbcSMatt Macy vdev_boot_envblock_t *vbe = abd_to_buf(abd); 13012c48331dSMatt Macy 13022c48331dSMatt Macy vbe->vbe_version = ntohll(vbe->vbe_version); 13032c48331dSMatt Macy switch (vbe->vbe_version) { 13042c48331dSMatt Macy case VB_RAW: 13052c48331dSMatt Macy /* 13062c48331dSMatt Macy * if we have textual data in vbe_bootenv, create nvlist 13072c48331dSMatt Macy * with key "envmap". 13082c48331dSMatt Macy */ 13092c48331dSMatt Macy fnvlist_add_uint64(bootenv, BOOTENV_VERSION, VB_RAW); 1310eda14cbcSMatt Macy vbe->vbe_bootenv[sizeof (vbe->vbe_bootenv) - 1] = '\0'; 13112c48331dSMatt Macy fnvlist_add_string(bootenv, GRUB_ENVMAP, 13122c48331dSMatt Macy vbe->vbe_bootenv); 13132c48331dSMatt Macy break; 13142c48331dSMatt Macy 13152c48331dSMatt Macy case VB_NVLIST: 13162c48331dSMatt Macy err = nvlist_unpack(vbe->vbe_bootenv, 13172c48331dSMatt Macy sizeof (vbe->vbe_bootenv), &config, 0); 13182c48331dSMatt Macy if (err == 0) { 13192c48331dSMatt Macy fnvlist_merge(bootenv, config); 13202c48331dSMatt Macy nvlist_free(config); 13212c48331dSMatt Macy break; 13222c48331dSMatt Macy } 132353b70c86SMartin Matuska fallthrough; 13242c48331dSMatt Macy default: 13252c48331dSMatt Macy /* Check for FreeBSD zfs bootonce command string */ 13262c48331dSMatt Macy buf = abd_to_buf(abd); 13272c48331dSMatt Macy if (*buf == '\0') { 13282c48331dSMatt Macy fnvlist_add_uint64(bootenv, BOOTENV_VERSION, 13292c48331dSMatt Macy VB_NVLIST); 13302c48331dSMatt Macy break; 13312c48331dSMatt Macy } 13322c48331dSMatt Macy fnvlist_add_string(bootenv, FREEBSD_BOOTONCE, buf); 13332c48331dSMatt Macy } 13342c48331dSMatt Macy 13352c48331dSMatt Macy /* 13362c48331dSMatt Macy * abd was allocated in vdev_label_read_bootenv_impl() 13372c48331dSMatt Macy */ 1338eda14cbcSMatt Macy abd_free(abd); 13392c48331dSMatt Macy /* 13402c48331dSMatt Macy * If we managed to read any successfully, 13412c48331dSMatt Macy * return success. 13422c48331dSMatt Macy */ 1343eda14cbcSMatt Macy return (0); 1344eda14cbcSMatt Macy } 1345eda14cbcSMatt Macy return (err); 1346eda14cbcSMatt Macy } 1347eda14cbcSMatt Macy 1348eda14cbcSMatt Macy int 13492c48331dSMatt Macy vdev_label_write_bootenv(vdev_t *vd, nvlist_t *env) 1350eda14cbcSMatt Macy { 1351eda14cbcSMatt Macy zio_t *zio; 1352eda14cbcSMatt Macy spa_t *spa = vd->vdev_spa; 1353eda14cbcSMatt Macy vdev_boot_envblock_t *bootenv; 1354eda14cbcSMatt Macy int flags = ZIO_FLAG_CONFIG_WRITER | ZIO_FLAG_CANFAIL; 13552c48331dSMatt Macy int error; 13562c48331dSMatt Macy size_t nvsize; 13572c48331dSMatt Macy char *nvbuf; 1358eda14cbcSMatt Macy 13592c48331dSMatt Macy error = nvlist_size(env, &nvsize, NV_ENCODE_XDR); 13602c48331dSMatt Macy if (error != 0) 13612c48331dSMatt Macy return (SET_ERROR(error)); 13622c48331dSMatt Macy 13632c48331dSMatt Macy if (nvsize >= sizeof (bootenv->vbe_bootenv)) { 1364eda14cbcSMatt Macy return (SET_ERROR(E2BIG)); 1365eda14cbcSMatt Macy } 1366eda14cbcSMatt Macy 1367eda14cbcSMatt Macy ASSERT(spa_config_held(spa, SCL_ALL, RW_WRITER) == SCL_ALL); 1368eda14cbcSMatt Macy 13692c48331dSMatt Macy error = ENXIO; 1370eda14cbcSMatt Macy for (int c = 0; c < vd->vdev_children; c++) { 13712c48331dSMatt Macy int child_err; 13722c48331dSMatt Macy 13732c48331dSMatt Macy child_err = vdev_label_write_bootenv(vd->vdev_child[c], env); 1374eda14cbcSMatt Macy /* 1375eda14cbcSMatt Macy * As long as any of the disks managed to write all of their 1376eda14cbcSMatt Macy * labels successfully, return success. 1377eda14cbcSMatt Macy */ 1378eda14cbcSMatt Macy if (child_err == 0) 1379eda14cbcSMatt Macy error = child_err; 1380eda14cbcSMatt Macy } 1381eda14cbcSMatt Macy 1382eda14cbcSMatt Macy if (!vd->vdev_ops->vdev_op_leaf || vdev_is_dead(vd) || 1383eda14cbcSMatt Macy !vdev_writeable(vd)) { 1384eda14cbcSMatt Macy return (error); 1385eda14cbcSMatt Macy } 1386eda14cbcSMatt Macy ASSERT3U(sizeof (*bootenv), ==, VDEV_PAD_SIZE); 1387eda14cbcSMatt Macy abd_t *abd = abd_alloc_for_io(VDEV_PAD_SIZE, B_TRUE); 1388eda14cbcSMatt Macy abd_zero(abd, VDEV_PAD_SIZE); 1389eda14cbcSMatt Macy 13902c48331dSMatt Macy bootenv = abd_borrow_buf_copy(abd, VDEV_PAD_SIZE); 13912c48331dSMatt Macy nvbuf = bootenv->vbe_bootenv; 13922c48331dSMatt Macy nvsize = sizeof (bootenv->vbe_bootenv); 13932c48331dSMatt Macy 13942c48331dSMatt Macy bootenv->vbe_version = fnvlist_lookup_uint64(env, BOOTENV_VERSION); 13952c48331dSMatt Macy switch (bootenv->vbe_version) { 13962c48331dSMatt Macy case VB_RAW: 13972c48331dSMatt Macy if (nvlist_lookup_string(env, GRUB_ENVMAP, &nvbuf) == 0) { 13982c48331dSMatt Macy (void) strlcpy(bootenv->vbe_bootenv, nvbuf, nvsize); 13992c48331dSMatt Macy } 14002c48331dSMatt Macy error = 0; 14012c48331dSMatt Macy break; 14022c48331dSMatt Macy 14032c48331dSMatt Macy case VB_NVLIST: 14042c48331dSMatt Macy error = nvlist_pack(env, &nvbuf, &nvsize, NV_ENCODE_XDR, 14052c48331dSMatt Macy KM_SLEEP); 14062c48331dSMatt Macy break; 14072c48331dSMatt Macy 14082c48331dSMatt Macy default: 14092c48331dSMatt Macy error = EINVAL; 14102c48331dSMatt Macy break; 14112c48331dSMatt Macy } 14122c48331dSMatt Macy 14132c48331dSMatt Macy if (error == 0) { 14142c48331dSMatt Macy bootenv->vbe_version = htonll(bootenv->vbe_version); 1415eda14cbcSMatt Macy abd_return_buf_copy(abd, bootenv, VDEV_PAD_SIZE); 14162c48331dSMatt Macy } else { 14172c48331dSMatt Macy abd_free(abd); 14182c48331dSMatt Macy return (SET_ERROR(error)); 14192c48331dSMatt Macy } 1420eda14cbcSMatt Macy 1421eda14cbcSMatt Macy retry: 1422eda14cbcSMatt Macy zio = zio_root(spa, NULL, NULL, flags); 14232c48331dSMatt Macy for (int l = 0; l < VDEV_LABELS; l++) { 1424eda14cbcSMatt Macy vdev_label_write(zio, vd, l, abd, 1425eda14cbcSMatt Macy offsetof(vdev_label_t, vl_be), 1426eda14cbcSMatt Macy VDEV_PAD_SIZE, NULL, NULL, flags); 1427eda14cbcSMatt Macy } 1428eda14cbcSMatt Macy 1429eda14cbcSMatt Macy error = zio_wait(zio); 1430eda14cbcSMatt Macy if (error != 0 && !(flags & ZIO_FLAG_TRYHARD)) { 1431eda14cbcSMatt Macy flags |= ZIO_FLAG_TRYHARD; 1432eda14cbcSMatt Macy goto retry; 1433eda14cbcSMatt Macy } 1434eda14cbcSMatt Macy 1435eda14cbcSMatt Macy abd_free(abd); 1436eda14cbcSMatt Macy return (error); 1437eda14cbcSMatt Macy } 1438eda14cbcSMatt Macy 1439eda14cbcSMatt Macy /* 1440eda14cbcSMatt Macy * ========================================================================== 1441eda14cbcSMatt Macy * uberblock load/sync 1442eda14cbcSMatt Macy * ========================================================================== 1443eda14cbcSMatt Macy */ 1444eda14cbcSMatt Macy 1445eda14cbcSMatt Macy /* 1446eda14cbcSMatt Macy * Consider the following situation: txg is safely synced to disk. We've 1447eda14cbcSMatt Macy * written the first uberblock for txg + 1, and then we lose power. When we 1448eda14cbcSMatt Macy * come back up, we fail to see the uberblock for txg + 1 because, say, 1449eda14cbcSMatt Macy * it was on a mirrored device and the replica to which we wrote txg + 1 1450eda14cbcSMatt Macy * is now offline. If we then make some changes and sync txg + 1, and then 1451eda14cbcSMatt Macy * the missing replica comes back, then for a few seconds we'll have two 1452eda14cbcSMatt Macy * conflicting uberblocks on disk with the same txg. The solution is simple: 1453eda14cbcSMatt Macy * among uberblocks with equal txg, choose the one with the latest timestamp. 1454eda14cbcSMatt Macy */ 1455eda14cbcSMatt Macy static int 1456eda14cbcSMatt Macy vdev_uberblock_compare(const uberblock_t *ub1, const uberblock_t *ub2) 1457eda14cbcSMatt Macy { 1458eda14cbcSMatt Macy int cmp = TREE_CMP(ub1->ub_txg, ub2->ub_txg); 1459eda14cbcSMatt Macy 1460eda14cbcSMatt Macy if (likely(cmp)) 1461eda14cbcSMatt Macy return (cmp); 1462eda14cbcSMatt Macy 1463eda14cbcSMatt Macy cmp = TREE_CMP(ub1->ub_timestamp, ub2->ub_timestamp); 1464eda14cbcSMatt Macy if (likely(cmp)) 1465eda14cbcSMatt Macy return (cmp); 1466eda14cbcSMatt Macy 1467eda14cbcSMatt Macy /* 1468eda14cbcSMatt Macy * If MMP_VALID(ub) && MMP_SEQ_VALID(ub) then the host has an MMP-aware 1469180f8225SMatt Macy * ZFS, e.g. OpenZFS >= 0.7. 1470eda14cbcSMatt Macy * 1471eda14cbcSMatt Macy * If one ub has MMP and the other does not, they were written by 1472eda14cbcSMatt Macy * different hosts, which matters for MMP. So we treat no MMP/no SEQ as 1473eda14cbcSMatt Macy * a 0 value. 1474eda14cbcSMatt Macy * 1475eda14cbcSMatt Macy * Since timestamp and txg are the same if we get this far, either is 1476eda14cbcSMatt Macy * acceptable for importing the pool. 1477eda14cbcSMatt Macy */ 1478eda14cbcSMatt Macy unsigned int seq1 = 0; 1479eda14cbcSMatt Macy unsigned int seq2 = 0; 1480eda14cbcSMatt Macy 1481eda14cbcSMatt Macy if (MMP_VALID(ub1) && MMP_SEQ_VALID(ub1)) 1482eda14cbcSMatt Macy seq1 = MMP_SEQ(ub1); 1483eda14cbcSMatt Macy 1484eda14cbcSMatt Macy if (MMP_VALID(ub2) && MMP_SEQ_VALID(ub2)) 1485eda14cbcSMatt Macy seq2 = MMP_SEQ(ub2); 1486eda14cbcSMatt Macy 1487eda14cbcSMatt Macy return (TREE_CMP(seq1, seq2)); 1488eda14cbcSMatt Macy } 1489eda14cbcSMatt Macy 1490eda14cbcSMatt Macy struct ubl_cbdata { 1491eda14cbcSMatt Macy uberblock_t *ubl_ubbest; /* Best uberblock */ 1492eda14cbcSMatt Macy vdev_t *ubl_vd; /* vdev associated with the above */ 1493eda14cbcSMatt Macy }; 1494eda14cbcSMatt Macy 1495eda14cbcSMatt Macy static void 1496eda14cbcSMatt Macy vdev_uberblock_load_done(zio_t *zio) 1497eda14cbcSMatt Macy { 1498eda14cbcSMatt Macy vdev_t *vd = zio->io_vd; 1499eda14cbcSMatt Macy spa_t *spa = zio->io_spa; 1500eda14cbcSMatt Macy zio_t *rio = zio->io_private; 1501eda14cbcSMatt Macy uberblock_t *ub = abd_to_buf(zio->io_abd); 1502eda14cbcSMatt Macy struct ubl_cbdata *cbp = rio->io_private; 1503eda14cbcSMatt Macy 1504eda14cbcSMatt Macy ASSERT3U(zio->io_size, ==, VDEV_UBERBLOCK_SIZE(vd)); 1505eda14cbcSMatt Macy 1506eda14cbcSMatt Macy if (zio->io_error == 0 && uberblock_verify(ub) == 0) { 1507eda14cbcSMatt Macy mutex_enter(&rio->io_lock); 1508eda14cbcSMatt Macy if (ub->ub_txg <= spa->spa_load_max_txg && 1509eda14cbcSMatt Macy vdev_uberblock_compare(ub, cbp->ubl_ubbest) > 0) { 1510eda14cbcSMatt Macy /* 1511eda14cbcSMatt Macy * Keep track of the vdev in which this uberblock 1512eda14cbcSMatt Macy * was found. We will use this information later 1513eda14cbcSMatt Macy * to obtain the config nvlist associated with 1514eda14cbcSMatt Macy * this uberblock. 1515eda14cbcSMatt Macy */ 1516eda14cbcSMatt Macy *cbp->ubl_ubbest = *ub; 1517eda14cbcSMatt Macy cbp->ubl_vd = vd; 1518eda14cbcSMatt Macy } 1519eda14cbcSMatt Macy mutex_exit(&rio->io_lock); 1520eda14cbcSMatt Macy } 1521eda14cbcSMatt Macy 1522eda14cbcSMatt Macy abd_free(zio->io_abd); 1523eda14cbcSMatt Macy } 1524eda14cbcSMatt Macy 1525eda14cbcSMatt Macy static void 1526eda14cbcSMatt Macy vdev_uberblock_load_impl(zio_t *zio, vdev_t *vd, int flags, 1527eda14cbcSMatt Macy struct ubl_cbdata *cbp) 1528eda14cbcSMatt Macy { 1529eda14cbcSMatt Macy for (int c = 0; c < vd->vdev_children; c++) 1530eda14cbcSMatt Macy vdev_uberblock_load_impl(zio, vd->vdev_child[c], flags, cbp); 1531eda14cbcSMatt Macy 15327877fdebSMatt Macy if (vd->vdev_ops->vdev_op_leaf && vdev_readable(vd) && 15337877fdebSMatt Macy vd->vdev_ops != &vdev_draid_spare_ops) { 1534eda14cbcSMatt Macy for (int l = 0; l < VDEV_LABELS; l++) { 1535eda14cbcSMatt Macy for (int n = 0; n < VDEV_UBERBLOCK_COUNT(vd); n++) { 1536eda14cbcSMatt Macy vdev_label_read(zio, vd, l, 1537eda14cbcSMatt Macy abd_alloc_linear(VDEV_UBERBLOCK_SIZE(vd), 1538eda14cbcSMatt Macy B_TRUE), VDEV_UBERBLOCK_OFFSET(vd, n), 1539eda14cbcSMatt Macy VDEV_UBERBLOCK_SIZE(vd), 1540eda14cbcSMatt Macy vdev_uberblock_load_done, zio, flags); 1541eda14cbcSMatt Macy } 1542eda14cbcSMatt Macy } 1543eda14cbcSMatt Macy } 1544eda14cbcSMatt Macy } 1545eda14cbcSMatt Macy 1546eda14cbcSMatt Macy /* 1547eda14cbcSMatt Macy * Reads the 'best' uberblock from disk along with its associated 1548eda14cbcSMatt Macy * configuration. First, we read the uberblock array of each label of each 1549eda14cbcSMatt Macy * vdev, keeping track of the uberblock with the highest txg in each array. 1550eda14cbcSMatt Macy * Then, we read the configuration from the same vdev as the best uberblock. 1551eda14cbcSMatt Macy */ 1552eda14cbcSMatt Macy void 1553eda14cbcSMatt Macy vdev_uberblock_load(vdev_t *rvd, uberblock_t *ub, nvlist_t **config) 1554eda14cbcSMatt Macy { 1555eda14cbcSMatt Macy zio_t *zio; 1556eda14cbcSMatt Macy spa_t *spa = rvd->vdev_spa; 1557eda14cbcSMatt Macy struct ubl_cbdata cb; 1558eda14cbcSMatt Macy int flags = ZIO_FLAG_CONFIG_WRITER | ZIO_FLAG_CANFAIL | 1559eda14cbcSMatt Macy ZIO_FLAG_SPECULATIVE | ZIO_FLAG_TRYHARD; 1560eda14cbcSMatt Macy 1561eda14cbcSMatt Macy ASSERT(ub); 1562eda14cbcSMatt Macy ASSERT(config); 1563eda14cbcSMatt Macy 1564eda14cbcSMatt Macy bzero(ub, sizeof (uberblock_t)); 1565eda14cbcSMatt Macy *config = NULL; 1566eda14cbcSMatt Macy 1567eda14cbcSMatt Macy cb.ubl_ubbest = ub; 1568eda14cbcSMatt Macy cb.ubl_vd = NULL; 1569eda14cbcSMatt Macy 1570eda14cbcSMatt Macy spa_config_enter(spa, SCL_ALL, FTAG, RW_WRITER); 1571eda14cbcSMatt Macy zio = zio_root(spa, NULL, &cb, flags); 1572eda14cbcSMatt Macy vdev_uberblock_load_impl(zio, rvd, flags, &cb); 1573eda14cbcSMatt Macy (void) zio_wait(zio); 1574eda14cbcSMatt Macy 1575eda14cbcSMatt Macy /* 1576eda14cbcSMatt Macy * It's possible that the best uberblock was discovered on a label 1577eda14cbcSMatt Macy * that has a configuration which was written in a future txg. 1578eda14cbcSMatt Macy * Search all labels on this vdev to find the configuration that 1579eda14cbcSMatt Macy * matches the txg for our uberblock. 1580eda14cbcSMatt Macy */ 1581eda14cbcSMatt Macy if (cb.ubl_vd != NULL) { 1582eda14cbcSMatt Macy vdev_dbgmsg(cb.ubl_vd, "best uberblock found for spa %s. " 1583eda14cbcSMatt Macy "txg %llu", spa->spa_name, (u_longlong_t)ub->ub_txg); 1584eda14cbcSMatt Macy 1585eda14cbcSMatt Macy *config = vdev_label_read_config(cb.ubl_vd, ub->ub_txg); 1586eda14cbcSMatt Macy if (*config == NULL && spa->spa_extreme_rewind) { 1587eda14cbcSMatt Macy vdev_dbgmsg(cb.ubl_vd, "failed to read label config. " 1588eda14cbcSMatt Macy "Trying again without txg restrictions."); 1589eda14cbcSMatt Macy *config = vdev_label_read_config(cb.ubl_vd, UINT64_MAX); 1590eda14cbcSMatt Macy } 1591eda14cbcSMatt Macy if (*config == NULL) { 1592eda14cbcSMatt Macy vdev_dbgmsg(cb.ubl_vd, "failed to read label config"); 1593eda14cbcSMatt Macy } 1594eda14cbcSMatt Macy } 1595eda14cbcSMatt Macy spa_config_exit(spa, SCL_ALL, FTAG); 1596eda14cbcSMatt Macy } 1597eda14cbcSMatt Macy 1598eda14cbcSMatt Macy /* 1599eda14cbcSMatt Macy * For use when a leaf vdev is expanded. 1600eda14cbcSMatt Macy * The location of labels 2 and 3 changed, and at the new location the 1601eda14cbcSMatt Macy * uberblock rings are either empty or contain garbage. The sync will write 1602eda14cbcSMatt Macy * new configs there because the vdev is dirty, but expansion also needs the 1603eda14cbcSMatt Macy * uberblock rings copied. Read them from label 0 which did not move. 1604eda14cbcSMatt Macy * 1605eda14cbcSMatt Macy * Since the point is to populate labels {2,3} with valid uberblocks, 1606eda14cbcSMatt Macy * we zero uberblocks we fail to read or which are not valid. 1607eda14cbcSMatt Macy */ 1608eda14cbcSMatt Macy 1609eda14cbcSMatt Macy static void 1610eda14cbcSMatt Macy vdev_copy_uberblocks(vdev_t *vd) 1611eda14cbcSMatt Macy { 1612eda14cbcSMatt Macy abd_t *ub_abd; 1613eda14cbcSMatt Macy zio_t *write_zio; 1614eda14cbcSMatt Macy int locks = (SCL_L2ARC | SCL_ZIO); 1615eda14cbcSMatt Macy int flags = ZIO_FLAG_CONFIG_WRITER | ZIO_FLAG_CANFAIL | 1616eda14cbcSMatt Macy ZIO_FLAG_SPECULATIVE; 1617eda14cbcSMatt Macy 1618eda14cbcSMatt Macy ASSERT(spa_config_held(vd->vdev_spa, SCL_STATE, RW_READER) == 1619eda14cbcSMatt Macy SCL_STATE); 1620eda14cbcSMatt Macy ASSERT(vd->vdev_ops->vdev_op_leaf); 1621eda14cbcSMatt Macy 16227877fdebSMatt Macy /* 16237877fdebSMatt Macy * No uberblocks are stored on distributed spares, they may be 16247877fdebSMatt Macy * safely skipped when expanding a leaf vdev. 16257877fdebSMatt Macy */ 16267877fdebSMatt Macy if (vd->vdev_ops == &vdev_draid_spare_ops) 16277877fdebSMatt Macy return; 16287877fdebSMatt Macy 1629eda14cbcSMatt Macy spa_config_enter(vd->vdev_spa, locks, FTAG, RW_READER); 1630eda14cbcSMatt Macy 1631eda14cbcSMatt Macy ub_abd = abd_alloc_linear(VDEV_UBERBLOCK_SIZE(vd), B_TRUE); 1632eda14cbcSMatt Macy 1633eda14cbcSMatt Macy write_zio = zio_root(vd->vdev_spa, NULL, NULL, flags); 1634eda14cbcSMatt Macy for (int n = 0; n < VDEV_UBERBLOCK_COUNT(vd); n++) { 1635eda14cbcSMatt Macy const int src_label = 0; 1636eda14cbcSMatt Macy zio_t *zio; 1637eda14cbcSMatt Macy 1638eda14cbcSMatt Macy zio = zio_root(vd->vdev_spa, NULL, NULL, flags); 1639eda14cbcSMatt Macy vdev_label_read(zio, vd, src_label, ub_abd, 1640eda14cbcSMatt Macy VDEV_UBERBLOCK_OFFSET(vd, n), VDEV_UBERBLOCK_SIZE(vd), 1641eda14cbcSMatt Macy NULL, NULL, flags); 1642eda14cbcSMatt Macy 1643eda14cbcSMatt Macy if (zio_wait(zio) || uberblock_verify(abd_to_buf(ub_abd))) 1644eda14cbcSMatt Macy abd_zero(ub_abd, VDEV_UBERBLOCK_SIZE(vd)); 1645eda14cbcSMatt Macy 1646eda14cbcSMatt Macy for (int l = 2; l < VDEV_LABELS; l++) 1647eda14cbcSMatt Macy vdev_label_write(write_zio, vd, l, ub_abd, 1648eda14cbcSMatt Macy VDEV_UBERBLOCK_OFFSET(vd, n), 1649eda14cbcSMatt Macy VDEV_UBERBLOCK_SIZE(vd), NULL, NULL, 1650eda14cbcSMatt Macy flags | ZIO_FLAG_DONT_PROPAGATE); 1651eda14cbcSMatt Macy } 1652eda14cbcSMatt Macy (void) zio_wait(write_zio); 1653eda14cbcSMatt Macy 1654eda14cbcSMatt Macy spa_config_exit(vd->vdev_spa, locks, FTAG); 1655eda14cbcSMatt Macy 1656eda14cbcSMatt Macy abd_free(ub_abd); 1657eda14cbcSMatt Macy } 1658eda14cbcSMatt Macy 1659eda14cbcSMatt Macy /* 1660eda14cbcSMatt Macy * On success, increment root zio's count of good writes. 1661eda14cbcSMatt Macy * We only get credit for writes to known-visible vdevs; see spa_vdev_add(). 1662eda14cbcSMatt Macy */ 1663eda14cbcSMatt Macy static void 1664eda14cbcSMatt Macy vdev_uberblock_sync_done(zio_t *zio) 1665eda14cbcSMatt Macy { 1666eda14cbcSMatt Macy uint64_t *good_writes = zio->io_private; 1667eda14cbcSMatt Macy 1668eda14cbcSMatt Macy if (zio->io_error == 0 && zio->io_vd->vdev_top->vdev_ms_array != 0) 1669eda14cbcSMatt Macy atomic_inc_64(good_writes); 1670eda14cbcSMatt Macy } 1671eda14cbcSMatt Macy 1672eda14cbcSMatt Macy /* 1673eda14cbcSMatt Macy * Write the uberblock to all labels of all leaves of the specified vdev. 1674eda14cbcSMatt Macy */ 1675eda14cbcSMatt Macy static void 1676eda14cbcSMatt Macy vdev_uberblock_sync(zio_t *zio, uint64_t *good_writes, 1677eda14cbcSMatt Macy uberblock_t *ub, vdev_t *vd, int flags) 1678eda14cbcSMatt Macy { 1679eda14cbcSMatt Macy for (uint64_t c = 0; c < vd->vdev_children; c++) { 1680eda14cbcSMatt Macy vdev_uberblock_sync(zio, good_writes, 1681eda14cbcSMatt Macy ub, vd->vdev_child[c], flags); 1682eda14cbcSMatt Macy } 1683eda14cbcSMatt Macy 1684eda14cbcSMatt Macy if (!vd->vdev_ops->vdev_op_leaf) 1685eda14cbcSMatt Macy return; 1686eda14cbcSMatt Macy 1687eda14cbcSMatt Macy if (!vdev_writeable(vd)) 1688eda14cbcSMatt Macy return; 1689eda14cbcSMatt Macy 16907877fdebSMatt Macy /* 16917877fdebSMatt Macy * There's no need to write uberblocks to a distributed spare, they 16927877fdebSMatt Macy * are already stored on all the leaves of the parent dRAID. For 16937877fdebSMatt Macy * this same reason vdev_uberblock_load_impl() skips distributed 16947877fdebSMatt Macy * spares when reading uberblocks. 16957877fdebSMatt Macy */ 16967877fdebSMatt Macy if (vd->vdev_ops == &vdev_draid_spare_ops) 16977877fdebSMatt Macy return; 16987877fdebSMatt Macy 1699eda14cbcSMatt Macy /* If the vdev was expanded, need to copy uberblock rings. */ 1700eda14cbcSMatt Macy if (vd->vdev_state == VDEV_STATE_HEALTHY && 1701eda14cbcSMatt Macy vd->vdev_copy_uberblocks == B_TRUE) { 1702eda14cbcSMatt Macy vdev_copy_uberblocks(vd); 1703eda14cbcSMatt Macy vd->vdev_copy_uberblocks = B_FALSE; 1704eda14cbcSMatt Macy } 1705eda14cbcSMatt Macy 1706eda14cbcSMatt Macy int m = spa_multihost(vd->vdev_spa) ? MMP_BLOCKS_PER_LABEL : 0; 1707eda14cbcSMatt Macy int n = ub->ub_txg % (VDEV_UBERBLOCK_COUNT(vd) - m); 1708eda14cbcSMatt Macy 1709eda14cbcSMatt Macy /* Copy the uberblock_t into the ABD */ 1710eda14cbcSMatt Macy abd_t *ub_abd = abd_alloc_for_io(VDEV_UBERBLOCK_SIZE(vd), B_TRUE); 1711eda14cbcSMatt Macy abd_zero(ub_abd, VDEV_UBERBLOCK_SIZE(vd)); 1712eda14cbcSMatt Macy abd_copy_from_buf(ub_abd, ub, sizeof (uberblock_t)); 1713eda14cbcSMatt Macy 1714eda14cbcSMatt Macy for (int l = 0; l < VDEV_LABELS; l++) 1715eda14cbcSMatt Macy vdev_label_write(zio, vd, l, ub_abd, 1716eda14cbcSMatt Macy VDEV_UBERBLOCK_OFFSET(vd, n), VDEV_UBERBLOCK_SIZE(vd), 1717eda14cbcSMatt Macy vdev_uberblock_sync_done, good_writes, 1718eda14cbcSMatt Macy flags | ZIO_FLAG_DONT_PROPAGATE); 1719eda14cbcSMatt Macy 1720eda14cbcSMatt Macy abd_free(ub_abd); 1721eda14cbcSMatt Macy } 1722eda14cbcSMatt Macy 1723eda14cbcSMatt Macy /* Sync the uberblocks to all vdevs in svd[] */ 1724eda14cbcSMatt Macy static int 1725eda14cbcSMatt Macy vdev_uberblock_sync_list(vdev_t **svd, int svdcount, uberblock_t *ub, int flags) 1726eda14cbcSMatt Macy { 1727eda14cbcSMatt Macy spa_t *spa = svd[0]->vdev_spa; 1728eda14cbcSMatt Macy zio_t *zio; 1729eda14cbcSMatt Macy uint64_t good_writes = 0; 1730eda14cbcSMatt Macy 1731eda14cbcSMatt Macy zio = zio_root(spa, NULL, NULL, flags); 1732eda14cbcSMatt Macy 1733eda14cbcSMatt Macy for (int v = 0; v < svdcount; v++) 1734eda14cbcSMatt Macy vdev_uberblock_sync(zio, &good_writes, ub, svd[v], flags); 1735eda14cbcSMatt Macy 1736eda14cbcSMatt Macy (void) zio_wait(zio); 1737eda14cbcSMatt Macy 1738eda14cbcSMatt Macy /* 1739eda14cbcSMatt Macy * Flush the uberblocks to disk. This ensures that the odd labels 1740eda14cbcSMatt Macy * are no longer needed (because the new uberblocks and the even 1741eda14cbcSMatt Macy * labels are safely on disk), so it is safe to overwrite them. 1742eda14cbcSMatt Macy */ 1743eda14cbcSMatt Macy zio = zio_root(spa, NULL, NULL, flags); 1744eda14cbcSMatt Macy 1745eda14cbcSMatt Macy for (int v = 0; v < svdcount; v++) { 1746eda14cbcSMatt Macy if (vdev_writeable(svd[v])) { 1747eda14cbcSMatt Macy zio_flush(zio, svd[v]); 1748eda14cbcSMatt Macy } 1749eda14cbcSMatt Macy } 1750eda14cbcSMatt Macy 1751eda14cbcSMatt Macy (void) zio_wait(zio); 1752eda14cbcSMatt Macy 1753eda14cbcSMatt Macy return (good_writes >= 1 ? 0 : EIO); 1754eda14cbcSMatt Macy } 1755eda14cbcSMatt Macy 1756eda14cbcSMatt Macy /* 1757eda14cbcSMatt Macy * On success, increment the count of good writes for our top-level vdev. 1758eda14cbcSMatt Macy */ 1759eda14cbcSMatt Macy static void 1760eda14cbcSMatt Macy vdev_label_sync_done(zio_t *zio) 1761eda14cbcSMatt Macy { 1762eda14cbcSMatt Macy uint64_t *good_writes = zio->io_private; 1763eda14cbcSMatt Macy 1764eda14cbcSMatt Macy if (zio->io_error == 0) 1765eda14cbcSMatt Macy atomic_inc_64(good_writes); 1766eda14cbcSMatt Macy } 1767eda14cbcSMatt Macy 1768eda14cbcSMatt Macy /* 1769eda14cbcSMatt Macy * If there weren't enough good writes, indicate failure to the parent. 1770eda14cbcSMatt Macy */ 1771eda14cbcSMatt Macy static void 1772eda14cbcSMatt Macy vdev_label_sync_top_done(zio_t *zio) 1773eda14cbcSMatt Macy { 1774eda14cbcSMatt Macy uint64_t *good_writes = zio->io_private; 1775eda14cbcSMatt Macy 1776eda14cbcSMatt Macy if (*good_writes == 0) 1777eda14cbcSMatt Macy zio->io_error = SET_ERROR(EIO); 1778eda14cbcSMatt Macy 1779eda14cbcSMatt Macy kmem_free(good_writes, sizeof (uint64_t)); 1780eda14cbcSMatt Macy } 1781eda14cbcSMatt Macy 1782eda14cbcSMatt Macy /* 1783eda14cbcSMatt Macy * We ignore errors for log and cache devices, simply free the private data. 1784eda14cbcSMatt Macy */ 1785eda14cbcSMatt Macy static void 1786eda14cbcSMatt Macy vdev_label_sync_ignore_done(zio_t *zio) 1787eda14cbcSMatt Macy { 1788eda14cbcSMatt Macy kmem_free(zio->io_private, sizeof (uint64_t)); 1789eda14cbcSMatt Macy } 1790eda14cbcSMatt Macy 1791eda14cbcSMatt Macy /* 1792eda14cbcSMatt Macy * Write all even or odd labels to all leaves of the specified vdev. 1793eda14cbcSMatt Macy */ 1794eda14cbcSMatt Macy static void 1795eda14cbcSMatt Macy vdev_label_sync(zio_t *zio, uint64_t *good_writes, 1796eda14cbcSMatt Macy vdev_t *vd, int l, uint64_t txg, int flags) 1797eda14cbcSMatt Macy { 1798eda14cbcSMatt Macy nvlist_t *label; 1799eda14cbcSMatt Macy vdev_phys_t *vp; 1800eda14cbcSMatt Macy abd_t *vp_abd; 1801eda14cbcSMatt Macy char *buf; 1802eda14cbcSMatt Macy size_t buflen; 1803eda14cbcSMatt Macy 1804eda14cbcSMatt Macy for (int c = 0; c < vd->vdev_children; c++) { 1805eda14cbcSMatt Macy vdev_label_sync(zio, good_writes, 1806eda14cbcSMatt Macy vd->vdev_child[c], l, txg, flags); 1807eda14cbcSMatt Macy } 1808eda14cbcSMatt Macy 1809eda14cbcSMatt Macy if (!vd->vdev_ops->vdev_op_leaf) 1810eda14cbcSMatt Macy return; 1811eda14cbcSMatt Macy 1812eda14cbcSMatt Macy if (!vdev_writeable(vd)) 1813eda14cbcSMatt Macy return; 1814eda14cbcSMatt Macy 1815eda14cbcSMatt Macy /* 18167877fdebSMatt Macy * The top-level config never needs to be written to a distributed 18177877fdebSMatt Macy * spare. When read vdev_dspare_label_read_config() will generate 18187877fdebSMatt Macy * the config for the vdev_label_read_config(). 18197877fdebSMatt Macy */ 18207877fdebSMatt Macy if (vd->vdev_ops == &vdev_draid_spare_ops) 18217877fdebSMatt Macy return; 18227877fdebSMatt Macy 18237877fdebSMatt Macy /* 1824eda14cbcSMatt Macy * Generate a label describing the top-level config to which we belong. 1825eda14cbcSMatt Macy */ 1826eda14cbcSMatt Macy label = spa_config_generate(vd->vdev_spa, vd, txg, B_FALSE); 1827eda14cbcSMatt Macy 1828eda14cbcSMatt Macy vp_abd = abd_alloc_linear(sizeof (vdev_phys_t), B_TRUE); 1829eda14cbcSMatt Macy abd_zero(vp_abd, sizeof (vdev_phys_t)); 1830eda14cbcSMatt Macy vp = abd_to_buf(vp_abd); 1831eda14cbcSMatt Macy 1832eda14cbcSMatt Macy buf = vp->vp_nvlist; 1833eda14cbcSMatt Macy buflen = sizeof (vp->vp_nvlist); 1834eda14cbcSMatt Macy 1835eda14cbcSMatt Macy if (!nvlist_pack(label, &buf, &buflen, NV_ENCODE_XDR, KM_SLEEP)) { 1836eda14cbcSMatt Macy for (; l < VDEV_LABELS; l += 2) { 1837eda14cbcSMatt Macy vdev_label_write(zio, vd, l, vp_abd, 1838eda14cbcSMatt Macy offsetof(vdev_label_t, vl_vdev_phys), 1839eda14cbcSMatt Macy sizeof (vdev_phys_t), 1840eda14cbcSMatt Macy vdev_label_sync_done, good_writes, 1841eda14cbcSMatt Macy flags | ZIO_FLAG_DONT_PROPAGATE); 1842eda14cbcSMatt Macy } 1843eda14cbcSMatt Macy } 1844eda14cbcSMatt Macy 1845eda14cbcSMatt Macy abd_free(vp_abd); 1846eda14cbcSMatt Macy nvlist_free(label); 1847eda14cbcSMatt Macy } 1848eda14cbcSMatt Macy 1849eda14cbcSMatt Macy static int 1850eda14cbcSMatt Macy vdev_label_sync_list(spa_t *spa, int l, uint64_t txg, int flags) 1851eda14cbcSMatt Macy { 1852eda14cbcSMatt Macy list_t *dl = &spa->spa_config_dirty_list; 1853eda14cbcSMatt Macy vdev_t *vd; 1854eda14cbcSMatt Macy zio_t *zio; 1855eda14cbcSMatt Macy int error; 1856eda14cbcSMatt Macy 1857eda14cbcSMatt Macy /* 1858eda14cbcSMatt Macy * Write the new labels to disk. 1859eda14cbcSMatt Macy */ 1860eda14cbcSMatt Macy zio = zio_root(spa, NULL, NULL, flags); 1861eda14cbcSMatt Macy 1862eda14cbcSMatt Macy for (vd = list_head(dl); vd != NULL; vd = list_next(dl, vd)) { 1863eda14cbcSMatt Macy uint64_t *good_writes; 1864eda14cbcSMatt Macy 1865eda14cbcSMatt Macy ASSERT(!vd->vdev_ishole); 1866eda14cbcSMatt Macy 1867eda14cbcSMatt Macy good_writes = kmem_zalloc(sizeof (uint64_t), KM_SLEEP); 1868eda14cbcSMatt Macy zio_t *vio = zio_null(zio, spa, NULL, 1869eda14cbcSMatt Macy (vd->vdev_islog || vd->vdev_aux != NULL) ? 1870eda14cbcSMatt Macy vdev_label_sync_ignore_done : vdev_label_sync_top_done, 1871eda14cbcSMatt Macy good_writes, flags); 1872eda14cbcSMatt Macy vdev_label_sync(vio, good_writes, vd, l, txg, flags); 1873eda14cbcSMatt Macy zio_nowait(vio); 1874eda14cbcSMatt Macy } 1875eda14cbcSMatt Macy 1876eda14cbcSMatt Macy error = zio_wait(zio); 1877eda14cbcSMatt Macy 1878eda14cbcSMatt Macy /* 1879eda14cbcSMatt Macy * Flush the new labels to disk. 1880eda14cbcSMatt Macy */ 1881eda14cbcSMatt Macy zio = zio_root(spa, NULL, NULL, flags); 1882eda14cbcSMatt Macy 1883eda14cbcSMatt Macy for (vd = list_head(dl); vd != NULL; vd = list_next(dl, vd)) 1884eda14cbcSMatt Macy zio_flush(zio, vd); 1885eda14cbcSMatt Macy 1886eda14cbcSMatt Macy (void) zio_wait(zio); 1887eda14cbcSMatt Macy 1888eda14cbcSMatt Macy return (error); 1889eda14cbcSMatt Macy } 1890eda14cbcSMatt Macy 1891eda14cbcSMatt Macy /* 1892eda14cbcSMatt Macy * Sync the uberblock and any changes to the vdev configuration. 1893eda14cbcSMatt Macy * 1894eda14cbcSMatt Macy * The order of operations is carefully crafted to ensure that 1895eda14cbcSMatt Macy * if the system panics or loses power at any time, the state on disk 1896eda14cbcSMatt Macy * is still transactionally consistent. The in-line comments below 1897eda14cbcSMatt Macy * describe the failure semantics at each stage. 1898eda14cbcSMatt Macy * 1899eda14cbcSMatt Macy * Moreover, vdev_config_sync() is designed to be idempotent: if it fails 1900eda14cbcSMatt Macy * at any time, you can just call it again, and it will resume its work. 1901eda14cbcSMatt Macy */ 1902eda14cbcSMatt Macy int 1903eda14cbcSMatt Macy vdev_config_sync(vdev_t **svd, int svdcount, uint64_t txg) 1904eda14cbcSMatt Macy { 1905eda14cbcSMatt Macy spa_t *spa = svd[0]->vdev_spa; 1906eda14cbcSMatt Macy uberblock_t *ub = &spa->spa_uberblock; 1907eda14cbcSMatt Macy int error = 0; 1908eda14cbcSMatt Macy int flags = ZIO_FLAG_CONFIG_WRITER | ZIO_FLAG_CANFAIL; 1909eda14cbcSMatt Macy 1910eda14cbcSMatt Macy ASSERT(svdcount != 0); 1911eda14cbcSMatt Macy retry: 1912eda14cbcSMatt Macy /* 1913eda14cbcSMatt Macy * Normally, we don't want to try too hard to write every label and 1914eda14cbcSMatt Macy * uberblock. If there is a flaky disk, we don't want the rest of the 1915eda14cbcSMatt Macy * sync process to block while we retry. But if we can't write a 1916eda14cbcSMatt Macy * single label out, we should retry with ZIO_FLAG_TRYHARD before 1917eda14cbcSMatt Macy * bailing out and declaring the pool faulted. 1918eda14cbcSMatt Macy */ 1919eda14cbcSMatt Macy if (error != 0) { 1920eda14cbcSMatt Macy if ((flags & ZIO_FLAG_TRYHARD) != 0) 1921eda14cbcSMatt Macy return (error); 1922eda14cbcSMatt Macy flags |= ZIO_FLAG_TRYHARD; 1923eda14cbcSMatt Macy } 1924eda14cbcSMatt Macy 1925eda14cbcSMatt Macy ASSERT(ub->ub_txg <= txg); 1926eda14cbcSMatt Macy 1927eda14cbcSMatt Macy /* 1928eda14cbcSMatt Macy * If this isn't a resync due to I/O errors, 1929eda14cbcSMatt Macy * and nothing changed in this transaction group, 1930eda14cbcSMatt Macy * and the vdev configuration hasn't changed, 1931eda14cbcSMatt Macy * then there's nothing to do. 1932eda14cbcSMatt Macy */ 1933eda14cbcSMatt Macy if (ub->ub_txg < txg) { 1934eda14cbcSMatt Macy boolean_t changed = uberblock_update(ub, spa->spa_root_vdev, 1935eda14cbcSMatt Macy txg, spa->spa_mmp.mmp_delay); 1936eda14cbcSMatt Macy 1937eda14cbcSMatt Macy if (!changed && list_is_empty(&spa->spa_config_dirty_list)) 1938eda14cbcSMatt Macy return (0); 1939eda14cbcSMatt Macy } 1940eda14cbcSMatt Macy 1941eda14cbcSMatt Macy if (txg > spa_freeze_txg(spa)) 1942eda14cbcSMatt Macy return (0); 1943eda14cbcSMatt Macy 1944eda14cbcSMatt Macy ASSERT(txg <= spa->spa_final_txg); 1945eda14cbcSMatt Macy 1946eda14cbcSMatt Macy /* 1947eda14cbcSMatt Macy * Flush the write cache of every disk that's been written to 1948eda14cbcSMatt Macy * in this transaction group. This ensures that all blocks 1949eda14cbcSMatt Macy * written in this txg will be committed to stable storage 1950eda14cbcSMatt Macy * before any uberblock that references them. 1951eda14cbcSMatt Macy */ 1952eda14cbcSMatt Macy zio_t *zio = zio_root(spa, NULL, NULL, flags); 1953eda14cbcSMatt Macy 1954eda14cbcSMatt Macy for (vdev_t *vd = 1955eda14cbcSMatt Macy txg_list_head(&spa->spa_vdev_txg_list, TXG_CLEAN(txg)); vd != NULL; 1956eda14cbcSMatt Macy vd = txg_list_next(&spa->spa_vdev_txg_list, vd, TXG_CLEAN(txg))) 1957eda14cbcSMatt Macy zio_flush(zio, vd); 1958eda14cbcSMatt Macy 1959eda14cbcSMatt Macy (void) zio_wait(zio); 1960eda14cbcSMatt Macy 1961eda14cbcSMatt Macy /* 1962eda14cbcSMatt Macy * Sync out the even labels (L0, L2) for every dirty vdev. If the 1963eda14cbcSMatt Macy * system dies in the middle of this process, that's OK: all of the 1964eda14cbcSMatt Macy * even labels that made it to disk will be newer than any uberblock, 1965eda14cbcSMatt Macy * and will therefore be considered invalid. The odd labels (L1, L3), 1966eda14cbcSMatt Macy * which have not yet been touched, will still be valid. We flush 1967eda14cbcSMatt Macy * the new labels to disk to ensure that all even-label updates 1968eda14cbcSMatt Macy * are committed to stable storage before the uberblock update. 1969eda14cbcSMatt Macy */ 1970eda14cbcSMatt Macy if ((error = vdev_label_sync_list(spa, 0, txg, flags)) != 0) { 1971eda14cbcSMatt Macy if ((flags & ZIO_FLAG_TRYHARD) != 0) { 1972eda14cbcSMatt Macy zfs_dbgmsg("vdev_label_sync_list() returned error %d " 1973eda14cbcSMatt Macy "for pool '%s' when syncing out the even labels " 1974eda14cbcSMatt Macy "of dirty vdevs", error, spa_name(spa)); 1975eda14cbcSMatt Macy } 1976eda14cbcSMatt Macy goto retry; 1977eda14cbcSMatt Macy } 1978eda14cbcSMatt Macy 1979eda14cbcSMatt Macy /* 1980eda14cbcSMatt Macy * Sync the uberblocks to all vdevs in svd[]. 1981eda14cbcSMatt Macy * If the system dies in the middle of this step, there are two cases 1982eda14cbcSMatt Macy * to consider, and the on-disk state is consistent either way: 1983eda14cbcSMatt Macy * 1984eda14cbcSMatt Macy * (1) If none of the new uberblocks made it to disk, then the 1985eda14cbcSMatt Macy * previous uberblock will be the newest, and the odd labels 1986eda14cbcSMatt Macy * (which had not yet been touched) will be valid with respect 1987eda14cbcSMatt Macy * to that uberblock. 1988eda14cbcSMatt Macy * 1989eda14cbcSMatt Macy * (2) If one or more new uberblocks made it to disk, then they 1990eda14cbcSMatt Macy * will be the newest, and the even labels (which had all 1991eda14cbcSMatt Macy * been successfully committed) will be valid with respect 1992eda14cbcSMatt Macy * to the new uberblocks. 1993eda14cbcSMatt Macy */ 1994eda14cbcSMatt Macy if ((error = vdev_uberblock_sync_list(svd, svdcount, ub, flags)) != 0) { 1995eda14cbcSMatt Macy if ((flags & ZIO_FLAG_TRYHARD) != 0) { 1996eda14cbcSMatt Macy zfs_dbgmsg("vdev_uberblock_sync_list() returned error " 1997eda14cbcSMatt Macy "%d for pool '%s'", error, spa_name(spa)); 1998eda14cbcSMatt Macy } 1999eda14cbcSMatt Macy goto retry; 2000eda14cbcSMatt Macy } 2001eda14cbcSMatt Macy 2002eda14cbcSMatt Macy if (spa_multihost(spa)) 2003eda14cbcSMatt Macy mmp_update_uberblock(spa, ub); 2004eda14cbcSMatt Macy 2005eda14cbcSMatt Macy /* 2006eda14cbcSMatt Macy * Sync out odd labels for every dirty vdev. If the system dies 2007eda14cbcSMatt Macy * in the middle of this process, the even labels and the new 2008eda14cbcSMatt Macy * uberblocks will suffice to open the pool. The next time 2009eda14cbcSMatt Macy * the pool is opened, the first thing we'll do -- before any 2010eda14cbcSMatt Macy * user data is modified -- is mark every vdev dirty so that 2011eda14cbcSMatt Macy * all labels will be brought up to date. We flush the new labels 2012eda14cbcSMatt Macy * to disk to ensure that all odd-label updates are committed to 2013eda14cbcSMatt Macy * stable storage before the next transaction group begins. 2014eda14cbcSMatt Macy */ 2015eda14cbcSMatt Macy if ((error = vdev_label_sync_list(spa, 1, txg, flags)) != 0) { 2016eda14cbcSMatt Macy if ((flags & ZIO_FLAG_TRYHARD) != 0) { 2017eda14cbcSMatt Macy zfs_dbgmsg("vdev_label_sync_list() returned error %d " 2018eda14cbcSMatt Macy "for pool '%s' when syncing out the odd labels of " 2019eda14cbcSMatt Macy "dirty vdevs", error, spa_name(spa)); 2020eda14cbcSMatt Macy } 2021eda14cbcSMatt Macy goto retry; 2022eda14cbcSMatt Macy } 2023eda14cbcSMatt Macy 2024eda14cbcSMatt Macy return (0); 2025eda14cbcSMatt Macy } 2026