4 * The contents of this file are subject to the terms of the
5 * Common Development and Distribution License (the "License").
6 * You may not use this file except in compliance with the License.
8 * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9 * or https://opensource.org/licenses/CDDL-1.0.
10 * See the License for the specific language governing permissions
11 * and limitations under the License.
13 * When distributing Covered Code, include this CDDL HEADER in each
14 * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15 * If applicable, add the following below this CDDL HEADER, with the
16 * fields enclosed by brackets "[]" replaced with your own identifying
17 * information: Portions Copyright [yyyy] [name of copyright owner]
22 * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved.
23 * Copyright (c) 2011, 2020 by Delphix. All rights reserved.
24 * Copyright (c) 2017, Intel Corporation.
25 * Copyright (c) 2023, Klara Inc.
28 #ifndef _SYS_VDEV_IMPL_H
29 #define _SYS_VDEV_IMPL_H
32 #include <sys/bpobj.h>
34 #include <sys/metaslab.h>
35 #include <sys/nvpair.h>
36 #include <sys/space_map.h>
38 #include <sys/uberblock_impl.h>
39 #include <sys/vdev_indirect_mapping.h>
40 #include <sys/vdev_indirect_births.h>
41 #include <sys/vdev_rebuild.h>
42 #include <sys/vdev_removal.h>
43 #include <sys/zfs_ratelimit.h>
50 * Virtual device descriptors.
52 * All storage pool operations go through the virtual device framework,
53 * which provides data replication and I/O scheduling.
57 * Forward declarations that lots of things need.
59 typedef struct vdev_queue vdev_queue_t
;
62 extern uint_t zfs_vdev_queue_depth_pct
;
63 extern uint_t zfs_vdev_def_queue_depth
;
64 extern uint_t zfs_vdev_async_write_max_active
;
67 * Virtual device operations
69 typedef int vdev_init_func_t(spa_t
*spa
, nvlist_t
*nv
, void **tsd
);
70 typedef void vdev_kobj_post_evt_func_t(vdev_t
*vd
);
71 typedef void vdev_fini_func_t(vdev_t
*vd
);
72 typedef int vdev_open_func_t(vdev_t
*vd
, uint64_t *size
, uint64_t *max_size
,
73 uint64_t *ashift
, uint64_t *pshift
);
74 typedef void vdev_close_func_t(vdev_t
*vd
);
75 typedef uint64_t vdev_asize_func_t(vdev_t
*vd
, uint64_t psize
, uint64_t txg
);
76 typedef uint64_t vdev_min_asize_func_t(vdev_t
*vd
);
77 typedef uint64_t vdev_min_alloc_func_t(vdev_t
*vd
);
78 typedef void vdev_io_start_func_t(zio_t
*zio
);
79 typedef void vdev_io_done_func_t(zio_t
*zio
);
80 typedef void vdev_state_change_func_t(vdev_t
*vd
, int, int);
81 typedef boolean_t
vdev_need_resilver_func_t(vdev_t
*vd
, const dva_t
*dva
,
82 size_t psize
, uint64_t phys_birth
);
83 typedef void vdev_hold_func_t(vdev_t
*vd
);
84 typedef void vdev_rele_func_t(vdev_t
*vd
);
86 typedef void vdev_remap_cb_t(uint64_t inner_offset
, vdev_t
*vd
,
87 uint64_t offset
, uint64_t size
, void *arg
);
88 typedef void vdev_remap_func_t(vdev_t
*vd
, uint64_t offset
, uint64_t size
,
89 vdev_remap_cb_t callback
, void *arg
);
91 * Given a target vdev, translates the logical range "in" to the physical
94 typedef void vdev_xlation_func_t(vdev_t
*cvd
, const range_seg64_t
*logical
,
95 range_seg64_t
*physical
, range_seg64_t
*remain
);
96 typedef uint64_t vdev_rebuild_asize_func_t(vdev_t
*vd
, uint64_t start
,
97 uint64_t size
, uint64_t max_segment
);
98 typedef void vdev_metaslab_init_func_t(vdev_t
*vd
, uint64_t *startp
,
100 typedef void vdev_config_generate_func_t(vdev_t
*vd
, nvlist_t
*nv
);
101 typedef uint64_t vdev_nparity_func_t(vdev_t
*vd
);
102 typedef uint64_t vdev_ndisks_func_t(vdev_t
*vd
);
104 typedef const struct vdev_ops
{
105 vdev_init_func_t
*vdev_op_init
;
106 vdev_fini_func_t
*vdev_op_fini
;
107 vdev_open_func_t
*vdev_op_open
;
108 vdev_close_func_t
*vdev_op_close
;
109 vdev_asize_func_t
*vdev_op_asize
;
110 vdev_min_asize_func_t
*vdev_op_min_asize
;
111 vdev_min_alloc_func_t
*vdev_op_min_alloc
;
112 vdev_io_start_func_t
*vdev_op_io_start
;
113 vdev_io_done_func_t
*vdev_op_io_done
;
114 vdev_state_change_func_t
*vdev_op_state_change
;
115 vdev_need_resilver_func_t
*vdev_op_need_resilver
;
116 vdev_hold_func_t
*vdev_op_hold
;
117 vdev_rele_func_t
*vdev_op_rele
;
118 vdev_remap_func_t
*vdev_op_remap
;
119 vdev_xlation_func_t
*vdev_op_xlate
;
120 vdev_rebuild_asize_func_t
*vdev_op_rebuild_asize
;
121 vdev_metaslab_init_func_t
*vdev_op_metaslab_init
;
122 vdev_config_generate_func_t
*vdev_op_config_generate
;
123 vdev_nparity_func_t
*vdev_op_nparity
;
124 vdev_ndisks_func_t
*vdev_op_ndisks
;
125 vdev_kobj_post_evt_func_t
*vdev_op_kobj_evt_post
;
126 char vdev_op_type
[16];
127 boolean_t vdev_op_leaf
;
131 * Virtual device properties
133 typedef union vdev_queue_class
{
135 ulong_t vqc_list_numnodes
;
139 } vdev_queue_class_t
;
143 vdev_queue_class_t vq_class
[ZIO_PRIORITY_NUM_QUEUEABLE
];
144 avl_tree_t vq_read_offset_tree
;
145 avl_tree_t vq_write_offset_tree
;
146 uint64_t vq_last_offset
;
147 zio_priority_t vq_last_prio
; /* Last sent I/O priority. */
148 uint32_t vq_cqueued
; /* Classes with queued I/Os. */
149 uint32_t vq_cactive
[ZIO_PRIORITY_NUM_QUEUEABLE
];
150 uint32_t vq_active
; /* Number of active I/Os. */
151 uint32_t vq_ia_active
; /* Active interactive I/Os. */
152 uint32_t vq_nia_credit
; /* Non-interactive I/Os credit. */
153 list_t vq_active_list
; /* List of active I/Os. */
154 hrtime_t vq_io_complete_ts
; /* time last i/o completed */
155 hrtime_t vq_io_delta_ts
;
156 zio_t vq_io_search
; /* used as local for stack reduction */
160 typedef enum vdev_alloc_bias
{
162 VDEV_BIAS_LOG
, /* dedicated to ZIL data (SLOG) */
163 VDEV_BIAS_SPECIAL
, /* dedicated to ddt, metadata, and small blks */
164 VDEV_BIAS_DEDUP
/* dedicated to dedup metadata */
169 * On-disk indirect vdev state.
171 * An indirect vdev is described exclusively in the MOS config of a pool.
172 * The config for an indirect vdev includes several fields, which are
173 * accessed in memory by a vdev_indirect_config_t.
175 typedef struct vdev_indirect_config
{
177 * Object (in MOS) which contains the indirect mapping. This object
178 * contains an array of vdev_indirect_mapping_entry_phys_t ordered by
179 * vimep_src. The bonus buffer for this object is a
180 * vdev_indirect_mapping_phys_t. This object is allocated when a vdev
181 * removal is initiated.
183 * Note that this object can be empty if none of the data on the vdev
184 * has been copied yet.
186 uint64_t vic_mapping_object
;
189 * Object (in MOS) which contains the birth times for the mapping
190 * entries. This object contains an array of
191 * vdev_indirect_birth_entry_phys_t sorted by vibe_offset. The bonus
192 * buffer for this object is a vdev_indirect_birth_phys_t. This object
193 * is allocated when a vdev removal is initiated.
195 * Note that this object can be empty if none of the vdev has yet been
198 uint64_t vic_births_object
;
201 * This is the vdev ID which was removed previous to this vdev, or
202 * UINT64_MAX if there are no previously removed vdevs.
204 uint64_t vic_prev_indirect_vdev
;
205 } vdev_indirect_config_t
;
208 * Virtual device descriptor
212 * Common to all vdev types.
214 uint64_t vdev_id
; /* child number in vdev parent */
215 uint64_t vdev_guid
; /* unique ID for this vdev */
216 uint64_t vdev_guid_sum
; /* self guid + all child guids */
217 uint64_t vdev_orig_guid
; /* orig. guid prior to remove */
218 uint64_t vdev_asize
; /* allocatable device capacity */
219 uint64_t vdev_min_asize
; /* min acceptable asize */
220 uint64_t vdev_max_asize
; /* max acceptable asize */
221 uint64_t vdev_ashift
; /* block alignment shift */
224 * Logical block alignment shift
226 * The smallest sized/aligned I/O supported by the device.
228 uint64_t vdev_logical_ashift
;
230 * Physical block alignment shift
232 * The device supports logical I/Os with vdev_logical_ashift
233 * size/alignment, but optimum performance will be achieved by
234 * aligning/sizing requests to vdev_physical_ashift. Smaller
235 * requests may be inflated or incur device level read-modify-write
238 * May be 0 to indicate no preference (i.e. use vdev_logical_ashift).
240 uint64_t vdev_physical_ashift
;
241 uint64_t vdev_state
; /* see VDEV_STATE_* #defines */
242 uint64_t vdev_prevstate
; /* used when reopening a vdev */
243 vdev_ops_t
*vdev_ops
; /* vdev operations */
244 spa_t
*vdev_spa
; /* spa for this vdev */
245 void *vdev_tsd
; /* type-specific data */
246 vdev_t
*vdev_top
; /* top-level vdev */
247 vdev_t
*vdev_parent
; /* parent vdev */
248 vdev_t
**vdev_child
; /* array of children */
249 uint64_t vdev_children
; /* number of children */
250 vdev_stat_t vdev_stat
; /* virtual device statistics */
251 vdev_stat_ex_t vdev_stat_ex
; /* extended statistics */
252 boolean_t vdev_expanding
; /* expand the vdev? */
253 boolean_t vdev_reopening
; /* reopen in progress? */
254 boolean_t vdev_nonrot
; /* true if solid state */
255 int vdev_load_error
; /* error on last load */
256 int vdev_open_error
; /* error on last open */
257 int vdev_validate_error
; /* error on last validate */
258 kthread_t
*vdev_open_thread
; /* thread opening children */
259 kthread_t
*vdev_validate_thread
; /* thread validating children */
260 uint64_t vdev_crtxg
; /* txg when top-level was added */
261 uint64_t vdev_root_zap
;
264 * Top-level vdev state.
266 uint64_t vdev_ms_array
; /* metaslab array object */
267 uint64_t vdev_ms_shift
; /* metaslab size shift */
268 uint64_t vdev_ms_count
; /* number of metaslabs */
269 metaslab_group_t
*vdev_mg
; /* metaslab group */
270 metaslab_group_t
*vdev_log_mg
; /* embedded slog metaslab group */
271 metaslab_t
**vdev_ms
; /* metaslab array */
272 txg_list_t vdev_ms_list
; /* per-txg dirty metaslab lists */
273 txg_list_t vdev_dtl_list
; /* per-txg dirty DTL lists */
274 txg_node_t vdev_txg_node
; /* per-txg dirty vdev linkage */
275 boolean_t vdev_remove_wanted
; /* async remove wanted? */
276 boolean_t vdev_fault_wanted
; /* async faulted wanted? */
277 list_node_t vdev_config_dirty_node
; /* config dirty list */
278 list_node_t vdev_state_dirty_node
; /* state dirty list */
279 uint64_t vdev_deflate_ratio
; /* deflation ratio (x512) */
280 uint64_t vdev_islog
; /* is an intent log device */
281 uint64_t vdev_noalloc
; /* device is passivated? */
282 uint64_t vdev_removing
; /* device is being removed? */
283 uint64_t vdev_failfast
; /* device failfast setting */
284 boolean_t vdev_rz_expanding
; /* raidz is being expanded? */
285 boolean_t vdev_ishole
; /* is a hole in the namespace */
286 uint64_t vdev_top_zap
;
287 vdev_alloc_bias_t vdev_alloc_bias
; /* metaslab allocation bias */
289 /* pool checkpoint related */
290 space_map_t
*vdev_checkpoint_sm
; /* contains reserved blocks */
292 /* Initialize related */
293 boolean_t vdev_initialize_exit_wanted
;
294 vdev_initializing_state_t vdev_initialize_state
;
295 list_node_t vdev_initialize_node
;
296 kthread_t
*vdev_initialize_thread
;
297 /* Protects vdev_initialize_thread and vdev_initialize_state. */
298 kmutex_t vdev_initialize_lock
;
299 kcondvar_t vdev_initialize_cv
;
300 uint64_t vdev_initialize_offset
[TXG_SIZE
];
301 uint64_t vdev_initialize_last_offset
;
302 range_tree_t
*vdev_initialize_tree
; /* valid while initializing */
303 uint64_t vdev_initialize_bytes_est
;
304 uint64_t vdev_initialize_bytes_done
;
305 uint64_t vdev_initialize_action_time
; /* start and end time */
308 boolean_t vdev_trim_exit_wanted
;
309 boolean_t vdev_autotrim_exit_wanted
;
310 vdev_trim_state_t vdev_trim_state
;
311 list_node_t vdev_trim_node
;
312 kmutex_t vdev_autotrim_lock
;
313 kcondvar_t vdev_autotrim_cv
;
314 kcondvar_t vdev_autotrim_kick_cv
;
315 kthread_t
*vdev_autotrim_thread
;
316 /* Protects vdev_trim_thread and vdev_trim_state. */
317 kmutex_t vdev_trim_lock
;
318 kcondvar_t vdev_trim_cv
;
319 kthread_t
*vdev_trim_thread
;
320 uint64_t vdev_trim_offset
[TXG_SIZE
];
321 uint64_t vdev_trim_last_offset
;
322 uint64_t vdev_trim_bytes_est
;
323 uint64_t vdev_trim_bytes_done
;
324 uint64_t vdev_trim_rate
; /* requested rate (bytes/sec) */
325 uint64_t vdev_trim_partial
; /* requested partial TRIM */
326 uint64_t vdev_trim_secure
; /* requested secure TRIM */
327 uint64_t vdev_trim_action_time
; /* start and end time */
329 /* Rebuild related */
330 boolean_t vdev_rebuilding
;
331 boolean_t vdev_rebuild_exit_wanted
;
332 boolean_t vdev_rebuild_cancel_wanted
;
333 boolean_t vdev_rebuild_reset_wanted
;
334 kmutex_t vdev_rebuild_lock
;
335 kcondvar_t vdev_rebuild_cv
;
336 kthread_t
*vdev_rebuild_thread
;
337 vdev_rebuild_t vdev_rebuild_config
;
339 /* For limiting outstanding I/Os (initialize, TRIM) */
340 kmutex_t vdev_initialize_io_lock
;
341 kcondvar_t vdev_initialize_io_cv
;
342 uint64_t vdev_initialize_inflight
;
343 kmutex_t vdev_trim_io_lock
;
344 kcondvar_t vdev_trim_io_cv
;
345 uint64_t vdev_trim_inflight
[3];
348 * Values stored in the config for an indirect or removing vdev.
350 vdev_indirect_config_t vdev_indirect_config
;
353 * The vdev_indirect_rwlock protects the vdev_indirect_mapping
354 * pointer from changing on indirect vdevs (when it is condensed).
355 * Note that removing (not yet indirect) vdevs have different
356 * access patterns (the mapping is not accessed from open context,
357 * e.g. from zio_read) and locking strategy (e.g. svr_lock).
359 krwlock_t vdev_indirect_rwlock
;
360 vdev_indirect_mapping_t
*vdev_indirect_mapping
;
361 vdev_indirect_births_t
*vdev_indirect_births
;
364 * In memory data structures used to manage the obsolete sm, for
365 * indirect or removing vdevs.
367 * The vdev_obsolete_segments is the in-core record of the segments
368 * that are no longer referenced anywhere in the pool (due to
369 * being freed or remapped and not referenced by any snapshots).
370 * During a sync, segments are added to vdev_obsolete_segments
371 * via vdev_indirect_mark_obsolete(); at the end of each sync
372 * pass, this is appended to vdev_obsolete_sm via
373 * vdev_indirect_sync_obsolete(). The vdev_obsolete_lock
374 * protects against concurrent modifications of vdev_obsolete_segments
375 * from multiple zio threads.
377 kmutex_t vdev_obsolete_lock
;
378 range_tree_t
*vdev_obsolete_segments
;
379 space_map_t
*vdev_obsolete_sm
;
382 * Protects the vdev_scan_io_queue field itself as well as the
383 * structure's contents (when present).
385 kmutex_t vdev_scan_io_queue_lock
;
386 struct dsl_scan_io_queue
*vdev_scan_io_queue
;
391 range_tree_t
*vdev_dtl
[DTL_TYPES
]; /* dirty time logs */
392 space_map_t
*vdev_dtl_sm
; /* dirty time log space map */
393 txg_node_t vdev_dtl_node
; /* per-txg dirty DTL linkage */
394 uint64_t vdev_dtl_object
; /* DTL object */
395 uint64_t vdev_psize
; /* physical device capacity */
396 uint64_t vdev_wholedisk
; /* true if this is a whole disk */
397 uint64_t vdev_offline
; /* persistent offline state */
398 uint64_t vdev_faulted
; /* persistent faulted state */
399 uint64_t vdev_degraded
; /* persistent degraded state */
400 uint64_t vdev_removed
; /* persistent removed state */
401 uint64_t vdev_resilver_txg
; /* persistent resilvering state */
402 uint64_t vdev_rebuild_txg
; /* persistent rebuilding state */
403 char *vdev_path
; /* vdev path (if any) */
404 char *vdev_devid
; /* vdev devid (if any) */
405 char *vdev_physpath
; /* vdev device path (if any) */
406 char *vdev_enc_sysfs_path
; /* enclosure sysfs path */
407 char *vdev_fru
; /* physical FRU location */
408 uint64_t vdev_not_present
; /* not present during import */
409 uint64_t vdev_unspare
; /* unspare when resilvering done */
410 boolean_t vdev_nowritecache
; /* true if flushwritecache failed */
411 boolean_t vdev_has_trim
; /* TRIM is supported */
412 boolean_t vdev_has_securetrim
; /* secure TRIM is supported */
413 boolean_t vdev_checkremove
; /* temporary online test */
414 boolean_t vdev_forcefault
; /* force online fault */
415 boolean_t vdev_splitting
; /* split or repair in progress */
416 boolean_t vdev_delayed_close
; /* delayed device close? */
417 boolean_t vdev_tmpoffline
; /* device taken offline temporarily? */
418 boolean_t vdev_detached
; /* device detached? */
419 boolean_t vdev_cant_read
; /* vdev is failing all reads */
420 boolean_t vdev_cant_write
; /* vdev is failing all writes */
421 boolean_t vdev_isspare
; /* was a hot spare */
422 boolean_t vdev_isl2cache
; /* was a l2cache device */
423 boolean_t vdev_copy_uberblocks
; /* post expand copy uberblocks */
424 boolean_t vdev_resilver_deferred
; /* resilver deferred */
425 boolean_t vdev_kobj_flag
; /* kobj event record */
426 boolean_t vdev_attaching
; /* vdev attach ashift handling */
427 vdev_queue_t vdev_queue
; /* I/O deadline schedule queue */
428 spa_aux_vdev_t
*vdev_aux
; /* for l2cache and spares vdevs */
429 zio_t
*vdev_probe_zio
; /* root of current probe */
430 vdev_aux_t vdev_label_aux
; /* on-disk aux state */
431 uint64_t vdev_leaf_zap
;
432 hrtime_t vdev_mmp_pending
; /* 0 if write finished */
433 uint64_t vdev_mmp_kstat_id
; /* to find kstat entry */
434 uint64_t vdev_expansion_time
; /* vdev's last expansion time */
435 list_node_t vdev_leaf_node
; /* leaf vdev list */
438 * For DTrace to work in userland (libzpool) context, these fields must
439 * remain at the end of the structure. DTrace will use the kernel's
440 * CTF definition for 'struct vdev', and since the size of a kmutex_t is
441 * larger in userland, the offsets for the rest of the fields would be
444 kmutex_t vdev_dtl_lock
; /* vdev_dtl_{map,resilver} */
445 kmutex_t vdev_stat_lock
; /* vdev_stat */
446 kmutex_t vdev_probe_lock
; /* protects vdev_probe_zio */
449 * We rate limit ZIO delay, deadman, and checksum events, since they
450 * can flood ZED with tons of events when a drive is acting up.
452 * We also rate limit Direct I/O write verify errors, since a user might
453 * be continually manipulating a buffer that can flood ZED with tons of
456 zfs_ratelimit_t vdev_delay_rl
;
457 zfs_ratelimit_t vdev_deadman_rl
;
458 zfs_ratelimit_t vdev_dio_verify_rl
;
459 zfs_ratelimit_t vdev_checksum_rl
;
462 * Vdev properties for tuning ZED or zfsd
464 uint64_t vdev_checksum_n
;
465 uint64_t vdev_checksum_t
;
468 uint64_t vdev_slow_io_n
;
469 uint64_t vdev_slow_io_t
;
472 #define VDEV_PAD_SIZE (8 << 10)
473 /* 2 padding areas (vl_pad1 and vl_be) to skip */
474 #define VDEV_SKIP_SIZE VDEV_PAD_SIZE * 2
475 #define VDEV_PHYS_SIZE (112 << 10)
476 #define VDEV_UBERBLOCK_RING (128 << 10)
479 * MMP blocks occupy the last MMP_BLOCKS_PER_LABEL slots in the uberblock
480 * ring when MMP is enabled.
482 #define MMP_BLOCKS_PER_LABEL 1
484 /* The largest uberblock we support is 8k. */
485 #define MAX_UBERBLOCK_SHIFT (13)
486 #define VDEV_UBERBLOCK_SHIFT(vd) \
487 MIN(MAX((vd)->vdev_top->vdev_ashift, UBERBLOCK_SHIFT), \
489 #define VDEV_UBERBLOCK_COUNT(vd) \
490 (VDEV_UBERBLOCK_RING >> VDEV_UBERBLOCK_SHIFT(vd))
491 #define VDEV_UBERBLOCK_OFFSET(vd, n) \
492 offsetof(vdev_label_t, vl_uberblock[(n) << VDEV_UBERBLOCK_SHIFT(vd)])
493 #define VDEV_UBERBLOCK_SIZE(vd) (1ULL << VDEV_UBERBLOCK_SHIFT(vd))
495 typedef struct vdev_phys
{
496 char vp_nvlist
[VDEV_PHYS_SIZE
- sizeof (zio_eck_t
)];
500 typedef enum vbe_vers
{
502 * The bootenv file is stored as ascii text in the envblock.
503 * It is used by the GRUB bootloader used on Linux to store the
504 * contents of the grubenv file. The file is stored as raw ASCII,
505 * and is protected by an embedded checksum. By default, GRUB will
506 * check if the boot filesystem supports storing the environment data
507 * in a special location, and if so, will invoke filesystem specific
508 * logic to retrieve it. This can be overridden by a variable, should
509 * the user so desire.
514 * The bootenv file is converted to an nvlist and then packed into the
520 typedef struct vdev_boot_envblock
{
521 uint64_t vbe_version
;
522 char vbe_bootenv
[VDEV_PAD_SIZE
- sizeof (uint64_t) -
525 } vdev_boot_envblock_t
;
526 _Static_assert(sizeof (vdev_boot_envblock_t
) == VDEV_PAD_SIZE
,
527 "vdev_boot_envblock_t wrong size");
529 typedef struct vdev_label
{
530 char vl_pad1
[VDEV_PAD_SIZE
]; /* 8K */
531 vdev_boot_envblock_t vl_be
; /* 8K */
532 vdev_phys_t vl_vdev_phys
; /* 112K */
533 char vl_uberblock
[VDEV_UBERBLOCK_RING
]; /* 128K */
534 } vdev_label_t
; /* 256K total */
539 #define VDD_METASLAB 0x01
542 /* Offset of embedded boot loader region on each label */
543 #define VDEV_BOOT_OFFSET (2 * sizeof (vdev_label_t))
545 * Size of embedded boot loader region on each label.
546 * The total size of the first two labels plus the boot area is 4MB.
547 * On RAIDZ, this space is overwritten during RAIDZ expansion.
549 #define VDEV_BOOT_SIZE (7ULL << 19) /* 3.5M */
552 * Size of label regions at the start and end of each leaf device.
554 #define VDEV_LABEL_START_SIZE (2 * sizeof (vdev_label_t) + VDEV_BOOT_SIZE)
555 #define VDEV_LABEL_END_SIZE (2 * sizeof (vdev_label_t))
556 #define VDEV_LABELS 4
557 #define VDEV_BEST_LABEL VDEV_LABELS
558 #define VDEV_OFFSET_IS_LABEL(vd, off) \
559 (((off) < VDEV_LABEL_START_SIZE) || \
560 ((off) >= ((vd)->vdev_psize - VDEV_LABEL_END_SIZE)))
562 #define VDEV_ALLOC_LOAD 0
563 #define VDEV_ALLOC_ADD 1
564 #define VDEV_ALLOC_SPARE 2
565 #define VDEV_ALLOC_L2CACHE 3
566 #define VDEV_ALLOC_ROOTPOOL 4
567 #define VDEV_ALLOC_SPLIT 5
568 #define VDEV_ALLOC_ATTACH 6
571 * Allocate or free a vdev
573 extern vdev_t
*vdev_alloc_common(spa_t
*spa
, uint_t id
, uint64_t guid
,
575 extern int vdev_alloc(spa_t
*spa
, vdev_t
**vdp
, nvlist_t
*config
,
576 vdev_t
*parent
, uint_t id
, int alloctype
);
577 extern void vdev_free(vdev_t
*vd
);
580 * Add or remove children and parents
582 extern void vdev_add_child(vdev_t
*pvd
, vdev_t
*cvd
);
583 extern void vdev_remove_child(vdev_t
*pvd
, vdev_t
*cvd
);
584 extern void vdev_compact_children(vdev_t
*pvd
);
585 extern vdev_t
*vdev_add_parent(vdev_t
*cvd
, vdev_ops_t
*ops
);
586 extern void vdev_remove_parent(vdev_t
*cvd
);
589 * vdev sync load and sync
591 extern boolean_t
vdev_log_state_valid(vdev_t
*vd
);
592 extern int vdev_load(vdev_t
*vd
);
593 extern int vdev_dtl_load(vdev_t
*vd
);
594 extern void vdev_sync(vdev_t
*vd
, uint64_t txg
);
595 extern void vdev_sync_done(vdev_t
*vd
, uint64_t txg
);
596 extern void vdev_dirty(vdev_t
*vd
, int flags
, void *arg
, uint64_t txg
);
597 extern void vdev_dirty_leaves(vdev_t
*vd
, int flags
, uint64_t txg
);
600 * Available vdev types.
602 extern vdev_ops_t vdev_root_ops
;
603 extern vdev_ops_t vdev_mirror_ops
;
604 extern vdev_ops_t vdev_replacing_ops
;
605 extern vdev_ops_t vdev_raidz_ops
;
606 extern vdev_ops_t vdev_draid_ops
;
607 extern vdev_ops_t vdev_draid_spare_ops
;
608 extern vdev_ops_t vdev_disk_ops
;
609 extern vdev_ops_t vdev_file_ops
;
610 extern vdev_ops_t vdev_missing_ops
;
611 extern vdev_ops_t vdev_hole_ops
;
612 extern vdev_ops_t vdev_spare_ops
;
613 extern vdev_ops_t vdev_indirect_ops
;
616 * Common size functions
618 extern void vdev_default_xlate(vdev_t
*vd
, const range_seg64_t
*logical_rs
,
619 range_seg64_t
*physical_rs
, range_seg64_t
*remain_rs
);
620 extern uint64_t vdev_default_asize(vdev_t
*vd
, uint64_t psize
, uint64_t txg
);
621 extern uint64_t vdev_default_min_asize(vdev_t
*vd
);
622 extern uint64_t vdev_get_min_asize(vdev_t
*vd
);
623 extern void vdev_set_min_asize(vdev_t
*vd
);
624 extern uint64_t vdev_get_min_alloc(vdev_t
*vd
);
625 extern uint64_t vdev_get_nparity(vdev_t
*vd
);
626 extern uint64_t vdev_get_ndisks(vdev_t
*vd
);
631 extern int zfs_vdev_standard_sm_blksz
;
634 * Functions from vdev_indirect.c
636 extern void vdev_indirect_sync_obsolete(vdev_t
*vd
, dmu_tx_t
*tx
);
637 extern boolean_t
vdev_indirect_should_condense(vdev_t
*vd
);
638 extern void spa_condense_indirect_start_sync(vdev_t
*vd
, dmu_tx_t
*tx
);
639 extern int vdev_obsolete_sm_object(vdev_t
*vd
, uint64_t *sm_obj
);
640 extern int vdev_obsolete_counts_are_precise(vdev_t
*vd
, boolean_t
*are_precise
);
643 * Other miscellaneous functions
645 int vdev_checkpoint_sm_object(vdev_t
*vd
, uint64_t *sm_obj
);
646 void vdev_metaslab_group_create(vdev_t
*vd
);
647 uint64_t vdev_best_ashift(uint64_t logical
, uint64_t a
, uint64_t b
);
650 * Vdev ashift optimization tunables
652 extern uint_t zfs_vdev_min_auto_ashift
;
653 extern uint_t zfs_vdev_max_auto_ashift
;
654 int param_set_min_auto_ashift(ZFS_MODULE_PARAM_ARGS
);
655 int param_set_max_auto_ashift(ZFS_MODULE_PARAM_ARGS
);
658 * VDEV checksum verification for Direct I/O writes
660 extern uint_t zfs_vdev_direct_write_verify
;
666 #endif /* _SYS_VDEV_IMPL_H */