2 * Copyright (C) 2001 Sistina Software (UK) Limited.
3 * Copyright (C) 2004-2008 Red Hat, Inc. All rights reserved.
5 * This file is released under the GPL.
10 #include <linux/module.h>
11 #include <linux/vmalloc.h>
12 #include <linux/blkdev.h>
13 #include <linux/namei.h>
14 #include <linux/ctype.h>
15 #include <linux/string.h>
16 #include <linux/slab.h>
17 #include <linux/interrupt.h>
18 #include <linux/mutex.h>
19 #include <linux/delay.h>
20 #include <linux/atomic.h>
22 #define DM_MSG_PREFIX "table"
25 #define NODE_SIZE L1_CACHE_BYTES
26 #define KEYS_PER_NODE (NODE_SIZE / sizeof(sector_t))
27 #define CHILDREN_PER_NODE (KEYS_PER_NODE + 1)
30 * The table has always exactly one reference from either mapped_device->map
31 * or hash_cell->new_map. This reference is not counted in table->holders.
32 * A pair of dm_create_table/dm_destroy_table functions is used for table
33 * creation/destruction.
35 * Temporary references from the other code increase table->holders. A pair
36 * of dm_table_get/dm_table_put functions is used to manipulate it.
38 * When the table is about to be destroyed, we wait for table->holders to
43 struct mapped_device
*md
;
49 unsigned int counts
[MAX_DEPTH
]; /* in nodes */
50 sector_t
*index
[MAX_DEPTH
];
52 unsigned int num_targets
;
53 unsigned int num_allocated
;
55 struct dm_target
*targets
;
57 unsigned integrity_supported
:1;
61 * Indicates the rw permissions for the new logical
62 * device. This should be a combination of FMODE_READ
67 /* a list of devices used by this table */
68 struct list_head devices
;
70 /* events get handed up using this callback */
71 void (*event_fn
)(void *);
74 struct dm_md_mempools
*mempools
;
76 struct list_head target_callbacks
;
80 * Similar to ceiling(log_size(n))
82 static unsigned int int_log(unsigned int n
, unsigned int base
)
87 n
= dm_div_up(n
, base
);
95 * Calculate the index of the child node of the n'th node k'th key.
97 static inline unsigned int get_child(unsigned int n
, unsigned int k
)
99 return (n
* CHILDREN_PER_NODE
) + k
;
103 * Return the n'th node of level l from table t.
105 static inline sector_t
*get_node(struct dm_table
*t
,
106 unsigned int l
, unsigned int n
)
108 return t
->index
[l
] + (n
* KEYS_PER_NODE
);
112 * Return the highest key that you could lookup from the n'th
113 * node on level l of the btree.
115 static sector_t
high(struct dm_table
*t
, unsigned int l
, unsigned int n
)
117 for (; l
< t
->depth
- 1; l
++)
118 n
= get_child(n
, CHILDREN_PER_NODE
- 1);
120 if (n
>= t
->counts
[l
])
121 return (sector_t
) - 1;
123 return get_node(t
, l
, n
)[KEYS_PER_NODE
- 1];
127 * Fills in a level of the btree based on the highs of the level
130 static int setup_btree_index(unsigned int l
, struct dm_table
*t
)
135 for (n
= 0U; n
< t
->counts
[l
]; n
++) {
136 node
= get_node(t
, l
, n
);
138 for (k
= 0U; k
< KEYS_PER_NODE
; k
++)
139 node
[k
] = high(t
, l
+ 1, get_child(n
, k
));
145 void *dm_vcalloc(unsigned long nmemb
, unsigned long elem_size
)
151 * Check that we're not going to overflow.
153 if (nmemb
> (ULONG_MAX
/ elem_size
))
156 size
= nmemb
* elem_size
;
157 addr
= vzalloc(size
);
161 EXPORT_SYMBOL(dm_vcalloc
);
164 * highs, and targets are managed as dynamic arrays during a
167 static int alloc_targets(struct dm_table
*t
, unsigned int num
)
170 struct dm_target
*n_targets
;
171 int n
= t
->num_targets
;
174 * Allocate both the target array and offset array at once.
175 * Append an empty entry to catch sectors beyond the end of
178 n_highs
= (sector_t
*) dm_vcalloc(num
+ 1, sizeof(struct dm_target
) +
183 n_targets
= (struct dm_target
*) (n_highs
+ num
);
186 memcpy(n_highs
, t
->highs
, sizeof(*n_highs
) * n
);
187 memcpy(n_targets
, t
->targets
, sizeof(*n_targets
) * n
);
190 memset(n_highs
+ n
, -1, sizeof(*n_highs
) * (num
- n
));
193 t
->num_allocated
= num
;
195 t
->targets
= n_targets
;
200 int dm_table_create(struct dm_table
**result
, fmode_t mode
,
201 unsigned num_targets
, struct mapped_device
*md
)
203 struct dm_table
*t
= kzalloc(sizeof(*t
), GFP_KERNEL
);
208 INIT_LIST_HEAD(&t
->devices
);
209 INIT_LIST_HEAD(&t
->target_callbacks
);
210 atomic_set(&t
->holders
, 0);
213 num_targets
= KEYS_PER_NODE
;
215 num_targets
= dm_round_up(num_targets
, KEYS_PER_NODE
);
217 if (alloc_targets(t
, num_targets
)) {
229 static void free_devices(struct list_head
*devices
)
231 struct list_head
*tmp
, *next
;
233 list_for_each_safe(tmp
, next
, devices
) {
234 struct dm_dev_internal
*dd
=
235 list_entry(tmp
, struct dm_dev_internal
, list
);
236 DMWARN("dm_table_destroy: dm_put_device call missing for %s",
242 void dm_table_destroy(struct dm_table
*t
)
249 while (atomic_read(&t
->holders
))
253 /* free the indexes */
255 vfree(t
->index
[t
->depth
- 2]);
257 /* free the targets */
258 for (i
= 0; i
< t
->num_targets
; i
++) {
259 struct dm_target
*tgt
= t
->targets
+ i
;
264 dm_put_target_type(tgt
->type
);
269 /* free the device list */
270 if (t
->devices
.next
!= &t
->devices
)
271 free_devices(&t
->devices
);
273 dm_free_md_mempools(t
->mempools
);
278 void dm_table_get(struct dm_table
*t
)
280 atomic_inc(&t
->holders
);
282 EXPORT_SYMBOL(dm_table_get
);
284 void dm_table_put(struct dm_table
*t
)
289 smp_mb__before_atomic_dec();
290 atomic_dec(&t
->holders
);
292 EXPORT_SYMBOL(dm_table_put
);
295 * Checks to see if we need to extend highs or targets.
297 static inline int check_space(struct dm_table
*t
)
299 if (t
->num_targets
>= t
->num_allocated
)
300 return alloc_targets(t
, t
->num_allocated
* 2);
306 * See if we've already got a device in the list.
308 static struct dm_dev_internal
*find_device(struct list_head
*l
, dev_t dev
)
310 struct dm_dev_internal
*dd
;
312 list_for_each_entry (dd
, l
, list
)
313 if (dd
->dm_dev
.bdev
->bd_dev
== dev
)
320 * Open a device so we can use it as a map destination.
322 static int open_dev(struct dm_dev_internal
*d
, dev_t dev
,
323 struct mapped_device
*md
)
325 static char *_claim_ptr
= "I belong to device-mapper";
326 struct block_device
*bdev
;
330 BUG_ON(d
->dm_dev
.bdev
);
332 bdev
= blkdev_get_by_dev(dev
, d
->dm_dev
.mode
| FMODE_EXCL
, _claim_ptr
);
334 return PTR_ERR(bdev
);
336 r
= bd_link_disk_holder(bdev
, dm_disk(md
));
338 blkdev_put(bdev
, d
->dm_dev
.mode
| FMODE_EXCL
);
342 d
->dm_dev
.bdev
= bdev
;
347 * Close a device that we've been using.
349 static void close_dev(struct dm_dev_internal
*d
, struct mapped_device
*md
)
354 bd_unlink_disk_holder(d
->dm_dev
.bdev
, dm_disk(md
));
355 blkdev_put(d
->dm_dev
.bdev
, d
->dm_dev
.mode
| FMODE_EXCL
);
356 d
->dm_dev
.bdev
= NULL
;
360 * If possible, this checks an area of a destination device is invalid.
362 static int device_area_is_invalid(struct dm_target
*ti
, struct dm_dev
*dev
,
363 sector_t start
, sector_t len
, void *data
)
365 struct request_queue
*q
;
366 struct queue_limits
*limits
= data
;
367 struct block_device
*bdev
= dev
->bdev
;
369 i_size_read(bdev
->bd_inode
) >> SECTOR_SHIFT
;
370 unsigned short logical_block_size_sectors
=
371 limits
->logical_block_size
>> SECTOR_SHIFT
;
372 char b
[BDEVNAME_SIZE
];
375 * Some devices exist without request functions,
376 * such as loop devices not yet bound to backing files.
377 * Forbid the use of such devices.
379 q
= bdev_get_queue(bdev
);
380 if (!q
|| !q
->make_request_fn
) {
381 DMWARN("%s: %s is not yet initialised: "
382 "start=%llu, len=%llu, dev_size=%llu",
383 dm_device_name(ti
->table
->md
), bdevname(bdev
, b
),
384 (unsigned long long)start
,
385 (unsigned long long)len
,
386 (unsigned long long)dev_size
);
393 if ((start
>= dev_size
) || (start
+ len
> dev_size
)) {
394 DMWARN("%s: %s too small for target: "
395 "start=%llu, len=%llu, dev_size=%llu",
396 dm_device_name(ti
->table
->md
), bdevname(bdev
, b
),
397 (unsigned long long)start
,
398 (unsigned long long)len
,
399 (unsigned long long)dev_size
);
403 if (logical_block_size_sectors
<= 1)
406 if (start
& (logical_block_size_sectors
- 1)) {
407 DMWARN("%s: start=%llu not aligned to h/w "
408 "logical block size %u of %s",
409 dm_device_name(ti
->table
->md
),
410 (unsigned long long)start
,
411 limits
->logical_block_size
, bdevname(bdev
, b
));
415 if (len
& (logical_block_size_sectors
- 1)) {
416 DMWARN("%s: len=%llu not aligned to h/w "
417 "logical block size %u of %s",
418 dm_device_name(ti
->table
->md
),
419 (unsigned long long)len
,
420 limits
->logical_block_size
, bdevname(bdev
, b
));
428 * This upgrades the mode on an already open dm_dev, being
429 * careful to leave things as they were if we fail to reopen the
430 * device and not to touch the existing bdev field in case
431 * it is accessed concurrently inside dm_table_any_congested().
433 static int upgrade_mode(struct dm_dev_internal
*dd
, fmode_t new_mode
,
434 struct mapped_device
*md
)
437 struct dm_dev_internal dd_new
, dd_old
;
439 dd_new
= dd_old
= *dd
;
441 dd_new
.dm_dev
.mode
|= new_mode
;
442 dd_new
.dm_dev
.bdev
= NULL
;
444 r
= open_dev(&dd_new
, dd
->dm_dev
.bdev
->bd_dev
, md
);
448 dd
->dm_dev
.mode
|= new_mode
;
449 close_dev(&dd_old
, md
);
455 * Add a device to the list, or just increment the usage count if
456 * it's already present.
458 int dm_get_device(struct dm_target
*ti
, const char *path
, fmode_t mode
,
459 struct dm_dev
**result
)
462 dev_t
uninitialized_var(dev
);
463 struct dm_dev_internal
*dd
;
464 unsigned int major
, minor
;
465 struct dm_table
*t
= ti
->table
;
469 if (sscanf(path
, "%u:%u", &major
, &minor
) == 2) {
470 /* Extract the major/minor numbers */
471 dev
= MKDEV(major
, minor
);
472 if (MAJOR(dev
) != major
|| MINOR(dev
) != minor
)
475 /* convert the path to a device */
476 struct block_device
*bdev
= lookup_bdev(path
);
479 return PTR_ERR(bdev
);
484 dd
= find_device(&t
->devices
, dev
);
486 dd
= kmalloc(sizeof(*dd
), GFP_KERNEL
);
490 dd
->dm_dev
.mode
= mode
;
491 dd
->dm_dev
.bdev
= NULL
;
493 if ((r
= open_dev(dd
, dev
, t
->md
))) {
498 format_dev_t(dd
->dm_dev
.name
, dev
);
500 atomic_set(&dd
->count
, 0);
501 list_add(&dd
->list
, &t
->devices
);
503 } else if (dd
->dm_dev
.mode
!= (mode
| dd
->dm_dev
.mode
)) {
504 r
= upgrade_mode(dd
, mode
, t
->md
);
508 atomic_inc(&dd
->count
);
510 *result
= &dd
->dm_dev
;
513 EXPORT_SYMBOL(dm_get_device
);
515 int dm_set_device_limits(struct dm_target
*ti
, struct dm_dev
*dev
,
516 sector_t start
, sector_t len
, void *data
)
518 struct queue_limits
*limits
= data
;
519 struct block_device
*bdev
= dev
->bdev
;
520 struct request_queue
*q
= bdev_get_queue(bdev
);
521 char b
[BDEVNAME_SIZE
];
524 DMWARN("%s: Cannot set limits for nonexistent device %s",
525 dm_device_name(ti
->table
->md
), bdevname(bdev
, b
));
529 if (bdev_stack_limits(limits
, bdev
, start
) < 0)
530 DMWARN("%s: adding target device %s caused an alignment inconsistency: "
531 "physical_block_size=%u, logical_block_size=%u, "
532 "alignment_offset=%u, start=%llu",
533 dm_device_name(ti
->table
->md
), bdevname(bdev
, b
),
534 q
->limits
.physical_block_size
,
535 q
->limits
.logical_block_size
,
536 q
->limits
.alignment_offset
,
537 (unsigned long long) start
<< SECTOR_SHIFT
);
540 * Check if merge fn is supported.
541 * If not we'll force DM to use PAGE_SIZE or
542 * smaller I/O, just to be safe.
544 if (dm_queue_merge_is_compulsory(q
) && !ti
->type
->merge
)
545 blk_limits_max_hw_sectors(limits
,
546 (unsigned int) (PAGE_SIZE
>> 9));
549 EXPORT_SYMBOL_GPL(dm_set_device_limits
);
552 * Decrement a device's use count and remove it if necessary.
554 void dm_put_device(struct dm_target
*ti
, struct dm_dev
*d
)
556 struct dm_dev_internal
*dd
= container_of(d
, struct dm_dev_internal
,
559 if (atomic_dec_and_test(&dd
->count
)) {
560 close_dev(dd
, ti
->table
->md
);
565 EXPORT_SYMBOL(dm_put_device
);
568 * Checks to see if the target joins onto the end of the table.
570 static int adjoin(struct dm_table
*table
, struct dm_target
*ti
)
572 struct dm_target
*prev
;
574 if (!table
->num_targets
)
577 prev
= &table
->targets
[table
->num_targets
- 1];
578 return (ti
->begin
== (prev
->begin
+ prev
->len
));
582 * Used to dynamically allocate the arg array.
584 static char **realloc_argv(unsigned *array_size
, char **old_argv
)
589 new_size
= *array_size
? *array_size
* 2 : 64;
590 argv
= kmalloc(new_size
* sizeof(*argv
), GFP_KERNEL
);
592 memcpy(argv
, old_argv
, *array_size
* sizeof(*argv
));
593 *array_size
= new_size
;
601 * Destructively splits up the argument list to pass to ctr.
603 int dm_split_args(int *argc
, char ***argvp
, char *input
)
605 char *start
, *end
= input
, *out
, **argv
= NULL
;
606 unsigned array_size
= 0;
615 argv
= realloc_argv(&array_size
, argv
);
620 /* Skip whitespace */
621 start
= skip_spaces(end
);
624 break; /* success, we hit the end */
626 /* 'out' is used to remove any back-quotes */
629 /* Everything apart from '\0' can be quoted */
630 if (*end
== '\\' && *(end
+ 1)) {
637 break; /* end of token */
642 /* have we already filled the array ? */
643 if ((*argc
+ 1) > array_size
) {
644 argv
= realloc_argv(&array_size
, argv
);
649 /* we know this is whitespace */
653 /* terminate the string and put it in the array */
664 * Impose necessary and sufficient conditions on a devices's table such
665 * that any incoming bio which respects its logical_block_size can be
666 * processed successfully. If it falls across the boundary between
667 * two or more targets, the size of each piece it gets split into must
668 * be compatible with the logical_block_size of the target processing it.
670 static int validate_hardware_logical_block_alignment(struct dm_table
*table
,
671 struct queue_limits
*limits
)
674 * This function uses arithmetic modulo the logical_block_size
675 * (in units of 512-byte sectors).
677 unsigned short device_logical_block_size_sects
=
678 limits
->logical_block_size
>> SECTOR_SHIFT
;
681 * Offset of the start of the next table entry, mod logical_block_size.
683 unsigned short next_target_start
= 0;
686 * Given an aligned bio that extends beyond the end of a
687 * target, how many sectors must the next target handle?
689 unsigned short remaining
= 0;
691 struct dm_target
*uninitialized_var(ti
);
692 struct queue_limits ti_limits
;
696 * Check each entry in the table in turn.
698 while (i
< dm_table_get_num_targets(table
)) {
699 ti
= dm_table_get_target(table
, i
++);
701 blk_set_default_limits(&ti_limits
);
703 /* combine all target devices' limits */
704 if (ti
->type
->iterate_devices
)
705 ti
->type
->iterate_devices(ti
, dm_set_device_limits
,
709 * If the remaining sectors fall entirely within this
710 * table entry are they compatible with its logical_block_size?
712 if (remaining
< ti
->len
&&
713 remaining
& ((ti_limits
.logical_block_size
>>
718 (unsigned short) ((next_target_start
+ ti
->len
) &
719 (device_logical_block_size_sects
- 1));
720 remaining
= next_target_start
?
721 device_logical_block_size_sects
- next_target_start
: 0;
725 DMWARN("%s: table line %u (start sect %llu len %llu) "
726 "not aligned to h/w logical block size %u",
727 dm_device_name(table
->md
), i
,
728 (unsigned long long) ti
->begin
,
729 (unsigned long long) ti
->len
,
730 limits
->logical_block_size
);
737 int dm_table_add_target(struct dm_table
*t
, const char *type
,
738 sector_t start
, sector_t len
, char *params
)
740 int r
= -EINVAL
, argc
;
742 struct dm_target
*tgt
;
745 DMERR("%s: target type %s must appear alone in table",
746 dm_device_name(t
->md
), t
->targets
->type
->name
);
750 if ((r
= check_space(t
)))
753 tgt
= t
->targets
+ t
->num_targets
;
754 memset(tgt
, 0, sizeof(*tgt
));
757 DMERR("%s: zero-length target", dm_device_name(t
->md
));
761 tgt
->type
= dm_get_target_type(type
);
763 DMERR("%s: %s: unknown target type", dm_device_name(t
->md
),
768 if (dm_target_needs_singleton(tgt
->type
)) {
769 if (t
->num_targets
) {
770 DMERR("%s: target type %s must appear alone in table",
771 dm_device_name(t
->md
), type
);
777 if (dm_target_always_writeable(tgt
->type
) && !(t
->mode
& FMODE_WRITE
)) {
778 DMERR("%s: target type %s may not be included in read-only tables",
779 dm_device_name(t
->md
), type
);
786 tgt
->error
= "Unknown error";
789 * Does this target adjoin the previous one ?
791 if (!adjoin(t
, tgt
)) {
792 tgt
->error
= "Gap in table";
797 r
= dm_split_args(&argc
, &argv
, params
);
799 tgt
->error
= "couldn't split parameters (insufficient memory)";
803 r
= tgt
->type
->ctr(tgt
, argc
, argv
);
808 t
->highs
[t
->num_targets
++] = tgt
->begin
+ tgt
->len
- 1;
810 if (!tgt
->num_discard_requests
&& tgt
->discards_supported
)
811 DMWARN("%s: %s: ignoring discards_supported because num_discard_requests is zero.",
812 dm_device_name(t
->md
), type
);
817 DMERR("%s: %s: %s", dm_device_name(t
->md
), type
, tgt
->error
);
818 dm_put_target_type(tgt
->type
);
823 * Target argument parsing helpers.
825 static int validate_next_arg(struct dm_arg
*arg
, struct dm_arg_set
*arg_set
,
826 unsigned *value
, char **error
, unsigned grouped
)
828 const char *arg_str
= dm_shift_arg(arg_set
);
831 (sscanf(arg_str
, "%u", value
) != 1) ||
832 (*value
< arg
->min
) ||
833 (*value
> arg
->max
) ||
834 (grouped
&& arg_set
->argc
< *value
)) {
842 int dm_read_arg(struct dm_arg
*arg
, struct dm_arg_set
*arg_set
,
843 unsigned *value
, char **error
)
845 return validate_next_arg(arg
, arg_set
, value
, error
, 0);
847 EXPORT_SYMBOL(dm_read_arg
);
849 int dm_read_arg_group(struct dm_arg
*arg
, struct dm_arg_set
*arg_set
,
850 unsigned *value
, char **error
)
852 return validate_next_arg(arg
, arg_set
, value
, error
, 1);
854 EXPORT_SYMBOL(dm_read_arg_group
);
856 const char *dm_shift_arg(struct dm_arg_set
*as
)
869 EXPORT_SYMBOL(dm_shift_arg
);
871 void dm_consume_args(struct dm_arg_set
*as
, unsigned num_args
)
873 BUG_ON(as
->argc
< num_args
);
874 as
->argc
-= num_args
;
875 as
->argv
+= num_args
;
877 EXPORT_SYMBOL(dm_consume_args
);
879 static int dm_table_set_type(struct dm_table
*t
)
882 unsigned bio_based
= 0, request_based
= 0;
883 struct dm_target
*tgt
;
884 struct dm_dev_internal
*dd
;
885 struct list_head
*devices
;
887 for (i
= 0; i
< t
->num_targets
; i
++) {
888 tgt
= t
->targets
+ i
;
889 if (dm_target_request_based(tgt
))
894 if (bio_based
&& request_based
) {
895 DMWARN("Inconsistent table: different target types"
896 " can't be mixed up");
902 /* We must use this table as bio-based */
903 t
->type
= DM_TYPE_BIO_BASED
;
907 BUG_ON(!request_based
); /* No targets in this table */
909 /* Non-request-stackable devices can't be used for request-based dm */
910 devices
= dm_table_get_devices(t
);
911 list_for_each_entry(dd
, devices
, list
) {
912 if (!blk_queue_stackable(bdev_get_queue(dd
->dm_dev
.bdev
))) {
913 DMWARN("table load rejected: including"
914 " non-request-stackable devices");
920 * Request-based dm supports only tables that have a single target now.
921 * To support multiple targets, request splitting support is needed,
922 * and that needs lots of changes in the block-layer.
923 * (e.g. request completion process for partial completion.)
925 if (t
->num_targets
> 1) {
926 DMWARN("Request-based dm doesn't support multiple targets yet");
930 t
->type
= DM_TYPE_REQUEST_BASED
;
935 unsigned dm_table_get_type(struct dm_table
*t
)
940 bool dm_table_request_based(struct dm_table
*t
)
942 return dm_table_get_type(t
) == DM_TYPE_REQUEST_BASED
;
945 int dm_table_alloc_md_mempools(struct dm_table
*t
)
947 unsigned type
= dm_table_get_type(t
);
949 if (unlikely(type
== DM_TYPE_NONE
)) {
950 DMWARN("no table type is set, can't allocate mempools");
954 t
->mempools
= dm_alloc_md_mempools(type
, t
->integrity_supported
);
961 void dm_table_free_md_mempools(struct dm_table
*t
)
963 dm_free_md_mempools(t
->mempools
);
967 struct dm_md_mempools
*dm_table_get_md_mempools(struct dm_table
*t
)
972 static int setup_indexes(struct dm_table
*t
)
975 unsigned int total
= 0;
978 /* allocate the space for *all* the indexes */
979 for (i
= t
->depth
- 2; i
>= 0; i
--) {
980 t
->counts
[i
] = dm_div_up(t
->counts
[i
+ 1], CHILDREN_PER_NODE
);
981 total
+= t
->counts
[i
];
984 indexes
= (sector_t
*) dm_vcalloc(total
, (unsigned long) NODE_SIZE
);
988 /* set up internal nodes, bottom-up */
989 for (i
= t
->depth
- 2; i
>= 0; i
--) {
990 t
->index
[i
] = indexes
;
991 indexes
+= (KEYS_PER_NODE
* t
->counts
[i
]);
992 setup_btree_index(i
, t
);
999 * Builds the btree to index the map.
1001 static int dm_table_build_index(struct dm_table
*t
)
1004 unsigned int leaf_nodes
;
1006 /* how many indexes will the btree have ? */
1007 leaf_nodes
= dm_div_up(t
->num_targets
, KEYS_PER_NODE
);
1008 t
->depth
= 1 + int_log(leaf_nodes
, CHILDREN_PER_NODE
);
1010 /* leaf layer has already been set up */
1011 t
->counts
[t
->depth
- 1] = leaf_nodes
;
1012 t
->index
[t
->depth
- 1] = t
->highs
;
1015 r
= setup_indexes(t
);
1021 * Get a disk whose integrity profile reflects the table's profile.
1022 * If %match_all is true, all devices' profiles must match.
1023 * If %match_all is false, all devices must at least have an
1024 * allocated integrity profile; but uninitialized is ok.
1025 * Returns NULL if integrity support was inconsistent or unavailable.
1027 static struct gendisk
* dm_table_get_integrity_disk(struct dm_table
*t
,
1030 struct list_head
*devices
= dm_table_get_devices(t
);
1031 struct dm_dev_internal
*dd
= NULL
;
1032 struct gendisk
*prev_disk
= NULL
, *template_disk
= NULL
;
1034 list_for_each_entry(dd
, devices
, list
) {
1035 template_disk
= dd
->dm_dev
.bdev
->bd_disk
;
1036 if (!blk_get_integrity(template_disk
))
1038 if (!match_all
&& !blk_integrity_is_initialized(template_disk
))
1039 continue; /* skip uninitialized profiles */
1040 else if (prev_disk
&&
1041 blk_integrity_compare(prev_disk
, template_disk
) < 0)
1043 prev_disk
= template_disk
;
1046 return template_disk
;
1050 DMWARN("%s: integrity not set: %s and %s profile mismatch",
1051 dm_device_name(t
->md
),
1052 prev_disk
->disk_name
,
1053 template_disk
->disk_name
);
1058 * Register the mapped device for blk_integrity support if
1059 * the underlying devices have an integrity profile. But all devices
1060 * may not have matching profiles (checking all devices isn't reliable
1061 * during table load because this table may use other DM device(s) which
1062 * must be resumed before they will have an initialized integity profile).
1063 * Stacked DM devices force a 2 stage integrity profile validation:
1064 * 1 - during load, validate all initialized integrity profiles match
1065 * 2 - during resume, validate all integrity profiles match
1067 static int dm_table_prealloc_integrity(struct dm_table
*t
, struct mapped_device
*md
)
1069 struct gendisk
*template_disk
= NULL
;
1071 template_disk
= dm_table_get_integrity_disk(t
, false);
1075 if (!blk_integrity_is_initialized(dm_disk(md
))) {
1076 t
->integrity_supported
= 1;
1077 return blk_integrity_register(dm_disk(md
), NULL
);
1081 * If DM device already has an initalized integrity
1082 * profile the new profile should not conflict.
1084 if (blk_integrity_is_initialized(template_disk
) &&
1085 blk_integrity_compare(dm_disk(md
), template_disk
) < 0) {
1086 DMWARN("%s: conflict with existing integrity profile: "
1087 "%s profile mismatch",
1088 dm_device_name(t
->md
),
1089 template_disk
->disk_name
);
1093 /* Preserve existing initialized integrity profile */
1094 t
->integrity_supported
= 1;
1099 * Prepares the table for use by building the indices,
1100 * setting the type, and allocating mempools.
1102 int dm_table_complete(struct dm_table
*t
)
1106 r
= dm_table_set_type(t
);
1108 DMERR("unable to set table type");
1112 r
= dm_table_build_index(t
);
1114 DMERR("unable to build btrees");
1118 r
= dm_table_prealloc_integrity(t
, t
->md
);
1120 DMERR("could not register integrity profile.");
1124 r
= dm_table_alloc_md_mempools(t
);
1126 DMERR("unable to allocate mempools");
1131 static DEFINE_MUTEX(_event_lock
);
1132 void dm_table_event_callback(struct dm_table
*t
,
1133 void (*fn
)(void *), void *context
)
1135 mutex_lock(&_event_lock
);
1137 t
->event_context
= context
;
1138 mutex_unlock(&_event_lock
);
1141 void dm_table_event(struct dm_table
*t
)
1144 * You can no longer call dm_table_event() from interrupt
1145 * context, use a bottom half instead.
1147 BUG_ON(in_interrupt());
1149 mutex_lock(&_event_lock
);
1151 t
->event_fn(t
->event_context
);
1152 mutex_unlock(&_event_lock
);
1154 EXPORT_SYMBOL(dm_table_event
);
1156 sector_t
dm_table_get_size(struct dm_table
*t
)
1158 return t
->num_targets
? (t
->highs
[t
->num_targets
- 1] + 1) : 0;
1160 EXPORT_SYMBOL(dm_table_get_size
);
1162 struct dm_target
*dm_table_get_target(struct dm_table
*t
, unsigned int index
)
1164 if (index
>= t
->num_targets
)
1167 return t
->targets
+ index
;
1171 * Search the btree for the correct target.
1173 * Caller should check returned pointer with dm_target_is_valid()
1174 * to trap I/O beyond end of device.
1176 struct dm_target
*dm_table_find_target(struct dm_table
*t
, sector_t sector
)
1178 unsigned int l
, n
= 0, k
= 0;
1181 for (l
= 0; l
< t
->depth
; l
++) {
1182 n
= get_child(n
, k
);
1183 node
= get_node(t
, l
, n
);
1185 for (k
= 0; k
< KEYS_PER_NODE
; k
++)
1186 if (node
[k
] >= sector
)
1190 return &t
->targets
[(KEYS_PER_NODE
* n
) + k
];
1194 * Establish the new table's queue_limits and validate them.
1196 int dm_calculate_queue_limits(struct dm_table
*table
,
1197 struct queue_limits
*limits
)
1199 struct dm_target
*uninitialized_var(ti
);
1200 struct queue_limits ti_limits
;
1203 blk_set_default_limits(limits
);
1205 while (i
< dm_table_get_num_targets(table
)) {
1206 blk_set_default_limits(&ti_limits
);
1208 ti
= dm_table_get_target(table
, i
++);
1210 if (!ti
->type
->iterate_devices
)
1211 goto combine_limits
;
1214 * Combine queue limits of all the devices this target uses.
1216 ti
->type
->iterate_devices(ti
, dm_set_device_limits
,
1219 /* Set I/O hints portion of queue limits */
1220 if (ti
->type
->io_hints
)
1221 ti
->type
->io_hints(ti
, &ti_limits
);
1224 * Check each device area is consistent with the target's
1225 * overall queue limits.
1227 if (ti
->type
->iterate_devices(ti
, device_area_is_invalid
,
1233 * Merge this target's queue limits into the overall limits
1236 if (blk_stack_limits(limits
, &ti_limits
, 0) < 0)
1237 DMWARN("%s: adding target device "
1238 "(start sect %llu len %llu) "
1239 "caused an alignment inconsistency",
1240 dm_device_name(table
->md
),
1241 (unsigned long long) ti
->begin
,
1242 (unsigned long long) ti
->len
);
1245 return validate_hardware_logical_block_alignment(table
, limits
);
1249 * Set the integrity profile for this device if all devices used have
1250 * matching profiles. We're quite deep in the resume path but still
1251 * don't know if all devices (particularly DM devices this device
1252 * may be stacked on) have matching profiles. Even if the profiles
1253 * don't match we have no way to fail (to resume) at this point.
1255 static void dm_table_set_integrity(struct dm_table
*t
)
1257 struct gendisk
*template_disk
= NULL
;
1259 if (!blk_get_integrity(dm_disk(t
->md
)))
1262 template_disk
= dm_table_get_integrity_disk(t
, true);
1264 blk_integrity_register(dm_disk(t
->md
),
1265 blk_get_integrity(template_disk
));
1266 else if (blk_integrity_is_initialized(dm_disk(t
->md
)))
1267 DMWARN("%s: device no longer has a valid integrity profile",
1268 dm_device_name(t
->md
));
1270 DMWARN("%s: unable to establish an integrity profile",
1271 dm_device_name(t
->md
));
1274 static int device_flush_capable(struct dm_target
*ti
, struct dm_dev
*dev
,
1275 sector_t start
, sector_t len
, void *data
)
1277 unsigned flush
= (*(unsigned *)data
);
1278 struct request_queue
*q
= bdev_get_queue(dev
->bdev
);
1280 return q
&& (q
->flush_flags
& flush
);
1283 static bool dm_table_supports_flush(struct dm_table
*t
, unsigned flush
)
1285 struct dm_target
*ti
;
1289 * Require at least one underlying device to support flushes.
1290 * t->devices includes internal dm devices such as mirror logs
1291 * so we need to use iterate_devices here, which targets
1292 * supporting flushes must provide.
1294 while (i
< dm_table_get_num_targets(t
)) {
1295 ti
= dm_table_get_target(t
, i
++);
1297 if (!ti
->num_flush_requests
)
1300 if (ti
->type
->iterate_devices
&&
1301 ti
->type
->iterate_devices(ti
, device_flush_capable
, &flush
))
1308 static int device_is_nonrot(struct dm_target
*ti
, struct dm_dev
*dev
,
1309 sector_t start
, sector_t len
, void *data
)
1311 struct request_queue
*q
= bdev_get_queue(dev
->bdev
);
1313 return q
&& blk_queue_nonrot(q
);
1316 static bool dm_table_is_nonrot(struct dm_table
*t
)
1318 struct dm_target
*ti
;
1321 /* Ensure that all underlying device are non-rotational. */
1322 while (i
< dm_table_get_num_targets(t
)) {
1323 ti
= dm_table_get_target(t
, i
++);
1325 if (!ti
->type
->iterate_devices
||
1326 !ti
->type
->iterate_devices(ti
, device_is_nonrot
, NULL
))
1333 static bool dm_table_discard_zeroes_data(struct dm_table
*t
)
1335 struct dm_target
*ti
;
1338 /* Ensure that all targets supports discard_zeroes_data. */
1339 while (i
< dm_table_get_num_targets(t
)) {
1340 ti
= dm_table_get_target(t
, i
++);
1342 if (ti
->discard_zeroes_data_unsupported
)
1349 void dm_table_set_restrictions(struct dm_table
*t
, struct request_queue
*q
,
1350 struct queue_limits
*limits
)
1355 * Copy table's limits to the DM device's request_queue
1357 q
->limits
= *limits
;
1359 if (!dm_table_supports_discards(t
))
1360 queue_flag_clear_unlocked(QUEUE_FLAG_DISCARD
, q
);
1362 queue_flag_set_unlocked(QUEUE_FLAG_DISCARD
, q
);
1364 if (dm_table_supports_flush(t
, REQ_FLUSH
)) {
1366 if (dm_table_supports_flush(t
, REQ_FUA
))
1369 blk_queue_flush(q
, flush
);
1371 if (dm_table_is_nonrot(t
))
1372 queue_flag_set_unlocked(QUEUE_FLAG_NONROT
, q
);
1374 queue_flag_clear_unlocked(QUEUE_FLAG_NONROT
, q
);
1376 if (!dm_table_discard_zeroes_data(t
))
1377 q
->limits
.discard_zeroes_data
= 0;
1379 dm_table_set_integrity(t
);
1382 * QUEUE_FLAG_STACKABLE must be set after all queue settings are
1383 * visible to other CPUs because, once the flag is set, incoming bios
1384 * are processed by request-based dm, which refers to the queue
1386 * Until the flag set, bios are passed to bio-based dm and queued to
1387 * md->deferred where queue settings are not needed yet.
1388 * Those bios are passed to request-based dm at the resume time.
1391 if (dm_table_request_based(t
))
1392 queue_flag_set_unlocked(QUEUE_FLAG_STACKABLE
, q
);
1395 unsigned int dm_table_get_num_targets(struct dm_table
*t
)
1397 return t
->num_targets
;
1400 struct list_head
*dm_table_get_devices(struct dm_table
*t
)
1405 fmode_t
dm_table_get_mode(struct dm_table
*t
)
1409 EXPORT_SYMBOL(dm_table_get_mode
);
1411 static void suspend_targets(struct dm_table
*t
, unsigned postsuspend
)
1413 int i
= t
->num_targets
;
1414 struct dm_target
*ti
= t
->targets
;
1418 if (ti
->type
->postsuspend
)
1419 ti
->type
->postsuspend(ti
);
1420 } else if (ti
->type
->presuspend
)
1421 ti
->type
->presuspend(ti
);
1427 void dm_table_presuspend_targets(struct dm_table
*t
)
1432 suspend_targets(t
, 0);
1435 void dm_table_postsuspend_targets(struct dm_table
*t
)
1440 suspend_targets(t
, 1);
1443 int dm_table_resume_targets(struct dm_table
*t
)
1447 for (i
= 0; i
< t
->num_targets
; i
++) {
1448 struct dm_target
*ti
= t
->targets
+ i
;
1450 if (!ti
->type
->preresume
)
1453 r
= ti
->type
->preresume(ti
);
1458 for (i
= 0; i
< t
->num_targets
; i
++) {
1459 struct dm_target
*ti
= t
->targets
+ i
;
1461 if (ti
->type
->resume
)
1462 ti
->type
->resume(ti
);
1468 void dm_table_add_target_callbacks(struct dm_table
*t
, struct dm_target_callbacks
*cb
)
1470 list_add(&cb
->list
, &t
->target_callbacks
);
1472 EXPORT_SYMBOL_GPL(dm_table_add_target_callbacks
);
1474 int dm_table_any_congested(struct dm_table
*t
, int bdi_bits
)
1476 struct dm_dev_internal
*dd
;
1477 struct list_head
*devices
= dm_table_get_devices(t
);
1478 struct dm_target_callbacks
*cb
;
1481 list_for_each_entry(dd
, devices
, list
) {
1482 struct request_queue
*q
= bdev_get_queue(dd
->dm_dev
.bdev
);
1483 char b
[BDEVNAME_SIZE
];
1486 r
|= bdi_congested(&q
->backing_dev_info
, bdi_bits
);
1488 DMWARN_LIMIT("%s: any_congested: nonexistent device %s",
1489 dm_device_name(t
->md
),
1490 bdevname(dd
->dm_dev
.bdev
, b
));
1493 list_for_each_entry(cb
, &t
->target_callbacks
, list
)
1494 if (cb
->congested_fn
)
1495 r
|= cb
->congested_fn(cb
, bdi_bits
);
1500 int dm_table_any_busy_target(struct dm_table
*t
)
1503 struct dm_target
*ti
;
1505 for (i
= 0; i
< t
->num_targets
; i
++) {
1506 ti
= t
->targets
+ i
;
1507 if (ti
->type
->busy
&& ti
->type
->busy(ti
))
1514 struct mapped_device
*dm_table_get_md(struct dm_table
*t
)
1518 EXPORT_SYMBOL(dm_table_get_md
);
1520 static int device_discard_capable(struct dm_target
*ti
, struct dm_dev
*dev
,
1521 sector_t start
, sector_t len
, void *data
)
1523 struct request_queue
*q
= bdev_get_queue(dev
->bdev
);
1525 return q
&& blk_queue_discard(q
);
1528 bool dm_table_supports_discards(struct dm_table
*t
)
1530 struct dm_target
*ti
;
1534 * Unless any target used by the table set discards_supported,
1535 * require at least one underlying device to support discards.
1536 * t->devices includes internal dm devices such as mirror logs
1537 * so we need to use iterate_devices here, which targets
1538 * supporting discard selectively must provide.
1540 while (i
< dm_table_get_num_targets(t
)) {
1541 ti
= dm_table_get_target(t
, i
++);
1543 if (!ti
->num_discard_requests
)
1546 if (ti
->discards_supported
)
1549 if (ti
->type
->iterate_devices
&&
1550 ti
->type
->iterate_devices(ti
, device_discard_capable
, NULL
))