1 // SPDX-License-Identifier: GPL-2.0-only
3 * Copyright (C) 2017 Western Digital Corporation or its affiliates.
5 * This file is released under the GPL.
10 #include <linux/module.h>
11 #include <linux/crc32.h>
12 #include <linux/sched/mm.h>
14 #define DM_MSG_PREFIX "zoned metadata"
19 #define DMZ_META_VER 2
22 * On-disk super block magic.
24 #define DMZ_MAGIC ((((unsigned int)('D')) << 24) | \
25 (((unsigned int)('Z')) << 16) | \
26 (((unsigned int)('B')) << 8) | \
27 ((unsigned int)('D')))
30 * On disk super block.
31 * This uses only 512 B but uses on disk a full 4KB block. This block is
32 * followed on disk by the mapping table of chunks to zones and the bitmap
33 * blocks indicating zone block validity.
34 * The overall resulting metadata format is:
35 * (1) Super block (1 block)
36 * (2) Chunk mapping table (nr_map_blocks)
37 * (3) Bitmap blocks (nr_bitmap_blocks)
38 * All metadata blocks are stored in conventional zones, starting from
39 * the first conventional zone found on disk.
45 /* Metadata version number */
46 __le32 version; /* 8 */
48 /* Generation number */
51 /* This block number */
52 __le64 sb_block; /* 24 */
54 /* The number of metadata blocks, including this super block */
55 __le32 nr_meta_blocks; /* 28 */
57 /* The number of sequential zones reserved for reclaim */
58 __le32 nr_reserved_seq; /* 32 */
60 /* The number of entries in the mapping table */
61 __le32 nr_chunks; /* 36 */
63 /* The number of blocks used for the chunk mapping table */
64 __le32 nr_map_blocks; /* 40 */
66 /* The number of blocks used for the block bitmaps */
67 __le32 nr_bitmap_blocks; /* 44 */
73 u8 dmz_label[32]; /* 80 */
76 u8 dmz_uuid[16]; /* 96 */
79 u8 dev_uuid[16]; /* 112 */
81 /* Padding to full 512B sector */
82 u8 reserved[400]; /* 512 */
86 * Chunk mapping entry: entries are indexed by chunk number
87 * and give the zone ID (dzone_id) mapping the chunk on disk.
88 * This zone may be sequential or random. If it is a sequential
89 * zone, a second zone (bzone_id) used as a write buffer may
90 * also be specified. This second zone will always be a randomly
99 * Chunk mapping table metadata: 512 8-bytes entries per 4KB block.
101 #define DMZ_MAP_ENTRIES (DMZ_BLOCK_SIZE / sizeof(struct dmz_map))
102 #define DMZ_MAP_ENTRIES_SHIFT (ilog2(DMZ_MAP_ENTRIES))
103 #define DMZ_MAP_ENTRIES_MASK (DMZ_MAP_ENTRIES - 1)
104 #define DMZ_MAP_UNMAPPED UINT_MAX
107 * Meta data block descriptor (for cached metadata blocks).
111 struct list_head link;
120 * Metadata block state flags.
130 * Super block information (one per metadata set).
135 struct dmz_mblock *mblk;
136 struct dmz_super *sb;
137 struct dm_zone *zone;
141 * In-memory metadata.
143 struct dmz_metadata {
145 unsigned int nr_devs;
147 char devname[BDEVNAME_SIZE];
148 char label[BDEVNAME_SIZE];
151 sector_t zone_bitmap_size;
152 unsigned int zone_nr_bitmap_blocks;
153 unsigned int zone_bits_per_mblk;
155 sector_t zone_nr_blocks;
156 sector_t zone_nr_blocks_shift;
158 sector_t zone_nr_sectors;
159 sector_t zone_nr_sectors_shift;
161 unsigned int nr_bitmap_blocks;
162 unsigned int nr_map_blocks;
164 unsigned int nr_zones;
165 unsigned int nr_useable_zones;
166 unsigned int nr_meta_blocks;
167 unsigned int nr_meta_zones;
168 unsigned int nr_data_zones;
169 unsigned int nr_cache_zones;
170 unsigned int nr_rnd_zones;
171 unsigned int nr_reserved_seq;
172 unsigned int nr_chunks;
174 /* Zone information array */
178 unsigned int mblk_primary;
179 unsigned int sb_version;
181 unsigned int min_nr_mblks;
182 unsigned int max_nr_mblks;
184 struct rw_semaphore mblk_sem;
185 struct mutex mblk_flush_lock;
186 spinlock_t mblk_lock;
187 struct rb_root mblk_rbtree;
188 struct list_head mblk_lru_list;
189 struct list_head mblk_dirty_list;
190 struct shrinker mblk_shrinker;
192 /* Zone allocation management */
193 struct mutex map_lock;
194 struct dmz_mblock **map_mblk;
196 unsigned int nr_cache;
197 atomic_t unmap_nr_cache;
198 struct list_head unmap_cache_list;
199 struct list_head map_cache_list;
201 atomic_t nr_reserved_seq_zones;
202 struct list_head reserved_seq_zones_list;
204 wait_queue_head_t free_wq;
207 #define dmz_zmd_info(zmd, format, args...) \
208 DMINFO("(%s): " format, (zmd)->label, ## args)
210 #define dmz_zmd_err(zmd, format, args...) \
211 DMERR("(%s): " format, (zmd)->label, ## args)
213 #define dmz_zmd_warn(zmd, format, args...) \
214 DMWARN("(%s): " format, (zmd)->label, ## args)
216 #define dmz_zmd_debug(zmd, format, args...) \
217 DMDEBUG("(%s): " format, (zmd)->label, ## args)
221 static unsigned int dmz_dev_zone_id(struct dmz_metadata *zmd, struct dm_zone *zone)
226 return zone->id - zone->dev->zone_offset;
229 sector_t dmz_start_sect(struct dmz_metadata *zmd, struct dm_zone *zone)
231 unsigned int zone_id = dmz_dev_zone_id(zmd, zone);
233 return (sector_t)zone_id << zmd->zone_nr_sectors_shift;
236 sector_t dmz_start_block(struct dmz_metadata *zmd, struct dm_zone *zone)
238 unsigned int zone_id = dmz_dev_zone_id(zmd, zone);
240 return (sector_t)zone_id << zmd->zone_nr_blocks_shift;
243 unsigned int dmz_zone_nr_blocks(struct dmz_metadata *zmd)
245 return zmd->zone_nr_blocks;
248 unsigned int dmz_zone_nr_blocks_shift(struct dmz_metadata *zmd)
250 return zmd->zone_nr_blocks_shift;
253 unsigned int dmz_zone_nr_sectors(struct dmz_metadata *zmd)
255 return zmd->zone_nr_sectors;
258 unsigned int dmz_zone_nr_sectors_shift(struct dmz_metadata *zmd)
260 return zmd->zone_nr_sectors_shift;
263 unsigned int dmz_nr_zones(struct dmz_metadata *zmd)
265 return zmd->nr_zones;
268 unsigned int dmz_nr_chunks(struct dmz_metadata *zmd)
270 return zmd->nr_chunks;
273 unsigned int dmz_nr_rnd_zones(struct dmz_metadata *zmd, int idx)
275 return zmd->dev[idx].nr_rnd;
278 unsigned int dmz_nr_unmap_rnd_zones(struct dmz_metadata *zmd, int idx)
280 return atomic_read(&zmd->dev[idx].unmap_nr_rnd);
283 unsigned int dmz_nr_cache_zones(struct dmz_metadata *zmd)
285 return zmd->nr_cache;
288 unsigned int dmz_nr_unmap_cache_zones(struct dmz_metadata *zmd)
290 return atomic_read(&zmd->unmap_nr_cache);
293 unsigned int dmz_nr_seq_zones(struct dmz_metadata *zmd, int idx)
295 return zmd->dev[idx].nr_seq;
298 unsigned int dmz_nr_unmap_seq_zones(struct dmz_metadata *zmd, int idx)
300 return atomic_read(&zmd->dev[idx].unmap_nr_seq);
303 static struct dm_zone *dmz_get(struct dmz_metadata *zmd, unsigned int zone_id)
305 return xa_load(&zmd->zones, zone_id);
308 static struct dm_zone *dmz_insert(struct dmz_metadata *zmd,
309 unsigned int zone_id, struct dmz_dev *dev)
311 struct dm_zone *zone = kzalloc(sizeof(struct dm_zone), GFP_KERNEL);
314 return ERR_PTR(-ENOMEM);
316 if (xa_insert(&zmd->zones, zone_id, zone, GFP_KERNEL)) {
318 return ERR_PTR(-EBUSY);
321 INIT_LIST_HEAD(&zone->link);
322 atomic_set(&zone->refcount, 0);
324 zone->chunk = DMZ_MAP_UNMAPPED;
330 const char *dmz_metadata_label(struct dmz_metadata *zmd)
332 return (const char *)zmd->label;
335 bool dmz_check_dev(struct dmz_metadata *zmd)
339 for (i = 0; i < zmd->nr_devs; i++) {
340 if (!dmz_check_bdev(&zmd->dev[i]))
346 bool dmz_dev_is_dying(struct dmz_metadata *zmd)
350 for (i = 0; i < zmd->nr_devs; i++) {
351 if (dmz_bdev_is_dying(&zmd->dev[i]))
358 * Lock/unlock mapping table.
359 * The map lock also protects all the zone lists.
361 void dmz_lock_map(struct dmz_metadata *zmd)
363 mutex_lock(&zmd->map_lock);
366 void dmz_unlock_map(struct dmz_metadata *zmd)
368 mutex_unlock(&zmd->map_lock);
372 * Lock/unlock metadata access. This is a "read" lock on a semaphore
373 * that prevents metadata flush from running while metadata are being
374 * modified. The actual metadata write mutual exclusion is achieved with
375 * the map lock and zone state management (active and reclaim state are
376 * mutually exclusive).
378 void dmz_lock_metadata(struct dmz_metadata *zmd)
380 down_read(&zmd->mblk_sem);
383 void dmz_unlock_metadata(struct dmz_metadata *zmd)
385 up_read(&zmd->mblk_sem);
389 * Lock/unlock flush: prevent concurrent executions
390 * of dmz_flush_metadata as well as metadata modification in reclaim
391 * while flush is being executed.
393 void dmz_lock_flush(struct dmz_metadata *zmd)
395 mutex_lock(&zmd->mblk_flush_lock);
398 void dmz_unlock_flush(struct dmz_metadata *zmd)
400 mutex_unlock(&zmd->mblk_flush_lock);
404 * Allocate a metadata block.
406 static struct dmz_mblock *dmz_alloc_mblock(struct dmz_metadata *zmd,
409 struct dmz_mblock *mblk = NULL;
411 /* See if we can reuse cached blocks */
412 if (zmd->max_nr_mblks && atomic_read(&zmd->nr_mblks) > zmd->max_nr_mblks) {
413 spin_lock(&zmd->mblk_lock);
414 mblk = list_first_entry_or_null(&zmd->mblk_lru_list,
415 struct dmz_mblock, link);
417 list_del_init(&mblk->link);
418 rb_erase(&mblk->node, &zmd->mblk_rbtree);
421 spin_unlock(&zmd->mblk_lock);
426 /* Allocate a new block */
427 mblk = kmalloc(sizeof(struct dmz_mblock), GFP_NOIO);
431 mblk->page = alloc_page(GFP_NOIO);
437 RB_CLEAR_NODE(&mblk->node);
438 INIT_LIST_HEAD(&mblk->link);
442 mblk->data = page_address(mblk->page);
444 atomic_inc(&zmd->nr_mblks);
450 * Free a metadata block.
452 static void dmz_free_mblock(struct dmz_metadata *zmd, struct dmz_mblock *mblk)
454 __free_pages(mblk->page, 0);
457 atomic_dec(&zmd->nr_mblks);
461 * Insert a metadata block in the rbtree.
463 static void dmz_insert_mblock(struct dmz_metadata *zmd, struct dmz_mblock *mblk)
465 struct rb_root *root = &zmd->mblk_rbtree;
466 struct rb_node **new = &(root->rb_node), *parent = NULL;
467 struct dmz_mblock *b;
469 /* Figure out where to put the new node */
471 b = container_of(*new, struct dmz_mblock, node);
473 new = (b->no < mblk->no) ? &((*new)->rb_left) : &((*new)->rb_right);
476 /* Add new node and rebalance tree */
477 rb_link_node(&mblk->node, parent, new);
478 rb_insert_color(&mblk->node, root);
482 * Lookup a metadata block in the rbtree. If the block is found, increment
483 * its reference count.
485 static struct dmz_mblock *dmz_get_mblock_fast(struct dmz_metadata *zmd,
488 struct rb_root *root = &zmd->mblk_rbtree;
489 struct rb_node *node = root->rb_node;
490 struct dmz_mblock *mblk;
493 mblk = container_of(node, struct dmz_mblock, node);
494 if (mblk->no == mblk_no) {
496 * If this is the first reference to the block,
497 * remove it from the LRU list.
500 if (mblk->ref == 1 &&
501 !test_bit(DMZ_META_DIRTY, &mblk->state))
502 list_del_init(&mblk->link);
505 node = (mblk->no < mblk_no) ? node->rb_left : node->rb_right;
512 * Metadata block BIO end callback.
514 static void dmz_mblock_bio_end_io(struct bio *bio)
516 struct dmz_mblock *mblk = bio->bi_private;
520 set_bit(DMZ_META_ERROR, &mblk->state);
522 if (bio_op(bio) == REQ_OP_WRITE)
523 flag = DMZ_META_WRITING;
525 flag = DMZ_META_READING;
527 clear_bit_unlock(flag, &mblk->state);
528 smp_mb__after_atomic();
529 wake_up_bit(&mblk->state, flag);
535 * Read an uncached metadata block from disk and add it to the cache.
537 static struct dmz_mblock *dmz_get_mblock_slow(struct dmz_metadata *zmd,
540 struct dmz_mblock *mblk, *m;
541 sector_t block = zmd->sb[zmd->mblk_primary].block + mblk_no;
542 struct dmz_dev *dev = zmd->sb[zmd->mblk_primary].dev;
545 if (dmz_bdev_is_dying(dev))
546 return ERR_PTR(-EIO);
548 /* Get a new block and a BIO to read it */
549 mblk = dmz_alloc_mblock(zmd, mblk_no);
551 return ERR_PTR(-ENOMEM);
553 bio = bio_alloc(dev->bdev, 1, REQ_OP_READ | REQ_META | REQ_PRIO,
556 spin_lock(&zmd->mblk_lock);
559 * Make sure that another context did not start reading
562 m = dmz_get_mblock_fast(zmd, mblk_no);
564 spin_unlock(&zmd->mblk_lock);
565 dmz_free_mblock(zmd, mblk);
571 set_bit(DMZ_META_READING, &mblk->state);
572 dmz_insert_mblock(zmd, mblk);
574 spin_unlock(&zmd->mblk_lock);
576 /* Submit read BIO */
577 bio->bi_iter.bi_sector = dmz_blk2sect(block);
578 bio->bi_private = mblk;
579 bio->bi_end_io = dmz_mblock_bio_end_io;
580 bio_add_page(bio, mblk->page, DMZ_BLOCK_SIZE, 0);
587 * Free metadata blocks.
589 static unsigned long dmz_shrink_mblock_cache(struct dmz_metadata *zmd,
592 struct dmz_mblock *mblk;
593 unsigned long count = 0;
595 if (!zmd->max_nr_mblks)
598 while (!list_empty(&zmd->mblk_lru_list) &&
599 atomic_read(&zmd->nr_mblks) > zmd->min_nr_mblks &&
601 mblk = list_first_entry(&zmd->mblk_lru_list,
602 struct dmz_mblock, link);
603 list_del_init(&mblk->link);
604 rb_erase(&mblk->node, &zmd->mblk_rbtree);
605 dmz_free_mblock(zmd, mblk);
613 * For mblock shrinker: get the number of unused metadata blocks in the cache.
615 static unsigned long dmz_mblock_shrinker_count(struct shrinker *shrink,
616 struct shrink_control *sc)
618 struct dmz_metadata *zmd = container_of(shrink, struct dmz_metadata, mblk_shrinker);
620 return atomic_read(&zmd->nr_mblks);
624 * For mblock shrinker: scan unused metadata blocks and shrink the cache.
626 static unsigned long dmz_mblock_shrinker_scan(struct shrinker *shrink,
627 struct shrink_control *sc)
629 struct dmz_metadata *zmd = container_of(shrink, struct dmz_metadata, mblk_shrinker);
632 spin_lock(&zmd->mblk_lock);
633 count = dmz_shrink_mblock_cache(zmd, sc->nr_to_scan);
634 spin_unlock(&zmd->mblk_lock);
636 return count ? count : SHRINK_STOP;
640 * Release a metadata block.
642 static void dmz_release_mblock(struct dmz_metadata *zmd,
643 struct dmz_mblock *mblk)
649 spin_lock(&zmd->mblk_lock);
652 if (mblk->ref == 0) {
653 if (test_bit(DMZ_META_ERROR, &mblk->state)) {
654 rb_erase(&mblk->node, &zmd->mblk_rbtree);
655 dmz_free_mblock(zmd, mblk);
656 } else if (!test_bit(DMZ_META_DIRTY, &mblk->state)) {
657 list_add_tail(&mblk->link, &zmd->mblk_lru_list);
658 dmz_shrink_mblock_cache(zmd, 1);
662 spin_unlock(&zmd->mblk_lock);
666 * Get a metadata block from the rbtree. If the block
667 * is not present, read it from disk.
669 static struct dmz_mblock *dmz_get_mblock(struct dmz_metadata *zmd,
672 struct dmz_mblock *mblk;
673 struct dmz_dev *dev = zmd->sb[zmd->mblk_primary].dev;
676 spin_lock(&zmd->mblk_lock);
677 mblk = dmz_get_mblock_fast(zmd, mblk_no);
678 spin_unlock(&zmd->mblk_lock);
681 /* Cache miss: read the block from disk */
682 mblk = dmz_get_mblock_slow(zmd, mblk_no);
687 /* Wait for on-going read I/O and check for error */
688 wait_on_bit_io(&mblk->state, DMZ_META_READING,
689 TASK_UNINTERRUPTIBLE);
690 if (test_bit(DMZ_META_ERROR, &mblk->state)) {
691 dmz_release_mblock(zmd, mblk);
693 return ERR_PTR(-EIO);
700 * Mark a metadata block dirty.
702 static void dmz_dirty_mblock(struct dmz_metadata *zmd, struct dmz_mblock *mblk)
704 spin_lock(&zmd->mblk_lock);
705 if (!test_and_set_bit(DMZ_META_DIRTY, &mblk->state))
706 list_add_tail(&mblk->link, &zmd->mblk_dirty_list);
707 spin_unlock(&zmd->mblk_lock);
711 * Issue a metadata block write BIO.
713 static int dmz_write_mblock(struct dmz_metadata *zmd, struct dmz_mblock *mblk,
716 struct dmz_dev *dev = zmd->sb[set].dev;
717 sector_t block = zmd->sb[set].block + mblk->no;
720 if (dmz_bdev_is_dying(dev))
723 bio = bio_alloc(dev->bdev, 1, REQ_OP_WRITE | REQ_META | REQ_PRIO,
726 set_bit(DMZ_META_WRITING, &mblk->state);
728 bio->bi_iter.bi_sector = dmz_blk2sect(block);
729 bio->bi_private = mblk;
730 bio->bi_end_io = dmz_mblock_bio_end_io;
731 bio_add_page(bio, mblk->page, DMZ_BLOCK_SIZE, 0);
738 * Read/write a metadata block.
740 static int dmz_rdwr_block(struct dmz_dev *dev, int op,
741 sector_t block, struct page *page)
749 if (dmz_bdev_is_dying(dev))
752 bio = bio_alloc(dev->bdev, 1, op | REQ_SYNC | REQ_META | REQ_PRIO,
754 bio->bi_iter.bi_sector = dmz_blk2sect(block);
755 bio_add_page(bio, page, DMZ_BLOCK_SIZE, 0);
756 ret = submit_bio_wait(bio);
765 * Write super block of the specified metadata set.
767 static int dmz_write_sb(struct dmz_metadata *zmd, unsigned int set)
769 struct dmz_mblock *mblk = zmd->sb[set].mblk;
770 struct dmz_super *sb = zmd->sb[set].sb;
771 struct dmz_dev *dev = zmd->sb[set].dev;
773 u64 sb_gen = zmd->sb_gen + 1;
776 sb->magic = cpu_to_le32(DMZ_MAGIC);
778 sb->version = cpu_to_le32(zmd->sb_version);
779 if (zmd->sb_version > 1) {
780 BUILD_BUG_ON(UUID_SIZE != 16);
781 export_uuid(sb->dmz_uuid, &zmd->uuid);
782 memcpy(sb->dmz_label, zmd->label, BDEVNAME_SIZE);
783 export_uuid(sb->dev_uuid, &dev->uuid);
786 sb->gen = cpu_to_le64(sb_gen);
789 * The metadata always references the absolute block address,
790 * ie relative to the entire block range, not the per-device
793 sb_block = zmd->sb[set].zone->id << zmd->zone_nr_blocks_shift;
794 sb->sb_block = cpu_to_le64(sb_block);
795 sb->nr_meta_blocks = cpu_to_le32(zmd->nr_meta_blocks);
796 sb->nr_reserved_seq = cpu_to_le32(zmd->nr_reserved_seq);
797 sb->nr_chunks = cpu_to_le32(zmd->nr_chunks);
799 sb->nr_map_blocks = cpu_to_le32(zmd->nr_map_blocks);
800 sb->nr_bitmap_blocks = cpu_to_le32(zmd->nr_bitmap_blocks);
803 sb->crc = cpu_to_le32(crc32_le(sb_gen, (unsigned char *)sb, DMZ_BLOCK_SIZE));
805 ret = dmz_rdwr_block(dev, REQ_OP_WRITE, zmd->sb[set].block,
808 ret = blkdev_issue_flush(dev->bdev);
814 * Write dirty metadata blocks to the specified set.
816 static int dmz_write_dirty_mblocks(struct dmz_metadata *zmd,
817 struct list_head *write_list,
820 struct dmz_mblock *mblk;
821 struct dmz_dev *dev = zmd->sb[set].dev;
822 struct blk_plug plug;
823 int ret = 0, nr_mblks_submitted = 0;
826 blk_start_plug(&plug);
827 list_for_each_entry(mblk, write_list, link) {
828 ret = dmz_write_mblock(zmd, mblk, set);
831 nr_mblks_submitted++;
833 blk_finish_plug(&plug);
835 /* Wait for completion */
836 list_for_each_entry(mblk, write_list, link) {
837 if (!nr_mblks_submitted)
839 wait_on_bit_io(&mblk->state, DMZ_META_WRITING,
840 TASK_UNINTERRUPTIBLE);
841 if (test_bit(DMZ_META_ERROR, &mblk->state)) {
842 clear_bit(DMZ_META_ERROR, &mblk->state);
846 nr_mblks_submitted--;
849 /* Flush drive cache (this will also sync data) */
851 ret = blkdev_issue_flush(dev->bdev);
857 * Log dirty metadata blocks.
859 static int dmz_log_dirty_mblocks(struct dmz_metadata *zmd,
860 struct list_head *write_list)
862 unsigned int log_set = zmd->mblk_primary ^ 0x1;
865 /* Write dirty blocks to the log */
866 ret = dmz_write_dirty_mblocks(zmd, write_list, log_set);
871 * No error so far: now validate the log by updating the
872 * log index super block generation.
874 ret = dmz_write_sb(zmd, log_set);
882 * Flush dirty metadata blocks.
884 int dmz_flush_metadata(struct dmz_metadata *zmd)
886 struct dmz_mblock *mblk;
887 struct list_head write_list;
894 INIT_LIST_HEAD(&write_list);
897 * Make sure that metadata blocks are stable before logging: take
898 * the write lock on the metadata semaphore to prevent target BIOs
899 * from modifying metadata.
901 down_write(&zmd->mblk_sem);
902 dev = zmd->sb[zmd->mblk_primary].dev;
905 * This is called from the target flush work and reclaim work.
906 * Concurrent execution is not allowed.
910 if (dmz_bdev_is_dying(dev)) {
915 /* Get dirty blocks */
916 spin_lock(&zmd->mblk_lock);
917 list_splice_init(&zmd->mblk_dirty_list, &write_list);
918 spin_unlock(&zmd->mblk_lock);
920 /* If there are no dirty metadata blocks, just flush the device cache */
921 if (list_empty(&write_list)) {
922 ret = blkdev_issue_flush(dev->bdev);
927 * The primary metadata set is still clean. Keep it this way until
928 * all updates are successful in the secondary set. That is, use
929 * the secondary set as a log.
931 ret = dmz_log_dirty_mblocks(zmd, &write_list);
936 * The log is on disk. It is now safe to update in place
937 * in the primary metadata set.
939 ret = dmz_write_dirty_mblocks(zmd, &write_list, zmd->mblk_primary);
943 ret = dmz_write_sb(zmd, zmd->mblk_primary);
947 while (!list_empty(&write_list)) {
948 mblk = list_first_entry(&write_list, struct dmz_mblock, link);
949 list_del_init(&mblk->link);
951 spin_lock(&zmd->mblk_lock);
952 clear_bit(DMZ_META_DIRTY, &mblk->state);
954 list_add_tail(&mblk->link, &zmd->mblk_lru_list);
955 spin_unlock(&zmd->mblk_lock);
960 dmz_unlock_flush(zmd);
961 up_write(&zmd->mblk_sem);
966 if (!list_empty(&write_list)) {
967 spin_lock(&zmd->mblk_lock);
968 list_splice(&write_list, &zmd->mblk_dirty_list);
969 spin_unlock(&zmd->mblk_lock);
971 if (!dmz_check_bdev(dev))
979 static int dmz_check_sb(struct dmz_metadata *zmd, struct dmz_sb *dsb,
982 struct dmz_super *sb = dsb->sb;
983 struct dmz_dev *dev = dsb->dev;
984 unsigned int nr_meta_zones, nr_data_zones;
988 if (le32_to_cpu(sb->magic) != DMZ_MAGIC) {
989 dmz_dev_err(dev, "Invalid meta magic (needed 0x%08x, got 0x%08x)",
990 DMZ_MAGIC, le32_to_cpu(sb->magic));
994 zmd->sb_version = le32_to_cpu(sb->version);
995 if (zmd->sb_version > DMZ_META_VER) {
996 dmz_dev_err(dev, "Invalid meta version (needed %d, got %d)",
997 DMZ_META_VER, zmd->sb_version);
1000 if (zmd->sb_version < 2 && tertiary) {
1001 dmz_dev_err(dev, "Tertiary superblocks are not supported");
1005 gen = le64_to_cpu(sb->gen);
1006 stored_crc = le32_to_cpu(sb->crc);
1008 crc = crc32_le(gen, (unsigned char *)sb, DMZ_BLOCK_SIZE);
1009 if (crc != stored_crc) {
1010 dmz_dev_err(dev, "Invalid checksum (needed 0x%08x, got 0x%08x)",
1015 sb_block = le64_to_cpu(sb->sb_block);
1016 if (sb_block != (u64)dsb->zone->id << zmd->zone_nr_blocks_shift ) {
1017 dmz_dev_err(dev, "Invalid superblock position "
1018 "(is %llu expected %llu)",
1020 (u64)dsb->zone->id << zmd->zone_nr_blocks_shift);
1023 if (zmd->sb_version > 1) {
1026 import_uuid(&sb_uuid, sb->dmz_uuid);
1027 if (uuid_is_null(&sb_uuid)) {
1028 dmz_dev_err(dev, "NULL DM-Zoned uuid");
1030 } else if (uuid_is_null(&zmd->uuid)) {
1031 uuid_copy(&zmd->uuid, &sb_uuid);
1032 } else if (!uuid_equal(&zmd->uuid, &sb_uuid)) {
1033 dmz_dev_err(dev, "mismatching DM-Zoned uuid, "
1034 "is %pUl expected %pUl",
1035 &sb_uuid, &zmd->uuid);
1038 if (!strlen(zmd->label))
1039 memcpy(zmd->label, sb->dmz_label, BDEVNAME_SIZE);
1040 else if (memcmp(zmd->label, sb->dmz_label, BDEVNAME_SIZE)) {
1041 dmz_dev_err(dev, "mismatching DM-Zoned label, "
1042 "is %s expected %s",
1043 sb->dmz_label, zmd->label);
1046 import_uuid(&dev->uuid, sb->dev_uuid);
1047 if (uuid_is_null(&dev->uuid)) {
1048 dmz_dev_err(dev, "NULL device uuid");
1054 * Generation number should be 0, but it doesn't
1055 * really matter if it isn't.
1058 dmz_dev_warn(dev, "Invalid generation %llu",
1064 nr_meta_zones = (le32_to_cpu(sb->nr_meta_blocks) + zmd->zone_nr_blocks - 1)
1065 >> zmd->zone_nr_blocks_shift;
1066 if (!nr_meta_zones ||
1067 (zmd->nr_devs <= 1 && nr_meta_zones >= zmd->nr_rnd_zones) ||
1068 (zmd->nr_devs > 1 && nr_meta_zones >= zmd->nr_cache_zones)) {
1069 dmz_dev_err(dev, "Invalid number of metadata blocks");
1073 if (!le32_to_cpu(sb->nr_reserved_seq) ||
1074 le32_to_cpu(sb->nr_reserved_seq) >= (zmd->nr_useable_zones - nr_meta_zones)) {
1075 dmz_dev_err(dev, "Invalid number of reserved sequential zones");
1079 nr_data_zones = zmd->nr_useable_zones -
1080 (nr_meta_zones * 2 + le32_to_cpu(sb->nr_reserved_seq));
1081 if (le32_to_cpu(sb->nr_chunks) > nr_data_zones) {
1082 dmz_dev_err(dev, "Invalid number of chunks %u / %u",
1083 le32_to_cpu(sb->nr_chunks), nr_data_zones);
1088 zmd->nr_meta_blocks = le32_to_cpu(sb->nr_meta_blocks);
1089 zmd->nr_reserved_seq = le32_to_cpu(sb->nr_reserved_seq);
1090 zmd->nr_chunks = le32_to_cpu(sb->nr_chunks);
1091 zmd->nr_map_blocks = le32_to_cpu(sb->nr_map_blocks);
1092 zmd->nr_bitmap_blocks = le32_to_cpu(sb->nr_bitmap_blocks);
1093 zmd->nr_meta_zones = nr_meta_zones;
1094 zmd->nr_data_zones = nr_data_zones;
1100 * Read the first or second super block from disk.
1102 static int dmz_read_sb(struct dmz_metadata *zmd, struct dmz_sb *sb, int set)
1104 dmz_zmd_debug(zmd, "read superblock set %d dev %pg block %llu",
1105 set, sb->dev->bdev, sb->block);
1107 return dmz_rdwr_block(sb->dev, REQ_OP_READ,
1108 sb->block, sb->mblk->page);
1112 * Determine the position of the secondary super blocks on disk.
1113 * This is used only if a corruption of the primary super block
1116 static int dmz_lookup_secondary_sb(struct dmz_metadata *zmd)
1118 unsigned int zone_nr_blocks = zmd->zone_nr_blocks;
1119 struct dmz_mblock *mblk;
1120 unsigned int zone_id = zmd->sb[0].zone->id;
1123 /* Allocate a block */
1124 mblk = dmz_alloc_mblock(zmd, 0);
1128 zmd->sb[1].mblk = mblk;
1129 zmd->sb[1].sb = mblk->data;
1131 /* Bad first super block: search for the second one */
1132 zmd->sb[1].block = zmd->sb[0].block + zone_nr_blocks;
1133 zmd->sb[1].zone = dmz_get(zmd, zone_id + 1);
1134 zmd->sb[1].dev = zmd->sb[0].dev;
1135 for (i = 1; i < zmd->nr_rnd_zones; i++) {
1136 if (dmz_read_sb(zmd, &zmd->sb[1], 1) != 0)
1138 if (le32_to_cpu(zmd->sb[1].sb->magic) == DMZ_MAGIC)
1140 zmd->sb[1].block += zone_nr_blocks;
1141 zmd->sb[1].zone = dmz_get(zmd, zone_id + i);
1144 dmz_free_mblock(zmd, mblk);
1145 zmd->sb[1].mblk = NULL;
1146 zmd->sb[1].zone = NULL;
1147 zmd->sb[1].dev = NULL;
1153 * Read a super block from disk.
1155 static int dmz_get_sb(struct dmz_metadata *zmd, struct dmz_sb *sb, int set)
1157 struct dmz_mblock *mblk;
1160 /* Allocate a block */
1161 mblk = dmz_alloc_mblock(zmd, 0);
1166 sb->sb = mblk->data;
1168 /* Read super block */
1169 ret = dmz_read_sb(zmd, sb, set);
1171 dmz_free_mblock(zmd, mblk);
1180 * Recover a metadata set.
1182 static int dmz_recover_mblocks(struct dmz_metadata *zmd, unsigned int dst_set)
1184 unsigned int src_set = dst_set ^ 0x1;
1188 dmz_dev_warn(zmd->sb[dst_set].dev,
1189 "Metadata set %u invalid: recovering", dst_set);
1192 zmd->sb[0].block = dmz_start_block(zmd, zmd->sb[0].zone);
1194 zmd->sb[1].block = dmz_start_block(zmd, zmd->sb[1].zone);
1196 page = alloc_page(GFP_NOIO);
1200 /* Copy metadata blocks */
1201 for (i = 1; i < zmd->nr_meta_blocks; i++) {
1202 ret = dmz_rdwr_block(zmd->sb[src_set].dev, REQ_OP_READ,
1203 zmd->sb[src_set].block + i, page);
1206 ret = dmz_rdwr_block(zmd->sb[dst_set].dev, REQ_OP_WRITE,
1207 zmd->sb[dst_set].block + i, page);
1212 /* Finalize with the super block */
1213 if (!zmd->sb[dst_set].mblk) {
1214 zmd->sb[dst_set].mblk = dmz_alloc_mblock(zmd, 0);
1215 if (!zmd->sb[dst_set].mblk) {
1219 zmd->sb[dst_set].sb = zmd->sb[dst_set].mblk->data;
1222 ret = dmz_write_sb(zmd, dst_set);
1224 __free_pages(page, 0);
1230 * Get super block from disk.
1232 static int dmz_load_sb(struct dmz_metadata *zmd)
1234 bool sb_good[2] = {false, false};
1235 u64 sb_gen[2] = {0, 0};
1238 if (!zmd->sb[0].zone) {
1239 dmz_zmd_err(zmd, "Primary super block zone not set");
1243 /* Read and check the primary super block */
1244 zmd->sb[0].block = dmz_start_block(zmd, zmd->sb[0].zone);
1245 zmd->sb[0].dev = zmd->sb[0].zone->dev;
1246 ret = dmz_get_sb(zmd, &zmd->sb[0], 0);
1248 dmz_dev_err(zmd->sb[0].dev, "Read primary super block failed");
1252 ret = dmz_check_sb(zmd, &zmd->sb[0], false);
1254 /* Read and check secondary super block */
1257 if (!zmd->sb[1].zone) {
1258 unsigned int zone_id =
1259 zmd->sb[0].zone->id + zmd->nr_meta_zones;
1261 zmd->sb[1].zone = dmz_get(zmd, zone_id);
1263 zmd->sb[1].block = dmz_start_block(zmd, zmd->sb[1].zone);
1264 zmd->sb[1].dev = zmd->sb[0].dev;
1265 ret = dmz_get_sb(zmd, &zmd->sb[1], 1);
1267 ret = dmz_lookup_secondary_sb(zmd);
1270 dmz_dev_err(zmd->sb[1].dev, "Read secondary super block failed");
1274 ret = dmz_check_sb(zmd, &zmd->sb[1], false);
1278 /* Use highest generation sb first */
1279 if (!sb_good[0] && !sb_good[1]) {
1280 dmz_zmd_err(zmd, "No valid super block found");
1285 sb_gen[0] = le64_to_cpu(zmd->sb[0].sb->gen);
1287 ret = dmz_recover_mblocks(zmd, 0);
1289 dmz_dev_err(zmd->sb[0].dev,
1290 "Recovery of superblock 0 failed");
1296 sb_gen[1] = le64_to_cpu(zmd->sb[1].sb->gen);
1298 ret = dmz_recover_mblocks(zmd, 1);
1301 dmz_dev_err(zmd->sb[1].dev,
1302 "Recovery of superblock 1 failed");
1307 if (sb_gen[0] >= sb_gen[1]) {
1308 zmd->sb_gen = sb_gen[0];
1309 zmd->mblk_primary = 0;
1311 zmd->sb_gen = sb_gen[1];
1312 zmd->mblk_primary = 1;
1315 dmz_dev_debug(zmd->sb[zmd->mblk_primary].dev,
1316 "Using super block %u (gen %llu)",
1317 zmd->mblk_primary, zmd->sb_gen);
1319 if (zmd->sb_version > 1) {
1323 sb = kzalloc(sizeof(struct dmz_sb), GFP_KERNEL);
1326 for (i = 1; i < zmd->nr_devs; i++) {
1328 sb->zone = dmz_get(zmd, zmd->dev[i].zone_offset);
1329 sb->dev = &zmd->dev[i];
1330 if (!dmz_is_meta(sb->zone)) {
1331 dmz_dev_err(sb->dev,
1332 "Tertiary super block zone %u not marked as metadata zone",
1337 ret = dmz_get_sb(zmd, sb, i + 1);
1339 dmz_dev_err(sb->dev,
1340 "Read tertiary super block failed");
1341 dmz_free_mblock(zmd, sb->mblk);
1344 ret = dmz_check_sb(zmd, sb, true);
1345 dmz_free_mblock(zmd, sb->mblk);
1356 * Initialize a zone descriptor.
1358 static int dmz_init_zone(struct blk_zone *blkz, unsigned int num, void *data)
1360 struct dmz_dev *dev = data;
1361 struct dmz_metadata *zmd = dev->metadata;
1362 int idx = num + dev->zone_offset;
1363 struct dm_zone *zone;
1365 zone = dmz_insert(zmd, idx, dev);
1367 return PTR_ERR(zone);
1369 if (blkz->len != zmd->zone_nr_sectors) {
1370 if (zmd->sb_version > 1) {
1371 /* Ignore the eventual runt (smaller) zone */
1372 set_bit(DMZ_OFFLINE, &zone->flags);
1374 } else if (blkz->start + blkz->len == dev->capacity)
1380 * Devices that have zones with a capacity smaller than the zone size
1381 * (e.g. NVMe zoned namespaces) are not supported.
1383 if (blkz->capacity != blkz->len)
1386 switch (blkz->type) {
1387 case BLK_ZONE_TYPE_CONVENTIONAL:
1388 set_bit(DMZ_RND, &zone->flags);
1390 case BLK_ZONE_TYPE_SEQWRITE_REQ:
1391 case BLK_ZONE_TYPE_SEQWRITE_PREF:
1392 set_bit(DMZ_SEQ, &zone->flags);
1398 if (dmz_is_rnd(zone))
1401 zone->wp_block = dmz_sect2blk(blkz->wp - blkz->start);
1403 if (blkz->cond == BLK_ZONE_COND_OFFLINE)
1404 set_bit(DMZ_OFFLINE, &zone->flags);
1405 else if (blkz->cond == BLK_ZONE_COND_READONLY)
1406 set_bit(DMZ_READ_ONLY, &zone->flags);
1408 zmd->nr_useable_zones++;
1409 if (dmz_is_rnd(zone)) {
1410 zmd->nr_rnd_zones++;
1411 if (zmd->nr_devs == 1 && !zmd->sb[0].zone) {
1412 /* Primary super block zone */
1413 zmd->sb[0].zone = zone;
1416 if (zmd->nr_devs > 1 && num == 0) {
1418 * Tertiary superblock zones are always at the
1419 * start of the zoned devices, so mark them
1422 set_bit(DMZ_META, &zone->flags);
1428 static int dmz_emulate_zones(struct dmz_metadata *zmd, struct dmz_dev *dev)
1431 sector_t zone_offset = 0;
1433 for(idx = 0; idx < dev->nr_zones; idx++) {
1434 struct dm_zone *zone;
1436 zone = dmz_insert(zmd, idx, dev);
1438 return PTR_ERR(zone);
1439 set_bit(DMZ_CACHE, &zone->flags);
1441 zmd->nr_cache_zones++;
1442 zmd->nr_useable_zones++;
1443 if (dev->capacity - zone_offset < zmd->zone_nr_sectors) {
1444 /* Disable runt zone */
1445 set_bit(DMZ_OFFLINE, &zone->flags);
1448 zone_offset += zmd->zone_nr_sectors;
1454 * Free zones descriptors.
1456 static void dmz_drop_zones(struct dmz_metadata *zmd)
1460 for(idx = 0; idx < zmd->nr_zones; idx++) {
1461 struct dm_zone *zone = xa_load(&zmd->zones, idx);
1464 xa_erase(&zmd->zones, idx);
1466 xa_destroy(&zmd->zones);
1470 * Allocate and initialize zone descriptors using the zone
1471 * information from disk.
1473 static int dmz_init_zones(struct dmz_metadata *zmd)
1476 struct dmz_dev *zoned_dev = &zmd->dev[0];
1479 zmd->zone_nr_sectors = zmd->dev[0].zone_nr_sectors;
1480 zmd->zone_nr_sectors_shift = ilog2(zmd->zone_nr_sectors);
1481 zmd->zone_nr_blocks = dmz_sect2blk(zmd->zone_nr_sectors);
1482 zmd->zone_nr_blocks_shift = ilog2(zmd->zone_nr_blocks);
1483 zmd->zone_bitmap_size = zmd->zone_nr_blocks >> 3;
1484 zmd->zone_nr_bitmap_blocks =
1485 max_t(sector_t, 1, zmd->zone_bitmap_size >> DMZ_BLOCK_SHIFT);
1486 zmd->zone_bits_per_mblk = min_t(sector_t, zmd->zone_nr_blocks,
1487 DMZ_BLOCK_SIZE_BITS);
1489 /* Allocate zone array */
1491 for (i = 0; i < zmd->nr_devs; i++) {
1492 struct dmz_dev *dev = &zmd->dev[i];
1494 dev->metadata = zmd;
1495 zmd->nr_zones += dev->nr_zones;
1497 atomic_set(&dev->unmap_nr_rnd, 0);
1498 INIT_LIST_HEAD(&dev->unmap_rnd_list);
1499 INIT_LIST_HEAD(&dev->map_rnd_list);
1501 atomic_set(&dev->unmap_nr_seq, 0);
1502 INIT_LIST_HEAD(&dev->unmap_seq_list);
1503 INIT_LIST_HEAD(&dev->map_seq_list);
1506 if (!zmd->nr_zones) {
1507 DMERR("(%s): No zones found", zmd->devname);
1510 xa_init(&zmd->zones);
1512 DMDEBUG("(%s): Using %zu B for zone information",
1513 zmd->devname, sizeof(struct dm_zone) * zmd->nr_zones);
1515 if (zmd->nr_devs > 1) {
1516 ret = dmz_emulate_zones(zmd, &zmd->dev[0]);
1518 DMDEBUG("(%s): Failed to emulate zones, error %d",
1520 dmz_drop_zones(zmd);
1525 * Primary superblock zone is always at zone 0 when multiple
1526 * drives are present.
1528 zmd->sb[0].zone = dmz_get(zmd, 0);
1530 for (i = 1; i < zmd->nr_devs; i++) {
1531 zoned_dev = &zmd->dev[i];
1533 ret = blkdev_report_zones(zoned_dev->bdev, 0,
1535 dmz_init_zone, zoned_dev);
1537 DMDEBUG("(%s): Failed to report zones, error %d",
1539 dmz_drop_zones(zmd);
1547 * Get zone information and initialize zone descriptors. At the same
1548 * time, determine where the super block should be: first block of the
1549 * first randomly writable zone.
1551 ret = blkdev_report_zones(zoned_dev->bdev, 0, BLK_ALL_ZONES,
1552 dmz_init_zone, zoned_dev);
1554 DMDEBUG("(%s): Failed to report zones, error %d",
1556 dmz_drop_zones(zmd);
1563 static int dmz_update_zone_cb(struct blk_zone *blkz, unsigned int idx,
1566 struct dm_zone *zone = data;
1568 clear_bit(DMZ_OFFLINE, &zone->flags);
1569 clear_bit(DMZ_READ_ONLY, &zone->flags);
1570 if (blkz->cond == BLK_ZONE_COND_OFFLINE)
1571 set_bit(DMZ_OFFLINE, &zone->flags);
1572 else if (blkz->cond == BLK_ZONE_COND_READONLY)
1573 set_bit(DMZ_READ_ONLY, &zone->flags);
1575 if (dmz_is_seq(zone))
1576 zone->wp_block = dmz_sect2blk(blkz->wp - blkz->start);
1583 * Update a zone information.
1585 static int dmz_update_zone(struct dmz_metadata *zmd, struct dm_zone *zone)
1587 struct dmz_dev *dev = zone->dev;
1588 unsigned int noio_flag;
1591 if (dev->flags & DMZ_BDEV_REGULAR)
1595 * Get zone information from disk. Since blkdev_report_zones() uses
1596 * GFP_KERNEL by default for memory allocations, set the per-task
1597 * PF_MEMALLOC_NOIO flag so that all allocations are done as if
1598 * GFP_NOIO was specified.
1600 noio_flag = memalloc_noio_save();
1601 ret = blkdev_report_zones(dev->bdev, dmz_start_sect(zmd, zone), 1,
1602 dmz_update_zone_cb, zone);
1603 memalloc_noio_restore(noio_flag);
1608 dmz_dev_err(dev, "Get zone %u report failed",
1610 dmz_check_bdev(dev);
1618 * Check a zone write pointer position when the zone is marked
1619 * with the sequential write error flag.
1621 static int dmz_handle_seq_write_err(struct dmz_metadata *zmd,
1622 struct dm_zone *zone)
1624 struct dmz_dev *dev = zone->dev;
1625 unsigned int wp = 0;
1628 wp = zone->wp_block;
1629 ret = dmz_update_zone(zmd, zone);
1633 dmz_dev_warn(dev, "Processing zone %u write error (zone wp %u/%u)",
1634 zone->id, zone->wp_block, wp);
1636 if (zone->wp_block < wp) {
1637 dmz_invalidate_blocks(zmd, zone, zone->wp_block,
1638 wp - zone->wp_block);
1645 * Reset a zone write pointer.
1647 static int dmz_reset_zone(struct dmz_metadata *zmd, struct dm_zone *zone)
1652 * Ignore offline zones, read only zones,
1653 * and conventional zones.
1655 if (dmz_is_offline(zone) ||
1656 dmz_is_readonly(zone) ||
1660 if (!dmz_is_empty(zone) || dmz_seq_write_err(zone)) {
1661 struct dmz_dev *dev = zone->dev;
1663 ret = blkdev_zone_mgmt(dev->bdev, REQ_OP_ZONE_RESET,
1664 dmz_start_sect(zmd, zone),
1665 zmd->zone_nr_sectors, GFP_NOIO);
1667 dmz_dev_err(dev, "Reset zone %u failed %d",
1673 /* Clear write error bit and rewind write pointer position */
1674 clear_bit(DMZ_SEQ_WRITE_ERR, &zone->flags);
1680 static void dmz_get_zone_weight(struct dmz_metadata *zmd, struct dm_zone *zone);
1683 * Initialize chunk mapping.
1685 static int dmz_load_mapping(struct dmz_metadata *zmd)
1687 struct dm_zone *dzone, *bzone;
1688 struct dmz_mblock *dmap_mblk = NULL;
1689 struct dmz_map *dmap;
1690 unsigned int i = 0, e = 0, chunk = 0;
1691 unsigned int dzone_id;
1692 unsigned int bzone_id;
1694 /* Metadata block array for the chunk mapping table */
1695 zmd->map_mblk = kcalloc(zmd->nr_map_blocks,
1696 sizeof(struct dmz_mblk *), GFP_KERNEL);
1700 /* Get chunk mapping table blocks and initialize zone mapping */
1701 while (chunk < zmd->nr_chunks) {
1703 /* Get mapping block */
1704 dmap_mblk = dmz_get_mblock(zmd, i + 1);
1705 if (IS_ERR(dmap_mblk))
1706 return PTR_ERR(dmap_mblk);
1707 zmd->map_mblk[i] = dmap_mblk;
1708 dmap = (struct dmz_map *) dmap_mblk->data;
1713 /* Check data zone */
1714 dzone_id = le32_to_cpu(dmap[e].dzone_id);
1715 if (dzone_id == DMZ_MAP_UNMAPPED)
1718 if (dzone_id >= zmd->nr_zones) {
1719 dmz_zmd_err(zmd, "Chunk %u mapping: invalid data zone ID %u",
1724 dzone = dmz_get(zmd, dzone_id);
1726 dmz_zmd_err(zmd, "Chunk %u mapping: data zone %u not present",
1730 set_bit(DMZ_DATA, &dzone->flags);
1731 dzone->chunk = chunk;
1732 dmz_get_zone_weight(zmd, dzone);
1734 if (dmz_is_cache(dzone))
1735 list_add_tail(&dzone->link, &zmd->map_cache_list);
1736 else if (dmz_is_rnd(dzone))
1737 list_add_tail(&dzone->link, &dzone->dev->map_rnd_list);
1739 list_add_tail(&dzone->link, &dzone->dev->map_seq_list);
1741 /* Check buffer zone */
1742 bzone_id = le32_to_cpu(dmap[e].bzone_id);
1743 if (bzone_id == DMZ_MAP_UNMAPPED)
1746 if (bzone_id >= zmd->nr_zones) {
1747 dmz_zmd_err(zmd, "Chunk %u mapping: invalid buffer zone ID %u",
1752 bzone = dmz_get(zmd, bzone_id);
1754 dmz_zmd_err(zmd, "Chunk %u mapping: buffer zone %u not present",
1758 if (!dmz_is_rnd(bzone) && !dmz_is_cache(bzone)) {
1759 dmz_zmd_err(zmd, "Chunk %u mapping: invalid buffer zone %u",
1764 set_bit(DMZ_DATA, &bzone->flags);
1765 set_bit(DMZ_BUF, &bzone->flags);
1766 bzone->chunk = chunk;
1767 bzone->bzone = dzone;
1768 dzone->bzone = bzone;
1769 dmz_get_zone_weight(zmd, bzone);
1770 if (dmz_is_cache(bzone))
1771 list_add_tail(&bzone->link, &zmd->map_cache_list);
1773 list_add_tail(&bzone->link, &bzone->dev->map_rnd_list);
1777 if (e >= DMZ_MAP_ENTRIES)
1782 * At this point, only meta zones and mapped data zones were
1783 * fully initialized. All remaining zones are unmapped data
1784 * zones. Finish initializing those here.
1786 for (i = 0; i < zmd->nr_zones; i++) {
1787 dzone = dmz_get(zmd, i);
1790 if (dmz_is_meta(dzone))
1792 if (dmz_is_offline(dzone))
1795 if (dmz_is_cache(dzone))
1797 else if (dmz_is_rnd(dzone))
1798 dzone->dev->nr_rnd++;
1800 dzone->dev->nr_seq++;
1802 if (dmz_is_data(dzone)) {
1803 /* Already initialized */
1807 /* Unmapped data zone */
1808 set_bit(DMZ_DATA, &dzone->flags);
1809 dzone->chunk = DMZ_MAP_UNMAPPED;
1810 if (dmz_is_cache(dzone)) {
1811 list_add_tail(&dzone->link, &zmd->unmap_cache_list);
1812 atomic_inc(&zmd->unmap_nr_cache);
1813 } else if (dmz_is_rnd(dzone)) {
1814 list_add_tail(&dzone->link,
1815 &dzone->dev->unmap_rnd_list);
1816 atomic_inc(&dzone->dev->unmap_nr_rnd);
1817 } else if (atomic_read(&zmd->nr_reserved_seq_zones) < zmd->nr_reserved_seq) {
1818 list_add_tail(&dzone->link, &zmd->reserved_seq_zones_list);
1819 set_bit(DMZ_RESERVED, &dzone->flags);
1820 atomic_inc(&zmd->nr_reserved_seq_zones);
1821 dzone->dev->nr_seq--;
1823 list_add_tail(&dzone->link,
1824 &dzone->dev->unmap_seq_list);
1825 atomic_inc(&dzone->dev->unmap_nr_seq);
1833 * Set a data chunk mapping.
1835 static void dmz_set_chunk_mapping(struct dmz_metadata *zmd, unsigned int chunk,
1836 unsigned int dzone_id, unsigned int bzone_id)
1838 struct dmz_mblock *dmap_mblk = zmd->map_mblk[chunk >> DMZ_MAP_ENTRIES_SHIFT];
1839 struct dmz_map *dmap = (struct dmz_map *) dmap_mblk->data;
1840 int map_idx = chunk & DMZ_MAP_ENTRIES_MASK;
1842 dmap[map_idx].dzone_id = cpu_to_le32(dzone_id);
1843 dmap[map_idx].bzone_id = cpu_to_le32(bzone_id);
1844 dmz_dirty_mblock(zmd, dmap_mblk);
1848 * The list of mapped zones is maintained in LRU order.
1849 * This rotates a zone at the end of its map list.
1851 static void __dmz_lru_zone(struct dmz_metadata *zmd, struct dm_zone *zone)
1853 if (list_empty(&zone->link))
1856 list_del_init(&zone->link);
1857 if (dmz_is_seq(zone)) {
1858 /* LRU rotate sequential zone */
1859 list_add_tail(&zone->link, &zone->dev->map_seq_list);
1860 } else if (dmz_is_cache(zone)) {
1861 /* LRU rotate cache zone */
1862 list_add_tail(&zone->link, &zmd->map_cache_list);
1864 /* LRU rotate random zone */
1865 list_add_tail(&zone->link, &zone->dev->map_rnd_list);
1870 * The list of mapped random zones is maintained
1871 * in LRU order. This rotates a zone at the end of the list.
1873 static void dmz_lru_zone(struct dmz_metadata *zmd, struct dm_zone *zone)
1875 __dmz_lru_zone(zmd, zone);
1877 __dmz_lru_zone(zmd, zone->bzone);
1881 * Wait for any zone to be freed.
1883 static void dmz_wait_for_free_zones(struct dmz_metadata *zmd)
1887 prepare_to_wait(&zmd->free_wq, &wait, TASK_UNINTERRUPTIBLE);
1888 dmz_unlock_map(zmd);
1889 dmz_unlock_metadata(zmd);
1891 io_schedule_timeout(HZ);
1893 dmz_lock_metadata(zmd);
1895 finish_wait(&zmd->free_wq, &wait);
1899 * Lock a zone for reclaim (set the zone RECLAIM bit).
1900 * Returns false if the zone cannot be locked or if it is already locked
1903 int dmz_lock_zone_reclaim(struct dm_zone *zone)
1905 /* Active zones cannot be reclaimed */
1906 if (dmz_is_active(zone))
1909 return !test_and_set_bit(DMZ_RECLAIM, &zone->flags);
1913 * Clear a zone reclaim flag.
1915 void dmz_unlock_zone_reclaim(struct dm_zone *zone)
1917 WARN_ON(dmz_is_active(zone));
1918 WARN_ON(!dmz_in_reclaim(zone));
1920 clear_bit_unlock(DMZ_RECLAIM, &zone->flags);
1921 smp_mb__after_atomic();
1922 wake_up_bit(&zone->flags, DMZ_RECLAIM);
1926 * Wait for a zone reclaim to complete.
1928 static void dmz_wait_for_reclaim(struct dmz_metadata *zmd, struct dm_zone *zone)
1930 dmz_unlock_map(zmd);
1931 dmz_unlock_metadata(zmd);
1932 set_bit(DMZ_RECLAIM_TERMINATE, &zone->flags);
1933 wait_on_bit_timeout(&zone->flags, DMZ_RECLAIM, TASK_UNINTERRUPTIBLE, HZ);
1934 clear_bit(DMZ_RECLAIM_TERMINATE, &zone->flags);
1935 dmz_lock_metadata(zmd);
1940 * Select a cache or random write zone for reclaim.
1942 static struct dm_zone *dmz_get_rnd_zone_for_reclaim(struct dmz_metadata *zmd,
1943 unsigned int idx, bool idle)
1945 struct dm_zone *dzone = NULL;
1946 struct dm_zone *zone, *maxw_z = NULL;
1947 struct list_head *zone_list;
1949 /* If we have cache zones select from the cache zone list */
1950 if (zmd->nr_cache) {
1951 zone_list = &zmd->map_cache_list;
1952 /* Try to relaim random zones, too, when idle */
1953 if (idle && list_empty(zone_list))
1954 zone_list = &zmd->dev[idx].map_rnd_list;
1956 zone_list = &zmd->dev[idx].map_rnd_list;
1959 * Find the buffer zone with the heaviest weight or the first (oldest)
1960 * data zone that can be reclaimed.
1962 list_for_each_entry(zone, zone_list, link) {
1963 if (dmz_is_buf(zone)) {
1964 dzone = zone->bzone;
1965 if (dmz_is_rnd(dzone) && dzone->dev->dev_idx != idx)
1967 if (!maxw_z || maxw_z->weight < dzone->weight)
1971 if (dmz_lock_zone_reclaim(dzone))
1976 if (maxw_z && dmz_lock_zone_reclaim(maxw_z))
1980 * If we come here, none of the zones inspected could be locked for
1981 * reclaim. Try again, being more aggressive, that is, find the
1982 * first zone that can be reclaimed regardless of its weitght.
1984 list_for_each_entry(zone, zone_list, link) {
1985 if (dmz_is_buf(zone)) {
1986 dzone = zone->bzone;
1987 if (dmz_is_rnd(dzone) && dzone->dev->dev_idx != idx)
1991 if (dmz_lock_zone_reclaim(dzone))
1999 * Select a buffered sequential zone for reclaim.
2001 static struct dm_zone *dmz_get_seq_zone_for_reclaim(struct dmz_metadata *zmd,
2004 struct dm_zone *zone;
2006 list_for_each_entry(zone, &zmd->dev[idx].map_seq_list, link) {
2009 if (dmz_lock_zone_reclaim(zone))
2017 * Select a zone for reclaim.
2019 struct dm_zone *dmz_get_zone_for_reclaim(struct dmz_metadata *zmd,
2020 unsigned int dev_idx, bool idle)
2022 struct dm_zone *zone = NULL;
2025 * Search for a zone candidate to reclaim: 2 cases are possible.
2026 * (1) There is no free sequential zones. Then a random data zone
2027 * cannot be reclaimed. So choose a sequential zone to reclaim so
2028 * that afterward a random zone can be reclaimed.
2029 * (2) At least one free sequential zone is available, then choose
2030 * the oldest random zone (data or buffer) that can be locked.
2033 if (list_empty(&zmd->reserved_seq_zones_list))
2034 zone = dmz_get_seq_zone_for_reclaim(zmd, dev_idx);
2036 zone = dmz_get_rnd_zone_for_reclaim(zmd, dev_idx, idle);
2037 dmz_unlock_map(zmd);
2043 * Get the zone mapping a chunk, if the chunk is mapped already.
2044 * If no mapping exist and the operation is WRITE, a zone is
2045 * allocated and used to map the chunk.
2046 * The zone returned will be set to the active state.
2048 struct dm_zone *dmz_get_chunk_mapping(struct dmz_metadata *zmd, unsigned int chunk, int op)
2050 struct dmz_mblock *dmap_mblk = zmd->map_mblk[chunk >> DMZ_MAP_ENTRIES_SHIFT];
2051 struct dmz_map *dmap = (struct dmz_map *) dmap_mblk->data;
2052 int dmap_idx = chunk & DMZ_MAP_ENTRIES_MASK;
2053 unsigned int dzone_id;
2054 struct dm_zone *dzone = NULL;
2056 int alloc_flags = zmd->nr_cache ? DMZ_ALLOC_CACHE : DMZ_ALLOC_RND;
2060 /* Get the chunk mapping */
2061 dzone_id = le32_to_cpu(dmap[dmap_idx].dzone_id);
2062 if (dzone_id == DMZ_MAP_UNMAPPED) {
2064 * Read or discard in unmapped chunks are fine. But for
2065 * writes, we need a mapping, so get one.
2067 if (op != REQ_OP_WRITE)
2070 /* Allocate a random zone */
2071 dzone = dmz_alloc_zone(zmd, 0, alloc_flags);
2073 if (dmz_dev_is_dying(zmd)) {
2074 dzone = ERR_PTR(-EIO);
2077 dmz_wait_for_free_zones(zmd);
2081 dmz_map_zone(zmd, dzone, chunk);
2084 /* The chunk is already mapped: get the mapping zone */
2085 dzone = dmz_get(zmd, dzone_id);
2087 dzone = ERR_PTR(-EIO);
2090 if (dzone->chunk != chunk) {
2091 dzone = ERR_PTR(-EIO);
2095 /* Repair write pointer if the sequential dzone has error */
2096 if (dmz_seq_write_err(dzone)) {
2097 ret = dmz_handle_seq_write_err(zmd, dzone);
2099 dzone = ERR_PTR(-EIO);
2102 clear_bit(DMZ_SEQ_WRITE_ERR, &dzone->flags);
2107 * If the zone is being reclaimed, the chunk mapping may change
2108 * to a different zone. So wait for reclaim and retry. Otherwise,
2109 * activate the zone (this will prevent reclaim from touching it).
2111 if (dmz_in_reclaim(dzone)) {
2112 dmz_wait_for_reclaim(zmd, dzone);
2115 dmz_activate_zone(dzone);
2116 dmz_lru_zone(zmd, dzone);
2118 dmz_unlock_map(zmd);
2124 * Write and discard change the block validity of data zones and their buffer
2125 * zones. Check here that valid blocks are still present. If all blocks are
2126 * invalid, the zones can be unmapped on the fly without waiting for reclaim
2129 void dmz_put_chunk_mapping(struct dmz_metadata *zmd, struct dm_zone *dzone)
2131 struct dm_zone *bzone;
2135 bzone = dzone->bzone;
2137 if (dmz_weight(bzone))
2138 dmz_lru_zone(zmd, bzone);
2140 /* Empty buffer zone: reclaim it */
2141 dmz_unmap_zone(zmd, bzone);
2142 dmz_free_zone(zmd, bzone);
2147 /* Deactivate the data zone */
2148 dmz_deactivate_zone(dzone);
2149 if (dmz_is_active(dzone) || bzone || dmz_weight(dzone))
2150 dmz_lru_zone(zmd, dzone);
2152 /* Unbuffered inactive empty data zone: reclaim it */
2153 dmz_unmap_zone(zmd, dzone);
2154 dmz_free_zone(zmd, dzone);
2157 dmz_unlock_map(zmd);
2161 * Allocate and map a random zone to buffer a chunk
2162 * already mapped to a sequential zone.
2164 struct dm_zone *dmz_get_chunk_buffer(struct dmz_metadata *zmd,
2165 struct dm_zone *dzone)
2167 struct dm_zone *bzone;
2168 int alloc_flags = zmd->nr_cache ? DMZ_ALLOC_CACHE : DMZ_ALLOC_RND;
2172 bzone = dzone->bzone;
2176 /* Allocate a random zone */
2177 bzone = dmz_alloc_zone(zmd, 0, alloc_flags);
2179 if (dmz_dev_is_dying(zmd)) {
2180 bzone = ERR_PTR(-EIO);
2183 dmz_wait_for_free_zones(zmd);
2187 /* Update the chunk mapping */
2188 dmz_set_chunk_mapping(zmd, dzone->chunk, dzone->id, bzone->id);
2190 set_bit(DMZ_BUF, &bzone->flags);
2191 bzone->chunk = dzone->chunk;
2192 bzone->bzone = dzone;
2193 dzone->bzone = bzone;
2194 if (dmz_is_cache(bzone))
2195 list_add_tail(&bzone->link, &zmd->map_cache_list);
2197 list_add_tail(&bzone->link, &bzone->dev->map_rnd_list);
2199 dmz_unlock_map(zmd);
2205 * Get an unmapped (free) zone.
2206 * This must be called with the mapping lock held.
2208 struct dm_zone *dmz_alloc_zone(struct dmz_metadata *zmd, unsigned int dev_idx,
2209 unsigned long flags)
2211 struct list_head *list;
2212 struct dm_zone *zone;
2215 /* Schedule reclaim to ensure free zones are available */
2216 if (!(flags & DMZ_ALLOC_RECLAIM)) {
2217 for (i = 0; i < zmd->nr_devs; i++)
2218 dmz_schedule_reclaim(zmd->dev[i].reclaim);
2223 if (flags & DMZ_ALLOC_CACHE)
2224 list = &zmd->unmap_cache_list;
2225 else if (flags & DMZ_ALLOC_RND)
2226 list = &zmd->dev[dev_idx].unmap_rnd_list;
2228 list = &zmd->dev[dev_idx].unmap_seq_list;
2230 if (list_empty(list)) {
2232 * No free zone: return NULL if this is for not reclaim.
2234 if (!(flags & DMZ_ALLOC_RECLAIM))
2237 * Try to allocate from other devices
2239 if (i < zmd->nr_devs) {
2240 dev_idx = (dev_idx + 1) % zmd->nr_devs;
2246 * Fallback to the reserved sequential zones
2248 zone = list_first_entry_or_null(&zmd->reserved_seq_zones_list,
2249 struct dm_zone, link);
2251 list_del_init(&zone->link);
2252 atomic_dec(&zmd->nr_reserved_seq_zones);
2257 zone = list_first_entry(list, struct dm_zone, link);
2258 list_del_init(&zone->link);
2260 if (dmz_is_cache(zone))
2261 atomic_dec(&zmd->unmap_nr_cache);
2262 else if (dmz_is_rnd(zone))
2263 atomic_dec(&zone->dev->unmap_nr_rnd);
2265 atomic_dec(&zone->dev->unmap_nr_seq);
2267 if (dmz_is_offline(zone)) {
2268 dmz_zmd_warn(zmd, "Zone %u is offline", zone->id);
2272 if (dmz_is_meta(zone)) {
2273 dmz_zmd_warn(zmd, "Zone %u has metadata", zone->id);
2282 * This must be called with the mapping lock held.
2284 void dmz_free_zone(struct dmz_metadata *zmd, struct dm_zone *zone)
2286 /* If this is a sequential zone, reset it */
2287 if (dmz_is_seq(zone))
2288 dmz_reset_zone(zmd, zone);
2290 /* Return the zone to its type unmap list */
2291 if (dmz_is_cache(zone)) {
2292 list_add_tail(&zone->link, &zmd->unmap_cache_list);
2293 atomic_inc(&zmd->unmap_nr_cache);
2294 } else if (dmz_is_rnd(zone)) {
2295 list_add_tail(&zone->link, &zone->dev->unmap_rnd_list);
2296 atomic_inc(&zone->dev->unmap_nr_rnd);
2297 } else if (dmz_is_reserved(zone)) {
2298 list_add_tail(&zone->link, &zmd->reserved_seq_zones_list);
2299 atomic_inc(&zmd->nr_reserved_seq_zones);
2301 list_add_tail(&zone->link, &zone->dev->unmap_seq_list);
2302 atomic_inc(&zone->dev->unmap_nr_seq);
2305 wake_up_all(&zmd->free_wq);
2309 * Map a chunk to a zone.
2310 * This must be called with the mapping lock held.
2312 void dmz_map_zone(struct dmz_metadata *zmd, struct dm_zone *dzone,
2315 /* Set the chunk mapping */
2316 dmz_set_chunk_mapping(zmd, chunk, dzone->id,
2318 dzone->chunk = chunk;
2319 if (dmz_is_cache(dzone))
2320 list_add_tail(&dzone->link, &zmd->map_cache_list);
2321 else if (dmz_is_rnd(dzone))
2322 list_add_tail(&dzone->link, &dzone->dev->map_rnd_list);
2324 list_add_tail(&dzone->link, &dzone->dev->map_seq_list);
2329 * This must be called with the mapping lock held.
2331 void dmz_unmap_zone(struct dmz_metadata *zmd, struct dm_zone *zone)
2333 unsigned int chunk = zone->chunk;
2334 unsigned int dzone_id;
2336 if (chunk == DMZ_MAP_UNMAPPED) {
2337 /* Already unmapped */
2341 if (test_and_clear_bit(DMZ_BUF, &zone->flags)) {
2343 * Unmapping the chunk buffer zone: clear only
2344 * the chunk buffer mapping
2346 dzone_id = zone->bzone->id;
2347 zone->bzone->bzone = NULL;
2352 * Unmapping the chunk data zone: the zone must
2355 if (WARN_ON(zone->bzone)) {
2356 zone->bzone->bzone = NULL;
2359 dzone_id = DMZ_MAP_UNMAPPED;
2362 dmz_set_chunk_mapping(zmd, chunk, dzone_id, DMZ_MAP_UNMAPPED);
2364 zone->chunk = DMZ_MAP_UNMAPPED;
2365 list_del_init(&zone->link);
2369 * Set @nr_bits bits in @bitmap starting from @bit.
2370 * Return the number of bits changed from 0 to 1.
2372 static unsigned int dmz_set_bits(unsigned long *bitmap,
2373 unsigned int bit, unsigned int nr_bits)
2375 unsigned long *addr;
2376 unsigned int end = bit + nr_bits;
2380 if (((bit & (BITS_PER_LONG - 1)) == 0) &&
2381 ((end - bit) >= BITS_PER_LONG)) {
2382 /* Try to set the whole word at once */
2383 addr = bitmap + BIT_WORD(bit);
2387 bit += BITS_PER_LONG;
2392 if (!test_and_set_bit(bit, bitmap))
2401 * Get the bitmap block storing the bit for chunk_block in zone.
2403 static struct dmz_mblock *dmz_get_bitmap(struct dmz_metadata *zmd,
2404 struct dm_zone *zone,
2405 sector_t chunk_block)
2407 sector_t bitmap_block = 1 + zmd->nr_map_blocks +
2408 (sector_t)(zone->id * zmd->zone_nr_bitmap_blocks) +
2409 (chunk_block >> DMZ_BLOCK_SHIFT_BITS);
2411 return dmz_get_mblock(zmd, bitmap_block);
2415 * Copy the valid blocks bitmap of from_zone to the bitmap of to_zone.
2417 int dmz_copy_valid_blocks(struct dmz_metadata *zmd, struct dm_zone *from_zone,
2418 struct dm_zone *to_zone)
2420 struct dmz_mblock *from_mblk, *to_mblk;
2421 sector_t chunk_block = 0;
2423 /* Get the zones bitmap blocks */
2424 while (chunk_block < zmd->zone_nr_blocks) {
2425 from_mblk = dmz_get_bitmap(zmd, from_zone, chunk_block);
2426 if (IS_ERR(from_mblk))
2427 return PTR_ERR(from_mblk);
2428 to_mblk = dmz_get_bitmap(zmd, to_zone, chunk_block);
2429 if (IS_ERR(to_mblk)) {
2430 dmz_release_mblock(zmd, from_mblk);
2431 return PTR_ERR(to_mblk);
2434 memcpy(to_mblk->data, from_mblk->data, DMZ_BLOCK_SIZE);
2435 dmz_dirty_mblock(zmd, to_mblk);
2437 dmz_release_mblock(zmd, to_mblk);
2438 dmz_release_mblock(zmd, from_mblk);
2440 chunk_block += zmd->zone_bits_per_mblk;
2443 to_zone->weight = from_zone->weight;
2449 * Merge the valid blocks bitmap of from_zone into the bitmap of to_zone,
2450 * starting from chunk_block.
2452 int dmz_merge_valid_blocks(struct dmz_metadata *zmd, struct dm_zone *from_zone,
2453 struct dm_zone *to_zone, sector_t chunk_block)
2455 unsigned int nr_blocks;
2458 /* Get the zones bitmap blocks */
2459 while (chunk_block < zmd->zone_nr_blocks) {
2460 /* Get a valid region from the source zone */
2461 ret = dmz_first_valid_block(zmd, from_zone, &chunk_block);
2466 ret = dmz_validate_blocks(zmd, to_zone, chunk_block, nr_blocks);
2470 chunk_block += nr_blocks;
2477 * Validate all the blocks in the range [block..block+nr_blocks-1].
2479 int dmz_validate_blocks(struct dmz_metadata *zmd, struct dm_zone *zone,
2480 sector_t chunk_block, unsigned int nr_blocks)
2482 unsigned int count, bit, nr_bits;
2483 unsigned int zone_nr_blocks = zmd->zone_nr_blocks;
2484 struct dmz_mblock *mblk;
2487 dmz_zmd_debug(zmd, "=> VALIDATE zone %u, block %llu, %u blocks",
2488 zone->id, (unsigned long long)chunk_block,
2491 WARN_ON(chunk_block + nr_blocks > zone_nr_blocks);
2494 /* Get bitmap block */
2495 mblk = dmz_get_bitmap(zmd, zone, chunk_block);
2497 return PTR_ERR(mblk);
2500 bit = chunk_block & DMZ_BLOCK_MASK_BITS;
2501 nr_bits = min(nr_blocks, zmd->zone_bits_per_mblk - bit);
2503 count = dmz_set_bits((unsigned long *)mblk->data, bit, nr_bits);
2505 dmz_dirty_mblock(zmd, mblk);
2508 dmz_release_mblock(zmd, mblk);
2510 nr_blocks -= nr_bits;
2511 chunk_block += nr_bits;
2514 if (likely(zone->weight + n <= zone_nr_blocks))
2517 dmz_zmd_warn(zmd, "Zone %u: weight %u should be <= %u",
2518 zone->id, zone->weight,
2519 zone_nr_blocks - n);
2520 zone->weight = zone_nr_blocks;
2527 * Clear nr_bits bits in bitmap starting from bit.
2528 * Return the number of bits cleared.
2530 static int dmz_clear_bits(unsigned long *bitmap, int bit, int nr_bits)
2532 unsigned long *addr;
2533 int end = bit + nr_bits;
2537 if (((bit & (BITS_PER_LONG - 1)) == 0) &&
2538 ((end - bit) >= BITS_PER_LONG)) {
2539 /* Try to clear whole word at once */
2540 addr = bitmap + BIT_WORD(bit);
2541 if (*addr == ULONG_MAX) {
2544 bit += BITS_PER_LONG;
2549 if (test_and_clear_bit(bit, bitmap))
2558 * Invalidate all the blocks in the range [block..block+nr_blocks-1].
2560 int dmz_invalidate_blocks(struct dmz_metadata *zmd, struct dm_zone *zone,
2561 sector_t chunk_block, unsigned int nr_blocks)
2563 unsigned int count, bit, nr_bits;
2564 struct dmz_mblock *mblk;
2567 dmz_zmd_debug(zmd, "=> INVALIDATE zone %u, block %llu, %u blocks",
2568 zone->id, (u64)chunk_block, nr_blocks);
2570 WARN_ON(chunk_block + nr_blocks > zmd->zone_nr_blocks);
2573 /* Get bitmap block */
2574 mblk = dmz_get_bitmap(zmd, zone, chunk_block);
2576 return PTR_ERR(mblk);
2579 bit = chunk_block & DMZ_BLOCK_MASK_BITS;
2580 nr_bits = min(nr_blocks, zmd->zone_bits_per_mblk - bit);
2582 count = dmz_clear_bits((unsigned long *)mblk->data,
2585 dmz_dirty_mblock(zmd, mblk);
2588 dmz_release_mblock(zmd, mblk);
2590 nr_blocks -= nr_bits;
2591 chunk_block += nr_bits;
2594 if (zone->weight >= n)
2597 dmz_zmd_warn(zmd, "Zone %u: weight %u should be >= %u",
2598 zone->id, zone->weight, n);
2606 * Get a block bit value.
2608 static int dmz_test_block(struct dmz_metadata *zmd, struct dm_zone *zone,
2609 sector_t chunk_block)
2611 struct dmz_mblock *mblk;
2614 WARN_ON(chunk_block >= zmd->zone_nr_blocks);
2616 /* Get bitmap block */
2617 mblk = dmz_get_bitmap(zmd, zone, chunk_block);
2619 return PTR_ERR(mblk);
2622 ret = test_bit(chunk_block & DMZ_BLOCK_MASK_BITS,
2623 (unsigned long *) mblk->data) != 0;
2625 dmz_release_mblock(zmd, mblk);
2631 * Return the number of blocks from chunk_block to the first block with a bit
2632 * value specified by set. Search at most nr_blocks blocks from chunk_block.
2634 static int dmz_to_next_set_block(struct dmz_metadata *zmd, struct dm_zone *zone,
2635 sector_t chunk_block, unsigned int nr_blocks,
2638 struct dmz_mblock *mblk;
2639 unsigned int bit, set_bit, nr_bits;
2640 unsigned int zone_bits = zmd->zone_bits_per_mblk;
2641 unsigned long *bitmap;
2644 WARN_ON(chunk_block + nr_blocks > zmd->zone_nr_blocks);
2647 /* Get bitmap block */
2648 mblk = dmz_get_bitmap(zmd, zone, chunk_block);
2650 return PTR_ERR(mblk);
2653 bitmap = (unsigned long *) mblk->data;
2654 bit = chunk_block & DMZ_BLOCK_MASK_BITS;
2655 nr_bits = min(nr_blocks, zone_bits - bit);
2657 set_bit = find_next_bit(bitmap, zone_bits, bit);
2659 set_bit = find_next_zero_bit(bitmap, zone_bits, bit);
2660 dmz_release_mblock(zmd, mblk);
2663 if (set_bit < zone_bits)
2666 nr_blocks -= nr_bits;
2667 chunk_block += nr_bits;
2674 * Test if chunk_block is valid. If it is, the number of consecutive
2675 * valid blocks from chunk_block will be returned.
2677 int dmz_block_valid(struct dmz_metadata *zmd, struct dm_zone *zone,
2678 sector_t chunk_block)
2682 valid = dmz_test_block(zmd, zone, chunk_block);
2686 /* The block is valid: get the number of valid blocks from block */
2687 return dmz_to_next_set_block(zmd, zone, chunk_block,
2688 zmd->zone_nr_blocks - chunk_block, 0);
2692 * Find the first valid block from @chunk_block in @zone.
2693 * If such a block is found, its number is returned using
2694 * @chunk_block and the total number of valid blocks from @chunk_block
2697 int dmz_first_valid_block(struct dmz_metadata *zmd, struct dm_zone *zone,
2698 sector_t *chunk_block)
2700 sector_t start_block = *chunk_block;
2703 ret = dmz_to_next_set_block(zmd, zone, start_block,
2704 zmd->zone_nr_blocks - start_block, 1);
2709 *chunk_block = start_block;
2711 return dmz_to_next_set_block(zmd, zone, start_block,
2712 zmd->zone_nr_blocks - start_block, 0);
2716 * Count the number of bits set starting from bit up to bit + nr_bits - 1.
2718 static int dmz_count_bits(void *bitmap, int bit, int nr_bits)
2720 unsigned long *addr;
2721 int end = bit + nr_bits;
2725 if (((bit & (BITS_PER_LONG - 1)) == 0) &&
2726 ((end - bit) >= BITS_PER_LONG)) {
2727 addr = (unsigned long *)bitmap + BIT_WORD(bit);
2728 if (*addr == ULONG_MAX) {
2730 bit += BITS_PER_LONG;
2735 if (test_bit(bit, bitmap))
2744 * Get a zone weight.
2746 static void dmz_get_zone_weight(struct dmz_metadata *zmd, struct dm_zone *zone)
2748 struct dmz_mblock *mblk;
2749 sector_t chunk_block = 0;
2750 unsigned int bit, nr_bits;
2751 unsigned int nr_blocks = zmd->zone_nr_blocks;
2756 /* Get bitmap block */
2757 mblk = dmz_get_bitmap(zmd, zone, chunk_block);
2763 /* Count bits in this block */
2764 bitmap = mblk->data;
2765 bit = chunk_block & DMZ_BLOCK_MASK_BITS;
2766 nr_bits = min(nr_blocks, zmd->zone_bits_per_mblk - bit);
2767 n += dmz_count_bits(bitmap, bit, nr_bits);
2769 dmz_release_mblock(zmd, mblk);
2771 nr_blocks -= nr_bits;
2772 chunk_block += nr_bits;
2779 * Cleanup the zoned metadata resources.
2781 static void dmz_cleanup_metadata(struct dmz_metadata *zmd)
2783 struct rb_root *root;
2784 struct dmz_mblock *mblk, *next;
2787 /* Release zone mapping resources */
2788 if (zmd->map_mblk) {
2789 for (i = 0; i < zmd->nr_map_blocks; i++)
2790 dmz_release_mblock(zmd, zmd->map_mblk[i]);
2791 kfree(zmd->map_mblk);
2792 zmd->map_mblk = NULL;
2795 /* Release super blocks */
2796 for (i = 0; i < 2; i++) {
2797 if (zmd->sb[i].mblk) {
2798 dmz_free_mblock(zmd, zmd->sb[i].mblk);
2799 zmd->sb[i].mblk = NULL;
2803 /* Free cached blocks */
2804 while (!list_empty(&zmd->mblk_dirty_list)) {
2805 mblk = list_first_entry(&zmd->mblk_dirty_list,
2806 struct dmz_mblock, link);
2807 dmz_zmd_warn(zmd, "mblock %llu still in dirty list (ref %u)",
2808 (u64)mblk->no, mblk->ref);
2809 list_del_init(&mblk->link);
2810 rb_erase(&mblk->node, &zmd->mblk_rbtree);
2811 dmz_free_mblock(zmd, mblk);
2814 while (!list_empty(&zmd->mblk_lru_list)) {
2815 mblk = list_first_entry(&zmd->mblk_lru_list,
2816 struct dmz_mblock, link);
2817 list_del_init(&mblk->link);
2818 rb_erase(&mblk->node, &zmd->mblk_rbtree);
2819 dmz_free_mblock(zmd, mblk);
2822 /* Sanity checks: the mblock rbtree should now be empty */
2823 root = &zmd->mblk_rbtree;
2824 rbtree_postorder_for_each_entry_safe(mblk, next, root, node) {
2825 dmz_zmd_warn(zmd, "mblock %llu ref %u still in rbtree",
2826 (u64)mblk->no, mblk->ref);
2828 dmz_free_mblock(zmd, mblk);
2831 /* Free the zone descriptors */
2832 dmz_drop_zones(zmd);
2834 mutex_destroy(&zmd->mblk_flush_lock);
2835 mutex_destroy(&zmd->map_lock);
2838 static void dmz_print_dev(struct dmz_metadata *zmd, int num)
2840 struct dmz_dev *dev = &zmd->dev[num];
2842 if (bdev_zoned_model(dev->bdev) == BLK_ZONED_NONE)
2843 dmz_dev_info(dev, "Regular block device");
2845 dmz_dev_info(dev, "Host-%s zoned block device",
2846 bdev_zoned_model(dev->bdev) == BLK_ZONED_HA ?
2847 "aware" : "managed");
2848 if (zmd->sb_version > 1) {
2849 sector_t sector_offset =
2850 dev->zone_offset << zmd->zone_nr_sectors_shift;
2852 dmz_dev_info(dev, " %llu 512-byte logical sectors (offset %llu)",
2853 (u64)dev->capacity, (u64)sector_offset);
2854 dmz_dev_info(dev, " %u zones of %llu 512-byte logical sectors (offset %llu)",
2855 dev->nr_zones, (u64)zmd->zone_nr_sectors,
2856 (u64)dev->zone_offset);
2858 dmz_dev_info(dev, " %llu 512-byte logical sectors",
2859 (u64)dev->capacity);
2860 dmz_dev_info(dev, " %u zones of %llu 512-byte logical sectors",
2861 dev->nr_zones, (u64)zmd->zone_nr_sectors);
2866 * Initialize the zoned metadata.
2868 int dmz_ctr_metadata(struct dmz_dev *dev, int num_dev,
2869 struct dmz_metadata **metadata,
2870 const char *devname)
2872 struct dmz_metadata *zmd;
2874 struct dm_zone *zone;
2877 zmd = kzalloc(sizeof(struct dmz_metadata), GFP_KERNEL);
2881 strcpy(zmd->devname, devname);
2883 zmd->nr_devs = num_dev;
2884 zmd->mblk_rbtree = RB_ROOT;
2885 init_rwsem(&zmd->mblk_sem);
2886 mutex_init(&zmd->mblk_flush_lock);
2887 spin_lock_init(&zmd->mblk_lock);
2888 INIT_LIST_HEAD(&zmd->mblk_lru_list);
2889 INIT_LIST_HEAD(&zmd->mblk_dirty_list);
2891 mutex_init(&zmd->map_lock);
2893 atomic_set(&zmd->unmap_nr_cache, 0);
2894 INIT_LIST_HEAD(&zmd->unmap_cache_list);
2895 INIT_LIST_HEAD(&zmd->map_cache_list);
2897 atomic_set(&zmd->nr_reserved_seq_zones, 0);
2898 INIT_LIST_HEAD(&zmd->reserved_seq_zones_list);
2900 init_waitqueue_head(&zmd->free_wq);
2902 /* Initialize zone descriptors */
2903 ret = dmz_init_zones(zmd);
2907 /* Get super block */
2908 ret = dmz_load_sb(zmd);
2912 /* Set metadata zones starting from sb_zone */
2913 for (i = 0; i < zmd->nr_meta_zones << 1; i++) {
2914 zone = dmz_get(zmd, zmd->sb[0].zone->id + i);
2917 "metadata zone %u not present", i);
2921 if (!dmz_is_rnd(zone) && !dmz_is_cache(zone)) {
2923 "metadata zone %d is not random", i);
2927 set_bit(DMZ_META, &zone->flags);
2929 /* Load mapping table */
2930 ret = dmz_load_mapping(zmd);
2935 * Cache size boundaries: allow at least 2 super blocks, the chunk map
2936 * blocks and enough blocks to be able to cache the bitmap blocks of
2937 * up to 16 zones when idle (min_nr_mblks). Otherwise, if busy, allow
2938 * the cache to add 512 more metadata blocks.
2940 zmd->min_nr_mblks = 2 + zmd->nr_map_blocks + zmd->zone_nr_bitmap_blocks * 16;
2941 zmd->max_nr_mblks = zmd->min_nr_mblks + 512;
2942 zmd->mblk_shrinker.count_objects = dmz_mblock_shrinker_count;
2943 zmd->mblk_shrinker.scan_objects = dmz_mblock_shrinker_scan;
2944 zmd->mblk_shrinker.seeks = DEFAULT_SEEKS;
2946 /* Metadata cache shrinker */
2947 ret = register_shrinker(&zmd->mblk_shrinker);
2949 dmz_zmd_err(zmd, "Register metadata cache shrinker failed");
2953 dmz_zmd_info(zmd, "DM-Zoned metadata version %d", zmd->sb_version);
2954 for (i = 0; i < zmd->nr_devs; i++)
2955 dmz_print_dev(zmd, i);
2957 dmz_zmd_info(zmd, " %u zones of %llu 512-byte logical sectors",
2958 zmd->nr_zones, (u64)zmd->zone_nr_sectors);
2959 dmz_zmd_debug(zmd, " %u metadata zones",
2960 zmd->nr_meta_zones * 2);
2961 dmz_zmd_debug(zmd, " %u data zones for %u chunks",
2962 zmd->nr_data_zones, zmd->nr_chunks);
2963 dmz_zmd_debug(zmd, " %u cache zones (%u unmapped)",
2964 zmd->nr_cache, atomic_read(&zmd->unmap_nr_cache));
2965 for (i = 0; i < zmd->nr_devs; i++) {
2966 dmz_zmd_debug(zmd, " %u random zones (%u unmapped)",
2967 dmz_nr_rnd_zones(zmd, i),
2968 dmz_nr_unmap_rnd_zones(zmd, i));
2969 dmz_zmd_debug(zmd, " %u sequential zones (%u unmapped)",
2970 dmz_nr_seq_zones(zmd, i),
2971 dmz_nr_unmap_seq_zones(zmd, i));
2973 dmz_zmd_debug(zmd, " %u reserved sequential data zones",
2974 zmd->nr_reserved_seq);
2975 dmz_zmd_debug(zmd, "Format:");
2976 dmz_zmd_debug(zmd, "%u metadata blocks per set (%u max cache)",
2977 zmd->nr_meta_blocks, zmd->max_nr_mblks);
2978 dmz_zmd_debug(zmd, " %u data zone mapping blocks",
2979 zmd->nr_map_blocks);
2980 dmz_zmd_debug(zmd, " %u bitmap blocks",
2981 zmd->nr_bitmap_blocks);
2987 dmz_cleanup_metadata(zmd);
2995 * Cleanup the zoned metadata resources.
2997 void dmz_dtr_metadata(struct dmz_metadata *zmd)
2999 unregister_shrinker(&zmd->mblk_shrinker);
3000 dmz_cleanup_metadata(zmd);
3005 * Check zone information on resume.
3007 int dmz_resume_metadata(struct dmz_metadata *zmd)
3009 struct dm_zone *zone;
3015 for (i = 0; i < zmd->nr_zones; i++) {
3016 zone = dmz_get(zmd, i);
3018 dmz_zmd_err(zmd, "Unable to get zone %u", i);
3021 wp_block = zone->wp_block;
3023 ret = dmz_update_zone(zmd, zone);
3025 dmz_zmd_err(zmd, "Broken zone %u", i);
3029 if (dmz_is_offline(zone)) {
3030 dmz_zmd_warn(zmd, "Zone %u is offline", i);
3034 /* Check write pointer */
3035 if (!dmz_is_seq(zone))
3037 else if (zone->wp_block != wp_block) {
3038 dmz_zmd_err(zmd, "Zone %u: Invalid wp (%llu / %llu)",
3039 i, (u64)zone->wp_block, (u64)wp_block);
3040 zone->wp_block = wp_block;
3041 dmz_invalidate_blocks(zmd, zone, zone->wp_block,
3042 zmd->zone_nr_blocks - zone->wp_block);