dm-thin-metadata.c 45.4 KB
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/*
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 * Copyright (C) 2011-2012 Red Hat, Inc.
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 *
 * This file is released under the GPL.
 */

#include "dm-thin-metadata.h"
#include "persistent-data/dm-btree.h"
#include "persistent-data/dm-space-map.h"
#include "persistent-data/dm-space-map-disk.h"
#include "persistent-data/dm-transaction-manager.h"

#include <linux/list.h>
#include <linux/device-mapper.h>
#include <linux/workqueue.h>

/*--------------------------------------------------------------------------
 * As far as the metadata goes, there is:
 *
 * - A superblock in block zero, taking up fewer than 512 bytes for
 *   atomic writes.
 *
 * - A space map managing the metadata blocks.
 *
 * - A space map managing the data blocks.
 *
 * - A btree mapping our internal thin dev ids onto struct disk_device_details.
 *
 * - A hierarchical btree, with 2 levels which effectively maps (thin
 *   dev id, virtual block) -> block_time.  Block time is a 64-bit
 *   field holding the time in the low 24 bits, and block in the top 48
 *   bits.
 *
 * BTrees consist solely of btree_nodes, that fill a block.  Some are
 * internal nodes, as such their values are a __le64 pointing to other
 * nodes.  Leaf nodes can store data of any reasonable size (ie. much
 * smaller than the block size).  The nodes consist of the header,
 * followed by an array of keys, followed by an array of values.  We have
 * to binary search on the keys so they're all held together to help the
 * cpu cache.
 *
 * Space maps have 2 btrees:
 *
 * - One maps a uint64_t onto a struct index_entry.  Which points to a
 *   bitmap block, and has some details about how many free entries there
 *   are etc.
 *
 * - The bitmap blocks have a header (for the checksum).  Then the rest
 *   of the block is pairs of bits.  With the meaning being:
 *
 *   0 - ref count is 0
 *   1 - ref count is 1
 *   2 - ref count is 2
 *   3 - ref count is higher than 2
 *
 * - If the count is higher than 2 then the ref count is entered in a
 *   second btree that directly maps the block_address to a uint32_t ref
 *   count.
 *
 * The space map metadata variant doesn't have a bitmaps btree.  Instead
 * it has one single blocks worth of index_entries.  This avoids
 * recursive issues with the bitmap btree needing to allocate space in
 * order to insert.  With a small data block size such as 64k the
 * metadata support data devices that are hundreds of terrabytes.
 *
 * The space maps allocate space linearly from front to back.  Space that
 * is freed in a transaction is never recycled within that transaction.
 * To try and avoid fragmenting _free_ space the allocator always goes
 * back and fills in gaps.
 *
 * All metadata io is in THIN_METADATA_BLOCK_SIZE sized/aligned chunks
 * from the block manager.
 *--------------------------------------------------------------------------*/

#define DM_MSG_PREFIX   "thin metadata"

#define THIN_SUPERBLOCK_MAGIC 27022010
#define THIN_SUPERBLOCK_LOCATION 0
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#define THIN_VERSION 2
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#define SECTOR_TO_BLOCK_SHIFT 3

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/*
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 * For btree insert:
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 *  3 for btree insert +
 *  2 for btree lookup used within space map
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 * For btree remove:
 *  2 for shadow spine +
 *  4 for rebalance 3 child node
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 */
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#define THIN_MAX_CONCURRENT_LOCKS 6
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/* This should be plenty */
#define SPACE_MAP_ROOT_SIZE 128

/*
 * Little endian on-disk superblock and device details.
 */
struct thin_disk_superblock {
	__le32 csum;	/* Checksum of superblock except for this field. */
	__le32 flags;
	__le64 blocknr;	/* This block number, dm_block_t. */

	__u8 uuid[16];
	__le64 magic;
	__le32 version;
	__le32 time;

	__le64 trans_id;

	/*
	 * Root held by userspace transactions.
	 */
	__le64 held_root;

	__u8 data_space_map_root[SPACE_MAP_ROOT_SIZE];
	__u8 metadata_space_map_root[SPACE_MAP_ROOT_SIZE];

	/*
	 * 2-level btree mapping (dev_id, (dev block, time)) -> data block
	 */
	__le64 data_mapping_root;

	/*
	 * Device detail root mapping dev_id -> device_details
	 */
	__le64 device_details_root;

	__le32 data_block_size;		/* In 512-byte sectors. */

	__le32 metadata_block_size;	/* In 512-byte sectors. */
	__le64 metadata_nr_blocks;

	__le32 compat_flags;
	__le32 compat_ro_flags;
	__le32 incompat_flags;
} __packed;

struct disk_device_details {
	__le64 mapped_blocks;
	__le64 transaction_id;		/* When created. */
	__le32 creation_time;
	__le32 snapshotted_time;
} __packed;

struct dm_pool_metadata {
	struct hlist_node hash;

	struct block_device *bdev;
	struct dm_block_manager *bm;
	struct dm_space_map *metadata_sm;
	struct dm_space_map *data_sm;
	struct dm_transaction_manager *tm;
	struct dm_transaction_manager *nb_tm;

	/*
	 * Two-level btree.
	 * First level holds thin_dev_t.
	 * Second level holds mappings.
	 */
	struct dm_btree_info info;

	/*
	 * Non-blocking version of the above.
	 */
	struct dm_btree_info nb_info;

	/*
	 * Just the top level for deleting whole devices.
	 */
	struct dm_btree_info tl_info;

	/*
	 * Just the bottom level for creating new devices.
	 */
	struct dm_btree_info bl_info;

	/*
	 * Describes the device details btree.
	 */
	struct dm_btree_info details_info;

	struct rw_semaphore root_lock;
	uint32_t time;
	dm_block_t root;
	dm_block_t details_root;
	struct list_head thin_devices;
	uint64_t trans_id;
	unsigned long flags;
	sector_t data_block_size;
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	/*
	 * We reserve a section of the metadata for commit overhead.
	 * All reported space does *not* include this.
	 */
	dm_block_t metadata_reserve;

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	/*
	 * Set if a transaction has to be aborted but the attempt to roll back
	 * to the previous (good) transaction failed.  The only pool metadata
	 * operation possible in this state is the closing of the device.
	 */
	bool fail_io:1;
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	/*
	 * Reading the space map roots can fail, so we read it into these
	 * buffers before the superblock is locked and updated.
	 */
	__u8 data_space_map_root[SPACE_MAP_ROOT_SIZE];
	__u8 metadata_space_map_root[SPACE_MAP_ROOT_SIZE];
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};

struct dm_thin_device {
	struct list_head list;
	struct dm_pool_metadata *pmd;
	dm_thin_id id;

	int open_count;
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	bool changed:1;
	bool aborted_with_changes:1;
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	uint64_t mapped_blocks;
	uint64_t transaction_id;
	uint32_t creation_time;
	uint32_t snapshotted_time;
};

/*----------------------------------------------------------------
 * superblock validator
 *--------------------------------------------------------------*/

#define SUPERBLOCK_CSUM_XOR 160774

static void sb_prepare_for_write(struct dm_block_validator *v,
				 struct dm_block *b,
				 size_t block_size)
{
	struct thin_disk_superblock *disk_super = dm_block_data(b);

	disk_super->blocknr = cpu_to_le64(dm_block_location(b));
	disk_super->csum = cpu_to_le32(dm_bm_checksum(&disk_super->flags,
						      block_size - sizeof(__le32),
						      SUPERBLOCK_CSUM_XOR));
}

static int sb_check(struct dm_block_validator *v,
		    struct dm_block *b,
		    size_t block_size)
{
	struct thin_disk_superblock *disk_super = dm_block_data(b);
	__le32 csum_le;

	if (dm_block_location(b) != le64_to_cpu(disk_super->blocknr)) {
		DMERR("sb_check failed: blocknr %llu: "
		      "wanted %llu", le64_to_cpu(disk_super->blocknr),
		      (unsigned long long)dm_block_location(b));
		return -ENOTBLK;
	}

	if (le64_to_cpu(disk_super->magic) != THIN_SUPERBLOCK_MAGIC) {
		DMERR("sb_check failed: magic %llu: "
		      "wanted %llu", le64_to_cpu(disk_super->magic),
		      (unsigned long long)THIN_SUPERBLOCK_MAGIC);
		return -EILSEQ;
	}

	csum_le = cpu_to_le32(dm_bm_checksum(&disk_super->flags,
					     block_size - sizeof(__le32),
					     SUPERBLOCK_CSUM_XOR));
	if (csum_le != disk_super->csum) {
		DMERR("sb_check failed: csum %u: wanted %u",
		      le32_to_cpu(csum_le), le32_to_cpu(disk_super->csum));
		return -EILSEQ;
	}

	return 0;
}

static struct dm_block_validator sb_validator = {
	.name = "superblock",
	.prepare_for_write = sb_prepare_for_write,
	.check = sb_check
};

/*----------------------------------------------------------------
 * Methods for the btree value types
 *--------------------------------------------------------------*/

static uint64_t pack_block_time(dm_block_t b, uint32_t t)
{
	return (b << 24) | t;
}

static void unpack_block_time(uint64_t v, dm_block_t *b, uint32_t *t)
{
	*b = v >> 24;
	*t = v & ((1 << 24) - 1);
}

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static void data_block_inc(void *context, const void *value_le)
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{
	struct dm_space_map *sm = context;
	__le64 v_le;
	uint64_t b;
	uint32_t t;

	memcpy(&v_le, value_le, sizeof(v_le));
	unpack_block_time(le64_to_cpu(v_le), &b, &t);
	dm_sm_inc_block(sm, b);
}

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static void data_block_dec(void *context, const void *value_le)
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{
	struct dm_space_map *sm = context;
	__le64 v_le;
	uint64_t b;
	uint32_t t;

	memcpy(&v_le, value_le, sizeof(v_le));
	unpack_block_time(le64_to_cpu(v_le), &b, &t);
	dm_sm_dec_block(sm, b);
}

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static int data_block_equal(void *context, const void *value1_le, const void *value2_le)
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{
	__le64 v1_le, v2_le;
	uint64_t b1, b2;
	uint32_t t;

	memcpy(&v1_le, value1_le, sizeof(v1_le));
	memcpy(&v2_le, value2_le, sizeof(v2_le));
	unpack_block_time(le64_to_cpu(v1_le), &b1, &t);
	unpack_block_time(le64_to_cpu(v2_le), &b2, &t);

	return b1 == b2;
}

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static void subtree_inc(void *context, const void *value)
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{
	struct dm_btree_info *info = context;
	__le64 root_le;
	uint64_t root;

	memcpy(&root_le, value, sizeof(root_le));
	root = le64_to_cpu(root_le);
	dm_tm_inc(info->tm, root);
}

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static void subtree_dec(void *context, const void *value)
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{
	struct dm_btree_info *info = context;
	__le64 root_le;
	uint64_t root;

	memcpy(&root_le, value, sizeof(root_le));
	root = le64_to_cpu(root_le);
	if (dm_btree_del(info, root))
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		DMERR("btree delete failed");
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}

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static int subtree_equal(void *context, const void *value1_le, const void *value2_le)
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{
	__le64 v1_le, v2_le;
	memcpy(&v1_le, value1_le, sizeof(v1_le));
	memcpy(&v2_le, value2_le, sizeof(v2_le));

	return v1_le == v2_le;
}

/*----------------------------------------------------------------*/

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static int superblock_lock_zero(struct dm_pool_metadata *pmd,
				struct dm_block **sblock)
{
	return dm_bm_write_lock_zero(pmd->bm, THIN_SUPERBLOCK_LOCATION,
				     &sb_validator, sblock);
}

static int superblock_lock(struct dm_pool_metadata *pmd,
			   struct dm_block **sblock)
{
	return dm_bm_write_lock(pmd->bm, THIN_SUPERBLOCK_LOCATION,
				&sb_validator, sblock);
}

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static int __superblock_all_zeroes(struct dm_block_manager *bm, int *result)
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{
	int r;
	unsigned i;
	struct dm_block *b;
	__le64 *data_le, zero = cpu_to_le64(0);
	unsigned block_size = dm_bm_block_size(bm) / sizeof(__le64);

	/*
	 * We can't use a validator here - it may be all zeroes.
	 */
	r = dm_bm_read_lock(bm, THIN_SUPERBLOCK_LOCATION, NULL, &b);
	if (r)
		return r;

	data_le = dm_block_data(b);
	*result = 1;
	for (i = 0; i < block_size; i++) {
		if (data_le[i] != zero) {
			*result = 0;
			break;
		}
	}

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	dm_bm_unlock(b);

	return 0;
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}

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static void __setup_btree_details(struct dm_pool_metadata *pmd)
{
	pmd->info.tm = pmd->tm;
	pmd->info.levels = 2;
	pmd->info.value_type.context = pmd->data_sm;
	pmd->info.value_type.size = sizeof(__le64);
	pmd->info.value_type.inc = data_block_inc;
	pmd->info.value_type.dec = data_block_dec;
	pmd->info.value_type.equal = data_block_equal;

	memcpy(&pmd->nb_info, &pmd->info, sizeof(pmd->nb_info));
	pmd->nb_info.tm = pmd->nb_tm;

	pmd->tl_info.tm = pmd->tm;
	pmd->tl_info.levels = 1;
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	pmd->tl_info.value_type.context = &pmd->bl_info;
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	pmd->tl_info.value_type.size = sizeof(__le64);
	pmd->tl_info.value_type.inc = subtree_inc;
	pmd->tl_info.value_type.dec = subtree_dec;
	pmd->tl_info.value_type.equal = subtree_equal;

	pmd->bl_info.tm = pmd->tm;
	pmd->bl_info.levels = 1;
	pmd->bl_info.value_type.context = pmd->data_sm;
	pmd->bl_info.value_type.size = sizeof(__le64);
	pmd->bl_info.value_type.inc = data_block_inc;
	pmd->bl_info.value_type.dec = data_block_dec;
	pmd->bl_info.value_type.equal = data_block_equal;

	pmd->details_info.tm = pmd->tm;
	pmd->details_info.levels = 1;
	pmd->details_info.value_type.context = NULL;
	pmd->details_info.value_type.size = sizeof(struct disk_device_details);
	pmd->details_info.value_type.inc = NULL;
	pmd->details_info.value_type.dec = NULL;
	pmd->details_info.value_type.equal = NULL;
}

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static int save_sm_roots(struct dm_pool_metadata *pmd)
{
	int r;
	size_t len;

	r = dm_sm_root_size(pmd->metadata_sm, &len);
	if (r < 0)
		return r;

	r = dm_sm_copy_root(pmd->metadata_sm, &pmd->metadata_space_map_root, len);
	if (r < 0)
		return r;

	r = dm_sm_root_size(pmd->data_sm, &len);
	if (r < 0)
		return r;

	return dm_sm_copy_root(pmd->data_sm, &pmd->data_space_map_root, len);
}

static void copy_sm_roots(struct dm_pool_metadata *pmd,
			  struct thin_disk_superblock *disk)
{
	memcpy(&disk->metadata_space_map_root,
	       &pmd->metadata_space_map_root,
	       sizeof(pmd->metadata_space_map_root));

	memcpy(&disk->data_space_map_root,
	       &pmd->data_space_map_root,
	       sizeof(pmd->data_space_map_root));
}

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static int __write_initial_superblock(struct dm_pool_metadata *pmd)
{
	int r;
	struct dm_block *sblock;
	struct thin_disk_superblock *disk_super;
	sector_t bdev_size = i_size_read(pmd->bdev->bd_inode) >> SECTOR_SHIFT;

	if (bdev_size > THIN_METADATA_MAX_SECTORS)
		bdev_size = THIN_METADATA_MAX_SECTORS;

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	r = dm_sm_commit(pmd->data_sm);
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	if (r < 0)
		return r;

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	r = dm_tm_pre_commit(pmd->tm);
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	if (r < 0)
		return r;

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	r = save_sm_roots(pmd);
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	if (r < 0)
		return r;

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	r = superblock_lock_zero(pmd, &sblock);
	if (r)
		return r;

	disk_super = dm_block_data(sblock);
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	disk_super->flags = 0;
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	memset(disk_super->uuid, 0, sizeof(disk_super->uuid));
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	disk_super->magic = cpu_to_le64(THIN_SUPERBLOCK_MAGIC);
	disk_super->version = cpu_to_le32(THIN_VERSION);
	disk_super->time = 0;
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	disk_super->trans_id = 0;
	disk_super->held_root = 0;

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	copy_sm_roots(pmd, disk_super);
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	disk_super->data_mapping_root = cpu_to_le64(pmd->root);
	disk_super->device_details_root = cpu_to_le64(pmd->details_root);
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	disk_super->metadata_block_size = cpu_to_le32(THIN_METADATA_BLOCK_SIZE);
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	disk_super->metadata_nr_blocks = cpu_to_le64(bdev_size >> SECTOR_TO_BLOCK_SHIFT);
	disk_super->data_block_size = cpu_to_le32(pmd->data_block_size);

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	return dm_tm_commit(pmd->tm, sblock);
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}

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static int __format_metadata(struct dm_pool_metadata *pmd)
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{
	int r;
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	r = dm_tm_create_with_sm(pmd->bm, THIN_SUPERBLOCK_LOCATION,
				 &pmd->tm, &pmd->metadata_sm);
	if (r < 0) {
		DMERR("tm_create_with_sm failed");
		return r;
	}
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	pmd->data_sm = dm_sm_disk_create(pmd->tm, 0);
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	if (IS_ERR(pmd->data_sm)) {
		DMERR("sm_disk_create failed");
		r = PTR_ERR(pmd->data_sm);
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		goto bad_cleanup_tm;
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	}

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	pmd->nb_tm = dm_tm_create_non_blocking_clone(pmd->tm);
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	if (!pmd->nb_tm) {
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		DMERR("could not create non-blocking clone tm");
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		r = -ENOMEM;
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		goto bad_cleanup_data_sm;
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	}

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	__setup_btree_details(pmd);
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	r = dm_btree_empty(&pmd->info, &pmd->root);
	if (r < 0)
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		goto bad_cleanup_nb_tm;
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	r = dm_btree_empty(&pmd->details_info, &pmd->details_root);
	if (r < 0) {
		DMERR("couldn't create devices root");
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		goto bad_cleanup_nb_tm;
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	}

	r = __write_initial_superblock(pmd);
	if (r)
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		goto bad_cleanup_nb_tm;
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	return 0;

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bad_cleanup_nb_tm:
	dm_tm_destroy(pmd->nb_tm);
bad_cleanup_data_sm:
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	dm_sm_destroy(pmd->data_sm);
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bad_cleanup_tm:
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	dm_tm_destroy(pmd->tm);
	dm_sm_destroy(pmd->metadata_sm);
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	return r;
}

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static int __check_incompat_features(struct thin_disk_superblock *disk_super,
				     struct dm_pool_metadata *pmd)
{
	uint32_t features;

	features = le32_to_cpu(disk_super->incompat_flags) & ~THIN_FEATURE_INCOMPAT_SUPP;
	if (features) {
		DMERR("could not access metadata due to unsupported optional features (%lx).",
		      (unsigned long)features);
		return -EINVAL;
	}

	/*
	 * Check for read-only metadata to skip the following RDWR checks.
	 */
	if (get_disk_ro(pmd->bdev->bd_disk))
		return 0;

	features = le32_to_cpu(disk_super->compat_ro_flags) & ~THIN_FEATURE_COMPAT_RO_SUPP;
	if (features) {
		DMERR("could not access metadata RDWR due to unsupported optional features (%lx).",
		      (unsigned long)features);
		return -EINVAL;
	}

	return 0;
}

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static int __open_metadata(struct dm_pool_metadata *pmd)
{
	int r;
	struct dm_block *sblock;
	struct thin_disk_superblock *disk_super;

	r = dm_bm_read_lock(pmd->bm, THIN_SUPERBLOCK_LOCATION,
			    &sb_validator, &sblock);
	if (r < 0) {
		DMERR("couldn't read superblock");
		return r;
	}

	disk_super = dm_block_data(sblock);
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	/* Verify the data block size hasn't changed */
	if (le32_to_cpu(disk_super->data_block_size) != pmd->data_block_size) {
		DMERR("changing the data block size (from %u to %llu) is not supported",
		      le32_to_cpu(disk_super->data_block_size),
		      (unsigned long long)pmd->data_block_size);
		r = -EINVAL;
		goto bad_unlock_sblock;
	}

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	r = __check_incompat_features(disk_super, pmd);
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	if (r < 0)
		goto bad_unlock_sblock;
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	r = dm_tm_open_with_sm(pmd->bm, THIN_SUPERBLOCK_LOCATION,
			       disk_super->metadata_space_map_root,
			       sizeof(disk_super->metadata_space_map_root),
			       &pmd->tm, &pmd->metadata_sm);
	if (r < 0) {
		DMERR("tm_open_with_sm failed");
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		goto bad_unlock_sblock;
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	}

	pmd->data_sm = dm_sm_disk_open(pmd->tm, disk_super->data_space_map_root,
				       sizeof(disk_super->data_space_map_root));
	if (IS_ERR(pmd->data_sm)) {
		DMERR("sm_disk_open failed");
		r = PTR_ERR(pmd->data_sm);
653
		goto bad_cleanup_tm;
654 655 656 657
	}

	pmd->nb_tm = dm_tm_create_non_blocking_clone(pmd->tm);
	if (!pmd->nb_tm) {
658
		DMERR("could not create non-blocking clone tm");
659
		r = -ENOMEM;
660
		goto bad_cleanup_data_sm;
661 662 663
	}

	__setup_btree_details(pmd);
664 665 666
	dm_bm_unlock(sblock);

	return 0;
667

668
bad_cleanup_data_sm:
669
	dm_sm_destroy(pmd->data_sm);
670
bad_cleanup_tm:
671 672
	dm_tm_destroy(pmd->tm);
	dm_sm_destroy(pmd->metadata_sm);
673 674
bad_unlock_sblock:
	dm_bm_unlock(sblock);
675 676 677 678

	return r;
}

679
static int __open_or_format_metadata(struct dm_pool_metadata *pmd, bool format_device)
680
{
681
	int r, unformatted;
682

683
	r = __superblock_all_zeroes(pmd->bm, &unformatted);
684 685 686
	if (r)
		return r;

687
	if (unformatted)
688 689 690
		return format_device ? __format_metadata(pmd) : -EPERM;

	return __open_metadata(pmd);
691 692
}

693
static int __create_persistent_data_objects(struct dm_pool_metadata *pmd, bool format_device)
694 695 696
{
	int r;

697
	pmd->bm = dm_block_manager_create(pmd->bdev, THIN_METADATA_BLOCK_SIZE << SECTOR_SHIFT,
698 699 700 701 702 703
					  THIN_MAX_CONCURRENT_LOCKS);
	if (IS_ERR(pmd->bm)) {
		DMERR("could not create block manager");
		return PTR_ERR(pmd->bm);
	}

704
	r = __open_or_format_metadata(pmd, format_device);
705 706 707 708 709 710
	if (r)
		dm_block_manager_destroy(pmd->bm);

	return r;
}

711 712 713 714 715 716 717 718 719
static void __destroy_persistent_data_objects(struct dm_pool_metadata *pmd)
{
	dm_sm_destroy(pmd->data_sm);
	dm_sm_destroy(pmd->metadata_sm);
	dm_tm_destroy(pmd->nb_tm);
	dm_tm_destroy(pmd->tm);
	dm_block_manager_destroy(pmd->bm);
}

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static int __begin_transaction(struct dm_pool_metadata *pmd)
{
	int r;
	struct thin_disk_superblock *disk_super;
	struct dm_block *sblock;

	/*
	 * We re-read the superblock every time.  Shouldn't need to do this
	 * really.
	 */
	r = dm_bm_read_lock(pmd->bm, THIN_SUPERBLOCK_LOCATION,
			    &sb_validator, &sblock);
	if (r)
		return r;

	disk_super = dm_block_data(sblock);
	pmd->time = le32_to_cpu(disk_super->time);
	pmd->root = le64_to_cpu(disk_super->data_mapping_root);
	pmd->details_root = le64_to_cpu(disk_super->device_details_root);
	pmd->trans_id = le64_to_cpu(disk_super->trans_id);
	pmd->flags = le32_to_cpu(disk_super->flags);
	pmd->data_block_size = le32_to_cpu(disk_super->data_block_size);

	dm_bm_unlock(sblock);
744
	return 0;
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}

static int __write_changed_details(struct dm_pool_metadata *pmd)
{
	int r;
	struct dm_thin_device *td, *tmp;
	struct disk_device_details details;
	uint64_t key;

	list_for_each_entry_safe(td, tmp, &pmd->thin_devices, list) {
		if (!td->changed)
			continue;

		key = td->id;

		details.mapped_blocks = cpu_to_le64(td->mapped_blocks);
		details.transaction_id = cpu_to_le64(td->transaction_id);
		details.creation_time = cpu_to_le32(td->creation_time);
		details.snapshotted_time = cpu_to_le32(td->snapshotted_time);
		__dm_bless_for_disk(&details);

		r = dm_btree_insert(&pmd->details_info, pmd->details_root,
				    &key, &details, &pmd->details_root);
		if (r)
			return r;

		if (td->open_count)
			td->changed = 0;
		else {
			list_del(&td->list);
			kfree(td);
		}
	}

	return 0;
}

static int __commit_transaction(struct dm_pool_metadata *pmd)
{
	int r;
	struct thin_disk_superblock *disk_super;
	struct dm_block *sblock;

	/*
	 * We need to know if the thin_disk_superblock exceeds a 512-byte sector.
	 */
	BUILD_BUG_ON(sizeof(struct thin_disk_superblock) > 512);

	r = __write_changed_details(pmd);
	if (r < 0)
795
		return r;
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	r = dm_sm_commit(pmd->data_sm);
	if (r < 0)
799
		return r;
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	r = dm_tm_pre_commit(pmd->tm);
	if (r < 0)
803
		return r;
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805 806 807 808
	r = save_sm_roots(pmd);
	if (r < 0)
		return r;

809
	r = superblock_lock(pmd, &sblock);
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	if (r)
811
		return r;
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	disk_super = dm_block_data(sblock);
	disk_super->time = cpu_to_le32(pmd->time);
	disk_super->data_mapping_root = cpu_to_le64(pmd->root);
	disk_super->device_details_root = cpu_to_le64(pmd->details_root);
	disk_super->trans_id = cpu_to_le64(pmd->trans_id);
	disk_super->flags = cpu_to_le32(pmd->flags);

820
	copy_sm_roots(pmd, disk_super);
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822
	return dm_tm_commit(pmd->tm, sblock);
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}

825 826 827 828 829 830 831 832 833 834 835 836 837 838 839 840
static void __set_metadata_reserve(struct dm_pool_metadata *pmd)
{
	int r;
	dm_block_t total;
	dm_block_t max_blocks = 4096; /* 16M */

	r = dm_sm_get_nr_blocks(pmd->metadata_sm, &total);
	if (r) {
		DMERR("could not get size of metadata device");
		pmd->metadata_reserve = max_blocks;
	} else {
		sector_div(total, 10);
		pmd->metadata_reserve = min(max_blocks, total);
	}
}

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struct dm_pool_metadata *dm_pool_metadata_open(struct block_device *bdev,
842 843
					       sector_t data_block_size,
					       bool format_device)
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{
	int r;
	struct dm_pool_metadata *pmd;

	pmd = kmalloc(sizeof(*pmd), GFP_KERNEL);
	if (!pmd) {
		DMERR("could not allocate metadata struct");
		return ERR_PTR(-ENOMEM);
	}

854 855 856
	init_rwsem(&pmd->root_lock);
	pmd->time = 0;
	INIT_LIST_HEAD(&pmd->thin_devices);
857
	pmd->fail_io = false;
858
	pmd->bdev = bdev;
859
	pmd->data_block_size = data_block_size;
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861
	r = __create_persistent_data_objects(pmd, format_device);
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	if (r) {
		kfree(pmd);
		return ERR_PTR(r);
	}

867 868 869 870 871
	r = __begin_transaction(pmd);
	if (r < 0) {
		if (dm_pool_metadata_close(pmd) < 0)
			DMWARN("%s: dm_pool_metadata_close() failed.", __func__);
		return ERR_PTR(r);
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	}

874 875
	__set_metadata_reserve(pmd);

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	return pmd;
}

int dm_pool_metadata_close(struct dm_pool_metadata *pmd)
{
	int r;
	unsigned open_devices = 0;
	struct dm_thin_device *td, *tmp;

	down_read(&pmd->root_lock);
	list_for_each_entry_safe(td, tmp, &pmd->thin_devices, list) {
		if (td->open_count)
			open_devices++;
		else {
			list_del(&td->list);
			kfree(td);
		}
	}
	up_read(&pmd->root_lock);

	if (open_devices) {
		DMERR("attempt to close pmd when %u device(s) are still open",
		       open_devices);
		return -EBUSY;
	}

902
	if (!dm_bm_is_read_only(pmd->bm) && !pmd->fail_io) {
903 904 905 906 907
		r = __commit_transaction(pmd);
		if (r < 0)
			DMWARN("%s: __commit_transaction() failed, error = %d",
			       __func__, r);
	}
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909 910
	if (!pmd->fail_io)
		__destroy_persistent_data_objects(pmd);
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912
	kfree(pmd);
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	return 0;
}

916 917 918 919 920
/*
 * __open_device: Returns @td corresponding to device with id @dev,
 * creating it if @create is set and incrementing @td->open_count.
 * On failure, @td is undefined.
 */
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static int __open_device(struct dm_pool_metadata *pmd,
			 dm_thin_id dev, int create,
			 struct dm_thin_device **td)
{
	int r, changed = 0;
	struct dm_thin_device *td2;
	uint64_t key = dev;
	struct disk_device_details details_le;

	/*
931
	 * If the device is already open, return it.
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	 */
	list_for_each_entry(td2, &pmd->thin_devices, list)
		if (td2->id == dev) {
935 936 937 938 939 940
			/*
			 * May not create an already-open device.
			 */
			if (create)
				return -EEXIST;

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			td2->open_count++;
			*td = td2;
			return 0;
		}

	/*
	 * Check the device exists.
	 */
	r = dm_btree_lookup(&pmd->details_info, pmd->details_root,
			    &key, &details_le);
	if (r) {
		if (r != -ENODATA || !create)
			return r;

955 956 957
		/*
		 * Create new device.
		 */
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		changed = 1;
		details_le.mapped_blocks = 0;
		details_le.transaction_id = cpu_to_le64(pmd->trans_id);
		details_le.creation_time = cpu_to_le32(pmd->time);
		details_le.snapshotted_time = cpu_to_le32(pmd->time);
	}

	*td = kmalloc(sizeof(**td), GFP_NOIO);
	if (!*td)
		return -ENOMEM;

	(*td)->pmd = pmd;
	(*td)->id = dev;
	(*td)->open_count = 1;
	(*td)->changed = changed;
973
	(*td)->aborted_with_changes = false;
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	(*td)->mapped_blocks = le64_to_cpu(details_le.mapped_blocks);
	(*td)->transaction_id = le64_to_cpu(details_le.transaction_id);
	(*td)->creation_time = le32_to_cpu(details_le.creation_time);
	(*td)->snapshotted_time = le32_to_cpu(details_le.snapshotted_time);

	list_add(&(*td)->list, &pmd->thin_devices);

	return 0;
}

static void __close_device(struct dm_thin_device *td)
{
	--td->open_count;
}

static int __create_thin(struct dm_pool_metadata *pmd,
			 dm_thin_id dev)
{
	int r;
	dm_block_t dev_root;
	uint64_t key = dev;
	struct disk_device_details details_le;
	struct dm_thin_device *td;
	__le64 value;

	r = dm_btree_lookup(&pmd->details_info, pmd->details_root,
			    &key, &details_le);
	if (!r)
		return -EEXIST;

	/*
	 * Create an empty btree for the mappings.
	 */
	r = dm_btree_empty(&pmd->bl_info, &dev_root);
	if (r)
		return r;

	/*
	 * Insert it into the main mapping tree.
	 */
	value = cpu_to_le64(dev_root);
	__dm_bless_for_disk(&value);
	r = dm_btree_insert(&pmd->tl_info, pmd->root, &key, &value, &pmd->root);
	if (r) {
		dm_btree_del(&pmd->bl_info, dev_root);
		return r;
	}

	r = __open_device(pmd, dev, 1, &td);
	if (r) {
		dm_btree_remove(&pmd->tl_info, pmd->root, &key, &pmd->root);
		dm_btree_del(&pmd->bl_info, dev_root);
		return r;
	}
	__close_device(td);

	return r;
}

int dm_pool_create_thin(struct dm_pool_metadata *pmd, dm_thin_id dev)
{
1035
	int r = -EINVAL;
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	down_write(&pmd->root_lock);
1038 1039
	if (!pmd->fail_io)
		r = __create_thin(pmd, dev);
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	up_write(&pmd->root_lock);

	return r;
}

static int __set_snapshot_details(struct dm_pool_metadata *pmd,
				  struct dm_thin_device *snap,
				  dm_thin_id origin, uint32_t time)
{
	int r;
	struct dm_thin_device *td;

	r = __open_device(pmd, origin, 0, &td);
	if (r)
		return r;

	td->changed = 1;
	td->snapshotted_time = time;

	snap->mapped_blocks = td->mapped_blocks;
	snap->snapshotted_time = time;
	__close_device(td);

	return 0;
}

static int __create_snap(struct dm_pool_metadata *pmd,
			 dm_thin_id dev, dm_thin_id origin)
{
	int r;
	dm_block_t origin_root;
	uint64_t key = origin, dev_key = dev;
	struct dm_thin_device *td;
	struct disk_device_details details_le;
	__le64 value;

	/* check this device is unused */
	r = dm_btree_lookup(&pmd->details_info, pmd->details_root,
			    &dev_key, &details_le);
	if (!r)
		return -EEXIST;

	/* find the mapping tree for the origin */
	r = dm_btree_lookup(&pmd->tl_info, pmd->root, &key, &value);
	if (r)
		return r;
	origin_root = le64_to_cpu(value);

	/* clone the origin, an inc will do */
	dm_tm_inc(pmd->tm, origin_root);

	/* insert into the main mapping tree */
	value = cpu_to_le64(origin_root);
	__dm_bless_for_disk(&value);
	key = dev;
	r = dm_btree_insert(&pmd->tl_info, pmd->root, &key, &value, &pmd->root);
	if (r) {
		dm_tm_dec(pmd->tm, origin_root);
		return r;
	}

	pmd->time++;

	r = __open_device(pmd, dev, 1, &td);
	if (r)
		goto bad;

	r = __set_snapshot_details(pmd, td, origin, pmd->time);
1108 1109
	__close_device(td);

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	if (r)
		goto bad;

	return 0;

bad:
	dm_btree_remove(&pmd->tl_info, pmd->root, &key, &pmd->root);
	dm_btree_remove(&pmd->details_info, pmd->details_root,
			&key, &pmd->details_root);
	return r;
}

int dm_pool_create_snap(struct dm_pool_metadata *pmd,
				 dm_thin_id dev,
				 dm_thin_id origin)
{
1126
	int r = -EINVAL;
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	down_write(&pmd->root_lock);
1129 1130
	if (!pmd->fail_io)
		r = __create_snap(pmd, dev, origin);
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	up_write(&pmd->root_lock);

	return r;
}

static int __delete_device(struct dm_pool_metadata *pmd, dm_thin_id dev)
{
	int r;
	uint64_t key = dev;
	struct dm_thin_device *td;

	/* TODO: failure should mark the transaction invalid */
	r = __open_device(pmd, dev, 0, &td);
	if (r)
		return r;

	if (td->open_count > 1) {
		__close_device(td);
		return -EBUSY;
	}

	list_del(&td->list);
	kfree(td);
	r = dm_btree_remove(&pmd->details_info, pmd->details_root,
			    &key, &pmd->details_root);
	if (r)
		return r;

	r = dm_btree_remove(&pmd->tl_info, pmd->root, &key, &pmd->root);
	if (r)
		return r;

	return 0;
}

int dm_pool_delete_thin_device(struct dm_pool_metadata *pmd,
			       dm_thin_id dev)
{
1169
	int r = -EINVAL;
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	down_write(&pmd->root_lock);
1172 1173
	if (!pmd->fail_io)
		r = __delete_device(pmd, dev);
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	up_write(&pmd->root_lock);

	return r;
}

int dm_pool_set_metadata_transaction_id(struct dm_pool_metadata *pmd,
					uint64_t current_id,
					uint64_t new_id)
{
1183 1184
	int r = -EINVAL;

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	down_write(&pmd->root_lock);
1186 1187 1188 1189

	if (pmd->fail_io)
		goto out;

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	if (pmd->trans_id != current_id) {
		DMERR("mismatched transaction id");
1192
		goto out;
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	}

	pmd->trans_id = new_id;
1196 1197 1198
	r = 0;

out:
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	up_write(&pmd->root_lock);

1201
	return r;
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}

int dm_pool_get_metadata_transaction_id(struct dm_pool_metadata *pmd,
					uint64_t *result)
{
1207 1208
	int r = -EINVAL;

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	down_read(&pmd->root_lock);
1210 1211 1212 1213
	if (!pmd->fail_io) {
		*result = pmd->trans_id;
		r = 0;
	}
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	up_read(&pmd->root_lock);

1216
	return r;
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}

1219 1220 1221 1222 1223 1224 1225
static int __reserve_metadata_snap(struct dm_pool_metadata *pmd)
{
	int r, inc;
	struct thin_disk_superblock *disk_super;
	struct dm_block *copy, *sblock;
	dm_block_t held_root;

1226 1227 1228 1229 1230 1231
	/*
	 * We commit to ensure the btree roots which we increment in a
	 * moment are up to date.
	 */
	__commit_transaction(pmd);

1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271
	/*
	 * Copy the superblock.
	 */
	dm_sm_inc_block(pmd->metadata_sm, THIN_SUPERBLOCK_LOCATION);
	r = dm_tm_shadow_block(pmd->tm, THIN_SUPERBLOCK_LOCATION,
			       &sb_validator, &copy, &inc);
	if (r)
		return r;

	BUG_ON(!inc);

	held_root = dm_block_location(copy);
	disk_super = dm_block_data(copy);

	if (le64_to_cpu(disk_super->held_root)) {
		DMWARN("Pool metadata snapshot already exists: release this before taking another.");

		dm_tm_dec(pmd->tm, held_root);
		dm_tm_unlock(pmd->tm, copy);
		return -EBUSY;
	}

	/*
	 * Wipe the spacemap since we're not publishing this.
	 */
	memset(&disk_super->data_space_map_root, 0,
	       sizeof(disk_super->data_space_map_root));
	memset(&disk_super->metadata_space_map_root, 0,
	       sizeof(disk_super->metadata_space_map_root));

	/*
	 * Increment the data structures that need to be preserved.
	 */
	dm_tm_inc(pmd->tm, le64_to_cpu(disk_super->data_mapping_root));
	dm_tm_inc(pmd->tm, le64_to_cpu(disk_super->device_details_root));
	dm_tm_unlock(pmd->tm, copy);

	/*
	 * Write the held root into the superblock.
	 */
1272
	r = superblock_lock(pmd, &sblock);
1273 1274 1275 1276 1277 1278 1279 1280 1281 1282 1283 1284 1285
	if (r) {
		dm_tm_dec(pmd->tm, held_root);
		return r;
	}

	disk_super = dm_block_data(sblock);
	disk_super->held_root = cpu_to_le64(held_root);
	dm_bm_unlock(sblock);
	return 0;
}

int dm_pool_reserve_metadata_snap(struct dm_pool_metadata *pmd)
{
1286
	int r = -EINVAL;
1287 1288

	down_write(&pmd->root_lock);
1289 1290
	if (!pmd->fail_io)
		r = __reserve_metadata_snap(pmd);
1291 1292 1293 1294 1295 1296
	up_write(&pmd->root_lock);

	return r;
}

static int __release_metadata_snap(struct dm_pool_metadata *pmd)
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{
	int r;
	struct thin_disk_superblock *disk_super;
1300 1301
	struct dm_block *sblock, *copy;
	dm_block_t held_root;
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1303
	r = superblock_lock(pmd, &sblock);
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	if (r)
		return r;

1307 1308 1309 1310 1311 1312 1313 1314 1315 1316 1317 1318 1319 1320 1321 1322
	disk_super = dm_block_data(sblock);
	held_root = le64_to_cpu(disk_super->held_root);
	disk_super->held_root = cpu_to_le64(0);

	dm_bm_unlock(sblock);

	if (!held_root) {
		DMWARN("No pool metadata snapshot found: nothing to release.");
		return -EINVAL;
	}

	r = dm_tm_read_lock(pmd->tm, held_root, &sb_validator, &copy);
	if (r)
		return r;

	disk_super = dm_block_data(copy);
1323 1324
	dm_btree_del(&pmd->info, le64_to_cpu(disk_super->data_mapping_root));
	dm_btree_del(&pmd->details_info, le64_to_cpu(disk_super->device_details_root));
1325 1326
	dm_sm_dec_block(pmd->metadata_sm, held_root);

1327 1328 1329
	dm_tm_unlock(pmd->tm, copy);

	return 0;
1330 1331 1332 1333
}

int dm_pool_release_metadata_snap(struct dm_pool_metadata *pmd)
{
1334
	int r = -EINVAL;
1335 1336

	down_write(&pmd->root_lock);
1337 1338
	if (!pmd->fail_io)
		r = __release_metadata_snap(pmd);
1339 1340 1341 1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355
	up_write(&pmd->root_lock);

	return r;
}

static int __get_metadata_snap(struct dm_pool_metadata *pmd,
			       dm_block_t *result)
{
	int r;
	struct thin_disk_superblock *disk_super;
	struct dm_block *sblock;

	r = dm_bm_read_lock(pmd->bm, THIN_SUPERBLOCK_LOCATION,
			    &sb_validator, &sblock);
	if (r)
		return r;

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	disk_super = dm_block_data(sblock);
	*result = le64_to_cpu(disk_super->held_root);

1359 1360 1361
	dm_bm_unlock(sblock);

	return 0;
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}

1364 1365
int dm_pool_get_metadata_snap(struct dm_pool_metadata *pmd,
			      dm_block_t *result)
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{
1367
	int r = -EINVAL;
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	down_read(&pmd->root_lock);
1370 1371
	if (!pmd->fail_io)
		r = __get_metadata_snap(pmd, result);
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	up_read(&pmd->root_lock);

	return r;
}

int dm_pool_open_thin_device(struct dm_pool_metadata *pmd, dm_thin_id dev,
			     struct dm_thin_device **td)
{
1380
	int r = -EINVAL;
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	down_write(&pmd->root_lock);
1383 1384
	if (!pmd->fail_io)
		r = __open_device(pmd, dev, 0, td);
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	up_write(&pmd->root_lock);

	return r;
}

int dm_pool_close_thin_device(struct dm_thin_device *td)
{
	down_write(&td->pmd->root_lock);
	__close_device(td);
	up_write(&td->pmd->root_lock);

	return 0;
}

dm_thin_id dm_thin_dev_id(struct dm_thin_device *td)
{
	return td->id;
}

1404 1405 1406 1407 1408 1409
/*
 * Check whether @time (of block creation) is older than @td's last snapshot.
 * If so then the associated block is shared with the last snapshot device.
 * Any block on a device created *after* the device last got snapshotted is
 * necessarily not shared.
 */
1410
static bool __snapshotted_since(struct dm_thin_device *td, uint32_t time)
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{
	return td->snapshotted_time > time;
}

1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427
static void unpack_lookup_result(struct dm_thin_device *td, __le64 value,
				 struct dm_thin_lookup_result *result)
{
	uint64_t block_time = 0;
	dm_block_t exception_block;
	uint32_t exception_time;

	block_time = le64_to_cpu(value);
	unpack_block_time(block_time, &exception_block, &exception_time);
	result->block = exception_block;
	result->shared = __snapshotted_since(td, exception_time);
}

1428 1429
static int __find_block(struct dm_thin_device *td, dm_block_t block,
			int can_issue_io, struct dm_thin_lookup_result *result)
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{
1431
	int r;
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	__le64 value;
	struct dm_pool_metadata *pmd = td->pmd;
	dm_block_t keys[2] = { td->id, block };
1435
	struct dm_btree_info *info;
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1437 1438 1439 1440
	if (can_issue_io) {
		info = &pmd->info;
	} else
		info = &pmd->nb_info;
1441

1442
	r = dm_btree_lookup(info, pmd->root, keys, &value);
1443 1444 1445 1446 1447 1448
	if (!r)
		unpack_lookup_result(td, value, result);

	return r;
}

1449 1450
int dm_thin_find_block(struct dm_thin_device *td, dm_block_t block,
		       int can_issue_io, struct dm_thin_lookup_result *result)
1451 1452 1453 1454 1455 1456 1457 1458
{
	int r;
	struct dm_pool_metadata *pmd = td->pmd;

	down_read(&pmd->root_lock);
	if (pmd->fail_io) {
		up_read(&pmd->root_lock);
		return -EINVAL;
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	}

1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473 1474 1475
	r = __find_block(td, block, can_issue_io, result);

	up_read(&pmd->root_lock);
	return r;
}

static int __find_next_mapped_block(struct dm_thin_device *td, dm_block_t block,
					  dm_block_t *vblock,
					  struct dm_thin_lookup_result *result)
{
	int r;
	__le64 value;
	struct dm_pool_metadata *pmd = td->pmd;
	dm_block_t keys[2] = { td->id, block };

1476 1477 1478 1479
	r = dm_btree_lookup_next(&pmd->info, pmd->root, keys, vblock, &value);
	if (!r)
		unpack_lookup_result(td, value, result);

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	return r;
}

1483 1484 1485 1486
static int __find_mapped_range(struct dm_thin_device *td,
			       dm_block_t begin, dm_block_t end,
			       dm_block_t *thin_begin, dm_block_t *thin_end,
			       dm_block_t *pool_begin, bool *maybe_shared)
1487 1488 1489 1490 1491 1492 1493 1494
{
	int r;
	dm_block_t pool_end;
	struct dm_thin_lookup_result lookup;

	if (end < begin)
		return -ENODATA;

1495
	r = __find_next_mapped_block(td, begin, &begin, &lookup);
1496 1497
	if (r)
		return r;
1498

1499
	if (begin >= end)
1500 1501 1502 1503 1504 1505 1506 1507 1508
		return -ENODATA;

	*thin_begin = begin;
	*pool_begin = lookup.block;
	*maybe_shared = lookup.shared;

	begin++;
	pool_end = *pool_begin + 1;
	while (begin != end) {
1509
		r = __find_block(td, begin, true, &lookup);
1510 1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526 1527 1528
		if (r) {
			if (r == -ENODATA)
				break;
			else
				return r;
		}

		if ((lookup.block != pool_end) ||
		    (lookup.shared != *maybe_shared))
			break;

		pool_end++;
		begin++;
	}

	*thin_end = begin;
	return 0;
}

1529 1530 1531 1532 1533 1534 1535 1536 1537 1538 1539 1540 1541 1542 1543 1544 1545 1546
int dm_thin_find_mapped_range(struct dm_thin_device *td,
			      dm_block_t begin, dm_block_t end,
			      dm_block_t *thin_begin, dm_block_t *thin_end,
			      dm_block_t *pool_begin, bool *maybe_shared)
{
	int r = -EINVAL;
	struct dm_pool_metadata *pmd = td->pmd;

	down_read(&pmd->root_lock);
	if (!pmd->fail_io) {
		r = __find_mapped_range(td, begin, end, thin_begin, thin_end,
					pool_begin, maybe_shared);
	}
	up_read(&pmd->root_lock);

	return r;
}

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static int __insert(struct dm_thin_device *td, dm_block_t block,
		    dm_block_t data_block)
{
	int r, inserted;
	__le64 value;
	struct dm_pool_metadata *pmd = td->pmd;
	dm_block_t keys[2] = { td->id, block };

	value = cpu_to_le64(pack_block_time(data_block, pmd->time));
	__dm_bless_for_disk(&value);

	r = dm_btree_insert_notify(&pmd->info, pmd->root, keys, &value,
				   &pmd->root, &inserted);
	if (r)
		return r;

1563 1564
	td->changed = 1;
	if (inserted)
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		td->mapped_blocks++;

	return 0;
}

int dm_thin_insert_block(struct dm_thin_device *td, dm_block_t block,
			 dm_block_t data_block)
{
1573
	int r = -EINVAL;
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	down_write(&td->pmd->root_lock);
1576 1577
	if (!td->pmd->fail_io)
		r = __insert(td, block, data_block);
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	up_write(&td->pmd->root_lock);

	return r;
}

static int __remove(struct dm_thin_device *td, dm_block_t block)
{
	int r;
	struct dm_pool_metadata *pmd = td->pmd;
	dm_block_t keys[2] = { td->id, block };

	r = dm_btree_remove(&pmd->info, pmd->root, keys, &pmd->root);
	if (r)
		return r;

1593 1594
	td->mapped_blocks--;
	td->changed = 1;
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	return 0;
}

1599 1600 1601
static int __remove_range(struct dm_thin_device *td, dm_block_t begin, dm_block_t end)
{
	int r;
1602
	unsigned count, total_count = 0;
1603 1604 1605 1606 1607 1608 1609 1610 1611 1612 1613 1614 1615 1616 1617 1618 1619 1620 1621 1622 1623 1624
	struct dm_pool_metadata *pmd = td->pmd;
	dm_block_t keys[1] = { td->id };
	__le64 value;
	dm_block_t mapping_root;

	/*
	 * Find the mapping tree
	 */
	r = dm_btree_lookup(&pmd->tl_info, pmd->root, keys, &value);
	if (r)
		return r;

	/*
	 * Remove from the mapping tree, taking care to inc the
	 * ref count so it doesn't get deleted.
	 */
	mapping_root = le64_to_cpu(value);
	dm_tm_inc(pmd->tm, mapping_root);
	r = dm_btree_remove(&pmd->tl_info, pmd->root, keys, &pmd->root);
	if (r)
		return r;

1625 1626 1627 1628 1629 1630 1631 1632 1633 1634 1635 1636 1637 1638 1639 1640 1641 1642 1643 1644 1645
	/*
	 * Remove leaves stops at the first unmapped entry, so we have to
	 * loop round finding mapped ranges.
	 */
	while (begin < end) {
		r = dm_btree_lookup_next(&pmd->bl_info, mapping_root, &begin, &begin, &value);
		if (r == -ENODATA)
			break;

		if (r)
			return r;

		if (begin >= end)
			break;

		r = dm_btree_remove_leaves(&pmd->bl_info, mapping_root, &begin, end, &mapping_root, &count);
		if (r)
			return r;

		total_count += count;
	}
1646

1647
	td->mapped_blocks -= total_count;
1648 1649 1650 1651 1652 1653 1654 1655 1656 1657
	td->changed = 1;

	/*
	 * Reinsert the mapping tree.
	 */
	value = cpu_to_le64(mapping_root);
	__dm_bless_for_disk(&value);
	return dm_btree_insert(&pmd->tl_info, pmd->root, keys, &value, &pmd->root);
}

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int dm_thin_remove_block(struct dm_thin_device *td, dm_block_t block)
{
1660
	int r = -EINVAL;
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	down_write(&td->pmd->root_lock);
1663 1664
	if (!td->pmd->fail_io)
		r = __remove(td, block);
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	up_write(&td->pmd->root_lock);
1666 1667 1668 1669

	return r;
}

1670 1671 1672 1673 1674 1675 1676 1677 1678 1679 1680 1681 1682
int dm_thin_remove_range(struct dm_thin_device *td,
			 dm_block_t begin, dm_block_t end)
{
	int r = -EINVAL;

	down_write(&td->pmd->root_lock);
	if (!td->pmd->fail_io)
		r = __remove_range(td, begin, end);
	up_write(&td->pmd->root_lock);

	return r;
}

1683 1684 1685 1686 1687 1688 1689 1690 1691 1692
int dm_pool_block_is_used(struct dm_pool_metadata *pmd, dm_block_t b, bool *result)
{
	int r;
	uint32_t ref_count;

	down_read(&pmd->root_lock);
	r = dm_sm_get_count(pmd->data_sm, b, &ref_count);
	if (!r)
		*result = (ref_count != 0);
	up_read(&pmd->root_lock);
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	return r;
}

1697 1698 1699 1700 1701 1702 1703 1704 1705 1706 1707 1708 1709 1710 1711 1712 1713 1714 1715 1716 1717 1718 1719 1720 1721 1722 1723 1724 1725 1726
int dm_pool_inc_data_range(struct dm_pool_metadata *pmd, dm_block_t b, dm_block_t e)
{
	int r = 0;

	down_write(&pmd->root_lock);
	for (; b != e; b++) {
		r = dm_sm_inc_block(pmd->data_sm, b);
		if (r)
			break;
	}
	up_write(&pmd->root_lock);

	return r;
}

int dm_pool_dec_data_range(struct dm_pool_metadata *pmd, dm_block_t b, dm_block_t e)
{
	int r = 0;

	down_write(&pmd->root_lock);
	for (; b != e; b++) {
		r = dm_sm_dec_block(pmd->data_sm, b);
		if (r)
			break;
	}
	up_write(&pmd->root_lock);

	return r;
}

1727 1728 1729 1730 1731 1732 1733 1734 1735 1736 1737
bool dm_thin_changed_this_transaction(struct dm_thin_device *td)
{
	int r;

	down_read(&td->pmd->root_lock);
	r = td->changed;
	up_read(&td->pmd->root_lock);

	return r;
}

1738 1739 1740 1741 1742 1743 1744 1745 1746 1747 1748 1749 1750 1751 1752 1753 1754
bool dm_pool_changed_this_transaction(struct dm_pool_metadata *pmd)
{
	bool r = false;
	struct dm_thin_device *td, *tmp;

	down_read(&pmd->root_lock);
	list_for_each_entry_safe(td, tmp, &pmd->thin_devices, list) {
		if (td->changed) {
			r = td->changed;
			break;
		}
	}
	up_read(&pmd->root_lock);

	return r;
}

1755 1756 1757 1758 1759 1760 1761 1762 1763 1764 1765
bool dm_thin_aborted_changes(struct dm_thin_device *td)
{
	bool r;

	down_read(&td->pmd->root_lock);
	r = td->aborted_with_changes;
	up_read(&td->pmd->root_lock);

	return r;
}

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int dm_pool_alloc_data_block(struct dm_pool_metadata *pmd, dm_block_t *result)
{
1768
	int r = -EINVAL;
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	down_write(&pmd->root_lock);
1771 1772
	if (!pmd->fail_io)
		r = dm_sm_new_block(pmd->data_sm, result);
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	up_write(&pmd->root_lock);

	return r;
}

int dm_pool_commit_metadata(struct dm_pool_metadata *pmd)
{
1780
	int r = -EINVAL;
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	down_write(&pmd->root_lock);
1783 1784
	if (pmd->fail_io)
		goto out;
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	r = __commit_transaction(pmd);
	if (r <= 0)
		goto out;

	/*
	 * Open the next transaction.
	 */
	r = __begin_transaction(pmd);
out:
	up_write(&pmd->root_lock);
	return r;
}

1799 1800 1801 1802 1803 1804 1805 1806 1807 1808 1809 1810 1811 1812 1813 1814 1815 1816 1817 1818 1819 1820 1821 1822 1823 1824 1825 1826
static void __set_abort_with_changes_flags(struct dm_pool_metadata *pmd)
{
	struct dm_thin_device *td;

	list_for_each_entry(td, &pmd->thin_devices, list)
		td->aborted_with_changes = td->changed;
}

int dm_pool_abort_metadata(struct dm_pool_metadata *pmd)
{
	int r = -EINVAL;

	down_write(&pmd->root_lock);
	if (pmd->fail_io)
		goto out;

	__set_abort_with_changes_flags(pmd);
	__destroy_persistent_data_objects(pmd);
	r = __create_persistent_data_objects(pmd, false);
	if (r)
		pmd->fail_io = true;

out:
	up_write(&pmd->root_lock);

	return r;
}

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int dm_pool_get_free_block_count(struct dm_pool_metadata *pmd, dm_block_t *result)
{
1829
	int r = -EINVAL;
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	down_read(&pmd->root_lock);
1832 1833
	if (!pmd->fail_io)
		r = dm_sm_get_nr_free(pmd->data_sm, result);
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	up_read(&pmd->root_lock);

	return r;
}

int dm_pool_get_free_metadata_block_count(struct dm_pool_metadata *pmd,
					  dm_block_t *result)
{
1842
	int r = -EINVAL;
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	down_read(&pmd->root_lock);
1845 1846
	if (!pmd->fail_io)
		r = dm_sm_get_nr_free(pmd->metadata_sm, result);
1847 1848 1849 1850 1851 1852 1853

	if (!r) {
		if (*result < pmd->metadata_reserve)
			*result = 0;
		else
			*result -= pmd->metadata_reserve;
	}
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	up_read(&pmd->root_lock);

	return r;
}

int dm_pool_get_metadata_dev_size(struct dm_pool_metadata *pmd,
				  dm_block_t *result)
{
1862
	int r = -EINVAL;
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	down_read(&pmd->root_lock);
1865 1866
	if (!pmd->fail_io)
		r = dm_sm_get_nr_blocks(pmd->metadata_sm, result);
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	up_read(&pmd->root_lock);

	return r;
}

int dm_pool_get_data_dev_size(struct dm_pool_metadata *pmd, dm_block_t *result)
{
1874
	int r = -EINVAL;
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	down_read(&pmd->root_lock);
1877 1878
	if (!pmd->fail_io)
		r = dm_sm_get_nr_blocks(pmd->data_sm, result);
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	up_read(&pmd->root_lock);

	return r;
}

int dm_thin_get_mapped_count(struct dm_thin_device *td, dm_block_t *result)
{
1886
	int r = -EINVAL;
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	struct dm_pool_metadata *pmd = td->pmd;

	down_read(&pmd->root_lock);
1890 1891 1892 1893
	if (!pmd->fail_io) {
		*result = td->mapped_blocks;
		r = 0;
	}
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	up_read(&pmd->root_lock);

1896
	return r;
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}

static int __highest_block(struct dm_thin_device *td, dm_block_t *result)
{
	int r;
	__le64 value_le;
	dm_block_t thin_root;
	struct dm_pool_metadata *pmd = td->pmd;

	r = dm_btree_lookup(&pmd->tl_info, pmd->root, &td->id, &value_le);
	if (r)
		return r;

	thin_root = le64_to_cpu(value_le);

	return dm_btree_find_highest_key(&pmd->bl_info, thin_root, result);
}

int dm_thin_get_highest_mapped_block(struct dm_thin_device *td,
				     dm_block_t *result)
{
1918
	int r = -EINVAL;
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	struct dm_pool_metadata *pmd = td->pmd;

	down_read(&pmd->root_lock);
1922 1923
	if (!pmd->fail_io)
		r = __highest_block(td, result);
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	up_read(&pmd->root_lock);

	return r;
}

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static int __resize_space_map(struct dm_space_map *sm, dm_block_t new_count)
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{
	int r;
	dm_block_t old_count;

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	r = dm_sm_get_nr_blocks(sm, &old_count);
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	if (r)
		return r;

	if (new_count == old_count)
		return 0;

	if (new_count < old_count) {
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		DMERR("cannot reduce size of space map");
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		return -EINVAL;
	}

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	return dm_sm_extend(sm, new_count - old_count);
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}

int dm_pool_resize_data_dev(struct dm_pool_metadata *pmd, dm_block_t new_count)
{
1951
	int r = -EINVAL;
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	down_write(&pmd->root_lock);
1954
	if (!pmd->fail_io)
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		r = __resize_space_map(pmd->data_sm, new_count);
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	up_write(&pmd->root_lock);

	return r;
}
1960

1961 1962 1963 1964 1965
int dm_pool_resize_metadata_dev(struct dm_pool_metadata *pmd, dm_block_t new_count)
{
	int r = -EINVAL;

	down_write(&pmd->root_lock);
1966
	if (!pmd->fail_io) {
1967
		r = __resize_space_map(pmd->metadata_sm, new_count);
1968 1969 1970
		if (!r)
			__set_metadata_reserve(pmd);
	}
1971 1972 1973 1974 1975
	up_write(&pmd->root_lock);

	return r;
}

1976 1977 1978 1979 1980 1981
void dm_pool_metadata_read_only(struct dm_pool_metadata *pmd)
{
	down_write(&pmd->root_lock);
	dm_bm_set_read_only(pmd->bm);
	up_write(&pmd->root_lock);
}
1982

1983 1984 1985 1986 1987 1988 1989
void dm_pool_metadata_read_write(struct dm_pool_metadata *pmd)
{
	down_write(&pmd->root_lock);
	dm_bm_set_read_write(pmd->bm);
	up_write(&pmd->root_lock);
}

1990 1991 1992 1993 1994 1995 1996 1997 1998 1999 2000 2001 2002
int dm_pool_register_metadata_threshold(struct dm_pool_metadata *pmd,
					dm_block_t threshold,
					dm_sm_threshold_fn fn,
					void *context)
{
	int r;

	down_write(&pmd->root_lock);
	r = dm_sm_register_threshold_callback(pmd->metadata_sm, threshold, fn, context);
	up_write(&pmd->root_lock);

	return r;
}
2003 2004 2005 2006 2007 2008 2009 2010 2011 2012 2013 2014 2015 2016 2017 2018 2019 2020 2021 2022 2023 2024 2025 2026 2027 2028 2029 2030 2031 2032 2033 2034 2035 2036 2037

int dm_pool_metadata_set_needs_check(struct dm_pool_metadata *pmd)
{
	int r;
	struct dm_block *sblock;
	struct thin_disk_superblock *disk_super;

	down_write(&pmd->root_lock);
	pmd->flags |= THIN_METADATA_NEEDS_CHECK_FLAG;

	r = superblock_lock(pmd, &sblock);
	if (r) {
		DMERR("couldn't read superblock");
		goto out;
	}

	disk_super = dm_block_data(sblock);
	disk_super->flags = cpu_to_le32(pmd->flags);

	dm_bm_unlock(sblock);
out:
	up_write(&pmd->root_lock);
	return r;
}

bool dm_pool_metadata_needs_check(struct dm_pool_metadata *pmd)
{
	bool needs_check;

	down_read(&pmd->root_lock);
	needs_check = pmd->flags & THIN_METADATA_NEEDS_CHECK_FLAG;
	up_read(&pmd->root_lock);

	return needs_check;
}
2038 2039 2040

void dm_pool_issue_prefetches(struct dm_pool_metadata *pmd)
{
2041 2042 2043 2044
	down_read(&pmd->root_lock);
	if (!pmd->fail_io)
		dm_tm_issue_prefetches(pmd->tm);
	up_read(&pmd->root_lock);
2045
}