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https://github.com/hardkernel/linux.git
synced 2026-06-06 02:50:49 +09:00
xfs: replace xfs_btree_has_record with a general keyspace scanner
The current implementation of xfs_btree_has_record returns true if it finds /any/ record within the given range. Unfortunately, that's not sufficient for scrub. We want to be able to tell if a range of keyspace for a btree is devoid of records, is totally mapped to records, or is somewhere in between. By forcing this to be a boolean, we conflated sparseness and fullness, which caused scrub to return incorrect results. Fix the API so that we can tell the caller which of those three is the current state. Signed-off-by: Darrick J. Wong <djwong@kernel.org> Reviewed-by: Dave Chinner <dchinner@redhat.com>
This commit is contained in:
@@ -3745,13 +3745,16 @@ xfs_alloc_query_all(
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return xfs_btree_query_all(cur, xfs_alloc_query_range_helper, &query);
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}
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/* Is there a record covering a given extent? */
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/*
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* Scan part of the keyspace of the free space and tell us if the area has no
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* records, is fully mapped by records, or is partially filled.
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*/
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int
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xfs_alloc_has_record(
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xfs_alloc_has_records(
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struct xfs_btree_cur *cur,
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xfs_agblock_t bno,
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xfs_extlen_t len,
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bool *exists)
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enum xbtree_recpacking *outcome)
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{
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union xfs_btree_irec low;
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union xfs_btree_irec high;
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@@ -3761,7 +3764,7 @@ xfs_alloc_has_record(
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memset(&high, 0xFF, sizeof(high));
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high.a.ar_startblock = bno + len - 1;
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return xfs_btree_has_record(cur, &low, &high, exists);
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return xfs_btree_has_records(cur, &low, &high, outcome);
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}
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/*
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@@ -213,8 +213,8 @@ int xfs_alloc_query_range(struct xfs_btree_cur *cur,
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int xfs_alloc_query_all(struct xfs_btree_cur *cur, xfs_alloc_query_range_fn fn,
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void *priv);
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int xfs_alloc_has_record(struct xfs_btree_cur *cur, xfs_agblock_t bno,
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xfs_extlen_t len, bool *exist);
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int xfs_alloc_has_records(struct xfs_btree_cur *cur, xfs_agblock_t bno,
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xfs_extlen_t len, enum xbtree_recpacking *outcome);
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typedef int (*xfs_agfl_walk_fn)(struct xfs_mount *mp, xfs_agblock_t bno,
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void *priv);
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@@ -423,6 +423,16 @@ xfs_cntbt_recs_inorder(
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be32_to_cpu(r2->alloc.ar_startblock));
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}
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STATIC enum xbtree_key_contig
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xfs_allocbt_keys_contiguous(
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struct xfs_btree_cur *cur,
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const union xfs_btree_key *key1,
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const union xfs_btree_key *key2)
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{
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return xbtree_key_contig(be32_to_cpu(key1->alloc.ar_startblock),
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be32_to_cpu(key2->alloc.ar_startblock));
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}
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static const struct xfs_btree_ops xfs_bnobt_ops = {
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.rec_len = sizeof(xfs_alloc_rec_t),
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.key_len = sizeof(xfs_alloc_key_t),
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@@ -443,6 +453,7 @@ static const struct xfs_btree_ops xfs_bnobt_ops = {
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.diff_two_keys = xfs_bnobt_diff_two_keys,
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.keys_inorder = xfs_bnobt_keys_inorder,
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.recs_inorder = xfs_bnobt_recs_inorder,
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.keys_contiguous = xfs_allocbt_keys_contiguous,
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};
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static const struct xfs_btree_ops xfs_cntbt_ops = {
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@@ -465,6 +476,7 @@ static const struct xfs_btree_ops xfs_cntbt_ops = {
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.diff_two_keys = xfs_cntbt_diff_two_keys,
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.keys_inorder = xfs_cntbt_keys_inorder,
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.recs_inorder = xfs_cntbt_recs_inorder,
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.keys_contiguous = NULL, /* not needed right now */
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};
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/* Allocate most of a new allocation btree cursor. */
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@@ -500,6 +500,16 @@ xfs_bmbt_recs_inorder(
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xfs_bmbt_disk_get_startoff(&r2->bmbt);
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}
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STATIC enum xbtree_key_contig
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xfs_bmbt_keys_contiguous(
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struct xfs_btree_cur *cur,
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const union xfs_btree_key *key1,
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const union xfs_btree_key *key2)
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{
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return xbtree_key_contig(be64_to_cpu(key1->bmbt.br_startoff),
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be64_to_cpu(key2->bmbt.br_startoff));
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}
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static const struct xfs_btree_ops xfs_bmbt_ops = {
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.rec_len = sizeof(xfs_bmbt_rec_t),
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.key_len = sizeof(xfs_bmbt_key_t),
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@@ -520,6 +530,7 @@ static const struct xfs_btree_ops xfs_bmbt_ops = {
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.buf_ops = &xfs_bmbt_buf_ops,
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.keys_inorder = xfs_bmbt_keys_inorder,
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.recs_inorder = xfs_bmbt_recs_inorder,
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.keys_contiguous = xfs_bmbt_keys_contiguous,
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};
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/*
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@@ -5025,34 +5025,116 @@ xfs_btree_diff_two_ptrs(
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return (int64_t)be32_to_cpu(a->s) - be32_to_cpu(b->s);
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}
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/* If there's an extent, we're done. */
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struct xfs_btree_has_records {
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/* Keys for the start and end of the range we want to know about. */
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union xfs_btree_key start_key;
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union xfs_btree_key end_key;
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/* Highest record key we've seen so far. */
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union xfs_btree_key high_key;
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enum xbtree_recpacking outcome;
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};
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STATIC int
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xfs_btree_has_record_helper(
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xfs_btree_has_records_helper(
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struct xfs_btree_cur *cur,
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const union xfs_btree_rec *rec,
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void *priv)
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{
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return -ECANCELED;
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union xfs_btree_key rec_key;
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union xfs_btree_key rec_high_key;
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struct xfs_btree_has_records *info = priv;
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enum xbtree_key_contig key_contig;
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cur->bc_ops->init_key_from_rec(&rec_key, rec);
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if (info->outcome == XBTREE_RECPACKING_EMPTY) {
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info->outcome = XBTREE_RECPACKING_SPARSE;
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/*
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* If the first record we find does not overlap the start key,
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* then there is a hole at the start of the search range.
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* Classify this as sparse and stop immediately.
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*/
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if (xfs_btree_keycmp_lt(cur, &info->start_key, &rec_key))
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return -ECANCELED;
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} else {
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/*
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* If a subsequent record does not overlap with the any record
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* we've seen so far, there is a hole in the middle of the
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* search range. Classify this as sparse and stop.
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* If the keys overlap and this btree does not allow overlap,
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* signal corruption.
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*/
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key_contig = cur->bc_ops->keys_contiguous(cur, &info->high_key,
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&rec_key);
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if (key_contig == XBTREE_KEY_OVERLAP &&
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!(cur->bc_flags & XFS_BTREE_OVERLAPPING))
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return -EFSCORRUPTED;
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if (key_contig == XBTREE_KEY_GAP)
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return -ECANCELED;
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}
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/*
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* If high_key(rec) is larger than any other high key we've seen,
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* remember it for later.
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*/
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cur->bc_ops->init_high_key_from_rec(&rec_high_key, rec);
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if (xfs_btree_keycmp_gt(cur, &rec_high_key, &info->high_key))
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info->high_key = rec_high_key; /* struct copy */
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return 0;
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}
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/* Is there a record covering a given range of keys? */
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/*
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* Scan part of the keyspace of a btree and tell us if that keyspace does not
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* map to any records; is fully mapped to records; or is partially mapped to
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* records. This is the btree record equivalent to determining if a file is
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* sparse.
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*/
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int
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xfs_btree_has_record(
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xfs_btree_has_records(
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struct xfs_btree_cur *cur,
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const union xfs_btree_irec *low,
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const union xfs_btree_irec *high,
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bool *exists)
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enum xbtree_recpacking *outcome)
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{
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struct xfs_btree_has_records info = {
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.outcome = XBTREE_RECPACKING_EMPTY,
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};
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int error;
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error = xfs_btree_query_range(cur, low, high,
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&xfs_btree_has_record_helper, NULL);
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if (error == -ECANCELED) {
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*exists = true;
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return 0;
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/* Not all btrees support this operation. */
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if (!cur->bc_ops->keys_contiguous) {
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ASSERT(0);
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return -EOPNOTSUPP;
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}
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*exists = false;
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return error;
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xfs_btree_key_from_irec(cur, &info.start_key, low);
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xfs_btree_key_from_irec(cur, &info.end_key, high);
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error = xfs_btree_query_range(cur, low, high,
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xfs_btree_has_records_helper, &info);
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if (error == -ECANCELED)
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goto out;
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if (error)
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return error;
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if (info.outcome == XBTREE_RECPACKING_EMPTY)
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goto out;
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/*
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* If the largest high_key(rec) we saw during the walk is greater than
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* the end of the search range, classify this as full. Otherwise,
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* there is a hole at the end of the search range.
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*/
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if (xfs_btree_keycmp_ge(cur, &info.high_key, &info.end_key))
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info.outcome = XBTREE_RECPACKING_FULL;
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out:
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*outcome = info.outcome;
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return 0;
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}
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/* Are there more records in this btree? */
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@@ -90,6 +90,27 @@ uint32_t xfs_btree_magic(int crc, xfs_btnum_t btnum);
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#define XFS_BTREE_STATS_ADD(cur, stat, val) \
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XFS_STATS_ADD_OFF((cur)->bc_mp, (cur)->bc_statoff + __XBTS_ ## stat, val)
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enum xbtree_key_contig {
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XBTREE_KEY_GAP = 0,
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XBTREE_KEY_CONTIGUOUS,
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XBTREE_KEY_OVERLAP,
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};
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/*
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* Decide if these two numeric btree key fields are contiguous, overlapping,
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* or if there's a gap between them. @x should be the field from the high
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* key and @y should be the field from the low key.
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*/
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static inline enum xbtree_key_contig xbtree_key_contig(uint64_t x, uint64_t y)
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{
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x++;
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if (x < y)
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return XBTREE_KEY_GAP;
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if (x == y)
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return XBTREE_KEY_CONTIGUOUS;
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return XBTREE_KEY_OVERLAP;
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}
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struct xfs_btree_ops {
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/* size of the key and record structures */
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size_t key_len;
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@@ -157,6 +178,19 @@ struct xfs_btree_ops {
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int (*recs_inorder)(struct xfs_btree_cur *cur,
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const union xfs_btree_rec *r1,
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const union xfs_btree_rec *r2);
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/*
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* Are these two btree keys immediately adjacent?
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*
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* Given two btree keys @key1 and @key2, decide if it is impossible for
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* there to be a third btree key K satisfying the relationship
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* @key1 < K < @key2. To determine if two btree records are
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* immediately adjacent, @key1 should be the high key of the first
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* record and @key2 should be the low key of the second record.
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*/
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enum xbtree_key_contig (*keys_contiguous)(struct xfs_btree_cur *cur,
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const union xfs_btree_key *key1,
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const union xfs_btree_key *key2);
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};
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/*
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@@ -540,9 +574,15 @@ void xfs_btree_get_keys(struct xfs_btree_cur *cur,
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struct xfs_btree_block *block, union xfs_btree_key *key);
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union xfs_btree_key *xfs_btree_high_key_from_key(struct xfs_btree_cur *cur,
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union xfs_btree_key *key);
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int xfs_btree_has_record(struct xfs_btree_cur *cur,
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typedef bool (*xfs_btree_key_gap_fn)(struct xfs_btree_cur *cur,
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const union xfs_btree_key *key1,
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const union xfs_btree_key *key2);
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int xfs_btree_has_records(struct xfs_btree_cur *cur,
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const union xfs_btree_irec *low,
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const union xfs_btree_irec *high, bool *exists);
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const union xfs_btree_irec *high,
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enum xbtree_recpacking *outcome);
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bool xfs_btree_has_more_records(struct xfs_btree_cur *cur);
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struct xfs_ifork *xfs_btree_ifork_ptr(struct xfs_btree_cur *cur);
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@@ -383,6 +383,16 @@ xfs_inobt_recs_inorder(
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be32_to_cpu(r2->inobt.ir_startino);
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}
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STATIC enum xbtree_key_contig
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xfs_inobt_keys_contiguous(
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struct xfs_btree_cur *cur,
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const union xfs_btree_key *key1,
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const union xfs_btree_key *key2)
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{
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return xbtree_key_contig(be32_to_cpu(key1->inobt.ir_startino),
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be32_to_cpu(key2->inobt.ir_startino));
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}
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static const struct xfs_btree_ops xfs_inobt_ops = {
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.rec_len = sizeof(xfs_inobt_rec_t),
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.key_len = sizeof(xfs_inobt_key_t),
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@@ -402,6 +412,7 @@ static const struct xfs_btree_ops xfs_inobt_ops = {
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.diff_two_keys = xfs_inobt_diff_two_keys,
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.keys_inorder = xfs_inobt_keys_inorder,
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.recs_inorder = xfs_inobt_recs_inorder,
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.keys_contiguous = xfs_inobt_keys_contiguous,
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};
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static const struct xfs_btree_ops xfs_finobt_ops = {
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@@ -423,6 +434,7 @@ static const struct xfs_btree_ops xfs_finobt_ops = {
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.diff_two_keys = xfs_inobt_diff_two_keys,
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.keys_inorder = xfs_inobt_keys_inorder,
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.recs_inorder = xfs_inobt_recs_inorder,
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.keys_contiguous = xfs_inobt_keys_contiguous,
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};
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/*
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@@ -1998,14 +1998,17 @@ out_free:
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return error;
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}
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/* Is there a record covering a given extent? */
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/*
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* Scan part of the keyspace of the refcount records and tell us if the area
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* has no records, is fully mapped by records, or is partially filled.
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*/
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int
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xfs_refcount_has_record(
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xfs_refcount_has_records(
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struct xfs_btree_cur *cur,
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enum xfs_refc_domain domain,
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xfs_agblock_t bno,
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xfs_extlen_t len,
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bool *exists)
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enum xbtree_recpacking *outcome)
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{
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union xfs_btree_irec low;
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union xfs_btree_irec high;
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@@ -2016,7 +2019,7 @@ xfs_refcount_has_record(
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high.rc.rc_startblock = bno + len - 1;
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low.rc.rc_domain = high.rc.rc_domain = domain;
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return xfs_btree_has_record(cur, &low, &high, exists);
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return xfs_btree_has_records(cur, &low, &high, outcome);
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}
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int __init
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@@ -111,9 +111,9 @@ extern int xfs_refcount_recover_cow_leftovers(struct xfs_mount *mp,
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*/
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#define XFS_REFCOUNT_ITEM_OVERHEAD 32
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extern int xfs_refcount_has_record(struct xfs_btree_cur *cur,
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extern int xfs_refcount_has_records(struct xfs_btree_cur *cur,
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enum xfs_refc_domain domain, xfs_agblock_t bno,
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xfs_extlen_t len, bool *exists);
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xfs_extlen_t len, enum xbtree_recpacking *outcome);
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union xfs_btree_rec;
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extern void xfs_refcount_btrec_to_irec(const union xfs_btree_rec *rec,
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struct xfs_refcount_irec *irec);
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@@ -300,6 +300,16 @@ xfs_refcountbt_recs_inorder(
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be32_to_cpu(r2->refc.rc_startblock);
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}
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STATIC enum xbtree_key_contig
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xfs_refcountbt_keys_contiguous(
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struct xfs_btree_cur *cur,
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const union xfs_btree_key *key1,
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const union xfs_btree_key *key2)
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{
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return xbtree_key_contig(be32_to_cpu(key1->refc.rc_startblock),
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be32_to_cpu(key2->refc.rc_startblock));
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}
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static const struct xfs_btree_ops xfs_refcountbt_ops = {
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.rec_len = sizeof(struct xfs_refcount_rec),
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.key_len = sizeof(struct xfs_refcount_key),
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@@ -319,6 +329,7 @@ static const struct xfs_btree_ops xfs_refcountbt_ops = {
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.diff_two_keys = xfs_refcountbt_diff_two_keys,
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.keys_inorder = xfs_refcountbt_keys_inorder,
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.recs_inorder = xfs_refcountbt_recs_inorder,
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.keys_contiguous = xfs_refcountbt_keys_contiguous,
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};
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/*
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@@ -2709,13 +2709,17 @@ xfs_rmap_compare(
|
||||
return 0;
|
||||
}
|
||||
|
||||
/* Is there a record covering a given extent? */
|
||||
/*
|
||||
* Scan the physical storage part of the keyspace of the reverse mapping index
|
||||
* and tell us if the area has no records, is fully mapped by records, or is
|
||||
* partially filled.
|
||||
*/
|
||||
int
|
||||
xfs_rmap_has_record(
|
||||
xfs_rmap_has_records(
|
||||
struct xfs_btree_cur *cur,
|
||||
xfs_agblock_t bno,
|
||||
xfs_extlen_t len,
|
||||
bool *exists)
|
||||
enum xbtree_recpacking *outcome)
|
||||
{
|
||||
union xfs_btree_irec low;
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||||
union xfs_btree_irec high;
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||||
@@ -2725,7 +2729,7 @@ xfs_rmap_has_record(
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||||
memset(&high, 0xFF, sizeof(high));
|
||||
high.r.rm_startblock = bno + len - 1;
|
||||
|
||||
return xfs_btree_has_record(cur, &low, &high, exists);
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||||
return xfs_btree_has_records(cur, &low, &high, outcome);
|
||||
}
|
||||
|
||||
/*
|
||||
|
||||
@@ -198,8 +198,8 @@ xfs_failaddr_t xfs_rmap_btrec_to_irec(const union xfs_btree_rec *rec,
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||||
xfs_failaddr_t xfs_rmap_check_irec(struct xfs_btree_cur *cur,
|
||||
const struct xfs_rmap_irec *irec);
|
||||
|
||||
int xfs_rmap_has_record(struct xfs_btree_cur *cur, xfs_agblock_t bno,
|
||||
xfs_extlen_t len, bool *exists);
|
||||
int xfs_rmap_has_records(struct xfs_btree_cur *cur, xfs_agblock_t bno,
|
||||
xfs_extlen_t len, enum xbtree_recpacking *outcome);
|
||||
int xfs_rmap_record_exists(struct xfs_btree_cur *cur, xfs_agblock_t bno,
|
||||
xfs_extlen_t len, const struct xfs_owner_info *oinfo,
|
||||
bool *has_rmap);
|
||||
|
||||
@@ -444,6 +444,21 @@ xfs_rmapbt_recs_inorder(
|
||||
return 0;
|
||||
}
|
||||
|
||||
STATIC enum xbtree_key_contig
|
||||
xfs_rmapbt_keys_contiguous(
|
||||
struct xfs_btree_cur *cur,
|
||||
const union xfs_btree_key *key1,
|
||||
const union xfs_btree_key *key2)
|
||||
{
|
||||
/*
|
||||
* We only support checking contiguity of the physical space component.
|
||||
* If any callers ever need more specificity than that, they'll have to
|
||||
* implement it here.
|
||||
*/
|
||||
return xbtree_key_contig(be32_to_cpu(key1->rmap.rm_startblock),
|
||||
be32_to_cpu(key2->rmap.rm_startblock));
|
||||
}
|
||||
|
||||
static const struct xfs_btree_ops xfs_rmapbt_ops = {
|
||||
.rec_len = sizeof(struct xfs_rmap_rec),
|
||||
.key_len = 2 * sizeof(struct xfs_rmap_key),
|
||||
@@ -463,6 +478,7 @@ static const struct xfs_btree_ops xfs_rmapbt_ops = {
|
||||
.diff_two_keys = xfs_rmapbt_diff_two_keys,
|
||||
.keys_inorder = xfs_rmapbt_keys_inorder,
|
||||
.recs_inorder = xfs_rmapbt_recs_inorder,
|
||||
.keys_contiguous = xfs_rmapbt_keys_contiguous,
|
||||
};
|
||||
|
||||
static struct xfs_btree_cur *
|
||||
|
||||
@@ -204,6 +204,18 @@ enum xfs_ag_resv_type {
|
||||
XFS_AG_RESV_RMAPBT,
|
||||
};
|
||||
|
||||
/* Results of scanning a btree keyspace to check occupancy. */
|
||||
enum xbtree_recpacking {
|
||||
/* None of the keyspace maps to records. */
|
||||
XBTREE_RECPACKING_EMPTY = 0,
|
||||
|
||||
/* Some, but not all, of the keyspace maps to records. */
|
||||
XBTREE_RECPACKING_SPARSE,
|
||||
|
||||
/* The entire keyspace maps to records. */
|
||||
XBTREE_RECPACKING_FULL,
|
||||
};
|
||||
|
||||
/*
|
||||
* Type verifier functions
|
||||
*/
|
||||
|
||||
@@ -144,15 +144,15 @@ xchk_xref_is_used_space(
|
||||
xfs_agblock_t agbno,
|
||||
xfs_extlen_t len)
|
||||
{
|
||||
bool is_freesp;
|
||||
enum xbtree_recpacking outcome;
|
||||
int error;
|
||||
|
||||
if (!sc->sa.bno_cur || xchk_skip_xref(sc->sm))
|
||||
return;
|
||||
|
||||
error = xfs_alloc_has_record(sc->sa.bno_cur, agbno, len, &is_freesp);
|
||||
error = xfs_alloc_has_records(sc->sa.bno_cur, agbno, len, &outcome);
|
||||
if (!xchk_should_check_xref(sc, &error, &sc->sa.bno_cur))
|
||||
return;
|
||||
if (is_freesp)
|
||||
if (outcome != XBTREE_RECPACKING_EMPTY)
|
||||
xchk_btree_xref_set_corrupt(sc, sc->sa.bno_cur, 0);
|
||||
}
|
||||
|
||||
@@ -457,16 +457,16 @@ xchk_xref_is_not_shared(
|
||||
xfs_agblock_t agbno,
|
||||
xfs_extlen_t len)
|
||||
{
|
||||
bool shared;
|
||||
enum xbtree_recpacking outcome;
|
||||
int error;
|
||||
|
||||
if (!sc->sa.refc_cur || xchk_skip_xref(sc->sm))
|
||||
return;
|
||||
|
||||
error = xfs_refcount_has_record(sc->sa.refc_cur, XFS_REFC_DOMAIN_SHARED,
|
||||
agbno, len, &shared);
|
||||
error = xfs_refcount_has_records(sc->sa.refc_cur,
|
||||
XFS_REFC_DOMAIN_SHARED, agbno, len, &outcome);
|
||||
if (!xchk_should_check_xref(sc, &error, &sc->sa.refc_cur))
|
||||
return;
|
||||
if (shared)
|
||||
if (outcome != XBTREE_RECPACKING_EMPTY)
|
||||
xchk_btree_xref_set_corrupt(sc, sc->sa.refc_cur, 0);
|
||||
}
|
||||
|
||||
@@ -219,15 +219,15 @@ xchk_xref_has_no_owner(
|
||||
xfs_agblock_t bno,
|
||||
xfs_extlen_t len)
|
||||
{
|
||||
bool has_rmap;
|
||||
enum xbtree_recpacking outcome;
|
||||
int error;
|
||||
|
||||
if (!sc->sa.rmap_cur || xchk_skip_xref(sc->sm))
|
||||
return;
|
||||
|
||||
error = xfs_rmap_has_record(sc->sa.rmap_cur, bno, len, &has_rmap);
|
||||
error = xfs_rmap_has_records(sc->sa.rmap_cur, bno, len, &outcome);
|
||||
if (!xchk_should_check_xref(sc, &error, &sc->sa.rmap_cur))
|
||||
return;
|
||||
if (has_rmap)
|
||||
if (outcome != XBTREE_RECPACKING_EMPTY)
|
||||
xchk_btree_xref_set_corrupt(sc, sc->sa.rmap_cur, 0);
|
||||
}
|
||||
|
||||
Reference in New Issue
Block a user