mirror of
https://github.com/koverstreet/bcachefs-tools.git
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587 lines
14 KiB
C
587 lines
14 KiB
C
/* SPDX-License-Identifier: GPL-2.0 */
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#ifndef _BCACHEFS_BTREE_TYPES_H
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#define _BCACHEFS_BTREE_TYPES_H
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#include <linux/list.h>
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#include <linux/rhashtable.h>
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#include <linux/six.h>
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#include "bkey_methods.h"
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#include "buckets_types.h"
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#include "journal_types.h"
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struct open_bucket;
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struct btree_update;
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struct btree_trans;
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#define MAX_BSETS 3U
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struct btree_nr_keys {
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/*
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* Amount of live metadata (i.e. size of node after a compaction) in
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* units of u64s
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*/
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u16 live_u64s;
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u16 bset_u64s[MAX_BSETS];
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/* live keys only: */
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u16 packed_keys;
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u16 unpacked_keys;
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};
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struct bset_tree {
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/*
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* We construct a binary tree in an array as if the array
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* started at 1, so that things line up on the same cachelines
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* better: see comments in bset.c at cacheline_to_bkey() for
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* details
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*/
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/* size of the binary tree and prev array */
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u16 size;
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/* function of size - precalculated for to_inorder() */
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u16 extra;
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u16 data_offset;
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u16 aux_data_offset;
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u16 end_offset;
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struct bpos max_key;
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};
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struct btree_write {
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struct journal_entry_pin journal;
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};
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struct btree_alloc {
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struct open_buckets ob;
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BKEY_PADDED(k);
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};
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struct btree {
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/* Hottest entries first */
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struct rhash_head hash;
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u64 hash_val;
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struct six_lock lock;
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unsigned long flags;
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u16 written;
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u8 level;
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u8 btree_id;
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u8 nsets;
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u8 nr_key_bits;
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struct bkey_format format;
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struct btree_node *data;
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void *aux_data;
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/*
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* Sets of sorted keys - the real btree node - plus a binary search tree
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*
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* set[0] is special; set[0]->tree, set[0]->prev and set[0]->data point
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* to the memory we have allocated for this btree node. Additionally,
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* set[0]->data points to the entire btree node as it exists on disk.
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*/
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struct bset_tree set[MAX_BSETS];
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struct btree_nr_keys nr;
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u16 sib_u64s[2];
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u16 whiteout_u64s;
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u8 page_order;
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u8 unpack_fn_len;
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/*
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* XXX: add a delete sequence number, so when bch2_btree_node_relock()
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* fails because the lock sequence number has changed - i.e. the
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* contents were modified - we can still relock the node if it's still
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* the one we want, without redoing the traversal
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*/
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/*
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* For asynchronous splits/interior node updates:
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* When we do a split, we allocate new child nodes and update the parent
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* node to point to them: we update the parent in memory immediately,
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* but then we must wait until the children have been written out before
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* the update to the parent can be written - this is a list of the
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* btree_updates that are blocking this node from being
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* written:
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*/
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struct list_head write_blocked;
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/*
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* Also for asynchronous splits/interior node updates:
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* If a btree node isn't reachable yet, we don't want to kick off
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* another write - because that write also won't yet be reachable and
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* marking it as completed before it's reachable would be incorrect:
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*/
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unsigned long will_make_reachable;
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struct open_buckets ob;
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/* lru list */
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struct list_head list;
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struct btree_write writes[2];
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#ifdef CONFIG_BCACHEFS_DEBUG
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bool *expensive_debug_checks;
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#endif
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/* Key/pointer for this btree node */
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__BKEY_PADDED(key, BKEY_BTREE_PTR_VAL_U64s_MAX);
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};
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struct btree_cache {
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struct rhashtable table;
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bool table_init_done;
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/*
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* We never free a struct btree, except on shutdown - we just put it on
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* the btree_cache_freed list and reuse it later. This simplifies the
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* code, and it doesn't cost us much memory as the memory usage is
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* dominated by buffers that hold the actual btree node data and those
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* can be freed - and the number of struct btrees allocated is
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* effectively bounded.
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*
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* btree_cache_freeable effectively is a small cache - we use it because
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* high order page allocations can be rather expensive, and it's quite
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* common to delete and allocate btree nodes in quick succession. It
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* should never grow past ~2-3 nodes in practice.
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*/
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struct mutex lock;
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struct list_head live;
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struct list_head freeable;
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struct list_head freed;
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/* Number of elements in live + freeable lists */
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unsigned used;
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unsigned reserve;
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struct shrinker shrink;
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/*
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* If we need to allocate memory for a new btree node and that
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* allocation fails, we can cannibalize another node in the btree cache
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* to satisfy the allocation - lock to guarantee only one thread does
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* this at a time:
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*/
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struct task_struct *alloc_lock;
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struct closure_waitlist alloc_wait;
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};
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struct btree_node_iter {
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struct btree_node_iter_set {
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u16 k, end;
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} data[MAX_BSETS];
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};
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enum btree_iter_type {
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BTREE_ITER_KEYS,
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BTREE_ITER_NODES,
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};
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#define BTREE_ITER_TYPE ((1 << 2) - 1)
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/*
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* Iterate over all possible positions, synthesizing deleted keys for holes:
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*/
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#define BTREE_ITER_SLOTS (1 << 2)
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/*
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* Indicates that intent locks should be taken on leaf nodes, because we expect
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* to be doing updates:
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*/
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#define BTREE_ITER_INTENT (1 << 3)
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/*
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* Causes the btree iterator code to prefetch additional btree nodes from disk:
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*/
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#define BTREE_ITER_PREFETCH (1 << 4)
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/*
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* Indicates that this iterator should not be reused until transaction commit,
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* either because a pending update references it or because the update depends
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* on that particular key being locked (e.g. by the str_hash code, for hash
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* table consistency)
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*/
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#define BTREE_ITER_KEEP_UNTIL_COMMIT (1 << 5)
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/*
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* Used in bch2_btree_iter_traverse(), to indicate whether we're searching for
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* @pos or the first key strictly greater than @pos
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*/
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#define BTREE_ITER_IS_EXTENTS (1 << 6)
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#define BTREE_ITER_ERROR (1 << 7)
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#define BTREE_ITER_SET_POS_AFTER_COMMIT (1 << 8)
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enum btree_iter_uptodate {
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BTREE_ITER_UPTODATE = 0,
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BTREE_ITER_NEED_PEEK = 1,
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BTREE_ITER_NEED_RELOCK = 2,
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BTREE_ITER_NEED_TRAVERSE = 3,
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};
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/*
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* @pos - iterator's current position
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* @level - current btree depth
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* @locks_want - btree level below which we start taking intent locks
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* @nodes_locked - bitmask indicating which nodes in @nodes are locked
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* @nodes_intent_locked - bitmask indicating which locks are intent locks
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*/
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struct btree_iter {
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struct btree_trans *trans;
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struct bpos pos;
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struct bpos pos_after_commit;
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u16 flags;
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u8 idx;
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enum btree_id btree_id:4;
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enum btree_iter_uptodate uptodate:4;
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unsigned level:4,
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min_depth:4,
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locks_want:4,
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nodes_locked:4,
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nodes_intent_locked:4;
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struct btree_iter_level {
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struct btree *b;
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struct btree_node_iter iter;
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u32 lock_seq;
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} l[BTREE_MAX_DEPTH];
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/*
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* Current unpacked key - so that bch2_btree_iter_next()/
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* bch2_btree_iter_next_slot() can correctly advance pos.
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*/
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struct bkey k;
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};
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static inline enum btree_iter_type btree_iter_type(struct btree_iter *iter)
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{
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return iter->flags & BTREE_ITER_TYPE;
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}
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static inline struct btree_iter_level *iter_l(struct btree_iter *iter)
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{
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return iter->l + iter->level;
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}
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struct btree_insert_entry {
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unsigned trigger_flags;
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unsigned trans_triggers_run:1;
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struct bkey_i *k;
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struct btree_iter *iter;
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};
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#ifndef CONFIG_LOCKDEP
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#define BTREE_ITER_MAX 64
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#else
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#define BTREE_ITER_MAX 32
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#endif
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struct btree_trans {
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struct bch_fs *c;
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unsigned long ip;
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u64 iters_linked;
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u64 iters_live;
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u64 iters_touched;
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u8 nr_iters;
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u8 nr_updates;
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u8 nr_updates2;
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u8 size;
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unsigned used_mempool:1;
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unsigned error:1;
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unsigned nounlock:1;
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unsigned need_reset:1;
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unsigned mem_top;
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unsigned mem_bytes;
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void *mem;
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struct btree_iter *iters;
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struct btree_insert_entry *updates;
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struct btree_insert_entry *updates2;
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/* update path: */
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struct journal_res journal_res;
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struct journal_preres journal_preres;
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u64 *journal_seq;
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struct disk_reservation *disk_res;
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unsigned flags;
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unsigned journal_u64s;
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unsigned journal_preres_u64s;
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struct replicas_delta_list *fs_usage_deltas;
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struct btree_iter iters_onstack[2];
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struct btree_insert_entry updates_onstack[2];
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struct btree_insert_entry updates2_onstack[2];
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};
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#define BTREE_FLAG(flag) \
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static inline bool btree_node_ ## flag(struct btree *b) \
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{ return test_bit(BTREE_NODE_ ## flag, &b->flags); } \
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\
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static inline void set_btree_node_ ## flag(struct btree *b) \
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{ set_bit(BTREE_NODE_ ## flag, &b->flags); } \
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\
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static inline void clear_btree_node_ ## flag(struct btree *b) \
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{ clear_bit(BTREE_NODE_ ## flag, &b->flags); }
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enum btree_flags {
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BTREE_NODE_read_in_flight,
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BTREE_NODE_read_error,
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BTREE_NODE_dirty,
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BTREE_NODE_need_write,
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BTREE_NODE_noevict,
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BTREE_NODE_write_idx,
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BTREE_NODE_accessed,
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BTREE_NODE_write_in_flight,
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BTREE_NODE_just_written,
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BTREE_NODE_dying,
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BTREE_NODE_fake,
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BTREE_NODE_old_extent_overwrite,
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};
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BTREE_FLAG(read_in_flight);
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BTREE_FLAG(read_error);
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BTREE_FLAG(dirty);
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BTREE_FLAG(need_write);
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BTREE_FLAG(noevict);
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BTREE_FLAG(write_idx);
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BTREE_FLAG(accessed);
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BTREE_FLAG(write_in_flight);
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BTREE_FLAG(just_written);
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BTREE_FLAG(dying);
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BTREE_FLAG(fake);
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BTREE_FLAG(old_extent_overwrite);
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static inline struct btree_write *btree_current_write(struct btree *b)
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{
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return b->writes + btree_node_write_idx(b);
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}
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static inline struct btree_write *btree_prev_write(struct btree *b)
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{
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return b->writes + (btree_node_write_idx(b) ^ 1);
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}
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static inline struct bset_tree *bset_tree_last(struct btree *b)
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{
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EBUG_ON(!b->nsets);
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return b->set + b->nsets - 1;
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}
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static inline void *
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__btree_node_offset_to_ptr(const struct btree *b, u16 offset)
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{
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return (void *) ((u64 *) b->data + 1 + offset);
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}
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static inline u16
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__btree_node_ptr_to_offset(const struct btree *b, const void *p)
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{
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u16 ret = (u64 *) p - 1 - (u64 *) b->data;
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EBUG_ON(__btree_node_offset_to_ptr(b, ret) != p);
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return ret;
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}
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static inline struct bset *bset(const struct btree *b,
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const struct bset_tree *t)
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{
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return __btree_node_offset_to_ptr(b, t->data_offset);
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}
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static inline void set_btree_bset_end(struct btree *b, struct bset_tree *t)
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{
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t->end_offset =
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__btree_node_ptr_to_offset(b, vstruct_last(bset(b, t)));
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}
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static inline void set_btree_bset(struct btree *b, struct bset_tree *t,
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const struct bset *i)
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{
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t->data_offset = __btree_node_ptr_to_offset(b, i);
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set_btree_bset_end(b, t);
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}
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static inline struct bset *btree_bset_first(struct btree *b)
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{
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return bset(b, b->set);
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}
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static inline struct bset *btree_bset_last(struct btree *b)
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{
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return bset(b, bset_tree_last(b));
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}
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static inline u16
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__btree_node_key_to_offset(const struct btree *b, const struct bkey_packed *k)
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{
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return __btree_node_ptr_to_offset(b, k);
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}
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static inline struct bkey_packed *
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__btree_node_offset_to_key(const struct btree *b, u16 k)
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{
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return __btree_node_offset_to_ptr(b, k);
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}
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static inline unsigned btree_bkey_first_offset(const struct bset_tree *t)
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{
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return t->data_offset + offsetof(struct bset, _data) / sizeof(u64);
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}
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#define btree_bkey_first(_b, _t) \
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({ \
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EBUG_ON(bset(_b, _t)->start != \
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__btree_node_offset_to_key(_b, btree_bkey_first_offset(_t)));\
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\
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bset(_b, _t)->start; \
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})
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#define btree_bkey_last(_b, _t) \
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({ \
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EBUG_ON(__btree_node_offset_to_key(_b, (_t)->end_offset) != \
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vstruct_last(bset(_b, _t))); \
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\
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__btree_node_offset_to_key(_b, (_t)->end_offset); \
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})
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static inline unsigned bset_u64s(struct bset_tree *t)
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{
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return t->end_offset - t->data_offset -
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sizeof(struct bset) / sizeof(u64);
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}
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static inline unsigned bset_dead_u64s(struct btree *b, struct bset_tree *t)
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{
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return bset_u64s(t) - b->nr.bset_u64s[t - b->set];
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}
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static inline unsigned bset_byte_offset(struct btree *b, void *i)
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{
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return i - (void *) b->data;
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}
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enum btree_node_type {
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#define x(kwd, val, name) BKEY_TYPE_##kwd = val,
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BCH_BTREE_IDS()
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#undef x
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BKEY_TYPE_BTREE,
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};
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/* Type of a key in btree @id at level @level: */
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static inline enum btree_node_type __btree_node_type(unsigned level, enum btree_id id)
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{
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return level ? BKEY_TYPE_BTREE : (enum btree_node_type) id;
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}
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/* Type of keys @b contains: */
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static inline enum btree_node_type btree_node_type(struct btree *b)
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{
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return __btree_node_type(b->level, b->btree_id);
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}
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static inline bool btree_node_type_is_extents(enum btree_node_type type)
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{
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switch (type) {
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case BKEY_TYPE_EXTENTS:
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case BKEY_TYPE_REFLINK:
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return true;
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default:
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return false;
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}
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}
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static inline bool btree_node_is_extents(struct btree *b)
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{
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return btree_node_type_is_extents(btree_node_type(b));
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}
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#define BTREE_NODE_TYPE_HAS_TRIGGERS \
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((1U << BKEY_TYPE_EXTENTS)| \
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(1U << BKEY_TYPE_ALLOC)| \
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(1U << BKEY_TYPE_INODES)| \
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(1U << BKEY_TYPE_REFLINK)| \
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(1U << BKEY_TYPE_EC)| \
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(1U << BKEY_TYPE_BTREE))
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#define BTREE_NODE_TYPE_HAS_TRANS_TRIGGERS \
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((1U << BKEY_TYPE_EXTENTS)| \
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(1U << BKEY_TYPE_INODES)| \
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(1U << BKEY_TYPE_REFLINK))
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enum btree_trigger_flags {
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__BTREE_TRIGGER_NORUN, /* Don't run triggers at all */
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__BTREE_TRIGGER_NOOVERWRITES, /* Don't run triggers on overwrites */
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__BTREE_TRIGGER_INSERT,
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__BTREE_TRIGGER_OVERWRITE,
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__BTREE_TRIGGER_OVERWRITE_SPLIT,
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__BTREE_TRIGGER_GC,
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__BTREE_TRIGGER_BUCKET_INVALIDATE,
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__BTREE_TRIGGER_ALLOC_READ,
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__BTREE_TRIGGER_NOATOMIC,
|
|
};
|
|
|
|
#define BTREE_TRIGGER_NORUN (1U << __BTREE_TRIGGER_NORUN)
|
|
#define BTREE_TRIGGER_NOOVERWRITES (1U << __BTREE_TRIGGER_NOOVERWRITES)
|
|
|
|
#define BTREE_TRIGGER_INSERT (1U << __BTREE_TRIGGER_INSERT)
|
|
#define BTREE_TRIGGER_OVERWRITE (1U << __BTREE_TRIGGER_OVERWRITE)
|
|
#define BTREE_TRIGGER_OVERWRITE_SPLIT (1U << __BTREE_TRIGGER_OVERWRITE_SPLIT)
|
|
|
|
#define BTREE_TRIGGER_GC (1U << __BTREE_TRIGGER_GC)
|
|
#define BTREE_TRIGGER_BUCKET_INVALIDATE (1U << __BTREE_TRIGGER_BUCKET_INVALIDATE)
|
|
#define BTREE_TRIGGER_ALLOC_READ (1U << __BTREE_TRIGGER_ALLOC_READ)
|
|
#define BTREE_TRIGGER_NOATOMIC (1U << __BTREE_TRIGGER_NOATOMIC)
|
|
|
|
static inline bool btree_node_type_needs_gc(enum btree_node_type type)
|
|
{
|
|
return BTREE_NODE_TYPE_HAS_TRIGGERS & (1U << type);
|
|
}
|
|
|
|
struct btree_root {
|
|
struct btree *b;
|
|
|
|
/* On disk root - see async splits: */
|
|
__BKEY_PADDED(key, BKEY_BTREE_PTR_VAL_U64s_MAX);
|
|
u8 level;
|
|
u8 alive;
|
|
s8 error;
|
|
};
|
|
|
|
/*
|
|
* Optional hook that will be called just prior to a btree node update, when
|
|
* we're holding the write lock and we know what key is about to be overwritten:
|
|
*/
|
|
|
|
enum btree_insert_ret {
|
|
BTREE_INSERT_OK,
|
|
/* leaf node needs to be split */
|
|
BTREE_INSERT_BTREE_NODE_FULL,
|
|
BTREE_INSERT_ENOSPC,
|
|
BTREE_INSERT_NEED_MARK_REPLICAS,
|
|
BTREE_INSERT_NEED_JOURNAL_RES,
|
|
};
|
|
|
|
enum btree_gc_coalesce_fail_reason {
|
|
BTREE_GC_COALESCE_FAIL_RESERVE_GET,
|
|
BTREE_GC_COALESCE_FAIL_KEYLIST_REALLOC,
|
|
BTREE_GC_COALESCE_FAIL_FORMAT_FITS,
|
|
};
|
|
|
|
enum btree_node_sibling {
|
|
btree_prev_sib,
|
|
btree_next_sib,
|
|
};
|
|
|
|
typedef struct btree_nr_keys (*sort_fix_overlapping_fn)(struct bset *,
|
|
struct btree *,
|
|
struct btree_node_iter *);
|
|
|
|
#endif /* _BCACHEFS_BTREE_TYPES_H */
|