btree.c 58.8 KB
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// SPDX-License-Identifier: GPL-2.0
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/*
 * Copyright (C) 2010 Kent Overstreet <kent.overstreet@gmail.com>
 *
 * Uses a block device as cache for other block devices; optimized for SSDs.
 * All allocation is done in buckets, which should match the erase block size
 * of the device.
 *
 * Buckets containing cached data are kept on a heap sorted by priority;
 * bucket priority is increased on cache hit, and periodically all the buckets
 * on the heap have their priority scaled down. This currently is just used as
 * an LRU but in the future should allow for more intelligent heuristics.
 *
 * Buckets have an 8 bit counter; freeing is accomplished by incrementing the
 * counter. Garbage collection is used to remove stale pointers.
 *
 * Indexing is done via a btree; nodes are not necessarily fully sorted, rather
 * as keys are inserted we only sort the pages that have not yet been written.
 * When garbage collection is run, we resort the entire node.
 *
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 * All configuration is done via sysfs; see Documentation/admin-guide/bcache.rst.
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 */

#include "bcache.h"
#include "btree.h"
#include "debug.h"
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#include "extents.h"
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#include <linux/slab.h>
#include <linux/bitops.h>
#include <linux/hash.h>
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#include <linux/kthread.h>
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#include <linux/prefetch.h>
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#include <linux/random.h>
#include <linux/rcupdate.h>
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#include <linux/sched/clock.h>
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#include <linux/rculist.h>

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#include <trace/events/bcache.h>

/*
 * Todo:
 * register_bcache: Return errors out to userspace correctly
 *
 * Writeback: don't undirty key until after a cache flush
 *
 * Create an iterator for key pointers
 *
 * On btree write error, mark bucket such that it won't be freed from the cache
 *
 * Journalling:
 *   Check for bad keys in replay
 *   Propagate barriers
 *   Refcount journal entries in journal_replay
 *
 * Garbage collection:
 *   Finish incremental gc
 *   Gc should free old UUIDs, data for invalid UUIDs
 *
 * Provide a way to list backing device UUIDs we have data cached for, and
 * probably how long it's been since we've seen them, and a way to invalidate
 * dirty data for devices that will never be attached again
 *
 * Keep 1 min/5 min/15 min statistics of how busy a block device has been, so
 * that based on that and how much dirty data we have we can keep writeback
 * from being starved
 *
 * Add a tracepoint or somesuch to watch for writeback starvation
 *
 * When btree depth > 1 and splitting an interior node, we have to make sure
 * alloc_bucket() cannot fail. This should be true but is not completely
 * obvious.
 *
 * Plugging?
 *
 * If data write is less than hard sector size of ssd, round up offset in open
 * bucket to the next whole sector
 *
 * Superblock needs to be fleshed out for multiple cache devices
 *
 * Add a sysfs tunable for the number of writeback IOs in flight
 *
 * Add a sysfs tunable for the number of open data buckets
 *
 * IO tracking: Can we track when one process is doing io on behalf of another?
 * IO tracking: Don't use just an average, weigh more recent stuff higher
 *
 * Test module load/unload
 */

#define MAX_NEED_GC		64
#define MAX_SAVE_PRIO		72
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#define MAX_GC_TIMES		100
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#define MIN_GC_NODES		100
#define GC_SLEEP_MS		100
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#define PTR_DIRTY_BIT		(((uint64_t) 1 << 36))

#define PTR_HASH(c, k)							\
	(((k)->ptr[0] >> c->bucket_bits) | PTR_GEN(k, 0))

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#define insert_lock(s, b)	((b)->level <= (s)->lock)

/*
 * These macros are for recursing down the btree - they handle the details of
 * locking and looking up nodes in the cache for you. They're best treated as
 * mere syntax when reading code that uses them.
 *
 * op->lock determines whether we take a read or a write lock at a given depth.
 * If you've got a read lock and find that you need a write lock (i.e. you're
 * going to have to split), set op->lock and return -EINTR; btree_root() will
 * call you again and you'll have the correct lock.
 */

/**
 * btree - recurse down the btree on a specified key
 * @fn:		function to call, which will be passed the child node
 * @key:	key to recurse on
 * @b:		parent btree node
 * @op:		pointer to struct btree_op
 */
#define btree(fn, key, b, op, ...)					\
({									\
	int _r, l = (b)->level - 1;					\
	bool _w = l <= (op)->lock;					\
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	struct btree *_child = bch_btree_node_get((b)->c, op, key, l,	\
						  _w, b);		\
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	if (!IS_ERR(_child)) {						\
		_r = bch_btree_ ## fn(_child, op, ##__VA_ARGS__);	\
		rw_unlock(_w, _child);					\
	} else								\
		_r = PTR_ERR(_child);					\
	_r;								\
})

/**
 * btree_root - call a function on the root of the btree
 * @fn:		function to call, which will be passed the child node
 * @c:		cache set
 * @op:		pointer to struct btree_op
 */
#define btree_root(fn, c, op, ...)					\
({									\
	int _r = -EINTR;						\
	do {								\
		struct btree *_b = (c)->root;				\
		bool _w = insert_lock(op, _b);				\
		rw_lock(_w, _b, _b->level);				\
		if (_b == (c)->root &&					\
		    _w == insert_lock(op, _b)) {			\
			_r = bch_btree_ ## fn(_b, op, ##__VA_ARGS__);	\
		}							\
		rw_unlock(_w, _b);					\
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		bch_cannibalize_unlock(c);				\
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		if (_r == -EINTR)					\
			schedule();					\
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	} while (_r == -EINTR);						\
									\
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	finish_wait(&(c)->btree_cache_wait, &(op)->wait);		\
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	_r;								\
})

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static inline struct bset *write_block(struct btree *b)
{
	return ((void *) btree_bset_first(b)) + b->written * block_bytes(b->c);
}

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static void bch_btree_init_next(struct btree *b)
{
	/* If not a leaf node, always sort */
	if (b->level && b->keys.nsets)
		bch_btree_sort(&b->keys, &b->c->sort);
	else
		bch_btree_sort_lazy(&b->keys, &b->c->sort);

	if (b->written < btree_blocks(b))
		bch_bset_init_next(&b->keys, write_block(b),
				   bset_magic(&b->c->sb));

}

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/* Btree key manipulation */

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void bkey_put(struct cache_set *c, struct bkey *k)
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{
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	unsigned int i;
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	for (i = 0; i < KEY_PTRS(k); i++)
		if (ptr_available(c, k, i))
			atomic_dec_bug(&PTR_BUCKET(c, k, i)->pin);
}

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/* Btree IO */

static uint64_t btree_csum_set(struct btree *b, struct bset *i)
{
	uint64_t crc = b->key.ptr[0];
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	void *data = (void *) i + 8, *end = bset_bkey_last(i);
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	crc = bch_crc64_update(crc, data, end - data);
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	return crc ^ 0xffffffffffffffffULL;
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}

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void bch_btree_node_read_done(struct btree *b)
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{
	const char *err = "bad btree header";
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	struct bset *i = btree_bset_first(b);
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	struct btree_iter *iter;
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	iter = mempool_alloc(&b->c->fill_iter, GFP_NOIO);
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	iter->size = b->c->sb.bucket_size / b->c->sb.block_size;
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	iter->used = 0;

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#ifdef CONFIG_BCACHE_DEBUG
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	iter->b = &b->keys;
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#endif

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	if (!i->seq)
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		goto err;

	for (;
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	     b->written < btree_blocks(b) && i->seq == b->keys.set[0].data->seq;
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	     i = write_block(b)) {
		err = "unsupported bset version";
		if (i->version > BCACHE_BSET_VERSION)
			goto err;

		err = "bad btree header";
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		if (b->written + set_blocks(i, block_bytes(b->c)) >
		    btree_blocks(b))
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			goto err;

		err = "bad magic";
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		if (i->magic != bset_magic(&b->c->sb))
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			goto err;

		err = "bad checksum";
		switch (i->version) {
		case 0:
			if (i->csum != csum_set(i))
				goto err;
			break;
		case BCACHE_BSET_VERSION:
			if (i->csum != btree_csum_set(b, i))
				goto err;
			break;
		}

		err = "empty set";
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		if (i != b->keys.set[0].data && !i->keys)
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			goto err;

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		bch_btree_iter_push(iter, i->start, bset_bkey_last(i));
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		b->written += set_blocks(i, block_bytes(b->c));
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	}

	err = "corrupted btree";
	for (i = write_block(b);
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	     bset_sector_offset(&b->keys, i) < KEY_SIZE(&b->key);
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	     i = ((void *) i) + block_bytes(b->c))
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		if (i->seq == b->keys.set[0].data->seq)
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			goto err;

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	bch_btree_sort_and_fix_extents(&b->keys, iter, &b->c->sort);
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	i = b->keys.set[0].data;
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	err = "short btree key";
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	if (b->keys.set[0].size &&
	    bkey_cmp(&b->key, &b->keys.set[0].end) < 0)
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		goto err;

	if (b->written < btree_blocks(b))
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		bch_bset_init_next(&b->keys, write_block(b),
				   bset_magic(&b->c->sb));
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out:
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	mempool_free(iter, &b->c->fill_iter);
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	return;
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err:
	set_btree_node_io_error(b);
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	bch_cache_set_error(b->c, "%s at bucket %zu, block %u, %u keys",
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			    err, PTR_BUCKET_NR(b->c, &b->key, 0),
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			    bset_block_offset(b, i), i->keys);
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	goto out;
}

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static void btree_node_read_endio(struct bio *bio)
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{
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	struct closure *cl = bio->bi_private;
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	closure_put(cl);
}
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static void bch_btree_node_read(struct btree *b)
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{
	uint64_t start_time = local_clock();
	struct closure cl;
	struct bio *bio;
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	trace_bcache_btree_read(b);

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	closure_init_stack(&cl);
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	bio = bch_bbio_alloc(b->c);
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	bio->bi_iter.bi_size = KEY_SIZE(&b->key) << 9;
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	bio->bi_end_io	= btree_node_read_endio;
	bio->bi_private	= &cl;
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	bio->bi_opf = REQ_OP_READ | REQ_META;
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	bch_bio_map(bio, b->keys.set[0].data);
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	bch_submit_bbio(bio, b->c, &b->key, 0);
	closure_sync(&cl);
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	if (bio->bi_status)
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		set_btree_node_io_error(b);

	bch_bbio_free(bio, b->c);

	if (btree_node_io_error(b))
		goto err;

	bch_btree_node_read_done(b);
	bch_time_stats_update(&b->c->btree_read_time, start_time);

	return;
err:
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	bch_cache_set_error(b->c, "io error reading bucket %zu",
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			    PTR_BUCKET_NR(b->c, &b->key, 0));
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}

static void btree_complete_write(struct btree *b, struct btree_write *w)
{
	if (w->prio_blocked &&
	    !atomic_sub_return(w->prio_blocked, &b->c->prio_blocked))
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		wake_up_allocators(b->c);
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	if (w->journal) {
		atomic_dec_bug(w->journal);
		__closure_wake_up(&b->c->journal.wait);
	}

	w->prio_blocked	= 0;
	w->journal	= NULL;
}

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static void btree_node_write_unlock(struct closure *cl)
{
	struct btree *b = container_of(cl, struct btree, io);

	up(&b->io_mutex);
}

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static void __btree_node_write_done(struct closure *cl)
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{
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	struct btree *b = container_of(cl, struct btree, io);
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	struct btree_write *w = btree_prev_write(b);

	bch_bbio_free(b->bio, b->c);
	b->bio = NULL;
	btree_complete_write(b, w);

	if (btree_node_dirty(b))
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		schedule_delayed_work(&b->work, 30 * HZ);
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	closure_return_with_destructor(cl, btree_node_write_unlock);
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}

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static void btree_node_write_done(struct closure *cl)
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{
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	struct btree *b = container_of(cl, struct btree, io);
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	bio_free_pages(b->bio);
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	__btree_node_write_done(cl);
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}

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static void btree_node_write_endio(struct bio *bio)
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{
	struct closure *cl = bio->bi_private;
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	struct btree *b = container_of(cl, struct btree, io);
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	if (bio->bi_status)
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		set_btree_node_io_error(b);

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	bch_bbio_count_io_errors(b->c, bio, bio->bi_status, "writing btree");
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	closure_put(cl);
}

static void do_btree_node_write(struct btree *b)
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{
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	struct closure *cl = &b->io;
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	struct bset *i = btree_bset_last(b);
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	BKEY_PADDED(key) k;

	i->version	= BCACHE_BSET_VERSION;
	i->csum		= btree_csum_set(b, i);

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	BUG_ON(b->bio);
	b->bio = bch_bbio_alloc(b->c);

	b->bio->bi_end_io	= btree_node_write_endio;
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	b->bio->bi_private	= cl;
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	b->bio->bi_iter.bi_size	= roundup(set_bytes(i), block_bytes(b->c));
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	b->bio->bi_opf		= REQ_OP_WRITE | REQ_META | REQ_FUA;
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	bch_bio_map(b->bio, i);
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	/*
	 * If we're appending to a leaf node, we don't technically need FUA -
	 * this write just needs to be persisted before the next journal write,
	 * which will be marked FLUSH|FUA.
	 *
	 * Similarly if we're writing a new btree root - the pointer is going to
	 * be in the next journal entry.
	 *
	 * But if we're writing a new btree node (that isn't a root) or
	 * appending to a non leaf btree node, we need either FUA or a flush
	 * when we write the parent with the new pointer. FUA is cheaper than a
	 * flush, and writes appending to leaf nodes aren't blocking anything so
	 * just make all btree node writes FUA to keep things sane.
	 */

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	bkey_copy(&k.key, &b->key);
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	SET_PTR_OFFSET(&k.key, 0, PTR_OFFSET(&k.key, 0) +
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		       bset_sector_offset(&b->keys, i));
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	if (!bch_bio_alloc_pages(b->bio, __GFP_NOWARN|GFP_NOWAIT)) {
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		int j;
		struct bio_vec *bv;
		void *base = (void *) ((unsigned long) i & ~(PAGE_SIZE - 1));

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		bio_for_each_segment_all(bv, b->bio, j)
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			memcpy(page_address(bv->bv_page),
			       base + j * PAGE_SIZE, PAGE_SIZE);

		bch_submit_bbio(b->bio, b->c, &k.key, 0);

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		continue_at(cl, btree_node_write_done, NULL);
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	} else {
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		/*
		 * No problem for multipage bvec since the bio is
		 * just allocated
		 */
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		b->bio->bi_vcnt = 0;
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		bch_bio_map(b->bio, i);
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		bch_submit_bbio(b->bio, b->c, &k.key, 0);

		closure_sync(cl);
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		continue_at_nobarrier(cl, __btree_node_write_done, NULL);
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	}
}

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void __bch_btree_node_write(struct btree *b, struct closure *parent)
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{
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	struct bset *i = btree_bset_last(b);
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	lockdep_assert_held(&b->write_lock);

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	trace_bcache_btree_write(b);

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	BUG_ON(current->bio_list);
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	BUG_ON(b->written >= btree_blocks(b));
	BUG_ON(b->written && !i->keys);
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	BUG_ON(btree_bset_first(b)->seq != i->seq);
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	bch_check_keys(&b->keys, "writing");
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	cancel_delayed_work(&b->work);

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	/* If caller isn't waiting for write, parent refcount is cache set */
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	down(&b->io_mutex);
	closure_init(&b->io, parent ?: &b->c->cl);
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	clear_bit(BTREE_NODE_dirty,	 &b->flags);
	change_bit(BTREE_NODE_write_idx, &b->flags);

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	do_btree_node_write(b);
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	atomic_long_add(set_blocks(i, block_bytes(b->c)) * b->c->sb.block_size,
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			&PTR_CACHE(b->c, &b->key, 0)->btree_sectors_written);

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	b->written += set_blocks(i, block_bytes(b->c));
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}
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void bch_btree_node_write(struct btree *b, struct closure *parent)
{
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	unsigned int nsets = b->keys.nsets;
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	lockdep_assert_held(&b->lock);

	__bch_btree_node_write(b, parent);
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	/*
	 * do verify if there was more than one set initially (i.e. we did a
	 * sort) and we sorted down to a single set:
	 */
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	if (nsets && !b->keys.nsets)
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		bch_btree_verify(b);

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	bch_btree_init_next(b);
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}

502 503 504 505 506
static void bch_btree_node_write_sync(struct btree *b)
{
	struct closure cl;

	closure_init_stack(&cl);
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507 508

	mutex_lock(&b->write_lock);
509
	bch_btree_node_write(b, &cl);
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510 511
	mutex_unlock(&b->write_lock);

512 513 514
	closure_sync(&cl);
}

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static void btree_node_write_work(struct work_struct *w)
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516 517 518
{
	struct btree *b = container_of(to_delayed_work(w), struct btree, work);

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519
	mutex_lock(&b->write_lock);
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520
	if (btree_node_dirty(b))
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521 522
		__bch_btree_node_write(b, NULL);
	mutex_unlock(&b->write_lock);
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523 524
}

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525
static void bch_btree_leaf_dirty(struct btree *b, atomic_t *journal_ref)
K
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526
{
527
	struct bset *i = btree_bset_last(b);
K
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528 529
	struct btree_write *w = btree_current_write(b);

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530 531
	lockdep_assert_held(&b->write_lock);

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532 533
	BUG_ON(!b->written);
	BUG_ON(!i->keys);
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534

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535
	if (!btree_node_dirty(b))
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536
		schedule_delayed_work(&b->work, 30 * HZ);
K
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537

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538
	set_btree_node_dirty(b);
K
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539

K
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540
	if (journal_ref) {
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541
		if (w->journal &&
K
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542
		    journal_pin_cmp(b->c, w->journal, journal_ref)) {
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543 544 545 546 547
			atomic_dec_bug(w->journal);
			w->journal = NULL;
		}

		if (!w->journal) {
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548
			w->journal = journal_ref;
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549 550 551 552 553
			atomic_inc(w->journal);
		}
	}

	/* Force write if set is too big */
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	if (set_bytes(i) > PAGE_SIZE - 48 &&
	    !current->bio_list)
		bch_btree_node_write(b, NULL);
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}

/*
 * Btree in memory cache - allocation/freeing
 * mca -> memory cache
 */

#define mca_reserve(c)	(((c->root && c->root->level)		\
			  ? c->root->level : 1) * 8 + 16)
#define mca_can_free(c)						\
567
	max_t(int, 0, c->btree_cache_used - mca_reserve(c))
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static void mca_data_free(struct btree *b)
{
571
	BUG_ON(b->io_mutex.count != 1);
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572

K
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573
	bch_btree_keys_free(&b->keys);
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574

575
	b->c->btree_cache_used--;
576
	list_move(&b->list, &b->c->btree_cache_freed);
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577 578 579 580 581 582 583 584 585 586 587
}

static void mca_bucket_free(struct btree *b)
{
	BUG_ON(btree_node_dirty(b));

	b->key.ptr[0] = 0;
	hlist_del_init_rcu(&b->hash);
	list_move(&b->list, &b->c->btree_cache_freeable);
}

588
static unsigned int btree_order(struct bkey *k)
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{
	return ilog2(KEY_SIZE(k) / PAGE_SECTORS ?: 1);
}

static void mca_data_alloc(struct btree *b, struct bkey *k, gfp_t gfp)
{
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595
	if (!bch_btree_keys_alloc(&b->keys,
596
				  max_t(unsigned int,
597 598 599
					ilog2(b->c->btree_pages),
					btree_order(k)),
				  gfp)) {
600
		b->c->btree_cache_used++;
601 602 603 604
		list_move(&b->list, &b->c->btree_cache);
	} else {
		list_move(&b->list, &b->c->btree_cache_freed);
	}
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}

static struct btree *mca_bucket_alloc(struct cache_set *c,
				      struct bkey *k, gfp_t gfp)
{
	struct btree *b = kzalloc(sizeof(struct btree), gfp);
611

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	if (!b)
		return NULL;

	init_rwsem(&b->lock);
	lockdep_set_novalidate_class(&b->lock);
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	mutex_init(&b->write_lock);
	lockdep_set_novalidate_class(&b->write_lock);
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619
	INIT_LIST_HEAD(&b->list);
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620
	INIT_DELAYED_WORK(&b->work, btree_node_write_work);
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621
	b->c = c;
622
	sema_init(&b->io_mutex, 1);
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623 624 625 626 627

	mca_data_alloc(b, k, gfp);
	return b;
}

628
static int mca_reap(struct btree *b, unsigned int min_order, bool flush)
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629
{
630 631 632
	struct closure cl;

	closure_init_stack(&cl);
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633 634 635 636 637
	lockdep_assert_held(&b->c->bucket_lock);

	if (!down_write_trylock(&b->lock))
		return -ENOMEM;

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638
	BUG_ON(btree_node_dirty(b) && !b->keys.set[0].data);
639

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640
	if (b->keys.page_order < min_order)
641 642 643 644 645 646 647 648 649
		goto out_unlock;

	if (!flush) {
		if (btree_node_dirty(b))
			goto out_unlock;

		if (down_trylock(&b->io_mutex))
			goto out_unlock;
		up(&b->io_mutex);
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650 651
	}

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652
	mutex_lock(&b->write_lock);
653
	if (btree_node_dirty(b))
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		__bch_btree_node_write(b, &cl);
	mutex_unlock(&b->write_lock);

	closure_sync(&cl);
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658

659
	/* wait for any in flight btree write */
660 661
	down(&b->io_mutex);
	up(&b->io_mutex);
662

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663
	return 0;
664 665 666
out_unlock:
	rw_unlock(true, b);
	return -ENOMEM;
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667 668
}

669 670
static unsigned long bch_mca_scan(struct shrinker *shrink,
				  struct shrink_control *sc)
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671 672 673 674
{
	struct cache_set *c = container_of(shrink, struct cache_set, shrink);
	struct btree *b, *t;
	unsigned long i, nr = sc->nr_to_scan;
675
	unsigned long freed = 0;
676
	unsigned int btree_cache_used;
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677 678

	if (c->shrinker_disabled)
679
		return SHRINK_STOP;
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680

681
	if (c->btree_cache_alloc_lock)
682
		return SHRINK_STOP;
K
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683 684

	/* Return -1 if we can't do anything right now */
685
	if (sc->gfp_mask & __GFP_IO)
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686 687 688 689
		mutex_lock(&c->bucket_lock);
	else if (!mutex_trylock(&c->bucket_lock))
		return -1;

690 691 692 693 694 695 696
	/*
	 * It's _really_ critical that we don't free too many btree nodes - we
	 * have to always leave ourselves a reserve. The reserve is how we
	 * guarantee that allocating memory for a new btree node can always
	 * succeed, so that inserting keys into the btree can always succeed and
	 * IO can always make forward progress:
	 */
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697 698 699 700
	nr /= c->btree_pages;
	nr = min_t(unsigned long, nr, mca_can_free(c));

	i = 0;
701
	btree_cache_used = c->btree_cache_used;
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702
	list_for_each_entry_safe(b, t, &c->btree_cache_freeable, list) {
703 704
		if (nr <= 0)
			goto out;
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705 706

		if (++i > 3 &&
707
		    !mca_reap(b, 0, false)) {
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708 709
			mca_data_free(b);
			rw_unlock(true, b);
710
			freed++;
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711
		}
712
		nr--;
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713 714
	}

715
	for (;  (nr--) && i < btree_cache_used; i++) {
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716 717 718
		if (list_empty(&c->btree_cache))
			goto out;

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719 720 721 722
		b = list_first_entry(&c->btree_cache, struct btree, list);
		list_rotate_left(&c->btree_cache);

		if (!b->accessed &&
723
		    !mca_reap(b, 0, false)) {
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724 725 726
			mca_bucket_free(b);
			mca_data_free(b);
			rw_unlock(true, b);
727
			freed++;
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728 729 730 731 732
		} else
			b->accessed = 0;
	}
out:
	mutex_unlock(&c->bucket_lock);
733
	return freed * c->btree_pages;
734 735 736 737 738 739 740 741 742 743
}

static unsigned long bch_mca_count(struct shrinker *shrink,
				   struct shrink_control *sc)
{
	struct cache_set *c = container_of(shrink, struct cache_set, shrink);

	if (c->shrinker_disabled)
		return 0;

744
	if (c->btree_cache_alloc_lock)
745 746 747
		return 0;

	return mca_can_free(c) * c->btree_pages;
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748 749 750 751 752 753
}

void bch_btree_cache_free(struct cache_set *c)
{
	struct btree *b;
	struct closure cl;
754

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755 756 757 758 759 760 761 762 763 764
	closure_init_stack(&cl);

	if (c->shrink.list.next)
		unregister_shrinker(&c->shrink);

	mutex_lock(&c->bucket_lock);

#ifdef CONFIG_BCACHE_DEBUG
	if (c->verify_data)
		list_move(&c->verify_data->list, &c->btree_cache);
765 766

	free_pages((unsigned long) c->verify_ondisk, ilog2(bucket_pages(c)));
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#endif

	list_splice(&c->btree_cache_freeable,
		    &c->btree_cache);

	while (!list_empty(&c->btree_cache)) {
		b = list_first_entry(&c->btree_cache, struct btree, list);

		if (btree_node_dirty(b))
			btree_complete_write(b, btree_current_write(b));
		clear_bit(BTREE_NODE_dirty, &b->flags);

		mca_data_free(b);
	}

	while (!list_empty(&c->btree_cache_freed)) {
		b = list_first_entry(&c->btree_cache_freed,
				     struct btree, list);
		list_del(&b->list);
		cancel_delayed_work_sync(&b->work);
		kfree(b);
	}

	mutex_unlock(&c->bucket_lock);
}

int bch_btree_cache_alloc(struct cache_set *c)
{
795
	unsigned int i;
K
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796 797

	for (i = 0; i < mca_reserve(c); i++)
K
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798 799
		if (!mca_bucket_alloc(c, &ZERO_KEY, GFP_KERNEL))
			return -ENOMEM;
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800 801 802 803 804 805 806

	list_splice_init(&c->btree_cache,
			 &c->btree_cache_freeable);

#ifdef CONFIG_BCACHE_DEBUG
	mutex_init(&c->verify_lock);

807 808 809
	c->verify_ondisk = (void *)
		__get_free_pages(GFP_KERNEL, ilog2(bucket_pages(c)));

K
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810 811 812
	c->verify_data = mca_bucket_alloc(c, &ZERO_KEY, GFP_KERNEL);

	if (c->verify_data &&
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813
	    c->verify_data->keys.set->data)
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814 815 816 817 818
		list_del_init(&c->verify_data->list);
	else
		c->verify_data = NULL;
#endif

819 820
	c->shrink.count_objects = bch_mca_count;
	c->shrink.scan_objects = bch_mca_scan;
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821 822
	c->shrink.seeks = 4;
	c->shrink.batch = c->btree_pages * 2;
823 824 825 826

	if (register_shrinker(&c->shrink))
		pr_warn("bcache: %s: could not register shrinker",
				__func__);
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827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847 848 849 850 851

	return 0;
}

/* Btree in memory cache - hash table */

static struct hlist_head *mca_hash(struct cache_set *c, struct bkey *k)
{
	return &c->bucket_hash[hash_32(PTR_HASH(c, k), BUCKET_HASH_BITS)];
}

static struct btree *mca_find(struct cache_set *c, struct bkey *k)
{
	struct btree *b;

	rcu_read_lock();
	hlist_for_each_entry_rcu(b, mca_hash(c, k), hash)
		if (PTR_HASH(c, &b->key) == PTR_HASH(c, k))
			goto out;
	b = NULL;
out:
	rcu_read_unlock();
	return b;
}

852 853 854 855 856 857 858 859 860 861 862 863 864 865 866 867 868
static int mca_cannibalize_lock(struct cache_set *c, struct btree_op *op)
{
	struct task_struct *old;

	old = cmpxchg(&c->btree_cache_alloc_lock, NULL, current);
	if (old && old != current) {
		if (op)
			prepare_to_wait(&c->btree_cache_wait, &op->wait,
					TASK_UNINTERRUPTIBLE);
		return -EINTR;
	}

	return 0;
}

static struct btree *mca_cannibalize(struct cache_set *c, struct btree_op *op,
				     struct bkey *k)
K
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869
{
870
	struct btree *b;
K
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871

K
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872 873
	trace_bcache_btree_cache_cannibalize(c);

874 875
	if (mca_cannibalize_lock(c, op))
		return ERR_PTR(-EINTR);
K
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876

877 878 879
	list_for_each_entry_reverse(b, &c->btree_cache, list)
		if (!mca_reap(b, btree_order(k), false))
			return b;
K
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880

881 882 883
	list_for_each_entry_reverse(b, &c->btree_cache, list)
		if (!mca_reap(b, btree_order(k), true))
			return b;
K
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884

885
	WARN(1, "btree cache cannibalize failed\n");
886
	return ERR_PTR(-ENOMEM);
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887 888 889 890 891 892 893 894
}

/*
 * We can only have one thread cannibalizing other cached btree nodes at a time,
 * or we'll deadlock. We use an open coded mutex to ensure that, which a
 * cannibalize_bucket() will take. This means every time we unlock the root of
 * the btree, we need to release this lock if we have it held.
 */
895
static void bch_cannibalize_unlock(struct cache_set *c)
K
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896
{
897 898 899
	if (c->btree_cache_alloc_lock == current) {
		c->btree_cache_alloc_lock = NULL;
		wake_up(&c->btree_cache_wait);
K
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900 901 902
	}
}

903 904
static struct btree *mca_alloc(struct cache_set *c, struct btree_op *op,
			       struct bkey *k, int level)
K
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905 906 907
{
	struct btree *b;

908 909
	BUG_ON(current->bio_list);

K
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910 911 912 913 914 915 916 917 918
	lockdep_assert_held(&c->bucket_lock);

	if (mca_find(c, k))
		return NULL;

	/* btree_free() doesn't free memory; it sticks the node on the end of
	 * the list. Check if there's any freed nodes there:
	 */
	list_for_each_entry(b, &c->btree_cache_freeable, list)
919
		if (!mca_reap(b, btree_order(k), false))
K
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920 921 922 923 924 925
			goto out;

	/* We never free struct btree itself, just the memory that holds the on
	 * disk node. Check the freed list before allocating a new one:
	 */
	list_for_each_entry(b, &c->btree_cache_freed, list)
926
		if (!mca_reap(b, 0, false)) {
K
Kent Overstreet 已提交
927
			mca_data_alloc(b, k, __GFP_NOWARN|GFP_NOIO);
K
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928
			if (!b->keys.set[0].data)
K
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929 930 931 932 933 934 935 936 937 938
				goto err;
			else
				goto out;
		}

	b = mca_bucket_alloc(c, k, __GFP_NOWARN|GFP_NOIO);
	if (!b)
		goto err;

	BUG_ON(!down_write_trylock(&b->lock));
K
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939
	if (!b->keys.set->data)
K
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940 941
		goto err;
out:
942
	BUG_ON(b->io_mutex.count != 1);
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943 944 945 946 947 948 949

	bkey_copy(&b->key, k);
	list_move(&b->list, &c->btree_cache);
	hlist_del_init_rcu(&b->hash);
	hlist_add_head_rcu(&b->hash, mca_hash(c, k));

	lock_set_subclass(&b->lock.dep_map, level + 1, _THIS_IP_);
950
	b->parent	= (void *) ~0UL;
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951 952 953
	b->flags	= 0;
	b->written	= 0;
	b->level	= level;
K
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954

955
	if (!b->level)
K
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956 957
		bch_btree_keys_init(&b->keys, &bch_extent_keys_ops,
				    &b->c->expensive_debug_checks);
958
	else
K
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959 960
		bch_btree_keys_init(&b->keys, &bch_btree_keys_ops,
				    &b->c->expensive_debug_checks);
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961 962 963 964 965 966

	return b;
err:
	if (b)
		rw_unlock(true, b);

967
	b = mca_cannibalize(c, op, k);
K
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968 969 970 971 972 973
	if (!IS_ERR(b))
		goto out;

	return b;
}

974
/*
K
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975 976 977
 * bch_btree_node_get - find a btree node in the cache and lock it, reading it
 * in from disk if necessary.
 *
K
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978
 * If IO is necessary and running under generic_make_request, returns -EAGAIN.
K
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979 980 981 982
 *
 * The btree node will have either a read or a write lock held, depending on
 * level and op->lock.
 */
983
struct btree *bch_btree_node_get(struct cache_set *c, struct btree_op *op,
984 985
				 struct bkey *k, int level, bool write,
				 struct btree *parent)
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986 987 988 989 990 991 992 993 994
{
	int i = 0;
	struct btree *b;

	BUG_ON(level < 0);
retry:
	b = mca_find(c, k);

	if (!b) {
K
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995 996 997
		if (current->bio_list)
			return ERR_PTR(-EAGAIN);

K
Kent Overstreet 已提交
998
		mutex_lock(&c->bucket_lock);
999
		b = mca_alloc(c, op, k, level);
K
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1000 1001 1002 1003 1004 1005 1006
		mutex_unlock(&c->bucket_lock);

		if (!b)
			goto retry;
		if (IS_ERR(b))
			return b;

K
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1007
		bch_btree_node_read(b);
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1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019

		if (!write)
			downgrade_write(&b->lock);
	} else {
		rw_lock(write, b, level);
		if (PTR_HASH(c, &b->key) != PTR_HASH(c, k)) {
			rw_unlock(write, b);
			goto retry;
		}
		BUG_ON(b->level != level);
	}

1020 1021 1022 1023 1024 1025 1026
	if (btree_node_io_error(b)) {
		rw_unlock(write, b);
		return ERR_PTR(-EIO);
	}

	BUG_ON(!b->written);

1027
	b->parent = parent;
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1028 1029
	b->accessed = 1;

K
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1030 1031 1032
	for (; i <= b->keys.nsets && b->keys.set[i].size; i++) {
		prefetch(b->keys.set[i].tree);
		prefetch(b->keys.set[i].data);
K
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1033 1034
	}

K
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1035 1036
	for (; i <= b->keys.nsets; i++)
		prefetch(b->keys.set[i].data);
K
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1037 1038 1039 1040

	return b;
}

1041
static void btree_node_prefetch(struct btree *parent, struct bkey *k)
K
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1042 1043 1044
{
	struct btree *b;

1045 1046 1047
	mutex_lock(&parent->c->bucket_lock);
	b = mca_alloc(parent->c, NULL, k, parent->level - 1);
	mutex_unlock(&parent->c->bucket_lock);
K
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1048 1049

	if (!IS_ERR_OR_NULL(b)) {
1050
		b->parent = parent;
K
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1051
		bch_btree_node_read(b);
K
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1052 1053 1054 1055 1056 1057
		rw_unlock(true, b);
	}
}

/* Btree alloc */

1058
static void btree_node_free(struct btree *b)
K
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1059
{
K
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1060 1061
	trace_bcache_btree_node_free(b);

K
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1062 1063
	BUG_ON(b == b->c->root);

K
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1064 1065
	mutex_lock(&b->write_lock);

K
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1066 1067 1068 1069
	if (btree_node_dirty(b))
		btree_complete_write(b, btree_current_write(b));
	clear_bit(BTREE_NODE_dirty, &b->flags);

K
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1070 1071
	mutex_unlock(&b->write_lock);

K
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1072 1073 1074 1075 1076 1077 1078 1079
	cancel_delayed_work(&b->work);

	mutex_lock(&b->c->bucket_lock);
	bch_bucket_free(b->c, &b->key);
	mca_bucket_free(b);
	mutex_unlock(&b->c->bucket_lock);
}

1080
struct btree *__bch_btree_node_alloc(struct cache_set *c, struct btree_op *op,
1081 1082
				     int level, bool wait,
				     struct btree *parent)
K
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1083 1084 1085 1086 1087 1088
{
	BKEY_PADDED(key) k;
	struct btree *b = ERR_PTR(-EAGAIN);

	mutex_lock(&c->bucket_lock);
retry:
1089
	if (__bch_bucket_alloc_set(c, RESERVE_BTREE, &k.key, 1, wait))
K
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1090 1091
		goto err;

1092
	bkey_put(c, &k.key);
K
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1093 1094
	SET_KEY_SIZE(&k.key, c->btree_pages * PAGE_SECTORS);

1095
	b = mca_alloc(c, op, &k.key, level);
K
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1096 1097 1098 1099
	if (IS_ERR(b))
		goto err_free;

	if (!b) {
K
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1100 1101
		cache_bug(c,
			"Tried to allocate bucket that was in btree cache");
K
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1102 1103 1104 1105
		goto retry;
	}

	b->accessed = 1;
1106
	b->parent = parent;
K
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1107
	bch_bset_init_next(&b->keys, b->keys.set->data, bset_magic(&b->c->sb));
K
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1108 1109

	mutex_unlock(&c->bucket_lock);
K
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1110 1111

	trace_bcache_btree_node_alloc(b);
K
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1112 1113 1114 1115 1116
	return b;
err_free:
	bch_bucket_free(c, &k.key);
err:
	mutex_unlock(&c->bucket_lock);
K
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1117

1118
	trace_bcache_btree_node_alloc_fail(c);
K
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1119 1120 1121
	return b;
}

1122
static struct btree *bch_btree_node_alloc(struct cache_set *c,
1123 1124
					  struct btree_op *op, int level,
					  struct btree *parent)
1125
{
1126
	return __bch_btree_node_alloc(c, op, level, op != NULL, parent);
1127 1128
}

1129 1130
static struct btree *btree_node_alloc_replacement(struct btree *b,
						  struct btree_op *op)
K
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1131
{
1132
	struct btree *n = bch_btree_node_alloc(b->c, op, b->level, b->parent);
1133

1134
	if (!IS_ERR_OR_NULL(n)) {
K
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1135
		mutex_lock(&n->write_lock);
1136
		bch_btree_sort_into(&b->keys, &n->keys, &b->c->sort);
1137
		bkey_copy_key(&n->key, &b->key);
K
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1138
		mutex_unlock(&n->write_lock);
1139
	}
K
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1140 1141 1142 1143

	return n;
}

1144 1145
static void make_btree_freeing_key(struct btree *b, struct bkey *k)
{
1146
	unsigned int i;
1147

1148 1149 1150 1151
	mutex_lock(&b->c->bucket_lock);

	atomic_inc(&b->c->prio_blocked);

1152 1153 1154
	bkey_copy(k, &b->key);
	bkey_copy_key(k, &ZERO_KEY);

1155 1156 1157 1158
	for (i = 0; i < KEY_PTRS(k); i++)
		SET_PTR_GEN(k, i,
			    bch_inc_gen(PTR_CACHE(b->c, &b->key, i),
					PTR_BUCKET(b->c, &b->key, i)));
1159

1160
	mutex_unlock(&b->c->bucket_lock);
1161 1162
}

1163 1164 1165 1166
static int btree_check_reserve(struct btree *b, struct btree_op *op)
{
	struct cache_set *c = b->c;
	struct cache *ca;
1167
	unsigned int i, reserve = (c->root->level - b->level) * 2 + 1;
1168 1169 1170 1171 1172 1173

	mutex_lock(&c->bucket_lock);

	for_each_cache(ca, c, i)
		if (fifo_used(&ca->free[RESERVE_BTREE]) < reserve) {
			if (op)
1174
				prepare_to_wait(&c->btree_cache_wait, &op->wait,
1175
						TASK_UNINTERRUPTIBLE);
1176 1177
			mutex_unlock(&c->bucket_lock);
			return -EINTR;
1178 1179 1180
		}

	mutex_unlock(&c->bucket_lock);
1181 1182

	return mca_cannibalize_lock(b->c, op);
1183 1184
}

K
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1185 1186
/* Garbage collection */

1187 1188
static uint8_t __bch_btree_mark_key(struct cache_set *c, int level,
				    struct bkey *k)
K
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1189 1190
{
	uint8_t stale = 0;
1191
	unsigned int i;
K
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1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207
	struct bucket *g;

	/*
	 * ptr_invalid() can't return true for the keys that mark btree nodes as
	 * freed, but since ptr_bad() returns true we'll never actually use them
	 * for anything and thus we don't want mark their pointers here
	 */
	if (!bkey_cmp(k, &ZERO_KEY))
		return stale;

	for (i = 0; i < KEY_PTRS(k); i++) {
		if (!ptr_available(c, k, i))
			continue;

		g = PTR_BUCKET(c, k, i);

K
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1208 1209
		if (gen_after(g->last_gc, PTR_GEN(k, i)))
			g->last_gc = PTR_GEN(k, i);
K
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1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224

		if (ptr_stale(c, k, i)) {
			stale = max(stale, ptr_stale(c, k, i));
			continue;
		}

		cache_bug_on(GC_MARK(g) &&
			     (GC_MARK(g) == GC_MARK_METADATA) != (level != 0),
			     c, "inconsistent ptrs: mark = %llu, level = %i",
			     GC_MARK(g), level);

		if (level)
			SET_GC_MARK(g, GC_MARK_METADATA);
		else if (KEY_DIRTY(k))
			SET_GC_MARK(g, GC_MARK_DIRTY);
1225 1226
		else if (!GC_MARK(g))
			SET_GC_MARK(g, GC_MARK_RECLAIMABLE);
K
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1227 1228

		/* guard against overflow */
1229
		SET_GC_SECTORS_USED(g, min_t(unsigned int,
K
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1230
					     GC_SECTORS_USED(g) + KEY_SIZE(k),
1231
					     MAX_GC_SECTORS_USED));
K
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1232 1233 1234 1235 1236 1237 1238 1239 1240

		BUG_ON(!GC_SECTORS_USED(g));
	}

	return stale;
}

#define btree_mark_key(b, k)	__bch_btree_mark_key(b->c, b->level, k)

1241 1242
void bch_initial_mark_key(struct cache_set *c, int level, struct bkey *k)
{
1243
	unsigned int i;
1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260

	for (i = 0; i < KEY_PTRS(k); i++)
		if (ptr_available(c, k, i) &&
		    !ptr_stale(c, k, i)) {
			struct bucket *b = PTR_BUCKET(c, k, i);

			b->gen = PTR_GEN(k, i);

			if (level && bkey_cmp(k, &ZERO_KEY))
				b->prio = BTREE_PRIO;
			else if (!level && b->prio == BTREE_PRIO)
				b->prio = INITIAL_PRIO;
		}

	__bch_btree_mark_key(c, level, k);
}

1261 1262 1263 1264 1265
void bch_update_bucket_in_use(struct cache_set *c, struct gc_stat *stats)
{
	stats->in_use = (c->nbuckets - c->avail_nbuckets) * 100 / c->nbuckets;
}

K
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1266
static bool btree_gc_mark_node(struct btree *b, struct gc_stat *gc)
K
Kent Overstreet 已提交
1267 1268
{
	uint8_t stale = 0;
1269
	unsigned int keys = 0, good_keys = 0;
K
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1270 1271 1272 1273 1274 1275
	struct bkey *k;
	struct btree_iter iter;
	struct bset_tree *t;

	gc->nodes++;

1276
	for_each_key_filter(&b->keys, k, &iter, bch_ptr_invalid) {
K
Kent Overstreet 已提交
1277
		stale = max(stale, btree_mark_key(b, k));
K
Kent Overstreet 已提交
1278
		keys++;
K
Kent Overstreet 已提交
1279

K
Kent Overstreet 已提交
1280
		if (bch_ptr_bad(&b->keys, k))
K
Kent Overstreet 已提交
1281 1282 1283 1284
			continue;

		gc->key_bytes += bkey_u64s(k);
		gc->nkeys++;
K
Kent Overstreet 已提交
1285
		good_keys++;
K
Kent Overstreet 已提交
1286 1287 1288 1289

		gc->data += KEY_SIZE(k);
	}

K
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1290
	for (t = b->keys.set; t <= &b->keys.set[b->keys.nsets]; t++)
K
Kent Overstreet 已提交
1291
		btree_bug_on(t->size &&
K
Kent Overstreet 已提交
1292
			     bset_written(&b->keys, t) &&
K
Kent Overstreet 已提交
1293 1294 1295
			     bkey_cmp(&b->key, &t->end) < 0,
			     b, "found short btree key in gc");

K
Kent Overstreet 已提交
1296 1297
	if (b->c->gc_always_rewrite)
		return true;
K
Kent Overstreet 已提交
1298

K
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1299 1300
	if (stale > 10)
		return true;
K
Kent Overstreet 已提交
1301

K
Kent Overstreet 已提交
1302 1303
	if ((keys - good_keys) * 2 > keys)
		return true;
K
Kent Overstreet 已提交
1304

K
Kent Overstreet 已提交
1305
	return false;
K
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1306 1307
}

K
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1308
#define GC_MERGE_NODES	4U
K
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1309 1310 1311

struct gc_merge_info {
	struct btree	*b;
1312
	unsigned int	keys;
K
Kent Overstreet 已提交
1313 1314
};

1315 1316 1317 1318
static int bch_btree_insert_node(struct btree *b, struct btree_op *op,
				 struct keylist *insert_keys,
				 atomic_t *journal_ref,
				 struct bkey *replace_key);
K
Kent Overstreet 已提交
1319 1320

static int btree_gc_coalesce(struct btree *b, struct btree_op *op,
1321
			     struct gc_stat *gc, struct gc_merge_info *r)
K
Kent Overstreet 已提交
1322
{
1323
	unsigned int i, nodes = 0, keys = 0, blocks;
K
Kent Overstreet 已提交
1324
	struct btree *new_nodes[GC_MERGE_NODES];
1325
	struct keylist keylist;
K
Kent Overstreet 已提交
1326
	struct closure cl;
K
Kent Overstreet 已提交
1327
	struct bkey *k;
K
Kent Overstreet 已提交
1328

1329 1330 1331 1332 1333
	bch_keylist_init(&keylist);

	if (btree_check_reserve(b, NULL))
		return 0;

K
Kent Overstreet 已提交
1334
	memset(new_nodes, 0, sizeof(new_nodes));
K
Kent Overstreet 已提交
1335
	closure_init_stack(&cl);
K
Kent Overstreet 已提交
1336

K
Kent Overstreet 已提交
1337
	while (nodes < GC_MERGE_NODES && !IS_ERR_OR_NULL(r[nodes].b))
K
Kent Overstreet 已提交
1338 1339 1340 1341 1342
		keys += r[nodes++].keys;

	blocks = btree_default_blocks(b->c) * 2 / 3;

	if (nodes < 2 ||
K
Kent Overstreet 已提交
1343
	    __set_blocks(b->keys.set[0].data, keys,
1344
			 block_bytes(b->c)) > blocks * (nodes - 1))
K
Kent Overstreet 已提交
1345
		return 0;
K
Kent Overstreet 已提交
1346

K
Kent Overstreet 已提交
1347
	for (i = 0; i < nodes; i++) {
1348
		new_nodes[i] = btree_node_alloc_replacement(r[i].b, NULL);
K
Kent Overstreet 已提交
1349 1350
		if (IS_ERR_OR_NULL(new_nodes[i]))
			goto out_nocoalesce;
K
Kent Overstreet 已提交
1351 1352
	}

1353 1354 1355 1356 1357 1358 1359 1360 1361
	/*
	 * We have to check the reserve here, after we've allocated our new
	 * nodes, to make sure the insert below will succeed - we also check
	 * before as an optimization to potentially avoid a bunch of expensive
	 * allocs/sorts
	 */
	if (btree_check_reserve(b, NULL))
		goto out_nocoalesce;

K
Kent Overstreet 已提交
1362 1363 1364
	for (i = 0; i < nodes; i++)
		mutex_lock(&new_nodes[i]->write_lock);

K
Kent Overstreet 已提交
1365
	for (i = nodes - 1; i > 0; --i) {
1366 1367
		struct bset *n1 = btree_bset_first(new_nodes[i]);
		struct bset *n2 = btree_bset_first(new_nodes[i - 1]);
K
Kent Overstreet 已提交
1368 1369 1370 1371
		struct bkey *k, *last = NULL;

		keys = 0;

K
Kent Overstreet 已提交
1372 1373
		if (i > 1) {
			for (k = n2->start;
K
Kent Overstreet 已提交
1374
			     k < bset_bkey_last(n2);
K
Kent Overstreet 已提交
1375 1376
			     k = bkey_next(k)) {
				if (__set_blocks(n1, n1->keys + keys +
1377 1378
						 bkey_u64s(k),
						 block_bytes(b->c)) > blocks)
K
Kent Overstreet 已提交
1379 1380 1381 1382 1383 1384
					break;

				last = k;
				keys += bkey_u64s(k);
			}
		} else {
K
Kent Overstreet 已提交
1385 1386 1387 1388 1389 1390 1391 1392
			/*
			 * Last node we're not getting rid of - we're getting
			 * rid of the node at r[0]. Have to try and fit all of
			 * the remaining keys into this node; we can't ensure
			 * they will always fit due to rounding and variable
			 * length keys (shouldn't be possible in practice,
			 * though)
			 */
K
Kent Overstreet 已提交
1393
			if (__set_blocks(n1, n1->keys + n2->keys,
1394 1395
					 block_bytes(b->c)) >
			    btree_blocks(new_nodes[i]))
K
Kent Overstreet 已提交
1396
				goto out_nocoalesce;
K
Kent Overstreet 已提交
1397 1398

			keys = n2->keys;
K
Kent Overstreet 已提交
1399
			/* Take the key of the node we're getting rid of */
K
Kent Overstreet 已提交
1400
			last = &r->b->key;
K
Kent Overstreet 已提交
1401
		}
K
Kent Overstreet 已提交
1402

1403 1404
		BUG_ON(__set_blocks(n1, n1->keys + keys, block_bytes(b->c)) >
		       btree_blocks(new_nodes[i]));
K
Kent Overstreet 已提交
1405

K
Kent Overstreet 已提交
1406 1407
		if (last)
			bkey_copy_key(&new_nodes[i]->key, last);
K
Kent Overstreet 已提交
1408

K
Kent Overstreet 已提交
1409
		memcpy(bset_bkey_last(n1),
K
Kent Overstreet 已提交
1410
		       n2->start,
K
Kent Overstreet 已提交
1411
		       (void *) bset_bkey_idx(n2, keys) - (void *) n2->start);
K
Kent Overstreet 已提交
1412 1413

		n1->keys += keys;
K
Kent Overstreet 已提交
1414
		r[i].keys = n1->keys;
K
Kent Overstreet 已提交
1415 1416

		memmove(n2->start,
K
Kent Overstreet 已提交
1417 1418 1419
			bset_bkey_idx(n2, keys),
			(void *) bset_bkey_last(n2) -
			(void *) bset_bkey_idx(n2, keys));
K
Kent Overstreet 已提交
1420 1421 1422

		n2->keys -= keys;

1423
		if (__bch_keylist_realloc(&keylist,
1424
					  bkey_u64s(&new_nodes[i]->key)))
K
Kent Overstreet 已提交
1425 1426 1427
			goto out_nocoalesce;

		bch_btree_node_write(new_nodes[i], &cl);
1428
		bch_keylist_add(&keylist, &new_nodes[i]->key);
K
Kent Overstreet 已提交
1429 1430
	}

K
Kent Overstreet 已提交
1431 1432 1433
	for (i = 0; i < nodes; i++)
		mutex_unlock(&new_nodes[i]->write_lock);

1434 1435 1436 1437 1438 1439
	closure_sync(&cl);

	/* We emptied out this node */
	BUG_ON(btree_bset_first(new_nodes[0])->keys);
	btree_node_free(new_nodes[0]);
	rw_unlock(true, new_nodes[0]);
1440
	new_nodes[0] = NULL;
1441

K
Kent Overstreet 已提交
1442
	for (i = 0; i < nodes; i++) {
1443
		if (__bch_keylist_realloc(&keylist, bkey_u64s(&r[i].b->key)))
K
Kent Overstreet 已提交
1444
			goto out_nocoalesce;
K
Kent Overstreet 已提交
1445

1446 1447
		make_btree_freeing_key(r[i].b, keylist.top);
		bch_keylist_push(&keylist);
K
Kent Overstreet 已提交
1448
	}
K
Kent Overstreet 已提交
1449

1450 1451
	bch_btree_insert_node(b, op, &keylist, NULL, NULL);
	BUG_ON(!bch_keylist_empty(&keylist));
K
Kent Overstreet 已提交
1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463

	for (i = 0; i < nodes; i++) {
		btree_node_free(r[i].b);
		rw_unlock(true, r[i].b);

		r[i].b = new_nodes[i];
	}

	memmove(r, r + 1, sizeof(r[0]) * (nodes - 1));
	r[nodes - 1].b = ERR_PTR(-EINTR);

	trace_bcache_btree_gc_coalesce(nodes);
K
Kent Overstreet 已提交
1464 1465
	gc->nodes--;

1466 1467
	bch_keylist_free(&keylist);

K
Kent Overstreet 已提交
1468 1469 1470 1471 1472
	/* Invalidated our iterator */
	return -EINTR;

out_nocoalesce:
	closure_sync(&cl);
1473
	bch_keylist_free(&keylist);
K
Kent Overstreet 已提交
1474

1475
	while ((k = bch_keylist_pop(&keylist)))
K
Kent Overstreet 已提交
1476 1477 1478 1479 1480 1481 1482 1483 1484
		if (!bkey_cmp(k, &ZERO_KEY))
			atomic_dec(&b->c->prio_blocked);

	for (i = 0; i < nodes; i++)
		if (!IS_ERR_OR_NULL(new_nodes[i])) {
			btree_node_free(new_nodes[i]);
			rw_unlock(true, new_nodes[i]);
		}
	return 0;
K
Kent Overstreet 已提交
1485 1486
}

1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501 1502 1503 1504 1505 1506 1507 1508 1509 1510 1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522
static int btree_gc_rewrite_node(struct btree *b, struct btree_op *op,
				 struct btree *replace)
{
	struct keylist keys;
	struct btree *n;

	if (btree_check_reserve(b, NULL))
		return 0;

	n = btree_node_alloc_replacement(replace, NULL);

	/* recheck reserve after allocating replacement node */
	if (btree_check_reserve(b, NULL)) {
		btree_node_free(n);
		rw_unlock(true, n);
		return 0;
	}

	bch_btree_node_write_sync(n);

	bch_keylist_init(&keys);
	bch_keylist_add(&keys, &n->key);

	make_btree_freeing_key(replace, keys.top);
	bch_keylist_push(&keys);

	bch_btree_insert_node(b, op, &keys, NULL, NULL);
	BUG_ON(!bch_keylist_empty(&keys));

	btree_node_free(replace);
	rw_unlock(true, n);

	/* Invalidated our iterator */
	return -EINTR;
}

1523
static unsigned int btree_gc_count_keys(struct btree *b)
K
Kent Overstreet 已提交
1524
{
K
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1525 1526
	struct bkey *k;
	struct btree_iter iter;
1527
	unsigned int ret = 0;
K
Kent Overstreet 已提交
1528

1529
	for_each_key_filter(&b->keys, k, &iter, bch_ptr_bad)
K
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1530 1531 1532 1533
		ret += bkey_u64s(k);

	return ret;
}
K
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1534

1535 1536 1537 1538 1539 1540 1541 1542 1543 1544 1545 1546 1547 1548 1549 1550 1551 1552 1553 1554 1555 1556 1557 1558 1559 1560
static size_t btree_gc_min_nodes(struct cache_set *c)
{
	size_t min_nodes;

	/*
	 * Since incremental GC would stop 100ms when front
	 * side I/O comes, so when there are many btree nodes,
	 * if GC only processes constant (100) nodes each time,
	 * GC would last a long time, and the front side I/Os
	 * would run out of the buckets (since no new bucket
	 * can be allocated during GC), and be blocked again.
	 * So GC should not process constant nodes, but varied
	 * nodes according to the number of btree nodes, which
	 * realized by dividing GC into constant(100) times,
	 * so when there are many btree nodes, GC can process
	 * more nodes each time, otherwise, GC will process less
	 * nodes each time (but no less than MIN_GC_NODES)
	 */
	min_nodes = c->gc_stats.nodes / MAX_GC_TIMES;
	if (min_nodes < MIN_GC_NODES)
		min_nodes = MIN_GC_NODES;

	return min_nodes;
}


K
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1561 1562 1563 1564 1565 1566 1567
static int btree_gc_recurse(struct btree *b, struct btree_op *op,
			    struct closure *writes, struct gc_stat *gc)
{
	int ret = 0;
	bool should_rewrite;
	struct bkey *k;
	struct btree_iter iter;
K
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1568
	struct gc_merge_info r[GC_MERGE_NODES];
K
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1569
	struct gc_merge_info *i, *last = r + ARRAY_SIZE(r) - 1;
K
Kent Overstreet 已提交
1570

1571
	bch_btree_iter_init(&b->keys, &iter, &b->c->gc_done);
K
Kent Overstreet 已提交
1572

K
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1573 1574
	for (i = r; i < r + ARRAY_SIZE(r); i++)
		i->b = ERR_PTR(-EINTR);
K
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1575

K
Kent Overstreet 已提交
1576
	while (1) {
K
Kent Overstreet 已提交
1577
		k = bch_btree_iter_next_filter(&iter, &b->keys, bch_ptr_bad);
K
Kent Overstreet 已提交
1578
		if (k) {
1579
			r->b = bch_btree_node_get(b->c, op, k, b->level - 1,
1580
						  true, b);
K
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1581 1582 1583 1584 1585 1586 1587
			if (IS_ERR(r->b)) {
				ret = PTR_ERR(r->b);
				break;
			}

			r->keys = btree_gc_count_keys(r->b);

1588
			ret = btree_gc_coalesce(b, op, gc, r);
K
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1589 1590
			if (ret)
				break;
K
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1591 1592
		}

K
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1593 1594
		if (!last->b)
			break;
K
Kent Overstreet 已提交
1595

K
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1596 1597
		if (!IS_ERR(last->b)) {
			should_rewrite = btree_gc_mark_node(last->b, gc);
1598 1599 1600
			if (should_rewrite) {
				ret = btree_gc_rewrite_node(b, op, last->b);
				if (ret)
K
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1601 1602 1603 1604 1605 1606 1607 1608
					break;
			}

			if (last->b->level) {
				ret = btree_gc_recurse(last->b, op, writes, gc);
				if (ret)
					break;
			}
K
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1609

K
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1610 1611 1612 1613 1614 1615
			bkey_copy_key(&b->c->gc_done, &last->b->key);

			/*
			 * Must flush leaf nodes before gc ends, since replace
			 * operations aren't journalled
			 */
K
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1616
			mutex_lock(&last->b->write_lock);
K
Kent Overstreet 已提交
1617 1618
			if (btree_node_dirty(last->b))
				bch_btree_node_write(last->b, writes);
K
Kent Overstreet 已提交
1619
			mutex_unlock(&last->b->write_lock);
K
Kent Overstreet 已提交
1620 1621 1622 1623 1624
			rw_unlock(true, last->b);
		}

		memmove(r + 1, r, sizeof(r[0]) * (GC_MERGE_NODES - 1));
		r->b = NULL;
K
Kent Overstreet 已提交
1625

T
Tang Junhui 已提交
1626
		if (atomic_read(&b->c->search_inflight) &&
1627
		    gc->nodes >= gc->nodes_pre + btree_gc_min_nodes(b->c)) {
T
Tang Junhui 已提交
1628 1629 1630 1631 1632
			gc->nodes_pre =  gc->nodes;
			ret = -EAGAIN;
			break;
		}

K
Kent Overstreet 已提交
1633 1634 1635 1636 1637 1638
		if (need_resched()) {
			ret = -EAGAIN;
			break;
		}
	}

K
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1639 1640 1641 1642 1643 1644 1645
	for (i = r; i < r + ARRAY_SIZE(r); i++)
		if (!IS_ERR_OR_NULL(i->b)) {
			mutex_lock(&i->b->write_lock);
			if (btree_node_dirty(i->b))
				bch_btree_node_write(i->b, writes);
			mutex_unlock(&i->b->write_lock);
			rw_unlock(true, i->b);
K
Kent Overstreet 已提交
1646
		}
K
Kent Overstreet 已提交
1647 1648 1649 1650 1651 1652 1653 1654

	return ret;
}

static int bch_btree_gc_root(struct btree *b, struct btree_op *op,
			     struct closure *writes, struct gc_stat *gc)
{
	struct btree *n = NULL;
K
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1655 1656
	int ret = 0;
	bool should_rewrite;
K
Kent Overstreet 已提交
1657

K
Kent Overstreet 已提交
1658 1659
	should_rewrite = btree_gc_mark_node(b, gc);
	if (should_rewrite) {
1660
		n = btree_node_alloc_replacement(b, NULL);
K
Kent Overstreet 已提交
1661

K
Kent Overstreet 已提交
1662 1663
		if (!IS_ERR_OR_NULL(n)) {
			bch_btree_node_write_sync(n);
K
Kent Overstreet 已提交
1664

K
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1665 1666 1667
			bch_btree_set_root(n);
			btree_node_free(b);
			rw_unlock(true, n);
K
Kent Overstreet 已提交
1668

K
Kent Overstreet 已提交
1669 1670 1671
			return -EINTR;
		}
	}
K
Kent Overstreet 已提交
1672

1673 1674
	__bch_btree_mark_key(b->c, b->level + 1, &b->key);

K
Kent Overstreet 已提交
1675 1676 1677 1678
	if (b->level) {
		ret = btree_gc_recurse(b, op, writes, gc);
		if (ret)
			return ret;
K
Kent Overstreet 已提交
1679 1680
	}

K
Kent Overstreet 已提交
1681 1682
	bkey_copy_key(&b->c->gc_done, &b->key);

K
Kent Overstreet 已提交
1683 1684 1685 1686 1687 1688 1689
	return ret;
}

static void btree_gc_start(struct cache_set *c)
{
	struct cache *ca;
	struct bucket *b;
1690
	unsigned int i;
K
Kent Overstreet 已提交
1691 1692 1693 1694 1695 1696 1697 1698 1699 1700 1701

	if (!c->gc_mark_valid)
		return;

	mutex_lock(&c->bucket_lock);

	c->gc_mark_valid = 0;
	c->gc_done = ZERO_KEY;

	for_each_cache(ca, c, i)
		for_each_bucket(b, ca) {
K
Kent Overstreet 已提交
1702
			b->last_gc = b->gen;
1703
			if (!atomic_read(&b->pin)) {
1704
				SET_GC_MARK(b, 0);
1705 1706
				SET_GC_SECTORS_USED(b, 0);
			}
K
Kent Overstreet 已提交
1707 1708 1709 1710 1711
		}

	mutex_unlock(&c->bucket_lock);
}

1712
static void bch_btree_gc_finish(struct cache_set *c)
K
Kent Overstreet 已提交
1713 1714 1715
{
	struct bucket *b;
	struct cache *ca;
1716
	unsigned int i;
K
Kent Overstreet 已提交
1717 1718 1719 1720 1721 1722 1723 1724 1725 1726 1727

	mutex_lock(&c->bucket_lock);

	set_gc_sectors(c);
	c->gc_mark_valid = 1;
	c->need_gc	= 0;

	for (i = 0; i < KEY_PTRS(&c->uuid_bucket); i++)
		SET_GC_MARK(PTR_BUCKET(c, &c->uuid_bucket, i),
			    GC_MARK_METADATA);

1728 1729
	/* don't reclaim buckets to which writeback keys point */
	rcu_read_lock();
1730
	for (i = 0; i < c->devices_max_used; i++) {
1731 1732 1733
		struct bcache_device *d = c->devices[i];
		struct cached_dev *dc;
		struct keybuf_key *w, *n;
1734
		unsigned int j;
1735 1736 1737 1738 1739 1740 1741 1742 1743 1744 1745 1746 1747 1748 1749

		if (!d || UUID_FLASH_ONLY(&c->uuids[i]))
			continue;
		dc = container_of(d, struct cached_dev, disk);

		spin_lock(&dc->writeback_keys.lock);
		rbtree_postorder_for_each_entry_safe(w, n,
					&dc->writeback_keys.keys, node)
			for (j = 0; j < KEY_PTRS(&w->key); j++)
				SET_GC_MARK(PTR_BUCKET(c, &w->key, j),
					    GC_MARK_DIRTY);
		spin_unlock(&dc->writeback_keys.lock);
	}
	rcu_read_unlock();

1750
	c->avail_nbuckets = 0;
K
Kent Overstreet 已提交
1751 1752 1753 1754 1755 1756 1757 1758 1759 1760 1761 1762 1763 1764 1765
	for_each_cache(ca, c, i) {
		uint64_t *i;

		ca->invalidate_needs_gc = 0;

		for (i = ca->sb.d; i < ca->sb.d + ca->sb.keys; i++)
			SET_GC_MARK(ca->buckets + *i, GC_MARK_METADATA);

		for (i = ca->prio_buckets;
		     i < ca->prio_buckets + prio_buckets(ca) * 2; i++)
			SET_GC_MARK(ca->buckets + *i, GC_MARK_METADATA);

		for_each_bucket(b, ca) {
			c->need_gc	= max(c->need_gc, bucket_gc_gen(b));

1766 1767 1768 1769 1770 1771
			if (atomic_read(&b->pin))
				continue;

			BUG_ON(!GC_MARK(b) && GC_SECTORS_USED(b));

			if (!GC_MARK(b) || GC_MARK(b) == GC_MARK_RECLAIMABLE)
1772
				c->avail_nbuckets++;
K
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1773 1774 1775 1776 1777 1778
		}
	}

	mutex_unlock(&c->bucket_lock);
}

K
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1779
static void bch_btree_gc(struct cache_set *c)
K
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1780 1781 1782 1783 1784 1785
{
	int ret;
	struct gc_stat stats;
	struct closure writes;
	struct btree_op op;
	uint64_t start_time = local_clock();
K
Kent Overstreet 已提交
1786

K
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1787
	trace_bcache_gc_start(c);
K
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1788 1789 1790

	memset(&stats, 0, sizeof(struct gc_stat));
	closure_init_stack(&writes);
K
Kent Overstreet 已提交
1791
	bch_btree_op_init(&op, SHRT_MAX);
K
Kent Overstreet 已提交
1792 1793 1794

	btree_gc_start(c);

1795
	/* if CACHE_SET_IO_DISABLE set, gc thread should stop too */
K
Kent Overstreet 已提交
1796 1797 1798
	do {
		ret = btree_root(gc_root, c, &op, &writes, &stats);
		closure_sync(&writes);
1799
		cond_resched();
K
Kent Overstreet 已提交
1800

T
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1801 1802 1803 1804
		if (ret == -EAGAIN)
			schedule_timeout_interruptible(msecs_to_jiffies
						       (GC_SLEEP_MS));
		else if (ret)
K
Kent Overstreet 已提交
1805
			pr_warn("gc failed!");
1806
	} while (ret && !test_bit(CACHE_SET_IO_DISABLE, &c->flags));
K
Kent Overstreet 已提交
1807

1808
	bch_btree_gc_finish(c);
K
Kent Overstreet 已提交
1809 1810
	wake_up_allocators(c);

1811
	bch_time_stats_update(&c->btree_gc_time, start_time);
K
Kent Overstreet 已提交
1812 1813 1814

	stats.key_bytes *= sizeof(uint64_t);
	stats.data	<<= 9;
1815
	bch_update_bucket_in_use(c, &stats);
K
Kent Overstreet 已提交
1816 1817
	memcpy(&c->gc_stats, &stats, sizeof(struct gc_stat));

K
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1818
	trace_bcache_gc_end(c);
K
Kent Overstreet 已提交
1819

K
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1820 1821 1822
	bch_moving_gc(c);
}

1823
static bool gc_should_run(struct cache_set *c)
K
Kent Overstreet 已提交
1824
{
K
Kent Overstreet 已提交
1825
	struct cache *ca;
1826
	unsigned int i;
K
Kent Overstreet 已提交
1827

1828 1829 1830
	for_each_cache(ca, c, i)
		if (ca->invalidate_needs_gc)
			return true;
K
Kent Overstreet 已提交
1831

1832 1833
	if (atomic_read(&c->sectors_to_gc) < 0)
		return true;
K
Kent Overstreet 已提交
1834

1835 1836
	return false;
}
K
Kent Overstreet 已提交
1837

1838 1839 1840
static int bch_gc_thread(void *arg)
{
	struct cache_set *c = arg;
K
Kent Overstreet 已提交
1841

1842 1843
	while (1) {
		wait_event_interruptible(c->gc_wait,
1844 1845 1846
			   kthread_should_stop() ||
			   test_bit(CACHE_SET_IO_DISABLE, &c->flags) ||
			   gc_should_run(c));
K
Kent Overstreet 已提交
1847

1848 1849
		if (kthread_should_stop() ||
		    test_bit(CACHE_SET_IO_DISABLE, &c->flags))
1850 1851 1852 1853
			break;

		set_gc_sectors(c);
		bch_btree_gc(c);
K
Kent Overstreet 已提交
1854 1855
	}

1856
	wait_for_kthread_stop();
K
Kent Overstreet 已提交
1857
	return 0;
K
Kent Overstreet 已提交
1858 1859
}

K
Kent Overstreet 已提交
1860
int bch_gc_thread_start(struct cache_set *c)
K
Kent Overstreet 已提交
1861
{
1862
	c->gc_thread = kthread_run(bch_gc_thread, c, "bcache_gc");
V
Vasyl Gomonovych 已提交
1863
	return PTR_ERR_OR_ZERO(c->gc_thread);
K
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1864 1865 1866 1867
}

/* Initial partial gc */

1868
static int bch_btree_check_recurse(struct btree *b, struct btree_op *op)
K
Kent Overstreet 已提交
1869
{
1870 1871
	int ret = 0;
	struct bkey *k, *p = NULL;
K
Kent Overstreet 已提交
1872 1873
	struct btree_iter iter;

1874 1875
	for_each_key_filter(&b->keys, k, &iter, bch_ptr_invalid)
		bch_initial_mark_key(b->c, b->level, k);
K
Kent Overstreet 已提交
1876

1877
	bch_initial_mark_key(b->c, b->level + 1, &b->key);
K
Kent Overstreet 已提交
1878 1879

	if (b->level) {
1880
		bch_btree_iter_init(&b->keys, &iter, NULL);
K
Kent Overstreet 已提交
1881

1882
		do {
K
Kent Overstreet 已提交
1883 1884
			k = bch_btree_iter_next_filter(&iter, &b->keys,
						       bch_ptr_bad);
1885
			if (k) {
1886
				btree_node_prefetch(b, k);
1887 1888 1889 1890 1891 1892
				/*
				 * initiallize c->gc_stats.nodes
				 * for incremental GC
				 */
				b->c->gc_stats.nodes++;
			}
K
Kent Overstreet 已提交
1893

1894
			if (p)
1895
				ret = btree(check_recurse, p, b, op);
K
Kent Overstreet 已提交
1896

1897 1898
			p = k;
		} while (p && !ret);
K
Kent Overstreet 已提交
1899 1900
	}

1901
	return ret;
K
Kent Overstreet 已提交
1902 1903
}

K
Kent Overstreet 已提交
1904
int bch_btree_check(struct cache_set *c)
K
Kent Overstreet 已提交
1905
{
K
Kent Overstreet 已提交
1906
	struct btree_op op;
K
Kent Overstreet 已提交
1907

K
Kent Overstreet 已提交
1908
	bch_btree_op_init(&op, SHRT_MAX);
K
Kent Overstreet 已提交
1909

1910
	return btree_root(check_recurse, c, &op);
K
Kent Overstreet 已提交
1911 1912
}

K
Kent Overstreet 已提交
1913 1914 1915 1916
void bch_initial_gc_finish(struct cache_set *c)
{
	struct cache *ca;
	struct bucket *b;
1917
	unsigned int i;
K
Kent Overstreet 已提交
1918 1919 1920 1921 1922 1923 1924 1925 1926 1927 1928 1929 1930 1931 1932 1933

	bch_btree_gc_finish(c);

	mutex_lock(&c->bucket_lock);

	/*
	 * We need to put some unused buckets directly on the prio freelist in
	 * order to get the allocator thread started - it needs freed buckets in
	 * order to rewrite the prios and gens, and it needs to rewrite prios
	 * and gens in order to free buckets.
	 *
	 * This is only safe for buckets that have no live data in them, which
	 * there should always be some of.
	 */
	for_each_cache(ca, c, i) {
		for_each_bucket(b, ca) {
1934 1935
			if (fifo_full(&ca->free[RESERVE_PRIO]) &&
			    fifo_full(&ca->free[RESERVE_BTREE]))
K
Kent Overstreet 已提交
1936 1937 1938 1939 1940
				break;

			if (bch_can_invalidate_bucket(ca, b) &&
			    !GC_MARK(b)) {
				__bch_invalidate_one_bucket(ca, b);
1941 1942 1943 1944
				if (!fifo_push(&ca->free[RESERVE_PRIO],
				   b - ca->buckets))
					fifo_push(&ca->free[RESERVE_BTREE],
						  b - ca->buckets);
K
Kent Overstreet 已提交
1945 1946 1947 1948 1949 1950 1951
			}
		}
	}

	mutex_unlock(&c->bucket_lock);
}

K
Kent Overstreet 已提交
1952 1953
/* Btree insertion */

1954 1955
static bool btree_insert_key(struct btree *b, struct bkey *k,
			     struct bkey *replace_key)
K
Kent Overstreet 已提交
1956
{
1957
	unsigned int status;
K
Kent Overstreet 已提交
1958 1959

	BUG_ON(bkey_cmp(k, &b->key) > 0);
1960

1961 1962 1963 1964
	status = bch_btree_insert_key(&b->keys, k, replace_key);
	if (status != BTREE_INSERT_STATUS_NO_INSERT) {
		bch_check_keys(&b->keys, "%u for %s", status,
			       replace_key ? "replace" : "insert");
K
Kent Overstreet 已提交
1965

1966 1967 1968 1969 1970
		trace_bcache_btree_insert_key(b, k, replace_key != NULL,
					      status);
		return true;
	} else
		return false;
K
Kent Overstreet 已提交
1971 1972
}

1973 1974
static size_t insert_u64s_remaining(struct btree *b)
{
1975
	long ret = bch_btree_keys_u64s_remaining(&b->keys);
1976 1977 1978 1979 1980 1981 1982 1983 1984 1985

	/*
	 * Might land in the middle of an existing extent and have to split it
	 */
	if (b->keys.ops->is_extents)
		ret -= KEY_MAX_U64S;

	return max(ret, 0L);
}

K
Kent Overstreet 已提交
1986
static bool bch_btree_insert_keys(struct btree *b, struct btree_op *op,
K
Kent Overstreet 已提交
1987 1988
				  struct keylist *insert_keys,
				  struct bkey *replace_key)
K
Kent Overstreet 已提交
1989 1990
{
	bool ret = false;
1991
	int oldsize = bch_count_data(&b->keys);
K
Kent Overstreet 已提交
1992

K
Kent Overstreet 已提交
1993
	while (!bch_keylist_empty(insert_keys)) {
K
Kent Overstreet 已提交
1994
		struct bkey *k = insert_keys->keys;
K
Kent Overstreet 已提交
1995

1996
		if (bkey_u64s(k) > insert_u64s_remaining(b))
1997 1998 1999
			break;

		if (bkey_cmp(k, &b->key) <= 0) {
2000 2001
			if (!b->level)
				bkey_put(b->c, k);
K
Kent Overstreet 已提交
2002

2003
			ret |= btree_insert_key(b, k, replace_key);
K
Kent Overstreet 已提交
2004 2005 2006
			bch_keylist_pop_front(insert_keys);
		} else if (bkey_cmp(&START_KEY(k), &b->key) < 0) {
			BKEY_PADDED(key) temp;
K
Kent Overstreet 已提交
2007
			bkey_copy(&temp.key, insert_keys->keys);
K
Kent Overstreet 已提交
2008 2009

			bch_cut_back(&b->key, &temp.key);
K
Kent Overstreet 已提交
2010
			bch_cut_front(&b->key, insert_keys->keys);
K
Kent Overstreet 已提交
2011

2012
			ret |= btree_insert_key(b, &temp.key, replace_key);
K
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2013 2014 2015 2016
			break;
		} else {
			break;
		}
K
Kent Overstreet 已提交
2017 2018
	}

2019 2020 2021
	if (!ret)
		op->insert_collision = true;

2022 2023
	BUG_ON(!bch_keylist_empty(insert_keys) && b->level);

2024
	BUG_ON(bch_count_data(&b->keys) < oldsize);
K
Kent Overstreet 已提交
2025 2026 2027
	return ret;
}

K
Kent Overstreet 已提交
2028 2029
static int btree_split(struct btree *b, struct btree_op *op,
		       struct keylist *insert_keys,
K
Kent Overstreet 已提交
2030
		       struct bkey *replace_key)
K
Kent Overstreet 已提交
2031
{
2032
	bool split;
K
Kent Overstreet 已提交
2033 2034
	struct btree *n1, *n2 = NULL, *n3 = NULL;
	uint64_t start_time = local_clock();
K
Kent Overstreet 已提交
2035
	struct closure cl;
2036
	struct keylist parent_keys;
K
Kent Overstreet 已提交
2037 2038

	closure_init_stack(&cl);
2039
	bch_keylist_init(&parent_keys);
K
Kent Overstreet 已提交
2040

2041 2042 2043 2044 2045 2046
	if (btree_check_reserve(b, op)) {
		if (!b->level)
			return -EINTR;
		else
			WARN(1, "insufficient reserve for split\n");
	}
2047

2048
	n1 = btree_node_alloc_replacement(b, op);
K
Kent Overstreet 已提交
2049 2050 2051
	if (IS_ERR(n1))
		goto err;

2052 2053
	split = set_blocks(btree_bset_first(n1),
			   block_bytes(n1->c)) > (btree_blocks(b) * 4) / 5;
K
Kent Overstreet 已提交
2054 2055

	if (split) {
2056
		unsigned int keys = 0;
K
Kent Overstreet 已提交
2057

2058
		trace_bcache_btree_node_split(b, btree_bset_first(n1)->keys);
K
Kent Overstreet 已提交
2059

2060
		n2 = bch_btree_node_alloc(b->c, op, b->level, b->parent);
K
Kent Overstreet 已提交
2061 2062 2063
		if (IS_ERR(n2))
			goto err_free1;

2064
		if (!b->parent) {
2065
			n3 = bch_btree_node_alloc(b->c, op, b->level + 1, NULL);
K
Kent Overstreet 已提交
2066 2067 2068 2069
			if (IS_ERR(n3))
				goto err_free2;
		}

K
Kent Overstreet 已提交
2070 2071 2072
		mutex_lock(&n1->write_lock);
		mutex_lock(&n2->write_lock);

K
Kent Overstreet 已提交
2073
		bch_btree_insert_keys(n1, op, insert_keys, replace_key);
K
Kent Overstreet 已提交
2074

2075 2076
		/*
		 * Has to be a linear search because we don't have an auxiliary
K
Kent Overstreet 已提交
2077 2078 2079
		 * search tree yet
		 */

2080 2081
		while (keys < (btree_bset_first(n1)->keys * 3) / 5)
			keys += bkey_u64s(bset_bkey_idx(btree_bset_first(n1),
K
Kent Overstreet 已提交
2082
							keys));
K
Kent Overstreet 已提交
2083

K
Kent Overstreet 已提交
2084
		bkey_copy_key(&n1->key,
2085 2086
			      bset_bkey_idx(btree_bset_first(n1), keys));
		keys += bkey_u64s(bset_bkey_idx(btree_bset_first(n1), keys));
K
Kent Overstreet 已提交
2087

2088 2089
		btree_bset_first(n2)->keys = btree_bset_first(n1)->keys - keys;
		btree_bset_first(n1)->keys = keys;
K
Kent Overstreet 已提交
2090

2091 2092 2093
		memcpy(btree_bset_first(n2)->start,
		       bset_bkey_last(btree_bset_first(n1)),
		       btree_bset_first(n2)->keys * sizeof(uint64_t));
K
Kent Overstreet 已提交
2094 2095 2096

		bkey_copy_key(&n2->key, &b->key);

2097
		bch_keylist_add(&parent_keys, &n2->key);
K
Kent Overstreet 已提交
2098
		bch_btree_node_write(n2, &cl);
K
Kent Overstreet 已提交
2099
		mutex_unlock(&n2->write_lock);
K
Kent Overstreet 已提交
2100
		rw_unlock(true, n2);
K
Kent Overstreet 已提交
2101
	} else {
2102
		trace_bcache_btree_node_compact(b, btree_bset_first(n1)->keys);
K
Kent Overstreet 已提交
2103

K
Kent Overstreet 已提交
2104
		mutex_lock(&n1->write_lock);
K
Kent Overstreet 已提交
2105
		bch_btree_insert_keys(n1, op, insert_keys, replace_key);
K
Kent Overstreet 已提交
2106
	}
K
Kent Overstreet 已提交
2107

2108
	bch_keylist_add(&parent_keys, &n1->key);
K
Kent Overstreet 已提交
2109
	bch_btree_node_write(n1, &cl);
K
Kent Overstreet 已提交
2110
	mutex_unlock(&n1->write_lock);
K
Kent Overstreet 已提交
2111 2112

	if (n3) {
2113
		/* Depth increases, make a new root */
K
Kent Overstreet 已提交
2114
		mutex_lock(&n3->write_lock);
K
Kent Overstreet 已提交
2115
		bkey_copy_key(&n3->key, &MAX_KEY);
2116
		bch_btree_insert_keys(n3, op, &parent_keys, NULL);
K
Kent Overstreet 已提交
2117
		bch_btree_node_write(n3, &cl);
K
Kent Overstreet 已提交
2118
		mutex_unlock(&n3->write_lock);
K
Kent Overstreet 已提交
2119

K
Kent Overstreet 已提交
2120
		closure_sync(&cl);
K
Kent Overstreet 已提交
2121 2122
		bch_btree_set_root(n3);
		rw_unlock(true, n3);
2123 2124
	} else if (!b->parent) {
		/* Root filled up but didn't need to be split */
K
Kent Overstreet 已提交
2125
		closure_sync(&cl);
K
Kent Overstreet 已提交
2126 2127
		bch_btree_set_root(n1);
	} else {
2128
		/* Split a non root node */
K
Kent Overstreet 已提交
2129
		closure_sync(&cl);
2130 2131 2132 2133 2134
		make_btree_freeing_key(b, parent_keys.top);
		bch_keylist_push(&parent_keys);

		bch_btree_insert_node(b->parent, op, &parent_keys, NULL, NULL);
		BUG_ON(!bch_keylist_empty(&parent_keys));
K
Kent Overstreet 已提交
2135 2136
	}

2137
	btree_node_free(b);
K
Kent Overstreet 已提交
2138 2139
	rw_unlock(true, n1);

2140
	bch_time_stats_update(&b->c->btree_split_time, start_time);
K
Kent Overstreet 已提交
2141 2142 2143

	return 0;
err_free2:
2144
	bkey_put(b->c, &n2->key);
2145
	btree_node_free(n2);
K
Kent Overstreet 已提交
2146 2147
	rw_unlock(true, n2);
err_free1:
2148
	bkey_put(b->c, &n1->key);
2149
	btree_node_free(n1);
K
Kent Overstreet 已提交
2150 2151
	rw_unlock(true, n1);
err:
2152
	WARN(1, "bcache: btree split failed (level %u)", b->level);
2153

K
Kent Overstreet 已提交
2154 2155 2156 2157 2158 2159 2160 2161
	if (n3 == ERR_PTR(-EAGAIN) ||
	    n2 == ERR_PTR(-EAGAIN) ||
	    n1 == ERR_PTR(-EAGAIN))
		return -EAGAIN;

	return -ENOMEM;
}

K
Kent Overstreet 已提交
2162
static int bch_btree_insert_node(struct btree *b, struct btree_op *op,
K
Kent Overstreet 已提交
2163
				 struct keylist *insert_keys,
K
Kent Overstreet 已提交
2164 2165
				 atomic_t *journal_ref,
				 struct bkey *replace_key)
K
Kent Overstreet 已提交
2166
{
K
Kent Overstreet 已提交
2167 2168
	struct closure cl;

2169 2170
	BUG_ON(b->level && replace_key);

K
Kent Overstreet 已提交
2171 2172 2173 2174 2175 2176 2177 2178
	closure_init_stack(&cl);

	mutex_lock(&b->write_lock);

	if (write_block(b) != btree_bset_last(b) &&
	    b->keys.last_set_unwritten)
		bch_btree_init_next(b); /* just wrote a set */

2179
	if (bch_keylist_nkeys(insert_keys) > insert_u64s_remaining(b)) {
K
Kent Overstreet 已提交
2180 2181 2182
		mutex_unlock(&b->write_lock);
		goto split;
	}
2183

K
Kent Overstreet 已提交
2184
	BUG_ON(write_block(b) != btree_bset_last(b));
K
Kent Overstreet 已提交
2185

K
Kent Overstreet 已提交
2186 2187 2188 2189 2190 2191
	if (bch_btree_insert_keys(b, op, insert_keys, replace_key)) {
		if (!b->level)
			bch_btree_leaf_dirty(b, journal_ref);
		else
			bch_btree_node_write(b, &cl);
	}
2192

K
Kent Overstreet 已提交
2193 2194 2195 2196 2197 2198 2199 2200 2201 2202 2203 2204 2205 2206 2207 2208 2209 2210 2211 2212 2213 2214
	mutex_unlock(&b->write_lock);

	/* wait for btree node write if necessary, after unlock */
	closure_sync(&cl);

	return 0;
split:
	if (current->bio_list) {
		op->lock = b->c->root->level + 1;
		return -EAGAIN;
	} else if (op->lock <= b->c->root->level) {
		op->lock = b->c->root->level + 1;
		return -EINTR;
	} else {
		/* Invalidated all iterators */
		int ret = btree_split(b, op, insert_keys, replace_key);

		if (bch_keylist_empty(insert_keys))
			return 0;
		else if (!ret)
			return -EINTR;
		return ret;
2215
	}
K
Kent Overstreet 已提交
2216
}
K
Kent Overstreet 已提交
2217

2218 2219 2220 2221 2222 2223 2224 2225 2226 2227 2228 2229 2230 2231 2232 2233
int bch_btree_insert_check_key(struct btree *b, struct btree_op *op,
			       struct bkey *check_key)
{
	int ret = -EINTR;
	uint64_t btree_ptr = b->key.ptr[0];
	unsigned long seq = b->seq;
	struct keylist insert;
	bool upgrade = op->lock == -1;

	bch_keylist_init(&insert);

	if (upgrade) {
		rw_unlock(false, b);
		rw_lock(true, b, b->level);

		if (b->key.ptr[0] != btree_ptr ||
2234
		    b->seq != seq + 1) {
B
Bart Van Assche 已提交
2235
			op->lock = b->level;
2236
			goto out;
2237
		}
2238 2239 2240 2241 2242 2243 2244 2245 2246
	}

	SET_KEY_PTRS(check_key, 1);
	get_random_bytes(&check_key->ptr[0], sizeof(uint64_t));

	SET_PTR_DEV(check_key, 0, PTR_CHECK_DEV);

	bch_keylist_add(&insert, check_key);

K
Kent Overstreet 已提交
2247
	ret = bch_btree_insert_node(b, op, &insert, NULL, NULL);
2248 2249 2250 2251 2252 2253 2254 2255

	BUG_ON(!ret && !bch_keylist_empty(&insert));
out:
	if (upgrade)
		downgrade_write(&b->lock);
	return ret;
}

2256 2257 2258 2259 2260 2261
struct btree_insert_op {
	struct btree_op	op;
	struct keylist	*keys;
	atomic_t	*journal_ref;
	struct bkey	*replace_key;
};
K
Kent Overstreet 已提交
2262

2263
static int btree_insert_fn(struct btree_op *b_op, struct btree *b)
2264 2265 2266
{
	struct btree_insert_op *op = container_of(b_op,
					struct btree_insert_op, op);
K
Kent Overstreet 已提交
2267

2268 2269 2270 2271 2272 2273
	int ret = bch_btree_insert_node(b, &op->op, op->keys,
					op->journal_ref, op->replace_key);
	if (ret && !bch_keylist_empty(op->keys))
		return ret;
	else
		return MAP_DONE;
K
Kent Overstreet 已提交
2274 2275
}

2276 2277
int bch_btree_insert(struct cache_set *c, struct keylist *keys,
		     atomic_t *journal_ref, struct bkey *replace_key)
K
Kent Overstreet 已提交
2278
{
2279
	struct btree_insert_op op;
K
Kent Overstreet 已提交
2280 2281
	int ret = 0;

2282
	BUG_ON(current->bio_list);
2283
	BUG_ON(bch_keylist_empty(keys));
K
Kent Overstreet 已提交
2284

2285 2286 2287 2288
	bch_btree_op_init(&op.op, 0);
	op.keys		= keys;
	op.journal_ref	= journal_ref;
	op.replace_key	= replace_key;
K
Kent Overstreet 已提交
2289

2290 2291 2292 2293 2294 2295
	while (!ret && !bch_keylist_empty(keys)) {
		op.op.lock = 0;
		ret = bch_btree_map_leaf_nodes(&op.op, c,
					       &START_KEY(keys->keys),
					       btree_insert_fn);
	}
K
Kent Overstreet 已提交
2296

2297 2298
	if (ret) {
		struct bkey *k;
K
Kent Overstreet 已提交
2299

2300
		pr_err("error %i", ret);
K
Kent Overstreet 已提交
2301

2302
		while ((k = bch_keylist_pop(keys)))
2303
			bkey_put(c, k);
2304 2305
	} else if (op.op.insert_collision)
		ret = -ESRCH;
2306

K
Kent Overstreet 已提交
2307 2308 2309 2310 2311
	return ret;
}

void bch_btree_set_root(struct btree *b)
{
2312
	unsigned int i;
K
Kent Overstreet 已提交
2313 2314 2315
	struct closure cl;

	closure_init_stack(&cl);
K
Kent Overstreet 已提交
2316

K
Kent Overstreet 已提交
2317 2318
	trace_bcache_btree_set_root(b);

K
Kent Overstreet 已提交
2319 2320 2321 2322 2323 2324 2325 2326 2327 2328 2329
	BUG_ON(!b->written);

	for (i = 0; i < KEY_PTRS(&b->key); i++)
		BUG_ON(PTR_BUCKET(b->c, &b->key, i)->prio != BTREE_PRIO);

	mutex_lock(&b->c->bucket_lock);
	list_del_init(&b->list);
	mutex_unlock(&b->c->bucket_lock);

	b->c->root = b;

K
Kent Overstreet 已提交
2330 2331
	bch_journal_meta(b->c, &cl);
	closure_sync(&cl);
K
Kent Overstreet 已提交
2332 2333
}

2334 2335 2336 2337 2338 2339 2340 2341 2342 2343 2344 2345
/* Map across nodes or keys */

static int bch_btree_map_nodes_recurse(struct btree *b, struct btree_op *op,
				       struct bkey *from,
				       btree_map_nodes_fn *fn, int flags)
{
	int ret = MAP_CONTINUE;

	if (b->level) {
		struct bkey *k;
		struct btree_iter iter;

2346
		bch_btree_iter_init(&b->keys, &iter, from);
2347

K
Kent Overstreet 已提交
2348
		while ((k = bch_btree_iter_next_filter(&iter, &b->keys,
2349 2350 2351 2352 2353 2354 2355 2356 2357 2358 2359 2360 2361 2362 2363 2364 2365 2366 2367
						       bch_ptr_bad))) {
			ret = btree(map_nodes_recurse, k, b,
				    op, from, fn, flags);
			from = NULL;

			if (ret != MAP_CONTINUE)
				return ret;
		}
	}

	if (!b->level || flags == MAP_ALL_NODES)
		ret = fn(op, b);

	return ret;
}

int __bch_btree_map_nodes(struct btree_op *op, struct cache_set *c,
			  struct bkey *from, btree_map_nodes_fn *fn, int flags)
{
K
Kent Overstreet 已提交
2368
	return btree_root(map_nodes_recurse, c, op, from, fn, flags);
2369 2370 2371 2372 2373 2374 2375 2376 2377 2378
}

static int bch_btree_map_keys_recurse(struct btree *b, struct btree_op *op,
				      struct bkey *from, btree_map_keys_fn *fn,
				      int flags)
{
	int ret = MAP_CONTINUE;
	struct bkey *k;
	struct btree_iter iter;

2379
	bch_btree_iter_init(&b->keys, &iter, from);
2380

K
Kent Overstreet 已提交
2381
	while ((k = bch_btree_iter_next_filter(&iter, &b->keys, bch_ptr_bad))) {
2382 2383 2384 2385 2386 2387 2388 2389 2390 2391 2392 2393 2394 2395 2396 2397 2398 2399 2400
		ret = !b->level
			? fn(op, b, k)
			: btree(map_keys_recurse, k, b, op, from, fn, flags);
		from = NULL;

		if (ret != MAP_CONTINUE)
			return ret;
	}

	if (!b->level && (flags & MAP_END_KEY))
		ret = fn(op, b, &KEY(KEY_INODE(&b->key),
				     KEY_OFFSET(&b->key), 0));

	return ret;
}

int bch_btree_map_keys(struct btree_op *op, struct cache_set *c,
		       struct bkey *from, btree_map_keys_fn *fn, int flags)
{
K
Kent Overstreet 已提交
2401
	return btree_root(map_keys_recurse, c, op, from, fn, flags);
2402 2403
}

K
Kent Overstreet 已提交
2404 2405 2406 2407 2408 2409 2410 2411 2412 2413 2414 2415 2416 2417 2418 2419 2420 2421
/* Keybuf code */

static inline int keybuf_cmp(struct keybuf_key *l, struct keybuf_key *r)
{
	/* Overlapping keys compare equal */
	if (bkey_cmp(&l->key, &START_KEY(&r->key)) <= 0)
		return -1;
	if (bkey_cmp(&START_KEY(&l->key), &r->key) >= 0)
		return 1;
	return 0;
}

static inline int keybuf_nonoverlapping_cmp(struct keybuf_key *l,
					    struct keybuf_key *r)
{
	return clamp_t(int64_t, bkey_cmp(&l->key, &r->key), -1, 1);
}

2422 2423
struct refill {
	struct btree_op	op;
2424
	unsigned int	nr_found;
2425 2426 2427 2428
	struct keybuf	*buf;
	struct bkey	*end;
	keybuf_pred_fn	*pred;
};
K
Kent Overstreet 已提交
2429

2430 2431 2432 2433 2434 2435
static int refill_keybuf_fn(struct btree_op *op, struct btree *b,
			    struct bkey *k)
{
	struct refill *refill = container_of(op, struct refill, op);
	struct keybuf *buf = refill->buf;
	int ret = MAP_CONTINUE;
K
Kent Overstreet 已提交
2436

2437 2438 2439 2440
	if (bkey_cmp(k, refill->end) >= 0) {
		ret = MAP_DONE;
		goto out;
	}
K
Kent Overstreet 已提交
2441

2442 2443
	if (!KEY_SIZE(k)) /* end key */
		goto out;
K
Kent Overstreet 已提交
2444

2445 2446
	if (refill->pred(buf, k)) {
		struct keybuf_key *w;
K
Kent Overstreet 已提交
2447

2448
		spin_lock(&buf->lock);
K
Kent Overstreet 已提交
2449

2450 2451 2452 2453 2454
		w = array_alloc(&buf->freelist);
		if (!w) {
			spin_unlock(&buf->lock);
			return MAP_DONE;
		}
K
Kent Overstreet 已提交
2455

2456 2457
		w->private = NULL;
		bkey_copy(&w->key, k);
K
Kent Overstreet 已提交
2458

2459 2460
		if (RB_INSERT(&buf->keys, w, node, keybuf_cmp))
			array_free(&buf->freelist, w);
2461 2462
		else
			refill->nr_found++;
K
Kent Overstreet 已提交
2463

2464 2465
		if (array_freelist_empty(&buf->freelist))
			ret = MAP_DONE;
K
Kent Overstreet 已提交
2466

2467
		spin_unlock(&buf->lock);
K
Kent Overstreet 已提交
2468
	}
2469 2470 2471
out:
	buf->last_scanned = *k;
	return ret;
K
Kent Overstreet 已提交
2472 2473 2474
}

void bch_refill_keybuf(struct cache_set *c, struct keybuf *buf,
K
Kent Overstreet 已提交
2475
		       struct bkey *end, keybuf_pred_fn *pred)
K
Kent Overstreet 已提交
2476 2477
{
	struct bkey start = buf->last_scanned;
2478
	struct refill refill;
K
Kent Overstreet 已提交
2479 2480 2481

	cond_resched();

K
Kent Overstreet 已提交
2482
	bch_btree_op_init(&refill.op, -1);
2483 2484 2485 2486
	refill.nr_found	= 0;
	refill.buf	= buf;
	refill.end	= end;
	refill.pred	= pred;
2487 2488 2489

	bch_btree_map_keys(&refill.op, c, &buf->last_scanned,
			   refill_keybuf_fn, MAP_END_KEY);
K
Kent Overstreet 已提交
2490

2491 2492 2493 2494
	trace_bcache_keyscan(refill.nr_found,
			     KEY_INODE(&start), KEY_OFFSET(&start),
			     KEY_INODE(&buf->last_scanned),
			     KEY_OFFSET(&buf->last_scanned));
K
Kent Overstreet 已提交
2495 2496 2497 2498 2499

	spin_lock(&buf->lock);

	if (!RB_EMPTY_ROOT(&buf->keys)) {
		struct keybuf_key *w;
2500

K
Kent Overstreet 已提交
2501 2502 2503 2504 2505 2506 2507 2508 2509 2510 2511 2512 2513 2514 2515 2516 2517 2518 2519 2520 2521 2522 2523 2524 2525 2526 2527 2528 2529 2530 2531
		w = RB_FIRST(&buf->keys, struct keybuf_key, node);
		buf->start	= START_KEY(&w->key);

		w = RB_LAST(&buf->keys, struct keybuf_key, node);
		buf->end	= w->key;
	} else {
		buf->start	= MAX_KEY;
		buf->end	= MAX_KEY;
	}

	spin_unlock(&buf->lock);
}

static void __bch_keybuf_del(struct keybuf *buf, struct keybuf_key *w)
{
	rb_erase(&w->node, &buf->keys);
	array_free(&buf->freelist, w);
}

void bch_keybuf_del(struct keybuf *buf, struct keybuf_key *w)
{
	spin_lock(&buf->lock);
	__bch_keybuf_del(buf, w);
	spin_unlock(&buf->lock);
}

bool bch_keybuf_check_overlapping(struct keybuf *buf, struct bkey *start,
				  struct bkey *end)
{
	bool ret = false;
	struct keybuf_key *p, *w, s;
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	s.key = *start;

	if (bkey_cmp(end, &buf->start) <= 0 ||
	    bkey_cmp(start, &buf->end) >= 0)
		return false;

	spin_lock(&buf->lock);
	w = RB_GREATER(&buf->keys, s, node, keybuf_nonoverlapping_cmp);

	while (w && bkey_cmp(&START_KEY(&w->key), end) < 0) {
		p = w;
		w = RB_NEXT(w, node);

		if (p->private)
			ret = true;
		else
			__bch_keybuf_del(buf, p);
	}

	spin_unlock(&buf->lock);
	return ret;
}

struct keybuf_key *bch_keybuf_next(struct keybuf *buf)
{
	struct keybuf_key *w;
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	spin_lock(&buf->lock);

	w = RB_FIRST(&buf->keys, struct keybuf_key, node);

	while (w && w->private)
		w = RB_NEXT(w, node);

	if (w)
		w->private = ERR_PTR(-EINTR);

	spin_unlock(&buf->lock);
	return w;
}

struct keybuf_key *bch_keybuf_next_rescan(struct cache_set *c,
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					  struct keybuf *buf,
					  struct bkey *end,
					  keybuf_pred_fn *pred)
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{
	struct keybuf_key *ret;

	while (1) {
		ret = bch_keybuf_next(buf);
		if (ret)
			break;

		if (bkey_cmp(&buf->last_scanned, end) >= 0) {
			pr_debug("scan finished");
			break;
		}

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		bch_refill_keybuf(c, buf, end, pred);
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	}

	return ret;
}

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void bch_keybuf_init(struct keybuf *buf)
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{
	buf->last_scanned	= MAX_KEY;
	buf->keys		= RB_ROOT;

	spin_lock_init(&buf->lock);
	array_allocator_init(&buf->freelist);
}