btree.c 57.9 KB
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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.
 *
 * All configuration is done via sysfs; see Documentation/bcache.txt.
 */

#include "bcache.h"
#include "btree.h"
#include "debug.h"
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#include "writeback.h"
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#include <linux/slab.h>
#include <linux/bitops.h>
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#include <linux/freezer.h>
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#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>
#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.
 *
 * Make sure all allocations get charged to the root cgroup
 *
 * Plugging?
 *
 * If data write is less than hard sector size of ssd, round up offset in open
 * bucket to the next whole sector
 *
 * Also lookup by cgroup in get_open_bucket()
 *
 * 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
 */

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enum {
	BTREE_INSERT_STATUS_INSERT,
	BTREE_INSERT_STATUS_BACK_MERGE,
	BTREE_INSERT_STATUS_OVERWROTE,
	BTREE_INSERT_STATUS_FRONT_MERGE,
};

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#define MAX_NEED_GC		64
#define MAX_SAVE_PRIO		72

#define PTR_DIRTY_BIT		(((uint64_t) 1 << 36))

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

static struct workqueue_struct *btree_io_wq;

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static inline bool should_split(struct btree *b)
{
	struct bset *i = write_block(b);
	return b->written >= btree_blocks(b) ||
		(b->written + __set_blocks(i, i->keys + 15, b->c)
		 > btree_blocks(b));
}

#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;					\
	struct btree *_child = bch_btree_node_get((b)->c, key, l, _w);	\
	if (!IS_ERR(_child)) {						\
		_child->parent = (b);					\
		_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)) {			\
			_b->parent = NULL;				\
			_r = bch_btree_ ## fn(_b, op, ##__VA_ARGS__);	\
		}							\
		rw_unlock(_w, _b);					\
		bch_cannibalize_unlock(c);				\
		if (_r == -ENOSPC) {					\
			wait_event((c)->try_wait,			\
				   !(c)->try_harder);			\
			_r = -EINTR;					\
		}							\
	} while (_r == -EINTR);						\
									\
	_r;								\
})

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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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{
	unsigned i;

	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];
	void *data = (void *) i + 8, *end = end(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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static 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 = b->sets[0].data;
	struct btree_iter *iter;
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	iter = mempool_alloc(b->c->fill_iter, GFP_NOWAIT);
	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
	iter->b = b;
#endif

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	if (!i->seq)
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		goto err;

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

		err = "bad btree header";
		if (b->written + set_blocks(i, b->c) > btree_blocks(b))
			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";
		if (i != b->sets[0].data && !i->keys)
			goto err;

		bch_btree_iter_push(iter, i->start, end(i));

		b->written += set_blocks(i, b->c);
	}

	err = "corrupted btree";
	for (i = write_block(b);
	     index(i, b) < btree_blocks(b);
	     i = ((void *) i) + block_bytes(b->c))
		if (i->seq == b->sets[0].data->seq)
			goto err;

	bch_btree_sort_and_fix_extents(b, iter);

	i = b->sets[0].data;
	err = "short btree key";
	if (b->sets[0].size &&
	    bkey_cmp(&b->key, &b->sets[0].end) < 0)
		goto err;

	if (b->written < btree_blocks(b))
		bch_bset_init_next(b);
out:
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	mempool_free(iter, b->c->fill_iter);
	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 %zu, %u keys",
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			    err, PTR_BUCKET_NR(b->c, &b->key, 0),
			    index(i, b), i->keys);
	goto out;
}

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static void btree_node_read_endio(struct bio *bio, int error)
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{
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	struct closure *cl = bio->bi_private;
	closure_put(cl);
}
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void bch_btree_node_read(struct btree *b)
{
	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);
	bio->bi_rw	= REQ_META|READ_SYNC;
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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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	bch_bio_map(bio, b->sets[0].data);
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	bch_submit_bbio(bio, b->c, &b->key, 0);
	closure_sync(&cl);
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	if (!test_bit(BIO_UPTODATE, &bio->bi_flags))
		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_done(struct closure *cl)
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{
	struct btree *b = container_of(cl, struct btree, io.cl);
	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))
		queue_delayed_work(btree_io_wq, &b->work,
				   msecs_to_jiffies(30000));

	closure_return(cl);
}

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static void btree_node_write_done(struct closure *cl)
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{
	struct btree *b = container_of(cl, struct btree, io.cl);
	struct bio_vec *bv;
	int n;

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	bio_for_each_segment_all(bv, b->bio, n)
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		__free_page(bv->bv_page);

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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, int error)
{
	struct closure *cl = bio->bi_private;
	struct btree *b = container_of(cl, struct btree, io.cl);

	if (error)
		set_btree_node_io_error(b);

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

static void do_btree_node_write(struct btree *b)
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{
	struct closure *cl = &b->io.cl;
	struct bset *i = b->sets[b->nsets].data;
	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_rw		= REQ_META|WRITE_SYNC|REQ_FUA;
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	b->bio->bi_iter.bi_size	= set_blocks(i, b->c) * block_bytes(b->c);
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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);
	SET_PTR_OFFSET(&k.key, 0, PTR_OFFSET(&k.key, 0) + bset_offset(b, i));

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	if (!bio_alloc_pages(b->bio, GFP_NOIO)) {
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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 {
		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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		__btree_node_write_done(cl);
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	}
}

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void bch_btree_node_write(struct btree *b, struct closure *parent)
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{
	struct bset *i = b->sets[b->nsets].data;

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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);
	BUG_ON(b->sets->data->seq != i->seq);
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	bch_check_keys(b, "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 */
	closure_lock(&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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	b->written += set_blocks(i, b->c);
	atomic_long_add(set_blocks(i, b->c) * b->c->sb.block_size,
			&PTR_CACHE(b->c, &b->key, 0)->btree_sectors_written);

	bch_btree_sort_lazy(b);

	if (b->written < btree_blocks(b))
		bch_bset_init_next(b);
}

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static void bch_btree_node_write_sync(struct btree *b)
{
	struct closure cl;

	closure_init_stack(&cl);
	bch_btree_node_write(b, &cl);
	closure_sync(&cl);
}

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

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	rw_lock(true, b, b->level);
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	if (btree_node_dirty(b))
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		bch_btree_node_write(b, NULL);
	rw_unlock(true, b);
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}

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static void bch_btree_leaf_dirty(struct btree *b, atomic_t *journal_ref)
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{
	struct bset *i = b->sets[b->nsets].data;
	struct btree_write *w = btree_current_write(b);

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	BUG_ON(!b->written);
	BUG_ON(!i->keys);
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	if (!btree_node_dirty(b))
		queue_delayed_work(btree_io_wq, &b->work, 30 * HZ);
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	set_btree_node_dirty(b);
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	if (journal_ref) {
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		if (w->journal &&
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		    journal_pin_cmp(b->c, w->journal, journal_ref)) {
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			atomic_dec_bug(w->journal);
			w->journal = NULL;
		}

		if (!w->journal) {
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			w->journal = journal_ref;
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			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
 */

static void mca_reinit(struct btree *b)
{
	unsigned i;

	b->flags	= 0;
	b->written	= 0;
	b->nsets	= 0;

	for (i = 0; i < MAX_BSETS; i++)
		b->sets[i].size = 0;
	/*
	 * Second loop starts at 1 because b->sets[0]->data is the memory we
	 * allocated
	 */
	for (i = 1; i < MAX_BSETS; i++)
		b->sets[i].data = NULL;
}

#define mca_reserve(c)	(((c->root && c->root->level)		\
			  ? c->root->level : 1) * 8 + 16)
#define mca_can_free(c)						\
	max_t(int, 0, c->bucket_cache_used - mca_reserve(c))

static void mca_data_free(struct btree *b)
{
	struct bset_tree *t = b->sets;
	BUG_ON(!closure_is_unlocked(&b->io.cl));

	if (bset_prev_bytes(b) < PAGE_SIZE)
		kfree(t->prev);
	else
		free_pages((unsigned long) t->prev,
			   get_order(bset_prev_bytes(b)));

	if (bset_tree_bytes(b) < PAGE_SIZE)
		kfree(t->tree);
	else
		free_pages((unsigned long) t->tree,
			   get_order(bset_tree_bytes(b)));

	free_pages((unsigned long) t->data, b->page_order);

	t->prev = NULL;
	t->tree = NULL;
	t->data = NULL;
	list_move(&b->list, &b->c->btree_cache_freed);
	b->c->bucket_cache_used--;
}

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);
}

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

static void mca_data_alloc(struct btree *b, struct bkey *k, gfp_t gfp)
{
	struct bset_tree *t = b->sets;
	BUG_ON(t->data);

	b->page_order = max_t(unsigned,
			      ilog2(b->c->btree_pages),
			      btree_order(k));

	t->data = (void *) __get_free_pages(gfp, b->page_order);
	if (!t->data)
		goto err;

	t->tree = bset_tree_bytes(b) < PAGE_SIZE
		? kmalloc(bset_tree_bytes(b), gfp)
		: (void *) __get_free_pages(gfp, get_order(bset_tree_bytes(b)));
	if (!t->tree)
		goto err;

	t->prev = bset_prev_bytes(b) < PAGE_SIZE
		? kmalloc(bset_prev_bytes(b), gfp)
		: (void *) __get_free_pages(gfp, get_order(bset_prev_bytes(b)));
	if (!t->prev)
		goto err;

	list_move(&b->list, &b->c->btree_cache);
	b->c->bucket_cache_used++;
	return;
err:
	mca_data_free(b);
}

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

	init_rwsem(&b->lock);
	lockdep_set_novalidate_class(&b->lock);
	INIT_LIST_HEAD(&b->list);
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	INIT_DELAYED_WORK(&b->work, btree_node_write_work);
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	b->c = c;
	closure_init_unlocked(&b->io);

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

644
static int mca_reap(struct btree *b, unsigned min_order, bool flush)
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{
646 647 648
	struct closure cl;

	closure_init_stack(&cl);
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	lockdep_assert_held(&b->c->bucket_lock);

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

654 655 656 657 658 659
	BUG_ON(btree_node_dirty(b) && !b->sets[0].data);

	if (b->page_order < min_order ||
	    (!flush &&
	     (btree_node_dirty(b) ||
	      atomic_read(&b->io.cl.remaining) != -1))) {
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		rw_unlock(true, b);
		return -ENOMEM;
	}

664 665
	if (btree_node_dirty(b))
		bch_btree_node_write_sync(b);
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667
	/* wait for any in flight btree write */
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	closure_wait_event(&b->io.wait, &cl,
			   atomic_read(&b->io.cl.remaining) == -1);
670

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	return 0;
}

674 675
static unsigned long bch_mca_scan(struct shrinker *shrink,
				  struct shrink_control *sc)
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{
	struct cache_set *c = container_of(shrink, struct cache_set, shrink);
	struct btree *b, *t;
	unsigned long i, nr = sc->nr_to_scan;
680
	unsigned long freed = 0;
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	if (c->shrinker_disabled)
683
		return SHRINK_STOP;
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	if (c->try_harder)
686
		return SHRINK_STOP;
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	/* Return -1 if we can't do anything right now */
689
	if (sc->gfp_mask & __GFP_IO)
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		mutex_lock(&c->bucket_lock);
	else if (!mutex_trylock(&c->bucket_lock))
		return -1;

694 695 696 697 698 699 700
	/*
	 * 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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	nr /= c->btree_pages;
	nr = min_t(unsigned long, nr, mca_can_free(c));

	i = 0;
	list_for_each_entry_safe(b, t, &c->btree_cache_freeable, list) {
706
		if (freed >= nr)
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			break;

		if (++i > 3 &&
710
		    !mca_reap(b, 0, false)) {
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			mca_data_free(b);
			rw_unlock(true, b);
713
			freed++;
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		}
	}

717
	for (i = 0; (nr--) && i < c->bucket_cache_used; i++) {
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		if (list_empty(&c->btree_cache))
			goto out;

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

		if (!b->accessed &&
725
		    !mca_reap(b, 0, false)) {
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			mca_bucket_free(b);
			mca_data_free(b);
			rw_unlock(true, b);
729
			freed++;
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		} else
			b->accessed = 0;
	}
out:
	mutex_unlock(&c->bucket_lock);
735 736 737 738 739 740 741 742 743 744 745 746 747 748 749
	return freed;
}

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;

	if (c->try_harder)
		return 0;

	return mca_can_free(c) * c->btree_pages;
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}

void bch_btree_cache_free(struct cache_set *c)
{
	struct btree *b;
	struct closure cl;
	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);
#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)
{
	unsigned i;

	for (i = 0; i < mca_reserve(c); i++)
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		if (!mca_bucket_alloc(c, &ZERO_KEY, GFP_KERNEL))
			return -ENOMEM;
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	list_splice_init(&c->btree_cache,
			 &c->btree_cache_freeable);

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

	c->verify_data = mca_bucket_alloc(c, &ZERO_KEY, GFP_KERNEL);

	if (c->verify_data &&
	    c->verify_data->sets[0].data)
		list_del_init(&c->verify_data->list);
	else
		c->verify_data = NULL;
#endif

815 816
	c->shrink.count_objects = bch_mca_count;
	c->shrink.scan_objects = bch_mca_scan;
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	c->shrink.seeks = 4;
	c->shrink.batch = c->btree_pages * 2;
	register_shrinker(&c->shrink);

	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;
}

845
static struct btree *mca_cannibalize(struct cache_set *c, struct bkey *k)
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{
847
	struct btree *b;
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	trace_bcache_btree_cache_cannibalize(c);

851 852 853 854 855
	if (!c->try_harder) {
		c->try_harder = current;
		c->try_harder_start = local_clock();
	} else if (c->try_harder != current)
		return ERR_PTR(-ENOSPC);
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857 858 859
	list_for_each_entry_reverse(b, &c->btree_cache, list)
		if (!mca_reap(b, btree_order(k), false))
			return b;
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861 862 863
	list_for_each_entry_reverse(b, &c->btree_cache, list)
		if (!mca_reap(b, btree_order(k), true))
			return b;
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865
	return ERR_PTR(-ENOMEM);
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}

/*
 * 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.
 */
874
static void bch_cannibalize_unlock(struct cache_set *c)
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{
876
	if (c->try_harder == current) {
877
		bch_time_stats_update(&c->try_harder_time, c->try_harder_start);
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		c->try_harder = NULL;
879
		wake_up(&c->try_wait);
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	}
}

883
static struct btree *mca_alloc(struct cache_set *c, struct bkey *k, int level)
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{
	struct btree *b;

887 888
	BUG_ON(current->bio_list);

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	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)
898
		if (!mca_reap(b, btree_order(k), false))
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			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)
905
		if (!mca_reap(b, 0, false)) {
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			mca_data_alloc(b, k, __GFP_NOWARN|GFP_NOIO);
			if (!b->sets[0].data)
				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));
	if (!b->sets->data)
		goto err;
out:
	BUG_ON(!closure_is_unlocked(&b->io.cl));

	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_);
	b->level	= level;
930
	b->parent	= (void *) ~0UL;
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	mca_reinit(b);

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

939
	b = mca_cannibalize(c, k);
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	if (!IS_ERR(b))
		goto out;

	return b;
}

/**
 * bch_btree_node_get - find a btree node in the cache and lock it, reading it
 * in from disk if necessary.
 *
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 * If IO is necessary and running under generic_make_request, returns -EAGAIN.
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 *
 * The btree node will have either a read or a write lock held, depending on
 * level and op->lock.
 */
struct btree *bch_btree_node_get(struct cache_set *c, struct bkey *k,
956
				 int level, bool write)
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{
	int i = 0;
	struct btree *b;

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

	if (!b) {
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		if (current->bio_list)
			return ERR_PTR(-EAGAIN);

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		mutex_lock(&c->bucket_lock);
970
		b = mca_alloc(c, k, level);
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		mutex_unlock(&c->bucket_lock);

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

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		bch_btree_node_read(b);
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		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);
	}

	b->accessed = 1;

	for (; i <= b->nsets && b->sets[i].size; i++) {
		prefetch(b->sets[i].tree);
		prefetch(b->sets[i].data);
	}

	for (; i <= b->nsets; i++)
		prefetch(b->sets[i].data);

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	if (btree_node_io_error(b)) {
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		rw_unlock(write, b);
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		return ERR_PTR(-EIO);
	}

	BUG_ON(!b->written);
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	return b;
}

static void btree_node_prefetch(struct cache_set *c, struct bkey *k, int level)
{
	struct btree *b;

	mutex_lock(&c->bucket_lock);
1016
	b = mca_alloc(c, k, level);
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	mutex_unlock(&c->bucket_lock);

	if (!IS_ERR_OR_NULL(b)) {
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		bch_btree_node_read(b);
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		rw_unlock(true, b);
	}
}

/* Btree alloc */

1027
static void btree_node_free(struct btree *b)
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{
	unsigned i;

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	trace_bcache_btree_node_free(b);

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	BUG_ON(b == b->c->root);

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

	cancel_delayed_work(&b->work);

	mutex_lock(&b->c->bucket_lock);

	for (i = 0; i < KEY_PTRS(&b->key); i++) {
		BUG_ON(atomic_read(&PTR_BUCKET(b->c, &b->key, i)->pin));

		bch_inc_gen(PTR_CACHE(b->c, &b->key, i),
			    PTR_BUCKET(b->c, &b->key, i));
	}

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

1055
struct btree *bch_btree_node_alloc(struct cache_set *c, int level, bool wait)
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{
	BKEY_PADDED(key) k;
	struct btree *b = ERR_PTR(-EAGAIN);

	mutex_lock(&c->bucket_lock);
retry:
1062
	if (__bch_bucket_alloc_set(c, WATERMARK_METADATA, &k.key, 1, wait))
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		goto err;

1065
	bkey_put(c, &k.key);
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	SET_KEY_SIZE(&k.key, c->btree_pages * PAGE_SECTORS);

1068
	b = mca_alloc(c, &k.key, level);
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	if (IS_ERR(b))
		goto err_free;

	if (!b) {
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		cache_bug(c,
			"Tried to allocate bucket that was in btree cache");
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		goto retry;
	}

	b->accessed = 1;
	bch_bset_init_next(b);

	mutex_unlock(&c->bucket_lock);
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	trace_bcache_btree_node_alloc(b);
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	return b;
err_free:
	bch_bucket_free(c, &k.key);
err:
	mutex_unlock(&c->bucket_lock);
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	trace_bcache_btree_node_alloc_fail(b);
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	return b;
}

1094
static struct btree *btree_node_alloc_replacement(struct btree *b, bool wait)
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1095
{
1096
	struct btree *n = bch_btree_node_alloc(b->c, b->level, wait);
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	if (!IS_ERR_OR_NULL(n))
		bch_btree_sort_into(b, n);

	return n;
}

1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118
static void make_btree_freeing_key(struct btree *b, struct bkey *k)
{
	unsigned i;

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

	for (i = 0; i < KEY_PTRS(k); i++) {
		uint8_t g = PTR_BUCKET(b->c, k, i)->gen + 1;

		SET_PTR_GEN(k, i, g);
	}

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

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/* Garbage collection */

uint8_t __bch_btree_mark_key(struct cache_set *c, int level, struct bkey *k)
{
	uint8_t stale = 0;
	unsigned i;
	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);

		if (gen_after(g->gc_gen, PTR_GEN(k, i)))
			g->gc_gen = PTR_GEN(k, i);

		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);

		/* guard against overflow */
		SET_GC_SECTORS_USED(g, min_t(unsigned,
					     GC_SECTORS_USED(g) + KEY_SIZE(k),
					     (1 << 14) - 1));

		BUG_ON(!GC_SECTORS_USED(g));
	}

	return stale;
}

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

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static bool btree_gc_mark_node(struct btree *b, struct gc_stat *gc)
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{
	uint8_t stale = 0;
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	unsigned keys = 0, good_keys = 0;
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	struct bkey *k;
	struct btree_iter iter;
	struct bset_tree *t;

	gc->nodes++;

	for_each_key_filter(b, k, &iter, bch_ptr_invalid) {
		stale = max(stale, btree_mark_key(b, k));
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		keys++;
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		if (bch_ptr_bad(b, k))
			continue;

		gc->key_bytes += bkey_u64s(k);
		gc->nkeys++;
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		good_keys++;
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		gc->data += KEY_SIZE(k);
	}

	for (t = b->sets; t <= &b->sets[b->nsets]; t++)
		btree_bug_on(t->size &&
			     bset_written(b, t) &&
			     bkey_cmp(&b->key, &t->end) < 0,
			     b, "found short btree key in gc");

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	if (b->c->gc_always_rewrite)
		return true;
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	if (stale > 10)
		return true;
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	if ((keys - good_keys) * 2 > keys)
		return true;
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	return false;
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}

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#define GC_MERGE_NODES	4U
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struct gc_merge_info {
	struct btree	*b;
	unsigned	keys;
};

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static int bch_btree_insert_node(struct btree *, struct btree_op *,
				 struct keylist *, atomic_t *, struct bkey *);

static int btree_gc_coalesce(struct btree *b, struct btree_op *op,
			     struct keylist *keylist, struct gc_stat *gc,
			     struct gc_merge_info *r)
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{
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	unsigned i, nodes = 0, keys = 0, blocks;
	struct btree *new_nodes[GC_MERGE_NODES];
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	struct closure cl;
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	struct bkey *k;
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	memset(new_nodes, 0, sizeof(new_nodes));
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	closure_init_stack(&cl);
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	while (nodes < GC_MERGE_NODES && !IS_ERR_OR_NULL(r[nodes].b))
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		keys += r[nodes++].keys;

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

	if (nodes < 2 ||
	    __set_blocks(b->sets[0].data, keys, b->c) > blocks * (nodes - 1))
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		return 0;
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	for (i = 0; i < nodes; i++) {
1246
		new_nodes[i] = btree_node_alloc_replacement(r[i].b, false);
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		if (IS_ERR_OR_NULL(new_nodes[i]))
			goto out_nocoalesce;
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	}

	for (i = nodes - 1; i > 0; --i) {
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		struct bset *n1 = new_nodes[i]->sets->data;
		struct bset *n2 = new_nodes[i - 1]->sets->data;
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		struct bkey *k, *last = NULL;

		keys = 0;

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		if (i > 1) {
			for (k = n2->start;
			     k < end(n2);
			     k = bkey_next(k)) {
				if (__set_blocks(n1, n1->keys + keys +
						 bkey_u64s(k), b->c) > blocks)
					break;

				last = k;
				keys += bkey_u64s(k);
			}
		} else {
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			/*
			 * 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)
			 */
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			if (__set_blocks(n1, n1->keys + n2->keys,
					 b->c) > btree_blocks(new_nodes[i]))
				goto out_nocoalesce;
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			keys = n2->keys;
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			/* Take the key of the node we're getting rid of */
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			last = &r->b->key;
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		}
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		BUG_ON(__set_blocks(n1, n1->keys + keys,
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				    b->c) > btree_blocks(new_nodes[i]));
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		if (last)
			bkey_copy_key(&new_nodes[i]->key, last);
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		memcpy(end(n1),
		       n2->start,
		       (void *) node(n2, keys) - (void *) n2->start);

		n1->keys += keys;
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		r[i].keys = n1->keys;
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		memmove(n2->start,
			node(n2, keys),
			(void *) end(n2) - (void *) node(n2, keys));

		n2->keys -= keys;

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		if (bch_keylist_realloc(keylist,
					KEY_PTRS(&new_nodes[i]->key), b->c))
			goto out_nocoalesce;

		bch_btree_node_write(new_nodes[i], &cl);
		bch_keylist_add(keylist, &new_nodes[i]->key);
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	}

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	for (i = 0; i < nodes; i++) {
		if (bch_keylist_realloc(keylist, KEY_PTRS(&r[i].b->key), b->c))
			goto out_nocoalesce;
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		make_btree_freeing_key(r[i].b, keylist->top);
		bch_keylist_push(keylist);
	}
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	/* We emptied out this node */
	BUG_ON(new_nodes[0]->sets->data->keys);
	btree_node_free(new_nodes[0]);
	rw_unlock(true, new_nodes[0]);

	closure_sync(&cl);

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

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

	bch_btree_insert_node(b, op, keylist, NULL, NULL);
	BUG_ON(!bch_keylist_empty(keylist));

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

	trace_bcache_btree_gc_coalesce(nodes);
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	gc->nodes--;

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	/* Invalidated our iterator */
	return -EINTR;

out_nocoalesce:
	closure_sync(&cl);

	while ((k = bch_keylist_pop(keylist)))
		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;
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}

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static unsigned btree_gc_count_keys(struct btree *b)
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{
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	struct bkey *k;
	struct btree_iter iter;
	unsigned ret = 0;
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	for_each_key_filter(b, k, &iter, bch_ptr_bad)
		ret += bkey_u64s(k);

	return ret;
}
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static int btree_gc_recurse(struct btree *b, struct btree_op *op,
			    struct closure *writes, struct gc_stat *gc)
{
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	unsigned i;
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	int ret = 0;
	bool should_rewrite;
	struct btree *n;
	struct bkey *k;
	struct keylist keys;
	struct btree_iter iter;
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	struct gc_merge_info r[GC_MERGE_NODES];
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	struct gc_merge_info *last = r + GC_MERGE_NODES - 1;
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	bch_keylist_init(&keys);
	bch_btree_iter_init(b, &iter, &b->c->gc_done);
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	for (i = 0; i < GC_MERGE_NODES; i++)
		r[i].b = ERR_PTR(-EINTR);
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	while (1) {
		k = bch_btree_iter_next_filter(&iter, b, bch_ptr_bad);
		if (k) {
			r->b = bch_btree_node_get(b->c, k, b->level - 1, true);
			if (IS_ERR(r->b)) {
				ret = PTR_ERR(r->b);
				break;
			}

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

			ret = btree_gc_coalesce(b, op, &keys, gc, r);
			if (ret)
				break;
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		}

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		if (!last->b)
			break;
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		if (!IS_ERR(last->b)) {
			should_rewrite = btree_gc_mark_node(last->b, gc);
			if (should_rewrite) {
1416 1417
				n = btree_node_alloc_replacement(last->b,
								 false);
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				if (!IS_ERR_OR_NULL(n)) {
					bch_btree_node_write_sync(n);
					bch_keylist_add(&keys, &n->key);
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					make_btree_freeing_key(last->b,
							       keys.top);
					bch_keylist_push(&keys);

					btree_node_free(last->b);
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					bch_btree_insert_node(b, op, &keys,
							      NULL, NULL);
					BUG_ON(!bch_keylist_empty(&keys));
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					rw_unlock(true, last->b);
					last->b = n;
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					/* Invalidated our iterator */
					ret = -EINTR;
					break;
				}
			}

			if (last->b->level) {
				ret = btree_gc_recurse(last->b, op, writes, gc);
				if (ret)
					break;
			}
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			bkey_copy_key(&b->c->gc_done, &last->b->key);

			/*
			 * Must flush leaf nodes before gc ends, since replace
			 * operations aren't journalled
			 */
			if (btree_node_dirty(last->b))
				bch_btree_node_write(last->b, writes);
			rw_unlock(true, last->b);
		}

		memmove(r + 1, r, sizeof(r[0]) * (GC_MERGE_NODES - 1));
		r->b = NULL;
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		if (need_resched()) {
			ret = -EAGAIN;
			break;
		}
	}

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	for (i = 0; i < GC_MERGE_NODES; i++)
		if (!IS_ERR_OR_NULL(r[i].b)) {
			if (btree_node_dirty(r[i].b))
				bch_btree_node_write(r[i].b, writes);
			rw_unlock(true, r[i].b);
		}
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	bch_keylist_free(&keys);
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	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;
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	int ret = 0;
	bool should_rewrite;
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	should_rewrite = btree_gc_mark_node(b, gc);
	if (should_rewrite) {
1489
		n = btree_node_alloc_replacement(b, false);
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		if (!IS_ERR_OR_NULL(n)) {
			bch_btree_node_write_sync(n);
			bch_btree_set_root(n);
			btree_node_free(b);
			rw_unlock(true, n);
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			return -EINTR;
		}
	}
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	if (b->level) {
		ret = btree_gc_recurse(b, op, writes, gc);
		if (ret)
			return ret;
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	}

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	bkey_copy_key(&b->c->gc_done, &b->key);

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	return ret;
}

static void btree_gc_start(struct cache_set *c)
{
	struct cache *ca;
	struct bucket *b;
	unsigned i;

	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) {
			b->gc_gen = b->gen;
1529
			if (!atomic_read(&b->pin)) {
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				SET_GC_MARK(b, GC_MARK_RECLAIMABLE);
1531 1532
				SET_GC_SECTORS_USED(b, 0);
			}
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		}

	mutex_unlock(&c->bucket_lock);
}

size_t bch_btree_gc_finish(struct cache_set *c)
{
	size_t available = 0;
	struct bucket *b;
	struct cache *ca;
	unsigned i;

	mutex_lock(&c->bucket_lock);

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

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

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

1560 1561 1562 1563 1564 1565 1566 1567 1568 1569 1570 1571 1572 1573 1574 1575 1576 1577 1578 1579 1580 1581
	/* don't reclaim buckets to which writeback keys point */
	rcu_read_lock();
	for (i = 0; i < c->nr_uuids; i++) {
		struct bcache_device *d = c->devices[i];
		struct cached_dev *dc;
		struct keybuf_key *w, *n;
		unsigned j;

		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();

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	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) {
			b->last_gc	= b->gc_gen;
			c->need_gc	= max(c->need_gc, bucket_gc_gen(b));

			if (!atomic_read(&b->pin) &&
			    GC_MARK(b) == GC_MARK_RECLAIMABLE) {
				available++;
				if (!GC_SECTORS_USED(b))
					bch_bucket_add_unused(ca, b);
			}
		}
	}

	mutex_unlock(&c->bucket_lock);
	return available;
}

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static void bch_btree_gc(struct cache_set *c)
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{
	int ret;
	unsigned long available;
	struct gc_stat stats;
	struct closure writes;
	struct btree_op op;
	uint64_t start_time = local_clock();
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	trace_bcache_gc_start(c);
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	memset(&stats, 0, sizeof(struct gc_stat));
	closure_init_stack(&writes);
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	bch_btree_op_init(&op, SHRT_MAX);
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	btree_gc_start(c);

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	do {
		ret = btree_root(gc_root, c, &op, &writes, &stats);
		closure_sync(&writes);
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1632 1633 1634
		if (ret && ret != -EAGAIN)
			pr_warn("gc failed!");
	} while (ret);
K
Kent Overstreet 已提交
1635 1636

	available = bch_btree_gc_finish(c);
K
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1637 1638
	wake_up_allocators(c);

1639
	bch_time_stats_update(&c->btree_gc_time, start_time);
K
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1640 1641 1642 1643 1644 1645

	stats.key_bytes *= sizeof(uint64_t);
	stats.data	<<= 9;
	stats.in_use	= (c->nbuckets - available) * 100 / c->nbuckets;
	memcpy(&c->gc_stats, &stats, sizeof(struct gc_stat));

K
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1646
	trace_bcache_gc_end(c);
K
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1647

K
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1648 1649 1650 1651 1652 1653
	bch_moving_gc(c);
}

static int bch_gc_thread(void *arg)
{
	struct cache_set *c = arg;
K
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1654 1655
	struct cache *ca;
	unsigned i;
K
Kent Overstreet 已提交
1656 1657

	while (1) {
K
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1658
again:
K
Kent Overstreet 已提交
1659 1660 1661 1662 1663 1664
		bch_btree_gc(c);

		set_current_state(TASK_INTERRUPTIBLE);
		if (kthread_should_stop())
			break;

K
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1665 1666 1667 1668 1669 1670 1671 1672 1673 1674 1675
		mutex_lock(&c->bucket_lock);

		for_each_cache(ca, c, i)
			if (ca->invalidate_needs_gc) {
				mutex_unlock(&c->bucket_lock);
				set_current_state(TASK_RUNNING);
				goto again;
			}

		mutex_unlock(&c->bucket_lock);

K
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1676 1677 1678 1679 1680
		try_to_freeze();
		schedule();
	}

	return 0;
K
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1681 1682
}

K
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1683
int bch_gc_thread_start(struct cache_set *c)
K
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1684
{
K
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1685 1686 1687 1688 1689 1690
	c->gc_thread = kthread_create(bch_gc_thread, c, "bcache_gc");
	if (IS_ERR(c->gc_thread))
		return PTR_ERR(c->gc_thread);

	set_task_state(c->gc_thread, TASK_INTERRUPTIBLE);
	return 0;
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1691 1692 1693 1694 1695 1696 1697
}

/* Initial partial gc */

static int bch_btree_check_recurse(struct btree *b, struct btree_op *op,
				   unsigned long **seen)
{
1698
	int ret = 0;
K
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1699
	unsigned i;
1700
	struct bkey *k, *p = NULL;
K
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1701 1702 1703 1704 1705 1706 1707 1708 1709 1710 1711 1712 1713 1714 1715 1716 1717 1718 1719 1720 1721 1722 1723 1724 1725 1726
	struct bucket *g;
	struct btree_iter iter;

	for_each_key_filter(b, k, &iter, bch_ptr_invalid) {
		for (i = 0; i < KEY_PTRS(k); i++) {
			if (!ptr_available(b->c, k, i))
				continue;

			g = PTR_BUCKET(b->c, k, i);

			if (!__test_and_set_bit(PTR_BUCKET_NR(b->c, k, i),
						seen[PTR_DEV(k, i)]) ||
			    !ptr_stale(b->c, k, i)) {
				g->gen = PTR_GEN(k, i);

				if (b->level)
					g->prio = BTREE_PRIO;
				else if (g->prio == BTREE_PRIO)
					g->prio = INITIAL_PRIO;
			}
		}

		btree_mark_key(b, k);
	}

	if (b->level) {
1727
		bch_btree_iter_init(b, &iter, NULL);
K
Kent Overstreet 已提交
1728

1729 1730 1731 1732
		do {
			k = bch_btree_iter_next_filter(&iter, b, bch_ptr_bad);
			if (k)
				btree_node_prefetch(b->c, k, b->level - 1);
K
Kent Overstreet 已提交
1733

1734 1735
			if (p)
				ret = btree(check_recurse, p, b, op, seen);
K
Kent Overstreet 已提交
1736

1737 1738
			p = k;
		} while (p && !ret);
K
Kent Overstreet 已提交
1739 1740 1741 1742 1743
	}

	return 0;
}

K
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1744
int bch_btree_check(struct cache_set *c)
K
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1745 1746 1747 1748
{
	int ret = -ENOMEM;
	unsigned i;
	unsigned long *seen[MAX_CACHES_PER_SET];
K
Kent Overstreet 已提交
1749
	struct btree_op op;
K
Kent Overstreet 已提交
1750 1751

	memset(seen, 0, sizeof(seen));
K
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1752
	bch_btree_op_init(&op, SHRT_MAX);
K
Kent Overstreet 已提交
1753 1754 1755 1756 1757 1758 1759 1760 1761 1762 1763

	for (i = 0; c->cache[i]; i++) {
		size_t n = DIV_ROUND_UP(c->cache[i]->sb.nbuckets, 8);
		seen[i] = kmalloc(n, GFP_KERNEL);
		if (!seen[i])
			goto err;

		/* Disables the seen array until prio_read() uses it too */
		memset(seen[i], 0xFF, n);
	}

K
Kent Overstreet 已提交
1764
	ret = btree_root(check_recurse, c, &op, seen);
K
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1765 1766 1767 1768 1769 1770 1771 1772 1773 1774 1775 1776 1777 1778 1779 1780 1781 1782 1783 1784 1785
err:
	for (i = 0; i < MAX_CACHES_PER_SET; i++)
		kfree(seen[i]);
	return ret;
}

/* Btree insertion */

static void shift_keys(struct btree *b, struct bkey *where, struct bkey *insert)
{
	struct bset *i = b->sets[b->nsets].data;

	memmove((uint64_t *) where + bkey_u64s(insert),
		where,
		(void *) end(i) - (void *) where);

	i->keys += bkey_u64s(insert);
	bkey_copy(where, insert);
	bch_bset_fix_lookup_table(b, where);
}

K
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1786
static bool fix_overlapping_extents(struct btree *b, struct bkey *insert,
K
Kent Overstreet 已提交
1787
				    struct btree_iter *iter,
K
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1788
				    struct bkey *replace_key)
K
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1789
{
1790
	void subtract_dirty(struct bkey *k, uint64_t offset, int sectors)
K
Kent Overstreet 已提交
1791
	{
1792 1793 1794
		if (KEY_DIRTY(k))
			bcache_dev_sectors_dirty_add(b->c, KEY_INODE(k),
						     offset, -sectors);
K
Kent Overstreet 已提交
1795 1796
	}

1797
	uint64_t old_offset;
K
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1798 1799 1800 1801 1802 1803 1804 1805 1806 1807 1808
	unsigned old_size, sectors_found = 0;

	while (1) {
		struct bkey *k = bch_btree_iter_next(iter);
		if (!k ||
		    bkey_cmp(&START_KEY(k), insert) >= 0)
			break;

		if (bkey_cmp(k, &START_KEY(insert)) <= 0)
			continue;

1809
		old_offset = KEY_START(k);
K
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1810 1811 1812 1813 1814 1815
		old_size = KEY_SIZE(k);

		/*
		 * We might overlap with 0 size extents; we can't skip these
		 * because if they're in the set we're inserting to we have to
		 * adjust them so they don't overlap with the key we're
K
Kent Overstreet 已提交
1816
		 * inserting. But we don't want to check them for replace
K
Kent Overstreet 已提交
1817 1818 1819
		 * operations.
		 */

K
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1820
		if (replace_key && KEY_SIZE(k)) {
K
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1821 1822 1823 1824 1825 1826
			/*
			 * k might have been split since we inserted/found the
			 * key we're replacing
			 */
			unsigned i;
			uint64_t offset = KEY_START(k) -
K
Kent Overstreet 已提交
1827
				KEY_START(replace_key);
K
Kent Overstreet 已提交
1828 1829

			/* But it must be a subset of the replace key */
K
Kent Overstreet 已提交
1830 1831
			if (KEY_START(k) < KEY_START(replace_key) ||
			    KEY_OFFSET(k) > KEY_OFFSET(replace_key))
K
Kent Overstreet 已提交
1832 1833 1834 1835 1836 1837
				goto check_failed;

			/* We didn't find a key that we were supposed to */
			if (KEY_START(k) > KEY_START(insert) + sectors_found)
				goto check_failed;

1838 1839
			if (KEY_PTRS(k) != KEY_PTRS(replace_key) ||
			    KEY_DIRTY(k) != KEY_DIRTY(replace_key))
K
Kent Overstreet 已提交
1840 1841 1842 1843 1844
				goto check_failed;

			/* skip past gen */
			offset <<= 8;

K
Kent Overstreet 已提交
1845
			BUG_ON(!KEY_PTRS(replace_key));
K
Kent Overstreet 已提交
1846

K
Kent Overstreet 已提交
1847 1848
			for (i = 0; i < KEY_PTRS(replace_key); i++)
				if (k->ptr[i] != replace_key->ptr[i] + offset)
K
Kent Overstreet 已提交
1849 1850 1851 1852 1853 1854 1855 1856 1857 1858 1859 1860 1861 1862 1863 1864
					goto check_failed;

			sectors_found = KEY_OFFSET(k) - KEY_START(insert);
		}

		if (bkey_cmp(insert, k) < 0 &&
		    bkey_cmp(&START_KEY(insert), &START_KEY(k)) > 0) {
			/*
			 * We overlapped in the middle of an existing key: that
			 * means we have to split the old key. But we have to do
			 * slightly different things depending on whether the
			 * old key has been written out yet.
			 */

			struct bkey *top;

1865
			subtract_dirty(k, KEY_START(insert), KEY_SIZE(insert));
K
Kent Overstreet 已提交
1866 1867 1868 1869 1870 1871 1872 1873 1874 1875 1876 1877 1878 1879 1880 1881 1882 1883 1884 1885 1886 1887 1888 1889 1890 1891 1892 1893 1894 1895 1896 1897 1898

			if (bkey_written(b, k)) {
				/*
				 * We insert a new key to cover the top of the
				 * old key, and the old key is modified in place
				 * to represent the bottom split.
				 *
				 * It's completely arbitrary whether the new key
				 * is the top or the bottom, but it has to match
				 * up with what btree_sort_fixup() does - it
				 * doesn't check for this kind of overlap, it
				 * depends on us inserting a new key for the top
				 * here.
				 */
				top = bch_bset_search(b, &b->sets[b->nsets],
						      insert);
				shift_keys(b, top, k);
			} else {
				BKEY_PADDED(key) temp;
				bkey_copy(&temp.key, k);
				shift_keys(b, k, &temp.key);
				top = bkey_next(k);
			}

			bch_cut_front(insert, top);
			bch_cut_back(&START_KEY(insert), k);
			bch_bset_fix_invalidated_key(b, k);
			return false;
		}

		if (bkey_cmp(insert, k) < 0) {
			bch_cut_front(insert, k);
		} else {
1899 1900 1901
			if (bkey_cmp(&START_KEY(insert), &START_KEY(k)) > 0)
				old_offset = KEY_START(insert);

K
Kent Overstreet 已提交
1902 1903 1904 1905 1906 1907 1908 1909 1910 1911 1912 1913 1914
			if (bkey_written(b, k) &&
			    bkey_cmp(&START_KEY(insert), &START_KEY(k)) <= 0) {
				/*
				 * Completely overwrote, so we don't have to
				 * invalidate the binary search tree
				 */
				bch_cut_front(k, k);
			} else {
				__bch_cut_back(&START_KEY(insert), k);
				bch_bset_fix_invalidated_key(b, k);
			}
		}

1915
		subtract_dirty(k, old_offset, old_size - KEY_SIZE(k));
K
Kent Overstreet 已提交
1916 1917 1918
	}

check_failed:
K
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1919
	if (replace_key) {
K
Kent Overstreet 已提交
1920 1921 1922 1923 1924 1925 1926 1927 1928 1929 1930 1931 1932
		if (!sectors_found) {
			return true;
		} else if (sectors_found < KEY_SIZE(insert)) {
			SET_KEY_OFFSET(insert, KEY_OFFSET(insert) -
				       (KEY_SIZE(insert) - sectors_found));
			SET_KEY_SIZE(insert, sectors_found);
		}
	}

	return false;
}

static bool btree_insert_key(struct btree *b, struct btree_op *op,
K
Kent Overstreet 已提交
1933
			     struct bkey *k, struct bkey *replace_key)
K
Kent Overstreet 已提交
1934 1935 1936
{
	struct bset *i = b->sets[b->nsets].data;
	struct bkey *m, *prev;
1937
	unsigned status = BTREE_INSERT_STATUS_INSERT;
K
Kent Overstreet 已提交
1938 1939 1940 1941 1942 1943 1944 1945 1946 1947 1948

	BUG_ON(bkey_cmp(k, &b->key) > 0);
	BUG_ON(b->level && !KEY_PTRS(k));
	BUG_ON(!b->level && !KEY_OFFSET(k));

	if (!b->level) {
		struct btree_iter iter;

		/*
		 * bset_search() returns the first key that is strictly greater
		 * than the search key - but for back merging, we want to find
K
Kent Overstreet 已提交
1949
		 * the previous key.
K
Kent Overstreet 已提交
1950 1951
		 */
		prev = NULL;
K
Kent Overstreet 已提交
1952
		m = bch_btree_iter_init(b, &iter, PRECEDING_KEY(&START_KEY(k)));
K
Kent Overstreet 已提交
1953

K
Kent Overstreet 已提交
1954 1955
		if (fix_overlapping_extents(b, k, &iter, replace_key)) {
			op->insert_collision = true;
K
Kent Overstreet 已提交
1956
			return false;
K
Kent Overstreet 已提交
1957
		}
K
Kent Overstreet 已提交
1958

1959 1960 1961 1962
		if (KEY_DIRTY(k))
			bcache_dev_sectors_dirty_add(b->c, KEY_INODE(k),
						     KEY_START(k), KEY_SIZE(k));

K
Kent Overstreet 已提交
1963 1964 1965 1966 1967 1968 1969 1970
		while (m != end(i) &&
		       bkey_cmp(k, &START_KEY(m)) > 0)
			prev = m, m = bkey_next(m);

		if (key_merging_disabled(b->c))
			goto insert;

		/* prev is in the tree, if we merge we're done */
1971
		status = BTREE_INSERT_STATUS_BACK_MERGE;
K
Kent Overstreet 已提交
1972 1973 1974 1975
		if (prev &&
		    bch_bkey_try_merge(b, prev, k))
			goto merged;

1976
		status = BTREE_INSERT_STATUS_OVERWROTE;
K
Kent Overstreet 已提交
1977 1978 1979 1980
		if (m != end(i) &&
		    KEY_PTRS(m) == KEY_PTRS(k) && !KEY_SIZE(m))
			goto copy;

1981
		status = BTREE_INSERT_STATUS_FRONT_MERGE;
K
Kent Overstreet 已提交
1982 1983 1984
		if (m != end(i) &&
		    bch_bkey_try_merge(b, k, m))
			goto copy;
K
Kent Overstreet 已提交
1985 1986
	} else {
		BUG_ON(replace_key);
K
Kent Overstreet 已提交
1987
		m = bch_bset_search(b, &b->sets[b->nsets], k);
K
Kent Overstreet 已提交
1988
	}
K
Kent Overstreet 已提交
1989 1990 1991 1992

insert:	shift_keys(b, m, k);
copy:	bkey_copy(m, k);
merged:
K
Kent Overstreet 已提交
1993 1994
	bch_check_keys(b, "%u for %s", status,
		       replace_key ? "replace" : "insert");
K
Kent Overstreet 已提交
1995 1996

	if (b->level && !KEY_OFFSET(k))
K
Kent Overstreet 已提交
1997
		btree_current_write(b)->prio_blocked++;
K
Kent Overstreet 已提交
1998

K
Kent Overstreet 已提交
1999
	trace_bcache_btree_insert_key(b, k, replace_key != NULL, status);
K
Kent Overstreet 已提交
2000 2001 2002 2003

	return true;
}

K
Kent Overstreet 已提交
2004
static bool bch_btree_insert_keys(struct btree *b, struct btree_op *op,
K
Kent Overstreet 已提交
2005 2006
				  struct keylist *insert_keys,
				  struct bkey *replace_key)
K
Kent Overstreet 已提交
2007 2008
{
	bool ret = false;
K
Kent Overstreet 已提交
2009
	int oldsize = bch_count_data(b);
K
Kent Overstreet 已提交
2010

K
Kent Overstreet 已提交
2011
	while (!bch_keylist_empty(insert_keys)) {
2012
		struct bset *i = write_block(b);
K
Kent Overstreet 已提交
2013
		struct bkey *k = insert_keys->keys;
K
Kent Overstreet 已提交
2014

2015 2016 2017 2018 2019
		if (b->written + __set_blocks(i, i->keys + bkey_u64s(k), b->c)
		    > btree_blocks(b))
			break;

		if (bkey_cmp(k, &b->key) <= 0) {
2020 2021
			if (!b->level)
				bkey_put(b->c, k);
K
Kent Overstreet 已提交
2022

K
Kent Overstreet 已提交
2023
			ret |= btree_insert_key(b, op, k, replace_key);
K
Kent Overstreet 已提交
2024 2025 2026
			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
2027
			bkey_copy(&temp.key, insert_keys->keys);
K
Kent Overstreet 已提交
2028 2029

			bch_cut_back(&b->key, &temp.key);
K
Kent Overstreet 已提交
2030
			bch_cut_front(&b->key, insert_keys->keys);
K
Kent Overstreet 已提交
2031

K
Kent Overstreet 已提交
2032
			ret |= btree_insert_key(b, op, &temp.key, replace_key);
K
Kent Overstreet 已提交
2033 2034 2035 2036
			break;
		} else {
			break;
		}
K
Kent Overstreet 已提交
2037 2038
	}

2039 2040
	BUG_ON(!bch_keylist_empty(insert_keys) && b->level);

K
Kent Overstreet 已提交
2041 2042 2043 2044
	BUG_ON(bch_count_data(b) < oldsize);
	return ret;
}

K
Kent Overstreet 已提交
2045 2046
static int btree_split(struct btree *b, struct btree_op *op,
		       struct keylist *insert_keys,
K
Kent Overstreet 已提交
2047
		       struct bkey *replace_key)
K
Kent Overstreet 已提交
2048
{
2049
	bool split;
K
Kent Overstreet 已提交
2050 2051
	struct btree *n1, *n2 = NULL, *n3 = NULL;
	uint64_t start_time = local_clock();
K
Kent Overstreet 已提交
2052
	struct closure cl;
2053
	struct keylist parent_keys;
K
Kent Overstreet 已提交
2054 2055

	closure_init_stack(&cl);
2056
	bch_keylist_init(&parent_keys);
K
Kent Overstreet 已提交
2057

2058
	n1 = btree_node_alloc_replacement(b, true);
K
Kent Overstreet 已提交
2059 2060 2061 2062 2063 2064 2065 2066
	if (IS_ERR(n1))
		goto err;

	split = set_blocks(n1->sets[0].data, n1->c) > (btree_blocks(b) * 4) / 5;

	if (split) {
		unsigned keys = 0;

K
Kent Overstreet 已提交
2067 2068
		trace_bcache_btree_node_split(b, n1->sets[0].data->keys);

2069
		n2 = bch_btree_node_alloc(b->c, b->level, true);
K
Kent Overstreet 已提交
2070 2071 2072
		if (IS_ERR(n2))
			goto err_free1;

2073
		if (!b->parent) {
2074
			n3 = bch_btree_node_alloc(b->c, b->level + 1, true);
K
Kent Overstreet 已提交
2075 2076 2077 2078
			if (IS_ERR(n3))
				goto err_free2;
		}

K
Kent Overstreet 已提交
2079
		bch_btree_insert_keys(n1, op, insert_keys, replace_key);
K
Kent Overstreet 已提交
2080

2081 2082
		/*
		 * Has to be a linear search because we don't have an auxiliary
K
Kent Overstreet 已提交
2083 2084 2085 2086 2087 2088 2089 2090 2091 2092 2093 2094 2095 2096 2097 2098 2099 2100
		 * search tree yet
		 */

		while (keys < (n1->sets[0].data->keys * 3) / 5)
			keys += bkey_u64s(node(n1->sets[0].data, keys));

		bkey_copy_key(&n1->key, node(n1->sets[0].data, keys));
		keys += bkey_u64s(node(n1->sets[0].data, keys));

		n2->sets[0].data->keys = n1->sets[0].data->keys - keys;
		n1->sets[0].data->keys = keys;

		memcpy(n2->sets[0].data->start,
		       end(n1->sets[0].data),
		       n2->sets[0].data->keys * sizeof(uint64_t));

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

2101
		bch_keylist_add(&parent_keys, &n2->key);
K
Kent Overstreet 已提交
2102
		bch_btree_node_write(n2, &cl);
K
Kent Overstreet 已提交
2103
		rw_unlock(true, n2);
K
Kent Overstreet 已提交
2104 2105 2106
	} else {
		trace_bcache_btree_node_compact(b, n1->sets[0].data->keys);

K
Kent Overstreet 已提交
2107
		bch_btree_insert_keys(n1, op, insert_keys, replace_key);
K
Kent Overstreet 已提交
2108
	}
K
Kent Overstreet 已提交
2109

2110
	bch_keylist_add(&parent_keys, &n1->key);
K
Kent Overstreet 已提交
2111
	bch_btree_node_write(n1, &cl);
K
Kent Overstreet 已提交
2112 2113

	if (n3) {
2114
		/* Depth increases, make a new root */
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

K
Kent Overstreet 已提交
2119
		closure_sync(&cl);
K
Kent Overstreet 已提交
2120 2121
		bch_btree_set_root(n3);
		rw_unlock(true, n3);
2122 2123

		btree_node_free(b);
2124 2125
	} else if (!b->parent) {
		/* Root filled up but didn't need to be split */
K
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2126
		closure_sync(&cl);
K
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2127
		bch_btree_set_root(n1);
2128 2129

		btree_node_free(b);
K
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2130
	} else {
2131
		/* Split a non root node */
K
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2132
		closure_sync(&cl);
2133 2134 2135 2136 2137 2138 2139
		make_btree_freeing_key(b, parent_keys.top);
		bch_keylist_push(&parent_keys);

		btree_node_free(b);

		bch_btree_insert_node(b->parent, op, &parent_keys, NULL, NULL);
		BUG_ON(!bch_keylist_empty(&parent_keys));
K
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2140 2141 2142 2143
	}

	rw_unlock(true, n1);

2144
	bch_time_stats_update(&b->c->btree_split_time, start_time);
K
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2145 2146 2147

	return 0;
err_free2:
2148
	btree_node_free(n2);
K
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2149 2150
	rw_unlock(true, n2);
err_free1:
2151
	btree_node_free(n1);
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2152 2153 2154 2155 2156 2157 2158 2159 2160 2161 2162
	rw_unlock(true, n1);
err:
	if (n3 == ERR_PTR(-EAGAIN) ||
	    n2 == ERR_PTR(-EAGAIN) ||
	    n1 == ERR_PTR(-EAGAIN))
		return -EAGAIN;

	pr_warn("couldn't split");
	return -ENOMEM;
}

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2163
static int bch_btree_insert_node(struct btree *b, struct btree_op *op,
K
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2164
				 struct keylist *insert_keys,
K
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2165 2166
				 atomic_t *journal_ref,
				 struct bkey *replace_key)
K
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2167
{
2168 2169 2170 2171 2172 2173 2174 2175 2176
	BUG_ON(b->level && replace_key);

	if (should_split(b)) {
		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;
K
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2177
		} else {
2178 2179 2180
			/* Invalidated all iterators */
			return btree_split(b, op, insert_keys, replace_key) ?:
				-EINTR;
K
Kent Overstreet 已提交
2181
		}
2182 2183
	} else {
		BUG_ON(write_block(b) != b->sets[b->nsets].data);
K
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2184

2185 2186 2187 2188 2189 2190 2191 2192 2193
		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_sync(b);
		}

		return 0;
	}
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2194
}
K
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2195

2196 2197 2198 2199 2200 2201 2202 2203 2204 2205 2206 2207 2208 2209 2210 2211 2212 2213 2214 2215 2216 2217 2218 2219 2220 2221 2222
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 ||
		    b->seq != seq + 1)
			goto out;
	}

	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
2223
	ret = bch_btree_insert_node(b, op, &insert, NULL, NULL);
2224 2225 2226 2227 2228 2229 2230 2231

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

2232 2233 2234 2235 2236 2237
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
2238

2239
static int btree_insert_fn(struct btree_op *b_op, struct btree *b)
2240 2241 2242
{
	struct btree_insert_op *op = container_of(b_op,
					struct btree_insert_op, op);
K
Kent Overstreet 已提交
2243

2244 2245 2246 2247 2248 2249
	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
2250 2251
}

2252 2253
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
2254
{
2255
	struct btree_insert_op op;
K
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2256 2257
	int ret = 0;

2258
	BUG_ON(current->bio_list);
2259
	BUG_ON(bch_keylist_empty(keys));
K
Kent Overstreet 已提交
2260

2261 2262 2263 2264
	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
2265

2266 2267 2268 2269 2270 2271
	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
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2272

2273 2274
	if (ret) {
		struct bkey *k;
K
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2275

2276
		pr_err("error %i", ret);
K
Kent Overstreet 已提交
2277

2278
		while ((k = bch_keylist_pop(keys)))
2279
			bkey_put(c, k);
2280 2281
	} else if (op.op.insert_collision)
		ret = -ESRCH;
2282

K
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2283 2284 2285 2286 2287 2288
	return ret;
}

void bch_btree_set_root(struct btree *b)
{
	unsigned i;
K
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2289 2290 2291
	struct closure cl;

	closure_init_stack(&cl);
K
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2292

K
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2293 2294
	trace_bcache_btree_set_root(b);

K
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2295 2296 2297 2298 2299 2300 2301 2302 2303 2304 2305
	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
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2306 2307
	bch_journal_meta(b->c, &cl);
	closure_sync(&cl);
K
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2308 2309
}

2310 2311 2312 2313 2314 2315 2316 2317 2318 2319 2320 2321 2322 2323 2324 2325 2326 2327 2328 2329 2330 2331 2332 2333 2334 2335 2336 2337 2338 2339 2340 2341 2342 2343
/* 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;

		bch_btree_iter_init(b, &iter, from);

		while ((k = bch_btree_iter_next_filter(&iter, b,
						       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
2344
	return btree_root(map_nodes_recurse, c, op, from, fn, flags);
2345 2346 2347 2348 2349 2350 2351 2352 2353 2354 2355 2356 2357 2358 2359 2360 2361 2362 2363 2364 2365 2366 2367 2368 2369 2370 2371 2372 2373 2374 2375 2376
}

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;

	bch_btree_iter_init(b, &iter, from);

	while ((k = bch_btree_iter_next_filter(&iter, b, bch_ptr_bad))) {
		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
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2377
	return btree_root(map_keys_recurse, c, op, from, fn, flags);
2378 2379
}

K
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2380 2381 2382 2383 2384 2385 2386 2387 2388 2389 2390 2391 2392 2393 2394 2395 2396 2397
/* 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);
}

2398 2399
struct refill {
	struct btree_op	op;
2400
	unsigned	nr_found;
2401 2402 2403 2404
	struct keybuf	*buf;
	struct bkey	*end;
	keybuf_pred_fn	*pred;
};
K
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2405

2406 2407 2408 2409 2410 2411
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
2412

2413 2414 2415 2416
	if (bkey_cmp(k, refill->end) >= 0) {
		ret = MAP_DONE;
		goto out;
	}
K
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2417

2418 2419
	if (!KEY_SIZE(k)) /* end key */
		goto out;
K
Kent Overstreet 已提交
2420

2421 2422
	if (refill->pred(buf, k)) {
		struct keybuf_key *w;
K
Kent Overstreet 已提交
2423

2424
		spin_lock(&buf->lock);
K
Kent Overstreet 已提交
2425

2426 2427 2428 2429 2430
		w = array_alloc(&buf->freelist);
		if (!w) {
			spin_unlock(&buf->lock);
			return MAP_DONE;
		}
K
Kent Overstreet 已提交
2431

2432 2433
		w->private = NULL;
		bkey_copy(&w->key, k);
K
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2434

2435 2436
		if (RB_INSERT(&buf->keys, w, node, keybuf_cmp))
			array_free(&buf->freelist, w);
2437 2438
		else
			refill->nr_found++;
K
Kent Overstreet 已提交
2439

2440 2441
		if (array_freelist_empty(&buf->freelist))
			ret = MAP_DONE;
K
Kent Overstreet 已提交
2442

2443
		spin_unlock(&buf->lock);
K
Kent Overstreet 已提交
2444
	}
2445 2446 2447
out:
	buf->last_scanned = *k;
	return ret;
K
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2448 2449 2450
}

void bch_refill_keybuf(struct cache_set *c, struct keybuf *buf,
K
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2451
		       struct bkey *end, keybuf_pred_fn *pred)
K
Kent Overstreet 已提交
2452 2453
{
	struct bkey start = buf->last_scanned;
2454
	struct refill refill;
K
Kent Overstreet 已提交
2455 2456 2457

	cond_resched();

K
Kent Overstreet 已提交
2458
	bch_btree_op_init(&refill.op, -1);
2459 2460 2461 2462
	refill.nr_found	= 0;
	refill.buf	= buf;
	refill.end	= end;
	refill.pred	= pred;
2463 2464 2465

	bch_btree_map_keys(&refill.op, c, &buf->last_scanned,
			   refill_keybuf_fn, MAP_END_KEY);
K
Kent Overstreet 已提交
2466

2467 2468 2469 2470
	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
2471 2472 2473 2474 2475 2476 2477 2478 2479 2480 2481 2482 2483 2484 2485 2486 2487 2488 2489 2490 2491 2492 2493 2494 2495 2496 2497 2498 2499 2500 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 2532 2533 2534 2535 2536 2537 2538 2539 2540 2541 2542 2543 2544 2545 2546 2547

	spin_lock(&buf->lock);

	if (!RB_EMPTY_ROOT(&buf->keys)) {
		struct keybuf_key *w;
		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;
	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;
	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,
2548 2549 2550
					  struct keybuf *buf,
					  struct bkey *end,
					  keybuf_pred_fn *pred)
K
Kent Overstreet 已提交
2551 2552 2553 2554 2555 2556 2557 2558 2559 2560 2561 2562 2563
{
	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;
		}

K
Kent Overstreet 已提交
2564
		bch_refill_keybuf(c, buf, end, pred);
K
Kent Overstreet 已提交
2565 2566 2567 2568 2569
	}

	return ret;
}

K
Kent Overstreet 已提交
2570
void bch_keybuf_init(struct keybuf *buf)
K
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2571 2572 2573 2574 2575 2576 2577 2578 2579 2580 2581 2582 2583 2584 2585 2586
{
	buf->last_scanned	= MAX_KEY;
	buf->keys		= RB_ROOT;

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

void bch_btree_exit(void)
{
	if (btree_io_wq)
		destroy_workqueue(btree_io_wq);
}

int __init bch_btree_init(void)
{
K
Kent Overstreet 已提交
2587 2588
	btree_io_wq = create_singlethread_workqueue("bch_btree_io");
	if (!btree_io_wq)
K
Kent Overstreet 已提交
2589 2590 2591 2592
		return -ENOMEM;

	return 0;
}