request.c 35.8 KB
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/*
 * Main bcache entry point - handle a read or a write request and decide what to
 * do with it; the make_request functions are called by the block layer.
 *
 * Copyright 2010, 2011 Kent Overstreet <kent.overstreet@gmail.com>
 * Copyright 2012 Google, Inc.
 */

#include "bcache.h"
#include "btree.h"
#include "debug.h"
#include "request.h"
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#include "writeback.h"
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#include <linux/cgroup.h>
#include <linux/module.h>
#include <linux/hash.h>
#include <linux/random.h>
#include "blk-cgroup.h"

#include <trace/events/bcache.h>

#define CUTOFF_CACHE_ADD	95
#define CUTOFF_CACHE_READA	90

struct kmem_cache *bch_search_cache;

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static void bch_data_insert_start(struct closure *);

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/* Cgroup interface */

#ifdef CONFIG_CGROUP_BCACHE
static struct bch_cgroup bcache_default_cgroup = { .cache_mode = -1 };

static struct bch_cgroup *cgroup_to_bcache(struct cgroup *cgroup)
{
	struct cgroup_subsys_state *css;
	return cgroup &&
		(css = cgroup_subsys_state(cgroup, bcache_subsys_id))
		? container_of(css, struct bch_cgroup, css)
		: &bcache_default_cgroup;
}

struct bch_cgroup *bch_bio_to_cgroup(struct bio *bio)
{
	struct cgroup_subsys_state *css = bio->bi_css
		? cgroup_subsys_state(bio->bi_css->cgroup, bcache_subsys_id)
		: task_subsys_state(current, bcache_subsys_id);

	return css
		? container_of(css, struct bch_cgroup, css)
		: &bcache_default_cgroup;
}

static ssize_t cache_mode_read(struct cgroup *cgrp, struct cftype *cft,
			struct file *file,
			char __user *buf, size_t nbytes, loff_t *ppos)
{
	char tmp[1024];
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	int len = bch_snprint_string_list(tmp, PAGE_SIZE, bch_cache_modes,
					  cgroup_to_bcache(cgrp)->cache_mode + 1);
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	if (len < 0)
		return len;

	return simple_read_from_buffer(buf, nbytes, ppos, tmp, len);
}

static int cache_mode_write(struct cgroup *cgrp, struct cftype *cft,
			    const char *buf)
{
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	int v = bch_read_string_list(buf, bch_cache_modes);
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	if (v < 0)
		return v;

	cgroup_to_bcache(cgrp)->cache_mode = v - 1;
	return 0;
}

static u64 bch_verify_read(struct cgroup *cgrp, struct cftype *cft)
{
	return cgroup_to_bcache(cgrp)->verify;
}

static int bch_verify_write(struct cgroup *cgrp, struct cftype *cft, u64 val)
{
	cgroup_to_bcache(cgrp)->verify = val;
	return 0;
}

static u64 bch_cache_hits_read(struct cgroup *cgrp, struct cftype *cft)
{
	struct bch_cgroup *bcachecg = cgroup_to_bcache(cgrp);
	return atomic_read(&bcachecg->stats.cache_hits);
}

static u64 bch_cache_misses_read(struct cgroup *cgrp, struct cftype *cft)
{
	struct bch_cgroup *bcachecg = cgroup_to_bcache(cgrp);
	return atomic_read(&bcachecg->stats.cache_misses);
}

static u64 bch_cache_bypass_hits_read(struct cgroup *cgrp,
					 struct cftype *cft)
{
	struct bch_cgroup *bcachecg = cgroup_to_bcache(cgrp);
	return atomic_read(&bcachecg->stats.cache_bypass_hits);
}

static u64 bch_cache_bypass_misses_read(struct cgroup *cgrp,
					   struct cftype *cft)
{
	struct bch_cgroup *bcachecg = cgroup_to_bcache(cgrp);
	return atomic_read(&bcachecg->stats.cache_bypass_misses);
}

static struct cftype bch_files[] = {
	{
		.name		= "cache_mode",
		.read		= cache_mode_read,
		.write_string	= cache_mode_write,
	},
	{
		.name		= "verify",
		.read_u64	= bch_verify_read,
		.write_u64	= bch_verify_write,
	},
	{
		.name		= "cache_hits",
		.read_u64	= bch_cache_hits_read,
	},
	{
		.name		= "cache_misses",
		.read_u64	= bch_cache_misses_read,
	},
	{
		.name		= "cache_bypass_hits",
		.read_u64	= bch_cache_bypass_hits_read,
	},
	{
		.name		= "cache_bypass_misses",
		.read_u64	= bch_cache_bypass_misses_read,
	},
	{ }	/* terminate */
};

static void init_bch_cgroup(struct bch_cgroup *cg)
{
	cg->cache_mode = -1;
}

static struct cgroup_subsys_state *bcachecg_create(struct cgroup *cgroup)
{
	struct bch_cgroup *cg;

	cg = kzalloc(sizeof(*cg), GFP_KERNEL);
	if (!cg)
		return ERR_PTR(-ENOMEM);
	init_bch_cgroup(cg);
	return &cg->css;
}

static void bcachecg_destroy(struct cgroup *cgroup)
{
	struct bch_cgroup *cg = cgroup_to_bcache(cgroup);
	free_css_id(&bcache_subsys, &cg->css);
	kfree(cg);
}

struct cgroup_subsys bcache_subsys = {
	.create		= bcachecg_create,
	.destroy	= bcachecg_destroy,
	.subsys_id	= bcache_subsys_id,
	.name		= "bcache",
	.module		= THIS_MODULE,
};
EXPORT_SYMBOL_GPL(bcache_subsys);
#endif

static unsigned cache_mode(struct cached_dev *dc, struct bio *bio)
{
#ifdef CONFIG_CGROUP_BCACHE
	int r = bch_bio_to_cgroup(bio)->cache_mode;
	if (r >= 0)
		return r;
#endif
	return BDEV_CACHE_MODE(&dc->sb);
}

static bool verify(struct cached_dev *dc, struct bio *bio)
{
#ifdef CONFIG_CGROUP_BCACHE
	if (bch_bio_to_cgroup(bio)->verify)
		return true;
#endif
	return dc->verify;
}

static void bio_csum(struct bio *bio, struct bkey *k)
{
	struct bio_vec *bv;
	uint64_t csum = 0;
	int i;

	bio_for_each_segment(bv, bio, i) {
		void *d = kmap(bv->bv_page) + bv->bv_offset;
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		csum = bch_crc64_update(csum, d, bv->bv_len);
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		kunmap(bv->bv_page);
	}

	k->ptr[KEY_PTRS(k)] = csum & (~0ULL >> 1);
}

/* Insert data into cache */

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static void bch_data_insert_keys(struct closure *cl)
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{
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	struct search *s = container_of(cl, struct search, btree);
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	atomic_t *journal_ref = NULL;
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	/*
	 * If we're looping, might already be waiting on
	 * another journal write - can't wait on more than one journal write at
	 * a time
	 *
	 * XXX: this looks wrong
	 */
#if 0
	while (atomic_read(&s->cl.remaining) & CLOSURE_WAITING)
		closure_sync(&s->cl);
#endif
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	if (s->write)
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		journal_ref = bch_journal(s->c, &s->insert_keys,
					  s->flush_journal
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					  ? &s->cl : NULL);
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	if (bch_btree_insert(&s->op, s->c, &s->insert_keys, journal_ref)) {
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		s->error		= -ENOMEM;
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		s->insert_data_done	= true;
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	}
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	if (journal_ref)
		atomic_dec_bug(journal_ref);
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	if (!s->insert_data_done)
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		continue_at(cl, bch_data_insert_start, bcache_wq);
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	bch_keylist_free(&s->insert_keys);
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	closure_return(cl);
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}

struct open_bucket {
	struct list_head	list;
	struct task_struct	*last;
	unsigned		sectors_free;
	BKEY_PADDED(key);
};

void bch_open_buckets_free(struct cache_set *c)
{
	struct open_bucket *b;

	while (!list_empty(&c->data_buckets)) {
		b = list_first_entry(&c->data_buckets,
				     struct open_bucket, list);
		list_del(&b->list);
		kfree(b);
	}
}

int bch_open_buckets_alloc(struct cache_set *c)
{
	int i;

	spin_lock_init(&c->data_bucket_lock);

	for (i = 0; i < 6; i++) {
		struct open_bucket *b = kzalloc(sizeof(*b), GFP_KERNEL);
		if (!b)
			return -ENOMEM;

		list_add(&b->list, &c->data_buckets);
	}

	return 0;
}

/*
 * We keep multiple buckets open for writes, and try to segregate different
 * write streams for better cache utilization: first we look for a bucket where
 * the last write to it was sequential with the current write, and failing that
 * we look for a bucket that was last used by the same task.
 *
 * The ideas is if you've got multiple tasks pulling data into the cache at the
 * same time, you'll get better cache utilization if you try to segregate their
 * data and preserve locality.
 *
 * For example, say you've starting Firefox at the same time you're copying a
 * bunch of files. Firefox will likely end up being fairly hot and stay in the
 * cache awhile, but the data you copied might not be; if you wrote all that
 * data to the same buckets it'd get invalidated at the same time.
 *
 * Both of those tasks will be doing fairly random IO so we can't rely on
 * detecting sequential IO to segregate their data, but going off of the task
 * should be a sane heuristic.
 */
static struct open_bucket *pick_data_bucket(struct cache_set *c,
					    const struct bkey *search,
					    struct task_struct *task,
					    struct bkey *alloc)
{
	struct open_bucket *ret, *ret_task = NULL;

	list_for_each_entry_reverse(ret, &c->data_buckets, list)
		if (!bkey_cmp(&ret->key, search))
			goto found;
		else if (ret->last == task)
			ret_task = ret;

	ret = ret_task ?: list_first_entry(&c->data_buckets,
					   struct open_bucket, list);
found:
	if (!ret->sectors_free && KEY_PTRS(alloc)) {
		ret->sectors_free = c->sb.bucket_size;
		bkey_copy(&ret->key, alloc);
		bkey_init(alloc);
	}

	if (!ret->sectors_free)
		ret = NULL;

	return ret;
}

/*
 * Allocates some space in the cache to write to, and k to point to the newly
 * allocated space, and updates KEY_SIZE(k) and KEY_OFFSET(k) (to point to the
 * end of the newly allocated space).
 *
 * May allocate fewer sectors than @sectors, KEY_SIZE(k) indicates how many
 * sectors were actually allocated.
 *
 * If s->writeback is true, will not fail.
 */
static bool bch_alloc_sectors(struct bkey *k, unsigned sectors,
			      struct search *s)
{
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	struct cache_set *c = s->c;
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	struct open_bucket *b;
	BKEY_PADDED(key) alloc;
	unsigned i;

	/*
	 * We might have to allocate a new bucket, which we can't do with a
	 * spinlock held. So if we have to allocate, we drop the lock, allocate
	 * and then retry. KEY_PTRS() indicates whether alloc points to
	 * allocated bucket(s).
	 */

	bkey_init(&alloc.key);
	spin_lock(&c->data_bucket_lock);

	while (!(b = pick_data_bucket(c, k, s->task, &alloc.key))) {
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		unsigned watermark = s->write_prio
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			? WATERMARK_MOVINGGC
			: WATERMARK_NONE;

		spin_unlock(&c->data_bucket_lock);

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		if (bch_bucket_alloc_set(c, watermark, &alloc.key,
					 1, s->writeback))
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			return false;

		spin_lock(&c->data_bucket_lock);
	}

	/*
	 * If we had to allocate, we might race and not need to allocate the
	 * second time we call find_data_bucket(). If we allocated a bucket but
	 * didn't use it, drop the refcount bch_bucket_alloc_set() took:
	 */
	if (KEY_PTRS(&alloc.key))
		__bkey_put(c, &alloc.key);

	for (i = 0; i < KEY_PTRS(&b->key); i++)
		EBUG_ON(ptr_stale(c, &b->key, i));

	/* Set up the pointer to the space we're allocating: */

	for (i = 0; i < KEY_PTRS(&b->key); i++)
		k->ptr[i] = b->key.ptr[i];

	sectors = min(sectors, b->sectors_free);

	SET_KEY_OFFSET(k, KEY_OFFSET(k) + sectors);
	SET_KEY_SIZE(k, sectors);
	SET_KEY_PTRS(k, KEY_PTRS(&b->key));

	/*
	 * Move b to the end of the lru, and keep track of what this bucket was
	 * last used for:
	 */
	list_move_tail(&b->list, &c->data_buckets);
	bkey_copy_key(&b->key, k);
	b->last = s->task;

	b->sectors_free	-= sectors;

	for (i = 0; i < KEY_PTRS(&b->key); i++) {
		SET_PTR_OFFSET(&b->key, i, PTR_OFFSET(&b->key, i) + sectors);

		atomic_long_add(sectors,
				&PTR_CACHE(c, &b->key, i)->sectors_written);
	}

	if (b->sectors_free < c->sb.block_size)
		b->sectors_free = 0;

	/*
	 * k takes refcounts on the buckets it points to until it's inserted
	 * into the btree, but if we're done with this bucket we just transfer
	 * get_data_bucket()'s refcount.
	 */
	if (b->sectors_free)
		for (i = 0; i < KEY_PTRS(&b->key); i++)
			atomic_inc(&PTR_BUCKET(c, &b->key, i)->pin);

	spin_unlock(&c->data_bucket_lock);
	return true;
}

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static void bch_data_invalidate(struct closure *cl)
{
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	struct search *s = container_of(cl, struct search, btree);
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	struct bio *bio = s->cache_bio;
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	pr_debug("invalidating %i sectors from %llu",
		 bio_sectors(bio), (uint64_t) bio->bi_sector);

	while (bio_sectors(bio)) {
		unsigned len = min(bio_sectors(bio), 1U << 14);

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		if (bch_keylist_realloc(&s->insert_keys, 0, s->c))
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			goto out;

		bio->bi_sector	+= len;
		bio->bi_size	-= len << 9;

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		bch_keylist_add(&s->insert_keys,
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				&KEY(s->inode, bio->bi_sector, len));
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	}

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	s->insert_data_done = true;
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	bio_put(bio);
out:
	continue_at(cl, bch_data_insert_keys, bcache_wq);
}

static void bch_data_insert_error(struct closure *cl)
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{
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	struct search *s = container_of(cl, struct search, btree);
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	/*
	 * Our data write just errored, which means we've got a bunch of keys to
	 * insert that point to data that wasn't succesfully written.
	 *
	 * We don't have to insert those keys but we still have to invalidate
	 * that region of the cache - so, if we just strip off all the pointers
	 * from the keys we'll accomplish just that.
	 */

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	struct bkey *src = s->insert_keys.keys, *dst = s->insert_keys.keys;
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	while (src != s->insert_keys.top) {
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		struct bkey *n = bkey_next(src);

		SET_KEY_PTRS(src, 0);
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		memmove(dst, src, bkey_bytes(src));
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		dst = bkey_next(dst);
		src = n;
	}

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	s->insert_keys.top = dst;
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	bch_data_insert_keys(cl);
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}

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static void bch_data_insert_endio(struct bio *bio, int error)
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{
	struct closure *cl = bio->bi_private;
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	struct search *s = container_of(cl, struct search, btree);
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	if (error) {
		/* TODO: We could try to recover from this. */
		if (s->writeback)
			s->error = error;
		else if (s->write)
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			set_closure_fn(cl, bch_data_insert_error, bcache_wq);
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		else
			set_closure_fn(cl, NULL, NULL);
	}

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	bch_bbio_endio(s->c, bio, error, "writing data to cache");
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}

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static void bch_data_insert_start(struct closure *cl)
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{
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	struct search *s = container_of(cl, struct search, btree);
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	struct bio *bio = s->cache_bio, *n;
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	if (s->bypass)
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		return bch_data_invalidate(cl);
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	if (atomic_sub_return(bio_sectors(bio), &s->c->sectors_to_gc) < 0) {
		set_gc_sectors(s->c);
		wake_up_gc(s->c);
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	}

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	/*
	 * Journal writes are marked REQ_FLUSH; if the original write was a
	 * flush, it'll wait on the journal write.
	 */
	bio->bi_rw &= ~(REQ_FLUSH|REQ_FUA);

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	do {
		unsigned i;
		struct bkey *k;
		struct bio_set *split = s->d
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			? s->d->bio_split : s->c->bio_split;
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		/* 1 for the device pointer and 1 for the chksum */
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		if (bch_keylist_realloc(&s->insert_keys,
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					1 + (s->csum ? 1 : 0),
					s->c))
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			continue_at(cl, bch_data_insert_keys, bcache_wq);
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		k = s->insert_keys.top;
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		bkey_init(k);
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		SET_KEY_INODE(k, s->inode);
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		SET_KEY_OFFSET(k, bio->bi_sector);

		if (!bch_alloc_sectors(k, bio_sectors(bio), s))
			goto err;

		n = bch_bio_split(bio, KEY_SIZE(k), GFP_NOIO, split);

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		n->bi_end_io	= bch_data_insert_endio;
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		n->bi_private	= cl;

		if (s->writeback) {
			SET_KEY_DIRTY(k, true);

			for (i = 0; i < KEY_PTRS(k); i++)
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				SET_GC_MARK(PTR_BUCKET(s->c, k, i),
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					    GC_MARK_DIRTY);
		}

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		SET_KEY_CSUM(k, s->csum);
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		if (KEY_CSUM(k))
			bio_csum(n, k);

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		trace_bcache_cache_insert(k);
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		bch_keylist_push(&s->insert_keys);
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		n->bi_rw |= REQ_WRITE;
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		bch_submit_bbio(n, s->c, k, 0);
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	} while (n != bio);

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	s->insert_data_done = true;
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	continue_at(cl, bch_data_insert_keys, bcache_wq);
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err:
	/* bch_alloc_sectors() blocks if s->writeback = true */
	BUG_ON(s->writeback);

	/*
	 * But if it's not a writeback write we'd rather just bail out if
	 * there aren't any buckets ready to write to - it might take awhile and
	 * we might be starving btree writes for gc or something.
	 */

	if (s->write) {
		/*
		 * Writethrough write: We can't complete the write until we've
		 * updated the index. But we don't want to delay the write while
		 * we wait for buckets to be freed up, so just invalidate the
		 * rest of the write.
		 */
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		s->bypass = true;
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		return bch_data_invalidate(cl);
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	} else {
		/*
		 * From a cache miss, we can just insert the keys for the data
		 * we have written or bail out if we didn't do anything.
		 */
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		s->insert_data_done = true;
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		bio_put(bio);

600
		if (!bch_keylist_empty(&s->insert_keys))
601
			continue_at(cl, bch_data_insert_keys, bcache_wq);
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		else
			closure_return(cl);
	}
}

/**
608
 * bch_data_insert - stick some data in the cache
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 *
 * This is the starting point for any data to end up in a cache device; it could
 * be from a normal write, or a writeback write, or a write to a flash only
 * volume - it's also used by the moving garbage collector to compact data in
 * mostly empty buckets.
 *
 * It first writes the data to the cache, creating a list of keys to be inserted
 * (if the data had to be fragmented there will be multiple keys); after the
 * data is written it calls bch_journal, and after the keys have been added to
 * the next journal write they're inserted into the btree.
 *
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 * It inserts the data in s->cache_bio; bi_sector is used for the key offset,
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 * and op->inode is used for the key inode.
 *
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 * If s->bypass is true, instead of inserting the data it invalidates the
 * region of the cache represented by s->cache_bio and op->inode.
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 */
626
void bch_data_insert(struct closure *cl)
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{
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	struct search *s = container_of(cl, struct search, btree);
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630
	bch_keylist_init(&s->insert_keys);
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	bio_get(s->cache_bio);
632
	bch_data_insert_start(cl);
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}

635
/* Cache lookup */
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637
static void bch_cache_read_endio(struct bio *bio, int error)
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{
	struct bbio *b = container_of(bio, struct bbio, bio);
	struct closure *cl = bio->bi_private;
	struct search *s = container_of(cl, struct search, cl);

	/*
	 * If the bucket was reused while our bio was in flight, we might have
	 * read the wrong data. Set s->error but not error so it doesn't get
	 * counted against the cache device, but we'll still reread the data
	 * from the backing device.
	 */

	if (error)
		s->error = error;
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	else if (ptr_stale(s->c, &b->key, 0)) {
		atomic_long_inc(&s->c->cache_read_races);
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		s->error = -EINTR;
	}

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	bch_bbio_endio(s->c, bio, error, "reading from cache");
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}

660 661 662 663
/*
 * Read from a single key, handling the initial cache miss if the key starts in
 * the middle of the bio
 */
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static int cache_lookup_fn(struct btree_op *op, struct btree *b, struct bkey *k)
665 666
{
	struct search *s = container_of(op, struct search, op);
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	struct bio *n, *bio = &s->bio.bio;
	struct bkey *bio_key;
669 670
	unsigned ptr;

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	if (bkey_cmp(k, &KEY(s->inode, bio->bi_sector, 0)) <= 0)
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		return MAP_CONTINUE;

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	if (KEY_INODE(k) != s->inode ||
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	    KEY_START(k) > bio->bi_sector) {
		unsigned bio_sectors = bio_sectors(bio);
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		unsigned sectors = KEY_INODE(k) == s->inode
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			? min_t(uint64_t, INT_MAX,
				KEY_START(k) - bio->bi_sector)
			: INT_MAX;

		int ret = s->d->cache_miss(b, s, bio, sectors);
		if (ret != MAP_CONTINUE)
			return ret;

		/* if this was a complete miss we shouldn't get here */
		BUG_ON(bio_sectors <= sectors);
	}

	if (!KEY_SIZE(k))
		return MAP_CONTINUE;
692 693 694 695 696 697

	/* XXX: figure out best pointer - for multiple cache devices */
	ptr = 0;

	PTR_BUCKET(b->c, k, ptr)->prio = INITIAL_PRIO;

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	n = bch_bio_split(bio, min_t(uint64_t, INT_MAX,
				     KEY_OFFSET(k) - bio->bi_sector),
			  GFP_NOIO, s->d->bio_split);
701

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	bio_key = &container_of(n, struct bbio, bio)->key;
	bch_bkey_copy_single_ptr(bio_key, k, ptr);
704

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	bch_cut_front(&KEY(s->inode, n->bi_sector, 0), bio_key);
	bch_cut_back(&KEY(s->inode, bio_end_sector(n), 0), bio_key);
707

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	n->bi_end_io	= bch_cache_read_endio;
	n->bi_private	= &s->cl;
710

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	/*
	 * The bucket we're reading from might be reused while our bio
	 * is in flight, and we could then end up reading the wrong
	 * data.
	 *
	 * We guard against this by checking (in cache_read_endio()) if
	 * the pointer is stale again; if so, we treat it as an error
	 * and reread from the backing device (but we don't pass that
	 * error up anywhere).
	 */
721

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	__bch_submit_bbio(n, b->c);
	return n == bio ? MAP_DONE : MAP_CONTINUE;
724 725 726 727
}

static void cache_lookup(struct closure *cl)
{
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	struct search *s = container_of(cl, struct search, btree);
729 730
	struct bio *bio = &s->bio.bio;

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	int ret = bch_btree_map_keys(&s->op, s->c,
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				     &KEY(s->inode, bio->bi_sector, 0),
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				     cache_lookup_fn, MAP_END_KEY);
734 735 736 737 738 739 740 741 742 743 744 745 746 747 748 749 750 751 752 753 754 755 756
	if (ret == -EAGAIN)
		continue_at(cl, cache_lookup, bcache_wq);

	closure_return(cl);
}

/* Common code for the make_request functions */

static void request_endio(struct bio *bio, int error)
{
	struct closure *cl = bio->bi_private;

	if (error) {
		struct search *s = container_of(cl, struct search, cl);
		s->error = error;
		/* Only cache read errors are recoverable */
		s->recoverable = false;
	}

	bio_put(bio);
	closure_put(cl);
}

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757 758 759 760 761 762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785 786 787 788
static void bio_complete(struct search *s)
{
	if (s->orig_bio) {
		int cpu, rw = bio_data_dir(s->orig_bio);
		unsigned long duration = jiffies - s->start_time;

		cpu = part_stat_lock();
		part_round_stats(cpu, &s->d->disk->part0);
		part_stat_add(cpu, &s->d->disk->part0, ticks[rw], duration);
		part_stat_unlock();

		trace_bcache_request_end(s, s->orig_bio);
		bio_endio(s->orig_bio, s->error);
		s->orig_bio = NULL;
	}
}

static void do_bio_hook(struct search *s)
{
	struct bio *bio = &s->bio.bio;
	memcpy(bio, s->orig_bio, sizeof(struct bio));

	bio->bi_end_io		= request_endio;
	bio->bi_private		= &s->cl;
	atomic_set(&bio->bi_cnt, 3);
}

static void search_free(struct closure *cl)
{
	struct search *s = container_of(cl, struct search, cl);
	bio_complete(s);

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	if (s->cache_bio)
		bio_put(s->cache_bio);
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791 792 793 794 795 796 797 798 799 800

	if (s->unaligned_bvec)
		mempool_free(s->bio.bio.bi_io_vec, s->d->unaligned_bvec);

	closure_debug_destroy(cl);
	mempool_free(s, s->d->c->search);
}

static struct search *search_alloc(struct bio *bio, struct bcache_device *d)
{
801
	struct search *s;
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802
	struct bio_vec *bv;
803 804 805

	s = mempool_alloc(d->c->search, GFP_NOIO);
	memset(s, 0, offsetof(struct search, insert_keys));
K
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	__closure_init(&s->cl, NULL);

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809 810
	s->inode		= d->id;
	s->c			= d->c;
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811 812 813 814 815
	s->d			= d;
	s->op.lock		= -1;
	s->task			= current;
	s->orig_bio		= bio;
	s->write		= (bio->bi_rw & REQ_WRITE) != 0;
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	s->flush_journal	= (bio->bi_rw & (REQ_FLUSH|REQ_FUA)) != 0;
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817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843
	s->recoverable		= 1;
	s->start_time		= jiffies;
	do_bio_hook(s);

	if (bio->bi_size != bio_segments(bio) * PAGE_SIZE) {
		bv = mempool_alloc(d->unaligned_bvec, GFP_NOIO);
		memcpy(bv, bio_iovec(bio),
		       sizeof(struct bio_vec) * bio_segments(bio));

		s->bio.bio.bi_io_vec	= bv;
		s->unaligned_bvec	= 1;
	}

	return s;
}

/* Cached devices */

static void cached_dev_bio_complete(struct closure *cl)
{
	struct search *s = container_of(cl, struct search, cl);
	struct cached_dev *dc = container_of(s->d, struct cached_dev, disk);

	search_free(cl);
	cached_dev_put(dc);
}

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844 845 846 847 848 849 850 851 852 853 854 855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886
unsigned bch_get_congested(struct cache_set *c)
{
	int i;
	long rand;

	if (!c->congested_read_threshold_us &&
	    !c->congested_write_threshold_us)
		return 0;

	i = (local_clock_us() - c->congested_last_us) / 1024;
	if (i < 0)
		return 0;

	i += atomic_read(&c->congested);
	if (i >= 0)
		return 0;

	i += CONGESTED_MAX;

	if (i > 0)
		i = fract_exp_two(i, 6);

	rand = get_random_int();
	i -= bitmap_weight(&rand, BITS_PER_LONG);

	return i > 0 ? i : 1;
}

static void add_sequential(struct task_struct *t)
{
	ewma_add(t->sequential_io_avg,
		 t->sequential_io, 8, 0);

	t->sequential_io = 0;
}

static struct hlist_head *iohash(struct cached_dev *dc, uint64_t k)
{
	return &dc->io_hash[hash_64(k, RECENT_IO_BITS)];
}

static bool check_should_bypass(struct cached_dev *dc, struct search *s)
{
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	struct cache_set *c = s->c;
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888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954 955 956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971
	struct bio *bio = &s->bio.bio;
	unsigned mode = cache_mode(dc, bio);
	unsigned sectors, congested = bch_get_congested(c);

	if (atomic_read(&dc->disk.detaching) ||
	    c->gc_stats.in_use > CUTOFF_CACHE_ADD ||
	    (bio->bi_rw & REQ_DISCARD))
		goto skip;

	if (mode == CACHE_MODE_NONE ||
	    (mode == CACHE_MODE_WRITEAROUND &&
	     (bio->bi_rw & REQ_WRITE)))
		goto skip;

	if (bio->bi_sector & (c->sb.block_size - 1) ||
	    bio_sectors(bio) & (c->sb.block_size - 1)) {
		pr_debug("skipping unaligned io");
		goto skip;
	}

	if (!congested && !dc->sequential_cutoff)
		goto rescale;

	if (!congested &&
	    mode == CACHE_MODE_WRITEBACK &&
	    (bio->bi_rw & REQ_WRITE) &&
	    (bio->bi_rw & REQ_SYNC))
		goto rescale;

	if (dc->sequential_merge) {
		struct io *i;

		spin_lock(&dc->io_lock);

		hlist_for_each_entry(i, iohash(dc, bio->bi_sector), hash)
			if (i->last == bio->bi_sector &&
			    time_before(jiffies, i->jiffies))
				goto found;

		i = list_first_entry(&dc->io_lru, struct io, lru);

		add_sequential(s->task);
		i->sequential = 0;
found:
		if (i->sequential + bio->bi_size > i->sequential)
			i->sequential	+= bio->bi_size;

		i->last			 = bio_end_sector(bio);
		i->jiffies		 = jiffies + msecs_to_jiffies(5000);
		s->task->sequential_io	 = i->sequential;

		hlist_del(&i->hash);
		hlist_add_head(&i->hash, iohash(dc, i->last));
		list_move_tail(&i->lru, &dc->io_lru);

		spin_unlock(&dc->io_lock);
	} else {
		s->task->sequential_io = bio->bi_size;

		add_sequential(s->task);
	}

	sectors = max(s->task->sequential_io,
		      s->task->sequential_io_avg) >> 9;

	if (dc->sequential_cutoff &&
	    sectors >= dc->sequential_cutoff >> 9) {
		trace_bcache_bypass_sequential(s->orig_bio);
		goto skip;
	}

	if (congested && sectors >= congested) {
		trace_bcache_bypass_congested(s->orig_bio);
		goto skip;
	}

rescale:
	bch_rescale_priorities(c, bio_sectors(bio));
	return false;
skip:
	bch_mark_sectors_bypassed(s, bio_sectors(bio));
	return true;
}

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/* Process reads */

974
static void cached_dev_cache_miss_done(struct closure *cl)
K
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975 976 977 978 979 980
{
	struct search *s = container_of(cl, struct search, cl);

	if (s->op.insert_collision)
		bch_mark_cache_miss_collision(s);

K
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981
	if (s->cache_bio) {
K
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982 983 984
		int i;
		struct bio_vec *bv;

K
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985
		bio_for_each_segment_all(bv, s->cache_bio, i)
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986 987 988 989 990 991
			__free_page(bv->bv_page);
	}

	cached_dev_bio_complete(cl);
}

992
static void cached_dev_read_error(struct closure *cl)
K
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993 994
{
	struct search *s = container_of(cl, struct search, cl);
995
	struct bio *bio = &s->bio.bio;
K
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996 997 998 999
	struct bio_vec *bv;
	int i;

	if (s->recoverable) {
K
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1000 1001
		/* Retry from the backing device: */
		trace_bcache_read_retry(s->orig_bio);
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1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018

		s->error = 0;
		bv = s->bio.bio.bi_io_vec;
		do_bio_hook(s);
		s->bio.bio.bi_io_vec = bv;

		if (!s->unaligned_bvec)
			bio_for_each_segment(bv, s->orig_bio, i)
				bv->bv_offset = 0, bv->bv_len = PAGE_SIZE;
		else
			memcpy(s->bio.bio.bi_io_vec,
			       bio_iovec(s->orig_bio),
			       sizeof(struct bio_vec) *
			       bio_segments(s->orig_bio));

		/* XXX: invalidate cache */

1019
		closure_bio_submit(bio, cl, s->d);
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1020 1021
	}

1022
	continue_at(cl, cached_dev_cache_miss_done, NULL);
K
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1023 1024
}

1025
static void cached_dev_read_done(struct closure *cl)
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1026 1027 1028 1029 1030
{
	struct search *s = container_of(cl, struct search, cl);
	struct cached_dev *dc = container_of(s->d, struct cached_dev, disk);

	/*
1031 1032
	 * We had a cache miss; cache_bio now contains data ready to be inserted
	 * into the cache.
K
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1033 1034 1035 1036 1037
	 *
	 * First, we copy the data we just read from cache_bio's bounce buffers
	 * to the buffers the original bio pointed to:
	 */

K
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1038 1039 1040 1041 1042 1043 1044
	if (s->cache_bio) {
		bio_reset(s->cache_bio);
		s->cache_bio->bi_sector =
			s->cache_miss->bi_sector;
		s->cache_bio->bi_bdev = s->cache_miss->bi_bdev;
		s->cache_bio->bi_size = s->cache_bio_sectors << 9;
		bch_bio_map(s->cache_bio, NULL);
K
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1045

K
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1046
		bio_copy_data(s->cache_miss, s->cache_bio);
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1047 1048 1049 1050 1051 1052 1053 1054 1055 1056

		bio_put(s->cache_miss);
		s->cache_miss = NULL;
	}

	if (verify(dc, &s->bio.bio) && s->recoverable)
		bch_data_verify(s);

	bio_complete(s);

K
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1057 1058
	if (s->cache_bio &&
	    !test_bit(CACHE_SET_STOPPING, &s->c->flags)) {
K
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1059
		s->op.type = BTREE_REPLACE;
K
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1060
		closure_call(&s->btree, bch_data_insert, NULL, cl);
K
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1061 1062
	}

1063
	continue_at(cl, cached_dev_cache_miss_done, NULL);
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1064 1065
}

1066
static void cached_dev_read_done_bh(struct closure *cl)
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1067 1068 1069 1070
{
	struct search *s = container_of(cl, struct search, cl);
	struct cached_dev *dc = container_of(s->d, struct cached_dev, disk);

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	bch_mark_cache_accounting(s, !s->cache_miss, s->bypass);
	trace_bcache_read(s->orig_bio, !s->cache_miss, s->bypass);
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1073 1074

	if (s->error)
1075
		continue_at_nobarrier(cl, cached_dev_read_error, bcache_wq);
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	else if (s->cache_bio || verify(dc, &s->bio.bio))
1077
		continue_at_nobarrier(cl, cached_dev_read_done, bcache_wq);
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	else
1079
		continue_at_nobarrier(cl, cached_dev_bio_complete, NULL);
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1080 1081 1082 1083 1084
}

static int cached_dev_cache_miss(struct btree *b, struct search *s,
				 struct bio *bio, unsigned sectors)
{
1085
	int ret = MAP_CONTINUE;
1086
	unsigned reada = 0;
K
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1087
	struct cached_dev *dc = container_of(s->d, struct cached_dev, disk);
1088
	struct bio *miss, *cache_bio;
K
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1089

K
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1090
	if (s->cache_miss || s->bypass) {
1091
		miss = bch_bio_split(bio, sectors, GFP_NOIO, s->d->bio_split);
1092
		ret = miss == bio ? MAP_DONE : MAP_CONTINUE;
1093 1094
		goto out_submit;
	}
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1095

1096 1097
	if (!(bio->bi_rw & REQ_RAHEAD) &&
	    !(bio->bi_rw & REQ_META) &&
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	    s->c->gc_stats.in_use < CUTOFF_CACHE_READA)
1099 1100
		reada = min_t(sector_t, dc->readahead >> 9,
			      bdev_sectors(bio->bi_bdev) - bio_end_sector(bio));
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1102
	s->cache_bio_sectors = min(sectors, bio_sectors(bio) + reada);
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	s->op.replace = KEY(s->inode, bio->bi_sector +
1105 1106 1107 1108 1109 1110 1111
			    s->cache_bio_sectors, s->cache_bio_sectors);

	ret = bch_btree_insert_check_key(b, &s->op, &s->op.replace);
	if (ret)
		return ret;

	miss = bch_bio_split(bio, sectors, GFP_NOIO, s->d->bio_split);
1112 1113 1114

	/* btree_search_recurse()'s btree iterator is no good anymore */
	ret = miss == bio ? MAP_DONE : -EINTR;
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1116
	cache_bio = bio_alloc_bioset(GFP_NOWAIT,
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			DIV_ROUND_UP(s->cache_bio_sectors, PAGE_SECTORS),
			dc->disk.bio_split);
1119
	if (!cache_bio)
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1120 1121
		goto out_submit;

1122 1123 1124
	cache_bio->bi_sector	= miss->bi_sector;
	cache_bio->bi_bdev	= miss->bi_bdev;
	cache_bio->bi_size	= s->cache_bio_sectors << 9;
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1126 1127
	cache_bio->bi_end_io	= request_endio;
	cache_bio->bi_private	= &s->cl;
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1129 1130
	bch_bio_map(cache_bio, NULL);
	if (bio_alloc_pages(cache_bio, __GFP_NOWARN|GFP_NOIO))
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		goto out_put;

1133
	s->cache_miss	= miss;
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	s->cache_bio = cache_bio;
1135 1136
	bio_get(cache_bio);
	closure_bio_submit(cache_bio, &s->cl, s->d);
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	return ret;
out_put:
1140
	bio_put(cache_bio);
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out_submit:
1142 1143
	miss->bi_end_io		= request_endio;
	miss->bi_private	= &s->cl;
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	closure_bio_submit(miss, &s->cl, s->d);
	return ret;
}

1148
static void cached_dev_read(struct cached_dev *dc, struct search *s)
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{
	struct closure *cl = &s->cl;

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	closure_call(&s->btree, cache_lookup, NULL, cl);
1153
	continue_at(cl, cached_dev_read_done_bh, NULL);
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}

/* Process writes */

static void cached_dev_write_complete(struct closure *cl)
{
	struct search *s = container_of(cl, struct search, cl);
	struct cached_dev *dc = container_of(s->d, struct cached_dev, disk);

	up_read_non_owner(&dc->writeback_lock);
	cached_dev_bio_complete(cl);
}

1167
static void cached_dev_write(struct cached_dev *dc, struct search *s)
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{
	struct closure *cl = &s->cl;
	struct bio *bio = &s->bio.bio;
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	struct bkey start = KEY(dc->disk.id, bio->bi_sector, 0);
	struct bkey end = KEY(dc->disk.id, bio_end_sector(bio), 0);
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	bch_keybuf_check_overlapping(&s->c->moving_gc_keys, &start, &end);
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	down_read_non_owner(&dc->writeback_lock);
	if (bch_keybuf_check_overlapping(&dc->writeback_keys, &start, &end)) {
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		/*
		 * We overlap with some dirty data undergoing background
		 * writeback, force this write to writeback
		 */
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		s->bypass	= false;
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		s->writeback	= true;
	}

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	/*
	 * Discards aren't _required_ to do anything, so skipping if
	 * check_overlapping returned true is ok
	 *
	 * But check_overlapping drops dirty keys for which io hasn't started,
	 * so we still want to call it.
	 */
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	if (bio->bi_rw & REQ_DISCARD)
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		s->bypass = true;
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	if (should_writeback(dc, s->orig_bio,
			     cache_mode(dc, bio),
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			     s->bypass)) {
		s->bypass = false;
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		s->writeback = true;
	}

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	trace_bcache_write(s->orig_bio, s->writeback, s->bypass);
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	if (s->bypass) {
		s->cache_bio = s->orig_bio;
		bio_get(s->cache_bio);
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		if (!(bio->bi_rw & REQ_DISCARD) ||
		    blk_queue_discard(bdev_get_queue(dc->bdev)))
			closure_bio_submit(bio, cl, s->d);
	} else if (s->writeback) {
1213
		bch_writeback_add(dc);
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		s->cache_bio = bio;
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1216
		if (bio->bi_rw & REQ_FLUSH) {
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			/* Also need to send a flush to the backing device */
1218
			struct bio *flush = bio_alloc_bioset(GFP_NOIO, 0,
1219
							     dc->disk.bio_split);
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1221 1222 1223 1224 1225 1226
			flush->bi_rw	= WRITE_FLUSH;
			flush->bi_bdev	= bio->bi_bdev;
			flush->bi_end_io = request_endio;
			flush->bi_private = cl;

			closure_bio_submit(flush, cl, s->d);
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		}
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	} else {
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		s->cache_bio = bio_clone_bioset(bio, GFP_NOIO,
						dc->disk.bio_split);
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		closure_bio_submit(bio, cl, s->d);
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	}
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	closure_call(&s->btree, bch_data_insert, NULL, cl);
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	continue_at(cl, cached_dev_write_complete, NULL);
}

1239
static void cached_dev_nodata(struct closure *cl)
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{
1241
	struct search *s = container_of(cl, struct search, cl);
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	struct bio *bio = &s->bio.bio;

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	if (s->flush_journal)
		bch_journal_meta(s->c, cl);
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	/* If it's a flush, we send the flush to the backing device too */
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	closure_bio_submit(bio, cl, s->d);

	continue_at(cl, cached_dev_bio_complete, NULL);
}

/* Cached devices - read & write stuff */

static void cached_dev_make_request(struct request_queue *q, struct bio *bio)
{
	struct search *s;
	struct bcache_device *d = bio->bi_bdev->bd_disk->private_data;
	struct cached_dev *dc = container_of(d, struct cached_dev, disk);
	int cpu, rw = bio_data_dir(bio);

	cpu = part_stat_lock();
	part_stat_inc(cpu, &d->disk->part0, ios[rw]);
	part_stat_add(cpu, &d->disk->part0, sectors[rw], bio_sectors(bio));
	part_stat_unlock();

	bio->bi_bdev = dc->bdev;
1268
	bio->bi_sector += dc->sb.data_offset;
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	if (cached_dev_get(dc)) {
		s = search_alloc(bio, d);
		trace_bcache_request_start(s, bio);

1274 1275 1276 1277 1278 1279 1280 1281 1282
		if (!bio->bi_size) {
			/*
			 * can't call bch_journal_meta from under
			 * generic_make_request
			 */
			continue_at_nobarrier(&s->cl,
					      cached_dev_nodata,
					      bcache_wq);
		} else {
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			s->bypass = check_should_bypass(dc, s);
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			if (rw)
1286
				cached_dev_write(dc, s);
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			else
1288
				cached_dev_read(dc, s);
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		}
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	} else {
		if ((bio->bi_rw & REQ_DISCARD) &&
		    !blk_queue_discard(bdev_get_queue(dc->bdev)))
			bio_endio(bio, 0);
		else
			bch_generic_make_request(bio, &d->bio_split_hook);
	}
}

static int cached_dev_ioctl(struct bcache_device *d, fmode_t mode,
			    unsigned int cmd, unsigned long arg)
{
	struct cached_dev *dc = container_of(d, struct cached_dev, disk);
	return __blkdev_driver_ioctl(dc->bdev, mode, cmd, arg);
}

static int cached_dev_congested(void *data, int bits)
{
	struct bcache_device *d = data;
	struct cached_dev *dc = container_of(d, struct cached_dev, disk);
	struct request_queue *q = bdev_get_queue(dc->bdev);
	int ret = 0;

	if (bdi_congested(&q->backing_dev_info, bits))
		return 1;

	if (cached_dev_get(dc)) {
		unsigned i;
		struct cache *ca;

		for_each_cache(ca, d->c, i) {
			q = bdev_get_queue(ca->bdev);
			ret |= bdi_congested(&q->backing_dev_info, bits);
		}

		cached_dev_put(dc);
	}

	return ret;
}

void bch_cached_dev_request_init(struct cached_dev *dc)
{
	struct gendisk *g = dc->disk.disk;

	g->queue->make_request_fn		= cached_dev_make_request;
	g->queue->backing_dev_info.congested_fn = cached_dev_congested;
	dc->disk.cache_miss			= cached_dev_cache_miss;
	dc->disk.ioctl				= cached_dev_ioctl;
}

/* Flash backed devices */

static int flash_dev_cache_miss(struct btree *b, struct search *s,
				struct bio *bio, unsigned sectors)
{
1346 1347 1348
	struct bio_vec *bv;
	int i;

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	/* Zero fill bio */

1351
	bio_for_each_segment(bv, bio, i) {
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		unsigned j = min(bv->bv_len >> 9, sectors);

		void *p = kmap(bv->bv_page);
		memset(p + bv->bv_offset, 0, j << 9);
		kunmap(bv->bv_page);

1358
		sectors	-= j;
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	}

1361 1362 1363
	bio_advance(bio, min(sectors << 9, bio->bi_size));

	if (!bio->bi_size)
1364
		return MAP_DONE;
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1366
	return MAP_CONTINUE;
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}

1369 1370 1371 1372
static void flash_dev_nodata(struct closure *cl)
{
	struct search *s = container_of(cl, struct search, cl);

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	if (s->flush_journal)
		bch_journal_meta(s->c, cl);
1375 1376 1377 1378

	continue_at(cl, search_free, NULL);
}

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static void flash_dev_make_request(struct request_queue *q, struct bio *bio)
{
	struct search *s;
	struct closure *cl;
	struct bcache_device *d = bio->bi_bdev->bd_disk->private_data;
	int cpu, rw = bio_data_dir(bio);

	cpu = part_stat_lock();
	part_stat_inc(cpu, &d->disk->part0, ios[rw]);
	part_stat_add(cpu, &d->disk->part0, sectors[rw], bio_sectors(bio));
	part_stat_unlock();

	s = search_alloc(bio, d);
	cl = &s->cl;
	bio = &s->bio.bio;

	trace_bcache_request_start(s, bio);

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	if (!bio->bi_size) {
1398 1399 1400 1401 1402 1403 1404
		/*
		 * can't call bch_journal_meta from under
		 * generic_make_request
		 */
		continue_at_nobarrier(&s->cl,
				      flash_dev_nodata,
				      bcache_wq);
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	} else if (rw) {
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		bch_keybuf_check_overlapping(&s->c->moving_gc_keys,
1407 1408
					&KEY(d->id, bio->bi_sector, 0),
					&KEY(d->id, bio_end_sector(bio), 0));
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		s->bypass	= (bio->bi_rw & REQ_DISCARD) != 0;
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		s->writeback	= true;
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1412
		s->cache_bio	= bio;
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		closure_call(&s->btree, bch_data_insert, NULL, cl);
K
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1415
	} else {
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1416
		closure_call(&s->btree, cache_lookup, NULL, cl);
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1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427 1428 1429 1430 1431 1432 1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473 1474 1475 1476
	}

	continue_at(cl, search_free, NULL);
}

static int flash_dev_ioctl(struct bcache_device *d, fmode_t mode,
			   unsigned int cmd, unsigned long arg)
{
	return -ENOTTY;
}

static int flash_dev_congested(void *data, int bits)
{
	struct bcache_device *d = data;
	struct request_queue *q;
	struct cache *ca;
	unsigned i;
	int ret = 0;

	for_each_cache(ca, d->c, i) {
		q = bdev_get_queue(ca->bdev);
		ret |= bdi_congested(&q->backing_dev_info, bits);
	}

	return ret;
}

void bch_flash_dev_request_init(struct bcache_device *d)
{
	struct gendisk *g = d->disk;

	g->queue->make_request_fn		= flash_dev_make_request;
	g->queue->backing_dev_info.congested_fn = flash_dev_congested;
	d->cache_miss				= flash_dev_cache_miss;
	d->ioctl				= flash_dev_ioctl;
}

void bch_request_exit(void)
{
#ifdef CONFIG_CGROUP_BCACHE
	cgroup_unload_subsys(&bcache_subsys);
#endif
	if (bch_search_cache)
		kmem_cache_destroy(bch_search_cache);
}

int __init bch_request_init(void)
{
	bch_search_cache = KMEM_CACHE(search, 0);
	if (!bch_search_cache)
		return -ENOMEM;

#ifdef CONFIG_CGROUP_BCACHE
	cgroup_load_subsys(&bcache_subsys);
	init_bch_cgroup(&bcache_default_cgroup);

	cgroup_add_cftypes(&bcache_subsys, bch_files);
#endif
	return 0;
}