raid56.c 67.5 KB
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// SPDX-License-Identifier: GPL-2.0
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/*
 * Copyright (C) 2012 Fusion-io  All rights reserved.
 * Copyright (C) 2012 Intel Corp. All rights reserved.
 */
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#include <linux/sched.h>
#include <linux/wait.h>
#include <linux/bio.h>
#include <linux/slab.h>
#include <linux/buffer_head.h>
#include <linux/blkdev.h>
#include <linux/random.h>
#include <linux/iocontext.h>
#include <linux/capability.h>
#include <linux/ratelimit.h>
#include <linux/kthread.h>
#include <linux/raid/pq.h>
#include <linux/hash.h>
#include <linux/list_sort.h>
#include <linux/raid/xor.h>
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#include <linux/mm.h>
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#include <asm/div64.h>
#include "ctree.h"
#include "extent_map.h"
#include "disk-io.h"
#include "transaction.h"
#include "print-tree.h"
#include "volumes.h"
#include "raid56.h"
#include "async-thread.h"
#include "check-integrity.h"
#include "rcu-string.h"

/* set when additional merges to this rbio are not allowed */
#define RBIO_RMW_LOCKED_BIT	1

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/*
 * set when this rbio is sitting in the hash, but it is just a cache
 * of past RMW
 */
#define RBIO_CACHE_BIT		2

/*
 * set when it is safe to trust the stripe_pages for caching
 */
#define RBIO_CACHE_READY_BIT	3

#define RBIO_CACHE_SIZE 1024

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enum btrfs_rbio_ops {
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	BTRFS_RBIO_WRITE,
	BTRFS_RBIO_READ_REBUILD,
	BTRFS_RBIO_PARITY_SCRUB,
	BTRFS_RBIO_REBUILD_MISSING,
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};

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struct btrfs_raid_bio {
	struct btrfs_fs_info *fs_info;
	struct btrfs_bio *bbio;

	/* while we're doing rmw on a stripe
	 * we put it into a hash table so we can
	 * lock the stripe and merge more rbios
	 * into it.
	 */
	struct list_head hash_list;

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	/*
	 * LRU list for the stripe cache
	 */
	struct list_head stripe_cache;

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	/*
	 * for scheduling work in the helper threads
	 */
	struct btrfs_work work;

	/*
	 * bio list and bio_list_lock are used
	 * to add more bios into the stripe
	 * in hopes of avoiding the full rmw
	 */
	struct bio_list bio_list;
	spinlock_t bio_list_lock;

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	/* also protected by the bio_list_lock, the
	 * plug list is used by the plugging code
	 * to collect partial bios while plugged.  The
	 * stripe locking code also uses it to hand off
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	 * the stripe lock to the next pending IO
	 */
	struct list_head plug_list;

	/*
	 * flags that tell us if it is safe to
	 * merge with this bio
	 */
	unsigned long flags;

	/* size of each individual stripe on disk */
	int stripe_len;

	/* number of data stripes (no p/q) */
	int nr_data;

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	int real_stripes;

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	int stripe_npages;
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	/*
	 * set if we're doing a parity rebuild
	 * for a read from higher up, which is handled
	 * differently from a parity rebuild as part of
	 * rmw
	 */
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	enum btrfs_rbio_ops operation;
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	/* first bad stripe */
	int faila;

	/* second bad stripe (for raid6 use) */
	int failb;

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	int scrubp;
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	/*
	 * number of pages needed to represent the full
	 * stripe
	 */
	int nr_pages;

	/*
	 * size of all the bios in the bio_list.  This
	 * helps us decide if the rbio maps to a full
	 * stripe or not
	 */
	int bio_list_bytes;

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	int generic_bio_cnt;

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	refcount_t refs;
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	atomic_t stripes_pending;

	atomic_t error;
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	/*
	 * these are two arrays of pointers.  We allocate the
	 * rbio big enough to hold them both and setup their
	 * locations when the rbio is allocated
	 */

	/* pointers to pages that we allocated for
	 * reading/writing stripes directly from the disk (including P/Q)
	 */
	struct page **stripe_pages;

	/*
	 * pointers to the pages in the bio_list.  Stored
	 * here for faster lookup
	 */
	struct page **bio_pages;
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	/*
	 * bitmap to record which horizontal stripe has data
	 */
	unsigned long *dbitmap;
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};

static int __raid56_parity_recover(struct btrfs_raid_bio *rbio);
static noinline void finish_rmw(struct btrfs_raid_bio *rbio);
static void rmw_work(struct btrfs_work *work);
static void read_rebuild_work(struct btrfs_work *work);
static void async_rmw_stripe(struct btrfs_raid_bio *rbio);
static void async_read_rebuild(struct btrfs_raid_bio *rbio);
static int fail_bio_stripe(struct btrfs_raid_bio *rbio, struct bio *bio);
static int fail_rbio_index(struct btrfs_raid_bio *rbio, int failed);
static void __free_raid_bio(struct btrfs_raid_bio *rbio);
static void index_rbio_pages(struct btrfs_raid_bio *rbio);
static int alloc_rbio_pages(struct btrfs_raid_bio *rbio);

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static noinline void finish_parity_scrub(struct btrfs_raid_bio *rbio,
					 int need_check);
static void async_scrub_parity(struct btrfs_raid_bio *rbio);

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/*
 * the stripe hash table is used for locking, and to collect
 * bios in hopes of making a full stripe
 */
int btrfs_alloc_stripe_hash_table(struct btrfs_fs_info *info)
{
	struct btrfs_stripe_hash_table *table;
	struct btrfs_stripe_hash_table *x;
	struct btrfs_stripe_hash *cur;
	struct btrfs_stripe_hash *h;
	int num_entries = 1 << BTRFS_STRIPE_HASH_TABLE_BITS;
	int i;
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	int table_size;
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	if (info->stripe_hash_table)
		return 0;

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	/*
	 * The table is large, starting with order 4 and can go as high as
	 * order 7 in case lock debugging is turned on.
	 *
	 * Try harder to allocate and fallback to vmalloc to lower the chance
	 * of a failing mount.
	 */
	table_size = sizeof(*table) + sizeof(*h) * num_entries;
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	table = kvzalloc(table_size, GFP_KERNEL);
	if (!table)
		return -ENOMEM;
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	spin_lock_init(&table->cache_lock);
	INIT_LIST_HEAD(&table->stripe_cache);

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	h = table->table;

	for (i = 0; i < num_entries; i++) {
		cur = h + i;
		INIT_LIST_HEAD(&cur->hash_list);
		spin_lock_init(&cur->lock);
	}

	x = cmpxchg(&info->stripe_hash_table, NULL, table);
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	if (x)
		kvfree(x);
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	return 0;
}

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/*
 * caching an rbio means to copy anything from the
 * bio_pages array into the stripe_pages array.  We
 * use the page uptodate bit in the stripe cache array
 * to indicate if it has valid data
 *
 * once the caching is done, we set the cache ready
 * bit.
 */
static void cache_rbio_pages(struct btrfs_raid_bio *rbio)
{
	int i;
	char *s;
	char *d;
	int ret;

	ret = alloc_rbio_pages(rbio);
	if (ret)
		return;

	for (i = 0; i < rbio->nr_pages; i++) {
		if (!rbio->bio_pages[i])
			continue;

		s = kmap(rbio->bio_pages[i]);
		d = kmap(rbio->stripe_pages[i]);

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		memcpy(d, s, PAGE_SIZE);
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		kunmap(rbio->bio_pages[i]);
		kunmap(rbio->stripe_pages[i]);
		SetPageUptodate(rbio->stripe_pages[i]);
	}
	set_bit(RBIO_CACHE_READY_BIT, &rbio->flags);
}

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/*
 * we hash on the first logical address of the stripe
 */
static int rbio_bucket(struct btrfs_raid_bio *rbio)
{
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	u64 num = rbio->bbio->raid_map[0];
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	/*
	 * we shift down quite a bit.  We're using byte
	 * addressing, and most of the lower bits are zeros.
	 * This tends to upset hash_64, and it consistently
	 * returns just one or two different values.
	 *
	 * shifting off the lower bits fixes things.
	 */
	return hash_64(num >> 16, BTRFS_STRIPE_HASH_TABLE_BITS);
}

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/*
 * stealing an rbio means taking all the uptodate pages from the stripe
 * array in the source rbio and putting them into the destination rbio
 */
static void steal_rbio(struct btrfs_raid_bio *src, struct btrfs_raid_bio *dest)
{
	int i;
	struct page *s;
	struct page *d;

	if (!test_bit(RBIO_CACHE_READY_BIT, &src->flags))
		return;

	for (i = 0; i < dest->nr_pages; i++) {
		s = src->stripe_pages[i];
		if (!s || !PageUptodate(s)) {
			continue;
		}

		d = dest->stripe_pages[i];
		if (d)
			__free_page(d);

		dest->stripe_pages[i] = s;
		src->stripe_pages[i] = NULL;
	}
}

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/*
 * merging means we take the bio_list from the victim and
 * splice it into the destination.  The victim should
 * be discarded afterwards.
 *
 * must be called with dest->rbio_list_lock held
 */
static void merge_rbio(struct btrfs_raid_bio *dest,
		       struct btrfs_raid_bio *victim)
{
	bio_list_merge(&dest->bio_list, &victim->bio_list);
	dest->bio_list_bytes += victim->bio_list_bytes;
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	dest->generic_bio_cnt += victim->generic_bio_cnt;
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	bio_list_init(&victim->bio_list);
}

/*
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 * used to prune items that are in the cache.  The caller
 * must hold the hash table lock.
 */
static void __remove_rbio_from_cache(struct btrfs_raid_bio *rbio)
{
	int bucket = rbio_bucket(rbio);
	struct btrfs_stripe_hash_table *table;
	struct btrfs_stripe_hash *h;
	int freeit = 0;

	/*
	 * check the bit again under the hash table lock.
	 */
	if (!test_bit(RBIO_CACHE_BIT, &rbio->flags))
		return;

	table = rbio->fs_info->stripe_hash_table;
	h = table->table + bucket;

	/* hold the lock for the bucket because we may be
	 * removing it from the hash table
	 */
	spin_lock(&h->lock);

	/*
	 * hold the lock for the bio list because we need
	 * to make sure the bio list is empty
	 */
	spin_lock(&rbio->bio_list_lock);

	if (test_and_clear_bit(RBIO_CACHE_BIT, &rbio->flags)) {
		list_del_init(&rbio->stripe_cache);
		table->cache_size -= 1;
		freeit = 1;

		/* if the bio list isn't empty, this rbio is
		 * still involved in an IO.  We take it out
		 * of the cache list, and drop the ref that
		 * was held for the list.
		 *
		 * If the bio_list was empty, we also remove
		 * the rbio from the hash_table, and drop
		 * the corresponding ref
		 */
		if (bio_list_empty(&rbio->bio_list)) {
			if (!list_empty(&rbio->hash_list)) {
				list_del_init(&rbio->hash_list);
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				refcount_dec(&rbio->refs);
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				BUG_ON(!list_empty(&rbio->plug_list));
			}
		}
	}

	spin_unlock(&rbio->bio_list_lock);
	spin_unlock(&h->lock);

	if (freeit)
		__free_raid_bio(rbio);
}

/*
 * prune a given rbio from the cache
 */
static void remove_rbio_from_cache(struct btrfs_raid_bio *rbio)
{
	struct btrfs_stripe_hash_table *table;
	unsigned long flags;

	if (!test_bit(RBIO_CACHE_BIT, &rbio->flags))
		return;

	table = rbio->fs_info->stripe_hash_table;

	spin_lock_irqsave(&table->cache_lock, flags);
	__remove_rbio_from_cache(rbio);
	spin_unlock_irqrestore(&table->cache_lock, flags);
}

/*
 * remove everything in the cache
 */
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static void btrfs_clear_rbio_cache(struct btrfs_fs_info *info)
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{
	struct btrfs_stripe_hash_table *table;
	unsigned long flags;
	struct btrfs_raid_bio *rbio;

	table = info->stripe_hash_table;

	spin_lock_irqsave(&table->cache_lock, flags);
	while (!list_empty(&table->stripe_cache)) {
		rbio = list_entry(table->stripe_cache.next,
				  struct btrfs_raid_bio,
				  stripe_cache);
		__remove_rbio_from_cache(rbio);
	}
	spin_unlock_irqrestore(&table->cache_lock, flags);
}

/*
 * remove all cached entries and free the hash table
 * used by unmount
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 */
void btrfs_free_stripe_hash_table(struct btrfs_fs_info *info)
{
	if (!info->stripe_hash_table)
		return;
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	btrfs_clear_rbio_cache(info);
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	kvfree(info->stripe_hash_table);
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	info->stripe_hash_table = NULL;
}

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/*
 * insert an rbio into the stripe cache.  It
 * must have already been prepared by calling
 * cache_rbio_pages
 *
 * If this rbio was already cached, it gets
 * moved to the front of the lru.
 *
 * If the size of the rbio cache is too big, we
 * prune an item.
 */
static void cache_rbio(struct btrfs_raid_bio *rbio)
{
	struct btrfs_stripe_hash_table *table;
	unsigned long flags;

	if (!test_bit(RBIO_CACHE_READY_BIT, &rbio->flags))
		return;

	table = rbio->fs_info->stripe_hash_table;

	spin_lock_irqsave(&table->cache_lock, flags);
	spin_lock(&rbio->bio_list_lock);

	/* bump our ref if we were not in the list before */
	if (!test_and_set_bit(RBIO_CACHE_BIT, &rbio->flags))
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		refcount_inc(&rbio->refs);
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	if (!list_empty(&rbio->stripe_cache)){
		list_move(&rbio->stripe_cache, &table->stripe_cache);
	} else {
		list_add(&rbio->stripe_cache, &table->stripe_cache);
		table->cache_size += 1;
	}

	spin_unlock(&rbio->bio_list_lock);

	if (table->cache_size > RBIO_CACHE_SIZE) {
		struct btrfs_raid_bio *found;

		found = list_entry(table->stripe_cache.prev,
				  struct btrfs_raid_bio,
				  stripe_cache);

		if (found != rbio)
			__remove_rbio_from_cache(found);
	}

	spin_unlock_irqrestore(&table->cache_lock, flags);
}

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/*
 * helper function to run the xor_blocks api.  It is only
 * able to do MAX_XOR_BLOCKS at a time, so we need to
 * loop through.
 */
static void run_xor(void **pages, int src_cnt, ssize_t len)
{
	int src_off = 0;
	int xor_src_cnt = 0;
	void *dest = pages[src_cnt];

	while(src_cnt > 0) {
		xor_src_cnt = min(src_cnt, MAX_XOR_BLOCKS);
		xor_blocks(xor_src_cnt, len, dest, pages + src_off);

		src_cnt -= xor_src_cnt;
		src_off += xor_src_cnt;
	}
}

/*
 * returns true if the bio list inside this rbio
 * covers an entire stripe (no rmw required).
 * Must be called with the bio list lock held, or
 * at a time when you know it is impossible to add
 * new bios into the list
 */
static int __rbio_is_full(struct btrfs_raid_bio *rbio)
{
	unsigned long size = rbio->bio_list_bytes;
	int ret = 1;

	if (size != rbio->nr_data * rbio->stripe_len)
		ret = 0;

	BUG_ON(size > rbio->nr_data * rbio->stripe_len);
	return ret;
}

static int rbio_is_full(struct btrfs_raid_bio *rbio)
{
	unsigned long flags;
	int ret;

	spin_lock_irqsave(&rbio->bio_list_lock, flags);
	ret = __rbio_is_full(rbio);
	spin_unlock_irqrestore(&rbio->bio_list_lock, flags);
	return ret;
}

/*
 * returns 1 if it is safe to merge two rbios together.
 * The merging is safe if the two rbios correspond to
 * the same stripe and if they are both going in the same
 * direction (read vs write), and if neither one is
 * locked for final IO
 *
 * The caller is responsible for locking such that
 * rmw_locked is safe to test
 */
static int rbio_can_merge(struct btrfs_raid_bio *last,
			  struct btrfs_raid_bio *cur)
{
	if (test_bit(RBIO_RMW_LOCKED_BIT, &last->flags) ||
	    test_bit(RBIO_RMW_LOCKED_BIT, &cur->flags))
		return 0;

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	/*
	 * we can't merge with cached rbios, since the
	 * idea is that when we merge the destination
	 * rbio is going to run our IO for us.  We can
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	 * steal from cached rbios though, other functions
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	 * handle that.
	 */
	if (test_bit(RBIO_CACHE_BIT, &last->flags) ||
	    test_bit(RBIO_CACHE_BIT, &cur->flags))
		return 0;

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	if (last->bbio->raid_map[0] !=
	    cur->bbio->raid_map[0])
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		return 0;

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	/* we can't merge with different operations */
	if (last->operation != cur->operation)
		return 0;
	/*
	 * We've need read the full stripe from the drive.
	 * check and repair the parity and write the new results.
	 *
	 * We're not allowed to add any new bios to the
	 * bio list here, anyone else that wants to
	 * change this stripe needs to do their own rmw.
	 */
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	if (last->operation == BTRFS_RBIO_PARITY_SCRUB)
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		return 0;

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	if (last->operation == BTRFS_RBIO_REBUILD_MISSING)
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		return 0;

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	if (last->operation == BTRFS_RBIO_READ_REBUILD) {
		int fa = last->faila;
		int fb = last->failb;
		int cur_fa = cur->faila;
		int cur_fb = cur->failb;

		if (last->faila >= last->failb) {
			fa = last->failb;
			fb = last->faila;
		}

		if (cur->faila >= cur->failb) {
			cur_fa = cur->failb;
			cur_fb = cur->faila;
		}

		if (fa != cur_fa || fb != cur_fb)
			return 0;
	}
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	return 1;
}

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static int rbio_stripe_page_index(struct btrfs_raid_bio *rbio, int stripe,
				  int index)
{
	return stripe * rbio->stripe_npages + index;
}

/*
 * these are just the pages from the rbio array, not from anything
 * the FS sent down to us
 */
static struct page *rbio_stripe_page(struct btrfs_raid_bio *rbio, int stripe,
				     int index)
{
	return rbio->stripe_pages[rbio_stripe_page_index(rbio, stripe, index)];
}

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/*
 * helper to index into the pstripe
 */
static struct page *rbio_pstripe_page(struct btrfs_raid_bio *rbio, int index)
{
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	return rbio_stripe_page(rbio, rbio->nr_data, index);
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}

/*
 * helper to index into the qstripe, returns null
 * if there is no qstripe
 */
static struct page *rbio_qstripe_page(struct btrfs_raid_bio *rbio, int index)
{
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	if (rbio->nr_data + 1 == rbio->real_stripes)
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		return NULL;
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	return rbio_stripe_page(rbio, rbio->nr_data + 1, index);
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}

/*
 * The first stripe in the table for a logical address
 * has the lock.  rbios are added in one of three ways:
 *
 * 1) Nobody has the stripe locked yet.  The rbio is given
 * the lock and 0 is returned.  The caller must start the IO
 * themselves.
 *
 * 2) Someone has the stripe locked, but we're able to merge
 * with the lock owner.  The rbio is freed and the IO will
 * start automatically along with the existing rbio.  1 is returned.
 *
 * 3) Someone has the stripe locked, but we're not able to merge.
 * The rbio is added to the lock owner's plug list, or merged into
 * an rbio already on the plug list.  When the lock owner unlocks,
 * the next rbio on the list is run and the IO is started automatically.
 * 1 is returned
 *
 * If we return 0, the caller still owns the rbio and must continue with
 * IO submission.  If we return 1, the caller must assume the rbio has
 * already been freed.
 */
static noinline int lock_stripe_add(struct btrfs_raid_bio *rbio)
{
	int bucket = rbio_bucket(rbio);
	struct btrfs_stripe_hash *h = rbio->fs_info->stripe_hash_table->table + bucket;
	struct btrfs_raid_bio *cur;
	struct btrfs_raid_bio *pending;
	unsigned long flags;
	struct btrfs_raid_bio *freeit = NULL;
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	struct btrfs_raid_bio *cache_drop = NULL;
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	int ret = 0;

	spin_lock_irqsave(&h->lock, flags);
	list_for_each_entry(cur, &h->hash_list, hash_list) {
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		if (cur->bbio->raid_map[0] == rbio->bbio->raid_map[0]) {
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			spin_lock(&cur->bio_list_lock);

686 687 688 689 690 691
			/* can we steal this cached rbio's pages? */
			if (bio_list_empty(&cur->bio_list) &&
			    list_empty(&cur->plug_list) &&
			    test_bit(RBIO_CACHE_BIT, &cur->flags) &&
			    !test_bit(RBIO_RMW_LOCKED_BIT, &cur->flags)) {
				list_del_init(&cur->hash_list);
692
				refcount_dec(&cur->refs);
693 694 695 696 697 698 699 700

				steal_rbio(cur, rbio);
				cache_drop = cur;
				spin_unlock(&cur->bio_list_lock);

				goto lockit;
			}

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701 702 703 704 705 706 707 708 709
			/* can we merge into the lock owner? */
			if (rbio_can_merge(cur, rbio)) {
				merge_rbio(cur, rbio);
				spin_unlock(&cur->bio_list_lock);
				freeit = rbio;
				ret = 1;
				goto out;
			}

710

D
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711 712 713 714 715 716 717 718 719 720 721 722 723 724 725 726 727 728 729 730 731 732 733 734 735 736 737 738 739
			/*
			 * we couldn't merge with the running
			 * rbio, see if we can merge with the
			 * pending ones.  We don't have to
			 * check for rmw_locked because there
			 * is no way they are inside finish_rmw
			 * right now
			 */
			list_for_each_entry(pending, &cur->plug_list,
					    plug_list) {
				if (rbio_can_merge(pending, rbio)) {
					merge_rbio(pending, rbio);
					spin_unlock(&cur->bio_list_lock);
					freeit = rbio;
					ret = 1;
					goto out;
				}
			}

			/* no merging, put us on the tail of the plug list,
			 * our rbio will be started with the currently
			 * running rbio unlocks
			 */
			list_add_tail(&rbio->plug_list, &cur->plug_list);
			spin_unlock(&cur->bio_list_lock);
			ret = 1;
			goto out;
		}
	}
740
lockit:
741
	refcount_inc(&rbio->refs);
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	list_add(&rbio->hash_list, &h->hash_list);
out:
	spin_unlock_irqrestore(&h->lock, flags);
745 746
	if (cache_drop)
		remove_rbio_from_cache(cache_drop);
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747 748 749 750 751 752 753 754 755 756 757 758 759 760
	if (freeit)
		__free_raid_bio(freeit);
	return ret;
}

/*
 * called as rmw or parity rebuild is completed.  If the plug list has more
 * rbios waiting for this stripe, the next one on the list will be started
 */
static noinline void unlock_stripe(struct btrfs_raid_bio *rbio)
{
	int bucket;
	struct btrfs_stripe_hash *h;
	unsigned long flags;
761
	int keep_cache = 0;
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	bucket = rbio_bucket(rbio);
	h = rbio->fs_info->stripe_hash_table->table + bucket;

766 767 768
	if (list_empty(&rbio->plug_list))
		cache_rbio(rbio);

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	spin_lock_irqsave(&h->lock, flags);
	spin_lock(&rbio->bio_list_lock);

	if (!list_empty(&rbio->hash_list)) {
773 774 775 776 777 778 779 780 781 782 783 784
		/*
		 * if we're still cached and there is no other IO
		 * to perform, just leave this rbio here for others
		 * to steal from later
		 */
		if (list_empty(&rbio->plug_list) &&
		    test_bit(RBIO_CACHE_BIT, &rbio->flags)) {
			keep_cache = 1;
			clear_bit(RBIO_RMW_LOCKED_BIT, &rbio->flags);
			BUG_ON(!bio_list_empty(&rbio->bio_list));
			goto done;
		}
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785 786

		list_del_init(&rbio->hash_list);
787
		refcount_dec(&rbio->refs);
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788 789 790 791 792 793 794 795 796 797 798 799 800 801 802 803

		/*
		 * we use the plug list to hold all the rbios
		 * waiting for the chance to lock this stripe.
		 * hand the lock over to one of them.
		 */
		if (!list_empty(&rbio->plug_list)) {
			struct btrfs_raid_bio *next;
			struct list_head *head = rbio->plug_list.next;

			next = list_entry(head, struct btrfs_raid_bio,
					  plug_list);

			list_del_init(&rbio->plug_list);

			list_add(&next->hash_list, &h->hash_list);
804
			refcount_inc(&next->refs);
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			spin_unlock(&rbio->bio_list_lock);
			spin_unlock_irqrestore(&h->lock, flags);

808
			if (next->operation == BTRFS_RBIO_READ_REBUILD)
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				async_read_rebuild(next);
810 811 812 813
			else if (next->operation == BTRFS_RBIO_REBUILD_MISSING) {
				steal_rbio(rbio, next);
				async_read_rebuild(next);
			} else if (next->operation == BTRFS_RBIO_WRITE) {
814
				steal_rbio(rbio, next);
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815
				async_rmw_stripe(next);
816 817 818
			} else if (next->operation == BTRFS_RBIO_PARITY_SCRUB) {
				steal_rbio(rbio, next);
				async_scrub_parity(next);
819
			}
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			goto done_nolock;
		}
	}
824
done:
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	spin_unlock(&rbio->bio_list_lock);
	spin_unlock_irqrestore(&h->lock, flags);

done_nolock:
829 830
	if (!keep_cache)
		remove_rbio_from_cache(rbio);
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}

static void __free_raid_bio(struct btrfs_raid_bio *rbio)
{
	int i;

837
	if (!refcount_dec_and_test(&rbio->refs))
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		return;

840
	WARN_ON(!list_empty(&rbio->stripe_cache));
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	WARN_ON(!list_empty(&rbio->hash_list));
	WARN_ON(!bio_list_empty(&rbio->bio_list));

	for (i = 0; i < rbio->nr_pages; i++) {
		if (rbio->stripe_pages[i]) {
			__free_page(rbio->stripe_pages[i]);
			rbio->stripe_pages[i] = NULL;
		}
	}
850

851
	btrfs_put_bbio(rbio->bbio);
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	kfree(rbio);
}

855
static void rbio_endio_bio_list(struct bio *cur, blk_status_t err)
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856
{
857 858 859 860 861 862 863 864 865
	struct bio *next;

	while (cur) {
		next = cur->bi_next;
		cur->bi_next = NULL;
		cur->bi_status = err;
		bio_endio(cur);
		cur = next;
	}
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}

/*
 * this frees the rbio and runs through all the bios in the
 * bio_list and calls end_io on them
 */
872
static void rbio_orig_end_io(struct btrfs_raid_bio *rbio, blk_status_t err)
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{
	struct bio *cur = bio_list_get(&rbio->bio_list);
875
	struct bio *extra;
876 877 878 879

	if (rbio->generic_bio_cnt)
		btrfs_bio_counter_sub(rbio->fs_info, rbio->generic_bio_cnt);

880 881 882 883 884 885 886 887 888 889 890
	/*
	 * At this moment, rbio->bio_list is empty, however since rbio does not
	 * always have RBIO_RMW_LOCKED_BIT set and rbio is still linked on the
	 * hash list, rbio may be merged with others so that rbio->bio_list
	 * becomes non-empty.
	 * Once unlock_stripe() is done, rbio->bio_list will not be updated any
	 * more and we can call bio_endio() on all queued bios.
	 */
	unlock_stripe(rbio);
	extra = bio_list_get(&rbio->bio_list);
	__free_raid_bio(rbio);
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892 893 894
	rbio_endio_bio_list(cur, err);
	if (extra)
		rbio_endio_bio_list(extra, err);
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895 896 897 898 899 900
}

/*
 * end io function used by finish_rmw.  When we finally
 * get here, we've written a full stripe
 */
901
static void raid_write_end_io(struct bio *bio)
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{
	struct btrfs_raid_bio *rbio = bio->bi_private;
904
	blk_status_t err = bio->bi_status;
905
	int max_errors;
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	if (err)
		fail_bio_stripe(rbio, bio);

	bio_put(bio);

912
	if (!atomic_dec_and_test(&rbio->stripes_pending))
D
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913 914
		return;

915
	err = BLK_STS_OK;
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916 917

	/* OK, we have read all the stripes we need to. */
918 919 920
	max_errors = (rbio->operation == BTRFS_RBIO_PARITY_SCRUB) ?
		     0 : rbio->bbio->max_errors;
	if (atomic_read(&rbio->error) > max_errors)
921
		err = BLK_STS_IOERR;
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922

923
	rbio_orig_end_io(rbio, err);
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}

/*
 * the read/modify/write code wants to use the original bio for
 * any pages it included, and then use the rbio for everything
 * else.  This function decides if a given index (stripe number)
 * and page number in that stripe fall inside the original bio
 * or the rbio.
 *
 * if you set bio_list_only, you'll get a NULL back for any ranges
 * that are outside the bio_list
 *
 * This doesn't take any refs on anything, you get a bare page pointer
 * and the caller must bump refs as required.
 *
 * You must call index_rbio_pages once before you can trust
 * the answers from this function.
 */
static struct page *page_in_rbio(struct btrfs_raid_bio *rbio,
				 int index, int pagenr, int bio_list_only)
{
	int chunk_page;
	struct page *p = NULL;

	chunk_page = index * (rbio->stripe_len >> PAGE_SHIFT) + pagenr;

	spin_lock_irq(&rbio->bio_list_lock);
	p = rbio->bio_pages[chunk_page];
	spin_unlock_irq(&rbio->bio_list_lock);

	if (p || bio_list_only)
		return p;

	return rbio->stripe_pages[chunk_page];
}

/*
 * number of pages we need for the entire stripe across all the
 * drives
 */
static unsigned long rbio_nr_pages(unsigned long stripe_len, int nr_stripes)
{
966
	return DIV_ROUND_UP(stripe_len, PAGE_SIZE) * nr_stripes;
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}

/*
 * allocation and initial setup for the btrfs_raid_bio.  Not
 * this does not allocate any pages for rbio->pages.
 */
973 974 975
static struct btrfs_raid_bio *alloc_rbio(struct btrfs_fs_info *fs_info,
					 struct btrfs_bio *bbio,
					 u64 stripe_len)
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{
	struct btrfs_raid_bio *rbio;
	int nr_data = 0;
979 980
	int real_stripes = bbio->num_stripes - bbio->num_tgtdevs;
	int num_pages = rbio_nr_pages(stripe_len, real_stripes);
981
	int stripe_npages = DIV_ROUND_UP(stripe_len, PAGE_SIZE);
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	void *p;

984
	rbio = kzalloc(sizeof(*rbio) + num_pages * sizeof(struct page *) * 2 +
985 986
		       DIV_ROUND_UP(stripe_npages, BITS_PER_LONG) *
		       sizeof(long), GFP_NOFS);
987
	if (!rbio)
D
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		return ERR_PTR(-ENOMEM);

	bio_list_init(&rbio->bio_list);
	INIT_LIST_HEAD(&rbio->plug_list);
	spin_lock_init(&rbio->bio_list_lock);
993
	INIT_LIST_HEAD(&rbio->stripe_cache);
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994 995
	INIT_LIST_HEAD(&rbio->hash_list);
	rbio->bbio = bbio;
996
	rbio->fs_info = fs_info;
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	rbio->stripe_len = stripe_len;
	rbio->nr_pages = num_pages;
999
	rbio->real_stripes = real_stripes;
1000
	rbio->stripe_npages = stripe_npages;
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	rbio->faila = -1;
	rbio->failb = -1;
1003
	refcount_set(&rbio->refs, 1);
1004 1005
	atomic_set(&rbio->error, 0);
	atomic_set(&rbio->stripes_pending, 0);
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1006 1007 1008 1009 1010 1011 1012 1013

	/*
	 * the stripe_pages and bio_pages array point to the extra
	 * memory we allocated past the end of the rbio
	 */
	p = rbio + 1;
	rbio->stripe_pages = p;
	rbio->bio_pages = p + sizeof(struct page *) * num_pages;
1014
	rbio->dbitmap = p + sizeof(struct page *) * num_pages * 2;
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1015

Z
Zhao Lei 已提交
1016 1017 1018
	if (bbio->map_type & BTRFS_BLOCK_GROUP_RAID5)
		nr_data = real_stripes - 1;
	else if (bbio->map_type & BTRFS_BLOCK_GROUP_RAID6)
1019
		nr_data = real_stripes - 2;
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1020
	else
Z
Zhao Lei 已提交
1021
		BUG();
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1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043

	rbio->nr_data = nr_data;
	return rbio;
}

/* allocate pages for all the stripes in the bio, including parity */
static int alloc_rbio_pages(struct btrfs_raid_bio *rbio)
{
	int i;
	struct page *page;

	for (i = 0; i < rbio->nr_pages; i++) {
		if (rbio->stripe_pages[i])
			continue;
		page = alloc_page(GFP_NOFS | __GFP_HIGHMEM);
		if (!page)
			return -ENOMEM;
		rbio->stripe_pages[i] = page;
	}
	return 0;
}

1044
/* only allocate pages for p/q stripes */
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1045 1046 1047 1048 1049
static int alloc_rbio_parity_pages(struct btrfs_raid_bio *rbio)
{
	int i;
	struct page *page;

1050
	i = rbio_stripe_page_index(rbio, rbio->nr_data, 0);
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1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067

	for (; i < rbio->nr_pages; i++) {
		if (rbio->stripe_pages[i])
			continue;
		page = alloc_page(GFP_NOFS | __GFP_HIGHMEM);
		if (!page)
			return -ENOMEM;
		rbio->stripe_pages[i] = page;
	}
	return 0;
}

/*
 * add a single page from a specific stripe into our list of bios for IO
 * this will try to merge into existing bios if possible, and returns
 * zero if all went well.
 */
1068 1069 1070 1071 1072 1073
static int rbio_add_io_page(struct btrfs_raid_bio *rbio,
			    struct bio_list *bio_list,
			    struct page *page,
			    int stripe_nr,
			    unsigned long page_index,
			    unsigned long bio_max_len)
D
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{
	struct bio *last = bio_list->tail;
	u64 last_end = 0;
	int ret;
	struct bio *bio;
	struct btrfs_bio_stripe *stripe;
	u64 disk_start;

	stripe = &rbio->bbio->stripes[stripe_nr];
1083
	disk_start = stripe->physical + (page_index << PAGE_SHIFT);
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1084 1085 1086 1087 1088 1089 1090

	/* if the device is missing, just fail this stripe */
	if (!stripe->dev->bdev)
		return fail_rbio_index(rbio, stripe_nr);

	/* see if we can add this page onto our existing bio */
	if (last) {
1091 1092
		last_end = (u64)last->bi_iter.bi_sector << 9;
		last_end += last->bi_iter.bi_size;
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1093 1094 1095 1096 1097 1098

		/*
		 * we can't merge these if they are from different
		 * devices or if they are not contiguous
		 */
		if (last_end == disk_start && stripe->dev->bdev &&
1099
		    !last->bi_status &&
1100 1101
		    last->bi_disk == stripe->dev->bdev->bd_disk &&
		    last->bi_partno == stripe->dev->bdev->bd_partno) {
1102 1103
			ret = bio_add_page(last, page, PAGE_SIZE, 0);
			if (ret == PAGE_SIZE)
D
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1104 1105 1106 1107 1108
				return 0;
		}
	}

	/* put a new bio on the list */
1109
	bio = btrfs_io_bio_alloc(bio_max_len >> PAGE_SHIFT ?: 1);
1110
	bio->bi_iter.bi_size = 0;
1111
	bio_set_dev(bio, stripe->dev->bdev);
1112
	bio->bi_iter.bi_sector = disk_start >> 9;
D
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1113

1114
	bio_add_page(bio, page, PAGE_SIZE, 0);
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1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128
	bio_list_add(bio_list, bio);
	return 0;
}

/*
 * while we're doing the read/modify/write cycle, we could
 * have errors in reading pages off the disk.  This checks
 * for errors and if we're not able to read the page it'll
 * trigger parity reconstruction.  The rmw will be finished
 * after we've reconstructed the failed stripes
 */
static void validate_rbio_for_rmw(struct btrfs_raid_bio *rbio)
{
	if (rbio->faila >= 0 || rbio->failb >= 0) {
1129
		BUG_ON(rbio->faila == rbio->real_stripes - 1);
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1130 1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142 1143 1144 1145 1146 1147 1148 1149 1150 1151 1152
		__raid56_parity_recover(rbio);
	} else {
		finish_rmw(rbio);
	}
}

/*
 * helper function to walk our bio list and populate the bio_pages array with
 * the result.  This seems expensive, but it is faster than constantly
 * searching through the bio list as we setup the IO in finish_rmw or stripe
 * reconstruction.
 *
 * This must be called before you trust the answers from page_in_rbio
 */
static void index_rbio_pages(struct btrfs_raid_bio *rbio)
{
	struct bio *bio;
	u64 start;
	unsigned long stripe_offset;
	unsigned long page_index;

	spin_lock_irq(&rbio->bio_list_lock);
	bio_list_for_each(bio, &rbio->bio_list) {
1153 1154 1155 1156
		struct bio_vec bvec;
		struct bvec_iter iter;
		int i = 0;

1157
		start = (u64)bio->bi_iter.bi_sector << 9;
1158
		stripe_offset = start - rbio->bbio->raid_map[0];
1159
		page_index = stripe_offset >> PAGE_SHIFT;
D
David Woodhouse 已提交
1160

1161 1162 1163 1164 1165 1166 1167
		if (bio_flagged(bio, BIO_CLONED))
			bio->bi_iter = btrfs_io_bio(bio)->iter;

		bio_for_each_segment(bvec, bio, iter) {
			rbio->bio_pages[page_index + i] = bvec.bv_page;
			i++;
		}
D
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1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182
	}
	spin_unlock_irq(&rbio->bio_list_lock);
}

/*
 * this is called from one of two situations.  We either
 * have a full stripe from the higher layers, or we've read all
 * the missing bits off disk.
 *
 * This will calculate the parity and then send down any
 * changed blocks.
 */
static noinline void finish_rmw(struct btrfs_raid_bio *rbio)
{
	struct btrfs_bio *bbio = rbio->bbio;
1183
	void *pointers[rbio->real_stripes];
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1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194
	int nr_data = rbio->nr_data;
	int stripe;
	int pagenr;
	int p_stripe = -1;
	int q_stripe = -1;
	struct bio_list bio_list;
	struct bio *bio;
	int ret;

	bio_list_init(&bio_list);

1195 1196 1197 1198 1199
	if (rbio->real_stripes - rbio->nr_data == 1) {
		p_stripe = rbio->real_stripes - 1;
	} else if (rbio->real_stripes - rbio->nr_data == 2) {
		p_stripe = rbio->real_stripes - 2;
		q_stripe = rbio->real_stripes - 1;
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1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215
	} else {
		BUG();
	}

	/* at this point we either have a full stripe,
	 * or we've read the full stripe from the drive.
	 * recalculate the parity and write the new results.
	 *
	 * We're not allowed to add any new bios to the
	 * bio list here, anyone else that wants to
	 * change this stripe needs to do their own rmw.
	 */
	spin_lock_irq(&rbio->bio_list_lock);
	set_bit(RBIO_RMW_LOCKED_BIT, &rbio->flags);
	spin_unlock_irq(&rbio->bio_list_lock);

1216
	atomic_set(&rbio->error, 0);
D
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1217 1218 1219 1220

	/*
	 * now that we've set rmw_locked, run through the
	 * bio list one last time and map the page pointers
1221 1222 1223 1224 1225
	 *
	 * We don't cache full rbios because we're assuming
	 * the higher layers are unlikely to use this area of
	 * the disk again soon.  If they do use it again,
	 * hopefully they will send another full bio.
D
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1226 1227
	 */
	index_rbio_pages(rbio);
1228 1229 1230 1231
	if (!rbio_is_full(rbio))
		cache_rbio_pages(rbio);
	else
		clear_bit(RBIO_CACHE_READY_BIT, &rbio->flags);
D
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1232

1233
	for (pagenr = 0; pagenr < rbio->stripe_npages; pagenr++) {
D
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1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255
		struct page *p;
		/* first collect one page from each data stripe */
		for (stripe = 0; stripe < nr_data; stripe++) {
			p = page_in_rbio(rbio, stripe, pagenr, 0);
			pointers[stripe] = kmap(p);
		}

		/* then add the parity stripe */
		p = rbio_pstripe_page(rbio, pagenr);
		SetPageUptodate(p);
		pointers[stripe++] = kmap(p);

		if (q_stripe != -1) {

			/*
			 * raid6, add the qstripe and call the
			 * library function to fill in our p/q
			 */
			p = rbio_qstripe_page(rbio, pagenr);
			SetPageUptodate(p);
			pointers[stripe++] = kmap(p);

1256
			raid6_call.gen_syndrome(rbio->real_stripes, PAGE_SIZE,
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1257 1258 1259 1260
						pointers);
		} else {
			/* raid5 */
			memcpy(pointers[nr_data], pointers[0], PAGE_SIZE);
1261
			run_xor(pointers + 1, nr_data - 1, PAGE_SIZE);
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1262 1263 1264
		}


1265
		for (stripe = 0; stripe < rbio->real_stripes; stripe++)
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1266 1267 1268 1269 1270 1271 1272 1273
			kunmap(page_in_rbio(rbio, stripe, pagenr, 0));
	}

	/*
	 * time to start writing.  Make bios for everything from the
	 * higher layers (the bio_list in our rbio) and our p/q.  Ignore
	 * everything else.
	 */
1274
	for (stripe = 0; stripe < rbio->real_stripes; stripe++) {
1275
		for (pagenr = 0; pagenr < rbio->stripe_npages; pagenr++) {
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			struct page *page;
			if (stripe < rbio->nr_data) {
				page = page_in_rbio(rbio, stripe, pagenr, 1);
				if (!page)
					continue;
			} else {
			       page = rbio_stripe_page(rbio, stripe, pagenr);
			}

			ret = rbio_add_io_page(rbio, &bio_list,
				       page, stripe, pagenr, rbio->stripe_len);
			if (ret)
				goto cleanup;
		}
	}

1292 1293 1294 1295 1296 1297 1298
	if (likely(!bbio->num_tgtdevs))
		goto write_data;

	for (stripe = 0; stripe < rbio->real_stripes; stripe++) {
		if (!bbio->tgtdev_map[stripe])
			continue;

1299
		for (pagenr = 0; pagenr < rbio->stripe_npages; pagenr++) {
1300 1301 1302 1303 1304 1305 1306 1307 1308 1309 1310 1311 1312 1313 1314 1315 1316 1317
			struct page *page;
			if (stripe < rbio->nr_data) {
				page = page_in_rbio(rbio, stripe, pagenr, 1);
				if (!page)
					continue;
			} else {
			       page = rbio_stripe_page(rbio, stripe, pagenr);
			}

			ret = rbio_add_io_page(rbio, &bio_list, page,
					       rbio->bbio->tgtdev_map[stripe],
					       pagenr, rbio->stripe_len);
			if (ret)
				goto cleanup;
		}
	}

write_data:
1318 1319
	atomic_set(&rbio->stripes_pending, bio_list_size(&bio_list));
	BUG_ON(atomic_read(&rbio->stripes_pending) == 0);
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	while (1) {
		bio = bio_list_pop(&bio_list);
		if (!bio)
			break;

		bio->bi_private = rbio;
		bio->bi_end_io = raid_write_end_io;
M
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1328
		bio_set_op_attrs(bio, REQ_OP_WRITE, 0);
1329 1330

		submit_bio(bio);
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1331 1332 1333 1334
	}
	return;

cleanup:
1335
	rbio_orig_end_io(rbio, BLK_STS_IOERR);
L
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1336 1337 1338

	while ((bio = bio_list_pop(&bio_list)))
		bio_put(bio);
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1339 1340 1341 1342 1343 1344 1345 1346 1347 1348
}

/*
 * helper to find the stripe number for a given bio.  Used to figure out which
 * stripe has failed.  This expects the bio to correspond to a physical disk,
 * so it looks up based on physical sector numbers.
 */
static int find_bio_stripe(struct btrfs_raid_bio *rbio,
			   struct bio *bio)
{
1349
	u64 physical = bio->bi_iter.bi_sector;
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	u64 stripe_start;
	int i;
	struct btrfs_bio_stripe *stripe;

	physical <<= 9;

	for (i = 0; i < rbio->bbio->num_stripes; i++) {
		stripe = &rbio->bbio->stripes[i];
		stripe_start = stripe->physical;
		if (physical >= stripe_start &&
1360
		    physical < stripe_start + rbio->stripe_len &&
1361
		    stripe->dev->bdev &&
1362 1363
		    bio->bi_disk == stripe->dev->bdev->bd_disk &&
		    bio->bi_partno == stripe->dev->bdev->bd_partno) {
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1364 1365 1366 1367 1368 1369 1370 1371 1372 1373 1374 1375 1376 1377
			return i;
		}
	}
	return -1;
}

/*
 * helper to find the stripe number for a given
 * bio (before mapping).  Used to figure out which stripe has
 * failed.  This looks up based on logical block numbers.
 */
static int find_logical_bio_stripe(struct btrfs_raid_bio *rbio,
				   struct bio *bio)
{
1378
	u64 logical = bio->bi_iter.bi_sector;
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	u64 stripe_start;
	int i;

	logical <<= 9;

	for (i = 0; i < rbio->nr_data; i++) {
1385
		stripe_start = rbio->bbio->raid_map[i];
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1386 1387 1388 1389 1390 1391 1392 1393 1394 1395 1396 1397 1398 1399 1400 1401 1402 1403 1404 1405 1406 1407 1408 1409 1410
		if (logical >= stripe_start &&
		    logical < stripe_start + rbio->stripe_len) {
			return i;
		}
	}
	return -1;
}

/*
 * returns -EIO if we had too many failures
 */
static int fail_rbio_index(struct btrfs_raid_bio *rbio, int failed)
{
	unsigned long flags;
	int ret = 0;

	spin_lock_irqsave(&rbio->bio_list_lock, flags);

	/* we already know this stripe is bad, move on */
	if (rbio->faila == failed || rbio->failb == failed)
		goto out;

	if (rbio->faila == -1) {
		/* first failure on this rbio */
		rbio->faila = failed;
1411
		atomic_inc(&rbio->error);
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	} else if (rbio->failb == -1) {
		/* second failure on this rbio */
		rbio->failb = failed;
1415
		atomic_inc(&rbio->error);
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	} else {
		ret = -EIO;
	}
out:
	spin_unlock_irqrestore(&rbio->bio_list_lock, flags);

	return ret;
}

/*
 * helper to fail a stripe based on a physical disk
 * bio.
 */
static int fail_bio_stripe(struct btrfs_raid_bio *rbio,
			   struct bio *bio)
{
	int failed = find_bio_stripe(rbio, bio);

	if (failed < 0)
		return -EIO;

	return fail_rbio_index(rbio, failed);
}

/*
 * this sets each page in the bio uptodate.  It should only be used on private
 * rbio pages, nothing that comes in from the higher layers
 */
static void set_bio_pages_uptodate(struct bio *bio)
{
1446 1447
	struct bio_vec *bvec;
	int i;
1448

1449
	ASSERT(!bio_flagged(bio, BIO_CLONED));
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1450

1451 1452
	bio_for_each_segment_all(bvec, bio, i)
		SetPageUptodate(bvec->bv_page);
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}

/*
 * end io for the read phase of the rmw cycle.  All the bios here are physical
 * stripe bios we've read from the disk so we can recalculate the parity of the
 * stripe.
 *
 * This will usually kick off finish_rmw once all the bios are read in, but it
 * may trigger parity reconstruction if we had any errors along the way
 */
1463
static void raid_rmw_end_io(struct bio *bio)
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{
	struct btrfs_raid_bio *rbio = bio->bi_private;

1467
	if (bio->bi_status)
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		fail_bio_stripe(rbio, bio);
	else
		set_bio_pages_uptodate(bio);

	bio_put(bio);

1474
	if (!atomic_dec_and_test(&rbio->stripes_pending))
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		return;

1477
	if (atomic_read(&rbio->error) > rbio->bbio->max_errors)
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1478 1479 1480 1481 1482 1483 1484 1485 1486 1487 1488 1489
		goto cleanup;

	/*
	 * this will normally call finish_rmw to start our write
	 * but if there are any failed stripes we'll reconstruct
	 * from parity first
	 */
	validate_rbio_for_rmw(rbio);
	return;

cleanup:

1490
	rbio_orig_end_io(rbio, BLK_STS_IOERR);
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}

static void async_rmw_stripe(struct btrfs_raid_bio *rbio)
{
1495 1496
	btrfs_init_work(&rbio->work, btrfs_rmw_helper, rmw_work, NULL, NULL);
	btrfs_queue_work(rbio->fs_info->rmw_workers, &rbio->work);
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}

static void async_read_rebuild(struct btrfs_raid_bio *rbio)
{
1501 1502
	btrfs_init_work(&rbio->work, btrfs_rmw_helper,
			read_rebuild_work, NULL, NULL);
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1504
	btrfs_queue_work(rbio->fs_info->rmw_workers, &rbio->work);
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}

/*
 * the stripe must be locked by the caller.  It will
 * unlock after all the writes are done
 */
static int raid56_rmw_stripe(struct btrfs_raid_bio *rbio)
{
	int bios_to_read = 0;
	struct bio_list bio_list;
	int ret;
	int pagenr;
	int stripe;
	struct bio *bio;

	bio_list_init(&bio_list);

	ret = alloc_rbio_pages(rbio);
	if (ret)
		goto cleanup;

	index_rbio_pages(rbio);

1528
	atomic_set(&rbio->error, 0);
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	/*
	 * build a list of bios to read all the missing parts of this
	 * stripe
	 */
	for (stripe = 0; stripe < rbio->nr_data; stripe++) {
1534
		for (pagenr = 0; pagenr < rbio->stripe_npages; pagenr++) {
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1535 1536 1537 1538 1539 1540 1541 1542 1543 1544 1545 1546
			struct page *page;
			/*
			 * we want to find all the pages missing from
			 * the rbio and read them from the disk.  If
			 * page_in_rbio finds a page in the bio list
			 * we don't need to read it off the stripe.
			 */
			page = page_in_rbio(rbio, stripe, pagenr, 1);
			if (page)
				continue;

			page = rbio_stripe_page(rbio, stripe, pagenr);
1547 1548 1549 1550 1551 1552 1553
			/*
			 * the bio cache may have handed us an uptodate
			 * page.  If so, be happy and use it
			 */
			if (PageUptodate(page))
				continue;

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1554 1555 1556 1557 1558 1559 1560 1561 1562 1563 1564 1565 1566 1567 1568 1569 1570 1571 1572 1573 1574 1575
			ret = rbio_add_io_page(rbio, &bio_list, page,
				       stripe, pagenr, rbio->stripe_len);
			if (ret)
				goto cleanup;
		}
	}

	bios_to_read = bio_list_size(&bio_list);
	if (!bios_to_read) {
		/*
		 * this can happen if others have merged with
		 * us, it means there is nothing left to read.
		 * But if there are missing devices it may not be
		 * safe to do the full stripe write yet.
		 */
		goto finish;
	}

	/*
	 * the bbio may be freed once we submit the last bio.  Make sure
	 * not to touch it after that
	 */
1576
	atomic_set(&rbio->stripes_pending, bios_to_read);
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	while (1) {
		bio = bio_list_pop(&bio_list);
		if (!bio)
			break;

		bio->bi_private = rbio;
		bio->bi_end_io = raid_rmw_end_io;
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1584
		bio_set_op_attrs(bio, REQ_OP_READ, 0);
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1585

1586
		btrfs_bio_wq_end_io(rbio->fs_info, bio, BTRFS_WQ_ENDIO_RAID56);
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1587

1588
		submit_bio(bio);
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1589 1590 1591 1592 1593
	}
	/* the actual write will happen once the reads are done */
	return 0;

cleanup:
1594
	rbio_orig_end_io(rbio, BLK_STS_IOERR);
L
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1595 1596 1597 1598

	while ((bio = bio_list_pop(&bio_list)))
		bio_put(bio);

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1599 1600 1601 1602 1603 1604 1605 1606 1607 1608 1609 1610 1611 1612 1613 1614
	return -EIO;

finish:
	validate_rbio_for_rmw(rbio);
	return 0;
}

/*
 * if the upper layers pass in a full stripe, we thank them by only allocating
 * enough pages to hold the parity, and sending it all down quickly.
 */
static int full_stripe_write(struct btrfs_raid_bio *rbio)
{
	int ret;

	ret = alloc_rbio_parity_pages(rbio);
1615 1616
	if (ret) {
		__free_raid_bio(rbio);
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1617
		return ret;
1618
	}
D
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1619 1620 1621 1622 1623 1624 1625 1626 1627 1628 1629 1630 1631 1632 1633 1634 1635 1636 1637 1638 1639 1640 1641 1642 1643 1644 1645 1646 1647 1648 1649 1650 1651 1652 1653 1654

	ret = lock_stripe_add(rbio);
	if (ret == 0)
		finish_rmw(rbio);
	return 0;
}

/*
 * partial stripe writes get handed over to async helpers.
 * We're really hoping to merge a few more writes into this
 * rbio before calculating new parity
 */
static int partial_stripe_write(struct btrfs_raid_bio *rbio)
{
	int ret;

	ret = lock_stripe_add(rbio);
	if (ret == 0)
		async_rmw_stripe(rbio);
	return 0;
}

/*
 * sometimes while we were reading from the drive to
 * recalculate parity, enough new bios come into create
 * a full stripe.  So we do a check here to see if we can
 * go directly to finish_rmw
 */
static int __raid56_parity_write(struct btrfs_raid_bio *rbio)
{
	/* head off into rmw land if we don't have a full stripe */
	if (!rbio_is_full(rbio))
		return partial_stripe_write(rbio);
	return full_stripe_write(rbio);
}

1655 1656 1657 1658 1659 1660 1661 1662 1663 1664 1665 1666 1667 1668 1669 1670 1671 1672 1673 1674 1675 1676 1677
/*
 * We use plugging call backs to collect full stripes.
 * Any time we get a partial stripe write while plugged
 * we collect it into a list.  When the unplug comes down,
 * we sort the list by logical block number and merge
 * everything we can into the same rbios
 */
struct btrfs_plug_cb {
	struct blk_plug_cb cb;
	struct btrfs_fs_info *info;
	struct list_head rbio_list;
	struct btrfs_work work;
};

/*
 * rbios on the plug list are sorted for easier merging.
 */
static int plug_cmp(void *priv, struct list_head *a, struct list_head *b)
{
	struct btrfs_raid_bio *ra = container_of(a, struct btrfs_raid_bio,
						 plug_list);
	struct btrfs_raid_bio *rb = container_of(b, struct btrfs_raid_bio,
						 plug_list);
1678 1679
	u64 a_sector = ra->bio_list.head->bi_iter.bi_sector;
	u64 b_sector = rb->bio_list.head->bi_iter.bi_sector;
1680 1681 1682 1683 1684 1685 1686 1687 1688 1689 1690 1691 1692 1693 1694 1695 1696 1697 1698 1699 1700 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 1727 1728 1729 1730 1731 1732 1733 1734 1735 1736 1737 1738 1739 1740 1741 1742

	if (a_sector < b_sector)
		return -1;
	if (a_sector > b_sector)
		return 1;
	return 0;
}

static void run_plug(struct btrfs_plug_cb *plug)
{
	struct btrfs_raid_bio *cur;
	struct btrfs_raid_bio *last = NULL;

	/*
	 * sort our plug list then try to merge
	 * everything we can in hopes of creating full
	 * stripes.
	 */
	list_sort(NULL, &plug->rbio_list, plug_cmp);
	while (!list_empty(&plug->rbio_list)) {
		cur = list_entry(plug->rbio_list.next,
				 struct btrfs_raid_bio, plug_list);
		list_del_init(&cur->plug_list);

		if (rbio_is_full(cur)) {
			/* we have a full stripe, send it down */
			full_stripe_write(cur);
			continue;
		}
		if (last) {
			if (rbio_can_merge(last, cur)) {
				merge_rbio(last, cur);
				__free_raid_bio(cur);
				continue;

			}
			__raid56_parity_write(last);
		}
		last = cur;
	}
	if (last) {
		__raid56_parity_write(last);
	}
	kfree(plug);
}

/*
 * if the unplug comes from schedule, we have to push the
 * work off to a helper thread
 */
static void unplug_work(struct btrfs_work *work)
{
	struct btrfs_plug_cb *plug;
	plug = container_of(work, struct btrfs_plug_cb, work);
	run_plug(plug);
}

static void btrfs_raid_unplug(struct blk_plug_cb *cb, bool from_schedule)
{
	struct btrfs_plug_cb *plug;
	plug = container_of(cb, struct btrfs_plug_cb, cb);

	if (from_schedule) {
1743 1744
		btrfs_init_work(&plug->work, btrfs_rmw_helper,
				unplug_work, NULL, NULL);
1745 1746
		btrfs_queue_work(plug->info->rmw_workers,
				 &plug->work);
1747 1748 1749 1750 1751
		return;
	}
	run_plug(plug);
}

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David Woodhouse 已提交
1752 1753 1754
/*
 * our main entry point for writes from the rest of the FS.
 */
1755
int raid56_parity_write(struct btrfs_fs_info *fs_info, struct bio *bio,
1756
			struct btrfs_bio *bbio, u64 stripe_len)
D
David Woodhouse 已提交
1757 1758
{
	struct btrfs_raid_bio *rbio;
1759 1760
	struct btrfs_plug_cb *plug = NULL;
	struct blk_plug_cb *cb;
1761
	int ret;
D
David Woodhouse 已提交
1762

1763
	rbio = alloc_rbio(fs_info, bbio, stripe_len);
1764
	if (IS_ERR(rbio)) {
1765
		btrfs_put_bbio(bbio);
D
David Woodhouse 已提交
1766
		return PTR_ERR(rbio);
1767
	}
D
David Woodhouse 已提交
1768
	bio_list_add(&rbio->bio_list, bio);
1769
	rbio->bio_list_bytes = bio->bi_iter.bi_size;
1770
	rbio->operation = BTRFS_RBIO_WRITE;
1771

1772
	btrfs_bio_counter_inc_noblocked(fs_info);
1773 1774
	rbio->generic_bio_cnt = 1;

1775 1776 1777 1778
	/*
	 * don't plug on full rbios, just get them out the door
	 * as quickly as we can
	 */
1779 1780 1781
	if (rbio_is_full(rbio)) {
		ret = full_stripe_write(rbio);
		if (ret)
1782
			btrfs_bio_counter_dec(fs_info);
1783 1784
		return ret;
	}
1785

1786
	cb = blk_check_plugged(btrfs_raid_unplug, fs_info, sizeof(*plug));
1787 1788 1789
	if (cb) {
		plug = container_of(cb, struct btrfs_plug_cb, cb);
		if (!plug->info) {
1790
			plug->info = fs_info;
1791 1792 1793
			INIT_LIST_HEAD(&plug->rbio_list);
		}
		list_add_tail(&rbio->plug_list, &plug->rbio_list);
1794
		ret = 0;
1795
	} else {
1796 1797
		ret = __raid56_parity_write(rbio);
		if (ret)
1798
			btrfs_bio_counter_dec(fs_info);
1799
	}
1800
	return ret;
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1801 1802 1803 1804 1805 1806 1807 1808 1809 1810 1811 1812 1813
}

/*
 * all parity reconstruction happens here.  We've read in everything
 * we can find from the drives and this does the heavy lifting of
 * sorting the good from the bad.
 */
static void __raid_recover_end_io(struct btrfs_raid_bio *rbio)
{
	int pagenr, stripe;
	void **pointers;
	int faila = -1, failb = -1;
	struct page *page;
1814
	blk_status_t err;
D
David Woodhouse 已提交
1815 1816
	int i;

1817
	pointers = kcalloc(rbio->real_stripes, sizeof(void *), GFP_NOFS);
D
David Woodhouse 已提交
1818
	if (!pointers) {
1819
		err = BLK_STS_RESOURCE;
D
David Woodhouse 已提交
1820 1821 1822 1823 1824 1825
		goto cleanup_io;
	}

	faila = rbio->faila;
	failb = rbio->failb;

1826 1827
	if (rbio->operation == BTRFS_RBIO_READ_REBUILD ||
	    rbio->operation == BTRFS_RBIO_REBUILD_MISSING) {
D
David Woodhouse 已提交
1828 1829 1830 1831 1832 1833 1834
		spin_lock_irq(&rbio->bio_list_lock);
		set_bit(RBIO_RMW_LOCKED_BIT, &rbio->flags);
		spin_unlock_irq(&rbio->bio_list_lock);
	}

	index_rbio_pages(rbio);

1835
	for (pagenr = 0; pagenr < rbio->stripe_npages; pagenr++) {
1836 1837 1838 1839 1840 1841 1842 1843
		/*
		 * Now we just use bitmap to mark the horizontal stripes in
		 * which we have data when doing parity scrub.
		 */
		if (rbio->operation == BTRFS_RBIO_PARITY_SCRUB &&
		    !test_bit(pagenr, rbio->dbitmap))
			continue;

D
David Woodhouse 已提交
1844 1845 1846
		/* setup our array of pointers with pages
		 * from each stripe
		 */
1847
		for (stripe = 0; stripe < rbio->real_stripes; stripe++) {
D
David Woodhouse 已提交
1848 1849 1850 1851
			/*
			 * if we're rebuilding a read, we have to use
			 * pages from the bio list
			 */
1852 1853
			if ((rbio->operation == BTRFS_RBIO_READ_REBUILD ||
			     rbio->operation == BTRFS_RBIO_REBUILD_MISSING) &&
D
David Woodhouse 已提交
1854 1855 1856 1857 1858 1859 1860 1861 1862
			    (stripe == faila || stripe == failb)) {
				page = page_in_rbio(rbio, stripe, pagenr, 0);
			} else {
				page = rbio_stripe_page(rbio, stripe, pagenr);
			}
			pointers[stripe] = kmap(page);
		}

		/* all raid6 handling here */
Z
Zhao Lei 已提交
1863
		if (rbio->bbio->map_type & BTRFS_BLOCK_GROUP_RAID6) {
D
David Woodhouse 已提交
1864 1865 1866 1867 1868 1869 1870 1871 1872 1873 1874
			/*
			 * single failure, rebuild from parity raid5
			 * style
			 */
			if (failb < 0) {
				if (faila == rbio->nr_data) {
					/*
					 * Just the P stripe has failed, without
					 * a bad data or Q stripe.
					 * TODO, we should redo the xor here.
					 */
1875
					err = BLK_STS_IOERR;
D
David Woodhouse 已提交
1876 1877 1878 1879 1880 1881 1882 1883 1884 1885 1886 1887 1888 1889 1890 1891 1892 1893 1894 1895 1896 1897
					goto cleanup;
				}
				/*
				 * a single failure in raid6 is rebuilt
				 * in the pstripe code below
				 */
				goto pstripe;
			}

			/* make sure our ps and qs are in order */
			if (faila > failb) {
				int tmp = failb;
				failb = faila;
				faila = tmp;
			}

			/* if the q stripe is failed, do a pstripe reconstruction
			 * from the xors.
			 * If both the q stripe and the P stripe are failed, we're
			 * here due to a crc mismatch and we can't give them the
			 * data they want
			 */
1898 1899 1900
			if (rbio->bbio->raid_map[failb] == RAID6_Q_STRIPE) {
				if (rbio->bbio->raid_map[faila] ==
				    RAID5_P_STRIPE) {
1901
					err = BLK_STS_IOERR;
D
David Woodhouse 已提交
1902 1903 1904 1905 1906 1907 1908 1909 1910
					goto cleanup;
				}
				/*
				 * otherwise we have one bad data stripe and
				 * a good P stripe.  raid5!
				 */
				goto pstripe;
			}

1911
			if (rbio->bbio->raid_map[failb] == RAID5_P_STRIPE) {
1912
				raid6_datap_recov(rbio->real_stripes,
D
David Woodhouse 已提交
1913 1914
						  PAGE_SIZE, faila, pointers);
			} else {
1915
				raid6_2data_recov(rbio->real_stripes,
D
David Woodhouse 已提交
1916 1917 1918 1919 1920 1921 1922 1923 1924 1925 1926 1927
						  PAGE_SIZE, faila, failb,
						  pointers);
			}
		} else {
			void *p;

			/* rebuild from P stripe here (raid5 or raid6) */
			BUG_ON(failb != -1);
pstripe:
			/* Copy parity block into failed block to start with */
			memcpy(pointers[faila],
			       pointers[rbio->nr_data],
1928
			       PAGE_SIZE);
D
David Woodhouse 已提交
1929 1930 1931 1932 1933 1934 1935 1936

			/* rearrange the pointer array */
			p = pointers[faila];
			for (stripe = faila; stripe < rbio->nr_data - 1; stripe++)
				pointers[stripe] = pointers[stripe + 1];
			pointers[rbio->nr_data - 1] = p;

			/* xor in the rest */
1937
			run_xor(pointers, rbio->nr_data - 1, PAGE_SIZE);
D
David Woodhouse 已提交
1938 1939 1940 1941 1942 1943 1944
		}
		/* if we're doing this rebuild as part of an rmw, go through
		 * and set all of our private rbio pages in the
		 * failed stripes as uptodate.  This way finish_rmw will
		 * know they can be trusted.  If this was a read reconstruction,
		 * other endio functions will fiddle the uptodate bits
		 */
1945
		if (rbio->operation == BTRFS_RBIO_WRITE) {
1946
			for (i = 0;  i < rbio->stripe_npages; i++) {
D
David Woodhouse 已提交
1947 1948 1949 1950 1951 1952 1953 1954 1955 1956
				if (faila != -1) {
					page = rbio_stripe_page(rbio, faila, i);
					SetPageUptodate(page);
				}
				if (failb != -1) {
					page = rbio_stripe_page(rbio, failb, i);
					SetPageUptodate(page);
				}
			}
		}
1957
		for (stripe = 0; stripe < rbio->real_stripes; stripe++) {
D
David Woodhouse 已提交
1958 1959 1960 1961
			/*
			 * if we're rebuilding a read, we have to use
			 * pages from the bio list
			 */
1962 1963
			if ((rbio->operation == BTRFS_RBIO_READ_REBUILD ||
			     rbio->operation == BTRFS_RBIO_REBUILD_MISSING) &&
D
David Woodhouse 已提交
1964 1965 1966 1967 1968 1969 1970 1971 1972
			    (stripe == faila || stripe == failb)) {
				page = page_in_rbio(rbio, stripe, pagenr, 0);
			} else {
				page = rbio_stripe_page(rbio, stripe, pagenr);
			}
			kunmap(page);
		}
	}

1973
	err = BLK_STS_OK;
D
David Woodhouse 已提交
1974 1975 1976 1977
cleanup:
	kfree(pointers);

cleanup_io:
1978 1979 1980 1981 1982 1983 1984
	/*
	 * Similar to READ_REBUILD, REBUILD_MISSING at this point also has a
	 * valid rbio which is consistent with ondisk content, thus such a
	 * valid rbio can be cached to avoid further disk reads.
	 */
	if (rbio->operation == BTRFS_RBIO_READ_REBUILD ||
	    rbio->operation == BTRFS_RBIO_REBUILD_MISSING) {
1985 1986 1987 1988 1989 1990 1991 1992 1993 1994 1995 1996 1997 1998 1999 2000
		/*
		 * - In case of two failures, where rbio->failb != -1:
		 *
		 *   Do not cache this rbio since the above read reconstruction
		 *   (raid6_datap_recov() or raid6_2data_recov()) may have
		 *   changed some content of stripes which are not identical to
		 *   on-disk content any more, otherwise, a later write/recover
		 *   may steal stripe_pages from this rbio and end up with
		 *   corruptions or rebuild failures.
		 *
		 * - In case of single failure, where rbio->failb == -1:
		 *
		 *   Cache this rbio iff the above read reconstruction is
		 *   excuted without problems.
		 */
		if (err == BLK_STS_OK && rbio->failb < 0)
2001 2002 2003 2004
			cache_rbio_pages(rbio);
		else
			clear_bit(RBIO_CACHE_READY_BIT, &rbio->flags);

2005
		rbio_orig_end_io(rbio, err);
2006
	} else if (err == BLK_STS_OK) {
D
David Woodhouse 已提交
2007 2008
		rbio->faila = -1;
		rbio->failb = -1;
2009 2010 2011 2012 2013 2014 2015

		if (rbio->operation == BTRFS_RBIO_WRITE)
			finish_rmw(rbio);
		else if (rbio->operation == BTRFS_RBIO_PARITY_SCRUB)
			finish_parity_scrub(rbio, 0);
		else
			BUG();
D
David Woodhouse 已提交
2016
	} else {
2017
		rbio_orig_end_io(rbio, err);
D
David Woodhouse 已提交
2018 2019 2020 2021 2022 2023 2024
	}
}

/*
 * This is called only for stripes we've read from disk to
 * reconstruct the parity.
 */
2025
static void raid_recover_end_io(struct bio *bio)
D
David Woodhouse 已提交
2026 2027 2028 2029 2030 2031 2032
{
	struct btrfs_raid_bio *rbio = bio->bi_private;

	/*
	 * we only read stripe pages off the disk, set them
	 * up to date if there were no errors
	 */
2033
	if (bio->bi_status)
D
David Woodhouse 已提交
2034 2035 2036 2037 2038
		fail_bio_stripe(rbio, bio);
	else
		set_bio_pages_uptodate(bio);
	bio_put(bio);

2039
	if (!atomic_dec_and_test(&rbio->stripes_pending))
D
David Woodhouse 已提交
2040 2041
		return;

2042
	if (atomic_read(&rbio->error) > rbio->bbio->max_errors)
2043
		rbio_orig_end_io(rbio, BLK_STS_IOERR);
D
David Woodhouse 已提交
2044 2045 2046 2047 2048 2049 2050 2051 2052 2053 2054 2055 2056 2057 2058 2059 2060 2061 2062 2063 2064 2065 2066 2067 2068 2069 2070
	else
		__raid_recover_end_io(rbio);
}

/*
 * reads everything we need off the disk to reconstruct
 * the parity. endio handlers trigger final reconstruction
 * when the IO is done.
 *
 * This is used both for reads from the higher layers and for
 * parity construction required to finish a rmw cycle.
 */
static int __raid56_parity_recover(struct btrfs_raid_bio *rbio)
{
	int bios_to_read = 0;
	struct bio_list bio_list;
	int ret;
	int pagenr;
	int stripe;
	struct bio *bio;

	bio_list_init(&bio_list);

	ret = alloc_rbio_pages(rbio);
	if (ret)
		goto cleanup;

2071
	atomic_set(&rbio->error, 0);
D
David Woodhouse 已提交
2072 2073

	/*
2074 2075 2076
	 * read everything that hasn't failed.  Thanks to the
	 * stripe cache, it is possible that some or all of these
	 * pages are going to be uptodate.
D
David Woodhouse 已提交
2077
	 */
2078
	for (stripe = 0; stripe < rbio->real_stripes; stripe++) {
2079
		if (rbio->faila == stripe || rbio->failb == stripe) {
2080
			atomic_inc(&rbio->error);
D
David Woodhouse 已提交
2081
			continue;
2082
		}
D
David Woodhouse 已提交
2083

2084
		for (pagenr = 0; pagenr < rbio->stripe_npages; pagenr++) {
D
David Woodhouse 已提交
2085 2086 2087 2088 2089 2090 2091 2092 2093 2094 2095 2096 2097 2098 2099 2100 2101 2102 2103 2104 2105 2106 2107 2108 2109
			struct page *p;

			/*
			 * the rmw code may have already read this
			 * page in
			 */
			p = rbio_stripe_page(rbio, stripe, pagenr);
			if (PageUptodate(p))
				continue;

			ret = rbio_add_io_page(rbio, &bio_list,
				       rbio_stripe_page(rbio, stripe, pagenr),
				       stripe, pagenr, rbio->stripe_len);
			if (ret < 0)
				goto cleanup;
		}
	}

	bios_to_read = bio_list_size(&bio_list);
	if (!bios_to_read) {
		/*
		 * we might have no bios to read just because the pages
		 * were up to date, or we might have no bios to read because
		 * the devices were gone.
		 */
2110
		if (atomic_read(&rbio->error) <= rbio->bbio->max_errors) {
D
David Woodhouse 已提交
2111 2112 2113 2114 2115 2116 2117 2118 2119 2120 2121
			__raid_recover_end_io(rbio);
			goto out;
		} else {
			goto cleanup;
		}
	}

	/*
	 * the bbio may be freed once we submit the last bio.  Make sure
	 * not to touch it after that
	 */
2122
	atomic_set(&rbio->stripes_pending, bios_to_read);
D
David Woodhouse 已提交
2123 2124 2125 2126 2127 2128 2129
	while (1) {
		bio = bio_list_pop(&bio_list);
		if (!bio)
			break;

		bio->bi_private = rbio;
		bio->bi_end_io = raid_recover_end_io;
M
Mike Christie 已提交
2130
		bio_set_op_attrs(bio, REQ_OP_READ, 0);
D
David Woodhouse 已提交
2131

2132
		btrfs_bio_wq_end_io(rbio->fs_info, bio, BTRFS_WQ_ENDIO_RAID56);
D
David Woodhouse 已提交
2133

2134
		submit_bio(bio);
D
David Woodhouse 已提交
2135 2136 2137 2138 2139
	}
out:
	return 0;

cleanup:
2140 2141
	if (rbio->operation == BTRFS_RBIO_READ_REBUILD ||
	    rbio->operation == BTRFS_RBIO_REBUILD_MISSING)
2142
		rbio_orig_end_io(rbio, BLK_STS_IOERR);
L
Liu Bo 已提交
2143 2144 2145 2146

	while ((bio = bio_list_pop(&bio_list)))
		bio_put(bio);

D
David Woodhouse 已提交
2147 2148 2149 2150 2151 2152 2153 2154 2155
	return -EIO;
}

/*
 * the main entry point for reads from the higher layers.  This
 * is really only called when the normal read path had a failure,
 * so we assume the bio they send down corresponds to a failed part
 * of the drive.
 */
2156
int raid56_parity_recover(struct btrfs_fs_info *fs_info, struct bio *bio,
2157 2158
			  struct btrfs_bio *bbio, u64 stripe_len,
			  int mirror_num, int generic_io)
D
David Woodhouse 已提交
2159 2160 2161 2162
{
	struct btrfs_raid_bio *rbio;
	int ret;

2163 2164 2165 2166 2167
	if (generic_io) {
		ASSERT(bbio->mirror_num == mirror_num);
		btrfs_io_bio(bio)->mirror_num = mirror_num;
	}

2168
	rbio = alloc_rbio(fs_info, bbio, stripe_len);
2169
	if (IS_ERR(rbio)) {
2170 2171
		if (generic_io)
			btrfs_put_bbio(bbio);
D
David Woodhouse 已提交
2172
		return PTR_ERR(rbio);
2173
	}
D
David Woodhouse 已提交
2174

2175
	rbio->operation = BTRFS_RBIO_READ_REBUILD;
D
David Woodhouse 已提交
2176
	bio_list_add(&rbio->bio_list, bio);
2177
	rbio->bio_list_bytes = bio->bi_iter.bi_size;
D
David Woodhouse 已提交
2178 2179 2180

	rbio->faila = find_logical_bio_stripe(rbio, bio);
	if (rbio->faila == -1) {
2181
		btrfs_warn(fs_info,
L
Liu Bo 已提交
2182 2183 2184
	"%s could not find the bad stripe in raid56 so that we cannot recover any more (bio has logical %llu len %llu, bbio has map_type %llu)",
			   __func__, (u64)bio->bi_iter.bi_sector << 9,
			   (u64)bio->bi_iter.bi_size, bbio->map_type);
2185 2186
		if (generic_io)
			btrfs_put_bbio(bbio);
D
David Woodhouse 已提交
2187 2188 2189 2190
		kfree(rbio);
		return -EIO;
	}

2191
	if (generic_io) {
2192
		btrfs_bio_counter_inc_noblocked(fs_info);
2193 2194
		rbio->generic_bio_cnt = 1;
	} else {
2195
		btrfs_get_bbio(bbio);
2196 2197
	}

D
David Woodhouse 已提交
2198
	/*
L
Liu Bo 已提交
2199 2200 2201
	 * Loop retry:
	 * for 'mirror == 2', reconstruct from all other stripes.
	 * for 'mirror_num > 2', select a stripe to fail on every retry.
D
David Woodhouse 已提交
2202
	 */
L
Liu Bo 已提交
2203 2204 2205 2206 2207 2208 2209 2210 2211 2212 2213
	if (mirror_num > 2) {
		/*
		 * 'mirror == 3' is to fail the p stripe and
		 * reconstruct from the q stripe.  'mirror > 3' is to
		 * fail a data stripe and reconstruct from p+q stripe.
		 */
		rbio->failb = rbio->real_stripes - (mirror_num - 1);
		ASSERT(rbio->failb > 0);
		if (rbio->failb <= rbio->faila)
			rbio->failb--;
	}
D
David Woodhouse 已提交
2214 2215 2216 2217 2218 2219 2220 2221 2222 2223 2224 2225 2226 2227 2228 2229 2230 2231 2232 2233 2234 2235 2236 2237 2238 2239 2240 2241 2242 2243 2244 2245 2246 2247 2248 2249

	ret = lock_stripe_add(rbio);

	/*
	 * __raid56_parity_recover will end the bio with
	 * any errors it hits.  We don't want to return
	 * its error value up the stack because our caller
	 * will end up calling bio_endio with any nonzero
	 * return
	 */
	if (ret == 0)
		__raid56_parity_recover(rbio);
	/*
	 * our rbio has been added to the list of
	 * rbios that will be handled after the
	 * currently lock owner is done
	 */
	return 0;

}

static void rmw_work(struct btrfs_work *work)
{
	struct btrfs_raid_bio *rbio;

	rbio = container_of(work, struct btrfs_raid_bio, work);
	raid56_rmw_stripe(rbio);
}

static void read_rebuild_work(struct btrfs_work *work)
{
	struct btrfs_raid_bio *rbio;

	rbio = container_of(work, struct btrfs_raid_bio, work);
	__raid56_parity_recover(rbio);
}
2250 2251 2252 2253

/*
 * The following code is used to scrub/replace the parity stripe
 *
2254 2255
 * Caller must have already increased bio_counter for getting @bbio.
 *
2256 2257 2258 2259 2260 2261
 * Note: We need make sure all the pages that add into the scrub/replace
 * raid bio are correct and not be changed during the scrub/replace. That
 * is those pages just hold metadata or file data with checksum.
 */

struct btrfs_raid_bio *
2262
raid56_parity_alloc_scrub_rbio(struct btrfs_fs_info *fs_info, struct bio *bio,
2263 2264
			       struct btrfs_bio *bbio, u64 stripe_len,
			       struct btrfs_device *scrub_dev,
2265 2266 2267 2268 2269
			       unsigned long *dbitmap, int stripe_nsectors)
{
	struct btrfs_raid_bio *rbio;
	int i;

2270
	rbio = alloc_rbio(fs_info, bbio, stripe_len);
2271 2272 2273 2274 2275 2276 2277 2278 2279 2280
	if (IS_ERR(rbio))
		return NULL;
	bio_list_add(&rbio->bio_list, bio);
	/*
	 * This is a special bio which is used to hold the completion handler
	 * and make the scrub rbio is similar to the other types
	 */
	ASSERT(!bio->bi_iter.bi_size);
	rbio->operation = BTRFS_RBIO_PARITY_SCRUB;

L
Liu Bo 已提交
2281 2282 2283 2284 2285 2286
	/*
	 * After mapping bbio with BTRFS_MAP_WRITE, parities have been sorted
	 * to the end position, so this search can start from the first parity
	 * stripe.
	 */
	for (i = rbio->nr_data; i < rbio->real_stripes; i++) {
2287 2288 2289 2290 2291
		if (bbio->stripes[i].dev == scrub_dev) {
			rbio->scrubp = i;
			break;
		}
	}
L
Liu Bo 已提交
2292
	ASSERT(i < rbio->real_stripes);
2293 2294

	/* Now we just support the sectorsize equals to page size */
2295
	ASSERT(fs_info->sectorsize == PAGE_SIZE);
2296 2297 2298
	ASSERT(rbio->stripe_npages == stripe_nsectors);
	bitmap_copy(rbio->dbitmap, dbitmap, stripe_nsectors);

2299 2300 2301 2302 2303 2304
	/*
	 * We have already increased bio_counter when getting bbio, record it
	 * so we can free it at rbio_orig_end_io().
	 */
	rbio->generic_bio_cnt = 1;

2305 2306 2307
	return rbio;
}

2308 2309 2310
/* Used for both parity scrub and missing. */
void raid56_add_scrub_pages(struct btrfs_raid_bio *rbio, struct page *page,
			    u64 logical)
2311 2312 2313 2314
{
	int stripe_offset;
	int index;

2315 2316
	ASSERT(logical >= rbio->bbio->raid_map[0]);
	ASSERT(logical + PAGE_SIZE <= rbio->bbio->raid_map[0] +
2317
				rbio->stripe_len * rbio->nr_data);
2318
	stripe_offset = (int)(logical - rbio->bbio->raid_map[0]);
2319
	index = stripe_offset >> PAGE_SHIFT;
2320 2321 2322 2323 2324 2325 2326 2327 2328 2329 2330 2331 2332 2333 2334
	rbio->bio_pages[index] = page;
}

/*
 * We just scrub the parity that we have correct data on the same horizontal,
 * so we needn't allocate all pages for all the stripes.
 */
static int alloc_rbio_essential_pages(struct btrfs_raid_bio *rbio)
{
	int i;
	int bit;
	int index;
	struct page *page;

	for_each_set_bit(bit, rbio->dbitmap, rbio->stripe_npages) {
2335
		for (i = 0; i < rbio->real_stripes; i++) {
2336 2337 2338 2339 2340 2341 2342 2343 2344 2345 2346 2347 2348 2349 2350 2351
			index = i * rbio->stripe_npages + bit;
			if (rbio->stripe_pages[index])
				continue;

			page = alloc_page(GFP_NOFS | __GFP_HIGHMEM);
			if (!page)
				return -ENOMEM;
			rbio->stripe_pages[index] = page;
		}
	}
	return 0;
}

static noinline void finish_parity_scrub(struct btrfs_raid_bio *rbio,
					 int need_check)
{
2352
	struct btrfs_bio *bbio = rbio->bbio;
2353
	void *pointers[rbio->real_stripes];
2354
	DECLARE_BITMAP(pbitmap, rbio->stripe_npages);
2355 2356 2357 2358 2359 2360 2361 2362 2363
	int nr_data = rbio->nr_data;
	int stripe;
	int pagenr;
	int p_stripe = -1;
	int q_stripe = -1;
	struct page *p_page = NULL;
	struct page *q_page = NULL;
	struct bio_list bio_list;
	struct bio *bio;
2364
	int is_replace = 0;
2365 2366 2367 2368
	int ret;

	bio_list_init(&bio_list);

2369 2370 2371 2372 2373
	if (rbio->real_stripes - rbio->nr_data == 1) {
		p_stripe = rbio->real_stripes - 1;
	} else if (rbio->real_stripes - rbio->nr_data == 2) {
		p_stripe = rbio->real_stripes - 2;
		q_stripe = rbio->real_stripes - 1;
2374 2375 2376 2377
	} else {
		BUG();
	}

2378 2379 2380 2381 2382
	if (bbio->num_tgtdevs && bbio->tgtdev_map[rbio->scrubp]) {
		is_replace = 1;
		bitmap_copy(pbitmap, rbio->dbitmap, rbio->stripe_npages);
	}

2383 2384 2385 2386 2387 2388 2389 2390 2391 2392 2393 2394 2395 2396 2397 2398 2399 2400 2401 2402 2403 2404 2405 2406 2407 2408 2409 2410 2411 2412 2413 2414 2415 2416 2417 2418 2419 2420 2421 2422 2423 2424 2425 2426 2427 2428
	/*
	 * Because the higher layers(scrubber) are unlikely to
	 * use this area of the disk again soon, so don't cache
	 * it.
	 */
	clear_bit(RBIO_CACHE_READY_BIT, &rbio->flags);

	if (!need_check)
		goto writeback;

	p_page = alloc_page(GFP_NOFS | __GFP_HIGHMEM);
	if (!p_page)
		goto cleanup;
	SetPageUptodate(p_page);

	if (q_stripe != -1) {
		q_page = alloc_page(GFP_NOFS | __GFP_HIGHMEM);
		if (!q_page) {
			__free_page(p_page);
			goto cleanup;
		}
		SetPageUptodate(q_page);
	}

	atomic_set(&rbio->error, 0);

	for_each_set_bit(pagenr, rbio->dbitmap, rbio->stripe_npages) {
		struct page *p;
		void *parity;
		/* first collect one page from each data stripe */
		for (stripe = 0; stripe < nr_data; stripe++) {
			p = page_in_rbio(rbio, stripe, pagenr, 0);
			pointers[stripe] = kmap(p);
		}

		/* then add the parity stripe */
		pointers[stripe++] = kmap(p_page);

		if (q_stripe != -1) {

			/*
			 * raid6, add the qstripe and call the
			 * library function to fill in our p/q
			 */
			pointers[stripe++] = kmap(q_page);

2429
			raid6_call.gen_syndrome(rbio->real_stripes, PAGE_SIZE,
2430 2431 2432 2433
						pointers);
		} else {
			/* raid5 */
			memcpy(pointers[nr_data], pointers[0], PAGE_SIZE);
2434
			run_xor(pointers + 1, nr_data - 1, PAGE_SIZE);
2435 2436
		}

2437
		/* Check scrubbing parity and repair it */
2438 2439
		p = rbio_stripe_page(rbio, rbio->scrubp, pagenr);
		parity = kmap(p);
2440 2441
		if (memcmp(parity, pointers[rbio->scrubp], PAGE_SIZE))
			memcpy(parity, pointers[rbio->scrubp], PAGE_SIZE);
2442 2443 2444 2445 2446
		else
			/* Parity is right, needn't writeback */
			bitmap_clear(rbio->dbitmap, pagenr, 1);
		kunmap(p);

2447
		for (stripe = 0; stripe < rbio->real_stripes; stripe++)
2448 2449 2450 2451 2452 2453 2454 2455 2456 2457 2458 2459 2460 2461 2462 2463 2464 2465 2466 2467 2468 2469 2470
			kunmap(page_in_rbio(rbio, stripe, pagenr, 0));
	}

	__free_page(p_page);
	if (q_page)
		__free_page(q_page);

writeback:
	/*
	 * time to start writing.  Make bios for everything from the
	 * higher layers (the bio_list in our rbio) and our p/q.  Ignore
	 * everything else.
	 */
	for_each_set_bit(pagenr, rbio->dbitmap, rbio->stripe_npages) {
		struct page *page;

		page = rbio_stripe_page(rbio, rbio->scrubp, pagenr);
		ret = rbio_add_io_page(rbio, &bio_list,
			       page, rbio->scrubp, pagenr, rbio->stripe_len);
		if (ret)
			goto cleanup;
	}

2471 2472 2473 2474 2475 2476 2477 2478 2479 2480 2481 2482 2483 2484 2485
	if (!is_replace)
		goto submit_write;

	for_each_set_bit(pagenr, pbitmap, rbio->stripe_npages) {
		struct page *page;

		page = rbio_stripe_page(rbio, rbio->scrubp, pagenr);
		ret = rbio_add_io_page(rbio, &bio_list, page,
				       bbio->tgtdev_map[rbio->scrubp],
				       pagenr, rbio->stripe_len);
		if (ret)
			goto cleanup;
	}

submit_write:
2486 2487 2488
	nr_data = bio_list_size(&bio_list);
	if (!nr_data) {
		/* Every parity is right */
2489
		rbio_orig_end_io(rbio, BLK_STS_OK);
2490 2491 2492 2493 2494 2495 2496 2497 2498 2499 2500
		return;
	}

	atomic_set(&rbio->stripes_pending, nr_data);

	while (1) {
		bio = bio_list_pop(&bio_list);
		if (!bio)
			break;

		bio->bi_private = rbio;
2501
		bio->bi_end_io = raid_write_end_io;
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Mike Christie 已提交
2502
		bio_set_op_attrs(bio, REQ_OP_WRITE, 0);
2503 2504

		submit_bio(bio);
2505 2506 2507 2508
	}
	return;

cleanup:
2509
	rbio_orig_end_io(rbio, BLK_STS_IOERR);
L
Liu Bo 已提交
2510 2511 2512

	while ((bio = bio_list_pop(&bio_list)))
		bio_put(bio);
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 2548 2549 2550 2551 2552 2553 2554 2555 2556 2557 2558 2559 2560 2561 2562 2563 2564 2565 2566
}

static inline int is_data_stripe(struct btrfs_raid_bio *rbio, int stripe)
{
	if (stripe >= 0 && stripe < rbio->nr_data)
		return 1;
	return 0;
}

/*
 * While we're doing the parity check and repair, we could have errors
 * in reading pages off the disk.  This checks for errors and if we're
 * not able to read the page it'll trigger parity reconstruction.  The
 * parity scrub will be finished after we've reconstructed the failed
 * stripes
 */
static void validate_rbio_for_parity_scrub(struct btrfs_raid_bio *rbio)
{
	if (atomic_read(&rbio->error) > rbio->bbio->max_errors)
		goto cleanup;

	if (rbio->faila >= 0 || rbio->failb >= 0) {
		int dfail = 0, failp = -1;

		if (is_data_stripe(rbio, rbio->faila))
			dfail++;
		else if (is_parity_stripe(rbio->faila))
			failp = rbio->faila;

		if (is_data_stripe(rbio, rbio->failb))
			dfail++;
		else if (is_parity_stripe(rbio->failb))
			failp = rbio->failb;

		/*
		 * Because we can not use a scrubbing parity to repair
		 * the data, so the capability of the repair is declined.
		 * (In the case of RAID5, we can not repair anything)
		 */
		if (dfail > rbio->bbio->max_errors - 1)
			goto cleanup;

		/*
		 * If all data is good, only parity is correctly, just
		 * repair the parity.
		 */
		if (dfail == 0) {
			finish_parity_scrub(rbio, 0);
			return;
		}

		/*
		 * Here means we got one corrupted data stripe and one
		 * corrupted parity on RAID6, if the corrupted parity
2567
		 * is scrubbing parity, luckily, use the other one to repair
2568 2569 2570 2571 2572 2573 2574 2575 2576 2577 2578 2579
		 * the data, or we can not repair the data stripe.
		 */
		if (failp != rbio->scrubp)
			goto cleanup;

		__raid_recover_end_io(rbio);
	} else {
		finish_parity_scrub(rbio, 1);
	}
	return;

cleanup:
2580
	rbio_orig_end_io(rbio, BLK_STS_IOERR);
2581 2582 2583 2584 2585 2586 2587 2588 2589 2590
}

/*
 * end io for the read phase of the rmw cycle.  All the bios here are physical
 * stripe bios we've read from the disk so we can recalculate the parity of the
 * stripe.
 *
 * This will usually kick off finish_rmw once all the bios are read in, but it
 * may trigger parity reconstruction if we had any errors along the way
 */
2591
static void raid56_parity_scrub_end_io(struct bio *bio)
2592 2593 2594
{
	struct btrfs_raid_bio *rbio = bio->bi_private;

2595
	if (bio->bi_status)
2596 2597 2598 2599 2600 2601 2602 2603 2604 2605 2606 2607 2608 2609 2610 2611 2612 2613 2614 2615 2616 2617 2618 2619 2620 2621
		fail_bio_stripe(rbio, bio);
	else
		set_bio_pages_uptodate(bio);

	bio_put(bio);

	if (!atomic_dec_and_test(&rbio->stripes_pending))
		return;

	/*
	 * this will normally call finish_rmw to start our write
	 * but if there are any failed stripes we'll reconstruct
	 * from parity first
	 */
	validate_rbio_for_parity_scrub(rbio);
}

static void raid56_parity_scrub_stripe(struct btrfs_raid_bio *rbio)
{
	int bios_to_read = 0;
	struct bio_list bio_list;
	int ret;
	int pagenr;
	int stripe;
	struct bio *bio;

L
Liu Bo 已提交
2622 2623
	bio_list_init(&bio_list);

2624 2625 2626 2627 2628 2629 2630 2631 2632
	ret = alloc_rbio_essential_pages(rbio);
	if (ret)
		goto cleanup;

	atomic_set(&rbio->error, 0);
	/*
	 * build a list of bios to read all the missing parts of this
	 * stripe
	 */
2633
	for (stripe = 0; stripe < rbio->real_stripes; stripe++) {
2634 2635 2636 2637 2638 2639 2640 2641 2642 2643 2644 2645 2646 2647 2648 2649 2650 2651 2652 2653 2654 2655 2656 2657 2658 2659 2660 2661 2662 2663 2664 2665 2666 2667 2668 2669 2670 2671 2672 2673 2674 2675 2676 2677 2678 2679 2680 2681 2682 2683
		for_each_set_bit(pagenr, rbio->dbitmap, rbio->stripe_npages) {
			struct page *page;
			/*
			 * we want to find all the pages missing from
			 * the rbio and read them from the disk.  If
			 * page_in_rbio finds a page in the bio list
			 * we don't need to read it off the stripe.
			 */
			page = page_in_rbio(rbio, stripe, pagenr, 1);
			if (page)
				continue;

			page = rbio_stripe_page(rbio, stripe, pagenr);
			/*
			 * the bio cache may have handed us an uptodate
			 * page.  If so, be happy and use it
			 */
			if (PageUptodate(page))
				continue;

			ret = rbio_add_io_page(rbio, &bio_list, page,
				       stripe, pagenr, rbio->stripe_len);
			if (ret)
				goto cleanup;
		}
	}

	bios_to_read = bio_list_size(&bio_list);
	if (!bios_to_read) {
		/*
		 * this can happen if others have merged with
		 * us, it means there is nothing left to read.
		 * But if there are missing devices it may not be
		 * safe to do the full stripe write yet.
		 */
		goto finish;
	}

	/*
	 * the bbio may be freed once we submit the last bio.  Make sure
	 * not to touch it after that
	 */
	atomic_set(&rbio->stripes_pending, bios_to_read);
	while (1) {
		bio = bio_list_pop(&bio_list);
		if (!bio)
			break;

		bio->bi_private = rbio;
		bio->bi_end_io = raid56_parity_scrub_end_io;
M
Mike Christie 已提交
2684
		bio_set_op_attrs(bio, REQ_OP_READ, 0);
2685

2686
		btrfs_bio_wq_end_io(rbio->fs_info, bio, BTRFS_WQ_ENDIO_RAID56);
2687

2688
		submit_bio(bio);
2689 2690 2691 2692 2693
	}
	/* the actual write will happen once the reads are done */
	return;

cleanup:
2694
	rbio_orig_end_io(rbio, BLK_STS_IOERR);
L
Liu Bo 已提交
2695 2696 2697 2698

	while ((bio = bio_list_pop(&bio_list)))
		bio_put(bio);

2699 2700 2701 2702 2703 2704 2705 2706 2707 2708 2709 2710 2711 2712 2713 2714 2715 2716 2717
	return;

finish:
	validate_rbio_for_parity_scrub(rbio);
}

static void scrub_parity_work(struct btrfs_work *work)
{
	struct btrfs_raid_bio *rbio;

	rbio = container_of(work, struct btrfs_raid_bio, work);
	raid56_parity_scrub_stripe(rbio);
}

static void async_scrub_parity(struct btrfs_raid_bio *rbio)
{
	btrfs_init_work(&rbio->work, btrfs_rmw_helper,
			scrub_parity_work, NULL, NULL);

2718
	btrfs_queue_work(rbio->fs_info->rmw_workers, &rbio->work);
2719 2720 2721 2722 2723 2724 2725
}

void raid56_parity_submit_scrub_rbio(struct btrfs_raid_bio *rbio)
{
	if (!lock_stripe_add(rbio))
		async_scrub_parity(rbio);
}
2726 2727 2728 2729

/* The following code is used for dev replace of a missing RAID 5/6 device. */

struct btrfs_raid_bio *
2730
raid56_alloc_missing_rbio(struct btrfs_fs_info *fs_info, struct bio *bio,
2731 2732 2733 2734
			  struct btrfs_bio *bbio, u64 length)
{
	struct btrfs_raid_bio *rbio;

2735
	rbio = alloc_rbio(fs_info, bbio, length);
2736 2737 2738 2739 2740 2741 2742 2743 2744 2745 2746 2747 2748 2749 2750 2751 2752 2753
	if (IS_ERR(rbio))
		return NULL;

	rbio->operation = BTRFS_RBIO_REBUILD_MISSING;
	bio_list_add(&rbio->bio_list, bio);
	/*
	 * This is a special bio which is used to hold the completion handler
	 * and make the scrub rbio is similar to the other types
	 */
	ASSERT(!bio->bi_iter.bi_size);

	rbio->faila = find_logical_bio_stripe(rbio, bio);
	if (rbio->faila == -1) {
		BUG();
		kfree(rbio);
		return NULL;
	}

2754 2755 2756 2757 2758 2759
	/*
	 * When we get bbio, we have already increased bio_counter, record it
	 * so we can free it at rbio_orig_end_io()
	 */
	rbio->generic_bio_cnt = 1;

2760 2761 2762 2763 2764 2765
	return rbio;
}

void raid56_submit_missing_rbio(struct btrfs_raid_bio *rbio)
{
	if (!lock_stripe_add(rbio))
2766
		async_read_rebuild(rbio);
2767
}